450 lines
12 KiB
Elixir
450 lines
12 KiB
Elixir
defmodule MapSet do
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@moduledoc """
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Functions that work on sets.
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A set is a data structure that can contain unique elements of any kind,
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without any particular order. `MapSet` is the "go to" set data structure in Elixir.
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A set can be constructed using `MapSet.new/0`:
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iex> MapSet.new()
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MapSet.new([])
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Elements in a set don't have to be of the same type and they can be
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populated from an [enumerable](`t:Enumerable.t/0`) using `MapSet.new/1`:
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iex> MapSet.new([1, :two, {"three"}])
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MapSet.new([1, :two, {"three"}])
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Elements can be inserted using `MapSet.put/2`:
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iex> MapSet.new([2]) |> MapSet.put(4) |> MapSet.put(0)
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MapSet.new([0, 2, 4])
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By definition, sets can't contain duplicate elements: when
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inserting an element in a set where it's already present, the insertion is
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simply a no-op.
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iex> map_set = MapSet.new()
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iex> MapSet.put(map_set, "foo")
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MapSet.new(["foo"])
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iex> map_set |> MapSet.put("foo") |> MapSet.put("foo")
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MapSet.new(["foo"])
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A `MapSet` is represented internally using the `%MapSet{}` struct. This struct
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can be used whenever there's a need to pattern match on something being a `MapSet`:
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iex> match?(%MapSet{}, MapSet.new())
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true
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Note that, however, the struct fields are private and must not be accessed
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directly; use the functions in this module to perform operations on sets.
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`MapSet`s can also be constructed starting from other collection-type data
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structures: for example, see `MapSet.new/1` or `Enum.into/2`.
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`MapSet` is built on top of Erlang's
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[`:sets`](https://www.erlang.org/doc/man/sets.html) (version 2). This means
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that they share many properties, including logarithmic time complexity. Erlang
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`:sets` (version 2) are implemented on top of maps, so see the documentation
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for `Map` for more information on its execution time complexity.
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"""
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@type value :: term
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@opaque internal(value) :: :sets.set(value)
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@type t(value) :: %__MODULE__{map: internal(value)}
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@type t :: t(term)
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# The key name is :map because the MapSet implementation used to be based on top of maps before
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# Elixir 1.15 (and Erlang/OTP 24, which introduced :sets version 2). :sets v2's internal
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# representation is, anyways, exactly the same as MapSet's previous implementation. We cannot
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# change the :map key name here because we'd break backwards compatibility with code compiled
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# with Elixir 1.14 and earlier and executed on Elixir 1.15+.
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defstruct map: :sets.new(version: 2)
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@doc """
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Returns a new set.
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## Examples
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iex> MapSet.new()
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MapSet.new([])
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"""
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@spec new :: t
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def new(), do: %MapSet{}
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@doc """
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Creates a set from an enumerable.
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## Examples
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iex> MapSet.new([:b, :a, 3])
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MapSet.new([3, :a, :b])
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iex> MapSet.new([3, 3, 3, 2, 2, 1])
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MapSet.new([1, 2, 3])
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"""
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@spec new(Enumerable.t()) :: t
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def new(enumerable)
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def new(%__MODULE__{} = map_set), do: map_set
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def new(enumerable) do
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set =
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enumerable
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|> Enum.to_list()
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|> :sets.from_list(version: 2)
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%MapSet{map: set}
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end
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@doc """
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Creates a set from an enumerable via the transformation function.
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## Examples
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iex> MapSet.new([1, 2, 1], fn x -> 2 * x end)
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MapSet.new([2, 4])
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"""
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@spec new(Enumerable.t(), (term -> val)) :: t(val) when val: value
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def new(enumerable, transform) when is_function(transform, 1) do
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set =
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enumerable
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|> Enum.map(transform)
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|> :sets.from_list(version: 2)
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%MapSet{map: set}
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end
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@doc """
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Deletes `value` from `map_set`.
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Returns a new set which is a copy of `map_set` but without `value`.
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## Examples
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iex> map_set = MapSet.new([1, 2, 3])
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iex> MapSet.delete(map_set, 4)
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MapSet.new([1, 2, 3])
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iex> MapSet.delete(map_set, 2)
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MapSet.new([1, 3])
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"""
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@spec delete(t(val1), val2) :: t(val1) when val1: value, val2: value
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def delete(%MapSet{map: set} = map_set, value) do
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%{map_set | map: :sets.del_element(value, set)}
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end
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@doc """
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Returns a set that is `map_set1` without the members of `map_set2`.
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## Examples
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iex> MapSet.difference(MapSet.new([1, 2]), MapSet.new([2, 3, 4]))
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MapSet.new([1])
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"""
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@spec difference(t(val1), t(val2)) :: t(val1) when val1: value, val2: value
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def difference(%MapSet{map: set1} = map_set1, %MapSet{map: set2} = _map_set2) do
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%{map_set1 | map: :sets.subtract(set1, set2)}
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end
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@doc """
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Returns a set with elements that are present in only one but not both sets.
