link.c 79 KB

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  1. /*
  2. * net/tipc/link.c: TIPC link code
  3. *
  4. * Copyright (c) 1996-2007, 2012, Ericsson AB
  5. * Copyright (c) 2004-2007, 2010-2011, Wind River Systems
  6. * All rights reserved.
  7. *
  8. * Redistribution and use in source and binary forms, with or without
  9. * modification, are permitted provided that the following conditions are met:
  10. *
  11. * 1. Redistributions of source code must retain the above copyright
  12. * notice, this list of conditions and the following disclaimer.
  13. * 2. Redistributions in binary form must reproduce the above copyright
  14. * notice, this list of conditions and the following disclaimer in the
  15. * documentation and/or other materials provided with the distribution.
  16. * 3. Neither the names of the copyright holders nor the names of its
  17. * contributors may be used to endorse or promote products derived from
  18. * this software without specific prior written permission.
  19. *
  20. * Alternatively, this software may be distributed under the terms of the
  21. * GNU General Public License ("GPL") version 2 as published by the Free
  22. * Software Foundation.
  23. *
  24. * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS "AS IS"
  25. * AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  26. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  27. * ARE DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR CONTRIBUTORS BE
  28. * LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
  29. * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
  30. * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
  31. * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
  32. * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
  33. * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
  34. * POSSIBILITY OF SUCH DAMAGE.
  35. */
  36. #include "core.h"
  37. #include "link.h"
  38. #include "port.h"
  39. #include "name_distr.h"
  40. #include "discover.h"
  41. #include "config.h"
  42. /*
  43. * Error message prefixes
  44. */
  45. static const char *link_co_err = "Link changeover error, ";
  46. static const char *link_rst_msg = "Resetting link ";
  47. static const char *link_unk_evt = "Unknown link event ";
  48. /*
  49. * Out-of-range value for link session numbers
  50. */
  51. #define INVALID_SESSION 0x10000
  52. /*
  53. * Link state events:
  54. */
  55. #define STARTING_EVT 856384768 /* link processing trigger */
  56. #define TRAFFIC_MSG_EVT 560815u /* rx'd ??? */
  57. #define TIMEOUT_EVT 560817u /* link timer expired */
  58. /*
  59. * The following two 'message types' is really just implementation
  60. * data conveniently stored in the message header.
  61. * They must not be considered part of the protocol
  62. */
  63. #define OPEN_MSG 0
  64. #define CLOSED_MSG 1
  65. /*
  66. * State value stored in 'exp_msg_count'
  67. */
  68. #define START_CHANGEOVER 100000u
  69. /**
  70. * struct tipc_link_name - deconstructed link name
  71. * @addr_local: network address of node at this end
  72. * @if_local: name of interface at this end
  73. * @addr_peer: network address of node at far end
  74. * @if_peer: name of interface at far end
  75. */
  76. struct tipc_link_name {
  77. u32 addr_local;
  78. char if_local[TIPC_MAX_IF_NAME];
  79. u32 addr_peer;
  80. char if_peer[TIPC_MAX_IF_NAME];
  81. };
  82. static void link_handle_out_of_seq_msg(struct tipc_link *l_ptr,
  83. struct sk_buff *buf);
  84. static void link_recv_proto_msg(struct tipc_link *l_ptr, struct sk_buff *buf);
  85. static int link_recv_changeover_msg(struct tipc_link **l_ptr,
  86. struct sk_buff **buf);
  87. static void link_set_supervision_props(struct tipc_link *l_ptr, u32 tolerance);
  88. static int link_send_sections_long(struct tipc_port *sender,
  89. struct iovec const *msg_sect,
  90. u32 num_sect, unsigned int total_len,
  91. u32 destnode);
  92. static void link_state_event(struct tipc_link *l_ptr, u32 event);
  93. static void link_reset_statistics(struct tipc_link *l_ptr);
  94. static void link_print(struct tipc_link *l_ptr, const char *str);
  95. static void link_start(struct tipc_link *l_ptr);
  96. static int link_send_long_buf(struct tipc_link *l_ptr, struct sk_buff *buf);
  97. static void tipc_link_send_sync(struct tipc_link *l);
  98. static void tipc_link_recv_sync(struct tipc_node *n, struct sk_buff *buf);
  99. /*
  100. * Simple link routines
  101. */
  102. static unsigned int align(unsigned int i)
  103. {
  104. return (i + 3) & ~3u;
  105. }
  106. static void link_init_max_pkt(struct tipc_link *l_ptr)
  107. {
  108. u32 max_pkt;
  109. max_pkt = (l_ptr->b_ptr->mtu & ~3);
  110. if (max_pkt > MAX_MSG_SIZE)
  111. max_pkt = MAX_MSG_SIZE;
  112. l_ptr->max_pkt_target = max_pkt;
  113. if (l_ptr->max_pkt_target < MAX_PKT_DEFAULT)
  114. l_ptr->max_pkt = l_ptr->max_pkt_target;
  115. else
  116. l_ptr->max_pkt = MAX_PKT_DEFAULT;
  117. l_ptr->max_pkt_probes = 0;
  118. }
  119. static u32 link_next_sent(struct tipc_link *l_ptr)
  120. {
  121. if (l_ptr->next_out)
  122. return buf_seqno(l_ptr->next_out);
  123. return mod(l_ptr->next_out_no);
  124. }
  125. static u32 link_last_sent(struct tipc_link *l_ptr)
  126. {
  127. return mod(link_next_sent(l_ptr) - 1);
  128. }
  129. /*
  130. * Simple non-static link routines (i.e. referenced outside this file)
  131. */
  132. int tipc_link_is_up(struct tipc_link *l_ptr)
  133. {
  134. if (!l_ptr)
  135. return 0;
  136. return link_working_working(l_ptr) || link_working_unknown(l_ptr);
  137. }
  138. int tipc_link_is_active(struct tipc_link *l_ptr)
  139. {
  140. return (l_ptr->owner->active_links[0] == l_ptr) ||
  141. (l_ptr->owner->active_links[1] == l_ptr);
  142. }
  143. /**
  144. * link_name_validate - validate & (optionally) deconstruct tipc_link name
  145. * @name: ptr to link name string
  146. * @name_parts: ptr to area for link name components (or NULL if not needed)
  147. *
  148. * Returns 1 if link name is valid, otherwise 0.
  149. */
  150. static int link_name_validate(const char *name,
  151. struct tipc_link_name *name_parts)
  152. {
  153. char name_copy[TIPC_MAX_LINK_NAME];
  154. char *addr_local;
  155. char *if_local;
  156. char *addr_peer;
  157. char *if_peer;
  158. char dummy;
  159. u32 z_local, c_local, n_local;
  160. u32 z_peer, c_peer, n_peer;
  161. u32 if_local_len;
  162. u32 if_peer_len;
  163. /* copy link name & ensure length is OK */
  164. name_copy[TIPC_MAX_LINK_NAME - 1] = 0;
  165. /* need above in case non-Posix strncpy() doesn't pad with nulls */
  166. strncpy(name_copy, name, TIPC_MAX_LINK_NAME);
  167. if (name_copy[TIPC_MAX_LINK_NAME - 1] != 0)
  168. return 0;
  169. /* ensure all component parts of link name are present */
  170. addr_local = name_copy;
  171. if_local = strchr(addr_local, ':');
  172. if (if_local == NULL)
  173. return 0;
  174. *(if_local++) = 0;
  175. addr_peer = strchr(if_local, '-');
  176. if (addr_peer == NULL)
  177. return 0;
  178. *(addr_peer++) = 0;
  179. if_local_len = addr_peer - if_local;
  180. if_peer = strchr(addr_peer, ':');
  181. if (if_peer == NULL)
  182. return 0;
  183. *(if_peer++) = 0;
  184. if_peer_len = strlen(if_peer) + 1;
  185. /* validate component parts of link name */
  186. if ((sscanf(addr_local, "%u.%u.%u%c",
  187. &z_local, &c_local, &n_local, &dummy) != 3) ||
  188. (sscanf(addr_peer, "%u.%u.%u%c",
  189. &z_peer, &c_peer, &n_peer, &dummy) != 3) ||
  190. (z_local > 255) || (c_local > 4095) || (n_local > 4095) ||
  191. (z_peer > 255) || (c_peer > 4095) || (n_peer > 4095) ||
  192. (if_local_len <= 1) || (if_local_len > TIPC_MAX_IF_NAME) ||
  193. (if_peer_len <= 1) || (if_peer_len > TIPC_MAX_IF_NAME))
  194. return 0;
  195. /* return link name components, if necessary */
  196. if (name_parts) {
  197. name_parts->addr_local = tipc_addr(z_local, c_local, n_local);
  198. strcpy(name_parts->if_local, if_local);
  199. name_parts->addr_peer = tipc_addr(z_peer, c_peer, n_peer);
  200. strcpy(name_parts->if_peer, if_peer);
  201. }
  202. return 1;
  203. }
  204. /**
  205. * link_timeout - handle expiration of link timer
  206. * @l_ptr: pointer to link
  207. *
  208. * This routine must not grab "tipc_net_lock" to avoid a potential deadlock conflict
  209. * with tipc_link_delete(). (There is no risk that the node will be deleted by
  210. * another thread because tipc_link_delete() always cancels the link timer before
  211. * tipc_node_delete() is called.)
  212. */
  213. static void link_timeout(struct tipc_link *l_ptr)
  214. {
  215. tipc_node_lock(l_ptr->owner);
  216. /* update counters used in statistical profiling of send traffic */
  217. l_ptr->stats.accu_queue_sz += l_ptr->out_queue_size;
  218. l_ptr->stats.queue_sz_counts++;
  219. if (l_ptr->first_out) {
  220. struct tipc_msg *msg = buf_msg(l_ptr->first_out);
  221. u32 length = msg_size(msg);
  222. if ((msg_user(msg) == MSG_FRAGMENTER) &&
  223. (msg_type(msg) == FIRST_FRAGMENT)) {
  224. length = msg_size(msg_get_wrapped(msg));
  225. }
  226. if (length) {
  227. l_ptr->stats.msg_lengths_total += length;
  228. l_ptr->stats.msg_length_counts++;
  229. if (length <= 64)
  230. l_ptr->stats.msg_length_profile[0]++;
  231. else if (length <= 256)
  232. l_ptr->stats.msg_length_profile[1]++;
  233. else if (length <= 1024)
  234. l_ptr->stats.msg_length_profile[2]++;
  235. else if (length <= 4096)
  236. l_ptr->stats.msg_length_profile[3]++;
  237. else if (length <= 16384)
  238. l_ptr->stats.msg_length_profile[4]++;
  239. else if (length <= 32768)
  240. l_ptr->stats.msg_length_profile[5]++;
  241. else
  242. l_ptr->stats.msg_length_profile[6]++;
  243. }
  244. }
  245. /* do all other link processing performed on a periodic basis */
  246. link_state_event(l_ptr, TIMEOUT_EVT);
  247. if (l_ptr->next_out)
  248. tipc_link_push_queue(l_ptr);
  249. tipc_node_unlock(l_ptr->owner);
  250. }
  251. static void link_set_timer(struct tipc_link *l_ptr, u32 time)
  252. {
  253. k_start_timer(&l_ptr->timer, time);
  254. }
  255. /**
  256. * tipc_link_create - create a new link
  257. * @n_ptr: pointer to associated node
  258. * @b_ptr: pointer to associated bearer
  259. * @media_addr: media address to use when sending messages over link
  260. *
  261. * Returns pointer to link.
  262. */
  263. struct tipc_link *tipc_link_create(struct tipc_node *n_ptr,
  264. struct tipc_bearer *b_ptr,
  265. const struct tipc_media_addr *media_addr)
  266. {
  267. struct tipc_link *l_ptr;
  268. struct tipc_msg *msg;
  269. char *if_name;
  270. char addr_string[16];
  271. u32 peer = n_ptr->addr;
  272. if (n_ptr->link_cnt >= 2) {
  273. tipc_addr_string_fill(addr_string, n_ptr->addr);
  274. pr_err("Attempt to establish third link to %s\n", addr_string);
  275. return NULL;
  276. }
  277. if (n_ptr->links[b_ptr->identity]) {
  278. tipc_addr_string_fill(addr_string, n_ptr->addr);
  279. pr_err("Attempt to establish second link on <%s> to %s\n",
  280. b_ptr->name, addr_string);
  281. return NULL;
  282. }
  283. l_ptr = kzalloc(sizeof(*l_ptr), GFP_ATOMIC);
  284. if (!l_ptr) {
  285. pr_warn("Link creation failed, no memory\n");
  286. return NULL;
  287. }
  288. l_ptr->addr = peer;
  289. if_name = strchr(b_ptr->name, ':') + 1;
  290. sprintf(l_ptr->name, "%u.%u.%u:%s-%u.%u.%u:unknown",
  291. tipc_zone(tipc_own_addr), tipc_cluster(tipc_own_addr),
  292. tipc_node(tipc_own_addr),
  293. if_name,
  294. tipc_zone(peer), tipc_cluster(peer), tipc_node(peer));
  295. /* note: peer i/f name is updated by reset/activate message */
  296. memcpy(&l_ptr->media_addr, media_addr, sizeof(*media_addr));
  297. l_ptr->owner = n_ptr;
  298. l_ptr->checkpoint = 1;
  299. l_ptr->peer_session = INVALID_SESSION;
  300. l_ptr->b_ptr = b_ptr;
  301. link_set_supervision_props(l_ptr, b_ptr->tolerance);
  302. l_ptr->state = RESET_UNKNOWN;
  303. l_ptr->pmsg = (struct tipc_msg *)&l_ptr->proto_msg;
  304. msg = l_ptr->pmsg;
  305. tipc_msg_init(msg, LINK_PROTOCOL, RESET_MSG, INT_H_SIZE, l_ptr->addr);
  306. msg_set_size(msg, sizeof(l_ptr->proto_msg));
  307. msg_set_session(msg, (tipc_random & 0xffff));
  308. msg_set_bearer_id(msg, b_ptr->identity);
  309. strcpy((char *)msg_data(msg), if_name);
  310. l_ptr->priority = b_ptr->priority;
  311. tipc_link_set_queue_limits(l_ptr, b_ptr->window);
  312. link_init_max_pkt(l_ptr);
  313. l_ptr->next_out_no = 1;
  314. INIT_LIST_HEAD(&l_ptr->waiting_ports);
  315. link_reset_statistics(l_ptr);
  316. tipc_node_attach_link(n_ptr, l_ptr);
  317. k_init_timer(&l_ptr->timer, (Handler)link_timeout, (unsigned long)l_ptr);
  318. list_add_tail(&l_ptr->link_list, &b_ptr->links);
  319. tipc_k_signal((Handler)link_start, (unsigned long)l_ptr);
  320. return l_ptr;
  321. }
  322. /**
  323. * tipc_link_delete - delete a link
  324. * @l_ptr: pointer to link
  325. *
  326. * Note: 'tipc_net_lock' is write_locked, bearer is locked.
  327. * This routine must not grab the node lock until after link timer cancellation
  328. * to avoid a potential deadlock situation.
