associola.c 38 KB

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  1. /* SCTP kernel reference Implementation
  2. * (C) Copyright IBM Corp. 2001, 2004
  3. * Copyright (c) 1999-2000 Cisco, Inc.
  4. * Copyright (c) 1999-2001 Motorola, Inc.
  5. * Copyright (c) 2001 Intel Corp.
  6. * Copyright (c) 2001 La Monte H.P. Yarroll
  7. *
  8. * This file is part of the SCTP kernel reference Implementation
  9. *
  10. * This module provides the abstraction for an SCTP association.
  11. *
  12. * The SCTP reference implementation is free software;
  13. * you can redistribute it and/or modify it under the terms of
  14. * the GNU General Public License as published by
  15. * the Free Software Foundation; either version 2, or (at your option)
  16. * any later version.
  17. *
  18. * The SCTP reference implementation is distributed in the hope that it
  19. * will be useful, but WITHOUT ANY WARRANTY; without even the implied
  20. * ************************
  21. * warranty of MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.
  22. * See the GNU General Public License for more details.
  23. *
  24. * You should have received a copy of the GNU General Public License
  25. * along with GNU CC; see the file COPYING. If not, write to
  26. * the Free Software Foundation, 59 Temple Place - Suite 330,
  27. * Boston, MA 02111-1307, USA.
  28. *
  29. * Please send any bug reports or fixes you make to the
  30. * email address(es):
  31. * lksctp developers <lksctp-developers@lists.sourceforge.net>
  32. *
  33. * Or submit a bug report through the following website:
  34. * http://www.sf.net/projects/lksctp
  35. *
  36. * Written or modified by:
  37. * La Monte H.P. Yarroll <piggy@acm.org>
  38. * Karl Knutson <karl@athena.chicago.il.us>
  39. * Jon Grimm <jgrimm@us.ibm.com>
  40. * Xingang Guo <xingang.guo@intel.com>
  41. * Hui Huang <hui.huang@nokia.com>
  42. * Sridhar Samudrala <sri@us.ibm.com>
  43. * Daisy Chang <daisyc@us.ibm.com>
  44. * Ryan Layer <rmlayer@us.ibm.com>
  45. * Kevin Gao <kevin.gao@intel.com>
  46. *
  47. * Any bugs reported given to us we will try to fix... any fixes shared will
  48. * be incorporated into the next SCTP release.
  49. */
  50. #include <linux/types.h>
  51. #include <linux/fcntl.h>
  52. #include <linux/poll.h>
  53. #include <linux/init.h>
  54. #include <linux/sched.h>
  55. #include <linux/slab.h>
  56. #include <linux/in.h>
  57. #include <net/ipv6.h>
  58. #include <net/sctp/sctp.h>
  59. #include <net/sctp/sm.h>
  60. /* Forward declarations for internal functions. */
  61. static void sctp_assoc_bh_rcv(struct work_struct *work);
  62. /* 1st Level Abstractions. */
  63. /* Initialize a new association from provided memory. */
  64. static struct sctp_association *sctp_association_init(struct sctp_association *asoc,
  65. const struct sctp_endpoint *ep,
  66. const struct sock *sk,
  67. sctp_scope_t scope,
  68. gfp_t gfp)
  69. {
  70. struct sctp_sock *sp;
  71. int i;
  72. /* Retrieve the SCTP per socket area. */
  73. sp = sctp_sk((struct sock *)sk);
  74. /* Init all variables to a known value. */
  75. memset(asoc, 0, sizeof(struct sctp_association));
  76. /* Discarding const is appropriate here. */
  77. asoc->ep = (struct sctp_endpoint *)ep;
  78. sctp_endpoint_hold(asoc->ep);
  79. /* Hold the sock. */
  80. asoc->base.sk = (struct sock *)sk;
  81. sock_hold(asoc->base.sk);
  82. /* Initialize the common base substructure. */
  83. asoc->base.type = SCTP_EP_TYPE_ASSOCIATION;
  84. /* Initialize the object handling fields. */
  85. atomic_set(&asoc->base.refcnt, 1);
  86. asoc->base.dead = 0;
  87. asoc->base.malloced = 0;
  88. /* Initialize the bind addr area. */
  89. sctp_bind_addr_init(&asoc->base.bind_addr, ep->base.bind_addr.port);
  90. rwlock_init(&asoc->base.addr_lock);
  91. asoc->state = SCTP_STATE_CLOSED;
  92. /* Set these values from the socket values, a conversion between
  93. * millsecons to seconds/microseconds must also be done.
  94. */
  95. asoc->cookie_life.tv_sec = sp->assocparams.sasoc_cookie_life / 1000;
  96. asoc->cookie_life.tv_usec = (sp->assocparams.sasoc_cookie_life % 1000)
  97. * 1000;
  98. asoc->frag_point = 0;
  99. /* Set the association max_retrans and RTO values from the
  100. * socket values.
  101. */
  102. asoc->max_retrans = sp->assocparams.sasoc_asocmaxrxt;
  103. asoc->rto_initial = msecs_to_jiffies(sp->rtoinfo.srto_initial);
  104. asoc->rto_max = msecs_to_jiffies(sp->rtoinfo.srto_max);
  105. asoc->rto_min = msecs_to_jiffies(sp->rtoinfo.srto_min);
  106. asoc->overall_error_count = 0;
  107. /* Initialize the association's heartbeat interval based on the
  108. * sock configured value.
  109. */
  110. asoc->hbinterval = msecs_to_jiffies(sp->hbinterval);
  111. /* Initialize path max retrans value. */
  112. asoc->pathmaxrxt = sp->pathmaxrxt;
  113. /* Initialize default path MTU. */
  114. asoc->pathmtu = sp->pathmtu;
  115. /* Set association default SACK delay */
  116. asoc->sackdelay = msecs_to_jiffies(sp->sackdelay);
  117. /* Set the association default flags controlling
  118. * Heartbeat, SACK delay, and Path MTU Discovery.
  119. */
  120. asoc->param_flags = sp->param_flags;
  121. /* Initialize the maximum mumber of new data packets that can be sent
  122. * in a burst.
  123. */
  124. asoc->max_burst = sctp_max_burst;
  125. /* initialize association timers */
  126. asoc->timeouts[SCTP_EVENT_TIMEOUT_NONE] = 0;
  127. asoc->timeouts[SCTP_EVENT_TIMEOUT_T1_COOKIE] = asoc->rto_initial;
  128. asoc->timeouts[SCTP_EVENT_TIMEOUT_T1_INIT] = asoc->rto_initial;
  129. asoc->timeouts[SCTP_EVENT_TIMEOUT_T2_SHUTDOWN] = asoc->rto_initial;
  130. asoc->timeouts[SCTP_EVENT_TIMEOUT_T3_RTX] = 0;
  131. asoc->timeouts[SCTP_EVENT_TIMEOUT_T4_RTO] = 0;
  132. /* sctpimpguide Section 2.12.2
  133. * If the 'T5-shutdown-guard' timer is used, it SHOULD be set to the
  134. * recommended value of 5 times 'RTO.Max'.
