mirror of
https://github.com/carbon-language/carbon-lang.git
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281 lines
9.9 KiB
C++
281 lines
9.9 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_EXPLORER_BASE_ARENA_H_
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#define CARBON_EXPLORER_BASE_ARENA_H_
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#include <any>
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#include <map>
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#include <memory>
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#include <type_traits>
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#include <unordered_map>
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#include <utility>
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#include <vector>
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#include "explorer/base/nonnull.h"
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#include "llvm/ADT/Hashing.h"
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namespace Carbon {
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// Adapter metafunction that converts T to a form that is usable as part of
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// a key in a hash map.
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//
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// ArgKey<T>::type must be implicitly convertible from T, equality-comparable,
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// and have a hash_value overload as defined in llvm/ADT/Hashing.h. This
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// should only be customized in cases where we cannot modify T itself to
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// satisfy those requirements.
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template <typename T, typename = void>
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struct ArgKey {
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using type = T;
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};
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template <typename T>
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using ArgKeyType = typename ArgKey<T>::type;
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// Allocates and maintains ownership of arbitrary objects, so that their
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// lifetimes all end at the same time. It can also canonicalize the allocated
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// objects (see the documentation of New).
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class Arena {
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// CanonicalizeAllocation<T>::value is true if canonicalization is enabled
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// for T, and false otherwise.
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template <typename T, typename = void>
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struct CanonicalizeAllocation;
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public:
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// Values of this type can be passed as the first argument to New in order to
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// have the address of the created object written to the given pointer before
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// the constructor is run. This is used during cloning to support pointer
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// cycles within the AST.
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template <typename T>
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struct WriteAddressTo {
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Nonnull<T**> target;
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};
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template <typename T>
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WriteAddressTo(T** target) -> WriteAddressTo<T>;
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// Returns a pointer to an object constructed as if by `T(args...)`, owned
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// by this Arena.
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//
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// If T::EnableCanonicalizedAllocation exists and names a type, this method
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// will canonicalize the allocated objects, meaning that two calls to this
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// method with the same T and equal arguments will return pointers to the same
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// object. If canonicalization is enabled, all types in Args... must be
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// copyable, equality-comparable, and have a hash_value overload as defined in
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// llvm/ADT/Hashing.h. If it's not possible to modify an argument type A to
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// satisfy those requirements, the ArgKey<A> customization point can be used
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// instead.
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//
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// Canonically-allocated objects must not be mutated, because those mutations
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// would be visible to all users that happened to allocate a T object with
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// the same constructor arguments. To help enforce this, the returned pointer
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// will be const when canonicalization is enabled. Since that means there
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// is no way to allocate a mutable instance of T, canonicalization should
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// only be enabled for types that are inherently immutable.
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//
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// Canonicalization does not guarantee that equal objects will be identical,
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// but it can substantially reduce the incidence of equal-but-not-identical
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// objects, which can facilitate various optimizations.
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template <
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typename T, typename... Args,
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typename std::enable_if_t<std::is_constructible_v<T, Args...> &&
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!CanonicalizeAllocation<T>::value>* = nullptr>
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auto New(Args&&... args) -> Nonnull<T*>;
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template <
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typename T, typename... Args,
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typename std::enable_if_t<std::is_constructible_v<T, Args...> &&
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CanonicalizeAllocation<T>::value>* = nullptr>
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auto New(Args&&... args) -> Nonnull<const T*>;
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// Allocates an object in the arena, writing its address to the given pointer.
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template <
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typename T, typename U, typename... Args,
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typename std::enable_if_t<std::is_constructible_v<T, Args...>>* = nullptr>
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void New(WriteAddressTo<U> addr, Args&&... args);
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auto allocated() -> int64_t { return allocated_; }
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private:
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// Virtualizes arena entries so that a single vector can contain many types,
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// avoiding templated statics.
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class ArenaEntry {
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public:
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virtual ~ArenaEntry() = default;
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};
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// Templated destruction of a pointer.
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template <typename T>
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class ArenaEntryTyped;
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// Hash functor implemented in terms of hash_value (see llvm/ADT/Hashing.h).
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struct LlvmHasher {
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template <typename T>
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auto operator()(const T& t) const -> size_t {
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using llvm::hash_value;
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return hash_value(t);
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}
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};
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// Factory metafunction for globally unique type IDs.
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// &TypeId<T>::id == &TypeId<U>::id if and only if std::is_same_v<T,U>.
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//
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// Inspired by llvm::Any::TypeId.
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template <typename T>
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struct TypeId {
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// This is only used for an address to compare; the value is unimportant.
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static char id;
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};
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// A canonicalization table maps a tuple of constructor argument values to
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// a non-null pointer to a T object constructed with those arguments.
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template <typename T, typename... Args>
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using CanonicalizationTable =
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std::unordered_map<std::tuple<ArgKeyType<Args>...>, Nonnull<const T*>,
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LlvmHasher>;
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// Allocates an object in the arena. Unlike New, this will always allocate
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// and construct a new object.
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template <typename T, typename... Args>
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auto UniqueNew(Args&&... args) -> Nonnull<T*>;
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// Returns a pointer to the canonical instance of T constructed from
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// `args...`, or null if there is no such instance yet. Returns a mutable
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// reference so that a null entry can be updated.
