lowcomms.c 36 KB

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  1. /******************************************************************************
  2. *******************************************************************************
  3. **
  4. ** Copyright (C) Sistina Software, Inc. 1997-2003 All rights reserved.
  5. ** Copyright (C) 2004-2007 Red Hat, Inc. All rights reserved.
  6. **
  7. ** This copyrighted material is made available to anyone wishing to use,
  8. ** modify, copy, or redistribute it subject to the terms and conditions
  9. ** of the GNU General Public License v.2.
  10. **
  11. *******************************************************************************
  12. ******************************************************************************/
  13. /*
  14. * lowcomms.c
  15. *
  16. * This is the "low-level" comms layer.
  17. *
  18. * It is responsible for sending/receiving messages
  19. * from other nodes in the cluster.
  20. *
  21. * Cluster nodes are referred to by their nodeids. nodeids are
  22. * simply 32 bit numbers to the locking module - if they need to
  23. * be expanded for the cluster infrastructure then that is it's
  24. * responsibility. It is this layer's
  25. * responsibility to resolve these into IP address or
  26. * whatever it needs for inter-node communication.
  27. *
  28. * The comms level is two kernel threads that deal mainly with
  29. * the receiving of messages from other nodes and passing them
  30. * up to the mid-level comms layer (which understands the
  31. * message format) for execution by the locking core, and
  32. * a send thread which does all the setting up of connections
  33. * to remote nodes and the sending of data. Threads are not allowed
  34. * to send their own data because it may cause them to wait in times
  35. * of high load. Also, this way, the sending thread can collect together
  36. * messages bound for one node and send them in one block.
  37. *
  38. * lowcomms will choose to use wither TCP or SCTP as its transport layer
  39. * depending on the configuration variable 'protocol'. This should be set
  40. * to 0 (default) for TCP or 1 for SCTP. It shouldbe configured using a
  41. * cluster-wide mechanism as it must be the same on all nodes of the cluster
  42. * for the DLM to function.
  43. *
  44. */
  45. #include <asm/ioctls.h>
  46. #include <net/sock.h>
  47. #include <net/tcp.h>
  48. #include <linux/pagemap.h>
  49. #include <linux/idr.h>
  50. #include <linux/file.h>
  51. #include <linux/sctp.h>
  52. #include <net/sctp/user.h>
  53. #include "dlm_internal.h"
  54. #include "lowcomms.h"
  55. #include "midcomms.h"
  56. #include "config.h"
  57. #define NEEDED_RMEM (4*1024*1024)
  58. struct cbuf {
  59. unsigned int base;
  60. unsigned int len;
  61. unsigned int mask;
  62. };
  63. static void cbuf_add(struct cbuf *cb, int n)
  64. {
  65. cb->len += n;
  66. }
  67. static int cbuf_data(struct cbuf *cb)
  68. {
  69. return ((cb->base + cb->len) & cb->mask);
  70. }
  71. static void cbuf_init(struct cbuf *cb, int size)
  72. {
  73. cb->base = cb->len = 0;
  74. cb->mask = size-1;
  75. }
  76. static void cbuf_eat(struct cbuf *cb, int n)
  77. {
  78. cb->len -= n;
  79. cb->base += n;
  80. cb->base &= cb->mask;
  81. }
  82. static bool cbuf_empty(struct cbuf *cb)
  83. {
  84. return cb->len == 0;
  85. }
  86. struct connection {
  87. struct socket *sock; /* NULL if not connected */
  88. uint32_t nodeid; /* So we know who we are in the list */
  89. struct mutex sock_mutex;
  90. unsigned long flags;
  91. #define CF_READ_PENDING 1
  92. #define CF_WRITE_PENDING 2
  93. #define CF_CONNECT_PENDING 3
  94. #define CF_INIT_PENDING 4
  95. #define CF_IS_OTHERCON 5
  96. struct list_head writequeue; /* List of outgoing writequeue_entries */
  97. spinlock_t writequeue_lock;
  98. int (*rx_action) (struct connection *); /* What to do when active */
  99. void (*connect_action) (struct connection *); /* What to do to connect */
  100. struct page *rx_page;
  101. struct cbuf cb;
  102. int retries;
  103. #define MAX_CONNECT_RETRIES 3
  104. int sctp_assoc;
  105. struct connection *othercon;
  106. struct work_struct rwork; /* Receive workqueue */
  107. struct work_struct swork; /* Send workqueue */
  108. };
  109. #define sock2con(x) ((struct connection *)(x)->sk_user_data)
  110. /* An entry waiting to be sent */
  111. struct writequeue_entry {
  112. struct list_head list;
  113. struct page *page;
  114. int offset;
  115. int len;
  116. int end;
  117. int users;
  118. struct connection *con;
  119. };
  120. static struct sockaddr_storage *dlm_local_addr[DLM_MAX_ADDR_COUNT];
  121. static int dlm_local_count;
  122. /* Work queues */
  123. static struct workqueue_struct *recv_workqueue;
  124. static struct workqueue_struct *send_workqueue;
  125. static DEFINE_IDR(connections_idr);
  126. static DECLARE_MUTEX(connections_lock);
  127. static int max_nodeid;
  128. static struct kmem_cache *con_cache;
  129. static void process_recv_sockets(struct work_struct *work);
  130. static void process_send_sockets(struct work_struct *work);
  131. /*
  132. * If 'allocation' is zero then we don't attempt to create a new
  133. * connection structure for this node.
