Some time ago, I introduced shortcut features like dylib-has-no-shared_mutex to encode whether the deployment target supported shared_mutex (say). This made the test suite annotations cleaner. However, the problem with building Lit features on top of other Lit features is that it's easier for them to become stale, especially when they are generated programmatically. Furthermore, it makes the bar for defining configurations from scratch higher, since more features have to be defined. Instead, I think it's better to put the XFAILs in the tests directly, which allows cleaning them up with a simple grep.
229 lines
6.2 KiB
C++
229 lines
6.2 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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// UNSUPPORTED: c++03, c++11, c++14
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// Throwing bad_optional_access is supported starting in macosx10.13
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// XFAIL: with_system_cxx_lib=macosx10.12 && !no-exceptions
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// XFAIL: with_system_cxx_lib=macosx10.11 && !no-exceptions
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// XFAIL: with_system_cxx_lib=macosx10.10 && !no-exceptions
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// XFAIL: with_system_cxx_lib=macosx10.9 && !no-exceptions
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// <optional>
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// constexpr optional(optional<T>&& rhs);
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#include <optional>
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#include <type_traits>
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#include <cassert>
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#include "test_macros.h"
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#include "archetypes.h"
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using std::optional;
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template <class T, class ...InitArgs>
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void test(InitArgs&&... args)
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{
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const optional<T> orig(std::forward<InitArgs>(args)...);
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optional<T> rhs(orig);
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bool rhs_engaged = static_cast<bool>(rhs);
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optional<T> lhs = std::move(rhs);
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assert(static_cast<bool>(lhs) == rhs_engaged);
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if (rhs_engaged)
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assert(*lhs == *orig);
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}
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template <class T, class ...InitArgs>
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constexpr bool constexpr_test(InitArgs&&... args)
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{
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static_assert( std::is_trivially_copy_constructible_v<T>, ""); // requirement
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const optional<T> orig(std::forward<InitArgs>(args)...);
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optional<T> rhs(orig);
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optional<T> lhs = std::move(rhs);
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return (lhs.has_value() == orig.has_value()) &&
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(lhs.has_value() ? *lhs == *orig : true);
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}
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void test_throwing_ctor() {
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#ifndef TEST_HAS_NO_EXCEPTIONS
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struct Z {
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Z() : count(0) {}
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Z(Z&& o) : count(o.count + 1)
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{ if (count == 2) throw 6; }
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int count;
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};
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Z z;
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optional<Z> rhs(std::move(z));
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try
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{
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optional<Z> lhs(std::move(rhs));
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assert(false);
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}
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catch (int i)
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{
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assert(i == 6);
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}
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#endif
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}
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template <class T, class ...InitArgs>
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void test_ref(InitArgs&&... args)
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{
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optional<T> rhs(std::forward<InitArgs>(args)...);
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bool rhs_engaged = static_cast<bool>(rhs);
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optional<T> lhs = std::move(rhs);
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assert(static_cast<bool>(lhs) == rhs_engaged);
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if (rhs_engaged)
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assert(&(*lhs) == &(*rhs));
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}
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void test_reference_extension()
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{
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#if defined(_LIBCPP_VERSION) && 0 // FIXME these extensions are currently disabled.
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using T = TestTypes::TestType;
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T::reset();
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{
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T t;
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T::reset_constructors();
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test_ref<T&>();
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test_ref<T&>(t);
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assert(T::alive == 1);
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assert(T::constructed == 0);
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assert(T::assigned == 0);
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assert(T::destroyed == 0);
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}
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assert(T::destroyed == 1);
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assert(T::alive == 0);
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{
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T t;
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const T& ct = t;
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T::reset_constructors();
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test_ref<T const&>();
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test_ref<T const&>(t);
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test_ref<T const&>(ct);
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assert(T::alive == 1);
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assert(T::constructed == 0);
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assert(T::assigned == 0);
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assert(T::destroyed == 0);
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}
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assert(T::alive == 0);
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assert(T::destroyed == 1);
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{
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T t;
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T::reset_constructors();
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test_ref<T&&>();
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test_ref<T&&>(std::move(t));
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assert(T::alive == 1);
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assert(T::constructed == 0);
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assert(T::assigned == 0);
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assert(T::destroyed == 0);
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}
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assert(T::alive == 0);
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assert(T::destroyed == 1);
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{
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T t;
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const T& ct = t;
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T::reset_constructors();
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test_ref<T const&&>();
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test_ref<T const&&>(std::move(t));
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test_ref<T const&&>(std::move(ct));
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assert(T::alive == 1);
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assert(T::constructed == 0);
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assert(T::assigned == 0);
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assert(T::destroyed == 0);
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}
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assert(T::alive == 0);
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assert(T::destroyed == 1);
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{
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static_assert(!std::is_copy_constructible<std::optional<T&&>>::value, "");
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static_assert(!std::is_copy_constructible<std::optional<T const&&>>::value, "");
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}
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#endif
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}
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int main(int, char**)
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{
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test<int>();
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test<int>(3);
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static_assert(constexpr_test<int>(), "" );
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static_assert(constexpr_test<int>(3), "" );
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{
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optional<const int> o(42);
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optional<const int> o2(std::move(o));
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assert(*o2 == 42);
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}
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{
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using T = TestTypes::TestType;
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T::reset();
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optional<T> rhs;
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assert(T::alive == 0);
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const optional<T> lhs(std::move(rhs));
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assert(lhs.has_value() == false);
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assert(rhs.has_value() == false);
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assert(T::alive == 0);
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}
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TestTypes::TestType::reset();
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{
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using T = TestTypes::TestType;
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T::reset();
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optional<T> rhs(42);
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assert(T::alive == 1);
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assert(T::value_constructed == 1);
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assert(T::move_constructed == 0);
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const optional<T> lhs(std::move(rhs));
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assert(lhs.has_value());
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assert(rhs.has_value());
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assert(lhs.value().value == 42);
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assert(rhs.value().value == -1);
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assert(T::move_constructed == 1);
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assert(T::alive == 2);
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}
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TestTypes::TestType::reset();
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{
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using namespace ConstexprTestTypes;
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test<TestType>();
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test<TestType>(42);
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}
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{
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using namespace TrivialTestTypes;
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test<TestType>();
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test<TestType>(42);
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}
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{
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test_throwing_ctor();
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}
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{
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struct ThrowsMove {
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ThrowsMove() noexcept(false) {}
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ThrowsMove(ThrowsMove const&) noexcept(false) {}
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ThrowsMove(ThrowsMove &&) noexcept(false) {}
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};
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static_assert(!std::is_nothrow_move_constructible<optional<ThrowsMove>>::value, "");
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struct NoThrowMove {
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NoThrowMove() noexcept(false) {}
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NoThrowMove(NoThrowMove const&) noexcept(false) {}
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NoThrowMove(NoThrowMove &&) noexcept(true) {}
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};
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static_assert(std::is_nothrow_move_constructible<optional<NoThrowMove>>::value, "");
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}
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{
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test_reference_extension();
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}
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{
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constexpr std::optional<int> o1{4};
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constexpr std::optional<int> o2 = std::move(o1);
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static_assert( *o2 == 4, "" );
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}
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return 0;
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}
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