Gviz/DESCRIPTION0000644000126300012640000000254712227144313014571 0ustar00biocbuildphs_compbioPackage: Gviz Version: 1.6.0 Title: Plotting data and annotation information along genomic coordinates Author: Florian Hahne, Steffen Durinck, Robert Ivanek, Arne Mueller, Steve Lianoglou, Ge Tan Maintainer: Florian Hahne Depends: R (>= 2.10.0), methods, grid Imports: IRanges (>= 1.19.5), XVector, rtracklayer (>= 1.15.5), lattice, RColorBrewer, biomaRt (>= 2.11.0), GenomicRanges (>= 1.7.14), AnnotationDbi (>= 1.17.11), Biobase (>= 2.15.3), BiocGenerics (>= 0.1.4), GenomicFeatures (>= 1.9.7), BSgenome (>= 1.25.1), Biostrings (>= 2.25.1), biovizBase (>= 1.5.7), Rsamtools(>= 1.11.1), latticeExtra(>= 0.6-26) Suggests: xtable, GenomicFeatures, BSgenome.Hsapiens.UCSC.hg19, biomaRt, rtracklayer biocViews: Visualization, Microarray Description: Genomic data analyses requires integrated visualization of known genomic information and new experimental data. Gviz uses the biomaRt and the rtracklayer packages to perform live annotation queries to Ensembl and UCSC and translates this to e.g. gene/transcript structures in viewports of the grid graphics package. This results in genomic information plotted together with your data. Collate: Gviz.R AllGenerics.R AllClasses.R Gviz-methods.R License: Artistic-2.0 LazyLoad: yes Packaged: 2013-10-15 04:47:07 UTC; biocbuild Gviz/NAMESPACE0000644000126300012640000001421512227067652014307 0ustar00biocbuildphs_compbio#Generated by codetoolsBioC version 0.0.16 #Timestamp: Tue Feb 14 10:11:41 2012 #Imports: AnnotationDbi, Biobase, BiocGenerics, biomaRt, GenomicRanges, # graphics, grDevices, grid, IRanges, lattice, methods, RColorBrewer, # rtracklayer, stats, utils import(methods) importClassesFrom(biomaRt, Mart) importClassesFrom(Biostrings, DNAStringSet, BStringSet, DNAString, BString) importClassesFrom(GenomicRanges, GRanges) importClassesFrom(BSgenome, BSgenome) importClassesFrom(GenomicFeatures, "TranscriptDb") importClassesFrom(IRanges, IRanges, NormalIRanges) importClassesFrom(XVector, GroupedIRanges) importClassesFrom(rtracklayer, UCSCData) importMethodsFrom(AnnotationDbi, colnames, get, ls, mget, tail) importMethodsFrom(Biobase, rowMedians) importMethodsFrom(BiocGenerics, cbind, duplicated, eval, intersect, lapply, mapply, order, paste, pmax, pmin, rbind, sapply, setdiff, table, tapply, unique) importMethodsFrom(BSgenome, providerVersion) importMethodsFrom(GenomicFeatures, isActiveSeq, "isActiveSeq<-", exonsBy, transcriptsBy, transcripts) importMethodsFrom(GenomicRanges, "elementMetadata<-", genome, "genome<-", mcols, "mcols<-", seqlengths, seqnames, seqlevels, seqinfo, strand, "strand<-", seqnameStyle) importMethodsFrom(IRanges, as.data.frame, as.list, as.matrix, as.vector, "colnames<-", coverage, diff, disjointBins, end, "end<-", range, findOverlaps, findRun, gsub, ifelse, "%in%", levels, match, mean, ncol, nrow, queryHits, ranges, "ranges<-", reduce, rev, Rle, rownames, "rownames<-", runmean, runValue, "runValue<-", score, sort, split, start, "start<-", sub, subjectHits, substring, t, tolower, unlist, values, "values<-", which, which.max, width, "width<-", elementMetadata, endoapply, elementLengths, overlapsAny) importMethodsFrom(rtracklayer, chrom, close, getTable, "tableName<-", track, ucscTableQuery, trackNames, tableNames, import, import.gff, import.gff1, import.gff2, import.gff3, import.2bit, import.bed15, import.bw, import.ucsc, import.bed, import.bedGraph, import.chain, import.wig, seqinfo) importFrom(Biobase, listLen, rowMax, rowMin) importFrom(Biostrings, DNAStringSet, BStringSet, DNAString, BString, reverseComplement, readDNAStringSet, DNA_ALPHABET) importFrom(BiocGenerics, getObjectSlots) importFrom(biomaRt, getBM, useMart) importFrom(GenomicRanges, GRanges, renameSeqlevels) importFrom(Rsamtools, scanBamFlag, scanBamHeader, scanBam, ScanBamParam, scanFaIndex, scanFa) importFrom(graphics, par) importFrom(grDevices, boxplot.stats, col2rgb, colorRampPalette, extendrange, hsv, rgb2hsv) importFrom(grid, convertHeight, convertWidth, convertX, convertY, current.transform, current.viewport, current.vpTree, dataViewport, downViewport, gpar, grid.circle, grid.lines, grid.newpage, grid.polygon, grid.rect, grid.segments, grid.text, grid.yaxis, popViewport, pushViewport, stringHeight, stringWidth, unit, upViewport, viewport) importFrom(IRanges, IRanges, DataFrame) importFrom(XVector, subseq) importFrom(lattice, current.panel.limits, panel.abline, panel.grid, panel.lines, panel.points, panel.polygon, panel.segments, panel.xyplot, panel.text, trellis.par.get) importFrom(latticeExtra, panel.xyarea, panel.horizonplot) importFrom(RColorBrewer, brewer.pal) importFrom(rtracklayer, GenomicData, ucscGenomes, browserSession, BigWigFile, FastaFile, TwoBitFile) importFrom(stats, loess.smooth) importFrom(biovizBase, getBioColor) importFrom(utils, assignInNamespace, browseURL, head, write.table) ### export(".chrName", ".doCache", "AlignedReadTrack", "AnnotationTrack", "DetailsAnnotationTrack", "BiomartGeneRegionTrack", "DataTrack", "DisplayPars", "drawGD", "GeneRegionTrack", "GenomeAxisTrack", "IdeogramTrack", "UcscTrack", "as.list", "availableDefaultMapping", "availableDisplayPars", "clearSessionCache", "exportTracks", "plotTracks", "SequenceTrack") exportClasses("AlignedReadTrack", "AnnotationTrack", "DetailsAnnotationTrack", "BiomartGeneRegionTrack", "DataTrack", "DisplayPars", "GeneRegionTrack", "GenomeAxisTrack", "IdeogramTrack", "ImageMap", "SequenceTrack") exportMethods("[", "as.list", "chromosome", "chromosome<-", "coerce", "consolidateTrack", "coords", "coverage", "displayPars", "displayPars<-", "elementMetadata<-", "end", "end<-", "exon", "exon<-", "feature", "feature<-", "gene", "gene<-", "genome", "genome<-", "getPar", "group", "group<-", "head", "identifier", "identifier<-", "imageMap", "initialize", "length", "max", "min", "names", "names<-", "position", "range", "ranges", "score", "seqnames", "seqlevels", "seqinfo", "setPar", "split", "stacking", "stacking<-", "stacks", "start", "start<-", "strand", "strand<-", "subseq", "subset", "symbol", "symbol<-", "tags", "tail", "transcript", "transcript<-", "values", "values<-", "width", "width<-") Gviz/NEWS0000644000126300012640000001013012227067652013557 0ustar00biocbuildphs_compbioCHANGES IN VERSION 1.4.0 ------------------------- NEW FEATURES o The DataTrack class now comes with a new horizon plot type thanks to input from Ge Tan. SIGNIFICANT USER-VISIBLE CHANGES o isActiveSeq and isActiveSeq<- are deprecated in GenomicFeatures and their methods have been removed from Gviz. CHANGES IN VERSION 1.4.0 ------------------------- NEW FEATURES o BiomartGeneRegionTracks will now make use of the available CDS information in Ensembl. o The constructors to the AnnotationTrack, GeneRegionTrack, DataTrack and SequenceTrack classes now accept a character scalar that points to a file on the file system. A number of default parser functions have been implemented to read the standard file types. Alternatively, a user-defined import function can be provided. This feature also supports streaming from indexed file types like BAM or bigWig, in which case the data is fetched dynamically upon each plotting operation. o The mart object in BiomartGeneRegionTrack objects is now cached in order to speed up subsequent queries to the same mart. o When plotting DataTracks with type 'gradient' or 'heatmap', a color scale is plotted next to the regular y-axis to indicate the mapping of numeric values in the false color range. Thanks to Mark Heron for his code contribution. o Sample names can now be shown in heatmap-type plots by setting the 'showSampleNames' display parameter. SIGNIFICANT USER-VISIBLE CHANGES o Complete refactoring of the automatic font size adjustments to provide more reasonable defaults. o Tick labels on the genomic axis are now show in between tick marks when zoomed in to single nucleotide level. BUG FIXES o Fixed a bug in IdeogramTracks where all bands in the rounded caps at the edges of the Ideogram were missing. o The way genomic ranges are plotted is now according to the Lego block model suggested by Herve. This is only relevant when zooming in to the level of single nucleotides. o Tick labels on the genome axis show only significant digits now. o Sample ordering in heatmap plots is now correct. o Numerous little fixes. CHANGES IN VERSION 1.2.0 ------------------------- NEW FEATURES o A SequenceTrack class has been added to draw genomic sequence information on a Gviz plot. Possible inputs for the track are DNAStringSet objects or directly from BSgenome packages. o GeneRegionTracks can now deal with coding and non-coding regions by means of the feature property in combination with the thinBoxFeature display parameter. o StackedTracks now have a new display parameter 'reverseStacking' which reverts the horizontal ordering of stacked items. If set to TRUE, the lowest items are moved to the top of the stack, and vice versa. SIGNIFICANT USER-VISIBLE CHANGES o Updated the show methods for most tracks to give more meaningful and more compact information about the track's content. Availablability of data on other chromosomes than the currently active one should now be indicated. o IdeogramTracks can now be constructed from a cytoband table via the new bands argument in the constructor. o AnnotationTrack objects now by default draw connecting lines in a light gray color. This feature can be controlled via the col.line display parameter. o Sliding window summarization can now deal with NA values. o Exporting drawGD from the name space now to allow for sub-classing of GdObjects in other packages. o When building GeneRegionTracks from TranscriptDb objects the information about UTRs and coding regions is now retained. BUG FIXES o When zooming into the emty space between two grouped features, the connecting line will now be plotted for all classes inheriting from AnnotationTrack. o An error in calculating ylims when drawing AlignedReadTracks has been fixed. o Numerous other little fixes that mainly aim at improving performance. Gviz/R/0000755000126300012640000000000012227067646013271 5ustar00biocbuildphs_compbioGviz/R/AllClasses.R0000644000126300012640000030325612227067646015453 0ustar00biocbuildphs_compbio## All class definitions and constructors/initializers for the ## package. Note that some methods have to be defined in here as well ## because they are used as part of the initializers. Constructors ## and definitions that are exported in the name space are marked with ## (N) ##---------------------------------------------------------------------------------------------------------------------- ## Some usefull class unions to allow for NULL values in certain slots ##---------------------------------------------------------------------------------------------------------------------- setClassUnion("DfOrNULL", c("data.frame", "NULL")) setClassUnion("MartOrNULL", c("Mart", "NULL")) setClassUnion("FactorOrCharacterOrNULL", c("factor", "character", "NULL")) setClassUnion("NumericOrNULL", c("numeric", "NULL")) setClassUnion("ListOrEnv", c("list", "environment")) setClassUnion("GRangesOrIRanges", c("GRanges", "IRanges")) setClassUnion("NULLOrMissing", c("NULL", "missing")) setClassUnion("BSgenomeOrNULL", c("BSgenome", "NULL")) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## ImageMap: ## ## A class to hold HTML image map information ## Slots : ## o coords: a numeric matrix of rectangular image map cordinates, in the order x bl, y bl, x tr, y tr. Rownames are ## mandatory for the matrix and have to be unique ## o tags: a list of tags that are to be added to the tag, where the name of the list item is used as the ## tagname. The value of each list item has to be a named character vector, where the names must match back into ## the rownames of the 'coords' matrix ##---------------------------------------------------------------------------------------------------------------------- setClass("ImageMap", representation(coords="matrix", tags="list"), prototype=prototype(coords=matrix(1, ncol=4, nrow=0), tags=list())) ## Constructor ImageMap <- function(coords, tags) { if(!(is.matrix(coords) && is.numeric(coords) && ncol(coords)==4)) stop("'coords' must be a numeric matrix with 4 columns") rn <- rownames(coords) if(is.null(rn)) stop("Rownames must be set for the matrix in 'coords'") if(!is.list(tags) || is.null(names(tags)) || any(names(tags)=="") || !all(sapply(tags, is.character))) stop("'tags' must be a named list with character vector items.") n <- unique(unlist(sapply(tags, names))) if(is.null(n) || any(n=="")) stop("All items in the 'tags' list must be named character vectors.") m <- n %in% rn if(!all(m)) stop("The following values in the 'tags' list could not be mapped to the 'coords' matrix:\n", paste(n[!m], sep="", collapse=", ")) new("ImageMap", coords=coords, tags=tags) } ## Allow for NULL value slots setClassUnion("ImageMapOrNULL", c("ImageMap", "NULL")) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## DisplayPars: ## ## A class to control the plotting parameters for GdObjects ## Slots : ## o pars: an environment or a list containing parameter key value pairs ## The initial idea was for the class to uses pass by reference semantic, allowing to update the object ## without reassigning to a symbol. However this turned out to be problematic whenever a GdObject was ## copied and to avoid confusion with the users about unwanted side-effects we decided to deprecate this ## feature. ##---------------------------------------------------------------------------------------------------------------------- setClass("DisplayPars", representation(pars="ListOrEnv")) ## The initializer needs to create the environment, we can't take this ## directly from the class prototype since this would result in using ## the same environment all the time setMethod("initialize", "DisplayPars", function(.Object, ...) { e = new.env(hash=TRUE) args <- list(...) n <- names(args) if(any(n == "")) stop("All supplied arguments must be named.") .Object@pars <- args return(.Object) }) ## Constructor, all supplied arguments are added to the environment. DisplayPars <- function(...) { return(new("DisplayPars", ...)) } ## Update function and deprecation message to show that an old environment-based ## DisplayParameter object has been updated to a list-based object. .updateDp <- function(x, interactive=TRUE) { if(interactive) message("Note that the behaviour of the 'setPar' method has changed. You need to reassign the result to an ", "object for the side effects to happen. Pass-by-reference semantic is no longer supported.") if(class(x@pars)=="environment") { x@pars <- as.list(x@pars) message("The DisplayPars object has been updated to a list-based representation.") } return(x) } ## The accessor methods for the DisplayPars class. (they need to be in ## here because they are being called in the prototypes). For the ## setter method, the input can either be a named list, or a single ## keyword/value pair. The DisplayPars class was first implemented as ## an environment, so we essentially had pass by reference semantic here, ## and the object could be modified without the need to reassign to a ## symbol. However this somewhat broke the the R paradigm, and 'setPar' ## has been deprecated in favour of the more standard 'DisplayPars<-' ## replacement method. The getter methods either return the list ## of all parameters, or a subset of parameters if their names are ## provided as a character vector. Please note that for convenience ## the result is unlisted if only a single parameter is queried. setMethod("setPar", signature("DisplayPars", "list"), function(x, value, interactive=TRUE) { x <- .updateDp(x, interactive) x@pars[names(value)] <- value return(x) }) setMethod("setPar", signature("DisplayPars", "character"), function(x, name, value, interactive=TRUE) { x <- .updateDp(x, interactive) x@pars[[name]] <- value return(x) }) setReplaceMethod("displayPars", signature("DisplayPars", "list"), function(x, value) { x <- setPar(x, value, interactive=FALSE) return(x) }) setMethod("getPar", c("DisplayPars", "character"), function(x, name){ if(class(x@pars)=="environment") { name <- intersect(name, ls(x@pars, all.names=TRUE)) tmp <- mget(name, x@pars) }else{ name <- intersect(name, names(x@pars)) tmp <- x@pars[name] } tmp <- if(is.list(tmp) && length(tmp)==1) tmp[[1]] else tmp return(if(length(tmp)) tmp else NULL) }) setMethod("getPar", c("DisplayPars", "missing"), function(x) as.list(x@pars)) setMethod("displayPars", c("DisplayPars", "missing"), function(x) getPar(x)) setMethod("displayPars", c("DisplayPars", "character"), function(x, name) getPar(x, name)) setMethod("as.list", "DisplayPars", function(x) as(x, "list")) setAs("DisplayPars", "list", function(from, to) if(!is.null(from)) as.list(from@pars) else list()) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## InferredDisplayPars: ## ## A class to allow for querrying of available display parameters. Essentially this is a normal list with ## a bit of a fancyfied show method. ## Slots : ## o name: the name of the class ## o inheritance: a character vector indicating the inheritance structure ##---------------------------------------------------------------------------------------------------------------------- setClass("InferredDisplayPars", representation(name="character", inheritance="character"), contains="list") setMethod("as.list", "InferredDisplayPars", function(x) as(x, "list")) setAs("InferredDisplayPars", "list", function(from, to) {ll <- from@.Data; names(ll) <- names(from); ll}) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## GdObject: ## ## The GdObject is the parent of all Gviz objects in the system. ## This class is virtual. ## Slots: ## o dp: object of class DisplayPars to fine-tune the drawing. ## o name: the object name, used in the title panel if needed. ## o imageMap: an ImageMap object holding relevant image map information, or NULL ## A bunch of DisplayPars are set during object instantiation: ## o fontface, fontcolor, fontsize, fontfamily, lineheight, cex: default settings for ## all text unless specified someplace else. ## o col, lwd, lty, fill: default settings for all plotting elements unless specified ## somewhere else. ## o col.line, col.symbol: default colors for plot symbols and plot lines. The default is ## to take the value of the global col parameter. ## o col.frame: the color of the panel frame, if frame==TRUE ## o col.grid, lwd.grid, lty.grid, v and h: the default parameters for the grid plotting, ## both when type=="g" in DataTracks and when grid==TRUE ## o alpha: the transparancy for all track items. ## o background.title: the fill color for the title panel. Defaults to lightgray. ## o col.title: the font color for the title panel. Defaults to white. ## o cex.title: the expansion factor for the title panel. This effects the fontsize ## of both the title and the axis, if any. Defaults to NULL, which means that the ## text size is automatically adjusted to the available space. ## o fontfamily.title, fontface.title: the font family and font face for the title panel. ## Defaults to bold sans serif. ## o col.axis: the font and line color for the y axis, if any. Defaults to white. ## o cex.axis: the expansion factor for the axis annotation. Defaults to NULL, in which case ## it is computed based on the available space. ## o background.panel: the background color of the content panel. Defaults to transparent. ## o showTitle: boolean, controlling whether to plot a title panel. Although this can be ## set individually for each track, in multi-track plots there will still ## be an empty placeholder in case any of the other tracks include a title. The ## same holds true for axes. Note that the background color could be set to ## transparent in order to completely hide the title/axis panel. ## o showAxis: boolean, controlling whether to plot a y axis (only track types where axes ## are implemented). ## o grid: boolean, switching on/off the plotting of a grid. ## o collapse: collapse the content of the track to accomodate the minimum current ## device resolution ## o min.width, min.height: the minimum width and height in pixels to display. All ranges are expanded ## to this size in order to avoid rendering issues. ## o min.distance: the minimum pixel distance before collapsing range items, only if collapse==TRUE ## o frame: draw a frame around the track ## o size: the relative size of the track ## o ...: additional DisplayPars are allowed. Unless specified in one of the subclasses, ## those should take the value of a valid R color descriptors. The parameter names will ## later be matched to optional track item types as defined in the 'feature' range ## attribute, and all tracks of the matched types are colored accordingly. See the ## documentation of the 'GeneRegion' and 'AnnotationTrack' classes for details. ##---------------------------------------------------------------------------------------------------------------------- setClass("GdObject", representation=representation("VIRTUAL", dp="DisplayPars", name="character", imageMap="ImageMapOrNULL"), prototype=prototype(dp=DisplayPars(fontsize=12, fontcolor="black", cex=1, fontfamily="sans", fontface=1, lineheight=1, col=Gviz:::.DEFAULT_SYMBOL_COL, col.line=NULL, col.symbol=NULL, col.grid=Gviz:::.DEFAULT_SHADED_COL, col.frame="lightgray", lwd.grid=1, lty.grid="solid", v=-1, h=-1, alpha=1, fill=Gviz:::.DEFAULT_FILL_COL, lwd=1, lty="solid", background.title="lightgray", lwd.border.title=1, col.border.title="white", col.title="white", cex.title=NULL, rot.title=90, fontfamily.title="sans", fontface.title=2, col.axis="white", cex.axis=NULL, background.panel="transparent", showTitle=TRUE, showAxis=TRUE, grid=FALSE, collapse=TRUE, min.width=1, min.height=3, min.distance=1, frame=FALSE, size=1), name="GdObject", imageMap=NULL)) ## We need to set and query DisplayPars in the the initializer, hence ## the appropriate methods have to be defined here first. setMethod("setPar", signature("GdObject", "character"), function(x, name, value, interactive=TRUE) { newDp <- setPar(x@dp, name, value, interactive=interactive) x@dp <- newDp return(x) }) setMethod("setPar", signature("GdObject", "list"), function(x, value, interactive=TRUE) { newDp <- setPar(x@dp, value, interactive=interactive) x@dp <- newDp return(x) }) setReplaceMethod("displayPars", signature("GdObject", "list"), function(x, value) { x <- setPar(x, value, interactive=FALSE) return(x) }) setMethod("getPar", c("GdObject", "character"), function(x, name) getPar(x@dp, name)) setMethod("getPar", c("GdObject", "missing"), function(x) getPar(x@dp)) setMethod("displayPars", c("GdObject", "character"), function(x, name) getPar(x, name)) setMethod("displayPars", c("GdObject", "missing"), function(x) getPar(x)) ## We add everything that hasn't been clobbered up so far as ## additional DisplayParameters. Also, the dp slot must be ## re-initiated here in order to get a fresh environment for each ## instance of the class. setMethod("initialize", "GdObject", function(.Object, name, ...) { ## update the default parameters first .makeParMapping() .Object <- .updatePars(.Object, "GdObject") ## now rebuild the slot to get a new environment pars <- getPar(.Object) .Object@dp <- DisplayPars() .Object <- setPar(.Object, pars, interactive=FALSE) if(!missing(name)) .Object@name <- if(is.null(name)) "" else name ## Finally clobber up everything that's left .Object <- setPar(.Object, list(...), interactive=FALSE) return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## RangeTrack: ## ## Parent class for all region-like annotation tracks, storing information ## about start, end, strand, chromosome and the associated genome. ## Slots: ## o range: object of class GRangesOrIRanges containing all the necessary information ## for plotting. The content of the elementMetadata may vary between ## subclasses. The strand information may be provided in the form '+' for ## the Watson strand, '-' for the Crick strand or '*' for any of the two. ## o chromosome: a character vector giving the active chromosome for which the ## track is defined. Valid chromosome names are: ## - a single numeric character ## - a string, starting with 'chr', followed by any additional characters ## o genome: character giving the reference genome for which the track is defined. ##---------------------------------------------------------------------------------------------------------------------- setClass("RangeTrack", representation=representation("VIRTUAL", range="GRangesOrIRanges", chromosome="character", genome="character"), contains="GdObject", prototype=prototype(range=GRanges(), dp=DisplayPars(), genome="ANY", chromosome="chr1", name="RangeTrack")) ## Coercing all input to the appropriate form setMethod("initialize", "RangeTrack", function(.Object, range, chromosome, genome, ...) { ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "RangeTrack") if(!missing(chromosome) && !is.null(chromosome)) { .Object@chromosome <- .chrName(chromosome)[1] .Object@genome <- genome .Object@range <- range } .Object <- callNextMethod(.Object, ...) return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## ReferenceTrack: ## ## Parent class for all tracks that provide a reference to data somewhere on the file system. This class is virtual ## and only exists for the purpose of dispatching ## Slots: ## o stream: the import function to stream data of the disk. Needs to be able to handle the two mandatory arguments ## 'file' (a character containing a valid file path) and 'selection' (a GRanges object with the genomic region to plot) ## o reference: the path to the file containing the data ## o mapping: a default mapping between elementMetadata columns of the returned GRanges object from the import function ## and the elemenMetadata columns that make up the final track object ## o args: a list with the passed in constructor arguments during object instantiation. Those will be needed when ## fetching the data in order to fill all necessary slots ## o defaults: a list with the relevant default values to be used when neither 'mapping' nor 'args' provides the ## necessary information setClass("ReferenceTrack", representation=representation("VIRTUAL", stream="function", reference="character", mapping="list", args="list", defaults="list"), prototype=prototype(stream=function(x, selection){}, reference="~", mapping=list()), validity=function(object){ msg <- NULL if(!all(c("file", "selection") %in% names(formals(object@stream)))) msg <- "The streaming function in the 'stream' slot needs to define two arguments, 'file' and 'selection'" if(!file.exists(object@reference)) msg <- c(msg, sprintf("The referenced file '%s' does not exist", object@reference)) return(if(is.null(msg)) TRUE else msg) }) setMethod("initialize", "ReferenceTrack", function(.Object, stream, reference, mapping=list(), args=list(), defaults=list()) { .Object@stream <- stream .Object@reference <- reference .Object@mapping <- mapping .Object@args <- args .Object@defaults <- defaults validObject(.Object) return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## NumericTrack: ## ## Parent class for all annotation tracks that include numeric values. This is for ## dispatching purpose only. ##---------------------------------------------------------------------------------------------------------------------- setClass("NumericTrack", representation=representation("VIRTUAL"), prototype=prototype(name="NumericTrack", dp=DisplayPars()), contains="RangeTrack") ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## StackedTrack ## ## Parent class for all tracks that involve stacking. This is for ## dispatching purpose only. ## Slots: ## o stacking: character controlling the stacking of overlapping items on the final plot. ## One in 'hide', 'dense', 'squish', 'pack' or 'full'. ## o stacks: a numeric vector holding the current stacking information. Not usually set by the user. ## This is part of the prototype only ## o stackingValues: possible values of the stacking slot ## [c("hide", "dense", "squish", "pack", "full")] ##---------------------------------------------------------------------------------------------------------------------- setClass("StackedTrack", representation=representation("VIRTUAL", stacking="character", stacks="numeric"), prototype=prototype(name="StackedTrack", stacking="squish", stackingValues=c("hide", "dense", "squish", "pack", "full"), dp=DisplayPars(reverseStacking=FALSE, stackHeight=0.75)), contains="RangeTrack") ## Need to fill the stacks slot here, don't want to recompute all the time setMethod("initialize", "StackedTrack", function(.Object, stacking, ...) { ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "StackedTrack") pt <- getClass("StackedTrack")@prototype if(!missing(stacking)) { if(!all(stacking %in% pt@stackingValues)) stop("Problem initializing AnnotationTrack need the following values for 'stacking':", paste(pt@stackingValues, collpase=", "), "\n") .Object@stacking <- stacking r <- list(...)$range ##stacks <- if(length(r)>0) disjointBins(ranges(r)) else 0 ##.Object@stacks <- stacks .Object@stacks <- numeric() } .Object <- callNextMethod(.Object, ...) return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## AnnotationTrack: ## ## A generic Annotation track, storing information about start, end, chromosome, ## strand and the associated genome. ## Slots: no additional formal slots are defined, but the following are part of the prototype ## o columns: column names that are allowed as part of the internal GRanges object in ## the ranges slot [c("feature", "group")] ## o featureColumnName: the column in the internal RangedData object identifying the ## feature type ["feature"]. If a display parameter of the same name is specified ## the software will use its value for the coloring. ## A bunch of DisplayPars are set during object instantiation: ## o fill: the fill color for untyped items. Defaults to lightblue. ## o col: the border color for all track items. This is also used to connect grouped items. ## o lty, lwd: the line type and width for all track items. This is also used to connect grouped items. ## o lex: the line expansion factor ## o fontsize, fontfamily, fontface, fontcolor: the face, size, family and color for the ## annotation text (i.e., the track item IDs) ## o cex: the font expansion factor. ## o size: the relative size of the track, if not explicitely set in the plotTracks function. ## o lineheight: the text lineheight ## o showId: boolean controlling whether to plot track item identifiers ## o showFeatureId: boolean controlling whether to annotate individual exons ## o col.group, cex.group=0.7, fontface.group=2: the font color, size and face for the ## group-level annotation ## o shape: the shape used for the annotation items. Currently only 'box' and 'arrow' are implemented. ## o rotation: the rotation of the item annotation in degrees. ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("AnnotationTrack", contains="StackedTrack", prototype=prototype(columns=c("feature", "group", "id"), stacking="squish", name="AnnotationTrack", dp=DisplayPars(fill="lightblue", col="transparent", col.line="darkgray", lty="solid", lwd=1, lex=1, fontsize=12, fontcolor="white", fontfamily="sans", fontface=1, cex.group=0.6, fontface.group=2, fontcolor.group=Gviz:::.DEFAULT_SHADED_COL, cex=1, size=1, lineheight=1, showId=FALSE, showFeatureId=FALSE, shape="arrow", rotation=0, showOverplotting=FALSE, mergeGroups=FALSE))) ## Essentially we just check for the correct GRanges columns here setMethod("initialize", "AnnotationTrack", function(.Object, ...) { if(is.null(list(...)$range) && is.null(list(...)$genome) && is.null(list(...)$chromosome)) return(.Object) ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "AnnotationTrack") range <- list(...)$range if(!is.null(range) && length(.Object)) { if(!all(.Object@columns %in% colnames(values(range)))) stop(paste("Problem initializing AnnotationTrack need the following columns:", paste(.Object@columns, collpase = ", ")), "\n") grp <- if(is(.Object, "GeneRegionTrack")) values(range)$transcript else values(range)$group if(any(sapply(split(as.character(strand(range)), grp), function(x) length(unique(x))) != 1)) stop("Grouped elments of a RangeTrack can not be on opposing strands") } .Object <- callNextMethod() return(.Object) }) ## The file-based version of the AnnotationTrack class. This will mainly provide a means to dispatch to ## a special 'subset' method which should stream the necessary data from disk. setClass("ReferenceAnnotationTrack", contains=c("AnnotationTrack", "ReferenceTrack")) ## This just needs to set the appropriate slots that are being inherited from ReferenceTrack because the ## multiple inheritence has some strange features with regards to method selection setMethod("initialize", "ReferenceAnnotationTrack", function(.Object, stream, reference, mapping=list(), args=list(), defaults=list(), ...) { .Object <- selectMethod("initialize", "ReferenceTrack")(.Object=.Object, reference=reference, stream=stream, mapping=mapping, args=args, defaults=defaults) .Object <- callNextMethod() return(.Object) }) ## Constructor. The following arguments are supported: ## o range: a data.frame or a GRanges object containing the information ## about the track items. If a data.frame, it needs to be coerceable ## to a GRanges object, i.e., it needs at least the mandatory 'start', 'stop' and ## 'strand' columns. Additional optional columns are: ## - feature: the type of the item. Can be mapped to colors via the DisplayPars. ## - group: a grouping factor to connect track items. ## - id: a unique identifier for a feature. This will be plotted if showId==TRUE ## Note that internally we use the value of ID as the seqnames slot in the ## internal GRanges object. Defaults for all missing columns are generated. ## Instead of using the 'range' parameter, all these values can also be passed as ## individual vectors, in which case they need to be of similar length. ## o start, end, width: numeric vectors of the item start and end coordinates ## o strand: the strand information may be provided in the form '+' for ## the Watson strand, '-' for the Crick strand or '*' for any of the two. ## o feature, group, id: individual vectors of equal length as described above. ## o genome, chromosome: the reference genome and active chromosome for the track. ## o stacking: character controlling the stacking of overlapping items. One in 'hide', ## 'dense', 'squish', 'pack' or 'full'. ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as further DisplayParameters ## (N) AnnotationTrack <- function(range=NULL, start=NULL, end=NULL, width=NULL, feature, group, id, strand, chromosome, genome, stacking="squish", name="AnnotationTrack", fun, selectFun, importFunction, stream=FALSE, ...) { ## Some defaults covars <- .getCovars(range) isStream <- FALSE if(!is.character(range)){ n <- max(c(length(start), length(end), length(width)), nrow(covars)) if(is.null(covars[["feature"]]) && missing(feature)) feature <- rep("unknown", n) if(is.null(covars[["id"]]) && missing(id)) id <- make.unique(rep(if(!is.null(feature)) as.character(feature) else covars[["feature"]], n)[1:n]) if(is.null(covars[["group"]]) && missing(group)) group <- seq_len(n) } ## Build a GRanges object from the inputs .missingToNull(c("feature", "group", "id", "strand", "chromosome", "importFunction", "genome")) args <- list(feature=feature, group=group, id=id, strand=strand, chromosome=chromosome, genome=genome) defs <- list(feature="unknown", group="unknown", id="unknown", strand="*", density=1, chromosome="chrNA", genome=NA) range <- .buildRange(range=range, groupId="group", start=start, end=end, width=width, args=args, defaults=defs, chromosome=chromosome, trackType="AnnotationTrack", importFun=importFunction, stream=stream) if(is.list(range)){ isStream <- TRUE slist <- range range <- GRanges() } ## Pipes have a special meaning for merged groups, so we can't have them in the initial group vector mcols(range)[["group"]] <- gsub("|", "", mcols(range)[["group"]], fixed=TRUE) ## If no chromosome was explicitely asked for we just take the first one in the GRanges object if(missing(chromosome) || is.null(chromosome)) chromosome <- if(length(range)>0) .chrName(as.character(seqnames(range)[1])) else "chrNA" ## And finally the object instantiation, we have to distinguish between DetailsAnnotationTracks and normal ones genome <- .getGenomeFromGRange(range, ifelse(is.null(genome), character(), genome[1])) if(missing(fun)) { if(!isStream){ return(new("AnnotationTrack", chromosome=chromosome[1], range=range, name=name, genome=genome, stacking=stacking, ...)) }else{ ## A bit hackish but for some functions we may want to know which track type we need but at the ## same time we do not want to enforce this as an additional argument e <- new.env() e[["._trackType"]] <- "AnnotationTrack" environment(slist[["stream"]]) <- e return(new("ReferenceAnnotationTrack", chromosome=chromosome[1], range=range, name=name, genome=genome, stacking=stacking, stream=slist[["stream"]], reference=slist[["reference"]], mapping=slist[["mapping"]], args=args, defaults=defs, ...)) } }else{ if(!is.function(fun)) stop("'fun' must be a function") if(missing(selectFun)) selectFun <- function(...) return(TRUE) if(!is.function(selectFun)) stop("'selectFun' must be a function") return(new("DetailsAnnotationTrack", chromosome=chromosome[1], range=range, name=name, genome=genome, stacking=stacking, fun=fun, selectFun=selectFun, ...)) } } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## DetailsAnnotationTrack is an AnnotationTrack for which each fearture (annotation) ## has a detail plot (e.g. a scatter plot e.g. using lattice). The details plot ## is generated by a user defined funnction that gets called internally with ## arguments start, end and chromosome for the feature. The details plots are placed ## on top of the AnnotationTrack. As details plots can take relatively much space ## compared to features of an AnnotationTrack it only makse sense to prove details ## for an AnnotationTrack with few features. The details plots are distributed evenly ## on top of the annotation and can be connected to their corresponding featurs (they're ## providing details for) with lines for better readability. ## ## The function must have the '...' arguments. All items from the list in ## detailsFunArgs get added as arguments to the function call as well as the ## arguments, start, end, chromosome and identifier. ## ## foo = function(...) { ## plot(densityplot(rnorm(1000), xlab=NA, ylab=NA), newpage=FALSE, prefix="foo") ## } ## ## Note, use plot with newpage=FALSE and an explicit prefix (otherwise plotting ## get more and more slow the more trellis plots you create!). See '?plot.trellis' ## for details. ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("DetailsAnnotationTrack", contains="AnnotationTrack", representation=representation(fun="function", selectFun="function"), prototype=prototype(fun=function(...){}, selectFun=function(...){return(TRUE)}, dp=DisplayPars( details.size=0.5, details.minWidth=100, detailsConnector.col="darkgray", detailsConnector.lty="dashed", detailsConnector.lwd=1, detailsConnector.pch=20, detailsConnector.cex=1, detailsBorder.lty="solid", detailsBorder.lwd=1, detailsBorder.col="darkgray", detailsBorder.fill="transparent", details.ratio=Inf, detailsFunArgs=list(), groupDetails=FALSE) )) DetailsAnnotationTrack <- function(...) AnnotationTrack(...) setMethod("initialize", "DetailsAnnotationTrack", function(.Object, fun, selectFun, ...) { ## the diplay parameter defaults .Object <- .updatePars(.Object, "DetailsAnnotationTrack") .makeParMapping() .Object@fun <- fun .Object@selectFun <- selectFun .Object <- callNextMethod() return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## GeneRegionTrack: ## ## A track containing all genes in a particular region. The data are usually fetched dynamially ## from an online data store. Of course it would ## also be possible to manully construct an object from local data. Particular data sources ## should be implemented as sub-classes, this is just the commone denominator that is being ## used for plotting later on. There are several levels of data associated to a GeneRegionTrack: ## - exon level: identifiers are stored in the exon column of the GRanges object. Data may be extracted ## using the 'exons' method. ## - transcript level: identifiers are stored in the transcript column of the GRanges object. ## Data may be extracted using the 'transcripts' method. ## - gene level: identifiers are stored in the gene column of the GRanges object, more human-readable ## versions in the symbol column. Data may be extracted using the 'genes' or the 'symbols' methods. ## - transcript-type level: information is stored in the feature column of the GRanges object. ## If a display parameter of the same name is specified the software will use its value for the coloring. ## Slots: no additional formal slots are defined, but the following are part of the prototype ## o columns: column names that are allowed as part of the internal GRanges object in ## the ranges slot [c("feature", "transcript", "symbol", "gene")] ## A bunch of DisplayPars are set during object instantiation: ## o fill: the fill color for untyped items. Defaults to lightblue. ## o col: the border color for all track items. This is also used to connect grouped items. ## o alpha: the transparancy for all track items. ## o lty, lwd: the line type and width for all track items. This is also used to connect grouped items. ## o lex: the line expansion factor ## o fontsize, fontfamily, fontface, fontcolor: the face, size, family and color for the ## annotation text (i.e., the track item IDs) ## o cex: the font expansion factor. ## o lineheight: the text lineheight ## o showId: boolean controlling whether to plot group identifiers, e.g, gene symbols or transcript IDs. ## o geneSymbols: boolean controlling whether to use gene symbols or gene ids as gene annotations ## o shape: the shape used for the annotation items. Currently only 'box' and 'arrow' are implemented. ## o rotation: the rotation of the exon annotation in degrees. ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("GeneRegionTrack", contains="AnnotationTrack", representation=representation(start="numeric", end="numeric"), prototype=prototype(columns=c("feature", "transcript", "symbol", "gene", "exon"), stacking="squish", stacks=0, start=0, end=0, name="GeneRegionTrack", dp=DisplayPars(fill="orange", min.distance=0, col=NULL, geneSymbols=TRUE, showExonId=FALSE, collapseTranscripts=FALSE, shape=c("smallArrow", "box"), thinBoxFeature=c("utr", "ncRNA", "utr3", "utr5", "3UTR", "5UTR", "miRNA", "lincRNA", "three_prime_UTR", "five_prime_UTR")))) ## Making sure all the display parameter defaults are being set setMethod("initialize", "GeneRegionTrack", function(.Object, start, end, ...){ if(is.null(list(...)$range) && is.null(list(...)$genome) && is.null(list(...)$chromosome)) return(.Object) ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "GeneRegionTrack") .Object@start <- ifelse(is.null(start), 0 , start) .Object@end <- ifelse(is.null(end), 0 , end) .Object <- callNextMethod() return(.Object) }) ## The file-based version of the GeneRegionTrack class. This will mainly provide a means to dispatch to ## a special 'subset' method which should stream the necessary data from disk. setClass("ReferenceGeneRegionTrack", contains=c("GeneRegionTrack", "ReferenceTrack")) ## This just needs to set the appropriate slots that are being inherited from ReferenceTrack because the ## multiple inheritence has some strange features with regards to method selection setMethod("initialize", "ReferenceGeneRegionTrack", function(.Object, stream, reference, mapping=list(), args=list(), defaults=list(), ...) { .Object <- selectMethod("initialize", "ReferenceTrack")(.Object=.Object, reference=reference, stream=stream, mapping=mapping, args=args, defaults=defaults) .Object <- callNextMethod() return(.Object) }) ## Constructor. The following arguments are supported: ## o range: one in a whole number of differerent potential inputs upon which the .buildRanges method will dispatch ## o start, end: numeric vectors of the track start and end coordinates. ## o genome, chromosome: the reference genome and active chromosome for the track. ## o rstarts, rends, rwidths: integer vectors of exon start and end locations or widths, or a character vector of ## comma-delimited exon locations, one vector element for each transcript ## o strand, feature, exon, transcript, gene, symbol, chromosome: vectors of equal length containing ## the exon strand, biotype, exon id, transcript id, gene id, human-readable gene symboland chromosome information ## o stacking: character controlling the stacking of overlapping items. One in 'hide', ## 'dense', 'squish', 'pack' or 'full'. ## o name: the name of the track. This will be used for the title panel. ## o exonList: boolean, causing the values in starts, rends or rwidths to be interpreted as delim-deparated ## lists that have to be exploded. All other annotation arguments will be repeated accordingly. ## o delim: the delimiter if coordinates are in a list ## All additional items in ... are being treated as DisplayParameters ## (N) GeneRegionTrack <- function(range=NULL, rstarts=NULL, rends=NULL, rwidths=NULL, strand, feature, exon, transcript, gene, symbol, chromosome, genome, stacking="squish", name="GeneRegionTrack", start=NULL, end=NULL, importFunction, stream=FALSE, ...) { ## Some defaults covars <- if(is.data.frame(range)) range else if(is(range, "GRanges")) as.data.frame(mcols(range)) else data.frame() isStream <- FALSE if(!is.character(range)){ n <- if(is.null(range)) max(c(length(start), length(end), length(width))) else if(is(range, "data.frame")) nrow(range) else length(range) if(is.null(covars[["feature"]]) && missing(feature)) feature <- rep("unknown", n) if(is.null(covars[["exon"]]) && missing(exon)) exon <- make.unique(rep(if(!missing(feature) && !is.null(feature)) as.character(feature) else covars[["feature"]], n)[1:n]) if(is.null(covars[["transcript"]]) && missing(transcript)) transcript <- paste("transcript", seq_len(n), sep="_") if(is.null(covars[["gene"]]) && missing(gene)) gene <- paste("gene", seq_len(n), sep="_") } ## Build a GRanges object from the inputs .missingToNull(c("feature", "exon", "transcript", "gene", "symbol", "strand", "chromosome", "importFunction", "genome")) args=list(feature=feature, id=exon, exon=exon, transcript=transcript, gene=gene, symbol=symbol, strand=strand, chromosome=chromosome, genome=genome) defs <- list(feature="unknown", id="unknown", exon="unknown", transcript="unknown", genome=NA, gene="unknown", symbol="unknown", strand="*", density=1, chromosome="chrNA") range <- .buildRange(range=range, groupId="transcript", start=rstarts, end=rends, width=rwidths, args=args, defaults=defs, chromosome=chromosome, tstart=start, tend=end, trackType="GeneRegionTrack", importFun=importFunction, genome=genome) if(is.list(range)){ isStream <- TRUE slist <- range range <- GRanges() } if(is.null(start)) start <- if(!length(range)) NULL else min(IRanges::start(range)) if(is.null(end)) end <- if(!length(range)) NULL else max(IRanges::end(range)) if(missing(chromosome) || is.null(chromosome)) chromosome <- if(length(range)>0) .chrName(as.character(seqnames(range)[1])) else "chrNA" genome <- .getGenomeFromGRange(range, ifelse(is.null(genome), character(), genome[1])) if(!isStream){ return(new("GeneRegionTrack", start=start, end=end, chromosome=chromosome[1], range=range, name=name, genome=genome, stacking=stacking, ...)) }else{ return(new("ReferenceGeneRegionTrack", start=start, end=end, chromosome=chromosome[1], range=range, name=name, genome=genome, stacking=stacking, stream=slist[["stream"]], reference=slist[["reference"]], mapping=slist[["mapping"]], args=args, defaults=defs, ...)) } } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## BiomartGeneRegionTrack: ## ## A GeneRegionTrack that fetches its information from Biomart ## Slots: ## o biomart: a biomaRt object providing the connection to the data source. ## currently we assume that this connects to a esembl_gene source for ## a particular organism. ## o filter: a named list of additional filters that are passed on to the Biomart query. ## This is defined only in the prototype: ## o columns: column names that are allowed as part of the internal GRanges object in ## the ranges slot [c("feature", "transcript", "symbol", "gene")] ## A bunch of DisplayPars are set during object instantiation, all of which are ## transcript types as returned from Biomart in the 'biotype' field. ## This class mainly exists for dispatching purpose and to keep things as flexible ## as possible, the actual plottable information is all contained in the parent ## class definition. ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("BiomartGeneRegionTrack", contains="GeneRegionTrack", representation=representation(biomart="MartOrNULL", filter="list"), prototype=prototype(biomart=NULL, filters=list(), columns=c("feature", "transcript", "symbol", "gene", "rank"), name="BiomartGeneRegionTrack", dp=DisplayPars(C_segment="burlywood4", D_segment="lightblue", J_segment="dodgerblue2", miRNA="cornflowerblue", miRNA_pseudogene="cornsilk", misc_RNA="cornsilk3", misc_RNA_pseudogene="cornsilk4", Mt_rRNA="yellow", Mt_tRNA="darkgoldenrod", Mt_tRNA_pseudogene="darkgoldenrod1", protein_coding="orange", utr5="orange", utr3="orange", pseudogene="brown1", retrotransposed="blueviolet", rRNA="darkolivegreen1", rRNA_pseudogene="darkolivegreen" , scRNA="gold4", scRNA_pseudogene="darkorange2", snoRNA="cyan", snoRNA_pseudogene="cyan2", snRNA="coral", snRNA_pseudogene="coral3", tRNA_pseudogene="antiquewhite3", V_segment="aquamarine"))) ## Retrieving information from Biomart. setMethod("initialize", "BiomartGeneRegionTrack", function(.Object, start, end, biomart, filters=list(), range, genome, chromosome, strand, ...){ if((missing(range) || is.null(range)) && is.null(genome) && is.null(chromosome)) return(.Object) ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "BiomartGeneRegionTrack") if(missing(start) || missing(end)) { .Object <- setPar(.Object, "size", 0, interactive=FALSE) return(.Object) } ## changing start and end positions to capture genes on the edges. sstart <- start - 2000 send <- end + 2000 ## fetching data from Biomart .Object@biomart <- biomart if (!is.null(.Object@biomart)) { attributes <- c("ensembl_gene_id","ensembl_transcript_id","ensembl_exon_id","exon_chrom_start", "exon_chrom_end", "rank", "strand", "external_gene_id", "gene_biotype", "chromosome_name", "5_utr_start", "5_utr_end", "3_utr_start", "3_utr_end", "phase") filterNames <- c("chromosome_name", "start", "end", names(filters)) filterValues <- c(list(gsub("^chr", "", chromosome), sstart, send), as.list(filters)) strand <- .strandName(strand, extended=TRUE) if(strand %in% 0:1) { filterNames <- c(filterNames, "strand") filterValues <- c(filterValues, c(1, -1)[strand+1]) } ens <- getBM(attributes, filters=filterNames, values=filterValues, bmHeader=FALSE, mart=.Object@biomart, uniqueRows=TRUE) colnames(ens) <- c("gene_id","transcript_id","exon_id","start", "end", "rank", "strand", "symbol", "biotype", "chromosome_name", "u5s", "u5e", "u3s", "u3e", "phase") ## We may have to split exons if they contain UTRs hasUtr <- !is.na(ens$u5s) | !is.na(ens$u3s) ensUtr <- ens[hasUtr,, drop=FALSE] ensUtr$feature <- ifelse(is.na(ensUtr$u5s), "utr3", "utr5") ensUtr$us <- ifelse(ensUtr$feature=="utr3", ensUtr$u3s, ensUtr$u5s) ensUtr$ue <- ifelse(ensUtr$feature=="utr3", ensUtr$u3e, ensUtr$u5e) ensUtr$u5e <- ensUtr$u5s <- ensUtr$u3e <- ensUtr$u3s <- NULL allUtr <- ensUtr$us == ensUtr$start & ensUtr$ue == ensUtr$end utrFinal <- ensUtr[allUtr,, drop=FALSE] ensUtr <- ensUtr[!allUtr,, drop=FALSE] ensUtrS <- split(ensUtr, ifelse(ensUtr$start==ensUtr$us, "left", "right")) utrFinal <- rbind(utrFinal, do.call(rbind, lapply(names(ensUtrS), function(i){ y <- ensUtrS[[i]] if(nrow(y)==0) return(NULL) yy <- y[rep(1:nrow(y), each=2),] sel <- seq(1, nrow(yy), by=2) yy[sel, "end"] <- if(i=="left") yy[sel, "ue"] else yy[sel, "us"]-1 yy[sel, "feature"] <- yy[sel, ifelse(i=="left", "feature", "biotype")] yy[sel, "phase"] <- if(i=="left") -1 else 0 sel <- seq(2, nrow(yy), by=2) yy[sel, "start"] <- if(i=="left") yy[sel, "ue"]+1 else yy[sel, "us"] yy[sel, "feature"] <- yy[sel, ifelse(i=="left", "biotype", "feature")] yy[sel, "phase"] <- if(i=="left") yy[sel, "phase"] else -1 yy }))) utrFinal$biotype <- utrFinal$feature keep <- c("gene_id","transcript_id","exon_id","start", "end", "rank", "strand", "symbol", "biotype", "chromosome_name", "phase") ens <- rbind(ens[!hasUtr,keep, drop=FALSE], utrFinal[,keep]) prefix <- ifelse(!grepl("^chr", chromosome) && getOption("ucscChromosomeNames"), "chr", "") range <- GRanges(seqnames=paste(prefix, .chrName(ens$chromosome_name), sep="")[seq_len(nrow(ens))], ranges=IRanges(start=ens$start, end=ens$end), strand=ens$strand, feature=as.character(ens$biotype), gene=as.character(ens$gene_id), exon=as.character(ens$exon_id), transcript=as.character(ens$transcript_id), symbol=as.character(ens$symbol), rank=as.numeric(ens$rank), phase=as.integer(ens$phase)) suppressWarnings(genome(range) <- unname(genome[1])) range <- sort(range) } if(length(range)==0) .Object <- setPar(.Object, "size", 0, interactive=FALSE) .Object <- callNextMethod(.Object=.Object, range=range, start=start, end=end, genome=genome, chromosome=chromosome, strand=strand, ...) return(.Object) }) ## Constructor. The following arguments are supported: ## o start, end: numeric vectors of the item start and end coordinates ## o biomart: a biomaRt object used to to query for gene annotations ## o genome, chromosome: the reference genome and active chromosome for the track. ## o strand: character, search for gene models on the plus strand ("+" or 0), the ## minus strand ("-" or 1) or both strands ("+-" or "-+" or 2) ## o stacking: character controlling the stacking of overlapping items. One in 'hide', ## 'dense', 'squish', 'pack' or 'full'. ## o filters: list of additional filters for the biomaRt query, where the item names ## are the filter identifiers and the item values are the filter values. ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as DisplayParameters ## (N) BiomartGeneRegionTrack <- function(start, end, biomart, chromosome, strand, genome, stacking="squish", filters=list(), name="BiomartGeneRegionTrack", ...) { ## Some default checking .missingToNull(c("genome")) if(missing(strand)) strand <- "*" if(missing(start) || missing(end)) stop("Need to specify a start and end for creating a BiomartGeneRegionTrack.") if(missing(chromosome)) stop("A chromosome must be specified for this annotation track.") chromosome <- .chrName(chromosome)[1] if(is.null(genome)) stop("A genome must be specified for this annotation track.") if(missing(biomart)) { if(is.null(genome)) stop("Need either a valid BiomaRt connection object or a UCSC genome identifier as the 'genome' argument.") biomart <- .genome2Dataset(genome) } new("BiomartGeneRegionTrack", start=start, end=end, chromosome=chromosome, strand=strand, biomart=biomart, name=name, genome=genome, stacking=stacking, filters=filters, ...) } ## This filters for genes with refseq IDs only .refseqFilter <- list("with_refseq_dna"=TRUE) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## GenomeAxisTrack: ## ## A track for the genome axis ## Slots: ## o range: an object of class GRanges containing ranges to be highlighted along the axis. ## A bunch of DisplayPars are set during object instantiation: ## o col: the color for the axis text, lines and tickmarks ## o fill.range: the fill color for the optional range annotation ## o col.range: the border color for the optional range annotation ## o fontsize: the font size for the axis annotation ## o showTitle: boolean, show or hide the title panel text ## o background.title: the background color of the title panel ## o cex: the cex value for the axis text ## o exponent: the exponent for the axis coordinates. E.g., 3 means mb, 6 means gb, etc. ## o distFromAxis: numeric, distance of text from the axis ## o labelPos: character giving the position of axis labels, one in "alternating", "revAlternating", ## "above" or "below" ## o add53: boolean, add a 5'->3' indicator ## o add35: boolean, add a 3'->5' indicator ## o littleTicks: boolean, add second level of smaller tick marks ## o size: the relative size of the track ## o col.id, cex.id: text settings for the optional range annotation ## o showId: boolean, show range annotation ## o scale: numeric, if not NULL a small scale is drawn instead of the full axis, ## if between 0 and 1 it is interpreted as a fraction of the region (otherwise absolute). ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("GenomeAxisTrack", contains="GdObject", representation=representation(range="GRanges"), prototype(range=GRanges(), name="GenomeAxisTrack", dp=DisplayPars(col="darkgray", fontcolor="#808080", fill.range="cornsilk3", col.range="cornsilk4", fontsize=10, showTitle=FALSE, background.title="transparent", cex=0.8, exponent=NULL, distFromAxis=1, labelPos="alternating", add53=FALSE, add35=FALSE, col.id="white", cex.id=0.7, showId=FALSE, littleTicks=FALSE, size=NULL, scale=NULL, lwd=2))) ## Only pass on the stuff to the GdObject initializer setMethod("initialize", "GenomeAxisTrack", function(.Object, range, ids, ...){ ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "GenomeAxisTrack") if(missing(range) || is.null(range)) range <- GRanges() if(is(range, "IRanges")) range <- GRanges(range=range, seqnames="dummy", id=ids) .Object@range <- range .Object<- callNextMethod() return(.Object) }) ## Constructor. The following arguments are supported: ## o range: an object of class 'GRanges' containing regions to be highlighted on the axis by colored boxes ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as DisplayParameters ## (N) GenomeAxisTrack <- function(range=NULL, name="Axis", id, ...) { if(missing(id)) id <- names(range) new("GenomeAxisTrack", name=name, range=range, id=id, ...) } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## DataTrack: ## ## A track for all sorts of quantitative values ## Slots: ## o data: a numeric matrix containing the data values ## A bunch of DisplayPars are set during object instantiation: ## o jitter.x, jitter.y, amount, factor: parameters controlling the jittering in xy-type plots. ## o span, degree, family, evaluation: parameters controlling the loess calculation. ## o col.mountain, fill.mountain, col.baseline, lwd.baseline, lty.baseline, baseline: ## parameters controlling the colors and the baseline position in mountain-type plots. ## o fill.histogram, col.histogram: fill and line colors for the histogram-type plots ## o box.ratio, box.width, varwidth, notch, notch.frac, levels.fos, stats, coef, do.out: ## parameters controlling the boxplot appearance ## o size: the relative size of the track ## o type: the plot type, one or several in c("p", "l", "b", "a", "s", "g", "r", "S", "smooth", ## "histogram", "mountain", "h", "boxplot", "gradient", "heatmap", "polygon") ## o cex: the default pixel size ## o ncolor, gradient: the number of colors and the base colors for the gradient type ## o collpase: collapse overlapping ranges ## o min.distance: the mimimum distance in pixel below which to collapse ## o window: average the rows of the data matrix to 'window' slices on the data range ## o separator: number of pixels used to separate individual samples in heatmap-type plots ## o transformation: a function applied on the data matrix prior to plotting. The function ## should accept exactly one argument and the return value needs to be a numeric vector ## which can be coerced back into a data matrix of identical dimensionality as the input ## data. ## o aggregation: a function to aggregate values in windows or for collapsed items. Either a ## function that collapses a numeric vector into a single number, or one of the predefined ## options "mean", "median", "sum" "min", "max" or "extreme". Defaults to "mean" ## o stackedBars: logical, draw stacked histograms if groups!=NULL. Else show grouped data as ## side-by-side bars. ## o na.rm: remove NA values before plotting ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("DataTrack", contains="NumericTrack", representation=representation(data="matrix", strand="character"), prototype=prototype(columns=c("score"), name="DataTrack", dp=DisplayPars(size=NULL, type="p", cex=0.7, jitter.x=FALSE, jitter.y=FALSE, factor=0.5, amount=NULL, span=1/5, degree=1, pch=20, family="symmetric", evaluation=50, col=trellis.par.get("superpose.line")[["col"]], col.mountain=NULL, lwd.mountain=NULL, lty.mountain=NULL, fill.mountain=c("#CCFFFF", "#FFCCFF"), baseline=NULL, col.baseline=NULL, lwd.baseline=NULL, lty.baseline=NULL, box.ratio=1, box.width=NULL, varwidth=FALSE, notch=FALSE, notch.frac=0.5, levels.fos=NULL, stats=boxplot.stats, coef=1.5, do.out=TRUE, transformation=NULL, ncolor=100, gradient=brewer.pal(9, "Blues"), min.distance=0, collapse=FALSE, window=NULL, windowSize=NULL, fill.histogram=NULL, col.histogram=Gviz:::.DEFAULT_SHADED_COL, stackedBars=TRUE, groups=NULL, separator=0, aggregation="mean", aggregateGroups=FALSE, ylim=NULL, na.rm=FALSE, showSampleNames=FALSE, cex.sampleNames=NULL, col.sampleNames="white", showColorBar=TRUE, horizon.origin=0, horizon.scale=NULL, fill.horizon=c("#B41414", "#E03231", "#F7A99C", "#9FC8DC", "#468CC8", "#0165B3"), col.horizon=NA))) ## Only pass on the stuff to the GdObject initializer setMethod("initialize", "DataTrack", function(.Object, data=matrix(), strand, ...){ ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "DataTrack") .Object@data <- data if(!missing(strand)) .Object@strand <- unique(strand) .Object <- callNextMethod() return(.Object) }) ## The file-based version of the DataTrack class. This will mainly provide a means to dispatch to ## a special 'subset' method which should stream the necessary data from disk. setClass("ReferenceDataTrack", contains=c("DataTrack", "ReferenceTrack")) ## This just needs to set the appropriate slots that are being inherited from ReferenceTrack because the ## multiple inheritence has some strange features with regards to method selection setMethod("initialize", "ReferenceDataTrack", function(.Object, stream, reference, mapping=list(), args=list(), defaults=list(), ...) { .Object <- selectMethod("initialize", "ReferenceTrack")(.Object=.Object, reference=reference, stream=stream, mapping=mapping, args=args, defaults=defaults) .Object <- callNextMethod() return(.Object) }) ## Constructor. The following arguments are supported: ## o range: an object of class 'GRanges' containing the data coordinates, or an object of class data.frame ## with the two mandatroy columns 'start' and 'end'. The coordinates (i.e., the length of the GRanges object) ## have to match the columns of the data matrix (see below). ## o data: a numeric matrix of data points with number of columns equal to the number of coordinates in 'range', ## or a numeric vector of appropriate length that will be coerced in such a one-row matrix. ## o start, end, width: numeric vectors of the item start and end coordinates, have to match the columns in 'data' ## o genome, chromosome: the reference genome and active chromosome for the track. ## o strand: character, display data on the plus strand ("+" or 0), the minus strand ("-" or 1) or both ## strands ("+-" or "-+" or 2). Currently has to be unique for the whole track. ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as DisplayParameters ## (N) DataTrack <- function(range=NULL, start=NULL, end=NULL, width=NULL, data, chromosome, strand, genome, name="DataTrack", importFunction, stream=FALSE, ...) { ## Build a GRanges object from the inputs wasGR <- is(range, "GRanges") || is.character(range) fromFile <- is.character(range) isStream <- FALSE .missingToNull(c("strand", "chromosome", "importFunction", "genome")) args <- list(strand=strand, chromosome=chromosome, genome=genome) defs <- list(strand="*", chromosome="chrNA") range <- .buildRange(range=range, start=start, end=end, width=width, args=args, defaults=defs, asIRanges=FALSE, chromosome=chromosome, genome=NA, trackType="DataTrack", importFun=importFunction, stream=stream) if(is.list(range)){ isStream <- TRUE slist <- range range <- GRanges() } ## Some default checking if(length(unique(strand(range)))>1) stop("The strand has to be unique for all ranges in a DataTrack object.") if(!missing(data)) { if(is.character(data)) { if(!wasGR) stop("Columns indices for the data section are only allowed when 'range' is of class 'GRanges'") mt <- is.na(match(data, colnames(values(range)))) if(any(mt)) warning("Unable to match data columns: ", paste(data[mt], collapse=",")) data <- as.data.frame(values(range)[,data[!mt], drop=FALSE]) } if(is.null(dim(data))) dim(data) <- c(1, length(data)) if(is.matrix(data)) data <- as.data.frame(t(data)) } else { data <- if(ncol(values(range))) as.data.frame(values(range)) else matrix(nrow=0, ncol=0) } data <- .prepareDtData(data, len=length(range)) if(missing(chromosome) || is.null(chromosome)) chromosome <- if(length(range)>0) .chrName(as.character(seqnames(range)[1])) else "chrNA" genome <- .getGenomeFromGRange(range, ifelse(is.null(genome), character(), genome[1])) values(range) <- NULL if(!isStream){ return(new("DataTrack", chromosome=chromosome, strand=as.character(strand(range)), range=range, name=name, genome=genome, data=data, ...)) }else{ ## A bit hackish but for some functions we may want to know which track type we need but at the ## same time we do not want to enforce this as an additional argument e <- new.env() e[["._trackType"]] <- "DataTrack" environment(slist[["stream"]]) <- e return(new("ReferenceDataTrack", chromosome=chromosome, strand=as.character(strand(range)), range=range, name=name, genome=genome, data=data, stream=slist[["stream"]], reference=slist[["reference"]], mapping=slist[["mapping"]], args=args, defaults=defs, ...)) } } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## IdeogramTrack: ## ## A track for chromosome ideograms ## A bunch of DisplayPars are set during object instantiation: ## o size: the relative size of the track ## o col, fill: the border and fill color used for the highlighted currently displayed region on the chromosome ## o fontcolor, fontface, fontfamily, fonsize, lineheight, cex : the color, family, face, size, lineheight and ## expansion factor for the chromosome name text ## o showId: indicate the chromosome name next to the ideogram ## o showBandId: show the identifiers of the chromosome bands ## o cex.bands: character expansion factor for the chromosome band information ## o bevel: the amount of beveling at the ends of the ideogram. A number between 0 and 1. ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("IdeogramTrack", contains = "RangeTrack", representation=representation(bandTable="data.frame"), prototype=prototype(name="IdeogramTrack", bandTable=data.frame(), dp=DisplayPars(size=NULL, col="red", fill="#FFE3E6", fontcolor="#808080", cex=0.8, fontsize=10, showTitle=FALSE, background.title="transparent", showId=TRUE, showBandId=FALSE, cex.bands=0.7, bevel=0.45))) ## Grab the chromosome band and length information from UCSC and fill the ranges slot. setMethod("initialize", "IdeogramTrack", function(.Object, genome, chromosome, bands, name, ...){ ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "IdeogramTrack") if(missing(bands)) bands <- NULL if(is.null(bands) && (missing(genome) || missing(chromosome))) return(callNextMethod(.Object=.Object, range=GRanges(), genome=NULL, chromosome=NULL, ...)) if(is.null(bands)){ sessionInfo <- .cacheGenomes(genome=genome) .Object@bandTable <- sessionInfo$bands bands <- sessionInfo$bands }else{ .checkClass(bands, "data.frame") cols <- c("chrom", "chromStart", "chromEnd", "name", "gieStain") miss <- ! cols %in% colnames(bands) if(any(miss)) stop(sprintf("The following column%s missing from the bands table: %s", ifelse(sum(miss)>1, "s are", " is"), paste(cols[miss], collapse=", "))) .Object@bandTable <- bands } chromosome <- if(is.null(chromosome)) as.character(bands[1, "chrom"]) else .chrName(chromosome)[1] bands <- bands[bands$chrom==chromosome,] if(nrow(bands)==0) stop("Chromosome '", chromosome, "' does not exist on UCSC genome '", genome, "'") if(is.null(name)) name <- .chrName(chromosome)[1] bnames <- as.character(bands$name) sel <- is.na(bnames) if(any(sel)) bnames[sel] <- paste("band", seq_len(sum(sel)), sep="_") ranges <- GRanges(seqnames=bnames, range=IRanges(start=bands$chromStart, end=bands$chromEnd), name=bnames, type=as.character(bands$gieStain)) .Object <- callNextMethod(.Object=.Object, range=ranges, genome=genome, chromosome=chromosome, name=name, ...) return(.Object) }) ## Constructor. The following arguments are supported: ## o genome, chromosome: the reference genome and active chromosome for the track. ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as DisplayParameters ## (N) IdeogramTrack <- function(chromosome=NULL, genome, name=NULL, bands=NULL, ...){ if(missing(genome)) stop("Need to specify genome for creating an IdeogramTrack") new("IdeogramTrack", chromosome=chromosome, genome=genome, name=name, bands=bands, ...) } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## UcscTrack: ## ## Strictly speaking this is not a class, but rather some sort of meta-constructor for several of the previously ## defined track types directly from UCSC data. It will fetch online data from a particular track (or a sub-table of ## a track) and feed it to one of the original constructors with user-provided argument mappings. ##---------------------------------------------------------------------------------------------------------------------- ## Constructor. The following arguments are supported: ## o track: a character of one of the available UCSC tracks ## o table: a character of one one of the sub-tables of the track, or NULL to fetch all ## o trackType: a character giving the name of the constructor to pass the data to, one in ## c("AnnotationTrack", "GeneRegionTrack", "DataTrack", "GenomeAxisTrack") ## o genome, chromosome: the reference genome and active chromosome for the track. ## o from: the starting and end coordinates of the track data ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as DisplayParameters ## A simple caching mechanism for UCSC session information. The overhead for establishing a connection to UCSC is ## quite significant and we can shave off 5 to 10 seconds here by caching sessions and associated information ## for a particular genome and chromosome. .ucscCache <- new.env() .ensemblCache <- new.env() .doCache <- function(token, expression, env, callEnv=environment()) { if(!token %in% ls(env)) { res <- eval(expression, envir=callEnv) assign(x=token, value=res, envir=env) res } else env[[token]] } .cacheTracks <- function(genome, chromosome, track, env=.ucscCache) { genomes <- .doCache("availableGenomes", expression(ucscGenomes()), env) if(!genome %in% as.character(genomes[,"db"])) stop("'", genome, "' is not a valid UCSC genome.") sessionToken <- paste("session", genome, sep="_") tracksToken <- paste("tracks", genome, sep="_") tablesToken <- paste("tables", track, genome, sep="_") cenv <- environment() session <- .doCache(sessionToken, expression({tmp <- browserSession() genome(tmp) <- genome tmp}), env, cenv) availTracks <- .doCache(tracksToken, expression(trackNames(session)), env, cenv) track <- match.arg(track, sort(c(availTracks, names(availTracks)))) if(!is.na(availTracks[track])) track <- availTracks[track] availTables <- .doCache(tablesToken, expression({query <- ucscTableQuery(session, track) sort(tableNames(query))}), env, cenv) chrInfo <- seqlengths(session) return(list(session=session, availTracks=availTracks, availTables=availTables, track=track, chrInfo=chrInfo)) } .cacheGenomes <- function(genome=NULL, env=.ucscCache) { availToken <- "availableGenomes" genomesToken <- paste("genomeBands", genome, sep="_") genomes <- .doCache(availToken, expression(ucscGenomes()), env) bands <- NULL if(!is.null(genome)) { cenv <- environment() bands <- .doCache(genomesToken, expression({ if(!genome %in% as.character(genomes[,"db"])) stop("'", genome, "' is not a valid UCSC genome.") sessionToken <- paste("session", genome, sep="_") session <- .doCache(sessionToken, expression({tmp <- browserSession() genome(tmp) <- genome tmp}), env, cenv) query <- tryCatch(ucscTableQuery(session, "cytoBandIdeo"), error=function(e) stop("There doesn't seem to be any cytoband data available for genome '", genome, "' at UCSC.")) getTable(query)}), env, cenv) } return(list(availableGenomes=genomes, bands=bands)) } ## empty the session cache clearSessionCache <- function(){ assignInNamespace(".ucscCache", new.env(), ns="Gviz") assignInNamespace(".ensemblCache", new.env(), ns="Gviz") } ## (N) UcscTrack <- function(track, table=NULL, trackType=c("AnnotationTrack", "GeneRegionTrack", "DataTrack", "GenomeAxisTrack"), genome, chromosome, name=NULL, from, to, ...) { trackType <- match.arg(trackType) if(missing(genome) || !IRanges:::isSingleString(genome)) stop("Need to specify genome for creating a UcscTrack") if(missing(chromosome)) stop("Need to specify chromosome for creating a UcscTrack") chromosome <- .chrName(chromosome)[1] sessionInfo <- .cacheTracks(genome=genome, chromosome=chromosome, track=track, env=.ucscCache) if(missing(from)) from <- 1 if(missing(to)) to <- sessionInfo$chrInfo[chromosome] gr <- GRanges(ranges=IRanges(start=from, end=to), seqnames=chromosome) suppressWarnings(genome(gr) <- unname(genome))[1] query <- ucscTableQuery(sessionInfo$session, sessionInfo$track, gr) if(!is.null(table)) { table <- match.arg(table, sessionInfo$availTables) tableName(query) <- table } if(is.null(name)) name <- if(is.null(table)) track else paste(sessionInfo$track, table) tableDat <- if(trackType=="DataTrack"){ tmp <- try(track(query, asRangedData=FALSE), silent=TRUE) if(is(tmp, "try-error")){ warning(tmp) data.frame() } else as.data.frame(tmp)} else { tmp <- try(getTable(query), silent=TRUE) if(is(tmp, "try-error")){ warning(tmp) data.frame() } else tmp} if(is(tmp, "try-error") && nrow(tableDat)==0) stop("Error fetching data from UCSC") args <- lapply(list(...), function(x) if(is.character(x) && length(x)==1) if(!x %in% colnames(tableDat)) x else tableDat[,x] else x) if(trackType=="GeneRegionTrack") { args$start <- from args$end <- to } args <- lapply(args, function(x) if(!length(x)) NULL else x) trackObject <- do.call(trackType, args=c(list(chromosome=chromosome, genome=genome, name=name), args)) return(trackObject) } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## AlignedReadTrack: ## ## A track to visualize sequence reads, as typically produced by NGS experiments ## Slots: no additional formal slots are defined ## A bunch of DisplayPars are set during object instantiation: ## o detail: the amount of plotting details to show for the aligned reads, one in c("reads", "coverage") ##---------------------------------------------------------------------------------------------------------------------- ## (N) setClass("AlignedReadTrack", representation=representation(coverage="list", coverageOnly="logical"), contains="StackedTrack", prototype=prototype(stacking="squish", name="AlignedReadTrack", coverageOnly=FALSE, dp=DisplayPars(detail="coverage", type="histogram", fill="#0080ff", size=NULL, collapse=FALSE))) ## Recompute coverage on plus and minus strand and combined strands for AlignedRead tracks ## and update the respective slot to hold this information setMethod("setCoverage", signature("AlignedReadTrack"), definition=function(GdObject){ if(length(GdObject)) { str <- factor(strand(GdObject), levels=c("+", "-")) gdSplit <- as.list(split(range(GdObject), str)) covs <- lapply(gdSplit, coverage) covs[["*"]] <- coverage(range(GdObject)) GdObject@coverage <- covs } return(GdObject) }) ## Essentially we just update the display parameters here and precompute the coverage setMethod("initialize", "AlignedReadTrack", function(.Object, coverageOnly=FALSE, ...) { ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "AlignedReadTrack") .Object <- callNextMethod() .Object <- setCoverage(.Object) if(coverageOnly) { ## from <- min(unlist(lapply(.Object@coverage, function(y) if(length(y)) min(start(y))))) ## to <- max(unlist(lapply(.Object@coverage, function(y) if(length(y)) max(end(y))))) from <- min(start(range(.Object))) to <- max(end(range(.Object))) .Object@range <- GRanges(range=IRanges(start=from, end=to), strand=names(.Object@coverage), seqnames=.Object@chromosome) .Object@coverageOnly <- coverageOnly } return(.Object) }) ## Constructor. The following arguments are supported: ## o range: a data.frame or a GRanges object containing the information ## about the track items. If a data.frame, it needs to be coerceable ## to a GRanges object, i.e., it needs at least the mandatory 'start', 'stop' and ## 'strand' columns. ## Instead of using the 'range' parameter, all these values can also be passed as ## individual vectors, in which case they need to be of similar length. ## o start, end, width: numeric vectors of the item start and end coordinates, or their widths ## o strand: the strand information needs to be provided in the form '+' for ## the Watson strand, '-' for the Crick strand. ## o genome, chromosome: the reference genome and active chromosome for the track. ## o stacking: character controlling the stacking of overlapping items. One in 'hide', ## 'dense', 'squish', 'pack' or 'full'. ## o name: the name of the track. This will be used for the title panel. ## All additional items in ... are being treated as further DisplayParameters ## (N) AlignedReadTrack <- function(range=NULL, start=NULL, end=NULL, width=NULL, chromosome, strand, genome, stacking="squish", name="AlignedReadTrack", coverageOnly=FALSE, ...) { .missingToNull(c("strand", "chromosome", "genome")) ## Build a GRanges object from the inputs range <- .buildRange(range=range, start=start, end=end, width=width, args=list(strand=strand, genome=genome, chromosome=chromosome), defaults=list(strand="+", genome=NA, chromosome="chrNA"), chromosome=chromosome, trackType="AlignedReadTrack") str <- unique(as.character(GenomicRanges::strand(range))) if("*" %in% str) stop("Only '+' and '-' strand information is allowed for AlignedReadTrack objects.") if(missing(chromosome) || is.null(chromosome)) chromosome <- if(length(range)>0) .chrName(as.character(seqnames(range)[1])) else "chrNA" ## And finally the object instantiation return(new("AlignedReadTrack", chromosome=chromosome, range=range, name=name, genome=genome(range)[1], stacking=stacking, coverageOnly=coverageOnly, ...)) } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## SequenceTrack: ## ## A generic track to visualize nucleotide sequences. This class is virtual. ## Slots: ## o chromosome: a character vector giving the active chromosome for which the ## track is defined. Valid chromosome names are: ## - a single numeric character ## - a string, starting with 'chr', followed by any additional characters ## o genome: character giving the reference genome for which the track is defined. ## A bunch of DisplayPars are set during object instantiation: ## o foo: bar setClass("SequenceTrack", representation=representation("VIRTUAL", chromosome="character", genome="character"), contains="GdObject", prototype=prototype(name="Sequence", dp=DisplayPars(size=NULL, fontcolor=getBioColor("DNA_BASES_N"), fontsize=10, fontface=2, lwd=2, col="darkgray", min.width=2, showTitle=FALSE, background.title="transparent", noLetters=FALSE, complement=FALSE, add53=FALSE), genome=as.character(NA), chromosome="chrNA")) ## Essentially we just update the display parameters here and set the chromosome and the genome setMethod("initialize", "SequenceTrack", function(.Object, chromosome, genome, ...) { ## the diplay parameter defaults .makeParMapping() .Object <- .updatePars(.Object, "SequenceTrack") if(!missing(chromosome) && !is.null(chromosome)){ .Object@chromosome <- .chrName(chromosome)[1] } if(missing(genome) || is.null(genome)) genome <- as.character(NA) .Object@genome <- genome .Object <- callNextMethod(.Object, ...) return(.Object) }) ## We want the following behaviour in the constructor: ## a) sequence is missing (NULL) => build SequenceDNAStringSetTrack with chromosome NA and genome as supplied or NA if missing ## b) sequence is DNAStringSet => build SequenceDNAStringSetTrack where chromosome is names(sequence)[1] or the supplied ## chromosome if available, and genome as supplied or NA if missing ## c) sequence is BSgenome => build SequenceBSgenomeTrack where chromosome is seqnames(sequence)[1] or the supplied ## chromosome if available, and genome is the supplied genome or the one extracted from the BSgenome object SequenceTrack <- function(sequence, chromosome, genome, name="SequenceTrack", importFunction, stream=FALSE, ...){ .missingToNull(c("chromosome", "genome", "sequence")) if(is.null(sequence)){ return(new("SequenceDNAStringSetTrack", chromosome=chromosome, genome=genome, name=name, ...)) } if(is(sequence, "BSgenome")){ if(is.null(genome)) genome <- providerVersion(sequence) if(is.null(chromosome)) chromosome <- seqnames(sequence)[1] obj <- new("SequenceBSgenomeTrack", sequence=sequence, chromosome=chromosome, genome=genome, name=name, ...) }else if(is(sequence, "DNAStringSet")){ if(is.null(names(sequence))) stop("The sequences in the DNAStringSet must be named") if(any(duplicated(names(sequence)))) stop("The sequence names in the DNAStringSet must be unique") if(is.null(chromosome)) chromosome <- names(sequence)[1] obj <- new("SequenceDNAStringSetTrack", sequence=sequence, chromosome=chromosome, genome=genome, name=name, ...) } else if(is.character(sequence)){ sequence <- sequence[1] if(!file.exists(sequence)) stop(sprintf("'%s' is not a valid file.", sequence)) ext <- .fileExtension(sequence) obj <- if(missing(importFunction) && ext %in% c("fa", "fasta")){ if(!file.exists(paste(sequence, "fai", sep="."))){ new("SequenceDNAStringSetTrack", sequence=readDNAStringSet(sequence), chromosome=chromosome, genome=genome, name=name, ...) }else{ new("ReferenceSequenceTrack", chromosome=chromosome, genome=genome, name=name, stream=.import.fasta, reference=path.expand(sequence), ...) } }else if(missing(importFunction) && ext == "2bit"){ new("ReferenceSequenceTrack", chromosome=chromosome, genome=genome, name=name, stream=.import.2bit, reference=path.expand(sequence), ...) }else{ if(missing(importFunction)){ stop(sprintf("No predefined import function exists for files with extension '%s'. Please manually provide an import function.", ext)) }else{ if(!stream){ seq <- importFunction(file=sequence) if(!is(seq, "DNAStringSet")) stop("The import function did not provide a valid DNAStringSet object. Unable to build track from file '", sequence, "'") new("SequenceDNAStringSetTrack", sequence=importFunction(file=sequence), chromosome=chromosome, genome=genome, name=name, ...) }else{ new("ReferenceSequenceTrack", chromosome=chromosome, genome=genome, name=name, stream=importFunction, reference=path.expand(sequence), ...) } } } }else{ stop("Argument sequence must be of class 'BSgenome', 'DNAStringSet' or 'character'") } return(obj) } ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## SequenceDNAStringSetTrack: ## ## A track to visualize nucleotide sequences that are stored in a DNSStringSet ## Slots: ## o sequence: a DNAStringSet object that contains all the sequence data ##---------------------------------------------------------------------------------------------------------------------- setClass("SequenceDNAStringSetTrack", representation=representation(sequence="DNAStringSet"), contains="SequenceTrack", prototype=prototype(sequence=DNAStringSet())) setMethod("initialize", "SequenceDNAStringSetTrack", function(.Object, sequence, ...) { if(missing(sequence) || is.null(sequence)) sequence <- DNAStringSet() .Object@sequence <- sequence .Object <- callNextMethod(.Object, ...) return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## SequenceBSgenomeTrack: ## ## A track to visualize nucleotide sequences that are stored in a BSgenome package ## Slots: ## o sequence: a DNAStringSet object that contains all the sequence data ## o pointerCache: an environemnt to hold pointers to the BSgenome sequences to prevent garbage collection. This ## will only be filled once the individual sequences have been accessed for the first time ##---------------------------------------------------------------------------------------------------------------------- setClass("SequenceBSgenomeTrack", representation=representation(sequence="BSgenomeOrNULL", pointerCache="environment"), contains="SequenceTrack", prototype=prototype(sequence=NULL)) setMethod("initialize", "SequenceBSgenomeTrack", function(.Object, sequence=NULL, ...) { .Object@sequence <- sequence .Object@pointerCache <- new.env() .Object <- callNextMethod(.Object, ...) return(.Object) }) ##---------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------- ## ReferenceSequenceTrack: ## ## The file-based version of the ReferenceTrack class. This will mainly provide a means to dispatch to ## a special 'subseq' method which should stream the necessary data from disk. setClass("ReferenceSequenceTrack", contains=c("SequenceDNAStringSetTrack", "ReferenceTrack")) ## This just needs to set the appropriate slots that are being inherited from ReferenceTrack because the ## multiple inheritence has some strange features with regards to method selection setMethod("initialize", "ReferenceSequenceTrack", function(.Object, stream, reference, ...) { .Object <- selectMethod("initialize", "ReferenceTrack")(.Object=.Object, reference=reference, stream=stream) .Object <- callNextMethod() return(.Object) }) Gviz/R/AllGenerics.R0000755000126300012640000000704112227067646015611 0ustar00biocbuildphs_compbio## ============================================================================================================================ ## All generic functions defined in the package ## ============================================================================================================================ ## Display parameter accessors setGeneric("setPar", function(x, value, ...) standardGeneric("setPar")) setGeneric("displayPars<-", function(x, value) standardGeneric("displayPars<-")) setGeneric("getPar", def = function(x, name, ...) standardGeneric("getPar")) setGeneric("displayPars", function(x, name, ...) standardGeneric("displayPars")) ## Annotation accessors setGeneric("gene", function(GdObject, ...) standardGeneric("gene")) setGeneric("gene<-", function(GdObject, value) standardGeneric("gene<-")) setGeneric("symbol", function(GdObject, ...) standardGeneric("symbol")) setGeneric("symbol<-", function(GdObject, value) standardGeneric("symbol<-")) setGeneric("transcript", function(GdObject, ...) standardGeneric("transcript")) setGeneric("transcript<-", function(GdObject, value) standardGeneric("transcript<-")) setGeneric("exon", function(GdObject, ...) standardGeneric("exon")) setGeneric("exon<-", function(GdObject, value) standardGeneric("exon<-")) setGeneric("feature", function(GdObject, ...) standardGeneric("feature")) setGeneric("feature<-", function(GdObject, value) standardGeneric("feature<-")) setGeneric("group", function(GdObject, ...) standardGeneric("group")) setGeneric("group<-", function(GdObject, value) standardGeneric("group<-")) setGeneric("identifier", function(GdObject, ...) standardGeneric("identifier")) setGeneric("identifier<-", function(GdObject, value) standardGeneric("identifier<-")) ## General accessors setGeneric("chromosome", function(GdObject, ...) standardGeneric("chromosome")) setGeneric("chromosome<-", function(GdObject, value) standardGeneric("chromosome<-")) setGeneric("[") setGeneric("position", function(GdObject, ...) standardGeneric("position")) setGeneric("imageMap", function(GdObject, ...) standardGeneric("imageMap")) setGeneric("imageMap<-", function(GdObject, value) standardGeneric("imageMap<-")) ##setGeneric("subset", function(x, ...) standardGeneric("subset")) setGeneric("coords", function(ImageMap, ...) standardGeneric("coords")) setGeneric("tags", function(ImageMap, ...) standardGeneric("tags")) ## Prepare tracks for plotting setGeneric("consolidateTrack", function(GdObject, ...) standardGeneric("consolidateTrack")) setGeneric("collapseTrack", function(GdObject, ...) standardGeneric("collapseTrack")) setGeneric("stacking", function(GdObject, ...) standardGeneric("stacking")) setGeneric("stacking<-", function(GdObject, value) standardGeneric("stacking<-")) setGeneric("stacks", function(GdObject, ...) standardGeneric("stacks")) setGeneric("setStacks", function(GdObject, ...) standardGeneric("setStacks")) setGeneric("setCoverage", function(GdObject, ...) standardGeneric("setCoverage")) ## Plotting methods setGeneric("drawAxis", function(GdObject, ...) standardGeneric("drawAxis")) setGeneric("drawGrid", function(GdObject, ...) standardGeneric("drawGrid")) setGeneric("drawGD", function(GdObject, ...) standardGeneric("drawGD")) ## We may need those for dispatch in the name space ##if(!isGeneric("lapply")) ## setGeneric("lapply") ##if(!isGeneric("sapply")) ## setGeneric("sapply") ##if(!isGeneric("head")) ## setGeneric("head") ##if(!isGeneric("split")) ## setGeneric("split") ## Internal methods setGeneric(".buildRange", function(range, start, end, width, ...) standardGeneric(".buildRange")) Gviz/R/Gviz-methods.R0000644000126300012640000062223712227067646016010 0ustar00biocbuildphs_compbio##---------------------------------------------------------------------------------------------------------------------------- ## Some rather general accessors to extract information from all kinds of GdObjects ##---------------------------------------------------------------------------------------------------------------------------- ## Extract the full GRanges object from the range slot of an object inheriting from RangeTrack setMethod("ranges", "RangeTrack", function(x) x@range) setReplaceMethod("ranges", "RangeTrack", function(x, value) { x@range <- value return(x)}) setMethod("ranges", "GenomeAxisTrack", function(x) x@range) setReplaceMethod("ranges", "GenomeAxisTrack", function(x, value) { x@range <- value return(x)}) ## Extract the IRanges part of the GRanges object from the range slot of an object inheriting from RangeTrack setMethod("range", "RangeTrack", function(x) ranges(x@range)) setMethod("range", "GenomeAxisTrack", function(x) ranges(x@range)) ## seqnames, levels and infofrom the range track setMethod("seqnames", "RangeTrack", function(x) as.character(seqnames(ranges(x)))) setMethod("seqnames", "SequenceDNAStringSetTrack", function(x) as.character(names(x@sequence))) setMethod("seqnames", "SequenceBSgenomeTrack", function(x) as.character(seqnames(x@sequence))) setMethod("seqlevels", "RangeTrack", function(x) unique(seqnames(x))) setMethod("seqlevels", "SequenceDNAStringSetTrack", function(x) seqnames(x)[width(x@sequence)>0]) setMethod("seqlevels", "SequenceBSgenomeTrack", function(x) seqnames) setMethod("seqinfo", "RangeTrack", function(x) table(seqnames(x))) ## Min and max ranges setMethod("min", "RangeTrack", function(x) min(start(x))) setMethod("max", "RangeTrack", function(x) max(end(x))) ## Extract start and end coordinates setMethod("start", "RangeTrack", function(x) if(length(x)) as.integer(start(range(x))) else NULL) setReplaceMethod("start", "RangeTrack", function(x, value) { start(x@range) <- value return(x)}) setReplaceMethod("start", "GenomeAxisTrack", function(x, value) { start(x@range) <- value return(x)}) setReplaceMethod("start", "IdeogramTrack", function(x, value) return(x)) setMethod("end", "RangeTrack", function(x) if(length(x)) as.integer(end(range(x))) else NULL) setReplaceMethod("end", "RangeTrack", function(x, value) { end(x@range) <- value return(x)}) setReplaceMethod("end", "GenomeAxisTrack", function(x, value) { end(x@range) <- value return(x)}) setReplaceMethod("end", "IdeogramTrack", function(x, value) return(x)) setMethod("width", "RangeTrack", function(x) if(length(x)) as.integer(width(range(x))) else NULL) setReplaceMethod("width", "RangeTrack", function(x, value) { width(x@range) <- value return(x)}) setReplaceMethod("width", "IdeogramTrack", function(x, value) return(x)) setMethod("start", "GenomeAxisTrack", function(x) if(length(x)) start(range(x)) else NULL) setMethod("end", "GenomeAxisTrack", function(x) if(length(x)) end(range(x)) else NULL) setMethod("width", "GenomeAxisTrack", function(x) if(length(x)) as.integer(width(range(x))) else NULL) setMethod("start", "IdeogramTrack", function(x) NULL) setMethod("start", "SequenceTrack", function(x) NULL) setMethod("end", "IdeogramTrack", function(x) NULL) setMethod("end", "SequenceTrack", function(x) NULL) setMethod("width", "IdeogramTrack", function(x) NULL) setMethod("width", "SequenceTrack", function(x) NULL) ## Return the number of individual annotation items (independent of any grouping) in a RangeTrack setMethod("length", "RangeTrack", function(x) sum(seqnames(x) == chromosome(x))) setMethod("length", "GenomeAxisTrack", function(x) length(ranges(x))) setMethod("length", "IdeogramTrack", function(x) length(ranges(x))) setMethod("length", "SequenceTrack", function(x) if(chromosome(x) %in% seqnames(x)) length(x@sequence[[chromosome(x)]]) else 0) ## setMethod("length", "ReferenceAnnotationTrack", function(x) 0) ## setMethod("length", "ReferenceGeneRegionTrack", function(x) 0) ## setMethod("length", "ReferenceDataTrack", function(x) 0) ## Extract the elementMetadata slot from the GRanges object of an object inheriting from RangeTrack as a data.frame. ## For a DataTrack object these values are stored as a numeric matrix in the data slot, and we return this instead. setMethod("values", "RangeTrack", function(x) as.data.frame(values(ranges(x)))) setMethod("values", "GenomeAxisTrack", function(x) as.data.frame(values(ranges(x)))) setMethod("values", "DataTrack", function(x, all=FALSE){ if(sum(dim(x@data))==0) x@data else{ sel <- if(all) rep(TRUE, ncol(x@data)) else seqnames(x) == chromosome(x) x@data[,sel, drop=FALSE] } }) setReplaceMethod("values", "DataTrack", function(x, value){ if(!is.matrix(value)) { if(!is.numeric(value) || length(value) != length(x)) stop("Invalid length of replacement vector.") if(!is.matrix(value) || !is.numeric(value) || ncol(value)!=length(x)) stop("Dimensions of replacement value do not match.") } x@data <- value return(x) }) ## Extract a subsequence from a SequenceTrack. For performance reasons we restrict this to a maximum ## of one million nucleotides (which is already more than plenty...) setMethod("subseq", "SequenceTrack", function(x, start=NA, end=NA, width=NA){ padding <- "-" if(!is.na(start[1]+end[1]+width[1])){ warning("All 'start', 'stop' and 'width' are provided, ignoring 'width'") width <- NA } ## We want start and end to be set if width is provided if(!is.na(width[1])){ if(is.na(start) && is.na(end)) stop("Two out of the three in 'start', 'end' and 'width' have to be provided") if(is.na(start)) start <- end-width[1]+1 if(is.na(end)) end <- start+width[1]-1 } w <- length(x) if(is.na(start)) start <- 1 if(w>0){ if(is.na(end)) end <- w rstart <- max(1, start[1], na.rm=TRUE) rend <- max(rstart, min(end[1], w, na.rm=TRUE)) }else{ if(is.na(end)) end <- start rend <- end rstart <- start } if(rend10e6) stop("Sequence is too big! Unable to extract") finalSeq <- rep(DNAString(padding), end-start+1) if(chromosome(x) %in% seqnames(x) && rend>rstart){ chrSeq <- x@sequence[[chromosome(x)]] seq <- subseq(chrSeq, start=rstart, end=rend) if(is(x, "SequenceBSgenomeTrack")) seq <- unmasked(seq) subseq(finalSeq, ifelse(start<1, abs(start)+2, 1), width=rend-rstart+1) <- seq } if(is(x, "SequenceBSgenomeTrack") && chromosome(x) %in% seqnames(x)) x@pointerCache[[chromosome(x)]] <- x@sequence[[chromosome(x)]] if(.dpOrDefault(x, "complement", FALSE)) finalSeq <- complement(finalSeq) return(finalSeq) }) setMethod("subseq", "ReferenceSequenceTrack", function(x, start=NA, end=NA, width=NA){ ## We want start and end to be set if width is provided if(!is.na(width[1])){ if(is.na(start) && is.na(end)) stop("Two out of the three in 'start', 'end' and 'width' have to be provided") if(is.na(start)) start <- end-width[1]+1 if(is.na(end)) end <- start+width[1]-1 } x@sequence <- x@stream(file=x@reference, selection=GRanges(chromosome(x), ranges=IRanges(start, end))) return(callNextMethod(x=x, start=start, end=end, width=width)) }) ## Set or extract the chromosome from a RangeTrack object setMethod("chromosome", "GdObject", function(GdObject) return(NULL)) setMethod("chromosome", "RangeTrack", function(GdObject) GdObject@chromosome) setMethod("chromosome", "SequenceTrack", function(GdObject) GdObject@chromosome) setReplaceMethod("chromosome", "GdObject", function(GdObject, value){ return(GdObject) }) setReplaceMethod("chromosome", "RangeTrack", function(GdObject, value){ GdObject@chromosome <- .chrName(value[1]) return(GdObject) }) setReplaceMethod("chromosome", "SequenceTrack", function(GdObject, value){ GdObject@chromosome <- .chrName(value[1]) return(GdObject) }) setReplaceMethod("chromosome", "IdeogramTrack", function(GdObject, value){ ## We have changed the class definition to include the bands for all chromosomes, but still want the old objects to work chromosome <- .chrName(value[1]) if(.hasSlot(GdObject, "bandTable") && chromosome %in% as.character(GdObject@bandTable$chrom)) { ranges <- GdObject@bandTable[GdObject@bandTable$chrom==chromosome,] bnames <- as.character(ranges$name) sel <- is.na(bnames) if(any(sel)) bnames[sel] <- paste("band", seq_len(sum(sel)), sep="_") ranges <- GRanges(seqnames=bnames, ranges=IRanges(start=ranges$chromStart, end=ranges$chromEnd), name=bnames, type=ranges$gieStain) GdObject@range <- ranges GdObject@chromosome <- chromosome return(GdObject) } message("Updating chromosome band information") tmp <- IdeogramTrack(genome=genome(GdObject), chromosome=.chrName(value[1]), name=names(GdObject)) displayPars(tmp) <- displayPars(GdObject) return(tmp) }) ## Set or extract the genome from a RangeTrack object setMethod("genome", "RangeTrack", function(x) x@genome) setMethod("genome", "SequenceTrack", function(x) x@genome) setReplaceMethod("genome", "GdObject", function(x, value){ return(x) }) setReplaceMethod("genome", "RangeTrack", function(x, value){ x@genome <- value[1] genome(ranges(x)) <- as.vector(value[1]) return(x) }) setReplaceMethod("genome", "IdeogramTrack", function(x, value){ if(genome(x)!=value) message("Updating chromosome band information") tmp <- IdeogramTrack(genome=value[1], chromosome=chromosome(x), name=names(x)) displayPars(tmp) <- displayPars(x) return(tmp) }) ## Set or extract the name slot of a GdObject setMethod("names", "GdObject", function(x) x@name) setReplaceMethod("names", signature("GdObject", "character"), function(x, value) { x@name <- value[1] return(x) }) ## Set or extract the strand information from a RangeTrack object setMethod("strand", "RangeTrack", function(x) as.character(strand(ranges(x)))) setMethod("strand", "GenomeAxisTrack", function(x) as.character(strand(ranges(x)))) setMethod("strand", "DataTrack", function(x) x@strand) setReplaceMethod("strand", "RangeTrack", function(x, value){ if(length(value)!=1 && length(value)!=length(x)) stop("Length of replacement value for the strand information does not match the ", "number of items in the track") r <- ranges(x) strand(r) <- value x@range <- r return(x) }) setReplaceMethod("strand", "DataTrack", function(x, value){ if(!is.character(value) && length(value)!=1 && !value %in% c("+", "-", "*")) stop("Invalid replacement value") x@strand <- value return(x) }) ## Allow for subsetting of RangeTrack and DataTrack objects setMethod("[", signature(x="RangeTrack"), function(x, i) { x <- .deepCopyPars(x) x@range <- x@range[i,] return(x)}) setMethod("[", signature(x="StackedTrack"), function(x, i) { x <- callNextMethod(x,i) x@stacks <- x@stacks[i] return(x)}) setMethod("[", signature(x="GenomeAxisTrack"), function(x, i) { x <- .deepCopyPars(x) x@range <- x@range[i,] return(x)}) setMethod("[", signature(x="IdeogramTrack"), function(x, i) return(x)) setMethod("[", signature(x="DataTrack"), function(x, i, j) { x <- .deepCopyPars(x) if(!missing(i)) { x@data <- x@data[i,, drop=FALSE] displayPars(x) <- list(groups=as.vector(displayPars(x, "groups")[i])) } if(!missing(j)) { x@range <- x@range[j,] if(ncol(x@data)>0) x@data <- x@data[,j, drop=FALSE] } return(x)}) setMethod("[", signature(x="AlignedReadTrack"), function(x, i) { if(x@coverageOnly) stop("This AlignedReadTrack object contains coverage information only and can not be subset") x@range <- x@range[i,] x <- setCoverage(x) return(x)}) ## Split a RangeTrack or DataTrack by a factor or character setMethod("split", signature("RangeTrack"), definition=function(x, f, ...){ rs <- split(ranges(x), factor(f)) lapply(rs, function(y) {x@range <- y; return(x)}) }) setMethod("split", signature("AlignedReadTrack"), definition=function(x, f, ...){ if(x@coverageOnly) stop("This AlignedReadTrack object contains coverage information only and can not be split") rs <- split(ranges(x), factor(f)) lapply(rs, function(y) {x@range <- y; x <- setCoverage(x); return(x)}) }) setMethod("split", signature("DataTrack"), definition=function(x, f, ...){ rs <- as.list(split(ranges(x), factor(f))) ds <- split(t(values(x)), f) nr <- nrow(values(x)) mapply(function(y, z) {x@range <- y; x@data <- matrix(z, nrow=nr, byrow=TRUE); return(x)}, rs, ds) }) ## Extract the coverage information setMethod("coverage", signature("AlignedReadTrack"), definition=function(x, strand="*"){ str <- c("+", "-", "*")[.strandName(strand, extended=TRUE)+1] return(if(!is.null(x@coverage[[str]])) x@coverage[[str]] else Rle()) }) ##---------------------------------------------------------------------------------------------------------------------------- ## There are several levels of annotation information for most RangeTrack objects: individual features (e.g. exons, biotype), ## groups (e.g. transcripts) and even groups of groups (e.g. genes). Not all are relevant for all subclasses, however we want ## to have accessors and replacement methods for a clean interface. ##---------------------------------------------------------------------------------------------------------------------------- ## Helper functions to extract or replace the various annotation data of a track. ## o GdObject: the input GeneRegionTrack track object ## o type: the annotation type, i.e., a column in the elementMetadata slot of the GRanges object ## o value: the replacement value, has to be of the same length as length(GdObject) .getAnn <- function(GdObject, type) return(as.character(values(GdObject)[[type]])) .setAnn <- function(GdObject, value, type) { v <- values(GdObject) if(length(value)>1 && length(value) != nrow(v)) stop("The length of the replacement value for the '", type, "' annotation does not match the number ", "of features in the track.") v[[type]] <- value elementMetadata(GdObject@range) <- v return(GdObject) } ## Accessors to the gene-level annotation of a GeneRegionTrack. We actually need two methods here, one for the ## human-readable gene symbols and one for the actual gene id setMethod("gene", signature(GdObject="GeneRegionTrack"), function(GdObject) .getAnn(GdObject, "gene")) setMethod("symbol", signature(GdObject="GeneRegionTrack"), function(GdObject) .getAnn(GdObject, "symbol")) setReplaceMethod("gene", signature("GeneRegionTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "gene")) setReplaceMethod("symbol", signature("GeneRegionTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "symbol")) ## Accessors to the transcript-level annotation of a GeneRegionTrack. setMethod("transcript", signature(GdObject="GeneRegionTrack"), function(GdObject) .getAnn(GdObject, "transcript")) setReplaceMethod("transcript", signature("GeneRegionTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "transcript")) ## Accessors to the exon-level annotation of a GeneRegionTrack setMethod("exon", signature(GdObject="GeneRegionTrack"), function(GdObject) .getAnn(GdObject, "exon")) setReplaceMethod("exon", signature("GeneRegionTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "exon")) ## Accessors to the biotype annotation of a RangeTrack. setMethod("feature", signature(GdObject="RangeTrack"), function(GdObject) .getAnn(GdObject, "feature")) setMethod("feature", signature(GdObject="DataTrack"), function(GdObject) NULL) setReplaceMethod("feature", signature("RangeTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "feature")) setReplaceMethod("feature", signature("DataTrack", "character"), function(GdObject, value) GdObject) ## Accessors to the grouping information of a AnnotationTrack and a GeneRegionTrack (for which this is essentially ## an alias to the transcript accessor. setMethod("group", "AnnotationTrack", function(GdObject) .getAnn(GdObject, "group")) setReplaceMethod("group", signature("AnnotationTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "group")) setMethod("group", "GeneRegionTrack", function(GdObject) transcript(GdObject)) setReplaceMethod("group", signature("GeneRegionTrack", "character"), function(GdObject, value) .setAnn(GdObject, value, "transcript")) setMethod("group", "GdObject", function(GdObject) NULL) ## extract or replace the content of the imageMap slot setMethod("imageMap", "GdObject", function(GdObject) GdObject@imageMap) setReplaceMethod("imageMap", signature("GdObject", "ImageMapOrNULL"), function(GdObject, value){ GdObject@imageMap <- value return(GdObject)}) ## Context-dependent meta-accessors to the identifier data of a AnnotationTrack and a GeneRegionTrack. For the former, those will ## be the content of the id column in the elementMetadata slot of the GRanges object, for the latter, either the gene ids ## (if gpar geneSymbols==FALSE) or the human-readable gene symbols (if gpar geneSymbols==TRUE). If lowest==TRUE the lowest-level ## annotation is returned, i.e., exon ids for GeneRegionTracks and id for AnnotationTracks. When using the identifiers as group ## labels we want to add some white space to separate the label from the last item in the group. This can be done by setting ## add.space=TRUE (is ignored if lowest==TRUE) setMethod("identifier", "AnnotationTrack", function(GdObject, lowest=FALSE, add.space=FALSE){ id <- if(lowest) .getAnn(GdObject, "id") else group(GdObject) if(!lowest && add.space && .dpOrDefault(GdObject, ".__hasAnno", TRUE)) id[id!=""] <- paste(id[id!=""], " ", sep="") return(id) }) setMethod("identifier", "GeneRegionTrack", function(GdObject, lowest=FALSE, add.space=FALSE){ id <- if(lowest) exon(GdObject) else if(.dpOrDefault(GdObject, "geneSymbols", TRUE)){ symbol(GdObject)} else gene(GdObject) id[is.na(id)] <- "NA" if(!lowest && add.space && .dpOrDefault(GdObject, ".__hasAnno", TRUE)) id[id!=""] <- paste(id[id!=""], " ", sep="") return(id) }) setReplaceMethod("identifier", c("AnnotationTrack", "character"), function(GdObject, value){ group(GdObject) <- value return(GdObject)}) setReplaceMethod("identifier", c("GeneRegionTrack", "character"), function(GdObject, value){ if(.dpOrDefault(GdObject, "geneSymbols", TRUE)) symbol(GdObject) <- value else gene(GdObject) <- value return(GdObject)}) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Stacking controls what to do with overlapping annotation regions. ##---------------------------------------------------------------------------------------------------------------------------- setMethod("stacking", "StackedTrack", function(GdObject) GdObject@stacking) setReplaceMethod("stacking", c("StackedTrack", "character"), function(GdObject, value) { pt <- getClass("StackedTrack")@prototype if(!all(value %in% pt@stackingValues)) stop("Problem initializing StackedTrack, need the following values for 'stacking':", paste(pt@stackingValues, collapse=", "), "\n") GdObject@stacking <- value displayPars(GdObject) <- list(stacking=value) return(GdObject) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Recompute or return the stacking information for different types of StackedTrack objects. Stacking in needed when ## annotation regions in the objects overlap and when the stacking type is set to squish, full or pack. Since stacking ## can be dependent on the available space (if feature annotation is added) we need to be able to recompute this before ## we start the actual plotting. For the different sub-classes of StackedTracks we need different behaviour of setStacks: ## o StackedTrack: there are no groups, so each feature can be treated separately ## o AnnotationTrack and GeneRegionTrack: features can be grouped, in which case we have to avoid overlapping of the whole group region, ## i.e, from the start of the first group item to the end of the last. In addition to grouping we have to factor in additional space ## before each group if group/transcript annotation is enabled (gpar showId==TRUE). To do so we need to figure out the current ## fontsize on the device, which means that a device already has to be open and the appropriate viewport has been ## pushed to the stack. Hence we have to call setStacks immediately before the actual plotting. ## 'stacks' should return a vector of stacks, where each factor level of the vector indicates membeship ## to a particular stacking level. 'setStacks' returns the updated GdObject. ##---------------------------------------------------------------------------------------------------------------------------- setMethod("stacks", "StackedTrack", function(GdObject) if(length(GdObject@stacks)) GdObject@stacks else NULL) setMethod("setStacks", "GdObject", function(GdObject, ...) GdObject) setMethod("setStacks", "StackedTrack", function(GdObject, ...) { bins <- if(!.needsStacking(GdObject)) rep(1, length(GdObject)) else disjointBins(range(GdObject)) GdObject@stacks <- bins return(GdObject) }) setMethod("setStacks", "AnnotationTrack", function(GdObject, from, to) { if(!.needsStacking(GdObject) || length(GdObject)==0) { bins <- rep(1, length(GdObject)) } else { uid <- if(is(GdObject, "GeneRegionTrack") && .dpOrDefault(GdObject, "collapseTranscripts", FALSE)) sprintf("uid%i", seq_along(identifier(GdObject))) else make.unique(identifier(GdObject, lowest=TRUE)) gp <- group(GdObject) needsGrp <- any(duplicated(gp)) gRanges <- if(!length(gp)){ IRanges() }else{ if(needsGrp){ groups <- split(range(GdObject), gp) uidSplit <- split(uid, gp) unlist(range(groups)) }else{ range(GdObject) } } if(.dpOrDefault(GdObject, ".__hasAnno", FALSE)) { cex <- .dpOrDefault(GdObject, "cex", 1) * .dpOrDefault(GdObject, "cex.symbol", 0.7) fontfamily <- .dpOrDefault(GdObject, "fontfamily", 1) fontsize <- .dpOrDefault(GdObject, "fontsize", 12) fontface <- .dpOrDefault(GdObject, "fontface.symbol", 2) pushViewport(dataViewport(xData=c(from, to), extension=0, yscale=c(0, 40), clip=TRUE, gp=gpar(cex=cex, fontfamily=fontfamily, fonface=fontface, fontsize=fontsize))) if(needsGrp) { ids <- sapply(split(identifier(GdObject, add.space=TRUE), gp), head, 1) start(gRanges) <- start(gRanges)-(as.numeric(convertWidth(stringWidth(ids),"native"))*1.3) } else { start(gRanges) <- start(gRanges)-(as.numeric(convertWidth(stringWidth(identifier(GdObject, add.space=TRUE)),"native"))*1.3) } popViewport(1) } bins <- if(needsGrp) rep(disjointBins(gRanges), sapply(groups, length)) else disjointBins(gRanges) names(bins) <- if(needsGrp) unlist(uidSplit) else uid bins <- bins[uid] } bins <- if(length(bins)) bins else 0 GdObject@stacks <- bins return(GdObject) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## In some cases we don't need a range but rather a single position. Most of the time this is simply taking the geometric ## mean of the range. If numeric values are associated to positions we have to be able to extract those as well. ##---------------------------------------------------------------------------------------------------------------------------- ## The geometric mean of annotation ranges setMethod("position", signature("RangeTrack"), definition=function(GdObject, from=NULL, to=NULL, sort=FALSE, ...) { if(!is.null(from) && !is.null(to)) GdObject <- subset(GdObject, from=from, to=to, sort=sort, ...) pos <- if(length(GdObject)) rowMeans(cbind(start(GdObject), end(GdObject))) else numeric() return(pos) }) setMethod("position", signature("IdeogramTrack"), definition=function(GdObject, ...) NULL) ## The numeric values of data tracks setMethod("score", signature("DataTrack"), function(x, from=NULL, to=NULL, sort=FALSE, transformation=TRUE, ...) { if(!is.null(from) && !is.null(to)) x <- subset(x, from=from, to=to, sort=sort, ...) vals <- values(x) ## apply data transformation if one is set up trans <- .dpOrDefault(x, "transformation") if(is.list(trans)) trans <- trans[[1]] if(transformation && !is.null(trans)) { if(!is.function(trans) || length(formals(trans))!=1L) stop("gpar 'transformation' must be a function with a single argument") test <- trans(vals) if(!is.numeric(test) || !is.matrix(test) || !all(dim(test) == dim(vals))) stop("The function in gpar 'transformation' results in invalid output.\n", "It has to return a numeric matrix with the same dimensions as the input data.") vals <- test } return(vals) }) ##---------------------------------------------------------------------------------------------------------------------------- ## Before starting of the plotting operation there are a bunch of housekeeping task that should be performed on each ## track, and the mileage may vary between track types, hence we add a layer of abstraction here by using a method. ## Available arguments are: ## o GdObject: the input track object ## o chromosome: the currently active chromosome which may have to set for a RangeTrack object ## o ...: additional arguments that are considered to be display parameters ##---------------------------------------------------------------------------------------------------------------------------- ## For all track types we want to update the display parameters setMethod("consolidateTrack", signature(GdObject="GdObject"), function(GdObject, ...) { pars <- list(...) pars <- pars[names(pars)!=""] displayPars(GdObject) <- pars return(GdObject) }) ## For RangeTracks and SequenceTracks we want to set the chromosome setMethod("consolidateTrack", signature(GdObject="RangeTrack"), function(GdObject, chromosome, ...) { if(!is.null(chromosome)) chromosome(GdObject) <- chromosome GdObject <- callNextMethod() return(GdObject) }) setMethod("consolidateTrack", signature(GdObject="SequenceTrack"), function(GdObject, chromosome, ...) { if(!is.null(chromosome)) chromosome(GdObject) <- chromosome GdObject <- callNextMethod() return(GdObject) }) ## For StackedTracks we want to set the stacking (which could have been passed in as a display parameter) setMethod("consolidateTrack", signature(GdObject="StackedTrack"), function(GdObject, ...) { GdObject <- callNextMethod() st <- displayPars(GdObject, "stacking") if(!is.null(st)) stacking(GdObject) <- st return(GdObject) }) ## For AnnotationTracks we need to determine whether there is group label annotation or not setMethod("consolidateTrack", signature(GdObject="AnnotationTrack"), function(GdObject, ...) { GdObject <- callNextMethod() ids <- identifier(GdObject) hasAnno <- .dpOrDefault(GdObject, "showId", FALSE) & !all(ids=="") displayPars(GdObject) <- list(".__hasAnno"=hasAnno) return(GdObject) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## There is a natural limit of what can be plotted as individual features caused by the maximum resolution of the device. ## Essentially no object can be smaller than the equivalent of a single pixel on the screen or whatever a pixel corresponds ## to on other devices. ## Thus we need to adapt the all objects in the track to the current resolution. Things that are closer than a certain limit ## distance can be collapsed (if that is desired), things that are smaller than 1 pixel can be blown up to a minimum size. ## All collapseTrack methods should always return a GdObject instance of similar type as the input to allow us to keep the ## collpasing step optional and for all the downstream plotting operations to still work. The internal (mostly the GRanges) ## objects can be modified to whatever is desired. Please note that this method is called after the drawing viewport has been ## pushed, and hence all the coordinate systems are already in place. ## Available arguments are: ## o GdObject: the input AnnotationTrack or GeneRegionTrack track object ## o min.width: the minimum width in pixel, everything that's smaller will be expanded to this size. ## o min.distance: the minimum distance between two features in pixels below which to start collapsing track items. ## o collapse: logical, collapse overlapping items into a single meta-item. ## o diff: the equivalent of 1 pixel in the native coordinate system. ## o xrange: the data range on the x axis. Can be used for some preliminary subsetting to speed things up ##---------------------------------------------------------------------------------------------------------------------------- ## A slightly quicker function to compute overlaps between two GRanges objects .myFindOverlaps <- function(gr1, gr2) { gr1 <- sort(gr1) gr2 <- sort(gr2) gr1 <- split(gr1, seqnames(gr1)) gr2 <-split(gr2, seqnames(gr2)) queryHits(findOverlaps(ranges(gr1), ranges(gr2))) } ## Find all elements in a GRanges object 'grange' width distance smaller than 'minXDist' and merge them along with their additional ## elementMetadata. 'elements' is a frequency table of items per group, and it is needed to figure out whether all items of a given ## group have been merged. 'GdObject' is the input tack object from which certain information has to be extracted. The output of this ## function is a list with elements ## o range: the updated GRanges object ## o needsRestacking: logical flag indicating whether stacks have to be recomputed ## o split: the original merged annotation (need to workon this, currently not needed) ## o merged: logical vector indicating which of the elements in 'range' constitute fully merged groups .collapseAnnotation <- function(grange, minXDist, elements, GdObject, offset=0) { needsRestacking <- TRUE annoSplit <- merged <- NULL anno <- as.data.frame(grange) for(i in colnames(anno)) if(is.factor(anno[,i])) anno[,i] <- as.character(anno[,i]) cols <- c("strand", "density", "gdensity", "feature", "id", "start", "end", if(is(GdObject, "GeneRegionTrack")) c("gene", "exon", "transcript", "symbol", "rank") else "group") missing <- which(!cols %in% colnames(anno)) for(i in missing) anno[,cols[missing]] <- if(cols[i]=="density") 1 else NA rRed <- if(length(grange)>1) reduce(grange, min.gapwidth=minXDist) else grange if(length(rRed) < length(grange)) { ## Some of the items have to be merged and we need to make sure that the additional annotation data that comes with it ## is processed in a sane way. needsRestacking <- TRUE ##mapping <- .myFindOverlaps(rRed, grange) mapping <- queryHits(findOverlaps(rRed, grange)) ## We start by finding the items that have not been reduced identical <- mapping %in% which(table(mapping)==1) newVals <- anno[identical,cols] ## Here we hijack the seqnames column to indicate whether the whole group has been merged if(nrow(newVals)){ newVals$seqnames <- elements[as.character(anno[identical,"seqnames"])]==1 newVals$gdensity <- ifelse(elements[as.character(anno[identical,"seqnames"])]==1, 1, NA) } ## Now find out which original items have been merged grange <- grange[!identical] rRed <- rRed[-(mapping[identical])] index <- mapping[!identical] annoSplit <- split(anno[!identical,], index) cid <- function(j) sprintf("[Cluster_%i] ", j+offset) ## FIXME: We could speed this up by running it in C newVals <- rbind(newVals, as.data.frame(t(sapply(seq_along(annoSplit), function(i){ x <- annoSplit[[i]] if(is(GdObject, "GeneRegionTrack")){ c(strand=ifelse(length(unique(x[,"strand"]))==1, as.character(x[1,"strand"]), "*"), density=sum(as.integer(x[,"density"])), gdensity=ifelse(is.na(head(x[,"gdensity"], 1)), 1, sum(as.integer(x[,"gdensity"]))), feature=ifelse(length(unique(x[,"feature"]))==1, as.character(x[1,"feature"]), "composite"), id=ifelse(length(unique(x[,"id"]))==1, as.character(x[1,"id"]), cid(i)), start=min(x[,"start"]), end=max(x[,"end"]), gene=ifelse(length(unique(x[,"gene"]))==1, as.character(x[1,"gene"]), cid(i)), exon=ifelse(length(unique(x[,"exon"]))==1, as.character(x[1,"exon"]), cid(i)), transcript=ifelse(length(unique(x[,"transcript"]))==1, as.character(x[1,"transcript"]), cid(i)), symbol=ifelse(length(unique(x[,"symbol"]))==1, as.character(x[1,"symbol"]), cid(i)), rank=min(as.integer(x[,"rank"])), seqnames=as.vector(nrow(x)==elements[x[1,"seqnames"]])) }else{ c(strand=ifelse(length(unique(x[,"strand"]))==1, as.character(x[1,"strand"]), "*"), density=sum(as.integer(x[,"density"])), gdensity=ifelse(is.na(head(x[,"gdensity"], 1)) , 1, sum(as.integer(x[,"gdensity"]))), feature=ifelse(length(unique(x[,"feature"]))==1, as.character(x[1,"feature"]), "composite"), id=ifelse(length(unique(x[,"id"]))==1, as.character(x[1,"id"]), cid(i)), start=min(x[,"start"]), end=max(x[,"end"]), group=ifelse(length(unique(x[,"group"]))==1, as.character(x[1,"group"]), cid(i)), seqnames=as.vector(nrow(x)==elements[x[1,"seqnames"]])) } })), stringsAsFactors=FALSE)) merged <- as.logical(newVals$seqnames) grange <- GRanges(seqnames=chromosome(GdObject), strand=newVals[, "strand"], ranges=IRanges(start=as.integer(newVals[, "start"]), end=as.integer(newVals[, "end"]))) cnMatch <- match(c(colnames(values(GdObject)), "gdensity"), colnames(newVals)) elementMetadata(grange) <- if(any(is.na(cnMatch))) newVals[, setdiff(colnames(newVals), c("strand", "start", "end", "seqnames"))] else newVals[, cnMatch] }else{ grange2 <- GRanges(seqnames=chromosome(GdObject), strand=strand(grange), ranges=ranges(grange)) elementMetadata(grange2) <- elementMetadata(grange) grange <- grange2 } return(list(range=grange, needsRestacking=needsRestacking, split=annoSplit, merged=merged, offset=length(annoSplit))) } ## For AnnotationTracks we need to collapse the all regions along with the additional annotation. ## For GeneRegionTracks we essentially need to do the same thing as for AnnotationTracks, however the additional annotation columns ## are quite different. We do this in multiple turn with increasing levels of complexity: ## 1.) merge all individual items within a group that can no longer be separated ## 2.) merge overlapping groups with just a single remaining item (optional, if mergeGroups==TRUE) setMethod("collapseTrack", signature(GdObject="AnnotationTrack"), function(GdObject, diff=.pxResolution(coord="x"), xrange) { ## We first add the original unmodified GdObject as a display parameter to be able to reference back if we ever need to displayPars(GdObject) <- list(".__OriginalGdObject"=.deepCopyPars(GdObject)) collapse <- .dpOrDefault(GdObject, "collapse", TRUE) min.width <- .dpOrDefault(GdObject, "min.width", 2) min.distance <- .dpOrDefault(GdObject, "min.distance", 2) minXDist <- max(0, ceiling(min.distance*diff)) r <- ranges(GdObject) ## Compute native coordinate equivalent to 1 pixel and resize rNew <- .resize(r, min.width, diff) needsRestacking <- any(r!=rNew) r <- rNew ## Collapse all items within a group to a single meta-item if (if collapseTranscripts==TRUE) if(is(GdObject, "GeneRegionTrack") && .dpOrDefault(GdObject, "collapseTranscripts", FALSE)){ newVals <- unlist(endoapply(split(values(r), paste(gene(GdObject), strand(GdObject))), head, 1)) newVals$exon <- NA newVals$transcript <- newVals$gene r <- unlist(range(split(r, gene(GdObject)))) elementMetadata(r) <- newVals GdObject@range <- r } ## Collapse overlapping ranges (less than minXDist space between them) and process the annotation data if(collapse) { ## Merge all items in those groups for which no individual items can be separated elements <- table(group(GdObject)) rr <- GRanges(seqnames=as.character(group(GdObject)), ranges=IRanges(start=start(r), end=end(r)), strand=strand(r)) elementMetadata(rr) <- elementMetadata(r) rr <- sort(unique(rr)) mergedAnn <- .collapseAnnotation(rr, minXDist, elements, GdObject) needsRestacking <- needsRestacking || mergedAnn$needsRestacking ## Now we take a look whether there are any groups that could be merged (if mergeGroups is TRUE) if(.dpOrDefault(GdObject, "mergeGroups", FALSE) && any(mergedAnn$merged)){ rr <- sort(mergedAnn$range[mergedAnn$merged]) strand(rr) <- "*" mergedAnn2 <- .collapseAnnotation(rr, minXDist, elements, GdObject, mergedAnn$offset) needsRestacking <- needsRestacking || mergedAnn2$needsRestacking mergedAnn$range <- c(mergedAnn$range[!mergedAnn$merged], mergedAnn2$range) } r <- mergedAnn$range } ## Reconstuct the track object and return GdObject@range <- r ##if(needsRestacking) GdObject <- setStacks(GdObject, xrange[1], xrange[2]) return(GdObject)}) .aggregator <- function(GdObject) { agFun <- .dpOrDefault(GdObject, "aggregation", "mean") if(is.list(agFun)) agFun <- agFun[[1]] fun <- if(is.character(agFun)) { switch(agFun, "mean"=rowMeans, "sum"=rowSums, "median"=rowMedians, "extreme"=function(x) apply(x, 1, .extreme), "min"=rowMin, "max"=rowMax, rowMeans) } else { if(is.function(agFun)){ function(x) apply(x, 1, agFun) }else stop("display parameter 'aggregation' has to be a function or a character", "scalar in c('mean', 'median', 'sum', 'extreme')") } return(fun) } ## For DataTracks we want to collapse data values using the aggregation function provided by calling .aggregator(). ## In addition values can be aggregated over fixed window slices when gpar 'window' is not NULL, and using a sliding ## window approach when 'window' == -1 setMethod("collapseTrack", signature(GdObject="DataTrack"), function(GdObject, diff=.pxResolution(coord="x"), xrange) { if(!length(GdObject)) return(GdObject) ## first the data transformation if needed values(GdObject) <- score(GdObject) collapse <- .dpOrDefault(GdObject, "collapse", FALSE) min.width <- .dpOrDefault(GdObject, "min.width", 2) min.distance <- max(0, .dpOrDefault(GdObject, "min.distance", 0)) ## When an averaging window has been set, split the data up into these average chunks window <- .dpOrDefault(GdObject, "window", NULL) windowSize <- .dpOrDefault(GdObject, "windowSize", NULL) if(!is.null(window) || collapse) GdObject <- GdObject[,order(range(GdObject))] r <- ranges(GdObject) drange <- c(floor(xrange[1]), ceiling(xrange[2])) if(!is.null(window)) { rr <- if(is(r, "GRanges")) ranges(r) else r fw <- FALSE if(window=="auto") window <- min(ncol(values(GdObject)), 1000, ceiling(width(range(rr))/(min.width*diff))) if(window=="fixed"){ fw <- TRUE window <- 100 } if(!is.numeric(window) || length(window)!=1L) stop("gpar 'window' must be a numeric scalar") window <- as.integer(window) sc <- values(GdObject) agFun <- .aggregator(GdObject) if(window==1) { sc <- matrix(agFun(sc), ncol=1) rtmp <- IRanges(start=max(1,drange[1]), end=max(1, drange[2]-1)) r <- if(is(r, "GRanges")) GRanges(seqnames=seqnames(r)[1], range=rtmp) else rtmp } else if(window<1){ if(is.null(windowSize)) windowSize <- (max(GdObject)-min(GdObject))/100 if(windowSize %% 2 !=1) windowSize <- windowSize+1 rm <- vector("integer", width(range(range(GdObject)))) ind <- unlist(mapply(function(x, y) x:y, start(GdObject), end(GdObject)))-min(GdObject)+1 rm[ind] <- rep(sc[1,], width(GdObject)) runwin <- suppressWarnings(runmean(Rle(as.numeric(rm)), k=windowSize, endrule="constant")) seqSel <- findRun(as.integer(position(GdObject))-min(GdObject)+1, runwin) newDat <- matrix(runValue(runwin)[seqSel], nrow=1) if(nrow(sc)>1) { newDat <- rbind(newDat, matrix(sapply(2:nrow(sc), function(x) { rm[ind] <- rep(sc[x,], width(GdObject)) suppressWarnings(runValue(runmean(Rle(as.numeric(rm)), k=windowSize, endrule="constant", na.rm=TRUE)))[seqSel]}), nrow=nrow(sc)-1, byrow=TRUE)) } sc <- newDat } else { if(!is.null(window) && window > diff(drange)) window <- diff(drange) if(!fw || is.null(windowSize)){ windowSize <- diff(drange) %/% window }else{ window <- max(1, diff(drange) %/% windowSize) } remain <- (diff(drange) - (window * windowSize))/2 ir <- IRanges(start=seq(from=drange[1]+remain, to=drange[2]-remain-windowSize, length.out=window), width=windowSize) if(remain>0) ir <- c(IRanges(start=drange[1], width=ceiling(remain)), ir, IRanges(start=drange[2]-ceiling(remain), width=ceiling(remain))) ol <- as.matrix(findOverlaps(ir, rr)) scn <- sapply(split(ol[,2], ol[,1]), function(i) agFun(sc[,i,drop=FALSE]), USE.NAMES=FALSE) if(is.null(dim(scn))) scn <- matrix(scn, nrow=nrow(values(GdObject)), dimnames=list(NULL, as.character(unique(ol[,1])))) sc <- matrix(NA, ncol=length(ir), nrow=nrow(scn)) sc[, as.integer(colnames(scn))] <- scn r <- if(is(r, "GRanges")) GRanges(seqnames=chromosome(GdObject), range=ir, strand=unique(as.character(strand(GdObject)))) else ir } GdObject@range <- r GdObject@data <- sc } ## If groups need to be averaged we have to do it here groups <- .dpOrDefault(GdObject, "groups") if(!is.null(groups) && .dpOrDefault(GdObject, "aggregateGroups", FALSE)){ if(!is.factor(groups)) groups <- factor(groups) agFun <- .aggregator(GdObject) dat <- values(GdObject) rownames(dat) <- groups datNew <- matrix(t(sapply(levels(groups), function(x) agFun(t(dat[groups==x,,drop=FALSE])), USE.NAMES=FALSE)), nrow=nlevels(groups)) GdObject@data <- datNew displayPars(GdObject) <- list(groups=levels(groups)) } ## Compute native coordinate equivalent to 1 pixel and resize r <- .resize(r, min.width, diff) ## Collapse overlapping ranges (less than minXDist space between them) including the associated attributes using ## "|" as separator. For both "strand" and "feature" we take the first available entry, which is not optimal but ## seems to be the sanest thing to do here... if(collapse) { minXDist <- min.distance*diff rr <- if(is(r, "GRanges")) ranges(r) else r if(minXDist<1) { ## We have to fake smaller ranges because reduce will merge also neigbouring ranges width(rr) <- width(rr)-1 rr <- reduce(rr, min.gapwidth=minXDist) width(rr) <- width(rr)+1 } else { rr <- reduce(r, min.gapwidth=minXDist) } sc <- values(GdObject) if(length(rr)==1){ r <- GRanges(seqnames=1, strand=strand(GdObject)[1], range=rr) GdObject@range <- r GdObject@data <- matrix(rowMeans(sc, na.rm=TRUE), ncol=1) } else if(length(rr) < length(r)){ startInd <- sort(unique(sapply(start(rr), function(x) which(start(r)==x)))) st <- strand(GdObject) startInd <- if(tail(startInd,1) == length(r)) c(startInd, length(r)+1) else c(startInd, length(r)) vsplit <- split(t(as.data.frame(sc, stringsAsFactors=FALSE)), cut(seq_len(length(r)), startInd, iclude.lowest=TRUE, right=FALSE)) agFun <- .dpOrDefault(GdObject, "aggregation", "mean") if(is.list(agFun)) agFun <- agFun[[1]] newScore <- if(is.character(agFun)){ switch(agFun, "mean"=sapply(vsplit, function(x) rowMeans(matrix(x, nrow=nrow(sc), byrow=TRUE), na.rm=TRUE), USE.NAMES=FALSE), "sum"=sapply(vsplit, function(x) rowSums(matrix(x, nrow=nrow(sc), byrow=TRUE), na.rm=TRUE), USE.NAMES=FALSE), "median"=sapply(vsplit, function(x) rowMedians(matrix(x, nrow=nrow(sc), byrow=TRUE), na.rm=TRUE), USE.NAMES=FALSE), sapply(vsplit, function(x) rowMeans(matrix(x, nrow=nrow(sc), byrow=TRUE), na.rm=TRUE), USE.NAMES=FALSE)) } else { if(is.function(agFun)){ sapply(vsplit, function(x) apply(matrix(x, nrow=nrow(sc), byrow=TRUE), 1, function(y) agFun(y)[1]), USE.NAMES=FALSE) } else stop("display parameter 'aggregation' has to be a function or a character ", "scalar in c('mean', 'median', 'sum')") } r <- GRanges(seqnames=seq_len(length(rr)), strand=st, range=rr) GdObject@data <- newScore GdObject@range <- r } } ## Reconstruct the RangedData object and return GdObject@range <- r return(GdObject) }) ## For a GenomeAxisTrack all we need to do is collapse the optional ranges setMethod("collapseTrack", signature(GdObject="GenomeAxisTrack"), function(GdObject, min.width=1, min.distance=0, collapse=TRUE, diff=.pxResolution(coord="x"), xrange) { ## Collapse overlapping ranges (less than minXDist space between them) including the associated attributes using ## "|" as separator. For both "strand" and "feature" we take the first available entry, which is not optimal but ## seems to be the sanest thing to do here... if(collapse) { GdObject <- GdObject[order(range(GdObject))] r <- ranges(GdObject) minXDist <- min.distance*diff r <- reduce(r, min.gapwidth=minXDist) } r <- .resize(r, min.width, diff) GdObject@range <- r return(GdObject)}) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Truncate a GdObject and sort by coordinates if necessary. ##---------------------------------------------------------------------------------------------------------------------------- ## The default is not to clip at all setMethod("subset", signature(x="GdObject"), function(x, ...) x) ## For normal ranges we clip everything outside of the boundaries (keeping one extra item left and right ## in order to assure continuation) setMethod("subset", signature(x="RangeTrack"), function(x, from=NULL, to=NULL, sort=FALSE, drop=TRUE, use.defaults=TRUE, ...){ ## Not needed anymore... ## Subset to a single chromosome first if(drop){ csel <- seqnames(x) != chromosome(x) if(any(csel)) x <- x[,!csel] } if(!length(x)) return(x) ranges <- if(use.defaults) .defaultRange(x, from=from, to=to) else c(from=ifelse(is.null(from), -Inf, from), to=ifelse(is.null(to), Inf, to)) lsel <- end(x) < ranges["from"] if(any(lsel)) lsel[max(0, max(which(lsel))-1)] <- FALSE rsel <- start(x) > ranges["to"] if(any(rsel)) rsel[min(length(x), min(which(rsel))+1)] <- FALSE if(any(lsel) || any(rsel)) x <- x[!