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427 lines
17 KiB
C++
427 lines
17 KiB
C++
// Part of the Carbon Language project, under the Apache License v2.0 with LLVM
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// Exceptions. See /LICENSE for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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#ifndef CARBON_COMMON_SET_H_
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#define CARBON_COMMON_SET_H_
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#include <concepts>
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#include <type_traits>
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#include "common/check.h"
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#include "common/hashtable_key_context.h"
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#include "common/raw_hashtable.h"
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#include "llvm/Support/Compiler.h"
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namespace Carbon {
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// Forward declarations to resolve cyclic references.
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template <typename KeyT, typename KeyContextT>
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class SetView;
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template <typename KeyT, typename KeyContextT>
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class SetBase;
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template <typename KeyT, ssize_t SmallSize, typename KeyContextT>
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class Set;
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// A read-only view type for a set of keys.
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//
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// This view is a cheap-to-copy type that should be passed by value, but
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// provides view or read-only reference semantics to the underlying set data
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// structure.
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//
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// This should always be preferred to a `const`-ref parameter for the `SetBase`
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// or `Set` type as it provides more flexibility and a cleaner API. By default
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// a `SetView` provides no more immutability than a `const Set`: elements
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// can't be added or removed, but they can be mutated, and the user is
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// responsible for avoiding mutations that affect the hash value or equality
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// comparison. However, a `SetView<T>` can be converted to a `SetView<const T>`,
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// which prevents mutating the elements. As with any other view type, `const`
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// on the `SetView` itself is "shallow": it prevents rebinding the `SetView` to
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// a different underlying set, but doesn't affect mutability of the underlying
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// set.
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//
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// A specific `KeyContextT` type can optionally be provided to configure how
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// keys will be hashed and compared. The default is `DefaultKeyContext` which is
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// stateless and will hash using `Carbon::HashValue` and compare using
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// `operator==`. Every method accepting a lookup key or operating on the keys in
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// the table will also accept an instance of this type. For stateless context
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// types, including the default, an instance will be default constructed if not
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// provided to these methods. However, stateful contexts should be constructed
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// and passed in explicitly. The context type should be small and reasonable to
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// pass by value, often a wrapper or pointer to the relevant context needed for
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// hashing and comparing keys. For more details about the key context, see
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// `hashtable_key_context.h`.
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template <typename InputKeyT, typename InputKeyContextT = DefaultKeyContext>
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class SetView : RawHashtable::ViewImpl<InputKeyT, void, InputKeyContextT> {
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using ImplT = RawHashtable::ViewImpl<InputKeyT, void, InputKeyContextT>;
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public:
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using KeyT = ImplT::KeyT;
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using KeyContextT = ImplT::KeyContextT;
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using MetricsT = ImplT::MetricsT;
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// This type represents the result of lookup operations. It encodes whether
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// the lookup was a success as well as accessors for the key.
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class LookupResult {
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public:
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LookupResult() = default;
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explicit LookupResult(KeyT& key) : key_(&key) {}
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explicit operator bool() const { return key_ != nullptr; }
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auto key() const -> KeyT& { return *key_; }
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private:
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KeyT* key_ = nullptr;
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};
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// Enable implicit conversions that add `const`-ness to the key type.
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explicit(false)
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SetView(const SetView<std::remove_const_t<KeyT>, KeyContextT>& other_view)
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requires(!std::same_as<KeyT, std::remove_const_t<KeyT>>)
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: ImplT(other_view) {}
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// Tests whether a key is present in the set.
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template <typename LookupKeyT>
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auto Contains(LookupKeyT lookup_key,
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KeyContextT key_context = KeyContextT()) const -> bool;
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// Lookup a key in the set.
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template <typename LookupKeyT>
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auto Lookup(LookupKeyT lookup_key,
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KeyContextT key_context = KeyContextT()) const -> LookupResult;
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// Run the provided callback for every key in the set.
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template <typename CallbackT>
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auto ForEach(CallbackT callback) const -> void
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requires(std::invocable<CallbackT, KeyT&>);
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// This routine is relatively inefficient and only intended for use in
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// benchmarking or logging of performance anomalies. The specific metrics
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// returned have no specific guarantees beyond being informative in
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// benchmarks.