  135. */
  136. asoc->timeouts[SCTP_EVENT_TIMEOUT_T5_SHUTDOWN_GUARD]
  137. = 5 * asoc->rto_max;
  138. asoc->timeouts[SCTP_EVENT_TIMEOUT_HEARTBEAT] = 0;
  139. asoc->timeouts[SCTP_EVENT_TIMEOUT_SACK] = asoc->sackdelay;
  140. asoc->timeouts[SCTP_EVENT_TIMEOUT_AUTOCLOSE] =
  141. sp->autoclose * HZ;
  142. /* Initilizes the timers */
  143. for (i = SCTP_EVENT_TIMEOUT_NONE; i < SCTP_NUM_TIMEOUT_TYPES; ++i) {
  144. init_timer(&asoc->timers[i]);
  145. asoc->timers[i].function = sctp_timer_events[i];
  146. asoc->timers[i].data = (unsigned long) asoc;
  147. }
  148. /* Pull default initialization values from the sock options.
  149. * Note: This assumes that the values have already been
  150. * validated in the sock.
  151. */
  152. asoc->c.sinit_max_instreams = sp->initmsg.sinit_max_instreams;
  153. asoc->c.sinit_num_ostreams = sp->initmsg.sinit_num_ostreams;
  154. asoc->max_init_attempts = sp->initmsg.sinit_max_attempts;
  155. asoc->max_init_timeo =
  156. msecs_to_jiffies(sp->initmsg.sinit_max_init_timeo);
  157. /* Allocate storage for the ssnmap after the inbound and outbound
  158. * streams have been negotiated during Init.
  159. */
  160. asoc->ssnmap = NULL;
  161. /* Set the local window size for receive.
  162. * This is also the rcvbuf space per association.
  163. * RFC 6 - A SCTP receiver MUST be able to receive a minimum of
  164. * 1500 bytes in one SCTP packet.
  165. */
  166. if ((sk->sk_rcvbuf/2) < SCTP_DEFAULT_MINWINDOW)
  167. asoc->rwnd = SCTP_DEFAULT_MINWINDOW;
  168. else
  169. asoc->rwnd = sk->sk_rcvbuf/2;
  170. asoc->a_rwnd = asoc->rwnd;
  171. asoc->rwnd_over = 0;
  172. /* Use my own max window until I learn something better. */
  173. asoc->peer.rwnd = SCTP_DEFAULT_MAXWINDOW;
  174. /* Set the sndbuf size for transmit. */
  175. asoc->sndbuf_used = 0;
  176. /* Initialize the receive memory counter */
  177. atomic_set(&asoc->rmem_alloc, 0);
  178. init_waitqueue_head(&asoc->wait);
  179. asoc->c.my_vtag = sctp_generate_tag(ep);
  180. asoc->peer.i.init_tag = 0; /* INIT needs a vtag of 0. */
  181. asoc->c.peer_vtag = 0;
  182. asoc->c.my_ttag = 0;
  183. asoc->c.peer_ttag = 0;
  184. asoc->c.my_port = ep->base.bind_addr.port;
  185. asoc->c.initial_tsn = sctp_generate_tsn(ep);
  186. asoc->next_tsn = asoc->c.initial_tsn;
  187. asoc->ctsn_ack_point = asoc->next_tsn - 1;
  188. asoc->adv_peer_ack_point = asoc->ctsn_ack_point;
  189. asoc->highest_sacked = asoc->ctsn_ack_point;
  190. asoc->last_cwr_tsn = asoc->ctsn_ack_point;
  191. asoc->unack_data = 0;
  192. /* ADDIP Section 4.1 Asconf Chunk Procedures
  193. *
  194. * When an endpoint has an ASCONF signaled change to be sent to the
  195. * remote endpoint it should do the following:
  196. * ...
  197. * A2) a serial number should be assigned to the chunk. The serial
  198. * number SHOULD be a monotonically increasing number. The serial
  199. * numbers SHOULD be initialized at the start of the
  200. * association to the same value as the initial TSN.
  201. */
  202. asoc->addip_serial = asoc->c.initial_tsn;
  203. INIT_LIST_HEAD(&asoc->addip_chunk_list);
  204. /* Make an empty list of remote transport addresses. */
  205. INIT_LIST_HEAD(&asoc->peer.transport_addr_list);
  206. asoc->peer.transport_count = 0;
  207. /* RFC 2960 5.1 Normal Establishment of an Association
  208. *
  209. * After the reception of the first data chunk in an
  210. * association the endpoint must immediately respond with a
  211. * sack to acknowledge the data chunk. Subsequent
  212. * acknowledgements should be done as described in Section
  213. * 6.2.
  214. *
  215. * [We implement this by telling a new association that it
  216. * already received one packet.]
  217. */
  218. asoc->peer.sack_needed = 1;
  219. /* Assume that the peer recongizes ASCONF until reported otherwise
  220. * via an ERROR chunk.
  221. */
  222. asoc->peer.asconf_capable = 1;
  223. /* Create an input queue. */
  224. sctp_inq_init(&asoc->base.inqueue);
  225. sctp_inq_set_th_handler(&asoc->base.inqueue, sctp_assoc_bh_rcv);
  226. /* Create an output queue. */
  227. sctp_outq_init(asoc, &asoc->outqueue);
  228. if (!sctp_ulpq_init(&asoc->ulpq, asoc))
  229. goto fail_init;
  230. /* Set up the tsn tracking. */
  231. sctp_tsnmap_init(&asoc->peer.tsn_map, SCTP_TSN_MAP_SIZE, 0);
  232. asoc->need_ecne = 0;
  233. asoc->assoc_id = 0;
  234. /* Assume that peer would support both address types unless we are
  235. * told otherwise.
