10

I have a list which may contain duplicates. I want to count how many instances there are of each item in the list. My plan was:

list
|> Enum.reduce(%{}, fn
  item, %{item => count}=acc -> %{acc | item => count + 1}
  item, acc -> Map.put(acc, item, 1)
end)

However, this fails to compile with the error illegal use of variable item inside map key match, maps can only match on existing variable by using ^item.

So I changed the first pattern to item, %{^item => count}=acc. At that point, the error became unbound variable ^item.

I'm not sure what to do here. I know it's possible to pattern match one argument based on another (as in fn a, a -> true for one head of a comparison function), but apparently not in this case. I tried doing it with guards but Map.has_key?/2 can't be put in guards. I've found lots of questions here about matching on maps in general, but not about doing so when the value to match on comes from another argument.

2
  • Any reason you didn't use Map.update/4? list |> Enum.reduce(%{}, fn x, acc -> Map.update(acc, x, 1, &(&1 + 1)) end).
    – Dogbert
    Mar 24 '17 at 19:13
  • ... Because I didn't read the docs as thoroughly as I thought I had, apparently. Please make that an answer so I can accept it.
    – Vivian
    Mar 24 '17 at 19:27
21

Modifying a value for a key in a Map and inserting if it doesn't already exist is exactly what Map.update/4 does. To calculate frequencies, the default would be 1 and the update fn would just add 1 to the value (&(&1 + 1)):

iex(1)> [1, 2, :a, 2, :a, :b, :a] |>
...(1)> Enum.reduce(%{}, fn x, acc -> Map.update(acc, x, 1, &(&1 + 1)) end)
%{1 => 1, 2 => 2, :a => 3, :b => 1}
0

Well, found this while writing the question. Figured I'd share it, but if someone else has a cleaner solution they're welcome to it:

The best solution I've found is to... sort of internally curry one of the arguments, so that it's bound, purely for syntactic purposes.

list
|> Enum.reduce(%{}, fn item, acc ->
    f = fn %{item => count}=acc -> %{acc | item => count + 1}
            acc when is_map(acc) -> Map.put(acc, item, 1)
        end
    f.(acc)
  end)

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.