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824 lines
23 KiB
C++
824 lines
23 KiB
C++
// Copyright (C) 2023 Christian Mazakas
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// Distributed under the Boost Software License, Version 1.0. (See accompanying
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// file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt)
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#include "helpers.hpp"
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#include <boost/unordered/concurrent_flat_map.hpp>
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test::seed_t initialize_seed(4122023);
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using test::default_generator;
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using test::limited_range;
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using test::sequential;
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template <class T> struct soccc_allocator
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{
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int x_ = -1;
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using value_type = T;
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soccc_allocator() = default;
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soccc_allocator(soccc_allocator const&) = default;
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soccc_allocator(soccc_allocator&&) = default;
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soccc_allocator(int const x) : x_{x} {}
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template <class U> soccc_allocator(soccc_allocator<U> const& rhs) : x_{rhs.x_}
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{
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}
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T* allocate(std::size_t n)
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{
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return static_cast<T*>(::operator new(n * sizeof(T)));
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}
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void deallocate(T* p, std::size_t) { ::operator delete(p); }
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soccc_allocator select_on_container_copy_construction() const
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{
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return {x_ + 1};
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}
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bool operator==(soccc_allocator const& rhs) const { return x_ == rhs.x_; }
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bool operator!=(soccc_allocator const& rhs) const { return x_ != rhs.x_; }
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};
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using hasher = stateful_hash;
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using key_equal = stateful_key_equal;
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using allocator_type = stateful_allocator<std::pair<raii const, raii> >;
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using map_type = boost::unordered::concurrent_flat_map<raii, raii, hasher,
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key_equal, allocator_type>;
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using map_value_type = typename map_type::value_type;
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UNORDERED_AUTO_TEST (default_constructor) {
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boost::unordered::concurrent_flat_map<raii, raii> x;
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BOOST_TEST(x.empty());
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BOOST_TEST_EQ(x.size(), 0u);
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}
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UNORDERED_AUTO_TEST (bucket_count_with_hasher_key_equal_and_allocator) {
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raii::reset_counts();
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{
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map_type x(0);
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BOOST_TEST(x.empty());
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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}
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{
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map_type x(0, hasher(1));
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BOOST_TEST(x.empty());
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher(1));
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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}
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{
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map_type x(0, hasher(1), key_equal(2));
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BOOST_TEST(x.empty());
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher(1));
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BOOST_TEST_EQ(x.key_eq(), key_equal(2));
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}
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{
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map_type x(0, hasher(1), key_equal(2), allocator_type{});
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BOOST_TEST(x.empty());
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher(1));
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BOOST_TEST_EQ(x.key_eq(), key_equal(2));
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BOOST_TEST(x.get_allocator() == allocator_type{});
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}
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}
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UNORDERED_AUTO_TEST (soccc) {
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raii::reset_counts();
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boost::unordered::concurrent_flat_map<raii, raii, hasher, key_equal,
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soccc_allocator<std::pair<raii const, raii> > >
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x;
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boost::unordered::concurrent_flat_map<raii, raii, hasher, key_equal,
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soccc_allocator<std::pair<raii const, raii> > >
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y(x);
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BOOST_TEST_EQ(y.hash_function(), x.hash_function());
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BOOST_TEST_EQ(y.key_eq(), x.key_eq());
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BOOST_TEST(y.get_allocator() != x.get_allocator());
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}
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namespace {
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template <class G> void from_iterator_range(G gen, test::random_generator rg)
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{
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auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
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auto reference_map =
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boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
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raii::reset_counts();
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{