  236. */
  237. asoc->peer.ipv4_address = 1;
  238. asoc->peer.ipv6_address = 1;
  239. INIT_LIST_HEAD(&asoc->asocs);
  240. asoc->autoclose = sp->autoclose;
  241. asoc->default_stream = sp->default_stream;
  242. asoc->default_ppid = sp->default_ppid;
  243. asoc->default_flags = sp->default_flags;
  244. asoc->default_context = sp->default_context;
  245. asoc->default_timetolive = sp->default_timetolive;
  246. asoc->default_rcv_context = sp->default_rcv_context;
  247. return asoc;
  248. fail_init:
  249. sctp_endpoint_put(asoc->ep);
  250. sock_put(asoc->base.sk);
  251. return NULL;
  252. }
  253. /* Allocate and initialize a new association */
  254. struct sctp_association *sctp_association_new(const struct sctp_endpoint *ep,
  255. const struct sock *sk,
  256. sctp_scope_t scope,
  257. gfp_t gfp)
  258. {
  259. struct sctp_association *asoc;
  260. asoc = t_new(struct sctp_association, gfp);
  261. if (!asoc)
  262. goto fail;
  263. if (!sctp_association_init(asoc, ep, sk, scope, gfp))
  264. goto fail_init;
  265. asoc->base.malloced = 1;
  266. SCTP_DBG_OBJCNT_INC(assoc);
  267. SCTP_DEBUG_PRINTK("Created asoc %p\n", asoc);
  268. return asoc;
  269. fail_init:
  270. kfree(asoc);
  271. fail:
  272. return NULL;
  273. }
  274. /* Free this association if possible. There may still be users, so
  275. * the actual deallocation may be delayed.
  276. */
  277. void sctp_association_free(struct sctp_association *asoc)
  278. {
  279. struct sock *sk = asoc->base.sk;
  280. struct sctp_transport *transport;
  281. struct list_head *pos, *temp;
  282. int i;
  283. /* Only real associations count against the endpoint, so
  284. * don't bother for if this is a temporary association.
  285. */
  286. if (!asoc->temp) {
  287. list_del(&asoc->asocs);
  288. /* Decrement the backlog value for a TCP-style listening
  289. * socket.
  290. */
  291. if (sctp_style(sk, TCP) && sctp_sstate(sk, LISTENING))
  292. sk->sk_ack_backlog--;
  293. }
  294. /* Mark as dead, so other users can know this structure is
  295. * going away.
  296. */
  297. asoc->base.dead = 1;
  298. /* Dispose of any data lying around in the outqueue. */
  299. sctp_outq_free(&asoc->outqueue);
  300. /* Dispose of any pending messages for the upper layer. */
  301. sctp_ulpq_free(&asoc->ulpq);
  302. /* Dispose of any pending chunks on the inqueue. */
  303. sctp_inq_free(&asoc->base.inqueue);
  304. /* Free ssnmap storage. */
  305. sctp_ssnmap_free(asoc->ssnmap);
  306. /* Clean up the bound address list. */
  307. sctp_bind_addr_free(&asoc->base.bind_addr);
  308. /* Do we need to go through all of our timers and
  309. * delete them? To be safe we will try to delete all, but we
  310. * should be able to go through and make a guess based
  311. * on our state.
  312. */
  313. for (i = SCTP_EVENT_TIMEOUT_NONE; i < SCTP_NUM_TIMEOUT_TYPES; ++i) {
  314. if (timer_pending(&asoc->timers[i]) &&
  315. del_timer(&asoc->timers[i]))
  316. sctp_association_put(asoc);
  317. }
  318. /* Free peer's cached cookie. */
  319. kfree(asoc->peer.cookie);
  320. /* Release the transport structures. */
  321. list_for_each_safe(pos, temp, &asoc->peer.transport_addr_list) {
  322. transport = list_entry(pos, struct sctp_transport, transports);
  323. list_del(pos);
  324. sctp_transport_free(transport);
  325. }
  326. asoc->peer.transport_count = 0;
  327. /* Free any cached ASCONF_ACK chunk. */
  328. if (asoc->addip_last_asconf_ack)
  329. sctp_chunk_free(asoc->addip_last_asconf_ack);
  330. /* Free any cached ASCONF chunk. */
  331. if (asoc->addip_last_asconf)
  332. sctp_chunk_free(asoc->addip_last_asconf);
  333. sctp_association_put(asoc);
  334. }
  335. /* Cleanup and free up an association. */
  336. static void sctp_association_destroy(struct sctp_association *asoc)
  337. {
  338. SCTP_ASSERT(asoc->base.dead, "Assoc is not dead", return);
  339. sctp_endpoint_put(asoc->ep);
  340. sock_put(asoc->base.sk);
  341. if (asoc->assoc_id != 0) {
  342. spin_lock_bh(&sctp_assocs_id_lock);
  343. idr_remove(&sctp_assocs_id, asoc->assoc_id);
  344. spin_unlock_bh(&sctp_assocs_id_lock);
  345. }
  346. BUG_TRAP(!atomic_read(&asoc->rmem_alloc));
  347. if (asoc->base.malloced) {
  348. kfree(asoc);
  349. SCTP_DBG_OBJCNT_DEC(assoc);
  350. }
  351. }
  352. /* Change the primary destination address for the peer. */
  353. void sctp_assoc_set_primary(struct sctp_association *asoc,
  354. struct sctp_transport *transport)
  355. {
  356. asoc->peer.primary_path = transport;
  357. /* Set a default msg_name for events. */
  358. memcpy(&asoc->peer.primary_addr, &transport->ipaddr,
  359. sizeof(union sctp_addr));
  360. /* If the primary path is changing, assume that the
  361. * user wants to use this new path.
  362. */
  363. if ((transport->state == SCTP_ACTIVE) ||
  364. (transport->state == SCTP_UNKNOWN))
  365. asoc->peer.active_path = transport;
  366. /*
  367. * SFR-CACC algorithm:
  368. * Upon the receipt of a request to change the primary
  369. * destination address, on the data structure for the new
  370. * primary destination, the sender MUST do the following:
  371. *
  372. * 1) If CHANGEOVER_ACTIVE is set, then there was a switch
  373. * to this destination address earlier. The sender MUST set
  374. * CYCLING_CHANGEOVER to indicate that this switch is a
  375. * double switch to the same destination address.
  376. */
  377. if (transport->cacc.changeover_active)
  378. transport->cacc.cycling_changeover = 1;
  379. /* 2) The sender MUST set CHANGEOVER_ACTIVE to indicate that
  380. * a changeover has occurred.
  381. */
  382. transport->cacc.changeover_active = 1;
  383. /* 3) The sender MUST store the next TSN to be sent in
  384. * next_tsn_at_change.
