ar-ack.c 32 KB

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  1. /* Management of Tx window, Tx resend, ACKs and out-of-sequence reception
  2. *
  3. * Copyright (C) 2007 Red Hat, Inc. All Rights Reserved.
  4. * Written by David Howells (dhowells@redhat.com)
  5. *
  6. * This program is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU General Public License
  8. * as published by the Free Software Foundation; either version
  9. * 2 of the License, or (at your option) any later version.
  10. */
  11. #include <linux/module.h>
  12. #include <linux/circ_buf.h>
  13. #include <linux/net.h>
  14. #include <linux/skbuff.h>
  15. #include <linux/udp.h>
  16. #include <net/sock.h>
  17. #include <net/af_rxrpc.h>
  18. #include "ar-internal.h"
  19. static unsigned rxrpc_ack_defer = 1;
  20. static const char *rxrpc_acks[] = {
  21. "---", "REQ", "DUP", "OOS", "WIN", "MEM", "PNG", "PNR", "DLY", "IDL",
  22. "-?-"
  23. };
  24. static const s8 rxrpc_ack_priority[] = {
  25. [0] = 0,
  26. [RXRPC_ACK_DELAY] = 1,
  27. [RXRPC_ACK_REQUESTED] = 2,
  28. [RXRPC_ACK_IDLE] = 3,
  29. [RXRPC_ACK_PING_RESPONSE] = 4,
  30. [RXRPC_ACK_DUPLICATE] = 5,
  31. [RXRPC_ACK_OUT_OF_SEQUENCE] = 6,
  32. [RXRPC_ACK_EXCEEDS_WINDOW] = 7,
  33. [RXRPC_ACK_NOSPACE] = 8,
  34. };
  35. /*
  36. * propose an ACK be sent
  37. */
  38. void __rxrpc_propose_ACK(struct rxrpc_call *call, uint8_t ack_reason,
  39. __be32 serial, bool immediate)
  40. {
  41. unsigned long expiry;
  42. s8 prior = rxrpc_ack_priority[ack_reason];
  43. ASSERTCMP(prior, >, 0);
  44. _enter("{%d},%s,%%%x,%u",
  45. call->debug_id, rxrpc_acks[ack_reason], ntohl(serial),
  46. immediate);
  47. if (prior < rxrpc_ack_priority[call->ackr_reason]) {
  48. if (immediate)
  49. goto cancel_timer;
  50. return;
  51. }
  52. /* update DELAY, IDLE, REQUESTED and PING_RESPONSE ACK serial
  53. * numbers */
  54. if (prior == rxrpc_ack_priority[call->ackr_reason]) {
  55. if (prior <= 4)
  56. call->ackr_serial = serial;
  57. if (immediate)
  58. goto cancel_timer;
  59. return;
  60. }
  61. call->ackr_reason = ack_reason;
  62. call->ackr_serial = serial;
  63. switch (ack_reason) {
  64. case RXRPC_ACK_DELAY:
  65. _debug("run delay timer");
  66. call->ack_timer.expires = jiffies + rxrpc_ack_timeout * HZ;
  67. add_timer(&call->ack_timer);
  68. return;
  69. case RXRPC_ACK_IDLE:
  70. if (!immediate) {
  71. _debug("run defer timer");
  72. expiry = 1;
  73. goto run_timer;
  74. }
  75. goto cancel_timer;
  76. case RXRPC_ACK_REQUESTED:
  77. if (!rxrpc_ack_defer)
  78. goto cancel_timer;
  79. if (!immediate || serial == cpu_to_be32(1)) {
  80. _debug("run defer timer");
  81. expiry = rxrpc_ack_defer;
  82. goto run_timer;
  83. }
  84. default:
  85. _debug("immediate ACK");
  86. goto cancel_timer;
  87. }
  88. run_timer:
  89. expiry += jiffies;
  90. if (!timer_pending(&call->ack_timer) ||
  91. time_after(call->ack_timer.expires, expiry))
  92. mod_timer(&call->ack_timer, expiry);
  93. return;
  94. cancel_timer:
  95. _debug("cancel timer %%%u", ntohl(serial));
  96. try_to_del_timer_sync(&call->ack_timer);
  97. read_lock_bh(&call->state_lock);
  98. if (call->state <= RXRPC_CALL_COMPLETE &&
  99. !test_and_set_bit(RXRPC_CALL_ACK, &call->events))
  100. rxrpc_queue_call(call);
  101. read_unlock_bh(&call->state_lock);
  102. }
  103. /*
  104. * propose an ACK be sent, locking the call structure
  105. */
  106. void rxrpc_propose_ACK(struct rxrpc_call *call, uint8_t ack_reason,
  107. __be32 serial, bool immediate)
  108. {
  109. s8 prior = rxrpc_ack_priority[ack_reason];
  110. if (prior > rxrpc_ack_priority[call->ackr_reason]) {
  111. spin_lock_bh(&call->lock);
  112. __rxrpc_propose_ACK(call, ack_reason, serial, immediate);
  113. spin_unlock_bh(&call->lock);
  114. }
  115. }
  116. /*
  117. * set the resend timer
  118. */
  119. static void rxrpc_set_resend(struct rxrpc_call *call, u8 resend,
  120. unsigned long resend_at)
  121. {
  122. read_lock_bh(&call->state_lock);
  123. if (call->state >= RXRPC_CALL_COMPLETE)
  124. resend = 0;
  125. if (resend & 1) {
  126. _debug("SET RESEND");
  127. set_bit(RXRPC_CALL_RESEND, &call->events);
  128. }
  129. if (resend & 2) {
  130. _debug("MODIFY RESEND TIMER");
  131. set_bit(RXRPC_CALL_RUN_RTIMER, &call->flags);
  132. mod_timer(&call->resend_timer, resend_at);
  133. } else {
  134. _debug("KILL RESEND TIMER");
  135. del_timer_sync(&call->resend_timer);
  136. clear_bit(RXRPC_CALL_RESEND_TIMER, &call->events);
  137. clear_bit(RXRPC_CALL_RUN_RTIMER, &call->flags);
  138. }
  139. read_unlock_bh(&call->state_lock);
  140. }
  141. /*
  142. * resend packets
  143. */
  144. static void rxrpc_resend(struct rxrpc_call *call)
  145. {
  146. struct rxrpc_skb_priv *sp;
  147. struct rxrpc_header *hdr;