(lsel | rsel),] if(sort) x <- x[order(range(x)),] return(x) }) ## For DataTracks we cut exactly, and also reduce to the current chromosome unless told explicitely not to setMethod("subset", signature(x="DataTrack"), function(x, from=NULL, to=NULL, sort=FALSE, drop=TRUE, use.defaults=TRUE, ...){ ## Subset to a single chromosome first if(drop){ csel <- seqnames(x) != chromosome(x) if(any(csel)) x <- x[,!csel] } if(!length(x)) return(x) ranges <- if(use.defaults) .defaultRange(x, from=from, to=to) else c(from=ifelse(is.null(from), -Inf, from), to=ifelse(is.null(to), Inf, to)) x <- x[,start(x)>=ranges["from"] & end(x)<=ranges["to"]] if(sort) x <- x[,order(range(x))] return(x) }) ## ReferenceDataTracks need to stream the data from file and then pass the results on to the next method setMethod("subset", signature(x="ReferenceDataTrack"), function(x, from, to, chromosome, ...){ ## We only need to reach out into the referenced file once if the range is already contained in the object if(missing(from) || is.null(from) || missing(to) || is.null(to)) stop("Need both start and end location to subset a ReferenceDataTrack") if(missing(chromosome) || is.null(chromosome)) chromosome <- Gviz::chromosome(x) subRegion <- GRanges(seqnames=chromosome[1], ranges=IRanges(start=from, end=to)) if(length(ranges(x))==0 || !all(overlapsAny(ranges(x),subRegion))){ vals <- x@stream(x@reference, subRegion) x@range <- vals mcols(x@range) <- NULL x@data <- .prepareDtData(if(ncol(values(vals))) as.data.frame(values(vals)) else matrix(nrow=0, ncol=0), length(vals)) chromosome(x) <- chromosome[1] } return(callNextMethod(x=x, from=from, to=to, drop=FALSE, ...)) }) ## Only recompute the stacks here setMethod("subset", signature(x="StackedTrack"), function(x, from=NULL, to=NULL, sort=FALSE, stacks=FALSE, ...){ x <- callNextMethod(x=x, from=from, to=to, sort=sort) if(stacks) x <- setStacks(x) return(x) }) ## In order to keep the grouping information for track regions in the clipped areas we have to ## keep all group elements that overlap with the range setMethod("subset", signature(x="AnnotationTrack"), function(x, from=NULL, to=NULL, sort=FALSE, stacks=FALSE, use.defaults=TRUE, ...){ ## Subset to a single chromosome first csel <- seqnames(x) != chromosome(x) if(any(csel)) x <- x[!csel] if(length(x)) { ## Nothing to do if everything is within the range ranges <- if(use.defaults) .defaultRange(x, from=from, to=to) else c(from=ifelse(is.null(from), -Inf, from), to=ifelse(is.null(to), Inf, to)) if(!(any(end(x) ranges["to"]))){ if(stacks) x <- setStacks(x) return(x) } ## Now remove everything except for the overlapping groups by first subselecting all groups in the range... granges <- unlist(range(split(ranges(x), group(x)))) gsel <- names(granges)[subjectHits(findOverlaps(GRanges(seqnames=chromosome(x), ranges=IRanges(ranges["from"], ranges["to"])), granges))] x <- x[group(x) %in% gsel] if(sort) x <- x[order(range(x)),] if(stacks) x <- setStacks(x) } return(x) }) ## ReferenceDataTracks need to stream the data from file and then pass the results on to the next method setMethod("subset", signature(x="ReferenceAnnotationTrack"), function(x, from, to, chromosome, ...){ ## We only need to reach out into the referenced file once if the range is already contained in the object if(missing(from) || is.null(from) || missing(to) || is.null(to)) stop("Need both start and end location to subset a ReferenceAnnotationTrack") if(missing(chromosome) || is.null(chromosome)) chromosome <- Gviz::chromosome(x) subRegion <- GRanges(seqnames=chromosome[1], ranges=IRanges(start=from, end=to)) if(length(ranges(x))==0 || all(overlapsAny(ranges(x),subRegion))){ cMap <- .resolveColMapping(x@stream(x@reference, subRegion), x@args, x@mapping) x@range <- .buildRange(cMap$data, args=cMap$args, defaults=x@defaults, trackType="AnnotationTrack") chromosome(x) <- chromosome[1] } return(callNextMethod(x=x, from=from, to=to, drop=FALSE, ...)) }) ## FIXME: Still needs to be implemented setMethod("subset", signature(x="ReferenceGeneRegionTrack"), function(x, ...){ warning("ReferenceGeneRegionTrack objects are not supported yet.") return(callNextMethod()) }) ## For the axis track we may have to clip the highlight ranges on the axis. setMethod("subset", signature(x="GenomeAxisTrack"), function(x, from=NULL, to=NULL, sort=FALSE, ...){ if(!length(x)) return(x) ranges <- .defaultRange(x, from=from, to=to) lsel <- end(x) < ranges["from"] rsel <- start(x) > ranges["to"] x <- x[!(lsel | rsel),] if(sort) x <- x[order(range(x)),] return(x) }) ## If the object only stores coverage we subset that, otherwise we can use the RangeTrack method setMethod("subset", signature(x="AlignedReadTrack"), function(x, from=NULL, to=NULL, sort=FALSE, stacks=FALSE, ...){ if(x@coverageOnly) { if(is.null(from)) from <- min(unlist(lapply(x@coverage, function(y) if(length(y)) min(start(y))))) if(is.null(to)) to <- max(unlist(lapply(x@coverage, function(y) if(length(y)) max(start(y))))) x@coverage <- lapply(x@coverage, function(y){runValue(y)[end(y)to] <- 0; y}) x@coverage <- lapply(x@coverage, function(y){ if (length(y) < to) y <- c(y, Rle(0, to-length(y))); y}) ## ##from <- min(unlist(lapply(x@coverage, function(y) if (length(y)) head(start(y), 2)[2]))) if (max(unlist(lapply(x@coverage, function(y) {length(runLength(y)[runValue(y)!=0])})))) { from <- min(unlist(lapply(x@coverage, function(y) if(length(y)) head(start(y)[runValue(y)!=0],1)))) to <- max(unlist(lapply(x@coverage, function(y) if(length(y)) tail(end(y),2)[1]))) } x@range <- GRanges(range=IRanges(start=from, end=to), strand=names(x@coverage), seqnames=x@chromosome) }else{ x <- callNextMethod(x=x, from=from, to=to, sort=sort, stacks=stacks) } return(x) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## The indivdual bits and pieces of a Gviz plot are all drawn by separate renderers. Currently, those are a y-axis, ## a grid, and the actual track panel. ##---------------------------------------------------------------------------------------------------------------------------- ## For certain GdObject subclasses we may want to draw a y-axis. For others an axis is meaningless, and the default function ## will return NULL without plotting anything. setMethod("drawAxis", signature(GdObject="GdObject"), function(GdObject, ...) return(NULL)) setMethod("drawAxis", signature(GdObject="DataTrack"), function(GdObject, ...) { if(as.logical(.dpOrDefault(GdObject, "legend", FALSE)) && !is.null(getPar(GdObject, ".__groupLevels"))){ pushViewport(viewport(y=1, height=unit(1, "npc") - unit(getPar(GdObject, ".__verticalSpace"), "inches"), just=c(0.5, 1))) on.exit(popViewport(1)) } type <- match.arg(.dpOrDefault(GdObject, "type", "p"), Gviz:::.PLOT_TYPES, several.ok=TRUE) isOnlyHoriz <- length(setdiff(type, "horizon")) == 0 if(!isOnlyHoriz && .dpOrDefault(GdObject, "showAxis", TRUE)) { callNextMethod() } else { return(NULL) } }) setMethod("drawAxis", signature(GdObject="NumericTrack"), function(GdObject, from, to, ...) { type <- match.arg(.dpOrDefault(GdObject, "type", "p"), Gviz:::.PLOT_TYPES, several.ok=TRUE) yvals <- values(GdObject) ylim <- .dpOrDefault(GdObject, "ylim", if(!is.null(yvals) && length(yvals)) range(yvals, na.rm=TRUE, finite=TRUE) else c(-1,1)) if(diff(ylim)==0) ylim <- ylim+c(-1,1) hSpaceAvail <- vpLocation()$isize["width"]/6 yscale <- extendrange(r=ylim, f=0.05) col <- .dpOrDefault(GdObject, "col.axis", "white") acex <- .dpOrDefault(GdObject, "cex.axis", NULL) acol <- .dpOrDefault(GdObject, "col.axis", "white") at <- pretty(yscale) at <- at[at>=sort(ylim)[1] & at<=sort(ylim)[2]] if(is.null(acex)) { vSpaceNeeded <- max(as.numeric(convertWidth(stringHeight(at), "inches")))*length(at)*1.5 hSpaceNeeded <- max(as.numeric(convertWidth(stringWidth(at), "inches"))) vSpaceAvail <- abs(diff(range(at)))/abs(diff(yscale))*vpLocation()$isize["height"] acex <- max(0.6, min(vSpaceAvail/vSpaceNeeded, hSpaceAvail/hSpaceNeeded)) } nlevs <- max(1, nlevels(factor(getPar(GdObject, "groups")))) if(type %in% c("heatmap", "horizon") && .dpOrDefault(GdObject, "showSampleNames", FALSE)){ groups <- .dpOrDefault(GdObject, "groups") sn <- if(is.null(groups)) rownames(values(GdObject)) else rev(unlist(split(rownames(values(GdObject)), factor(groups)))) cex.sn <- .dpOrDefault(GdObject, "cex.sampleNames", acex) col.cn <- .dpOrDefault(GdObject, "col.sampleNames", "white") wd <- max(as.numeric(convertWidth(stringWidth(sn) + unit(10, "points"), "npc"))) * cex.sn samNames <- viewport(x=1, width=wd, just=1, yscale=c(-0.05, 1.05)) pushViewport(samNames) nr <- nrow(values(GdObject)) if(nr > 1){ yy <- head(seq(0.05, 0.95, len=nr+1), -1) yy <- yy + diff(yy)[[1]]/2 }else{ yy <- 0.5 } grid.text(x=rep(0.5, nr), y=yy, label=rev(sn), just=0.5, gp=gpar(cex=cex.sn, col=col.cn)) popViewport(1) samAxis <- viewport(x=1-wd, width=1-wd, just=1) pushViewport(samAxis) on.exit(popViewport(1)) } ## if any of the types are gradient or heatmap we want the gradient scale if(any(type %in% c("gradient", "heatmap")) && .dpOrDefault(GdObject, "showColorBar", TRUE)){ ## viewport to hold the color strip shift <- ifelse(all(type %in% c("gradient", "heatmap")), 1, 0) pcols <- .getPlottingFeatures(GdObject) ncolor <- .dpOrDefault(GdObject, "ncolor", 100) vpAxisCont <- viewport(x=unit(1, "npc")-unit(2-shift, "points"), width=unit(1, "npc")-unit(2-shift, "points"), just=1) pushViewport(vpAxisCont) for(i in seq_len(nlevs)){ ## create color palette cr <- c("white", pcols$col[i]) if(nlevs<2) cr <- .dpOrDefault(GdObject, "gradient", cr) palette <- colorRampPalette(cr)(ncolor+5)[-(1:5)] pshift <- ifelse(i==nlevs, 1-shift, 0) vpTitleAxis <- viewport(x=unit(1, "npc")-unit(4*(i-1), "points"), width=unit(4+pshift, "points"), yscale=yscale, just=1) pushViewport(vpTitleAxis) ## draw a rectangle for each color if(all(type %in% c("gradient", "heatmap"))){ if(i==nlevs) suppressWarnings(grid.yaxis(gp=gpar(col=acol, cex=acex), at=at)) grid.rect(y=unit(seq(ylim[1],ylim[2],length.out=ncolor+1),"native")[-(ncolor+1)], x=unit(0, "npc")-unit(1, "points"), width=1, height=1/ncolor, gp=gpar(fill=palette, lty=0), just=c("left","bottom")) }else{ grid.rect(y=unit(seq(ylim[1],ylim[2],length.out=ncolor+1),"native")[-(ncolor+1)], x=0, width=1, height=1/ncolor, gp=gpar(fill=palette, lty=0), just=c("left","bottom")) if(i==nlevs){ suppressWarnings(grid.yaxis(gp=gpar(col=acol, cex=acex), at=at)) grid.lines(x=c(0,0), y=ylim, gp=gpar(col=acol), default.units="native") } } popViewport(1) } popViewport(1) } else { vpTitleAxis <- viewport(x=0.95, width=0.2, yscale=yscale, just=0) pushViewport(vpTitleAxis) suppressWarnings(grid.yaxis(gp=gpar(col=acol, cex=acex), at=at)) grid.lines(x=c(0,0), y=ylim, gp=gpar(col=acol), default.units="native") popViewport(1) } }) setMethod("drawAxis", signature(GdObject="AlignedReadTrack"), function(GdObject, from, to, subset=TRUE) { detail <- match.arg(.dpOrDefault(GdObject, "detail", "coverage"), c("coverage", "reads")) if(detail!="coverage") return(NULL) else { if(subset) GdObject <- subset(GdObject, from=from, to=to) cov <- coverage(GdObject, strand="*") val <- runValue(coverage(GdObject, strand="*")) ## We have to figure out the data range, taking transformation into account ylim <- .dpOrDefault(GdObject, "ylim") if(is.null(ylim)) { if(!length(val)) ylim=c(0,1) else{ ylim <- c(0, range(val, finite=TRUE, na.rm=TRUE)[2]) trans <- displayPars(GdObject, "transformation")[[1]] if(!is.null(trans)) ylim <- c(0, trans(ylim[2])) } } for(s in c("+", "-")) { pushViewport(viewport(height=0.5, y=ifelse(s=="-", 0, 0.5), just=c("center", "bottom"))) dummy <- DataTrack(start=rep(mean(c(from, to)),2), end=rep(mean(c(from, to)),2), data=ylim, genome=genome(GdObject), chromosome=chromosome(GdObject)) oldDp <- displayPars(GdObject) oldDp[["ylim"]] <- if(s=="+") ylim else rev(ylim) displayPars(dummy) <- oldDp drawAxis(dummy, from=from, to=to) popViewport(1) } } }) ## Draw a grid in the background of a GdObject. For some subclasses this is meaningless, and the default function will ## return NULL without plotting anything. setMethod("drawGrid", signature(GdObject="GdObject"), function(GdObject, ...) return(NULL)) setMethod("drawGrid", signature(GdObject="NumericTrack"), function(GdObject, from, to){ if(.dpOrDefault(GdObject, "grid", FALSE)) { vals <- score(GdObject) ylim <- .dpOrDefault(GdObject, "ylim", range(vals, na.rm=TRUE, finite=TRUE)) if(diff(ylim)) { pushViewport(dataViewport(xData=c(from, to), yData=ylim, extension=c(0, 0.1), clip=TRUE)) panel.grid(h=.dpOrDefault(GdObject, "h", -1), v=.dpOrDefault(GdObject, "v", -1), col=.dpOrDefault(GdObject, "col.grid", "#e6e6e6"), lty=.dpOrDefault(GdObject, "lty.grid", 1), lwd=.dpOrDefault(GdObject, "lwd.grid", 1)) popViewport(1) } }}) setMethod("drawGrid", signature(GdObject="AnnotationTrack"), function(GdObject, from, to){ if(.dpOrDefault(GdObject, "grid", FALSE)) { pushViewport(dataViewport(xData=c(from, to), extension=c(0, 0), yData=0:1, clip=TRUE)) panel.grid(h=0, v=.dpOrDefault(GdObject, "v", -1), col=.dpOrDefault(GdObject, "col.grid", "#e6e6e6"), lty=.dpOrDefault(GdObject, "lty.grid", 1), lwd=.dpOrDefault(GdObject, "lwd.grid", 1)) popViewport(1) }}) setMethod("drawGrid", signature(GdObject="AlignedReadTrack"), function(GdObject, from, to) { detail <- match.arg(.dpOrDefault(GdObject, "detail", "coverage"), c("coverage", "reads")) if(detail=="coverage"){ GdObject <- subset(GdObject, from=from, to=to) ## We have to figure out the data range, taking transformation into account ylim <- .dpOrDefault(GdObject, "ylim") if (is.null(ylim)) { maxs <- sapply(c("+", "-"), function(s) { cvr <- coverage(GdObject, strand=s) if (length(cvr)) max(cvr, na.rm=TRUE, finite=TRUE) else 0L }) y.max <- max(maxs, na.rm=TRUE, finite=TRUE) ylim <- c(0, if (y.max == 0) 1 else y.max) trans <- displayPars(GdObject, "transformation")[[1]] if (!is.null(trans)) ylim <- c(0, trans(ylim[2])) } for(s in c("+", "-")) { pushViewport(viewport(height=0.5, y=ifelse(s=="-", 0, 0.5), just=c("center", "bottom"))) dummy <- DataTrack(start=rep(mean(c(from, to)),2), end=rep(mean(c(from, to)),2), data=ylim, genome=genome(GdObject), chromosome=chromosome(GdObject)) oldDp <- displayPars(GdObject) oldDp[["ylim"]] <- if(s=="+") ylim else rev(ylim) displayPars(dummy) <- oldDp drawGrid(dummy, from=from, to=to) popViewport(1) } } return(NULL) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## All the drawGD methods should support two modes, triggered by the boolean argument 'prepare': ## In prepare mode: nothing is plotted but the object is prepared for plotting bases on the available space. The return ## value of the method in this mode should always be the updated object. If nothing needs to be prepared, i.e., if the ## plotting is independent from the available space, simply return the original object ## In plotting mode: the object is plotted. Return value is the object with optional HTML image map information ## added to the imageMap slot ## Since subsetting can be potentially expensive when the data are large we want to minimize this operation. Essentially it ## should be done only once before any other plotting or computation starts, hence we expect the GdObject in the drawGD ## methods to already be trimmed to the correct size ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## The default method for all StackedTrack types which always should be called (this has to be done explicitely using ## callNextMethod) ##---------------------------------------------------------------------------------------------------------------------------- ## Although the stacking type is not stored as a displayParameter we still want to check whether it is ## included there and set the actual stacking of the object accordingly setMethod("drawGD", signature("StackedTrack"), function(GdObject, ...){ debug <- .dpOrDefault(GdObject, "debug", FALSE) if(debug || debug=="prepare") browser() st <- .dpOrDefault(GdObject, "stacking") if(!is.null(st)) stacking(GdObject) <- st return(invisible(GdObject)) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Draw gene models as found in AnnotationTracks or GeneRegionTracks ##---------------------------------------------------------------------------------------------------------------------------- ## Calculate all coordinates and values for the individual stacks first, and append to the ## input list 'toDraw'. This allows us to plot the whole track at once, making use of grid's ## vectorization. Without this tweak, every stack would have to be drawn individually, which ## can be painfully slow... ## Because all of the y coordinates are calculated in the coordinate system of the current ## viewport for the respective stack we have to add offset values. ## Compute the coordinates and colors for all track items (e.g. exons in a GeneRegionTrack) .boxes <- function(GdObject, offsets) { ylim <- c(0, 1) h <- diff(ylim) middle <- mean(ylim) sh <- max(0, min(h, .dpOrDefault(GdObject, "stackHeight", 0.75))) space <- (h-(h*sh))/2 if (inherits(GdObject, "GeneRegionTrack")) { thinBox <- .dpOrDefault(GdObject, "thinBoxFeature", c("utr", "ncRNA", "utr3", "utr5", "miRNA", "lincRNA")) space <- ifelse(feature(GdObject) %in% thinBox, space + ((middle - space) / 2), space) } shape <- .dpOrDefault(GdObject, "shape", "arrow") color <- .getBiotypeColor(GdObject) id <- identifier(GdObject, lowest=TRUE) sel <- grepl("\\[Cluster_[0-9]*\\]", id) id[sel] <- sprintf("%i merged\n%s", as.integer(.getAnn(GdObject, "density")[sel]), ifelse(class(GdObject) %in% c("AnnotationTrack", "DetailsAnnotationTrack"), "features", "exons")) boxes <- data.frame(cx1=start(GdObject), cy1=ylim[1]+space+offsets, cx2=start(GdObject)+width(GdObject), cy2=ylim[2]-space+offsets, fill=color, strand=strand(GdObject), text=id, textX=start(GdObject)+(width(GdObject)/2), textY=middle+offsets, .getImageMap(cbind(start(GdObject), ylim[1]+space+offsets, end(GdObject), ylim[2]-space+offsets)), start=start(GdObject), end=end(GdObject), values(GdObject), stringsAsFactors=FALSE) rownames(boxes) <- if(is(GdObject, "GeneRegionTrack") && .dpOrDefault(GdObject, "collapseTranscripts", FALSE)) sprintf("uid%i", seq_along(identifier(GdObject))) else make.unique(identifier(GdObject, lowest=TRUE)) return(boxes) } ## Compute the coordinates for the bars connecting grouped items and the group labels .barsAndLabels <- function(GdObject) { bins <- stacks(GdObject) stacks <- max(bins) res <- .pxResolution(coord="x") gp <- group(GdObject) grpSplit <- split(range(GdObject), gp) grpRanges <- unlist(range(grpSplit)) needBar <- sapply(grpSplit, length)>1 & width(grpRanges) > res ## If we draw the bar from start to end of the range we sometimes see little overlaps that extend beyond the first or last item. ## In order to fix this, we just substract the equivalent of min.width pixels from both ends of each group range min.swidth <- res*.dpOrDefault(GdObject, "min.width", 2) nstart <- start(grpRanges[needBar])+min.swidth nend <- end(grpRanges[needBar])-min.swidth sel <- (nend-nstart)>0 start(grpRanges[needBar][sel]) <- nstart[sel] end(grpRanges[needBar][sel]) <- nend[sel] strand <- sapply(split(strand(GdObject), gp), function(x){ tmp <- unique(x) if(length(tmp)>1) "*" else tmp }) yloc <- sapply(split((stacks-bins)+1, gp), function(x) unique(x))+0.5 color <- if(length(grep("__desatCol", values(GdObject)$feature[1]))) .dpOrDefault(GdObject, "fill", .DEFAULT_FILL_COL) else sapply(split(.getBiotypeColor(GdObject), gp), head, 1) bars <- data.frame(sx1=start(grpRanges)[needBar], sx2=end(grpRanges)[needBar], y=yloc[needBar], strand=strand[needBar], col=color[needBar], stringsAsFactors=FALSE) labs <- sapply(split(identifier(GdObject, add.space=TRUE), gp), head, 1) lsel <- grepl("\\[Cluster_[0-9]*\\]", labs) if(any(lsel)){ gdens <- as.integer(sapply(split(.getAnn(GdObject, "gdensity"), gp), head, 1)) labs[lsel] <- sprintf("%i merged %s ", gdens[lsel], ifelse(class(GdObject) %in% c("AnnotationTrack", "DetailsAnnotationTrack"), "groups", "gene models")) } offs <- rep(min.swidth, length(grpRanges)) offs[sapply(grpSplit, length)<=1] <- 0 labels <- data.frame(txt=labs, x=start(grpRanges)-offs, y=yloc, stringsAsFactors=FALSE) return(list(bars=bars, labels=labels)) } ## The actual drawing method setMethod("drawGD", signature("AnnotationTrack"), function(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...){ debug <- .dpOrDefault(GdObject, "debug", FALSE) if(debug || debug=="prepare") browser() imageMap(GdObject) <- NULL if(!length(GdObject)) return(invisible(GdObject)) ## In prepare mode we need to make sure that the stacking information is updated from the optional display parameter (by calling ## the StackedTrack drawGD method) and also perform the collapsing of track items which could potentially lead to re-stacking. if(prepare){ GdObject <- callNextMethod() bins <- stacks(GdObject) stacks <- max(bins) ## We need to collapse the track object based on the current screen resolution (note that this may trigger re-stacking) pushViewport(dataViewport(xData=c(minBase, maxBase), extension=0, yscale=c(1, stacks+1), clip=TRUE)) GdObject <- collapseTrack(GdObject, diff=.pxResolution(coord="x"), xrange=c(minBase, maxBase)) popViewport(1) return(invisible(GdObject)) } if(debug || debug=="draw") browser() ## If there are too many stacks for the available device resolution we cast an error bins <- stacks(GdObject) stacks <- max(bins) yscale <- if(!.dpOrDefault(GdObject, "reverseStacking", FALSE)) c(1, stacks+1) else c(stacks+1, 1) pushViewport(dataViewport(xData=c(minBase, maxBase), extension=0, yscale=yscale, clip=TRUE)) res <- .pxResolution(coord="x") curVp <- vpLocation() if(curVp$size["height"]/stacks < .dpOrDefault(GdObject, "min.height", 3)) stop("Too many stacks to draw. Either increase the device size or limit the drawing to a smaller region.") ## We adjust the color saturation to indicate overplotting if necessary if(.dpOrDefault(GdObject, "showOverplotting", FALSE)) { dens <- as.numeric(values(GdObject)$density) if(length(unique(dens))!=1) { minSat <- max(0.25, 1/max(dens)) minDens <- min(dens) rDens <- diff(range(dens)) saturation <- minSat+((dens-minDens)/rDens/(1/(1-minSat))) bc <- unique(.getBiotypeColor(GdObject)) baseCol <- rgb2hsv(col2rgb(bc)) desatCols <- unlist(lapply(saturation, function(x) hsv(baseCol[1,], x, baseCol[3,]))) names(desatCols) <- paste(unique(feature(GdObject)), rep(dens, each=length(bc)), sep="_") feature(GdObject) <- paste(feature(GdObject), dens, sep="_") desatCols <- desatCols[unique(names(desatCols))] displayPars(GdObject) <- as.list(desatCols) } } ## Now we can pre-compute all the coordinates and settings for the elements to be drawn... box <- .boxes(GdObject, (stacks-bins)+1) barsAndLab <- .barsAndLabels(GdObject) bar <- barsAndLab$bars bartext <- barsAndLab$labels ## ... and then draw whatever is needed shape <- .dpOrDefault(GdObject, "shape", "arrow") border <- .dpOrDefault(GdObject, "col")[1] col.line <- .dpOrDefault(GdObject, "col.line")[1] if(is.null(border)) border <- ifelse(is(GdObject, "GeneRegionTrack"), NA, "transparent") lwd <- .dpOrDefault(GdObject, "lwd", 2) lty <- .dpOrDefault(GdObject, "lty", 1) alpha <- .dpOrDefault(GdObject, "alpha", 1) fontsize <- .dpOrDefault(GdObject, "fontsize", 12) fontface <- .dpOrDefault(GdObject, "fontface", 1) lineheight <- .dpOrDefault(GdObject, "lineheight", 1) fontfamily <- .dpOrDefault(GdObject, "fontfamily", 1) rotation <- .dpOrDefault(GdObject, "rotation", 0) fontcolor <- .dpOrDefault(GdObject, "fontcolor", "white")[1] cex <- .dpOrDefault(GdObject, "cex", 1) fontcolor.group <- .dpOrDefault(GdObject, "fontcolor.group", .DEFAULT_SHADED_COL)[1] cex.group <- .dpOrDefault(GdObject, "cex", 1) * .dpOrDefault(GdObject, "cex.group", 0.6) fontsize.group <- .dpOrDefault(GdObject, "fontsize.group", fontsize) fontface.group <- .dpOrDefault(GdObject, "fontface.group", fontface) fontfamily.group <- .dpOrDefault(GdObject, "fontfamily.group", fontfamily) if(nrow(box)>0){ if(nrow(bar)>0) .arrowBar(bar$sx1, bar$sx2, y=bar$y, bar$strand, box[,1:4, drop=FALSE], col=if(is.null(col.line)) bar$col else rep(col.line, length(bar$col)), lwd=lwd, lty=lty, alpha=alpha, barOnly=(!"smallArrow" %in% .dpOrDefault(GdObject, "shape", "box") || stacking(GdObject)=="dense"), diff=res, min.height=.dpOrDefault(GdObject, "min.height", 3)) if("box" %in% shape || ("smallArrow" %in% shape && !"arrow" %in% shape)) grid.rect(box$cx2, box$cy1, width=box$cx2-box$cx1, height=box$cy2-box$cy1, gp=gpar(col=if(is.na(border)) box$fill else border, fill=box$fill, lwd=lwd, lty=lty, alpha=alpha), default.units="native", just=c("right", "bottom")) if("ellipse" %in% shape){ ellCoords <- .box2Ellipse(box) grid.polygon(x=ellCoords$x1, y=ellCoords$y1, id=ellCoords$id, gp=gpar(col=if(is.na(border)) box$fill else border, fill=box$fill, lwd=lwd, lty=lty, alpha=alpha), default.units="native") } if("arrow" %in% shape && !"box" %in% shape){ .filledArrow(box[,1:4], col=border, fill=box$fill, lwd=lwd, lty=lty, alpha=alpha, strand=box$strand, min.width=6*res) } if(.dpOrDefault(GdObject, "showFeatureId", FALSE)) grid.text(box$text, box$textX, box$textY, rot=rotation, gp=gpar(col=fontcolor, cex=cex, fontsize=fontsize, fontface=fontface, lineheight=lineheight, fontfamily=fontfamily), default.units="native", just=c("center", "center")) if(.dpOrDefault(GdObject, "showId", FALSE) && nrow(bartext)>0 && stacking(GdObject)!="dense") grid.text(bartext$txt, bartext$x, bartext$y, gp=gpar(col=fontcolor.group, cex=cex.group, fontsize=fontsize.group, fontface=fontface.group, fontfamily=fontfamily.group), default.units="native", just=c("right", "center")) } popViewport(1) ## Finaly we set up the image map ## FIXME: we may want to record the merging information here im <- if(!is.null(box)) { coords <- as.matrix(box[,c("x1", "y1", "x2", "y2"),drop=FALSE]) restCols <- setdiff(colnames(box), c("x1", "x2", "y1", "y2", "cx1", "cx2", "cy1", "cy2", "textX", "textY")) tags <- sapply(restCols, function(x){ tmp <- as.character(box[,x]) names(tmp) <- rownames(coords) tmp}, simplify=FALSE) tags$title <- identifier(GdObject) ImageMap(coords=coords, tags=tags) } else NULL imageMap(GdObject) <- im return(invisible(GdObject)) }) ## For a GeneRegionTrack we just set the showExonId alias and then call the AnnotationTrack method setMethod("drawGD", signature("GeneRegionTrack"), function(GdObject, ...){ displayPars(GdObject) <- list(showFeatureId=as.vector(displayPars(GdObject, "showExonId"))) GdObject <- callNextMethod(GdObject, ...) return(invisible(GdObject)) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Draw a genome axis ##---------------------------------------------------------------------------------------------------------------------------- .expLabel <- function(GdObject, tckText, prune=FALSE){ tck <- tckText exponent <- if(is.null(.dpOrDefault(GdObject, "exponent", NULL))){ exp <- 0 while(all(tck[tck>0]/10^exp >= 1)) exp <- exp+3 exp-3 } else max(0, getPar(GdObject, "exponent")) if(exponent > 0){ tckText <- tckText/(10^exponent) } if(prune){ tmp <- as.character(tckText) count <- max(nchar(gsub("*.\\.", "", tmp))) while(count>1 && !any(duplicated(round(tckText, count)))){ count <- count-1 } tckText <- round(tckText, count+1) } return(switch(as.character(exponent), "0"=sprintf("%i", as.integer(tckText)), "3"=sprintf("%s kb", tckText), "6"=sprintf("%s mb", tckText), "9"=sprintf("%s gb", tckText), sapply(tckText, function(x) bquote(paste(.(x), " ",10^.(exponent)))))) } setMethod("drawGD", signature("GenomeAxisTrack"), function(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...) { debug <- .dpOrDefault(GdObject, "debug", FALSE) if((is.logical(debug) && debug) || debug=="prepare") browser() ## Nothing to do if the coordinate width is 0, so we can quit right away imageMap(GdObject) <- NULL if((maxBase-minBase)==0) return(invisible(GdObject)) ## We start by setting up the drawing canvas if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) pushViewport(dataViewport(xData=c(minBase, maxBase), yscale=c(-1, 1), extension=0)) ## Create a useful data range for the axis pres <- .pxResolution() curVp <- vpLocation() cex <- .dpOrDefault(GdObject, "cex", 0.8) lwd <- .dpOrDefault(GdObject, "lwd", 1) fontface <- .dpOrDefault(GdObject, "fontface", 1) add53 <- .dpOrDefault(GdObject, "add53", FALSE) add35 <- .dpOrDefault(GdObject, "add35", FALSE) lcex <- cex*0.75 textYOff <- pres["y"]*3 textXOff <- pres["x"]*2 endMargin <- if(add53 || add35) (as.numeric(convertWidth(stringWidth("5'"),"native"))*lcex)+(textXOff*2) else pres["x"]*5 axRange <- c(minBase+endMargin, maxBase-endMargin) ## We want fixed vertical sizes for axis tracks to avoid akward stretching effects. color <- .dpOrDefault(GdObject, "col", "darkgray")[1] littleTicks <- .dpOrDefault(GdObject, "littleTicks", FALSE) dfact <- max(1, .dpOrDefault(GdObject, "distFromAxis", 1)) labelPos <- .dpOrDefault(GdObject, "labelPos", "alternating") lwdAdd <- (lwd-1)/2 tickHeight <- (ifelse(littleTicks, 2, 1) * 3 * dfact + lwdAdd) * pres["y"] ids <- as.character(values(GdObject)$id) showIds <- .dpOrDefault(GdObject, "showId", FALSE) && !is.null(ids) && !all(ids=="") rcex <- .dpOrDefault(GdObject, "cex.id", 0.7) rcol <- .dpOrDefault(GdObject, "col.id", "white") sep <- (if(length(GdObject)){ if(showIds) max(1.5, ((max(as.numeric(convertHeight(stringHeight(ids),"native"))*rcex)+textYOff)/pres["y"])/2) else 1.5} else 1)+lwdAdd pyOff <- pres["y"]*sep ## In prepare mode we just want to figure out the optimal size if(prepare) { nsp <- if(is.null(.dpOrDefault(GdObject, "scale", NULL))){ (sum(tickHeight, pyOff*2, textYOff*2 + (as.numeric(convertHeight(stringHeight("1"),"native"))/2)*cex)*2*1.3)/pres["y"] } else { labelPos <- match.arg(labelPos, c("alternating", "revAlternating", "above", "below", "beside")) if(labelPos %in% c("above", "below")){ (sum(tickHeight, pyOff*2 + (as.numeric(convertHeight(stringHeight("1"),"native"))/2)*cex)*2)/pres["y"] } else { (sum(tickHeight, pyOff*2 + (as.numeric(convertHeight(stringHeight("1"),"native"))/2)*cex))/pres["y"] } } displayPars(GdObject) <- list("neededVerticalSpace"=nsp) popViewport(1) return(invisible(GdObject)) } if((is.logical(debug) && debug) || debug=="draw") browser() ## Plot range if there is any alpha <- .dpOrDefault(GdObject, "alpha", 1) ## in "scale" mode we just plot a simple scale and return ... scaleLen <- .dpOrDefault(GdObject, "scale", NULL) if(!is.null(scaleLen)) { len <- (maxBase-minBase + 1) if(scaleLen>len) { warning(paste("scale (", scaleLen, ") cannot be larger than plotted region", len, " - setting to ~5%\n", sep="")) scaleLen = 0.05 } xoff <- len * 0.03 + minBase labelPos <- match.arg(labelPos, c("alternating", "revAlternating", "above", "below", "beside")) if(scaleLen<=1 && scaleLen>0) { # calculate and round the scale scaleLen <- len * scaleLen ex <- .dpOrDefault(GdObject, "exponent", floor(log10(scaleLen))) v <- round(scaleLen, -ex) if(v==0) v <- scaleLen } else { # if the scale is an absolute value don't round ex <- .dpOrDefault(GdObject, "exponent", floor(log10(scaleLen))) v <- scaleLen } ## work out exponent/unit label <- .expLabel(GdObject, v) grid.lines(x=c(xoff, v+xoff), y=c(0,0), default.units="native", gp=gpar(col=color, lwd=lwd, alpha=alpha)) grid.segments(x0=c(xoff, v+xoff), y0=c(0-tickHeight, 0-tickHeight), x1=c(xoff, v+xoff), y1=c(tickHeight,tickHeight, tickHeight), default.units="native", gp=gpar(col=color, lwd=lwd, alpha=alpha)) z <- len * 0.01 if(labelPos=="below"){ grid.text(label=if(is.character(label)) label else label[[1]], x=xoff+v/2, y=0-(tickHeight/1.5*dfact), just=c("center", "top"), gp=gpar(alpha=alpha, col=color, cex=cex, fontface=fontface), default.units="native") } else if(labelPos=="above"){ grid.text(label=if(is.character(label)) label else label[[1]], x=xoff+v/2, y=tickHeight/1.5*dfact, just=c("center", "bottom"), gp=gpar(alpha=alpha, col=color, cex=cex, fontface=fontface), default.units="native") } else { grid.text(label=if(is.character(label)) label else label[[1]], x=v+xoff+z, y=0, just=c("left", "center"), gp=gpar(alpha=alpha, col=color, cex=cex, fontface=fontface), default.units="native") } popViewport(1) return(invisible(GdObject)) } GdObject <- GdObject[end(GdObject) > axRange[1] & start(GdObject) < axRange[2]] if(length(GdObject)) { rfill <- .dpOrDefault(GdObject, "fill.range", "cornsilk3") rcolor <- .dpOrDefault(GdObject, "col.range", "cornsilk4")[1] diff <- .pxResolution(coord="x") GdObject <- collapseTrack(GdObject, diff=diff, xrange=c(minBase, maxBase)) start(GdObject) <- pmax(axRange[1], start(GdObject)) end(GdObject) <- pmin(axRange[2], end(GdObject)) coords <- cbind(start(GdObject), -0.1, end(GdObject), 0.1) grid.rect(x=start(GdObject), y=-pyOff, width=width(GdObject), height=pyOff*2, default.units="native", just=c("left", "bottom"), gp=gpar(col=rcolor, fill=rfill, alpha=alpha)) vals <- values(GdObject) if(showIds) grid.text(ids, x=start(GdObject) + width(GdObject)/2, y=0, gp=gpar(col=rcol, cex=rcex, fontface=fontface), default.units="native", just=c("center", "center")) ## Calculate the coordinates for the image map map <- as.matrix(.getImageMap(coords)) if(is.null(ids) || length(ids)==0) ids <- as.character(seq_len(nrow(map))) rownames(map) <- make.unique(as.character(ids)) tags <- lapply(list(title=ids, start=as.character(start(GdObject)), end=as.character(end(GdObject))), function(x){ names(x) <- rownames(map); x}) imageMap(GdObject) <- ImageMap(coords=map, tags=tags) } ## width<1, we can return here, no need for tick marks if(abs(diff(axRange))<1){ popViewport() return(invisible(GdObject)) } ## We want two parallel lines with little hooks on the ends pyHook <- pres["y"]*(sep+2+lwdAdd) pxOff <- pres["x"]*5 grid.segments(x0=rep(axRange[1], 2), y0=c(-1,1)*pyOff, x1=rep(axRange[2], 2), y1=c(-1,1)*pyOff, default.units="native", gp=gpar(col=color, alpha=alpha, lwd=lwd)) grid.segments(x0=c(axRange[2]-pxOff, axRange[1]), y0=c(pyHook, -pyOff), x1=c(axRange[2], axRange[1]+pxOff), y1=c(pyOff, -pyHook), default.units="native", gp=gpar(col=color, alpha=alpha, lwd=lwd)) ## Here we plot the top level ticks tck <- .ticks(axRange) tck <- tck[tckaxRange[1]+pxOff*2] y0t <- rep(c(1,-1)*pyOff, length(tck))[1:length(tck)] y1t <- y0t + rep(c(tickHeight, -tickHeight), length(tck))[1:length(tck)] labelPos <- match.arg(labelPos, c("alternating", "revAlternating", "above", "below", "beside")) y0t <- switch(labelPos, "alternating"=y0t, "revAlternating"=-y0t, "above"=abs(y0t), "below"=-abs(y0t), "beside"=y0t) y1t <- switch(labelPos, "alternating"=y1t, "revAlternating"=-y1t, "above"=abs(y1t), "below"=-abs(y1t), "beside"=y1t) grid.segments(x0=tck, x1=tck, y0=y0t, y1=y1t, default.units="native", gp=gpar(col=color, alpha=alpha, lwd=lwd, lineend="square")) ## The top level tick labels label <- .expLabel(GdObject, tck) ylabs <- y1t + (ifelse(y1t>0, 1, -1) * (textYOff + (as.numeric(convertHeight(stringHeight("1"),"native"))/2)*cex)) ttck <- if(min(diff(tck))==1) tck+0.5 else tck if(is.character(label)){ grid.text(label=label, x=ttck, y=ylabs, just=c("centre", "centre"), gp=gpar(cex=cex, fontface=fontface), default.units="native") }else{ for(i in seq_along(label)) grid.text(label=label[[i]], x=ttck[i], y=ylabs[i], just=c("centre", "centre"), gp=gpar(cex=cex, fontface=fontface), default.units="native") } ## The scecond level ticks and labels if necessary if (.dpOrDefault(GdObject, "littleTicks", FALSE) && length(tck)>1) { avSpace <- min(diff(tck)) spaceFac <- 1.8 spaceNeeded <- min(as.numeric(convertWidth(stringWidth(if(is.character(label)) label else "000000000"),"native"))/2)*lcex*spaceFac nTcks <- (avSpace %/% spaceNeeded) if(nTcks%%2 == 0) nTcks <- nTcks-1 btck <- tck if (!(minBase %in% btck)) btck <- c(minBase, btck) if (!(maxBase %in% btck)) btck <- c(btck, maxBase) y0lt <- y1lt <- ltck <- NULL for(i in seq_len(length(btck)-1)) { toFill <- btck[i:(i+1)] ttck <- if(i==1) rev(toFill[2]-(avSpace/nTcks)*seq_len(nTcks-1)) else toFill[1]+(avSpace/nTcks)*seq_len(nTcks-1) ltck <- c(ltck, ttck) ord <- if(i==1){ if(y0t[1]>0) c(1,-1) else c(-1,1) } else if(y0t[i-1]<0) c(1,-1) else c(-1,1) y0 <- rep(ord*pyOff, length(ttck))[1:length(ttck)] y1 <- y0 + rep(ord*tickHeight/2, length(ttck))[1:length(ttck)] y0lt <- c(y0lt, switch(labelPos, "alternating"=y0, "revAlternating"=y0, "above"=abs(y0), "below"=-abs(y0))) y1lt <- c(y1lt, switch(labelPos, "alternating"=y1, "revAlternating"=y1, "above"=abs(y1), "below"=-abs(y1))) } endPadding <- pres["x"]*15 sel <- ltck > min(tck, axRange+endPadding) & ltck < max(tck, axRange-endPadding) if(length(ltck[sel]) && min(diff(tck))>nTcks) { grid.segments(x0=ltck[sel], x1=ltck[sel], y0=y0lt[sel], y1=y1lt[sel], default.units="native", gp=gpar(col=color, alpha=alpha, lwd=lwd, lineend="square")) llabel <- .expLabel(GdObject, ltck[sel], prune=TRUE) ytlabs <- y1lt + (ifelse(y1lt>0, 1, -1) * (textYOff + (as.numeric(convertHeight(stringHeight("1"),"native"))/2)*lcex)) if(is.character(label)) grid.text(label=llabel, x=ltck[sel], y=ytlabs[sel], just=c("centre", "centre"), gp=gpar(cex=lcex, fontface=fontface), default.units="native") else for(i in seq_along(llabel)) grid.text(label=llabel[[i]], x=ltck[sel][i], y=ytlabs[sel][i], just=c("centre", "centre"), gp=gpar(cex=lcex, fontface=fontface), default.units="native") } } ## The direction indicators if(add53) { grid.text(label=expression("5'"), x=axRange[1]-textXOff, y=pyOff, just=c("right", "bottom"), gp=gpar(cex=cex*.75, fontface=fontface), default.units="native") grid.text(label=expression("3'"), x=axRange[2]+textXOff, y=pyOff, just=c("left", "bottom"), gp=gpar(cex=cex*.75, fontface=fontface), default.units="native") } if(add35) { grid.text(label=expression("3'"), x=axRange[1]-textXOff, y=-pyOff, just=c("right", "top"), gp=gpar(cex=cex*.75, fontface=fontface), default.units="native") grid.text(label=expression("5'"), x=axRange[2]+textXOff, y=-pyOff, just=c("left", "top"), gp=gpar(cex=cex*0.75, fontface=fontface), default.units="native") } popViewport() return(invisible(GdObject))}) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Draw DetailsAnnotationTrack ##---------------------------------------------------------------------------------------------------------------------------- ## Create a data.frame with the distinct details function arguments (like start, end, ...) .buildArgsDf <- function(GdObject) { groupDetails <- .dpOrDefault(GdObject, "groupDetails", FALSE) rr <- if(groupDetails) unlist(range(split(ranges(GdObject), group(GdObject)))) else ranges(GdObject) args <- data.frame(start=as.integer(start(rr)), end=as.integer(end(rr)), strand=as.character(strand(rr)), chromosome=as.character(seqnames(rr)), identifier=as.character(if(groupDetails) names(rr) else identifier(GdObject, lowest=TRUE)), stringsAsFactors=FALSE) return(args) } setMethod("drawGD", signature("DetailsAnnotationTrack"), function(GdObject, minBase, maxBase, prepare=FALSE, ...){ debug <- .dpOrDefault(GdObject, "debug", FALSE) if((is.logical(debug) && debug) || debug=="prepare") browser() adf <- .buildArgsDf(GdObject) args <- .dpOrDefault(GdObject, "detailsFunArgs", fromPrototype=TRUE) groupDetails <- .dpOrDefault(GdObject, "groupDetails", FALSE) if(prepare){ GdObject <- callNextMethod(GdObject, minBase, maxBase, prepare=prepare, ...) GdObject <- GdObject[order(start(GdObject))] indices <- if(groupDetails) seq_len(length(unique(group(GdObject)))) else seq_len(length(GdObject)) pushViewport(viewport(xscale=c(minBase, maxBase))) hasWarned <- FALSE select <- sapply(indices, function(i){ iargs <- as.list(adf[i,]) iargs$index <- i iargs$GdObject <- GdObject iargs$GdObject.original <- .dpOrDefault(GdObject, ".__OriginalGdObject", GdObject) args <- c(args[setdiff(names(args), names(iargs))], iargs) res <- do.call(GdObject@selectFun, args) if(length(res)!=1 || !is.logical(res) || is.na(res)){ if(!hasWarned) warning("The result of function 'selectFun' has to be a single logical value. Forcing the value to 'TRUE'") hasWarned <<- TRUE res <- TRUE } res }) popViewport(1) displayPars(GdObject) <- list(".__select"=select) return(invisible(GdObject)) } if((is.logical(debug) && debug) || debug=="draw") browser() n <- length(GdObject) col <- rep(.dpOrDefault(GdObject, "detailsConnector.col", fromPrototype=TRUE), n)[1:n] lty <- rep(.dpOrDefault(GdObject, "detailsConnector.lty", fromPrototype=TRUE), n)[1:n] lwd <- rep(.dpOrDefault(GdObject, "detailsConnector.lwd", fromPrototype=TRUE), n)[1:n] pch <- rep(.dpOrDefault(GdObject, "detailsConnector.pch", fromPrototype=TRUE), n)[1:n] cex <- rep(.dpOrDefault(GdObject, "detailsConnector.cex", fromPrototype=TRUE), n)[1:n] border.lty <- rep(.dpOrDefault(GdObject, "detailsBorder.lty", fromPrototype=TRUE), n)[1:n] border.lwd <- rep(.dpOrDefault(GdObject, "detailsBorder.lwd", fromPrototype=TRUE), n)[1:n] border.col <- rep(.dpOrDefault(GdObject, "detailsBorder.col", fromPrototype=TRUE), n)[1:n] border.fill <-rep(.dpOrDefault(GdObject, "detailsBorder.fill", fromPrototype=TRUE), n)[1:n] minwidth <- .dpOrDefault(GdObject, "details.minWidth", fromPrototype=TRUE) size <- .dpOrDefault(GdObject, "details.size", fromPrototype=TRUE) xyratio <- .dpOrDefault(GdObject, "details.ratio", fromPrototype=TRUE) if ( 0 >= size || size > 1 ) { warning("details.size must be >0 and <1 - reset to 0.5") size = 0.5 } selection <- .dpOrDefault(GdObject, ".__select", rep(TRUE, length(GdObject))) len <- sum(selection) bins <- if(!groupDetails) stacks(GdObject) else sapply(split(stacks(GdObject) , group(GdObject)), unique) stacks <- max(bins) if(len>0){ if( ((maxBase-minBase)/len)/.pxResolution(coord="x") < minwidth ) { warning("too much detail for available space (plot fewer annotation or increase details.minWidth)!") popViewport(1) GdObject <- callNextMethod(GdObject, minBase, maxBase, prepare=prepare, ...) return(GdObject) } rr <- if(groupDetails) unlist(range(split(ranges(GdObject), group(GdObject)))) else ranges(GdObject) xloc1 <- (end(rr) - start(rr))/2+start(rr) yloc1 <- (stacks - (bins - 0.5)+1) xloc2 <- ((1/len*seq_len(len))-1/len + (1/len*0.5)) yloc2 <- rep(1, len) ## draw details plots (via user supplied function 'fun') pushViewport(viewport(height=size, y=1-size, just=c(0.5, 0))) w <- 1 v <- 0 vpl <- vpLocation() r <- vpl$size["width"]/len/vpl$size["height"] if ( r > xyratio ) { w <- xyratio/r v <- ((1/len) - (1/len*w))/2 } indices <- if(groupDetails) seq_len(length(unique(group(GdObject)))) else seq_len(length(GdObject)) j <- 1 pres <- list() hasError <- FALSE for(i in indices[selection]) { pushViewport(viewport(width=1/len*w, x=((1/len*j)-1/len)+(v), just=c(0, 0.5))) grid.rect(gp=gpar(col=border.col[i], lwd=border.lwd[i], lty=border.lty[i], fill=border.fill[i])) iargs <- as.list(adf[i,]) iargs$index <- i iargs$GdObject <- GdObject iargs$GdObject.original <- .dpOrDefault(GdObject, ".__OriginalGdObject", GdObject) args <- c(args[setdiff(names(args), names(iargs))], iargs) pres[[as.character(j)]] <- try(do.call(GdObject@fun, args), silent=TRUE) if(!is.null(pres) && is(pres[[as.character(j)]], "try-error")){ hasError <- TRUE grid.segments(x0=c(0.1,0.1), x1=c(0.9,0.9), y0=c(0.9,0.1), y1=c(0.1,0.9), gp=gpar(col="red", lwd=3)) } popViewport(1) j <- j+1 } if(hasError) warning("There have been errors in the detail plotting function:\n", paste(pres, collapse="\n")) popViewport(1) ## plot AnnotationTrack and connectors to details pushViewport(viewport(xscale=c(minBase, maxBase), yscale=c(1, stacks+1), clip=FALSE, height=1-size, y=0, just=c(.5, 0))) GdObject <- callNextMethod(GdObject, minBase, maxBase, prepare=prepare, ...) grid.segments(x0=unit(xloc1[selection], "native"), x1=xloc2, y0=unit(yloc1[selection], "native"), y1=yloc2, gp=gpar(col=col, lwd=lwd, lty=lty, cex=cex)) grid.points(x=unit(xloc2, "npc"), y=unit(yloc2, "npc"), gp=gpar(col=col, cex=cex), pch=pch) grid.points(x=unit(xloc1[selection], "native"), y=unit(yloc1[selection], "native"), gp=gpar(col=col, cex=cex), pch=pch) popViewport(1) }else{ GdObject <- callNextMethod(GdObject, minBase, maxBase, prepare=prepare, ...) } return(invisible(GdObject)) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Draw a data track ##---------------------------------------------------------------------------------------------------------------------------- ## Helper function to return the absolute extreme value in a vector .extreme <- function(x) if(all(is.na(x))) NA else x[which.max(abs(x))] ## Map numeric range to values from 1 to n .z2icol <- function(z, n, xrange=range(z, na.rm=TRUE)) { res <- round((z - xrange[1])/diff(xrange) * (n - 1)) + 1 res[res > n] = n res[res < 1] = 1 return(res) } setMethod("drawGD", signature("DataTrack"), function(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...) { debug <- .dpOrDefault(GdObject, "debug", FALSE) if((is.logical(debug) && debug) || debug=="prepare") browser() imageMap(GdObject) <- NULL type <- .dpOrDefault(GdObject, "type", "p") type <- match.arg(type, Gviz:::.PLOT_TYPES, several.ok=TRUE) ## Grouping may be useful for some of the plot types, may be ignored for others vals <- values(GdObject) groups <- .dpOrDefault(GdObject, "groups") if(!is.null(groups) && length(groups) != nrow(vals)) stop("'groups' must be a vector of similar length as the number of rows in the data matrix (", nrow(vals), ")") if(!is.null(groups) && !is.factor(groups)) groups <- factor(groups) stacked <- .dpOrDefault(GdObject, "stackedBars", FALSE) ## The general "col" parameter should be the default for all relevant colors except when there are groups. pcols <- .getPlottingFeatures(GdObject) ## In prepare mode we collapse the track to allow for aggregation and so on since we need the final data ## values to draw the axis. if(prepare) { if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) pushViewport(viewport(xscale=c(minBase, maxBase), yscale=c(0,1), clip=TRUE)) diff <- .pxResolution(coord="x") GdObject <- collapseTrack(GdObject, diff=diff, xrange=c(minBase, maxBase)) popViewport(1) ## If we have groups and stacked histograms we have to adjust the ylim values, also for regular histograms if("histogram" %in% type) { vals <- values(GdObject) groups <- rep(groups, ncol(vals)) ylim <- displayPars(GdObject, "ylim") agFun <- .aggregator(GdObject) if(!is.null(groups) && nlevels(groups)>1) { valsS <- if(ncol(vals)) matrix(sapply(split(vals, groups), function(x) agFun(t(matrix(x, ncol=ncol(vals))))), nrow=ncol(vals)) else{ matrix(nrow=nlevels(groups), ncol=0, dimnames=list(levels(groups)))} displayPars(GdObject) <- list(".__valsS"=valsS) if(stacked==TRUE && is.null(ylim)) { ylim <- suppressWarnings(range(unlist(apply(valsS, 1, function(x){ x <- x[!is.na(x)] sel <- x>=0 tmp <- NULL if(!all(is.na(sel))) { if(any(sel)) tmp <- c(min(x[sel]), sum(x[sel])) if(any(!sel)) tmp <- c(max(x[!sel]), tmp, sum(x[!sel])) } tmp})))) if(length(type)>1) ylim <- range(c(ylim, vals)) displayPars(GdObject) <- list(ylim=ylim) } } else { if(is.null(ylim)) { valsA <- agFun(t(vals)) ylim <- if(!length(valsA)) c(-1,1) else c(min(c(0,valsA), na.rm=TRUE), max(valsA, na.rm=TRUE)) if(length(type)>1) ylim <- range(c(ylim, vals), na.rm=TRUE) displayPars(GdObject) <- list(ylim=ylim) } } } ## If we want a legend we have to figure out how much vertical space is needed grps <- .dpOrDefault(GdObject, "groups") if(!is.factor(grps)) grps <- factor(grps) if(is.null(grps) || length(grps)==1 || length(setdiff(type, c("gradient", "mountain", "grid", "horizon"))) == 0) displayPars(GdObject) <- list(legend=FALSE) if(as.logical(as.logical(.dpOrDefault(GdObject, "legend", FALSE))) && nlevels(grps)>1){ cex <- .dpOrDefault(GdObject, "cex.legend", 0.8) fontsize <- .dpOrDefault(GdObject, "fontsize.legend", 12) fontface <- .dpOrDefault(GdObject, "fontface.legend", 1) lineheight <- .dpOrDefault(GdObject, "lineheight.legend", 1) fontfamily <- .dpOrDefault(GdObject, "fontfamily.legend", 1) pushViewport(viewport(width=unit(1, "npc")-unit(0.2,"inches"), gp=gpar(cex=cex, fontsize=fontsize, fontface=fontface, lineheight=lineheight))) grps <- levels(grps) legInfo <- .legendInfo()[type,, drop=FALSE] for(i in colnames(legInfo)) legInfo[,i] <- any(legInfo[,i]) && !any(duplicated(pcols[[i]][1:length(grps)])) legFactors <- sort(names(which(apply(legInfo, 2, any)))) boxSize <- if(length(setdiff(legFactors, c("col", "cex")))==0) 0.1 else 0.3 spacing <- 0.1 hspacing <- 0.02 lengths <- as.numeric(convertUnit(stringWidth(grps),"inches")) heights <- as.numeric(convertWidth(stringHeight(grps),"inches")) colWidth <- max(lengths + boxSize + spacing*2) availSpace <- vpLocation()$isize colNum <- max(1, availSpace["width"] %/% colWidth) rowNum <- ceiling(length(grps)/colNum) rowHeight <- max(c(heights, 0.1)) vertSpace <- (rowHeight * rowNum) + (hspacing * (rowNum-1)) + 0.2 displayPars(GdObject) <- list(".__verticalSpace"=vertSpace, ".__layoutDims"=c(rowNum, colNum), ".__boxSize"=boxSize, ".__spacing"=spacing, ".__groupLevels"=grps, ".__legFactors"=legFactors) popViewport(1) } return(invisible(GdObject)) } if((is.logical(debug) && debug) || debug=="draw") browser() ## We only proceed if there is something to draw within the ranges, but still may have to add the grid and the legend. ## Legend drawing causes another viewport for all the other graphics to be opened and will be called after all other ## drawing has finished, hence we call it in on.exit if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) alpha <- .dpOrDefault(GdObject, "alpha", 1) ## The optional legend is plotted below the data grpLevels <- .dpOrDefault(GdObject, ".__groupLevels") if(as.logical(.dpOrDefault(GdObject, "legend", FALSE)) && !is.null(grpLevels)){ lSpace <- getPar(GdObject, ".__verticalSpace") pushViewport(viewport(y=1, height=unit(1, "npc") - unit(lSpace, "inches"), just=c(0.5, 1))) on.exit({popViewport(1) cex <- .dpOrDefault(GdObject, "cex.legend", 0.8) legFactors <- .dpOrDefault(GdObject, ".__legFactors", character()) fontsize <- .dpOrDefault(GdObject, "fontsize.legend", 12) fontface <- .dpOrDefault(GdObject, "fontface.legend", 1) lineheight <- .dpOrDefault(GdObject, "lineheight.legend", 1) fontfamily <- .dpOrDefault(GdObject, "fontfamily.legend", 1) fontcolor <- .dpOrDefault(GdObject, "fontcolor.legend", .DEFAULT_SHADED_COL) pushViewport(viewport(y=0, height=unit(lSpace, "inches"), just=c(0.5, 0), gp=gpar(cex=cex, fontsize=fontsize, fontface=fontface, fontcolor=fontcolor, lineheight=lineheight))) pushViewport(viewport(width=unit(1, "npc") - unit(0.1, "inches"), height=unit(1, "npc") - unit(0.1, "inches"))) boxSize <- getPar(GdObject, ".__boxSize") spacing <- getPar(GdObject, ".__spacing") dims <- getPar(GdObject, ".__layoutDims") for(i in seq_along(grpLevels)){ row <- (((i)-1) %/% dims[2])+1 col <- (((i)-1) %% dims[2])+1 pushViewport(viewport(width=1/dims[2], height=1/dims[1], x=(1/dims[2])*(col-1), y=1-((1/dims[1])*(row-1)), just=c(0,1))) if(length(setdiff(legFactors, c("col")))==0){ grid.rect(width=unit(boxSize, "inches"), height=unit(boxSize, "inches"), x=0, just=c(0, 0.5), gp=gpar(fill=pcols$col[i], col=.DEFAULT_SHADED_COL)) } else { if(any(c("pch", "col.symbol") %in% legFactors)) panel.points(unit(boxSize/2, "inches"), 0.5, pch=pcols$pch[i], cex=pcols$cex[i], col=pcols$col.symbol[i]) if(any(c("lwd", "lty", "col.lines") %in% legFactors)) ##panel.lines(unit(c(0,boxSize), "inches"), c(0.5, 0.5), col=pcols$col.line[i], lwd=pcols$lwd[i], lty=pcols$lty[i]) grid.lines(unit(c(0,boxSize), "inches"), c(0.5, 0.5), gp=gpar(col=pcols$col.line[i], lwd=pcols$lwd[i], lty=pcols$lty[i])) } grid.text(x=unit(boxSize+spacing, "inches"), y=0.5, just=c(0, 0.5), label=grpLevels[i], gp=gpar(col=fontcolor)) popViewport(1) } popViewport(2) }) } if(!length(GdObject)) { if ("g" %in% type) panel.grid(h=.dpOrDefault(GdObject, "h", -1), v=.dpOrDefault(GdObject, "v", -1), col=.dpOrDefault(GdObject, "col.grid", "#e6e6e6"), lty=.dpOrDefault(GdObject, "lty.grid", 1), lwd=.dpOrDefault(GdObject, "lwd.grid", 1), alpha=alpha) return(invisible(GdObject)) } vals <- values(GdObject) ylim <- suppressWarnings(.dpOrDefault(GdObject, "ylim", range(vals, na.rm=TRUE, finite=TRUE))) if(diff(ylim)==0) ylim <- ylim+c(-1,1) if(all(is.infinite(ylim))) ylim <- c(0,1) ylimExt <- extendrange(r=ylim, f=0.05) pushViewport(viewport(xscale=c(minBase, maxBase), yscale=ylimExt, clip=TRUE)) ## The plotting parameters, some defaults from the lattice package first plot.symbol <- trellis.par.get("plot.symbol") superpose.symbol <- trellis.par.get("superpose.symbol") superpose.line <- trellis.par.get("superpose.line") groups <- rep(groups, ncol(vals)) ## For loess calculation we need some settings span <- .dpOrDefault(GdObject, "span", 1/5) degree <- .dpOrDefault(GdObject, "degree", 1) family <- .dpOrDefault(GdObject, "family", c("symmetric", "gaussian")) evaluation <- .dpOrDefault(GdObject, "evaluation", 50) font <- .dpOrDefault(GdObject, "font", if (is.null(groups)) plot.symbol$font else superpose.symbol$font) fontface <- .dpOrDefault(GdObject, "fontface", if (is.null(groups)) plot.symbol$fontface else superpose.symbol$fontface) fontsize <- .dpOrDefault(GdObject, "fontsize", if (is.null(groups)) plot.symbol$fontsize else superpose.symbol$fontsize) ## An optional baseline to be added baseline <- .dpOrDefault(GdObject, "baseline") lwd.baseline <- .dpOrDefault(GdObject, "lwd.baseline", pcols$lwd[1]) lty.baseline <- .dpOrDefault(GdObject, "lty.baseline", pcols$lty[1]) ## The actual plotting values pos <- position(GdObject) x <- rep(pos, each=nrow(vals)) y <- as.numeric(vals) ## A grid should always be plotted first, so we need to catch this here wg <- match("g", type, nomatch = NA_character_) if (!is.na(wg)) { panel.grid(h=.dpOrDefault(GdObject, "h", -1), v=.dpOrDefault(GdObject, "v", -1), col=pcols$col.grid, lty=pcols$lty.grid, lwd=pcols$lwd.grid) type <- type[-wg] } ## The special type 'mountain' has to be handled separately if("mountain" %in% type) { mbaseline <- if(is.null(baseline)) 0 else baseline[1] fill.mountain <- .dpOrDefault(GdObject, "fill.mountain", superpose.symbol$fill)[1:2] col.mountain <- .dpOrDefault(GdObject, "col.mountain", pcols$col)[1] col.baseline <- .dpOrDefault(GdObject, "col.baseline", col.mountain)[1] lwd.mountain <- .dpOrDefault(GdObject, "lwd.mountain", pcols$lwd)[1] lty.mountain <- .dpOrDefault(GdObject, "lty.mountain", pcols$lty)[1] .panel.mountain(x, y, col=col.mountain, fill=fill.mountain, span=span, degree=degree, family=family, evaluation=evaluation, lwd=lwd.mountain, lty=lty.mountain, col.line=col.mountain, alpha=alpha, baseline=mbaseline) if(!is.na(mbaseline)) panel.abline(h=mbaseline, col=col.baseline, lwd=lwd.baseline, lty=lty.baseline, alpha=alpha) } ## The special type 'polygon' has to be handled separately if("polygon" %in% type) { mbaseline <- if(is.null(baseline)) 0 else baseline[1] fill.mountain <- .dpOrDefault(GdObject, "fill.mountain", superpose.symbol$fill)[1:2] col.mountain <- .dpOrDefault(GdObject, "col.mountain", pcols$col)[1] col.baseline <- .dpOrDefault(GdObject, "col.baseline", col.mountain)[1] lwd.mountain <- .dpOrDefault(GdObject, "lwd.mountain", pcols$lwd)[1] lty.mountain <- .dpOrDefault(GdObject, "lty.mountain", pcols$lty)[1] .panel.polygon(x, y, col=col.mountain, fill=fill.mountain, lwd=lwd.mountain, lty=lty.mountain, col.line=col.mountain, alpha=alpha, baseline=mbaseline) if(!is.na(mbaseline)) panel.abline(h=mbaseline, col=col.baseline, lwd=lwd.baseline, lty=lty.baseline, alpha=alpha) } ## Also the type 'boxplot' is handled up front if("boxplot" %in% type) { box.ratio <- .dpOrDefault(GdObject, "box.ratio", 1) box.width <- .dpOrDefault(GdObject, "box.width", (min(diff(unique(sort(x))))*0.5)/box.ratio) diff <- .pxResolution(coord="x") if(!is.null(groups)) { tw <- min(width(GdObject)) spacer <- diff nb <- nlevels(groups) bw <- .dpOrDefault(GdObject, "box.width", (tw-(nb+2)*spacer)/nb) bcex <- min(pcols$cex[1], (bw/diff)/20) by <- lapply(split(vals, groups), matrix, ncol=ncol(vals)) for(j in seq_along(by)) { xx <- rep(start(GdObject)+(j*spacer)+(j*bw), each=nrow(by[[j]]))-(bw/2) .panel.bwplot(xx, as.numeric(by[[j]]), box.ratio=box.ratio, box.width=(bw/2)/box.ratio, pch=pcols$pch[1], lwd=pcols$lwd[1], lty=pcols$lty[1], fontsize=fontsize, col=pcols$col.histogram, cex=bcex, font=font, fontfamily=font, fontface=fontface, fill=pcols$col[j], varwidth=.dpOrDefault(GdObject, "varwidth", FALSE), notch=.dpOrDefault(GdObject, "notch", FALSE), notch.frac=.dpOrDefault(GdObject, "notch.frac", 0.5), levels.fos=.dpOrDefault(GdObject, "level.fos", sort(unique(xx))), stats=.dpOrDefault(GdObject, "stats", boxplot.stats), coef=.dpOrDefault(GdObject, "coef", 1.5), do.out=.dpOrDefault(GdObject, "do.out", TRUE), alpha=alpha) } diffY <- .pxResolution(coord="y", 2) outline <- apply(vals, 2, range) grid.rect(start(GdObject), outline[1,]-diffY, width=width(GdObject), height=abs(outline[2,]-outline[1,])+(2*diffY), gp=gpar(col=pcols$col.histogram, fill="transparent", alpha=alpha, lty="dotted"), default.units="native", just=c("left", "bottom")) } else { bcex <- min(pcols$cex[1], ((box.width*2)/diff)/20) .panel.bwplot(x, y, box.ratio=box.ratio, box.width=box.width, pch=pcols$pch[1], lwd=pcols$lwd[1], lty=pcols$lty[1], fontsize=fontsize, col=pcols$col.histogram, cex=bcex, font=font, fontfamily=font, fontface=fontface, fill=pcols$fill[1], varwidth=.dpOrDefault(GdObject, "varwidth", FALSE), notch=.dpOrDefault(GdObject, "notch", FALSE), notch.frac=.dpOrDefault(GdObject, "notch.frac", 0.5), levels.fos=.dpOrDefault(GdObject, "level.fos", sort(unique(x))), stats=.dpOrDefault(GdObject, "stats", boxplot.stats), coef=.dpOrDefault(GdObject, "coef", 1.5), do.out=.dpOrDefault(GdObject, "do.out", TRUE), alpha=alpha) } } ## 'histogram' fills up the full range area if its width is > 1 if("histogram" %in% type) { ylimSort <- sort(ylimExt) yy <- if(ylimSort[1]<=0 && ylimSort[2]>=0) 0 else ylimSort[1] if(!is.null(groups) && nlevels(groups)>1) { valsS <- displayPars(GdObject, ".__valsS") if(stacked) { curMinPos <- curMaxPos <- rep(yy, nrow(valsS)) for(s in seq_len(ncol(valsS))) { if(!all(is.na(valsS[,s]))) { sel <- !is.na(valsS[,s]) & valsS[,s]>=0 yyy <- curMinPos yyy[sel] <- curMaxPos[sel] offset <- yyy offset[offset!=yy] <- 0 grid.rect(start(GdObject), yyy, width=width(GdObject), height=valsS[,s]-offset, gp=gpar(col="transparent", fill=pcols$col[s], lwd=pcols$lwd[1], lty=pcols$lty[1], alpha=alpha), default.units="native", just=c("left", "bottom")) curMaxPos[sel] <- curMaxPos[sel]+(valsS[sel,s]-offset[sel]) curMinPos[!sel] <- curMinPos[!sel]+(valsS[!sel,s]-offset[!sel]) } } diff <- .pxResolution(coord="x", pcols$lwd[1]+1) tooNarrow <- width(GdObject) spacer ## FIXME: how do we treat this if there is not enough space to plot? sel <- !logical(length(subW)) if(any(sel)) { subW <- subW[sel] valsS <- valsS[sel,] subX <- rep(start(GdObject)[sel], len) + (subW * rep(seq_len(len)-1, each=sum(sel))) + (spacer * rep(seq_len(len), each=sum(sel))) grid.rect(subX, yy, width=rep(subW, len), height=valsS-yy, gp=gpar(col="transparent", fill=rep(pcols$col[1:len], each=sum(sel)), lwd=pcols$lwd[1], lty=pcols$lty[1], alpha=alpha), default.units="native", just=c("left", "bottom")) } } } else { agFun <- .aggregator(GdObject) valsS <- agFun(t(vals)) grid.rect(start(GdObject), yy, width=width(GdObject), height=valsS-yy, gp=gpar(col=pcols$col.histogram, fill=pcols$fill.histogram, lwd=pcols$lwd[1], lty=pcols$lty[1], alpha=alpha), default.units="native", just=c("left", "bottom")) } } ## gradient summarizes the data as a color gradient if("gradient" %in% type) { ncolor <- .dpOrDefault(GdObject, "ncolor", 100) gradient <- colorRampPalette(.dpOrDefault(GdObject, "gradient", brewer.pal(9, "Blues")))(ncolor) valsScaled <- .z2icol(colMeans(vals, na.rm=TRUE), ncolor, sort(ylim)) grid.rect(start(GdObject), sort(ylim)[1], width=width(GdObject), height=abs(diff(ylim)), gp=gpar(col=gradient[valsScaled], fill=gradient[valsScaled], alpha=alpha), default.units="native", just=c("left", "bottom")) } ## heatmap does the same, but for each sample individually if("heatmap" %in% type) { ncolor <- .dpOrDefault(GdObject, "ncolor", 100) valsScaled <- .z2icol(vals, ncolor, sort(ylim)) nr <- nrow(vals) yy <- seq(min(ylim), max(ylim), len=nr+1)[-1] ydiff <- .pxResolution(coord="y") separator <- .dpOrDefault(GdObject, "separator", 0)*ydiff if(!is.null(groups)) { valsS <- split(vals, groups) freq <- table(factor(displayPars(GdObject, "groups"))) cmf <- c(0, cumsum(freq)) for(s in seq_along(valsS)) { gradient <- colorRampPalette(c("white", pcols$col[s]))(ncolor+5)[-(1:5)] valsScaled <- .z2icol(valsS[[s]], ncolor, sort(ylim)) grid.rect(rep(start(GdObject), each=freq[s]), yy[(cmf[s]+1):cmf[s+1]], width=rep(width(GdObject), each=freq[s]), height=max(ydiff, abs(diff(ylim))*(1/nr)-separator), gp=gpar(col=gradient[valsScaled], fill=gradient[valsScaled], alpha=alpha), default.units="native", just=c("left", "top")) } } else { gradient <- colorRampPalette(.dpOrDefault(GdObject, "gradient", brewer.pal(9, "Blues")))(ncolor) grid.rect(rep(start(GdObject), each=nr), rev(yy), width=rep(width(GdObject), each=nr), height=max(ydiff, abs(diff(ylim))*(1/nr)-separator), gp=gpar(col=gradient[valsScaled], fill=gradient[valsScaled], alpha=alpha), default.units="native", just=c("left", "top")) } } ## For the horizon plot we can use the latticeExtra panel function, but need to reset the y-range if("horizon" %in% type){ if(.dpOrDefault(GdObject, "hdebug", FALSE)) browser() nband <- 3 origin <- .dpOrDefault(GdObject, "horizon.origin", 0) gr <- if(is.null(groups)) rep(1, nrow(vals)) else factor(.dpOrDefault(GdObject, "groups")) yy <- lapply(split(as.data.frame(vals), gr), colMeans, na.rm=TRUE) hfill <- .dpOrDefault(GdObject, "fill.horizon", c("#B41414", "#E03231", "#F7A99C", "#9FC8DC", "#468CC8", "#0165B3")) hcol <- .dpOrDefault(GdObject, "col.horizon", NA) separator <- ceiling(.dpOrDefault(GdObject, "separator", 0)/2) pushViewport(viewport(height=0.95, clip=TRUE)) for(i in seq_along(yy)){ yi <- yy[[i]] horizonscale <- .dpOrDefault(GdObject, "horizon.scale", max(abs(yi - origin))/nband) yr <- origin + c(0, horizonscale) pushViewport(viewport(y=(i-1)/length(yy), height=1/length(yy), just=c(0.5, 0), clip=TRUE)) pushViewport(viewport(height=unit(1, "npc") - unit(separator, "points"), clip=TRUE)) pushViewport(viewport(xscale=c(minBase, maxBase), yscale=yr, clip=TRUE)) panel.horizonplot(pos, yi, border=hcol, col.regions=hfill) popViewport(3) } popViewport(1) } ## The rest uses the lattice panel function na.rm <- .dpOrDefault(GdObject, "na.rm", FALSE) sel <- is.na(y) if(na.rm && any(sel)) { x <- x[!sel] y <- y[!sel] groups <- groups[!sel] } panel.xyplot(x, y, type=type, groups=groups, pch=pcols$pch, col=pcols$col, col.line=pcols$col.line, col.symbol=pcols$col.symbol, font=font, fontfamily=font, fontface=fontface, lty=pcols$lty, cex=pcols$cex, fill=pcols$fill, lwd=pcols$lwd, horizontal=FALSE, span=span, degree=degree, family=family, evaluation=evaluation, jitter.x=.dpOrDefault(GdObject, "jitter.x", FALSE), jitter.y=.dpOrDefault(GdObject, "jitter.y", FALSE), factor=.dpOrDefault(GdObject, "factor", 0.5), amount=.dpOrDefault(GdObject, "amount"), subscripts=seq_along(x), alpha=alpha) if(!any(c("mountain","polygon") %in% type) && !is.null(baseline) && !is.na(baseline)) panel.abline(h=baseline, col=pcols$col.baseline, lwd=lwd.baseline, lty=lty.baseline, alpha=alpha) popViewport(1) return(invisible(GdObject)) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Draw a AlignedRead track ##---------------------------------------------------------------------------------------------------------------------------- setMethod("drawGD", signature("AlignedReadTrack"), function(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...) { debug <- .dpOrDefault(GdObject, "debug", FALSE) if((is.logical(debug) && debug) || debug=="prepare") browser() imageMap(GdObject) <- NULL detail <- match.arg(.dpOrDefault(GdObject, "detail", "coverage"), c("reads", "coverage")) ## Nothing to do in prepare mode if detail is not 'reads', so we can quit right away, else we need to set the stacking info if(prepare){ if(detail=="read"){ if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) ##GdObject <- setStacks(GdObject) } return(invisible(GdObject)) } if((is.logical(debug) && debug) || debug=="draw") browser() ## We only proceed if there is something to draw within the ranges, but still may have to add the grid and the legend. ## Legend drawing causes another viewport for all the other graphics to be opened and will be called after all other ## drawing has finished, hence we call it in on.exit if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) alpha <- .dpOrDefault(GdObject, "alpha", 1) ## The optional legend is plotted below the data grpLevels <- .dpOrDefault(GdObject, ".__groupLevels") if(as.logical(.dpOrDefault(GdObject, "legend", FALSE)) && !is.null(grpLevels)){ lSpace <- getPar(GdObject, ".__verticalSpace") pushViewport(viewport(y=1, height=unit(1, "npc") - unit(lSpace, "inches"), just=c(0.5, 1))) on.exit({popViewport(1) cex <- .dpOrDefault(GdObject, "cex.legend", 0.8) legFactors <- .dpOrDefault(GdObject, ".__legFactors", character()) fontsize <- .dpOrDefault(GdObject, "fontsize.legend", 12) fontface <- .dpOrDefault(GdObject, "fontface.legend", 1) lineheight <- .dpOrDefault(GdObject, "lineheight.legend", 1) fontfamily <- .dpOrDefault(GdObject, "fontfamily.legend", 1) fontcolor <- .dpOrDefault(GdObject, "fontcolor.legend", .DEFAULT_SHADED_COL) pushViewport(viewport(y=0, height=unit(lSpace, "inches"), just=c(0.5, 0), gp=gpar(cex=cex, fontsize=fontsize, fontface=fontface, fontcolor=fontcolor, lineheight=lineheight))) pushViewport(viewport(width=unit(1, "npc") - unit(0.1, "inches"), height=unit(1, "npc") - unit(0.1, "inches"))) boxSize <- getPar(GdObject, ".__boxSize") spacing <- getPar(GdObject, ".__spacing") dims <- getPar(GdObject, ".__layoutDims") for(i in seq_along(grpLevels)){ row <- (((i)-1) %/% dims[2])+1 col <- (((i)-1) %% dims[2])+1 pushViewport(viewport(width=1/dims[2], height=1/dims[1], x=(1/dims[2])*(col-1), y=1-((1/dims[1])*(row-1)), just=c(0,1))) if(length(setdiff(legFactors, c("col")))==0){ grid.rect(width=unit(boxSize, "inches"), height=unit(boxSize, "inches"), x=0, just=c(0, 0.5), gp=gpar(fill=pcols$col[i], col=.DEFAULT_SHADED_COL)) } else { if(any(c("pch", "col.symbol") %in% legFactors)) panel.points(unit(boxSize/2, "inches"), 0.5, pch=pcols$pch[i], cex=pcols$cex[i], col=pcols$col.symbol[i]) if(any(c("lwd", "lty", "col.lines") %in% legFactors)) ##panel.lines(unit(c(0,boxSize), "inches"), c(0.5, 0.5), col=pcols$col.line[i], lwd=pcols$lwd[i], lty=pcols$lty[i]) grid.lines(unit(c(0,boxSize), "inches"), c(0.5, 0.5), gp=gpar(col=pcols$col.line[i], lwd=pcols$lwd[i], lty=pcols$lty[i])) } grid.text(x=unit(boxSize+spacing, "inches"), y=0.5, just=c(0, 0.5), label=grpLevels[i], gp=gpar(col=fontcolor)) popViewport(1) } popViewport(2) }) } if(!length(GdObject)) { if ("g" %in% type) panel.grid(h=.dpOrDefault(GdObject, "h", -1), v=.dpOrDefault(GdObject, "v", -1), col=.dpOrDefault(GdObject, "col.grid", "#e6e6e6"), lty=.dpOrDefault(GdObject, "lty.grid", 1), lwd=.dpOrDefault(GdObject, "lwd.grid", 1), alpha=alpha) return(invisible(GdObject)) } vals <- values(GdObject) ylim <- suppressWarnings(.dpOrDefault(GdObject, "ylim", range(vals, na.rm=TRUE, finite=TRUE))) if(diff(ylim)==0) ylim <- ylim+c(-1,1) if(all(is.infinite(ylim))) ylim <- c(0,1) ylimExt <- extendrange(r=ylim, f=0.05) pushViewport(viewport(xscale=c(minBase, maxBase), yscale=ylimExt, clip=TRUE)) ## The plotting parameters, some defaults from the lattice package first plot.symbol <- trellis.par.get("plot.symbol") superpose.symbol <- trellis.par.get("superpose.symbol") superpose.line <- trellis.par.get("superpose.line") groups <- rep(groups, ncol(vals)) ## For loess calculation we need some settings span <- .dpOrDefault(GdObject, "span", 1/5) degree <- .dpOrDefault(GdObject, "degree", 1) family <- .dpOrDefault(GdObject, "family", c("symmetric", "gaussian")) evaluation <- .dpOrDefault(GdObject, "evaluation", 50) font <- .dpOrDefault(GdObject, "font", if (is.null(groups)) plot.symbol$font else superpose.symbol$font) fontface <- .dpOrDefault(GdObject, "fontface", if (is.null(groups)) plot.symbol$fontface else superpose.symbol$fontface) fontsize <- .dpOrDefault(GdObject, "fontsize", if (is.null(groups)) plot.symbol$fontsize else superpose.symbol$fontsize) ## An optional baseline to be added baseline <- .dpOrDefault(GdObject, "baseline") lwd.baseline <- .dpOrDefault(GdObject, "lwd.baseline", pcols$lwd[1]) lty.baseline <- .dpOrDefault(GdObject, "lty.baseline", pcols$lty[1]) ## The actual plotting values pos <- position(GdObject) x <- rep(pos, each=nrow(vals)) y <- as.numeric(vals) ## A grid should always be plotted first, so we need to catch this here wg <- match("g", type, nomatch = NA_character_) if (!is.na(wg)) { panel.grid(h=.dpOrDefault(GdObject, "h", -1), v=.dpOrDefault(GdObject, "v", -1), col=pcols$col.grid, lty=pcols$lty.grid, lwd=pcols$lwd.grid) type <- type[-wg] } ## The special type 'mountain' has to be handled separately if("mountain" %in% type) { mbaseline <- if(is.null(baseline)) 0 else baseline[1] fill.mountain <- .dpOrDefault(GdObject, "fill.mountain", superpose.symbol$fill)[1:2] col.mountain <- .dpOrDefault(GdObject, "col.mountain", pcols$col)[1] col.baseline <- .dpOrDefault(GdObject, "col.baseline", col.mountain)[1] lwd.mountain <- .dpOrDefault(GdObject, "lwd.mountain", pcols$lwd)[1] lty.mountain <- .dpOrDefault(GdObject, "lty.mountain", pcols$lty)[1] .panel.mountain(x, y, col=col.mountain, fill=fill.mountain, span=span, degree=degree, family=family, evaluation=evaluation, lwd=lwd.mountain, lty=lty.mountain, col.line=col.mountain, alpha=alpha, baseline=mbaseline) if(!is.na(mbaseline)) panel.abline(h=mbaseline, col=col.baseline, lwd=lwd.baseline, lty=lty.baseline, alpha=alpha) } ## The special type 'polygon' has to be handled separately if("polygon" %in% type) { mbaseline <- if(is.null(baseline)) 0 else baseline[1] fill.mountain <- .dpOrDefault(GdObject, "fill.mountain", superpose.symbol$fill)[1:2] col.mountain <- .dpOrDefault(GdObject, "col.mountain", pcols$col)[1] col.baseline <- .dpOrDefault(GdObject, "col.baseline", col.mountain)[1] lwd.mountain <- .dpOrDefault(GdObject, "lwd.mountain", pcols$lwd)[1] lty.mountain <- .dpOrDefault(GdObject, "lty.mountain", pcols$lty)[1] .panel.polygon(x, y, col=col.mountain, fill=fill.mountain, lwd=lwd.mountain, lty=lty.mountain, col.line=col.mountain, alpha=alpha, baseline=mbaseline) if(!is.na(mbaseline)) panel.abline(h=mbaseline, col=col.baseline, lwd=lwd.baseline, lty=lty.baseline, alpha=alpha) } ## Also the type 'boxplot' is handled up front if("boxplot" %in% type) { box.ratio <- .dpOrDefault(GdObject, "box.ratio", 1) box.width <- .dpOrDefault(GdObject, "box.width", (min(diff(unique(sort(x))))*0.5)/box.ratio) diff <- .pxResolution(coord="x") if(!is.null(groups)) { tw <- min(width(GdObject)) spacer <- diff nb <- nlevels(groups) bw <- .dpOrDefault(GdObject, "box.width", (tw-(nb+2)*spacer)/nb) bcex <- min(pcols$cex[1], (bw/diff)/20) by <- lapply(split(vals, groups), matrix, ncol=ncol(vals)) for(j in seq_along(by)) { xx <- rep(start(GdObject)+(j*spacer)+(j*bw), each=nrow(by[[j]]))-(bw/2) .panel.bwplot(xx, as.numeric(by[[j]]), box.ratio=box.ratio, box.width=(bw/2)/box.ratio, pch=pcols$pch[1], lwd=pcols$lwd[1], lty=pcols$lty[1], fontsize=fontsize, col=pcols$col.histogram, cex=bcex, font=font, fontfamily=font, fontface=fontface, fill=pcols$col[j], varwidth=.dpOrDefault(GdObject, "varwidth", FALSE), notch=.dpOrDefault(GdObject, "notch", FALSE), notch.frac=.dpOrDefault(GdObject, "notch.frac", 0.5), levels.fos=.dpOrDefault(GdObject, "level.fos", sort(unique(xx))), stats=.dpOrDefault(GdObject, "stats", boxplot.stats), coef=.dpOrDefault(GdObject, "coef", 1.5), do.out=.dpOrDefault(GdObject, "do.out", TRUE), alpha=alpha) } diffY <- .pxResolution(coord="y", 2) outline <- apply(vals, 2, range) grid.rect(start(GdObject), outline[1,]-diffY, width=width(GdObject), height=abs(outline[2,]-outline[1,])+(2*diffY), gp=gpar(col=pcols$col.histogram, fill="transparent", alpha=alpha, lty="dotted"), default.units="native", just=c("left", "bottom")) } else { bcex <- min(pcols$cex[1], ((box.width*2)/diff)/20) .panel.bwplot(x, y, box.ratio=box.ratio, box.width=box.width, pch=pcols$pch[1], lwd=pcols$lwd[1], lty=pcols$lty[1], fontsize=fontsize, col=pcols$col.histogram, cex=bcex, font=font, fontfamily=font, fontface=fontface, fill=pcols$fill[1], varwidth=.dpOrDefault(GdObject, "varwidth", FALSE), notch=.dpOrDefault(GdObject, "notch", FALSE), notch.frac=.dpOrDefault(GdObject, "notch.frac", 0.5), levels.fos=.dpOrDefault(GdObject, "level.fos", sort(unique(x))), stats=.dpOrDefault(GdObject, "stats", boxplot.stats), coef=.dpOrDefault(GdObject, "coef", 1.5), do.out=.dpOrDefault(GdObject, "do.out", TRUE), alpha=alpha) } } ## 'histogram' fills up the full range area if its width is > 1 if("histogram" %in% type) { ylimSort <- sort(ylimExt) yy <- if(ylimSort[1]<=0 && ylimSort[2]>=0) 0 else ylimSort[1] if(!is.null(groups) && nlevels(groups)>1) { valsS <- displayPars(GdObject, ".__valsS") if(stacked) { curMinPos <- curMaxPos <- rep(yy, nrow(valsS)) for(s in seq_len(ncol(valsS))) { if(!all(is.na(valsS[,s]))) { sel <- !is.na(valsS[,s]) & valsS[,s]>=0 yyy <- curMinPos yyy[sel] <- curMaxPos[sel] offset <- yyy offset[offset!=yy] <- 0 grid.rect(start(GdObject), yyy, width=width(GdObject), height=valsS[,s]-offset, gp=gpar(col="transparent", fill=pcols$col[s], lwd=pcols$lwd[1], lty=pcols$lty[1], alpha=alpha), default.units="native", just=c("left", "bottom")) curMaxPos[sel] <- curMaxPos[sel]+(valsS[sel,s]-offset[sel]) curMinPos[!sel] <- curMinPos[!sel]+(valsS[!sel,s]-offset[!sel]) } } diff <- .pxResolution(coord="x", pcols$lwd[1]+1) tooNarrow <- width(GdObject) spacer ## FIXME: how do we treat this if there is not enough space to plot? sel <- !logical(length(subW)) if(any(sel)) { subW <- subW[sel] valsS <- valsS[sel,] subX <- rep(start(GdObject)[sel], len) + (subW * rep(seq_len(len)-1, each=sum(sel))) + (spacer * rep(seq_len(len), each=sum(sel))) grid.rect(subX, yy, width=rep(subW, len), height=valsS-yy, gp=gpar(col="transparent", fill=rep(pcols$col[1:len], each=sum(sel)), lwd=pcols$lwd[1], lty=pcols$lty[1], alpha=alpha), default.units="native", just=c("left", "bottom")) } } } else { agFun <- .aggregator(GdObject) valsS <- agFun(t(vals)) grid.rect(start(GdObject), yy, width=width(GdObject), height=valsS-yy, gp=gpar(col=pcols$col.histogram, fill=pcols$fill.histogram, lwd=pcols$lwd[1], lty=pcols$lty[1], alpha=alpha), default.units="native", just=c("left", "bottom")) } } ## gradient summarizes the data as a color gradient if("gradient" %in% type) { ncolor <- .dpOrDefault(GdObject, "ncolor", 100) gradient <- colorRampPalette(.dpOrDefault(GdObject, "gradient", brewer.pal(9, "Blues")))(ncolor) valsScaled <- .z2icol(colMeans(vals, na.rm=TRUE), ncolor, sort(ylim)) grid.rect(start(GdObject), sort(ylim)[1], width=width(GdObject), height=abs(diff(ylim)), gp=gpar(col=gradient[valsScaled], fill=gradient[valsScaled], alpha=alpha), default.units="native", just=c("left", "bottom")) } ## heatmap does the same, but for each sample individually if("heatmap" %in% type) { ncolor <- .dpOrDefault(GdObject, "ncolor", 100) valsScaled <- .z2icol(vals, ncolor, sort(ylim)) nr <- nrow(vals) yy <- seq(min(ylim), max(ylim), len=nr+1)[-1] ydiff <- .pxResolution(coord="y") separator <- .dpOrDefault(GdObject, "separator", 0)*ydiff if(!is.null(groups)) { valsS <- split(vals, groups) freq <- table(factor(displayPars(GdObject, "groups"))) cmf <- c(0, cumsum(freq)) for(s in seq_along(valsS)) { gradient <- colorRampPalette(c("white", pcols$col[s]))(ncolor+5)[-(1:5)] valsScaled <- .z2icol(valsS[[s]], ncolor, sort(ylim)) grid.rect(rep(start(GdObject), each=freq[s]), yy[(cmf[s]+1):cmf[s+1]], width=rep(width(GdObject), each=freq[s]), height=max(ydiff, abs(diff(ylim))*(1/nr)-separator), gp=gpar(col=gradient[valsScaled], fill=gradient[valsScaled], alpha=alpha), default.units="native", just=c("left", "top")) } } else { gradient <- colorRampPalette(.dpOrDefault(GdObject, "gradient", brewer.pal(9, "Blues")))(ncolor) grid.rect(rep(start(GdObject), each=nr), yy, width=rep(width(GdObject), each=nr), height=max(ydiff, abs(diff(ylim))*(1/nr)-separator), gp=gpar(col=gradient[valsScaled], fill=gradient[valsScaled], alpha=alpha), default.units="native", just=c("left", "top")) } } ## The rest uses the lattice panel function na.rm <- .dpOrDefault(GdObject, "na.rm", FALSE) sel <- is.na(y) if(na.rm && any(sel)) { x <- x[!sel] y <- y[!sel] groups <- groups[!sel] } panel.xyplot(x, y, type=type, groups=groups, pch=pcols$pch, col=pcols$col, col.line=pcols$col.line, col.symbol=pcols$col.symbol, font=font, fontfamily=font, fontface=fontface, lty=pcols$lty, cex=pcols$cex, fill=pcols$fill, lwd=pcols$lwd, horizontal=FALSE, span=span, degree=degree, family=family, evaluation=evaluation, jitter.x=.dpOrDefault(GdObject, "jitter.x", FALSE), jitter.y=.dpOrDefault(GdObject, "jitter.y", FALSE), factor=.dpOrDefault(GdObject, "factor", 0.5), amount=.dpOrDefault(GdObject, "amount"), subscripts=seq_along(x), alpha=alpha) if(!any(c("mountain","polygon") %in% type) && !is.null(baseline) && !is.na(baseline)) panel.abline(h=baseline, col=pcols$col.baseline, lwd=lwd.baseline, lty=lty.baseline, alpha=alpha) popViewport(1) return(invisible(GdObject)) }) ##---------------------------------------------------------------------------------------------------------------------------- ##---------------------------------------------------------------------------------------------------------------------------- ## Draw a AlignedRead track ##---------------------------------------------------------------------------------------------------------------------------- setMethod("drawGD", signature("AlignedReadTrack"), function(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...) { debug <- .dpOrDefault(GdObject, "debug", FALSE) if((is.logical(debug) && debug) || debug=="prepare") browser() imageMap(GdObject) <- NULL detail <- match.arg(.dpOrDefault(GdObject, "detail", "coverage"), c("reads", "coverage")) ## Nothing to do in prepare mode if detail is not 'reads', so we can quit right away, else we need to set the stacking info if(prepare){ if(detail=="read"){ if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) ##GdObject <- setStacks(GdObject) } return(invisible(GdObject)) } if((is.logical(debug) && debug) || debug=="draw") browser() ## In plotting mode we either show all the reads (time-consuming), or the coverage only rad <- 0.015 xx <- -0.01 loc <- vpLocation()$size diff <- .pxResolution(coord="x") radv <- rad / if(loc["width"] < loc["height"]) c(1,loc[2]/loc[1]) else c(loc[1]/loc[2],1) if(subset) GdObject <- subset(GdObject, from=minBase, to=maxBase) ## If type is 'coverage' all we need to do is compute a coverage vector, create dummy DataTracks and pass everything on if(detail=="coverage") { if (!any(unlist(lapply(GdObject@coverage, function(y) runValue(y)!=0)))) { ## Nothing there, but we still need the strand separator panel.abline(h=0.5, col="lightgray", lwd=2) grid.circle(xx, c(0.25, 0.75), rad, gp=gpar(fill="lightgray", col="lightgray")) grid.segments(c(rep(xx-radv[1]+(radv[1]/2),2), xx), c(0.25, 0.75, 0.75-(radv[2]/2)), c(rep(xx+radv[1]-(radv[1]/2),2), xx), c(0.25, 0.75, 0.75+radv[2]/2), gp=gpar(col="white", lwd=2, lineend="square"), default.units="native") return(invisible(GdObject)) } else { ## We want to distinguish between strands, so an extra spitting step is needed for this to work val <- c(0, max(unlist(sapply(c("+", "-"), function(x) if(length(coverage(GdObject, strand=x))) max(coverage(GdObject, strand=x)) else NULL)))) trans <- displayPars(GdObject, "transformation")[[1]] if(!is.null(trans)) val[2] <- trans(val[2]) ylim <- .dpOrDefault(GdObject, "ylim", val) for(s in c("+", "-")) { cov <- coverage(GdObject, strand=s) pushViewport(viewport(height=0.5, y=ifelse(s=="-", 0, 0.5), just=c("center", "bottom"))) sel <- suppressWarnings(runValue(cov)!=0) #changed from > dtr <- if(any(sel)) DataTrack(start=start(cov)[sel], end=end(cov)[sel], data=runValue(cov)[sel], name=names(GdObject), genome=genome(GdObject), chromosome=chromosome(GdObject)) else DataTrack(name=names(GdObject), genome=genome(GdObject), chromosome=chromosome(GdObject)) displayPars(dtr) <- displayPars(GdObject) displayPars(dtr) <- list(ylim=if(s=="+") ylim else rev(ylim)) drawGD(dtr, minBase, maxBase, prepare=prepare, ...) popViewport(1) } panel.abline(h=0.5, col="lightgray", lwd=2) grid.circle(xx, c(0.25, 0.75), unit(rad, "native"), gp=gpar(fill="lightgray", col="lightgray"), default.units="native") grid.segments(c(rep(xx-radv[1]+(radv[1]/2),2), xx), c(0.25, 0.75, 0.75-(radv[2]/2)), c(rep(xx+radv[1]-(radv[1]/2),2), xx), c(0.25, 0.75, 0.75+radv[2]/2), gp=gpar(col="white", lwd=2, lineend="square"), default.units="native") return(invisible(GdObject)) } } if(detail=="reads") { if(!length(GdObject)) { ## No reads, but we still need the strand separator panel.abline(h=0.5, col="lightgray", lwd=2) grid.circle(xx, c(0.25, 0.75), rad, gp=gpar(fill="lightgray", col="lightgray")) grid.segments(c(rep(xx-radv[1]+(radv[1]/2),2), xx), c(0.25, 0.75, 0.75-(radv[2]/2)), c(rep(xx+radv[1]-(radv[1]/2),2), xx), c(0.25, 0.75, 0.75+radv[2]/2), gp=gpar(col="white", lwd=2, lineend="square"), default.units="native") return(invisible(GdObject)) } else { if(GdObject@coverageOnly){ pushViewport(viewport()) grid.text("Coverage information only for this object.\nUnable to plot read details.", gp=gpar(col="darkgray")) panel.abline(h=0.5, col="lightgray", lwd=2) recMid <- c(0.25, 0.75) } else { gdSplit <- split(GdObject, factor(strand(GdObject), levels=c("+", "-"))) st <- lapply(gdSplit, function(x) if(length(x)) stacks(setStacks(x))-1 else 0) omax <- sum(sapply(st, max)) space <- 0.1 ratios <- sapply(st[c("-", "+")], function(x) if(omax==0) 0.5 else max(x)/omax)+(space/(2:1)) y <- if(ratios[["-"]]0.75) cex <- cex*(0.75/(width/wfac)) pushViewport(viewport(x=0, width=nspace, just=0)) grid.text(chrnam, 0, gp=gpar(cex=cex, fontface=fontface), default.units="native", just=c("left", "center")) popViewport(1) } else nspace <- 0 pushViewport(viewport(x=nspace, width=1-nspace, just=0)) ## A box indicating the current range on the chromosome len <- end(range(range(GdObject))) fill <- .dpOrDefault(GdObject, "fill", "#FFE3E6") if(!missing(minBase) && !missing(maxBase)) grid.rect(minBase/len, 0.1, width=min(1,(maxBase-minBase)/len), height=0.8, just=c("left","bottom"), gp=gpar(col="transparent", fill=fill)) ## Color mapping for the bands taken from the biovizBase package cols <- .getBioColorIdeo(values(GdObject)$type) vals <- data.frame(values(GdObject), col=cols[as.character(values(GdObject)$type)], stringsAsFactors=FALSE) ## For the rounded caps we need to figure out the overlap with existing bands for proper coloring bevel <- 0.02 ol <- queryHits(findOverlaps(range(GdObject), IRanges(start=c(bevel, 1-bevel)*len, width=1))) st <- start(range(GdObject))/len ed <- end(range(GdObject))/len stExt <- if(length(GdObject)==1) c(0, bevel, 1-bevel) else c(st[1:ol[1]], bevel, st[(ol[1]+1):ol[2]], 1-bevel) valsExt <- if(length(GdObject)==1) vals[rep(1,3),] else rbind(vals[1:ol[1],], vals[ol[1],], vals[(ol[1]+1):ol[2],], vals[ol[2],]) if(ol[2]0.9, "black", "white") bwidth <- (c(st[-1], 1)-st)/2 cex.bands <- .dpOrDefault(GdObject, "cex.bands", 0.7) sspace <- as.numeric(convertUnit(unit(0.01, "inches"), "native")) swidth <- as.numeric(convertWidth(stringWidth(bn), "native"))*cex.bands+sspace sel <- swidth1 || (maxBase-minBase+1)>=10e6){ grid.lines(x=unit(c(minBase, maxBase), "native"), y=0.5, gp=gpar(col=.dpOrDefault(GdObject, "col", "darkgray"), lwd=.dpOrDefault(GdObject, "lwd", 2))) }else{ sequence <- as.character(as(subseq(GdObject, start=minBase, end=maxBase-1), "Rle")) at <- seq((minBase+0.5), maxBase - 1 + 0.5, by=1) sequence[sequence=="-"] <- "" if(perLetter<0.5 && .dpOrDefault(GdObject, "add53", FALSE)) sequence[c(1, length(sequence))] <- "" col <- fcol[toupper(sequence)] if(lwidth 0) { if(asIRanges) return(IRanges(start=as.integer(start), end=as.integer(end))) range <- .fillWithDefaults(data.frame(start=as.integer(start), end=as.integer(end)), defaults, args, len, by) } return(.buildRange(range=range, asIRanges=asIRanges, args=args["genome"], defaults=defaults, ...))}) ## For data.frames we need to check for additional arguments (like feature, group, etc.), the chromosome information ## and create the final GRanges object setMethod(".buildRange", signature("data.frame"), function(range, asIRanges=FALSE, args=list(), defaults=list(), chromosome=NULL, trackType, ...){ if(asIRanges){ range <- .fillWithDefaults(range, defaults, args, len=nrow(range), ignore=setdiff(names(defaults), c("start", "end", "genome"))) return(IRanges(start=as.integer(range$start), end=as.integer(range$end))) } mandArgs <- c("start", "end", "genome", names(defaults)) ## Not quite sure how whether exisiting chromosome information in a GRanges object should generally have precedence over the ## chromosome constructor, but probably that should be the case if("chromosome" %in% colnames(range)) args$chromosome <- NULL missing <- setdiff(union(setdiff(mandArgs, c(colnames(range))), names(which(!sapply(args, is.null)))), "genome") range <- .fillWithDefaults(range, defaults[missing], args[missing], len=nrow(range)) range$chromosome <- .chrName(as.character(range$chromosome)) grange <- GRanges(ranges=IRanges(start=range$start, end=range$end), strand=range$strand, seqnames=range$chromosome) mcols(grange) <- range[,setdiff(colnames(range), c("start", "end", "strand", "width", "chromosome", "genome", "seqnames", "ranges", "seqlevels", "seqlengths", "isCircular", "element"))] if(trackType != "DataTrack") mcols(grange) <- mcols(grange)[, intersect(names(defaults), colnames(mcols(grange)))] suppressWarnings(genome(grange) <- unname(if(is.null(args[["genome"]])) defaults[["genome"]] else as.character(args[["genome"]])[[1]])) return(grange)}) ## For GRanges we just need to check for the existence of additional arguments (like feature, group, etc.) setMethod(".buildRange", signature("GRanges"), function(range, asIRanges=FALSE, args=list(), defaults=list(), trackType=NULL, ...){ if(asIRanges) return(ranges(range)) if(length(range)) { mandArgs <- names(defaults) ## Not quite sure how whether exisiting chromosome information in a GRanges object should generally have precedence over the ## chromosome constructor, but probably that should be the case args$chromosome <- NULL range <- renameSeqlevels(range, setNames(.chrName(seqlevels(range)), seqlevels(range))) missing <- setdiff(union(setdiff(mandArgs, c("chromosome", "strand", colnames(mcols(range)))), names(which(!sapply(args, is.null)))), "genome") newVars <- .fillWithDefaults(DataFrame(chromosome=as.character(seqnames(range)), strand=as.character(strand(range)), mcols(range), check.names=FALSE), defaults[missing], args[missing], len=length(range)) if(any(c("start", "end", "strand", "chromosome") %in% colnames(newVars))){ gen <- genome(range) range <- GRanges(seqnames=if(is.null(newVars[["chromosome"]])) seqnames(range) else (newVars[["chromosome"]]), strand=if(is.null(newVars[["strand"]])) strand(range) else (newVars[["strand"]]), ranges=IRanges(start=if(is.null(newVars[["start"]])) start(range) else (newVars[["start"]]), end=if(is.null(newVars[["end"]])) end(range) else (newVars[["end"]]))) if(length(unique(gen)) != 1) warning("Tracks can only be defined for a single genome. Forcing all reads to belong to genome '", gen[1], "'") defaults[["genome"]] <- as.character(gen)[1] } mcols(range) <- newVars[, setdiff(colnames(newVars), c("start", "end", "strand", "width", "chromosome", "genome", "seqnames", "ranges", "seqlevels", "seqlengths", "isCircular", "element")), drop=FALSE] } if(trackType != "DataTrack") mcols(range) <- mcols(range)[, intersect(names(defaults), colnames(mcols(range)))] ## The genome information may or may not be encoded in the GRanges object at this time but we want it in there for sure genome <- if(!is.null(args[["genome"]])) args[["genome"]] else .getGenomeFromGRange(range, defaults[["genome"]]) suppressWarnings(genome(range) <- unname(genome))[1] return(range)}) ## For IRanges we need to deal with additional arguments (like feature, group, etc.) and create the final GRanges object setMethod(".buildRange", signature("IRanges"), function(range, asIRanges=FALSE, args=list(), defaults=list(), chromosome=NULL, strand, ...){ if(asIRanges) return(range) if(missing(chromosome) || is.null(chromosome)) stop("Unable to find chromosome information in any of the arguments") range <- GRanges(seqnames=.chrName(chromosome), range=range, strand=if(!is.null(args$strand)) args$strand else "*") if(length(range)) { vals <- .fillWithDefaults(defaults=defaults, args=args, len=(length(range)), by=NULL, ignore="strand") elementMetadata(range) <- vals } return(range)}) ## For GRangesLists we capture the grouping information from the list structure, unlist and use the GRanges method setMethod(".buildRange", signature("GRangesList"), function(range, groupId="group", ...){ grps <- rep(names(range), elementLengths(range)) range <- unlist(range) names(range) <- NULL mcols(range)[[groupId]] <- grps return(.buildRange(range=range, ...))}) ## For TranscriptDb objects we extract the grouping information and use the GRanges method setMethod(".buildRange", signature("TranscriptDb"), function(range, groupId="transcript", tstart, tend, chromosome, args, ...){ ## If chromosome (and optional start and end) information is present we only extract parts of the annotation data noSubset <- is.null(tstart) && is.null(tend) if(!is.null(chromosome)){ chromosome <- .chrName(chromosome) ## Seems like TranscriptDb objects use pass by reference for the active chromosomes, so we have to ## restore the old values after we are done oldAct <- seqlevels(range) oldRange <- range on.exit({restoreSeqlevels(oldRange); seqlevels(oldRange, force=TRUE) <- oldAct}) restoreSeqlevels(range) seqlevels(range, force=TRUE) <- chromosome sl <- seqlengths(range) if(is.null(tstart)) tstart <- rep(1, length(chromosome)) if(is.null(tend)){ tend <- sl[chromosome]+1 tend[is.na(tend)] <- tstart[is.na(tend)]+1 } sRange <- GRanges(seqnames=chromosome, ranges=IRanges(start=tstart, end=tend)) } ## First the mapping of internal transcript ID to transcript name txs <- as.data.frame(values(transcripts(range, columns = c("tx_id", "tx_name")))) rownames(txs) <- txs[, "tx_id"] ## Now the CDS ranges t2c <- cdsBy(range, "tx") names(t2c) <- txs[names(t2c), 2] tids <- rep(names(t2c), elementLengths(t2c)) t2c <- unlist(t2c) if(length(t2c)){ t2c$tx_id <- tids t2c$feature_type <- "CDS" } ## And the 5'UTRS t2f <- fiveUTRsByTranscript(range) names(t2f) <- txs[names(t2f), 2] tids <- rep(names(t2f), elementLengths(t2f)) t2f <- unlist(t2f) if(length(t2f)){ t2f$tx_id <- tids t2f$feature_type <- "utr5" } ## And the 3'UTRS t2t <- threeUTRsByTranscript(range) names(t2t) <- txs[names(t2t), 2] tids <- rep(names(t2t), elementLengths(t2t)) t2t <- unlist(t2t) if(length(t2t)){ t2t$tx_id <- tids t2t$feature_type <- "utr3" } ## And finally all the non-coding transcripts nt2e <- exonsBy(range, "tx") names(nt2e) <- txs[names(nt2e), 2] nt2e <- nt2e[!names(nt2e) %in% c(values(t2c)$tx_id, values(t2f)$tx_id, values(t2t)$tx_id)] tids <- rep(names(nt2e), elementLengths(nt2e)) nt2e <- unlist(nt2e) if(length(nt2e)){ nt2e$tx_id <- tids nt2e$feature_type <- "ncRNA" } ## Now we can merge the three back together (we need to change the column names of t2c to make them all the same) colnames(values(t2c))[1:2] <- c("exon_id", "exon_name") ## t2e <- c(t2c, t2f, t2t, nt2e) ## This is super-slow, much more efficient if we build the GRanges object from the individual bits and pieces vals <- DataFrame(exon_id=c(values(t2c)$exon_id, values(t2f)$exon_id, values(t2t)$exon_id, values(nt2e)$exon_id), exon_name=c(values(t2c)$exon_name, values(t2f)$exon_name, values(t2t)$exon_name, values(nt2e)$exon_name), exon_rank=c(values(t2c)$exon_rank, values(t2f)$exon_rank, values(t2t)$exon_rank, values(nt2e)$exon_rank), tx_id=c(values(t2c)$tx_id, values(t2f)$tx_id, values(t2t)$tx_id, values(nt2e)$tx_id), feature_type=c(values(t2c)$feature_type, values(t2f)$feature_type, values(t2t)$feature_type, values(nt2e)$feature_type)) t2e <- GRanges(seqnames=c(seqnames(t2c), seqnames(t2f), seqnames(t2t), seqnames(nt2e)), ranges=IRanges(start=c(start(t2c), start(t2f), start(t2t), start(nt2e)), end=c(end(t2c), end(t2f), end(t2t), end(nt2e))), strand=c(strand(t2c), strand(t2f), strand(t2t), strand(nt2e))) values(t2e) <- vals if(length(t2e)==0) return(GRanges()) ## Add the gene level annotation g2t <- transcriptsBy(range, "gene") gids <- rep(names(g2t), elementLengths(g2t)) g2t <- unlist(g2t) values(g2t)[["gene_id"]] <- gids values(t2e)$gene_id <- gids[match(values(t2e)$tx_id, as.character(txs[as.character(values(g2t)$tx_id),2]))] vals <- values(t2e)[c("tx_id", "exon_id", "exon_rank", "feature_type", "tx_id", "gene_id")] colnames(vals) <- c("transcript", "exon", "rank", "feature", "symbol", "gene") ## Add the genome information genome(t2e) <- unique(genome(range)) ## Finally we re-assign, subset if necessary, and sort range <- t2e values(range) <- vals if(!noSubset && !is.null(chromosome)){ ## We have to keep all exons for all the overlapping transcripts txSel <- unique(subsetByOverlaps(g2t, sRange)$tx_name) range <- range[range$transcript %in% txSel] } args <- list(genome=genome(range)[1]) return(.buildRange(range=sort(range), chromosome=chromosome, args=args, ...))}) ## For character scalars the data need to be extracted from a file and we have to deal with parser functions ## and column assignments here. setMethod(".buildRange", signature("character"), function(range, importFun=NULL, trackType, stream=FALSE, args, defaults, ...){ .checkClass(range, "character", 1) .checkClass(importFun, c("NULL", "function"), mandatory=FALSE) .checkClass(stream, "logical", 1) ## We first check for the default column mapping and whether this is a streaming file defMap <- .defaultVarMap(.fileExtension(range), trackType, stream, !is.null(importFun)) isStream <- !is.null(defMap[[".stream"]]) && defMap[[".stream"]] defMap[[".stream"]] <- NULL if(!isStream){ data <- if(is.null(importFun)) .registerImportFun(range) else{ if(!"file" %in% names(formals(importFun))) stop("The user-defined import function needs to define a 'file' argument") importFun(range) } if(!is(data, "GRanges")) stop("The import function did not provide a valid GRanges object. Unable to build track from file '", range, "'") if(trackType=="DataTrack"){ ## For data tracks we take all numeric data columns regardless of any mapping mc <- .prepareDtData(as.data.frame(mcols(data)), length(data)) mcols(data) <- t(mc) } else { ## For the rest we use the mapping as provided by the constructor ## are available cmap <- .resolveColMapping(data, args, defMap) args <- cmap$args data <- cmap$data } args[["chromosome"]] <- as.character(seqnames(data)) args[["strand"]] <- as.character(strand(data)) return(.buildRange(range=data, args=args, defaults=defaults, trackType=trackType, ...)) }else{ if(trackType!="DataTrack"){ for(i in names(defMap)){ if(is.character(args[[i]]) && length(args[[i]])==1){ defMap[[i]] <- args[[i]] } } } return(list(reference=path.expand(range), mapping=defMap, stream=if(is.null(importFun)) .registerImportFun(range) else importFun)) } }) ##--------------------------------------------------------------------------------- ##--------------------------------------------------------------------------------- ## Interact with ImageMap objects ##--------------------------------------------------------------------------------- setMethod("coords", "NULL", function(ImageMap) NULL) setMethod("coords", "ImageMap", function(ImageMap) ImageMap@coords) setMethod("coords", "GdObject", function(ImageMap) coords(imageMap(ImageMap))) setMethod("tags", "NULL", function(ImageMap) NULL) setMethod("tags", "ImageMap", function(ImageMap) ImageMap@tags) setMethod("tags", "GdObject", function(ImageMap) tags(imageMap(ImageMap))) ##--------------------------------------------------------------------------------- ##--------------------------------------------------------------------------------- ## Show methods for the various classes ##--------------------------------------------------------------------------------- ## A helper function to plot information regarding additional features on other chromosomes .addFeatInfo <- function(object, addfeat){ freqs <- table(seqnames(object)) freqs <- freqs[setdiff(names(freqs), chromosome(object))] nrChr <- length(freqs) msg <- sprintf("There %s %s additional annotation feature%s on %s further chromosome%s%s", ifelse(addfeat>1, "are", "is"), addfeat, ifelse(addfeat>1, "s", ""), nrChr, ifelse(nrChr>1, "s", ""), ifelse(nrChr==1, sprintf(" (%s)", names(freqs)), "")) if(nrChr>1){ msg <- if(nrChr>10){ c(msg, paste(" ", head(names(freqs), 5), ": ", head(freqs, 5), sep="", collapse="\n"), " ...", paste(" ", tail(names(freqs), 5), ": ", tail(freqs, 5), sep="", collapse="\n")) }else{ c(msg, paste(" ", names(freqs), ": ", freqs, " features", sep="", collapse="\n")) } msg <- c(msg, paste("Call seqlevels(obj) to list all available chromosomes", "or seqinfo(obj) for more detailed output")) } return(msg) } setMethod("show",signature(object="DataTrack"), function(object){ msg <- sprintf(paste("DataTrack '%s'\n| genome: %s\n| active chromosome: %s\n", "| positions: %s\n| samples:%s\n| strand: %s", sep=""), names(object), genome(object), chromosome(object), length(object), nrow(values(object)), strand(object)[1]) addfeat <- ncol(object@data)-length(object) if(addfeat>0) msg <- c(msg, .addFeatInfo(object, addfeat), "Call chromosome(obj) <- 'chrId' to change the active chromosome") cat(paste(msg, collapse="\n"), "\n") }) ## A helper function to plot general information about an AnnotationTrack .annotationTrackInfo <- function(object){ msg <- sprintf(paste("| genome: %s\n| active chromosome: %s\n", "| annotation features: %s", sep=""), genome(object), chromosome(object), length(object)) addfeat <- length(object@range)-length(object) if(addfeat>0) msg <- c(msg, .addFeatInfo(object, addfeat), "Call chromosome(obj) <- 'chrId' to change the active chromosome") return(paste(msg, collapse="\n")) } ## We have to show the name, genome and currently active chromosome, and, if more ranges are available on additional ## chromosomes some information about that setMethod("show", signature(object="AnnotationTrack"), function(object) cat(sprintf("AnnotationTrack '%s'\n%s\n", names(object), .annotationTrackInfo(object)))) setMethod("show", signature(object="GeneRegionTrack"), function(object) cat(sprintf("GeneRegionTrack '%s'\n%s\n", names(object), .annotationTrackInfo(object)))) ## A helper function to plot general information about a ReferenceTrack .referenceTrackInfo <- function(object, type){ cat(sprintf("%s '%s'\n| genome: %s\n| active chromosome: %s\n| referenced file: %s\n", type, names(object), genome(object), chromosome(object), object@reference)) if(length(object@mapping) && type != "ReferenceDataTrack") cat(sprintf( "| mapping: %s\n", paste(names(object@mapping), as.character(object@mapping), sep="=", collapse=", "))) } setMethod("show", signature(object="ReferenceAnnotationTrack"), function(object) .referenceTrackInfo(object, "ReferenceAnnotationTrack")) setMethod("show", signature(object="ReferenceDataTrack"), function(object) .referenceTrackInfo(object, "ReferenceDataTrack")) setMethod("show", signature(object="ReferenceGeneRegionTrack"), function(object) .referenceTrackInfo(object, "ReferenceGeneRegionTrack")) setMethod("show", signature(object="ReferenceSequenceTrack"), function(object) .referenceTrackInfo(object, "ReferenceSequenceTrack")) setMethod("show", signature(object="GenomeAxisTrack"), function(object) { cat(sprintf("Genome axis '%s'\n", names(object))) if(.dpOrDefault(object, "add53", FALSE)) cat("5->3 label is set\n") if(.dpOrDefault(object, "add35", FALSE)) cat("3->5 label is set\n") if(.dpOrDefault(object, "littleTicks", FALSE)) cat("littleTicks label is set\n") if(length(object)) { cat("There are annotated axis regions:\n") print(ranges(object)) } }) setMethod("show",signature(object="IdeogramTrack"), function(object){ cat(sprintf(paste("Ideogram track '%s' for chromosome %s of the %s genome"), names(object), gsub("^chr", "", chromosome(object)), genome(object)), "\n") }) ## A helper function to print general information about SequenceTracks .sequenceTrackInfo <- function(object){ msg <- sprintf(paste("Sequence track '%s':\n", "| genome: %s\n", "| chromosomes: %s\n", "| active chromosome: %s (%s nulceotides)\n", sep=""), names(object), genome(object), length(seqnames(object)), chromosome(object), length(object)) if(length(seqnames(object))>1) msg <- paste(msg, "Call seqnames() to list all available chromosomes\n", "Call chromosome()<- to change the active chromosome\n", sep="") return(msg) } ## We need to show the name, genome, information about the source BSgenome object as well as the currently active chromosome setMethod("show",signature(object="SequenceBSgenomeTrack"), function(object){ cat(.sequenceTrackInfo(object), sprintf(paste("Parent BSgenome object:\n", "| organism: %s (%s)\n", "| provider: %s\n", "| provider version: %s\n", "| release date: %s\n", "| release name: %s\n", "| package name: %s\n", sep=""), organism(object@sequence), object@sequence@species, provider(object@sequence), providerVersion(object@sequence), releaseDate(object@sequence), releaseName(object@sequence), object@sequence@seqs_pkgname), sep="") }) ## Here we only need the name, genome and currently active chromosome information setMethod("show", signature(object="SequenceDNAStringSetTrack"), function(object) cat(.sequenceTrackInfo(object))) setMethod("show",signature(object="AlignedReadTrack"), function(object){ cat(sprintf(paste("AlignedRead track '%s' containing %i read%s all mapping", "to chromosome %s of the %s genome:\n"), names(object), length(object), ifelse(length(object)==1, "", "s"), gsub("^chr", "", chromosome(object)), genome(object)), "\n") print(ranges(object)) }) setMethod("show", "DisplayPars", function(object) { cat("Display parameters:\n") for(i in ls(object@pars)) { cat(i, " = ", sep="") o <- try(as.character(object@pars[[i]]), silent=TRUE) if(is(o, "try-error")) print(object@pars[[i]]) else cat(o, "\n") } }) setMethod("show", "InferredDisplayPars", function(object){ cat("\nThe following display parameters are available for '", object@name, "' objects:\n", "(see ? ", object@name, " for details on their usage)\n\n", sep="") for(i in names(object)) { cat(i, ifelse(object@inheritance[i]==object@name, "", paste(" (inherited from class '", object@inheritance[i], "')", sep="")), ": ", sep="") if(is.null(object[[i]])) cat("NULL\n") else { o <- try(as.character(object[[i]]), silent=TRUE) if(is(o, "try-error")) print(object[[i]]) else cat(o, "\n") } } }) ##--------------------------------------------------------------------------------- Gviz/R/Gviz.R0000644000126300012640000021415612227067646014344 0ustar00biocbuildphs_compbio## Check the class and structure of an object .checkClass <- function (x, class, length = NULL, verbose = FALSE, mandatory = TRUE){ if (mandatory && missing(x)) stop("Argument '", substitute(x), "' is missing with no default", call. = verbose) msg <- paste("'", substitute(x), "' must be an object of class ", paste("'", class, "'", sep = "", collapse = " or "), sep = "") fail <- !any(sapply(class, function(c, y) is(y, c), x)) if (!is.null(length) && length(x) != length) { if (!is.null(x)) { fail <- TRUE msg <- paste(msg, "of length", length) } } if (fail) stop(msg, call. = verbose) else invisible(NULL) } ## We want to deal with chromosomes in a reasonable way. This coerces likely inputs to a unified ## chromosome name as understood by UCSC. Accepted inputs are: ## - a single integer or a character coercable to one ## - a character, starting with 'chr' (case insensitive) ## Arguments: ## o x: a character string to be converted to a valid UCSC chromosome name ## Value: the UCSC character name .chrName <- function(x) { if(!getOption("ucscChromosomeNames")) return(as.character(x)) xu <- unique(x) xum <- sapply(xu, function(y){ xx <- suppressWarnings(as.integer(y)) if(!is.na(xx)) y <- xx if(is.numeric(y)) y <- paste("chr", y, sep="") substring(y, 1,3) <- tolower(substring(y, 1,3)) head <- sapply(y, substring, 1,3) == "chr" if(!all(head)) stop(sprintf(paste("Invalid chromosome identifier%s '%s'\nPlease consider setting options(ucscChromosomeNames=FALSE)", "to allow for arbitrary chromosome identifiers."), ifelse(sum(!head)>1, "s", ""), paste(y[!head], collapse=", "))) y}) names(xum) <- xu return(as.vector(xum[as.character(x)])) } ## Make a deep copy of the display parameter environment .deepCopyPars <- function(GdObject) { oldPars <- displayPars(GdObject) GdObject@dp <- DisplayPars() displayPars(GdObject) <- oldPars return(GdObject) } ## One central place to check which display types result in stacking. This may change at some point for some ## unimplemented types... ## Arguments: ## o GdObject: an object inheriting from class GdObject ## Value: a logical skalar indicating whether stacking is needed or not .needsStacking <- function(GdObject) stacking(GdObject) %in% c("squish", "pack", "full") ## Get the coordinates for an HTML image map from the annotationTrack plot. ## Arguments: ## o coordinates: a numeric matrix of annotation region coordinates (the bounding box if not rectangular) ## Value: valid HTML image map coordinates based on the current device dimensions .getImageMap <- function(coordinates) { devSize <- devRes()*par("din") loc <- vpLocation() size <- loc$location[3:4] - loc$location[1:2] xscale <- current.viewport()$xscale yscale <- current.viewport()$yscale fw <- diff(xscale) fh <- diff(yscale) u2px <- function(x) ((x - xscale[1])/fw *size[1]) + loc$location[1] u2py <- function(y) (devSize[2] - loc$location[2]) - ((y - yscale[1])/fh *size[2]) return(data.frame(x1=u2px(coordinates[,1]), y1=u2py(coordinates[,4]), x2=u2px(coordinates[,3]), y2=u2py(coordinates[,2]), stringsAsFactors=FALSE)) } ## A function returning the amount of vertical space needed for a track ## Arguments: ## o x: an object inheriting from class GdObject ## Value: the relative vertical space needed for the track .verticalSpace <- function(x, totalSpace) { if(is(x, "AlignedReadTrack")){ size <- if(is.null(displayPars(x, "size"))){ type <- match.arg(.dpOrDefault(x, "detail", "coverage"), c("reads", "coverage")) if(type == "read") if(stacking(x) %in% c("sqish", "full")) 5 else 1 else 7} else displayPars(x, "size") return(size) } if(is(x, "DataTrack") && is.null(displayPars(x, "size"))){ type <- match.arg(.dpOrDefault(x, "type", "p"), Gviz:::.PLOT_TYPES, several.ok=TRUE) size <- if(length(type)==1L){ if(type=="gradient") 1 else if(type=="heatmap") nrow(values(x)) else 5} else 5 return(size) } if(is(x, "GenomeAxisTrack") || is(x, "IdeogramTrack") || is(x, "SequenceTrack")) { nv <- displayPars(x, "neededVerticalSpace") size <- displayPars(x, "size") if(is.null(size)) if(!is.null(nv)) { size <- nv attr(size, "absolute") <- TRUE } else size <- 1 return(size) } size <- .dpOrDefault(x, "size", 1) if(is(x, "StackedTrack")) size <- max(size, size*max(stacks(x))) return(size) } ## Return a particular displayPars value or a default ## Arguments: ## o GdObject: an object inheriting from class GdObject ## o par: the name of the displayPar ## o default: a default value for the parameter if it can't be found in GdObject ## Value: the value of the displayPar .dpOrDefault <- function(GdObject, par, default=NULL, fromPrototype=FALSE) { val <- getPar(GdObject, par) if(is.null(val)) { if (fromPrototype) { val <- Gviz:::.parMappings[[GdObject@name]][[par]] } else { val <- default } } return(val) } ## Check a list of GdObjects whether an axis needs to be drawn for each of them. ## Arguments: ## o object: a list of GdObjects ## Value: a logical vector of the same length as 'objects' .needsAxis <- function(objects) { if(!is.list(objects)) objects <- list(objects) atrack <- sapply(objects, function(x){ type <- match.arg(.dpOrDefault(x, "type", "p"), Gviz:::.PLOT_TYPES, several.ok=TRUE) is(x, "NumericTrack") || (is(x, "AlignedReadTrack") && .dpOrDefault(x, "detail", "coverage")=="coverage")}) isOnlyHoriz <- sapply(objects, function(x){ type <- match.arg(.dpOrDefault(x, "type", "p"), Gviz:::.PLOT_TYPES, several.ok=TRUE) length(setdiff(type, "horizon")) == 0 }) return(atrack & sapply(objects, .dpOrDefault, "showAxis", TRUE) & !isOnlyHoriz) } ## Helper function to set up the text size based on the available space ## Arguments: ## o trackList: a list of GdObjects ## o sizes: a matching vector of relative vertical sizes ## o title.width: the available width for the title ## Value: a list with items: ## o spaceNeeded: the necessary vertical space ## o cex: the character expansion factor ## o title.width: the updated available title width ## o spacing: the amount of spacing between tracks ## o nwrap: the final (wrapped) title text .setupTextSize <- function(trackList, sizes, title.width, panelOnly=FALSE) { curVp <- vpLocation() spaceNeeded <- if(is.null(sizes)) lapply(trackList, .verticalSpace, curVp$size["height"]) else { if(length(sizes) != length(trackList)) stop("The 'sizes' vector has to match the size of the 'trackList'.") rev(sizes) } whichAbs <- sapply(spaceNeeded, function(x) !is.null(attr(x, "absolute")) && attr(x, "absolute")) spaceNeeded <- unlist(spaceNeeded) leftVetSpace <- curVp$size["height"]-sum(spaceNeeded[whichAbs]) spaceNeeded[!whichAbs] <- spaceNeeded[!whichAbs]/sum(spaceNeeded[!whichAbs])*leftVetSpace spaceNeeded <- spaceNeeded/sum(spaceNeeded) if(!panelOnly) { ## Figure out the fontsize for the titles based on available space. If the space is too small (heights nwrap[allCex=sort(ylim)[1] & at<=sort(ylim)[2]] atSpace <- max(as.numeric(convertWidth(stringWidth(at), "inches"))+0.18)*cex.axis[names(GdObject)] type <- match.arg(.dpOrDefault(GdObject, "type", "p"), Gviz:::.PLOT_TYPES, several.ok=TRUE) if(any(c("heatmap", "gradient") %in% type)){ nlevs <- max(1, nlevels(factor(getPar(GdObject, "groups"))))-1 atSpace <- atSpace + 0.3 * atSpace + as.numeric(convertWidth(unit(3, "points"), "inches"))*nlevs } if(type=="heatmap" && .dpOrDefault(GdObject, "showSampleNames", FALSE)){ sn <- rownames(values(GdObject)) wd <- max(as.numeric(convertWidth(stringWidth(sn) + unit(10, "points"), "inches"))) atSpace <- atSpace + (wd * .dpOrDefault(GdObject, "cex.sampleNames", 0.5)) } atSpace })) hAxSpaceNeeded <- (max(axTicks))/wfac title.width <- title.width + hAxSpaceNeeded } } else { title.width <- nwrap <- cex <- NA } spacing <- 0.02 title.width <- title.width * twfac return(list(spaceNeeded=spaceNeeded, cex=cex, title.width=title.width, spacing=spacing, nwrap=nwrap)) } ## This coerces likely inputs for the genomic strand to a unified ## strand name. Accepted inputs are: ## o a single integer, where values <=0 indicate the plus strand, and values >=1 indicate the minus strand ## o a character, either "+" or "-" ## If extended=TRUE, the additional values 2, "+-", "-+" and "*" are allowed, indicating to use both strands. ## Value: the validated strand name .strandName <- function(x, extended=FALSE) { fun <- function(x, extended){ if(!extended) { if(is.numeric(x)) { x <- min(c(1,max(c(0, as.integer(x))))) } else if(is.character(x)) { x <- match(x, c("+", "-"))-1 if(any(is.na(x))) stop("The strand has to be specified either as a character ('+' or '-'), or as an integer value (0 or 1)") } } else { if(is.numeric(x)) { x <- min(c(2,max(c(0, as.integer(x))))) } else if(is.character(x)) { x <- min(c(2, match(x, c("+", "-", "+-", "-+", "*"))-1)) if(any(is.na(x))) stop("The strand has to be specified either as a character ('+' or '-'), or as an integer value (0 or 1)") } } x } return(sapply(x, fun, extended)) } ## Compute native coordinate equivalent to 'min.width' pixel. This assumes that a graphics device is already ## open, otherwise a new window will pop up, which could be a little annoying. ## Arguments: ## o min.width: the number of pixels ## o coord: the axis for which to compute the coordinats, one in c("x","y") ## Value: the equivalent of 'min.width' in native coordinates. .pxResolution <- function(min.width=1, coord=c("x","y")) { coord <- match.arg(coord, several.ok=TRUE) curVp <- vpLocation() co <- c(x=as.vector(abs(diff(current.viewport()$xscale))/(curVp$size["width"])*min.width), y=as.vector(abs(diff(current.viewport()$yscale))/(curVp$size["height"])*min.width)) return(co[coord]) } ## Take coordinates for the bounding boxes of annotation regions and plot filled arrows inside. ## Arguments: ## o coords as numeric matrix with 4 columns: x1, y1, x2, y2 ## o W: the proportion of the total box width used for the arrow head ## o H: the proportion of the total box height used for the arrow head ## o col: the boundary color ## o fill: the fill color ## o lwd: the boundary line width ## o lty: the boundary line type ## o alpha: the transparency ## o strand: the strand information, a character of either "+" or "-" ## o min.width: the minumum width of the arrow head. Below this size a simple box is drawn ## Note that the last arguments 4-9 all have to be of the same length as number of rows in coords. ## Value: the function is called for its side-effects of drawing on the graphics device .filledArrow <- function(coords, W=1/4, H=1/3, col, fill, lwd, lty, alpha, strand=0, min.width=10) { A <- coords[,1:2,drop=FALSE] B <- coords[,3:4,drop=FALSE] ## First everything that is still a box osel <- abs(B[,1]-A[,1]) < min.width | !strand %in% c("+", "-") xx <- c(A[osel,1], B[osel,1], B[osel,1], A[osel,1]) ##offset <- ifelse(strand[osel] %in% c("+", "-"), (abs(B[osel,2]-A[osel,2])*H/2), 0) offset <- (abs(B[osel,2]-A[osel,2])*H/2) yy <- c(rep(A[osel,2]+offset, 2), rep(B[osel,2]-offset, 2)) id <- rep(seq_len(sum(osel)), 4) pars <- data.frame(fill=fill, col=col, lwd=lwd, lty=lty, alpha=alpha, stringsAsFactors=FALSE)[osel,] ## Now the arrows facing right sel <- !osel & strand=="+" id <- c(id, rep(seq(from=if(!length(id)) 1 else max(id)+1, by=1, len=sum(sel)), 7)) xx <- c(xx, A[sel,1], rep(A[sel,1]+(abs(B[sel,1]-A[sel,1])*W),2), B[sel,1], rep(A[sel,1]+(abs(B[sel,1]-A[sel,1])*W),2), A[sel,1]) yy <- c(yy, rep(A[sel,2]+(abs(B[sel,2]-A[sel,2])*H/2),2), A[sel,2], A[sel,2]+(abs(B[sel,2]-A[sel,2])/2), B[sel,2], rep(B[sel,2]-(abs(B[sel,2]-A[sel,2])*H/2),2)) pars <- rbind(pars, data.frame(fill=fill, col=col, lwd=lwd, lty=lty, alpha=alpha, stringsAsFactors=FALSE)[sel,]) ## And finally those facing left sel <- !osel & strand=="-" id <- c(id, rep(seq(from=if(!length(id)) 1 else max(id)+1, by=1, len=sum(sel)), 7)) xx <- c(xx, B[sel,1], rep(B[sel,1]-((B[sel,1]-A[sel,1])*W),2), A[sel,1], rep(B[sel,1]-((B[sel,1]-A[sel,1])*W),2), B[sel,1]) yy <- c(yy, rep(A[sel,2]+(abs(B[sel,2]-A[sel,2])*H/2),2), A[sel,2], A[sel,2]+(abs(B[sel,2]-A[sel,2])/2), B[sel,2], rep(B[sel,2]-(abs(B[sel,2]-A[sel,2])*H/2),2)) pars <- rbind(pars, data.frame(fill=fill, col=col, lwd=lwd, lty=lty, alpha=alpha, stringsAsFactors=FALSE)[sel,]) grid.polygon(x=xx, y=yy, gp=gpar(fill=pars$fill, col=pars$col, alpha=pars$alpha, lwd=pars$lwd, lty=pars$lty), default.units="native", id=id) } ## Take start and end coordinates for genemodel-type annotations and draw a featherd line indicating ## the strand direction ## Arguments: ## o xx1, xx2: integer vectors of equal length indicating the start and end of the gene models. ## o strand: the strand information for each gene model. Needs to be of the same length as xx1 and xx2 ## o coords: the coordinates of the exon features, needed to avoid overlaps. ## o y: the y value for the arrow bar, usually not set since it should always be 20 ## o W: the width of the arrow feathers in pixels ## o D: the distance between arrow feathers in pixels ## o H: the height of the arrow feathers in native coordinates (the total bounding box is usually 40) ## o col: the boundary color ## o lwd: the boundary line width ## o lty: the boundary line type ## o alpha: the transparency ## o barOnly: only plot the bar, not the feathers ## o diff: the current pixel resolution ## o min.height: the minimum total height in pixels for the feathers (i.e., min.height/2 in each direction) ## Value: the function is called for its side-effects of drawing on the graphics device .arrowBar <- function(xx1, xx2, strand, coords, y=20, W=3, D=10, H, col, lwd, lty, alpha, barOnly=FALSE, diff=.pxResolution(coord="y"), min.height=3) { if(!barOnly) { onePx <- diff if(missing(H)) { onePy <- .pxResolution(coord="y") H <- onePy*min.height/2 } fx1 <- fx2 <- scol <- fy1 <- fy2 <- NULL exons <- IRanges(start=coords[,1], end=coords[,3]) levels <- split(exons, coords[,2]) for(i in seq_along(xx1)) { x1 <- xx1[i] x2 <- xx2[i] len <- diff(c(x1,x2))/onePx if(len>D+W*2) { ax1 <- seq(from=x1+(onePx*W), to=x1+(len*onePx)-(onePx*W), by=onePx*D) ax2 <- ax1+(onePx*W) feathers <- IRanges(start=ax1-onePx, end=ax2+onePx) cur.level <- which(y[i]==unique(y)) sel <- queryHits(findOverlaps(feathers, levels[[cur.level]])) if(length(sel)) { ax1 <- ax1[-sel] ax2 <- ax2[-sel] } fx1 <- c(fx1, rep(if(strand[i]=="-") ax1 else ax2, each=2)) fx2 <- c(fx2, rep(if(strand[i]=="-") ax2 else ax1, each=2)) scol <- c(scol, rep(col[i], length(ax1)*2)) fy1 <- c(fy1, rep(rep(y[i], length(ax1)*2))) fy2 <- c(fy2, rep(c(y[i]-H, y[i]+H), length(ax1))) } } if(!is.null(fx1) && length(fx1)) grid.segments(fx1, fy1, fx2, fy2, default.units="native", gp=gpar(col=scol, lwd=lwd, lty=lty, alpha=alpha)) } grid.segments(xx1, y, xx2, y, default.units="native", gp=gpar(col=col, lwd=lwd, lty=lty, alpha=alpha, lineend="square")) } ## Extract track color for different subtypes within the track and use the default ## color value if no other is found, lightblue if no colors are set at all ## Arguments: ## o GdObject: object inheriting from class GdObject ## Value: a color character .getBiotypeColor <- function(GdObject) { defCol <- .dpOrDefault(GdObject, "fill", Gviz:::.DEFAULT_FILL_COL) col <- sapply(as.character(values(GdObject)[, "feature"]), function(x) .dpOrDefault(GdObject, x)[1], simplify=FALSE) needsDef <- sapply(col, is.null) col[needsDef] <- rep(defCol, sum(needsDef))[1:sum(needsDef)] return(unlist(col)) } ## Compute pretty tickmark location (code from tilingArray package) ## Arguments: ## o x: a vector of data values ## Value: the tick mark coordinates .ticks <- function(x){ rx <- range(x) lz <- log((rx[2]-rx[1])/3, 10) fl <- floor(lz) if( lz-fl > log(5, 10)) fl <- fl + log(5, 10) tw <- round(10^fl) i0 <- ceiling(rx[1]/tw) i1 <- floor(rx[2]/tw) seq(i0, i1)*tw } ## A lattice-style panel function to draw smoothed 'mountain' plots ## Arguments: ## o x, y: the x and y coordinates form the plot ## o span, degree, family, evaluation: parameters that are passed on to loess ## o lwd, lty, col: color, with and type of the plot lines ## o fill: fill colors for areas above and under the baseline, a vector of length two ## o col.line: color of the baseline ## o baseline: the y value of the horizontal baseline ## o alpha: the transparancy ## Value: the function is called for its side-effect of drawing on the graphics device .panel.mountain <- function (x, y, span=2/3, degree=1, family=c("symmetric", "gaussian"), evaluation=50, lwd=plot.line$lwd, lty=plot.line$lty, col, col.line=plot.line$col, baseline, fill, alpha=1, ...) { x <- as.numeric(x) y <- as.numeric(y) fill <- rep(fill,2) ok <- is.finite(x) & is.finite(y) if (sum(ok) < 1) return() if (!missing(col)) { if (missing(col.line)) col.line <- col } plot.line <- trellis.par.get("plot.line") smooth <- loess.smooth(x[ok], y[ok], span = span, family = family, degree = degree, evaluation = evaluation) tmp <- as.integer(smooth$y1 && tmp[i]!= tmp[i-1]) changePoint = c(changePoint, i) m <- (smooth$y[changePoint] - smooth$y[changePoint-1]) / (smooth$x[changePoint] - smooth$x[changePoint-1]) xCross <- ((baseline-smooth$y[changePoint-1])/m) + smooth$x[changePoint-1] newX <- newY <- NULL j <- 1 xx <- smooth$x yy <- smooth$y smooth$x <- c(smooth$x, tail(smooth$x,1)) smooth$y <- c(smooth$y, baseline) xvals <- smooth$x[1] yvals <- baseline for(i in seq_along(smooth$x)) { if(i==length(smooth$x)) { xvals <- c(xvals, smooth$x[i]) yvals <- c(yvals, baseline) fcol <- if(mean(yvals)1 && tmp[i]!= tmp[i-1]) changePoint = c(changePoint, i) m <- (y[changePoint] - y[changePoint-1]) / (x[changePoint] - x[changePoint-1]) xCross <- ((baseline-y[changePoint-1])/m) + x[changePoint-1] newX <- newY <- NULL j <- 1 x <- c(x, tail(x,1)) y <- c(y, baseline) xvals <- x[1] yvals <- baseline for(i in seq_along(x)) { if(i==length(x)) { xvals <- c(xvals, x[i]) yvals <- c(yvals, baseline) fcol <- if(mean(yvals)0){ minXDiff <- ceiling(min.width*diff) ## Extend all ranges to at least minXDiff xdiff <- width(r) xsel <- xdiff < minXDiff if(any(xsel)) { rr <- if(is(r, "GRanges")) ranges(r) else r start(rr)[xsel] <- pmax(1, start(rr)[xsel]-(minXDiff-xdiff[xsel])/2) end(rr)[xsel] <- end(rr)[xsel]+(minXDiff-xdiff[xsel])/2 if(is(r, "GRanges")) r@ranges <- rr else r <- rr } } return(r) } ## Helper function to translate from a UCSC genome name to a Biomart data set. This also caches the mart ## object in order to speed up subsequent calls ## Arguments: ## o genome: character giving the UCSC genome ## Value: A BiomaRt connection object .genome2Dataset <- function(genome) { ds <- c("mm9"="mmusculus_gene_ensembl", "hg19"="hsapiens_gene_ensembl", "felCat4"="fcatus_gene_ensembl", "galGal3"="ggallus_gene_ensembl", "panTro2"="ptroglodytes_gene_ensembl", "bosTau4"="btaurus_gene_ensembl", "canFam3"="cfamiliaris_gene_ensembl", "loxAfr3"="lafricana_gene_ensembl", "fr2"="trubripes_gene_ensembl", "cavPor3"="cporcellus_gene_ensembl", "equCab2"="ecaballus_gene_ensembl", "anoCar1"="acarolinensis_gene_ensembl", "calJac3"="cjacchus_gene_ensembl", "oryLat2"="olatipes_gene_ensembl", "monDom5"="mdomestica_gene_ensembl", "susScr2"="sscrofa_gene_ensembl", "ornAna1"="oanatinus_gene_ensembl", "oryCun2"="ocuniculus_gene_ensembl", "rn4"="rnorvegicus_gene_ensembl", "gasAcu1"="gaculeatus_gene_ensembl", "tetNig2"="tnigroviridis_gene_ensembl", "xenTro2"="xtropicalis_gene_ensembl", "danRer7"="drerio_gene_ensembl", "ci2"="cintestinalis_gene_ensembl", "dm3"="dmelanogaster_gene_ensembl", "ce6"="celegans_gene_ensembl", "sacCer2"="scerevisiae_gene_ensembl") if(!tolower(genome) %in% tolower(names(ds))) stop("Unable to automatically determine Biomart data set for UCSC genome '", genome, "'") thisDs <- ds[match(tolower(genome), tolower(names(ds)))] cenv <- environment() bm <- .doCache(thisDs, expression(useMart("ensembl", dataset=thisDs)), .ensemblCache, cenv) return(bm) } .annotationSpace <- function(GdObject, from, to) { if(!length(GdObject)) return(NULL) sel <- chromosome(GdObject) == seqnames(GdObject) & start(GdObject)>=from & start(GdObject)<=to if (sum(sel) > 0) { ids <- identifier(GdObject, FALSE)[sel] hasAnno <- .dpOrDefault(GdObject, "showId", FALSE) & ids!="" txt <- paste(ids, " ") txt[!hasAnno] <- "" space <- (as.numeric(convertWidth(stringWidth(txt),"native"))*1.3) newFrom <- min(start(GdObject)[sel]-space*1.6) } else { txt <- "" space <- (as.numeric(convertWidth(stringWidth(txt),"native"))*1.3) newFrom <- from } cex <- .dpOrDefault(GdObject, "cex", 1) * .dpOrDefault(GdObject, "cex.symbol", 0.7) fontfamily <- .dpOrDefault(GdObject, "fontfamily", 1) fontsize <- .dpOrDefault(GdObject, "fontsize", 12) fontface <- .dpOrDefault(GdObject, "fontface.symbol", 2) pushViewport(dataViewport(xData=c(from, to), extension=0, yscale=c(0, 1), clip=TRUE, gp=gpar(cex=cex, fontfamily=fontfamily, fonface=fontface, fontsize=fontsize))) space <- (as.numeric(convertWidth(stringWidth(txt),"native"))*1.3) popViewport(1) ## newFrom <- min(start(GdObject)[sel]-space*1.6) return(newFrom) } ## Return the plotting range for a GdObject, either from the contained ranges or from overrides. ## This function is vectorized and should also work for lists of GdObjects. .defaultRange <- function(GdObject, from=NULL, to=NULL, extend.left=0, extend.right=0, factor=0.01, annotation=FALSE) { if(!is.list(GdObject)) GdObject <- list(GdObject) if(!length(GdObject) || !all(sapply(GdObject, is, "GdObject"))) stop("All items in the list must inherit from class 'GdObject'") tfrom <- lapply(GdObject, function(x){tmp <- start(x); if(is(x, "RangeTrack")) tmp <- tmp[seqnames(x)==chromosome(x)]; tmp}) tfrom <- if(is.null(unlist(tfrom))) Inf else min(sapply(tfrom[listLen(tfrom)>0], min)) tto <- lapply(GdObject, function(x){tmp <- end(x); if(is(x, "RangeTrack")) tmp <- tmp[seqnames(x)==chromosome(x)]; tmp}) tto <- if(is.null(unlist(tto))) Inf else max(sapply(tto[listLen(tto)>0], max)) if((is.null(from) || is.null(to)) && ((is.infinite(tfrom) || is.infinite(tto)) || is(GdObject, "GenomeAxisTrack"))) stop("Unable to determine plotting ranges from the supplied track(s)") range <- extendrange(r=c(tfrom, tto), f=factor) range[1] <- max(1, range[1]) wasNull <- FALSE if(is.null(from)) { wasNull <- TRUE from <- range[1] } if(is.null(to)) to <- range[2] from <- from-extend.left to <- to+extend.right if(from>to) stop("'from' range can not be larger than 'to'") ## We may need some extra space for annotations if(annotation) { annStarts <- unlist(lapply(GdObject[sapply(GdObject, is, "AnnotationTrack")], .annotationSpace, from, to)) ## FIXME: Do we want to add annotation space if from was defined by the user? if(!is.null(annStarts) && wasNull) from <- min(c(from, annStarts)) } return(c(from=as.vector(from), to=as.vector(to))) } ## Figure out the colors to use for a DataTrack object from the supplied display parameters .getPlottingFeatures <- function(GdObject) { pch <- .dpOrDefault(GdObject, "pch", 20) lty <- .dpOrDefault(GdObject, "lty", 1) lwd <- .dpOrDefault(GdObject, "lwd", 1) cex <- .dpOrDefault(GdObject, "cex", 0.7) groups <- .dpOrDefault(GdObject, "groups") col <- .dpOrDefault(GdObject, "col", "#0080ff") if(is.null(groups)){ ## When there are no groups we force a single color for all lines and points col <- col[1] col.line <- .dpOrDefault(GdObject, "col.line", col)[1] col.symbol <- .dpOrDefault(GdObject, "col.symbol", col)[1] pch <- pch[1] lwd <- lwd[1] lty <- lty[1] cex <- cex[1] } else { ## Otherwise colors are being mapped to group factors col <- .dpOrDefault(GdObject, "col", trellis.par.get("superpose.line")$col) col <- rep(col, length(groups)) col.line <- rep(.dpOrDefault(GdObject, "col.line", col), length(groups)) col.symbol <- rep(.dpOrDefault(GdObject, "col.symbol", col), length(groups)) lwd <- rep(lwd, length(groups)) lty <- rep(lty, length(groups)) pch <- rep(pch, length(groups)) cex <- rep(cex, length(groups)) } col.baseline <- .dpOrDefault(GdObject, "col.baseline", col) col.grid <- .dpOrDefault(GdObject, "col.grid", "#e6e6e6")[1] fill <- .dpOrDefault(GdObject, "fill", Gviz:::.DEFAULT_FILL_COL)[1] fill.histogram <- .dpOrDefault(GdObject, "fill.histogram", fill)[1] col.histogram <- .dpOrDefault(GdObject, "col.histogram", .dpOrDefault(GdObject, "col", Gviz:::.DEFAULT_SHADED_COL))[1] lty.grid <- .dpOrDefault(GdObject, "lty.grid", 1) lwd.grid <- .dpOrDefault(GdObject, "lwd.grid", 1) return(list(col=col, col.line=col.line, col.symbol=col.symbol, col.baseline=col.baseline, col.grid=col.grid, col.histogram=col.histogram, fill=fill, fill.histogram=fill.histogram, lwd=lwd, lty=lty, pch=pch, cex=cex, lwd.grid=lwd.grid, lty.grid=lty.grid)) } .legendInfo <- function() { legInfo <- matrix(FALSE, ncol=7, nrow=16, dimnames=list(c("p", "b", "l", "a", "s", "S", "r", "h", "smooth", "histogram", "boxplot", "heatmap", "gradient", "mountain", "g", "horizon"), c("lty", "lwd", "pch", "col", "cex", "col.lines", "col.symbol"))) legInfo[2:9, c("lty", "lwd", "col.lines")] <- TRUE legInfo[1:2, c("pch", "cex", "col.symbol")] <- TRUE legInfo[1:12, "col"] <- TRUE return(legInfo) } ## Plot a list of GdObjects as individual tracks similar to the display on the UCSC genome browser ## Arguments: ## o trackList: a list of GdObjects ## o from, to: the plotting range, will be figured out automatically from the tracks if missing ## o sized: a vector of relative vertical sizes, or NULL to auto-detect ## o panel.only: don't draw track titles, useful to embed in a lattice-like function ## o extend.right, extend.left: extend the coordinates in 'from' and 'too' ## o title.width: the expansion factor for the width of the title track ## Value: the function is called for its side-effect of drawing on the graphics device plotTracks <- function(trackList, from=NULL, to=NULL, ..., sizes=NULL, panel.only=FALSE, extend.right=0, extend.left=0, title.width=NULL, add=FALSE, main, cex.main=2, fontface.main=2, col.main="black", margin=6, chromosome=NULL) { if(!is.list(trackList)) trackList <- list(trackList) ## We first run very general housekeeping tasks on the tracks for which we don't really need to know anything about device ## size, resolution or plotting ranges. Chromosomes should all be the same for all tracks, if not we will force them to ## be set to the first one that can be detected chrms <- unlist(lapply(trackList, Gviz::chromosome)) if(is.null(chromosome)){ chrms <- if(!is.null(chrms)) chrms[gsub("^chr", "", chrms)!="NA"] else chrms chromosome <- head(chrms, 1) if(length(chromosome)==0) chromosome <- "chrNA" if(!is.null(chrms) && length(unique(chrms))!=1) warning("The track chromosomes in 'trackList' differ. Setting all tracks to chromosome '", chromosome, "'", sep="") } ## If plotting ranges are supplied we can speed up a lot of the downstream operations by subsetting first if(!is.null(from) || !