235 lines
8.2 KiB
C++
235 lines
8.2 KiB
C++
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// RUN: %clang_cc1 -std=c++2a -verify %s
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namespace usage_invalid {
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// FIXME: Should we diagnose a void return type?
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void voidreturn(int ¶m [[clang::lifetimebound]]);
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int *not_class_member() [[clang::lifetimebound]]; // expected-error {{non-member function has no implicit object parameter}}
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struct A {
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A() [[clang::lifetimebound]]; // expected-error {{cannot be applied to a constructor}}
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~A() [[clang::lifetimebound]]; // expected-error {{cannot be applied to a destructor}}
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static int *static_class_member() [[clang::lifetimebound]]; // expected-error {{static member function has no implicit object parameter}}
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int not_function [[clang::lifetimebound]]; // expected-error {{only applies to parameters and implicit object parameters}}
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int [[clang::lifetimebound]] also_not_function; // expected-error {{cannot be applied to types}}
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};
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int *attr_with_param(int ¶m [[clang::lifetimebound(42)]]); // expected-error {{takes no arguments}}
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}
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namespace usage_ok {
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struct IntRef { int *target; };
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int &refparam(int ¶m [[clang::lifetimebound]]);
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int &classparam(IntRef param [[clang::lifetimebound]]);
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// Do not diagnose non-void return types; they can still be lifetime-bound.
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long long ptrintcast(int ¶m [[clang::lifetimebound]]) {
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return (long long)¶m;
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}
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// Likewise.
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int &intptrcast(long long param [[clang::lifetimebound]]) {
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return *(int*)param;
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}
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struct A {
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A();
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A(int);
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int *class_member() [[clang::lifetimebound]];
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operator int*() [[clang::lifetimebound]];
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};
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int *p = A().class_member(); // expected-warning {{temporary whose address is used as value of local variable 'p' will be destroyed at the end of the full-expression}}
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int *q = A(); // expected-warning {{temporary whose address is used as value of local variable 'q' will be destroyed at the end of the full-expression}}
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int *r = A(1); // expected-warning {{temporary whose address is used as value of local variable 'r' will be destroyed at the end of the full-expression}}
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}
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# 1 "<std>" 1 3
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namespace std {
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using size_t = __SIZE_TYPE__;
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struct string {
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string();
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string(const char*);
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char &operator[](size_t) const [[clang::lifetimebound]];
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};
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string operator""s(const char *, size_t);
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struct string_view {
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string_view();
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string_view(const char *p [[clang::lifetimebound]]);
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string_view(const string &s [[clang::lifetimebound]]);
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};
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string_view operator""sv(const char *, size_t);
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struct vector {
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int *data();
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size_t size();
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};
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template<typename K, typename V> struct map {};
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}
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# 68 "attr-lifetimebound.cpp" 2
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using std::operator""s;
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using std::operator""sv;
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namespace p0936r0_examples {
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std::string_view s = "foo"s; // expected-warning {{temporary}}
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std::string operator+(std::string_view s1, std::string_view s2);
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void f() {
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std::string_view sv = "hi";
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std::string_view sv2 = sv + sv; // expected-warning {{temporary}}
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sv2 = sv + sv; // FIXME: can we infer that we should warn here too?
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}
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struct X { int a, b; };
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const int &f(const X &x [[clang::lifetimebound]]) { return x.a; }
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const int &r = f(X()); // expected-warning {{temporary}}
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char &c = std::string("hello my pretty long strong")[0]; // expected-warning {{temporary}}
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struct reversed_range {
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int *begin();
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int *end();
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int *p;
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std::size_t n;
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};
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template <typename R> reversed_range reversed(R &&r [[clang::lifetimebound]]) {
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return reversed_range{r.data(), r.size()};
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}
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std::vector make_vector();
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void use_reversed_range() {
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// FIXME: Don't expose the name of the internal range variable.
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for (auto x : reversed(make_vector())) {} // expected-warning {{temporary implicitly bound to local reference will be destroyed at the end of the full-expression}}
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}
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template <typename K, typename V>
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const V &findOrDefault(const std::map<K, V> &m [[clang::lifetimebound]],
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const K &key,
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const V &defvalue [[clang::lifetimebound]]);
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// FIXME: Maybe weaken the wording here: "local reference 'v' could bind to temporary that will be destroyed at end of full-expression"?