  148. struct sk_buff *txb;
  149. unsigned long *p_txb, resend_at;
  150. int loop, stop;
  151. u8 resend;
  152. _enter("{%d,%d,%d,%d},",
  153. call->acks_hard, call->acks_unacked,
  154. atomic_read(&call->sequence),
  155. CIRC_CNT(call->acks_head, call->acks_tail, call->acks_winsz));
  156. stop = 0;
  157. resend = 0;
  158. resend_at = 0;
  159. for (loop = call->acks_tail;
  160. loop != call->acks_head || stop;
  161. loop = (loop + 1) & (call->acks_winsz - 1)
  162. ) {
  163. p_txb = call->acks_window + loop;
  164. smp_read_barrier_depends();
  165. if (*p_txb & 1)
  166. continue;
  167. txb = (struct sk_buff *) *p_txb;
  168. sp = rxrpc_skb(txb);
  169. if (sp->need_resend) {
  170. sp->need_resend = 0;
  171. /* each Tx packet has a new serial number */
  172. sp->hdr.serial =
  173. htonl(atomic_inc_return(&call->conn->serial));
  174. hdr = (struct rxrpc_header *) txb->head;
  175. hdr->serial = sp->hdr.serial;
  176. _proto("Tx DATA %%%u { #%d }",
  177. ntohl(sp->hdr.serial), ntohl(sp->hdr.seq));
  178. if (rxrpc_send_packet(call->conn->trans, txb) < 0) {
  179. stop = 0;
  180. sp->resend_at = jiffies + 3;
  181. } else {
  182. sp->resend_at =
  183. jiffies + rxrpc_resend_timeout * HZ;
  184. }
  185. }
  186. if (time_after_eq(jiffies + 1, sp->resend_at)) {
  187. sp->need_resend = 1;
  188. resend |= 1;
  189. } else if (resend & 2) {
  190. if (time_before(sp->resend_at, resend_at))
  191. resend_at = sp->resend_at;
  192. } else {
  193. resend_at = sp->resend_at;
  194. resend |= 2;
  195. }
  196. }
  197. rxrpc_set_resend(call, resend, resend_at);
  198. _leave("");
  199. }
  200. /*
  201. * handle resend timer expiry
  202. */
  203. static void rxrpc_resend_timer(struct rxrpc_call *call)
  204. {
  205. struct rxrpc_skb_priv *sp;
  206. struct sk_buff *txb;
  207. unsigned long *p_txb, resend_at;
  208. int loop;
  209. u8 resend;
  210. _enter("%d,%d,%d",
  211. call->acks_tail, call->acks_unacked, call->acks_head);
  212. resend = 0;
  213. resend_at = 0;
  214. for (loop = call->acks_unacked;
  215. loop != call->acks_head;
  216. loop = (loop + 1) & (call->acks_winsz - 1)
  217. ) {
  218. p_txb = call->acks_window + loop;
  219. smp_read_barrier_depends();
  220. txb = (struct sk_buff *) (*p_txb & ~1);
  221. sp = rxrpc_skb(txb);
  222. ASSERT(!(*p_txb & 1));
  223. if (sp->need_resend) {
  224. ;
  225. } else if (time_after_eq(jiffies + 1, sp->resend_at)) {
  226. sp->need_resend = 1;
  227. resend |= 1;
  228. } else if (resend & 2) {
  229. if (time_before(sp->resend_at, resend_at))
  230. resend_at = sp->resend_at;
  231. } else {
  232. resend_at = sp->resend_at;
  233. resend |= 2;
  234. }
  235. }
  236. rxrpc_set_resend(call, resend, resend_at);
  237. _leave("");
  238. }
  239. /*
  240. * process soft ACKs of our transmitted packets
  241. * - these indicate packets the peer has or has not received, but hasn't yet
  242. * given to the consumer, and so can still be discarded and re-requested
  243. */
  244. static int rxrpc_process_soft_ACKs(struct rxrpc_call *call,
  245. struct rxrpc_ackpacket *ack,
  246. struct sk_buff *skb)
  247. {
  248. struct rxrpc_skb_priv *sp;
  249. struct sk_buff *txb;
  250. unsigned long *p_txb, resend_at;
  251. int loop;
  252. u8 sacks[RXRPC_MAXACKS], resend;
  253. _enter("{%d,%d},{%d},",
  254. call->acks_hard,
  255. CIRC_CNT(call->acks_head, call->acks_tail, call->acks_winsz),
  256. ack->nAcks);
  257. if (skb_copy_bits(skb, 0, sacks, ack->nAcks) < 0)
  258. goto protocol_error;
  259. resend = 0;
  260. resend_at = 0;
  261. for (loop = 0; loop < ack->nAcks; loop++) {
  262. p_txb = call->acks_window;
  263. p_txb += (call->acks_tail + loop) & (call->acks_winsz - 1);
  264. smp_read_barrier_depends();
  265. txb = (struct sk_buff *) (*p_txb & ~1);
  266. sp = rxrpc_skb(txb);
  267. switch (sacks[loop]) {
  268. case RXRPC_ACK_TYPE_ACK:
  269. sp->need_resend = 0;
  270. *p_txb |= 1;
  271. break;
  272. case RXRPC_ACK_TYPE_NACK:
  273. sp->need_resend = 1;
  274. *p_txb &= ~1;
  275. resend = 1;
  276. break;
  277. default:
  278. _debug("Unsupported ACK type %d", sacks[loop]);
  279. goto protocol_error;
  280. }
  281. }
  282. smp_mb();
  283. call->acks_unacked = (call->acks_tail + loop) & (call->acks_winsz - 1);
  284. /* anything not explicitly ACK'd is implicitly NACK'd, but may just not
  285. * have been received or processed yet by the far end */
  286. for (loop = call->acks_unacked;
  287. loop != call->acks_head;
  288. loop = (loop + 1) & (call->acks_winsz - 1)
  289. ) {
  290. p_txb = call->acks_window + loop;
  291. smp_read_barrier_depends();
  292. txb = (struct sk_buff *) (*p_txb & ~1);
  293. sp = rxrpc_skb(txb);
  294. if (*p_txb & 1) {
  295. /* packet must have been discarded */
  296. sp->need_resend = 1;
