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analysis/quantif_20131105/120518_07-degreeDist140114-155211.pdf
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@@ -131,8 +131,8 @@ plot(g, layout=eval(parse(text=lo)), edge.width=E(g)$width, edge.color="black",
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# palette("default")
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title(paste(fnm,', fastgreedy default, ', lo, 'r>', rthresh))
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dateStr=format(Sys.time(),"%y%m%d-%H%M%S")
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quartz.save(file=paste(dateStr, fnm, ".png",sep=""), type = "png", dpi=150)
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quartz.save(file=paste(dateStr, fnm, ".pdf",sep=""), type = "pdf")
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quartz.save(file=paste(dateStr, "-", fnm, ".png",sep=""), type = "png", dpi=150)
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quartz.save(file=paste(dateStr, "-", fnm, ".pdf",sep=""), type = "pdf")
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@@ -165,11 +165,112 @@ plot(g, layout=eval(parse(text=lo)), edge.width=E(g)$width, edge.color="black",
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# palette("default")
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title(paste(fnm,', fastgreedy default, ', lo, 'r>', rthresh))
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dateStr=format(Sys.time(),"%y%m%d-%H%M%S")
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quartz.save(file=paste(dateStr, fnm, ".png",sep=""), type = "png", dpi=150)
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quartz.save(file=paste(dateStr, fnm, ".pdf",sep=""), type = "pdf")
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quartz.save(file=paste(dateStr, "-", fnm, ".png",sep=""), type = "png", dpi=150)
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quartz.save(file=paste(dateStr, "-", fnm, ".pdf",sep=""), type = "pdf")
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# 2014-01-14 14:59:18 Make mean summary graphs for P3 and P8
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edgelist<-read.delim('/Users/ackman/Data/2photon/131208/2014-01-07-003602/dCorr.txt')
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edgelist<-read.delim('/Users/ackman/Data/2photon/120518i/2014-01-03-231550/dCorr.txt')
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library(plyr)
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library(igraph)
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library(RColorBrewer)
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d2 <- ddply(edgelist, c("node1","node2"), summarize,
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rvalue.mean = mean(rvalue),
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rvalue.sd = sd(rvalue),
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N = length(rvalue),
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rvalue.sem = rvalue.sd/sqrt(N))
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colnames(d2)[colnames(d2) == 'rvalue.mean'] <- 'rvalue'
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rthresh <- 0.15
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fnm <- 'P8'
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# fnm2 <- paste(fnm,".tif",sep="")
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lo <- 'layout.fruchterman.reingold'
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# lo <- 'layout.kamada.kawai'
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# lo <- 'layout.lgl'
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# d3 <- subset(edgelist,filename==fnm2)
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# d4 <- with(d3,data.frame(node1,node2,rvalue))
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edgelist2<-subset(d2,rvalue > rthresh)
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g <- graph.data.frame(edgelist2, directed=FALSE)
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E(g)$weight <- E(g)$rvalue
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E(g)$width <- 1
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E(g)[ weight >= 0.3 ]$width <- 3
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E(g)[ weight >= 0.5 ]$width <- 5
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fastgreedyCom<-fastgreedy.community(g,weights=E(g)$weight)
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V(g)$color <- fastgreedyCom$membership
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quartz();
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# palette(rainbow(max(V(g)$color),alpha=0.5))
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mypalette <- adjustcolor(brewer.pal(max(V(g)$color),"Set1"),0.6)
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palette(mypalette)
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plot(g, layout=eval(parse(text=lo)), edge.width=E(g)$width, edge.color="black", vertex.label.color="black")
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# palette("default")
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title(paste(fnm,', fastgreedy default, ', lo, 'r>', rthresh))
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dateStr=format(Sys.time(),"%y%m%d-%H%M%S")
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quartz.save(file=paste(dateStr, "-", fnm, ".png",sep=""), type = "png", dpi=150)
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quartz.save(file=paste(dateStr, "-", fnm, ".pdf",sep=""), type = "pdf")
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print(fastgreedyCom)
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degree(g)
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degree.distribution(g)
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degree.distribution(g,cumulative = TRUE)
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average.path.length(g)
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diameter(g)
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hub.score(g)$vector
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mean(degree(g))
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#------Histogram of degree distribution-------------------------------------------------------------
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df <- data.frame(degree(g))
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colnames(df) <- c("degree")
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p <- ggplot(df, aes(x=degree)) + xlab("degree") + theme_bw()
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p + geom_histogram(binwidth = 2) + scale_colour_brewer(palette="Set1") + opts(aspect.ratio=1) #raw counts
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dateStr=format(Sys.time(),"%y%m%d-%H%M%S")
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ggsave(file=paste(dateStr, "-degreeDist-", fnm, ".pdf",sep=""))
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# This should approximately yield the correct exponent 3
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# g <- barabasi.game(1000) # increase this number to have a better estimate
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# d <- degree(g, mode="in")
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d <- degree(g)
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fit1 <- power.law.fit(d,3)
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fit2 <- power.law.fit(d,3, implementation="R.mle")
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fit1$alpha
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coef(fit2)
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fit1$logLik
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logLik(fit2)
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# Sample power law dynamics
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# This should approximately yield the correct exponent 3
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g <- barabasi.game(1000) # increase this number to have a better estimate
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d <- degree(g, mode="in")
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fit1 <- power.law.fit(d+1, 10)
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fit2 <- power.law.fit(d+1, 10, implementation="R.mle")
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fit1$alpha
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coef(fit2)
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fit1$logLik
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logLik(fit2)
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df <- data.frame(degree(g))
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colnames(df) <- c("degree")
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p <- ggplot(df, aes(x=degree)) + xlab("degree") + theme_bw()
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p + geom_histogram(binwidth = 2) + scale_colour_brewer(palette="Set1") + opts(aspect.ratio=1) #raw counts
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dateStr=format(Sys.time(),"%y%m%d-%H%M%S")
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title("barabasi.game(33), powerlaw")
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ggsave(file=paste(dateStr, "-degreeDist-", "barabasiGame-powerlaw", ".pdf",sep=""))
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g <- graph.ring(10)
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