link.c 59 KB

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  1. /*
  2. * net/tipc/link.c: TIPC link code
  3. *
  4. * Copyright (c) 1996-2007, 2012-2016, Ericsson AB
  5. * Copyright (c) 2004-2007, 2010-2013, 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 "subscr.h"
  38. #include "link.h"
  39. #include "bcast.h"
  40. #include "socket.h"
  41. #include "name_distr.h"
  42. #include "discover.h"
  43. #include "netlink.h"
  44. #include "monitor.h"
  45. #include <linux/pkt_sched.h>
  46. struct tipc_stats {
  47. u32 sent_pkts;
  48. u32 recv_pkts;
  49. u32 sent_states;
  50. u32 recv_states;
  51. u32 sent_probes;
  52. u32 recv_probes;
  53. u32 sent_nacks;
  54. u32 recv_nacks;
  55. u32 sent_acks;
  56. u32 sent_bundled;
  57. u32 sent_bundles;
  58. u32 recv_bundled;
  59. u32 recv_bundles;
  60. u32 retransmitted;
  61. u32 sent_fragmented;
  62. u32 sent_fragments;
  63. u32 recv_fragmented;
  64. u32 recv_fragments;
  65. u32 link_congs; /* # port sends blocked by congestion */
  66. u32 deferred_recv;
  67. u32 duplicates;
  68. u32 max_queue_sz; /* send queue size high water mark */
  69. u32 accu_queue_sz; /* used for send queue size profiling */
  70. u32 queue_sz_counts; /* used for send queue size profiling */
  71. u32 msg_length_counts; /* used for message length profiling */
  72. u32 msg_lengths_total; /* used for message length profiling */
  73. u32 msg_length_profile[7]; /* used for msg. length profiling */
  74. };
  75. /**
  76. * struct tipc_link - TIPC link data structure
  77. * @addr: network address of link's peer node
  78. * @name: link name character string
  79. * @media_addr: media address to use when sending messages over link
  80. * @timer: link timer
  81. * @net: pointer to namespace struct
  82. * @refcnt: reference counter for permanent references (owner node & timer)
  83. * @peer_session: link session # being used by peer end of link
  84. * @peer_bearer_id: bearer id used by link's peer endpoint
  85. * @bearer_id: local bearer id used by link
  86. * @tolerance: minimum link continuity loss needed to reset link [in ms]
  87. * @abort_limit: # of unacknowledged continuity probes needed to reset link
  88. * @state: current state of link FSM
  89. * @peer_caps: bitmap describing capabilities of peer node
  90. * @silent_intv_cnt: # of timer intervals without any reception from peer
  91. * @proto_msg: template for control messages generated by link
  92. * @pmsg: convenience pointer to "proto_msg" field
  93. * @priority: current link priority
  94. * @net_plane: current link network plane ('A' through 'H')
  95. * @mon_state: cookie with information needed by link monitor
  96. * @backlog_limit: backlog queue congestion thresholds (indexed by importance)
  97. * @exp_msg_count: # of tunnelled messages expected during link changeover
  98. * @reset_rcv_checkpt: seq # of last acknowledged message at time of link reset
  99. * @mtu: current maximum packet size for this link
  100. * @advertised_mtu: advertised own mtu when link is being established
  101. * @transmitq: queue for sent, non-acked messages
  102. * @backlogq: queue for messages waiting to be sent
  103. * @snt_nxt: next sequence number to use for outbound messages
  104. * @last_retransmitted: sequence number of most recently retransmitted message
  105. * @stale_cnt: counter for number of identical retransmit attempts
  106. * @stale_limit: time when repeated identical retransmits must force link reset
  107. * @ackers: # of peers that needs to ack each packet before it can be released
  108. * @acked: # last packet acked by a certain peer. Used for broadcast.
  109. * @rcv_nxt: next sequence number to expect for inbound messages
  110. * @deferred_queue: deferred queue saved OOS b'cast message received from node
  111. * @unacked_window: # of inbound messages rx'd without ack'ing back to peer
  112. * @inputq: buffer queue for messages to be delivered upwards
  113. * @namedq: buffer queue for name table messages to be delivered upwards
  114. * @next_out: ptr to first unsent outbound message in queue
  115. * @wakeupq: linked list of wakeup msgs waiting for link congestion to abate
  116. * @long_msg_seq_no: next identifier to use for outbound fragmented messages
  117. * @reasm_buf: head of partially reassembled inbound message fragments
  118. * @bc_rcvr: marks that this is a broadcast receiver link
  119. * @stats: collects statistics regarding link activity
  120. */
  121. struct tipc_link {
  122. u32 addr;
  123. char name[TIPC_MAX_LINK_NAME];
  124. struct net *net;
  125. /* Management and link supervision data */
  126. u16 peer_session;
  127. u16 session;
  128. u16 snd_nxt_state;
  129. u16 rcv_nxt_state;
  130. u32 peer_bearer_id;
  131. u32 bearer_id;
  132. u32 tolerance;
  133. u32 abort_limit;
  134. u32 state;
  135. u16 peer_caps;
  136. bool in_session;
  137. bool active;
  138. u32 silent_intv_cnt;
  139. char if_name[TIPC_MAX_IF_NAME];
  140. u32 priority;
  141. char net_plane;
  142. struct tipc_mon_state mon_state;
  143. u16 rst_cnt;
  144. /* Failover/synch */
  145. u16 drop_point;
  146. struct sk_buff *failover_reasm_skb;
  147. /* Max packet negotiation */
  148. u16 mtu;
  149. u16 advertised_mtu;
  150. /* Sending */
  151. struct sk_buff_head transmq;
  152. struct sk_buff_head backlogq;
  153. struct {
  154. u16 len;
  155. u16 limit;
  156. } backlog[5];
  157. u16 snd_nxt;
  158. u16 last_retransm;
  159. u16 window;
  160. u16 stale_cnt;
  161. unsigned long stale_limit;
  162. /* Reception */
  163. u16 rcv_nxt;
  164. u32 rcv_unacked;
  165. struct sk_buff_head deferdq;
  166. struct sk_buff_head *inputq;
  167. struct sk_buff_head *namedq;
  168. /* Congestion handling */
  169. struct sk_buff_head wakeupq;
  170. /* Fragmentation/reassembly */
  171. struct sk_buff *reasm_buf;
  172. /* Broadcast */
  173. u16 ackers;
  174. u16 acked;
  175. struct tipc_link *bc_rcvlink;
  176. struct tipc_link *bc_sndlink;
  177. unsigned long prev_retr;
  178. u16 prev_from;
  179. u16 prev_to;
  180. u8 nack_state;
  181. bool bc_peer_is_up;
  182. /* Statistics */
  183. struct tipc_stats stats;
  184. };
  185. /*
  186. * Error message prefixes
  187. */
  188. static const char *link_co_err = "Link tunneling error, ";
  189. static const char *link_rst_msg = "Resetting link ";
  190. /* Send states for broadcast NACKs
  191. */
  192. enum {
  193. BC_NACK_SND_CONDITIONAL,
  194. BC_NACK_SND_UNCONDITIONAL,
  195. BC_NACK_SND_SUPPRESS,
  196. };
  197. #define TIPC_BC_RETR_LIMIT 10 /* [ms] */
  198. /*
  199. * Interval between NACKs when packets arrive out of order
  200. */
  201. #define TIPC_NACK_INTV (TIPC_MIN_LINK_WIN * 2)
  202. /* Link FSM states:
  203. */
  204. enum {
  205. LINK_ESTABLISHED = 0xe,
  206. LINK_ESTABLISHING = 0xe << 4,
  207. LINK_RESET = 0x1 << 8,
  208. LINK_RESETTING = 0x2 << 12,
  209. LINK_PEER_RESET = 0xd << 16,
  210. LINK_FAILINGOVER = 0xf << 20,
  211. LINK_SYNCHING = 0xc << 24
  212. };
  213. /* Link FSM state checking routines
  214. */
  215. static int link_is_up(struct tipc_link *l)
  216. {
  217. return l->state & (LINK_ESTABLISHED | LINK_SYNCHING);
  218. }
  219. static int tipc_link_proto_rcv(struct tipc_link *l, struct sk_buff *skb,
  220. struct sk_buff_head *xmitq);
  221. static void tipc_link_build_proto_msg(struct tipc_link *l, int mtyp, bool probe,
  222. bool probe_reply, u16 rcvgap,
  223. int tolerance, int priority,
  224. struct sk_buff_head *xmitq);
  225. static void link_print(struct tipc_link *l, const char *str);
  226. static int tipc_link_build_nack_msg(struct tipc_link *l,
  227. struct sk_buff_head *xmitq);
  228. static void tipc_link_build_bc_init_msg(struct tipc_link *l,
  229. struct sk_buff_head *xmitq);
  230. static bool tipc_link_release_pkts(struct tipc_link *l, u16 to);
  231. /*
  232. * Simple non-static link routines (i.e. referenced outside this file)
  233. */
  234. bool tipc_link_is_up(struct tipc_link *l)
  235. {
  236. return link_is_up(l);
  237. }
  238. bool tipc_link_peer_is_down(struct tipc_link *l)
  239. {
  240. return l->state == LINK_PEER_RESET;
  241. }
  242. bool tipc_link_is_reset(struct tipc_link *l)
  243. {
  244. return l->state & (LINK_RESET | LINK_FAILINGOVER | LINK_ESTABLISHING);
  245. }
  246. bool tipc_link_is_establishing(struct tipc_link *l)
  247. {
  248. return l->state == LINK_ESTABLISHING;
  249. }
  250. bool tipc_link_is_synching(struct tipc_link *l)
  251. {
  252. return l->state == LINK_SYNCHING;
  253. }
  254. bool tipc_link_is_failingover(struct tipc_link *l)
  255. {
  256. return l->state == LINK_FAILINGOVER;
  257. }
