fc_exch.c 69 KB

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  1. /*
  2. * Copyright(c) 2007 Intel Corporation. All rights reserved.
  3. * Copyright(c) 2008 Red Hat, Inc. All rights reserved.
  4. * Copyright(c) 2008 Mike Christie
  5. *
  6. * This program is free software; you can redistribute it and/or modify it
  7. * under the terms and conditions of the GNU General Public License,
  8. * version 2, as published by the Free Software Foundation.
  9. *
  10. * This program is distributed in the hope it will be useful, but WITHOUT
  11. * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
  12. * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
  13. * more details.
  14. *
  15. * You should have received a copy of the GNU General Public License along with
  16. * this program; if not, write to the Free Software Foundation, Inc.,
  17. * 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
  18. *
  19. * Maintained at www.Open-FCoE.org
  20. */
  21. /*
  22. * Fibre Channel exchange and sequence handling.
  23. */
  24. #include <linux/timer.h>
  25. #include <linux/slab.h>
  26. #include <linux/err.h>
  27. #include <linux/export.h>
  28. #include <linux/log2.h>
  29. #include <scsi/fc/fc_fc2.h>
  30. #include <scsi/libfc.h>
  31. #include <scsi/fc_encode.h>
  32. #include "fc_libfc.h"
  33. u16 fc_cpu_mask; /* cpu mask for possible cpus */
  34. EXPORT_SYMBOL(fc_cpu_mask);
  35. static u16 fc_cpu_order; /* 2's power to represent total possible cpus */
  36. static struct kmem_cache *fc_em_cachep; /* cache for exchanges */
  37. static struct workqueue_struct *fc_exch_workqueue;
  38. /*
  39. * Structure and function definitions for managing Fibre Channel Exchanges
  40. * and Sequences.
  41. *
  42. * The three primary structures used here are fc_exch_mgr, fc_exch, and fc_seq.
  43. *
  44. * fc_exch_mgr holds the exchange state for an N port
  45. *
  46. * fc_exch holds state for one exchange and links to its active sequence.
  47. *
  48. * fc_seq holds the state for an individual sequence.
  49. */
  50. /**
  51. * struct fc_exch_pool - Per cpu exchange pool
  52. * @next_index: Next possible free exchange index
  53. * @total_exches: Total allocated exchanges
  54. * @lock: Exch pool lock
  55. * @ex_list: List of exchanges
  56. *
  57. * This structure manages per cpu exchanges in array of exchange pointers.
  58. * This array is allocated followed by struct fc_exch_pool memory for
  59. * assigned range of exchanges to per cpu pool.
  60. */
  61. struct fc_exch_pool {
  62. spinlock_t lock;
  63. struct list_head ex_list;
  64. u16 next_index;
  65. u16 total_exches;
  66. /* two cache of free slot in exch array */
  67. u16 left;
  68. u16 right;
  69. } ____cacheline_aligned_in_smp;
  70. /**
  71. * struct fc_exch_mgr - The Exchange Manager (EM).
  72. * @class: Default class for new sequences
  73. * @kref: Reference counter
  74. * @min_xid: Minimum exchange ID
  75. * @max_xid: Maximum exchange ID
  76. * @ep_pool: Reserved exchange pointers
  77. * @pool_max_index: Max exch array index in exch pool
  78. * @pool: Per cpu exch pool
  79. * @stats: Statistics structure
  80. *
  81. * This structure is the center for creating exchanges and sequences.
  82. * It manages the allocation of exchange IDs.
  83. */
  84. struct fc_exch_mgr {
  85. struct fc_exch_pool __percpu *pool;
  86. mempool_t *ep_pool;
  87. enum fc_class class;
  88. struct kref kref;
  89. u16 min_xid;
  90. u16 max_xid;
  91. u16 pool_max_index;
  92. struct {
  93. atomic_t no_free_exch;
  94. atomic_t no_free_exch_xid;
  95. atomic_t xid_not_found;
  96. atomic_t xid_busy;
  97. atomic_t seq_not_found;
  98. atomic_t non_bls_resp;
  99. } stats;
  100. };
  101. /**
  102. * struct fc_exch_mgr_anchor - primary structure for list of EMs
  103. * @ema_list: Exchange Manager Anchor list
  104. * @mp: Exchange Manager associated with this anchor
  105. * @match: Routine to determine if this anchor's EM should be used
  106. *
  107. * When walking the list of anchors the match routine will be called
  108. * for each anchor to determine if that EM should be used. The last
  109. * anchor in the list will always match to handle any exchanges not
  110. * handled by other EMs. The non-default EMs would be added to the
  111. * anchor list by HW that provides offloads.
  112. */
  113. struct fc_exch_mgr_anchor {
  114. struct list_head ema_list;
  115. struct fc_exch_mgr *mp;
  116. bool (*match)(struct fc_frame *);
  117. };
  118. static void fc_exch_rrq(struct fc_exch *);
  119. static void fc_seq_ls_acc(struct fc_frame *);
  120. static void fc_seq_ls_rjt(struct fc_frame *, enum fc_els_rjt_reason,
  121. enum fc_els_rjt_explan);
  122. static void fc_exch_els_rec(struct fc_frame *);
  123. static void fc_exch_els_rrq(struct fc_frame *);
  124. /*
  125. * Internal implementation notes.
  126. *
  127. * The exchange manager is one by default in libfc but LLD may choose
  128. * to have one per CPU. The sequence manager is one per exchange manager
  129. * and currently never separated.
  130. *
  131. * Section 9.8 in FC-FS-2 specifies: "The SEQ_ID is a one-byte field
  132. * assigned by the Sequence Initiator that shall be unique for a specific
  133. * D_ID and S_ID pair while the Sequence is open." Note that it isn't
  134. * qualified by exchange ID, which one might think it would be.
  135. * In practice this limits the number of open sequences and exchanges to 256
  136. * per session. For most targets we could treat this limit as per exchange.
  137. *
  138. * The exchange and its sequence are freed when the last sequence is received.
  139. * It's possible for the remote port to leave an exchange open without
  140. * sending any sequences.
  141. *
  142. * Notes on reference counts:
  143. *
  144. * Exchanges are reference counted and exchange gets freed when the reference
  145. * count becomes zero.
  146. *
  147. * Timeouts:
  148. * Sequences are timed out for E_D_TOV and R_A_TOV.
  149. *
  150. * Sequence event handling:
  151. *
  152. * The following events may occur on initiator sequences:
  153. *
  154. * Send.
  155. * For now, the whole thing is sent.
  156. * Receive ACK
  157. * This applies only to class F.
  158. * The sequence is marked complete.
  159. * ULP completion.
  160. * The upper layer calls fc_exch_done() when done
  161. * with exchange and sequence tuple.
  162. * RX-inferred completion.
  163. * When we receive the next sequence on the same exchange, we can
  164. * retire the previous sequence ID. (XXX not implemented).
  165. * Timeout.
  166. * R_A_TOV frees the sequence ID. If we're waiting for ACK,
  167. * E_D_TOV causes abort and calls upper layer response handler
  168. * with FC_EX_TIMEOUT error.
  169. * Receive RJT
  170. * XXX defer.
  171. * Send ABTS
  172. * On timeout.
  173. *
  174. * The following events may occur on recipient sequences:
  175. *
  176. * Receive
  177. * Allocate sequence for first frame received.
  178. * Hold during receive handler.
  179. * Release when final frame received.
  180. * Keep status of last N of these for the ELS RES command. XXX TBD.
  181. * Receive ABTS
  182. * Deallocate sequence
  183. * Send RJT
  184. * Deallocate
  185. *
  186. * For now, we neglect conditions where only part of a sequence was
  187. * received or transmitted, or where out-of-order receipt is detected.
  188. */
  189. /*
  190. * Locking notes:
  191. *
  192. * The EM code run in a per-CPU worker thread.
  193. *
  194. * To protect against concurrency between a worker thread code and timers,
  195. * sequence allocation and deallocation must be locked.
  196. * - exchange refcnt can be done atomicly without locks.
  197. * - sequence allocation must be locked by exch lock.
  198. * - If the EM pool lock and ex_lock must be taken at the same time, then the
  199. * EM pool lock must be taken before the ex_lock.
  200. */
  201. /*
  202. * opcode names for debugging.
  203. */
  204. static char *fc_exch_rctl_names[] = FC_RCTL_NAMES_INIT;
  205. /**
  206. * fc_exch_name_lookup() - Lookup name by opcode
  207. * @op: Opcode to be looked up
  208. * @table: Opcode/name table
  209. * @max_index: Index not to be exceeded
  210. *
  211. * This routine is used to determine a human-readable string identifying
  212. * a R_CTL opcode.
  213. */
  214. static inline const char *fc_exch_name_lookup(unsigned int op, char **table,
  215. unsigned int max_index)
  216. {
  217. const char *name = NULL;
  218. if (op < max_index)
  219. name = table[op];
  220. if (!name)
  221. name = "unknown";
  222. return name;
  223. }
  224. /**
  225. * fc_exch_rctl_name() - Wrapper routine for fc_exch_name_lookup()
  226. * @op: The opcode to be looked up
  227. */
  228. static const char *fc_exch_rctl_name(unsigned int op)
  229. {
  230. return fc_exch_name_lookup(op, fc_exch_rctl_names,
  231. ARRAY_SIZE(fc_exch_rctl_names));
  232. }
  233. /**
  234. * fc_exch_hold() - Increment an exchange's reference count
  235. * @ep: Echange to be held
  236. */
  237. static inline void fc_exch_hold(struct fc_exch *ep)
  238. {
  239. atomic_inc(&ep->ex_refcnt);
  240. }
  241. /**
  242. * fc_exch_setup_hdr() - Initialize a FC header by initializing some fields
  243. * and determine SOF and EOF.
  244. * @ep: The exchange to that will use the header
  245. * @fp: The frame whose header is to be modified
  246. * @f_ctl: F_CTL bits that will be used for the frame header
  247. *
  248. * The fields initialized by this routine are: fh_ox_id, fh_rx_id,
  249. * fh_seq_id, fh_seq_cnt and the SOF and EOF.
  250. */
  251. static void fc_exch_setup_hdr(struct fc_exch *ep, struct fc_frame *fp,
  252. u32 f_ctl)
  253. {
  254. struct fc_frame_header *fh = fc_frame_header_get(fp);
  255. u16 fill;
  256. fr_sof(fp) = ep->class;
  257. if (ep->seq.cnt)
  258. fr_sof(fp) = fc_sof_normal(ep->class);
  259. if (f_ctl & FC_FC_END_SEQ) {
  260. fr_eof(fp) = FC_EOF_T;
  261. if (fc_sof_needs_ack(ep->class))
  262. fr_eof(fp) = FC_EOF_N;
  263. /*
  264. * From F_CTL.
  265. * The number of fill bytes to make the length a 4-byte
  266. * multiple is the low order 2-bits of the f_ctl.
  267. * The fill itself will have been cleared by the frame
  268. * allocation.
  269. * After this, the length will be even, as expected by
  270. * the transport.
