messenger.c 64 KB

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  1. #include <linux/ceph/ceph_debug.h>
  2. #include <linux/crc32c.h>
  3. #include <linux/ctype.h>
  4. #include <linux/highmem.h>
  5. #include <linux/inet.h>
  6. #include <linux/kthread.h>
  7. #include <linux/net.h>
  8. #include <linux/slab.h>
  9. #include <linux/socket.h>
  10. #include <linux/string.h>
  11. #include <linux/bio.h>
  12. #include <linux/blkdev.h>
  13. #include <linux/dns_resolver.h>
  14. #include <net/tcp.h>
  15. #include <linux/ceph/libceph.h>
  16. #include <linux/ceph/messenger.h>
  17. #include <linux/ceph/decode.h>
  18. #include <linux/ceph/pagelist.h>
  19. #include <linux/export.h>
  20. /*
  21. * Ceph uses the messenger to exchange ceph_msg messages with other
  22. * hosts in the system. The messenger provides ordered and reliable
  23. * delivery. We tolerate TCP disconnects by reconnecting (with
  24. * exponential backoff) in the case of a fault (disconnection, bad
  25. * crc, protocol error). Acks allow sent messages to be discarded by
  26. * the sender.
  27. */
  28. /* static tag bytes (protocol control messages) */
  29. static char tag_msg = CEPH_MSGR_TAG_MSG;
  30. static char tag_ack = CEPH_MSGR_TAG_ACK;
  31. static char tag_keepalive = CEPH_MSGR_TAG_KEEPALIVE;
  32. #ifdef CONFIG_LOCKDEP
  33. static struct lock_class_key socket_class;
  34. #endif
  35. static void queue_con(struct ceph_connection *con);
  36. static void con_work(struct work_struct *);
  37. static void ceph_fault(struct ceph_connection *con);
  38. /*
  39. * Nicely render a sockaddr as a string. An array of formatted
  40. * strings is used, to approximate reentrancy.
  41. */
  42. #define ADDR_STR_COUNT_LOG 5 /* log2(# address strings in array) */
  43. #define ADDR_STR_COUNT (1 << ADDR_STR_COUNT_LOG)
  44. #define ADDR_STR_COUNT_MASK (ADDR_STR_COUNT - 1)
  45. #define MAX_ADDR_STR_LEN 64 /* 54 is enough */
  46. static char addr_str[ADDR_STR_COUNT][MAX_ADDR_STR_LEN];
  47. static atomic_t addr_str_seq = ATOMIC_INIT(0);
  48. static struct page *zero_page; /* used in certain error cases */
  49. static void *zero_page_address; /* kernel virtual addr of zero_page */
  50. const char *ceph_pr_addr(const struct sockaddr_storage *ss)
  51. {
  52. int i;
  53. char *s;
  54. struct sockaddr_in *in4 = (void *)ss;
  55. struct sockaddr_in6 *in6 = (void *)ss;
  56. i = atomic_inc_return(&addr_str_seq) & ADDR_STR_COUNT_MASK;
  57. s = addr_str[i];
  58. switch (ss->ss_family) {
  59. case AF_INET:
  60. snprintf(s, MAX_ADDR_STR_LEN, "%pI4:%hu", &in4->sin_addr,
  61. ntohs(in4->sin_port));
  62. break;
  63. case AF_INET6:
  64. snprintf(s, MAX_ADDR_STR_LEN, "[%pI6c]:%hu", &in6->sin6_addr,
  65. ntohs(in6->sin6_port));
  66. break;
  67. default:
  68. snprintf(s, MAX_ADDR_STR_LEN, "(unknown sockaddr family %d)",
  69. (int)ss->ss_family);
  70. }
  71. return s;
  72. }
  73. EXPORT_SYMBOL(ceph_pr_addr);
  74. static void encode_my_addr(struct ceph_messenger *msgr)
  75. {
  76. memcpy(&msgr->my_enc_addr, &msgr->inst.addr, sizeof(msgr->my_enc_addr));
  77. ceph_encode_addr(&msgr->my_enc_addr);
  78. }
  79. /*
  80. * work queue for all reading and writing to/from the socket.
  81. */
  82. struct workqueue_struct *ceph_msgr_wq;
  83. int ceph_msgr_init(void)
  84. {
  85. BUG_ON(zero_page != NULL);
  86. zero_page = ZERO_PAGE(0);
  87. page_cache_get(zero_page);
  88. BUG_ON(zero_page_address != NULL);
  89. zero_page_address = kmap(zero_page);
  90. ceph_msgr_wq = alloc_workqueue("ceph-msgr", WQ_NON_REENTRANT, 0);
  91. if (!ceph_msgr_wq) {
  92. pr_err("msgr_init failed to create workqueue\n");
  93. zero_page_address = NULL;
  94. kunmap(zero_page);
  95. page_cache_release(zero_page);
  96. zero_page = NULL;
  97. return -ENOMEM;
  98. }
  99. return 0;
  100. }
  101. EXPORT_SYMBOL(ceph_msgr_init);
  102. void ceph_msgr_exit(void)
  103. {
  104. BUG_ON(ceph_msgr_wq == NULL);
  105. destroy_workqueue(ceph_msgr_wq);
  106. BUG_ON(zero_page_address == NULL);
  107. zero_page_address = NULL;
  108. BUG_ON(zero_page == NULL);
  109. kunmap(zero_page);
  110. page_cache_release(zero_page);
  111. zero_page = NULL;
  112. }
  113. EXPORT_SYMBOL(ceph_msgr_exit);
  114. void ceph_msgr_flush(void)
  115. {
  116. flush_workqueue(ceph_msgr_wq);
  117. }
  118. EXPORT_SYMBOL(ceph_msgr_flush);
  119. /*
  120. * socket callback functions
  121. */
  122. /* data available on socket, or listen socket received a connect */
  123. static void ceph_data_ready(struct sock *sk, int count_unused)
  124. {
  125. struct ceph_connection *con = sk->sk_user_data;
  126. if (sk->sk_state != TCP_CLOSE_WAIT) {
  127. dout("ceph_data_ready on %p state = %lu, queueing work\n",
  128. con, con->state);
  129. queue_con(con);
  130. }
  131. }
  132. /* socket has buffer space for writing */
  133. static void ceph_write_space(struct sock *sk)
  134. {
  135. struct ceph_connection *con =
  136. (struct ceph_connection *)sk->sk_user_data;
  137. /* only queue to workqueue if there is data we want to write,
  138. * and there is sufficient space in the socket buffer to accept
  139. * more data. clear SOCK_NOSPACE so that ceph_write_space()
  140. * doesn't get called again until try_write() fills the socket
  141. * buffer. See net/ipv4/tcp_input.c:tcp_check_space()
  142. * and net/core/stream.c:sk_stream_write_space().
  143. */
  144. if (test_bit(WRITE_PENDING, &con->state)) {
  145. if (sk_stream_wspace(sk) >= sk_stream_min_wspace(sk)) {
  146. dout("ceph_write_space %p queueing write work\n", con);
  147. clear_bit(SOCK_NOSPACE, &sk->sk_socket->flags);
  148. queue_con(con);
  149. }
  150. } else {
  151. dout("ceph_write_space %p nothing to write\n", con);
  152. }
  153. }
  154. /* socket's state has changed */
  155. static void ceph_state_change(struct sock *sk)
  156. {
  157. struct ceph_connection *con = sk->sk_user_data;
  158. dout("ceph_state_change %p state = %lu sk_state = %u\n",
  159. con, con->state, sk->sk_state);
  160. if (test_bit(CLOSED, &con->state))
  161. return;
  162. switch (sk->sk_state) {
  163. case TCP_CLOSE:
  164. dout("ceph_state_change TCP_CLOSE\n");
  165. case TCP_CLOSE_WAIT:
  166. dout("ceph_state_change TCP_CLOSE_WAIT\n");
  167. if (test_and_set_bit(SOCK_CLOSED, &con->state) == 0) {
  168. if (test_bit(CONNECTING, &con->state))
  169. con->error_msg = "connection failed";
  170. else
  171. con->error_msg = "socket closed";
  172. queue_con(con);
  173. }
  174. break;
  175. case TCP_ESTABLISHED:
  176. dout("ceph_state_change TCP_ESTABLISHED\n");
  177. queue_con(con);
  178. break;
  179. }
  180. }
  181. /*
  182. * set up socket callbacks
  183. */
  184. static void set_sock_callbacks(struct socket *sock,
  185. struct ceph_connection *con)
  186. {
  187. struct sock *sk = sock->sk;
  188. sk->sk_user_data = con;
  189. sk->sk_data_ready = ceph_data_ready;
  190. sk->sk_write_space = ceph_write_space;
  191. sk->sk_state_change = ceph_state_change;
  192. }
  193. /*
  194. * socket helpers
  195. */
  196. /*
  197. * initiate connection to a remote socket.
  198. */
  199. static struct socket *ceph_tcp_connect(struct ceph_connection *con)
  200. {
  201. struct sockaddr_storage *paddr = &con->peer_addr.in_addr;
  202. struct socket *sock;
  203. int ret;
  204. BUG_ON(con->sock);
  205. ret = sock_create_kern(con->peer_addr.in_addr.ss_family, SOCK_STREAM,
  206. IPPROTO_TCP, &sock);
  207. if (ret)
  208. return ERR_PTR(ret);
  209. sock->sk->sk_allocation = GFP_NOFS;
  210. #ifdef CONFIG_LOCKDEP
  211. lockdep_set_class(&sock->sk->sk_lock, &socket_class);
  212. #endif
  213. set_sock_callbacks(sock, con);
  214. dout("connect %s\n", ceph_pr_addr(&con->peer_addr.in_addr));
  215. ret = sock->ops->connect(sock, (struct sockaddr *)paddr, sizeof(*paddr),
  216. O_NONBLOCK);
  217. if (ret == -EINPROGRESS) {
  218. dout("connect %s EINPROGRESS sk_state = %u\n",
  219. ceph_pr_addr(&con->peer_addr.in_addr),
  220. sock->sk->sk_state);
  221. } else if (ret < 0) {
  222. pr_err("connect %s error %d\n",
  223. ceph_pr_addr(&con->peer_addr.in_addr), ret);
  224. sock_release(sock);
  225. con->error_msg = "connect error";
  226. return ERR_PTR(ret);
  227. }
  228. con->sock = sock;
  229. return sock;
  230. }
  231. static int ceph_tcp_recvmsg(struct socket *sock, void *buf, size_t len)
  232. {
  233. struct kvec iov = {buf, len};
  234. struct msghdr msg = { .msg_flags = MSG_DONTWAIT | MSG_NOSIGNAL };
  235. int r;
  236. r = kernel_recvmsg(sock, &msg, &iov, 1, len, msg.msg_flags);
  237. if (r == -EAGAIN)
  238. r = 0;
  239. return r;
  240. }
  241. /*
  242. * write something. @more is true if caller will be sending more data
  243. * shortly.
  244. */
  245. static int ceph_tcp_sendmsg(struct socket *sock, struct kvec *iov,
  246. size_t kvlen, size_t len, int more)
  247. {
  248. struct msghdr msg = { .msg_flags = MSG_DONTWAIT | MSG_NOSIGNAL };
  249. int r;
  250. if (more)
  251. msg.msg_flags |= MSG_MORE;
  252. else
  253. msg.msg_flags |= MSG_EOR; /* superfluous, but what the hell */
  254. r = kernel_sendmsg(sock, &msg, iov, kvlen, len);
  255. if (r == -EAGAIN)
  256. r = 0;
  257. return r;
  258. }
  259. /*
  260. * Shutdown/close the socket for the given connection.
  261. */
  262. static int con_close_socket(struct ceph_connection *con)
  263. {
  264. int rc;
  265. dout("con_close_socket on %p sock %p\n", con, con->sock);
  266. if (!con->sock)
  267. return 0;
  268. set_bit(SOCK_CLOSED, &con->state);
  269. rc = con->sock->ops->shutdown(con->sock, SHUT_RDWR);
  270. sock_release(con->sock);
  271. con->sock = NULL;
  272. clear_bit(SOCK_CLOSED, &con->state);
  273. return rc;
  274. }
  275. /*
  276. * Reset a connection. Discard all incoming and outgoing messages
  277. * and clear *_seq state.
