forked from OSchip/llvm-project
188 lines
5.7 KiB
C++
188 lines
5.7 KiB
C++
//===----------------------------------------------------------------------===//
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//
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// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
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// See https://llvm.org/LICENSE.txt for license information.
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// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
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//
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//===----------------------------------------------------------------------===//
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#ifndef TEST_TRANSPARENT_UNORDERED_H
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#define TEST_TRANSPARENT_UNORDERED_H
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#include "test_macros.h"
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#include "is_transparent.h"
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#include <cassert>
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#if TEST_STD_VER > 17
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template <typename T>
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struct StoredType;
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template <typename T>
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struct SearchedType;
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struct hash_impl {
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template <typename T>
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constexpr std::size_t operator()(SearchedType<T> const& t) const {
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return static_cast<std::size_t>(t.get_value());
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}
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template <typename T>
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constexpr std::size_t operator()(StoredType<T> const& t) const {
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return static_cast<std::size_t>(t.get_value());
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}
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};
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struct non_transparent_hash : hash_impl {};
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struct transparent_hash : hash_impl {
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using is_transparent = void;
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};
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struct transparent_hash_final final : transparent_hash {};
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struct transparent_equal_final final : std::equal_to<> {};
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template <typename T>
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struct SearchedType {
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explicit SearchedType(T value, int *counter) : value_(value), conversions_(counter) { }
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// Whenever a conversion is performed, increment the counter to keep track
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// of conversions.
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operator StoredType<T>() const {
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++*conversions_;
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return StoredType<T>{value_};
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}
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int get_value() const {
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return value_;
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}
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private:
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T value_;
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int *conversions_;
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};
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template <typename T>
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struct StoredType {
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StoredType() = default;
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StoredType(T value) : value_(value) { }
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friend bool operator==(StoredType const& lhs, StoredType const& rhs) {
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return lhs.value_ == rhs.value_;
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}
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// If we're being passed a SearchedType<T> object, avoid the conversion
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// to T. This allows testing that the transparent operations are correctly
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// forwarding the SearchedType all the way to this comparison by checking
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// that we didn't have a conversion when we search for a SearchedType<T>
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// in a container full of StoredType<T>.
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friend bool operator==(StoredType const& lhs, SearchedType<T> const& rhs) {
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return lhs.value_ == rhs.get_value();
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}
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int get_value() const {
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return value_;
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}
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private:
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T value_;
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};
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template<template<class...> class UnorderedSet, class Hash, class Equal>
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using unord_set_type = UnorderedSet<StoredType<int>, Hash, Equal>;
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template<template<class...> class UnorderedMap, class Hash, class Equal>
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using unord_map_type = UnorderedMap<StoredType<int>, int, Hash, Equal>;
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template<class Container>
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void test_transparent_find(Container c) {
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int conversions = 0;
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assert(c.find(SearchedType<int>(1, &conversions)) != c.end());
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assert(c.find(SearchedType<int>(2, &conversions)) != c.end());
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assert(c.find(SearchedType<int>(3, &conversions)) == c.end());
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assert(conversions == 0);
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}
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template<class Container>
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void test_non_transparent_find(Container c) {
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int conversions = 0;
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assert(c.find(SearchedType<int>(1, &conversions)) != c.end());
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assert(conversions == 1);
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assert(c.find(SearchedType<int>(2, &conversions)) != c.end());
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assert(conversions == 2);
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assert(c.find(SearchedType<int>(3, &conversions)) == c.end());
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assert(conversions == 3);
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}
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template<class Container>
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void test_transparent_count(Container c) {
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int conversions = 0;
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assert(c.count(SearchedType<int>(1, &conversions)) > 0);
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assert(c.count(SearchedType<int>(2, &conversions)) > 0);
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assert(c.count(SearchedType<int>(3, &conversions)) == 0);
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assert(conversions == 0);
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}
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template<class Container>
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void test_non_transparent_count(Container c) {
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int conversions = 0;
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assert(c.count(SearchedType<int>(1, &conversions)) > 0);
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assert(conversions == 1);
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assert(c.count(SearchedType<int>(2, &conversions)) > 0);
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assert(conversions == 2);
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assert(c.count(SearchedType<int>(3, &conversions)) == 0);
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assert(conversions == 3);
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}
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template<class Container>
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void test_transparent_contains(Container c) {
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int conversions = 0;
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assert(c.contains(SearchedType<int>(1, &conversions)));
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assert(c.contains(SearchedType<int>(2, &conversions)));
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assert(!c.contains(SearchedType<int>(3, &conversions)));
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assert(conversions == 0);
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}
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template<class Container>
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void test_non_transparent_contains(Container c) {
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int conversions = 0;
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assert(c.contains(SearchedType<int>(1, &conversions)));
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assert(conversions == 1);
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assert(c.contains(SearchedType<int>(2, &conversions)));
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assert(conversions == 2);
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assert(!c.contains(SearchedType<int>(3, &conversions)));
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assert(conversions == 3);
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}
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template<class Container>
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void test_transparent_equal_range(Container c) {
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int conversions = 0;
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auto iters = c.equal_range(SearchedType<int>(1, &conversions));
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assert(std::distance(iters.first, iters.second) > 0);
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iters = c.equal_range(SearchedType<int>(2, &conversions));
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assert(std::distance(iters.first, iters.second) > 0);
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iters = c.equal_range(SearchedType<int>(3, &conversions));
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assert(std::distance(iters.first, iters.second) == 0);
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assert(conversions == 0);
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}
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template<class Container>
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void test_non_transparent_equal_range(Container c) {
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int conversions = 0;
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auto iters = c.equal_range(SearchedType<int>(1, &conversions));
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assert(std::distance(iters.first, iters.second) > 0);
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assert(conversions == 1);
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iters = c.equal_range(SearchedType<int>(2, &conversions));
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assert(std::distance(iters.first, iters.second) > 0);
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assert(conversions == 2);
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iters = c.equal_range(SearchedType<int>(3, &conversions));
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assert(std::distance(iters.first, iters.second) == 0);
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assert(conversions == 3);
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}
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#endif // TEST_STD_VER > 17
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#endif // TEST_TRANSPARENT_UNORDERED_H
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