(is.null(to))){ trackList <- lapply(trackList, subset, from=from, to=to, chromosome=chromosome, sort=FALSE, stacks=FALSE, use.defaults=FALSE) } trackList <- lapply(trackList, consolidateTrack, chromosome=chromosome, ...) ## Now we figure out the plotting ranges. If no ranges are given as function arguments we take the absolute min/max of all tracks. if(!panel.only && !add) grid.newpage() ranges <- .defaultRange(trackList, from=from, to=to, extend.left=extend.left, extend.right=extend.right, annotation=TRUE) ## We need to reverse the list to get a top to bottom plotting order trackList <- rev(trackList) map <- vector(mode="list", length=length(trackList)) titleCoords <- NULL names(map) <- rev(sapply(trackList, names)) ## Now we can subset all the objects in the list to the current boundaries and compute the initial stacking trackList <- lapply(trackList, subset, from=ranges["from"], to=ranges["to"], chromosome=chromosome) trackList <- lapply(trackList, setStacks, from=ranges["from"], to=ranges["to"]) ## Open a fresh page and set up the bounding box, unless add==TRUE if(!panel.only) { ## We want a margin pixel border borderFacts <- 1-((margin*2)/vpLocation()$size) vpBound <- viewport(width=borderFacts[1], height=borderFacts[2]) pushViewport(vpBound) ## If there is a header we have to make some room for it here if(!missing(main) && main != "") { vpHeader <- viewport(width=1, height=0.1, y=1, just=c("center", "top")) pushViewport(vpHeader) grid.text(main, gp=gpar(col=col.main, cex=cex.main, fontface=fontface.main)) popViewport(1) vpMain <- viewport(width=1, height=0.9, y=0.9, just=c("center", "top")) }else{ vpMain <- viewport(width=1, height=1) } pushViewport(vpMain) ## A first guestimate of the vertical space that's needed spaceSetup <- .setupTextSize(trackList, sizes, title.width) } else { vpBound <- viewport() pushViewport(vpBound) spaceSetup <- .setupTextSize(trackList, sizes) } ## First iteration to set up all the dimensions by calling the drawGD methods in prepare mode, i.e., ## argument prepare=TRUE. Nothing is drawn at this point, and this only exists to circumvent the ## chicken and egg problem of not knowing how much space we need until we draw, but also not knowing ## where to draw until we know the space needed. for(i in rev(seq_along(trackList))) { fontSettings <- .fontGp(trackList[[i]], cex=NULL) vpTrack <- viewport(x=0, y=sum(spaceSetup$spaceNeeded[1:i]), just=c(0,1), width=1, height=spaceSetup$spaceNeeded[i], gp=fontSettings) pushViewport(vpTrack) vpContent <- if(!panel.only) viewport(x=spaceSetup$title.width+spaceSetup$spacing, width=1-spaceSetup$title.width-spaceSetup$spacing, just=0) else viewport(width=1) pushViewport(vpContent) trackList[[i]] <- drawGD(trackList[[i]], minBase=ranges["from"], maxBase=ranges["to"], prepare=TRUE, subset=FALSE) popViewport(2) } ## Now lets recalculate the space and draw for real spaceSetup <- .setupTextSize(trackList, sizes, title.width) for(i in rev(seq_along(trackList))) { fontSettings <- .fontGp(trackList[[i]], cex=NULL) vpTrack <- viewport(x=0, y=sum(spaceSetup$spaceNeeded[1:i]), just=c(0,1), width=1, height=spaceSetup$spaceNeeded[i], gp=fontSettings) pushViewport(vpTrack) fill <- .dpOrDefault(trackList[[i]], "background.title", Gviz:::.DEFAULT_SHADED_COL) if(!panel.only) { vpTitle <- viewport(x=0, width=spaceSetup$title.width, just=0) pushViewport(vpTitle) lwd.border.title <- .dpOrDefault(trackList[[i]], "lwd.border.title", 1) col.border.title <- .dpOrDefault(trackList[[i]], "col.border.title", "transparent") grid.rect(gp=gpar(fill=fill, col=col.border.title, lwd=lwd.border.title)) needAxis <- .needsAxis(trackList[[i]]) drawAxis(trackList[[i]], ranges["from"], ranges["to"], subset=FALSE) tit <- spaceSetup$nwrap[i] titleCoords <- rbind(titleCoords, cbind(.getImageMap(cbind(0,0,1,1)), title=names(trackList[[i]]))) if(.dpOrDefault(trackList[[i]], "showTitle", TRUE) && !is.null(tit) && tit!="") { col <- .dpOrDefault(trackList[[i]], "col.title", "white") fontface <- .dpOrDefault(trackList[[i]], "fontface.title", 2) fontsize <- .dpOrDefault(trackList[[i]], "fontsize.title", 12) lineheight <- .dpOrDefault(trackList[[i]], "lineheight.title", 1) fontfamily <- .dpOrDefault(trackList[[i]], "fontfamily.title", "sans") lcex <- spaceSetup$cex[i] x <- if(needAxis) 0.075 else 0.4 just <- if(needAxis) c("center", "top") else "center" ## FIXME: We need to deal with this when calculating the space for the title bar rot <- .dpOrDefault(trackList[[i]], "rot.title", 90) suppressWarnings(grid.text(tit, unit(x, "npc"), rot=rot, gp=gpar(col=col, fontface=fontface, cex=lcex, fontsize=fontsize, lineheight=lineheight, fontfamily=fontfamily), just=just)) } popViewport(1) } ## Draw the panel background, grid lines if necessary and the panel content vpBackground <- if(!panel.only) viewport(x=spaceSetup$title.width, width=1-spaceSetup$title.width, just=0) else viewport(width=1) pushViewport(vpBackground) grid.rect(gp=gpar(col="transparent", fill=.dpOrDefault(trackList[[i]], "background.panel", "transparent"))) drawGrid(trackList[[i]], ranges["from"], ranges["to"]) popViewport(1) vpContent <- if(!panel.only) viewport(x=spaceSetup$title.width+spaceSetup$spacing, width=1-spaceSetup$title.width-spaceSetup$spacing, just=0) else viewport(width=1) pushViewport(vpContent) tmp <- drawGD(trackList[[i]], minBase=ranges["from"], maxBase=ranges["to"], subset=FALSE) if(!is.null(tmp)) map[[(length(map)+1)-i]] <- tmp popViewport(1) if(.dpOrDefault(trackList[[i]], "frame", FALSE)) grid.rect(gp=gpar(col=.dpOrDefault(trackList[[i]], "col.frame", Gviz:::.DEFAULT_SHADED_COL), fill="transparent")) popViewport(1) } popViewport(if(panel.only) 1 else 2) tc <- as.character(titleCoords[,5]) tc[which(tc == "" | is.na(tc) | is.null(tc))] = "NA" names(tc) <- tc if(!is.null(titleCoords)) { tcoord <- as.matrix(titleCoords[,1:4]) rownames(tcoord) <- names(tc) map$titles <- ImageMap(coords=tcoord, tags=list(title=tc)) } return(invisible(map)) } ## Try to extract the (unique) genome information from a GRanges objects with the possibility to fall back to a default value .getGenomeFromGRange <- function(range, default=NULL){ gn <- genome(range) if(length(unique(gn))>1) warning("Only a single genome is supported for this object. Ignoring additional genome information") if(length(gn)==0 || all(is.na(gn))){ if(is.null(default)) stop("A genome must be supplied when creating this object.") return(default[1]) } return(gn[1]) } ## Write all tracks in a list of tracks into ## a single BED file. exportTracks <- function(tracks, range, chromosome, file) { if(missing(file)) file <- "customTracks.bed" con <- file(file, open="wt") writeLines(sprintf("browser position %s:%i-%i", chromosome, range[1], range[2]), con) writeLines("browser hide all", con) for(t in seq_along(tracks)) { track <- tracks[[t]] if(length(track)>0 && (is(track, "AnnotationTrack") || is(track, "GeneRegion"))) { track <- as(track, "UCSCData") writeLines(as(track@trackLine, "character"), con) ## nextMet <- selectMethod("export.bed", c("RangedData", "characterORconnection")) ## nextMet(as(track, "RangedData"), con) .expBed(as(track, "RangedData"), con) } } close(con) } ## This funcion is broken in the rtracklayer package .expBed <- function (object, con, variant = c("base", "bedGraph", "bed15"), color, append) { variant <- match.arg(variant) name <- strand <- thickStart <- thickEnd <- color <- NULL blockCount <- blockSizes <- blockStarts <- NULL df <- data.frame(chrom(object), start(object) - 1, end(object)) score <- score(object) if (!is.null(score)) { if (!is.numeric(score) || any(is.na(score))) stop("Scores must be non-NA numeric values") } if (variant == "bedGraph") { if (is.null(score)) score <- 0 df$score <- score } else { blockSizes <- object$blockSizes blockStarts <- object$blockStarts if (variant == "bed15" && is.null(blockSizes)) blockStarts <- blockSizes <- "" if (!is.null(blockSizes) || !is.null(blockStarts)) { if (is.null(blockSizes)) stop("'blockStarts' specified without 'blockSizes'") if (is.null(blockStarts)) stop("'blockSizes' specified without 'blockStarts'") lastBlock <- function(x) sub(".*,", "", x) lastSize <- lastBlock(blockSizes) lastStart <- lastBlock(blockStarts) if (any(df[[2]] + as.integer(lastSize) + as.integer(lastStart) != df[[3]]) || any(sub(",.*", "", blockStarts) != 0)) stop("blocks must span entire feature") blockCount <- sapply(strsplit(blockSizes, ","), length) } if (is.null(color)) color <- object$itemRgb if (is.null(color) && !is.null(blockCount)) color <- "0" else if (!is.null(color)) { nacol <- is.na(color) colmat <- col2rgb(color) color <- paste(colmat[1, ], colmat[2, ], colmat[3, ], sep = ",") color[nacol] <- "0" } thickStart <- object$thickStart thickEnd <- object$thickEnd if (is.null(thickStart) && !is.null(color)) { thickStart <- start(object) thickEnd <- end(object) } strand <- object$strand if (!is.null(thickStart) && is.null(strand)) { strand <- rep(NA, nrow(object)) } if (!is.null(strand) && is.null(score)) score <- 0 name <- object$name if (is.null(name)) name <- rownames(object) if (!is.null(score) && is.null(name)) name <- rep(NA, nrow(object)) df$name <- name df$score <- score df$strand <- strand df$thickStart <- thickStart df$thickEnd <- thickEnd df$itemRgb <- color df$blockCount <- blockCount df$blockSizes <- blockSizes df$blockStarts <- blockStarts if (variant == "bed15") { df$expCount <- object$expCount df$expIds <- object$expIds df$expScores <- object$expScores } } scipen <- getOption("scipen") options(scipen = 100) on.exit(options(scipen = scipen)) write.table(df, con, sep = "\t", col.names = FALSE, row.names = FALSE, quote = FALSE, na = ".", append = append) } ## Construct a URL to UCSC showing the custom tracks ucscUrl <- function(chr, range, spec, gen, open=TRUE) { hgid <- system(sprintf("%s %s %s", system.file("lib/testUCSC.pl", package="Gviz"), "customTracks.bed", spec, gen), intern=TRUE, ignore.stderr=TRUE) url <- sprintf(paste("http://genome.ucsc.edu/cgi-bin/hgTracks?hgsid=%s&Submit=go+to+genome+browser", "&position=%s%%3A%i-%i", sep=""), hgid, chr, range[1], range[2]) if(open) browseURL(url) return(url) } .updateObj <- function(object) { availSlots <- getObjectSlots(object) availSlotNames <- names(availSlots) definedSlotNames <- slotNames(object) if(length(availSlotNames)==length(definedSlotNames) && all(sort(availSlotNames) == sort(definedSlotNames))) return(object) commonSlots <- intersect(definedSlotNames, availSlotNames) missingSlots <- setdiff(definedSlotNames, availSlotNames) newObject <- new(class(object)) for (s in commonSlots) slot(newObject, s) <- availSlots[[s]] return(newObject) } vpLocation <- function(){ xres <- devRes()[1] yres <- devRes()[2] ## find location and pixel-size of current viewport devloc1 <- c(convertX(unit(0, "npc"), "inches"), convertY(unit(0, "npc"), "inches"), 1) %*% current.transform() devloc2 <- c(convertX(unit(1, "npc"), "inches"), convertY(unit(1, "npc"), "inches"), 1) %*% current.transform() x1 <- (devloc1/devloc1[3])[1]*xres y1 <- (devloc1/devloc1[3])[2]*yres x2 <- (devloc2/devloc2[3])[1]*xres y2 <- (devloc2/devloc2[3])[2]*yres loc <- c(x1,y1,x2,y2) names(loc) <- c("x1", "y1", "x2", "y2") size <- c(x2-x1, y2-y1) names(size) <- c("width", "height") iloc <- c(x1/xres, y1/yres, x2/yres, y2/yres) names(iloc) <- c("x1", "y1", "x2", "y2") isize <- size/c(xres,yres) names(size) <- c("width", "height") return(list(location=loc, size=size, ilocation=iloc, isize=isize)) } devRes <- function(){ ## find R's resolution for the current device if(current.viewport()$name != "ROOT"){ vpt <- current.vpTree() depth <- upViewport(0) xres <- abs(as.numeric(convertWidth(unit(1, "inches"), "native"))) yres <- abs(as.numeric(convertHeight(unit(1, "inches"), "native"))) downViewport(depth) }else{ xres <- abs(as.numeric(convertWidth(unit(1, "inches"), "native"))) yres <- abs(as.numeric(convertHeight(unit(1, "inches"), "native"))) } retval <- c(xres, yres) names(retval) <- c("xres", "yres") return(retval) } devDims <- function(width, height, ncol=12, nrow=8, res=72){ f <- (((ncol+1)*0.1+ncol+1)/((nrow+1)*0.1+nrow+1)) if((missing(width) & missing(height) || !missing(width) & !missing(height))) stop("Need either argument 'width' or argument 'height'") if(missing(height)) return(list(width=width, height=width/f, pwidth=width*res, pheight=width/f*res)) else return(list(width=height*f, height, pwidth=height*f*res, pheight=height*res)) } ## Record the display parameters for each class once .makeParMapping <- function() { classes <- c("GdObject", "GenomeAxisTrack", "RangeTrack", "NumericTrack", "DataTrack", "IdeogramTrack", "StackedTrack", "AnnotationTrack", "DetailsAnnotationTrack", "GeneRegionTrack", "BiomartGeneRegionTrack", "AlignedReadTrack") defs <- try(sapply(classes, function(x) as(getClassDef(x)@prototype@dp, "list"), simplify=FALSE), silent=TRUE) if(!is(defs, "try-error") && is.null(.parMappings)) assignInNamespace(x=".parMappings", value=defs, ns="Gviz") } .parMappings <- NULL ## Show available display parameters for a class and their defaults availableDisplayPars <- function(class) { if(!is.character(class)) class <- class(class) class <- match.arg(class, c("GdObject", "GenomeAxisTrack", "RangeTrack", "NumericTrack", "DataTrack", "IdeogramTrack", "StackedTrack", "AnnotationTrack", "DetailsAnnotationTrack", "GeneRegionTrack", "BiomartGeneRegionTrack", "AlignedReadTrack", "SequenceTrack", "SequenceBSgenomeTrack", "SequenceDNSStringSetTrack")) parents <- names(getClassDef(class)@contains) .makeParMapping() pars <- .parMappings[c(parents, class)] finalPars <- inherited <- list() for(p in names(pars)) { finalPars[names(pars[[p]])] <- pars[[p]] inherited[names(pars[[p]])] <- p } finalPars <- finalPars[order(names(finalPars))] inherited <- inherited[order(names(inherited))] return(new("InferredDisplayPars", name=class, inheritance=unlist(inherited), finalPars)) } ## Return the font settings for a GdObject .fontGp <- function(GdObject, ...) { gp <- list(fontsize=as.vector(.dpOrDefault(GdObject, "fontsize", 12))[1], fontface=as.vector(.dpOrDefault(GdObject, "fontface", 1))[1], lineheight=as.vector(.dpOrDefault(GdObject, "lineheight", 1))[1], fontfamily=as.character(as.vector(.dpOrDefault(GdObject, "fontfamily", 1)))[1], col=as.vector(.dpOrDefault(GdObject, "fontcolor", "white"))[1], alpha=as.vector(.dpOrDefault(GdObject, "alpha", 1))[1], cex=as.vector(.dpOrDefault(GdObject, "cex", 1))[1]) gp[names(list(...))] <- list(...) gp <- gp[!sapply(gp, is.null)] class(gp) <- "gpar" return(gp) } ## Compute ellipse outline coordinates for bounding boxes .box2Ellipse <- function(box, np=50) { t <- seq(0, 2*pi, len=np) box$width <- box$cx2-box$cx1 box$height <- box$cy2-box$cy1 x <- rep(box$cx2 + -box$width + box$width/2, each=np) y <- rep(box$cy1 + box$height/2, each=np) a <- rep(box$width/2, each=np) b <- rep(box$height/2, each=np) tau <- 0 xt <- x + (a*cos(t)*cos(tau)-b*sin(t)*sin(tau)) yt <- y + (a*cos(t)*sin(tau)+b*sin(t)*cos(tau)) return(data.frame(x1=xt, y1=yt, id=rep(seq_len(nrow(box)), each=np))) } .DEFAULT_FILL_COL <- "lightgray" .DEFAULT_OVERPLOT_COL <- "red" .DEFAULT_LINE_COL <- "black" .DEFAULT_SHADED_COL <- "#808080" .DEFAULT_SYMBOL_COL <- "#0080FF" .PLOT_TYPES <- c("p", "l", "b", "a", "s", "g", "r", "S", "smooth", "polygon", "horizon", "histogram", "mountain", "h", "boxplot", "gradient", "heatmap") ## We store some preset in the options on package load .onLoad = function(...){options("ucscChromosomeNames"=TRUE)} ## A helper function to replace missing function arguments in a list with NULL values. The function environment needs ## to be passed in as argument 'env' for this to work. .missingToNull <- function(symbol, env=parent.frame()){ for(i in symbol){ mis <- try(do.call(missing, args=list(i), envir=env), silent=TRUE) if(!is(mis, "try-error") && mis) assign(i, NULL, env) } } ## build a covariates data.frame from a variety of different inputs .getCovars <- function(x){ if(is.data.frame(x)){ x }else{ if(is(x, "GRanges")){ as.data.frame(mcols(x)) }else{ if(is(x, "GRangesList")){ as.data.frame(mcols(unlist(x))) }else{ data.frame() ## stop(sprintf("Don't know how to extract covariates from a %s object", class(x))) } } } } ## Prepare a data.frame or matrix containing the data for a DataTrack object. This involves trying to coerce ## and dropping non-numeric columns with a warning .prepareDtData <- function(data, len=0){ if(ncol(data) && nrow(data)){ for(i in seq_along(data)){ if(is.character(data[,i])) data[,i] <- type.convert(data[,i], as.is=TRUE) } isNum <- sapply(data, is.numeric) if(any(!isNum)) warning(sprintf("The following non-numeric data column%s been dropped: %s", ifelse(sum(!isNum)>1, "s have", " has"), paste(colnames(data)[!isNum], collapse=", "))) if(sum(dim(data))>0){ data <- t(data[,isNum, drop=FALSE]) } }else{ data <- matrix(ncol=len, nrow=0) } if(all(is.na(data))) data <- matrix(ncol=len, nrow=0) if(ncol(data) != len) stop("The columns in the 'data' matrix must match the genomic regions.") return(data) } ## An import function for gff3 files that tries to resolve the parent-child relationship ## between genes, transcripts and exons .import.gff3 <- function(file){ dat <- import.gff3(file, asRangedData=FALSE) res <- try({ genes <- tolower(dat$type) == "gene" ginfo <- mcols(dat[genes, ]) dat <- dat[!genes] transcripts <- tolower(dat$type) == "mrna" tinfo <- mcols(dat[transcripts, ]) dat <- dat[!transcripts] mt <- match(as.character(dat$Parent), as.character(tinfo$ID)) if(!all(is.na(mt))){ if(!"transcript_id" %in% colnames(mcols(dat))) mcols(dat)[["transcript_id"]] <- tinfo[mt, "ID"] if(!"transcript_name" %in% colnames(mcols(dat))) mcols(dat)[["transcript_name"]] <- tinfo[mt, "Name"] mt2 <- match(as.character(tinfo[mt, "Parent"]), as.character(ginfo$ID)) if(!all(is.na(mt2))){ if(!"gene_id" %in% colnames(mcols(dat))) mcols(dat)[["gene_id"]] <- ginfo[mt2, "ID"] if(!"gene_name" %in% colnames(mcols(dat))) mcols(dat)[["gene_name"]] <- ginfo[mt2, "Name"] } } if(all(is.na(mcols(dat)[["ID"]]))) mcols(dat)[["ID"]] <- paste("item", seq_along(dat), sep="_") if(!"exon_id" %in% colnames(mcols(dat))) mcols(dat)[["exon_id"]] <- mcols(dat)[["ID"]] if(!is.null(mcols(dat)[["gene_name"]]) && all(is.na(mcols(dat)[["gene_name"]]))) mcols(dat)[["gene_name"]] <- NULL if(all(is.na(mcols(dat)[["transcript_name"]]))) mcols(dat)[["transcript_name"]] <- NULL dat }) if(is(res, "try-error")){ warning(sprintf(paste("File '%s' is not valid according to the GFF3 standard and can not be properly parsed.", "Results may not be what you expected!"), file)) res <- dat } return(res) } ## An import function for bigWig files that knowns how to deal with missing seqnames .import.bw <- function(file, selection){ bwf <- BigWigFile(path.expand(file)) if(missing(selection)){ rr <- import.bw(con=bwf, asRangedData=FALSE) }else{ si <- seqinfo(bwf) rr <- if(!as.character(seqnames(selection)[1]) %in% seqnames(seqinfo(bwf))){ GRanges(seqnames(selection)[1], ranges=IRanges(1,2), score=1)[0] }else{ import.bw(con=bwf, selection=selection, asRangedData=FALSE)} } return(rr) } ## An import function for bam files that distinguishes between DataTracks and AnnotationTracks .import.bam <- function(file, selection){ if(!file.exists(paste(file, "bai", sep="."))) stop("Unable to find index for BAM file '", file, "'. You can build an index using the following command:\n\t", "library(Rsamtools)\n\tindexBam(\"", file, "\")") sinfo <- scanBamHeader(file)[[1]] if(parent.env(environment())[["._trackType"]] == "DataTrack"){ res <- if(!as.character(seqnames(selection)[1]) %in% names(sinfo$targets)){ mcols(selection) <- DataFrame(score=0) selection }else{ param <- ScanBamParam(what=c("pos", "qwidth"), which=selection, flag=scanBamFlag(isUnmappedQuery=FALSE)) x <- scanBam(file, param=param)[[1]] cov <- coverage(IRanges(x[["pos"]], width=x[["qwidth"]])) if(length(cov)==0){ mcols(selection) <- DataFrame(score=0) selection }else{ GRanges(seqnames=seqnames(selection), ranges=IRanges(start=start(cov), end=end(cov)), strand="*", score=runValue(cov)) } } } else { res <- if(!as.character(seqnames(selection)[1]) %in% names(sinfo$targets)){ mcols(selection) <- DataFrame(id="NA", group="NA") selection[0] }else{ param <- ScanBamParam(what=c("pos", "qwidth", "strand", "qname"), which=selection, flag=scanBamFlag(isUnmappedQuery=FALSE)) x <- scanBam(file, param=param)[[1]] GRanges(seqnames=seqnames(selection), ranges=IRanges(start=x[["pos"]], width=x[["qwidth"]]), strand=x[["strand"]], id=make.unique(x[["qname"]]), group=x[["qname"]]) } } return(res) } ## An import function for fasta file that supports streaming if an index is present .import.fasta <- function(file, selection, strict=TRUE){ ffile <- FastaFile(file) if(!file.exists(paste(file, "fai", sep="."))){ if(strict){ stop("Unable to find index for fasta file '", file, "'. You can build an index using the following command:\n\t", "library(Rsamtools)\n\tindexFa(\"", file, "\")") }else{ return(readDNAStringSet(file)) } } idx <- scanFaIndex(file) if(!as.character(seqnames(selection)[1]) %in% as.character(seqnames(idx))){ return(DNAStringSet()) }else{ return(scanFa(file, selection)) } } ## An import function for the indexed 2bit format .import.2bit <- function(file, selection){ tbf <- TwoBitFile(file) if(!as.character(seqnames(selection)[1]) %in% seqnames(seqinfo(tbf))){ return(DNAStringSet()) }else{ tmp <- import(tbf, which=selection) names(tmp) <- as.character(seqnames(selection)[1]) return(tmp) } } ## A mapping of (lower-cased) file extensions to import function calls. Most of those are already implemented in the rtracklayer package. ## If no mapping is found an error will be raised suggesting to provide a user-defined import function. .registerImportFun <- function(file){ fileExt <- .fileExtension(file) file <- path.expand(file) return(switch(fileExt, "gff"=import.gff(file, asRangedData=FALSE), "gff1"=import.gff1(file, asRangedData=FALSE), "gff2"=import.gff2(file, asRangedData=FALSE), "gff3"=.import.gff3(file), "gtf"=import.gff2(file, asRangedData=FALSE), "bed"=import.bed(file, asRangedData=FALSE), "bedgraph"=import.bedGraph(file, asRangedData=FALSE), "wig"=import.wig(file, asRangedData=FALSE), "bw"=.import.bw, "bigwig"=.import.bw, "bam"=.import.bam, stop(sprintf("No predefined import function exists for files with extension '%s'. Please manually provide an import function.", fileExt)))) } ## Get the file extension for a file, taking into account potential gzipping .fileExtension <- function(file){ if(!grepl("\\.", file)) stop("Unable to identify extension for file '", file, "'") ext <- sub(".*\\.", "", sub("\\.gz$|\\.gzip$", "", basename(file))) if(ext=="") stop("Unable to identify extension for file '", file, "'") return(tolower(ext)) } availableDefaultMapping <- function(file, trackType){ .checkClass(file, "character", 1) .checkClass(trackType, "character", 1) ext <- tolower(if(grepl("\\.", file)) .fileExtension(file) else file) vm <- .defaultVarMap(ext, trackType, justMap=TRUE) vm[[".stream"]] <- NULL return(vm) } ## Return the default mappings between elementMetadata slots of an imported GRanges object and the elementMetadata ## slots of the track's GRanges object. .defaultVarMap <- function(inputType, trackType, stream, fromUser=FALSE, justMap=FALSE){ vm <- list(gtf=list(GeneRegionTrack=list(feature="type", gene=c("gene_id", "gene_name"), exon=c("exon_name", "exon_id"), transcript=c("transcript_name", "transcript_id"), symbol=c("gene_name", "gene_id"))), gff=list(AnnotationTrack=list(feature="type", group="group"), GeneRegionTrack=list(feature="type", transcript="group")), gff1=list(AnnotationTrack=list(feature="type", group=group), GeneRegionTrack=list(feature="type", transcript="group")), gff2=list(AnnotationTrack=list(feature="type", group=c("group", "Parent"), id=c("ID", "Name", "Alias")), GeneRegionTrack=list(feature="type", gene=c("gene_id", "gene_name"), exon=c("exon_name", "exon_id"), symbol=c("gene_name", "gene_id"))), gff3=list(AnnotationTrack=list(feature="type", id=c("ID", "Name", "Alias"), group="Parent"), GeneRegionTrack=list(feature="type", gene=c("gene_id", "gene_name"), exon=c("exon_name", "exon_id", "ID"), transcript=c("transcript_name", "transcript_id", "Parent"), symbol=c("gene_name", "gene_id", "Name", "Alias"))), bedgraph=list(DataTrack=list(score="score")), wig=list(DataTrack=list(score="score")), bed=list(AnnotationTrack=list(feature="itemRgb", id="name")), bigwig=list(DataTrack=list(score="score", .stream=TRUE)), bw=list(DataTrack=list(score="score", .stream=TRUE)), bam=list(DataTrack=list(score="score", .stream=TRUE), AnnotationTrack=list(id="id", group="group", .stream=TRUE))) if(justMap) return(vm[[inputType]][[trackType]]) if(fromUser){ vm[[inputType]] <- setNames(list(list(".stream"=stream)), trackType) }else{ if(is.null(vm[[inputType]]) || is.null(vm[[inputType]][[trackType]])){ warning(sprintf(paste("There are no default mappings from %s files to %s. Please provide a manual mapping", "in the track constructor if you haven't already done so."), inputType, trackType)) vm[[inputType]] <- setNames(list(list(".stream"=stream)), trackType) } } return(vm[[inputType]][[trackType]]) } ## Helper function to go through the elementMetadata columns of a DataFrame and match their colnames to a mapping if they ## are available .resolveColMapping <- function(data, args, defMap){ colnames(mcols(data)) <- paste(colnames(mcols(data)), "orig", sep="__.__") for(i in names(defMap)){ if(is.character(args[[i]]) && length(args[[i]])==1 && paste(args[[i]], "orig", sep="__.__") %in% colnames(mcols(data))){ defMap[[i]] <- args[[i]] args[[i]] <- NULL } mt <- match(paste(defMap[[i]], "orig", sep="__.__"), colnames(mcols(data))) mt <- mt[!is.na(mt)][1] if(!is.na(mt)) mcols(data)[[i]] <- mcols(data)[,mt] } mcols(data) <- mcols(data)[, !grepl("__.__", colnames(mcols(data))), drop=FALSE] return(list(data=data, args=args, defMap=defMap)) } 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‹RañVX|¿Ùb>7`©«°8+,æ˜•Š˜•Š˜•Š˜•Š˜•Š˜•Š˜•Š˜6f—CñzÝ.Éâu8Y‹O)¯©ËáÇn&î"ŠËíc-Šß]§x+,•ÛøÍöÜ(Yê*,Î ‹Ëd)kç’ÅSaQ*,æ˜ËÚ¹d1Ç\ÖÎ%‹9fÅoŽYñ›bö8ýî ‹§Â¢TX¼6f§Ççpz˜’ÝTÁéñ±¯Wq9™ÝŠÇØËn£x8ÐLÝÝ^‡Ïë)+ÇërºÜ&f·ÏåðøÙzÁâuûÝ.Öâwû kñ×y5àY‹Ëïõ¸™=§ÓårøË,ŠßÇúò8\؇=7<"f¯Æ<•ø]ìuÕƒ+(ÞÇZ§âc¯Øœq>…=ç=N§×é¬+³¸ü…=^§[qOW‹GqìØ#>§Ëë ÏLEƒÏO5xÌÅlðš >³ÁÏ<¿ßk6øÌ†ò]ð(é0ȩ̂Ùà2Üýz3Õ`:w÷¸¾äK¾Üîx(¹DðöÆŽ”¶âƒœø §jƒœ¦‡Ã¥¿áïè '©K{¯. ®˜~ýÊ36gÛÿ)\>T¶Gviz/inst/0000755000126300012640000000000012227067651014041 5ustar00biocbuildphs_compbioGviz/inst/doc/0000755000126300012640000000000012227144313014575 5ustar00biocbuildphs_compbioGviz/inst/doc/Gviz.R0000644000126300012640000010715012227144313015643 0ustar00biocbuildphs_compbio### R code from vignette source 'Gviz.Rnw' ### Encoding: UTF-8 ################################################### ### code chunk number 1: init ################################################### options(width=65) library(xtable) source(system.file("scripts/documentation.R", package="Gviz")) xtabDetails <- details addParTable <- function(class, skip=c("showTitle", "size", "background.title"), add=NULL) { Parameters <- data.frame("Display Parameter"=names(xtabDetails[[class]]), "Description"=xtabDetails[[class]], check.names=FALSE) align <- "lrp{5in}" if(!is.null(add)){ Parameters <- cbind(Parameters, add) align <- c("lp{4in}", "lp{4in}", "lp{4in}", "lp{4in}") } Parameters <- Parameters[order(Parameters[,1]),] Parameters <- apply(Parameters, 2, function(x) gsub("_", "\\_", x, fixed=TRUE)) rownames(Parameters) <- gsub("_", "\\_", rownames(Parameters), fixed=TRUE) sel <- Parameters[,1] %in% skip Parameters[,2] <- gsub("\\code{\\linkS4class{", "\\Rclass{{", Parameters[,2], fixed=TRUE) print(xtable(Parameters[!sel,], align=align), sanitize.text.function=function(x) x, include.rownames=FALSE, floating=FALSE, tabular.environment="longtable") return(invisible()) } hasUcscConnection <- !is(try(rtracklayer::browserSession(), silent=TRUE), "try-error") hasBiomartConnection <- !is(try(biomaRt::listMarts(), silent=TRUE), "try-error") ################################################### ### code chunk number 2: loadPackage ################################################### library(Gviz) ################################################### ### code chunk number 3: AnnotationTrack ################################################### library(GenomicRanges) data(cpgIslands) class(cpgIslands) chr <- as.character(unique(seqnames(cpgIslands))) gen <- genome(cpgIslands) atrack <- AnnotationTrack(cpgIslands, name="CpG") ################################################### ### code chunk number 4: plotAnnotationTrack ################################################### plotTracks(atrack) ################################################### ### code chunk number 5: GenomeAxisTrack ################################################### gtrack <- GenomeAxisTrack() ################################################### ### code chunk number 6: plotGenomeAxisTrack ################################################### plotTracks(list(gtrack, atrack)) ################################################### ### code chunk number 7: showIdeogramTrack (eval = FALSE) ################################################### ## itrack <- IdeogramTrack(genome=gen, chromosome=chr) ################################################### ### code chunk number 8: doIdeogramTrack ################################################### if(hasUcscConnection){ itrack <- IdeogramTrack(genome=gen, chromosome=chr) }else{ data(itrack) } ################################################### ### code chunk number 9: plotIdeogramTrack ################################################### plotTracks(list(itrack, gtrack, atrack)) ################################################### ### code chunk number 10: GeneRegionTrack ################################################### data(geneModels) grtrack <- GeneRegionTrack(geneModels, genome=gen, chromosome=chr, name="Gene Model") plotTracks(list(itrack, gtrack, atrack, grtrack)) ################################################### ### code chunk number 11: zooming ################################################### plotTracks(list(itrack, gtrack, atrack, grtrack), from=25e6, to=28e6) ################################################### ### code chunk number 12: zooming2 ################################################### library(BSgenome.Hsapiens.UCSC.hg19) strack <- SequenceTrack(Hsapiens, chromosome=chr) plotTracks(list(itrack, gtrack, atrack, grtrack, strack), from=26591822, to=26591852, cex=0.8) ################################################### ### code chunk number 13: DataTrack ################################################### set.seed(255) lim <- c(26880000, 26890000) coords <- sort(c(lim[1], sample(seq(from=lim[1], to=lim[2]), 99), lim[2])) dat <- runif(100, min=-10, max=10) dtrack <- DataTrack(data=dat, start=coords[-length(coords)], end=coords[-1], chromosome=chr, genome=gen, name="Uniform") plotTracks(list(itrack, gtrack, atrack, grtrack, dtrack), from=lim[1], to=lim[2]) ################################################### ### code chunk number 14: DataTrackHist ################################################### plotTracks(list(itrack, gtrack, atrack, grtrack, dtrack), from=lim[1], to=lim[2], type="histogram") ################################################### ### code chunk number 15: displayPars1 ################################################### grtrack <- GeneRegionTrack(geneModels, genome=gen, chromosome=chr, name="Gene Model", showId=TRUE, background.title="brown") head(displayPars(grtrack)) displayPars(grtrack) <- list(background.panel="#FFFEDB") head(displayPars(grtrack)) plotTracks(list(itrack, gtrack, atrack, grtrack), from=lim[1]-120000, to=lim[2]+10000) ################################################### ### code chunk number 16: displayPars2 ################################################### plotTracks(list(itrack, gtrack, atrack, grtrack), from=lim[1]-120000, to=lim[2]+10000, background.panel="#FFFEDB", background.title="darkblue") ################################################### ### code chunk number 17: displayPars3 ################################################### dp <- availableDisplayPars(grtrack) tail(dp) ################################################### ### code chunk number 18: GenomeAxisTrackClass1 ################################################### axisTrack <- GenomeAxisTrack() plotTracks(axisTrack, from=1e6, to=9e6) ################################################### ### code chunk number 19: GenomeAxisTrackClass2 ################################################### axisTrack <- GenomeAxisTrack(range=IRanges(start=c(2e6, 4e6), end=c(3e6, 7e6), names=rep("N-stretch", 2))) plotTracks(axisTrack, from=1e6, to=9e6) ################################################### ### code chunk number 20: GenomeAxisTrackClass2a ################################################### plotTracks(axisTrack, from=1e6, to=9e6, showId=TRUE) ################################################### ### code chunk number 21: GenomeAxisTrackClass3 ################################################### plotTracks(axisTrack, from=1e6, to=9e6, add53=TRUE, add35=TRUE) ################################################### ### code chunk number 22: GenomeAxisTrackClass4 ################################################### plotTracks(axisTrack, from=1e6, to=9e6, add53=TRUE, add35=TRUE, littleTicks=TRUE) ################################################### ### code chunk number 23: GenomeAxisTrackClass5 ################################################### plotTracks(axisTrack, from=1e6, to=9e6, exponent=4) ################################################### ### code chunk number 24: GenomeAxisTrackClass6 ################################################### plotTracks(axisTrack, from=1e6, to=9e6, labelPos="below") ################################################### ### code chunk number 25: GenomeAxisTrackClass7 ################################################### plotTracks(axisTrack, from=1e6, to=9e6, scale=0.5) ################################################### ### code chunk number 26: GenomeAxisTrackClass8 ################################################### plotTracks(axisTrack, from=1e6, to=9e6, scale=0.5, labelPos="below") ################################################### ### code chunk number 27: GenomeAxisTrackClassTable ################################################### addParTable("GenomeAxisTrack") ################################################### ### code chunk number 28: IdeogramTrackClass1Show (eval = FALSE) ################################################### ## ideoTrack <- IdeogramTrack(genome="hg19", chromosome="chrX") ## plotTracks(ideoTrack, from=85e6, to=129e6) ################################################### ### code chunk number 29: IdeogramTrackClass1Do ################################################### if(hasUcscConnection){ ideoTrack <- IdeogramTrack(genome="hg19", chromosome="chrX") }else{ data(itrack) } plotTracks(ideoTrack, from=85e6, to=129e6) ################################################### ### code chunk number 30: IdeogramTrackClass2 ################################################### plotTracks(ideoTrack, from=85e6, to=129e6, showId=FALSE) ################################################### ### code chunk number 31: IdeogramTrackClass3 ################################################### plotTracks(ideoTrack, from=85e6, to=129e6, showId=FALSE, showBandId=TRUE, cex.bands=0.5) ################################################### ### code chunk number 32: IdeogramTrackClassTable ################################################### addParTable("IdeogramTrack") ################################################### ### code chunk number 33: DataClass1 ################################################### data(twoGroups) dTrack <- DataTrack(twoGroups, name="uniform") plotTracks(dTrack) ################################################### ### code chunk number 34: >= options(width=65) library(xtable) source(system.file("scripts/documentation.R", package="Gviz")) xtabDetails <- details addParTable <- function(class, skip=c("showTitle", "size", "background.title"), add=NULL) { Parameters <- data.frame("Display Parameter"=names(xtabDetails[[class]]), "Description"=xtabDetails[[class]], check.names=FALSE) align <- "lrp{5in}" if(!is.null(add)){ Parameters <- cbind(Parameters, add) align <- c("lp{4in}", "lp{4in}", "lp{4in}", "lp{4in}") } Parameters <- Parameters[order(Parameters[,1]),] Parameters <- apply(Parameters, 2, function(x) gsub("_", "\\_", x, fixed=TRUE)) rownames(Parameters) <- gsub("_", "\\_", rownames(Parameters), fixed=TRUE) sel <- Parameters[,1] %in% skip Parameters[,2] <- gsub("\\code{\\linkS4class{", "\\Rclass{{", Parameters[,2], fixed=TRUE) print(xtable(Parameters[!sel,], align=align), sanitize.text.function=function(x) x, include.rownames=FALSE, floating=FALSE, tabular.environment="longtable") return(invisible()) } hasUcscConnection <- !is(try(rtracklayer::browserSession(), silent=TRUE), "try-error") hasBiomartConnection <- !is(try(biomaRt::listMarts(), silent=TRUE), "try-error") @ \maketitle \tableofcontents %%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%%% \section{Introduction} In order to make sense of genomic data one often aims to plot such data in a genome browser, along with a variety of genomic annotation features, such as gene or transcript models, CpG island, repeat regions, and so on. These features may either be extracted from public data bases like ENSEMBL or UCSC, or they may be generated or curated in-house. Many of the currently available genome browsers do a reasonable job in displaying genome annotation data, and there are options to connect to some of them from within \R (e.g., using the \Rpackage{rtracklayer} package). However, none of these solutions offer the flexibility of the full \R graphics system to display large numeric data in a multitude of different ways. The \mgg package aims to close this gap by providing a structured visualization framework to plot any type of data along genomic coordinates. It is loosely based on the \Rpackage{GenomeGraphs} package by Steffen Durinck and James Bullard, however the complete class hierarchy as well as all the plotting methods have been restructured in order to increase performance and flexibility. All plotting is done using the grid graphics system, and several specialized annotation classes allow to integrate publicly available genomic annotation data from sources like UCSC or ENSEMBL. \section{Basic Features} The fundamental concept behind the \mgg package is similar to the approach taken by most genome browsers, in that individual types of genomic features or data are represented by separate tracks. Within the package, each track constitutes a single object inheriting from class \Rclass{GdObject}, and there are constructor functions as well as a broad range of methods to interact with and to plot these tracks. When combining multiple objects, the individual tracks will always share the same genomic coordinate system, thus taking the burden of aligning the plot elements from the user. It is worth mentioning that, at a given time, tracks in the sense of the \mgg package are only defined for a single chromosome on a specific genome, at least during the plotting operation. You will later see that a track may still contain information for multiple chromosomes, however most of this is hidden except for the currently active chromosome, and the user will have to explicitely switch the chromsome to access the inactive parts. While the package in principle imposes no fixed structure on the chromosome or on the genome names, it makes sense to stick to a standaradized naming paradigm, in particular when fetching additional annotation information from online resources. By default this is enforced by a global option \code{ucscChromosomeNames}, which is set during package loading and which causes the package to check all supplied chromosome names for validity in the sense of the UCSC definition (chromosomes have to start with the \term{chr} string). You may decide to turn this feature off by calling \code{options(ucscChromosomeNames=FALSE)}. For the remainder of this vignette however, we will make use of the UCSC genome and chromosome identifiers, e.g., the \Robject{chr7} chromosome on the mouse \Robject{mm9} genome. The different track classes will be described in more detail in the \Reference{Track classes} section further below. For now, let's just take a look at a typical \mgg session to get an idea of what this is all about. We begin our presentation of the available functionality by loading the package: <>= library(Gviz) @ The most simple genomic features consists of start and stop coordinates, possibly overlapping each other. CpG islands or microarray probes are real life examples for this class of features. In the Bioconductor world those are most often represented as run-length encoded vectors, for instance in the \Rclass{IRanges} and \Rclass{GRanges} classes. To seamlessly integrate with other Bioconductor packages, we can use the same data structures to generate our track objects. A sample set of CpG island coordinates has been saved in the \Robject{cpgIslands} object and we can use that for our first annotation track object. The constructor function \Rfunction{AnnotationTrack} is a convenient helper to create the object. <>= library(GenomicRanges) data(cpgIslands) class(cpgIslands) chr <- as.character(unique(seqnames(cpgIslands))) gen <- genome(cpgIslands) atrack <- AnnotationTrack(cpgIslands, name="CpG") @ Please note that the \Rfunction{AnnotationTrack} constructor (as most constructors in this package) is fairly flexible and can accomodate many different types of inputs. For instance, the start and end coordinates of the annotation features could be passed in as individual arguments \Robject{start} and \Robject{end}, as a \Rclass{data.frame} or even as an \Rclass{IRanges} or \Rclass{GRangesList} object. Furthermore, a whole bunch of coercion methods are available for the more traditional package users that should allow operations along the lines of \code{as(obj, 'AnnotationTrack')}. You may want to consult the class' manual page for more information, or take a look at the \Reference{Bioconductor integration} section for a listing of the most common data structures and their respective counterparts in the \mgg package. With our first track object being created we may now proceed to the plotting. There is a single function \Rfunction{plotTracks} that handles all of this. As we will learn in the remainder of this vignette, \Rfunction{plotTracks} is quite powerful and has a number of very useful additional arguments. For now we will keep things very simple and just plot the single CpG islands annotation track. <>= plotTracks(atrack) @ As you can see, the resulting graph is not particularly spectacular. There is a title region showing the track's name on a gray background on the left side of the plot and a data region showing the seven individual CpG islands on the right. This structure is similar for all the available track objects classes and it somewhat mimicks the layout of the popular UCSC Genome Browser. If you are not happy with the default settings, the \mgg package offers a multitude of options to fine-tune the track appearance, which will be shown in the \Reference{Plotting Parameters} section. Appart from the relative distance of the Cpg islands, this visualization does not tell us much. One obvious next step would be to indicate the genomic coordinates we are currently looking at to provide some reference. For this purpose, the \mgg package offers the \Rclass{GenomeAxisTrack} class. Objects from the class can be created using the constructor function of the same name. <>= gtrack <- GenomeAxisTrack() @ Since a \Rclass{GenomeAxisTrack} object is always relative to the other tracks that are plotted, there is little need for additional arguments. Essentially, the object just tells the \Rfunction{plotTracks} function to add a genomic axis to the plot. Nonetheless, it represent a separate annotation track just as the CpG island track does. We can pass this additional track on to \Rfunction{plotTracks} in the form of a list. <>= plotTracks(list(gtrack, atrack)) @ You may have realized that the genomic axis does not take up half of the available vertical plotting space, but only uses the space necessary to fit the axis and labels. Also the title region for this track is empty. In general, the \mgg package tries to find reasonable defaults for all the parameters controlling the look and feel of a plots so that apealing visualizations can be created without much tinkering. However, all features on the plot including the relative track sizes can also be adjusted manually. As mentioned before in the beginning of this vignette, a plotted track is always defined for exactly one chromosome on a particular genome. We can include this information in our plot by means of a chromosome ideogram. An ideogram is a simplified visual representation of a chromosome, with the different chromosomal staining bands indicated by color, and the centromer (if present) indicated by the shape. The necessary information to produce this visualization is stored in online data repositories, for instance at UCSC. The \mgg package offers very convenient connections to some of these repositories, and the \Rclass{IdeogramTrack} constructor function is one example for such a connection. With just the information about a valid UCSC genome and chromosome, we can directly fetch the chromosome ideogram information and construct a dedicated track object that can be visualized by \Rfunction{plotTracks}. Please not that you will need an established internet connection for this to work, and that fetching data from UCSC can take quite a long time, depending on the server load. The \mgg package tries to cache as much data as possible to reduce the bandwidth in future queries. <>= itrack <- IdeogramTrack(genome=gen, chromosome=chr) @ <>= if(hasUcscConnection){ itrack <- IdeogramTrack(genome=gen, chromosome=chr) }else{ data(itrack) } @ Similar to the previous examples, we stick the additional track object into a list in order to plot it. <>= plotTracks(list(itrack, gtrack, atrack)) @ Ideogram tracks are the one exception in all of \mgg's track objects in the sense that they are not really displayed on the same coordinate system like all the other tracks. Instead, the current genomic location is indicated on the chromosome by a red box (or, as in this case, a red line if the width is too small to fit a box). So far we have only looked at very basic annotation features and how to give a point of reference to our plots. Naturally, we also want to be able to handle more complex genomic features, such as gene models. One potential use case would be to utilize gene model information from an existing local source. Alternatively, we could dowload such data from one of the available online resources like UCSC or ENSEBML, and there are constructor functions to handle these tasks. For this example we are going to load gene model data from a stored \Rclass{data.frame}. The track class of choice here is a \Rclass{GeneRegionTrack} object, which can be created via the constructor function of the same name. Similar to the \Rclass{AnnotationTrack} constructor there are multiple possible ways to pass in the data. <>= data(geneModels) grtrack <- GeneRegionTrack(geneModels, genome=gen, chromosome=chr, name="Gene Model") plotTracks(list(itrack, gtrack, atrack, grtrack)) @ So far the plotted genomic range has been determined by the input tracks. Unless told otherwise, the package will always display the region from the leftmost item to the rightmost item in any of the tracks. Of course such a static view on a chromosomal region is of rather limited use. We often want to zoom in or out on a particular plotting region to see more details or to get a broader overview. To that end, \Rfunction{plotTracks} supports the \Robject{from} and \Robject{to} arguments that let us choose an arbitrary genomic range to plot. <>= plotTracks(list(itrack, gtrack, atrack, grtrack), from=25e6, to=28e6) @ You may have noticed that the layout of the gene model track has changed depending on the zoom level. This is a feature of the \mgg package, which automatically tries to find the optimal visualization settings to make best use of the available space. At the same time, when features on a track are too close together to be plotted as separate items with the current device resolution, the package will try to reasonably merge them in order to avoid overplotting. When zooming further in it may become intersting to take a look at the actual genomic sequence at a given position, and the \mgg package provides the track class \Rclass{SequenceTrack} that let's you do that. It can draw the necessary sequence information from one of the \Rclass{BSgenome} packages. <>= library(BSgenome.Hsapiens.UCSC.hg19) strack <- SequenceTrack(Hsapiens, chromosome=chr) plotTracks(list(itrack, gtrack, atrack, grtrack, strack), from=26591822, to=26591852, cex=0.8) @ So far we have replicated the features of a whole bunch of other genome browser tools out there. The real power of the package comes with a rather general track type, the \Rclass{DataTrack}. \Rclass{DataTrack} object are essentially run-length encoded numeric vectors or matrices, and we can use them to add all sorts of numeric data to our genomic coordinate plots. There are a whole bunch of different visualization options for these tracks, from dot plots to histograms to box-and-whisker plots. The individual rows in a numeric matrix are considered to be different data groups or samples, and the columns are the raster intervals in the genomic coordinates. Of course, the data points (or rather the data ranges) do not have to be evenly spaced; each column is associated with a particular genomic location. For demonstration purposes we can create a simple \Rclass{DataTrack} object from randomly sampled data. <>= set.seed(255) lim <- c(26880000, 26890000) coords <- sort(c(lim[1], sample(seq(from=lim[1], to=lim[2]), 99), lim[2])) dat <- runif(100, min=-10, max=10) dtrack <- DataTrack(data=dat, start=coords[-length(coords)], end=coords[-1], chromosome=chr, genome=gen, name="Uniform") plotTracks(list(itrack, gtrack, atrack, grtrack, dtrack), from=lim[1], to=lim[2]) @ The first thing to notice is that the title panel to the right of the plot now contains a y-axis indicating the range of the displayed data. The default plotting type for numeric vectors is a simple dot plot. This is by far not the only visualization option, and in a sense it is waisting quite a lot of information because the run-length encoded ranges are not immediately apparent. We can change the plot type by supplying the \Robject{type} argument to \Rfunction{plotTracks}. A complete description of the available plotting options is given in section \Reference{Track classes}, and a more detailed treatment of the so-called 'display parameters' that control the look and feel of a track is given in the \Reference{Plotting Parameters} section. <>= plotTracks(list(itrack, gtrack, atrack, grtrack, dtrack), from=lim[1], to=lim[2], type="histogram") @ As we can see, the data values in the numeric vector are indeed matched to the genomic coordinates of the \Rclass{DataTrack} object. Such a visualization can be particularly helpful when displaying for instance the coverage of NGS reads along a chromosome, or to show the measurement values of mapped probes from a micro array experiment. This concludes our first introduction into the \mgg package. The remainder of this vignette will deal in much more depth with the different concepts and the various track classes and plotting options. \section{Plotting parameters} Although not implicitely mentioned before, we have already made use of the plotting parameter facilities in the \mgg package, or, as we will call them from now on, the 'display parameters'. Display parameters are properties of individual track objects (i.e., of any object inheriting from the base \Rclass{GdObject} class). They can either be set during object instantiation as additional arguments to the constructor functions or, for existing track objects, using the \Rfunction{displayPars} replacement method. In the former case, all named arguments that can not be matched to any of the constructor's formal arguments are considered to be display paramters, regardless of their type or whether they are defined for a particular track class or not. The following code example rebuilds our \Rclass{GeneRegionTrack} object with a bunch of display parameters and demonstrates the use of the \Rfunction{displayPars} accessor and replacement methods. <>= grtrack <- GeneRegionTrack(geneModels, genome=gen, chromosome=chr, name="Gene Model", showId=TRUE, background.title="brown") head(displayPars(grtrack)) displayPars(grtrack) <- list(background.panel="#FFFEDB") head(displayPars(grtrack)) plotTracks(list(itrack, gtrack, atrack, grtrack), from=lim[1]-120000, to=lim[2]+10000) @ For our gene model track we have now added the gene symbols of the different transcripts to the plot and changed the background color of both the title and the data panel. There is a third option to set display parameters for a single plotting operation (rather than the permanent setting in the track object) by passing in additional arguments to the \Rfunction{plotTracks} function. We have already made use of this feature in the previous data plotting type example. It is worth mentioning that all display parameters which are passed along with the \Rfunction{plotTracks} function apply to \emph{all} track objects in the plot. For some objects classes a particular display parameter may not make any sense, and in that case it is simply ignored. Also, the settings only apply for one single plotting operation and will not be retained in the plotted track objects. They do however get precedence over the object-internal parameters. The following line of code exemplifies this behaviour. <>= plotTracks(list(itrack, gtrack, atrack, grtrack), from=lim[1]-120000, to=lim[2]+10000, background.panel="#FFFEDB", background.title="darkblue") @ In order to make full use of the flexible parameter system we need to know which display parameters control which aspect of which track class. The obvious source for this information are the man pages of the respective track classes, which list all available parameters along with a short description of their effect and default values in the \Robject{Display Parameters} section. Alternatively, we can use the \Rfunction{availableDisplayPars} function, which prints out the available parameters for a class as well as their default values in a list-like structure. The single argument to the function is either a class name of a track object class, or the object itself, in which case its class is automatically detected. <>= dp <- availableDisplayPars(grtrack) tail(dp) @ As we can see, display parameters can be inherited from parent classes. For the regular user this is not important at all, however it nicely exemplifies the structure of the class hierarchy in the \mgg package. \section{Track classes} In this section we will highlight all of the available annotation track classes in the \mgg package. For the complete reference of all the nuts and bolts, including all the avaialable methods, please see the respective class man pages. We will try to keep this vignette up to date, but in cases of discrepancies between here and the man pages you should assume the latter to be correct. \subsection{GenomeAxisTrack} \Rclass{GenomeAxisTrack} objects can be used to add some reference to the currently displayed genomic location to a \mgg plot. In their most basic form they are really just a horizontal axis with genomic coordinate tickmarks. Using the \Rfunction{GenomeAxisTrack} constructor function is the recommended way to instantiate objects from the class. There is no need to know in advance about a particular genomic location when constructing the object. Instead, the displayed coordinates will be determined from the context, e.g., from the \Rfunarg{from} and \Rfunarg{to} arguments of the \Rfunction{plotTracks} function, or, when plotted together with other track objects, from their genomic locations. <>= axisTrack <- GenomeAxisTrack() plotTracks(axisTrack, from=1e6, to=9e6) @ As an optional feature one can highlight particular regions on the axis, for instance to indicated stretches of N nucleotides or gaps in genomic alignments. Such regions have to be supplied to the optional \Rfunarg{range} argument of the constructor function as either an \Rclass{GRanges} or an \Rclass{IRanges} object. <>= axisTrack <- GenomeAxisTrack(range=IRanges(start=c(2e6, 4e6), end=c(3e6, 7e6), names=rep("N-stretch", 2))) plotTracks(axisTrack, from=1e6, to=9e6) @ If names have been supplied with the \Rfunarg{range} argument, those can also be added to the plot. <>= plotTracks(axisTrack, from=1e6, to=9e6, showId=TRUE) @ \subsubsection*{Display parameters for GenomeAxisTrack objects} There are a whole bunch of display parameters to alter the appearance of \Rclass{GenomeAxisTrack} plots. For instance, one could add directional indicators to the axis using the \Rfunarg{add53} and \Rfunarg{add35} parameters. <>= plotTracks(axisTrack, from=1e6, to=9e6, add53=TRUE, add35=TRUE) @ Sometimes the resolution of the tick marks is not sufficient, in which case the \Rfunarg{littleTicks} argument can be used to have a more fine-grained axis annotation. <>= plotTracks(axisTrack, from=1e6, to=9e6, add53=TRUE, add35=TRUE, littleTicks=TRUE) @ The \mgg package tries to come up with reasonable defaults for the axis annotation. In our previous example, the genomic coordinates are indicated in megabases. We can control this via the \Rfunarg{exponent} parameter, which takes an integer value greater then zero. The location of the tick marks are displayed as a fraction of $10^{exponent}$. <>= plotTracks(axisTrack, from=1e6, to=9e6, exponent=4) @ Another useful parameter, \Rfunarg{labelPos} controls the arrangement of the tick marks. It takes one of the values \code{alternating}, \code{revAlternating}, \code{above} or \code{below}. For instance we could aline all tick marks underneath the axis. <>= plotTracks(axisTrack, from=1e6, to=9e6, labelPos="below") @ Sometimes a full-blown axis is just too much, and all we really need in the plot is a small scale indicator. We can change the appearance of the \Rclass{GenomeAxisTrack} object to such a limited representation by setting the \Rfunarg{scale} display parameter. Typically, this will be a numeric value between 0 and 1, which is interpreted as the fraction of the plotting region used for the scale. The plotting method will apply some rounding to come up with reasonable and human-readable values. For even more control we can pass in a value larger than 1, which is considered to be an absolute range length. In this case, the user is responsible for the scale to actually fit in the current plotting range. <>= plotTracks(axisTrack, from=1e6, to=9e6, scale=0.5) @ We still have control over the placement of the scale label via the \Rfunarg{labelPos}, parameter, which now takes the values \code{above}, \code{below} and \code{beside}. <>= plotTracks(axisTrack, from=1e6, to=9e6, scale=0.5, labelPos="below") @ For a complete listing of all the available display parameters please see the table below or the man page of the \Rclass{GenomeAxisTrack} class by typing in \code{?GenomeAxisTrack} on the \R command line. <>= addParTable("GenomeAxisTrack") @ \subsection{IdeogramTrack} While a genomic axis provides helpful points of reference to a plot, it is sometimes important to show the currently displayed region in the broader context of the whole chromosme. Are we looking at distal regions, or somewhere close to the centromer? And how much of the complete chromosome is covered in our plot. To that end the \mgg package defines the \Rclass{IdeogramTrack} class, which is an idealized representation of a single chromosome. When plotted, these track objects will always show the whole chromosome, regardless of the selected genomic region. However, the displayed coordinates are indicated by a box that sits on the ideogram image. The chromosomal data necessary to draw the ideogram is not part of the \mgg package itself, instead it is downloaded from an online source (UCSC). Thus it is important to use both chromosome and genome names that are recognizable in the UCSC data base when dealing with \Rclass{IdeogramTrack} objects. You might want to consult the UCSC webpage (\url{http://genome.ucsc.edu/}) or use the \Rfunction{ucscGenomes} function in the \Rpackage{rtracklayer} package for a listing of available genomes. Assuming the chromosome data are available online, a simple call to the \Rfunction{IdeogramTrack} constructor function including the desired genome and chromosome name are enough to instantiate the object. Since the connection to UCSC can be slow, the package tries to cache data that has already been downloaded for the duration of the \R session. If needed, the user can manually clear the cache by calling the \Rfunction{clearSessionCache} function. Of course it is also possible to construct \Rclass{IdeogramTrack} objects from local data. Please see the class' man page for details. <>= ideoTrack <- IdeogramTrack(genome="hg19", chromosome="chrX") plotTracks(ideoTrack, from=85e6, to=129e6) @ <>= if(hasUcscConnection){ ideoTrack <- IdeogramTrack(genome="hg19", chromosome="chrX") }else{ data(itrack) } plotTracks(ideoTrack, from=85e6, to=129e6) @ We can turn off the explicit plotting of the chromosome name by setting the \Rfunarg{showId} display parameter to \code{FALSE}. <>= plotTracks(ideoTrack, from=85e6, to=129e6, showId=FALSE) @ The chromosome bands in the ideogram come with a unique identifier, and we can add this information to the plot, at least for those bands that are wide enought to accomodate the text. <>= plotTracks(ideoTrack, from=85e6, to=129e6, showId=FALSE, showBandId=TRUE, cex.bands=0.5) @ \subsubsection*{Display parameters for IdeogramTrack objects} For a complete listing of all the available display parameters please see the table below or the man page of the \Rclass{IdeogramTrack} class by typing in \code{?IdeogramTrack} on the \R command line. <>= addParTable("IdeogramTrack") @ \subsection{DataTrack} Probably the most powerfull of all the track classes in the \mgg package are \Rclass{DataTracks}. Essentially they constitute run-length encoded numeric vectors or matrices, meaning that one or several numeric values are associated to a particular genomic coordinate range. These ranges may even be overlapping, for instance when looking at results from a running window operation. There can be multiple samples in a single data set, in which case the ranges are associated to the columns of a numeric matrix rather than a numeric vector, and the plotting method provides tools to incoorporate sample group information. Thus the starting point for creating \Rclass{DataTrack} objects will always be a set of ranges, either in the form of an \Rclass{IRanges} or \Rclass{GRanges} object, or individually as start and end coordinates or widths. The second ingredient is a numeric vector of the same length as the number of ranges, or a numeric matrix with the same number of columns. Those may even already be part of the input \Rclass{GRanges} object as \code{elemenMetadata} values. For a complete description of all the possible inputs please see the class' online documentation. We can pass all this information to the \Rfunction{DataTrack} constructor function to instantiate an object. We will load our sample data from an \Rclass{GRanges} object that comes as part of the \mgg package. <>= data(twoGroups) dTrack <- DataTrack(twoGroups, name="uniform") plotTracks(dTrack) @ The default visualization for our very simplistic sample \Rclass{DataTrack} is a rather unispiring dot plot. The track comes with a scale to indicate the range of the numeric values on the y-axis, appart from that it looks very much like the previous examples. A whole battery of display parameters is to our disposal to control the track's look and feel. The most important one is the \Rfunarg{type} parameter. It determines the type of plot to use and takes one or several of the following values: <<>= types <- data.frame(Value=c("p", "l", "b", "a", "s", "S", "g", "r", "h", "smooth", "histogram", "mountain", "polygon", "boxplot", "gradient", "heatmap", "horizon"), Type=c("dot plot", "lines plot", "dot and lines plot", "lines plot of average (i.e., mean) values", "stair steps (horizontal first)", "stair steps (vertical first)", "add grid lines", "add linear regression line", "histogram lines", "add loess curve", "histogram (bar width equal to range with)", "'mountain-type' plot relative to a baseline", "'polygon-type' plot relative to a baseline", "box and whisker plot", "false color image of the summarized values", "false color image of the individual values", "Horizon plot indicating magnitude and direction of a change relative to a baseline")) print(xtable(types, align="lrp{5in}"), sanitize.text.function=function(x) x, include.rownames=FALSE, floating=FALSE, tabular.environment="longtable") @ Displayed below are the same sample data as before but plotted with the different type settings: <>= pushViewport(viewport(layout=grid.layout(nrow=9, ncol=2))) i <- 1 for(t in types$Value) { pushViewport(viewport(layout.pos.col=((i-1)%%2)+1, layout.pos.row=((i-1)%/%2)+1)) if(t != "horizon"){ names(dTrack) <- t plotTracks(dTrack, type=t, add=TRUE, cex.title=0.8, margin=0.5) }else{ data(dtHoriz) names(dtHoriz) <- "horizon *" plotTracks(dtHoriz[8,], type="horizon", add=TRUE, cex.title=0.8, margin=0.5, showAxis=FALSE, horizon.origin=0.7) } i <- i+1 popViewport(1) } popViewport(1) names(dTrack) <- "uniform" @ \renewcommand*{\thefootnote}{\fnsymbol{footnote}} \footnotetext[1]{A different data set is plotted for the horizon type for the sake of clarity.} You will notice that some of the plot types work better for univariate data while others are clearly designed for multivariate inputs. The \Rfunarg{a} type for instance averages the values at each genomic location before plotting the derived values as a line. The decision for a particular plot type is totally up to the user, and one could even overlay multiple types by supplying a character vector rather than a character scalar as the \Rfunarg(type) argument. For example, this will combine a boxplot with an average line and a data grid. <>= plotTracks(dTrack, type=c("boxplot", "a", "g")) @ For the heatmap plotting type we arrange all the data in a well-structured two-dimensional matrix which gives us the oportunity to add a little extra information about the individual samples. Depending on how the \Rclass{DataTrack} was created in the first place we can choose to display the sample names (which in our case correspond to the column names of the input \Rclass{GRanges} object). The plot also highlights another feature of the heatmap type: the y-axis now shows a mapping of the numeric values into the color range. <>= colnames(mcols(twoGroups)) plotTracks(dTrack, type=c("heatmap"), showSampleNames=TRUE, cex.sampleNames=0.6) @ \subsubsection*{Data Grouping} An additional layer of flexibility is added by making use of \mgg's grouping functionality. The individual samples (i.e., rows in the data matrix) can be grouped together using a factor variable, and, if reasonable, this grouping is reflected in the layout of the respective track types. For instance our example data could be derived from two different sample groups with three replicates each, and we could easily integrate this information into our plot. <>= plotTracks(dTrack, groups=rep(c("control", "treated"), each=3), type=c("a", "p")) @ For the dot plot representation the individual group levels are indicated by color coding. For the \Rfunarg{a} type, the averages are now computed for each group separately and also indicated by two lines with similar color coding. Grouping is not supported for all plotting types, for example the \Rfunarg{mountain} and \Rfunarg{polygon} type already use color coding to convey a different message and for the \Rfunarg{gradient} type the data are already collapsed to a single variable. The following gives an overview over some of the other groupable \Rclass{DataTrack} types. Please note that there are many more display parameters that control the layout of both grouped and of ungrouped \Rclass{DataTracks}. You may want to check the class' help page for details. <>= pushViewport(viewport(layout=grid.layout(nrow=8, ncol=1))) i <- 1 for(t in c("a", "s", "smooth", "histogram", "boxplot", "heatmap", "horizon")) { pushViewport(viewport(layout.pos.col=((i-1)%%1)+1, layout.pos.row=((i-1)%/%1)+1)) if(t != "horizon"){ names(dTrack) <- t plotTracks(dTrack, type=t, add=TRUE, cex.title=0.8, groups=rep(1:2, each=3), margin=0.5) }else{ plotTracks(dtHoriz[c(1,8),], type="horizon", add=TRUE, cex.title=0.8, margin=0.5, showAxis=FALSE, horizon.origin=0.3, groups=1:2) } i <- i+1 popViewport(1) } pushViewport(viewport(layout.pos.col=((i-1)%%1)+1, layout.pos.row=((i-1)%/%1)+1)) names(dTrack) <- "hor. hist." plotTracks(dTrack, type="histogram", stackedBars=FALSE, add=TRUE, cex.title=0.8, groups=rep(1:2, each=3), margin=0.5) popViewport(2) names(dTrack) <- "uniform" @ \footnotetext[1]{A different data set is plotted for the horizon type for the sake of clarity.} If we need to display some additional information about the individual group levels we can make use of the \Rfunarg{legend} display parameter to add a simple legend to the plot. Depending on the plot type and on some of the other display parameters, the look of this legend may vary slightly. <>= plotTracks(dTrack, groups=rep(c("control", "treated"), each=3), type=c("a", "p"), legend=TRUE) @ For a grouped horizon plot the group labels have to be shown in a similar fashion as for heatmaps, i.e., by setting the \Rfunarg{showSampleNames} argument to \code{TRUE}. <>= data(dtHoriz) dtHoriz <- dtHoriz[1:6,] plotTracks(dtHoriz, type="horiz", groups=rownames(values(dtHoriz)), showSampleNames=TRUE, cex.sampleNames = 0.6, title.width=2, separator=1) @ \subsubsection*{Building DataTrack objects from files} A number of standard file types exist that all store numeric data along genomic coordinates. We have tried to make such files accessible in the \mgg package by providing additional options to the \Rfunction{DataTrack} constructor function. In the previous examples the \Rfunarg{range} argument was a \Rclass{GRanges} object. Instead, we can also pass in the path to a file on disk by means of a character scalar. The \Rclass{DataTrack} class supports the most common file types like \code{wig}, \code{bigWig} or \code{bedGraph}, but also knows how to deal with \code{bam} files. You may have realized that some of these files are indexed, and we have taken the approach to stream the data from indexed files on the fly when it is needed for plotting. However let's first start with the simple example of a \code{bedGraph} file. These files support a single data sample, and thus are equivalent to a \code{GRanges} object with a single numeric \code{elementMetadata} column. \code{bedGraph} files are not indexed, so we have to load the whole file content when instantiating the object. <>= bgFile <- system.file("extdata/test.bedGraph", package="Gviz") dTrack2 <- DataTrack(range=bgFile, genome="hg19", type="l", chromosome="chr19", name="bedGraph") class(dTrack2) plotTracks(dTrack2) @ As we can see the constructor has returned a regular \Rclass{DataTrack} object. The function to be used in order to read the data off the file has been automatically choosen by the package based on the file extension of the input file. Of course the number of these supported standard file types is limited, and a user may want to import a non-standard file through the same mechanism. To this end, the \Rclass{DataTrack} constructor defines an additional argument called \Rfunarg{importFunction}. As the name suggests, the value of this argument is a function which needs to handle the mandatory \Rfunarg{file} argument. Upon evaluation this argument will be filled in with the path to the data file, and the user-defined function needs to provide all logic necessary to parse that file into a valid \Rclass{GRanges} object. From this point on everything will happen just as if the \Rfunarg{range} argument had been this \Rclass{GRanges} object. In other words, numeric \code{elementMetadata} columns will be shown as individual samples and non-numeric columns will be silently ignored. We can exemplify this in the next code chunk. Note that the \mgg package is using functionality from the \Rpackage{rtracklayer} package for most of the file import operations, just as we do here in a more explicit way. <>= library(rtracklayer) dTrack3 <- DataTrack(range=bgFile, genome="hg19", type="l", chromosome="chr19", name="bedGraph", importFunction=function(file) import(con=file, asRangedData=FALSE)) identical(dTrack2, dTrack3) @ So far one could have easily done the whole process in two separate steps: first import the data from the file into a \Rclass{GRanges} object and then provided this object to the constructor. The real power of the file support in the \mgg package comes with streaming from indexed files. As mentioned before, only the relevant part of the data has to be loaded during the plotting operation, so the underlying data files may be quite large without decreasing the performance or causing too big of a memory footprint. We will exemplify this feature here using a small \code{bam} file that is provided with the package. \code{bam} files contain alignments of sequences (typically from a next generation sequencing experiment) to a common reference. The most natural representation of such data in a \Rclass{DataTrack} is to look at the alignment coverage at a given position only and to encode this in a single \code{elementMetadata} column. <>= bamFile <- system.file("extdata/test.bam", package="Gviz") dTrack4 <- DataTrack(range=bamFile, genome="hg19", type="l", name="Coverage", window=-1, chromosome="chr1") class(dTrack4) dTrack4 plotTracks(dTrack4, from=189990000, to=190000000) @ As seen in the previous code chunk, the \code{dTrack4} object is now of class \Rclass{ReferenceDataTrack}. For the user this distinction is not particularly relevant with the exception that the \Rfunction{length} method for this class almost always returns \code{0} because the content of the object is only realized during the plotting operation. Obviously, streaming from the disk comes with a price in that file access is much slower than accessing RAM, however the file indexing allows for fairly rapid data retrieval, and other processes during the plotting operation tend to be much more costly, anyways. It is woth mentioning however that each plotting operation will cause reading off the file, and there are currently no caching mechanisms in place to avoid that. Nevertheless, plotting a larger chunk of the \code{bam} file still finishes in a reasonable time. <>= plotTracks(dTrack4, chromosome="chr1", from=189891483, to=190087517) @ Of course users can provided their own file parsing function just like we showed in the previous example. The import function now needs to be able to deal with a second mandatory argument \Rfunarg{selection}, which is a \Rclass{GRanges} object giving the genomic interval that has to be imported from the file. In addition one needs to tell the \Rclass{DataTrack} constructor that data should be streamed off a file by setting the \Rfunarg{stream} argument to \code{TRUE}. <>= myImportFun <- function(file, selection){ ## do something here } DataTrack(range=bamFile, genome="hg19", type="l", name="Coverage", window=-1, chromosome="chr1", importFunction=myImportFun, stream=TRUE) @ \subsubsection*{Data transformations} The \mgg package offers quite some flexibility to transform data on the fly. This involves both rescaling operations (each data point is transformed on the track's y-axis by a transformation function) as well as summarization and smoothing operations (the values for several genomic locations are summarized into one derived value on the track's x-axis). To illustrate this let's create a significantly bigger \Rclass{DataTrack} than the one we used before, containing purely syntetic data for only a single sample. <>= dat <- sin(seq(pi, 10*pi, len=500)) dTrack.big <- DataTrack(start=seq(1,100000, len=500), width=15, chromosome="chrX", genome="hg19", name="sinus", data=sin(seq(pi, 5*pi, len=500))*runif(500, 0.5, 1.5)) plotTracks(dTrack.big, type="hist") @ Since the available resolution on our screen is limited we can no longer distinguish between individual coordinate ranges. The \mgg package tries to avoid overplotting by collapsing overlapping ranges (assuming the \Rfunarg{collapseTracks} parameter is set to \code{TRUE}). However, it is often desirable to summarize the data, for instance by binning values into a fixed number of windows followe by the calculation of a meaningful summary statistic. This can be archived by a combination of the \Rfunarg{window} and \Rfunarg{aggregation} display parameters. The former can be an integer value greater than zero giving the number of evenly-sized bins to aggregate the data in. The latter is supposed to be a user-supplied function that accepts a numeric vector as a single input parameter and returns a single aggregated numerical value. For simplicity, the most obvious aggregation functions can be selected by passing in a character scalar rather than a function. Possible values are \code{mean}, \code{median}, \code{extreme}, \code{sum}, \code{min} and \code{max}. These presets are also much faster because they have been optimized to operate on large numeric matrices. The default is to compute the mean value of all the binned data points. <>= plotTracks(dTrack.big, type="hist", window=50) @ Instead of binning the data in fixed width bins one can also use the \Rfunarg{window} parameter to perform more elaborate running window operations. For this to happen the parameter value has to be smaller than zero, and the addtional display parameter \Rfunarg{windowSize} can be used to control the size of the running window. This operation does not change the number of coordinate ranges on the plot, but instead the original value at a particular position is replaced by the respective sliding window value at the same position. A common use case for sliding windows on genomic ranges is to introduce a certain degree of smoothing to the data. <>= plotTracks(dTrack.big, type="hist", window=-1, windowSize=2500) @ In addition to transforming the data on the x-axis we can also apply arbitrary transformation functions on the y-axis. One obvious use-case would be to log-transform the data prior to plotting. The framework is flexible enough however to allow for arbitrary transformation operations. The mechanism works by providing a function as the \Rfunarg{transformation} display parameter, which takes as input a numeric vector and returns a transformed numeric vector of the same length. The following code for instance truncates the plotted data to values greater than zero. <>= plotTracks(dTrack.big, type="l", transformation=function(x){x[x<0] <- 0; x}) @ As seen before, the \Rfunarg{a} type allows to plot average values for each of the separate groups. There is however an additional parameter \Rfunarg{aggregateGroups} that generalizes group value aggregations. In the following example we display, for each group and at each position, the average values in the form of a dot-and-lines plot. <>= plotTracks(dTrack, groups=rep(c("control", "treated"), each=3), type=c("b"), aggregateGroups=TRUE) @ This functionality again also relies on the setting of the \Rfunarg{aggregation} parameter, and we can easily change it to display the maximum group values instead. <>= plotTracks(dTrack, groups=rep(c("control", "treated"), each=3), type=c("b"), aggregateGroups=TRUE, aggregation="max") @ \subsubsection*{Display parameters for DataTrack objects} For a complete listing of all the available display parameters please see the table below or the man page of the \Rclass{DataTrack} class by typing in \code{?DataTrack} on the \R command line. <>= addParTable("DataTrack") @ \subsection{AnnotationTrack} \Rclass{AnnotationTrack} objects are the multi-purpose tracks in the \mgg package. Essentially they consist of one or several genomic ranges that can be grouped into composite annotation elements if needed. In principle this would be enough to represent everything from CpG islands to complex gene models, however for the latter the packge defines the specialized \Rclass{GeneRegionTrack} class, which will be highlighted in a separate section. Most of the features discussed here will also apply to \Rclass{GeneRegionTrack} objects, though. As a matter of fact, the \Rclass{GeneRegionTrack} class inherits directly from class \Rclass{AnnotationTrack}. \Rclass{AnnotationTrack} objects are easily instantiated using the constructor function of the same name. The necessary building blocks are the range coordinates, a chromosome and a genome identifier. Again we try to be flexible in the way this information can be passed to the function, either in the form of separate function arguments, as \Rclass{IRanges} or \Rclass{GRanges} objects. Optionally, we can pass in the strand information for the annotation features and some useful identifiers. A somewhat special case is to build the object from a \Rclass{GRangesList} object, which will automatically preserve the element grouping information contained in the list structure. For the full details on the constructor function and the accepted arguments see \code{?AnnotationTrack}. <>= aTrack <- AnnotationTrack(start=c(10, 40, 120), width=15, chromosome="chrX", strand=c("+", "*", "-"), id=c("Huey", "Dewey", "Louie"), genome="hg19", name="foo") plotTracks(aTrack) @ The ranges are plotted as simple boxes if no strand information is available, or as arrows to indicate their direction. We can change the range item shapes by setting the \Rfunarg{shape} display parameter. It can also be helpful to add the names for the individual features to the plot. This can be archived by setting the \Rfunarg{showFeatureId} parameter to \code{TRUE} <>= plotTracks(aTrack, shape="box", showFeatureId=TRUE) @ <>= plotTracks(aTrack, shape="ellipse", showFeatureId=TRUE, fontcolor="darkblue") @ In this very simplistic example each annotation feature consisted of a single range. In real life the genomic annotation features that we encounter often consists of several sub-units. We can create such composite \Rclass{AnnotationTrack} objects by providing a grouping factor to the constructor. It needs to be of similar length as the total number of atomic features in the track, i.e, the number of genomic ranges that are passed to the constructor. The levels of the this factor will be used as internal identifiers for the individual composite feature groups, and we can toggle on their printing by setting \Rfunarg{showId} to \code{TRUE}. <>= aTrack.groups <- AnnotationTrack(start=c(50, 180, 260, 460, 860, 1240), width=c(15,20,40,100,200, 20), chromosome="chrX", strand=rep(c("+", "*", "-"), c(1,3,2)), group=rep(c("Huey", "Dewey", "Louie"), c(1,3,2)), genome="hg19", name="foo") plotTracks(aTrack.groups, showId=TRUE) @ Arranging items on the plotting canvas is relatively straight forward as long as there are no overlaps between invidiual regions or groups of regions. Those inevitably cause overplotting which could seriously obfuscate the information on the plot. A logical solution to this problem is to stack overlapping items in separate horizontal lines to accomodate all of them. This involves some optimization, and the \mgg package automatically tries to come up with the most compact arrangement. Let's exemplify this feature with a slightly modified \Rclass{AnnotationTrack} object. <>= aTrack.stacked <- AnnotationTrack(start=c(50, 180, 260, 800, 600, 1240), width=c(15,20,40,100,500, 20), chromosome="chrX", strand="*", group=rep(c("Huey", "Dewey", "Louie"), c(1,3,2)), genome="hg19", name="foo") plotTracks(aTrack.stacked, showId=TRUE) @ We now have our three annotation feature groups distributed over two horizontal lines. One can control the stacking of overlapping items using the \Rfunarg{stacking} display parameter. Currently the three values \code{squish}, \code{dense} and \code{hide} are supported. Horizontal stacking is enabled via the \code{squish} option, which also is the default. \code{dense} forces overlapping items to be joined in one meta-item and \code{hide} all together disables the plotting of \Rclass{AnnotationTrack} items. Please note that adding identifiers to the plot only works for the \code{squish} option. <>= plotTracks(aTrack.stacked, stacking="dense") @ In addition to annotation groups there is also the notion of a feature type in the \mgg package. Feature types are simply different types of annotation regions (e.g., mRNA transcripts, miRNAs, rRNAs, etc.) that are indicated by different colors. There is no limit on the number of different features, however each element in a grouped annotation item needs to be of the same feature type. We can query and set features using the \Rfunction{feature} and \Rfunction{feature<-} methods. <>= feature(aTrack.stacked) feature(aTrack.stacked)[1:4] <- c("foo", "bar", "bar", "bar") @ Unless we tell the \mgg package how to deal with the respective feature types they will all be treated in a similar fashion, i.e., they will be plotted using the default color as defined by the \Rfunarg{fill} display paramter. To define colors for individual feature types we simply have to add them as additional display parameters, where the parameter name matches to the feature type and its value is supposed to be a valid R color qualifier. Of course this implies that we can only use type names that are not already taken by other display parameters defined in the package. <>= plotTracks(aTrack.stacked, showId=TRUE, foo="darkred", bar="darkgreen") @ Stacking of annotation items to avoid overplotting only works as long as there is enough real estate on the plotting canvas to separate all items, i.e., we need all items to be at least a single pixel wide to correctly display them. This limitation is automatically enforced by the \mgg package, however it implies that unless neighbouring items are more than one pixel appart we can not distinguish between them and will inevitably introduce a certain amount of overplotting. This means that on a common screen device we can only look at a very limited genomic region of a few kb in full resolution. Given that an average chromosome is in the order of a few gb, we still need a reasonable way to deal with the overplotting problem despite the item stacking functionality. As default, the \mgg package will merge all overlapping items into one unified meta-item and only plot that (see 'Collapse' section below for details). In order to indicate the amount of overplotting that was introduced by this process we can use the \Rfunarg{showOverplotting} display parameter. It uses a color scale (based on the orginal colors defined for the track), with lighter colors indicating areas of low or no overplotting, and more saturated colors indicating areas of high overplotting density. We exemplify this feature on an \Rclass{AnnotationTrack} object that represents a good portion of a real human chromosome. <>= data("denseAnnTrack") plotTracks(denseAnnTrack, showOverplotting=TRUE) @ \subsubsection*{Collapsing} All track types that inherit from class \code{AnnotationTrack} support the collapsing of overlapping track items, either because they have initially been defined as overlapping coordinates, or because the current device resolution does not allow to sufficiently separate them. For instance, two elements of a feature group may be separated by 100 base pairs on the genomic scale, however when plotted to the screen, those 100 base pairs translate to a distance of less than one pixel. In this case we can no longer show the items as two separate entitites. One solution to this problem would be to allow for arbitrary overplotting, in which case the last one of the overlapping items that is drawn on the device wins. This is not optimal in many ways, and it also poses a significant burden on the graphical engine because a lot of stuff has to be drawn which no one will ever see. To this end the \mgg package provides an infrastructure to reasonably collapse overlappig items, thereby adjusting the information content that can be shown to the available device resolution. By default this feature is turned on, and the user does not have to worry too much about it. However, one should be aware of the consequences this may have on a given visualization. If you absolutely do not want collapsing to take place, you may completely turn it off by setting the display parameter \code{collapse} to \code{FALSE}. Please note that by doing this the \code{showOverplotting} parameter will also stop working. If you opt in, there is some considerable amount of detailed control to fine tune the collapsing to your needs. Lets start with a small example track for which element collapsing has been turned off and no adjustments to the ranges have been made. We plot both the item identifiers and the group identifiers to exemplify what is going on. <>= data(collapseTrack) plotTracks(ctrack, extend.left=1800) @ The first thing to notice is that the for item \code{d} we do see the item identifier but not the range itself. This is due to the fact that the with of the item is smaller than a single pixel, and hence the graphics system can not display it (Note that this is only true for certain devices. The quartz device on the Mac seems to be a little smarter about this). There are also the two items \code{e} and \code{f} which seem to overlay each other completely, and another two items which appear to be one joined item (\code{k} and \code{l}). Again, this is a resolution issue as their relative distance is smaller than a single pixel, so all we see is a single range and some ugly overplotted identifiers. We can control the first issue by setting the minimum pixel width of a plotted item to be one pixel using the \code{min.width} display parameter. <>= plotTracks(ctrack, extend.left=1800, min.width=1) @ Now the item \code{d} has a plotable size and can be drawn to the device. The overplotted items are still rather anoying, but the only way to get rid of those is to turn item collapsing back on. <>= plotTracks(ctrack, extend.left=1800, min.width=1, collapse=TRUE) @ Now all items that could not be separated by at least one pixel have been merged into a single meta-item, and the software has taken care of the identifiers for you, too. The merging operation is aware of the grouping information, so no two groups where joint together. Sometimes a single pixel width or a single pixel distance is not enough to get a good visualization. In these cases one could decide to enforce even larger values. We can do this not only for the minimum width, but also for the minimum distance by setting the \code{min.distance} parameter. <>= plotTracks(ctrack, extend.left=1800, min.width=3, min.distance=5, collapse=TRUE) @ This time also the two items \code{b} and \code{c} have been merged, and all ranges are now at least 3 pixels wide. Depending on the density of items on the plot even this reduction can be insufficient. Because we did not merge complete groups we might still end up with quite a lot of stacks to accomodate all the information. To this end the display parameter \code{mergeGroups} can be used to disable absolute group separation. Rather than blindly merging all groups (as it is done when \code{stacking='dense'}) however, the software will only join those overlapping group ranges for which all items are already merged into a single meta item. <>= plotTracks(ctrack, extend.left=1800, min.width=3, min.distance=5, collapse=TRUE, mergeGroups=TRUE) @ \subsubsection*{Building AnnotationTrack objects from files} Just like we showed before for \Rclass{DataTrack} objects it is possible to stream the data for an \Rclass{AnnotationTrack} object off the file system. We will again use the \code{bam} file as an example. This time the default import function reads the coordinates of all the sequence alignments from the file and even knows how to deal with grouped elements. <>= aTrack2 <- AnnotationTrack(range=bamFile, genome="hg19", name="Reads", chromosome="chr1") class(aTrack2) aTrack2 plotTracks(aTrack2, from=189995000, to=190000000) @ Since \Rclass{AnnotationTrack} objects are somewhat more complicated than \Rclass{DataTrack} objects, the constructor provides another level of flexibility when reading the data from a file. More specifically, the user has the ability to map the provided \Rclass{elementMetadata} columns of the \Rclass{GRanges} object that is returned by the import function to the respective columns in the final \Rclass{AnnotationTrack} object. If no explicit mapping is provided, the package will try to find a default mapping based on the input file type and the desired track type. The current mapping of a track is displayed by its \Rfunction{show} method as can be seen above. The mechanism for changing this default mapping is quite straight forward: if the values in the relevant constructor arguments (in this case \Rfunarg{group}, \Rfunarg{id} and \Rfunarg{feature}) are character scalars, the \Rclass{elementMetadata} columns of the \Rclass{GRanges} object that is returned by the import function are mapped against their values. For instance we can map the \code{id} column to the \code{group} attribute and thus suppress the grouping of sequence alignments that originate from the same sequencing read. <>= aTrack3 <- AnnotationTrack(range=bamFile, genome="hg19", name="Reads", chromosome="chr1", group="id") aTrack3 plotTracks(aTrack3, from=189995000, to=190000000) @ Please note that if no \Rclass{elementMetadata} can be mapped to the constructor arguments their values are assumed to be normal character scalars and they will be recycled accordingly to fill the track's slots. One can ask for the package's default mappings by using the \Rfunction{availableDefaultMapping} function. <>= availableDefaultMapping(bamFile, "AnnotationTrack") @ We can now plot both the \Rclass{DataTrack} representation as well as the \code{AnnotationTrack} representation of the \code{bam} file together to prove that the underlying data are indeed identical. <>= plotTracks(list(dTrack4, aTrack2), from=189990000, to=190000000) @ \subsubsection*{Display parameters for AnnotationTrack objects} For a complete listing of all the available display parameters please see the table below or the man page of the \Rclass{AnnotationTrack} class by typing in \code{?AnnotationTrack} on the \R command line. <>= addParTable("AnnotationTrack") @ \subsection{GeneRegionTrack} \Rclass{GeneRegionTrack} objects are in principle very similar to \Rclass{AnnotationTrack} objects. The only difference is that they are a little more gene/transcript centric, both in terms of plotting layout and user interaction, and that they may define a global start and end position (a feature which is not particularly relevant for the normal user). The constructor function of the same name is a convenient tool to instantiate the object from a variety of different sources. In a nutshell, we need to pass start and end positions (or the width) of each annotation feature in the track and also supply the exon, transcript and gene identifiers for each item which will be used to create the transcript groupings. A somewhat special case is to build a \Rclass{GeneRegionTrack} object directly from one of the popular \Rclass{TranscriptDb} objects, an option that is treated in more detail below. For more information about all the available options see the class's manual page (\code{?GeneRegionTrack}). There are a number of accessor methods that make it easy to query and replace for instance exon, transcript or gene assignments. There is also some support for gene aliases or gene symbols which are often times more useful than cryptic data base gene identifiers. The following code that re-uses the \Rclass{GeneRegionTrack} object from the first section exemplifies some of these features. <>= data(geneModels) grtrack <- GeneRegionTrack(geneModels, genome=gen, chromosome=chr, name="foo") head(gene(grtrack)) head(transcript(grtrack)) head(exon(grtrack)) head(symbol(grtrack)) plotTracks(grtrack, extend.left=20000, showId=TRUE) @ <>= plotTracks(grtrack, extend.left=20000, showId=TRUE, geneSymbols=FALSE) @ Since we have the gene level information as part of our \Rclass{GeneRegionTrack} objects we can ask the package to collapse all of our gene models from individual exons and transcripts down to gene body locations by setting the \Rfunarg{collapseTranscripts} display parameter to \code{TRUE}. <>= plotTracks(grtrack, collapseTranscripts=TRUE, shape="arrow", showId=TRUE, extend.left=20000) @ \subsubsection*{Building GeneRegionTrack objects from TranscriptDbs} The \Rpackage{GenomicFeatures} packages provides an elegant framework to download gene model information from online sources and to store it locally in a SQLite data base. Because these so called \Rclass{TranscriptDb} objects have become the de-facto standard for genome annotation information in Bioconductor we tried to make it as simple as possible to convert them into \Rclass{GeneRegionTracks}. Essentially one only has to call the constructor function with the \Rclass{TranscriptDb} object as a single argument. We exemplify this on a small sample data set that comes with the \Rpackage{GenomicFeatures} package. <>= library(GenomicFeatures) samplefile <- system.file("extdata", "UCSC_knownGene_sample.sqlite", package="GenomicFeatures") txdb <- loadDb(samplefile) GeneRegionTrack(txdb) @ In this context, the constructor's \Rfunarg{chromosome}, \Rfunarg{start} and \Rfunarg{end} argument take on a slightly differnt meaning in that they can be used to subset the data that is fetched from the \Rclass{TranscriptDb} object. Please note that while the \Rfunarg{chromosome} alone can be supplied, providing \Rfunarg{start} or \Rfunarg{end} without the chromosome information will not work. <>= txTr <- GeneRegionTrack(txdb, chromosome="chr6", start=300000, end=350000) @ A nice bonus when building \Rclass{GeneRegionTracks} from \Rclass{TranscriptDb} objects is that we get additional information about coding and non-coding regions of the transcripts, i.e., coordinates of the 5' and 3' UTRs and of the CDS regions. The class' plotting method can use this inforamtion to distinguish between coding and non-coding regions based on the shape of the feature. All coding regions are plotted just as we have seen in the previous examples, whereas the non-coding regions are drawn as slighly thinner boxes. The distinction between coding and non-coding is made on the basis of the object's \code{feature} values in combination with a special display parameter \code{thinBoxFeature} that enumerates all feature types that are to be treated as non-coding. Obviously this feature is available to all \Rclass{GeneRegionTracks}, not only the ones that were build from \Rclass{TranscriptDb} objects. However, the coding information has to be added manually and the default value of the \code{thinBoxFeature} parameter may not be sufficient to cover all possible cases. It is up to the user to come up with a complete list of non-coding feature types depending on the source of the data. <>= feature(txTr) plotTracks(txTr, showId=TRUE, extend.left=1000) @ \subsubsection*{Display parameters for GeneRegionTrack objects} For a complete listing of all the available display parameters please see the table below or the man page of the \Rclass{GeneRegionTrack} class by typing in \code{?GeneRegionTrack} on the \R command line. <>= addParTable("GeneRegionTrack") @ \subsection{BiomartGeneRegionTrack} As seen before it can be very useful to quickly download gene annotation information from an online repositry rather than having to construct it each time from scratch. To this end, the \mgg package also defines the \Rclass{BiomartGeneRegionTrack} class, which directly extends \Rclass{GeneRegionTrack} but provides a direct interface to the ENSEMBL Biomart service (yet another interface to the UCSC data base content is highlighted in one of the next sections). Rather than providing all the bits and pieces for the full gene model, we just enter a genome, chromosome and a start and end position on this chromosome, and the constructor function \Rfunction{BiomartGeneRegionTrack} will automatically contact ENSEMBL, fetch the necessary information and build the gene model on the fly. Please note that you will need an internet connection for this to work, and that contacting Biomart can take a significant amount of time depending on usage and network traffic. Hence the results are almost never going to be returned instantaniously. <>= biomTrack <- BiomartGeneRegionTrack(genome="hg19", chromosome=chr, start=20e6, end=21e6, name="ENSEMBL") plotTracks(biomTrack) @ <>= if(hasBiomartConnection){ biomTrack <- BiomartGeneRegionTrack(genome="hg19", chromosome=chr, start=20e6, end=21e6, name="ENSEMBL") }else{ data("biomTrack") } plotTracks(biomTrack) @ You may have noticed in the above plot that the track includes \code{feature} information which is displayed by the different feature colors and box sizes. This information has been automatically extracted from Biomart and the respective color coding is part of the class' definition. We can highlight the feature classes even more by using similarly colored bars to connect the grouped elements. <>= plotTracks(biomTrack, col.line=NULL) @ For dense stacked plots like this it can sometimes be helpful to control the vertical spacing between the stacking rows. A simple way to do this is available for each object inheriting form the \Rclass{StackedTrack} class by means of the \Rfunarg{stackHeight} display parameter. It takes a value between 0 and 1 that controls which fraction of the available vertical space on a stacking line should be used to draw the feature glyphs. <>= plotTracks(biomTrack, col.line=NULL, stackHeight=0.3) @ \subsubsection*{Display parameters for BiomartGeneRegionTrack objects} For a complete listing of all the available display parameters please see the table above in the previous \Rclass{GeneRegionTrack} section or the man page of the \Rclass{BiomartGeneRegionTrack} class by typing in \code{?BiomartGeneRegionTrack} on the \R command line. As mentioned above, one additional benefit when fetching the data through Biomart is that we also receive some information about the annotation feature types, which is automatically used for the color coding of the track. The following table shows the available feature types. <>= addInfo <- t(data.frame(displayPars(biomTrack, names(details[["BiomartGeneRegionTrack"]])))) colnames(addInfo) <- "Color" addParTable("BiomartGeneRegionTrack", add=addInfo) @ \subsection{DetailsAnnotationTrack} It is sometimes desirable to add more detailed information to particular ranges in an \mgg plot for which the notion of genomic coordinates no longer makes sense. For instance, the ranges in an \Rclass{AnnotationTrack} may represent probe locations on a genome, and for each of these probes a number of measurements from multiple samples and from different sample groups are available. To this end, the \Rclass{DetailsAnnotationTrack} provides a flexible interface to further annotate genomic regions with arbitrary additional information. This is archived by splitting the \Rclass{AnnotationTrack} plotting region into two horizontal sections: the lower section containing the range data in genomic coordinates, and the upper one containing the additional data for each of the displayed ranges in verticaly tiled panels of equal size. The connection between a range item and its details panel is indicated by connecting lines. The content of the individual details panels has to be filled in by a user-defined plotting function that uses grid (or lattice) plotting commands. This function has to accept a number of mandatory parameters, notably the start, end, strand, chromosome and identifier information for the genomic range, as well as an integer counter indicating the index of the currently plotted details tile. This information can be used to fetch abtritray details, e.g. from a list, and environement or even from a \Rclass{GRanges} object which will then be processed and visualized within the plotting function. This may sound rather abstract, and for more details please refer to the class' help page. For now we just want to demonstrate the functionality in a simple little example. We begin by defining a \Rclass{GRanges} object containing 4 genomic locations. In our example those are considered to be probe locations from a methylation array. <>= library(GenomicRanges) probes <- GRanges(seqnames="chr7", ranges=IRanges(start=c(2000000, 2070000, 2100000, 2160000), end=c(2050000, 2130000, 2150000, 2170000)), strand=c("-", "+", "-", "-")) @ For each of these probes we have methylation measurements from a large number of different samples in a numeric matrix, and within the samples there are two treatment groups. The aim is to compare the distribution of measurement values between these two groups at each probe locus. <>= methylation <- matrix(c(rgamma(400, 1)), ncol=100, dimnames=list(paste("probe", 1:4, sep=""), NULL)) methylation[,51:100] <- methylation[,51:100] + 0:3 sgroups <- rep(c("grp1","grp2"), each=50) @ Of course we could use a \Rclass{DataTrack} with the box-plot representation for this task, however we do have strand-specific data here and some of the probes can be overlapping, so all this information would be lost. We are also interested in the particular shape of the data distribution, so a density plot representation is what we really need. Luckily, the \Rpackage{lattice} package gives us a nice \Rfunction{densityplot} function that supports grouping, so all that's left to do now is to write a little wrapper that handles the extraction of the relevant data from the matrix. This is easily archieved by using the range identifiers, which conveniently map to the row names of the data matrix. <>= library(lattice) details <- function(identifier, ...) { d <- data.frame(signal=methylation[identifier,], group=sgroups) print(densityplot(~signal, group=group, data=d, main=list(label=identifier, cex=0.7), scales=list(draw=FALSE, x=list(draw=TRUE)), ylab="", xlab="", ), newpage=FALSE, prefix="plot") } @ Finaly, it is as simple as calling the \Rclass{AnnotationTrack} constructor, passing along the wrapper function and calling \Rfunction{plotTracks}. <>= deTrack <- AnnotationTrack(range=probes, genome="hg19", chromosome=7, id=rownames(methylation), name="probe details", stacking="squish", fun=details) plotTracks(deTrack) @ It should be noted here that in our little example we rely on the methylation data matrix and the grouping vector to be present in the working environment. This is not necessarily the cleanest solution and one should consider storing additional data in an evironment, passing it along using the \Rfunarg{detailFunArgs} parameter, or making it part of the details function in form of a closure. The class' help page provides further instructions. Another use case for the \Rclass{DetailsAnnotationTrack} class is to deal with the problem of very different feature sizes within a single track. For instance, we may be looking at a rather large genomic region containing one big transcript with many widely spaced exons and a bunch of smaller, more compact transcripts. In this case it would be helpful to provide a zoomed in version of those smaller transcripts. In order to achieve this we can make use of the class' \code{groupDetails} display parameter, which applies the detail plotting function over each range group rather than over individual range items. First we define a function that selects those groups with a plotted size smaller than 10 pixels. We make use of the unexported function \code{.pxResolution} here to come up with the mapping between pixel coordinates and genomic coordinates. <>= selFun <- function(identifier, start, end, track, GdObject, ...){ gcount <- table(group(GdObject)) ## This computes the width of 2 pixels in genomic coordinates pxRange <- Gviz:::.pxResolution(min.width=20, coord="x") return((end-start)>= detFun <- function(identifier, GdObject.original, ...){ plotTracks(list(GenomeAxisTrack(scale=0.3, size=0.2, cex=0.7), GdObject.original[group(GdObject.original)==identifier]), add=TRUE, showTitle=FALSE) } @ Finally, we load some sample data, turn it into a \code{DetailsAnnotationTrack} object and plot it. <>= data(geneDetails) deTrack2 <- AnnotationTrack(geneDetails, fun=detFun, selectFun=selFun, groupDetails=TRUE, details.size=0.5, detailsConnector.cex=0.5, detailsConnector.lty="dotted", shape=c("smallArrow", "arrow"), showId=TRUE) plotTracks(deTrack2, extend.left=90000) @ \subsubsection*{Display parameters for DetailsAnnotationTrack objects} In addtion to the display parameters for the \Rclass{AnnotationTrack} class, some additional parameters can be used to control the look and feel of the details sections. For a complete listing of all the available display parameters please see the tables below and the one above in the \Rclass{AnnotationTrack} section or the man page of the \Rclass{DetailsAnnotationTrack} class by typing in \code{?DetailsAnnotationTrack} on the \R command line. <>= plotTracks(deTrack, details.size=0.75, detailsConnector.pch=NA, detailsConnector.col="darkred", detailsBorder.fill="#FFE3BF", detailsBorder.col="darkred", shape="box", detailsConnector.lty="dotted") @ <>= addParTable("DetailsAnnotationTrack") @ \subsection{SequenceTrack} So far we have displayed all kinds of ranges on a genome, but never really looked at the underlying genomic sequence. To that end, the \mgg package defines the \Rclass{SequenceTrack} class which can hold genomic sequence information derived from either a \Rclass{DNAStringSet} object of, even more convenient, from one of the \Rclass{BSgenome} packages. There is not formal checking of the track's genome, so it is up to the user to provide reasonable inputs to the class' constructor. As with all the other track types, the constructor has the same name as the class. In this example we build a \Rclass{SequenceTrack} from the human hg19 UCSC genome. <>= library(BSgenome.Hsapiens.UCSC.hg19) sTrack <- SequenceTrack(Hsapiens) sTrack @ Here we retain the same benefits as for regular \Rclass{BSgenome} objects in that the actual sequence is only loaded into memory when a particular chromosome is first accessed. Plotting the track yields the expected result: a character representation of the genomic sequence in the current plot window. It may be worth noting that the color scheme that is used to encode the indvidual nucleotides is defined in the \Rpackage{biovizBase} package and the user is referred to its documentation for more details. <>= plotTracks(sTrack, chromosome=1, from=20000, to=20050) @ Sometimes it may be too busy to plot both the sequence letters and the color coding, and we can assign arbitrary colors by setting the \code{fontcolor} display parameter. The convention here is that we need to supply a named vector, with one entry for each of the five possible nucleotides (A, C, T, G, and N). If any of the entries is missing, the respective letter will not be drawn at all. <>= fcol <- c(A="darkgray", C="darkgray", T="darkgray", G="darkgray") plotTracks(sTrack, chromosome=1, from=20000, to=20050, fontcolor=fcol) @ In this case we are plotting the sequence on the forward strand and we may want to make this clear by adding direction indicators. <>= plotTracks(sTrack, chromosome=1, from=20000, to=20050, add53=TRUE) @ If instead we plot the complement sequence on the reverse strand, the indicators are automatically adjusted. <>= plotTracks(sTrack, chromosome=1, from=20000, to=20050, add53=TRUE, complement=TRUE) @ So far we have been able to fit the sequence onto our plotting device without overplotting. I.e., all the letters nicely fit in to their respective position in the genomic coordinate system. However this restricts us to very small windows which we can reasonably display. A much more compact version of the same information is to use colored boxes rather than individual letters. Those boxes can be stacked much closer together, which increases the possible window size quite a bit. The user does not really need to worry about this as the plotting method will automatically make a reasonable decision based on the available space. <>= plotTracks(sTrack, chromosome=1, from=20000, to=20100) @ For added flexibility one can set the \code{noLetters} display paramter to \code{TRUE} to always force the drawing of boxes. Of course also the colored box represenation of a sequence has its limits, and if we cross the threshold when individual boxes can not be separated anymore, the plotting method falls back to drawing a single line indicating the presence of a sequence at the given position. <>= plotTracks(sTrack, chromosome=1, from=20000, to=201000) @ Finally, the selected font size is also contributing to the available space, and we can cram a little more sequence into a given window by decreasing it. <>= plotTracks(sTrack, chromosome=1, from=20000, to=20100, cex=0.5) @ \subsection{Creating tracks from UCSC data} The UCSC data bases contain a multitude of genome annotation data for dozents of different organisms. Some of those data are very simple annotations like CpG island locations or SNP locations. Others are more complicated gene models, or even numeric annotations like conservation information. In order to provide a unified interface to all this information, the \mgg package defines a meta-constructor function \Rfunction{UcscTrack}. The idea here is that we can express all of the available Ucsc data in one of the package's track types. We use the functionality provided in the \Rpackage{rtracklayer} package to connect to UCSC and to download the relevant information. As a little illustrative example, let's reproduce a view from the famous UCSC genome browser using the \mgg package. As a final result we want to show something similar to Figure~\ref{fig:UCSC1}. \begin{figure}[htb] \centering \includegraphics{ucsc1.pdf} \label{fig:UCSC1} \caption{A screen shot of a UCSC genome browser view around the FMR1 locus on the mouse chromosome.} \end{figure} To start we first need to know about the available data in the UCSC data base and about their structure. A good way to do this is to use the table browser on the UCSC web site (\url{http://genome.ucsc.edu/cgi-bin/hgTables?command=start}). Figure~\ref{fig:UCSC2} shows the table structure for the first gene model track, the known UCSC genes, in the table browser. We can see that there are multiple fields, some with genomic locations, other with additional data like labels or identifiers. If we go back to the section about the \Rclass{GeneRegionTrack} class we remember that we need exactly this type of information for the constructor function. So in order to take the UCSC data and build an object of class \Rclass{GeneRegionTrack} we need a way to map them to the individual constructor arguments. This is exactly what the \Rfunction{UcscTrack} meta-constructor is supposed to do for us. \begin{figure}[htb] \centering \includegraphics{ucsc2.pdf} \label{fig:UCSC2} \caption{A screen shot of a UCSC table browser view on the UCSC Known Genes track.} \end{figure} It needs to know about the track for which to extract the data (and optionally one or several of the tables that make up the collective track data, see \code{?UcscTrack} for details), about the genomic range including the chromosome for which to extract data, about the type of \mgg track that we want to translate this data into, and about the individual track columns and their counterparts in the respective track class constructor. In our example, the track is called \code{knownGene}, the track type to construct is \code{GeneRegionTrack}, and the relevant columns are \code{exonStarts}, \code{exonEnds}, \code{name} and \code{strand}, which we will use as the start and end coordinates of the ranges and for all the exon, transcript and gene identifiers. Here we make use of the high flexibility of the \Rfunction{GeneRegionTrack} constructor in the sense that the exon coordinates actually come in the form of a comma-separated list, combining all the information for one transcript in one row of the table. The function is smart enough to detect this and to split the annotation regions accordingly. The full function call to create the \Rclass{GeneRegionTrack} from the UCSC data looks like this: <>= from <- 65921878 to <- 65980988 knownGenes <- UcscTrack(genome="mm9", chromosome="chrX", track="knownGene", from=from, to=to, trackType="GeneRegionTrack", rstarts="exonStarts", rends="exonEnds", gene="name", symbol="name", transcript="name", strand="strand", fill="#8282d2", name="UCSC Genes") @ With a similar approach we can construct the next two gene model tracks based on the \code{xenoRefGene} and \code{ensGene} data tables. <>= refGenes <- UcscTrack(genome="mm9", chromosome="chrX", track="xenoRefGene", from=from, to=to, trackType="GeneRegionTrack", rstarts="exonStarts", rends="exonEnds", gene="name", symbol="name2", transcript="name", strand="strand", fill="#8282d2", stacking="dense", name="Other RefSeq") ensGenes <- UcscTrack(genome="mm9", chromosome="chrX", track="ensGene", from=from, to=to, trackType="GeneRegionTrack", rstarts="exonStarts", rends="exonEnds", gene="name", symbol="name2", transcript="name", strand="strand", fill="#960000", name="Ensembl Genes") @ The CpG and SNP tracks are slightly different since a \Rclass{GeneRegionTrack} representation would not be particularly useful. Instead, we can use \Rclass{AnnotationTrack} objects as containers. The overall process using the \Rfunction{UcscTrack} meta-constructor remains the same. <>= cpgIslands <- UcscTrack(genome="mm9", chromosome="chrX", track="cpgIslandExt", from=from, to=to, trackType="AnnotationTrack", start="chromStart", end="chromEnd", id="name", shape="box", fill="#006400", name="CpG Islands") snpLocations <- UcscTrack(genome="mm9", chromosome="chrX", track="snp128", from=from, to=to, trackType="AnnotationTrack", start="chromStart", end="chromEnd", id="name", feature="func", strand="strand", shape="box", stacking="dense", fill="black", name="SNPs") @ Most of UCSC's \Rclass{DataTrack}-like tracks are a little more complex and represent a collection of several sub-tracks, with data originating from multiple tables. To make sure that we get the correct information we have to be a little bit more specific here and also define the particular table on the UCSC data base to use. <>= conservation <- UcscTrack(genome="mm9", chromosome="chrX", track="Conservation", table="phyloP30wayPlacental", from=from, to=to, trackType="DataTrack", start="start", end="end", data="score", type="hist", window="auto", col.histogram="darkblue", fill.histogram="darkblue", ylim=c(-3.7, 4), name="Conservation") gcContent <- UcscTrack(genome="mm9", chromosome="chrX", track="GC Percent", table="gc5Base", from=from, to=to, trackType="DataTrack", start="start", end="end", data="score", type="hist", window=-1, windowSize=1500, fill.histogram="black", col.histogram="black", ylim=c(30, 70), name="GC Percent") @ To add some reference points we also need a genome axis and an \Rclass{IdeogramTrack} of the x chromosome. <>= axTrack <- GenomeAxisTrack() idxTrack <- IdeogramTrack(genome="mm9", chromosome="chrX") @ And finally we can plot all of our tracks. <>= data(ucscItems) @ <>= plotTracks(list(idxTrack, axTrack, knownGenes, refGenes, ensGenes, cpgIslands, gcContent, conservation, snpLocations), from=from, to=to, showTitle=FALSE) @ \section{Bioconductor integration and file support} This short section is supposed to give a very brief overview over the different track classes in the \mgg package and how those can be constructed from the typical Bioconductor classes that deal with genomic data. The list ist by no means complete, and a closer look at a track class' documentation should provide all the possible options. \begin{longtable}{ l | l | p{9.5cm} } \hline Gviz class & Bioconductor class & Method\\ \hline AnnotationTrack & data.frame & Constructor \\ & IRanges & Constructor + additional arguments \\ & GRanges & Constructor or setAs method, additional data in elementMetadata \\ & GRangesList & Constructor or setAs method \\ \hline GeneRegionTrack & data.frame & Constructor \\ & IRanges & Constructor + additonal arguments \\ & GRanges & Constructor or setAs method, additional data in elementMetadata \\ & GRangesList & Constructor or setAs method, additional data in elementMetadata \\ & TranscriptDb & Constructor or setAs method \\ \hline DataTrack & data.frame & Constructor \\ & IRanges & Constructor + additional data matrix \\ & GRanges & Constructor or setAs method, numeric data in elementMetadata \\ \hline SequenceTrack & DNAStringSet & Constructor \\ & BSgenome & Constructor \\ \hline \end{longtable} We have seen in previous examples that the \mgg package supports quite a wide range of standard file types as inputs for the class' constructor functions. In this section we summarize the file support for the different track classes in one place. \begin{longtable}{ l | l | l | c | p{6.5cm} } \hline Gviz class & File type & Extension & Streaming & Details\\ \hline AnnotationTrack & BED & \code{.bed} & -- & Genomic locations from the mandatory \code{chrom}, \code{chromStart} and \code{chromEnd} fields, and optionally the strand from the \code{strand} field. If present, the information in the \code{name} field is mapped to track item ids, and \code{itemRgb} is mapped to track item feature type. All other fields are currently ignored.\\ & GFF & \code{.gff}, \code{.gff1} & -- & Only the following basic GFF fields are recognized: \code{seqname}, \code{start}, \code{end}, \code{end}, \code{strand}, \code{feature} (mapped to track item feature type) and \code{group} (to allow for track item grouping). \\ & GFF2 & \code{.gff2} & -- & Same as above, but feature grouping information may be provided either as \code{Group} or \code{Parent} attribute. Feature ids are mapped to one of the \code{ID}, \code{Name} or \code{Alias} attributes.\\ & GFF3 & \code{.gff3} & -- & Same as above, but feature grouping information has to be provided as the \code{Parent} attribute.\\ & BAM & \code{.bam} & $\surd$ & Only start and end locations as well as the strand information for the reads are used. Read identifiers are used for track item grouping.\\ \hline GeneRegionTrack & GTF & \code{.gtf} & -- & A somewhat looser format definition for \code{gtf} files is applied here where gene, transcript and exon identifiers and names can be parsed from the \code{gene\_id}, \code{gene\_name}, \code{transcript\_id}, \code{transcript\_name}, \code{exon\_id} or \code{exon\_id} attributes.\\ & GFF & \code{.gff}, \code{.gff1} & -- & This only supports very limited item grouping and thus complete gene models can not be properly encoded.\\ & GFF2 & \code{.gff2} & -- & In most instances this is identical to the \code{GTF} standard and it could make sense to rename the file accordingly.\\ & GFF3 & \code{.gff3} & -- & The gene-to-transcript and transcript-to-exon relationships are encoded in the \code{parent} and \code{type} attributes and the parser tries to accomodate most of the exisiting GFF3 variants.\\ \hline DataTrack & BedGraph & \code{.bedGraph} & -- & \\ & WIG & \code{.wig} & -- & \\ & BigWig & \code{.bigWig}, \code{.bw} & $\surd$ & \\ & BAM & \code{.bam} & $\surd$ & Read coverage only is extracted from the \code{bam} file.\\ \hline SequenceTrack & FASTA & \code{.fa}, \code{fasta} & $(\surd)$ & Streaming only possible if an index file is found in the same directory as the original fasta file.\\ & 2Bit & \code{.2bit} & $\surd$ & \\ \hline \end{longtable} \section{Composite plots for multiple chromosomes} As mentioned in the introduction section, a set of \mgg tracks has to share the same chromosome when plotted, i.e., only a single chromosome can be active during a given plotting operation. Consequently, we can not directly create plots for multiple chromosomes in a single call to the \Rfunction{plotTracks} function. However, since the underlying graphical infrastructure of the \mgg package uses grid graphics, we can build our own composite plot using multiple consecutive \Rfunction{plotTracks} calls. All we need to take care of is an adequate layout structure to plot into, and we also need to tell \Rfunction{plotTracks} not to clear the graphics device before plotting, which can be archieved by setting the function's \Rfunarg{add} argument to \code{FALSE}. For details on how to create a layout structure in the grid graphics system, please see the help page at \code{?grid.layout)}. We start by creating an \Rclass{AnnotationTrack} objects and a \Rclass{DataTrack} object which both contain data for several chromosomes. <>= chroms <- c("chr1", "chr2", "chr3", "chr4") maTrack <- AnnotationTrack(range=GRanges(seqnames=chroms, ranges=IRanges(start=1, width=c(100,400,200,1000)), strand=c("+", "+", "-", "+")), genome="mm9", chromosome="chr1", name="foo") mdTrack <- DataTrack(range=GRanges(seqnames=rep(chroms, c(10, 40, 20, 100)), ranges=IRanges(start=c(seq(1,100,len=10), seq(1,400,len=40), seq(1, 200, len=20), seq(1,1000, len=100)), width=9), values=runif(170)), data="values", chromosome="chr1", genome="mm9", name="bar") @ Now we also want a genome axis and an \Rclass{IdeogramTrack} object to indicate the genomic context. <>= mgTrack <- GenomeAxisTrack(scale=50, labelPos="below", exponent=3) chromosome(itrack) <- "chr1" @ Finaly, we build a layout in which the plots for each chromosome are placed in a rectangular grid and repeatedly call \Rfunction{plotTracks} for each chromosome. <>= ncols <- 2 nrows <- length(chroms)%/%ncols grid.newpage() pushViewport(viewport(layout=grid.layout(nrows, ncols))) for(i in seq_along(chroms)){ pushViewport(viewport(layout.pos.col=((i-1)%%ncols)+1, layout.pos.row=(((i)-1)%/%ncols)+1)) plotTracks(list(itrack, maTrack, mdTrack, mgTrack), chromosome=chroms[i], add=TRUE) popViewport(1) } @ Maybe an even more compact version of this would be to use the lattice package for building the actual trellis, with \Rfunction{plotTracks} as the panel function. <>= library(lattice) chroms <- data.frame(chromosome=chroms) xyplot(1~chromosome|chromosome, data=chroms, panel=function(x){plotTracks(list(itrack , maTrack, mdTrack, mgTrack), chromosome=x, add=TRUE, showId=FALSE)}, scales=list(draw=FALSE), xlab=NULL, ylab=NULL) @ \clearpage \section*{SessionInfo} The following is the session info that generated this vignette: <>= sessionInfo() @ \end{document} Gviz/inst/doc/Gviz.pdf0000644000126300012640000443163112227144312016222 0ustar00biocbuildphs_compbio%PDF-1.4 %ÐÔÅØ 1 0 obj << /S /GoTo /D (section.1) >> endobj 4 0 obj (Introduction) endobj 5 0 obj << /S /GoTo /D (section.2) >> endobj 8 0 obj (Basic Features) endobj 9 0 obj << /S /GoTo /D (section.3) >> endobj 12 0 obj (Plotting parameters) endobj 13 0 obj << /S /GoTo /D (section.4) >> endobj 16 0 obj (Track classes) endobj 17 0 obj << /S /GoTo /D (subsection.4.1) >> endobj 20 0 obj (GenomeAxisTrack) endobj 21 0 obj << /S /GoTo /D (subsection.4.2) >> endobj 24 0 obj (IdeogramTrack) endobj 25 0 obj << /S /GoTo /D (subsection.4.3) >> endobj 28 0 obj (DataTrack) endobj 29 0 obj << /S /GoTo /D (subsection.4.4) >> endobj 32 0 obj (AnnotationTrack) endobj 33 0 obj << /S /GoTo /D (subsection.4.5) >> endobj 36 0 obj (GeneRegionTrack) endobj 37 0 obj << /S /GoTo /D (subsection.4.6) >> endobj 40 0 obj (BiomartGeneRegionTrack) endobj 41 0 obj << /S /GoTo /D (subsection.4.7) >> endobj 44 0 obj (DetailsAnnotationTrack) endobj 45 0 obj << /S /GoTo /D (subsection.4.8) >> endobj 48 0 obj (SequenceTrack) endobj 49 0 obj << /S /GoTo /D (subsection.4.9) >> endobj 52 0 obj (Creating tracks from UCSC data) endobj 53 0 obj << /S /GoTo /D (section.5) >> endobj 56 0 obj (Bioconductor integration and file support) endobj 57 0 obj << /S /GoTo /D (section.6) >> endobj 60 0 obj (Composite plots for multiple chromosomes) endobj 61 0 obj << /S /GoTo /D [62 0 R /Fit ] >> endobj 79 0 obj << /Length 2208 /Filter /FlateDecode >> stream xÚíZIsÛF¾ëWàHV…mô q‹¥Ø§&3“H9%9@$DaL AÚ‰ý¼­yª\9djtôòúõ÷ö¯ï®^½u6Ñ…2:sÉÝCb¬U^IžgʦYr·I~^Ü-õâ®zùëÝw0£ϰF9k“”‡þ †}€«ù$c'Ô­SƸ0ö§i—+›jšxnàg3,dt¢µ*³Ìàä•ÕÊ8÷TY­™Æ[½ƒ«ƒëˆÓ+¸ö@Òd‹o+á{?"é“B•Eª‘baUfóÄ)k=“û%MíìÚ>UÎåÉÊxU”þ']ŸpñûåÊä¼XWC“ûŠŸ <§pi! 