  278. */
  279. static void ceph_msg_remove(struct ceph_msg *msg)
  280. {
  281. list_del_init(&msg->list_head);
  282. ceph_msg_put(msg);
  283. }
  284. static void ceph_msg_remove_list(struct list_head *head)
  285. {
  286. while (!list_empty(head)) {
  287. struct ceph_msg *msg = list_first_entry(head, struct ceph_msg,
  288. list_head);
  289. ceph_msg_remove(msg);
  290. }
  291. }
  292. static void reset_connection(struct ceph_connection *con)
  293. {
  294. /* reset connection, out_queue, msg_ and connect_seq */
  295. /* discard existing out_queue and msg_seq */
  296. ceph_msg_remove_list(&con->out_queue);
  297. ceph_msg_remove_list(&con->out_sent);
  298. if (con->in_msg) {
  299. ceph_msg_put(con->in_msg);
  300. con->in_msg = NULL;
  301. }
  302. con->connect_seq = 0;
  303. con->out_seq = 0;
  304. if (con->out_msg) {
  305. ceph_msg_put(con->out_msg);
  306. con->out_msg = NULL;
  307. }
  308. con->in_seq = 0;
  309. con->in_seq_acked = 0;
  310. }
  311. /*
  312. * mark a peer down. drop any open connections.
  313. */
  314. void ceph_con_close(struct ceph_connection *con)
  315. {
  316. dout("con_close %p peer %s\n", con,
  317. ceph_pr_addr(&con->peer_addr.in_addr));
  318. set_bit(CLOSED, &con->state); /* in case there's queued work */
  319. clear_bit(STANDBY, &con->state); /* avoid connect_seq bump */
  320. clear_bit(LOSSYTX, &con->state); /* so we retry next connect */
  321. clear_bit(KEEPALIVE_PENDING, &con->state);
  322. clear_bit(WRITE_PENDING, &con->state);
  323. mutex_lock(&con->mutex);
  324. reset_connection(con);
  325. con->peer_global_seq = 0;
  326. cancel_delayed_work(&con->work);
  327. mutex_unlock(&con->mutex);
  328. queue_con(con);
  329. }
  330. EXPORT_SYMBOL(ceph_con_close);
  331. /*
  332. * Reopen a closed connection, with a new peer address.
  333. */
  334. void ceph_con_open(struct ceph_connection *con, struct ceph_entity_addr *addr)
  335. {
  336. dout("con_open %p %s\n", con, ceph_pr_addr(&addr->in_addr));
  337. set_bit(OPENING, &con->state);
  338. clear_bit(CLOSED, &con->state);
  339. memcpy(&con->peer_addr, addr, sizeof(*addr));
  340. con->delay = 0; /* reset backoff memory */
  341. queue_con(con);
  342. }
  343. EXPORT_SYMBOL(ceph_con_open);
  344. /*
  345. * return true if this connection ever successfully opened
  346. */
  347. bool ceph_con_opened(struct ceph_connection *con)
  348. {
  349. return con->connect_seq > 0;
  350. }
  351. /*
  352. * generic get/put
  353. */
  354. struct ceph_connection *ceph_con_get(struct ceph_connection *con)
  355. {
  356. dout("con_get %p nref = %d -> %d\n", con,
  357. atomic_read(&con->nref), atomic_read(&con->nref) + 1);
  358. if (atomic_inc_not_zero(&con->nref))
  359. return con;
  360. return NULL;
  361. }
  362. void ceph_con_put(struct ceph_connection *con)
  363. {
  364. dout("con_put %p nref = %d -> %d\n", con,
  365. atomic_read(&con->nref), atomic_read(&con->nref) - 1);
  366. BUG_ON(atomic_read(&con->nref) == 0);
  367. if (atomic_dec_and_test(&con->nref)) {
  368. BUG_ON(con->sock);
  369. kfree(con);
  370. }
  371. }
  372. /*
  373. * initialize a new connection.
  374. */
  375. void ceph_con_init(struct ceph_messenger *msgr, struct ceph_connection *con)
  376. {
  377. dout("con_init %p\n", con);
  378. memset(con, 0, sizeof(*con));
  379. atomic_set(&con->nref, 1);
  380. con->msgr = msgr;
  381. mutex_init(&con->mutex);
  382. INIT_LIST_HEAD(&con->out_queue);
  383. INIT_LIST_HEAD(&con->out_sent);
  384. INIT_DELAYED_WORK(&con->work, con_work);
  385. }
  386. EXPORT_SYMBOL(ceph_con_init);
  387. /*
  388. * We maintain a global counter to order connection attempts. Get
  389. * a unique seq greater than @gt.
  390. */
  391. static u32 get_global_seq(struct ceph_messenger *msgr, u32 gt)
  392. {
  393. u32 ret;
  394. spin_lock(&msgr->global_seq_lock);
  395. if (msgr->global_seq < gt)
  396. msgr->global_seq = gt;
  397. ret = ++msgr->global_seq;
  398. spin_unlock(&msgr->global_seq_lock);
  399. return ret;
  400. }
  401. /*
  402. * Prepare footer for currently outgoing message, and finish things
  403. * off. Assumes out_kvec* are already valid.. we just add on to the end.
  404. */
  405. static void prepare_write_message_footer(struct ceph_connection *con, int v)
  406. {
  407. struct ceph_msg *m = con->out_msg;
  408. dout("prepare_write_message_footer %p\n", con);
  409. con->out_kvec_is_msg = true;
  410. con->out_kvec[v].iov_base = &m->footer;
  411. con->out_kvec[v].iov_len = sizeof(m->footer);
  412. con->out_kvec_bytes += sizeof(m->footer);
  413. con->out_kvec_left++;
  414. con->out_more = m->more_to_follow;
  415. con->out_msg_done = true;
  416. }
  417. /*
  418. * Prepare headers for the next outgoing message.
  419. */
  420. static void prepare_write_message(struct ceph_connection *con)
  421. {
  422. struct ceph_msg *m;
  423. int v = 0;
  424. con->out_kvec_bytes = 0;
  425. con->out_kvec_is_msg = true;
  426. con->out_msg_done = false;
  427. /* Sneak an ack in there first? If we can get it into the same
  428. * TCP packet that's a good thing. */
  429. if (con->in_seq > con->in_seq_acked) {
  430. con->in_seq_acked = con->in_seq;
  431. con->out_kvec[v].iov_base = &tag_ack;
  432. con->out_kvec[v++].iov_len = 1;
  433. con->out_temp_ack = cpu_to_le64(con->in_seq_acked);
  434. con->out_kvec[v].iov_base = &con->out_temp_ack;
  435. con->out_kvec[v++].iov_len = sizeof(con->out_temp_ack);
  436. con->out_kvec_bytes = 1 + sizeof(con->out_temp_ack);
  437. }
  438. m = list_first_entry(&con->out_queue,
  439. struct ceph_msg, list_head);
  440. con->out_msg = m;
  441. /* put message on sent list */
  442. ceph_msg_get(m);
  443. list_move_tail(&m->list_head, &con->out_sent);
  444. /*
  445. * only assign outgoing seq # if we haven't sent this message
  446. * yet. if it is requeued, resend with it's original seq.
  447. */
  448. if (m->needs_out_seq) {
  449. m->hdr.seq = cpu_to_le64(++con->out_seq);
  450. m->needs_out_seq = false;
  451. }
  452. dout("prepare_write_message %p seq %lld type %d len %d+%d+%d %d pgs\n",
  453. m, con->out_seq, le16_to_cpu(m->hdr.type),
  454. le32_to_cpu(m->hdr.front_len), le32_to_cpu(m->hdr.middle_len),
  455. le32_to_cpu(m->hdr.data_len),
  456. m->nr_pages);
  457. BUG_ON(le32_to_cpu(m->hdr.front_len) != m->front.iov_len);
  458. /* tag + hdr + front + middle */
  459. con->out_kvec[v].iov_base = &tag_msg;
  460. con->out_kvec[v++].iov_len = 1;
  461. con->out_kvec[v].iov_base = &m->hdr;
  462. con->out_kvec[v++].iov_len = sizeof(m->hdr);
  463. con->out_kvec[v++] = m->front;
  464. if (m->middle)
  465. con->out_kvec[v++] = m->middle->vec;
  466. con->out_kvec_left = v;
  467. con->out_kvec_bytes += 1 + sizeof(m->hdr) + m->front.iov_len +
  468. (m->middle ? m->middle->vec.iov_len : 0);
  469. con->out_kvec_cur = con->out_kvec;
  470. /* fill in crc (except data pages), footer */
  471. con->out_msg->hdr.crc =
  472. cpu_to_le32(crc32c(0, &m->hdr,
  473. sizeof(m->hdr) - sizeof(m->hdr.crc)));
  474. con->out_msg->footer.flags = CEPH_MSG_FOOTER_COMPLETE;
  475. con->out_msg->footer.front_crc =
  476. cpu_to_le32(crc32c(0, m->front.iov_base, m->front.iov_len));
  477. if (m->middle)
  478. con->out_msg->footer.middle_crc =
  479. cpu_to_le32(crc32c(0, m->middle->vec.iov_base,
  480. m->middle->vec.iov_len));
  481. else
  482. con->out_msg->footer.middle_crc = 0;
  483. con->out_msg->footer.data_crc = 0;
  484. dout("prepare_write_message front_crc %u data_crc %u\n",
  485. le32_to_cpu(con->out_msg->footer.front_crc),
  486. le32_to_cpu(con->out_msg->footer.middle_crc));
  487. /* is there a data payload? */
  488. if (le32_to_cpu(m->hdr.data_len) > 0) {
  489. /* initialize page iterator */
  490. con->out_msg_pos.page = 0;
  491. if (m->pages)
  492. con->out_msg_pos.page_pos = m->page_alignment;
  493. else
  494. con->out_msg_pos.page_pos = 0;
  495. con->out_msg_pos.data_pos = 0;
  496. con->out_msg_pos.did_page_crc = 0;
  497. con->out_more = 1; /* data + footer will follow */
  498. } else {
  499. /* no, queue up footer too and be done */
  500. prepare_write_message_footer(con, v);
  501. }
  502. set_bit(WRITE_PENDING, &con->state);
  503. }
  504. /*
  505. * Prepare an ack.
  506. */
  507. static void prepare_write_ack(struct ceph_connection *con)
  508. {
  509. dout("prepare_write_ack %p %llu -> %llu\n", con,
  510. con->in_seq_acked, con->in_seq);
  511. con->in_seq_acked = con->in_seq;
  512. con->out_kvec[0].iov_base = &tag_ack;
  513. con->out_kvec[0].iov_len = 1;
  514. con->out_temp_ack = cpu_to_le64(con->in_seq_acked);
  515. con->out_kvec[1].iov_base = &con->out_temp_ack;
  516. con->out_kvec[1].iov_len = sizeof(con->out_temp_ack);
  517. con->out_kvec_left = 2;
  518. con->out_kvec_bytes = 1 + sizeof(con->out_temp_ack);
  519. con->out_kvec_cur = con->out_kvec;
  520. con->out_more = 1; /* more will follow.. eventually.. */
  521. set_bit(WRITE_PENDING, &con->state);
  522. }
  523. /*
  524. * Prepare to write keepalive byte.
  525. */
  526. static void prepare_write_keepalive(struct ceph_connection *con)
  527. {
  528. dout("prepare_write_keepalive %p\n", con);
  529. con->out_kvec[0].iov_base = &tag_keepalive;
  530. con->out_kvec[0].iov_len = 1;
  531. con->out_kvec_left = 1;
  532. con->out_kvec_bytes = 1;
  533. con->out_kvec_cur = con->out_kvec;
  534. set_bit(WRITE_PENDING, &con->state);
  535. }
  536. /*
  537. * Connection negotiation.