  329. */
  330. void tipc_link_delete(struct tipc_link *l_ptr)
  331. {
  332. if (!l_ptr) {
  333. pr_err("Attempt to delete non-existent link\n");
  334. return;
  335. }
  336. k_cancel_timer(&l_ptr->timer);
  337. tipc_node_lock(l_ptr->owner);
  338. tipc_link_reset(l_ptr);
  339. tipc_node_detach_link(l_ptr->owner, l_ptr);
  340. tipc_link_stop(l_ptr);
  341. list_del_init(&l_ptr->link_list);
  342. tipc_node_unlock(l_ptr->owner);
  343. k_term_timer(&l_ptr->timer);
  344. kfree(l_ptr);
  345. }
  346. static void link_start(struct tipc_link *l_ptr)
  347. {
  348. tipc_node_lock(l_ptr->owner);
  349. link_state_event(l_ptr, STARTING_EVT);
  350. tipc_node_unlock(l_ptr->owner);
  351. }
  352. /**
  353. * link_schedule_port - schedule port for deferred sending
  354. * @l_ptr: pointer to link
  355. * @origport: reference to sending port
  356. * @sz: amount of data to be sent
  357. *
  358. * Schedules port for renewed sending of messages after link congestion
  359. * has abated.
  360. */
  361. static int link_schedule_port(struct tipc_link *l_ptr, u32 origport, u32 sz)
  362. {
  363. struct tipc_port *p_ptr;
  364. spin_lock_bh(&tipc_port_list_lock);
  365. p_ptr = tipc_port_lock(origport);
  366. if (p_ptr) {
  367. if (!p_ptr->wakeup)
  368. goto exit;
  369. if (!list_empty(&p_ptr->wait_list))
  370. goto exit;
  371. p_ptr->congested = 1;
  372. p_ptr->waiting_pkts = 1 + ((sz - 1) / l_ptr->max_pkt);
  373. list_add_tail(&p_ptr->wait_list, &l_ptr->waiting_ports);
  374. l_ptr->stats.link_congs++;
  375. exit:
  376. tipc_port_unlock(p_ptr);
  377. }
  378. spin_unlock_bh(&tipc_port_list_lock);
  379. return -ELINKCONG;
  380. }
  381. void tipc_link_wakeup_ports(struct tipc_link *l_ptr, int all)
  382. {
  383. struct tipc_port *p_ptr;
  384. struct tipc_port *temp_p_ptr;
  385. int win = l_ptr->queue_limit[0] - l_ptr->out_queue_size;
  386. if (all)
  387. win = 100000;
  388. if (win <= 0)
  389. return;
  390. if (!spin_trylock_bh(&tipc_port_list_lock))
  391. return;
  392. if (link_congested(l_ptr))
  393. goto exit;
  394. list_for_each_entry_safe(p_ptr, temp_p_ptr, &l_ptr->waiting_ports,
  395. wait_list) {
  396. if (win <= 0)
  397. break;
  398. list_del_init(&p_ptr->wait_list);
  399. spin_lock_bh(p_ptr->lock);
  400. p_ptr->congested = 0;
  401. p_ptr->wakeup(p_ptr);
  402. win -= p_ptr->waiting_pkts;
  403. spin_unlock_bh(p_ptr->lock);
  404. }
  405. exit:
  406. spin_unlock_bh(&tipc_port_list_lock);
  407. }
  408. /**
  409. * link_release_outqueue - purge link's outbound message queue
  410. * @l_ptr: pointer to link
  411. */
  412. static void link_release_outqueue(struct tipc_link *l_ptr)
  413. {
  414. struct sk_buff *buf = l_ptr->first_out;
  415. struct sk_buff *next;
  416. while (buf) {
  417. next = buf->next;
  418. kfree_skb(buf);
  419. buf = next;
  420. }
  421. l_ptr->first_out = NULL;
  422. l_ptr->out_queue_size = 0;
  423. }
  424. /**
  425. * tipc_link_reset_fragments - purge link's inbound message fragments queue
  426. * @l_ptr: pointer to link
  427. */
  428. void tipc_link_reset_fragments(struct tipc_link *l_ptr)
  429. {
  430. struct sk_buff *buf = l_ptr->defragm_buf;
  431. struct sk_buff *next;
  432. while (buf) {
  433. next = buf->next;
  434. kfree_skb(buf);
  435. buf = next;
  436. }
  437. l_ptr->defragm_buf = NULL;
  438. }
  439. /**
  440. * tipc_link_stop - purge all inbound and outbound messages associated with link
  441. * @l_ptr: pointer to link
  442. */
  443. void tipc_link_stop(struct tipc_link *l_ptr)
  444. {
  445. struct sk_buff *buf;
  446. struct sk_buff *next;
  447. buf = l_ptr->oldest_deferred_in;
  448. while (buf) {
  449. next = buf->next;
  450. kfree_skb(buf);
  451. buf = next;
  452. }
  453. buf = l_ptr->first_out;
  454. while (buf) {
  455. next = buf->next;
  456. kfree_skb(buf);
  457. buf = next;
  458. }
  459. tipc_link_reset_fragments(l_ptr);
  460. kfree_skb(l_ptr->proto_msg_queue);
  461. l_ptr->proto_msg_queue = NULL;
  462. }
  463. void tipc_link_reset(struct tipc_link *l_ptr)
  464. {
  465. struct sk_buff *buf;
  466. u32 prev_state = l_ptr->state;
  467. u32 checkpoint = l_ptr->next_in_no;
  468. int was_active_link = tipc_link_is_active(l_ptr);
  469. msg_set_session(l_ptr->pmsg, ((msg_session(l_ptr->pmsg) + 1) & 0xffff));
  470. /* Link is down, accept any session */
  471. l_ptr->peer_session = INVALID_SESSION;
  472. /* Prepare for max packet size negotiation */
  473. link_init_max_pkt(l_ptr);
  474. l_ptr->state = RESET_UNKNOWN;
  475. if ((prev_state == RESET_UNKNOWN) || (prev_state == RESET_RESET))
  476. return;
  477. tipc_node_link_down(l_ptr->owner, l_ptr);
  478. tipc_bearer_remove_dest(l_ptr->b_ptr, l_ptr->addr);
  479. if (was_active_link && tipc_node_active_links(l_ptr->owner) &&
  480. l_ptr->owner->permit_changeover) {
  481. l_ptr->reset_checkpoint = checkpoint;
  482. l_ptr->exp_msg_count = START_CHANGEOVER;
  483. }
  484. /* Clean up all queues: */
  485. link_release_outqueue(l_ptr);
  486. kfree_skb(l_ptr->proto_msg_queue);
  487. l_ptr->proto_msg_queue = NULL;
  488. buf = l_ptr->oldest_deferred_in;
  489. while (buf) {
  490. struct sk_buff *next = buf->next;
  491. kfree_skb(buf);
  492. buf = next;
  493. }
  494. if (!list_empty(&l_ptr->waiting_ports))
  495. tipc_link_wakeup_ports(l_ptr, 1);
  496. l_ptr->retransm_queue_head = 0;
  497. l_ptr->retransm_queue_size = 0;
  498. l_ptr->last_out = NULL;
  499. l_ptr->first_out = NULL;
  500. l_ptr->next_out = NULL;
  501. l_ptr->unacked_window = 0;
  502. l_ptr->checkpoint = 1;
  503. l_ptr->next_out_no = 1;
  504. l_ptr->deferred_inqueue_sz = 0;
  505. l_ptr->oldest_deferred_in = NULL;
  506. l_ptr->newest_deferred_in = NULL;
  507. l_ptr->fsm_msg_cnt = 0;
  508. l_ptr->stale_count = 0;
  509. link_reset_statistics(l_ptr);
  510. }
  511. static void link_activate(struct tipc_link *l_ptr)
  512. {
  513. l_ptr->next_in_no = l_ptr->stats.recv_info = 1;
  514. tipc_node_link_up(l_ptr->owner, l_ptr);
  515. tipc_bearer_add_dest(l_ptr->b_ptr, l_ptr->addr);
  516. }
  517. /**
  518. * link_state_event - link finite state machine
  519. * @l_ptr: pointer to link
  520. * @event: state machine event to process
  521. */
  522. static void link_state_event(struct tipc_link *l_ptr, unsigned int event)
  523. {
  524. struct tipc_link *other;
  525. u32 cont_intv = l_ptr->continuity_interval;
  526. if (!l_ptr->started && (event != STARTING_EVT))
  527. return; /* Not yet. */
  528. if (link_blocked(l_ptr)) {
  529. if (event == TIMEOUT_EVT)
  530. link_set_timer(l_ptr, cont_intv);
  531. return; /* Changeover going on */
  532. }
  533. switch (l_ptr->state) {
  534. case WORKING_WORKING:
  535. switch (event) {
  536. case TRAFFIC_MSG_EVT:
  537. case ACTIVATE_MSG:
  538. break;
  539. case TIMEOUT_EVT:
  540. if (l_ptr->next_in_no != l_ptr->checkpoint) {
  541. l_ptr->checkpoint = l_ptr->next_in_no;
  542. if (tipc_bclink_acks_missing(l_ptr->owner)) {
  543. tipc_link_send_proto_msg(l_ptr, STATE_MSG,
  544. 0, 0, 0, 0, 0);
  545. l_ptr->fsm_msg_cnt++;
  546. } else if (l_ptr->max_pkt < l_ptr->max_pkt_target) {
  547. tipc_link_send_proto_msg(l_ptr, STATE_MSG,
  548. 1, 0, 0, 0, 0);
  549. l_ptr->fsm_msg_cnt++;
  550. }
  551. link_set_timer(l_ptr, cont_intv);
  552. break;
  553. }
  554. l_ptr->state = WORKING_UNKNOWN;
  555. l_ptr->fsm_msg_cnt = 0;
  556. tipc_link_send_proto_msg(l_ptr, STATE_MSG, 1, 0, 0, 0, 0);
  557. l_ptr->fsm_msg_cnt++;
  558. link_set_timer(l_ptr, cont_intv / 4);
  559. break;
  560. case RESET_MSG:
  561. pr_info("%s<%s>, requested by peer\n", link_rst_msg,
  562. l_ptr->name);
  563. tipc_link_reset(l_ptr);
  564. l_ptr->state = RESET_RESET;
  565. l_ptr->fsm_msg_cnt = 0;
  566. tipc_link_send_proto_msg(l_ptr, ACTIVATE_MSG, 0, 0, 0, 0, 0);
  567. l_ptr->fsm_msg_cnt++;
  568. link_set_timer(l_ptr, cont_intv);
  569. break;
  570. default:
  571. pr_err("%s%u in WW state\n", link_unk_evt, event);
  572. }
  573. break;
  574. case WORKING_UNKNOWN:
  575. switch (event) {
  576. case TRAFFIC_MSG_EVT:
  577. case ACTIVATE_MSG:
  578. l_ptr->state = WORKING_WORKING;
  579. l_ptr->fsm_msg_cnt = 0;
  580. link_set_timer(l_ptr, cont_intv);
  581. break;
  582. case RESET_MSG:
  583. pr_info("%s<%s>, requested by peer while probing\n",
  584. link_rst_msg, l_ptr->name);
  585. tipc_link_reset(l_ptr);
  586. l_ptr->state = RESET_RESET;
  587. l_ptr->fsm_msg_cnt = 0;
  588. tipc_link_send_proto_msg(l_ptr, ACTIVATE_MSG, 0, 0, 0, 0, 0);
  589. l_ptr->fsm_msg_cnt++;
  590. link_set_timer(l_ptr, cont_intv);
  591. break;
  592. case TIMEOUT_EVT:
  593. if (l_ptr->next_in_no != l_ptr->checkpoint) {
  594. l_ptr->state = WORKING_WORKING;
  595. l_ptr->fsm_msg_cnt = 0;
  596. l_ptr->checkpoint = l_ptr->next_in_no;
  597. if (tipc_bclink_acks_missing(l_ptr->owner)) {
  598. tipc_link_send_proto_msg(l_ptr, STATE_MSG,
  599. 0, 0, 0, 0, 0);
  600. l_ptr->fsm_msg_cnt++;
  601. }
  602. link_set_timer(l_ptr, cont_intv);
  603. } else if (l_ptr->fsm_msg_cnt < l_ptr->abort_limit) {
  604. tipc_link_send_proto_msg(l_ptr, STATE_MSG,
  605. 1, 0, 0, 0, 0);
  606. l_ptr->fsm_msg_cnt++;
  607. link_set_timer(l_ptr, cont_intv / 4);
  608. } else { /* Link has failed */
  609. pr_warn("%s<%s>, peer not responding\n",
  610. link_rst_msg, l_ptr->name);
  611. tipc_link_reset(l_ptr);
  612. l_ptr->state = RESET_UNKNOWN;
  613. l_ptr->fsm_msg_cnt = 0;
  614. tipc_link_send_proto_msg(l_ptr, RESET_MSG,
  615. 0, 0, 0, 0, 0);
  616. l_ptr->fsm_msg_cnt++;
  617. link_set_timer(l_ptr, cont_intv);
  618. }
  619. break;
  620. default:
  621. pr_err("%s%u in WU state\n", link_unk_evt, event);
  622. }
  623. break;
  624. case RESET_UNKNOWN:
  625. switch (event) {
  626. case TRAFFIC_MSG_EVT:
  627. break;
  628. case ACTIVATE_MSG:
  629. other = l_ptr->owner->active_links[0];
  630. if (other && link_working_unknown(other))
  631. break;
  632. l_ptr->state = WORKING_WORKING;
  633. l_ptr->fsm_msg_cnt = 0;
  634. link_activate(l_ptr);
  635. tipc_link_send_proto_msg(l_ptr, STATE_MSG, 1, 0, 0, 0, 0);
  636. l_ptr->fsm_msg_cnt++;
  637. if (l_ptr->owner->working_links == 1)
  638. tipc_link_send_sync(l_ptr);
  639. link_set_timer(l_ptr, cont_intv);
  640. break;
  641. case RESET_MSG:
  642. l_ptr->state = RESET_RESET;
  643. l_ptr->fsm_msg_cnt = 0;
  644. tipc_link_send_proto_msg(l_ptr, ACTIVATE_MSG, 1, 0, 0, 0, 0);
  645. l_ptr->fsm_msg_cnt++;
  646. link_set_timer(l_ptr, cont_intv);
  647. break;
  648. case STARTING_EVT:
  649. l_ptr->started = 1;
  650. /* fall through */
  651. case TIMEOUT_EVT:
  652. tipc_link_send_proto_msg(l_ptr, RESET_MSG, 0, 0, 0, 0, 0);
  653. l_ptr->fsm_msg_cnt++;
  654. link_set_timer(l_ptr, cont_intv);
  655. break;
  656. default:
  657. pr_err("%s%u in RU state\n", link_unk_evt, event);
  658. }
  659. break;
  660. case RESET_RESET:
  661. switch (event) {
  662. case TRAFFIC_MSG_EVT:
  663. case ACTIVATE_MSG:
  664. other = l_ptr->owner->active_links[0];
  665. if (other && link_working_unknown(other))
  666. break;
  667. l_ptr->state = WORKING_WORKING;
  668. l_ptr->fsm_msg_cnt = 0;
  669. link_activate(l_ptr);
  670. tipc_link_send_proto_msg(l_ptr, STATE_MSG, 1, 0, 0, 0, 0);
  671. l_ptr->fsm_msg_cnt++;
  672. if (l_ptr->owner->working_links == 1)
  673. tipc_link_send_sync(l_ptr);
  674. link_set_timer(l_ptr, cont_intv);
  675. break;
  676. case RESET_MSG:
  677. break;
  678. case TIMEOUT_EVT:
  679. tipc_link_send_proto_msg(l_ptr, ACTIVATE_MSG, 0, 0, 0, 0, 0);
  680. l_ptr->fsm_msg_cnt++;
  681. link_set_timer(l_ptr, cont_intv);
  682. break;
  683. default:
  684. pr_err("%s%u in RR state\n", link_unk_evt, event);
  685. }
  686. break;
  687. default:
  688. pr_err("Unknown link state %u/%u\n", l_ptr->state, event);
  689. }
  690. }
  691. /*
  692. * link_bundle_buf(): Append contents of a buffer to
  693. * the tail of an existing one.