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map_type x(values.begin(), values.end());
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test_matches_reference(x, reference_map);
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BOOST_TEST_GT(x.size(), 0u);
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BOOST_TEST_LE(x.size(), values.size());
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(x.get_allocator() == allocator_type{});
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if (rg == sequential) {
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BOOST_TEST_EQ(x.size(), values.size());
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}
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}
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{
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map_type x(values.begin(), values.end(), 0);
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test_matches_reference(x, reference_map);
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BOOST_TEST_GT(x.size(), 0u);
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BOOST_TEST_LE(x.size(), values.size());
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(x.get_allocator() == allocator_type{});
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if (rg == sequential) {
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BOOST_TEST_EQ(x.size(), values.size());
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}
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}
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{
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map_type x(values.begin(), values.end(), 0, hasher(1));
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test_matches_reference(x, reference_map);
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BOOST_TEST_GT(x.size(), 0u);
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BOOST_TEST_LE(x.size(), values.size());
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BOOST_TEST_EQ(x.hash_function(), hasher(1));
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(x.get_allocator() == allocator_type{});
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if (rg == sequential) {
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BOOST_TEST_EQ(x.size(), values.size());
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}
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}
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{
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2));
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test_matches_reference(x, reference_map);
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BOOST_TEST_GT(x.size(), 0u);
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BOOST_TEST_LE(x.size(), values.size());
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BOOST_TEST_EQ(x.hash_function(), hasher(1));
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BOOST_TEST_EQ(x.key_eq(), key_equal(2));
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BOOST_TEST(x.get_allocator() == allocator_type{});
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if (rg == sequential) {
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BOOST_TEST_EQ(x.size(), values.size());
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}
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}
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{
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2),
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allocator_type{});
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test_matches_reference(x, reference_map);
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BOOST_TEST_GT(x.size(), 0u);
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BOOST_TEST_LE(x.size(), values.size());
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BOOST_TEST_EQ(x.hash_function(), hasher(1));
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BOOST_TEST_EQ(x.key_eq(), key_equal(2));
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BOOST_TEST(x.get_allocator() == allocator_type{});
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if (rg == sequential) {
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BOOST_TEST_EQ(x.size(), values.size());
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}
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}
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check_raii_counts();
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}
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template <class G> void copy_constructor(G gen, test::random_generator rg)
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{
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{
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map_type x(0, hasher(1), key_equal(2), allocator_type{});
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map_type y(x);
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BOOST_TEST_EQ(y.size(), x.size());
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BOOST_TEST_EQ(y.hash_function(), x.hash_function());
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BOOST_TEST_EQ(y.key_eq(), x.key_eq());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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}
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auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
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auto reference_map =
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boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
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raii::reset_counts();
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{
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2),
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allocator_type{});
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thread_runner(
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values, [&x, &reference_map](
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boost::span<span_value_type<decltype(values)> > s) {
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(void)s;
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map_type y(x);
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test_matches_reference(x, reference_map);
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test_matches_reference(y, reference_map);
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BOOST_TEST_EQ(y.size(), x.size());
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BOOST_TEST_EQ(y.hash_function(), x.hash_function());
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BOOST_TEST_EQ(y.key_eq(), x.key_eq());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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});
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}
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check_raii_counts();
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raii::reset_counts();
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{
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allocator_type a;
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2), a);
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thread_runner(
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values, [&x, &reference_map, a](
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boost::span<span_value_type<decltype(values)> > s) {
