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I have a data.table with ordered data labled up, and I want to add a column that tells me how many records until I get to a "special" record that resets the countdown.

For example:

DT = data.table(idx = c(1,3,3,4,6,7,7,8,9), 
                name = c("a", "a", "a", "b", "a", "a", "b", "a", "b"))
setkey(DT, idx)
#manually add the answer
DT[, countdown := c(3,2,1,0,2,1,0,1,0)]

Gives

> DT
   idx name countdown
1:   1    a         3
2:   3    a         2
3:   3    a         1
4:   4    b         0
5:   6    a         2
6:   7    a         1
7:   7    b         0
8:   8    a         1
9:   9    b         0

See how the countdown column tells me how many rows until a row called "b". The question is how to create that column in code.

Note that the key is not evenly spaced and may contain duplicates (so is not very useful in solving the problem). In general the non-b names could be different, but I could add a dummy column that is just True/False if the solution requires this.

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3 Answers

up vote 7 down vote accepted

Here's another idea:

## Create groups that end at each occurrence of "b"
DT[, cd:=0L]
DT[name=="b", cd:=1L]
DT[, cd:=rev(cumsum(rev(cd)))]
## Count down within them
DT[, cd:=max(.I) - .I, by=cd]
#    idx name cd
# 1:   1    a  3
# 2:   3    a  2
# 3:   3    a  1
# 4:   4    b  0
# 5:   6    a  2
# 6:   7    a  1
# 7:   7    b  0
# 8:   8    a  1
# 9:   9    b  0
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+1. Was just reading the docs about .I and trying to think how it could be useful here, but am not familiar enough with data.table to figure out where to start! –  Ananda Mahto Mar 5 '13 at 19:15
    
They are all good answers, but I like this one best since it doesn't use any extra variables for carrying out the working. –  Corone Mar 6 '13 at 9:08
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I'm sure (or at least hopeful) that a purely "data.table" solution would be generated, but in the meantime, you could make use of rle. In this case, you're interested in reversing the countdown, so we'll use rev to reverse the "name" values before proceeding.

output <- sequence(rle(rev(DT$name))$lengths)
makezero <- cumsum(rle(rev(DT$name))$lengths)[c(TRUE, FALSE)]
output[makezero] <- 0

DT[, countdown := rev(output)]
DT
#    idx name countdown
# 1:   1    a         3
# 2:   3    a         2
# 3:   3    a         1
# 4:   4    b         0
# 5:   6    a         2
# 6:   7    a         1
# 7:   7    b         0
# 8:   8    a         1
# 9:   9    b         0
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Even if a pure data.table answer comes along, that is a definite +1 for lateral thinking. And of course, it works perfectly. –  Corone Mar 5 '13 at 18:53
3  
@Corone -- One thing you didn't say is what you'd like to happen when (if ever) there are two "b"'s in a row. Ananda's and my answers differ in that case: mine assigns a '0' to both, while his begins the countdown for the next group following the first "b". –  Josh O'Brien Mar 5 '13 at 19:17
    
@JoshO'Brien good spot - the correct result is that b should always show zero. –  Corone Mar 5 '13 at 19:23
    
@Corone -- Good. That's what I fig'rd. –  Josh O'Brien Mar 5 '13 at 19:25
    
@Corone, the last edit of my answer should do this. –  Arun Mar 5 '13 at 19:59
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Here's a mix of Josh's and Ananda's solution, in that, I use RLE to generate the way Josh has given the answer:

t <- rle(DT$name)
t <- t$lengths[t$values == "a"]
DT[, cd := rep(t, t+1)]
DT[, cd:=max(.I) - .I, by=cd]

Even better: Taking use of the fact that there's only one b always (or assuming here), you could do this one better:

t <- rle(DT$name)
t <- t$lengths[t$values == "a"]
DT[, cd := rev(sequence(rev(t+1)))-1]

Edit: From OP's comment, it seems clear that there is more than 1 b possible and in such cases, all b should be 0. The first step in doing this is to create groups where b ends after each consecutive a's.

DT <- data.table(idx=sample(10), name=c("a","a","a","b","b","a","a","b","a","b"))
t <- rle(DT$name)
val <- cumsum(t$lengths)[t$values == "b"]
DT[, grp := rep(seq(val), c(val[1], diff(val)))]
DT[, val := c(rev(seq_len(sum(name == "a"))), 
         rep(0, sum(name == "b"))), by = grp]

#     idx name grp val
#  1:   1    a   1   3
#  2:   7    a   1   2
#  3:   9    a   1   1
#  4:   4    b   1   0
#  5:   2    b   1   0
#  6:   8    a   2   2
#  7:   6    a   2   1
#  8:   3    b   2   0
#  9:  10    a   3   1
# 10:   5    b   3   0
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+1 for another nice alternative! Just look out that someone doesn't come along and criticize your choice of t as an object name :) –  Ananda Mahto Mar 5 '13 at 19:21
    
Unfortunately our assumption about only 1 "b" (I thought so too) is incorrect :( –  Ananda Mahto Mar 5 '13 at 19:34
    
Yes, I'm working on a solution for all b's to be replaced by 0. –  Arun Mar 5 '13 at 19:36
    
@AnandaMahto, the last edit should do it, even though it is not the prettiest solution. –  Arun Mar 5 '13 at 19:59
1  
sorry I can't upvote twice :) –  Ananda Mahto Mar 6 '13 at 10:19
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