20

Let say I have a list [1, 2, 3, 4]

How can I get all elements from this list except last? So, I'll have [1, 2, 3]

30

Use Enum.drop/2 like this:

list = [1, 2, 3, 4]
Enum.drop list, -1      # [1, 2, 3]
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19

My solution (I think it's not a clean, but it works!)

a = [1, 2, 3, 4]
[head | tail] = Enum.reverse(a)
Enum.reverse(tail) # [1, 2, 3]
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  • 1
    It may not be intuitive, but based on a quick test, it is the most effective. gist.github.com/ckhrysze/015a8748910c8d467bd2a6e2c832a670 ## PopBench reverse 500000 6.64 µs/op drop 500000 6.73 µs/op take 100000 26.07 µs/op – Chris Apr 7 '16 at 2:29
  • Actually this is a very common pattern in many of the implementations of the Enum functions. There is an optimized :list.reverse in Erlang that is used after a reduction gives you the list you want but in the reverse of the order you want it. – Fred the Magic Wonder Dog Apr 26 '16 at 3:06
3

If you're looking to get both the last item and the rest of the list preceding it you can now use List.pop_at/3:

{last, rest} = List.pop_at([1, 2, 3], -1)
{3, [1, 2]}

https://hexdocs.pm/elixir/List.html#pop_at/3

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2

Another option besides the list |> Enum.reverse |> tl |> Enum.reverse mentioned before is Erlang's :lists.droplast function which is slower according to the documentation but creates less garbage because it doesn't create two new lists. Depending on your use case that might be an interesting one to use.

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0

Another option, though not elegant, would be -

list = [1, 2, 3, 4]
Enum.take(list, Enum.count(list) -1 )   # [1, 2, 3]
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0

Erlang

List = [1,2,3,4,5],
NewList = DropLast(List).

DropLast(List) while length(List) > 0 and is_list(List) ->
    {NewList, _} = lists:split(OldList, length(OldList)-1),
    NewList.
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