  694. */
  695. static int link_bundle_buf(struct tipc_link *l_ptr,
  696. struct sk_buff *bundler,
  697. struct sk_buff *buf)
  698. {
  699. struct tipc_msg *bundler_msg = buf_msg(bundler);
  700. struct tipc_msg *msg = buf_msg(buf);
  701. u32 size = msg_size(msg);
  702. u32 bundle_size = msg_size(bundler_msg);
  703. u32 to_pos = align(bundle_size);
  704. u32 pad = to_pos - bundle_size;
  705. if (msg_user(bundler_msg) != MSG_BUNDLER)
  706. return 0;
  707. if (msg_type(bundler_msg) != OPEN_MSG)
  708. return 0;
  709. if (skb_tailroom(bundler) < (pad + size))
  710. return 0;
  711. if (l_ptr->max_pkt < (to_pos + size))
  712. return 0;
  713. skb_put(bundler, pad + size);
  714. skb_copy_to_linear_data_offset(bundler, to_pos, buf->data, size);
  715. msg_set_size(bundler_msg, to_pos + size);
  716. msg_set_msgcnt(bundler_msg, msg_msgcnt(bundler_msg) + 1);
  717. kfree_skb(buf);
  718. l_ptr->stats.sent_bundled++;
  719. return 1;
  720. }
  721. static void link_add_to_outqueue(struct tipc_link *l_ptr,
  722. struct sk_buff *buf,
  723. struct tipc_msg *msg)
  724. {
  725. u32 ack = mod(l_ptr->next_in_no - 1);
  726. u32 seqno = mod(l_ptr->next_out_no++);
  727. msg_set_word(msg, 2, ((ack << 16) | seqno));
  728. msg_set_bcast_ack(msg, l_ptr->owner->bclink.last_in);
  729. buf->next = NULL;
  730. if (l_ptr->first_out) {
  731. l_ptr->last_out->next = buf;
  732. l_ptr->last_out = buf;
  733. } else
  734. l_ptr->first_out = l_ptr->last_out = buf;
  735. l_ptr->out_queue_size++;
  736. if (l_ptr->out_queue_size > l_ptr->stats.max_queue_sz)
  737. l_ptr->stats.max_queue_sz = l_ptr->out_queue_size;
  738. }
  739. static void link_add_chain_to_outqueue(struct tipc_link *l_ptr,
  740. struct sk_buff *buf_chain,
  741. u32 long_msgno)
  742. {
  743. struct sk_buff *buf;
  744. struct tipc_msg *msg;
  745. if (!l_ptr->next_out)
  746. l_ptr->next_out = buf_chain;
  747. while (buf_chain) {
  748. buf = buf_chain;
  749. buf_chain = buf_chain->next;
  750. msg = buf_msg(buf);
  751. msg_set_long_msgno(msg, long_msgno);
  752. link_add_to_outqueue(l_ptr, buf, msg);
  753. }
  754. }
  755. /*
  756. * tipc_link_send_buf() is the 'full path' for messages, called from
  757. * inside TIPC when the 'fast path' in tipc_send_buf
  758. * has failed, and from link_send()
  759. */
  760. int tipc_link_send_buf(struct tipc_link *l_ptr, struct sk_buff *buf)
  761. {
  762. struct tipc_msg *msg = buf_msg(buf);
  763. u32 size = msg_size(msg);
  764. u32 dsz = msg_data_sz(msg);
  765. u32 queue_size = l_ptr->out_queue_size;
  766. u32 imp = tipc_msg_tot_importance(msg);
  767. u32 queue_limit = l_ptr->queue_limit[imp];
  768. u32 max_packet = l_ptr->max_pkt;
  769. /* Match msg importance against queue limits: */
  770. if (unlikely(queue_size >= queue_limit)) {
  771. if (imp <= TIPC_CRITICAL_IMPORTANCE) {
  772. link_schedule_port(l_ptr, msg_origport(msg), size);
  773. kfree_skb(buf);
  774. return -ELINKCONG;
  775. }
  776. kfree_skb(buf);
  777. if (imp > CONN_MANAGER) {
  778. pr_warn("%s<%s>, send queue full", link_rst_msg,
  779. l_ptr->name);
  780. tipc_link_reset(l_ptr);
  781. }
  782. return dsz;
  783. }
  784. /* Fragmentation needed ? */
  785. if (size > max_packet)
  786. return link_send_long_buf(l_ptr, buf);
  787. /* Packet can be queued or sent. */
  788. if (likely(!tipc_bearer_blocked(l_ptr->b_ptr) &&
  789. !link_congested(l_ptr))) {
  790. link_add_to_outqueue(l_ptr, buf, msg);
  791. tipc_bearer_send(l_ptr->b_ptr, buf, &l_ptr->media_addr);
  792. l_ptr->unacked_window = 0;
  793. return dsz;
  794. }
  795. /* Congestion: can message be bundled ? */
  796. if ((msg_user(msg) != CHANGEOVER_PROTOCOL) &&
  797. (msg_user(msg) != MSG_FRAGMENTER)) {
  798. /* Try adding message to an existing bundle */
  799. if (l_ptr->next_out &&
  800. link_bundle_buf(l_ptr, l_ptr->last_out, buf))
  801. return dsz;
  802. /* Try creating a new bundle */
  803. if (size <= max_packet * 2 / 3) {
  804. struct sk_buff *bundler = tipc_buf_acquire(max_packet);
  805. struct tipc_msg bundler_hdr;
  806. if (bundler) {
  807. tipc_msg_init(&bundler_hdr, MSG_BUNDLER, OPEN_MSG,
  808. INT_H_SIZE, l_ptr->addr);
  809. skb_copy_to_linear_data(bundler, &bundler_hdr,
  810. INT_H_SIZE);
  811. skb_trim(bundler, INT_H_SIZE);
  812. link_bundle_buf(l_ptr, bundler, buf);
  813. buf = bundler;
  814. msg = buf_msg(buf);
  815. l_ptr->stats.sent_bundles++;
  816. }
  817. }
  818. }
  819. if (!l_ptr->next_out)
  820. l_ptr->next_out = buf;
  821. link_add_to_outqueue(l_ptr, buf, msg);
  822. return dsz;
  823. }
  824. /*
  825. * tipc_link_send(): same as tipc_link_send_buf(), but the link to use has
  826. * not been selected yet, and the the owner node is not locked
  827. * Called by TIPC internal users, e.g. the name distributor
  828. */
  829. int tipc_link_send(struct sk_buff *buf, u32 dest, u32 selector)
  830. {
  831. struct tipc_link *l_ptr;
  832. struct tipc_node *n_ptr;
  833. int res = -ELINKCONG;
  834. read_lock_bh(&tipc_net_lock);
  835. n_ptr = tipc_node_find(dest);
  836. if (n_ptr) {
  837. tipc_node_lock(n_ptr);
  838. l_ptr = n_ptr->active_links[selector & 1];
  839. if (l_ptr)
  840. res = tipc_link_send_buf(l_ptr, buf);
  841. else
  842. kfree_skb(buf);
  843. tipc_node_unlock(n_ptr);
  844. } else {
  845. kfree_skb(buf);
  846. }
  847. read_unlock_bh(&tipc_net_lock);
  848. return res;
  849. }
  850. /*
  851. * tipc_link_send_sync - synchronize broadcast link endpoints.
  852. *
  853. * Give a newly added peer node the sequence number where it should
  854. * start receiving and acking broadcast packets.
  855. *
  856. * Called with node locked
  857. */
  858. static void tipc_link_send_sync(struct tipc_link *l)
  859. {
  860. struct sk_buff *buf;
  861. struct tipc_msg *msg;
  862. buf = tipc_buf_acquire(INT_H_SIZE);
  863. if (!buf)
  864. return;
  865. msg = buf_msg(buf);
  866. tipc_msg_init(msg, BCAST_PROTOCOL, STATE_MSG, INT_H_SIZE, l->addr);
  867. msg_set_last_bcast(msg, l->owner->bclink.acked);
  868. link_add_chain_to_outqueue(l, buf, 0);
  869. tipc_link_push_queue(l);
  870. }
  871. /*
  872. * tipc_link_recv_sync - synchronize broadcast link endpoints.
  873. * Receive the sequence number where we should start receiving and
  874. * acking broadcast packets from a newly added peer node, and open
  875. * up for reception of such packets.
  876. *
  877. * Called with node locked
  878. */
  879. static void tipc_link_recv_sync(struct tipc_node *n, struct sk_buff *buf)
  880. {
  881. struct tipc_msg *msg = buf_msg(buf);
  882. n->bclink.last_sent = n->bclink.last_in = msg_last_bcast(msg);
  883. n->bclink.recv_permitted = true;
  884. kfree_skb(buf);
  885. }
  886. /*
  887. * tipc_link_send_names - send name table entries to new neighbor
  888. *
  889. * Send routine for bulk delivery of name table messages when contact
  890. * with a new neighbor occurs. No link congestion checking is performed
  891. * because name table messages *must* be delivered. The messages must be
  892. * small enough not to require fragmentation.
  893. * Called without any locks held.
  894. */
  895. void tipc_link_send_names(struct list_head *message_list, u32 dest)
  896. {
  897. struct tipc_node *n_ptr;
  898. struct tipc_link *l_ptr;
  899. struct sk_buff *buf;
  900. struct sk_buff *temp_buf;
  901. if (list_empty(message_list))
  902. return;
  903. read_lock_bh(&tipc_net_lock);
  904. n_ptr = tipc_node_find(dest);
  905. if (n_ptr) {
  906. tipc_node_lock(n_ptr);
  907. l_ptr = n_ptr->active_links[0];
  908. if (l_ptr) {
  909. /* convert circular list to linear list */
  910. ((struct sk_buff *)message_list->prev)->next = NULL;
  911. link_add_chain_to_outqueue(l_ptr,
  912. (struct sk_buff *)message_list->next, 0);
  913. tipc_link_push_queue(l_ptr);
  914. INIT_LIST_HEAD(message_list);
  915. }
  916. tipc_node_unlock(n_ptr);
  917. }
  918. read_unlock_bh(&tipc_net_lock);
  919. /* discard the messages if they couldn't be sent */
  920. list_for_each_safe(buf, temp_buf, ((struct sk_buff *)message_list)) {
  921. list_del((struct list_head *)buf);
  922. kfree_skb(buf);
  923. }
  924. }
  925. /*
  926. * link_send_buf_fast: Entry for data messages where the
  927. * destination link is known and the header is complete,
  928. * inclusive total message length. Very time critical.
  929. * Link is locked. Returns user data length.
  930. */
  931. static int link_send_buf_fast(struct tipc_link *l_ptr, struct sk_buff *buf,
  932. u32 *used_max_pkt)
  933. {
  934. struct tipc_msg *msg = buf_msg(buf);
  935. int res = msg_data_sz(msg);
  936. if (likely(!link_congested(l_ptr))) {
  937. if (likely(msg_size(msg) <= l_ptr->max_pkt)) {
  938. if (likely(!tipc_bearer_blocked(l_ptr->b_ptr))) {
  939. link_add_to_outqueue(l_ptr, buf, msg);
  940. tipc_bearer_send(l_ptr->b_ptr, buf,
  941. &l_ptr->media_addr);
  942. l_ptr->unacked_window = 0;
  943. return res;
  944. }
  945. } else
  946. *used_max_pkt = l_ptr->max_pkt;
  947. }
  948. return tipc_link_send_buf(l_ptr, buf); /* All other cases */
  949. }
  950. /*
  951. * tipc_send_buf_fast: Entry for data messages where the
  952. * destination node is known and the header is complete,
  953. * inclusive total message length.
  954. * Returns user data length.
  955. */
  956. int tipc_send_buf_fast(struct sk_buff *buf, u32 destnode)
  957. {
  958. struct tipc_link *l_ptr;
  959. struct tipc_node *n_ptr;
  960. int res;
  961. u32 selector = msg_origport(buf_msg(buf)) & 1;
  962. u32 dummy;
  963. read_lock_bh(&tipc_net_lock);
  964. n_ptr = tipc_node_find(destnode);
  965. if (likely(n_ptr)) {
  966. tipc_node_lock(n_ptr);
  967. l_ptr = n_ptr->active_links[selector];
  968. if (likely(l_ptr)) {
  969. res = link_send_buf_fast(l_ptr, buf, &dummy);
  970. tipc_node_unlock(n_ptr);
  971. read_unlock_bh(&tipc_net_lock);
  972. return res;
  973. }
  974. tipc_node_unlock(n_ptr);
  975. }
  976. read_unlock_bh(&tipc_net_lock);
  977. res = msg_data_sz(buf_msg(buf));
  978. tipc_reject_msg(buf, TIPC_ERR_NO_NODE);
  979. return res;
  980. }
  981. /*
  982. * tipc_link_send_sections_fast: Entry for messages where the
  983. * destination processor is known and the header is complete,
  984. * except for total message length.
  985. * Returns user data length or errno.
  986. */
  987. int tipc_link_send_sections_fast(struct tipc_port *sender,
  988. struct iovec const *msg_sect,
  989. const u32 num_sect,
  990. unsigned int total_len,
  991. u32 destaddr)
  992. {
  993. struct tipc_msg *hdr = &sender->phdr;
  994. struct tipc_link *l_ptr;
  995. struct sk_buff *buf;
  996. struct tipc_node *node;
  997. int res;
  998. u32 selector = msg_origport(hdr) & 1;
  999. again:
  1000. /*
  1001. * Try building message using port's max_pkt hint.
  1002. * (Must not hold any locks while building message.)
  1003. */
  1004. res = tipc_msg_build(hdr, msg_sect, num_sect, total_len,
  1005. sender->max_pkt, !sender->user_port, &buf);
  1006. read_lock_bh(&tipc_net_lock);
  1007. node = tipc_node_find(destaddr);
  1008. if (likely(node)) {
  1009. tipc_node_lock(node);
  1010. l_ptr = node->active_links[selector];
  1011. if (likely(l_ptr)) {
  1012. if (likely(buf)) {
  1013. res = link_send_buf_fast(l_ptr, buf,
  1014. &sender->max_pkt);
  1015. exit:
  1016. tipc_node_unlock(node);
  1017. read_unlock_bh(&tipc_net_lock);
  1018. return res;
  1019. }
  1020. /* Exit if build request was invalid */
  1021. if (unlikely(res < 0))
  1022. goto exit;
  1023. /* Exit if link (or bearer) is congested */
  1024. if (link_congested(l_ptr) ||
  1025. tipc_bearer_blocked(l_ptr->b_ptr)) {
  1026. res = link_schedule_port(l_ptr,
  1027. sender->ref, res);
  1028. goto exit;
  1029. }
  1030. /*
  1031. * Message size exceeds max_pkt hint; update hint,
  1032. * then re-try fast path or fragment the message
  1033. */
  1034. sender->max_pkt = l_ptr->max_pkt;
  1035. tipc_node_unlock(node);
  1036. read_unlock_bh(&tipc_net_lock);
  1037. if ((msg_hdr_sz(hdr) + res) <= sender->max_pkt)
  1038. goto again;
  1039. return link_send_sections_long(sender, msg_sect,
  1040. num_sect, total_len,
  1041. destaddr);
  1042. }
  1043. tipc_node_unlock(node);
  1044. }
  1045. read_unlock_bh(&tipc_net_lock);
  1046. /* Couldn't find a link to the destination node */
  1047. if (buf)
  1048. return tipc_reject_msg(buf, TIPC_ERR_NO_NODE);
  1049. if (res >= 0)
  1050. return tipc_port_reject_sections(sender, hdr, msg_sect, num_sect,
  1051. total_len, TIPC_ERR_NO_NODE);
  1052. return res;
  1053. }
  1054. /*
  1055. * link_send_sections_long(): Entry for long messages where the
  1056. * destination node is known and the header is complete,
  1057. * inclusive total message length.