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CANTNANNNNAAGGNNCGACTCGAAGACTNAGGTACCTANAGCCNATGTGAGTNAGGNCTGGCGCGATGCNGTANTNCGA CGGGCNCCCNNACNATAGCTANGATACCNNGCCTTCTGTGNCTTNTNTTCCNGNNGGAGAANAACNGAGNGCCTATTANT CTGNAGTCNNCTGCTNGGCNCCAACTNAACNANTCNAGTGNNGCGCNGGAANTAAACTANGNTNGTTTGNTGNTAGTNNN NNTNGNAANTANGANTCGTGCTTATNTGNCGGAATAGCNCGTTCNTTCNTTTNTGCCAAGCGCCCGATAGACANCACNCG GAGNTCGGCNTACGCNNGGCCCNTNTNCCGNCNACTGTNAGACGGGAAAATGATCAGNAATCGGCGCTCCNCCAACCTTN TCGTCNAGAGTGTNAGGANCNTNCACACNACTNTCCCGCNTCANAGATACNGATGCNTCCCATTTCNAGTTGCCGATCTT ACCAGNGNCNCAANATGNTTGTGTANCNNACATNTTTANNCATTGATNTNTTTANATTGCNAGCNTACTGCANCTTTGTT ATNCNCGGAANTTCGNGGGTCGTTGNANCTGCANCAATCACNAGANCGNTGGGCNGGNAGTAGGNTGCNTCTANATGGTT GCTNTCGGCNTCGCGGANTATTCNCGGGNGTAGTTAACATGGTCGCTCTNGANNTGCATTAAGTCCANATCANCGACCAN GAAGGAACCCTCCATCGGGCGNNCANAAGGNATGAANCATNGCTTNGGCNANTTAAACNGNACNGTTAGNGACCTNCCCN CGNCCACAGACGGTCGAAGGANCTTTTCTGTAGTGAGCCACNNNCTNTGNACNNAGGTCGACGNACCNCNANAAGANGGC GATCTGGAGTTAGAGNNACTAGGAACCTCTTANCACNNNGNGTCAAACTNACATCNCACGNGNCNTTAANAATATGNATG AGATNCTCGACNTCTGTTTAAGTACTGTNTCNATACAGNCATANAGTAAGAGGGNNCTGGAGTCCCTANGCGCNACGNCN TGTAGGNGNATTTGNNGNGCAANCNANATGGTACTNAGCTNANANCGTCNAACACGGNNGTGCCNNCCACTGATGTTCAG CAAGGTANTACCCGGTCGAAACCTTGNNNCCANNTCCGGCGACTGAGTCCACCAACAGCTGNGGGGTGTGGTAAGGTCCT CACGTNGNANTCGGGATTNTGCNGGANAANNGGTNCANGGCTCANATNNACNNAATTGAACNAGAATGTACANANGCTGA NNNANCCNCGCANNTCTTTATNNNTGGGCGCTNANTTCTGNCCAANCNACTGCCNTNNANNNGGAGNTGTTCNCAGTTAA CCNNTTANGANNNNTATCCNCNGCGTAACANCAGACCGNGNTCGNANNNCNTTNGNCGNCGTCCTCCGTGNCAAANTGNT CATNTGTCTATTNATGGATAACNCCNCTAGCGCCATTGGTCTANGGGAGNCCGGATCCTTTNANTNNGGANNAGTANAAT TNNNANNCNTAGNNNNTCAGNANANCGTAGACGTNCCGACTTGGAAACCCNTANTTCNGTCTNANGCCGCGNCACAGNTG CAGCCCGGCNNTCGCNTAATGGACNNGTNCTGGCNTCCNGTCGAGTTTGNGCGNNTGCGCGANNCGTAACNCGAGCCTTC CGCGAAGCGNAACCATTNNTGNCNGNGCAGNGCGAACNNNTTNCCTNGCAACTTCTTNNNTGAACANAATGGGAACCAAA AAAGTCTTTACANATGAGNTCTAGGCAANATAGNNGNGTGTGANNGNAAGNTGTTNGACANGNNNTGCTNCGTTANTTTA TNNGGNNCAGAGAGNATGTCNNTNGACGTTANTTCTNTGGCNTGNTTGNNNNCCTCTTCAGNNGTGTAGCNCGAAATATA CACATTNNGTGNAAGTATNGCTNNTTATGCTANGAGNCTGNGCGAGTACCNACGTTTCAGATNACGTCCCNCTNNACTTG CTNNAGGTCCGCCTGAGNNCNNTTTNCTATCCCACAGTANNCAANCAGATTNNTNTAACAGCNATCTAGCCCCAACCGAA GNCNGACTGGTTCAGGGCGCNNCCNNTCNAGANTNGTCCTTNGNCGGNNGGCGCATGTCNACANNGANNANGAGNGCATT NATACANTGANAGCGTATGGCGNNCGCGTANCGTTNTCATGCCGCANTAACTCNANACNCCAANAGCAANNTNCTNTNCT CCCCTCTCTTGGTANCTCTCNCGTCTTNATGCTNTANNAAGCAATCCNTTGNGTAAAANGATCCATGGCCNNTCCACAGN GGNATATTNACTATNNNAGCGTANNCGTNAACNANGNGNAANAATACGGGGCTTANTNAANACATCCAANGTNAGCCNGG GNNNNCGNNANCNTTCACTCATCCCTGCATNTACNNCNTNCTGNCACGNGANTCGCGTNGNTGCCTNAGCTCAAAATTCC CTCATTNNTATGNCATCTTCATCCGGCNANCANAGAAATCCNGNCTGGANGCANACNTTCNGATGGAGNCNNNAGGACAC CCAANACTCCNAACNGNACAAAGNTGCTGAGTTATANGANAATACCTCTCTAATAATTCGGTTCACTGGCNNAGNCGTTG TTNCNNNAGGNAGATCNNCCTTGCTANGAGCNNATTNGCNANTGATNGCNCNGCNGGNAGTACCCGNNNAAGGGANTCCA NTNCTTNAGNGAANCTGGCTCNANACGTANNTTAGGTGNGGTNCTCGATCTCGGAANNCNGAAAAATNNAGNGNNCNNNN CTCCCAGAATNCANNGAGCTTATGGNCTATAATNNANATCGGANGANNTAAGNCACNCNAANTCACTANGGTACTCNGGN GGTTNTNTGCGGNCTCTACNNGGGCGGCNACGAAGACCANTGNTTCNCTTCANAAGANTCGTCGTTTTCNANTAATGACT CNTNAAGAATGCCGCAANNCGGGNTNCANACCNACAATNCACNAAATCATNNCNTGNGTANNAGNCNTNTTNACACCCNG TATTATGACGATGGTCGGTTNTAGTTTNGTCNTTNACCGTNGTGNTAATTGTATCATNCTNTACATTCGTGNNTTGGGTA NTTAGCGGANAAGCAACCGNNNANTNACNNTGAGGCNNAGGCNNCTNAGGAACNCTANCNAACNACTACGNCTAGCCTCC CANNNGAAANCGTANNNGGCAGAGGGANCTATAGCCGCCGAGCTGAGAATGCNTAANTTGNGNTTTNNTNNTTNCACACA CTTTAGTCCNGTGGCATNGAACAATNAAGGNGCCTNGTGGCCAGATNAGTATAGTCCTNTGGGCATCAGCAGTGTNNGGN GNGANGAATAANTTGNATTTTGTNNCTGACNGGACCAGCTCATTGAACCNGTNTAGANTGCAANCAANATNGATGANTNT NTGTNGTACGGCGCCNATCGNCNACNANTAAANGNTNATANATANGCAATCGTTTANGTANCANNANGCGTAGGGNCTGT AGCCATAGGGAATAGGTTTGCTTTANGNCNANCGAGAATGGACNGAANCCGNNTGCNANNNAANACCNCTTTTTTTGNTT GACATNGCNATCCAGGGTGNAACNCTCTATTTTGCGAAATAAANACTAGGNAGGNGTACGNNGNCGNTNANNGATTAGNN TNTTTCNNGATGNNCGTATCGCGCATCATCCNACCAGATATANCNATTGGCTTTATNCATCATNCGCAANANNNCAAGAG GGGTGGCTTACCCCTTCCNTTCGCAACGGNGANGATTGCNGGANTNGNGTGCGGCGAGANTNCAACCNNAGTGCNGAGNG TNCTNGATAATTCTTCNGCTGNATGTATTAAANGTNTTNCANAACAANGGAATCGTCANTTGNNANNTNGTAANGGNNGC CNNCGTNGTAGANTTNTTNNNNTGTAGNCNGNGTCACGAGTCGGTGNAATNCTCCNGGAGNGAACATNNGNNCNCNGCTG GNCCAAATNNCNTCTTTAAGGCNNAATTTCGGTNGNCNCANANCGTACNCAGCNCTCNNNNCTNATCACTGTTCTGNCAG ANCGTGTTCANGNAGTGCACCNNNNTATNTGTNNGCNANCACTTAAANAAGTCAGTCCTGACNATTGCATNNTTNGNAAN GAGATAAGCAACCCNCCGGACNGGGNTTCNCGAGTNATTAAATGNCNNGATCTATTGCACAANATAGNAGNTNNCCCGNG CGNGNTTNAGTCGCAGATNNATTTACACACNAGAGATGTGAAAGNGTTGCTATAAGGACCNGNGGCNNAAGANATGGTGA NGCCGCCGCATANGTNTAAACAGGNNGAGANNCGCANAGTGGAGGCCGTTTTTAAGNGTGANCACATCGAGGCTACGCNA GTAACGTNCCAGANCNATCGAAGNTACCACTAGACTCGTGNCGTAAGNNAGCANCCNNTAGGGAGGCCCGTGTACCGNTC GGGANCANTNAACTTCAGAGNNCNNNCAAGGGTACTCCANGANTTGACACNGTTTNTATGNGTCTGTTTCTATGNTAANN NTTNNNGTTANNGCTACGCGTACTCGGCTNTTTTGGCNTTTNAACNAAANTNNANCTAGNGGTNCNTTATCAAGTGGGTG CCTCTGTNATGNTNTTCTGTCACNTGTANCGGNGANGNGTGCCNAAGNTTGGCTGACGGTCNATAAATNNNTTNNTATCA CTATAATCNTGGCGCTATCATAAAGCACNNNCNTGNNTNNNCGCCGNNCCTTNGTATATNCACGTTGANGGANTGCTTCT AGAGAGGGCCCGTAGGCTNNCTTATNAAGGCCTTGACNNCCNTTANAAGAATGGCNNTAGANTTTGNNCTCAAANNGGNG NGAAGNGGCATGATCNTTTGAGGGNNNAGNAACNGGCNTCNNCTCAAGATTTNNTATGGTATCGNTNCGGNANGATTCCA TCGNAANGTTCNCACTCCNNTANNANNNNTCACGGNAGANTNCGCTCGANNGTTNCGTTATNANTTAGACGTNTGTCCTN ATNACCGGTNTANTCGNCAGTNAGTTCNTTGATTNTGANGTNAATTNANCCGAACACGNACTCTCATGGGTAGGGNTNGC CNNGATAAANNATAGCTNCAANNCTCACACCANCCGTCACGTACAGAATNGCGNGACNGNNGAGTCGGATNTNCGACGTT GAAGNATTTGNTNGCCNACNGNTCCNCTNNCNANTGNGTTNCGANGAGANANNNNCTNGTNNTGAANNTGAACGGTGANC NGGAACAAGATTNAGACNGGGCAACGNACTTCCGTCNGCTTGCNATNTGNGNCGCGATCGNGNATNCTGCAANNGCCTNC GNACGCTACGGCTACANGCTCCCANAATGTACNGCAACGGTACGAANGNNATGNTTNNCGTAGNCCAAGGACTGCCNGAA CTTTAAGGCCCTTNGCNAGCACGNNTANTACGCCANCNNTGNGAGGTCNCNCGNAGCNNTCNTGATCCCTTANTAACGTG GGCGCNCAAGATGTTNAATAGNTCCATNGNGTGTGGTAATTCGNAAGNTATGTCNCNTCNAGNAGGGAAACNATATTCGN NATCAAACTNAACCNGNGCGCCATGATGAGAGTGATNCAATCAAAGAAATCNNTNTAGCAANTCGACNGACCCANGGAGG GAATTTGCGACCACNGNTNGTNTCNANACGCNCTTCNAAAAATNTTGGANAGNTACATNCCNNTGTTTCCAGNGTTTANC GAANGACGNGTCTTGNATCAAGCGNGTACTCTNGCTGGGNGACTTCTGANCACGCACTNCATNTTNTAGTCTTGCNATAA NTCGNAGCGGCATNCAGAANNGTGCGCNCGNNCNNATGCNCGNCTANGNGNATCNNCTCNNTANTGGGNTCTAAGACCAG TCTTANTNCCTCATNANGTAAGTAGATTANGCTNTAATTGATNTANTTANGTNTTGCTGGGTANAAATCTGNGCGTGTAT CANANANCTAATCNCCNACACGTNCNGANNAAGCTGNCANTGGTCNCAAGTCCNAACGAGCGAGCNANCGTAGTNATTNA TNNGTNNNNTANNACTGNTCTCGNCCTTNTNCANNNTCGANGACACGANTCATAGCAGTTACCNCCGGCTTNCCATNTAC NAGTNNGNATNGCATGNTANATCCNGTGGNTCTCNCNGGTCTTTATCGGCNCAGNNGCNATTTACTAGGACCNTATNGGT CTAATNATGGATGCAGACGTTCGTTCCCGGANAAGTANNNTNCCNTGGACACTNNNNCTTNACTAATATTATATCCNCCA NATANTNNACNACNGNCAAGNGGTNTNCCCTAAGTTNAGATGAGCNAACNNCGCNTCATTGCGGCCATNNCCNCNAACNA CNACCCGNTAATTTGCCATCGCGGGAACGCGTNTCCATGANAGCANAGNNGNTGTATGNCATNTCCGGGGCCANTAGAGN TAGATCTCTCCAANTTAGAAANNGCNGANGTNNAACTNNCCNACNNTANNCNAGNNGTAATNCCTNNGTCTACGAGAGNG ANCCTAGACNCCNTAAACNANTTNTCAANCTNAGNCTCGNGNCGAGGACNCNAGACTGGACGCCANNAGGAANTACTACN CNTNANNNGGGNGAAGCGCNCCGNAGNNGATGTANTGTTTGTTATCCGTGTGCCGTCTNGTACNNCGNCANTATTNNGAC GAATGCGNATAGGNTTTNNTACTNGACTNACGCTCGCGCGTACCTCCTTCNATGANTCANNCTTCTANACNNACATAACN NATNTCGGNTCGTCTCNNTTTGACCACNTTTTAGGGGGAAACCGTNCTACGCATNCNTCGTAGNCNGGATGTTNTCTCCA NCTCNTTNGCGATGATACATNTTNGNTAAGACGNNAGTGNNNGNNGGNNCTANTATCATNGATANGNNGNAANNCNGTTN GCTGACNTANNATCACGTANTGNTTANCTATGGCTAACGNNNGAGCGTAATAANGGAATNCCNANCNNNCAGATAANTTG CTGAATTNTNATTAACCCNNTTCAGGGTCTCTGCCGTTCATNTNGATGGCCGTNCNACGAATGGGCCTTTNAGCTNCGNT CGNTCANCTTTCCTGTTTNTCCNCGAGNCGGCCTTCNTTNGNGCTNACTGNGGAATATCGNANNCTTNNATGANNGAGCT NTAAGAAAANCCNACCCGGCAAAACGACATGTTCGCAGTTNGCGTAATNTTGGCANACNNNACCCANTATAACTNTCNNC CNAGCTCCAGGTCCACTCGGANNTTACNTCCANTTACGNNGGGTGAACCGGTCNNTCTNTTAGCNNAACCNCTNGTATTG NTACACAAGAATNGGAACTNGGNCCNGNNANAACNNCGTNTCAATACTNTCCCCGNNAGAAGACTANNAGNTAACNGNCG CCCGACNACACTAGGTACCTNACCNTTCCAAACACGCTCTCATCGTGANNACTTTANTAGATTCNNTNCAGATNTATCAG GNAGNGNAAGCNCNGGTNGACGCCGGGTTCTNCCGGCNTACAGCCTCNGCATCNGTAGAGNCGGTAGGCTTTAGACTGGC AGANGGTACNGCNCGNANAGAGANTNATGTCACTGGTNATGAGTGGAGGNGGAACTGNTATCGCNGGCNANAATNATTGN AAGAAAGTNTTCNNCCGTAGACCGGGTACACAACTATGNNATNNNCTCNTACTACCGTANTAGGGNNNTNNNCTACNACG CNTCTCGANTCNCTAGTGNNCTCGGATTCANCTTTGGCNCNCGACCTACAGGGACACNCAGCTTCNTNCCTNACANGANC TNNCGGNGCATCACANTGGANCNGGGTGCCTNTNTAGGAGGGTTCGCATCAGTACNGGNAANGATCGAANNAGCGCGNCG AACCATCGTATAACTATNANGTCGGNGNTTNTGTNGNCTTGNGTTCNGGTANTGAGNNCACAGGAGCCNNANCNCNATTA ACANTCNNNNCNGCCATAGNACCCNGAGGGTTCTCTCTNGGTTAGGGACTNGNTCNCGNNACGAGAGACCANGTAGANNA NNAGGTNTAAGTNCCATTGCGNNNNNTAANATGTCAACTCCCGCCTTGTTNGNTNTNAAACANNCTCCGTACATTAATAN GTCNNNCGTCGGAGNGGNTCGTNGGTTANCCCCCTNTNTTAAANCCCTAANNGACGNTCCCNTNTCTGAANAACAAAATA NNCNTTNCCACTGTCNNNGGTNGTTNAATNCAGAACGTATTANGTNCTNGAGGGCTGTNGCNAAAGTNTAGTGAAGTTNA CTNAATCAGTCCCGGNGGGCGAAGTCANCTTACGCCNCNNNGGNCTANTNGGGNANNNCGNTNAGGAAGTANTAGTNGGT TGAGTCTNNCNGNATACAGCTAANGCCGNGCNTNTCGTNNGANTTTCNNCCGGACTGCTGCNATGCCAGNANGAGNAATT ACACAANANGNNGGGGNTCNNAGCCGGTNACNCTAAAGATTCCCCTAGNCANGAGNGGACATACAANGGNNGTTTNACNG CTTCTNGTNTNTTGTATNTTCTGNNGCNTCAAAAAANCGNANGACACGCGAGACAAAANACCNACGCNCCTTGTGNGGCT TTTGAACTNCNCTNTACNACACCCTCCCCCCGCNGAGTCNACGTGTGGCCGTCCGNCGATGNTTTGAACNGGACAAANTT NAGCCTNGCCTNGCCNTCNNNNTGACGTCGTANANNNCCCANGAACCTANNNTANGNNGTTGTCGNNTACCGGTTNCGAN CGTNATCNANAANTTACCNGGTTNCTNNACAAGACTTCGNCTNGTTNTTCNTTAGCACCGTGTCNTCGATGGGTATTNNC ACNAGCAATTANATCATCGCGGCTANNAAAACTCNCTNNNCGCTTACNAAGGTCCNGTTAGNGTATNCNTNNACGNCCAA TCGCACATANGGTTGTCNCCNANNCGTTCTCAAACNGACCATTTTATNAGCNCCCGAGGTTNGGTTCCAATANGTTGGAG TATANTCANTCAGTNANTTTANCGAGGGGNCCTNACGATTNATNTCCTGTTCTNTNGTACCTGNTTGTAANGNNANTTCC NATCGCCNCGGATGNAGGGCCNANGAATCGTGCNGNCTCTAANNGAGGCCCNCCCNTAGNAAACCGTATCAANCANCNGT NATCTNTAGANANACTNTCCCGTGTTGATACCCGTANTNCCGACGGGATGCAGCAGGTATANNANTCGGCTGGTNGTTGA TCTACAANGNGNGTNGAGTGATNGAANATCGAACAANACAATAAGNGTCACCCTGGANACTGCGCTAGATCNCNAGGTTC TAAGGGNNNNANATCACTGANNNNCCNACTNCTTTACTCCTCNACCGAAGANGTAAAGCNCGCNGGTNTGTATCNNGNAC AATNNTCCCCCGATNTAGACGTGTCGNACGCCNCTNANAGGNGGGTGTNCGTGTGANTNCNCNTCNGNCNCTGAGCGTGC TTTNTGGNNCAAATACAACANGCGATCGAACNGTGTAACGCATAGNNTGGNANGCNNTNCATCNCTGNTNNGNGNANNCT TNAATCNANTANACGANGAGTTATGNNCTACANCGGNCTCCNCCACGNTANCCNTNACCGNGNACNNAGCCNCGCTACTN AATGTTCAGGNTTTAAGNAANNGCATGNCTCNGCNGNTCTAGAAGNTGATGGTACNATGTAGNCCNANNGCTGCNCGGCG GAGNNATCGNTNNTNNGGAAGGTCANCGGAACCAANGTCCAATAGCTANGNCNCGCACATANNTNNGAGTCNNGANTGGN CNCTGATNNNANTGTGNGCNGGGNTCNCNAGTNAGANANTNNANCNTANCTNTACGTCAAGAACGCCCATCNAATCNCCT TCTGTTTNGGCNGACCTNCTCNANCTTNTNACGNGGGNNNTANGTGATCCCNTGNNAAGGNTGNGANNNTNGCNAAGNAN TACGTTAGAGNTCCAACTNGGACNAANGNATACNAGNCGNATGNAATGNCTNAGNNTGCTANCTAGTNATNTNACTGNAG GAGNACTGCTNCCGAGGTCNATTNTCCNAACCGGTCCCGNTGGCATNANATNNGCCCANTATGGNAGNCNTGNTGGGAGT CGTTTCTGNGCTGATTGNTCCTGNAAANNNGTTCTACNTNCCACGGCNNATGNTNCNATATNTNGATGCNCCTTAACNCT NNAAATGGGNAGTTAGAGNTACTAATTGNTCTAGTAANNNATCGGACNNNTCGANGGGACANNCCNAACTANNGTNAAGN CAGGTGATGCATNTGAAGTTGNGCATACTACGTNGNCAATGNTNGTCTCACCNTTCCCNAATANNGTCATTAGTCTANNT GNGTTATTNCTTGAAGTGTTGCNANCTGCNNTAAGGCACTCGTNGGCCCCTAACGGNCGACTAAGACNNCGGANGCTNGG AAGTGANAGNAGNNGAAAAGANNNNNGTNNNGCGCTATANANGATGTCGTGANANNAGCNAGAGNCANTGTCGCAGTNCT GGCCNTCGNACNATTAATGNCNCNAGTTNNTCTGTNTTTNGGCACANTCTTNCNCACCCAATNCTGGTGNNACANTCGGN CGATAGCNNGNTNCANANTGCCAAAGNTANGTGATCGATNTAACTGGCANGTNNAGNTGCNNNTCCCAATTTTTCCATTG CNGACNCGCCCTTGCTTAATNTAAATGCNGNTATATNGAATNACNCNCNTNTTANTNGNANATNGCNGNAAATCGTCCGT ATANTACAACNGCAAGTCATNGGGANTCCTATNGTTTGNNCATTATTCCACNNNANGATNNGGNACCANCNCCAGAGGCN TGAACCNGCCTNCTGNCTAAAACNANCTGAGNCNGNANAGTCCANTNCGAANCACTACCNACNTCNGACCGGCNNNCAAC AGAGCNNNCGANAGGNAGGCGCCNCTCGGGGNTTAANNAGGAANCACNNACNGCNGANNCNNGNANAGNAATCTTNCGNG CTATTGNGGTTACCTATTANNNCTTTTACCCANNGAATGCTCCTNGAGTTANACTTCGNCTNTNGNNCNCCCNGCAACNN TNTCATGTGGCGNCGATNCAANCGAAGAGATCNATNTCAGCGANNACNGTACATNGGGGTNGANGATACATNTANTNAAG CATNCTTAANCNNCTTTGCANCTCNAAGTNNGACTGTCTTNNGANGNNAACCCNNGGTAACATAGCAGANCGCNANCTNN ATNTCGTTNATCGCGCNAAGAANTCTTTGTTCNGGGNAACNCTGGTNANNGAGCGTCTCCCNGTNNNTTTCCTNANNAGA NTCGATCNNGCNTTGGCAANCCGTNAAAACTNCCACNTCAACNCNCTTANTATNGNANNAACCCTNTGGNANTCGTCCTG TNTGNNCGATNNNCGTGTTCTTCNGTACCANCNATAATTCANCTGGNTNGNCGCNTAGACNTCTTNTNTTTGAGNACTGT GTCTATNTGATNGATAAACANGTGTCGGNGNCNGTNNGACAANCNTCAAGTANGGTTGACANGNCCTGTCNGGNNTGNAC AAGAAAAACGNTGNTNACTTGGNAAGNACNCGNTTTTCGTNAAATCNNNTATNTCGACTNTGCNACNGCACGTCTAAGAT ANCTACTGAAGGNNCNTTNGTGATTGAAAACATAAGCAAGCCGTTCANAAAGNANTAGCACGAANNTGACGANGTACNAT ATGGANNANGCTGCCGTTAGTGANGNACTNNCCCTNNNNNGNGNACCNGCNTGTAGCGCGTTCATNNCACCCNTTCGTNN GTNCTAAGGCANCANTNANTTCNGNCTNGCGATCAGGTGGGNTCCCCACGNNCCNCCNGTATATCGTTNTATCCNACGCG GNNGNNGCNNNNCCCGAGGCNAAAAGCNCCTGTGTACAGCCTNCGNAGGCNGTGGGTGGCCCGNNCGNGACTTGTTTAAC GNCCGCCATANNNTANCAGNCNACNGAGNNCTTTCAAATCNCNGNACNNNANANAANCGTTGATGGTTTCTNNCCTTTTA GCCNTNATCACTCGAAACGNTNGCGAAATCTGTTANNGTAGTCAGTCATAGNAACANAANCAAGNANACGTGANNNNGTC GNTACTAGNGCNANAAGTNNAGNNCACGCNAAANGACGAACAGNATGGANTGCGTTANGCNCCGATANTCATACTAAANA CCACGCAGANGCAGGNCGCGANNGTGAGNCTGCAAATNATCCAAGGNCNAAACTTNGCTTCAGCCTTTCTGNNGCCTCAT CATTACNNNGNTANAANGNTNNCNTGGNTGNCGTTNTAGCNCTNNNNNANAANGNNTGNTTGNGNTNCANNACAANTTNG NTTNACCNTTTGGATGTTNACTCACNCNTATTTCCANNTNCTANCGCCCGTCNGCCTCNATGCANAANCCAAAGNCATAT CANCGANNAGTGAGACAGTCAGCACGTTAANTANCCTTCCACNANGANGGGNGGCNTNTGCATCAGATCCANTGTTCCNA CAATCCNNGTNNNCGCNCTGCGGTGACGTNACCCTCATAAAGGTCANCCNGTCNCGAACNGNGTTGTTAANTCGTGGGCC AGANAACNNTANCTNCNTAGAATGCNCNNGCCCNTGCGTTTCANTTACGCTNCTNGTATTCGACACNCANGCTANAGCNT ATTANNCCCTTTNTGTNGCANCNGANAANTNGCCANTAACATCAGTAGGGGGNATCCNGCTTTCCTNCNAGTGNGCCAAT NTTTTACNAAATCCTCGCNAACTTCGNCGTNGCGCCAGNTTTACCGCNGGANATTGTTNCNCTNAANNGGCNGGTCTAAN ACCACCNNCNTCTTCTTNTANAGNGGCCCTGTANTNNCCTNAGCTTAAAGTNNNGATAGTNNNATTNTATCCNTNANGGC CGACCTNACAAGGNNGTCTGTGCACANAATTTCAANTACCATGNANCGCCNATNCAGNCCCAATNCCGTNCGTCTCGCGN NATGTTNTACCTATCCGANTCTNANCAATATGCANCCATANCGGNGTCCGTAGACTTNCAAAGTGTTATGGTCCNGATTC NTACTCATNCCTGCNTNGTTNCAGNACGTTTGNTANCCAGNACNGGGTAGCCATCTNGTGCGATCGNACNNNTAGGTTCG CANGCTANNGNCAAANCNCNNGGNACGNGGTTCAGAGNCNAGTNANTTCNANAGTNTCAACAACAANTTAAGNGGTTGCC CCGNANACNCCANTTTGGCANANCGTGCACGGGCGGNCTNCNCGGCACCAANTAGNNATACGAANCAGNANNCCTGAACG NCAAGNNANTGCCCCAGCTNNANANCNTCCTAANGAANGAAATNGACANCTGAACNCNANGCNNTANNCNAGANACTANN CCNGCATGTCTNCGNCAANNTTCTGCGTTNNNCTANGCTGCGNGTTTGAANGGTNCNTTTGTANNGTNCATATANACCTC NCTAGTTACGATTCGCACATGCCTCCNCTGANTAATAGATAATTNNTCNCNCNTANGAGNGANGCTTCGAGGAANNACCT NTATNNNGGANTAGCAGAGGANGTCTATNAGAGACACNNGNTCAGACTCNNNNGTAAGCGATCTCNNANNGCGGCAATCN GTTNCACTAGTAGCACCGNNNGCNAGCTNAGANACNNANAAAGNANTTNATATTCATANANATATGATACTCATCNGTTA GGGNGNTTGATCTAGGNCNGCGGGTGTGANGTGTCACTACCNGTNATGGAAGCNGCGAGATCNNAAACGGGAGAGNGNCC CTGAAGCCGCATGACGGCGAGTANGTAGTGAAACTTTATCGNNCGAGGGGAAGGNNTAGTNANAANNNAAGTAGTAGACG ACTNATCTNTATNNCCANCTAGCNGNNGACTTCCACCGTNCTCATNACATAGNAATCTCNNNNTAGNCAGNTGTANGANA TTNNCGCNANTNNTAGACGAAACAGNCCTGGCGCNTNTCTATTGCANNCGTAAACAATGNGTCTCCTANNTCATTGTGGG TTGCCCNNNNCTGCAGCNNATGCTAGACATNNGCNGATNACNANCGCCNTTNGNNACNCAANAANNAAATTGGNNNTCCN CCNNACGCTCANGAGNGACAGCNATCCCTACNTTGGCCNNNTCCCTTCTCTAAGGTNCNATCTNNNCATANANNTTCTNT TCGGGNGATTTCNGNANACANNNCCAGATTTTGTTGNGCTNCGGCCTANGAAAGGNNNGCNGTCANGCAAATATGACCNC ACNNAGNTGNCGGATTACNCTGCNNNAAAAGGNAGAGNAAAGTATTGCTGTTNATCNCGGGGACCNCGNGCNCGAAGCAC ACNCGGNGGNGGGNTNTCGATGCCAAGNGACGACACATTCTCAACNNGATCANCTNTAANGAGACNNGNNNTNNCCNNGT ANGTCTCNGANACNAGTGACGCTGCNANATANAGNGTNGAANGNNAGGACTTTNNCTGACNGCNCTTGACTATNNNTNCG ACNGNANGTGNTNGNCGTNGNACGACANACAAACCANCCTTGAGNGGNTCNTAGNAGTGACCAGAGAACNGNAGGNNGTT GAGATGTAGATTCATGCTTNCTCTTTGACGAGAGAGNGNAANAGNNTAGNTTCCCAGGNCNTTNNCATGCTGNGATANNT AAGGGGCAGTACCNGTCTCCCNNANTANTCAAANCCNAGGCTGCGTTCAATATTAATTAACAGTNTCAGCNANCCNTGAC ATGTCTAGGNCNTATNNTACGTTTGNTAACNAAGNCTCNANGNCGTATAAAATATCTCATNTGTCCTGATGGACATAANT CGANCTNCTNNGGANANATTANGTGTCTACATGCTTCNGACCGNCACAGAGTGNNAGANACNAGTNAGTGNCAGCAGCNG GGATNTTATTNTCGAACGGCANNCGNTGNNGCANCTNATNAGGCANGCNTCNACNTNCAACCGTNCGGCCGCAACGGACC ACTNNGNAGCTGNAATNTTCCNNANACAGNNTTANNTCANGGAGNATCNGNTAGANCACGTTNCATNNNATGGCNCCCNA CTGNATCGTCGGGAGCAGGTNTTGNATTGTNCCCTTNCNCNNCANTGAGATNAACCNGCGGTGCCAGCNGCTANTTTCCG NCNAGANAANANTTNAGTGAATCNTGCNCTATGTCNNGTGACGATTNCTATGCTCATCNACGNTAATCANATGGGGCNTG GATGTATNNCTNNCNGNTCGNANAGTTGNGACCCCCGTAANGGCCNCGNATCCCANCCCANCCNAGTGATGAATTTCCNG GGGGNGCTNTTGACNNTGATTACACTATGTCTNANGCGNATCTCAATANATAATANNTNAGGAGCTGCNTNTTANGCGTN GTTTAGTTACNTNATTNCTCGAGNCTNTCGNGCNTANGGNAAGGCAATNCTANTTCANGGGNNTTNCACTANNNTCGCGG NGNNNGCGAGAATGTAGNCGCCTGNNNGCANTGCCTACGNGTNGNNCTGATCNAGGGNGTACGCGANTNCGATCNNCCGC ACNCTGTTATAACCACACNTCANTTNTNANNTCGTTTGGTANATGANTGCCAAGNNGTGCNGANATGTACACTATGTTAG AATANTCGATTNGNGGCTTCANNNAANTNATNTGTNCCACANCGTGACTGGNTNCCGCNNNTNCANGAAAAATGCGCCTC GGGCGAGGTNGGACTTCTANNTNAATTGACCNGGCCTGAACACTNNNCGACGTACTTCACGTTTATACGNGGNCAGNTGN ANTTGGGATACGTATTAANGTGCCGGGGTTNAAGCANNNNTTNCGCTTANTTCAAACNNGCTCCTAGNACTAACAANTAN CCAANANNTANAANTGGGCAANATNACCTNCACTAGATTTGAGGTGAAGNAGCTTTNTGNTTCNNATAGANTGCAGGNNG CCTNTAATTTNNCTTAACATNGTNAGCTATTCANNTCANNGNGTCGNAATTANCGACACNGTNCAACTNCNATTTCGGAN TGACCCCCTGTANCAACANGTTAANCTNGTAANANGTGCCACGTGAGTGTAGNCAGGNNNAATCNGTCNNGGCTTGGNAT NNTGNNCNGNNNNNANCATCGTNGGTAAGACAAACTNANAGTGATTCCATANTNTNTNAGNTATTAANAGTNTATTGCGC GCGCCGCGTCTTCGNCNCAGACNGTNACTTNGTAAAGACTGGTCATNGGNNTCNCCGTACCNTCCTCTNTNNNAGAGCAN ANGGCNCTGTGATCTTNNNGCAACGGCTATCGANTAATGNNATNACTTGNNACTANNGGNCCGANACCCCCTTNGAGTGG CGTCTNCTTGAGTGGCAANTACNTATNGCTCCGATNNTGNANATNANTNCANTNTCTTNCCTNTGCNAATTNNTCNNTTA ATCGGTCCGACCCGATAGCTNGAGNAACGTGTNCGTNGTGAGGCATTTGTAGNNAANNNAANGGTCATCNCCAGTCATTT GNTCNNNCAGAATGCCGTTTNTAGCGTNGTTCGCATANACTNNNGTGCNCTGCNACTNCNNAGGTNGNAACTCCCNCNGA GCTNCGCTCGTNCTCNAGNGGNGANGCAGCAANTTTNNATNANANACGNANNCNGCATAAATTATGTNTNTACGGCCNTG NCTNAGNNNCNCAGAAATGNGANATGTNTNNCTGNNCTNCNANNGAAGNGGGTGATGNNGCGTGANGCAATACAANCNTG TCTGNACATNTTCTTACCCCTGNGGNCACACGTACTTTNNGCNATAACCCATGTCGNAGNCTAACTAGNNTTGTATCCTC NAGTTGCTAACCGATGNCGCTANCGGCAAAAGAANATGTGCCTGTTGGTCANANGANGCGGCAGTTAACTCTCTGATCCT TNCCNNGACGCTGACNNAGGTANGANTNATNNAGGTCCACCACCTGTNACAACCNNTGCTCCNCCCTNAGGTACGAGCTT ATGGGTTTCCCTGTTCACTGGAGNGANTCANGGTGTTCNTGATANTGNNANGGAAGTCNGGNGGACCNNTTTGAGNGNGA NTNGCTCTGTAGANCANANCCTACTGGCANTCTNGGAAGTACGTGTGAGGTNACTAAGAGGATNCCNNNTAANTCCNACA TCGCGTTNAACAGTTACGCGGGNGACGTCTCACCNNTATGGCANTCNNNATGTNGACNNGNGCGNGTAGCAANCTCCGAT NNANGAAGGNTCGGCGGTCCAGACTNCCNGCTGTCTTNNNTGCGCTNNCCCACNGCTNCGTACGNGGGNAAGGNGTCTAC NAAANCGACNTAGTGANTCGGNACGCTGATCTTATGTTGTCAACANATGTATNNCNGCNCATGCAGNTCAAANATNNGAC ANNAGNGTGACGNTNTCNNCNGCTNTANNCTGTACCGNNCAGCNNTTNCNGACNCCGTNTGGNATNAACTCTTAANGNGG AAAGNAGNNATNTCNCTTAANCTTATCCNTAGCCCGAATTAGACNNTCTNCTGTCCGNTANCGCNTAGACNGACNNNNAT CNAANNAANCNCTTCAACANCNGGCNTGGGTNCTGGTTGNACTCTANCNNGCAGCNTATGGNNTNNANTGGNCGNCACTA TATAAANANCGNAAATGGGACTTATGNAANTNNCATAACNACNANANTNNACTCNNAAGACTCNCCCCTTCATATNATNA ANCNTCCTGNGGNACACACCCNTCTNCATCTTAAATCNNNCGNCCNCCATCAGCGAGCCATAATGTCTGCGNGTCTNTNC ACAGCAANATTTTANCNCNANAAGCTTNNCNGNGCNGTNNCGAGAGTTTGACAAATCTCGCGAANAGTATNAGGCATNNA TCCTGTAGNAANNGGACGANAATNTGTATTAAANNANAGGGTGGTGNTGNNCGCACCNTCAGTTCTCNGNACACGCGTAT ACAGTTTACANNNTANACTGTNGGTACTNCTANNTATTTTCGTGNAANACACNGCTTAANGNGCNANAGNCGCGCTNGGT CTCCCNCGNACGNNNNNANNTNACNGACTCGCNTATGNGANTACCTGTCTTGGTTTNCAGNAGGGGTNCANNTGNGGAGC CATCGGCANANNNNGGTNTTTGGGTNTCNNGNCGAANATACTCCNTCATNGNTACGTGGTANAANCCNTGCCNNCGGGAN NCGTGCCTCGNAGAGGTNTGCGGTGGTNGCGTAANGGNNNTNCCCNCGAAANAGCATTGGATNAAAGAGCCGNCTNTGGA TGCTGTANCANTTCCCGTAATATNCANTTTTNTCTTGGTNTANGAAANGATCTNNACTTNGGNNTNTCANGCTGNATCCG CNGTCGACCATTGANCCNNCGNCTNTGCNACCCNNCCCNNTNNANAGCGNGNTCTGGCTGNCTTTTCNNATNAGCGACTG CANNANGACCGNCACAGGNGATGTCTGNCNACTCTGCCATCGCCCGTCACTGNGGACNAAGTNAANTCNCANTATACTCT CGCTGGAGTCTGANNCTGGTANAATATGCGGACTTNGGAAGTGGCGACNTTTNACGACCNGTGGNCCGNTNNNGAGATCC TGTAAATNCNCATCTATCGNCGATNAAGCANANTCNGGTACGATANTNTCACNCNATGGGCTCATATTNAGCCCGTTNGT NAGGANACTGNCNCAACAAAAAGNNATTCGNCNATTAAGNGNNTTCGAGGCTGCCNCTAGTNCAACCGGGGAAGANNTCA TTTCNANANNACTNGTTGGTGGCNANGCAGAGACTGNTCANNANCGTANNGAACNNCGGGGGCGACCCCAGNGTCANNAN CTTTGTGACNTTGNTCCCNNAGTGAGNGNTTNCCCGCCTNCNNAACNNGNNCAGTNTTCNCCCTNGACGAGTANTATGTN NTGNNANTANACCNNTAANGAGNACNATAATCNCTCCNNGGGAGNGNCTTTANGCAATTCCANNGCATNGGNTNCTTCTT ATCAGACTCCGCAGANTTCCCGTCNNACGAATAATNTTANGAGTNCCGAGCTCCGNTGCCAAACGGANNNGACANGCAAA CACCNCNGCGCTTTTNNAGCTNAGGCTAGGTTGCTCNCTGNACAGAGAAAGGNTTGNACTATGNGCTNCNACCNTTTNTT GCACGGCANANGCGTACNAGNGTCAATCANANAATCCGTGANCCGNNTGAGGANGAGTAANTAATNTNACGGCNCATTNN AGGNGTNCCNANCNCTCCCATCNTCTGCCAGCTCTTCNCGNACCANGTCGCNTCTNTGANAGGCNGTANNNCTTTCNCTT TATTCCNTCGNTAGGGCATGACNGGCATAATATCCACNAGGNNNNNNNTGGATGGTTNACAGACGCTCGGNCATTNGAGT GACGGATGGTCGTCTNTCTCCAGCCAGCCTATATAATNTTACNGNAGANTGGTAATNANAGATNNGANNATAGNTGGAGN NCAACCCANATCCNCATAANTATGNTNNNNTTACGTGNGGCACNGANTTCATTTGTTTGGACTTGANTCNATNAGGGCCC CGNNTGCGCAACCAGCGNNNCCGCGTGNTNNCCNGCNAGNNCCTANNTATAACCCTTCTGNATTGACGAATAGNGTNTAC ATANAATGCGTTNGTANTCNCATCNGGAGCCATCCTTCGGCANANACNAAATNANCGCCATNTNGNTNGCTTGNANTTTT AANACGCGNACAGGNNTNCGAANGCCGAGNCNNNNACGANNANAAACAGGCCANGGTAANCAAATAGGACNATCTCNGNT CNTGNNNGATTAGTAGNACTTTGTNCATNGANNTNNTTTGGCTNNTNCTNGNCTGNNAATNGNGGNACCNTCTNCNGACA AAANGGAACTTACGCNAGGCCTNGNAATANAANNTNGATAGCATTAACNGNNCGATANGGAAAGGTNNTATGANAAGATA AGTAANNNGCTCNGGNNCTNGCAACGNAGAGGGGGTGTGGAANNAACCTGGNCNGNNGANGCTCACTACNACAACNTACG CATTGGAGNNATTCAATNGANNNATTNCCCACANGCCTNTATANANNGTGACCTTACCCCCTTNTNGGCAGAAACNNGNT TNNGNCGGTGNCTCACAGAAGNTCCTTACNGCCNGANNNNCGCTGTCCGTGNGGCNTAAGCNTTCTTGTNATATTAGTTG NCCNGNAGTGTTTTCNTANGNGACTTAGGNNCNACGNCTNCAANACNCCTGTGAGGCNAATGTGATTNCTCGGTACNCNT TATANCGNGTNCACCCATGTTATCACNGTCTTGCCAACCCTTCTAANAATATATANNCNTATTNNNNCAGGCGAACANCN TNGCGAGNNANATATCNAGGAGNATGNAACTAGNCAGTGTACTTGTCTTTCTACTAATAGNNCGTAAAACGCNNCTCNNC CNGTATCNTACACGNCGCNTTATTAGANCANNNNNNTTNGTTCCAGAATGTTGCNACATAATGTTTGANGNGTGGCTGGT GNATTTCTTAGTAGTANGCCACTTGANNCTGTACNTNGCNATGCANGTNCTCTCNNATCGGAGNATCATCNAACGCTGGA CNNGGCTTCAGGGTTTGTACNTGCATGTCCGNCTCGTGNATGCGCCACCAATGCACTAAAGAAGNTGTAGGGGNCNCTAA TCCATGCTCTGTCGGGTTGNNAGTCGNCCCCAANNCNGTCCNGNGGGTNANGTTNCNTNTCCNNGATGGCTCTATCGGNA CCACGAGGTCTACCGATACTTTGNGNGCTNNTGGGAGCCAGGATTACNCNGAATAAGCGTTNGTAAGCTATCATATAATG NGCNTAANNNTACAGGTACGTACAACANTGGGTCCCGTATGTCATCNTATGGCTAAGTCTCAATCTCCGCCAGTAGACGC NNNTCGGCCNGNGNNCCNCNTNACTGCCNCGGCTCNATTNNCGNNGNTNTAAACTNTNCTNNACGCTGTNAGCCTGNGAG AAANGATCNCACTTNCCCTGCCAGATNTAACNTGCNNTATANCNNCCNNNCAATNACTNAAGTANCNCCNTNCTCTNAAT ANGGGTAATGTTGNNAGNTCACCANGGGCNANGCCCGTCNTTGTCGAACNNCANNTACTNANTGACCACCCNCAGGAGCG ACCGNAACNNTGGATNAGGTGGATTAATCCNCTGTCANNCAGNAANCCGGTCGATTNTAGATNGCTACACCCNATTATNT TNTAGCANNTANNCCACGACNGCTCGTTTCNCNCNNANTTTAAGCTNCTAGAGAGTACANTNGAGTTNCGAGCCGAGGTT GNCANTGNGGGNCCCAATGTNTCNANNNNTNNGNGNNNNATCGGGANTCGATTANAAACTGNTCGCTATNTTCTANNNTT AGATNGNGCACAGANAACNCGNTNNATTNGNCTNNCCCGNGTCCAAGTANCNGNCGGCGCAAGNCGACATGNCTAAAGGG TNCGTGCGCCCCGAGNCNNNGANATNTNCACCCNACNGNAGTCCGCGTCGTCNNTACNGACCTCTNGCCNTAAACGGATA TNGGACTTGNNCNTNNGCCGNCGNGCNCGCATNAAGAGGANTAGNCTANANGCANTNCTNTCNCAAGNNGTTAGGTNANC TCANGATACNGNATCCTGACGTNNNNTCCCNNTNGNCATTNTCGTTAAATNCGTCGGGAGATCTAGAGAACCAGCNANTN CTGTANTGTGCNCANGTTACTGTTTNCNGNCNNCTNAACNCNCAGTTTTNNTNNTCTNNGNGAGGTTAAGTGCGTGTNTG GACCNANCTTCTTANGNNGCCGNCCNCATTANTGNTNTAATATAANNCAACTGCTCGTNGATTNGTNGANTANGNTAGTT TNNAAGCCANATTAAGTGTGAGTCTCCGATCTNCTATAANCAAATATTGTCTTGNACGANANTTNGAGTTAANNTNGTTT NAANGGAANAAANACGNGANGAANNAACTANNGCGGNATNTAGGTGACGTCNTGCNNTTTNNAGNCTCANGTCANNGCCA GTTCNTNCTCAGANGCGNCTGNNGGCGNGAGNCTNTNGAATCANGGTANGGTCTNNNAGATCGGCCTTNNCTTTATAANN ANAATANAANGNNGAANCCGTACCGAGNNAGCTGTGANCTNGTGCNNCNNCNTCNCTNAGACCCATTGATAGTGACAAGC ANTGAACAANGTAGCNCANTCNGTCGTCANACNNAGTAGAGAAAAGNGTCGGNAACTNNGCNCTCACANCAAATNNCCGN NTNNGNCTNATCTCCCAGAACAGCNATCNAGCNTNATNTNTAATNGCGANCAATNNANAGTNTAGTGCGTCCGNANCCTN TCGANNCTATACTCNCCAGATGGTANGNNGANTGTGATCGCTGTNGGATACNGGCANATTCGTNCAGNTTNGCANCGTAG GTCTCNCTGGGATTCTATNNANGTNACNNTGTAGNNTNNNTGGTNCTATGGTCACNGGGNTATTGAAGNACATGGGCCGA AGACNGTGTGNNNAGTCCNGANACANGCTAGCACCTCAGTAAGNGGTNNNNGGGCNGATTNAGGNGACNATCNANNNNGN CGCCNNTCNAGNNNGNTCNANNANGNCCNCNANTNNGNTAACAACGNGCGATTAAGGGACGCGCNTNNGTATAGTTTCGA TTNGTATCNCATGNNGAGTNGCGGCNCNCTTNGCTGAGGAGGATTGNCGCAGATGCGGGCNTGNGCCCANGACACNNGCA TTAGAANTTNCGGGGGGCAAGGCTGNNCGCATTTNCTAAGACANCACGNATGCATTNTTGGNNNCAANTTCCTGCNTATA CGTANNCNTNTGNNTATGCGATCCTATGGGATCGGACACNCTGGNGANTNNNTCGATGGANGNGCGATTGACGTGATCGG TAGNANNCTCAGGGNGNCACACTNCNTTNGNNANTTTTCNGGNNCGTCTAACGCNCTTNGTNTCCAAAACGTAAGGTCTT ATTNATCNCGCTCNCGNACGTTTCTCCNATCNGCAACGTAANGNGGTTTCACNGATNGNTCCACNTATGNTTGCCNAACN CANATTGGTANGCGCNCAAGNATGAGTGNGCNGCACTAGGAANANAGNTGGNACNTNANTNGCAAATCNTTANTNGGAAC GCGGCCCCGCNAGNNCACCCCTCNNNCGTCATTTNCNCGCTNNTNTCTNTGANGCGTAACAANTCANGNNGAGCCANTAG TGANGTAGAGCACACCCNAGTNNGCNNCCGCAGTNNNGTCAAATATGGCTCCTGTGGGTNTANAATTTGTCTGTNATCNN NGGTCANTCTCNACGTGCAATAAAAGTACNTTGGCTTCCAAACTACATGNTCTACATAGTCAAGTCTTTCCGTNTANNAG GCCTAATNCCATNTCNCTAAGGNTGGCTATATTAAAGATNATATTTCTCGANATCNNCCGANTTGANAACCNGANACNNN ATCANTGAATNTATCGTNNGCGGCTCNNGTATCTAAGTGGNTGNNGTGCCNTTTCNGTGCGAGNACACACATTNNTCNGG NGAATANTCCNGCANTCCACNCNNCAACTNGGNGNGAGAACNANTCCNTNGNGTGNNACNGNANTTAGNACNGTNANAGA TNNGNGTCGGANANGAAGGTGCGTACGNGGGNANGGCCNCGGTCNGACATCTANTCNNNNGNAANNAAGCACGAGTCATA GGTANTANCGNCCTTGGCTGTNGATNGATNCTGGATCCTGANCACCACACCGTNCGNNTAGAAGTCAATGATCTCACNGA ACNCCNGCNCNGNCATTTNCCTGTATAACATNTNTNNCACGCNCTTCCGACGATCTNCNGNNANGGGNNACTCTGANGTT CNTTGGANGTGCCNNCCTGANCTTCNNTNGNGGATGAAACAGGCGANAANCNTGNACGNAAANTGTGNGNGGCTGCCNCC NTTANGGTAGGACGTTTNGGNCATACGTCTGAATGGATAACNNTAGTCCGAGGACCTGGNTANNANTNANNGTCCCCGAG NCGANTAACAANCTAGGCCGNCNCCTCGCTTCTATNGAAANTCTACGCCCANNGCGGACTGTCAAANCTTNNNNNAAGGN TAATNTCNATCTNAGGTGTCTANNGTGGACATNGGANGTGTGTGACCTCAGNACTTTANAGCNANCGNATCACNGNCNTN ANTNNTGGCCGGTTGGTATNACATTNCCGNCNCNTTTGTAANACTNTANGGCCAGTTNNGCACGNGGGGGGNANACAGNG CCAATAANNGTCNNCCGTCTTATNGCGNGACTACACTTTAGNANAAGNNCTAGGTACANTCTTCTCACTNCNTANGCTTT GTANTNCATTTAGACCCANTANCGTNGTCNANTGNCNNNTCGANAGNANCNCTAACANTNNNGGTGTCCTCTCTTNNAAA GTNAATGCGCAGTATNAATCGCTTAAGNACCCCCGNTGATGTNNCAAGGATTCANGGTCTNTTAGAGNTGATGGATCCGT TNGTAGATTGTNAGNCGTGTACTGGNTATAAAAACTCCAACAANNCTTCCANCNNTNCTTNTNTTACTCGNNANCTTAGC TANCNTTNGTGAGTAAANGNAGGCTCTNATTNCTNTAATCACACGTCCGGCNTGTTNNCNNACNGNANNCTNTNCNNTCA TCCACCNNTACCGCNAAGCAGNGTGGGANAAGNCTNCGAGANNCTCAAGCANNGNATCTCANGTCNCTNNCNNGGGGGCC ATNTGTNGACGAGCTGGTNNAGTCCCNGCTGTATATTNATGNTCCGTATCAGGNNNANCTNGTGTNACGCGGNGGNCGNA NNCAGTCNNCANGGATCTNNGATGATGCTANANAGNAGTNTTNGNGNTCACGTACTNCGNCACGTTAGTTNNTCNAGACA NTNCNAACTNCAGTCAGGAATNCNTGNGANCCCNNTCGATTAGTATATAGGTCTTCGCGNCTGTGNGTCNTNNCCAACNG TGNANACTTCTGNCGNCNTTTTTAATACCCTNTNGGNNCGATGGTGAAATTCNGCNCCGNGNNTCCCNAGACTCAAANCG TGGAATNATTNCCNTGGNGCCTCTTGTGTCAGNTANCNGATCCGTANCGCANTTGNNATNNNCNCTGGGNCTNNNANNCT TGNANNNCCNGTCNCGAGGGACCGAAGCTCTAGGCNTCGAGNNCANNTGCNCTCATCTANNGANNNNCNAGGNAAATGCT TNCGANGACAGCCNTNCTCAGNCCCCTNATCTACNCNGTGGANATNANAGNNGTTACNTATTNANCNNGANGNCNGNCCG ACCGATNCACTTTANCCANNCAGCAGCGCTCNGANCNTTNCTNTTGAAACGNAGTCTNNATATGTGTNTNANCAANAATG TTTAATGGNTCNANCCANTTGACTGTCCCNCNNNCNNTANATNCGNTTTNATNGTNACTGNGAAAAANTTTANACATTGA GTNCGTTNAATNNAATCGTNTGCTNTGAGCANNNTGCNANTNACCCACGTNATNNNNCNNGNCNAATTCGNAAGNGTANC ATNCCCNNGACNTACAANTGTTNANTAAATGCNGCCCATNTCGGTCAGACGNATGTTCNACCANNTNGANNAAGAGNANC CGTGCNCCTCGAGTACCNCCCTANGTGCATAANATTNNTCAAGGCTGTTGNACTAGCATNTATATCNAANACANTCCAGG NCNTNTGNTGNTGTAGNAACCTCACTCAANCATCNGGGNNGGGNATNCTNCTNCCCNTTNTGNTNCCGTTCGNGNTCCTN AGNGGANNCGNNNAGATCTGAACTGACNGACAGTCGCNNGACACNACAATNNTNTNACCAGNGNGCANGTACCTCAGCNA TNNTTNGAGGTTGTNTCANNTAACGGCNTAGGCGTTGNAGTTGCNNTGCGCGNTGNCGCAGTNTTACTNTANTNGANGCC CTTCNCNCGCGNTCGTAACGTTCATATNATGTGATATGTNCAAGNAGACGNTTNGTCTNANCCNCCGNTTCGNCNTTACG CATTACGCAATTTANGNTAGCNCNAGTTACGTNTAAANCANAGATGNATTAGNGCTNCCAAACTTCCNNGGACTGGGCGT CACGNNTTNCCCNCCTATCGGCTGNTGCGAGTCANNATNCGANCGCGNCGNTTATGANGAGAGNTAGCTANTAANCCGNT CNGGTCCNANCNCANCAGTCNANGATTCTGCTTCTTTNGNAGCAGTTAATAGGTANTTNGACNTNGNGTNNCCTTNNTAC NNTCCCATAANAAACGNANNCGATAGTGGGNGAAGNANCNANNGGCAANCGNCANCTTATNCNGNNTNNGNNCGCCTCAC TANGAGAATATANNNGGATNTCNGCCNTGGGGATCAGATTNAATNACTAAATTGATTCTNGNGNAAAAAGGAANAANAGT CGNANACTNANNCNTNNTGTGTNTGATTNNGGTNANCCAACTTGGCGGNNTNGAGAGGTANAACCANCTNNGAAGGTGGN CANGNTCGCNCCNANTNANGATANNNTACNGTTAAGCATACCTCCCGCTGGCTCTTCGCAACNNNTTCGCNNAAGNCNTT NACGTTGTGCANTTACGGANNTACTGTGNCCCGNTCTNAGNCTNCANCTNNTTAGGNNNCCTGCNGAACGCGGATNNACN CAGTNTTCGCCATCGNGNCAATCCACNTGNANACATNCTAAGAGCCGTNNCACCCTGAGCTNCGCNANTAACAAGCGGCC GGCACTTNGCGGGTATCNAAGTTTAANCCTGAATGACAAATNACGTGCTNTTTCNCNNNNCCAGCCAGATGAGGTCTATN ACAGTGNCTAGNNGTTNACGTCGGCNGGCNCTANGCATTNCGTNTTCAANGTCCTTACNTCCAGTNTACCTNCNGCCTNA NCTGTAGATNAACTGANNAAGGTACCACCGANCGGGNNTNAGCGCGNCNCGGCCGAGCNNCANTTAACTGGGNATCNNNA CCGCAATGCNTGTNCGAGGATGATGTGTGTCANTCNTNACNTTGAACCAANNAAGCNANNATCCNANNCNAGNTTCGCCG GCAGGAAAGCCNCNATTNCTNAGNAGNTGCGGTANCTAGGANTCGGNTGANACCGCTGGNGTNGGGTANCNGACGTCATN GTCCNCATCAANANACCATNCGCCNNNCGGGTACACAATNCGACNGGNCANGTCGTACTCCTGCAAGGNATCCGGGTNCT TGCGCCCNTGNTCGTTCNCGNNCNCGTCNCNNNGANTCNNGCNCTCGNCACNACGGCACTGANCGCANCCTGTAACTCNG GGANGTAATNCCCNAANTGCAGACTGNCTNAACTCTGNCGTGTCCGTAGNACANNANGAGNTGGCACCGGGTNNAAAANA NTNGCCCCNGTGGAANCNAACGNGGCTATGCAGGNGAGNGATCGNGNCTTACGNTACGTGNAGGNCNGCGTTAANTCNNA CNTTATCCNGCAGCATNTCCGTNTACACCCACCCTATGGACAACNCTCTCCNANTGTACNAACTGAGNGGAAAGANTCGG GACCGACTTCATTNAANCNCNATCCCACGGTCNGATNCTGTAANTNCTNCGTCGGTACGACANNGNCAGGCNGGTACTCG AAGGCACCNGGCCANGTAGNCCNANTCNCTCNNAGNAGACNTGNNTANNNTGNNCCAGAANNGNACCNGTNCNNTTCAGT NTNCNCAAAATCCANGAGGGTTTAACGNCCAGTCGCGATTTCTGGGNACCCNNCCATAATANNAGAGNNNGTCNGGATAN GGACNANNNCGAGCTGGCCNGTACAACCTTGCCGCAGNTGTNNTTTNATTGAGTGNANATGCGACATTCAGGAGANCTAC NGNCGTGNNCTTAGGAANNCACCCAGTNTNTCTNTAACGNNGTNNNCTCGAANCGATAATGTGAGTTNGCGACCNACTGG ACGTTNGCCNGATTACCNCTNNNGGGCACNCGTGANCGGCNNAGNGTCNGAGCGACTAGNGCGCTATGGATAACNGCTCN ANNGACACGACGTNTANCATTACNTNAGAGGCCGGNNTNGNTCNNNACTCGTNGTGNCTANNCNTNGGNGGCGAAGGNAA TCCNAATTNTACTGCNANATCCNNGTGAGGCNCAGACAAGAGTATTTTGAACCGNANNAAAANNCNTATGGTACNNTCCT GTACTAACACCGTGGNCCCNTTCNCCNGGTAACACANAAAATCGAGANTGAGGAGGGTTNGATGNGNNCNATGCGNNCNT CCCTGGGGAGAGGNANAAANTNACTNTACATGGTGTCCCAGATTGANNAAGGNGNGNANGNTNATTNNTNACCTGGTGCA ACCCGTGTTNGTNCGCGCNGNGNCTTGNCNNGTNNNTACNNCANTATNNANANTGGTAGTCCAAAGTCGATCNTGGTCAT CNAAAAACGNACTCANNGCTCGGCCCNTCNNACNTTAANATCNAGCAANNAAGACGTNAGTNCNNCTCAGCTNCAGATTN TGGTCTNACCGNAAGCCATGGGGACANGTGGNGNTCANGCAANTAATGNCTTACTCACTAGANTNNCNCNGNTANCCGTC TTGNTTNACCTGNGTNTGTATNTCNGAAANGCACGTCGNTNTCGTCCTTGNTNACTTNNGTANCGAGGANGCNCTNCCGC ATCTTTNGAACGGCGCCGCNTAGNNNGNTNTCGNTGGTNTCCANTCTCTTTTCTCCCTNAAAGGANACTNGNNNGTTAGN NTCNAAAACTGAGTTGTGTTGACCNNGGCACANTAAATGCTNCCCTCCCANAAGGACGGGNNTATAATANATTTNANTAN NANNCATCCGCACACAAGCNGCTGGATCGAAAGTGCTNNTGNANGAGAGTACNGCACGCNTNTGNAAACGCNGAGTNAGC ACGGNGNTATATGNCNNTGCGACCTGGACAATAGANNATTTNCCNTCAGCNNTNCANACNCTGTACAGANNTATGNACGC TNGTGCCGNTGTTGCACTNNTNACTNCCCGGCAGAACNNGGTNGTAATNNNCNGTCGCTACANTATCTGNATACCATGTN AAGCAGCCTNTTNACCCAANGAATANTGNTNGGNGCCTGNCCCTGGCANGTNNNCNTGNACTATCTGAGAGNCGNTNCCA NGGCCCATTNTCTAGGTNANGTCGGTGTAGCAACGCANACCGNCCNGTCNCCCCNCTTTACTANGATCTACNAGTGTGNG ANNAGTNGACTGTTNAGATGTCCCTTTCTTCNGANNTNCNNTCNNNATNANGGGTTCCGGATTCGGNTNGTACTGTGTAT TTTTCGCGCGTACNCTTAGCCGGCAATTAANAGCAGAGNCATNGTCGTTGTTTCCNNGCNATNCGAANAGGCTGCTANNG GNGGTCANTAGTGTCGGTGACCTACNTGGAGTCAACNCGGGCCGNNNNTTCACAGATATCNTGGCCNGATACNTGGTTNN ACGCCCATTTATACCNGATGTNNAATCTNCACNGNTANCNTGATNCTGGGACCNANACGTNCAAAGGACATNTAANNNAN AGGACTATNACGCNCGATATNTANCTCTNCTTGTACNCTTANNACTATCGTGCACANCTCCTGTCGNCATGNTGAAGGTN NCNGTCCTNGCTCCCCCACNACGGANTNGCTNNAANTGTGNANAAAGTAGTGGGNGTGGCCCAGCAAATCNGAGCCATTT GGNTCGAGTCTNGCAGTAGCCGTTNCGTNACTAATCCTNACCCCGGTCTGNAGTACCNNGNTGNNCTGTAGTNNGGGGNC AATAACAGANNCGGATCGAGTTNAGNNCCTNACCTNAATATGAAAAAAACCCTACGGACAGGGNTNAAGTATNCGTTNCC GCTNGTGCAGNTATTGCACGATANCTGGNCNTGTCATTCNNNCGAGTTCCNGAGTTCNGCCGTGCGTGATTTTGACANNG CATATGACCANCGAGNGGCGANGAATTAGCCACTTNCNCGNNACATTANGTTNTCCCANTACGGTNANNTCGAGTTGCNG NGCTTCTATAAATCGGCAAGTTTAANTGAAGCGNGGGNAAGGAGNACCTTAGCGCCGTNNCCNGTCNANANGTNGNNGTN ANAAGAAACAGCGCTAACANGAAAANTGTNTTGTNANACCTTTGGCCGANTNGCACNCTNCCCNACAGTNATCTCCATAG NGNTTAGTTCTNNNGNCGNCANTAAACCNNCATACNAAAAAGTNATGCTAGGNTGGCGNANNACCNNNGAGTNATNAATT CATTAANGNNNGATGTNCCCNNTCTANCNACTGCNAANGGCCCATCGCNCTAGANCNTTANGNCANGAGNTANCCAANNA ATNTAANGATGACGCNTTTGCCNGANNCCNCCGCGTTTNANNTTCNGNACGGGCNGNNAATCTGCTTGAGANTTTCANNA CACNNGCAAAGNNCNTGAGAGCCNNGTCTCCTNAACGNAGNTANCACCCGATNAAGGCGCGNTNNANNNGTGACACNCGC ATTCGACNNCGGACATGGNAGNCTGCNGNCATCNNCTTCTTANANATTCGCTGTAANGCTCNTNCGACGTGGGTGGCANC CTCGTGTNATAGNNCGGTTAGTTCTNNCCNNCAGGNCNCAATNAGTAGCANTCGNNCCCTAGCNATAGNCACNGCNCTCN ACCCCGCGTCCANCTNACGAGNCANNAACCATTCCATTGANNGACACACATGNTAATTTCATGACATAATCCNGNNTGCN TGNNCATACTCNTTGTNGCCNNGAAGCGTTGTANGTNAAGNTGNGGCAAACAANNCNCAGNNTAACAGANTCCNTGGTAN NCNANCTCGNTNAGAGGCAATAGNTGAGGGTCNAGCATCGTNNTCTAATCNCNATTGGNNTNCANTGTNAGCACTATANA AGCGNGAATCATNNCGNGANGTGACAAACGCGCCCGTCCANNATTCGNCTNGTCGNGCAATNGAAACCGTCNNNCGTNNN CCNGCGCAGCCTGNACATGAGANNNACTNANGGCCTGGGACCACTNTGTGGGCCTCNGTNTNNNNNCCTANTTTGTGAAG TTNTGNNNGTGGGTTNNTNNTATNACNNGCCTTTNAACNTTATTTCANNAGTCTAGACNCCCGCGNGCNNTNTTNAATNA NGTNNTNCACTACTCCTGAGCCGACNNNANGNNTATTNAGATTNTNAGNGAANTACNGTGCANACCGAGCAGATNNNCGG ANNGGANCGNNTTCTGNNGCGGNCGTAGACNNCAACNGAANAAANNTCAANCTNTTTNNNTTNCACCACTTTTCGACCCA GTCNAAAACGTTCAAAANNGGGACAANAACANACTTCNNCTCTNACGCNAGGCTATNGNNNTTNGNGNTNNAATNNNNCG AGTNCNTNNNCCGCCGATTNANAATNTNNGTANNANACAACTNNTGACGACNNNTATCGANNNANATGTANCACTTGACA TAGCTCACACANATGAGCCCNCAGGNGGNTANGCNNGGTCGGGCTGCGTNCCATTNAATGCATATGNCAGTGGCATGGGC GNANACTNGCNNGCTNGGANCATAGAGTCTTATACACTTAAAGTCNCCNGANATANTNAAGGGGATCNACNNTGAACACG CAACCTNNACNCACTGCGNATGCCNNTACNNAATGGGTNCNTCCANATTAANGNCANCNNNNAGCTAGCCGTGGNAAAAG GACAANTCTTTCNCCTNNGCCCNTGGNNTCGTNGAGGGNAAGGNCTATCTTGANNTATTNCGGTNTCTNACGACANGTNN GNNNGNAGCCGAGATATGGCCGTNGNCTGTGAGANTACNCNCGNNNAGTCGGNTGNGCACACGANNATCCNCTNCNAACC AGACATAGCCCTANCCTTTGANGGGTNGCCATCCTCAGAATCTTCACANGCCCGNTNGANTTNNCACCTCGGCGCGTNNC TGTTCTGCGGTATTNCTGTGNATGTACTCCCNTATNACNTGCGNACCNGTCTGCATCNTCAGCCAANNAAATNNGACANT GGTTGCCTCGTCTGATTNGTNGGTANGTNTATGGTNTANTCCAGAGGGTTNNCATCGANNNNCTCACNGTTCTTTTNCAN NTCTTACNGCGGTTTCTAGNCGCAGGGCCGTNCGTTATANGCTTGCATGTTCTTNTAGTATAAATCNAANTNCCGGNGAA CATCNANCAGCNTTCCGGTNNGNCTGGCGTNGCGGNGGATCNAAAANGACTNTNAGGAGNTGAAANNANAGGTACNGCCN NCTGNACNATAGCAACGTTAGTCCAGTANATGCTACACNTANGTGANANNCAAGNTCCGNGGNACCNCCCCTTCTCTANC CACNNTNAATGTAANCGCCCCATNGCNAGTNTNNAANNGNNGTTGCAACAACGGACAAATTTANCCGGGNNCGAGCTGGA AGNTNCGGNATGTCNNGNGNTGANAGTTNGTCCCNNTACCCGGCTTGGGNATCTTNTNNGACATGNNCTATTAGTAGNGT ATNATGGGAGTNCATNGCNCTACNANNTCGNTACCTCCCNGNGNCACANCANCCNGNNATNCGAGNATNTNNGTNCTNAG GANTCNCTCANTCGNANTGTAGNCGCCNNGTNANNAAGNNCNGAGNCNCAGATNGCCAGGCANGTGAGCCTAGAAGTCAA CNAACGGTAAGNAGAGGGNTGAGATGTNACAAGGGACTCAANGTCGTNAACGATAATANNNNNTTNCTGCCGCAAGTNNA NACTTTAACNNNGCTCNGACGGTNTANTATGNNNNTGAANAGCTATNACCGCNGGACGNTATGTATAANGNCACCNTCGA GNACNTCATAGANACTATGCTNCGGTGCAGAGCTCNTTNNNCCNAGTGNTTGNTGTGTTCCCTAACNCTNNNCTAGACGT ANCNATGTNGGAACTGCGGNGTTTCNCCACGGCCGAGCNTCNNGTNAGNCTNTGANTCNTTAGANTAATCAANTAGACAG NTGTCANANAGTANNCACCCCAGACTCACATCGTCGATATCGTCCNNTAGNGGAAGCTGGGGAGTAACGCTCCNTTNTTG NTCCGNNGGGTATATCTACTGCCCACTCTAAANNTTAATTCTACNNACCANNGNTCTNACGGGTAANGGNTCCNANCTTN TTGCGCCAGCGANTNAANCAGTTGAACNGNTNANCCTGATNTNCAGNGAGGANGAAGACTCCCNGACATTNNCCNGGTGC ACTTTGCNCGAGCNATGNTCNCNTGNCTCATCNACGAACNNCTCGACGGAACAATANCAGAAGTGNTGGNTTNGCTCTNC TTCCACCCGNGNCGNNCCNANGCCTCCGAANCCACNNNTGCCCTCATGGAANTCCNCCATGTTGTATATGAGTCATAGAT GNCAGTCNACTNTGNCGTTAGNTNTGTTCCAANCGGTGGGAANCGAACNNTTNNAANGAANCATGTCGCCACGNCNATCA ANGCNGGTCCCGTGANAGAGGATAGGCTGNCNCACAACCGAGTTAAGACCAATAATNGTANGNTTCACTNTGGAGTCATG GTNANAAAGACNAAANCGCGANCNGTTTNNGGGTAAGCTACTGANTCCNCNACNCATCTANGNGGTNNANATNCGATGAC TATGNTGAGNTACTCACTGCNGCCCGGTTNNTTGNGTTNCGCCNAACTANNACGACNGTCTCCAACCTTTCCGTTNNNCN GGNTAGAANCNTNCNNNNCGNCTNGGACTCGNCGGAAANTACTCTAGNTTNNNATACTNNTTGCTATTGNAANTACATAG GGAGTAGAGGCGCNAGAGTCTACTTGGCNTNGNTAGGCTGGTNCNATNCGGGTTTCAGANGTAGGNTAATATTTAGNNCC GNAAANGCGATCTATTNANGNCNAATACCTNNTGNGNAGTTTATTGANAGTNNNACGCGNGACGAGGNAAGNNNTTCGAN ANTANTTNAAANGCCCGGCGNNTTACCATGTCTNCTTACTAAANNTTCCGNGNACGGTTCGNCCCGCCGTGNCNNNGCAG ANNTAAATNGANATNCATGTANAAAANNGTNCNANCNTTNNCTAGGCNTCAGGGTNCNNANACCATTANGAGGCCATNCA NTANNNNTGCCGTGCNGAGTACCCATCATTTACACAATGANGGNTGAGTAAGCCNAAAATGANNGANANAGGTCCANNGG CCTATANACNNCNNNTNTTGNNGTCTCATCTGACNCNNNAAGCCCACAGAGNACNNTNAACGGCAANTAAGTTGTCTGTC CGAGTTACTTCNACCATNTTGGAANTACTGNTTTNNTTAGNCGGGCNATGATGATTGTAAGTACCATAGGNGANAAATAN CTGCTTCGNACCCGAGCGAANAAATGACCCGGGGNNCCAACTTNNTCTAANTACNTATNCTTTCTNNCNTNCNATNAGNT CTCCCGNNTGNNGCAGGNTCGCGACTNTGGTNAGATCNNNAGNNANNGCTTTTCTCNTTCTNACNCTGANCGACCTCTAA NGNCAAAGNAANCCCTTTGTGACANAATCANTATCAGTTTAGATTCNCTGTNNCCTNNTTCCGATTCCGCACTNGGTGTG TGGCNTGCGGNNTNNGACGGANAGCGNCGNNCNGATCNANTGTTAATAGTATNNAATGCANTGATATCAATGNATTATAA NCANGTTCANATGANTCNAACGGATGGGCTGCCCCANCAAGNTANTNGGAGGNGAGGNAGTGCNGGCACAANCTGCTCCT CGCCNTCATNTTATCATGANNTCANGANNCCNTCCCNTTATTNGNGTGATNCTAANANNCNNANTNCCNTAAACCNCTNN AGGTNCNGAAAAAACNANANTGGGGGNAATAATCNCGGNGCCTGGTACNNNNTCNCCCTAGTCAACAATTGNNTCNAAAA NGTGNTATGTNTGCGCATCTTGNNCTNAAACATTGGTGCNTATGCTGNAGGGTNCCAGTCTNTTCNGGGGNTAGNTNNGT NCTNACAANTNCNNCCACNTNNTACTNANAATTGAGGCGNCGCCTGACATNAGGGAAAGGTCTAACATCTTTGNGCNACN ACAGACGNTGGTGTACAAGGTNAGNCATGGCCGNNTTTAGNTATCCNTGAGTTCNACCCNATCTNTNGTTNNNGACAAGC TTNTAANGNCAGNATGNCGTTGTCGTNCATCCAGNCTGATNANNNAGGCCTCCCGTCGGTGNTACNANANCGNTGGACGC GGGTATNGGNGAGGCNAANAANNNGNCTNTCGCGNANACNCCAACCTAGNTACATTNGNNTNCNNGANACACGATTACTC TTTTNNAGNCCTTTAGNCCCGTNTTCGTNTNNGCGGTNTCACTNANGNAACGGCTTCGCNACGAGCTTCCCCTACTNNCN CATGGCCCCNTANNTCGCCACNNTAANNANNTGAGNNTGACCNCCGCTNTNGTNGNATGCTGTNNCNTCNNGGAGTGNTG CNGCTNAGCAGACNTCAGNCTCCNNCAACCTTCCGNACNCCTTNGNNCCTAGCCTTTNCGGCANTGACCCNCCTTTCATA ATNNCGGTCCCCGAAAAANNANNNAANTTCTATTNCTGCNCAGANCGATTGCCTCTCNNTTNCCTAAGTNCNANNNCATC ANTNTTTNNGTNTCGAACGTGNNGTNCAAANCNTGACNTCGATTAGACGGTACGGNTCANNGTAANATCCGTTCCCGGAC NACANGNCGGGGGCNNTATTNTTAGCCGCNNCNGCCNNGTTAAAAACTANNNGNCAANACTGNNNTGGATNNTANNGNCG NNNNTNNATTGCANCACNGGGGNCCTNCGATGGNNCCTGCNGGCGTGNTAGGTANGTCGTCCCAGACTNNCCACTGCCNC ATAANGANGTAACCAGGGTTNCNTGCGNGAGAGCNGTNCCNGTNCANNGNAATGGAGNAGANATNCCGACCNATGAGTAN TATCATACTGCNTCNTCNTANTACGNCNNGATGATCTNNAANACNAGTNNGCNTGTNGNAAACTCNAAATGTCAAGTAAA CGTTTTACCCTGACCGTTCCCNGTANNTNAAGNNTGANCNNTCATTTCCTCTAAGAATACNTGNCACGGCATGCGTNTAT GANTCGNACNACCGTNTATAGGGACAGGTCCGGNATTNANGGGTNNNCTTGCNNGGAAGGNTNTTNNATTNAAGTGNGNT CCGCTTGANGGTAGCCACGCTTCNGCGNAGCTGAGGANCNCATANGCTCANNCANAGAGATGCCGCCGNGNCCNGNNCTC GACTGCATGTTCTCACCCNGNNGCNCCTCTTTTGAAACCTGAANAGANNGGCTACAAACAAATCTCCGAAGGNANNANCA ATNCGGTCANCTCTCNACANCNTGTCGNANATCTTNCTCNNTTCNACNTCTTAGTAGTGTCGNATTNNTATGCGTAGGCG CCNTGCACCGCCTANGTTATTTTTTCNNTCCTATGACCANTACAGGGTNNNAGGTNCNNACNAGTTNCGGNCCNTAGAAA CGTTTTTTCTANNATTCCTTAAATGAAACNGGGACGCTAGCTCGAAACGCTGAAGCATNGCGTCGANGCCNAGTGTCNCA GNNATGGTTACCNTTNTGNAATACNACACAGTTAANNTTATNACTTCCTTCAAAANTCTCCCCTGGGTCAGACCANNNGN NTGTNNNCTGNNACGTANTCANGNCNCACCATCGNCNTANCCANTACNAANATNTAAGAGCATCNTGNGACNTGATNTTG AGGGTNNCGCGGANAGANGNGAGNNTCGTNNANNGTTNANATTCTTACGATTCGCTCATTAGNATGAAGCATNNAATAAN GCGAANTTTAGTTNGAGTTNCATACATACCTTTNAATGCCNGNNNCTTACNNTNAGNAATATTNTNAATCTNNTAGNACT TNTNNCNGGNGNNCNNGNGTTTGCNTGTTCGCTGNTNCCTGATNTTTTGTACGTATCAANCANNATCGCAACGTCACCCT ATGGCNANGACNAGAANACCCTAGTGCTNNCCGACGNACCCAGCANGNNCGTAANCTCTTCGTATTNNNACAANTGCGGC GACNAAGCNNCNCGCCGTATCGNNNACTGTACNCCATGGATGNNCCCGGCTTTTAGCNGATCTTCGTGNCTNCGNCNCCG NTACTNATCCACTNTCCGNTTCGNGCCACAGAGAGTCTNNCTCCTGNTGCTTTANACTGCGCTGGCTAGNNAGGCCCGGN CTAGCANTANNNAGACGTAGTNCNCTCGTNGNNCACNGNTNCNATNGANNNCNNTGCTATATGTAANCCTTCNAAANTCG GTTACTTTTGTCAANCGCCTCCCNGTAGAGTCGGNGAATTCCTTGCGGAGTCACTAGTACGGCCCATCCCTNNTCGCGTC CGGCNGCNCTACNCTGNTANGAGTGGGATNCGTAANTANGAATTTCGCTCGNTANTCTAACTAGCNCGTAGGCCTNTNNA TCNGTANAANACATGTTTCTTGACAGTNTNACAACTCTNNTTATNATGCCCAAGTGCNNACGAGATTTCTATTNGANTNG AAATCCAGTACTNGGGCTTCNGTAANNTNNAACNNNNGGNGTTNTAGAGCCNCCNTNAGCNGCTNNACTNANAGCNCNNN ANCGGTCCNACNACAACAGTTGTNCNCTAGTTCNCACATNCGGTCCAAAGGAGNTNCCAGCTATGCCGNCTTNTGCAGGC GGANGGCTNGCNANGATNGGCNCNGNACAAGTNCTGNNGCNCNGNNGNGCAAGACGTNCNTTNGGCGCTGNGCACNTCCA AANATANTGTATNCTAGCGGGTNGGTGTNCGNACNGGGCCNGCNTTCNCTTNNGCTTAGCGCTGTTCGATGTNNCAGCCC AGGCTACGNATTNGAGATNGAACATTGGCGAGTCNAAGGNATCTCNAAACCCNCCGGNAGNCTAAGNTTGTTCATTANGG AGNAGTCTANTCANCCNNTCNNNTAATNCANTTCCTTNACGTAATCNNTACCGTNGGTNGTAGNGANTNGCNTTNNGNAG NCNGNCCNNTNCCCNNNANTTGGCGTAGNNTNAACNGGGCTNTNAGGCCNCAATCNCCGTGAGATTNCGTCNGACNAANT ATACATGACTTNNNANGGNNNNCGCNTNCTCANAACTNTAAGGTCCACCGAATNGCACTAGCGGAGGTGGGNGNCNTCGG TCAGACNCNCTTTACNTGCNCNNTCCGNTCTNGAGCGAACCAGNGTNANATTTGNNNCANTATGCAGAAGNGTGTNGACT TGCTCTNGGTNGAGATCTANCCNNNCANTNCTCNCNAACNGCCGAGTNCNNNCTAGGNTGCGACCNACGGCGGTCCTNGG NTTCCCTGNNGGGTNCNAGATNANTNTGNATTATCAAAGACGNGCACGCGGCTGNGNTCCCCTGCNGNGTNNNTACCGTC TNAGNTNGCGTNNGTCTTTGANGTTNNAATCANANACTAACCNCCTTCGAANGTANGCAGTAACCNCCTTTTNGACCNTG ACNCNTTGGGCAGNGACNANTTTAAAAGGCTNNNAATANGCCANGTTNTGTGATGACAGANTACTGNACGNNAAGGNCNT CTANAACGATANTGGAAAGACTANCTAACNAGATAGAANCNCCGNNTCGTTTGTNTACCAATTAAGAACCTGAGNCCGNN TACTNCNGACTTCGGGTCCNCANCTCGTGNNNCGCTANCAGACTTCAATAACGCCNGACNAANTNGCNCNCAAATGNAGA NNCGNGNCACAGCCGTNTNNGNCGANGNCGGNGAANANATGTAANACNNCCNTCAATATNACACGCNNGCNAANTCTCCG CCCNTGNGATATTATAAGGNNNGTTAATCCTCCNGTNCCAGNANTGTGGCCATGGTNTAGTNATNAAGCNCATTNAGNTC CCNANTTAGACCNNCGTATATCAGTACCGNTGTGTACNACCNTNTACGNTGGTTNCGGTANGCATAGAATACNNCCNGAN NNNTCNNGCNNTACNGTAGNGCNNGCGTCAGTNNNGCANNNAATGGATTGATNTCNAGNGNCAAANACNCAAGAAGTNNG AGTGNACCCAGGNTANGNCCCTACCCGCTGNTATTGCTCTAGNAGNGTNGAGNTCTTTATTCNTTNTAGCATGCTNGNCA GANNNAAAATNAANNGGNCTGGAAGATCCCCTACTTNCNTTGGTNTTNNCGGNTGACGGGAANGTNTNANTTTTGAGNGN ACATANGNAACCAACAACNNNTGGTCGGTACAANGGTCGNGAGNNNAACANCNTAAGAGNGCTACNTCNCCNGNNGGTGG TNTGGAAANTTGACNCTACTNNAAANGGGTTCCTACTCGTTCNNTTATCNNNCNATNAAGATACTNNNCCACNCCGTGGT ATAGNANTNGNGCGATGGACNNGCNCAANACTCAGANAGTCAGGGCNTCCGCGTGTCTGNNANNNAGCCGGGATANTTNT CCCNACNNTTTNCAAGCNGAACGCANANGTCAAATTNGCCNTTGCNCNGGGNNTNNANAAGNANTACAGCTCGAAGTAGA TANATTGATGGATNGCNGNGNGCNGAANCGAAACCCACGNANTNACTAAAACTATCCCNAANGATAAANTTGNTCCAGTN NNTATTGAGCNGCNACGGNCTTGATNCTNGGAGGTATCATTTNANCGNNTTTNAATCTCAAAGAACGCNTNCNGCNGCGN ATNAATGNTNATGCGGAGCNCNTNCGTCTATGGNAGTNGATTCGCTAGGCGGNAATNAANCNNNTTANGCNGTCGANCGG CNTTATTCAACGATGTANCGNCTTGNNTNNGACNANTTTTCANAGCAGATNAAGCCGNGCTCAGAGCNCNAAANNATCGA TCCNGAAAGTTAGTCNAGCGNGGGNTGACTGCNTAACGCGACATNGCTGNNGANAGGTAANCNTAGATGNTGTCAACNNT AACCCGGATANNCGTTCATANAATCTCTGNGTTNGTTTNANNGCATTCACTGANGTACCAGNNCNTTCGCCAAAGCCGGG GACNCNCANAAAGNNTTATTACTCANTTTGNAGGACAAGTNCCNCCATCCAAGNCAAANTANCANNCACCCNACCATTCA AATGAGNNATTCANGNGCTCACNTTGGTTAACCGNCTCGGGCCAANGGGCCCAAANGGGGGGANGTACTNTCGCCANGAT ATTGNCCNAGAANTTNTNCNTTGGACGTTCTCAGCAGACAATCTTTTCCNGTNGCTNGATCNCTAGNNAANACCGNGAAA TCCTCGGNNGGCGCNNTTNATCACCCCGGAGNCGNTGGNTGNCAGTCNAGTTTCANACCGACGTTTGGTTATACNAGGAA AGCNTTATNGGNAGCGAGCNNCANTNNTNCTANCCAACNTANCNGCGGCTCAANCGNTAGGACTGTTGCTANNTNGTGCC GCGCGATATGTGTGGCCNACTTANTCNGCNTNTAAGTNGNANCGCCTGGANGTNAGNAGNGATGNCNGANTCGTNAGTTC NNAGTAGCCNAANNACTANGNGGANTTTAACCGNTACCAGGCNNGTTNTGCTCTCGTGACCTTNCGACAGTTCCGCTCTN NCCGANTATATNACNCCGGNCGACANANAGCCTGGTGGATCNGCGGCCGNGGATNTCGATNTATGANATTCATCNNGNNC CTCTNGGGCAGNCGCCNGGGCCTGNGGGTNACACCNATCNNGANNTNGCGTGCCNTTCGCANCGGTANANTCTNCTTCTG GAGAACAGNNCNATGACNTACCTTTCGTCTCAATATGGCTCAGCACNGCCACACCATATCTNGTCGGNTATGNNTNNCTA GNTCNCCNNCTGTCGAAGGGACGAGTGTNTCAGACGTNCGGATTTCAAAGGNTNNNGCCACCAAAGTGTATANNCANAAG CTATTGCTAGACACCNCACNTTGNANAANGATGGANNCTNNCTANCAGCCTCGAGGTCCTNNCGCGTAAGNGNNNNTATA CATNCCGTCNCCANANAGNANNNNGCACNACACTGNCNTGNAGTGACCCNCCCNGTCANGTTCGCTTCNNGGNTGCAGAA CAGCNNNNANTNAGCGGNGNNNGCTNNAACCGCGTAGCTACNGCTNGTCNTACGTGANAANTAGCGTGTNNCTNGTNTAA NTTACGNTTGGNGGNNNCANGAANGACAGGTNCTCNTNACTCGGGGACCGTCCCGTANANGGAACTCNGGCTANAGGCCG ANACGNTNCANNTNGCCAGTGGNAATGNTGTNGNTNNATCGAACNCTGTAATTANGTTNTGNANNNGTAAAGCCATAATA TANNCCTANACGCCAATNNAGGCNGNTACNCNGATAGATNAGNNNNCNAAANGNNNTGACANGNTTCNNCTATGTANNTN CTNCANGGNNACCCGGNNACGNACGTTCTCCANTTGTCAAACGCGNCANANAANCNGNGTCNNNAACNTTGNATGNTTAT GATCGTACTAGATGCACGAACNNNNAGGAAANACNTNGCTCACNACCTNNNNCAGATCAGNAAACNCCGTGTGNCANNCG GCNCTATCTCACACAAGGNCTNTGCGTGGGACANNNGGAGACCTACGGNNNGCGNNTCAGTGTNGCANCTTTGAGGCGGA ACGTNTGAANGCTANGCANNCCNNNANNAATTCTNTANTATTGGNTNGNAGGGANAANNCAGGNANTTANCNNCGTAGNC TCACNNTGAANGTCCGCNCNAAAAATTANGAAGTTANNNNNCTGTTAACAAACATGGCGTNTCCGTGGGGCCGGAAACNG TGTGCAGGCTNNTTACATATNGANCNGAAANGCAAGTGGAGCAGTCNGANCNCNACGAGNAGGANGACNTCGNCTTAAAT GAGGNANGNTNGTCACTNACCGNTGCNTGNAANNNTNANNCCNNTAGCAAGCTCTTAGAACANTCCTCCGNTGTATATAA CTCGGANCNATCNGGGTAATCNNGAANTTCCACNACTGTGNGAGANNGNGTTATCCGTNNGANTGNCTANGCAATTACTN TCCANCGTCCGACCGANGNTTAANTNGCATNNTNGATANNGCCTTNNGAGCACATAACNCCATTTAGNCAANGGGGAGCC ANGAGGCGTGTCCTCNAAAACNGANNGATGGTAGCCCCAGGGGAGTCGCCNCCGGNNGTNNANGNGNNAGGCAGNGTACT AAGGCNTCCTNNNCTAAGNGANTTCCCGAGNGCCNCTTNAANNTAATTCGCCCTNNGNNAAGNGGNNNGTNCAATCCAGT ANACACNATNCGACTACANCGTCNNNGGTTTTCAACNATCTCNTGAGAGCGNTAAGATATTGNAACGTNAAGNCCACCCT TNGCTTNGNNANACGANGGNGNCGANAATTCGTCTCGANNCTNCTTAGCCGCCNTTTAGCNNCTGTAGTNNCNTCNTGTN GGTCCCCAATTNAGGGAGNGACCTGNCTGCCGNTNGTNANAGCACCCTTGATCGTTCANNNGCTGAGNCCTCTNANTNTT ATGGANTGNGAGGAAGNCCTNNCTTCGGGNATGCCNNNTTCCCGCNNAGNTTGCCAGTTNCGGGCNTCGANTNGCGATCT NTGCATNACGNAGAAACTCCCNAGATCGGTNANTACGCTGACNNAAGTCNNACAATANCAGNNCGCCATNTTAGTNTTTT GNNGTNTNCTCCTAGTCNTAACGTNAGCGTCCNGGGATNGTTGCCGNNCCGNATGTANGCGTGNGTGACCNGGGGTATGA NTNTAANTNNNCGCGNGGACGNATNGNTTNACTGTCGNNANANTGANCGAACGTACTATGNNGNGCTNATCANTGTGGNC NGAACANCTNCCACNANGTAGACNACGNTNTAAGTTCGATTNCATACTANGACNGGNTTGACAAGTNTTTACCNGGTACC CNAGNNGNTNNATNGANNNTGGGTAGCGAATCTAAAGNNCAGTGATGGGGNCAGGCCAANGAAGGAAGATTATNGCNNCC TCACNATGANCANNNGTACGTNCGTTTCTNCGCGNNNCCTTGCCNNNNAANCAGGTTGNCATCNATGGTAAATGGAAATC NNAAGATTTGTTGTCNGNTANTATNNGNGNACAAACAGTCGCCNGCNGNACCCNTTCAGCNTGAAAGNGNGNNCGNAGGT AANTNGACANAAGGATGTTCANAGCAGTGACCNNCTCTTNAGATGGGCGGGNATGCNNTTCNGCACNANTACCTNCNACN TTANTNGNGNNTNNCTTCTTCCCGGNGAGGNNCTCATNCNCNGTGGGCANNCNNCTANNAAAACTAAGGGACGATCAGCN CAGGACANGTNNTCCATGCGAGAGCGTNGATTCAACCGNTNTTGATAGGCCGCNTGGAGACNNTTTTACNATNATTGCAA GANAGGTCGGNCAGGGNAAGACNANNGNTGTNTGGNNACCATACNCCCGCGTGGNCANGTNNNCGAACTNAGCTACANTC NAGTCCCNGAGNGTGCGTANCANNACNACGNTGATCNCCNGCTGCNAGCCCTTAGGTGANACAANTAAAGCTCCTANNGT GGNGTNTNTNTGGTCCGNGACCTCTNNANTAACANTAGNAGNCTNNAAACACTANNACACGTTTNTTCTGNCNCNCNTGA CCNAGTGCCNTCNCNTTNGACGAANCGANANNCCCGACTCAATAGAGAGNATGGAAGTCNTGTCCTCNATCCGCNANGGC CGCCANCACTTGAGCGCCGGCCGNCGTNTCGTTNTATNNCGNNTNNGATACGNCATTTACCAANANAACTATTCTGNGNC ATGGANCGNCGACACGTCTTGNNNAACGTNCCNCNAAGGGAGGTANGAATGATANGTGAATATTGCACTNTACGGTAANN ANAATAAACNNNCATCCGANTATGTANNCTCTCCNCGTGAGNAANCATGAGTCATNATTCATAAATAAGANATTAANTCC GAGCNAGTCNNATGCTTCTCNAAATNTTCCAGATANCTAGTACATGTNNNAAATCGAACTGCGCGGTGGCGGNAGATTNA NNTGGATNGACTTCCGAAGGNTTNGTCCCTTCTCACCAACGGATACGNNTTCANGAGCGANTGTTNNNCCTCACGATNTA TTGCNCTTACGNTCTTTNTTCGNCATGGATNACTCGTAACTNGTCTAAAANGGCTTNAACAGCCGCCGAAAATGGCGAGC TCCNGCCTNNAAAAGNNTGTGCNCGGCCGCTNGNTAATAGCCGCNTTTTTGTCGANANNNGGANNGCNAGNTGNNNATNN TGGGAAGNAGAGNNGNGTNTCCTGAACNNTATAGCTNCTNGNATAGTNGCGTACNTNNTGNCGCGCANCCTCANANGTNG GAACNNGCNGGCANGGATGANCACNCCCATAAGGNNGAATTCGATCNGTTGGCATCCACCGACGCNCNANCGNATNACNN TTNGCNNTCTCTGATGTGGNAATCNGGNTGGAGNCGCCTATTTAACGAGGTGNNAATCTCCANTATACTTANATNCAAAC ACNCNAGGTCNCNAAANTGTACNNCNNTTTCTGGGGGGNATGANTCATCCNGTCCNGANGGGGCCANNGACGNAANNANN GNTCGCGCCTNAGATTNTACCGGAGGATACCTTTNAGTACANNACTGTCTGAGANCCAGTTGATGGTATCGCGCNAANGC GCCGGATCAACGTNCGCAANAANTTGGANCAGGCGCGNGCNGACGACAGNCTANCTATGNNCNNGNGACACCTCTAAGGC GNCGTTGTTTGGANANGCTGAGTGGGGCCNGNGNCANTTCNTNCTCCGTTNNGATNGCACGATAANNGNTTNCTANGAGA AACACANTTGTATCNTCCGACATGGTNATCACCNCAACCGTGGGAAGAGTATTCCTGGCNCCTGGTAAAGNCACNTANCT TAAGCGTNCTNCAGANATANCNAAAGNCTTAAAGTCGNAGCTNCTNTGTGTNATGAGAACGCGTGNCNCGTGCTGAAGAA NGNTNAGGCNGTGCNATAGGAGAGNGAAGTGGCCACCCACNCAAGAACTTANAATCCNANANCTTATGACTTCTGAATNG CCACAGNGATCTNGGGGGNACTCNAAAAGANTCGCNTTAGAGNGGNGNNGNCTTNAACGCCCTGGNCNGNAGNNGTCTAT NGANATNCAGCAGTTTGTNATCGNTCNAGCNNTNGATNGAGNANANCGCNNGGAANGGACACTCTTANCAAAGACAGACA NNAATCAGCCTTCTTCATACGCTANANNATATCGTATTNNNGTCGGGCGTCNCCACTNATNCTCNNTNCCNCTATAGCCT TAGTCGTAAGTNGTTNANNGNCAACTCTGAANCNGTCGTTCTATATCNANGTAGNNAAAACAGTCANGCTNAAGAGACTA TNCNCNGAANTACTCAANCNNTCNAAGGCAATCGACGGTGCGTGNCAGCATCTNGGAGAGCANTNCGCACCTGGCGCATA TTTCGCNNTAACNNGATNTTCNCNGTNAGGNGNTTCTCACACNTCNNCNGGNTANACNCNNTNTCANACGCTCTANTCGG GTACANNCCCNGCGGTGCANCANNNNGACTTACTTNGNANNNNNANCTNNTTGTGAANNAANNTAGGAANTTANNACNGN ACATNTCTAAGTGCGNCCGCCGAGCGCCGCCANCCCTNNTCCTCANGCCTAACAAGACCGNACTTNNCANACNNTNTTGN TNNAATATTTCTGNNTCGACCGNTTGNTCNAACNNAANCCCGCANGATGTATTGGGGAGCCTCNTAATNNCANTTANATG NGNGAAGCGNGCCNAGTAACGTNNNCNNACANGAGNCGANTGANGTGCNTNNNACTNNCGCNCGAAACAATTAAGANCCC NNTNAACCCGGNCNCTCAAGCNTCANCNAACAAGCTCANTAAGAANCATGNACCTNTGCNACTAGTTTTCGGAGATGCTG AGTTCNGNNNGNATCCGCANCGTNTAGNGAGCGANCNGCTGANCGNACCTATCCAGCNNTNTNANNTCNAGCCCNNNATC NGGNNTATTAAGNTTTCTNGTCCGNTCACANGNACGNCTTNCTTCCAGTACANCTGCTGTCGACCTTTANTGNGNTCNNC NTGNNTTCTACAANNTNCCNATAGGTGTGGGTAGNAACACANCTNGCCNGTCTCGGGACNTTAGGAAATNGCGTGNGTTC GANNANNNAGGNCCGTGNGTANCNNGTAGTTCNGCGNNACTGGATAACCGACGGTCTNNTGGACATACNCTGTATTANGN TGTGGCGGTACNTTNNTGNCNAGCCNAATCNCGCNACCCGGANGGACCNNANACNTCCAACNANAACATNNGTCNATAGG ATTCCGNTAGNGTAAAGNTTTCNCCAAGAGANTCNANCTTNNCATTGACACNTCCTCCCTNCCGGTTTCCNAAATANCGG TGGCTANNNNGACCACCGTTGGANNAATCANGTGAGNNTATGNTCTNNAAGNTAACGGCTNNNCGNTGNTNTACNATNNT TCGGCAAANTTTTAGNAGTAGGTGACCGNGATTGCACCCCNCGCGTCGCNANATGNCCGAGAGGACAAAANGAANAAATA NTGGNTNATTNNAANNCACCNCACGGAGCTNCTGGCTNAAGACACAGCATNNCCCGGTTTNTNATANGAGGCTNCNANTC GGTGTCNACTANATGCTACANTATATAACGTTGNNNGTGNNNCANATNCNNTAGNNCTTTNCNCNTTAACAGTNAAANNT GTTAAAAGANNTATNTNGNNGATTCNNANATCTNAANAGCCTGNCTTTNNGGGGGGTATNNGCCGACATCGNANTATNNN ATNAACGCTTCTTNCAGATGNGCAGGGTCNCGGNGATGACAANAAAACAAANTTTNANNNGTTCGNAAANNGCTGGNAAG ATCGNANGGCGCAGNGATTCGANNTNCGGTACACCGTCATGGCTTNTTCNCGANCACCNGGGTAANNGGTGTGNGGGNAT ACANGGGCGAACNCAAGGANGTANATAAAAAGAGGANGCNTCCTNTTNANCTACAGAGNGGTTATGGNAGTAACGCAATN NGGTTAGTNNNNNNTACNCACAGGNNCGNTCATGCCNCGAAGGATTANAGTACAGCCCGTGCAGCAAGCGGGGGCTANNC ATTAGTGAAAGCATTAATAGNAAAAGANTGTTCNTAAGGNTCNCCACGAGNANGANCNTGTGGGNGTCGNTCNACTNCNC TTAGCNANTGATNNCNACCAAAAAGCTANNGATCGGTTTTNCACACANGACACTTGNTGAATGCTTACTNTTCNNTCNAC TCTNTGGATGCANTCGNNGNCATCGTAGNGAGCAANNCNTTTTTCGGAAATCANNTTGNCNNNNCTNTCNNCACAANTAC NCAANNNGTCCTGANNCGNGAGAGTGGTNANNNNCNANGACATGTGCAANTCCAAGAGNCTAAAGGCCCCANCATACNCT NACCNCCTGANNCGGCCAACCGNTTCTGCGAGTCNGNTCGAGTGAGGGCTCGCNTNAATATGGNNNNNGCCCAGGCGTTT NNNGCNTAGATTTGTGTTNANTTGNACAGACAGTNNNTNTTCCTNANCANATNNTGAGACANACGCGNCCNGTTCGTNNT ACCATTCNAGTGCATGAGCTACCGNGGTNAGCAGNNCAACNCTTNACTTTGNTGAATCTACGTCAATNTCTTGCNTGGTG TTANCTAATNTTCCCGTNANNCTCTTTCTGGACNAAATNCGTAAACTTAGCTTCGAGCANCCCATGNNCGTATANTTNCT CCGTTGAGANNCACAGNNNTGGACNTGTNNNGCCGGGANCATCGGCANNCTTGCGTGATAGAGNTANCNCGGGACCGNCT AGGGTTNCTATTNCACATNGCGNATNGGTCTCCCAGTATCNGATATTTTTNANNGTGNCNCTNNGGGNTCCCCATATANN ANTTGCTCNACTNNNGACGTCTCNGCCCNNGANNAANCGNGTGANGAAAATNANACCNTNGNTCGCGGNANTACGNGCCA GATCCCGAGACTCNCTANNGCCCACCATNCANTGAGGTNAGNCGCNGGCAAAANCTGNGTGGATTGCTCNTGGNCGAGTN TNCGANAATNGGCNCCGTCAGTACGGAGCAAAANTACTTANCTCGANNNGTATCATTAAATTNNANGGCGGNTANAAATA TGNTCAGNACTGCCCTGNGANCTCTNNTNTNNGANTTTTCGTATCTCCCTACGANGNGAAGCCTAGAGAANATCTNTATT ATANTGTAAAANGCGNTNTCNAANTCTNTNATTTATGGGCCTTGTCGNCGNCGAGGCTNTGAAATATATANTGAGAANCT CAGGNGGANNAGACANNATAACNANNGNTCAGAGGACNCCNANTGAGANNAGGCCGGCGNCNCGTNGTCTTTTATCNGNT NCGATTAGGAGNTTTATCANCNTNGGCNNNGGGGCNTTNTGGANATGCCAGTGGGGTANCACCCNAANTCNTGCTTCACG CTCTANGTAATGAAAANAANNAGGGNTCNNCGGTTCCNGAGACGNANCNTCCNTNNGAACNNTCCCNNTGCGAGAGGACG CCTCCGTGNNTTTCAAACNTCATGGAGATTTATGNTCGNGTNATATTGNCTCTAATGATTTAGGGTGCGAGNGNNNGANA CTAACGANNATNCGTGTNCNGGCGAGTNGCCCNCACACTTGNNCTTCATNACGNNGATTNCTAATCCGGNGNCTANAAGT CGNNCNAGNGTCAGTANNTNCGGTAGCCCTGAAAGGGNTTCGATACTTANGANCATTCAGAATCTCNANCATACTCAGCA CNAANAAANCGATNCCTNCANCGGGCNTTNACNGTNGTGTTNANCNNACTCCNATGNNGCNCGTCGTATCGGCTTATGNC TCTNGTTGNGCANCNGNGTANTTTCGCCCCCANTNATATNCCNGGAGNGCTNTGTGTTGNANCGGGNCNNCNANGCNNCN ATNNNGNACGACGCNTGAAGNANNANACTGNTCATCATCACCCNCTANACNAGTAANGGNGATGTANTTTCGACAAGATN TCGANTAGNGCCAGAGNCGTNTGCNNGTCTGAGAGATGTTNTGTGCNANNATAGCGGGANNACGCNGATTCNAANGNGTC NTATCNANNAACTNCANCCCNCANNTCTGCAANNNTGCGGTCATCGGAGTNATCANNCGNNAGCTANGNACANACGGTTT TNTNAANCTATACACGGCNGNTTCTACANNAGTCGTGGTTTCANTATCTGGTCTGGCTAAAAANNCGNCAGCACTGTGNC ACNTAGACCCNACGGTTNCNATGAGAANGTCCCNACAGCCCAGNNGCANAACCTTCTCCNCTCGGAAAACNTNGCNCNAC NATGCNGNTNCNGNNGNNTTTTGCCTTACTGTNCGNTGGGGCNCGCCTNTANCGTNTNTACNCNANTAAGGACAGAAAGN CNGTTNNNNGATGCCNNGTNCNACCNGANGGCCCTTNTGCCCGANATNNCCACATGTCNNGGGTNTGCGNGNATGTNGGT ATAGTACGACGTGCGCNANNTNNCCGGTGCCGGNCGTNCNCTCCTGTGTNAGATGGCNTNCTGGNCNNTATCNNGCANCC GNCAGNNNNCGANTAGNTNTCTNAAAGNGTCNNGAGNAANNCGCCGTACAACGCTCAGANCNCGTCNNCANATTCGAGCG AGCTGAGAANNTANAGCTACGCCCTACGNGTGTACGNCNGAGNANGTTANCACCGCTATNCNCNTCAGNNCNGTGNCNTT NCGCGNTATATGATTGNTAAGTCCNAATATNTGTNCCNTNNATGCTNTCANTCNNGGACCTNNAGGCATCAAAANANATG TTTGCGATTAGNCTANTTAANNANCATATNNGTTAACTCTGTNCATNGTCTGCTNNACGCTTTGCTAGCACNTTGTANNG GGCNGNTCGGTGTGGNGNTTNAATTNGANCTNNANNTTTTCTCTATTTACAGTCCGGANANCTNNNCATGTATGCGAGAG GANAACAACCNTCTTATTGGTGCGNAACCCNGATGNNAGCNTGGGANTCTTCCAAGNGNAAAAGAACGGATAAGANGTTT CCGNTTNCTNCCCTCAANGGCACTNTCCNTCANGNGATTNGNACTNACCTANTGCTNTANNCTCTGGNAANCCNNCTCGC GAGGNGGGCNGTATANTACNNGAGACTTAGGGNTACGTGGGTCTGAGNTTTCNTCTAGATCTTACTCCNTGCTGACGCGA TAACANGTNATGNCTGAGACTTCAGTNNCGANTAAATAAGCGCCTTGTAGGNGNGACANNGAACNTNTTNANCAAACCAA GGCTCGTCNTCTCACNNGGAGGATGNGGTTCTNACCGNGCATCNTTNTATGNNCAGANTANTGNNANTGANCACCAAANT AACTCANGCTTTNTTCGTCNGTCATTGNTCACNGAAGNGCCGCGATCATGACCTNGGCNGAGNAACTGGCNTACNATTCT TACACGCGTGAANANNAANACNCCCATACAANNCTNANNNATNNCNACCGNAGAACTCGCTNGCTNAGNNNGTGGGTCGA NCTCAAAGANCATCCATACNNTAGNNTTCTANCAGGAGCCGTNNGTTNTACGNCTATGGCACAACGCNATNCANGANCAT AGNGACGGCTTGNTTCAGNNGACANGGNAGNTNGGATACNNTACCTNNNACNTTTCNCCNCTATGCTTCANACTTACTGC TCTCTGCGAACTCNATNGGAGGNTATCATNNCCGGNNCGACAGTANGGATANACCCTTANTATNAAGTGANCGGAAAGNA TGCNATGGGTTGCATAAGNNGACCANTNGTCNATGCTTCTTTCNTTANTCCANCTNNNANTTNTAATAGAANNNTCGGCT CAGTGNTGCCGCNNCNAGTGTNTACGCNNAAACNGNANANTCACCGTGNTCNNAGATAATCTAAGTGTACTNAAGNTGGG CGAGNCNCTGATTTATNNAANGNGTGTCATCNACTAGGGTAGCGTTTNTCAANCANAGAACCTACNCTTTTGAAATCGNA CCGNGGGGTANCTCTNGCGANTTCCTNNATNTCNGCAGGGGGAATNATNTTNNACCNTGAGCTGTNATTGCTNCTCGNCT GCNAGTCCNAGTACGTNGGTCTANGGNTNANGCTCGNCGNCGTNTCATTAATATCNTATGGNCTCTNAATGTCGNCTNAC TCGNTGGGTCAAGCTNCTAANTACTAGCCACGCNGGCTANGTTGTAANANNANCCAANACNANANNNCNGTCGNTGTAGN CNCTACAGGNNGGTANAGGTCCNTTTNACGNCATAATCGTGTGNAGCAGGANTGCATCGGTNTNATTGNNCTNCCTNTGA CGATGGNNAGTCCNCGACTCNTCGAAAGGTGNCGGTGTTAGTAGATACTTGAAANNNNCTGNCGATTATTNCAGNTTCCN AGACATCNNCCANNGANGAGTTNGNAACNCGAGTTATAATANTNNGACANCANAAGTATTNCAGGACCNTGTTCGNACGC CCAGTGCAGTGNCGGCCAAATTNNNTGNTAACNCATTTCAANTCCCCATCNCGNTTCCGCTNACAGCTCTGACNGNAGNG NGGGNNTAGCNNNTNCNAACACTGATGCGCCGGGGGCCTTCNNNTNNTTCCAAGNNTCTGANCCNNANTTAATTNNNNAT ATANANAAAAANGTNTANTNTGNGTGGATNNTNANCACGAGGGTACGAGTNGNNTTGCNCANCGCANGTGCANTNTTATC CNTAGNCNNTTTNTACGTCGAGTTNAAAGTGGAGATCCCCGATGCCCCTCTGAGCANGNGTNNNNGTNNCTTGAGGNNAT AANATATNGNCCTTTTATTTTNCGATCACTCTGCCGGTNTAAANGACTACCCAAACCTTNTNCAANNAGTCNAATGNCCN GGGGTCCAAGCAGCCNGNGANANNCATCANGNAAGATNGAACCATGNTNTGCTNGTNNTGCAAGTGAAAGGGGGAGTNNN CCNACAGGTGCNATCCATCAGACTGTCGGGTCGGTNNNTAAANCANCGNGCATGNNCAAAANANATATGTAGTNGAAAGN AGNGNTAGNGAGNNTCCNCTATTCTNTCAANCTGCTAAANANAGTNTCTACNTNCGGCTCTGNGCTGNNGTGCNGTTTGN NCTTNCGTATANAGTGACGCCCACGNGTTNNGNCTANANACCNTAGTGNATNCNAACTGGNNCGTTNNTTTCAACNTGNC GTGNGTGTGCATCGATAANCGTCAGTNATNATNGTGACGTTGGGGCNTCNNAGACNAGAAATNACANNTACTTGATNGGG CNCGTNTATGGNTGGCGCGNGTTTNNTTCNATGNCNCAGGNGNGCTCNTACTGTGTGGGCGGNGNGNTANTGNNTTAGCN NTNANTNAAGTTTGGACTTGAAAGNTGATTTNCCAGGGNNCCNCNAGGGANTGCTNGGATCTAATTATNAGTCANTAACG NNCNTCNAANAGTNTGNCNTTAGTTACCGTGAGACGCCNNANCTTANCGCTTATNNGCATGGTCGTANNGGNNGANTTCG GAGGNAGGGATGCGAGCCNGTNTGANTGACCGCCAGNNAACCGGNCACNTNNCTNTAANACCGATGTCGGNCGGCTTAGT TGGTTNTNNGGTCCATAANGANTAAGTNATGGANCAAGTCNTNGCGTGGCCCNNTNTTGCAACTGACGCTNTNNNTCCGG GCGACAGGCANACNCNGTNCTNTATCNNCCCCANGNNCANGACAACNCTGCNGAGAAGTNCTGGNACGCNNAGNCCGNTT GGCCCNTCGGCNGATCGGATCCTNGTTTNTTGCAGANNNNGNAGATTNCANNCCACTGACGCGTTNCNCTCTGCTGCGTT TAGGTATANACGTGCAGNNAGGANAAACCTTCNTACANGGAGATGNNCNACCGTNAAGNTNNGGNNTNNAGATGGGATCN ATCCNTCNACNGAACCCANATGTCCGNTCNCCCAGACANNGTTGTGGTCTNAGACACTACTAGNGCTTTCCTAATGNTAT CTCCGNCCANAAGGTNATNGAGNAGTTGNNGACTTNCCAACGGGGAGGGNGAGANNAAAGCATGATCANACCCGGACGTC CCTTANACAGATGNCCCNTNNGTNACNGCNGCGNAGGGNTNANCNAGGGTNTGATGGCGNCCATCTACAANCGGTTNTAC AACCTNCGAAGGANTTGTACTGCTCNNNGCGTNTGGCGCAGTNATNTCACTATCCANTTTGTGATGNNNNCATGCNTACG TANCGACNTNNCAACATATNCGGNAGTATTNCGACGGCNNNANNCCATAGCACTTACNNGGGCNCAGNANCGGGATGTNG CTCTNGTNNCGTTGTTGNGTGTNAAGATTNCGNGNGGNGCCGGCTNCCAGTCCCANCTCNTTTNNATCANGNCCTGAACN ANTCCTNTGNCCTCGCCANTTTGGGGCACANAATNGCCNNAGGCCTGGNACNAATGATNGCANNCGANTNCNGAAACTTN ACNCTGANAATACGGANCCCGACAACNCCACTCANNNNGTCAGAGNTTTCGAGNGGGTGAGTCACCACGTCANANCNTGC CCTAANTGNAACTNTGCTGNTGAAGNAGGAGTAGGNGTNTGTGCGCCNTCNACATNTTCATACGGAGCCNATCANGNGAC ACGNTTACGTCACNTACNTANAGGNANANGAGCCTNGCCTGNNTTACAGCATAAAGGAGCTTGNATAGCNACAATNGCNG NTCNAANCTTTTCTCNNCCNTGNATCAGGNGATNNNGCCAGNANCNTGNCGTCNCGCCGCCATNGGATAAAGGTGNNNCN TNTGTACCANAGCCGTGNCAGNACCCNAGGNAANCGGCTNCGCAGGNNGTGAACGCCCGGNATATGGGCACGANCCTCGN CACAAANCNGNCGATATGNGCCAANNAGTGCCNAGNTTANTNANTTNNANCGTAGAGGTGNGGTGNCCTGTTATNGTAGA GCNCTTNTGAGGCCGGGGNCGTGCCGACAGTCTGNNTNTCCANNCAAGAGGNTTTCANGTCGCAGCAGGCATNGTNTCTN AANTGAGCCATANGTANTGAACANATCTTATAGGTGCCTNGAGTCGTNGAGNGTTTCGCGNNCCCNNANGCANGAGNNNA NANNNGNTCAGTAGCNGNGACANATTACANGTTCANTGNTNNGNCATAGCTTAANACCTTNTNNGANGGACAAGGNGCTG CTCNNATNCCTNNGNCNCACAACCAGCCCNAANNTNCAAAATAGANGTNATTATGAGNGNANCNTCTACACTCCTACTGG TAATAACANCTCTCANGTCNGGGGCCNNTCAGGTTCCAANATGNTTTGGCANACNANTAGCGTGNCNGGNACCCAGTNCC NGNTAGTGGATGTGCGCTGGTNCTCTAAGAAGANNGAGNTCCNTGCTTAAGGNTCGANCCNCCNTTNGACTGAAATGNGT TTNCTANCGGATNCAGGCTNTACANTTGTAGCGCAGNTAATCAGCACAGAANNAGNTGGCCNANCATGTGAGANCTANCN CTAGTTCGTGTGCCATNNCNAANNCGCATTCGGGCCACGTTAGNGACNGTGTNNGNCNTANAATATATNNTAAGTNTGCG TTNAGNAGTGTTAACGCGCTACGNTANTGGCAGNGAGTTNGGANTAGGNNCGTANANGCTTTGCTAGCAGGCGTGGTTCA TNGCCTNTTCGNNNNANTTCGAGNANCAATGTATNACNATCCAGNANNCAATGGNTTGNCACCATNTTGCGCCCGNCCAC NGCAANGTGNAGCATGGNAACTACACGGCATTCTGTNGAGATTTTNNTGTCATGCNCCGAATTCAAGNATTAATANAATT NAAAGCCCAGNGGNGCAATGGGTCGAGCTNCCCCGGACTCNCTATTANAACTTGNAGNAACANNANGCGNGNCNTGTGTN TTNTCNCCGNCAGGCNTGACTGTCTACNNNGGCTANNGNCATACNNTGAGACGCNTATNNGNCNNTANACCCNTAGTNNN TANTCGATATAAATAGCCTTGCTGTNCNCATNCGACTNNCNAGANTNCGGANCGACTANTCNAAAGAATCTATACAGCAG GNNATCAACCNATGANTTTANTNCNNGATAAATANGNAGTAGCACANGGAGANCTTGCCGCNANNNAGCAGTNGNCTNCT GNNACCNTNGGTANCTNAANGCCCNNAGGAGTCCTGAAACTACTTNATCGANNCGNNACATGNACCGCTATCAGCCCNAC ACANGGANGCGNAACTGNATNACNTGNTCACGACTTCNANGGGNAANNNNNNACGNAGNGTCTNACTTNACGTCNATGCG ACNATNAGAGGGNCANTNNCGTNNTNNNANTNTTGGANGAGCCNNAGCCGTTGTACCTAGTNNCTANTGNAGCGATTGGG TNCNGTGNGTCACATAGTTNTATAATTTNGTNAGATCTCAGTCCNCCCTNTCAAAGAAAACNGAGGATTANCCAANACNN AGNGGTNCNCTNGNCTTNGTCCTNNGNNAGTGGTTATAGATTTNATTNCACNTGTNAGGCAGNTCACNCCNTNGCAAGNN AGGCCCNANCGGANATGGNTGGCTNNCTATNGNTACATAGANATGAGANNGAATTCNGTTNACGCNGGANTNCNTAGTCN TNCGTACTTTGNCTTCNGTNGTTNNGAANNTCNGTNNCTCGAGNGGGCGGACANCAAAACTNAGNAGAGGNTAAACNCGC ANGCTNANCGTTAGGAGCGCANTNCGTACTANTAGNCGTTGGTNCANTCGNCNNGNCGCGTANACCACGTTNGTGTCCAN TNGNATGGTGATNCTAGTNGATNTGTGCGCGCTTCTACAAGTATNATAGGGAGNTCACTAANTNAANNCNGATACNCATC AANAAGCTTNNAATTNTCNGTACGNGGCTTACGTNTCCNTAATCAAGAGGCAGGTNAGCGAGNGNACTAGAATACTCCCA ANNGGNTNGANCNTNNNGAATNTTTCCGTGNACGGAGCCNANNAGGAACGGNCNCTNCGANGNAAGAGGNTGGAGCCGGT ANNNNNNNGTNNGTGCNCATGAACNGTAACAGCTTCCNNTGTCTTCANNANTAGANTGGCNAGNNTNAAGCTCGGGNTGT TTTTCGNCGNATCCNTCNGNTTNANCGNCNGCCAGAANGCATCATCGTCGTGCNAGCANAATATTCNTNNGCANTTNNCG GGNNCCCACAGTGCTTGGGANTNTNAATTAACANGNTNNCTNGCTTTCNATNAGGTACCNNGNTTANGCGAGTGANCGTA GNGTAGTCAGTTNNGNCTTCGAGTGTTTANAANATAGNNGTGAGATCATGNTGNCGGNCGANAGCCAATGNTGCATGCTA AAGGNGTNCTANNTGNCACGNTGTCCTCCTGNGANNCNNCGNGGAGCNNGAATNGANNATCCCNCNANACANCCCCGGGA CGCTCCNATCANNANGCAANNACTNGTCAGTNAGCTAGGNGGATGANAGCAATCTCCCAGTGCGGGTACAGGAAGNTCAG TATTANGCCNGGGNNNGCCTNGNGCATAAACTGNAGCTCNCGNNNTGCATNNANCNGCNCCTAAGTCNNTNAACNCCAAT CGAGACCGGANNGCCACNTANTACGGCNATGTTGANGGGGCTNCTTNGNANNNCGNCGNTAGATGGCATNNTTNAAGAGC TCCCANNGTCCCAGANACGACNCCNTGNNGNCGGTATNNCGGCGNGNGCCNGANCGTNGTAACGTTTTGACCCCGTGGNA CCAACTNGAGANNGACNTCCCCTNCATNGCNNCTGTTCTCGTNCNTTCTAGTTNTTNTTNCNGACAGAGTNTTTNAAANC ANTTTNNAGCTTTTACGATGCAGAGNAGATTNATGTCAANNGTTNANAACNGANGACGAGNGGCTTGNAAACAANNTAAC ANCGGCTGANTGNTATTGGGGTACCCTATTCNTGCGGAAGTCGNTTCCNAGGGACCATCGAGGAGNATTCANNAACNGNT TGTGAGANCACATTNTACATCNCAGTGCNGATGCCNCTATTAAACGTACNCGTTNATNNCACACGNTTCGTCCGTNNAAG TGNNAGTNNGGTAAGTCGANNGGNAAGCTCAGTGGAGNGAGTTNCGAANGAGCGTNNGAGCACCNCACCCNCNGNNTTAT GTNGNNGNNAATNCNGCNGGTNCGGCTTTTCGNCCGAGGCGNCCGGAAGNCCGNGCNTAACTTANCTCTCTAATNATGNN TTTGGCNCGNNAGCGTGGCGAGNGCCGTATNTGATCCCANGCAGGTNNAAACAATTTCTAAGNTATCNCTTNANTCGNCC GNGTNCAACCGCGCTAAGNTCNNTGCCTGNGNNGTCGATCACGGCCNCTTNATTATTNCGCGNNNCGNCTAATGCCCCAA NGTTGGAGNGNTAATGTATTAAGCGGGATNCACGAGTNGTTGTNAACGCGANNANANGGCNGAGNGCNNACNCGAANNCG CNCGNNNCNGTTNACTNGACNGCAGCAGATACCCNTCATTGNANNAGAGCNNTATGTNNNACNNANGAATTACNTTCNCT NNGATTAAGNGGGAANGATGCTAGNGGAAANTGATTTATGAGNCGGACACTNNNACTTTTNGTANCCATCTGCGGANGNT GGGTCNNTANTNTAATACNAANCCCTATCANNAACNCANNTNNACTCCGGNANNTACGNGATCCCNNTANCNGTTGTNCG ATACCGTGNCAGCGACAAACNNACNNTCNTGTAAGTNAACAACATANTNGNNNCGTAAANGNCGGACACAAGTGGGTTAA ANACATGTGATACNNNCGNGNNGCAGTGACGTCGTTGANGNCGCACTNNTATGCNATGNAAATGAAANGNANGTAAGCGA CAGCCNTCCNANATANTTTTTTNTATNGCGGATGACTCCGTGATCGCANTATNNGGNNCAAACGATCCGTTGCAGNTAGT NTAGCACNCTTCANAATCTAAGCTATANTACTANCACTGTCTCATGGTNGGGTGNTATCGGTCAGANAGTGACACTNTGA NGNNTNCATCCGTGGCGNANTTCNACNGTCNTGTTGCCAGAGAGCGACNGTNCTGCGTCACANCTAGNCGACNNNGAATT AGNCAGTNCACACTCNTNGCTCTATTNCNATNCNTTGCGCGANNCCATAATACNACAGATGNGNTCCATCTATCGNNATT GCNNCGATTATGNTGTCGNAGATAGAAGCGNNGAGTAGCTCCGNATNGAACAACCTAGNTACTNAGANTANNGTNTGTCT NGGCCACANTTNCAAATCTGGAGNTANAATCTCTTNTNGCATCNANCGGNNCTGNCATATCGAGGANCACNGGCTTTGNT ATATTTGCTGCNGAATAGNTTGTTNGNANGNGNNAACTCNCANAACGTGGAGGGTGNGGTNTGATACTTTAGANNTACCC GGAGANCCTCANNATCAACNNGNCNGNTGNTAGAAGGTAGGANGGCAGCCAANTGAGATNNGTANCNGTANATNCGNAAA TNAGNNTGTGATTTCANTNACAGCTTAGNCNTGNGCTNTCAGGCAACGGNGNNAGANANNACNTGNCCGAGAACNGNATG TCNATANGGAANATNGGTTCTCTTCCNCAGTCGCGNGCTGCGACGGTCATGANGAAAAGCAAACTGTCNANTTGAGAAAG CTACCACNGACTCGATTTGNCGTTGAACCATGNCCGNGCAAGTTNTTTCNGTNCTACGATGACNGACCCTTCAAACNNTT CAGTTNNTNTGAATGCNCGAGGCGNAAGNGTGGGTTGGTACNANNNTNGAAAAACCGAGNGAANTCCATGCACCAAANNG GTCCANATNCNGCAAGACCNTNNGATTGAAANAGNTTTNAGNNGGNCGNCANNANNCTNAANTGNGCTTAGACGNGAATT GGTNGTAACATGGGANTTANCTGTCTTACGNTNAGGCACACTNTNNNTAGTGCAGGNNNCNNAAGACNCNTCCACGGNGN TTTTNATCCNNNTCAATGNAATNACNNCGNTTCNCGCNNNGACNTTACAGTCCGCATNNNNTTGACCANCCTNCGGNNTT NTCGGNGTNATCGGGGNNGACGGGGNAGCCCGACGCAGACNANCGACNCGNTNTTCNTNCCATANNTNCNNCANNTCCGC TATCGNNCTANTTNCGNNAATTGTANTTGNCNAGGGCCATGCNGTACCTTCGTNTNNNGTGGCTNGANAGAACGCNGCCT AACNCANCCAGANANATGCCNGGAATATTAGGGGNGCAGTCGCTTTNGACGNGTTTGACTGNACAATNTGCAACGCCACC NCTCGGCTCTGANTCTATANGACTNCGCTCATCTGCCGTGCCTTCAANCAGTCTACCGCGNAATATGCCNGNNGACGANC AANGCTCNACGNTTCCNGNCNGNNAGCCGANCNCGGTGACTCAAAANCGCNNCCNAGAATGNGGAATCTTCCTCTTGCTA ATCCCNGAGCTANNNACNCANNTGCCGCTTNGGGNNAATATAGCNAGCACNATTAGNCACNAANTNNGTTGTCTTACGNC NNGATTANATTCGANGATACCAATATACCTGTANACNTNGGTGTAAGNGCCGACGGACAGACNCNATTATNTGTNTCGNN NGATCAATCNCTTTTCCTGCTCCAGNTTAATNGNCTATCNNCGGTTNTTCTGTGNANCNGTNTANACGCGGTNTACTNNA GTTTNTTCGTCACAGNANCNCCNCCACGTNNGGCNNGGCAATTNCNATCCATGNGTCTATTNCCAGNCANANCNGNCNGC ATCANTAAGNNGNCNTCCNGCCANGGGCCCNGGCTCGNTTATGTATGANTTAACAGNGTNNANCNNNGTCCGANANTAAG TCGTTCNTNNNGNANTANNCGGCGNANGANGGTCATGCGAATNNTNCAAGTCTAAACCNGATANAGCAAGANCNATCAAC AACANCCGGTGNNCGGCNNACGAACANAATGGTGCCCGNTCANGATGNGTNTCAACTCCTGTNGNGTGTCATAAGTTNNT TTCNCNNNTGACCCANNACGNTAAGTCCNNCCTTGCATNAGACTNAGNTTACCANGGGCNGTAGCTTNTNTTGNNCCAGG NGCANGANANCNNTAGGANNCAATTTTCTNCNTNAATTTTTCANGTGCGACNNGCANTNGTGGTNGGCTAGTTATCAGTN ANTTCTCATTGNNGCGCATNCCNGNTNGGTAANTAGNNNCGTGCGTNTAGTGATGAACTTNNACTCGGGNANACTACNNG GNANTGTCANGGAGCAAAAGNTNGNNNGCCAGCNCGTTTNTTATNAAAGCTCNTNCAATNACATCATTTCACTCATNAAG NNTATATTCGNATCNNAGAGTACNNGCAGAAGGATCTTTGAGCNGTACNANNCGTGACCCCNGTCCGNGCCNNGCTTACG CCNGGATNGCGTTTAATCCTTGACGGCGCCGCCACNNGGCAAACNCTTGGTACTTATTTATCATGNTTCTNCNGNNGTCC CANTGGNGCGTCNNNNCAGNCCGTAACATAATNCCCAAGCAATNGTATANTCCGTCGTTNGGCNAGCCAGTNGCTGNATT CCNGGNGACACCCACACTGGCTGTGAANGTCAGGAATTNCAATGTCAGGCCGNTTGNCTNNTGGCNTTCCGGCANCGCCT ANTNCGNGTCAGCNCTCNTAANTTCCATATCNATTGAAGATNGATANTNNTAACCGAACACTGGCTCGGGNNGGNTGANC GGTATACCAATAANNGACGGNGACTANGGAAGTTTCCNGNNGTAGNNTCTNCCTACCTNGTGNTNGANGANCNGCNACNA TAACTCCAAAANCGGCAGTTNAGCTGANNNTANNCCNTNGCCCCCCAGNGGGTAGNNNTGCAGCGCCGCGNCACCNACAT ATCCNCCNNCCTNGTACAATNNNNCNCCGTCCCANTGCNGCCGNGNACAACTTNGACCTAANGATGGAGGGATGNCNATT NCANTNCCCGGNCTNTNATCAGGNNGGNNAAGTATNGNCGNNTNCTTATGTGGTTNCGCAGNTTAGTNATGCCGGNAAGN GNTAGTAANNNNCCTCNGTCNTGGCCAACATTCGGTTANTCTGAGTNTGCTTNANTNGTGCTNCANNACGTTACNTGGAN TGGACCAGNTTCGAAAAGNTACNNNTCACNCTGNAGNTAACTGATCGNCCCCACCCANTAACCAAGTTGCTTCCTGTGAG TCTGACTGACNNNCCGNTACANATTNATGAGGNTGGTCGANCCGCNNNNATTGCTAGTAAGGATTGGTGANAGAGTGGCG CTANAGGGGCCNNCTGGGTANCANGNGNTCGGTNNCCTGCTTNTATTNACCTTATAAAATGAATAACNGNTGANCTANCN GTATCGTNCGNTTTNATTANCTNCTGCGCTNGTATNCTANGNAGNANCGCNTGNGCGGACNNNNNNACNNTTAAATNCTN GNNGGACAGGTACNGANATTTCNTNNGGNAATTCTNCCCATTACCGGACNACCGACGNGNAGTCNNATANGAACTNAGAA TCCNTCTGNGCTCCNNGTCACCGNACCGGCNTTGCGCAAGNTANAANAGNATANAGCCNTANNNNNCATACCCGNTNNGA NANTNNCTANTAGTTNTGGTTAACCACNNTCCNTANGNGCCAGGAATNATAANGNGCATGTCACNCAGCNACAAGAANGG TTNGTTGCNATNNGTTGTGCCTATNNNANATGAGCTCGCGGAGCAGGCCATTGAANNGATGTTNTCCTCAATNNTCCCGC ANCAACNGCAGTAAACATAGGCANGAAGGGCTANTCCCAGANGNAGAANNCATCAATAGCAATTNCANTCCNAGNCGCGN CGGNNGATTCTTATTANANAAAATNTGNNTGCAAGATTGTACNCCTTGCGCTNGTCCATTNACGGNACGNNTGACTNTAN AGCNCGNNGNCAGCCGNTGGTTACACTCCGAAAAGACGGTNNNATCAGCNGANATCGCNATGAAAGACCGGCNANANATC GTTAGTCNAACGCGCTGGTGNCNAGAANNGAAAAAGTAAGTGAAGGGNNNGCATTCCCGACANAACAATCNAGTCGTNGA NAANAGTNGAAGGGTAATCNGTCCNTNNCGNCTCCATCCAGNGTNTTNNCTGAAGANTCTTNANCANATCCGCGCCTTGA CAGGNTTAANTTGANGAANGCGNTNTTCTGNAGATANCNATGTTNATGGCNGGCATAGAACTCGGTCTCTTAANNCAGCG CGCTGTNATCTGAGANTCCCGATCTGTNGGGTTATCNGNGNNNGCTCTTAGNGAGTTGCNACTATGATAGTCGGCNTNTA NTCATGNCNAGTNAAGTGTGTGNAGTGNAGGACCGNACTCCGTGTNNTTCTTNCANTTGTNAGNCGCAGCCCNNNACNNG CTAGNNGCGTTANGGATGGTGGGTTGTNTGGTTGNCCNNGGNGNANNTTTGCNCAATGNCATNTNNTNAANNCAANCCAG NGGTTTCACACGTATANNNCCCACCTTGGNNNTNTNTGCNAACACANTGTGAGAATGTNTNNGGTGNAGTTGGCTGTACA CCNCTCACTGCTCANACTTNGNNNCNAAGCCNATACTNGTNCAGCNATNTANCTGTNACTCNTNGGTAGGNGANGTAGCN GTTACTGCCGGNTTGACTGCGGTTGTCGGNACGTCCCAAAGGGGGCNCAGGCNNTGACGGCCGATGGTCNGGCGNGNANA TTTCAGTGANNCNNTCACAGGCCGCCANNTAGCTTTGNCGTCCANCNATGGGTCCGNCANTAGTANGTTGTGCCGNTGTG TANCGTNTCNNANNCCTTTNGGTGGAAANCACGTGGTNNGNNCNNNCTANAACAGACCCGCNTCANTAACCAGNCANNCG ATCNGNNAGCCANCCNTCANANNANCATTCNTNCNNTAANGCCCANGCGNTNNGNCCGCNCNANAGAAANNTACCGCGAA GAGNANNGGCNTCTTAANGCNGNAANCAGTNTTAAACTNNNCANCGANTNCAGCTTTGTTGNCTNGTACTAGGCNNCTGG AANTTNTGNNTNGNATCTGTTGTCAATNCATGGNNGCNATNGGTNTTNANNTCGACATTTCTATCANTACTTNGGGGTCG NACTNGNACAAACCGTAGACCTGCCTCTNNAATAGGGCGNGGNANCTGNTNTGCCACTNCGCCAATGCNCCNGGANTACG ACTATCCCNGTGNTAGACAGTTNACAGGATNNTCCCGNAGGTANGANTCCTGGGCCTNCNNTCGATTCCATTANAGNGTA TGNTTANACCCNACTTCGTNGGCTTTTNCCTCTCTGAANCGNNGGNGGCCACGTCCGAGGANCGNTCTNNGCCNNNCGAG CACNCCTNANACNNGTAATGANCTGTATTAANAACCCTGGACGGTNNGCAGANNTTTTNTGNGGNGGATTGCTCCCGANC NCNNCAATTTCGGCTNTGGGNGAGGCTACACGCATTCNACAACNATNNNGNNANCCGCGAACATCAGCCCCTAAATNCTC AGTCGGAAGTCTGNGTGTACCCGCTTNCNTCNGCATANATNGNCCCNNNNAGTGNNNGTGCCCCTTATCGNAGTANGNTA CAGANCCAACGGTTNTCCTANNNTGNGGANCNNCGTAANNNCCCACAACGCCNTCTGCGGCNNTTGAGNANTTGAAANAN ACGAAGGGANNTGCTNTGCCGNGCACCAGNCATNAAACGNTACGCAGGCGCTGAGGNGGAGTAGANGAGGCCATACTCNG NTTNCAGCCCCATNGNGCTTCNNNTCTGCNNAANCTNATATCCTNNNCTGCGATCGTGGCGNNCNANAGGAACNCCCNTG GAGCNCGGNNCAAAATTNTANATCNTGTGACGGNTNAGACTCTCTGNNGANNNTTNCTATCCCNAGTCTGNCATNCGNNA AAGNNATTGTGACNAGNNGTANTGTNGCAATANCTCTCNNCNGAGGNNNGNNGTATNCCTTNAAGTGGAACGCTATTGGC NCNCAGGNNTAGAAAAACCGCGTTATANNGTTGGATATNGCACTTCTGACCCCGACTNNAGGNTATANANTCGCAGNGCG CTGNTNNNNNNAANNNTCCNATNNCTNANNANAGAGGTCTGCGNAGGCTACTGTCNCNTCTTGCATTNGGGGAANGATGA CGNTTTTGTTCTNCGCTTAGNTNCNCNTGNANTGGNTTACNNNAGGNCAGTNTATACCNAAACGAANTNCGCNGCGGAGT GNAATGCGATCGNTTATGTCANGNGAGCCATANCNCGAGTANTTCATNNTAGNNNNANACGGANCTNAAGAATGTAAAGC NNANNCTGTCGTCNNNCNTTACGAAGCANTNNTTCCGATGCGGNGGCGTGGAANACATTTNTGNTCGANTNAGTTGNTCT GNCNTCTATGAACCNCGGCTCNNCAANNGATGGAAANACNATTCTTATTNNCGAAGACGGTTCCTCANGGAGCNAANNAT CNNTTATCNAAGNNAGATNTCTAACGNTCGTCCATNANAGGNCNNTTATTTTCAAGGNNCCNNGCACNGAGACCNACGGN ATGNAGTGAAGTCGACGACGCCTGANAACTAACCNGACTTCAGCATTTNNGNGGATANCGANNAANACTTTCAANNCACA CACCCGTGANAGACCATCCACCTTNCNNATATAGNCGGCNCNGCANGANTCCNGACCANCAGNGGANGCTAGNCGCGGNT ANTGACTGCTCATTAGAATNGATTNGCTTTGNGACCCTCAGTTGTCGGANAATANNAGCNACTGCGANTGGGTGTTACAG NCTANTCTCCGGAAATCACTNCANCGCTCNATAGAGGTAGAATTTAGACAGNTNGAGTANCANCGAAGTTANATCCAAAN TTTNGNNACCNTTANNCCCANCGCGAGGGGNAAANACGCGACCNNNTTNGGNTCGCGANCTGACGNGTCAGTGGNACCGA CNATTTCATTNNCNGTTGAAATNGTTNTTNGGNAGNTANGTNNNAGCGNCANCGCCNCTTAATTCCCNAGNGNNCCAGGC TNCCNNCCGNNGCGGAGNTCNNTTAAATGGNNTGNCTGGNAGCGCACGNCAGTGTATCCATAGNGTTCNNGTNNTNTNCA NCCGCAACGNNATANGACTGCGNGGNGCCCGGCACTGATGTANACAAGATNGNAATCCTANNAGGATACAGAANTCGACA ATNNNANCNTCCCNAGANNATCTAAGAGCTCNCGCGCGGNCGANACNTGAGCNNNNTNNGTCTAATAGCTGAGGNNTNGC ANTCANAGTNACTACNCCTCAAATCGCCTTTAANACACCANCCTCAGGTANCGNNATGNTCTCGGNGTTGTNGATGCNCC GCGNGAGGCTNAAGGCCAACCTGTGNAANACGGCTGAAAGNGAGNGTGAGCNAACTGNGTNACGACTGNANGAANNCTNC TGGACGNCGNATTAACTGGCTTGCCTTNTTGNTTAGNGGCTCGTNNNGCNNGNTTCNNGNNGGGCCATTACTAGGGNNGC TTACTATNNGGNGCANTNCGAGTGNNANCTGAGAACACGNAGGTTGCCNCCCACGNNCGCTNNTACNNAGANCANTGAAN NCATATTNCATNGANTCGCGANTTTACGNGGCTGCTNNNTTAGANACATAGACAATCTNNNGGNGNATTTNGAANTCAGN NTAGATTTCGCCCAGGCTGNGCNGATAACNCGTCGGNGANCTTAGGACTGNCAGAGCGNCGTNNTNCNGTCACGNNGCAN GTGANGTTGCNTNCTGCNTNCTCTGNTTGNAGGATGGTTAATCNNNACNCNGNNCGATGNNGNAGTGCGNANGNCTGTAA GCGTNTTANGTNCNNCNGNCATGATGTNTCATCGTCAGAGGNACGACCTTCGATGTAATNNAGTCATNNGGCGTNGGACT AGGGGCTTATNCCCTGTTANTTNCNNNATTCAGCNNTNGNANNNGTCGGACCTANNTATTGCGAGTAATACTGGNNGCAT TCGTNTAANACGTTGNCTGCTTTCNAATNCGACTTTGNNCTNCGNNAACTNGNGTGTAAATTNACTAAGGTACNAACTAC GCGNNTAATTAACTNGTNACTGNCTTGCGGACNNNGTTGGANCGNTNCTTNACTATCGTGTAATCGCNTANTGATNNCCN CAGTGCCANTCNTGCNCNTAATTAACCGGCATNNCCNTNTCGGATNGATGCCAACNGTGAACNTNGGTCNACTGNTTTCN CNAGCGNNATNGTNGTCANNTCNATNANCCAGNGANNCTNNTAGTGCNCCNNNTNGNTAGNNAGTACTACAGNACTGNAN NCCANTNGGNANNATNTTANCAGTCTAAATGNGGATCCCATCTNCACTTCTCACNNTTNNTGTCATACTACAAATANGGN CTCACCTNTNATNCCGTATCNCCNGACCATNGTTANCACGTGGGTNCCCNGATCNNTTNTNTTATGAGGAACNACTGAAT AAAAANCAAGGTNNATGACNNNANATGGCAATCNAGCCNCGCGNCCNTGTCNCTGTCAATANNTGAGGANAGAGNTTANN CANAGCCTATTCNNAAGTNCTATTTGATAANACGAATNANNNNANTAGNNCCCCTNTGANTGTCGNAGANACAAAGGNAC ATGACGAAGACNAGNACGGTNGGGAANNATATTNAATTGNTGGGCCACCAGTCNACGTCCGANTCATNANTAGGGTGGTT TCCATAAGGGCNCGCANTNAAGCACCCNATCTNCTCCGAGNATGCAACCCAATATCCTGGGNANGGNAATNGACGTNGGC CNTANTNAGNNATGNTNCNANCNNTNNAGACAATNCATTGAGGNCCCCNGNCGGGTCNNTACTAGNGCAAGGNNTCNTTA ANGNGANNCAATTGNCNNGATNAAAGCACGCNCCTGGGGNGGCACATNNGATCCGTTGCCGTGTGCTTTATGTCCATNCT NATNTGNCCTNTAGCGTGANNTTNGATAATCTNGCNATAGCTNCACNGNTNNNAAGNCAGGNCCNTTAGNGANTCNTGNA ANAANAAACTANTGGTGCGCTAGATCGGCTNNTCTNCCNTTNNCTNNTNCGTGTNATANTGGGCCCNGAGTGNNAGGGCA AGTGNAGCGNCTGACCTGGCANGAGNGNAGCTCGCCGNNCGCNAATNGTNCGAGCNCGACNNCGTANCNNNGGAGGNNNT GAGTGNATTCNTTNNATGGCCGAAGATNNCGCCACCGGCCGCGGCCCCANATANACGTNACCGATTTTGGTNCNNCGTAA GTNTGCNAGTAGGGAATTANAAAAAGCTNTCAANNCTTTAGATAGAAANNGTCACATCCNNANTTGCCACGCAGGGCGCG NTANTGTCGTGGCCANNTCNGNAGCCATGGNTACCACTNANTNANTTTCNATGCGCGNTGCNCGCNATNGGATCCAAAAG AGGTAGATCNGCGTNGAGGTTNCGNGNCGATAGNGAANNTGGTGGTCCCCNCGANTNNCATGTNCNAANNCTGANTANAC NTTATTGNTNNNNANGAGCCCTNCCGCNAACGNNTAANNNCGCTATTCNTGGGCACTCTAGTCNTTGCNAGTGNCGCTTA TTTGNTANTCAATCAGACTNTCNAAAGGAAATGCACCGTGNNACAGCCAAGNGTGCNCANAAGATCACCNCGTNTGCGAC ATNNNTTGGAATTTGNNTGTAGACTGACANCCTGCTATTTTGTTAGGAAAGGGTATANNNNACACAGTCAAGGTNAANCG NNGCAGGCAAANTGTTNGGNCNNNANCTAAANAATGNCCNGAGGGNTNAAAAAGCGCCCCGCGACGNCTCGTAATNNCNC GGGGGANNNCCGGGATTTATCTACCAAGNNCGGTGTANNCCGNGCGCTCGTACGCGANGNCCNNGACTNGCCTAGCANAN TNCTGTGNTTCNNGTCGAACTNTGCNTNTGANAATNTTNTAGACGANATCGGCGCCNTCCNCNCNACACGAATTGTATCN CTGGTCGTCTTGTGTNCTATCGAATTAGTCGCTACNCGGCGAANATAAGNGCNNCATNGCNATCCGAATGTTANTCCCNG AAGNTGNGGCAACNTCGCCNTACATCGNTNGCNNTNNTGTCTNTGACATACACNAGGNCGTCGGATNACTTCAGNATNNA NAAGANTNATNGGGTAGNNAANAGTGCCGNNTTTNCNNNTCTAGTNGACGCGCCGTNNGGNACGAGGGCANAGTGTTCCA ACNTTGATNNCCGNTATCGANTAGAGTCNGNTACAANGNTNAGATGNTTCCGTTNNNACCGGTNNCCCACAATCTTATTA TCNNCATNGGTCNAGTTACTGCTTGNAGTAGGANGTTCGTTTGNCNNAAAGGCCNTNAATGAAATNTTNCAGNCNNAGGC GCTCNATNGNNNNTNTNGNGNGTGGCNNNNGCAGGGCCANGAGTGCCCAAAATGCNCCNCAAGCGGCATGACGATNTTTT CNTAGTTTCCNCNTGATATTAAGCACTCCTCTAANTNAGNNACGNGNAACANGCCCNCAGACGAGTTTNGANGCGNTTTN NGAGACGTGGTNCTTAATNTTTACGTGGNNTGGCTGTGAGNTGTCTCTTTGGCATCGTANACTATTNAGACAANATCTTG NCACANACNTCNTCGGANNGNCCAAGTNTNNAATTATTNTTGGACACGNGNTTCCNTAGACNCGCNNGGTCTATCGGGTT TGTTCTTACTCGCTNGTAGTTCGTCGAGCGTNGANTATNGGCATCTTAAGCGANGAATCTCNNAATNGGNCCGTGGTGNA GACNGGTGNATGATNNTACANTNANANCNGGNNAACAGAGCAACTANCCNGACANANACACCCTTNNGTCANACTGNNCA TGCNNGTTGATCGCNAGNCNTNATAACTNCCTACAGGGTCGCGAGGGACTGGGCNGGTGACGTAAATNCGGANAATNTGC NTCNCATCNTGNTAGAAACNGTCTTGANCTATGGGTCGCACGCANCANAANACCCAGGGTCTTAACNNTTGTNATTANCT AAGCANGNCNACTCGTATANTGAAGTCGCTCNGCCGNCAAANNNCNAAGNGGCTGCNANTNGAGTNANCNNCGCNNNTNG CCNNGATGAATTTAATGNNGNACACCNGNNGTCACGAACNGGTTACNCGCGAGTGNGNCATNCAGTTTGACACNTTNCCA CGCNANTGATNTGNNATTNGTTGNAGNGTCATAGTNGTCANCCGNGCCCGATGGNTNGNNTACTGGCATGTTNTTGNCTN TAATACCNNCTGNGNNTAGCATAAGCTAGNNCCGTNNTAAGCGAGCTTCGCGTTGGGAGGTACGCCNCGNANCCNNNAAN NNTCNNTAACTGNAGTGAAAGAGGAAANTGTNCAGCGTTGNTGGNNACTANNNAAGCCNCTANGCNGCANNATNGGAGTN GNGGGNCCGGNAANGTGNNGNNAAACCCTCNTNNNTCNNCAANNNTTCGNCNTCTAAAGGNNGNCATTATGTGGNCTNNG ANNAGCTNTANTTGCGTCTTTGNNCGGAAGATGCTNNNCGTNATCNNTNNGGTACGGGCGNACCANGANTGGNNNTGNNA CNAGAGCNAACGTGTNCTGGTNANTATAAGGNCGNAGGGGGAANANCCNAAATANGCCGATTNTAANGCNNGNNTTGTCC CGCGANTCCAATGCNCCAAAGTNANNGNCNCGNGCNTTNNAGACTNNTNGTATTCTCNCACANGATGTTTNTTNCCTGNN TTNCGTNTTCGTGTANNCCTANNGNNTNCAAAATACACNNTAGCTCGTGTTTGNCCTCNAGNTCAGGTGGGTACTNACGC TGTCGTGNGNGACGNCTNGTAGCATTTAGGTGNTCCCGCACCATTGTGNAANTNCNNNTNAAAGCCTTTNANCNAACTGC CAAGACNGTGGAACGNGNCTCNCGGCCNGACAAATNCCCATACCAANCCAAANNAGNNTTCACTNNNGTTTGTAGCATCA CNGTTACTNAGTTANANTNTAAAGAGAGNGNTTACGGCNCNGNCCGANCGATGGAGCGAGTCANCNTANNNGTGCTTNTT GCGTACCNTTCANTGNNGNNGCNNCGTTNGGTNCCNANCACNCNNAGCATTNNGANNTGAAGACNCACNCNGNGATNCTT CCCCNGACTAGNGGCNGNCNNGGNCNAAGCGNGCAGCAAGGCCGACNTAGCCTTTGAGTGNANTACNNNNCGATAGCGTT CNNGNCCNGNGAGGTNATNGCTTGGATNAGACCTATNGCNTCTCCNGATTCATCNTAGTATANNTNAGTATGGCGNCNAC TTTNNTATGANNACCNNNNGACTTTANCCTNATCCNNCCNCNGCGCANNTCGANTCNCCAANTCTGGNTNTNAATGNNNN AGTCACCAGGAGNNCNTCGATTCNCCCGNATGGTNNANCACTTGTAATATGCTNNTGCTTNATTNTCNACATGCNTANAC TGGTCGNGGTGNANTCAGNGGNNCTGNNTCTACNCTTAANCCCNTNANTTNTTTTCATTGAACNCNACNAGGCCCGGAAG CNATNNGGCCNTTNATCGTTGNAATGCANGTANGAGCGGAATCACCNNTGANAGTGGCTCNCGACACNTGNCNGTTTNNT NTTTAGCNTAGTGTAANTGTNAACNANTGNAGTCCCANCCAACNNTTTGNCNAGAGATNTTNNCGTANACGGAANAAGGC GCCACNGNTGTCCNGAGANNCACATGNCNATANGTTATNAGGNTTCGTAGTCNNTGAAACCTACAANTAAGGGGATANTC ACANGGNGNATATGCAACTTTTCGTAATTTNTTCNGGATTTNNNCCAAANTTAAGANGAGNTGTCCACCNTTANNTCNAC ACAGGNCNAGTCACCGNGTNTNTNCGNGGCTCCNANNNAGNCCCNNTNNNTAAGNNNNAACCGTCNGCTNNTACNGNCAT CNGGTACTCTGNGCGAACTGNTATANCAAACGNACTNCNTGANCCTACGGCGATCCTCGCGTAANCTAGACGGTNNNCAA TGCGAGCATCGGACGNTGCACNTAATNTANNNGCTGGGNAAGNNTGANTCNNACTTNNACGAATNGCCNCGNNANCATCT NACANNTANNTCGGCNGTTGACTCGGCTGCTNCCCTTCAACCCTACTACGCACGTTTAGTATCGANTANAGAGGGTTCCC CCTNACTTCCGNCGTATCCTANGCNCTNNGGCATTNTAGTATNGNGAAATCCAGCCACCNNCTGCATGCTATATCTNTNG NNGTACGNGGNGATNTGNNCCNGANGTCTNCTCGAGTACNNTTCGCNNNACGGGCTATCCTAGTGTGCAATGCGGTNNCT CACAGACNCNTCCGAACAANGAANNGACNGAGNNGTGCTTNNTCTNAATTGGTGGNGAGCCAANNGCCCAANGTTNAGAG ACGNGTNNAANNGCCCCGTGCGCTTTTACTCNGGATGTCGNGANCNNNCNGGCGGTAAGGNGCNCATNCGAANCCANANT GAGCGNNGGTGNAANCTTCCCCGAGNANCNCTCNGTCTGNNCGGGATCCNNTGNGCNCAGGAGGANTGGTTANNGNAGNG TCTNGCTCGCACCCNANCTTGAGACNTNGNTCANNNNGGGTATNANNTGNCATAANATTACNCCGTGTCNNGATTTCGCN TGAATNGCAAATTTGANGNTAAACCNNCGCTTTGGNAANTTATCNGGANNCATCGAGAAGNANATCAGTGNGTCNANNTN TNNCCCNACTCAGGNTTTGTGNTNNNTGGCNGGATCGCTTTTCTTANGACNNGACANNGNGTNNTGAGTCCTNCGTNNCN AGCCCTCGCAACNATCTCACNTCGCTAACNCCACGAATACNCNAGATNANTGCNTNCNCNAACCTTTCNTATNTGNCTNG TACCGGNGTANTTTGGTANCNTGTGTGNGTAANNANTAGATTANAGTGNAAGGTGNNTTTGAGNGNGCCTNNAANATGGC AANTNCAAACCGCCNTCGCANGCGANCANGGGACNNACTTTTGNANTCGGGACCACCCAGNGCGGCGGTGCGNTNAATNC NTCNCGGGACNAACGGNGNGAAANTANTCNTTATNGGGNATNATNCCGGTCNCAAACNCGTGCTAGACCACAGTNACCNC TGGCTTGGANACGTCANAGGNGTACNACNNNGAGGTCCNCAAACGNCAGACTGCCGTNCCANNCNNNNCTAATTAACTNC TTGANTGTACNCNCCGCGATNGCGTCACCANCTNGCATTGTANTGGTANTTNTCTAANNNATCNNTTATNTNCGCGGGAA ATCNGCGCAAGTGACGNANTCCATCTNANAGCATTTTTCNCTCAANNATNTNATTNNCGNNTCCAGCCAGTTNNGCNCCN GNGGANNGGGCAATGTAATCCTGGNNNAAGGGTTNATNTGNAGTNGGGTCNTNGAGCGTCGAATTANAACCTGTGGTCNC TCNNNCANTGCCGATACNNCNNNCTCNTTTGANTTNCTCNCTCATTGCTCCCANGGGTGAGCTNGNTCCGTNGCTCGTAA GANTGCTGTNCCGANTNNGCNCANAATAAANAACANTACTAGTTGANANTTTCGCTNTCCTTNGNNANGACCTTGCACGA CNANTTACCGAAAGGGATTAGNAAGNTANNGNATCACANCNGNACTTGTAGTGNNNTGGCNATNTCTCNCNATGNNANGA TANCCCGAAGGANACNCTAAATAATGNCANACGGNCCGNTTATGANGCGCATCCCNACTCGNGGCNGNAGCNTNNTCCTN ANANCNTNNTACNAAGCNGATAAGAGNGGNAGCCTCNGTCANATATTTCTCNGGTGNCTGTAGNTNTCNAACGAANTAAC CNCCTGTTTCNNACTTGNGGATGCNCACTCGCAATCCTTNGGNNTGANCGGCGCCGTCCCGGTGANCGTAAGAGACTTAN ANCTGTACTCGTNNNNCCNGCGTTACAATCCNNNCCGCTGGGTNNCCGGCGGCNTCCGACTAGAGATTGGCNNCAGAGCG CCNACGACGTNACCTACAGAANTNCCNGNANCNCANAANGAGANNACCATGCNTNTCGGTGNGNNNCNACTTCAGNATTN GGACTTACNANACNTAAGTCTAACTCATNGTTCANNTAAGTCAACAATTAGCCAGGCNNAGACNANTAGATAGTCGTNAG TGCGNTGCGGGTNCNAGNNATGAGTCNGTAACNGNANGTNNACCCGCTAGNGACANGANNNNGTCCNTGGTNCGCGGNCC TCNATTGTTCAAGCANNNTTNGATCNTACACNNCTNCTCNGNTNNAACTTNTTCACACAAGTCANCATAGCNGAGACACC GTATTCCCGGATAANNACTATTGGAGTNAAAGTNGCTGAAATAAGNGCAGGGGANNNNNCGCGCGCNGCGCCAGNNGGNG NGTNNACNTNAATGGCCCTCGCANGCAANCNNTTTTCAANAACNTCTAGCANNGGACCTNGGCGACGGTNGCGNTNCNAA NATTNGCTTGNGGGATGGANGNAGCCGGNNCAAGNTAAAANCCTNCTCGANCTTGNNTAATTCGATCNTANAGCCGACGC NNNTCCCCGNNCNGCAGATGGGGCNGTCCGCANTTGTGACCNNTCGCAGCGANCTNCATGNANTNGGTNCNGAGGATANT GNGAGGGTCACCNATCNTGACGGANNTGGCCNANNCCTTCGNNTGAGTAACNNNCGANGGGATNTTGNCTTNAGNCNTCA NGTGGCATGNTNCAGTGCTGGGAAACNCTNCANNTNAGGANTTCTNGCCCCTGACANCGGGNGNAGCGGCGGTATNANCC CNAGGANCTGCGNTAAACANTCNNCNTTNTANNCGNNNGCCCGACTTAAANGACTANCCGGGTNAGNTAAGCATNGACAA GGAANTAACNTGGNCNNNCCNNGANCGATGTACTNATCNNTTCNTNNGGGGANTACCAGATTTCNACNGAGTACCGNNAA CCNGNCGGTGANTCAGCNGAGCCCNGATCGTATTGGTCAGAACCGNTGTANCTNCCGANNTCANGANATNTNTNCNACGN NCNANCAAGCNNTTTNTTCTGTNNTCTNTGTANCCAAGANGTNAAACCCATACNNNCCGCNTTGGTTNCCTAGTCGAAGN ANAAATGTNTCACTCGNACTATATCNTGTNGTAGNTATACCNCCCCGCCNATNAGGNNCCAAGTNANNGCGGNACTNCNG GGTTCNTCANTGGTGGTNTTGGAGTGNATTTATAAGNNNGTNANNNANCNCGCCGGATNACNAGAGCANNTNCCCTATNA NANACGCCGNATNTCGAACAAAGAAACCGAGCGGCTCNNNCGCTGCCCNANNTAAATCNNNGACGCCAAAGCNATNCGAC TGATNCNTGCAGNANACTAGNNTGAATANAGCAGNAGTTTNNNGTGCTAGCTGCANTCGNTNGANTGCCTANNNCNACGN ANCNTGTANAGCGTANCAAANACGCGGTNACAGATANCAAGANAATGTCNNCCCNANATAATGNAATTCCCGCTCNCANN AATAAGAAGNTGNGGGCGNTTACNAGCTAGGTNACGTTGACTNGNAAGGCATNCCNTNGACNGNCTTNGGTCATCNGTNN NNCCTGNGGCACCCNACNGGTNCTNTCCNGTACTTACTGGTTCCTTCGGGCACNGCCNACANCATATGAAANGCTCATNN CCGNTGCACNNAGGGGCTNCTNNNACCANTNCNAGCGCGTNCGGTNNAATNCGGCCNCCTGTNCCGNGAGTGTGTNATCC CGNCTTCTGGNNTAATANTTGGGNGTANACTNNAATGATGCAAATATGGCCNTAGCCTNCCGCGGGGGTCCACANCCTNC TGNGTATGNCGGCACGTCCTTGCNCTTTGCACGACCATTANGCAGTACANAGAACTGCTGNGNNCACCATTNACGCCCCG TNTNCCATNNTATTNGATTGATCANAGGAATCAATGCGCTACTNNNNACNNTTCAGCCGTCACAGGGCGCCCCGATGAAA NCCTTACNGGTATATCNCNGAAAACTACTCGANNCGCGTNANTCCGGNATCCNTNGAANCCATTGNANNAGTNGAGCNNG TAGGCNCGGTNANTCCTTGTGCGTACTGAGACGTAATNGTACATGGCNNACGACTTTANGTNCTGAAGNNNATATGANTC NNNCGTNCTCAAAAGCNAATNCTCNTATAAGCCGNNCNCGANGCTANNCNAAANAGGAGGGGGCGGTAGTAAGCGNGTGT GAGGAACAAGNTTNGGNGGATNNANTTCGTNGCCNNATCGGTGNNCATTAAACGCCNNNNCNTCCGTGTTNANNATCNNC GGATATTATCGNCAGGCTCCTNGACCAGNTTATCCCAGNGGAGCNATATNAATGAGNGAGTTNGTCCGAAACCTATTGTT GATTACACGNACAGNGCCNCNACCAGATCGTATATTATNCGCNGATAGNCAAGTTCGGCGCNNAGNTGCNNGTAGACNAN CNNACGATCAGANCNNGGNNNNNCCNAAATCNCCNANCNCATGNCTAATCANCATACNANCGCNNNCANACGTTAGAANG GCTATANGACTGNTNCCAACCCTCNNNCACGGNTGATCTGTNCAANNTGAACAGTNGNTGCTNNACGCCACCCANGAATN GCTNCTAAANTANCAGCTNCGNANTGGTGCNCNNNCGTAAACATGNGCNATTATNCANTNTANTTNTGTAGCNGTNACTT NTTGCTTTTATNAGCTAGTAGNNGNCCGGGTNGTGAGGGANNGCACCACANGNCTACNNGATCNGTANNGCGNTATCGTT NGTNTNTNNGTCCCANCNGGACCNCNNGNNGAAGNGTCNCAGCTAGNGATGCAACAGCTGTGCGGTGCTNCATGATNGTC AGGTAANNNATCATTAATTNAAGNNNGTGGTGGCANNAAGCNCGAGTCAGATGTCCGGNTCCNAGTNTNNTCTCNNNACA NGCACATTNNNAAGACGGGATNGNNGATCACNANCAANNGCTANGCCANCTGNAGTGGATATNNNNCNCATNNTNTGCTG GTGCNGNTAGCTTCNGCTCANANGNANGANCTTTAATANNAGGTNTTAGGCCCACTTGCGTGAGANGCACNNTNNCACCA GAGNANGTNAGGGAAGNANNCCAATTATNTAGGNNTGACNGTTNACGTCAGGTNGCATNTGCNTNTTTCTNAAGCTNNNC CATTTCGGNGNTAANCTAAGTCTTNCATCNNGCTATTNNNCNTCATNCCCACGCNAAAGCGCTTGNNACTATTTGANTTN NTCCGCCCAGTCACCGTCTACGATCTAGATTTCTTNNGCCATNTTTNNTCACGTTTACNAGTGTAGAACCNNAAGNNGGT NNANCNNGGNACCNAATCTCGNCCANACACCNGCCNAGGGGGCAGGCNNTCNCGNTCNGNAGTAGACAANNTATCCTTTG CTATAATCTGATGAANAANNATGCCCGTCACAGANANTTGGTANGCACTTGTNNGTGNCCCATCGCTCNNCTGTAATGGN NTNNCTNNATACGGGNTGACTATGGGCGTNAGCCACATCACAGGCTGAAACTGGCCAGGCATNANGATGGATNACATGAT GGACNANCGGGGATAGNNTNGNGNGGTTGTGTGGGAGTCAGATAGAGCTCGGAANNGCGACATANGNTATGTGNNCNNCN GAAGGCTTGNCGANNTACCTTNNTCTANNACGATTANGCACGCNGTTAATNGGNGCTACTGCGNACCCGCNATCCNNGCN TCANGGATGGGTNCAGNTAGATGAGGTAATGTGNCGATCNTTGNTCNCNGGNNCAGTCGATCTAGNGCAAATGGTCNTGG ACNGNTNCCNNNNGACGANTNCGCTCTCGCGTAATGGTCACATCCGNNAGCGNTGAGATANGGNGACTANTTCCCGCTCN ANGACGTTNCNCNTNGTCCTATTACANTATGCCATNAANNAACGTNGGCNNGCGGGCCNCTGTAANCNNTNTTCAATAAG TGGGNGGGANTACGANCTCTNNANTNNNACGTNCGNACCCCCGGTCGCTAGNANTTGGGTTCGAACAGNCAGNTTAACCN TACNCCGNCTNNCATTTTGAANNAGGNGCTGNAAGANAATNCANCCNCNTCGGGTNCNNTCCTCAAAGTTNAAGNNANNA CCCCATCANATTNNTGATCATGATAAGATCTNAGNTGCANTAAGACAAGNNGGATNGGCTGANTAGGGAGAGTTAAACGT NGTGNAATTGAGATNACACTCANACACTAAACCTNTGANCCCNNNAGTTGAAACANNCACTGNNGGGACNGCGAAGNCNA CATGNGAGANTGGTNNCGTANCACAAAGTNCTTTTTCCTANNAANNNTCACGNGTCNCCGNCTGTNACCGACGNGCTANN ANNTGCTGNCCCGNACTCTTNACAGCGAGTATCGCGGCGTNNCGNNTNNNANAATGTNATNGTNCTTTCTCANAGATACC GTGTCANGCNAAANCNNTNNATAGGGGTGGANAAATNATTTAGAATACTTGCAACCAACCTTTNCACCNNTGNTGNTGAT ANACCAAGCTGCTGCNNCANGANTNNTNCNCGCANCGGCCTCGANAANCANTGCCGTNANCCANTNNCACCTTTCNTTCG NAGGCGTCTTTCGAAAATNGTTGTNCGCCAAAGTNNACAGCACGAAGNANGAGGCTTTAACATCAGCTGCTNCNGGACAG GCTNGGNNTTNCTTNTGTGCGCCTGNACAGTCNNCCCNATNNGNATCGAATNNATGTNCGCTATNAGGTNATGNTATATG TANTGGCTGTTTATTNNGCATGCGANGTNGTGGATANCCTAAGCCANAGGAAGCCNCATTGATCNTGAAGACAGAGAATC ATTNCTTGTCNACAATAANCGTCCNCAAGCGANGANGACAACGTCAGTGTGNACCGTNTGNNGGGATNNNNGGCGNATNG NAGACTCACGTNCGATNCTAGACTGANNNAGCGGGCGGAGCCNCCGNCANACNNGAGAAGTGTGTGAAGANAGCGTNGGA ATCGNCATNATNANATCCGNGATANTCGTGCCCCTTGNTNAGAGCNAATNACAANNGNGCCTTGNGANGATCNGGATGCA CNTAATGGGCGNTCNTGCCNACACTCANAGNGCGCGNNGTACGANACGANNATTTCGGNAGAGTGACNAATACAAGCNAC TTGAATNGANCCCACCGGCCGAAAAATCTCCNATNNGNGTGNATGGGCCNNGTNGCNNANNGCCAGNGNGNCATTTATGG NNCGATAGACCCTCTTACNCTANTGTATGCNGNCACGGNANANTGGNTNCACAAGNAACATNTTNATNCTTNNTATTCGN CANGNNACGCGNCGGGGGAGNNTATNGTATAGTNGNTCANCTNTGGGATGTGGCGANCATNAAGCCCTNGNTTCGGNNNG NTATCGATANCAGNNGGNCNATCCCCCNNNCGTTNNCTGGACAAAAATCAAGNACTNNTCGNGNNCTATNGNCTNNTTGA ACCTTTGACCAGACATGCCTGATNCANCGGCGGAAACTCGACGACAGGATGCGTCNAAGCCGNTNACANNNGNCCANGCN CAANANCCTGTCGGNCGGGGGGNGTGAAGCTTTANGNNGNGNCTTGCCCTGNCATTTGTNACGACGNTGGCAACNANNTT TNACNANGGNCGNTCTGNTTAGAGGAAATTCCGTNNAGTNCANNNCNAGTAGTAAGATNNNNGCCGATCGNCCANACACN TACAGGTGGGATGANCANTCCCATATGCTAAGGNANGTNATCCCGANNGAGAAAGTNAAATNTGTNGANACCAAATGGCN GNCCCGAGNCTTGATNATTGAGTTGGNCAGNCCGTCGCNACACCTGNGNNTGGGNGAGCANTTTCTGATCACCTNNAAGN NGGGACATTTGTAGTANACNGTNGAAGATNNCATNCATCCTCTTTCCANCANGGGCANTTGTNNCACNATNGANCGTCTG CTATNGTACTTTGTCCTAGTCNNGGCTAGAGNCCGTCGATAGNNACNCGAGAACAGTTNGGNNNANGGCATATAGAGGAC CCCTGANAGTGTTATNTAGCATNACGCNNCTAATGGGCCGNTGNGCCNAGCATGGGNCTCNACCTCTTGCNCNAANNTAG CCANANCTTTGTTCCGAGNNGACGNTCANGNGNCTCNGGNAGANGNTGNCNTAGCTACTGCAATACCTCGCATAGNGCNA NCGCGGAATCGCAGGTTGCAGCANTTGGNCCCTNTCAACTANNNAGNGTACACCCCTGGCNACGGGGACGGTTNNANATC CCCAGGCAGNNCNACTGNGTGTTGCTNNAACGCAGNTNGCANTNNTAACNGNCTTTGANGAANNTGGTCCGTAAGCTNGN CGAATNAATTGTGNNNGTNNCGACGATNNACNNGATCATCANTTNCACGATCTCTNTGNAACCCCAGAACNNNTGCTCNG GCGGNCTGNGCGGTANNGGAGATNAAGCGACCGAGNATGCNCNANGATNNATANGGATTGNCTCNCTGGCNCCCGATCGG ATNAATNAGTCAATGTAATAACCCNTNGTTCGNNCAGCAANATNAAATGCATCNGCCGCTNNTAAACTGNTNNNTCGCCN GTAGAAAAACTANACATGTTAAGGANTCCTATTTTTTCCNANTNGCTNANCTNGATTNNCGGCGGCGNGTANGNGCATCN GAAANGTTAACAGTGCNTACNNCATACNGATAAAANCGGNTTAGCNTTNGAGCNNCNTCGAAATACCNTCNNCAGGAANC NNCNTCNTGAAAGCCNTNATANGNGGNTTCNNGATNCCNCGCGAATNGNCANANGGTNNCNTCCGACGCTCCCGTTATTT AGTNAANCAGNACCTTNNGATGNGCCTNGGGAGNAATCATCCANNCAAGTAACCTCCTCTAGCNGGGGCTANNAACTTAT GTGTNNCNTGGAANTNCATGCCAGGAACGNAATGCGGTTNCTGTATATNCCTTNNGNNCTNGAATTCGGTNATCNCNNNT TCGACCGCTCGTCTNTTGCTTCNGCTCCGGAAGTCCATCNATTTCTNAAGGANNTCCCGGACTGCNGCGTGNCCTTCGAN TNCTTAAGCCGCNTTGCGNTGNGTTNGNGTNAACNGATTCAGANNAGCTNCTTGNCCNATGGACAATTCGANTNANAGGN CACNNCNTGGCGCGGNCNCGGNGTGGNAAANGTTNAGNACAGTGTTNCGATAGAGCTNGCCCCGGTTNGGCGGNACCNNC AGCGTTCACATGATGANNCNGCTGGAGGNTNTGTNGGNTCNNATATTAATNTAACTTNGTAATCCCCGNGTGGANGTGTG TTCGGTTNCNTNGGNGAGTGGTGATACCGCTNCNAATNACGGNGTGNAGNCACCGTNCCANNTGNACANTACATANGTCG AGCACTTGNNTNCCATNGTCATGACAGGTGTANNNNNATAGGACNCAATCAGGNNTCNCNCNTTGTNAACTGATCGTNNA GTACTAGNGANGTANCNTCNANTAGNNNGTNNGCCATCCTCGTTGCTNNTACANCCGGNAACATNACCACGTCNNGTGCN TGTNTGNATTCCNCGGTNNCGTCACNNATNCTNGNNAANANNGTAATAGCGATTTGAGATAGGNNACTCCGCGCCTANGC CTTGAANNCNNTTNTAAGTCGCGCGCCNTANGNGNCTCCTNGCCGCGTANNNGACGGNCGGTNGNGTCCCGNGGTNNCNN AAAGANAGATGNCCCCCCCGTCNTNCNCCCGNACACAGTCATCNTTNCTTCGNNCGTATATGNTAGNNCTGAGNCNCCGC NGCCCCTGTAGANATCAGCTGANGNGCCTNGTNTTGNTGACCTACNTTCTATANANTGCCGTTATGTNCATNNGCANCAA GAGCACNNGNGCNTCNCGNACANNANCCGANNCTNCNANGTGGAGGNAGGCATAATCNCTGCTAGCAATNAACTGCNCNT CAGANTCTCGANCCCGANNGCAGGAGTCATNCNGAGTGNGCAGCANGTGAAGAAGTGAACNAGTGNGNGTTACAATTCAA CCGANNCCGTGTAAGGNCGNGGCCTNTNGAGCCGAGGNGGGCTCTTTNACCTACCTNGNGAAATNNAGAGGGTCNGTTNT NNCTTNCAAGGCATTTANCNAGAAGGGANGTNNCNNTNCATGTGGTTGCCATANCTTGGNNNTTCTCACNTTNNNNCCTN GCGGGAGAANGGCGCCAGTGAATCAANCCATCNCCTCAACCNACNGGNTNCNGTNCAATTGTCAANCAGAGGGCTCGACC GTGNGTNCGNGAAGNACNCGACTNANGGNGCGGAGTACTACCTGTNCGTNTNNTACACTNCGTGNGCAANNTATNTATCG TAGANGTACNACTCTTNATAGNCCNNNCGTAGTGAGTNTNTGACGNANAGGCTCGGNCAANCNGGNCTAGTTANNTAGNN NTTNCCCTGTGCNGNTANGCNCCNGGNAATGTNTNTCNTNCATTGAGANTNACATAAAAATATNCNTTNGTGNNACCTAN NNCNCTTCTATGACGCCNATNTNCNGTCTNCGGNNCTCNCNNCATTCNGAGNANAACTACTGGNGGNCNCTATTCGGCAT CNNNNACANTAANAACATGCATGGTNNCGGTTNACATAGANTCTCGTTGNATAGGTCCAAGCTACAGACANANTTACGCC CTAGGCTAANTTTCCANTGCCTATCTGTTAGANTNAAACANTTACNNGGAAATNAGNTTTTCGGGCTACCCCTACCGATN ATCTCGCTTCTGTTCNTGCTCGNCAGTTCCCNTTGGAATNCGCACCTNNANCGANTTGCNNNGGACAANGNNCNCACGGN TAGCGGAANCACACTTTATTNTCTATGGNGCCTTNAGANNNNGGNNCGGCACCNTCNTCGAAAGTNGTGCCCAAGAGGAG CANTGTGGGCAGTTNAGANNNCCGGAGTCANGTCACNNANGCTACGANACAGTTGACATCGNTANGNNCCCTCCTNGGCA TNCGATTGNGNTANGTGGTTTCNACCGTNTGNTTNCNTATACTNGCGGGANNCTCNNNCCANCCNGTNNTTGGGCGCAGA NCTTAGGNNGCNATTCNTTNGNNTTNACAGAGNNACCACGTNNACCGCTCGTATATANTACTANTAGGTCNANNCGTTAG ATGTTTCGCAACCGGGGGATNCANANCCTAGGGNANNANGGNCNNTATNTTGGNTNNANNAAANACTCNGNGGNTTATTN CAGCCATNAAANGAACCGGNNCGTCANATNACCGNTNNGACAGTANGTGNCATTNNCGNAANANTANCNNACCAGGTCAN TTTNTNCAANCGANNAGCTCNTTNACGCTGNAGCGNNGTTCGCTTGTCCNNAGNTGGTCNCNANNACANTCGATCCTCAA ANCNNACANNGNCCTCNNTTCNGACGTGTAAAANTNATCGNCNNCNNGCNGTGTCAAGAGNTAATANCNGGTNNAATGNC TGNGNNGNCACTGACTNTATAGNNACCTGGCAANNCCGGTGAGAAACNNACCCANCGACGANNGACTTGNGTTTNGCCAA AACGTNAACCAAGCCNAGTTGNTGTACGTGCTNGTGAAAGGTNCCNNGNCAGCTNAGTNGTACTNNGTTTGACGGNGNAA TTAGCGCNGGTCCGGANANTTCGNGNNTTGGGNGAAGCTGNGGNCTCTNNTCTTATNTCACCCTNNTNNGACATTTNGCC CGCGNCCAGNNGNATNAGGCTTGCNNTCGTCCTNTCTCGNNGATAGNATGTCGATGAGCCTTANGGATANCCACTAGGCC GAATCCGNCAAATCCCTGNAGAGGTGTTCGANCATATGAGCCCTGTGTCTCNCCGNCCTACGAATNNNCCTGTTAATCCG CTNNANGTTGNGGNCGTTCTNCAANAGTGCGGGTNNAAGNGTACNGCCGCCGAACCGGTANNAGGNAGGGAGGNANGAAG GGGGGNGNCGCGGGAAACCACGTTGCANACGNGAAGCANGNAACCNGNNCCCTAGNCCCTCACGNTNGANATAGGGCNAG CGCNCTTNNGCNAGGTGNTTGCGCCNGAAGANTATTATTATNNAGCGTCACGCGTCATTANCACGATACACGGGGTTCAC ATNGTACTTAGACGATATCATTGGGGGATNGNNGCCACNGAGANNCCAGGTNNNCCACAACGTATCANNCCTGGACCAAC TNGCNAGGCCAAAAGGCACGTANCCGNCACCGACNTTNTNGTTGACCAATTNNANNANNCCTGATNGNCTNGTAGCGACG NACTNTTGTAATATANCNCTNNGANCGTGACNCNNTGNCATNTATAANGGCAGNACNGGAACANGANATGAGAAAGCATA CAGAGCGGTCATGCANNANGNGGNGANNNNGNANTCANCNNAANNNTNCCTGATNNAGTGTGTGNNNGNGGNGGNNNTGC TTACAAAATTTGNAGTGCNTANTGCNTTCNCNNCNGNCTNGGCCCCAGTCTNAATTGCCCTCNGTNNGCGANGAACCCGN NAANGAGGATTTTNNGGGATGAACAGAGGNNANTAATGATTCGATCGTGTTCNCTGNGTCGGATGNACTAGATTCNTACT TNCCGTCTGGCTANTNNAACCACGTGGCCGANACCGGTTGANCCCAGCCANATNCACACTCTATAAACNNTATCNNAGGA GATANNANNGTCAANGNATCTCATNNTGCGTGTCTTGTNTCGTGGCNGNTCNCGGNAGTTNTGNAATTAANTGCATGANC GACCTTNCGNTGNNNCGACTGNTATNNNNNGGTGAAGNCNCTGCNCCGGNTNGNTTNNCNGNGTATTAGNNGCCGTCGTG CNANGTGGCGNNNGCTGGGTNATCCTCTNCATCCNCCGNCNNAGNCACNTNGNNNTANNNACCNCAANCACNGNTACAGA TTTCCNNCNTNGAGTAANACGCNGGGGNTNCANNGCCGGTAAAACGAGCCCTAACCTNTAAGNGAAGCTCAGGCGNNTCN ATANTNATNCAATACNGCGACCTNTTTCTTTGCGACTGTNATGCTATANTTGNAAANAAATGCTANGGNCCGNTCNGATG CTCCCNTCCNTGTTGNNCCTGTTGGNCNNATCGATCAAATGCCATNAANNNACCAGNNTAATNANAAAGNGANGACGGNN CCATCNCGTAATCNTNCGGTAANGTNNGCCGCCGCNGGCNTATACCCCCATGANTGGTGNGCNNNAATGGNNNAGCGGGA NATCGCGNNNTAAGTNCGCNGTNGNGCTNACCGCGGACCTNCCCCTTCTTGCCNTACAACANNGAAANGANACNNNTCCN TTGTTGGTTGNTNNGCCNNGACCGTTGNGGTTNNAATAACAGCNNGNNCTAGATCNGCNCTTAATTNCCGNANGTATTNT GAAATTTATNCNNCCCTAACTNTCTGAGNTANCCNNNNGCTAAGTACNGCTANNTNGATTAGTCAGTAAGGCGTGCCAAC NTATTANTNGTCATNTANAGGCGNCGATCCAAGNGNTANTATCGCNTTGTGTNCCNTCACNACCNGACNGNCTNANACNC ATGGANCGCCTCNTCCTATCNAGAATNATNTAATNCCGGANGATNGGCNTNTACNGNGTCGAATCCNTNTAAGTCCNNTN ACCCCACGGATCANCTANACNTANAGAATGANACTTNNTTTTCTTTATTGTTTAATGNATTNGGCANCTGNTTCAGTATA CACGAGGTCCGNNGNACCNCNTCTNGNNTCANGTAGTCGNANTATCCTCTCATTTATTAGTTCCTGTGNAANTTGGNCNN NAATANNANGCTCATATTTTTAGNCGGGAGNAAGNNNCTNGNATNACTGANGGACTGCTACTCACTCNGNAAGGCAGNGT TCGCTACTAGCGNCNCANTTATGCATATTCGTNATAAAAANATTGATNCCCTACTTCGAAANANNTGCCNAAGTCTGATG CAAGNCCCATNAAAGCACTACATTTTTGGTNNATATACCGACGCTAANCAAGCCNGTCTCGNANNNGGANNTNGNGTGGN AGCACNCNGTGTANATGNATNGTANGGNGATCGGANNGACNCCNNCANCCTCTGCTGCCGNGTCAGAGANCNCTANNGTC NGTCCCNTNANAGCNCGTNCGGCGGGGGCCTAANGGTGTCCAACCGTCGGATACCGGTAAACTANACTGTCNNACGNGCG TGNCNTCANTGTCCNCCTNGCNACAANGATCGTCNANAATTTACANNCCNATCGCATTNAGGCGACTTANAGCCGTAGCG NACAAGACCNNAGNTACAGTGACACCGATCCAATGTAGGTCTNCNAATATCGNCGGGGNATCTTGCTCATTNGANNNTTG CNATNGNNCNATACCCTCCCAGGCTTACGCNNTAATTCTNNGCCGCGNANGTAAAAACGTACAATGTTACNAACACGCNC TGCGGCANGGAACNGCGCCNAGNTTTNCNCCCTCAAGNATTNTGACNCNAAGGANTACTCNNTTNTACNGGGCCGTTNAT NNCCCTGCNAATNANCGNATTGAGTCANACCNCNCNNNTCCNGTAANTGACCNGTNCGCCCCACNCCNGCTGNCTGAANA ACANTTATACGTGTGAGCNGNAGATGCGNTANCTACCCGGNTAAGCANNNAATGTGCTCAGNCTTANCNNGTTGTGTTNT NTATTTNACCGTATCCAAGCTNNATTNNNNNCGGGATCACGTTCGATNCAGCTAAANATTTACANAACTCAAATNAAGAT GTGGGGTNCGACATGNAGAAAGGGGNNNCTTAATCCNGTCCTNNGNTCTTNATCCNACGAAACGAGACTATANGCTCTAC CCTTCGCGGAAGNAAAANNACNGCCGTCGATCNTNANGNCTCTGANNNCTTNCACNANTNNCACNNCGTTCGTCTCTNNC GCTNNATCNTTTCANCACTNNCTAAATTNTACACNCCCCGAGGTNANTATCNACCTGCTGGGGGGCGNTTTACNAANTNN GTGNCCNCNCTGTGGCACTAGGGAGNGTTTTCGGANTTCTGAGNAGCTTACTTNTGTGGCATTAGTCAGATGNTNATATG CAANGNNGAGGGGCANTACCTCNTGNAAATGGAGTGCTAACANTNGTGNAGTTAANATATCCCGNAGTGGAGGNCNCTCG CTGCGNGNNTGGNANCGCCGCAATNGTACNTCTCGTTCNTTCAGGAGAGCANCGTGGCTTGATAGCNTAATNCNAGTGAT NCAAANGCTNAGCACTGGGGCGCTCNCAGTGANTGTCACNNANNAGGTTCTACCANNATNATCNNTCACATTAGCCNCCA CAGCATNCTACNNATGAANTTGTGATAAGCATCANNNAGNAANTGGATTANNGNGGTNGNACGATTNNTTNATTCTNNCN GNTTAAGTNGCTTTGGTGCTANGNNCGNAGTCTTATGCANACTATTAACTGAACATAAACCNACTNAGTNTATCAGGAAN CNGGTCGAACCATATNCNTAGCNCGAGGGCNTGTNTNNNATCTGTGNAATCACTGGTNGCTTTANTNNGGTNAANATCTC GATANAGGNAAGNTTGTAGGCAGGAATTGAAAGGATNCTATAGNGANCTGGCTGANNCGAGATTACCGCGGGNCCANATT GANGTCNGGATCNTACANNNNAGCGGCNCCNCNGGTTTACGTGGCAAACNCCTTTNATTTTTTNNNACTTATCCTTTGCC CCCCNNCCNCCTNANCNNAGCCGTCCGGGNCCNNAACGGANGGNATGNATTCGAAATCNANCNANCNTTAGTGAGGCGCC CGATCAGNAGCNTTTNANTAANATGANAANGCGGGATCAAACGGGCTNNNATCCNTNCNAGACGTCGCGTGGAATNGGAN NAGANAGACGCCGTGTTGNGNNNGNNNGCNGNTCANCCCNCATCTGAATATCGNCTAANGTNGNCNNATCTGGGNGTNNN TTCTCNNTCNGTACACNAAANNACANCCGNGTCGCNGGATTGGAGAATTCATTACANGNAAGCACACGGGTGNANTTTGG CCNTTGANGACCNNNTNTGNACCCGTGTNGACGCTCATCTCAAGNNCGGTGCGNNACANNCGCCTGTGTCTNANAANNNC GNTGTNNNATNNNACGNAACCGNGGNNTGGAAGGGATTNGNTNNGNGNTATACTGGATANGAAATANTGCTAGGANGGAA NGNACAATANGGNNNNTCGANAAGNATTGTCATNANTCNNTTGGATNNAGTGAGNANNCNANTAGANATCCAACNGNCGC TCACGCTTGCAGTGTNCANCTATCTTNNTNNTTCTGACTACAAATCCACGGTNCGTTNNTTGGAGAGTGTAGTTTTNATT AANCNNAACCTTGACTCANNTCGCTACGANGNNCTNGACAGACGCNANNNGGNGNGCCTNAGATGCTANAAANNAGCTTG GNTACACCAATCCTCTGACCTTCTTACTNNTTCNTCCCCAAAAACGTTTAGATNCTGCGNNTGAANNTCTTCGNGAATTC TGNCTGACCTCTGCTANANTNAGAATAATNCCGCCTTAAGCAANGACTNACNNGTCCTTNNNTNNTNCCNTACNCGTAGA NANNNACNATTTNCGAANNTCATAAAACACATTTCNCTGGATCTTGCTTAAGTCNAGCNNTTGACGNNNTTGGANNCNTA NCNNTNGAGCGGNGGAGAGACGCAGANCAANANTNCAGNAACTNNGANCACCGCGGAANCGGAANNACTGGTAAACAACA CNGCTCCNCTTANNAATGGTNACCCNCCANGCTTCGNGTCAGTNNANGNCTTCCGTNAATCNCCGCGTTAANTACCGATC NGNTAAAAGCGGGANGGTAGGAGTACNAAGNATCCGATNTCTTNATTNTTCTTNNTTNCNCAGANNANGCACCTNGGANA NGNAGGGNGNCATNTGGTCCTAGCNNTGTNCNNCTCCGAGANGGACTTCCACCCCGCANATATATCNGTTATAGAAGTNN GANGNNTCCGTNGTCGNCGACNNTGGTCTTTNANTNGNGATNGNNGNCAGNACTNTACNCGTCNTAGNTGNCCTGACTNC TTGCTNAGNAACCTNTGGAAACNNANTNTAGTGGCNTNTGNTCCGGAGAGGTTNAGACNTCATANNTNGNNTCTGCATNC CANATTCATGCTNAACCTATAAACGCTNCTTCGATTTTATCCGTAAGTNTGNAGCCCGTCGCTNGCGGNCAATGNNCCAN GCCGTCCCAATTCGTANNCTANCTNANCCACNNCTNGATTTATNGGTNAGGCANGCNGTGAGNNTANCNCTTCTTNTCAG GATAAGGCAAATAGTTAAANNTATATCNGCCCACCCGGCTGGGGCGTCTTTGGTNANAAAAACTAGCCNGTCTNGACTAA GAGGGCNCGCCCTATNTNGATAGTGTCGGCCNTNGANNGNNANCCTTNTACCTAAACCNANTTNAGCGCANGTCTCCAGC TGCNGTGATAGACCGGNATGCGGCACAGCANTACGCNNGCNGAANTANTCCACAGCACTTGCACTTACCGGAACCAAATA AAGNCCGTCACTCNAGNNTANGGCNTNCGTCNNGGAGGCGTTTAGACACGNGCAAATTTCTCACCCNGGTCGNCGATGGG GNNANNANTANNTNGNATGCCCANAGTCNGGTGNCGNAGTCAAANGATNTGCNTAGNGNCGGNGCNNAGTGTGTATNNGG NNNNACGTANGNATATGANNTGNGGTCNAACAANNTCNCNGCCNAATGANNACATTCAGANCAGCNTTTCNTACACGNTA GAANACGNNNTANCTTTCTGCNGCNNGNAGNGNTGGGCGAGTNAATTNNGCNNACCCCCCGAGCGNAAAGTGACNCTTCN NCAGCTANTNGNTNNTCTTCAGTCCATCGCNGNGACTACGTTNANGGCNCGACCCGNTTNTGTGTTCTACCTTGGAGTNT GCNATANTGNTNTTATCGCTCGANAATCCTCNGTATTCATTAGTCACCNCTCAAACNCGCAGNTCGCNTNAGCATTNCNT TNCTNNTNAGTGNNCAATNGNTCTCGCGGCNTTACCCCGNCANGANACNGCCTCTATGAGCTNGGCGACNCNACCNGAGC NCCNTACCNNNCAATAAGCGTANAATTANTGGCCAAACAATCANAATCTCCTGCCNGNNTAACCAANGATCCGGCAAAGC NCTATCATACCCGGACNNGTAATATNGTNATCTTTTNTAGTGGNCGCAGTTNTGNCATAATCGCTGCNNACCANCANGAA NGCGANNGGNGTTGACNGGANANTCCNGCCCNNNNNACATACNGGGTAANCCGANGNCCGCTCAANTAGCGNNTAGTAGA ANGCTNTTATAGGTAGCACNCCCNCGGCTNNNCGNGNAAGNAGTAGGGCNCGGGNNCGCAGGACAANGGANGCCNGNCTN CAGNCGTTGNCNANNTNAGAGNCTGNGTNGNGCCTTATNCAGACCTCCATNCNGTTCGNTTNCTCTGGGNCGGTGANCTC AATTACNNATTNNCCCNTTCANTTAATNTGGTTNCTCNACCTGANNGTNTTCTANGTCCNTATTGACANGNACGGGCGNC GCACNCCNCCCGCAATTTGCTACNTCNGNCCCCACAAGCGCGGGGCCATNTGAGTTTCAGGNGCGTGTTGAGGNAANCAT AAGANCTNNAGGGNANCGCTNCGATGCGGGCCANNCCGNAATGGGAATNCGNCTNTTCANCCTCTATCGGGGTGCNTTNT GGNGACTAAANGCCGNTCAACNCCNGNCACGACCGTGGGCGACTGANTTCNTAAAGCGTNAGNANTCTTAGNGCCCTNTT NGTCATNTGCGACCGAACAGNTGTTGTGTTACCATNATANNGGGANCTTTNNCCNGAANGTCNATNGGCTCTACGGNCTG AANNNANGTGNACATTAAAAGNNATTCTACTCTAGTTGCCNAACTNNAGAANGNGAATCCACTCGAANGTTGAACNCCCG CANTTCCNGNCGACCNNGNAGCNTAACNTAACCCNNCNTCCNNACCNTNGTAATAAGGNNTCAATCACNTNACGGNTCTC TTNTGCNNTTNGCTTANGNCNTNACNCNTCTNCCGATCTNNACTATNCTNTGAGATAATGNAGTGTTTNGAANCCCAAGA TGATNTANTCCGNNACCNGCGGNNTGNNCGCANTGNAATAACNCNNNATCGTNCCGTGACCCNTATCCTANTTTNAGCTC CGTTCTCCCCCTNTCNTACTTCCCNNGTTGGAAATGGAGTATNGNANNCCGANAATGCGATGCNTNNNACGNCTTCGATT TAGATGTTATAAANATTCNNTATCCGNTTNCCTTNNNNNANTNGCAGAACNCGNNAACNGATAGANTGCGANGGGTTTTN AATCAGCTNGANCGTCCNANGTNACTGTTCCCNNACNGGTCNTGNANGAGAGATACNNTNAGACNCNCACANTCAGNCNA AGACANCANGNGGGGNNTGCCNGCTATNCTCCAGGTTAGANCCGNNTGNTACATNTTNGNNANTGNTNGANNTNCTGTTG AAGATGCGCGGCNNTNCCCGATACCAATCCTTNGNNTGNGNANTNCACCAANTGTCGTTGTANAAANACNCNAGTAGCGT ANTAGNNNGNNNGGANCNCACACTAGCGGTAGATTACTAACAGAAAGGANGGTAGNAAATTCGGATTGCANTGAACTGGC ATNNGGCANCTACNNCANTGCCNNATTNNGANACTTTAANTGTGGGGAGACCGTACGCTATTTNTGANTTCCNATNANAC NAATGAANANNCGTTGCCGNTGNNTTANGGTGNGCCNNCTCTAANCCTGNCATCCACTNGAGNTGGANTTGCGGCNAGAC GAATCNTNNTAGACTAAACCTATTNNCCNAAACNNTGNACNCNTNTNNGANAAACTACNGGCTCNTNNNNCACCGCCCTC TCGCGCAACANANAGCCGAGTACAANNAGTCGTGGCANTCGGCNGCTNGTCCAATGNCCACTAGNGTCTCATATGNGTGT NGNNTGTCAACNCGTNCCTTTCNTANATNCCATNNAANCNTAGNGAACTGGNTAANTCNTTGTACAGCCCGTNCAATNCG NANCTNCCCGTTNTGCACNCCAAGTCGNTTANTCGAAGGTNATTNATCANGTNGTNTGTNNNNTGTGGCCAGATGACTGN CTNNNNATATACNAGTACCCCGNNCANNGNCTTNGCAGCNGGCTCTTNTACATTGATGGACATGTAAACNNANNTTTGCT TANTACTGANATGGNANTCTNCCNGCCCNGNTAGATCNAAAGGNCTCGGCTNCATTGGNNNAATAGATGCTCAGGCTCAA CGAACACGTTGNACTACCATNNAANCNGTNNNCTCCATGGNGTNTTNNTCNNCTNAAAGNAGTAGCTNATCGANNGNANC NNTCNCACACTNATACGGNGGNAAGCAANTNATACGTCNNAGTTNGANCANNCCTCGNNANCGGCNNTGGGNGTNNNCTA TNGGNACNNTTACTGANTCATAGNNNATNNTACTAGTTACTTCAATGNGTTNTNACCAGGCGNGTGTCACNNNCTATAAA CNGTACACTATTATCTAAGTATNANNNTNTNGGTNNTCGAACACCNGCNCNGNGNTGNNAGCTTNTTCTACTANTGTGNC GNGCCCANAGGTCGCAGGGAGGAGCANTATNAATACNGATGATTACNTATCAAAGGGNAAANAGCNNTTNGCCGNACAAC NGGAACTACGGCTCTAGNACNCGCGCNANCTACATATNCNNAGTCTCGCTCCGATGNNNGCTNNCCNNCTGGTNATNGCT TACCGCNCNTNATTACGCNTCTTNGGCNATGGACGACTTANGGANTCCTGCTGANNGATTTGATTTGGCCCTCAATCGAT CGCCCGNCATGAGANNNGCTTTCNAGCTCAGNGNGGNNNTGATAAGCACATCATTCGGANTGCCNACAATGGCNNCCNGA GTGCGCNTNGCCCNATNGGTNTTGGGCNATAGNANGACNNGCCTNATNGTCCCTTGNAAATGGTTAGGGNTAACNTGTNG CCATCGAANGAGGCAAATAAAAANGCNTGAAAGGNTNTCCGCTATCTANTGNGAAAGCAGNCTCTGGCCNTCTGAGNANA AACAACATGCGTANGCGTGTTNTGCTNGANTCGNNGTGGNTNNAAATNCCTNCTNCGCAAACNTTNTCCCANTCATAGNC NCAAACGTCTGCGNTNACATNCGTAGGACCGGNTAGGCTTNCANCNNANAGGTTATAANANNGGNTAANCCAGGAGCNCN NTNTGGGATNNNCCNTCCGGNAATTNTGTACCCCNAGCAAGGTACGANCNNGNCGCNAGCTCACGGTGGCTNTGCNATTN AGTGNTTNTANCGCCGNGGCCCGNANGAGGCGAGTCGTGTNAGTCTTTGNCGGAGAGTNNGATNTTTGGGNTGTCGCGAA NNCCTAGAACNTNNGGTATNGTNGACCAATCNCCACATNTNTAGGGGANTGTNAACAAAGGATGCNCCAGCTATGTNNAC TTCTNCCAGAATTGNGGATCGCACGGTNACNTCTCCTTGTTCCNANTGNTTAACGANCCTGNTAGTNGCNNANNAAGNAG TTGNGGNGTAGNCGAAGNANCTCANTNGTTCATGGTTATGTTTAGCAGTGGTGGTANNGTGCGGTGTATAGANNTTCTNG CGCNGNAACCNNCTTCGTGCAAGACANNGGTACACGTCGATTCNNNNCGGGCTNCAAGCNAGNACAACCANCTGTCGTTN NTGCCCGGCAACACGGNGCTGNCNNTCGTATCNAGTACATGNNCCGNTCGNCNATCTATTACNCNNCACCANTTAAGTNG TNGGGTNNTCAGGATNGTNAGNCTNGTTCAATCAATNTNACGTNTTNTTGTCNCCCANCGTNCCAATTNAGTNAGACTTN GAAGGATTGCTNAGGNTGCCNAACTGANAGNNNCGGNNNTCAGGACATGCAGTGNANANACNNGCGACNTNAACTCTGTN TTACNTAGAAATCTCGNTGCNNTTNGTNCNGAAGTGAGGGNGNCCTACGTGTCGTCANNGGTTTTGATACTGNATGAAGA TGACATNCGCGGNGANGATTNTAAGGGGAGGTANACNTACNNTGTCTNCANTAACTTCATCGGTGAGTAAGGANNANCNC NCCGCTTANTTNCTCACNTNCGAGCGCGAAGATNTCCGTNCCTGGCTGTNGCGGACTNTGTTNANTACGGATACCTTNCT GGCANGNNNANCACGGGACGNGGNGAGTCCCTNCNCTCNTTCGCGGACATAANGNGATNGCTGNANNTGNAAAGNTGTCA NAGNGNANNTGCCGGTCTAGCNCNGTTGANCATACCNATAANGNTGTCNNAAAGGGTCCGCGGACCNATCGTTTNTNACC CGANNCATCCCCCANAACTNCCGCAANCNGAGTCAACNTACNNCAAANNANANTATTTTGNAGNCNNTNGACCATGCTCG NATCNGNAAANCTNGCNTCGGGGCANGGATNNGTCCTNCTCNNATNATTNANGGTAACATTATCNNTGTNTTCATNNNCA ATNNCTTNNCNGGNNCNNCNNACAANCCTTNATTCTNGCTTNCGTNCAGTGAAAGCNGTCACANTTNGANTGCTTANCTG TAGGGCGGCTCTNTCGCGNCGAGAAACGNGGGNGNTNGGGNACTTGNNNTCACGGCNGNCGAANTCCNCTNNTCAAGTNG CAATTGTACNGAAANNAGNTGTCNTACNATCTCNNACNTTAANCANTTNCANTNCTNTGCTGCNTTNGCGTNNGCTTNCC TTGTACGGANGTNAATTNTCGGNNAGCTNTGANCTGCATCNTNGAAGNCTNGTNNCCCGNCGTTTTANGCAGAGNGNTCG TGAGAGGGNCGNAGCCCCATNNANGCGGCTNCCAGGGGCTCTGGNNANGCTTTGCNACGNCCCGNGCACTGTANGNCNCT ATGANCTGTTACGNTAANTCGACNTAGCAAGTGTCGNGCCCGTTGNNTTTTCNGTNNCCANCGTNGANNATNCCCNCAAG TAGAAANCTAGGTTGCCTAGANCTTCNTCAACGGNCAAGGGGCATGNCCNATGGTCGNNNGNGCAAGGATGANCGNNNGT TNGTGNANTCTCTTNGCNTNCGGGAGNGTTCTTGCNAATAGCGNGATNCCTTGCGNTTTANAANACGNGCGCTTTTNTNC NNNNCNCACCCGGACANCANTGNAAAGCTCNCCGNCNNATATTNTNCGANTTAGTCGNGATACNAGGGTAAACGACTCNC NNCTACTGATGTNNNCGNCTCGCTGTCCNTCTACGGAAGATANCTNCAANCTNTNNNNNAAATCAAANTNGATANANCCG AGTNGCTGGNGGGNAACCCATCTTTCGGCTCNCCCGTTNACNTNCTTCNAGNCTGNNGNCGGTGNATAGGNGAGGNTGCC GNNTNTTATCTGCAGTNCANNNTANCGAANANGTANCCCAGCTGGCNTNANGGGNCCNGNNAACTNNATGGNNGTATAGN GACNTNCTCCATNCNAATTGCCTNNGCACNATTTCGCNCATCNGNCTCTANTGTCCAGAGTNGGNTNNGTTANGGTAGNT GGNNCGNCCTNATCCNTANTTTNNGCCNAAATTTGAGGTACAGANTTCCTNANGTNTATNTNNTNNGNTTNNNGTTNCNT TGNTNCNGGGGTGTTNAAGTATAGNNATGGGGNCNCGNTTTTTGTATGCCTNGCNNNGNCCTTTCATNNGCTCGGCCTGA AGGTAGTCTAATNACTAACNCGNGAGGNATATCCAAAGTAATGACCNCGCNNATGCAGACTNTTNGNCGTAAGCNNANCC GTCTCCCTCTATTTTGACTTGTNTNACCANNNTGCTCTCTCGGTTNTGATGGNCCNNATATCNTGNNNGCGAGGAGGGTN GNTNANCTCTCNNGCNTATGCGTCCNTNCNNCGNATCNTAGNTAGNCTAGNANCTNCGAGTCATTGCTGGTAANNAATCC ACNCCAANCACTNAGTGTNACCANGNCCTAAGTTNNAGGNNGGCATCNCNNGCGNTCCNCNCCGNACGTTTTCGNGTTGT GANNGTAGNGGNGTCNCGAGAANGCNACGTTTNAGTCTAGGGTTNCTNTCTAGNAGNAACTTCGANNNCCACNCGCANCN ANTGCCGTACGGCNANNCTNGTGNTGCCGCTAGTNTGGGNTACAGANACCACCTTTNNTNGNGCNTGCNCGCCNNGCCTN ACGGAGCGANGCGATCGGCGAANCAGGAAGNACCGNNAGTGANCATNCNGANTNATCNTGCCAGTGCCTCCAGNCGAATG GNTCCANATANTANANAGCGAGACTGTTNTAANGGACTCCGNAGCNACCCGATGGTTNNGGACCGNNNNTGATGNANGGG GTTNNCANTTTGGCTGNCTGANTCTNNCCCCCCGGNCTCCTCNANANAATGCGATTTNGACNGGNACGNANGGCGGGANA TCTGATTANTGATGTANTTNNNAACCCNCAGNCCTCCTCAAGGCGCCNTNNCGTNNGNATCCTCNTNNAAGGACCGCNNA TGTGTGTCGGANAANGGTAGGCTCCACAATCATACGCANTCTCGNTANTGNCAAGNANGCCGNCGCCNCCCANCATNNGA ACAATAGNTTNGAACCTANGAACCGATGNATATACACTGATGCAACAATTNNTGTAGNTGGANCTGAGTCGGNTTGTAGG ANTCGCTGANNTGGTTCNTANNCAGGANTNACTNCGCGACCGCCTGGGTNNTATTACCNNATCGNNGGANNCATNTCGGN TCTATAAGTNCGNNCACGAGGAGCGAGGTNCATTGNNCGTNCTNTNNCANTTANNNCGTTCGGGAGCACANCGGCGNGTA NACNATGNNNCAGACGCTTACTACGANTCGACNCANCAAAACGGTANCGNTGTCTGGNNGCTNCCNGTTCGNNNNGNGNT GCNCNCTTGNNATGNCNNCTCTATCGANNTGGTTACGACCGTAATTACGAGNCAANAGCTATANNCTGTGAGCCTNTCAT CNGGTACGACNTGGTGACCTAGCNGCNNNNCAAGTCTCTANAGATCGGGNNCGAGCGTCCGGGCNNTGCNGCACCTATAT CCGGNTCNNGCATACTCTNTGNCNGCGATCATTGGTNACNTNGTACNGGTACAGTGTTGTNCCNGGNCNCTNTCGCCAGN CGTCANGGNTACCCTACNCTCNNNNCAGTATTGCATGNTGGATCANTNTCGCGCGGGNNNTGGGGTGTCGGCCNNGGNAG NCATTTNNTATGNACCNTTCATANAGGTNCTCCTGGCTCANGGANNCNACNNAGTTAGTNAACNCNTCTAATNCACGNGN ATCTNCNTATATCNNACNATGANAGAGNCATACNCTTNTCTANTGCGNGGAANANCGTCAACNCCACACGNNNTAGNTTT ANTTNNCGGANNTNTGTTATCGNTAGCCGCCGACNTGNATNTACTCCTGNCTTANCCGNNGGNACNACTTNGGAAGAGAG ACATNTAGTCGTTANCGTTCNNTAGNGTGGNTACNCGNAGNNGTATCNANCGACCTTAGCNGGNAGCCCNCAGACNCCGA TGTGNTACTCANNGTGCTANGAAGTAGTCCNTNCNGAGCATCANACAAGTATNGNTNTAGCACTNAACGTACGANGAGGG AGTCNACCCGCTNCANATTGANTCAGNCNNANACNAGTTGNNNGAANTTCGTANNACCCGCNTNACNGTANTAAGGTNCG TACAATCCNGCTGACCNTTGCTTNAAANCATCNCACNTCTGNTTTNAANGCCCGAANCAGCTCCTACNNACCCGGNTANC CGTGGTNTCNANTCCNNTTATNGAGTATGCTNGCAGGTANGGCTACGCTGGNAGGGATGNCTGGNNNNGTNTNGNGGTNT NNCGCCCNTTCTGNNTGAGGCTNAGGCTATCGGNAAAANCGNAGGCNGAGNNNCCCTTNATNTNGNCAACCGGCCTNATN GTAAGTGNAATGAGCGTGTTTTCTCCTNGTGNGTNNAATANGANGGCTAAANCANGATGTNGTGNAAGNNCGCTGTGTGA NCAANCTTNNNAGACNTGNNTAGACNTNACCACCCTAGACNNNCNGACACCCGGCTTTCTNGTNAGAATGTCCTTNNCGN TCNGCNCCCGNNACACCNAACATTATTCNANAAGCCGNATCNANGNGCNCGGGNAGAATTNANCGAAAGTCNCAACGCGN CANCCNACNGTNTTTAAAGACCCTACNGNNNANGCTCTTNGGCCTAAGCGGCNATAACCGACCNCCTAGCACCNNTNGTN AAAATNATACTNGACCGNCCGCTGGGTTGGGGTCGANGGAAGNNTCANNGCCCTCAACAGTGGGTCTNGCGAANGTNCCG GCANCTANNTNACTCNCCGAAGGTTGAAGNTACTGAAACAANAGANAGGNNCCTGCTCCAACCGCNTTCGGGANCTCACN GNNCAGGCAGTGCNATCTGTTNATCTNTGATCNNANCTAACNTGTGCCATNNNGTCGACNTGANATNCNTNCACTTTNNG CGCTCGNNNTTCNATCACTTGNGCCANCTTTAGGCAGGTCTACCGNNCTAGANTCNTNGGCCCNACTGGCGCTNATTACA CCGCCCCANTCCCTGCNCANAGNNACACCNNCTNNTNGCGGGCNNCNCTCANNAAGTCTCGCCTGNCTTNTTNAACNATG GAATGAAAACAGGCNNCAAGCGTGGTNAAANCAATCAGTGTAGCTNGACTGAGCAACTNNNNTNTGTCNANTNTNNATNA GNCTTNGGNTGCNCACGTGTCGCGNTCTTATGNGANNTTTAGACCAAAANNATCNNGNGGAGCGNAAGCAGTGGGGAGCN TAGTCACTANNCGGCAACGGNNNNNATNGANCANNTGANNGGNNCAGNANNTGNTNGNCGNNGAGCANTCTNCGAGANCC GTTGTNAGCAGGACNCACNNNAGAAATANNGAGCNCTCNATAGCGGANAAGACNATNCGANNGNCNGAANCNTCTCTGNT NGAACATNTNGTGTNNANATACATNAAGTGCNTGTTNANCGACAATAATNATTTTTANNCCAACANGANACGGTTNTTNA TNGTTTGCNAGCATNGGTGTCTCCCNTCAGCCCCCGGGGNAGGTANCAGGGCNTGGCNTTAAGNAGTNGGCNTTACTACG NTCNGNGGTNGGNCNTNTNACACGATCNTGAAGCCNGCCTAGGGGATGTCTCCCACAAAATGTGANACNNNGCNATNCGT ACATATTTGCNNAANGANAATNCNCTCTCNTNNNTTGGGNANCCNTNAAATNAACGGCGGTATCNANGAGGAGATCATNG CAACTGCGCTGTTGACTNANNGATCATCGANCCTGAGAAGANTCGCAGCNNNNTNGNAATCCGTGTCGNANNACATCCAC TAAAATNCTAGAAATNTCGTGGANGGTTNAACGATNGCNAGCATATACAGGACTAATCNNNTGGGNCGGCGNCCGTTAGG NAAGGNGCGGCNTCTGTNTCAAAACNTNCNNAAAGNNTAAGCATTATTCCTNCAGATGGNCAGNTGCGACNNNCTACTNG TTCNTNGAGGCGATCNTAACGTCATGCAGTCNNTNTGTTTTGGGCTGTTCAGCCAACTNCNTGTTTTGACAATGNNCCNA CGTAGAGGNCCCGNNANCNCCCCACTGGCNNANCCCCGACCNGCGAGCCACNNTTTTNGACTTCTTGGNNTGGAACTATA ATANACGATTGGAGTGCGCCCAAAGTTATGNACGTGNANNANTTNAGGAGTTGGCNATTCACTTAGTNNTNTTGGCGCCA TNCGCTCAAAANCCTGAGTNTNCNNNAANTNNNCGCGNGCGTCTNCACCNTATNATAACCAANTGAGGTGNGCGTACCTT NCNAANCGCNNGACAAGCGAAATATCGATNTGATTAGCATTCGCAACTACCNTNANGTTGGANATGTGCATCCGTATATG TATGGTTACCATGNTNCTNANGACTTGATNGACCGNTAGCAANCANGNNACNTTTGAAGTCCCAANATAGACCGGGCCCT NAGAAGNAAGTTATNATCCCTCCGCNNTTTNGAAAGTTNTATTGAGTCGTANANGTAANCANTTTTAGAACCAATTTTAG NGATCNTCTCNCACCNCACTCCNCGGCNNTANNCCNCAAGCCTTACNACTACCCTCNGTGAGGCTATAGGTTAATAATGC >chr2 NNTTTNTNAGACNNCAGCNTCGATTTAATGAATGCTCCNCNGGTCNTGANGTNGNGGCGCGGTTACNGCGCGCATGCATA TTTGCTNTTACNNCNACGNAAAGNNCNCGTTGATCTTTATTNGAATGCTNGCGGNCNACTNTNCTCNCNCNNAACNAANN NNCNCCNTCGTACNGTACTCACCGCANNCAGNANNNCANCTTGACGNCNTCCCNGGNCGTCAAGCAGGGNTCGTNAANCC ANNNGTAAACTNNTAACCTNTATGCAGNAACNTNNGCAGACCNCAANANAATGTGGNAGTGANCCAGCCCACGAACGNGA AATCNNNTGGNCGANACTNNATATAATGNGTGTTANCGTNGCCCCCCGGNACNGCNCCTACTGGGNANTGNCGGNAGATA GATCNGTNGCGNGCGGCCGAAATTGNTTCTANACCCTNCACAAAAACCCGNNCGTTCNNGAAATANTTGTGNACGTNTTG NNTGCTNCGCCNNGGGATNTGGNGGNCACTGACCGTNTATNTATGCTTAGTNTGGNGANGAATTGNNCTACGANGANTNN GAGGCAGGAAGNCGGTGTTNGGNAAAACCNTTNNATANGCATTTGCGGCTACATTNNGTTCAGNGCNANGTANNTGGGTG CTNNAAACNGCACACAGGNACACGAGNAATATGAGNAANAACCTATTNTCCNTNNGGNATNTGCNAAGAACGNNGANGAG CCCNNGCGAACGTNGCACNTACGCTTGTCCNCGAANAGANTTGGANGTANAGGGTTGCNGTCANTGGGNCAANGGGACNN GGAAGACAATNTCTATGAGCCNGANATANGGGGCNANTANGATTAGNCTNTCCAACGANNCNAGGGATGNAGNAATNAAT TNNNNTNTTANGGAAGCTCCANCGAGGAACGTTGNNTTTTTNCCANGCCGGACCNANGANCNCNCCACCNNAGNGNCNNG ATTTTGGGGACAGNGGCGNACAANNCCTTANCCTCTNAGTNGCANNAGCGGTTNCTGGAGGNTNCNTANANGTNAANTNC ATCATCTNATCGCACCCCCCTGTAAAGACCNNTTANNGATATGGCGAGCNNGNATAANNNCTGGNGAANCCNTNNCNGGA NGNCGGGTCTTATGACGATNATNTTGAATACATNACANANTGNTCNGTGCCNANTGTCGCACGTCTCANTGCTTANCCGN AGAATAANCANGNTAGTNGTTTCNGTGNATTNNGGGCGCNNTGCCACCCCAAANCGGAAAGCNGCGAACNACGTNGNTTA NTCNNNGTGANCNANGTCATANTTACTNGGTGGGTTNAGCCTGANACNTNCGTAAANATTACTTCGGNNTNNTGGNTNAN NNGGCNNCTNNNGNCAGNCATGACGAANCNGCNCGCCTGNCNCGTGGGTGNGACCTNNGNNNCNCCNATCACCNAAGNAC CGGGATACNGNNTTCATNCNNNGCGATTTGNAATATTGNTCTNATNAGACNTAGCGNNTAGNNGGTTCANTTNCNGCGGG TCANGGGGGTAGGGGGGGAACNTGGCNCTNAAACGTCNNACATNCANNGACGGCCTNTCCGNGGTNGNCNGGAGNGTNCG GACGCACGNTNGACNNACANGCCTACNGTNCATCCNTGATATGACATTTTTTCNAGANGACATAAGNGCCTTCTTGNNTN GNAATNACTACGTNTGGAGNCNGNTCCNTCGAAGAGCTGTNCNTTGATANACCCNTCTCCNTANTGTNATGNNGAANNAT TGCGGNNGATGATGAGNNNCATGNTAAGACCCTATANGGGGTATCCTCTNANTTCNANTNNNGCTACCCCCNGTTAANNN GTAATCNGANNTGGACGGANTNNNNNNNGCNGGCANATGCCTCTNGAACCNCCGANGNAAANATCGNGANTGTGNTNTGA NANCCAGCNTNGCTCAAAGAGNGGNAGCGGTTCNNGAGTGNNGCAGTGNNNNANCTCNGTGNTGGTGAGTNAATGCNTAN AGTACGNNTTGAGTNNANCGNACCTCACACGNACGCCNATATGNGNGTGGNAAAGCTTACAGNGAGCCTCANATGCGCNA NNGATNNAGTAATCACGTCAACACGGGNTNAGTACTCACTGTCCTAGTTNAGNATTAACGCTCNTNGACAGTATATTGNC CNTTGNNGGNCNCNGTNANCTNNNNTCATGTTCCCNACGAACCGACTNCGNCCNNATTNNCTGTCGGCNCGTCTTANCAT TTTCAAANNAACATCTACCANCTACTTGNNTGCTTCTGANACCNGCATGAACNTGCAACANNATNANAACGNATNGGGCT AGGGGATCCNCTGNNTCGNTGTNCGTNCAGCGTTTNAGCGANCNTNCNACTTNAAGTTNGTAAGANGGATNCNTTAGGAT AACTGNTAACGNANAGNCNCTTGATTTNGAGNGANNCTNNTNTCTCTAGATGNNNACGTCNCNGGTNCGGNTCNTTCACN TGTGCANGCTGCAACTCNNCCATNTAAGCCNGAAAGGAGAGGTCGTNTGGNCACANNTCTGATNCACANNANNCGACGNT AAGNCTANACAGGAATAANGAGAAGCGCATGCCNTCCCGNCAGGGTNGNCAATTAAGNGCNAGGCTAGCTAACGAGCNGT NNANATAACCCNATNTTNCATNGCTANCTGGGANTATACCAGNCGANAAGNNCTNNNNCGCGGNNTTTNANCANGCTCNG ACCNGNAATTTCCGGANGACCTGACCGTNTGCTACGAAACNCAATCAGTTGTTCNCTTTANTNANGANNGAAAANCTTCC TTCGTANCNCGTNGGNGGCGGTTNTCANCNNCCTCAACTGNGAGAANGTNTANNATCNTGCCGNGAATAACTTCCNAGGG NCNNCANAGTANATGTGAGNCATACCCTCTGTGCNGCACGNAATGNATCCCGTNCTGNNANCNGNGAAGTANANCANTCA CNCTGGAGNTNNTNCATCNANANGNCNGCNTTCNTAGGTGANGNNANANNGNCCNCGAGNTTCNNCNANNNAAATGGTGA AGNATATCNNCAGTCNNTTGNGCTNAGTCCACTNNGGACCTNCCGCAACTGAGNGNAGGGAAAAATCGGGNAGATGNCTC CNATNTCTATNAACNNAGNTCNCNCCNCGACGANGTNTCACCCATTNTTTACATTANCTGNGTAAANCTCACCNCACGNN CNCTCTNGNNCGANTNAGTAAAGAGNCTTNCGTGCANGGTNGGACNCTGCTNTTGNATNGCNTGNTCNCNAAGGANCNCT TGNAATNGANGGGGCCGGNCANNCGGGTAAACTGTNTAGGANGTCAANGNATCANTGTGGCNCTCNTCATNNGNTNGACT CNGCGGCGGATGCGGTGGNAAAATGTTTTACCTATANCTGCGAAGGACGTANAGCATNGCTNCGNATCCCCNNCCNCNTT CTGTNTCCNCGTGAAANGTCTGANANANGCTGATCNCGGTAANTNAATCNGCTNCGNNGCTGNTANGTCTCCNCCTNNNG CGCANGANCTAAGTNTCTTACGATCTCCTTGTNNAATNGCGTNNTNTNACNAGCCNNTAGTCCTCTTNGACGGTCAGACA TGTTTGANTTNNGNTGACNCGNCANNTCGNGCGNACGNCGAANNAGNGGACTNAAGNNAGGNGCGNNCCATACCCTCACA TCCGGCGTGNGATANCTNNGGNCCCCTGAAGTTGNTCATCGNTCAAAAGAATTTGTTCCGGGNCTCGNCTTNCTACTCTG TCGNCGNANAGNCCCGCGCTNCGCAGCTGANAATCGNCTGGATGCCNCTCGATGACTTNTATTNAACTGTTGNGTNCCGG NACANTACACCNNGNNTAATGGGTCCATGATAATCAATCATAAANCNCTCCNGNTTNTAGCCCTCGTGTCGAAGNTTNAN NNCNCTATTTGGANNNCTNCNNNTNNGGGCGTNCCCTGCCCNACGNGGATGGTGAAAACACTGNNTANAGACACGNCTAT CCATGANATGCANAAGTACGCNCCTGTCAGTAGCNAATTGCGAACCNAAAAGAAGNTGTCANGNNTCCACGAGTCAACGA GCANTCCCAGACNCACNTNGNCCNNNTCTCACNCGNCGGACCAGTCAAANTATAACTGNNCGCTNNTCANCANNNATANG GGGTGNCCAGGCTNNANCNCGAGTCCATAAGGCTNGNAGACCTNGCCNAGTATTTAGNNCACTGNANATGNGGTTGGGGN TANGCNCTNGTGGNTGNANANATACTNAGNTNTATCNGGNGATNCCGNNCACACNTGCGGANNTTCGAGGATAGTTGTAA CGAGATTGGCCCNNCCTCATCACGTAATACNGNACCANAGTCACATGTGTGCACANGCATCNNNACTTANTTGGGNNGAC AGNCTNGGGGGNAACTCNNGATGANTAAGGCTAGNATTGACGTTNCNCNNTCGTNTTNGACGGTNANTAACCGTGCGNAT AAGNACTGNANTGCTANNNATGGGAANGTNGGAGGAATNTCTNGTANCGNNNTGTNCTTNGNCGACAGTAGAGTTGNTAN GGGANGTTGTNATTAACTACAATNGNNNGTGGGACGATACTTNNACCGTANAGNGTNCCACNTAGCAGNNANGAACTNNA ACNGATAGCTNGNACCNACTTGAATGGCGNCACCTAGGTNCGNNTAGTNGGNACNNTNACTGTNNGGTCTATAGAGGGTG ATGGGCTATANNACCTCTNCNNACGGNNGNCGATCGCACNACANCNAGTNTTGNCGTNACNACGNATGCAAGTACCCNAC NGTTTNNTTACANANNCCGTNNAANGANATTCNNTGGCNCGANAGCCTACCANCNAAGTNCAGANNAATGCTNCNCCCAN NCTTGGGNNGCTAGANNCANCNGTACNNNCNTTCCTATNTNNCNCNGCATNATTTCGGGTATNTNGCGACTCTNNACNGN CGTTGANNNTANAGCCGCGNTTTNTTTNGTNGACNTTNNCANTNTGACTGGGANNGATANAANAGACNNTTAAGACCNTA GANTCCTGGTANTCNCGGAGTTGTCACATATCCGTANCNAATNATATCACNTCGATNCNNCTGTATNGAANTTNTGNNNC TANTCNNCNTATTCAAGACGGAGTCNATNGGTCCGGNCGCAGTNNNGTNNTTTGATCGGTGCANACTGNGCNANACTCAN GCNCNTNAAGGATCTNCTGCTTGTCACNTNGATNATCAANCCTATACCNGGGCCCANTTNNCTCNGCGNNNGTNGCTTCN CTTNNNNNTTCATTNCGNGGAGANNCAATGNNTCGNNNCCCCCGGACTGGANACTATANGANGNGTNGANGNCACANCTT AGGNNGTTTGACGCGCTCGNNNNNACGANCGTACNANCACTGANGTANGTNNNGAANAACNNTNGAATNNNAANCNAGNG CTTGTTNTACAAANTANTATGCTANCGCNAGCGAACCAGANNACTCCNAGCTAATNTANNATTCAATATGNNGTGNNANT ATCTTANCGTTGANNANCGNATCGTGNCTGNAAGTGCGNCACAGANGGGTTTGTNNGNNTGCNCNAGNCNTCANGCGTTC ANAGTAGNCCCNNCTCNTGCAATNGGGNCGANNANNTGGTGTCGNNGANGNAANNCNNNCGAGNNCTNNCACGGCGCTCN TATCAGCNAGNNACTGNTNNCTTCTCCAGCCCGNCGATANGGGCNAGGACCTGNACATGAGAGGNTCGNCATACTNNNNA CAGCACCGGGNGACNNCNATCATTTAGGGGANGGACTGGNTNTGGNCCNACAACTCTTNNTTACCGGGCANTANTATGGG NTGTGCGCTCAATAAAGGTTTCTTGTTCNGAGAANTGNANGTATTGGAGGAGGAGGGNGAGCGCNGATCTTGGGAGGCAA AACGNCAGACNNTCCGTCNTTGCCGACCCTTTTCTCTTCTNCNCNAAGGNNCGAGCATANACANGATGACCCNTGTNCNA AGAATTCGAAGGCCAGTGGCCTTAGACGNTCNCNACGCCNCGCNCCTAACTNTTATGATATCTNANGNTCCGTCCNGNGG NTGTNGNCNANCCCCCCGGTNTTTNNNTNCAACTAGGGNGGGAATCNTGNTTTTNTATGACCNTGANCCGAAGTNCTGCA ATCTGATANGNNCTCCGNATAATTTCGTGCCNANTTTAGNTANNCTGCGNCGCTNGCGTGTTTGGGGTANNTNATAAAGA NGATACAATNCNTGTGACGTAAGNACCTTGNNNATANGACACCACNGATTNGNGGTCANTNCGNACAGGACAGATTACAT TCTAAAACTGAANGGGANGCACANNATATGCCNTGGNGAANNNTNCNTGAGACATAACANNTAATTTNCNCGGANTAGAA ACAGTCNCATCGNGACCACANCCGTTGANAATGCTNGCTNTNANCNCAGCTNNCGTTNCTTAGCANGTTATATGGGCTGC NTTAGCACTCNCNTANACACGGCCGANACAAANACCTAAACCCCNCCNATTTACCGNTCGATTACGNTAANCCNGGGTGG GTNGNCTNAGNGTNCAACCNGNCTCTTGACGATTCCAATGCTCGAATCNGAGTCNGACTAATGTACGCTANCCCACCTGN NTGTNCTAGCNTNATATAAACNAGCGCNAGCCGCCTTGTTTANNAANTCTNNCCTTGTATGANGNNGTCTTGAAGNGAGN ACGNTATAATGGCGNTNTTNGGCCCCGAACNGAGNANCNTTTTNTNCNAACTCTNTGCGNNGCCTAACTCACGCCCNTAA GTCNNACNCNNGAACTGANTGTCACGCAGAGNTNTNGGNANTGNGNANNNGATNGATNGGNATCNTGACGGCGANCACGG TANCCTGAAAGATCTCCCCCACNGGTNGNNCNNTCNTATCNGAGTTANTANAGGATTGTGNNCNNAGCTNCAGNCGCACT ANTTTAACAGTTNCANAGACNNGCNACGGGGNGGAAATTNTTTNANNCAATCACACCTTTNNTGCNNTTTGCAAGNACAN NATGCTATATTAANCCGTNNGATNNAACGTTATNCNTNTCTTGGNAGACNTNCGTGNCAGTAAGTAACTGGCNNTNNGGN TGTCGGNNNGNNTANTGCNGCTATGCCGCNCNGCACNACCAGCTCTGCAAANGCTTNGGCGATATCNACNNTTNNCNCTG NNCTATGTCTTNCATGAGACGTGTTGTCTNAAATNCGANTCAACNGCTTTGGNATAGGCCCGNAGNTGTCNNTCAGGCTN CCAGGAAGAANGACTAAGNCGCCGNGNNTTGTTTATCNTACCNGCATAGAAAANTGGCCCCGTCNCNGNNGCAGACGATT NCNTANATCAAANAATATNCTCATCTATCGGTACNATGNGCTAAGTTGTTTCAACANNCGNATGGNGTTGNGGNTAAGAC NTNCCNTTCNCGNCNGTCCGTNTGGATGTNGGGNTGNCATATCGATTCATAGGNCTCNTGNAGGAATACGGGTACGNCTT CCTCAATNTGCTTCAATNCTCTCTACGGTTNGAGGTCACNGGGACTTCANTGAACNTAANGTGCNCTGANACTACNTNCG CANAGACGCNCNTNACTNTGAACCCNCGTNCTCNTTTACCCTCAGAACAGTAACANNGTCAGCANGTTATAGCGAGCNGA NCNCNNNANTTCNANNTTTCANNTTTNCGTNNCACGGCCCCCCGAANTCCTTTGATAATNATCCCAACAGTCCNAAACAA NAGCTNGNANCNNNTNCATGNGCTNTACACTACCCGNACACCNCGGGTGCNCTGTAGNCGNCTNTNCTTCATCTNTCGNG ATACACCGCNCANGGTNTNTGGANACCTNNCAANCTGNATATTCCCNNAGTGNTGCGANTCGNCCNNTGAATTNNTANNG AGNNGTTCNTTGGTCANACTATNTCCCATANNTGNTNCTNTGACANNGGCNNANACNAGNTNNCNCTCAGGCCTAACNNG ANCTTCAGGCCACTAGTAGCTNAAAGCCTCATACTTCCTCGGNGNTCGTATGNNGGNGCAGGTCTGGTCNNNNGGGNTNG CTCAGGCTNNTTTTCCAGGNTGGGNNCCGCTGNGANCGGGNNTACGANGGTGNCAGTGCAACAATGGTNNNGTCGGNNTN NAGCGNNCCCNCTTCAGACCCGAGACNCNGTCCAACACNGCNNNCGACCANGGAGGCGTNATAGGGTGATTCGATNGGNA CANAATCAGACGTCATGAGTTGAACNGTNATCATNACTCCATTGCTATAANATCATACCCGACACAANCNCTGGGNTATT TGGATAAAGNTGTTTTTNATANANCCTGCAGGCCCGTCCTGTNNCNGCACAGAGCAGTCACNNGGCCCTGNCGNACTNCT TGCTATNANTNNNNGTAAGGCTTACCGACCTTCACNTATAGANTCTTGCTTNNNCNNNNNANCACNTGGGGNANTCNCTN ACCAGATGTTGCACGTCACGCATTGTNTNATCGANCACGCGGAGANCCTNNTTTCNCGCCCCNANTGANGTTTCNTCATG ANNACGCGCAGGANAAGCGAGACGNTGCAAACGAATTCGGCNGGGGATNAAGCTGNTAACGCGNAAANTNTTAGNCNNGT CATACGNNCCCGTCNGNATGCGCATCAATANNAGNGAGCTTNCTGGCNCGTNTNTNTTGGGGGNTCTTCACTGCCANCAN NCAACAATTNCTGNAANGAGTANGGCTTNATCNTGTCTGNANCCTNNGTCNNNAANCTTCTNAAAGCGCAGACATNAACC NACTNGNGAGGCGTCTGTANCTCCANGACCGGNTCCACCTACTCTNTTTCTNTGNAAACNTAAGTCNNNANNCNAGCNTG GTTNTGGNGTATGGGATAANATGNNGTCCNCNTCGNAAACTATTACNNNAGTGCNCCNNAGTCANNNCGTGCCCTTTCGC TATATGNGACACTGAGTCCNNTNAGTGACANGCCGCTCCGGCNNCANTNGGCAAGCTTGGCAAGTATCGNGTNTTGAATG CCGCNTCGACTNCTCANGGTNGAACCGACTGTNGNANCGTTGACTNNCTACAGNGGGGTTNGAGGANTTGCTACGCTGGT TTTGACATTNATGGCNTGACAAGGTNGTGTANGCNCCGCATNNTGNCATGTGNCGGGACANTGCNGTNANCTGTCATNTC AAANGCANTTNAGGGCGNAACNNCTTATAGTCGTNCACTNNGGNGGNNGNTANTTNCCNNNTNCGTACGCNNGGCTTCTN NNGCNCTGGNTGGTTTATATTTACCTNTTATATCTGCNNTTAAGTCGCAGCTGNNTNCTANNNNGAGNNTTCTNGGGANG GCTTTNTTGNGGNAGGGNGGGTCCAGCNCACCCTTGACACTATATAAATACAANTNTNTAGGNGNACNNNNCCATAGANG CNANNTTAGCTTCNACGTCGNNNNCGTGCNANNTCNCTNCGTGNCATTGCNNCGATACANTNCCTCTNCCANTNNCTGNA GACNANGTATCGAGTCAACCGACATCNNGAGCNNTACTCNAGGCTCNGCAAAAAAGTGNCNNATNCTAAAATTNAACNTT NNCCCNCTACNNGNCATTCCTNGTANTGCNGTTCNNTCNCTANCTCNGTTGNNCGCCTCAAGANGGTANNGNGAATAGNN CCCCATCCCCGNCCTCNNCGTNCGGGTNNGTGTTCANANNACNNCACCCAAAACCNNNGNGANCCAAGTGNAAGGTTCNG TGATNCTTAGTTGNNNGATNCCCAAAGTACNTCTGTNNCTACGANNCAAGCGGGNGAAANNGAGCANNTGAAGCCTANNG TGGATATGNGGTGGATCCTNGATACTCTATTGCNTNTACTTGCNTTGTCTANGTNCACGCTGCGTAAGTGCGAAGNGNAA TGNACATTCGCNNNTAATCGCATGATANGNCACAGGGCTTATGATTNACNATNTCCTGAGANATGAGAGTCNNCTTCNCA NACGACTCANCCGCTTCAACGCCGCNCTGCTGCCNANTGGACNNCCTNNCTGGGTNCGTTAGCCGNTTGGGGANNACTGT AACANAANANAGNGGNGTAAATTTNGCNACGNATNNNTGANTGGNTCNACCCNCCTAGNANAANAGCCTAGNTACAGATT GNTTTNAANTGNTTANNCCACNTGTNNANCGGTNTGACNAANTGTNANTGGGGNCCATGNACTANNTTNTATTTATCTGT GGTNCTNTGAAGNTACNTTNANNANAGAAAAATTCANCTCTCCAGNTNTGTNNGGCNNTCAAANTANNTGNNTCATTAGC TACACCATANGACNGGGAGCNCGGTTTCATACGGCNATAACACTTCCCGGTNCACAANNNCACGCNNNGANAAAACTCAG ATNGNTTCTCCTNCTNAGNNTGGNGANCNTGGNGNCGGNNNNACGNNAGNCCANNCGNGACTNGACACTNCTGCACCACT NTCNTGNANGCCTNCNGTNNGNTAGTNGACTNCGGGTCTNGTNACGATGTACNNCNTCATNNNNNTNNGGGGTCANGCCA AGGTTCAANTCGACGGCANNNCCGNAAATGCANTATGCGNTGAANAANNNAANCNAGTGATACNTGGCNNNNACGTTCCA AAGNTCNNGGGNGTTNCGNTGATNTTNTCCANATNACNTTCCTCGCNGCGTGATGTACCGACNAANACTNGTAGCATAAG GTATTTCCCTTTGNNGCCGNCNCGTGNCAACCNNAGNCGNCGAGTCANNTAGGGCCTCAACGACNANNGTGNGGNAGCNA TCGNGCTTCNGATTAAGGNNGTCCGTCCGGAAGNNCAATGCGGNNTTTGANAGTTGATNTANANCCGTCNAACCGNCNNG GGCTCGGGTCANNCATGTNTTGGTCNGGAGCTAAGTGGNTCCGCTGAGANCGNGTGGTGGNGGNCACAATATGNCNCANT CTATGGCAGCTNNGGNTGCGGTCNNCTGGTCACNCATNCNTCGNGGTGGNGGTCCANNACNCNCATNCCTGTGTNTNNTN ANANANCATCGCNATNCTGANNCCNGNTACNGCCGAAGANACNNTAATATTGNGGGNGCNTTCACNNNCGCCANCTAAGC TGCNGTNAACTCGNNNNNNGCANTNCTGCTCACAGGCCGTTCNGGTTNATTAAGTTAAATTTTNNCACGNTNGCGTTCTA GNAGNNCNTNANTANANAGACGATNCACCTTTAGNNGGATANCCAACCGCANACTCAACNCTTGTTNATCGCNCCCNCCT AAAACANTCNCTATGTTGCTTNAACGACCNNGGGCNCATGCGNAAAGGTGANCCCNANTNCAACGNCTTATTCAGTCCCA AGANNNAGAAAGNGTGGATTTATAACACTGGNGGATCTTCTTAATNTGNCTTTCCNCGNGTTTGCTCCCNTTNTNGGGAT TGGNCGGACCCGCCNCTGGACGANTTGTGNCNANTCCTAATGCNCAGNGNAGTNCGCATTACTTAGNCATNGGTGGGGGG ANATNNCTCCNATTGGANTGATTCCAAGCCNCNCGGNGAAAGAGCGATTCANANGTGGTNNGTNGGTAATTCTNAATGGN GTTCCCNCATNACGCCCGNGNNCGTTCCTGATTANTGTTGGGACCNAAANGNNNGGTGNCTNGNCNTGANTTGCCNCANT TAANCCCACCGAGAGCCTGGANNANGACNNACANTGCCCNNATNGCTNATAGCNGGTTTTAGGACATANNTCANAGTCNA CCCCNACCNTACANTNNNANACANCACCTNGTCGATAAANTANCCCCAACCGGCCCCGCTCCGTACGTNNCCNACAACTN NTCGTCGGTAACGACNNNCANTTNGTGGTTNGNCANAGANANAAGACTANANANNTNCANATACCGGNACGGNCTANGGA NCCTGNAANNCAGCCAGTAATNACGATNACGNNCCCATCANGCTAACGGNNCNNCNCATTTNTCGAATTGAGTGANNCTT TTGANNCGAAACNCGNNCNAATNNAACNAGCNTATCGNCNCTGTTTAAGTNACTACCGTNCTNCGNAGACGTTNTTCGAC TCGNTATCACTAGCNNANTAGGATCAGTAGATNNNCGANNANACGCTCNACTNCTCACTTTGCTTGGGAGACGACTTGNT NCTTCCACCGGTTTATNCCNGCCGATANNACANNNCNCGTTNAGNCTTAGCACCNCCNGNTATGNAACAANNCANTATCA CGAATNANTTANCATAGNCNNNNATNCTACNTAGCCNCNNCTACCNNCGANNAAATGAGCGCNGGGCGNNGTTNTGNGAT CNCTCNAACATCATCGTAGNGAANNTTTGGANGGGTNGCNGGACNCGAAAGAAACCATTTCAATNTNCTNNTGGACCATN TGCATCTAATTNCAANAANAATNNTTCCATCGTCNANGCAAGTCCGNANNAACTCTNANGCTNAGNTGNTGTCATNGGNC GANCTGGGNNACGGACATTGNATTTCNGGGNNAAACTNAGNNACNCAATGACAAGANANATNCNGTCNGNATNNANATGC TNATTACTGNGTANNTCCNGAGAACANGGCNCTNCNGTNATGNGCATGANTTATTGGGCGTTGANCAATNGTCNAANNNC CTACANTCCANTCATAGNCCNGTTCGTTACNTTTCAGCTCNNTTTCACTTTATGNCCACNATTGANNCATGGAACCCNTG ACGTAACAAAGCTATGCTTGANTTGGAGGATTCATCNGAGGNTTNTNCGCTNCCTNAGNGATACGTNTGCTCGNGNGGAN NACGTGNTNGNTGGTACNNCTGANAANGCGNGAANCAGCCGCGTNTGTCNNGCACTGAATNTAGAACATCATTNGNCCGC CACNGAANNNGAAGNGGTGTNCGCGGNNTTANCNGGCCTAGTCNTCTAGANNTAGGCGTGCTNNTTANGNAAGTACCACT NTTCGNCGTNATANGTNAGCATANTNANGCGGTCTCGGAGACANGNNCNANNNNCTCTGNGACANATTNTNTATGGGTTA NTTCCNGGTAGTGCACNAACACANAACATNAGCNCCCAGCTCCGGGGCNTNCNNGTCATGCTNAGNACGACGCATTATAT ANNCCAGGCCTGTNCCTGGGTGAAACGACNGTACCGGGNNTNNTANACAGCGGAANGNGCANAGGGGAAGNCNCNTNGAN TTGTGTNGAATGTTTTAGGTGTGCTNCAAGNTGGNCAAGCTCANGCAGCTNCAGGTAGNCGCTGACTCATGGAGNGNNTT TGTACTCAGANTACTCTTGTNNGNGAATTGNNTATACGNGCGTTGCCNGCGATNNCTCANCGTTCANGCNCATNNTCCGG GANGTAAAGGACACGGGTCGTAGGTCACCTATATNTTCGAGATCNNNTTCTGAGAATCNTCNCTTTNTAGGNCNCTCCAA NTGNGNTCNNAGGTCNATTCTGGANCNGTGCAGCNCTGTATTCGCGTNGCCNCACTTNNAGAATGNAAGCGCACGTTGCC CGCGCANTACGGGGNCAAGCCNNTGANGNNAGGGTNCGGNCGTNAAAAGCACTAGNAACGNNTGNTTNGAGTACTNCNCN ACTGNNCCCGNCNTNTCNGANGNCGGNNNCCACCNCCNAGATCACCNTACNTCAGNAGCNCGTGTCTGTACNTCGTCAAC NGCGTTGNTTTGCGCANNNCATCAGNNTAGTNAGCCCTCTNGCNTTACCACGTNACCACGCCATCAGNGACTANTTTACC NACCNAGATTNTAGGCTANTCGGCGNTAGCGGNCGCTNCNTATGATTNAGGGNTNANGCGCCNTCNGNANTTNCTAAGAN NNNCNTTAGANATAGGTANAGTAAATAGTNCATCGATNGGCAGCCTCTTGNNTTGGGCCCCCGNGCCNTCACCAGATGAN TCAANATTATNAGACTNANAAGGTTCGTNANAACGTTNNTGTCGGGANCNGAACACCCCGCAACNCCGTGAACNCCCGAT TAGCGCCNATGGNATTCAGGTTTTNCAAGTNTTACTCNCGGTNNGNCTTAATGCGCTGGNCACATNGATNANGANTTAAA CAATANNTTGTGTGATNANTTGCCCTCCANCCGGTNGAANGGGTCTGTGCAGGNGCCNACAANCTTGTCTGNCGTNCGCT AACCCTGACNTCNTGCTACTCGATANCTGAGNCGCNCCCAANATTTNTAGGAGCAANCACCTATNCCAACTANAAAATNA NTCGANCNNATGNNATTNNTTNGGGTNTNTCATCGCTCNGAGGCNAANAAGGCCGGCCTGATGGACTGCNNTTANTNGNN NGNGGCGCACAACANTNGTNTNGAAAAGCCANNCGGGCGTNCGNGNNACNGTAAGCAAAACNCGGNNCGCCCNTTCAACC AGCTGAACAACGTTTCANCGNTCTTNCANNAGNGTGNAACTGNAANCNNNNTTGCGNAATATNGGAGGCGGGGCTATNCG TNGNTTGCCGAAGGGTNAAGNCCANANCTCNAGTCAGTCNNATTGAANATGAANGCGTAAAATNCCTANAAGTTTANCAA TAANGAATTCGNACTCGNCGCACCAAANAGGCGATNGTACNCNTNGTCCNACNNAGAGGATGCANTCTNANCTGCCCNTA ACGGTTTNGANCCNNACCCTGTACTNATAACNNTTNCTTNNNACGNCGGTCAACNGAGTCTTANNNTTNCGGGAACTCTG TAGGNAGNCNACNCGNTCTCCGCNTCNCTAATAAGANTGTCTTTANCCGNNTNAAGTTCTCGCGNAGATAGNCACNNACT TNNCGCNCTGNTACGTCTGGCCCTCCAATGNCCCCCTNGTTAGNCCCNCCATCTACGCAACTTNAACNCGCTCTNATGAT NCTAGGACGTNNTACNGGTAGANTNNTCGTGACACNNATTACTNNAGCCANTACTTGCTANANNTCNCTTGGAGTGGCNA GGNTNTNAATGANACTCGCANTGGTTANNTGAGGGCAACGTCCCATCGNCAGATTNNCNTGGTATATATNTAGACCCNNC NTGAGATGANCGGTNCNGNGNNTACTACNAGGANACGCTGCNCCGNNANTCATTGCGTCTACTNCACACCGTGACTNTGG GNTNATAAGNNACCCTNCACNNACTGAAACCGTTTCAGATTNGGANNTTCTGTAAAATGATNTCNATANGCNNTGAGCAC NGGACGAGNTGATAANACNCGTGANATGTCNNCGNGTGCGTATANNGTNNTTATNNGGCTGGNATCAGGTAGNGNAAGTA NNAGAGCTANAGGGGGNTTTNNCCAAAACTAGNNTGCATAGNATGGANGNTGCTATACGTANANANTGNGAACNCGTNAC CATNGCNCGNTTGCTTCTGGACNCCGCCCNAGGAGGTNCGCNCTCTNTNNTCTCAATGTCNACTNANAGNACNNACAATA AAGNCACGGAGCGGTAAATNCAATNTCCTATNTTTGGCAGTTTTGTNTNGCNAGGGAGCAGNCTACCGNCAGTCNNGTAA NTAGGGNATACCTACTTTCCATCGNCTTAACAGTGCTGNCANTAGCGNCTTGNACGGNTGNNNNATCGGTGCNCAATTTA CCNNTNATTGGGGANANATAGGCACNAACCGTGTNANCTTNAAACGAATTCGNTGCGANNCNCAAATCGGAANTGTCGGT CNTACTTTTGCACTTAGACNTNCGGNGTCGNGCNCTTTNAAGAACATGNNTGTCTGTCNGNTGTNANGGANTCCACGTGT TNCATGGNCCANNNCTCTGCNCTTCATTNGCNNNANCGCGTGTNTCNNGAGAGTCCTCGGCNNNATCCCGAGGNCTGNCT GTGNNCATGGCTAACATGTGATCAATCGTCNNTTNCGACACCNNGACTTANGGGNCANTAGAAATNCNTGAACCNTNACN CGNNGAATGTTTGNAGTACNGNGCAGATGGCGGGTTANTCCGGCNCACGCGCNAANNTGNNNNTTCTANCATTCTCGNTA CTNGGNGTGTGGTGTTTTCCNGCCTGNGGAAAGGTTANCANNAANTCGGAGGNCATNACTNACGNANCNNTCNCTTGNNN TCGGNCNGTAGTTGAGNNGTNNGNNANCCTNNTTACAAGTTNANGTTAANCNTAGNGNNTTTGCNGNANANAGCTAGCAT NGGNCNANTTANANNNNCCNGTNAAAGTTCAATCAAGANTNACGCGGCTTCAGCGNATTGNATGANCANCATACACNGGC TTTNNCTCCCGCNGCNNGACTANGGNNGTTTCGNGGCNTCANNGCACTNNCTGCCGCCTAGAGCGGTNCNGCTNATANGT GGNCANAACTAACTCNGNTAAGCATCNCGATTTGTTNCGNNNGCCATTCATGACGTAGGCNCNCATTTNTCCAGCAGGNG NNTGATGAGGACCCCNCTAAGCCNGNANCTANAACNNTACGGNTCAANNAGNAGACNGGGAGCGAANCCTGTCTNNNANC AACAACCNNTGCCCNCGCNCGNCGCACAACGTGACNNCCCTCCATTNCTATGNNGATGTNACGTCGTGATATTTCANNCG ATNNNGCGTCNATNTCNTCTCANAAANNNTTTGTCCCCCNGTNCNTTNGCTTGAACNGGGNGTTTGCACNCANNNCGCGA TANAAGANCCCNGATCAGGGTTGNNCTCTGGANGNAAGTGTTTCNCGCGAATNAGTCAANNNAGGANNNTTAGTNGGNTG GCCNGTATNGNAAAGNNTNTGGCGNAGTATANNCNGAGTCCAGGNGTNCNGNAACTTTACATCGACANNANNACTGACAN ANCGCCTANCNTGGGGNGAATTNACCCGNNTCTGTCAGCCNGNGCNNCNAAANGAATTCNGAGNCNCCTGGGTCACNTGN CTGTATANTGTCNTNNCTNGAGNNCTNTANNGANGNGNCACGAGNCNGNNTNCNATCTCCATNGNGTNTTCCGGTNNNAA GAAGAANGCANTAGAGNTTCNNGNAACCGGNCATNGCCAACTNTATTNCTNCTCNGGNNNGGGNACGAGTATTNTNNNCC AAANCATTTACCGGANACATNCTTNCCCNTCGGCCAGCAGTTNNTGNACGTCNNGNTATNCACANTAGCAAACNGCGGGA GGNGCNAAGNTTGCCTCGTGTCNCGNCNCGNTTGCCACTATCNGGATTGCAGAATANGNAAAGACCCCAGNCGGGNGNNC TAGAGCNACATTCNNCTNCGNGACGTGTAAGCCANCNGTGNTNCNNNNANCGCGGGCCGTCGNANGTCTGTTCAANNAAT TCNCGNAAAATTATNGNGGNNNAACAGTANAAAGTAAATTCGCTANNNTCCTGNACTCNATGGCNAGGTGNANCCCNACN CNTANCTGGTGGNNNGAGAAGCAGNGGGNGAATTNNATNCNGGACTGGACGTCNNGAACNATTGCCCTNGCGCTATNNNN TNTANCACGTTTNTANCCCCGTGGCAGAGGCTTCCNNGNGGAGNCATCGNCNATCCGNTGGNTNGANTGTGTNNNANCNT AGAATTTCGNACGGCGTCNGNCGCGANGTGAGTTGNGGTNGNAAATCCGCGGCCAAATGACTNGCNTCCGCCATCGANAA NGCNNGTNCANANGATTTAGNTATTANNNGNTCCAAAAAAATNCGAANCANCATCNNAATTATGCGNGNCACNNACCTTN TCCNCTNNCNNATNTANTNATNAANNCTGGNGNNGAGGNTATTCACCNNNNNNNTTCNGCTAACNTGCNANTGCNAAAGN CTCNGATTNCGATCAANTCGAGTNNNGATAGTGCANATGACGCNATAGTCNNCNCAAAATGCTCATGTAGAGTCAGGCTC TNANGNNCTTCTTGNTTCCTATNNAANTCAANGTNCGNTCGCGNGANAGGAGATAATTTNGANTATGNAACANACNCAGT TTAACNTTNNCGCTNANAANTGTCNAAAANCGATGCATCANGTACNCCAGNNTGTGACCNNNGGTTANGNGACNCCANTA ANCTNGCGCCGGCTCTGCTCAAACGCCGCACGAAGTTGAGCNAACNGANCGAGAGGGNCANCAGNCTCANCNCANTGNAC CGGAGCCCTNNAGCCTNGGNCNATGNTGGATTNCTCNATCATATTGAAGNTANNGAGTTNTTNNAACGGCTAGTGGCTGN GNGNCTNNTGATTCTNCNNGTTNCCTGNGNGTCNANAGACCGAAGNAGAGACATCANTCGAGCNCANTTCGCNGCACGCA TGACGCTGCNGTGNNTTGAAAAGCTTTATAGTGGNAATTNGGGNNACCNCTTCCAGCGATAGTTACCTACNTCTTGTGTT CGTAANGGNCCAATTCACCTNCATGCAGCGACNNANTACCACTGGATAAGNACNGTTAGAGGGATAGNTCATGATGNCNN AAGCCNNAGCNCGNTGNGNANTNGAAAGCAGGANNGGAGNTNTGNNACATATTANNTGGCACANAGCNGTCNGGGTGGNC ACCGGANAGTGAGATGNCNGNTACCNCTNNGGCCCGCCTAGTAATCGNNNCAANNNCTAANCTGCCNGTAANATGACNNA GATAANAGCCCCNNGGTNTAAATCCTCNNACACGGCAGCNTGANTNTACTCATGNGCNTGCTGATGGNGCACGGTGNCGN TTCGNGAATTCCAGNNGGGGNTGNGCTGAGGCGGNAACANTAAGCCTCATTTAACNATATGTATCAANAANCNATGNNNC CTCGGCATCCGACGCAGTCANAATCNGTNAACCANGAANCATTTAGCGTATANNNACTNCTTTCTTGGGGNGGNCCCNAA AGGAGCNTNTANGTNNCGCNCGANTCTCAGCCCTNNNCTNAAATTGTGNTGNATGGNTTGCAGGNANCCANCGCTNCANA NGTNGTCNCAANGCACANNGGANGGTTACAAGGCTGNCGCGTGCTGAGNTAGTNCNCACGCCGTGTATCTTCCCGCCAGA AACACCNCCTTCNGATCTNTAGNTACNACTAACTTCTGCGAANGGANGACTNTCNCNNGTGNTGNAATAACCTGTANCAC GGATTCTATNTAGGNNCATTCTGNCGGTTANNTTCTGATGNNTTCGNGTNAAGGNCANNCTGNCCCCANGTNTGTNAACG GCCCNCCNANANNTTTCATNNCTGGTGGGGAGATATTTGNCTTGTCNGGTATNGCAACTNCCCTCCTGGNTTGAAACAGT GNACNACGAAAGTGNNATAGCNGNAGCNAGGAGNNATGATCATNCTACTAAANCNCNGCCAACACNACCACAGNGNAANC NTCTGACTGGACNCCGGANANAAGNNANNGCNGCACTTTNGANCGGGTAGGGCGACGGTGGACTNGGGCGCNATTTGAGT NNACTCCNAACNGNACANCAAATGGGNANGACAGCGANATTANNNNTTCTTNAGCCNGGATCACCTCGTAAAAGCCAGTA NTGCGCTTAGTAGNNTNGNTNTTCNATTNACNTGAGAAACCNGTCGNCCATCGCTCAGTATNTACTCCTGGGAATGTNCC NACNTCTCNNGGACTACNTCNAACGGGGNAAGTGGCNANNGNTNTCNCAANGCAACNTTCGCGGGTGGGNTGGGNGCGNA NTGGANCCCAGTGNATCTCNATTTGGGGGCGGGCTGTCCANCCTCCGGNATTNGCTCGNGANTAATGNTCCCGCGAACGT TTTTNGACAAGCCTNACNTGANANNANNNTCCGNNNGGCCTTNNTAGNCNTNGANGCGGNCAGTTNNANTCTGTCCACCC TCCGTCNGCCTTGANTCNCATCGTNTNNTACNGGNANTTATNCNCCNGTATATTACANAAANNTGCTCNAAAAGNTCTGC AGCTACANGNCGCNACGACCGAATCATANGCCNNGCCCTGTGCCTCNCCCTANNAANTCAAATGGNANGAGNNNCGGGAG CNAGGNCATAGCACAATCCATCANCTGGNANTACCAGAACTNTTCNNTCNATACNGCTAGGTCATAAGGAGANGGNATTG NCANCGNCGNACAGNANNTNGNGGNTTTGGNTGGGGGCNTGTCNTACAANTAGGTCTGTNCANANANGGAGCAATTCGNG AGTCNGGNNNCGTANTCTTNTNNAAGNACCCTTAANCNNCAAATCAGCATGACNNGGTGGTGNNCTTACGTTNGGNNTGN NCTNCCACACNACATTTCGNTNCCCGGGNNGGCANCCTCNNANCGTCTGTAGCCCGGGNTTGGACATCCTCANTCNTCCA TCGNANTGAGANCCAATNTNCANGTAGANTGTNAACNTANNNCGATCGTATTGNACTGTGCAGTACATTCATNGNGATAN ATGANAGGACCNCNGNTCAANTCNCNTTNACGGGGNATAANACNCNGCGGGGGNCAGTTCTCGAGATTTAGAATAGTTNA NGGATNCGAGTTACGCNGGNTTNCCATNATGAANCCTTANNGGACTTCAGAGCNAGCTTCCCTNAACNCTCNGTANAGCG ANGANNCTAGGNNNGNANCTCACNACCTACNTACGATGGNGTTATCCANNGNCAACGGTCGGCACTTNGCACCTTTTTCN CATCATTAANCCAGGNGNTGAGNACCGNACGCCTGTNCCTNAANNAACGTGTNATANTTACTTCGTACTCTCGAACAGAN CACCNNTAACCGTCCGNGTCACGANNNCTNATCTAANTCNAAGANCNAAAGTCTAGCTATNGCCNTTCTNTGCTGNAGGA TNNACTGNAACACCNGGANGGNCTCTCTACNCGTANGAAATACTAAGCGAGAANTCGCGGTGNGGNNNTTNNCGGANACT GGGCNCTCGTTAAGNTCCACGTTANGTTATNACGATTNANTTACCCTNNTTNCGGAGGNTNGGNCGNNCTNCANATTCAC NTTCATGATNGTGGGTGACNNNNGTAATTNCNNTAGCGGTTTCTTNGNNACCAGNNNTNCGGACCNTTTCNCTTCTCNTG ACTCCCNGTCAGAGTGATGCTCGGANGTAAATGTGCTNCNTNNTNANTGCGNGGCNCGTAANGCACGCATGACNTGNNNG GNGTAGGGNGNNATCNTNANGNAGCNNTCNACGNACCCGGCGACNNNAGCANCATGCNACNACNCNAAANAGCNNCTTCG AGNGCTAGCACTTCNTCAACNGTTNCCNAATNAACCGCGAGCGTTANATATCNTACGACTNNCCCTCAAACCACCACANC AGCNANAGGGTCTCCCTGGGCGNNTACCTNCATCGTNGANNANCNNGACCTACANNTGCCTNATCTTNTCATAATNNTGA CCACTNGNGNTNTATGGNGTCNAGATTTCNTGTCCNTTGCTTNANAGNTCNNCGGGNGACTTNTCNNACCNGAATTNCTA GGGCGGCTCTTNTGNCACNTANNGCCGCNNCGAAANTNTACCATNGGGNCTGNGGAGANGGACNGCNANTNAANTTGTTT ATCCAGCTACCTGCTGNAANTGTTCNNANGTANNGCNTTCGAGCCCTTAANCTCANGTNANCTATTGANCTNCCNTGCTT GGNCGGTGANGATGGCCAANANNCNGCGTAGCTNCAGGNTANACTATCCNNACACGNCNTAANNCATTTAAGCGTATNNT GTTTANGGANGTTNNCCNATACCCGTNNTTGGGTCTTGACTCCTNTNGATNGNGATCATNGTATCNGATCCTGNGGCTGN TGNTTTTGGANCTGAANACGNAGNGGCTCCGGCCNAAATAGNANTGATGGNCCGCAGTNCCACATGGTTACATTTNTNAT CGGTTCNGTTGCNAATNTGCNNTCNCANANAAGATNNCCTCANACTGNTCCCGGATTACACGTNGTTAATANCAAACGCC GTGNAGACACNCGCTATTAAATTNAGNNCCATNATGGTATCATTGGCCAAGCTGCNGTTNAATGCTCGATGGTNNCTGGT TACTCNATNANCAATGNCCAATNCNTCACATNACCNTTANTAAANNGCTAGATCTCNANCGTTTGTTNAGANTGCCAAAA NAGAGNAGCTAGATTTNCNATCAGNNAGANANCAAGGNACGNGCNATNCTGGAANATNAGGTTCGAGGNNNTCCCGTNCA NTGCANNNTATCTGCGANGANATNCNCNNGNACAAACATCTGCNATNCAGGCTATTTCNTATGCTAAANCATNGAAGNNA GACNNNNGCACCCNNAATAANTNCCCCANNTACCTCNGACGCNGGCGGNTNCAGCTGNCTNCACCTTNTGGNGATGNTCG ANCCNCNAGCTNTNTTGCNNACGATATANCCCGNCNGCTGGCNANCTAGTGTTCNTTCANNNTNGTGGAGNNNAGCGNNG ANANCGAAAAAGNAGTACTGATNGNGAGTGGGTTCGCTANGTANCATTNTTATTTGATNCAGNANGATCCNTTAATNNNA CAATTATCTTATGAATGNNTCGCGTCCTCGNGNGCGNNGNCTTCAGGGACAACTTGTCGNGATGAAAAGGGCATACNCGC CNANNGGTTCATCANGCNTAGGAAANTACNTGCCTCTTGTTNTGNCGAAGCACNCGCNCTCNANCNCTGNNGTNNGAGCG CNNGAACTCGNAGTCTTCNNACCNCTNNTAGTGCNTNGTGGNTAGCNTANAAGCTGCCCCGTTNGTCNACNANGATCTGA CTNCCNACAGCAGTCGGGTTANATGAGAAGAGCTAAATGCNTTTAACAGNGNAGCCGGTACATTGCGGATCANGGAANCA GGATTGNGCTTAACTCNAGAGTCTCATGCGAAGACCANACANTTNTATCTGCGTGTNGNANNGCGTAACNCGCNNGCGTG CATCCAANACCAATATNCAAGNCTTCTCGNAAACNNNNGNGCNGGAGNGNCNTGGTNCGTGGTGCNNNNATNAGCGGNCG TNCAAACGNGCNCCNANGNGGCGGGGGNCTNCTAAGACTTCACCGTNNGNTAANGNTNCANCAATGTGCTCCATCNCACA TGCNCCANGNTNNNGAGGGACAAGTACTGNCNCTNCCTNTCCTNCCATNTGATTNAAANCNAGTTTGTGNGNTAACNNCT CAAACNNTTNCTGNCTGCGTCATNTNACAGTNTCTCANTNACGGAGGCCCANTAANTNACCAAGATGAGGGGCGGANGAA TAGNGNAGGNNAACATANTNGNAANCCCCGCGNNCTTGAATTTACANTGGCTANATCATNAGTCAAGNGANGNCACNTTA ANCGGTANTANCNCGACCCCNATTNACACTANCGGGGGTCTAGTATTNCTANGCCTGTCATCNCNCTGTCCCGCNATGNA TGAGTNCCCGTGNGCCTTGGCTANGNAANANNTAGGANGCGNACTTAACNTTAGAATTCCTGACGCCACCNATCGATCTN NCGNCGCTATATCATTGTGCACTATGTTTTCNCNAACNTCCANCNGTCCAAAGCTGGANANTNATTCANTGTATATCNNT CTCNTNNCATGACGGGNNNATTGAGCNTATACGGGTGCGNANACCTCNANNNGTTTGNGNTACTNCTTGCANGAAGNGGT ANNTTTAGTNTCCTATGCGNTTCCANGGANCANGNNNNAGNTGGNCGCNCTCACACTGCNNGNTNTAGGTNCTTAAGCAA CAAANACTCTNNGGACAAAGTAAGAACCNTCTAGGGGAGAGTNAGGATTGATCANTCGNCGTTANCGGNNCAGGGTTAGG GTNNNGGAGAGANNNAAACGANTCTCATGATAGNCNATCCCCGNCGGGAANATNATNTCACTAGTAGCAGATTANNCGGG CACNCCCNGGTCCCTATTGNGGGTANNNTNTGTTTNGNGGTGANNTNNGNGNGGAGNGGGTAAANTNGCCAACGTGNCNA NNCCCCCGNGGNGNNAANATCNCNCCCCAGAGTCATNGANNNACTGCCACANACGANTTTNCATTTNNGGGGAGANCTNT GTCAGGAGACTTGACGCTNTAGANCNCGGTTGATCAANNNNTNGTAGGNNACGCCTCATGGAGACANAAANGCNANCNAA NNNGCTCTCNGTAGGATTGNTGNGCCCTGAACNNANNTNGTGTCNTNACNAGGATACGGNGNCCGTATATCNCAGGATAN CGNNANAGANCAGAGTAGNTGCCNCGAATANACCTTTGNCTCATCTTGGGCGGNAGTNCACCTANAGACTACAGCGNNGG TTNGNGCGCGCAGTNGCTGTGTNTCNTNAAGCGANGNGNTNCCGNTGACGATCTGCCCGAGCCNGAGANNGGGCCGATNA GCATTATATGCGNTGCNACAACTACTTNAGANTAAGNCTGGGNCNACNNTCCNGTGTTAGCNNNGATATACNGCNCGNCG TGATTNCTGCTANAGNCAAGACTGNNACCNTTCCNAANANCAAAGAGTCNGCGNCGAGTTNACATNNTANTTTNNGCNCN NGNTNCNCCTATTTTTGGCGCAGNGANGCCNACNGGNGNGCGCCTGAGGAGTGCGANTCCCCAGTAGTNCNTNTGNGANT AAANNTTACNNNGANNTTCAGCTAGGGCTAATCGTATNNGGGTAATGAAATNCAAAACCATCTTGNGATGAGNGATATCN TNANGNGCTGCGATTAAANCAGATCACCTNCGGGCCNCAGGGTAGAAGTCCNGTGTNGTGCCGCCTGNAAANGGTNCATG NTGGGAGNCNTNANCCACGNTCTANNGNANTANGCANNCGCATTTTNTTGCTTCTGNNCCNGCTNANTCTGCGCTCAAGT NTTTNNNCGCTGGGTCTGNAANCGGNNCTTGTTGNATNCTTTTNANTTGTTNNGAACCACTCCGTANTGNCANGCNACCT TGANCCAANTGANGTTATTTTAANCTCCCNTGACGCCGGGCNAGTACCTTANCNTACNGTCAAGAAGGTGGNATNGATAT AGGGTCGNCNNGTANCAANTCNANNGANTCNCNTNGCCGGCGCANTTNGGNNCNNGGTCNTTGTCNANNAAAANNANNGN AANCGTTNTCNATNGTGCGTCTCANGGAACTCGTNATGACCNGTNANCGAATNGCNNNTGCGACGGCTACNGNTANANCN GGNNTATCCTTGAAAAACGAATCAAACTTANCNTGCNCAACGTTTAGNAAACACGGTCNNACNAGGTCNNCANNNCCACA NAAGNGCNCGTANCACAGTNGCCNGGCGAGNTCATTNCNGGAACGGACTTANCCNTNGAGNCGCGNCANTCCTANACNTG ANANCAGGAGANCGGGNCGAGCACATGGANTNGNGCTCCNNACAGTTTACCTTTTTNCTCNNAGTTTAACGAGTGGATTT CNACATTGTCTTTCTTCTGTCTGGNTCNCANCACTCNTGTTAAACTACGTAAGTCNNCCCTAGCNATNTGGCNNNGTGTC TATTCTCAGNTGATNGNATGTCGCANGAGATCNNCGGCTTTCATNAACCNCAANNNCTACTAATAGACGGCGCACGGATG TGGNNNNCCTCGNTCNNTNGCTCTAATNGGTGGATGNANCNTCGGNACNTTNCGTAGGCGCTNGTNCNGANATACNGAGN GANACACTTTNGGGTNTAATCAAGCGATNNATATCGAAANTTNGTACGTACNGTTCCNATTCTCTTTTGTAAACACTTGN ACGGGCTAGCTNGGGTGGCNNCCAANAGANCNCCGCGGGNGAACACGGGNTCNCTACCAGCTANTAAANNCGCGCNNANC TNGNTTTCTANNGGNCNTGCNACCGGAANNCGCTGAAGGGCACTCCTTNANCCTCNCCCAGAGCTNTGATGNGANCTGAG CAATAATCGNATGGCATNCTNNNNTCTTTNNNTNTNNANGGNCNNGATGTNTNCNTCNNTTCANCTGAGGNATNACACTN NCANNNCTTTGAANAGGTANATAGGAAGGCAAGCGGCGACCACAGGCCNGTCGCCCGGTAGCGGNGGTNCATCTGNGCNN GTCGGCNCGGGNATNCTGNATNTNAGCGNANCGCCTGCTCTCCNAAACACGCNNTANNTNNGCCATTACACCGCTGCTAC CGTGTNNGTCNGCTCNAAAGCGTGATACTNCCTGCTCNNTCCAANTATGNCCANGANCCGTGACAGAGTCAAGGNGCTNT TGTAACTACANAGATCNTNTCAAGTNANNNCCTTCACAACCNCNTNTANGTTGAGGGCCAGCTANNAAGNATTNTCTNAA CCGCGTTGTAGTGTGGCNGAGCNTCNGTTANNATCGGNTNNTGCTGATTTAANANATAGTACAGTCGGNTTTCTANCCAN AACTACACAAGNTGAGNAGAAGCCNNNNNTTTGACCNNANNTCNNTATTGGANTNGNTCATTCGNACGAAGCNAGAATNG ACTNTCNGTNTNACNAGTCGCCNTTNANTNNGAGCAGNGACNTGCTTANCGNAAGNANCTNNTNGTNANTCATGATCCNC GGANNCAAACGTANCGGNCGNATCTTNANCTATTTACNATGTACANTAGNNNNCCGGCTNTTGGNTCNCANTTGNCGTNN NNTCCCCCCCATNANGTAGTCCTGCAAGNGANCCCCNTGCACCGTGGAGTGAAAGGCAGNCANGACGNATTGCCCACNAG TNGGAATCGAGCGANAGCGCTCCACTGGTTANNTACTNGTTNAGNACGGAACTCNTACGAGTCGCAGNNTTNCTGGATTT NANNNNACGGNCNANANCCGANTTCCATGGGAAANNGTACCCTATGGAGGGAGCNAGNAGGTATCACTGTCAGCANANNN NTTNNGAGCCCATCNCNTTCNTANCGCNACNNNAATNTGNGCAGAACCCNGNNTTACGTGTNNGCNCTGGNCTCCCATAG TNCCGAGNATCACNGACNNCTAGTNNNNNTGGNNTCTTNCGGACTNTATAGTANCNCGNCAAACNTTNTAGAGCCACNNC NTNGGACNTTNANCCTCCNCAGTAGANGNATACANANNGNAGNGGAANGTGANANGAAAGTTGGATCTGATTNTTNCGTT NNAGGNAGCCTTGGNGGTGCGGGAGTGNGAGCGNGANCCTCATTCTCGGTNGNGNAANNAANTGTNGGACCGCTAGCTAA NATAAGTGTTCTAANGCAGCGNCNGGANANAGNNGANGANCTGCAANTNGTAANNCGTACTGTAGCGTGTANGCCCAGGA CTTAANCGNCNNTCTNGATANTCAGGGNCTANGGNTNAATGGGCACGACCTTNNGCCTAGNGTGCCGNNCATAGANGAGT CGNTCNGGTGTGTACACCATNTNGGGGNCTAATGGNAGNGTTAGGCTCNTTCGCGNTCNTGGTTCTTAGNNTAGAGCTNN NCANANGTTAAGTNAGNNCGTAANGTNGANNCCGNCNANGGCTTCGAANCAANGGNATAGCNNTGAAACAATGNCCTCCN CNGNCTAACTGGCGATACCTACTCACTGNGTNGTTCGAAAGGCATTNCAAANNNCCTGTTNTTCCATAGCTGGCCTACAA ACAAANNAATAAATNNTGGTCNTCGTAAGACCNCCNGTACTNCNTGANNAATANTNTGNTCNCNGCTCNNATCATGATAG NTCNTNAGNTATGACACTGNCACAACNCCCCCANTGCTTGGGCGTTTACCNNGAGTNNTGACAGCNCGTGANAACCTATG CAATCACGATGNGGGCNCTGGTNNNTANCGNTTCCGATGAGTGCAAANGNGGAANGNTTCGTTTTACATTNNCNAACNCA CNGGGNTTGAAGTGGGGAAANTTCGCTAGNTNGGGNCATTAGAANATNGNGNNAAACTGTATTTATTNGNTATGGANGAN CNCGNCGTCCTCAGNNNGTCTCNTANCACNCTNATTATCCTGTTGAAGTTGCGNNGNNCGGNTCTGNGAGAGCGAATTNA CNTGTAGTGCNAATATANNCNNCACNAGAANANGTCAGCTTNAGCNTGTCGGGAGCAGCGTNCATCAAGGTGCCTCTTNT TGNNGCGCGTANTGANCTTCNNGTNCNTTNGCTGCATCCAAACCNGTTNGCGTTCGNTGGAACTGGTTGAAANGNACNNA CAACCCNATGNGGNTNTNTCATTANNATNGCAGCTANTGNTNCTACNGGTCGAGNNNTGTTGCNAGACGAAGCCCTTNNC TCCTNCNTNAACCNNGACNACTCGTGGTCTTCTCACGCTNNCAGAACTCTNGTGANGAAGANACANNACCGATGCTCTGG AACCTNNATNGACTNNAANTTAAAACTGGNTNCTTCCACNGCNAACCACGACTCGTTTNACTTTTNCTCATTANNCGGTG CATNNTAGGGAGCATAGCNNAGNGNNCATCCCTCGGTGAGTGTTNTANTAACNCTTGGNGTGANNAAAGGCCACNGTTAG GGACTCGCNCCGTTTTTGGTCCNACGGNGGAAGCGTTCAATCCANCTACTGNTTACNTNACCTCCTTATATAAGNGNGTG GCNATTCTCCNTNTGNCTNGGNGNTNCGGCTTNNCTNGCCATGTCACNGCGTATCNAGTNTGAGCNCGCTAAGATANACN NNNNANANTAGNATNTCANNNCTTACNGAGTCCTNCAANNTTNCGAGTANNTANCACCGAGTCNTACCNCTCTGGNCTCN TGCGGACTGCCCGAACNTAGTGTNAGCGTGTGATCANCGNGCGGTGCNAGCATCAAGCTGTGNNTACACNTCCAGGGGGN GNNGTNAGCAGTCGGCGNNTTNGAAANCTNGNNAAAAAGAANAAATGGTTTCNNTGATNNNTGGCCGCATCTGANNANCA TCCTAAGTGGAACCATANAACNCCTCGAAAAGTACGCGTCNTGCGGAANTACATACCTCANTCTGCAAANTAAAANTGGT TCGNGNGCNTATAGTNNCCCNTGNCATTAACTGTAACCGTCAGACGTCTNGCGNCATAANGAAAGATGTATGNCCTGGAC ATCGCGNNNNANNGCANGAGTTTCTGNAGNGNNTGAGCCGCAGGTCTTAANNGGACGGNAGGNACGCATNNTTTAAGAAG ACGATCNNNACANGATACACTTANGGNCCCNCANTCGCNGACTAAGCTCTCGNNTAAGNAGNTGANCNCTATNNGTAGGT TNCNGTATCATCNCTGANCGATCCNACCCTTNNATNCCCGNANNAACNGNTNGTCAACGGANNCACTATNGTATNCNCTC AACCGCNNGGCGCNGAAATGNTNGTCCTNAAATAAAAATCANCGNCTNANGCAGCGCCNAANGTNGTGCNAANCGCATTG GTGTTTGNAGACTCCCGTTCCNGTGGGNAGNGCNNTCGAGCGTNNGNATCNCACTCACACCGCANATCCACTNANAATNC ATAGTNAACGTCTATACTTGACTAAATGCCNTCTANANGAAACTTGTTTNCGGNNCGTTCCAGCTNANNCCANNGTTGGC NNGTNGNGATGNGNTTNNATCGGNCCCGGGATTTCGGCCGNTTTGCCTTGTNATCCCATCCGNGCCCGGAGCGCTGCAGA GNNGCTTACCTNNGAANTTTCANCGNCACGGTGCGNNCCNTACCGGNGTCTGNGCNGCNCNGTNTCCATNTCCNANANNA CCCTCTNAGNNCTCAAAAGGNCACANCNNNCACGGTNGGAAGTACNATNGNACNCANTNCAGATAGCAGTNATCNGGCGG ATGTAGNTGTGGNTGNNNNNNNGNTAACANAAAATTTTTCCNGNGCNAACTCCGCNGAANGNNTNGGGCAATAAGCGNGC GGAGTAGNNGTTGGAANTGAGNCGAATTTCGTCANCNATCANCAGTGNGNCTCCNCGGNNNNAANGCTGAGNCNCNTNCT GNAGCTTNGGCGATNTANTAGTCCATGNCAATCTTGNGAGNTGCTANGNCGTTGAANNGGAGNTCGAANCACGGGGGNCT TGGNCCCTTGNATGTNGTATNTNNTCCCNANAAGTTATTTGCGTCAGGNTNTCCCCGGAACCNATTTNCNACCANGACNN GGNNGTCCGNCNCGGTGNNANTGGNCNGCGNGANNTTGNTATCCCGCGTTAGNATAATGGNANAACGNTGNCNTGNGTAT CTGTGCCATTCCNAAGAAGCGCCCCCGANANCCNCCATGAACGNNNANNTTANNTAAAGCAGNCNAAAGATAGCNTGCCC NTGCNNAACCTGNGTGGTTNGGNGTNNNCTTGAAAGACACTGTTCNANATNTACNGCAGCTAATGTATGCANTGGNTTNA GGCNAANNGCCTGGTNCCTTTNTCATNANTGCGNNNGNNCNCAAAGCAACTTATCANTAACGNTNNNTNNTTTCATNNCG AGAAANANGATCTANCNNCTGATTNGGNTCGNATGACGATNNTTTGAGNCTTNTCCANATCTGTTCGNTCCTNNNAACAN ANGNGAACGTTANCNNTTACGAACNANCAANCANNTNAAAGNAGCTCTCGTNAGCNATNGAGATCCNNGCTTNGCCNNAA NNGTGCTCGTACAACNTGTGGCCGNCTTNNGGCTNNNTTAANTNTTCNCTTGTANGACATATANGTAGAAANNCCTNNGA NNNNACANGATCNCCNCCANNACCGNNCGGTAGTANCTANGCTTNTTTACGANANTGCCAGTATNANCNGAACNANAAAC NACNTCAGGTCAGCAGGCTCGACNNGTAGNTNACCCCTGATAGTTAGTNCNNCCNCTNCGAANCCCGGCCTTTTTGCANG NTAACCAACGCGANTTAGTACATCTTAGCGGCAGGCTAAGATNCNNAGNTNATACNCCGATACCCNCNACGNTCGNGACA TTCTGAGANGTAAGTGTAGAGNNGTTGACAANCNTAGANNNNAGCTCAANNTGTGTTCGCAGTNNAAANTAAACAGNTAG TTGNGGACTTATTNACCGANGACNGTCNNGTATGAAGTGATTNGCTTATTTAGTACTAGCATTGAANAATAAGNGTAGNC ANNTCAAATGTTTACAGGTANCNCTGTGTTCNANTCTATNTNNGGATCCCNAATAGGNTTAANATCTTCTATTCCTAANN ATNTACTGAGCTGACNNCCGNGNGTATNACACACNANNNATTAGACGANAGNTAGAAATNTGCGNGNGCGNGAANCAANN GCCGACNCNGAGCTCGGTTGNGCNCTAGNCANATTCTNGGGNCCTAACNANATTTAGTGTGNGCGCCGCNGTNCGCCGGT NNTCGTNGNCGTTCTTTNGNCCCCGGNNNTTTGGNGGTCNTCTNCCNTAANGGTCNTTTAATGNNTGNCCANGTACTCAN CCGGGGCAACNCNATACCTTNNCGGCNNNATTNCGCANACCNNGGTCGAGTTGGCCNTGGNTGCTTNNACGGNCGCCTGA TAGACTTGTNNNTTACTGAGAGGNTATCTGCTNTNNGNCTNCNNTTGCTGCNCTNAGCNTGTNNCNGTTCGGTATCAGTT NGCATNTATCACGGCGTNCGGAAAAGCACNTAGTCCCNNNATACACCTCTAGTTGAATTTANGNGGCCCGCNACCGGCCG NAGCAGGGAATCACTAAGNTCACGNGANTGNATNNAGGTGCNNATCGNGTANTTGCANCTGTTNGNANNNCTGNTNNAGA GGAGTTTCCCNANANGNGCNCNTCAACGATACNNGNTANATNGTCGGCCCNNATGTTANGNCGGNTCCNNAACGNAANNG TNGNCNACTTNTGTATATATTGCNTCNAGNNGTAAANCTATNGGATANCCNANANCGNTTNGNACGANGCNNCAGCGACN CANCTCCNACANCTCCGGGACNNNGTNAACANANNCGTCNNNNNACTATTTGNGGNGTTCCCTNGTCTGCTGATACGGAC GCGCTATNAGNNNCCCCGTTTNGGAGTAGNNTNACNANTCACGNCGATTAACTAGGTTAATGNGCTCGTCCAAANACGTG TCNTTACTANCTCCNCCNGNCGATAACNNATACATAGTTTGNCCNTNANGGAGGATCCTCGTTCNACTCTGGNAANGNNC NGCGTNTGNATGGTNANGANGACGACANCGNCNTTGTTTGATATGNGTGGCCGTTNNACNGNTGTGGGAGNGTCCNTTCN ACNCATNCNTACCGACGGGACGCAATTANCGNNTNNGNGCCGAGNTTCACGAGTGCATGGGTNAGCTNNNNTATAATNAN NTCNTCTNTNCGTCAACCGCTCNTNGNCATNNCGAACNNNGNTATTGCNTCGGTAGGTCTCCATTTNACCCGCTCATGGC NNTTGNGCGGNCANAATCNTTTTCCNAAATGGGGANCTNTNCANTAAANGGTATTCNACGAAANGGAGNCAANAGGCGNA TAGANAAACGTTAGGAGAGCNGAGNACTGAGCCGAATTCTGNTTGAANTCANCCACNCGTTNCGAGGCCAAGGTNAGCCC CTCGNATCCCCTTCCACNACACAANANACTGANCGANTCNGACNGNNGACGTTGNGNGATTGNCTTATGNNTGNGACGGT CCTNANNAGGNTGATGTAAANTCTGGTCGTAGATNCNGCCNCGCAGNTNTGNTNNTANGTNTTTCAAACTACNTTNNGNN ACAACACTGCNATAGTNAANAGAAANANTGTNCGAGNNANNCTGCAGCACCGGATTCCGGNTNGGTGTNTNNGCTTCTGG GGGGTTGAGTGNNNTGTACCGCCNACGATTNGCNNANTGTCTTCGGACTGGGCGANCCATGACAGCTAAGTGTGACTGGG CNAGGNANNNGNGACATNNCCNANTACATATTGAAGNCACNATTAACAAAACNCNATACTNANTTNAATCTGGTTAACNA NCGTNCTATNTNGANCGCANTCCNANACNACGGGNNACACNTGTANNTGGGCTNGCGCNANNTCGNTCGACCCNGCAGTN TTTNNCGGTCCACANGGAGGCTATNGCGTCTCNNACNCCTCTTGTAACATTCACGAANGCCCCTTCAACCANTGNAGATN GACNCTACATNANATGTAAACACAGAGNTNTAANTGCGGTNGAAANTGNNNAACNNNCNCNNNANTGTACCCCATTATAN CGTGCGCTACGNCNNTAATCANGTNCTGNTTAAAAGGAANCCCGACCGANTNCAGGCGCTTGGAGNGAGTAGANCTGNNN AGCATTTNGNNNGTTANTGNTNGGCGNTNGNAGAGTGCGGTAGAGTTGTGGTACCGGCATTTNGGCATATCCGAGCGGAT CNNGNCCNGGTCGATATNNAANGCNCNNTGCAGAGACNAGAGNGTTACGGGCNNTACGACCCTCANTGGTCTTGTCTTGC NAGCCGGCTCCCGTCCGTCTNAACACCCTACCNGNTGCNTNNTCTNAANAGCGNGNCNTATTNATCTNAACACGCGATAG CNAGTGTTCGCNNTCNCACCCGTGAGTGTAGAGGTNCTGAAATATGCNAGNNTANNNACTGNCACTTNAACNACNACCCN GTANAGGNNTCCATNANNCANCNATTANGGTGGNTTTCAGACTATTACTCTAAATGACCCNCNTTTTTCCACTNCGTACT GATNCGGCCGGCAANCCTNGANACCTANNNTCATTTNGGNCTNACNNGGCGCTTAANTTCNNGNATCGGCTAAGNCNANC ANAGNCCTGTGGAATTNAGTCTGNGCTTCCTTNCATNAGGANGTNCGNGNCCNCNTCGAACGACATTCNTTATTTACANG NCTGANNCGGGGGNGACAGACNNANCTGTNTTCGNTTANTNGNTTANGATNAGGNNGGGTTAAANNTNGANTTCNNATGC CANTNGGNATTNAGTNGANCACACCACNNTNAATTGANAGNTNNTAATCGTGNTCAGTTCNCANGGCGNAGTTNTAGNGT GCCNNACACNCCCANCCACGGANCCGCCTAGGACCGNAANACCAATTNNGAGCNGGCANNTGGGGCGANTTTATGGGAAA TATNGCGTCGTGNTGAACCNGCCNNGNTCNGTCATCCGAAATTGATTCNCTANGNGTTNTGGANNGGANNAGNTNNGANN NNCAATGNCTTAATCNCANNAGNTANCTCNCAAATACNCTTACGCAACATNAGNAGCTNCATGAANAGNTTCTAGNCGNT TNCGAACGNTNTNGTNAATNACATNTTAACAGTNCNTGNAACCTGACANTTCCGCNNAACNNTCTCNCCATNAGGTGTNG ANGGCGTNNAATTCNNATAATGNGCCCCAAAATTTNACTANAANCTTNGGGACGGGCCCCANATATTANAANTNGGGCTT GGTNTTTGCAGGCTAAGTCAATNNCNTAACCGAGGNNNGTCTAAGNTTGNNGAAGGGTCNGAATNCCTGACANAGACAAC NNCCGGGCNAGCGCTGGCGACCTACTNNCTGTGGCGATAGCNCCCTNCNGTTTAGNACATNGAANGCTAAACGCTANTGA TNAGGCAACGNNGTGTGCAGTGCCANGGCTGGTTAGACGNTCCAAGTTNTTNNTTGTCCANNNGTNNNCTTAGNCTAGGG ATNCCAAGNTAACNTCNNGNGTAGATTCANCNTAGGCCNATTGCGCAGNCGGATNTTGNCACAACAGGTGNNGGNCCNGA GTNTCNGGAGCTGNCAGAAGCTCNNNACNTGGTNAAGAATGTAGCNGGNCTACCNTANGTTTANNNNCTGATNAAATNGG CGANNNGGTGCANGGTCTAGACNTTNGTAGCANATNNTNTTTANCTGNTCGATNCACNCTGNGAGCATACCCTCTCTCAC CGCGNNTNATNNANGTTCNNGCGTTNATCNTTCCGCTGNATGTCAGGNAACANNNAGTCGTTTCTGCNNNGACNCAANTG AAGNAAACCTAANNGNACGGCTAGNCACGCTCCNCGNGNGTCNTCGNCTTTTCCNTACCAAACTTNANNAGTNAGCAGNC CTCNANCGCGTNCAACATAAGTNCCNATAAATACTCGCACGTTCGCGNTCNNANCAAACTNTACNNCTCGANTGCCAGNN AACGAGCNTTTCTNACATCATCAGCANCNGCANANTGGAGCTGACTNCACCNCTGNAACCGGNNANCCNNATGTGCCNGT TNAAATTGGTTTACGGATNAACCTNACNNNNNCNNTNCAGTNCGANGCCTGNNNGTGTGNAANCTTNNACCGAACGAGGG ATGNTAGNCNCNGNCTGCTAACANAGACAGGCGTGTTCTNTGACNANGTTACACTCGNNTNATTNGAGGNAAAAATANTG GACGGTCTTNAAAGCGCCCNTAAATNGTNGAAGNANNCTTCNGGGNGAAAANNAGGGANNNATNNAGNGTGAGGCCGTGN GGCTCGTAGNGNNNGAGNATCNANGAATTANGAGGCTCTNGCANACGGTNCNNACTCATTANNGAATGTACCCTTNAATN NTANTCATACTATNNGGCTCGAACNNCTCCGNGTCCCNAAGGTGAANNGNNNATATGNGGGACGCCGNCCCTTCTCTTNC NACCGCTGGCTCCTTCGCTAANATTANGGGGACTNTCGNCANGTGCGGANGAAAGGAGTNTANATGTAGATANACACANA NGTGTNANGGNTTCGCTCGAGCNTCACNTNAGCCNTANNATNGGGCCGTAGGATTAACTGCNCGACTCGCGTCCGNTCTT NGTACNGCNCGCCTGNNGTCCNGGTACTCCAAAGTGGTTTTCCCGACGTACGCCANTGNCATTATTCCAANCTNCCGTTC CCTTTGNNGCTGGGNCACGTTNAGNGGCGGAGTCTNGGCTCNTNAANACTACCCGCCCAGCGGGTCGTGCTTTAGGCNTG GACNGTAATTANNGTGTTAATGAANTNTCNNTAAANTCNTCGGCNATCANCNTACTTGTACNGCNTNTACANAGCGNTNT GATTNACCCTCNTGTGTCNCGAGCGAGCGAGNTCAGACGNTATAGNNTNGGAGTCGGAACAGNGAGCTTGGATAGATNNC TTACNAGCNATTNATCANATGTANGGGCGTANNNATATTNNTGGGTAATATNAGTAACGATANTNGNCTTCTCGCAATAG TNCACCNNCNATCNGAGGNAGCNCGTTGATCTNCACTCNCNTTAAGTNTTTTAATAGTANCAAGGAGTGCTTNAGGANNG CGTNACANCTAAGCTGAANCANTGNNANTCTCCNGCCACTTTNNATTGTAAATGCNTNAGTTATTGGNGNNCATTCTAAA