  134. */
  135. static struct connection *__nodeid2con(int nodeid, gfp_t alloc)
  136. {
  137. struct connection *con = NULL;
  138. int r;
  139. int n;
  140. con = idr_find(&connections_idr, nodeid);
  141. if (con || !alloc)
  142. return con;
  143. r = idr_pre_get(&connections_idr, alloc);
  144. if (!r)
  145. return NULL;
  146. con = kmem_cache_zalloc(con_cache, alloc);
  147. if (!con)
  148. return NULL;
  149. r = idr_get_new_above(&connections_idr, con, nodeid, &n);
  150. if (r) {
  151. kmem_cache_free(con_cache, con);
  152. return NULL;
  153. }
  154. if (n != nodeid) {
  155. idr_remove(&connections_idr, n);
  156. kmem_cache_free(con_cache, con);
  157. return NULL;
  158. }
  159. con->nodeid = nodeid;
  160. mutex_init(&con->sock_mutex);
  161. INIT_LIST_HEAD(&con->writequeue);
  162. spin_lock_init(&con->writequeue_lock);
  163. INIT_WORK(&con->swork, process_send_sockets);
  164. INIT_WORK(&con->rwork, process_recv_sockets);
  165. /* Setup action pointers for child sockets */
  166. if (con->nodeid) {
  167. struct connection *zerocon = idr_find(&connections_idr, 0);
  168. con->connect_action = zerocon->connect_action;
  169. if (!con->rx_action)
  170. con->rx_action = zerocon->rx_action;
  171. }
  172. if (nodeid > max_nodeid)
  173. max_nodeid = nodeid;
  174. return con;
  175. }
  176. static struct connection *nodeid2con(int nodeid, gfp_t allocation)
  177. {
  178. struct connection *con;
  179. down(&connections_lock);
  180. con = __nodeid2con(nodeid, allocation);
  181. up(&connections_lock);
  182. return con;
  183. }
  184. /* This is a bit drastic, but only called when things go wrong */
  185. static struct connection *assoc2con(int assoc_id)
  186. {
  187. int i;
  188. struct connection *con;
  189. down(&connections_lock);
  190. for (i=0; i<=max_nodeid; i++) {
  191. con = __nodeid2con(i, 0);
  192. if (con && con->sctp_assoc == assoc_id) {
  193. up(&connections_lock);
  194. return con;
  195. }
  196. }
  197. up(&connections_lock);
  198. return NULL;
  199. }
  200. static int nodeid_to_addr(int nodeid, struct sockaddr *retaddr)
  201. {
  202. struct sockaddr_storage addr;
  203. int error;
  204. if (!dlm_local_count)
  205. return -1;
  206. error = dlm_nodeid_to_addr(nodeid, &addr);
  207. if (error)
  208. return error;
  209. if (dlm_local_addr[0]->ss_family == AF_INET) {
  210. struct sockaddr_in *in4 = (struct sockaddr_in *) &addr;
  211. struct sockaddr_in *ret4 = (struct sockaddr_in *) retaddr;
  212. ret4->sin_addr.s_addr = in4->sin_addr.s_addr;
  213. } else {
  214. struct sockaddr_in6 *in6 = (struct sockaddr_in6 *) &addr;
  215. struct sockaddr_in6 *ret6 = (struct sockaddr_in6 *) retaddr;
  216. memcpy(&ret6->sin6_addr, &in6->sin6_addr,
  217. sizeof(in6->sin6_addr));
  218. }
  219. return 0;
  220. }
  221. /* Data available on socket or listen socket received a connect */
  222. static void lowcomms_data_ready(struct sock *sk, int count_unused)
  223. {
  224. struct connection *con = sock2con(sk);
  225. if (con && !test_and_set_bit(CF_READ_PENDING, &con->flags))
  226. queue_work(recv_workqueue, &con->rwork);
  227. }
  228. static void lowcomms_write_space(struct sock *sk)
  229. {
  230. struct connection *con = sock2con(sk);
  231. if (con && !test_and_set_bit(CF_WRITE_PENDING, &con->flags))
  232. queue_work(send_workqueue, &con->swork);
  233. }
  234. static inline void lowcomms_connect_sock(struct connection *con)
  235. {
  236. if (!test_and_set_bit(CF_CONNECT_PENDING, &con->flags))
  237. queue_work(send_workqueue, &con->swork);
  238. }
  239. static void lowcomms_state_change(struct sock *sk)
  240. {
  241. if (sk->sk_state == TCP_ESTABLISHED)
  242. lowcomms_write_space(sk);
  243. }
  244. /* Make a socket active */
  245. static int add_sock(struct socket *sock, struct connection *con)
  246. {
  247. con->sock = sock;
  248. /* Install a data_ready callback */
  249. con->sock->sk->sk_data_ready = lowcomms_data_ready;
  250. con->sock->sk->sk_write_space = lowcomms_write_space;
  251. con->sock->sk->sk_state_change = lowcomms_state_change;
  252. con->sock->sk->sk_user_data = con;
  253. return 0;
  254. }
  255. /* Add the port number to an IPv6 or 4 sockaddr and return the address
  256. length */
  257. static void make_sockaddr(struct sockaddr_storage *saddr, uint16_t port,
  258. int *addr_len)
  259. {
  260. saddr->ss_family = dlm_local_addr[0]->ss_family;
  261. if (saddr->ss_family == AF_INET) {
  262. struct sockaddr_in *in4_addr = (struct sockaddr_in *)saddr;
  263. in4_addr->sin_port = cpu_to_be16(port);
  264. *addr_len = sizeof(struct sockaddr_in);
  265. memset(&in4_addr->sin_zero, 0, sizeof(in4_addr->sin_zero));
  266. } else {
  267. struct sockaddr_in6 *in6_addr = (struct sockaddr_in6 *)saddr;
  268. in6_addr->sin6_port = cpu_to_be16(port);
  269. *addr_len = sizeof(struct sockaddr_in6);
  270. }
  271. }
  272. /* Close a remote connection and tidy up */
  273. static void close_connection(struct connection *con, bool and_other)
  274. {
  275. mutex_lock(&con->sock_mutex);
  276. if (con->sock) {
  277. sock_release(con->sock);
  278. con->sock = NULL;
  279. }
  280. if (con->othercon && and_other) {
  281. /* Will only re-enter once. */
  282. close_connection(con->othercon, false);
  283. kmem_cache_free(con_cache, con->othercon);
  284. con->othercon = NULL;
  285. }
  286. if (con->rx_page) {
  287. __free_page(con->rx_page);
  288. con->rx_page = NULL;
  289. }
  290. con->retries = 0;
  291. mutex_unlock(&con->sock_mutex);
  292. }
  293. /* We only send shutdown messages to nodes that are not part of the cluster */
  294. static void sctp_send_shutdown(sctp_assoc_t associd)
  295. {
  296. static char outcmsg[CMSG_SPACE(sizeof(struct sctp_sndrcvinfo))];
  297. struct msghdr outmessage;
  298. struct cmsghdr *cmsg;
  299. struct sctp_sndrcvinfo *sinfo;
  300. int ret;
  301. struct connection *con;
  302. con = nodeid2con(0,0);
  303. BUG_ON(con == NULL);
  304. outmessage.msg_name = NULL;
  305. outmessage.msg_namelen = 0;
  306. outmessage.msg_control = outcmsg;
  307. outmessage.msg_controllen = sizeof(outcmsg);
  308. outmessage.msg_flags = MSG_EOR;
  309. cmsg = CMSG_FIRSTHDR(&outmessage);
  310. cmsg->cmsg_level = IPPROTO_SCTP;
  311. cmsg->cmsg_type = SCTP_SNDRCV;
  312. cmsg->cmsg_len = CMSG_LEN(sizeof(struct sctp_sndrcvinfo));
  313. outmessage.msg_controllen = cmsg->cmsg_len;
  314. sinfo = CMSG_DATA(cmsg);
  315. memset(sinfo, 0x00, sizeof(struct sctp_sndrcvinfo));
  316. sinfo->sinfo_flags |= MSG_EOF;
  317. sinfo->sinfo_assoc_id = associd;
  318. ret = kernel_sendmsg(con->sock, &outmessage, NULL, 0, 0);
  319. if (ret != 0)
  320. log_print("send EOF to node failed: %d", ret);
  321. }
  322. /* INIT failed but we don't know which node...
