hloop.c 22 KB

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  1. #include "hloop.h"
  2. #include "hevent.h"
  3. #include "iowatcher.h"
  4. #include "hdef.h"
  5. #include "hbase.h"
  6. #include "hlog.h"
  7. #include "hmath.h"
  8. #include "htime.h"
  9. #include "hsocket.h"
  10. #define PAUSE_TIME 10 // ms
  11. #define MAX_BLOCK_TIME 1000 // ms
  12. #define IO_ARRAY_INIT_SIZE 1024
  13. #define CUSTOM_EVENT_QUEUE_INIT_SIZE 16
  14. static void hio_init(hio_t* io);
  15. static void hio_ready(hio_t* io);
  16. static void hio_done(hio_t* io);
  17. static void hio_free(hio_t* io);
  18. static void __hidle_del(hidle_t* idle);
  19. static void __htimer_del(htimer_t* timer);
  20. static int timers_compare(const struct heap_node* lhs, const struct heap_node* rhs) {
  21. return TIMER_ENTRY(lhs)->next_timeout < TIMER_ENTRY(rhs)->next_timeout;
  22. }
  23. static int hloop_process_idles(hloop_t* loop) {
  24. int nidles = 0;
  25. struct list_node* node = loop->idles.next;
  26. hidle_t* idle = NULL;
  27. while (node != &loop->idles) {
  28. idle = IDLE_ENTRY(node);
  29. node = node->next;
  30. if (idle->repeat != INFINITE) {
  31. --idle->repeat;
  32. }
  33. if (idle->repeat == 0) {
  34. __hidle_del(idle);
  35. }
  36. EVENT_PENDING(idle);
  37. ++nidles;
  38. }
  39. return nidles;
  40. }
  41. static int hloop_process_timers(hloop_t* loop) {
  42. int ntimers = 0;
  43. htimer_t* timer = NULL;
  44. uint64_t now_hrtime = hloop_now_hrtime(loop);
  45. while (loop->timers.root) {
  46. timer = TIMER_ENTRY(loop->timers.root);
  47. if (timer->next_timeout > now_hrtime) {
  48. break;
  49. }
  50. if (timer->repeat != INFINITE) {
  51. --timer->repeat;
  52. }
  53. if (timer->repeat == 0) {
  54. __htimer_del(timer);
  55. }
  56. else {
  57. heap_dequeue(&loop->timers);
  58. if (timer->event_type == HEVENT_TYPE_TIMEOUT) {
  59. while (timer->next_timeout <= now_hrtime) {
  60. timer->next_timeout += ((htimeout_t*)timer)->timeout * 1000;
  61. }
  62. }
  63. else if (timer->event_type == HEVENT_TYPE_PERIOD) {
  64. hperiod_t* period = (hperiod_t*)timer;
  65. timer->next_timeout = calc_next_timeout(period->minute, period->hour, period->day,
  66. period->week, period->month) * 1000000;
  67. }
  68. heap_insert(&loop->timers, &timer->node);
  69. }
  70. EVENT_PENDING(timer);
  71. ++ntimers;
  72. }
  73. return ntimers;
  74. }
  75. static int hloop_process_ios(hloop_t* loop, int timeout) {
  76. int nevents = iowatcher_poll_events(loop, timeout);
  77. if (nevents < 0) {
  78. hloge("poll_events error=%d", -nevents);
  79. }
  80. return nevents < 0 ? 0 : nevents;
  81. }
  82. static int hloop_process_pendings(hloop_t* loop) {
  83. if (loop->npendings == 0) return 0;
  84. hevent_t* cur = NULL;
  85. hevent_t* next = NULL;
  86. int ncbs = 0;
  87. for (int i = HEVENT_PRIORITY_SIZE-1; i >= 0; --i) {
  88. cur = loop->pendings[i];
  89. while (cur) {
  90. next = cur->pending_next;
  91. if (cur->pending) {
  92. if (cur->active && cur->cb) {
  93. cur->cb(cur);
