mirror of
https://github.com/qicosmos/rest_rpc.git
synced 2026-08-30 00:50:48 +08:00
587 lines
14 KiB
C++
587 lines
14 KiB
C++
#pragma once
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#include <string>
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#include <deque>
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#include <future>
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#include "use_asio.hpp"
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#include "client_util.hpp"
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#include "const_vars.h"
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#include "meta_util.hpp"
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using namespace rest_rpc::rpc_service;
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namespace rest_rpc {
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class req_result {
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public:
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req_result() = default;
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req_result(string_view data) : data_(data.data(), data.length()) {}
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bool success() const {
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return !has_error(data_);
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}
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template<typename T>
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T as() {
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if (has_error(data_)) {
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throw std::logic_error(get_error_msg(data_));
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}
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return get_result<T>(data_);
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}
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void as() {
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if (has_error(data_)) {
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throw std::logic_error(get_error_msg(data_));
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}
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}
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private:
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std::string data_;
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};
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enum class CallModel {
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future,
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callback
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};
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const constexpr auto FUTURE = CallModel::future;
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const constexpr size_t DEFAULT_TIMEOUT = 5000; //milliseconds
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class rpc_client : private asio::noncopyable {
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public:
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rpc_client() : socket_(ios_), work_(ios_),
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deadline_(ios_), body_(INIT_BUF_SIZE) {
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thd_ = std::make_shared<std::thread>([this] {
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ios_.run();
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});
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}
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rpc_client(const std::string& host, unsigned short port) : socket_(ios_), work_(ios_),
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deadline_(ios_), host_(host), port_(port), body_(INIT_BUF_SIZE) {
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thd_ = std::make_shared<std::thread>([this] {
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ios_.run();
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});
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}
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~rpc_client() {
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close();
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stop();
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}
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void run(){
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thd_->join();
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}
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void set_connect_timeout(size_t milliseconds) {
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connect_timeout_ = milliseconds;
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}
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void set_reconnect_count(int reconnect_count) {
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reconnect_cnt_ = reconnect_count;
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}
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bool connect(size_t timeout = 1) {
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if (has_connected_)
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return true;
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assert(port_ != 0);
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async_connect();
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return wait_conn(timeout);
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}
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bool connect(const std::string& host, unsigned short port, size_t timeout = 1) {
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if (port_==0) {
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host_ = host;
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port_ = port;
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}
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return connect(timeout);
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}
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void async_connect(const std::string& host, unsigned short port) {
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if (port_ == 0) {
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host_ = host;
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port_ = port;
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}
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async_connect();
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}
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bool wait_conn(size_t timeout) {
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if (has_connected_) {
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return true;
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}
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has_wait_ = true;
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std::unique_lock<std::mutex> lock(conn_mtx_);
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bool result = conn_cond_.wait_for(lock, std::chrono::seconds(timeout),
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[this] {return has_connected_.load(); });
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has_wait_ = false;
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return has_connected_;
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}
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void enable_auto_reconnect(bool enable = true) {
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enable_reconnect_ = enable;
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}
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void enable_auto_heartbeat(bool enable = true) {
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if (enable) {
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reset_deadline_timer(5);
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}
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else {
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deadline_.cancel();
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}
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}
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void update_addr(const std::string& host, unsigned short port) {
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host_ = host;
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port_ = port;
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}
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void close() {
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has_connected_ = false;
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if (socket_.is_open()) {
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boost::system::error_code ignored_ec;
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socket_.shutdown(asio::ip::tcp::socket::shutdown_both, ignored_ec);
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socket_.close(ignored_ec);
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}
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clear_cache();
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}
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void set_error_callback(std::function<void(boost::system::error_code)> f) {
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err_cb_ = std::move(f);
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}
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uint64_t reqest_id() {
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return temp_req_id_;
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}
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bool has_connected() const {