  538. */
  539. static int prepare_connect_authorizer(struct ceph_connection *con)
  540. {
  541. void *auth_buf;
  542. int auth_len = 0;
  543. int auth_protocol = 0;
  544. mutex_unlock(&con->mutex);
  545. if (con->ops->get_authorizer)
  546. con->ops->get_authorizer(con, &auth_buf, &auth_len,
  547. &auth_protocol, &con->auth_reply_buf,
  548. &con->auth_reply_buf_len,
  549. con->auth_retry);
  550. mutex_lock(&con->mutex);
  551. if (test_bit(CLOSED, &con->state) ||
  552. test_bit(OPENING, &con->state))
  553. return -EAGAIN;
  554. con->out_connect.authorizer_protocol = cpu_to_le32(auth_protocol);
  555. con->out_connect.authorizer_len = cpu_to_le32(auth_len);
  556. if (auth_len) {
  557. con->out_kvec[con->out_kvec_left].iov_base = auth_buf;
  558. con->out_kvec[con->out_kvec_left].iov_len = auth_len;
  559. con->out_kvec_left++;
  560. con->out_kvec_bytes += auth_len;
  561. }
  562. return 0;
  563. }
  564. /*
  565. * We connected to a peer and are saying hello.
  566. */
  567. static void prepare_write_banner(struct ceph_messenger *msgr,
  568. struct ceph_connection *con)
  569. {
  570. int len = strlen(CEPH_BANNER);
  571. con->out_kvec[0].iov_base = CEPH_BANNER;
  572. con->out_kvec[0].iov_len = len;
  573. con->out_kvec[1].iov_base = &msgr->my_enc_addr;
  574. con->out_kvec[1].iov_len = sizeof(msgr->my_enc_addr);
  575. con->out_kvec_left = 2;
  576. con->out_kvec_bytes = len + sizeof(msgr->my_enc_addr);
  577. con->out_kvec_cur = con->out_kvec;
  578. con->out_more = 0;
  579. set_bit(WRITE_PENDING, &con->state);
  580. }
  581. static int prepare_write_connect(struct ceph_messenger *msgr,
  582. struct ceph_connection *con,
  583. int after_banner)
  584. {
  585. unsigned global_seq = get_global_seq(con->msgr, 0);
  586. int proto;
  587. switch (con->peer_name.type) {
  588. case CEPH_ENTITY_TYPE_MON:
  589. proto = CEPH_MONC_PROTOCOL;
  590. break;
  591. case CEPH_ENTITY_TYPE_OSD:
  592. proto = CEPH_OSDC_PROTOCOL;
  593. break;
  594. case CEPH_ENTITY_TYPE_MDS:
  595. proto = CEPH_MDSC_PROTOCOL;
  596. break;
  597. default:
  598. BUG();
  599. }
  600. dout("prepare_write_connect %p cseq=%d gseq=%d proto=%d\n", con,
  601. con->connect_seq, global_seq, proto);
  602. con->out_connect.features = cpu_to_le64(msgr->supported_features);
  603. con->out_connect.host_type = cpu_to_le32(CEPH_ENTITY_TYPE_CLIENT);
  604. con->out_connect.connect_seq = cpu_to_le32(con->connect_seq);
  605. con->out_connect.global_seq = cpu_to_le32(global_seq);
  606. con->out_connect.protocol_version = cpu_to_le32(proto);
  607. con->out_connect.flags = 0;
  608. if (!after_banner) {
  609. con->out_kvec_left = 0;
  610. con->out_kvec_bytes = 0;
  611. }
  612. con->out_kvec[con->out_kvec_left].iov_base = &con->out_connect;
  613. con->out_kvec[con->out_kvec_left].iov_len = sizeof(con->out_connect);
  614. con->out_kvec_left++;
  615. con->out_kvec_bytes += sizeof(con->out_connect);
  616. con->out_kvec_cur = con->out_kvec;
  617. con->out_more = 0;
  618. set_bit(WRITE_PENDING, &con->state);
  619. return prepare_connect_authorizer(con);
  620. }
  621. /*
  622. * write as much of pending kvecs to the socket as we can.
  623. * 1 -> done
  624. * 0 -> socket full, but more to do
  625. * <0 -> error
  626. */
  627. static int write_partial_kvec(struct ceph_connection *con)
  628. {
  629. int ret;
  630. dout("write_partial_kvec %p %d left\n", con, con->out_kvec_bytes);
  631. while (con->out_kvec_bytes > 0) {
  632. ret = ceph_tcp_sendmsg(con->sock, con->out_kvec_cur,
  633. con->out_kvec_left, con->out_kvec_bytes,
  634. con->out_more);
  635. if (ret <= 0)
  636. goto out;
  637. con->out_kvec_bytes -= ret;
  638. if (con->out_kvec_bytes == 0)
  639. break; /* done */
  640. while (ret > 0) {
  641. if (ret >= con->out_kvec_cur->iov_len) {
  642. ret -= con->out_kvec_cur->iov_len;
  643. con->out_kvec_cur++;
  644. con->out_kvec_left--;
  645. } else {
  646. con->out_kvec_cur->iov_len -= ret;
  647. con->out_kvec_cur->iov_base += ret;
  648. ret = 0;
  649. break;
  650. }
  651. }
  652. }
  653. con->out_kvec_left = 0;
  654. con->out_kvec_is_msg = false;
  655. ret = 1;
  656. out:
  657. dout("write_partial_kvec %p %d left in %d kvecs ret = %d\n", con,
  658. con->out_kvec_bytes, con->out_kvec_left, ret);
  659. return ret; /* done! */
  660. }
  661. #ifdef CONFIG_BLOCK
  662. static void init_bio_iter(struct bio *bio, struct bio **iter, int *seg)
  663. {
  664. if (!bio) {
  665. *iter = NULL;
  666. *seg = 0;
  667. return;
  668. }
  669. *iter = bio;
  670. *seg = bio->bi_idx;
  671. }
  672. static void iter_bio_next(struct bio **bio_iter, int *seg)
  673. {
  674. if (*bio_iter == NULL)
  675. return;
  676. BUG_ON(*seg >= (*bio_iter)->bi_vcnt);
  677. (*seg)++;
  678. if (*seg == (*bio_iter)->bi_vcnt)
  679. init_bio_iter((*bio_iter)->bi_next, bio_iter, seg);
  680. }
  681. #endif
  682. /*
  683. * Write as much message data payload as we can. If we finish, queue
  684. * up the footer.
  685. * 1 -> done, footer is now queued in out_kvec[].
  686. * 0 -> socket full, but more to do
  687. * <0 -> error
  688. */
  689. static int write_partial_msg_pages(struct ceph_connection *con)
  690. {
  691. struct ceph_msg *msg = con->out_msg;
  692. unsigned data_len = le32_to_cpu(msg->hdr.data_len);
  693. size_t len;
  694. int crc = con->msgr->nocrc;
  695. int ret;
  696. int total_max_write;
  697. int in_trail = 0;
  698. size_t trail_len = (msg->trail ? msg->trail->length : 0);
  699. dout("write_partial_msg_pages %p msg %p page %d/%d offset %d\n",
  700. con, con->out_msg, con->out_msg_pos.page, con->out_msg->nr_pages,
  701. con->out_msg_pos.page_pos);
  702. #ifdef CONFIG_BLOCK
  703. if (msg->bio && !msg->bio_iter)
  704. init_bio_iter(msg->bio, &msg->bio_iter, &msg->bio_seg);
  705. #endif
  706. while (data_len > con->out_msg_pos.data_pos) {
  707. struct page *page = NULL;
  708. void *kaddr = NULL;
  709. int max_write = PAGE_SIZE;
  710. int page_shift = 0;
  711. total_max_write = data_len - trail_len -
  712. con->out_msg_pos.data_pos;
  713. /*
  714. * if we are calculating the data crc (the default), we need
  715. * to map the page. if our pages[] has been revoked, use the
  716. * zero page.
  717. */
  718. /* have we reached the trail part of the data? */
  719. if (con->out_msg_pos.data_pos >= data_len - trail_len) {
  720. in_trail = 1;
  721. total_max_write = data_len - con->out_msg_pos.data_pos;
  722. page = list_first_entry(&msg->trail->head,
  723. struct page, lru);
  724. if (crc)
  725. kaddr = kmap(page);
  726. max_write = PAGE_SIZE;
  727. } else if (msg->pages) {
  728. page = msg->pages[con->out_msg_pos.page];
  729. if (crc)
  730. kaddr = kmap(page);
  731. } else if (msg->pagelist) {
  732. page = list_first_entry(&msg->pagelist->head,
  733. struct page, lru);
  734. if (crc)
  735. kaddr = kmap(page);
  736. #ifdef CONFIG_BLOCK
  737. } else if (msg->bio) {
  738. struct bio_vec *bv;
  739. bv = bio_iovec_idx(msg->bio_iter, msg->bio_seg);
  740. page = bv->bv_page;
  741. page_shift = bv->bv_offset;
  742. if (crc)
  743. kaddr = kmap(page) + page_shift;
  744. max_write = bv->bv_len;
  745. #endif
  746. } else {
  747. page = zero_page;
  748. if (crc)
  749. kaddr = zero_page_address;
  750. }
  751. len = min_t(int, max_write - con->out_msg_pos.page_pos,
  752. total_max_write);
  753. if (crc && !con->out_msg_pos.did_page_crc) {
  754. void *base = kaddr + con->out_msg_pos.page_pos;
  755. u32 tmpcrc = le32_to_cpu(con->out_msg->footer.data_crc);
  756. BUG_ON(kaddr == NULL);
  757. con->out_msg->footer.data_crc =
  758. cpu_to_le32(crc32c(tmpcrc, base, len));
  759. con->out_msg_pos.did_page_crc = 1;
  760. }
  761. ret = kernel_sendpage(con->sock, page,
  762. con->out_msg_pos.page_pos + page_shift,
  763. len,
  764. MSG_DONTWAIT | MSG_NOSIGNAL |
  765. MSG_MORE);
  766. if (crc &&
  767. (msg->pages || msg->pagelist || msg->bio || in_trail))
  768. kunmap(page);
  769. if (ret == -EAGAIN)
  770. ret = 0;
  771. if (ret <= 0)
  772. goto out;
  773. con->out_msg_pos.data_pos += ret;
  774. con->out_msg_pos.page_pos += ret;
  775. if (ret == len) {
  776. con->out_msg_pos.page_pos = 0;
  777. con->out_msg_pos.page++;
  778. con->out_msg_pos.did_page_crc = 0;
  779. if (in_trail)
  780. list_move_tail(&page->lru,
  781. &msg->trail->head);
  782. else if (msg->pagelist)
  783. list_move_tail(&page->lru,
  784. &msg->pagelist->head);
  785. #ifdef CONFIG_BLOCK
  786. else if (msg->bio)
  787. iter_bio_next(&msg->bio_iter, &msg->bio_seg);
  788. #endif
  789. }
  790. }
  791. dout("write_partial_msg_pages %p msg %p done\n", con, msg);
  792. /* prepare and queue up footer, too */
  793. if (!crc)
  794. con->out_msg->footer.flags |= CEPH_MSG_FOOTER_NOCRC;
  795. con->out_kvec_bytes = 0;
  796. con->out_kvec_left = 0;
  797. con->out_kvec_cur = con->out_kvec;
  798. prepare_write_message_footer(con, 0);
  799. ret = 1;
  800. out:
  801. return ret;
  802. }
  803. /*
  804. * write some zeros
  805. */
  806. static int write_partial_skip(struct ceph_connection *con)
  807. {
  808. int ret;
  809. while (con->out_skip > 0) {
  810. struct kvec iov = {
  811. .iov_base = zero_page_address,
  812. .iov_len = min(con->out_skip, (int)PAGE_CACHE_SIZE)
  813. };
  814. ret = ceph_tcp_sendmsg(con->sock, &iov, 1, iov.iov_len, 1);
  815. if (ret <= 0)
  816. goto out;
  817. con->out_skip -= ret;
  818. }
  819. ret = 1;
  820. out:
  821. return ret;
  822. }
  823. /*
  824. * Prepare to read connection handshake, or an ack.
  825. */
  826. static void prepare_read_banner(struct ceph_connection *con)
  827. {
  828. dout("prepare_read_banner %p\n", con);
  829. con->in_base_pos = 0;
  830. }
  831. static void prepare_read_connect(struct ceph_connection *con)
  832. {
  833. dout("prepare_read_connect %p\n", con);
  834. con->in_base_pos = 0;
  835. }
  836. static void prepare_read_ack(struct ceph_connection *con)
  837. {
  838. dout("prepare_read_ack %p\n", con);
  839. con->in_base_pos = 0;
  840. }
  841. static void prepare_read_tag(struct ceph_connection *con)
  842. {
  843. dout("prepare_read_tag %p\n", con);
  844. con->in_base_pos = 0;
  845. con->in_tag = CEPH_MSGR_TAG_READY;
  846. }
  847. /*
  848. * Prepare to read a message.