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auto ComputeMetrics(KeyContextT key_context = KeyContextT()) -> MetricsT {
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return ImplT::ComputeMetricsImpl(key_context);
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}
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private:
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template <typename SetKeyT, ssize_t SmallSize, typename KeyContextT>
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friend class Set;
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friend class SetBase<KeyT, KeyContextT>;
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friend class SetView<const KeyT, KeyContextT>;
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using EntryT = ImplT::EntryT;
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SetView() = default;
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explicit(false) SetView(ImplT base) : ImplT(base) {}
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SetView(ssize_t size, RawHashtable::Storage* storage)
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: ImplT(size, storage) {}
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};
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// A base class for a `Set` type that remains mutable while type-erasing the
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// `SmallSize` (SSO) template parameter.
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//
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// Note that `SetBase` has "shallow" const semantics: a `const SetBase<T>&`
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// can't be used to mutate the set data structure itself (e.g. by changing
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// the number of elements), but it can be used to mutate the `T` elements it
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// contains. The user is responsible for avoiding mutations that would change
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// the hash value or equality of an element. A `SetView<const T>` can be used
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// to provide read-only access to the elements of a `SetBase<T>`.
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//
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// A pointer or reference to this type is the preferred way to pass a mutable
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// handle to a `Set` type across API boundaries as it avoids encoding specific
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// SSO sizing information while providing a near-complete mutable API.
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template <typename InputKeyT, typename InputKeyContextT>
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class SetBase
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: protected RawHashtable::BaseImpl<InputKeyT, void, InputKeyContextT> {
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protected:
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using ImplT = RawHashtable::BaseImpl<InputKeyT, void, InputKeyContextT>;
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public:
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using KeyT = ImplT::KeyT;
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using KeyContextT = ImplT::KeyContextT;
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using ViewT = SetView<KeyT, KeyContextT>;
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using LookupResult = ViewT::LookupResult;
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using MetricsT = ImplT::MetricsT;
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// The result type for insertion operations both indicates whether an insert
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// was needed (as opposed to the key already being in the set), and provides
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// access to the key.
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class InsertResult {
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public:
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InsertResult() = default;
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explicit InsertResult(bool inserted, KeyT& key)
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: key_(&key), inserted_(inserted) {}
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auto is_inserted() const -> bool { return inserted_; }
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auto key() const -> KeyT& { return *key_; }
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private:
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KeyT* key_;
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bool inserted_;
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};
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// Implicitly convertible to the relevant view type.
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//
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// NOLINTNEXTLINE(google-explicit-constructor): Designed to implicitly decay.
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explicit(false) operator ViewT() const { return this->view_impl(); }
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// We can't chain the above conversion with the conversions on `ViewT` to add
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// const, so explicitly support adding const to produce a view here.
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//
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// NOLINTNEXTLINE(google-explicit-constructor): Designed to implicitly decay.
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explicit(false) operator SetView<const KeyT, KeyContextT>() const {
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return ViewT(*this);
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}
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// Convenience forwarder to the view type.
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template <typename LookupKeyT>
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auto Contains(LookupKeyT lookup_key,
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KeyContextT key_context = KeyContextT()) const -> bool {
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return ViewT(*this).Contains(lookup_key, key_context);
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}
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// Convenience forwarder to the view type.
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template <typename LookupKeyT>
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auto Lookup(LookupKeyT lookup_key,
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KeyContextT key_context = KeyContextT()) const -> LookupResult {
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return ViewT(*this).Lookup(lookup_key, key_context);
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}
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// Convenience forwarder to the view type.
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template <typename CallbackT>
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auto ForEach(CallbackT callback) const -> void
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requires(std::invocable<CallbackT, KeyT&>)
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{
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return ViewT(*this).ForEach(callback);
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}
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// Convenience forwarder to the view type.
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auto ComputeMetrics(KeyContextT key_context = KeyContextT()) const
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-> MetricsT {
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return ViewT(*this).ComputeMetrics(key_context);
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}
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// Insert a key into the set. If the key is already present, no insertion is
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// performed and that present key is available in the result. Otherwise a new
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// key is inserted and constructed from the argument and available in the
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// result.