  1058. * Link and bearer congestion status have been checked to be ok,
  1059. * and are ignored if they change.
  1060. *
  1061. * Note that fragments do not use the full link MTU so that they won't have
  1062. * to undergo refragmentation if link changeover causes them to be sent
  1063. * over another link with an additional tunnel header added as prefix.
  1064. * (Refragmentation will still occur if the other link has a smaller MTU.)
  1065. *
  1066. * Returns user data length or errno.
  1067. */
  1068. static int link_send_sections_long(struct tipc_port *sender,
  1069. struct iovec const *msg_sect,
  1070. u32 num_sect,
  1071. unsigned int total_len,
  1072. u32 destaddr)
  1073. {
  1074. struct tipc_link *l_ptr;
  1075. struct tipc_node *node;
  1076. struct tipc_msg *hdr = &sender->phdr;
  1077. u32 dsz = total_len;
  1078. u32 max_pkt, fragm_sz, rest;
  1079. struct tipc_msg fragm_hdr;
  1080. struct sk_buff *buf, *buf_chain, *prev;
  1081. u32 fragm_crs, fragm_rest, hsz, sect_rest;
  1082. const unchar *sect_crs;
  1083. int curr_sect;
  1084. u32 fragm_no;
  1085. again:
  1086. fragm_no = 1;
  1087. max_pkt = sender->max_pkt - INT_H_SIZE;
  1088. /* leave room for tunnel header in case of link changeover */
  1089. fragm_sz = max_pkt - INT_H_SIZE;
  1090. /* leave room for fragmentation header in each fragment */
  1091. rest = dsz;
  1092. fragm_crs = 0;
  1093. fragm_rest = 0;
  1094. sect_rest = 0;
  1095. sect_crs = NULL;
  1096. curr_sect = -1;
  1097. /* Prepare reusable fragment header */
  1098. tipc_msg_init(&fragm_hdr, MSG_FRAGMENTER, FIRST_FRAGMENT,
  1099. INT_H_SIZE, msg_destnode(hdr));
  1100. msg_set_size(&fragm_hdr, max_pkt);
  1101. msg_set_fragm_no(&fragm_hdr, 1);
  1102. /* Prepare header of first fragment */
  1103. buf_chain = buf = tipc_buf_acquire(max_pkt);
  1104. if (!buf)
  1105. return -ENOMEM;
  1106. buf->next = NULL;
  1107. skb_copy_to_linear_data(buf, &fragm_hdr, INT_H_SIZE);
  1108. hsz = msg_hdr_sz(hdr);
  1109. skb_copy_to_linear_data_offset(buf, INT_H_SIZE, hdr, hsz);
  1110. /* Chop up message */
  1111. fragm_crs = INT_H_SIZE + hsz;
  1112. fragm_rest = fragm_sz - hsz;
  1113. do { /* For all sections */
  1114. u32 sz;
  1115. if (!sect_rest) {
  1116. sect_rest = msg_sect[++curr_sect].iov_len;
  1117. sect_crs = (const unchar *)msg_sect[curr_sect].iov_base;
  1118. }
  1119. if (sect_rest < fragm_rest)
  1120. sz = sect_rest;
  1121. else
  1122. sz = fragm_rest;
  1123. if (likely(!sender->user_port)) {
  1124. if (copy_from_user(buf->data + fragm_crs, sect_crs, sz)) {
  1125. error:
  1126. for (; buf_chain; buf_chain = buf) {
  1127. buf = buf_chain->next;
  1128. kfree_skb(buf_chain);
  1129. }
  1130. return -EFAULT;
  1131. }
  1132. } else
  1133. skb_copy_to_linear_data_offset(buf, fragm_crs,
  1134. sect_crs, sz);
  1135. sect_crs += sz;
  1136. sect_rest -= sz;
  1137. fragm_crs += sz;
  1138. fragm_rest -= sz;
  1139. rest -= sz;
  1140. if (!fragm_rest && rest) {
  1141. /* Initiate new fragment: */
  1142. if (rest <= fragm_sz) {
  1143. fragm_sz = rest;
  1144. msg_set_type(&fragm_hdr, LAST_FRAGMENT);
  1145. } else {
  1146. msg_set_type(&fragm_hdr, FRAGMENT);
  1147. }
  1148. msg_set_size(&fragm_hdr, fragm_sz + INT_H_SIZE);
  1149. msg_set_fragm_no(&fragm_hdr, ++fragm_no);
  1150. prev = buf;
  1151. buf = tipc_buf_acquire(fragm_sz + INT_H_SIZE);
  1152. if (!buf)
  1153. goto error;
  1154. buf->next = NULL;
  1155. prev->next = buf;
  1156. skb_copy_to_linear_data(buf, &fragm_hdr, INT_H_SIZE);
  1157. fragm_crs = INT_H_SIZE;
  1158. fragm_rest = fragm_sz;
  1159. }
  1160. } while (rest > 0);
  1161. /*
  1162. * Now we have a buffer chain. Select a link and check
  1163. * that packet size is still OK
  1164. */
  1165. node = tipc_node_find(destaddr);
  1166. if (likely(node)) {
  1167. tipc_node_lock(node);
  1168. l_ptr = node->active_links[sender->ref & 1];
  1169. if (!l_ptr) {
  1170. tipc_node_unlock(node);
  1171. goto reject;
  1172. }
  1173. if (l_ptr->max_pkt < max_pkt) {
  1174. sender->max_pkt = l_ptr->max_pkt;
  1175. tipc_node_unlock(node);
  1176. for (; buf_chain; buf_chain = buf) {
  1177. buf = buf_chain->next;
  1178. kfree_skb(buf_chain);
  1179. }
  1180. goto again;
  1181. }
  1182. } else {
  1183. reject:
  1184. for (; buf_chain; buf_chain = buf) {
  1185. buf = buf_chain->next;
  1186. kfree_skb(buf_chain);
  1187. }
  1188. return tipc_port_reject_sections(sender, hdr, msg_sect, num_sect,
  1189. total_len, TIPC_ERR_NO_NODE);
  1190. }
  1191. /* Append chain of fragments to send queue & send them */
  1192. l_ptr->long_msg_seq_no++;
  1193. link_add_chain_to_outqueue(l_ptr, buf_chain, l_ptr->long_msg_seq_no);
  1194. l_ptr->stats.sent_fragments += fragm_no;
  1195. l_ptr->stats.sent_fragmented++;
  1196. tipc_link_push_queue(l_ptr);
  1197. tipc_node_unlock(node);
  1198. return dsz;
  1199. }
  1200. /*
  1201. * tipc_link_push_packet: Push one unsent packet to the media
  1202. */
  1203. u32 tipc_link_push_packet(struct tipc_link *l_ptr)
  1204. {
  1205. struct sk_buff *buf = l_ptr->first_out;
  1206. u32 r_q_size = l_ptr->retransm_queue_size;
  1207. u32 r_q_head = l_ptr->retransm_queue_head;
  1208. /* Step to position where retransmission failed, if any, */
  1209. /* consider that buffers may have been released in meantime */
  1210. if (r_q_size && buf) {
  1211. u32 last = lesser(mod(r_q_head + r_q_size),
  1212. link_last_sent(l_ptr));
  1213. u32 first = buf_seqno(buf);
  1214. while (buf && less(first, r_q_head)) {
  1215. first = mod(first + 1);
  1216. buf = buf->next;
  1217. }
  1218. l_ptr->retransm_queue_head = r_q_head = first;
  1219. l_ptr->retransm_queue_size = r_q_size = mod(last - first);
  1220. }
  1221. /* Continue retransmission now, if there is anything: */
  1222. if (r_q_size && buf) {
  1223. msg_set_ack(buf_msg(buf), mod(l_ptr->next_in_no - 1));
  1224. msg_set_bcast_ack(buf_msg(buf), l_ptr->owner->bclink.last_in);
  1225. tipc_bearer_send(l_ptr->b_ptr, buf, &l_ptr->media_addr);
  1226. l_ptr->retransm_queue_head = mod(++r_q_head);
  1227. l_ptr->retransm_queue_size = --r_q_size;
  1228. l_ptr->stats.retransmitted++;
  1229. return 0;
  1230. }
  1231. /* Send deferred protocol message, if any: */
  1232. buf = l_ptr->proto_msg_queue;
  1233. if (buf) {
  1234. msg_set_ack(buf_msg(buf), mod(l_ptr->next_in_no - 1));
  1235. msg_set_bcast_ack(buf_msg(buf), l_ptr->owner->bclink.last_in);
  1236. tipc_bearer_send(l_ptr->b_ptr, buf, &l_ptr->media_addr);
  1237. l_ptr->unacked_window = 0;
  1238. kfree_skb(buf);
  1239. l_ptr->proto_msg_queue = NULL;
  1240. return 0;
  1241. }
  1242. /* Send one deferred data message, if send window not full: */
  1243. buf = l_ptr->next_out;
  1244. if (buf) {
  1245. struct tipc_msg *msg = buf_msg(buf);
  1246. u32 next = msg_seqno(msg);
  1247. u32 first = buf_seqno(l_ptr->first_out);
  1248. if (mod(next - first) < l_ptr->queue_limit[0]) {
  1249. msg_set_ack(msg, mod(l_ptr->next_in_no - 1));
  1250. msg_set_bcast_ack(msg, l_ptr->owner->bclink.last_in);
  1251. tipc_bearer_send(l_ptr->b_ptr, buf, &l_ptr->media_addr);
  1252. if (msg_user(msg) == MSG_BUNDLER)
  1253. msg_set_type(msg, CLOSED_MSG);
  1254. l_ptr->next_out = buf->next;
  1255. return 0;
  1256. }
  1257. }
  1258. return 1;
  1259. }
  1260. /*
  1261. * push_queue(): push out the unsent messages of a link where
  1262. * congestion has abated. Node is locked
  1263. */
  1264. void tipc_link_push_queue(struct tipc_link *l_ptr)
  1265. {
  1266. u32 res;
  1267. if (tipc_bearer_blocked(l_ptr->b_ptr))
  1268. return;
  1269. do {
  1270. res = tipc_link_push_packet(l_ptr);
  1271. } while (!res);
  1272. }
  1273. static void link_reset_all(unsigned long addr)
  1274. {
  1275. struct tipc_node *n_ptr;
  1276. char addr_string[16];
  1277. u32 i;
  1278. read_lock_bh(&tipc_net_lock);
  1279. n_ptr = tipc_node_find((u32)addr);
  1280. if (!n_ptr) {
  1281. read_unlock_bh(&tipc_net_lock);
  1282. return; /* node no longer exists */
  1283. }
  1284. tipc_node_lock(n_ptr);
  1285. pr_warn("Resetting all links to %s\n",
  1286. tipc_addr_string_fill(addr_string, n_ptr->addr));
  1287. for (i = 0; i < MAX_BEARERS; i++) {
  1288. if (n_ptr->links[i]) {
  1289. link_print(n_ptr->links[i], "Resetting link\n");
  1290. tipc_link_reset(n_ptr->links[i]);
  1291. }
  1292. }
  1293. tipc_node_unlock(n_ptr);
  1294. read_unlock_bh(&tipc_net_lock);
  1295. }
  1296. static void link_retransmit_failure(struct tipc_link *l_ptr,
  1297. struct sk_buff *buf)
  1298. {
  1299. struct tipc_msg *msg = buf_msg(buf);
  1300. pr_warn("Retransmission failure on link <%s>\n", l_ptr->name);
  1301. if (l_ptr->addr) {
  1302. /* Handle failure on standard link */
  1303. link_print(l_ptr, "Resetting link\n");
  1304. tipc_link_reset(l_ptr);
  1305. } else {
  1306. /* Handle failure on broadcast link */
  1307. struct tipc_node *n_ptr;
  1308. char addr_string[16];
  1309. pr_info("Msg seq number: %u, ", msg_seqno(msg));
  1310. pr_cont("Outstanding acks: %lu\n",
  1311. (unsigned long) TIPC_SKB_CB(buf)->handle);
  1312. n_ptr = tipc_bclink_retransmit_to();
  1313. tipc_node_lock(n_ptr);
  1314. tipc_addr_string_fill(addr_string, n_ptr->addr);
  1315. pr_info("Broadcast link info for %s\n", addr_string);
  1316. pr_info("Reception permitted: %d, Acked: %u\n",
  1317. n_ptr->bclink.recv_permitted,
  1318. n_ptr->bclink.acked);
  1319. pr_info("Last in: %u, Oos state: %u, Last sent: %u\n",
  1320. n_ptr->bclink.last_in,
  1321. n_ptr->bclink.oos_state,
  1322. n_ptr->bclink.last_sent);
  1323. tipc_k_signal((Handler)link_reset_all, (unsigned long)n_ptr->addr);
  1324. tipc_node_unlock(n_ptr);
  1325. l_ptr->stale_count = 0;
  1326. }
  1327. }
  1328. void tipc_link_retransmit(struct tipc_link *l_ptr, struct sk_buff *buf,
  1329. u32 retransmits)
  1330. {
  1331. struct tipc_msg *msg;
  1332. if (!buf)
  1333. return;
  1334. msg = buf_msg(buf);
  1335. if (tipc_bearer_blocked(l_ptr->b_ptr)) {
  1336. if (l_ptr->retransm_queue_size == 0) {
  1337. l_ptr->retransm_queue_head = msg_seqno(msg);
  1338. l_ptr->retransm_queue_size = retransmits;
  1339. } else {
  1340. pr_err("Unexpected retransmit on link %s (qsize=%d)\n",
  1341. l_ptr->name, l_ptr->retransm_queue_size);
  1342. }
  1343. return;
  1344. } else {
  1345. /* Detect repeated retransmit failures on unblocked bearer */
  1346. if (l_ptr->last_retransmitted == msg_seqno(msg)) {
  1347. if (++l_ptr->stale_count > 100) {
  1348. link_retransmit_failure(l_ptr, buf);
  1349. return;
  1350. }
  1351. } else {
  1352. l_ptr->last_retransmitted = msg_seqno(msg);
  1353. l_ptr->stale_count = 1;
  1354. }
  1355. }
  1356. while (retransmits && (buf != l_ptr->next_out) && buf) {
  1357. msg = buf_msg(buf);
  1358. msg_set_ack(msg, mod(l_ptr->next_in_no - 1));
  1359. msg_set_bcast_ack(msg, l_ptr->owner->bclink.last_in);
  1360. tipc_bearer_send(l_ptr->b_ptr, buf, &l_ptr->media_addr);
  1361. buf = buf->next;
  1362. retransmits--;
  1363. l_ptr->stats.retransmitted++;
  1364. }
  1365. l_ptr->retransm_queue_head = l_ptr->retransm_queue_size = 0;
  1366. }
  1367. /**
  1368. * link_insert_deferred_queue - insert deferred messages back into receive chain
  1369. */
  1370. static struct sk_buff *link_insert_deferred_queue(struct tipc_link *l_ptr,
  1371. struct sk_buff *buf)
  1372. {
  1373. u32 seq_no;
  1374. if (l_ptr->oldest_deferred_in == NULL)
  1375. return buf;
  1376. seq_no = buf_seqno(l_ptr->oldest_deferred_in);
  1377. if (seq_no == mod(l_ptr->next_in_no)) {
  1378. l_ptr->newest_deferred_in->next = buf;
  1379. buf = l_ptr->oldest_deferred_in;
  1380. l_ptr->oldest_deferred_in = NULL;
  1381. l_ptr->deferred_inqueue_sz = 0;
  1382. }
  1383. return buf;
  1384. }
  1385. /**
  1386. * link_recv_buf_validate - validate basic format of received message
  1387. *
  1388. * This routine ensures a TIPC message has an acceptable header, and at least
  1389. * as much data as the header indicates it should. The routine also ensures
  1390. * that the entire message header is stored in the main fragment of the message
  1391. * buffer, to simplify future access to message header fields.