  271. */
  272. fill = fr_len(fp) & 3;
  273. if (fill) {
  274. fill = 4 - fill;
  275. /* TODO, this may be a problem with fragmented skb */
  276. skb_put(fp_skb(fp), fill);
  277. hton24(fh->fh_f_ctl, f_ctl | fill);
  278. }
  279. } else {
  280. WARN_ON(fr_len(fp) % 4 != 0); /* no pad to non last frame */
  281. fr_eof(fp) = FC_EOF_N;
  282. }
  283. /* Initialize remaining fh fields from fc_fill_fc_hdr */
  284. fh->fh_ox_id = htons(ep->oxid);
  285. fh->fh_rx_id = htons(ep->rxid);
  286. fh->fh_seq_id = ep->seq.id;
  287. fh->fh_seq_cnt = htons(ep->seq.cnt);
  288. }
  289. /**
  290. * fc_exch_release() - Decrement an exchange's reference count
  291. * @ep: Exchange to be released
  292. *
  293. * If the reference count reaches zero and the exchange is complete,
  294. * it is freed.
  295. */
  296. static void fc_exch_release(struct fc_exch *ep)
  297. {
  298. struct fc_exch_mgr *mp;
  299. if (atomic_dec_and_test(&ep->ex_refcnt)) {
  300. mp = ep->em;
  301. if (ep->destructor)
  302. ep->destructor(&ep->seq, ep->arg);
  303. WARN_ON(!(ep->esb_stat & ESB_ST_COMPLETE));
  304. mempool_free(ep, mp->ep_pool);
  305. }
  306. }
  307. /**
  308. * fc_exch_timer_cancel() - cancel exch timer
  309. * @ep: The exchange whose timer to be canceled
  310. */
  311. static inline void fc_exch_timer_cancel(struct fc_exch *ep)
  312. {
  313. if (cancel_delayed_work(&ep->timeout_work)) {
  314. FC_EXCH_DBG(ep, "Exchange timer canceled\n");
  315. atomic_dec(&ep->ex_refcnt); /* drop hold for timer */
  316. }
  317. }
  318. /**
  319. * fc_exch_timer_set_locked() - Start a timer for an exchange w/ the
  320. * the exchange lock held
  321. * @ep: The exchange whose timer will start
  322. * @timer_msec: The timeout period
  323. *
  324. * Used for upper level protocols to time out the exchange.
  325. * The timer is cancelled when it fires or when the exchange completes.
  326. */
  327. static inline void fc_exch_timer_set_locked(struct fc_exch *ep,
  328. unsigned int timer_msec)
  329. {
  330. if (ep->state & (FC_EX_RST_CLEANUP | FC_EX_DONE))
  331. return;
  332. FC_EXCH_DBG(ep, "Exchange timer armed : %d msecs\n", timer_msec);
  333. fc_exch_hold(ep); /* hold for timer */
  334. if (!queue_delayed_work(fc_exch_workqueue, &ep->timeout_work,
  335. msecs_to_jiffies(timer_msec)))
  336. fc_exch_release(ep);
  337. }
  338. /**
  339. * fc_exch_timer_set() - Lock the exchange and set the timer
  340. * @ep: The exchange whose timer will start
  341. * @timer_msec: The timeout period
  342. */
  343. static void fc_exch_timer_set(struct fc_exch *ep, unsigned int timer_msec)
  344. {
  345. spin_lock_bh(&ep->ex_lock);
  346. fc_exch_timer_set_locked(ep, timer_msec);
  347. spin_unlock_bh(&ep->ex_lock);
  348. }
  349. /**
  350. * fc_exch_done_locked() - Complete an exchange with the exchange lock held
  351. * @ep: The exchange that is complete
  352. *
  353. * Note: May sleep if invoked from outside a response handler.
  354. */
  355. static int fc_exch_done_locked(struct fc_exch *ep)
  356. {
  357. int rc = 1;
  358. /*
  359. * We must check for completion in case there are two threads
  360. * tyring to complete this. But the rrq code will reuse the
  361. * ep, and in that case we only clear the resp and set it as
  362. * complete, so it can be reused by the timer to send the rrq.
  363. */
  364. if (ep->state & FC_EX_DONE)
  365. return rc;
  366. ep->esb_stat |= ESB_ST_COMPLETE;
  367. if (!(ep->esb_stat & ESB_ST_REC_QUAL)) {
  368. ep->state |= FC_EX_DONE;
  369. fc_exch_timer_cancel(ep);
  370. rc = 0;
  371. }
  372. return rc;
  373. }
  374. /**
  375. * fc_exch_ptr_get() - Return an exchange from an exchange pool
  376. * @pool: Exchange Pool to get an exchange from
  377. * @index: Index of the exchange within the pool
  378. *
  379. * Use the index to get an exchange from within an exchange pool. exches
  380. * will point to an array of exchange pointers. The index will select
  381. * the exchange within the array.
  382. */
  383. static inline struct fc_exch *fc_exch_ptr_get(struct fc_exch_pool *pool,
  384. u16 index)
  385. {
  386. struct fc_exch **exches = (struct fc_exch **)(pool + 1);
  387. return exches[index];
  388. }
  389. /**
  390. * fc_exch_ptr_set() - Assign an exchange to a slot in an exchange pool
  391. * @pool: The pool to assign the exchange to
  392. * @index: The index in the pool where the exchange will be assigned
  393. * @ep: The exchange to assign to the pool
  394. */
  395. static inline void fc_exch_ptr_set(struct fc_exch_pool *pool, u16 index,
  396. struct fc_exch *ep)
  397. {
  398. ((struct fc_exch **)(pool + 1))[index] = ep;
  399. }
  400. /**
  401. * fc_exch_delete() - Delete an exchange
  402. * @ep: The exchange to be deleted
  403. */
  404. static void fc_exch_delete(struct fc_exch *ep)
  405. {
  406. struct fc_exch_pool *pool;
  407. u16 index;
  408. pool = ep->pool;
  409. spin_lock_bh(&pool->lock);
  410. WARN_ON(pool->total_exches <= 0);
  411. pool->total_exches--;
  412. /* update cache of free slot */
  413. index = (ep->xid - ep->em->min_xid) >> fc_cpu_order;
  414. if (pool->left == FC_XID_UNKNOWN)
  415. pool->left = index;
  416. else if (pool->right == FC_XID_UNKNOWN)
  417. pool->right = index;
  418. else
  419. pool->next_index = index;
  420. fc_exch_ptr_set(pool, index, NULL);
  421. list_del(&ep->ex_list);
  422. spin_unlock_bh(&pool->lock);
  423. fc_exch_release(ep); /* drop hold for exch in mp */
  424. }
  425. static int fc_seq_send_locked(struct fc_lport *lport, struct fc_seq *sp,
  426. struct fc_frame *fp)
  427. {
  428. struct fc_exch *ep;
  429. struct fc_frame_header *fh = fc_frame_header_get(fp);
  430. int error = -ENXIO;
  431. u32 f_ctl;
  432. u8 fh_type = fh->fh_type;
  433. ep = fc_seq_exch(sp);
  434. if (ep->esb_stat & (ESB_ST_COMPLETE | ESB_ST_ABNORMAL)) {
  435. fc_frame_free(fp);
  436. goto out;
  437. }
  438. WARN_ON(!(ep->esb_stat & ESB_ST_SEQ_INIT));
  439. f_ctl = ntoh24(fh->fh_f_ctl);
  440. fc_exch_setup_hdr(ep, fp, f_ctl);
  441. fr_encaps(fp) = ep->encaps;
  442. /*
  443. * update sequence count if this frame is carrying
  444. * multiple FC frames when sequence offload is enabled
  445. * by LLD.
  446. */
  447. if (fr_max_payload(fp))
  448. sp->cnt += DIV_ROUND_UP((fr_len(fp) - sizeof(*fh)),
  449. fr_max_payload(fp));
  450. else
  451. sp->cnt++;
  452. /*
  453. * Send the frame.
  454. */
  455. error = lport->tt.frame_send(lport, fp);
  456. if (fh_type == FC_TYPE_BLS)
  457. goto out;
  458. /*
  459. * Update the exchange and sequence flags,
  460. * assuming all frames for the sequence have been sent.
  461. * We can only be called to send once for each sequence.
  462. */
  463. ep->f_ctl = f_ctl & ~FC_FC_FIRST_SEQ; /* not first seq */
  464. if (f_ctl & FC_FC_SEQ_INIT)
  465. ep->esb_stat &= ~ESB_ST_SEQ_INIT;
  466. out:
  467. return error;
  468. }
  469. /**
  470. * fc_seq_send() - Send a frame using existing sequence/exchange pair
  471. * @lport: The local port that the exchange will be sent on
  472. * @sp: The sequence to be sent
  473. * @fp: The frame to be sent on the exchange
  474. *
  475. * Note: The frame will be freed either by a direct call to fc_frame_free(fp)
  476. * or indirectly by calling libfc_function_template.frame_send().
  477. */
  478. static int fc_seq_send(struct fc_lport *lport, struct fc_seq *sp,
  479. struct fc_frame *fp)
  480. {
  481. struct fc_exch *ep;
  482. int error;
  483. ep = fc_seq_exch(sp);
  484. spin_lock_bh(&ep->ex_lock);
  485. error = fc_seq_send_locked(lport, sp, fp);
  486. spin_unlock_bh(&ep->ex_lock);
  487. return error;
  488. }
  489. /**
  490. * fc_seq_alloc() - Allocate a sequence for a given exchange
  491. * @ep: The exchange to allocate a new sequence for
  492. * @seq_id: The sequence ID to be used
  493. *
  494. * We don't support multiple originated sequences on the same exchange.
  495. * By implication, any previously originated sequence on this exchange
  496. * is complete, and we reallocate the same sequence.
  497. */
  498. static struct fc_seq *fc_seq_alloc(struct fc_exch *ep, u8 seq_id)
  499. {
  500. struct fc_seq *sp;
  501. sp = &ep->seq;
  502. sp->ssb_stat = 0;
  503. sp->cnt = 0;
  504. sp->id = seq_id;
  505. return sp;
  506. }
  507. /**
  508. * fc_seq_start_next_locked() - Allocate a new sequence on the same
  509. * exchange as the supplied sequence
  510. * @sp: The sequence/exchange to get a new sequence for
  511. */
  512. static struct fc_seq *fc_seq_start_next_locked(struct fc_seq *sp)
  513. {
  514. struct fc_exch *ep = fc_seq_exch(sp);
  515. sp = fc_seq_alloc(ep, ep->seq_id++);
  516. FC_EXCH_DBG(ep, "f_ctl %6x seq %2x\n",
  517. ep->f_ctl, sp->id);
  518. return sp;
  519. }
  520. /**
  521. * fc_seq_start_next() - Lock the exchange and get a new sequence
  522. * for a given sequence/exchange pair
  523. * @sp: The sequence/exchange to get a new exchange for
  524. */
  525. static struct fc_seq *fc_seq_start_next(struct fc_seq *sp)
  526. {
  527. struct fc_exch *ep = fc_seq_exch(sp);
  528. spin_lock_bh(&ep->ex_lock);
  529. sp = fc_seq_start_next_locked(sp);
  530. spin_unlock_bh(&ep->ex_lock);
  531. return sp;
  532. }
  533. /*
  534. * Set the response handler for the exchange associated with a sequence.