  258. bool tipc_link_is_blocked(struct tipc_link *l)
  259. {
  260. return l->state & (LINK_RESETTING | LINK_PEER_RESET | LINK_FAILINGOVER);
  261. }
  262. static bool link_is_bc_sndlink(struct tipc_link *l)
  263. {
  264. return !l->bc_sndlink;
  265. }
  266. static bool link_is_bc_rcvlink(struct tipc_link *l)
  267. {
  268. return ((l->bc_rcvlink == l) && !link_is_bc_sndlink(l));
  269. }
  270. void tipc_link_set_active(struct tipc_link *l, bool active)
  271. {
  272. l->active = active;
  273. }
  274. u32 tipc_link_id(struct tipc_link *l)
  275. {
  276. return l->peer_bearer_id << 16 | l->bearer_id;
  277. }
  278. int tipc_link_window(struct tipc_link *l)
  279. {
  280. return l->window;
  281. }
  282. int tipc_link_prio(struct tipc_link *l)
  283. {
  284. return l->priority;
  285. }
  286. unsigned long tipc_link_tolerance(struct tipc_link *l)
  287. {
  288. return l->tolerance;
  289. }
  290. struct sk_buff_head *tipc_link_inputq(struct tipc_link *l)
  291. {
  292. return l->inputq;
  293. }
  294. char tipc_link_plane(struct tipc_link *l)
  295. {
  296. return l->net_plane;
  297. }
  298. void tipc_link_update_caps(struct tipc_link *l, u16 capabilities)
  299. {
  300. l->peer_caps = capabilities;
  301. }
  302. void tipc_link_add_bc_peer(struct tipc_link *snd_l,
  303. struct tipc_link *uc_l,
  304. struct sk_buff_head *xmitq)
  305. {
  306. struct tipc_link *rcv_l = uc_l->bc_rcvlink;
  307. snd_l->ackers++;
  308. rcv_l->acked = snd_l->snd_nxt - 1;
  309. snd_l->state = LINK_ESTABLISHED;
  310. tipc_link_build_bc_init_msg(uc_l, xmitq);
  311. }
  312. void tipc_link_remove_bc_peer(struct tipc_link *snd_l,
  313. struct tipc_link *rcv_l,
  314. struct sk_buff_head *xmitq)
  315. {
  316. u16 ack = snd_l->snd_nxt - 1;
  317. snd_l->ackers--;
  318. rcv_l->bc_peer_is_up = true;
  319. rcv_l->state = LINK_ESTABLISHED;
  320. tipc_link_bc_ack_rcv(rcv_l, ack, xmitq);
  321. tipc_link_reset(rcv_l);
  322. rcv_l->state = LINK_RESET;
  323. if (!snd_l->ackers) {
  324. tipc_link_reset(snd_l);
  325. snd_l->state = LINK_RESET;
  326. __skb_queue_purge(xmitq);
  327. }
  328. }
  329. int tipc_link_bc_peers(struct tipc_link *l)
  330. {
  331. return l->ackers;
  332. }
  333. static u16 link_bc_rcv_gap(struct tipc_link *l)
  334. {
  335. struct sk_buff *skb = skb_peek(&l->deferdq);
  336. u16 gap = 0;
  337. if (more(l->snd_nxt, l->rcv_nxt))
  338. gap = l->snd_nxt - l->rcv_nxt;
  339. if (skb)
  340. gap = buf_seqno(skb) - l->rcv_nxt;
  341. return gap;
  342. }
  343. void tipc_link_set_mtu(struct tipc_link *l, int mtu)
  344. {
  345. l->mtu = mtu;
  346. }
  347. int tipc_link_mtu(struct tipc_link *l)
  348. {
  349. return l->mtu;
  350. }
  351. u16 tipc_link_rcv_nxt(struct tipc_link *l)
  352. {
  353. return l->rcv_nxt;
  354. }
  355. u16 tipc_link_acked(struct tipc_link *l)
  356. {
  357. return l->acked;
  358. }
  359. char *tipc_link_name(struct tipc_link *l)
  360. {
  361. return l->name;
  362. }
  363. /**
  364. * tipc_link_create - create a new link
  365. * @n: pointer to associated node
  366. * @if_name: associated interface name
  367. * @bearer_id: id (index) of associated bearer
  368. * @tolerance: link tolerance to be used by link
  369. * @net_plane: network plane (A,B,c..) this link belongs to
  370. * @mtu: mtu to be advertised by link
  371. * @priority: priority to be used by link
  372. * @window: send window to be used by link
  373. * @session: session to be used by link
  374. * @ownnode: identity of own node
  375. * @peer: node id of peer node
  376. * @peer_caps: bitmap describing peer node capabilities
  377. * @bc_sndlink: the namespace global link used for broadcast sending
  378. * @bc_rcvlink: the peer specific link used for broadcast reception
  379. * @inputq: queue to put messages ready for delivery
  380. * @namedq: queue to put binding table update messages ready for delivery
  381. * @link: return value, pointer to put the created link
  382. *
  383. * Returns true if link was created, otherwise false
  384. */
  385. bool tipc_link_create(struct net *net, char *if_name, int bearer_id,
  386. int tolerance, char net_plane, u32 mtu, int priority,
  387. int window, u32 session, u32 self,
  388. u32 peer, u8 *peer_id, u16 peer_caps,
  389. struct tipc_link *bc_sndlink,
  390. struct tipc_link *bc_rcvlink,
  391. struct sk_buff_head *inputq,
  392. struct sk_buff_head *namedq,
  393. struct tipc_link **link)
  394. {
  395. char peer_str[NODE_ID_STR_LEN] = {0,};
  396. char self_str[NODE_ID_STR_LEN] = {0,};
  397. struct tipc_link *l;
  398. l = kzalloc(sizeof(*l), GFP_ATOMIC);
  399. if (!l)
  400. return false;
  401. *link = l;
  402. l->session = session;
  403. /* Set link name for unicast links only */
  404. if (peer_id) {
  405. tipc_nodeid2string(self_str, tipc_own_id(net));
  406. if (strlen(self_str) > 16)
  407. sprintf(self_str, "%x", self);
  408. tipc_nodeid2string(peer_str, peer_id);
  409. if (strlen(peer_str) > 16)
  410. sprintf(peer_str, "%x", peer);
  411. }
  412. /* Peer i/f name will be completed by reset/activate message */
  413. snprintf(l->name, sizeof(l->name), "%s:%s-%s:unknown",
  414. self_str, if_name, peer_str);
  415. strcpy(l->if_name, if_name);
  416. l->addr = peer;
  417. l->peer_caps = peer_caps;
  418. l->net = net;
  419. l->in_session = false;
  420. l->bearer_id = bearer_id;
  421. l->tolerance = tolerance;
  422. l->net_plane = net_plane;
  423. l->advertised_mtu = mtu;
  424. l->mtu = mtu;
  425. l->priority = priority;
  426. tipc_link_set_queue_limits(l, window);
  427. l->ackers = 1;
  428. l->bc_sndlink = bc_sndlink;
  429. l->bc_rcvlink = bc_rcvlink;
  430. l->inputq = inputq;
  431. l->namedq = namedq;
  432. l->state = LINK_RESETTING;
  433. __skb_queue_head_init(&l->transmq);
  434. __skb_queue_head_init(&l->backlogq);
  435. __skb_queue_head_init(&l->deferdq);
  436. skb_queue_head_init(&l->wakeupq);
  437. skb_queue_head_init(l->inputq);
  438. return true;
  439. }
  440. /**
  441. * tipc_link_bc_create - create new link to be used for broadcast
  442. * @n: pointer to associated node
  443. * @mtu: mtu to be used initially if no peers
  444. * @window: send window to be used
  445. * @inputq: queue to put messages ready for delivery
  446. * @namedq: queue to put binding table update messages ready for delivery
  447. * @link: return value, pointer to put the created link
  448. *
  449. * Returns true if link was created, otherwise false
  450. */
  451. bool tipc_link_bc_create(struct net *net, u32 ownnode, u32 peer,
  452. int mtu, int window, u16 peer_caps,
  453. struct sk_buff_head *inputq,
  454. struct sk_buff_head *namedq,
  455. struct tipc_link *bc_sndlink,
  456. struct tipc_link **link)
  457. {
  458. struct tipc_link *l;
  459. if (!tipc_link_create(net, "", MAX_BEARERS, 0, 'Z', mtu, 0, window,
  460. 0, ownnode, peer, NULL, peer_caps, bc_sndlink,
  461. NULL, inputq, namedq, link))
  462. return false;
  463. l = *link;
  464. strcpy(l->name, tipc_bclink_name);
  465. tipc_link_reset(l);
  466. l->state = LINK_RESET;
  467. l->ackers = 0;
  468. l->bc_rcvlink = l;
  469. /* Broadcast send link is always up */
  470. if (link_is_bc_sndlink(l))
  471. l->state = LINK_ESTABLISHED;
  472. /* Disable replicast if even a single peer doesn't support it */
  473. if (link_is_bc_rcvlink(l) && !(peer_caps & TIPC_BCAST_RCAST))
  474. tipc_bcast_disable_rcast(net);
  475. return true;
  476. }
  477. /**
  478. * tipc_link_fsm_evt - link finite state machine
  479. * @l: pointer to link
  480. * @evt: state machine event to be processed
  481. */
  482. int tipc_link_fsm_evt(struct tipc_link *l, int evt)
  483. {
  484. int rc = 0;
  485. switch (l->state) {
  486. case LINK_RESETTING:
  487. switch (evt) {
  488. case LINK_PEER_RESET_EVT:
  489. l->state = LINK_PEER_RESET;
  490. break;
  491. case LINK_RESET_EVT:
  492. l->state = LINK_RESET;
  493. break;
  494. case LINK_FAILURE_EVT:
  495. case LINK_FAILOVER_BEGIN_EVT:
  496. case LINK_ESTABLISH_EVT:
  497. case LINK_FAILOVER_END_EVT:
  498. case LINK_SYNCH_BEGIN_EVT:
  499. case LINK_SYNCH_END_EVT:
  500. default:
  501. goto illegal_evt;
  502. }
  503. break;
  504. case LINK_RESET:
  505. switch (evt) {
  506. case LINK_PEER_RESET_EVT:
  507. l->state = LINK_ESTABLISHING;
  508. break;
  509. case LINK_FAILOVER_BEGIN_EVT:
  510. l->state = LINK_FAILINGOVER;
  511. case LINK_FAILURE_EVT:
  512. case LINK_RESET_EVT:
  513. case LINK_ESTABLISH_EVT:
  514. case LINK_FAILOVER_END_EVT:
  515. break;
  516. case LINK_SYNCH_BEGIN_EVT:
  517. case LINK_SYNCH_END_EVT:
  518. default:
  519. goto illegal_evt;
  520. }
  521. break;
  522. case LINK_PEER_RESET:
  523. switch (evt) {
  524. case LINK_RESET_EVT:
  525. l->state = LINK_ESTABLISHING;
  526. break;
  527. case LINK_PEER_RESET_EVT:
  528. case LINK_ESTABLISH_EVT:
  529. case LINK_FAILURE_EVT:
  530. break;
  531. case LINK_SYNCH_BEGIN_EVT:
  532. case LINK_SYNCH_END_EVT:
  533. case LINK_FAILOVER_BEGIN_EVT:
  534. case LINK_FAILOVER_END_EVT:
  535. default:
  536. goto illegal_evt;
  537. }
  538. break;
  539. case LINK_FAILINGOVER:
  540. switch (evt) {
  541. case LINK_FAILOVER_END_EVT:
  542. l->state = LINK_RESET;
  543. break;
  544. case LINK_PEER_RESET_EVT:
  545. case LINK_RESET_EVT:
  546. case LINK_ESTABLISH_EVT:
  547. case LINK_FAILURE_EVT:
  548. break;
  549. case LINK_FAILOVER_BEGIN_EVT:
  550. case LINK_SYNCH_BEGIN_EVT:
  551. case LINK_SYNCH_END_EVT:
  552. default:
  553. goto illegal_evt;
  554. }
  555. break;
  556. case LINK_ESTABLISHING:
  557. switch (evt) {
  558. case LINK_ESTABLISH_EVT:
  559. l->state = LINK_ESTABLISHED;
  560. break;
  561. case LINK_FAILOVER_BEGIN_EVT:
  562. l->state = LINK_FAILINGOVER;
  563. break;
  564. case LINK_RESET_EVT:
  565. l->state = LINK_RESET;
  566. break;
  567. case LINK_FAILURE_EVT:
  568. case LINK_PEER_RESET_EVT:
  569. case LINK_SYNCH_BEGIN_EVT:
  570. case LINK_FAILOVER_END_EVT:
  571. break;
  572. case LINK_SYNCH_END_EVT:
  573. default:
  574. goto illegal_evt;
  575. }
  576. break;
  577. case LINK_ESTABLISHED:
  578. switch (evt) {
  579. case LINK_PEER_RESET_EVT:
  580. l->state = LINK_PEER_RESET;
  581. rc |= TIPC_LINK_DOWN_EVT;
  582. break;
  583. case LINK_FAILURE_EVT:
  584. l->state = LINK_RESETTING;
  585. rc |= TIPC_LINK_DOWN_EVT;
  586. break;
  587. case LINK_RESET_EVT:
  588. l->state = LINK_RESET;
  589. break;
  590. case LINK_ESTABLISH_EVT:
  591. case LINK_SYNCH_END_EVT:
  592. break;
  593. case LINK_SYNCH_BEGIN_EVT:
  594. l->state = LINK_SYNCHING;
  595. break;
  596. case LINK_FAILOVER_BEGIN_EVT:
  597. case LINK_FAILOVER_END_EVT:
  598. default:
  599. goto illegal_evt;
  600. }
  601. break;
  602. case LINK_SYNCHING:
  603. switch (evt) {
  604. case LINK_PEER_RESET_EVT:
  605. l->state = LINK_PEER_RESET;
  606. rc |= TIPC_LINK_DOWN_EVT;
  607. break;
  608. case LINK_FAILURE_EVT:
  609. l->state = LINK_RESETTING;
  610. rc |= TIPC_LINK_DOWN_EVT;
  611. break;
  612. case LINK_RESET_EVT:
  613. l->state = LINK_RESET;
  614. break;
  615. case LINK_ESTABLISH_EVT:
  616. case LINK_SYNCH_BEGIN_EVT:
  617. break;
  618. case LINK_SYNCH_END_EVT:
  619. l->state = LINK_ESTABLISHED;
  620. break;
  621. case LINK_FAILOVER_BEGIN_EVT:
  622. case LINK_FAILOVER_END_EVT:
  623. default:
  624. goto illegal_evt;
  625. }
  626. break;
  627. default:
  628. pr_err("Unknown FSM state %x in %s\n", l->state, l->name);
  629. }
  630. return rc;
  631. illegal_evt:
  632. pr_err("Illegal FSM event %x in state %x on link %s\n",
  633. evt, l->state, l->name);
  634. return rc;
  635. }
  636. /* link_profile_stats - update statistical profiling of traffic
  637. */
  638. static void link_profile_stats(struct tipc_link *l)
  639. {
  640. struct sk_buff *skb;
  641. struct tipc_msg *msg;
  642. int length;
  643. /* Update counters used in statistical profiling of send traffic */
  644. l->stats.accu_queue_sz += skb_queue_len(&l->transmq);
  645. l->stats.queue_sz_counts++;
  646. skb = skb_peek(&l->transmq);
  647. if (!skb)
  648. return;
  649. msg = buf_msg(skb);
  650. length = msg_size(msg);
  651. if (msg_user(msg) == MSG_FRAGMENTER) {
  652. if (msg_type(msg) != FIRST_FRAGMENT)
  653. return;
  654. length = msg_size(msg_get_wrapped(msg));
  655. }
  656. l->stats.msg_lengths_total += length;
  657. l->stats.msg_length_counts++;
  658. if (length <= 64)
  659. l->stats.msg_length_profile[0]++;
  660. else if (length <= 256)
  661. l->stats.msg_length_profile[1]++;
  662. else if (length <= 1024)
  663. l->stats.msg_length_profile[2]++;
  664. else if (length <= 4096)
  665. l->stats.msg_length_profile[3]++;
  666. else if (length <= 16384)
  667. l->stats.msg_length_profile[4]++;
  668. else if (length <= 32768)
  669. l->stats.msg_length_profile[5]++;
  670. else
  671. l->stats.msg_length_profile[6]++;
  672. }
  673. /* tipc_link_timeout - perform periodic task as instructed from node timeout
  674. */
  675. int tipc_link_timeout(struct tipc_link *l, struct sk_buff_head *xmitq)
  676. {
  677. int mtyp = 0;
  678. int rc = 0;
  679. bool state = false;
  680. bool probe = false;
  681. bool setup = false;
  682. u16 bc_snt = l->bc_sndlink->snd_nxt - 1;
  683. u16 bc_acked = l->bc_rcvlink->acked;
  684. struct tipc_mon_state *mstate = &l->mon_state;
  685. switch (l->state) {
  686. case LINK_ESTABLISHED:
  687. case LINK_SYNCHING:
  688. mtyp = STATE_MSG;
  689. link_profile_stats(l);
  690. tipc_mon_get_state(l->net, l->addr, mstate, l->bearer_id);
  691. if (mstate->reset || (l->silent_intv_cnt > l->abort_limit))
  692. return tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
  693. state = bc_acked != bc_snt;
  694. state |= l->bc_rcvlink->rcv_unacked;
  695. state |= l->rcv_unacked;
  696. state |= !skb_queue_empty(&l->transmq);
  697. state |= !skb_queue_empty(&l->deferdq);
  698. probe = mstate->probing;
  699. probe |= l->silent_intv_cnt;
  700. if (probe || mstate->monitoring)
  701. l->silent_intv_cnt++;
  702. break;
  703. case LINK_RESET:
  704. setup = l->rst_cnt++ <= 4;
  705. setup |= !(l->rst_cnt % 16);
  706. mtyp = RESET_MSG;
  707. break;
  708. case LINK_ESTABLISHING:
  709. setup = true;
  710. mtyp = ACTIVATE_MSG;
  711. break;
  712. case LINK_PEER_RESET:
  713. case LINK_RESETTING:
  714. case LINK_FAILINGOVER:
  715. break;
  716. default:
  717. break;
  718. }
  719. if (state || probe || setup)
  720. tipc_link_build_proto_msg(l, mtyp, probe, 0, 0, 0, 0, xmitq);
  721. return rc;
  722. }
  723. /**
  724. * link_schedule_user - schedule a message sender for wakeup after congestion
  725. * @l: congested link
  726. * @hdr: header of message that is being sent
  727. * Create pseudo msg to send back to user when congestion abates
  728. */
  729. static int link_schedule_user(struct tipc_link *l, struct tipc_msg *hdr)
  730. {
  731. u32 dnode = tipc_own_addr(l->net);
  732. u32 dport = msg_origport(hdr);
  733. struct sk_buff *skb;
  734. /* Create and schedule wakeup pseudo message */
  735. skb = tipc_msg_create(SOCK_WAKEUP, 0, INT_H_SIZE, 0,
  736. dnode, l->addr, dport, 0, 0);
  737. if (!skb)
  738. return -ENOBUFS;
  739. msg_set_dest_droppable(buf_msg(skb), true);
  740. TIPC_SKB_CB(skb)->chain_imp = msg_importance(hdr);
  741. skb_queue_tail(&l->wakeupq, skb);
  742. l->stats.link_congs++;
  743. return -ELINKCONG;
  744. }
  745. /**
  746. * link_prepare_wakeup - prepare users for wakeup after congestion
  747. * @l: congested link
  748. * Wake up a number of waiting users, as permitted by available space
  749. * in the send queue
  750. */
  751. static void link_prepare_wakeup(struct tipc_link *l)
  752. {
  753. struct sk_buff *skb, *tmp;
  754. int imp, i = 0;
  755. skb_queue_walk_safe(&l->wakeupq, skb, tmp) {
  756. imp = TIPC_SKB_CB(skb)->chain_imp;
  757. if (l->backlog[imp].len < l->backlog[imp].limit) {
  758. skb_unlink(skb, &l->wakeupq);
  759. skb_queue_tail(l->inputq, skb);
  760. } else if (i++ > 10) {
  761. break;
  762. }
  763. }
  764. }
  765. void tipc_link_reset(struct tipc_link *l)
  766. {
  767. l->in_session = false;
  768. l->session++;
  769. l->mtu = l->advertised_mtu;
  770. __skb_queue_purge(&l->transmq);
  771. __skb_queue_purge(&l->deferdq);
  772. skb_queue_splice_init(&l->wakeupq, l->inputq);
  773. __skb_queue_purge(&l->backlogq);
  774. l->backlog[TIPC_LOW_IMPORTANCE].len = 0;
  775. l->backlog[TIPC_MEDIUM_IMPORTANCE].len = 0;
  776. l->backlog[TIPC_HIGH_IMPORTANCE].len = 0;
  777. l->backlog[TIPC_CRITICAL_IMPORTANCE].len = 0;
  778. l->backlog[TIPC_SYSTEM_IMPORTANCE].len = 0;
  779. kfree_skb(l->reasm_buf);
  780. kfree_skb(l->failover_reasm_skb);
  781. l->reasm_buf = NULL;
  782. l->failover_reasm_skb = NULL;
  783. l->rcv_unacked = 0;
  784. l->snd_nxt = 1;
  785. l->rcv_nxt = 1;
  786. l->snd_nxt_state = 1;
  787. l->rcv_nxt_state = 1;
  788. l->acked = 0;
  789. l->silent_intv_cnt = 0;
  790. l->rst_cnt = 0;
  791. l->stale_cnt = 0;
  792. l->bc_peer_is_up = false;
  793. memset(&l->mon_state, 0, sizeof(l->mon_state));
  794. tipc_link_reset_stats(l);
  795. }
  796. /**
  797. * tipc_link_xmit(): enqueue buffer list according to queue situation
  798. * @link: link to use
  799. * @list: chain of buffers containing message
  800. * @xmitq: returned list of packets to be sent by caller
  801. *
  802. * Consumes the buffer chain.