  323. restart INIT on all pending nodes */
  324. static void sctp_init_failed(void)
  325. {
  326. int i;
  327. struct connection *con;
  328. down(&connections_lock);
  329. for (i=1; i<=max_nodeid; i++) {
  330. con = __nodeid2con(i, 0);
  331. if (!con)
  332. continue;
  333. con->sctp_assoc = 0;
  334. if (test_and_clear_bit(CF_CONNECT_PENDING, &con->flags)) {
  335. if (!test_and_set_bit(CF_WRITE_PENDING, &con->flags)) {
  336. queue_work(send_workqueue, &con->swork);
  337. }
  338. }
  339. }
  340. up(&connections_lock);
  341. }
  342. /* Something happened to an association */
  343. static void process_sctp_notification(struct connection *con,
  344. struct msghdr *msg, char *buf)
  345. {
  346. union sctp_notification *sn = (union sctp_notification *)buf;
  347. if (sn->sn_header.sn_type == SCTP_ASSOC_CHANGE) {
  348. switch (sn->sn_assoc_change.sac_state) {
  349. case SCTP_COMM_UP:
  350. case SCTP_RESTART:
  351. {
  352. /* Check that the new node is in the lockspace */
  353. struct sctp_prim prim;
  354. int nodeid;
  355. int prim_len, ret;
  356. int addr_len;
  357. struct connection *new_con;
  358. struct file *file;
  359. sctp_peeloff_arg_t parg;
  360. int parglen = sizeof(parg);
  361. /*
  362. * We get this before any data for an association.
  363. * We verify that the node is in the cluster and
  364. * then peel off a socket for it.
  365. */
  366. if ((int)sn->sn_assoc_change.sac_assoc_id <= 0) {
  367. log_print("COMM_UP for invalid assoc ID %d",
  368. (int)sn->sn_assoc_change.sac_assoc_id);
  369. sctp_init_failed();
  370. return;
  371. }
  372. memset(&prim, 0, sizeof(struct sctp_prim));
  373. prim_len = sizeof(struct sctp_prim);
  374. prim.ssp_assoc_id = sn->sn_assoc_change.sac_assoc_id;
  375. ret = kernel_getsockopt(con->sock,
  376. IPPROTO_SCTP,
  377. SCTP_PRIMARY_ADDR,
  378. (char*)&prim,
  379. &prim_len);
  380. if (ret < 0) {
  381. log_print("getsockopt/sctp_primary_addr on "
  382. "new assoc %d failed : %d",
  383. (int)sn->sn_assoc_change.sac_assoc_id,
  384. ret);
  385. /* Retry INIT later */
  386. new_con = assoc2con(sn->sn_assoc_change.sac_assoc_id);
  387. if (new_con)
  388. clear_bit(CF_CONNECT_PENDING, &con->flags);
  389. return;
  390. }
  391. make_sockaddr(&prim.ssp_addr, 0, &addr_len);
  392. if (dlm_addr_to_nodeid(&prim.ssp_addr, &nodeid)) {
  393. int i;
  394. unsigned char *b=(unsigned char *)&prim.ssp_addr;
  395. log_print("reject connect from unknown addr");
  396. for (i=0; i<sizeof(struct sockaddr_storage);i++)
  397. printk("%02x ", b[i]);
  398. printk("\n");
  399. sctp_send_shutdown(prim.ssp_assoc_id);
  400. return;
  401. }
  402. new_con = nodeid2con(nodeid, GFP_KERNEL);
  403. if (!new_con)
  404. return;
  405. /* Peel off a new sock */
  406. parg.associd = sn->sn_assoc_change.sac_assoc_id;
  407. ret = kernel_getsockopt(con->sock, IPPROTO_SCTP,
  408. SCTP_SOCKOPT_PEELOFF,
  409. (void *)&parg, &parglen);
  410. if (ret) {
  411. log_print("Can't peel off a socket for "
  412. "connection %d to node %d: err=%d\n",
  413. parg.associd, nodeid, ret);
  414. }
  415. file = fget(parg.sd);
  416. new_con->sock = SOCKET_I(file->f_dentry->d_inode);
  417. add_sock(new_con->sock, new_con);
  418. fput(file);
  419. put_unused_fd(parg.sd);
  420. log_print("got new/restarted association %d nodeid %d",
  421. (int)sn->sn_assoc_change.sac_assoc_id, nodeid);
  422. /* Send any pending writes */
  423. clear_bit(CF_CONNECT_PENDING, &new_con->flags);
  424. clear_bit(CF_INIT_PENDING, &con->flags);
  425. if (!test_and_set_bit(CF_WRITE_PENDING, &new_con->flags)) {
  426. queue_work(send_workqueue, &new_con->swork);
  427. }
  428. if (!test_and_set_bit(CF_READ_PENDING, &new_con->flags))
  429. queue_work(recv_workqueue, &new_con->rwork);
  430. }
  431. break;
  432. case SCTP_COMM_LOST:
  433. case SCTP_SHUTDOWN_COMP:
  434. {
  435. con = assoc2con(sn->sn_assoc_change.sac_assoc_id);
  436. if (con) {
  437. con->sctp_assoc = 0;
  438. }
  439. }
  440. break;
  441. /* We don't know which INIT failed, so clear the PENDING flags
  442. * on them all. if assoc_id is zero then it will then try
  443. * again */
  444. case SCTP_CANT_STR_ASSOC:
  445. {
  446. log_print("Can't start SCTP association - retrying");
  447. sctp_init_failed();
  448. }
  449. break;
  450. default:
  451. log_print("unexpected SCTP assoc change id=%d state=%d",
  452. (int)sn->sn_assoc_change.sac_assoc_id,
  453. sn->sn_assoc_change.sac_state);
  454. }
  455. }
  456. }
  457. /* Data received from remote end */
  458. static int receive_from_sock(struct connection *con)
  459. {
  460. int ret = 0;
  461. struct msghdr msg = {};
  462. struct kvec iov[2];
  463. unsigned len;
  464. int r;
  465. int call_again_soon = 0;
  466. int nvec;
  467. char incmsg[CMSG_SPACE(sizeof(struct sctp_sndrcvinfo))];
  468. mutex_lock(&con->sock_mutex);
  469. if (con->sock == NULL) {
  470. ret = -EAGAIN;
  471. goto out_close;
  472. }
  473. if (con->rx_page == NULL) {
  474. /*
  475. * This doesn't need to be atomic, but I think it should
  476. * improve performance if it is.