  385. */
  386. transport->cacc.next_tsn_at_change = asoc->next_tsn;
  387. }
  388. /* Remove a transport from an association. */
  389. void sctp_assoc_rm_peer(struct sctp_association *asoc,
  390. struct sctp_transport *peer)
  391. {
  392. struct list_head *pos;
  393. struct sctp_transport *transport;
  394. SCTP_DEBUG_PRINTK_IPADDR("sctp_assoc_rm_peer:association %p addr: ",
  395. " port: %d\n",
  396. asoc,
  397. (&peer->ipaddr),
  398. ntohs(peer->ipaddr.v4.sin_port));
  399. /* If we are to remove the current retran_path, update it
  400. * to the next peer before removing this peer from the list.
  401. */
  402. if (asoc->peer.retran_path == peer)
  403. sctp_assoc_update_retran_path(asoc);
  404. /* Remove this peer from the list. */
  405. list_del(&peer->transports);
  406. /* Get the first transport of asoc. */
  407. pos = asoc->peer.transport_addr_list.next;
  408. transport = list_entry(pos, struct sctp_transport, transports);
  409. /* Update any entries that match the peer to be deleted. */
  410. if (asoc->peer.primary_path == peer)
  411. sctp_assoc_set_primary(asoc, transport);
  412. if (asoc->peer.active_path == peer)
  413. asoc->peer.active_path = transport;
  414. if (asoc->peer.last_data_from == peer)
  415. asoc->peer.last_data_from = transport;
  416. /* If we remove the transport an INIT was last sent to, set it to
  417. * NULL. Combined with the update of the retran path above, this
  418. * will cause the next INIT to be sent to the next available
  419. * transport, maintaining the cycle.
  420. */
  421. if (asoc->init_last_sent_to == peer)
  422. asoc->init_last_sent_to = NULL;
  423. asoc->peer.transport_count--;
  424. sctp_transport_free(peer);
  425. }
  426. /* Add a transport address to an association. */
  427. struct sctp_transport *sctp_assoc_add_peer(struct sctp_association *asoc,
  428. const union sctp_addr *addr,
  429. const gfp_t gfp,
  430. const int peer_state)
  431. {
  432. struct sctp_transport *peer;
  433. struct sctp_sock *sp;
  434. unsigned short port;
  435. sp = sctp_sk(asoc->base.sk);
  436. /* AF_INET and AF_INET6 share common port field. */
  437. port = ntohs(addr->v4.sin_port);
  438. SCTP_DEBUG_PRINTK_IPADDR("sctp_assoc_add_peer:association %p addr: ",
  439. " port: %d state:%d\n",
  440. asoc,
  441. addr,
  442. port,
  443. peer_state);
  444. /* Set the port if it has not been set yet. */
  445. if (0 == asoc->peer.port)
  446. asoc->peer.port = port;
  447. /* Check to see if this is a duplicate. */
  448. peer = sctp_assoc_lookup_paddr(asoc, addr);
  449. if (peer) {
  450. if (peer->state == SCTP_UNKNOWN) {
  451. if (peer_state == SCTP_ACTIVE)
  452. peer->state = SCTP_ACTIVE;
  453. if (peer_state == SCTP_UNCONFIRMED)
  454. peer->state = SCTP_UNCONFIRMED;
  455. }
  456. return peer;
  457. }
  458. peer = sctp_transport_new(addr, gfp);
  459. if (!peer)
  460. return NULL;
  461. sctp_transport_set_owner(peer, asoc);
  462. /* Initialize the peer's heartbeat interval based on the
  463. * association configured value.
  464. */
  465. peer->hbinterval = asoc->hbinterval;
  466. /* Set the path max_retrans. */
  467. peer->pathmaxrxt = asoc->pathmaxrxt;
  468. /* Initialize the peer's SACK delay timeout based on the
  469. * association configured value.
  470. */
  471. peer->sackdelay = asoc->sackdelay;
  472. /* Enable/disable heartbeat, SACK delay, and path MTU discovery
  473. * based on association setting.
  474. */
  475. peer->param_flags = asoc->param_flags;
  476. /* Initialize the pmtu of the transport. */
  477. if (peer->param_flags & SPP_PMTUD_ENABLE)
  478. sctp_transport_pmtu(peer);
  479. else if (asoc->pathmtu)
  480. peer->pathmtu = asoc->pathmtu;
  481. else
  482. peer->pathmtu = SCTP_DEFAULT_MAXSEGMENT;
  483. /* If this is the first transport addr on this association,
  484. * initialize the association PMTU to the peer's PMTU.
  485. * If not and the current association PMTU is higher than the new
  486. * peer's PMTU, reset the association PMTU to the new peer's PMTU.
  487. */
  488. if (asoc->pathmtu)
  489. asoc->pathmtu = min_t(int, peer->pathmtu, asoc->pathmtu);
  490. else
  491. asoc->pathmtu = peer->pathmtu;
  492. SCTP_DEBUG_PRINTK("sctp_assoc_add_peer:association %p PMTU set to "
  493. "%d\n", asoc, asoc->pathmtu);
  494. asoc->frag_point = sctp_frag_point(sp, asoc->pathmtu);
  495. /* The asoc->peer.port might not be meaningful yet, but
  496. * initialize the packet structure anyway.
  497. */
  498. sctp_packet_init(&peer->packet, peer, asoc->base.bind_addr.port,
  499. asoc->peer.port);
  500. /* 7.2.1 Slow-Start
  501. *
  502. * o The initial cwnd before DATA transmission or after a sufficiently
  503. * long idle period MUST be set to
  504. * min(4*MTU, max(2*MTU, 4380 bytes))
  505. *
  506. * o The initial value of ssthresh MAY be arbitrarily high
  507. * (for example, implementations MAY use the size of the
  508. * receiver advertised window).
  509. */
  510. peer->cwnd = min(4*asoc->pathmtu, max_t(__u32, 2*asoc->pathmtu, 4380));
  511. /* At this point, we may not have the receiver's advertised window,
  512. * so initialize ssthresh to the default value and it will be set
  513. * later when we process the INIT.