  803. * Returns 0 if success, or errno: -ELINKCONG, -EMSGSIZE or -ENOBUFS
  804. * Messages at TIPC_SYSTEM_IMPORTANCE are always accepted
  805. */
  806. int tipc_link_xmit(struct tipc_link *l, struct sk_buff_head *list,
  807. struct sk_buff_head *xmitq)
  808. {
  809. struct tipc_msg *hdr = buf_msg(skb_peek(list));
  810. unsigned int maxwin = l->window;
  811. int imp = msg_importance(hdr);
  812. unsigned int mtu = l->mtu;
  813. u16 ack = l->rcv_nxt - 1;
  814. u16 seqno = l->snd_nxt;
  815. u16 bc_ack = l->bc_rcvlink->rcv_nxt - 1;
  816. struct sk_buff_head *transmq = &l->transmq;
  817. struct sk_buff_head *backlogq = &l->backlogq;
  818. struct sk_buff *skb, *_skb, *bskb;
  819. int pkt_cnt = skb_queue_len(list);
  820. int rc = 0;
  821. if (unlikely(msg_size(hdr) > mtu)) {
  822. skb_queue_purge(list);
  823. return -EMSGSIZE;
  824. }
  825. /* Allow oversubscription of one data msg per source at congestion */
  826. if (unlikely(l->backlog[imp].len >= l->backlog[imp].limit)) {
  827. if (imp == TIPC_SYSTEM_IMPORTANCE) {
  828. pr_warn("%s<%s>, link overflow", link_rst_msg, l->name);
  829. return -ENOBUFS;
  830. }
  831. rc = link_schedule_user(l, hdr);
  832. }
  833. if (pkt_cnt > 1) {
  834. l->stats.sent_fragmented++;
  835. l->stats.sent_fragments += pkt_cnt;
  836. }
  837. /* Prepare each packet for sending, and add to relevant queue: */
  838. while (skb_queue_len(list)) {
  839. skb = skb_peek(list);
  840. hdr = buf_msg(skb);
  841. msg_set_seqno(hdr, seqno);
  842. msg_set_ack(hdr, ack);
  843. msg_set_bcast_ack(hdr, bc_ack);
  844. if (likely(skb_queue_len(transmq) < maxwin)) {
  845. _skb = skb_clone(skb, GFP_ATOMIC);
  846. if (!_skb) {
  847. skb_queue_purge(list);
  848. return -ENOBUFS;
  849. }
  850. __skb_dequeue(list);
  851. __skb_queue_tail(transmq, skb);
  852. __skb_queue_tail(xmitq, _skb);
  853. TIPC_SKB_CB(skb)->ackers = l->ackers;
  854. l->rcv_unacked = 0;
  855. l->stats.sent_pkts++;
  856. seqno++;
  857. continue;
  858. }
  859. if (tipc_msg_bundle(skb_peek_tail(backlogq), hdr, mtu)) {
  860. kfree_skb(__skb_dequeue(list));
  861. l->stats.sent_bundled++;
  862. continue;
  863. }
  864. if (tipc_msg_make_bundle(&bskb, hdr, mtu, l->addr)) {
  865. kfree_skb(__skb_dequeue(list));
  866. __skb_queue_tail(backlogq, bskb);
  867. l->backlog[msg_importance(buf_msg(bskb))].len++;
  868. l->stats.sent_bundled++;
  869. l->stats.sent_bundles++;
  870. continue;
  871. }
  872. l->backlog[imp].len += skb_queue_len(list);
  873. skb_queue_splice_tail_init(list, backlogq);
  874. }
  875. l->snd_nxt = seqno;
  876. return rc;
  877. }
  878. static void tipc_link_advance_backlog(struct tipc_link *l,
  879. struct sk_buff_head *xmitq)
  880. {
  881. struct sk_buff *skb, *_skb;
  882. struct tipc_msg *hdr;
  883. u16 seqno = l->snd_nxt;
  884. u16 ack = l->rcv_nxt - 1;
  885. u16 bc_ack = l->bc_rcvlink->rcv_nxt - 1;
  886. while (skb_queue_len(&l->transmq) < l->window) {
  887. skb = skb_peek(&l->backlogq);
  888. if (!skb)
  889. break;
  890. _skb = skb_clone(skb, GFP_ATOMIC);
  891. if (!_skb)
  892. break;
  893. __skb_dequeue(&l->backlogq);
  894. hdr = buf_msg(skb);
  895. l->backlog[msg_importance(hdr)].len--;
  896. __skb_queue_tail(&l->transmq, skb);
  897. __skb_queue_tail(xmitq, _skb);
  898. TIPC_SKB_CB(skb)->ackers = l->ackers;
  899. msg_set_seqno(hdr, seqno);
  900. msg_set_ack(hdr, ack);
  901. msg_set_bcast_ack(hdr, bc_ack);
  902. l->rcv_unacked = 0;
  903. l->stats.sent_pkts++;
  904. seqno++;
  905. }
  906. l->snd_nxt = seqno;
  907. }
  908. static void link_retransmit_failure(struct tipc_link *l, struct sk_buff *skb)
  909. {
  910. struct tipc_msg *hdr = buf_msg(skb);
  911. pr_warn("Retransmission failure on link <%s>\n", l->name);
  912. link_print(l, "State of link ");
  913. pr_info("Failed msg: usr %u, typ %u, len %u, err %u\n",
  914. msg_user(hdr), msg_type(hdr), msg_size(hdr), msg_errcode(hdr));
  915. pr_info("sqno %u, prev: %x, src: %x\n",
  916. msg_seqno(hdr), msg_prevnode(hdr), msg_orignode(hdr));
  917. }
  918. /* tipc_link_retrans() - retransmit one or more packets
  919. * @l: the link to transmit on
  920. * @r: the receiving link ordering the retransmit. Same as l if unicast
  921. * @from: retransmit from (inclusive) this sequence number
  922. * @to: retransmit to (inclusive) this sequence number
  923. * xmitq: queue for accumulating the retransmitted packets
  924. */
  925. static int tipc_link_retrans(struct tipc_link *l, struct tipc_link *r,
  926. u16 from, u16 to, struct sk_buff_head *xmitq)
  927. {
  928. struct sk_buff *_skb, *skb = skb_peek(&l->transmq);
  929. u16 bc_ack = l->bc_rcvlink->rcv_nxt - 1;
  930. u16 ack = l->rcv_nxt - 1;
  931. struct tipc_msg *hdr;
  932. if (!skb)
  933. return 0;
  934. /* Detect repeated retransmit failures on same packet */
  935. if (r->last_retransm != buf_seqno(skb)) {
  936. r->last_retransm = buf_seqno(skb);
  937. r->stale_limit = jiffies + msecs_to_jiffies(l->tolerance);
  938. } else if (++r->stale_cnt > 99 && time_after(jiffies, r->stale_limit)) {
  939. link_retransmit_failure(l, skb);
  940. if (link_is_bc_sndlink(l))
  941. return TIPC_LINK_DOWN_EVT;
  942. return tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
  943. }
  944. skb_queue_walk(&l->transmq, skb) {
  945. hdr = buf_msg(skb);
  946. if (less(msg_seqno(hdr), from))
  947. continue;
  948. if (more(msg_seqno(hdr), to))
  949. break;
  950. _skb = __pskb_copy(skb, MIN_H_SIZE, GFP_ATOMIC);
  951. if (!_skb)
  952. return 0;
  953. hdr = buf_msg(_skb);
  954. msg_set_ack(hdr, ack);
  955. msg_set_bcast_ack(hdr, bc_ack);
  956. _skb->priority = TC_PRIO_CONTROL;
  957. __skb_queue_tail(xmitq, _skb);
  958. l->stats.retransmitted++;
  959. }
  960. return 0;
  961. }
  962. /* tipc_data_input - deliver data and name distr msgs to upper layer
  963. *
  964. * Consumes buffer if message is of right type
  965. * Node lock must be held
  966. */
  967. static bool tipc_data_input(struct tipc_link *l, struct sk_buff *skb,
  968. struct sk_buff_head *inputq)
  969. {
  970. struct sk_buff_head *mc_inputq = l->bc_rcvlink->inputq;
  971. struct tipc_msg *hdr = buf_msg(skb);
  972. switch (msg_user(hdr)) {
  973. case TIPC_LOW_IMPORTANCE:
  974. case TIPC_MEDIUM_IMPORTANCE:
  975. case TIPC_HIGH_IMPORTANCE:
  976. case TIPC_CRITICAL_IMPORTANCE:
  977. if (unlikely(msg_in_group(hdr) || msg_mcast(hdr))) {
  978. skb_queue_tail(mc_inputq, skb);
  979. return true;
  980. }
  981. /* else: fall through */
  982. case CONN_MANAGER:
  983. skb_queue_tail(inputq, skb);
  984. return true;
  985. case GROUP_PROTOCOL:
  986. skb_queue_tail(mc_inputq, skb);
  987. return true;
  988. case NAME_DISTRIBUTOR:
  989. l->bc_rcvlink->state = LINK_ESTABLISHED;
  990. skb_queue_tail(l->namedq, skb);
  991. return true;
  992. case MSG_BUNDLER:
  993. case TUNNEL_PROTOCOL:
  994. case MSG_FRAGMENTER:
  995. case BCAST_PROTOCOL:
  996. return false;
  997. default:
  998. pr_warn("Dropping received illegal msg type\n");
  999. kfree_skb(skb);
  1000. return false;
  1001. };
  1002. }
  1003. /* tipc_link_input - process packet that has passed link protocol check
  1004. *
  1005. * Consumes buffer
  1006. */
  1007. static int tipc_link_input(struct tipc_link *l, struct sk_buff *skb,
  1008. struct sk_buff_head *inputq)
  1009. {
  1010. struct tipc_msg *hdr = buf_msg(skb);
  1011. struct sk_buff **reasm_skb = &l->reasm_buf;
  1012. struct sk_buff *iskb;
  1013. struct sk_buff_head tmpq;
  1014. int usr = msg_user(hdr);
  1015. int rc = 0;
  1016. int pos = 0;
  1017. int ipos = 0;
  1018. if (unlikely(usr == TUNNEL_PROTOCOL)) {
  1019. if (msg_type(hdr) == SYNCH_MSG) {
  1020. __skb_queue_purge(&l->deferdq);
  1021. goto drop;
  1022. }
  1023. if (!tipc_msg_extract(skb, &iskb, &ipos))
  1024. return rc;
  1025. kfree_skb(skb);
  1026. skb = iskb;
  1027. hdr = buf_msg(skb);
  1028. if (less(msg_seqno(hdr), l->drop_point))
  1029. goto drop;
  1030. if (tipc_data_input(l, skb, inputq))
  1031. return rc;
  1032. usr = msg_user(hdr);
  1033. reasm_skb = &l->failover_reasm_skb;
  1034. }
  1035. if (usr == MSG_BUNDLER) {
  1036. skb_queue_head_init(&tmpq);
  1037. l->stats.recv_bundles++;
  1038. l->stats.recv_bundled += msg_msgcnt(hdr);
  1039. while (tipc_msg_extract(skb, &iskb, &pos))
  1040. tipc_data_input(l, iskb, &tmpq);
