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I want to subtract the smallest value in each subset of a data frame from each value in that subset i.e.

A <- c(1,3,5,6,4,5,6,7,10)
B <- rep(1:4, length.out=length(A))
df <- data.frame(A, B)
df <- df[order(B),]

Subtracting would give me:

  A B
1 0 1
2 3 1
3 9 1
4 0 2
5 2 2
6 0 3
7 1 3
8 0 4
9 1 4
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shouldn't the first column 4th row (4,1) be 0? Also (7,1) should be 0? –  Arun Jun 7 '13 at 19:42
    
Edited, thanks Arun. –  Joe_P Jun 7 '13 at 19:51

2 Answers 2

up vote 5 down vote accepted

I think the output you show is not correct. In any case, from what you explain, I think this is what you want. This uses ave base function:

within(df, { A <- ave(A, B, FUN=function(x) x-min(x))})
  A B
1 0 1
5 3 1
9 9 1
2 0 2
6 2 2
3 0 3
7 1 3
4 0 4
8 1 4

Of course there are other alternatives such as plyr and data.table.

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Wow quick, thanks Arun, first out the block. +1 And yes, my manual maths is pretty poor. –  Joe_P Jun 7 '13 at 19:45

Echoing Arun's comment above, I think your expected output might be off. In any event, you should be able to use can use tapply to calculate subsets and then use match to line those subsets up with the original values:

subs <- tapply(df$A, df$B, min)

df$A <- df$A - subs[match(df$B, names(subs))]

df
  A B
1 0 1
5 3 1
9 9 1
2 0 2
6 2 2
3 0 3
7 1 3
4 0 4
8 1 4
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1  
(+1) you could also directly do (in this case): unlist(tapply(df$A, df$B, function(x) x - min(x))) (as they are already ordered). In most cases, ave is much useful because of this. It gives the output in the same order. –  Arun Jun 7 '13 at 19:50
    
Thanks both, really handy for me. No doubt will see a lot of use for me. –  Joe_P Jun 10 '13 at 17:38

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