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Following this post, I have another question about columns of lists in data.table.

DT = data.table(x=list(c(1,2),c(1,2),c(3,4,5)))

It seems you can't key on a column of lists.

DT[,y:=.I,by=x]
Erreur dans `[.data.table`(DT, , `:=`(y, .I), by = x) :
  The items in the 'by' or 'keyby' list are length (2,2,3). Each must be same length as rows in x or number of rows returned by i (3).

I thought I could with lists of same length but:

DT = data.table(x=list(c(1,2),c(1,2),c(3,5)))
DT[,y:=.I,by=x]
Erreur dans `[.data.table`(DT, , `:=`(y, .I), by = x) :
  The items in the 'by' or 'keyby' list are length (2,2,2). Each must be same length as rows in x or number of rows returned by i (3).

Is there a workaround? If not what about a feature request?

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yes, list is not allowed (currently) as a key column. You get this message when you do `setkey(DT, "x") –  Arun Feb 15 '13 at 14:13

1 Answer 1

up vote 4 down vote accepted

I'd do something like this as a workaround:

DT[, y := which(DT$x %in% x), by = 1:nrow(DT)]

This returns the first matching index always, which will serve as a group id.

You should do something like this:

DT[, psnInGrp := seq_along(x), by=y]

#        x y psnInGrp
# 1:   1,2 1        1
# 2:   1,2 1        2
# 3: 3,4,5 3        1
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1  
Doh... time for coffee... –  statquant Feb 15 '13 at 14:33
    
Not sure about by=1:nrow(DT) in general. May be faster to use lapply and friends in j. –  Matt Dowle Feb 15 '13 at 15:09
    
@MatthewDowle, Is it possible to select row-by-row without doing 1:nrow(DT)? –  Arun Feb 15 '13 at 15:14
    
Not sure what you mean, but yes. lapply can be used in j on columns as well as on .SD. –  Matt Dowle Feb 15 '13 at 15:36
    
What I mean is, if you want to take each element of x one by one, that is, (1,2), then the next 1,2 and then 3,4,5 and perform an operation (and there is no key set), like here using which(..), how would you do it without using 1:nrow(dt) in by? –  Arun Feb 15 '13 at 15:42

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