  1041. tipc_skb_queue_splice_tail(&tmpq, inputq);
  1042. return 0;
  1043. } else if (usr == MSG_FRAGMENTER) {
  1044. l->stats.recv_fragments++;
  1045. if (tipc_buf_append(reasm_skb, &skb)) {
  1046. l->stats.recv_fragmented++;
  1047. tipc_data_input(l, skb, inputq);
  1048. } else if (!*reasm_skb && !link_is_bc_rcvlink(l)) {
  1049. pr_warn_ratelimited("Unable to build fragment list\n");
  1050. return tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
  1051. }
  1052. return 0;
  1053. } else if (usr == BCAST_PROTOCOL) {
  1054. tipc_bcast_lock(l->net);
  1055. tipc_link_bc_init_rcv(l->bc_rcvlink, hdr);
  1056. tipc_bcast_unlock(l->net);
  1057. }
  1058. drop:
  1059. kfree_skb(skb);
  1060. return 0;
  1061. }
  1062. static bool tipc_link_release_pkts(struct tipc_link *l, u16 acked)
  1063. {
  1064. bool released = false;
  1065. struct sk_buff *skb, *tmp;
  1066. skb_queue_walk_safe(&l->transmq, skb, tmp) {
  1067. if (more(buf_seqno(skb), acked))
  1068. break;
  1069. __skb_unlink(skb, &l->transmq);
  1070. kfree_skb(skb);
  1071. released = true;
  1072. }
  1073. return released;
  1074. }
  1075. /* tipc_link_build_state_msg: prepare link state message for transmission
  1076. *
  1077. * Note that sending of broadcast ack is coordinated among nodes, to reduce
  1078. * risk of ack storms towards the sender
  1079. */
  1080. int tipc_link_build_state_msg(struct tipc_link *l, struct sk_buff_head *xmitq)
  1081. {
  1082. if (!l)
  1083. return 0;
  1084. /* Broadcast ACK must be sent via a unicast link => defer to caller */
  1085. if (link_is_bc_rcvlink(l)) {
  1086. if (((l->rcv_nxt ^ tipc_own_addr(l->net)) & 0xf) != 0xf)
  1087. return 0;
  1088. l->rcv_unacked = 0;
  1089. /* Use snd_nxt to store peer's snd_nxt in broadcast rcv link */
  1090. l->snd_nxt = l->rcv_nxt;
  1091. return TIPC_LINK_SND_STATE;
  1092. }
  1093. /* Unicast ACK */
  1094. l->rcv_unacked = 0;
  1095. l->stats.sent_acks++;
  1096. tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, 0, 0, xmitq);
  1097. return 0;
  1098. }
  1099. /* tipc_link_build_reset_msg: prepare link RESET or ACTIVATE message
  1100. */
  1101. void tipc_link_build_reset_msg(struct tipc_link *l, struct sk_buff_head *xmitq)
  1102. {
  1103. int mtyp = RESET_MSG;
  1104. struct sk_buff *skb;
  1105. if (l->state == LINK_ESTABLISHING)
  1106. mtyp = ACTIVATE_MSG;
  1107. tipc_link_build_proto_msg(l, mtyp, 0, 0, 0, 0, 0, xmitq);
  1108. /* Inform peer that this endpoint is going down if applicable */
  1109. skb = skb_peek_tail(xmitq);
  1110. if (skb && (l->state == LINK_RESET))
  1111. msg_set_peer_stopping(buf_msg(skb), 1);
  1112. }
  1113. /* tipc_link_build_nack_msg: prepare link nack message for transmission
  1114. * Note that sending of broadcast NACK is coordinated among nodes, to
  1115. * reduce the risk of NACK storms towards the sender
  1116. */
  1117. static int tipc_link_build_nack_msg(struct tipc_link *l,
  1118. struct sk_buff_head *xmitq)
  1119. {
  1120. u32 def_cnt = ++l->stats.deferred_recv;
  1121. int match1, match2;
  1122. if (link_is_bc_rcvlink(l)) {
  1123. match1 = def_cnt & 0xf;
  1124. match2 = tipc_own_addr(l->net) & 0xf;
  1125. if (match1 == match2)
  1126. return TIPC_LINK_SND_STATE;
  1127. return 0;
  1128. }
  1129. if ((skb_queue_len(&l->deferdq) == 1) || !(def_cnt % TIPC_NACK_INTV))
  1130. tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, 0, 0, xmitq);
  1131. return 0;
  1132. }
  1133. /* tipc_link_rcv - process TIPC packets/messages arriving from off-node
  1134. * @l: the link that should handle the message
  1135. * @skb: TIPC packet
  1136. * @xmitq: queue to place packets to be sent after this call
  1137. */
  1138. int tipc_link_rcv(struct tipc_link *l, struct sk_buff *skb,
  1139. struct sk_buff_head *xmitq)
  1140. {
  1141. struct sk_buff_head *defq = &l->deferdq;
  1142. struct tipc_msg *hdr;
  1143. u16 seqno, rcv_nxt, win_lim;
  1144. int rc = 0;
  1145. do {
  1146. hdr = buf_msg(skb);
  1147. seqno = msg_seqno(hdr);
  1148. rcv_nxt = l->rcv_nxt;
  1149. win_lim = rcv_nxt + TIPC_MAX_LINK_WIN;
  1150. /* Verify and update link state */
  1151. if (unlikely(msg_user(hdr) == LINK_PROTOCOL))
  1152. return tipc_link_proto_rcv(l, skb, xmitq);
  1153. if (unlikely(!link_is_up(l))) {
  1154. if (l->state == LINK_ESTABLISHING)
  1155. rc = TIPC_LINK_UP_EVT;
  1156. goto drop;
  1157. }
  1158. /* Don't send probe at next timeout expiration */
  1159. l->silent_intv_cnt = 0;
  1160. /* Drop if outside receive window */
  1161. if (unlikely(less(seqno, rcv_nxt) || more(seqno, win_lim))) {
  1162. l->stats.duplicates++;
  1163. goto drop;
  1164. }
  1165. /* Forward queues and wake up waiting users */
  1166. if (likely(tipc_link_release_pkts(l, msg_ack(hdr)))) {
  1167. l->stale_cnt = 0;
  1168. tipc_link_advance_backlog(l, xmitq);
  1169. if (unlikely(!skb_queue_empty(&l->wakeupq)))
  1170. link_prepare_wakeup(l);
  1171. }
  1172. /* Defer delivery if sequence gap */
  1173. if (unlikely(seqno != rcv_nxt)) {
  1174. __tipc_skb_queue_sorted(defq, seqno, skb);
  1175. rc |= tipc_link_build_nack_msg(l, xmitq);
  1176. break;
  1177. }
  1178. /* Deliver packet */
  1179. l->rcv_nxt++;
  1180. l->stats.recv_pkts++;
  1181. if (!tipc_data_input(l, skb, l->inputq))
  1182. rc |= tipc_link_input(l, skb, l->inputq);
  1183. if (unlikely(++l->rcv_unacked >= TIPC_MIN_LINK_WIN))
  1184. rc |= tipc_link_build_state_msg(l, xmitq);
  1185. if (unlikely(rc & ~TIPC_LINK_SND_STATE))
  1186. break;
  1187. } while ((skb = __skb_dequeue(defq)));
  1188. return rc;
  1189. drop:
  1190. kfree_skb(skb);
  1191. return rc;
  1192. }
  1193. static void tipc_link_build_proto_msg(struct tipc_link *l, int mtyp, bool probe,
  1194. bool probe_reply, u16 rcvgap,
  1195. int tolerance, int priority,
  1196. struct sk_buff_head *xmitq)
  1197. {
  1198. struct tipc_link *bcl = l->bc_rcvlink;
  1199. struct sk_buff *skb;
  1200. struct tipc_msg *hdr;
  1201. struct sk_buff_head *dfq = &l->deferdq;
  1202. bool node_up = link_is_up(bcl);
  1203. struct tipc_mon_state *mstate = &l->mon_state;
  1204. int dlen = 0;
  1205. void *data;
  1206. /* Don't send protocol message during reset or link failover */
  1207. if (tipc_link_is_blocked(l))
  1208. return;
  1209. if (!tipc_link_is_up(l) && (mtyp == STATE_MSG))
  1210. return;
  1211. if (!skb_queue_empty(dfq))
  1212. rcvgap = buf_seqno(skb_peek(dfq)) - l->rcv_nxt;
  1213. skb = tipc_msg_create(LINK_PROTOCOL, mtyp, INT_H_SIZE,
  1214. tipc_max_domain_size, l->addr,
  1215. tipc_own_addr(l->net), 0, 0, 0);
  1216. if (!skb)
  1217. return;
  1218. hdr = buf_msg(skb);
  1219. data = msg_data(hdr);
  1220. msg_set_session(hdr, l->session);
  1221. msg_set_bearer_id(hdr, l->bearer_id);
  1222. msg_set_net_plane(hdr, l->net_plane);
  1223. msg_set_next_sent(hdr, l->snd_nxt);
  1224. msg_set_ack(hdr, l->rcv_nxt - 1);
  1225. msg_set_bcast_ack(hdr, bcl->rcv_nxt - 1);
  1226. msg_set_bc_ack_invalid(hdr, !node_up);
  1227. msg_set_last_bcast(hdr, l->bc_sndlink->snd_nxt - 1);
  1228. msg_set_link_tolerance(hdr, tolerance);
  1229. msg_set_linkprio(hdr, priority);
  1230. msg_set_redundant_link(hdr, node_up);
  1231. msg_set_seq_gap(hdr, 0);
  1232. msg_set_seqno(hdr, l->snd_nxt + U16_MAX / 2);
  1233. if (mtyp == STATE_MSG) {
  1234. if (l->peer_caps & TIPC_LINK_PROTO_SEQNO)
  1235. msg_set_seqno(hdr, l->snd_nxt_state++);
  1236. msg_set_seq_gap(hdr, rcvgap);
  1237. msg_set_bc_gap(hdr, link_bc_rcv_gap(bcl));
  1238. msg_set_probe(hdr, probe);
  1239. msg_set_is_keepalive(hdr, probe || probe_reply);
  1240. tipc_mon_prep(l->net, data, &dlen, mstate, l->bearer_id);
  1241. msg_set_size(hdr, INT_H_SIZE + dlen);
  1242. skb_trim(skb, INT_H_SIZE + dlen);
  1243. l->stats.sent_states++;
  1244. l->rcv_unacked = 0;
  1245. } else {
  1246. /* RESET_MSG or ACTIVATE_MSG */
  1247. msg_set_max_pkt(hdr, l->advertised_mtu);
  1248. strcpy(data, l->if_name);
  1249. msg_set_size(hdr, INT_H_SIZE + TIPC_MAX_IF_NAME);
  1250. skb_trim(skb, INT_H_SIZE + TIPC_MAX_IF_NAME);
  1251. }
  1252. if (probe)
  1253. l->stats.sent_probes++;
  1254. if (rcvgap)
  1255. l->stats.sent_nacks++;
  1256. skb->priority = TC_PRIO_CONTROL;
  1257. __skb_queue_tail(xmitq, skb);
  1258. }
  1259. /* tipc_link_tnl_prepare(): prepare and return a list of tunnel packets
  1260. * with contents of the link's transmit and backlog queues.