  849. */
  850. static int prepare_read_message(struct ceph_connection *con)
  851. {
  852. dout("prepare_read_message %p\n", con);
  853. BUG_ON(con->in_msg != NULL);
  854. con->in_base_pos = 0;
  855. con->in_front_crc = con->in_middle_crc = con->in_data_crc = 0;
  856. return 0;
  857. }
  858. static int read_partial(struct ceph_connection *con,
  859. int *to, int size, void *object)
  860. {
  861. *to += size;
  862. while (con->in_base_pos < *to) {
  863. int left = *to - con->in_base_pos;
  864. int have = size - left;
  865. int ret = ceph_tcp_recvmsg(con->sock, object + have, left);
  866. if (ret <= 0)
  867. return ret;
  868. con->in_base_pos += ret;
  869. }
  870. return 1;
  871. }
  872. /*
  873. * Read all or part of the connect-side handshake on a new connection
  874. */
  875. static int read_partial_banner(struct ceph_connection *con)
  876. {
  877. int ret, to = 0;
  878. dout("read_partial_banner %p at %d\n", con, con->in_base_pos);
  879. /* peer's banner */
  880. ret = read_partial(con, &to, strlen(CEPH_BANNER), con->in_banner);
  881. if (ret <= 0)
  882. goto out;
  883. ret = read_partial(con, &to, sizeof(con->actual_peer_addr),
  884. &con->actual_peer_addr);
  885. if (ret <= 0)
  886. goto out;
  887. ret = read_partial(con, &to, sizeof(con->peer_addr_for_me),
  888. &con->peer_addr_for_me);
  889. if (ret <= 0)
  890. goto out;
  891. out:
  892. return ret;
  893. }
  894. static int read_partial_connect(struct ceph_connection *con)
  895. {
  896. int ret, to = 0;
  897. dout("read_partial_connect %p at %d\n", con, con->in_base_pos);
  898. ret = read_partial(con, &to, sizeof(con->in_reply), &con->in_reply);
  899. if (ret <= 0)
  900. goto out;
  901. ret = read_partial(con, &to, le32_to_cpu(con->in_reply.authorizer_len),
  902. con->auth_reply_buf);
  903. if (ret <= 0)
  904. goto out;
  905. dout("read_partial_connect %p tag %d, con_seq = %u, g_seq = %u\n",
  906. con, (int)con->in_reply.tag,
  907. le32_to_cpu(con->in_reply.connect_seq),
  908. le32_to_cpu(con->in_reply.global_seq));
  909. out:
  910. return ret;
  911. }
  912. /*
  913. * Verify the hello banner looks okay.
  914. */
  915. static int verify_hello(struct ceph_connection *con)
  916. {
  917. if (memcmp(con->in_banner, CEPH_BANNER, strlen(CEPH_BANNER))) {
  918. pr_err("connect to %s got bad banner\n",
  919. ceph_pr_addr(&con->peer_addr.in_addr));
  920. con->error_msg = "protocol error, bad banner";
  921. return -1;
  922. }
  923. return 0;
  924. }
  925. static bool addr_is_blank(struct sockaddr_storage *ss)
  926. {
  927. switch (ss->ss_family) {
  928. case AF_INET:
  929. return ((struct sockaddr_in *)ss)->sin_addr.s_addr == 0;
  930. case AF_INET6:
  931. return
  932. ((struct sockaddr_in6 *)ss)->sin6_addr.s6_addr32[0] == 0 &&
  933. ((struct sockaddr_in6 *)ss)->sin6_addr.s6_addr32[1] == 0 &&
  934. ((struct sockaddr_in6 *)ss)->sin6_addr.s6_addr32[2] == 0 &&
  935. ((struct sockaddr_in6 *)ss)->sin6_addr.s6_addr32[3] == 0;
  936. }
  937. return false;
  938. }
  939. static int addr_port(struct sockaddr_storage *ss)
  940. {
  941. switch (ss->ss_family) {
  942. case AF_INET:
  943. return ntohs(((struct sockaddr_in *)ss)->sin_port);
  944. case AF_INET6:
  945. return ntohs(((struct sockaddr_in6 *)ss)->sin6_port);
  946. }
  947. return 0;
  948. }
  949. static void addr_set_port(struct sockaddr_storage *ss, int p)
  950. {
  951. switch (ss->ss_family) {
  952. case AF_INET:
  953. ((struct sockaddr_in *)ss)->sin_port = htons(p);
  954. break;
  955. case AF_INET6:
  956. ((struct sockaddr_in6 *)ss)->sin6_port = htons(p);
  957. break;
  958. }
  959. }
  960. /*
  961. * Unlike other *_pton function semantics, zero indicates success.
  962. */
  963. static int ceph_pton(const char *str, size_t len, struct sockaddr_storage *ss,
  964. char delim, const char **ipend)
  965. {
  966. struct sockaddr_in *in4 = (void *)ss;
  967. struct sockaddr_in6 *in6 = (void *)ss;
  968. memset(ss, 0, sizeof(*ss));
  969. if (in4_pton(str, len, (u8 *)&in4->sin_addr.s_addr, delim, ipend)) {
  970. ss->ss_family = AF_INET;
  971. return 0;
  972. }
  973. if (in6_pton(str, len, (u8 *)&in6->sin6_addr.s6_addr, delim, ipend)) {
  974. ss->ss_family = AF_INET6;
  975. return 0;
  976. }
  977. return -EINVAL;
  978. }
  979. /*
  980. * Extract hostname string and resolve using kernel DNS facility.
  981. */
  982. #ifdef CONFIG_CEPH_LIB_USE_DNS_RESOLVER
  983. static int ceph_dns_resolve_name(const char *name, size_t namelen,
  984. struct sockaddr_storage *ss, char delim, const char **ipend)
  985. {
  986. const char *end, *delim_p;
  987. char *colon_p, *ip_addr = NULL;
  988. int ip_len, ret;
  989. /*
  990. * The end of the hostname occurs immediately preceding the delimiter or
  991. * the port marker (':') where the delimiter takes precedence.
  992. */
  993. delim_p = memchr(name, delim, namelen);
  994. colon_p = memchr(name, ':', namelen);
  995. if (delim_p && colon_p)
  996. end = delim_p < colon_p ? delim_p : colon_p;
  997. else if (!delim_p && colon_p)
  998. end = colon_p;
  999. else {
  1000. end = delim_p;
  1001. if (!end) /* case: hostname:/ */
  1002. end = name + namelen;
  1003. }
  1004. if (end <= name)
  1005. return -EINVAL;
  1006. /* do dns_resolve upcall */
  1007. ip_len = dns_query(NULL, name, end - name, NULL, &ip_addr, NULL);
  1008. if (ip_len > 0)
  1009. ret = ceph_pton(ip_addr, ip_len, ss, -1, NULL);
  1010. else
  1011. ret = -ESRCH;
  1012. kfree(ip_addr);
  1013. *ipend = end;
  1014. pr_info("resolve '%.*s' (ret=%d): %s\n", (int)(end - name), name,
  1015. ret, ret ? "failed" : ceph_pr_addr(ss));
  1016. return ret;
  1017. }
  1018. #else
  1019. static inline int ceph_dns_resolve_name(const char *name, size_t namelen,
  1020. struct sockaddr_storage *ss, char delim, const char **ipend)
  1021. {
  1022. return -EINVAL;
  1023. }
  1024. #endif
  1025. /*
  1026. * Parse a server name (IP or hostname). If a valid IP address is not found
  1027. * then try to extract a hostname to resolve using userspace DNS upcall.
  1028. */
  1029. static int ceph_parse_server_name(const char *name, size_t namelen,
  1030. struct sockaddr_storage *ss, char delim, const char **ipend)
  1031. {
  1032. int ret;
  1033. ret = ceph_pton(name, namelen, ss, delim, ipend);
  1034. if (ret)
  1035. ret = ceph_dns_resolve_name(name, namelen, ss, delim, ipend);
  1036. return ret;
  1037. }
  1038. /*
  1039. * Parse an ip[:port] list into an addr array. Use the default
  1040. * monitor port if a port isn't specified.
  1041. */
  1042. int ceph_parse_ips(const char *c, const char *end,
  1043. struct ceph_entity_addr *addr,
  1044. int max_count, int *count)
  1045. {
  1046. int i, ret = -EINVAL;
  1047. const char *p = c;
  1048. dout("parse_ips on '%.*s'\n", (int)(end-c), c);
  1049. for (i = 0; i < max_count; i++) {
  1050. const char *ipend;
  1051. struct sockaddr_storage *ss = &addr[i].in_addr;
  1052. int port;
  1053. char delim = ',';
  1054. if (*p == '[') {
  1055. delim = ']';
  1056. p++;
  1057. }
  1058. ret = ceph_parse_server_name(p, end - p, ss, delim, &ipend);
  1059. if (ret)
  1060. goto bad;
  1061. ret = -EINVAL;
  1062. p = ipend;
  1063. if (delim == ']') {
  1064. if (*p != ']') {
  1065. dout("missing matching ']'\n");
  1066. goto bad;
  1067. }
  1068. p++;
  1069. }
  1070. /* port? */
  1071. if (p < end && *p == ':') {
  1072. port = 0;
  1073. p++;
  1074. while (p < end && *p >= '0' && *p <= '9') {
  1075. port = (port * 10) + (*p - '0');
  1076. p++;
  1077. }
  1078. if (port > 65535 || port == 0)
  1079. goto bad;
  1080. } else {
  1081. port = CEPH_MON_PORT;
  1082. }
  1083. addr_set_port(ss, port);
  1084. dout("parse_ips got %s\n", ceph_pr_addr(ss));
  1085. if (p == end)
  1086. break;
  1087. if (*p != ',')
  1088. goto bad;
  1089. p++;
  1090. }
  1091. if (p != end)
  1092. goto bad;
  1093. if (count)
  1094. *count = i + 1;
  1095. return 0;
  1096. bad:
  1097. pr_err("parse_ips bad ip '%.*s'\n", (int)(end - c), c);
  1098. return ret;
  1099. }
  1100. EXPORT_SYMBOL(ceph_parse_ips);
  1101. static int process_banner(struct ceph_connection *con)
  1102. {
  1103. dout("process_banner on %p\n", con);
  1104. if (verify_hello(con) < 0)
  1105. return -1;
  1106. ceph_decode_addr(&con->actual_peer_addr);
  1107. ceph_decode_addr(&con->peer_addr_for_me);
  1108. /*
  1109. * Make sure the other end is who we wanted. note that the other
  1110. * end may not yet know their ip address, so if it's 0.0.0.0, give
  1111. * them the benefit of the doubt.
  1112. */
  1113. if (memcmp(&con->peer_addr, &con->actual_peer_addr,
  1114. sizeof(con->peer_addr)) != 0 &&
  1115. !(addr_is_blank(&con->actual_peer_addr.in_addr) &&
  1116. con->actual_peer_addr.nonce == con->peer_addr.nonce)) {
  1117. pr_warning("wrong peer, want %s/%d, got %s/%d\n",
  1118. ceph_pr_addr(&con->peer_addr.in_addr),
  1119. (int)le32_to_cpu(con->peer_addr.nonce),
  1120. ceph_pr_addr(&con->actual_peer_addr.in_addr),
  1121. (int)le32_to_cpu(con->actual_peer_addr.nonce));
  1122. con->error_msg = "wrong peer at address";
  1123. return -1;
  1124. }
  1125. /*
  1126. * did we learn our address?
