331

I have a list and I want to remove a single element from it. How can I do this?

I've tried looking up what I think the obvious names for this function would be in the reference manual and I haven't found anything appropriate.

2
  • Depends do you want to remove it by value e.g. "the value 5", or by index/indices "the element at index 5" or "at indices c(5:6,10)? If you want to remove by value and there are duplicates, then do you want to remove only the duplicates, first or last occurrence, or all? Is it guaranteed that the list contains your element/index? Do we need to handle the case where the list is empty? Do we need to ensure NA is passed (/excluded)? Is the list guaranteed to be flat or can it be nested? How many laters deep?
    – smci
    Aug 23, 2018 at 0:37
  • 3
    setdiff(myList,elementToRemove)
    – JStrahl
    Sep 19, 2018 at 13:48

18 Answers 18

264

If you don't want to modify the list in-place (e.g. for passing the list with an element removed to a function), you can use indexing: negative indices mean "don't include this element".

x <- list("a", "b", "c", "d", "e"); # example list

x[-2];       # without 2nd element

x[-c(2, 3)]; # without 2nd and 3rd

Also, logical index vectors are useful:

x[x != "b"]; # without elements that are "b"

This works with dataframes, too:

df <- data.frame(number = 1:5, name = letters[1:5])

df[df$name != "b", ];     # rows without "b"

df[df$number %% 2 == 1, ] # rows with odd numbers only
2
  • 7
    Your logical index only works if you have that single item "b" in a list element. You cannot remove , say, x$b that way, nor can you remove "b" from a list element x[[2]] = c("b","k") . Jan 31, 2018 at 13:22
  • Regarding single vs multiple items: you could use %in% for testing against multiple items. I’m not sure what you mean by “cannot remove x$b” – do you mean removing the whole column b? Aug 17, 2018 at 9:27
244

I don't know R at all, but a bit of creative googling led me here: http://tolstoy.newcastle.edu.au/R/help/05/04/1919.html

The key quote from there:

I do not find explicit documentation for R on how to remove elements from lists, but trial and error tells me

myList[[5]] <- NULL

will remove the 5th element and then "close up" the hole caused by deletion of that element. That suffles the index values, So I have to be careful in dropping elements. I must work from the back of the list to the front.

A response to that post later in the thread states:

For deleting an element of a list, see R FAQ 7.1

And the relevant section of the R FAQ says:

... Do not set x[i] or x[[i]] to NULL, because this will remove the corresponding component from the list.

Which seems to tell you (in a somewhat backwards way) how to remove an element.

Hope that helps, or at least leads you in the right direction.

4
  • 7
    Thanks, mylist[i] <- NULL is exactly the way to do it. Mar 16, 2009 at 22:15
  • 47
    This did not work for me. I get: Error in list[length(list)] <- NULL : replacement has length zero Oct 5, 2011 at 2:39
  • 4
    @Aleksandr Levchuck 's post showed me that I was actually dealing with a vector and needed to create a new object Oct 5, 2011 at 2:43
  • This is a great shortcut, but it seems to me like @Kim's answer using within would be the "right" way to remove list elements, since it allows the use of character strings to identify list elements, can remove multiple elements simultaneously, and does not need to be done in place. Am I missing something (other than the fact that the OP's question was about removing a single element)? Thanks.
    – Josh
    May 20, 2021 at 21:17
43

I would like to add that if it's a named list you can simply use within.

l <- list(a = 1, b = 2)    
> within(l, rm(a))
$b
[1] 2

So you can overwrite the original list

l <- within(l, rm(a)) 

to remove element named a from list l.

2
  • 3
    To do multiple within(l, rm(a, b))
    – Vlad
    Nov 26, 2019 at 2:36
  • 1
    To do multiple from a character vector: x <- c("a","b"); within(l,rm(list=x))
    – José
    Apr 8, 2021 at 20:38
39

Here is how the remove the last element of a list in R:

x <- list("a", "b", "c", "d", "e")
x[length(x)] <- NULL

If x might be a vector then you would need to create a new object:

x <- c("a", "b", "c", "d", "e")
x <- x[-length(x)]
  • Work for lists and vectors
2
  • @krlmlr: on the contrary, this solution is more general than Florian's answer, as it is polymorphic in the type of the collection.
    – Dan Barowy
    Aug 5, 2014 at 15:23
  • @DanBarowy: I was wrong: This seems to be a synthesis of Chad's answer (the accepted one) and Florian's... A good brief summary, though.
    – krlmlr
    Aug 5, 2014 at 18:12
23

Removing Null elements from a list in single line :

x=x[-(which(sapply(x,is.null),arr.ind=TRUE))]