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## Examples
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iex> MapSet.symmetric_difference(MapSet.new([1, 2, 3]), MapSet.new([2, 3, 4]))
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MapSet.new([1, 4])
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"""
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@doc since: "1.14.0"
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@spec symmetric_difference(t(val1), t(val2)) :: t(val1 | val2) when val1: value, val2: value
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def symmetric_difference(%MapSet{map: set1} = map_set1, %MapSet{map: set2} = _map_set2) do
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{small, large} = if :sets.size(set1) <= :sets.size(set2), do: {set1, set2}, else: {set2, set1}
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disjointer_fun = fn elem, {small, acc} ->
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if :sets.is_element(elem, small) do
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{:sets.del_element(elem, small), acc}
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else
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{small, [elem | acc]}
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end
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end
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{new_small, list} = :sets.fold(disjointer_fun, {small, []}, large)
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%{map_set1 | map: :sets.union(new_small, :sets.from_list(list, version: 2))}
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end
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@doc """
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Checks if `map_set1` and `map_set2` have no members in common.
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## Examples
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iex> MapSet.disjoint?(MapSet.new([1, 2]), MapSet.new([3, 4]))
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true
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iex> MapSet.disjoint?(MapSet.new([1, 2]), MapSet.new([2, 3]))
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false
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"""
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@spec disjoint?(t, t) :: boolean
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def disjoint?(%MapSet{map: set1}, %MapSet{map: set2}) do
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:sets.is_disjoint(set1, set2)
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end
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@doc """
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Checks if two sets are equal.
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The comparison between elements is done using `===/2`,
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which a set with `1` is not equivalent to a set with
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`1.0`.
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## Examples
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iex> MapSet.equal?(MapSet.new([1, 2]), MapSet.new([2, 1, 1]))
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true
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iex> MapSet.equal?(MapSet.new([1, 2]), MapSet.new([3, 4]))
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false
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iex> MapSet.equal?(MapSet.new([1]), MapSet.new([1.0]))
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false
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"""
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@spec equal?(t, t) :: boolean
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def equal?(%MapSet{map: set1}, %MapSet{map: set2}) do
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set1 === set2
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end
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@doc """
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Returns a set containing only members that `map_set1` and `map_set2` have in common.
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## Examples
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iex> MapSet.intersection(MapSet.new([1, 2]), MapSet.new([2, 3, 4]))
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MapSet.new([2])
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iex> MapSet.intersection(MapSet.new([1, 2]), MapSet.new([3, 4]))
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MapSet.new([])
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"""
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@spec intersection(t(val), t(val)) :: t(val) when val: value
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def intersection(%MapSet{map: set1} = map_set1, %MapSet{map: set2} = _map_set2) do
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%{map_set1 | map: :sets.intersection(set1, set2)}
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end
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@doc """
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Checks if `map_set` contains `value`.
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## Examples
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iex> MapSet.member?(MapSet.new([1, 2, 3]), 2)
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true
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iex> MapSet.member?(MapSet.new([1, 2, 3]), 4)
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false
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"""
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@spec member?(t, value) :: boolean
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def member?(%MapSet{map: set}, value) do
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:sets.is_element(value, set)
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end
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@doc """
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Inserts `value` into `map_set` if `map_set` doesn't already contain it.
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## Examples
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iex> MapSet.put(MapSet.new([1, 2, 3]), 3)
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MapSet.new([1, 2, 3])
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iex> MapSet.put(MapSet.new([1, 2, 3]), 4)
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MapSet.new([1, 2, 3, 4])
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"""
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@spec put(t(val), new_val) :: t(val | new_val) when val: value, new_val: value
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def put(%MapSet{map: set} = map_set, value) do
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%{map_set | map: :sets.add_element(value, set)}
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end
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@doc """
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Returns the number of elements in `map_set`.
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## Examples
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iex> MapSet.size(MapSet.new([1, 2, 3]))
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3
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"""
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@spec size(t) :: non_neg_integer
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def size(%MapSet{map: set}) do
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:sets.size(set)
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end
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@doc """
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Checks if `map_set1`'s members are all contained in `map_set2`.
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This function checks if `map_set1` is a subset of `map_set2`.
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## Examples
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iex> MapSet.subset?(MapSet.new([1, 2]), MapSet.new([1, 2, 3]))
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true
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iex> MapSet.subset?(MapSet.new([1, 2, 3]), MapSet.new([1, 2]))
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false
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"""
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@spec subset?(t, t) :: boolean
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def subset?(%MapSet{map: set1}, %MapSet{map: set2}) do
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:sets.is_subset(set1, set2)
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end
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@doc """
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Converts `map_set` to a list.
