AK: Allow Optional<T&> to exist
This implements Optional<T&> as a T*, whose presence has been missing since the early days of Optional. As a lot of find_foo() APIs return an Optional<T> which imposes a pointless copy on the underlying value, and can sometimes be very misleading, with this change, those APIs can return Optional<T&>.
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parent
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221ecf17d3
Notes:
sideshowbarker
2024-07-17 14:28:18 +09:00
Author: https://github.com/alimpfard Commit: https://github.com/SerenityOS/serenity/commit/221ecf17d3 Pull-request: https://github.com/SerenityOS/serenity/pull/13470 Reviewed-by: https://github.com/BenWiederhake ✅ Reviewed-by: https://github.com/creator1creeper1 Reviewed-by: https://github.com/sin-ack ✅
3 changed files with 238 additions and 1 deletions
162
AK/Optional.h
162
AK/Optional.h
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@ -22,11 +22,16 @@ namespace AK {
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// Make sure you didn't accidentally make your destructor private before
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// you start bug hunting. :^)
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template<typename>
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class Optional;
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template<typename T>
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class [[nodiscard]] Optional {
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requires(!IsLvalueReference<T>) class [[nodiscard]] Optional<T> {
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template<typename U>
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friend class Optional;
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static_assert(!IsLvalueReference<T> && !IsRvalueReference<T>);
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public:
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using ValueType = T;
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@ -202,6 +207,161 @@ private:
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alignas(T) u8 m_storage[sizeof(T)];
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bool m_has_value { false };
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};
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template<typename T>
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requires(IsLvalueReference<T>) class [[nodiscard]] Optional<T> {
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template<typename>
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friend class Optional;
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template<typename U>
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constexpr static bool CanBePlacedInOptional = IsSame<RemoveReference<T>, RemoveReference<AddConstToReferencedType<U>>> && (IsBaseOf<RemoveCVReference<T>, RemoveCVReference<U>> || IsSame<RemoveCVReference<T>, RemoveCVReference<U>>);
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public:
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using ValueType = T;
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ALWAYS_INLINE Optional() = default;
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template<typename U = T>
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ALWAYS_INLINE Optional(U& value) requires(CanBePlacedInOptional<U&>)
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: m_pointer(&value)
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{
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}
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ALWAYS_INLINE Optional(RemoveReference<T>& value)
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: m_pointer(&value)
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{
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}
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ALWAYS_INLINE Optional(Optional const& other)
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: m_pointer(other.m_pointer)
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{
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}
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ALWAYS_INLINE Optional(Optional&& other)
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: m_pointer(other.m_pointer)
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{
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other.m_pointer = nullptr;
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}
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template<typename U>
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ALWAYS_INLINE Optional(Optional<U> const& other) requires(CanBePlacedInOptional<U>)
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: m_pointer(other.m_pointer)
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{
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}
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template<typename U>
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ALWAYS_INLINE Optional(Optional<U>&& other) requires(CanBePlacedInOptional<U>)
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: m_pointer(other.m_pointer)
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{
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other.m_pointer = nullptr;
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}
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ALWAYS_INLINE Optional& operator=(Optional const& other)
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{
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m_pointer = other.m_pointer;
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return *this;
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}
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ALWAYS_INLINE Optional& operator=(Optional&& other)
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{
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m_pointer = other.m_pointer;
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other.m_pointer = nullptr;
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return *this;
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}
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template<typename U>
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ALWAYS_INLINE Optional& operator=(Optional<U> const& other) requires(CanBePlacedInOptional<U>)
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{
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m_pointer = other.m_pointer;
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return *this;
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}
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template<typename U>
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ALWAYS_INLINE Optional& operator=(Optional<U>&& other) requires(CanBePlacedInOptional<U>)
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{
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m_pointer = other.m_pointer;
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other.m_pointer = nullptr;
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return *this;
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}
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// Note: Disallows assignment from a temporary as this does not do any lifetime extension.
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template<typename U>
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ALWAYS_INLINE Optional& operator=(U&& value) requires(CanBePlacedInOptional<U>&& IsLvalueReference<U>)
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{
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m_pointer = &value;
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return *this;
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}
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ALWAYS_INLINE void clear()
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{
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m_pointer = nullptr;
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}
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[[nodiscard]] ALWAYS_INLINE bool has_value() const { return m_pointer != nullptr; }
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[[nodiscard]] ALWAYS_INLINE T value()
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{
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VERIFY(m_pointer);
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return *m_pointer;
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}
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[[nodiscard]] ALWAYS_INLINE AddConstToReferencedType<T> value() const
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{
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VERIFY(m_pointer);
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return *m_pointer;
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}
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template<typename U>
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requires(IsBaseOf<RemoveCVReference<T>, U>) [[nodiscard]] ALWAYS_INLINE AddConstToReferencedType<T> value_or(U& fallback) const
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{
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if (m_pointer)
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return value();
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return fallback;
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}
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// Note that this ends up copying the value.