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(void)s;
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map_type y(x, a);
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test_matches_reference(x, reference_map);
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test_matches_reference(y, reference_map);
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BOOST_TEST_EQ(y.size(), x.size());
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BOOST_TEST_EQ(y.hash_function(), x.hash_function());
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BOOST_TEST_EQ(y.key_eq(), x.key_eq());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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});
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}
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check_raii_counts();
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}
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template <class G>
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void copy_constructor_with_insertion(G gen, test::random_generator rg)
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{
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auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
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auto reference_map =
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boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
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raii::reset_counts();
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std::mutex m;
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std::condition_variable cv;
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bool ready = false;
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{
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map_type x(0, hasher(1), key_equal(2), allocator_type{});
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auto f = [&x, &values, &m, &cv, &ready] {
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{
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std::lock_guard<std::mutex> guard(m);
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ready = true;
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}
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cv.notify_all();
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for (auto const& val : values) {
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x.insert(val);
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}
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};
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std::thread t1(f);
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std::thread t2(f);
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thread_runner(
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values, [&x, &reference_map, &values, rg, &m, &cv, &ready](
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boost::span<span_value_type<decltype(values)> > s) {
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(void)s;
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{
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std::unique_lock<std::mutex> lk(m);
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cv.wait(lk, [&] { return ready; });
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}
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map_type y(x);
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BOOST_TEST_LE(y.size(), values.size());
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BOOST_TEST_EQ(y.hash_function(), x.hash_function());
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BOOST_TEST_EQ(y.key_eq(), x.key_eq());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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x.visit_all([&reference_map, rg](
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typename map_type::value_type const& val) {
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BOOST_TEST(reference_map.contains(val.first));
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if (rg == sequential) {
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BOOST_TEST_EQ(val.second, reference_map.find(val.first)->second);
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}
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});
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});
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t1.join();
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t2.join();
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}
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check_raii_counts();
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}
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template <class G> void move_constructor(G gen, test::random_generator rg)
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{
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{
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map_type x(0, hasher(1), key_equal(2), allocator_type{});
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auto const old_size = x.size();
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map_type y(std::move(x));
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BOOST_TEST_EQ(y.size(), old_size);
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BOOST_TEST_EQ(y.hash_function(), hasher(1));
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BOOST_TEST_EQ(y.key_eq(), key_equal(2));
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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}
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auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
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auto reference_map =
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boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
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raii::reset_counts();
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{
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2),
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allocator_type{});
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std::atomic_uint num_transfers{0};
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auto const old_mc = +raii::move_constructor;
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thread_runner(
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values, [&x, &reference_map, &num_transfers](
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boost::span<span_value_type<decltype(values)> > s) {
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(void)s;
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auto const old_size = x.size();
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map_type y(std::move(x));
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if (!y.empty()) {
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++num_transfers;
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test_matches_reference(y, reference_map);
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BOOST_TEST_EQ(y.size(), old_size);
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BOOST_TEST_EQ(y.hash_function(), hasher(1));
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BOOST_TEST_EQ(y.key_eq(), key_equal(2));
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} else {
