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I have a vector of numeric samples. I have calculated a smaller vector of breaks that group the values. I would like to create a boxplot that has one box for every interval, with the width of each box coming from a third vector, the same length as the breaks vector.

Here is some sample data. Please note that my real data has thousands of samples and at least tens of breaks:

v <- c(seq.int(5), seq.int(7) * 2, seq.int(4) * 3)
v1 <- c(1, 6, 13) # breaks
v2 <- c(5, 10, 2) # relative widths

This is how I might make separate boxplots, ignorant of the widths:

boxplot(v[v1[1]:v1[2]-1])
boxplot(v[v1[2]:v1[3]-1])
boxplot(v[v1[3]:length(v)])

I would like a solution that does a single boxplot() call without excessive data conditioning. For example, putting the vector in a data frame and adding a column for region/break number seems inelegant, but I'm not yet "thinking in R", so perhaps that is best.

Base R is preferred, but I will take what I can get.

Thanks.

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Is your question related to this one? –  gagolews Apr 22 at 17:44
    
That one is for barplot(). The boxplot() call would give me distribution information not available via barplot(). –  verbamour Apr 22 at 17:52

1 Answer 1

Try this:

v1 <- c(v1, length(v) + 1)
a01 <- unlist(mapply(rep, 1:(length(v1)-1), diff(v1)))

boxplot(v ~ a01, names= paste0("g", 1:(length(v1)-1)))
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This looks workable. Do you have a handy/clever way to generate the grouping vector from v1 in the original question? –  verbamour Apr 22 at 18:14
    
I edited my answer, have a look. –  Davide Passaretti Apr 22 at 18:24
    
Thanks. Much closer. I would like to replace the LETTERS[1:3] with something numeric to handle a larger v1. –  verbamour Apr 22 at 18:33
    
I edited my answer again: I just used numbers. –  Davide Passaretti Apr 22 at 18:35
    
Yes, that does the trick. I don't seem to have the reputation to mark this as an answer, but I consider it so. –  verbamour Apr 22 at 19:02

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