292 lines
8.0 KiB
C++
292 lines
8.0 KiB
C++
/*
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* IXWebSocket.cpp
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* Author: Benjamin Sergeant
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* Copyright (c) 2017-2018 Machine Zone, Inc. All rights reserved.
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*/
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#include "IXWebSocket.h"
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#include <iostream>
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#include <cmath>
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#include <cassert>
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namespace
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{
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uint64_t calculateRetryWaitMilliseconds(uint64_t retry_count)
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{
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// This will overflow quite fast for large value of retry_count
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// and will become 0, in which case the wait time will be none
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// and we'll be constantly retrying to connect.
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uint64_t wait_time = ((uint64_t) std::pow(2, retry_count) * 100L);
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// cap the wait time to 10s, or to retry_count == 10 for which wait_time > 10s
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uint64_t tenSeconds = 10 * 1000;
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return (wait_time > tenSeconds || retry_count > 10) ? tenSeconds : wait_time;
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}
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}
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namespace ix {
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OnTrafficTrackerCallback WebSocket::_onTrafficTrackerCallback = nullptr;
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WebSocket::WebSocket() :
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_onMessageCallback(OnMessageCallback()),
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_stop(false),
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_automaticReconnection(true)
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{
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}
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WebSocket::~WebSocket()
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{
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stop();
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}
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void WebSocket::configure(const std::string& url)
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{
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std::lock_guard<std::mutex> lock(_urlMutex);
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_url = url;
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}
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void WebSocket::start()
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{
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if (_thread.joinable()) return; // we've already been started
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_thread = std::thread(&WebSocket::run, this);
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}
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void WebSocket::stop()
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{
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_automaticReconnection = false;
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close();
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if (!_thread.joinable())
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{
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_automaticReconnection = true;
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return;
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}
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_stop = true;
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_thread.join();
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_stop = false;
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_automaticReconnection = true;
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}
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WebSocketInitResult WebSocket::connect()
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{
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{
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std::lock_guard<std::mutex> lock(_urlMutex);
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_ws.configure(_url);
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}
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_ws.setOnCloseCallback(
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[this](uint16_t code, const std::string& reason)
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{
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_onMessageCallback(WebSocket_MessageType_Close, "",
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WebSocketErrorInfo(), CloseInfo(code, reason));
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}
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);
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WebSocketInitResult status = _ws.init();
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if (!status.success)
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{
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return status;
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}
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_onMessageCallback(WebSocket_MessageType_Open, "",
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WebSocketErrorInfo(), CloseInfo());
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return status;
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}
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bool WebSocket::isConnected() const
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{
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return getReadyState() == WebSocket_ReadyState_Open;
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}
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bool WebSocket::isClosing() const
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{
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return getReadyState() == WebSocket_ReadyState_Closing;
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}
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void WebSocket::close()
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{
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_ws.close();
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}
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void WebSocket::reconnectPerpetuallyIfDisconnected()
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{
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uint64_t retries = 0;
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WebSocketErrorInfo connectErr;
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ix::WebSocketInitResult status;
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using millis = std::chrono::duration<double, std::milli>;
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millis duration;
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while (true)
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{
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if (isConnected() || isClosing() || _stop || !_automaticReconnection)
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{
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break;
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}
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status = connect();
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if (!status.success && !_stop)
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{
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duration = millis(calculateRetryWaitMilliseconds(retries++));
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connectErr.retries = retries;
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connectErr.wait_time = duration.count();
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connectErr.reason = status.errorStr;
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connectErr.http_status = status.http_status;
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_onMessageCallback(WebSocket_MessageType_Error, "",
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connectErr, CloseInfo());
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std::this_thread::sleep_for(duration);
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}
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}
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}
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void WebSocket::run()
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{
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while (true)
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{
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if (_stop) return;
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// 1. Make sure we are always connected
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reconnectPerpetuallyIfDisconnected();
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if (_stop) return;
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// 2. Poll to see if there's any new data available
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_ws.poll();
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if (_stop) return;
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// 3. Dispatch the incoming messages
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_ws.dispatch(
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[this](const std::string& msg,
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WebSocketTransport::MessageKind messageKind)
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{
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WebSocketMessageType webSocketMessageType;
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switch (messageKind)
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{
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case WebSocketTransport::MSG:
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{
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webSocketMessageType = WebSocket_MessageType_Message;
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} break;
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case WebSocketTransport::PING:
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{
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webSocketMessageType = WebSocket_MessageType_Ping;
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} break;
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case WebSocketTransport::PONG:
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{
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webSocketMessageType = WebSocket_MessageType_Pong;
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} break;
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}
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_onMessageCallback(webSocketMessageType, msg,
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WebSocketErrorInfo(), CloseInfo());
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WebSocket::invokeTrafficTrackerCallback(msg.size(), true);
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});
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}
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}
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void WebSocket::setOnMessageCallback(const OnMessageCallback& callback)
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{
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_onMessageCallback = callback;
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}
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void WebSocket::setTrafficTrackerCallback(const OnTrafficTrackerCallback& callback)
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{
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_onTrafficTrackerCallback = callback;
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}
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void WebSocket::resetTrafficTrackerCallback()
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{
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setTrafficTrackerCallback(nullptr);
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}
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void WebSocket::invokeTrafficTrackerCallback(size_t size, bool incoming)
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{
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if (_onTrafficTrackerCallback)
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{
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_onTrafficTrackerCallback(size, incoming);
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}
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}
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bool WebSocket::send(const std::string& text)
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{
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return sendMessage(text, false);
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}
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bool WebSocket::ping(const std::string& text)
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{
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// Standard limit ping message size
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constexpr size_t pingMaxPayloadSize = 125;
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if (text.size() > pingMaxPayloadSize) return false;
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return sendMessage(text, true);
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}
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bool WebSocket::sendMessage(const std::string& text, bool ping)
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{
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if (!isConnected()) return false;
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//
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// It is OK to read and write on the same socket in 2 different threads.
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// https://stackoverflow.com/questions/1981372/are-parallel-calls-to-send-recv-on-the-same-socket-valid
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//
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// This makes it so that messages are sent right away, and we dont need
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// a timeout while we poll to keep wake ups to a minimum (which helps
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// with battery life), and use the system select call to notify us when
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// incoming messages are arriving / there's data to be received.
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//
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std::lock_guard<std::mutex> lock(_writeMutex);
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if (ping)
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{
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_ws.sendPing(text);
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}
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else
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{
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_ws.sendBinary(text);
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}
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WebSocket::invokeTrafficTrackerCallback(text.size(), false);
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return true;
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}
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ReadyState WebSocket::getReadyState() const
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{
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switch (_ws.getReadyState())
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{
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case ix::WebSocketTransport::OPEN: return WebSocket_ReadyState_Open;
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case ix::WebSocketTransport::CONNECTING: return WebSocket_ReadyState_Connecting;
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case ix::WebSocketTransport::CLOSING: return WebSocket_ReadyState_Closing;
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case ix::WebSocketTransport::CLOSED: return WebSocket_ReadyState_Closed;
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}
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}
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std::string WebSocket::readyStateToString(ReadyState readyState)
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{
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switch (readyState)
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{
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case WebSocket_ReadyState_Open: return "OPEN";
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case WebSocket_ReadyState_Connecting: return "CONNECTING";
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case WebSocket_ReadyState_Closing: return "CLOSING";
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case WebSocket_ReadyState_Closed: return "CLOSED";
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}
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}
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const std::string& WebSocket::getUrl() const
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{
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std::lock_guard<std::mutex> lock(_urlMutex);
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return _url;
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}
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}
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