  1392. *
  1393. * Note: Having extra info present in the message header or data areas is OK.
  1394. * TIPC will ignore the excess, under the assumption that it is optional info
  1395. * introduced by a later release of the protocol.
  1396. */
  1397. static int link_recv_buf_validate(struct sk_buff *buf)
  1398. {
  1399. static u32 min_data_hdr_size[8] = {
  1400. SHORT_H_SIZE, MCAST_H_SIZE, NAMED_H_SIZE, BASIC_H_SIZE,
  1401. MAX_H_SIZE, MAX_H_SIZE, MAX_H_SIZE, MAX_H_SIZE
  1402. };
  1403. struct tipc_msg *msg;
  1404. u32 tipc_hdr[2];
  1405. u32 size;
  1406. u32 hdr_size;
  1407. u32 min_hdr_size;
  1408. if (unlikely(buf->len < MIN_H_SIZE))
  1409. return 0;
  1410. msg = skb_header_pointer(buf, 0, sizeof(tipc_hdr), tipc_hdr);
  1411. if (msg == NULL)
  1412. return 0;
  1413. if (unlikely(msg_version(msg) != TIPC_VERSION))
  1414. return 0;
  1415. size = msg_size(msg);
  1416. hdr_size = msg_hdr_sz(msg);
  1417. min_hdr_size = msg_isdata(msg) ?
  1418. min_data_hdr_size[msg_type(msg)] : INT_H_SIZE;
  1419. if (unlikely((hdr_size < min_hdr_size) ||
  1420. (size < hdr_size) ||
  1421. (buf->len < size) ||
  1422. (size - hdr_size > TIPC_MAX_USER_MSG_SIZE)))
  1423. return 0;
  1424. return pskb_may_pull(buf, hdr_size);
  1425. }
  1426. /**
  1427. * tipc_recv_msg - process TIPC messages arriving from off-node
  1428. * @head: pointer to message buffer chain
  1429. * @tb_ptr: pointer to bearer message arrived on
  1430. *
  1431. * Invoked with no locks held. Bearer pointer must point to a valid bearer
  1432. * structure (i.e. cannot be NULL), but bearer can be inactive.
  1433. */
  1434. void tipc_recv_msg(struct sk_buff *head, struct tipc_bearer *b_ptr)
  1435. {
  1436. read_lock_bh(&tipc_net_lock);
  1437. while (head) {
  1438. struct tipc_node *n_ptr;
  1439. struct tipc_link *l_ptr;
  1440. struct sk_buff *crs;
  1441. struct sk_buff *buf = head;
  1442. struct tipc_msg *msg;
  1443. u32 seq_no;
  1444. u32 ackd;
  1445. u32 released = 0;
  1446. int type;
  1447. head = head->next;
  1448. /* Ensure bearer is still enabled */
  1449. if (unlikely(!b_ptr->active))
  1450. goto cont;
  1451. /* Ensure message is well-formed */
  1452. if (unlikely(!link_recv_buf_validate(buf)))
  1453. goto cont;
  1454. /* Ensure message data is a single contiguous unit */
  1455. if (unlikely(skb_linearize(buf)))
  1456. goto cont;
  1457. /* Handle arrival of a non-unicast link message */
  1458. msg = buf_msg(buf);
  1459. if (unlikely(msg_non_seq(msg))) {
  1460. if (msg_user(msg) == LINK_CONFIG)
  1461. tipc_disc_recv_msg(buf, b_ptr);
  1462. else
  1463. tipc_bclink_recv_pkt(buf);
  1464. continue;
  1465. }
  1466. /* Discard unicast link messages destined for another node */
  1467. if (unlikely(!msg_short(msg) &&
  1468. (msg_destnode(msg) != tipc_own_addr)))
  1469. goto cont;
  1470. /* Locate neighboring node that sent message */
  1471. n_ptr = tipc_node_find(msg_prevnode(msg));
  1472. if (unlikely(!n_ptr))
  1473. goto cont;
  1474. tipc_node_lock(n_ptr);
  1475. /* Locate unicast link endpoint that should handle message */
  1476. l_ptr = n_ptr->links[b_ptr->identity];
  1477. if (unlikely(!l_ptr)) {
  1478. tipc_node_unlock(n_ptr);
  1479. goto cont;
  1480. }
  1481. /* Verify that communication with node is currently allowed */
  1482. if ((n_ptr->block_setup & WAIT_PEER_DOWN) &&
  1483. msg_user(msg) == LINK_PROTOCOL &&
  1484. (msg_type(msg) == RESET_MSG ||
  1485. msg_type(msg) == ACTIVATE_MSG) &&
  1486. !msg_redundant_link(msg))
  1487. n_ptr->block_setup &= ~WAIT_PEER_DOWN;
  1488. if (n_ptr->block_setup) {
  1489. tipc_node_unlock(n_ptr);
  1490. goto cont;
  1491. }
  1492. /* Validate message sequence number info */
  1493. seq_no = msg_seqno(msg);
  1494. ackd = msg_ack(msg);
  1495. /* Release acked messages */
  1496. if (n_ptr->bclink.recv_permitted)
  1497. tipc_bclink_acknowledge(n_ptr, msg_bcast_ack(msg));
  1498. crs = l_ptr->first_out;
  1499. while ((crs != l_ptr->next_out) &&
  1500. less_eq(buf_seqno(crs), ackd)) {
  1501. struct sk_buff *next = crs->next;
  1502. kfree_skb(crs);
  1503. crs = next;
  1504. released++;
  1505. }
  1506. if (released) {
  1507. l_ptr->first_out = crs;
  1508. l_ptr->out_queue_size -= released;
  1509. }
  1510. /* Try sending any messages link endpoint has pending */
  1511. if (unlikely(l_ptr->next_out))
  1512. tipc_link_push_queue(l_ptr);
  1513. if (unlikely(!list_empty(&l_ptr->waiting_ports)))
  1514. tipc_link_wakeup_ports(l_ptr, 0);
  1515. if (unlikely(++l_ptr->unacked_window >= TIPC_MIN_LINK_WIN)) {
  1516. l_ptr->stats.sent_acks++;
  1517. tipc_link_send_proto_msg(l_ptr, STATE_MSG, 0, 0, 0, 0, 0);
  1518. }
  1519. /* Now (finally!) process the incoming message */
  1520. protocol_check:
  1521. if (likely(link_working_working(l_ptr))) {
  1522. if (likely(seq_no == mod(l_ptr->next_in_no))) {
  1523. l_ptr->next_in_no++;
  1524. if (unlikely(l_ptr->oldest_deferred_in))
  1525. head = link_insert_deferred_queue(l_ptr,
  1526. head);
  1527. deliver:
  1528. if (likely(msg_isdata(msg))) {
  1529. tipc_node_unlock(n_ptr);
  1530. tipc_port_recv_msg(buf);
  1531. continue;
  1532. }
  1533. switch (msg_user(msg)) {
  1534. int ret;
  1535. case MSG_BUNDLER:
  1536. l_ptr->stats.recv_bundles++;
  1537. l_ptr->stats.recv_bundled +=
  1538. msg_msgcnt(msg);
  1539. tipc_node_unlock(n_ptr);
  1540. tipc_link_recv_bundle(buf);
  1541. continue;
  1542. case NAME_DISTRIBUTOR:
  1543. n_ptr->bclink.recv_permitted = true;
  1544. tipc_node_unlock(n_ptr);
  1545. tipc_named_recv(buf);
  1546. continue;
  1547. case BCAST_PROTOCOL:
  1548. tipc_link_recv_sync(n_ptr, buf);
  1549. tipc_node_unlock(n_ptr);
  1550. continue;
  1551. case CONN_MANAGER:
  1552. tipc_node_unlock(n_ptr);
  1553. tipc_port_recv_proto_msg(buf);
  1554. continue;
  1555. case MSG_FRAGMENTER:
  1556. l_ptr->stats.recv_fragments++;
  1557. ret = tipc_link_recv_fragment(
  1558. &l_ptr->defragm_buf,
  1559. &buf, &msg);
  1560. if (ret == 1) {
  1561. l_ptr->stats.recv_fragmented++;
  1562. goto deliver;
  1563. }
  1564. if (ret == -1)
  1565. l_ptr->next_in_no--;
  1566. break;
  1567. case CHANGEOVER_PROTOCOL:
  1568. type = msg_type(msg);
  1569. if (link_recv_changeover_msg(&l_ptr,
  1570. &buf)) {
  1571. msg = buf_msg(buf);
  1572. seq_no = msg_seqno(msg);
  1573. if (type == ORIGINAL_MSG)
  1574. goto deliver;
  1575. goto protocol_check;
  1576. }
  1577. break;
  1578. default:
  1579. kfree_skb(buf);
  1580. buf = NULL;
  1581. break;
  1582. }
  1583. tipc_node_unlock(n_ptr);
  1584. tipc_net_route_msg(buf);
  1585. continue;
  1586. }
  1587. link_handle_out_of_seq_msg(l_ptr, buf);
  1588. head = link_insert_deferred_queue(l_ptr, head);
  1589. tipc_node_unlock(n_ptr);
  1590. continue;
  1591. }
  1592. /* Link is not in state WORKING_WORKING */
  1593. if (msg_user(msg) == LINK_PROTOCOL) {
  1594. link_recv_proto_msg(l_ptr, buf);
  1595. head = link_insert_deferred_queue(l_ptr, head);
  1596. tipc_node_unlock(n_ptr);
  1597. continue;
  1598. }
  1599. /* Traffic message. Conditionally activate link */
  1600. link_state_event(l_ptr, TRAFFIC_MSG_EVT);
  1601. if (link_working_working(l_ptr)) {
  1602. /* Re-insert buffer in front of queue */
  1603. buf->next = head;
  1604. head = buf;
  1605. tipc_node_unlock(n_ptr);
  1606. continue;
  1607. }
  1608. tipc_node_unlock(n_ptr);
  1609. cont:
  1610. kfree_skb(buf);
  1611. }
  1612. read_unlock_bh(&tipc_net_lock);
  1613. }
  1614. /**
  1615. * tipc_link_defer_pkt - Add out-of-sequence message to deferred reception queue
  1616. *
  1617. * Returns increase in queue length (i.e. 0 or 1)
  1618. */
  1619. u32 tipc_link_defer_pkt(struct sk_buff **head, struct sk_buff **tail,
  1620. struct sk_buff *buf)
  1621. {
  1622. struct sk_buff *queue_buf;
  1623. struct sk_buff **prev;
  1624. u32 seq_no = buf_seqno(buf);
  1625. buf->next = NULL;
  1626. /* Empty queue ? */
  1627. if (*head == NULL) {
  1628. *head = *tail = buf;
  1629. return 1;
  1630. }
  1631. /* Last ? */
  1632. if (less(buf_seqno(*tail), seq_no)) {
  1633. (*tail)->next = buf;
  1634. *tail = buf;
  1635. return 1;
  1636. }
  1637. /* Locate insertion point in queue, then insert; discard if duplicate */
  1638. prev = head;
  1639. queue_buf = *head;
  1640. for (;;) {
  1641. u32 curr_seqno = buf_seqno(queue_buf);
  1642. if (seq_no == curr_seqno) {
  1643. kfree_skb(buf);
  1644. return 0;
  1645. }
  1646. if (less(seq_no, curr_seqno))
  1647. break;
  1648. prev = &queue_buf->next;
  1649. queue_buf = queue_buf->next;
  1650. }
  1651. buf->next = queue_buf;
  1652. *prev = buf;
  1653. return 1;
  1654. }
  1655. /*
  1656. * link_handle_out_of_seq_msg - handle arrival of out-of-sequence packet
  1657. */
  1658. static void link_handle_out_of_seq_msg(struct tipc_link *l_ptr,
  1659. struct sk_buff *buf)
  1660. {
  1661. u32 seq_no = buf_seqno(buf);
  1662. if (likely(msg_user(buf_msg(buf)) == LINK_PROTOCOL)) {
  1663. link_recv_proto_msg(l_ptr, buf);
  1664. return;
  1665. }
  1666. /* Record OOS packet arrival (force mismatch on next timeout) */
  1667. l_ptr->checkpoint--;
  1668. /*
  1669. * Discard packet if a duplicate; otherwise add it to deferred queue
  1670. * and notify peer of gap as per protocol specification
  1671. */
  1672. if (less(seq_no, mod(l_ptr->next_in_no))) {
  1673. l_ptr->stats.duplicates++;
  1674. kfree_skb(buf);
  1675. return;
  1676. }
  1677. if (tipc_link_defer_pkt(&l_ptr->oldest_deferred_in,
  1678. &l_ptr->newest_deferred_in, buf)) {
  1679. l_ptr->deferred_inqueue_sz++;
  1680. l_ptr->stats.deferred_recv++;
  1681. if ((l_ptr->deferred_inqueue_sz % 16) == 1)
  1682. tipc_link_send_proto_msg(l_ptr, STATE_MSG, 0, 0, 0, 0, 0);
  1683. } else
  1684. l_ptr->stats.duplicates++;
  1685. }
  1686. /*
  1687. * Send protocol message to the other endpoint.
