ioqueue-win.c 71 KB

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  1. #include "precompile.h"
  2. #include "ioqueue.h"
  3. #include "timerqueue.h"
  4. #include "memutil.h"
  5. #include "refcnt.h"
  6. #include "strutil.h"
  7. #include "sockutil.h"
  8. #ifdef _WIN32
  9. #include <MSWSock.h>
  10. #endif //_WIN32
  11. #include <winpr/file.h>
  12. #include <winpr/handle.h>
  13. #include <winpr/synch.h>
  14. #include <winpr/pipe.h>
  15. #include <winpr/string.h>
  16. #ifndef SO_UPDATE_CONNECT_CONTEXT
  17. #define SO_UPDATE_CONNECT_CONTEXT 0x7010
  18. #endif
  19. #ifndef WSAID_CONNECTEX
  20. #define WSAID_CONNECTEX \
  21. {0x25a207b9,0xddf3,0x4660,{0x8e,0xe9,0x76,0xe5,0x8c,0x74,0x06,0x3e}}
  22. #endif
  23. #define MT_TTL 10*60*1000 /* maintenance 10 minutes */
  24. #define MT_INTERVAL 30*1000 /* maintenance 30 seconds */
  25. /* The address specified in AcceptEx() must be 16 more than the size of
  26. * SOCKADDR (source: MSDN).
  27. */
  28. #define ACCEPT_ADDR_LEN (16+sizeof(SOCKADDR))
  29. struct ioqueue_t {
  30. HANDLE iocp;
  31. void *user_data;
  32. /* timer */
  33. spinlock_t tm_queue_lock;
  34. timer_queue_t *tm_queue;
  35. /* msg handler */
  36. ioqueue_on_msg_callback msg_handlers[MAX_MSG][MAX_MSG_PRIORITY];
  37. LONG msg_cnt;
  38. /* connect */
  39. spinlock_t connect_list_lock;
  40. struct list_head connect_list;
  41. spinlock_t handler_list_lock;
  42. struct list_head handler_list;
  43. LONG stop;
  44. };
  45. typedef struct ioqueue_msg {
  46. int msg_type;
  47. int param1;
  48. int param2;
  49. HANDLE evt; /* for send message */
  50. }ioqueue_msg;
  51. #define HANDLE_TYPE_ACCEPTOR 0x01
  52. #define HANDLE_TYPE_TCPSOCK 0x02
  53. #define HANDLE_TYPE_UDPSOCK 0x03
  54. #define HANDLE_TYPE_FILE 0x04
  55. #define HANDLE_TYPE_PIPEACCEPTOR 0x05
  56. #define OV_ACCEPT 0x01
  57. #define OV_CONNECT 0x02
  58. #define OV_SENDSOME 0x03
  59. #define OV_SENDN 0x04
  60. #define OV_RECVSOME 0x05
  61. #define OV_RECVN 0x06
  62. #define OV_SENDTO 0x07
  63. #define OV_RECVFROM 0x08
  64. #define OV_READFILESOME 0x09
  65. #define OV_WRITEFILESOME 0x0a
  66. #define OV_READFILEN 0x0b
  67. #define OV_WRITEFILEN 0x0c
  68. #define OV_RECVUNTIL 0x0d
  69. #define OV_CONNECTPIPE 0x0e
  70. typedef struct ioqueue_base_overlapped_t {
  71. OVERLAPPED ov;
  72. int type;
  73. void *user_data;
  74. struct list_head pending_entry;
  75. ioqueue_handle_context *handle_ctx;
  76. }ioqueue_base_overlapped_t;
  77. typedef struct ioqueue_accept_overlapped_t {
  78. ioqueue_base_overlapped_t base;
  79. SOCKET client;
  80. ioqueue_on_accept_callback on_accept_callback;
  81. char accept_buf[2*ACCEPT_ADDR_LEN];
  82. }ioqueue_accept_overlapped_t;
  83. typedef struct ioqueue_connect_overlapped_t {
  84. ioqueue_base_overlapped_t base;
  85. ioqueue_on_connect_callback on_connect_callback;
  86. struct list_head node;
  87. HANDLE hevt;
  88. }ioqueue_connect_overlapped_t;
  89. typedef struct ioqueue_sendsome_overlapped_t {
  90. ioqueue_base_overlapped_t base;
  91. ioqueue_on_send_callback on_send_callback;
  92. WSABUF wsabuf;
  93. }ioqueue_sendsome_overlapped_t;
  94. typedef struct ioqueue_sendn_overlapped_t {
  95. ioqueue_base_overlapped_t base;
  96. ioqueue_on_send_callback on_send_callback;
  97. WSABUF wsabuf;
  98. char *original_buf;
  99. unsigned int sended_bytes;
  100. unsigned int total_bytes;
  101. }ioqueue_sendn_overlapped_t;
  102. typedef struct ioqueue_recvsome_overlapped_t {
  103. ioqueue_base_overlapped_t base;
  104. ioqueue_on_recv_callback on_recv_callback;
  105. WSABUF wsabuf;
  106. DWORD dwFlags;
  107. }ioqueue_recvsome_overlapped_t;
  108. typedef struct ioqueue_recvn_overlapped_t {
  109. ioqueue_base_overlapped_t base;
  110. ioqueue_on_recv_callback on_recv_callback;
  111. WSABUF wsabuf;
  112. char *original_buf;
  113. unsigned int recved_bytes;
  114. unsigned int total_bytes;
  115. DWORD dwFlags;
  116. }ioqueue_recvn_overlapped_t;
  117. typedef struct ioqueue_recvuntil_overlapped_t {
  118. ioqueue_base_overlapped_t base;
  119. ioqueue_on_recvuntil_callback on_recvuntil_callback;
  120. WSABUF wsabuf;
  121. char *original_buf;
  122. char *delimer;
  123. unsigned int recved_bytes;
  124. unsigned int total_bytes;
  125. DWORD dwFlags;
  126. }ioqueue_recvuntil_overlapped_t;
  127. typedef struct ioqueue_sendto_overlapped_t {
  128. ioqueue_base_overlapped_t base;
  129. ioqueue_on_sendto_callback on_sendto_callback;
  130. WSABUF wsabuf;
  131. }ioqueue_sendto_overlapped_t;
  132. typedef struct ioqueue_recvfrom_overlapped_t {
  133. ioqueue_base_overlapped_t base;
  134. ioqueue_on_recvfrom_callback on_recvfrom_callback;
  135. WSABUF wsabuf;
  136. struct sockaddr_in peer;
  137. int addrlen;
  138. DWORD dwFlags;
  139. }ioqueue_recvfrom_overlapped_t;
  140. typedef struct ioqueue_readfilesome_overlapped_t {
  141. ioqueue_base_overlapped_t base;
  142. ioqueue_on_read_callback on_read_callback;
  143. char *buf;
  144. HANDLE hevt;
  145. }ioqueue_readfilesome_overlapped_t;
  146. typedef struct ioqueue_readfilen_overlapped_t {
  147. ioqueue_base_overlapped_t base;
  148. ioqueue_on_read_callback on_read_callback;
  149. char *buf;
  150. HANDLE hevt;
  151. unsigned int recved_bytes;
  152. unsigned int total_bytes;
  153. }ioqueue_readfilen_overlapped_t;
  154. typedef struct ioqueue_writefilesome_overlapped_t {
  155. ioqueue_base_overlapped_t base;
  156. ioqueue_on_write_callback on_write_callback;
  157. HANDLE hevt;
  158. char *buf;
  159. }ioqueue_writefilesome_overlapped_t;
  160. typedef struct ioqueue_writefilen_overlapped_t {
  161. ioqueue_base_overlapped_t base;
  162. ioqueue_on_write_callback on_write_callback;
  163. char *buf;
  164. HANDLE hevt;
  165. unsigned int sended_bytes;
  166. unsigned int total_bytes;
  167. }ioqueue_writefilen_overlapped_t;
  168. typedef struct ioqueue_connectpipe_overlapped_t {
  169. ioqueue_base_overlapped_t base;
  170. HANDLE client;
  171. HANDLE hevt;
  172. ioqueue_on_pipe_accept_callback on_accept_callback;
  173. }ioqueue_connectpipe_overlapped_t;
  174. static int reuse_addr(SOCKET sock)
  175. {
  176. BOOL reuseaddr = 1;
  177. return setsockopt(sock, SOL_SOCKET, SO_REUSEADDR, (char*)&reuseaddr, sizeof(reuseaddr));
  178. }
  179. static int nonblock_sock(SOCKET sock)
  180. {
  181. unsigned long v = 1;
  182. return _ioctlsocket(sock, FIONBIO, &v);
  183. }
  184. static int is_os_gte_xp() /* is os version greater and equal than xp */
  185. {
  186. static int yes = -1;
  187. #ifdef _WIN32
  188. if (yes == -1) {
  189. OSVERSIONINFO ver;
  190. ver.dwOSVersionInfoSize = sizeof(OSVERSIONINFO);
  191. GetVersionEx(&ver);
  192. if (ver.dwMajorVersion > 5 || (ver.dwMajorVersion == 5 && ver.dwMinorVersion > 0)) {
  193. yes = 1;
  194. }
  195. }
  196. #endif//_WIN32
  197. return yes;
  198. }
  199. static __inline LONG inc_msg_cnt(ioqueue_t *ioq)
  200. {
  201. return InterlockedIncrement(&ioq->msg_cnt);
  202. }
  203. static __inline LONG dec_msg_cnt(ioqueue_t *ioq)
  204. {
  205. return InterlockedDecrement(&ioq->msg_cnt);
  206. }
  207. static __inline void add_handler_list(ioqueue_handle_context *handle_ctx, ioqueue_t *ioq)
  208. {
  209. spinlock_enter(&ioq->handler_list_lock, -1);
  210. list_add(&handle_ctx->node, &ioq->handler_list);
  211. spinlock_leave(&ioq->handler_list_lock);
  212. }
  213. static __inline void del_handler_list(ioqueue_handle_context *handle_ctx, ioqueue_t *ioq)
  214. {
  215. if (handle_ctx->node.next) {
  216. spinlock_enter(&ioq->handler_list_lock, -1);
  217. list_del(&handle_ctx->node);
  218. handle_ctx->node.next = handle_ctx->node.prev = NULL;
  219. spinlock_leave(&ioq->handler_list_lock);
  220. }
  221. }
  222. static void ioqueue_handle_context_free(ioqueue_handle_context *handle_ctx)
  223. {
  224. if (handle_ctx->type == HANDLE_TYPE_UDPSOCK
  225. || handle_ctx->type == HANDLE_TYPE_TCPSOCK
  226. || handle_ctx->type == HANDLE_TYPE_ACCEPTOR) {
  227. if (handle_ctx->u.sock != INVALID_SOCKET) {
  228. closesocket(handle_ctx->u.sock);
  229. handle_ctx->u.sock = INVALID_SOCKET;
  230. }
  231. } else if (handle_ctx->type == HANDLE_TYPE_FILE) {
  232. if (handle_ctx->u.file != INVALID_HANDLE_VALUE) {
  233. CloseHandle(handle_ctx->u.file);
  234. handle_ctx->u.file = INVALID_HANDLE_VALUE;
  235. }
  236. } else if (handle_ctx->type == HANDLE_TYPE_PIPEACCEPTOR) {
  237. if (handle_ctx->u.pipe_name) {
  238. free(handle_ctx->u.pipe_name);
  239. handle_ctx->u.pipe_name = NULL;
  240. }
  241. } else {
  242. assert(0);
  243. return;
  244. }
  245. del_handler_list(handle_ctx, handle_ctx->owner);
  246. }
  247. IMPLEMENT_REF_COUNT_MT(ioqueue_handle_context, ioqueue_handle_context, pending_ios, ioqueue_handle_context_free)
  248. static __inline LONG inc_pending_io(ioqueue_handle_context *handle_ctx)
  249. {
  250. return inc_ref(ioqueue_handle_context, handle_ctx);
  251. }
  252. static __inline LONG dec_pending_io(ioqueue_handle_context *handle_ctx)
  253. {
  254. return dec_ref(ioqueue_handle_context, handle_ctx);
  255. }
  256. static SOCKET new_socket()
  257. {
  258. SOCKET sock = WSASocket(AF_INET, SOCK_STREAM, IPPROTO_TCP,
  259. NULL, 0, WSA_FLAG_OVERLAPPED);
  260. if (sock != INVALID_SOCKET) {
  261. reuse_addr(sock);
  262. }
  263. return sock;
  264. }
  265. static void delete_socket(SOCKET sock)
  266. {
  267. LINGER l;
  268. l.l_onoff = 1;
  269. l.l_linger = 0;
  270. setsockopt(sock, SOL_SOCKET, SO_LINGER, (char*)&l, sizeof(l));
  271. closesocket(sock);
  272. }
  273. TOOLKIT_API ioqueue_t *ioqueue_create()
  274. {
  275. ioqueue_t *ioq = ZALLOC_T(ioqueue_t);
  276. if (!ioq)
  277. return NULL;
  278. ioq->iocp = CreateIoCompletionPort(INVALID_HANDLE_VALUE, NULL, 0, 0);
  279. if (!ioq->iocp)
  280. goto on_error_0;
  281. if (timer_heap_create(&ioq->tm_queue) != 0)
  282. goto on_error_3;
  283. spinlock_init(&ioq->tm_queue_lock);
  284. spinlock_init(&ioq->connect_list_lock);
  285. INIT_LIST_HEAD(&ioq->connect_list);
  286. spinlock_init(&ioq->handler_list_lock);
  287. INIT_LIST_HEAD(&ioq->handler_list);
  288. ///ioq->stop = 0;
  289. //ioq->msg_cnt = 0;
  290. return ioq;
  291. on_error_3:
  292. CloseHandle(ioq->iocp);
  293. on_error_0:
  294. free(ioq);
  295. return NULL;
  296. }
  297. TOOLKIT_API void ioqueue_destroy(ioqueue_t *ioq)
  298. {
  299. assert(ioq);
  300. assert(ioqueue_handler_empty(ioq));
  301. assert(ioqueue_msg_empty(ioq));
  302. timer_queue_destroy(ioq->tm_queue);
