annotate pattern_plots.r @ 2:e85fec274cde draft

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author davidvanzessen
date Thu, 27 Oct 2016 07:26:45 -0400
parents faae21ba5c63
children 012a738edf5a
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1 library(ggplot2)
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2 library(reshape2)
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3 library(scales)
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4
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5 args <- commandArgs(trailingOnly = TRUE)
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6
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7 input.file = args[1] #the data that's get turned into the "SHM overview" table in the html report "data_sum.txt"
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9 plot1.path = args[2]
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10 plot1.png = paste(plot1.path, ".png", sep="")
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11 plot1.txt = paste(plot1.path, ".txt", sep="")
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12
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13 plot2.path = args[3]
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14 plot2.png = paste(plot2.path, ".png", sep="")
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15 plot2.txt = paste(plot2.path, ".txt", sep="")
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17 plot3.path = args[4]
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18 plot3.png = paste(plot3.path, ".png", sep="")
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19 plot3.txt = paste(plot3.path, ".txt", sep="")
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20
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21 dat = read.table(input.file, header=F, sep=",", quote="", stringsAsFactors=F, fill=T, row.names=1)
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25 classes = c("IGA", "IGA1", "IGA2", "IGG", "IGG1", "IGG2", "IGG3", "IGG4", "IGM")
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26 xyz = c("x", "y", "z")
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27 new.names = c(paste(rep(classes, each=3), xyz, sep="."), paste("un", xyz, sep="."), paste("all", xyz, sep="."))
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28
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29 names(dat) = new.names
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31 dat["RGYW.WRCY",] = colSums(dat[c(13,14),], na.rm=T)
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32 dat["TW.WA",] = colSums(dat[c(15,16),], na.rm=T)
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33
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34 data1 = dat[c("RGYW.WRCY", "TW.WA"),]
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35
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36 data1 = data1[,names(data1)[grepl(".z", names(data1))]]
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37 names(data1) = gsub("\\..*", "", names(data1))
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39 data1 = melt(t(data1))
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41 names(data1) = c("Class", "Type", "value")
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42
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43 data1 = data1[order(data1$Type),]
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45 write.table(data1, plot1.txt, quote=F, sep="\t", na="", row.names=F, col.names=T)
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47 p = ggplot(data1, aes(Class, value)) + geom_bar(aes(fill=Type), stat="identity", position="dodge", colour = "black") + ylab("% of mutations") + guides(fill=guide_legend(title=NULL))
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48 p = p + theme(panel.background = element_rect(fill = "white", colour="black"),text = element_text(size=13, colour="black")) + scale_fill_manual(values=c("RGYW.WRCY" = "white", "TW.WA" = "blue4"))
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49 #p = p + scale_colour_manual(values=c("RGYW.WRCY" = "black", "TW.WA" = "blue4"))
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50 png(filename=plot1.png, width=480, height=300)
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51 print(p)
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52 dev.off()
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53
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54 data2 = dat[5:8,]
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55
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56 data2["sum",] = colSums(data2, na.rm=T)
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58 data2 = data2[,names(data2)[grepl("\\.x", names(data2))]]
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59 names(data2) = gsub(".x", "", names(data2))
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61 data2["A/T",] = round(colSums(data2[3:4,]) / data2["sum",] * 100, 1)
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62 data2["A/T",is.nan(unlist(data2["A/T",]))] = 0
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64 data2["G/C transversions",] = round(data2[2,] / data2["sum",] * 100, 1)
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65 data2["G/C transitions",] = round(data2[1,] / data2["sum",] * 100, 1)
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68 data2["G/C transversions",is.nan(unlist(data2["G/C transversions",]))] = 0
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69 data2["G/C transversions",is.infinite(unlist(data2["G/C transversions",]))] = 0
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70 data2["G/C transitions",is.nan(unlist(data2["G/C transitions",]))] = 0
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71 data2["G/C transitions",is.infinite(unlist(data2["G/C transitions",]))] = 0
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73 data2 = melt(t(data2[6:8,]))
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74
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75 names(data2) = c("Class", "Type", "value")
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76
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77 data2 = data2[order(data2$Type),]
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79 write.table(data2, plot2.txt, quote=F, sep="\t", na="", row.names=F, col.names=T)
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81 p = ggplot(data2, aes(x=Class, y=value, fill=Type)) + geom_bar(position="fill", stat="identity", colour = "black") + scale_y_continuous(labels=percent_format()) + guides(fill=guide_legend(title=NULL)) + ylab("% of mutations")
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82 p = p + theme(panel.background = element_rect(fill = "white", colour="black"), text = element_text(size=13, colour="black")) + scale_fill_manual(values=c("A/T" = "blue4", "G/C transversions" = "gray74", "G/C transitions" = "white"))
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83 #p = p + scale_colour_manual(values=c("A/T" = "blue4", "G/C transversions" = "gray74", "G/C transitions" = "black"))
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84 png(filename=plot2.png, width=480, height=300)
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85 print(p)
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86 dev.off()
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87
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88 data3 = dat[c(5, 6, 8, 17:20),]
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89 data3 = data3[,names(data3)[grepl("\\.x", names(data3))]]
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90 names(data3) = gsub(".x", "", names(data3))
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92 data3[is.na(data3)] = 0
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93 #data3[is.infinite(data3)] = 0
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95 data3["G/C transitions",] = round(data3[1,] / (data3[5,] + data3[7,]) * 100, 1)
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97 data3["G/C transversions",] = round(data3[2,] / (data3[5,] + data3[7,]) * 100, 1)
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99 data3["A/T",] = round(data3[3,] / (data3[4,] + data3[6,]) * 100, 1)
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100
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101 data3["G/C transitions",is.nan(unlist(data3["G/C transitions",]))] = 0
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102 data3["G/C transitions",is.infinite(unlist(data3["G/C transitions",]))] = 0
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103
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104 data3["G/C transversions",is.nan(unlist(data3["G/C transversions",]))] = 0
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105 data3["G/C transversions",is.infinite(unlist(data3["G/C transversions",]))] = 0
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107 data3["A/T",is.nan(unlist(data3["A/T",]))] = 0
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108 data3["A/T",is.infinite(unlist(data3["A/T",]))] = 0
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110 data3 = melt(t(data3[8:10,]))
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111 names(data3) = c("Class", "Type", "value")
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112
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113 data3 = data3[order(data3$Type),]
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115 write.table(data3, plot3.txt, quote=F, sep="\t", na="", row.names=F, col.names=T)
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117 p = ggplot(data3, aes(Class, value)) + geom_bar(aes(fill=Type), stat="identity", position="dodge", colour = "black") + ylab("% of nucleotides") + guides(fill=guide_legend(title=NULL))
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118 p = p + theme(panel.background = element_rect(fill = "white", colour="black"), text = element_text(size=13, colour="black")) + scale_fill_manual(values=c("A/T" = "blue4", "G/C transversions" = "gray74", "G/C transitions" = "white"))
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119 #p = p + scale_colour_manual(values=c("A/T" = "blue4", "G/C transversions" = "gray74", "G/C transitions" = "black"))
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120 png(filename=plot3.png, width=480, height=300)
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121 print(p)
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122 dev.off()
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