  94. ++ncbs;
  95. }
  96. cur->pending = 0;
  97. if (cur->destroy) {
  98. EVENT_DEL(cur);
  99. }
  100. }
  101. cur = next;
  102. }
  103. loop->pendings[i] = NULL;
  104. }
  105. loop->npendings = 0;
  106. return ncbs;
  107. }
  108. static int hloop_process_events(hloop_t* loop) {
  109. // ios -> timers -> idles
  110. int nios, ntimers, nidles;
  111. nios = ntimers = nidles = 0;
  112. // calc blocktime
  113. int32_t blocktime = MAX_BLOCK_TIME;
  114. hloop_update_time(loop);
  115. if (loop->timers.root) {
  116. uint64_t next_min_timeout = TIMER_ENTRY(loop->timers.root)->next_timeout;
  117. int64_t blocktime_us = next_min_timeout - hloop_now_hrtime(loop);
  118. if (blocktime_us <= 0) goto process_timers;
  119. blocktime = blocktime_us / 1000;
  120. ++blocktime;
  121. blocktime = MIN(blocktime, MAX_BLOCK_TIME);
  122. }
  123. if (loop->nios) {
  124. nios = hloop_process_ios(loop, blocktime);
  125. }
  126. else {
  127. msleep(blocktime);
  128. }
  129. hloop_update_time(loop);
  130. process_timers:
  131. if (loop->ntimers) {
  132. ntimers = hloop_process_timers(loop);
  133. }
  134. int npendings = loop->npendings;
  135. if (npendings == 0) {
  136. if (loop->nidles) {
  137. nidles= hloop_process_idles(loop);
  138. }
  139. }
  140. int ncbs = hloop_process_pendings(loop);
  141. //printd("blocktime=%d nios=%d/%u ntimers=%d/%u nidles=%d/%u nactives=%d npendings=%d ncbs=%d\n",
  142. //blocktime, nios, loop->nios, ntimers, loop->ntimers, nidles, loop->nidles,
  143. //loop->nactives, npendings, ncbs);
  144. return ncbs;
  145. }
  146. static void hloop_init(hloop_t* loop) {
  147. loop->status = HLOOP_STATUS_STOP;
  148. // idles
  149. list_init(&loop->idles);
  150. // timers
  151. heap_init(&loop->timers, timers_compare);
  152. // ios: init when hio_add
  153. //io_array_init(&loop->ios, IO_ARRAY_INIT_SIZE);
  154. // iowatcher: init when iowatcher_add_event
  155. //iowatcher_init(loop);
  156. // custom_events: init when hloop_post_event
  157. //event_queue_init(&loop->custom_events, 4);
  158. loop->sockpair[0] = loop->sockpair[1] = -1;
  159. hmutex_init(&loop->custom_events_mutex);
  160. // NOTE: init start_time here, because htimer_add use it.
  161. loop->start_ms = timestamp_ms();
  162. loop->start_hrtime = loop->cur_hrtime = gethrtime_us();
  163. }
  164. static void hloop_cleanup(hloop_t* loop) {
  165. // pendings
  166. printd("cleanup pendings...\n");
  167. for (int i = 0; i < HEVENT_PRIORITY_SIZE; ++i) {
  168. loop->pendings[i] = NULL;
  169. }
  170. // idles
  171. printd("cleanup idles...\n");
  172. struct list_node* node = loop->idles.next;
  173. hidle_t* idle;
  174. while (node != &loop->idles) {
  175. idle = IDLE_ENTRY(node);
  176. node = node->next;
  177. SAFE_FREE(idle);
  178. }
  179. list_init(&loop->idles);
  180. // timers
  181. printd("cleanup timers...\n");
  182. htimer_t* timer;
  183. while (loop->timers.root) {
  184. timer = TIMER_ENTRY(loop->timers.root);
  185. heap_dequeue(&loop->timers);