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[[nodiscard]] ALWAYS_INLINE RemoveCVReference<T> value_or(RemoveCVReference<T> fallback) const
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{
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if (m_pointer)
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return value();
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return fallback;
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}
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[[nodiscard]] ALWAYS_INLINE T release_value()
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{
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return *exchange(m_pointer, nullptr);
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}
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template<typename U>
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ALWAYS_INLINE bool operator==(Optional<U> const& other) const
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{
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return has_value() == other.has_value() && (!has_value() || value() == other.value());
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}
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template<typename U>
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ALWAYS_INLINE bool operator==(U const& other) const
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{
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return has_value() && value() == other;
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}
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ALWAYS_INLINE AddConstToReferencedType<T> operator*() const { return value(); }
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ALWAYS_INLINE T operator*() { return value(); }
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ALWAYS_INLINE RawPtr<AddConst<RemoveReference<T>>> operator->() const { return &value(); }
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ALWAYS_INLINE RawPtr<RemoveReference<T>> operator->() { return &value(); }
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// Conversion operators from Optional<T&> -> Optional<T>
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ALWAYS_INLINE operator Optional<RemoveCVReference<T>>() const
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{
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if (has_value())
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return Optional<RemoveCVReference<T>>(value());
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return {};
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}
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private:
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RemoveReference<T>* m_pointer { nullptr };
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};
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}
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using AK::Optional;
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@ -25,6 +25,24 @@ using TrueType = IntegralConstant<bool, true>;
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template<class T>
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using AddConst = const T;
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template<class T>
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struct __AddConstToReferencedType {
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using Type = T;
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};
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template<class T>
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struct __AddConstToReferencedType<T&> {
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using Type = AddConst<T>&;
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};
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template<class T>
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struct __AddConstToReferencedType<T&&> {
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using Type = AddConst<T>&&;
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};
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template<class T>
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using AddConstToReferencedType = typename __AddConstToReferencedType<T>::Type;
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template<class T>
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struct __RemoveConst {
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using Type = T;
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@ -577,6 +595,7 @@ inline constexpr bool IsOneOf = (IsSame<T, Ts> || ...);
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}
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using AK::Detail::AddConst;
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using AK::Detail::AddConstToReferencedType;
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using AK::Detail::AddLvalueReference;
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using AK::Detail::AddRvalueReference;
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using AK::Detail::AssertSize;
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@ -211,3 +211,61 @@ TEST_CASE(test_copy_ctor_and_dtor_called)
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static_assert(!IsDestructible<Optional<NonDestructible>>);
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#endif
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}
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TEST_CASE(basic_optional_reference)
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{
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Optional<int&> x;
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EXPECT_EQ(x.has_value(), false);
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int a = 3;
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x = a;
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EXPECT_EQ(x.has_value(), true);
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EXPECT_EQ(x.value(), 3);
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EXPECT_EQ(&x.value(), &a);
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Optional<int const&> y;
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EXPECT_EQ(y.has_value(), false);
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int b = 3;
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y = b;
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EXPECT_EQ(y.has_value(), true);
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EXPECT_EQ(y.value(), 3);
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EXPECT_EQ(&y.value(), &b);
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static_assert(IsConst<RemoveReference<decltype(y.value())>>);
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}
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TEST_CASE(move_optional_reference)
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{
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Optional<int&> x;
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EXPECT_EQ(x.has_value(), false);
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int b = 3;
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x = b;
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EXPECT_EQ(x.has_value(), true);
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EXPECT_EQ(x.value(), 3);
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Optional<int&> y;
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y = move(x);
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EXPECT_EQ(y.has_value(), true);
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EXPECT_EQ(y.value(), 3);
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EXPECT_EQ(x.has_value(), false);
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}
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TEST_CASE(short_notation_reference)
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{
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StringView test = "foo";
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Optional<StringView&> value = test;
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EXPECT_EQ(value->length(), 3u);
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EXPECT_EQ(*value, "foo");
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}
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TEST_CASE(comparison_reference)
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{
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StringView test = "foo";
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Optional<StringView&> opt0;
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Optional<StringView const&> opt1 = test;
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Optional<String> opt2 = "foo";
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Optional<StringView> opt3 = "bar";
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EXPECT_NE(opt0, opt1);
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EXPECT_EQ(opt1, opt2);
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EXPECT_NE(opt1, opt3);
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}
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