  514. */
  515. peer->ssthresh = SCTP_DEFAULT_MAXWINDOW;
  516. peer->partial_bytes_acked = 0;
  517. peer->flight_size = 0;
  518. /* Set the transport's RTO.initial value */
  519. peer->rto = asoc->rto_initial;
  520. /* Set the peer's active state. */
  521. peer->state = peer_state;
  522. /* Attach the remote transport to our asoc. */
  523. list_add_tail(&peer->transports, &asoc->peer.transport_addr_list);
  524. asoc->peer.transport_count++;
  525. /* If we do not yet have a primary path, set one. */
  526. if (!asoc->peer.primary_path) {
  527. sctp_assoc_set_primary(asoc, peer);
  528. asoc->peer.retran_path = peer;
  529. }
  530. if (asoc->peer.active_path == asoc->peer.retran_path) {
  531. asoc->peer.retran_path = peer;
  532. }
  533. return peer;
  534. }
  535. /* Delete a transport address from an association. */
  536. void sctp_assoc_del_peer(struct sctp_association *asoc,
  537. const union sctp_addr *addr)
  538. {
  539. struct list_head *pos;
  540. struct list_head *temp;
  541. struct sctp_transport *transport;
  542. list_for_each_safe(pos, temp, &asoc->peer.transport_addr_list) {
  543. transport = list_entry(pos, struct sctp_transport, transports);
  544. if (sctp_cmp_addr_exact(addr, &transport->ipaddr)) {
  545. /* Do book keeping for removing the peer and free it. */
  546. sctp_assoc_rm_peer(asoc, transport);
  547. break;
  548. }
  549. }
  550. }
  551. /* Lookup a transport by address. */
  552. struct sctp_transport *sctp_assoc_lookup_paddr(
  553. const struct sctp_association *asoc,
  554. const union sctp_addr *address)
  555. {
  556. struct sctp_transport *t;
  557. struct list_head *pos;
  558. /* Cycle through all transports searching for a peer address. */
  559. list_for_each(pos, &asoc->peer.transport_addr_list) {
  560. t = list_entry(pos, struct sctp_transport, transports);
  561. if (sctp_cmp_addr_exact(address, &t->ipaddr))
  562. return t;
  563. }
  564. return NULL;
  565. }
  566. /* Engage in transport control operations.
  567. * Mark the transport up or down and send a notification to the user.
  568. * Select and update the new active and retran paths.
  569. */
  570. void sctp_assoc_control_transport(struct sctp_association *asoc,
  571. struct sctp_transport *transport,
  572. sctp_transport_cmd_t command,
  573. sctp_sn_error_t error)
  574. {
  575. struct sctp_transport *t = NULL;
  576. struct sctp_transport *first;
  577. struct sctp_transport *second;
  578. struct sctp_ulpevent *event;
  579. struct sockaddr_storage addr;
  580. struct list_head *pos;
  581. int spc_state = 0;
  582. /* Record the transition on the transport. */
  583. switch (command) {
  584. case SCTP_TRANSPORT_UP:
  585. transport->state = SCTP_ACTIVE;
  586. spc_state = SCTP_ADDR_AVAILABLE;
  587. break;
  588. case SCTP_TRANSPORT_DOWN:
  589. transport->state = SCTP_INACTIVE;
  590. spc_state = SCTP_ADDR_UNREACHABLE;
  591. break;
  592. default:
  593. return;
  594. };
  595. /* Generate and send a SCTP_PEER_ADDR_CHANGE notification to the
  596. * user.
  597. */
  598. memset(&addr, 0, sizeof(struct sockaddr_storage));
  599. memcpy(&addr, &transport->ipaddr, transport->af_specific->sockaddr_len);
  600. event = sctp_ulpevent_make_peer_addr_change(asoc, &addr,
  601. 0, spc_state, error, GFP_ATOMIC);
  602. if (event)
  603. sctp_ulpq_tail_event(&asoc->ulpq, event);
  604. /* Select new active and retran paths. */
  605. /* Look for the two most recently used active transports.
  606. *
  607. * This code produces the wrong ordering whenever jiffies
  608. * rolls over, but we still get usable transports, so we don't
  609. * worry about it.
  610. */
  611. first = NULL; second = NULL;
  612. list_for_each(pos, &asoc->peer.transport_addr_list) {
  613. t = list_entry(pos, struct sctp_transport, transports);
  614. if ((t->state == SCTP_INACTIVE) ||
  615. (t->state == SCTP_UNCONFIRMED))
  616. continue;
  617. if (!first || t->last_time_heard > first->last_time_heard) {
  618. second = first;
  619. first = t;
  620. }
  621. if (!second || t->last_time_heard > second->last_time_heard)
  622. second = t;
  623. }
  624. /* RFC 2960 6.4 Multi-Homed SCTP Endpoints
  625. *
  626. * By default, an endpoint should always transmit to the
  627. * primary path, unless the SCTP user explicitly specifies the
  628. * destination transport address (and possibly source
  629. * transport address) to use.
  630. *
  631. * [If the primary is active but not most recent, bump the most
  632. * recently used transport.]
  633. */
  634. if (((asoc->peer.primary_path->state == SCTP_ACTIVE) ||
  635. (asoc->peer.primary_path->state == SCTP_UNKNOWN)) &&
  636. first != asoc->peer.primary_path) {
  637. second = first;
  638. first = asoc->peer.primary_path;
  639. }
  640. /* If we failed to find a usable transport, just camp on the
  641. * primary, even if it is inactive.
  642. */
  643. if (!first) {
  644. first = asoc->peer.primary_path;
  645. second = asoc->peer.primary_path;
  646. }
  647. /* Set the active and retran transports. */
  648. asoc->peer.active_path = first;
  649. asoc->peer.retran_path = second;
  650. }
  651. /* Hold a reference to an association. */
  652. void sctp_association_hold(struct sctp_association *asoc)
  653. {
  654. atomic_inc(&asoc->base.refcnt);
  655. }
  656. /* Release a reference to an association and cleanup
  657. * if there are no more references.
  658. */
  659. void sctp_association_put(struct sctp_association *asoc)
  660. {
  661. if (atomic_dec_and_test(&asoc->base.refcnt))
  662. sctp_association_destroy(asoc);
  663. }
  664. /* Allocate the next TSN, Transmission Sequence Number, for the given
  665. * association.
  666. */
  667. __u32 sctp_association_get_next_tsn(struct sctp_association *asoc)
  668. {
  669. /* From Section 1.6 Serial Number Arithmetic:
  670. * Transmission Sequence Numbers wrap around when they reach
  671. * 2**32 - 1. That is, the next TSN a DATA chunk MUST use
  672. * after transmitting TSN = 2*32 - 1 is TSN = 0.
  673. */
  674. __u32 retval = asoc->next_tsn;
  675. asoc->next_tsn++;
  676. asoc->unack_data++;
  677. return retval;
  678. }
  679. /* Compare two addresses to see if they match. Wildcard addresses
  680. * only match themselves.
  681. */
  682. int sctp_cmp_addr_exact(const union sctp_addr *ss1,
  683. const union sctp_addr *ss2)
  684. {
  685. struct sctp_af *af;
  686. af = sctp_get_af_specific(ss1->sa.sa_family);
  687. if (unlikely(!af))
  688. return 0;
  689. return af->cmp_addr(ss1, ss2);
  690. }
  691. /* Return an ecne chunk to get prepended to a packet.
  692. * Note: We are sly and return a shared, prealloced chunk. FIXME:
  693. * No we don't, but we could/should.