  186. SAFE_FREE(timer);
  187. }
  188. heap_init(&loop->timers, NULL);
  189. // ios
  190. printd("cleanup ios...\n");
  191. for (int i = 0; i < loop->ios.maxsize; ++i) {
  192. hio_t* io = loop->ios.ptr[i];
  193. if (io) {
  194. if ((!(io->io_type&HIO_TYPE_STDIO)) && io->active) {
  195. hio_close(io);
  196. }
  197. hio_free(io);
  198. }
  199. }
  200. io_array_cleanup(&loop->ios);
  201. // readbuf
  202. if (loop->readbuf.base && loop->readbuf.len) {
  203. free(loop->readbuf.base);
  204. loop->readbuf.base = NULL;
  205. loop->readbuf.len = 0;
  206. }
  207. // iowatcher
  208. iowatcher_cleanup(loop);
  209. // custom_events
  210. hmutex_lock(&loop->custom_events_mutex);
  211. if (loop->sockpair[0] != -1 && loop->sockpair[1] != -1) {
  212. closesocket(loop->sockpair[0]);
  213. closesocket(loop->sockpair[1]);
  214. loop->sockpair[0] = loop->sockpair[1] = -1;
  215. }
  216. event_queue_cleanup(&loop->custom_events);
  217. hmutex_unlock(&loop->custom_events_mutex);
  218. hmutex_destroy(&loop->custom_events_mutex);
  219. }
  220. hloop_t* hloop_new(int flags) {
  221. hloop_t* loop;
  222. SAFE_ALLOC_SIZEOF(loop);
  223. memset(loop, 0, sizeof(hloop_t));
  224. hloop_init(loop);
  225. loop->flags |= flags;
  226. return loop;
  227. }
  228. void hloop_free(hloop_t** pp) {
  229. if (pp && *pp) {
  230. hloop_cleanup(*pp);
  231. SAFE_FREE(*pp);
  232. *pp = NULL;
  233. }
  234. }
  235. int hloop_run(hloop_t* loop) {
  236. loop->status = HLOOP_STATUS_RUNNING;
  237. while (loop->status != HLOOP_STATUS_STOP) {
  238. if (loop->status == HLOOP_STATUS_PAUSE) {
  239. msleep(PAUSE_TIME);
  240. hloop_update_time(loop);
  241. continue;
  242. }
  243. ++loop->loop_cnt;
  244. if (loop->nactives == 0) break;
  245. hloop_process_events(loop);
  246. if (loop->flags & HLOOP_FLAG_RUN_ONCE) {
  247. break;
  248. }
  249. }
  250. loop->status = HLOOP_STATUS_STOP;
  251. loop->end_hrtime = gethrtime_us();
  252. if (loop->flags & HLOOP_FLAG_AUTO_FREE) {
  253. hloop_cleanup(loop);
  254. SAFE_FREE(loop);
  255. }
  256. return 0;
  257. }
  258. int hloop_stop(hloop_t* loop) {
  259. loop->status = HLOOP_STATUS_STOP;
  260. return 0;
  261. }
  262. int hloop_pause(hloop_t* loop) {
  263. if (loop->status == HLOOP_STATUS_RUNNING) {
  264. loop->status = HLOOP_STATUS_PAUSE;
  265. }
  266. return 0;
  267. }
  268. int hloop_resume(hloop_t* loop) {
  269. if (loop->status == HLOOP_STATUS_PAUSE) {
  270. loop->status = HLOOP_STATUS_RUNNING;
  271. }
  272. return 0;
  273. }
  274. void hloop_update_time(hloop_t* loop) {
  275. loop->cur_hrtime = gethrtime_us();
  276. if (ABS((int64_t)hloop_now(loop) - (int64_t)time(NULL)) > 1) {
  277. // systemtime changed, we adjust start_ms
  278. loop->start_ms = timestamp_ms() - (loop->cur_hrtime - loop->start_hrtime) / 1000;
  279. }
  280. }
  281. uint64_t hloop_now(hloop_t* loop) {
  282. return loop->start_ms / 1000 + (loop->cur_hrtime - loop->start_hrtime) / 1000000;
  283. }
  284. uint64_t hloop_now_ms(hloop_t* loop) {
