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When subsetting a data.frame inside of a list, I get vectors instead of a data.frames (see the example below). How to avoid this and get a data.frames?

l <- list(data.frame(a=c(1,2,3)), data.frame(b=c(4,5,6,5)), data.frame(c=c(3,4,5,6)))
names(l) <- c("A", "B", "C")
l
lapply(l, function(x) x[2:nrow(x), ])

output

> l <- list(data.frame(a=c(1,2,3)), data.frame(b=c(4,5,6,5)), data.frame(c=c(3,4,5,6)))
> names(l) <- c("A", "B", "C")
> l
$A
  a
1 1
2 2
3 3

$B
  b
1 4
2 5
3 6
4 5

$C
  c
1 3
2 4
3 5
4 6

> lapply(l, function(x) x[2:nrow(x), ])
$A
[1] 2 3

$B
[1] 5 6 5

$C
[1] 4 5 6
share|improve this question
    
lapply returns a list not a vector as you claim. – Dirk Eddelbuettel Aug 4 '11 at 13:10
    
Yes, I know that, I mean a vectors inside of a list. – jrara Aug 4 '11 at 13:12
    
@Dirk: Technically a list is a vector! ;-) – Tommy Aug 4 '11 at 14:07
1  
@Tommy: Is that true in R? I thought a list was a fundamental data type just like a vector.... – Ari B. Friedman Aug 4 '11 at 19:40
    
is.vector(list()) # TRUE ...but typically we mean an atomic vector when we say vector. is.atomic(list()) # FALSE – Tommy Aug 4 '11 at 21:44
up vote 7 down vote accepted

You need the ,drop=FALSE argument

> res <- lapply(l, function(x) x[2:nrow(x),, drop=FALSE])
> sapply(res,class)
           A            B            C 
"data.frame" "data.frame" "data.frame" 
> res
$A
  a
2 2
3 3

$B
  b
2 5
3 6
4 5

$C
  c
2 4
3 5
4 6
share|improve this answer
    
Perfect, many thanks! – jrara Aug 4 '11 at 13:21
2  
Yes, nothing to do with lapply. – hadley Aug 5 '11 at 1:22

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