// // bind_executor.hpp // ~~~~~~~~~~~~~~~~~ // // Copyright (c) 2003-2024 Christopher M. Kohlhoff (chris at kohlhoff dot com) // // Distributed under the Boost Software License, Version 1.0. (See accompanying // file LICENSE_1_0.txt or copy at http://www.boost.org/LICENSE_1_0.txt) // #ifndef ASIO_BIND_EXECUTOR_HPP #define ASIO_BIND_EXECUTOR_HPP #if defined(_MSC_VER) && (_MSC_VER >= 1200) # pragma once #endif // defined(_MSC_VER) && (_MSC_VER >= 1200) #include "asio/detail/config.hpp" #include "asio/detail/type_traits.hpp" #include "asio/associated_executor.hpp" #include "asio/associator.hpp" #include "asio/async_result.hpp" #include "asio/execution/executor.hpp" #include "asio/execution_context.hpp" #include "asio/is_executor.hpp" #include "asio/uses_executor.hpp" #include "asio/detail/push_options.hpp" namespace asio { namespace detail { // Helper to automatically define nested typedef result_type. template struct executor_binder_result_type { protected: typedef void result_type_or_void; }; template struct executor_binder_result_type> { typedef typename T::result_type result_type; protected: typedef result_type result_type_or_void; }; template struct executor_binder_result_type { typedef R result_type; protected: typedef result_type result_type_or_void; }; template struct executor_binder_result_type { typedef R result_type; protected: typedef result_type result_type_or_void; }; template struct executor_binder_result_type { typedef R result_type; protected: typedef result_type result_type_or_void; }; template struct executor_binder_result_type { typedef R result_type; protected: typedef result_type result_type_or_void; }; template struct executor_binder_result_type { typedef R result_type; protected: typedef result_type result_type_or_void; }; template struct executor_binder_result_type { typedef R result_type; protected: typedef result_type result_type_or_void; }; // Helper to automatically define nested typedef argument_type. template struct executor_binder_argument_type {}; template struct executor_binder_argument_type> { typedef typename T::argument_type argument_type; }; template struct executor_binder_argument_type { typedef A1 argument_type; }; template struct executor_binder_argument_type { typedef A1 argument_type; }; // Helper to automatically define nested typedefs first_argument_type and // second_argument_type. template struct executor_binder_argument_types {}; template struct executor_binder_argument_types> { typedef typename T::first_argument_type first_argument_type; typedef typename T::second_argument_type second_argument_type; }; template struct executor_binder_argument_type { typedef A1 first_argument_type; typedef A2 second_argument_type; }; template struct executor_binder_argument_type { typedef A1 first_argument_type; typedef A2 second_argument_type; }; // Helper to perform uses_executor construction of the target type, if // required. template class executor_binder_base; template class executor_binder_base { protected: template executor_binder_base(E&& e, U&& u) : executor_(static_cast(e)), target_(executor_arg_t(), executor_, static_cast(u)) { } Executor executor_; T target_; }; template class executor_binder_base { protected: template executor_binder_base(E&& e, U&& u) : executor_(static_cast(e)), target_(static_cast(u)) { } Executor executor_; T target_; }; } // namespace detail /// A call wrapper type to bind an executor of type @c Executor to an object of /// type @c T. template class executor_binder #if !defined(GENERATING_DOCUMENTATION) : public detail::executor_binder_result_type, public detail::executor_binder_argument_type, public detail::executor_binder_argument_types, private detail::executor_binder_base< T, Executor, uses_executor::value> #endif // !defined(GENERATING_DOCUMENTATION) { public: /// The type of the target object. typedef T target_type; /// The type of the associated executor. typedef Executor executor_type; #if defined(GENERATING_DOCUMENTATION) /// The return type if a function. /** * The type of @c result_type is based on the type @c T of the wrapper's * target object: * * @li if @c T is a pointer to function type, @c result_type is a synonym for * the return type of @c T; * * @li if @c T is a class type with a member type @c result_type, then @c * result_type is a synonym for @c T::result_type; * * @li otherwise @c result_type is not defined. */ typedef see_below result_type; /// The type of the function's argument. /** * The type of @c argument_type is based on the type @c T of the wrapper's * target object: * * @li if @c T is a pointer to a function type accepting a single argument, * @c argument_type is a synonym for the return type of @c T; * * @li if @c T is a class type with a member type @c argument_type, then @c * argument_type is a synonym for @c T::argument_type; * * @li otherwise @c argument_type is not defined. */ typedef see_below argument_type; /// The type of the function's first argument. /** * The type of @c first_argument_type is based on the type @c T of the * wrapper's target object: * * @li if @c T is a pointer to a function type accepting two arguments, @c * first_argument_type is a synonym for the return type of @c T; * * @li if @c T is a class type with a member type @c first_argument_type, * then @c first_argument_type is a synonym for @c T::first_argument_type; * * @li otherwise @c first_argument_type is not defined. */ typedef see_below first_argument_type; /// The type of the function's second argument. /** * The type of @c second_argument_type is based on the type @c T of the * wrapper's target object: * * @li if @c T is a pointer to a function type accepting two arguments, @c * second_argument_type is a synonym for the return type of @c T; * * @li if @c T is a class type with a member type @c first_argument_type, * then @c second_argument_type is a synonym for @c T::second_argument_type; * * @li otherwise @c second_argument_type is not defined. */ typedef see_below second_argument_type; #endif // defined(GENERATING_DOCUMENTATION) /// Construct an executor wrapper for the specified object. /** * This constructor is only valid if the type @c T is constructible from type * @c U. */ template executor_binder(executor_arg_t, const executor_type& e, U&& u) : base_type(e, static_cast(u)) { } /// Copy constructor. executor_binder(const executor_binder& other) : base_type(other.get_executor(), other.get()) { } /// Construct a copy, but specify a different executor. executor_binder(executor_arg_t, const executor_type& e, const executor_binder& other) : base_type(e, other.get()) { } /// Construct a copy of a different executor wrapper type. /** * This constructor is only valid if the @c Executor type is constructible * from type @c OtherExecutor, and the type @c T is constructible from type * @c U. */ template executor_binder(const executor_binder& other, constraint_t::value> = 0, constraint_t::value> = 0) : base_type(other.get_executor(), other.get()) { } /// Construct a copy of a different executor wrapper type, but specify a /// different executor. /** * This constructor is only valid if the type @c T is constructible from type * @c U. */ template executor_binder(executor_arg_t, const executor_type& e, const executor_binder& other, constraint_t::value> = 0) : base_type(e, other.get()) { } /// Move constructor. executor_binder(executor_binder&& other) : base_type(static_cast(other.get_executor()), static_cast(other.get())) { } /// Move construct the target object, but specify a different executor. executor_binder(executor_arg_t, const executor_type& e, executor_binder&& other) : base_type(e, static_cast(other.get())) { } /// Move construct from a different executor wrapper type. template executor_binder(executor_binder&& other, constraint_t::value> = 0, constraint_t::value> = 0) : base_type(static_cast(other.get_executor()), static_cast(other.get())) { } /// Move construct from a different executor wrapper type, but specify a /// different executor. template executor_binder(executor_arg_t, const executor_type& e, executor_binder&& other, constraint_t::value> = 0) : base_type(e, static_cast(other.get())) { } /// Destructor. ~executor_binder() { } /// Obtain a reference to the target object. target_type& get() noexcept { return this->target_; } /// Obtain a reference to the target object. const target_type& get() const noexcept { return this->target_; } /// Obtain the associated executor. executor_type get_executor() const noexcept { return this->executor_; } /// Forwarding function call operator. template result_of_t operator()(Args&&... args) { return this->target_(static_cast(args)...); } /// Forwarding function call operator. template result_of_t operator()(Args&&... args) const { return this->target_(static_cast(args)...); } private: typedef detail::executor_binder_base::value> base_type; }; /// Associate an object of type @c T with an executor of type @c Executor. template ASIO_NODISCARD inline executor_binder, Executor> bind_executor(const Executor& ex, T&& t, constraint_t< is_executor::value || execution::is_executor::value > = 0) { return executor_binder, Executor>( executor_arg_t(), ex, static_cast(t)); } /// Associate an object of type @c T with an execution context's executor. template ASIO_NODISCARD inline executor_binder, typename ExecutionContext::executor_type> bind_executor(ExecutionContext& ctx, T&& t, constraint_t< is_convertible::value > = 0) { return executor_binder, typename ExecutionContext::executor_type>( executor_arg_t(), ctx.get_executor(), static_cast(t)); } #if !defined(GENERATING_DOCUMENTATION) template struct uses_executor, Executor> : true_type {}; namespace detail { template class executor_binder_completion_handler_async_result { public: template explicit executor_binder_completion_handler_async_result(T&) { } }; template class executor_binder_completion_handler_async_result< TargetAsyncResult, Executor, void_t> { private: TargetAsyncResult target_; public: typedef executor_binder< typename TargetAsyncResult::completion_handler_type, Executor> completion_handler_type; explicit executor_binder_completion_handler_async_result( typename TargetAsyncResult::completion_handler_type& handler) : target_(handler) { } auto get() -> decltype(target_.get()) { return target_.get(); } }; template struct executor_binder_async_result_return_type { }; template struct executor_binder_async_result_return_type> { typedef typename TargetAsyncResult::return_type return_type; }; } // namespace detail template class async_result, Signature> : public detail::executor_binder_completion_handler_async_result< async_result, Executor>, public detail::executor_binder_async_result_return_type< async_result> { public: explicit async_result(executor_binder& b) : detail::executor_binder_completion_handler_async_result< async_result, Executor>(b.get()) { } template struct init_wrapper { template init_wrapper(const Executor& ex, Init&& init) : ex_(ex), initiation_(static_cast(init)) { } template void operator()(Handler&& handler, Args&&... args) { static_cast(initiation_)( executor_binder, Executor>( executor_arg_t(), ex_, static_cast(handler)), static_cast(args)...); } template void operator()(Handler&& handler, Args&&... args) const { initiation_( executor_binder, Executor>( executor_arg_t(), ex_, static_cast(handler)), static_cast(args)...); } Executor ex_; Initiation initiation_; }; template static auto initiate(Initiation&& initiation, RawCompletionToken&& token, Args&&... args) -> decltype( async_initiate( declval>>(), token.get(), static_cast(args)...)) { return async_initiate( init_wrapper>( token.get_executor(), static_cast(initiation)), token.get(), static_cast(args)...); } private: async_result(const async_result&) = delete; async_result& operator=(const async_result&) = delete; }; template