  535. *
  536. * Note: May sleep if invoked from outside a response handler.
  537. */
  538. static void fc_seq_set_resp(struct fc_seq *sp,
  539. void (*resp)(struct fc_seq *, struct fc_frame *,
  540. void *),
  541. void *arg)
  542. {
  543. struct fc_exch *ep = fc_seq_exch(sp);
  544. DEFINE_WAIT(wait);
  545. spin_lock_bh(&ep->ex_lock);
  546. while (ep->resp_active && ep->resp_task != current) {
  547. prepare_to_wait(&ep->resp_wq, &wait, TASK_UNINTERRUPTIBLE);
  548. spin_unlock_bh(&ep->ex_lock);
  549. schedule();
  550. spin_lock_bh(&ep->ex_lock);
  551. }
  552. finish_wait(&ep->resp_wq, &wait);
  553. ep->resp = resp;
  554. ep->arg = arg;
  555. spin_unlock_bh(&ep->ex_lock);
  556. }
  557. /**
  558. * fc_exch_abort_locked() - Abort an exchange
  559. * @ep: The exchange to be aborted
  560. * @timer_msec: The period of time to wait before aborting
  561. *
  562. * Locking notes: Called with exch lock held
  563. *
  564. * Return value: 0 on success else error code
  565. */
  566. static int fc_exch_abort_locked(struct fc_exch *ep,
  567. unsigned int timer_msec)
  568. {
  569. struct fc_seq *sp;
  570. struct fc_frame *fp;
  571. int error;
  572. if (ep->esb_stat & (ESB_ST_COMPLETE | ESB_ST_ABNORMAL) ||
  573. ep->state & (FC_EX_DONE | FC_EX_RST_CLEANUP))
  574. return -ENXIO;
  575. /*
  576. * Send the abort on a new sequence if possible.
  577. */
  578. sp = fc_seq_start_next_locked(&ep->seq);
  579. if (!sp)
  580. return -ENOMEM;
  581. if (timer_msec)
  582. fc_exch_timer_set_locked(ep, timer_msec);
  583. if (ep->sid) {
  584. /*
  585. * Send an abort for the sequence that timed out.
  586. */
  587. fp = fc_frame_alloc(ep->lp, 0);
  588. if (fp) {
  589. ep->esb_stat |= ESB_ST_SEQ_INIT;
  590. fc_fill_fc_hdr(fp, FC_RCTL_BA_ABTS, ep->did, ep->sid,
  591. FC_TYPE_BLS, FC_FC_END_SEQ |
  592. FC_FC_SEQ_INIT, 0);
  593. error = fc_seq_send_locked(ep->lp, sp, fp);
  594. } else {
  595. error = -ENOBUFS;
  596. }
  597. } else {
  598. /*
  599. * If not logged into the fabric, don't send ABTS but leave
  600. * sequence active until next timeout.
  601. */
  602. error = 0;
  603. }
  604. ep->esb_stat |= ESB_ST_ABNORMAL;
  605. return error;
  606. }
  607. /**
  608. * fc_seq_exch_abort() - Abort an exchange and sequence
  609. * @req_sp: The sequence to be aborted
  610. * @timer_msec: The period of time to wait before aborting
  611. *
  612. * Generally called because of a timeout or an abort from the upper layer.
  613. *
  614. * Return value: 0 on success else error code
  615. */
  616. static int fc_seq_exch_abort(const struct fc_seq *req_sp,
  617. unsigned int timer_msec)
  618. {
  619. struct fc_exch *ep;
  620. int error;
  621. ep = fc_seq_exch(req_sp);
  622. spin_lock_bh(&ep->ex_lock);
  623. error = fc_exch_abort_locked(ep, timer_msec);
  624. spin_unlock_bh(&ep->ex_lock);
  625. return error;
  626. }
  627. /**
  628. * fc_invoke_resp() - invoke ep->resp()
  629. *
  630. * Notes:
  631. * It is assumed that after initialization finished (this means the
  632. * first unlock of ex_lock after fc_exch_alloc()) ep->resp and ep->arg are
  633. * modified only via fc_seq_set_resp(). This guarantees that none of these
  634. * two variables changes if ep->resp_active > 0.
  635. *
  636. * If an fc_seq_set_resp() call is busy modifying ep->resp and ep->arg when
  637. * this function is invoked, the first spin_lock_bh() call in this function
  638. * will wait until fc_seq_set_resp() has finished modifying these variables.
  639. *
  640. * Since fc_exch_done() invokes fc_seq_set_resp() it is guaranteed that that
  641. * ep->resp() won't be invoked after fc_exch_done() has returned.
  642. *
  643. * The response handler itself may invoke fc_exch_done(), which will clear the
  644. * ep->resp pointer.
  645. *
  646. * Return value:
  647. * Returns true if and only if ep->resp has been invoked.
  648. */
  649. static bool fc_invoke_resp(struct fc_exch *ep, struct fc_seq *sp,
  650. struct fc_frame *fp)
  651. {
  652. void (*resp)(struct fc_seq *, struct fc_frame *fp, void *arg);
  653. void *arg;
  654. bool res = false;
  655. spin_lock_bh(&ep->ex_lock);
  656. ep->resp_active++;
  657. if (ep->resp_task != current)
  658. ep->resp_task = !ep->resp_task ? current : NULL;
  659. resp = ep->resp;
  660. arg = ep->arg;
  661. spin_unlock_bh(&ep->ex_lock);
  662. if (resp) {
  663. resp(sp, fp, arg);
  664. res = true;
  665. }
  666. spin_lock_bh(&ep->ex_lock);
  667. if (--ep->resp_active == 0)
  668. ep->resp_task = NULL;
  669. spin_unlock_bh(&ep->ex_lock);
  670. if (ep->resp_active == 0)
  671. wake_up(&ep->resp_wq);
  672. return res;
  673. }
  674. /**
  675. * fc_exch_timeout() - Handle exchange timer expiration
  676. * @work: The work_struct identifying the exchange that timed out
  677. */
  678. static void fc_exch_timeout(struct work_struct *work)
  679. {
  680. struct fc_exch *ep = container_of(work, struct fc_exch,
  681. timeout_work.work);
  682. struct fc_seq *sp = &ep->seq;
  683. u32 e_stat;
  684. int rc = 1;
  685. FC_EXCH_DBG(ep, "Exchange timed out\n");
  686. spin_lock_bh(&ep->ex_lock);
  687. if (ep->state & (FC_EX_RST_CLEANUP | FC_EX_DONE))
  688. goto unlock;
  689. e_stat = ep->esb_stat;
  690. if (e_stat & ESB_ST_COMPLETE) {
  691. ep->esb_stat = e_stat & ~ESB_ST_REC_QUAL;
  692. spin_unlock_bh(&ep->ex_lock);
  693. if (e_stat & ESB_ST_REC_QUAL)
  694. fc_exch_rrq(ep);
  695. goto done;
  696. } else {
  697. if (e_stat & ESB_ST_ABNORMAL)
  698. rc = fc_exch_done_locked(ep);
  699. spin_unlock_bh(&ep->ex_lock);
  700. if (!rc)
  701. fc_exch_delete(ep);
  702. fc_invoke_resp(ep, sp, ERR_PTR(-FC_EX_TIMEOUT));
  703. fc_seq_set_resp(sp, NULL, ep->arg);
  704. fc_seq_exch_abort(sp, 2 * ep->r_a_tov);
  705. goto done;
  706. }
  707. unlock:
  708. spin_unlock_bh(&ep->ex_lock);
  709. done:
  710. /*
  711. * This release matches the hold taken when the timer was set.
  712. */
  713. fc_exch_release(ep);
  714. }
  715. /**
  716. * fc_exch_em_alloc() - Allocate an exchange from a specified EM.
  717. * @lport: The local port that the exchange is for
  718. * @mp: The exchange manager that will allocate the exchange
  719. *
  720. * Returns pointer to allocated fc_exch with exch lock held.
  721. */
  722. static struct fc_exch *fc_exch_em_alloc(struct fc_lport *lport,
  723. struct fc_exch_mgr *mp)
  724. {
  725. struct fc_exch *ep;
  726. unsigned int cpu;
  727. u16 index;
  728. struct fc_exch_pool *pool;
  729. /* allocate memory for exchange */
  730. ep = mempool_alloc(mp->ep_pool, GFP_ATOMIC);
  731. if (!ep) {
  732. atomic_inc(&mp->stats.no_free_exch);
  733. goto out;
  734. }
  735. memset(ep, 0, sizeof(*ep));
  736. cpu = get_cpu();
  737. pool = per_cpu_ptr(mp->pool, cpu);
  738. spin_lock_bh(&pool->lock);
  739. put_cpu();
  740. /* peek cache of free slot */
  741. if (pool->left != FC_XID_UNKNOWN) {
  742. index = pool->left;
  743. pool->left = FC_XID_UNKNOWN;
  744. goto hit;
  745. }
  746. if (pool->right != FC_XID_UNKNOWN) {
  747. index = pool->right;
  748. pool->right = FC_XID_UNKNOWN;
  749. goto hit;
  750. }
  751. index = pool->next_index;
  752. /* allocate new exch from pool */
  753. while (fc_exch_ptr_get(pool, index)) {
  754. index = index == mp->pool_max_index ? 0 : index + 1;
  755. if (index == pool->next_index)
  756. goto err;
  757. }
  758. pool->next_index = index == mp->pool_max_index ? 0 : index + 1;
  759. hit:
  760. fc_exch_hold(ep); /* hold for exch in mp */
  761. spin_lock_init(&ep->ex_lock);
  762. /*
  763. * Hold exch lock for caller to prevent fc_exch_reset()
  764. * from releasing exch while fc_exch_alloc() caller is
  765. * still working on exch.
  766. */
  767. spin_lock_bh(&ep->ex_lock);
  768. fc_exch_ptr_set(pool, index, ep);
  769. list_add_tail(&ep->ex_list, &pool->ex_list);
  770. fc_seq_alloc(ep, ep->seq_id++);
  771. pool->total_exches++;
  772. spin_unlock_bh(&pool->lock);
  773. /*
  774. * update exchange
  775. */
  776. ep->oxid = ep->xid = (index << fc_cpu_order | cpu) + mp->min_xid;
  777. ep->em = mp;
  778. ep->pool = pool;
  779. ep->lp = lport;
  780. ep->f_ctl = FC_FC_FIRST_SEQ; /* next seq is first seq */
  781. ep->rxid = FC_XID_UNKNOWN;
  782. ep->class = mp->class;
  783. ep->resp_active = 0;
  784. init_waitqueue_head(&ep->resp_wq);
  785. INIT_DELAYED_WORK(&ep->timeout_work, fc_exch_timeout);
  786. out:
  787. return ep;
  788. err:
  789. spin_unlock_bh(&pool->lock);
  790. atomic_inc(&mp->stats.no_free_exch_xid);
  791. mempool_free(ep, mp->ep_pool);
  792. return NULL;
  793. }
  794. /**
  795. * fc_exch_alloc() - Allocate an exchange from an EM on a
  796. * local port's list of EMs.