  694. */
  695. struct sctp_chunk *sctp_get_ecne_prepend(struct sctp_association *asoc)
  696. {
  697. struct sctp_chunk *chunk;
  698. /* Send ECNE if needed.
  699. * Not being able to allocate a chunk here is not deadly.
  700. */
  701. if (asoc->need_ecne)
  702. chunk = sctp_make_ecne(asoc, asoc->last_ecne_tsn);
  703. else
  704. chunk = NULL;
  705. return chunk;
  706. }
  707. /*
  708. * Find which transport this TSN was sent on.
  709. */
  710. struct sctp_transport *sctp_assoc_lookup_tsn(struct sctp_association *asoc,
  711. __u32 tsn)
  712. {
  713. struct sctp_transport *active;
  714. struct sctp_transport *match;
  715. struct list_head *entry, *pos;
  716. struct sctp_transport *transport;
  717. struct sctp_chunk *chunk;
  718. __be32 key = htonl(tsn);
  719. match = NULL;
  720. /*
  721. * FIXME: In general, find a more efficient data structure for
  722. * searching.
  723. */
  724. /*
  725. * The general strategy is to search each transport's transmitted
  726. * list. Return which transport this TSN lives on.
  727. *
  728. * Let's be hopeful and check the active_path first.
  729. * Another optimization would be to know if there is only one
  730. * outbound path and not have to look for the TSN at all.
  731. *
  732. */
  733. active = asoc->peer.active_path;
  734. list_for_each(entry, &active->transmitted) {
  735. chunk = list_entry(entry, struct sctp_chunk, transmitted_list);
  736. if (key == chunk->subh.data_hdr->tsn) {
  737. match = active;
  738. goto out;
  739. }
  740. }
  741. /* If not found, go search all the other transports. */
  742. list_for_each(pos, &asoc->peer.transport_addr_list) {
  743. transport = list_entry(pos, struct sctp_transport, transports);
  744. if (transport == active)
  745. break;
  746. list_for_each(entry, &transport->transmitted) {
  747. chunk = list_entry(entry, struct sctp_chunk,
  748. transmitted_list);
  749. if (key == chunk->subh.data_hdr->tsn) {
  750. match = transport;
  751. goto out;
  752. }
  753. }
  754. }
  755. out:
  756. return match;
  757. }
  758. /* Is this the association we are looking for? */
  759. struct sctp_transport *sctp_assoc_is_match(struct sctp_association *asoc,
  760. const union sctp_addr *laddr,
  761. const union sctp_addr *paddr)
  762. {
  763. struct sctp_transport *transport;
  764. sctp_read_lock(&asoc->base.addr_lock);
  765. if ((htons(asoc->base.bind_addr.port) == laddr->v4.sin_port) &&
  766. (htons(asoc->peer.port) == paddr->v4.sin_port)) {
  767. transport = sctp_assoc_lookup_paddr(asoc, paddr);
  768. if (!transport)
  769. goto out;
  770. if (sctp_bind_addr_match(&asoc->base.bind_addr, laddr,
  771. sctp_sk(asoc->base.sk)))
  772. goto out;
  773. }
  774. transport = NULL;
  775. out:
  776. sctp_read_unlock(&asoc->base.addr_lock);
  777. return transport;
  778. }
  779. /* Do delayed input processing. This is scheduled by sctp_rcv(). */
  780. static void sctp_assoc_bh_rcv(struct work_struct *work)
  781. {
  782. struct sctp_association *asoc =
  783. container_of(work, struct sctp_association,
  784. base.inqueue.immediate);
  785. struct sctp_endpoint *ep;
  786. struct sctp_chunk *chunk;
  787. struct sock *sk;
  788. struct sctp_inq *inqueue;
  789. int state;
  790. sctp_subtype_t subtype;
  791. int error = 0;
  792. /* The association should be held so we should be safe. */
  793. ep = asoc->ep;
  794. sk = asoc->base.sk;
  795. inqueue = &asoc->base.inqueue;
  796. sctp_association_hold(asoc);
  797. while (NULL != (chunk = sctp_inq_pop(inqueue))) {
  798. state = asoc->state;
  799. subtype = SCTP_ST_CHUNK(chunk->chunk_hdr->type);
  800. /* Remember where the last DATA chunk came from so we
  801. * know where to send the SACK.
  802. */
  803. if (sctp_chunk_is_data(chunk))
  804. asoc->peer.last_data_from = chunk->transport;
  805. else
  806. SCTP_INC_STATS(SCTP_MIB_INCTRLCHUNKS);
  807. if (chunk->transport)
  808. chunk->transport->last_time_heard = jiffies;
  809. /* Run through the state machine. */
  810. error = sctp_do_sm(SCTP_EVENT_T_CHUNK, subtype,
  811. state, ep, asoc, chunk, GFP_ATOMIC);
  812. /* Check to see if the association is freed in response to
  813. * the incoming chunk. If so, get out of the while loop.
  814. */
  815. if (asoc->base.dead)
  816. break;
  817. /* If there is an error on chunk, discard this packet. */
  818. if (error && chunk)
  819. chunk->pdiscard = 1;
  820. }
  821. sctp_association_put(asoc);
  822. }
  823. /* This routine moves an association from its old sk to a new sk. */
  824. void sctp_assoc_migrate(struct sctp_association *assoc, struct sock *newsk)
  825. {
  826. struct sctp_sock *newsp = sctp_sk(newsk);
  827. struct sock *oldsk = assoc->base.sk;
  828. /* Delete the association from the old endpoint's list of
  829. * associations.
  830. */
  831. list_del_init(&assoc->asocs);
  832. /* Decrement the backlog value for a TCP-style socket. */
  833. if (sctp_style(oldsk, TCP))
  834. oldsk->sk_ack_backlog--;
  835. /* Release references to the old endpoint and the sock. */
  836. sctp_endpoint_put(assoc->ep);
  837. sock_put(assoc->base.sk);
  838. /* Get a reference to the new endpoint. */
  839. assoc->ep = newsp->ep;
  840. sctp_endpoint_hold(assoc->ep);
  841. /* Get a reference to the new sock. */
  842. assoc->base.sk = newsk;
  843. sock_hold(assoc->base.sk);
  844. /* Add the association to the new endpoint's list of associations. */
  845. sctp_endpoint_add_asoc(newsp->ep, assoc);
  846. }
  847. /* Update an association (possibly from unexpected COOKIE-ECHO processing). */
  848. void sctp_assoc_update(struct sctp_association *asoc,
  849. struct sctp_association *new)
  850. {
  851. struct sctp_transport *trans;
  852. struct list_head *pos, *temp;
  853. /* Copy in new parameters of peer. */
  854. asoc->c = new->c;
  855. asoc->peer.rwnd = new->peer.rwnd;
  856. asoc->peer.sack_needed = new->peer.sack_needed;
  857. asoc->peer.i = new->peer.i;
  858. sctp_tsnmap_init(&asoc->peer.tsn_map, SCTP_TSN_MAP_SIZE,
  859. asoc->peer.i.initial_tsn);
  860. /* Remove any peer addresses not present in the new association. */
  861. list_for_each_safe(pos, temp, &asoc->peer.transport_addr_list) {
  862. trans = list_entry(pos, struct sctp_transport, transports);
  863. if (!sctp_assoc_lookup_paddr(new, &trans->ipaddr))
  864. sctp_assoc_del_peer(asoc, &trans->ipaddr);
  865. }
  866. /* If the case is A (association restart), use
  867. * initial_tsn as next_tsn. If the case is B, use
  868. * current next_tsn in case data sent to peer
  869. * has been discarded and needs retransmission.