  285. return loop->start_ms + (loop->cur_hrtime - loop->start_hrtime) / 1000;
  286. }
  287. uint64_t hloop_now_hrtime(hloop_t* loop) {
  288. return loop->start_ms * 1000 + (loop->cur_hrtime - loop->start_hrtime);
  289. }
  290. void hloop_set_userdata(hloop_t* loop, void* userdata) {
  291. loop->userdata = userdata;
  292. }
  293. void* hloop_userdata(hloop_t* loop) {
  294. return loop->userdata;
  295. }
  296. hidle_t* hidle_add(hloop_t* loop, hidle_cb cb, uint32_t repeat) {
  297. hidle_t* idle;
  298. SAFE_ALLOC_SIZEOF(idle);
  299. idle->event_type = HEVENT_TYPE_IDLE;
  300. idle->priority = HEVENT_LOWEST_PRIORITY;
  301. idle->repeat = repeat;
  302. list_add(&idle->node, &loop->idles);
  303. EVENT_ADD(loop, idle, cb);
  304. loop->nidles++;
  305. return idle;
  306. }
  307. static void __hidle_del(hidle_t* idle) {
  308. if (idle->destroy) return;
  309. idle->destroy = 1;
  310. list_del(&idle->node);
  311. idle->loop->nidles--;
  312. }
  313. void hidle_del(hidle_t* idle) {
  314. if (!idle->active) return;
  315. EVENT_DEL(idle);
  316. __hidle_del(idle);
  317. }
  318. htimer_t* htimer_add(hloop_t* loop, htimer_cb cb, uint64_t timeout, uint32_t repeat) {
  319. if (timeout == 0) return NULL;
  320. htimeout_t* timer;
  321. SAFE_ALLOC_SIZEOF(timer);
  322. timer->event_type = HEVENT_TYPE_TIMEOUT;
  323. timer->priority = HEVENT_HIGHEST_PRIORITY;
  324. timer->repeat = repeat;
  325. timer->timeout = timeout;
  326. hloop_update_time(loop);
  327. timer->next_timeout = hloop_now_hrtime(loop) + timeout*1000;
  328. heap_insert(&loop->timers, &timer->node);
  329. EVENT_ADD(loop, timer, cb);
  330. loop->ntimers++;
  331. return (htimer_t*)timer;
  332. }
  333. void htimer_reset(htimer_t* timer) {
  334. if (timer->event_type != HEVENT_TYPE_TIMEOUT) {
  335. return;
  336. }
  337. hloop_t* loop = timer->loop;
  338. htimeout_t* timeout = (htimeout_t*)timer;
  339. if (timer->pending) {
  340. if (timer->repeat == 0) {
  341. timer->repeat = 1;
  342. }
  343. }
  344. else {
  345. heap_remove(&loop->timers, &timer->node);
  346. }
  347. timer->next_timeout = hloop_now_hrtime(loop) + timeout->timeout*1000;
  348. heap_insert(&loop->timers, &timer->node);
  349. EVENT_RESET(timer);
  350. }
  351. htimer_t* htimer_add_period(hloop_t* loop, htimer_cb cb,
  352. int8_t minute, int8_t hour, int8_t day,
  353. int8_t week, int8_t month, uint32_t repeat) {
  354. if (minute > 59 || hour > 23 || day > 31 || week > 6 || month > 12) {
  355. return NULL;
  356. }
  357. hperiod_t* timer;
  358. SAFE_ALLOC_SIZEOF(timer);
  359. timer->event_type = HEVENT_TYPE_PERIOD;
  360. timer->priority = HEVENT_HIGH_PRIORITY;
  361. timer->repeat = repeat;
  362. timer->minute = minute;
  363. timer->hour = hour;
  364. timer->day = day;
  365. timer->month = month;
  366. timer->week = week;
  367. timer->next_timeout = calc_next_timeout(minute, hour, day, week, month) * 1000000;
  368. heap_insert(&loop->timers, &timer->node);
  369. EVENT_ADD(loop, timer, cb);
  370. loop->ntimers++;