  797. * @lport: The local port that will own the exchange
  798. * @fp: The FC frame that the exchange will be for
  799. *
  800. * This function walks the list of exchange manager(EM)
  801. * anchors to select an EM for a new exchange allocation. The
  802. * EM is selected when a NULL match function pointer is encountered
  803. * or when a call to a match function returns true.
  804. */
  805. static inline struct fc_exch *fc_exch_alloc(struct fc_lport *lport,
  806. struct fc_frame *fp)
  807. {
  808. struct fc_exch_mgr_anchor *ema;
  809. list_for_each_entry(ema, &lport->ema_list, ema_list)
  810. if (!ema->match || ema->match(fp))
  811. return fc_exch_em_alloc(lport, ema->mp);
  812. return NULL;
  813. }
  814. /**
  815. * fc_exch_find() - Lookup and hold an exchange
  816. * @mp: The exchange manager to lookup the exchange from
  817. * @xid: The XID of the exchange to look up
  818. */
  819. static struct fc_exch *fc_exch_find(struct fc_exch_mgr *mp, u16 xid)
  820. {
  821. struct fc_exch_pool *pool;
  822. struct fc_exch *ep = NULL;
  823. u16 cpu = xid & fc_cpu_mask;
  824. if (cpu >= nr_cpu_ids || !cpu_possible(cpu)) {
  825. printk_ratelimited(KERN_ERR
  826. "libfc: lookup request for XID = %d, "
  827. "indicates invalid CPU %d\n", xid, cpu);
  828. return NULL;
  829. }
  830. if ((xid >= mp->min_xid) && (xid <= mp->max_xid)) {
  831. pool = per_cpu_ptr(mp->pool, cpu);
  832. spin_lock_bh(&pool->lock);
  833. ep = fc_exch_ptr_get(pool, (xid - mp->min_xid) >> fc_cpu_order);
  834. if (ep) {
  835. WARN_ON(ep->xid != xid);
  836. fc_exch_hold(ep);
  837. }
  838. spin_unlock_bh(&pool->lock);
  839. }
  840. return ep;
  841. }
  842. /**
  843. * fc_exch_done() - Indicate that an exchange/sequence tuple is complete and
  844. * the memory allocated for the related objects may be freed.
  845. * @sp: The sequence that has completed
  846. *
  847. * Note: May sleep if invoked from outside a response handler.
  848. */
  849. static void fc_exch_done(struct fc_seq *sp)
  850. {
  851. struct fc_exch *ep = fc_seq_exch(sp);
  852. int rc;
  853. spin_lock_bh(&ep->ex_lock);
  854. rc = fc_exch_done_locked(ep);
  855. spin_unlock_bh(&ep->ex_lock);
  856. fc_seq_set_resp(sp, NULL, ep->arg);
  857. if (!rc)
  858. fc_exch_delete(ep);
  859. }
  860. /**
  861. * fc_exch_resp() - Allocate a new exchange for a response frame
  862. * @lport: The local port that the exchange was for
  863. * @mp: The exchange manager to allocate the exchange from
  864. * @fp: The response frame
  865. *
  866. * Sets the responder ID in the frame header.
  867. */
  868. static struct fc_exch *fc_exch_resp(struct fc_lport *lport,
  869. struct fc_exch_mgr *mp,
  870. struct fc_frame *fp)
  871. {
  872. struct fc_exch *ep;
  873. struct fc_frame_header *fh;
  874. ep = fc_exch_alloc(lport, fp);
  875. if (ep) {
  876. ep->class = fc_frame_class(fp);
  877. /*
  878. * Set EX_CTX indicating we're responding on this exchange.
  879. */
  880. ep->f_ctl |= FC_FC_EX_CTX; /* we're responding */
  881. ep->f_ctl &= ~FC_FC_FIRST_SEQ; /* not new */
  882. fh = fc_frame_header_get(fp);
  883. ep->sid = ntoh24(fh->fh_d_id);
  884. ep->did = ntoh24(fh->fh_s_id);
  885. ep->oid = ep->did;
  886. /*
  887. * Allocated exchange has placed the XID in the
  888. * originator field. Move it to the responder field,
  889. * and set the originator XID from the frame.
  890. */
  891. ep->rxid = ep->xid;
  892. ep->oxid = ntohs(fh->fh_ox_id);
  893. ep->esb_stat |= ESB_ST_RESP | ESB_ST_SEQ_INIT;
  894. if ((ntoh24(fh->fh_f_ctl) & FC_FC_SEQ_INIT) == 0)
  895. ep->esb_stat &= ~ESB_ST_SEQ_INIT;
  896. fc_exch_hold(ep); /* hold for caller */
  897. spin_unlock_bh(&ep->ex_lock); /* lock from fc_exch_alloc */
  898. }
  899. return ep;
  900. }
  901. /**
  902. * fc_seq_lookup_recip() - Find a sequence where the other end
  903. * originated the sequence
  904. * @lport: The local port that the frame was sent to
  905. * @mp: The Exchange Manager to lookup the exchange from
  906. * @fp: The frame associated with the sequence we're looking for
  907. *
  908. * If fc_pf_rjt_reason is FC_RJT_NONE then this function will have a hold
  909. * on the ep that should be released by the caller.
  910. */
  911. static enum fc_pf_rjt_reason fc_seq_lookup_recip(struct fc_lport *lport,
  912. struct fc_exch_mgr *mp,
  913. struct fc_frame *fp)
  914. {
  915. struct fc_frame_header *fh = fc_frame_header_get(fp);
  916. struct fc_exch *ep = NULL;
  917. struct fc_seq *sp = NULL;
  918. enum fc_pf_rjt_reason reject = FC_RJT_NONE;
  919. u32 f_ctl;
  920. u16 xid;
  921. f_ctl = ntoh24(fh->fh_f_ctl);
  922. WARN_ON((f_ctl & FC_FC_SEQ_CTX) != 0);
  923. /*
  924. * Lookup or create the exchange if we will be creating the sequence.
  925. */
  926. if (f_ctl & FC_FC_EX_CTX) {
  927. xid = ntohs(fh->fh_ox_id); /* we originated exch */
  928. ep = fc_exch_find(mp, xid);
  929. if (!ep) {
  930. atomic_inc(&mp->stats.xid_not_found);
  931. reject = FC_RJT_OX_ID;
  932. goto out;
  933. }
  934. if (ep->rxid == FC_XID_UNKNOWN)
  935. ep->rxid = ntohs(fh->fh_rx_id);
  936. else if (ep->rxid != ntohs(fh->fh_rx_id)) {
  937. reject = FC_RJT_OX_ID;
  938. goto rel;
  939. }
  940. } else {
  941. xid = ntohs(fh->fh_rx_id); /* we are the responder */
  942. /*
  943. * Special case for MDS issuing an ELS TEST with a
  944. * bad rxid of 0.
  945. * XXX take this out once we do the proper reject.
  946. */
  947. if (xid == 0 && fh->fh_r_ctl == FC_RCTL_ELS_REQ &&
  948. fc_frame_payload_op(fp) == ELS_TEST) {
  949. fh->fh_rx_id = htons(FC_XID_UNKNOWN);
  950. xid = FC_XID_UNKNOWN;
  951. }
  952. /*
  953. * new sequence - find the exchange
  954. */
  955. ep = fc_exch_find(mp, xid);
  956. if ((f_ctl & FC_FC_FIRST_SEQ) && fc_sof_is_init(fr_sof(fp))) {
  957. if (ep) {
  958. atomic_inc(&mp->stats.xid_busy);
  959. reject = FC_RJT_RX_ID;
  960. goto rel;
  961. }
  962. ep = fc_exch_resp(lport, mp, fp);
  963. if (!ep) {
  964. reject = FC_RJT_EXCH_EST; /* XXX */
  965. goto out;
  966. }
  967. xid = ep->xid; /* get our XID */
  968. } else if (!ep) {
  969. atomic_inc(&mp->stats.xid_not_found);
  970. reject = FC_RJT_RX_ID; /* XID not found */
  971. goto out;
  972. }
  973. }
  974. spin_lock_bh(&ep->ex_lock);
  975. /*
  976. * At this point, we have the exchange held.
  977. * Find or create the sequence.
  978. */
  979. if (fc_sof_is_init(fr_sof(fp))) {
  980. sp = &ep->seq;
  981. sp->ssb_stat |= SSB_ST_RESP;
  982. sp->id = fh->fh_seq_id;
  983. } else {
  984. sp = &ep->seq;
  985. if (sp->id != fh->fh_seq_id) {
  986. atomic_inc(&mp->stats.seq_not_found);
  987. if (f_ctl & FC_FC_END_SEQ) {
  988. /*
  989. * Update sequence_id based on incoming last
  990. * frame of sequence exchange. This is needed
  991. * for FC target where DDP has been used
  992. * on target where, stack is indicated only
  993. * about last frame's (payload _header) header.
  994. * Whereas "seq_id" which is part of
  995. * frame_header is allocated by initiator
  996. * which is totally different from "seq_id"
  997. * allocated when XFER_RDY was sent by target.
  998. * To avoid false -ve which results into not
  999. * sending RSP, hence write request on other
  1000. * end never finishes.
  1001. */
  1002. sp->ssb_stat |= SSB_ST_RESP;
  1003. sp->id = fh->fh_seq_id;
  1004. } else {
  1005. spin_unlock_bh(&ep->ex_lock);
  1006. /* sequence/exch should exist */
  1007. reject = FC_RJT_SEQ_ID;
  1008. goto rel;
  1009. }
  1010. }
  1011. }
  1012. WARN_ON(ep != fc_seq_exch(sp));
  1013. if (f_ctl & FC_FC_SEQ_INIT)
  1014. ep->esb_stat |= ESB_ST_SEQ_INIT;
  1015. spin_unlock_bh(&ep->ex_lock);
  1016. fr_seq(fp) = sp;
  1017. out:
  1018. return reject;
  1019. rel:
  1020. fc_exch_done(&ep->seq);
  1021. fc_exch_release(ep); /* hold from fc_exch_find/fc_exch_resp */
  1022. return reject;
  1023. }
  1024. /**
  1025. * fc_seq_lookup_orig() - Find a sequence where this end
  1026. * originated the sequence
  1027. * @mp: The Exchange Manager to lookup the exchange from
  1028. * @fp: The frame associated with the sequence we're looking for
  1029. *
  1030. * Does not hold the sequence for the caller.
  1031. */
  1032. static struct fc_seq *fc_seq_lookup_orig(struct fc_exch_mgr *mp,
  1033. struct fc_frame *fp)
  1034. {
  1035. struct fc_frame_header *fh = fc_frame_header_get(fp);
  1036. struct fc_exch *ep;
  1037. struct fc_seq *sp = NULL;
  1038. u32 f_ctl;
  1039. u16 xid;
  1040. f_ctl = ntoh24(fh->fh_f_ctl);
  1041. WARN_ON((f_ctl & FC_FC_SEQ_CTX) != FC_FC_SEQ_CTX);
  1042. xid = ntohs((f_ctl & FC_FC_EX_CTX) ? fh->fh_ox_id : fh->fh_rx_id);
  1043. ep = fc_exch_find(mp, xid);
  1044. if (!ep)
  1045. return NULL;
  1046. if (ep->seq.id == fh->fh_seq_id) {
  1047. /*
  1048. * Save the RX_ID if we didn't previously know it.