  1688. */
  1689. void tipc_link_send_proto_msg(struct tipc_link *l_ptr, u32 msg_typ,
  1690. int probe_msg, u32 gap, u32 tolerance,
  1691. u32 priority, u32 ack_mtu)
  1692. {
  1693. struct sk_buff *buf = NULL;
  1694. struct tipc_msg *msg = l_ptr->pmsg;
  1695. u32 msg_size = sizeof(l_ptr->proto_msg);
  1696. int r_flag;
  1697. /* Discard any previous message that was deferred due to congestion */
  1698. if (l_ptr->proto_msg_queue) {
  1699. kfree_skb(l_ptr->proto_msg_queue);
  1700. l_ptr->proto_msg_queue = NULL;
  1701. }
  1702. if (link_blocked(l_ptr))
  1703. return;
  1704. /* Abort non-RESET send if communication with node is prohibited */
  1705. if ((l_ptr->owner->block_setup) && (msg_typ != RESET_MSG))
  1706. return;
  1707. /* Create protocol message with "out-of-sequence" sequence number */
  1708. msg_set_type(msg, msg_typ);
  1709. msg_set_net_plane(msg, l_ptr->b_ptr->net_plane);
  1710. msg_set_bcast_ack(msg, l_ptr->owner->bclink.last_in);
  1711. msg_set_last_bcast(msg, tipc_bclink_get_last_sent());
  1712. if (msg_typ == STATE_MSG) {
  1713. u32 next_sent = mod(l_ptr->next_out_no);
  1714. if (!tipc_link_is_up(l_ptr))
  1715. return;
  1716. if (l_ptr->next_out)
  1717. next_sent = buf_seqno(l_ptr->next_out);
  1718. msg_set_next_sent(msg, next_sent);
  1719. if (l_ptr->oldest_deferred_in) {
  1720. u32 rec = buf_seqno(l_ptr->oldest_deferred_in);
  1721. gap = mod(rec - mod(l_ptr->next_in_no));
  1722. }
  1723. msg_set_seq_gap(msg, gap);
  1724. if (gap)
  1725. l_ptr->stats.sent_nacks++;
  1726. msg_set_link_tolerance(msg, tolerance);
  1727. msg_set_linkprio(msg, priority);
  1728. msg_set_max_pkt(msg, ack_mtu);
  1729. msg_set_ack(msg, mod(l_ptr->next_in_no - 1));
  1730. msg_set_probe(msg, probe_msg != 0);
  1731. if (probe_msg) {
  1732. u32 mtu = l_ptr->max_pkt;
  1733. if ((mtu < l_ptr->max_pkt_target) &&
  1734. link_working_working(l_ptr) &&
  1735. l_ptr->fsm_msg_cnt) {
  1736. msg_size = (mtu + (l_ptr->max_pkt_target - mtu)/2 + 2) & ~3;
  1737. if (l_ptr->max_pkt_probes == 10) {
  1738. l_ptr->max_pkt_target = (msg_size - 4);
  1739. l_ptr->max_pkt_probes = 0;
  1740. msg_size = (mtu + (l_ptr->max_pkt_target - mtu)/2 + 2) & ~3;
  1741. }
  1742. l_ptr->max_pkt_probes++;
  1743. }
  1744. l_ptr->stats.sent_probes++;
  1745. }
  1746. l_ptr->stats.sent_states++;
  1747. } else { /* RESET_MSG or ACTIVATE_MSG */
  1748. msg_set_ack(msg, mod(l_ptr->reset_checkpoint - 1));
  1749. msg_set_seq_gap(msg, 0);
  1750. msg_set_next_sent(msg, 1);
  1751. msg_set_probe(msg, 0);
  1752. msg_set_link_tolerance(msg, l_ptr->tolerance);
  1753. msg_set_linkprio(msg, l_ptr->priority);
  1754. msg_set_max_pkt(msg, l_ptr->max_pkt_target);
  1755. }
  1756. r_flag = (l_ptr->owner->working_links > tipc_link_is_up(l_ptr));
  1757. msg_set_redundant_link(msg, r_flag);
  1758. msg_set_linkprio(msg, l_ptr->priority);
  1759. msg_set_size(msg, msg_size);
  1760. msg_set_seqno(msg, mod(l_ptr->next_out_no + (0xffff/2)));
  1761. buf = tipc_buf_acquire(msg_size);
  1762. if (!buf)
  1763. return;
  1764. skb_copy_to_linear_data(buf, msg, sizeof(l_ptr->proto_msg));
  1765. /* Defer message if bearer is already blocked */
  1766. if (tipc_bearer_blocked(l_ptr->b_ptr)) {
  1767. l_ptr->proto_msg_queue = buf;
  1768. return;
  1769. }
  1770. tipc_bearer_send(l_ptr->b_ptr, buf, &l_ptr->media_addr);
  1771. l_ptr->unacked_window = 0;
  1772. kfree_skb(buf);
  1773. }
  1774. /*
  1775. * Receive protocol message :
  1776. * Note that network plane id propagates through the network, and may
  1777. * change at any time. The node with lowest address rules
  1778. */
  1779. static void link_recv_proto_msg(struct tipc_link *l_ptr, struct sk_buff *buf)
  1780. {
  1781. u32 rec_gap = 0;
  1782. u32 max_pkt_info;
  1783. u32 max_pkt_ack;
  1784. u32 msg_tol;
  1785. struct tipc_msg *msg = buf_msg(buf);
  1786. if (link_blocked(l_ptr))
  1787. goto exit;
  1788. /* record unnumbered packet arrival (force mismatch on next timeout) */
  1789. l_ptr->checkpoint--;
  1790. if (l_ptr->b_ptr->net_plane != msg_net_plane(msg))
  1791. if (tipc_own_addr > msg_prevnode(msg))
  1792. l_ptr->b_ptr->net_plane = msg_net_plane(msg);
  1793. l_ptr->owner->permit_changeover = msg_redundant_link(msg);
  1794. switch (msg_type(msg)) {
  1795. case RESET_MSG:
  1796. if (!link_working_unknown(l_ptr) &&
  1797. (l_ptr->peer_session != INVALID_SESSION)) {
  1798. if (less_eq(msg_session(msg), l_ptr->peer_session))
  1799. break; /* duplicate or old reset: ignore */
  1800. }
  1801. if (!msg_redundant_link(msg) && (link_working_working(l_ptr) ||
  1802. link_working_unknown(l_ptr))) {
  1803. /*
  1804. * peer has lost contact -- don't allow peer's links
  1805. * to reactivate before we recognize loss & clean up
  1806. */
  1807. l_ptr->owner->block_setup = WAIT_NODE_DOWN;
  1808. }
  1809. link_state_event(l_ptr, RESET_MSG);
  1810. /* fall thru' */
  1811. case ACTIVATE_MSG:
  1812. /* Update link settings according other endpoint's values */
  1813. strcpy((strrchr(l_ptr->name, ':') + 1), (char *)msg_data(msg));
  1814. msg_tol = msg_link_tolerance(msg);
  1815. if (msg_tol > l_ptr->tolerance)
  1816. link_set_supervision_props(l_ptr, msg_tol);
  1817. if (msg_linkprio(msg) > l_ptr->priority)
  1818. l_ptr->priority = msg_linkprio(msg);
  1819. max_pkt_info = msg_max_pkt(msg);
  1820. if (max_pkt_info) {
  1821. if (max_pkt_info < l_ptr->max_pkt_target)
  1822. l_ptr->max_pkt_target = max_pkt_info;
  1823. if (l_ptr->max_pkt > l_ptr->max_pkt_target)
  1824. l_ptr->max_pkt = l_ptr->max_pkt_target;
  1825. } else {
  1826. l_ptr->max_pkt = l_ptr->max_pkt_target;
  1827. }
  1828. /* Synchronize broadcast link info, if not done previously */
  1829. if (!tipc_node_is_up(l_ptr->owner)) {
  1830. l_ptr->owner->bclink.last_sent =
  1831. l_ptr->owner->bclink.last_in =
  1832. msg_last_bcast(msg);
  1833. l_ptr->owner->bclink.oos_state = 0;
  1834. }
  1835. l_ptr->peer_session = msg_session(msg);
  1836. l_ptr->peer_bearer_id = msg_bearer_id(msg);
  1837. if (msg_type(msg) == ACTIVATE_MSG)
  1838. link_state_event(l_ptr, ACTIVATE_MSG);
  1839. break;
  1840. case STATE_MSG:
  1841. msg_tol = msg_link_tolerance(msg);
  1842. if (msg_tol)
  1843. link_set_supervision_props(l_ptr, msg_tol);
  1844. if (msg_linkprio(msg) &&
  1845. (msg_linkprio(msg) != l_ptr->priority)) {
  1846. pr_warn("%s<%s>, priority change %u->%u\n",
  1847. link_rst_msg, l_ptr->name, l_ptr->priority,
  1848. msg_linkprio(msg));
  1849. l_ptr->priority = msg_linkprio(msg);
  1850. tipc_link_reset(l_ptr); /* Enforce change to take effect */
  1851. break;
  1852. }
  1853. link_state_event(l_ptr, TRAFFIC_MSG_EVT);
  1854. l_ptr->stats.recv_states++;
  1855. if (link_reset_unknown(l_ptr))
  1856. break;
  1857. if (less_eq(mod(l_ptr->next_in_no), msg_next_sent(msg))) {
  1858. rec_gap = mod(msg_next_sent(msg) -
  1859. mod(l_ptr->next_in_no));
  1860. }
  1861. max_pkt_ack = msg_max_pkt(msg);
  1862. if (max_pkt_ack > l_ptr->max_pkt) {
  1863. l_ptr->max_pkt = max_pkt_ack;
  1864. l_ptr->max_pkt_probes = 0;
  1865. }
  1866. max_pkt_ack = 0;
  1867. if (msg_probe(msg)) {
  1868. l_ptr->stats.recv_probes++;
  1869. if (msg_size(msg) > sizeof(l_ptr->proto_msg))
  1870. max_pkt_ack = msg_size(msg);
  1871. }
  1872. /* Protocol message before retransmits, reduce loss risk */
  1873. if (l_ptr->owner->bclink.recv_permitted)
  1874. tipc_bclink_update_link_state(l_ptr->owner,
  1875. msg_last_bcast(msg));
  1876. if (rec_gap || (msg_probe(msg))) {
  1877. tipc_link_send_proto_msg(l_ptr, STATE_MSG,
  1878. 0, rec_gap, 0, 0, max_pkt_ack);
  1879. }
  1880. if (msg_seq_gap(msg)) {
  1881. l_ptr->stats.recv_nacks++;
  1882. tipc_link_retransmit(l_ptr, l_ptr->first_out,
  1883. msg_seq_gap(msg));
  1884. }
  1885. break;
  1886. }
  1887. exit:
  1888. kfree_skb(buf);
  1889. }
  1890. /*
  1891. * tipc_link_tunnel(): Send one message via a link belonging to
  1892. * another bearer. Owner node is locked.
  1893. */
  1894. static void tipc_link_tunnel(struct tipc_link *l_ptr,
  1895. struct tipc_msg *tunnel_hdr,
  1896. struct tipc_msg *msg,
  1897. u32 selector)
  1898. {
  1899. struct tipc_link *tunnel;
  1900. struct sk_buff *buf;
  1901. u32 length = msg_size(msg);
  1902. tunnel = l_ptr->owner->active_links[selector & 1];
  1903. if (!tipc_link_is_up(tunnel)) {
  1904. pr_warn("%stunnel link no longer available\n", link_co_err);
  1905. return;
  1906. }
  1907. msg_set_size(tunnel_hdr, length + INT_H_SIZE);
  1908. buf = tipc_buf_acquire(length + INT_H_SIZE);
  1909. if (!buf) {
  1910. pr_warn("%sunable to send tunnel msg\n", link_co_err);
  1911. return;
  1912. }
  1913. skb_copy_to_linear_data(buf, tunnel_hdr, INT_H_SIZE);
  1914. skb_copy_to_linear_data_offset(buf, INT_H_SIZE, msg, length);
  1915. tipc_link_send_buf(tunnel, buf);
  1916. }
  1917. /*
  1918. * changeover(): Send whole message queue via the remaining link
  1919. * Owner node is locked.
  1920. */
  1921. void tipc_link_changeover(struct tipc_link *l_ptr)
  1922. {
  1923. u32 msgcount = l_ptr->out_queue_size;
  1924. struct sk_buff *crs = l_ptr->first_out;
  1925. struct tipc_link *tunnel = l_ptr->owner->active_links[0];
  1926. struct tipc_msg tunnel_hdr;
  1927. int split_bundles;
  1928. if (!tunnel)
  1929. return;
  1930. if (!l_ptr->owner->permit_changeover) {
  1931. pr_warn("%speer did not permit changeover\n", link_co_err);
  1932. return;
  1933. }
  1934. tipc_msg_init(&tunnel_hdr, CHANGEOVER_PROTOCOL,
  1935. ORIGINAL_MSG, INT_H_SIZE, l_ptr->addr);
  1936. msg_set_bearer_id(&tunnel_hdr, l_ptr->peer_bearer_id);
  1937. msg_set_msgcnt(&tunnel_hdr, msgcount);
  1938. if (!l_ptr->first_out) {
  1939. struct sk_buff *buf;
  1940. buf = tipc_buf_acquire(INT_H_SIZE);
  1941. if (buf) {
  1942. skb_copy_to_linear_data(buf, &tunnel_hdr, INT_H_SIZE);
  1943. msg_set_size(&tunnel_hdr, INT_H_SIZE);
  1944. tipc_link_send_buf(tunnel, buf);
  1945. } else {
  1946. pr_warn("%sunable to send changeover msg\n",
  1947. link_co_err);
  1948. }
  1949. return;
  1950. }
  1951. split_bundles = (l_ptr->owner->active_links[0] !=
  1952. l_ptr->owner->active_links[1]);
  1953. while (crs) {
  1954. struct tipc_msg *msg = buf_msg(crs);
  1955. if ((msg_user(msg) == MSG_BUNDLER) && split_bundles) {
  1956. struct tipc_msg *m = msg_get_wrapped(msg);
  1957. unchar *pos = (unchar *)m;
  1958. msgcount = msg_msgcnt(msg);
  1959. while (msgcount--) {
  1960. msg_set_seqno(m, msg_seqno(msg));
  1961. tipc_link_tunnel(l_ptr, &tunnel_hdr, m,
  1962. msg_link_selector(m));
  1963. pos += align(msg_size(m));
  1964. m = (struct tipc_msg *)pos;
  1965. }
  1966. } else {
  1967. tipc_link_tunnel(l_ptr, &tunnel_hdr, msg,
  1968. msg_link_selector(msg));
  1969. }
  1970. crs = crs->next;
  1971. }
  1972. }
  1973. void tipc_link_send_duplicate(struct tipc_link *l_ptr, struct tipc_link *tunnel)
  1974. {
  1975. struct sk_buff *iter;
  1976. struct tipc_msg tunnel_hdr;
  1977. tipc_msg_init(&tunnel_hdr, CHANGEOVER_PROTOCOL,
  1978. DUPLICATE_MSG, INT_H_SIZE, l_ptr->addr);
  1979. msg_set_msgcnt(&tunnel_hdr, l_ptr->out_queue_size);
  1980. msg_set_bearer_id(&tunnel_hdr, l_ptr->peer_bearer_id);
  1981. iter = l_ptr->first_out;
  1982. while (iter) {
  1983. struct sk_buff *outbuf;
  1984. struct tipc_msg *msg = buf_msg(iter);
  1985. u32 length = msg_size(msg);
  1986. if (msg_user(msg) == MSG_BUNDLER)
  1987. msg_set_type(msg, CLOSED_MSG);
  1988. msg_set_ack(msg, mod(l_ptr->next_in_no - 1)); /* Update */
  1989. msg_set_bcast_ack(msg, l_ptr->owner->bclink.last_in);
  1990. msg_set_size(&tunnel_hdr, length + INT_H_SIZE);
  1991. outbuf = tipc_buf_acquire(length + INT_H_SIZE);
  1992. if (outbuf == NULL) {
  1993. pr_warn("%sunable to send duplicate msg\n",
  1994. link_co_err);
  1995. return;
  1996. }
  1997. skb_copy_to_linear_data(outbuf, &tunnel_hdr, INT_H_SIZE);
  1998. skb_copy_to_linear_data_offset(outbuf, INT_H_SIZE, iter->data,
  1999. length);
  2000. tipc_link_send_buf(tunnel, outbuf);
  2001. if (!tipc_link_is_up(l_ptr))
  2002. return;
  2003. iter = iter->next;
  2004. }
  2005. }
  2006. /**
  2007. * buf_extract - extracts embedded TIPC message from another message
  2008. * @skb: encapsulating message buffer
  2009. * @from_pos: offset to extract from
  2010. *
  2011. * Returns a new message buffer containing an embedded message. The
  2012. * encapsulating message itself is left unchanged.