  1261. */
  1262. void tipc_link_tnl_prepare(struct tipc_link *l, struct tipc_link *tnl,
  1263. int mtyp, struct sk_buff_head *xmitq)
  1264. {
  1265. struct sk_buff *skb, *tnlskb;
  1266. struct tipc_msg *hdr, tnlhdr;
  1267. struct sk_buff_head *queue = &l->transmq;
  1268. struct sk_buff_head tmpxq, tnlq;
  1269. u16 pktlen, pktcnt, seqno = l->snd_nxt;
  1270. if (!tnl)
  1271. return;
  1272. skb_queue_head_init(&tnlq);
  1273. skb_queue_head_init(&tmpxq);
  1274. /* At least one packet required for safe algorithm => add dummy */
  1275. skb = tipc_msg_create(TIPC_LOW_IMPORTANCE, TIPC_DIRECT_MSG,
  1276. BASIC_H_SIZE, 0, l->addr, tipc_own_addr(l->net),
  1277. 0, 0, TIPC_ERR_NO_PORT);
  1278. if (!skb) {
  1279. pr_warn("%sunable to create tunnel packet\n", link_co_err);
  1280. return;
  1281. }
  1282. skb_queue_tail(&tnlq, skb);
  1283. tipc_link_xmit(l, &tnlq, &tmpxq);
  1284. __skb_queue_purge(&tmpxq);
  1285. /* Initialize reusable tunnel packet header */
  1286. tipc_msg_init(tipc_own_addr(l->net), &tnlhdr, TUNNEL_PROTOCOL,
  1287. mtyp, INT_H_SIZE, l->addr);
  1288. pktcnt = skb_queue_len(&l->transmq) + skb_queue_len(&l->backlogq);
  1289. msg_set_msgcnt(&tnlhdr, pktcnt);
  1290. msg_set_bearer_id(&tnlhdr, l->peer_bearer_id);
  1291. tnl:
  1292. /* Wrap each packet into a tunnel packet */
  1293. skb_queue_walk(queue, skb) {
  1294. hdr = buf_msg(skb);
  1295. if (queue == &l->backlogq)
  1296. msg_set_seqno(hdr, seqno++);
  1297. pktlen = msg_size(hdr);
  1298. msg_set_size(&tnlhdr, pktlen + INT_H_SIZE);
  1299. tnlskb = tipc_buf_acquire(pktlen + INT_H_SIZE, GFP_ATOMIC);
  1300. if (!tnlskb) {
  1301. pr_warn("%sunable to send packet\n", link_co_err);
  1302. return;
  1303. }
  1304. skb_copy_to_linear_data(tnlskb, &tnlhdr, INT_H_SIZE);
  1305. skb_copy_to_linear_data_offset(tnlskb, INT_H_SIZE, hdr, pktlen);
  1306. __skb_queue_tail(&tnlq, tnlskb);
  1307. }
  1308. if (queue != &l->backlogq) {
  1309. queue = &l->backlogq;
  1310. goto tnl;
  1311. }
  1312. tipc_link_xmit(tnl, &tnlq, xmitq);
  1313. if (mtyp == FAILOVER_MSG) {
  1314. tnl->drop_point = l->rcv_nxt;
  1315. tnl->failover_reasm_skb = l->reasm_buf;
  1316. l->reasm_buf = NULL;
  1317. }
  1318. }
  1319. /* tipc_link_validate_msg(): validate message against current link state
  1320. * Returns true if message should be accepted, otherwise false
  1321. */
  1322. bool tipc_link_validate_msg(struct tipc_link *l, struct tipc_msg *hdr)
  1323. {
  1324. u16 curr_session = l->peer_session;
  1325. u16 session = msg_session(hdr);
  1326. int mtyp = msg_type(hdr);
  1327. if (msg_user(hdr) != LINK_PROTOCOL)
  1328. return true;
  1329. switch (mtyp) {
  1330. case RESET_MSG:
  1331. if (!l->in_session)
  1332. return true;
  1333. /* Accept only RESET with new session number */
  1334. return more(session, curr_session);
  1335. case ACTIVATE_MSG:
  1336. if (!l->in_session)
  1337. return true;
  1338. /* Accept only ACTIVATE with new or current session number */
  1339. return !less(session, curr_session);
  1340. case STATE_MSG:
  1341. /* Accept only STATE with current session number */
  1342. if (!l->in_session)
  1343. return false;
  1344. if (session != curr_session)
  1345. return false;
  1346. if (!(l->peer_caps & TIPC_LINK_PROTO_SEQNO))
  1347. return true;
  1348. /* Accept only STATE with new sequence number */
  1349. return !less(msg_seqno(hdr), l->rcv_nxt_state);
  1350. default:
  1351. return false;
  1352. }
  1353. }
  1354. /* tipc_link_proto_rcv(): receive link level protocol message :
  1355. * Note that network plane id propagates through the network, and may
  1356. * change at any time. The node with lowest numerical id determines
  1357. * network plane
  1358. */
  1359. static int tipc_link_proto_rcv(struct tipc_link *l, struct sk_buff *skb,
  1360. struct sk_buff_head *xmitq)
  1361. {
  1362. struct tipc_msg *hdr = buf_msg(skb);
  1363. u16 rcvgap = 0;
  1364. u16 ack = msg_ack(hdr);
  1365. u16 gap = msg_seq_gap(hdr);
  1366. u16 peers_snd_nxt = msg_next_sent(hdr);
  1367. u16 peers_tol = msg_link_tolerance(hdr);
  1368. u16 peers_prio = msg_linkprio(hdr);
  1369. u16 rcv_nxt = l->rcv_nxt;
  1370. u16 dlen = msg_data_sz(hdr);
  1371. int mtyp = msg_type(hdr);
  1372. bool reply = msg_probe(hdr);
  1373. void *data;
  1374. char *if_name;
  1375. int rc = 0;
  1376. if (tipc_link_is_blocked(l) || !xmitq)
  1377. goto exit;
  1378. if (tipc_own_addr(l->net) > msg_prevnode(hdr))
  1379. l->net_plane = msg_net_plane(hdr);
  1380. skb_linearize(skb);
  1381. hdr = buf_msg(skb);
  1382. data = msg_data(hdr);
  1383. if (!tipc_link_validate_msg(l, hdr))
  1384. goto exit;
  1385. switch (mtyp) {
  1386. case RESET_MSG:
  1387. case ACTIVATE_MSG:
  1388. /* Complete own link name with peer's interface name */
  1389. if_name = strrchr(l->name, ':') + 1;
  1390. if (sizeof(l->name) - (if_name - l->name) <= TIPC_MAX_IF_NAME)
  1391. break;
  1392. if (msg_data_sz(hdr) < TIPC_MAX_IF_NAME)
  1393. break;
  1394. strncpy(if_name, data, TIPC_MAX_IF_NAME);
  1395. /* Update own tolerance if peer indicates a non-zero value */
  1396. if (in_range(peers_tol, TIPC_MIN_LINK_TOL, TIPC_MAX_LINK_TOL))
  1397. l->tolerance = peers_tol;
  1398. /* Update own priority if peer's priority is higher */
  1399. if (in_range(peers_prio, l->priority + 1, TIPC_MAX_LINK_PRI))
  1400. l->priority = peers_prio;
  1401. /* ACTIVATE_MSG serves as PEER_RESET if link is already down */
  1402. if (msg_peer_stopping(hdr))
  1403. rc = tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
  1404. else if ((mtyp == RESET_MSG) || !link_is_up(l))
  1405. rc = tipc_link_fsm_evt(l, LINK_PEER_RESET_EVT);
  1406. /* ACTIVATE_MSG takes up link if it was already locally reset */
  1407. if ((mtyp == ACTIVATE_MSG) && (l->state == LINK_ESTABLISHING))
  1408. rc = TIPC_LINK_UP_EVT;
  1409. l->peer_session = msg_session(hdr);
  1410. l->in_session = true;
  1411. l->peer_bearer_id = msg_bearer_id(hdr);
  1412. if (l->mtu > msg_max_pkt(hdr))
  1413. l->mtu = msg_max_pkt(hdr);
  1414. break;
  1415. case STATE_MSG:
  1416. l->rcv_nxt_state = msg_seqno(hdr) + 1;
  1417. /* Update own tolerance if peer indicates a non-zero value */
  1418. if (in_range(peers_tol, TIPC_MIN_LINK_TOL, TIPC_MAX_LINK_TOL))
  1419. l->tolerance = peers_tol;
  1420. /* Update own prio if peer indicates a different value */
  1421. if ((peers_prio != l->priority) &&
  1422. in_range(peers_prio, 1, TIPC_MAX_LINK_PRI)) {
  1423. l->priority = peers_prio;
  1424. rc = tipc_link_fsm_evt(l, LINK_FAILURE_EVT);
  1425. }
  1426. l->silent_intv_cnt = 0;
  1427. l->stats.recv_states++;
  1428. if (msg_probe(hdr))
  1429. l->stats.recv_probes++;
  1430. if (!link_is_up(l)) {
  1431. if (l->state == LINK_ESTABLISHING)
  1432. rc = TIPC_LINK_UP_EVT;
  1433. break;
  1434. }
  1435. tipc_mon_rcv(l->net, data, dlen, l->addr,
  1436. &l->mon_state, l->bearer_id);
  1437. /* Send NACK if peer has sent pkts we haven't received yet */
  1438. if (more(peers_snd_nxt, rcv_nxt) && !tipc_link_is_synching(l))
  1439. rcvgap = peers_snd_nxt - l->rcv_nxt;
  1440. if (rcvgap || reply)
  1441. tipc_link_build_proto_msg(l, STATE_MSG, 0, reply,
  1442. rcvgap, 0, 0, xmitq);
  1443. tipc_link_release_pkts(l, ack);
  1444. /* If NACK, retransmit will now start at right position */
  1445. if (gap) {
  1446. rc = tipc_link_retrans(l, l, ack + 1, ack + gap, xmitq);
  1447. l->stats.recv_nacks++;
  1448. }
  1449. tipc_link_advance_backlog(l, xmitq);
  1450. if (unlikely(!skb_queue_empty(&l->wakeupq)))
  1451. link_prepare_wakeup(l);
  1452. }
  1453. exit:
  1454. kfree_skb(skb);
  1455. return rc;
  1456. }
  1457. /* tipc_link_build_bc_proto_msg() - create broadcast protocol message
  1458. */
  1459. static bool tipc_link_build_bc_proto_msg(struct tipc_link *l, bool bcast,
  1460. u16 peers_snd_nxt,
  1461. struct sk_buff_head *xmitq)
  1462. {
  1463. struct sk_buff *skb;
  1464. struct tipc_msg *hdr;
  1465. struct sk_buff *dfrd_skb = skb_peek(&l->deferdq);
  1466. u16 ack = l->rcv_nxt - 1;
  1467. u16 gap_to = peers_snd_nxt - 1;
  1468. skb = tipc_msg_create(BCAST_PROTOCOL, STATE_MSG, INT_H_SIZE,
  1469. 0, l->addr, tipc_own_addr(l->net), 0, 0, 0);
  1470. if (!skb)
  1471. return false;
  1472. hdr = buf_msg(skb);
  1473. msg_set_last_bcast(hdr, l->bc_sndlink->snd_nxt - 1);
  1474. msg_set_bcast_ack(hdr, ack);
  1475. msg_set_bcgap_after(hdr, ack);
  1476. if (dfrd_skb)
  1477. gap_to = buf_seqno(dfrd_skb) - 1;
  1478. msg_set_bcgap_to(hdr, gap_to);
  1479. msg_set_non_seq(hdr, bcast);
  1480. __skb_queue_tail(xmitq, skb);
  1481. return true;
  1482. }
  1483. /* tipc_link_build_bc_init_msg() - synchronize broadcast link endpoints.
  1484. *
  1485. * Give a newly added peer node the sequence number where it should
  1486. * start receiving and acking broadcast packets.
