Also add absl/strings/internal/utf8.cc to the sandbox source lists; the newer str_format wide-char path references WideToUtf8. Differential Revision: https://phabricator.services.mozilla.com/D309452
414 lines
13 KiB
C++
414 lines
13 KiB
C++
// Copyright 2019 The Abseil Authors.
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include "absl/functional/function_ref.h"
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#include <functional>
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#include <memory>
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#include <type_traits>
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#include <utility>
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#include "gmock/gmock.h"
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#include "gtest/gtest.h"
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#include "absl/container/internal/test_instance_tracker.h"
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#include "absl/functional/any_invocable.h"
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#include "absl/memory/memory.h"
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#include "absl/utility/utility.h"
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namespace absl {
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ABSL_NAMESPACE_BEGIN
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namespace {
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struct Class {
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int Func() { return 42; }
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int CFunc() const { return 43; }
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};
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int Function() { return 1337; }
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template <typename T>
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T Dereference(const T* v) {
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return *v;
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}
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template <typename T>
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T Copy(const T& v) {
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return v;
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}
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TEST(FunctionRefTest, Function1) {
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FunctionRef<int()> ref(&Function);
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EXPECT_EQ(1337, ref());
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}
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TEST(FunctionRefTest, Function2) {
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FunctionRef<int()> ref(Function);
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EXPECT_EQ(1337, ref());
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}
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TEST(FunctionRefTest, ConstFunction) {
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FunctionRef<int() const> ref(Function);
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EXPECT_EQ(1337, ref());
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}
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TEST(FunctionRefTest, CopyAssignment) {
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FunctionRef<int()> a = +[]() -> int {
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ADD_FAILURE() << "Unexpectedly called";
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return 0;
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};
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FunctionRef<int()> b = +[] { return 1337; };
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a = b;
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EXPECT_EQ(1337, a());
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}
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int NoExceptFunction() noexcept { return 1337; }
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// TODO(jdennett): Add a test for noexcept member functions.
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TEST(FunctionRefTest, NoExceptFunction) {
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FunctionRef<int()> ref(NoExceptFunction);
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EXPECT_EQ(1337, ref());
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}
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TEST(FunctionRefTest, ForwardsArgs) {
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auto l = [](std::unique_ptr<int> i) { return *i; };
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FunctionRef<int(std::unique_ptr<int>)> ref(l);
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EXPECT_EQ(42, ref(std::make_unique<int>(42)));
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}
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TEST(FunctionRef, ReturnMoveOnly) {
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auto l = [] { return std::make_unique<int>(29); };
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FunctionRef<std::unique_ptr<int>()> ref(l);
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EXPECT_EQ(29, *ref());
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}
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TEST(FunctionRef, ManyArgs) {
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auto l = [](int a, int b, int c) { return a + b + c; };
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FunctionRef<int(int, int, int)> ref(l);
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EXPECT_EQ(6, ref(1, 2, 3));
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}
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TEST(FunctionRef, VoidResultFromNonVoidFunctor) {
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bool ran = false;
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auto l = [&]() -> int {
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ran = true;
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return 2;
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};
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FunctionRef<void()> ref(l);
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ref();
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EXPECT_TRUE(ran);
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}
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TEST(FunctionRef, CastFromDerived) {
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struct Base {};
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struct Derived : public Base {};
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Derived d;
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auto l1 = [&](Base* b) { EXPECT_EQ(&d, b); };
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FunctionRef<void(Derived*)> ref1(l1);
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ref1(&d);
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auto l2 = [&]() -> Derived* { return &d; };
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FunctionRef<Base*()> ref2(l2);
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EXPECT_EQ(&d, ref2());
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}
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TEST(FunctionRef, VoidResultFromNonVoidFuncton) {
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FunctionRef<void()> ref(Function);
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ref();
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}
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TEST(FunctionRef, MemberPtr) {