  2013. */
  2014. static struct sk_buff *buf_extract(struct sk_buff *skb, u32 from_pos)
  2015. {
  2016. struct tipc_msg *msg = (struct tipc_msg *)(skb->data + from_pos);
  2017. u32 size = msg_size(msg);
  2018. struct sk_buff *eb;
  2019. eb = tipc_buf_acquire(size);
  2020. if (eb)
  2021. skb_copy_to_linear_data(eb, msg, size);
  2022. return eb;
  2023. }
  2024. /*
  2025. * link_recv_changeover_msg(): Receive tunneled packet sent
  2026. * via other link. Node is locked. Return extracted buffer.
  2027. */
  2028. static int link_recv_changeover_msg(struct tipc_link **l_ptr,
  2029. struct sk_buff **buf)
  2030. {
  2031. struct sk_buff *tunnel_buf = *buf;
  2032. struct tipc_link *dest_link;
  2033. struct tipc_msg *msg;
  2034. struct tipc_msg *tunnel_msg = buf_msg(tunnel_buf);
  2035. u32 msg_typ = msg_type(tunnel_msg);
  2036. u32 msg_count = msg_msgcnt(tunnel_msg);
  2037. u32 bearer_id = msg_bearer_id(tunnel_msg);
  2038. if (bearer_id >= MAX_BEARERS)
  2039. goto exit;
  2040. dest_link = (*l_ptr)->owner->links[bearer_id];
  2041. if (!dest_link)
  2042. goto exit;
  2043. if (dest_link == *l_ptr) {
  2044. pr_err("Unexpected changeover message on link <%s>\n",
  2045. (*l_ptr)->name);
  2046. goto exit;
  2047. }
  2048. *l_ptr = dest_link;
  2049. msg = msg_get_wrapped(tunnel_msg);
  2050. if (msg_typ == DUPLICATE_MSG) {
  2051. if (less(msg_seqno(msg), mod(dest_link->next_in_no)))
  2052. goto exit;
  2053. *buf = buf_extract(tunnel_buf, INT_H_SIZE);
  2054. if (*buf == NULL) {
  2055. pr_warn("%sduplicate msg dropped\n", link_co_err);
  2056. goto exit;
  2057. }
  2058. kfree_skb(tunnel_buf);
  2059. return 1;
  2060. }
  2061. /* First original message ?: */
  2062. if (tipc_link_is_up(dest_link)) {
  2063. pr_info("%s<%s>, changeover initiated by peer\n", link_rst_msg,
  2064. dest_link->name);
  2065. tipc_link_reset(dest_link);
  2066. dest_link->exp_msg_count = msg_count;
  2067. if (!msg_count)
  2068. goto exit;
  2069. } else if (dest_link->exp_msg_count == START_CHANGEOVER) {
  2070. dest_link->exp_msg_count = msg_count;
  2071. if (!msg_count)
  2072. goto exit;
  2073. }
  2074. /* Receive original message */
  2075. if (dest_link->exp_msg_count == 0) {
  2076. pr_warn("%sgot too many tunnelled messages\n", link_co_err);
  2077. goto exit;
  2078. }
  2079. dest_link->exp_msg_count--;
  2080. if (less(msg_seqno(msg), dest_link->reset_checkpoint)) {
  2081. goto exit;
  2082. } else {
  2083. *buf = buf_extract(tunnel_buf, INT_H_SIZE);
  2084. if (*buf != NULL) {
  2085. kfree_skb(tunnel_buf);
  2086. return 1;
  2087. } else {
  2088. pr_warn("%soriginal msg dropped\n", link_co_err);
  2089. }
  2090. }
  2091. exit:
  2092. *buf = NULL;
  2093. kfree_skb(tunnel_buf);
  2094. return 0;
  2095. }
  2096. /*
  2097. * Bundler functionality:
  2098. */
  2099. void tipc_link_recv_bundle(struct sk_buff *buf)
  2100. {
  2101. u32 msgcount = msg_msgcnt(buf_msg(buf));
  2102. u32 pos = INT_H_SIZE;
  2103. struct sk_buff *obuf;
  2104. while (msgcount--) {
  2105. obuf = buf_extract(buf, pos);
  2106. if (obuf == NULL) {
  2107. pr_warn("Link unable to unbundle message(s)\n");
  2108. break;
  2109. }
  2110. pos += align(msg_size(buf_msg(obuf)));
  2111. tipc_net_route_msg(obuf);
  2112. }
  2113. kfree_skb(buf);
  2114. }
  2115. /*
  2116. * Fragmentation/defragmentation:
  2117. */
  2118. /*
  2119. * link_send_long_buf: Entry for buffers needing fragmentation.
  2120. * The buffer is complete, inclusive total message length.
  2121. * Returns user data length.
  2122. */
  2123. static int link_send_long_buf(struct tipc_link *l_ptr, struct sk_buff *buf)
  2124. {
  2125. struct sk_buff *buf_chain = NULL;
  2126. struct sk_buff *buf_chain_tail = (struct sk_buff *)&buf_chain;
  2127. struct tipc_msg *inmsg = buf_msg(buf);
  2128. struct tipc_msg fragm_hdr;
  2129. u32 insize = msg_size(inmsg);
  2130. u32 dsz = msg_data_sz(inmsg);
  2131. unchar *crs = buf->data;
  2132. u32 rest = insize;
  2133. u32 pack_sz = l_ptr->max_pkt;
  2134. u32 fragm_sz = pack_sz - INT_H_SIZE;
  2135. u32 fragm_no = 0;
  2136. u32 destaddr;
  2137. if (msg_short(inmsg))
  2138. destaddr = l_ptr->addr;
  2139. else
  2140. destaddr = msg_destnode(inmsg);
  2141. /* Prepare reusable fragment header: */
  2142. tipc_msg_init(&fragm_hdr, MSG_FRAGMENTER, FIRST_FRAGMENT,
  2143. INT_H_SIZE, destaddr);
  2144. /* Chop up message: */
  2145. while (rest > 0) {
  2146. struct sk_buff *fragm;
  2147. if (rest <= fragm_sz) {
  2148. fragm_sz = rest;
  2149. msg_set_type(&fragm_hdr, LAST_FRAGMENT);
  2150. }
  2151. fragm = tipc_buf_acquire(fragm_sz + INT_H_SIZE);
  2152. if (fragm == NULL) {
  2153. kfree_skb(buf);
  2154. while (buf_chain) {
  2155. buf = buf_chain;
  2156. buf_chain = buf_chain->next;
  2157. kfree_skb(buf);
  2158. }
  2159. return -ENOMEM;
  2160. }
  2161. msg_set_size(&fragm_hdr, fragm_sz + INT_H_SIZE);
  2162. fragm_no++;
  2163. msg_set_fragm_no(&fragm_hdr, fragm_no);
  2164. skb_copy_to_linear_data(fragm, &fragm_hdr, INT_H_SIZE);
  2165. skb_copy_to_linear_data_offset(fragm, INT_H_SIZE, crs,
  2166. fragm_sz);
  2167. buf_chain_tail->next = fragm;
  2168. buf_chain_tail = fragm;
  2169. rest -= fragm_sz;
  2170. crs += fragm_sz;
  2171. msg_set_type(&fragm_hdr, FRAGMENT);
  2172. }
  2173. kfree_skb(buf);
  2174. /* Append chain of fragments to send queue & send them */
  2175. l_ptr->long_msg_seq_no++;
  2176. link_add_chain_to_outqueue(l_ptr, buf_chain, l_ptr->long_msg_seq_no);
  2177. l_ptr->stats.sent_fragments += fragm_no;
  2178. l_ptr->stats.sent_fragmented++;
  2179. tipc_link_push_queue(l_ptr);
  2180. return dsz;
  2181. }
  2182. /*
  2183. * A pending message being re-assembled must store certain values
  2184. * to handle subsequent fragments correctly. The following functions
  2185. * help storing these values in unused, available fields in the
  2186. * pending message. This makes dynamic memory allocation unnecessary.
  2187. */
  2188. static void set_long_msg_seqno(struct sk_buff *buf, u32 seqno)
  2189. {
  2190. msg_set_seqno(buf_msg(buf), seqno);
  2191. }
  2192. static u32 get_fragm_size(struct sk_buff *buf)
  2193. {
  2194. return msg_ack(buf_msg(buf));
  2195. }
  2196. static void set_fragm_size(struct sk_buff *buf, u32 sz)
  2197. {
  2198. msg_set_ack(buf_msg(buf), sz);
  2199. }
  2200. static u32 get_expected_frags(struct sk_buff *buf)
  2201. {
  2202. return msg_bcast_ack(buf_msg(buf));
  2203. }
  2204. static void set_expected_frags(struct sk_buff *buf, u32 exp)
  2205. {
  2206. msg_set_bcast_ack(buf_msg(buf), exp);
  2207. }
  2208. /*
  2209. * tipc_link_recv_fragment(): Called with node lock on. Returns
  2210. * the reassembled buffer if message is complete.
  2211. */
  2212. int tipc_link_recv_fragment(struct sk_buff **pending, struct sk_buff **fb,
  2213. struct tipc_msg **m)
  2214. {
  2215. struct sk_buff *prev = NULL;
  2216. struct sk_buff *fbuf = *fb;
  2217. struct tipc_msg *fragm = buf_msg(fbuf);
  2218. struct sk_buff *pbuf = *pending;
  2219. u32 long_msg_seq_no = msg_long_msgno(fragm);
  2220. *fb = NULL;
  2221. /* Is there an incomplete message waiting for this fragment? */
  2222. while (pbuf && ((buf_seqno(pbuf) != long_msg_seq_no) ||
  2223. (msg_orignode(fragm) != msg_orignode(buf_msg(pbuf))))) {
  2224. prev = pbuf;
  2225. pbuf = pbuf->next;
  2226. }
  2227. if (!pbuf && (msg_type(fragm) == FIRST_FRAGMENT)) {
  2228. struct tipc_msg *imsg = (struct tipc_msg *)msg_data(fragm);
  2229. u32 msg_sz = msg_size(imsg);
  2230. u32 fragm_sz = msg_data_sz(fragm);
  2231. u32 exp_fragm_cnt;
  2232. u32 max = TIPC_MAX_USER_MSG_SIZE + NAMED_H_SIZE;
  2233. if (msg_type(imsg) == TIPC_MCAST_MSG)
  2234. max = TIPC_MAX_USER_MSG_SIZE + MCAST_H_SIZE;
  2235. if (fragm_sz == 0 || msg_size(imsg) > max) {
  2236. kfree_skb(fbuf);
  2237. return 0;
  2238. }
  2239. exp_fragm_cnt = msg_sz / fragm_sz + !!(msg_sz % fragm_sz);
  2240. pbuf = tipc_buf_acquire(msg_size(imsg));
  2241. if (pbuf != NULL) {
  2242. pbuf->next = *pending;
  2243. *pending = pbuf;
  2244. skb_copy_to_linear_data(pbuf, imsg,
  2245. msg_data_sz(fragm));
  2246. /* Prepare buffer for subsequent fragments. */
  2247. set_long_msg_seqno(pbuf, long_msg_seq_no);
  2248. set_fragm_size(pbuf, fragm_sz);
  2249. set_expected_frags(pbuf, exp_fragm_cnt - 1);
  2250. } else {
  2251. pr_debug("Link unable to reassemble fragmented message\n");
  2252. kfree_skb(fbuf);
  2253. return -1;
  2254. }
  2255. kfree_skb(fbuf);
  2256. return 0;
  2257. } else if (pbuf && (msg_type(fragm) != FIRST_FRAGMENT)) {
  2258. u32 dsz = msg_data_sz(fragm);
  2259. u32 fsz = get_fragm_size(pbuf);
  2260. u32 crs = ((msg_fragm_no(fragm) - 1) * fsz);
  2261. u32 exp_frags = get_expected_frags(pbuf) - 1;
  2262. skb_copy_to_linear_data_offset(pbuf, crs,
  2263. msg_data(fragm), dsz);
  2264. kfree_skb(fbuf);
  2265. /* Is message complete? */
  2266. if (exp_frags == 0) {
  2267. if (prev)
  2268. prev->next = pbuf->next;
  2269. else
  2270. *pending = pbuf->next;
  2271. msg_reset_reroute_cnt(buf_msg(pbuf));
  2272. *fb = pbuf;
  2273. *m = buf_msg(pbuf);
  2274. return 1;
  2275. }
  2276. set_expected_frags(pbuf, exp_frags);
  2277. return 0;
  2278. }
  2279. kfree_skb(fbuf);
  2280. return 0;
  2281. }
  2282. static void link_set_supervision_props(struct tipc_link *l_ptr, u32 tolerance)
  2283. {
  2284. if ((tolerance < TIPC_MIN_LINK_TOL) || (tolerance > TIPC_MAX_LINK_TOL))
  2285. return;
  2286. l_ptr->tolerance = tolerance;
  2287. l_ptr->continuity_interval =
  2288. ((tolerance / 4) > 500) ? 500 : tolerance / 4;
  2289. l_ptr->abort_limit = tolerance / (l_ptr->continuity_interval / 4);
  2290. }
  2291. void tipc_link_set_queue_limits(struct tipc_link *l_ptr, u32 window)
  2292. {
  2293. /* Data messages from this node, inclusive FIRST_FRAGM */
  2294. l_ptr->queue_limit[TIPC_LOW_IMPORTANCE] = window;
  2295. l_ptr->queue_limit[TIPC_MEDIUM_IMPORTANCE] = (window / 3) * 4;
  2296. l_ptr->queue_limit[TIPC_HIGH_IMPORTANCE] = (window / 3) * 5;
  2297. l_ptr->queue_limit[TIPC_CRITICAL_IMPORTANCE] = (window / 3) * 6;
  2298. /* Transiting data messages,inclusive FIRST_FRAGM */
  2299. l_ptr->queue_limit[TIPC_LOW_IMPORTANCE + 4] = 300;
  2300. l_ptr->queue_limit[TIPC_MEDIUM_IMPORTANCE + 4] = 600;
  2301. l_ptr->queue_limit[TIPC_HIGH_IMPORTANCE + 4] = 900;
  2302. l_ptr->queue_limit[TIPC_CRITICAL_IMPORTANCE + 4] = 1200;
  2303. l_ptr->queue_limit[CONN_MANAGER] = 1200;
  2304. l_ptr->queue_limit[CHANGEOVER_PROTOCOL] = 2500;
  2305. l_ptr->queue_limit[NAME_DISTRIBUTOR] = 3000;
  2306. /* FRAGMENT and LAST_FRAGMENT packets */
  2307. l_ptr->queue_limit[MSG_FRAGMENTER] = 4000;
  2308. }
  2309. /**
  2310. * link_find_link - locate link by name
  2311. * @name: ptr to link name string
  2312. * @node: ptr to area to be filled with ptr to associated node
  2313. *
  2314. * Caller must hold 'tipc_net_lock' to ensure node and bearer are not deleted;
  2315. * this also prevents link deletion.
  2316. *
  2317. * Returns pointer to link (or 0 if invalid link name).