  870. */
  871. if (asoc->state >= SCTP_STATE_ESTABLISHED) {
  872. asoc->next_tsn = new->next_tsn;
  873. asoc->ctsn_ack_point = new->ctsn_ack_point;
  874. asoc->adv_peer_ack_point = new->adv_peer_ack_point;
  875. /* Reinitialize SSN for both local streams
  876. * and peer's streams.
  877. */
  878. sctp_ssnmap_clear(asoc->ssnmap);
  879. } else {
  880. /* Add any peer addresses from the new association. */
  881. list_for_each(pos, &new->peer.transport_addr_list) {
  882. trans = list_entry(pos, struct sctp_transport,
  883. transports);
  884. if (!sctp_assoc_lookup_paddr(asoc, &trans->ipaddr))
  885. sctp_assoc_add_peer(asoc, &trans->ipaddr,
  886. GFP_ATOMIC, trans->state);
  887. }
  888. asoc->ctsn_ack_point = asoc->next_tsn - 1;
  889. asoc->adv_peer_ack_point = asoc->ctsn_ack_point;
  890. if (!asoc->ssnmap) {
  891. /* Move the ssnmap. */
  892. asoc->ssnmap = new->ssnmap;
  893. new->ssnmap = NULL;
  894. }
  895. }
  896. }
  897. /* Update the retran path for sending a retransmitted packet.
  898. * Round-robin through the active transports, else round-robin
  899. * through the inactive transports as this is the next best thing
  900. * we can try.
  901. */
  902. void sctp_assoc_update_retran_path(struct sctp_association *asoc)
  903. {
  904. struct sctp_transport *t, *next;
  905. struct list_head *head = &asoc->peer.transport_addr_list;
  906. struct list_head *pos;
  907. /* Find the next transport in a round-robin fashion. */
  908. t = asoc->peer.retran_path;
  909. pos = &t->transports;
  910. next = NULL;
  911. while (1) {
  912. /* Skip the head. */
  913. if (pos->next == head)
  914. pos = head->next;
  915. else
  916. pos = pos->next;
  917. t = list_entry(pos, struct sctp_transport, transports);
  918. /* Try to find an active transport. */
  919. if ((t->state == SCTP_ACTIVE) ||
  920. (t->state == SCTP_UNKNOWN)) {
  921. break;
  922. } else {
  923. /* Keep track of the next transport in case
  924. * we don't find any active transport.
  925. */
  926. if (!next)
  927. next = t;
  928. }
  929. /* We have exhausted the list, but didn't find any
  930. * other active transports. If so, use the next
  931. * transport.
  932. */
  933. if (t == asoc->peer.retran_path) {
  934. t = next;
  935. break;
  936. }
  937. }
  938. asoc->peer.retran_path = t;
  939. SCTP_DEBUG_PRINTK_IPADDR("sctp_assoc_update_retran_path:association"
  940. " %p addr: ",
  941. " port: %d\n",
  942. asoc,
  943. (&t->ipaddr),
  944. ntohs(t->ipaddr.v4.sin_port));
  945. }
  946. /* Choose the transport for sending a INIT packet. */
  947. struct sctp_transport *sctp_assoc_choose_init_transport(
  948. struct sctp_association *asoc)
  949. {
  950. struct sctp_transport *t;
  951. /* Use the retran path. If the last INIT was sent over the
  952. * retran path, update the retran path and use it.
  953. */
  954. if (!asoc->init_last_sent_to) {
  955. t = asoc->peer.active_path;
  956. } else {
  957. if (asoc->init_last_sent_to == asoc->peer.retran_path)
  958. sctp_assoc_update_retran_path(asoc);
  959. t = asoc->peer.retran_path;
  960. }
  961. SCTP_DEBUG_PRINTK_IPADDR("sctp_assoc_update_retran_path:association"
  962. " %p addr: ",
  963. " port: %d\n",
  964. asoc,
  965. (&t->ipaddr),
  966. ntohs(t->ipaddr.v4.sin_port));
  967. return t;
  968. }
  969. /* Choose the transport for sending a SHUTDOWN packet. */
  970. struct sctp_transport *sctp_assoc_choose_shutdown_transport(
  971. struct sctp_association *asoc)
  972. {
  973. /* If this is the first time SHUTDOWN is sent, use the active path,
  974. * else use the retran path. If the last SHUTDOWN was sent over the
  975. * retran path, update the retran path and use it.
  976. */
  977. if (!asoc->shutdown_last_sent_to)
  978. return asoc->peer.active_path;
  979. else {
  980. if (asoc->shutdown_last_sent_to == asoc->peer.retran_path)
  981. sctp_assoc_update_retran_path(asoc);
  982. return asoc->peer.retran_path;
  983. }
  984. }
  985. /* Update the association's pmtu and frag_point by going through all the
  986. * transports. This routine is called when a transport's PMTU has changed.