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return has_connected_;
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}
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//sync call
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#if __cplusplus > 201402L
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template<size_t TIMEOUT, typename T = void, typename... Args>
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auto call(const std::string& rpc_name, Args&& ... args) {
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std::future<req_result> future = async_call<FUTURE>(rpc_name, std::forward<Args>(args)...);
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auto status = future.wait_for(std::chrono::milliseconds(TIMEOUT));
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if (status == std::future_status::timeout || status == std::future_status::deferred) {
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throw std::out_of_range("timeout or deferred");
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}
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if constexpr (std::is_void_v<T>) {
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future.get().as();
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}
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else {
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return future.get().as<T>();
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}
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}
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template<typename T = void, typename... Args>
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auto call(const std::string& rpc_name, Args&& ... args) {
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return call<DEFAULT_TIMEOUT, T>(rpc_name, std::forward<Args>(args)...);
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}
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#else
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template<size_t TIMEOUT, typename T=void, typename... Args>
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typename std::enable_if<std::is_void<T>::value>::type call(const std::string& rpc_name, Args&& ... args) {
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std::future<req_result> future = async_call<FUTURE>(rpc_name, std::forward<Args>(args)...);
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auto status = future.wait_for(std::chrono::milliseconds(TIMEOUT));
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if (status == std::future_status::timeout || status == std::future_status::deferred) {
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throw std::out_of_range("timeout or deferred");
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}
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future.get().as();
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}
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template<typename T = void, typename... Args>
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typename std::enable_if<std::is_void<T>::value>::type call(const std::string& rpc_name, Args&& ... args) {
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call<DEFAULT_TIMEOUT, T>(rpc_name, std::forward<Args>(args)...);
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}
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template<size_t TIMEOUT, typename T, typename... Args>
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typename std::enable_if<!std::is_void<T>::value, T>::type call(const std::string& rpc_name, Args&& ... args) {
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std::future<req_result> future = async_call<FUTURE>(rpc_name, std::forward<Args>(args)...);
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auto status = future.wait_for(std::chrono::milliseconds(TIMEOUT));
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if (status == std::future_status::timeout || status == std::future_status::deferred) {
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throw std::out_of_range("timeout or deferred");
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}
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return future.get().as<T>();
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}
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template<typename T, typename... Args>
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typename std::enable_if<!std::is_void<T>::value, T>::type call(const std::string& rpc_name, Args&& ... args) {
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return call<DEFAULT_TIMEOUT, T>(rpc_name, std::forward<Args>(args)...);
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}
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#endif
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template<CallModel model, typename... Args>
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std::future<req_result> async_call(const std::string& rpc_name, Args&&... args) {
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auto p = std::make_shared<std::promise<req_result>>();
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std::future<req_result> future = p->get_future();
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uint64_t fu_id = 0;
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{
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std::unique_lock<std::mutex> lock(cb_mtx_);
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fu_id_++;
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fu_id = fu_id_;
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future_map_.emplace(fu_id, std::move(p));
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}
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msgpack_codec codec;
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auto ret = codec.pack_args(rpc_name, std::forward<Args>(args)...);
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write(fu_id, std::move(ret));
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return future;
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}
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template<size_t TIMEOUT = DEFAULT_TIMEOUT, typename... Args>
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void async_call(const std::string& rpc_name, std::function<void(boost::system::error_code, string_view)> cb, Args&& ... args) {
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uint64_t cb_id = 0;
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{
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std::unique_lock<std::mutex> lock(cb_mtx_);
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callback_id_++;
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callback_id_ |= (uint64_t(1) << 63);
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cb_id = callback_id_;
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auto call = std::make_shared<call_t>(ios_, std::move(cb), TIMEOUT);
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call->start_timer();
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callback_map_.emplace(cb_id, call);
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}
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msgpack_codec codec;
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auto ret = codec.pack_args(rpc_name, std::forward<Args>(args)...);
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write(cb_id, std::move(ret));
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}
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void stop() {
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if (thd_ != nullptr) {
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ios_.stop();
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thd_->join();
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thd_ = nullptr;
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}
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}
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private:
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void async_connect() {
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assert(port_ != 0);
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auto addr = boost::asio::ip::address::from_string(host_);
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socket_.async_connect({ addr, port_ }, [this](const boost::system::error_code& ec) {
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if (has_connected_) {
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return;
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}
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if (ec) {
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//std::cout << ec.message() << std::endl;
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has_connected_ = false;
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if (reconnect_cnt_ == 0) {
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return;
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}
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if (reconnect_cnt_ > 0) {
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reconnect_cnt_--;
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}
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async_reconnect();
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}
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else {
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//std::cout<<"connected ok"<<std::endl;
