22

I've been wandering for a while in the docs and in forums and I haven't found a built in method/function to do the simple task of deleting an element in an array. Is there such built-in function?

I am asking for the equivalent of python's list.remove(x).

Here's an example of naively picking a function from the box:

julia> a=Any["D","A","s","t"]
julia> pop!(a, "s")
ERROR: MethodError: `pop!` has no method matching       
pop!(::Array{Any,1},     ::ASCIIString)
Closest candidates are:
  pop!(::Array{T,1})
  pop!(::ObjectIdDict, ::ANY, ::ANY)
  pop!(::ObjectIdDict, ::ANY)
  ...

Here mentions to use deleteat!, but also doesn't work:

julia> deleteat!(a, "s")
ERROR: MethodError: `-` has no method matching -(::Int64, ::Char)
Closest candidates are:
  -(::Int64)
  -(::Int64, ::Int64)
  -(::Real, ::Complex{T<:Real})
  ...

 in deleteat! at array.jl:621
21

You can also go with filter!:

a = Any["D", "A", "s", "t"]
filter!(e->e≠"s",a)
println(a)

gives:

Any["D","A","t"]

This allows to delete several values at once, as in:

filter!(e->e∉["s","A"],a)

Note 1: In Julia 0.5, anonymous functions are much faster and the little penalty felt in 0.4 is not an issue anymore :-) .

Note 2: Code above uses unicode operators. With normal operators: is != and e∉[a,b] is !(e in [a,b])

2
  • 1
    This is the best solution. But for me the filter! doesn't work. Just filter is enough. So if I have Array b = ["s","A"] I can use as this filter(e->e∉b,a) which works great. – pinq- Sep 28 '16 at 12:05
  • A warning that filter! can be inefficient for large numbers of conditions or if you have to call it repeatedly. setdiff! is a better option if you know your collections are unique. And if you have a way to keep track of the indexes, you can delete with deleteat!() all at once. – Nick Bauer Oct 22 '19 at 15:37
6

Several of the other answers have been deprecated by more recent releases of Julia. I'm currently (Julia 1.1.0) using something like

function remove!(a, item)
    deleteat!(a, findall(x->x==item, a))
end

You can also use findfirst if you'd prefer, but it doesn't work if a does not contain item.

2
  • Thanks for that! But it feels like the folks at Julia couldn't have made that more complicated if they tried. – Peter B Jun 27 '19 at 0:55
  • 1
    If you use this in a critical loop, be warned that 99% of your resources may be using findall(). If you need this, maybe it would be better to keep an IdDict mapping the item to its index, then all you need to do is look up the index when you want to remove it. – Nick Bauer Oct 22 '19 at 15:41
5

Depending on the usage, it's also good to know setdiff and it's in-place version setdiff!:

julia> setdiff([1,2,3,4], [3])
3-element Array{Int64,1}:
 1
 2
 4

However, note that it also removes all repeated elements, as demonstrated in the example:

julia> setdiff!([1,2,3,4, 4], [3])
3-element Array{Int64,1}:
 1
 2
 4
0
1

You can use deleteat! and findall(compatible with Julia>1.0) for this.

a=Any["D","A","s","t","s"]
deleteat!(a, findall(x->x=="s",a))

Output:

3-element Array{Any,1}:
"D"
"A"
"t"
0

The more recent answers are good. However, using a find___ function to look up the item to delete using deleteat!() is very inefficient. I found that my code using that took 100x longer than it needed to solely because I was using that method!

Another approach is to create a dictionary of the items and their indexes, so they can simply be looked up when necessary.

items # vector of items
itemindexes = IdDict(zip(items, eachindex(items))

todelete = Int[]

# do stuff and record indexes to delete with push!(todelete, <indexhere>)

sort!(todelete) # has to be in increasing order
deleteat!(items, todelete)

Obviously, once you use deleteat! the indexes become invalid so you'll need to update them.

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