  1487. */
  1488. static void tipc_link_build_bc_init_msg(struct tipc_link *l,
  1489. struct sk_buff_head *xmitq)
  1490. {
  1491. struct sk_buff_head list;
  1492. __skb_queue_head_init(&list);
  1493. if (!tipc_link_build_bc_proto_msg(l->bc_rcvlink, false, 0, &list))
  1494. return;
  1495. msg_set_bc_ack_invalid(buf_msg(skb_peek(&list)), true);
  1496. tipc_link_xmit(l, &list, xmitq);
  1497. }
  1498. /* tipc_link_bc_init_rcv - receive initial broadcast synch data from peer
  1499. */
  1500. void tipc_link_bc_init_rcv(struct tipc_link *l, struct tipc_msg *hdr)
  1501. {
  1502. int mtyp = msg_type(hdr);
  1503. u16 peers_snd_nxt = msg_bc_snd_nxt(hdr);
  1504. if (link_is_up(l))
  1505. return;
  1506. if (msg_user(hdr) == BCAST_PROTOCOL) {
  1507. l->rcv_nxt = peers_snd_nxt;
  1508. l->state = LINK_ESTABLISHED;
  1509. return;
  1510. }
  1511. if (l->peer_caps & TIPC_BCAST_SYNCH)
  1512. return;
  1513. if (msg_peer_node_is_up(hdr))
  1514. return;
  1515. /* Compatibility: accept older, less safe initial synch data */
  1516. if ((mtyp == RESET_MSG) || (mtyp == ACTIVATE_MSG))
  1517. l->rcv_nxt = peers_snd_nxt;
  1518. }
  1519. /* link_bc_retr eval()- check if the indicated range can be retransmitted now
  1520. * - Adjust permitted range if there is overlap with previous retransmission
  1521. */
  1522. static bool link_bc_retr_eval(struct tipc_link *l, u16 *from, u16 *to)
  1523. {
  1524. unsigned long elapsed = jiffies_to_msecs(jiffies - l->prev_retr);
  1525. if (less(*to, *from))
  1526. return false;
  1527. /* New retransmission request */
  1528. if ((elapsed > TIPC_BC_RETR_LIMIT) ||
  1529. less(*to, l->prev_from) || more(*from, l->prev_to)) {
  1530. l->prev_from = *from;
  1531. l->prev_to = *to;
  1532. l->prev_retr = jiffies;
  1533. return true;
  1534. }
  1535. /* Inside range of previous retransmit */
  1536. if (!less(*from, l->prev_from) && !more(*to, l->prev_to))
  1537. return false;
  1538. /* Fully or partially outside previous range => exclude overlap */
  1539. if (less(*from, l->prev_from)) {
  1540. *to = l->prev_from - 1;
  1541. l->prev_from = *from;
  1542. }
  1543. if (more(*to, l->prev_to)) {
  1544. *from = l->prev_to + 1;
  1545. l->prev_to = *to;
  1546. }
  1547. l->prev_retr = jiffies;
  1548. return true;
  1549. }
  1550. /* tipc_link_bc_sync_rcv - update rcv link according to peer's send state
  1551. */
  1552. int tipc_link_bc_sync_rcv(struct tipc_link *l, struct tipc_msg *hdr,
  1553. struct sk_buff_head *xmitq)
  1554. {
  1555. struct tipc_link *snd_l = l->bc_sndlink;
  1556. u16 peers_snd_nxt = msg_bc_snd_nxt(hdr);
  1557. u16 from = msg_bcast_ack(hdr) + 1;
  1558. u16 to = from + msg_bc_gap(hdr) - 1;
  1559. int rc = 0;
  1560. if (!link_is_up(l))
  1561. return rc;
  1562. if (!msg_peer_node_is_up(hdr))
  1563. return rc;
  1564. /* Open when peer ackowledges our bcast init msg (pkt #1) */
  1565. if (msg_ack(hdr))
  1566. l->bc_peer_is_up = true;
  1567. if (!l->bc_peer_is_up)
  1568. return rc;
  1569. l->stats.recv_nacks++;
  1570. /* Ignore if peers_snd_nxt goes beyond receive window */
  1571. if (more(peers_snd_nxt, l->rcv_nxt + l->window))
  1572. return rc;
  1573. if (link_bc_retr_eval(snd_l, &from, &to))
  1574. rc = tipc_link_retrans(snd_l, l, from, to, xmitq);
  1575. l->snd_nxt = peers_snd_nxt;
  1576. if (link_bc_rcv_gap(l))
  1577. rc |= TIPC_LINK_SND_STATE;
  1578. /* Return now if sender supports nack via STATE messages */
  1579. if (l->peer_caps & TIPC_BCAST_STATE_NACK)
  1580. return rc;
  1581. /* Otherwise, be backwards compatible */
  1582. if (!more(peers_snd_nxt, l->rcv_nxt)) {
  1583. l->nack_state = BC_NACK_SND_CONDITIONAL;
  1584. return 0;
  1585. }
  1586. /* Don't NACK if one was recently sent or peeked */
  1587. if (l->nack_state == BC_NACK_SND_SUPPRESS) {
  1588. l->nack_state = BC_NACK_SND_UNCONDITIONAL;
  1589. return 0;
  1590. }
  1591. /* Conditionally delay NACK sending until next synch rcv */
  1592. if (l->nack_state == BC_NACK_SND_CONDITIONAL) {
  1593. l->nack_state = BC_NACK_SND_UNCONDITIONAL;
  1594. if ((peers_snd_nxt - l->rcv_nxt) < TIPC_MIN_LINK_WIN)
  1595. return 0;
  1596. }
  1597. /* Send NACK now but suppress next one */
  1598. tipc_link_build_bc_proto_msg(l, true, peers_snd_nxt, xmitq);
  1599. l->nack_state = BC_NACK_SND_SUPPRESS;
  1600. return 0;
  1601. }
  1602. void tipc_link_bc_ack_rcv(struct tipc_link *l, u16 acked,
  1603. struct sk_buff_head *xmitq)
  1604. {
  1605. struct sk_buff *skb, *tmp;
  1606. struct tipc_link *snd_l = l->bc_sndlink;
  1607. if (!link_is_up(l) || !l->bc_peer_is_up)
  1608. return;
  1609. if (!more(acked, l->acked))
  1610. return;
  1611. /* Skip over packets peer has already acked */
  1612. skb_queue_walk(&snd_l->transmq, skb) {
  1613. if (more(buf_seqno(skb), l->acked))
  1614. break;
  1615. }
  1616. /* Update/release the packets peer is acking now */
  1617. skb_queue_walk_from_safe(&snd_l->transmq, skb, tmp) {
  1618. if (more(buf_seqno(skb), acked))
  1619. break;
  1620. if (!--TIPC_SKB_CB(skb)->ackers) {
  1621. __skb_unlink(skb, &snd_l->transmq);
  1622. kfree_skb(skb);
  1623. }
  1624. }
  1625. l->acked = acked;
  1626. tipc_link_advance_backlog(snd_l, xmitq);
  1627. if (unlikely(!skb_queue_empty(&snd_l->wakeupq)))
  1628. link_prepare_wakeup(snd_l);
  1629. }
  1630. /* tipc_link_bc_nack_rcv(): receive broadcast nack message
  1631. * This function is here for backwards compatibility, since
  1632. * no BCAST_PROTOCOL/STATE messages occur from TIPC v2.5.
  1633. */
  1634. int tipc_link_bc_nack_rcv(struct tipc_link *l, struct sk_buff *skb,
  1635. struct sk_buff_head *xmitq)
  1636. {
  1637. struct tipc_msg *hdr = buf_msg(skb);
  1638. u32 dnode = msg_destnode(hdr);
  1639. int mtyp = msg_type(hdr);
  1640. u16 acked = msg_bcast_ack(hdr);
  1641. u16 from = acked + 1;
  1642. u16 to = msg_bcgap_to(hdr);
  1643. u16 peers_snd_nxt = to + 1;
  1644. int rc = 0;
  1645. kfree_skb(skb);
  1646. if (!tipc_link_is_up(l) || !l->bc_peer_is_up)
  1647. return 0;
  1648. if (mtyp != STATE_MSG)
  1649. return 0;
  1650. if (dnode == tipc_own_addr(l->net)) {
  1651. tipc_link_bc_ack_rcv(l, acked, xmitq);
  1652. rc = tipc_link_retrans(l->bc_sndlink, l, from, to, xmitq);
  1653. l->stats.recv_nacks++;
  1654. return rc;
  1655. }
  1656. /* Msg for other node => suppress own NACK at next sync if applicable */
  1657. if (more(peers_snd_nxt, l->rcv_nxt) && !less(l->rcv_nxt, from))
  1658. l->nack_state = BC_NACK_SND_SUPPRESS;
  1659. return 0;
  1660. }
  1661. void tipc_link_set_queue_limits(struct tipc_link *l, u32 win)
  1662. {
  1663. int max_bulk = TIPC_MAX_PUBL / (l->mtu / ITEM_SIZE);
  1664. l->window = win;
  1665. l->backlog[TIPC_LOW_IMPORTANCE].limit = max_t(u16, 50, win);
  1666. l->backlog[TIPC_MEDIUM_IMPORTANCE].limit = max_t(u16, 100, win * 2);
  1667. l->backlog[TIPC_HIGH_IMPORTANCE].limit = max_t(u16, 150, win * 3);
  1668. l->backlog[TIPC_CRITICAL_IMPORTANCE].limit = max_t(u16, 200, win * 4);
  1669. l->backlog[TIPC_SYSTEM_IMPORTANCE].limit = max_bulk;
  1670. }
  1671. /**
  1672. * link_reset_stats - reset link statistics
  1673. * @l: pointer to link
  1674. */
  1675. void tipc_link_reset_stats(struct tipc_link *l)
  1676. {
  1677. memset(&l->stats, 0, sizeof(l->stats));
  1678. }
  1679. static void link_print(struct tipc_link *l, const char *str)
  1680. {
  1681. struct sk_buff *hskb = skb_peek(&l->transmq);
  1682. u16 head = hskb ? msg_seqno(buf_msg(hskb)) : l->snd_nxt - 1;
  1683. u16 tail = l->snd_nxt - 1;
  1684. pr_info("%s Link <%s> state %x\n", str, l->name, l->state);
  1685. pr_info("XMTQ: %u [%u-%u], BKLGQ: %u, SNDNX: %u, RCVNX: %u\n",
  1686. skb_queue_len(&l->transmq), head, tail,
  1687. skb_queue_len(&l->backlogq), l->snd_nxt, l->rcv_nxt);
  1688. }
  1689. /* Parse and validate nested (link) properties valid for media, bearer and link
  1690. */
  1691. int tipc_nl_parse_link_prop(struct nlattr *prop, struct nlattr *props[])
  1692. {
  1693. int err;
  1694. err = nla_parse_nested(props, TIPC_NLA_PROP_MAX, prop,
  1695. tipc_nl_prop_policy, NULL);
  1696. if (err)
  1697. return err;
  1698. if (props[TIPC_NLA_PROP_PRIO]) {
  1699. u32 prio;
  1700. prio = nla_get_u32(props[TIPC_NLA_PROP_PRIO]);
  1701. if (prio > TIPC_MAX_LINK_PRI)
  1702. return -EINVAL;
  1703. }
  1704. if (props[TIPC_NLA_PROP_TOL]) {
  1705. u32 tol;
  1706. tol = nla_get_u32(props[TIPC_NLA_PROP_TOL]);
  1707. if ((tol < TIPC_MIN_LINK_TOL) || (tol > TIPC_MAX_LINK_TOL))
  1708. return -EINVAL;
  1709. }
  1710. if (props[TIPC_NLA_PROP_WIN]) {
  1711. u32 win;
  1712. win = nla_get_u32(props[TIPC_NLA_PROP_WIN]);
  1713. if ((win < TIPC_MIN_LINK_WIN) || (win > TIPC_MAX_LINK_WIN))
  1714. return -EINVAL;
  1715. }
  1716. return 0;
  1717. }
  1718. static int __tipc_nl_add_stats(struct sk_buff *skb, struct tipc_stats *s)
  1719. {
  1720. int i;
  1721. struct nlattr *stats;
  1722. struct nla_map {
  1723. u32 key;
  1724. u32 val;
  1725. };
  1726. struct nla_map map[] = {
  1727. {TIPC_NLA_STATS_RX_INFO, 0},
  1728. {TIPC_NLA_STATS_RX_FRAGMENTS, s->recv_fragments},
  1729. {TIPC_NLA_STATS_RX_FRAGMENTED, s->recv_fragmented},
  1730. {TIPC_NLA_STATS_RX_BUNDLES, s->recv_bundles},
  1731. {TIPC_NLA_STATS_RX_BUNDLED, s->recv_bundled},
  1732. {TIPC_NLA_STATS_TX_INFO, 0},
  1733. {TIPC_NLA_STATS_TX_FRAGMENTS, s->sent_fragments},
  1734. {TIPC_NLA_STATS_TX_FRAGMENTED, s->sent_fragmented},
  1735. {TIPC_NLA_STATS_TX_BUNDLES, s->sent_bundles},
  1736. {TIPC_NLA_STATS_TX_BUNDLED, s->sent_bundled},
  1737. {TIPC_NLA_STATS_MSG_PROF_TOT, (s->msg_length_counts) ?
