in my table, some cells are vectors instead of single value, i.e. the column is a list instead of vector:

dt1 <- data.table(
  colA=   c('A1','A2','A3'), 
  colB=list('B1',c('B2a','B2b'),'B3'),
  colC=   c('C1','C2','C3'), 
  colD=   c('D1','D2','D3')
)

dt1
#   colA    colB colC colD
#1:   A1      B1   C1   D1
#2:   A2 B2a,B2b   C2   D2
#3:   A3      B3   C3   D3 

I need to reshape it to a long format unlisting that column colB. So far I do it like this:

dt1[,.(colB=unlist(colB)),by=.(colA,colC,colD)]
#   colA colC colD colB
#1:   A1   C1   D1   B1
#2:   A2   C2   D2  B2a
#3:   A2   C2   D2  B2b
#4:   A3   C3   D3   B3

it does the job but I don't like that I have to indicate all other column names explicitly in by=. Is there better way to do this?
(I'm sure it's already answered elsewhere but I couldn't find it so far)

P.S. ideally I would like to manage without any external packages

  • 2
    What about dt1[, .(colB = unlist(colB)), by = setdiff(names(dt1), 'colB')]? – Jaap Jun 2 '17 at 20:23
  • oh, I forgot that I can just put a character vector to by=! Could you please paste it as an answer so that I can accept it? – Vasily A Jun 2 '17 at 20:35
  • Do you know why in case of setdiff() it does not require to be wrapped in eval()? When I use any custom function, even completely identical (like aliased mydiff <- setdiff;, this raises an error: dt1[, .(colB = unlist(colB)), by = mydiff(names(dt1), 'colB')] – Vasily A Jun 2 '17 at 20:35
  • Re your comment, the error explains. Wrap in c() and that code works fine. I've run into that error a few times, too. Presumably the added an exception for setdiff since it comes up often. – Frank Jun 2 '17 at 21:17
  • 1
    Linking this: github.com/Rdatatable/data.table/issues/2146 – MichaelChirico Jun 2 '17 at 21:22
up vote 6 down vote accepted

Promoting my comment to an answer. Using:

dt1[,.(colB = unlist(colB)), by = setdiff(names(dt1), 'colB')]

gives:

   colA colC colD colB
1:   A1   C1   D1   B1
2:   A2   C2   D2  B2a
3:   A2   C2   D2  B2b
4:   A3   C3   D3   B3

Or as an alternative (a slight variation of @Frank's proposal):

dt1[rep(dt1[,.I], lengths(colB))][, colB := unlist(dt1$colB)][]
  • Long time no see. I have a favor. Would you be able to explain how that setdiff part works? I get confused. I can see the logic of Frank's idea in his comment below. But, I am struggling to see yours. – jazzurro Jun 5 '17 at 6:26
  • @jazzurro Indeed long time no see! setdiff takes the general form setdiff(x, y) which returns all values of x that are not in y. In this case it means that all columnnames are returned except colB. See also this answer I posted a while ago. – Jaap Jun 5 '17 at 8:16
  • Hey I was thinking about this while I was at work today. So, essentially, you are grouping the data with all column names but colB, right? – jazzurro Jun 5 '17 at 10:28
  • @jazzurro yep, that's correct – Jaap Jun 5 '17 at 10:30
  • Got it. I initially got confused to see setdiff in by. Now it is all clear. Thanks for your help. Hope to see you around in the chat room. – jazzurro Jun 5 '17 at 10:35

I think @Jaap's is easiest, but here's another alternative to chew over:

#create ID column
dt1[ , ID := .I]

#unnest colB, keep ID column
dt_unnest = dt1[ , .(ID = rep(ID, lengths(colB)),
                     colB = unlist(colB))]
#merge
dt_unnest = dt_unnest[dt1[ , !'colB'], on = 'ID']
#    ID colB colA colC colD
# 1:  1   B1   A1   C1   D1
# 2:  2  B2a   A2   C2   D2
# 3:  2  B2b   A2   C2   D2
# 4:  3   B3   A3   C3   D3
  • yeah this looks less simple... But it has the advantage that it works correctly when there are other listed columns in the table. Thank you for the alternative! – Vasily A Jun 2 '17 at 21:11
  • @VasilyA only if the lengths of all list columns are identical... otherwise there'll need to be some sort of cross-join done – MichaelChirico Jun 2 '17 at 21:12
  • 5
    Alternately, dt1[rep(1:.N, lengths(colB))][, colB := unlist(dt1$colB)][]. I'd prefer this over by-group stuff (appearing in Jaap's and yours), since I expect that to slow things down. – Frank Jun 2 '17 at 21:19
  • awesome, this looks the most logical! – Vasily A Jun 2 '17 at 21:29
  • Following up @Frank's answer that maybe in the first step you want to exclude colB from the dt1[rep(...)] part if memory is an issue -- the list column can have arbitrary size and reping it could have a huge memory footprint. So something like colB_flat = unlist(dt1$colB); dt1[rep(1:.N, lengths(colB)), !'colB']; dt1[ , colB := colB_flat] will be more memory-efficient – MichaelChirico Sep 26 at 15:51

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