  303. CloseHandle(ioq->iocp);
  304. free(ioq);
  305. }
  306. TOOLKIT_API int ioqueue_handler_empty(ioqueue_t *ioq)
  307. {
  308. int ret;
  309. assert(ioq);
  310. spinlock_enter(&ioq->handler_list_lock, -1);
  311. ret = list_empty(&ioq->handler_list);
  312. spinlock_leave(&ioq->handler_list_lock);
  313. return ret;
  314. }
  315. TOOLKIT_API int ioqueue_msg_empty(ioqueue_t *ioq)
  316. {
  317. assert(ioq);
  318. return ioq->msg_cnt == 0;
  319. }
  320. TOOLKIT_API int ioqueue_msg_add_handler(ioqueue_t *ioq, int msg_type, int priority, ioqueue_on_msg_callback cb)
  321. {
  322. assert(ioq);
  323. assert(cb);
  324. assert(msg_type >= 0 && msg_type <= MAX_MSG);
  325. assert(priority >= 0 && priority <= MAX_MSG_PRIORITY);
  326. ioq->msg_handlers[msg_type][priority] = cb;
  327. return 0;
  328. }
  329. TOOLKIT_API int ioqueue_msg_remove_handler(ioqueue_t *ioq, int msg_type, int priority)
  330. {
  331. assert(ioq);
  332. assert(msg_type >= 0 && msg_type <= MAX_MSG);
  333. assert(priority >= 0 && priority <= MAX_MSG_PRIORITY);
  334. ioq->msg_handlers[msg_type][priority] = NULL;
  335. return 0;
  336. }
  337. static void dispatch_acceptor(int err,
  338. DWORD dwBytesTransfer,
  339. ioqueue_acceptor_t *acceptor,
  340. ioqueue_accept_overlapped_t *overlapped)
  341. {
  342. ioqueue_t *ioq = acceptor->owner;
  343. if (err == 0) {
  344. /* only valid for winxp or later, ignore return value */
  345. setsockopt(overlapped->client, SOL_SOCKET, SO_UPDATE_ACCEPT_CONTEXT,
  346. (char*)&acceptor->u.sock, sizeof(SOCKET));
  347. } else {
  348. delete_socket(overlapped->client);
  349. overlapped->client = INVALID_SOCKET;
  350. }
  351. {
  352. SOCKET s = overlapped->client;
  353. int accepted = overlapped->on_accept_callback(acceptor, (ioqueue_overlapped_t*)overlapped, s,
  354. overlapped->base.user_data, err);
  355. if (!err && !accepted && s != INVALID_SOCKET)
  356. delete_socket(s);
  357. }
  358. }
  359. static void dispatch_pipe_acceptor(int err,
  360. DWORD dwBytesTransfer,
  361. ioqueue_pipe_acceptor_t *acceptor,
  362. ioqueue_connectpipe_overlapped_t *overlapped)
  363. {
  364. ioqueue_t *ioq = acceptor->owner;
  365. int accepted;
  366. CloseHandle(overlapped->hevt);
  367. overlapped->hevt = NULL;
  368. if (!err && overlapped->client == INVALID_HANDLE_VALUE)
  369. err = -1;
  370. if (err) {
  371. if (overlapped->client != INVALID_HANDLE_VALUE) {
  372. CloseHandle(overlapped->client);
  373. overlapped->client = INVALID_HANDLE_VALUE;
  374. }
  375. }
  376. accepted = overlapped->on_accept_callback(acceptor,
  377. (ioqueue_overlapped_t*)overlapped,
  378. overlapped->client,
  379. overlapped->base.user_data, err);
  380. if (!err && !accepted && overlapped->client != INVALID_HANDLE_VALUE) {
  381. CloseHandle(overlapped->client);
  382. }
  383. }
  384. static void dispatch_network(BOOL ret, DWORD dwBytesTransfer, ioqueue_overlapped_t *io_ctx)
  385. {
  386. int err = ret ? 0 : -1;
  387. ioqueue_base_overlapped_t *base_ov = (ioqueue_base_overlapped_t*)io_ctx;
  388. ioqueue_handle_context *handle_ctx = base_ov->handle_ctx;
  389. fastlock_enter(handle_ctx->ov_pending_list_lock);
  390. list_del(&base_ov->pending_entry);
  391. fastlock_leave(handle_ctx->ov_pending_list_lock);
  392. dec_pending_io(handle_ctx);
  393. switch (handle_ctx->type) {
  394. case HANDLE_TYPE_ACCEPTOR:
  395. dispatch_acceptor(err, dwBytesTransfer, handle_ctx, (ioqueue_accept_overlapped_t*)io_ctx);
  396. break;
  397. case HANDLE_TYPE_PIPEACCEPTOR:
  398. dispatch_pipe_acceptor(err, dwBytesTransfer, handle_ctx, (ioqueue_connectpipe_overlapped_t*)io_ctx);
  399. break;
  400. case HANDLE_TYPE_TCPSOCK:
  401. case HANDLE_TYPE_UDPSOCK:
  402. case HANDLE_TYPE_FILE:
  403. switch (base_ov->type) {
  404. case OV_CONNECT: {
  405. ioqueue_connect_overlapped_t *overlapped = (ioqueue_connect_overlapped_t*)io_ctx;
  406. if (err == 0) {
  407. setsockopt(handle_ctx->u.sock, SOL_SOCKET, SO_UPDATE_CONNECT_CONTEXT, NULL, 0);
  408. }
  409. overlapped->on_connect_callback(handle_ctx, io_ctx, base_ov->user_data, err);
  410. }
  411. break;
  412. case OV_SENDSOME: {
  413. ioqueue_sendsome_overlapped_t *overlapped = (ioqueue_sendsome_overlapped_t*)io_ctx;
  414. overlapped->on_send_callback(handle_ctx, io_ctx,
  415. overlapped->wsabuf.buf, dwBytesTransfer, base_ov->user_data, err);
  416. }
  417. break;
  418. case OV_SENDN: {
  419. ioqueue_sendn_overlapped_t *overlapped = (ioqueue_sendn_overlapped_t*)io_ctx;
  420. overlapped->sended_bytes += dwBytesTransfer;
  421. if (err == 0 && overlapped->sended_bytes < overlapped->total_bytes) {
  422. int rc;
  423. DWORD bytesWritten;
  424. overlapped->wsabuf.buf += dwBytesTransfer;
  425. overlapped->wsabuf.len -= dwBytesTransfer;
  426. inc_pending_io(handle_ctx);
  427. overlapped->base.ov.Internal = 0;
  428. overlapped->base.ov.InternalHigh = 0;
  429. overlapped->base.ov.Offset = 0;
  430. overlapped->base.ov.OffsetHigh = 0;
  431. rc = WSASend(handle_ctx->u.sock, &overlapped->wsabuf, 1, &bytesWritten,
  432. 0, &overlapped->base.ov, NULL);
  433. if (rc != 0 && WSAGetLastError() != WSA_IO_PENDING) {
  434. dec_pending_io(handle_ctx);
  435. overlapped->on_send_callback(handle_ctx, io_ctx, overlapped->original_buf,
  436. overlapped->sended_bytes, base_ov->user_data, -1);
  437. }
  438. } else {
  439. overlapped->on_send_callback(handle_ctx, io_ctx, overlapped->original_buf,
  440. overlapped->sended_bytes, base_ov->user_data, err);
  441. }
  442. }
  443. break;
  444. case OV_RECVSOME: {
  445. ioqueue_recvsome_overlapped_t *overlapped = (ioqueue_recvsome_overlapped_t*)io_ctx;
  446. overlapped->on_recv_callback(handle_ctx, io_ctx, overlapped->wsabuf.buf,
  447. dwBytesTransfer, base_ov->user_data, err);
  448. }
  449. break;
  450. case OV_RECVUNTIL: {
  451. ioqueue_recvuntil_overlapped_t *overlapped = (ioqueue_recvuntil_overlapped_t*)io_ctx;
  452. if (err == 0 && dwBytesTransfer) {
  453. const char *pos;
  454. overlapped->recved_bytes += dwBytesTransfer;
  455. pos = memstr(overlapped->original_buf, overlapped->recved_bytes, overlapped->delimer);
  456. if (pos) {
  457. free(overlapped->delimer);
  458. overlapped->on_recvuntil_callback(handle_ctx, io_ctx, overlapped->original_buf,
  459. overlapped->recved_bytes, (int)strlen(overlapped->delimer)+(int)(pos-overlapped->original_buf),
  460. base_ov->user_data, err);
  461. } else if (overlapped->recved_bytes < overlapped->total_bytes) {
  462. DWORD bytesRead;
  463. int rc;
  464. overlapped->wsabuf.buf += dwBytesTransfer;
  465. overlapped->wsabuf.len -= dwBytesTransfer;
  466. inc_pending_io(handle_ctx);
  467. overlapped->base.ov.Internal = 0;
  468. overlapped->base.ov.InternalHigh = 0;
  469. overlapped->base.ov.Offset = 0;
  470. overlapped->base.ov.OffsetHigh = 0;
  471. overlapped->dwFlags = 0;
  472. rc = WSARecv(handle_ctx->u.sock, &overlapped->wsabuf, 1, &bytesRead, &overlapped->dwFlags,
  473. &overlapped->base.ov, NULL);
  474. if (rc != 0 && WSAGetLastError() != WSA_IO_PENDING) {
  475. dec_pending_io(handle_ctx);
  476. free(overlapped->delimer);
  477. overlapped->on_recvuntil_callback(handle_ctx, io_ctx, overlapped->original_buf,
  478. overlapped->recved_bytes, 0, base_ov->user_data, -1);
  479. }
  480. } else {
  481. free(overlapped->delimer);
  482. overlapped->on_recvuntil_callback(handle_ctx, io_ctx, overlapped->original_buf,
  483. overlapped->recved_bytes, 0, base_ov->user_data, -1);
  484. }
  485. } else {
  486. free(overlapped->delimer);
  487. overlapped->on_recvuntil_callback(handle_ctx, io_ctx, overlapped->original_buf,
  488. overlapped->recved_bytes, 0, base_ov->user_data, err);
  489. }
  490. }
  491. break;
  492. case OV_RECVN: {
  493. ioqueue_recvn_overlapped_t *overlapped = (ioqueue_recvn_overlapped_t*)io_ctx;
  494. overlapped->recved_bytes += dwBytesTransfer;
  495. if (err == 0 && overlapped->recved_bytes < overlapped->total_bytes) {
  496. int rc;
  497. DWORD bytesRead;
  498. overlapped->wsabuf.buf += dwBytesTransfer;
  499. overlapped->wsabuf.len -= dwBytesTransfer;
  500. inc_pending_io(handle_ctx);
  501. overlapped->base.ov.Internal = 0;
  502. overlapped->base.ov.InternalHigh = 0;
  503. overlapped->base.ov.Offset = 0;
  504. overlapped->base.ov.OffsetHigh = 0;
  505. overlapped->dwFlags = 0;
  506. rc = WSARecv(handle_ctx->u.sock, &overlapped->wsabuf, 1, &bytesRead, &overlapped->dwFlags,
  507. &overlapped->base.ov, NULL);
  508. if (rc != 0 && WSAGetLastError() != WSA_IO_PENDING) {
  509. dec_pending_io(handle_ctx);
  510. overlapped->on_recv_callback(handle_ctx, io_ctx, overlapped->original_buf,
  511. overlapped->recved_bytes, base_ov->user_data, -1);
  512. }
  513. } else {
  514. overlapped->on_recv_callback(handle_ctx, io_ctx, overlapped->original_buf,
  515. overlapped->recved_bytes, base_ov->user_data, err);
  516. }
  517. }
  518. break;
  519. case OV_SENDTO: {
  520. ioqueue_sendto_overlapped_t *overlapped = (ioqueue_sendto_overlapped_t*)io_ctx;
  521. overlapped->on_sendto_callback(handle_ctx, io_ctx, overlapped->wsabuf.buf,
  522. dwBytesTransfer, base_ov->user_data, err);
  523. }
  524. break;
  525. case OV_RECVFROM: {
  526. ioqueue_recvfrom_overlapped_t *overlapped = (ioqueue_recvfrom_overlapped_t*)io_ctx;
  527. overlapped->on_recvfrom_callback(handle_ctx, io_ctx, (struct sockaddr*)&overlapped->peer,
  528. overlapped->addrlen, overlapped->wsabuf.buf, dwBytesTransfer, base_ov->user_data, err);
  529. }
  530. break;
  531. case OV_READFILESOME: {
  532. ioqueue_readfilesome_overlapped_t *overlapped = (ioqueue_readfilesome_overlapped_t*)io_ctx;
  533. CloseHandle(overlapped->hevt);
  534. overlapped->hevt = NULL;
  535. overlapped->on_read_callback(handle_ctx, io_ctx, overlapped->buf,
  536. dwBytesTransfer, base_ov->user_data, err);
  537. }
  538. break;
  539. case OV_READFILEN: {
  540. ioqueue_readfilen_overlapped_t *overlapped = (ioqueue_readfilen_overlapped_t*)io_ctx;
  541. CloseHandle(overlapped->hevt);
  542. overlapped->hevt = NULL;
  543. overlapped->recved_bytes += dwBytesTransfer;
  544. if (err == 0 && overlapped->recved_bytes < overlapped->total_bytes) {
  545. BOOL ret;
  546. DWORD left = overlapped->total_bytes - overlapped->recved_bytes;
  547. inc_pending_io(handle_ctx);
  548. overlapped->base.ov.Internal = 0;
  549. overlapped->base.ov.InternalHigh = 0;
  550. overlapped->base.ov.Offset += dwBytesTransfer;
  551. if (overlapped->base.ov.Offset < dwBytesTransfer)
  552. overlapped->base.ov.OffsetHigh += 1;
