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374 lines
15 KiB
374 lines
15 KiB
// Copyright 2014 The Chromium OS Authors. All rights reserved. |
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// Use of this source code is governed by a BSD-style license that can be |
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// found in the LICENSE file. |
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// Internal implementation of brillo::Any class. |
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#ifndef LIBBRILLO_BRILLO_ANY_INTERNAL_IMPL_H_ |
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#define LIBBRILLO_BRILLO_ANY_INTERNAL_IMPL_H_ |
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#include <type_traits> |
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#include <typeinfo> |
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#include <utility> |
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#include <base/logging.h> |
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#include <brillo/dbus/data_serialization.h> |
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#include <brillo/type_name_undecorate.h> |
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namespace brillo { |
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namespace internal_details { |
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// An extension to std::is_convertible to allow conversion from an enum to |
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// an integral type which std::is_convertible does not indicate as supported. |
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template <typename From, typename To> |
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struct IsConvertible |
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: public std::integral_constant< |
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bool, |
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std::is_convertible<From, To>::value || |
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(std::is_enum<From>::value && std::is_integral<To>::value)> {}; |
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// TryConvert is a helper function that does a safe compile-time conditional |
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// type cast between data types that may not be always convertible. |
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// From and To are the source and destination types. |
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// The function returns true if conversion was possible/successful. |
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template <typename From, typename To> |
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inline typename std::enable_if<IsConvertible<From, To>::value, bool>::type |
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TryConvert(const From& in, To* out) { |
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*out = static_cast<To>(in); |
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return true; |
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} |
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template <typename From, typename To> |
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inline typename std::enable_if<!IsConvertible<From, To>::value, bool>::type |
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TryConvert(const From& /* in */, To* /* out */) { |
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return false; |
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} |
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////////////////////////////////////////////////////////////////////////////// |
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// Provide a way to compare values of unspecified types without compiler errors |
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// when no operator==() is provided for a given type. This is important to |
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// allow Any class to have operator==(), yet still allowing arbitrary types |
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// (not necessarily comparable) to be placed inside Any without resulting in |
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// compile-time error. |
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// |
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// We achieve this in two ways. First, we provide a IsEqualityComparable<T> |
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// class that can be used in compile-time conditions to determine if there is |
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// operator==() defined that takes values of type T (or which can be implicitly |
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// converted to type T). Secondly, this allows us to specialize a helper |
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// compare function EqCompare<T>(v1, v2) to use operator==() for types that |
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// are comparable, and just return false for those that are not. |
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// |
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// IsEqualityComparableHelper<T> is a helper class for implementing an |
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// an STL-compatible IsEqualityComparable<T> containing a Boolean member |value| |
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// which evaluates to true for comparable types and false otherwise. |
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template<typename T> |
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struct IsEqualityComparableHelper { |
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struct IntWrapper { |
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// A special structure that provides a constructor that takes an int. |
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// This way, an int argument passed to a function will be favored over |
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// IntWrapper when both overloads are provided. |
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// Also this constructor must NOT be explicit. |
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// NOLINTNEXTLINE(runtime/explicit) |
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// NOLINT: Allow implicit conversion from int. |
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IntWrapper(int /* dummy */) {} // do nothing, NOLINT |
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}; |
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// Here is an obscure trick to determine if a type U has operator==(). |
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// We are providing two function prototypes for TriggerFunction. One that |
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// takes an argument of type IntWrapper (which is implicitly convertible from |
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// an int), and returns an std::false_type. This is a fall-back mechanism. |
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template<typename U> |
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static std::false_type TriggerFunction(IntWrapper dummy); |
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// The second overload of TriggerFunction takes an int (explicitly) and |
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// returns std::true_type. If both overloads are available, this one will be |
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// chosen when referencing it as TriggerFunction(0), since it is a better |
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// (more specific) match. |
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// |
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// However this overload is available only for types that support operator==. |
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// This is achieved by employing SFINAE mechanism inside a template function |