Cheers

2
  • 3
    This code breaks when x is an empty list. Use compact from plyr for this task instead. Jan 8, 2014 at 9:16
  • Also if there are no nulls in the list, -(which(sapply(x,is.null),arr.ind=TRUE)) returns named integer(0) which will drop that row entirely. Sep 29, 2015 at 18:42
17

If you have a named list and want to remove a specific element you can try:

lst <- list(a = 1:4, b = 4:8, c = 8:10)

if("b" %in% names(lst)) lst <- lst[ - which(names(lst) == "b")]

This will make a list lst with elements a, b, c. The second line removes element b after it checks that it exists (to avoid the problem @hjv mentioned).

or better:

lst$b <- NULL

This way it is not a problem to try to delete a non-existent element (e.g. lst$g <- NULL)

13

Use - (Negative sign) along with position of element, example if 3rd element is to be removed use it as your_list[-3]

Input

my_list <- list(a = 3, b = 3, c = 4, d = "Hello", e = NA)
my_list
# $`a`
# [1] 3

# $b
# [1] 3

# $c
# [1] 4

# $d
# [1] "Hello"

# $e
# [1] NA

Remove single element from list

 my_list[-3]
 # $`a`
 # [1] 3

 # $b
 # [1] 3

 # $d
 # [1] "Hello"

 # $e
 [1] NA

Remove multiple elements from list

 my_list[c(-1,-3,-2)]
 # $`d`
 # [1] "Hello"

 # $e
 # [1] NA

 my_list[c(-3:-5)]
 # $`a`
 # [1] 3

 # $b
 # [1] 3

 my_list[-seq(1:2)]
 # $`c`
 # [1] 4

 # $d
 # [1] "Hello"

 # $e
 # [1] NA
10

There's the rlist package (http://cran.r-project.org/web/packages/rlist/index.html) to deal with various kinds of list operations.

Example (http://cran.r-project.org/web/packages/rlist/vignettes/Filtering.html):

library(rlist)
devs <- 
  list(
    p1=list(name="Ken",age=24,
      interest=c("reading","music","movies"),
      lang=list(r=2,csharp=4,python=3)),
    p2=list(name="James",age=25,
      interest=c("sports","music"),
      lang=list(r=3,java=2,cpp=5)),
    p3=list(name="Penny",age=24,
      interest=c("movies","reading"),
      lang=list(r=1,cpp=4,python=2)))

list.remove(devs, c("p1","p2"))

Results in:

# $p3
# $p3$name
# [1] "Penny"
# 
# $p3$age
# [1] 24
# 
# $p3$interest
# [1] "movies"  "reading"
# 
# $p3$lang
# $p3$lang$r
# [1] 1
# 
# $p3$lang$cpp
# [1] 4
# 
# $p3$lang$python
# [1] 2
1
  • how could one remove the python or lang items in this example?
    – Arthur Yip
    Feb 20, 2019 at 1:03
9

Don't know if you still need an answer to this but I found from my limited (3 weeks worth of self-teaching R) experience with R that, using the NULL assignment is actually wrong or sub-optimal especially if you're dynamically updating a list in something like a for-loop.

To be more precise, using

myList[[5]] <- NULL

will throw the error

myList[[5]] <- NULL : replacement has length zero

or

more elements supplied than there are to replace

What I found to work more consistently is

myList <- myList[[-5]]
1
  • 2
    Good answer! However, I think the [[-5]] should be single square brackets, otherwise you are deselecting only the contents of that list element, not the element itself. Well, at least using double square brackets gives me this error: "attempt to select more than one element". What works for me was then: myList <- myList[-5].
    – n1k31t4
    Jan 5, 2016 at 18:02
6

Just wanted to quickly add (because I didn't see it in any of the answers) that, for a named list, you can also do l["name"] <- NULL. For example:

l <- list(a = 1, b = 2, cc = 3)
l['b'] <- NULL
3

In the case of named lists I find those helper functions useful

member <- function(list,names){
    ## return the elements of the list with the input names
    member..names <- names(list)
    index <- which(member..names %in% names)
    list[index]    
}


exclude <- function(list,names){
     ## return the elements of the list not belonging to names
     member..names <- names(list)
     index <- which(!(member..names %in% names))
    list[index]    
}  
aa <- structure(list(a = 1:10, b = 4:5, fruits = c("apple", "orange"
)), .Names = c("a", "b", "fruits"))

> aa
## $a
##  [1]  1  2  3  4  5  6  7  8  9 10

## $b
## [1] 4 5

## $fruits
## [1] "apple"  "orange"


> member(aa,"fruits")
## $fruits
## [1] "apple"  "orange"


> exclude(aa,"fruits")
## $a
##  [1]  1  2  3  4  5  6  7  8  9 10

## $b
## [1] 4 5
2

You can also negatively index from a list using the extract function of the magrittr package to remove a list item.