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struct S {
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int i;
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};
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S s{1100111};
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auto mem_ptr = &S::i;
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FunctionRef<int(const S& s)> ref(mem_ptr);
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EXPECT_EQ(1100111, ref(s));
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}
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TEST(FunctionRef, MemberFun) {
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struct S {
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int i;
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int get_i() const { return i; }
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};
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S s{22};
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auto mem_fun_ptr = &S::get_i;
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FunctionRef<int(const S& s)> ref(mem_fun_ptr);
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EXPECT_EQ(22, ref(s));
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}
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TEST(FunctionRef, MemberFunRefqualified) {
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struct S {
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int i;
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int get_i() && { return i; }
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};
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auto mem_fun_ptr = &S::get_i;
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S s{22};
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FunctionRef<int(S && s)> ref(mem_fun_ptr);
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EXPECT_EQ(22, ref(std::move(s)));
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}
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#if !defined(_WIN32) && defined(GTEST_HAS_DEATH_TEST)
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TEST(FunctionRef, MemberFunRefqualifiedNull) {
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struct S {
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int i;
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int get_i() && { return i; }
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};
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auto mem_fun_ptr = &S::get_i;
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mem_fun_ptr = nullptr;
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EXPECT_DEBUG_DEATH({ FunctionRef<int(S && s)> ref(mem_fun_ptr); }, "");
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}
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TEST(FunctionRef, NullMemberPtrAssertFails) {
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struct S {
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int i;
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};
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using MemberPtr = int S::*;
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MemberPtr mem_ptr = nullptr;
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EXPECT_DEBUG_DEATH({ FunctionRef<int(const S& s)> ref(mem_ptr); }, "");
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}
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TEST(FunctionRef, NullStdFunctionAssertPasses) {
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std::function<void()> function = []() {};
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FunctionRef<void()> ref(function);
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}
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TEST(FunctionRef, NullStdFunctionAssertFails) {
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std::function<void()> function = nullptr;
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EXPECT_DEBUG_DEATH({ FunctionRef<void()> ref(function); }, "");
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}
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TEST(FunctionRef, NullAnyInvocableAssertPasses) {
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AnyInvocable<void() const> invocable = []() {};
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FunctionRef<void()> ref(invocable);
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}
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TEST(FunctionRef, NullAnyInvocableAssertFails) {
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AnyInvocable<void() const> invocable = nullptr;
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EXPECT_DEBUG_DEATH({ FunctionRef<void()> ref(invocable); }, "");
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}
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#endif // GTEST_HAS_DEATH_TEST
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TEST(FunctionRef, CopiesAndMovesPerPassByValue) {
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absl::test_internal::InstanceTracker tracker;
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absl::test_internal::CopyableMovableInstance instance(0);
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auto l = [](absl::test_internal::CopyableMovableInstance) {};
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FunctionRef<void(absl::test_internal::CopyableMovableInstance)> ref(l);
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ref(instance);
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EXPECT_EQ(tracker.copies(), 1);
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EXPECT_EQ(tracker.moves(), 1);
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}
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TEST(FunctionRef, CopiesAndMovesPerPassByRef) {
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absl::test_internal::InstanceTracker tracker;
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absl::test_internal::CopyableMovableInstance instance(0);
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auto l = [](const absl::test_internal::CopyableMovableInstance&) {};
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FunctionRef<void(const absl::test_internal::CopyableMovableInstance&)> ref(l);
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ref(instance);
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EXPECT_EQ(tracker.copies(), 0);
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EXPECT_EQ(tracker.moves(), 0);
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}
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TEST(FunctionRef, CopiesAndMovesPerPassByValueCallByMove) {
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absl::test_internal::InstanceTracker tracker;
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absl::test_internal::CopyableMovableInstance instance(0);
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auto l = [](absl::test_internal::CopyableMovableInstance) {};
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FunctionRef<void(absl::test_internal::CopyableMovableInstance)> ref(l);
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ref(std::move(instance));
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EXPECT_EQ(tracker.copies(), 0);
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EXPECT_EQ(tracker.moves(), 2);
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}
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TEST(FunctionRef, CopiesAndMovesPerPassByValueToRef) {
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absl::test_internal::InstanceTracker tracker;