  371. return (htimer_t*)timer;
  372. }
  373. static void __htimer_del(htimer_t* timer) {
  374. if (timer->destroy) return;
  375. heap_remove(&timer->loop->timers, &timer->node);
  376. timer->loop->ntimers--;
  377. timer->destroy = 1;
  378. }
  379. void htimer_del(htimer_t* timer) {
  380. if (!timer->active) return;
  381. __htimer_del(timer);
  382. EVENT_DEL(timer);
  383. }
  384. const char* hio_engine() {
  385. #ifdef EVENT_SELECT
  386. return "select";
  387. #elif defined(EVENT_POLL)
  388. return "poll";
  389. #elif defined(EVENT_EPOLL)
  390. return "epoll";
  391. #elif defined(EVENT_KQUEUE)
  392. return "kqueue";
  393. #elif defined(EVENT_IOCP)
  394. return "iocp";
  395. #elif defined(EVENT_PORT)
  396. return "evport";
  397. #else
  398. return "noevent";
  399. #endif
  400. }
  401. void hio_init(hio_t* io) {
  402. memset(io, 0, sizeof(hio_t));
  403. io->event_type = HEVENT_TYPE_IO;
  404. io->event_index[0] = io->event_index[1] = -1;
  405. // write_queue init when hwrite try_write failed
  406. //write_queue_init(&io->write_queue, 4);;
  407. }
  408. static void fill_io_type(hio_t* io) {
  409. int type = 0;
  410. socklen_t optlen = sizeof(int);
  411. int ret = getsockopt(io->fd, SOL_SOCKET, SO_TYPE, (char*)&type, &optlen);
  412. printd("getsockopt SO_TYPE fd=%d ret=%d type=%d errno=%d\n", io->fd, ret, type, socket_errno());
  413. if (ret == 0) {
  414. switch (type) {
  415. case SOCK_STREAM: io->io_type = HIO_TYPE_TCP; break;
  416. case SOCK_DGRAM: io->io_type = HIO_TYPE_UDP; break;
  417. case SOCK_RAW: io->io_type = HIO_TYPE_IP; break;
  418. default: io->io_type = HIO_TYPE_SOCKET; break;
  419. }
  420. }
  421. else if (socket_errno() == ENOTSOCK) {
  422. switch (io->fd) {
  423. case 0: io->io_type = HIO_TYPE_STDIN; break;
  424. case 1: io->io_type = HIO_TYPE_STDOUT; break;
  425. case 2: io->io_type = HIO_TYPE_STDERR; break;
  426. default: io->io_type = HIO_TYPE_FILE; break;
  427. }
  428. }
  429. }
  430. static void hio_socket_init(hio_t* io) {
  431. // nonblocking
  432. nonblocking(io->fd);
  433. // fill io->localaddr io->peeraddr
  434. if (io->localaddr == NULL) {
  435. SAFE_ALLOC(io->localaddr, sizeof(sockaddr_u));
  436. }
  437. if (io->peeraddr == NULL) {
  438. SAFE_ALLOC(io->peeraddr, sizeof(sockaddr_u));
  439. }
  440. socklen_t addrlen = sizeof(sockaddr_u);
  441. int ret = getsockname(io->fd, io->localaddr, &addrlen);
  442. printd("getsockname fd=%d ret=%d errno=%d\n", io->fd, ret, socket_errno());
  443. // NOTE:
  444. // tcp_server peeraddr set by accept
  445. // udp_server peeraddr set by recvfrom
  446. // tcp_client/udp_client peeraddr set by hio_setpeeraddr
  447. if (io->io_type == HIO_TYPE_TCP || io->io_type == HIO_TYPE_SSL) {
  448. // tcp acceptfd
  449. addrlen = sizeof(sockaddr_u);
  450. ret = getpeername(io->fd, io->peeraddr, &addrlen);
  451. printd("getpeername fd=%d ret=%d errno=%d\n", io->fd, ret, socket_errno());
  452. }
  453. }
  454. void hio_ready(hio_t* io) {
  455. if (io->ready) return;
