Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

When applied individually to each element of the vector, my function gives a different result than using sapply. It's driving me nuts!

Item I'm using: this (simplified) list of arguments another function was called with:

f <- as.list(match.call()[-1])
> f
$ampm
c(1, 4)

To replicate this you can run the following:

foo <- function(ampm) {as.list(match.call()[-1])}
f <- foo(ampm = c(1,4))

Here is my function. It just strips the 'c(...)' from a string.

stripConcat <- function(string) {
    sub(')','',sub('c(','',string,fixed=TRUE),fixed=TRUE)
}

When applied alone it works as so, which is what I want:

> stripConcat(f)
[1] "1, 4"

But when used with sapply, it gives something totally different, which I do NOT want:

> sapply(f, stripConcat)
 ampm
[1,] "c" 
[2,] "1" 
[3,] "4" 

Lapply doesn't work either:

> lapply(f, stripConcat)
$ampm
[1] "c" "1" "4"

And neither do any of the other apply functions. This is driving me nuts--I thought lapply and sapply were supposed to be identical to repeated applications to the elements of the list or vector!

share|improve this question
    
> dput(f) structure(list(ampm = c(1, 4)), .Names = "ampm") –  Tiff Brender May 20 '13 at 20:58
2  
The issue here (which I don't fully understand) is the difference between as.character(f) and as.character(f[[1]]). Try sapply(as.character(f),stripConcat). –  joran May 20 '13 at 21:06
    
This almost gets there! It gives the right answer, but removes the element's name: > sapply(as.character(f), stripConcat) c(1, 4) "1, 4" whereas previously the "1,4" element was named "ampm". –  Tiff Brender May 20 '13 at 21:12
    
I requested some help from more experienced experts in the R chat room. If you're patient, I'm certain someone will pop up with an explanation and a possible work around within a few hours at least. In the meantime, I'm going to delete several of my preceding comments, as my edit makes them unnecessary. –  joran May 20 '13 at 21:15
    
Thanks for all your help joran! –  Tiff Brender May 20 '13 at 21:16

1 Answer 1

up vote 2 down vote accepted

The discrepency you are seeing, I believe, is simply due to how as.character coerces elements of a list.

x2 <- list(1:3, quote(c(1, 5)))
as.character(x2)
[1] "1:3"     "c(1, 5)"

lapply(x2, as.character)
[[1]]
[1] "1" "2" "3"

[[2]]
[1] "c" "1" "5"

f is not a call, but a list whose first element is a call.

is(f)
[1] "list"   "vector"
as.character(f)
[1] "c(1, 4)"

> is(f[[1]])
[1] "call"     "language"
> as.character(f[[1]])
[1] "c" "1" "4"

sub attempts to coerce anything that is not a character into a chracter.
When you pass sub a list, it calls as.character on the list.
When you pass it a call, it calls as.character on that call.


It looks like for your stripConcat function, you would prefer a list as input.

In that case, I would recommend the following for that function:

stripConcat <- function(string) {
    if (!is.list(string))
      string <- list(string)
    sub(')','',sub('c(','',string,fixed=TRUE),fixed=TRUE)
}

Note, however, that string is a misnomer, since it doesn't appear that you are ever planning to pass stripConcat a string. (not that this is an issue, of course)

share|improve this answer
1  
you should probably add that assuming that's correct input, the fix is to call deparse inside OP's function –  eddi May 20 '13 at 21:40
    
@eddi, I was just adding a point about fixing the function, but I wouldn't go with deparse. –  Ricardo Saporta May 20 '13 at 21:43
    
Thank you this works perfectly now! –  Tiff Brender May 20 '13 at 21:51
    
@RicardoSaporta - why? –  eddi May 20 '13 at 22:59
    
@eddi, sorry I missed your comment about "assuming the correct input" - in which case, yep makes sense. I meant that the main issue from the OP is passing the wrong kind of input and hence, I would check for the input within the function –  Ricardo Saporta May 21 '13 at 19:55

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.