  553. ret = ReadFile(handle_ctx->u.file, overlapped->buf+overlapped->recved_bytes, left, NULL, &overlapped->base.ov);
  554. if (!ret && GetLastError() != ERROR_IO_PENDING) {
  555. dec_pending_io(handle_ctx);
  556. overlapped->on_read_callback(handle_ctx, io_ctx, overlapped->buf,
  557. overlapped->recved_bytes, base_ov->user_data, -1);
  558. }
  559. } else {
  560. overlapped->on_read_callback(handle_ctx, io_ctx, overlapped->buf,
  561. overlapped->recved_bytes, base_ov->user_data, err);
  562. }
  563. }
  564. break;
  565. case OV_WRITEFILESOME: {
  566. ioqueue_writefilesome_overlapped_t *overlapped = (ioqueue_writefilesome_overlapped_t*)io_ctx;
  567. CloseHandle(overlapped->hevt);
  568. overlapped->hevt = NULL;
  569. overlapped->on_write_callback(handle_ctx, io_ctx, overlapped->buf, dwBytesTransfer,
  570. base_ov->user_data, err);
  571. }
  572. break;
  573. case OV_WRITEFILEN: {
  574. ioqueue_writefilen_overlapped_t *overlapped = (ioqueue_writefilen_overlapped_t*)io_ctx;
  575. CloseHandle(overlapped->hevt);
  576. overlapped->hevt = NULL;
  577. overlapped->sended_bytes += dwBytesTransfer;
  578. if (err == 0 && overlapped->sended_bytes < overlapped->total_bytes) {
  579. BOOL ret;
  580. DWORD left = overlapped->total_bytes - overlapped->sended_bytes;
  581. inc_pending_io(handle_ctx);
  582. overlapped->base.ov.Internal = 0;
  583. overlapped->base.ov.InternalHigh = 0;
  584. overlapped->base.ov.Offset += dwBytesTransfer;
  585. if (overlapped->base.ov.Offset < dwBytesTransfer)
  586. overlapped->base.ov.OffsetHigh += 1;
  587. ret = WriteFile(handle_ctx->u.file, overlapped->buf+overlapped->sended_bytes, left, NULL, &overlapped->base.ov);
  588. if (!ret && GetLastError() != ERROR_IO_PENDING) {
  589. dec_pending_io(handle_ctx);
  590. overlapped->on_write_callback(handle_ctx, io_ctx, overlapped->buf,
  591. overlapped->sended_bytes, base_ov->user_data, -1);
  592. }
  593. } else {
  594. overlapped->on_write_callback(handle_ctx, io_ctx, overlapped->buf,
  595. overlapped->sended_bytes, base_ov->user_data, err);
  596. }
  597. }
  598. break;
  599. default:
  600. assert(0);
  601. break;
  602. }
  603. break;
  604. default:
  605. assert(0);
  606. break;
  607. }
  608. }
  609. static void dispatch_msg(ioqueue_t *ioq, int msg_type, int param1, int param2, HANDLE evt)
  610. {
  611. int chain = 1, i;
  612. for (i = 0; chain && i < MAX_MSG_PRIORITY; ++i) {
  613. ioqueue_on_msg_callback cb = ioq->msg_handlers[msg_type][i];
  614. if (cb)
  615. chain = cb(msg_type, param1, param2);
  616. }
  617. if (evt)
  618. SetEvent(evt);
  619. }
  620. TOOLKIT_API int ioqueue_post_message(ioqueue_t *ioq, int msg_type, int param1, int param2)
  621. {
  622. ioqueue_msg *msg;
  623. assert(ioq);
  624. msg = MALLOC_T(ioqueue_msg);
  625. msg->msg_type = msg_type;
  626. msg->param1 = param1;
  627. msg->param2 = param2;
  628. msg->evt = NULL;
  629. inc_msg_cnt(ioq);
  630. if (!PostQueuedCompletionStatus(ioq->iocp, 0, (ULONG_PTR)msg, NULL)) {
  631. dec_msg_cnt(ioq);
  632. free(msg);
  633. return -1;
  634. }
  635. return 0;
  636. }
  637. TOOLKIT_API int ioqueue_send_message(ioqueue_t *ioq, int msg_type, int param1, int param2)
  638. {
  639. ioqueue_msg msg = {msg_type, param1, param2};
  640. assert(ioq);
  641. msg.evt = CreateEventA(NULL, TRUE, FALSE, NULL);
  642. inc_msg_cnt(ioq);
  643. if (!PostQueuedCompletionStatus(ioq->iocp, 0, (ULONG_PTR)&msg, NULL)) {
  644. CloseHandle(msg.evt);
  645. dec_msg_cnt(ioq);
  646. return -1;
  647. }
  648. WaitForSingleObject(msg.evt, INFINITE);
  649. CloseHandle(msg.evt);
  650. dec_msg_cnt(ioq);
  651. return 0;
  652. }
  653. static int poll_all_events(ioqueue_t *ioq, HANDLE *hevts, ioqueue_connect_overlapped_t **ovs, int i)
  654. {
  655. int count = 0;
  656. int left = i;
  657. int pos = 0;
  658. while (left > 0) {
  659. DWORD idx = WaitForMultipleObjects(left, &hevts[pos], FALSE, 0) - WAIT_OBJECT_0;
  660. if (idx <= (DWORD)left && idx >= 0) {
  661. WSANETWORKEVENTS net_events;
  662. ioqueue_connect_overlapped_t *triggered = ovs[idx+pos];
  663. list_del(&triggered->node);
  664. WSAEnumNetworkEvents(triggered->base.handle_ctx->u.sock, hevts[idx+pos], &net_events);
  665. WSAEventSelect(triggered->base.handle_ctx->u.sock, hevts[idx+pos], 0);
  666. CloseHandle(hevts[idx+pos]);
  667. triggered->on_connect_callback(triggered->base.handle_ctx, (ioqueue_overlapped_t*)triggered,
  668. triggered->base.user_data, net_events.iErrorCode[FD_CONNECT_BIT] == 0 ? 0 : -1);
  669. left -= (int)idx + 1;
  670. pos += idx+1;
  671. count ++;
  672. } else {
  673. break;
  674. }
  675. }
  676. return count;
  677. }
  678. static int poll_connect_list(ioqueue_t *ioq)
  679. {
  680. int count = 0, i = 0;
  681. HANDLE hevts[MAXIMUM_WAIT_OBJECTS];
  682. ioqueue_connect_overlapped_t *ovs[MAXIMUM_WAIT_OBJECTS];
  683. ioqueue_connect_overlapped_t *pos, *n;
  684. list_for_each_entry_safe(pos, n, &ioq->connect_list, ioqueue_connect_overlapped_t, node) {
  685. hevts[i] = pos->hevt;
  686. ovs[i] = pos;
  687. i++;
  688. if (i == MAXIMUM_WAIT_OBJECTS) {
  689. count += poll_all_events(ioq, hevts, ovs, i);
  690. i = 0;
  691. }
  692. }
  693. if (i > 0) {
  694. count += poll_all_events(ioq, hevts, ovs, i);
  695. }
  696. return count;
  697. }
  698. TOOLKIT_API int ioqueue_poll(ioqueue_t* q, int timeout)
  699. {
  700. ioqueue_t *ioq = (ioqueue_t*)q;
  701. int count = 0, t = 0;
  702. /* network and msg, dispatch until no events */
  703. do
  704. {
  705. BOOL ret;
  706. ULONG_PTR iocp_key = 0;
  707. LPOVERLAPPED iocp_pov = 0;
  708. DWORD dwBytesTransfer = 0;
  709. ret = GetQueuedCompletionStatus(ioq->iocp, &dwBytesTransfer,
  710. &iocp_key, &iocp_pov, t ? 0 : (DWORD)timeout);
  711. if (iocp_pov) { /* network io */
  712. ioqueue_overlapped_t *io_ctx = (ioqueue_overlapped_t*)iocp_pov;
  713. dispatch_network(ret, dwBytesTransfer, io_ctx);
  714. t++;
  715. count ++;
  716. } else if (ret && iocp_key && !iocp_pov) { /* msg */
  717. ioqueue_msg *msg = (ioqueue_msg *)iocp_key;
  718. int msg_type = msg->msg_type;
  719. int param1 = msg->param1;
  720. int param2 = msg->param2;
  721. HANDLE evt = msg->evt;
  722. if (!evt)
  723. free(msg);
  724. dispatch_msg(ioq, msg_type, param1, param2, evt);
  725. dec_msg_cnt(ioq);
  726. t++;
  727. count ++;
  728. } else {
  729. t = 0;
  730. }
  731. } while (t > 0);
  732. /* win2k connect event */
  733. if (!is_os_gte_xp()) {
  734. spinlock_enter(&ioq->connect_list_lock, -1);
  735. poll_connect_list(ioq);
  736. spinlock_leave(&ioq->connect_list_lock);
  737. }
  738. /* timer heap */
  739. spinlock_enter(&ioq->tm_queue_lock, -1);
  740. count += timer_queue_poll(ioq->tm_queue, NULL); /* dispatch timer heap */
  741. spinlock_leave(&ioq->tm_queue_lock);
  742. if (ioq->stop == -1) {
  743. if (InterlockedCompareExchange(&ioq->stop, -2, -1) == -1) { /* close all handler */
  744. ioqueue_handle_context *pos, *n;
  745. spinlock_enter(&ioq->handler_list_lock, -1);
  746. list_for_each_entry_safe(pos, n, &ioq->handler_list, ioqueue_handle_context, node) {
  747. if (pos->type != HANDLE_TYPE_FILE) {
  748. closesocket(pos->u.sock);
  749. pos->u.sock = INVALID_SOCKET;
  750. } else {
  751. CloseHandle(pos->u.file);
  752. pos->u.file = INVALID_HANDLE_VALUE;
  753. }
  754. }
  755. spinlock_leave(&ioq->handler_list_lock);
  756. }
  757. }
  758. return count;
  759. }
  760. TOOLKIT_API void ioqueue_stop(ioqueue_t *ioq)
  761. {
  762. assert(ioq);
  763. ioq->stop = -1;
  764. }
  765. /* timer */
  766. TOOLKIT_API int ioqueue_timer_schedule(ioqueue_t *ioq, timer_entry *entry, unsigned int delay)
  767. {
  768. int err;
  769. assert(ioq);
  770. assert(entry);
  771. if (ioq->stop)
  772. return -1;
  773. spinlock_enter(&ioq->tm_queue_lock, -1);
  774. err = timer_queue_schedule(ioq->tm_queue, entry, delay);
  775. spinlock_leave(&ioq->tm_queue_lock);
  776. return err;
  777. }
  778. TOOLKIT_API int ioqueue_timer_cancel(ioqueue_t *ioq, timer_entry *entry, int cancel)
  779. {
  780. int err;
  781. assert(ioq);
  782. assert(entry);
  783. spinlock_enter(&ioq->tm_queue_lock, -1);
  784. err = timer_queue_cancel(ioq->tm_queue, entry, cancel);
  785. spinlock_leave(&ioq->tm_queue_lock);
  786. return err;
  787. }
  788. /* acceptor */
  789. TOOLKIT_API int ioqueue_acceptor_create(ioqueue_t *ioq,
  790. const char *ip,
  791. unsigned short port,
  792. ioqueue_acceptor_t* acceptor)
  793. {
  794. struct sockaddr_in service = {0};
  795. assert(ioq);
  796. assert(acceptor);
  797. assert(port);
  798. if (ioq->stop)
  799. return -1;
  800. memset(acceptor, 0, sizeof(ioqueue_acceptor_t));
  801. acceptor->u.sock = WSASocket(AF_INET, SOCK_STREAM, IPPROTO_TCP, NULL, 0, WSA_FLAG_OVERLAPPED);
  802. if (acceptor->u.sock == INVALID_SOCKET)
  803. goto on_error;
  804. nonblock_sock(acceptor->u.sock);
  805. service.sin_family = AF_INET;
  806. service.sin_port = htons(port);
  807. service.sin_addr.s_addr = ip ? inet_addr(ip) : htonl(INADDR_ANY);
  808. if (bind(acceptor->u.sock, (struct sockaddr*)&service, sizeof(struct sockaddr)) != 0)
  809. goto on_error;
  810. if (!CreateIoCompletionPort((HANDLE)acceptor->u.sock, ioq->iocp, 0, 0))
  811. goto on_error;
  812. acceptor->type = HANDLE_TYPE_ACCEPTOR;
  813. acceptor->owner = ioq;
  814. fastlock_init(acceptor->ov_pending_list_lock);
  815. INIT_LIST_HEAD(&acceptor->ov_pending_list);
  816. add_handler_list(acceptor, ioq);
  817. inc_ref(ioqueue_handle_context, acceptor);
  818. return 0;
  819. on_error:
  820. if (acceptor->u.sock != INVALID_SOCKET)
  821. closesocket(acceptor->u.sock);
  822. return -1;
  823. }
  824. TOOLKIT_API int ioqueue_acceptor_listen(ioqueue_acceptor_t* acceptor, int backlog)
  825. {
  826. assert(acceptor);
  827. return listen(acceptor->u.sock, backlog);
  828. }
  829. TOOLKIT_API void ioqueue_acceptor_destroy(ioqueue_acceptor_t* acceptor)
  830. {
  831. assert(acceptor);
  832. dec_ref(ioqueue_handle_context, acceptor);
  833. }
  834. TOOLKIT_API void ioqueue_acceptor_close(ioqueue_acceptor_t* acceptor)
  835. {
  836. SOCKET s;
  837. assert(acceptor);
  838. s = acceptor->u.sock;
  839. if (s != INVALID_SOCKET) {
  840. acceptor->u.sock = INVALID_SOCKET;
  841. closesocket(s);
  842. }
  843. }
  844. TOOLKIT_API int ioqueue_acceptor_async_accept(ioqueue_acceptor_t* acceptor,
  845. ioqueue_overlapped_t *ov,
  846. ioqueue_on_accept_callback on_accept_callback,
  847. void *user_data)
  848. {