  1127. */
  1128. if (addr_is_blank(&con->msgr->inst.addr.in_addr)) {
  1129. int port = addr_port(&con->msgr->inst.addr.in_addr);
  1130. memcpy(&con->msgr->inst.addr.in_addr,
  1131. &con->peer_addr_for_me.in_addr,
  1132. sizeof(con->peer_addr_for_me.in_addr));
  1133. addr_set_port(&con->msgr->inst.addr.in_addr, port);
  1134. encode_my_addr(con->msgr);
  1135. dout("process_banner learned my addr is %s\n",
  1136. ceph_pr_addr(&con->msgr->inst.addr.in_addr));
  1137. }
  1138. set_bit(NEGOTIATING, &con->state);
  1139. prepare_read_connect(con);
  1140. return 0;
  1141. }
  1142. static void fail_protocol(struct ceph_connection *con)
  1143. {
  1144. reset_connection(con);
  1145. set_bit(CLOSED, &con->state); /* in case there's queued work */
  1146. mutex_unlock(&con->mutex);
  1147. if (con->ops->bad_proto)
  1148. con->ops->bad_proto(con);
  1149. mutex_lock(&con->mutex);
  1150. }
  1151. static int process_connect(struct ceph_connection *con)
  1152. {
  1153. u64 sup_feat = con->msgr->supported_features;
  1154. u64 req_feat = con->msgr->required_features;
  1155. u64 server_feat = le64_to_cpu(con->in_reply.features);
  1156. int ret;
  1157. dout("process_connect on %p tag %d\n", con, (int)con->in_tag);
  1158. switch (con->in_reply.tag) {
  1159. case CEPH_MSGR_TAG_FEATURES:
  1160. pr_err("%s%lld %s feature set mismatch,"
  1161. " my %llx < server's %llx, missing %llx\n",
  1162. ENTITY_NAME(con->peer_name),
  1163. ceph_pr_addr(&con->peer_addr.in_addr),
  1164. sup_feat, server_feat, server_feat & ~sup_feat);
  1165. con->error_msg = "missing required protocol features";
  1166. fail_protocol(con);
  1167. return -1;
  1168. case CEPH_MSGR_TAG_BADPROTOVER:
  1169. pr_err("%s%lld %s protocol version mismatch,"
  1170. " my %d != server's %d\n",
  1171. ENTITY_NAME(con->peer_name),
  1172. ceph_pr_addr(&con->peer_addr.in_addr),
  1173. le32_to_cpu(con->out_connect.protocol_version),
  1174. le32_to_cpu(con->in_reply.protocol_version));
  1175. con->error_msg = "protocol version mismatch";
  1176. fail_protocol(con);
  1177. return -1;
  1178. case CEPH_MSGR_TAG_BADAUTHORIZER:
  1179. con->auth_retry++;
  1180. dout("process_connect %p got BADAUTHORIZER attempt %d\n", con,
  1181. con->auth_retry);
  1182. if (con->auth_retry == 2) {
  1183. con->error_msg = "connect authorization failure";
  1184. return -1;
  1185. }
  1186. con->auth_retry = 1;
  1187. ret = prepare_write_connect(con->msgr, con, 0);
  1188. if (ret < 0)
  1189. return ret;
  1190. prepare_read_connect(con);
  1191. break;
  1192. case CEPH_MSGR_TAG_RESETSESSION:
  1193. /*
  1194. * If we connected with a large connect_seq but the peer
  1195. * has no record of a session with us (no connection, or
  1196. * connect_seq == 0), they will send RESETSESION to indicate
  1197. * that they must have reset their session, and may have
  1198. * dropped messages.
  1199. */
  1200. dout("process_connect got RESET peer seq %u\n",
  1201. le32_to_cpu(con->in_connect.connect_seq));
  1202. pr_err("%s%lld %s connection reset\n",
  1203. ENTITY_NAME(con->peer_name),
  1204. ceph_pr_addr(&con->peer_addr.in_addr));
  1205. reset_connection(con);
  1206. prepare_write_connect(con->msgr, con, 0);
  1207. prepare_read_connect(con);
  1208. /* Tell ceph about it. */
  1209. mutex_unlock(&con->mutex);
  1210. pr_info("reset on %s%lld\n", ENTITY_NAME(con->peer_name));
  1211. if (con->ops->peer_reset)
  1212. con->ops->peer_reset(con);
  1213. mutex_lock(&con->mutex);
  1214. if (test_bit(CLOSED, &con->state) ||
  1215. test_bit(OPENING, &con->state))
  1216. return -EAGAIN;
  1217. break;
  1218. case CEPH_MSGR_TAG_RETRY_SESSION:
  1219. /*
  1220. * If we sent a smaller connect_seq than the peer has, try
  1221. * again with a larger value.
  1222. */
  1223. dout("process_connect got RETRY my seq = %u, peer_seq = %u\n",
  1224. le32_to_cpu(con->out_connect.connect_seq),
  1225. le32_to_cpu(con->in_connect.connect_seq));
  1226. con->connect_seq = le32_to_cpu(con->in_connect.connect_seq);
  1227. prepare_write_connect(con->msgr, con, 0);
  1228. prepare_read_connect(con);
  1229. break;
  1230. case CEPH_MSGR_TAG_RETRY_GLOBAL:
  1231. /*
  1232. * If we sent a smaller global_seq than the peer has, try
  1233. * again with a larger value.
  1234. */
  1235. dout("process_connect got RETRY_GLOBAL my %u peer_gseq %u\n",
  1236. con->peer_global_seq,
  1237. le32_to_cpu(con->in_connect.global_seq));
  1238. get_global_seq(con->msgr,
  1239. le32_to_cpu(con->in_connect.global_seq));
  1240. prepare_write_connect(con->msgr, con, 0);
  1241. prepare_read_connect(con);
  1242. break;
  1243. case CEPH_MSGR_TAG_READY:
  1244. if (req_feat & ~server_feat) {
  1245. pr_err("%s%lld %s protocol feature mismatch,"
  1246. " my required %llx > server's %llx, need %llx\n",
  1247. ENTITY_NAME(con->peer_name),
  1248. ceph_pr_addr(&con->peer_addr.in_addr),
  1249. req_feat, server_feat, req_feat & ~server_feat);
  1250. con->error_msg = "missing required protocol features";
  1251. fail_protocol(con);
  1252. return -1;
  1253. }
  1254. clear_bit(CONNECTING, &con->state);
  1255. con->peer_global_seq = le32_to_cpu(con->in_reply.global_seq);
  1256. con->connect_seq++;
  1257. con->peer_features = server_feat;
  1258. dout("process_connect got READY gseq %d cseq %d (%d)\n",
  1259. con->peer_global_seq,
  1260. le32_to_cpu(con->in_reply.connect_seq),
  1261. con->connect_seq);
  1262. WARN_ON(con->connect_seq !=
  1263. le32_to_cpu(con->in_reply.connect_seq));
  1264. if (con->in_reply.flags & CEPH_MSG_CONNECT_LOSSY)
  1265. set_bit(LOSSYTX, &con->state);
  1266. prepare_read_tag(con);
  1267. break;
  1268. case CEPH_MSGR_TAG_WAIT:
  1269. /*
  1270. * If there is a connection race (we are opening
  1271. * connections to each other), one of us may just have
  1272. * to WAIT. This shouldn't happen if we are the
  1273. * client.
  1274. */
  1275. pr_err("process_connect got WAIT as client\n");
  1276. con->error_msg = "protocol error, got WAIT as client";
  1277. return -1;
  1278. default:
  1279. pr_err("connect protocol error, will retry\n");
  1280. con->error_msg = "protocol error, garbage tag during connect";
  1281. return -1;
  1282. }
  1283. return 0;
  1284. }
  1285. /*
  1286. * read (part of) an ack
  1287. */
  1288. static int read_partial_ack(struct ceph_connection *con)
  1289. {
  1290. int to = 0;
  1291. return read_partial(con, &to, sizeof(con->in_temp_ack),
  1292. &con->in_temp_ack);
  1293. }
  1294. /*
  1295. * We can finally discard anything that's been acked.
  1296. */
  1297. static void process_ack(struct ceph_connection *con)
  1298. {
  1299. struct ceph_msg *m;
  1300. u64 ack = le64_to_cpu(con->in_temp_ack);
  1301. u64 seq;
  1302. while (!list_empty(&con->out_sent)) {
  1303. m = list_first_entry(&con->out_sent, struct ceph_msg,
  1304. list_head);
  1305. seq = le64_to_cpu(m->hdr.seq);
  1306. if (seq > ack)
  1307. break;
  1308. dout("got ack for seq %llu type %d at %p\n", seq,
  1309. le16_to_cpu(m->hdr.type), m);
  1310. m->ack_stamp = jiffies;
  1311. ceph_msg_remove(m);
  1312. }
  1313. prepare_read_tag(con);
  1314. }
  1315. static int read_partial_message_section(struct ceph_connection *con,
  1316. struct kvec *section,
  1317. unsigned int sec_len, u32 *crc)
  1318. {
  1319. int ret, left;
  1320. BUG_ON(!section);
  1321. while (section->iov_len < sec_len) {
  1322. BUG_ON(section->iov_base == NULL);
  1323. left = sec_len - section->iov_len;
  1324. ret = ceph_tcp_recvmsg(con->sock, (char *)section->iov_base +
  1325. section->iov_len, left);
  1326. if (ret <= 0)
  1327. return ret;
  1328. section->iov_len += ret;
  1329. if (section->iov_len == sec_len)
  1330. *crc = crc32c(0, section->iov_base,
  1331. section->iov_len);
  1332. }
  1333. return 1;
  1334. }
  1335. static struct ceph_msg *ceph_alloc_msg(struct ceph_connection *con,
  1336. struct ceph_msg_header *hdr,
  1337. int *skip);
  1338. static int read_partial_message_pages(struct ceph_connection *con,
  1339. struct page **pages,
  1340. unsigned data_len, int datacrc)
  1341. {
  1342. void *p;
  1343. int ret;
  1344. int left;
  1345. left = min((int)(data_len - con->in_msg_pos.data_pos),
  1346. (int)(PAGE_SIZE - con->in_msg_pos.page_pos));
  1347. /* (page) data */
  1348. BUG_ON(pages == NULL);
  1349. p = kmap(pages[con->in_msg_pos.page]);
  1350. ret = ceph_tcp_recvmsg(con->sock, p + con->in_msg_pos.page_pos,
  1351. left);
  1352. if (ret > 0 && datacrc)
  1353. con->in_data_crc =
  1354. crc32c(con->in_data_crc,
  1355. p + con->in_msg_pos.page_pos, ret);
  1356. kunmap(pages[con->in_msg_pos.page]);
  1357. if (ret <= 0)
  1358. return ret;
  1359. con->in_msg_pos.data_pos += ret;
  1360. con->in_msg_pos.page_pos += ret;
  1361. if (con->in_msg_pos.page_pos == PAGE_SIZE) {
  1362. con->in_msg_pos.page_pos = 0;
  1363. con->in_msg_pos.page++;
  1364. }
  1365. return ret;
  1366. }
  1367. #ifdef CONFIG_BLOCK
  1368. static int read_partial_message_bio(struct ceph_connection *con,
  1369. struct bio **bio_iter, int *bio_seg,
  1370. unsigned data_len, int datacrc)
  1371. {
  1372. struct bio_vec *bv = bio_iovec_idx(*bio_iter, *bio_seg);
  1373. void *p;
  1374. int ret, left;
  1375. if (IS_ERR(bv))
  1376. return PTR_ERR(bv);
  1377. left = min((int)(data_len - con->in_msg_pos.data_pos),
  1378. (int)(bv->bv_len - con->in_msg_pos.page_pos));
  1379. p = kmap(bv->bv_page) + bv->bv_offset;
  1380. ret = ceph_tcp_recvmsg(con->sock, p + con->in_msg_pos.page_pos,
  1381. left);
  1382. if (ret > 0 && datacrc)
  1383. con->in_data_crc =
  1384. crc32c(con->in_data_crc,
  1385. p + con->in_msg_pos.page_pos, ret);
  1386. kunmap(bv->bv_page);
  1387. if (ret <= 0)
  1388. return ret;
  1389. con->in_msg_pos.data_pos += ret;
  1390. con->in_msg_pos.page_pos += ret;
  1391. if (con->in_msg_pos.page_pos == bv->bv_len) {
  1392. con->in_msg_pos.page_pos = 0;
  1393. iter_bio_next(bio_iter, bio_seg);
  1394. }
  1395. return ret;
  1396. }
  1397. #endif
  1398. /*
  1399. * read (part of) a message.
