110
mylist <- list(NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, 
    123, NULL, 456)

> mylist
[[1]]
NULL

[[2]]
NULL

[[3]]
NULL

[[4]]
NULL

[[5]]
NULL

[[6]]
NULL

[[7]]
NULL

[[8]]
NULL

[[9]]
NULL

[[10]]
NULL

[[11]]
[1] 123

[[12]]
NULL

[[13]]
[1] 456

My list has 13 elements, 11 of which are NULL. I would like to remove them, but preserve the indices of the elements that are nonempty.

mylist2 = mylist[-which(sapply(mylist, is.null))]
> mylist2
[[1]]
[1] 123

[[2]]
[1] 456

This removes the NULL elements just fine, but I don't want the nonempty elements to be reindexed, i.e, I want mylist2 to look something like this, where the indices of the nonempty entries are preserved.

> mylist2
[[11]]
[1] 123

[[13]]
[1] 456
2
  • 1
    Someone may find a way, but I think you are falling into the "Why is it printing that way" trap. Those index numbers are not the names of your list elements. There are no names. Check names(mylist). So they are just helpers showing where in the list the elements are. That's why you're having trouble telling R to return the 11th position of a list with only two elements. You can try naming the the list as the answer below.
    – Pierre L
    Oct 7, 2015 at 23:49
  • 5
    IMO this answer should be updated to @Hayward-Oblad's purrr solution below. Either list %>% discard(is.null) or list %>% discard(~ length(.x) == 0).
    – geotheory
    Dec 6, 2019 at 13:43

8 Answers 8

121

The closest you'll be able to get is to first name the list elements and then remove the NULLs.

names(x) <- seq_along(x)

## Using some higher-order convenience functions
Filter(Negate(is.null), x)
# $`11`
# [1] 123
# 
# $`13`
# [1] 456

# Or, using a slightly more standard R idiom
x[sapply(x, is.null)] <- NULL
x
# $`11`
# [1] 123
# 
# $`13`
# [1] 456
2
  • 20
    or x <- x[!sapply(x,is.null)]
    – xm1
    Jul 11, 2020 at 0:19
  • 2
    @xm1's answer is better since the right hand side expression returns the list without the NULLs hence can be written into a convenience function like this remove_null_lst <- function(x) x[!sapply(x, is.null)] Apr 1, 2021 at 22:01
60

Simply use mylist[lengths(mylist) != 0].

Function lengths() was introduced in R 3.2.0 (April 2015).

1
  • 1
    Users stuck with even older R versions can use vapply(mylist, length, 1L), it's ever-so-slightly vaster (and maybe harder to read to the untrained eye) Jul 27, 2019 at 11:31
38

The purrr package, included in Tidyverse, has elegant and fast functions for working with lists:

require(tidyverse)

# this works
compact(mylist)

# or this
mylist %>% discard(is.null)

# or this
# pipe "my_list" data object into function "keep()", make lambda function inside "keep()" to return TRUE FALSE.
mylist %>% keep( ~ !is.null(.) )

All above options are from Purrr. Output is:

[[1]] 
[1] 123

[[2]] 
[1] 456

Note: compact() was in plyr, but dplyr superseded plyr, and compact() stayed around but moved to purrr. Anyway, all the functions are within the parent package tidyverse.



Here's a link to the Purrr cheat sheet download:

https://rstudio.com/resources/cheatsheets/

Or to view the Purrr cheatsheet directly in a browser:

https://evoldyn.gitlab.io/evomics-2018/ref-sheets/R_purrr.pdf

29

There's a function that automatically removes all the null entries of a list, and if the list is named, it maintains the names of the non-null entries.

This function is called compact from the package plyr.

l <- list( NULL, NULL, foo, bar)
names(l) <- c( "one", "two", "three", "four" )

plyr::compact(l)

If you want to preserve the indexes of the non-null entries, you can name the list as it is done in the post before and then compact your list:

names(l) <- seq_along(l)
plyr::compact(l)
1
  • 12
    For completeness: purrr::compact() seems to do the same job.
    – Gabi
    Mar 13, 2018 at 0:55
6

If you want to keep the names you can do

a <- list(NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, NULL, 
          123, NULL, 456)
non_null_names <- which(!sapply(a, is.null))
a <- a[non_null_names]
names(a) <- non_null_names
a

You can then access the elements like so

a[['11']]
num <- 11
a[[as.character(num)]]
a[[as.character(11)]]
a$`11`

You can't get them in the neat [[11]], [[13]] notation, though, because those represent numerical indices.

1
  • This is the closest to what you want that can actually be done though :) Oct 7, 2015 at 23:50
6

This solution works with nested list as well

rlist::list.clean(myNestedlist ,recursive = T)
1
  • Perfect! I was looking for this.
    – Nip
    Apr 24, 2021 at 21:13
5

Here it is with convenient chaining notation

library(magrittr)

mylist %>%
  setNames(seq_along(.)) %>%
  Filter(. %>% is.null %>% `!`, .)
2
  • 7
    Filter(Negate(is.null), setNames(L,seq_along(L))) is pretty easy to read. Oct 7, 2015 at 23:56
  • Ok, fixed the issue. Negate != !
    – bramtayl
    Oct 8, 2015 at 4:27
4

here's a very simple way to do it using only base R functions:

names(mylist) <- 1:length(mylist)
mylist2 <- mylist[which(!sapply(mylist, is.null))]

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