  477. */
  478. con->rx_page = alloc_page(GFP_ATOMIC);
  479. if (con->rx_page == NULL)
  480. goto out_resched;
  481. cbuf_init(&con->cb, PAGE_CACHE_SIZE);
  482. }
  483. /* Only SCTP needs these really */
  484. memset(&incmsg, 0, sizeof(incmsg));
  485. msg.msg_control = incmsg;
  486. msg.msg_controllen = sizeof(incmsg);
  487. /*
  488. * iov[0] is the bit of the circular buffer between the current end
  489. * point (cb.base + cb.len) and the end of the buffer.
  490. */
  491. iov[0].iov_len = con->cb.base - cbuf_data(&con->cb);
  492. iov[0].iov_base = page_address(con->rx_page) + cbuf_data(&con->cb);
  493. iov[1].iov_len = 0;
  494. nvec = 1;
  495. /*
  496. * iov[1] is the bit of the circular buffer between the start of the
  497. * buffer and the start of the currently used section (cb.base)
  498. */
  499. if (cbuf_data(&con->cb) >= con->cb.base) {
  500. iov[0].iov_len = PAGE_CACHE_SIZE - cbuf_data(&con->cb);
  501. iov[1].iov_len = con->cb.base;
  502. iov[1].iov_base = page_address(con->rx_page);
  503. nvec = 2;
  504. }
  505. len = iov[0].iov_len + iov[1].iov_len;
  506. r = ret = kernel_recvmsg(con->sock, &msg, iov, nvec, len,
  507. MSG_DONTWAIT | MSG_NOSIGNAL);
  508. if (ret <= 0)
  509. goto out_close;
  510. /* Process SCTP notifications */
  511. if (msg.msg_flags & MSG_NOTIFICATION) {
  512. msg.msg_control = incmsg;
  513. msg.msg_controllen = sizeof(incmsg);
  514. process_sctp_notification(con, &msg,
  515. page_address(con->rx_page) + con->cb.base);
  516. mutex_unlock(&con->sock_mutex);
  517. return 0;
  518. }
  519. BUG_ON(con->nodeid == 0);
  520. if (ret == len)
  521. call_again_soon = 1;
  522. cbuf_add(&con->cb, ret);
  523. ret = dlm_process_incoming_buffer(con->nodeid,
  524. page_address(con->rx_page),
  525. con->cb.base, con->cb.len,
  526. PAGE_CACHE_SIZE);
  527. if (ret == -EBADMSG) {
  528. log_print("lowcomms: addr=%p, base=%u, len=%u, "
  529. "iov_len=%u, iov_base[0]=%p, read=%d",
  530. page_address(con->rx_page), con->cb.base, con->cb.len,
  531. len, iov[0].iov_base, r);
  532. }
  533. if (ret < 0)
  534. goto out_close;
  535. cbuf_eat(&con->cb, ret);
  536. if (cbuf_empty(&con->cb) && !call_again_soon) {
  537. __free_page(con->rx_page);
  538. con->rx_page = NULL;
  539. }
  540. if (call_again_soon)
  541. goto out_resched;
  542. mutex_unlock(&con->sock_mutex);
  543. return 0;
  544. out_resched:
  545. if (!test_and_set_bit(CF_READ_PENDING, &con->flags))
  546. queue_work(recv_workqueue, &con->rwork);
  547. mutex_unlock(&con->sock_mutex);
  548. return -EAGAIN;
  549. out_close:
  550. mutex_unlock(&con->sock_mutex);
  551. if (ret != -EAGAIN && !test_bit(CF_IS_OTHERCON, &con->flags)) {
  552. close_connection(con, false);
  553. /* Reconnect when there is something to send */
  554. }
  555. /* Don't return success if we really got EOF */
  556. if (ret == 0)
  557. ret = -EAGAIN;
  558. return ret;
  559. }
  560. /* Listening socket is busy, accept a connection */
  561. static int tcp_accept_from_sock(struct connection *con)
  562. {
  563. int result;
  564. struct sockaddr_storage peeraddr;
  565. struct socket *newsock;
  566. int len;
  567. int nodeid;
  568. struct connection *newcon;
  569. struct connection *addcon;
  570. memset(&peeraddr, 0, sizeof(peeraddr));
  571. result = sock_create_kern(dlm_local_addr[0]->ss_family, SOCK_STREAM,
  572. IPPROTO_TCP, &newsock);
  573. if (result < 0)
  574. return -ENOMEM;
  575. mutex_lock_nested(&con->sock_mutex, 0);
  576. result = -ENOTCONN;
  577. if (con->sock == NULL)
  578. goto accept_err;
  579. newsock->type = con->sock->type;
  580. newsock->ops = con->sock->ops;
  581. result = con->sock->ops->accept(con->sock, newsock, O_NONBLOCK);
  582. if (result < 0)
  583. goto accept_err;
  584. /* Get the connected socket's peer */
  585. memset(&peeraddr, 0, sizeof(peeraddr));
  586. if (newsock->ops->getname(newsock, (struct sockaddr *)&peeraddr,
  587. &len, 2)) {
  588. result = -ECONNABORTED;
  589. goto accept_err;
  590. }
  591. /* Get the new node's NODEID */
  592. make_sockaddr(&peeraddr, 0, &len);
  593. if (dlm_addr_to_nodeid(&peeraddr, &nodeid)) {
  594. log_print("connect from non cluster node");
  595. sock_release(newsock);
  596. mutex_unlock(&con->sock_mutex);
  597. return -1;
  598. }
  599. log_print("got connection from %d", nodeid);
  600. /* Check to see if we already have a connection to this node. This
  601. * could happen if the two nodes initiate a connection at roughly
  602. * the same time and the connections cross on the wire.