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has_connected_ = true;
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do_read();
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if (has_wait_)
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conn_cond_.notify_one();
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}
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});
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}
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void async_reconnect() {
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reset_socket();
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async_connect();
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std::this_thread::sleep_for(std::chrono::milliseconds(connect_timeout_));
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}
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using message_type = std::pair<string_view, std::uint64_t>;
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void reset_deadline_timer(size_t timeout) {
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deadline_.expires_from_now(std::chrono::seconds(timeout));
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deadline_.async_wait([this, timeout](const boost::system::error_code& ec) {
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if (!ec) {
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if (has_connected_) {
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write(0, buffer_type(0));
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}
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}
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reset_deadline_timer(timeout);
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});
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}
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void write(std::uint64_t req_id, buffer_type&& message) {
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size_t size = message.size();
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assert(size < MAX_BUF_LEN);
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message_type msg{ {message.release(), size}, req_id };
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std::unique_lock<std::mutex> lock(write_mtx_);
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outbox_.emplace_back(std::move(msg));
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if (outbox_.size() > 1) {
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// outstanding async_write
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return;
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}
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write();
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}
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void write() {
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auto& msg = outbox_[0];
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write_size_ = (uint32_t)msg.first.length();
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std::array<boost::asio::const_buffer, 3> write_buffers;
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write_buffers[0] = boost::asio::buffer(&write_size_, sizeof(int32_t));
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write_buffers[1] = boost::asio::buffer(&msg.second, sizeof(uint64_t));
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write_buffers[2] = boost::asio::buffer((char*)msg.first.data(), write_size_);
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boost::asio::async_write(socket_, write_buffers,
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[this](const boost::system::error_code& ec, const size_t length) {
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if (ec) {
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has_connected_ = false;
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close();
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error_callback(ec);
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return;
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}
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std::unique_lock<std::mutex> lock(write_mtx_);
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if (outbox_.empty()) {
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return;
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}
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::free((char*)outbox_.front().first.data());
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outbox_.pop_front();
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if (!outbox_.empty()) {
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// more messages to send
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this->write();
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}
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});
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}
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void do_read() {
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boost::asio::async_read(socket_, boost::asio::buffer(head_),
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[this](const boost::system::error_code& ec, const size_t length) {
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if (!socket_.is_open()) {
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//LOG(INFO) << "socket already closed";
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has_connected_ = false;
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return;
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}
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if (!ec) {
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const uint32_t body_len = *((uint32_t*)(head_));
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auto req_id = *((std::uint64_t*)(head_ + sizeof(int32_t)));
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if (body_len > 0 && body_len < MAX_BUF_LEN) {
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if (body_.size() < body_len) { body_.resize(body_len); }
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read_body(req_id, body_len);
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return;
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}
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if (body_len == 0 || body_len > MAX_BUF_LEN) {
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//LOG(INFO) << "invalid body len";
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close();
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if (err_cb_) {
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err_cb_(asio::error::make_error_code(asio::error::message_size));
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}
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return;
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}
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}
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else {
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//LOG(INFO) << ec.message();
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has_connected_ = false;
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close();
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error_callback(ec);
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}
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});
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}
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void read_body(std::uint64_t req_id, size_t body_len) {
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boost::asio::async_read(
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socket_, boost::asio::buffer(body_.data(), body_len),
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[this, req_id, body_len](boost::system::error_code ec, std::size_t length) {
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//cancel_timer();
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if (!socket_.is_open()) {
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//LOG(INFO) << "socket already closed";
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call_back(req_id, asio::error::make_error_code(asio::error::connection_aborted), {});
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return;
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}
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if (!ec) {
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//entier body
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call_back(req_id, ec, { body_.data(), body_len });
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do_read();
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}
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else {
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//LOG(INFO) << ec.message();
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has_connected_ = false;
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close();
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error_callback(ec);
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}
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});
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}
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void call_back(uint64_t req_id, const boost::system::error_code& ec, string_view data) {
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temp_req_id_ = req_id;
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auto cb_flag = req_id >> 63;
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if (cb_flag) {