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// overload that refers to operator==() for two values of types U&. This is |
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// used inside decltype(), so no actual code is executed. If the types |
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// are not comparable, reference to "==" would fail and the compiler will |
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// simply ignore this overload due to SFIANE. |
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// |
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// The final little trick used here is the reliance on operator comma inside |
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// the decltype() expression. The result of the expression is always |
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// std::true_type(). The expression on the left of comma is just evaluated and |
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// discarded. If it evaluates successfully (i.e. the type has operator==), the |
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// return value of the function is set to be std::true_value. If it fails, |
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// the whole function prototype is discarded and is not available in the |
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// IsEqualityComparableHelper<T> class. |
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// |
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// Here we use std::declval<U&>() to make sure we have operator==() that takes |
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// lvalue references to type U which is not necessarily default-constructible. |
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template<typename U> |
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static decltype((std::declval<U&>() == std::declval<U&>()), std::true_type()) |
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TriggerFunction(int dummy); |
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// Finally, use the return type of the overload of TriggerFunction that |
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// matches the argument (int) to be aliased to type |type|. If T is |
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// comparable, there will be two overloads and the more specific (int) will |
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// be chosen which returns std::true_value. If the type is non-comparable, |
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// there will be only one version of TriggerFunction available which |
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// returns std::false_value. |
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using type = decltype(TriggerFunction<T>(0)); |
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}; |
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// IsEqualityComparable<T> is simply a class that derives from either |
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// std::true_value, if type T is comparable, or from std::false_value, if the |
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// type is non-comparable. We just use |type| alias from |
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// IsEqualityComparableHelper<T> as the base class. |
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template<typename T> |
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struct IsEqualityComparable : IsEqualityComparableHelper<T>::type {}; |
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// EqCompare() overload for non-comparable types. Always returns false. |
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template<typename T> |
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inline typename std::enable_if<!IsEqualityComparable<T>::value, bool>::type |
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EqCompare(const T& /* v1 */, const T& /* v2 */) { |
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return false; |
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} |
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// EqCompare overload for comparable types. Calls operator==(v1, v2) to compare. |
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template<typename T> |
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inline typename std::enable_if<IsEqualityComparable<T>::value, bool>::type |
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EqCompare(const T& v1, const T& v2) { |
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return (v1 == v2); |
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} |
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////////////////////////////////////////////////////////////////////////////// |
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class Buffer; // Forward declaration of data buffer container. |
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// Abstract base class for contained variant data. |
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struct Data { |
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virtual ~Data() {} |
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// Returns the type tag (name) for the contained data. |
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virtual const char* GetTypeTag() const = 0; |
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// Copies the contained data to the output |buffer|. |
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virtual void CopyTo(Buffer* buffer) const = 0; |
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// Moves the contained data to the output |buffer|. |
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virtual void MoveTo(Buffer* buffer) = 0; |
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// Checks if the contained data is an integer type (not necessarily an 'int'). |
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virtual bool IsConvertibleToInteger() const = 0; |
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// Gets the contained integral value as an integer. |
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virtual intmax_t GetAsInteger() const = 0; |
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// Writes the contained value to the D-Bus message buffer. |
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virtual void AppendToDBusMessage(dbus::MessageWriter* writer) const = 0; |
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// Compares if the two data containers have objects of the same value. |
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virtual bool CompareEqual(const Data* other_data) const = 0; |
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}; |
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// Concrete implementation of variant data of type T. |
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template<typename T> |
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struct TypedData : public Data { |
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explicit TypedData(const T& value) : value_(value) {} |
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// NOLINTNEXTLINE(build/c++11) |
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explicit TypedData(T&& value) : value_(std::move(value)) {} |
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const char* GetTypeTag() const override { return brillo::GetTypeTag<T>(); } |
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void CopyTo(Buffer* buffer) const override; |
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void MoveTo(Buffer* buffer) override; |
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bool IsConvertibleToInteger() const override { |
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return std::is_integral<T>::value || std::is_enum<T>::value; |
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} |
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intmax_t GetAsInteger() const override { |
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intmax_t int_val = 0; |