  297. *p_txb &= ~1;
  298. resend |= 1;
  299. } else if (sp->need_resend) {
  300. ;
  301. } else if (time_after_eq(jiffies + 1, sp->resend_at)) {
  302. sp->need_resend = 1;
  303. resend |= 1;
  304. } else if (resend & 2) {
  305. if (time_before(sp->resend_at, resend_at))
  306. resend_at = sp->resend_at;
  307. } else {
  308. resend_at = sp->resend_at;
  309. resend |= 2;
  310. }
  311. }
  312. rxrpc_set_resend(call, resend, resend_at);
  313. _leave(" = 0");
  314. return 0;
  315. protocol_error:
  316. _leave(" = -EPROTO");
  317. return -EPROTO;
  318. }
  319. /*
  320. * discard hard-ACK'd packets from the Tx window
  321. */
  322. static void rxrpc_rotate_tx_window(struct rxrpc_call *call, u32 hard)
  323. {
  324. struct rxrpc_skb_priv *sp;
  325. unsigned long _skb;
  326. int tail = call->acks_tail, old_tail;
  327. int win = CIRC_CNT(call->acks_head, tail, call->acks_winsz);
  328. _enter("{%u,%u},%u", call->acks_hard, win, hard);
  329. ASSERTCMP(hard - call->acks_hard, <=, win);
  330. while (call->acks_hard < hard) {
  331. smp_read_barrier_depends();
  332. _skb = call->acks_window[tail] & ~1;
  333. sp = rxrpc_skb((struct sk_buff *) _skb);
  334. rxrpc_free_skb((struct sk_buff *) _skb);
  335. old_tail = tail;
  336. tail = (tail + 1) & (call->acks_winsz - 1);
  337. call->acks_tail = tail;
  338. if (call->acks_unacked == old_tail)
  339. call->acks_unacked = tail;
  340. call->acks_hard++;
  341. }
  342. wake_up(&call->tx_waitq);
  343. }
  344. /*
  345. * clear the Tx window in the event of a failure
  346. */
  347. static void rxrpc_clear_tx_window(struct rxrpc_call *call)
  348. {
  349. rxrpc_rotate_tx_window(call, atomic_read(&call->sequence));
  350. }
  351. /*
  352. * drain the out of sequence received packet queue into the packet Rx queue
  353. */
  354. static int rxrpc_drain_rx_oos_queue(struct rxrpc_call *call)
  355. {
  356. struct rxrpc_skb_priv *sp;
  357. struct sk_buff *skb;
  358. bool terminal;
  359. int ret;
  360. _enter("{%d,%d}", call->rx_data_post, call->rx_first_oos);
  361. spin_lock_bh(&call->lock);
  362. ret = -ECONNRESET;
  363. if (test_bit(RXRPC_CALL_RELEASED, &call->flags))
  364. goto socket_unavailable;
  365. skb = skb_dequeue(&call->rx_oos_queue);
  366. if (skb) {
  367. sp = rxrpc_skb(skb);
  368. _debug("drain OOS packet %d [%d]",
  369. ntohl(sp->hdr.seq), call->rx_first_oos);
  370. if (ntohl(sp->hdr.seq) != call->rx_first_oos) {
  371. skb_queue_head(&call->rx_oos_queue, skb);
  372. call->rx_first_oos = ntohl(rxrpc_skb(skb)->hdr.seq);
  373. _debug("requeue %p {%u}", skb, call->rx_first_oos);
  374. } else {
  375. skb->mark = RXRPC_SKB_MARK_DATA;
  376. terminal = ((sp->hdr.flags & RXRPC_LAST_PACKET) &&
  377. !(sp->hdr.flags & RXRPC_CLIENT_INITIATED));
  378. ret = rxrpc_queue_rcv_skb(call, skb, true, terminal);
  379. BUG_ON(ret < 0);
  380. _debug("drain #%u", call->rx_data_post);
  381. call->rx_data_post++;
  382. /* find out what the next packet is */
  383. skb = skb_peek(&call->rx_oos_queue);
  384. if (skb)
  385. call->rx_first_oos =
  386. ntohl(rxrpc_skb(skb)->hdr.seq);
  387. else
  388. call->rx_first_oos = 0;
  389. _debug("peek %p {%u}", skb, call->rx_first_oos);
  390. }
  391. }
  392. ret = 0;
  393. socket_unavailable:
  394. spin_unlock_bh(&call->lock);
  395. _leave(" = %d", ret);
  396. return ret;
  397. }
  398. /*
  399. * insert an out of sequence packet into the buffer
  400. */
  401. static void rxrpc_insert_oos_packet(struct rxrpc_call *call,
  402. struct sk_buff *skb)
  403. {
  404. struct rxrpc_skb_priv *sp, *psp;
  405. struct sk_buff *p;
  406. u32 seq;
  407. sp = rxrpc_skb(skb);
  408. seq = ntohl(sp->hdr.seq);
  409. _enter(",,{%u}", seq);
  410. skb->destructor = rxrpc_packet_destructor;
  411. ASSERTCMP(sp->call, ==, NULL);
  412. sp->call = call;
  413. rxrpc_get_call(call);
  414. /* insert into the buffer in sequence order */
  415. spin_lock_bh(&call->lock);
  416. skb_queue_walk(&call->rx_oos_queue, p) {
  417. psp = rxrpc_skb(p);
  418. if (ntohl(psp->hdr.seq) > seq) {
  419. _debug("insert oos #%u before #%u",
  420. seq, ntohl(psp->hdr.seq));
  421. skb_insert(p, skb, &call->rx_oos_queue);
  422. goto inserted;
  423. }
  424. }
  425. _debug("append oos #%u", seq);
  426. skb_queue_tail(&call->rx_oos_queue, skb);
  427. inserted:
  428. /* we might now have a new front to the queue */
  429. if (call->rx_first_oos == 0 || seq < call->rx_first_oos)
  430. call->rx_first_oos = seq;
  431. read_lock(&call->state_lock);
  432. if (call->state < RXRPC_CALL_COMPLETE &&
  433. call->rx_data_post == call->rx_first_oos) {
  434. _debug("drain rx oos now");
  435. set_bit(RXRPC_CALL_DRAIN_RX_OOS, &call->events);
  436. }
  437. read_unlock(&call->state_lock);
  438. spin_unlock_bh(&call->lock);