a <- seq(1,5)
b <- seq(2,6)
c <- seq(3,7)
l <- list(a,b,c)

library(magrittr)

extract(l,-1) #simple one-function method
[[1]]
[1] 2 3 4 5 6

[[2]]
[1] 3 4 5 6 7
1

Using lapply and grep:

lst <- list(a = 1:4, b = 4:8, c = 8:10)
# say you want to remove a and c
toremove<-c("a","c")
lstnew<-lst[-unlist(lapply(toremove, function(x) grep(x, names(lst)) ) ) ]
#or
pattern<-"a|c"
lstnew<-lst[-grep(pattern, names(lst))]
0

Here is a simple solution that can be done using base R. It removes the number 5 from the original list of numbers. You can use the same method to remove whatever element you want from a list.

#the original list
original_list = c(1:10)

#the list element to remove
remove = 5

#the new list (which will not contain whatever the `remove` variable equals)
new_list = c()

#go through all the elements in the list and add them to the new list if they don't equal the `remove` variable
counter = 1
for (n in original_list){
  if (n != ){
    new_list[[counter]] = n
    counter = counter + 1
  }
}

The new_list variable no longer contains 5.

new_list
# [1]  1  2  3  4  6  7  8  9 10
0

There are a few options in the purrr package that haven't been mentioned:

pluck and assign_in work well with nested values and you can access it using a combination of names and/or indices:

library(purrr)

l <- list("a" = 1:2, "b" = 3:4, "d" = list("e" = 5:6, "f" = 7:8))

# select values (by name and/or index)
all.equal(pluck(l, "d", "e"), pluck(l, 3, "e"), pluck(l, 3, 1))
[1] TRUE

# or if element location stored in a vector use !!!
pluck(l, !!! as.list(c("d", "e")))
[1] 5 6

# remove values (modifies in place)
pluck(l, "d", "e") <- NULL

# assign_in to remove values with name and/or index (does not modify in place)
assign_in(l, list("d", 1), NULL)
$a
[1] 1 2

$b
[1] 3 4

$d
$d$f
[1] 7 8

Or you can remove values using modify_list by assigning zap() or NULL:

all.equal(list_modify(l, a = zap()), list_modify(l, a = NULL))
[1] TRUE

You can remove or keep elements using a predicate function with discard and keep:

# remove numeric elements
discard(l, is.numeric)
$d
$d$e
[1] 5 6

$d$f
[1] 7 8

# keep numeric elements
keep(l, is.numeric)
$a
[1] 1 2

$b
[1] 3 4
4
  • pluck(l, "d", "e") <- NULL worked for me. I tried something like names(list(a = 1, b = 2, c = 3)[c("b", "c")]) to get rid of a, but in my shiny app i got NA, b, c. Your pluck statement actually deleted the a value. Thanks!
    – captinbo
    Mar 28 at 23:24
  • @captinbo I am not clear what you're trying to do. names(list(a = 1, b = 2, c = 3)[c("b", "c")]) returns "b" "c". If you're trying to remove a then you can assign it NULL, or select the other elements that are not a.
    – LMc
    Mar 29 at 14:57
  • yes, it returns "b", "c", which is what I'm trying to do. But oddly, in my R Shiny app it was returning "NA", "b", "c" during runtime. I spent an hour on that bug trying different ways to subset my list to the elements I wanted, but only your pluck method worked. It was very odd that I was getting a list with the name NA in it.
    – captinbo
    Mar 29 at 22:56
  • @captinbo this would be a good SO question if you could make a small reproducible example and post it.
    – LMc
    Mar 30 at 16:39
-1

How about this? Again, using indices

> m <- c(1:5)
> m
[1] 1 2 3 4 5

> m[1:length(m)-1]
[1] 1 2 3 4

or

> m[-(length(m))]
[1] 1 2 3 4
2
  • 1
    m is a vector, not a list
    – C8H10N4O2
    Jul 1, 2015 at 17:15
  • 1
    The method does work for lists, but OP is lucky and probably wants some more parentheses: m[1:(length(m) - 1)] Jul 7, 2015 at 19:40
-1

You can use which.

x<-c(1:5)
x
#[1] 1 2 3 4 5
x<-x[-which(x==4)]
x
#[1] 1 2 3 5
0
-1

if you'd like to avoid numeric indices, you can use

a <- setdiff(names(a),c("name1", ..., "namen"))

to delete names namea...namen from a. this works for lists

> l <- list(a=1,b=2)
> l[setdiff(names(l),"a")]
$b
[1] 2

as well as for vectors

> v <- c(a=1,b=2)
> v[setdiff(names(v),"a")]
b 
2

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