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bool converted = TryConvert(value_, &int_val); |
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CHECK(converted) << "Unable to convert value of type '" |
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<< GetUndecoratedTypeName<T>() << "' to integer"; |
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return int_val; |
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} |
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template<typename U> |
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static typename std::enable_if<dbus_utils::IsTypeSupported<U>::value>::type |
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AppendValueHelper(dbus::MessageWriter* writer, const U& value) { |
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brillo::dbus_utils::AppendValueToWriterAsVariant(writer, value); |
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} |
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template<typename U> |
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static typename std::enable_if<!dbus_utils::IsTypeSupported<U>::value>::type |
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AppendValueHelper(dbus::MessageWriter* /* writer */, const U& /* value */) { |
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LOG(FATAL) << "Type '" << GetUndecoratedTypeName<U>() |
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<< "' is not supported by D-Bus"; |
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} |
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void AppendToDBusMessage(dbus::MessageWriter* writer) const override { |
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return AppendValueHelper(writer, value_); |
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} |
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bool CompareEqual(const Data* other_data) const override { |
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return EqCompare<T>(value_, |
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static_cast<const TypedData<T>*>(other_data)->value_); |
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} |
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// Special methods to copy/move data of the same type |
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// without reallocating the buffer. |
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void FastAssign(const T& source) { value_ = source; } |
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// NOLINTNEXTLINE(build/c++11) |
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void FastAssign(T&& source) { value_ = std::move(source); } |
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T value_; |
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}; |
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// Buffer class that stores the contained variant data. |
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// To improve performance and reduce memory fragmentation, small variants |
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// are stored in pre-allocated memory buffers that are part of the Any class. |
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// If the memory requirements are larger than the set limit or the type is |
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// non-trivially copyable, then the contained class is allocated in a separate |
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// memory block and the pointer to that memory is contained within this memory |
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// buffer class. |
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class Buffer final { |
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public: |
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enum StorageType { kExternal, kContained }; |
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Buffer() : external_ptr_(nullptr), storage_(kExternal) {} |
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~Buffer() { Clear(); } |
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Buffer(const Buffer& rhs) : Buffer() { rhs.CopyTo(this); } |
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// NOLINTNEXTLINE(build/c++11) |
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Buffer(Buffer&& rhs) : Buffer() { rhs.MoveTo(this); } |
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Buffer& operator=(const Buffer& rhs) { |
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rhs.CopyTo(this); |
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return *this; |
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} |
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// NOLINTNEXTLINE(build/c++11) |
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Buffer& operator=(Buffer&& rhs) { |
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rhs.MoveTo(this); |
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return *this; |
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} |
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// Returns the underlying pointer to contained data. Uses either the pointer |
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// or the raw data depending on |storage_| type. |
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inline Data* GetDataPtr() { |
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return (storage_ == kExternal) ? external_ptr_ |
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: reinterpret_cast<Data*>(contained_buffer_); |
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} |
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inline const Data* GetDataPtr() const { |
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return (storage_ == kExternal) |
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? external_ptr_ |
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: reinterpret_cast<const Data*>(contained_buffer_); |
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} |
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// Destroys the contained object (and frees memory if needed). |
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void Clear() { |
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Data* data = GetDataPtr(); |
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if (storage_ == kExternal) { |
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delete data; |
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} else { |
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// Call the destructor manually, since the object was constructed inline |
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// in the pre-allocated buffer. We still need to call the destructor |
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// to free any associated resources, but we can't call delete |data| here. |
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data->~Data(); |
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} |
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external_ptr_ = nullptr; |
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storage_ = kExternal; |
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} |
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// Stores a value of type T. |
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template<typename T> |
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void Assign(T&& value) { // NOLINT(build/c++11) |
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using Type = typename std::decay<T>::type; |
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using DataType = TypedData<Type>; |
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Data* ptr = GetDataPtr(); |
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if (ptr && strcmp(ptr->GetTypeTag(), GetTypeTag<Type>()) == 0) { |
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// We assign the data to the variant container, which already |
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// has the data of the same type. Do fast copy/move with no memory |
