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require(plyr)

list <- list(a=c(1:3),
             b=c(1:5),
             c=c(1:8),
             d=c(1:10))

llply(list,function(x)(subset(x,subset=(x>5))))

The above returns:

$a
integer(0)

$b
integer(0)

$c
[1] 6 7 8

$d
[1]  6  7  8  9 10

How to return a list only with the existing values, here $c and $d?

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2 Answers 2

up vote 0 down vote accepted

You really shouldn't call a list variable "list" as it's a function name. If it's called L then:

L[lapply(L,length)>0]

this should give a nonempty list

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You don't need plyr for this:

out <- lapply(list, function(x) x[ x > 5 ] )
out[ sapply(out, length) > 0 ]

Result:

$c
[1] 6 7 8

$d
[1]  6  7  8  9 10
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1  
Arguably don't use subset either... lapply( list , function(x) x[ x > 5 ] ) –  Simon O'Hanlon Nov 27 '13 at 10:42
    
@SimonO101 Yes, definitely. –  Thomas Nov 27 '13 at 11:21

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