GAANAGATAGAANAGANNGAAAAACGAAANNCGNNTNGGNTGGCTCANAATNNANANCANCTATNNAACTGANNGCACAC NCTCGAGCTANGCATNNAAATNCATCGCGCACTTTTTGANAGGGAGTNGATATTACGGNCCNNTNCGGGCGNCAAAGGGG TTGTCCNGCNCNGNANCTACCTTCCANTCCGAAGTANAGTNGGNCANAGAAGAATNCGAGCCNCTATCTTGTNAAACCTC NGTTAGATAGTACGANNANNATGAANTNNCGGNCAAACNCCNCTAACTCCACNNGAGTNGGGGGTAAGCCNATCGNGATA GGCGCNATACGGTTNTGTTCTTGGTCCCNNTCAAACACCNGCNANNTGTCNCGCNGATNTGNNNGNCGCGTATTCNCAAT NAGAANCCANACATATATAAAGGTANAACTTCTTTGGTAANTCGCNTCTCGNACTCAGNGGCGTANCNCACCNNGGANNC NNTNAANCGACACTCCCTTNTNNNAGNAGCNCTTGNACAACTACATCCNCCTNAGANNAGCNNATNTGNATANGCATTGT NCGTCTCGGANNAAATGNNTTCNANTCACAGNCGAANTAATACATACTTAAAGCTTATGGTTNTGNTNNATGGCTAAANN TTTAGACNGCGNCAGNATNGNCCGCANAGTATCTCTGCTACTGGAGTGGGACNACNNNAATNGCNNTCAGCANNNNNCCA GCTNCTTACACNCGATACCTGNAACTNNCCACTAATTANGAACCNGANNNCGNANAATTCNTGACTATNNNAATCCNNAC ANCAANTNGCGTGGNAGGNGGGTAGNATTTGACTCCATNNGANCTCAGCCNCNGAGCTNGANNTNGATTTGTCTTGNAAC NATANCTTNTATGGTCNTCNTCANGCATCCTCATAGGNTNCCGTTCAGAACGCTTGCGAANGNGCTNCGATTAGGCATNG ACCCANGTCNCGNNATNTANTCTGCNGTCGCAGGNNCGCTCAAATCGTGTGTTCNAGNNTGNTTTNACACCATTCCAGAC TCAGGACTTNTTCGGGTTNCCTGNNCGTNCTCCNCGTNGNCCNATNGAATGCTNTAACNTTCNNACTGTNNTANAAGCNG CNGANAACGCCCNGGCNNCTANTCAANNATTAGGTTANCTNNTTNTCNATGNCAACNNAANTACANCACTCTANGTACGN TCGAANNGNCAAAAACGTGGCCNTANTGCACNTANGCAAGGAACCTGTANTTGGNTNANNGANGTANNANCNCGANGCNN NCGANGTNCANAGAGTNTGCCTTNCGTNCATCGGCNCGNAGANGNCTNGTTATCNNANCGACNNGNNGGNNNGNCNGTAT AANCGTGNGATNGCCANCGACTGTGTCANNGCNTTTGTCGNGGCNTAACNTATTCNACNCACCCTNNCANNTGGTGNATG NNTANGNAAGNAATACNCTTNTTTACCAGCGNCAGTNNNCTAATNNAAATTCTCNGANANGACNNTANCAGCNNTCNTTN NTCTNGCACTNGGAGCCNCGNTTNNAGTTTCAGNGAGAGAGNCAANTCAGNCGATCNGGACCGTTCGAAGGGTCCGGATT NNNNCNCCTTTATGCANNGAGCANCCGCCGACTAAACCACTNGTANCGCTATTTNTTAGANGCGCAACANCGNGCCAANN AAATNCNTAGACATCACCCGAGCTNAGACCCATGNNANCNGAGCNATATACCANGNACAATCTACCCAGCTTGNCAAGNC ACTCNGANAGANTNGGAGCACACNGNTNNCAANATGTANAGANTCGGCNATCGNTCCCCNNANGCTGNGGCTCGCCCTTN CACTGTTTGTCNANNCATNNGGNTACAATGNNGCGCGGGTTNGCGTGATANTNANGCNCTGTCANCTGGNTNGNGCCNAT ANTCNNNNGGCAGGNTGCGANACAANGNATANTGGNAGAGNTNGNNGGGCTANTAGGANTGCGTNCGNCTGCCTGTCGTN AACTGNGNTTTTCTTAANGTTTTCCNTCCNCACCGNTCTTTTNCATTTTTACGCGANTGNNTTAATTNAGAACGANCATC TGCAGGATCCNAATNNTGAGNTTTNAANGAGGNCCGTGTNTTGCCGCGANCAAGCNCTCTTGCTGGNTGGGNAATNGGNT AGNAAACTCTNNATNCNNAAACNGTGGTNAAANNGTTCNCTCAATCCCNNANCNCTNATTAGNNNCGTCCTNNNGGTTTT NACGNCNTNTCACANCGTAACCTGATCGTCGGTNGTNGTGCNCGCGATTNNCNCTNGCTTCTNGGTTNCAGCTAAAANAT GNGCTNGCTGACCNCANTCGNGGNNNTCTTACTGAAATAGTGAGNAGGAAATGNCATTGNCCTACAGCGGGCAGGCNACG CAGGGCCCTNGNATCGGAGCGTTANNACANAGACGCGCNANACANACTTCCGNNGCAGCATNNGTNTGCTGNGTAGAATG AAAGGTTAAATNNNTGACTTNACGTNCTNTNNCGNNCACNNTTACTGNNTTCCNNNGTTAGAANTCATAGCCNTTANNGA CNCACTCGNTGTATCTNNCCGCGTNATGGTAATGACTGGGAGNATTNCAGTCGNCAGCCTNNNGCTACTCCANATCGACG AAGCAAATNNCTNGGGANTCCNGCTACGNNGCNTANNTAGTTCATAGACGGANTNTACGTAACCACCATNGCGGCGAANT GNNGTNTGANTGTANCTTAACCGAGCAAANAGGNTTNAGTGNGAGCGCATCTNGACNNTCTGGGCCTGTGCAATCGGATG TGTACGGGNGTTCNNCGATNCATGGNGTTTAGCCNTCCCGNCNNTCNGACTNTTATANAACACNCNTNCGTACGACCGCA GTCGNTNGTCAGNCTTTNCCCCNTTGGNTNNCGTTGNGAATNCNTCCGACGNGGTGTGGNTNNCGTGCATAGAGNTACAG CCATTTNANANNNGNNAGGGGAGTCTTTNGCNNNNTNCCNGGCACNCGNNCTATAGTCCCCGTATACGCCNTGACNGTAN NCAGAAGGANCTTATTNTATTGNCCNCCANGNTCATAACTTAGAATTATNCTCAACNGNGNCTCNAANGCCNAACNNCTT CNATNATGANNNTAGNTGTGAGGCNATTACTTNCNAGANATTNNCCCCAGNNATGNTGTTGACNNGAAAGAATTTAGTNC TGNGAGCCCGNTCNCGCTCTACCNCGTCGTCCGNTTAATGCCNCCCNNTCTGNGTNGTNCNCTGGGCAAAACTACGGAAG CAGATGCNAGAGCCGACATTCAGNAACNTCNNTNACANCANACNANTAATGNCNANANTGGNGCAGTACANAGGNCNCCC ATCGGNGNGTCGGNANTGTATGNNCCNAACGNGTGGACGCTNANNTNNGTTCATGTCCCNGGCTNNATTCTNGGNGGGNT TTCANCGCNAGGCNACGNTCCANNCNTTCCNNNCANNGGTCAANACGNCTTNATGATANTTCGNNGTNCTNGCAANGTCA TTAGGTGAAANGANNNATCAGCCGGTGCTCGAAACTTTAANNCCTTGACTNTAACTANGNNGNNNCGGGGTTTTTCCNGA ANNATTGCTCACGCCTTACTTANNNCTTGATGTGGACGTTTAGGANGCGTTNTGNAAGNGACCTGCACNNCCGGNNGATT NACTAGCCTTGCCTGTTNTCANTCAACTTGAAATTACAAACTTCNTGACGNAGACAGTAAAGNANGTCNGNCTGANGCTC GAGGGAANCTTATNCNCCNCCCGAGNTNCNTNTGNCTCGGNATNGTANGCTAACTCTNGCAATGTGTAACTACGAANNNN TGNTGNCTGNTNTANCNTCATACCCCGANANAGTGNANTTATATGGCGACCTGGANTATCNACNCCGCTANCAGTNGNAA TATGACTTTTGNTTNNANNATGNAGCATCGGATGNCATTAGNNGCTCCCNATGGGNTAGNGTANTGCTANCNNTCTNTGN NANATATGTAATATGNTTANNNGNCCAGACTTGGCAAGTTATNNAGNCNGCTTNGCNATCATTGGCNANNTGANGGAAGG NTANCCGACGTTCCAGNNTANGTCGATCGCGTAANTNGGAANTTCGGNCCNAACACTTCGCCTTTTTCTAAAAACCCACA GTGCAAANCCAATTNTNACATTGANCGTTNNATCAATTTATGNTACGTCTGAATGTCGTCTCNCGNGATGCANGTCTNNT TANAGAACNCAACTANCTCGNAAGNNNGGCGCNGTTNNANCGNACTGAATTCGANAGNGANAGACGGGNAACNGTCTGCN TCANTANCATNTGCTGCCGAGNNAANCANATNGCANGTCCGANCATGCNTNGNCAGACTNAGTCGGANCTCAAACCNNGG ACNCATGNTGCNCANTGNTGGNCATCCANTTCGGCACTCANGAGTGGNACNNCGCCCGNTGNTNANCTAAAANTGCTGTC TCTGNCATCCGTACTNCGCATNGNGGCGTATCNTCCNGCGGAGGACANCANTCATTCCTCGANGCTGGGGCCCTNANGCA GNAANCTATCGGGGATNTGATTTTNATACNNAACAGTCTGTCTGGAAGNGGGNCANCATTCTNNCNCTTNNAANATTGCT CGACTAATCGCATCCTGAATNGGTTCACTAGGNCATGNCNCGTNAGGCCNGTNNTCATACTCCGAGTCATNCNGTAAGGA AGGCNGCGTCNTTNATAGCNGCGACGNTCCTTGGTCNNTTGAAGTCCNACCTTGGTTANCNACCATATCANTNNACTGNN CNTCTTAGNGACCANTGCAGTCTGNAGGCGTNTGCANCAGNNTTTNGGGGGGANGGAATGGTNCNCNGTCTGATGTCTTC TGANTGGCCNCTNACANNAANCTATNGGGAGGTNNNGTTNANNAAAGNACACNATCCTTAGTCTCCNTGGAANTANCTCG TCTNGNANGTTNACGCTACCTCCNNCTNGTNNNTCAGNCCTNAGGTTCNTNACATCGNNCNTNATNGTATCAGGTAATAG NNTATCNNACGCATGTGAGAAGGCAGNGTNTTGGANGCACNGNANGCGNTTGCAGGTAANANCNTAGGANNACCAGACNG ATANCTANGGTGANTGAATCAGTNCAGCCNCNGCACGGGGCTANGTGGGACTGNNANANCCANTNTCGCNTAGTCGANNN NCGCCTCGCANTGANNACNCNNACATACGGCGCGNCACCAGGCTNGCAGCGCCCCAATAGTTNGNCATCTTAAATAAACT TNANATGNNGTCTCCTGCACCNCTCGTNGCCGANTACANTCCCCNGGACAANNCCNNGNNTAGATTCAATGCNNTTCGTN NTNNANNCCNCCNNTATCTAGTCTAACAATCCCNCNCGGGNCATCGCTNANGTTCANTCANTTACTGCAGTANAAGATGG GCNCCCAGGACCTNATNCNCGAACCCNAGTCNTGNNTATCGTGNCNAGNACGTCCNTTGAATNTCGTAGNNNAGGNGGGC NNNNTGCTGNNACNTTCTANNCTNTAAGTNCGNGGTTTNGAGCTCTTGNNNNCCNTATANAGTCTTGAGATCCNTANCGC NGNTNGTGAAATCCGAANACATTATNNAGNGTCNATANACGGGTAGNATNTGNCGACCCACTNGCTGNTAGATGATNTNN TTTATTAGCGACACCGGNTCATCCNANCGGCACCGAGCGTNAGGGCCCTGAGGCCNGNNATGTACAGGATNGGAGCCTGN CTCTAGCTNGAAGCACANTAATGCNCGCCACTCCTNCCAAGCNGAGCTGCGGGNNGGNCCGNCTCGATNTCNAANCTNNC TTTTGACNGGAGCNTCAAGCCGNNANCCGACNGGGNNAATTGACATGGTATCCGCNNANNNACNCCNGTATTTNTNGTAC TGGCNGGNGCNGTNCGNNTGTNATGANNGGGGANTANTACCNTNCTTGNTNTCNCCNCCNTNTGCAATNCTNNNNGGTNN GGANCANNANTANNCNGCAGNTTACNACAGNCNNANCGATNTNGGCANNGGNCNCNGACAGCTAANGNCGCAAATATNCA ATNCTANGGCTACNAANCGGCNAAGAGTGANGTGTNANNNNANNCCGGTNGCCGNAAACCTNCGNGGATTGATNACGCGC AGGAGACTTTCTAAGNTGNGNGGGTGNNTNCGNTAGACANCTCATNGCANACTTTGGTGGTGTCTGGNANTCGAANGAGN NGGGNTANTCNCNTCNANCATGNCTTTCTGGCTTNNANGANCACTNGCAGATTTANTANTATATTNTGTANGCTATCGNA NTNTAGAGGNACGCTGTNNNTTCAGANACCAAATTGCNGTGACCAATTGAGGNGNTTGAATTTCTCCANAATGGTTCAGN NGCNGNNGGNCGACGTTGCACNTAANCCNCGATGGTTATTCNGGACACTGNCCTTGNCGNCANCAACGNAGCCCCTTNGN GCTAANGGGCCTCTACNATTAAGANNGTNAAGTNAGCTNTTATCATACTNTCGNATCCATCGGACACCCTAAGTCTTCNN GTCTCTNTACGNTCGATTCNGGANCGNCNNTNCNGANGTANNATGCNNTANNNTTCCTGTCGGCGNNGCCTGGGCATCTT NGTGCGNGAANCCAAANACTGGNGATATTCTCGNAGTAGTNCGNNTNATANGNGCTCNAGCCANCTTTCTAAGGCANCNA TGTNTTTTANAGAGGCGATACGTGACTAGTGATATTNAGAGTACTTANGGAACNGCGNACGCGAATNCTNTNCAGCCTGN GANNCTNGGGNNNNAGACTGNGNGGGTANTNCNNATGGAACATTNGGTNTTNCNNCNTTAANAAACGAGCGTANNTNATG CTNNNNATGTCNNACNTGNAANGNAAGGAAGNCAATNTTNNGAAGATCNCAGTTNCATAGAGCNCAANCAGNATATTNGA TGGCAAGCGAANGANCGTNTGTNCTGTACCNGAGCNTCGGANTCGGNANGTTGACNNNNCTAGACAAANATNCNGNCGTN TGCAGNTGCTAANCNAATGCCNCTTCANNTANCCCGNCTCGTCAGGNGTCGGAAAAGATANCCAGNTAGGGCTTGTTGNN NATAACGAGCCNNTNTGACNAGAACGTCCAATTGNNCGCNGGNGCANCCTCTAGNGCTNTATANANACGGGTNTNTNACC NAGCGCTCNCTTGANAACTACANCTGACACNCAAACTANTCTGNTGTCACCTTGTGNCCAANAGNTTAGTCNNATACNAC NGTCCCTNGGGTGGTTATATTCTTNCATCNACCNNGNGAGCCGNCTTTTGGACNGTAGTCCNTTNCNTNNCANCNACTGG CCGCTCAGACGCANCGGATNCANCTNTNACCGCTCCANCANGCAGTGATGCCNAGNCATNATCGGCANTTCTNCTGGATC TTAGCCNGCCCCNTGTTAGNNNNATNAGCAGNAGCCTNNGAGGANNTTGGGNTGTTTGGGGNATAANTCCATGNGTGGTG ATTACNGNTGCAACCACTAGCANGATGCCNCGGNCATNGNTTGCCGCTAAGTTTAGANCNGGTGACTGGGGGTCTACGGA TAGACATGCTNGTCTNCCNTCCANGCCCNNTATNCTACAATGCCTAATCGAAANNGNGAANGTGTTAGTGAGGANGCNAA GCGAGNNGTATTNCGAAAANTCGCCACGCCCAGCNAATCTNGTTAGCGTGAATNCCTGAGANNCGNANTANATCGGGATN GANACAGTTNTNTAAAAGGNNGCAAATCTCNGNATCACNNNAANATGCGAAGGGTGATCANTACNGCACNTNNCGGTTAC GTGANCGCAAGCGGGGACCNCTNACTCCANNATNCNAGATTGCATGGATGGTTANACTCNTCTTCNTCCAGACTNGAGGG GAGTANCAGNNAGTGCGTGACANCCGCGGGTTCACAGGTACAAACACANNNAGGGGCNGGTNCCTACAATCNGAGGANNA ANACACTNTCATCCNCGGTGCGNGCGCAGGTGNTTGGNCTAGGTGNNAGCGGTTTCGNANGAGTNCTGTNTNAGGNNAGT ATGAACTTGCNCCGCAATNTCTTGTGTANGGANAGGTANTCNTATAGAGTCGAGACCNCNCNNNNANATAGACCTACNNA CCCNNNAAGNTANACATTGAGNNGCANATAACNCNAACACTTNGNCTTAGCNCGCCTTGATGCNTNACTTCAGANTTCTA CACCTANNCNGCGNTNNGACATCNTGTNTTGGGNANGCNCAAGCTTGGGTCNTTCTTTATGNAGGGNGAANNCGNNCTNA TAACCNANCTGTGGGGTGNNCTCNTCACTNCNTAAAGGCCCGNNCNGTTCGTAGTTCGTATANNGGACCATGGNGNGNNA NNTTTNCCAGGCGNATATGCANGTNGAAATGCGTGAGTNTAGTATCNTCATCTGNCCGCCGCCAANTTTAACTATNGNTG GTNAAGTGTGNCCGGNCCNTGATCNTNGTTAGGNAGNCATAACNGCTAGNTACTTANTNATATGTANACCGACTAGNGCC CTTTGCGANTAACGGCACCNTGAAGTCNTGNGCGCCGANGGNATNCGNCNGATTNATNNNCCATNGGTCCGAANNGTGNN NTATGNGAGNNTNCANGGTAGTTGTTACATAGGTGAGNNNTTTCNAACATNCANNACGNTCTNGGTAACGNGGGANCTAC ACCACANNGCNANNCAANANGACACNATACNNCGNNGGANAATNACTGNNACTNAATCTNAAGACCATTNGAACTGTCCT TAACAATGTTGCCNGCCGNGGAAATGAATCCCNGATGNGGNGTANNTATTTCATGTTNGTNTGGGATCATCTGGCCCTCA GTNGGGNCACNGCGANTGCTCGGCCCNNNTNCCCGCGCAGGNAGTGCAGATTTCTGNAGGGCNANCAAGNAGCCCNNGCN AGTTGGCCGTCTTAGGGACTTATNATGATCTATGTATTAGGCTTCGGNNCGATATTNNTCNGNCNAANTTTACTGANCTG TATAACTAAATCNAGNTAGNNGGNCNGTNNTGTAGGCTAGCTCGCNANAGCGNNGAGNGACCCNGGCGTNATATNAGTTC GTNTCNANCTNAANGTACCANGTTANACCACTGANAAAGNTCNCNCNCNGTGAGCGGGTATGAAACTGTNNCCNTGCCGG ACGGCCTGANCATAATANANACGANGTANGAGATNGTNGCAGTCGGCNCATTGAAGTTNTCAAGTNCTNNTTNATANGTA CGGGNANGCGTCANTTACCTGACNNATAGCGAGCGGGNCCTTCCGGAGCGANNANTANAAAACTTTNCTTCCGNANGCAN CCGANATACCCAGGNNTANNCGTTTNNGCCNATTGAGTTCATGAGAGCTNTGAGTNCATNACAGGCNACCGTCTAATCTA TTNGANTGNGNGNTGCTNNCNCACCTCNCTGGGAGGGGCGCNGNTGCAGATTCGTTANGCTGNAGGTNTGNNGATTCCNN TCGGGGACTGNTTTCANATCNGATTGCGCANNNTTCTGCCTNCNATCATATCCNNGGGTATTTNGCTCNGGTAACGNCGA NNTTANAAGTNCAGAAACGTGNTCTANNNNNATAGGAGAAGGGAANNNGGNGTTGCGGNTTCTATTATTCCNTTAACTGG GGGCCGCTTACACGCNNTNCGAANNTGTTTCNTTCGCAANTGNTGCCTGCATNCTGNGATGTNNGGGACNACTGTNACNC AATNTNGNTGTATCATTACTNGTTTANNATNGGAGGCCGNTAGNNNGNACANGGNAAGAAAGNNACANCNGNCATTGGCA NTTNCANNTTGGGTNAAAAGCAAGGGGTCNACNTCGGATGGCACCCAGAGAGNGCCCGTAGGNTTAGNNGCNAGNTAANA TNGNCCTTNNATNCAAGTTCCANGCTNACAAGGTGAGNACCTCTCNCGCNGGNTGNGCAGNNTTNTGGNNNTACCCAGNC GGNGGANNAGCCAGGNATNCATCAGCCGNGNAATCCCGCTTNANNGGCGNTTNTACGTCCAACCNNCATNNCGATNNGTT TTTCGNGGCGGCNCAANTGNCTTCTNGTGGCGNANAAGTNNTTANTCGAAAGATGAACNACNTTNNGGTTGNGCNTGGCG NCTTCTAACANACNAGTCGNCAAAANGCNCAATCTATAAGANTNNTGNCNACACAAACTTAGAAACTCCGNGAANNGNCT AGATGATTNCNTCGTCACCGNAGCNACNANCAGNNCCAGTTAGCTTCGCNNCNTTTCTGAGANTNTCTTAGCNACCTCAT GGGAGNCTNGNGGGANNNTTGNGCCTGANNGACACNTAGATCCGTCCCCTNATCGTGANTNCCNATNGNNNNCCCATNTC GNNGNCATATAGTGGNGATTCNNCNCTGGCNNANGAGGTNACTNTTATNGAAAGNCGCGCNANCTGGAACGNACNCANAN CTTANTAATNGNANNTACAGGCNGTAATCGACCGGNNTNTNTGNCGGCNCNAGNGCANGTCTNGCATNAGGACGCAGGAN GANNTCTTGCCATAANTNNGANGCNTNTANCNCACTGTANAANACACCCNTGTGNNNCGAGCAATCCCTGNNGNAACNAG CANCGGAANNATGCATANCATCCGTTTAATAAGCGGTTNGCTATGGNTCCGACNTTNAGCCNTCGCCCCNGAGGCNGGCG GATANCGCTNNGTGTNTTAANCTNNCATGNTTTGGANNCNCTTACATCGTGNGNANTTCGGTANTGCGACCANGATACGC NAGTGGGGANNAGTACGAAGNACNNGATTCAACGCGGATNATTACNANCTNNCNGNCTNACNGNCAGTTGCGTCAACGAG GNCGNAGGCTCTCTGGTAACGTNATNGTNNTAGNANTCAGACCACAACNGNCCTCGTTGNACGTNCTCANCTTGGCGTAT GANGNGCTATTANCATTTTTNCTGAGAATTCNAANAGCACNGCCGTCCGCTATGGANGNCGNNNNAGAGACTATCGTCTN ATTCTGNCATCTCAGAGTTATNNCCGGTCNAACACCTCTNGGNTGCNACNGCTANCAANNGTNGTAGCANTTNTTNCGAT TCTAGNTNNCTAGCNCANCNGTTACCCTCACACTGTCGNNNTTGAGANCNATACNANANATNNCGGNGCAGACGGNNGGT TNNGTCAGAAGNCNAACGCTTTGNNAACTTCNGCCTAGCTGTGNTGGTCGCGGGTACGTTGNTNNNTNTNCGNCTCTTCA TGAGTNNNGCCGNNAGGTCGNCACATGNACCNNGAAATGCGNNCGNTTGNANTGCTANGNNTGAATGNTGGCGTAGNTGN TTCGNATGTCCGGGNANGGACTNGATNNATTGGAGGGTCACNACGAGTGNNGATGTCTTGGNAANCAANGCCGATCTTGN ATTCNCAGACGCATNGGNCTCACCNNTGNNCNAGACNTCAAAGAGGGTNTNTACTTTGNCTCCGCGCGCNNTCCACACCC GTNTNGNTGTCGGTGTGAATTAGTNNACCGTNGCGCNTNTTNNGNCAGGTATACTGNCTCGTTTNTCAAGCACAAGGGNC TTTATCGCNACCNGNATCGACGNTNCTTTCNGNTGTNCNATNNAATCNAACTAGNGATNTTACGTCGACTTCCCNNNTNC CNAGTAGNTGNCGNGANNGNNATAGANCTTGTNTGCAACNGNNCTNGGGACCCCATTCGCCATNCNCTACAGNCATAATC ACCCCATGCGNAANTNANTATCNTGCCCACGACCTCTCGGCTGAAAGTAGGGTTCNTNTANGTNAAANNATCACNNAGGA CAGCCAGNGGCGCTACGAGCGGANCTNNCTNCTAAAAATNGGGGANAGTNCTATGTGTGGTAANNTTANCCGGCGANTTT TTAATACNCCCNANTGAGANGGTTTGNCNGCATNTATTCNNCANGAGGTNTACAAGCATGTTCNANNAAGCANAGCCCAC TATTCANGNCANTGCACNTNNGGAAACGATTCNNNAAGAATACAACCGACCACATTTANCATGNNNAGNTCCCTTCTCAT CCANANCCANAAGACTCTCNNNNCTTGAATNGNCGNNAAGAAAGCACTTGCNCNNGNNGGNGTNATAGNNNTTGCCNTGT CTTGGCTGGCCCCNGNNACANTCGNNNANCGAGGGCATGGGGAGTCNAATGNCGCCGGTAGGNTGCGGATNNACNGNCAG NANTNTCANTAGAATCGGATCNCTNANACGANTGGTCTAANCTTCNTNGATACGCCTNGGNGATTGNGCGNAGATTAAAA NCNCGNNNATTCCGGATACGNTTTATATTNCNCNNGGATNANCCCGGCNNNCGTAGNGTNNAACAGAGGTNGTTTGANTG GNTTANTCTTGATCTGCTCTCGCAGCNGGTNNNGAANNTCTCATNAGAAACAATAGCNNANAGCNNAAGGACCCTTCGTT CTANAGAGCNTAGNNNATTTANTCTGAGNNCGACAANCCTGNATNGNTCGATTGGTACCNACCCCGCAAGNNNCGGGANC GCGATNAGTNGCCTCCGNCTGANGCCNCCGNAGTCNCCTNATTGNCTCNAACNNACGNCATGTNCGGNTNAATAGGATTC GTCANAGNTTTNCGGACCAACGTAGTNTCGCAGGAGNNANNNTGCCNAANTNTTGGATAATCCTTACTNCCTGTNAATGG ATGGGNAGCNNGCGCNNAATGACAACTNGGNATTCCTCNNGGTAGACATGNNNTGGTNTTCNCGNNTTGTANCNATCGGA CACTCCAACTCCGTCTNTGGNTTTAGATNTCTATCAGGGAGGGGGCCCNATGCATCCAACTCGGACAACCTTCCNTAAGA NNACGTTNACAGNTATCACCANAAGTCAGTNANTCTTNAGNAGTNTATNGGNAGCGCNGTNTTNCCNCCGNGGCNNTACC GGCGCGNTTCTCTNCGGGNATTCTTTGCCATTNCCGNNTCCGCGCNAGCTTTTACCAAGNTTNAACGACNGNCTNTCCGG GGCCACCNTGCACCNNCCCCGAANNAANCNANACTAATNANCACGGCAGGGGGCCAANTCAGGTCCANNCTATCTCGCCA ACGNTNTCANNCNACNGTGCGTGNAGCTATGTGTCGGNGTNGGCAGTNNTTGCTGNNTCAAANTTTTNAGGGAAGGTATG ATNCANNCNGGGATANGCGNCGGNTANACCNGACTTAGANAGAGGTNATNGGACTTATNNTATGCCGNTTGCTGNGNTGC NCGCATATCNAACCGGGTTGGTATTCCGGNCTACNTAANNNNTGCTTACNNANAANTTNNCTGNTTGNGNCCNACCATAG AAGAACTGGCTANTCATCGTACCGNCNAATCNAGATTACCGAATAGTATGATGTCNTNGTNTCTNAGCCTCAGCTGTGGC CGANCNCTGTGCAANCGGCGNNNACGNGTGGCNNCNTTCTGGCGNNCCNTCCCNGNGCGAANGNGTTACCACANCTNANN CAATGCNNTCTTNTGCNCTNTATAGGTCTTCCGGTCAGGCATGGGTGAAGNTGGACAGTAGCCCNCTTTAACNGCCGAAA TCGCGTGCNTGAACCAANTTCCCAATCGTNCAAATNNNGNAGNCNCTGTAGGTAACACTCTGGCGACCGNAGNACTNATA GCACCTCNNCNCGTGCGAATNTCTNCTGATTANATNCNACTANCGGAAGNTTTCANGACTAACAGGNNNCAAAGAATTCA NNNNANCTTGATGNNNNTNTAGNGANTNGNCTCGNNNCGNCANATTGGGACCNCTNCTGCTTGGAGNAGNGTTCGCNTAG ATATGCTCNCTAGGCGAGGACGCATNTATANCTNTTCATNAGTAGNAAGATCNACCACCTGCANTNNACCCNNCATANAG CGTCCNGATNNAGNTTTCCNTNTTTNGANGNNANCAANNCNCANGGCNANNGCCTCTCNCACCCNTGGANCTANNGTNAA CTNCTGCNAAANGANGATAGATGNNTCNGGGNTACCGCGNATCNGNNNCAATAGGGAGNTGNAGCTGTCTCGNNGCATNA ATTCCCATGGCCGCAACTNCCGNTAANTACCNAGANGTCCCANCTTGNAAACTAAGGCTTCCGCCGANAGGNGCTNNTTN TTNGCACGAGACAGCCTTTGGTACCGNTTNAGCANGGTNTGCNAGATCCCGGNCCATGTCTNANTACNACTGCCCTCANC AAANGNNTGNGGNGACNTNGCNNGACCTGNATTAACACNTGTGAATNNGTGGCTTAAAAGCNACCNAGTGNCNGGNCNNT ATCNNNNGTGTTNNTGCNGGGGACNNTCCTCGGCCTTGNGCTGNCGAGNNTNCCGCAACCTCNCNANNACNANGTTTAAG NTTNTAACTGCNATAGNCNNCCAAANTCNNCGTNCGNGNAATACAACTNGGACANTNGNTNNACTACCNANAACTGCGNA NNACANCTGNCNCTTNCCTACNAGAGNTGCNTTCGTNCNNTCATATTCNTNAGNTNNNACGACAGTGAGNTTCCGNNAAC TCGGCGNCTNNGGGAGNATGCNCAGGNAGNNTCCTCNTATGGNCNCNTGCANCCAGAANGANCNATCCNNNAGGAGTGGC NCCTANTNTACGNGATNTCNNGGAAGTGGNCGCATANNGNCNACCGTGAAGGGANATNGNCTTANTGNGTGANNCNCNAC NCTGTNNNANNCTNTGACCCTCAAGTNGTCAGATTTACCGCTTNANTANATCCCGATNANCAATTCGTAGGGNCTAGCGT CTTNGNTNAGATCTNNGGNAAGCCTANNNGATNNAAGNGTNGCAGCCCCNCTCGNNTGCTTGGTTGCCGTCGGCNCAANG TCCTCANTANNTCNCTAATTNNNGGCNTACCGAGCGGGTNTCNNATNNCCCTGCGCTCGACANAGGCAGGTNAGNACNNG CGNCCTANTANCGTAAACCCNTNCNGNNNTGGNGNNTAGTGTACNCGNGAGNTCATACAATNCGCNATNNTTNNCTNCCT CCNGNNNNNNTAANTGNANTCCNACNAAAAGGACANCTGNGACNNCAACATTATAGCNTGCCNGGCTCNNNCGTTTTAAN AAGCNACGCNNNGTCNGGCTGCNAGANANGTCTATCCAGACNGGCGGTGTGNAATCTGNTAAGGAAACNATGATTAGGGA GCANNAGTGNTATGAGGTCCTACCTAAGCATTGAAACCNNNCAGGNATCTNNATTCAATNGTTTATCGCTANCCAAGNCC TCNAANGANTNTATCCNCTCCTNCTTTNGAATCGATAAGTTCAAAGAANNGGGTNCGGNNCNNACNGTAACGTNTTGNNA NCATTCNTNTCCNATGNNNGNTGCNTCNATNGNCGACAGGGANCAGNGANGTNACNNCGACAGGACCNGNAAGNNCGTAN GCCTGNCAGGNTNNAAACAANGGGTCCAACGGTTATTCNCCATNACCTNTATCCCNCTCNGTANACGAGANGGGTGCNAC ATAATTAGCTGNTTNANNGAACNCTGNTGTGNCACCAGAGTACANTCCGGNGNCNGAATNTAGNTNAGNCGNAGAGCTGG GTGATCGCAGGANNTGTANCNNGTTTNANNNNTCGGNCGCTTCTNNCCAGCTCNTTTGACAANNGNATGAATCTANAGGN TAGNAAATNNCTNNGTNAGGNNGTTCAATGCCNATCNNAANCAACAATAATAGTTAACCACNNACGCCTTCGATCGGNNT CCACGNTANAAAGATTCTGNTACGNTCAGGTNGCTNNGGANNGAGNCTTNGCANANCNGNGCTGCTGCNCAAGTAGTNGC CANTACCNCNNGAGTTGTCCCNCNTTNNTNGATTATCNTTCGATCATNTNNCATTTNANCGTANAGACNGNANNTTCAGT ATGNCATTTANGNCGGGGGNNCCGCACTAANNAGGTTTTCACCTCGACGNGANATNNTGATANNNACNTCCTANGCCNCN TAGAGCTATTAGNNTNAGCANAGNCATACTCACNGNAGGCTNCAAGCANTCCCTNCNAAAANTCCTNNCTATNAGAGGCG CNTGGCNNANNCATGATGACGNNNAAAGGCTGGTGTACNNACTCGGNNTTANTTAATCAGTGTGCCAACNGCTCGNCTTN CGGNTAACCTCGTNCNCTGNTGTGNTCCAANAAGNCCCTCTNNNTCANATATGTCTCACGNATGTNCNGACNTNCTANCA TNGTAGAACTTAGCCNCCTACNCTNCTNTTNAAAACANAGCCCACCGAGNCCACTNGCNGCCTTCTTNTACCNANNNCCN NTNCTGTGNGCTGTGNNCAGANCNTNGCCNTCGGGTCCGNTGGCGNTNNCNCGAACCCCAGNNACATCNACCATNCCCTN TNAGGNNNTGAAANNGGGTTNAANGCGGCTNAATAGNTANCNTNANNNTCGACATGGAGNGCCNANTNAACTATACCGCT TANNNTCCCGATGTGAAANGNACCACCGNAANTGGCAGAGTTNTTNANCTTNNGCNTNTCCGCTGNCGCCTGGACGCNAG GTGTCGGGATGNTNNNTAGNGCGTTCTGNTAANACGGANTNGTNCTATANTTATCTGNCGNGTNACGTGCCCCNATTTGN CCGNGCANANTCCNGGACCCGCGAAGAAGTGTTCCCNNNATTTTGTATTATGNAAGACACGAAAATCNATNAAGAAGCTA TTTNNTNGNCGCGTNCNANGCNANTCCNCNGGNTGTGAGAGNGNATCATCGGCTTCGGGCCNGAGCTTCNGATANGNCTA GGTAATGNANATCNGCNTNTGGNNATACNGTNTCCTNACTGNTAGAGGTTCNAGTCANNGCTACGACTNNTTAAGTNATT AANNCGAAGTTCGTGTGTATTATGNACTATNCNTAAGNGCNNATTGTGTTGNCGANATNAGNTAAGCGATTTTCNACCNN ACCATNGNANCATAGANCGCCACCTACGTCANGTCCATTNCCNCNCANNNGTNCCATGGCGGAACGGAACAGNATAGCNT AGNCAACGGAGCTCTCGCNTCTAGGACAGGGCGGGNGNTTTTAANCGGCNTGNNCTGGTGGAGCNTGNNANCACTNTTTN ANCTTGCTNNNTTGAGTNCNCNGTGAGTTGGCNNGTATTGGGNACNATATAATCCTCCANCCANTCCNNTCCGAAATNTG GCTTCCGTGTCTNGGACNCCGTGANCTGAAANTAGCNGGNGCATNCCTCTACTCNAAGCANTNNCTTGTAGTTGANCGCC GCGCCTNATCNGCGCTGNGNNNNNNNACCAATGTCCNTTGACGAATACAGGCACACNAGGCGAGGATNCGTNTACAGCAG AGANNCACCAGAACTANATGACCTAGAANATNGGANANTNAGTGNGANNAGTTGGAATCGGNTGCACGTCACCATGGTCN GGGAAGGNTANTNNGCAGNNCGCGTTCGCANATTCAGTNTGNCNNCTCAGTNCAATACTATNTANCGANACGCAGCTAGC ANGAGAAGCCCGGTTNNNCGCGCTACTGGGAACCCCNGNCNNAAATTCTANANTTCTAGAGCNATAANCAAGNNANGCCN TGACGAGCTNGGNGCAANGCTGGTNACTAATCACGATGTTCCGNANTTAANNCAGCGNTTCCNANCATTNAACNCTNNTG AGNACANANNNNTATCCNCTGNACNCGGNGNCNNTNGAGCANATGGCNNANCANGTCCCTTNCGTNTATGCNTCAATNAN NTTCATGNGGAACNCNTATANNCGANGCTATGTACTGGGAAGGGTTCTGANAANNCTATNCANGNTNNTAGANTACTCAA ATANGTGCCGCNGCCTTCNGAACTTGTTAGAGACTNTACNGGTTCGACGNCACTNCCCCACGCGAATCTCTTNTNATTAN ATTTAGNGGCCNGNANTGCAGNTTANTCNGGAATTANAACGGANTATATCCCTNCTATAGCNGGNGCCAANTTTCGCGTG GTGNNGCATNCACTNCAGTNATGANCCANTNAATNTGNNNCTNNNNCGNGTGGCNNGNNTGAGTCATTNNAAAATCAAAC GAAAGTTNTCGNTCNNTGTCTTTACNTTGGNTNCANTNGTGNCNAGCANCCGGACCNTTCCCGCTCCCTCCCGCTNTAAA GCGNCNNCTGGTTTGNGAGCCANATTGNNNNGATCCGCCAAACANANTTGAGCNCGCNNGGGTACGCGCAAGACCTNAGT TNCTTNCNNTTACCTGTGCGANNGAGATAGATCACTCTACGCCGANCACTCTAGNTNNTGNGAAGNCTGNNTCGAGATTC GTCGGNGNCGGGNTANANCACCCTTNNCACTGCGANATATTGATGTAGCNTGGCNNTCGTGTNACCTTTTCCNGNNGCCN ATTNGCNTGCGCGAGCCTCCCNNGGANTTGGTCCAGCANANAACGGANCCTNGAAGAGGGGCNCGNGTCAGGGGGGTCAT TTGNTCNNCCCCANTTGNTGNNNGCCTCCTNNTTATTNGTATAGGGNAGTGNACCAGGTATGTGCGCGCNATNGTCCAGT NNAATACTGCAGNGNTGGCAGGCATCCCTGNCCNNAACTTTCCTCCCCCNGGNGANNNCNNGNACGGTGTGNNGNTTTNA CCTNCCTAGCNCCAACTNNCTCGTCNCGGTACGTNNCTNGANNGTNTGNCATGACAAGGATCNTCTCCAGATCGTGCCAC CNAAATACTTGGAGACGACACGANCNTTGCTTCCGNNAGGNGGCGNANATANGNTAANTTNCNTTACTGNACTGTGNGGC GAGCTATANATNCATCCACCNCGGACCTAAGACTTCGATTCATTGTCAAACANNCNAAGTACNCCCCGAGTACATGCNAA TCGTTCGNTCAATTGGTGCGNCTTGTTNCNTNACGGTTCANNGTNNACNCAGCGGNNGAATCCTNTACNGATNGCNTTCC NGTCAGTNAANCNNCCGNCGAAACCANTCNGCTCTNNTCNCTTTTTGGGNTTACNGCNTNAGCCTGCCNGAGAGTNGCCA NNCTNCACGAACANCGGCCTTCGAANNCATCCATNAAGACACTCAANAATNGAATANNNATTTATANAATTNNGNCTACT AATGANAGGTCNANTCCANNNATATNCNGTTGTATAATNNNGTTGAAGCTNTTNANGCTAGCCTAGCAGTTANNNTGCAN AATNCANATCNAGTTCCTTNCAACTCGNGCCCTGNAGCNAAGNNNTCATNCTATGNAGAGCAATNGCCNTNNATGGATNA AANNNATGNGNTGTCCAGGACNTNTGANCTNACAAANGCCNNGATCGCTANGAACTCNNANGTCAGGNAAAGAACNNGCA GTTANGTATTCNCCTCGTTACCAGGGTATTCNAGNTATNCNGTCNTCGANCNGTCANCCGNTGAGGAGNNTGCTNCAANT NCATNANCTAGNCTGTNNNGCTTGACCATCGCCCTCCGGGTANTNNAANNATNTCNNGAANTCGATGCNGCCGNTGNGNT CCAGNGNNTTANCTGNCNCCNNCAATCNATTTATTATTNCCCNCCGNCCCGNGTGTTTCGTGNGGAAANAGAAGAANNTG NCAGAGCTTGAATACAATTNANNAGTNTGAGNNACTCACGGCCCGCATAAAGGGAANNCNNNCTNGTCGTTNCNGCTGNT TNTCGNTTAGTAGGCTCCNNNNNAAGCTCCNACCATTNCNGNANNCAGTNTTNCTAATGTCNACNGGNTAATNCAGCGAA TTCCGTAGTNAANACCCTATCTCAGTGTGGCGTGTGTCNNNNCCAGGCNATAANAGNAAAANNNCCNCTNAATANTNCAG GCCACGGTNTTNATTAGTNCAAGAANTANNNGAATNNGCCATCGCATTGGTGNCNNGNTNAGNGATCACTGGTCATCGGA AGNGTTGTGGCNNGGAATNANCTTTANANGTGTGGAGNTATNTCAAGANTANNCGGTCATATNAAANTTGNNNNCAGACC TNATTCNGGACGNNTGAAATCGGCCATACCACGNCNGNTTGGGCGTCANTGGGNCANACNGNNCCAGCCGCGCATGTNAT GNGTTNNCNAAANTTNGNNTCAGGTGGNNGAGCCTTGNCTACCGCAAATAATTGTATCCCNGAAGTTCNTATGGAAAAAA TGGATATTTGNTCANNACTANACANNCNNCAGGNGGTTANGGGNAGGANATACNGCTGGGCGAGTAGTNCNAGTACCACN NANANGTNNAGTCATCNTTTTGTNNGGCGCCAANTCTCCCCNTCGNCACCCTNNTGGGNTGTNCATTAGCAGGNTTNNAG AGNATCCACTGCGACNTTANCTGCNTACCGTGCCNNAGTTACATTCGCNNNNATCTAATACTNCACTNATAGTNNTCAAN GNTCAGTCNCCNNNAGNGGNAGCTGAGGATCNGCTNCAANTGANANAGNCTCGCGGANTTTGTNCNGCCCACGCNTTCNT NGGNNNNNGCTNGNGCNTNTNAAGATCCGTGGGCNTCTCGAACGACGCANCGGNACNAAGCCGCCACGCNTNGGTTNATG GGCGTCANCCTATAAATTNATNGCGACTAAGCACTGGCNNTGGTATACNTCTTACNTCNGTGANNNTNAGGNCATNAATA CNTAGNGNAGTGGTTAGGAGTAGCAGATTTTACCNTNNACNNGAATCGGANTNCTGGCTCCTTTTCNCCCTAGNANANNC NCCAAGCTAACCNCCTNANAACGTACCTTGTNCGTGNGNTGTCNTGTGTGANACTGGANAANCNTNNAACCAAGCNTCGT GTATCTGTCCAGGCNNNNGGAANTGTNGNCGTTTNATCTCNNAGATTNAANCTANGGTNATCAATCCNNTAGCCGATNTC GCAATGNNNTNTAGTCTTATNTAAGNGCCANCCGNNGCTTATGNTTTTNACGAATCGTNTCNNACGGGANNGANGGGGCG GCNTCCCAANGTTNTAAANGGNAGTTGANATGANACGANNGCCTNAACATGNTCTCNGCNGNNATGAAGTTTCNTCNNGN TCCNNNNNGAGTNGATCGTGNCTANNCCGTNCACCACTNCNGNNAGTTNNGAGNAGGNANNNTGGNTANTANATNGTAAA NTCTCNTNGTTCANCCACCNGATATAACANCNTTATTTNCTACACANCTGATNTACTGGAGCANTTGTTAANTCNGGNCC TTAACTCCCTCNGTCNTTGTATTNCNNTTGCCNGGGANTGNNGTATAGCAGAAANCANCATCCNGCCTGNGNGNNATGTC TCGCANGGACANCTTTNANGGAAGTNGACAGTCCNTNCGATAGNTCCGATAGNAGCNNNCCCAAGNACNNANGCGCNNAN TCTCTCAGCNACGTTTCGNNCNGGGTTATNCATGACGCCGAGAGTNTCCNTCANCCATAACCCCCCCNCNCTNCGCNACG AGGANGGTTACTAGGTCAATGNTAGAGAAANTNNTTCTCNTATTCAAAATGTNTACCGNANTCTTTNTCGATGNTTACGA TNTTCTGGCNGACNGANAAGNTCGGNACACCANATNNCNANCNGGCNNGCCGTTNTATCCAGCNGAAGANAGCGACNTAN TNTCNTNGGCTANGNTGCACTATCGCNGCNNGGANGAGCCNGNCTNTTGAANNNNGNAACAACGGGGTGGCTGNCNCNNC TTGANCCATNTGCNGGAAGGNCNAGGCGCAATCNCTATNTCCGGCGTNNAGCAANNTANACGACCGNCTTGTAGAGNANA NAGATGCNCTCCGTGTNGCATNTAANTNATNGNCCNAANCGTAGNCGTGATNGNACNGNTCCGGGGAATANGGCNACGNC ACTCGAGGACAANGATNTCGNTTCGANGGAGGCTNNCATCTNTGNGCATNNTCCCCNCCCGAGCCTGNCCGTAGNTCCTN GAGACNTANGACGNACNAANTTCGCACANANCNCAANNTCCGNTTNCCANGANCCGCNCAGNTGGTNAGGACCAGTTGGG TGNNTCCNTAAATNAANNCNAAGNNNNATATNCAGAGGGNTNCTANNNAACCACANGCCGCNGGATNNNGNGCNCAGAAG TNNGNNTNANATCTGGATGCCNNANNCGGAGNNTCACNNCGANTNGGNAACNGNNCCNAGGCGCGGNAAANACNANTCGA NGAAAAGATTCGANNNGANTANCNAATGCCNTAANNNAGCGNCGNNACGTNAGTCANATNACCCGACAGAGTGANCCCNN GGNAACATTNGAATTGATCTGTNNGTGACNTGCTAGTNTTGCCTGANNAGNACCTAGCNCATCACAACCAANTCNCCNAG NCNNNACCTATGCTCGNGGAGNGNTCTCCTNNCTCNNANATATGNNGGCTAGCGTTCTTCAGATCCGAACTCNNGNTCAG GCGGACTTTTGTNGACACNNCCTANNTTANNGNGTGACCGACATTCCANCNTCACNTCTATNGANGNATTAACTGGGCTT GNANGNNNAANACNAAATGTCCCGAANCNAAATCGATAGGACAGGANAACCGTNGACGNNTANCGAAGGCNNCCCGAGGG CCTNNTTCCTGTCAGCTNANAGCATNCCGGCCNCCAGTNGCTNNGNNGCCANNCCGCGTAANTCTCCNTTNNGTCNNGTT TGCCATNNANGNTTACACCTGACGGAGANACTCGTATNCNGCNAGAAAGGCCAGCCTATGGTGNTTTATCCACGATCNTG CCAATTGCNTANTCCNCNGCANNTGGACGGTNCNGAACGTTACGTTCTTNTCTCTGACGCTNACTGGTTCTCGNTGTNCN CCTGCTGNTGGGCNNTGATCNNAATANTNGGTCGTCCCNNCNCAGACGTGATCTGGCGNAGCTCGNCGATTCAGCTACNT TGNNGANNGAAAGCGTANNNGNAGGGNNGNNGTGGTTANNNTNGCAAACATCTGTAGCTTGAACGCNCAGGGANTANCTA CACTCCGCNANNGACACNNNATTGNAANGCCTCACNCCACACNATTGCTTTAAANTTNCNNCGAATNCGGATTTACTNNT AANNGGACTCTGCACGTAGCNGNANTNANCAGGTGNNNTGGAANACGGCNTAAGTCGGCATGANNGTTGATGNNCANCNA NCGTCGNGNTCGATCANNANACAGTANNATCGCNNNCGGAGGGACNCATACCNANANTGTATTGTTTNGNGTGANGTNNN NTNNTTCTGNTGCTTGNNNGTGGCCTCANAATCGANCNCANTCNNTNACCAANANACCGCTTCGNGCCGAGTTGCAATNA CNGAGTTNNANGNTGNGNNTTGCNAGNGNNTAGANTGTCGAATANGCGGTGCAATCAACNTGCAGANGGGACNTCCTACT NTCTCNACTTNCGCCTGGTCNTATNGATNCCGATTCACCAGGGNGTCCCCTNCNCAGAACNAGATNNATGCACTNTNAGT NGATGCGNGNTNCCNNCCGGNGATCATATCAACAGGCNTACGAAATTCCANTNNNNNGCTTCANAGNCCGCACTTNTANG TATATCANGTGATGNTNGNGGNGTNNTGAAACCACTAGCNNTNGANGNTNAGTTTGNNTGACCAANACATNNGANACTAN TANGAATCGNNAANTCATCCAAANTGNANGTTNGNAGCNCTAAGGTGTCNNTNANNNACCCAAATAGTCCAATAACTNNN TACGAAAAATAAGNGGGTTGAATATCTTCTNATGACCTCCNTGCTNGNTANNACGAAAAGCATCGGGTCTNAGCCCCGGC ACANTCCNAGCNCCGATGCCAACCNANGCTCGCGNANCCAGNATCNCCGTTTNTNAANCTGCANCCCNAAATGACCCNGT AGGNCANNTNGTNCGNTGCCTTTTGGAGACNTNCACCGGNNNAGCTNGGGATCGATGTACCANCATGNGTTTAGCNACCT CGNGNCACNCCCNCGTNGCTCTTGAGCACGATCANTGGTGTGGTACGCNTNANTACGNCTTCGCGGTAATGCTNNCNAGA NTGANAAGNCNGGNCAGGTCTTCNGATCGNNTCNANGACCTNCAATCGTGCACAGAACTTAACNNCNAGTTACANNACAG GTANCNTCGCCTCCGTGGNACAGCNTAANCNGCCTGTTNACTCGNAGAATAGAGNNGNGTACGTNGGTTCTANNTANCGA GNTNTNACNGANGGNTTGCTGACNGNNGCCNAACTGTGGCGCTNCCGGTGGCAGTNCAANGATACNNANNGAGAANAGNT ANCNANGNGNAGCTTAAACAGTCNAACCGANTNAGTATTCTCCANATTCAGAGCTTATACCNNTCAACNTCCNTGTGGGC GCGGCGACNNCTGACATGNAAAAATGCAACGACANTCAGANACCACTCANGTCAGGAAGTATTATATTCNGAGGTTCNAC TTANGAGATGCCCGGGCACNGCATNCGCTTATANGNGCGGATCTTCATCACAGCNCGGNGAGTTAAGCNANATCCCGCGT NTTNNAGAGGANGTNNCGAATGCGAGCGGAGCTCNANAANNCNACANGGTTTTAGGGCNTNAGNCTNAAGCGCGNTTTCN CTTCATGGGCCCAGCNAATGACTCCTCCCGAATGANCGACATCACANAAATTNNTAAANNNNGCNCNGGCCCNATGTNTN CNCGATAGGNCCCGCCTCNGNAGNTTTGAAAANCTANTNATTACTGNCCTCGCANTTATNTGGTGCTTCNCCCTNAGNNC CGCATTGGACCNTCTGGTNCCTACCACNTNAGCTNATTGACNAAAGNNGCAANAGGGGNAGTTTGATGGTNNNATTTCNA CNACGGTNCTNTTNNTGGNAACGATNACTTGTTGGNCCGANGGTNNNNGNCCCCCNGNNNGGTTNGACACATNCTCGCCN CGNTAGTCGNCGTCGANNACCGATANTGTANTNTTCAGNCTTCANCNGNANTNTCNGTNCNANGCGTANANACNTNCTNN CNACTTGCGATGCATGNACAGAAGGNNTATAATTTAGTCTGTACCGGNAGNNGCTGCTNNNNGACGGAGNCCCNATANCC CTGGAGNNACTTNCCNTCCTGNTNATCAACTAAACCANATNNTNCTNAGCCTNNCACAATACGAGTATAGCAGGTAAGGG ACAAGGAATGNGNCCAAANNGATGGACNCNNAACCNATTGTTTATGTNCNTCTNNNGTTCACGNACCCNAGCCTNGTGNT GCNTNGAGNATCATCGANTNGGCTTNATCCTNCTCCANTGNAACACAGCGAGNCGNCTCTTNCATCCNGTCAACGGNNTN ANNTCCCTNCTAGAGATNAAGGCCGCGCTTANCAANAAGNNNNTNCCTGCTGCCCNACGGCGGNNTCTANTCCCAAACAG NTGGACGACTNCCTTGGCATANAGGGCTNTCCNGNGTTNNCTCGCTCNNCTACGCAANAANNTCCGTCTACACATGATGN ATTGATANCTACCCAANCCANACCCNGCGGACGAATAAANNTCNAGGTNCTACNCCTGGTACTNNCNAANNCGNCCCGTG GATTAGANTGNCNCATNNANGNANCNNCAANTGACCCGCTACCTTTGGNACANACAGACGACATTANGTNAATGAACACT NNAGNCCGNNAGCCTACTGNNCTCGTNTNTATAGCCCGTCATNTACCCGGCCCNNTNCTGGNAATGNNGNNGCNCCACAG GTAANTCCACNCCGACNCTANGNTANAAGATCGNATTANGAGGCGNCTNTNTTTTGGGNCNAATNAACCACGTTCNTTGA ATNATTCANTGNNGGGCNNCNTTNGAATGAACNCANNCGCNAGNGGGAAGTCANANANACTGGTTGATGNGACTAGCNGT NACTTATCCNTTACGTATNNGNCCTCCACNTTAGCCTGANGNGCNCNCNNNNCGCATCATNNACCNATNTANNCACCATG CTANNNANNGNCNGTNTCCNCCACCGCGCGAAAGAACGNTCTANNTACNGATACGGGTTTCNNAACGNNATTGTNCACNT GTATATGTNTATGAATTCACTCGCACGGNATCTCGCTCCTTCAANNGATAAAAACAGGTNTCTATTTNCACTACNGCNGG CNATCAACTGGTTGCCNCTTCGGNACCTTGGCTAATNTTGATCTTANNANTNNNATNAGNGGNGANTTTCNCCCANGNGT ACGGCNAGCGAANGGGAGCGNCTGAACTNCANTGCCCNGATNTNCGGGGCAACTNCGTANAACGCCNCATATCCNTNNNG CTNCCGNGCCGNTCGGATGCTATGTTGGGAGNTNTATTCNATNNAAANGACCNGTANCGGAAAGNGNCGTNCNATCTTAT AGNTCTGAGACTCCGTANAGTCGNCNAATCTCANTAGACATCACCGGNAGANGTTANATNCATANTTTTNNCAATNNCAN ATGCGNNANACNTCAGTGCAAGCTCCATGCGGTTAAGCANAGNCGNAANGAGTTGGCNAANNTGTTTAATCANNTCGACT GACGTAAGCCNGACNTTNNCTNNGCNNTTNCGCTGCAAAGTGNTCCNNCCTCNANANATTNNNNGATNNTTGCCCAGNGG ANGNANCNACCGNGCTGTGGGGAGTNNGCANAGCCGNCANCTGTCGTAGCTCNGCNTCTNTTNACTCANGTCTTGCTNAN CTNCGANNTTTAAGNNAATNGNNNNNTGTACGGCANAGANCNNACNCTCNGAANANNATGGAATGTNCCGACGAACTNTN GAANNNNTGNNACCNNNTANCGCANCCTCCCAGACGGCCTTGTTNGNCNCGNGNANCATAGGCACCNCNGTGCNTCTGTG TGCANTGANAANTTTNAGNTNGNGCTANCAAAGANCCAACGGAATTGCGANCAATNGGAAAGNGCCNNNNNTTCGANACA CGTNNTAGGGNNTTNNTNAGNGGTCGNGTGGNGTNAATGANAAANNCNTCCTAGGACTCATCNNNGTGCCTGGNNGTGTT ACAGNNCGTNCTACTTCGCANNTGTAAGNTGAACNCNCNNNANGCNANNGTGNAGTGACCTTTAANCNTTNTGNCNGGCN NTCAGATNANCGNTNACNNCCTGATGNAACGCTACNGAAATAATTAANTGNTNAGGTTGNNTCTGCANGGACCGGTCNGN CANCNNGACNGGNCGTTGACCCCAATNNNGTANTGTGATAGNANNAATNACTATGGCGANATACCCAGTCANGNNACNGT CNTNAGTAAACCTCGCNNCTCACNGATTGCAANATGGCNGGGAANTCNTCNGTCACGGNNTTGGGANCCCACNTTAGTNC CGGAACGNGTTNGGTGGNCTCTGATCNTANACNANTGAGCNTCACACNTNGTCCNNATGNGANTCNAGNGNCGTNCTGTA CGNGNGTTGTAATCTACCCTCCCNGNAGNGTGAATNACTTNGCAGNGTTTNTGNATNGAAGGNNGCGGATNCNTTCACTT TCTCNCNTCAGCTGAGNGTTTNCCNNNTCNACCGCTGACCAACTNCANGNGTANGATTCGCCANGTTTCNACGGNCCCAC NANCCCCTGAAATGGATGTCGTACTTGTCCGCCCNGGCANAATATTAACGGTCNGCAGGTCAATNCAAGNNGCCNAGAGA TNCCNANTAAANNAACNGGTGNANCTNGGTCTCTATNGGTCNTTCCGCATTGNATNTTCCAGAGCTCTGCNNANTTACNT AGNTCCGACAGCNNGCCCTNNAANAANGTNCCAAGCACNAGTGAGNCNTACNAGACACACTNTGCNAGNGCGCAAATTCT TNTAAACAAAACCAGCTAATCCCNAGCTNCGGNGCCNCTNTNATCTCGANTCANGTNTANANGAGNGTAGGTAACGCNGT NTACGTATANGGTNTCTANCANCNANCCACCATNTCCNGCACAGGANGAAATCNGAANCANCNCANANCGATCTGCNAAC CGTNGTNACTCGCNGGAACCCANAANAACGGNGNCCGGTGCCTTAACGTNNNNTTGACCATCTGCAGGNNTATCGAGCGT AANGCANTGCGGNTTAGNNGCCAACATCTACGAGANTCAAANTNNATNTCAATGNATNATANTGTGACAGANGGATGANC CAAGGGNCAGCTTAGNGCGNGCACANCATNNAAGCANCNGAACTTNCCTGGAANGAGAATNNACTCCGTCTTATGTNTCG GCCGNGTGNCNGANCATNGGNCACNGCAGNACGGCANAACGTAGAGTCTNNTGAGTCACGANCGTGGNTNGACNGTGGNC CATCGCTGGCTTGCTCNNATNCGCTACATNGNTAGAAGCTNACNCNAGNTGCCGCATTTGNANNACTGAANGNAGGNACN GAGNTCAANCNTTAGGCTCCCTCGGCGAACAGCTCNAACNAANANATGCCCCGCNANGNTCTCTTACAATTNGNTGCTCC GGCNNAGNCAGTNAACCCAGTNACCATGAACGCCTTTGNNGNAAANCACTATCCCGACGTNATCCCTTACNCCTAGNTNC AANACGATNNCAGTGGAGCTNTNNCCNGAANTNACNNTCCGNNCAGACCAGGGANNGGGCGGAGAGAACGNAGNACNCAN TCTAGGGNCANCGAAAANNNAAGGCNCNCNAAANTNATAGTGTTCCGAGGTACGCGGACACAATANGAGTCGTGAAANAG CGNNATANCGNCNATAGTGACANGNCNAAGAGTCACCCNNCTTCTANCNTAGNNCCGANTCTNATCTGNGATCGNGTNNC GTNACACGTAAAAGCNGGCTNNCATAACTNNAANTATCAGNNCTAATGCGANAGGGCGTTTGCAGACTTNANCCCTNTGA TANGTCTTTTNCTGGATTGGTNCCTCTCTGANCNGCGGNGANCGTTNTGNNATTANNNAANGNNGGNCTNTTNCNGTTGT CGCAGGNGTACCTNCANGCCNGAGCCTANTTNNGTNATGGGGTCTGCNCCCTTGANGNTAAGCGGCGTGTGGNCCACAGG TNGACANCGNTCCANCNTTGTGGNTCANGACCCCAGANCTTAGCGNNGNCCACGCGNGNAACGNAAGNCCGCNNNCANTA TNNACNNTTTCGGNCCTNTTTATAGCGTAAATCCGTGANGGANTTNTGCCAANTCNCNTGTCACTACTNCTGNNANGANA CNTNCNCCCNTNTCACAGCNCCCNATTATAANTTGTNCNGNNACTTGTTTGTAGAAGCNGTANNGNGNTGNCACNCCCNT TAACCTACNACNTACCTTTNCTNNNGTCNTNGTTTTGTTTNNTANTNCGGCNCGACGCCGTATCTGCCNTGNCGCATTCA AANGGCAGAATCNTNACNTNANTTGNNGNNGACNNCCTNGATAGCTTNCNGCTAAGNCNGACCCCACANGTNATAGGGNC GAGTGGAGNNCGCACANACGGNCNCTNTAGNNGTTTNAATTGTNGNTTTCCNTGCCAAGTGCGNTGTCTGGNGCCCTNGC NTCTTATNCANCGNGGGCGCANTAGGCNAACNATATAAGGAAAGGTTNCNCANTTTANGTGCTCCTCTTGTGACNCTGTT GTGGGGGGNANNGAGCTTANTGCCCGGTTAGTTTNNNNGCNNTAGAAAATTGTCCTTAGTGCCCGCTAGCCTTCNTNNGT NTGGGTGGNNAGAAGATACTGTTNGCGGNCAANTGGNGGAGCNCTTACNATTTGTCNAGNTNGACTCNAGAANGCTGGGN NAAAGATTGTGGGGCGANGAGNNGGCGANAACTCTTCNNAGCCNAGAGTAATAANATCCTGACCNTAGTNGNNCTACTGT NCTNCNATGACANTAAGNGCCTTCACGNNANATNAGCNATGGGNAANTGNTNNGTACTNATNCATNATNANTGTGATGAT TCNAAGCGCNCTTTCCGCNTGNGNTNTCNGTGTNGCGGTCNCGGCCGNNTTTNAATTTTCCCGGCTGNTAGNTCNNTNGT NACGTNATACGACNCGNNATATTTCCNCATNTTGNNACCTCCTANCATNACTTTANNNATGAACTCNNACCANNNANTAG TGGGNNTCNCGNNACNNNNTGACNAAAGTNANNATAGNGCTCGGNNTNNGTNAANTGNCNAANTTTGACAGCGANGACGG CTAANANAAAGNAAACCCTNCAGCANNNATANAGNCNGNGGTGAACTANNCATGATTTGGNGCANANGAGTGACAAACCA TAANCGAAANNTTGCNCNANNGACNCNNNCTNCGTGACCGCNTCTNCNTGAGGCANNANCTCGCGCAGGNNTCTTNGNGN CGGTCCCTNACNGGNTTNAGCCNCANANAGCCAAGGCNNNTTGGTNCCGGCTNNTGATNNCCATCGCNAACNCAGGAGCT TTGGNTNCNCTCNGCTTTCANAGTACTCTNNGACACTTTATTAAATAAGAACCTGTANACGNTNTGANNACTTTGTGGCT ANCAANTTCNAAGCGGGTNANTCGNCCTACANGCTATNGGNTGTCTAGNCNGTTGGANGNGANCTAGGGCNANAAGATTG TACCANTGTCGCGGTNTAATNNGGTTTCTGCTGGTAGGTNNTGATGTCCTTNCCNCAAGGGAGNGCCCGGNANGACGCTA CGACNAACACNTACGAGCTNANGGTACNCTNCNGTCCANNCCCTCNTCTGNANGNCTCCGNTTNGTNACGCNAGCNAGAG ANNANCTGTANATANCCGCCGGTCANACACTACATNCATGATNGCAGTATNGCACAGNATACTAGCCTGNNNNANAGNTG GTTNGCCNTTCCGGNTGGNTNGTAGCNCCACAATGGTAGGGNTGGAGCCTGATGGTTCTTCANNATCAAGAAACNAGNNG ATATCGANACACTGAGGGNACAATGNTNAAATTGTTTTGCGGCTANTATGAGGNNANTNCNCTAATCAGTACCACTTAAC TGAACNCNAATATCTAANCNGANGTCNNGCCTAAGGATACNTNNATGTATGGNAAGCACGNTANCCANNGNNNAATTCTN ANCGNNCCTTATGTNNGNAGAAGTTANGGAAGCAANAACCANACANNNAGANNNAANCGCGACTNTAGCANAGGCCCATT NNNTGACTNNNNGNCCNTGCTTATCGNTANAAGNAGTCTTNCGAANCCTCTNNGAGCTTCNAGNNCAGNTNTCCCNGGGG CNNAANNTNTGNGTCNGGATCGCNNCTTCATTGTCTGNTGCCCCCGNGGANAAACTTAAGNAGNNGGAGCCTNATATGNG NGAANAACGGCNANCGCNTNGCTNGGANNAGGTNATNGTAACCNGGTNTCGCCGCGAACGGNNACCCANCACNTACNNTC CNCCGGTNGGGTCNGGTTCNGNGCCNAGAGGGNGCGGTGATNCTNNGCTCNGCGNCATNTNCCTATTAGNATNNTCNACC CATAAAGGCAATCTAATCNCGTNATNTGCCCCNGNTCAGANATCNNGGNNCANCGCCGTTGGCGTTTGTAAATTANNAGG GATNNACAACNCTCCACAGTTTNNGCTAAATCGGGCCGCACTGGTTCCAAAGNAAGAACCAGGTTNNCTGNGANCNGAGN TCCCTATCTCGTNGGNCTTTNCTTTNCATCTNNGNNGCNACNCANNCCTNACAGACGNAATTGCTANTNGNCTACCANTT AANCACTNAAGACAGTGGCTCACTGTNCCGNNCGTATCCNTAGTNNNGCGCTNCNCNGTTTTGACANANNCCNAGTGGAN NTANATTAGGNGNTAANAACAATCACCGGGGNCCGCTAAGNGACNGANTNCGNTANTTTTNNNATTGGTTNCCGCTNTNA CNAGCCGAANCCACTCAGGCCGGTNCTNGATNGCCATNANCGTGCTATAAACCGGAACCATANTCCTAACNNGNACAATT GGACCNACCTCGAAGCCNACCACCACCTTTTACGNGAATNNTANNTTATNCTTACNCAGCNTTAGCGAAACTAAGACANN CTTTACGGATNGGACACCCNTNNGNAATACCANGTNGCGTNGCTTTANCTAAGCGANCTANGGGTGCAGAGTGCNGTTNA ANATGATAAGCCAGATGNTCCTCNTGCCCGTTNTNCAACNAGGCAGTGGTGNNAGNCANCGANNCAACNGTCTGTGNCNA AATNAGNGGNCTACGNTTCACTANGCNTCNACGNGAGTTGGCGCACGCAAGCTGTTCTNNTCTTAACGTAAAGGNGACAC TGTGANNACNNCGCNNNTNGNGNTGCNCNCGAGNTCAATTTCCTGGGACACNANCCCCCNGNNGATGNGGCGNCCCGGCG NNACAAGNGNGCACTAAANGAAACNGCCCTGTNTTTTNCGTANNTTCACNCTTGGCNCCTNCCGGTGTNAANGCTGGCNC GATTTTTTCNTCTTTCGGAGTNTTTTCATNNCGGCAAAGTAGNGNANCTTTCNTTACTNATAATTTGATNTTGNGNNGNG AANGACATNGCTAAAATCCTACGGAGGCNTGTGGNGNTAGNTTNTGTTGATCGGNNCATCGTGGTTAGTTNGGTNACCAA CNNNTATAACANCTCNNCAANGTCACGACACGGCCTGTCNGNTCNGATGGTTCNNGTGNGANTTTTCATNTNAGGNGGCA TTNTNATNGAATAAAAAAGCANNTATTTAGNTCTGNCTGGCANCTTAGTGNCGANNNCGGAAGGNTACGAAATCGCCAGG CATTNACCGCCGATGANAACCGNTGNANTTTGTTCCGACANNTANCCANNATGTCCTCAGACAACTTANNNCCNNATTTT GCTGNTGANAGNNCTTCTAGCTNNAANANANGGTCCTCTNCCCGAGGCCAAGTTGGGGTNAACNNNATCGTCGCAANAGN AGGGGGGNAGCNCGNCANNNAGNGACGCATAGAGNGCCAGGGNNACAACAAATCCTAGCNACTNGGNGAACTTCTGNCAT NGNTCGGATCTCACNCGNGTCNCTTAAATTGTAAAAGGNGATCGGNAATTTTTNNGNNANCTGGTGTCNNNAGGNTAGNN CACGGTACGGTTTNTCGCGTCCATACTTGGNCNNCNTACGGCAGGNANTNTGNGNNNTGAATGGNGGAAAGCCCATGATN AANNTNNGNTCGAGNNNCTGTNTTTGGGGATNGGCAGTCTNNGATCTTNGACAATGGGCGAGTGTNGCNATTTCAGNATG CAGNAAANCNAGAGCCANNGCTGNNCTCGTACTGNNNCNNCCNACGAGNTAGATTTCATNANATGGTAACAGNTCTATCT TTCACNTNTNNTAANGGAGCANAGCGAGGACGGCGGGNGACTTNNNACNTTTGNGNGTGTCTGGTCNNAGGNCAGNTTAT GAGCNANCCGCCNANCGATCTCTACCGTCGGNTANCAAGCGAANNANTTNTANGNNTGTCGACNGCCGGNAAAGNNCGTT CTANGTCGTACNTCNTNANCGATAGAGNATANNGCCCGCGGGNCCAGGCGCGNNTTNGNGGAATACCTTNAATCNAACAT CCAACGTAGNCAGTCCACGNNGTGGTCTCAACTACTNTNTACCGTCGTNCGNCTTGCTTGNGATNTCCAGACGNCGGTAC GNAAACCNNCNNNACCTAATCTGNCNTGTCNTNGGAAATANGACGCCNAANCGCCGCGTCATTTNNCATACTNGGTTNGT AGGCNGAGACCAGGANANNNGNCGGCAGNNNAGANGGATCCACGACGCGAGCGTAGTNNNGNCNCTNAGNCGAANCCAGC ATNCNNTAATGTTAAGNTGCTTGANANATANANGNCAANGCNNTGGGNCNGNNTGCACGGTNNTAGGNAGCCTTTTAGGN CANGATGGCTCTTGCTTTNNAGANGCCTCGGTTTGANGTCGAGNTNATGNNTGCNTATATCTGATGACGCGCGGGNNGGN NNAATCNGATGTCATGNCNGTNGTNTCATTTTCTCCTANAAAGNNTACCTGTNCNACAAGGNGNCNTCTCGTNNGTNNAC ANTAAACAGTANTCTANGGTANATTCGNGTNNCCTATCGCACACTACACTTCTCTNACNTGANTCNCCTANAAATTNACC NCNTTGCGGTGGGGNCGTCGATNTTTCGGAATTNCCNNACGCNACGNCCTTCANGGTNTNCATTNAAAAANCCNTACTGN NCAAGGGCGANTTGTGATTCGGAGNGTCTGCTNCACGTCNAGTGCNTACNGACGCCANGNTCANNCGACCGTGNCCAGNG TATCGGACAGCTTTCTANTNTAGNCCNTCANNTNCNCTNGNTAGCANNNGNTCGTGNCCCAAGNAACTTCCAAGTCCNCN AGATTTNACTACACNCGANNNTATATCCAGTTANNNNANCCNAAACAGAGNNNTGTCTNGCANTCTTCGANCCGNGNGTG TCNTAGCTACGAACCGAACCCCNCCNCTTNCCTCNAAAGTNATGGTACATCGANNNCTGANTANTGNTTATGGGCCGNNN CTCCGAGTAAGNGTGGTANTTANTATAGGNCAGGNAAGTANCCAACNTNANANCTANCNATTCTGGCAAGTNNGCANCAN TGGTACCANATTGNCACANTGNTTTCGCCGGNGAAAACNCGCNNGGGGACGGGGGNACATTNGCCCNTGNTTTCCNAATA NTNANNCCTGNNGAACTGTGAGGNCTGGCGGCAGNNNCNCTTGTCCGCNGACATTGGGNNTGCNAGCTNCTCCAGCNCTA CCGGNTGNTNNCGGTCGCTATANCCTGCNGTNTCANANCCCAAGGGANANCNNAATAGGGTTACATCANGTTCCNGTNCN TAGATGTGCGTGCNCGTGTACAGTNATAGCNANATGCCATGNGNCGCCTCNGTGGCGCATCGAGTGCGCATGTCTACGNT NTACTNNGGNNACTNTGGANTNGCANAAANGTTACTGGNNNACTTTNCNCAACNNCGNTAANTCTACATNTCNNNNGNGN CAGTTNTCTNNTCNNCATNTTNAATACCACNCANNATATCGCNAACATNGACCTCCGGNTTACTTNNNTNGCCAGCTANG NTNNGNTAGTTANTCCACCTNCNGCTACNATAGNTATANNTATCNNCNANGTGNTGANAATANNGANACTNGCTTCTCCG ANATTNAAGTTATCNTAGNGNTCAGTACCGAGAGNCTGGAGTGGGGGCTCNCTTNAACNGAATCATNATTTGNTNAACNN NTCCGCTCTACAAGNNTCNGNNTTANATTAANNNNTTGTAGNAGNCGTGAAAATTNTGCTGCANNGNTAGAGAATANNTT AACANNGTACNAANANGCNGNCAGATNTCCNTGCTGAAGGCCGNCTGCGTGCCCGGTTGCGCTNACTNNACCCAACNATC TNTNTTATACCCNNCTCTAANTCGGACATGATGGANTAATNGAACTNGTTNCAAAANCTNNGTGTGAAAGNTCCGGGCCG GCTATGAACATTCACANGCNGNGNNNCTNNNCGNCATATAGCGAGCACATCNCCTNGNNGACNNTATGGTNTGCACTACG TGGATANTACNCGCAACNCNCCACTNAANTNANTTTTNNACTNNNGNTCNNNCNGAGCNNGGNTNCCGANATGTNGNGTG ANTNCCNCGTNTGGNTNCNCCAAGATCGCGTAACAGGTNCCAGTNGCNCAGTANTTGATNCNGTATTNGCCTCTTNGGTN ANCNTTTGTGGNGTCATGCNCANTCCTAGNAGTGTCNNGNTTGCCGCACANGTTCCGTNGCGTTCCGACTCGACGNAAAT NCANTCACGNGNNCANCTCTNTNTCATNAGGATGAGNNGNCNCGCNCCNNNAAANATTTNTCCAAAAATGAGTATCGANA CGTCCNTCANTGGACAAGGAGTGCANCNTCCCNACTTCNGGCACCTNNANNGCNCCTANGGGCNNACGTGCNCNGANCTT AAACGCGANGNCTCNNNNTGGNGACGATNAAGGCGCANNAAGACGGNCNGNNNCNTGGNNGGNTCCCNGCGNNNGACAAN GTATTNNCTGNCTAATCNGACNCTTCGTATGAATNAGTAACGCNTGTNNANGTTCGNCNATTGTNGNNCTTTGAGGATAN TACTCGGANCANNATNANGATCCCGCNGTGAGACTANNTNANCGCGNGCGNGNATNAACGTTTNTCGTGTGNCCTNAACT TAGNGNGCAAGNCCANCACCGATCCTCCGCNACNTAGCCTTNTTATTGAAACANTNANNAGAANCCCNTTNCACTNAAGT CGGGGCGNNNNNCGGGCTNCCGTNGAAGGTNACACNCNCTGAGTAGTAACGAGTCNGACGGTNAGNNTGTTTAGCCCATN GGCCACGGNGNGTTCCGACNGGTACNNGGTCTCTGCGAGACTTGNCNTGTAAGTGACGGCTANCCCGCCANNGCCGANTG CCCNTGCCGCCATAANATCGNGCTTTCAATGGNNCNAGNANANANGTAGTGNNCGANTCTATCCTCCCAATCATCCCTTT NANGAGTAACCTTNACTTGATANGGGNGNGAGNNTNCTTCAANAGGCGCNAAGCNCTTNANATTTCGGTCNAGGANATAN CNTCAGTNGTNACCCTGNTTCANCAGTTACTAGCATGGANNNTNTTTCTCGGCCTCTTCTATCCATACAGNGGAGNGNNC TACACCTCCANNCGCTGCNACGTTTCCCTANTGTATNNTCNTNAAGNNNNNCANAGCNAGGTNGNGACACACCTNATNTA GNTAGTANTGNGNATCCCTAAGCNGACTCNCCCGNTCTNTNTCNNNGNNAGTANGGAGCGCTTNCNGGTGAACGANNCCT TTTTGATANAGTCATGAANTNTTNACNACNCCNTATATTNATTTATCCCGGACAAGCNCTNNCGTNATGCNGCNCTATNA GACCCTCTGGNTAANANNGTNACTAAACATAGCNNCTTATTNGTCGNATTGNTGGATCCTANANNTTACATCGAAATNCN AATACNCGAGTCACANCTTAANGCCTCACCNAGANTNAGCATAANGCTTCTNNTCGTNAGCNCCNGAACCCNGAANTGGN GNCCCTANCNCNTTCNTCAGANTAGNCAAAGNNGGACCTGANCGNTNNGATAGNACNATCCCTCGGGGGAAGNNTCGAAC GCGANTNCTTACCTAATCGNTTCTNGCNTNCNANTNTACACCGTTAGNTTANNCTNATCGTCGNNAANGTTGCAGGGTAG AACCNGCTTGNAAGGGTANGANNGANANATGCACGNATAAGTNTNTCCNCAAGGANNTCCNNCNNTTNGCNGTNATCNTC CGAANAGTGCATNCNCTTTTCAGCTGCATAGCCCAAACTTNGCCCNATNNTCTTGGTGGGCACGNTGNTTGNNGGAAACC GATNNCCCNGGNCNTCNGCATCCCACNGANANNNTACACNNGCACATGANGANGTAANNATAATGATCGGTNNTCAGAGG TNNGCCNTNAAAANCTTAANCNTAGAACNCAGCGCAACCAATCCTGCCTTGGTNGNCTGCNGTNAGTCGATCTGCGCCTN CTTTCGNCGTTAGACANNAAAAACCCTGNAANNGCTCGAAGNNATTNTTCCNCTACATTTTCAGGCTTATGGCACTTTTN NACNACTACATNCGCGGNNCGGCTGANTNGAGGNTTCGCCNACTGANNNTATGAACGACACCGATGATNNAGTNAAGNAT ACATGCTGCAGGCGGACANANTCANCNGANTCACNAGCAGAGANGTTNANCATATCTGACCCATGGCGTAAAGNANGGNN CCNGTNCANAAAGGTTAAGNATCTGGTGTGGTGNNNANGCAGTGNGNGGCANGNNGCGATGGAGAGTGAANNNGANGCGA NCAGCCGTCNCCGGTATANATGGNNNACANGNTNATTACTCCCNCTACTGNNAACCNAGNTTGGNTATCGTGATGNNNNN CTACAGTCATAAAAANGACCATCGGTCTACCTCACCGNAGGCCTGAGANTGCCNTAGNATTGCTTGCNNTCGCCTCTNCG NTTANTACTCACACCGANGNCNAAANTTTAACGAAANGCAGGGNNATNTCTNNCGNANGTNCNNTCNANGTGANTNGAAA GAANAGCNNCNNACAGNATACTGTCNCNGNCTAAGCATGCATNGTGCCACTTTGCAACTNCGNTNNCGTAGNTAGCTAGG GGTNGNTTGCGAAGNANTAGACAAANCAGGTNCNTATCCTAGATCNATAAAGNNNNNNTGGCCCCACCNGCNTTATTAGA NNNNAATGTANNCCTNGTGCCGGANGGCTNNNGCNCTNAACNCCACGACCNNNGTTNAACNAANGCGATATCAANAGANC CGCATNNGTACAGNTNAGTCCANGCGTNTNACGNGGCNGCGNACCGAGNGNAACGTNGGANGCATTNGTGGGCGCCTTCC NCACCATCGCNTTNTCACACNGATANCATNATNCNNGTCCTANGGTACGGGGTAGTNTGGGNAACGCCTCTCCTGANGAN TCACTTGAGNTNAGNGGGAGTCAAAAATCNNGAGGACAGNTGGNCTCAAAGTGAGATCNGNTTCAAGANNGANGATGGGN GTACTANGCNCNAGCGTNTAAGCGTNTCTNGTAGTAAANCGTAGCTTTGATTCNAANGCCGGNATTNNGNGCAANTNTNC CTNTNATNGACGNTNTTTTCTTGTCGCCNNACNGNTNANNTCATTGCATAGCNGGCGTTTNCTATATTGNTNGCGNANCN TGAAGAGGTTANCATCCTCTCANTAACANGTCCNAGTNCCACATCAANGTNAAAAACGNTCNGGGANNAAAATGGATCNN TGCCANTTNTNTTANTANNNGNCAGANNNTCCGNGACACGAATNTTNCNNNGAAGTGGATAGANATAATGCNGACGCGNG AAAGANATCCCANAGANACACTNNNNGTATCGAGAGGTNTGATACGAATCCCATCNACATNCGCAANATCGACNCGTTAN TAGGCNNGANCTAGCCAAANNTAANGATCCCTTACCATNGTNCTGGACCNGTATCGACCCTATNANCTGGTNTGNNTCGN NTCTAGNTACCCATTNATANAGCGCCCTTNATNTCCGCCTCGCGATCGAANCNANGGTTANCGCTATAANNCCCGCTANT GNCNNAGNNGNGCATGTGNCANNGANGCTGNCGTATTNGNGTANGCTTCNCTAAATCNANTGAACTAATAGAGTCNGNGC TTCGTAACNCTGNAAGAACAGGCNNAGACCACTTCGTNGATGNGATACAATNGACAGAATCNGGCGATAGANCNATANNC TNANAGNGCCCATCATNNCGTGTAAGTAGTTTACGNNNNNANNNTNCAAGNACNCCNTNNCGTTCTTTNAGNGGNTNACN CAATTATGNGTGATAGCNCNCGCNNCANTCATACGACNCACNATCTNNNTCAGNTCAGNNANTAANTNNTCGAGAACCTA CNTNNCNTTGGGAGAATATGATCGCTTGGGNGTCTTNGATAGAGAGCATNGCANNNNGCCCTTTAATTANNGGNCACANG GCACGAGCCNCNAGGNTGNTAGTNNTACNNAGGGNACGTNCNNTGGNGAGTCGAGNNCNTANTGNTGTNCAANCATNNTA AGNAAANAGTTATCACCCTCAGAACGANNGGCGCNTTGTTTCGNANGTGNGNGCNNACANCCTTCNTCATAANCCGNGGG GTTTCTATGANTNCAAANATNTANATTTGCNCCTCAGCANNNTCCAGCNTANCGAAAATCATNGTGCNTGCCGACNTGCA NGCCTTAATGAATCTTNGTATNTNTACCTAGACNANATCNACCNNTAGCTATAGTNACNGTCTCGAGCTGAGTTAAAGGT GAGNNGANGNATTANANGGTCGNNTCTNNTCCCANAGAGATTGANTTAGNNNTNGTNGTAGGTCNCNTCCTCGTCCGCNC NNTTNAGNNNNTCCCGCACACATANTGTGTTAGNGAGGGCANNTAGAAANTAGCNATNNANGAGGAACTGACTGTAAACN GTCNNNCTACNTGANCNTAGTAATGNTCNCNTGTAACNGANNGGGNNCNCGATCTAACCNNACATTNAGCCGTNNTCNNC CCNTGANTCNTGNGNTNCTCNNGAANTAGNCCGNCGNGGGACGCTACACCACAAAATCCTCNNACGTCANCAGTCATGAT GTTGGNNAACTNTCGGTCTTAGGTACCTNGAANAAGTGCGTGGCTCTCGNNGATTAATCGNTTNCGTAAAANNTCCGNGG CTACCATCTCCNNGACNTTNCNNNCTNNAGTTNNAGGNAATNGTAAAGNTGAGTTNGGATTAAANTGNNNCGGATCTACA AAACNCGTANTTGTNGNNTCTTNCNNTTNNATCAGAGTNCANCCGGTNAGTANANAGGCNCNNTGTTCAACTCTNCGTNC CNGGGTTGCNNGGACANTNNGGGTANGCTTCGANGAACGCNNGATATGATAGGTAAACGAAGNACTANNNGCCAGGTTAG CCNCNACTCAATACANGNCGNTTNNGGTANATCAAANAAGTACGCTAANANNNGTAGTTTCNNGCNTGCCTCTCCGCCGT CANNCNCAAANNAACTNTGANAGNGGCAGGANGANTGTNCGGATTNCATANNACTANNNCCGGTAGNTNNTCNCNNGGCN NANGATNCAAAACGGAAANANTCTGANATTGGGNNTATNATTANCAGCCNNAGNGATNNGANNNNGANGTTANNCATCNG GGTGGCCNNCAGTNCGNANAGCGNTGCCGGNCCGNGCNCANCTACAGGTGACNANAGGGNCGCAGTCAGATGNNAAGGTG TGCTAGNCNCCNGTCCAATCNNNCGCGGTAANNGACNCNAGNGGNTCGNTTTNCGTTTNCCTGNNCNCCAATGNTGNGGA CNCGCNNGGGGGTTNCCGNTCTAACATGATCAAANGAACNNCAGNTCNNCGTNNGTAATNTGNCTAAAAGNTNCCNCAGG ANNCNGCGGACANNTCNGTTTAGAGNTATTTATGAGGCGGTCNCGCNCACGCCAAAACCNNGNCCCCNTCNCCTTGANAC GANTNNTNACNTTGGGCNNATCGCTCNNNAATANGCACGNCAATNGTTNNGCGTAGCNNGGNNTCATCGCGTNTNGGANC GCCACNNTGTCGTAATAGAANNCNNGAANGNCGGTCCTGNTNCCNATCCNCTNGAACGGAATNANTCGCTCCGGNTACAG CNGNANGANNCGCCATNTCACNCGCCTACGGTATNNANTGNGTGAANNGTGNTTNANCCCTNCNCNNGTTNTNTNATCAN ACAGANNNANGATTTNGTGTGNGAGANGCCNTTNAGCCGTNGNTCCAAGTNAGGNCTCAGAGTCTGNNGATANGAAANTN AGGTTTGNANTTGGNNTTNTNNNCAAGCNTNNANTANTNCNANGAAANTAGTGANCACGTCGNTCCNANCAGACTCTCNA NNCNNGNAAGTGGTGTAAAAAGNGAGCTACTGTTCTTTGTGGGCCAANTANAATNGCGTCNNAGTCTNATTANNCNTANT ATANCCNGCGGTGGGGCTTCAGGGANGCTGGTCATAGTCNTCGTGNTANTGGGCNNAGAGTANANANGNCTGCCCCTNGN CCTAANCATTANNGACATCATCTCTTAGGTNAGTCNCCNTTTTCAGCTNCGGNCNAGGCTTACGGTCCCAGANGCANANG CNNCTTGNGGAGGNAAANTNCACNTANCCNAGGGTATCCTATNGCNATNAGATGGTAAAGGATANGCCCTATNNGTANCG NCTCAAAAGNATGANAANATNCGNCGTCGCNCGTCANNNGNATGACNNNAGTCTNCTCNGACCTTCNNATNGNCAGNCCC TGGGTTTNCAATTTGTNAAAAACAGGTCCNATAGCNCANGNGGANGNNGGACGGTCACNNNGCTNCCACCCCCNACNANA CGNNNNTCNGTTNGTGCGCNGCGATGNANNGCATCTCACTNGNNTGGAGNCATATNTTAGTNTNTANCANNTANTGGNCA CAGTGCCGAACCAGNNGNTACCCCGANNGATACTTCCTNGTTTGGGNCTAANTTNAAANANANCACCGTGGGCNNNANCG TAGGTGNCGTTTGGCTACGNCNNCANNNACANGNATACAANAGGGGAGGACCCAAAGGGANTACGGAGAGANACNATGNG CGCGATNACACATGACAANCTCCAGAANAGCCNNNCNCTTANTNNNAAGAGGGTGTCAGAANGTTGGANAGCTTCNNAAT TCNTTTCNANNTTGTGNGNCGGCNTGGTNGGGTNAGCGGAGAAAAATANAACGNCCTATCCTTGTTGCTNAGCCNTCANT GGGTNNNGACNTGNTNCTTNGNGATCGGACAATANCCNTATTANNNCCATNTCGNATTNNNNCTCANNCTNANNACCAAA NTAACNNNTACGNGNCNCANNATCAGTCTGTCCNGGNCATGTNNNCANTTTTGGGGACTGGCCCNNCNTGCCANANACCC TGTTANAAATGACCTNTNCGAATTCCNTACANCCNTGGCTGTTCCAAANTCTGGGGCAANATGNNCATTGCATTGNTGCA CCANANCACNGGCTCTGGACAANTNANGCNTAGGGAAGCGTGACNNGCGNCATAGCAAGANANNNCAATCCAAANNCTTN NCACAGCGGCNAANNGCTANCCCGNNTNTGAGTGGANAGGGAANGNAANCTTANGNGTTTGCCCCNTAGGACCNCGANAT CATCTCGATAGNNTNGGNNCCTCCGNGNCNTNTCNTGTTANCATTNGAGTCTGGTCGAACTCNTNNCCTATCCNTNANCA GNTTNAGTAAACCGNTACACGANGNTNACGAGNGAGAGTCATTTAATTAACCGACACCATNTGAAGNCCCCNGCANANCC AGCNTCAACTATNTACGCGGNGATCNTNAGAGCCNAANGTNTCATCCTNNGGGANTGTANACAAGAGACGCACCTCGTGN CNATAGCNNCCNAANANGCGCGAGCNCAANCGTNGNACAGGTNCCCCNGGNTTNGNCACAACNAGACATTANCAGNNNAN NANAGAGNTTNNTTGCGCNACACAGANTCNGTTNGACAGCTAAGCCCGGCGTTNANTACGNANGTGTTAAAAGAANANGN NCNTCTGGNCNTAANGTCAACTAANCNCCNAGCCTGTAGACGTTCAGCTGACANCACNTNGCCCNATGNACCTAGTATAC AGAACTTNCGGTGNATGCCNNTNAGANGCGTCNTTATNACNNCTTGTNANCNTCCNCNNAGTGATACCACCCTTANTGGT AGTAANGGCANTAAGANNNNCTAGGCNCNNGAGCCNCAACCANTNTGGTCTNTGCNNNGTGTCCTNANATCNTGGGCNCA TGCTNCTCNGCTNCAGTGTACATNAGGAATTGGCTGNGGATCCNTCTANGCGGGANATCTCCTGACCCCTCGCNGCTGNC GCCAATGNAGNTGATGTAAANTNCTAATGCGGNNGGCNGGATTTCANTNGTTACTCGGATTGNCGTACNGAAGTCCGAGG TCNNAACTANTGGCGAGCNNCTTNTCNTNTCNAGCANNTTNCGAATANAAGGTTGGTCCACCGCAANGTCTCNNNGGTCA NNGNNNANGTACGAANACCNNGAGATNACAGATNTACNCNTGTATNANACNTTAACTACGACNCCTTTNNNGNCCTCTCT GAAGGAACCACCGGNANGATAAAAGGANTTGAGCGNTCGATTCTCTAACANAAATCNAAACCNCTAGCNGNGNNACNNGN TATTANNNNGCGCCGAGACTATCCCTNNANTCCGGNACTCTACACCATAGNAGNGATCTCGTCTACTACCNCNGNAGATN CNCAANCACGACNACTGCGCGNTNNGCGTAGNAGTATCAACCCGNCCNAGNTTCTAATCGACCGTNNTCGNGTTACGTTA AANAAGCTCTGNGCTCTAGTCAATGGTGCNGATGCTNGCNAGACTTTNACTCNTCAAGTTCGNGTNNGTTTGTCCTCNAA AACGTACGNCGGNGGCTCGGTCCAACNGNCGCCCGACACGTGGATACACNTACNAGNCCANGGCNNTTGACNNCGACAGC AAAAGCNAGNGGTACTATGAGTGGTANTGGTTTTCTAANCATNGGGTCCGTNNCANCCANGGGTCACAGAATCGCGGCTG GTNTCGGAGANCGTTCAANNTGTTTTGTAGNAATGCNCTNAGATNNAACGNNNCGCGATCNANNCNGGCNATTGANCGAC AAAGAGCTGGNGGACTGACTNCNGTCTACNAGGCCCTCAGGNAATNAGTGANANNNTAACGNCNCNATNNGTGCTTNCAT CTCNATNAAGGCNNGNCGANTNCNTNCGCTNATTTAGNGNNCCTTTCCNGTCANATACCATTNGNANCAGGAGCAGANGT TNNNAGCAGTACNTAGNNCGCNTAGANNNGNCGCNCANCGTCAGGTAGTGNGGTNTATGNCNCAACNGCGGNTGACAGGN ATTCAGCNTGCTTNNACGGCNTGNCGNCNATGGGNGNNGTACGGGNGNGAGNTACTGGGGTCTCCNCCGNCNAGGGGGAC NCCGCANTNCTTACNNNAGNANNCGNAACGTCGCTATNANTGTNGNGGTNANGNGNTNNCGATGTTAGAANCTAGGAGGA CTGTCNATGAGNNGTAGCANTGNACCTNGGTCNGGTNGTAAGNAGTNGGCCANTCGCNACAGCTTGTAANAAGATATTAN NGANNANNNGGNTAGGACNCCACTTCTCNTTCNGNNGTGAGNNNGACCAGNTTNCNCANNACNCNNCACNCTTANANTAN CGGGCATCTCACGCNTTNTTNNATNGANCANCGTATTCTNCTTGANTTGCTNACCATATCCGCCTCCGNATCANNCCCCT NAAANNNAGGGNTGTGCNNNNCACAGGCANANANGGCTAACCNCTNAGCTTGGCTACAGNNNNCATCANGNCTNCNCCAT TANAGTGTTACATTNGCTNGNNACGCAATNTGCAATTNNNTGNTGCGAGGTGATANGCAGNGCCTGGGNNTTAANNNTTT TNGNGGTTCGTACGATNCTAATTANAGCGNNGCNNCTGGTGTGNCTTANGTGATNCNTGCGCCTANTTCGANNCANAGNT GANNCANANATNCNGTCCGNTANTGGNCCNGATNCANTCCNCTTCCAANGAAACGNATNNCTTCNATACCAAANANGANT NGNNCTNCANTAGTACCANTTCNTTTCCTCANNCAGCGTTACAAACTNTANNNGCANCGTCGCANATGTTGGAAGGCCAG TGTTANGNAGAGNCAATATATATTANTCTCNCTCTGTTTCCNNNNAAATCCCCGANGGCNTCTCTATCCCTCAGCGNCCT AACAGGTGCANGNTAANNGNGCGNGGAGCTAACGATTNTTCATTAACNCTGCGGGATAAANNCCATGNTAGNTGCCCANA NNATTGGNGNGACNTGNAAGACNTCGGNTATGNCNNGACNTATATAANTTNGATGANNAGGCCGNACAAGNTTNTAATCT TCGCAGNAGCTAAGTCGTNTCNTNNTNTGTCACGTTGTAGNAAGACCTCTGAAANGCGNGATCNGNANNGNANGANCGCT TTGATNATTCCNGCCAGCACAANGATCCTGNGNTACNNCNCNANCNGTGANCNNAAGCGCTTACTTCCGNNACNNNATCC CCGTATCNGCACANGCTGNCTAGCACNAGTCACANNCNNGNAANCNTACCNGNCGCNNACAGCCGGCCACTTNACAAGCA GGCNTATCCTGACGTANTATNNAATANACNACGTNCGTTNCACCNAAGCCNCGCGCTTTANNTGNNNCNTACCNNCNCTC TACNTGGANNTGANNATCGCATTNGTCTNCTCTTNANAGCTCNTCCGGTATGNNCCNCNGTCTATCTNACATTCTTGCTA CAGGAGGTGACATGGNNNTNTCNNAANNGATCTAANTCCGCCGNNGGTCNGTNNNTGTGCCNNCTNCCGAACNCTTGTCG AAATNAGNTNCTGNNCGATGGTGCTTNAAGANTACAGCAANTNCNGCCACNCTCTCATATTTGACTAAANNNTNGATCGA TTNANNNNGATTAGCCANNAACATANCNTTGGANGNTACCTGAAAAANGGTGANANAGTCNNAGTNCNATNCGGCATANC ANCACNGTNCAAANTGCGGCAACAANCCGTTAGNCANNCCTGCACNNCGTTNANNNNNNGNGANAGNNNCCGTATTTAGN CCCTGCTGCTTGANNTGACACCTCNTAGNGGCNATCCAACCGACTCTACCACNGNCNGATGGNCTTTATNTTTACNCTAC NAGAACCGNACGANAGCGNCTGGTCAAAGGNCNCGGTACTANNGTCTNCTCCNATATTAGTTCTCNTNCACANNACNTCA NNNGGATTCGGCNNNCAGGNATTTNTCTNATCCAAGACTGTGTTTGACTNNTATGANNGGNCGGACNNGCGATACTACCG CTGGCNCTTCAANTNGNGCTCGTNTTNAGTCGTGTNNATTGAGAGTNAGACGAAATNCGAGCATATTGTNTGTATGCACA GNGGNAGCTCNNGGNGNTAGCGGCTNCAGGNGNGNNTNGACAGCGTNCAAGNNTNGGNGAANGAGTGTCGACGGGNTTAT GGTAACGTNGCGNCTGANCCCCTTGGANCTTGTTAACTNACNCNTTTAGCGTCGAGNAATAGTATCCTANCNTAACATGG NCCNNGCNTCTACNNCCTCATTGNTCGNTGNCNCNATGGATTTTNCATNTANGGAAGATTNNANNTNCGGGAGCGTNGCC NNTCTAGCCTTCNNCTANNNTGTCNNTTAANGGNGGCGNATANGCTANCANNNACCGTATTCNACTTAAAACCNGGGTGA TANTCNACGAGNNGTNNNGNAGCCCCTGANAAGTGNATGGGTNTNCANCNACAATCCTACTATTNGNGGTACANGTGANC TGCNTTTTGNTTCNCTTTNGAAGNNGCCACCGCCTTCANNNGTGAATCGNCGANGCGTTNNGATGCTCCTNACGGAGNNC GTATCTCGCGNTAGTTNTCTCAGACCTGAANTNAGNCGNTANNNANGCACCNCGCCANTCCTANGNAGCGNTACCANTTN CGNNANANCANCNTNNTCCNGGGNTGTCTNCGTGCGACATGNANCNCCCCCTGGAGNNCCNANTATTTGNNTCANCGACC TTGACGAGNGNGGCCGCCNTANGTNGGCAAANCNTGNATNCACGGNATGTACGNNANGNNAAANNNGACTGCCNTAGCCT CTCTTGCCAGGGGNTTTGTNANTNCGCGNGTCNGCGAGGTCNTGTACNATGNGNNNNGGTCGAGGNATCGCNTACNCGCT GAAAGCTNAACGCTGTNCGANTCGNGNCAGCTTTANTGAGNNANGTTCANCTANGNCACATGAATCTAAANNANGGTNNC CTNTNAAGATCTNTCNGCTNNAGNNCCCTNGCNGNTACCCCCCCGACNACNTGAAANNCATCTACTCCGGTTTCNGTTTN CCCATNCATNCGGNNTNNCATGAAGACNGGNNTCGTNNGCNCAAGNNTNNAANTNGACAGNTAANGANTCNAAGNAGAGC NGAAANNGCATGCTGCCGNNTCNCCCGCGGNGCTTCNNTTTNTCAAGTANCGGGGCTGTTNGCAAANGNCAANCCAANTC GCTNTNCTNNATGAACGGTCNNANNAGNNGATNTNACTNTGNCCTATGGCGTGAANCNGCGTAGTGTTGANGNCGNGCAA CTACGAGGNCTAANNNNCTCTGTCNGTTCGGGGCTAGNTTACNAAGAGCCAACCTGNNCGGNCTNGAGAATGTNTAGTGA NAAAATCTNNCAGNNANNAAGGGGGGTANANTTTNNTCCTTGGGTGNGCNTAGNACGNGATNTGCGCATCANCGNATCGT ATATCANCNGGGCTAAAATCGCGTCANGNGGNNNGCCNNGGGACCNTTNGGAGCACGCGGTTCCACACGCNCNTNTAACN TAACNGNTANGNTTANGATCTNTNAGCTAGCNGAGAGAAGTGAAATCACCAGGGCCTATGTNACGTGTCNGAACTCCCCG NNGCCNAAAGCNGCATNNGGATGCCATGNNGNGAANGTTTCCAATNGTGNNGNAGTCTGANGNNGTATNTTTAACNTNAN NNCACNTANNTAANGGNTCACAGTNGNATNNTACTAACNCGGGTAGAACNGNCCNTACANCNCNCTNTNCNGGAAGNCAG ACANGACNCTCAGGCNACTNGNTTNTTCTCAGTNGTCCGGGATGACCNCTNANACAGGNGTNANNCTTTGCGGGGGACCN GTACTATAGGCGTGGGCCACGTTAGGNNNTAAGACGTNCGACGTCNTAATACTNTGTGCCGNCCAATACCGNACGTAANT NAANACNANTANTCTTNGTNANGTTNTANANAATTACGCANACCNCATNGNTGCGGGNNTACGANCTCTNGATCGCGCNA TTCGGCNGCGTAGAGGGTAGACTTCNCCTGACNGGGTGCTANGTATACTCCTANAGCACNTCGCTNNNGGGNGCAGAGNG NGTTGTGTTTGGTGACNCGGNAANTNTNTACCGTCTGANGATCTCNTCTTCTAAGTACTANCTCCNCNGTANATNCATNG NTAAAGCNTNACTANCGTGAAATTTTTGANNTCGAATNGCTNTCTGTACNCTTNATNGNGNACTNNNAAGANCCGANNAT NGNCAANCCTAANTNTNNATNNNTATGGNNCNCGTCATTCNTNNCNGNCTAAAGGCNAAAATTCNTTCCTGCNNTTAATT GGAGTAGTCNGGCTCNGTCNGACTNTGCCGTCCTGCATCTGCTATAATGCGTGCTTTGTNAGAGGTNGGTGGTANTCTAN TCNTNGTATGCTCCNAGGATGATCCGAGANAACGAACTGCTCTCCCNCGNANGNNGCNCNNTCTGTCATANNTNTGTCNG GGATTNNTAGCGCNAACTCACGGNTTGTANGNTGCCGTTGTNCCCNCTTTNCTCNTTGNNGTACNCNCATGNNGCCCCGA NNNNACNTATNCGAGGANTAAAANNTGCNNCNCTACGCTNNGTTCNCGNNGNTANTGTGNTAACTANANAATAGTCTGAC NCTCNCGNCTTNACGCNNNCNTTTGANCTCANCCCTAAGAGGGGATANGAACNNACTCGNCCGTNCCACTTATCTTNCCN TGTCTNGNAATNNGCGGTTTTTTGGNNTGCTTGACAGGANCTAGCAGTCACNTAGTCGNTCCAGGTTCCACGTGNACNTC ACCACTCGANCNGNNCAGATAGGGTAGGCANGCCNTTAGAANATTCNCNCANGCCGNCATGTGTCGTNGGGCGGCCNTNT NGGGNGGNNTGCGAAACTCGCCGACTGNANCTCTTNNCTCNGACNGATATCNTTAGCGANTTTCAACTTGNGTCTGANGT GGANTANGCGCNNACACTCTNTATACNGCACCNTACNCCCNGCNGAATGCNTACAGTAGCACGCTNTCNCGGCAGCNCTC TTATTTTAATGNGTTNGTTTNNCNNAAGTCNTTTNTAAACGGGNGCTGCCTTTTAGACTGNAGTNTCTATTATATTGTAG TGNGCNCGANGAGTTTNTCANTAATATATTCGGTGGCGGNCTCNAAAAGCNGAAGCTCGCNACTNAGGAGCGATNNCTCN TATGTNCCCACNAATATAGCCTTNGGGNCTNGGAGNNTTCCTGAGNACGANATACGGTTTGNGNATTTANATTCTNCTNA ANTNGCNNCCTGNGANTNNCNGNCCCCTGATCGAGTGTANTCNNTTAAANGCTGNATTTTNNTGNGNACTGTTTATAACG GANTTTATACNTGGCAAGACNAATATATNNCGNACGNCNCCCNTNTTGATAATTGTAATNTNGGGTANCGTTTAANGTGC TNNGNTCCGNCACTCAGNNANGGACATTCTNNGANGGACNANTGNNGTTTNGGCCTNGGNCTTTCAACAGTCGNAGAGCN ANATAAGCTNATNACCCAAACACNGAGATANGAGTTTNNTGGTAGCCGTNACCTTCNTNTNAGAGNNGATANCAGTGCAG NNNGANGGGNGACACNCGGTACGNCNNGGNGGTGNTNAANCCACNTGGGATTNGNGCNNTAGTNCNNANCAAANNNNTGC NTGNCTGCANCCTCGGTCGCGAAGGNNNGATGNGNTCTTACNAGANGANATCCAACCGNTNGATANNTNGGAGGAANNAG NATTCGTCAACCCACGGCCNGGANCNTGCCGCNTTGNGCAGGATGGNNAATNGCGCANNAGNACTCCCNGNAGNCCGNGA GTGTACNCTNNGAANATAAAGCAGNCAGGGANCNAGAATTCTGTACTANCNCATCAGTCCNCAGNCTGNATTTNTTCTGT CAGTTNNCGNCCCATNCGGGGAGGNNTCGGGGANCCTAGANCTGTGNTTTTGACGGNCCNCAANNCACANTATNACATTG GCCTCGGTGTAAAGNCGGGATAAGNTCGGCTTNNNTGTAAGNGGACGGCCACGNNGCTAATTNATANNANNGGAACATTA ACTTTGNGACATGCAATCAAGGCATNAAGAGGGTGAAACTNATGATCACTGGGTGGNGNANTGNATCACNGCTGNGCNNN TCGCCGGCTGGATATTNCNGCCTNTACNCCGTNNNNACCGCCNNACNGNGGCATACCNTTCGTGTCCTAGATTTCTNTCC ANTTNAGAANTTAGNTGGGGTGGCTGNNTGACAGCGTNCNNCTCCTTGACAGTTTNAAGGTTNGNNGCGANTGATCGNCG AAGTANNNGNAAGGCTTGGAGCNTCNCTTNTCGNNATGAGCCNACGNAGGCATCAACANTNCGGCAGGNTTTNTAACAAT TTCAANNGANTNAGTGCCCCCGGNACCTTTNCGAAGGTAAGNNGCNGNAGCTNTNAGCNGACTCCCGNNNCGCTAGACAC GATACGGANCCTTCTACANAATAGTCAAATNNCTNANACGNGTANCTANAGNAGGAGGGTANTGNAACANCCCAANCNNG NGATNACGTAACANAGAATGTTANNTTGAATNAGGANAGTGNAATAATCACTCTCNCTNNGGNCAATGCGACGGCNACCG TCAACCTTTAACCNNGCAGNTGNGTGTGTTTGCTGACGACTNCCTGCNNGNGAATCTCGTNTGGNTCNAAANNACTTCTC NNGNNTTCACTCATCNTNGTGATTNCCNAGGTNGCTTGGCTAANGGANGNNANTCANTGTGGNCNATGTNCTTNTAACGG TCATNGCTGGTCGNNAGATCACGGCCCNNCGCNATNCCCGGCGNCTCTANNNNAACANGANGATGGTGAAGGACCTNCGG NACTTGTGGAGNNNNNNCNCNAAGNGCGANNCTTANGGCTCGGCGCNGAGCNANATNCACAAATTNACCNNCTNTCTCAG TCCTGCGGNCATATGNGACTGATAAATGTNTGGNCCCNTAATTCANNGAGNCATCTGGCCANGGCCGNATNGNNNTTTAT CCACNANGGGATNNCANNATNCNGNNNGCGGGACAGTTAAGNCTTCCCTANAACNNCGATTCACATCGTNAGTNNAGTAC CNCAGNCTACGCNAGNATGAANTCNGNANNCCNACCNNCCNATCGNTTNCNCTANNAATTCNGAAGTTAGGCTGNGCCNN ANCTATATAGTNTAGCAAACTNCCAACTNGTCACAGGTTTATAGNGGCTTNGTTANGGNCGTATGTGAAGTCGTCATCCC ACGTGTGGTNTAAATTCTCTNAATATGTNCAAGCGATCTCGATNTGCCNAATANANATAGGGAGNTNAGGNNGGTTCTGN GCGACATCAGGTTCGTNCCANANNNCNGATGGAGGCTNGNACNNAANAAGGTTGGGATCNANAATNATTTGCNCCGNACA TAACNCNAGCAGCGNNCGTNGTGCTNCGCAAGGNGATGGTTTNGGGCNTCCCANGGCNCTNCGNTCGANATGAATACNTG CCANNGTANNGNGTNNNTTTNTTCTCNTTNCCTNNANTTGATGCTGCGNTTTGTTGNAAGNNGCNTTCCNCTGATCANAG ACTGCNNCACTCTGNNATNCGNTNAATNNNAGGCGCGCNAACGAAAAGTANCGCGCNCGCNCGGCCACCNCCCACGCNTN AGGNNTGNACTCTNGGCNCNCAGNANCCTCNTTGGNNAANCGNNCGCATTTATGTATCCGNNTTAGCTGAANCAGGTGAC TGATCANAACACAACTAGGATTTCGGNCGTTAGAGCACGNAGCCCCGGTTGANCNCGNNNAATTTATNCTACCGATCATC NGCGAAANANACTCATNGGGCCANCCGGCCAGCANTCGGNCCCNTNAAGAGNATAGANGCGTAGTAAAACCGTCGGTANN CNGNCTTGAGAACATNGNAGGAACCGCCAANCGGCTGTTGCTATTGTCGCNGTCACNNCAGTCTNACCANGTNANTCCNC GAGGTGGNNGAAGCCTACAANNTCCGGGNTACNNCATCNACNGNGCCGAGNNNACNCGNATNGNCTGCANCTAGNAATCT CTCNNNCGGTNCTNATGCACATNTNCCGGACTGNNACGAATAGNACCTAAGCNAGGNAATNNNCACNTAACNNTTAGGNN GNAANANGAGCGNATAGTGCATATCNGTAAGACGAANTCAGGATAGTAAGNNTGCCCNNGTAGGNANTNATAANCGNNAA TTNCGNTCTAGTCAACNGGGANCTATTCGTTTNTGNCCTTGNNTGTCGGNNAAGGCCATCGCNCGNNNCANTTNCCCAAG NNGTTTACAAGCCGGCGTTCGNTTNATNGGGGNCGACGGNTCNNGCACGNCCATNNNACGGCGTCTNCTCAATTATTNGT GGCNCNCGTCTNGGNTTNCNATACNNTCCCTAACNAGNCGATCCNAGNGCATGAAGGTTNNGCNNAGANCATTANAGATN NNNGGGTTNGCGATATCCTTAACCTGCNTTAGGGCTCNACTTTAGGTNGAACTCTGCANGCGNGGTCAAGNCTTGNANNT NGTCGTTAGANANANTTNTNNCGTTTATTCCGAACNCCGCTAGTNAGNCAANTGGCNTTCTCTCGNCGACCACGCNCTCC NNGCCAGTNCNNANNNNAACGCACGCCTGGCNTNCATATCNCCCCATGGCTTNTNANNGCTATACGNCCAANNNTAAATG ANCNATANNACNACNCNCCGGTACNGAGCCANACGAACCGANCGANNGTGGCGTNCGATGCNATNGTTTTCGAATCGNGA CTCNGCATCACNNTTGCATTAATNNGTANTCATGCNAAATTNAGNNCACAATGACTNAGGAAACCGGNGCCNAACTTCAC ATTNTGGGACNTANTTACATGAGGAAACCGTGAGNGNNGGAAGGNTTCNTCGATNNTGGCATGAGNGCTNCGGNGATNTA ANACCNNTGCACATNNNACCTGCNGAACTGGACAAAGACTACACTAGCCATNTTNNGCTNNNANGNGANGNNCTNGNGCG TGANCCTGTANAACAGTTCATTAANGTGNGTNCNGTNCNATGNTTATGANNGTTTACNACANGNNCAGTNAGAGTTTTGA CTNCAGCAACTANAACGACNNGNNAGCTACNNNNNACCNGANTACGTNTNGNCAGTCCNATNGAGANNAGGTCTGCANTC NCTAGNATNGGCAACNGCTTNCTNTGTGTAAGATNNCGAGCGATTCTANGCNTANCNTNGTGNTNAACGNGNCGTGTGNT CGCNNNNGGTCNGTNGANCNCTGAACNCGGGGAAGTCTTTACTAGTCTTNGNATTGCTNAAAGNCTNCAACANAGNGTTA GNCNGAGCCACTTGGTNNNTAGGNCGNACTTGNTCAGTGNGCGGTGTCCNTNTTANGNCNGCNTCTCCTAATAGGANNCC GANNNGCGACGGGTGNNCCCANAGCCNCGNNNACTATAAAACNNATCNCAGCGNNTGCTTGAGTTACTNCANNNANAGNT GTGTNTATTNCCCGCGNNACTNCTCAGATTGGAAACANNTGACNACNNTTGGNGNTNGGCGGTNTCCGGNNNTANCAGGN NCCTCATCGNCNNCTGNAGTNGACCNTCTTCTNCCCCAAAGNAATNTGAGTCCNCAGCNTCGNGTTATGCCACGNATNAN TGCTCNATTATCTTANNCNCATCACCAACTTTAGNTGTCNGTNCGTNCGANTACNCGNTATCATNTACAGANCTNNATNN TAGGTNGNCTATTGNCTGTGAAGNCAGNGCTAGGTACACNGTCNTAATNGANNCTNCCGACGTANGNCCNGNTATATCAC TAGGGTGGNCTACGTNNCNNCGANCTGNGNCNAACCCCTNNNNTTAAGGATAGGGTATNGCNTGTTACATCCCCNGGNGG NTGGAGNAGTCGANNAAGCTNNTTACCANCAGCTAATNGNNCNGNATTCTAGTTTGTTCACTGNTGATGTGCTTANNNNT NNANGCNACTGCTGNANGNNCTCGGGGCNANCNNATGCNCTTNCNACGCCCCCAGACGNACTGNGNGGANCGCCGACAGG GAGGATGCTGACNCTGANGACATTNCNNAATCTNTCGTNATAGCTNCTGCGTNGATAAAAATGACAGANCANCANCAGNG TACCCCGCATACTGTGCNATNGCTNAGTTNNGCTAAGGGGGGGGTACNNGNNATGCGTTGGTCNAANNATCTCTTNCNGG CATGTGNAGNTACANGGCCCNCNAGGNNAGATCTGTAAAACGTANTNAANACGCTAGNANCAAACAGTNCCGCCTGNTCC CANNNTGNCCCCTATACNNTATTGNATCTTTCACCNNANNAGNTGGTAANNNATCCGGTGANCTCGTAAAGTATGCTCTN TACTAAACATAAAGTCCTTNTNATNNNCNTGCGNAACNTNGGGCCTANCGACNNCNNCCAGNCTCTNNAAAACNTNNTCN NACNTNANANAAGNTATTCAATTTCTCNGGAANNCGTCCNCGCAATTAACCTCTNCGCATCTNNGNANGCNGCNTGGCAA TGCTAANTGGNGAGNGCTTGTTGTGAATNNCNAAGCATNTCCTCTNGCCANATACGTNNNNGCNNGANCGNTTNANCNNA CCGGCGNTTGACGTTTGNAATATNGTTAGGTACTTNCTNNNTGGNCNCATGANGCNGGTNGCNTCNTCNNGCATCATGCA ANAAGCAGCNNCTGCNTGCNGNCCNCGTNCCNACGAGCTNNAGGCNANGAGCATANTCACCCGGTCNGNTGTNATGGGNN GGNNAACACTNACNNTNCGNANNCCTNAGNTTATATGCCCGTCTNTAGTCANTGGCGCTANATCCNNNTTNAANTGGCTN CCGTCTGCNTTCACNGTNNNAAACTCTTTAANNNNAGCGCCCATCAAACTNNNATAATGTAGAGGGTGACAANANNACAN GGNCCNTTTNTTGGTACNACNCAAGGNNACNNTACTCCGATATNCCCGAGGTCNNTTTGACATTNAGCCACCAACTGTNT ATATATTCATCGNGGCNCNATNNTAACGCNCATTANGGCCNCCNGCTACCCAATCCGNTGNCGNTTGACTTTACCCGCAG TNGGNNAGGGACNNGNANTCTCATTCAAGGAGNCGTTNAGGCTACGGAGNANTCCACCTGGGATGCATGANGNCGNATTN CCTNGGGAATATANANGNTNNCTNNCATANNGATTATTGNCGNAGCNCTNGCCNGCTCGAGNNACGTTNGGTCGCTTGGC TTCCGNGTTCTCCGNGGCCNNGGCNNTGGAGTAGGTACGGNGNNTCNGGATGNACCGTGTTTGTTANNTCTAANNCCAGG CCGCNTTTCGTCNGCCNNATANATGGNTCGCATACTNNNNCCGCTATCNGANNTNGAANTNCNTTCCGCCCCCGGGACAN CNAGGCCCAGANAANGNTCGAGCGNNTAGACCCAACCNCNTNANGNAACCCGGGTNGTANGGNANNCAGACGGAATACNC GGATNTCTGCGNTAGGANTAGGGGAGGAACNCTTAANNCNCTGCNCAACTCTGGNAANATNNGATCANAANCCTGACANT GTNCNCATNCTGGCAGNNCCTGGGAGGGTCGGACGTCGNCGTATGGANTCTGTCNAAGNNAATCGCCCGNGANCTCNGNG GTTCANTGCATNGNTATAGGCTGCTGNANAATAATANTCATGTNGNGTNCATTGGGANGTNTTTATAAAATGGCNATGNG CCNCCNNCTGTTCCCTACTNATNGGCNTCGTGTTNAATTTTANGATTNGNGCTGANNAAGCCGCNGACCTCCAAANAAAN TTACAGCTNAAANGCNGTTNNNAATAGAAGACCNNATGCGNTTNNGTACTGACATTNGCGNACANAGATTNATAGNNANN ATCNCACCCCTNCNTCTAAGTCAANNCGCGGGCGGAGGGTGGCTCACANCANCCNTNACCACGNTTACACNGGANCNGAC CCTGACGCNGGCGTATACNTTGNNGCATCCNAATGANTNAACGTTACCGGGCTCTNTNGACGCATGNATNTGTGGCGACN CCNNNCNTGAAGATTGTCCTAATCGANCGATTGAGTATTTATANCNGGANTGCNNATNAATCCACCCACNNNTGNGNGCT TNAGCTGTNANGTNAGANTTCNNNAGNTAANGNGATNAANAATGAGTTCNGANTACGTGNTGCGGCTCACAANTCGTTTG ANCGNCCGCGCTAAGATTAGGCCATTGNNNCNGGAACGAGNATAGCTGNAGGGGTCAGCGTNCNAACGTNNTGNAATAGC GGANNGCACCNGACGCATGGTAAGGNGCCNACTTATCTNGGNATNATNTTTNCCNNCGATGTGTTACGTAGNCAGGGAAC NCNTGNCNCNNCNAGTTNATTNCTCTNCGNTGGCTNGGNANCNGAAATANCTCTCCAACGTATACCCTGNNTNCNAGAGT NACCNTGNGAGTGAANANANNNGGGNTTCTNGGGCCNNAAGGCTNGTGAGGCTNGGCATCCCNAGNCNTGNNTACCGNAG NNAAATNNGTCCANTTACGCNGGGNAACTGATNCTGTTAAGATGNGGNTCANTCTNNGCGCNCNNNNGGCNGACNNAGAC CGTNACATAACTCACTGNNNCNAGATGCCTNGTAAACAGNAGAGCGCAGAGTAGGCTCNNNCACTAGCCCATNTGNACCT GGTANNCGGACGANAGGGCGATTAACANCNGTTCNGNGNGTTGCNCAGNCACGGNTNGCATNGGNTGTNGTTTANGTACN GGAACGCNCGTGGTCNCATTNACAGTAACTCTGGTNNTCAATGTTNTGATANNATTGGGCNCNNCNTGCAGTCNANNGTA NGGGNNANCTTGGAGTGNTGAGTATCCGTCTATGGCTTCCCGTCNCGCCNTGCNACTNAGANCTTNNGCTGAANNTTNNG CNNCNTNTNGCGGTTCTCGCAGGTTCTGNCNTNGGTCCTNGGTAGTTNNTGTTGTGTTATAGGCNGTCNTAACAAAGTAC TCGGCNTNTTGAATNTTCGNCGTAATGGACACCNACNCCATGNGGCGCGCTTACTNGTAAGNCNNNTCTNGACNGNGGCG NCTGCGGNAGGATGGNCCAGNCNCAGTANNCTNNAACCNGNCNCGATANNTNNANNTGNCAGNGNGCAGTNNTANCNTNC NAGTNAATNGNACACNCNGCTNCAGCNNAGTCTGTTCNGGAAACNNANANGCATAGTGTGCCCATATAANCACGGNTATG TNCATGNATAGNANNGTATAAGTTNTCATTTANTANCNNNTAGACGCTCTTGTGGCTCNTNTCNATTAATTANTNNTAGG TCNCCNNANGCGGTNAGTNTGNAATTNCCGNATGGNAGCTCCACTTAGNGGANCTACGCNAGNNGNTGTGGTCGACAGTN NGGGNGCGCTNAGAATNAGATTACANTCCCGNGTNNTGCGGTNGANTNTTNTCGAGAGNTCNANCATNGCGAGGCGANNG CGGTAGACCGGCCATGTTTGNTNCCNNATNATNTNTTGTCCGNAGNTGCCTTGGACNACGCTNGAACNAGGTCACGCAGN TCNCCNTCGTTCNAATGGGGNCNCCGATTNTNNTAATGCTNCNNGTGGTNATANGCNTTNGTGATAATNTGNGTTGTTGG CAATGNGCNGGCAGAGANGTGAAATATACGNTCGGAATGNCGNAACNTTTTTGTCNAGCGCNGGTNACTANNTGTGTCNT NANCAGCTNNATANTGCCGTNTCTTCTGNGAGTCAGTTTNNCNCGTAAANNTTAGNCTCTTGTAGACCNGCCCNNTGGCT AGNNGNNNCCCCNCACCCCGACCGTGNGCCTAACAAATTCTNCANANGTGANCGTNTNNACNAACCGNCCTCNNCNCANC TTNTTGANCACNGGNTTGAANCCGGTCGGNTCANNGCANACCTNTCGTCCGATTACGANTATGTNAGACGNANTTANATN GGCGNAGANAGAACANTGTNATAGATNGAGACNTTACANNTTNGTNTCTGTNAGNTTNCNTATNGNTAATGNGTGTGTCA GNTNNGNGGNATGACNNNANGCCTANACGCCCANTAAGNGTCAGTGANGCCTNCANCNTCCTTNCNCCGCCATGACNTNN AGNTNGGGACTTCGNGCCCGNTANTTNAAACNTTNCAAAACNGGGTNCNGTTNCTGTTCTCGATATNCNNCGTCTCTNTC GGACCCCTTAGATGNNANNNAGANCNGCGGCGAGGTTGAAGNAAGNNTCTTNGCGNGGCCGAGTNCNNTNAAANCACACN CTGTGCATATATAGNGCACGNGTNAGCCGGCGTTACCCCNCGNGTNCGACATNGNGCGNCCANNTAANCAGANGGGGATT CNGNGCTCAATGATGCCGCNAATNNGCNACNGANATTTNTACNCCGGCNCANTGNNGAANNGATTGGNNTCNTNAGTNNG NTGNATGCTACCTCCTCNAGCGTCCTNACNGNGACCTTTGCTGACGGTANGTGANTAGGNNTTNTCGNNGCNTNTCCGTC NCGNNGTANAGNNTGCNCCTATNCGTNCNTCGTTNCNCTACANCACTGCTGTCTNNTTCCNCAATTNGNCGNTNGANNAC NANACAAGTCNNGTAGGACGCTCGNATATGATAGANTANNCCNNGCGTNGGATATTTNGGGATGNGGTGGGCGTNNNNCT NTTTAGTCGTTNNANAGCTTGCAGGNTAGNGNNGAAACTTNGGTCGANATACTANNTTNNTTCAANAATCAACTGCNCCG GNANTGTTCNANTGNCTTGCGACGAGAAGTNAGCCNGCNCCGGATACCGGNAGTTTGACTNCTCCNGNNANTTNNCAATC GNGGNCGTAGNNGNCCCACCCNNANGGATTNGGACGATCCGGGGNCCCGNNNCCANGAGGTTTNTNGCANATGTAGAANG TNACTNNNGTTCTANTGNCNCTGNNGNANAGCNCAAACNTCNNCTNAANTNGATNGNTTGGTGGGCGGTCGTGNGGAGNN TTNGTGGGGCNACNCNNANGCGNAGANCNANNCNNCGTATTCANCATNGTCNACGNGCNACATTCNTCNCGCNNTTTNTT GTCANNNGNGGNTAGCCNNTGNTCCGAAAAACAGCANGCNCCTCGTGNGCGTNCTTCTNTGTGAGNGGNACNGNGGGGTA GNGNTTNGTATTNGCCACCAAGCATNCTTCGNNCCCNTTGCACTTNTTNGNAAAGGCAGGTGGTNCAAATCANGNTCGGN TAGTCGACNCGAGNGNCCCNCGNGAACANANGTTCNNCTNCTNNGCNTCGGTTNTNNNAACCGAAGAAGGCATNCNTCTN TGNNNNGCANNNNATTNAANGTTGTTACGNATNCGTAGCTCCGANCGTCGNGNCCGNAGCTNCAANGGAGNGCNTNTNTT TNCCTTNTTCGTNNGCTTTANNCCCTGTGGCCNCCNNNTNNAACGTCCNGAGGGGNNAGNAGATNNTATCGTAGATNCCT AAANAGCTTNGCANTNNGATATNCGGAGNTAGGNAAATCTGCGAGNANAGAANAGGANTTCAAATCTGAANNCNCGCNCN AANGGCAAGGGNAATCGNNCGATGTCGCTNATATCCTTTGCTGNGCATNGTGNCAAGGATTTTCTTANGCTTNTANTCCN TGGANTGGNNNACTTCNNAGNNACNNATTAGACNNTATTNCGAAGANTCTCCTNANTGTCNACNTGCCTCGACNNTNCGA CCTNACCAAGNTNGCGNGAANCGAGACTGTGGTNATTCNGTGNNNGCCNCGGNAGTGATGCCGCNCGCTGGTNGCTGGAC CTACANTATACTAAGGATNGTACAATGAANCTNGATATATCTNAACGNTTAGNGNANGTTCGCGAGGNACNACCACNCGT GGNGGNNCTGGTTTNGNTCNCNTNTAANACGGAGNTTTTGNGCCCTNNTNAGTGTCACAAAGTTANCTGNGAGCNGNNTA AGATGGTCTCANAGCTCNAGTAGCCAATNNCNATGTCTGTCGATGACGATAGTTNNNNCAATAGANNGACATGACGCTGC NNTCAGATNANAGNTCCNANNCTNNAATAANGCCANNTTNNCGAANGNAAGATGANTTGTANTTGANTNCGANGTATGCN GTNGAAAAAACCCCATAGTTGAGTGCTTCGGTTGAGGTNGTNCNTGTGTTGNGNACGCGTTGCAATANAAGGNNTCGANA TGANGCATNAANNTCACCNNTNAGCANGNCGNCTACNANCCCTGATAGGNNANTANTGTTATGCATNTNAGTTGNAAGGG GNGTGTTNAGNTAGTACCGAAGCGGCNGGNGNCCACGNTATNCCCGCNTANATCGGCCAGACGGCCCAGTCGNTNNACNA NNAANACCGGNNTTNACGNNNTCTNTGTNGGNGNGGTTGNCGGCGGNACCATNTATCGCAAGNNNAGNGGANCGGNGTGA CANTTAGANCTTGATGNCGCCGGNNTGNNGNGGNCAGTAAACGNGNNNCTCTGTGACNTNGGTTCACANGNGTTCTAGNG AATGAGANNGNNGCNTGANCCNGCNCGATNCTNATNTACNGATGTATTAAGTANTTCCTTAAANACGTTANCTTTACNTG NGGTTAANGNTCGGNGGTGAANTCCGCTCCTCTCGANGTGAANNTNCANAGCNTGGGCNNANCCTACTCAACGGTGANGT AATCATANTCATGTCTNTNNCGTNTNGGCCAAATACTTANTACATTNTNTNGATCCGGTTCGAGTATNTAAAGANAGNAG CTCACNACATGTAANTANCNTTCAGNTCANATCAANCNAGGNANACNNGNNGNTCAGCTTCGGTTNAGCNNATCCGTCTG TGGCTCTACNCGCAANACCACAAAAACNATTCCAAATTTGGTNTNCAGTGNNANGCTATTATGTNNGTCGGCACNTAGAT CCNGAGTAGGCTCTNTAGAGTCCACCNGGCTNCTTTGTTNACANTNGGAGACNTTTACGTGAACCCNCTTGNATGCNAGN ANGTTNGATGCGNNNCCCCAATNGATANATNNTCNTNGTGATCCNNTATTTTNNACGCTNGCNANANGTCGACAAACGAC CCNACGGCGATCAATCACNGNGGATGGGGNNNGNGNNCCACGGNCCCACTTGGCCCNAGTGAATNTAAAAANCTNNCCCA ANAACGCACNCGGGTCTTNTTAACACCCNTTATCANTTAATATCTCNATNGAAACGTCTTAATGNNNATTNGACTACGTC CNTCNAGCCGAGGCCGNTGTGNATTTTNANCGAACGNNTGAAGNCTGNAANANNCCTNCNTAAGNATGCAAAGNGGTGAT NANTATNCNNCGNTCCATCCNTATNCNGCNTCCAATGGCAACGGNGAGAGAGCATNCCNCNAANANNTNACCGANNGNTT NGNCTAATCNCCGCNCNTGATAGGGTGNAGNNNTNTCGCCCNCCTANNGGTGGGGTATNGCAGAAGATNTATNAGGNTGC CCCATNTCNAGNTNCCNNGANNTAGTCCTAGCTGGAGANGTGANNGNNGCNCGAANCACNANANTCCTACCGTTCNCTNN GNAATTGCAACGANANNNTGGTGCTTAGGACCNNCCAGNANACAAGNANTNAATGGTNTAGTGAGTANGNGNNANGGNNC TTGCTATAGANAAATCTCTGTTCGATNCGGNCNTNATGTTAATTCGGCCNGTCATGNNNTNTACCGNCCGATTGNCTTTN NCNCTTNNANNCNGTCTNTTGNTANNNACTAGGGAANGCGNATCANGCCTGAANGATGNACAGGTNGGGCNTAANAAGGG TANTTNCTTANNNGCATATCATGCNNANAGNGCTNNCNANTTNANGTGCNAGTNTGTATACTCACGGNCTTNTTNNGTNA NTAGATAGCATAAGGAANANCCGCTCNAGTGCGCTTNAAACNGTNGGCTCTTAACTTTNANACAAGCCGGGACTGGGNGC NAGTCCCATNATTTNACCAACTGCNGCTCTNGNTGTTCATACCNCTCANGCTANNCAGNGACGACTNGGTNTGCGTGTNG TNNCNCCTACGGAGTNGCGTNGGGACGCCTNNGTTCCNGCCTGAACNNNAANCTNGATTGATNTATANCTNTCATNTGAA CGNAAANGGCNGAAGGGGCNTNAGGTGNNAGTGGTNTACNGGTNGTTNTNAANAGCNNNNAGTTTTTCTGTGAGNCACTG GCTNTTCAGNGNAAACATNNTACAGTCCNCAGNCCAAGNGANGGGTCCNAGTNTAAGCGCNNGANTNTACGATACGCNCA NAGCNGNANGCNGGNAGAGNCCNNNCNTAACNCGGNTCTCTTCNNNNGTGCNCTGTTATAGANTCGGTTCGGTGTCANGN CATNNGCNTTCNCCGCTCTGANTAGNACANGNNGCGNNNGCGATCGGGTAAGAGATGCNNCCAACGACCCGTTTNNCNTC CACNNGGCATAAACTNTANGTCAACACGTCNNNGGGNCAGANCTGTNCGNCAGANTNGNNATCGGTGTGNGTCTGGNGTC CCNAAANGGCTNNGNATNNCGCANGNGAATCTAAGTTCCACAACAGNATNAAGNAGCGAGCGNGTATNCNNCTGGGCNGA ANGAACTATCCTAGANTATCNCANCTCTGTNAGTTNTATTAAGAAACCAAGTNGTNCAGTGGNCNTTTNNCNCGTNGATG CTNGTCAGCNTNAACCCATGANAANGTNNGTANNNCTNTCTNGNGACTGCGANCTATTACGNAGANCCANATGGATNCAG CACCNCTAATAATTCGNCTANGTANTATANGCNNACCTCCACTCCATGGGACNACGCGATCGCNTTNTCACTCTNTTTNC NTCTNGCTGGNGANCTNANGNAAAGCAANTCGNTTCCATGAGNCAGATNTNANCTNCCGAANACGNTCTACAGACGGTCA GACATAGANTGAGNTCGCCNNCAGTTANGNACCGGCNNTCNGAAGTCGNTAACGCGTCCTACCCGNTNAGACCGTCCGTA TNATANNGCTCNNCGATTGAGTATCCTAATANCGGCNCCACNTGCCCNCNTAGANNCTTNCTGNTNTTTAGTGGNNAGTN ATGGCATNNCCNTNGGGTNANNACNGTNACCTTNAANAGCAGNNACTTTTNTCNCCTNTTGGCACGGGNANGANTTGGAC AANNCCGAGNGANACGAGTACNGCCNCNGACCTGGNTNGTCCCGNAAGTNTCNTCACAACGNTAGNAGGGAACTTTCNAG NTGTCNGCTGTGCNAACGTCCTGTATNGAATCATTCGGTTCAACNGNTAATNTGTGNCNGNGGCCCTNTAGNGNNNTNAT GNTGANGCATNTCGNGCATCCTGTTGGCCCNAAGAGNAANNNTAGNATNNAGNCTTCCANCGNNAGTTTNCAAGAGTGTC CGAGNGCNAGANGNCATTAAGATACGAAGATTCTANTACATTNCNGGNTCNCGTNNNAGGTCGGTGACTCTTTGGTNTAA TNGTNTNNGGGTCANANGNACTTATGCNGCGGNAGNAAGGCTTGANTTANTAATNATATATGNNATACCATGTNGGANTT AGTCGCTCNAGTATCATCTACGNTGCACANTCNNATCNGTGATAGNNAGGTNCGGACCTGGCTGAANACGATAGGGCANC CNTACGGCAGCTTTGTCATANCNTTNGTTTTGANNAGCANGNTNACGGGNCCNTANGACAGAGTCTCNTAGGACTGACCA CGATAGCGNTCCGCTGNGCCGAACATTAACTCCGGTGTAGGTNTATNGANTTTGTGNTGCTNTAAGGGNCGCTCTGGACC NTAGNCNTGTNNTCNANNAGGNTNAATTATGCCNNGAGNTAANANTANCGGNNATTTNGTGCCANCGCGGTNAGATCNGC CCNANACCGAGNCGCTAGTAGGTAAAAGACTGATACNGTCCACNGAATCNGGTAGGTGGCAACATGCCCNCCNGNGNCCT TATGGTATGAGTGNTTGAGTAAGTNCGNACNAACNACAATCGTCGTGNNACNTCATAACNAAACATNNTNGACAANCNTN NCTAACGAGCCTCAGANANCCAAGCGGNAATATAGCTTNANGCANNGNTTACTGGGNTTCNCCACNACNTATTCTTGCTA GGAATTGANNAAAATTTTCAGATCAGCTATGTANCGGCCTTCTCCNCTNNNCAGNTATCAAAGCNATNTACNAGNCTNTT ANGGTNGCTAGGAANGGAGGNATNCTGANAAACACNGGACGTAAAACGTNGCNGNNACTCAAGGGTCGCTTGTTCATATN TATNNCTCTAGNNGCCNTANGCGTANNTNCTTGNANGAATNCNNAANTGGTCATNTTNNTATGAGTGTAANTCCNTCGCA TGCTGNTCNTNNCGTGTNGGTAGTTCTTAACTGCCACGTAACGACGAGTNGNNTNGGTCCNTCCGGTGNGGANTNNTACG GCCNANANNTTCGGTGCATATCAAGTGGCGTTTCCTGTCGATCNCATTGANNGCANGTGTTTNGANTGCCNNTCACTTCN CGNGGGAAGNTNCACGANATCGGTTTNTTAANANNNGAGTNCCTGGNTCATCAACNGTTGNTTCCCTAGTNCCCTGCCAT TNTCCTCTANTTTGGTAGGANTTNTTNGCCGGCGCCCAGGACTCGNAGANGACNTGAGCTACACTNNGTGACCCTGCCCG NNAGNCGGTTNAGGCNCAATCATCAAATNGCCTAAGAGCGNCNNGGNTATNNCCATGGANNAACGAGGGNGAGAGNTAGA CCTNGCTATAGCCAAACAGATGTAGGGNACAGTGAATNCCGCTCGATAGNACCTCGTAGCANTAGNCAGCNAAACANTCG CCCTGGNGNANNGGCNCGNCTNCTTTNCACGACACAACTATNCGTATTCCGTAGANGACAANTANCTGAANNTCGNTCNT GTNTGTAATGTCTTAGNAGTTGNGGCNACGAGANAACNCGAGGGCAANANGGNAGGGTANGCANNCTTGTAAANTATNTG TGCGNNGNNANCTAAGATGTGGGCTGGCNTNCNCTNANTCTCAGCGAGTNNAGCAACGNGNCTNAGACNCNGGNTGTCCG NCCANGNTAGGNACTGNCNGTCGTTNCGGAACGATCCANCNAAGTCNGTAANNTTCCGGGNGCNCCTNAGNAGTNGCTAA TCCTAGCNTCCNNNCNTGGAAGNCAGATNCAANGGCNTCAAGTNGACAGGCGTTNGCCAGCNGGCNGCNNCNCCNAAAGG GNNTCTGAGNTACANANTNNCTGCAGNGAGACACTATAGACGCGTCGNCTGNNGCTAGANGACTGGCGAAANANACANGT TNGAAGTNCTAGCCNGGACGGCCNTCACCGCAGATNNTCTCGCATACGACGNGTANNCGCNTNCGANCNATNTNANTGNC CGTGGTAATNCAAGCGCATCGATNNGTNGTANCTNGCGCCCATTANGAGTNNCTNCGGTNNACAACCNTTTNAANNNANA GCTAGNAAAGACCATCATGTGTCGATANAAGANTTATGTNGNGNNCGNCATTTGAATATTTTGTATATTNGAGGTCGANC NCCNAANNNGATAATGCCNNTTGCGNATTCTCNCNCCNNCATCTGNAACGATCACGNCCCNACAGTGTCCACACGCNANC CACTTTACCAGNCCGCTAAGCCCTNACAGNTTNGNTNTNTAATCGNTGTTCTTGGCCGGAGCGNNANAATCAACGAACCA NAGAGTANTNGATNGNTGANGATCATTNNACCNNAACCCGGCNNTGCAGGNGGNTNCNCNGTTNNGTNATNCCNTCTCAG NCTNACGAGCTGGNCCGAANGCGTCNANCNATGCGCGAATACTGGTCCGAANTGANCGTGCNCCGAGNANTTGNNANNCC CTGTNCGTGGCCNGATGTCNGGTTAAANGTTCCAAGAGNTGTNCGCCCCGNNTCTACNNTTGACCATNGTANCGATTGTC CNAACTTCNTGCCTAGCNCNNNTCACATGTATGGCGGNNTAACCNTCTTGTAGNCNNCCCTCCNCANNAATCCTANGAGN CANCCAGCGCNCGAGGTACGGGCCAAATTCANAGGTCAACTTCGCAANACGCCGNNCTCTGTTGCANNCNGACTNCGGNT CNNTNNANNACAGTCGATGTAGTTTTNGTTCNGAGATAGGTATCNTCCANGTACGANAANGCCCCGGNTCCNNATCNCTC GTGCNGGCCGGNNACCNCACGCCAGGNTNANTTCCATNTCGGATGCACAGAGTCCTCTGGTGCGGGCAACNCCTNGNNNN AGTATCCTNATNNAGAGGCGNTNANCCGATCGNGTTTGGNGAACNTCNTGNGCNAAGNCGTTGNNNCTGTNGNNCCCGNN TNTAACANGATTCACATAAAGTATNATAATAAGGTCNCNCTNNCNANCTNAACGGAGTNGGANGGAACAATNCNNTGCCC NCTNAATCNTNATCTTGTNGGCANNCTGGGNATCAAAGCATNTNNGCGTCCTCTTTCTTCCGGTACCANGCGTANTNGCT TCCCAGTCCCTGANGNGTGGTNNNGCTGNTNCNTNGNANNNTGTATNCNAGCTTAAATCATGGGTCNCGTATGNCAAANN GANCANANCNAANGCGCNTGAACGNGTGNGATANTGGCGCCANGCCNATANTTGNTNNGACATAGTTTGTCCATTACCGN TTCTACGGGNCGNTANNNCNTTGCGNNAAAAAAGCCTAANNTCNNAACNNGTCTGTTTGACNCGNCANANGATCCCGGAN GAAGNCCNAGACGCCTTGNAAAANTTTACNGGTCNCCACNGGANCGTTTGAAGGGNGNACCCAGCNTCCGGGCGNCNNCA NCTAGTGGNGCNNGTTAAGNGNGATNGCAGGGNCTAACNTCCCCTAGGNCCCTNGGTCAANTNTTAACGGGAACATCAGT TTANTCCATACCNGNGAAATTCAATATCGGGCATTNNTGTNTCTTNANTCNGTNTNCCAACGGTCGTGGAGCTNNNCNTG GGCGAATACCGGCNCANANACCGGGNGTNGNCAAATTTTGGNGCNGAGGTNNNCGATNAGGCCCATTTGNAGGTCGNATT AGCCTAGGCNCTGNNGAGANACCCNATGCNACCGTNGTTNNCTNCNTNATNTGGTCATCGCGCGNCNTATCAAAGTCTGN TTNAGGNATNTNANTGANTNTNATNTCANNCATGNANAAGGGAGCATNNGGNANCCTTANTTTGCCGCGNTNNTACTNCG CGTCATNCTACTNAGATTTGNCATGANATCTNGNGGNCTATNNGATTANTCATAGGCGGAGCANTGCTATACATCGATGC TGTGTANCNNAGAAGANGNCTCAGGACNNAACCNANTNCNAGCCTGGAAAGNCTCCATTTCTNACNACGCCTANCGGCGT TNNTTACTTTCAAGCNGTGCGCNTTGGCCTGGTNAAGNNACCTNGNCGGNTACANGCGTAAAAATANNGCGNCCTTNNTN TGNNGCCTCACCGCCNTCTTNNGCCCGCATNACTATTAAGGCGCNCATTNGAAGGCTNNCCGCCAAGTGCGTCNCGNGCA TGTTNGTTCGNTCNAAAGAGNGNCCCCCTNCNCCNGNTTNGANGANCACCCTNGCGANCTCCCCNNTTNNTNNTTGCCTN NTNGTTTNCTNGCAGACACCNCGTCGTACCCCTCNGCTGANNGAACNTGNGTGGCAGNGCNATNACGNGANCGGTCNNTG AATGTTCCNTTGTNNTNTNTTGATTGTAGGACANNNNCNGCCATGGTCGAGGTCTGNACTCTTTTANAGNAAAAANCAAA NTACGGCNTCNATGGGGGACNGAATCNTCAAGAGTTCGTTGANNTAGTCGTACCTNGAANTGGGANTTGNTGTCCATANC NGANTTNTCNGNTCATGNGCTNGTAGNTGTGAANTGCGGNANGNCCCGCACACCGTGGAATANACACGCCCTATATNGGA CTAACANTGAACACNTCGGNCGACTGCTNGGGNCTATTNNATGNACTCGATGATAATNGTAAGATNNNGGGCCNNGGGGN ATNCACGNCNNTNTTGCCGGGGGGGGGTCGTACCNAGGNCANCTGGAACAGTGTTNCCTAAACNNAATAAGCAANATGCA GCATAGGTTNTNCNATGTTNNCGANATCNACANANCCTTNTAGCAGNTCGNGGTTGTNCNTANTNNANCGNCTNAGGACG CGCGAGTGANTTATTTNTNNTGANAACACCNTCCAATNCCNNAGNNCGCGCNGTGAANTCTCNNCGGNNCGTACCNACCA NCGGTCAATCGATTCTGCCGGGCGNNAAANAGGTCTGTCCANCNNACGGNNGTAATTAACATGATTTGACNCGAAATGAA TNGTANCGTGATTNNNTNCANNTGTNNANTCTAACTGNCAGGTCGGCCCCTCTCNGTTAANACCGCCCGCNTACNTNGGC GGNTNTGGCAGTNTTTCTNATAAGCGCNTCCTTGCAGNNGCACNTTANNCCTCTGCGANCNANTGCAAGATGAGGTAGGA TNGCTGGGTTGNTNATTGTAAATTGTACNGTTAAAGGCCCNGAGGGTCANACNCAAGGAGANTCTTTTGATAGCATTGTG CGNGCCNCNGAGNCANTTCTAAGGCTGCTGNCCTCCTTCAGNGCGGGGNATCNAAGTCGAGAGCCTAAATNTTTGTNTGC CNGNNTNNNACCCAATACGAANTTNAACNNTNCAGGNNNNNTCTCNCTTNCTANNCCAGNCCNNCACCTNCCGTNGNTTC CGACGCTATACGTTNTTTNNCCCAGNNGNNNAGNANTAGGGTTCGCATCATANATTGACNGTNTACAGNNCCCACNTNNN TAANGATNNNNCNCATACCACCGGNGCNCGGNTGATCNTAACGAGNGGACNTTTTNAGNTCTNNCNACAGATNTAGNAGG NAGGATCGCGNNGTTCTTAGTANCTGTGNTTCGANGTCNANTTNNAAATGAACGTAGATAATTAGNACANTAGANCTANA TCANCTCNACTNNATNANNNGAGNGCATCTANAACATGTCNAATGCAGACGNNTGNGTNGTTAATTNCTGTTATNAAGTA CGNTGATNGGACCTATGNGAAGCNNACAGNCACCCCTGTTGCGGTCNNTCNNAGNCATTAAAAGANGTTGATTGGNTCCT GTGCATTANCNNNCNGGTTCNNTGGTGCCGNGGTAGAACCNTTNNTNAATCANCGTANCCCTGNATGTGCGNNCGTAAGA NANTCNTGTAAACTGNNGCTTTCCANACTAGTCNNTCGNGCGCCCCCNTTNCANTCTNCGGANNATCTNATNAAATCCGT NCGGNTGTANNNAGGATACNTGCCGNGCTCNCCCCCTNCAGGCGGTCNATGGATGAGAGTTTNTTGNCNGTACAGTGTGC AACTCCNNATNACANGNNCACTNTCNNCATANAGGNTTGACCACTCGATGTTNGNACNNTNCTNCNGNCTACGNTCCGAC GNNAGTCNGTCCTGCTACNAANACTACTGTNGACGGCCNGCCTTCCTGCGAANTGGCCTCCTANTCTATGNGNACCTCTC ANCGAACTNACNACCAGGTGAANNATNCATAAAAANTNCNCNCGNNANGCGCAAAGNTATTTTAATACGTANTNCCAGNC TTAAAGNGCCCATANTACTNGGGNAGCTCCACATGTCNNAGAGGAGACACTCANGACCCGNTGTCAGTNGTATAAGGCAG ACCNNNGATAAAGCTNTGTNGCACTANACTGAGTNCNATTGTNCTGCTNGATATNAGGCGACACNTTACGAAANACNTNG GTNCGATGGTAATTNAACNGANAAGCATNANGTCTNTGAGCNCNCAGGCTNTCGNNCTAGTACNANTGTTNTNTGATNCA CATCATGCCCCTTATATACTCCCGGTNNNNAAATCNCNCANANGACNGCNNNNNCGNGATGNCTNNGCGTCTAGNCNCTC GNNNCCAAGCATCTCCCNGACATTNCTGAANAAGTCTANNCTNCANCCNACNCTNCCTATTTNNCCCACGCGNGAGAGGC GCCCTTNNGGATATTGATTTNTTTAANACCTGAAGCATNTAACTANNTCAGNCGAACTNGCCTNNACNCACATNNNTGGT AGNGNGTNNANATTCNCNTATGTNCTTCAGCNCCTTAACTCATGTNANNAATGCNTTNNANGNANNGNGGGCGACGGTCT ACTGNNACNACATGGNATGGACACCTACNTAAACTGCTCTTTNTGTNTTAGNGNGANTGANNCTNTGNANGCGTTTTTNA GAANCNCNCGTCNNCTTTATACCAGTGTNNGCNNNNGCAGCNGTATTANAANTCAGGGNCGGTGATAGTGACANCCGCNC NTNTAANGCAGCANATNCGGNTTGNACNGAGNANTNNCAGTCNAATATGCAACTGTGACTNCATCGNCANNCNATATTAN GGGANNGTTTGGATTGATNTNGNNGTCANANNNCGGGGGGNCCGACATNTACGNCCTGNGTCCAATNATNCNATTTCCAT ANNACGCNNGATGCNTCNATCTCTNAGTNGAANAACCTNATNGTCGGAGNAGCTCGTGCNNTGTNANAGTCCAGGTGAAG TCCCCACTTNGTNNGNCCAAGNGCGNAATACCAGAGATCGANANGGACTCACGTTTGNGAGNTNNACNTCGNATAGNATN NACNGCCCAATCAAGACGTTATTGNGAANGCCTGNANAGATGCCNACCCNTTCGNGCTACCAGNAGCCGAACTGGNTATN CAGAGNNTNCAGGCACAAGTTGTGCGTGTCCTGTGCCCGGATGNGNGTCNNCTTATNGNNACNGGATTTTNACTCCTTCG NCNNCCGGNCCAANNNTCCGTGAGCNNGNNCTACANCCTCCACGNGNTCNNGTTNCAACGAGTTCTCTTGAGCCGTNCCC AGTTGTTTCTAACCNTACGCTCGANTCTGGGCGNATCANTCGTTATATATTTNGAGNAAGNTGCANTGCGAAGTNTCCCG GACGCTCNTGNCCCTCNNCCCAGAGGCNTTGTCATACGNCGGNCNTNTGGGNTGTNGACACNAGTACGGAANTGTGAAGT GNTGAGNCTCNANNAGCANTCTNGANGAGNCACACNAGCCNNCANNCATANACCTGGTCAGTAGGGNAGCGCANATCCGC AANNGGTCGCGTTNGNTCCGGCCANTTNNTTGGNCTTTGGCCTTCATNAGCCTAGCTNATCCGCCNGNAGNGNNATGATG TAGGAACCCTTNACGATACNTCGNCATATNNATCNNGTCTNATANCTGCATCCGTCATCCGCCGCCATCTANCGGTNTTT ATTGNACTNCGGNNNAATAAACACTANNAACNCNCAGANNCNCTCAGTCGTTNACGGCNTNGTNGNTNCGNTNGCATCAG GTNCGGCCTGTACTCCCNAAATNNANNAAATTCNTNAAAGTAAATGTGGCNCNGCNGTCNGCAGCNCNTCANNTTNANNN NTCAANTCNCGNACCTCTGNNANANNTNATCANCCCGATAGACCTGTCTNNNGCAGTTAGNTCAATCGNCNATCTGCCTT TGTATGGCATNGTGGANTGCNNACANCAANCATNGCTTGNGTATNCACCAGNNGNNTGAGGCGGAGGGTAGNTNNTGTGT AGGNTGTTAATAATAGACCACGNGNACTTACTCGCAACACTCGTGCNGCTAAGGAGGNTGCTTTGCTGGCANCNCCGNCG GTTTATACTNNACAGTNCCCACNGCGNTCANGNNNCGAAANNAGCGGCTNAACCCGTNNCGTGTAAAAACTNGCAGCNTT CTAAATTNANGGCNTAAGTTNAGTAGTCNACNNTGAGGAAGNNTACTCGGNTANGTCCNATCCNCGATGTNGCAGAANTN CATAATNATAGANTCGNTNNGGTCANCCCTNNGGACNAGCNCTCTGCTACCCANNAGCATNAAGANANCANTTGGGATAA NAGGTTTTANAGTTNTCTATTNNNGTGCTANTGTGGTGCTNANNACATCNAGGNGCAAAGNGTGGATGCGNACAAGTCCN TCCTCGNACTNGGANTTGGAANCTAANGNGCCAGTGNNANCNTGGNTGNTCCNCACTAGCTGGCNTNNCCTCTAGNNNGG CNNNNAGTCGTNGATTGGAGACAGNCGANTCNTNTAAANGGTTTNCANAAAGNNAAGCNTAATNGNATNTGGATGTNGAC NNCACTACCAGNNCNCTTCTNACCNTCTNCNNNAGGAAGATCTATNNANGAATAGTCGCTTNGTCGTACNCCNCATTCNA GNTCTGNCNTAGCTATNCNTNGAAGNGACTNTGNGACGCNGNAGAGCNTACNNAATCNTAAGACGANNACTAGCAATATT TATAGCCGAGTCCTATGTNNNACGGGGGCNTCNGNCTCCTGAACGCTGGNACTGNGAGNCTGCCNNAGANCATGTNNGAN TNNACGCNTGAGNCCATANANATGGNNCNTGNTCCGTCGGCNGTCAGGCAANGTNCAGTATTCAACTCTTNNGGNGCNTC ACTNTCGCGTCGTACTAATTCGAGNGNATTTCCNNGNGCGGNAANCNGNTNGTGCGGANGANTTGTNCGCGGANNGAANG NGACACACNNCGNNNTTTTATACCTCATANAGNNGGGNCTCNCCCGGCGATGNGNAGNACNTGGAGAAGNACGGCATGGC CAGNGNNNTCGGTNGTNNNAGGATNATGTGGAGAGGNCGGANNTGNNATCTTNGCANGCNGAAGACAGATANAGAATCCG CATNCTTAGTAAACTACCCACGTNCCCANNANGCGCANNAGTTCAGGACGAGTTAGNTGCTTTNGCACNGGCATNNAGNG CNGCNTCNNCTACGNNTCNANCCANTTNANTNGGCCGNCTAGGAATGANATCTCANTNCGCNCNNGCANCANGCCAACAT TAAGAGTGCACNTANTATTGANTGGTCAGACNTAGTAGGCCANCACACACCACGNAAGAGANTGATCGNCCAATCACNGA GTCGCGGCTTCACTAACANCTNANNAGGNACATGCGTTCNGGAATGAGTCNGNACANAGATACTATCNNANTNTGGCNAC TTTCACACTGNTAGGGGNATTCACGNNAGTAGATCACTCAGNCGCNAACTGCGGTACNANACTATTAANGNACGNTGGAN CNNNAANACATCGGAGTATGNCGAATNNTNGNGCNGACCTAAGANTGANNGGGNGANGNATGGGTGCNCCGGNNTTANTC AGGTTANNGNCGGTGTCAAGTGNACTTTTCCNTCGNCAATCTCANCNNATNTAGCCACCATCNTNCTCCCTCGTGACGGN TNCTAGTNAAACATNGTTNGACGTAGNCGGAGNAGTNNANNAAAGCANTACTAGAGGGCNTCNCTANCCANTCGGNNGAG TAGNNACTTANAGTNTAGGCGCTNGTGTGGGCGNCCACNTNGTCNACTATTTCNTCGAGGGANANNTTNCCCGGACGGAA TNGCGTNACGAGGTCCNTANGTGNGGAGNNTNAGGGTTCGTNCTGGCNNNNTAGTGCCGNGGCGCCACTGCNAATGACGN NTCTGTATTACGTCTCTNANNTACNACCNCNACACNCNCAAGGCTCGATGAGCTNTAAATCTNACCTNNCAATCNGTGNG CNGATGATANCGNAGGCNCACGTCGCANNTCCGAATACACACAAAGNNGNNGNTNNCNGCNACTNNCGTAGTGANAGACT AANGCGANCGCGNNCAGNGNAGATACATAGGAATATNTTTAGTAACTCCCTGNGGGCCTGANNGNTNATTGACNAANNGA CGNCGCGNTNGTCNNGAAATNGTTCTGTAGTCCTGGNGTANTTNGNTTTGCGGTNGAGCGAGGCNTGAGCGCACCTTNCC TGNNCATNAAGCCATTNANNNCGATNTGTNNTTTCGAAANAGTATNNTTCNAATGGANNTTGTTAGCNTGNNCGTNCNCC GGATCANNCANCNCGNNTCCNCGCGTTTGGTGGTTTGTNCNNAAGATTNNGGGNCNAGGCGTAACACCTTTNNANAGAGN ATACGTACNCGTGACAACAATTGGTGTNGCNNTGTNNGTATTGCTAGCGCGNANGAANCNCCGCGNTTCNGGCANACNCG AAGTNNTNGANCACNGTGNCTGGTTNCNTCNTCACAACCGCGGGGNTANCNCTGAATTTGANCTTGNGNGGNNTNTTCAC NGAGTTGTNTNTGGGTTTNGCANACTGTTNTATNGCGCGNGGNTNTTAANACTGTGNTTTGCNGCCACGAACCTACTATC TAAAGAGGGATCNTNNGACNTGNTATGNGCNNNNTTNNCANGNNANGNTNACTTAACATANANCNTCGGCATACACNCTA GACTNATCCGTGCNNNACTGGNTCCNCNGTAGGCGACACACNTNCCCTACCAAAGGGTAAGGAATCCTCCNANATNAANG CATGGATNNNTGCTCNNATTCACATACGTTTAGATCGNGNATTTTGGAGCTTCNNNCNNTGTGCNANTGGTAAGGGAGCA CGTTCCAGNTCGGNCNGTATCGTCGTGCCTCNCTNNCTGCNCGNCGGGCGTAGCTCTNNAACCCTTTNTTGGCTAANANA CATTATACNNCTCNAAATNAAGNTGGANNCNCACANCTAGNTGAGCCTGGCAGTGGCTTTCNANCGACTNGAGAGNCNAN NTANANNNACTGTGNGGGACNGCTGCGNNACCNGGCCANAGNTNGCTTAGNANGCNCAGCCCAATTNNGNATAGNTTAAN GCNACNNGCCGGTNNNGNAGTCTCCGCNNCTATNNTATNNACAGCTNCCTTCCNCGTNGNCGNGCNACGNNNCTGAGAGA TTCGGGCCNNATANGNCGATTTATANGNANCGTTNAAGNTANCCGGGNAANATGGTTGGCTTAATNGTTCGCTNNCTCAG TNTTATTAAATNTNNAACACCCTNTTGCTCACNNACTAAGACCGGTTAATNNGNTCTCNNNTCAGTTNNCCAAACCANCC GNGCTCNTATTNAACAGNGNNNTCNCCNCNGTGGNCAATCCCTATTGTGANATCCNNTCCNGTNAAGGTNNCTCGACGTT NGNAGGCNGATAANTCNANGTAGCTGNNTTNGCCNCGTGNTGNGGGCCAATANATATAAGTCTTGGGCTGCCAGTCAANT NATNGGATCNCCATNTNGGGGANGTTCAGAAGNNGTTAATAGCANNNTGAATATGCANNNNNNAATTCNNNATCAATGNT GCNNTCCTNANCCAATACGATGNAANTGGCNCCATNTGNANCNTACGTNGNCATGANTAGTGCTTATCATNGNAGCCGCC NGNTGATCAACACTTCGCTNTGANTNGATGCAAGNTGTNTAAGNCCACTTNNCTTCGGGGATNTCNNATACACGTTGATN NGAAAGCAATNACCNAAAAAAAAGTAGNGTNCNTGNANNNCCNGATATNTTATGCCCCAAGGNNAAANGGGGTGACGCTA NNNCTCTTCATTNAAGCNANGCNATNTGTACNCGNACAGCCCNTCNATTCTANTTCNCTCAGNAAACANNTCCNACAGAN NCNNCNCTNATTANGAAGCATTTTTTANCGAGNTTTTNCTAGNCNTNTCGACGCGTNCTACTGGCGGNACCGTTGAAATC TACAACNCNTCNATGNCNATCAAANTTGNCACNGAAATCANCAGACTTNATAAAACAAGNCACNNNNAAGGTCTCNTGNG NCNTCAGNANCCTNTGTCTCGTCNATCNGGTCNCNGTCGNTNGGTCACTGNTNNNTGNGNTNTTGCAGCCNNTAAAANAA CGNTAGGTTCCGTNGTGNAGTCNCTGAGGTGAGAGTANNACCAGNGATTATNTCAAGCAACGNCANNTCTTAATGNTACC TNGCNGGCGNAGATCNTATGCGTTNATCANNNCACACNCGCCANGTNTCAGCAAANNCCCCTCGCGTNTNTTTGTGCAGA GCCCNCATNNCGCGNNTNTNCGTNATATCCGCCGAGGCTCNAGCNTNACACCTANGGTNNNAATGGAAGTNNCAGNGNCN CNGTTGTTCCTACGGCTATTAANNGGNGNTATGTTNCCCTCNCTTTCCGTGCTNNCGNACACCCNGTNGACGTCTTCANC CGNAATTGNAGCANACTCANGNTGCAGNTCTANANTGANAGCANANGCTGANGGGGATGGGGNTNTCGCCCGACATNANA NTCACNCTGCTANGTTCNGGCTTNGATTCCNACTNANNTAACNAGTAGTGTGANGNGNCNAGNGTCAACNTTCTNTTGCN CTGTCTCCGGGCNANTTCAACCNAATGCGTTCGACCATCCTTNTGNNTGTGCNAGNGNCNNTCNNNCACCGTTGTTNGNC GNGTTNTNACGTATNGACCAAGGCTANGTNTCCANGCNCTNGCAACNACCCTTGCNTCACTNCCNCAAGANTAAGNAACG CNTCTNNCACTGTTGGNGNNGTCATGACTCCGNAGNGACTGGCGCAGACGTNNNTATGTAAAANGCCNTCANCATATCTC TNGANNACCGCATNTCCNATCNCNNGCGTNTTNNTCATANGAGTCNTNTCNTNNGTCCGATTTGCCNTGCGGAANCAAAC TGTNANTTAGTTGACGTGNTCTTTNNNGTNAACGGTNGATCATATGACTNTGAANGNNTGNNGAGGTCCAATACCCACCC AACACACGTCCACGCGNGAGTANNGTTGNGCNNTACANACGGNGCATNCCAACGGNCGCCTGTNTTAATTATNGTANCNG TGCCANGTGCGNNCGCCACNTCAGGTGTTTCCNTNGANANNTANTCCTCGTCNNCAGTTNATANTTCNTACGAGNNCGGA CAGNANATGCATACGCGAAATANAAGTCTTNGNTCCGCTTNGCGGANNCNCTTTTGGATNGATTCNTTCAGNGCCTTATT CGNCANTCNTCCCGTAAGACANACGCAGNAGCTTNGCANTNGANNACCGGCTGAGCNANNCGNANAANCTNATAANCNTN GTTCCGTTGAAGCAGGTGGGCCCGGNATTNAGTCANAAACGGCNACGTGNNCANCNNNNNCCNATATGGNTACGNGCCAA CNNTGACTANNATACGCACGTCACTAGNTTATTANTTGCTNGTTCNGGTNGTNCACAGCANANNGATGNCAGAGGCANGT GAAANACCTTAANTGCNGNTATGGTTACTGNTAANGGACCNTCNNCAAGNGATNGCGCTNACTCTCGGCCAGTGGACTTT ACANNACAGGCNAGCGNCGATNTGGATGNAGNNNTATCCAGCANCCCANTTNNTAANCATNNTAGGTGGTAGTCCGATAT NCNGGCACAAGCACCCATNCCANNACANGTANCCCTACATCCNNATAACCNGTGGACAGNNCGCGTCCNNGNCNGATCNC TGNACTANNTCTTTGTNTTGTNTGNCNAACTTNNNNGTCTGCNTGATCTACNATTACGNCACTTNTNTGGNANNGNTGAG TGNTACAGTTTCTCTTAGCGTCACTCCAGNTCGGNTTCCGGANGGCANNTAACNGNNTNNNCGTGAGGAANTANCGTNTG NTNAAACNANCANAGANCGAAGGCNNNCNCNNGTCACCAATANACGGTNANCGTCANTGATTCGCCGCAGAGANNCNGAC NCNNCTCGNTNCTTNCTGTNNTCTCGANNTCCGNGCGCAACGTATCTACAGCATGGCNTNTCNTTGCNCCAGCNACTATG CNGCCAGCAGTANTCTGTGCTTGTTNGGNNCNGTCCTCCCCCNAGCAGAAGGANGTNCACGTATGTNCATCNGATGTCNN CCCCGCCGNTNCTCNCTAGTGCGNTGCACTANNGTNACTNGNTNCGTGGNAGGNGCANCNNNNGGCGGCCAGGNTGNGNC CTGNAGACCGGNACNTACNANAACANTTANACGCNGCNTGTNAANTNTCNCAANGCGGTATCNNGNTCNCCTTCCATNCA CTTNNGGNGGTAACNCGCTNNCTTNGGCANATGGAGNNGNGANCATCCGTNANGGNTGCCCCTGAGTCNNTTAGGNNNNC NNCGCACNNNNCTAGAANACNCNANTNTGGTTCGCACTTACCGTGGCATCTTCAGGAANACGCGCCGCNATGNCCCNTAT ATNTTGACGTTNTGNTCGACCGACCTATATNGGTCGGNANACCNAGCTAACGGTTACCNTTNTTNGCCGGTGCAGGGNTN ANNTNTNTNGGGCTTTNNGCCTATATTNAGTTACATGANCTCTNTTCTCANTGNGGTNGATGNNGNNNTGNNACNGACNC TCAGNAGAGCTGNAACACTNGANTGGCTTGTNCGCTTTNCGNCCACGCGCNTCGNNGGCTGAAGTGGTNNTATGGANCNA GCACTCATATGANNCCGTTATCTNGGGGANGGCCCCTACATTTCCNCAGCGTGTTGTNATCNGTTNCGATTANTAGACAC CGCGAANGNTNCNTGNCANCGCAGGGTANNGGGGGTTCCNCAGCTGNAGAACNTGAGNCAGTCACCGNTCTCNNNCTTGN NCAGNAGAANANGATAGTTTGTTNGGGCCNAACCNTCNNTTTTCNGCANTGGTCCCTTANTNNANAATGGAGNTAGTTTN CAGANCCTCCGCNTGNGTNNGCGTCCAGTCGTGCCTNTTNTTTCCNAANTNNNANAATNTGCACAGGNCCGNNACANCNG TGCCANCAATTATATNTCCNTGTGGGACNGNCNCTNTGCTCCCAAATATCCATNAATNCGGATTTCCNCACNNATCANAC TNNCACTCGTGGTCGNCCNGTAGGAGGTAGGTTGTNTCNAAGAACTCCACNGATAANNNNNTNNGNAGNCTGTTGNGTCA CCGAANACCCTNACCNGATNACCNCGGATTCNTTNNACCTACANNCTANACNCAGGCNCGTCNGNGNCGCGCAGNANCTN NCANTTNTNCTTTCANTACANNCCCNAANTTCCTNGTATAAGACCNANCAGAAATNGGTTAGAGTTGCNNGNCCCGAGTG ACCACTTTGGANAACAGGGTNNGATAGGTGCCGGCTCTGTNGAANTCNAATNAAAGNACGGANNNCANCNAATCGNCGGG TTTNANATCCNNTGTGNGTACTTATNCTNGNGACAGTCTNCTNNACTGNCCNNGGNCAANANGNCTTTTTCGCTCAGTAG AGAGATTCTNNAGGAGTGCGTGGANAGNTANGTGAGGATNCTGACNGGANNAGAATTANNGTGTGTTANTCNTAGGNNAN TCGANTNNTGANAGGCGCNTCCNCNCACACAATCANAGAGCCATAACNACTTTAGANGCACGNNGTNTCGANNGGCGCAN TACTCTTGGAACTGNATGTNCGTTTCTANTCNNANCGGTNGGCCGCCNTCCAGAANATGAANNCTACAAGNANTCCTCNA ACCNNAAAGAGGAGCTANNATCNTNNTAGANGNCNTACTNGACCCNTTATCTCNATTCGCNTGNTANCAATCCACGCCTT AAACGCTATAAAGGTAGGNAGNTGTGGGTATGANNCCNCNCNCNCCTNCGCNNNTNCGTCCCNANTCGTNTNTNTCNGAA GCGCCTCGAGNGNAACGTNCAANGNCAGANTAGAGANGNTNTNGNNAGTCTTTNGGGCNTATCATCAGTGTACNNGAATC NTNTNNCNCANTGNCCTNACCGNNATTACTCATAGTAGTNTCTTTCTGGTANGGAAAAGCGNNCGANAANCCGCGCNNCN NATTGTACNAAGTACTNGANTANGACGNGGACNTGATGCNGNTCNGNCTNATGCGGAANCNGACTGCTATACTCANNGGG AGGAATNTTATTGGCGAANGTCCAGTATNAATGNTTGNGGATCNGGTTTANGGAGNTTAATGCGAGNNACTNTCTATGGG TGNNCTNCAAAAGCNTNCTNNAATGCCCNGGGNNNACNATACGCNGGTCGGNCNATNNCNGCGANAAATGCACGGACACG TTCGTNACTNCNGTAATNAGATGATCNAACNTCNCACTNCANNACNNCACCATNCAGTGTGANCNGANNNGTANTATACT NGNTAGTACNGNCATGCAACCCAGTATTCNGTCTNNNGCCCTNGTNATNANGCCATNGCGCGATTCNNTNGAAGNNACGT NNATCNTGNTGGTCCCCGCNATTCTGACCNNGCTTNTACNTAAACCNGANGGTTTTNCCNATTNTAGTGGACGTAAGCGC GGANNNNAGANTGTANTNANNANCNANATGANGTACTCNCANACCTGTNTNTTNCGNCNGCANTTTTCCACTANACGCTN NGANACTTCGNATGGGTCGNGCTNNTNCNANAGGATCCTGGCNCCGGGANCATTGTACNTGTGNGNCAGGNNNAGNGTCT TGCATCTNAATTCNGTCNNGCCNCACNNNTTCTANCGTNCGAGTGNNTGGANCACAGTNAAGCTTCNTNCANTAGGNGAC TTANNGGCNNCAGATNNCCTGCNNNNTATCTNTNGGNNCCTNNNGTAGGTANANNGTTCCTGGTNNAGNCNCNTCCNCGC CAATGTTACATTCNCNAAATAGNTTNTACAGCNCGNANNCCTTGCCNANGATACAAGTTNTTANNCCGTNNGTCCAATNN TNNCANAATANNGNTGTGNAAATCANGAGTCTNACAANGTCCGCACAGTTCACTGCGTCAAACTCTCTCAGCCGNATTTG GCCGGNCNNTNNNCGGAGNNTATNTACACGNGTTTGNCGTTGNGTNTCGAANGGNNAGTCTGGTCNNCNCTCCGNTGNTC CAGAANCANGNTTCANNNANGNATAANTNGTGTTNCAAAGATTANGTNTACCGGTTAGGNTTCNGGGTTTCGTGACNTGN ATTGTCTNNCNCTANNAANCGTTCGNAGGTTCCCTAATATNCCNNNCNNTANAGNNTNNGCCTNTCANGNNCGTGCNGNN AGGCNGNACAGACAGCCTGNCAANACGANCCAGCNGANGANGNNGNNGCAANGAACCACNTATGGGCGANNATAGATGNC ANCCNCNTAGGCNGCTTNGNTCCNGATGNANTCCCTGTANCTCTCNNCGCGNNCNTGAGANNNTCNTCTACCGCNGAACC GNATNTAATNGGTGTCGAATTTGNGGTCNGNANTTATNGNCTGCTACGNCTTAATGCTCNGCANCNTNANNGNCGTGTNA NTNGGGCNAAGNTNTCCTGANCAANCGTTNGGGNGAAGCCTTTTCAANCGTCNTTTTCGGAGTTANNTTAAACNTCGCGC ANNTNANNGAAAAAGGGCNTGTANAACGATCCTGTTCCNTGTCAACNNNTTCTNNGTGTAGACGNNAGATNCANNCGAGG TTAACNGNTCTANATAAGGTNGNTGTGCNNGGGGTAATTGGGTGAACNCCACANANTTCNTTGAACNTTCGCATTACNAN ACTCGTNGTACTCCGGATNTAGATGTANCNNANNGTTCNTTGGGNTTNANTACANCANNNNACACGAAGAATCTTNTNCC GNGANTTTNGTNGTGGCATGGACAACCAAGAGTGACTTNAGGTTGANNNTACAGTCTNNTNAACGTTGCNACAAACCNGG TCNTTTNGGTNTTCACTNTNNAGGGTTAGACTGCTCCGCTGGGAGTTTCNAAANAAACGTNNACCNTCCGGTGATNCCGG CTATCTCATTGCATCNNTNACGTNNGCGACNCTTCTNANATNAGTCTGGTNCANNCCANCTGAAANTACNATTGCNNGCA GCCGACTNGNGCTNGCANATGATTCCTTTNNNGCNCAGTGAGGCTCCTGAATGAGNCNATCGATNGCANNTCCTAGTAAA AAAATNGAAGGCTTCCCACNCCACCNCGNGNCNATNGTANNNTTACGGAAGACAGGCNCGAGGTAAGTAACNCATTGTTG NGTAGANTCCATCCNCGTCTNTNCATTTACNGANNNATCTGGTCGCNTTGANTCTGCTACCAAATATTAGAANGTNATNN ACNTNCTAGAGNTGGCACATTTATCNTCGCGGNCCTACTATNGGGNCNTNANANTGGAAGGTATAAANNACCNGTCTNCC GGCCTGGGGCGNNCANCTCNTAACCCATGNAGTGCCACCAANCGGNCTANTGGACGTATNAGTAGNNNAGNNATGCNNGN TTTCCCAGNAANTTGATTNGCTGACCCGCCTNCTCNGCTCATNNAAANTTNTGGCTATTNCGAANGAGGATGGTAGGTGC GCCTNAGNCGCTGTAGCNCCANNNCCNCAGATAAAGCNGTNACNGTGAACNTGGNCGGATCATANNAGNNANGNCCNNCA NCCCATGGNNTGNGNTTTTCCTATANNGCTNGAAAACNNATCCTACTANGCCCTGGTNTAGCAGTTGNTCGTCGTNNAAG CAANCTAGAGNGATGTCNGCNTTNAGGANNAGCATCACCATGCTATTGATNGTANGGTNTATAACGTNACTGGAAGGAGT TGTTTANNCCTANTGTTAACTAAACNGGNGTNNNATNGCCNCNCCTCTGTNNCTNACAGCCCCNAATCCCGAATCGANNA GNCACCCTGTATTNNGATCACTATCGAGGTTCACTGCTCACATCNNAGATATTCTTAAGACGACNCNAGGNCTGCTTGCT TACTCAAAGGNGGCGTATCNAACTATGATANNGGNGANACCCNGGTCNTGTGCATGACNGCGCGGGATCTTAGCCGNGGC NANGTTCACNCNTNCNANTAGCCTGNGCCCTANGCGAGTTGCGNCCNTCNTNCTAGTGNNCAAGTTTATGCNCTCNTTAC CTCCTTATNCCGTGNNTANNANNGANGATAGCNAGTNATCCNTCNGCGGTGTNANTGTTCCNGNTGGCANGTCCTACGCT ANTATTGACAACCCTANTCNNANGANNCCCNACTCANNCCCTCGNTCAATNGTTNCAGACACTTNGGGGNNAGAGNAAGN CTCNNGNACTGTAGTNNCNTNCNNTTCACTTTNANNNNCCATGNCNATNGCTGACGGCTGCGTNCCTGCNCCCNCNNTNG GANCCNAANCNTNAGNGTATAGGTCCATTCTCGGNAGGGNAACGNNCCACTTNCTNGTGAGTGATNGTNNNAGTGANNNC TTGATCNANNTGANTTANCGTCAAAACNNAATAGGTCNTAGCCACGTGNNCGNGGANTCAANTACATTAGTNNGAAACNN NGGCNTNTGTTNCCGGCTCTATANNGTAGNGGATTATNGNCCAATNCNGGACTGGAAGGNGNGCANCACCGAGGAGACNG CANACNNAGANCTGAANTCAGTATTGCCTGCTATATGTCCGACCCTGCTTNACCTNTGANCTNNTTCNCGTTCGNGANGA CGCTATATGTTCNCCGTNACNGTCNNGCAGNATAGAGNCACCTNTGGGNTCNGTAANTCTCTCTAGAGGGGCNGCTCNAT TTTCCAGGNTNGTNTCTATCCGAGNCTTGATAATNGNTTNCGGTCCTNGTNNACATGCNGGCAANTTGNAGNTACNNCCG NGTTNNGGTTTNCTNCTAGGACGNTCNAATNCCAGCNAAGCTNTGGCCNCTCCGCNCGTCAGNTTGGACCNCNTCTGNTN TGTCGGTNGATAGGATGNNGANGGGGGGGTCNNGNNCGCACGGNGTNACTTGTCGAGTAGGAGNGGTNAAGNNNNNTCNC NTGTAGCNGNATTACTTCNCTGACCGACCNGGTNTANGTGTNGATGTAACCGGNCAAGCTNGAGCTAAANGGNTANAATN TANGTNAACGGNCCNNATGTCGNCCNGCCGNNACTGANNTTAGCTATCCACNNGGNNGTNAGNCNTTNACNTTTTATGGA ACAAACAGANNNTGGNTTGAGCGCTTTCTGNTTCNTNGNACCTAGNCACNGANCATCAGGGTTNNCGGCNTNNCAAAAAN ANNGNTCACTGATGTTNCGTNCCTAACAGTNTGTGGNGTNCGTNGCAGTNGATATTNAAACGACAANAAAGNTNCGNGCA GANCNNNCCGACNCCTTGTACCTGGCCNCGGCTTNACNNTGGATANTNCNCGGACTACNCAACGATTCNATTCGTNNNTA TACNANTGGTGGNACNANGAGGNNTACCNNNGTAGAATTAAGCATTATCTTCNTAGTGANGGNTCGNGNGGACGCGGCNC TCGGTATGTNGAGANGTCANCNTGCCNTCNTTATTAGAGNNNACANNGCNTCGCTCCAGACNGGATGAGCCTGCTGGCAT AGNACTAAATCCGATNCNGCCTAGNNTTTNTANANCCACTCTCNGNAANTGCTGAGGCTACAGNAAATGAGNGGNCGCGC CGTCCANTNTGGCGGTTCGTCGCANACTGCANGNCGATAANNNATGACNGCATGATNTACTCAGCTNCNNNTGNTGCTGG NGNNCTNTAGGGGATCNTGANTNANGACCGTTANNCNGATNCGCNANCNNCNNNANCNGNGATNAAGCAGCTTTGACNGG TGNGANNCAGGGNCAGGTCNGCNGNNTNCCTGTNTATTTGTNCNTNNTCNTGANTNTGGNTCTNNCCACATGGCNACCCG GCGCCCGAGAGGACTTCNCTAAACGAAGTATGTTAGCNGGGTGCTTCCGGNCACGAAGCTTNATTAGNCCCGATGGNAGG TGTACAGTGAGCCTNNGTNNTTNGCCATNAANCCTTNCNTGTCNCCNTCCNNNTCAGGACNCGACCTTNCNTTACACTNA ACNGTTNCAAGNNAGCGNAGNGAACNGNNACTGGNTGNCCGANACGNTNCAAANCTGAAGTCTTNNTNTTCGTNGANGTT AGGTGAGTACTGATTNGAAGAAATNTNAGCNCTAGGCNATNNNGTGGANCNGGATTCNANGCTTNNTNNANCNGGTNCAG AGCGTTCGGGTGCTGTACANCNNTAANCTNNANANCTGTANCTANGGTTNTTGAGATNCTTNCCGGGATTCGGANCGCAC CGANTCCNCGGTANANTTTAAGCCTCNNGACGAATAGANGNGCAAATTGNACAGAACNNGTATGNCCANNNNTTNGAAGC ATACTNTNNGACCGGGCNNGGGTNTATNATCGGACAACCAGTTTCGNGGAATACGGNNTCTGANTNTTTCTGNTNTNTGN ANGACGACNNNAGANCNCGCTCNCGNCCCGCACTTAGCNAGTNTGCNTGGNTNACCNANNGANAACNTTNACTTNNCANA NATNGTANGTAGCGCGTGGGANGGGNGGTTCGGTTACNCGTGATAGCCGNNTTTNGNNTCGANGCGCTNCGATGCNAGNT ACANTNATGNNCTCGTTTAGACTCATGNATNANAGACCCTNGTNGTTAACCCANCGGTTGCGNTGAANANAGAAGANCTA NGTCCGTTGCGCGAGCACCNATAATTNCGGTNTTGANGTGTCATTGCTGGAGNAATGTNNTANNGNTNTACCTCTCGAGN TNTTNCCGNTCACTATACCGAAACNAAGCANCCGTTGGGNTTGANCGCNNNCAACGTTGCGGNNNTCACTCAACCGGGAA GAGCNCGTGGTNGGNGCTTACCGCTGGAATCCGTGAANATNGGTATGNTGACCTNTTAAACGCCANACGAAANACCAGCT GCGTGAACTNCNTCCGNGGATCGCNGNGCGAATNANCTCTAGGNCNNTGCTCNTTCNATGANNNTNTTCNGGNCCGNGTN NAACTGTGTAGAAAGCNNCNNCGATNNGANCAGGCGCTCGCANNGTTAAGTNNTCNAGCCNNNNCCCCNACTNNGGCCNN TNTGNGAGNTGNNTGATAGGCTNCGCACGCNTAAGTAAGTGTNGNCNGGGGCTGATCTAGTCAAGGGNCACTTCNGCANT CTTTCCCCATAGCNNCTCNCGCGTGTGTCNTCCACCNAAANNGTCCGCGAANGATTTTNCCNCNTNATNACCNGCNTGGA CTNGAAACCCTGGCCCGGGANAANNNCCTGCGAATTNNTGNANGTNATCGTACNNNNTGGACNATCCNCCGANTNCCTCA NATTAGCAGNCTCTCCGNTCGCTTGTGANCGGTCCCNCTGNNAATNNGNNNAATACGCANCCTGGNCCNCAAANACTCGC NACTCCACGCCCTCTAGTTACNAGTNAGTNGTGAGTGCTNCNATNANCTNGCATNACTGATANCACNCCTTNNCTTAANN GGNGCCGTNGCCGGNCATCTCCCGCNCNATNTTTTNNTANCGCAAGCACNANNAGTCTNACNCTCAGGNNNCCTTCGNCC TCTNGTANNACTCTTCATTNNATTTCCAGCCTTCNCGANCATANTGGCCCGCGGGGTCCGCNNCATTNTNNAAAGCGNAN AGCTGGNTCCGTCGAAAAANCTCAANCCTGGCCTCCATCGAGNNGCTGCNTTCNTCANCATCTANCNCGCTGATCGGGTT ANCTNGANNCCGNAATCNNTANNGTNTTTCCNATNAGCGTGAGNATGGATCATTGGAGTNTNGNGCTGACCATTCGNCNT TANTNNNGCACTAAANGCTTTCACGCCTNGAGTTTTCCCNTCGAACAACCGCTCTTATNNCNGTTNCAACGTAGTANCGA GNNATAANAAGGGTTGNANTCTAANNNGTTCATTCTATTAATGCGTANGGNGAACNGTCNTAGTNNCTGATTATCATTNN TACGTCGTGNGCGCGACCGTANTAGNCTAGTGGGAGGAAGCCATGNCCTTNNTNAAGNCTTAGTATTTNNNCAAATCGAC TNCNNGCNGTAGTTTTCAATANATTGGNAGANCTGGNCTATACNNTTGTGTGAGTTNCTTCATTAATCTCANAANCCGNG NACNAATCCTGNCTCTTANATTANTGGNCCNTCNNTATNATTGNAANATACTGTCGCNACCNGATTTATCNCTGGCNTNC NTACACGCGGNGNAGCTTGNNCTTNAACCGCCAGNTGGCGTNNTCCGTGNGNACGCNNATGAGGTCCTCGTTNTNATGCG GTAANTNCGCCGTANTNTTCTCTTGNGCTTGTCNCGNNGNNGNNAATANCATAACTNGNTCGNGNACCTNGNNCNNCNAN CGNGNCACACNAGTTNTATTAAANNTNAGCANTCGGCTANTTTGCCCNTCCTNTATCTATAANCTANTTNCNGNNAAAGC CGCAGTGNCNCCATATTTAACCNTANTCGCCCNNAGCANCTANAANGCGAAGCCCTAGNGNNCNCNANGCATNANGTGTA TCTCGCACAATGNATCNGGATGTATCNGCTATNAGNANTCTNGANCNTTCGNATCTAGGNTTGAACNATGTAGCAGNTCA ACNTCTGCNAANTNCNTCATTCTAGGNGAGGTATCNGNNAATGNAGTNNCTNGGTCCCATTTNNAANTGGGGCGACCCGN ATGTNCCGNCAANTGGGTNGCAACCCAAACNGCTNCGANTCTGCCGTCTNTTNGTTCCNGANTANAAGTGGNGTANCACA GCGTTTACATGNNGTAGNCCNGGTANTCTNCCNAAGCNTAGGNCGCANNTANAAGTNCGTCNGANNCGNACGTCCNTCGA NAGTTTAGCNANTTGTCANTCTGATNCNGGCGTNCGACTAGCGNGGTCAAACCTTNGTCNTGATNATCGCNNCANGGGAA ANACAATGNGTGNCTACTNTCNTTCGNNTTAACCTANNTTTATCGNGTNGNNGATACANNAACGCTAAGAGCCCCCCTCC NGGATATCTAAGAGCGCACACCTNGNNNACTCCAGGCNNNATNANNNCGTANCNNNTCACNAGAAGTTGNNNCTGATNAN GTNNGACCGTTACCCCNACGGNCNGCATTTACGCGGGGCGCCAGAACATTATCCTCNGAGNANGTGNGATTCCTTTCTGN TACAGACGTCAACNTTTAANGCTCNGGGAGCTTAAAAATNGNGANTTNNNTAGCNTGTGTNANTGTANATNNNANNCCTT AGACNNGCCNTCNANGNNNNNTAGTGCAGTTTGNNGNCTTACTATNNNACGCGTNANACTGGTCGTNTANTAGNGATCNA TAANGGANGTNANNCCTNGGGNGATTTGNNTAANCAAGAGCAGNAANTTNTGNTTNGGCNGGGGTNCACNNACCNAGTNA TCGAAAGCNTNGNCGGTGCNGGCTGTNGGGTNTTTCTAGANTATNATCAAGTTGCTACCGGNNGAANGAATTCACCGAAG CNGNNTCGATGACTTGAGTCAGNCGACTCTNTACGGATATAAGGNNCACTAACAGGNCANTNATATTCCTCGNNTNCNAN GGCATCNANGTCGTTCCANGNCCGACATNTGTNGGTNANGTCGTCNCTTAAACGNGCCNATCGCACGGCNNNCCGCTNNN TGACNGTAAGANGCTNAANTNNCGCGCNCCAGNCNNNTANGGCNAGTTNCGANANGANTCNAGTNTNTGAGTGACTCNGC CNCGTCNTTTTACGGTTTTGACCCGNGGGTAGGNANTNTGACNAGNTNNGNANNTTTAATNCGGCCNCGNGGNCGCCGNA GACTTNGANGCTTANGTTTTAANCAATCNCNGTAAAAAAAGCTGGCNANNNATANCATAACGTAATCAGCANGTCCACAT TTAANNACTCCNATTCTCTNGCNGAGCCGANCCCACGACGGAGAGGCTCTAAATCNNCGCCCACCNAGCNCTGTCNCTGN GCNCCGNCACGTNANCTCGGACANCCNAANATGNACGAACANNNCTTGGTANAACTCGCGGCNCCGCGCNNAAAGGGTAG TTGTGCCNACATNTTTNCTNCGNACAGAATCACAAAGGNCNATCGGNGNCTCTCTNCACGACGTCANTTCNCNCGGAGNG CNNNNTNCATGANATNGTTACCTCCCTTNNNNTTNCGACGTNATCCNNGANGAATCACATNTGTCCTTANNNANACCGGG NTTTTGCGNNATNTATANGTCTCANTTCTTTTCGAATTTAACGGGAAAACNCNGGCAATGCGTGAAGANCGAAGCTCATG NGTGCAATAGNNCGCNTGTGGGACCGTGGCANNTTAAACNNGTCGNANNGANNTCAANGTAGGANGGGATGGTNTAANNN GCNNAAATGAAAGATANTTNGCATTTTCNCNTCTCAGTANTGGTGACNAGTNGANTGNNTCATNTNGTGCATTGCGTCAN ACCTTGTNNCCCGNCGTCGACGANGNNCACCTGGAGGTAATNTTATAAATNGCCCTCGGNTCTTNCGNNCTNGNTGCAGT NNNNAAATGCTAANCTNCACNANCGNGGNANGTNGCNGGCNGGACTGTGGGCNGGATANGGACAGTAGCNTTGTNATNAG GCNNATTCATANGANTGNCNATCGGNGGNGGNACTCNNGAGGGTACGTGGNNGGTACGGNACCCATCTTAAACANNCCCT ANAGGTAAGACGTNTGGCGGCCTAGNATTTCGCATGGTATTCGNTCAGTTCATCACTGTCTTNCGNANGATCGCACGTTN AAGGCNCACAGCCNGTCCCACNNCGNGGTAATAGTCACACTTGTATNAANACANNCCTNNGGCATTCNCAGGNCGTGAGA NAGTGNNAATNGTCGCNCNATTTNNGATACTCGNTGNGAGGNATGANTNNCAGAGACAGATTCGGTGATAAGNNNGTGAG NCCNCAGCGCGGNNTNANCACTNCNTATNGCATTATANGACTCNAATGAAANTNTGNAAGTGCGAATTCCCNCCGCAAGC TTCANNCTCNCNGCGNNCCCTCTCNTGGGNNNCNGGNATTTATNTGTCTGANTTANCGGNANANATCCNAAGNCTTCCGG NTAGNCCAACGAAATGNTCCTANCAAANTNNATTTCAATTTTGATAANTCANAGNNCNACCGNAGTTCNNGANNTCANCG NAGNNATANCNCGAAAGNATAGCCCCNNCATNACNCNACCANCANTTTNCNCGTNNTAGNGTNNNACAGGCCANGGACGA NANGNGANCGNNCANTGNAGNAAGNNNCGCGGNNAGTGCTAGGNAANNCTTGGTAGNCGTAAAGATGGTTACAGTNCAGT GCNANGGNAGACGANTNTTAGGGTNCAAGAGCTGTGNGGGGCTNTCTCCGGGCGATANAGTNNCACCTGTNGANATAATN CCNAAANTAATCATCGACACGGATCTAGTNATTCACTNGANGNTCCNTGCNACGCCNNCNGTGTCGTGCGTGTTCTTANN TCGCTNACAACCGAGGNCATNAANCGNGGNAAATTGACGAACTGTCTTGGGTGNCGAAGCNCTNANNGCGGTGGCAGGCG GACGNGNTGGCNATNCAGNCAGAGCAGGTTNTATATNGNTNAAGNGNCCCTATNGGNCGNNTTNCNNANGNGTCNCTCGA TGACGNTGCTNAGTATCAGANGNCNTGAGAGTTTGACTTNCGTNGNTTNGNTGGTACTNATNCNGTATTNANTACTGACN AGGCANCAGCNCAAAGCAGTNCATTCACTGNANCAACNCNNCAAAGGGTACATTATTNTTGATGACNCTCGAGNGANTCA GGACNAGAGCCTNCNGNGAATTAGTACACTCCGCACCTTNTGAGGTANNATCNTCAAGNGNGGACCAATTTCNNTNCANA GNGTNACTCNTTANTNCTNACATNNCAGGTAGGNNGTCCTCTNCAGAGNTNGCTAGCCNNNAACAGACGCCACACAACGC TNCTAACGAAATATCGCTNCNTGTNTTCNAGNCCAGTACGAAGGTCGCNGCGCTCCTNGCTATNGNACNTNGGTAANACA TGTNTNGCTNNATGTAGNNGNGGNNCTGACCNACCGTCTTCGGNNCAAATCTATCTNANNGGATNAANTNANNACGGNTT AAANCTGNNGTGCGTNAGTNGCGAGAANTCAANAACGTNCAGGGTGGGTNTNGTANAATCGAGGTACAGCNATTNGTTCT TNATGATGNNTTNGCGNTCCGTNGNNTGGGANTTCACTCACCNACCTGCCGCGACTGAAAAAAACCGTGCAANTGGAACC ANCCAAATGAACATNGNAGAAACCTACCATGTTNNNGTCTCNCNTTTGTATAACATCNNGNTGCGGCNGANACATGGTTN ACGGTAGGCNGGGCTTTTCTANNCAGGGNCNNAATTCTNNGTNAGGGGGTCAGTNATCTTTCCGGNNGAANGCGNNGCAA AGNGTGATGTTGCGCTCNAAGANGGNNNCCTTATGNGGTACTGNNCNTTATCGCACCCCNCGGTANTTTNNAGCGTAGCN NANNNNGNAGCNAGNGGANNGCTCCGANAGGTAAACCCTGNTNGNGGNNAGTTGAAACCNAGNTNCAGATNAGNNACTTN ATACNTNCCNACTAGNGGCGTCCNCCANTNCCTCAGGATCNCACTACCNGAATNTAACACAGATNTACGGCCCCNGGTNG GNCGTNTAGGNGCAGAGACNTGTCNAGCCNTCNAGTNNTTNTNANCCCTCTCNGTCACTAACGAGAAGNAGGCNNCTTNC TTATAGATTNNGCNNTCTTTGCNATTGTTAAGGCGCNCANGAGGAAANCAGCGNTTTTATCATACTTGTTAGNANNCCGN ACGGGTNGGANNATATTGTCTNNTCAGNAGGGNGNTATACGGGCGGNGANCGNNANGGNCATAAGACTGCGGNCTNNACG GNCTAAAACGGACACCNAGTGTGATTNCNCACGGCAAGGGCCTCGGATACTANGGCNTGNTCAAGATNNNTGNGGNTTNC TNNCCGNCGNNANCGCANACGTCNCNTTTTGCTAAGANNCCCGTNAGTACNGACACNGAGCGCACNGCNNTCCGTNTNGN CTANNNANGCTAGTAAGCTNAAAGNCCTTTTACNTNCGNNGNGAATCTGANNTATTGATTCTNNGCACNANCCCGGNGTN TTCNATGACTANTACGATCTATCTGNGTTTGGCGATCAGTCGTGNCGACTCCTTGCGCAATTTGNGAGAANANNACAAGN ATTTAGAGGNCGATCGCNGAANAATACGTTTGGCGNAGCTATCNAGGNCNGAANTTGTTGGCNCNAGNTTNTTTNGGAGA NNTCATANGGCGANATCATATCNCTGGNGATGCCGGTCCNCTCNATTAANCCTGACGCTCTTCGNAGNATNTNAGAATAG ANGTCCGTCTATNTACTGACNTACCCGCTNGGGTTCCCTANCGANNGTNCCGANNTNCAAAAGNTANNGGGGGTGGNGGA GCGNCNCATTNGAATTCNNNNGGAGCANTGCGGCGNGNCCGCTGTAGGTTACGATCCGCGATGNNAAGANGTNTTGAATN CTNNCANNTGTGCTCGNAGTCNGCNCTCGNCGNGNACTCACNTACCAACANACTTAGCTGCTACTTACTGTTANNANNAC NGNTAGCCCGAGNNGTNTTGTANTNGGANGNTCAACGGGCANATNGATTATGNTCTGGCNGCTNNCCNAAAGTCNTTAAC TTCCNCCCCCCGCNGAAGCTGACTCCCGGNNGTCCGACGACCCNTNGTGACTTCTTGCTTCGGCGTATNNAGNTGNGCCN TAAGCGGGNTNGTGCTNANCNNCCCANNANAGCACTGAGNACCACNGTNTTGCGTCGGNANTGNCGNTTATGTTGANCGN NGGAGNNGTGCCNNNCTTATNAGTCTCNNNATCTAAAACGCATTCAATTCTCGAGAANANAACTNTCGGATGGGATAGAN NTTCANGGATAGNCGGCATCAAGAAACNTCTACACCCCTCNCACCGGGGCGNGAAGGTGANNATCACCGGNGGCNNTAGN ATACATGAAACAATTANTGNGNTCGNTCCTNAGCCATGTAGGCNTCAGCTNNNTAACCNGTNGAAGATTCCCNTCCATTN CGTAGNAGTANTNCTNTGNNGAGTATGTNNGNTGATTCTNCATGNNCACGNNNCTAAGTNNGTTATTGGCCGGCTACTAG ATCGTGGANTGNAAAGNTCGCATCNNAANNNCCAGCTAGCNNCGGCGTAGACNNAANGNNNAGTGACNGGNGTATGANNT CTCNTNAAAACATGAANTCGCTGTGATTANTNCTAGNNGCGGCTTAGNGCNGCNTNTAGNACATTTTTTGCATTTTNTGA GNCCTTTCTTCAANCAAANGGGNNCNGACTANTCCNNAACTNGGCGACCATGACCAGCAGACNNAAATGNANGTAGGNGT TANGGCGCNANTCTNNAGCNCNCCCCTCCGGGCCCCACNCTCAATCAACNGNCATTGNTAGNTNGCNGACNCNTCNAATT ACAACAATGTTGNCGANCGCTTNGCCGAGNCGCCCNTGTTCCAATANGNGACACNGAAANCCAATNGGNNGCGAATNTNG GGGCCCCCGCGNNCCCTTNAGTGACGCCNCAGCTCNACNNGTGCGANTATGGNTGCCANGGNCGTNAATCTGNATACGTG GGATTAGCTATCNCGCGTGTGAACAAGTCCTCTACNGACNAAGTCNACAAGGTNCCTTAATTNATGAATTCGAGNTACAA NCANTCGATGTTCTATTGCNCCCNAAGTNCTGTAGACCCACCNAAGTNCCNANAATCGTATAATGCNGTGAANCCNATGT TNCNCCATGCTNCNNCACATTNNANTGAGGGNACGGGNGTTCATGNANTNGNATGATNCCACTGNNGNGANCNCGATTNT GGAAGTGANTNTGTGTAACGNNCNTCCCTGTGNGGNTTACGGTAGANCTNGGGANCNCANTCNNNTGNNCNACCCNCNAA CTGNGGTCNNGAGATNCNCTTGTACATGNNATTTNATAGGTCCTANTNGTNCNNANCNACCNNCCNTTACNGGGGGACGA CTCCNTGNANTAANACCNNNNGGTNGAACACGCCNNGCNATTGCTGTTGCNNTCCGCNNATAATNCCCTTAGGNAACGGN NNAGNNCGATGGACAATGNTANTTTGNANACNNGCTTNNTANTGATCNNNGGTGTANCCCTTATATATNCNCCAGGNCAG NTAGGCNTNCCGNCNCAGCTGTNAGGCGTGANGTNCCANANCCNNTNTNNCNGNACCNCAGGTTTNCAATTCNTGACTAC GTCGTCGNANGNCTCNNNCCCGNNGTCAATCGCGTGCGTAGNTCTTNATGNNTGAGGNTNNCCCTCTNCCTANAACTNTG ATAGNAAAGTCNNCNACTGGAAANGGAGACNNGANNAGTGACCANNAACAGGTTACCTTGCTGCCNCNANNAAANCGGTA ATGAAATCACNNANCTGCCTCCTTNNAACGNCGTTGNGTAGAAANAGNNGGCGNNTTTNGATCCAACGCCTAGGCACNTN GTGCTGTAGGCTTCGCACNCACCGGGTTCTTCTGNTNTCGGGGNACGAGNCNCGNNGCATNTAGNNTGTCNTANNAGGGA ACNAGNTCCCTNCGANNTNCAANCNCTATCACACATGAGGNANTAACTCTACANGGCTNNCGGCAANCGCTACANNATGN GNNCATATCTAGNNCNNGNCGCCACGGANTAGGGAGNGCACANNNTCGCATTTTCCGCGAAAAANCACGNATCCCTCAAG TTGCGGGCTGGACTCTNTCATCGATNCATCAGCACNATGAATNAAGCAGAGCGCGTCNGGTNTAAGAATNCCATNATNNC CNCTCTCTCNGNCGAAGAAGNGCCACGNTCCAGCTCANCNCCNNTGGTNTATCNNNTAGNNAAGNTGAGANACGNCCCGT NTTCTNTCTGNNCNCATACNTANTTACTGNGATGGTCAGATATACTTGNAGAGGNTGNANCGNCCGGGNTTTTTGNTGTG TATNNNATGNNTAAANNGCGTNTGTANNNGNTAGTGCGTAAATTTGCAGTACCCTAGAATGCAGNTTNGNANGNCCANNG ACANAGGNTTCCCGGTTAGGGCTTNNCGTGTTTTANNGATTNTTTNCGTCGTCCAAACAGANAATGCGGGCNCGTTACGT CGTGCAGATCCTNANAGNNCGACNATGGGNTGGAATNANCTCNCANAGCCTTANTAGANTCAGCCATCNAAANNGGNCGA AGCCNCTCGNGAANCGATCCTTTTACGNANCAGTATTCGATGNGGGCCAGAGGTNNAATTNGGTAGTANGNGCGNNGTTA ATGTCNNTCGNGGTTTAACGCCTANTAAATCCACCGCCNGNCNTGNTCNGGNCTNAGANCGNTTATNGGNACCNCANACC GNGNATGGNCACTCATATNCNCTTCNNGTTTAGTGNATCNCCAGGTGGAGNCATCNACCTNCNGNAAANTANNNNNCGGG ACACCNANNTCNCAAGNGNCNAATCCCNANACNNAGTGNGTGACGGGCTCNTGTCACCNNATCCGGTNCACCCCCNTCAC AANTGNATGTCAAATATNGNNTATNCGTNTNTTGGACACTCACNAGTACNCCTTGGGGCACCGGNNGAGAACGNNGGTNA CNGGGTTCCGAGGTTTATGTTATNCCNCAAGTCAANCNGNTGCGGGCTANTTGNATNCACGGTNACGGNAGGGTNNNACN GANCNNGANNGNCACNCANGAGTGTTGTGGAGNCNTNAGAAAGACTCGATCNCNANCAAANGTAGNCCNCCNTATTCGAT GNNNCGTTTAACNNACACNANGNNTTAATTANNTGNNNANCACCAAGCATTNNTNGCANNNGAGGGCGGGTGGTTACATG ACCNNCCGTTTTANACATTNATGTNNNNCAANTCGAAGTACATAGGCGCCANNCCCCTNCGCACCAATNCCAANCGACCG TANCGCTATAGNAACCCCAGATTTGNAGNCCGGCAAGTACATNCANACCANTANATNGAACAGTTCAACNCCCCCAGGCC CCGCNNCTTTACACNNAGAGCGCNGCAAGGAACAGGNNNCGCANANNNNGGGGGGCTATNCAATNNNCTTTNNACGAGCG AAGGGANGGACANTCNCNGAAAGCNGTGNCGGACATGAATNGATTGNACAACAAGGNNCNTTNTNANCGNGAANNNCNAG ACGGCTCGCNAATTGTNTTNNTNGANGCNTCACAGGNTCNCNACNCGCGACCCCGTNNCTGGNCACCCNATAAANCNNCG AAAAGNACGTNTTGCCTNGCNCCAGTTACNCGAATGGGGACCNTGATNAAAAGGACACAGGCGGNACNNCCAANTGCCNC ANAAANGAAAGCANTAGCCGTCATTCANGGAACNTNGACGGTCATCTGGTGGGCACNNNTCACCAAGCNGNANATNATCN ACGGANGGGGCCTAGNGANTANGCGGGTGNCGCCCCNTACTNGCTCGCNAGNNTAACCGTATAGCNTGTCNACCNANTTA NCCCTCTTANTNATAATNTGCCNCCNGTGTANGNTATNNGAGAGGTNCANTATTATNTCGTCNGCACAGTTATCGATGAT TCGTGAACCGTTCNATGGAAGTGAGGATNATNGACANNTGCGNCNGCCNTTTCANAGTGCANCACGNCNTTNNCGNCNTT NCTAATGANNNGTATCANGTNTTNTCATGCCGCNCTNCCAGNCCACATTTNNCTTAGCAATAGNAACATACTGGCTNCTN GCCCTTANTNAGNNCGATGGNTGCTTCCACTTGCTGTGNCTGGNGTCCTNNGCNGNANAACACGACATTCGCTGNAAGAG NCGAATAAATCGCTCTTAGTTACGGATNCNANTCNTAACAAGCTAACTTTAGCTGGATNTANCACAAGTTCNANANGTCN GGAANTCNNANGGCCGGATCCNTGNCGAAANAGNNANTCNCATNNCCTCTCAANTNACNCCGNANNNTNCTTGACNNANA CTGGTGTNACAAGGCCCCGCAGGTCGAAACGCCCCTCCNGANCNACCGGGGCAANNNTTNACGNTNTTGNATCNCGTNNN ATGANGCTNGCCANGNAAGATGATANNTANNTGNNNTTTTNTTCNCGCCCGCGCGNNNCGCGCGANAGANCTNTGNCACA CGCTAATCAGCTTCATCTNNTNAGAGGGANTNAGNGCACCTCCGANAGGTGCCCAAGGGTGCTACTACCTTNNACNNCAT TCGCCNGNATNCATNNGGCTNNANAATACATNATGNAAGGGTNTTAGATGGGNTTCNAATCCACCGNTANGACCGAACCG AGGNTGTNTTTNGTCNCANACANNTCCNGTCTACAGTGNTTGANTCNGTNAGCANGGATNACNNGANATAANGAGGNATA GGGTCNGGCCNNANGNNCNATGACNACNGCGGAGCGCCGNCTNNGCTCCTACTCNCNTGCGCGCACNNNNANTCAGGTCC CGTGTGAANGNGGGGGACNNACAGTNNTNTCCNNGACCTNNNANGGGTGNAGTCGGATGANCACNTNAACNCTGTCTNTG CCGCNCNCAGNTCGGGAGTCANNGCACAGCATAGAACGCCCAATCTCNGTAGACNGGAANGTTGGGTNGTCCNTCANTTG ACNGGGCGNCGNAATGCCCTGGTAGGTTGCAAGGCCGGGGCGCCGCTACCTNACNCCCGANGNATAGANNGGNGTAATAT GANTNNAATGNATGGGACGGANGAAGTAANTAANATCCTCNTCNCTTATGTAAAATAGCGGCTNCTGCCGCNTATNNTTC CATGTATTGAGTTNATANGTAGACATNCCNTTANGNANATCACNAANNGAATCNGTCTNATCGTNCNGTANCCANNNGGA ANGCAAATTNNTGACNNACANAANTNCGCTCGATCGANACTGNTCCGATTCTCNTAGNNGNNACTTCTNNTTNCNTTGTC TTGTTANCCCCNACGCAGCNGGAATGACCNNGNAACGTNAANTCAANGATCTAGNTTCGGNNGCGTANNTTTTGNAGCCA CTNACATNTATNNNTAGTCNCGCTTNTCTNTTNCGNCTNNACNNNCGTANTNNNATNGNTTATGCANNNACANATCNCTT GNCNTTGTNATNGACNNAATNGCNTCGCNGGTCNCNTCAAGAACCNTNTGCGCACGATTTNACNCTCCCTATACAANNCC GACNTATCCTTGTCGNGCACTAACTAGGTTNGGCGCACCGCNCNTNNNCNGTNNATNTATNCCNGNNGCTGCGNACTNNT AANTAGTNGNCNGGAGNTGGGCNCNNCGANGNNNCANANTNGGCCCCGAAGATCGGAGTCANCCGCTCGGAGCCGNCGTT GAGATACANNGANGGGATTTTTGATCNGGGNTTNCTNCGGCGANTTGGNACACGTCCCTGGGTNCCCGNANNGCGCGCCA ANNACCAGCNTGTCCCGGGTNGNCTATNTACTGGCAGNGCCCAGNACTGAATTCTNTAGNGTTGGTNACACTNAGTCANG TGTACCTGCGATGTTGNAAGACACCGTANCCTCACACCTGGATTTCAGTGGTGCGCTGTGTGNTCANCATTGNTCAGCCA ANTNTAGTNGGATTNTANCNNNNNCGAAAGCACNNNNNCTCGNNNTGTATAAAGTGACCNGGGACCATGGTNTCTGAGAG TGGNGGNCNCTCACACCTNCGCTNNCCGTANGNTNTGNNCNGACNCNGCNGACCCNGAGTATAANGTNTCCGCANCCACC TCTTCTTGGTACNGTAGCTCCAGANGNNATGNCGAGNGCGGCNGAGTCANNTGGATGCNNNATTTTTCTACANTNNTANN GNTGNGGCGCCGNGATCCGGNNAANGNTCCCCAACTTAGAAGATATTNGCTTNATAGAAAACCGTNCGATGTCCCCATAT CNGGAANAANTNCNTCNNCNGCNCNTGGTTCCGGACNTCCCTANNGNCTNATAGTTCNTGAATTTNTGGCNGNAAGATNA CACNCNGANCNTANATTANNTGAATTATGCATNGANNNGANTGNAGANATCNTGGACNANNAAAGGNCGGGGCGGACCAN NGTNANATAANAAGGNAGNAGCNTATGNCTACGCTATNNGGATCNNCACCAGCNCAGNTGCTCAANTCCATCNNNANTCT GTGCTATATTNNNAGCTTNAAAGCTCGCTTTTNGAATGTTNCNGCATCGGTATTGANNGNAANTCTACTNCGTTTCCNCT CCNCNCANNTNGCATGGCCCNNNTCGNGAACAATGANCTCCTGTACNTATATNCGAATAAGGACGCAAGTGGAGNNNNNA NNNAAANTNTTNGTCACGNGNNTCACATCCNCACNGGGNNTNGGNNACNANCTGGTCTGGCATAGCGGACCNAATGGNGG GGNCANTGTGGCAGANCACNCGTGGCATACTGACGAGCCCGTCGNGTNTANCNNTNNCAGCNTTCCGTTNGTAGTNCTAA NTGCNATAAANCNTATCNGCGNGAAGGNNNAGTCNACCCGCACATTCTNGGTAGCTTAGTNNCGATTGAGNCNGATATCN AACAATGCCTCCTCTACTNNTTNCTGCAATCNNTAAGNCNGGAGAGGCACCATGGTTACNCCCATTGNTGNTNAACNATT CATCGGTTACNCCNGTTCGNNNGCNACTNNTAGAAATTCGCGCTATTCNNNTCCTNNGNTACTNACCNTATTTAANTTGC NCNTCATCGCAATATTCGTTGANNNGNCTNATNTGTGNAGTNAACAGNCGNTTNAAANTCGANNNCCTTGCCCCTTNCCA ATNNAANCCTNTGNNCNCGNCTTACNTNCNTNANTNTGATTTTGNNGTTANAGAANTCTTGGGCATNTNNCANNAATTAG CTNNAGNCACNTAANNNCAAGCANATCAANAAACCNTTATNTAGAGANAACTACAGTTCCATNACAGCACTTTNGTGTGC ACNNTCATCTAGCCCGNTTCNTGTTGTTANCTTTTNTGANCGGTCNNNCGGATCCNGCCNGNAGAANGGGANCTACAATG CTNGNGGCTAGTNTCNCCTNTACNGAAAAGGANACGATGTGTGNANGGGNGNCACGNATNTCNGAGANCNCACCANANAA AANTTCACCAGCTTGATNAAATCAAANTGNNNTGAGCCGTCTNTTGANCTTAATGAAGCANNTACCGNTNCCANNCGNNT CAGACTGCGTTCACTNAANGGNGAATNNNATAACTTTGTAGGNNNTAGTANGGTNNCTTNTCGAANCGGTCATTTGTGGN CAGCTNTNAGANNTTGTTGNGGATTTCANNCGCNACANGNNCGGTCCNGNCNTCANNNAACATCTGTCNTCTANTAAGNC GTAANCCATATGTGGGTNNGTGAGGCCNCNCATGCCCGGTGCTNGCCAGCGCTTTNCTACNTTNANTAACCCCTNCCCGC TTAATAANNNAANTANNNAACCTGGTGAATNGGANNNCTACGGGTNAGGGTCNTCCAGANTNTAGCGTCNTGNCNCGTCC TNNCANTNACGCCCNACNGCCACGGGNNNNANTCTNGTNGNGCCCNCCCCCCCGTNCCCAACCTATAGNANAATAACTAG ACNTTCNGCCAAANCTNNTAGGATAAGCANNTNCAAGTAGAACCNNANCTNTANTANGTANGANNNCCTGTNAACANGTT ANACTCNGCCGTCGGGATGGCCNGGTGACNGTNCTAACNCGCGTCNGCTGNNNGATACANNACCTTTAAANAANGTCCCC CTGCTTNATCCCAGATCACNTATGTCGNNNTCGAATGAANTNNNNNCNAAANAGNAACTCGGCTANNCGTAGTCCCTNTC NGAATNTTNCNGTTCTGCTCANCNNATTGNCGTTCTNGTGCAGAATCNNGNATNGNNTNAGCCTCNANCCGGCCCGNTAT NTNNACCCNCAATACTNTATNNNCANNGGATATNCAANGCNNNNANATACNGGAATTGTTGTTTGCATGAAGNTCNGNNC TCTNACTGTTCAGNGGNTTNCTNNCCCGGGATGTATCGCATGAGTACCACNGTTTNGNGACCTTNGTCANAATGATACTA ACGCAGGAATGGNNGNNATNGNGNGGTGGTACGACNGCGGNTGAGANAAGGANNNNTTTTGTAATTCNAGCTTACTCNTG CCTANTGCTTCTGTAGGTACCNNCGCCATGTCATGCAGGATATAGACGGAGCTAACNGATTGTANTACCNATNTNNAACG GTCAAACGGTTGGATNGAAGCANCATAGCNNCTTGCAACAAGNNNAGATATGGCGCNNAAGNACCNTCCGCNACNATTTC TCAANTCTGNCGATGANCNGGNNNCGCNCNCACGNGGNCGTCCCCTAANAACCCTAGTTNNTCNAAACAAGTAGCCCTNN TANGNNACNANNTNGAAGTATCGNAAAATNGNNGACCANANGNCTGTACACGCCGNCCAATCTTTTANAGTGNTCTCNAG TGGTTTTCTGTAGGGGGNTTAGGNNTCGAGGTNNTGATGACTGGGNCCGTTTTNCAANTNCTGGCCTTTNGATNNTGACN AANGGNANNANNAAGTNCCGGCNAGTTNCCCNAGTNGAGCNACACTAAGNATCTACNNTNTTNNTAACAGTNANTNCANA CGCACGGNNGGNGNCNGAATCTCGAACNNGGGTAGATNGAGNGGATAGCCTTGNAATAAGACCGCAGGGTGCCCCTGATG CNGNGAATGGAAATGTNGNTCCTGATNTTGCNGNGTAGGCGTATTCTGCCGNNGTCGACCNNNTCNAACNTNGCCGNGCN GAACCNTAGAATNCGNCTGGGANGAGTACCNCGTATTTNTNATACCGTGNCGTATTGNANGGANCGTACNANATTNGCTA AAAGTTAGNNGNCCCNTTTNTTGNGCTNNGCTGANCTTTTTTCGCAAANGTATGACGGNNGCTNNAGGTTNCNCTGAAAT NTGANAGANANTNGCGNNCNGTNGCNCNNNTGTNCGGTGAAANGACCTNTAGGGATTNCNGCCCCNTNTTGTAGGATCAN CTNCGCCGTCANTCANTTNGNGGAACCAAAGCAACCGAANCGAGAAATNGCCCGNAGTNGTANCNCATGNGAAGCGANGN TNGNCGNGTACTTCGTATGAATNACNTACCAGGTNNAATAACTTCNNNTTCCTCACTCTCTCATCCGTGAGTTNTGTNNT TGCTACTNNCNGGGTNGATTNTCNNGGGACCGGGANGGANNNGAAGGNNGGACTGGNNCTTACTACATAAACGCCTNAGG AGTTNNCNCNNCCAACACAGAATCAGGCGNNCTTAGANATNNCCANCGNCAGTCAGTAANACCNCCGNNACTTNNGNNAG ACTTTTNNTNTGTCAGNGAANTGTCTGTGNTNGCANTGCCAGNCTNTTTTNACCNGTCGNTAAGGNAAANTCACGCNNCA ATGANNATGCAGNNCNTCAAGTGNGGATATACNNNNTGCGCGCANNNCCCCAGTNNTAANTGCCGNCCNTGGGNCAANGC ANGAANACNNTCNNGNCCTCATCTGCTGTGAATCAAAGTNNTGCAGGANGAGGGGTAGGAAACATGNTNNTAGTCCCAGT GNGNCNNGAGGNGGTNGGTNNCGGGNGCTNCNGTGCGNTGCGNGNNANNNTTTGTGTTNGNAGTCTNNTTNNGCNNTCGN ACNGCCCNACATCNGTTAGTNTCACGNANAGCCTGGTAGGGCACACTNACCGCAGNGNAAGNTNATCCGTGAACGNTCAG GCGACAGTAATCCTNCNGGACAANATAATNGAGAAATACAACGGTCCAACCCTATATNNTGNNNAAGNCGTATNCNNNNA TTCGTTTTCCCGAACGTCTCAGAAATTANCTNCTGTTAAAGNGGCNTAAGGTTCCCNTANTANGTAATCGAGTCCGNTCT CTAGCNTGTGTAGTCNGNGGAGNGGNNNNNTGTCTACNCAATTNGCTGGGNCTGAATGGCTCACAANCANNACGGNNCCG CAATTNCTACGNACTCACCAGTCCGGGCCCATTNCGNNCCANGNGCNNTCNCCGGTCCCCAATCGAGATAGCNATAGNAG ATGTTAANAANACTNCNAGNATGTCNTCGTNNCACAGNCNANGTCTCATAANACATCTNTCGTTGCCNTTTGCNGNNGNG ACTNTNTACTTGCTTNGNGTCAAGGNAAGTGACGACNAANATNCAACTCNAGCCGNNNNTNCCCNANTGACGNNCCNNAG GGTGNGNGANCTGGGTACGNATNACANNANNGCNAGNNCGTTTGTCGGNCACTGNGNCGGAGGANCTCGGAATGGNTNGA GTGCTANTCCTNAGGATCNNNGCCGANTACGACCGCCANTATNNNANGTTGCTACGTCGAGTNGNCTGNCNTNNCNCAGT NCNTCTCACGTAGGTTANNTCGTTCGAGGCNCTTTNGTTTAGGGAAGNCAACNNGANATNNTCTATNGTNACCNTCCGAC NNCGCGGGNTTNGCAGGNAGTACTNGCTTACGGANTNCGNNCNATNCTCNTACNGNTGANGNTGGNTCTCATNGATCGCN TNGANNNNAGAGAGGTCGAAGGATGCATGANNNAATNCGCNAGCTGNNACTCCTGTNNTNTNACCGGCTNATTTACGTNG GCNGACANGACGCACTTGGGNNGAAACCATAATCCTGATGNGCNAGAATNTGCCNCAANTTTGTTCNANTCNTTATTCTG TNACGCGCCCTTACNNGCANCGNNNCGCCAGTGCNCANNNNACNCNNTCGGTCACGCTNTTNCATAGCTGNGAGTNACCC CCANTNACNCGNTCTTCNGACNTCTAATNAAATTNTGNCAGTCNCNCTTNGTTGAACCACCNANTGTGCAGNNNAAGNCA ANACNGANTNGTCCTCTNNCTNNCCATGCTACGCTTNTGAACTGCCGNCANGAGCGNTGAAGCATGNCNNNNCCANCCCA ANTNAGGCGTNATNCNNNCGTTNANAGCAGATACACAGCCTCANTCNTNGCGGATTCGTCNNTNNNNAGATAGCGAANTC ATNNTAAANACGCACAGNGCCANCTTGACTCGCAGATCAAATNTGAANGANCNTAACTTACNCGNNNCNTCNANTACAGC ANCANGTNCNCACNCNNCTGACAANANATGTNGACGCAACCCNAAGNCCTCGATCGNGTCNCTGGAGATTGNACNGGAAN TTTNCAAGNCNAGAATAAGNGCNACNANNTAGAAGCGCATNTNCNTNCGANGCGGCGCNANNAAACANANGTNNCTCCTC CAACCGNNCGCNCGNGNGNTNCCTCNACANCNNNTCANTTNNTCCCCGCTGCNATTTNCACACAACTACACTGCNGTTNN CGGTATNTNTTACNNTTTTNCGGAANCCGTNCAANANCATAGTTGAAANATNAGNTACNGCGCAACGANGNCCGCGTANT TAGANANATCGAGGGNCGGNGNNATNNTTNCGCTGATTCCATCTATNACAGGACACCNGGGCTCTGTCATNTCNNTCTNC ACATACNGAGANGTTCTGNNCGTNCGAATATTNTGTNCTGANTCCCCACCTNTATGGNACAACGNNCTGNGAGGGAGGAA TCATNACATCGTTGATNGTANTAGGCCAGGNCACGTTNCNTNGTTGNGCGGGNCNAAGCCCCTGGAATCTANNTTACNGT GGGCNGCTAGNNACAGCAAANNGNNANGNTAANNTAGCGTGCTGCNTCGTNCTNNNGCGNTTANGTCCAGTTNGGCTTTT AGCCGNCGCGTNTNGTATGTCCTGNTCCAGACCAGTTACTTGCAAANAGANTAAANNNCAGNGCGTTGCAAANAATTGGA GTNAANCNTGCACGGGCCNATGATACGGNCGATTTGAATTCCGCAGNNNANNNNGCTGCTTNCATTTAAACGGNGCCCCA AGACTACTCCTGCNACGNATNAATNACTAGGCATGNGNNNNTNTCGNCAGAGCTCCTGCNAANGCAGNGGTCNTAGAGCC NCTGGGGNAGAGACACCNGGTCNTAAACTAAGNGGNNCATTTATCAGNGANTGAGTNAANNCATANGGGGCGNCAACTCN CGNCTACCAGCCCNGTNGAGNNTCGGNCGCAANTNTTATATCGTACNGCNACAGATGNACCATNAANGGNTGCANGATTN GGNNNTACGCCTTCTTGTGCTTTTTGGGTNGCAGTCGTGTGNATCAGTTTAAATANNTAAGANTANGGGCATCTCTATTN TCGANTCACATGTCTCANATNCCANCTAANTGAAGACCTANATTGCCGTACTTNGAGCAAGACNACTCCCNACTCCNNGA CNNNGTAACTNGATCNGGACGTGNGACATGNACTGTTAGNAANAGCCTANGGTATCANGGNANAATCCAGNCTNTNTTNT TNTNGTNGCGNNTNTCTCCNGACTNCGTNGNTGGNGTCANANACNCCTNACAGNGGCGTGCCGCNTTTTNGTTTTGGTNG GGCTTTTANCNGNGNTGTNTNACAGNGNGGGAGGANGGTATCGANAGGACCAANGNANTCCTTTTNCGATCTGCGTCCGT CTCTNNAACGTTCANGTGNTTCCGNTCAGANCAAGNTNAANATTCTCGGTAAAAGATGGTTCGGAGCTTAATATANNNGN CCTTGCTCCCTNNCCTCGACGGTANGNANGNATAANTCCNNNNCGNNGTNCNTTCGCCAAAACTCNAAAGAGGATTAGCG CAANCGNNCNACATACGGGCGTNCCTTCGANNCCAANTTGNGATCANGTGCNCCGCTGTTTTTNCTTCANCCNNGGANCC TCACGNNGCANATGCANGGAAAANTTGAANAAGATCCCCTCCGNAGNGCCGNGTCTCNATNNTACCCCNCTTTATCGTCG GGATAAAGCTGAAGTGTNCTGGGAANNATTGNCTGNCTCGGTACTGTCTAANTGTGTTAGCCAGTGCNAGGANGACGGAN CGANAGGGCCGCGGCACNCTANTNNNANAAATAANNTAATNTAGATGGGCNNCGATCGGCNGNNCTGCGACNCTNNNTGG NGGNATCGNCGGGGTTCGGACNNCGAGTTTNTCACTCTCGTTNAACGGTGGCTNGACTAAGCAANNTTCATTNGNGGGGG GACGANCNNTAACGATCCTCNCGAAANTTAGNTTTTNGTTNTNCGTNTGGACCNNANGTANAACTCATGCTGTANTCGCG GTGCCGNGCAAGNNTATATCNNGANCTTNTCGTAANTCTCNTNNCNGCCTTGANTGCNCNCNNGCAANNTCGNTCCAGTC ACAATGCNTANGCNTNNGATCCAAAGNGCCCNTCCTNGATCCAAGACTNCGACNGGTCTNNNGTCTTGTATAACNTANCT CNACAATGCNCGCNCTNAANGTGATATNNTCTAGNCNNCGANGNCCTNCGNGGNNCGGNCTTTCCACTNTCCCAGTGATC GGGCCATGCNNANCTNGTTATGCGGAACNTTGCAATGTGNAANATCNTGTGNGACNNAGCTATATNCGNATTGCNNNGCC NGTCANTGCGTNAATTNGACAGCCNNCNCTAGGTGNCANAACNCGAACGGCCNGGNTNCGTGNATNNNGGTTTCTANCNG CTCTCGGTGAGTGCAGATNGTCGTATNANNCAACGCTGNNCGGAGATAGATCCTGGNGCTTNNNCATGTCGAANNGCGGG CTTCACTTATTNATTCNTCTCTTTAANGACATCACNTNTGNTANNCAAGGCTGATCCCNGACGAGANATANTNNCNTNCC TAGTAAATGTAAGATTGCCANGCAGTCGACCATTGCCATTGNNCACNNAGTTGGGTTNCTCAGCTCGCANNTCCANGGTN TANGNCTAGTCNATNATNNGNNCGGCNACTTANNTTTNGCGATAACNGTGANATNTANGGTACTACTTTNCCNNTACTTC GNAGGNCATTCNTCCTGAAAGNATGGATCTGCNGNGCCGACGNGTCGNTGGGGTNNGCCNNGTTNNCCGNCCATNTAANA GNATCCTTCNGCGAGTATACTNNCCTNNGNATAAGNAACATATANTNTTANGAACNGGGACCGCGCTAGCNTTNTNACNG NCNGTTNGAGAGACACTGTCNACGANNNGCNCATAATTAGANGTGGATNTTGCGNTGGTATNNCCNATTNAANNNNGAGG NNATANTAANTTNTNTNGCGNGGGATAATCNCCCCNGATGGNACATCANTNNTTACNGGCGTANAGNAGNCAGAAGGCNN ATCNATAGACNCNCNGCGTANTNTAGCGAACCNCCCNAGNATAAGGNAGGGCNNNAAGNACGGTCGTCANTGGANACGNN NTNGNGNAGTNAAAGAGGGAATGGNNGGNGGNGNCATAAGAGGTAGTGAANNCNGNTGTTTNACTNGNCCTTTAGAATCN NCTCTTAATTGAAGATTTGCTCGCCNTCATCGCGNAGNACCGTCAGNGAGNTNNACGANGNACNGCATCGAANTCCANTT TAAAGCCACGGNCTGANCCGNCACCTNNAGCNTGTGCACGGCNAGCNAGCNANGATNCGTNGGTTAGGTCAGTATNNCNC GNNNATAGGTCTGANAAGACTGNCATNNACCNCTTCGNTNCATGACCAGATGTNTTATCTTATGGNTTTTTNNACGTTCN CAAAGNGGTCGAATNCGTTNCGANGCTATANTNANTCTATGNTNTTNANTNGGTAAGCNTNGNGACACATNNTNNCCANC NACNANNTNTATANAGATATGACCCAGTTTNNCCATTGGNNNCTCCNACNTAGTCAGTGTNGNNNTAANGNTGAACAAAG CCAGCTCCGNGCNAGAAANCNATGNNACNGGAGTTTTNGNANAGTCTNGNNNTATGGAGNGAGCGGCTACNGAGNNNNGN CNTTGTNCGNGANAGCCNNCTGCGTNGAGGGGANATAAGTNTGGTTGCNNTNGTAAGTTACTAAGNAANCNAGANGNGTA NNTTGCAAAACTGNAAATCNANAGTTCGNCTNCTNGTNTAGGTCGTNGGGTTTNGCAGGNGATANATTTCANNNGNCNCG NATNCGANCTATGCACTAACGACTTTNNNNGTNNNNCGNCGGNNANNCGTTTCAACTNCTCNAANGNTCGGGGGATNCGT GAAAATNTCNAGAGTCGTCCNCNAGGGGTNNNGGCGNNANNTACNGTGTNCCCNGCAGTATTCGGAACGCTCAATGAGCT CNGCCNGANTNNTTCTANNNGGGAAGATAGTTANTNGGNATCAATCNTNCNGGGNTACACAGACATTCTNGNTCGCCTCG TNNTGCGCANTGATCTNNANGNGAGGCGANNCGGAGGNACGTCGNCGCTNTGCNCCTAGNNGNCGNNCTAGTACGTNCGA GGAACCGGNCANCGNGATCNGCTNTTTCNCGGCNAGNCNTGGTCCGGTCCATCGANATAGATAGGTCTTNGATCTNTNAG TTGGGANAGCNNGNNNCATGATANCTAGATCNGTTNGATCCGNCCTCATCGNTCNATTNNCNNTTAGNGNNGGTTGTGAT TNAGGGNTGTCANNTGNACCAGTTNCCGNNCAGTCANCGGNTTCGNTNAGNCCNTATGGGCCCNAGANTGNCCATGGTTN NTTTCTCCNTAGGGAAATCGNCTTGTCGTCTNTAACNNTTATACNATCNNAANNTGGNTTANCGGGTNTANGGTCNNGNC CNANATGGCTAAAGNAAGGNANTNCCNNCTAATNCACTCANTAANTNCGGAAGTAGCCANTTATGTGATCNGGCTTTNGN TNGNCTNANTACTACAACANNANGGATCGNANGANATNNAANTNCNCNTGCAAAATCTCACCNCAATACTGANGANTGGN TNNTNNGNTAAGTACCCNCGTTTNCAAGACANGATTCNCGGCNNGTGTATCGNGTCANANATTAGNGGTCTNACACACCT NATANCNCATCNCNNNNGAAGAAGACTATCAANGAATNNCGNCCNCTATGCGTANGANTNCGACTTCNANNGTCATTGTG AGGTAANNGTTGTCGCNANTNANGCCACTGGCNGACGGTCGTAGATTGTGCAANGCGGAGTACNGAGAACTNNAATGGCG NGNATTGCCGAAGGTCCAGTNANCACTNCTNNCGACGTGATANNGACAGGATNGNNGCGACNNCTCCNGAGNCCNTGGAT CGNCAAACTGTTCNNCNGGNTCCGCGGCATTAGGCCGANGAGTTTACNACGGATNCATNCAGAANGGCATGCCCTTTTCC AGNANTNCTTTGATTTCAGNTACGTNCCTCTTCANAACTCCNTAAAAAGGGAAGCANNGNANTANCNTTTATATGAGTAG CTGCGATATNAGGGTNTNGTTAGNATTGANTNGATCGTAGGTNCNCTNGNNANTNGCAAGACANAGTCCNNNCGCACANA ANTGNTTAGCGNCTNCNGTTTTTTTCNACTTNNGGCAATAGCGCTTGNTGNCCCGGAACCGACGNCACNGCAATNGATNA NNNCCTATTTTTNGTCCACAGCGTCCGATTCTNGCNANGCCTTACGGGCNCCCGGANNNTCCATNNATATCGCGTATGCA GGCTACNANTNTTTTCACACTCTGNTAACTCGCTATAAGCGNAANCGTATAAANTAGACANNCCTCATACTCNNTGNAGC AGNCTNNCCGNTNCCNNTCNAGTGGTCNCNNGACGANGNNNTAAGGAGTCCTTAANGTGANGACANTCGCNAAGTTNTGC AGCNGCATTGCCNAACTNTACTAANNGNGCAGCCNNTTAANACTGNGTNNTACTGCACGNANTTCCCACTANNTCNCATA NNAGAGCNTGNTACGCAGGTCGCNNCCGTCCTGNAAGGNGNGNCCNTANNGNGNTGAGTNNCTAANNCCNGNGNTNNGGG CTGCATNGNCAATNNTGNCTTCTCNNGTGGCGGCTGTAANCCNTANCAAGCNTTANNANANTNGGATNCCNTCGTTTTNN CACTTNAGTTTCGAGATTGGTTTAGTTAAGTANNNCCANAGANNCGNAAAANCACCTNGGCGCGCATCCNTCTNCANCNT AGTCCNAGTAGNTGTNGTNNCCTGANCNTNNANGCGNATCCGCCTAGCTATATTCTTNTNTAGNCANTCCGCCTCNAAAC TTTCCCTCTTTTTAACNCNNANTCGAACCTATNCNTCGNATCCCTNGACGAGTAANCGNTGATTNCATANCTNCANCNCC NNGTCATCACNCNTNGCGTGCGATGTTGACCNANTCTNANAGNNTNACGGCNGATAGNNCATTNNAGTTCGGTAGTTGCG CNCCTCTGNTGNGANANCGGTGNNTATGNANAGCGAATATTCNCTNCNTTCNACNGGCGAAANGCTTGGNANGGCNGTCC NTTTGNTCGAACNGCGNTCTTCTNCTGAGNTCGTGNNTANCAGATTANAANNTCNNCTGNTCANCGGCAACTNCTNATGN CTANTCANTCCNAGCTANGGGNNNCAGTCATTCTAATTACNCNGGCGNANCCACTNCNCTGAGCGTNTNACTCACCACAC GAGATNTNTAAGTACGTAATNNTCNNNCGACGNNNCAATTNTNCCNTATACAANNTAACANGTTTANTATGGGACAAATC CTGGTCAACCATACATTGAGANTCANGCANCGAGCTTNTNATCCCGCGCCCACCNAGAAGCTGCNTCTAANTCANGCGCN AACGATAGNCTTGGCTCAATCAAANGCNTNTGTTCAAAATGCGTAACNNGGTGNGAGACCCGTNATCTCTNTTTGAGTCA CTCTGNNGTCTNAACGCANAANAGNAATAGATNAGTTAGGAGAACGCCATNCNGCGGGTGCAGGCTCTCGANNCAANNTA AATTNCAGANNGTAGAANCNGNTGACAGATNNTGTNNNNNTCTCCGTNGGGTCCTANAGCNAGCNNGGCNCAGTNGANCC TCCGCANTCAANNTNNAGACCTNACTNTAATGCNANNGTANNGGCCTGTNTAGGNCTNGCGANTNANCAANGGCGTACCG TNCACAANTNGAACCATNAATTACATNCCGCNGAGTNGGAGNTATNGNCTAACTTANGNTGGGCTCACAANGCAGTACCA NTAACCAANAATGCTTTCAGTCTNGANGTCCNTNCNGGNTGNACNGGCAAATTAGGGNTCANAAAGACGTCCCTAGANCN NTGGCNAAACNTNTCCTCCCAAANTATCTNGCATTGNTNANNTCCNCGGNTTTTGAATTTGTTNGGTNGCTANNTCNCTC NNGCGNCCGACAATATAAGGCGCAGATAGGAANGCTCACCGCNTNAGAATNATAGGTTNGGGNNACGGNANNTCTNTTTN CGNATCNNATTTNGNTCTTAGCTTGTAGAGCGGGATTGGTATTNATCCNTANGCGACANAANTTGCTNGCCNCTNTTTGG GNGCNGNCCGTATGCAGCCNATGNACGAATTACTNGCTGCCGACNCCAAACGANCCNGTNTGTCGTCCTCGTTCAAAGGN CGTCGCCTNCCCGNTCGTNCCAANNGCGGNGCAAACTNGGNTANGNCGGAAGCAAGCTCANTANTCGCNGAGNTGGTTGT GCGTCAACTCGTTTTGCNGACTATNGACCNCTCGGTATAAGNGGGNAGCNCGCCGACACATATNTTGCCGGCNTGNAAAA GGCGANACANGNNGCCATTGGNACAANCNGGNANTGCANNTTNNNGNTAGNAANANNCAACGGAAGCANNTTCCGNANAC AGNATAGGNCNATTCTTAAGTTTCTNAGNCTTCTCCNTNTAAGNTTCNTNTGAGACNAATGNCNGNTTCGANAGAATCCC NANNCANCTCNGCNCCGCTGNTGATAANGCGAGNTACTCGTTNNCAGAAGAGNGGTGGGTNAAGCTAAANTATTATCGTG NCTTCTTACAGNACTGGTGANGCTCGAGNNTCGCCACNGTGGNNTATCTTTGNTCNCTNCCNATAGGGTGCCTTNCCAGT CAAGAAAAATTCGGGACNTCCTANGTNCAGGCNNNGGATTTCATGGCTTGAAATGGTATCTTNTATANTAATCGACCNCA CGCGACTTGTCCGANCANTGNTNAAANGTNTTNAGNCCACATNNAGGTNACGGNATGAGATGTNATNGAACNCCAACTTA ACTNNGNNNTNCGAANCTTANTTANCGCCTAANAGCCACATCNTNTNNAGATCAGTNGANTCTGTAGCACTNTGTTNGTG TCAAANNGTATGANNNTGACGCCGNCNGGGGGNCNGAAAAGNGACCACCGGNACGCCCACGCGNAGTCGNCGCACNNGCA TTNGNGCATCTCANNNANGTCNTGTAGTATAACGNAATGNTGCNTGACCATGNCCNTCGTGNATTANTGCGCTNGTNGCC CNANTAGAGATNATTTCCNCNTTNCNATTGNACTGTNCTGCCTTNTCATACCANNAAAGGCGGAATGNCCANCGAAACNT TNGCNGATNGGAGNAGNGGANANNTATTTATTACTACTGCGCNGCNTTNAAAGGATTTANATCGGGANTTAGCGGGNCTG GATNGCGTNTAGAGAGGNCAGCCNTTCCNTGNGCNTATNCCCAGTGTTAGNCTAAGAAGNNCTCCGTGTAGANATATCNC AACNCCCGNACNNGTTACGTACTCTNGTTTNTTACGACTCGGTCTNNNACNTCTNNCNTNAATTCNACACGCGCGTAGTG CCNTAAAGCCCATGAGCGNTNNCGCGCNTNNGGCATCGGCGTAACNCANTCCTNAGTCTNNNNNTNNCCTNTTCCCGNAT AATAGAGGTATGGCCTTGCNGGAANTGANTCNAGGGTTACGNATTANTTTANAGGCNGTNTNCTNCNGTGATNNTNTGAT ANAATNAGGGGTTCTCAGGTAACCTGGTGNNGCANAGTATCCNCGCGTACGAAAACAAAGTCACGATNGANGGGATGAAC NCGANTNGGTNGGANTGCCGTNTTTAGTGNTACTCNGAGCTATGGANTTTANTTCGCCTAGGNATNACTCNGACNAAAGC NNTATAGCATAGNANNGACGCANTGGNATANCNCATNACTNCTACNNNTANAGAATAGNNNNGACNNGTGTAGNCANNAC CACTNACTNANCAGAAANGTGTTGTTNTTGCAGNCNNGNNTGTNAACANNTNGCNGGNGGTTAANAATTCCCNTTGCNTT CACAGANNAANNGANAAGCCAGCGCNNCCGCGCGANGANANCGTTATTGAANCTAGAAANGGGGTNNGGTTNATTATNTN NANGNGTGATTTNCGGGNTCNCGCNCANNGTCCTCCGACAGTATCNGTNGTNCGNCGNCTATNANCCTNCAAGCNTNGNG ACGCCTNCNCTAGCCCCNTNNGGNNGTNNNNGGCAAAAGNCGGCNGNGNNNGNGTGCTNTNNCTTGTAGGAGCGCTNNCC NCNAGAGNTTTCTGTNTCCCCAANACNNAATNGTGANNCGTACNAATTGCNNACTCATTACAACCGTNAGTCTCAAGAAC CGCACAATAGNGNCTAATTTGCCNTCCNNTCTCCCCCNGCTAGTTCNGCAACATTCGTCTANCCTATGTCGGCCGANTTC GGNNATTCATNTNGNGCGCNGGTTNGAGTATGNNNGCNGNNAGAGCCAGCAGTATNATTNCNTTATGANNATCNTCACNN CGNCTNTCAACATCGNTNNGNATAGGNGTTANNTGTTNTNNCNCNAGNNCACACNNCGCTATTGTGCNAANCACGNACTT CTCCCNGNGCGTGCAATTCCCCNGAANNAGATNNCGGANTGNCCTCCATCNGGCNGAGANGCGTGGGGNTCNATGATCTN TANTGTGATACNGTGCNACNNGCTCGTGGGAATTCCNCGANGNGACNAGANNGNTNTTGGTGNCTTAAATTTAGTGATAA GCNAGACTNCGGGTACATNTTCCAGNTTCATNNCGNGGGNAACGTGNTCGNNNNCNATAGGGNNGACNGTNCTANCANAA CGTAAANNCATAGATTNCTNAGNGTTTGGANTNNANTNCNTNANAGCCNANANNACANCNTNGGNCACNNATNNANTTCA TTGNGTGCACCGGGGAGACACTAGNGTGAATATGNCTTTNATAGTCNCGNGCTGTTTCNCGTCCACCCCNCNCNCCCGCT TACTCATNCTNGCTGCGGNATCCTTCCNCCATATTGCAAAATTAANAGNNGTATCTTAGCCNNATCCGCAANCTAGTNNC AGANTTCNNNNTGGAACTTNCCGACCACNNTTAGCGCAAGCCNGAGGAGCCCAGCNTTNTGNTNCGTTAANTATTCCAGG GTACGAGGTANACNTGNNCANAAGATGCTTCTGTCTGTNGCAAAGGANNTNNGCCNTNGGCNATNAANCNCACTTTGNAA TNGCCANANANCACNCNGAGNGTCNNNTAGGTCGGCAATAGNCTCNNNATTTTTAAAGGTCNTNACNACGNAAAGGNATC TNTGNTTGTTCGGCAATAGACCGCCTTACTTCNNCCNTATGNGNGNTGAACACTANGGACCCAATACATGAATCTAANCG TTANCAGTCANGATCCGGCNAANNNCNNCGATNAAAGGNNCTANNCAATGCTAANNGGNAAAACCNCATGCNCAGTCNGG GGTATGCGCNANTNTTGCGAAAGCCTNACCNCGNNGCTCNATTCCNCTGTNCCTGGCANTANATTGTNTGTCCANNGGAG GGNTCATCGNCNCGNNTANCTCNCGTTCGNACNANTNTCAGATTGTAANACCTAATNNANNGANGNAAACNTANGAGATA NCACGCCCTCCAATATGAAGNCCTGGCNGTGCCATTNTNNTCCCGACNGGGTNTANTCCNGCTNTGGTTGCTATGCNTTG CNTNNNNTTTGCTCGGTATCNNGTNGAACCGNCTCTCNGGCCCCNNNTNANTCGNTTGGGTGAANAGGAANCCCANNAAG CANGATACCNAAGCNTGCTANCGTGNTGGGGGNCACAGTTTTNGCTNTNTTGCNNTTGANNTGGNNTCTNGACNNACNAC CCCCTNACTCANTGGCTACCNGTGANCCCCGGCCATTATAACTNGNCNNANANANCNNCNCTTATTNNTNCACGTTNCGG AATACTTTTCTCAAACGGNGTGNNTGCNCGNNNTTTCTANTCCTGTCTCGTACGGTTTATGAGATNNTCTGNTNCTGTCA AGNAAGCCGANGACTNAGCAGGAAGANCGGATCTCAGCAACCATACNNGCNNCANGAANTCANTGGNGTNCTNNAGGANN ATGTGANTNGNAGTNAGTGGCCNCNCTGTCATCATGAANGNGGNGTCCGCAANNTGCCCCCCNCCNANNTNGGNAANCCG CNGTCNGACTGTGGACCACAGCGACAGAGTTGTCGTTNNNTCNCTCGGCTNGGNAGTTCNNTACCCTGTGTANTCANNCC CTTTACGATTAANGATANNNTCACCTTGCTATTGCATACANTATANGCGNTGAGTGCCANCAATAATCGTCCANTGNCNC NANTGNTGAGNCNAANTNTNGTGCNATCNNNCGCGGAATNCTTACGGTCGGACTCAAGCGTNCCNATCNAANAAGTCAAC GAGACCNTNTNANTNCTCNCGAANTGAAGGCNNNGGTGTCCGAGGACCGGCGCNGAGTNTNGCAAGGTTTACAAANNANA GGNGGTAACNNCGCAAGCCGTCNNTTTANCTCAGAGGTATNNTACTNNGTNGTGNCGAAGCCCTGNATNCCGGTCTTNGG TCGACCGNTANATTGNAGGGNTNGGCNTGTTNCNNGCTTATAAAGNACATNCNNTCNCCGNATGTNCTCACGAATAANGG CCTCCAACCCCGGCAGNNCTNTCNGANGGCTCACCNATTCGAGAATCAACTTAGANCANAANTNTAGNCNTGANNNATTT AACGCCGGANGTAGTGGAGGTNGCCTCGTTTNACGANCTAGCGTCNAGTTTNCGGCTGCGNGCCNATGNGCCTGNGCGTA GANCCATTCNTGAACNACGCAACGTATNCTGTGCCCNNAAACGCTCATGAGAACNGTTCAGTATNAACNCNTCCNCCTAG GAGGNATTAANCCGTAGGGANTTANCCNGATTGAACAGNGTNANGGNNTNANTTGTGNACGGNTGTCCTCAAATNNTNNN GAGTGGGNTAACTCNTAAATACCACGAGACNTAGCTGNGCGCCTANACCCAACTCGTAGCAGNCACTTGNGACNNANGCG NATGGCANCNANGTNNANAACCTGGTNAGGNATTTTGACTGCGGNCGTTGTCTGTGGAAAAAACCGNNTTAGTGNGTGNC CNCANNCNTGGTTAGNCNCCGGTNGTCATTGANACGNACGNCCTAACGACNCAGNTGNCNCTGGTGGTTCNTCGANANNT TCGCGAGCTNCATCAGAGANCAGTNTACTCGAGTNGGCTTNTGTGCGCGGCNCNNNACNGTGCGGCTCCGGGNNTTTGCG TACTTTGGGCCGTTGTCGTCTGTGAGATCCTGNNGTGCNNAAGNNCAANNANNAGCAANGAAAGACTACCTTNNTATACG GCTNNNNNANAATACNCATCCAAATNCANCNGACGGAGGCGNCANCNTCCTCGNATAGTNNNTTANTTNTNATNANCANA GNCGNTCCCGNCCGNNCGNGNAGTGCCTCGAGTANTNNGCTCANAGCGGNGCNANGNGATGTGGCTNTTCTGTGTGGCAA TTGAAGNNTGTCGNACNNGCANNNCNCTANGGNGTCGTGNGNTTTNGNNNTGCNGANTGANCNCATGTNGGNTNCAGTGT ACTANATCNNCGTTGANATCNGGNNCAANGTNGNNCGCGGAGNTGTNTTNTNATACACTAAACTGNANTANNANGGNGCN GAGTTGNCTATGTGNANNNAATGGTAANNNCACNATNCCGTTTNANGGTTCNCTANGGGNNNTATGGATTNNACTNNAAT ATAGTNTNNAAGAGGTNNCNNTGATTGNAGTNACGCGNCNTCAATTCTNTCTACAGGGTCGCANGGTAAAGNTTANCCNC GATCTTNTACNTACCNCGTANCTCCCGTTCNGCNGAGGTCANTTCNNGTTCAATTNANGGTCCNCTTGCAAGNTGTNGTG CAACTAGCNTGCGCTAANNCACNGCNGATGANTACTTTGTGACNGCNNNNCAGTCGTCCACNTCATNCCCANTAGNNTAA TNAAANGATNGCTAGTTGGATCTACNATTGANATACCCGCACGTCGACAACTTTNCCGGGATTANTAGNCTGCNCTNAAG GCNATANNNGTTNACTGCNGNNNATAGNCAATCTTNGCTCGNTTCATNATTTTCAACATTTTAGACCCTNAGGAAGTGTC NGCACACTGNAAATNGANACNACCAGTCTNGTGCNATCANGNNATGNCAAGGATTCGGTTGNCGACGTNNGAAANAATNG ACCTNAGCCATGANNCCNTNCAGCTGCNNNNCACATGACNGCCGGCNNCTNCCCGCGGGATCNGNGTTNCTNNGGNNAGA CNNCNNCNTCNNCCCAGTNCAGNCACNATGAGAANCTCNTAGCGTTCTNNGNCTCAANATTCTNCCGGAGACNNNNNNTN TNNNTNTCANTAAACTCGNTTCAGCATTNGNGATNCNTTCNNNANGATATCANTCTCATNTTNANCCGNACTNCCTATNG CTCGCTNNGTNGCCATANTTGANACCTGCTGAAANTTTCNGCGNTGNGGCNNNACTGTNNACNANAACAAGATACCTGNT CACTGTTTGNAATANCNAGCCNNTCNTGGTCGTATCCCTNGTTGTNGTGGCCTACGANNGTTNGAGCGAGATATTACTNG TTGAGTCTNNTANGACTGCAGGTTTGNAGGCNGCTTGAGAGGNACAGTNNANGGCCTANNANCCATNGTATANGGNCNNT NCTGACNANGTNNAAANGTNNTCNCGGNAATANNTCGCGTCNACNAAANCACTTAGNGGACCTGNANTNCTCGCCATGNA NNGTTGTGACAGAGGTTGCCTATGCTCGCCTAGGGATTCCATGAGNGATCNTTGTNACNGGGCGCAGGCCGNGCGNCGAC ACNTCNCTNTCGTNTGCNCCTTTCNGTATNGTGCTAGGAANTACTNNAAAATCNAATGNNANTAAGTGGGGGCCTGTTNC AAGCNANANGNNCAACNTCGNCTNCTNNTATATGGCGCCCTCCGTGTNTGTGCTAAGGCGGNANNGAATTTATTGNTNCG TATCANGCNGTCCAGTTTTGCNNGNTGNTCCTCNAGCGTCTGANTTNGGGGCTGNGANTGCGTNCANCNTGGTACNCGGT TGCACCCAATAATGANCNGTNCNTTAAGAATTNATNAACTCNNCCANNGTGTATGNCTTANAATGATCGTANNNTAAGTG GACCGTNTCTTTTGGGCGNGNCNGAGTNGTCGATCACATANGCGCATAGNCCNTAGTCCTATTNTTAAGNTGTNTCACNN ACTANGAGTTCCCCAANACCCNAANGGGGANANGCNCCNNCNATNCNATTAAGCNNCACTANCANGTGCGTNGCGAATAG GCTATGCCNAGCTGCGNNCTNTGCACTANGATCAGNNNAAGTANGCTNNNCCTATCATNCGCTTTTTANCTNNGCNCAAA CNACTTTNNTNCTCAGCCNGGATGTCCCGNGAAAGNTNTACNCTCGCCGGATTATGGTGNTNCCTGACNGTACNTTANCC CANACAAACGNNCTNCGGCTCNANNNANNTCNGCNCGCATGCCCTNNGTCCACATTCCANNTANNTTGNAGATNANTANC CTGAGAAACGGNTCGNGNNCCTGCTNAANAAANCTTNGNCCCTCANAACANAATGCNGAAACAATCGAAANCTAGNTNAG ACANAANTCCGATGGNAGTANANTCGGGAGAATACNNCGTACTCAANNGGCTTAGATCTCNCATGCATGANTCNATCGNN TGCTNTNCGCTCNNNNNCNCCGNNNGTNCCGTNNNCATGNGANGTGGCAAAGACGCNANAAGTCNNCGCCTCGGNCNCNN ANTNGGTNGNACTACGTTCCCGNTCTNGCNGNTGTNNNCTAACANCAANANACANAAAANCCCNCNCCCCGACGCATACC ACNNCNATNTANTACNTTNNAATGNTGTCCGATGGNNTGATAAGNTAANGGCNANGGCGGNNTGCGNNAGTAGGGTNNGN CNACANTTNTGGATTAANTACNNCCNAATGCCNGTGGNCACAGTGANTGNCGGGANANNAGNTTAATCTCNNNCNTCGNG TANNTGGCACGACGGCNANCANTNNCCTGGNNNCGNCCNTCTGAATNCCTANNGGTCNGTCNNATNTANAGNNTGTNNTN NTCNCGGGANGAANTTNACTAANNCTCGACGAAACANANGATGTNACNACNTACTGNCACGANCTNNTGGTCNTNTTGGN GATNTTTTAACTCTTTNCCGAAGGTCGATACANNANGNTAGTGNCGNNCGTAGAACTGCGCATCTNCCAGNGCTGTNCAC NATNAANGNGAAAGATCCNNTAGNTTACAATTNTGNTCNNAGCTGGATNGGTCNAACTACGACTAANTNCCCNAAANGGA CNNCGTCNATNNATGGTTGNATGCGAAGACCATNNNCACGNAGAATGCCTNATTCTACTACCCTGCTAACTGGATCCGNN CATCGATCCATNATGCATCNNTATCNGTGCNATTAGACCAGTAGCCGCCTCAAANGNAGTGTTGGTANCATGCNGCGTAG GACCGTACTNGNTTACGATCCGTNATNNCGGGCTAATGCTCNTGANANCGTTAGGNNGNGGTGCCAAGTAGNTGCGNCNC NNGCCGTANTCCACCTCNNAGCNTACTCTTCTGCGGTNTTGNTCNTTCCAANNNTTAGAAAGNCNACTNNNGNGAANTGN GNNATGGTNTAAGTNCNAAATAAGGTAAGGCGNATNAACTGANNCTGATCGNANANTTCGCGNAAATAGCGTTAGAGGAA AATANTCAGGGATGCGTAANCTCGCTTNGTCCNNGCGGCTNNCCANAAANTNGANTAGTGNATTNNTAGANAAGNCNGNA CNTCNNGNAAGGAGGGGCTTAGTNCACGCTGAANNAGNCATNATCANNGNGNGNTGNCAGCGTCTTCGTNTGCATAAANC NGNGTGNCGGTGGGNCGANGTTGGANAAAGNNCCTCGCCGNCGCATATNCAAGNGGNGCATTTTACCCATATANAATNCC TAGATAGNCTTATGCNGCGANTNTTNGGANATCNAATACCGCTNGTGACCNATNCGNTGCANCGACTCGCTNACATANCC CNGAGCCCAACTGTNGTGNCCCNTAGTGANTAGCCTNGCTAACACNATTTAAACGATTTNTGNTCTACGGTGNTNCGNAT NAGCAAACCTNNAGACNCGATNNGCCGCGGCCCTCTGAGGANGCATTATTTACCCACCAAACCNCGCGCAAGGNCCACGA TNNACGCCCANGNTAAATNACATGACAGCTCNCTTATATACCGNTAATNCTATACCCNTTCTTNACNACNNNNTCGTNTN AGACAGATTNTNGTACNTGNNGGTGGGTNTTNCACNCTGNNAANNGGNNAGTTNGAAACCCNNNCNTCNNGNTTGANACG NNTGTACNCACGTGTNTCNNTNGAAGACCNCNTCCGCANNCNGGCGTGGTCGGAGCTGAAATTGGCTAACCNTNGTANCN NNCTGCCNGAGCCCCNNNACTGTACAACTCACGCACTGCNNCNNANNANATTTNANCACTCTTGTTAGANACTGCGATGA TGGNNATTNNNTTGTCNCAGACAGCCAAGACNACAACAACATCNGCTGANTAGACCNNNCNTCCNATTTTTGGNACGTAA GGNAACTCANTNTGCAGGNCTCCCACCNTNCANCGGCAGTCTNNGTGACTATGTACGCTCTNANANTANCNANCCNAATA CAAGTNGGGNNTAAGGCGGACCGNAGCTNCGGTAAATTTACCGCGCAANNNTCANCANANCCTCNGATNTGCCTNNGATC NCGCNTCCAACACTGATNCTCCTGACTGAACATTTATACTTGTGGGNTGNCCAGTTTGTANCTNNGTATCNTAANCGGAA CCANAGGNNGANTTCNNACNGGCNTNNNTCCCACCNTCNNAGACACGANGTNNATGNGACNTGGGGGNCTCNTANACTCC AAACNGGGTNGTTGCCTTTANNTACTCGANCGNTTNGCCTNACCAGANGGTATGANGTGCGCNCATNTGANNATTACGAN GNCNTGNNCGACTGGGGTCCTGTNACNGNNNNNNACTNCCTTTAAGCTGNCTNTTTGNNGANCCNGNAGCTTCTNAANAG GNNCGACNANCNGACNGGCGGTCGTCGNGCACNNCAGNNTGGGCGAAAGNCTCACCCNCTAATTGGANTGAAGGNAATCN NATANAGNTNTCNNAACCAACTCCACTNNNANNNGCANCGNGTACGGTGTGGCCAATNTGTGCNCACGGCAANNAAACAT ATNTNATNGTCGTANCGNNNCTCTTNAGNTCTAACCGACCCCCCATGTTGNCTGAGGGNTAACNANGNNGCACCCANGGN TNTNAGATCTTNGNCANACATAGGTGCCNGTANNAGTACTNCNTNNTCTGTGACTTTNNGGTGANACGTCGTNACTCTNG TCATTANTAGCATNCTCAGCCTAGANANACACGTATGTTANNACATNTGACGTCCTCTCCGGGNACNCTNAGNCCTGTGA GNCCTCATCCNTTCGCCNGCAGANTTTTCCTAAATAGCNNCTCTGTGGTNCGCNGNANGNACTTANAAANAGACCCGAAN CNTGANGTTTCGACCCCNTNGGACTAGGGNGNANGANTNGTGCTGCNTGTCGNCNCNAAGNGNGCTGNAACTACCNCCAT TCTANGACACGGNNTTNAGTGTTTANCCNGTTCTCTNNGGGGNCCGGCANGNCTNAGAANAAGCAAAATCNNTNGGTNTA TNCGNACNTNCACCACAGGGCNNNCNGATNGCGNNTCAACTCNCGANGTTCCNNTCACGAGACATNCGGNCCCTNTNAAG AGNNGCCCNNNCGNGGTTCAAAAACTACTGTATTACATNTANNGTTCGTGTGTTCATCNCCGTNCCAGACAGNAGANCAG NTCNANTNNTTCATGTTTTTAANACANNGTTNTATGGGGNCTANGTGANCCGGNNTTGGATTNGGTGNGGGGNCNGNGAA AANCCNNGACNGTGAGCGGTAAACATNNNCNANAGTCGTCTTNGCCTAAAGGACNAGNCNNGCCTGTCNAGCGNGNATCA GGCNCACANTANCATGCAACCNTTNGTAGAACTGAGNATGCNNCATCGTAACNTNCNANNTATAGNCTTGAGCTCTCNGC TGCGNCAAGNTCATGCTAANANTAGTCNNAAAAGCCNNAACGCCTNGATNTNNGTATAGGGGAANCACANCTGNNNGCNC GTCCAAANACNTGGCNTAGATTCGGTANNGNCACNNGTTTATNGNTGTNGTTAANATGTCNNCNACTNTGTTGGGAGGCN ANACAGACAACTNCGTNGGGANANGTANGGCCNACACTCTGANCCGNNTNCNCGNAGCNTCNTGATATANAGTNNGTANA AGGNATAGNCGTTNAAAANTTCTAANGNTTTGNTCACNTGTNNGCNAGACTNCGCCTANACCGTCANCTNNAGATATAAC TNCTGCGTTTCAGANTCAACCATCNGCTGNGNAATCNNNNGTACCGTATCNTNTGGTNACAGTTNCGAGCTTGNTGTANG CAANTCANNNAGAGNTTNNCGGANTGCTGGGGNGGCCATNAAAATCCGAANTACGGGNACACTTANCGTGGGNNCGTGGG TTNAGACTANAACTNAANNNCGNNTTGNNNNGGCNNGNGGACGGCGGANNCTNANTGGNTTATCGAACTCCCNGCNNCNC CNTGTTTCTNCGTCTGGTAANGNGNCGGANCGATGNGNGCNTGANTTTANGTNGCCTGCGNCCTGNNACNGGGAGNATNG ACGTTTTTGACTTGTNTACGGANANCAATTACGNNNAGCGNTTANAGNCGGNTTNNATATTTTGNCAGGNTTNTACNGCA GTNGCATATCNGTAGNNTGTAACTNCCNAACATANAGGNCTCNTCCANTGACNTAGCAGGGTGNANCGNTCCANAAACTA TNGGTGGTCNGCTTGNTCCACCAGNTGCTCGAGGTNNAACAGATTTCCCNNGGTTNACGTGGCNNCGANNGTATCAANGA CATTAAATCTCGNAGGGATTANGNNGGTGGNCCTGAACTGNNGCCNGCGGNATCCGCTATAGNNCGTCGATNAGNGTTNA CATACCNAGNACANNGGANCNGCNATCAGGTANGNCGNGNTCNANTATNGTNCATNTTCACCGTAGCNNGATCGCCGCNT GGATCATGGCNATTCCTTNCGCCTACNTGTNCGGACCAANANACTANTGACCATACNTNNAGCNGTNTAACCCANTGACC NGNTTNCANNAGNGNCCTATNTATNTNANNCAAACCGNTTAATCTGNGNCNANCGCTNCGNGGNCTGTGATACCGACTCN NTAGAANGCGTTCCANCNNTANTNGNGTAATANGCCTAATTCTTNGNGGANNTNGTANCCNCTATGGAAGNAGAAAGGGA GCAANNNACNGGTACTGCATAGCTGGTTGTACTNGNGAGANNNTNNGTNAANTNCTGNTCACTGCCCCTTACAGCNCAGN NTCACTTNTAATNANGAGCNNCTAGANAGNGAGGNTANNNGNCCNGANNNAGGCGCNTNTGNNATCGAANGAGTCGGAGN CCTNNAATCAGANTAACTCTGAAGCTAGCNTAANACNANTGGTANATNAGGGNGNTTTTTNGGACGNTTTGNTGCTCNAA GACCACGNGTGCGAGAACCGATNCCANNANTGNTTCNGNNCCNTTCAGCACCTTCNNCNANGAATCAGTTTTNCACGNTA TGNTTCNACGCTCACGNTCNNANTGNCTTAGGCTAGCCTACGGAAGTTNTCGNTACATCCGNGGTNAGNCTGNAGGGACA GTGCNGATGANGANACCNTNTNAAGTCANCNGNNTTNNAGAGNAANANGNNCAACGNCNNNCGATCNAGCATACAGCCAC GNCGTNGNCAACNTTNCGTTGATANCTNCACTNCCNTANTGTNNCNCNTTGCGTACCNANTNGNNAGAAGCCCACTTCGN NTCGGGTCCNGCTGCGGCANGATTANCACCACTATGCTAAGTATACCATTNTNCCGTAANGNCACNCGGGAACTGGCNGT CNNTCNTCCNAACGCNATTTNCATGATGTGCGANTTTTCTTCNNNGCCNTACNTCGNAACACTTNNAAGAGACTACTGAA TTTTGNGNCGTTGGTCTCCTCANNGNCGCCNGGNAATAGTCANGGCATAATNNATGNTNCNNCACANNGCNTANCNGGCT ANATCTCAATGCGACTNNTANGCTNTATTCAAGTTTCGCTNCCAACCGTTCTCNGGGTANAGTCGACNGCTCCGTTANAG GNTAGCTAACGCAAAGTCATCAANGNNAGGTGTNTTNGAACCNNCAGTGTTCAAGGNTGGTTCCNCCAAGNAAANGNGNN TAATNCNGGGTGGGAATCNNCNANNCNCGTTCNGNNAGCNTCAGNGGTGNGTNCTTCANNNAATGNGCNCCNCGAGCGTN NTNGAAACAACNNCAGAATGGTAANATNGNATTTGGCAGTNNAACGTGNCNCCCGGGCTNNNATCTNCGCNCAGAAAATC NCTNANCTCNGCNTTGTCTCCCCNCGCCCNGATAATNANATGANTNTAGTCNNCGACTTCNNGTTCCCGACATGCGAACA AAATGANGNCCCTGNCAGNTGGGTCAANCAANCATGTANNTNGCNAAACANNGTANTAGNCAGGTGNTTCGNNGNAGTTT CNAGNNGGATTCNTCCGCAGAGTACGTGNGNGAGCGCAGCAAAACANAGCNCCNNNCNNGNCTCNCTACAGAANAGNCTN CACNCTAATNGGATGTANNTNNCACGTACAAGTTACTGCCNATAATTCGTAGACACCCNCTCACGANCAGNTNGGGGATT NCGAATANACCCNGACCCNCGCTTCGTTNTNTNCCNTTNGGCGAGTCCNACAANTGTAGTGNTTGNCCTTCNCANGNGGN TCCATTTGNNGGGTGAGCACGTCACTNCGGGANGGNNNACGNGGGGGCNGGNTATNCTCTTTCGGANGNGCTANAACCNT TNGCNCNGCACTTGCCTGNANATCTGTGGCTATGNCNCANCNGATNNNNCTTTGATNGATNTNGACCGGCANTCAGNCNA NGTTTGNACANTAATNNNNTTNNNNGGNCGCATGCNCAATACTCCCNCATGNANTGNATGNGTTAGCNTTCCAGNCTAAA GNNNNNATGACCAGTCCGCTGATGNCNAANAGCAAAANCGTTNACTATTNCTGCTTGGGGTNNTNCATTAANCCCGGCNN NAANCGTCCACTTTNTGATNCGCTTGTTACACGCCANTNTNAGGAAACNNNGCAGGAGACTAGNNTNCCGANCAGNACTG NTTGNNTGATNNGNTTCACGGCCNTNNNGGTGTTTNCNNCCCCCCTNGTGGTCTANANCTNCTNATGGGTNNTNAGANTT TACGCNGCCAATCTGCCNCTCACAATTGCCGCACNNTGTGNCANNGANAGTCACGNNNATTCTATNAAGCGNNGCATTAC GGTNTCGTANTTCNTNGTNTNGNAGGNTAGNCGAGNCTCNNGNATGACGATAGNCCGCNACGTTACTAGTNANAANGGCC NGGNGTTNTACTNGNGNCAANCAGNGTANCGCGTGATCTTTCCAGGNAGCCACCATTTGTAACNCAAAGGCCAGGCGCGG TANACCTNCGGGCCTCGGGNNTCGTCGNGACTACGNTNGGGGANGGTCGAGTNGNNGCGANANCTGTGCNANCGGNGCNA GCATGTNGCNAAAGTTAGTGNCTTGCGATGAAACNNCTTGAGGGGGNAGAACTTGATNCCTTCNNANTNAAACNGNGCAT NCGCANTCNNGTGACGGGTAGNCTGTAANTNAGGTGANGGGANCGCNAGNNGCNGNNCTTNGNNTGTTNTNGNNCGNGCA GNNCCAAACCCGCNNGNNATNGCCANANCNTCGTGGNANGANAGNGAGTCTACTGGGAGTNAGNNACTCNGAGAGGCGCA ANAAGCTCTGAGGNGCNATGTANNCTNCGTTTNNTTAAGGANNACATGNTAGGACGNCACCNTGACNCAAGNANCGGNGG NATTCTNNCTCNTGNNNNNTTTNATATACTACGTCCGCATNNGGTCACNTGTCATCCTAAGCAGGGTCGCGNGTCGTCGA GANNGANGNGTTGNAAGNCGNGNATCGCNCCGCCNANNGNCCCTGNATGTNGTCCCGCCTCCAAGGTGTNNTTGCTNTCT CCCAGAANNNGCNAGTTGTNGAGNGNGGGGCCAAAGANNGANGTTTTGTNCGNACCTGANNAACTTTTAANTNGNTCNAN TCGATCTCCTNNTATGTTAAGGGATCNAATNANGTTCGTGCTNAANCTCCCATANGGACAGGGGTAGGTCGNATCCANTC ATNCGCGNCTNGTACAGNNAGTGTCGATCTNTATCAAGCNNATGCTAAACCNCTATNTCCAAGACCCTTCACNAAGGNCT CTGATCGTTNCNTNNCNNGACAACCNCGTACTTTTGTNGAAGCNATTGNACAATTGAGGCNCTAAGNTGCTNTNTNCCAN NANGGTAGAACNCCCTGGNNGCNGTCNCAGCNNCCCNCCTGNCCAGGTGCACGNCCTNGTTCTGCCCNNGACAANACATA AGGGGNAANACTNANNNANGNNGCGATGCTTTCTNAGGNAATTAANGNGTAGGACCCCACCGNGGGTNATATNACTTTTG ANNAANCCGNNACTANNNGCCCCCNCGGCTTGCCCTACCCTCNNNACNTGCGCCNNTACGNNCNCTGNGCNAGTGAGATT ACANCTGCCGTGATTTANCCANTAGTCTNGCCAATATGAAAATACNCAANNTNTNTCCTAGNNNNTGTAANANGGNGTAC TCGCCCGGNGGGANCTNNAGGGANGCGTACATGAAGNGAAGCTCNAGGGGCNTATANGGNAGNNNNNGNTNTGTANGTNT GNAAGNTGNCTACNNCCCGTCNGGNTGGNNGNNCTCCGGGAGNGGGNNACCTGTGAGATTNCGGTGNCTGAGAGATANCN CCTCNGNNCAGAATTGGGCTTGGCGCCCCTNAAGNCAAAANGCNACNNNCCCNNGAANGGTATTNTGATAGCGGCCNCAC GCGTTGTNNTCCGTCACANTGCCAANTAGCNGTGANCNNTTNTCCTCTCNCCGTTTGTNNCAGTATGACATTGNGNTTTC NGNTGNANACAGGNNGGTNATGNNCNGAATNANTCCTCGNNNAGGCCTAGNNNCNNTCGTTANCCTCCNTGNAACAAGNN TNGCNNNAGGGGTGNTGCNNACGCATGGNNNTAAGTTAGANTNCACNATGTGGTCGNNANTCTGNCNGNTTTCGAATNCT ACANNTANNCANTTCGCGTTCTCACACATGTAGNTCNNAAGCTACTAGTTTTTNAACAGTTCCNTAATNATAGNAGAGAN NGACNTATATTCGAAANTATGNGAACCCTNGAGNNAAATATTANNGAGAGTCAANTANGGTATNCAANGCTGNGATAGAG ANATTCCTNGANTCNAAGCAACTNGTACCCAAGCCNGACTGATAGAGGATGATTGACAGNCCCACNGTCACNTCTGNCAN GAANNGCAGGCANANCCATTAAGTNCNCNNAGAAAACTNATGGCNCTNTTNNNCNCGCGAGGGGGCNNNCATTTTATGCA ANCAGAANGAAGTAGCCACCCNACGNGCGTGTAANCTAACTNTGAGNNTNAAACTCCGTNCANTTGTANACGGGATNTNN AAANGATGNNTTTGNAACACNCANNTGTGCGAGCANNTGGTAGACCCNACCANACNANGGNAAGNGGTCNNGAAGTTTGN GGACATAATGNTTTGNTNCTACAGNCGCGGTNCAATGTNATCNTAATTCGAGGNAAGNGCGCANATTNGTATCGCCNTNG CGNTANNNCCGNTCTCAGNNTGGTGNGGTTGGNTNGGGTCGATAGTATGTANGATACANAGNTATTANGTCCCACCGCGN GGNNCTGTNCGCCCGATNTNGCNCCGCGGNAGCANNCTNCGGAAGNNGCNTCGNACTCNTATGCGACNCCNCNTNAATTA GACATATGNATTAATGGACNNNANGCGNGGNNCNACCNCAGTCGTAAAAGNAAACTAGTGAAAANNGAAGNCATATACNC ANGCTNTTGCCAAGTATCACAANGGACCTGNNNAGAAGAGGAGCNTCCGATCNNGANCATTTTGNCNGCCTTCNATANCC AGCAGCATTCANACACNGGCCCNGCAGANTAAGTNCNNGCNANCAGTGTATCTCTCTGTCTATACNCAGTANGAGAATNN GAAGTGGCGTGGTTGNATGANGCANGCANTGGGGAGCCCATNGGCCTNNCGGCNANNCAAGATTCCGATNCNNCGATCGT CGGCCCNNNCTCNTCGNCANCCNTGCGNGCTNAGTGNTGNAGNNGTNCTNCNCTTGCANTGGGTATACGCTTCGTCATTN GNGCCAGGGNNATTGTCGTNCNACGCTNACTCGGTGANANCCTANGGGTCCTCNCGATTCCTGNCAGNAACAGTGACNNN AATNACGATTGCACTCTCGCNNTANATCGNNGCANGCCGNANNGACTATGNGCGGGGGNNNTAGNAGNGACACGAGGCNN GTTNCNANTGCNGTNTGTTNNGACCAACCATTNTCGATCTNCATANCANNGATNTCTCNCNCCAGCAGGCGNTGTNTTAC CTCCGCTGGNCAANTCNTNATAGTTTTTAAACCTACGCTNNCGAAANNGNATACNTNTANANCACAANAGNTAGCNGANT GGGCTGNTGCGNTCNNCCTAAGCTCACNTACGGCNAAGCCCCNGGCAANANGTNCANNNCCNTCNTCNGGCAAGNTATAA GCATCAATCCTACATGGCGACTGANNCTAAGNANCNCANANCNCGNTGNTNGAGNAGATNNGNTCGGGNACTANGTACNN ACGNCANNGCGTCAGNAATCNNNCGAGGTGANAGATNTGAGGCAGCACNGATCNAGGCTGAGNGNCGAGGNNNNGNGCNG CCNNCNCNTCTAGGANGNGTAGAACCGNTCNNNGGCACANAGGTAAGGCNGAGAAGAGCACATCCANCCACGGNGCTTNT CGNAAGCGAGCAGNNAAACCCCCCCNACNNGCGCAANGGNTAACNNNATCTTNGTTGTANCAATTANTTNNNNNAATGGC TGACTNCATNACGANNTATNATGNCCGNTNTACNNNGCCCGTANGACNGNCATNTGTGCTTANCNGNGATCANGAGCGNN NCGGATGTGTTCGCANCTATCTTNCCTCCTACCCNNNAGANTTCGANGCCAGACTAGTANCNTCNNTGNTGNNGTCAGNA NGAGGTTAGANATCCANCTCNTGGGATTTNCTNATNNCTNTNANTNATNCTAGTTCGCATCGGCNANTTTCTAGNCTGCG CTATNATCATGCCAACANNAAATGACTCTAAGGGCACATNGCCGTGTTGCGNTAANCGCGACGNCTTCATANNAGAGNNA NAAATTNGGGNCGGGCTGTNNAAAGGTTGCTANGACGAGCNNACCNCGCNGANNNACANGCNAGANGNTNCTGATNATAT NGACTGCGGACATCNNTCTACTAATNTNNTNAAGATTCGCATGGATCATGGANCTACGCANAACACGNCCTTAGGCACGA GAAGAGCCCCCGCAAGCNGATATAGAAANTGTGTCAANGCTGTCTACGNANGTCGNCNANTATNCTNAATAAAGACCGTN TGTTTNNCNGNACANTATNCNNGTTTTNATNACTTGATTNCGNTNNCCGNGGNAAGCTANGTNGGGGNTTAAAGATNACT TNGTTCCGNCAAAGGAGCCCTTGTNGCGCTGTCGNNAGCCAACCTNTAAANTNCNAATGNNTGATNTCATCNNAGGNGNN CCAAGGCTGGTNGNTNCCCCNTNGCNNTNCCNGGCCGNTNTCAGGCTATNGNGTNNCTAATCNNCTGAAGCCNTNGNNGA GNGNTNTGCTAGCGGGACTGNGNANACTCGAGANNTNGNCCGGGAGCAAATTCNNACTATTCTNCCATNACAGATCAAAA GCANAAGGCTGGNGTGAGTCTNTNCTNNTANTAGCCGNGATGTGNCATCGTGCNTTTAATGCGAATGACCTAAANACNGC TNGANGCCNGNTTTGGACNATGGGCGTTCTNCTTNGTTTGCCGCNNNTCANGGCAAGCTNGNNTTCGAANTGCTGCAGAT AGTANCCCAACGTCACTATGTNAACGNNANTGCNCTNTGTTTAGCGAGACACTGNACGNCCNCAGTGCGACATNNTNACC TANCCAAANAGGTTCTGNTGAACAAGGTGCTANNTTTACNNCNTTTNTGAATTGAAAGTTACAGGTCATNTTTANGNAAT GATTATTTCGGGNNAAATACNNGAGTATACTGCATAGNGNNCGTTNNGGTGGNGGACCAGNGNANAGCACACGNTTTGAC