  439. _leave(" [stored #%u]", call->rx_first_oos);
  440. }
  441. /*
  442. * clear the Tx window on final ACK reception
  443. */
  444. static void rxrpc_zap_tx_window(struct rxrpc_call *call)
  445. {
  446. struct rxrpc_skb_priv *sp;
  447. struct sk_buff *skb;
  448. unsigned long _skb, *acks_window;
  449. uint8_t winsz = call->acks_winsz;
  450. int tail;
  451. acks_window = call->acks_window;
  452. call->acks_window = NULL;
  453. while (CIRC_CNT(call->acks_head, call->acks_tail, winsz) > 0) {
  454. tail = call->acks_tail;
  455. smp_read_barrier_depends();
  456. _skb = acks_window[tail] & ~1;
  457. smp_mb();
  458. call->acks_tail = (call->acks_tail + 1) & (winsz - 1);
  459. skb = (struct sk_buff *) _skb;
  460. sp = rxrpc_skb(skb);
  461. _debug("+++ clear Tx %u", ntohl(sp->hdr.seq));
  462. rxrpc_free_skb(skb);
  463. }
  464. kfree(acks_window);
  465. }
  466. /*
  467. * process the extra information that may be appended to an ACK packet
  468. */
  469. static void rxrpc_extract_ackinfo(struct rxrpc_call *call, struct sk_buff *skb,
  470. unsigned latest, int nAcks)
  471. {
  472. struct rxrpc_ackinfo ackinfo;
  473. struct rxrpc_peer *peer;
  474. unsigned mtu;
  475. if (skb_copy_bits(skb, nAcks + 3, &ackinfo, sizeof(ackinfo)) < 0) {
  476. _leave(" [no ackinfo]");
  477. return;
  478. }
  479. _proto("Rx ACK %%%u Info { rx=%u max=%u rwin=%u jm=%u }",
  480. latest,
  481. ntohl(ackinfo.rxMTU), ntohl(ackinfo.maxMTU),
  482. ntohl(ackinfo.rwind), ntohl(ackinfo.jumbo_max));
  483. mtu = min(ntohl(ackinfo.rxMTU), ntohl(ackinfo.maxMTU));
  484. peer = call->conn->trans->peer;
  485. if (mtu < peer->maxdata) {
  486. spin_lock_bh(&peer->lock);
  487. peer->maxdata = mtu;
  488. peer->mtu = mtu + peer->hdrsize;
  489. spin_unlock_bh(&peer->lock);
  490. _net("Net MTU %u (maxdata %u)", peer->mtu, peer->maxdata);
  491. }
  492. }
  493. /*
  494. * process packets in the reception queue
  495. */
  496. static int rxrpc_process_rx_queue(struct rxrpc_call *call,
  497. u32 *_abort_code)
  498. {
  499. struct rxrpc_ackpacket ack;
  500. struct rxrpc_skb_priv *sp;
  501. struct sk_buff *skb;
  502. bool post_ACK;
  503. int latest;
  504. u32 hard, tx;
  505. _enter("");
  506. process_further:
  507. skb = skb_dequeue(&call->rx_queue);
  508. if (!skb)
  509. return -EAGAIN;
  510. _net("deferred skb %p", skb);
  511. sp = rxrpc_skb(skb);
  512. _debug("process %s [st %d]", rxrpc_pkts[sp->hdr.type], call->state);
  513. post_ACK = false;
  514. switch (sp->hdr.type) {
  515. /* data packets that wind up here have been received out of
  516. * order, need security processing or are jumbo packets */
  517. case RXRPC_PACKET_TYPE_DATA:
  518. _proto("OOSQ DATA %%%u { #%u }",
  519. ntohl(sp->hdr.serial), ntohl(sp->hdr.seq));
  520. /* secured packets must be verified and possibly decrypted */
  521. if (rxrpc_verify_packet(call, skb, _abort_code) < 0)
  522. goto protocol_error;
  523. rxrpc_insert_oos_packet(call, skb);
  524. goto process_further;
  525. /* partial ACK to process */
  526. case RXRPC_PACKET_TYPE_ACK:
  527. if (skb_copy_bits(skb, 0, &ack, sizeof(ack)) < 0) {
  528. _debug("extraction failure");
  529. goto protocol_error;
  530. }
  531. if (!skb_pull(skb, sizeof(ack)))
  532. BUG();
  533. latest = ntohl(sp->hdr.serial);
  534. hard = ntohl(ack.firstPacket);
  535. tx = atomic_read(&call->sequence);
  536. _proto("Rx ACK %%%u { m=%hu f=#%u p=#%u s=%%%u r=%s n=%u }",
  537. latest,
  538. ntohs(ack.maxSkew),
  539. hard,
  540. ntohl(ack.previousPacket),
  541. ntohl(ack.serial),
  542. rxrpc_acks[ack.reason],
  543. ack.nAcks);
  544. rxrpc_extract_ackinfo(call, skb, latest, ack.nAcks);
  545. if (ack.reason == RXRPC_ACK_PING) {
  546. _proto("Rx ACK %%%u PING Request", latest);
  547. rxrpc_propose_ACK(call, RXRPC_ACK_PING_RESPONSE,
  548. sp->hdr.serial, true);
  549. }
  550. /* discard any out-of-order or duplicate ACKs */
  551. if (latest - call->acks_latest <= 0) {
  552. _debug("discard ACK %d <= %d",
  553. latest, call->acks_latest);
  554. goto discard;
  555. }
  556. call->acks_latest = latest;
  557. if (call->state != RXRPC_CALL_CLIENT_SEND_REQUEST &&
  558. call->state != RXRPC_CALL_CLIENT_AWAIT_REPLY &&
  559. call->state != RXRPC_CALL_SERVER_SEND_REPLY &&
  560. call->state != RXRPC_CALL_SERVER_AWAIT_ACK)
  561. goto discard;
  562. _debug("Tx=%d H=%u S=%d", tx, call->acks_hard, call->state);
  563. if (hard > 0) {
  564. if (hard - 1 > tx) {
  565. _debug("hard-ACK'd packet %d not transmitted"
  566. " (%d top)",
  567. hard - 1, tx);
  568. goto protocol_error;
  569. }
  570. if ((call->state == RXRPC_CALL_CLIENT_AWAIT_REPLY ||
  571. call->state == RXRPC_CALL_SERVER_AWAIT_ACK) &&
  572. hard > tx)
  573. goto all_acked;
  574. smp_rmb();
  575. rxrpc_rotate_tx_window(call, hard - 1);