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absl::test_internal::CopyableMovableInstance instance(0);
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auto l = [](const absl::test_internal::CopyableMovableInstance&) {};
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FunctionRef<void(absl::test_internal::CopyableMovableInstance)> ref(l);
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ref(std::move(instance));
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EXPECT_EQ(tracker.copies(), 0);
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EXPECT_EQ(tracker.moves(), 1);
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}
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TEST(FunctionRef, PassByValueTypes) {
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using absl::functional_internal::Invoker;
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using absl::functional_internal::VoidPtr;
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using absl::test_internal::CopyableMovableInstance;
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struct Trivial {
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void* p[2];
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};
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struct LargeTrivial {
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void* p[3];
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};
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static_assert(std::is_same_v<Invoker<void, int>, void (*)(VoidPtr, int)>,
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"Scalar types should be passed by value");
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static_assert(
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std::is_same_v<Invoker<void, Trivial>, void (*)(VoidPtr, Trivial)>,
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"Small trivial types should be passed by value");
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static_assert(std::is_same_v<Invoker<void, LargeTrivial>,
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void (*)(VoidPtr, LargeTrivial&&)>,
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"Large trivial types should be passed by rvalue reference");
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static_assert(
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std::is_same_v<Invoker<void, CopyableMovableInstance>,
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void (*)(VoidPtr, CopyableMovableInstance&&)>,
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"Types with copy/move ctor should be passed by rvalue reference");
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// References are passed as references.
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static_assert(std::is_same_v<Invoker<void, int&>, void (*)(VoidPtr, int&)>,
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"Reference types should be preserved");
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static_assert(std::is_same_v<Invoker<void, CopyableMovableInstance&>,
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void (*)(VoidPtr, CopyableMovableInstance&)>,
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"Reference types should be preserved");
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static_assert(std::is_same_v<Invoker<void, CopyableMovableInstance&&>,
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void (*)(VoidPtr, CopyableMovableInstance&&)>,
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"Reference types should be preserved");
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// Make sure the address of an object received by reference is the same as the
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// address of the object passed by the caller.
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{
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LargeTrivial obj;
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auto test = [&obj](LargeTrivial& input) { ASSERT_EQ(&input, &obj); };
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absl::FunctionRef<void(LargeTrivial&)> ref(test);
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ref(obj);
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}
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{
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Trivial obj;
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auto test = [&obj](Trivial& input) { ASSERT_EQ(&input, &obj); };
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absl::FunctionRef<void(Trivial&)> ref(test);
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ref(obj);
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}
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}
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TEST(FunctionRef, ReferenceToIncompleteType) {
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struct IncompleteType;
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auto test = [](IncompleteType&) {};
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absl::FunctionRef<void(IncompleteType&)> ref(test);
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struct IncompleteType {};
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IncompleteType obj;
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ref(obj);
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}
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TEST(FunctionRefTest, CorrectConstQualifiers) {
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struct S {
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int operator()() { return 42; }
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int operator()() const { return 1337; }
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};
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S s;
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EXPECT_EQ(42, FunctionRef<int()>(s)());
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EXPECT_EQ(1337, FunctionRef<int() const>(s)());
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EXPECT_EQ(1337, FunctionRef<int()>(std::as_const(s))());
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EXPECT_EQ(1337, FunctionRef<int() const>(std::as_const(s))());
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}
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TEST(FunctionRefTest, Lambdas) {
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// Stateless lambdas implicitly convert to function pointers, so their
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// mutability is irrelevant.
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EXPECT_TRUE(FunctionRef<bool()>([]() /*const*/ { return true; })());
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EXPECT_TRUE(FunctionRef<bool()>([]() mutable { return true; })());
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EXPECT_TRUE(FunctionRef<bool() const>([]() /*const*/ { return true; })());
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#if defined(__clang__) || (ABSL_INTERNAL_CPLUSPLUS_LANG >= 202002L && \
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defined(_MSC_VER) && !defined(__EDG__))
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// MSVC has problems compiling the following code pre-C++20:
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// const auto f = []() mutable {};
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// f();
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// EDG's MSVC-compatible mode (which Visual C++ uses for Intellisense)
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// exhibits the bug in C++20 as well. So we don't support them.