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std::shared_ptr<call_t> cl = nullptr;
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{
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std::unique_lock<std::mutex> lock(cb_mtx_);
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cl = std::move(callback_map_[req_id]);
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}
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assert(cl);
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if (!cl->has_timeout()) {
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cl->cancel();
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cl->callback(ec, data);
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}
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else {
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cl->callback(asio::error::make_error_code(asio::error::timed_out), {});
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}
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std::unique_lock<std::mutex> lock(cb_mtx_);
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callback_map_.erase(req_id);
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}
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else {
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std::unique_lock<std::mutex> lock(cb_mtx_);
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auto& f = future_map_[req_id];
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if (ec) {
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//LOG<<ec.message();
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if (!f) {
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//std::cout << "invalid req_id" << std::endl;
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return;
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}
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}
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assert(f);
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f->set_value(req_result{ data });
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future_map_.erase(req_id);
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}
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}
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void clear_cache() {
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{
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std::unique_lock<std::mutex> lock(write_mtx_);
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while (!outbox_.empty()) {
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::free((char*)outbox_.front().first.data());
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outbox_.pop_front();
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}
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}
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{
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std::unique_lock<std::mutex> lock(cb_mtx_);
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callback_map_.clear();
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future_map_.clear();
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}
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}
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void reset_socket(){
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boost::system::error_code igored_ec;
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socket_.close(igored_ec);
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socket_ = decltype(socket_)(ios_);
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if(!socket_.is_open()){
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socket_.open(boost::asio::ip::tcp::v4());
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}
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}
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class call_t : asio::noncopyable, public std::enable_shared_from_this<call_t> {
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public:
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call_t(asio::io_service& ios, std::function<void(boost::system::error_code, string_view)> cb, size_t timeout) : timer_(ios),
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cb_(std::move(cb)), timeout_(timeout){
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}
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void start_timer() {
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if (timeout_ == 0) {
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return;
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}
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timer_.expires_from_now(std::chrono::milliseconds(timeout_));
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auto self = this->shared_from_this();
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timer_.async_wait([this, self](boost::system::error_code ec) {
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if (ec) {
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return;
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}
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has_timeout_ = true;
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});
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}
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void callback(boost::system::error_code ec, string_view data) {
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cb_(ec, data);
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}
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bool has_timeout() const {
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return has_timeout_;
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}
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void cancel() {
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if (timeout_ == 0) {
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return;
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}
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boost::system::error_code ec;
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timer_.cancel(ec);
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}
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private:
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boost::asio::steady_timer timer_;
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std::function<void(boost::system::error_code, string_view)> cb_;
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size_t timeout_;
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bool has_timeout_ = false;
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};
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void error_callback(const boost::system::error_code& ec) {
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if (err_cb_) {
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err_cb_(ec);
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}
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if (enable_reconnect_) {
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async_connect();
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}
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}
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void set_default_error_cb() {
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err_cb_ = [this](boost::system::error_code){
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async_connect();
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};
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}
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|
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boost::asio::io_service ios_;
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asio::ip::tcp::socket socket_;
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boost::asio::io_service::work work_;
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std::shared_ptr<std::thread> thd_ = nullptr;
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|
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|
std::string host_;
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unsigned short port_ = 0;
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size_t connect_timeout_ = 1000;//s
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|
int reconnect_cnt_ = -1;
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|
std::atomic_bool has_connected_ = { false };
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|
std::mutex conn_mtx_;
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|
std::condition_variable conn_cond_;
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|
bool has_wait_ = false;
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|
|
|
asio::steady_timer deadline_;
|
|
|
|
std::deque<message_type> outbox_;
|
|
uint32_t write_size_ = 0;
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|
std::mutex write_mtx_;
|
|
uint64_t fu_id_ = 0;
|
|
std::function<void(boost::system::error_code)> err_cb_;
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|
bool enable_reconnect_ = false;
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|
|
|
std::unordered_map<std::uint64_t, std::shared_ptr<std::promise<req_result>>> future_map_;
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|
std::unordered_map<std::uint64_t, std::shared_ptr<call_t>> callback_map_;
|
|
std::mutex cb_mtx_;
|
|
uint64_t callback_id_ = 0;
|
|
|
|
uint64_t temp_req_id_ = 0;
|
|
|
|
char head_[HEAD_LEN] = {};
|
|
std::vector<char> body_;
|
|
};
|
|
} |