  576. }
  577. if (ack.nAcks > 0) {
  578. if (hard - 1 + ack.nAcks > tx) {
  579. _debug("soft-ACK'd packet %d+%d not"
  580. " transmitted (%d top)",
  581. hard - 1, ack.nAcks, tx);
  582. goto protocol_error;
  583. }
  584. if (rxrpc_process_soft_ACKs(call, &ack, skb) < 0)
  585. goto protocol_error;
  586. }
  587. goto discard;
  588. /* complete ACK to process */
  589. case RXRPC_PACKET_TYPE_ACKALL:
  590. goto all_acked;
  591. /* abort and busy are handled elsewhere */
  592. case RXRPC_PACKET_TYPE_BUSY:
  593. case RXRPC_PACKET_TYPE_ABORT:
  594. BUG();
  595. /* connection level events - also handled elsewhere */
  596. case RXRPC_PACKET_TYPE_CHALLENGE:
  597. case RXRPC_PACKET_TYPE_RESPONSE:
  598. case RXRPC_PACKET_TYPE_DEBUG:
  599. BUG();
  600. }
  601. /* if we've had a hard ACK that covers all the packets we've sent, then
  602. * that ends that phase of the operation */
  603. all_acked:
  604. write_lock_bh(&call->state_lock);
  605. _debug("ack all %d", call->state);
  606. switch (call->state) {
  607. case RXRPC_CALL_CLIENT_AWAIT_REPLY:
  608. call->state = RXRPC_CALL_CLIENT_RECV_REPLY;
  609. break;
  610. case RXRPC_CALL_SERVER_AWAIT_ACK:
  611. _debug("srv complete");
  612. call->state = RXRPC_CALL_COMPLETE;
  613. post_ACK = true;
  614. break;
  615. case RXRPC_CALL_CLIENT_SEND_REQUEST:
  616. case RXRPC_CALL_SERVER_RECV_REQUEST:
  617. goto protocol_error_unlock; /* can't occur yet */
  618. default:
  619. write_unlock_bh(&call->state_lock);
  620. goto discard; /* assume packet left over from earlier phase */
  621. }
  622. write_unlock_bh(&call->state_lock);
  623. /* if all the packets we sent are hard-ACK'd, then we can discard
  624. * whatever we've got left */
  625. _debug("clear Tx %d",
  626. CIRC_CNT(call->acks_head, call->acks_tail, call->acks_winsz));
  627. del_timer_sync(&call->resend_timer);
  628. clear_bit(RXRPC_CALL_RUN_RTIMER, &call->flags);
  629. clear_bit(RXRPC_CALL_RESEND_TIMER, &call->events);
  630. if (call->acks_window)
  631. rxrpc_zap_tx_window(call);
  632. if (post_ACK) {
  633. /* post the final ACK message for userspace to pick up */
  634. _debug("post ACK");
  635. skb->mark = RXRPC_SKB_MARK_FINAL_ACK;
  636. sp->call = call;
  637. rxrpc_get_call(call);
  638. spin_lock_bh(&call->lock);
  639. if (rxrpc_queue_rcv_skb(call, skb, true, true) < 0)
  640. BUG();
  641. spin_unlock_bh(&call->lock);
  642. goto process_further;
  643. }
  644. discard:
  645. rxrpc_free_skb(skb);
  646. goto process_further;
  647. protocol_error_unlock:
  648. write_unlock_bh(&call->state_lock);
  649. protocol_error:
  650. rxrpc_free_skb(skb);
  651. _leave(" = -EPROTO");
  652. return -EPROTO;
  653. }
  654. /*
  655. * post a message to the socket Rx queue for recvmsg() to pick up
  656. */
  657. static int rxrpc_post_message(struct rxrpc_call *call, u32 mark, u32 error,
  658. bool fatal)
  659. {
  660. struct rxrpc_skb_priv *sp;
  661. struct sk_buff *skb;
  662. int ret;
  663. _enter("{%d,%lx},%u,%u,%d",
  664. call->debug_id, call->flags, mark, error, fatal);
  665. /* remove timers and things for fatal messages */
  666. if (fatal) {
  667. del_timer_sync(&call->resend_timer);
  668. del_timer_sync(&call->ack_timer);
  669. clear_bit(RXRPC_CALL_RUN_RTIMER, &call->flags);
  670. }
  671. if (mark != RXRPC_SKB_MARK_NEW_CALL &&
  672. !test_bit(RXRPC_CALL_HAS_USERID, &call->flags)) {
  673. _leave("[no userid]");
  674. return 0;
  675. }
  676. if (!test_bit(RXRPC_CALL_TERMINAL_MSG, &call->flags)) {
  677. skb = alloc_skb(0, GFP_NOFS);
  678. if (!skb)
  679. return -ENOMEM;
  680. rxrpc_new_skb(skb);
  681. skb->mark = mark;
  682. sp = rxrpc_skb(skb);
  683. memset(sp, 0, sizeof(*sp));
  684. sp->error = error;
  685. sp->call = call;
  686. rxrpc_get_call(call);
  687. spin_lock_bh(&call->lock);
  688. ret = rxrpc_queue_rcv_skb(call, skb, true, fatal);
  689. spin_unlock_bh(&call->lock);
  690. if (ret < 0)
  691. BUG();
  692. }
  693. return 0;
  694. }
  695. /*
  696. * handle background processing of incoming call packets and ACK / abort
  697. * generation
  698. */
  699. void rxrpc_process_call(struct work_struct *work)
  700. {
  701. struct rxrpc_call *call =
  702. container_of(work, struct rxrpc_call, processor);
  703. struct rxrpc_ackpacket ack;
  704. struct rxrpc_ackinfo ackinfo;
  705. struct rxrpc_header hdr;
  706. struct msghdr msg;
  707. struct kvec iov[5];
  708. unsigned long bits;
  709. __be32 data, pad;
  710. size_t len;
  711. int genbit, loop, nbit, ioc, ret, mtu;
  712. u32 abort_code = RX_PROTOCOL_ERROR;
  713. u8 *acks = NULL;
  714. //printk("\n--------------------\n");
  715. _enter("{%d,%s,%lx} [%lu]",
  716. call->debug_id, rxrpc_call_states[call->state], call->events,
  717. (jiffies - call->creation_jif) / (HZ / 10));