  849. ioqueue_t *ioq;
  850. ioqueue_accept_overlapped_t *overlapped;
  851. DWORD bytesTransfer;
  852. BOOL ret;
  853. assert(acceptor);
  854. assert(ov);
  855. assert(acceptor->type == HANDLE_TYPE_ACCEPTOR);
  856. assert(on_accept_callback);
  857. ioq = acceptor->owner;
  858. if (ioq->stop)
  859. return -1;
  860. overlapped = (ioqueue_accept_overlapped_t*)ov;
  861. memset(overlapped, 0, sizeof(ioqueue_accept_overlapped_t));
  862. overlapped->client = new_socket();
  863. if (overlapped->client == INVALID_SOCKET)
  864. return -1;
  865. fastlock_enter(acceptor->ov_pending_list_lock);
  866. list_add_tail(&overlapped->base.pending_entry, &acceptor->ov_pending_list);
  867. fastlock_leave(acceptor->ov_pending_list_lock);
  868. overlapped->base.type = OV_ACCEPT;
  869. overlapped->base.user_data = user_data;
  870. overlapped->base.handle_ctx = acceptor;
  871. inc_pending_io(acceptor);
  872. overlapped->on_accept_callback = on_accept_callback;
  873. ret = AcceptEx(acceptor->u.sock, overlapped->client, overlapped->accept_buf,
  874. 0, ACCEPT_ADDR_LEN, ACCEPT_ADDR_LEN, &bytesTransfer, &overlapped->base.ov);
  875. if (ret || WSAGetLastError() == WSA_IO_PENDING)
  876. return 0;
  877. #if 0
  878. {
  879. DWORD dwError = WSAGetLastError();
  880. printf("dwError = %d\n", dwError);
  881. }
  882. #endif
  883. fastlock_enter(acceptor->ov_pending_list_lock);
  884. list_del(&overlapped->base.pending_entry);
  885. fastlock_leave(acceptor->ov_pending_list_lock);
  886. dec_pending_io(acceptor);
  887. delete_socket(overlapped->client);
  888. return -1;
  889. }
  890. TOOLKIT_API int ioqueue_acceptor_accept(ioqueue_acceptor_t* acceptor, SOCKET *s, struct sockaddr *addr, int *addrlen, int timeout)
  891. {
  892. struct timeval tm;
  893. fd_set set;
  894. fd_set ex_set;
  895. int rc;
  896. FD_ZERO(&set);
  897. FD_ZERO(&ex_set);
  898. FD_SET(acceptor->u.sock, &set);
  899. FD_SET(acceptor->u.sock, &ex_set);
  900. tm.tv_sec = timeout / 1000;
  901. tm.tv_usec = 1000 * (timeout % 1000);
  902. rc = select(acceptor->u.sock+1, &set, NULL, &ex_set, &tm);
  903. if (rc > 0) {
  904. if (FD_ISSET(acceptor->u.sock, &ex_set))
  905. return -1;
  906. if (FD_ISSET(acceptor->u.sock, &set)) {
  907. SOCKET fd = accept(acceptor->u.sock, addr, addrlen);
  908. if (fd != INVALID_SOCKET) {
  909. *s = fd;
  910. return 0;
  911. }
  912. }
  913. }
  914. return -1;
  915. }
  916. TOOLKIT_API int ioqueue_acceptor_create_client(ioqueue_acceptor_t* acceptor, SOCKET s, ioqueue_tcpsock_t *tcpsock)
  917. {
  918. ioqueue_t *ioq;
  919. assert(acceptor);
  920. assert(tcpsock);
  921. assert(s != INVALID_SOCKET);
  922. ioq = acceptor->owner;
  923. if (ioq->stop)
  924. return -1;
  925. memset(tcpsock, 0, sizeof(ioqueue_tcpsock_t));
  926. tcpsock->type = HANDLE_TYPE_TCPSOCK;
  927. tcpsock->u.sock = s;
  928. tcpsock->owner = ioq;
  929. tcpsock->user_data = NULL;
  930. fastlock_init(tcpsock->ov_pending_list_lock);
  931. INIT_LIST_HEAD(&tcpsock->ov_pending_list);
  932. if (!CreateIoCompletionPort((HANDLE)s, ioq->iocp, 0, 0)) /* bind to iocp */
  933. return -1;
  934. add_handler_list(tcpsock, ioq);
  935. inc_ref(ioqueue_handle_context, tcpsock);
  936. return 0;
  937. }
  938. TOOLKIT_API SOCKET ioqueue_acceptor_get_raw_socket(ioqueue_acceptor_t* acceptor)
  939. {
  940. assert(acceptor);
  941. assert(acceptor->type == HANDLE_TYPE_ACCEPTOR);
  942. assert(acceptor->u.sock != INVALID_SOCKET);
  943. return acceptor->u.sock;
  944. }
  945. TOOLKIT_API ioqueue_t* ioqueue_acceptor_get_owned_ioqueue(ioqueue_acceptor_t* acceptor)
  946. {
  947. assert(acceptor);
  948. assert(acceptor->type == HANDLE_TYPE_ACCEPTOR);
  949. return acceptor->owner;
  950. }
  951. TOOLKIT_API void *ioqueue_acceptor_set_user_data(ioqueue_acceptor_t* acceptor, void *user_data)
  952. {
  953. void *old;
  954. assert(acceptor);
  955. assert(acceptor->type == HANDLE_TYPE_ACCEPTOR);
  956. old = acceptor->user_data;
  957. acceptor->user_data = user_data;
  958. return old;
  959. }
  960. TOOLKIT_API void *ioqueue_acceptor_get_user_data(ioqueue_acceptor_t* acceptor)
  961. {
  962. assert(acceptor);
  963. assert(acceptor->type == HANDLE_TYPE_ACCEPTOR);
  964. return acceptor->user_data;
  965. }
  966. TOOLKIT_API int ioqueue_acceptor_cancel(ioqueue_acceptor_t* acceptor)
  967. {
  968. assert(acceptor);
  969. return CancelIo(acceptor->u.file) ? 0 : -1;
  970. }
  971. /* tcpsock */
  972. TOOLKIT_API int ioqueue_tcpsock_create(ioqueue_t *ioq, ioqueue_tcpsock_t *tcpsock)
  973. {
  974. SOCKET s;
  975. assert(ioq);
  976. assert(tcpsock);
  977. if (ioq->stop)
  978. return -1;
  979. s = WSASocket(AF_INET, SOCK_STREAM, IPPROTO_TCP, NULL, 0, WSA_FLAG_OVERLAPPED);
  980. if (s == INVALID_SOCKET)
  981. return -1;
  982. if (ioqueue_tcpsock_create_from_handle(ioq, s, tcpsock) != 0) {
  983. closesocket(s);
  984. return -1;
  985. }
  986. return 0;
  987. }
  988. TOOLKIT_API int ioqueue_tcpsock_create_from_handle(ioqueue_t *ioq, SOCKET s, ioqueue_tcpsock_t *tcpsock)
  989. {
  990. assert(ioq);
  991. assert(s != INVALID_SOCKET);
  992. assert(tcpsock);
  993. if (ioq->stop)
  994. return -1;
  995. memset(tcpsock, 0, sizeof(ioqueue_tcpsock_t));
  996. tcpsock->u.sock = s;
  997. reuse_addr(tcpsock->u.sock);
  998. nonblock_sock(tcpsock->u.sock);
  999. /* winxp or more we use ConnectEx, this funtion need bind at first */
  1000. if (is_os_gte_xp()) {
  1001. struct sockaddr_in local = {0};
  1002. local.sin_family = AF_INET;
  1003. local.sin_port = htons(0);
  1004. local.sin_addr.s_addr = INADDR_ANY;
  1005. if (bind(tcpsock->u.sock, (struct sockaddr*)&local, sizeof(struct sockaddr)) != 0)
  1006. return -1;
  1007. } else {
  1008. /* for win2k we use connect, set socket to non-block mode */
  1009. //u_long ul_onoff = 1;
  1010. //if (ioctlsocket(tcpsock->u.sock, FIONBIO, &ul_onoff) != 0)
  1011. // goto on_error;
  1012. }
  1013. if (!CreateIoCompletionPort((HANDLE)tcpsock->u.sock, ioq->iocp, 0, 0))
  1014. return -1;
  1015. fastlock_init(tcpsock->ov_pending_list_lock);
  1016. INIT_LIST_HEAD(&tcpsock->ov_pending_list);
  1017. tcpsock->type = HANDLE_TYPE_TCPSOCK;
  1018. tcpsock->owner = ioq;
  1019. add_handler_list(tcpsock, ioq);
  1020. inc_ref(ioqueue_handle_context, tcpsock);
  1021. return 0;
  1022. }
  1023. TOOLKIT_API int ioqueue_tcpsock_async_connect(ioqueue_tcpsock_t *tcpsock,
  1024. ioqueue_overlapped_t *ov,
  1025. const char *ip,
  1026. unsigned short port,
  1027. ioqueue_on_connect_callback on_connect_callback,
  1028. void* user_data)
  1029. {
  1030. ioqueue_t *ioq;
  1031. ioqueue_connect_overlapped_t *overlapped;
  1032. struct sockaddr_in service;
  1033. assert(tcpsock);
  1034. assert(ov);
  1035. assert(ip);
  1036. assert(port);
  1037. assert(on_connect_callback);
  1038. ioq = tcpsock->owner;
  1039. if (ioq->stop)
  1040. return -1;
  1041. ioq = tcpsock->owner;
  1042. overlapped = (ioqueue_connect_overlapped_t*)ov;
  1043. memset(overlapped, 0, sizeof(ioqueue_connect_overlapped_t));
  1044. fastlock_enter(tcpsock->ov_pending_list_lock);
  1045. list_add_tail(&overlapped->base.pending_entry, &tcpsock->ov_pending_list);
  1046. fastlock_leave(tcpsock->ov_pending_list_lock);
  1047. overlapped->base.type = OV_CONNECT;
  1048. overlapped->base.handle_ctx = (ioqueue_handle_context*)tcpsock;
  1049. overlapped->base.user_data = user_data;
  1050. overlapped->on_connect_callback = on_connect_callback;
  1051. inc_pending_io(tcpsock);
  1052. if (is_os_gte_xp()) { /* use ConnectEx */
  1053. DWORD dwBytes;
  1054. BOOL ret;
  1055. BOOL (PASCAL FAR * lpfnConnectEx) (IN SOCKET s,
  1056. IN const struct sockaddr FAR *name,
  1057. IN int namelen,
  1058. IN PVOID lpSendBuffer OPTIONAL,
  1059. IN DWORD dwSendDataLength,
  1060. OUT LPDWORD lpdwBytesSent,
  1061. IN LPOVERLAPPED lpOverlapped
  1062. );
  1063. // LPFN_CONNECTEX lpfnConnectEx;
  1064. GUID GuidConnectEx = WSAID_CONNECTEX;
  1065. if (WSAIoctl(tcpsock->u.sock, SIO_GET_EXTENSION_FUNCTION_POINTER, &GuidConnectEx,
  1066. sizeof(GuidConnectEx), &lpfnConnectEx, sizeof(lpfnConnectEx), &dwBytes, NULL, NULL) != 0) {
  1067. fastlock_enter(tcpsock->ov_pending_list_lock);
  1068. list_del(&overlapped->base.pending_entry);
  1069. fastlock_leave(tcpsock->ov_pending_list_lock);
  1070. dec_pending_io(tcpsock);
  1071. return -1;
  1072. }
  1073. memset(&service, 0, sizeof(service));
  1074. service.sin_family = AF_INET;
  1075. service.sin_port = htons(port);
  1076. service.sin_addr.s_addr = inet_addr(ip);
  1077. {
  1078. struct sockaddr_in local_addr = {0}; // bind to a INADDR_ANY and port 0 to let OS choose an local address
  1079. local_addr.sin_family = AF_INET;
  1080. local_addr.sin_addr.s_addr = htonl(INADDR_ANY);
  1081. local_addr.sin_port = htons(0);
  1082. ret = bind(tcpsock->u.sock, (SOCKADDR*)&local_addr, sizeof(local_addr)); // caution: ConnectEx need socket to be bounded at first
  1083. }
  1084. if (ret == 0) {
  1085. ret = lpfnConnectEx(tcpsock->u.sock, (struct sockaddr*)&service, sizeof(service), NULL,
  1086. 0, NULL, &overlapped->base.ov);
  1087. if (ret || WSAGetLastError() == WSA_IO_PENDING)
  1088. return 0;
  1089. }
  1090. } else { /* use non-blocking connect */
  1091. overlapped->hevt = WSACreateEvent();
  1092. if (WSAEventSelect(tcpsock->u.sock, overlapped->hevt, FD_CONNECT) == 0) {
  1093. spinlock_enter(&ioq->connect_list_lock, -1);
  1094. list_add_tail(&overlapped->node, &ioq->connect_list);
  1095. spinlock_leave(&ioq->connect_list_lock);
  1096. if (connect(tcpsock->u.sock, (struct sockaddr*)&service, sizeof(service)) == 0) {
  1097. return 0;
  1098. } else {
  1099. spinlock_enter(&ioq->connect_list_lock, -1);
  1100. list_del(&overlapped->node);
  1101. spinlock_leave(&ioq->connect_list_lock);
  1102. }
  1103. }
  1104. WSACloseEvent(overlapped->hevt);
  1105. }
  1106. fastlock_enter(tcpsock->ov_pending_list_lock);
  1107. list_del(&overlapped->base.pending_entry);
  1108. fastlock_leave(tcpsock->ov_pending_list_lock);
  1109. dec_pending_io(tcpsock);
  1110. return -1;
  1111. }
  1112. TOOLKIT_API int ioqueue_tcpsock_conect(ioqueue_tcpsock_t *tcpsock,
  1113. const char *ip,
  1114. unsigned short port,
  1115. int timeout)
  1116. {
  1117. fd_set wr_set;
  1118. fd_set ex_set;
  1119. struct timeval tm;
  1120. assert(tcpsock);
  1121. assert(ip);
  1122. assert(port > 0);
  1123. FD_ZERO(&wr_set);
  1124. FD_ZERO(&ex_set);
  1125. FD_SET(tcpsock->u.sock, &wr_set);
  1126. FD_SET(tcpsock->u.sock, &ex_set);
