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 would like to plot each column of a matrix as a boxplot and then label the outliers in each boxplot as the row name they belong to in the matrix. To use an example:

vv=matrix(c(1,2,3,4,8,15,30),nrow=7,ncol=4,byrow=F)
rownames(vv)=c("one","two","three","four","five","six","seven")
boxplot(vv)

I would like to label the outlier in each plot (in this case 30) as the row name it belongs to, so in this case 30 belongs to row 7. Is there an easy way to do this? I have seen similar questions to this asked but none seemed to have worked the way I want it to.

share|improve this question
    
There are no rownames in that example!???! –  BondedDust Mar 3 '13 at 0:32
    
Sorry, there we go. –  user1836894 Mar 3 '13 at 0:35

6 Answers 6

up vote 2 down vote accepted

In the example given it's a bit boring because they are all the same row. but here is the code:

bxpdat <- boxplot(vv)
text(bxpdat$group+0.2,                                           # the x locations 
     bxpdat$out,                                                 # the y values
     rownames(vv)[which( vv == bxpdat$out, arr.ind=TRUE)[, 1]])  # the labels

This picks the rownames that have values equal to the "out" list (i.e., the outliers) in the result of boxplot. Boxplot calls and returns the values from boxplot.stats. Take a look at:

 str(bxpdat)
share|improve this answer
    
Won't this falsely flag outliers if there are two boxplots with different means if there's a data point which is an outlier in one and not the other? –  sebastian-c Mar 3 '13 at 0:47
    
You're welcome to post an example that represents your concerns. I only see one boxplot in the posted question. –  BondedDust Mar 3 '13 at 0:49

@DWin's solution works very well for a single boxplot, but will fail for anything with duplicate values, like the dataset I have created:

#Create data
set.seed(1)
basenums <- c(1,2,3,4,8,15,30)
vv=matrix(c(basenums, sample(basenums), 1-basenums, 
          c(0, 29, 30, 31, 32, 33, 60)),nrow=7,ncol=4,byrow=F)
dimnames(vv)=list(c("one","two","three","four","five","six","seven"), 1:4)

On this dataset, @DWin's solution gives:

enter image description here

Which is false, because in the 4th example, it is not possible for the minimum and maximum to be in the same row.

This solution is monstrous (and I hope can be simplified), but effective.

#Reshape data
vv_dat <- as.data.frame(vv)
vv_dat$row <- row.names(vv_dat)
library(reshape2)
new_vv <- melt(vv_dat, id.vars="row")

#Get boxplot data
bxpdat <- as.data.frame(boxplot(value~variable, data=new_vv)[c("out", "group")])

#Get matches with boxplot data
text_guide <- do.call(rbind, apply(bxpdat, 1, 
    function(x) new_vv[new_vv$value==x[1]&new_vv$variable==x[2], ]))

#Add labels
with(text_guide, text(x=as.numeric(variable)+0.2, y=value, labels=row))

enter image description here

share|improve this answer

Or alternatively, you could use the "Boxplot" function from the {car} package which labels outliers for you.

See the following link...

http://hosho.ees.hokudai.ac.jp/~kubo/Rdoc/library/car/html/Boxplot.html

Much easier!

share|improve this answer
    
This does appear to be exactly what the OP is asking for. –  Floris Mar 1 at 16:50

Or you can simply run the code from this blog post:

source("http://www.r-statistics.com/wp-content/uploads/2011/01/boxplot-with-outlier-label-r.txt") # Load the function
set.seed(6484)
y <- rnorm(20)
x1 <- sample(letters[1:2], 20,T)
lab_y <- sample(letters, 20)
# plot a boxplot with interactions:
boxplot.with.outlier.label(y~x1, lab_y)

(which handles multiple outliers which are close to one another)

enter image description here

share|improve this answer

@sebastian-c This is a slight modification of DWin solution that seem to work with more generality

bx1<-boxplot(pb,las=2,cex.axis=.8)
if(length(bx1$out)!=0){
  ## get the row of each outlier
  out.rows<-sapply(1:length(bx1$out),function(i) which(vv[,bx1$group[i]]==bx1$out[i]))
  text(bx1$group,bx1$out,
     rownames(vv)[out.rows],
     pos=4
  )
}
share|improve this answer

There is a simple way. Note that b in Boxplot in following lines is a capital letter.

library(car)

Boxplot(y ~ x, id.method="y")

share|improve this answer

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.