  603. * In this case we store the incoming one in "othercon"
  604. */
  605. newcon = nodeid2con(nodeid, GFP_KERNEL);
  606. if (!newcon) {
  607. result = -ENOMEM;
  608. goto accept_err;
  609. }
  610. mutex_lock_nested(&newcon->sock_mutex, 1);
  611. if (newcon->sock) {
  612. struct connection *othercon = newcon->othercon;
  613. if (!othercon) {
  614. othercon = kmem_cache_zalloc(con_cache, GFP_KERNEL);
  615. if (!othercon) {
  616. log_print("failed to allocate incoming socket");
  617. mutex_unlock(&newcon->sock_mutex);
  618. result = -ENOMEM;
  619. goto accept_err;
  620. }
  621. othercon->nodeid = nodeid;
  622. othercon->rx_action = receive_from_sock;
  623. mutex_init(&othercon->sock_mutex);
  624. INIT_WORK(&othercon->swork, process_send_sockets);
  625. INIT_WORK(&othercon->rwork, process_recv_sockets);
  626. set_bit(CF_IS_OTHERCON, &othercon->flags);
  627. newcon->othercon = othercon;
  628. othercon->sock = newsock;
  629. newsock->sk->sk_user_data = othercon;
  630. add_sock(newsock, othercon);
  631. addcon = othercon;
  632. }
  633. else {
  634. printk("Extra connection from node %d attempted\n", nodeid);
  635. result = -EAGAIN;
  636. mutex_unlock(&newcon->sock_mutex);
  637. goto accept_err;
  638. }
  639. }
  640. else {
  641. newsock->sk->sk_user_data = newcon;
  642. newcon->rx_action = receive_from_sock;
  643. add_sock(newsock, newcon);
  644. addcon = newcon;
  645. }
  646. mutex_unlock(&newcon->sock_mutex);
  647. /*
  648. * Add it to the active queue in case we got data
  649. * beween processing the accept adding the socket
  650. * to the read_sockets list
  651. */
  652. if (!test_and_set_bit(CF_READ_PENDING, &addcon->flags))
  653. queue_work(recv_workqueue, &addcon->rwork);
  654. mutex_unlock(&con->sock_mutex);
  655. return 0;
  656. accept_err:
  657. mutex_unlock(&con->sock_mutex);
  658. sock_release(newsock);
  659. if (result != -EAGAIN)
  660. log_print("error accepting connection from node: %d", result);
  661. return result;
  662. }
  663. static void free_entry(struct writequeue_entry *e)
  664. {
  665. __free_page(e->page);
  666. kfree(e);
  667. }
  668. /* Initiate an SCTP association.
  669. This is a special case of send_to_sock() in that we don't yet have a
  670. peeled-off socket for this association, so we use the listening socket
  671. and add the primary IP address of the remote node.
  672. */
  673. static void sctp_init_assoc(struct connection *con)
  674. {
  675. struct sockaddr_storage rem_addr;
  676. char outcmsg[CMSG_SPACE(sizeof(struct sctp_sndrcvinfo))];
  677. struct msghdr outmessage;
  678. struct cmsghdr *cmsg;
  679. struct sctp_sndrcvinfo *sinfo;
  680. struct connection *base_con;
  681. struct writequeue_entry *e;
  682. int len, offset;
  683. int ret;
  684. int addrlen;
  685. struct kvec iov[1];
  686. if (test_and_set_bit(CF_INIT_PENDING, &con->flags))
  687. return;
  688. if (con->retries++ > MAX_CONNECT_RETRIES)
  689. return;
  690. log_print("Initiating association with node %d", con->nodeid);
  691. if (nodeid_to_addr(con->nodeid, (struct sockaddr *)&rem_addr)) {
  692. log_print("no address for nodeid %d", con->nodeid);
  693. return;
  694. }
  695. base_con = nodeid2con(0, 0);
  696. BUG_ON(base_con == NULL);
  697. make_sockaddr(&rem_addr, dlm_config.ci_tcp_port, &addrlen);
  698. outmessage.msg_name = &rem_addr;
  699. outmessage.msg_namelen = addrlen;
  700. outmessage.msg_control = outcmsg;
  701. outmessage.msg_controllen = sizeof(outcmsg);
  702. outmessage.msg_flags = MSG_EOR;
  703. spin_lock(&con->writequeue_lock);
  704. e = list_entry(con->writequeue.next, struct writequeue_entry,
  705. list);
  706. BUG_ON((struct list_head *) e == &con->writequeue);
  707. len = e->len;
  708. offset = e->offset;
  709. spin_unlock(&con->writequeue_lock);
  710. kmap(e->page);
  711. /* Send the first block off the write queue */
  712. iov[0].iov_base = page_address(e->page)+offset;
  713. iov[0].iov_len = len;
  714. cmsg = CMSG_FIRSTHDR(&outmessage);
  715. cmsg->cmsg_level = IPPROTO_SCTP;
  716. cmsg->cmsg_type = SCTP_SNDRCV;
  717. cmsg->cmsg_len = CMSG_LEN(sizeof(struct sctp_sndrcvinfo));
  718. sinfo = CMSG_DATA(cmsg);
  719. memset(sinfo, 0x00, sizeof(struct sctp_sndrcvinfo));
  720. sinfo->sinfo_ppid = cpu_to_le32(dlm_our_nodeid());
  721. outmessage.msg_controllen = cmsg->cmsg_len;
  722. ret = kernel_sendmsg(base_con->sock, &outmessage, iov, 1, len);
  723. if (ret < 0) {
  724. log_print("Send first packet to node %d failed: %d",
  725. con->nodeid, ret);
  726. /* Try again later */
  727. clear_bit(CF_CONNECT_PENDING, &con->flags);
  728. clear_bit(CF_INIT_PENDING, &con->flags);
  729. }
  730. else {
  731. spin_lock(&con->writequeue_lock);
  732. e->offset += ret;
  733. e->len -= ret;
  734. if (e->len == 0 && e->users == 0) {
  735. list_del(&e->list);
  736. kunmap(e->page);
  737. free_entry(e);
  738. }
  739. spin_unlock(&con->writequeue_lock);
  740. }
  741. }
  742. /* Connect a new socket to its peer */
  743. static void tcp_connect_to_sock(struct connection *con)
  744. {
  745. int result = -EHOSTUNREACH;
  746. struct sockaddr_storage saddr;
  747. int addr_len;
  748. struct socket *sock;
  749. if (con->nodeid == 0) {
  750. log_print("attempt to connect sock 0 foiled");
  751. return;
  752. }
  753. mutex_lock(&con->sock_mutex);
  754. if (con->retries++ > MAX_CONNECT_RETRIES)
  755. goto out;
  756. /* Some odd races can cause double-connects, ignore them */
  757. if (con->sock) {
  758. result = 0;
  759. goto out;
  760. }
  761. /* Create a socket to communicate with */
  762. result = sock_create_kern(dlm_local_addr[0]->ss_family, SOCK_STREAM,
  763. IPPROTO_TCP, &sock);
  764. if (result < 0)
  765. goto out_err;
  766. memset(&saddr, 0, sizeof(saddr));
  767. if (dlm_nodeid_to_addr(con->nodeid, &saddr))
  768. goto out_err;
  769. sock->sk->sk_user_data = con;
  770. con->rx_action = receive_from_sock;
  771. con->connect_action = tcp_connect_to_sock;
  772. add_sock(sock, con);
  773. make_sockaddr(&saddr, dlm_config.ci_tcp_port, &addr_len);
  774. log_print("connecting to %d", con->nodeid);
  775. result =
  776. sock->ops->connect(sock, (struct sockaddr *)&saddr, addr_len,
  777. O_NONBLOCK);
  778. if (result == -EINPROGRESS)
  779. result = 0;
  780. if (result == 0)
  781. goto out;
  782. out_err:
  783. if (con->sock) {
  784. sock_release(con->sock);
  785. con->sock = NULL;
  786. }
  787. /*
  788. * Some errors are fatal and this list might need adjusting. For other
  789. * errors we try again until the max number of retries is reached.
