38

I've been doing some work with some large, complex lists lately and I've seen some behaviour which was surprising (to me, at least), mainly to do with assigning names to a list. A simple example:

Fil <- list(
a = list(A=seq(1, 5, 1), B=rnorm(5), C=runif(5)), 
b = list(A="Cat", B=c("Dog", "Bird"), C=list("Squirrel", "Cheetah", "Lion")),
c = list(A=rep(TRUE, 5), B=rep(FALSE, 5), C=rep(NA, 5)))

filList <- list()

for(i in 1:3){
  filList[i] <- Fil[i]
  names(filList)[i] <- names(Fil[i])
}
identical(Fil,filList)
[1] TRUE

but:

for(i in 1:3){
  filList[i] <- Fil[i]
  names(filList[i]) <- names(Fil[i])
}
identical(Fil,filList)
[1] FALSE

I think the main reason it confuses me is because the form of the left-hand side of first names line in the first for loop needs to be different from that of the right-hand side to work; I would have thought that these should be the same. Could anybody please explain this to me?

3
  • 3
    I think of it like this, although the details are likely incorrect: when you run names(filList[1]) you're essentially creating a new one element list within the environment created by the names function. Then you assign the new name, the function finishes running and your new list object is destroyed. However, when you run names(filList)[1] you are modifying the names of the filList object that exists in your global environment.
    – dayne
    Jul 28, 2016 at 17:38
  • 3
    Btw, you can use the same form on both sides, like names(x)[1] = names(y)[1]
    – Frank
    Jul 28, 2016 at 17:39
  • Thanks, dayne and Frank, for the explanations. Jul 28, 2016 at 17:48

1 Answer 1

59

The first case is the correct usage. In the second case you are sending filList[i] to names<- which is only exists as a temporary subsetted object.

Alternatively, you could just do everything outside the loop with:

names(filList) <- names(Fil)
1
  • @dayne Yes, it is a separate copy which isn't bound to a variable.
    – James
    Jul 28, 2016 at 17:45

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