EventLoop.h 6.7 KB

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  1. #ifndef HV_EVENT_LOOP_HPP_
  2. #define HV_EVENT_LOOP_HPP_
  3. #include <functional>
  4. #include <queue>
  5. #include <map>
  6. #include <mutex>
  7. #include "hloop.h"
  8. #include "hthread.h"
  9. #include "Status.h"
  10. #include "Event.h"
  11. #include "ThreadLocalStorage.h"
  12. namespace hv {
  13. class EventLoop : public Status {
  14. public:
  15. typedef std::function<void()> Functor;
  16. // New an EventLoop using an existing hloop_t object,
  17. // so we can embed an EventLoop object into the old application based on hloop.
  18. // NOTE: Be careful to deal with destroy of hloop_t.
  19. EventLoop(hloop_t* loop = NULL) {
  20. setStatus(kInitializing);
  21. if (loop) {
  22. loop_ = loop;
  23. is_loop_owner = false;
  24. } else {
  25. loop_ = hloop_new(HLOOP_FLAG_AUTO_FREE);
  26. is_loop_owner = true;
  27. }
  28. setStatus(kInitialized);
  29. }
  30. ~EventLoop() {
  31. stop();
  32. }
  33. hloop_t* loop() {
  34. return loop_;
  35. }
  36. // @brief Run loop forever
  37. void run() {
  38. if (loop_ == NULL) return;
  39. ThreadLocalStorage::set(ThreadLocalStorage::EVENT_LOOP, this);
  40. setStatus(kRunning);
  41. hloop_run(loop_);
  42. setStatus(kStopped);
  43. }
  44. // stop thread-safe
  45. void stop() {
  46. if (loop_ == NULL) return;
  47. if (status() < kRunning) {
  48. if (is_loop_owner) {
  49. hloop_free(&loop_);
  50. }
  51. loop_ = NULL;
  52. return;
  53. }
  54. setStatus(kStopping);
  55. hloop_stop(loop_);
  56. loop_ = NULL;
  57. }
  58. void pause() {
  59. if (loop_ == NULL) return;
  60. if (isRunning()) {
  61. hloop_pause(loop_);
  62. setStatus(kPause);
  63. }
  64. }
  65. void resume() {
  66. if (loop_ == NULL) return;
  67. if (isPause()) {
  68. hloop_resume(loop_);
  69. setStatus(kRunning);
  70. }
  71. }
  72. // Timer interfaces: setTimer, killTimer, resetTimer
  73. TimerID setTimer(int timeout_ms, TimerCallback cb, uint32_t repeat = INFINITE, TimerID timerID = INVALID_TIMER_ID) {
  74. if (loop_ == NULL) return INVALID_TIMER_ID;
  75. htimer_t* htimer = htimer_add(loop_, onTimer, timeout_ms, repeat);
  76. if (timerID == INVALID_TIMER_ID) {
  77. timerID = hevent_id(htimer);
  78. } else {
  79. hevent_set_id(htimer, timerID);
  80. }
  81. Timer timer(htimer, cb, repeat);
  82. hevent_set_userdata(htimer, this);
  83. mutex_.lock();
  84. timers[timerID] = timer;
  85. mutex_.unlock();
  86. return timerID;
  87. }
  88. // alias javascript setTimeout, setInterval
  89. TimerID setTimeout(int timeout_ms, TimerCallback cb) {
  90. return setTimer(timeout_ms, cb, 1);
  91. }
  92. TimerID setInterval(int interval_ms, TimerCallback cb) {
  93. return setTimer(interval_ms, cb, INFINITE);
  94. }
  95. void killTimer(TimerID timerID) {
  96. std::lock_guard<std::mutex> locker(mutex_);
  97. auto iter = timers.find(timerID);
  98. if (iter != timers.end()) {
  99. Timer& timer = iter->second;
  100. htimer_del(timer.timer);
  101. timers.erase(iter);
  102. }
  103. }
  104. void resetTimer(TimerID timerID) {
  105. std::lock_guard<std::mutex> locker(mutex_);
  106. auto iter = timers.find(timerID);
  107. if (iter != timers.end()) {
  108. Timer& timer = iter->second;
  109. htimer_reset(timer.timer);
  110. if (timer.repeat == 0) {
  111. timer.repeat = 1;
  112. }
  113. }
  114. }
  115. long tid() {