  718. if (test_and_set_bit(RXRPC_CALL_PROC_BUSY, &call->flags)) {
  719. _debug("XXXXXXXXXXXXX RUNNING ON MULTIPLE CPUS XXXXXXXXXXXXX");
  720. return;
  721. }
  722. /* there's a good chance we're going to have to send a message, so set
  723. * one up in advance */
  724. msg.msg_name = &call->conn->trans->peer->srx.transport.sin;
  725. msg.msg_namelen = sizeof(call->conn->trans->peer->srx.transport.sin);
  726. msg.msg_control = NULL;
  727. msg.msg_controllen = 0;
  728. msg.msg_flags = 0;
  729. hdr.epoch = call->conn->epoch;
  730. hdr.cid = call->cid;
  731. hdr.callNumber = call->call_id;
  732. hdr.seq = 0;
  733. hdr.type = RXRPC_PACKET_TYPE_ACK;
  734. hdr.flags = call->conn->out_clientflag;
  735. hdr.userStatus = 0;
  736. hdr.securityIndex = call->conn->security_ix;
  737. hdr._rsvd = 0;
  738. hdr.serviceId = call->conn->service_id;
  739. memset(iov, 0, sizeof(iov));
  740. iov[0].iov_base = &hdr;
  741. iov[0].iov_len = sizeof(hdr);
  742. /* deal with events of a final nature */
  743. if (test_bit(RXRPC_CALL_RELEASE, &call->events)) {
  744. rxrpc_release_call(call);
  745. clear_bit(RXRPC_CALL_RELEASE, &call->events);
  746. }
  747. if (test_bit(RXRPC_CALL_RCVD_ERROR, &call->events)) {
  748. int error;
  749. clear_bit(RXRPC_CALL_CONN_ABORT, &call->events);
  750. clear_bit(RXRPC_CALL_REJECT_BUSY, &call->events);
  751. clear_bit(RXRPC_CALL_ABORT, &call->events);
  752. error = call->conn->trans->peer->net_error;
  753. _debug("post net error %d", error);
  754. if (rxrpc_post_message(call, RXRPC_SKB_MARK_NET_ERROR,
  755. error, true) < 0)
  756. goto no_mem;
  757. clear_bit(RXRPC_CALL_RCVD_ERROR, &call->events);
  758. goto kill_ACKs;
  759. }
  760. if (test_bit(RXRPC_CALL_CONN_ABORT, &call->events)) {
  761. ASSERTCMP(call->state, >, RXRPC_CALL_COMPLETE);
  762. clear_bit(RXRPC_CALL_REJECT_BUSY, &call->events);
  763. clear_bit(RXRPC_CALL_ABORT, &call->events);
  764. _debug("post conn abort");
  765. if (rxrpc_post_message(call, RXRPC_SKB_MARK_LOCAL_ERROR,
  766. call->conn->error, true) < 0)
  767. goto no_mem;
  768. clear_bit(RXRPC_CALL_CONN_ABORT, &call->events);
  769. goto kill_ACKs;
  770. }
  771. if (test_bit(RXRPC_CALL_REJECT_BUSY, &call->events)) {
  772. hdr.type = RXRPC_PACKET_TYPE_BUSY;
  773. genbit = RXRPC_CALL_REJECT_BUSY;
  774. goto send_message;
  775. }
  776. if (test_bit(RXRPC_CALL_ABORT, &call->events)) {
  777. ASSERTCMP(call->state, >, RXRPC_CALL_COMPLETE);
  778. if (rxrpc_post_message(call, RXRPC_SKB_MARK_LOCAL_ERROR,
  779. ECONNABORTED, true) < 0)
  780. goto no_mem;
  781. hdr.type = RXRPC_PACKET_TYPE_ABORT;
  782. data = htonl(call->abort_code);
  783. iov[1].iov_base = &data;
  784. iov[1].iov_len = sizeof(data);
  785. genbit = RXRPC_CALL_ABORT;
  786. goto send_message;
  787. }
  788. if (test_bit(RXRPC_CALL_ACK_FINAL, &call->events)) {
  789. genbit = RXRPC_CALL_ACK_FINAL;
  790. ack.bufferSpace = htons(8);
  791. ack.maxSkew = 0;
  792. ack.serial = 0;
  793. ack.reason = RXRPC_ACK_IDLE;
  794. ack.nAcks = 0;
  795. call->ackr_reason = 0;
  796. spin_lock_bh(&call->lock);
  797. ack.serial = call->ackr_serial;
  798. ack.previousPacket = call->ackr_prev_seq;
  799. ack.firstPacket = htonl(call->rx_data_eaten + 1);
  800. spin_unlock_bh(&call->lock);
  801. pad = 0;
  802. iov[1].iov_base = &ack;
  803. iov[1].iov_len = sizeof(ack);
  804. iov[2].iov_base = &pad;
  805. iov[2].iov_len = 3;
  806. iov[3].iov_base = &ackinfo;
  807. iov[3].iov_len = sizeof(ackinfo);
  808. goto send_ACK;
  809. }
  810. if (call->events & ((1 << RXRPC_CALL_RCVD_BUSY) |
  811. (1 << RXRPC_CALL_RCVD_ABORT))
  812. ) {
  813. u32 mark;
  814. if (test_bit(RXRPC_CALL_RCVD_ABORT, &call->events))
  815. mark = RXRPC_SKB_MARK_REMOTE_ABORT;
  816. else
  817. mark = RXRPC_SKB_MARK_BUSY;
  818. _debug("post abort/busy");
  819. rxrpc_clear_tx_window(call);
  820. if (rxrpc_post_message(call, mark, ECONNABORTED, true) < 0)
  821. goto no_mem;
  822. clear_bit(RXRPC_CALL_RCVD_BUSY, &call->events);
  823. clear_bit(RXRPC_CALL_RCVD_ABORT, &call->events);
  824. goto kill_ACKs;
  825. }
  826. if (test_and_clear_bit(RXRPC_CALL_RCVD_ACKALL, &call->events)) {
  827. _debug("do implicit ackall");
  828. rxrpc_clear_tx_window(call);
  829. }
  830. if (test_bit(RXRPC_CALL_LIFE_TIMER, &call->events)) {
  831. write_lock_bh(&call->state_lock);
  832. if (call->state <= RXRPC_CALL_COMPLETE) {
  833. call->state = RXRPC_CALL_LOCALLY_ABORTED;
  834. call->abort_code = RX_CALL_TIMEOUT;
  835. set_bit(RXRPC_CALL_ABORT, &call->events);
  836. }
  837. write_unlock_bh(&call->state_lock);
  838. _debug("post timeout");
  839. if (rxrpc_post_message(call, RXRPC_SKB_MARK_LOCAL_ERROR,
  840. ETIME, true) < 0)
  841. goto no_mem;
  842. clear_bit(RXRPC_CALL_LIFE_TIMER, &call->events);
  843. goto kill_ACKs;