  456. io->ready = 1;
  457. io->closed = 0;
  458. io->accept = io->connect = io->connectex = 0;
  459. io->recv = io->send = 0;
  460. io->recvfrom = io->sendto = 0;
  461. io->io_type = HIO_TYPE_UNKNOWN;
  462. io->error = 0;
  463. io->events = io->revents = 0;
  464. io->read_cb = NULL;
  465. io->write_cb = NULL;
  466. io->close_cb = 0;
  467. io->accept_cb = 0;
  468. io->connect_cb = 0;
  469. io->event_index[0] = io->event_index[1] = -1;
  470. io->hovlp = NULL;
  471. io->ssl = NULL;
  472. io->timer = NULL;
  473. fill_io_type(io);
  474. if (io->io_type & HIO_TYPE_SOCKET) {
  475. hio_socket_init(io);
  476. }
  477. }
  478. void hio_done(hio_t* io) {
  479. io->ready = 0;
  480. offset_buf_t* pbuf = NULL;
  481. while (!write_queue_empty(&io->write_queue)) {
  482. pbuf = write_queue_front(&io->write_queue);
  483. SAFE_FREE(pbuf->base);
  484. write_queue_pop_front(&io->write_queue);
  485. }
  486. write_queue_cleanup(&io->write_queue);
  487. }
  488. void hio_free(hio_t* io) {
  489. if (io == NULL) return;
  490. hio_done(io);
  491. SAFE_FREE(io->localaddr);
  492. SAFE_FREE(io->peeraddr);
  493. SAFE_FREE(io);
  494. }
  495. hio_t* hio_get(hloop_t* loop, int fd) {
  496. if (loop->ios.maxsize == 0) {
  497. io_array_init(&loop->ios, IO_ARRAY_INIT_SIZE);
  498. }
  499. if (fd >= loop->ios.maxsize) {
  500. int newsize = ceil2e(fd);
  501. io_array_resize(&loop->ios, newsize > fd ? newsize : 2*fd);
  502. }
  503. hio_t* io = loop->ios.ptr[fd];
  504. if (io == NULL) {
  505. SAFE_ALLOC_SIZEOF(io);
  506. hio_init(io);
  507. io->loop = loop;
  508. io->fd = fd;
  509. loop->ios.ptr[fd] = io;
  510. }
  511. if (!io->ready) {
  512. hio_ready(io);
  513. }
  514. return io;
  515. }
  516. int hio_add(hio_t* io, hio_cb cb, int events) {
  517. printd("hio_add fd=%d events=%d\n", io->fd, events);
  518. #ifdef OS_WIN
  519. // Windows iowatcher not work on stdio
  520. if (io->fd < 3) return 0;
  521. #endif
  522. hloop_t* loop = io->loop;
  523. if (!io->ready) {
  524. hio_ready(io);
  525. }
  526. if (!io->active) {
  527. EVENT_ADD(loop, io, cb);
  528. loop->nios++;
  529. }
  530. if (cb) {
  531. io->cb = (hevent_cb)cb;
  532. }
  533. iowatcher_add_event(loop, io->fd, events);
  534. io->events |= events;
  535. return 0;
  536. }
  537. int hio_del(hio_t* io, int events) {
  538. printd("hio_del fd=%d io->events=%d events=%d\n", io->fd, io->events, events);
  539. if (!io->active) return 0;
  540. iowatcher_del_event(io->loop, io->fd, events);
  541. io->events &= ~events;
  542. if (io->events == 0) {
  543. io->loop->nios--;
  544. // NOTE: not EVENT_DEL, avoid free
  545. EVENT_INACTIVE(io);
  546. hio_done(io);
  547. }
  548. return 0;
  549. }
  550. hio_t* hread(hloop_t* loop, int fd, void* buf, size_t len, hread_cb read_cb) {
  551. hio_t* io = hio_get(loop, fd);
  552. if (io == NULL) return NULL;
  553. io->readbuf.base = (char*)buf;
  554. io->readbuf.len = len;
  555. if (read_cb) {
  556. io->read_cb = read_cb;
  557. }
  558. hio_read(io);