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// reallocation. |
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DataType* typed_ptr = static_cast<DataType*>(ptr); |
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// NOLINTNEXTLINE(build/c++11) |
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typed_ptr->FastAssign(std::forward<T>(value)); |
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} else { |
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Clear(); |
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// TODO(avakulenko): [see crbug.com/379833] |
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// Unfortunately, GCC doesn't support std::is_trivially_copyable<T> yet, |
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// so using std::is_trivial instead, which is a bit more restrictive. |
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// Once GCC has support for is_trivially_copyable, update the following. |
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if (!std::is_trivial<Type>::value || |
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sizeof(DataType) > sizeof(contained_buffer_)) { |
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// If it is too big or not trivially copyable, allocate it separately. |
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// NOLINTNEXTLINE(build/c++11) |
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external_ptr_ = new DataType(std::forward<T>(value)); |
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storage_ = kExternal; |
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} else { |
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// Otherwise just use the pre-allocated buffer. |
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DataType* address = reinterpret_cast<DataType*>(contained_buffer_); |
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// Make sure we still call the copy/move constructor. |
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// Call the constructor manually by using placement 'new'. |
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// NOLINTNEXTLINE(build/c++11) |
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new (address) DataType(std::forward<T>(value)); |
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storage_ = kContained; |
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} |
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} |
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} |
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// Helper methods to retrieve a reference to contained data. |
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// These assume that type checking has already been performed by Any |
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// so the type cast is valid and will succeed. |
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template<typename T> |
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const T& GetData() const { |
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using DataType = internal_details::TypedData<typename std::decay<T>::type>; |
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return static_cast<const DataType*>(GetDataPtr())->value_; |
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} |
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template<typename T> |
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T& GetData() { |
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using DataType = internal_details::TypedData<typename std::decay<T>::type>; |
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return static_cast<DataType*>(GetDataPtr())->value_; |
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} |
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// Returns true if the buffer has no contained data. |
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bool IsEmpty() const { |
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return (storage_ == kExternal && external_ptr_ == nullptr); |
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} |
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// Copies the data from the current buffer into the |destination|. |
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void CopyTo(Buffer* destination) const { |
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if (IsEmpty()) { |
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destination->Clear(); |
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} else { |
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GetDataPtr()->CopyTo(destination); |
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} |
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} |
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// Moves the data from the current buffer into the |destination|. |
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void MoveTo(Buffer* destination) { |
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if (IsEmpty()) { |
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destination->Clear(); |
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} else { |
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if (storage_ == kExternal) { |
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destination->Clear(); |
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destination->storage_ = kExternal; |
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destination->external_ptr_ = external_ptr_; |
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external_ptr_ = nullptr; |
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} else { |
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GetDataPtr()->MoveTo(destination); |
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} |
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} |
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} |
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union { |
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// |external_ptr_| is a pointer to a larger object allocated in |
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// a separate memory block. |
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Data* external_ptr_; |
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// |contained_buffer_| is a pre-allocated buffer for smaller/simple objects. |
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// Pre-allocate enough memory to store objects as big as "double". |
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unsigned char contained_buffer_[sizeof(TypedData<double>)]; |
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}; |
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// Depending on a value of |storage_|, either |external_ptr_| or |
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// |contained_buffer_| above is used to get a pointer to memory containing |
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// the variant data. |
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StorageType storage_; // Declare after the union to eliminate member padding. |
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}; |
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template <typename T> |
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void TypedData<T>::CopyTo(Buffer* buffer) const { |
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buffer->Assign(value_); |
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} |
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template <typename T> |
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void TypedData<T>::MoveTo(Buffer* buffer) { |
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buffer->Assign(std::move(value_)); |
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} |
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} // namespace internal_details |
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} // namespace brillo |
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#endif // LIBBRILLO_BRILLO_ANY_INTERNAL_IMPL_H_
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