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BOOST_TEST_EQ(y.size(), 0u);
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BOOST_TEST_EQ(y.hash_function(), hasher());
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BOOST_TEST_EQ(y.key_eq(), key_equal());
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}
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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});
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BOOST_TEST_EQ(num_transfers, 1u);
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BOOST_TEST_EQ(raii::move_constructor, old_mc);
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}
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check_raii_counts();
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// allocator-aware move constructor, unequal allocators
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raii::reset_counts();
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{
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2),
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allocator_type{1});
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std::atomic_uint num_transfers{0};
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auto const old_mc = +raii::move_constructor;
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auto const old_size = x.size();
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thread_runner(
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values, [&x, &reference_map, &num_transfers, old_size](
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boost::span<span_value_type<decltype(values)> > s) {
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(void)s;
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auto a = allocator_type{2};
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BOOST_TEST(a != x.get_allocator());
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map_type y(std::move(x), a);
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if (!y.empty()) {
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++num_transfers;
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test_matches_reference(y, reference_map);
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BOOST_TEST_EQ(y.size(), old_size);
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BOOST_TEST_EQ(y.hash_function(), hasher(1));
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BOOST_TEST_EQ(y.key_eq(), key_equal(2));
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} else {
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BOOST_TEST_EQ(y.size(), 0u);
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BOOST_TEST_EQ(y.hash_function(), hasher());
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BOOST_TEST_EQ(y.key_eq(), key_equal());
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}
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(y.get_allocator() != x.get_allocator());
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BOOST_TEST(y.get_allocator() == a);
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});
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BOOST_TEST_EQ(num_transfers, 1u);
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BOOST_TEST_EQ(raii::move_constructor, old_mc + (2 * old_size));
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}
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check_raii_counts();
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// allocator-aware move constructor, equal allocators
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raii::reset_counts();
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{
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map_type x(values.begin(), values.end(), 0, hasher(1), key_equal(2),
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allocator_type{1});
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std::atomic_uint num_transfers{0};
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auto const old_mc = +raii::move_constructor;
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auto const old_size = x.size();
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thread_runner(
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values, [&x, &reference_map, &num_transfers, old_size](
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boost::span<span_value_type<decltype(values)> > s) {
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(void)s;
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auto a = allocator_type{1};
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BOOST_TEST(a == x.get_allocator());
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map_type y(std::move(x), a);
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if (!y.empty()) {
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++num_transfers;
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test_matches_reference(y, reference_map);
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BOOST_TEST_EQ(y.size(), old_size);
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BOOST_TEST_EQ(y.hash_function(), hasher(1));
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BOOST_TEST_EQ(y.key_eq(), key_equal(2));
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} else {
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BOOST_TEST_EQ(y.size(), 0u);
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BOOST_TEST_EQ(y.hash_function(), hasher());
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BOOST_TEST_EQ(y.key_eq(), key_equal());
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}
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BOOST_TEST_EQ(x.size(), 0u);
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BOOST_TEST_EQ(x.hash_function(), hasher());
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BOOST_TEST_EQ(x.key_eq(), key_equal());
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BOOST_TEST(y.get_allocator() == x.get_allocator());
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BOOST_TEST(y.get_allocator() == a);
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});
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BOOST_TEST_EQ(num_transfers, 1u);
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BOOST_TEST_EQ(raii::move_constructor, old_mc);
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}
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check_raii_counts();
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}
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template <class G>
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void move_constructor_with_insertion(G gen, test::random_generator rg)
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{
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auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
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auto reference_map =
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boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
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raii::reset_counts();
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std::mutex m;
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std::condition_variable cv;
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|
bool ready = false;
|
|
|
|
{
|
|
map_type x(0, hasher(1), key_equal(2), allocator_type{});
|
|
|
|
std::atomic_uint num_transfers{0};
|
|