  1400. */
  1401. static int read_partial_message(struct ceph_connection *con)
  1402. {
  1403. struct ceph_msg *m = con->in_msg;
  1404. int ret;
  1405. int to, left;
  1406. unsigned front_len, middle_len, data_len;
  1407. int datacrc = con->msgr->nocrc;
  1408. int skip;
  1409. u64 seq;
  1410. dout("read_partial_message con %p msg %p\n", con, m);
  1411. /* header */
  1412. while (con->in_base_pos < sizeof(con->in_hdr)) {
  1413. left = sizeof(con->in_hdr) - con->in_base_pos;
  1414. ret = ceph_tcp_recvmsg(con->sock,
  1415. (char *)&con->in_hdr + con->in_base_pos,
  1416. left);
  1417. if (ret <= 0)
  1418. return ret;
  1419. con->in_base_pos += ret;
  1420. if (con->in_base_pos == sizeof(con->in_hdr)) {
  1421. u32 crc = crc32c(0, &con->in_hdr,
  1422. sizeof(con->in_hdr) - sizeof(con->in_hdr.crc));
  1423. if (crc != le32_to_cpu(con->in_hdr.crc)) {
  1424. pr_err("read_partial_message bad hdr "
  1425. " crc %u != expected %u\n",
  1426. crc, con->in_hdr.crc);
  1427. return -EBADMSG;
  1428. }
  1429. }
  1430. }
  1431. front_len = le32_to_cpu(con->in_hdr.front_len);
  1432. if (front_len > CEPH_MSG_MAX_FRONT_LEN)
  1433. return -EIO;
  1434. middle_len = le32_to_cpu(con->in_hdr.middle_len);
  1435. if (middle_len > CEPH_MSG_MAX_DATA_LEN)
  1436. return -EIO;
  1437. data_len = le32_to_cpu(con->in_hdr.data_len);
  1438. if (data_len > CEPH_MSG_MAX_DATA_LEN)
  1439. return -EIO;
  1440. /* verify seq# */
  1441. seq = le64_to_cpu(con->in_hdr.seq);
  1442. if ((s64)seq - (s64)con->in_seq < 1) {
  1443. pr_info("skipping %s%lld %s seq %lld expected %lld\n",
  1444. ENTITY_NAME(con->peer_name),
  1445. ceph_pr_addr(&con->peer_addr.in_addr),
  1446. seq, con->in_seq + 1);
  1447. con->in_base_pos = -front_len - middle_len - data_len -
  1448. sizeof(m->footer);
  1449. con->in_tag = CEPH_MSGR_TAG_READY;
  1450. return 0;
  1451. } else if ((s64)seq - (s64)con->in_seq > 1) {
  1452. pr_err("read_partial_message bad seq %lld expected %lld\n",
  1453. seq, con->in_seq + 1);
  1454. con->error_msg = "bad message sequence # for incoming message";
  1455. return -EBADMSG;
  1456. }
  1457. /* allocate message? */
  1458. if (!con->in_msg) {
  1459. dout("got hdr type %d front %d data %d\n", con->in_hdr.type,
  1460. con->in_hdr.front_len, con->in_hdr.data_len);
  1461. skip = 0;
  1462. con->in_msg = ceph_alloc_msg(con, &con->in_hdr, &skip);
  1463. if (skip) {
  1464. /* skip this message */
  1465. dout("alloc_msg said skip message\n");
  1466. BUG_ON(con->in_msg);
  1467. con->in_base_pos = -front_len - middle_len - data_len -
  1468. sizeof(m->footer);
  1469. con->in_tag = CEPH_MSGR_TAG_READY;
  1470. con->in_seq++;
  1471. return 0;
  1472. }
  1473. if (!con->in_msg) {
  1474. con->error_msg =
  1475. "error allocating memory for incoming message";
  1476. return -ENOMEM;
  1477. }
  1478. m = con->in_msg;
  1479. m->front.iov_len = 0; /* haven't read it yet */
  1480. if (m->middle)
  1481. m->middle->vec.iov_len = 0;
  1482. con->in_msg_pos.page = 0;
  1483. if (m->pages)
  1484. con->in_msg_pos.page_pos = m->page_alignment;
  1485. else
  1486. con->in_msg_pos.page_pos = 0;
  1487. con->in_msg_pos.data_pos = 0;
  1488. }
  1489. /* front */
  1490. ret = read_partial_message_section(con, &m->front, front_len,
  1491. &con->in_front_crc);
  1492. if (ret <= 0)
  1493. return ret;
  1494. /* middle */
  1495. if (m->middle) {
  1496. ret = read_partial_message_section(con, &m->middle->vec,
  1497. middle_len,
  1498. &con->in_middle_crc);
  1499. if (ret <= 0)
  1500. return ret;
  1501. }
  1502. #ifdef CONFIG_BLOCK
  1503. if (m->bio && !m->bio_iter)
  1504. init_bio_iter(m->bio, &m->bio_iter, &m->bio_seg);
  1505. #endif
  1506. /* (page) data */
  1507. while (con->in_msg_pos.data_pos < data_len) {
  1508. if (m->pages) {
  1509. ret = read_partial_message_pages(con, m->pages,
  1510. data_len, datacrc);
  1511. if (ret <= 0)
  1512. return ret;
  1513. #ifdef CONFIG_BLOCK
  1514. } else if (m->bio) {
  1515. ret = read_partial_message_bio(con,
  1516. &m->bio_iter, &m->bio_seg,
  1517. data_len, datacrc);
  1518. if (ret <= 0)
  1519. return ret;
  1520. #endif
  1521. } else {
  1522. BUG_ON(1);
  1523. }
  1524. }
  1525. /* footer */
  1526. to = sizeof(m->hdr) + sizeof(m->footer);
  1527. while (con->in_base_pos < to) {
  1528. left = to - con->in_base_pos;
  1529. ret = ceph_tcp_recvmsg(con->sock, (char *)&m->footer +
  1530. (con->in_base_pos - sizeof(m->hdr)),
  1531. left);
  1532. if (ret <= 0)
  1533. return ret;
  1534. con->in_base_pos += ret;
  1535. }
  1536. dout("read_partial_message got msg %p %d (%u) + %d (%u) + %d (%u)\n",
  1537. m, front_len, m->footer.front_crc, middle_len,
  1538. m->footer.middle_crc, data_len, m->footer.data_crc);
  1539. /* crc ok? */
  1540. if (con->in_front_crc != le32_to_cpu(m->footer.front_crc)) {
  1541. pr_err("read_partial_message %p front crc %u != exp. %u\n",
  1542. m, con->in_front_crc, m->footer.front_crc);
  1543. return -EBADMSG;
  1544. }
  1545. if (con->in_middle_crc != le32_to_cpu(m->footer.middle_crc)) {
  1546. pr_err("read_partial_message %p middle crc %u != exp %u\n",
  1547. m, con->in_middle_crc, m->footer.middle_crc);
  1548. return -EBADMSG;
  1549. }
  1550. if (datacrc &&
  1551. (m->footer.flags & CEPH_MSG_FOOTER_NOCRC) == 0 &&
  1552. con->in_data_crc != le32_to_cpu(m->footer.data_crc)) {
  1553. pr_err("read_partial_message %p data crc %u != exp. %u\n", m,
  1554. con->in_data_crc, le32_to_cpu(m->footer.data_crc));
  1555. return -EBADMSG;
  1556. }
  1557. return 1; /* done! */
  1558. }
  1559. /*
  1560. * Process message. This happens in the worker thread. The callback should
  1561. * be careful not to do anything that waits on other incoming messages or it
  1562. * may deadlock.
  1563. */
  1564. static void process_message(struct ceph_connection *con)
  1565. {
  1566. struct ceph_msg *msg;
  1567. msg = con->in_msg;
  1568. con->in_msg = NULL;
  1569. /* if first message, set peer_name */
  1570. if (con->peer_name.type == 0)
  1571. con->peer_name = msg->hdr.src;
  1572. con->in_seq++;
  1573. mutex_unlock(&con->mutex);
  1574. dout("===== %p %llu from %s%lld %d=%s len %d+%d (%u %u %u) =====\n",
  1575. msg, le64_to_cpu(msg->hdr.seq),
  1576. ENTITY_NAME(msg->hdr.src),
  1577. le16_to_cpu(msg->hdr.type),
  1578. ceph_msg_type_name(le16_to_cpu(msg->hdr.type)),
  1579. le32_to_cpu(msg->hdr.front_len),
  1580. le32_to_cpu(msg->hdr.data_len),
  1581. con->in_front_crc, con->in_middle_crc, con->in_data_crc);
  1582. con->ops->dispatch(con, msg);
  1583. mutex_lock(&con->mutex);
  1584. prepare_read_tag(con);
  1585. }
  1586. /*
  1587. * Write something to the socket. Called in a worker thread when the
  1588. * socket appears to be writeable and we have something ready to send.
  1589. */
  1590. static int try_write(struct ceph_connection *con)
  1591. {
  1592. struct ceph_messenger *msgr = con->msgr;
  1593. int ret = 1;
  1594. dout("try_write start %p state %lu nref %d\n", con, con->state,
  1595. atomic_read(&con->nref));
  1596. more:
  1597. dout("try_write out_kvec_bytes %d\n", con->out_kvec_bytes);
  1598. /* open the socket first? */
  1599. if (con->sock == NULL) {
  1600. prepare_write_banner(msgr, con);
  1601. prepare_write_connect(msgr, con, 1);
  1602. prepare_read_banner(con);
  1603. set_bit(CONNECTING, &con->state);
  1604. clear_bit(NEGOTIATING, &con->state);
  1605. BUG_ON(con->in_msg);
  1606. con->in_tag = CEPH_MSGR_TAG_READY;
  1607. dout("try_write initiating connect on %p new state %lu\n",
  1608. con, con->state);
  1609. con->sock = ceph_tcp_connect(con);
  1610. if (IS_ERR(con->sock)) {
  1611. con->sock = NULL;
  1612. con->error_msg = "connect error";
  1613. ret = -1;
  1614. goto out;
  1615. }
  1616. }
  1617. more_kvec:
  1618. /* kvec data queued? */
  1619. if (con->out_skip) {
  1620. ret = write_partial_skip(con);
  1621. if (ret <= 0)
  1622. goto out;
  1623. }
  1624. if (con->out_kvec_left) {
  1625. ret = write_partial_kvec(con);
  1626. if (ret <= 0)
  1627. goto out;
  1628. }
  1629. /* msg pages? */
  1630. if (con->out_msg) {
  1631. if (con->out_msg_done) {
  1632. ceph_msg_put(con->out_msg);
  1633. con->out_msg = NULL; /* we're done with this one */
  1634. goto do_next;
  1635. }
  1636. ret = write_partial_msg_pages(con);
  1637. if (ret == 1)
  1638. goto more_kvec; /* we need to send the footer, too! */
  1639. if (ret == 0)
  1640. goto out;
  1641. if (ret < 0) {
  1642. dout("try_write write_partial_msg_pages err %d\n",
  1643. ret);
  1644. goto out;
  1645. }
  1646. }
  1647. do_next:
  1648. if (!test_bit(CONNECTING, &con->state)) {
  1649. /* is anything else pending? */
  1650. if (!list_empty(&con->out_queue)) {
  1651. prepare_write_message(con);
  1652. goto more;
  1653. }
  1654. if (con->in_seq > con->in_seq_acked) {
  1655. prepare_write_ack(con);
  1656. goto more;
  1657. }
  1658. if (test_and_clear_bit(KEEPALIVE_PENDING, &con->state)) {
  1659. prepare_write_keepalive(con);
  1660. goto more;
  1661. }
  1662. }
  1663. /* Nothing to do! */
  1664. clear_bit(WRITE_PENDING, &con->state);
  1665. dout("try_write nothing else to write.\n");
  1666. ret = 0;
  1667. out:
  1668. dout("try_write done on %p ret %d\n", con, ret);
  1669. return ret;
  1670. }
  1671. /*
  1672. * Read what we can from the socket.
  1673. */
  1674. static int try_read(struct ceph_connection *con)
  1675. {
  1676. int ret = -1;
  1677. if (!con->sock)
  1678. return 0;
  1679. if (test_bit(STANDBY, &con->state))
  1680. return 0;
  1681. dout("try_read start on %p\n", con);
  1682. more:
  1683. dout("try_read tag %d in_base_pos %d\n", (int)con->in_tag,
  1684. con->in_base_pos);
  1685. /*
  1686. * process_connect and process_message drop and re-take
  1687. * con->mutex. make sure we handle a racing close or reopen.