  1127. tm.tv_sec = timeout / 1000;
  1128. tm.tv_usec = 1000 * (timeout % 1000);
  1129. if (select(tcpsock->u.sock+1, NULL, &wr_set, &ex_set, &tm) > 0) {
  1130. if (FD_ISSET(tcpsock->u.sock, &ex_set))
  1131. return -1;
  1132. if (FD_ISSET(tcpsock->u.sock, &wr_set))
  1133. return 0;
  1134. }
  1135. return -1;
  1136. }
  1137. TOOLKIT_API int ioqueue_tcpsock_async_sendsome(ioqueue_tcpsock_t *tcpsock,
  1138. ioqueue_overlapped_t *ov,
  1139. void *buf,
  1140. unsigned int len,
  1141. ioqueue_on_send_callback on_send_callback,
  1142. void *user_data)
  1143. {
  1144. ioqueue_sendsome_overlapped_t *overlapped;
  1145. DWORD bytesWritten;
  1146. int rc;
  1147. ioqueue_t *ioq;
  1148. assert(tcpsock);
  1149. assert(ov);
  1150. assert(buf);
  1151. assert(on_send_callback);
  1152. ioq = ioqueue_tcpsock_get_owned_ioqueue(tcpsock);
  1153. if (ioq->stop)
  1154. return -1;
  1155. overlapped = (ioqueue_sendsome_overlapped_t*)ov;
  1156. memset(overlapped, 0, sizeof(ioqueue_sendsome_overlapped_t));
  1157. fastlock_enter(tcpsock->ov_pending_list_lock);
  1158. list_add_tail(&overlapped->base.pending_entry, &tcpsock->ov_pending_list);
  1159. fastlock_leave(tcpsock->ov_pending_list_lock);
  1160. overlapped->base.type = OV_SENDSOME;
  1161. overlapped->base.handle_ctx = (ioqueue_handle_context*)tcpsock;
  1162. overlapped->base.user_data = user_data;
  1163. overlapped->on_send_callback = on_send_callback;
  1164. overlapped->wsabuf.len = len;
  1165. overlapped->wsabuf.buf = buf;
  1166. inc_pending_io(tcpsock);
  1167. rc = WSASend(tcpsock->u.sock, &overlapped->wsabuf, 1, &bytesWritten,
  1168. 0, &overlapped->base.ov, NULL);
  1169. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1170. return 0;
  1171. fastlock_enter(tcpsock->ov_pending_list_lock);
  1172. list_del(&overlapped->base.pending_entry);
  1173. fastlock_leave(tcpsock->ov_pending_list_lock);
  1174. dec_pending_io(tcpsock);
  1175. return -1;
  1176. }
  1177. TOOLKIT_API int ioqueue_tcpsock_async_sendn(ioqueue_tcpsock_t *tcpsock,
  1178. ioqueue_overlapped_t *ov,
  1179. void *buf,
  1180. unsigned int len,
  1181. ioqueue_on_send_callback on_send_callback,
  1182. void* user_data)
  1183. {
  1184. ioqueue_sendn_overlapped_t *overlapped;
  1185. DWORD bytesWritten;
  1186. int rc;
  1187. ioqueue_t *ioq;
  1188. assert(tcpsock);
  1189. assert(ov);
  1190. assert(buf);
  1191. assert(on_send_callback);
  1192. ioq = ioqueue_tcpsock_get_owned_ioqueue(tcpsock);
  1193. if (ioq->stop)
  1194. return -1;
  1195. overlapped = (ioqueue_sendn_overlapped_t*)ov;
  1196. memset(overlapped, 0, sizeof(ioqueue_sendn_overlapped_t));
  1197. fastlock_enter(tcpsock->ov_pending_list_lock);
  1198. list_add_tail(&overlapped->base.pending_entry, &tcpsock->ov_pending_list);
  1199. fastlock_leave(tcpsock->ov_pending_list_lock);
  1200. overlapped->base.type = OV_SENDN;
  1201. overlapped->base.handle_ctx = (ioqueue_handle_context*)tcpsock;
  1202. overlapped->base.user_data = user_data;
  1203. overlapped->on_send_callback = on_send_callback;
  1204. overlapped->wsabuf.len = len;
  1205. overlapped->wsabuf.buf = buf;
  1206. overlapped->original_buf = buf;
  1207. overlapped->sended_bytes = 0;
  1208. overlapped->total_bytes = len;
  1209. inc_pending_io(tcpsock);
  1210. rc = WSASend(tcpsock->u.sock, &overlapped->wsabuf, 1, &bytesWritten,
  1211. 0, &overlapped->base.ov, NULL);
  1212. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1213. return 0;
  1214. bytesWritten = WSAGetLastError();
  1215. fastlock_enter(tcpsock->ov_pending_list_lock);
  1216. list_del(&overlapped->base.pending_entry);
  1217. fastlock_leave(tcpsock->ov_pending_list_lock);
  1218. dec_pending_io(tcpsock);
  1219. return -1;
  1220. }
  1221. TOOLKIT_API int ioqueue_tcpsock_async_senduntil(ioqueue_tcpsock_t *tcpsock,
  1222. ioqueue_overlapped_t *ov,
  1223. void *buf,
  1224. unsigned int len,
  1225. const char *delimer,
  1226. ioqueue_on_send_callback on_send_cb,
  1227. void* user_data)
  1228. {
  1229. const char *p;
  1230. assert(tcpsock);
  1231. assert(ov);
  1232. assert(buf);
  1233. assert(on_send_cb);
  1234. assert(delimer);
  1235. p = memstr(buf, len, delimer);
  1236. if (!p)
  1237. return -1;
  1238. p += strlen(delimer);
  1239. return ioqueue_tcpsock_async_sendn(tcpsock, ov, buf, p - (char*)buf, on_send_cb, user_data);
  1240. }
  1241. TOOLKIT_API int ioqueue_tcpsock_sendsome(ioqueue_tcpsock_t *tcpsock,
  1242. void *buf,
  1243. unsigned int len,
  1244. int timeout)
  1245. {
  1246. assert(tcpsock);
  1247. return send(tcpsock->u.sock, buf, len, 0);
  1248. }
  1249. TOOLKIT_API int ioqueue_tcpsock_sendn(ioqueue_tcpsock_t *tcpsock,
  1250. void *buf,
  1251. unsigned int len,
  1252. int timeout)
  1253. {
  1254. return tsend_n(tcpsock->u.sock, buf, len, timeout);
  1255. }
  1256. TOOLKIT_API int ioqueue_tcpsock_senduntil(ioqueue_tcpsock_t *tcpsock,
  1257. void *buf,
  1258. unsigned int len,
  1259. const char *delimer,
  1260. int timeout)
  1261. {
  1262. return tsend_until(tcpsock->u.sock, buf, len, delimer, timeout);
  1263. }
  1264. TOOLKIT_API int ioqueue_tcpsock_async_recvsome(ioqueue_tcpsock_t *tcpsock,
  1265. ioqueue_overlapped_t *ov,
  1266. void *buf,
  1267. unsigned int len,
  1268. ioqueue_on_recv_callback on_recv_callback,
  1269. void *user_data)
  1270. {
  1271. ioqueue_recvsome_overlapped_t *overlapped;
  1272. DWORD bytesRead;
  1273. int rc;
  1274. ioqueue_t *ioq;
  1275. assert(tcpsock);
  1276. assert(ov);
  1277. assert(buf);
  1278. assert(on_recv_callback);
  1279. ioq = tcpsock->owner;
  1280. if (ioq->stop)
  1281. return -1;
  1282. overlapped = (ioqueue_recvsome_overlapped_t*)ov;
  1283. memset(overlapped, 0, sizeof(ioqueue_recvsome_overlapped_t));
  1284. fastlock_enter(tcpsock->ov_pending_list_lock);
  1285. list_add_tail(&overlapped->base.pending_entry, &tcpsock->ov_pending_list);
  1286. fastlock_leave(tcpsock->ov_pending_list_lock);
  1287. overlapped->base.type = OV_RECVSOME;
  1288. overlapped->base.handle_ctx = (ioqueue_handle_context*)tcpsock;
  1289. overlapped->base.user_data = user_data;
  1290. overlapped->on_recv_callback = on_recv_callback;
  1291. overlapped->wsabuf.len = len;
  1292. overlapped->wsabuf.buf = buf;
  1293. overlapped->dwFlags = 0;
  1294. inc_pending_io(tcpsock);
  1295. rc = WSARecv(tcpsock->u.sock, &overlapped->wsabuf, 1, &bytesRead, &overlapped->dwFlags,
  1296. &overlapped->base.ov, NULL);
  1297. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1298. return 0;
  1299. fastlock_enter(tcpsock->ov_pending_list_lock);
  1300. list_del(&overlapped->base.pending_entry);
  1301. fastlock_leave(tcpsock->ov_pending_list_lock);
  1302. dec_pending_io(tcpsock);
  1303. return -1;
  1304. }
  1305. TOOLKIT_API int ioqueue_tcpsock_async_recvn(ioqueue_tcpsock_t *tcpsock,
  1306. ioqueue_overlapped_t *ov,
  1307. void *buf,
  1308. unsigned int len,
  1309. ioqueue_on_recv_callback on_recv_callback,
  1310. void *user_data)
  1311. {
  1312. ioqueue_recvn_overlapped_t *overlapped;
  1313. DWORD bytesRead;
  1314. int rc;
  1315. ioqueue_t *ioq;
  1316. assert(tcpsock);
  1317. assert(ov);
  1318. assert(buf);
  1319. assert(on_recv_callback);
  1320. ioq = tcpsock->owner;
  1321. if (ioq->stop)
  1322. return -1;
  1323. overlapped = (ioqueue_recvn_overlapped_t*)ov;
  1324. memset(overlapped, 0, sizeof(ioqueue_recvn_overlapped_t));
  1325. fastlock_enter(tcpsock->ov_pending_list_lock);
  1326. list_add_tail(&overlapped->base.pending_entry, &tcpsock->ov_pending_list);
  1327. fastlock_leave(tcpsock->ov_pending_list_lock);
  1328. overlapped->base.type = OV_RECVN;
  1329. overlapped->base.handle_ctx = (ioqueue_handle_context*)tcpsock;
  1330. overlapped->base.user_data = user_data;
  1331. overlapped->on_recv_callback = on_recv_callback;
  1332. overlapped->wsabuf.len = len;
  1333. overlapped->wsabuf.buf = buf;
  1334. overlapped->original_buf = buf;
  1335. overlapped->recved_bytes = 0;
  1336. overlapped->total_bytes = len;
  1337. overlapped->dwFlags = 0;
  1338. inc_pending_io(tcpsock);
  1339. rc = WSARecv(tcpsock->u.sock, &overlapped->wsabuf, 1, &bytesRead, &overlapped->dwFlags,
  1340. &overlapped->base.ov, NULL);
  1341. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1342. return 0;
  1343. fastlock_enter(tcpsock->ov_pending_list_lock);
  1344. list_del(&overlapped->base.pending_entry);
  1345. fastlock_leave(tcpsock->ov_pending_list_lock);
  1346. dec_pending_io(tcpsock);
  1347. return -1;
  1348. }
  1349. TOOLKIT_API int ioqueue_tcpsock_async_recvuntil(ioqueue_tcpsock_t *tcpsock,
  1350. ioqueue_overlapped_t *ov,
  1351. void *buf,
  1352. unsigned int len,
  1353. const char *delimer,
  1354. ioqueue_on_recvuntil_callback on_recvuntil_callback,
  1355. void *user_data)
  1356. {
  1357. ioqueue_recvuntil_overlapped_t *overlapped;
  1358. DWORD bytesRead;
  1359. int rc;
  1360. ioqueue_t *ioq;
  1361. assert(tcpsock);
  1362. assert(ov);
  1363. assert(buf);
  1364. assert(delimer);
  1365. assert(on_recvuntil_callback);
  1366. ioq = tcpsock->owner;
  1367. if (ioq->stop)
  1368. return -1;
  1369. overlapped = (ioqueue_recvuntil_overlapped_t*)ov;
  1370. memset(overlapped, 0, sizeof(ioqueue_recvuntil_overlapped_t));
  1371. fastlock_enter(tcpsock->ov_pending_list_lock);
  1372. list_add_tail(&overlapped->base.pending_entry, &tcpsock->ov_pending_list);
  1373. fastlock_leave(tcpsock->ov_pending_list_lock);
  1374. overlapped->base.type = OV_RECVUNTIL;
  1375. overlapped->base.handle_ctx = (ioqueue_handle_context*)tcpsock;
  1376. overlapped->base.user_data = user_data;
  1377. overlapped->on_recvuntil_callback = on_recvuntil_callback;
  1378. overlapped->wsabuf.len = len;
  1379. overlapped->wsabuf.buf = buf;
  1380. overlapped->original_buf = buf;
  1381. overlapped->recved_bytes = 0;
  1382. overlapped->total_bytes = len;
  1383. overlapped->delimer = _strdup(delimer);
  1384. overlapped->dwFlags = 0;
  1385. inc_pending_io(tcpsock);
  1386. rc = WSARecv(tcpsock->u.sock, &overlapped->wsabuf, 1, &bytesRead, &overlapped->dwFlags,
  1387. &overlapped->base.ov, NULL);
  1388. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1389. return 0;
  1390. fastlock_enter(tcpsock->ov_pending_list_lock);
  1391. list_del(&overlapped->base.pending_entry);
  1392. fastlock_leave(tcpsock->ov_pending_list_lock);
  1393. dec_pending_io(tcpsock);
  1394. return -1;
  1395. }
  1396. TOOLKIT_API int ioqueue_tcpsock_recvsome(ioqueue_tcpsock_t *tcpsock,
  1397. void *buf,
  1398. unsigned int len,
  1399. int timeout)