  559. return io;
  560. }
  561. hio_t* hwrite(hloop_t* loop, int fd, const void* buf, size_t len, hwrite_cb write_cb) {
  562. hio_t* io = hio_get(loop, fd);
  563. if (io == NULL) return NULL;
  564. if (write_cb) {
  565. io->write_cb = write_cb;
  566. }
  567. hio_write(io, buf, len);
  568. return io;
  569. }
  570. hio_t* haccept(hloop_t* loop, int listenfd, haccept_cb accept_cb) {
  571. hio_t* io = hio_get(loop, listenfd);
  572. if (io == NULL) return NULL;
  573. io->accept = 1;
  574. if (accept_cb) {
  575. io->accept_cb = accept_cb;
  576. }
  577. hio_accept(io);
  578. return io;
  579. }
  580. hio_t* hconnect (hloop_t* loop, int connfd, hconnect_cb connect_cb) {
  581. hio_t* io = hio_get(loop, connfd);
  582. if (io == NULL) return NULL;
  583. io->connect = 1;
  584. if (connect_cb) {
  585. io->connect_cb = connect_cb;
  586. }
  587. hio_connect(io);
  588. return io;
  589. }
  590. hio_t* hrecv (hloop_t* loop, int connfd, void* buf, size_t len, hread_cb read_cb) {
  591. //hio_t* io = hio_get(loop, connfd);
  592. //if (io == NULL) return NULL;
  593. //io->recv = 1;
  594. //if (io->io_type != HIO_TYPE_SSL) {
  595. //io->io_type = HIO_TYPE_TCP;
  596. //}
  597. return hread(loop, connfd, buf, len, read_cb);
  598. }
  599. hio_t* hsend (hloop_t* loop, int connfd, const void* buf, size_t len, hwrite_cb write_cb) {
  600. //hio_t* io = hio_get(loop, connfd);
  601. //if (io == NULL) return NULL;
  602. //io->send = 1;
  603. //if (io->io_type != HIO_TYPE_SSL) {
  604. //io->io_type = HIO_TYPE_TCP;
  605. //}
  606. return hwrite(loop, connfd, buf, len, write_cb);
  607. }
  608. hio_t* hrecvfrom (hloop_t* loop, int sockfd, void* buf, size_t len, hread_cb read_cb) {
  609. //hio_t* io = hio_get(loop, sockfd);
  610. //if (io == NULL) return NULL;
  611. //io->recvfrom = 1;
  612. //io->io_type = HIO_TYPE_UDP;
  613. return hread(loop, sockfd, buf, len, read_cb);
  614. }
  615. hio_t* hsendto (hloop_t* loop, int sockfd, const void* buf, size_t len, hwrite_cb write_cb) {
  616. //hio_t* io = hio_get(loop, sockfd);
  617. //if (io == NULL) return NULL;
  618. //io->sendto = 1;
  619. //io->io_type = HIO_TYPE_UDP;
  620. return hwrite(loop, sockfd, buf, len, write_cb);
  621. }
  622. hio_t* create_tcp_server (hloop_t* loop, const char* host, int port, haccept_cb accept_cb) {
  623. int listenfd = Listen(port, host);
  624. if (listenfd < 0) {
  625. return NULL;
  626. }
  627. hio_t* io = haccept(loop, listenfd, accept_cb);
  628. if (io == NULL) {
  629. closesocket(listenfd);
  630. }
  631. return io;
  632. }
  633. hio_t* create_tcp_client (hloop_t* loop, const char* host, int port, hconnect_cb connect_cb) {
  634. sockaddr_u peeraddr;
  635. socklen_t addrlen = sizeof(peeraddr);
  636. memset(&peeraddr, 0, addrlen);
  637. int ret = sockaddr_assign(&peeraddr, host, port);
  638. if (ret != 0) {
  639. //printf("unknown host: %s\n", host);
  640. return NULL;
  641. }
  642. int connfd = socket(peeraddr.sa.sa_family, SOCK_STREAM, 0);
  643. if (connfd < 0) {
