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clang-p2996/libcxx/test/std/utilities/optional/optional.object/optional.object.ctor/move.pass.cpp
Louis Dionne 2659663ee3 [libc++] Remove shortcut Lit features for Apple backdeployment
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.
2020-07-16 15:39:08 -04:00

229 lines
6.2 KiB
C++

//===----------------------------------------------------------------------===//
//
// Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions.
// See https://llvm.org/LICENSE.txt for license information.
// SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception
//
//===----------------------------------------------------------------------===//
// UNSUPPORTED: c++03, c++11, c++14
// Throwing bad_optional_access is supported starting in macosx10.13
// XFAIL: with_system_cxx_lib=macosx10.12 && !no-exceptions
// XFAIL: with_system_cxx_lib=macosx10.11 && !no-exceptions
// XFAIL: with_system_cxx_lib=macosx10.10 && !no-exceptions
// XFAIL: with_system_cxx_lib=macosx10.9 && !no-exceptions
// <optional>
// constexpr optional(optional<T>&& rhs);
#include <optional>
#include <type_traits>
#include <cassert>
#include "test_macros.h"
#include "archetypes.h"
using std::optional;
template <class T, class ...InitArgs>
void test(InitArgs&&... args)
{
const optional<T> orig(std::forward<InitArgs>(args)...);
optional<T> rhs(orig);
bool rhs_engaged = static_cast<bool>(rhs);
optional<T> lhs = std::move(rhs);
assert(static_cast<bool>(lhs) == rhs_engaged);
if (rhs_engaged)
assert(*lhs == *orig);
}
template <class T, class ...InitArgs>
constexpr bool constexpr_test(InitArgs&&... args)
{
static_assert( std::is_trivially_copy_constructible_v<T>, ""); // requirement
const optional<T> orig(std::forward<InitArgs>(args)...);
optional<T> rhs(orig);
optional<T> lhs = std::move(rhs);
return (lhs.has_value() == orig.has_value()) &&
(lhs.has_value() ? *lhs == *orig : true);
}
void test_throwing_ctor() {
#ifndef TEST_HAS_NO_EXCEPTIONS
struct Z {
Z() : count(0) {}
Z(Z&& o) : count(o.count + 1)
{ if (count == 2) throw 6; }
int count;
};
Z z;
optional<Z> rhs(std::move(z));
try
{
optional<Z> lhs(std::move(rhs));
assert(false);
}
catch (int i)
{
assert(i == 6);
}
#endif
}
template <class T, class ...InitArgs>
void test_ref(InitArgs&&... args)
{
optional<T> rhs(std::forward<InitArgs>(args)...);
bool rhs_engaged = static_cast<bool>(rhs);
optional<T> lhs = std::move(rhs);
assert(static_cast<bool>(lhs) == rhs_engaged);
if (rhs_engaged)
assert(&(*lhs) == &(*rhs));
}
void test_reference_extension()
{
#if defined(_LIBCPP_VERSION) && 0 // FIXME these extensions are currently disabled.
using T = TestTypes::TestType;
T::reset();
{
T t;
T::reset_constructors();
test_ref<T&>();
test_ref<T&>(t);
assert(T::alive == 1);
assert(T::constructed == 0);
assert(T::assigned == 0);
assert(T::destroyed == 0);
}
assert(T::destroyed == 1);
assert(T::alive == 0);
{
T t;
const T& ct = t;
T::reset_constructors();
test_ref<T const&>();
test_ref<T const&>(t);
test_ref<T const&>(ct);
assert(T::alive == 1);
assert(T::constructed == 0);
assert(T::assigned == 0);
assert(T::destroyed == 0);
}
assert(T::alive == 0);
assert(T::destroyed == 1);
{
T t;
T::reset_constructors();
test_ref<T&&>();
test_ref<T&&>(std::move(t));
assert(T::alive == 1);
assert(T::constructed == 0);
assert(T::assigned == 0);
assert(T::destroyed == 0);
}
assert(T::alive == 0);
assert(T::destroyed == 1);
{
T t;
const T& ct = t;
T::reset_constructors();
test_ref<T const&&>();
test_ref<T const&&>(std::move(t));
test_ref<T const&&>(std::move(ct));
assert(T::alive == 1);
assert(T::constructed == 0);
assert(T::assigned == 0);
assert(T::destroyed == 0);
}
assert(T::alive == 0);
assert(T::destroyed == 1);
{
static_assert(!std::is_copy_constructible<std::optional<T&&>>::value, "");
static_assert(!std::is_copy_constructible<std::optional<T const&&>>::value, "");
}
#endif
}
int main(int, char**)
{
test<int>();
test<int>(3);
static_assert(constexpr_test<int>(), "" );
static_assert(constexpr_test<int>(3), "" );
{
optional<const int> o(42);
optional<const int> o2(std::move(o));
assert(*o2 == 42);
}
{
using T = TestTypes::TestType;
T::reset();
optional<T> rhs;
assert(T::alive == 0);
const optional<T> lhs(std::move(rhs));
assert(lhs.has_value() == false);
assert(rhs.has_value() == false);
assert(T::alive == 0);
}
TestTypes::TestType::reset();
{
using T = TestTypes::TestType;
T::reset();
optional<T> rhs(42);
assert(T::alive == 1);
assert(T::value_constructed == 1);
assert(T::move_constructed == 0);
const optional<T> lhs(std::move(rhs));
assert(lhs.has_value());
assert(rhs.has_value());
assert(lhs.value().value == 42);
assert(rhs.value().value == -1);
assert(T::move_constructed == 1);
assert(T::alive == 2);
}
TestTypes::TestType::reset();
{
using namespace ConstexprTestTypes;
test<TestType>();
test<TestType>(42);
}
{
using namespace TrivialTestTypes;
test<TestType>();
test<TestType>(42);
}
{
test_throwing_ctor();
}
{
struct ThrowsMove {
ThrowsMove() noexcept(false) {}
ThrowsMove(ThrowsMove const&) noexcept(false) {}
ThrowsMove(ThrowsMove &&) noexcept(false) {}
};
static_assert(!std::is_nothrow_move_constructible<optional<ThrowsMove>>::value, "");
struct NoThrowMove {
NoThrowMove() noexcept(false) {}
NoThrowMove(NoThrowMove const&) noexcept(false) {}
NoThrowMove(NoThrowMove &&) noexcept(true) {}
};
static_assert(std::is_nothrow_move_constructible<optional<NoThrowMove>>::value, "");
}
{
test_reference_extension();
}
{
constexpr std::optional<int> o1{4};
constexpr std::optional<int> o2 = std::move(o1);
static_assert( *o2 == 4, "" );
}
return 0;
}