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template <typename LookupKeyT>
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auto Insert(LookupKeyT lookup_key, KeyContextT key_context = KeyContextT())
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-> InsertResult;
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// Insert a key into the map and call the provided callback if necessary to
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// produce a new key when no existing value is found.
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//
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// Example: `m.Insert(key_equivalent, [] { return real_key; });`
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//
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// The point of this function is when the lookup key is _different_from the
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// stored key. However, we don't restrict it in case that blocks generic
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// usage.
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template <typename LookupKeyT, typename KeyCallbackT>
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auto Insert(LookupKeyT lookup_key, KeyCallbackT key_cb,
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KeyContextT key_context = KeyContextT()) -> InsertResult
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requires(
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!std::same_as<KeyT, KeyCallbackT> &&
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std::convertible_to<decltype(std::declval<KeyCallbackT>()()), KeyT>);
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// Insert a key into the set and call the provided callback to allow in-place
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// construction of the key if not already present. The lookup key is passed
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// through to the callback so it needn't be captured and can be kept in a
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// register argument throughout.
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//
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// Example:
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// ```cpp
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// m.Insert("widget", [](MyStringViewType lookup_key, void* key_storage) {
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// new (key_storage) MyStringType(lookup_key);
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// });
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// ```
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template <typename LookupKeyT, typename InsertCallbackT>
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auto Insert(LookupKeyT lookup_key, InsertCallbackT insert_cb,
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KeyContextT key_context = KeyContextT()) -> InsertResult
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requires std::invocable<InsertCallbackT, LookupKeyT, void*>;
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// Grow the set to a specific allocation size.
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//
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// This will grow the set's hashtable if necessary for it to have an
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// allocation size of `target_alloc_size` which must be a power of two. Note
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// that this will not allow that many keys to be inserted, but a smaller
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// number based on the maximum load factor. If a specific number of insertions
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// need to be achieved without triggering growth, use the `GrowForInsertCount`
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// method.
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auto GrowToAllocSize(ssize_t target_alloc_size,
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KeyContextT key_context = KeyContextT()) -> void;
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// Grow the set sufficiently to allow inserting the specified number of keys.
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auto GrowForInsertCount(ssize_t count,
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KeyContextT key_context = KeyContextT()) -> void;
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// Erase a key from the set.
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template <typename LookupKeyT>
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auto Erase(LookupKeyT lookup_key, KeyContextT key_context = KeyContextT())
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-> bool;
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// Clear all key/value pairs from the set but leave the underlying hashtable
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// allocated and in place.
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auto Clear() -> void;
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protected:
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using ImplT::ImplT;
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};
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// A data structure for a set of keys.
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//
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// This set supports small size optimization (or "SSO"). The provided
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// `SmallSize` type parameter indicates the size of an embedded buffer for
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// storing sets small enough to fit. The default is zero, which always allocates
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// a heap buffer on construction. When non-zero, must be a multiple of the
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// `MaxGroupSize` which is currently 16. The library will check that the size is
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// valid and provide an error at compile time if not. We don't automatically
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// select the next multiple or otherwise fit the size to the constraints to make
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// it clear in the code how much memory is used by the SSO buffer.
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//
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// This data structure optimizes heavily for small key types that are cheap to
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// move and even copy. Using types with large keys or expensive to copy keys may
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// create surprising performance bottlenecks. A `std::string` key should be fine
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// with generally small strings, but if some or many strings are large heap
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// allocations the performance of hashtable routines may be unacceptably bad and
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// another data structure or key design is likely preferable.
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//
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// Note that `Set`, like `SetBase`, has "shallow" const semantics. Note also
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// that this type should typically not appear on API boundaries; either
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// `SetBase` or `SetView` should be used instead.
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template <typename InputKeyT, ssize_t SmallSize = 0,
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typename InputKeyContextT = DefaultKeyContext>
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class Set : public RawHashtable::TableImpl<SetBase<InputKeyT, InputKeyContextT>,
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SmallSize> {
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using BaseT = SetBase<InputKeyT, InputKeyContextT>;
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using ImplT = RawHashtable::TableImpl<BaseT, SmallSize>;
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public:
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using KeyT = BaseT::KeyT;
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Set() = default;
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Set(const Set& arg) = default;
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Set(Set&& arg) noexcept = default;
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auto operator=(const Set& arg) -> Set& = default;
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auto operator=(Set&& arg) noexcept -> Set& = default;
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// Reset the entire state of the hashtable to as it was when constructed,
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// throwing away any intervening allocations.