  644. perror("socket");
  645. return NULL;
  646. }
  647. hio_t* io = hio_get(loop, connfd);
  648. if (io == NULL) return NULL;
  649. hio_set_peeraddr(io, &peeraddr.sa, sockaddrlen(&peeraddr));
  650. hconnect(loop, connfd, connect_cb);
  651. return io;
  652. }
  653. // @server: socket -> bind -> hrecvfrom
  654. hio_t* create_udp_server(hloop_t* loop, const char* host, int port) {
  655. int bindfd = Bind(port, host, SOCK_DGRAM);
  656. if (bindfd < 0) {
  657. return NULL;
  658. }
  659. return hio_get(loop, bindfd);
  660. }
  661. // @client: Resolver -> socket -> hio_get -> hio_set_peeraddr
  662. hio_t* create_udp_client(hloop_t* loop, const char* host, int port) {
  663. sockaddr_u peeraddr;
  664. socklen_t addrlen = sizeof(peeraddr);
  665. memset(&peeraddr, 0, addrlen);
  666. int ret = sockaddr_assign(&peeraddr, host, port);
  667. if (ret != 0) {
  668. //printf("unknown host: %s\n", host);
  669. return NULL;
  670. }
  671. int sockfd = socket(peeraddr.sa.sa_family, SOCK_DGRAM, 0);
  672. if (sockfd < 0) {
  673. perror("socket");
  674. return NULL;
  675. }
  676. hio_t* io = hio_get(loop, sockfd);
  677. if (io == NULL) return NULL;
  678. hio_set_peeraddr(io, &peeraddr.sa, sockaddrlen(&peeraddr));
  679. return io;
  680. }
  681. static void sockpair_read_cb(hio_t* io, void* buf, int readbytes) {
  682. hloop_t* loop = io->loop;
  683. hevent_t* pev = NULL;
  684. hevent_t ev;
  685. for (int i = 0; i < readbytes; ++i) {
  686. hmutex_lock(&loop->custom_events_mutex);
  687. if (event_queue_empty(&loop->custom_events)) {
  688. goto unlock;
  689. }
  690. pev = event_queue_front(&loop->custom_events);
  691. if (pev == NULL) {
  692. goto unlock;
  693. }
  694. ev = *pev;
  695. event_queue_pop_front(&loop->custom_events);
  696. // NOTE: unlock before cb, avoid deadlock if hloop_post_event called in cb.
  697. hmutex_unlock(&loop->custom_events_mutex);
  698. if (ev.cb) {
  699. ev.cb(&ev);
  700. }
  701. }
  702. return;
  703. unlock:
  704. hmutex_unlock(&loop->custom_events_mutex);
  705. }
  706. void hloop_post_event(hloop_t* loop, hevent_t* ev) {
  707. char buf = '1';
  708. hmutex_lock(&loop->custom_events_mutex);
  709. if (loop->sockpair[0] <= 0 && loop->sockpair[1] <= 0) {
  710. if (Socketpair(AF_INET, SOCK_STREAM, 0, loop->sockpair) != 0) {
  711. hloge("socketpair error");
  712. goto unlock;
  713. }
  714. hread(loop, loop->sockpair[1], loop->readbuf.base, loop->readbuf.len, sockpair_read_cb);
  715. }
  716. if (loop->custom_events.maxsize == 0) {
  717. event_queue_init(&loop->custom_events, CUSTOM_EVENT_QUEUE_INIT_SIZE);
  718. }
  719. if (ev->loop == NULL) {
  720. ev->loop = loop;
  721. }
  722. if (ev->event_type == 0) {
  723. ev->event_type = HEVENT_TYPE_CUSTOM;
  724. }
  725. if (ev->event_id == 0) {
  726. ev->event_id = ++loop->event_counter;
  727. }
  728. event_queue_push_back(&loop->custom_events, ev);
  729. hwrite(loop, loop->sockpair[0], &buf, 1, NULL);
  730. unlock:
  731. hmutex_unlock(&loop->custom_events_mutex);
  732. }