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test <- data.table(x=sample.int(10, 1000000, replace=TRUE))
y <- test$x
test[,.N, by=x] # fast
test[,.N, by=y] # extremely slow

Why it is slow on the second case?

It is even faster to do this:

test[,y:=y]
test[,.N, by=y]
test[,y:=NULL]

It looks as if it is poorly optimized?

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4  
Thanks for the report. For now, you can do: test[, .N, by=list(y)] or test[, .N, by="y"]. I'll try to find and fix the issue. Would be great if you can file a bug report here –  Arun Nov 14 '13 at 17:21
2  
@SimonO101 I don't really know why you think that "R level objects" and columns of a data.table are very different from each other - the main difference between those two is that they live in different environments. –  eddi Nov 14 '13 at 17:36
2  
@SimonO101, because we can :). Why shouldn't it be? It's just that the lazy evaluation doesn't seem to work with by=y because it's not read in as a character (by="y") or as a call (by=list(y)) and therefore the value of y gets substituted to "by", which runs another part of the code which was designed for quoted expressions. –  Arun Nov 14 '13 at 17:36
2  
I confess that I had the same reaction as Ari and Simon, possibly because my intuition is that grouping on non-data.table columns feels to me like a code pattern that I would actively discourage as confusing. (Maybe it's an explicit/implicit thing...) –  joran Nov 14 '13 at 17:42
2  
@joran, AFAIK the requirement is that the length of "by" should match the number of rows. This enables one to group on-the-fly by doing something like: DT <- data.table(x=c(1,1,2,2,3), y=1:5); DT[, sum(y), by=x%%2] (strictly speaking, x%%2 does not exist in DT). –  Arun Nov 14 '13 at 17:47

1 Answer 1

up vote 2 down vote accepted

Seems like I forgot to update this post.

This was fixed long back in commit #1039 of v1.8.11. From NEWS:

Fixed #5106 where DT[, .N, by=y] where y is a vector with length(y) = nrow(DT), but y is not a column in DT. Thanks to colinfang for reporting.

Testing on v1.8.11 commit 1187:

require(data.table)
test <- data.table(x=sample.int(10, 1000000, replace=TRUE))
y <- test$x

system.time(ans1 <- test[,.N, by=x])
#   user  system elapsed 
#  0.015   0.000   0.016 

system.time(ans2 <- test[,.N, by=y])
#   user  system elapsed 
#  0.015   0.000   0.015 

setnames(ans2, "y", "x")
identical(ans1, ans2) # [1] TRUE
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