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## Examples
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iex> MapSet.to_list(MapSet.new([1, 2, 3]))
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[1, 2, 3]
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"""
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@spec to_list(t(val)) :: [val] when val: value
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def to_list(%MapSet{map: set}) do
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:sets.to_list(set)
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end
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@doc """
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Returns a set containing all members of `map_set1` and `map_set2`.
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## Examples
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iex> MapSet.union(MapSet.new([1, 2]), MapSet.new([2, 3, 4]))
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MapSet.new([1, 2, 3, 4])
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"""
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@spec union(t(val1), t(val2)) :: t(val1 | val2) when val1: value, val2: value
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def union(%MapSet{map: set1} = map_set1, %MapSet{map: set2} = _map_set2) do
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%{map_set1 | map: :sets.union(set1, set2)}
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end
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@doc """
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Filters the set by returning only the elements from `map_set` for which invoking
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`fun` returns a truthy value.
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Also see `reject/2` which discards all elements where the function returns
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a truthy value.
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> #### Performance considerations {: .tip}
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>
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> If you find yourself doing multiple calls to `MapSet.filter/2`
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> and `MapSet.reject/2` in a pipeline, it is likely more efficient
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> to use `Enum.map/2` and `Enum.filter/2` instead and convert to
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> a map at the end using `MapSet.new/1`.
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## Examples
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iex> MapSet.filter(MapSet.new(1..5), fn x -> x > 3 end)
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MapSet.new([4, 5])
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iex> MapSet.filter(MapSet.new(["a", :b, "c"]), &is_atom/1)
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MapSet.new([:b])
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"""
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@doc since: "1.14.0"
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@spec filter(t(a), (a -> as_boolean(term))) :: t(a) when a: value
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def filter(%MapSet{map: set} = map_set, fun) when is_function(fun) do
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pred = fn element -> !!fun.(element) end
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%{map_set | map: :sets.filter(pred, set)}
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end
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@doc """
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Returns a set by excluding the elements from `map_set` for which invoking `fun`
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returns a truthy value.
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See also `filter/2`.
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## Examples
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iex> MapSet.reject(MapSet.new(1..5), fn x -> rem(x, 2) != 0 end)
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MapSet.new([2, 4])
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iex> MapSet.reject(MapSet.new(["a", :b, "c"]), &is_atom/1)
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MapSet.new(["a", "c"])
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"""
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@doc since: "1.14.0"
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@spec reject(t(a), (a -> as_boolean(term))) :: t(a) when a: value
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def reject(%MapSet{map: set} = map_set, fun) when is_function(fun) do
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pred = fn element -> !fun.(element) end
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%{map_set | map: :sets.filter(pred, set)}
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end
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@doc """
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Splits the `map_set` into two `MapSet`s according to the given function `fun`.
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`fun` receives each element in the `map_set` as its only argument. Returns
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a tuple with the first `MapSet` containing all the elements in `map_set` for which
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applying `fun` returned a truthy value, and a second `MapSet` with all the elements
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for which applying `fun` returned a falsy value (`false` or `nil`).
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## Examples
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iex> {while_true, while_false} = MapSet.split_with(MapSet.new([1, 2, 3, 4]), fn v -> rem(v, 2) == 0 end)
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iex> while_true
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MapSet.new([2, 4])
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iex> while_false
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MapSet.new([1, 3])
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iex> {while_true, while_false} = MapSet.split_with(MapSet.new(), fn {_k, v} -> v > 50 end)
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iex> while_true
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MapSet.new([])
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iex> while_false
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MapSet.new([])
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"""
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@doc since: "1.15.0"
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@spec split_with(MapSet.t(), (any() -> as_boolean(term))) :: {MapSet.t(), MapSet.t()}
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def split_with(%MapSet{map: map}, fun) when is_function(fun, 1) do
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{while_true, while_false} = Map.split_with(map, fn {key, _} -> fun.(key) end)
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{%MapSet{map: while_true}, %MapSet{map: while_false}}
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end
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defimpl Enumerable do
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def count(map_set) do
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{:ok, MapSet.size(map_set)}
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end
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def member?(map_set, val) do
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{:ok, MapSet.member?(map_set, val)}
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end
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def slice(map_set) do
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size = MapSet.size(map_set)
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{:ok, size, &MapSet.to_list/1}
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end
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def reduce(map_set, acc, fun) do
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Enumerable.List.reduce(MapSet.to_list(map_set), acc, fun)
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end
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end
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defimpl Collectable do
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def into(%@for{map: set} = map_set) do
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fun = fn
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list, {:cont, x} -> [x | list]
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list, :done -> %{map_set | map: :sets.union(set, :sets.from_list(list, version: 2))}
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_, :halt -> :ok
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end
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{[], fun}
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end
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end
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defimpl Inspect do
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import Inspect.Algebra
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def inspect(map_set, opts) do
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opts = %Inspect.Opts{opts | charlists: :as_lists}
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concat(["MapSet.new(", Inspect.List.inspect(MapSet.to_list(map_set), opts), ")"])
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end
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end
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end
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