  1049. */
  1050. sp = &ep->seq;
  1051. if ((f_ctl & FC_FC_EX_CTX) != 0 &&
  1052. ep->rxid == FC_XID_UNKNOWN) {
  1053. ep->rxid = ntohs(fh->fh_rx_id);
  1054. }
  1055. }
  1056. fc_exch_release(ep);
  1057. return sp;
  1058. }
  1059. /**
  1060. * fc_exch_set_addr() - Set the source and destination IDs for an exchange
  1061. * @ep: The exchange to set the addresses for
  1062. * @orig_id: The originator's ID
  1063. * @resp_id: The responder's ID
  1064. *
  1065. * Note this must be done before the first sequence of the exchange is sent.
  1066. */
  1067. static void fc_exch_set_addr(struct fc_exch *ep,
  1068. u32 orig_id, u32 resp_id)
  1069. {
  1070. ep->oid = orig_id;
  1071. if (ep->esb_stat & ESB_ST_RESP) {
  1072. ep->sid = resp_id;
  1073. ep->did = orig_id;
  1074. } else {
  1075. ep->sid = orig_id;
  1076. ep->did = resp_id;
  1077. }
  1078. }
  1079. /**
  1080. * fc_seq_els_rsp_send() - Send an ELS response using information from
  1081. * the existing sequence/exchange.
  1082. * @fp: The received frame
  1083. * @els_cmd: The ELS command to be sent
  1084. * @els_data: The ELS data to be sent
  1085. *
  1086. * The received frame is not freed.
  1087. */
  1088. static void fc_seq_els_rsp_send(struct fc_frame *fp, enum fc_els_cmd els_cmd,
  1089. struct fc_seq_els_data *els_data)
  1090. {
  1091. switch (els_cmd) {
  1092. case ELS_LS_RJT:
  1093. fc_seq_ls_rjt(fp, els_data->reason, els_data->explan);
  1094. break;
  1095. case ELS_LS_ACC:
  1096. fc_seq_ls_acc(fp);
  1097. break;
  1098. case ELS_RRQ:
  1099. fc_exch_els_rrq(fp);
  1100. break;
  1101. case ELS_REC:
  1102. fc_exch_els_rec(fp);
  1103. break;
  1104. default:
  1105. FC_LPORT_DBG(fr_dev(fp), "Invalid ELS CMD:%x\n", els_cmd);
  1106. }
  1107. }
  1108. /**
  1109. * fc_seq_send_last() - Send a sequence that is the last in the exchange
  1110. * @sp: The sequence that is to be sent
  1111. * @fp: The frame that will be sent on the sequence
  1112. * @rctl: The R_CTL information to be sent
  1113. * @fh_type: The frame header type
  1114. */
  1115. static void fc_seq_send_last(struct fc_seq *sp, struct fc_frame *fp,
  1116. enum fc_rctl rctl, enum fc_fh_type fh_type)
  1117. {
  1118. u32 f_ctl;
  1119. struct fc_exch *ep = fc_seq_exch(sp);
  1120. f_ctl = FC_FC_LAST_SEQ | FC_FC_END_SEQ | FC_FC_SEQ_INIT;
  1121. f_ctl |= ep->f_ctl;
  1122. fc_fill_fc_hdr(fp, rctl, ep->did, ep->sid, fh_type, f_ctl, 0);
  1123. fc_seq_send_locked(ep->lp, sp, fp);
  1124. }
  1125. /**
  1126. * fc_seq_send_ack() - Send an acknowledgement that we've received a frame
  1127. * @sp: The sequence to send the ACK on
  1128. * @rx_fp: The received frame that is being acknoledged
  1129. *
  1130. * Send ACK_1 (or equiv.) indicating we received something.
  1131. */
  1132. static void fc_seq_send_ack(struct fc_seq *sp, const struct fc_frame *rx_fp)
  1133. {
  1134. struct fc_frame *fp;
  1135. struct fc_frame_header *rx_fh;
  1136. struct fc_frame_header *fh;
  1137. struct fc_exch *ep = fc_seq_exch(sp);
  1138. struct fc_lport *lport = ep->lp;
  1139. unsigned int f_ctl;
  1140. /*
  1141. * Don't send ACKs for class 3.
  1142. */
  1143. if (fc_sof_needs_ack(fr_sof(rx_fp))) {
  1144. fp = fc_frame_alloc(lport, 0);
  1145. if (!fp)
  1146. return;
  1147. fh = fc_frame_header_get(fp);
  1148. fh->fh_r_ctl = FC_RCTL_ACK_1;
  1149. fh->fh_type = FC_TYPE_BLS;
  1150. /*
  1151. * Form f_ctl by inverting EX_CTX and SEQ_CTX (bits 23, 22).
  1152. * Echo FIRST_SEQ, LAST_SEQ, END_SEQ, END_CONN, SEQ_INIT.
  1153. * Bits 9-8 are meaningful (retransmitted or unidirectional).
  1154. * Last ACK uses bits 7-6 (continue sequence),
  1155. * bits 5-4 are meaningful (what kind of ACK to use).
  1156. */
  1157. rx_fh = fc_frame_header_get(rx_fp);
  1158. f_ctl = ntoh24(rx_fh->fh_f_ctl);
  1159. f_ctl &= FC_FC_EX_CTX | FC_FC_SEQ_CTX |
  1160. FC_FC_FIRST_SEQ | FC_FC_LAST_SEQ |
  1161. FC_FC_END_SEQ | FC_FC_END_CONN | FC_FC_SEQ_INIT |
  1162. FC_FC_RETX_SEQ | FC_FC_UNI_TX;
  1163. f_ctl ^= FC_FC_EX_CTX | FC_FC_SEQ_CTX;
  1164. hton24(fh->fh_f_ctl, f_ctl);
  1165. fc_exch_setup_hdr(ep, fp, f_ctl);
  1166. fh->fh_seq_id = rx_fh->fh_seq_id;
  1167. fh->fh_seq_cnt = rx_fh->fh_seq_cnt;
  1168. fh->fh_parm_offset = htonl(1); /* ack single frame */
  1169. fr_sof(fp) = fr_sof(rx_fp);
  1170. if (f_ctl & FC_FC_END_SEQ)
  1171. fr_eof(fp) = FC_EOF_T;
  1172. else
  1173. fr_eof(fp) = FC_EOF_N;
  1174. lport->tt.frame_send(lport, fp);
  1175. }
  1176. }
  1177. /**
  1178. * fc_exch_send_ba_rjt() - Send BLS Reject
  1179. * @rx_fp: The frame being rejected
  1180. * @reason: The reason the frame is being rejected
  1181. * @explan: The explanation for the rejection
  1182. *
  1183. * This is for rejecting BA_ABTS only.
  1184. */
  1185. static void fc_exch_send_ba_rjt(struct fc_frame *rx_fp,
  1186. enum fc_ba_rjt_reason reason,
  1187. enum fc_ba_rjt_explan explan)
  1188. {
  1189. struct fc_frame *fp;
  1190. struct fc_frame_header *rx_fh;
  1191. struct fc_frame_header *fh;
  1192. struct fc_ba_rjt *rp;
  1193. struct fc_lport *lport;
  1194. unsigned int f_ctl;
  1195. lport = fr_dev(rx_fp);
  1196. fp = fc_frame_alloc(lport, sizeof(*rp));
  1197. if (!fp)
  1198. return;
  1199. fh = fc_frame_header_get(fp);
  1200. rx_fh = fc_frame_header_get(rx_fp);
  1201. memset(fh, 0, sizeof(*fh) + sizeof(*rp));
  1202. rp = fc_frame_payload_get(fp, sizeof(*rp));
  1203. rp->br_reason = reason;
  1204. rp->br_explan = explan;
  1205. /*
  1206. * seq_id, cs_ctl, df_ctl and param/offset are zero.
  1207. */
  1208. memcpy(fh->fh_s_id, rx_fh->fh_d_id, 3);
  1209. memcpy(fh->fh_d_id, rx_fh->fh_s_id, 3);
  1210. fh->fh_ox_id = rx_fh->fh_ox_id;
  1211. fh->fh_rx_id = rx_fh->fh_rx_id;
  1212. fh->fh_seq_cnt = rx_fh->fh_seq_cnt;
  1213. fh->fh_r_ctl = FC_RCTL_BA_RJT;
  1214. fh->fh_type = FC_TYPE_BLS;
  1215. /*
  1216. * Form f_ctl by inverting EX_CTX and SEQ_CTX (bits 23, 22).
  1217. * Echo FIRST_SEQ, LAST_SEQ, END_SEQ, END_CONN, SEQ_INIT.
  1218. * Bits 9-8 are meaningful (retransmitted or unidirectional).
  1219. * Last ACK uses bits 7-6 (continue sequence),
  1220. * bits 5-4 are meaningful (what kind of ACK to use).
  1221. * Always set LAST_SEQ, END_SEQ.
  1222. */
  1223. f_ctl = ntoh24(rx_fh->fh_f_ctl);
  1224. f_ctl &= FC_FC_EX_CTX | FC_FC_SEQ_CTX |
  1225. FC_FC_END_CONN | FC_FC_SEQ_INIT |
  1226. FC_FC_RETX_SEQ | FC_FC_UNI_TX;
  1227. f_ctl ^= FC_FC_EX_CTX | FC_FC_SEQ_CTX;
  1228. f_ctl |= FC_FC_LAST_SEQ | FC_FC_END_SEQ;
  1229. f_ctl &= ~FC_FC_FIRST_SEQ;
  1230. hton24(fh->fh_f_ctl, f_ctl);
  1231. fr_sof(fp) = fc_sof_class(fr_sof(rx_fp));
  1232. fr_eof(fp) = FC_EOF_T;
  1233. if (fc_sof_needs_ack(fr_sof(fp)))
  1234. fr_eof(fp) = FC_EOF_N;
  1235. lport->tt.frame_send(lport, fp);
  1236. }
  1237. /**
  1238. * fc_exch_recv_abts() - Handle an incoming ABTS
  1239. * @ep: The exchange the abort was on
  1240. * @rx_fp: The ABTS frame
  1241. *
  1242. * This would be for target mode usually, but could be due to lost
  1243. * FCP transfer ready, confirm or RRQ. We always handle this as an
  1244. * exchange abort, ignoring the parameter.