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auto Reset() -> void;
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};
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename LookupKeyT>
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auto SetView<InputKeyT, InputKeyContextT>::Contains(
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LookupKeyT lookup_key, KeyContextT key_context) const -> bool {
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return this->LookupEntry(lookup_key, key_context) != nullptr;
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}
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename LookupKeyT>
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auto SetView<InputKeyT, InputKeyContextT>::Lookup(LookupKeyT lookup_key,
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KeyContextT key_context) const
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-> LookupResult {
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EntryT* entry = this->LookupEntry(lookup_key, key_context);
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if (!entry) {
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return LookupResult();
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}
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return LookupResult(entry->key());
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}
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename CallbackT>
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auto SetView<InputKeyT, InputKeyContextT>::ForEach(CallbackT callback) const
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-> void
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requires(std::invocable<CallbackT, KeyT&>)
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{
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this->ForEachEntry([callback](EntryT& entry) { callback(entry.key()); },
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[](auto...) {});
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}
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename LookupKeyT>
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auto SetBase<InputKeyT, InputKeyContextT>::Insert(LookupKeyT lookup_key,
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KeyContextT key_context)
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-> InsertResult {
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return Insert(
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lookup_key,
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[](LookupKeyT lookup_key, void* key_storage) {
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new (key_storage) KeyT(std::move(lookup_key));
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},
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key_context);
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}
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename LookupKeyT, typename KeyCallbackT>
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auto SetBase<InputKeyT, InputKeyContextT>::Insert(LookupKeyT lookup_key,
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KeyCallbackT key_cb,
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KeyContextT key_context)
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-> InsertResult
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requires(!std::same_as<KeyT, KeyCallbackT> &&
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std::convertible_to<decltype(std::declval<KeyCallbackT>()()), KeyT>)
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{
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return Insert(
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lookup_key,
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[&key_cb](LookupKeyT /*lookup_key*/, void* key_storage) {
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new (key_storage) KeyT(key_cb());
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},
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key_context);
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}
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename LookupKeyT, typename InsertCallbackT>
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auto SetBase<InputKeyT, InputKeyContextT>::Insert(LookupKeyT lookup_key,
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InsertCallbackT insert_cb,
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KeyContextT key_context)
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-> InsertResult
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requires std::invocable<InsertCallbackT, LookupKeyT, void*>
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{
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auto [entry, inserted] = this->InsertImpl(lookup_key, key_context);
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CARBON_DCHECK(entry, "Should always result in a valid index.");
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if (LLVM_LIKELY(!inserted)) {
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return InsertResult(false, entry->key());
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}
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insert_cb(lookup_key, static_cast<void*>(&entry->key_storage));
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return InsertResult(true, entry->key());
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}
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template <typename InputKeyT, typename InputKeyContextT>
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auto SetBase<InputKeyT, InputKeyContextT>::GrowToAllocSize(
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ssize_t target_alloc_size, KeyContextT key_context) -> void {
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this->GrowToAllocSizeImpl(target_alloc_size, key_context);
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}
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template <typename InputKeyT, typename InputKeyContextT>
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auto SetBase<InputKeyT, InputKeyContextT>::GrowForInsertCount(
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ssize_t count, KeyContextT key_context) -> void {
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this->GrowForInsertCountImpl(count, key_context);
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}
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template <typename InputKeyT, typename InputKeyContextT>
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template <typename LookupKeyT>
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auto SetBase<InputKeyT, InputKeyContextT>::Erase(LookupKeyT lookup_key,
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KeyContextT key_context)
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-> bool {
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return this->EraseImpl(lookup_key, key_context);
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}
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template <typename InputKeyT, typename InputKeyContextT>
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auto SetBase<InputKeyT, InputKeyContextT>::Clear() -> void {
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this->ClearImpl();
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}
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template <typename InputKeyT, ssize_t SmallSize, typename InputKeyContextT>
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auto Set<InputKeyT, SmallSize, InputKeyContextT>::Reset() -> void {
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this->ResetImpl();
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}
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} // namespace Carbon
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#endif // CARBON_COMMON_SET_H_
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