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std::map<std::string, std::string> m;
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const std::string &v = findOrDefault(m, "foo"s, "bar"s); // expected-warning {{temporary bound to local reference 'v'}}
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}
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// definitions for std::move, std::forward et al.
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namespace std {
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inline namespace foo {
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template <class T> struct remove_reference {
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typedef T type;
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};
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template <class T> struct remove_reference<T &> {
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typedef T type;
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};
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template <class T> struct remove_reference<T &&> {
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typedef T type;
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};
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template <class T> constexpr typename remove_reference<T>::type &&move(T &&t) {
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return static_cast<typename remove_reference<T>::type>(t);
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}
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template <class T>
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constexpr T &&forward(typename remove_reference<T>::type &t) {
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return static_cast<T &&>(t);
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}
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template <class T>
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constexpr T &&forward(typename remove_reference<T>::type &&t) {
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return static_cast<T &&>(t);
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}
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template <class T> constexpr const T &as_const(T &x) { return x; }
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template <class T, bool RValueRef> struct PickRef {
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using type = typename remove_reference<T>::type &;
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};
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template <class T> struct PickRef<T, true> {
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using type = typename remove_reference<T>::type &&;
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};
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template <class T> struct is_lvalue_reference {
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static constexpr bool value = false;
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};
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template <class T> struct is_lvalue_reference<T &> {
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static constexpr bool value = true;
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};
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template <class T> struct is_const {
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static constexpr bool value = false;
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};
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template <class T> struct is_const<const T> {
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static constexpr bool value = true;
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};
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template <bool B, class T, class F> struct conditional {
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using type = T;
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};
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template <class T, class F> struct conditional<false, T, F> {
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using type = F;
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};
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template <class U, class T>
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using CopyConst = typename conditional<is_const<remove_reference<U>>::value,
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const T, T>::type;
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template <class U, class T>
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using OverrideRef =
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typename conditional<is_lvalue_reference<U &&>::value,
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typename remove_reference<T>::type &,
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typename remove_reference<T>::type &&>::type;
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template <class U, class T>
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using ForwardLikeRetType = OverrideRef<U &&, CopyConst<U, T>>;
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template <class U>
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constexpr auto forward_like(auto &&t) -> ForwardLikeRetType<U, decltype(t)> {
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return static_cast<ForwardLikeRetType<U, decltype(t)>>(t);
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}
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template <class T>
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auto move_if_noexcept(T &t) ->
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typename PickRef<T, noexcept(T(static_cast<T &&>(t)))>::type {
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return static_cast<
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typename PickRef<T, noexcept(T(static_cast<T &&>(t)))>::type>(t);
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}
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template <class T> T *addressof(T &arg) {
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return reinterpret_cast<T *>(
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&const_cast<char &>(reinterpret_cast<const volatile char &>(arg)));
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}
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} // namespace foo
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} // namespace std
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namespace move_forward_et_al_examples {
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struct S {
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S &self() [[clang::lifetimebound]] { return *this; }
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};
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S &&Move = std::move(S{}); // expected-warning {{temporary bound to local reference 'Move' will be destroyed at the end of the full-expression}}
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S MoveOk = std::move(S{});
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S &&Forward = std::forward<S &&>(S{}); // expected-warning {{temporary bound to local reference 'Forward' will be destroyed at the end of the full-expression}}
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S ForwardOk = std::forward<S &&>(S{});
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S &&ForwardLike = std::forward_like<int&&>(S{}); // expected-warning {{temporary bound to local reference 'ForwardLike' will be destroyed at the end of the full-expression}}
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S ForwardLikeOk = std::forward_like<int&&>(S{});
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const S &Const = std::as_const(S{}.self()); // expected-warning {{temporary bound to local reference 'Const' will be destroyed at the end of the full-expression}}
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const S ConstOk = std::as_const(S{}.self());
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S &&MoveIfNoExcept = std::move_if_noexcept(S{}.self()); // expected-warning {{temporary bound to local reference 'MoveIfNoExcept' will be destroyed at the end of the full-expression}}
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S MoveIfNoExceptOk = std::move_if_noexcept(S{}.self());
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S *AddressOf = std::addressof(S{}.self()); // expected-warning {{temporary whose address is used as value of local variable 'AddressOf' will be destroyed at the end of the full-expression}}
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S X;
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S *AddressOfOk = std::addressof(X);
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} // namespace move_forward_et_al_examples
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