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 have a question concerning dynamically subsetting a data table. I know that there are numerous threads on stackoverflow which are denominated similarly but unfortunately they didn't lead me to the wanted solution.

The example data set:

require(data.table)
dt <- data.table(date=c(rep(1,5),rep(2,5)),id=rep(1:5,2),var=c(1:10))

For each ID I would like to find the subset of all other IDs of all periods before. In the example data set there are 5 IDs and two periods. If one looks at ID=5 in period 2 the corresponding subset would be that of ID={1,2,3,4) and date=1. In this simple data set I of course can code this by hand:

dt[,dt[-.I][date<2],by=id]

I however would like to do this automatically. I tried something like

dt[,dt[-.I][date < unique(dt$date[.I])],by=id] 

but this doesn't work unfortunately.

Any helpful comments are appreciated! Thanks!

share|improve this question
6  
If you down rate my question please leave a critique so that I can improve the question. Thanks! –  chameau13 Oct 26 '13 at 16:10
1  
Oh, sorry about that: I've upvoted some of your questions in the past, but eh, I think the basic idea behind the question (creating a huge amount of redundant data) is misguided for most applications (e.g., calculating conditional probabilities as in your earlier q) and that you have asked it several times before. Also, it is misspecified, since you put "each ID...of all periods before" which actually means you want "each ID and date", as seen in the answers below. Relevant meta: meta.stackexchange.com/q/18552/209360 –  Frank Oct 26 '13 at 21:31
    
Or maybe this one: meta.stackexchange.com/questions/8891/… –  Frank Oct 26 '13 at 21:32
    
Thanks for your comment Frank. Well for most of the question I have been asking here in the last month I know standard R procedures. The problem with the project I am working on at the moment is however that I have a huge data set. Finding the most efficient way of computation for each single step is with what I am struggling at the moment. –  chameau13 Oct 27 '13 at 11:29
1  
OP, perhaps you can explain why you think you need this. As @Arun's answer shows it's unlikely this transformation would be useful for large data. –  eddi Oct 28 '13 at 4:29

2 Answers 2

You've to realise that the combinations explode with increase in the number of unique dates/ids. Even for date=1:10 and id=1:10, the answer is of 4050 rows (takes 0.7 seconds) and for date=1:50 and id=1:50, it's already 3001250 rows (takes 6.2 seconds). Having said that, this should work as intended:

setkey(dt, date, id)
ans <- dt[!J(1), {d.tmp = date-1; id.tmp = id; dt[CJ(1:d.tmp, 
        setdiff(id, id.tmp))]}, by=list(date, id)]
setnames(ans, make.unique(names(ans)))
setkey(ans, date, id, date.1)

    date id date.1 id.1 var
 1:    2  1      1    2   2
 2:    2  1      1    3   3
 3:    2  1      1    4   4
 4:    2  1      1    5   5
 5:    2  2      1    1   1
 6:    2  2      1    3   3
 7:    2  2      1    4   4
 8:    2  2      1    5   5
 9:    2  3      1    1   1
10:    2  3      1    2   2
11:    2  3      1    4   4
12:    2  3      1    5   5
13:    2  4      1    1   1
14:    2  4      1    2   2
15:    2  4      1    3   3
16:    2  4      1    5   5
17:    2  5      1    1   1
18:    2  5      1    2   2
19:    2  5      1    3   3
20:    2  5      1    4   4
share|improve this answer
    
the result is correct, the execution is however too slow for my purpose. if i find a solution i will edit into your response. thank you very much! –  chameau13 Nov 5 '13 at 16:29
up vote 2 down vote accepted

I think this is the faster solution:

dta <- data.table(date=c(rep(1,5),rep(2,5)),id=rep(1:5,2),var=c(1:10))
dta[,dta[dta[.I]$id!=dta$id & dta[.I]$date>dta$date],by=list(id,date)]

Any comments on how to make this code even faster is highly appreciated.

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.