ACNCNATNANGTNCGGCTANCTANAAGNNATNAGNTAAGNGCCGNCACGTNAAGGANNCNGNNCANGGCGCGNCTTTGTT GGNGNNAAGNCTGTNANGCCGNNNNACAAGGAGGTATTGGCGCAACGNCTTCTTGGAGGCAGCAGNTCNCGGTTTNACTT CCAGAAGCNCNNCNCCGGCNGNGGGCGCCGTCNCNGCAAGAACTTGNGNTGTCTAGNGATNTANGTNTCNCCNNAGTNAG CACCGAANCAAGNGGNNCACGCANTGNNTGATCNCACNTTTTATTGCNTGGCANCGAGTTANAGTTNANTTTTAATAANG NNACNGNTGCTACATAGTATATNCNGGTTACATGNANTNTTGNCGCGCTGGGNACNTTAATCNAANTCAGGATTNACANG GAAGGATTCGTANANAGATTCGNTCTGTCTNNTTATTCNGNGGCTNTGGTATTNNNGANGATAGTCCNNGNGTTACCACG TATAGNNGCAACCCTCNATCCATGGNANNAGANCCNTCTCGATGTAACGNNACTGAATGCNAGGCTANACTGTCNTCNNC ATGNTANTGNAACNANCNTNTATGCCGNTGACGANGTAAACGAGTAATTNATANGNGNNGGGTTNCAAGACANNGTCAAG GTTTGANNTCGATNGNGAAGACAGCCGNTTCGNCTAANCANNGGCNTTCTAGNGACATGNCGTTCNCATAACNNCATNCG GCCTTAGANCGCANANGGCGTAGATAACCGGCANGCNGAGATTTCAGGANANCTCGTTNTACGGCCCNAANCCNAGANGT NGATTCCNTGANCGACCTAGNGCGTTANGTGTGCCCAGCTNAAANTANGNCCCTAGNNACNACANATCTGGCNACTTTCC GGTCNAGNAATCNCCGCGNCGCNTAGCCGGTNCTCGNCTACCATNAGANTACNNGAACTCCGATTNANAGTAAGNNGCNC GCNATNAGTNCGGNNGANNCGATTGGCACNCTATTATNGTTNNNNCGGGGATGTCAANNAACCCGCAAAANGTTAGANGA ACAATAGACGAAGNCGGCTAANGGNTANCCGATATCCCNCGGNCCCCAANCNNGCTNANNATNTCGCGGGANTCGNCGNN CCGAAATNTGAGAGGCACCAAGNTGGAAGNAGATCGNTNGANGNTAAGTGAANTCGGGCGTGTNGTGAAAGCNTANTTNG NGNTAGCCTTNACTCNCGATANCGTNCGGTCNAAGTATTNAGCGAGGGGNGCGNGNCTCCNAGNCTCNNTATTCGACCCG NNAGCNCNNTGTCNTCACNTGAGTTNTCAGNNGNCAGTAACTTCTAATTTACNNGTTGANTTAGTGTGTTCNACGGANTN GCGTTNNTGNCGTCCCNNANTTCGTNGGAGGCGNGAGANGCNTNTCNNNAGCTGGNCAGACAAGTCTAGNANCGTCTGTG AAAGAAGAGANGGTTCCNANTNCNCANTCATGCTTNANGNAAGGNANTTNNTNATTTAGGAAGGCNGNTNNANAGAANCN GAGNTNCGNGTAGTCCTACTCNACNAGGNCGATCGATCGGTNNACTTGCCNGGTGNATNAANCAAAGAATTANAATGAGT CGGTTTCCCTCGANNAACCGTCNTGGACTGTGGNGCTACGGGTCCTANATNTCNGTGNAAGCATGAAGTTCACTTGTGTA ACACGGTGNTNGAGAGATCATNNCTAGGNCATCTATGCTCGTNCGTNTAAAGACACATNCNNAGTNNACCGTANTTCANC NGCCTNCTNNGGGANNGTATGNNTAGTNAACTCCANACNNCNGAAATTAAGCANTAAGCCANACTGTATNTGAGTCCANC NTCCGANAGTNCGGAGTNATTANNNGCGNGTNCAAANGNACNGCATGCAAAAACNAAAAACNTNNGCNNAGCATAATAAA GNTTTTCGAGTTACGNGNATTGNTTGTCCNANTCGNTNCTATAGNANAGGGCNANAGNGCTTNGNCTGTGATCNGCAANC NTGTNGTCCGNTGNTCACTCGANNTACCAGGCTGCGGNCNAGGTNTACGGTTNNANCNCAGCACGCANTNCCCGCGTTCG GAGNNACNGGATATCCTNCGNGNNGGACNTANACGGNTNGAGGNNNAAATTNANNCCCNCGTTNATNCCGACNGTGNNCC AACANGGANAGTAGGGTAACTTAGCGNCCNGCAGNCTTGNCNGCGGTTTANTTCCCACGNGTCCANACNANTGAGACNNG GACNNANAANCAANAAATNAGTGACNNACAGGANGTGNTCATCATGAATAAGGATGNNATCGNCTTTNNATGNTCAANCT TCAGNTNGATTCAGCACTCAGGGAANAAACATGAGTANNNANNAATCNCCNGANANTANTATNACTTTCCGATGACNAGN NANCACAACTNGCCCGNTTCGTAAGCTGAAGATGCTACCTAANCTCNACGCNTTANTANCAATGNTACTTTANANTNCTA CGGTACNTGGGGCAAANTCNTATGGGGTGTCANNTGAATCANNANGNGAGTGTTCGTNAGGNTTTNTATTTAANGCAGTG TNGNGTCCGANNGATNACNNTATNGTTACNGGTANGCGGACTGCANGCTNANATCATACCCANAATGGCCNACCAANCNA AANGGATTNGGANTCNGGNNANTTCNCCTGGTCGANACACGNAGCAATCCGCNAGTTGACCNNGGAGCAGNATCCTNACA CNACGAAATCGCAATGNTGTCNNTAATAGGANANTTGGTTCNCATTTNNATGGTTNNCCTACCANCCTTGGCTTAGCACA NCGTTCTGANTATCTACATTTNGGGTTGANGGGNCGTTTTTCNGTNNCGGNANCTTNCNACCGNNNATANGGTNNGANTN ACAGCCCAAAGAAGATCTCGNNCTCCGGATCCGNTGGGAGGACAANNNCNTCCCNANCTTACAGNNTGCTTNACGCAGCT TATCGANTATGTAACANNNACNCTAATGNTGCTNCGCTGNNTGCAAGANGAAGGTACCTGGGCNTCTCACNANGACCTAC ATGAGNCTNCGATTTGACTCANCATCCTANGCTCTACACGCNTNACNTAAGTCGNGACAANNCAGGGTNGTGTTNGNCTG NNTAGAAAGNNGGCNNAGGCNATGGGAGNCTTNGNTNTCNGGAAAGTNCAANCGTGTTCNNGCCGGNNATCNNCGCTCCG CTCTAACCACCNNCTNTTNAGANNCGCCNTCGGGTGTCCCCANTGGCNNNTGNATGACNGNTGTAAAAAGANCCANGCCT GNTTCCTGTTNGAANACAGNACCGTCATGGTGGACTNNCATCCNCCCTTTTTNNGGACNNTNTCTNNGCNNGCTAGAATA CNTTAAANNGGCTTCNCTANAGGCTNTGGGNCNNNATAANGGANTNTTTNNNGNNTNAANNANGACGCTTCAATCANAAC CAATTCTCANGACNACACTNCAGNTAGGCNTGTNACTCGCTGCNNACGNTNCACCGCAGAGAGAACNACTNNTNGCTTTN TTAAATNCTNGANGCGTATGCCACGACTCGTATNNCTTGCANTNGGNTGNGCNNTCTNANCAAAGTACCGACGGTTNTTT NTTNTNNCGNGNGATAGGTGTCNNAGCCNNACTACNCCGCTCGGCCGNGCNCGNCTATGGCAGTTNAGCACCAGCTANGC GTNNTCGGCACGCGGTNNGTGCTCACTATNCNNGTAANCNTCCAANCCCTGCAGTNNNGANCTTTACTAGGGTCACCNCN TANNTAGGGGNNAAANGTGGGCGACGNCTCGGCTGCATAGTGNTCGANGAGCCCACCAAAGGTTGTAATNTTCCGNTNCT NNTAAGGGNTNCCTGNTGCCAAACGCCNCGGCGGATCGNATCTACNNNCNANACGGGNGGTNCGGACTGNTTNCCNAGNT ATACGCCCTGAANANAAGCNANNNCCGNNTGATNCAAGNGGANNGNCNAANTANNCAAAATGNCTGCATNGGTACAANAG TCCNTCCAGGCCANGAATNGGGCCGNCNTAGNNTGACTTTCGNNTNNNGCNNANTNGNCGGATNTGTCTTGCCTAGCNTT ATTAGTTAGTCANTAGTGCNNTGGNGANAGGACNAGGTCNAGCGCGGCCANGGTGAANGTGTCATCCNGANAGGAGGGTT ACTAGACTATNGTTAAAGCANAGANCAGANGAAGGANCCANGCAGGANGAAAGCCNNAGAGGCNGNGGCTAGTNCCGAAA CTTTAANGNTAGGCTNGTCCNCCCNNTGGATCGANGNATNCNCNATACNTNCATCNCTTCNTAGNGGCAGCATCNGCCAN GTCNACCCTAGAATNTANTNAGCTACNCTCAAGNCNACNACNNTACGNAAGCTAAATGGNCTGNTAGCNTTTTTCCACGC GGTANGCNTAACCGGGAACTNGGTGGCCGNNGTANGCTCCTGNTTGNCGGAGAGAGCATGTCCCGNNCGCNNCTGNNCNN NNCGNTNGANGAANTGCCAATGGNCANNCANAACGNGNGCTNATTNAACCACNCGNGNGAATCGACCCNGTGTGCCANTT TCCTCGTNNAAAGCNTNNCCTTGGTNGGTGNCTTGAANNNGGAGTTNCCATGNACGAATTTGNAGCAANNCTGCNNNGTN ACCANNNACTTCAATTAACNNGCNGGGNCANGNATGNNTCGCCNCNCTTTAANCNTNTNCCCAGGGAGNNTCGCGGNACN CCACCTGAGAACGTTTAACGGANNCACNNACNACTGCCGNANNCGCGNCGNGCACGGCCTCCCGCCTNAGGAAGTTTGCA ATACNNAGCNCCGTACNTGGNNTGAANTAGGTGTTCNTNGTGACNCAGAGTAGTATAGTTGTNGAANATCTTNGTNANCG CTNANCGACGGGTGCACGNTCGNGNCGGTGATCNTNAANNAGNGTTCAAGAGNNTAAAGGCATNACNGTTTCAATAGNGT NTGGNGNCGCCCAGNCAGTTGAANTNGTGACTNTCGGACTAATGTCACANGNGACCCNGACNNTCTCTTCNTTANGTATN ATAAGCGGAAACNCNATGCCGAATNAGNTCANGTCTGCTNGTGNCAAGCTTAANCTGGCNGGNGANAANCTNCGAAGTNT TGGANCCNNNATTACTTTCCGGGAAGAAGCCNANATGCGCAGNCTCTAGTNNTGTCNGGCGAGCTCNTAATGTCCAATAN TTNGNTNTGGCATNGCGCNNTGAGNGGNNGGGNTAGTNCCANCNACGATANNTGTNAGTNTNCANGGATCTNGGGTTCTC ACTAANAAATCNGNNTTANCAGAGNANAACTTGNGNTAACTGATNGTGTNCNAGCGGNCAAANGACAAAACAATCAAGNN AAGCCTAGNGTANCATNCTNTTCACCNGATTAANATNAAGNGNGCNATTCTTNNGAAANCGNNAGGCTAGCNTNTNATGT TGCNTCTNNANGCGTTAAGGGGNTTCGTAGNTACTGCCTNACTTNAGGTCTCCCGTCACATACGCCTATGGGCTGNACCT GNTGNNANGNCAGNGANTCGGATANGNGNGATATAANNTTTGGGTNAANNACTCANNGGACGCGCTACNANAGGCNATCN GNNGAGCNGTCCGAATTCANGAGCTAGACCAANCCTAACACGTGCCAGCNAAAGTCANTGGGATGAGCACCCTGAGTNTC TAGACAATATGTANCCCNANGGGATNATNCNTGAACATCNTGCGGNTGCATNGGCCCNTGCNCGTNNNGATCNCGCATTT NCNTTGATGATNAGGNAANCNCAAGGTNTNNAANGNATNCNNCNCGATANANGTNTNNGTNTCTCNTCAANCNGCNNNCC CNTANNCCGCGAACNNNNANATGGNNNNCTNTTANTATNACTNNNNNGCTNANANATCAATCGTNATCCAGCANNGTACC TGCCNAANNNNCGCGANTGNANNACNAANAGNGTGACTNTATGGANTACNGNNNGTAATAGTNCTGCATTTTCGGGCNTC CCACGCNGCAGACTTNAGTCAANGNCNGGCACTGCTCANGCANTACGTGGGTNGTANNACNAAGTAATAATNCTGCTNAN TGTTGCTTGGGGGTNTNGCTNGCTATCNGAGGAGCCNNAGCCNCGTGATTACCGGCAGCTANTNTNCGAGNNNCTTTAGG NGGGGTCNATNTCNNNTCGAATCANNNCANTANATANTAAGTATTNCACNGACCCGGNANGNACAGCCTTNNTATNNTTG GCTACATTCAGGCTGATNCCCANCANCCCNACTTTANCCCGGCNTACGCANGGTAGNNTCATTTTTNNNGGCAAGCGTAA NTAGNGGAGGCNNGACGATGAAGNGCCGTTNGGTANTAGGGNNAGGTGNTTTTGGTTCCCANGNTCANNTAANAGTTNTT NGTCCGGATGTNTTNTANGNAGAGCANCATGGGGCNNANNACANGTNANNCCGATGNCTGTANTNAGNNNAATTTGTCGN GCATANCCTANGGTCCCTNCCNNNACCCGGTGNNNAANGCCCCNAATCAGAGTCNNNTTNGCACAAACTAGTAGTANTAG CTNGGCGNNGNGAAGTGAAAGCGCNAAAGNNGTCNTCCGACCCAGAGNACTGCCCGACAGNAAACCTGTGCCGCTCCATG ACNNTNTTCACGCNTCATANTATACNGNNTACNATCTAATGTTCATNGCTGNCTGNCAATCCACACGNTCNCATGCATCC ACAAGTNTACACTNTATGANCTTATNGAGCGNCGGCATATCACGCATNNNNNCGCNAGNGGCANNNNGNGAGACCGNNCA NTGNTNCCTNTCNNNCCNTTACNGGACGNTGACATACNGNAGACNATAATTANCCTCNTTGCAGCCCAANAAGGNATNAC CAGCGAAGTGTGTTNACANTCCGCTTTAGNTCGTATNTCGTCNTGTCTGCNGATNGACTNCGCCGNACAATCCNNGGCTN ATNCCGCGGAAAACCGNCTATCNNCTTTNCGTGCTGNTNGCTCAAANNNCCGNACNTNCNNCGCNGGNNANGACNTATTN TGACTAGANTGTCATTAGCNACNCTTCTAANGCCANNTNNGTTTAGTTCGGANANNCGACTTANATNTACGATGGCCANA ACAGNNCCTACCNNGNCANTNTGTGNGTCTNCCCCATGNATNNGGAGCANNAAATCNTCCCGNCNNTCGCTTGAGNTGGN GNNTTANTACTNAANAAGANNGTCCTTCNNATACAATCGCCNAAAGCGCNGTNCANATGNCCATCCTTCTNTGTNTCCAA NNCCCCCGAAGANNTGGNCAGCCATGTGNGNNTCNGCGCTAANATAATGTNGTTTGCATCGTTTGGAAGCGGATCATGAT AAANTGGTCACTACGATGCTNGNNACTNCGGACNCGCANCCAGNTACGAGCTANGTCGACTTTAGTCAGTCCAGNCTCTT CGCTTTNTCCCNNGGTNCGANCGTCTAGCCCTNTGNCGGNNCANANATANNAGCTAACCAGCGGATGNTGGGCACACCCG AGNCCTGTTCGCCTCAGTATNCANTCGNNCNAAATGTCNCACAANCCCANTGGCTTTATCNGTNGCTNCNCTCTAGNCTT TGAGTNCTNCTCTTGNTCNTGGAACNAGCNCTACTCCCTNGNTNTNNAACNNTGAGCGNATNCANATAGAAAAGTACGGN TGATGTACGACCTCCTAAACTAGCCCCCACTNGTNTGCCNTTGTCCCNCGAGGTCGNCTCANCTCGATANTACCANATNT GCATTCCCTTTANCTANANTANGCAGNCNNNCNTACGTACCTNNAGNCCANTCCNGTNATAGNNGGTGGCCTAATANATT NCATCTNACGACTAACGNCCGATNCNGANCGNNATCNGGTAGCGATGCNGTACCNNGTCCNGGGTCTGNCAATGTTANTT AAACACCTCNGGNCCTTNNTATTNAGCTNAATGGCAGTNNGCAGGNTGNGNCNCNTCNNGGCTCCACNTTTNTTTCCNAC ACGCCGGCTTGCCCGNAAGGNGTGCAGTGGCGNATCNAGCGCGNTNACTGGTTTCGGTCATTCAACTANGACNCTCACNT GTGANGCAATTAAGCCGGGTNANACTAAAAANNTTNCCTTNAGCNNGCAANTTTNGAGNTNNTATGNGGCTACGNTCGGC NCCCTACGNGTANAANNGTTNAGGNATNGNNTTACTTGAGANTTAGGAGTTAACGGNNNAGTGTGANTGTAACNNTGTGN TTNCGATNTNGTTTCNTAACNNGGCANCATGACAGNANCTCTCTAGNGNTTTTTCTGNTCNNGCAGTGNGTCCTANTACN CAGCANAGGCATGTCANTNCAAGNNANTGNCGCNANATTTCCCTCANTACGNCCGGTATAAACGATCAAGNNCTGTCTGC TATTCTCCTATCNGTANACNNGTATAANTGGTTAGNGNTGAATNCTTNNTCNGGTTNANGACTNNTTCGTTNGTGGCCAT AGCTNAAGCTCCNNCTNNCCNGTGNNCGATNGAACGNGATTTNNGNTAATNNCTNGNACANGCAGNCNGATNTCTGCTGT AGGCTNCAATGCTATNGAAACAATGATGTNANTANAGAGNGCNTACCTTATNGNNCAGGGACGNNTNTGANNGCACTTGG GTNTCAGTCGCATTTGCCNGTGACGCNGCCGGGGGTNCGANNTNGTNTATGTNCNCNTGNATCCTGNNANTNNATTGGGG NTTCAGCAGCCCNTGTNTGNGTNGGNTCNTTAANCAGATNTNNCANCCCGGCTGGTTANAGGACCGTNGGNTGTAGANAT NACGNNGCTCACCTCNCTTGTGCGACGTGANANAGCAGGGCNGGCGNACCGTTTCATATGTAGGNTGTGNNAACTGNATG ANTATNNGAGATNTGTCTGCGCCCGCTGNCTCNGCNACCAATGATNGAGCCTAAGCNGANCATCGGCGNTTCCNTGTTCT NNCAGCNNNGCTTGGTCTNCCNTCCAATGTTACGCATTCTAANCGNTGTCAATTGGANNCAACAANATNACACNTCTNTN AGNATNCGGNNCGNCGCGCCAGTNNNTGGGAGTCGNTATCCNTCNGNNATNCATNTCCCAATAANAAANGNACTGTANCN ACNNGGTATNCTNACTTGNTCGTCCCGNAANACGCACCCNGACCGTAAGTGNTACNAGCGCNNGCGACAGANCANAGTGN TTNCGNAGCNAAANANNTAGAAGANANCCNGTAGANTTTTCCNCGATANNTNNGCACATNNNGTTNAACAGAATANCCNG NCAANNTTNCAATGGGTNNCAGGNTNCNCATACCCAGTNCACANAACCAACCCAGNAAANTGCTTAGGTGCNCATGTGNG GAGNGGNCTAGTGTCATGCGCTNTGTGCTCNCTGTANTGNGNATNACNGNTTGNTNTCGANTTTNAAGCTCCNTCGNGAT AAAANGAGCGTNGTAANACCGNTCCNCAAATTTGGCTNNNACNACGTGNCCNTCACTGACCGNNGCGGCNGCNGCTTANG NCNGCATTGCGCTAATANGNCCAGNCNCNCCGGNNCGCNTNNTGTNNCANTAACAGCAATGNTNTANGNATCTCNATCAG NTANCCCNATTTTCCCCGGCNCNNATANNGGGGCNATTNCNNTNCANGCTCNTTACCGAANACNGACTGNAGAAATNGGC GANNANCCGTNGGANTCGCGNGATGANAGCTANAGTGAGANNTNGATGTTTNCTGCCACGTAGAANTCCAGGAANGTTAC ACCCANNCTTTTCACGGGTTTCCTGGTTATNATCACGANTGGANAGCCCTTTCTACGTNGNCNTGACGGGNTNNTCNNTN GNTTCCCAACGACGACCTGNTTGACGCNCGCGGACGNCCCNCCAATCCCGGNTNTCAGATNNAGANNTNNGGCGGGGCTG ANATTNNNGCNGAGGNNNANCNCCGTNNGTCAGGNCATNATGGGNTNCGCANANTTCACCNNNGTGGCAGTNTTNGCGGC NGGGANNGGCCGGCCCCNNTCTAGACTCTTTNGCTCAGGCNAGCACNGCCTCANGNNNTTNTAGGCCGGTNAATNNTCNG CAAANCGGTTGATNGCNAGCAAATACTAGANGANTNGCCCGGCTTACGNNNNCAATTAANTNTAANCANATNGATGCACC TTCNGTTTANAATAAACCTCTTCNNCNGACCCGGAGANGACACGGGCAACACGNNCCCAAGTGACANGGGAACATTATNN AANGCNTNGTTTNTGTTACGNAANNCTCGTANTTGATCTAAAAAGCCNCGATGCNAATTNCGCNNNNCCNACTTGCNNAT TNCCATANTACNTGNGCTGNCANTNATNGTTAACTNAGAAGGTANTCGNTNNNNNCNGNGCTTACAGNNTCNNNATCGNG TNACCCTTANNAAGAATCNTCCCTANAGTNCGCANACACGTTCAAATTAGCGAAACCGNATTTCGCCCANTNCNTATNGN AGATCCAGTATGGGNTTCCTAGANGCGCCCTGGAACGCGTTGNANAGCGCCACTACCATNGTCGACCCTTGTCCGCAATG CATATNTTCCGCAGTCCGACGCNTCTCATAGNCNTGACNGNCNTCCCACCTGATAGNNCTANTTNACCCGTNNNTACTTG GCATNGNNCGTNGCTCNNACCACNAGTNTNAGTACGANTGNGGAGATNNNCCTCGTTGGTCAGGTANANGCAGCNCGNTG ACCAAGTTNNTNGCTNNACGACCGCCCGCNCTTTGCTGNTCGCGNNNCCAAAATCAGACTNNGCCCNGTNNCCACANCAG TAANACAACTNAGGNGGGGNNNTANCTAAANNNCAATNAGGGTGNGCGAANCTCGCTTTNAGAGTCGNTCATNGCACNNT CCNNCACNTNGGATCCATTTTCCCGCTNACNCCANTATCGCANTCGGGGGATGCTTNNANTCNTNTTCNTNGGNAGATTC CCNATATCNTGNNGAGTNCTACCCGATCNCGTCTNAGACNNGNGCNNAGNAAAGANNGCCGNGANACTNAAACCNANNGN TGNACCAGCTACCAATATACAAGTAGTGANCNTGACTTAAGNNTNCAGCTNACATCTCNAGTGAGGNNCAGNAGCANCTN TCCNACAGGCNNGGNNTTNGNGTCNCNGCATNNGTGANNGANTCTGGCGNCTGTAGGAATTGNNCCTNCTCNTANTCCNC NNCANNTANCGGTGGTATGTCCTTNGTCTCCNTCCNGCNGCTTGGTCCATAANNATTGCATAAAGAGATGGNTNNTACCC NNCACGGNGCNTNTACNGCGGNAGACCGCANNTCTGCCCANGTNGGNGGGCGAGNNCGCAATNCCNNNACGAAGCCGNCN CTCCTTNNACNNCTTAGGNAACTCTTCTNTNNNNACAATCCGGNGACATAAAGNTNGNTCANTNTAANCGNGACCANATA GCGTCTGCNGTGAGGGCGGTCNTCGACCGNTCATCGTCAGAGNNCGANNAGAGGGAAGNCTTCCGNCATANCATTGTNGC AAACGTACTTNATNNTTGGGCANCANTTTNGTGCNGCNGACTCCCGNAAACCANTTACNGACACGNTTNCNCCCNCCCNT TACCACNTCTTCNTGGANACANTNTTCGCCGTGCCCGGNTTTCGTGAGTATAGAGCTTNTTGTNAAGCGGCCCTACNGTA ANGGATCGNTCNCNGNGCAGTTGAGTNTTAGATGTNNCAGGGNGCNACTCTCACNNAANAGCACGCGNGGCTGTTTTNCN CTGCTCTCGCTCGNTCCNCNNCACCNANTTCCGCNTNGNTTCNTAGTAAGNCNNGANCCANCCTTNAANCGAGNNTNATA AGTCAGATNATTANGNNTATGCTCCNNTCNNTNACGGGNNCACATCGGCNTNGNGNTAANGTATGCGAGCACTCTTTTNC NCGCCNCNGNGAGANNNCATGGATGAAGGTNGTAATCNCAANTTCGTTGCNTCTGNATTNACCGTTANACTNANNCGGTA GGTGACNCNTAGCNTCNAACATATATNGTCGTGCNTTNTGGCTAACGNNTGNAGATCTCNNANANCANCCACNCCTCCCT NCCCTCCNCCACNCTGCGTTAAGCCAGCNNNGGCGCTTTCNGAGATTNNNGNNCTTTAGAGCATATCACCGGNAANNTCT CGAGGTGAGNNGCGGGGGATACAAGNCNTNGNCNTTGAGTNCTTTTAACGAACNNNAANNNTAGNTNCTTGNAGANCTTG GNTTCCGGNAGGAAAGGTATGCGGNTTATTCCNANTCGTACGCTGCATTGGNNCTCCGTANGCGTCCGCCTGTGATCGNG AGGTAAAAGGGTNAGTNNAGNCCCNGCCCNAGTTCGGGGCNCGATGGTNTGANTTACACTGNNCCATAAGTNCANTNAAG TGTNCNGGAANCNACGCGNNGGCCNAAACCCACANNGGNNGTGATCTNCGCGCCCACTATTTACATGCTCCCGCAACTNG NCACTNTCGAACCCTACNNAAGTTNCAAAACCATGCCTCGNCNGANGGANATGNTNGCGCNNGTAAAACCGCTNGAACGC ATGNAGAGNANCTTGAGTCGGAGTGCCNCNAGGNATCGCTANATCATCTTNNGANTNCNNCCNNATAGCTTCTAAATACC NTAGTAGCCGATNTNNNNATGGTCCGNTGACANGAGNGNNTNACCTTAGGCNATCCTNGCGCGCTANNTCNTAAAGCGNN TNCNCNTNNATGTTTCGTNTCGNANNGAANNGGAGGGNCANCTANCTCCTANGCNANANGCAANNAANNTAGTGATNNAT CANANGNAGATNTNGGACAACATTGATACTGGGGTGGCCTCANTTTACCCGGGGCGNCCCTANGNCGNACTNAAGTTGGT TATCANTANCNNTANAGANGGCNAGCNGAGNGACGACACANAAGCTCCTANNTACAATCANATTCNAGTNGGGCNGGTTG AGTGGTANTTNTCCTNTCTTNTNAACTAAAANACANCATCCGTGCCNGTGACNNNTTCTANANNGTATGTTANNNCNANN GGATTCANGTTNANGGGANACGNANCCAANNCACCNGTGCANCCGTTCAAGCTTATAGGGCACNTCATNNTTGGCGNCTC CCCTGNCTNAACNTATCTNNTNTTNGANCATNCTANCGANCGTTNAGCGGAGGGGCAAGGGACTGGAAGTNNATTGGATG NGCNCTNGTNTCTNCCAGAACGTCATCNCACTAATGCGAAAANCTNTNACTNTTCCTGCCNACCTCNNCTCCGTAATGNT AGGNNNANGACCNGGGGCCANNTNNNGGCAGNACCTCATTTACCCNCNGTCAGAGTTGTAANTTNTGTGCCNGTCNCNCG NAGCTGGANACGGGGGTNCGGNTCTGATTCTATNGGCNGTNGGGTAGNANNNNTTANNANTGNTNTTGNTAAATTNCGNT GGGNNGCCNNGGTNGNNTGNTCTGTCTTNTCCANTTACNANAGCGCNNAANAGATGACCNTATNANCGNNTCNNNTATNC ATCCCCNTCTGNCNANANCGGTACAATCGNTGANACGCATNCANGTGTTGNCCTTGGAANAANTGGGACTTNACTNGNNC GACNNCTAAANACGAAAGCATNCTCCTANGGGGGGNTNNTTGGTGANACGTGGCCTNACCNGCCATNCCCAACCNCTNAG CNTTGTCAAGTNCGNCTATTTAAACTAGNCNGATCCGNACTGACCCACGTNTTANGACNNTCNCTTATGANACNANNTAN NACNGNACCACATCNNCGNGAGATGTNTAATTGTGTNGANCCGNTNNGTCTAANGTANGCAGNCGNTTCACNAAGAANAA TANCACGGTCAGGNAGNTGAANTTCNCTGGCGCCCCNCGTTCNGGCNGAACCAATANGAGAGATCTNANNCNNCAGGTCN CNGNNGTACCGANTNGNGNNGTCGGCNAAGGGANTGCTATCAANCNCANNTTNCTTTTGNGGTTGANGACANNGCTAGNG CANCNCGAGGAGGTAATAAGTCGGGTGTGNNGTAAAGCANCTTNGNGANNTTNTGNCACCGACANNTNTAGATGAGTCTA TAAANTATTNATNNCNNATGAGTANCTTCTTNGNTNNTGNTAGTAGGGGGTGTTCATTTATGNGGTGGCGCGGTTAAGCC ANGAAATTNGCAGCNATAACTAANACAACCACATNTTTATGCGATAGTCGTTCCNCTNGTTNCNGGGCTTGCTAGANTGG CCCNNAAATNNNCNTTATNGACNNNGTTCTNGGCNCCACCCTGTTGTCNCGGATNGTNGTNTTAACTAGACTANNATTGC TNGANACTCTCGTGCTNCGNNNCTTAACTTGCGATCGNTGNGGGACNAGTACATGGGATTNCTATCCNNCTNNGAGANCA ANTCATNTGANGATGAGACNCTNTTCTGNTAGCACTTACGACTCNACAGTTCTCGCAGTNACCNCNAAGTCGNCNGGCGA CGCNCAAGATGNANTAGNTCATACACCCGNTTAATTNGTNTCGGGNTAACNGGTACNCCGATNGAATTNANNNCAAGATA AGCNCCGTANTCTGACGGNAGTGCNCTNCAGCACAGCCTATTTCGGANNANNAAACTTCCNNTCAGCTATCTCCCATTTC TGANANGTANTGTNGGCGGNCANCTTGANTCCCNTTAGATTNTANNGATANCGGNNNNACACCCGAAGANGNNCTNAANN CTTANCGCGGGAGTCCGANCCANTCTTCAANAGTTGGCTAGTGATTCNAAAAANNNNNCCCACCCGATNCNNGNTGAGCA NGTGTTGGATAGAAGATGANTNACANTCAATANCTGGAAGTGNNNGAANTGAANTCCNAGTTATNCCCCAATCTGATNCC TTGTTGCNNCNCNNGGNNNAACTTCNGCNANNNCTGNATCGCCGGCNNTACTAGACTTANAGACTGCATANGCACTNANN CTAGGACNCNNNCNNCNCCCGGGTGTTCGNCGCATCNGTTGGGNGTTTACTTGCANGTNAGNTGATCGTCGTGACAATAA GTANNAATGTCNGGAGACTTTTACGTNCTCCAAGNTTGATCTGNGGATCANTACCTTTTCGTANGNCGGNCACACAGATT NCTAGGGTACNGCNNACACTACTAGTANGGGCTGTGTNANGAANGCCGTCGTNNTTGAATGAAAAACTCGAAATNGNCAC AACNTNANCGATCNGAACACGACNCCTTAGNNNNCANCCGNACATTCNCNNCNANCGGNCATANATTGCAGGTGAATCAN NTAGCGNCACTTTATTAACTCGGATNGNGNTCCAAGTGTCACTNAGCTNANCNATTGNNCATATCATCTCAGCTTGTCNN CNCACAGTCCACNCGCGNAAAGTCCTGTTCTCCAGCTGNANNTGNGNTTNTGCGCTNTTCGNCTAGNGTCTNATANACCG GGGTCACGCCNCTGANGNCGGATGCAGACGGNAGGGTNTCGNNACNAGNTTAANTNGNGAATGCNNTGGAAGTTAAAGAA AGACTAAATCTNGNANANCTNNCCNGANACCTCNCCCNGTGCCNGNCTCCTNTNTGGGTGGANCTNACCGNCAAACTTCG NAGNTCNANNGNTGCNGTANNNTCCTCANNCNGTNCNGCTGGCTAGNCCGNNGNTNNGANACNCGCACANAGNCGGAACC NGGCANGTGAATGNTNNCCTTTNNGGGTAATANCNNNNGTAACTGAGATAAGCANGCGCCCATAACGAGACGNNCGANAC GCNANTNTTAGCCCTTNGACCNCTGCCNTAAGNAANCTGGTAGATGGCAATCTNCGCNGNGGATGCGANAATCANNCACN CNNTNCGCNCNGCGANGATAGACGCCNTCGACCTCGTTNTCGNGCCAGNTTATANCGTNAGAGATTNNCCGANAGCNTAN GTGAGAGNCTCGNNAGTGANCACTGTNTAGGAGACTGTNNNNCTGNAAAGNGNCCAAGCCATCNAGAGANTNGGGNCTTA GNANTTCGGCGACCNGTNNANGTCGTANTGAGGACCCCGANCCCTCTGGANTCNCTTGATGTACTGGAAGTNCTAANGTC CCCAGGNANCCCCGTACTANGNNAGTANCTTGTAGTTNANAGNGANGNNAGGCAGACNCAACGTTCGTNTCATCAGGAAC NCAAANTNTCTNGAGCNACNNTGCCNGTTNNGACNGTCGGTCNNANCAANTTCNTNCNNAATCAGTAAGCNATANCCATG NCGGTACNAAATAGNCTGTGTTGTNGACAGCNTAATTTAAAGCGCCNNNGCCCAAAGCCCACNNTNCNTGCCAATAGGGC CGGCGTCCNCGNCGAGTGNATGNNCTTATNGCAACCAACCGGNTGNGCTACGCCNNGATTGGTTATGCCGGATGCTGGCC GANAGAACNNTTGACGACGAAGTTNNAGTCTNNTCTNAGNGNTGTNAGGAGGACGCANTGTNAGNGCCGCTCCGATCNAT NGTCTCGCTGGGNCNCCTATNCGATTTNCGGTTGTTATCNTCACCCTNTATTTCTNNCCTNTCANTTCATNTNAACNTTT CCNTTCCATNGCCTNCNTGATTACTGCTTCTNGGGATCCTNCTTCNNNGTCCATCGTCATCTAACGTANCGACAAAAANT CGGACGACCCCATCNGNGGTNGTCGGANTCAACNCGTCTTGCGGGGTCTACCANAAACATNATCGACACTGCGAGACNTC NANATTCTNATTCAAAAANAGGGTCAAGTNTNNTGCGCATTCCTTACCCTACCGATNTCGCNCCNNGNTAAANTNAGATN AGCAACGCCCAGACGGNNGGTATCCATCATAGTNCTNCTTGCANTNCTNNACNACACCTCGNGGCTNNTACNANTTGACA GTTNGCNATGCCNGCCNGCCNTTTATTNTANCNACGNACANACNANCTTAAAGTTTCGCAGNCAGAAATGGAGNNCTCTC CNCCNAGAGTAATANGTNGGCCNNNTCTGACGNGNANGAANCCTNTCCGGACTGACTTNCCCGNGTNNNTAAAGNNCGAT TGNTANTTGATTGATANGNTTCCNTNTTATTTTGAGGGTTCNTTAGACGTATGTTNATTGCGANNNGTTTTCNCNATGGA NANCANGNGCNNAATACCGCCTNNNNGATNCACTNGCACTTCAGTAATCATAATTCANCNANNCGNCCAGACATNAGACC GGAGGTTGGNNTGNCCGTATTTTTCNCTCACANNTTACTNAGAAAGNCAGTTGNNTNGTANGCGGATTGTATTCCTTCGN AGGANTNACNNCCATGAGANAGNGCGGCNGCNTGTATTTGGCGGACGTGNTATCNCGGTCNNNCNTACCTANGNNNANGA NTTNNCAAGGGATATCGCGANGGCGGTCTNANCCCGGAAAGTNAGNTTAGCATGTGCAGGGNGTTGGTGCNACNNNCGAG TNCATTGCNNTNGGTNAGAAGNGGNCNTCCGGTTNTTACCGTGCATCCCCGCACCCGACCCNTTTTAGNNGTATATNATN GACAGCNTGTAGNATATTTANATTTNACNCACTTANGGACCNTNAACGAGCTNCNGAAATNTCCCGTNNATCACGGANGT ATCGCTGTCTCNCANTGNNGTGTGAATGAACANTANGNCTTGTATNCAGAGNNGANNAAACGGTCCACGNGNTNNATNAT CAACCGATTANTNCNTGACGCCNCCNNGTNTANCAACNGATTGATTNTCNACCTCGATNTCAATTCNGTNGAGNGGATTA NGCGNNTATTTNGACCNACTCACATCGNCNCTCAANTTNTTNTGCATTNAGNNGNCGAGTTNTCAGCGANCGGATNAAAT CNCATGNAGCNCNCNANTGTCCANCGGNCCNGTATAAGCACNNGANTGNTCGTCAAAAAAANGTAATGCNGTCCNGATTG CTGANTNGTCCGGGAAANGGTTNTCTCCGGNNGGTTAGCAGCCCANCNCGCGNCCCGTTNNTACCGANTTCGTNTTATAN TCCCGGCTGTGGCTATNCAGGNCGGAGNTNTNCCACAACCTNCTATCAACGGANNATGNNNCNANAGGATCACACTGATA CTTCACGATGTANAGNCTCGGNAAACCGNTCACTNGGTTNTAGCACCNANNCCANTCNTAGACGGNTCTGTCNCCCNGNG TNTAGATGCNTTCNACAGGCNNNACCACACGCACGNACTTGACNNGCATTCGANNTTGACNTCCNCNCGCNNGCNAGCNG NNGGAATTATNCNTCCTNGGCAGGCNAACCCGTNNTAATGGGGNGATGATTANGTGCNNNANCAAGAGATACCAGCNNGA NGAAGANTGNCTTACGATGCAGGTNNGNCNCCNATTTGGAATNTAGCCGGACTCGATANGTNTCTAGCAAATGGTANANG TNNCNNGNNTTTACNAGCNNGTCNAATATTGATTNACCGNTGAGTGNTTATTATNGCGTCCNTAGAAGAACCAGANTAGT CCNNNNANNANAGCTTCTCCGCCTAGGAACATNNNGTCACAAGACCCNNANAGGTCACAAACGCTGTNNNNCGNTGTTNG GNGCGTNCTGATTNGGGTCGGGNCGNTAGAAATGGCANAGATNCNAGACCCTNAGGGTNTAGNGCTNTTGTCTATTCGCA ATATGTTTGCNCCTCGNGCGCTAANCCAGNTCTCANNCGTGNCAAAGGCCNNCGTNNGNTNGTNNCTNTTTTNTCTGANA NNATNATACANCCNCTCCTCTGCGCGTGAANGNGACTGGNCGCATGGGATGNGCNGCTTCAGTACGAGCGNNGATTNAAC TAAANAGCTTGATGGNAGCGCCAGTGNNATACGTNGGCNGANATTGNCAGTTANCGTNCAGGAGANGTNNTNNTNCNGTG GCACCTACATCNTGTGGCANCNAGTNNAAGNATNAGTGAACGAGAGAGANNGCAATTTTNANTNNTTNGCGGNNTTCCTT CTTGTCCGAGGCTGGNGTNCTTNACAGGACTGCTNANTNCNGCGCTACTGCGNGNCGAGNGNNAGGGACGCTNGNAACGN TCGTTTGGCCNAGNCTCCGTGCNNTNANNGNCAGTANTNCATCACTCGANTCNCAAGCNTNNANTCCCNAGNGCGCGATC GGTGAACGGGNAAAANAAGGNGAGCNNGANGNGACAACAGTCTACACCAGNCGGTTNTNNGCAGCGCCCAAANTCCNACN TTCCGNNNTTNTTCTTTCTGANAAGGGCTGANCACANTANTNTNGGNTCTCTCTNGGTNCGNCGATTCAGNGAGATNCCN TGGATCGNTGANCGTNNTGTTTGNGNAANGCNNANATGATNTNCCNCNTACTNCCCGTTNTGTNGCCACNNGATCGNNNT ANGNNCNCCGNGATGNACTAGCGTTCCGTCNNNTTATCAGGGTACTTCTGTCACCANNCCANTATTCCATAANTCNTCCN CCTATCACTTTTACTNNCTCTACNNNGTTTAGNTCNNNTANCNGGTAACCCACANGNAAGNCNAACAANTCCNTCGNCNA GTCNCANGTNNACGCCCAAATTNTTTNNGTNCCNGATGGTNNTATNNCTANATAGCNCNCGATNGGGACAANGAGGANNA CNCGGGNNTANNNAGNTNCTGNTGGTACNTAGCGGACACNGGNANTGCCTCCGNNCTNNCNTGNACCGANAGAACTNGNT NNATTANCNCTGCNNTGNCNATNCTNTCGCTCGCNNCGGAAANGNCGCCCCANNACCAGCNNNTTNCNGGAAGGACGCCA CCNTATNNTCGTTNTCGACCNCACGGCCCGAANNNTNTGGNCNTCAACGTNTCTANANCACTNGTTGTGTCATTGGNCCN CNGANATATNTCGCCAGNGGCTTATCNTTNTTAAACTAACTNTATANNNNTATAGCTNNGCCAGCCACANTGGCTATGAA CTGGTGGTGAGCGNCNNNCATGNCCAANTCNNACTTTNGGAGCCTNATNNCTANTTCGTANGNNAAGGNANTTNCCGNGG NTACCGNATNACNACAGNCTNNTGGNNACCTTANTATTCACTCCANTGTCCGACTAGGNCGTTGGTGGAATTNGNGANNC GGTGGCAACACCNTGGTAATATGGGANCTTGCCGNCTAACTGNAANCCNNTTCTNTCCCGGACCCGGTCNCCANGGTCCT GGGCGNNCGTTTAGANCNGACNNGCAANTANNACCCNNNTTCAAATNCTTNNGNATCGCTGCTTGANACAGGTGTTATAN ATAGCGATANGCGAGTNCCTCANCCANCGNNTNTTCTNATNTNNTATCTGGAAGNATGGNACTCATGTCGGNCCCCAGAC TTGANGGNAAAGTAACANTCAAGCGNGGTTGAATAANGACCTTACTNTTCCANCNATCTCNAAACCGTTNGGATTAGGNT ACNNTTAAANCTTATTCTGATANTGTACCGCAGANNGCANTCCACGAGTNCNNCCTTTGAGCNCGAGACATAGACNGNAN CAAGGGGTANNTTANCNAGTGCNACACNANATTCCNCGGNATAGCNNCCTCGTCTGTGGNGCTCNNANTANAGNATTTTN TGCNNNGNGCTNTTNTNGNAAACGANNAANGCNTATTCANAACNCNNGGNCGGCTCNCNGCCNNACNAAGNCGNATCAAG CCCTCCNGTGTGNATAAAGCCNNAGTATCNTATNAGAATCACANNTCTTAATNTAANTNGCGGGTGTNGNCGCCGNTTAA AGCGANTCTNNGTTNNANGANTTCCTAANGCTACTNCTGNCAGNNGCNACAANANTATCAANNCNGGTANCCGTNGNGCA NNACACGGGCTGCNACANAANAGTCCNTNAATNGNNCNCNTNTTAANTCACGNTTTTNGGCNCTTAACNNGCTNCCGTTA AGNANTNTTNCNGTGNAACCNACTTNATGTCTNNNCANGCCTNNNGGNTNTCTGCCCTTCCCNGNTCCATNGNGNGCNAC CCCGTGTTCCTGNNGAGCAACTGCTGAGNCTNGNNTTCCNTCNNTANNCNGTGCTAGGAAGATAAACTGCNCCNCGTAAN ACGNCGTTTTGACCCGNACGANNCTATCTCAGTGCTGGNCCNCNNGGNGGNCCCAACCCNCATGNGNNTATTATCCNGGT ATACNNTNANTNACTCNATTGACAANNGACGGANNTAGAGACATNTCCGACGTATTTCAGNTGANTACGGTTACACNCCA TGTTTNCCTCGCGGTNTTNNGCCGNNGTNACACCNNGTCGNTANNGGNTCCNCNTACGANAGGTACGNGATTAGGGANTT CACTTCCTATNTGGTANATCGTGNTGCCTAGAGACACCAACCGTGCTTGCCTGGNTTCNNNGTNTNTNGTTGTNNNNGNA TATATGTANGCNCGGACTAANCGGACNTNNGATNTTCAATTGNNGCCAGCACCACGTAGNGNAGCANTAGGGNGACACGT CCCNCTACGCATACNGNTNNTAAGCGNTTCACTNTTCAGNGCAGNGGGCNTNTTCNNNCNCNNGGCTCGACANGGNGCCC ANATNCGTCAAGNTACCTGGGCGTCATGCTACNCGTTTNTCCNTCATATATAGTGANGCNACAGNTAGTANCNCGTACTN CANAGNGGNTCCCCNTCNTAANCNTACTCGCCTTTCNANNTGTTANNTTCNGANCAAGCAATTNTGNGNAATGCNNGTAC ANTGNTACCCCGNNTAGNGGCGGTCGGCNCTAGNNTTTTANNCCGCCAGAGNNTNNCCNGNCCGAAATANCNTGTGNCAG NNNCCGAANTGACCATNNNTGANTGAAAAATANAGANACGATACCCGTTCTTANATTCNGGCCGGCANTCGCGCGAGNCA CGCANACGCNTNGCTNAAGANNATACGGACNNCNTCTTTNNTNGNCTNTTCTCCGGNTAGNCGGCACANACTGTGTANTG NCCCACCTCAAANTGGCNCTNCGTGCCACANGATGGTGGNTNANCGTNTNANGNGTTATTANATANCACAAGAATCCCCN CNAANGANNNCTATCTACAAATATNGCAACNAGNCGCNNACAGGNCCANGCNCCCGCNTNTGTCACNNTGGTAACCNNAN ANGNAGCTCAGCGGTNNCGTTTGGCTCGNGATCAGNTTAGAGCNCGNANGCCNACTTCGGANTCTGGTNCTCNCCNANNC TAAGNCNANTAAGTGTTCGANGGCGTCCNNNNANAATGCGGGTCAGGNGNANNGNGAATAGCCATNGGCGTTNATCGCAC CNATNCNNNGTNTGCAGNTNCGTNGNNGACNNGCTNNATAGCAATTAGCAATAGCCAGTCTTGNGTATCTGNTCGTTNGG TNNNGANNGAATATTGCAANAAACTNCTNCAGGNNNTCNTTGCGAGGATTTNNNNGGAGCANGANAAAGANGNCTGTTTC GGGTGTANCNNGANGAGTTNANCTCNGTNGGTNANTTNNAGCNNTNGNGNTGCGCNTGTATNTNTCNANAAAGNTNACCA TGAAAATAGNCATGTAAGGTAAGTGTNTCANNAGANNAGTATAANGATAGCNTGTNNTAGTNCGGGCGNGAANTTACGAA ACNNTNTNTCGNNANCNTTTNNGGNGTAACGTANGTCCNNCNGANTAGGNNGGGTNTNTGTGNNCCGGCCCGGCGTATNG NNCNNCCTGANTTTTAAANTTTAACCTCGNNCAGAAATCTTGTATTANCATCNTCNTTCAANTATCAATCTAGACGGAGA NTCCTANTNTCTACCCAGACTGCNTANCGACCGGCAAANNNCGGTGGAGCCCGNTGCGCACGGNANNGGTAGAGNCAGTT AACGCTCAGCGTTNCCCNTAGTGCNGCGNCTTCGAGNATNCTGNCACGTACNTCNNTNACNGTGTCTNCCTGTANCGACG TNNGNANAGCANCTTGTTCTTTNNTGNNCCTGANANGTGTAGANTAGTCTNTTCGCANNCACGGGGACGACATCTTNNGG CCTTTCCTTCAGAGAGGNNCCNNCGNGNTTAATAGAANNAGTTCACCTNGCCNACGCTACAAGCCNNCCNCTAGNCTGTG NTCNCAGNGTCGGNGTTATACNATCNAANGTTANNGGGNNGCGACCATTTAGAGCTTGNGTANNGANACTACAANAAACT AGTCCGTCTCCGNNGTCCGGNTGCNNAGTCNTNNANGNNCCNCAANCCGGGGNGGATNNCGTGCCACAANCTTNGTGACT NACGCGCGGGTGTGNNTTGNCNTCATACAGCCNNCGCTTATGCNCGTAGCACTANTTNNNACGTNTTGAGGGNGNAGTGN GANATNNAACNTGGNATACANAACGCATTGANNGCAANNTAGNTGCANAGANGNCNACGGNGCGAGGGNNTGGGTTAGTC AACGNTTNTCNTGGGATGNGACATCCATGNCANACCANGNTTNCNGTCAATTTCTTNCNAAGTNTNNNAGCCCNATNNGG TATNATTGNACGNCNCAGACATAAGNACGCCCCAGTTCTGCNCNNGTGCGCTTCGNACATCTGGGGNCTTATTAATTNNC GATGTTCCGNGNNNCACCTCTANNGGCCNNGCNCTCCAGNTACNNGNGTGATNGTAGTNGCAATANCNTCTANANNTACN AGCTCCCCGTNGANNGTANGCGGATGGCTNNAGCAGNATNNCGTNCGGNTNATTGGCAAGCTTGCAAANAANATCTNCAG TGNNTCCNACACTATATGNAGNCGAGGGGNANCGCACNGANAGTGCNTCNTAAACATNGGAGACAANACGGAACNTCGNN GACNCTGTGGGGTTCGCAATCTTCNTCACTGANNAGCNGGNNACTATANGAGAGAGNAACGAGAAATGTNNAAANTTCNA AAGACGCTTTNCTTGGATTCTCNGNTCCCTNNCGGGNCTNAGGNNTNAGGTAANGTCNGCAATTCNNGATNNTCCNNNAC ACGGCCTGNTCTNGGNGGANCNCNGCTGGGANGNATCTTNGGNGGACTNGNTNGNGCTNTTANNAAGTCCGGGNCAATCT CGNGGGANCTTNANACNGGTNACACGTNCTGTCCNNTTGTAACGCCCCNCTNANACTGNGANCNANGCNTNCGCGGTNCG NCGGANNGTCANTCCATGTCTGTTCANNGTAACGACTCNGATCNNTNANCCNNTACGCTGANGTTATGACCAGANCTANN TNGTGANTANTNTNAATGAGCTNCGNNNNTNCAATTATCCNAAGNGGGNNNGNGNCGCGACGCCNAGNACTTGNCNGTCA NNCTNNTNCTAGNNCGACNGNTCNNANCAACCGNGGATCATGGANNCNCCNANGTCAANGNTTAGTGATTTGCGTCNANC ATNACCTATNGTCNGTTANGCNCGTGATTGACCTTGGCCNATNATNCAAAGGGACANCACNAAGGNGNNTTNGTNCTTCG CCAAAGNCTGGTGTNNCGCANGTGTCACAAACACNTANNGTGGTGTGTAAACACNTGNTTCTGCTATAGTTCCNCTGANG NNGTGNNAGACAGGGCAATGCGACGNANNAATTGNTCTNNNTGGNAGTTCTAGNTTTNANATCNGATTTGTGGNAGTNTC TATGNNGCGTCTAACTCAACTGANTANTTCTANGTCTAGACTCANATCACCNTNANNAACTANNCAATCTATGTACGNAA NCGGNNTNNAACNGTCTCAGTTNNCNGGTNCAGTCCGCTTNNTGGANTCCGATCTGTCTCANCGAATNNTNGANCTGGCC CTCANNNANNNAGATGACNAGCTCCAAGACAAAGTAACACCCCCCGTNCNGANGGACNTNGNGNCANTGACATANGTNNA TTGNACTGTTCGTNACGATCTCCGTTNTAGTNTTCACTAGAGNCATGTNTCACATCACNTANNACNTCCCNAAAGCTGAG TGTACNCGGNATATNAAGTCCNGANTTCTGGTGGNGGGNAGNTTTTGTGCAGTAGTNATGATGGGNACGCACNGANGGNN TGTGTGANAACACNCCNGGNTGCTNTNNCCACCGNTACGCNAACAGGGTCGTGAANGNCTNCCGTGAGNANNNGGCTGTG TNAAGGGATTANTNNTGGAGGNNCGGCTCGNGCNTNTAGTCCTAATNTGTNGCCCTATANGCAGGAACTGGNCTTNCTAC TGCCCCNNATTTNTGGTCAGTGNNGGNAAGNCAGANANNANGGTCTCCCCNCAATGNTCTTANGNCATGGTNACAGGGCT NATNTTAAAAATNGCGCTNAATGCANNNCGCANNAAGNGCCGGATACNNCAANNGTCGTGATCCNANNATCGCCACNCAA AGTANCAAACCNGAGACACGCACCGNNNGATTCCACCCACNTCGAGTAGCAAGAGNCAGAGGGCGTACCNNNTCGAACCA ANATGANGTCNCGNCAATGTGAACATGTCCGTGTNNCNNNGTTGNATCTCCACCNGCTTNNCTNCNGNTGTCTNNCNNCA TTTGCACNNAGGTNGGCAAGTACNTTNAGNCGTACCANTTAAAGTNNGNCACGGTACAGTATNTTCNCANATAAGTTCTC CTNGCAAGNGTACGCAAGTTCTTCANGNNNNTTGTACAGCAAGCCCAGAGGNCANNTATAAGNNNTGGCNNNGGACGCAN TTACCAGNNGTACCTNNAGANNACACNGTTAGTCACGANCNTNGTCGGAGANGNCCNTGCCCNAACGGNCCATAATTNNT TCNNTATTCTTNTGATACTCGCATACGCNATAGCCNTNAAACCNGNCAAGGTNTNGAGTTTANTCACCGNNTNGCGCANC CGCANGNGCTACGTACTNAATCCATTGCTTCGGAAAAAGTNGCCTCTGNTCNCNANNATGCTGANNACAANNCTATCNAA NCNNAGGATGGNGGGATAAACNACNCGNTCGAGGACGATAANNGGTCNGNTTNCNNCAGATCAGCCCCTAGAGATTTTNC TATCCGNTGTAGTGNAATTGCAGANNGNTTCANGNCTCCCNTNGGTAGNATCCGGCCTCTANAAGACGATTGCNTACNNN CGNCTNNNGAACGGGCCCCANTNNTANCTNGNNTGTACNGGCAAGCTTNGTGCAGGNGAAAGCNGCGANNCACGNAGGNA GGNCCCNNNATTANAGNATNACTCNAATCTGANNATAACGAANCGTTTTACANNCNCTCTANACTGTAGACNCACCNGTG NNCGTNCATNCAAGCTTGNGNANAATGNTNATNCNGTCCCGACCCNATCGGTTNCTGTCGNTACTCGTGTCTNNAGGNTC TNTCATCAGGTTTAANCNCTAAGACCAAACAATCGNCANANATGNGTGCATNCCTANCACAAANTTTCTCTGGGCGGNGC CGGGTNCTTNACGTAAGGNGNNNTATNNACGCCAGGCCCGGNANTNCNGACCGGAGAAATNGTTNGTTCGNNAGANGNNT CAATTNAGNNGTCCANCTGNNACGTNTNCTCAANNGNNNTTGANCGCGCTCNGTAACGTTGTATAGCAGCTAATGCGTCT CNACCGGGANGCTGGTTCNNCCTTNGAGNCGCTATNNGCCNAANNCNGNGCTTGAGGAGCTCNAACNTGNGATANGNTAN NGNGTCANANAGANATTCGAGNGTATTATNTCANCNNCGAAGNCNNAAAGNATGTNATATTNCGGCGCTNTGCCGNAGGN NCCAAGNAAGGNGGGATACAACGTACATGGTTCTNTNNACTGAGACAGAGGNNNCNTNNCTCCNAGCCCTANTTAGCAAT GTCANGGGNNGCNTTTGCNCTGCGCAGCGACNNGTNACCNTACACGGCTNGCNNNCACTATAGTCANTCTNCCCTTACNN ANGAGNTGTGGANAAAGTNAGACAGTGNATCNNTGCGGNGNTNCNGNTNCCTCNANTCGNANAGGANNCNTCGNNCGGNT CTTTTANCTGTANATGNGGANNTAACANAATNTTGNTTCGNNTANGTTNTAATACGTANCCNNNGACGNTCGTCCTTAGC CNGATTNGCAGCGTAAAGTGAAGGNGGCCNNAAGAGACCTTCCTACNGGGNAGTGTTNTGCTTTCGAGAGAATNGGNANA TAGAGANNCGNTTCGTNGTGGTNNNCCGGTCAAANATCGGTGTCANTGTGTTGCGCTATGGCNNNTNCATNCACANAGAA NTNCTNATCGNANGATCTNANANTGNNCCTTACTAANGCCTANTACGTCGCTACGCAGGNTTGCATTAATCGTNGGNCGT AAAGGTTCGNCTAGTCAGGTGGGCGTCANGTNTTNAANAGNTATCACGTGAANANTCTNNGTTNAANANTANNNCNTGTC NATATGCNCNCNATACTAAGATNGCNTTGNNTNGCGNNNNACCNTGAACGATATCAGANCTNGNGNTAGGANTGANNGTT GGTCCNNNATGTNNCNGNNATTGAAGCCAGNNCANGAANTGTTTGNTGCGTCAGNNGTAANTGGATNAGGNACATCAACG CGGGTCCNTNGTCTCTACGAAAGAAGATTTNAGCNGNTCGACNGATNAANNGNNAGTGTGTCCNTTAACAANCNGACTTG GNACCTTCNCNCTGNNANAANGCGGTNTNTGNAGTCNTTGCNNTNGGTANNNTGCGATNNTTATTAAGCACCTACTTCGG NNCATCGTTTAGNNGCGTGTTGCTNATTAGATNANNCTNGNTTNCNGTAGAGTTCCACGANTNNTTNAAGGACCNGTTGA CTTAACNTCNCTAGNGCTTNCCCNTGACAGNNGCNNTTCANNCGTANGAGGCTTCATCGCGATNTNTCNCGCTNCATNTG TANCTACCGGGATCTGCGTTGCTANCNAGNACGANAGTTGAATTACNTCCCTNNCCTACCTAATATATNTACTCATNTCN GGCAGAGGACCNCTGACCNCTANANACGCNGTCAGGNNGNNATACATCGNCTANNNNNGAGTTNGGCTGAGAATNATCTT ANGATCCGAGNGTNCNCNTTTNATAAAGCTACAAATNTCTNGCANNCCTGGTNNCNTNCGTGCTATGTTNCNCCNNAATC CGACCGAGTAAACTAGAGGGCCCTGNATCNCCANAANNCTGGAANTTGGNCGNAGANTGTACNATTNAAGAATTNANCGC NCNAGGTTTNNGGTGCNNAANANAGACTTTCTCGCGNTGACTTNNTCCTNGAGGTCATGNNAGNCGNGNGATGAGCAATA GGAGTACANTACNATTAGTCNACGGGTTAANTACCCAAGTCNCGNTAGAGTNGCTNANNTGCCATGATAAGNGCGGNCCC NNNTCCCCNANATNCTCCNAATCAATGGNGCNGACCGNCTCTGCACCGNCCGACGGTTCGCNAATTNNTGCNTANCCNNC TTGTGNTGGGTAATACGGAGNCAGNACGAAGAACTTNCCGCCGGCGCCTGNGTTGAAGACAATCTCAANGGAAGCCGAAN NTNGGACGAATACNTGNAGCCNNATGAGGGACCCAGNTTCGAATTATTATNCCTANATGTTGTCACTNTTANTNTGACGN AGGCTNGCNTGCNGNGCGCATCTGGTCTGCTNCCTGAAACGTNGNAGTNACAGCTTNGACNCNTTCNTTTTTNGCTAGNG CAAGGCNAAGAGCCGGANAGNGNACTNCNGCGAGNNGGTTAACCCNANATGNTNNNCNTNTGNGCNTTTTGANGCTGGCN NNGNANTCGGNATCAGCANGGNACNCTATTTTANGNNCAGCNAGCACGGCNCCNAATATTAACTTNATCGNACTGCGTNA AGGCNAACTTTTGTGATCNGATTTTTTGGCGNNCGTCAGCNACGCGNGNATNCTNGTCTCTTANGNCTCNNANGNNAGGA GTAGGNNTATAGAACCGAAGTTNTGTGGGTAATTNCTCANTGCGTGACGNGANAATAACCNTCTTACCNGTCTCGACAGG AGNCANAGNNATCCAGGANNATGNCNANNNGANAGGCCCNAGACATATNNTNCCNNGCGCNTCATNCGCNTNTATTNGNC CGCNCCNNNCATACTTATGGTCGGNCGGNGGNNNGATTTTTANGCNATAGAAGTTCCTCACGNAGAATGANTTCAATAGN NCANTATTTTTCCGTATNCGNGANNTGGGCATAGGAGTTTGANGCTTTCTGCTNNGATNTGTACCAAGNTCNGAACCTCC TAANCAANNCATACTNANNTANAAGCNCATACTNNNACANTACCTGGTTGCTANTNTCCCTTACTCCCCCNNTTCTTNGN NCGTTGCAANANTGGCAGTTANACTTGCATNGNANCCCCNATTGCANACTCGCNTCTGGTGNANTNNGTNCGGANCGNTG TNCGAAGTAACTTGCTNNCTGTGTGCANNTCCNNCGGNNNGTCCTCNCGTACNTAANACANTGCCGNANANACGNGGTGC GNTCATGANCNTNGTNNTCCCATTNGANNAGGGNCCGGANAGANNNCACGAGGNNNNTAACCAACAAACGGGACCATGNN ANGNGTNGCGGACTANTCNGTTCAGCNGNNGNTTCGNGACGAAGCNTAAAGGCAGNCNGCTGCAGGGANNTCCAAANNCG CGTCAGNCATNACNGGANGGAACGTCACACGCNNTGATTTTCCGCTANCGCGCGTNGCAACGGTCCNATGCAAGNATGGC TCGCTNNTNGNNGGNNCGNGNACGCGACNGNNCAGGGCACNTGACCCAGGCGTACANTNCTNNCTTCGNCCCAAAGGNCC NGTAGTACAGNGCNNCANNCANGTAGCGTCTACATCATCNATGACGTGGGGNCCANANACCNGATNCATANNCGTCACAT ATGTNNANCATCAATTCATCCCNAACACCGACACCCCNCATANTAGAGAAGCATNTNANAACTNGTCTAAANTCACTAGC CCGCCATANGGNNTCGGGNNGTTNCCTNNCGACCTNCCGAAGNGTNTCTAGCNNTATCGTCTNGCCACCGCANTNGACNA NCAGNTANTTGCGANTGATNCCACTTCGCTAANTNNCTCTNTACNNTTANGNGTANNNTCATNTGGGTNATAGCNCGCAT TTNTACAGTTCGNAANTACANACTACCAAGTTGTNTNTNTTAGTGANCCATCNANNGATCNGCAACANNAACAAGGCGGC CNTATGANGCCCNAGGTNGTTGGCNNAGGCTNTNNGTGAATAGCGACAACGAGNTTACTCAGANCNGTCATCNGGATTNC CNGNNACTTTNAATCCCACTCAGTTNNNNNNCCAANAGCGAAGNCNCCGTAGGTNTGNATCCCNNAGTTATNANCCGNAC GTCCGTGNNCGGNNANTGGACGNACCCGGAAGATCNTATCCNGCTCTTTCGACCTANGCTNAGCANGTGNATCTACAGTN CTTATNATNAAACGTGCCNTTNTCCCNATNTNGTCTACNNCTTAGANTATGAATCAGCCGGGCNNTNNNNTNTACACATN CNGGTAGNAAAGGACTNAGAAGTTGAGACTGAANACNCCACTCNTCGNGAGANGNCNNNCAGCCTCCTTGTNTNNNANNC CAGGNGTTNTGNTNNNCACCCTACTCCCNGGNNGTTAGCATGCANTNCCTGNCTCNNACCGCAAAACGGGTCTGNGGTGA AGCCGNGANACATCGTTCATANAATAAGNCCNTNTNCCNATCTCANCNNNCNANCGTCTNNTCAGTAAATCCACCNCCNA CCTCNNATCNNNNTGTTNCGGTTACCCNTCATTCCTNGCCNGGATNGGNCTTTAGTCTGCCCNGNGATATNAAANTTAGT NCATGNANTGTCAGTTATGACNCGANNGNTNGNCNGGGAAGCTGCNATNCANNCATNCCGTCCCTCCNAATCNGCANTCA CNTAGNGNNTGCCTGGTACTTGCCNGACAGTGCTATCGAAGANTNCTTTNCTANGACCTANNNNNNNGATACGGNTNTCG ATCNNGGCNAACACNCTCNGGTCTCCNAGAGTNGANAGAAANGATTCGTGGCTGAGNNCCCNGGNCCNANCATCAACCNG ACNCATNAAAGAANTGNTCGGATGAANTCTGCCGCGGCCNANGATNNCATATGAATTCAGCNNTTTACCANANTCGCANN TAAAGATCNNNANTNAATCNCGNNNNGCNCTAAANNCCAGTACNNCACTATTCTNTAANTGGCAACNGNAGAAAGACGNG NCCNGCCGNTTNCGAGNGCTGGGACATTTNCAACGGACNCCCNNTAGCGCCNCATGACGNGGATCNANNCTTGATGCNNN ANGNCGANAGGNTNNGCCTANGAANTACTTCATTCAGTCCCAGGANAGCTNTTCGCGANGNNTTTGGTTTNGAGCCTATG CACACANCTTCCATTTTAGNTGCTCTGCCGGANCATTGCGCTTATNTNTNTGACAGCANNGTACTACTGATGGACNAATC TGNNCGCAGTCNCAAGTTCNCTGCCGCAAGANTCATGACTAATNGNCTTNCCCNNNACCGNGNTCGNGNCGGGTCCAANN NTNTGGACNCACGATTAGNAGNTGNTATCNGAGTNAACANCCGTCCCGTACCANTTNTCTTGTACTTNCNGNGACTCCNN GAGCCCCNCGNCTATGGGGAANACNNNCTTNAGCAAAGTANCCTANGGTCCATTCTNNNTNNTNTNGCNNGGGNGCATNG TCANCGTNANNTGGTGAATNNANTTNGTCNAANTAGTTCTGNANGANAGGCGGTNNCGNAGCNNNACNCANNNAAAGTAA TCNCGGCTNGNNTANGCAACCTGGNCNCACGCTACATGNAAGGCAGTNTAGACACAATTCGCCNCTTNCTTTGNANGAAC ATCCANCNTATANANNATTANCNTTAGCAGNGGANATNCCAAGAAATNCACTNGGCATNACANTCACTNNTNGTTNTGGT TTCCTCTTATTGNCTCTGCATAATAGGNAGTCACATCCCANGACATTNCTACCTTAANCACANCACGGAAGATNGGGCTN TATNTCGGNGTAAGTACTNGGTCNCNGCATNANCTGGGNNAANCAAACNANCGAANGAACTCCNTCCGATACCAGGGCCT TANCCTTACCACAGCTGCACNGCCTTGNNAGGCCTAGNTCTNACAGGGGCGTTGNANCCNCCTTTGAGACNNCNANCCCC NNCCCTGTGATCTTGTNNNANAAACAATNNGNCNCNGCNNGNCGCGCTCTANAGANNTTNCCCTCNNGAANTGNNNGNCT CCANNTTAGTACTGTCANAAGNGGNAGGAAACANGNAANAACCCTCTANCATGAAANNATATNTCGGNGTANTNAANANT TAGAGCGANNGACTNTTCGTANGGGGGCAGNGANCAGCACCGTNGANCCACNGTTGCTGNAAANGGNACTCNTGNNGGCN GGNTCTNGTNACATTNCNGAGCNTGAATTGATAAANGTCGNGNNGAATAGTTNNACTCGNNAGCGGTANTCTTNNGGGNN TACACNNGACCAANCGGANCAAGGTATTCTGGCNGTCCAGTTANCATTGTACCNTACNAAAGTCTNCNNTGATGATCNNT GAAAGAATGNTCNNNCNGNNCATCGNTCTANTCGTTNCNAGNGGGGNGNGTCACGGAGCGGCGNANGNCCNTTNGCGCAG TGTNANNATCCTATNGGNCCNNCAAGCGACNAATAGCCGCTNGTGAACTNAATNACNGGTTNANATTCTCTTCTTCCTGC TGCNATTNCCACTCNNAAGTTCCNTAAACNCCCCNGNCCCNGCCCAAGCCGAGTCTNCNNANANNTGNGGNGNGNTGNTA CNCTCTAACCNCTNTNGTTGCGNATATGGTCGGATCANAGGNATCCTAGTACACTTAAAACATGNTANNGTATGGTNANA GCGNATTTAGNCGCACTCNGGNCCCCTTATTTNCCTNTTATTNANACACAGGGNNNGNNCGNANGTCGTCTANCCTTTAA CNATGGCCNTGNCTNTTANACGTCCTGNACTNNCCAAAAGNNTGNNNCNNGAGGNGCAACTGCTGTCGGCTTAGAGGCNC GTAGGAAGANGAACTCCCCAAATGTANAAGACGTCGNCACTAAGNGTGGCCAGATTTGAANTTGTNNATNCACATGNCCA NTCTCATGNCNNAGNGNAANACGCNANCAANCCTGGCGAATANGACGANCGTTGGGGNAAGAAGGGTTNGATAGNNNCCA Gviz/inst/extdata/test.fa.fai0000644000126300012640000000005512227067652017521 0ustar00biocbuildphs_compbiochr1 100000 6 80 81 chr2 200000 101262 80 81 Gviz/inst/extdata/test.gff0000644000126300012640000001051312227067652017137 0ustar00biocbuildphs_compbio##gff-version 1 ##source-version rtracklayer 1.19.6 ##date 2012-12-08 chr1 UCSC exon 66999825 67000051 . + . chr1 chr1 UCSC 5UTR 66999825 67000041 . + . chr1 chr1 UCSC CDS 67000042 67000051 . + 0 chr1 chr1 UCSC exon 67091530 67091593 . + . chr1 chr1 UCSC CDS 67091530 67091593 . + 2 chr1 chr1 UCSC exon 67098753 67098777 . + . chr1 chr1 UCSC CDS 67098753 67098777 . + 1 chr1 chr1 UCSC exon 67101627 67101698 . + . chr1 chr1 UCSC CDS 67101627 67101698 . + 0 chr1 chr1 UCSC exon 67105460 67105516 . + . chr1 chr1 UCSC CDS 67105460 67105516 . + 0 chr1 chr1 UCSC exon 67108493 67108547 . + . chr1 chr1 UCSC CDS 67108493 67108547 . + 0 chr1 chr1 UCSC exon 67109227 67109402 . + . chr1 chr1 UCSC CDS 67109227 67109402 . + 2 chr1 chr1 UCSC exon 67126196 67126207 . + . chr1 chr1 UCSC CDS 67126196 67126207 . + 0 chr1 chr1 UCSC exon 67133213 67133224 . + . chr1 chr1 UCSC CDS 67133213 67133224 . + 0 chr1 chr1 UCSC exon 67136678 67136702 . + . chr1 chr1 UCSC CDS 67136678 67136702 . + 0 chr1 chr1 UCSC exon 67137627 67137678 . + . chr1 chr1 UCSC CDS 67137627 67137678 . + 2 chr1 chr1 UCSC exon 67138964 67139049 . + . chr1 chr1 UCSC CDS 67138964 67139049 . + 1 chr1 chr1 UCSC exon 67142687 67142779 . + . chr1 chr1 UCSC CDS 67142687 67142779 . + 2 chr1 chr1 UCSC exon 67145361 67145435 . + . chr1 chr1 UCSC CDS 67145361 67145435 . + 2 chr1 chr1 UCSC exon 67147552 67148052 . + . chr1 chr1 UCSC CDS 67147552 67148052 . + 2 chr1 chr1 UCSC exon 67154831 67154958 . + . chr1 chr1 UCSC CDS 67154831 67154958 . + 2 chr1 chr1 UCSC exon 67155873 67155999 . + . chr1 chr1 UCSC CDS 67155873 67155999 . + 0 chr1 chr1 UCSC exon 67161117 67161176 . + . chr1 chr1 UCSC CDS 67161117 67161176 . + 2 chr1 chr1 UCSC exon 67184977 67185088 . + . chr1 chr1 UCSC CDS 67184977 67185088 . + 2 chr1 chr1 UCSC exon 67194947 67195102 . + . chr1 chr1 UCSC CDS 67194947 67195102 . + 1 chr1 chr1 UCSC exon 67199431 67199563 . + . chr1 chr1 UCSC CDS 67199431 67199563 . + 1 chr1 chr1 UCSC exon 67205018 67205220 . + . chr1 chr1 UCSC CDS 67205018 67205220 . + 0 chr1 chr1 UCSC exon 67206341 67206405 . + . chr1 chr1 UCSC CDS 67206341 67206405 . + 1 chr1 chr1 UCSC exon 67206955 67207119 . + . chr1 chr1 UCSC CDS 67206955 67207119 . + 2 chr1 chr1 UCSC exon 67208756 67210768 . + . chr1 chr1 UCSC CDS 67208756 67208775 . + 2 chr1 chr1 UCSC 3UTR 67208779 67210768 . + . chr1 chr1 UCSC start_codon 67000042 67000044 . + 0 chr1 chr1 UCSC stop_codon 67208776 67208778 . + 0 chr1 chr1 UCSC exon 8384390 8384786 . + . chr1 chr1 UCSC CDS 8384390 8384786 . + 0 chr1 chr1 UCSC exon 8385358 8385450 . + . chr1 chr1 UCSC CDS 8385358 8385450 . + 2 chr1 chr1 UCSC exon 8385878 8386102 . + . chr1 chr1 UCSC CDS 8385878 8386102 . + 2 chr1 chr1 UCSC exon 8390269 8390996 . + . chr1 chr1 UCSC CDS 8390269 8390996 . + 2 chr1 chr1 UCSC exon 8395497 8395650 . + . chr1 chr1 UCSC CDS 8395497 8395650 . + 0 chr1 chr1 UCSC exon 8397876 8398052 . + . chr1 chr1 UCSC CDS 8397876 8398052 . + 2 chr1 chr1 UCSC exon 8399553 8399758 . + . chr1 chr1 UCSC CDS 8399553 8399758 . + 2 chr1 chr1 UCSC exon 8403807 8404227 . + . chr1 chr1 UCSC CDS 8403807 8404070 . + 0 chr1 chr1 UCSC 3UTR 8404074 8404227 . + . chr1 chr1 UCSC start_codon 8384390 8384392 . + 0 chr1 chr1 UCSC stop_codon 8404071 8404073 . + 0 chr1 chr1 UCSC exon 25071760 25072116 . + . chr1 chr1 UCSC 5UTR 25071760 25072044 . + . chr1 chr1 UCSC CDS 25072045 25072116 . + 0 chr1 chr1 UCSC exon 25124233 25124342 . + . chr1 chr1 UCSC CDS 25124233 25124342 . + 0 chr1 chr1 UCSC exon 25140585 25140710 . + . chr1 chr1 UCSC CDS 25140585 25140710 . + 1 chr1 chr1 UCSC exon 25153501 25153607 . + . chr1 chr1 UCSC CDS 25153501 25153607 . + 1 chr1 chr1 UCSC exon 25166351 25166532 . + . chr1 chr1 UCSC CDS 25166351 25166532 . + 2 chr1 chr1 UCSC exon 25167264 25170815 . + . chr1 chr1 UCSC CDS 25167264 25167425 . + 0 chr1 chr1 UCSC 3UTR 25167429 25170815 . + . chr1 chr1 UCSC start_codon 25072045 25072047 . + 0 chr1 chr1 UCSC stop_codon 25167426 25167428 . + 0 chr1 chr1 UCSC exon 16767167 16767348 . + . chr1 chr1 UCSC 5UTR 16767167 16767256 . + . chr1 chr1 UCSC CDS 16767257 16767348 . + 0 chr1 chr1 UCSC exon 16770127 16770227 . + . chr1 chr1 UCSC CDS 16770127 16770227 . + 1 chr1 chr1 UCSC exon 16774365 16774469 . + . chr1 chr1 UCSC CDS 16774365 16774469 . + 2 chr1 chr1 UCSC exon 16774555 16774636 . + . chr1 chr1 UCSC CDS 16774555 16774636 . + 2 chr1 chr1 UCSC exon 16775588 16775696 . + . chr1 chr1 UCSC CDS 16775588 16775696 . + 1 chr1 Gviz/inst/extdata/test.gff10000644000126300012640000001051312227067652017220 0ustar00biocbuildphs_compbio##gff-version 1 ##source-version rtracklayer 1.19.6 ##date 2012-12-08 chr1 UCSC exon 66999825 67000051 . + . chr1 chr1 UCSC 5UTR 66999825 67000041 . + . chr1 chr1 UCSC CDS 67000042 67000051 . + 0 chr1 chr1 UCSC exon 67091530 67091593 . + . chr1 chr1 UCSC CDS 67091530 67091593 . + 2 chr1 chr1 UCSC exon 67098753 67098777 . + . chr1 chr1 UCSC CDS 67098753 67098777 . + 1 chr1 chr1 UCSC exon 67101627 67101698 . + . chr1 chr1 UCSC CDS 67101627 67101698 . + 0 chr1 chr1 UCSC exon 67105460 67105516 . + . chr1 chr1 UCSC CDS 67105460 67105516 . + 0 chr1 chr1 UCSC exon 67108493 67108547 . + . chr1 chr1 UCSC CDS 67108493 67108547 . + 0 chr1 chr1 UCSC exon 67109227 67109402 . + . chr1 chr1 UCSC CDS 67109227 67109402 . + 2 chr1 chr1 UCSC exon 67126196 67126207 . + . chr1 chr1 UCSC CDS 67126196 67126207 . + 0 chr1 chr1 UCSC exon 67133213 67133224 . + . chr1 chr1 UCSC CDS 67133213 67133224 . + 0 chr1 chr1 UCSC exon 67136678 67136702 . + . chr1 chr1 UCSC CDS 67136678 67136702 . + 0 chr1 chr1 UCSC exon 67137627 67137678 . + . chr1 chr1 UCSC CDS 67137627 67137678 . + 2 chr1 chr1 UCSC exon 67138964 67139049 . + . chr1 chr1 UCSC CDS 67138964 67139049 . + 1 chr1 chr1 UCSC exon 67142687 67142779 . + . chr1 chr1 UCSC CDS 67142687 67142779 . + 2 chr1 chr1 UCSC exon 67145361 67145435 . + . chr1 chr1 UCSC CDS 67145361 67145435 . + 2 chr1 chr1 UCSC exon 67147552 67148052 . + . chr1 chr1 UCSC CDS 67147552 67148052 . + 2 chr1 chr1 UCSC exon 67154831 67154958 . + . chr1 chr1 UCSC CDS 67154831 67154958 . + 2 chr1 chr1 UCSC exon 67155873 67155999 . + . chr1 chr1 UCSC CDS 67155873 67155999 . + 0 chr1 chr1 UCSC exon 67161117 67161176 . + . chr1 chr1 UCSC CDS 67161117 67161176 . + 2 chr1 chr1 UCSC exon 67184977 67185088 . + . chr1 chr1 UCSC CDS 67184977 67185088 . + 2 chr1 chr1 UCSC exon 67194947 67195102 . + . chr1 chr1 UCSC CDS 67194947 67195102 . + 1 chr1 chr1 UCSC exon 67199431 67199563 . + . chr1 chr1 UCSC CDS 67199431 67199563 . + 1 chr1 chr1 UCSC exon 67205018 67205220 . + . chr1 chr1 UCSC CDS 67205018 67205220 . + 0 chr1 chr1 UCSC exon 67206341 67206405 . + . chr1 chr1 UCSC CDS 67206341 67206405 . + 1 chr1 chr1 UCSC exon 67206955 67207119 . + . chr1 chr1 UCSC CDS 67206955 67207119 . + 2 chr1 chr1 UCSC exon 67208756 67210768 . + . chr1 chr1 UCSC CDS 67208756 67208775 . + 2 chr1 chr1 UCSC 3UTR 67208779 67210768 . + . chr1 chr1 UCSC start_codon 67000042 67000044 . + 0 chr1 chr1 UCSC stop_codon 67208776 67208778 . + 0 chr1 chr1 UCSC exon 8384390 8384786 . + . chr1 chr1 UCSC CDS 8384390 8384786 . + 0 chr1 chr1 UCSC exon 8385358 8385450 . + . chr1 chr1 UCSC CDS 8385358 8385450 . + 2 chr1 chr1 UCSC exon 8385878 8386102 . + . chr1 chr1 UCSC CDS 8385878 8386102 . + 2 chr1 chr1 UCSC exon 8390269 8390996 . + . chr1 chr1 UCSC CDS 8390269 8390996 . + 2 chr1 chr1 UCSC exon 8395497 8395650 . + . chr1 chr1 UCSC CDS 8395497 8395650 . + 0 chr1 chr1 UCSC exon 8397876 8398052 . + . chr1 chr1 UCSC CDS 8397876 8398052 . + 2 chr1 chr1 UCSC exon 8399553 8399758 . + . chr1 chr1 UCSC CDS 8399553 8399758 . + 2 chr1 chr1 UCSC exon 8403807 8404227 . + . chr1 chr1 UCSC CDS 8403807 8404070 . + 0 chr1 chr1 UCSC 3UTR 8404074 8404227 . + . chr1 chr1 UCSC start_codon 8384390 8384392 . + 0 chr1 chr1 UCSC stop_codon 8404071 8404073 . + 0 chr1 chr1 UCSC exon 25071760 25072116 . + . chr1 chr1 UCSC 5UTR 25071760 25072044 . + . chr1 chr1 UCSC CDS 25072045 25072116 . + 0 chr1 chr1 UCSC exon 25124233 25124342 . + . chr1 chr1 UCSC CDS 25124233 25124342 . + 0 chr1 chr1 UCSC exon 25140585 25140710 . + . chr1 chr1 UCSC CDS 25140585 25140710 . + 1 chr1 chr1 UCSC exon 25153501 25153607 . + . chr1 chr1 UCSC CDS 25153501 25153607 . + 1 chr1 chr1 UCSC exon 25166351 25166532 . + . chr1 chr1 UCSC CDS 25166351 25166532 . + 2 chr1 chr1 UCSC exon 25167264 25170815 . + . chr1 chr1 UCSC CDS 25167264 25167425 . + 0 chr1 chr1 UCSC 3UTR 25167429 25170815 . + . chr1 chr1 UCSC start_codon 25072045 25072047 . + 0 chr1 chr1 UCSC stop_codon 25167426 25167428 . + 0 chr1 chr1 UCSC exon 16767167 16767348 . + . chr1 chr1 UCSC 5UTR 16767167 16767256 . + . chr1 chr1 UCSC CDS 16767257 16767348 . + 0 chr1 chr1 UCSC exon 16770127 16770227 . + . chr1 chr1 UCSC CDS 16770127 16770227 . + 1 chr1 chr1 UCSC exon 16774365 16774469 . + . chr1 chr1 UCSC CDS 16774365 16774469 . + 2 chr1 chr1 UCSC exon 16774555 16774636 . + . chr1 chr1 UCSC CDS 16774555 16774636 . + 2 chr1 chr1 UCSC exon 16775588 16775696 . + . chr1 chr1 UCSC CDS 16775588 16775696 . + 1 chr1 Gviz/inst/extdata/test.gff20000644000126300012640000003131512227067652017224 0ustar00biocbuildphs_compbio##gff-version 2 ##source-version rtracklayer 1.19.6 ##date 2012-12-08 chr1 UCSC exon 66999825 67000051 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 1;exon_id NM_032291.1;gene_name SGIP1 chr1 UCSC 5UTR 66999825 67000041 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 1;exon_id NM_032291.1;gene_name SGIP1 chr1 UCSC CDS 67000042 67000051 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 1;exon_id NM_032291.1;gene_name SGIP1 chr1 UCSC exon 67091530 67091593 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 2;exon_id NM_032291.2;gene_name SGIP1 chr1 UCSC CDS 67091530 67091593 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 2;exon_id NM_032291.2;gene_name SGIP1 chr1 UCSC exon 67098753 67098777 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 3;exon_id NM_032291.3;gene_name SGIP1 chr1 UCSC CDS 67098753 67098777 . + 1 gene_id SGIP1;transcript_id NM_032291;exon_number 3;exon_id NM_032291.3;gene_name SGIP1 chr1 UCSC exon 67101627 67101698 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 4;exon_id NM_032291.4;gene_name SGIP1 chr1 UCSC CDS 67101627 67101698 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 4;exon_id NM_032291.4;gene_name SGIP1 chr1 UCSC exon 67105460 67105516 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 5;exon_id NM_032291.5;gene_name SGIP1 chr1 UCSC CDS 67105460 67105516 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 5;exon_id NM_032291.5;gene_name SGIP1 chr1 UCSC exon 67108493 67108547 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 6;exon_id NM_032291.6;gene_name SGIP1 chr1 UCSC CDS 67108493 67108547 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 6;exon_id NM_032291.6;gene_name SGIP1 chr1 UCSC exon 67109227 67109402 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 7;exon_id NM_032291.7;gene_name SGIP1 chr1 UCSC CDS 67109227 67109402 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 7;exon_id NM_032291.7;gene_name SGIP1 chr1 UCSC exon 67126196 67126207 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 8;exon_id NM_032291.8;gene_name SGIP1 chr1 UCSC CDS 67126196 67126207 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 8;exon_id NM_032291.8;gene_name SGIP1 chr1 UCSC exon 67133213 67133224 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 9;exon_id NM_032291.9;gene_name SGIP1 chr1 UCSC CDS 67133213 67133224 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 9;exon_id NM_032291.9;gene_name SGIP1 chr1 UCSC exon 67136678 67136702 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 10;exon_id NM_032291.10;gene_name SGIP1 chr1 UCSC CDS 67136678 67136702 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 10;exon_id NM_032291.10;gene_name SGIP1 chr1 UCSC exon 67137627 67137678 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 11;exon_id NM_032291.11;gene_name SGIP1 chr1 UCSC CDS 67137627 67137678 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 11;exon_id NM_032291.11;gene_name SGIP1 chr1 UCSC exon 67138964 67139049 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 12;exon_id NM_032291.12;gene_name SGIP1 chr1 UCSC CDS 67138964 67139049 . + 1 gene_id SGIP1;transcript_id NM_032291;exon_number 12;exon_id NM_032291.12;gene_name SGIP1 chr1 UCSC exon 67142687 67142779 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 13;exon_id NM_032291.13;gene_name SGIP1 chr1 UCSC CDS 67142687 67142779 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 13;exon_id NM_032291.13;gene_name SGIP1 chr1 UCSC exon 67145361 67145435 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 14;exon_id NM_032291.14;gene_name SGIP1 chr1 UCSC CDS 67145361 67145435 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 14;exon_id NM_032291.14;gene_name SGIP1 chr1 UCSC exon 67147552 67148052 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 15;exon_id NM_032291.15;gene_name SGIP1 chr1 UCSC CDS 67147552 67148052 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 15;exon_id NM_032291.15;gene_name SGIP1 chr1 UCSC exon 67154831 67154958 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 16;exon_id NM_032291.16;gene_name SGIP1 chr1 UCSC CDS 67154831 67154958 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 16;exon_id NM_032291.16;gene_name SGIP1 chr1 UCSC exon 67155873 67155999 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 17;exon_id NM_032291.17;gene_name SGIP1 chr1 UCSC CDS 67155873 67155999 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 17;exon_id NM_032291.17;gene_name SGIP1 chr1 UCSC exon 67161117 67161176 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 18;exon_id NM_032291.18;gene_name SGIP1 chr1 UCSC CDS 67161117 67161176 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 18;exon_id NM_032291.18;gene_name SGIP1 chr1 UCSC exon 67184977 67185088 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 19;exon_id NM_032291.19;gene_name SGIP1 chr1 UCSC CDS 67184977 67185088 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 19;exon_id NM_032291.19;gene_name SGIP1 chr1 UCSC exon 67194947 67195102 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 20;exon_id NM_032291.20;gene_name SGIP1 chr1 UCSC CDS 67194947 67195102 . + 1 gene_id SGIP1;transcript_id NM_032291;exon_number 20;exon_id NM_032291.20;gene_name SGIP1 chr1 UCSC exon 67199431 67199563 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 21;exon_id NM_032291.21;gene_name SGIP1 chr1 UCSC CDS 67199431 67199563 . + 1 gene_id SGIP1;transcript_id NM_032291;exon_number 21;exon_id NM_032291.21;gene_name SGIP1 chr1 UCSC exon 67205018 67205220 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 22;exon_id NM_032291.22;gene_name SGIP1 chr1 UCSC CDS 67205018 67205220 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 22;exon_id NM_032291.22;gene_name SGIP1 chr1 UCSC exon 67206341 67206405 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 23;exon_id NM_032291.23;gene_name SGIP1 chr1 UCSC CDS 67206341 67206405 . + 1 gene_id SGIP1;transcript_id NM_032291;exon_number 23;exon_id NM_032291.23;gene_name SGIP1 chr1 UCSC exon 67206955 67207119 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 24;exon_id NM_032291.24;gene_name SGIP1 chr1 UCSC CDS 67206955 67207119 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 24;exon_id NM_032291.24;gene_name SGIP1 chr1 UCSC exon 67208756 67210768 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 25;exon_id NM_032291.25;gene_name SGIP1 chr1 UCSC CDS 67208756 67208775 . + 2 gene_id SGIP1;transcript_id NM_032291;exon_number 25;exon_id NM_032291.25;gene_name SGIP1 chr1 UCSC 3UTR 67208779 67210768 . + . gene_id SGIP1;transcript_id NM_032291;exon_number 25;exon_id NM_032291.25;gene_name SGIP1 chr1 UCSC start_codon 67000042 67000044 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 1;exon_id NM_032291.1;gene_name SGIP1 chr1 UCSC stop_codon 67208776 67208778 . + 0 gene_id SGIP1;transcript_id NM_032291;exon_number 1;exon_id NM_032291.1;gene_name SGIP1 chr1 UCSC exon 8384390 8384786 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 1;exon_id NM_001080397.1;gene_name SLC45A1 chr1 UCSC CDS 8384390 8384786 . + 0 gene_id SLC45A1;transcript_id NM_001080397;exon_number 1;exon_id NM_001080397.1;gene_name SLC45A1 chr1 UCSC exon 8385358 8385450 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 2;exon_id NM_001080397.2;gene_name SLC45A1 chr1 UCSC CDS 8385358 8385450 . + 2 gene_id SLC45A1;transcript_id NM_001080397;exon_number 2;exon_id NM_001080397.2;gene_name SLC45A1 chr1 UCSC exon 8385878 8386102 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 3;exon_id NM_001080397.3;gene_name SLC45A1 chr1 UCSC CDS 8385878 8386102 . + 2 gene_id SLC45A1;transcript_id NM_001080397;exon_number 3;exon_id NM_001080397.3;gene_name SLC45A1 chr1 UCSC exon 8390269 8390996 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 4;exon_id NM_001080397.4;gene_name SLC45A1 chr1 UCSC CDS 8390269 8390996 . + 2 gene_id SLC45A1;transcript_id NM_001080397;exon_number 4;exon_id NM_001080397.4;gene_name SLC45A1 chr1 UCSC exon 8395497 8395650 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 5;exon_id NM_001080397.5;gene_name SLC45A1 chr1 UCSC CDS 8395497 8395650 . + 0 gene_id SLC45A1;transcript_id NM_001080397;exon_number 5;exon_id NM_001080397.5;gene_name SLC45A1 chr1 UCSC exon 8397876 8398052 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 6;exon_id NM_001080397.6;gene_name SLC45A1 chr1 UCSC CDS 8397876 8398052 . + 2 gene_id SLC45A1;transcript_id NM_001080397;exon_number 6;exon_id NM_001080397.6;gene_name SLC45A1 chr1 UCSC exon 8399553 8399758 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 7;exon_id NM_001080397.7;gene_name SLC45A1 chr1 UCSC CDS 8399553 8399758 . + 2 gene_id SLC45A1;transcript_id NM_001080397;exon_number 7;exon_id NM_001080397.7;gene_name SLC45A1 chr1 UCSC exon 8403807 8404227 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 8;exon_id NM_001080397.8;gene_name SLC45A1 chr1 UCSC CDS 8403807 8404070 . + 0 gene_id SLC45A1;transcript_id NM_001080397;exon_number 8;exon_id NM_001080397.8;gene_name SLC45A1 chr1 UCSC 3UTR 8404074 8404227 . + . gene_id SLC45A1;transcript_id NM_001080397;exon_number 8;exon_id NM_001080397.8;gene_name SLC45A1 chr1 UCSC start_codon 8384390 8384392 . + 0 gene_id SLC45A1;transcript_id NM_001080397;exon_number 1;exon_id NM_001080397.1;gene_name SLC45A1 chr1 UCSC stop_codon 8404071 8404073 . + 0 gene_id SLC45A1;transcript_id NM_001080397;exon_number 1;exon_id NM_001080397.1;gene_name SLC45A1 chr1 UCSC exon 25071760 25072116 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 1;exon_id NM_013943.1;gene_name CLIC4 chr1 UCSC 5UTR 25071760 25072044 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 1;exon_id NM_013943.1;gene_name CLIC4 chr1 UCSC CDS 25072045 25072116 . + 0 gene_id CLIC4;transcript_id NM_013943;exon_number 1;exon_id NM_013943.1;gene_name CLIC4 chr1 UCSC exon 25124233 25124342 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 2;exon_id NM_013943.2;gene_name CLIC4 chr1 UCSC CDS 25124233 25124342 . + 0 gene_id CLIC4;transcript_id NM_013943;exon_number 2;exon_id NM_013943.2;gene_name CLIC4 chr1 UCSC exon 25140585 25140710 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 3;exon_id NM_013943.3;gene_name CLIC4 chr1 UCSC CDS 25140585 25140710 . + 1 gene_id CLIC4;transcript_id NM_013943;exon_number 3;exon_id NM_013943.3;gene_name CLIC4 chr1 UCSC exon 25153501 25153607 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 4;exon_id NM_013943.4;gene_name CLIC4 chr1 UCSC CDS 25153501 25153607 . + 1 gene_id CLIC4;transcript_id NM_013943;exon_number 4;exon_id NM_013943.4;gene_name CLIC4 chr1 UCSC exon 25166351 25166532 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 5;exon_id NM_013943.5;gene_name CLIC4 chr1 UCSC CDS 25166351 25166532 . + 2 gene_id CLIC4;transcript_id NM_013943;exon_number 5;exon_id NM_013943.5;gene_name CLIC4 chr1 UCSC exon 25167264 25170815 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 6;exon_id NM_013943.6;gene_name CLIC4 chr1 UCSC CDS 25167264 25167425 . + 0 gene_id CLIC4;transcript_id NM_013943;exon_number 6;exon_id NM_013943.6;gene_name CLIC4 chr1 UCSC 3UTR 25167429 25170815 . + . gene_id CLIC4;transcript_id NM_013943;exon_number 6;exon_id NM_013943.6;gene_name CLIC4 chr1 UCSC start_codon 25072045 25072047 . + 0 gene_id CLIC4;transcript_id NM_013943;exon_number 1;exon_id NM_013943.1;gene_name CLIC4 chr1 UCSC stop_codon 25167426 25167428 . + 0 gene_id CLIC4;transcript_id NM_013943;exon_number 1;exon_id NM_013943.1;gene_name CLIC4 chr1 UCSC exon 16767167 16767348 . + . gene_id NECAP2;transcript_id NM_018090;exon_number 1;exon_id NM_018090.1;gene_name NECAP2 chr1 UCSC 5UTR 16767167 16767256 . + . gene_id NECAP2;transcript_id NM_018090;exon_number 1;exon_id NM_018090.1;gene_name NECAP2 chr1 UCSC CDS 16767257 16767348 . + 0 gene_id NECAP2;transcript_id NM_018090;exon_number 1;exon_id NM_018090.1;gene_name NECAP2 chr1 UCSC exon 16770127 16770227 . + . gene_id NECAP2;transcript_id NM_018090;exon_number 2;exon_id NM_018090.2;gene_name NECAP2 chr1 UCSC CDS 16770127 16770227 . + 1 gene_id NECAP2;transcript_id NM_018090;exon_number 2;exon_id NM_018090.2;gene_name NECAP2 chr1 UCSC exon 16774365 16774469 . + . gene_id NECAP2;transcript_id NM_018090;exon_number 3;exon_id NM_018090.3;gene_name NECAP2 chr1 UCSC CDS 16774365 16774469 . + 2 gene_id NECAP2;transcript_id NM_018090;exon_number 3;exon_id NM_018090.3;gene_name NECAP2 chr1 UCSC exon 16774555 16774636 . + . gene_id NECAP2;transcript_id NM_018090;exon_number 4;exon_id NM_018090.4;gene_name NECAP2 chr1 UCSC CDS 16774555 16774636 . + 2 gene_id NECAP2;transcript_id NM_018090;exon_number 4;exon_id NM_018090.4;gene_name NECAP2 chr1 UCSC exon 16775588 16775696 . + . gene_id NECAP2;transcript_id NM_018090;exon_number 5;exon_id NM_018090.5;gene_name NECAP2 chr1 UCSC CDS 16775588 16775696 . + 1 gene_id NECAP2;transcript_id NM_018090;exon_number 5;exon_id NM_018090.5;gene_name NECAP2 Gviz/inst/extdata/test.gff30000644000126300012640000003131512227067652017225 0ustar00biocbuildphs_compbio##gff-version 3 ##source-version rtracklayer 1.19.6 ##date 2012-12-08 chr1 UCSC exon 66999825 67000051 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=1;exon_id=NM_032291.1;gene_name=SGIP1 chr1 UCSC 5UTR 66999825 67000041 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=1;exon_id=NM_032291.1;gene_name=SGIP1 chr1 UCSC CDS 67000042 67000051 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=1;exon_id=NM_032291.1;gene_name=SGIP1 chr1 UCSC exon 67091530 67091593 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=2;exon_id=NM_032291.2;gene_name=SGIP1 chr1 UCSC CDS 67091530 67091593 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=2;exon_id=NM_032291.2;gene_name=SGIP1 chr1 UCSC exon 67098753 67098777 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=3;exon_id=NM_032291.3;gene_name=SGIP1 chr1 UCSC CDS 67098753 67098777 . + 1 gene_id=SGIP1;transcript_id=NM_032291;exon_number=3;exon_id=NM_032291.3;gene_name=SGIP1 chr1 UCSC exon 67101627 67101698 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=4;exon_id=NM_032291.4;gene_name=SGIP1 chr1 UCSC CDS 67101627 67101698 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=4;exon_id=NM_032291.4;gene_name=SGIP1 chr1 UCSC exon 67105460 67105516 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=5;exon_id=NM_032291.5;gene_name=SGIP1 chr1 UCSC CDS 67105460 67105516 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=5;exon_id=NM_032291.5;gene_name=SGIP1 chr1 UCSC exon 67108493 67108547 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=6;exon_id=NM_032291.6;gene_name=SGIP1 chr1 UCSC CDS 67108493 67108547 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=6;exon_id=NM_032291.6;gene_name=SGIP1 chr1 UCSC exon 67109227 67109402 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=7;exon_id=NM_032291.7;gene_name=SGIP1 chr1 UCSC CDS 67109227 67109402 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=7;exon_id=NM_032291.7;gene_name=SGIP1 chr1 UCSC exon 67126196 67126207 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=8;exon_id=NM_032291.8;gene_name=SGIP1 chr1 UCSC CDS 67126196 67126207 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=8;exon_id=NM_032291.8;gene_name=SGIP1 chr1 UCSC exon 67133213 67133224 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=9;exon_id=NM_032291.9;gene_name=SGIP1 chr1 UCSC CDS 67133213 67133224 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=9;exon_id=NM_032291.9;gene_name=SGIP1 chr1 UCSC exon 67136678 67136702 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=10;exon_id=NM_032291.10;gene_name=SGIP1 chr1 UCSC CDS 67136678 67136702 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=10;exon_id=NM_032291.10;gene_name=SGIP1 chr1 UCSC exon 67137627 67137678 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=11;exon_id=NM_032291.11;gene_name=SGIP1 chr1 UCSC CDS 67137627 67137678 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=11;exon_id=NM_032291.11;gene_name=SGIP1 chr1 UCSC exon 67138964 67139049 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=12;exon_id=NM_032291.12;gene_name=SGIP1 chr1 UCSC CDS 67138964 67139049 . + 1 gene_id=SGIP1;transcript_id=NM_032291;exon_number=12;exon_id=NM_032291.12;gene_name=SGIP1 chr1 UCSC exon 67142687 67142779 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=13;exon_id=NM_032291.13;gene_name=SGIP1 chr1 UCSC CDS 67142687 67142779 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=13;exon_id=NM_032291.13;gene_name=SGIP1 chr1 UCSC exon 67145361 67145435 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=14;exon_id=NM_032291.14;gene_name=SGIP1 chr1 UCSC CDS 67145361 67145435 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=14;exon_id=NM_032291.14;gene_name=SGIP1 chr1 UCSC exon 67147552 67148052 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=15;exon_id=NM_032291.15;gene_name=SGIP1 chr1 UCSC CDS 67147552 67148052 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=15;exon_id=NM_032291.15;gene_name=SGIP1 chr1 UCSC exon 67154831 67154958 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=16;exon_id=NM_032291.16;gene_name=SGIP1 chr1 UCSC CDS 67154831 67154958 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=16;exon_id=NM_032291.16;gene_name=SGIP1 chr1 UCSC exon 67155873 67155999 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=17;exon_id=NM_032291.17;gene_name=SGIP1 chr1 UCSC CDS 67155873 67155999 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=17;exon_id=NM_032291.17;gene_name=SGIP1 chr1 UCSC exon 67161117 67161176 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=18;exon_id=NM_032291.18;gene_name=SGIP1 chr1 UCSC CDS 67161117 67161176 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=18;exon_id=NM_032291.18;gene_name=SGIP1 chr1 UCSC exon 67184977 67185088 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=19;exon_id=NM_032291.19;gene_name=SGIP1 chr1 UCSC CDS 67184977 67185088 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=19;exon_id=NM_032291.19;gene_name=SGIP1 chr1 UCSC exon 67194947 67195102 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=20;exon_id=NM_032291.20;gene_name=SGIP1 chr1 UCSC CDS 67194947 67195102 . + 1 gene_id=SGIP1;transcript_id=NM_032291;exon_number=20;exon_id=NM_032291.20;gene_name=SGIP1 chr1 UCSC exon 67199431 67199563 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=21;exon_id=NM_032291.21;gene_name=SGIP1 chr1 UCSC CDS 67199431 67199563 . + 1 gene_id=SGIP1;transcript_id=NM_032291;exon_number=21;exon_id=NM_032291.21;gene_name=SGIP1 chr1 UCSC exon 67205018 67205220 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=22;exon_id=NM_032291.22;gene_name=SGIP1 chr1 UCSC CDS 67205018 67205220 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=22;exon_id=NM_032291.22;gene_name=SGIP1 chr1 UCSC exon 67206341 67206405 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=23;exon_id=NM_032291.23;gene_name=SGIP1 chr1 UCSC CDS 67206341 67206405 . + 1 gene_id=SGIP1;transcript_id=NM_032291;exon_number=23;exon_id=NM_032291.23;gene_name=SGIP1 chr1 UCSC exon 67206955 67207119 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=24;exon_id=NM_032291.24;gene_name=SGIP1 chr1 UCSC CDS 67206955 67207119 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=24;exon_id=NM_032291.24;gene_name=SGIP1 chr1 UCSC exon 67208756 67210768 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=25;exon_id=NM_032291.25;gene_name=SGIP1 chr1 UCSC CDS 67208756 67208775 . + 2 gene_id=SGIP1;transcript_id=NM_032291;exon_number=25;exon_id=NM_032291.25;gene_name=SGIP1 chr1 UCSC 3UTR 67208779 67210768 . + . gene_id=SGIP1;transcript_id=NM_032291;exon_number=25;exon_id=NM_032291.25;gene_name=SGIP1 chr1 UCSC start_codon 67000042 67000044 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=1;exon_id=NM_032291.1;gene_name=SGIP1 chr1 UCSC stop_codon 67208776 67208778 . + 0 gene_id=SGIP1;transcript_id=NM_032291;exon_number=1;exon_id=NM_032291.1;gene_name=SGIP1 chr1 UCSC exon 8384390 8384786 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=1;exon_id=NM_001080397.1;gene_name=SLC45A1 chr1 UCSC CDS 8384390 8384786 . + 0 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=1;exon_id=NM_001080397.1;gene_name=SLC45A1 chr1 UCSC exon 8385358 8385450 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=2;exon_id=NM_001080397.2;gene_name=SLC45A1 chr1 UCSC CDS 8385358 8385450 . + 2 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=2;exon_id=NM_001080397.2;gene_name=SLC45A1 chr1 UCSC exon 8385878 8386102 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=3;exon_id=NM_001080397.3;gene_name=SLC45A1 chr1 UCSC CDS 8385878 8386102 . + 2 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=3;exon_id=NM_001080397.3;gene_name=SLC45A1 chr1 UCSC exon 8390269 8390996 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=4;exon_id=NM_001080397.4;gene_name=SLC45A1 chr1 UCSC CDS 8390269 8390996 . + 2 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=4;exon_id=NM_001080397.4;gene_name=SLC45A1 chr1 UCSC exon 8395497 8395650 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=5;exon_id=NM_001080397.5;gene_name=SLC45A1 chr1 UCSC CDS 8395497 8395650 . + 0 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=5;exon_id=NM_001080397.5;gene_name=SLC45A1 chr1 UCSC exon 8397876 8398052 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=6;exon_id=NM_001080397.6;gene_name=SLC45A1 chr1 UCSC CDS 8397876 8398052 . + 2 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=6;exon_id=NM_001080397.6;gene_name=SLC45A1 chr1 UCSC exon 8399553 8399758 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=7;exon_id=NM_001080397.7;gene_name=SLC45A1 chr1 UCSC CDS 8399553 8399758 . + 2 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=7;exon_id=NM_001080397.7;gene_name=SLC45A1 chr1 UCSC exon 8403807 8404227 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=8;exon_id=NM_001080397.8;gene_name=SLC45A1 chr1 UCSC CDS 8403807 8404070 . + 0 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=8;exon_id=NM_001080397.8;gene_name=SLC45A1 chr1 UCSC 3UTR 8404074 8404227 . + . gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=8;exon_id=NM_001080397.8;gene_name=SLC45A1 chr1 UCSC start_codon 8384390 8384392 . + 0 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=1;exon_id=NM_001080397.1;gene_name=SLC45A1 chr1 UCSC stop_codon 8404071 8404073 . + 0 gene_id=SLC45A1;transcript_id=NM_001080397;exon_number=1;exon_id=NM_001080397.1;gene_name=SLC45A1 chr1 UCSC exon 25071760 25072116 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=1;exon_id=NM_013943.1;gene_name=CLIC4 chr1 UCSC 5UTR 25071760 25072044 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=1;exon_id=NM_013943.1;gene_name=CLIC4 chr1 UCSC CDS 25072045 25072116 . + 0 gene_id=CLIC4;transcript_id=NM_013943;exon_number=1;exon_id=NM_013943.1;gene_name=CLIC4 chr1 UCSC exon 25124233 25124342 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=2;exon_id=NM_013943.2;gene_name=CLIC4 chr1 UCSC CDS 25124233 25124342 . + 0 gene_id=CLIC4;transcript_id=NM_013943;exon_number=2;exon_id=NM_013943.2;gene_name=CLIC4 chr1 UCSC exon 25140585 25140710 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=3;exon_id=NM_013943.3;gene_name=CLIC4 chr1 UCSC CDS 25140585 25140710 . + 1 gene_id=CLIC4;transcript_id=NM_013943;exon_number=3;exon_id=NM_013943.3;gene_name=CLIC4 chr1 UCSC exon 25153501 25153607 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=4;exon_id=NM_013943.4;gene_name=CLIC4 chr1 UCSC CDS 25153501 25153607 . + 1 gene_id=CLIC4;transcript_id=NM_013943;exon_number=4;exon_id=NM_013943.4;gene_name=CLIC4 chr1 UCSC exon 25166351 25166532 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=5;exon_id=NM_013943.5;gene_name=CLIC4 chr1 UCSC CDS 25166351 25166532 . + 2 gene_id=CLIC4;transcript_id=NM_013943;exon_number=5;exon_id=NM_013943.5;gene_name=CLIC4 chr1 UCSC exon 25167264 25170815 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=6;exon_id=NM_013943.6;gene_name=CLIC4 chr1 UCSC CDS 25167264 25167425 . + 0 gene_id=CLIC4;transcript_id=NM_013943;exon_number=6;exon_id=NM_013943.6;gene_name=CLIC4 chr1 UCSC 3UTR 25167429 25170815 . + . gene_id=CLIC4;transcript_id=NM_013943;exon_number=6;exon_id=NM_013943.6;gene_name=CLIC4 chr1 UCSC start_codon 25072045 25072047 . + 0 gene_id=CLIC4;transcript_id=NM_013943;exon_number=1;exon_id=NM_013943.1;gene_name=CLIC4 chr1 UCSC stop_codon 25167426 25167428 . + 0 gene_id=CLIC4;transcript_id=NM_013943;exon_number=1;exon_id=NM_013943.1;gene_name=CLIC4 chr1 UCSC exon 16767167 16767348 . + . gene_id=NECAP2;transcript_id=NM_018090;exon_number=1;exon_id=NM_018090.1;gene_name=NECAP2 chr1 UCSC 5UTR 16767167 16767256 . + . gene_id=NECAP2;transcript_id=NM_018090;exon_number=1;exon_id=NM_018090.1;gene_name=NECAP2 chr1 UCSC CDS 16767257 16767348 . + 0 gene_id=NECAP2;transcript_id=NM_018090;exon_number=1;exon_id=NM_018090.1;gene_name=NECAP2 chr1 UCSC exon 16770127 16770227 . + . gene_id=NECAP2;transcript_id=NM_018090;exon_number=2;exon_id=NM_018090.2;gene_name=NECAP2 chr1 UCSC CDS 16770127 16770227 . + 1 gene_id=NECAP2;transcript_id=NM_018090;exon_number=2;exon_id=NM_018090.2;gene_name=NECAP2 chr1 UCSC exon 16774365 16774469 . + . gene_id=NECAP2;transcript_id=NM_018090;exon_number=3;exon_id=NM_018090.3;gene_name=NECAP2 chr1 UCSC CDS 16774365 16774469 . + 2 gene_id=NECAP2;transcript_id=NM_018090;exon_number=3;exon_id=NM_018090.3;gene_name=NECAP2 chr1 UCSC exon 16774555 16774636 . + . gene_id=NECAP2;transcript_id=NM_018090;exon_number=4;exon_id=NM_018090.4;gene_name=NECAP2 chr1 UCSC CDS 16774555 16774636 . + 2 gene_id=NECAP2;transcript_id=NM_018090;exon_number=4;exon_id=NM_018090.4;gene_name=NECAP2 chr1 UCSC exon 16775588 16775696 . + . gene_id=NECAP2;transcript_id=NM_018090;exon_number=5;exon_id=NM_018090.5;gene_name=NECAP2 chr1 UCSC CDS 16775588 16775696 . + 1 gene_id=NECAP2;transcript_id=NM_018090;exon_number=5;exon_id=NM_018090.5;gene_name=NECAP2 Gviz/inst/extdata/test.gtf0000644000126300012640000003414312227067652017162 0ustar00biocbuildphs_compbiochr1 UCSC exon 66999825 67000051 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "1"; exon_id "NM_032291.1"; gene_name "SGIP1"; chr1 UCSC 5UTR 66999825 67000041 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "1"; exon_id "NM_032291.1"; gene_name "SGIP1"; chr1 UCSC CDS 67000042 67000051 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "1"; exon_id "NM_032291.1"; gene_name "SGIP1"; chr1 UCSC exon 67091530 67091593 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "2"; exon_id "NM_032291.2"; gene_name "SGIP1"; chr1 UCSC CDS 67091530 67091593 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "2"; exon_id "NM_032291.2"; gene_name "SGIP1"; chr1 UCSC exon 67098753 67098777 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "3"; exon_id "NM_032291.3"; gene_name "SGIP1"; chr1 UCSC CDS 67098753 67098777 . + 1 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "3"; exon_id "NM_032291.3"; gene_name "SGIP1"; chr1 UCSC exon 67101627 67101698 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "4"; exon_id "NM_032291.4"; gene_name "SGIP1"; chr1 UCSC CDS 67101627 67101698 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "4"; exon_id "NM_032291.4"; gene_name "SGIP1"; chr1 UCSC exon 67105460 67105516 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "5"; exon_id "NM_032291.5"; gene_name "SGIP1"; chr1 UCSC CDS 67105460 67105516 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "5"; exon_id "NM_032291.5"; gene_name "SGIP1"; chr1 UCSC exon 67108493 67108547 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "6"; exon_id "NM_032291.6"; gene_name "SGIP1"; chr1 UCSC CDS 67108493 67108547 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "6"; exon_id "NM_032291.6"; gene_name "SGIP1"; chr1 UCSC exon 67109227 67109402 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "7"; exon_id "NM_032291.7"; gene_name "SGIP1"; chr1 UCSC CDS 67109227 67109402 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "7"; exon_id "NM_032291.7"; gene_name "SGIP1"; chr1 UCSC exon 67126196 67126207 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "8"; exon_id "NM_032291.8"; gene_name "SGIP1"; chr1 UCSC CDS 67126196 67126207 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "8"; exon_id "NM_032291.8"; gene_name "SGIP1"; chr1 UCSC exon 67133213 67133224 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "9"; exon_id "NM_032291.9"; gene_name "SGIP1"; chr1 UCSC CDS 67133213 67133224 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "9"; exon_id "NM_032291.9"; gene_name "SGIP1"; chr1 UCSC exon 67136678 67136702 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "10"; exon_id "NM_032291.10"; gene_name "SGIP1"; chr1 UCSC CDS 67136678 67136702 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "10"; exon_id "NM_032291.10"; gene_name "SGIP1"; chr1 UCSC exon 67137627 67137678 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "11"; exon_id "NM_032291.11"; gene_name "SGIP1"; chr1 UCSC CDS 67137627 67137678 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "11"; exon_id "NM_032291.11"; gene_name "SGIP1"; chr1 UCSC exon 67138964 67139049 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "12"; exon_id "NM_032291.12"; gene_name "SGIP1"; chr1 UCSC CDS 67138964 67139049 . + 1 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "12"; exon_id "NM_032291.12"; gene_name "SGIP1"; chr1 UCSC exon 67142687 67142779 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "13"; exon_id "NM_032291.13"; gene_name "SGIP1"; chr1 UCSC CDS 67142687 67142779 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "13"; exon_id "NM_032291.13"; gene_name "SGIP1"; chr1 UCSC exon 67145361 67145435 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "14"; exon_id "NM_032291.14"; gene_name "SGIP1"; chr1 UCSC CDS 67145361 67145435 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "14"; exon_id "NM_032291.14"; gene_name "SGIP1"; chr1 UCSC exon 67147552 67148052 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "15"; exon_id "NM_032291.15"; gene_name "SGIP1"; chr1 UCSC CDS 67147552 67148052 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "15"; exon_id "NM_032291.15"; gene_name "SGIP1"; chr1 UCSC exon 67154831 67154958 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "16"; exon_id "NM_032291.16"; gene_name "SGIP1"; chr1 UCSC CDS 67154831 67154958 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "16"; exon_id "NM_032291.16"; gene_name "SGIP1"; chr1 UCSC exon 67155873 67155999 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "17"; exon_id "NM_032291.17"; gene_name "SGIP1"; chr1 UCSC CDS 67155873 67155999 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "17"; exon_id "NM_032291.17"; gene_name "SGIP1"; chr1 UCSC exon 67161117 67161176 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "18"; exon_id "NM_032291.18"; gene_name "SGIP1"; chr1 UCSC CDS 67161117 67161176 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "18"; exon_id "NM_032291.18"; gene_name "SGIP1"; chr1 UCSC exon 67184977 67185088 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "19"; exon_id "NM_032291.19"; gene_name "SGIP1"; chr1 UCSC CDS 67184977 67185088 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "19"; exon_id "NM_032291.19"; gene_name "SGIP1"; chr1 UCSC exon 67194947 67195102 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "20"; exon_id "NM_032291.20"; gene_name "SGIP1"; chr1 UCSC CDS 67194947 67195102 . + 1 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "20"; exon_id "NM_032291.20"; gene_name "SGIP1"; chr1 UCSC exon 67199431 67199563 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "21"; exon_id "NM_032291.21"; gene_name "SGIP1"; chr1 UCSC CDS 67199431 67199563 . + 1 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "21"; exon_id "NM_032291.21"; gene_name "SGIP1"; chr1 UCSC exon 67205018 67205220 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "22"; exon_id "NM_032291.22"; gene_name "SGIP1"; chr1 UCSC CDS 67205018 67205220 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "22"; exon_id "NM_032291.22"; gene_name "SGIP1"; chr1 UCSC exon 67206341 67206405 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "23"; exon_id "NM_032291.23"; gene_name "SGIP1"; chr1 UCSC CDS 67206341 67206405 . + 1 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "23"; exon_id "NM_032291.23"; gene_name "SGIP1"; chr1 UCSC exon 67206955 67207119 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "24"; exon_id "NM_032291.24"; gene_name "SGIP1"; chr1 UCSC CDS 67206955 67207119 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "24"; exon_id "NM_032291.24"; gene_name "SGIP1"; chr1 UCSC exon 67208756 67210768 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "25"; exon_id "NM_032291.25"; gene_name "SGIP1"; chr1 UCSC CDS 67208756 67208775 . + 2 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "25"; exon_id "NM_032291.25"; gene_name "SGIP1"; chr1 UCSC 3UTR 67208779 67210768 . + . gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "25"; exon_id "NM_032291.25"; gene_name "SGIP1"; chr1 UCSC start_codon 67000042 67000044 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "1"; exon_id "NM_032291.1"; gene_name "SGIP1"; chr1 UCSC stop_codon 67208776 67208778 . + 0 gene_id "SGIP1"; transcript_id "NM_032291"; exon_number "1"; exon_id "NM_032291.1"; gene_name "SGIP1"; chr1 UCSC exon 8384390 8384786 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "1"; exon_id "NM_001080397.1"; gene_name "SLC45A1"; chr1 UCSC CDS 8384390 8384786 . + 0 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "1"; exon_id "NM_001080397.1"; gene_name "SLC45A1"; chr1 UCSC exon 8385358 8385450 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "2"; exon_id "NM_001080397.2"; gene_name "SLC45A1"; chr1 UCSC CDS 8385358 8385450 . + 2 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "2"; exon_id "NM_001080397.2"; gene_name "SLC45A1"; chr1 UCSC exon 8385878 8386102 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "3"; exon_id "NM_001080397.3"; gene_name "SLC45A1"; chr1 UCSC CDS 8385878 8386102 . + 2 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "3"; exon_id "NM_001080397.3"; gene_name "SLC45A1"; chr1 UCSC exon 8390269 8390996 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "4"; exon_id "NM_001080397.4"; gene_name "SLC45A1"; chr1 UCSC CDS 8390269 8390996 . + 2 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "4"; exon_id "NM_001080397.4"; gene_name "SLC45A1"; chr1 UCSC exon 8395497 8395650 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "5"; exon_id "NM_001080397.5"; gene_name "SLC45A1"; chr1 UCSC CDS 8395497 8395650 . + 0 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "5"; exon_id "NM_001080397.5"; gene_name "SLC45A1"; chr1 UCSC exon 8397876 8398052 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "6"; exon_id "NM_001080397.6"; gene_name "SLC45A1"; chr1 UCSC CDS 8397876 8398052 . + 2 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "6"; exon_id "NM_001080397.6"; gene_name "SLC45A1"; chr1 UCSC exon 8399553 8399758 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "7"; exon_id "NM_001080397.7"; gene_name "SLC45A1"; chr1 UCSC CDS 8399553 8399758 . + 2 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "7"; exon_id "NM_001080397.7"; gene_name "SLC45A1"; chr1 UCSC exon 8403807 8404227 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "8"; exon_id "NM_001080397.8"; gene_name "SLC45A1"; chr1 UCSC CDS 8403807 8404070 . + 0 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "8"; exon_id "NM_001080397.8"; gene_name "SLC45A1"; chr1 UCSC 3UTR 8404074 8404227 . + . gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "8"; exon_id "NM_001080397.8"; gene_name "SLC45A1"; chr1 UCSC start_codon 8384390 8384392 . + 0 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "1"; exon_id "NM_001080397.1"; gene_name "SLC45A1"; chr1 UCSC stop_codon 8404071 8404073 . + 0 gene_id "SLC45A1"; transcript_id "NM_001080397"; exon_number "1"; exon_id "NM_001080397.1"; gene_name "SLC45A1"; chr1 UCSC exon 25071760 25072116 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "1"; exon_id "NM_013943.1"; gene_name "CLIC4"; chr1 UCSC 5UTR 25071760 25072044 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "1"; exon_id "NM_013943.1"; gene_name "CLIC4"; chr1 UCSC CDS 25072045 25072116 . + 0 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "1"; exon_id "NM_013943.1"; gene_name "CLIC4"; chr1 UCSC exon 25124233 25124342 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "2"; exon_id "NM_013943.2"; gene_name "CLIC4"; chr1 UCSC CDS 25124233 25124342 . + 0 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "2"; exon_id "NM_013943.2"; gene_name "CLIC4"; chr1 UCSC exon 25140585 25140710 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "3"; exon_id "NM_013943.3"; gene_name "CLIC4"; chr1 UCSC CDS 25140585 25140710 . + 1 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "3"; exon_id "NM_013943.3"; gene_name "CLIC4"; chr1 UCSC exon 25153501 25153607 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "4"; exon_id "NM_013943.4"; gene_name "CLIC4"; chr1 UCSC CDS 25153501 25153607 . + 1 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "4"; exon_id "NM_013943.4"; gene_name "CLIC4"; chr1 UCSC exon 25166351 25166532 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "5"; exon_id "NM_013943.5"; gene_name "CLIC4"; chr1 UCSC CDS 25166351 25166532 . + 2 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "5"; exon_id "NM_013943.5"; gene_name "CLIC4"; chr1 UCSC exon 25167264 25170815 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "6"; exon_id "NM_013943.6"; gene_name "CLIC4"; chr1 UCSC CDS 25167264 25167425 . + 0 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "6"; exon_id "NM_013943.6"; gene_name "CLIC4"; chr1 UCSC 3UTR 25167429 25170815 . + . gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "6"; exon_id "NM_013943.6"; gene_name "CLIC4"; chr1 UCSC start_codon 25072045 25072047 . + 0 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "1"; exon_id "NM_013943.1"; gene_name "CLIC4"; chr1 UCSC stop_codon 25167426 25167428 . + 0 gene_id "CLIC4"; transcript_id "NM_013943"; exon_number "1"; exon_id "NM_013943.1"; gene_name "CLIC4"; chr1 UCSC exon 16767167 16767348 . + . gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "1"; exon_id "NM_018090.1"; gene_name "NECAP2"; chr1 UCSC 5UTR 16767167 16767256 . + . gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "1"; exon_id "NM_018090.1"; gene_name "NECAP2"; chr1 UCSC CDS 16767257 16767348 . + 0 gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "1"; exon_id "NM_018090.1"; gene_name "NECAP2"; chr1 UCSC exon 16770127 16770227 . + . gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "2"; exon_id "NM_018090.2"; gene_name "NECAP2"; chr1 UCSC CDS 16770127 16770227 . + 1 gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "2"; exon_id "NM_018090.2"; gene_name "NECAP2"; chr1 UCSC exon 16774365 16774469 . + . gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "3"; exon_id "NM_018090.3"; gene_name "NECAP2"; chr1 UCSC CDS 16774365 16774469 . + 2 gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "3"; exon_id "NM_018090.3"; gene_name "NECAP2"; chr1 UCSC exon 16774555 16774636 . + . gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "4"; exon_id "NM_018090.4"; gene_name "NECAP2"; chr1 UCSC CDS 16774555 16774636 . + 2 gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "4"; exon_id "NM_018090.4"; gene_name "NECAP2"; chr1 UCSC exon 16775588 16775696 . + . gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "5"; exon_id "NM_018090.5"; gene_name "NECAP2"; chr1 UCSC CDS 16775588 16775696 . + 1 gene_id "NECAP2"; transcript_id "NM_018090"; exon_number "5"; exon_id "NM_018090.5"; gene_name "NECAP2"; Gviz/inst/extdata/test.wig0000644000126300012640000000013412227067652017161 0ustar00biocbuildphs_compbiofixedStep chrom=chr19 start=49302001 step=300 span=300 -1 -0.75 -0.2 -0.1 0 0.25 0.4 0.55 1 Gviz/inst/lib/0000755000126300012640000000000012227067651014607 5ustar00biocbuildphs_compbioGviz/inst/lib/testUCSC.pl0000755000126300012640000000150412227067651016604 0ustar00biocbuildphs_compbio#!/usr/bin/perl -w use LWP; ##my $ARGV = @ARGV my $ua = new LWP::UserAgent(); $ua->proxy(['http'] => "http://cache2.na.novartis.net:80"); my $resp = $ua->post("http://genome.ucsc.edu/cgi-bin/hgGateway"); my $code = $resp->code(); if ( !$resp->is_success ) { print STDERR "error: " . $resp->error_as_HTML . "\n"; } my $hgsid; if (scalar(@ARGV) < 4) { my $txt = $resp->content(); ($hgsid) = $txt =~ /NAME\=\'hgsid\'\s+VALUE\=\'(\d+)\'/; print "$hgsid\n"; } else { $hgsid = $ARGV[3]; } $req = $ua->post("http://genome.ucsc.edu/cgi-bin/hgCustom", ["hgt.customFile" => [$ARGV[0]], "org" => $ARGV[1], "db" => $ARGV[2], "hgsid"=>$hgsid, "clade" => 'mammal'], 'Content_Type' => 'form-data'); $code = $req->code(); if ( !$req->is_success ) { print STDERR "error: " . $req->error_as_HTML . "\n"; } Gviz/inst/lib/ucscUrl.pl0000755000126300012640000000170712227067651016574 0ustar00biocbuildphs_compbio#!/usr/bin/perl -w use LWP; ##my $ARGV = @ARGV my $ua = new LWP::UserAgent(); $ua->proxy(['http'] => "http://cache2.na.novartis.net:80"); my $resp = $ua->post("http://genome.ucsc.edu/cgi-bin/hgGateway"); my $code = $resp->code(); if ( !$resp->is_success ) { print STDERR "error: " . $resp->error_as_HTML . "\n"; } my $hgsid; if (scalar(@ARGV) < 7) { my $txt = $resp->content(); ($hgsid) = $txt =~ /NAME\=\'hgsid\'\s+VALUE\=\'(\d+)\'/; print "http://genome.ucsc.edu/cgi-bin/hgTracks?hgsid=".$hgsid."&Submit=go+to+genome+browser&position=chr".$ARGV[3]."%3A".$ARGV[4]."-".$ARGV[5]."\n"; } else { $hgsid = $ARGV[6]; } $req = $ua->post("http://genome.ucsc.edu/cgi-bin/hgCustom", ["hgt.customFile" => [$ARGV[0]], "org" => $ARGV[1], "db" => $ARGV[2], "hgsid"=>$hgsid, "clade" => 'mammal'], 'Content_Type' => 'form-data'); $code = $req->code(); if ( !$req->is_success ) { print STDERR "error: " . $req->error_as_HTML . "\n"; } Gviz/inst/scripts/0000755000126300012640000000000012227067651015530 5ustar00biocbuildphs_compbioGviz/inst/scripts/documentation.R0000644000126300012640000014731612227067651020540 0ustar00biocbuildphs_compbio## smart character coercion toChar <- function(x) { if(length(x)>1) return(sprintf("c(\"%s\")", paste(x, collapse="\", \""))) if(is.null(x)) return("NULL") if(is.function(x)) return(substitute(x)) if(is.numeric(x)) return(x) if(is.logical(x)) return(as.character(x)) else return(sprintf("\"%s\"", as.character(x))) } ## Find the best line break point in a text .findBestBreak <- function(x, chars=70) { if(nchar(x)<=chars) return(x) xs <- strsplit(x, " ")[[1]] ind <- which.min(abs(cumsum(nchar(xs)+1)-chars)) xres <- paste(xs[1:ind], collapse=" ", sep="") if(length(xs)>=(ind+1)) xres <- c(xres, paste(xs[(ind+1):length(xs)], collapse=" ", sep="")) return(xres) } ## Emacs-style code formatting indent <- function(x, level=0, block=TRUE, chars=70) { space <- " " level <- rep(level, length(x))[1:length(x)] indent <- sapply(level, function(y) paste(rep(space, y), collapse="")) indent2 <- as.vector(sapply(indent, function(y) paste(y, rep(space, as.integer(!block)), collapse="", sep=""))) xc <- mapply(function(y, z) paste(y, gsub(" {2,}", " ", gsub(" *\\}", "}", gsub("\\{ *", "{", gsub("\n+", "",z)))), collapse="", sep=""), indent, x) res <- mapply(function(y,z){ tmp <- .findBestBreak(y) xres <- tmp[1] while(length(tmp)==2 & nchar(tmp[2])>68) { tmp <- .findBestBreak(paste(z, tmp[2], collapse="", sep=""), chars=chars) xres <- c(xres, tmp[1]) } if(length(tmp)==2) xres <- c(xres, paste(z, tmp[2], collapse="", sep="")) return(paste(xres, collapse="\n", sep="")) }, xc, indent2) return(res) } .tag <- function(x){ tmp <- sub("\\\\", "", attr(x, "Rd_tag")) if(!length(tmp)) return(NA) else return(tmp) } .tags <- function(x) sapply(x, .tag) .tagValue <- function(x) { if(is.na(.tag(x))) return(x) if(.tag(x) == "TEXT") return(as.character(x)) if(length(x)==1 && length(.tag(x[[1]]))) return(x[[1]]) if(length(x)==1 && !length(.tag(x[[1]]))) return(as.character(x)) if(length(x)>1 && length(.tags(x)[!is.na(.tags(x))])==length(x)) return(x) if(length(x)==2 && all(is.na(.tags(x)))) { attr(x[[1]], "Rd_tag") <- "_sectionContent" attr(x[[2]], "Rd_tag") <- "_sectionContent" return(x) } } .traverseRd <- function(x, tag, output=NULL) { tag <- tolower(tag) if(!is.na(.tag(x)) && tag == tolower(.tag(x))) { output <- c(output, .tagValue(x)) } for(child in x) { thisTag <- .tag(child) if(!is.na(thisTag)) { if(tag == tolower(thisTag)) { output <- c(output, .tagValue(child)) } output <- .traverseRd(.tagValue(child), tag, output) } } return(output) } ## create a documentation skeleton for the display parameters displayParsDoc <- function(class, details) { parents <- names(getClassDef(class)@contains) pars <- sapply(c(class, parents), function(x) as.list(getClassDef(x)@prototype@dp), simplify=FALSE) text <- c("\\section{Display Parameters}{", if(length(pars[[1]])) { pars[[1]] <- pars[[1]][order(names(pars[[1]]))] det <- details[[class]][names(pars[[1]])] if(is.null(det)) { warning("No details available for class '", class, "'") det <- "FIXME: PLEASE ADD PARAMETER DESCRIPTION." } else { det[is.na(det)] <- "FIXME: PLEASE ADD PARAMETER DESCRIPTION."} if(any(is.na(det))) warning("There are details missing for class '", class, "'. Please update the documentation") c(indent(paste("The following display parameters are set for objects of class \\code{", class, "} upon instantiation, unless one or more of them have already been set ", "by one of the optional sub-class initializers, which always get precedence over ", "these global defaults. See \\code{\\link{settings}} for details on ", "setting graphical parameters for tracks.\n\n \\describe{\n", sep=""), level=1), indent(sprintf("\\item{}{\\code{%s=%s}: %s}\n\n", names(pars[[1]]), sapply(pars[[1]], toChar), det), level=2, block=FALSE), indent("}", level=1)) } else indent(paste("No formal display parameters are defined for objects of class \\code{", class, "}.\n", sep=""), level=1)) pp <- pars[-1] pp <- pp[sapply(pp, length)>0] done <- names(pars[[1]]) if(!is.null(pp) && length(pp)>0) { text <- c(text, indent(c(paste("Additional display parameters are being inherited from the respective parent ", "classes. Note that not all of them may have an effect on the plotting of \\code{", class, "} objects.", sep=""),"\\describe{"), level=1:2)) for(i in names(pp)) { leftovers <- setdiff(names(pp[[i]]), done) done <- union(names(pp[[i]]), done) if(length(leftovers)) { pp[[i]] <- pp[[i]][leftovers][order(names(pp[[i]][leftovers]))] det <- details[[i]][names(pp[[i]])] if(is.null(det)) { warning("No details available for class '", i, "'") det <- "FIXME: PLEASE ADD PARAMETER DESCRIPTION." } else { det[is.na(det)] <- "FIXME: PLEASE ADD PARAMETER DESCRIPTION."} if(any(is.na(det))) warning("There are details missing for class '", i, "'. Please update the documentation") text <- c(text, indent(c(sprintf("\\item{}{\\code{\\linkS4class{%s}}:", i), "\\describe{"), level=2:3), indent(sprintf("\\item{}{\\code{%s=%s}: %s}\n", names(pp[[i]]), sapply(pp[[i]], toChar), det), level=4, block=FALSE), indent(rep("}", 2), level=3:2)) } } text <- c(text, indent("}", 1)) } text <- c(text, indent("}", 0)) return(paste(text, collapse=" \n\n")) } ## Parse though an Rd file, find 'section' in there and replace its content by 'content'. ## If there are parse errors in the Rd file either before or after injection the file ## will not be altered. injectContent <- function(file, content, section) { require(tools) tmp <- tryCatch(parse_Rd(file), warning=function(x) stop("Error parsing rd file:\n", x)) tags <- sapply(tmp, attr, "Rd_tag") ind1 <- grep(section, tags, ignore.case=TRUE) ind <- if(!length(ind1)) { sind <- grep("\\\\section", tags, ignore.case=TRUE) sind[grep(section, sapply(tmp[sind], function(x) as.character(x[[1]])), ignore.case=TRUE)] }else ind1 if(length(ind)>1) stop("Section '", section, "'is not unique in file '", file, "'") if(!length(ind)) tmp <- c(tmp, list(content)) else tmp[[ind]] <- content class(tmp) <- "Rd" file.copy(file, file.path(dirname(file), paste("~", basename(file), sep="")), overwrite=TRUE) writeLines(paste(as.character(as(tmp, "Rd")), collapse=""), file) trash <- tryCatch(parse_Rd(file), warning=function(x) { file.copy(file.path(dirname(file), paste("~", basename(file), sep="")), file, overwrite=TRUE) unlink(file.path(dirname(file), paste("~", basename(file), sep=""))) warning("Injected code is syntatically incorrect. File '", file, "' has not been changed.\n", "Message:\n", x)}) return(invisible(content)) } ## Create display parameters desction for the settings man page that list all availabe parameters for all classes allDisplayParsDoc <- function(details) { text <- indent(c("\\section{Display Parameters}{", "\\describe{"), level=0:1) for(cl in c("GenomeAxisTrack", "DataTrack", "IdeogramTrack", "AnnotationTrack", "GeneRegionTrack", "BiomartGeneRegionTrack", "AlignedReadTrack")) { parents <- names(getClassDef(cl)@contains) pars <- sapply(c(cl, parents), function(x) as.list(getClassDef(x)@prototype@dp), simplify=FALSE) text <- c(text, indent(c(sprintf("\\item{%s}{:", cl), ifelse(length(pars[[1]]), "\\describe{", "{")), level=2:3)) done <- NULL for(p in names(pars)) { todo <- setdiff(names(pars[[p]]), done) done <- union(done, names(pars[[p]])) if(length(todo)) { det <- details[[p]][todo] if(is.null(det)) { warning("No details available for class '", p, "'") det <- "FIXME: PLEASE ADD PARAMETER DESCRIPTION." }else { det[is.na(det)] <- "FIXME: PLEASE ADD PARAMETER DESCRIPTION."} if(any(is.na(det))) warning("There are details missing for class '", p, "'. Please update the documentation") if(p!=cl) { text <- c(text, indent(c("}", sprintf("\\bold{\\emph{Inherited from class %s:}}", p), "\\describe{"), level=3)) } text <- c(text, indent(sprintf("\\item{}{\\code{%s=%s}: %s}", todo, sapply(pars[[p]][todo], toChar), det), level=4, block=FALSE)) } } text <- c(text, indent(rep("}", 2), level=3:2)) } text <- c(text, indent(rep("}", 2), level=1:0)) return(paste(text, collapse=" \n\n", sep="")) } updateRdFile <- function(class, outdir) { file <- file.path(outdir, paste(class, "class.Rd", sep="-")) content <- displayParsDoc(class, details=details) injectContent(file, content, "Display Parameters") } updateSettingsFile <- function(outdir) { file <- file.path(outdir, "settings.Rd") content <- allDisplayParsDoc(details=details) injectContent(file, content, "Display Parameters") } updateLinks <- function(outdir, toUpdate) { if(missing(toUpdate)) toUpdate <- dir(outdir, pattern="^[^~].*") toUpdate <- file.path(outdir, basename(toUpdate)) res <- NULL for(f in toUpdate) { tmp <- suppressWarnings(parse_Rd(f)) classes <- unique(.traverseRd(tmp, "linkS4class")) functions <- setdiff(unique(.traverseRd(tmp, "link")), classes) if(!length(functions) && !length(classes)) res <- c(res, injectContent(f, "", "seealso")) else { text <- c("\\seealso{", if(!is.null(classes)) indent(paste("\\code{\\linkS4class{", sort(classes), "}}", sep=""), 1) else "", if(!is.null(functions)) indent(paste("\\code{\\link{", sort(functions), "}}", sep=""), 1) else "", "}") res <- c(res, injectContent(f, paste(text, collapse="\n\n"), "seealso")) } } return(res) } details <- list( IdeogramTrack=c(fill="Character scalar. The fill color used for the highlighting of the currently displayed genomic region.", col="Character scalar. The border color used for the highlighting of the currently displayed genomic region.", lwd="Numeric scalar. The line width used for the highlighting of the currently displayed genomic region.", lty="Character or integer scalar. The line type used for the highlighting of the currently displayed genomic region.", fontcolor="Character scalar. The font color for the chromosome name text.", fontface="Character scalar. The font face for the chromosome name text.", fontfamily="Character scalar. The font family for the chromosome name text.", cex="Numeric scalar. The overall font expansion factor for the chromosome name text.", size="Numeric scalar. The relative size of the track. Defaults to automatic size setting. Can be overridden in the \\code{\\link{plotTracks}} function.", showId="Logical scalar. Indicate the chromosome name next to the ideogram.", showBandId="Logical scalar. Show the identifier for the chromosome bands if there is space for it.", cex.bands="Numeric scalar. The font expansion factor for the chromosome band identifier text.", bevel="Numeric scalar, between 0 and 1. The level of smoothness for the two ends of the ideogram.", showTitle="Logical scalar. Plot a title panel. Defaults to omit the title panel.", background.title="Character scalar. The background color for the title panel. Defaults to omit the background.", fontsize="Numeric scalar. The font size for the chromosome name text."), DataTrack=c(jitter.x="Logical scalar. Toggle on jittering on the x axis in xy-type plots. See \\code{\\link{panel.xyplot}} for details.", jitter.y="Logical scalar. Toggle off jittering on the y axis in xy-type plots. See \\code{\\link{panel.xyplot}} for details.", factor="Numeric scalar. Factor to control amount of jittering in xy-type plots. See \\code{\\link{panel.xyplot}} for details.", amount="Numeric scalar. Amount of jittering in xy-type plots. See \\code{\\link{panel.xyplot}} for details.", span="Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \\code{\\link{panel.loess}} for details.", degree="Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \\code{\\link{panel.loess}} for details.", family="Character scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \\code{\\link{panel.loess}} for details.", evaluation="Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \\code{\\link{panel.loess}} for details.", baseline="Numeric scalar. Y-axis position of an optional baseline. This parameter has a special meaning for mountain-type and polygon-type plots, see the 'Details' section in \\code{\\linkS4class{DataTrack}} for more information.", col.baseline="Character scalar. Color for the optional baseline, defaults to the setting of \\code{col}.", pch="Integer scalar. The type of glyph used for plotting symbols.", lwd.baseline="Numeric scalar. Line width of the optional baseline, defaults to the setting of \\code{lwd}.", lty.baseline="Character or numeric scalar. Line type of the optional baseline, defaults to the setting of \\code{lty}.", col="Character vector. The base colors to use for all plot types. Unless \\code{groups} are specified, only the first color in the vector is usually taken.", col.mountain="Character scalar. Line color in mountain-type and polygon-type plots, defaults to the setting of \\code{col}.", lwd.mountain="Numeric scalar. Line width in mountain-type and polygon-type plots, defaults to the setting of \\code{lwd}.", lty.mountain="Character or numeric scalar. Line type in mountain-type and polygon-type plots, defaults to the setting of \\code{lty}.", fill.mountain="Character vector of length 2. Fill color in mountain-type and polygon-type plots.", fill.histogram="Character scalar. Fill color in histogram-type plots, defaults to the setting of \\code{fill}.", col.histogram="Character scalar. Line color in histogram-type plots.", stackedBars="Logical scalar. When there are several data groups, draw the histogram-type plots as stacked barplots or grouped side by side.", box.ratio="Numeric scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", box.width="Numeric scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", varwidth="Logical scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", notch="Logical scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", notch.frac="Numeric scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", levels.fos="Numeric scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", stats="Function. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", coef="Numeric scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", do.out="Logical scalar. Parameter controlling the boxplot appearance. See \\code{\\link{panel.bwplot}} for details.", size="Numeric scalar. The relative size of the track. Can be overridden in the \\code{\\link{plotTracks}} function. By default the size will be set automatically based on the selected plotting type.", type="Character vector. The plot type, one or several in \\code{c(\"p\",\"l\", \"b\", \"a\", \"s\", \"g\", \"r\", \"S\", \"smooth\", \"histogram\", \"mountain\", \"polygon\", \"h\", \"boxplot\", \"gradient\", \"heatmap\")}. See 'Details' section in \\code{\\linkS4class{DataTrack}} for more information on the individual plotting types.", cex="Numeric scalar. The default pixel size for plotting symbols.", ncolor="Integer scalar. The number of colors for the 'gradient' plotting type", gradient="Character vector. The base colors for the 'gradient' plotting type or the 'heatmap' type with a single group. When plotting heatmaps with more than one group, the 'col' parameter can be used to control the group color scheme, however the gradient will always be from white to 'col' and thus does not offer as much flexibility as this 'gradient' parameter.", collapse="Logical scalar. Collapse overlapping ranges and aggregate the underlying data.", min.distance="Numeric scalar. The mimimum distance in pixel below which to collapse ranges.", window="Numeric or character scalar. Aggregate the rows values of the data matrix to \\code{window} equally sized slices on the data range using the method defined in \\code{aggregation}. If negative, apply a running window of size \\code{windowSize} using the same aggregation method. Alternatively, the special value \\code{auto} causes the function to determine the optimal window size to avoid overplotting.", windowSize="Numeric scalar. The size of the running window when the value of \\code{window} is negative.", separator="Numeric scalar. Number of pixels used to separate individual samples in heatmap-type plots.", transformation="Function. Applied to the data matrix prior to plotting or when calling the \\code{score} method. The function should accept exactly one input argument and its return value needs to be a numeric vector which can be coerced back into a data matrix of identical dimensionality as the input data.", groups="Vector coercable to a factor. Optional sample grouping. See 'Details' section in \\code{\\linkS4class{DataTrack}} for further information.", aggregation="Function or character scalar. Used to aggregate values in windows or for collapsing overlapping items. The function has to accept a numeric vector as a single input parameter and has to return a numeric scalar with the aggregated value. Alternatively, one of the predefined options \\code{mean}, \\code{median} \\code{sum}, \\code{min}, \\code{max} or \\code{extreme} can be supplied as a character scalar. Defaults to \\code{mean}.", aggregateGroups="Logical scalar. Aggregate the values within a sample group using the aggregation funnction specified in the \\code{aggregate} parameter.", ylim="Numeric vector of length 2. The range of the y-axis scale.", h="Integer scalar. Parameter controlling the number of vertical grid lines, see \\code{\\link{panel.grid}} for details.", v="Integer scalar. Parameter controlling the number of vertical grid lines, see \\code{\\link{panel.grid}} for details.", col="Character or integer scalar. The color used for all line and symbol elements, unless there is a more specific control defined elsewhere.", lwd="Integer scalar. The line width for all line elements, unless there is a more specific control defined elsewhere.", lty="Character or integer scalar. The type for all line elements, unless there is a more specific control defined elsewhere.", fill="Character scalar. The fill color for area elements, unless there is a more specific control defined elsewhere.", alpha="Numeric scalar between 0 and 1. The opacity of the plotting elements, if supported by the device.", lwd.grid="Integer scalar. The line width for grid elements. Defaults to the setting of \\code{lwd}.", col.grid="Integer scalar. The line color for grid elements.", lty.grid="Integer scalar. The line type for grid elements. Defaults to the setting of \\code{lty}.", col.line="Character or integer scalar. The color used for line elements. Defaults to the setting of \\code{col}.", col.symbol="Character or integer scalar. The color used for symbol elements. Defaults to the setting of \\code{col}.", na.rm="Boolean controlling whether to discard all NA values when plotting or to keep empty spaces for NAs", legend="Boolean triggering the addition of a legend to the track to indicate groups. This only has an effect if at least two groups are presen.", cex.legend="Numeric scalar. The size factor for the legend text.", fontsize.legend="Numeric scalar. The pixel size for the legend text.", fontface.legend="Integer or character scalar. The font face for the legend text.", fontfamily.legend="Integer or character scalar. The font family for the legend text.", lineheight.legend="Numeric scalar. The line height for the legend text.", fontcolor.legend="Integer or character scalar. The font color for the legend text.", showSampleNames="Boolean. Display the names of the individual samples in a heatmap plot.", cex.sampleNames="Numeric scalar. The size factor for the sample names text in heatmap plots. Defaults to an automatic setting.", col.sampleNames="Character or integer scalar. The color used for the sample names in heatmap plots.", showColorBar="Boolean. Indicate the data range color mapping in the axis for 'heatmap' or 'gradient' types.", horizon.origin="The baseline relative to which changes are indicated on the \\code{horizon}-type plot. See \\code{\\link{horizonplot}} for details.", horizon.scale="The scale for each of the segments in the \\code{horizon}-type plot. Defaults to 1/3 of the absolute data range. See \\code{\\link{horizonplot}} for details.", fill.horizon="The fill colors for the segments in the \\code{horizon}-type plot. this should be a vector of length six, where the first three entries are the colors for positive changes, and the latter three entries are the colors for negative changes. Defaults to a red-blue color scheme. See \\code{\\link{horizonplot}} for details.", col.horizon="The line color for the segments in the \\code{horizon}-type plot. See \\code{\\link{horizonplot}} for details." ), StackedTrack=c(reverseStacking="Logical flag. Reverse the y-ordering of stacked items. I.e., features that are plotted on the bottom-most stacks will be moved to the top-most stack and vice versa.", stackHeight="Numeric between 0 and 1. Controls the vertical size and spacing between stacked elements. The number defines the proportion of the total available space for the stack that is used to draw the glyphs. E.g., a value of 0.5 means that half of the available vertical drawing space (for each stacking line) is used for the glyphs, and thus one quarter of the available space each is used for spacing above and below the glyph. Defaults to 0.75."), GdObject=c(fontsize="Numeric scalar. The font size for all text.", fontface="Integer or character scalar. The font face for all text.", fontcolor="Integer or character scalar. The font color for all text.", fontfamily="Integer or character scalar. The font family for all text.", lineheight="Numeric scalar. The font line height for all text.", cex="Numeric scalar. The overall font expansion factor for all text.", col="Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.", fill="Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.", lwd="Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.", lty="Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.", col.line="Integer or character scalar. Default colors for plot lines. Usually the same as the global \\code{col} parameter.", col.symbol="Integer or character scalar. Default colors for plot symbols. Usually the same as the global \\code{col} parameter.", col.grid="Integer or character scalar. Default line color for grid lines, both when \\code{type==\"g\"} in \\code{\\link{DataTrack}}s and when display parameter \\code{grid==TRUE}.", lwd.grid="Numeric scalar. Default line width for grid lines, both when \\code{type==\"g\"} in \\code{\\link{DataTrack}}s and when display parameter \\code{grid==TRUE}.", lty.grid="Integer or character scalar. Default line type for grid lines, both when \\code{type==\"g\"} in \\code{\\link{DataTrack}}s and when display parameter \\code{grid==TRUE}.", v="Integer scalar. Parameter controlling the number of vertical grid lines, see \\code{\\link{panel.grid}} for details.", h="Integer scalar. Parameter controlling the number of horizontal grid lines, see \\code{\\link{panel.grid}} for details.", alpha="Numeric scalar. The transparency for all track items.", background.title="Integer or character scalar. The background color for the title panels.", col.title="Integer or character scalar. The font color for the title panels.", col.title.border="Integer or character scalar. The border color for the title panels", lwd.title.border="Integer scalar. The border width for the title panels", col.frame="Integer or character scalar. The line color used for the panel frame, if \\code{frame==TRUE}", cex.title="Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \\code{NULL}, which means that the text size is automatically adjusted to the available space.", fontfamily.title="Integer or character scalar. The font family for the title panels.", fontface.title="Integer or character scalar. The font face for the title panels.", col.axis="Integer or character scalar. The font and line color for the y axis, if any.", cex.axis="Numeric scalar. The expansion factor for the axis annotation. Defaults to \\code{NULL}, in which case it is computed based on the available space.", background.panel="Integer or character scalar. The background color of the content panel.", showTitle="Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \\code{\\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.", showAxis="Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).", grid="Boolean, switching on/off the plotting of a grid.", collapse="Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \\code{\\link{collapsing}} for details.", min.width="Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \\code{\\link{collapsing}} for details.", min.height="Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \\code{\\link{collapsing}} for details.", min.distance="Numeric scalar. The minimum pixel distance before collapsing range items, only if \\code{collapse==TRUE}. See \\code{\\link{collapsing}} for details.", rot.title="The rotation angle for the text in the title panel. Even though this can be adjusted, the automatic resizing of the title panel will currently not work, so use at own risk.", frame="Boolean. Draw a frame around the track when plotting.", size="Numeric scalar. The relative size of the track. Can be overridden in the \\code{\\link{plotTracks}} function.", "..."="additional display parameters are allowed. Those typically take the value of a valid R color descriptors. The parameter names will later be matched to optional track item types as defined in the 'feature' range attribute, and all tracks of the matched types are colored accordingly. See the documentation of the \\code{\\link{GeneRegionTrack}} and \\code{\\link{AnnotationTrack}} classes as well as \\code{\\link{grouping}} for details."), GenomeAxisTrack=c(col="Character scalar. The color for the axis lines and tickmarks.", col.range="Character scalar. The border color for highlighted regions on the axis.", fill.range="Character scalar. The fill color for highlighted regions on the axis.", col.id="Character scalar. The text color for the optional range annotation.", cex.id="Numeric scalar. The text size for the optional range annotation.", showId="Logical scalar. Show the optional range highlighting annotation.", fontcolor="Character scalar. The font color for the axis annotation text.", fontsize="Numeric scalar. Font size for the axis annotation text in points.", lwd="Numeric scalar. The line width for the axis elementes.", cex="Numeric scalar. The overall font expansion factor for the axis annotation text.", size="Numeric scalar. The relative size of the track. Can be overridden in the \\code{\\link{plotTracks}} function. Defaults to the ideal size based on the other track settings.", showTitle="Logical scalar. Plot a title panel. Defaults to omit the title panel.", background.title="Character scalar. The background color for the title panel. Defaults to omit the background.", add53="Logical scalar. Add 5' to 3' direction indicators.", add35="Logical scalar. Add 3' to 5' direction indicators.", exponent="Numeric scalar. The exponent for the axis coordinates, e.g., 3 means mb, 6 means gb, etc. The default is to automatically determine the optimal exponent.", labelPos="Character vector, one in \"alternating\", \"revAlternating\", \"above\" or \"below\". The vertical positioning of the axis labels. If \\code{scale} is not \\code{NULL}, the possible values are \"above\", \"below\" and \"beside\".", littleTicks="Logical scalar. Add more fine-grained tick marks.", distFromAxis="Numeric scalar. Control the distance of the axis annotation from the tick marks.", fontface="Character scalar. The font face for the axis annotation text.", fontfamily="Character scalar. The font family for the axis annotation text.", scale="Numeric scalar. If not \\code{NULL} a small scale is drawn instead of the full axis, if the value is between 0 and 1 it is interpreted as a fraction of the current plotting region, otherwise as an absolute length value in genomic coordinates."), AnnotationTrack=c(fill="Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", col="Character or integer scalar. The border color for all track items.", col.line="Character scalar. The color used for connecting lines between grouped items. Defaults to a light gray, but if set to \\code{NULL} the same color as for the first item in the group is used.", lty="Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", lwd="Integer scalar. The line width for all track items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", lex="Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", fontface="Integer scalar. The font face for item identifiers.", fontcolor="Character or integer scalar. The font color for item identifiers.", fontsize="Numeric scalar. The font size for item identifiers.", fontfamily="Character scalar. The font family for item identifiers.", lineheight="Numeric scalar. The font line height for item identifiers.", cex="Numeric scalar. The font expansion factor for item identifiers.", rotation="Numeric scalar. The degree of text rotation for item identifiers.", size="Numeric scalar. The relative size of the track. Can be overridden in the \\code{\\link{plotTracks}} function.", showFeatureId="Logical scalar. Control whether to plot the individual track item identifiers.", showId="Logical scalar. Control whether to annotate individual groups.", cex.group="Numeric scalar. The font expansion factor for the group-level annotation.", fontface.group="Numeric scalar. The font face for the group-level annotation.", fontfamily.group="Character scalar. The font family for the group-level annotation.", fontsize.group="Numeric scalar. The font size for the group-level annotation.", fontcolor.group="Character or integer scalar. The font color for the group-level annotation.", shape="Character scalar. The shape in which to display the track items. Currently only \\code{box}, \\code{arrow}, \\code{ellipse}, and \\code{smallArrow} are implemented.", showOverplotting="Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \\code{collapse==TRUE}", min.width="Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \\code{\\link{collapsing}} for details.", min.height="Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \\code{\\link{collapsing}} for details. For feathered bars indicating the strandedness of grouped items this also controls the height of the arrow feathers.", alpha="Numeric scalar between 0 and 1. The opacity of the plotting elements, if supported by the device.", mergeGroups="Logical scalar. Merge fully overlapping groups if \\code{collapse==TRUE}."), DetailsAnnotationTrack=c(details.size="Numeric scalar. The fraction of vertical space of the track used for the details section.", details.minWidth="Numeric scalar. The minium width in pixels for a details panel, if less space is available no details are plotted.", detailsConnector.col="Character or integer scalar. Color of the line connecting the \\code{AnnotstionTrack} item with its details panel.", detailsConnector.lty="Character or integer scalar. Type of connecting line.", detailsConnector.lwd="Integer scalar. Line width of the connector.", detailsConnector.pch="Integer scalar. Type of the connector's ends.", detailsConnector.cex="Numeric scalar. Relative size of the connector's end points.", detailsBorder.lty="Character or integer scalar. Line type of the border around each details panel.", detailsBorder.lwd="Integer scalar. Line width of the border.", detailsBorder.col="Character or integer scalar. Line color of the border.", detailsBorder.fill="Character or integer scalar. Background color of the border.", details.ratio="Numeric scalar. By default, the plotting method tries to fill all available space of the details panel tiles. Depending on the dimensions of your plot and the number of tiles this may lead to fairly stretched plots. Restricting the ration of width over height can help to fine tune for somewhat more sane graphics in these cases. Essentially this adds some white space in between individual tiles to force the desired ratio. Together with the \\code{size} and \\code{details.size} arguments, which control the vertical extension of the whole track and of the details section, this allows for some fairly generic resizing of the tiles.", detailsFunArgs="List.Additional arguments that get passed on the the details plotting function.", groupDetails="Logial scalar. Plot details for feature groups rather than for individual features."), GeneRegionTrack=c(min.distance="Numeric scalar. The minimum pixel distance before collapsing range items, only if \\code{collapse==TRUE}. See \\code{\\link{collapsing}} for details. Note that a value larger than 0 may lead to UTR regions being merged to CDS regions, which in most cases is not particularly useful.", fill="Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", col="Character or integer scalar. The border color for all track items. Defaults to using the same color as in \\code{fill}, also taking into account different track \\code{features}.", lty="Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", lwd="Integer scalar. The line width for all track items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", lex="Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \\code{\\link{grouping}} for details.", fontface="Integer scalar. The font face for item identifiers.", fontcolor="Character or integer scalar. The font color for item identifiers.", fontsize="Numeric scalar. The font size for item identifiers.", fontfamily="Character scalar. The font family for item identifiers.", lineheight="Numeric scalar. The font line height for item identifiers.", cex="Numeric scalar. The font expansion factor for item identifiers.", rotation="Numeric scalar. The degree of text rotation for item identifiers.", size="Numeric scalar. The relative size of the track. Can be overridden in the \\code{\\link{plotTracks}} function.", showExonId="Logical scalar. Control whether to plot the individual exon identifiers.", showId="Logical scalar. Control whether to annotate individual groups.", cex.group="Numeric scalar. The font expansion factor for the group-level annotation.", fontface.group="Numeric scalar. The font face for the group-level annotation.", fontfamily.group="Character scalar. The font family for the group-level annotation.", fontsize.group="Numeric scalar. The font size for the group-level annotation.", fontcolor.group="Character or integer scalar. The font color for the group-level annotation.", shape="Character scalar. The shape in which to display the track items. Currently only \\code{box}, \\code{arrow}, \\code{ellipse}, and \\code{smallArrow} are implemented.", showOverplotting="Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \\code{collapse==TRUE}", min.width="Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \\code{\\link{collapsing}} for details.", alpha="Numeric scalar between 0 and 1. The opacity of the plotting elements, if supported by the device.", geneSymbols="Logical scalar. Use human-readable gene symbols or gene IDs for the transcript annotation.", collapseTranscripts="Logical scalar. Merge all transcripts of the same gene into one single gene model. Essentially, this will only keep the start location of the first exon and the end location of the last exon from all transcripts of a gene.", thinBoxFeature="Character vector. A listing of feature types that should be drawn with thin boxes. Typically those are non-coding elements."), BiomartGeneRegionTrack=c("C_segment"="Character or integer scalar. Fill color for annotation objects of type 'C_segment'.", "D_segment"="Character or integer scalar. Fill color for annotation objects of type 'C_segment'.", "J_segment"="Character or integer scalar. Fill color for annotation objects of type 'C_segment'.", "miRNA"="Character or integer scalar. Fill color for annotation objects of type 'L_segment'.", "miRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'miRNA_pseudogene'.", "misc_RNA"="Character or integer scalar. Fill color for annotation objects of type 'misc_RNA'.", "misc_RNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'misc_RNA_pseudogene'.", "Mt_rRNA"="Character or integer scalar. Fill color for annotation objects of type 'Mt_rRNA'.", "Mt_tRNA"="Character or integer scalar. Fill color for annotation objects of type 'Mt_tRNA'.", "Mt_tRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'Mt_tRNA_pseudogene'.", "protein_coding"="Character or integer scalar. Fill color for annotation objects of type 'protein_coding'.", "pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'pseudogene'.", "retrotransposed"="Character or integer scalar. Fill color for annotation objects of type 'retrotransposed'.", "rRNA"="Character or integer scalar. Fill color for annotation objects of type 'rRNA'.", "rRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'rRNA_pseudogene'.", "scRNA"="Character or integer scalar. Fill color for annotation objects of type 'scRNA'.", "scRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'scRNA_pseudogene'.", "snoRNA"="Character or integer scalar. Fill color for annotation objects of type 'snoRNA'.", "snoRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'snoRNA_pseudogene'.", "snRNA"="Character or integer scalar. Fill color for annotation objects of type 'snRNA'.", "snRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'snRNA_pseudogene'.", "tRNA_pseudogene"="Character or integer scalar. Fill color for annotation objects of type 'tRNA_pseudogene'.", "V_segment"="Character or integer scalar. Fill color for annotation objects of type 'V_segment'."), AlignedReadTrack=c(fill="the fill color for the coverage indicator.", type="the plot type, one or several in \\code{c(\"p\",\"l\", \"b\", \"a\", \"s\", \"g\", \"r\", \"S\", \"smooth\", \"histogram\", \"mountain\", \"polygon\", \"h\", \"boxplot\", \"gradient\", \"heatmap\")}. See the 'Details' section in \\code{\\linkS4class{DataTrack}} for more information on the individual plotting types.", size="the relative size of the track. Defaults to size selection based on the underlying data. Can be overridden in the \\code{\\link{plotTracks}} function.", detail="the amount of detail to plot the data. Either \\code{coverage} to show the coverage only, or \\code{reads} to show individual reads. For large data sets the latter can be very inefficient. Please note that \\code{reads} is only available when the object has been created with option \\code{coverageOnly=FALSE}.", collapse="collapse overlapping ranges and aggregate the underlying data."), SequenceTrack=c(size="Numeric scalar. The size of the track item. Defaults to auto-detect the size based on the other parameter settings.", fontcolor="Character vector. The colors used for the 5 possible nucleotides (G, A, T, C, N). Defaults to use colors as defined in the \\code{biovizBase} package.", fontsize="Numeric scalar. Controls the size of the sequence and thus also the level of plotable details.", fontface="Numeric scalar. The face of the font.", lwd="Numeric scalar. The width of the line when no indiviual letters can be plotted due to size limitations.", col="Character scalar. The color of the line when no indiviual letters can be plotted due to size limitations.", min.width="Numeric scalar. The minimum width of the colored boxes that are drawn when no indiviual letters can be plotted due to size limitations.", showTitle="Logical scalar. Do not show a title panel by default.", background.title="Character scalar. Make the title panel transparent by default.", noLetters="Logical scalar. Always plot colored boxes (or a line) regardles of the available space", add53="Logical scalar. Add a direction indicator", complement="Logical scalar. Plot the sequence complement.")) updateDocumentation <- function(outdir="~/Rpacks/Gviz/man") { library(IRanges) library(rtracklayer) library(GenomicRanges) library(lattice) library(biomaRt) library(RColorBrewer) library(Biobase) library(grid) library(AnnotationDbi) ##source(file.path(dirname(outdir), "inst/scripts/sourcePackage.R")) dps <- sapply(c("GdObject", "GenomeAxisTrack", "RangeTrack", "NumericTrack", "DataTrack", "IdeogramTrack", "StackedTrack", "AnnotationTrack", "GeneRegionTrack", "BiomartGeneRegionTrack", "AlignedReadTrack"), updateRdFile, outdir) settings <- updateSettingsFile(outdir) links <- updateLinks(outdir) } Gviz/inst/scripts/functionality.R0000755000126300012640000002342212227067651020551 0ustar00biocbuildphs_compbiolibrary(Gviz) ## ------------------------------------------------- ## GenomeAxisTrack class ## ------------------------------------------------- ax <- GenomeAxisTrack() dev.new(height=1.5) par(ask=TRUE) ## basic plotting plotTracks(ax, from=1, to=100) ## automatic label setting plotTracks(ax, from=1, to=10000) plotTracks(ax, from=1, to=10000000) plotTracks(ax, from=1, to=10000000000) ## manual label setting plotTracks(ax, from=1, to=10000000000, exponent=8) plotTracks(ax, from=-3000000, to=10000000, exponent=4) ## direction indicators plotTracks(ax, from=1, to=10000, add53=TRUE) plotTracks(ax, from=1, to=10000, add53=TRUE, add35=TRUE) ## text size plotTracks(ax, from=1, to=10000, add53=TRUE, add35=TRUE, cex=1.5) plotTracks(ax, from=1, to=10000, add53=TRUE, add35=TRUE, cex=0.6) ## second level labels plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE) ## axis spacing plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, distFromAxis=2) ## ranges library(IRanges) ax <- GenomeAxisTrack(range=IRanges(start=c(1,670), end=c(321, 912)), id=c("foo", "bar")) plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE) ## range annotion plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE) plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE, cex.id=1.5) ## backgrounds plotTracks(ax, from=1, to=1000, background.panel="#DAE3E6") plotTracks(ax, from=1, to=1000, background.title="#DAE3E6") ## frame plotTracks(ax, from=1, to=1000, frame=TRUE) plotTracks(ax, from=1, to=1000, background.title="#DAE3E6", col.frame="darkblue", background.panel="#FFDDB5", frame=TRUE) ## colors plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE, col="darkgreen") plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE, fontcolor="darkred") plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE, col.id="darkblue") plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE, fill.range="salmon2") ## font settings plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, showId=TRUE, fontfamily="serif", fontface=3) ## line width plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, lwd=3) ## tick mark orientation plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, labelPos="revAlternating") plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, labelPos="above") plotTracks(ax, from=1, to=1000, add53=TRUE, add35=TRUE, littleTicks=TRUE, labelPos="below") ## ------------------------------------------------- ## IdeogramTrack class ## ------------------------------------------------- ## basic plotting plotTracks(id, from=10000000, to=20000000) ## colors plotTracks(id, from=10000000, to=20000000, col="darkblue", fill="lightblue") plotTracks(id, from=10000000, to=20000000, background.panel="lightgreen") plotTracks(id, from=10000000, to=20000000, fontcolor="red", background.title="lightgreen") ## line type plotTracks(id, from=10000000, to=20000000, lty="dotted", lwd=2) ## font settings plotTracks(id, from=10000000, to=20000000, fontsize=8) plotTracks(id, from=10000000, to=20000000, cex=2) plotTracks(id, from=10000000, to=20000000, fontface=3, fontcolor="red", fontfamily="serif") ## shape plotTracks(id, from=10000000, to=20000000, bevel=0) ## ------------------ ## Object creation: ## ------------------ ## Annotation track: ## As individual arguments annTrack <- AnnotationTrack(chromosome=7, feature="test", group=c(1,2,1), start=c(2000000, 2070000, 2100000), ID=paste("annTrack item", 1:3), end=c(2050000, 2130000, 2150000), genome="hg19", name="annTrack", stacking="squish", strand=c("-", "+", "-"), size=1.5) ## Or as data.frame annTrack2 <- AnnotationTrack(data.frame(start=c(2000000, 2070000, 2100000), ID=paste("annTrack item", 1:3), end=c(2050000, 2130000, 2170000), feature="test", group=c("Group1","Group2","Group1"), strand=c("-", "+", "-")), genome="hg19", name="annTrack2", stacking="squish",chromosome=7, size=1.5, showId=TRUE) names(annTrack) <- "testAnnTrack" plotTracks(list(annTrack, annTrack2), extend.left=20000) ## The track name from <- 2000000 to <- 2100000 it <- IdeogramTrack(genome="hg19", name="chromosome 4", chromosome=4) plotTracks(list(it, annTrack2)) ## GeneRegion track geneTrack <- BiomartGeneRegionTrack(chromosome=4, start=2000000, end=2100000, genome="hg19", stacking="squish", strand="+-", name="geneTrack") ## Todo: filter testing plotTracks(geneTrack) gt1 <- BiomartGeneRegionTrack(chromosome=4, start=2000000, end=2100000, genome="hg19", stacking="squish", strand="+", name="+ Strand") gt2 <- BiomartGeneRegionTrack(chromosome=4, start=2000000, end=2100000, genome="hg19", stacking="squish", strand="-", name="- Strand") gt3 <- BiomartGeneRegionTrack(chromosome=4, start=2000000, end=2100000, genome="hg19", stacking="squish", strand="+-", name="RefSeq", filter=Gviz:::.refseqFilter) plotTracks(list(geneTrack, gt1, gt2, gt3)) displayPars(gt1) <- list(showId=TRUE, fontsize=8) displayPars(gt2) <- list(showId=TRUE, fontsize=8) displayPars(gt3) <- list(showId=TRUE, fontsize=8) plotTracks(list(gt1, gt2, gt3), extend.left=10000) ga <- GenomeAxisTrack() ga <- GenomeAxisTrack(range=GenomicRanges::GRanges(seqnames=letters[1:3], range=IRanges::IRanges(start=c(2045000, 2061000, 2151000), end=c(2050000, 2066000, 2221000))), add53=TRUE, add35=TRUE) plotTracks(list(gt1, ga, gt2, gt3), extend.left=10000) displayPars(ga) <- list(littleTicks=TRUE) plotTracks(list(annTrack2, gt1, ga, gt2, gt3), extend.left=10000) bases <- seq(min(IRanges::start(range(gt2))), max(IRanges::end(range(gt2))), len=50) start <- bases-(min(diff(bases))/5)*runif(50,1,3) end <- bases+(min(diff(bases))/5)*runif(50,1,3) data <- matrix(rnorm(length(bases)*6)+rep(runif(length(bases), -4,4), each=6), nrow=6) dt <- DataTrack(start=start, end=end, data=data) plotTracks(list(gt2, ga, dt), extend.left=10000) dtp <- DataTrack(start=start, end=end, data=data, type="p", name="points") dtl <- DataTrack(start=start, end=end, data=data, type="l", name="lines") dtb <- DataTrack(start=start, end=end, data=data, type="b", name="both") dta <- DataTrack(start=start, end=end, data=data, type="a", name="average") dts <- DataTrack(start=start, end=end, data=data, type="s", name="steps") dtg <- DataTrack(start=start, end=end, data=data, type="g", name="grid") dtr <- DataTrack(start=start, end=end, data=data, type="r", name="regression") dtsm <- DataTrack(start=start, end=end, data=data, type="smooth", name="loess") dth <- DataTrack(start=start, end=end, data=data, type="h", name="hist") dtm <- DataTrack(start=start, end=end, data=data, type="mountain", name="mountain") dtbp <- DataTrack(start=start, end=end, data=data, type="boxplot", name="boxplot") dthi <- DataTrack(start=start, end=end, data=data, type="histogram", name="histogram") plotTracks(list(dtp, dtl, dtb, dta, dts, dtg, dtr, dtsm, dth)) plotTracks(list(dtm, dtbp, dthi)) trunc <- function(vals) { trunc <- c(30,70) vals[valstrunc[2]] <- trunc[2] return(vals) } ut1 <- UcscTrack(genome="hg19", chromosome=4, track="GC", from=1985000, to=2150000, trackType="DataTrack", start="start", end="end", data="score", type="gradient", transformation=trunc, window="auto") ut2 <- UcscTrack(genome="hg19", chromosome=4, track="Ensembl", from=1900000, to=2300000, table="ensGene", trackType="Gene", rstarts="exonStarts", rends="exonEnds", gene="name2", symbol="name2", transcript="name", strand="strand", ID="name", feature="default", exonList=TRUE, showId=TRUE, fontsize=8) ut4 <- UcscTrack(genome="canFam2", chromosome=10, track="Other RefSeq", from=13910391-10000, to=13956580+10000, trackType="Gene", rstarts="exonStarts", rends="exonEnds", gene="name2", symbol="name2", transcript="name", strand="strand", ID="name", feature="default", exonList=TRUE, showId=TRUE, fontsize=8) ut3 <- UcscTrack(genome="hg19", chromosome=4, track="Repeat", from=1900000, to=2300000, trackType="Annotation", start="genoStart", end="genoEnd", ID="repName", feature="repClass", strand="strand", shape="box", stacking="dense", size=0.5, col="black") ut4 <- UcscTrack(genome="hg19", chromosome=4, track="knownGene", from=1900000, to=2300000, trackType="Gene", rstarts="exonStarts", rends="exonEnds", gene="name", symbol="name", transcript="name", strand="strand", ID="name", feature="default", exonList=TRUE, showId=TRUE, fontsize=8) plotTracks(list(ut1, ga, ut2), from=1950000, to=2050000) plotTracks(list(it, geneTrack, ga, ut2), fontsize=10, showId=TRUE, from=1985000, to=2150000) plotTracks(list(ut1, ga, ut2, ut3), type="h", from=1985000, to=2150000) ut4 <- UcscTrack(genome="hg19", chromosome=4, track="snp131", from=1900000, to=2200000, trackType="Annotation", start="chromStart", end="chromEnd", ID="name", feature="func", strand="strand", shape="box", stacking="squish", size=0.6, fill="black", "coding-synon"="green", nonsense="red", missense="red", frameshift="red", "untranslated-3"="blue", "untranslated-5"="blue", unknown="gray") plotTracks(list(it, ut1, ga, ut2, ut4, ut3), type="h", from=1985000, to=2150000) Gviz/inst/scripts/sourcePackage.R0000755000126300012640000000222512227067651020433 0ustar00biocbuildphs_compbio##library(methods) library(grid) library(IRanges) library(rtracklayer) library(GenomicRanges) library(lattice) library(biomaRt) library(RColorBrewer) library(Biobase) library(grid) library(AnnotationDbi) ## options(error=recover) removeAndSource <- function(file, remove=FALSE){ if(remove){ exp <- parse(file) sapply(exp, function(x){ x <- as.character(x) if(x[[1]]=="setMethod") suppressWarnings(try(removeMethod(x[[2]], ifelse(length(grep("\\(", x[3]))>0, eval(parse(text=x[3])), x[3])))) if(x[[1]]=="setReplaceMethod") suppressWarnings(try(removeMethod(paste(x[[2]], "<-", sep=""), ifelse(length(grep("\\(", x[3]))>0, eval(parse(text=x[3])), x[3])))) if(x[[1]]=="setAs") suppressWarnings(try(removeMethod("coerce", x[2:3]))) }) } source(file) } path <- "~/Rpacks/Gviz/R" files <- c("Gviz.R", "AllGenerics.R", "AllClasses.R", "Gviz-methods.R") sapply(file.path(path, files), removeAndSource) ## dtTrack <- DataTrack(start=seq(1,1000, len=100), width=10, data=matrix(runif(400), nrow=4), chromosome=1, genome="mm9", name="random data") Gviz/inst/scripts/testing.R0000644000126300012640000001541312227067651017334 0ustar00biocbuildphs_compbio##load("~muellar2/projects/Epigenetics/Methylation/HD2.1-MM_13-Week_Liver/exMA.Rdata") ##load("~muellar2/projects/Epigenetics/Methylation/HD2.1-MM_13-Week_Liver/probeAnno.Rdata") panel.genomeGraphs <- function (x, y, fullData, subscripts, coord.factor, tracks, sizes, ...) { xy <- split(y,x) if(length(unique(listLen(xy))) != 1) stop("Supplied data is not a rectangular array.") data <- t(sapply(xy, function(x) x)) dataTrack <- makeMatrixRangeTrack(start=sort(unique(fullData[subscripts, "ProbeStart"])), end=sort(unique(fullData[subscripts, "ProbeEnd"])), data=data) args <- list(...) setPar(dataTrack, args) cp <- current.panel.limits() setPar(dataTrack, "ylim", cp$ylim) ##browser() tracks <- c(list(dataTrack), tracks) lt <- length(tracks) if(length(sizes) != lt) sizes <- rep(sizes, lt)[seq_len(lt)] plotTracks(tracks, panel.only=TRUE, from=cp$xlim[1]*coord.factor, to=cp$xlim[2]*coord.factor, coord.factor=coord.factor, sizes=sizes) } ### objects exProbeAnno and exMA are required ### plots a trellis graphics for the 13 week study for a given gene ### using all time points and control and treated ### ### chr: the chromosome name (e.g. "7", "X") ### start: where to start (e.g. nucleotide 26682683) ### exProbeAnno: a probeAnno object from the Ringo package ### maList: the MAList object with the normalized data ### upstream: how much to extend upstream from the start (in nucleotides), must be a negative integer ### downstream: how much to extend downstream of the start (in nucleotides), must be a positive integer plotAll = function(exProbeAnno, maList, gene=NULL, start=NULL, chr=NULL, upstream=10000, downstream=500, title=NULL, ylim, type=c("mountain", "g"), smooth.span=1/12, coord.factor=1000, tracks=list(), track.sizes=1, ...) { require(IRanges) require(lattice) require(org.Mm.eg.db) # for chromosomal location if ( is.null(start) ) { if ( is.null(gene) ) { stop("must either specify gene symbol (gene argument) or start (start argument)\n") } entrezId = suppressWarnings(as.numeric(gene)) if ( is.na(entrezId) ) { entrezId = sym2entrezId(gene) if ( is.null(entrezId) ) { stop(paste("no entrezId found for gene", gene, "\n")) } else if ( length(entrezId) > 1 ) { stop("ambiguous mappings for gene ", gene, ": ", paste(entrezId, collapse=", ")) } loc = mget(entrezId, org.Mm.egCHRLOC) if ( max(loc[[1]]) < 0 ) { loc = mget(entrezId, org.Mm.egCHRLOCEND) } chr = unique(names(loc[[entrezId]])) if ( length(chr) != 1 ) { stop(chr, " - cannot handle with chromosome!") } start = loc[[entrezId]] if ( length(start) > 1 ) { # several transcripts cat(paste("found several transcripts: ", paste(start, collapse=", "), "\n")) if ( min(start) < 0 && max(start) > 0 ) { stop(start, " - cannot handle two transcripts on opposite strands") } if ( start[1] < 0 ) { # negative strand start = max(start) } else { start = min(start) } } if ( is.na(start) ) { stop("no chromosomal location found for entrezId ", entrezId) } cat(paste("found", gene, "with entrezId", entrezId, "on chr", chr, "at position", start, ": up =", upstream, "to", downstream, "\n")) } } else { if ( is.null(chr) ) { stop("chromosome cannot be null") } gene = paste("position", as.character(start)) } if ( start < 0 ) { start = abs(start) tmp = downstream downstream = upstream upstream = tmp } cat("finding overlapping probes: ") gene.ir = IRanges(start=start-upstream, end=start+downstream) chr.ir = IRanges(start=exProbeAnno[paste(chr, "start", sep=".")], end=exProbeAnno[paste(chr, "end", sep=".")]) gene.probes = findOverlaps(gene.ir, chr.ir) hits = subjectHits(gene.probes) hit.names = exProbeAnno[paste(chr, "index", sep=".")][hits] # names/indexes are not necessarily unique (why?)