  1245. */
  1246. static void fc_exch_recv_abts(struct fc_exch *ep, struct fc_frame *rx_fp)
  1247. {
  1248. struct fc_frame *fp;
  1249. struct fc_ba_acc *ap;
  1250. struct fc_frame_header *fh;
  1251. struct fc_seq *sp;
  1252. if (!ep)
  1253. goto reject;
  1254. fp = fc_frame_alloc(ep->lp, sizeof(*ap));
  1255. if (!fp)
  1256. goto free;
  1257. spin_lock_bh(&ep->ex_lock);
  1258. if (ep->esb_stat & ESB_ST_COMPLETE) {
  1259. spin_unlock_bh(&ep->ex_lock);
  1260. fc_frame_free(fp);
  1261. goto reject;
  1262. }
  1263. if (!(ep->esb_stat & ESB_ST_REC_QUAL)) {
  1264. ep->esb_stat |= ESB_ST_REC_QUAL;
  1265. fc_exch_hold(ep); /* hold for REC_QUAL */
  1266. }
  1267. fc_exch_timer_set_locked(ep, ep->r_a_tov);
  1268. fh = fc_frame_header_get(fp);
  1269. ap = fc_frame_payload_get(fp, sizeof(*ap));
  1270. memset(ap, 0, sizeof(*ap));
  1271. sp = &ep->seq;
  1272. ap->ba_high_seq_cnt = htons(0xffff);
  1273. if (sp->ssb_stat & SSB_ST_RESP) {
  1274. ap->ba_seq_id = sp->id;
  1275. ap->ba_seq_id_val = FC_BA_SEQ_ID_VAL;
  1276. ap->ba_high_seq_cnt = fh->fh_seq_cnt;
  1277. ap->ba_low_seq_cnt = htons(sp->cnt);
  1278. }
  1279. sp = fc_seq_start_next_locked(sp);
  1280. fc_seq_send_last(sp, fp, FC_RCTL_BA_ACC, FC_TYPE_BLS);
  1281. ep->esb_stat |= ESB_ST_ABNORMAL;
  1282. spin_unlock_bh(&ep->ex_lock);
  1283. free:
  1284. fc_frame_free(rx_fp);
  1285. return;
  1286. reject:
  1287. fc_exch_send_ba_rjt(rx_fp, FC_BA_RJT_UNABLE, FC_BA_RJT_INV_XID);
  1288. goto free;
  1289. }
  1290. /**
  1291. * fc_seq_assign() - Assign exchange and sequence for incoming request
  1292. * @lport: The local port that received the request
  1293. * @fp: The request frame
  1294. *
  1295. * On success, the sequence pointer will be returned and also in fr_seq(@fp).
  1296. * A reference will be held on the exchange/sequence for the caller, which
  1297. * must call fc_seq_release().
  1298. */
  1299. static struct fc_seq *fc_seq_assign(struct fc_lport *lport, struct fc_frame *fp)
  1300. {
  1301. struct fc_exch_mgr_anchor *ema;
  1302. WARN_ON(lport != fr_dev(fp));
  1303. WARN_ON(fr_seq(fp));
  1304. fr_seq(fp) = NULL;
  1305. list_for_each_entry(ema, &lport->ema_list, ema_list)
  1306. if ((!ema->match || ema->match(fp)) &&
  1307. fc_seq_lookup_recip(lport, ema->mp, fp) == FC_RJT_NONE)
  1308. break;
  1309. return fr_seq(fp);
  1310. }
  1311. /**
  1312. * fc_seq_release() - Release the hold
  1313. * @sp: The sequence.
  1314. */
  1315. static void fc_seq_release(struct fc_seq *sp)
  1316. {
  1317. fc_exch_release(fc_seq_exch(sp));
  1318. }
  1319. /**
  1320. * fc_exch_recv_req() - Handler for an incoming request
  1321. * @lport: The local port that received the request
  1322. * @mp: The EM that the exchange is on
  1323. * @fp: The request frame
  1324. *
  1325. * This is used when the other end is originating the exchange
  1326. * and the sequence.
  1327. */
  1328. static void fc_exch_recv_req(struct fc_lport *lport, struct fc_exch_mgr *mp,
  1329. struct fc_frame *fp)
  1330. {
  1331. struct fc_frame_header *fh = fc_frame_header_get(fp);
  1332. struct fc_seq *sp = NULL;
  1333. struct fc_exch *ep = NULL;
  1334. enum fc_pf_rjt_reason reject;
  1335. /* We can have the wrong fc_lport at this point with NPIV, which is a
  1336. * problem now that we know a new exchange needs to be allocated
  1337. */
  1338. lport = fc_vport_id_lookup(lport, ntoh24(fh->fh_d_id));
  1339. if (!lport) {
  1340. fc_frame_free(fp);
  1341. return;
  1342. }
  1343. fr_dev(fp) = lport;
  1344. BUG_ON(fr_seq(fp)); /* XXX remove later */
  1345. /*
  1346. * If the RX_ID is 0xffff, don't allocate an exchange.
  1347. * The upper-level protocol may request one later, if needed.
  1348. */
  1349. if (fh->fh_rx_id == htons(FC_XID_UNKNOWN))
  1350. return lport->tt.lport_recv(lport, fp);
  1351. reject = fc_seq_lookup_recip(lport, mp, fp);
  1352. if (reject == FC_RJT_NONE) {
  1353. sp = fr_seq(fp); /* sequence will be held */
  1354. ep = fc_seq_exch(sp);
  1355. fc_seq_send_ack(sp, fp);
  1356. ep->encaps = fr_encaps(fp);
  1357. /*
  1358. * Call the receive function.
  1359. *
  1360. * The receive function may allocate a new sequence
  1361. * over the old one, so we shouldn't change the
  1362. * sequence after this.
  1363. *
  1364. * The frame will be freed by the receive function.
  1365. * If new exch resp handler is valid then call that
  1366. * first.
  1367. */
  1368. if (!fc_invoke_resp(ep, sp, fp))
  1369. lport->tt.lport_recv(lport, fp);
  1370. fc_exch_release(ep); /* release from lookup */
  1371. } else {
  1372. FC_LPORT_DBG(lport, "exch/seq lookup failed: reject %x\n",
  1373. reject);
  1374. fc_frame_free(fp);
  1375. }
  1376. }
  1377. /**
  1378. * fc_exch_recv_seq_resp() - Handler for an incoming response where the other
  1379. * end is the originator of the sequence that is a
  1380. * response to our initial exchange
  1381. * @mp: The EM that the exchange is on
  1382. * @fp: The response frame
  1383. */
  1384. static void fc_exch_recv_seq_resp(struct fc_exch_mgr *mp, struct fc_frame *fp)
  1385. {
  1386. struct fc_frame_header *fh = fc_frame_header_get(fp);
  1387. struct fc_seq *sp;
  1388. struct fc_exch *ep;
  1389. enum fc_sof sof;
  1390. u32 f_ctl;
  1391. int rc;
  1392. ep = fc_exch_find(mp, ntohs(fh->fh_ox_id));
  1393. if (!ep) {
  1394. atomic_inc(&mp->stats.xid_not_found);
  1395. goto out;
  1396. }
  1397. if (ep->esb_stat & ESB_ST_COMPLETE) {
  1398. atomic_inc(&mp->stats.xid_not_found);
  1399. goto rel;
  1400. }
  1401. if (ep->rxid == FC_XID_UNKNOWN)
  1402. ep->rxid = ntohs(fh->fh_rx_id);
  1403. if (ep->sid != 0 && ep->sid != ntoh24(fh->fh_d_id)) {
  1404. atomic_inc(&mp->stats.xid_not_found);
  1405. goto rel;
  1406. }
  1407. if (ep->did != ntoh24(fh->fh_s_id) &&
  1408. ep->did != FC_FID_FLOGI) {
  1409. atomic_inc(&mp->stats.xid_not_found);
  1410. goto rel;
  1411. }
  1412. sof = fr_sof(fp);
  1413. sp = &ep->seq;
  1414. if (fc_sof_is_init(sof)) {
  1415. sp->ssb_stat |= SSB_ST_RESP;
  1416. sp->id = fh->fh_seq_id;
  1417. } else if (sp->id != fh->fh_seq_id) {
  1418. atomic_inc(&mp->stats.seq_not_found);
  1419. goto rel;
  1420. }
  1421. f_ctl = ntoh24(fh->fh_f_ctl);
  1422. fr_seq(fp) = sp;
  1423. spin_lock_bh(&ep->ex_lock);
  1424. if (f_ctl & FC_FC_SEQ_INIT)
  1425. ep->esb_stat |= ESB_ST_SEQ_INIT;
  1426. spin_unlock_bh(&ep->ex_lock);
  1427. if (fc_sof_needs_ack(sof))
  1428. fc_seq_send_ack(sp, fp);
  1429. if (fh->fh_type != FC_TYPE_FCP && fr_eof(fp) == FC_EOF_T &&
  1430. (f_ctl & (FC_FC_LAST_SEQ | FC_FC_END_SEQ)) ==
  1431. (FC_FC_LAST_SEQ | FC_FC_END_SEQ)) {
  1432. spin_lock_bh(&ep->ex_lock);
  1433. rc = fc_exch_done_locked(ep);
  1434. WARN_ON(fc_seq_exch(sp) != ep);
  1435. spin_unlock_bh(&ep->ex_lock);
  1436. if (!rc)
  1437. fc_exch_delete(ep);
  1438. }
  1439. /*
  1440. * Call the receive function.
  1441. * The sequence is held (has a refcnt) for us,
  1442. * but not for the receive function.
  1443. *
  1444. * The receive function may allocate a new sequence
  1445. * over the old one, so we shouldn't change the
  1446. * sequence after this.
  1447. *
  1448. * The frame will be freed by the receive function.
  1449. * If new exch resp handler is valid then call that
  1450. * first.
  1451. */
  1452. if (!fc_invoke_resp(ep, sp, fp))
  1453. fc_frame_free(fp);
  1454. fc_exch_release(ep);
  1455. return;
  1456. rel:
  1457. fc_exch_release(ep);
  1458. out:
  1459. fc_frame_free(fp);
  1460. }
  1461. /**
  1462. * fc_exch_recv_resp() - Handler for a sequence where other end is
  1463. * responding to our sequence
  1464. * @mp: The EM that the exchange is on
  1465. * @fp: The response frame
  1466. */
  1467. static void fc_exch_recv_resp(struct fc_exch_mgr *mp, struct fc_frame *fp)
  1468. {
  1469. struct fc_seq *sp;
  1470. sp = fc_seq_lookup_orig(mp, fp); /* doesn't hold sequence */
  1471. if (!sp)
  1472. atomic_inc(&mp->stats.xid_not_found);
  1473. else
  1474. atomic_inc(&mp->stats.non_bls_resp);
  1475. fc_frame_free(fp);
  1476. }
  1477. /**
  1478. * fc_exch_abts_resp() - Handler for a response to an ABT
  1479. * @ep: The exchange that the frame is on
  1480. * @fp: The response frame
  1481. *
  1482. * This response would be to an ABTS cancelling an exchange or sequence.
  1483. * The response can be either BA_ACC or BA_RJT
  1484. */
  1485. static void fc_exch_abts_resp(struct fc_exch *ep, struct fc_frame *fp)
  1486. {
  1487. struct fc_frame_header *fh;
  1488. struct fc_ba_acc *ap;
  1489. struct fc_seq *sp;
  1490. u16 low;
  1491. u16 high;
  1492. int rc = 1, has_rec = 0;
  1493. fh = fc_frame_header_get(fp);
  1494. FC_EXCH_DBG(ep, "exch: BLS rctl %x - %s\n", fh->fh_r_ctl,
  1495. fc_exch_rctl_name(fh->fh_r_ctl));
  1496. if (cancel_delayed_work_sync(&ep->timeout_work)) {
  1497. FC_EXCH_DBG(ep, "Exchange timer canceled due to ABTS response\n");
  1498. fc_exch_release(ep); /* release from pending timer hold */
  1499. }
  1500. spin_lock_bh(&ep->ex_lock);
  1501. switch (fh->fh_r_ctl) {
  1502. case FC_RCTL_BA_ACC:
  1503. ap = fc_frame_payload_get(fp, sizeof(*ap));
  1504. if (!ap)
  1505. break;
  1506. /*
  1507. * Decide whether to establish a Recovery Qualifier.
