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Say I have a list, like so:

my.list <- list()

for (i in 1:100)
  {
  my.list[[i]] <- list(location = sample(paste0("Location", 1:5), 1, replace=T),
                       val1 = runif(100),
                       val2 = runif(30))
  }

Now I split it by location

loc <- sapply(my.list, function(x){x$location})
my.list.split <- split(my.list, loc)

Is there a way to associate each element of my.list.split to the original my.list, i.e., finding its ID in my.list?

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This would be really easy if you used data frames rather than just lists. Is there a reason everything has to be a list? –  joran Nov 25 '13 at 17:13
    
@joran: yes, I actually have a few arrays in there, so I cannot really use a data frame (modified the example accordingly). –  nico Nov 25 '13 at 17:15

3 Answers 3

up vote 3 down vote accepted

Here's one way to find the IDs:

IDs <- seq_along(my.list) # generate a vector of IDs

IDs.split <- split(IDs, loc) # split the IDs along loc

This returns a list which includes vectors of IDs for each location.

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I knew there was an easy solution! –  nico Nov 25 '13 at 17:33

If you give my.list some names, then your my.list.split will also have names which you can use to refer back, if necessary.

# Syntactically different, but functionally equivalent way of creating the list.
my.list<- lapply(1:100,function(x) list(location = sample(paste0("Location", 1:5), 1, replace=T),
                       val1 = runif(100),
                       val2 = runif(30)))
names(my.list)<-paste0('id_',seq_along(my.list)) # Added 
loc <- sapply(my.list, function(x){x$location})
my.list.split <- split(my.list, loc)

So, now everything has an unique id:

my.list.split[[1]]
# $id_11
# $id_11$location
# [1] "Location1"
# 
# $id_11$val1
#   [1] 0.997154684 0.348063634 0.373797808 0.569167679 0.417461443 0.799423830 0.147882721
#   [8] 0.489438012 0.292867337 0.072622654 0.583932815 0.060452664 0.083562011 0.613114462
# ....    
# $id_11$val2
#  [1] 0.68983774 0.41056046 0.18620312 0.61078253 0.85947881 0.50736945 0.01362270 0.70022800
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This is also a good idea, although I guess @Sven solution is easier to manage (at least for my specific task). –  nico Nov 25 '13 at 17:35

Another way if for some reason you don't want to set IDs first:

match(unlist(my.list.split, FALSE), my.list)

You can then set the names with names() or whatever if that's what you're trying to do.


split() divides your list into a nested list according to loc. unlist() with recursive set to FALSE will remove the items from my.list.split so that they are in the same shape as my.list. Then all you have to do is match() them to see which items refer to what indices in the original object.

Proof that the match is correct (should return TRUE unless I've made a horrible mistake):

ul <- unlist(my.list.split, FALSE)
m <- match(ul, my.list)
identical(my.list[m], unname(ul))
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