  1400. {
  1401. return recv(tcpsock->u.sock, buf, len, 0);
  1402. }
  1403. TOOLKIT_API int ioqueue_tcpsock_recvn(ioqueue_tcpsock_t *tcpsock,
  1404. void *buf,
  1405. unsigned int len,
  1406. int timeout)
  1407. {
  1408. return trecv_n(tcpsock->u.sock, buf, len, timeout);
  1409. }
  1410. TOOLKIT_API int ioqueue_tcpsock_recvuntil(ioqueue_tcpsock_t *tcpsock,
  1411. void *buf,
  1412. unsigned int len,
  1413. const char *delimer,
  1414. unsigned int *header_len,
  1415. int timeout)
  1416. {
  1417. return trecv_until(tcpsock->u.sock, buf, len, delimer, header_len, timeout);
  1418. }
  1419. TOOLKIT_API void ioqueue_tcpsock_close(ioqueue_tcpsock_t *tcpsock)
  1420. {
  1421. SOCKET s;
  1422. assert(tcpsock);
  1423. s = tcpsock->u.sock;
  1424. if (s != INVALID_SOCKET) {
  1425. tcpsock->u.sock = INVALID_SOCKET;
  1426. closesocket(s);
  1427. }
  1428. }
  1429. TOOLKIT_API void ioqueue_tcpsock_destroy(ioqueue_tcpsock_t *tcpsock)
  1430. {
  1431. assert(tcpsock);
  1432. dec_ref(ioqueue_handle_context, tcpsock);
  1433. }
  1434. TOOLKIT_API int ioqueue_tcpsock_shutdown(ioqueue_tcpsock_t *tcpsock, int how)
  1435. {
  1436. assert(tcpsock);
  1437. return shutdown(tcpsock->u.sock, how);
  1438. }
  1439. TOOLKIT_API SOCKET ioqueue_tcpsock_get_raw_socket(ioqueue_tcpsock_t *tcpsock)
  1440. {
  1441. assert(tcpsock);
  1442. return tcpsock->u.sock;
  1443. }
  1444. TOOLKIT_API ioqueue_t* ioqueue_tcpsock_get_owned_ioqueue(ioqueue_tcpsock_t *tcpsock)
  1445. {
  1446. assert(tcpsock);
  1447. return tcpsock->owner;
  1448. }
  1449. TOOLKIT_API void *ioqueue_tcpsock_set_user_data(ioqueue_tcpsock_t *tcpsock, void *user_data)
  1450. {
  1451. void *old;
  1452. assert(tcpsock);
  1453. old = tcpsock->user_data;
  1454. tcpsock->user_data = user_data;
  1455. return old;
  1456. }
  1457. TOOLKIT_API void *ioqueue_tcpsock_get_user_data(ioqueue_tcpsock_t *tcpsock)
  1458. {
  1459. assert(tcpsock);
  1460. return tcpsock->user_data;
  1461. }
  1462. TOOLKIT_API int ioqueue_tcpsock_cancel(ioqueue_tcpsock_t* tcpsock)
  1463. {
  1464. assert(tcpsock);
  1465. return CancelIo(tcpsock->u.file) ? 0 : -1;
  1466. }
  1467. /* udpsock */
  1468. TOOLKIT_API int ioqueue_udpsock_create(ioqueue_t *ioq, ioqueue_udpsock_t *udpsock)
  1469. {
  1470. SOCKET s;
  1471. assert(ioq);
  1472. assert(udpsock);
  1473. if (ioq->stop)
  1474. return -1;
  1475. s = WSASocket(AF_INET, SOCK_DGRAM, IPPROTO_UDP, NULL, 0, WSA_FLAG_OVERLAPPED);
  1476. if (s == INVALID_SOCKET)
  1477. return -1;
  1478. if (ioqueue_udpsock_create_from_handle(ioq, s, udpsock) != 0) {
  1479. closesocket(s);
  1480. return -1;
  1481. }
  1482. return 0;
  1483. }
  1484. TOOLKIT_API int ioqueue_udpsock_create_from_handle(ioqueue_t *ioq, SOCKET s, ioqueue_udpsock_t *udpsock)
  1485. {
  1486. assert(ioq);
  1487. assert(udpsock);
  1488. assert(s != INVALID_SOCKET);
  1489. if (ioq->stop)
  1490. return -1;
  1491. memset(udpsock, 0, sizeof(ioqueue_udpsock_t));
  1492. udpsock->u.sock = s;
  1493. nonblock_sock(udpsock->u.sock);
  1494. if (!CreateIoCompletionPort((HANDLE)udpsock->u.sock, ioq->iocp, 0, 0))
  1495. return -1;
  1496. fastlock_init(udpsock->ov_pending_list_lock);
  1497. INIT_LIST_HEAD(&udpsock->ov_pending_list);
  1498. udpsock->type = HANDLE_TYPE_UDPSOCK;
  1499. udpsock->owner = ioq;
  1500. add_handler_list(udpsock, ioq);
  1501. inc_ref(ioqueue_handle_context, udpsock);
  1502. return 0;
  1503. }
  1504. TOOLKIT_API void ioqueue_udpsock_close(ioqueue_udpsock_t *udpsock)
  1505. {
  1506. SOCKET s;
  1507. assert(udpsock);
  1508. s = udpsock->u.sock;
  1509. if (s != INVALID_SOCKET) {
  1510. udpsock->u.sock = INVALID_SOCKET;
  1511. closesocket(s);
  1512. }
  1513. }
  1514. TOOLKIT_API void ioqueue_udpsock_destroy(ioqueue_udpsock_t *udpsock)
  1515. {
  1516. assert(udpsock);
  1517. dec_ref(ioqueue_handle_context, udpsock);
  1518. }
  1519. TOOLKIT_API int ioqueue_udpsock_async_sendto(ioqueue_udpsock_t* udpsock,
  1520. ioqueue_overlapped_t *ov,
  1521. void *buf,
  1522. int len,
  1523. const struct sockaddr* to,
  1524. int tolen,
  1525. ioqueue_on_sendto_callback on_sendto_callback,
  1526. void *user_data)
  1527. {
  1528. ioqueue_sendto_overlapped_t *overlapped;
  1529. int rc;
  1530. DWORD bytesWritten;
  1531. ioqueue_t *ioq;
  1532. assert(udpsock);
  1533. assert(ov);
  1534. assert(buf);
  1535. assert(to);
  1536. assert(on_sendto_callback);
  1537. assert(ov);
  1538. ioq = udpsock->owner;
  1539. if (ioq->stop)
  1540. return -1;
  1541. overlapped = (ioqueue_sendto_overlapped_t*)ov;
  1542. memset(overlapped, 0, sizeof(ioqueue_sendto_overlapped_t));
  1543. fastlock_enter(udpsock->ov_pending_list_lock);
  1544. list_add_tail(&overlapped->base.pending_entry, &udpsock->ov_pending_list);
  1545. fastlock_leave(udpsock->ov_pending_list_lock);
  1546. overlapped->base.type = OV_SENDTO;
  1547. overlapped->base.user_data = user_data;
  1548. overlapped->base.handle_ctx = (ioqueue_handle_context*)udpsock;
  1549. overlapped->on_sendto_callback = on_sendto_callback;
  1550. overlapped->wsabuf.len = len;
  1551. overlapped->wsabuf.buf = buf;
  1552. inc_pending_io(udpsock);
  1553. rc = WSASendTo(udpsock->u.sock, &overlapped->wsabuf, 1, &bytesWritten, 0,
  1554. to, tolen, &overlapped->base.ov, NULL);
  1555. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1556. return 0;
  1557. fastlock_enter(udpsock->ov_pending_list_lock);
  1558. list_del(&overlapped->base.pending_entry);
  1559. fastlock_leave(udpsock->ov_pending_list_lock);
  1560. dec_pending_io(udpsock);
  1561. return -1;
  1562. }
  1563. TOOLKIT_API int ioqueue_udpsock_sendto(ioqueue_udpsock_t *udpsock,
  1564. void *buf,
  1565. int len,
  1566. const struct sockaddr* to,
  1567. int tolen,
  1568. int timeout)
  1569. {
  1570. return tsendto(udpsock->u.sock, buf, len, to, tolen, timeout);
  1571. }
  1572. TOOLKIT_API int ioqueue_udpsock_async_recvfrom(ioqueue_udpsock_t* udpsock,
  1573. ioqueue_overlapped_t *ov,
  1574. void* buf,
  1575. int len,
  1576. ioqueue_on_recvfrom_callback on_recvfrom_callback,
  1577. void *user_data)
  1578. {
  1579. ioqueue_recvfrom_overlapped_t *overlapped;
  1580. int rc;
  1581. DWORD bytesRead;
  1582. ioqueue_t *ioq;
  1583. assert(udpsock);
  1584. assert(ov);
  1585. assert(buf);
  1586. assert(on_recvfrom_callback);
  1587. ioq = udpsock->owner;
  1588. if (ioq->stop)
  1589. return -1;
  1590. overlapped = (ioqueue_recvfrom_overlapped_t*)ov;
  1591. memset(overlapped, 0, sizeof(ioqueue_recvfrom_overlapped_t));
  1592. fastlock_enter(udpsock->ov_pending_list_lock);
  1593. list_add_tail(&overlapped->base.pending_entry, &udpsock->ov_pending_list);
  1594. fastlock_leave(udpsock->ov_pending_list_lock);
  1595. overlapped->base.type = OV_RECVFROM;
  1596. overlapped->base.user_data = user_data;
  1597. overlapped->base.handle_ctx = (ioqueue_handle_context*)udpsock;
  1598. overlapped->on_recvfrom_callback = on_recvfrom_callback;
  1599. overlapped->wsabuf.len = len;
  1600. overlapped->wsabuf.buf = buf;
  1601. overlapped->dwFlags = 0;
  1602. inc_pending_io(udpsock);
  1603. rc = WSARecvFrom(udpsock->u.sock, &overlapped->wsabuf, 1, &bytesRead, &overlapped->dwFlags,
  1604. (struct sockaddr*)&overlapped->peer, &overlapped->addrlen, &overlapped->base.ov, NULL);
  1605. if (rc == 0 || WSAGetLastError() == WSA_IO_PENDING)
  1606. return 0;
  1607. fastlock_enter(udpsock->ov_pending_list_lock);
  1608. list_del(&overlapped->base.pending_entry);
  1609. fastlock_leave(udpsock->ov_pending_list_lock);
  1610. dec_pending_io(udpsock);
  1611. return -1;
  1612. }
  1613. TOOLKIT_API int ioqueue_udpsock_recvfrom(ioqueue_udpsock_t* udpsock,
  1614. ioqueue_overlapped_t *overlapped,
  1615. void* buf,
  1616. int len,
  1617. struct sockaddr *fromaddr,
  1618. int *addrlen,
  1619. int timeout)
  1620. {
  1621. return trecvfrom(udpsock->u.sock, buf, len, fromaddr, addrlen, timeout);
  1622. }
  1623. TOOLKIT_API SOCKET ioqueue_udpsock_get_raw_socket(ioqueue_udpsock_t *udpsock)
  1624. {
  1625. assert(udpsock);
  1626. return udpsock->u.sock;
  1627. }
  1628. TOOLKIT_API ioqueue_t* ioqueue_udpsock_get_owned_ioqueue(ioqueue_udpsock_t *udpsock)
  1629. {
  1630. assert(udpsock);
  1631. return udpsock->owner;
  1632. }
  1633. TOOLKIT_API void *ioqueue_udpsock_set_user_data(ioqueue_udpsock_t *udpsock, void *user_data)
  1634. {
  1635. void *old;
  1636. assert(udpsock);
  1637. old = udpsock->user_data;
  1638. udpsock->user_data = user_data;
  1639. return old;
  1640. }
  1641. TOOLKIT_API void *ioqueue_udpsock_get_user_data(ioqueue_udpsock_t *udpsock)
  1642. {
  1643. assert(udpsock);
  1644. return udpsock->user_data;
  1645. }
  1646. TOOLKIT_API int ioqueue_udpsock_cancel(ioqueue_udpsock_t *udpsock)
  1647. {
  1648. assert(udpsock);
  1649. return CancelIo(udpsock->u.file) ? 0 : -1;
  1650. }
  1651. /* file */
  1652. TOOLKIT_API int ioqueue_file_create(ioqueue_t *ioq,
  1653. const char *path,
  1654. DWORD dwDesiredAccess,
  1655. DWORD dwShareMode,
  1656. DWORD dwCreationDisposition,
  1657. DWORD dwFlagsAndAttributes,
  1658. ioqueue_file_t *file)
  1659. {
  1660. HANDLE hFile;
  1661. assert(ioq);
  1662. assert(path);
  1663. assert(file);
  1664. if (ioq->stop)
  1665. return -1;
  1666. hFile = CreateFileA(path, dwDesiredAccess, dwShareMode,
  1667. NULL, dwCreationDisposition,
  1668. dwFlagsAndAttributes|FILE_FLAG_OVERLAPPED, NULL);
  1669. return ioqueue_file_create_from_handle(ioq, hFile, file);
  1670. }
  1671. TOOLKIT_API int ioqueue_file_create_from_handle(ioqueue_t *ioq, HANDLE h, ioqueue_file_t *file)
  1672. {
  1673. assert(ioq);
  1674. assert(file);
  1675. if (ioq->stop)
  1676. return -1;
  1677. memset(file, 0, sizeof(ioqueue_file_t));
  1678. file->u.file = h;
  1679. if (file->u.file == INVALID_HANDLE_VALUE)
  1680. return -1;
  1681. if (!CreateIoCompletionPort(file->u.file, ioq->iocp, 0, 0)) {
  1682. CloseHandle(file->u.file);
  1683. file->u.file = INVALID_HANDLE_VALUE;
  1684. return -1;
  1685. }
  1686. fastlock_init(file->ov_pending_list_lock);
  1687. INIT_LIST_HEAD(&file->ov_pending_list);
  1688. file->type = HANDLE_TYPE_FILE;
  1689. file->owner = ioq;
  1690. add_handler_list(file, ioq);
  1691. inc_ref(ioqueue_handle_context, file);
  1692. return 0;
  1693. }
  1694. TOOLKIT_API void ioqueue_file_close(ioqueue_file_t* file)
  1695. {
  1696. HANDLE s;
  1697. assert(file);
  1698. s = file->u.file;
  1699. if (s != INVALID_HANDLE_VALUE) {
  1700. file->u.file = INVALID_HANDLE_VALUE;