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template <typename T, typename... Args>
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auto CanonicalInstance(const Args&... args) -> const T*&;
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// Manages allocations in an arena for destruction at shutdown.
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std::vector<std::unique_ptr<ArenaEntry>> arena_;
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int64_t allocated_ = 0;
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// Maps a CanonicalizationTable type to a unique instance of that type for
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// this arena. For a key equal to &TypeId<T>::id for some T, the corresponding
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// value contains a T*.
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std::map<char*, std::any> canonical_tables_;
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};
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// ---------------------------------------
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// Implementation details only below here.
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// ---------------------------------------
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template <>
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struct ArgKey<std::nullopt_t> {
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using type = struct NulloptProxy {
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NulloptProxy(std::nullopt_t) {}
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friend auto operator==(NulloptProxy, NulloptProxy) -> bool { return true; }
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friend auto hash_value(NulloptProxy) -> llvm::hash_code {
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return llvm::hash_combine();
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}
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};
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};
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template <typename T>
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struct ArgKey<std::vector<T>> {
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using type = class VectorProxy {
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public:
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VectorProxy(std::vector<T> vec) : vec_(std::move(vec)) {}
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friend auto operator==(const VectorProxy& lhs, const VectorProxy& rhs) {
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return lhs.vec_ == rhs.vec_;
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}
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friend auto hash_value(const VectorProxy& v) {
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return llvm::hash_combine(
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llvm::hash_combine_range(v.vec_.begin(), v.vec_.end()),
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v.vec_.size());
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}
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private:
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std::vector<T> vec_;
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};
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};
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template <typename T, typename... Args,
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typename std::enable_if_t<std::is_constructible_v<T, Args...> &&
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!Arena::CanonicalizeAllocation<T>::value>*>
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auto Arena::New(Args&&... args) -> Nonnull<T*> {
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return UniqueNew<T>(std::forward<Args>(args)...);
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}
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template <typename T, typename... Args,
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typename std::enable_if_t<std::is_constructible_v<T, Args...> &&
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Arena::CanonicalizeAllocation<T>::value>*>
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auto Arena::New(Args&&... args) -> Nonnull<const T*> {
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const T*& canonical_instance = CanonicalInstance<T>(args...);
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if (canonical_instance == nullptr) {
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canonical_instance = UniqueNew<T>(std::forward<Args>(args)...);
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}
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return canonical_instance;
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}
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template <typename T, typename U, typename... Args,
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typename std::enable_if_t<std::is_constructible_v<T, Args...>>*>
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void Arena::New(WriteAddressTo<U> addr, Args&&... args) {
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static_assert(!CanonicalizeAllocation<T>::value,
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"This form of New does not support canonicalization yet");
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arena_.push_back(
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std::make_unique<ArenaEntryTyped<T>>(addr, std::forward<Args>(args)...));
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allocated_ += sizeof(T);
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}
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template <typename T, typename... Args>
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auto Arena::UniqueNew(Args&&... args) -> Nonnull<T*> {
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auto smart_ptr =
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std::make_unique<ArenaEntryTyped<T>>(std::forward<Args>(args)...);
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Nonnull<T*> ptr = smart_ptr->Instance();
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arena_.push_back(std::move(smart_ptr));
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allocated_ += sizeof(T);
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return ptr;
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}
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template <typename T, typename>
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struct Arena::CanonicalizeAllocation : public std::false_type {};
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template <typename T>
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struct Arena::CanonicalizeAllocation<
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T, std::void_t<typename T::EnableCanonicalizedAllocation>>
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: public std::true_type {};
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template <typename T, typename... Args>
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auto Arena::CanonicalInstance(const Args&... args) -> const T*& {
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using MapType = CanonicalizationTable<T, Args...>;
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std::any& wrapped_table = canonical_tables_[&TypeId<MapType>::id];
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if (!wrapped_table.has_value()) {
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wrapped_table.emplace<MapType>();
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}
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MapType& table = std::any_cast<MapType&>(wrapped_table);
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return table[typename MapType::key_type(args...)];
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}
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// Templated destruction of a pointer.
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template <typename T>
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class Arena::ArenaEntryTyped : public ArenaEntry {
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public:
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struct WriteAddressHelper {};
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template <typename... Args>
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explicit ArenaEntryTyped(Args&&... args)
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: instance_(std::forward<Args>(args)...) {}
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template <typename... Args>
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explicit ArenaEntryTyped(WriteAddressHelper, Args&&... args)
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: ArenaEntryTyped(std::forward<Args>(args)...) {}
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template <typename U, typename... Args>
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explicit ArenaEntryTyped(WriteAddressTo<U> write_address, Args&&... args)
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: ArenaEntryTyped(
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(*write_address.target = &instance_, WriteAddressHelper{}),
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std::forward<Args>(args)...) {}
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auto Instance() -> Nonnull<T*> { return Nonnull<T*>(&instance_); }
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private:
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T instance_;
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};
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template <typename T>
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char Arena::TypeId<T>::id = 1;
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} // namespace Carbon
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#endif // CARBON_EXPLORER_BASE_ARENA_H_
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