|
|
std::thread t1([&x, &values] {
|
|
for (auto const& val : values) {
|
|
x.insert(val);
|
|
}
|
|
});
|
|
|
|
std::thread t2([&x, &m, &cv, &ready] {
|
|
while (x.empty()) {
|
|
std::this_thread::yield();
|
|
}
|
|
|
|
{
|
|
std::lock_guard<std::mutex> guard(m);
|
|
ready = true;
|
|
}
|
|
cv.notify_all();
|
|
});
|
|
|
|
thread_runner(
|
|
values, [&x, &reference_map, &num_transfers, rg, &m, &ready, &cv](
|
|
boost::span<span_value_type<decltype(values)> > s) {
|
|
(void)s;
|
|
|
|
{
|
|
std::unique_lock<std::mutex> lk(m);
|
|
cv.wait(lk, [&] { return ready; });
|
|
}
|
|
|
|
map_type y(std::move(x));
|
|
|
|
if (!y.empty()) {
|
|
++num_transfers;
|
|
y.cvisit_all([&reference_map, rg](map_value_type const& val) {
|
|
BOOST_TEST(reference_map.contains(val.first));
|
|
if (rg == sequential) {
|
|
BOOST_TEST_EQ(
|
|
val.second, reference_map.find(val.first)->second);
|
|
}
|
|
});
|
|
}
|
|
});
|
|
|
|
t1.join();
|
|
t2.join();
|
|
|
|
BOOST_TEST_GE(num_transfers, 1u);
|
|
}
|
|
|
|
check_raii_counts();
|
|
}
|
|
|
|
template <class G>
|
|
void iterator_range_with_allocator(G gen, test::random_generator rg)
|
|
{
|
|
auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
|
|
auto reference_map =
|
|
boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
|
|
|
|
raii::reset_counts();
|
|
|
|
{
|
|
allocator_type a;
|
|
map_type x(values.begin(), values.end(), a);
|
|
|
|
BOOST_TEST_GT(x.size(), 0u);
|
|
BOOST_TEST_LE(x.size(), values.size());
|
|
if (rg == sequential) {
|
|
BOOST_TEST_EQ(x.size(), values.size());
|
|
}
|
|
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
|
|
BOOST_TEST(x.get_allocator() == a);
|
|
|
|
test_fuzzy_matches_reference(x, reference_map, rg);
|
|
}
|
|
|
|
check_raii_counts();
|
|
}
|
|
|
|
UNORDERED_AUTO_TEST (explicit_allocator) {
|
|
raii::reset_counts();
|
|
|
|
{
|
|
allocator_type a;
|
|
map_type x(a);
|
|
|
|
BOOST_TEST_EQ(x.size(), 0u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
|
|
BOOST_TEST(x.get_allocator() == a);
|
|
}
|
|
}
|
|
|
|
UNORDERED_AUTO_TEST (initializer_list_with_all_params) {
|
|
// hard-code 11 unique values
|
|
std::initializer_list<map_value_type> ilist{
|
|
map_value_type{raii{0}, raii{0}},
|
|
map_value_type{raii{1}, raii{1}},
|
|
map_value_type{raii{2}, raii{2}},
|
|
map_value_type{raii{3}, raii{3}},
|
|
map_value_type{raii{4}, raii{4}},
|
|
map_value_type{raii{5}, raii{5}},
|
|
map_value_type{raii{6}, raii{6}},
|
|
map_value_type{raii{6}, raii{6}},
|
|
map_value_type{raii{7}, raii{7}},
|
|
map_value_type{raii{8}, raii{8}},
|
|
map_value_type{raii{9}, raii{9}},
|
|
map_value_type{raii{10}, raii{10}},
|
|
map_value_type{raii{9}, raii{9}},
|
|
map_value_type{raii{8}, raii{8}},
|
|
map_value_type{raii{7}, raii{7}},
|
|
map_value_type{raii{6}, raii{6}},
|
|
map_value_type{raii{5}, raii{5}},
|
|
map_value_type{raii{4}, raii{4}},
|
|
map_value_type{raii{3}, raii{3}},
|
|
map_value_type{raii{2}, raii{2}},
|
|
map_value_type{raii{1}, raii{1}},
|
|
map_value_type{raii{0}, raii{0}},
|
|
};
|
|
|
|
{
|
|
raii::reset_counts();
|
|
|
|
map_type x(ilist, 0, hasher(1), key_equal(2), allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(x.size(), 11u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher(1));
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal(2));
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(raii::default_constructor, 0u);
|
|
BOOST_TEST_EQ(raii::copy_constructor, 2 * ilist.size());
|
|
BOOST_TEST_EQ(raii::move_constructor, 2 * 11u);
|
|
}
|
|
check_raii_counts();
|
|
|
|
{
|
|
raii::reset_counts();
|
|
|
|
map_type x(ilist, allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(x.size(), 11u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(raii::default_constructor, 0u);
|
|
BOOST_TEST_EQ(raii::copy_constructor, 2 * ilist.size());
|
|
BOOST_TEST_EQ(raii::move_constructor, 2 * 11u);
|
|
}
|
|
check_raii_counts();
|
|
|
|
{
|
|
raii::reset_counts();
|
|
|
|
map_type x(ilist, 0, allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(x.size(), 11u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(raii::default_constructor, 0u);
|
|
BOOST_TEST_EQ(raii::copy_constructor, 2 * ilist.size());
|
|
BOOST_TEST_EQ(raii::move_constructor, 2 * 11u);
|
|
}
|
|
check_raii_counts();
|
|
|
|
{
|
|
raii::reset_counts();
|
|
|
|
map_type x(ilist, 0, hasher(1), allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(x.size(), 11u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher(1));
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
|
|
BOOST_TEST_EQ(raii::default_constructor, 0u);
|
|
BOOST_TEST_EQ(raii::copy_constructor, 2 * ilist.size());
|
|
BOOST_TEST_EQ(raii::move_constructor, 2 * 11u);
|
|
}
|
|
check_raii_counts();
|
|
}
|
|
|
|
UNORDERED_AUTO_TEST (bucket_count_and_allocator) {
|
|
raii::reset_counts();
|
|
|
|
{
|
|
map_type x(0, allocator_type(3));
|
|
BOOST_TEST_EQ(x.size(), 0u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
}
|
|
|
|
{
|
|
map_type x(4096, allocator_type(3));
|
|
BOOST_TEST_EQ(x.size(), 0u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
}
|
|
}
|
|
|
|
UNORDERED_AUTO_TEST (bucket_count_with_hasher_and_allocator) {
|
|
raii::reset_counts();
|
|
|
|
{
|
|
map_type x(0, hasher(1), allocator_type(3));
|
|
BOOST_TEST_EQ(x.size(), 0u);
|
|
BOOST_TEST_EQ(x.hash_function(), hasher(1));
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == allocator_type(3));
|
|
}
|
|
}
|
|
|
|
template <class G>
|
|
void iterator_range_with_bucket_count_and_allocator(
|
|
G gen, test::random_generator rg)
|
|
{
|
|
auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
|
|
auto reference_map =
|
|
boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
|
|
|
|
raii::reset_counts();
|
|
|
|
{
|
|
allocator_type a(3);
|
|
map_type x(values.begin(), values.end(), 0, a);
|
|
test_fuzzy_matches_reference(x, reference_map, rg);
|
|
|
|
BOOST_TEST_EQ(x.hash_function(), hasher());
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == a);
|
|
}
|
|
|
|
check_raii_counts();
|
|
}
|
|
|
|
template <class G>
|
|
void iterator_range_with_bucket_count_hasher_and_allocator(
|
|
G gen, test::random_generator rg)
|
|
{
|
|
auto values = make_random_values(1024 * 16, [&] { return gen(rg); });
|
|
auto reference_map =
|
|
boost::unordered_flat_map<raii, raii>(values.begin(), values.end());
|
|
|
|
raii::reset_counts();
|
|
|
|
{
|
|
allocator_type a(3);
|
|
hasher hf(1);
|
|
map_type x(values.begin(), values.end(), 0, hf, a);
|
|
test_fuzzy_matches_reference(x, reference_map, rg);
|
|
|
|
BOOST_TEST_EQ(x.hash_function(), hf);
|
|
BOOST_TEST_EQ(x.key_eq(), key_equal());
|
|
BOOST_TEST(x.get_allocator() == a);
|
|
}
|
|
|
|
check_raii_counts();
|
|
}
|
|
|
|
} // namespace
|
|
|
|
// clang-format off
|
|
UNORDERED_TEST(
|
|
from_iterator_range,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
copy_constructor,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
copy_constructor_with_insertion,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
move_constructor,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
move_constructor_with_insertion,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
iterator_range_with_allocator,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
iterator_range_with_bucket_count_and_allocator,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
UNORDERED_TEST(
|
|
iterator_range_with_bucket_count_hasher_and_allocator,
|
|
((value_type_generator))
|
|
((default_generator)(sequential)(limited_range)))
|
|
|
|
// clang-format on
|
|
|
|
RUN_TESTS()
|