  2318. */
  2319. static struct tipc_link *link_find_link(const char *name,
  2320. struct tipc_node **node)
  2321. {
  2322. struct tipc_link_name link_name_parts;
  2323. struct tipc_bearer *b_ptr;
  2324. struct tipc_link *l_ptr;
  2325. if (!link_name_validate(name, &link_name_parts))
  2326. return NULL;
  2327. b_ptr = tipc_bearer_find_interface(link_name_parts.if_local);
  2328. if (!b_ptr)
  2329. return NULL;
  2330. *node = tipc_node_find(link_name_parts.addr_peer);
  2331. if (!*node)
  2332. return NULL;
  2333. l_ptr = (*node)->links[b_ptr->identity];
  2334. if (!l_ptr || strcmp(l_ptr->name, name))
  2335. return NULL;
  2336. return l_ptr;
  2337. }
  2338. /**
  2339. * link_value_is_valid -- validate proposed link tolerance/priority/window
  2340. *
  2341. * @cmd: value type (TIPC_CMD_SET_LINK_*)
  2342. * @new_value: the new value
  2343. *
  2344. * Returns 1 if value is within range, 0 if not.
  2345. */
  2346. static int link_value_is_valid(u16 cmd, u32 new_value)
  2347. {
  2348. switch (cmd) {
  2349. case TIPC_CMD_SET_LINK_TOL:
  2350. return (new_value >= TIPC_MIN_LINK_TOL) &&
  2351. (new_value <= TIPC_MAX_LINK_TOL);
  2352. case TIPC_CMD_SET_LINK_PRI:
  2353. return (new_value <= TIPC_MAX_LINK_PRI);
  2354. case TIPC_CMD_SET_LINK_WINDOW:
  2355. return (new_value >= TIPC_MIN_LINK_WIN) &&
  2356. (new_value <= TIPC_MAX_LINK_WIN);
  2357. }
  2358. return 0;
  2359. }
  2360. /**
  2361. * link_cmd_set_value - change priority/tolerance/window for link/bearer/media
  2362. * @name: ptr to link, bearer, or media name
  2363. * @new_value: new value of link, bearer, or media setting
  2364. * @cmd: which link, bearer, or media attribute to set (TIPC_CMD_SET_LINK_*)
  2365. *
  2366. * Caller must hold 'tipc_net_lock' to ensure link/bearer/media is not deleted.
  2367. *
  2368. * Returns 0 if value updated and negative value on error.
  2369. */
  2370. static int link_cmd_set_value(const char *name, u32 new_value, u16 cmd)
  2371. {
  2372. struct tipc_node *node;
  2373. struct tipc_link *l_ptr;
  2374. struct tipc_bearer *b_ptr;
  2375. struct tipc_media *m_ptr;
  2376. l_ptr = link_find_link(name, &node);
  2377. if (l_ptr) {
  2378. /*
  2379. * acquire node lock for tipc_link_send_proto_msg().
  2380. * see "TIPC locking policy" in net.c.
  2381. */
  2382. tipc_node_lock(node);
  2383. switch (cmd) {
  2384. case TIPC_CMD_SET_LINK_TOL:
  2385. link_set_supervision_props(l_ptr, new_value);
  2386. tipc_link_send_proto_msg(l_ptr,
  2387. STATE_MSG, 0, 0, new_value, 0, 0);
  2388. break;
  2389. case TIPC_CMD_SET_LINK_PRI:
  2390. l_ptr->priority = new_value;
  2391. tipc_link_send_proto_msg(l_ptr,
  2392. STATE_MSG, 0, 0, 0, new_value, 0);
  2393. break;
  2394. case TIPC_CMD_SET_LINK_WINDOW:
  2395. tipc_link_set_queue_limits(l_ptr, new_value);
  2396. break;
  2397. }
  2398. tipc_node_unlock(node);
  2399. return 0;
  2400. }
  2401. b_ptr = tipc_bearer_find(name);
  2402. if (b_ptr) {
  2403. switch (cmd) {
  2404. case TIPC_CMD_SET_LINK_TOL:
  2405. b_ptr->tolerance = new_value;
  2406. return 0;
  2407. case TIPC_CMD_SET_LINK_PRI:
  2408. b_ptr->priority = new_value;
  2409. return 0;
  2410. case TIPC_CMD_SET_LINK_WINDOW:
  2411. b_ptr->window = new_value;
  2412. return 0;
  2413. }
  2414. return -EINVAL;
  2415. }
  2416. m_ptr = tipc_media_find(name);
  2417. if (!m_ptr)
  2418. return -ENODEV;
  2419. switch (cmd) {
  2420. case TIPC_CMD_SET_LINK_TOL:
  2421. m_ptr->tolerance = new_value;
  2422. return 0;
  2423. case TIPC_CMD_SET_LINK_PRI:
  2424. m_ptr->priority = new_value;
  2425. return 0;
  2426. case TIPC_CMD_SET_LINK_WINDOW:
  2427. m_ptr->window = new_value;
  2428. return 0;
  2429. }
  2430. return -EINVAL;
  2431. }
  2432. struct sk_buff *tipc_link_cmd_config(const void *req_tlv_area, int req_tlv_space,
  2433. u16 cmd)
  2434. {
  2435. struct tipc_link_config *args;
  2436. u32 new_value;
  2437. int res;
  2438. if (!TLV_CHECK(req_tlv_area, req_tlv_space, TIPC_TLV_LINK_CONFIG))
  2439. return tipc_cfg_reply_error_string(TIPC_CFG_TLV_ERROR);
  2440. args = (struct tipc_link_config *)TLV_DATA(req_tlv_area);
  2441. new_value = ntohl(args->value);
  2442. if (!link_value_is_valid(cmd, new_value))
  2443. return tipc_cfg_reply_error_string(
  2444. "cannot change, value invalid");
  2445. if (!strcmp(args->name, tipc_bclink_name)) {
  2446. if ((cmd == TIPC_CMD_SET_LINK_WINDOW) &&
  2447. (tipc_bclink_set_queue_limits(new_value) == 0))
  2448. return tipc_cfg_reply_none();
  2449. return tipc_cfg_reply_error_string(TIPC_CFG_NOT_SUPPORTED
  2450. " (cannot change setting on broadcast link)");
  2451. }
  2452. read_lock_bh(&tipc_net_lock);
  2453. res = link_cmd_set_value(args->name, new_value, cmd);
  2454. read_unlock_bh(&tipc_net_lock);
  2455. if (res)
  2456. return tipc_cfg_reply_error_string("cannot change link setting");
  2457. return tipc_cfg_reply_none();
  2458. }
  2459. /**
  2460. * link_reset_statistics - reset link statistics
  2461. * @l_ptr: pointer to link
  2462. */
  2463. static void link_reset_statistics(struct tipc_link *l_ptr)
  2464. {
  2465. memset(&l_ptr->stats, 0, sizeof(l_ptr->stats));
  2466. l_ptr->stats.sent_info = l_ptr->next_out_no;
  2467. l_ptr->stats.recv_info = l_ptr->next_in_no;
  2468. }
  2469. struct sk_buff *tipc_link_cmd_reset_stats(const void *req_tlv_area, int req_tlv_space)
  2470. {
  2471. char *link_name;
  2472. struct tipc_link *l_ptr;
  2473. struct tipc_node *node;
  2474. if (!TLV_CHECK(req_tlv_area, req_tlv_space, TIPC_TLV_LINK_NAME))
  2475. return tipc_cfg_reply_error_string(TIPC_CFG_TLV_ERROR);
  2476. link_name = (char *)TLV_DATA(req_tlv_area);
  2477. if (!strcmp(link_name, tipc_bclink_name)) {
  2478. if (tipc_bclink_reset_stats())
  2479. return tipc_cfg_reply_error_string("link not found");
  2480. return tipc_cfg_reply_none();
  2481. }
  2482. read_lock_bh(&tipc_net_lock);
  2483. l_ptr = link_find_link(link_name, &node);
  2484. if (!l_ptr) {
  2485. read_unlock_bh(&tipc_net_lock);
  2486. return tipc_cfg_reply_error_string("link not found");
  2487. }
  2488. tipc_node_lock(node);
  2489. link_reset_statistics(l_ptr);
  2490. tipc_node_unlock(node);
  2491. read_unlock_bh(&tipc_net_lock);
  2492. return tipc_cfg_reply_none();
  2493. }
  2494. /**
  2495. * percent - convert count to a percentage of total (rounding up or down)
  2496. */
  2497. static u32 percent(u32 count, u32 total)
  2498. {
  2499. return (count * 100 + (total / 2)) / total;
  2500. }
  2501. /**
  2502. * tipc_link_stats - print link statistics
  2503. * @name: link name
  2504. * @buf: print buffer area
  2505. * @buf_size: size of print buffer area
  2506. *
  2507. * Returns length of print buffer data string (or 0 if error)
  2508. */
  2509. static int tipc_link_stats(const char *name, char *buf, const u32 buf_size)
  2510. {
  2511. struct tipc_link *l;
  2512. struct tipc_stats *s;
  2513. struct tipc_node *node;
  2514. char *status;
  2515. u32 profile_total = 0;
  2516. int ret;
  2517. if (!strcmp(name, tipc_bclink_name))
  2518. return tipc_bclink_stats(buf, buf_size);
  2519. read_lock_bh(&tipc_net_lock);
  2520. l = link_find_link(name, &node);
  2521. if (!l) {
  2522. read_unlock_bh(&tipc_net_lock);
  2523. return 0;
  2524. }
  2525. tipc_node_lock(node);
  2526. s = &l->stats;
  2527. if (tipc_link_is_active(l))
  2528. status = "ACTIVE";
  2529. else if (tipc_link_is_up(l))
  2530. status = "STANDBY";
  2531. else
  2532. status = "DEFUNCT";
  2533. ret = tipc_snprintf(buf, buf_size, "Link <%s>\n"
  2534. " %s MTU:%u Priority:%u Tolerance:%u ms"
  2535. " Window:%u packets\n",
  2536. l->name, status, l->max_pkt, l->priority,
  2537. l->tolerance, l->queue_limit[0]);
  2538. ret += tipc_snprintf(buf + ret, buf_size - ret,
  2539. " RX packets:%u fragments:%u/%u bundles:%u/%u\n",
  2540. l->next_in_no - s->recv_info, s->recv_fragments,
  2541. s->recv_fragmented, s->recv_bundles,
  2542. s->recv_bundled);
  2543. ret += tipc_snprintf(buf + ret, buf_size - ret,
  2544. " TX packets:%u fragments:%u/%u bundles:%u/%u\n",
  2545. l->next_out_no - s->sent_info, s->sent_fragments,
  2546. s->sent_fragmented, s->sent_bundles,
  2547. s->sent_bundled);
  2548. profile_total = s->msg_length_counts;
  2549. if (!profile_total)
  2550. profile_total = 1;
  2551. ret += tipc_snprintf(buf + ret, buf_size - ret,
  2552. " TX profile sample:%u packets average:%u octets\n"
  2553. " 0-64:%u%% -256:%u%% -1024:%u%% -4096:%u%% "
  2554. "-16384:%u%% -32768:%u%% -66000:%u%%\n",
  2555. s->msg_length_counts,
  2556. s->msg_lengths_total / profile_total,
  2557. percent(s->msg_length_profile[0], profile_total),
  2558. percent(s->msg_length_profile[1], profile_total),
  2559. percent(s->msg_length_profile[2], profile_total),
  2560. percent(s->msg_length_profile[3], profile_total),
  2561. percent(s->msg_length_profile[4], profile_total),
  2562. percent(s->msg_length_profile[5], profile_total),
  2563. percent(s->msg_length_profile[6], profile_total));
  2564. ret += tipc_snprintf(buf + ret, buf_size - ret,
  2565. " RX states:%u probes:%u naks:%u defs:%u"
  2566. " dups:%u\n", s->recv_states, s->recv_probes,
  2567. s->recv_nacks, s->deferred_recv, s->duplicates);
  2568. ret += tipc_snprintf(buf + ret, buf_size - ret,
  2569. " TX states:%u probes:%u naks:%u acks:%u"
  2570. " dups:%u\n", s->sent_states, s->sent_probes,
  2571. s->sent_nacks, s->sent_acks, s->retransmitted);
  2572. ret += tipc_snprintf(buf + ret, buf_size - ret,
  2573. " Congestion link:%u Send queue"
  2574. " max:%u avg:%u\n", s->link_congs,
  2575. s->max_queue_sz, s->queue_sz_counts ?
  2576. (s->accu_queue_sz / s->queue_sz_counts) : 0);
  2577. tipc_node_unlock(node);
  2578. read_unlock_bh(&tipc_net_lock);
  2579. return ret;
  2580. }
  2581. struct sk_buff *tipc_link_cmd_show_stats(const void *req_tlv_area, int req_tlv_space)
  2582. {
  2583. struct sk_buff *buf;
  2584. struct tlv_desc *rep_tlv;
  2585. int str_len;
  2586. int pb_len;
  2587. char *pb;
  2588. if (!TLV_CHECK(req_tlv_area, req_tlv_space, TIPC_TLV_LINK_NAME))
  2589. return tipc_cfg_reply_error_string(TIPC_CFG_TLV_ERROR);
  2590. buf = tipc_cfg_reply_alloc(TLV_SPACE(ULTRA_STRING_MAX_LEN));
  2591. if (!buf)
  2592. return NULL;
  2593. rep_tlv = (struct tlv_desc *)buf->data;
  2594. pb = TLV_DATA(rep_tlv);
  2595. pb_len = ULTRA_STRING_MAX_LEN;
  2596. str_len = tipc_link_stats((char *)TLV_DATA(req_tlv_area),
  2597. pb, pb_len);
  2598. if (!str_len) {
  2599. kfree_skb(buf);
  2600. return tipc_cfg_reply_error_string("link not found");
  2601. }
  2602. str_len += 1; /* for "\0" */
  2603. skb_put(buf, TLV_SPACE(str_len));
  2604. TLV_SET(rep_tlv, TIPC_TLV_ULTRA_STRING, NULL, str_len);
  2605. return buf;
  2606. }
  2607. /**
  2608. * tipc_link_get_max_pkt - get maximum packet size to use when sending to destination
  2609. * @dest: network address of destination node
  2610. * @selector: used to select from set of active links
  2611. *
  2612. * If no active link can be found, uses default maximum packet size.
  2613. */
  2614. u32 tipc_link_get_max_pkt(u32 dest, u32 selector)
  2615. {
  2616. struct tipc_node *n_ptr;
  2617. struct tipc_link *l_ptr;
  2618. u32 res = MAX_PKT_DEFAULT;
  2619. if (dest == tipc_own_addr)
  2620. return MAX_MSG_SIZE;
  2621. read_lock_bh(&tipc_net_lock);
  2622. n_ptr = tipc_node_find(dest);
  2623. if (n_ptr) {
  2624. tipc_node_lock(n_ptr);
  2625. l_ptr = n_ptr->active_links[selector & 1];
  2626. if (l_ptr)
  2627. res = l_ptr->max_pkt;
  2628. tipc_node_unlock(n_ptr);
  2629. }
  2630. read_unlock_bh(&tipc_net_lock);
  2631. return res;
  2632. }
  2633. static void link_print(struct tipc_link *l_ptr, const char *str)
  2634. {
  2635. pr_info("%s Link %x<%s>:", str, l_ptr->addr, l_ptr->b_ptr->name);
  2636. if (link_working_unknown(l_ptr))
  2637. pr_cont(":WU\n");
  2638. else if (link_reset_reset(l_ptr))
  2639. pr_cont(":RR\n");
  2640. else if (link_reset_unknown(l_ptr))
  2641. pr_cont(":RU\n");
  2642. else if (link_working_working(l_ptr))
  2643. pr_cont(":WW\n");
  2644. else
  2645. pr_cont("\n");
  2646. }