  844. }
  845. /* deal with assorted inbound messages */
  846. if (!skb_queue_empty(&call->rx_queue)) {
  847. switch (rxrpc_process_rx_queue(call, &abort_code)) {
  848. case 0:
  849. case -EAGAIN:
  850. break;
  851. case -ENOMEM:
  852. goto no_mem;
  853. case -EKEYEXPIRED:
  854. case -EKEYREJECTED:
  855. case -EPROTO:
  856. rxrpc_abort_call(call, abort_code);
  857. goto kill_ACKs;
  858. }
  859. }
  860. /* handle resending */
  861. if (test_and_clear_bit(RXRPC_CALL_RESEND_TIMER, &call->events))
  862. rxrpc_resend_timer(call);
  863. if (test_and_clear_bit(RXRPC_CALL_RESEND, &call->events))
  864. rxrpc_resend(call);
  865. /* consider sending an ordinary ACK */
  866. if (test_bit(RXRPC_CALL_ACK, &call->events)) {
  867. _debug("send ACK: window: %d - %d { %lx }",
  868. call->rx_data_eaten, call->ackr_win_top,
  869. call->ackr_window[0]);
  870. if (call->state > RXRPC_CALL_SERVER_ACK_REQUEST &&
  871. call->ackr_reason != RXRPC_ACK_PING_RESPONSE) {
  872. /* ACK by sending reply DATA packet in this state */
  873. clear_bit(RXRPC_CALL_ACK, &call->events);
  874. goto maybe_reschedule;
  875. }
  876. genbit = RXRPC_CALL_ACK;
  877. acks = kzalloc(call->ackr_win_top - call->rx_data_eaten,
  878. GFP_NOFS);
  879. if (!acks)
  880. goto no_mem;
  881. //hdr.flags = RXRPC_SLOW_START_OK;
  882. ack.bufferSpace = htons(8);
  883. ack.maxSkew = 0;
  884. ack.serial = 0;
  885. ack.reason = 0;
  886. spin_lock_bh(&call->lock);
  887. ack.reason = call->ackr_reason;
  888. ack.serial = call->ackr_serial;
  889. ack.previousPacket = call->ackr_prev_seq;
  890. ack.firstPacket = htonl(call->rx_data_eaten + 1);
  891. ack.nAcks = 0;
  892. for (loop = 0; loop < RXRPC_ACKR_WINDOW_ASZ; loop++) {
  893. nbit = loop * BITS_PER_LONG;
  894. for (bits = call->ackr_window[loop]; bits; bits >>= 1
  895. ) {
  896. _debug("- l=%d n=%d b=%lx", loop, nbit, bits);
  897. if (bits & 1) {
  898. acks[nbit] = RXRPC_ACK_TYPE_ACK;
  899. ack.nAcks = nbit + 1;
  900. }
  901. nbit++;
  902. }
  903. }
  904. call->ackr_reason = 0;
  905. spin_unlock_bh(&call->lock);
  906. pad = 0;
  907. iov[1].iov_base = &ack;
  908. iov[1].iov_len = sizeof(ack);
  909. iov[2].iov_base = acks;
  910. iov[2].iov_len = ack.nAcks;
  911. iov[3].iov_base = &pad;
  912. iov[3].iov_len = 3;
  913. iov[4].iov_base = &ackinfo;
  914. iov[4].iov_len = sizeof(ackinfo);
  915. switch (ack.reason) {
  916. case RXRPC_ACK_REQUESTED:
  917. case RXRPC_ACK_DUPLICATE:
  918. case RXRPC_ACK_OUT_OF_SEQUENCE:
  919. case RXRPC_ACK_EXCEEDS_WINDOW:
  920. case RXRPC_ACK_NOSPACE:
  921. case RXRPC_ACK_PING:
  922. case RXRPC_ACK_PING_RESPONSE:
  923. goto send_ACK_with_skew;
  924. case RXRPC_ACK_DELAY:
  925. case RXRPC_ACK_IDLE:
  926. goto send_ACK;
  927. }
  928. }
  929. /* handle completion of security negotiations on an incoming
  930. * connection */
  931. if (test_and_clear_bit(RXRPC_CALL_SECURED, &call->events)) {
  932. _debug("secured");
  933. spin_lock_bh(&call->lock);
  934. if (call->state == RXRPC_CALL_SERVER_SECURING) {
  935. _debug("securing");
  936. write_lock(&call->conn->lock);
  937. if (!test_bit(RXRPC_CALL_RELEASED, &call->flags) &&
  938. !test_bit(RXRPC_CALL_RELEASE, &call->events)) {
  939. _debug("not released");
  940. call->state = RXRPC_CALL_SERVER_ACCEPTING;
  941. list_move_tail(&call->accept_link,
  942. &call->socket->acceptq);
  943. }
  944. write_unlock(&call->conn->lock);
  945. read_lock(&call->state_lock);
  946. if (call->state < RXRPC_CALL_COMPLETE)
  947. set_bit(RXRPC_CALL_POST_ACCEPT, &call->events);
  948. read_unlock(&call->state_lock);
  949. }
  950. spin_unlock_bh(&call->lock);
  951. if (!test_bit(RXRPC_CALL_POST_ACCEPT, &call->events))
  952. goto maybe_reschedule;
  953. }
  954. /* post a notification of an acceptable connection to the app */
  955. if (test_bit(RXRPC_CALL_POST_ACCEPT, &call->events)) {
  956. _debug("post accept");
  957. if (rxrpc_post_message(call, RXRPC_SKB_MARK_NEW_CALL,
  958. 0, false) < 0)
  959. goto no_mem;
  960. clear_bit(RXRPC_CALL_POST_ACCEPT, &call->events);
  961. goto maybe_reschedule;
  962. }
  963. /* handle incoming call acceptance */
  964. if (test_and_clear_bit(RXRPC_CALL_ACCEPTED, &call->events)) {
  965. _debug("accepted");
  966. ASSERTCMP(call->rx_data_post, ==, 0);
  967. call->rx_data_post = 1;
  968. read_lock_bh(&call->state_lock);
  969. if (call->state < RXRPC_CALL_COMPLETE)
  970. set_bit(RXRPC_CALL_DRAIN_RX_OOS, &call->events);
  971. read_unlock_bh(&call->state_lock);
  972. }
  973. /* drain the out of sequence received packet queue into the packet Rx
  974. * queue */
  975. if (test_and_clear_bit(RXRPC_CALL_DRAIN_RX_OOS, &call->events)) {
  976. while (call->rx_data_post == call->rx_first_oos)
  977. if (rxrpc_drain_rx_oos_queue(call) < 0)
  978. break;