! probe.idx = (maList$genes$PROBE_ID %in% hit.names) m = maList[probe.idx,] probe.pos = start(chr.ir[hits]) + (end(chr.ir[hits]) - start(chr.ir[hits]))/2 probe.start = start(chr.ir[hits]) probe.end = end(chr.ir[hits]) ### create a data frame for lattice cat("creating data frame ...\n") d <- data.frame(Mvalue=as.numeric(m$M), ProbeStart=probe.start, ProbeEnd=probe.end, Probe=m$genes$PROBE_ID, Slide=factor(rep(m$targets$SlideNumber, each=nrow(m))), Treatment=factor(rep(m$targets[,"Treatment"], each=nrow(m))), Day=ordered(rep(m$targets[,"Day"], each=nrow(m))), stringsAsFactors=FALSE) d$ProbeCenter <- rowMeans(cbind(d$ProbeStart, d$ProbeEnd)) d$Group <- factor(paste(d$Treatment, d$Day, d$Probe, sep=":")) ir = range(chr.ir[hits]) from = min(ir) to = max(ir) len = width(ir) if ( is.null(title) ) { title = paste("Averaged and smoothed methylation signals for ", gene, " within -", upstream, "/+", downstream, " bp", sep="") } cat(start, start+downstream/2, "\n") xyplot(Mvalue ~ (ProbeCenter/coord.factor)|Day+Treatment, data=d, type=type, span=smooth.span, xlim=c((start-upstream)/coord.factor, max(c(extendrange(end(chr.ir[hits])), (start+downstream)))/coord.factor), ylim=ylim, main=title, xlab="probe position", ylab="M-value (log2(IP) - log2(total))", coord.factor=coord.factor, scales=list(x=list(rot=90)), panel=panel.genomeGraphs, fullData=d, tracks=tracks, sizes=track.sizes, ...) } ## library(biomaRt) ## bm <- useMart("ensembl", dataset="mmusculus_gene_ensembl") ## gene <- makeGeneRegion(biomart=bm, chromosome="chr7", genome="mm9", start=26670000, end=26690000) ## an <- makeAnnotationTrack(start=c(26678000, 26690000), end=c(26680000, 26900000), ID=c("ann A", "ann B")) ## setPar(an, "plotId", TRUE) ## plotAll(exProbeAnno, exMA, "Cyp2b10", layout=c(7,2), cex=2,pch=".") ## plotAll(exProbeAnno, exMA, "Cyp2b10", type=c("mountain", "boxplot"), tracks=list(an, gene), track.sizes=c(5,1,1), downstream=20000) ### convert a gene symbol into it's entrez Id sym2entrezId <- function(sym) { eg <- NULL require(org.Mm.eg.db) eg <- org.Mm.egSYMBOL2EG[[sym]] if(is.null(eg)) ### nothing found - lookup synonyms eg <- org.Mm.egALIAS2EG[[sym]] return(eg) } library(BSgenome.Mmusculus.UCSC.mm9) xx <- as(subseq(Mmusculus[[7]], 26670000, 26690000), "DNAString") start <- 26670000 stop <- 26690000 window <- 100 by <- IRanges(start=seq(start, stop-window-1, by=10), width=window) cg <- DNAString("CG") tmp = aggregate(as(Mmusculus[[7]], "DNAString"), by, FUN=function(x) countPattern(cg, x)) xx <- (end(by)-start(by))/2 xxs <- loess.smooth(xx, tmp, span=1/20, evaluation=1000) cpg <- makeBaseTrack(base=xxs$x, value=xxs$y) setPar(cpg, "type", "l") plotAll(exProbeAnno, exMA, "Cyp2b10", type=c("mountain"), tracks=list(cpg, gene), track.sizes=c(5,1,1), downstream=2000, ylim=c(-0.3, 0.3)) plotAll(exProbeAnno, exMA, "Cyp2b10", type=c("p"), tracks=list(cons, cpg, gene), track.sizes=c(5,1,1), downstream=2000) Gviz/man/0000755000126300012640000000000012227067650013636 5ustar00biocbuildphs_compbioGviz/man/AlignedReadTrack-class.Rd0000644000126300012640000010472712227067650020367 0ustar00biocbuildphs_compbio\name{AlignedReadTrack-class} \Rdversion{1.1} \docType{class} \alias{AlignedReadTrack-class} \alias{AlignedReadTrack} \alias{[,AlignedReadTrack-method} \alias{[,AlignedReadTrack,ANY,ANY-method} \alias{coverage,AlignedReadTrack-method} \alias{drawAxis,AlignedReadTrack-method} \alias{drawGD,AlignedReadTrack-method} \alias{drawGrid,AlignedReadTrack-method} \alias{initialize,AlignedReadTrack-method} \alias{setCoverage,AlignedReadTrack-method} \alias{show,AlignedReadTrack-method} \alias{split,AlignedReadTrack,ANY-method} \alias{split,AlignedReadTrack-method} \alias{subset,AlignedReadTrack-method} \title{AlignedReadTrack class and methods (NOTE: THIS IS STILL IN DEVELOPMENT AND SUBJECT TO CHANGE)} \description{ A class to represent short sequences that have been aligned to a reference genome as they are typically generated in a next generation sequencing experiment. } \section{Objects from the Class}{ Objects can be created using the constructor function \code{AlignedReadTrack}. } \usage{ AlignedReadTrack(range=NULL, start=NULL, end=NULL, width=NULL, chromosome, strand, genome, stacking="squish", name="AlignedReadTrack", coverageOnly=FALSE, ...) } \arguments{ \item{range}{An object of class \code{\linkS4class{GRanges}}, or a \code{data.frame} which will be coerced into one in which case it needs to contain at least the three columns: \describe{ \item{}{\code{start}, \code{end}: the start and end coordinates for the track items.} \item{}{\code{strand}: the strand information for the track items. It may be provided in the form \code{+} for the Watson strand, \code{-} for the Crick strand or \code{*} for either one of the two.} } Alternatively, the \code{range} argument may be missing, in which case the relevant information has to be provided as individual function arguments (see below). } \item{start, end, width}{Integer vectors, giving the start and the end end coordinates for the individual track items, or their width. Two of the three need to be specified, and have to be of equal length or of length one, in which case this value will be recycled. Otherwise, the usual R recycling rules for vectors do not apply.} \item{strand}{Character vector, the strand information for the individual track items. Needs to be of equal length as the \code{start, end} or \code{width} vectors, or of length 1. Please note that grouped items need to be on the same strand, and erroneous entries will result in casting of an error.} \item{chromosome}{The chromosome on which the track's genomic ranges are defined. A valid UCSC chromosome identifier. Please note that at this stage only syntactic checking takes place, i.e., the argument value needs to be a single integer, numeric character or a character of the form \code{chrx}, where \emph{x} may be any possible string. The user has to make sure that the respective chromosome is indeed defined for the the track's genome.} \item{genome}{The genome on which the track's ranges are defined. Usually this is a valid UCSC genome identifier, however this is not being formally checked at this point.} \item{stacking}{The stacking type for overlapping items of the track. One in \code{c(hide, dense, squish, pack,full)}. Currently, only hide (don't show the track items, squish (make best use of the available space) and dense (no stacking at all) are implemented.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{coverageOnly}{Instead of storing individual reads, just compute the coverage and store the resulting coverage vector.} \item{\dots}{Additional items which will all be interpreted as further display parameters.} } \value{ The return value of the constructor function is a new object of class \code{AlignedReadTrack}. } \section{Slots}{ \describe{ \item{\code{coverage}:}{Object of class \code{"list"}, a list of coverage vectors for the plus strand, the minus strand and for both strands combined.} \item{\code{coverageOnly}:}{Object of class \code{"logical"}, flag to determine whether the object stores read locations or the coverage vectors only.} \item{\code{stacking}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{stacks}:}{Object of class \code{"environment"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}} } \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{StackedTrack}"}, directly. Class \code{"\linkS4class{RangeTrack}"}, by class "StackedTrack", distance2. Class \code{"\linkS4class{GdObject}"}, by class "StackedTrack", distance3. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{AlignedReadTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{[}{\code{signature(x="AlignedReadTrack")}: subset the items in the \code{AlignedReadTrack}. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. The operation is only supported for objects that still contain all the read locations, i.e., \code{coverageOnly=FALSE}. \emph{Additional Arguments:} \describe{ \item{}{\code{i}: subsetting indices} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{subset}{\code{signature(x="AlignedReadTrack")}: subset a \code{AlignedReadTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, stacks=FALSE)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{stacks}: recompute the stacking after subsetting which can be expensive and is not always necessary.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20)}} \item{}{\code{subset(obj, from=10, to=20, sort=TRUE, stacks=FALSE)}} } } \item{split}{\code{signature(x="AlignedReadTrack")}: split an \code{AlignedReadTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of \code{AlignedReadTrack} objects. \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Usage:} \code{split(x, f, ...)} \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{coverage}{\code{signature(x="AlignedReadTrack")}: return the coverage vector for one of the strands, or the combined vector. \emph{Usage:} \code{coverage(x, strand="*")} \emph{Additional Arguments:} \describe{ \item{}{\code{strand}: the selector for the strand, \code{+} for the Watson strand, \code{-} for the Crick strand or \code{*} for both strands.} } \emph{Examples:} \describe{ \item{}{\code{coveraget(obj)}} \item{}{\code{coverage(obj, strand="-")}} } } } \bold{\emph{Internal methods:}} \describe{ \item{setCoverage}{\code{signature(GdObject="AlignedReadTrack")}: recompute the coverage on the plus and minus strand as well as for the combined strands and update the respective slot. \emph{Usage:} \code{setCoverage(GdObject)} \emph{Examples:} \describe{ \item{}{\code{setCoverage(obj)}} } } \item{drawAxis}{\code{signature(GdObject="AlignedReadTrack")}: add a y-axis to the title panel of a track. \emph{Usage:} \code{drawAxis(GdObject, from, to, subset=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: compute axis range from the data within a certain coordinates range only.} \item{}{\code{subset}: subset the object prior to calculating the axis ranges. Can be expensive and is not always needed.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGD}{\code{signature(gdObject="AlignedReadTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the object is preprocessed based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Since subsetting of the object can be potentially costly, this can be switched off in case subsetting has already been performed before or is not necessary. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{drawGrid}{\code{signature(GdObject="AlignedReadTrack")}: superpose a grid on top of a track. \emph{Usage:} \code{drawGrid(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: draw grid within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj, from=10, to=100)}} } } \item{initialize}{\code{signature(.Object="AligendReadTrack")}: initialize the object.} \item{show}{\code{signature(object="AlignedReadTrack")}: show a human-readable summary of the object.} } \bold{\emph{Inherited methods:}} \describe{ \item{stacking}{\code{signature(GdObject="AlignedReadTrack")}: return the current stacking type. \emph{Usage:} \code{stacking(GdObject)} \emph{Examples:} \describe{ \item{}{\code{stacking(obj)}} } } \item{stacking<-}{\code{signature(GdObject="AlignedReadTrack", value="character")}: set the object's stacking type to one in \code{c(hide, dense, squish, pack,full)}. \emph{Usage:} \code{stacking<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{stacking(obj) <- "squish" }} } } \item{setStacks}{\code{signature(GdObject="AlignedReadTrack")}: recompute the stacks based on the available space and on the object's track items and stacking settings. \emph{Usage:} \code{setStacks(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: compute stacking within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::setStacks(obj)}} } } \item{stacks}{\code{signature(GdObject="AlignedReadTrack")}: return the stack indices for each track item. \emph{Usage:} \code{stacks(GdObject)} \emph{Examples:} \describe{ \item{}{\code{Gviz:::stacks(obj)}} } } \item{chromosome}{\code{signature(GdObject="AlignedReadTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="AlignedReadTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="AlignedReadTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="AlignedReadTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="AlignedReadTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="AlignedReadTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="AlignedReadTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{AlignedReadTrack}. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="AlignedReadTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="AlignedReadTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="AlignedReadTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="AlignedReadTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="AlignedReadTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{strand}{\code{signature(x="AlignedReadTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="AlignedReadTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="AlignedReadTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="AlignedReadTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{displayPars}{\code{signature(x="AlignedReadTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="AlignedReadTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="AlignedReadTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="AlignedReadTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="AlignedReadTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="AlignedReadTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{AlignedReadTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="AlignedReadTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{AlignedReadTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="AlignedReadTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="AlignedReadTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="AlignedReadTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="AlignedReadTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="AlignedReadTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{AlignedReadTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{collapse=FALSE}: collapse overlapping ranges and aggregate the underlying data.} \item{}{\code{detail="coverage"}: the amount of detail to plot the data. Either \code{coverage} to show the coverage only, or \code{reads} to show individual reads. For large data sets the latter can be very inefficient. Please note that \code{reads} is only available when the object has been created with option \code{coverageOnly=FALSE}.} \item{}{\code{fill="#0080ff"}: the fill color for the coverage indicator.} \item{}{\code{size=NULL}: the relative size of the track. Defaults to size selection based on the underlying data. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{type="histogram"}: the plot type, one or several in \code{c("p","l", "b", "a", "s", "g", "r", "S", "smooth", "histogram", "mountain", "h", "boxplot", "gradient", "heatmap")}. See the 'Details' section in \code{\linkS4class{DataTrack}} for more information on the individual plotting types.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{AlignedReadTrack} objects. \describe{ \item{}{\code{\linkS4class{StackedTrack}}: \describe{ \item{}{\code{reverseStacking=FALSE}: Logical flag. Reverse the y-ordering of stacked items. I.e., features that are plotted on the bottom-most stacks will be moved to the top-most stack and vice versa.} \item{}{\code{stackHeight=0.75}: Numeric between 0 and 1. Controls the vertical size and spacing between stacked elements. The number defines the proportion of the total available space for the stack that is used to draw the glyphs. E.g., a value of 0.5 means that half of the available vertical drawing space (for each stacking line) is used for the glyphs, and thus one quarter of the available space each is used for spacing above and below the glyph. Defaults to 0.75.} } } \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DataTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{collapsing}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \examples{ ## Construct from individual arguments arTrack <- AlignedReadTrack(start=runif(1000, 100, 200), width=24, genome="mm9", chromosome=7, strand=sample(c("+", "-"), 1000, TRUE)) \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(arTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(arTrack) ## Track names names(arTrack) names(arTrack) <- "foo" plotTracks(arTrack) ## Subsetting and splitting subTrack <- subset(arTrack, from=110, to=130) length(subTrack) subTrack[1:2] split(arTrack, strand(arTrack)) ## Accessors start(arTrack) end(arTrack) width(arTrack) position(arTrack) width(subTrack) <- 30 strand(arTrack) strand(subTrack) <- "-" chromosome(arTrack) chromosome(subTrack) <- "chrX" genome(arTrack) genome(subTrack) <- "mm9" range(arTrack) ranges(arTrack) coverage(arTrack) ## Annotation values(arTrack) ## Stacking stacking(arTrack) stacking(arTrack) <- "dense" ## coercion as(arTrack, "data.frame") } \keyword{classes} Gviz/man/AnnotationTrack-class.Rd0000644000126300012640000015333512227067650020341 0ustar00biocbuildphs_compbio\name{AnnotationTrack-class} \Rdversion{1.1} \docType{class} \alias{AnnotationTrack-class} \alias{AnnotationTrack} \alias{DetailsAnnotationTrack-class} \alias{DetailsAnnotationTrack} \alias{initialize,DetailsAnnotationTrack-method} \alias{initialize,ReferenceAnnotationTrack-method} \alias{coerce,AnnotationTrack,UCSCData-method} \alias{collapseTrack,AnnotationTrack-method} \alias{drawGD,AnnotationTrack-method} \alias{drawGrid,AnnotationTrack-method} \alias{group} \alias{group,AnnotationTrack-method} \alias{group<-} \alias{group<-,AnnotationTrack,character-method} \alias{identifier,AnnotationTrack-method} \alias{identifier<-,AnnotationTrack,character-method} \alias{identifier} \alias{identifier<-} \alias{initialize,AnnotationTrack-method} \alias{setStacks,AnnotationTrack-method} \alias{show,AnnotationTrack-method} \alias{show,ReferenceAnnotationTrack-method} \alias{subset,AnnotationTrack-method} \alias{subset,ReferenceAnnotationTrack-method} \alias{coerce,GRanges,AnnotationTrack-method} \alias{coerce,GRangesList,AnnotationTrack-method} \alias{consolidateTrack,AnnotationTrack-method} \title{AnnotationTrack class and methods} \description{ A fairly generic track object for arbitrary genomic range annotations, with the option of grouped track items. The extended \code{DetailsAnnotationTrack} provides a more flexible interface to add user-defined custom information for each range. } \section{Objects from the class}{ Objects can be created using the constructor function \code{AnnotationTrack}. } \usage{ AnnotationTrack(range=NULL, start=NULL, end=NULL, width=NULL, feature, group, id, strand, chromosome, genome, stacking="squish", name="AnnotationTrack", fun, selectFun, importFunction, stream=FALSE, ...) } \arguments{ \code{AnnotationTrack} object can be created from a variety of different inputs in order to nicely embed the package into the existing Bioconductor landscape. Since the main components of this class are essentially genomic ranges, the obvious Bioconductor representation is most likely a \code{\linkS4class{GRanges}} object, or, for grouped elements, a \code{\linkS4class{GRangesList}}. However, in certain cases it may be desirable to build the object from individual function arguments. \item{range}{ An optional meta argument to handle the different input types. If the \code{range} argument is missing, all the relevant information to create the object has to be provided as individual function arguments (see below). The different input options for \code{range} are: \describe{ \item{}{A \code{GRanges} object: the genomic ranges for the \code{Annotation} track as well as the optional additional \code{elementMetadata} columns \code{feature}, \code{group} and \code{id} (see description of the individual function parameters below for details). Calling the constructor on a \code{GRanges} object without further arguments, e.g. \code{AnnotationTrack(range=obj)} is equivalent to calling the coerce method \code{as(obj, "AnnotationTrack")}.} \item{}{A \code{GRangesList} object: this is very similar to the previous case, except that the grouping information that is part of the list structure is preserved in the \code{AnnotationTrack}. I.e., all the elements within one list item receive the same group id. For consistancy, there is also a coercion method from \code{GRangesLists} \code{as(obj, "AnnotationTrack")}.} \item{}{An \code{\linkS4class{IRanges}} object: almost identical to the \code{GRanges} case, except that the chromosome and strand information as well as all additional metadata has to be provided in the separate \code{chromosome}, \code{strand}, \code{feature}, \code{group} or \code{id} arguments, because it can not be directly encoded in an \code{IRange} object. Note that none of those inputs are mandatory, and if not provided explicitely the more or less reasonable default values \code{chromosome=NA} and \code{strand="*"} are used. } \item{}{A \code{data.frame} object: the \code{data.frame} needs to contain at least the two mandatory columns \code{start} and \code{end} with the range coordinates. It may also contain a \code{chromosome} and a \code{strand} column with the chromosome and strand information for each range. If missing it will be drawn from the separate \code{chromosome} or \code{strand} arguments. In addition, the \code{feature}, \code{group} and \code{id} data can be provided as additional columns. The above comments about potential default values also apply here.} \item{}{A \code{character} scalar: in this case the value of the \code{range} argument is considered to be a file path to an annotation file on disk. A range of file types are supported by the \code{Gviz} package as identified by the file extension. See the \code{importFunction} documentation below for further details.} } } \item{start, end, width}{Integer vectors, giving the start and the end end coordinates for the individual track items, or their width. Two of the three need to be specified, and have to be of equal length or of length one, in which case this single value will be recycled. Otherwise, the usual R recycling rules for vectors do not apply here.} \item{feature}{Factor (or other vector that can be coerced into one), giving the feature types for the individual track items. When plotting the track to the device, if a display parameter with the same name as the value of \code{feature} is set, this will be used as the track item's fill color. See \code{\link{grouping}} for details. Needs to be of equal length as the provided genomic coordinates, or of length 1.} \item{group}{Factor (or other vector that can be coerced into one), giving the group memberships for the individual track items. When plotting to the device, all items in the same group will be connected. See \code{\link{grouping}} for details. Needs to be of equal length as the provided genomic coordinates, or of length 1.} \item{id}{Character vector of track item identifiers. When plotting to the device, it's value will be used as the identifier tag if the display parameter \code{showFeatureId=TRUE}. Needs to be of equal length as the provided genomic ranges, or of length 1.} \item{strand}{Character vector, the strand information for the individual track items. It may be provided in the form \code{+} for the Watson strand, \code{-} for the Crick strand or \code{*} for either one of the two. Needs to be of equal length as the provided genomic coordinates, or of length 1. Please note that grouped items need to be on the same strand, and erroneous entries will result in casting of an error.} \item{chromosome}{The chromosome on which the track's genomic ranges are defined. A valid UCSC chromosome identifier if \code{options(ucscChromosomeNames=TRUE)}. Please note that in this case only syntactic checking takes place, i.e., the argument value needs to be an integer, numeric character or a character of the form \code{chrx}, where \code{x} may be any possible string. The user has to make sure that the respective chromosome is indeed defined for the the track's genome. If not provided here, the constructor will try to construct the chromosome information based on the available inputs, and as a last resort will fall back to the value \code{chrNA}. Please note that by definition all objects in the \code{Gviz} package can only have a single active chromosome at a time (although internally the information for more than one chromosome may be present), and the user has to call the \code{chromosome<-} replacement method in order to change to a different active chromosome.} \item{genome}{The genome on which the track's ranges are defined. Usually this is a valid UCSC genome identifier, however this is not being formally checked at this point. If not provided here the constructor will try to extract this information from the provided input, and eventually will fall back to the default value of \code{NA}.} \item{stacking}{The stacking type for overlapping items of the track. One in \code{c(hide, dense, squish, pack,full)}. Currently, only squish (make best use of the available space), dense (no stacking, collapse overlapping ranges), and hide (do not show any track items at all) are implemented.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{fun}{A function that is being called for each entry in the \code{AnnotationTrack} object. See section 'Details' and 'Examples' for further information. When called internally by the plotting machinery, a number of arguments are automatically passed on to this function, and the user needs to make sure that they can all be digested (i.e., either have all of them as formal named function arguments, or gobble up everything that is not needed in \dots). These arguments are: \itemize{ \item{\code{start}: the genomic start coordinate of the range item.} \item{\code{end}: the genomic end coordinates of the range item.} \item{\code{strand}: the strand information for the range item.} \item{\code{chromosome}: the chromosome of the range item.} \item{\code{identifier}: the identifier of the range item, i.e., the result of calling \code{identifier(DetailsAnnotationTrack, lowest=TRUE)}. Typically those identifiers are passed on to the object constructor during instantiation as the \code{id} argument.} \item{\code{index}: a counter enumerating the ranges. The \code{AnnotationTrack} object is sorted internally for visibility, and the \code{index} argument refers to the index of plotting.} \item{\code{GdObject}: a reference to the currently plotted \code{DetailsAnnotationTrack} object.} \item{\code{GdObject.original}: a reference to the \code{DetailsAnnotationTrack} before any processing like item collapsing has taken place. Essentially, this is the track object as it exists in your working environment.} } Additional arguments can be passed to the plotting function by means of the \code{detailsFunArgs} argument (see below). Note that the plot must use grid graphics (e.g. function in the 'lattice' package or low-level grid functions). To access a data object such a matrix or data frame within the function you can either store it as a variable in the global environment or, to avoid name space conflicts, you can make it part of the function environment by means of a closure. Alternatively, you may want to explicitely stick it into an environment or pass it along in the \code{detailsFunArgs} list. To figure out in your custom plotting function which annotation element is currently being plotted you can either use the identifier which has to be unique for each range element, or you may want to use the genomic position (start/end/strand/chromosome) e.g. if the data is stored in a \code{GRanges} object. } \item{selectFun}{A function that is being called for each entry in the \code{AnnotationTrack} object with exactly the same arguments as in \code{fun}. The purpose of this function is to decide for each track element whether details should be drawn, and consequently it has to return a single logical scalar. If the return value is \code{TRUE}, details will be drawn for the item, if it is \code{FALSE}, the details strip for the item is omitted. } \item{importFunction}{A user-defined function to be used to import the data from a file. This only applies when the \code{range} argument is a character string with the path to the input data file. The function needs to accept an argument \code{x} containing the file path and has to return a proper \code{GRanges} object with all the necessary \code{elementMetadata} columns set. A set of default import functions is already implemented in the package for a number of different file types, and one of these defaults will be picked automatically based on the extension of the input file name. If the extension can not be mapped to any of the existing import function, an error is raised asking for a user-defined import function via this argument. Currently the following file types can be imported with the default functions: \code{gff}, \code{gff1}, \code{gff2}, \code{gff3}, \code{bed}, \code{bam}.} \item{stream}{A logical flag indicating that the user-provided import function can deal with indexed files and knows how to process the additional \code{selection} argument when accessing the data on disk. This causes the constructor to return a \code{ReferenceAnnotationTrack} object which will grab the necessary data on the fly during each plotting operation.} \item{\dots}{Additional items which will all be interpreted as further display parameters. See \code{\link{settings}} and the "Display Parameters" section below for details.} } \value{ The return value of the constructor function is a new object of class \code{AnnotationTrack} or of class \code{DetailsAnnotationTrack}, depending on the constructor arguments. Typically the user will not have to be troubled with this distinction and can rely on the constructor to make the right choice. } \section{details}{ The \code{DetailsAnnotationTrack} class directly extends \code{AnnotationTrack}. The purpose of this track type is to add an arbitrarily detailed plot section (typically consisting of additional quantitative data) for each range element of an \code{AnnotationTrack}. This allows a locus wide view of annotation elements together with any kind of details per feature or element that may for instance provide insight on how some complex quantitative measurements change accoring to their position in a locus. If the quantitative data is too complex for a \code{DataTrack} e.g. because it requires extra space or a trellis-like representation, a \code{DetailsAnnotationTrack} can be used instead. Example: An \code{AnnotationTrack} shows the positions of a number of probes from a microarray, and you want a histogram of the signal intensity distribution derived from all samples at each of these probe location. Another example usage would be to show for each element of an \code{AnnotationTrack} an xy-plot of the signal against some clinical measurement such as blood preassure. The limitation for applications of this type of track is basically only the available space of the device you are plotting to. This flexibility is possible by utilizing a simple function model to perform all the detailed plotting. The functionality of this plotting function \code{fun} is totally up to the user, and the function environment is prepared in a way that all necessary information about the plotted annotation feature is available. To restrict the details section to only selected number of annotation features one can supply another function \code{selectFun}, which decides for each feature separatly whether details are available or not. Finally, an arbitrary number of additional arguments can be passed on to these two function by means of the \code{detailsFunArgs} display parameter. This is expected to be a named list, and all list elements are passed along to the plotting function \code{fun} and to the selector function \code{selectFun} as additional named arguments. Please note that some argument names like \code{start}, \code{end} or \code{identifier} are reserved and can not be used in the \code{detailsFunArgs} list. For examples of plotting functions, see the 'Examples' section. } \section{Slots}{ \describe{ \item{\code{stacking}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{stacks}:}{Object of class \code{"environment"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}} } \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{fun}:}{A function that is being called for each \code{AnnotationTrack} element to plot details.} \item{\code{selectFun}:}{A function that is being called for each \code{AnnotationTrack} element to decide whether details need to be plotted.} } Additional display parameters are being inherited from the \code{\linkS4class{StackedTrack}} parent class. } \section{Extends}{ Class \code{"\linkS4class{StackedTrack}"}, directly. Class \code{"\linkS4class{RangeTrack}"}, by class "StackedTrack", distance 2. Class \code{"\linkS4class{GdObject}"}, by class "StackedTrack", distance3. \code{DetailsAnnotationTrack} directly extends \code{AnnotationTrack}. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{AnnotationTrack} or \code{DetailsAnnotationTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{group}{\code{signature(GdObject="AnnotationTrack")}: extract the group membership for all track items. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{group<-}{\code{signature(GdObject="AnnotationTrack", value="character")}: replace the grouping information for track items. The replacement value must be a factor of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{group<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{group(obj) <- c("a", "a", "b", "c", "a")}} } } \item{identifier}{\code{signature(GdObject="AnnotationTrack")}: return track item identifiers. Depending on the setting of the optional argument \code{lowest}, these are either the group identifiers or the individual item identifiers. \emph{Usage:} \code{identifier(GdObject, lowest=FALSE)} \emph{Additional Arguments:} \describe{ \item{}{\code{lowest}: return the lowest-level identifier, i.e., the item IDs, or the higher level group IDs which do not have to be unqiue.} } \emph{Examples:} \describe{ \item{}{\code{identifier(obj)}} \item{}{\code{identifier(obj, lowest=TRUE)}} } } \item{identifier<-}{\code{signature(GdObject="AnnotationTrack", value="character")}: Set the track item identifiers. The replacement value has to be a character vector of appropriate length. This always replaces the group-level identifiers, so essentially it is similar to \code{groups<-}. \emph{Usage:} \code{identifier<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{identifier(obj) <- c("foo", "bar")}} } } } \bold{\emph{Internal methods:}} \describe{ \item{coerce}{\code{signature(from="AnnotationTrack", to="UCSCData")}: coerce to a \code{UCSCData} object for export to the UCSC genome browser. \emph{Examples:} \describe{ \item{}{\code{as(obj, "UCSCData")}} } } \item{collapseTrack}{\code{signature(GdObject="AnnotationTrack")}: preprocess the track before plotting. This will collapse overlapping track items based on the available resolution and increase the width and height of all track objects to a minimum value to avoid rendering issues. See \code{\link{collapsing}} for details. \emph{Usage:} \code{collapseTrack(GdObject, diff=.pxResolution(coord="x"))} \emph{Additional Arguments:} \describe{ \item{}{\code{diff}: the minimum pixel width to display, everything below that will be inflated to a width of \code{diff}.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::collapseTrack(obj)}} } } \item{drawGD}{\code{signature(GdObject="AnnotationTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the object is preprocessed based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Since subsetting of the object can be potentially costly, this can be switched off in case subsetting has already been performed before or is not necessary. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{drawGrid}{\code{signature(GdObject="AnnotationTrack")}: superpose a grid on top of a track. \emph{Usage:} \code{drawGrid(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, draw grid within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj, from=10, to=100)}} } } \item{setStacks}{\code{signature(GdObject="AnnotationTrack")}: recompute the stacks based on the available space and on the object's track items and stacking settings. \emph{Usage:} \code{setStacks(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, compute stacking within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::setStacks(obj, from=1, to=100)}} } } \item{initialize}{\code{signature(.Object="AnnotationTrack")}: initialize the object } \item{show}{\code{signature(object="AnnotationTrack")}: show a human-readable summary of the object } } \bold{\emph{Inherited methods:}} \describe{ \item{stacking}{\code{signature(GdObject="AnnotationTrack")}: return the current stacking type. \emph{Usage:} \code{stacking(GdObject)} \emph{Examples:} \describe{ \item{}{\code{stacking(obj)}} } } \item{stacking<-}{\code{signature(GdObject="AnnotationTrack", value="character")}: set the object's stacking type to one in \code{c(hide, dense, squish, pack,full)}. \emph{Usage:} \code{stacking<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{stacking(obj) <- "squish" }} } } \item{stacks}{\code{signature(GdObject="AnnotationTrack")}: return the stack indices for each track item. \emph{Usage:} \code{stacks(GdObject)} \emph{Examples:} \describe{ \item{}{\code{Gviz:::stacks(obj)}} } } \item{[}{\code{signature(x="AnnotationTrack", i="ANY", j="ANY", drop="ANY")}: subset the items in the \code{AnnotationTrack} object. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{chromosome}{\code{signature(GdObject="AnnotationTrack")}: return the currently active chromosome for which the track is defined. For consistancy with other Bioconductor packages, the \code{isActiveSeq} alias is also provided. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="AnnotationTrack")}: replace the value of the track's active chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one, unless \code{options(ucscChromosomeNames=FALSE)}. For consistancy with other Bioconductor packages, the \code{isActiveSeq<-} alias is also provided. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="AnnotationTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="AnnotationTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="AnnotationTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="AnnotationTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="AnnotationTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{AnnotationTrack}. See \code{\link{grouping}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="AnnotationTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="AnnotationTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="AnnotationTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="AnnotationTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="AnnotationTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="AnnotationTrack")}: split a \code{AnnotationTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of objects of the same class as the input object, all inheriting from class \code{AnnotationTrack}. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="AnnotationTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="AnnotationTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="AnnotationTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="AnnotationTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="AnnotationTrack")}: subset a \code{AnnotationTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{displayPars}{\code{signature(x="AnnotationTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="AnnotationTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="AnnotationTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="AnnotationTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="AnnotationTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="AnnotationTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{AnnotationTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="AnnotationTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{AnnotationTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{names}{\code{signature(x="AnnotationTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="AnnotationTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="AnnotationTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="AnnotationTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{AnnotationTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{cex=1}: Numeric scalar. The font expansion factor for item identifiers.} \item{}{\code{cex.group=0.6}: Numeric scalar. The font expansion factor for the group-level annotation.} \item{}{\code{col="transparent"}: Character or integer scalar. The border color for all track items.} \item{}{\code{col.line="darkgray"}: Character scalar. The color used for connecting lines between grouped items. Defaults to a dark gray, but if set to \code{NULL} the same color as for the first item in the group is used.} \item{}{\code{fill="lightblue"}: Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{fontcolor="white"}: Character or integer scalar. The font color for item identifiers.} \item{}{\code{fontcolor.group="#808080"}: Character or integer scalar. The font color for the group-level annotation.} \item{}{\code{fontface=1}: Integer scalar. The font face for item identifiers.} \item{}{\code{fontface.group=2}: Numeric scalar. The font face for the group-level annotation.} \item{}{\code{fontfamily="sans"}: Character scalar. The font family for item identifiers.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for item identifiers.} \item{}{\code{lex=1}: Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for item identifiers.} \item{}{\code{lty="solid"}: Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lwd=1}: Integer scalar. The line width for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{rotation=0}: Numeric scalar. The degree of text rotation for item identifiers.} \item{}{\code{shape="arrow"}: Character scalar. The shape in which to display the track items. Currently only \code{box}, \code{arrow}, \code{ellipse}, and \code{smallArrow} are implemented.} \item{}{\code{showFeatureId=FALSE}: Logical scalar. Control whether to plot the individual track item identifiers.} \item{}{\code{showId=FALSE}: Logical scalar. Control whether to annotate individual groups.} \item{}{\code{showOverplotting=FALSE}: Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \code{collapse==TRUE}} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{mergeGroups=FALSE}: Logical scalar. Merge fully overlapping groups if \code{collapse==TRUE}.} } \code{DetailsAnnotationTrack} adds the following additional display parameters: \describe{ \item{}{\code{details.size=0.5}: Numeric scalar. The fraction of vertical space of the track used for the details section.} \item{}{\code{details.minWidth=100}: Numeric scalar. The minium width in pixels for a details panel, if less space is available no details are plotted.} \item{}{\code{detailsConnector.col="darkgray"}: Character or integer scalar. Color of the line connecting the \code{AnnotstionTrack} item with its details panel.} \item{}{\code{detailsConnector.lty="dashed"}: Character or integer scalar. Type of connecting line.} \item{}{\code{detailsConnector.lwd=1}: Integer scalar. Line width of the connector.} \item{}{\code{detailsConnector.pch=20}: Integer scalar. Type of the connector's ends.} \item{}{\code{detailsConnector.cex=1}: Numeric scalar. Relative size of the connector's end points.} \item{}{\code{detailsBorder.lty="solid"}: Character or integer scalar. Line type of the border around each details panel.} \item{}{\code{detailsBorder.lwd=1}: Integer scalar. Line width of the border.} \item{}{\code{detailsBorder.col="darkgray"}: Character or integer scalar. Line color of the border.} \item{}{\code{detailsBorder.fill="transparent"}: Character or integer scalar. Background color of the border.} \item{}{\code{details.ratio=Inf}: Numeric scalar. By default, the plotting method tries to fill all available space of the details panel tiles. Depending on the dimensions of your plot and the number of tiles this may lead to fairly stretched plots. Restricting the ration of width over height can help to fine tune for somewhat more sane graphics in these cases. Essentially this adds some white space in between individual tiles to force the desired ratio. Together with the \code{size} and \code{details.size} arguments, which control the vertical extension of the whole track and of the details section, this allows for some fairly generic resizing of the tiles.} \item{}{\code{detailsFunArgs=list()}: List. Additional arguments that get passed on the the details plotting function.} \item{}{\code{groupDetails=FALSE}: Logial scalar. Plot details for feature groups rather than for individual features.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{AnnotationTrack} \code{DetailsAnnotationTrack} objects. \describe{ \item{}{\code{\linkS4class{StackedTrack}}: \describe{ \item{}{\code{reverseStacking=FALSE}: Logical flag. Reverse the y-ordering of stacked items. I.e., features that are plotted on the bottom-most stacks will be moved to the top-most stack and vice versa.} \item{}{\code{stackHeight=0.75}: Numeric between 0 and 1. Controls the vertical size and spacing between stacked elements. The number defines the proportion of the total available space for the stack that is used to draw the glyphs. E.g., a value of 0.5 means that half of the available vertical drawing space (for each stacking line) is used for the glyphs, and thus one quarter of the available space each is used for spacing above and below the glyph. Defaults to 0.75.} } } \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details. For feathered bars indicating the strandedness of grouped items this also controls the height of the arrow feathers.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne, Arne Mueller} \seealso{ \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \examples{ ## An empty object AnnotationTrack() ## Construct from individual arguments st <- c(2000000, 2070000, 2100000, 2160000) ed <- c(2050000, 2130000, 2150000, 2170000) str <- c("-", "+", "-", "-") gr <- c("Group1","Group2","Group1", "Group3") annTrack <- AnnotationTrack(start=st, end=ed, strand=str, chromosome=7, genome="hg19", feature="test", group=gr, id=paste("annTrack item", 1:4), name="generic annotation", stacking="squish") ## Or from a data.frame df <- data.frame(start=st, end=ed, strand=str, id=paste("annTrack item", 1:4), feature="test", group=gr) annTrack <- AnnotationTrack(range=df, genome="hg19", chromosome=7, name="generic annotation", stacking="squish") ## Or from a GRanges object gr <- GenomicRanges::GRanges(seqnames="chr7", range=IRanges::IRanges(start=df$start, end=df$end), strand=str) genome(gr) <- "hg19" IRanges::elementMetadata(gr) <- df[,-(1:3)] annTrack <- AnnotationTrack(range=gr, name="generic annotation", stacking="squish") ## Finally from a GRangesList grl <- split(gr, values(gr)$group) AnnotationTrack(grl) \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(annTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(annTrack) ## Track names names(annTrack) names(annTrack) <- "foo" plotTracks(annTrack) ## Subsetting and splitting subTrack <- subset(annTrack, to=2155000) length(subTrack) subTrack[1:2] split(annTrack, c(1,2,1,2)) ## Accessors start(annTrack) end(annTrack) width(annTrack) position(annTrack) width(subTrack) <- width(subTrack)+1000 strand(annTrack) strand(subTrack) <- "-" chromosome(annTrack) chromosome(subTrack) <- "chrX" genome(annTrack) genome(subTrack) <- "mm9" range(annTrack) ranges(annTrack) ## Annotation identifier(annTrack) identifier(annTrack, lowest=TRUE) identifier(subTrack) <- "bar" feature(annTrack) feature(subTrack) <- "foo" values(annTrack) ## Grouping group(annTrack) group(subTrack) <- "Group 1" chromosome(subTrack) <- "chr7" plotTracks(subTrack) ## Stacking stacking(annTrack) stacking(annTrack) <- "dense" plotTracks(annTrack) ## coercion as(annTrack, "data.frame") as(annTrack, "UCSCData") ## HTML image map coords(annTrack) tags(annTrack) annTrack <- plotTracks(annTrack)$foo coords(annTrack) tags(annTrack) ## DetailsAnnotationTrack library(lattice) # need to use grid grapics ## generate two random distributions per row (probe/feature) ## the difference between the distributions increases from probe 1 to 4 m <- matrix(c(rgamma(400, 1)), ncol=100) m[,51:100] <- m[,51:100] + 0:3 ## rownames must be accessible by AnnotationTrack element identifier rownames(m) <- identifier(annTrack, lowest=TRUE) ## create a lattice density plot for the values (signals) of the two groups ## as the chart must be placed into a pre-set grid view port we have to use ## print without calling plot.new! Note, use a common prefix for all lattice. ## Avoid wasting space by removing y-axis decorations. ## Note, in this example 'm' will be found in the environment the 'details' ## function is defined in. To avoid overwriting 'm' you should use a closure ## or environment to access 'm'. details <- function(identifier, ...) { d = data.frame(signal=m[identifier,], group=rep(c("grp1","grp2"), each=50)) print(densityplot(~signal, group=group, data=d, main=identifier, scales=list(draw=FALSE, x=list(draw=TRUE)), ylab="", xlab="", ), newpage=FALSE, prefix="plot") } deTrack <- AnnotationTrack(range=gr, genome="hg19", chromosome=7, name="generic annotation with details per entry", stacking="squish", fun=details, details.ratio=1) plotTracks(deTrack) set.seed(1234) deTrack <- AnnotationTrack(range=gr, genome="hg19", chromosome=7, name="generic annotation with details per entry", stacking="squish",fun=details, details.ratio=1, selectFun=function(...){sample(c(FALSE, TRUE), 1)}) plotTracks(deTrack) } \keyword{classes} Gviz/man/BiomartGeneRegionTrack-class.Rd0000644000126300012640000013022512227067650021560 0ustar00biocbuildphs_compbio\name{BiomartGeneRegionTrack-class} \Rdversion{1.1} \docType{class} \alias{BiomartGeneRegionTrack-class} \alias{BiomartGeneRegionTrack} \alias{initialize,BiomartGeneRegionTrack-method} \title{BiomartGeneRegionTrack class and methods} \description{ A class to hold gene model data for a genomic region fetched dynamically from EBI's Biomart Ensembl data source. } \section{Objects from the class}{ Objects can be created using the constructor function \code{BiomartGeneRegionTrack}. } \usage{ BiomartGeneRegionTrack(start, end, biomart, chromosome, strand, genome, stacking="squish", filters=list(), name="BiomartGeneRegionTrack", ...) } \arguments{ \item{start}{An integer scalar with the genomic start coordinates for the gene model range.} \item{end}{An integer scalar with the genomic end coordinates for the gene model range.} \item{biomart}{An optional \code{\linkS4class{Mart}} object providing access to the EBI Biomart webservice. As default the appropriate Ensembl data source is selected based on the provided genome and chromosome.} \item{strand}{Character scalar, the strand for which to fetch gene information from Biomart. One in \code{+}, \code{-}, or \code{+-}.} \item{chromosome}{The chromosome on which the track's genomic ranges are defined. A valid UCSC chromosome identifier. Please note that at this stage only syntactic checking takes place, i.e., the argument value needs to be a single integer, numeric character or a character of the form \code{chrx}, where \code{x} may be any possible string. The user has to make sure that the respective chromosome is indeed defined for the the track's genome.} \item{genome}{The genome on which the track's ranges are defined. Usually this is a valid UCSC genome identifier, however this is not being formally checked at this point. If no mapping from genome to Biomart Ensembl data source is possible, the \code{biomart} argument needs to be provided by the user.} \item{stacking}{The stacking type for overlapping items of the track. One in \code{c(hide, dense, squish, pack,full)}. Currently, only hide (don't show the track items, squish (make best use of the available space) and dense (no stacking at all) are implemented.} \item{filters}{A list of additional filters to be applied in the Biomart query. See \code{\link{getBM}} for details.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{\dots}{Additional items which will all be interpreted as further display parameters. See \code{\link{settings}} and the "Display Parameters" section below for details.} } \details{ A track containing all gene models in a particular region as fetched from EBI's Biomart service. Usually the user does not have to take care of the Biomart connection, which will be established automatically based on the provided genome and chromosome information. However, for full flexibility a valid \code{\linkS4class{Mart}} object may be passed on to the constructor. Please note that this assumes a connection to one of the Ensembl gene data sources, mapping the available query data back to the internal object slots. } \value{ The return value of the constructor function is a new object of class \code{BiomartGeneRegionTrack}. } \section{Slots}{ \describe{ \item{\code{biomart}:}{Object of class \code{"MartOrNULL"}, the connection to the Ensembl Biomart webservice. } \item{\code{filter}:}{Object of class \code{"list"}, additional filters for the data base query. } \item{\code{start}:}{Object of class \code{"numeric"}, inherited from class \code{\linkS4class{GeneRegionTrack}}. The start coordinates of the annotation range. The coorrdinates for the individual gene model items are stored in the \code{range} slot.} \item{\code{end}:}{Object of class \code{"numeric"}, inherited from class \code{\linkS4class{GeneRegionTrack}}. The end coordinates of the annotation range. The corrdinates for the individual gene model items are stored in the \code{range} slot.} \item{\code{stacking}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{stacks}:}{Object of class \code{"environment"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{GeneRegionTrack}"}, directly. Class \code{"\linkS4class{AnnotationTrack}"}, by class "GeneRegionTrack", distance 2. Class \code{"\linkS4class{StackedTrack}"}, by class "GeneRegionTrack", distance 3. Class \code{"\linkS4class{RangeTrack}"}, by class "GeneRegionTrack", distance 4. Class \code{"\linkS4class{GdObject}"}, by class "GeneRegionTrack", distance 5. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{BiomartGeneRegionTrack}. \describe{ \bold{\emph{Internal methods:}} \item{initialize}{\code{signature(.Object = "BiomartGeneRegionTrack")}: initialize the object. } } \bold{\emph{Inherited methods:}} \describe{ \item{group}{\code{signature(gdObject="BiomartGeneRegionTrack")}: extract the group membership for all track items. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{group<-}{\code{signature(gdObject="BiomartGeneRegionTrack", value="character")}: replace the grouping information for track items. The replacement value must be a factor of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{group<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{group(obj) <- c("a", "a", "b", "c", "a")}} } } \item{identifier}{\code{signature(gdObject="BiomartGeneRegionTrack")}: return track item identifiers. Depending on the setting of the optional argument \code{lowest}, these are either the group identifiers or the individual item identifiers. \emph{Usage:} \code{identifier(GdObject, lowest=FALSE)} \emph{Additional Arguments:} \describe{ \item{}{\code{lowest}: return the lowest-level identifier, i.e., the item IDs, or the higher level group IDs which do not have to be unqiue.} } \emph{Examples:} \describe{ \item{}{\code{identifier(obj, lowest=FALSE)}} } } \item{identifier<-}{\code{signature(gdObject="BiomartGeneRegionTrack", value="character")}: Set the track item identifiers. The replacement value has to be a character vector of appropriate length. This always replaces the group-level identifiers, so essentially it is similar to \code{groups<-}. \emph{Usage:} \code{identifier<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{identifier(obj) <- c("foo", "bar")}} } } \item{exon}{\code{signature(GdObject="BiomartGeneRegionTrack")}: Extract the exon identifiers for all exons in the gene models. \emph{Usage:} \code{exon(GdObject)} \emph{Examples:} \describe{ \item{}{\code{exon(obj)}} } } \item{exon<-}{\code{signature(GdObject="BiomartGeneRegionTrack", value="character")}: replace the exon identifiers for all exons in the gene model. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{exon<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{exon(obj) <- paste("Exon", 1:5)}} } } \item{gene}{\code{signature(GdObject="BiomartGeneRegionTrack")}: Extract the gene identifiers for all gene models. \emph{Usage:} \code{gene(GdObject)} \emph{Examples:} \describe{ \item{}{\code{gene(obj)}} } } \item{gene<-}{\code{signature(GdObject="BiomartGeneRegionTrack", value="character")}: replace the gene identifiers for all gene models. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{gene<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{gene(obj) <- paste("Gene", LETTERS[1:5])}} } } \item{symbol}{\code{signature(GdObject="BiomartGeneRegionTrack")}: Extract the human-readble gene symbol for all gene models. \emph{Usage:} \code{symbol(GdObject)} \emph{Examples:} \describe{ \item{}{\code{symbol(obj)}} } } \item{symbol<-}{\code{signature(GdObject="BiomartGeneRegionTrack", value="character")}: replace the human-readable gene symbol for all gene models. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{gene<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{symbol(obj) <- letters[1:5]}} } } \item{transcript}{\code{signature(GdObject="BiomartGeneRegionTrack")}: Extract the transcript identifiers for all transcripts in the gene models. \emph{Usage:} \code{transcript(GdObject)} \emph{Examples:} \describe{ \item{}{\code{transcript(obj)}} } } \item{transcript<-}{\code{signature(GdObject="BiomartGeneRegionTrack", value="character")}: replace the transcript identifiers for all transcripts in the gene model. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{transcript<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{transcript(obj) <- paste("Exon", 1:5)}} } } } \emph{Internal methods:} \describe{ \item{coerce}{\code{signature(from="BiomartGeneRegionTrack", to="UCSCData")}: coerce to a \code{UCSCData} object for export to the UCSC genome browser. \emph{Examples:} \describe{ \item{}{\code{as(obj, "UCSCData")}} } } \item{collapseTrack}{\code{signature(GdObject="BiomartGeneRegionTrack")}: preprocess the track before plotting. This will collapse overlapping track items based on the available resolution and increase the width and height of all track objects to a minimum value to avoid rendering issues. See \code{\link{collapsing}} for details. \emph{Usage:} \code{collapseTrack(GdObject, diff=.pxResolution(coord="x"))} \emph{Additional Arguments:} \describe{ \item{}{\code{diff}: the minimum pixel width to display, everything below that will be inflated to a width of \code{diff}.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::collapseTrack(obj)}} } } \item{show}{\code{signature(object="BiomartGeneRegionTrack")}: show a human-readable summary of the object } \item{drawGD}{\code{signature(GdObject="BiomartGeneRegionTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the object is preprocessed based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Since subsetting of the object can be potentially costly, this can be switched off in case subsetting has already been performed before or is not necessary. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{drawGrid}{\code{signature(GdObject="BiomartGeneRegionTrack")}: superpose a grid on top of a track. \emph{Usage:} \code{drawGrid(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, draw grid within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj, from=10, to=100)}} } } \item{setStacks}{\code{signature(GdObject="BiomartGeneRegionTrack")}: recompute the stacks based on the available space and on the object's track items and stacking settings. \emph{Usage:} \code{setStacks(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, compute stacking within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::setStacks(obj, from=1, to=100)}} } } \item{stacking}{\code{signature(GdObject="BiomartGeneRegionTrack")}: return the current stacking type. \emph{Usage:} \code{stacking(GdObject)} \emph{Examples:} \describe{ \item{}{\code{stacking(obj)}} } } \item{stacking<-}{\code{signature(GdObject="BiomartGeneRegionTrack", value="character")}: set the object's stacking type to one in \code{c(hide, dense, squish, pack,full)}. \emph{Usage:} \code{stacking<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{stacking(obj) <- "squish" }} } } \item{stacks}{\code{signature(GdObject="BiomartGeneRegionTrack")}: return the stack indices for each track item. \emph{Usage:} \code{stacks(GdObject)} \emph{Examples:} \describe{ \item{}{\code{Gviz:::stacks(obj)}} } } \item{[}{\code{signature(x="BiomartGeneRegionTrack", i="ANY", j="ANY", drop="ANY")}: subset the items in the \code{BiomartGeneRegionTrack} object. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{chromosome}{\code{signature(GdObject="BiomartGeneRegionTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="BiomartGeneRegionTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="BiomartGeneRegionTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="BiomartGeneRegionTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="BiomartGeneRegionTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="BiomartGeneRegionTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="BiomartGeneRegionTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{BiomartGeneRegionTrack}. See \code{\link{grouping}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="BiomartGeneRegionTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="BiomartGeneRegionTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="BiomartGeneRegionTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="BiomartGeneRegionTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="BiomartGeneRegionTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="BiomartGeneRegionTrack")}: split a \code{BiomartGeneRegionTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of objects of the same class as the input object, all inheriting from class \code{BiomartGeneRegionTrack}. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="BiomartGeneRegionTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="BiomartGeneRegionTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="BiomartGeneRegionTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="BiomartGeneRegionTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="BiomartGeneRegionTrack")}: subset a \code{BiomartGeneRegionTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{displayPars}{\code{signature(x="BiomartGeneRegionTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="BiomartGeneRegionTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="BiomartGeneRegionTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="BiomartGeneRegionTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="BiomartGeneRegionTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="BiomartGeneRegionTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{BiomartGeneRegionTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="BiomartGeneRegionTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{BiomartGeneRegionTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{names}{\code{signature(x="BiomartGeneRegionTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="BiomartGeneRegionTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="BiomartGeneRegionTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="BiomartGeneRegionTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{BiomartGeneRegionTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{C_segment="burlywood4"}: Character or integer scalar. Fill color for annotation objects of type 'C_segment'.} \item{}{\code{D_segment="lightblue"}: Character or integer scalar. Fill color for annotation objects of type 'C_segment'.} \item{}{\code{J_segment="dodgerblue2"}: Character or integer scalar. Fill color for annotation objects of type 'C_segment'.} \item{}{\code{miRNA="cornflowerblue"}: Character or integer scalar. Fill color for annotation objects of type 'L_segment'.} \item{}{\code{miRNA_pseudogene="cornsilk"}: Character or integer scalar. Fill color for annotation objects of type 'miRNA_pseudogene'.} \item{}{\code{misc_RNA="cornsilk3"}: Character or integer scalar. Fill color for annotation objects of type 'misc_RNA'.} \item{}{\code{misc_RNA_pseudogene="cornsilk4"}: Character or integer scalar. Fill color for annotation objects of type 'misc_RNA_pseudogene'.} \item{}{\code{Mt_rRNA="yellow"}: Character or integer scalar. Fill color for annotation objects of type 'Mt_rRNA'.} \item{}{\code{Mt_tRNA="darkgoldenrod"}: Character or integer scalar. Fill color for annotation objects of type 'Mt_tRNA'.} \item{}{\code{Mt_tRNA_pseudogene="darkgoldenrod1"}: Character or integer scalar. Fill color for annotation objects of type 'Mt_tRNA_pseudogene'.} \item{}{\code{protein_coding="gold4"}: Character or integer scalar. Fill color for annotation objects of type 'protein_coding'.} \item{}{\code{pseudogene="brown1"}: Character or integer scalar. Fill color for annotation objects of type 'pseudogene'.} \item{}{\code{retrotransposed="blueviolet"}: Character or integer scalar. Fill color for annotation objects of type 'retrotransposed'.} \item{}{\code{rRNA="darkolivegreen1"}: Character or integer scalar. Fill color for annotation objects of type 'rRNA'.} \item{}{\code{rRNA_pseudogene="darkolivegreen"}: Character or integer scalar. Fill color for annotation objects of type 'rRNA_pseudogene'.} \item{}{\code{scRNA="darkorange"}: Character or integer scalar. Fill color for annotation objects of type 'scRNA'.} \item{}{\code{scRNA_pseudogene="darkorange2"}: Character or integer scalar. Fill color for annotation objects of type 'scRNA_pseudogene'.} \item{}{\code{snoRNA="cyan"}: Character or integer scalar. Fill color for annotation objects of type 'snoRNA'.} \item{}{\code{snoRNA_pseudogene="cyan2"}: Character or integer scalar. Fill color for annotation objects of type 'snoRNA_pseudogene'.} \item{}{\code{snRNA="coral"}: Character or integer scalar. Fill color for annotation objects of type 'snRNA'.} \item{}{\code{snRNA_pseudogene="coral3"}: Character or integer scalar. Fill color for annotation objects of type 'snRNA_pseudogene'.} \item{}{\code{tRNA_pseudogene="antiquewhite3"}: Character or integer scalar. Fill color for annotation objects of type 'tRNA_pseudogene'.} \item{}{\code{V_segment="aquamarine"}: Character or integer scalar. Fill color for annotation objects of type 'V_segment'.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{BiomartGeneRegionTrack} objects. \describe{ \item{}{\code{\linkS4class{GeneRegionTrack}}: \describe{ \item{}{\code{fill="orange"}: Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{geneSymbols=TRUE}: Logical scalar. Use human-readable gene symbols or gene IDs for the transcript annotation.} \item{}{\code{shape=c("smallArrow", "box")}: Character scalar. The shape in which to display the track items. Currently only \code{box}, \code{arrow}, \code{ellipse}, and \code{smallArrow} are implemented.} \item{}{\code{showExonId=FALSE}: Logical scalar. Control whether to plot the individual exon identifiers.} \item{}{\code{mergeGroups=FALSE}: Logical scalar. Merge fully overlapping groups if \code{collapse==TRUE}.} } } \item{}{\code{\linkS4class{AnnotationTrack}}: \describe{ \item{}{\code{cex=1}: Numeric scalar. The font expansion factor for item identifiers.} \item{}{\code{cex.group=0.6}: Numeric scalar. The font expansion factor for the group-level annotation.} \item{}{\code{col="transparent"}: Character or integer scalar. The border color for all track items.} \item{}{\code{fontcolor="white"}: Character or integer scalar. The font color for item identifiers.} \item{}{\code{fontcolor.group="#808080"}: Character or integer scalar. The font color for the group-level annotation.} \item{}{\code{fontface=1}: Integer scalar. The font face for item identifiers.} \item{}{\code{fontface.group=2}: Numeric scalar. The font face for the group-level annotation.} \item{}{\code{fontfamily="sans"}: Character scalar. The font family for item identifiers.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for item identifiers.} \item{}{\code{lex=1}: Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for item identifiers.} \item{}{\code{lty="solid"}: Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lwd=1}: Integer scalar. The line width for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{rotation=0}: Numeric scalar. The degree of text rotation for item identifiers.} \item{}{\code{showFeatureId=FALSE}: Logical scalar. Control whether to plot the individual track item identifiers.} \item{}{\code{showId=FALSE}: Logical scalar. Control whether to annotate individual groups.} \item{}{\code{showOverplotting=FALSE}: Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \code{collapse==TRUE}} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{mergeGroups=FALSE}: Logical scalar. Merge fully overlapping groups if \code{collapse==TRUE}.} } } \item{}{\code{\linkS4class{StackedTrack}}: \describe{ \item{}{\code{reverseStacking=FALSE}: Logical flag. Reverse the y-ordering of stacked items. I.e., features that are plotted on the bottom-most stacks will be moved to the top-most stack and vice versa.} \item{}{\code{stackHeight=0.75}: Numeric between 0 and 1. Controls the vertical size and spacing between stacked elements. The number defines the proportion of the total available space for the stack that is used to draw the glyphs. E.g., a value of 0.5 means that half of the available vertical drawing space (for each stacking line) is used for the glyphs, and thus one quarter of the available space each is used for spacing above and below the glyph. Defaults to 0.75.} } } \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \references{ EBI Biomart webservice at \url{http://www.biomart.org}. } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{Mart}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{getBM}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} \code{\link{useMart}} } \examples{ \dontshow{ ## Load some sample data data(bmTrack) } ## Construct the object \dontrun{ bmTrack <- BiomartGeneRegionTrack(start=26682683, end=26711643, chromosome=7, genome="mm9") } \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(bmTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(bmTrack) ## Track names names(bmTrack) names(bmTrack) <- "foo" plotTracks(bmTrack) ## Subsetting and splitting subTrack <- subset(bmTrack, from=26700000, to=26705000) length(subTrack) subTrack <- bmTrack[transcript(bmTrack)=="ENSMUST00000144140"] split(bmTrack, transcript(bmTrack)) ## Accessors start(bmTrack) end(bmTrack) width(bmTrack) position(bmTrack) width(subTrack) <- width(subTrack)+100 strand(bmTrack) strand(subTrack) <- "-" chromosome(bmTrack) chromosome(subTrack) <- "chrX" genome(bmTrack) genome(subTrack) <- "hg19" range(bmTrack) ranges(bmTrack) ## Annotation identifier(bmTrack) identifier(bmTrack, lowest=TRUE) identifier(subTrack) <- "bar" feature(bmTrack) feature(subTrack) <- "foo" exon(bmTrack) exon(subTrack) <- letters[1:2] gene(bmTrack) gene(subTrack) <- "bar" symbol(bmTrack) symbol(subTrack) <- "foo" transcript(bmTrack) transcript(subTrack) <- c("foo", "bar") chromosome(subTrack) <- "chr7" plotTracks(subTrack) values(bmTrack) ## Grouping group(bmTrack) group(subTrack) <- "Group 1" transcript(subTrack) plotTracks(subTrack) ## Stacking stacking(bmTrack) stacking(bmTrack) <- "dense" plotTracks(bmTrack) ## coercion as(bmTrack, "data.frame") as(bmTrack, "UCSCData") ## HTML image map coords(bmTrack) tags(bmTrack) bmTrack <- plotTracks(bmTrack)$foo coords(bmTrack) tags(bmTrack) } \keyword{classes} Gviz/man/DataTrack-class.Rd0000644000126300012640000015224112227067650017073 0ustar00biocbuildphs_compbio\name{DataTrack-class} \Rdversion{1.1} \docType{class} \alias{DataTrack-class} \alias{DataTrack} \alias{[,DataTrack-method} \alias{[,DataTrack,ANY,ANY-method} \alias{collapseTrack,DataTrack-method} \alias{drawAxis,DataTrack-method} \alias{drawGD,DataTrack-method} \alias{initialize,DataTrack-method} \alias{initialize,ReferenceDataTrack-method} \alias{score,DataTrack-method} \alias{show,DataTrack-method} \alias{show,ReferenceDataTrack-method} \alias{split,DataTrack,ANY-method} \alias{split,DataTrack-method} \alias{values,DataTrack-method} \alias{values<-,DataTrack-method} \alias{feature,DataTrack-method} \alias{feature<-,DataTrack,character-method} \alias{range,DataTrack-method} \alias{strand,DataTrack-method} \alias{subset,DataTrack-method} \alias{subset,ReferenceDataTrack-method} \alias{strand<-,DataTrack-method} \alias{coerce,DataTrack,data.frame-method} \alias{coerce,GRanges,DataTrack-method} \title{DataTrack class and methods} \description{ A class to store numeric data values along genomic coordinates. Multiple samples as well as sample groupings are supported, with the restriction of equal genomic coordinates for a single observation across samples. } \section{Objects from the class}{ Objects can be created using the constructor function \code{DataTrack}. } \usage{ DataTrack(range=NULL, start=NULL, end=NULL, width=NULL, data, chromosome, strand, genome, name="DataTrack", importFunction, stream=FALSE, ...) } \arguments{ We tried to keep instantiation of \code{DataTrack} objects as flexible as possible to accomodate different use cases. For instance, one natural way to create a \code{DataTrack} is from an existing \code{\linkS4class{GRanges}} object. In other cases it might be more appropriate to build the object using individual function arguments. \item{range}{ An optional meta argument to handle the different input types. If the \code{range} argument is missing, all the relevant information to create the object has to be provided as individual function arguments (see below). The different input options for \code{range} are: \describe{ \item{}{A \code{GRanges} object: essentially all the necessary information to create a \code{DataTrack} can be contained in a single \code{GRanges} object. The track's coordinates are taken from the \code{start}, \code{end} and \code{seqnames} slots, the genome information from the genome slot, and the numeric data values can be extracted from additional \code{elementMetadata} columns (please note that non-numeric columns are being ignored with a warning). As a matter of fact, calling the constructor on a \code{GRanges} object without further arguments, e.g. \code{DataTrack(range=obj)} is equivalent to calling the coerce method \code{as(obj, "DataTrack")}. Alternatively, the \code{GRanges} object may only contain the coordinate information, in which case the numeric data part is expected to be present in the separate \code{data} argument, and the ranges have to match the dimensions of the data matrix. If \code{data} is not \code{NULL}, this will always take precedence over anything defined in the \code{range} argument. See below for details.} \item{}{An \code{\linkS4class{IRanges}} object: this is very similar to the above case, except that the numeric data part now always has to be provided in the separate \code{data} argument. Also the chromosome information must be provided in the \code{chromosome} argument, because neither of the two can be directly encoded in an \code{IRange} object.} \item{}{A \code{data.frame} object: the \code{data.frame} needs to contain at least the two mandatory columns \code{start} and \code{end} with the range coordinates. It may also contain a \code{chromosome} column with the chromosome information for each range. If missing it will be drawn from the separate \code{chromosome} argument. All additional numeric columns will be interpreted as data columns, unless the \code{data} argument is explicitely provided.} \item{}{A \code{character} scalar: in this case the value of the \code{range} argument is considered to be a file path to an annotation file on disk. A range of file types are supported by the \code{Gviz} package as identified by the file extension. See the \code{importFunction} documentation below for further details.} } } \item{start, end, width}{Integer vectors, giving the start and the end end coordinates for the individual track items, or their width. Two of the three need to be specified, and have to be of equal length or of length one, in which case the single value will be recycled accordingly. Otherwise, the usual R recycling rules for vectors do not apply and the function will cast an error.} \item{data}{A numeric matrix of data points with the number of columns equal to the number of coordinates in \code{range}, or a numeric vector of appropriate length that will be coerced into such a one-row matrix. Each individual row is supposed to contain data for a given sample, where the coordinates for each single observation are constant across samples. Depending on the plotting type of the data (see 'Details' and 'Display Parameters' sections), sample grouping or data aggregation may be available. Alternatively, this can be a character vector of column names that point into the element metadata of the \code{range} object for subsetting. Naturally, this is only supported when the \code{range} argument is of class \code{GRanges}.} \item{strand}{Character vector, the strand information for the individual track items. Currently this has to be unique for the whole track and doesn't really have any visible consequences, but we might decide to make \code{DataTracks} strand-specific at a later stage.} \item{chromosome}{The chromosome on which the track's genomic ranges are defined. A valid UCSC chromosome identifier if \code{options(ucscChromosomeNames=TRUE)}. Please note that in this case only syntactic checking takes place, i.e., the argument value needs to be an integer, numeric character or a character of the form \code{chrx}, where \code{x} may be any possible string. The user has to make sure that the respective chromosome is indeed defined for the the track's genome. If not provided here, the constructor will try to construct the chromosome information based on the available inputs, and as a last resort will fall back to the value \code{chrNA}. Please note that by definition all objects in the \code{Gviz} package can only have a single active chromosome at a time (although internally the information for more than one chromosome may be present), and the user has to call the \code{chromosome<-} replacement method in order to change to a different active chromosome.} \item{genome}{The genome on which the track's ranges are defined. Usually this is a valid UCSC genome identifier, however this is not being formally checked at this point. If not provided here the constructor will try to extract this information from the provided input, and eventually will fall back to the default value of \code{NA}.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{importFunction}{A user-defined function to be used to import the data from a file. This only applies when the \code{range} argument is a character string with the path to the input data file. The function needs to accept an argument \code{file} containing the file path and has to return a proper \code{GRanges} object with the data part attached as numeric \code{elementMetadata} columns. Essentially the process is equivalent to constructing a \code{DataTrack} directly from a \code{GRanges} object in that non-numeric columns will be dropped, and further subsetting can be archived by means of the \code{data} argument. A set of default import functions is already implemented in the package for a number of different file types, and one of these defaults will be picked automatically based on the extension of the input file name. If the extension can not be mapped to any of the existing import function, an error is raised asking for a user-defined import function. Currently the following file types can be imported with the default functions: \code{wig}, \code{bigWig/bw}, \code{bedGraph} and \code{bam}. Some file types support indexing by genomic coordinates (e.g., \code{bigWig} and \code{bam}), and it makes sense to only load the part of the file that is needed for plotting. To this end, the \code{Gviz} package defines the derived \code{ReferenceDataTrack} class, which supports streaming data from the file system. The user typically does not have to deal with this distinction but may rely on the constructor function to make the right choice as long as the default import functions are used. However, once a user-defined import function has been provided and if this function adds support for indexed files, you will have to make the constructor aware of this fact by setting the \code{stream} argument to \code{TRUE}. Please note that in this case the import function needs to accept a second mandatory argument \code{selection} which is a \code{GRanges} object containing the dimensions of the plotted genomic range. As before, the function has to return an appropriate \code{GRanges} object.} \item{stream}{A logical flag indicating that the user-provided import function can deal with indexed files and knows how to process the additional \code{selection} argument when accessing the data on disk. This causes the constructor to return a \code{ReferenceDataTrack} object which will grab the necessary data on the fly during each plotting operation.} \item{\dots}{Additional items which will all be interpreted as further display parameters.} } \value{ The return value of the constructor function is a new object of class \code{DataTrack} or \code{ReferenceDataTrack}. } \section{Slots}{ \describe{ \item{\code{data}:}{Object of class \code{"matrix"}, containing the data values to be plotted. Individual rows of the matrix correspond to individual samples, and the number of columns has to be identical to the feature number of the \code{GRanges} object in the \code{range} slot.} \item{\code{strand}:}{Object of class \code{"character"}, the strand information for the track, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two.} \item{\code{range}:}{Object of class \code{\linkS4class{IRanges}}, inherited from class \code{\linkS4class{RangeTrack}}. The genomic coordinates for the data values. The length of the object needs to be identical to the number of columns of the data matrix in the \code{data} slot.} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}} } \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{NumericTrack}"}, directly. Class \code{"\linkS4class{RangeTrack}"}, by class "NumericTrack", distance 2. Class \code{"\linkS4class{GdObject}"}, by class "NumericTrack", distance 3. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{DataTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{[}{\code{signature(x="DataTrack")}: subsetting of the object, either to a subet of coordinates, or to a subset of samples. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices for coordinates (\code{i}) or samples (\code{j}).} } \emph{Examples:} \describe{ \item{}{\code{obj[1:3,]}} \item{}{\code{obj[,2:4]}} } } \item{values}{\code{signature(x="DataTrack")}: return the raw data values of the object, i.e., the data matrix in the \code{data} slot. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{values<-}{\code{signature(x="DataTrack")}: replace the data matrix in the \code{data} slot. \emph{Usage:} \code{values<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{values(obj) <- matrix(1:10, ncol=2)}} } } \item{score}{\code{signature(x="DataTrack")}: return processed data values of the object exactly like they would be plotted to the device (modulo any potential aggregration or collapsing), i.e., the raw data with optional transformations applied. \emph{Usage:} \code{score(x, from=NULL, to=NULL, sort=FALSE, transformation=TRUE)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: restrict to data within a certain coordinates range.} \item{}{\code{sort}: sort the return values by coordinates. This is usually not necessary since the data should already be ordererd, however this is not formaly checked anywhere and some operations strictly depend on ordered data.} \item{}{\code{transformation}: apply a data transformation in case one is defined as the \code{transformation} display parameter.} } \emph{Examples:} \describe{ \item{}{\code{score(obj)}} \item{}{\code{score(obj, from=100, to=10000)}} \item{}{\code{score(obj, sort=TRUE, transformation=FALSE)}} } } \item{split}{\code{signature(x="DataTrack")}: split a \code{DataTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of \code{DataTrack} objects. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{range, ranges}{\code{signature(x="DataTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} \item{}{\code{ranges(obj)}} } } \item{strand}{\code{signature(x="DataTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="DataTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{feature}{\code{signature(GdObject="DataTrack")}: returns NULL since there is no grouping information for the ranges in a \code{DataTrack}. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="DataTrack", value="character")}: this return the unaltered input object since there is no grouping information for the ranges in a \code{DataTrack}. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } } \bold{\emph{Internal methods:}} \describe{ \item{collapseTrack}{\code{signature(gdObject="DataTrack")}: preprocess the track before plotting. This will collapse overlapping track items based on the available resolution and increase the width and height of all track objects to a minimum value to avoid rendering issues. See \code{\link{collapsing}} for details. \emph{Usage:} \code{collapseTrack(GdObject, diff=.pxResolution(coord="x"))} \emph{Additional Arguments:} \describe{ \item{}{\code{diff}: the minimum pixel width to display, everything below that will be inflated to a width of \code{diff}.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::collapseTrack(obj)}} } } \item{drawGD}{\code{signature(GdObject="DataTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the object is preprocessed based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Since subsetting of the object can be potentially costly, this can be switched off in case subsetting has already been performed before or is not necessary. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{drawAxis}{\code{signature(GdObject="DataTrack")}: add a y-axis to the title panel of a track. \emph{Usage:} \code{drawAxis(GdObject, from, to, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: compute axis range from the data within a certain coordinates range only.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{initialize}{\code{signature(.Object="DataTrack")}: initialize the object } \item{show}{\code{signature(object="DataTrack")}: show a human-readable summary of the object } } \bold{\emph{Inherited methods:}} \describe{ \item{drawGrid}{\code{signature(GdObject="DataTrack")}: superpose a grid on top of a track. \emph{Usage:} \code{drawGrid(GdObject, from, to, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, restrict to coordinate range before computing the grid lines.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } \item{chromosome}{\code{signature(GdObject="DataTrack")}: return the currently active chromosome for which the track is defined. For consistancy with other Bioconductor packages, the \code{isActiveSeq} alias is also provided. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="DataTrack")}: replace the value of the track's active chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one, unless \code{options(ucscChromosomeNames=FALSE)}. For consistancy with other Bioconductor packages, the \code{isActiveSeq<-} alias is also provided. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="DataTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="DataTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="DataTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{genome}{\code{signature(x="DataTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="DataTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="DataTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{coerce}{\code{signature(from="DataTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="DataTrack")}: subset a \code{NumericTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, drop=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{drop}: drop unused regions on the other, non-active chromosomes.w} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{displayPars}{\code{signature(x="DataTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="DataTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="DataTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="DataTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="DataTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="DataTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{DataTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="DataTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{DataTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="DataTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="DataTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="DataTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="DataTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="DataTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{DataTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{aggregation="mean"}: Function or character scalar. Used to aggregate values in windows or for collapsing overlapping items. The function has to accept a numeric vector as a single input parameter and has to return a numeric scalar with the aggregated value. Alternatively, one of the predefined options \code{mean}, \code{median} \code{sum}, \code{min}, \code{max} or \code{extreme} can be supplied as a character scalar. Defaults to \code{mean}.} \item{}{\code{aggregateGroups=FALSE}:Logical scalar. Aggregate the values within a sample group using the aggregation function specified in the \code{aggregate} parameter.} \item{}{\code{amount=NULL}: Numeric scalar. Amount of jittering in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{baseline=NULL}: Numeric scalar. Y-axis position of an optional baseline. This parameter has a special meaning for mountain-type and polygon-type plots, see the 'Details' section in \code{\linkS4class{DataTrack}} for more information.} \item{}{\code{box.ratio=1}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{box.width=NULL}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{cex=0.7}: Numeric scalar. The default pixel size for plotting symbols.} \item{}{\code{cex.sampleNames=NULL}:Numeric scalar. The size factor for the sample names text in heatmap plots. Defaults to an automatic setting.} \item{}{\code{coef=1.5}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{col.baseline=NULL}: Character scalar. Color for the optional baseline, defaults to the setting of \code{col}.} \item{}{\code{col.histogram="#808080"}: Character scalar. Line color in histogram-type plots.} \item{}{\code{col.horizon=NA}: The line color for the segments in the \code{horizon}-type plot. See \code{\link{horizonplot}} for details.} \item{}{\code{col.mountain=NULL}: Character scalar. Line color in mountain-type and polygon-type plots, defaults to the setting of \code{col}.} \item{}{\code{col.sampleNames="white"}:Character or integer scalar. The color used for the sample names in heatmap plots.} \item{}{\code{collapse=FALSE}: Logical scalar. Collapse overlapping ranges and aggregate the underlying data.} \item{}{\code{degree=1}: Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{do.out=TRUE}: Logical scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{evaluation=50}: Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{factor=0.5}: Numeric scalar. Factor to control amount of jittering in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{family="symmetric"}: Character scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{fill.histogram="lightgray"}: Character scalar. Fill color in histogram-type plots, defaults to the setting of \code{fill}.} \item{}{\code{fill.horizon=c("#B41414", "#E03231", "#F7A99C", "#9FC8DC", "#468CC8", "#0165B3")}: The fill colors for the segments in the \code{horizon}-type plot. this should be a vector of length six, where the first three entries are the colors for positive changes, and the latter three entries are the colors for negative changes. Defaults to a red-blue color scheme. See \code{\link{horizonplot}} for details.} \item{}{\code{fill.mountain=c("#CCFFFF", "#FFCCFF")}: Character vector of length 2. Fill color in mountain-type and polygon-type plots.} \item{}{\code{gradient=c("#F7FBFF", "#DEEBF7", "#C6DBEF", "#9ECAE1", "#6BAED6", "#4292C6", "#2171B5", "#08519C", "#08306B")}: Character vector. The base colors for the 'gradient' plotting type or the 'heatmap' type with a single group. When plotting heatmaps with more than one group, the 'col' parameter can be used to control the group color scheme, however the gradient will always be from white to 'col' and thus does not offer as much flexibility as this 'gradient' parameter.} \item{}{\code{showColorBar=TRUE}: Boolean. Indicate the data range color mapping in the axis for 'heatmap' or 'gradient' types.} \item{}{\code{groups=NULL}: Vector coercable to a factor. Optional sample grouping. See 'Details' section in \code{\linkS4class{DataTrack}} for further information.} \item{}{\code{horizon.origin=0}: The baseline relative to which changes are indicated on the \code{horizon}-type plot. See \code{\link{horizonplot}} for details.} \item{}{\code{horizon.scale=NULL}:The scale for each of the segments in the \code{horizon}-type plot. Defaults to 1/3 of the absolute data range. See \code{\link{horizonplot}} for details.} \item{}{\code{jitter.x=FALSE}: Logical scalar. Toggle on jittering on the x axis in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{jitter.y=FALSE}: Logical scalar. Toggle off jittering on the y axis in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{levels.fos=NULL}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{lty.baseline=NULL}: Character or numeric scalar. Line type of the optional baseline, defaults to the setting of \code{lty}.} \item{}{\code{lty.mountain=NULL}: Character or numeric scalar. Line type in mountain-type and polygon-type plots, defaults to the setting of \code{lty}.} \item{}{\code{lwd.baseline=NULL}: Numeric scalar. Line width of the optional baseline, defaults to the setting of \code{lwd}.} \item{}{\code{lwd.mountain=NULL}: Numeric scalar. Line width in mountain-type and polygon-type plots, defaults to the setting of \code{lwd}.} \item{}{\code{min.distance=0}: Numeric scalar. The mimimum distance in pixel below which to collapse ranges.} \item{}{\code{na.rm=FALSE}: Boolean controlling whether to discard all NA values when plotting or to keep empty spaces for NAs} \item{}{\code{ncolor=100}: Integer scalar. The number of colors for the 'gradient' plotting type} \item{}{\code{notch=FALSE}: Logical scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{notch.frac=0.5}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{pch=20}: Integer scalar. The type of glyph used for plotting symbols.} \item{}{\code{separator=0}: Numeric scalar. Number of pixels used to separate individual samples in heatmap-type plots.} \item{}{\code{showSampleNames=FALSE}:Boolean. Display the names of the individual samples in a heatmap plot.} \item{}{\code{size=NULL}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function. By default the size will be set automatically based on the selected plotting type.} \item{}{\code{span=0.2}: Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{stackedBars=TRUE}: Logical scalar. When there are several data groups, draw the histogram-type plots as stacked barplots or grouped side by side.} \item{}{\code{stats=X[[44]]}: Function. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{transformation=NULL}: Function. Applied to the data matrix prior to plotting or when calling the \code{score} method. The function should accept exactly one input argument and its return value needs to be a numeric vector which can be coerced back into a data matrix of identical dimensionality as the input data.} \item{}{\code{type="p"}: Character vector. The plot type, one or several in \code{c("p","l", "b", "a", "s", "g", "r", "S", "smooth", "histogram", "mountain", "polygon", "h", "boxplot", "gradient", "heatmap", "horizon")}. See 'Details' section in \code{\linkS4class{DataTrack}} for more information on the individual plotting types.} \item{}{\code{varwidth=FALSE}: Logical scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{window=NULL}: Numeric or character scalar. Aggregate the rows values of the data matrix to \code{window} equally sized slices on the data range using the method defined in \code{aggregation}. If negative, apply a running window of size \code{windowSize} using the mean aggregation method. Alternatively, the special value \code{auto} causes the function to determine the optimal window size to avoid overplotting, and \code{fixed} uses fixed-size windows of size \code{windowSize}.} \item{}{\code{windowSize=NULL}: Numeric scalar. The size of the running window when the value of \code{window} is negative.} \item{}{\code{ylim=NULL}: Numeric vector of length 2. The range of the y-axis scale.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{DataTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \details{ Depending on the setting of the \code{type} display parameter, the data can be plotted in various different forms as well as combinations thereof. Supported plotting types are: \describe{ \item{}{\code{p}: simple xy-plot.} \item{}{\code{l}: lines plot. In the case of multiple samples this plotting type is not overly usefull since the points in the data matrix are connected in column-wise order. Type \code{a} might be more appropriate in these situations.} \item{}{\code{b}: combination of xy-plot and lines plot.} \item{}{\code{a}: lines plot of the column-wise average values.} \item{}{\code{s}: sort and connect data points along the x-axis} \item{}{\code{S}: sort and connect data points along the y-axis} \item{}{\code{g}: add grid lines. To ensure a consitant look and feel across multiple tracks, grid lines should preferentially be added by using the \code{grid} display parameter.} \item{}{\code{r}: add a regression line to the plot.} \item{}{\code{h}: histogram-like vertical lines centered in the middle of the coordinate ranges.} \item{}{\code{smooth}: add a loess fit to the plot. The following display parameters can be used to control the loess calculation: \code{span, degree, family, evaluation}. See \code{\link{panel.loess}} for details.} \item{}{\code{histogram}: plot data as a histogram, where the width of the histogram bars reflects the width of the genomic ranges in the \code{range} slot.} \item{}{\code{mountain}: plot a smoothed version of the data relative to a baseline, as defined by the \code{baseline} display parameter. The following display parameters can be used to control the smoothing: \code{span, degree, family, evaluation}. See \code{\link{panel.loess}} for details. The layout of the plot can be further customized via the following display parameters: \code{col.mountain, lwd.mountain, lty.mountain, fill.mountain}.} \item{}{\code{polygon}: plot data as a polygon (similar to \code{mountain}-type but without smoothing). Data are plotted relative to a baseline, as defined by the \code{baseline} display parameter. The layout of the plot can be further customized via the following display parameters: \code{col.mountain, lwd.mountain, lty.mountain, fill.mountain}.} \item{}{\code{boxplot}: plot the data as box-and-whisker plots. The layout of the plot can be further customized via the following display parameters: \code{box.ratio, box.width, varwidt, notch, notch.frac, levels.fos, stats, coef, do.out}. See \code{\link{panel.bwplot}} for details.} \item{}{\code{gradient}: collapse the data across samples and plot this average value as a color-coded gradient. Essenitally this is similar to the heatmap-type plot of a single sample. The layout of the plot can be further customized via the display parameters \code{ncolor} and \code{gradient} which control the number of gradient colors as well as the gradient base colors, respectively.} \item{}{\code{heatmap}: plot the color-coded values for all samples in the form of a heatmap. The data for individual samples can be visually separated by setting the \code{separator} display parameter. It's value is taken as the amount of spacing in pixels in between two heatmap rows. The layout of the plot can be further customized via the display parameters \code{ncolor} and \code{gradient} which control the number of gradient colors as well as the gradient base colors, respectively.} \item{}{\code{horizon}: plot continuous data by cutting the y range into segments and overplotting them with color representing the magnitude and direction of deviation. This is particularly useful when comparing multiple samples, in which case the horizon strips are stacked. See \code{\link{horizonplot}} for details. Please note that the \code{origin} and \code{horizonscale} arguments of the Lattice \code{horizonplot} function are available as display parameters \code{horizon.origin} and \code{horizon.scale}.} } For some of the above plotting-types the \code{groups} display parameter can be used to indicate sample sub-groupings. Its value is supposed to be a factor vector of similar length as the number of samples. In most cases, the groups are shown in different plotting colors and data aggregation operations are done in a stratified fashion. The \code{window} display parameter can be used to aggregate the data prior to plotting. Its value is taken as the number of equal-sized windows along the genomic coordinates of the track for which to compute average values. The special value \code{auto} can be used to automatically determine a reasonable number of windows which can be particularly useful when plotting very large genomic regions with many data points. The \code{aggregation} parameter can be set to define the aggregation function to be used when averaging in windows or across collapsed items. It takes the form of either a function which should condense a numeric vector into a single number, or one of the predefined options as character scalars \code{"mean"}, \code{"median"} or \code{"sum"} for mean, median or summation, respectively. Defaults to computing mean values for each sample. Note that the predefined options can be much faster because they are optimized to work on large numeric tables. } \author{Florian Hahne} \seealso{ \code{\linkS4class{DataTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{NumericTrack}} \code{\linkS4class{RangeTrack}} \code{\link{collapsing}} \code{\link{grouping}} \code{\link{panel.bwplot}} \code{\link{panel.grid}} \code{\link{panel.loess}} \code{\link{panel.xyplot}} \code{\link{plotTracks}} \code{\link{settings}} } \examples{ ## Object construction: ## An empty object DataTrack() ## from individual arguments dat <- matrix(runif(400), nrow=4) dtTrack <- DataTrack(start=seq(1,1000, len=100), width=10, data=dat, chromosome=1, genome="mm9", name="random data") ## from GRanges library(GenomicRanges) gr <- GRanges(seqnames="chr1", ranges=IRanges(seq(1,1000, len=100), width=10)) values(gr) <- t(dat) dtTrack <- DataTrack(range=gr, genome="mm9", name="random data") ## from IRanges dtTrack <- DataTrack(range=ranges(gr), data=dat, genome="mm9", name="random data", chromosome=1) ## from a data.frame df <- as.data.frame(gr) colnames(df)[1] <- "chromosome" dtTrack <- DataTrack(range=df, genome="mm9", name="random data") \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(dtTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(dtTrack) ## Track names names(dtTrack) names(dtTrack) <- "foo" plotTracks(dtTrack) ## Subsetting and splitting subTrack <- subset(dtTrack, from=100, to=300) length(subTrack) subTrack[1:2,] subTrack[,1:2] split(dtTrack, rep(1:2, each=50)) ## Accessors start(dtTrack) end(dtTrack) width(dtTrack) position(dtTrack) width(subTrack) <- width(subTrack)-5 strand(dtTrack) strand(subTrack) <- "-" chromosome(dtTrack) chromosome(subTrack) <- "chrX" genome(dtTrack) genome(subTrack) <- "mm9" range(dtTrack) ranges(dtTrack) ## Data values(dtTrack) score(dtTrack) ## coercion as(dtTrack, "data.frame") } \keyword{classes} Gviz/man/DisplayPars-class.Rd0000644000126300012640000001360512227067650017470 0ustar00biocbuildphs_compbio\name{DisplayPars-class} \Rdversion{1.1} \docType{class} \alias{DisplayPars-class} \alias{DisplayPars} \alias{displayPars} \alias{displayPars<-} \alias{displayPars,DisplayPars,character-method} \alias{displayPars,DisplayPars,missing-method} \alias{displayPars<-,DisplayPars,list-method} \alias{getPar} \alias{getPar,DisplayPars,character-method} \alias{getPar,DisplayPars,missing-method} \alias{initialize,DisplayPars-method} \alias{setPar} \alias{setPar,DisplayPars,character-method} \alias{setPar,DisplayPars,list-method} \alias{availableDisplayPars} \alias{as.list,InferredDisplayPars-method} \alias{as.list,DisplayPars-method} \alias{show,DisplayPars-method} \alias{coerce,DisplayPars,list-method} \alias{coerce,InferredDisplayPars,list-method} \alias{head,InferredDisplayPars-method} \alias{tail,InferredDisplayPars-method} \title{DisplayPars class and method} \description{ All tracks within this package are highly customizable. The \code{DisplayPars} class facilitates this and provides a unified API to the customization parameters. } \section{Objects from the Class}{ Objects can be created using the constructor function \code{DisplayPars}. } \usage{ DisplayPars(...) availableDisplayPars(class) } \arguments{ \item{\dots}{All named arguments are stored in the object's environment as individual parameters, regardless of their type.} \item{class}{A valid track object class name, or the object itself, in which case the class is derived directly from it.} } \details{ The individual parameters in a \code{DisplayParameters} class are stored as pointers in an environment. This has the upshot of not having to copy the whole track object when changing parameters, and parameters can be updated without the need to explicietly reassign the track to a symbol (i.e., updating of parameters happens in place). The downside is that upon copying of track objects, the parameter emvironment needs to be reinstantiated. The default display parameters for a track object class can be queried using the \code{availableDisplayPars} function. } \value{ The return value of the constructor function is a new object of class \code{DisplayPars}. \code{availableDisplayPars} returns a list of the default display parameters. } \section{Slots}{ \describe{ \item{\code{pars}:}{Object of class \code{"environment"}, the container for all customization parameters. } } } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{DisplayPars}. \bold{\emph{Exported in the name space:}} \describe{ \item{displayPars}{\code{signature(x="DisplayPars", name="character")}: return the value of a subset of display parameters, as identified by \code{name}. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, c("foo", "bar"))}} \item{}{\code{displayPars(obj, "foobar")}} } } \item{displayPars}{\code{signature(x="DisplayPars", name="missing")}: return all available display parameters. \emph{Usage:} \code{displayPars(x)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="DisplayPars", name="character")}: alias for the \code{displayPars} method. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="DisplayPars", name="missing")}: alias for the \code{displayPars} method. \emph{Usage:} \code{getPar(x)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="DisplayPars", value="list")}: replace or add display parameters as provided by the named list items. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(foo="a", bar=2)}} } } \item{setPar}{\code{signature(x="DisplayPars", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{DisplayPars} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="DisplayPars", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{DisplayPars} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } } \emph{Internal methods:} \describe{ \item{initialize}{\code{signature(.Object = "DisplayPars")}: initialize the object. } \item{show}{\code{signature(object = "DisplayPars")}: show a human-readable summary of the object. } } } \author{ Florian Hahne } \examples{ ## Construct object dp <- DisplayPars(col="red", lwd=2, transformation=log2) dp ## Query parameters displayPars(dp) displayPars(dp, "col") getPar(dp, c("col", "transformation")) ## Modify parameters displayPars(dp) <- list(lty=1, fontsize=3) setPar(dp, "pch", 20) dp ## Default parameters availableDisplayPars("GenomeAxisTrack") } \keyword{classes} Gviz/man/GdObject-class.Rd0000644000126300012640000004015612227067650016717 0ustar00biocbuildphs_compbio\name{GdObject-class} \Rdversion{1.1} \docType{class} \alias{GdObject-class} \alias{GdObject} \alias{displayPars,GdObject,character-method} \alias{displayPars,GdObject,missing-method} \alias{displayPars<-,GdObject,list-method} \alias{drawAxis,GdObject-method} \alias{drawGrid,GdObject-method} \alias{subset,GdObject-method} \alias{getPar,GdObject,character-method} \alias{getPar,GdObject,missing-method} \alias{group,GdObject-method} \alias{initialize,GdObject-method} \alias{names,GdObject-method} \alias{drawGD} \alias{drawGD,DetailsAnnotationTrack-method} \alias{drawGD,GeneRegionTrack-method} \alias{drawGD,SequenceTrack-method} \alias{names<-,GdObject,character-method} \alias{genome<-,GdObject-method} \alias{chromosome<-,GdObject-method} \alias{isActiveSeq<-,GdObject-method} \alias{setPar,GdObject,character-method} \alias{setPar,GdObject,list-method} \alias{coords,GdObject-method} \alias{coords,NULL-method} \alias{tags,GdObject-method} \alias{chromosome,GdObject-method} \alias{tags,NULL-method} \alias{coords} \alias{tags} \alias{imageMap,GdObject-method} \alias{imageMap} \alias{consolidateTrack} \alias{consolidateTrack,GdObject-method} \title{GdObject class and methods} \description{ The virtual parent class for all track items in the Gviz package. This class definition contains all the common entities that are needed for a track to be plotted. During object instantiation for any of the sub-classes inheriting from \code{GdObject}, this class' global ininitializer has to be called in order to assure that all necessary settings are present. } \section{Objects from the class}{ A virtual class: No objects may be created from it. } \section{Slots}{ \describe{ \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, the display settings controlling the look and feel of a track. See \code{\link{settings}} for details on setting graphical parameters for tracks.} \item{\code{name}:}{Object of class \code{"character"}, a human-readable name for the track that will be used in the track's annotation panel if necessary. } \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, containing optional information for an HTML image map. This will be created by the \code{drawGD} methods when the track is plotted to a device and is usually not set by the user.} } } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{GdObject}. \bold{\emph{Exported in the name space:}} \describe{ \item{displayPars}{\code{signature(x="GdObject", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="GdObject", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="GdObject", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="GdObject", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="GdObject", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="GdObject", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{GdObject} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="GdObject", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{GdObject} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="GdObject")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="GdObject")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="GdObject", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="GdObject")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="GdObject")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } \item{subset}{\code{signature(x="GdObject")}: subset a \code{GdObject} by coordinates. Most of the respective sub-classes inheriting from \code{GdObject} overwrite this method, the default is to return the unaltered input object. \emph{Usage:} \code{subset(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj)}} } } } \bold{\emph{Internal methods:}} \describe{ \item{drawAxis}{\code{signature(GdObject="GdObject")}: add a y-axis to the title panel of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawAxis(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGrid}{\code{signature(GdObject="GdObject")}: superpose a grid on top of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawGrid(GdObject, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } \item{initialize}{\code{signature(.Object="GdObject")}: initialize the object. This involves setting up a new environment for the display parameters and filling it up with the current settings. All arguments that have not been clobbered up by one of the sub-class initializers are considered to be additional display parameters and are also added to the environment. See \code{\link{settings}} for details on setting graphical parameters for tracks.} } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{GdObject} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{rot.title=1}: Numeric scalar. The rotation angle for the text in the title panel. Even though this can be adjusted, the automatic resizing of the title panel will currently not work, so use at own risk.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{ImageMap}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \keyword{classes} Gviz/man/GeneRegionTrack-class.Rd0000644000126300012640000015300112227067650020237 0ustar00biocbuildphs_compbio\name{GeneRegionTrack-class} \Rdversion{1.1} \docType{class} \alias{GeneRegionTrack-class} \alias{GeneRegionTrack} \alias{coerce,GeneRegionTrack,UCSCData-method} \alias{collapseTrack,GeneRegionTrack-method} \alias{exon} \alias{exon,GeneRegionTrack-method} \alias{exon<-} \alias{exon<-,GeneRegionTrack,character-method} \alias{gene,GeneRegionTrack-method} \alias{gene} \alias{gene<-,GeneRegionTrack,character-method} \alias{gene<-} \alias{group,GeneRegionTrack-method} \alias{group<-,GeneRegionTrack,character-method} \alias{identifier,GeneRegionTrack-method} \alias{identifier<-,GeneRegionTrack,character-method} \alias{initialize,GeneRegionTrack-method} \alias{initialize,ReferenceGeneRegionTrack-method} \alias{show,GeneRegionTrack-method} \alias{show,ReferenceGeneRegionTrack-method} \alias{symbol,GeneRegionTrack-method} \alias{symbol<-,GeneRegionTrack,character-method} \alias{symbol} \alias{symbol<-} \alias{transcript,GeneRegionTrack-method} \alias{transcript<-,GeneRegionTrack,character-method} \alias{transcript} \alias{transcript<-} \alias{coerce,GRanges,GeneRegionTrack-method} \alias{coerce,GRangesList,GeneRegionTrack-method} \alias{coerce,TranscriptDb,GeneRegionTrack-method} \alias{subset,ReferenceGeneRegionTrack-method} \title{GeneRegionTrack class and methods} \description{ A class to hold gene model data for a genomic region. } \section{Objects from the class}{ Objects can be created using the constructor function \code{GeneRegionTrack}. } \usage{ GeneRegionTrack(range=NULL, rstarts=NULL, rends=NULL, rwidths=NULL, strand, feature, exon, transcript, gene, symbol, chromosome, genome, stacking="squish", name="GeneRegionTrack", start=NULL, end=NULL, importFunction, stream=FALSE, ...) } \arguments{ Since \code{GeneRegionTrack} objects are essentially just a specific type of \code{\linkS4class{AnnotationTrack}} objects, their constructors are quite similar. However, in the case of the \code{GeneRegionTrack} certain assumptions are made about the type of grouping on different levels (see the \code{Details} section for more information). The natural representation for gene models in the Bioconductor world are \code{\linkS4class{TranscriptDb}} objects, and we tried to make it as straight forward as possible to create \code{GeneRegionTracks} starting from those. Building the object from individual function arguments is of course still possible. \item{range}{ An optional meta argument to handle the different input types. If the \code{range} argument is missing, all the relevant information to create the object has to be provided as individual function arguments (see below). The different input options for \code{range} are: \describe{ \item{}{A \code{TranscriptDb} object: all the necessary gene model information including exon locations, transcript groupings and associated gene ids are contained in \code{TranscriptDb} objects, and the coercion between the two is almost completely automated. If desired, the data to be fetched from the \code{TranscriptDb} object can be restricted using the constructor's \code{chromosome}, \code{start} and \code{end} arguments. See below for details. A direct coercion method \code{as(obj, "GeneRegionTrack")} is also available. A nice added benefit of this input option is that the UTR and coding region information that is part of the original \code{TranscriptDb} object is retained in the \code{GeneRegionTrack}.} \item{}{A \code{GRanges} object: the genomic ranges for the \code{GeneRegion} track as well as the optional additional \code{elementMetadata} columns \code{feature}, \code{transcript}, \code{gene}, \code{exon} and \code{symbol} (see description of the individual function parameters below for details). Calling the constructor on a \code{GRanges} object without further arguments, e.g. \code{GeneRegionTrack(range=obj)} is equivalent to calling the coerce method \code{as(obj, "GeneRegionTrack")}.} \item{}{A \code{GRangesList} object: this is very similar to the previous case, except that the grouping information that is part of the list structure is preserved in the \code{GeneRegionTrack}. I.e., all the elements within one list item receive the same group id. For consistancy, there is also a coercion method from \code{GRangesLists} \code{as(obj, "GeneRegionTrack")}. Please note that unless the necessary information about gene ids, symbols, etc. is present in the individual \code{GRanges} meta data slots, the object will not be particularly useful, because all the identifiers will be set to a common default value.} \item{}{An \code{\linkS4class{IRanges}} object: almost identical to the \code{GRanges} case, except that the chromosome and strand information as well as all additional data has to be provided in the separate \code{chromosome}, \code{strand}, \code{feature}, \code{transcript}, \code{symbol}, \code{exon} or \code{gene} arguments, because it can not be directly encoded in an \code{IRanges} object. Note that only the former two are mandatory (if not provided explicitely the more or less reasonable default values \code{chromosome=NA} and \code{strand=*} are used, but not providing information about the gene-to-transcript relationship or the human-readble symbols renders a lot of the class' functionality useles.} \item{}{A \code{data.frame} object: the \code{data.frame} needs to contain at least the two mandatory columns \code{start} and \code{end} with the range coordinates. It may also contain a \code{chromosome} and a \code{strand} column with the chromosome and strand information for each range. If missing, this information will be drawn from the constructor's \code{chromosome} or \code{strand} arguments. In addition, the \code{feature}, \code{exon}, \code{transcript}, \code{gene} and \code{symbol} data can be provided as columns in the \code{data.frame}. The above comments about potential default values also apply here.} \item{}{A \code{character} scalar: in this case the value of the \code{range} argument is considered to be a file path to an annotation file on disk. A range of file types are supported by the \code{Gviz} package as identified by the file extension. See the \code{importFunction} documentation below for further details.} } } \item{start, end}{An integer scalar with the genomic start or end coordinate for the gene model range. If those are missing, the default value will automatically be the smallest (or largest) value, respectively in \code{rstarts} and \code{rends} for the currently active chromosome. When building a \code{GeneRegionTrack} from a \code{TranscriptDb} object, these arguments can be used to subset the desired annotation data by genomic coordinates. Please note this in that case the \code{chromosome} parameter must also be set.} \item{rstarts}{An integer vector of the start coordinates for the actual gene model items, i.e., for the individual exons. The relationship between exons is handled via the \code{gene} and \code{transcript} factors. Alternatively, this can be a vector of comma-separated lists of integer coordinates, one vector item for each transcript, and each comma-separated element being the start location of a single exon within that transcript. Those lists will be exploded upon object instantiation and all other annotation arguments will be recycled accordingly to regenerate the exon/transcript/gene relationship structure. This implies the approriate number of items in all annotation and coordinates arguments.} \item{rends}{An integer vector of the end coordinates for the actual gene model items. Both \code{rstarts} and \code{rends} have to be of equal length.} \item{rwidths}{An integer vector of widths for the actual gene model items. This can be used instead of either \code{rstarts} or \code{rends} to specify the range coordinates.} \item{feature}{Factor (or other vector that can be coerced into one), giving the feature types for the individual track exons. When plotting the track to the device, if a display parameter with the same name as the value of \code{feature} is set, this will be used as the track item's fill color. Additionally, the feature type defines whether an element in the \code{GeneRegionTrack} is considered to be coding or non-coding. The details section as well as the section about the \code{thinBoxFeature} display parameter further below has more information on this. See also \code{\link{grouping}} for details.} \item{exon}{Character vector of exon identifiers. It's values will be used as the identifier tag when plotting to the device if the display parameter \code{showExonId=TRUE}.} \item{strand}{Character vector, the strand information for the individual track exons. It may be provided in the form \code{+} for the Watson strand, \code{-} for the Crick strand or \code{*} for either one of the two. Please note that all items within a single gene or transcript model need to be on the same strand, and erroneous entries will result in casting of an error.} \item{transcript}{Factor (or other vector that can be coerced into one), giving the transcript memberships for the individual track exons. All items with the same transcript identifier will be visually connected when plotting to the device. See \code{\link{grouping}} for details. Will be used as labels when \code{showId=TRUE}, and \code{geneSymbol=FALSE}.} \item{gene}{Factor (or other vector that can be coerced into one), giving the gene memberships for the individual track exons.} \item{symbol}{ A factor with human-readable gene name aliases which will be used as labels when \code{showId=TRUE}, and \code{geneSymbol=TRUE}.} \item{chromosome}{The chromosome on which the track's genomic ranges are defined. A valid UCSC chromosome identifier if \code{options(ucscChromosomeNames=TRUE)}. Please note that in this case only syntactic checking takes place, i.e., the argument value needs to be an integer, numeric character or a character of the form \code{chrx}, where \code{x} may be any possible string. The user has to make sure that the respective chromosome is indeed defined for the the track's genome. If not provided here, the constructor will try to build the chromosome information based on the available inputs, and as a last resort will fall back to the value \code{chrNA}. Please note that by definition all objects in the \code{Gviz} package can only have a single active chromosome at a time (although internally the information for more than one chromosome may be present), and the user has to call the \code{chromosome<-} replacement method in order to change to a different active chromosome. When creating a \code{GeneRegionTrack} from a \code{TranscriptDb} object, the value of this parameter can be used to subset the data to fetch only transcripts from a single chromosome.} \item{genome}{The genome on which the track's ranges are defined. Usually this is a valid UCSC genome identifier, however this is not being formally checked at this point. If not provided here the constructor will try to extract this information from the provided inputs, and eventually will fall back to the default value of \code{NA}.