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This completes the implementation of P1032's changes to <iterator>, <string_view>, <tuple>, and <utility> in C++20. http://www.open-std.org/jtc1/sc22/wg21/docs/papers/2018/p1032r1.html Drive-by fix a couple of unintended rvalues in "*iterators*/*.fail.cpp". Differential Revision: https://reviews.llvm.org/D96385
183 lines
5.6 KiB
C++
183 lines
5.6 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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// <tuple>
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// template <class... Types> class tuple;
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// tuple& operator=(tuple&& u);
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// UNSUPPORTED: c++03
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#include <memory>
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#include <tuple>
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#include <utility>
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#include <cassert>
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#include "test_macros.h"
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#include "MoveOnly.h"
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struct NonAssignable {
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NonAssignable& operator=(NonAssignable const&) = delete;
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NonAssignable& operator=(NonAssignable&&) = delete;
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};
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struct CopyAssignable {
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CopyAssignable& operator=(CopyAssignable const&) = default;
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CopyAssignable& operator=(CopyAssignable&&) = delete;
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};
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static_assert(std::is_copy_assignable<CopyAssignable>::value, "");
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struct MoveAssignable {
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MoveAssignable& operator=(MoveAssignable const&) = delete;
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MoveAssignable& operator=(MoveAssignable&&) = default;
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};
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struct NothrowMoveAssignable {
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NothrowMoveAssignable& operator=(NothrowMoveAssignable&&) noexcept { return *this; }
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};
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struct PotentiallyThrowingMoveAssignable {
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PotentiallyThrowingMoveAssignable& operator=(PotentiallyThrowingMoveAssignable&&) { return *this; }
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};
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struct CountAssign {
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static int copied;
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static int moved;
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static void reset() { copied = moved = 0; }
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CountAssign() = default;
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CountAssign& operator=(CountAssign const&) { ++copied; return *this; }
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CountAssign& operator=(CountAssign&&) { ++moved; return *this; }
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};
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int CountAssign::copied = 0;
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int CountAssign::moved = 0;
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TEST_CONSTEXPR_CXX20
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bool test()
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{
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{
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typedef std::tuple<> T;
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T t0;
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T t;
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t = std::move(t0);
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}
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{
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typedef std::tuple<MoveOnly> T;
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T t0(MoveOnly(0));
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T t;
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t = std::move(t0);
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assert(std::get<0>(t) == 0);
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}
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{
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typedef std::tuple<MoveOnly, MoveOnly> T;
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T t0(MoveOnly(0), MoveOnly(1));
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T t;
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t = std::move(t0);
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assert(std::get<0>(t) == 0);
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assert(std::get<1>(t) == 1);
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}
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{
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typedef std::tuple<MoveOnly, MoveOnly, MoveOnly> T;
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T t0(MoveOnly(0), MoveOnly(1), MoveOnly(2));
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T t;
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t = std::move(t0);
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assert(std::get<0>(t) == 0);
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assert(std::get<1>(t) == 1);
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assert(std::get<2>(t) == 2);
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}
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{
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// test reference assignment.
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using T = std::tuple<int&, int&&>;
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int x = 42;
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int y = 100;
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int x2 = -1;
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int y2 = 500;
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T t(x, std::move(y));
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T t2(x2, std::move(y2));
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t = std::move(t2);
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assert(std::get<0>(t) == x2);
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assert(&std::get<0>(t) == &x);
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assert(std::get<1>(t) == y2);
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assert(&std::get<1>(t) == &y);
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}
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return true;
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}
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int main(int, char**)
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{
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test();
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#if TEST_STD_VER >= 20
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static_assert(test());
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#endif
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{
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// test that the implicitly generated move assignment operator
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// is properly deleted
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using T = std::tuple<std::unique_ptr<int>>;
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static_assert(std::is_move_assignable<T>::value, "");
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static_assert(!std::is_copy_assignable<T>::value, "");
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}
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{
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using T = std::tuple<int, NonAssignable>;
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static_assert(!std::is_move_assignable<T>::value, "");
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}
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{
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using T = std::tuple<int, MoveAssignable>;
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static_assert(std::is_move_assignable<T>::value, "");
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}
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{
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// The move should decay to a copy.
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CountAssign::reset();
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using T = std::tuple<CountAssign, CopyAssignable>;
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static_assert(std::is_move_assignable<T>::value, "");
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T t1;
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T t2;
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t1 = std::move(t2);
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assert(CountAssign::copied == 1);
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assert(CountAssign::moved == 0);
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}
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{
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using T = std::tuple<int, NonAssignable>;
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static_assert(!std::is_move_assignable<T>::value, "");
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}
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{
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using T = std::tuple<int, MoveAssignable>;
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static_assert(std::is_move_assignable<T>::value, "");
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}
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{
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using T = std::tuple<NothrowMoveAssignable, int>;
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static_assert(std::is_nothrow_move_assignable<T>::value, "");
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}
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{
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using T = std::tuple<PotentiallyThrowingMoveAssignable, int>;
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static_assert(!std::is_nothrow_move_assignable<T>::value, "");
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}
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{
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// We assign through the reference and don't move out of the incoming ref,
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// so this doesn't work (but would if the type were CopyAssignable).
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using T1 = std::tuple<MoveAssignable&, int>;
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static_assert(!std::is_move_assignable<T1>::value, "");
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// ... works if it's CopyAssignable
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using T2 = std::tuple<CopyAssignable&, int>;
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static_assert(std::is_move_assignable<T2>::value, "");
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// For rvalue-references, we can move-assign if the type is MoveAssignable
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// or CopyAssignable (since in the worst case the move will decay into a copy).
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using T3 = std::tuple<MoveAssignable&&, int>;
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using T4 = std::tuple<CopyAssignable&&, int>;
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static_assert(std::is_move_assignable<T3>::value, "");
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static_assert(std::is_move_assignable<T4>::value, "");
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// In all cases, we can't move-assign if the types are not assignable,
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// since we assign through the reference.
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using T5 = std::tuple<NonAssignable&, int>;
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using T6 = std::tuple<NonAssignable&&, int>;
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static_assert(!std::is_move_assignable<T5>::value, "");
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static_assert(!std::is_move_assignable<T6>::value, "");
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}
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return 0;
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}
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