  979. goto maybe_reschedule;
  980. }
  981. /* other events may have been raised since we started checking */
  982. goto maybe_reschedule;
  983. send_ACK_with_skew:
  984. ack.maxSkew = htons(atomic_read(&call->conn->hi_serial) -
  985. ntohl(ack.serial));
  986. send_ACK:
  987. mtu = call->conn->trans->peer->if_mtu;
  988. mtu -= call->conn->trans->peer->hdrsize;
  989. ackinfo.maxMTU = htonl(mtu);
  990. ackinfo.rwind = htonl(32);
  991. /* permit the peer to send us jumbo packets if it wants to */
  992. ackinfo.rxMTU = htonl(5692);
  993. ackinfo.jumbo_max = htonl(4);
  994. hdr.serial = htonl(atomic_inc_return(&call->conn->serial));
  995. _proto("Tx ACK %%%u { m=%hu f=#%u p=#%u s=%%%u r=%s n=%u }",
  996. ntohl(hdr.serial),
  997. ntohs(ack.maxSkew),
  998. ntohl(ack.firstPacket),
  999. ntohl(ack.previousPacket),
  1000. ntohl(ack.serial),
  1001. rxrpc_acks[ack.reason],
  1002. ack.nAcks);
  1003. del_timer_sync(&call->ack_timer);
  1004. if (ack.nAcks > 0)
  1005. set_bit(RXRPC_CALL_TX_SOFT_ACK, &call->flags);
  1006. goto send_message_2;
  1007. send_message:
  1008. _debug("send message");
  1009. hdr.serial = htonl(atomic_inc_return(&call->conn->serial));
  1010. _proto("Tx %s %%%u", rxrpc_pkts[hdr.type], ntohl(hdr.serial));
  1011. send_message_2:
  1012. len = iov[0].iov_len;
  1013. ioc = 1;
  1014. if (iov[4].iov_len) {
  1015. ioc = 5;
  1016. len += iov[4].iov_len;
  1017. len += iov[3].iov_len;
  1018. len += iov[2].iov_len;
  1019. len += iov[1].iov_len;
  1020. } else if (iov[3].iov_len) {
  1021. ioc = 4;
  1022. len += iov[3].iov_len;
  1023. len += iov[2].iov_len;
  1024. len += iov[1].iov_len;
  1025. } else if (iov[2].iov_len) {
  1026. ioc = 3;
  1027. len += iov[2].iov_len;
  1028. len += iov[1].iov_len;
  1029. } else if (iov[1].iov_len) {
  1030. ioc = 2;
  1031. len += iov[1].iov_len;
  1032. }
  1033. ret = kernel_sendmsg(call->conn->trans->local->socket,
  1034. &msg, iov, ioc, len);
  1035. if (ret < 0) {
  1036. _debug("sendmsg failed: %d", ret);
  1037. read_lock_bh(&call->state_lock);
  1038. if (call->state < RXRPC_CALL_DEAD)
  1039. rxrpc_queue_call(call);
  1040. read_unlock_bh(&call->state_lock);
  1041. goto error;
  1042. }
  1043. switch (genbit) {
  1044. case RXRPC_CALL_ABORT:
  1045. clear_bit(genbit, &call->events);
  1046. clear_bit(RXRPC_CALL_RCVD_ABORT, &call->events);
  1047. goto kill_ACKs;
  1048. case RXRPC_CALL_ACK_FINAL:
  1049. write_lock_bh(&call->state_lock);
  1050. if (call->state == RXRPC_CALL_CLIENT_FINAL_ACK)
  1051. call->state = RXRPC_CALL_COMPLETE;
  1052. write_unlock_bh(&call->state_lock);
  1053. goto kill_ACKs;
  1054. default:
  1055. clear_bit(genbit, &call->events);
  1056. switch (call->state) {
  1057. case RXRPC_CALL_CLIENT_AWAIT_REPLY:
  1058. case RXRPC_CALL_CLIENT_RECV_REPLY:
  1059. case RXRPC_CALL_SERVER_RECV_REQUEST:
  1060. case RXRPC_CALL_SERVER_ACK_REQUEST:
  1061. _debug("start ACK timer");
  1062. rxrpc_propose_ACK(call, RXRPC_ACK_DELAY,
  1063. call->ackr_serial, false);
  1064. default:
  1065. break;
  1066. }
  1067. goto maybe_reschedule;
  1068. }
  1069. kill_ACKs:
  1070. del_timer_sync(&call->ack_timer);
  1071. if (test_and_clear_bit(RXRPC_CALL_ACK_FINAL, &call->events))
  1072. rxrpc_put_call(call);
  1073. clear_bit(RXRPC_CALL_ACK, &call->events);
  1074. maybe_reschedule:
  1075. if (call->events || !skb_queue_empty(&call->rx_queue)) {
  1076. read_lock_bh(&call->state_lock);
  1077. if (call->state < RXRPC_CALL_DEAD)
  1078. rxrpc_queue_call(call);
  1079. read_unlock_bh(&call->state_lock);
  1080. }
  1081. /* don't leave aborted connections on the accept queue */
  1082. if (call->state >= RXRPC_CALL_COMPLETE &&
  1083. !list_empty(&call->accept_link)) {
  1084. _debug("X unlinking once-pending call %p { e=%lx f=%lx c=%x }",
  1085. call, call->events, call->flags,
  1086. ntohl(call->conn->cid));
  1087. read_lock_bh(&call->state_lock);
  1088. if (!test_bit(RXRPC_CALL_RELEASED, &call->flags) &&
  1089. !test_and_set_bit(RXRPC_CALL_RELEASE, &call->events))
  1090. rxrpc_queue_call(call);
  1091. read_unlock_bh(&call->state_lock);
  1092. }
  1093. error:
  1094. clear_bit(RXRPC_CALL_PROC_BUSY, &call->flags);
  1095. kfree(acks);
  1096. /* because we don't want two CPUs both processing the work item for one
  1097. * call at the same time, we use a flag to note when it's busy; however
  1098. * this means there's a race between clearing the flag and setting the
  1099. * work pending bit and the work item being processed again */
  1100. if (call->events && !work_pending(&call->processor)) {
  1101. _debug("jumpstart %x", ntohl(call->conn->cid));
  1102. rxrpc_queue_call(call);
  1103. }
  1104. _leave("");
  1105. return;
  1106. no_mem:
  1107. _debug("out of memory");
  1108. goto maybe_reschedule;
  1109. }