  116. if (loop_ == NULL) return hv_gettid();
  117. return hloop_tid(loop_);
  118. }
  119. bool isInLoopThread() {
  120. if (loop_ == NULL) return false;
  121. return hv_gettid() == hloop_tid(loop_);
  122. }
  123. void assertInLoopThread() {
  124. assert(isInLoopThread());
  125. }
  126. void runInLoop(Functor fn) {
  127. if (isRunning() && isInLoopThread()) {
  128. if (fn) fn();
  129. } else {
  130. queueInLoop(std::move(fn));
  131. }
  132. }
  133. void queueInLoop(Functor fn) {
  134. postEvent([fn](Event* ev) {
  135. if (fn) fn();
  136. });
  137. }
  138. void postEvent(EventCallback cb) {
  139. if (loop_ == NULL) return;
  140. EventPtr ev(new Event(cb));
  141. hevent_set_userdata(&ev->event, this);
  142. ev->event.cb = onCustomEvent;
  143. mutex_.lock();
  144. customEvents.push(ev);
  145. mutex_.unlock();
  146. hloop_post_event(loop_, &ev->event);
  147. }
  148. private:
  149. static void onTimer(htimer_t* htimer) {
  150. EventLoop* loop = (EventLoop*)hevent_userdata(htimer);
  151. TimerID timerID = hevent_id(htimer);
  152. Timer* timer = NULL;
  153. loop->mutex_.lock();
  154. auto iter = loop->timers.find(timerID);
  155. if (iter != loop->timers.end()) {
  156. timer = &iter->second;
  157. if (timer->repeat != INFINITE) --timer->repeat;
  158. }
  159. loop->mutex_.unlock();
  160. if (timer) {
  161. if (timer->cb) timer->cb(timerID);
  162. if (timer->repeat == 0) {
  163. // htimer_t alloc and free by hloop, but timers[timerID] managed by EventLoop.
  164. loop->mutex_.lock();
  165. loop->timers.erase(timerID);
  166. loop->mutex_.unlock();
  167. }
  168. }
  169. }
  170. static void onCustomEvent(hevent_t* hev) {
  171. EventLoop* loop = (EventLoop*)hevent_userdata(hev);
  172. loop->mutex_.lock();
  173. EventPtr ev = loop->customEvents.front();
  174. loop->customEvents.pop();
  175. loop->mutex_.unlock();
  176. if (ev && ev->cb) ev->cb(ev.get());
  177. }
  178. private:
  179. hloop_t* loop_;
  180. bool is_loop_owner;
  181. std::mutex mutex_;
  182. std::queue<EventPtr> customEvents; // GUAREDE_BY(mutex_)
  183. std::map<TimerID, Timer> timers; // GUAREDE_BY(mutex_)
  184. };
  185. typedef std::shared_ptr<EventLoop> EventLoopPtr;
  186. // ThreadLocalStorage
  187. static inline EventLoop* tlsEventLoop() {
  188. return (EventLoop*)ThreadLocalStorage::get(ThreadLocalStorage::EVENT_LOOP);
  189. }
  190. #define currentThreadEventLoop tlsEventLoop()
  191. static inline TimerID setTimer(int timeout_ms, TimerCallback cb, uint32_t repeat = INFINITE) {
  192. EventLoop* loop = tlsEventLoop();
  193. assert(loop != NULL);
  194. if (loop == NULL) return INVALID_TIMER_ID;
  195. return loop->setTimer(timeout_ms, cb, repeat);
  196. }
  197. static inline void killTimer(TimerID timerID) {
  198. EventLoop* loop = tlsEventLoop();
  199. assert(loop != NULL);
  200. if (loop == NULL) return;
  201. loop->killTimer(timerID);
  202. }
  203. static inline void resetTimer(TimerID timerID) {
  204. EventLoop* loop = tlsEventLoop();
  205. assert(loop != NULL);
  206. if (loop == NULL) return;
  207. loop->resetTimer(timerID);
  208. }
  209. static inline TimerID setTimeout(int timeout_ms, TimerCallback cb) {
  210. return setTimer(timeout_ms, cb, 1);
  211. }
  212. static inline TimerID setInterval(int interval_ms, TimerCallback cb) {
  213. return setTimer(interval_ms, cb, INFINITE);
  214. }
  215. }
  216. #endif // HV_EVENT_LOOP_HPP_