Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am writing a R code that allows users to select columns from a data and plots histograms for each of them. Hence, I am using a 'for' loop to generate the required number of plots using the ggplot2 library and save them in a single list. But the problem I am facing is that, at every iteration of the 'for' loop, all objects in the list are storing the same plot. Thus, the final output consists of a grid of histograms, labeled differently but depicting the same(last) column.

I understand that this question is quite old and I found the answers on renaming ggplot2 graphs in a for loop and https://stat.ethz.ch/pipermail/r-help/2008-February/154438.html to be a useful starting point.

I have used the standard Swiss Fertility dataset available in R to generate the plots. Here is the code:-

data_ <- swiss
data_ <- na.omit(data_)

u <- c(2, 3, 4, 5, 6)
plotData <- data_[,u]
bw <- 5
plotType <- 'probability'

library(ggplot2)
library(gridExtra)

histogramList <- vector('list', length(u))

if(plotType=='probability')
{
 for(i in 1:length(u))
 {
   indexDataFrame <- data.frame(plotData[,i])
   probabilityHistogram <- ggplot(indexDataFrame, aes(x=indexDataFrame[,1]))
   histogramList[[i]] <-  probabilityHistogram + geom_histogram(aes(y=..density..),     binwidth=bw, colour='black', fill='skyblue') + geom_density() + scale_x_continuous(names(plotData)[i]) + opts(legend.position='none')
 }
} else
if(plotType=='frequency')
{
 for(i in 1:length(u))
 {
   indexDataFrame <- data.frame(plotData[,i])
   probabilityHistogram <- ggplot(indexDataFrame, aes(x=indexDataFrame[,1]))
   histogramList[[i]] <- probabilityHistogram + geom_histogram(aes(y=..count..), binwidth=bw, colour='black', fill='skyblue') + geom_density() + scale_x_continuous(names(plotData)[i]) + opts(legend.position='none')
 }
}

arg_list <- c(histogramList, list(nrow=3, ncol=2))
#jpeg('histogram', width=1024, height=968)
do.call(grid.arrange, arg_list)
#graphics.off()

I apologize if I have missed an obvious answer to the question in this forum and shall be grateful if you could direct me towards it. I hope my explanation is clear and if not, please let me know about the clarifications required.

Thanks!

share|improve this question

2 Answers 2

You can vastly simplify your code by:

  1. Using facets, rather than manually arranging multiple plots
  2. Melting your data with the function melt in package reshape2
  3. This means you can remove the loop

Here is a complete rewrite of your code, with no loop in sight.

data_ <- swiss
data_ <- na.omit(data_)

u <- c(2, 3, 4, 5, 6)
plotData <- data_[,u]
bw <- 5
plotType <- 'frequency'

library(ggplot2)
library(reshape2)

mdat <- melt(plotData)

if(plotType=='probability'){
  ph <- ggplot(mdat, aes(value)) +
    geom_histogram(aes(y=..density..), binwidth=bw, colour='black', fill='skyblue') + 
    geom_density() + 
    facet_wrap(~variable, scales="free")
} 

if(plotType=='frequency'){
  ph <- ggplot(mdat, aes(value)) +
    geom_histogram(aes(y=..count..), binwidth=bw, colour='black', fill='skyblue') + 
    geom_density() + 
    facet_wrap(~variable, scales="free")
}

print(ph)

The resulting graphics:

Probability:

enter image description here

Frequency

enter image description here

share|improve this answer
    
this looks amazing! thanks! –  tejas_kale Jul 6 '12 at 11:54

Instead of mapping aesthetics using aes, you might be better off using aes_string:

 for(i in 1:length(u))
 {
   probabilityHistogram <- ggplot(plotData, aes_string(x=names(plotData)[i]))
   histogramList[[i]] <-  probabilityHistogram + geom_histogram(aes(y=..density..),     binwidth=bw, colour='black', fill='skyblue') + geom_density() + scale_x_continuous(names(plotData)[i]) + opts(legend.position='none')
 }

That worked for me, at least. This avoids having to subset your data and allows you to reference the column you want to plot by quoted name.

share|improve this answer
    
worked for me as well. thanks! –  tejas_kale Jul 6 '12 at 7:55

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.