  1701. CloseHandle(s);
  1702. }
  1703. }
  1704. TOOLKIT_API void ioqueue_file_destroy(ioqueue_file_t* file)
  1705. {
  1706. assert(file);
  1707. dec_ref(ioqueue_handle_context, file);
  1708. }
  1709. TOOLKIT_API int ioqueue_file_async_readsome(ioqueue_file_t* file,
  1710. ioqueue_overlapped_t *ov,
  1711. void *buf,
  1712. unsigned int len,
  1713. ioqueue_on_read_callback on_read_callback,
  1714. void *user_data)
  1715. {
  1716. return ioqueue_file_async_readsome_at(file, ov, buf, len, 0, 0, on_read_callback, user_data);
  1717. }
  1718. TOOLKIT_API int ioqueue_file_async_readn(ioqueue_file_t* file,
  1719. ioqueue_overlapped_t *overlapped,
  1720. void *buf,
  1721. unsigned int len,
  1722. ioqueue_on_read_callback on_read_cb,
  1723. void *user_data)
  1724. {
  1725. return ioqueue_file_async_readn_at(file, overlapped, buf, len, 0, 0, on_read_cb, user_data);
  1726. }
  1727. TOOLKIT_API int ioqueue_file_readsome(ioqueue_file_t *file, void *buf, unsigned int len)
  1728. {
  1729. return ioqueue_file_readsome_at(file, buf, len, 0, 0);
  1730. }
  1731. TOOLKIT_API int ioqueue_file_readn(ioqueue_file_t *file, void *buf, unsigned int len)
  1732. {
  1733. return ioqueue_file_readn_at(file, buf, len, 0, 0);
  1734. }
  1735. TOOLKIT_API int ioqueue_file_async_readsome_at(ioqueue_file_t* file,
  1736. ioqueue_overlapped_t *ov,
  1737. void *buf,
  1738. unsigned int len,
  1739. DWORD posLow,
  1740. DWORD posHigh,
  1741. ioqueue_on_read_callback on_read_callback,
  1742. void *user_data)
  1743. {
  1744. ioqueue_readfilesome_overlapped_t *overlapped;
  1745. BOOL rc;
  1746. ioqueue_t *ioq;
  1747. assert(file);
  1748. assert(ov);
  1749. assert(buf);
  1750. assert(on_read_callback);
  1751. ioq = file->owner;
  1752. if (ioq->stop)
  1753. return -1;
  1754. overlapped = (ioqueue_readfilesome_overlapped_t*)ov;
  1755. memset(overlapped, 0, sizeof(ioqueue_readfilesome_overlapped_t));
  1756. fastlock_enter(file->ov_pending_list_lock);
  1757. list_add_tail(&overlapped->base.pending_entry, &file->ov_pending_list);
  1758. fastlock_leave(file->ov_pending_list_lock);
  1759. overlapped->hevt = CreateEventA(NULL, TRUE, FALSE, NULL);
  1760. overlapped->base.type = OV_READFILESOME;
  1761. overlapped->base.user_data = user_data;
  1762. overlapped->base.handle_ctx = (ioqueue_handle_context*)file;
  1763. overlapped->base.ov.Offset = posLow;
  1764. overlapped->base.ov.OffsetHigh = posHigh;
  1765. overlapped->on_read_callback = on_read_callback;
  1766. overlapped->buf = buf;
  1767. inc_pending_io(file);
  1768. rc = ReadFile(file->u.file, buf, (DWORD)len, NULL, &overlapped->base.ov);
  1769. if (rc || GetLastError() == ERROR_IO_PENDING)
  1770. return 0;
  1771. fastlock_enter(file->ov_pending_list_lock);
  1772. list_del(&overlapped->base.pending_entry);
  1773. fastlock_leave(file->ov_pending_list_lock);
  1774. dec_pending_io(file);
  1775. CloseHandle(overlapped->hevt);
  1776. return -1;
  1777. }
  1778. TOOLKIT_API int ioqueue_file_async_readn_at(ioqueue_file_t* file,
  1779. ioqueue_overlapped_t *ov,
  1780. void *buf,
  1781. unsigned int len,
  1782. DWORD posLow,
  1783. DWORD posHigh,
  1784. ioqueue_on_read_callback on_read_cb,
  1785. void *user_data)
  1786. {
  1787. ioqueue_readfilen_overlapped_t *overlapped;
  1788. BOOL rc;
  1789. ioqueue_t *ioq;
  1790. assert(file);
  1791. assert(ov);
  1792. assert(buf);
  1793. assert(on_read_cb);
  1794. ioq = file->owner;
  1795. if (ioq->stop)
  1796. return -1;
  1797. overlapped = (ioqueue_readfilen_overlapped_t*)ov;
  1798. memset(overlapped, 0, sizeof(ioqueue_readfilen_overlapped_t));
  1799. fastlock_enter(file->ov_pending_list_lock);
  1800. list_add_tail(&overlapped->base.pending_entry, &file->ov_pending_list);
  1801. fastlock_leave(file->ov_pending_list_lock);
  1802. overlapped->hevt = CreateEventA(NULL, TRUE, FALSE, NULL);
  1803. overlapped->base.type = OV_READFILEN;
  1804. overlapped->base.user_data = user_data;
  1805. overlapped->base.handle_ctx = (ioqueue_handle_context*)file;
  1806. overlapped->base.ov.Offset = posLow;
  1807. overlapped->base.ov.OffsetHigh = posHigh;
  1808. overlapped->on_read_callback = on_read_cb;
  1809. overlapped->buf = buf;
  1810. overlapped->recved_bytes = 0;
  1811. overlapped->total_bytes = len;
  1812. inc_pending_io(file);
  1813. rc = ReadFile(file->u.file, buf, (DWORD)len, NULL, &overlapped->base.ov);
  1814. if (rc || GetLastError() == ERROR_IO_PENDING)
  1815. return 0;
  1816. fastlock_enter(file->ov_pending_list_lock);
  1817. list_del(&overlapped->base.pending_entry);
  1818. fastlock_leave(file->ov_pending_list_lock);
  1819. dec_pending_io(file);
  1820. return -1;
  1821. }
  1822. TOOLKIT_API int ioqueue_file_readsome_at(ioqueue_file_t *file,
  1823. void *buf,
  1824. unsigned int len,
  1825. DWORD posLow,
  1826. DWORD posHigh)
  1827. {
  1828. OVERLAPPED ov;
  1829. BOOL ret;
  1830. DWORD dwTransferBytes;
  1831. int rc = -1;
  1832. /* (MSDN)
  1833. Even if you have passed the function a file handle associated with a completion port and
  1834. a valid OVERLAPPED structure, an application can prevent completion port notification.
  1835. This is done by specifying a valid event handle for the hEvent member of the OVERLAPPED structure,
  1836. and setting its low-order bit. A valid event handle whose low-order bit is set keeps I/O completion
  1837. from being queued to the completion port.
  1838. */
  1839. memset(&ov, 0, sizeof(ov));
  1840. ov.Offset = posLow;
  1841. ov.OffsetHigh = posHigh;
  1842. ov.hEvent = CreateEventA(NULL, TRUE, FALSE, NULL);
  1843. ov.hEvent = (HANDLE)((DWORD)ov.hEvent & 0x1);
  1844. ret = ReadFile(file->u.file, buf, len, &dwTransferBytes, &ov);
  1845. if (!ret && GetLastError() == ERROR_IO_PENDING) {
  1846. ret = GetOverlappedResult(file->u.file, &ov, &dwTransferBytes, TRUE);
  1847. }
  1848. CloseHandle((HANDLE)((DWORD)ov.hEvent & ~1));
  1849. if (ret && dwTransferBytes > 0)
  1850. rc = dwTransferBytes;
  1851. return rc;
  1852. }
  1853. TOOLKIT_API int ioqueue_file_readn_at(ioqueue_file_t *file,
  1854. void *buf,
  1855. unsigned int len,
  1856. DWORD posLow,
  1857. DWORD posHigh)
  1858. {
  1859. OVERLAPPED ov;
  1860. int rc = 0;
  1861. DWORD left = len;
  1862. DWORD offset = 0;
  1863. memset(&ov, 0, sizeof(ov));
  1864. ov.Offset = posLow;
  1865. ov.OffsetHigh = posHigh;
  1866. ov.hEvent = CreateEventA(NULL, TRUE, FALSE, NULL);
  1867. ov.hEvent = (HANDLE)((DWORD)ov.hEvent & 0x1);
  1868. while (left > 0) {
  1869. BOOL ret;
  1870. DWORD dwTransferBytes;
  1871. ret = ReadFile(file->u.file, (char*)buf+offset, len, &dwTransferBytes, &ov);
  1872. if (!ret && GetLastError() == ERROR_IO_PENDING) {
  1873. ret = GetOverlappedResult(file->u.file, &ov, &dwTransferBytes, TRUE);
  1874. }
  1875. if (rc && dwTransferBytes) {
  1876. offset += dwTransferBytes;
  1877. left -= dwTransferBytes;
  1878. ov.Internal = 0;
  1879. ov.InternalHigh = 0;
  1880. ov.Offset += dwTransferBytes;
  1881. if (ov.Offset < dwTransferBytes)
  1882. ov.OffsetHigh++;
  1883. } else {
  1884. rc = -1;
  1885. break;
  1886. }
  1887. }
  1888. CloseHandle((HANDLE)((DWORD)ov.hEvent & ~1));
  1889. return rc;
  1890. }
  1891. TOOLKIT_API int ioqueue_file_async_writesome(ioqueue_file_t* file,
  1892. ioqueue_overlapped_t *ov,
  1893. void* buf,
  1894. unsigned int len,
  1895. ioqueue_on_write_callback on_write_callback,
  1896. void *user_data)
  1897. {
  1898. return ioqueue_file_async_writesome_at(file, ov, buf, len, 0, 0, on_write_callback, user_data);
  1899. }
  1900. TOOLKIT_API int ioqueue_file_async_writen(ioqueue_file_t* file,
  1901. ioqueue_overlapped_t *overlapped,
  1902. void* buf,
  1903. unsigned int len,
  1904. ioqueue_on_write_callback on_write_cb,
  1905. void *user_data)
  1906. {
  1907. return ioqueue_file_async_writen_at(file, overlapped, buf, len, 0, 0, on_write_cb, user_data);
  1908. }
  1909. TOOLKIT_API int ioqueue_file_writesome(ioqueue_file_t* file, const void *buf, unsigned int len)
  1910. {
  1911. return ioqueue_file_writesome_at(file, buf, len, 0, 0);
  1912. }
  1913. TOOLKIT_API int ioqueue_file_writen(ioqueue_file_t* file, const void *buf, unsigned int len)
  1914. {
  1915. return ioqueue_file_writen_at(file, buf, len, 0, 0);
  1916. }
  1917. TOOLKIT_API int ioqueue_file_async_writesome_at(ioqueue_file_t* file,
  1918. ioqueue_overlapped_t *ov,
  1919. void* buf,
  1920. unsigned int len,
  1921. DWORD posLow,
  1922. DWORD posHigh,
  1923. ioqueue_on_write_callback on_write_callback,
  1924. void *user_data)
  1925. {
  1926. ioqueue_writefilesome_overlapped_t *overlapped;
  1927. BOOL rc;
  1928. ioqueue_t *ioq;
  1929. assert(file);
  1930. assert(ov);
  1931. assert(buf);
  1932. assert(on_write_callback);
  1933. ioq = file->owner;
  1934. if (ioq->stop)
  1935. return -1;
  1936. overlapped = (ioqueue_writefilesome_overlapped_t*)ov;
  1937. memset(overlapped, 0, sizeof(ioqueue_writefilesome_overlapped_t));
  1938. fastlock_enter(file->ov_pending_list_lock);
  1939. list_add_tail(&overlapped->base.pending_entry, &file->ov_pending_list);
  1940. fastlock_leave(file->ov_pending_list_lock);
  1941. overlapped->hevt = CreateEventA(NULL, TRUE, FALSE, NULL);
  1942. overlapped->base.type = OV_WRITEFILESOME;
  1943. overlapped->base.user_data = user_data;
  1944. overlapped->base.handle_ctx = (ioqueue_handle_context*)file;
  1945. overlapped->base.ov.Offset = posLow;
  1946. overlapped->base.ov.OffsetHigh = posHigh;
  1947. overlapped->on_write_callback = on_write_callback;
  1948. overlapped->buf = buf;
  1949. inc_pending_io(file);
  1950. rc = WriteFile(file->u.file, buf, (DWORD)len, NULL, &overlapped->base.ov);
  1951. if (rc || GetLastError() == ERROR_IO_PENDING)
  1952. return 0;
  1953. fastlock_enter(file->ov_pending_list_lock);
  1954. list_del(&overlapped->base.pending_entry);
  1955. fastlock_leave(file->ov_pending_list_lock);
  1956. dec_pending_io(file);
  1957. CloseHandle(overlapped->hevt);
  1958. return -1;
  1959. }
  1960. TOOLKIT_API int ioqueue_file_async_writen_at(ioqueue_file_t* file,
  1961. ioqueue_overlapped_t *ov,
  1962. void* buf,
  1963. unsigned int len,
  1964. DWORD posLow,
  1965. DWORD posHigh,
  1966. ioqueue_on_write_callback on_write_cb,
  1967. void *user_data)
  1968. {
  1969. ioqueue_writefilen_overlapped_t *overlapped;
  1970. BOOL rc;
  1971. ioqueue_t *ioq;
  1972. assert(file);
  1973. assert(ov);
  1974. assert(buf);
  1975. assert(on_write_cb);
  1976. ioq = file->owner;