  790. */
  791. if (result != -EHOSTUNREACH && result != -ENETUNREACH &&
  792. result != -ENETDOWN && result != EINVAL
  793. && result != -EPROTONOSUPPORT) {
  794. lowcomms_connect_sock(con);
  795. result = 0;
  796. }
  797. out:
  798. mutex_unlock(&con->sock_mutex);
  799. return;
  800. }
  801. static struct socket *tcp_create_listen_sock(struct connection *con,
  802. struct sockaddr_storage *saddr)
  803. {
  804. struct socket *sock = NULL;
  805. int result = 0;
  806. int one = 1;
  807. int addr_len;
  808. if (dlm_local_addr[0]->ss_family == AF_INET)
  809. addr_len = sizeof(struct sockaddr_in);
  810. else
  811. addr_len = sizeof(struct sockaddr_in6);
  812. /* Create a socket to communicate with */
  813. result = sock_create_kern(dlm_local_addr[0]->ss_family, SOCK_STREAM,
  814. IPPROTO_TCP, &sock);
  815. if (result < 0) {
  816. log_print("Can't create listening comms socket");
  817. goto create_out;
  818. }
  819. result = kernel_setsockopt(sock, SOL_SOCKET, SO_REUSEADDR,
  820. (char *)&one, sizeof(one));
  821. if (result < 0) {
  822. log_print("Failed to set SO_REUSEADDR on socket: %d", result);
  823. }
  824. sock->sk->sk_user_data = con;
  825. con->rx_action = tcp_accept_from_sock;
  826. con->connect_action = tcp_connect_to_sock;
  827. con->sock = sock;
  828. /* Bind to our port */
  829. make_sockaddr(saddr, dlm_config.ci_tcp_port, &addr_len);
  830. result = sock->ops->bind(sock, (struct sockaddr *) saddr, addr_len);
  831. if (result < 0) {
  832. log_print("Can't bind to port %d", dlm_config.ci_tcp_port);
  833. sock_release(sock);
  834. sock = NULL;
  835. con->sock = NULL;
  836. goto create_out;
  837. }
  838. result = kernel_setsockopt(sock, SOL_SOCKET, SO_KEEPALIVE,
  839. (char *)&one, sizeof(one));
  840. if (result < 0) {
  841. log_print("Set keepalive failed: %d", result);
  842. }
  843. result = sock->ops->listen(sock, 5);
  844. if (result < 0) {
  845. log_print("Can't listen on port %d", dlm_config.ci_tcp_port);
  846. sock_release(sock);
  847. sock = NULL;
  848. goto create_out;
  849. }
  850. create_out:
  851. return sock;
  852. }
  853. /* Get local addresses */
  854. static void init_local(void)
  855. {
  856. struct sockaddr_storage sas, *addr;
  857. int i;
  858. dlm_local_count = 0;
  859. for (i = 0; i < DLM_MAX_ADDR_COUNT - 1; i++) {
  860. if (dlm_our_addr(&sas, i))
  861. break;
  862. addr = kmalloc(sizeof(*addr), GFP_KERNEL);
  863. if (!addr)
  864. break;
  865. memcpy(addr, &sas, sizeof(*addr));
  866. dlm_local_addr[dlm_local_count++] = addr;
  867. }
  868. }
  869. /* Bind to an IP address. SCTP allows multiple address so it can do
  870. multi-homing */
  871. static int add_sctp_bind_addr(struct connection *sctp_con,
  872. struct sockaddr_storage *addr,
  873. int addr_len, int num)
  874. {
  875. int result = 0;
  876. if (num == 1)
  877. result = kernel_bind(sctp_con->sock,
  878. (struct sockaddr *) addr,
  879. addr_len);
  880. else
  881. result = kernel_setsockopt(sctp_con->sock, SOL_SCTP,
  882. SCTP_SOCKOPT_BINDX_ADD,
  883. (char *)addr, addr_len);
  884. if (result < 0)
  885. log_print("Can't bind to port %d addr number %d",
  886. dlm_config.ci_tcp_port, num);
  887. return result;
  888. }
  889. /* Initialise SCTP socket and bind to all interfaces */
  890. static int sctp_listen_for_all(void)
  891. {
  892. struct socket *sock = NULL;
  893. struct sockaddr_storage localaddr;
  894. struct sctp_event_subscribe subscribe;
  895. int result = -EINVAL, num = 1, i, addr_len;
  896. struct connection *con = nodeid2con(0, GFP_KERNEL);
  897. int bufsize = NEEDED_RMEM;
  898. if (!con)
  899. return -ENOMEM;
  900. log_print("Using SCTP for communications");
  901. result = sock_create_kern(dlm_local_addr[0]->ss_family, SOCK_SEQPACKET,
  902. IPPROTO_SCTP, &sock);
  903. if (result < 0) {
  904. log_print("Can't create comms socket, check SCTP is loaded");
  905. goto out;
  906. }
  907. /* Listen for events */
  908. memset(&subscribe, 0, sizeof(subscribe));
  909. subscribe.sctp_data_io_event = 1;
  910. subscribe.sctp_association_event = 1;
  911. subscribe.sctp_send_failure_event = 1;
  912. subscribe.sctp_shutdown_event = 1;
  913. subscribe.sctp_partial_delivery_event = 1;
  914. result = kernel_setsockopt(sock, SOL_SOCKET, SO_RCVBUF,
  915. (char *)&bufsize, sizeof(bufsize));
  916. if (result)
  917. log_print("Error increasing buffer space on socket %d", result);
  918. result = kernel_setsockopt(sock, SOL_SCTP, SCTP_EVENTS,
  919. (char *)&subscribe, sizeof(subscribe));
  920. if (result < 0) {
  921. log_print("Failed to set SCTP_EVENTS on socket: result=%d",
  922. result);
  923. goto create_delsock;
  924. }
  925. /* Init con struct */
  926. sock->sk->sk_user_data = con;
  927. con->sock = sock;
  928. con->sock->sk->sk_data_ready = lowcomms_data_ready;
  929. con->rx_action = receive_from_sock;
  930. con->connect_action = sctp_init_assoc;
  931. /* Bind to all interfaces. */
  932. for (i = 0; i < dlm_local_count; i++) {