  1688. */
  1689. if (test_bit(CLOSED, &con->state) ||
  1690. test_bit(OPENING, &con->state)) {
  1691. ret = -EAGAIN;
  1692. goto out;
  1693. }
  1694. if (test_bit(CONNECTING, &con->state)) {
  1695. if (!test_bit(NEGOTIATING, &con->state)) {
  1696. dout("try_read connecting\n");
  1697. ret = read_partial_banner(con);
  1698. if (ret <= 0)
  1699. goto out;
  1700. ret = process_banner(con);
  1701. if (ret < 0)
  1702. goto out;
  1703. }
  1704. ret = read_partial_connect(con);
  1705. if (ret <= 0)
  1706. goto out;
  1707. ret = process_connect(con);
  1708. if (ret < 0)
  1709. goto out;
  1710. goto more;
  1711. }
  1712. if (con->in_base_pos < 0) {
  1713. /*
  1714. * skipping + discarding content.
  1715. *
  1716. * FIXME: there must be a better way to do this!
  1717. */
  1718. static char buf[1024];
  1719. int skip = min(1024, -con->in_base_pos);
  1720. dout("skipping %d / %d bytes\n", skip, -con->in_base_pos);
  1721. ret = ceph_tcp_recvmsg(con->sock, buf, skip);
  1722. if (ret <= 0)
  1723. goto out;
  1724. con->in_base_pos += ret;
  1725. if (con->in_base_pos)
  1726. goto more;
  1727. }
  1728. if (con->in_tag == CEPH_MSGR_TAG_READY) {
  1729. /*
  1730. * what's next?
  1731. */
  1732. ret = ceph_tcp_recvmsg(con->sock, &con->in_tag, 1);
  1733. if (ret <= 0)
  1734. goto out;
  1735. dout("try_read got tag %d\n", (int)con->in_tag);
  1736. switch (con->in_tag) {
  1737. case CEPH_MSGR_TAG_MSG:
  1738. prepare_read_message(con);
  1739. break;
  1740. case CEPH_MSGR_TAG_ACK:
  1741. prepare_read_ack(con);
  1742. break;
  1743. case CEPH_MSGR_TAG_CLOSE:
  1744. set_bit(CLOSED, &con->state); /* fixme */
  1745. goto out;
  1746. default:
  1747. goto bad_tag;
  1748. }
  1749. }
  1750. if (con->in_tag == CEPH_MSGR_TAG_MSG) {
  1751. ret = read_partial_message(con);
  1752. if (ret <= 0) {
  1753. switch (ret) {
  1754. case -EBADMSG:
  1755. con->error_msg = "bad crc";
  1756. ret = -EIO;
  1757. break;
  1758. case -EIO:
  1759. con->error_msg = "io error";
  1760. break;
  1761. }
  1762. goto out;
  1763. }
  1764. if (con->in_tag == CEPH_MSGR_TAG_READY)
  1765. goto more;
  1766. process_message(con);
  1767. goto more;
  1768. }
  1769. if (con->in_tag == CEPH_MSGR_TAG_ACK) {
  1770. ret = read_partial_ack(con);
  1771. if (ret <= 0)
  1772. goto out;
  1773. process_ack(con);
  1774. goto more;
  1775. }
  1776. out:
  1777. dout("try_read done on %p ret %d\n", con, ret);
  1778. return ret;
  1779. bad_tag:
  1780. pr_err("try_read bad con->in_tag = %d\n", (int)con->in_tag);
  1781. con->error_msg = "protocol error, garbage tag";
  1782. ret = -1;
  1783. goto out;
  1784. }
  1785. /*
  1786. * Atomically queue work on a connection. Bump @con reference to
  1787. * avoid races with connection teardown.
  1788. */
  1789. static void queue_con(struct ceph_connection *con)
  1790. {
  1791. if (test_bit(DEAD, &con->state)) {
  1792. dout("queue_con %p ignoring: DEAD\n",
  1793. con);
  1794. return;
  1795. }
  1796. if (!con->ops->get(con)) {
  1797. dout("queue_con %p ref count 0\n", con);
  1798. return;
  1799. }
  1800. if (!queue_delayed_work(ceph_msgr_wq, &con->work, 0)) {
  1801. dout("queue_con %p - already queued\n", con);
  1802. con->ops->put(con);
  1803. } else {
  1804. dout("queue_con %p\n", con);
  1805. }
  1806. }
  1807. /*
  1808. * Do some work on a connection. Drop a connection ref when we're done.
  1809. */
  1810. static void con_work(struct work_struct *work)
  1811. {
  1812. struct ceph_connection *con = container_of(work, struct ceph_connection,
  1813. work.work);
  1814. int ret;
  1815. mutex_lock(&con->mutex);
  1816. restart:
  1817. if (test_and_clear_bit(BACKOFF, &con->state)) {
  1818. dout("con_work %p backing off\n", con);
  1819. if (queue_delayed_work(ceph_msgr_wq, &con->work,
  1820. round_jiffies_relative(con->delay))) {
  1821. dout("con_work %p backoff %lu\n", con, con->delay);
  1822. mutex_unlock(&con->mutex);
  1823. return;
  1824. } else {
  1825. con->ops->put(con);
  1826. dout("con_work %p FAILED to back off %lu\n", con,
  1827. con->delay);
  1828. }
  1829. }
  1830. if (test_bit(STANDBY, &con->state)) {
  1831. dout("con_work %p STANDBY\n", con);
  1832. goto done;
  1833. }
  1834. if (test_bit(CLOSED, &con->state)) { /* e.g. if we are replaced */
  1835. dout("con_work CLOSED\n");
  1836. con_close_socket(con);
  1837. goto done;
  1838. }
  1839. if (test_and_clear_bit(OPENING, &con->state)) {
  1840. /* reopen w/ new peer */
  1841. dout("con_work OPENING\n");
  1842. con_close_socket(con);
  1843. }
  1844. if (test_and_clear_bit(SOCK_CLOSED, &con->state))
  1845. goto fault;
  1846. ret = try_read(con);
  1847. if (ret == -EAGAIN)
  1848. goto restart;
  1849. if (ret < 0)
  1850. goto fault;
  1851. ret = try_write(con);
  1852. if (ret == -EAGAIN)
  1853. goto restart;
  1854. if (ret < 0)
  1855. goto fault;
  1856. done:
  1857. mutex_unlock(&con->mutex);
  1858. done_unlocked:
  1859. con->ops->put(con);
  1860. return;
  1861. fault:
  1862. mutex_unlock(&con->mutex);
  1863. ceph_fault(con); /* error/fault path */
  1864. goto done_unlocked;
  1865. }
  1866. /*
  1867. * Generic error/fault handler. A retry mechanism is used with
  1868. * exponential backoff
  1869. */
  1870. static void ceph_fault(struct ceph_connection *con)
  1871. {
  1872. pr_err("%s%lld %s %s\n", ENTITY_NAME(con->peer_name),
  1873. ceph_pr_addr(&con->peer_addr.in_addr), con->error_msg);
  1874. dout("fault %p state %lu to peer %s\n",
  1875. con, con->state, ceph_pr_addr(&con->peer_addr.in_addr));
  1876. if (test_bit(LOSSYTX, &con->state)) {
  1877. dout("fault on LOSSYTX channel\n");
  1878. goto out;
  1879. }
  1880. mutex_lock(&con->mutex);
  1881. if (test_bit(CLOSED, &con->state))
  1882. goto out_unlock;
  1883. con_close_socket(con);
  1884. if (con->in_msg) {
  1885. ceph_msg_put(con->in_msg);
  1886. con->in_msg = NULL;
  1887. }
  1888. /* Requeue anything that hasn't been acked */
  1889. list_splice_init(&con->out_sent, &con->out_queue);
  1890. /* If there are no messages queued or keepalive pending, place
  1891. * the connection in a STANDBY state */
  1892. if (list_empty(&con->out_queue) &&
  1893. !test_bit(KEEPALIVE_PENDING, &con->state)) {
  1894. dout("fault %p setting STANDBY clearing WRITE_PENDING\n", con);
  1895. clear_bit(WRITE_PENDING, &con->state);
  1896. set_bit(STANDBY, &con->state);
  1897. } else {
  1898. /* retry after a delay. */
  1899. if (con->delay == 0)
  1900. con->delay = BASE_DELAY_INTERVAL;
  1901. else if (con->delay < MAX_DELAY_INTERVAL)
  1902. con->delay *= 2;
  1903. con->ops->get(con);
  1904. if (queue_delayed_work(ceph_msgr_wq, &con->work,
  1905. round_jiffies_relative(con->delay))) {
  1906. dout("fault queued %p delay %lu\n", con, con->delay);
  1907. } else {
  1908. con->ops->put(con);
  1909. dout("fault failed to queue %p delay %lu, backoff\n",
  1910. con, con->delay);
  1911. /*
  1912. * In many cases we see a socket state change
  1913. * while con_work is running and end up
  1914. * queuing (non-delayed) work, such that we
  1915. * can't backoff with a delay. Set a flag so
  1916. * that when con_work restarts we schedule the
  1917. * delay then.
  1918. */
  1919. set_bit(BACKOFF, &con->state);
  1920. }
  1921. }
  1922. out_unlock:
  1923. mutex_unlock(&con->mutex);
  1924. out:
  1925. /*
  1926. * in case we faulted due to authentication, invalidate our
  1927. * current tickets so that we can get new ones.
  1928. */
  1929. if (con->auth_retry && con->ops->invalidate_authorizer) {
  1930. dout("calling invalidate_authorizer()\n");
  1931. con->ops->invalidate_authorizer(con);
  1932. }
  1933. if (con->ops->fault)
  1934. con->ops->fault(con);
  1935. }
  1936. /*
  1937. * create a new messenger instance
  1938. */
  1939. struct ceph_messenger *ceph_messenger_create(struct ceph_entity_addr *myaddr,
  1940. u32 supported_features,
  1941. u32 required_features)
  1942. {
  1943. struct ceph_messenger *msgr;
  1944. msgr = kzalloc(sizeof(*msgr), GFP_KERNEL);
  1945. if (msgr == NULL)
  1946. return ERR_PTR(-ENOMEM);
  1947. msgr->supported_features = supported_features;
  1948. msgr->required_features = required_features;
  1949. spin_lock_init(&msgr->global_seq_lock);
  1950. if (myaddr)
  1951. msgr->inst.addr = *myaddr;
  1952. /* select a random nonce */
  1953. msgr->inst.addr.type = 0;
  1954. get_random_bytes(&msgr->inst.addr.nonce, sizeof(msgr->inst.addr.nonce));
  1955. encode_my_addr(msgr);
  1956. dout("messenger_create %p\n", msgr);
  1957. return msgr;
  1958. }
  1959. EXPORT_SYMBOL(ceph_messenger_create);
  1960. void ceph_messenger_destroy(struct ceph_messenger *msgr)
  1961. {
  1962. dout("destroy %p\n", msgr);
  1963. kfree(msgr);
  1964. dout("destroyed messenger %p\n", msgr);
  1965. }
  1966. EXPORT_SYMBOL(ceph_messenger_destroy);
  1967. static void clear_standby(struct ceph_connection *con)
  1968. {
  1969. /* come back from STANDBY? */
  1970. if (test_and_clear_bit(STANDBY, &con->state)) {
  1971. mutex_lock(&con->mutex);
  1972. dout("clear_standby %p and ++connect_seq\n", con);
  1973. con->connect_seq++;
  1974. WARN_ON(test_bit(WRITE_PENDING, &con->state));
  1975. WARN_ON(test_bit(KEEPALIVE_PENDING, &con->state));
  1976. mutex_unlock(&con->mutex);
  1977. }
  1978. }
  1979. /*
  1980. * Queue up an outgoing message on the given connection.
