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.

if i have the following data frame G:

z    type   x   
1     a     4
2     a     5 
3     a     6
4     b     1
5     b     0.9
6     c     4

I am trying to get:

z    type   x   y
3     a     6   3
2     a     5   2
1     a     4   1
4     b     1   2
5     b     0.9 1
6     c     4   1

I.e. i want to sort the whole data frame within the levels of factor type based on vector x. Get the length of of each level a = 3 b=2 c=1 and then number in a decreasing fashion in a new vector y.

My starting place is currently with sort()

tapply(y, x, sort)

Would it be best to first try and use sapply to split everything first?

share|improve this question

2 Answers 2

up vote 5 down vote accepted

There are many ways to skin this cat. Here is one solution using base R and vectorized code in two steps (without any apply):

  1. Sort the data using order and xtfrm
  2. Use rle and sequence to genereate the sequence.

Replicate your data:

dat <- read.table(text="
z    type   x   
1     a     4
2     a     5 
3     a     6
4     b     1
5     b     0.9
6     c     4
", header=TRUE, stringsAsFactors=FALSE)

Two lines of code:

r <- dat[order(dat$type, -xtfrm(dat$x)), ]
r$y <- sequence(rle(r$type)$lengths)

Results in:

r
  z type   x y
3 3    a 6.0 1
2 2    a 5.0 2
1 1    a 4.0 3
4 4    b 1.0 1
5 5    b 0.9 2
6 6    c 4.0 1

The call to order is slightly complicated. Since you are sorting one column in ascending order and a second in descending order, use the helper function xtfrm. See ?xtfrm for details, but it is also described in ?order.

share|improve this answer
    
hey both great solutions. I had not seen xtfrm before. very useful. i wanted the highest number in x to have they highest y so deleted the - from xtfrm and its a perfect result thank you –  user1322296 Apr 25 '12 at 17:54
    
@Andrie I hadn't seen xtfrm either but don't really get what it does.What is it doing here that the negative won't do? [the help file isn't that terrific on this function] –  Tyler Rinker Apr 25 '12 at 18:04
    
@user1322296 OK, in that case you don't need the xtfrm at all - it will just slow things down. –  Andrie Apr 25 '12 at 18:25
    
@TylerRinker The xtfrm idiom will also work for strings, but in this case you are correct, one doesn't need it. –  Andrie Apr 25 '12 at 18:25

I like Andrie's better:

dat <- read.table(text="z    type   x   
1     a     4
2     a     5 
3     a     6
4     b     1
5     b     0.9
6     c     4", header=T)

Three lines of code:

dat <- dat[order(dat$type), ]
x <- by(dat, dat$type, nrow)
dat$y <- unlist(sapply(x, function(z) z:1))

I Edited my response to adapt for the comments Andrie mentioned. This works but if you went this route instead of Andrie's you're crazy.

share|improve this answer
    
You need to replace that last rep(x,x) with seq_len(x) and then it should work. Nice solution. –  Andrie Apr 25 '12 at 17:47
    
@Andrie, I think it works as it is. The 2nd line gives me the lengths of each factor (what your use of rle does) which is c(3, 2, 1). Then I use rep to repeat each one of the lengths that number of times. Try running it and see. –  Tyler Rinker Apr 25 '12 at 17:50
    
Nevermind I misunderstood what the poster wanted. I see it now. –  Tyler Rinker Apr 25 '12 at 17:55
    
+1 for self-deprecating comments! –  Andrie Apr 25 '12 at 18:26

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.