  1738. s->msg_length_counts : 1},
  1739. {TIPC_NLA_STATS_MSG_LEN_CNT, s->msg_length_counts},
  1740. {TIPC_NLA_STATS_MSG_LEN_TOT, s->msg_lengths_total},
  1741. {TIPC_NLA_STATS_MSG_LEN_P0, s->msg_length_profile[0]},
  1742. {TIPC_NLA_STATS_MSG_LEN_P1, s->msg_length_profile[1]},
  1743. {TIPC_NLA_STATS_MSG_LEN_P2, s->msg_length_profile[2]},
  1744. {TIPC_NLA_STATS_MSG_LEN_P3, s->msg_length_profile[3]},
  1745. {TIPC_NLA_STATS_MSG_LEN_P4, s->msg_length_profile[4]},
  1746. {TIPC_NLA_STATS_MSG_LEN_P5, s->msg_length_profile[5]},
  1747. {TIPC_NLA_STATS_MSG_LEN_P6, s->msg_length_profile[6]},
  1748. {TIPC_NLA_STATS_RX_STATES, s->recv_states},
  1749. {TIPC_NLA_STATS_RX_PROBES, s->recv_probes},
  1750. {TIPC_NLA_STATS_RX_NACKS, s->recv_nacks},
  1751. {TIPC_NLA_STATS_RX_DEFERRED, s->deferred_recv},
  1752. {TIPC_NLA_STATS_TX_STATES, s->sent_states},
  1753. {TIPC_NLA_STATS_TX_PROBES, s->sent_probes},
  1754. {TIPC_NLA_STATS_TX_NACKS, s->sent_nacks},
  1755. {TIPC_NLA_STATS_TX_ACKS, s->sent_acks},
  1756. {TIPC_NLA_STATS_RETRANSMITTED, s->retransmitted},
  1757. {TIPC_NLA_STATS_DUPLICATES, s->duplicates},
  1758. {TIPC_NLA_STATS_LINK_CONGS, s->link_congs},
  1759. {TIPC_NLA_STATS_MAX_QUEUE, s->max_queue_sz},
  1760. {TIPC_NLA_STATS_AVG_QUEUE, s->queue_sz_counts ?
  1761. (s->accu_queue_sz / s->queue_sz_counts) : 0}
  1762. };
  1763. stats = nla_nest_start(skb, TIPC_NLA_LINK_STATS);
  1764. if (!stats)
  1765. return -EMSGSIZE;
  1766. for (i = 0; i < ARRAY_SIZE(map); i++)
  1767. if (nla_put_u32(skb, map[i].key, map[i].val))
  1768. goto msg_full;
  1769. nla_nest_end(skb, stats);
  1770. return 0;
  1771. msg_full:
  1772. nla_nest_cancel(skb, stats);
  1773. return -EMSGSIZE;
  1774. }
  1775. /* Caller should hold appropriate locks to protect the link */
  1776. int __tipc_nl_add_link(struct net *net, struct tipc_nl_msg *msg,
  1777. struct tipc_link *link, int nlflags)
  1778. {
  1779. u32 self = tipc_own_addr(net);
  1780. struct nlattr *attrs;
  1781. struct nlattr *prop;
  1782. void *hdr;
  1783. int err;
  1784. hdr = genlmsg_put(msg->skb, msg->portid, msg->seq, &tipc_genl_family,
  1785. nlflags, TIPC_NL_LINK_GET);
  1786. if (!hdr)
  1787. return -EMSGSIZE;
  1788. attrs = nla_nest_start(msg->skb, TIPC_NLA_LINK);
  1789. if (!attrs)
  1790. goto msg_full;
  1791. if (nla_put_string(msg->skb, TIPC_NLA_LINK_NAME, link->name))
  1792. goto attr_msg_full;
  1793. if (nla_put_u32(msg->skb, TIPC_NLA_LINK_DEST, tipc_cluster_mask(self)))
  1794. goto attr_msg_full;
  1795. if (nla_put_u32(msg->skb, TIPC_NLA_LINK_MTU, link->mtu))
  1796. goto attr_msg_full;
  1797. if (nla_put_u32(msg->skb, TIPC_NLA_LINK_RX, link->stats.recv_pkts))
  1798. goto attr_msg_full;
  1799. if (nla_put_u32(msg->skb, TIPC_NLA_LINK_TX, link->stats.sent_pkts))
  1800. goto attr_msg_full;
  1801. if (tipc_link_is_up(link))
  1802. if (nla_put_flag(msg->skb, TIPC_NLA_LINK_UP))
  1803. goto attr_msg_full;
  1804. if (link->active)
  1805. if (nla_put_flag(msg->skb, TIPC_NLA_LINK_ACTIVE))
  1806. goto attr_msg_full;
  1807. prop = nla_nest_start(msg->skb, TIPC_NLA_LINK_PROP);
  1808. if (!prop)
  1809. goto attr_msg_full;
  1810. if (nla_put_u32(msg->skb, TIPC_NLA_PROP_PRIO, link->priority))
  1811. goto prop_msg_full;
  1812. if (nla_put_u32(msg->skb, TIPC_NLA_PROP_TOL, link->tolerance))
  1813. goto prop_msg_full;
  1814. if (nla_put_u32(msg->skb, TIPC_NLA_PROP_WIN,
  1815. link->window))
  1816. goto prop_msg_full;
  1817. if (nla_put_u32(msg->skb, TIPC_NLA_PROP_PRIO, link->priority))
  1818. goto prop_msg_full;
  1819. nla_nest_end(msg->skb, prop);
  1820. err = __tipc_nl_add_stats(msg->skb, &link->stats);
  1821. if (err)
  1822. goto attr_msg_full;
  1823. nla_nest_end(msg->skb, attrs);
  1824. genlmsg_end(msg->skb, hdr);
  1825. return 0;
  1826. prop_msg_full:
  1827. nla_nest_cancel(msg->skb, prop);
  1828. attr_msg_full:
  1829. nla_nest_cancel(msg->skb, attrs);
  1830. msg_full:
  1831. genlmsg_cancel(msg->skb, hdr);
  1832. return -EMSGSIZE;
  1833. }
  1834. static int __tipc_nl_add_bc_link_stat(struct sk_buff *skb,
  1835. struct tipc_stats *stats)
  1836. {
  1837. int i;
  1838. struct nlattr *nest;
  1839. struct nla_map {
  1840. __u32 key;
  1841. __u32 val;
  1842. };
  1843. struct nla_map map[] = {
  1844. {TIPC_NLA_STATS_RX_INFO, stats->recv_pkts},
  1845. {TIPC_NLA_STATS_RX_FRAGMENTS, stats->recv_fragments},
  1846. {TIPC_NLA_STATS_RX_FRAGMENTED, stats->recv_fragmented},
  1847. {TIPC_NLA_STATS_RX_BUNDLES, stats->recv_bundles},
  1848. {TIPC_NLA_STATS_RX_BUNDLED, stats->recv_bundled},
  1849. {TIPC_NLA_STATS_TX_INFO, stats->sent_pkts},
  1850. {TIPC_NLA_STATS_TX_FRAGMENTS, stats->sent_fragments},
  1851. {TIPC_NLA_STATS_TX_FRAGMENTED, stats->sent_fragmented},
  1852. {TIPC_NLA_STATS_TX_BUNDLES, stats->sent_bundles},
  1853. {TIPC_NLA_STATS_TX_BUNDLED, stats->sent_bundled},
  1854. {TIPC_NLA_STATS_RX_NACKS, stats->recv_nacks},
  1855. {TIPC_NLA_STATS_RX_DEFERRED, stats->deferred_recv},
  1856. {TIPC_NLA_STATS_TX_NACKS, stats->sent_nacks},
  1857. {TIPC_NLA_STATS_TX_ACKS, stats->sent_acks},
  1858. {TIPC_NLA_STATS_RETRANSMITTED, stats->retransmitted},
  1859. {TIPC_NLA_STATS_DUPLICATES, stats->duplicates},
  1860. {TIPC_NLA_STATS_LINK_CONGS, stats->link_congs},
  1861. {TIPC_NLA_STATS_MAX_QUEUE, stats->max_queue_sz},
  1862. {TIPC_NLA_STATS_AVG_QUEUE, stats->queue_sz_counts ?
  1863. (stats->accu_queue_sz / stats->queue_sz_counts) : 0}
  1864. };
  1865. nest = nla_nest_start(skb, TIPC_NLA_LINK_STATS);
  1866. if (!nest)
  1867. return -EMSGSIZE;
  1868. for (i = 0; i < ARRAY_SIZE(map); i++)
  1869. if (nla_put_u32(skb, map[i].key, map[i].val))
  1870. goto msg_full;
  1871. nla_nest_end(skb, nest);
  1872. return 0;
  1873. msg_full:
  1874. nla_nest_cancel(skb, nest);
  1875. return -EMSGSIZE;
  1876. }
  1877. int tipc_nl_add_bc_link(struct net *net, struct tipc_nl_msg *msg)
  1878. {
  1879. int err;
  1880. void *hdr;
  1881. struct nlattr *attrs;
  1882. struct nlattr *prop;
  1883. struct tipc_net *tn = net_generic(net, tipc_net_id);
  1884. struct tipc_link *bcl = tn->bcl;
  1885. if (!bcl)
  1886. return 0;
  1887. tipc_bcast_lock(net);
  1888. hdr = genlmsg_put(msg->skb, msg->portid, msg->seq, &tipc_genl_family,
  1889. NLM_F_MULTI, TIPC_NL_LINK_GET);
  1890. if (!hdr) {
  1891. tipc_bcast_unlock(net);
  1892. return -EMSGSIZE;
  1893. }
  1894. attrs = nla_nest_start(msg->skb, TIPC_NLA_LINK);
  1895. if (!attrs)
  1896. goto msg_full;
  1897. /* The broadcast link is always up */
  1898. if (nla_put_flag(msg->skb, TIPC_NLA_LINK_UP))
  1899. goto attr_msg_full;
  1900. if (nla_put_flag(msg->skb, TIPC_NLA_LINK_BROADCAST))
  1901. goto attr_msg_full;
  1902. if (nla_put_string(msg->skb, TIPC_NLA_LINK_NAME, bcl->name))
  1903. goto attr_msg_full;
  1904. if (nla_put_u32(msg->skb, TIPC_NLA_LINK_RX, 0))
  1905. goto attr_msg_full;
  1906. if (nla_put_u32(msg->skb, TIPC_NLA_LINK_TX, 0))
  1907. goto attr_msg_full;
  1908. prop = nla_nest_start(msg->skb, TIPC_NLA_LINK_PROP);
  1909. if (!prop)
  1910. goto attr_msg_full;
  1911. if (nla_put_u32(msg->skb, TIPC_NLA_PROP_WIN, bcl->window))
  1912. goto prop_msg_full;
  1913. nla_nest_end(msg->skb, prop);
  1914. err = __tipc_nl_add_bc_link_stat(msg->skb, &bcl->stats);
  1915. if (err)
  1916. goto attr_msg_full;
  1917. tipc_bcast_unlock(net);
  1918. nla_nest_end(msg->skb, attrs);
  1919. genlmsg_end(msg->skb, hdr);
  1920. return 0;
  1921. prop_msg_full:
  1922. nla_nest_cancel(msg->skb, prop);
  1923. attr_msg_full:
  1924. nla_nest_cancel(msg->skb, attrs);
  1925. msg_full:
  1926. tipc_bcast_unlock(net);
  1927. genlmsg_cancel(msg->skb, hdr);
  1928. return -EMSGSIZE;
  1929. }
  1930. void tipc_link_set_tolerance(struct tipc_link *l, u32 tol,
  1931. struct sk_buff_head *xmitq)
  1932. {
  1933. l->tolerance = tol;
  1934. if (link_is_up(l))
  1935. tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, tol, 0, xmitq);
  1936. }
  1937. void tipc_link_set_prio(struct tipc_link *l, u32 prio,
  1938. struct sk_buff_head *xmitq)
  1939. {
  1940. l->priority = prio;
  1941. tipc_link_build_proto_msg(l, STATE_MSG, 0, 0, 0, 0, prio, xmitq);
  1942. }
  1943. void tipc_link_set_abort_limit(struct tipc_link *l, u32 limit)
  1944. {
  1945. l->abort_limit = limit;
  1946. }