  1508. * We do this if there is a non-empty SEQ_CNT range and
  1509. * SEQ_ID is the same as the one we aborted.
  1510. */
  1511. low = ntohs(ap->ba_low_seq_cnt);
  1512. high = ntohs(ap->ba_high_seq_cnt);
  1513. if ((ep->esb_stat & ESB_ST_REC_QUAL) == 0 &&
  1514. (ap->ba_seq_id_val != FC_BA_SEQ_ID_VAL ||
  1515. ap->ba_seq_id == ep->seq_id) && low != high) {
  1516. ep->esb_stat |= ESB_ST_REC_QUAL;
  1517. fc_exch_hold(ep); /* hold for recovery qualifier */
  1518. has_rec = 1;
  1519. }
  1520. break;
  1521. case FC_RCTL_BA_RJT:
  1522. break;
  1523. default:
  1524. break;
  1525. }
  1526. /* do we need to do some other checks here. Can we reuse more of
  1527. * fc_exch_recv_seq_resp
  1528. */
  1529. sp = &ep->seq;
  1530. /*
  1531. * do we want to check END_SEQ as well as LAST_SEQ here?
  1532. */
  1533. if (ep->fh_type != FC_TYPE_FCP &&
  1534. ntoh24(fh->fh_f_ctl) & FC_FC_LAST_SEQ)
  1535. rc = fc_exch_done_locked(ep);
  1536. spin_unlock_bh(&ep->ex_lock);
  1537. fc_exch_hold(ep);
  1538. if (!rc)
  1539. fc_exch_delete(ep);
  1540. if (!fc_invoke_resp(ep, sp, fp))
  1541. fc_frame_free(fp);
  1542. if (has_rec)
  1543. fc_exch_timer_set(ep, ep->r_a_tov);
  1544. fc_exch_release(ep);
  1545. }
  1546. /**
  1547. * fc_exch_recv_bls() - Handler for a BLS sequence
  1548. * @mp: The EM that the exchange is on
  1549. * @fp: The request frame
  1550. *
  1551. * The BLS frame is always a sequence initiated by the remote side.
  1552. * We may be either the originator or recipient of the exchange.
  1553. */
  1554. static void fc_exch_recv_bls(struct fc_exch_mgr *mp, struct fc_frame *fp)
  1555. {
  1556. struct fc_frame_header *fh;
  1557. struct fc_exch *ep;
  1558. u32 f_ctl;
  1559. fh = fc_frame_header_get(fp);
  1560. f_ctl = ntoh24(fh->fh_f_ctl);
  1561. fr_seq(fp) = NULL;
  1562. ep = fc_exch_find(mp, (f_ctl & FC_FC_EX_CTX) ?
  1563. ntohs(fh->fh_ox_id) : ntohs(fh->fh_rx_id));
  1564. if (ep && (f_ctl & FC_FC_SEQ_INIT)) {
  1565. spin_lock_bh(&ep->ex_lock);
  1566. ep->esb_stat |= ESB_ST_SEQ_INIT;
  1567. spin_unlock_bh(&ep->ex_lock);
  1568. }
  1569. if (f_ctl & FC_FC_SEQ_CTX) {
  1570. /*
  1571. * A response to a sequence we initiated.
  1572. * This should only be ACKs for class 2 or F.
  1573. */
  1574. switch (fh->fh_r_ctl) {
  1575. case FC_RCTL_ACK_1:
  1576. case FC_RCTL_ACK_0:
  1577. break;
  1578. default:
  1579. if (ep)
  1580. FC_EXCH_DBG(ep, "BLS rctl %x - %s received\n",
  1581. fh->fh_r_ctl,
  1582. fc_exch_rctl_name(fh->fh_r_ctl));
  1583. break;
  1584. }
  1585. fc_frame_free(fp);
  1586. } else {
  1587. switch (fh->fh_r_ctl) {
  1588. case FC_RCTL_BA_RJT:
  1589. case FC_RCTL_BA_ACC:
  1590. if (ep)
  1591. fc_exch_abts_resp(ep, fp);
  1592. else
  1593. fc_frame_free(fp);
  1594. break;
  1595. case FC_RCTL_BA_ABTS:
  1596. fc_exch_recv_abts(ep, fp);
  1597. break;
  1598. default: /* ignore junk */
  1599. fc_frame_free(fp);
  1600. break;
  1601. }
  1602. }
  1603. if (ep)
  1604. fc_exch_release(ep); /* release hold taken by fc_exch_find */
  1605. }
  1606. /**
  1607. * fc_seq_ls_acc() - Accept sequence with LS_ACC
  1608. * @rx_fp: The received frame, not freed here.
  1609. *
  1610. * If this fails due to allocation or transmit congestion, assume the
  1611. * originator will repeat the sequence.
  1612. */
  1613. static void fc_seq_ls_acc(struct fc_frame *rx_fp)
  1614. {
  1615. struct fc_lport *lport;
  1616. struct fc_els_ls_acc *acc;
  1617. struct fc_frame *fp;
  1618. lport = fr_dev(rx_fp);
  1619. fp = fc_frame_alloc(lport, sizeof(*acc));
  1620. if (!fp)
  1621. return;
  1622. acc = fc_frame_payload_get(fp, sizeof(*acc));
  1623. memset(acc, 0, sizeof(*acc));
  1624. acc->la_cmd = ELS_LS_ACC;
  1625. fc_fill_reply_hdr(fp, rx_fp, FC_RCTL_ELS_REP, 0);
  1626. lport->tt.frame_send(lport, fp);
  1627. }
  1628. /**
  1629. * fc_seq_ls_rjt() - Reject a sequence with ELS LS_RJT
  1630. * @rx_fp: The received frame, not freed here.
  1631. * @reason: The reason the sequence is being rejected
  1632. * @explan: The explanation for the rejection
  1633. *
  1634. * If this fails due to allocation or transmit congestion, assume the
  1635. * originator will repeat the sequence.
  1636. */
  1637. static void fc_seq_ls_rjt(struct fc_frame *rx_fp, enum fc_els_rjt_reason reason,
  1638. enum fc_els_rjt_explan explan)
  1639. {
  1640. struct fc_lport *lport;
  1641. struct fc_els_ls_rjt *rjt;
  1642. struct fc_frame *fp;
  1643. lport = fr_dev(rx_fp);
  1644. fp = fc_frame_alloc(lport, sizeof(*rjt));
  1645. if (!fp)
  1646. return;
  1647. rjt = fc_frame_payload_get(fp, sizeof(*rjt));
  1648. memset(rjt, 0, sizeof(*rjt));
  1649. rjt->er_cmd = ELS_LS_RJT;
  1650. rjt->er_reason = reason;
  1651. rjt->er_explan = explan;
  1652. fc_fill_reply_hdr(fp, rx_fp, FC_RCTL_ELS_REP, 0);
  1653. lport->tt.frame_send(lport, fp);
  1654. }
  1655. /**
  1656. * fc_exch_reset() - Reset an exchange
  1657. * @ep: The exchange to be reset
  1658. *
  1659. * Note: May sleep if invoked from outside a response handler.
  1660. */
  1661. static void fc_exch_reset(struct fc_exch *ep)
  1662. {
  1663. struct fc_seq *sp;
  1664. int rc = 1;
  1665. spin_lock_bh(&ep->ex_lock);
  1666. ep->state |= FC_EX_RST_CLEANUP;
  1667. fc_exch_timer_cancel(ep);
  1668. if (ep->esb_stat & ESB_ST_REC_QUAL)
  1669. atomic_dec(&ep->ex_refcnt); /* drop hold for rec_qual */
  1670. ep->esb_stat &= ~ESB_ST_REC_QUAL;
  1671. sp = &ep->seq;
  1672. rc = fc_exch_done_locked(ep);
  1673. spin_unlock_bh(&ep->ex_lock);
  1674. fc_exch_hold(ep);
  1675. if (!rc)
  1676. fc_exch_delete(ep);
  1677. fc_invoke_resp(ep, sp, ERR_PTR(-FC_EX_CLOSED));
  1678. fc_seq_set_resp(sp, NULL, ep->arg);
  1679. fc_exch_release(ep);
  1680. }
  1681. /**
  1682. * fc_exch_pool_reset() - Reset a per cpu exchange pool
  1683. * @lport: The local port that the exchange pool is on
  1684. * @pool: The exchange pool to be reset
  1685. * @sid: The source ID
  1686. * @did: The destination ID
  1687. *
  1688. * Resets a per cpu exches pool, releasing all of its sequences
  1689. * and exchanges. If sid is non-zero then reset only exchanges
  1690. * we sourced from the local port's FID. If did is non-zero then
  1691. * only reset exchanges destined for the local port's FID.
  1692. */
  1693. static void fc_exch_pool_reset(struct fc_lport *lport,
  1694. struct fc_exch_pool *pool,
  1695. u32 sid, u32 did)
  1696. {
  1697. struct fc_exch *ep;
  1698. struct fc_exch *next;
  1699. spin_lock_bh(&pool->lock);
  1700. restart:
  1701. list_for_each_entry_safe(ep, next, &pool->ex_list, ex_list) {
  1702. if ((lport == ep->lp) &&
  1703. (sid == 0 || sid == ep->sid) &&
  1704. (did == 0 || did == ep->did)) {
  1705. fc_exch_hold(ep);
  1706. spin_unlock_bh(&pool->lock);
  1707. fc_exch_reset(ep);
  1708. fc_exch_release(ep);
  1709. spin_lock_bh(&pool->lock);
  1710. /*
  1711. * must restart loop incase while lock
  1712. * was down multiple eps were released.
  1713. */
  1714. goto restart;
  1715. }
  1716. }
  1717. pool->next_index = 0;
  1718. pool->left = FC_XID_UNKNOWN;
  1719. pool->right = FC_XID_UNKNOWN;
  1720. spin_unlock_bh(&pool->lock);
  1721. }
  1722. /**
  1723. * fc_exch_mgr_reset() - Reset all EMs of a local port
  1724. * @lport: The local port whose EMs are to be reset
  1725. * @sid: The source ID
  1726. * @did: The destination ID
  1727. *
  1728. * Reset all EMs associated with a given local port. Release all
  1729. * sequences and exchanges. If sid is non-zero then reset only the
  1730. * exchanges sent from the local port's FID. If did is non-zero then
  1731. * reset only exchanges destined for the local port's FID.
  1732. */
  1733. void fc_exch_mgr_reset(struct fc_lport *lport, u32 sid, u32 did)
  1734. {
  1735. struct fc_exch_mgr_anchor *ema;
  1736. unsigned int cpu;
  1737. list_for_each_entry(ema, &lport->ema_list, ema_list) {
  1738. for_each_possible_cpu(cpu)
  1739. fc_exch_pool_reset(lport,
  1740. per_cpu_ptr(ema->mp->pool, cpu),
  1741. sid, did);
  1742. }
  1743. }
  1744. EXPORT_SYMBOL(fc_exch_mgr_reset);
  1745. /**
  1746. * fc_exch_lookup() - find an exchange
  1747. * @lport: The local port
  1748. * @xid: The exchange ID
  1749. *
  1750. * Returns exchange pointer with hold for caller, or NULL if not found.