  1977. if (ioq->stop)
  1978. return -1;
  1979. overlapped = (ioqueue_writefilen_overlapped_t*)ov;
  1980. memset(overlapped, 0, sizeof(ioqueue_writefilen_overlapped_t));
  1981. fastlock_enter(file->ov_pending_list_lock);
  1982. list_add_tail(&overlapped->base.pending_entry, &file->ov_pending_list);
  1983. fastlock_leave(file->ov_pending_list_lock);
  1984. overlapped->hevt = CreateEventA(NULL, TRUE, FALSE, NULL);
  1985. overlapped->base.type = OV_WRITEFILEN;
  1986. overlapped->base.user_data = user_data;
  1987. overlapped->base.handle_ctx = (ioqueue_handle_context*)file;
  1988. overlapped->base.ov.Offset = posLow;
  1989. overlapped->base.ov.OffsetHigh = posHigh;
  1990. overlapped->on_write_callback = on_write_cb;
  1991. overlapped->buf = buf;
  1992. overlapped->sended_bytes = 0;
  1993. overlapped->total_bytes = len;
  1994. inc_pending_io(file);
  1995. rc = WriteFile(file->u.file, buf, (DWORD)len, NULL, &overlapped->base.ov);
  1996. if (rc || GetLastError() == ERROR_IO_PENDING)
  1997. return 0;
  1998. fastlock_enter(file->ov_pending_list_lock);
  1999. list_del(&overlapped->base.pending_entry);
  2000. fastlock_leave(file->ov_pending_list_lock);
  2001. dec_pending_io(file);
  2002. CloseHandle(overlapped->hevt);
  2003. return -1;
  2004. }
  2005. TOOLKIT_API int ioqueue_file_writesome_at(ioqueue_file_t* file,
  2006. const void *buf,
  2007. unsigned int len,
  2008. DWORD posLow,
  2009. DWORD posHigh)
  2010. {
  2011. OVERLAPPED ov;
  2012. BOOL ret;
  2013. DWORD dwTransferBytes;
  2014. int rc = -1;
  2015. memset(&ov, 0, sizeof(ov));
  2016. ov.Offset = posLow;
  2017. ov.OffsetHigh = posHigh;
  2018. ov.hEvent = CreateEventA(NULL, TRUE, FALSE, NULL);
  2019. ov.hEvent = (HANDLE)((DWORD)ov.hEvent & 0x1);
  2020. ret = WriteFile(file->u.file, buf, len, &dwTransferBytes, &ov);
  2021. if (!ret && GetLastError() == ERROR_IO_PENDING) {
  2022. ret = GetOverlappedResult(file->u.file, &ov, &dwTransferBytes, TRUE);
  2023. }
  2024. CloseHandle((HANDLE)((DWORD)ov.hEvent & ~1));
  2025. if (ret && dwTransferBytes > 0)
  2026. rc = dwTransferBytes;
  2027. return rc;
  2028. }
  2029. TOOLKIT_API int ioqueue_file_writen_at(ioqueue_file_t* file,
  2030. const void *buf,
  2031. unsigned int len,
  2032. DWORD posLow,
  2033. DWORD posHigh)
  2034. {
  2035. OVERLAPPED ov;
  2036. int rc = 0;
  2037. DWORD offset = 0;
  2038. DWORD left = len;
  2039. memset(&ov, 0, sizeof(ov));
  2040. ov.Offset = posLow;
  2041. ov.OffsetHigh = posHigh;
  2042. ov.hEvent = CreateEventA(NULL, TRUE, FALSE, NULL);
  2043. ov.hEvent = (HANDLE)((DWORD)ov.hEvent & 0x1);
  2044. while (left > 0) {
  2045. BOOL ret;
  2046. DWORD dwTransferBytes;
  2047. ret = WriteFile(file->u.file, (char*)buf+offset, left, &dwTransferBytes, &ov);
  2048. if (!ret && GetLastError() == ERROR_IO_PENDING) {
  2049. ret = GetOverlappedResult(file->u.file, &ov, &dwTransferBytes, TRUE);
  2050. }
  2051. if (ret && dwTransferBytes > 0) {
  2052. offset += dwTransferBytes;
  2053. left -= dwTransferBytes;
  2054. ov.Internal = 0;
  2055. ov.InternalHigh = 0;
  2056. ov.Offset += dwTransferBytes;
  2057. if (ov.Offset < dwTransferBytes)
  2058. ov.OffsetHigh ++;
  2059. } else {
  2060. rc = -1;
  2061. break;
  2062. }
  2063. }
  2064. CloseHandle((HANDLE)((DWORD)ov.hEvent & ~1));
  2065. return rc;
  2066. }
  2067. TOOLKIT_API ioqueue_t* ioqueue_file_get_owned_ioqueue(ioqueue_file_t* file)
  2068. {
  2069. assert(file);
  2070. return file->owner;
  2071. }
  2072. TOOLKIT_API HANDLE ioqueue_file_get_raw_handle(ioqueue_file_t* file)
  2073. {
  2074. assert(file);
  2075. return file->u.file;
  2076. }
  2077. TOOLKIT_API void *ioqueue_file_set_user_data(ioqueue_file_t* file, void* user_data)
  2078. {
  2079. void *old;
  2080. assert(file);
  2081. old = file->user_data;
  2082. file->user_data = user_data;
  2083. return old;
  2084. }
  2085. TOOLKIT_API void *ioqueue_file_get_user_data(ioqueue_file_t* file)
  2086. {
  2087. assert(file);
  2088. return file->user_data;
  2089. }
  2090. TOOLKIT_API int ioqueue_file_cancel(ioqueue_file_t* file)
  2091. {
  2092. assert(file);
  2093. return CancelIo(file->u.file) ? 0 : -1;
  2094. }
  2095. /* pipe acceptor */
  2096. TOOLKIT_API int ioqueue_pipe_acceptor_create(ioqueue_t *ioq,
  2097. const char *name,
  2098. ioqueue_pipe_acceptor_t *acceptor)
  2099. {
  2100. assert(ioq);
  2101. assert(name);
  2102. assert(acceptor);
  2103. memset(acceptor, 0, sizeof(ioqueue_pipe_acceptor_t));
  2104. acceptor->u.pipe_name = strdup_printf("\\\\.\\pipe\\%s", name);
  2105. acceptor->type = HANDLE_TYPE_PIPEACCEPTOR;
  2106. acceptor->owner = ioq;
  2107. fastlock_init(acceptor->ov_pending_list_lock);
  2108. INIT_LIST_HEAD(&acceptor->ov_pending_list);
  2109. add_handler_list(acceptor, ioq);
  2110. inc_ref(ioqueue_handle_context, acceptor);
  2111. return 0;
  2112. }
  2113. TOOLKIT_API void ioqueue_pipe_acceptor_destroy(ioqueue_pipe_acceptor_t *acceptor)
  2114. {
  2115. assert(acceptor);
  2116. dec_ref(ioqueue_handle_context, acceptor);
  2117. }
  2118. TOOLKIT_API ioqueue_t* ioqueue_pipe_acceptor_get_owned_ioqueue(ioqueue_pipe_acceptor_t *acceptor)
  2119. {
  2120. assert(acceptor);
  2121. assert(acceptor->type == HANDLE_TYPE_PIPEACCEPTOR);
  2122. return acceptor->owner;
  2123. }
  2124. TOOLKIT_API void *ioqueue_pipe_acceptor_set_user_data(ioqueue_pipe_acceptor_t *acceptor, void *user_data)
  2125. {
  2126. void *old;
  2127. assert(acceptor);
  2128. assert(acceptor->type == HANDLE_TYPE_PIPEACCEPTOR);
  2129. old = acceptor->user_data;
  2130. acceptor->user_data = user_data;
  2131. return old;
  2132. }
  2133. TOOLKIT_API void *ioqueue_pipe_acceptor_get_user_data(ioqueue_pipe_acceptor_t *acceptor)
  2134. {
  2135. assert(acceptor);
  2136. assert(acceptor->type == HANDLE_TYPE_ACCEPTOR);
  2137. return acceptor->user_data;
  2138. }
  2139. TOOLKIT_API int ioqueue_pipe_acceptor_async_accept(ioqueue_pipe_acceptor_t *acceptor,
  2140. ioqueue_overlapped_t *ov,
  2141. ioqueue_on_pipe_accept_callback on_accept_callback,
  2142. void *user_data)
  2143. {
  2144. ioqueue_t *ioq;
  2145. ioqueue_connectpipe_overlapped_t *overlapped;
  2146. BOOL ret;
  2147. assert(acceptor);
  2148. assert(ov);
  2149. assert(acceptor->type == HANDLE_TYPE_PIPEACCEPTOR);
  2150. assert(on_accept_callback);
  2151. ioq = acceptor->owner;
  2152. if (ioq->stop)
  2153. return -1;
  2154. overlapped = (ioqueue_connectpipe_overlapped_t*)ov;
  2155. memset(overlapped, 0, sizeof(ioqueue_connectpipe_overlapped_t));
  2156. overlapped->client = CreateNamedPipeA(acceptor->u.pipe_name,
  2157. PIPE_ACCESS_DUPLEX|FILE_FLAG_OVERLAPPED, PIPE_TYPE_BYTE,
  2158. PIPE_UNLIMITED_INSTANCES, 3072, 3072, NMPWAIT_WAIT_FOREVER, NULL);
  2159. if (overlapped->client == INVALID_HANDLE_VALUE)
  2160. return -1;
  2161. if (!CreateIoCompletionPort(overlapped->client, ioq->iocp, 0, 0)) {
  2162. CloseHandle(overlapped->client);
  2163. return -1;
  2164. }
  2165. overlapped->hevt = CreateEventA(NULL, TRUE, FALSE, NULL); // must be use event, from MSDN
  2166. overlapped->base.type = OV_CONNECTPIPE;
  2167. overlapped->base.user_data = user_data;
  2168. overlapped->base.handle_ctx = acceptor;
  2169. overlapped->base.ov.hEvent = overlapped->hevt;
  2170. fastlock_enter(acceptor->ov_pending_list_lock);
  2171. list_add_tail(&overlapped->base.pending_entry, &acceptor->ov_pending_list);
  2172. fastlock_leave(acceptor->ov_pending_list_lock);
  2173. inc_pending_io(acceptor);
  2174. overlapped->on_accept_callback = on_accept_callback;
  2175. ret = ConnectNamedPipe(overlapped->client, &overlapped->base.ov);
  2176. if (ret || GetLastError() == ERROR_IO_PENDING)
  2177. return 0;
  2178. fastlock_enter(acceptor->ov_pending_list_lock);
  2179. list_del(&overlapped->base.pending_entry);
  2180. fastlock_leave(acceptor->ov_pending_list_lock);
  2181. dec_pending_io(acceptor);
  2182. CloseHandle(overlapped->client);
  2183. CloseHandle(overlapped->hevt);
  2184. return -1;
  2185. }
  2186. TOOLKIT_API int ioqueue_pipe_acceptor_accept(ioqueue_pipe_acceptor_t *acceptor, HANDLE *p_pipe, int timeout)
  2187. {
  2188. ioqueue_t *ioq;
  2189. HANDLE pipe;
  2190. OVERLAPPED ov;
  2191. BOOL ret;
  2192. assert(acceptor);
  2193. assert(p_pipe);
  2194. assert(acceptor->type == HANDLE_TYPE_PIPEACCEPTOR);
  2195. ioq = acceptor->owner;
  2196. if (ioq->stop)
  2197. return -1;
  2198. pipe = CreateNamedPipeA(acceptor->u.pipe_name,
  2199. PIPE_ACCESS_DUPLEX|FILE_FLAG_OVERLAPPED, PIPE_TYPE_BYTE,
  2200. PIPE_UNLIMITED_INSTANCES, 3072, 3072, (DWORD)timeout, NULL);
  2201. if (pipe == INVALID_HANDLE_VALUE)
  2202. return -1;
  2203. memset(&ov, 0, sizeof(ov));
  2204. ov.hEvent = CreateEventA(NULL, TRUE, FALSE, NULL);
  2205. ret = ConnectNamedPipe(pipe, &ov);
  2206. CloseHandle(ov.hEvent);
  2207. if (ret && CreateIoCompletionPort(pipe, ioq->iocp, 0, 0)) {
  2208. *p_pipe = pipe;
  2209. return 0;
  2210. } else {
  2211. CloseHandle(pipe);
  2212. }
  2213. return -1;
  2214. }
  2215. TOOLKIT_API int ioqueue_pipe_acceptor_create_client(ioqueue_pipe_acceptor_t *acceptor,
  2216. HANDLE h,
  2217. ioqueue_file_t *pipe)
  2218. {
  2219. ioqueue_t *ioq;
  2220. assert(acceptor);
  2221. assert(pipe);
  2222. assert(h != INVALID_HANDLE_VALUE);
  2223. ioq = acceptor->owner;
  2224. if (ioq->stop)
  2225. return -1;
  2226. memset(pipe, 0, sizeof(ioqueue_tcpsock_t));
  2227. pipe->type = HANDLE_TYPE_FILE;
  2228. pipe->u.file = h;
  2229. pipe->owner = ioq;
  2230. INIT_LIST_HEAD(&pipe->ov_pending_list);
  2231. add_handler_list(pipe, ioq);
  2232. inc_ref(ioqueue_handle_context, pipe);
  2233. return 0;
  2234. }
  2235. TOOLKIT_API int ioqueue_pipe_acceptor_cancel(ioqueue_pipe_acceptor_t *acceptor)
  2236. {
  2237. //.....
  2238. assert(0);
  2239. return 0;
  2240. }
  2241. TOOLKIT_API int ioqueue_pipe_acceptor_close_pending_handle(ioqueue_pipe_acceptor_t *acceptor)
  2242. {
  2243. assert(acceptor);
  2244. fastlock_enter(acceptor->ov_pending_list_lock);
  2245. {
  2246. ioqueue_base_overlapped_t *pos;
  2247. list_for_each_entry(pos, &acceptor->ov_pending_list, ioqueue_base_overlapped_t, pending_entry) {
  2248. ioqueue_connectpipe_overlapped_t *overlapped = (ioqueue_connectpipe_overlapped_t *)pos;
  2249. if (overlapped->client != INVALID_HANDLE_VALUE) {
  2250. CloseHandle(overlapped->client);
  2251. overlapped->client = INVALID_HANDLE_VALUE;
  2252. }
  2253. }
  2254. }
  2255. fastlock_leave(acceptor->ov_pending_list_lock);
  2256. return 0;
  2257. }