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If I have the following:

a<-data.table(id=rep(letters[1:4],2), var=c(1,2,1:6), key="id,var")

I can replicate the "usual" a[a$id=="a" & a$var==1,] with

> a[.("a",1)]
   id var
1:  a   1

but what about a[a$var==1,]? If I change "a" with the whole id column I don't get what I'd expect:

> a[.(id,1)]
   id var
1:  a   1
2:  a   1
3:  b   1
4:  b   1
5:  c   1
6:  c   1
7:  d   1
8:  d   1

thanks in advance.

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marked as duplicate by GSee, mnel, samayo, john.k.doe, Rob Mensching May 27 '13 at 5:43

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1  
Anything wrong with using a[var == 1,]? –  flodel May 26 '13 at 17:43
    
@flodel it's SLOW... –  nigmastar May 26 '13 at 18:03
    

1 Answer 1

up vote 2 down vote accepted

Try this:

> a[ .(unique(id), 1),, nomatch = 0 ]
   id var
1:  a   1
2:  c   1

ADDED. We could avoid having to scan id by making it a factor and using the levels:

> a<-data.table(id=factor(rep(letters[1:4],2)), var=c(1,2,1:6), key="id,var")
> a[ .(levels(id), 1),, nomatch = 0 ]
   id var
1:  a   1
2:  c   1
share|improve this answer
    
it works, thanks. I guess there isn't a more compact way to do that, right? –  nigmastar May 26 '13 at 18:07
1  
Its no more compact but I have added a potentially more efficient alternative –  G. Grothendieck May 26 '13 at 18:11
    
I see, yeah, I'll probablt be much faster. Thanks again –  nigmastar May 26 '13 at 18:19

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