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I have a list which contains list entries, and I need to transpose the structure. The original structure is rectangular, but the names in the sub-lists do not match.

Here is an example:

ax <- data.frame(a=1,x=2)
ay <- data.frame(a=3,y=4)
bw <- data.frame(b=5,w=6)
bz <- data.frame(b=7,z=8)
before <- list(  a=list(x=ax, y=ay),   b=list(w=bw, z=bz))

What I want:

after  <- list(w.x=list(a=ax, b=bw), y.z=list(a=ay, b=bz))

I do not care about the names of the resultant list (at any level).

Clearly this can be done explicitly:

after <- list(x.w=list(a=before$a$x, b=before$b$w), y.z=list(a=before$a$y, b=before$b$z))

but this is ugly and only works for a 2x2 structure. What's the idiomatic way of doing this?

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2 Answers

up vote 6 down vote accepted

The following piece of code will create a list with i-th element of every list in before:

lapply(before, "[[", i)

Now you just have to do

n <- length(before[[1]]) # assuming all lists in before have the same length
lapply(1:n, function(i) lapply(before, "[[", i))

and it should give you what you want. It's not very efficient (travels every list many times), and you can probably make it more efficient by keeping pointers to current list elements, so please decide whether this is good enough for you.

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I'd replace 1:n with seq_along(before[[1]]) but otherwise, this will work fine. The lists may not always be 2x2, but they won't be big (the data frame are large, however). –  Matthew Lundberg Apr 23 '13 at 21:38
    
Just out of curiosity - why do you like the seq_along version better? Is it just the expressiveness? (I understand that performance-wise, it's the same). –  Victor K. Apr 23 '13 at 21:41
2  
That, and it doesn't return wrong results if the length is 0. –  Matthew Lundberg Apr 23 '13 at 21:44
    
Length 0 is a great point, haven't thought about that before. –  Victor K. Apr 23 '13 at 21:46
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Here's a different idea - use the fact that data.table can store data.frame's (in fact, given your question, maybe you don't even need to work with lists of lists and could just work with data.table's):

library(data.table)

dt = as.data.table(before)
after = as.list(data.table(t(dt)))
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This is an interesting approach. I've done some investigating on data.table, but haven't used it nearly enough. –  Matthew Lundberg Apr 23 '13 at 22:30
4  
This doesn't actually require data.table as.list(data.frame(do.call(rbind, before))) will work as well. –  mnel Apr 24 '13 at 1:18
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