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I was going through some examples in hadley's guide to functionals, and came across an unexpected problem.

Suppose I have a list of model objects,

x=1:3;y=3:1; bah <- list(lm(x~y),lm(y~x))

and want to extract something from each (as suggested in hadley's question about a list called "trials"). I was expecting one of these to work:

lapply(bah,`$`,i='call') # or...
lapply(bah,`$`,call)

However, these return nulls. It seems like I'm not misusing the $ function, as these things work:

`$`(bah[[1]],i='call')
`$`(bah[[1]],call)

Anyway, I'm just doing this as an exercise and am curious where my mistake is. I know I could use an anonymous function, but think there must be a way to use syntax similar to my initial non-solution. I've looked through the places $ is mentioned in ?Extract, but didn't see any obvious explanation.

I just realized that this works:

lapply(bah,`[[`,i='call')

and this

lapply(bah,function(x)`$`(x,call))

Maybe this just comes down to some lapply voodoo that demands anonymous functions where none should be needed? I feel like I've heard that somewhere on SO before.

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No voodoo. The "$" function does not evaluate its arguments, whereas "[[" does. –  BondedDust Aug 13 '13 at 18:15
3  
@DWin - can you please expound, I don't understand what you mean by that –  eddi Aug 13 '13 at 18:23
2  
You can do either ll[[varname]] or ll[['varname']] and they mean different things. The first looks up the value of varname. With $ you only get the second option, since it will never "reach out" and evaluate what character value varname might have had in the enclosing environment. –  BondedDust Aug 13 '13 at 18:35
2  
@eddi: the "Note" in the Details seciton of ?lapply looks on point for that question. –  BondedDust Aug 13 '13 at 19:08
1  
@DWin Ah, okay. That answers the question, I think. $ is a primitive, so lapply misbehaves. Thanks –  Frank Aug 13 '13 at 19:17

1 Answer 1

up vote 3 down vote accepted

This is documented in ?lapply, in the "Note" section (emphasis mine):

For historical reasons, the calls created by lapply are unevaluated, and code has been written (e.g. bquote) that relies on this. This means that the recorded call is always of the form FUN(X[[0L]], ...), with 0L replaced by the current integer index. This is not normally a problem, but it can be if FUN uses sys.call or match.call or if it is a primitive function that makes use of the call. This means that it is often safer to call primitive functions with a wrapper, so that e.g. lapply(ll, function(x) is.numeric(x)) is required in R 2.7.1 to ensure that method dispatch for is.numeric occurs correctly.

share|improve this answer
    
I'm still a bit confused - what call for the $-function does this lapply(bah, `$`, 'call') result in? It's apparently not `$`(bah[[1L]], 'call') which is how I seem to be reading that note (if you replace ... with 'call' and FUN with `$`). –  eddi Aug 13 '13 at 19:23
4  
`$`(bah[[1L]], ...) –  Peyton Aug 13 '13 at 19:29
    
@Peyton ahhh, I see, thanks! –  eddi Aug 13 '13 at 19:30

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