  1981. */
  1982. void ceph_con_send(struct ceph_connection *con, struct ceph_msg *msg)
  1983. {
  1984. if (test_bit(CLOSED, &con->state)) {
  1985. dout("con_send %p closed, dropping %p\n", con, msg);
  1986. ceph_msg_put(msg);
  1987. return;
  1988. }
  1989. /* set src+dst */
  1990. msg->hdr.src = con->msgr->inst.name;
  1991. BUG_ON(msg->front.iov_len != le32_to_cpu(msg->hdr.front_len));
  1992. msg->needs_out_seq = true;
  1993. /* queue */
  1994. mutex_lock(&con->mutex);
  1995. BUG_ON(!list_empty(&msg->list_head));
  1996. list_add_tail(&msg->list_head, &con->out_queue);
  1997. dout("----- %p to %s%lld %d=%s len %d+%d+%d -----\n", msg,
  1998. ENTITY_NAME(con->peer_name), le16_to_cpu(msg->hdr.type),
  1999. ceph_msg_type_name(le16_to_cpu(msg->hdr.type)),
  2000. le32_to_cpu(msg->hdr.front_len),
  2001. le32_to_cpu(msg->hdr.middle_len),
  2002. le32_to_cpu(msg->hdr.data_len));
  2003. mutex_unlock(&con->mutex);
  2004. /* if there wasn't anything waiting to send before, queue
  2005. * new work */
  2006. clear_standby(con);
  2007. if (test_and_set_bit(WRITE_PENDING, &con->state) == 0)
  2008. queue_con(con);
  2009. }
  2010. EXPORT_SYMBOL(ceph_con_send);
  2011. /*
  2012. * Revoke a message that was previously queued for send
  2013. */
  2014. void ceph_con_revoke(struct ceph_connection *con, struct ceph_msg *msg)
  2015. {
  2016. mutex_lock(&con->mutex);
  2017. if (!list_empty(&msg->list_head)) {
  2018. dout("con_revoke %p msg %p - was on queue\n", con, msg);
  2019. list_del_init(&msg->list_head);
  2020. ceph_msg_put(msg);
  2021. msg->hdr.seq = 0;
  2022. }
  2023. if (con->out_msg == msg) {
  2024. dout("con_revoke %p msg %p - was sending\n", con, msg);
  2025. con->out_msg = NULL;
  2026. if (con->out_kvec_is_msg) {
  2027. con->out_skip = con->out_kvec_bytes;
  2028. con->out_kvec_is_msg = false;
  2029. }
  2030. ceph_msg_put(msg);
  2031. msg->hdr.seq = 0;
  2032. }
  2033. mutex_unlock(&con->mutex);
  2034. }
  2035. /*
  2036. * Revoke a message that we may be reading data into
  2037. */
  2038. void ceph_con_revoke_message(struct ceph_connection *con, struct ceph_msg *msg)
  2039. {
  2040. mutex_lock(&con->mutex);
  2041. if (con->in_msg && con->in_msg == msg) {
  2042. unsigned front_len = le32_to_cpu(con->in_hdr.front_len);
  2043. unsigned middle_len = le32_to_cpu(con->in_hdr.middle_len);
  2044. unsigned data_len = le32_to_cpu(con->in_hdr.data_len);
  2045. /* skip rest of message */
  2046. dout("con_revoke_pages %p msg %p revoked\n", con, msg);
  2047. con->in_base_pos = con->in_base_pos -
  2048. sizeof(struct ceph_msg_header) -
  2049. front_len -
  2050. middle_len -
  2051. data_len -
  2052. sizeof(struct ceph_msg_footer);
  2053. ceph_msg_put(con->in_msg);
  2054. con->in_msg = NULL;
  2055. con->in_tag = CEPH_MSGR_TAG_READY;
  2056. con->in_seq++;
  2057. } else {
  2058. dout("con_revoke_pages %p msg %p pages %p no-op\n",
  2059. con, con->in_msg, msg);
  2060. }
  2061. mutex_unlock(&con->mutex);
  2062. }
  2063. /*
  2064. * Queue a keepalive byte to ensure the tcp connection is alive.
  2065. */
  2066. void ceph_con_keepalive(struct ceph_connection *con)
  2067. {
  2068. dout("con_keepalive %p\n", con);
  2069. clear_standby(con);
  2070. if (test_and_set_bit(KEEPALIVE_PENDING, &con->state) == 0 &&
  2071. test_and_set_bit(WRITE_PENDING, &con->state) == 0)
  2072. queue_con(con);
  2073. }
  2074. EXPORT_SYMBOL(ceph_con_keepalive);
  2075. /*
  2076. * construct a new message with given type, size
  2077. * the new msg has a ref count of 1.
  2078. */
  2079. struct ceph_msg *ceph_msg_new(int type, int front_len, gfp_t flags,
  2080. bool can_fail)
  2081. {
  2082. struct ceph_msg *m;
  2083. m = kmalloc(sizeof(*m), flags);
  2084. if (m == NULL)
  2085. goto out;
  2086. kref_init(&m->kref);
  2087. INIT_LIST_HEAD(&m->list_head);
  2088. m->hdr.tid = 0;
  2089. m->hdr.type = cpu_to_le16(type);
  2090. m->hdr.priority = cpu_to_le16(CEPH_MSG_PRIO_DEFAULT);
  2091. m->hdr.version = 0;
  2092. m->hdr.front_len = cpu_to_le32(front_len);
  2093. m->hdr.middle_len = 0;
  2094. m->hdr.data_len = 0;
  2095. m->hdr.data_off = 0;
  2096. m->hdr.reserved = 0;
  2097. m->footer.front_crc = 0;
  2098. m->footer.middle_crc = 0;
  2099. m->footer.data_crc = 0;
  2100. m->footer.flags = 0;
  2101. m->front_max = front_len;
  2102. m->front_is_vmalloc = false;
  2103. m->more_to_follow = false;
  2104. m->ack_stamp = 0;
  2105. m->pool = NULL;
  2106. /* middle */
  2107. m->middle = NULL;
  2108. /* data */
  2109. m->nr_pages = 0;
  2110. m->page_alignment = 0;
  2111. m->pages = NULL;
  2112. m->pagelist = NULL;
  2113. m->bio = NULL;
  2114. m->bio_iter = NULL;
  2115. m->bio_seg = 0;
  2116. m->trail = NULL;
  2117. /* front */
  2118. if (front_len) {
  2119. if (front_len > PAGE_CACHE_SIZE) {
  2120. m->front.iov_base = __vmalloc(front_len, flags,
  2121. PAGE_KERNEL);
  2122. m->front_is_vmalloc = true;
  2123. } else {
  2124. m->front.iov_base = kmalloc(front_len, flags);
  2125. }
  2126. if (m->front.iov_base == NULL) {
  2127. dout("ceph_msg_new can't allocate %d bytes\n",
  2128. front_len);
  2129. goto out2;
  2130. }
  2131. } else {
  2132. m->front.iov_base = NULL;
  2133. }
  2134. m->front.iov_len = front_len;
  2135. dout("ceph_msg_new %p front %d\n", m, front_len);
  2136. return m;
  2137. out2:
  2138. ceph_msg_put(m);
  2139. out:
  2140. if (!can_fail) {
  2141. pr_err("msg_new can't create type %d front %d\n", type,
  2142. front_len);
  2143. WARN_ON(1);
  2144. } else {
  2145. dout("msg_new can't create type %d front %d\n", type,
  2146. front_len);
  2147. }
  2148. return NULL;
  2149. }
  2150. EXPORT_SYMBOL(ceph_msg_new);
  2151. /*
  2152. * Allocate "middle" portion of a message, if it is needed and wasn't
  2153. * allocated by alloc_msg. This allows us to read a small fixed-size
  2154. * per-type header in the front and then gracefully fail (i.e.,
  2155. * propagate the error to the caller based on info in the front) when
  2156. * the middle is too large.
  2157. */
  2158. static int ceph_alloc_middle(struct ceph_connection *con, struct ceph_msg *msg)
  2159. {
  2160. int type = le16_to_cpu(msg->hdr.type);
  2161. int middle_len = le32_to_cpu(msg->hdr.middle_len);
  2162. dout("alloc_middle %p type %d %s middle_len %d\n", msg, type,
  2163. ceph_msg_type_name(type), middle_len);
  2164. BUG_ON(!middle_len);
  2165. BUG_ON(msg->middle);
  2166. msg->middle = ceph_buffer_new(middle_len, GFP_NOFS);
  2167. if (!msg->middle)
  2168. return -ENOMEM;
  2169. return 0;
  2170. }
  2171. /*
  2172. * Generic message allocator, for incoming messages.
  2173. */
  2174. static struct ceph_msg *ceph_alloc_msg(struct ceph_connection *con,
  2175. struct ceph_msg_header *hdr,
  2176. int *skip)
  2177. {
  2178. int type = le16_to_cpu(hdr->type);
  2179. int front_len = le32_to_cpu(hdr->front_len);
  2180. int middle_len = le32_to_cpu(hdr->middle_len);
  2181. struct ceph_msg *msg = NULL;
  2182. int ret;
  2183. if (con->ops->alloc_msg) {
  2184. mutex_unlock(&con->mutex);
  2185. msg = con->ops->alloc_msg(con, hdr, skip);
  2186. mutex_lock(&con->mutex);
  2187. if (!msg || *skip)
  2188. return NULL;
  2189. }
  2190. if (!msg) {
  2191. *skip = 0;
  2192. msg = ceph_msg_new(type, front_len, GFP_NOFS, false);
  2193. if (!msg) {
  2194. pr_err("unable to allocate msg type %d len %d\n",
  2195. type, front_len);
  2196. return NULL;
  2197. }
  2198. msg->page_alignment = le16_to_cpu(hdr->data_off);
  2199. }
  2200. memcpy(&msg->hdr, &con->in_hdr, sizeof(con->in_hdr));
  2201. if (middle_len && !msg->middle) {
  2202. ret = ceph_alloc_middle(con, msg);
  2203. if (ret < 0) {
  2204. ceph_msg_put(msg);
  2205. return NULL;
  2206. }
  2207. }
  2208. return msg;
  2209. }
  2210. /*
  2211. * Free a generically kmalloc'd message.
  2212. */
  2213. void ceph_msg_kfree(struct ceph_msg *m)
  2214. {
  2215. dout("msg_kfree %p\n", m);
  2216. if (m->front_is_vmalloc)
  2217. vfree(m->front.iov_base);
  2218. else
  2219. kfree(m->front.iov_base);
  2220. kfree(m);
  2221. }
  2222. /*
  2223. * Drop a msg ref. Destroy as needed.
  2224. */
  2225. void ceph_msg_last_put(struct kref *kref)
  2226. {
  2227. struct ceph_msg *m = container_of(kref, struct ceph_msg, kref);
  2228. dout("ceph_msg_put last one on %p\n", m);
  2229. WARN_ON(!list_empty(&m->list_head));
  2230. /* drop middle, data, if any */
  2231. if (m->middle) {
  2232. ceph_buffer_put(m->middle);
  2233. m->middle = NULL;
  2234. }
  2235. m->nr_pages = 0;
  2236. m->pages = NULL;
  2237. if (m->pagelist) {
  2238. ceph_pagelist_release(m->pagelist);
  2239. kfree(m->pagelist);
  2240. m->pagelist = NULL;
  2241. }
  2242. m->trail = NULL;
  2243. if (m->pool)
  2244. ceph_msgpool_put(m->pool, m);
  2245. else
  2246. ceph_msg_kfree(m);
  2247. }
  2248. EXPORT_SYMBOL(ceph_msg_last_put);
  2249. void ceph_msg_dump(struct ceph_msg *msg)
  2250. {
  2251. pr_debug("msg_dump %p (front_max %d nr_pages %d)\n", msg,
  2252. msg->front_max, msg->nr_pages);
  2253. print_hex_dump(KERN_DEBUG, "header: ",
  2254. DUMP_PREFIX_OFFSET, 16, 1,
  2255. &msg->hdr, sizeof(msg->hdr), true);
  2256. print_hex_dump(KERN_DEBUG, " front: ",
  2257. DUMP_PREFIX_OFFSET, 16, 1,
  2258. msg->front.iov_base, msg->front.iov_len, true);
  2259. if (msg->middle)
  2260. print_hex_dump(KERN_DEBUG, "middle: ",
  2261. DUMP_PREFIX_OFFSET, 16, 1,
  2262. msg->middle->vec.iov_base,
  2263. msg->middle->vec.iov_len, true);
  2264. print_hex_dump(KERN_DEBUG, "footer: ",
  2265. DUMP_PREFIX_OFFSET, 16, 1,
  2266. &msg->footer, sizeof(msg->footer), true);
  2267. }
  2268. EXPORT_SYMBOL(ceph_msg_dump);