} \item{stacking}{The stacking type for overlapping items of the track. One in \code{c(hide, dense, squish, pack,full)}. Currently, only hide (don't show the track items, squish (make best use of the available space) and dense (no stacking at all) are implemented.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{importFunction}{A user-defined function to be used to import the data from a file. This only applies when the \code{range} argument is a character string with the path to the input data file. The function needs to accept an argument \code{x} containing the file path and has to return a proper \code{GRanges} object with all the necessary \code{elementMetadata} columns set. A set of default import functions is already implemented in the package for a number of different file types, and one of these defaults will be picked automatically based on the extension of the input file name. If the extension can not be mapped to any of the existing import function, an error is raised asking for a user-defined import function via this argument. Currently the following file types can be imported with the default functions: \code{gff}, \code{gff1}, \code{gff2}, \code{gff3}, \code{gtf}.} \item{stream}{A logical flag indicating that the user-provided import function can deal with indexed files and knows how to process the additional \code{selection} argument when accessing the data on disk. This causes the constructor to return a \code{ReferenceGeneRegionTrack} object which will grab the necessary data on the fly during each plotting operation.} \item{\dots}{Additional items which will all be interpreted as further display parameters. See \code{\link{settings}} and the "Display Parameters" section below for details.} } \details{ A track containing all gene models in a particular region. The data are usually fetched dynamially from an online data store, but it is also possible to manully construct objects from local data. Connections to particular online data sources should be implemented as sub-classes, and \code{GeneRegionTrack} is just the commone denominator that is being used for plotting later on. There are several levels of data associated to a \code{GeneRegionTrack}: \describe{ \item{exon level:}{identifiers are stored in the exon column of the \code{\linkS4class{GRanges}} object in the \code{range} slot. Data may be extracted using the \code{exon} method.} \item{transcript level:}{identifiers are stored in the transcript column of the \code{\linkS4class{GRanges}} object. Data may be extracted using the \code{transcript} method.} \item{gene level:}{identifiers are stored in the gene column of the \code{\linkS4class{GRanges}} object, more human-readable versions in the symbol column. Data may be extracted using the \code{gene} or the \code{symbol} methods.} \item{transcript-type level:}{information is stored in the feature column of the \code{\linkS4class{GRanges}} object. If a display parameter of the same name is specified, the software will use its value for the coloring.} } \code{GeneRegionTrack} objects also know about coding regions and non-coding regions (e.g., UTRs) in a transcript, and will indicate those by using different shapes (wide boxes for all coding regions, thinner boxes for non-coding regions). This is archived by setting the \code{feature} values of the object for non-coding elements to one of the options that are provided in the \code{thinBoxFeature} display parameters. All other elements are considered to be coding elements. } \value{ The return value of the constructor function is a new object of class \code{GeneRegionTrack}. } \section{Slots}{ \describe{ \item{\code{start}:}{Object of class \code{"numeric"}, the start coordinates of the annotation range. The coorrdinates for the individual gene model items are stored in the \code{range} slot.} \item{\code{end}:}{Object of class \code{"numeric"}, the end coordinates of the annotation range. The corrdinates for the individual gene model items are stored in the \code{range} slot. } \item{\code{stacking}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{stacks}:}{Object of class \code{"numeric"}, inherited from class \code{\linkS4class{StackedTrack}}} \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{AnnotationTrack}"}, directly. Class \code{"\linkS4class{StackedTrack}"}, by class "AnnotationTrack", distance2. Class \code{"\linkS4class{RangeTrack}"}, by class "AnnotationTrack", distance3. Class \code{"\linkS4class{GdObject}"}, by class "AnnotationTrack", distance4. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{GeneRegionTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{group}{\code{signature(gdObject="GeneRegionTrack")}: extract the group membership for all track items. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{group<-}{\code{signature(gdObject="GeneRegionTrack", value="character")}: replace the grouping information for track items. The replacement value must be a factor of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{group<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{group(obj) <- c("a", "a", "b", "c", "a")}} } } \item{identifier}{\code{signature(gdObject="GeneRegionTrack")}: return track item identifiers. Depending on the setting of the optional argument \code{lowest}, these are either the group identifiers or the individual item identifiers. \emph{Usage:} \code{identifier(GdObject, lowest=FALSE)} \emph{Additional Arguments:} \describe{ \item{}{\code{lowest}: return the lowest-level identifier, i.e., the item IDs, or the higher level group IDs which do not have to be unqiue.} } \emph{Examples:} \describe{ \item{}{\code{identifier(obj, lowest=FALSE)}} } } \item{identifier<-}{\code{signature(gdObject="GeneRegionTrack", value="character")}: Set the track item identifiers. The replacement value has to be a character vector of appropriate length. This always replaces the group-level identifiers, so essentially it is similar to \code{groups<-}. \emph{Usage:} \code{identifier<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{identifier(obj) <- c("foo", "bar")}} } } \item{exon}{\code{signature(GdObject="GeneRegionTrack")}: Extract the exon identifiers for all exons in the gene models. \emph{Usage:} \code{exon(GdObject)} \emph{Examples:} \describe{ \item{}{\code{exon(obj)}} } } \item{exon<-}{\code{signature(GdObject="GeneRegionTrack", value="character")}: replace the exon identifiers for all exons in the gene model. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{exon<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{exon(obj) <- paste("Exon", 1:5)}} } } \item{gene}{\code{signature(GdObject="GeneRegionTrack")}: Extract the gene identifiers for all gene models. \emph{Usage:} \code{gene(GdObject)} \emph{Examples:} \describe{ \item{}{\code{gene(obj)}} } } \item{gene<-}{\code{signature(GdObject="GeneRegionTrack", value="character")}: replace the gene identifiers for all gene models. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{gene<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{gene(obj) <- paste("Gene", LETTERS[1:5])}} } } \item{symbol}{\code{signature(GdObject="GeneRegionTrack")}: Extract the human-readble gene symbol for all gene models. \emph{Usage:} \code{symbol(GdObject)} \emph{Examples:} \describe{ \item{}{\code{symbol(obj)}} } } \item{symbol<-}{\code{signature(GdObject="GeneRegionTrack", value="character")}: replace the human-readable gene symbol for all gene models. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{gene<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{symbol(obj) <- letters[1:5]}} } } \item{transcript}{\code{signature(GdObject="GeneRegionTrack")}: Extract the transcript identifiers for all transcripts in the gene models. \emph{Usage:} \code{transcript(GdObject)} \emph{Examples:} \describe{ \item{}{\code{transcript(obj)}} } } \item{transcript<-}{\code{signature(GdObject="GeneRegionTrack", value="character")}: replace the transcript identifiers for all transcripts in the gene model. The replacement value must be a character of appropriate length or another vector that can be coerced into such. \emph{Usage:} \code{transcript<-(GdObject, value)} \emph{Examples:} \describe{ \item{}{\code{transcript(obj) <- paste("Exon", 1:5)}} } } } \emph{Internal methods:} \describe{ \item{coerce}{\code{signature(from="GeneRegionTrack", to="UCSCData")}: coerce to a \code{UCSCData} object for export to the UCSC genome browser. \emph{Examples:} \describe{ \item{}{\code{as(obj, "UCSCData")}} } } \item{collapseTrack}{\code{signature(GdObject="GeneRegionTrack")}: preprocess the track before plotting. This will collapse overlapping track items based on the available resolution and increase the width and height of all track objects to a minimum value to avoid rendering issues. See \code{\link{collapsing}} for details. \emph{Usage:} \code{collapseTrack(GdObject, diff=.pxResolution(coord="x"))} \emph{Additional Arguments:} \describe{ \item{}{\code{diff}: the minimum pixel width to display, everything below that will be inflated to a width of \code{diff}.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::collapseTrack(obj)}} } } \item{initialize}{\code{signature(.Object="GeneRegionTrack")}: initialize the object } \item{show}{\code{signature(object="GeneRegionTrack")}: show a human-readable summary of the object } } \bold{\emph{Inherited methods:}} \describe{ \item{drawGD}{\code{signature(GdObject="GeneRegionTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the object is preprocessed based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Since subsetting of the object can be potentially costly, this can be switched off in case subsetting has already been performed before or is not necessary. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{drawGrid}{\code{signature(GdObject="GeneRegionTrack")}: superpose a grid on top of a track. \emph{Usage:} \code{drawGrid(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, draw grid within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj, from=10, to=100)}} } } \item{setStacks}{\code{signature(GdObject="GeneRegionTrack")}: recompute the stacks based on the available space and on the object's track items and stacking settings. \emph{Usage:} \code{setStacks(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, compute stacking within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::setStacks(obj, from=1, to=100)}} } } \item{stacking}{\code{signature(GdObject="GeneRegionTrack")}: return the current stacking type. \emph{Usage:} \code{stacking(GdObject)} \emph{Examples:} \describe{ \item{}{\code{stacking(obj)}} } } \item{stacking<-}{\code{signature(GdObject="GeneRegionTrack", value="character")}: set the object's stacking type to one in \code{c(hide, dense, squish, pack,full)}. \emph{Usage:} \code{stacking<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{stacking(obj) <- "squish" }} } } \item{stacks}{\code{signature(GdObject="GeneRegionTrack")}: return the stack indices for each track item. \emph{Usage:} \code{stacks(GdObject)} \emph{Examples:} \describe{ \item{}{\code{Gviz:::stacks(obj)}} } } \item{[}{\code{signature(x="GeneRegionTrack", i="ANY", j="ANY", drop="ANY")}: subset the items in the \code{GeneRegionTrack} object. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{chromosome}{\code{signature(GdObject="GeneRegionTrack")}: return the currently active chromosome for which the track is defined. For consistancy with other Bioconductor packages, the \code{isActiveSeq} alias is also provided. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="GeneRegionTrack")}: replace the value of the track's active chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one, unless \code{options(ucscChromosomeNames=FALSE)}. For consistancy with other Bioconductor packages, the \code{isActiveSeq<-} alias is also provided. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="GeneRegionTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="GeneRegionTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="GeneRegionTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="GeneRegionTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="GeneRegionTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{GeneRegionTrack}. See \code{\link{grouping}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="GeneRegionTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="GeneRegionTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="GeneRegionTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="GeneRegionTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="GeneRegionTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="GeneRegionTrack")}: split a \code{GeneRegionTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of objects of the same class as the input object, all inheriting from class \code{GeneRegionTrack}. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="GeneRegionTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="GeneRegionTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="GeneRegionTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="GeneRegionTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="GeneRegionTrack")}: subset a \code{GeneRegionTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{displayPars}{\code{signature(x="GeneRegionTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="GeneRegionTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="GeneRegionTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="GeneRegionTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="GeneRegionTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="GeneRegionTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{GeneRegionTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="GeneRegionTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{GeneRegionTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{names}{\code{signature(x="GeneRegionTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="GeneRegionTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="GeneRegionTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="GeneRegionTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{GeneRegionTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{min.distance=0}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \\code{collapse==TRUE}. See \\code{\\link{collapsing}} for details. Note that a value larger than 0 may lead to UTR regions being merged to CDS regions, which in most cases is not particularly useful.} \item{}{\code{col=NULL}: Character or integer scalar. The border color for all items. Defaults to using the same color as in \code{fill}, also taking into account different track \code{features}.} \item{}{\code{fill="orange"}: Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{geneSymbols=TRUE}: Logical scalar. Use human-readable gene symbols or gene IDs for the transcript annotation.} \item{}{\code{shape=c("smallArrow", "box")}: Character scalar. The shape in which to display the track items. Currently only \code{box}, \code{arrow}, \code{ellipse}, and \code{smallArrow} are implemented.} \item{}{\code{showExonId=FALSE}: Logical scalar. Control whether to plot the individual exon identifiers.} \item{}{\code{collapseTranscripts=FALSE}: Logical scalar. Merge all transcripts of the same gene into one single gene model. Essentially, this will only keep the start location of the first exon and the end location of the last exon from all transcripts of a gene.} \item{}{\code{thinBoxFeature=c("utr", "ncRNA", "utr3", "utr5", "miRNA", "lincRNA")}: Character vector. A listing of feature types that should be drawn with thin boxes. Typically those are non-coding elements.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{GeneRegionTrack} objects. \describe{ \item{}{\code{\linkS4class{AnnotationTrack}}: \describe{ \item{}{\code{cex=1}: Numeric scalar. The font expansion factor for item identifiers.} \item{}{\code{cex.group=0.6}: Numeric scalar. The font expansion factor for the group-level annotation.} \item{}{\code{col="transparent"}: Character or integer scalar. The border color for all track items.} \item{}{\code{col.line="darkgray"}: Character scalar. The color used for connecting lines between grouped items. Defaults to a dark gray, but if set to \code{NULL} the same color as for the first item in the group is used.} \item{}{\code{fontcolor="white"}: Character or integer scalar. The font color for item identifiers.} \item{}{\code{fontcolor.group="#808080"}: Character or integer scalar. The font color for the group-level annotation.} \item{}{\code{fontface=1}: Integer scalar. The font face for item identifiers.} \item{}{\code{fontface.group=2}: Numeric scalar. The font face for the group-level annotation.} \item{}{\code{fontfamily="sans"}: Character scalar. The font family for item identifiers.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for item identifiers.} \item{}{\code{lex=1}: Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for item identifiers.} \item{}{\code{lty="solid"}: Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lwd=1}: Integer scalar. The line width for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{rotation=0}: Numeric scalar. The degree of text rotation for item identifiers.} \item{}{\code{showFeatureId=FALSE}: Logical scalar. Control whether to plot the individual track item identifiers.} \item{}{\code{showId=FALSE}: Logical scalar. Control whether to annotate individual groups.} \item{}{\code{showOverplotting=FALSE}: Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \code{collapse==TRUE}} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{mergeGroups=FALSE}: Logical scalar. Merge fully overlapping groups if \code{collapse==TRUE}.} } } \item{}{\code{\linkS4class{StackedTrack}}: \describe{ \item{}{\code{reverseStacking=FALSE}: Logical flag. Reverse the y-ordering of stacked items. I.e., features that are plotted on the bottom-most stacks will be moved to the top-most stack and vice versa.} \item{}{\code{stackHeight=0.75}: Numeric between 0 and 1. Controls the vertical size and spacing between stacked elements. The number defines the proportion of the total available space for the stack that is used to draw the glyphs. E.g., a value of 0.5 means that half of the available vertical drawing space (for each stacking line) is used for the glyphs, and thus one quarter of the available space each is used for spacing above and below the glyph. Defaults to 0.75.} } } \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne, Steve Lianoglou} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \examples{ ## The empty object GeneRegionTrack() ## Load some sample data data(cyp2b10) ## Construct the object grTrack <- GeneRegionTrack(start=26682683, end=26711643, rstart=cyp2b10$start, rends=cyp2b10$end, chromosome=7, genome="mm9", transcript=cyp2b10$transcript, gene=cyp2b10$gene, symbol=cyp2b10$symbol, name="Cyp2b10", strand=cyp2b10$strand) ## From a TranscriptDb object if(require(GenomicFeatures)){ samplefile <- system.file("extdata", "UCSC_knownGene_sample.sqlite", package="GenomicFeatures") txdb <- loadDb(samplefile) GeneRegionTrack(txdb) GeneRegionTrack(txdb, chromosome="chr6", start=300000, end=350000) } \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(grTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(grTrack) ## Track names names(grTrack) names(grTrack) <- "foo" plotTracks(grTrack) ## Subsetting and splitting subTrack <- subset(grTrack, from=26700000, to=26705000) length(subTrack) subTrack <- grTrack[transcript(grTrack)=="ENSMUST00000144140"] split(grTrack, transcript(grTrack)) ## Accessors start(grTrack) end(grTrack) width(grTrack) position(grTrack) width(subTrack) <- width(subTrack)+100 strand(grTrack) strand(subTrack) <- "-" chromosome(grTrack) chromosome(subTrack) <- "chrX" genome(grTrack) genome(subTrack) <- "hg19" range(grTrack) ranges(grTrack) ## Annotation identifier(grTrack) identifier(grTrack, lowest=TRUE) identifier(subTrack) <- "bar" feature(grTrack) feature(subTrack) <- "foo" exon(grTrack) exon(subTrack) <- letters[1:2] gene(grTrack) gene(subTrack) <- "bar" symbol(grTrack) symbol(subTrack) <- "foo" transcript(grTrack) transcript(subTrack) <- c("foo", "bar") chromosome(subTrack) <- "chr7" plotTracks(subTrack) values(grTrack) ## Grouping group(grTrack) group(subTrack) <- "Group 1" transcript(subTrack) plotTracks(subTrack) ## Collapsing transcripts plotTracks(grTrack, collapseTranscripts=TRUE, showId=TRUE, extend.left=10000, shape="arrow") ## Stacking stacking(grTrack) stacking(grTrack) <- "dense" plotTracks(grTrack) ## coercion as(grTrack, "data.frame") as(grTrack, "UCSCData") ## HTML image map coords(grTrack) tags(grTrack) grTrack <- plotTracks(grTrack)$foo coords(grTrack) tags(grTrack) } \keyword{classes} Gviz/man/GenomeAxisTrack-class.Rd0000644000126300012640000006050112227067650020256 0ustar00biocbuildphs_compbio\name{GenomeAxisTrack-class} \Rdversion{1.1} \docType{class} \alias{GenomeAxisTrack-class} \alias{GenomeAxisTrack} \alias{[,GenomeAxisTrack-method} \alias{[,GenomeAxisTrack,ANY,ANY-method} \alias{collapseTrack,GenomeAxisTrack-method} \alias{drawGD,GenomeAxisTrack-method} \alias{end,GenomeAxisTrack-method} \alias{end<-,GenomeAxisTrack-method} \alias{initialize,GenomeAxisTrack-method} \alias{length,GenomeAxisTrack-method} \alias{range,GenomeAxisTrack-method} \alias{ranges,GenomeAxisTrack-method} \alias{ranges<-,GenomeAxisTrack-method} \alias{show,GenomeAxisTrack-method} \alias{start,GenomeAxisTrack-method} \alias{start<-,GenomeAxisTrack-method} \alias{strand,GenomeAxisTrack-method} \alias{subset,GenomeAxisTrack-method} \alias{values,GenomeAxisTrack-method} \alias{width,GenomeAxisTrack-method} \title{GenomeAxisTrack class and methods} \description{A class representing a customizable genomic axis.} \section{Objects from the class}{ Objects can be created using the constructor function \code{GenomeAxisTrack}. } \usage{ GenomeAxisTrack(range=NULL, name="Axis", id, ...) } \arguments{ \item{range}{Optional \code{\linkS4class{GRanges}} or \code{\linkS4class{IRanges}} object to highlight certain regions on the axis.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{id}{A character vector of the same length as \code{range} containing identifiers for the ranges. If missing, the constructor will try to extract the ids from \code{names(range)}.} \item{\dots}{Additional items which will all be interpreted as further display parameters. See \code{\link{settings}} and the "Display Parameters" section below for details.} } \details{ A \code{GenomeAxisTrack} can be customized using the familiar display parameters. By providing a \code{GRanges} or \code{IRanges} object to the constructor, ranges on the axis can be further highlighted.\\ With the \code{scale} display parameter, a small scale indicator can be shown instead of the entire genomic axis. The scale can either be provided as a fraction of the plotting region (it will be rounded to the nearest human readable absolute value) or as an absolute value and is always displayed in bp, kb, mb or gb units. Note that most display parameters for the \code{GenomeAxisTrack} are ignored when a scale is used insterad of the full axis. In particular, only the parameters \code{exponent}, \code{alpha}, \code{lwd}, \code{col}, \code{cex}, \code{distFromAxis} and \code{labelPos} are used. } \value{ The return value of the constructor function is a new object of class \code{GenomeAxisTrack}. } \section{Slots}{ \describe{ \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, highlighted on the axis. } \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{GdObject}"}, directly. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{GenomeAxisTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{[}{\code{signature(x="GenomeAxisTrack")}: subset the \code{GRanges} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}: subsetting incides.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{start, end, width}{\code{signature(x="GenomeAxisTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{range}{\code{signature(x="GenomeAxisTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="GenomeAxisTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{strand}{\code{signature(x="GenomeAxisTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{values}{\code{signature(x="GenomeAxisTrack")}: return all additional annotation information except for the genomic coordinates for the track items. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{subset}{\code{signature(x="GenomeAxisTrack")}: subset a \code{GenomeAxisTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{length}{\code{signature(x="GenomeAxisTrack")}: return the number of items stored in the \code{ranges} slot. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } } \emph{Internal methods:} \describe{ \item{drawGD}{\code{signature(GdObject="GenomeAxisTrack")}: the workhorse function to plot the object. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{collapseTrack}{\code{signature(GdObject="GenomeAxisTrack")}: preprocess the track before plotting. This will collapse overlapping track items based on the available resolution and increase the width and height of all track objects to a minimum value to avoid rendering issues. See \code{\link{collapsing}} for details. \emph{Usage:} \code{collapseTrack(GdObject, diff=.pxResolution(coord="x"))} \emph{Additional Arguments:} \describe{ \item{}{\code{diff}: the minimum pixel width to display, everything below that will be inflated to a width of \code{diff}.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::collapseTrack(obj)}} } } \item{initialize}{\code{signature(.Object="GenomeAxisTrack")}: initialize the object } \item{show}{\code{signature(object="GenomeAxisTrack")}: show a human-readable summary of the object } } \bold{\emph{Inherited:}} \describe{ \item{displayPars}{\code{signature(x="GenomeAxisTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="GenomeAxisTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="GenomeAxisTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="GenomeAxisTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="GenomeAxisTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="GenomeAxisTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{GenomeAxisTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="GenomeAxisTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{GenomeAxisTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="GenomeAxisTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="GenomeAxisTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="GenomeAxisTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="GenomeAxisTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="GenomeAxisTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } \item{drawAxis}{\code{signature(GdObject="GenomeAxisTrack")}: add a y-axis to the title panel of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawAxis(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGrid}{\code{signature(GdObject="GenomeAxisTrack")}: superpose a grid on top of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawGrid(GdObject, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{GenomeAxisTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{add35=FALSE}: Logical scalar. Add 3' to 5' direction indicators.} \item{}{\code{add53=FALSE}: Logical scalar. Add 5' to 3' direction indicators.} \item{}{\code{background.title="transparent"}: Character scalar. The background color for the title panel. Defaults to omit the background.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex=0.8}: Numeric scalar. The overall font expansion factor for the axis annotation text.} \item{}{\code{cex.id=0.7}: Numeric scalar. The text size for the optional range annotation.} \item{}{\code{col="darkgray"}: Character scalar. The color for the axis lines and tickmarks.} \item{}{\code{col.id="white"}: Character scalar. The text color for the optional range annotation.} \item{}{\code{col.range="cornsilk4"}: Character scalar. The border color for highlighted regions on the axis.} \item{}{\code{distFromAxis=1}: Numeric scalar. Control the distance of the axis annotation from the tick marks.} \item{}{\code{exponent=NULL}: Numeric scalar. The exponent for the axis coordinates, e.g., 3 means mb, 6 means gb, etc. The default is to automatically determine the optimal exponent.} \item{}{\code{fill.range="cornsilk3"}: Character scalar. The fill color for highlighted regions on the axis.} \item{}{\code{fontcolor="#808080"}: Character scalar. The font color for the axis annotation text.} \item{}{\code{fontsize=10}: Numeric scalar. Font size for the axis annotation text in points.} \item{}{\code{labelPos="alternating"}: Character vector, one in "alternating", "revAlternating", "above" or "below". The vertical positioning of the axis labels. If \code{scale} is not \code{NULL}, the possible values are "above", "below" and "beside". } \item{}{\code{littleTicks=FALSE}: Logical scalar. Add more fine-grained tick marks.} \item{}{\code{lwd=2}: Numeric scalar. The line width for the axis elementes.} \item{}{\code{showId=FALSE}: Logical scalar. Show the optional range highlighting annotation.} \item{}{\code{showTitle=FALSE}: Logical scalar. Plot a title panel. Defaults to omit the title panel.} \item{}{\code{size=NULL}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function. Defaults to the ideal size based on the other track settings.} \item{}{\code{scale=NULL}: Numeric scalar. If not \code{NULL} a small scale is drawn instead of the full axis, if the value is between 0 and 1 it is interpreted as a fraction of the current plotting region, otherwise as an absolute length value in genomic coordinates.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{GenomeAxisTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \examples{ ## Construct object axTrack <- GenomeAxisTrack(name="Axis", range=IRanges::IRanges(start=c(100, 300, 800), end=c(150, 400, 1000))) \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(axTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(axTrack, from=0, to=1100) ## Track names names(axTrack) names(axTrack) <- "foo" ## Subsetting and splitting subTrack <- subset(axTrack, from=0, to=500) length(subTrack) subTrack[1] split(axTrack, c(1,1,2)) ## Accessors start(axTrack) end(axTrack) width(axTrack) strand(axTrack) range(axTrack) ranges(axTrack) ## Annotation values(axTrack) ## Grouping group(axTrack) ## HTML image map coords(axTrack) tags(axTrack) axTrack <- plotTracks(axTrack)$foo coords(axTrack) tags(axTrack) ## adding an axis to another track data(cyp2b10) grTrack <- GeneRegionTrack(start=26682683, end=26711643, rstart=cyp2b10$start, rends=cyp2b10$end, chromosome=7, genome="mm9", transcript=cyp2b10$transcript, gene=cyp2b10$gene, symbol=cyp2b10$symbol, name="Cyp2b10", strand=cyp2b10$strand) plotTracks(list(grTrack, GenomeAxisTrack())) plotTracks(list(grTrack, GenomeAxisTrack(scale=0.1))) plotTracks(list(grTrack, GenomeAxisTrack(scale=5000))) plotTracks(list(grTrack, GenomeAxisTrack(scale=0.5, labelPos="below"))) } \keyword{classes} Gviz/man/IdeogramTrack-class.Rd0000644000126300012640000007134212227067650017753 0ustar00biocbuildphs_compbio\name{IdeogramTrack-class} \Rdversion{1.1} \docType{class} \alias{IdeogramTrack-class} \alias{IdeogramTrack} \alias{drawGD,IdeogramTrack-method} \alias{end,IdeogramTrack-method} \alias{end<-,IdeogramTrack-method} \alias{initialize,IdeogramTrack-method} \alias{show,IdeogramTrack-method} \alias{start,IdeogramTrack-method} \alias{start<-,IdeogramTrack-method} \alias{subset,IdeogramTrack-method} \alias{width,IdeogramTrack-method} \alias{width<-,IdeogramTrack-method} \alias{length,IdeogramTrack-method} \alias{[,IdeogramTrack-method} \alias{[,IdeogramTrack,ANY,ANY-method} \alias{chromosome<-,IdeogramTrack-method} \alias{genome<-,IdeogramTrack-method} \alias{position,IdeogramTrack-method} \title{IdeogramTrack class and methods} \description{ A class to represent the schematic display of a chromosome, also known as an ideogram. The respective information is typically directly fetched from UCSC. } \section{Objects from the Class}{ Objects can be created using the constructor function \code{IdeogramTrack}. } \usage{ IdeogramTrack(chromosome=NULL, genome, name=NULL, bands=NULL, ...) } \arguments{ \item{chromosome}{The chromosome for which to create the ideogram. Has to be a valid UCSC chromosome identifier of the form \code{chrx}, or a single integer or numeric character unless \code{option(ucscChromosomeNames=FALSE)}. The user has to make sure that the respective chromosome is indeed defined for the the track's genome.} \item{genome}{The genome on which to create the ideogram. This has to be a valid UCSC genome identifier if the ideogram data is to be fetched from the UCSC repository.} \item{name}{Character scalar of the track's name used in the title panel when plotting. Defaults to the selected chromosome.} \item{bands}{A \code{data.frame} with the cytoband information for all available chromosomes on the genome similar to the data that would be fetched from UCSC. The table needs to contain the mandatory columns \code{chrom}, \code{chromStart}, \code{chromEnd}, \code{name} and \code{gieStain} with the chromosome name, cytoband start and end coordinates, cytoband name and coloring information, respectively. This can be used when no connection to the internet is available or when the cytoband information has been cached locally to avoid the somewhat slow connection to UCSC.} \item{\dots}{Additional items which will all be interpreted as further display parameters.} } \value{ The return value of the constructor function is a new object of class \code{IdeogramTrack}. } \section{Slots}{ \describe{ \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{StackedTrack}} containing the chromosome band information. This slot is filled automatically by the initializer method.} \item{\code{bandTable}:}{Object of class\code{\linkS4class{data.frame}} containing the chromosome band information in the format of UCSC. This slot is filled automatically by the initializer.} \item{\code{bandTable}:}{Object of class \code{\linkS4class{data.frame}} containing the chromosome band information for all chromosomes. This slot is filled automatically by the initializer method and only exists to prevent having to redo the rtracklayer query ervery time the chromosome is changed.} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{StackedTrack}} defining the ideogram's chromosome.} \item{\code{genome}:}{Object of class \code{"character"} inherited from class \code{\linkS4class{StackedTrack}} defining the ideogram's genome.} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{RangeTrack}"}, directly. Class \code{"\linkS4class{GdObject}"}, by class "RangeTrack", distance 2. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{IdeogramTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{start, end, width, position}{\code{signature(x/GdObject="IdeogramTrack")}: although \code{IdeogramTracks} inherit from \code{RangeTrack}, the notion of coordinates is not particularly useful. Hence the coordinate methods all return \code{NULL}. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="RangeTrack")}: although \code{IdeogramTracks} inherit from \code{RangeTrack}, the notion of coordinates is not particularly useful. Hence the coordinate replacement methods all return the unaltered input object. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{chromosome<-}{\code{signature(GdObject="IdeogramTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. The chromosome band information is updated automatically. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{genome<-}{\code{signature(x="IdeogramTrack")}: set the track's genome. This has to be a valid UCSC identifier. The chromosome band information is updated automatically. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{subset}{\code{signature(x="IdeogramTrack")}: subsetting does not make much sense for these object, hence the unalered object is returned. \emph{Usage:} \code{subset(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj)}} } } \item{[}{\code{signature(x="IdeogramTrack", i="ANY", j="ANY", drop="ANY")}: subsetting of \code{IdeogramTrack} objects does not make much sense, hence the unaltered input argument is returned. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } } \bold{\emph{Internal methods:}} \describe{ \item{drawGD}{\code{signature(gdObject="IdeogramTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the object is preprocessed based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Since subsetting of the object can be potentially costly, this can be switched off in case subsetting has already been performed before or is not necessary. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj)}} \item{}{\code{Gviz:::drawGD(obj, minBase=1, maxBase=100)}} \item{}{\code{Gviz:::drawGD(obj, prepare=TRUE, subset=FALSE)}} } } \item{initialize}{\code{signature(.Object="IdeogramTrack")}: initialize the object. } \item{show}{\code{signature(object="IdeogramTrack")}: show a human-readable summary of the object. } } \bold{\emph{Inherited methods:}} \describe{ \item{chromosome}{\code{signature(GdObject="IdeogramTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{feature}{\code{signature(GdObject="IdeogramTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="IdeogramTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{IdeogramTrack}. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="IdeogramTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{length}{\code{signature(x="IdeogramTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="IdeogramTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="IdeogramTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="IdeogramTrack")}: splitting is not a useful operation for \code{IdeogramTrack} objects. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="IdeogramTrack")}: strand information is not relevant for \code{IdeogramTrack} objects. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="IdeogramTrack")}: strand information is not relevant for \code{IdeogramTrack} objects. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="IdeogramTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="IdeogramTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{displayPars}{\code{signature(x="IdeogramTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="IdeogramTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="IdeogramTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="IdeogramTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="IdeogramTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="IdeogramTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{IdeogramTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="IdeogramTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{IdeogramTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="IdeogramTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="IdeogramTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="IdeogramTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="IdeogramTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="IdeogramTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } \item{drawAxis}{\code{signature(GdObject="IdeogramTrack")}: add a y-axis to the title panel of a track if necessary. For \code{IdeogramTrack} objects this does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawAxis(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGrid}{\code{signature(GdObject="IdeogramTrack")}: superpose a grid on top of a track if necessary. For \code{IdeogramTrack} objects this does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawGrid(GdObject, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } } } \details{ Ideograms are schematic depictions of chromosomes, including chromosome band information and centromer location. The relevant data for various species is stored in the UCSC data base. The initializer method of the class will automatically fetch the respective data for a given genome and chromosome from UCSC and fill the appropriate object slots. When plotting \code{IdeogramTracks}, the current genomic location is indicated on the chromosome by a colored box. } \section{Display Parameters}{ The following display parameters are set for objects of class \code{IdeogramTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{background.title="transparent"}: Character scalar. The background color for the title panel. Defaults to omit the background.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{bevel=0.45}: Numeric scalar, between 0 and 1. The level of smoothness for the two ends of the ideogram.} \item{}{\code{cex=0.8}: Numeric scalar. The overall font expansion factor for the chromosome name text.} \item{}{\code{col="red"}: Character scalar. The border color used for the highlighting of the currently displayed genomic region.} \item{}{\code{fill="#FFE3E6"}: Character scalar. The fill color used for the highlighting of the currently displayed genomic region.} \item{}{\code{fontcolor="#808080"}: Character scalar. The font color for the chromosome name text.} \item{}{\code{fontsize=10}: Numeric scalar. The font size for the chromosome name text.} \item{}{\code{showId=TRUE}: Logical scalar. Indicate the chromosome name next to the ideogram.} \item{}{\code{showBandId=TRUE}: Logical scalar. Show the identifier for the chromosome bands if there is space for it.} \item{}{\code{cex.bands=0.7}: Numeric scalar. The font expansion factor for the chromosome band identifier text.} \item{}{\code{showTitle=FALSE}: Logical scalar. Plot a title panel. Defaults to omit the title panel.} \item{}{\code{size=NULL}: Numeric scalar. The relative size of the track. Defaults to automatic size setting. Can be overridden in the \code{\link{plotTracks}} function.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{IdeogramTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{clearSessionCache}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \note{ When fetching ideogram data from UCSC the results are cached for faster acces. See \code{\link{clearSessionCache}} on details to delete these cached items. } \examples{ \dontshow{ ## Load some sample data data(idTrack) } ## Construct the object \dontrun{ idTrack <- IdeogramTrack(chromosome=7, genome="mm9") } \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(idTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting plotTracks(idTrack, from=5000000, to=9000000) ## Track names names(idTrack) names(idTrack) <- "foo" plotTracks(idTrack, from=5000000, to=9000000) ## Accessors chromosome(idTrack) \dontrun{ chromosome(idTrack) <- "chrX" } genome(idTrack) \dontrun{ genome(id) <- "hg19" } range(idTrack) ranges(idTrack) ## Annotation values(idTrack) ## coercion as(idTrack, "data.frame") } \keyword{classes} Gviz/man/ImageMap-class.Rd0000644000126300012640000000250012227067650016705 0ustar00biocbuildphs_compbio\name{ImageMap-class} \Rdversion{1.1} \docType{class} \alias{ImageMap-class} \alias{coords,ImageMap-method} \alias{tags,ImageMap-method} \title{ImageMap class and methods} \description{ HTML image map information for annotation tracks. } \section{Objects from the Class}{ Objects of the class are usually not created by the user, hence the constructor function \code{ImageMap} is not exported in the name space. } \section{Slots}{ \describe{ \item{\code{coords}:}{Object of class \code{"matrix"}, the image map coordinats. } \item{\code{tags}:}{Object of class \code{"list"}, the individual HTML tags for the image map. } } } \section{Extends}{ Class \code{"ImageMapOrNULL"}, directly. } \section{Methods}{ \describe{ \item{coords}{\code{signature(ImageMap="ImageMap")}: return the coordinates from the image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="ImageMap")}: return the tags from the image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \author{ Florian Hahne } \keyword{classes} Gviz/man/NumericTrack-class.Rd0000644000126300012640000005575112227067650017634 0ustar00biocbuildphs_compbio\name{NumericTrack-class} \Rdversion{1.1} \docType{class} \alias{NumericTrack-class} \alias{NumericTrack} \alias{drawAxis,NumericTrack-method} \alias{drawGrid,NumericTrack-method} \title{NumericTrack class and methods} \description{ The virtual parent class for all track items in the Gviz package designed to contain numeric data. This class merely exists for dispatching purpose. } \section{Objects from the class}{ A virtual class: No objects may be created from it. } \section{Slots}{ \describe{ \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}}} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{RangeTrack}"}, directly. Class \code{"\linkS4class{GdObject}"}, by class "RangeTrack", distance 2. } \section{Methods}{ \bold{\emph{Internal methods:}} \describe{ \item{drawAxis}{\code{signature(GdObject="NumericTrack")}: add a y-axis to the title panel of a track. \emph{Usage:} \code{drawAxis(x, from, to, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, restrict to coordinate range before computing the axis ranges.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGrid}{\code{signature(GdObject="NumericTrack")}: superpose a grid on top of a track. \emph{Usage:} \code{drawGrid(GdObject, from, to, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: integer scalars, restrict to coordinate range before computing the grid lines.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } \item{initialize}{\code{signature(.Object="NumericTrack")}: initialize the object.} } \bold{\emph{Inherited methods:}} \describe{ \item{[}{\code{signature(x="NumericTrack", i="ANY", j="ANY", drop="ANY")}: subset the items in the \code{NumericTrack} object. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{chromosome}{\code{signature(GdObject="NumericTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="NumericTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="NumericTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="NumericTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="NumericTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="NumericTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="NumericTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{NumericTrack}. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="NumericTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="NumericTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="NumericTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="NumericTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="NumericTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="NumericTrack")}: split a \code{NumericTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of objects of the same class as the input object, all inheriting from class \code{NumericTrack}. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="NumericTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="NumericTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="NumericTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="NumericTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="NumericTrack")}: subset a \code{NumericTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{displayPars}{\code{signature(x="NumericTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="NumericTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="NumericTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="NumericTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="NumericTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="NumericTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{NumericTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="NumericTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{NumericTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="NumericTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="NumericTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="NumericTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="NumericTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="NumericTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \author{Florian Hahne} \section{Display Parameters}{ No formal display parameters are defined for objects of class \code{NumericTrack}. Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{NumericTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \keyword{classes} Gviz/man/RangeTrack-class.Rd0000644000126300012640000006260612227067650017263 0ustar00biocbuildphs_compbio\name{RangeTrack-class} \Rdversion{1.1} \docType{class} \alias{RangeTrack-class} \alias{RangeTrack} \alias{[,RangeTrack-method} \alias{[} \alias{[,RangeTrack,ANY,ANY-method} \alias{chromosome,RangeTrack-method} \alias{chromosome} \alias{chromosome<-,RangeTrack-method} \alias{chromosome<-} \alias{isActiveSeq,RangeTrack-method} \alias{coerce,RangeTrack,data.frame-method} \alias{end,RangeTrack-method} \alias{end<-,RangeTrack-method} \alias{subset,RangeTrack-method} \alias{feature} \alias{feature,RangeTrack-method} \alias{feature<-} \alias{feature<-,RangeTrack,character-method} \alias{genome,RangeTrack-method} \alias{genome<-,RangeTrack-method} \alias{initialize,RangeTrack-method} \alias{length,RangeTrack-method} \alias{position} \alias{range} \alias{position,RangeTrack-method} \alias{range,RangeTrack-method} \alias{ranges,RangeTrack-method} \alias{ranges<-,RangeTrack-method} \alias{seqnames,RangeTrack-method} \alias{seqlevels,RangeTrack-method} \alias{seqinfo,RangeTrack-method} \alias{split,RangeTrack,ANY-method} \alias{split,RangeTrack-method} \alias{start,RangeTrack-method} \alias{start<-,RangeTrack-method} \alias{strand,RangeTrack-method} \alias{strand<-,RangeTrack-method} \alias{values,RangeTrack-method} \alias{width,RangeTrack-method} \alias{width<-,RangeTrack-method} \alias{min,RangeTrack-method} \alias{max,RangeTrack-method} \alias{consolidateTrack,RangeTrack-method} \title{RangeTrack class and methods} \description{ The virtual parent class for all track items in the Gviz package that contain some form of genomic ranges. } \section{Objects from the class}{ A virtual class: No objects may be created from it. } \section{Slots}{ \describe{ \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, the genomic ranges of the track items as well as additional annotation information in its \code{elementMetaData} slot. Please not that the slot is actually implemented as a class union between \code{GRanges} and \code{\linkS4class{IRanges}} to increase efficiency, for instance for \code{\linkS4class{DataTrack}} objects. This usualy does not concern the user.} \item{\code{chromosome}:}{Object of class \code{"character"}, the chromosome on which the track is defined. There can only be a single chromosome for one track. For certain subclasses, the space of allowed chromosome names is limited (e.g., only those chromosomes that exist for a particular genome). Throughout the package, chromosome name have to be entered either as a single integer scalar or as a character scalar of the form \code{chrXYZ}, where \emph{XYZ} may be an arbitrary character string.} \item{\code{genome}:}{Object of class \code{"character"}, the genome for which the track is defined. For most sub-classes this has to be valid UCSC genome identifier, however this may not always be formally checked upon object instantiation.} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}.} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}} } \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{GdObject}"}, directly. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{RangeTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{[}{\code{signature(x="RangeTrack", i="ANY", j="ANY", drop="ANY")}: subset the items in the \code{RangeTrack} object. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{chromosome}{\code{signature(GdObject="RangeTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="RangeTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="RangeTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="RangeTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="RangeTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="RangeTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="RangeTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{RangeTrack}. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="RangeTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="RangeTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="RangeTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="RangeTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="RangeTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="RangeTrack")}: split a \code{RangeTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of objects of the same class as the input object, all inheriting from class \code{RangeTrack}. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="RangeTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="RangeTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="RangeTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{min}{\code{signature(...="RangeTrack")}: return the start position for the leftmost range item. \emph{Examples:} \describe{ \item{}{\code{min(obj)}} } } \item{max}{\code{signature(...="RangeTrack")}: return the end position for the rightmost range item. \emph{Examples:} \describe{ \item{}{\code{max(obj)}} } } \item{coerce}{\code{signature(from="RangeTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="RangeTrack")}: subset a \code{RangeTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } } \bold{\emph{Internal methods:}} \describe{ \item{initialize}{\code{signature(.Object="RangeTrack")}: initialize the object. } } \bold{\emph{Inherited methods:}} \describe{ \item{displayPars}{\code{signature(x="RangeTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="RangeTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="RangeTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="RangeTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="RangeTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="RangeTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{RangeTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="RangeTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{RangeTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="RangeTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="RangeTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="RangeTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="RangeTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="RangeTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } \item{drawAxis}{\code{signature(GdObject="RangeTrack")}: add a y-axis to the title panel of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawAxis(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGrid}{\code{signature(GdObject="RangeTrack")}: superpose a grid on top of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawGrid(GdObject, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } } } \section{Display Parameters}{ No formal display parameters are defined for objects of class \code{RangeTrack}. Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{RangeTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DataTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\link{collapsing}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \keyword{classes} Gviz/man/ReferenceTrack-class.Rd0000644000126300012640000000523512227067650020120 0ustar00biocbuildphs_compbio\name{ReferenceTrack-class} \Rdversion{1.1} \docType{class} \alias{ReferenceTrack-class} \alias{ReferenceTrack} \alias{availableDefaultMapping} \alias{initialize,ReferenceTrack-method} \title{ReferenceTrack class and methods} \description{ A class allow for on-demand streaming of data off the file system. } \usage{ availableDefaultMapping(file, trackType) } \arguments{ \item{file}{A character scalar with a file name or just a file extension.} \item{trackType}{A character scalar with one of the available track types in the package.} } \section{Objects from the class}{ A virtual class: No objects may be created from it. } \section{Slots}{ \describe{ \item{\code{stream}:}{Object of class \code{function}. The import function to stream data of the file system. Needs to be able to handle the two mandatory arguments \code{file} (a \code{character} containing a valid file path) and \code{selection} (a \code{GRanges} object with the genomic region to plot).} \item{\code{reference}:}{Object of class \code{"character"}, the path to the file containing the data.} \item{\code{mapping}:}{Object of class \code{"list"}, a default mapping between \code{elementMetadata} columns of the returned \code{GRanges} object from the import function and the \code{elemenMetadata} columns that make up the final track object.} \item{\code{args}:}{Object of class \code{"list"}, the passed in constructor arguments during object instantiation. Those will be needed when fetching the data in order to fill all necessary slots.} \item{\code{defaults}:}{Object of class \code{"list"}, the relevant default values to be used when neither \code{mapping} nor \code{args} provides the necessary information.} } } \section{Methods}{ \bold{\emph{Internal methods:}} \describe{ \item{initialize}{\code{signature(.Object="ReferenceTrack")}: initialize the object.} } } \details{ The \code{availableDefaultMappings} function can be used to find out whether the package defines a mapping scheme between one of the many supported input file types and the \code{elementMetadata} columns of the tracks's \code{GRanges} objects. } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\link{DataTrack}} } \keyword{classes} Gviz/man/SequenceTrack-class.Rd0000644000126300012640000006316712227067650020002 0ustar00biocbuildphs_compbio\name{SequenceTrack-class} \Rdversion{1.1} \docType{class} \alias{SequenceTrack-class} \alias{SequenceTrack} \alias{chromosome,SequenceTrack-method} \alias{chromosome<-,SequenceTrack-method} \alias{end,SequenceTrack-method} \alias{genome,SequenceTrack-method} \alias{initialize,SequenceTrack-method} \alias{initialize,ReferenceSequenceTrack-method} \alias{subseq,ReferenceSequenceTrack-method} \alias{initialize,SequenceBSgenomeTrack-method} \alias{initialize,SequenceDNAStringSetTrack-method} \alias{seqlevels,SequenceBSgenomeTrack-method} \alias{seqnames,SequenceBSgenomeTrack-method} \alias{seqlevels,SequenceDNAStringSetTrack-method} \alias{seqnames,SequenceDNAStringSetTrack-method} \alias{length,SequenceTrack-method} \alias{start,SequenceTrack-method} \alias{subseq,SequenceTrack-method} \alias{coerce,DNAString,Rle-method} \alias{width,SequenceTrack-method} \alias{consolidateTrack,SequenceTrack-method} \title{SequenceTrack class and methods} \description{ A track class to represent genomic sequences. The two child classes \code{SequenceDNAStringSetTrack} and \code{SequenceBSgenomeTrack} do most of the work, however in practise they are of no particular relevance to the user. } \section{Objects from the class}{ Objects can be created using the constructor function \code{SequenceTrack}. } \usage{ SequenceTrack(sequence, chromosome, genome, name="SequenceTrack", importFunction, stream=FALSE, ...) } \arguments{ \item{sequence}{ A meta argument to handle the different input types, making the construction of a \code{SequenceTrack} as flexible as possible. The different input options for \code{sequence} are: \describe{ \item{}{An object of class \code{\linkS4class{DNAStringSet}}. The individual \code{\linkS4class{DNAString}}s are considered to be the different chromosome sequences.} \item{}{An object of class \code{\linkS4class{BSgenome}}. The \code{Gviz} package tries to follow the \code{BSgenome} philosophy in that the respective chromosome sequences are only realized once they are first accessed.} \item{}{A \code{character} scalar: in this case the value of the \code{sequence} argument is considered to be a file path to an annotation file on disk. A range of file types are supported by the \code{Gviz} package as identified by the file extension. See the \code{importFunction} documentation below for further details.} } } \item{chromosome}{The currently active chromosome of the track. A valid UCSC chromosome identifier if \code{options(ucscChromosomeNames=TRUE)}. Please note that in this case only syntactic checking takes place, i.e., the argument value needs to be an integer, numeric character or a character of the form \code{chrx}, where \code{x} may be any possible string. The user has to make sure that sequences for the respective chromosomes are indeed part of the object. If not provided here, the constructor will set it to the first available sequence. Please note that by definition all objects in the \code{Gviz} package can only have a single active chromosome at a time (although internally the information for more than one chromosome may be present), and the user has to call the \code{chromosome<-} replacement method in order to change to a different active chromosome.} \item{genome}{The genome on which the track's ranges are defined. Usually this is a valid UCSC genome identifier, however this is not being formally checked at this point. For a \code{SequenceBSgenomeTrack} object, the genome information is extracted from the input \code{BSgenome} package. For a \code{DNAStringSet} it has too be provided or the constructor will fall back to the default value of \code{NA}.} \item{name}{Character scalar of the track's name used in the title panel when plotting.} \item{importFunction}{A user-defined function to be used to import the sequence data from a file. This only applies when the \code{sequence} argument is a character string with the path to the input data file. The function needs to accept an argument \code{file} containing the file path and has to return a proper \code{DNAStringSet} object with the sequence information per chromosome. A set of default import functions is already implemented in the package for a number of different file types, and one of these defaults will be picked automatically based on the extension of the input file name. If the extension can not be mapped to any of the existing import function, an error is raised asking for a user-defined import function. Currently the following file types can be imported with the default functions: \code{fa/fasta} and \code{2bit}. Both file types support indexing by genomic coordinates, and it makes sense to only load the part of the file that is needed for plotting. To this end, the \code{Gviz} package defines the derived \code{ReferenceSequenceTrack} class, which supports streaming data from the file system. The user typically does not have to deal with this distinction but may rely on the constructor function to make the right choice as long as the default import functions are used. However, once a user-defined import function has been provided and if this function adds support for indexed files, you will have to make the constructor aware of this fact by setting the \code{stream} argument to \code{TRUE}. Please note that in this case the import function needs to accept a second mandatory argument \code{selection} which is a \code{GRanges} object containing the dimensions of the plotted genomic range. As before, the function has to return an appropriate \code{DNAStringSet} object.} \item{stream}{A logical flag indicating that the user-provided import function can deal with indexed files and knows how to process the additional \code{selection} argument when accessing the data on disk. This causes the constructor to return a \code{ReferenceSequenceTrack} object which will grab the necessary data on the fly during each plotting operation.} \item{\dots}{Additional items which will all be interpreted as further display parameters. See \code{\link{settings}} and the "Display Parameters" section below for details.} } \value{ The return value of the constructor function is a new object of class \code{SequenceDNAStringSetTrack}, \code{SequenceBSgenomeTrack} ore \code{ReferenceSequenceTrack}, depending on the constructor arguments. Typically the user will not have to be troubled with this distinction and can rely on the constructor to make the right choice. } \section{details}{ Depending on the available space the class will use different options to plot a sequence. If single letters can be accomodated without overplotting those will be show. Otherwise, colored boxes will be used to indicate letters, and if there is not enough horizontal room to show those, a simple line will indicate presence of a sequence. The \code{min.width} and \code{fontsize} display parameters directly control this behaviour. Each of the five possible nucleotides (G, A, T, C, and N) will be endoded in a separate color. As default we use the colors suggested in the \code{biovizBase} package, but a user is free to set their own color scheme by providing a named character vector with color as display parameter \code{fontcolor}, with names equal to the five possible bases. } \section{Slots}{ \describe{ \item{\code{chromosome}:}{Object of class \code{"character"}, the chromosome on which the track is defined. There can only be a single chromosome for one track. Throughout the package, chromosome name have to be entered either as a single integer scalar or as a character scalar of the form \code{chrXYZ}, where \emph{XYZ} may be an arbitrary character string.} \item{\code{genome}:}{Object of class \code{"character"}, the genome for which the track is defined. This should be a valid UCSC genome identifier, however this may not always be formally checked upon object instantiation.} \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}}.} \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}} } \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{GdObject}"}, directly. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object inheriting from class \code{SequenceTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{chromosome}{\code{signature(GdObject="SequenceTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="SequenceTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{genome}{\code{signature(x="SequenceTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="SequenceTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="SequenceTrack")}: return the number of nucleotides in the track's sequence. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{seqnames}{\code{signature(x="SequenceTrack")}: return the names (i.e., the chromosome) of the sequences contained in the object. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{seqnames(obj)}} } } \item{subseq}{\code{signature(x="SequenceTrack")}: Extract a sub-sequence from the track. \emph{Usage:} \code{subseq(x, start=NA, end=NA, width=NA)} \emph{Additional Arguments:} \describe{ \item{}{\code{start}: the start coordinate for the sub-sequence.} \item{}{\code{end}: the end coordinate for the sub-sequence.} \item{}{\code{width}: the width of the sub-sequence.} } \emph{Examples:} \describe{ \item{}{\code{subseq(obj, 1, 10)}} } } } \bold{\emph{Internal methods:}} \describe{ \item{initialize}{\code{signature(.Object="SequenceTrack")}: initialize the object. } } \bold{\emph{Inherited methods:}} \describe{ \item{displayPars}{\code{signature(x="SequenceTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="SequenceTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="SequenceTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="SequenceTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="SequenceTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="SequenceTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{SequenceTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="SequenceTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{SequenceTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{names}{\code{signature(x="SequenceTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="SequenceTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="SequenceTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="SequenceTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } \item{drawAxis}{\code{signature(GdObject="SequenceTrack")}: add a y-axis to the title panel of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawAxis(x, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawAxis(obj)}} } } \item{drawGrid}{\code{signature(GdObject="SequenceTrack")}: superpose a grid on top of a track if necessary. Unless overwritten in one of the sub-classes this usualy does not plot anything and returns \code{NULL}. \emph{Usage:} \code{drawGrid(GdObject, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGrid(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{SequenceTrack} upon instantiation \describe{ \item{}{\code{size=null}: Numeric scalar. The size of the track item. Defaults to auto-detect the size based on the other parameter settings.} \item{}{\code{fontcolor=getBioColor("DNA_BASES_N")}: Character vector. The colors used for the 5 possible nucleotides (G, A, T, C, N). Defaults to use colors as defined in the \code{biovizBase} package.} \item{}{\code{fontsize=10}: Numeric scalar. Controls the size of the sequence and thus also the level of plotable details. } \item{}{\code{fontface=2}: Numeric scalar. The face of the font. } \item{}{\code{lwd=2}: Numeric scalar. The width of the line when no indiviual letters can be plotted due to size limitations.} \item{}{\code{col="darkgray"}: Character scalar. The color of the line when no indiviual letters can be plotted due to size limitations.} \item{}{\code{min.width=2}: Numeric scalar. The minimum width of the colored boxes that are drawn when no indiviual letters can be plotted due to size limitations.} \item{}{\code{showTitle=FALSE}: Logical scalar. Do not show a title panel by default.} \item{}{\code{background.title="transparent"}: Character scalar. Make the title panel transparent by default.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{noLetters=FALSE}: Logical scalar. Always plot colored boxes (or a line) regardles of the available space.} \item{}{\code{add53=FALSE}: Logical scalar. Add a direction indicator.} \item{}{\code{add53=FALSE}: Logical scalar. Plot the sequence complement.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{SequenceTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DataTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{BSgenome}} \code{\linkS4class{DNAStringSet}} \code{\link{plotTracks}} \code{\link{settings}} } \examples{ ## An empty object SequenceTrack() ## Construct from DNAStringSet library(Biostrings) letters <- c("A", "C", "T", "G", "N") set.seed(999) seqs <- DNAStringSet(c(chr1=paste(sample(letters, 100000, TRUE), collapse=""), chr2=paste(sample(letters, 200000, TRUE), collapse=""))) sTrack <- SequenceTrack(seqs, genome="hg19") sTrack ## Construct from BSGenome object if(require(BSgenome.Hsapiens.UCSC.hg19)){ sTrack <- SequenceTrack(Hsapiens) sTrack } ## Set active chromosome chromosome(sTrack) chromosome(sTrack) <- "chr2" head(seqnames(sTrack)) \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(sTrack) <- list(fontfamily=font, fontfamily.title=font) } } ## Plotting ## Sequences plotTracks(sTrack, from=199970, to=200000) ## Boxes plotTracks(sTrack, from=199800, to=200000) ## Line plotTracks(sTrack, from=1, to=200000) ## Force boxes plotTracks(sTrack, from=199970, to=200000, noLetters=TRUE) ## Direction indicator plotTracks(sTrack, from=199970, to=200000, add53=TRUE) ## Sequence complement plotTracks(sTrack, from=199970, to=200000, add53=TRUE, complement=TRUE) ## Colors plotTracks(sTrack, from=199970, to=200000, add53=TRUE, fontcolor=c(A=1, C=1, G=1, T=1, N=1)) ## Track names names(sTrack) names(sTrack) <- "foo" ## Accessors genome(sTrack) genome(sTrack) <- "mm9" length(sTrack) ## Sequence extraction subseq(sTrack, start=100000, width=20) ## beyond the stored sequence range subseq(sTrack, start=length(sTrack), width=20) } \keyword{classes} Gviz/man/StackedTrack-class.Rd0000644000126300012640000006610512227067650017603 0ustar00biocbuildphs_compbio\name{StackedTrack-class} \Rdversion{1.1} \docType{class} \alias{StackedTrack-class} \alias{StackedTrack} \alias{drawGD,StackedTrack-method} \alias{initialize,StackedTrack-method} \alias{setStacks,StackedTrack-method} \alias{stacking,StackedTrack-method} \alias{stacking<-,StackedTrack,character-method} \alias{stacks,StackedTrack-method} \alias{stacking} \alias{stacking<-} \alias{stacks} \alias{subset,StackedTrack-method} \alias{[,StackedTrack,ANY,ANY-method} \alias{consolidateTrack,StackedTrack-method} \title{StackedTrack class and methods} \description{ The virtual parent class for all track types in the Gviz package which contain potentially overlapping annotation items that have to be stacked when plotted. } \section{Objects from the Class}{ A virtual Class: No objects may be created from it. } \section{Slots}{ \describe{ \item{\code{stacking}:}{Object of class \code{"character"}, the stacking type of overlapping items on the final plot. One in \code{c(hide, dense, squish, pack,full)}. Currently, only \code{hide} (do not show the track items at all), \code{squish} (make best use of the available space) and \code{dense} (no stacking at all) are implemented. } \item{\code{stacks}:}{Object of class \code{"numeric"}, holding the stack indices for each track item. This slot is usually populated by calling the \code{setStacks} method upon plotting, since the correct stacking is a function of the available plotting space.} \item{\code{range}:}{Object of class \code{\linkS4class{GRanges}}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{chromosome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{genome}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{RangeTrack}} } \item{\code{dp}:}{Object of class \code{\linkS4class{DisplayPars}}, inherited from class \code{\linkS4class{GdObject}} } \item{\code{name}:}{Object of class \code{"character"}, inherited from class \code{\linkS4class{GdObject}}} \item{\code{imageMap}:}{Object of class \code{\linkS4class{ImageMap}}, inherited from class \code{\linkS4class{GdObject}}} } } \section{Extends}{ Class \code{"\linkS4class{RangeTrack}"}, directly. Class \code{"\linkS4class{GdObject}"}, by class "RangeTrack", distance 2. } \section{Methods}{ In the following code chunks, \code{obj} is considered to be an object of class \code{StackedTrack}. \bold{\emph{Exported in the name space:}} \describe{ \item{stacking}{\code{signature(GdObject="StackedTrack")}: return the current stacking type. \emph{Usage:} \code{stacking(GdObject)} \emph{Examples:} \describe{ \item{}{\code{stacking(obj)}} } } \item{stacking<-}{\code{signature(GdObject="StackedTrack", value="character")}: set the object's stacking type to one in \code{c(hide, dense, squish, pack,full)}. \emph{Usage:} \code{stacking<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{stacking(obj) <- "squish" }} } } } \bold{\emph{Internal methods:}} \describe{ \item{drawGD}{\code{signature(GdObject="StackedTrack")}: plot the object to a graphics device. The return value of this method is the input object, potentially updated during the plotting operation. Internally, there are two modes in which the method can be called. Either in 'prepare' mode, in which case no plotting is done but the stacking information is updated based on the available space, or in 'plotting' mode, in which case the actual graphical output is created. Note that the method for this particular subclass is usually called through inheritance and not particularly useful on its own. \emph{Usage:} \code{drawGD(GdObject, minBase, maxBase, prepare=FALSE, subset=TRUE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{minBase}, \code{maxBase}: the coordinate range to plot.} \item{}{\code{prepare}: run method in preparation or in production mode.} \item{}{\code{subset}: subset the object to the visible region or skip the potentially expensive subsetting operation.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::drawGD(obj, prepare=FALSE)}} } } \item{setStacks}{\code{signature(GdObject="StackedTrack")}: recompute the stacks based on the available space and on the object's track items and stacking settings. \emph{Usage:} \code{setStacks(GdObject, from, to)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: compute stacking within a certain coordinates range. This needs to be supplied for the plotting function to know the current genomic coordinates.} } \emph{Examples:} \describe{ \item{}{\code{Gviz:::setStacks(obj)}} } } \item{stacks}{\code{signature(GdObject="StackedTrack")}: return the stack indices for each track item. \emph{Usage:} \code{stacks(GdObject)} \emph{Examples:} \describe{ \item{}{\code{Gviz:::stacks(obj)}} } } \item{initialize}{\code{signature(.Object="StackedTrack")}: initialize the object. } } \bold{\emph{Inherited methods:}} \describe{ \item{[}{\code{signature(x="StackedTrack", i="ANY", j="ANY", drop="ANY")}: subset the items in the \code{StackedTrack} object. This is essentially similar to subsetting of the \code{\linkS4class{GRanges}} object in the \code{range} slot. For most applications, the \code{subset} method may be more appropriate. \emph{Additional Arguments:} \describe{ \item{}{\code{i}, \code{j}: subsetting indices, \code{j} is ignored.} \item{}{\code{drop}: argument is ignored.} } \emph{Examples:} \describe{ \item{}{\code{obj[1:5]}} } } \item{chromosome}{\code{signature(GdObject="StackedTrack")}: return the chromosome for which the track is defined. \emph{Usage:} \code{chromosome(GdObject)} \emph{Examples:} \describe{ \item{}{\code{chromosome(obj)}} } } \item{chromosome<-}{\code{signature(GdObject="StackedTrack")}: replace the value of the track's chromosome. This has to be a valid UCSC chromosome identifier or an integer or character scalar that can be reasonably coerced into one. \emph{Usage:} \code{chromosome<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{chromosome(obj) <- "chr12"}} } } \item{start, end, width}{\code{signature(x="StackedTrack")}: the start or end coordinates of the track items, or their width in genomic coordinates. \emph{Usage:} \code{start(x)} \code{end(x)} \code{width(x)} \emph{Examples:} \describe{ \item{}{\code{start(obj)}} \item{}{\code{end(obj)}} \item{}{\code{width(obj)}} } } \item{start<-, end<-, width<-}{\code{signature(x="StackedTrack")}: replace the start or end coordinates of the track items, or their width. \emph{Usage:} \code{start<-(x, value)} \code{end<-(x, value)} \code{width<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{start(obj) <- 1:10}} \item{}{\code{end(obj) <- 20:30}} \item{}{\code{width(obj) <- 1}} } } \item{position}{\code{signature(GdObject="StackedTrack")}: the arithmetic mean of the track item's coordionates, i.e., \code{(end(obj)-start(obj))/2}. \emph{Usage:} \code{position(GdObject)} \emph{Examples:} \describe{ \item{}{\code{position(obj)}} } } \item{feature}{\code{signature(GdObject="StackedTrack")}: return the grouping information for track items. For certain sub-classes, groups may be indicated by different color schemes when plotting. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature(GdObject)} \emph{Examples:} \describe{ \item{}{\code{feature(obj)}} } } \item{feature<-}{\code{signature(gdObject="StackedTrack", value="character")}: set the grouping information for track items. This has to be a factor vector (or another type of vector that can be coerced into one) of the same length as the number of items in the \code{StackedTrack}. See \code{\link{grouping}} or \code{\linkS4class{AnnotationTrack}} and \code{\linkS4class{GeneRegionTrack}} for details. \emph{Usage:} \code{feature<-(GdObject, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{feature(obj) <- c("a", "a", "b", "c", "a")}} } } \item{genome}{\code{signature(x="StackedTrack")}: return the track's genome. \emph{Usage:} \code{genome(x)} \emph{Examples:} \describe{ \item{}{\code{genome(obj)}} } } \item{genome<-}{\code{signature(x="StackedTrack")}: set the track's genome. Usually this has to be a valid UCSC identifier, however this is not formally enforced here. \emph{Usage:} \code{genome<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{genome(obj) <- "mm9"}} } } \item{length}{\code{signature(x="StackedTrack")}: return the number of items in the track. \emph{Usage:} \code{length(x)} \emph{Examples:} \describe{ \item{}{\code{length(obj)}} } } \item{range}{\code{signature(x="StackedTrack")}: return the genomic coordinates for the track as an object of class \code{\linkS4class{IRanges}}. \emph{Usage:} \code{range(x)} \emph{Examples:} \describe{ \item{}{\code{range(obj)}} } } \item{ranges}{\code{signature(x="StackedTrack")}: return the genomic coordinates for the track along with all additional annotation information as an object of class \code{\linkS4class{GRanges}}. \emph{Usage:} \code{ranges(x)} \emph{Examples:} \describe{ \item{}{\code{ranges(obj)}} } } \item{split}{\code{signature(x="StackedTrack")}: split a \code{StackedTrack} object by an appropriate factor vector (or another vector that can be coerced into one). The output of this operation is a list of objects of the same class as the input object, all inheriting from class \code{StackedTrack}. \emph{Usage:} \code{split(x, f, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{f}: the splitting factor.} \item{}{\code{\dots}: all further arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{split(obj, c("a", "a", "b", "c", "a"))}} } } \item{strand}{\code{signature(x="StackedTrack")}: return a vector of strand specifiers for all track items, in the form '+' for the Watson strand, '-' for the Crick strand or '*' for either of the two. \emph{Usage:} \code{strand(x)} \emph{Examples:} \describe{ \item{}{\code{strand(obj)}} } } \item{strand<-}{\code{signature(x="StackedTrack")}: replace the strand information for the track items. The replacement value needs to be an appropriate scalar or vector of strand values. \emph{Usage:} \code{strand<-(x, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{value}: replacement value.} } \emph{Examples:} \describe{ \item{}{\code{strand(obj) <- "+"}} } } \item{values}{\code{signature(x="StackedTrack")}: return all additional annotation information except for the genomic coordinates for the track items as a data.frame. \emph{Usage:} \code{values(x)} \emph{Examples:} \describe{ \item{}{\code{values(obj)}} } } \item{coerce}{\code{signature(from="StackedTrack", to="data.frame")}: coerce the \code{\linkS4class{GRanges}} object in the \code{range} slot into a regular data.frame. \emph{Examples:} \describe{ \item{}{\code{as(obj, "data.frame")}} } } \item{subset}{\code{signature(x="StackedTrack")}: subset a \code{StackedTrack} by coordinates and sort if necessary. \emph{Usage:} \code{subset(x, from, to, sort=FALSE, ...)} \emph{Additional Arguments:} \describe{ \item{}{\code{from}, \code{to}: the coordinates range to subset to.} \item{}{\code{sort}: sort the object after subsetting. Usually not necessary.} \item{}{\code{\dots}: additional arguments are ignored.} } \emph{Examples:} \describe{ \item{}{\code{subset(obj, from=10, to=20, sort=TRUE)}} } } \item{displayPars}{\code{signature(x="StackedTrack", name="character")}: list the value of the display parameter \code{name}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars(x, name)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj, "col")}} } } \item{displayPars}{\code{signature(x="StackedTrack", name="missing")}: list the value of all available display parameters. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{displayPars(obj)}} } } \item{getPar}{\code{signature(x="StackedTrack", name="character")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{getPar(x, name)} \emph{Examples:} \describe{ \item{}{\code{getPar(obj, "col")}} } } \item{getPar}{\code{signature(x="StackedTrack", name="missing")}: alias for the \code{displayPars} method. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{getPar(obj)}} } } \item{displayPars<-}{\code{signature(x="StackedTrack", value="list")}: set display parameters using the values of the named list in \code{value}. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{displayPars<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{displayPars(obj) <- list(col="red", lwd=2)}} } } \item{setPar}{\code{signature(x="StackedTrack", value="character")}: set the single display parameter \code{name} to \code{value}. Note that display parameters in the \code{StackedTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Usage:} \code{setPar(x, name, value)} \emph{Additional Arguments:} \describe{ \item{}{\code{name}: the name of the display parameter to set.} } \emph{Examples:} \describe{ \item{}{\code{setPar(obj, "col", "red")}} } } \item{setPar}{\code{signature(x="StackedTrack", value="list")}: set display parameters by the values of the named list in \code{value}. Note that display parameters in the \code{StackedTrack} class are pass-by-reference, so no re-assignmnet to the symbol \code{obj} is necessary. See \code{\link{settings}} for details on display parameters and customization. \emph{Examples:} \describe{ \item{}{\code{setPar(obj, list(col="red", lwd=2))}} } } \item{group}{\code{signature(GdObject="StackedTrack")}: return grouping information for the individual items in the track. Unless overwritten in one of the sub-classes, this usualy returns \code{NULL}. \emph{Usage:} \code{group(GdObject)} \emph{Examples:} \describe{ \item{}{\code{group(obj)}} } } \item{names}{\code{signature(x="StackedTrack")}: return the value of the \code{name} slot. \emph{Usage:} \code{names(x)} \emph{Examples:} \describe{ \item{}{\code{names(obj)}} } } \item{names<-}{\code{signature(x="StackedTrack", value="character")}: set the value of the \code{name} slot. \emph{Usage:} \code{names<-(x, value)} \emph{Examples:} \describe{ \item{}{\code{names(obj) <- "foo"}} } } \item{coords}{\code{signature(ImageMap="StackedTrack")}: return the coordinates from the internal image map. \emph{Usage:} \code{coords(ImageMap)} \emph{Examples:} \describe{ \item{}{\code{coords(obj)}} } } \item{tags}{\code{signature(x="StackedTrack")}: return the tags from the internal image map. \emph{Usage:} \code{tags(x)} \emph{Examples:} \describe{ \item{}{\code{tags(obj)}} } } } } \section{Display Parameters}{ The following display parameters are set for objects of class \code{AnnotationTrack} upon instantiation, unless one or more of them have already been set by one of the optional sub-class initializers, which always get precedence over these global defaults. See \code{\link{settings}} for details on setting graphical parameters for tracks. \describe{ \item{}{\code{reverseStacking=FALSE}: Logical flag. Reverse the y-ordering of stacked items. I.e., features that are plotted on the bottom-most stacks will be moved to the top-most stack and vice versa.} \item{}{\code{stackHeight=0.75}: Numeric between 0 and 1. Controls the vertical size and spacing between stacked elements. The number defines the proportion of the total available space for the stack that is used to draw the glyphs. E.g., a value of 0.5 means that half of the available vertical drawing space (for each stacking line) is used for the glyphs, and thus one quarter of the available space each is used for spacing above and below the glyph. Defaults to 0.75.} } Additional display parameters are being inherited from the respective parent classes. Note that not all of them may have an effect on the plotting of \code{StackedTrack} objects. \describe{ \item{}{\code{\linkS4class{GdObject}}: \describe{ \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{col.border.title="transparent"}: Integer or character scalar. The border color for the title panels.} \item{}{\code{lwd.border.title=1}: Integer scalar. The border width for the title panels.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} } } } } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GRanges}} \code{\linkS4class{ImageMap}} \code{\linkS4class{IRanges}} \code{\linkS4class{RangeTrack}} \code{\link{collapsing}} \code{\link{DataTrack}} \code{\link{grouping}} \code{\link{panel.grid}} \code{\link{plotTracks}} \code{\link{settings}} } \keyword{classes} Gviz/man/UcscTrack.Rd0000644000126300012640000001014012227067650016003 0ustar00biocbuildphs_compbio\name{UcscTrack} \alias{UcscTrack} \alias{clearSessionCache} \title{ Meta-constructor for GenomeGraph tracks fetched directly from the various UCSC data sources. } \description{ The UCSC data base provides a wealth of annotation information. This function can be used to access UCSC, to retrieve the data available there and to return it as an annotation track object ameanable to plotting with \code{\link{plotTracks}}. \code{clearSessionCache} is can be called to remove all cached items from the session which are generated when connecting with the UCSC data base. } \usage{ UcscTrack(track, table=NULL, trackType=c("AnnotationTrack", "GeneRegionTrack", "DataTrack", "GenomeAxisTrack"), genome, chromosome, name=NULL, from, to, ...) clearSessionCache() } \arguments{ \item{track}{Character, the name of the track to fetch from UCSC. To find out about available tracks please consult the online table browser at \url{http://genome.ucsc.edu/cgi-bin/hgTables?command=start}.} \item{table}{Character, the name of the table to fetch from UCSC, or \code{NULL}, in which case the default selection of tables is used. To find out about available tables for a given track please consult the online table browser at \url{http://genome.ucsc.edu/cgi-bin/hgTables?command=start}.} \item{trackType}{Character, one in \code{c("AnnotationTrack", "GeneRegionTrack", "DataTrack", "GenomeAxisTrack")}. The function will try to coerce the downloaded data in an object of this class. See below for details.} \item{genome}{Character, a valid USCS genome identifier for which to fetch the data.} \item{chromosome}{Character, a valid USCS character identifier for which to fetch the data.} \item{name}{Character, the name to use for the resulting track object.} \item{from, to}{A range of genomic locations for which to fetch data.} \item{\dots}{All additional named arguments are expected to be either display parameters for the resulting objects, or character scalars of column names in the downloaded UCSC data tables that are matched by name to available arguments in the respective constructor functions as defined by the \code{trackType} argument. See Details section for more information.} } \details{ The data stored at the UCSC data bases can be of different formats: gene or transcript model data, simple annotation features like CpG Island locations or SNPs, or numeric data like conservation or mapability. This function presents a unified API to download all kinds of data and to map them back to one of the annotation track objects defined in this package. The type of object to hold the data has to be given in the \code{trackType} argument, and subsequently the function passes all data on to the respective object constructor. All additional named arguments are considered to be relevant for the constructor of choice, and single character scalars are replaced by the respective data columns in the dowloaded UCSC tables if available. For instance, assuming the table for track 'foo' contains the columns 'id', 'type', 'fromLoc' and 'toLoc', giving the featuer identifier, type, start end end location. In order to create an \code{\linkS4class{AnnotationTrack}} object from that data, we have to pass the additional named arguments \code{id="id"}, \code{feature="type"}, \code{start="fromLoc"} and code{end="toLoc"} to the \code{UcscTrack} function. The complete function call could look like this: \code{UcscTrack(track="foo", genome="mm9", chromosome=3, from=1000, to=10000, trackType="AnnotationTrack", id="id", feature="type", start="from", end="to")} To reduce the bandwidth, some caching of the UCSC connection takes place. In order to remove these cached session items, call \code{clearSessionCache}. } \value{ An annotation track object as determined by \code{trackType}. } \author{ Florian Hahne } \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DataTrack}} \code{\linkS4class{GeneRegionTrack}} \code{\linkS4class{GenomeAxisTrack}} \code{\link{plotTracks}} } Gviz/man/collapsing.Rd0000644000126300012640000000304112227067650016256 0ustar00biocbuildphs_compbio\name{collapsing} \Rdversion{1.1} \alias{collapsing} \title{Dynamic content based on the available resolution} \description{ When plotting features linearily along genomic coordinates one frequently runs into the problem of too little resolution to adequatelty display all details. Most genome browsers try to reasonably reduce the amount of detail that is shown based on the current zoomn level. } \details{ Most track classes in this package define an internal \code{collapseTrack} method which tries to adjust the plotted content to the available resolution, aims at reducing overplotting and prevents rendering issues, e.g. when lines are too thin to be plotted. This feature can be toggled on or off using the \code{collapse} display parameter (see \code{\link{settings}} for details on setting these parameters). In the simplest case (for \code{\linkS4class{AnnotationTrack}} objects) this involves expanding all shown features to a minimum pixel width and height (using display parameters \code{min.width} and \code{min.height}) and collapsing overlapping annotation items (as defined by the parameter \code{min.distance} into one single item to prevent overplotting. For objects of class \code{\linkS4class{DataTrack}}, the data values underlying collapsed regions will be summarized based on the \code{summary} display parameter. See the class' documentation for more details. } \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DataTrack}} \code{\link{settings}} } Gviz/man/datasets.Rd0000644000126300012640000000106512227067650015737 0ustar00biocbuildphs_compbio\name{bmTrack} \alias{bmTrack} \alias{cyp2b10} \alias{idTrack} \alias{biomTrack} \alias{cpgIslands} \alias{axTrack} \alias{conservation} \alias{ensGenes} \alias{denseAnnTrack} \alias{geneModels} \alias{ideoTrack} \alias{itrack} \alias{twoGroups} \alias{from} \alias{gcContent} \alias{idxTrack} \alias{knownGenes} \alias{refGenes} \alias{snpLocations} \alias{to} \alias{ctrack} \alias{geneDetails} \alias{dtHoriz} \docType{data} \title{ Data sets } \description{ Some sample data sets used for the illustrative examples and the vignette. } \keyword{datasets} Gviz/man/exportTracks.Rd0000644000126300012640000000151112227067650016614 0ustar00biocbuildphs_compbio\name{exportTracks} \alias{exportTracks} \title{ Export GenomeGraph tracks to a annotation file representation. } \description{ This function is still a bit experimental. So far only BED export is supported. } \usage{ exportTracks(tracks, range, chromosome, file) } \arguments{ \item{tracks}{A list of annotation track objects to be exported into a single BED file.} \item{range}{A numeric vector or length 2. The genomic range to display when opening the file in a browser.} \item{chromosome}{The chromosome to display when opening the file in a browser.} \item{file}{Character, the path to the file to write into.} } \details{ FIXME: Need to support wgl exports as well... } \value{ The function is called for its side effect of writing to a file. } \author{ Florian Hahne } Gviz/man/grouping.Rd0000644000126300012640000000234512227067650015763 0ustar00biocbuildphs_compbio\name{grouping} \Rdversion{1.1} \alias{grouping} \title{Grouping of annotation features} \description{ Many annotation tracks are actually composed of a number of grouped sub-features, for instance exons in a gene model. This man page highlights the use of grouping information to build informative annotation plots. } \details{ All track objects that inherit from class \code{\linkS4class{AnnotationTrack}} support the grouping feature. The information is usually passed on to the constructor function (for \code{AnnotationTrack} via the \code{groups} argument and for \code{\linkS4class{GeneRegionTrack}} objects via the \code{exon} argument) or automatically downloaded from an online annotation repository (\code{\linkS4class{BiomartGeneRegionTrack}}). Group membership is specified by a factor vector with as many items as there are annotation items in the track (i.e., the value of \code{length(track)}. Upon plotting, the grouped annotation features are displayed together and will not be separated in the stacking of track items. } \author{Florian Hahne} \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{BiomartGeneRegionTrack}} \code{\linkS4class{GeneRegionTrack}} } Gviz/man/plotTracks.Rd0000644000126300012640000001501612227067650016256 0ustar00biocbuildphs_compbio\name{plotTracks} \alias{plotTracks} \title{ The main plotting function for one or several GenomeGraph tracks. } \description{ \code{plotTracks} is the main interface when plotting single track objects, or lists of tracks linked together across the same genomic coordinates. Essentially, the resulting plots are very similar to the graphical output of the UCSC Genome Browser, execpt for all of the interactivity. } \usage{ plotTracks(trackList, from=NULL, to=NULL, ..., sizes=NULL, panel.only=FALSE, extend.right=0, extend.left=0, title.width=NULL, add=FALSE, main, cex.main=2, fontface.main=2, col.main="black", margin=6, chromosome=NULL) } \arguments{ \item{trackList}{A list of GenomeGraph track objects, all inheriting from class \code{\linkS4class{GdObject}}. The tracks will all be drawn to the same genomic coordinates, either as defined by the \code{from} and \code{to} arguments if supplied, or by the maximum range across all individual items in the list.} \item{from, to}{Charactar scalar, giving the range of genomic coordinates to draw the tracks in. Note that \code{to} cannot be larger than \code{from}. If \code{NULL}, the plotting ranges are derived from the individual tracks. See \code{extend.left} and \code{extend.right} below for the definition of the final plotting ranges.} \item{\dots}{Additional arguments which are all interpreted as display parameters to tweak the appearance of the plot. These parameters are global, meaning that they will be used for all tracks in the list where they actually make sense, and they override the track-internal settings. See \code{\link{settings}} for details on display parameters.} \item{sizes}{A numeric vector of relative vertical sizes for the individual tracks of lenght equal to the number of tracks in \code{trackList}, or \code{NULL} to auto-detect the most appropriate vertical size proportions.} \item{panel.only}{Logical flag, causing the tracks to be plotted as lattice-like panel functions without resetting the plotting canvas and omitting the title pane. This allows to embed tracks into a trellis layout. Usually the function is called for a single track only when \code{panel.only==TRUE}.} \item{extend.right, extend.left}{Numeric scalar, extend the plotting range to the right or to the left by a fixed number of bases. The final plotting range is defined as \code{from-extend.left} to \code{to+extend.right}.} \item{title.width}{A expansion factor for the width of the title panels. This can be used to make more space, e.g. to accomodate for more detailed data axes. The default is to use as much space as needed to fit all the annotation text.} \item{add}{Logical flag, add the plot to an existing plotting canvas without re-initialising.} \item{main}{Character scalar, the plots main header.} \item{cex.main, fontface.main,col.main }{The fontface, color and expansion factor settings for the main header.} \item{margin}{The margin width to add to the plot in pixels.} \item{chromosome}{Set the chromosome for all the tracks in the track list.} } \details{ GenomeGraph tracks are plotted in a vertically stacked layout. Each track panel is split up into a title section containing the track name, as well as an optional axis for tracks containing numeric data, and a data section showing the actual data along genomic coordinates. In that sense, the output is very similar to the UCSC Genome Browser. The layout of the individual tracks is highly customizable though so called "display parameters". See \code{\link{settings}} for details. While plotting a track, the software automatically computes HTML image map coordinates based on the current graphics device. These coordinates as well as the associated annotation information can later be used to embed images of the plots in semi-interactive HTML pages. See \code{\linkS4class{ImageMap}} for details. } \value{ A list of GenomeGraph tracks, each one augmented by the computed image map coordinates in the \code{imageMap} slot, along with the additional \code{ImageMap} object \code{titles} containing information about the title panels. } \author{ Florian Hahne } \seealso{ \code{\linkS4class{GdObject}} \code{\linkS4class{ImageMap}} \code{\linkS4class{RangeTrack}} \code{\linkS4class{StackedTrack}} \code{\link{settings}} } \examples{ ## Create some tracks to plot st <- c(2000000, 2070000, 2100000, 2160000) ed <- c(2050000, 2130000, 2150000, 2170000) str <- c("-", "+", "-", "-") gr <- c("Group1","Group2","Group1", "Group3") annTrack <- AnnotationTrack(start=st, end=ed, strand=str, chromosome=7, genome="hg19", feature="test", group=gr, id=paste("annTrack item", 1:4), name="annotation track foo", stacking="squish") ax <- GenomeAxisTrack() dt <- DataTrack(start=seq(min(st), max(ed), len=10), width=18000, data=matrix(runif(40), nrow=4), genome="hg19", chromosome=7, type="histogram", name="data track bar") \dontshow{ ## For some annoying reason the postscript device does not know about ## the sans font if(!interactive()) { font <- ps.options()$family displayPars(annTrack) <- list(fontfamily=font, fontfamily.title=font) displayPars(ax) <- list(fontfamily=font, fontfamily.title=font) displayPars(dt) <- list(fontfamily=font, fontfamily.title=font) } } ## Now plot the tracks res <- plotTracks(list(ax, annTrack, dt)) ## Plot only a subrange res <- plotTracks(list(ax, annTrack, dt), from=2080000, to=2156000) ## Extend plotting ranges res <- plotTracks(list(ax, annTrack, dt), extend.left=200000, extend.right=200000) ## Add a header res <- plotTracks(list(ax, annTrack, dt), main="A GenomGraphs plot", col.main="darkgray") ## Change vertical size and title width res <- plotTracks(list(ax, annTrack, dt), sizes=c(1,1,5)) names(annTrack) <- "foo" res <- plotTracks(list(ax, annTrack), title.width=0.6) ## Adding and lattice like plots library(grid) grid.newpage() pushViewport(viewport(height=0.5, y=1, just="top")) grid.rect() plotTracks(annTrack, add=TRUE) popViewport(1) pushViewport(viewport(height=0.5, y=0, just="bottom")) grid.rect() plotTracks(dt, add=TRUE) popViewport(1) \dontrun{ library(lattice) myPanel <- function(x, ...) plotTracks(annTrack, panel.only=TRUE, from=min(x), to=max(x), shape="box") a <- seq(1900000, 2250000, len=40) xyplot(b~a|c, data.frame(a=a, b=1, c=cut(a, 4)), panel=myPanel, scales=list(x="free")) } } Gviz/man/settings.Rd0000644000126300012640000020167012227067650015773 0ustar00biocbuildphs_compbio\name{settings} \Rdversion{1.1} \alias{settings} \title{Setting display parameters to control the look and feel of the plots} \description{ The genome track plots in this package are all highly customizable by means of so called 'display parameters'. This page highlights the use of these parameters and list all available settings for the different track classes. } \details{ All of the package's track objects inherit the \code{dp} slot from the \code{\linkS4class{GdObject}} parent class, which is the main container to store an object's display parameters. Internally, the content of this slot has to be an object of class \code{\linkS4class{DisplayPars}}, but the user is usually not exposed to this low level implementation. Instead, there are two main interaction points, namely the individual object constructor functions and the final \code{\link{plotTracks}} function. In both cases, all additional arguments that are not caught by any of the formally defined function parameters are being interpreted as additional display parameters and are automatically added to the aforementioned slot. The main difference here is that display parameters that are passed on to the constructor function are specific for an individual track object, whereas those supplied to the \code{plotTracks} function will be applied to all the objects in the plotting list. Not all display parameters have an effect on the plotting of all track classes, and those will be silently ignored. One can query the available display parameters for a given class as well as their default values by calling the \code{\link{availableDisplayPars}} function, or by inspecting the man pages of the individual track classes. The structure of the classes defined in this package is hierarchical, and so are the available display parameters, i.e., all objects inherit the parameters defined in the commom \code{GdObject} parent class, and so on. Once a track object has been created, the display parameters are still open for modification. To this end, the \code{\link{displayPars}} replacement method is available for all objects inheriting from class \code{GdObject}. The method takes a named list of parameters as input, e.g.: \code{displayPars(foo) <- list(col="red", lwd=2)} In the same spirit, the currently set display parameters for the object \code{foo} can be inferred using the \code{displayPars} method directly, e.g.: \code{displayPars(foo)} For track objects inheriting from class \code{\linkS4class{AnnotationTrack}}, display parameters that are not formally defined in the class definition or in any of the parent classes are considered to be valid R color identifiers that are used to distinguish between different types of annotation features. For instance, the parameter 'miRNA' will be used to color all annotation features of class miRNA. The annotation types can be set in the constructor function of the track object via the \code{feature} argument. For most of the tracks that have been inferred from one of the online repositories, this classification will usually be downloaded along with the actual annotation data. } \section{Display Parameters}{ \describe{ \item{GenomeAxisTrack}{: \describe{ \item{}{\code{cex.id=0.7}: Numeric scalar. The text size for the optional range annotation.} \item{}{\code{fontsize=10}: Numeric scalar. Font size for the axis annotation text in points.} \item{}{\code{background.title="transparent"}: Character scalar. The background color for the title panel. Defaults to omit the background.} \item{}{\code{fontcolor="#808080"}: Character scalar. The font color for the axis annotation text.} \item{}{\code{size=NULL}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function. Defaults to the ideal size based on the other track settings.} \item{}{\code{lwd=2}: Numeric scalar. The line width for the axis elementes.} \item{}{\code{add35=FALSE}: Logical scalar. Add 3' to 5' direction indicators.} \item{}{\code{showTitle=FALSE}: Logical scalar. Plot a title panel. Defaults to omit the title panel.} \item{}{\code{add53=FALSE}: Logical scalar. Add 5' to 3' direction indicators.} \item{}{\code{littleTicks=FALSE}: Logical scalar. Add more fine-grained tick marks.} \item{}{\code{distFromAxis=1}: Numeric scalar. Control the distance of the axis annotation from the tick marks.} \item{}{\code{col.id="white"}: Character scalar. The text color for the optional range annotation.} \item{}{\code{labelPos="alternating"}: Character vector, one in "alternating", "revAlternating", "above" or "below". The vertical positioning of the axis labels.} \item{}{\code{exponent=NULL}: Numeric scalar. The exponent for the axis coordinates, e.g., 3 means mb, 6 means gb, etc. The default is to automatically determine the optimal exponent.} \item{}{\code{cex=0.8}: Numeric scalar. The overall font expansion factor for the axis annotation text.} \item{}{\code{fill.range="cornsilk3"}: Character scalar. The fill color for highlighted regions on the axis.} \item{}{\code{showId=FALSE}: Logical scalar. Show the optional range highlighting annotation.} \item{}{\code{col.range="cornsilk4"}: Character scalar. The border color for highlighted regions on the axis.} \item{}{\code{col="darkgray"}: Character scalar. The color for the axis lines and tickmarks.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} } } \item{DataTrack}{: \describe{ \item{}{\code{pch=20}: Integer scalar. The type of glyph used for plotting symbols.} \item{}{\code{notch=FALSE}: Logical scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{cex=0.7}: Numeric scalar. The default pixel size for plotting symbols.} \item{}{\code{box.width=NULL}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{stackedBars=TRUE}: Logical scalar. When there are several data groups, draw the histogram-type plots as stacked barplots or grouped side by side.} \item{}{\code{levels.fos=NULL}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{gradient=c("#F7FBFF", "#DEEBF7", "#C6DBEF", "#9ECAE1", "#6BAED6", "#4292C6", "#2171B5", "#08519C", "#08306B")}: Character vector. The base colors for the 'gradient' plotting type.} \item{}{\code{min.distance=0}: Numeric scalar. The mimimum distance in pixel below which to collapse ranges.} \item{}{\code{degree=1}: Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{type="p"}: Character vector. The plot type, one or several in \code{c("p","l", "b", "a", "s", "g", "r", "S", "smooth", "histogram", "mountain", "h", "boxplot", "gradient", "heatmap")}. See 'Details' section in \code{\linkS4class{DataTrack}} for more information on the individual plotting types.} \item{}{\code{notch.frac=0.5}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{ylim=NULL}: Numeric vector of length 2. The range of the y-axis scale.} \item{}{\code{fill.histogram="lightgray"}: Character scalar. Fill color in histogram-type plots, defaults to the setting of \code{fill}.} \item{}{\code{baseline=NULL}: Numeric scalar. Y-axis position of an optional baseline. This parameter has a special meaning for mountain-type plots, see the 'Details' section in \code{\linkS4class{DataTrack}} for more information.} \item{}{\code{collapse=FALSE}: Logical scalar. Collapse overlapping ranges and aggregate the underlying data.} \item{}{\code{size=NULL}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function. By default the size will be set automatically based on the selected plotting type.} \item{}{\code{col.mountain=NULL}: Character scalar. Line color in mountain-type plots, defaults to the setting of \code{col}.} \item{}{\code{span=0.2}: Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{transformation=NULL}: Function. Applied to the data matrix prior to plotting or when calling the \code{score} method. The function should accept exactly one input argument and its return value needs to be a numeric vector which can be coerced back into a data matrix of identical dimensionality as the input data.} \item{}{\code{box.ratio=1}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{varwidth=FALSE}: Logical scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{family="symmetric"}: Character scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{separator=0}: Numeric scalar. Number of pixels used to separate individual samples in heatmap-type plots.} \item{}{\code{ncolor=100}: Integer scalar. The number of colors for the 'gradient' plotting type} \item{}{\code{stats=X[[44]]}: Function. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{amount=NULL}: Numeric scalar. Amount of jittering in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{na.rm=FALSE}: Boolean controlling whether to discard all NA values when plotting or to keep empty spaces for NAs} \item{}{\code{lwd.baseline=NULL}: Numeric scalar. Line width of the optional baseline, defaults to the setting of \code{lwd}.} \item{}{\code{windowSize=NULL}: Numeric scalar. The size of the running window when the value of \code{window} is negative.} \item{}{\code{lty.mountain=NULL}: Character or numeric scalar. Line type in mountain-type plots, defaults to the setting of \code{lty}.} \item{}{\code{jitter.x=FALSE}: Logical scalar. Toggle on jittering on the x axis in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{jitter.y=FALSE}: Logical scalar. Toggle off jittering on the y axis in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{groups=NULL}: Vector coercable to a factor. Optional sample grouping. See 'Details' section in \code{\linkS4class{DataTrack}} for further information.} \item{}{\code{lty.baseline=NULL}: Character or numeric scalar. Line type of the optional baseline, defaults to the setting of \code{lty}.} \item{}{\code{col.baseline=NULL}: Character scalar. Color for the optional baseline, defaults to the setting of \code{col}.} \item{}{\code{evaluation=50}: Numeric scalar. Parameter controlling the loess calculation for smooth and mountain-type plots. See \code{\link{panel.loess}} for details.} \item{}{\code{fill.mountain=c("#CCFFFF", "#FFCCFF")}: Character vector of length 2. Fill color in mountain-type plots.} \item{}{\code{factor=0.5}: Numeric scalar. Factor to control amount of jittering in xy-type plots. See \code{\link{panel.xyplot}} for details.} \item{}{\code{do.out=TRUE}: Logical scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{col.histogram="#808080"}: Character scalar. Line color in histogram-type plots.} \item{}{\code{aggregation="mean"}: Function or character scalar. Used to aggregate values in windows or for collapsing overlapping items. The function has to accept a numeric vector as a single input parameter and has to return a numeric scalar with the aggregated value. Alternatively, one of the predefined options \code{mean}, \code{median} \code{sum}, \code{min}, \code{max} or \code{extreme} can be supplied as a character scalar. Defaults to \code{mean}.} \item{}{\code{coef=1.5}: Numeric scalar. Parameter controlling the boxplot appearance. See \code{\link{panel.bwplot}} for details.} \item{}{\code{lwd.mountain=NULL}: Numeric scalar. Line width in mountain-type plots, defaults to the setting of \code{lwd}.} \item{}{\code{window=NULL}: Numeric or character scalar. Aggregate the rows values of the data matrix to \code{window} equally sized slices on the data range using the method defined in \code{aggregation}. If negative, apply a running window of size \code{windowSize} using the same aggregation method. Alternatively, the special value \code{auto} causes the function to determine the optimal window size to avoid overplotting.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{fill="lightgray"}: Integer or character scalar. Default fill color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} } } \item{IdeogramTrack}{: \describe{ \item{}{\code{fontsize=10}: Numeric scalar. The font size for the chromosome name text.} \item{}{\code{background.title="transparent"}: Character scalar. The background color for the title panel. Defaults to omit the background.} \item{}{\code{fontcolor="#808080"}: Character scalar. The font color for the chromosome name text.} \item{}{\code{size=NULL}: Numeric scalar. The relative size of the track. Defaults to automatic size setting. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{showTitle=FALSE}: Logical scalar. Plot a title panel. Defaults to omit the title panel.} \item{}{\code{cex=0.8}: Numeric scalar. The overall font expansion factor for the chromosome name text.} \item{}{\code{fill="#FFE3E6"}: Character scalar. The fill color used for the highlighting of the currently displayed genomic region.} \item{}{\code{showId=TRUE}: Logical scalar. Indicate the chromosome name next to the ideogram.} \item{}{\code{col="red"}: Character scalar. The border color used for the highlighting of the currently displayed genomic region.} \item{}{\code{bevel=0.45}: Numeric scalar, between 0 and 1. The level of smoothness for the two ends of the ideogram.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} } } \item{AnnotationTrack}{: \describe{ \item{}{\code{fontface.group=2}: Numeric scalar. The font face for the group-level annotation.} \item{}{\code{showFeatureId=FALSE}: Logical scalar. Control whether to plot the individual track item identifiers.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for item identifiers.} \item{}{\code{showOverplotting=FALSE}: Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \code{collapse==TRUE}} \item{}{\code{lex=1}: Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{fontcolor="white"}: Character or integer scalar. The font color for item identifiers.} \item{}{\code{fontfamily="sans"}: Character scalar. The font family for item identifiers.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{lwd=1}: Integer scalar. The line width for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lty="solid"}: Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{shape="arrow"}: Character scalar. The shape in which to display the track items. Currently only \code{box}, \code{arrow}, \code{ellipse}, and \code{smallArrow} are implemented.} \item{}{\code{cex=1}: Numeric scalar. The font expansion factor for item identifiers.} \item{}{\code{fontface=1}: Integer scalar. The font face for item identifiers.} \item{}{\code{fill="lightblue"}: Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{showId=FALSE}: Logical scalar. Control whether to annotate individual groups.} \item{}{\code{cex.group=0.6}: Numeric scalar. The font expansion factor for the group-level annotation.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for item identifiers.} \item{}{\code{fontcolor.group="#808080"}: Character or integer scalar. The font color for the group-level annotation.} \item{}{\code{col="transparent"}: Character or integer scalar. The border color for all track items.} \item{}{\code{rotation=0}: Numeric scalar. The degree of text rotation for item identifiers.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} } } \item{GeneRegionTrack}{: \describe{ \item{}{\code{showExonId=FALSE}: Logical scalar. Control whether to plot the individual exon identifiers.} \item{}{\code{shape=c("smallArrow", "box")}: Character scalar. The shape in which to display the track items. Currently only \code{box}, \code{arrow}, \code{ellipse}, and \code{smallArrow} are implemented.} \item{}{\code{geneSymbols=TRUE}: Logical scalar. Use human-readable gene symbols or gene IDs for the transcript annotation.} \item{}{\code{fill="orange"}: Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} } \bold{\emph{Inherited from class AnnotationTrack:}} \describe{ \item{}{\code{fontface.group=2}: Numeric scalar. The font face for the group-level annotation.} \item{}{\code{showFeatureId=FALSE}: Logical scalar. Control whether to plot the individual track item identifiers.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for item identifiers.} \item{}{\code{showOverplotting=FALSE}: Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \code{collapse==TRUE}} \item{}{\code{lex=1}: Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{fontcolor="white"}: Character or integer scalar. The font color for item identifiers.} \item{}{\code{fontfamily="sans"}: Character scalar. The font family for item identifiers.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{lwd=1}: Integer scalar. The line width for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lty="solid"}: Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{cex=1}: Numeric scalar. The font expansion factor for item identifiers.} \item{}{\code{fontface=1}: Integer scalar. The font face for item identifiers.} \item{}{\code{showId=FALSE}: Logical scalar. Control whether to annotate individual groups.} \item{}{\code{cex.group=0.6}: Numeric scalar. The font expansion factor for the group-level annotation.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for item identifiers.} \item{}{\code{fontcolor.group="#808080"}: Character or integer scalar. The font color for the group-level annotation.} \item{}{\code{col="transparent"}: Character or integer scalar. The border color for all track items.} \item{}{\code{rotation=0}: Numeric scalar. The degree of text rotation for item identifiers.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} } } \item{BiomartGeneRegionTrack}{: \describe{ \item{}{\code{scRNA_pseudogene="darkorange2"}: Character or integer scalar. Fill color for annotation objects of type 'scRNA_pseudogene'.} \item{}{\code{miRNA_pseudogene="cornsilk"}: Character or integer scalar. Fill color for annotation objects of type 'miRNA_pseudogene'.} \item{}{\code{D_segment="lightblue"}: Character or integer scalar. Fill color for annotation objects of type 'C_segment'.} \item{}{\code{scRNA="darkorange"}: Character or integer scalar. Fill color for annotation objects of type 'scRNA'.} \item{}{\code{J_segment="dodgerblue2"}: Character or integer scalar. Fill color for annotation objects of type 'C_segment'.} \item{}{\code{Mt_tRNA_pseudogene="darkgoldenrod1"}: Character or integer scalar. Fill color for annotation objects of type 'Mt_tRNA_pseudogene'.} \item{}{\code{Mt_rRNA="yellow"}: Character or integer scalar. Fill color for annotation objects of type 'Mt_rRNA'.} \item{}{\code{tRNA_pseudogene="antiquewhite3"}: Character or integer scalar. Fill color for annotation objects of type 'tRNA_pseudogene'.} \item{}{\code{rRNA_pseudogene="darkolivegreen"}: Character or integer scalar. Fill color for annotation objects of type 'rRNA_pseudogene'.} \item{}{\code{miRNA="cornflowerblue"}: Character or integer scalar. Fill color for annotation objects of type 'L_segment'.} \item{}{\code{pseudogene="brown1"}: Character or integer scalar. Fill color for annotation objects of type 'pseudogene'.} \item{}{\code{rRNA="darkolivegreen1"}: Character or integer scalar. Fill color for annotation objects of type 'rRNA'.} \item{}{\code{protein_coding="gold4"}: Character or integer scalar. Fill color for annotation objects of type 'protein_coding'.} \item{}{\code{Mt_tRNA="darkgoldenrod"}: Character or integer scalar. Fill color for annotation objects of type 'Mt_tRNA'.} \item{}{\code{retrotransposed="blueviolet"}: Character or integer scalar. Fill color for annotation objects of type 'retrotransposed'.} \item{}{\code{snRNA="coral"}: Character or integer scalar. Fill color for annotation objects of type 'snRNA'.} \item{}{\code{V_segment="aquamarine"}: Character or integer scalar. Fill color for annotation objects of type 'V_segment'.} \item{}{\code{snRNA_pseudogene="coral3"}: Character or integer scalar. Fill color for annotation objects of type 'snRNA_pseudogene'.} \item{}{\code{misc_RNA="cornsilk3"}: Character or integer scalar. Fill color for annotation objects of type 'misc_RNA'.} \item{}{\code{misc_RNA_pseudogene="cornsilk4"}: Character or integer scalar. Fill color for annotation objects of type 'misc_RNA_pseudogene'.} \item{}{\code{snoRNA_pseudogene="cyan2"}: Character or integer scalar. Fill color for annotation objects of type 'snoRNA_pseudogene'.} \item{}{\code{snoRNA="cyan"}: Character or integer scalar. Fill color for annotation objects of type 'snoRNA'.} \item{}{\code{C_segment="burlywood4"}: Character or integer scalar. Fill color for annotation objects of type 'C_segment'.} } \bold{\emph{Inherited from class GeneRegionTrack:}} \describe{ \item{}{\code{showExonId=FALSE}: Logical scalar. Control whether to plot the individual exon identifiers.} \item{}{\code{shape=c("smallArrow", "box")}: Character scalar. The shape in which to display the track items. Currently only \code{box}, \code{arrow}, \code{ellipse}, and \code{smallArrow} are implemented.} \item{}{\code{geneSymbols=TRUE}: Logical scalar. Use human-readable gene symbols or gene IDs for the transcript annotation.} \item{}{\code{fill="orange"}: Character or integer scalar. The fill color for untyped items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} } \bold{\emph{Inherited from class AnnotationTrack:}} \describe{ \item{}{\code{fontface.group=2}: Numeric scalar. The font face for the group-level annotation.} \item{}{\code{showFeatureId=FALSE}: Logical scalar. Control whether to plot the individual track item identifiers.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for item identifiers.} \item{}{\code{showOverplotting=FALSE}: Logical scalar. Use a color gradient to show the amount of overplotting for collapsed items. This implies that \code{collapse==TRUE}} \item{}{\code{lex=1}: Numeric scalar. The line expansion factor for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{fontcolor="white"}: Character or integer scalar. The font color for item identifiers.} \item{}{\code{fontfamily="sans"}: Character scalar. The font family for item identifiers.} \item{}{\code{size=1}: Numeric scalar. The relative size of the track. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{lwd=1}: Integer scalar. The line width for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{lty="solid"}: Character or integer scalar. The line type for all track items. This is also used to connect grouped items. See \code{\link{grouping}} for details.} \item{}{\code{cex=1}: Numeric scalar. The font expansion factor for item identifiers.} \item{}{\code{fontface=1}: Integer scalar. The font face for item identifiers.} \item{}{\code{showId=FALSE}: Logical scalar. Control whether to annotate individual groups.} \item{}{\code{cex.group=0.6}: Numeric scalar. The font expansion factor for the group-level annotation.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for item identifiers.} \item{}{\code{fontcolor.group="#808080"}: Character or integer scalar. The font color for the group-level annotation.} \item{}{\code{col="transparent"}: Character or integer scalar. The border color for all track items.} \item{}{\code{rotation=0}: Numeric scalar. The degree of text rotation for item identifiers.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{collapse=TRUE}: Boolean controlling wether to collapse the content of the track to accomodate the minimum current device resolution. See \code{\link{collapsing}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} } } \item{AlignedReadTrack}{: \describe{ \item{}{\code{detail="coverage"}: the amount of detail to plot the data. Either \code{coverage} to show the coverage only, or \code{reads} to show individual reads. For large data sets the latter can be very inefficient. Please note that \code{reads} is only available when the object has been created with option \code{coverageOnly=FALSE}.} \item{}{\code{type="histogram"}: the plot type, one or several in \code{c("p","l", "b", "a", "s", "g", "r", "S", "smooth", "histogram", "mountain", "h", "boxplot", "gradient", "heatmap")}. See the 'Details' section in \code{\linkS4class{DataTrack}} for more information on the individual plotting types.} \item{}{\code{size=NULL}: the relative size of the track. Defaults to size selection based on the underlying data. Can be overridden in the \code{\link{plotTracks}} function.} \item{}{\code{collapse=FALSE}: collapse overlapping ranges and aggregate the underlying data.} \item{}{\code{fill="#0080ff"}: the fill color for the coverage indicator.} } \bold{\emph{Inherited from class GdObject:}} \describe{ \item{}{\code{fontface=1}: Integer or character scalar. The font face for all text.} \item{}{\code{fontsize=12}: Numeric scalar. The font size for all text.} \item{}{\code{h=-1}: Integer scalar. Parameter controlling the number of horizontal grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{fontcolor="black"}: Integer or character scalar. The font color for all text.} \item{}{\code{lwd=1}: Numeric scalar. Default line width setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.axis="white"}: Integer or character scalar. The font and line color for the y axis, if any.} \item{}{\code{grid=FALSE}: Boolean, switching on/off the plotting of a grid.} \item{}{\code{fontfamily.title="sans"}: Integer or character scalar. The font family for the title panels.} \item{}{\code{background.title="lightgray"}: Integer or character scalar. The background color for the title panels.} \item{}{\code{frame=FALSE}: Boolean. Draw a frame around the track when plotting.} \item{}{\code{alpha=1}: Numeric scalar. The transparency for all track items.} \item{}{\code{col.grid="#808080"}: Integer or character scalar. Default line color for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{showTitle=TRUE}: Boolean controlling whether to plot a title panel. Although this can be set individually for each track, in multi-track plots as created by \code{\link{plotTracks}} there will still be an empty placeholder in case any of the other tracks include a title. The same holds true for axes. Note that the the title panel background color could be set to transparent in order to completely hide it.} \item{}{\code{lty="solid"}: Numeric scalar. Default line type setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{col.line=NULL}: Integer or character scalar. Default colors for plot lines. Usually the same as the global \code{col} parameter.} \item{}{\code{background.panel="transparent"}: Integer or character scalar. The background color of the content panel.} \item{}{\code{col.symbol=NULL}: Integer or character scalar. Default colors for plot symbols. Usually the same as the global \code{col} parameter.} \item{}{\code{min.width=1}: Numeric scalar. The minimum range width in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{cex=1}: Numeric scalar. The overall font expansion factor for all text.} \item{}{\code{v=-1}: Integer scalar. Parameter controlling the number of vertical grid lines, see \code{\link{panel.grid}} for details.} \item{}{\code{cex.axis=NULL}: Numeric scalar. The expansion factor for the axis annotation. Defaults to \code{NULL}, in which case it is computed based on the available space.} \item{}{\code{fontface.title=2}: Integer or character scalar. The font face for the title panels.} \item{}{\code{lineheight=1}: Numeric scalar. The font line height for all text.} \item{}{\code{lwd.grid=1}: Numeric scalar. Default line width for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{cex.title=NULL}: Numeric scalar. The expansion factor for the title panel. This effects the fontsize of both the title and the axis, if any. Defaults to \code{NULL}, which means that the text size is automatically adjusted to the available space.} \item{}{\code{col.frame="lightgray"}: Integer or character scalar. The line color used for the panel frame, if \code{frame==TRUE}} \item{}{\code{min.height=3}: Numeric scalar. The minimum range height in pixels to display. All ranges are expanded to this size in order to avoid rendering issues. See \code{\link{collapsing}} for details.} \item{}{\code{col="#0080FF"}: Integer or character scalar. Default line color setting for all plotting elements, unless there is a more specific control defined elsewhere.} \item{}{\code{lty.grid="solid"}: Integer or character scalar. Default line type for grid lines, both when \code{type=="g"} in \code{\link{DataTrack}}s and when display parameter \code{grid==TRUE}.} \item{}{\code{col.title="white"}: Integer or character scalar. The font color for the title panels.} \item{}{\code{min.distance=1}: Numeric scalar. The minimum pixel distance before collapsing range items, only if \code{collapse==TRUE}. See \code{\link{collapsing}} for details.} \item{}{\code{showAxis=TRUE}: Boolean controlling whether to plot a y axis (only applies to track types where axes are implemented).} \item{}{\code{fontfamily="sans"}: Integer or character scalar. The font family for all text.} } } } } \author{ Florian Hahne } \seealso{ \code{\linkS4class{AnnotationTrack}} \code{\linkS4class{DataTrack}} \code{\linkS4class{DisplayPars}} \code{\linkS4class{GdObject}} \code{\link{availableDisplayPars}} \code{\link{collapsing}} \code{\link{displayPars}} \code{\link{grouping}} \code{\link{panel.bwplot}} \code{\link{panel.grid}} \code{\link{panel.loess}} \code{\link{panel.xyplot}} \code{\link{plotTracks}} }