  987. */
  988. void sctp_assoc_sync_pmtu(struct sctp_association *asoc)
  989. {
  990. struct sctp_transport *t;
  991. struct list_head *pos;
  992. __u32 pmtu = 0;
  993. if (!asoc)
  994. return;
  995. /* Get the lowest pmtu of all the transports. */
  996. list_for_each(pos, &asoc->peer.transport_addr_list) {
  997. t = list_entry(pos, struct sctp_transport, transports);
  998. if (!pmtu || (t->pathmtu < pmtu))
  999. pmtu = t->pathmtu;
  1000. }
  1001. if (pmtu) {
  1002. struct sctp_sock *sp = sctp_sk(asoc->base.sk);
  1003. asoc->pathmtu = pmtu;
  1004. asoc->frag_point = sctp_frag_point(sp, pmtu);
  1005. }
  1006. SCTP_DEBUG_PRINTK("%s: asoc:%p, pmtu:%d, frag_point:%d\n",
  1007. __FUNCTION__, asoc, asoc->pathmtu, asoc->frag_point);
  1008. }
  1009. /* Should we send a SACK to update our peer? */
  1010. static inline int sctp_peer_needs_update(struct sctp_association *asoc)
  1011. {
  1012. switch (asoc->state) {
  1013. case SCTP_STATE_ESTABLISHED:
  1014. case SCTP_STATE_SHUTDOWN_PENDING:
  1015. case SCTP_STATE_SHUTDOWN_RECEIVED:
  1016. case SCTP_STATE_SHUTDOWN_SENT:
  1017. if ((asoc->rwnd > asoc->a_rwnd) &&
  1018. ((asoc->rwnd - asoc->a_rwnd) >=
  1019. min_t(__u32, (asoc->base.sk->sk_rcvbuf >> 1), asoc->pathmtu)))
  1020. return 1;
  1021. break;
  1022. default:
  1023. break;
  1024. }
  1025. return 0;
  1026. }
  1027. /* Increase asoc's rwnd by len and send any window update SACK if needed. */
  1028. void sctp_assoc_rwnd_increase(struct sctp_association *asoc, unsigned len)
  1029. {
  1030. struct sctp_chunk *sack;
  1031. struct timer_list *timer;
  1032. if (asoc->rwnd_over) {
  1033. if (asoc->rwnd_over >= len) {
  1034. asoc->rwnd_over -= len;
  1035. } else {
  1036. asoc->rwnd += (len - asoc->rwnd_over);
  1037. asoc->rwnd_over = 0;
  1038. }
  1039. } else {
  1040. asoc->rwnd += len;
  1041. }
  1042. SCTP_DEBUG_PRINTK("%s: asoc %p rwnd increased by %d to (%u, %u) "
  1043. "- %u\n", __FUNCTION__, asoc, len, asoc->rwnd,
  1044. asoc->rwnd_over, asoc->a_rwnd);
  1045. /* Send a window update SACK if the rwnd has increased by at least the
  1046. * minimum of the association's PMTU and half of the receive buffer.
  1047. * The algorithm used is similar to the one described in
  1048. * Section 4.2.3.3 of RFC 1122.
  1049. */
  1050. if (sctp_peer_needs_update(asoc)) {
  1051. asoc->a_rwnd = asoc->rwnd;
  1052. SCTP_DEBUG_PRINTK("%s: Sending window update SACK- asoc: %p "
  1053. "rwnd: %u a_rwnd: %u\n", __FUNCTION__,
  1054. asoc, asoc->rwnd, asoc->a_rwnd);
  1055. sack = sctp_make_sack(asoc);
  1056. if (!sack)
  1057. return;
  1058. asoc->peer.sack_needed = 0;
  1059. sctp_outq_tail(&asoc->outqueue, sack);
  1060. /* Stop the SACK timer. */
  1061. timer = &asoc->timers[SCTP_EVENT_TIMEOUT_SACK];
  1062. if (timer_pending(timer) && del_timer(timer))
  1063. sctp_association_put(asoc);
  1064. }
  1065. }
  1066. /* Decrease asoc's rwnd by len. */
  1067. void sctp_assoc_rwnd_decrease(struct sctp_association *asoc, unsigned len)
  1068. {
  1069. SCTP_ASSERT(asoc->rwnd, "rwnd zero", return);
  1070. SCTP_ASSERT(!asoc->rwnd_over, "rwnd_over not zero", return);
  1071. if (asoc->rwnd >= len) {
  1072. asoc->rwnd -= len;
  1073. } else {
  1074. asoc->rwnd_over = len - asoc->rwnd;
  1075. asoc->rwnd = 0;
  1076. }
  1077. SCTP_DEBUG_PRINTK("%s: asoc %p rwnd decreased by %d to (%u, %u)\n",
  1078. __FUNCTION__, asoc, len, asoc->rwnd,
  1079. asoc->rwnd_over);
  1080. }
  1081. /* Build the bind address list for the association based on info from the
  1082. * local endpoint and the remote peer.
  1083. */
  1084. int sctp_assoc_set_bind_addr_from_ep(struct sctp_association *asoc,
  1085. gfp_t gfp)
  1086. {
  1087. sctp_scope_t scope;
  1088. int flags;
  1089. /* Use scoping rules to determine the subset of addresses from
  1090. * the endpoint.
  1091. */
  1092. scope = sctp_scope(&asoc->peer.active_path->ipaddr);
  1093. flags = (PF_INET6 == asoc->base.sk->sk_family) ? SCTP_ADDR6_ALLOWED : 0;
  1094. if (asoc->peer.ipv4_address)
  1095. flags |= SCTP_ADDR4_PEERSUPP;
  1096. if (asoc->peer.ipv6_address)
  1097. flags |= SCTP_ADDR6_PEERSUPP;
  1098. return sctp_bind_addr_copy(&asoc->base.bind_addr,
  1099. &asoc->ep->base.bind_addr,
  1100. scope, gfp, flags);
  1101. }
  1102. /* Build the association's bind address list from the cookie. */
  1103. int sctp_assoc_set_bind_addr_from_cookie(struct sctp_association *asoc,
  1104. struct sctp_cookie *cookie,
  1105. gfp_t gfp)
  1106. {
  1107. int var_size2 = ntohs(cookie->peer_init->chunk_hdr.length);
  1108. int var_size3 = cookie->raw_addr_list_len;
  1109. __u8 *raw = (__u8 *)cookie->peer_init + var_size2;
  1110. return sctp_raw_to_bind_addrs(&asoc->base.bind_addr, raw, var_size3,
  1111. asoc->ep->base.bind_addr.port, gfp);
  1112. }
  1113. /* Lookup laddr in the bind address list of an association. */
  1114. int sctp_assoc_lookup_laddr(struct sctp_association *asoc,
  1115. const union sctp_addr *laddr)
  1116. {
  1117. int found;
  1118. sctp_read_lock(&asoc->base.addr_lock);
  1119. if ((asoc->base.bind_addr.port == ntohs(laddr->v4.sin_port)) &&
  1120. sctp_bind_addr_match(&asoc->base.bind_addr, laddr,
  1121. sctp_sk(asoc->base.sk))) {
  1122. found = 1;
  1123. goto out;
  1124. }
  1125. found = 0;
  1126. out:
  1127. sctp_read_unlock(&asoc->base.addr_lock);
  1128. return found;
  1129. }