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EXPECT_TRUE(FunctionRef<bool() const>([]() mutable { return true; })());
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#endif
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// Stateful lambdas are not implicitly convertible to function pointers, so
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// a const stateful lambda is not mutably callable.
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EXPECT_TRUE(FunctionRef<bool()>([v = true]() /*const*/ { return v; })());
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EXPECT_TRUE(FunctionRef<bool()>([v = true]() mutable { return v; })());
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EXPECT_TRUE(
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FunctionRef<bool() const>([v = true]() /*const*/ { return v; })());
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const auto func = [v = true]() mutable { return v; };
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static_assert(
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!std::is_convertible_v<decltype(func), FunctionRef<bool() const>>);
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}
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#if ABSL_INTERNAL_CPLUSPLUS_LANG >= 202002L
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static_assert(std::is_same_v<decltype(FunctionRef(nontype<&Class::Func>,
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std::declval<Class&>())),
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FunctionRef<int()>>);
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static_assert(std::is_same_v<decltype(FunctionRef(nontype<&Class::CFunc>,
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std::declval<Class&>())),
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FunctionRef<int() const>>);
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static_assert(std::is_same_v<decltype(FunctionRef(nontype<&Class::Func>,
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std::declval<Class*>())),
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FunctionRef<int()>>);
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static_assert(std::is_same_v<decltype(FunctionRef(nontype<&Class::CFunc>,
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std::declval<Class*>())),
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FunctionRef<int() const>>);
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TEST(FunctionRefTest, NonTypeParameterWithTemporaries) {
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static_assert(!std::is_constructible_v<FunctionRef<int()>,
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nontype_t<&Class::Func>, Class&&>);
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static_assert(
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!std::is_constructible_v<FunctionRef<int()>, nontype_t<&Class::Func>,
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const Class&&>);
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static_assert(!std::is_constructible_v<FunctionRef<int() const>,
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nontype_t<&Class::CFunc>, Class&&>);
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static_assert(
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!std::is_constructible_v<FunctionRef<int() const>,
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nontype_t<&Class::CFunc>, const Class&&>);
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}
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TEST(FunctionRefTest, NonTypeParameterWithDeductionGuides) {
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EXPECT_EQ(1337, FunctionRef(nontype<&Function>)());
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EXPECT_EQ(42, FunctionRef(nontype<&Copy<int>>,
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std::integral_constant<int, 42>::value)());
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EXPECT_EQ(42, FunctionRef(nontype<&Dereference<int>>,
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&std::integral_constant<int, 42>::value)());
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Class c;
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EXPECT_EQ(42, FunctionRef<int()>(nontype<&Class::Func>, c)());
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EXPECT_EQ(43, FunctionRef<int() const>(nontype<&Class::CFunc>, c)());
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EXPECT_EQ(42, FunctionRef<int()>(nontype<&Class::Func>, &c)());
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EXPECT_EQ(43, FunctionRef<int() const>(nontype<&Class::CFunc>, &c)());
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}
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#endif
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TEST(FunctionRefTest, OptionalArguments) {
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struct S {
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int operator()(int = 0) const { return 1337; }
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};
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S s;
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EXPECT_EQ(1337, FunctionRef<int()>(s)());
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}
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TEST(FunctionRefTest, NonConstToConstConversion) {
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// The const-qualified version might inherit from the non-const version.
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// We want to make sure that this doesn't introduce a bug when an instance of
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// the base (non-const) class is forwarded through the derived (const) class.
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// This has the potential to trigger the copy constructor, thus incorrectly
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// producing a copy rather than another indirection.
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absl::FunctionRef<int()> a = +[]() { return 1; };
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absl::FunctionRef<int() const> b = a;
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a = +[]() { return 2; };
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EXPECT_EQ(b(), 2);
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}
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} // namespace
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ABSL_NAMESPACE_END
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} // namespace absl
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