  933. memcpy(&localaddr, dlm_local_addr[i], sizeof(localaddr));
  934. make_sockaddr(&localaddr, dlm_config.ci_tcp_port, &addr_len);
  935. result = add_sctp_bind_addr(con, &localaddr, addr_len, num);
  936. if (result)
  937. goto create_delsock;
  938. ++num;
  939. }
  940. result = sock->ops->listen(sock, 5);
  941. if (result < 0) {
  942. log_print("Can't set socket listening");
  943. goto create_delsock;
  944. }
  945. return 0;
  946. create_delsock:
  947. sock_release(sock);
  948. con->sock = NULL;
  949. out:
  950. return result;
  951. }
  952. static int tcp_listen_for_all(void)
  953. {
  954. struct socket *sock = NULL;
  955. struct connection *con = nodeid2con(0, GFP_KERNEL);
  956. int result = -EINVAL;
  957. if (!con)
  958. return -ENOMEM;
  959. /* We don't support multi-homed hosts */
  960. if (dlm_local_addr[1] != NULL) {
  961. log_print("TCP protocol can't handle multi-homed hosts, "
  962. "try SCTP");
  963. return -EINVAL;
  964. }
  965. log_print("Using TCP for communications");
  966. set_bit(CF_IS_OTHERCON, &con->flags);
  967. sock = tcp_create_listen_sock(con, dlm_local_addr[0]);
  968. if (sock) {
  969. add_sock(sock, con);
  970. result = 0;
  971. }
  972. else {
  973. result = -EADDRINUSE;
  974. }
  975. return result;
  976. }
  977. static struct writequeue_entry *new_writequeue_entry(struct connection *con,
  978. gfp_t allocation)
  979. {
  980. struct writequeue_entry *entry;
  981. entry = kmalloc(sizeof(struct writequeue_entry), allocation);
  982. if (!entry)
  983. return NULL;
  984. entry->page = alloc_page(allocation);
  985. if (!entry->page) {
  986. kfree(entry);
  987. return NULL;
  988. }
  989. entry->offset = 0;
  990. entry->len = 0;
  991. entry->end = 0;
  992. entry->users = 0;
  993. entry->con = con;
  994. return entry;
  995. }
  996. void *dlm_lowcomms_get_buffer(int nodeid, int len, gfp_t allocation, char **ppc)
  997. {
  998. struct connection *con;
  999. struct writequeue_entry *e;
  1000. int offset = 0;
  1001. int users = 0;
  1002. con = nodeid2con(nodeid, allocation);
  1003. if (!con)
  1004. return NULL;
  1005. spin_lock(&con->writequeue_lock);
  1006. e = list_entry(con->writequeue.prev, struct writequeue_entry, list);
  1007. if ((&e->list == &con->writequeue) ||
  1008. (PAGE_CACHE_SIZE - e->end < len)) {
  1009. e = NULL;
  1010. } else {
  1011. offset = e->end;
  1012. e->end += len;
  1013. users = e->users++;
  1014. }
  1015. spin_unlock(&con->writequeue_lock);
  1016. if (e) {
  1017. got_one:
  1018. if (users == 0)
  1019. kmap(e->page);
  1020. *ppc = page_address(e->page) + offset;
  1021. return e;
  1022. }
  1023. e = new_writequeue_entry(con, allocation);
  1024. if (e) {
  1025. spin_lock(&con->writequeue_lock);
  1026. offset = e->end;
  1027. e->end += len;
  1028. users = e->users++;
  1029. list_add_tail(&e->list, &con->writequeue);
  1030. spin_unlock(&con->writequeue_lock);
  1031. goto got_one;
  1032. }
  1033. return NULL;
  1034. }
  1035. void dlm_lowcomms_commit_buffer(void *mh)
  1036. {
  1037. struct writequeue_entry *e = (struct writequeue_entry *)mh;
  1038. struct connection *con = e->con;
  1039. int users;
  1040. spin_lock(&con->writequeue_lock);
  1041. users = --e->users;
  1042. if (users)
  1043. goto out;
  1044. e->len = e->end - e->offset;
  1045. kunmap(e->page);
  1046. spin_unlock(&con->writequeue_lock);
  1047. if (!test_and_set_bit(CF_WRITE_PENDING, &con->flags)) {
  1048. queue_work(send_workqueue, &con->swork);
  1049. }
  1050. return;
  1051. out:
  1052. spin_unlock(&con->writequeue_lock);
  1053. return;
  1054. }
  1055. /* Send a message */
  1056. static void send_to_sock(struct connection *con)
  1057. {
  1058. int ret = 0;
  1059. ssize_t(*sendpage) (struct socket *, struct page *, int, size_t, int);
  1060. const int msg_flags = MSG_DONTWAIT | MSG_NOSIGNAL;
  1061. struct writequeue_entry *e;
  1062. int len, offset;
  1063. mutex_lock(&con->sock_mutex);
  1064. if (con->sock == NULL)
  1065. goto out_connect;
  1066. sendpage = con->sock->ops->sendpage;
  1067. spin_lock(&con->writequeue_lock);
  1068. for (;;) {
  1069. e = list_entry(con->writequeue.next, struct writequeue_entry,
  1070. list);
  1071. if ((struct list_head *) e == &con->writequeue)
  1072. break;
  1073. len = e->len;
  1074. offset = e->offset;
  1075. BUG_ON(len == 0 && e->users == 0);
  1076. spin_unlock(&con->writequeue_lock);
  1077. kmap(e->page);
  1078. ret = 0;
  1079. if (len) {
  1080. ret = sendpage(con->sock, e->page, offset, len,
  1081. msg_flags);
  1082. if (ret == -EAGAIN || ret == 0)
  1083. goto out;
  1084. if (ret <= 0)
  1085. goto send_error;
  1086. } else {
  1087. /* Don't starve people filling buffers */
  1088. cond_resched();
  1089. }
  1090. spin_lock(&con->writequeue_lock);
  1091. e->offset += ret;
  1092. e->len -= ret;
  1093. if (e->len == 0 && e->users == 0) {
  1094. list_del(&e->list);
  1095. kunmap(e->page);
  1096. free_entry(e);
  1097. continue;
  1098. }
  1099. }
  1100. spin_unlock(&con->writequeue_lock);
  1101. out:
  1102. mutex_unlock(&con->sock_mutex);
  1103. return;
  1104. send_error:
  1105. mutex_unlock(&con->sock_mutex);
  1106. close_connection(con, false);
  1107. lowcomms_connect_sock(con);
  1108. return;
  1109. out_connect:
  1110. mutex_unlock(&con->sock_mutex);
  1111. if (!test_bit(CF_INIT_PENDING, &con->flags))
  1112. lowcomms_connect_sock(con);
  1113. return;
  1114. }
  1115. static void clean_one_writequeue(struct connection *con)
  1116. {
  1117. struct list_head *list;
  1118. struct list_head *temp;
  1119. spin_lock(&con->writequeue_lock);
  1120. list_for_each_safe(list, temp, &con->writequeue) {
  1121. struct writequeue_entry *e =
  1122. list_entry(list, struct writequeue_entry, list);
  1123. list_del(&e->list);
  1124. free_entry(e);
  1125. }
  1126. spin_unlock(&con->writequeue_lock);
  1127. }
  1128. /* Called from recovery when it knows that a node has
  1129. left the cluster */
  1130. int dlm_lowcomms_close(int nodeid)
  1131. {
  1132. struct connection *con;
  1133. log_print("closing connection to node %d", nodeid);
  1134. con = nodeid2con(nodeid, 0);
  1135. if (con) {
  1136. clean_one_writequeue(con);
  1137. close_connection(con, true);
  1138. }
  1139. return 0;
  1140. }
  1141. /* Receive workqueue function */
  1142. static void process_recv_sockets(struct work_struct *work)
  1143. {
  1144. struct connection *con = container_of(work, struct connection, rwork);
  1145. int err;
  1146. clear_bit(CF_READ_PENDING, &con->flags);
  1147. do {
  1148. err = con->rx_action(con);
  1149. } while (!err);
  1150. }
  1151. /* Send workqueue function */
  1152. static void process_send_sockets(struct work_struct *work)
  1153. {
  1154. struct connection *con = container_of(work, struct connection, swork);
  1155. if (test_and_clear_bit(CF_CONNECT_PENDING, &con->flags)) {
  1156. con->connect_action(con);
  1157. }
  1158. clear_bit(CF_WRITE_PENDING, &con->flags);
  1159. send_to_sock(con);
  1160. }
  1161. /* Discard all entries on the write queues */
  1162. static void clean_writequeues(void)
  1163. {
  1164. int nodeid;
  1165. for (nodeid = 1; nodeid <= max_nodeid; nodeid++) {
  1166. struct connection *con = __nodeid2con(nodeid, 0);
  1167. if (con)
  1168. clean_one_writequeue(con);
  1169. }
  1170. }
  1171. static void work_stop(void)
  1172. {
  1173. destroy_workqueue(recv_workqueue);
  1174. destroy_workqueue(send_workqueue);
  1175. }
  1176. static int work_start(void)
  1177. {
  1178. int error;
  1179. recv_workqueue = create_workqueue("dlm_recv");
  1180. error = IS_ERR(recv_workqueue);
  1181. if (error) {
  1182. log_print("can't start dlm_recv %d", error);
  1183. return error;
  1184. }
  1185. send_workqueue = create_singlethread_workqueue("dlm_send");
  1186. error = IS_ERR(send_workqueue);
  1187. if (error) {
  1188. log_print("can't start dlm_send %d", error);
  1189. destroy_workqueue(recv_workqueue);
  1190. return error;
  1191. }
  1192. return 0;
  1193. }
  1194. void dlm_lowcomms_stop(void)
  1195. {
  1196. int i;
  1197. struct connection *con;
  1198. /* Set all the flags to prevent any
  1199. socket activity.
  1200. */
  1201. down(&connections_lock);
  1202. for (i = 0; i <= max_nodeid; i++) {
  1203. con = __nodeid2con(i, 0);
  1204. if (con) {
  1205. con->flags |= 0xFF;
  1206. if (con->sock)
  1207. con->sock->sk->sk_user_data = NULL;
  1208. }
  1209. }
  1210. up(&connections_lock);
  1211. work_stop();
  1212. down(&connections_lock);
  1213. clean_writequeues();
  1214. for (i = 0; i <= max_nodeid; i++) {
  1215. con = __nodeid2con(i, 0);
  1216. if (con) {
  1217. close_connection(con, true);
  1218. if (con->othercon)
  1219. kmem_cache_free(con_cache, con->othercon);
  1220. kmem_cache_free(con_cache, con);
  1221. }
  1222. }
  1223. max_nodeid = 0;
  1224. up(&connections_lock);
  1225. kmem_cache_destroy(con_cache);
  1226. idr_init(&connections_idr);
  1227. }
  1228. int dlm_lowcomms_start(void)
  1229. {
  1230. int error = -EINVAL;
  1231. struct connection *con;
  1232. init_local();
  1233. if (!dlm_local_count) {
  1234. error = -ENOTCONN;
  1235. log_print("no local IP address has been set");
  1236. goto out;
  1237. }
  1238. error = -ENOMEM;
  1239. con_cache = kmem_cache_create("dlm_conn", sizeof(struct connection),
  1240. __alignof__(struct connection), 0,
  1241. NULL);
  1242. if (!con_cache)
  1243. goto out;
  1244. /* Set some sysctl minima */
  1245. if (sysctl_rmem_max < NEEDED_RMEM)
  1246. sysctl_rmem_max = NEEDED_RMEM;
  1247. /* Start listening */
  1248. if (dlm_config.ci_protocol == 0)
  1249. error = tcp_listen_for_all();
  1250. else
  1251. error = sctp_listen_for_all();
  1252. if (error)
  1253. goto fail_unlisten;
  1254. error = work_start();
  1255. if (error)
  1256. goto fail_unlisten;
  1257. return 0;
  1258. fail_unlisten:
  1259. con = nodeid2con(0,0);
  1260. if (con) {
  1261. close_connection(con, false);
  1262. kmem_cache_free(con_cache, con);
  1263. }
  1264. kmem_cache_destroy(con_cache);
  1265. out:
  1266. return error;
  1267. }