  1751. */
  1752. static struct fc_exch *fc_exch_lookup(struct fc_lport *lport, u32 xid)
  1753. {
  1754. struct fc_exch_mgr_anchor *ema;
  1755. list_for_each_entry(ema, &lport->ema_list, ema_list)
  1756. if (ema->mp->min_xid <= xid && xid <= ema->mp->max_xid)
  1757. return fc_exch_find(ema->mp, xid);
  1758. return NULL;
  1759. }
  1760. /**
  1761. * fc_exch_els_rec() - Handler for ELS REC (Read Exchange Concise) requests
  1762. * @rfp: The REC frame, not freed here.
  1763. *
  1764. * Note that the requesting port may be different than the S_ID in the request.
  1765. */
  1766. static void fc_exch_els_rec(struct fc_frame *rfp)
  1767. {
  1768. struct fc_lport *lport;
  1769. struct fc_frame *fp;
  1770. struct fc_exch *ep;
  1771. struct fc_els_rec *rp;
  1772. struct fc_els_rec_acc *acc;
  1773. enum fc_els_rjt_reason reason = ELS_RJT_LOGIC;
  1774. enum fc_els_rjt_explan explan;
  1775. u32 sid;
  1776. u16 rxid;
  1777. u16 oxid;
  1778. lport = fr_dev(rfp);
  1779. rp = fc_frame_payload_get(rfp, sizeof(*rp));
  1780. explan = ELS_EXPL_INV_LEN;
  1781. if (!rp)
  1782. goto reject;
  1783. sid = ntoh24(rp->rec_s_id);
  1784. rxid = ntohs(rp->rec_rx_id);
  1785. oxid = ntohs(rp->rec_ox_id);
  1786. ep = fc_exch_lookup(lport,
  1787. sid == fc_host_port_id(lport->host) ? oxid : rxid);
  1788. explan = ELS_EXPL_OXID_RXID;
  1789. if (!ep)
  1790. goto reject;
  1791. if (ep->oid != sid || oxid != ep->oxid)
  1792. goto rel;
  1793. if (rxid != FC_XID_UNKNOWN && rxid != ep->rxid)
  1794. goto rel;
  1795. fp = fc_frame_alloc(lport, sizeof(*acc));
  1796. if (!fp)
  1797. goto out;
  1798. acc = fc_frame_payload_get(fp, sizeof(*acc));
  1799. memset(acc, 0, sizeof(*acc));
  1800. acc->reca_cmd = ELS_LS_ACC;
  1801. acc->reca_ox_id = rp->rec_ox_id;
  1802. memcpy(acc->reca_ofid, rp->rec_s_id, 3);
  1803. acc->reca_rx_id = htons(ep->rxid);
  1804. if (ep->sid == ep->oid)
  1805. hton24(acc->reca_rfid, ep->did);
  1806. else
  1807. hton24(acc->reca_rfid, ep->sid);
  1808. acc->reca_fc4value = htonl(ep->seq.rec_data);
  1809. acc->reca_e_stat = htonl(ep->esb_stat & (ESB_ST_RESP |
  1810. ESB_ST_SEQ_INIT |
  1811. ESB_ST_COMPLETE));
  1812. fc_fill_reply_hdr(fp, rfp, FC_RCTL_ELS_REP, 0);
  1813. lport->tt.frame_send(lport, fp);
  1814. out:
  1815. fc_exch_release(ep);
  1816. return;
  1817. rel:
  1818. fc_exch_release(ep);
  1819. reject:
  1820. fc_seq_ls_rjt(rfp, reason, explan);
  1821. }
  1822. /**
  1823. * fc_exch_rrq_resp() - Handler for RRQ responses
  1824. * @sp: The sequence that the RRQ is on
  1825. * @fp: The RRQ frame
  1826. * @arg: The exchange that the RRQ is on
  1827. *
  1828. * TODO: fix error handler.
  1829. */
  1830. static void fc_exch_rrq_resp(struct fc_seq *sp, struct fc_frame *fp, void *arg)
  1831. {
  1832. struct fc_exch *aborted_ep = arg;
  1833. unsigned int op;
  1834. if (IS_ERR(fp)) {
  1835. int err = PTR_ERR(fp);
  1836. if (err == -FC_EX_CLOSED || err == -FC_EX_TIMEOUT)
  1837. goto cleanup;
  1838. FC_EXCH_DBG(aborted_ep, "Cannot process RRQ, "
  1839. "frame error %d\n", err);
  1840. return;
  1841. }
  1842. op = fc_frame_payload_op(fp);
  1843. fc_frame_free(fp);
  1844. switch (op) {
  1845. case ELS_LS_RJT:
  1846. FC_EXCH_DBG(aborted_ep, "LS_RJT for RRQ\n");
  1847. /* fall through */
  1848. case ELS_LS_ACC:
  1849. goto cleanup;
  1850. default:
  1851. FC_EXCH_DBG(aborted_ep, "unexpected response op %x for RRQ\n",
  1852. op);
  1853. return;
  1854. }
  1855. cleanup:
  1856. fc_exch_done(&aborted_ep->seq);
  1857. /* drop hold for rec qual */
  1858. fc_exch_release(aborted_ep);
  1859. }
  1860. /**
  1861. * fc_exch_seq_send() - Send a frame using a new exchange and sequence
  1862. * @lport: The local port to send the frame on
  1863. * @fp: The frame to be sent
  1864. * @resp: The response handler for this request
  1865. * @destructor: The destructor for the exchange
  1866. * @arg: The argument to be passed to the response handler
  1867. * @timer_msec: The timeout period for the exchange
  1868. *
  1869. * The frame pointer with some of the header's fields must be
  1870. * filled before calling this routine, those fields are:
  1871. *
  1872. * - routing control
  1873. * - FC port did
  1874. * - FC port sid
  1875. * - FC header type
  1876. * - frame control
  1877. * - parameter or relative offset
  1878. */
  1879. static struct fc_seq *fc_exch_seq_send(struct fc_lport *lport,
  1880. struct fc_frame *fp,
  1881. void (*resp)(struct fc_seq *,
  1882. struct fc_frame *fp,
  1883. void *arg),
  1884. void (*destructor)(struct fc_seq *,
  1885. void *),
  1886. void *arg, u32 timer_msec)
  1887. {
  1888. struct fc_exch *ep;
  1889. struct fc_seq *sp = NULL;
  1890. struct fc_frame_header *fh;
  1891. struct fc_fcp_pkt *fsp = NULL;
  1892. int rc = 1;
  1893. ep = fc_exch_alloc(lport, fp);
  1894. if (!ep) {
  1895. fc_frame_free(fp);
  1896. return NULL;
  1897. }
  1898. ep->esb_stat |= ESB_ST_SEQ_INIT;
  1899. fh = fc_frame_header_get(fp);
  1900. fc_exch_set_addr(ep, ntoh24(fh->fh_s_id), ntoh24(fh->fh_d_id));
  1901. ep->resp = resp;
  1902. ep->destructor = destructor;
  1903. ep->arg = arg;
  1904. ep->r_a_tov = FC_DEF_R_A_TOV;
  1905. ep->lp = lport;
  1906. sp = &ep->seq;
  1907. ep->fh_type = fh->fh_type; /* save for possbile timeout handling */
  1908. ep->f_ctl = ntoh24(fh->fh_f_ctl);
  1909. fc_exch_setup_hdr(ep, fp, ep->f_ctl);
  1910. sp->cnt++;
  1911. if (ep->xid <= lport->lro_xid && fh->fh_r_ctl == FC_RCTL_DD_UNSOL_CMD) {
  1912. fsp = fr_fsp(fp);
  1913. fc_fcp_ddp_setup(fr_fsp(fp), ep->xid);
  1914. }
  1915. if (unlikely(lport->tt.frame_send(lport, fp)))
  1916. goto err;
  1917. if (timer_msec)
  1918. fc_exch_timer_set_locked(ep, timer_msec);
  1919. ep->f_ctl &= ~FC_FC_FIRST_SEQ; /* not first seq */
  1920. if (ep->f_ctl & FC_FC_SEQ_INIT)
  1921. ep->esb_stat &= ~ESB_ST_SEQ_INIT;
  1922. spin_unlock_bh(&ep->ex_lock);
  1923. return sp;
  1924. err:
  1925. if (fsp)
  1926. fc_fcp_ddp_done(fsp);
  1927. rc = fc_exch_done_locked(ep);
  1928. spin_unlock_bh(&ep->ex_lock);
  1929. if (!rc)
  1930. fc_exch_delete(ep);
  1931. return NULL;
  1932. }
  1933. /**
  1934. * fc_exch_rrq() - Send an ELS RRQ (Reinstate Recovery Qualifier) command
  1935. * @ep: The exchange to send the RRQ on
  1936. *
  1937. * This tells the remote port to stop blocking the use of
  1938. * the exchange and the seq_cnt range.
  1939. */
  1940. static void fc_exch_rrq(struct fc_exch *ep)
  1941. {
  1942. struct fc_lport *lport;
  1943. struct fc_els_rrq *rrq;
  1944. struct fc_frame *fp;
  1945. u32 did;
  1946. lport = ep->lp;
  1947. fp = fc_frame_alloc(lport, sizeof(*rrq));
  1948. if (!fp)
  1949. goto retry;
  1950. rrq = fc_frame_payload_get(fp, sizeof(*rrq));
  1951. memset(rrq, 0, sizeof(*rrq));
  1952. rrq->rrq_cmd = ELS_RRQ;
  1953. hton24(rrq->rrq_s_id, ep->sid);
  1954. rrq->rrq_ox_id = htons(ep->oxid);
  1955. rrq->rrq_rx_id = htons(ep->rxid);
  1956. did = ep->did;
  1957. if (ep->esb_stat & ESB_ST_RESP)
  1958. did = ep->sid;
  1959. fc_fill_fc_hdr(fp, FC_RCTL_ELS_REQ, did,
  1960. lport->port_id, FC_TYPE_ELS,
  1961. FC_FC_FIRST_SEQ | FC_FC_END_SEQ | FC_FC_SEQ_INIT, 0);
  1962. if (fc_exch_seq_send(lport, fp, fc_exch_rrq_resp, NULL, ep,
  1963. lport->e_d_tov))
  1964. return;
  1965. retry:
  1966. spin_lock_bh(&ep->ex_lock);
  1967. if (ep->state & (FC_EX_RST_CLEANUP | FC_EX_DONE)) {
  1968. spin_unlock_bh(&ep->ex_lock);
  1969. /* drop hold for rec qual */
  1970. fc_exch_release(ep);
  1971. return;
  1972. }
  1973. ep->esb_stat |= ESB_ST_REC_QUAL;
  1974. fc_exch_timer_set_locked(ep, ep->r_a_tov);
  1975. spin_unlock_bh(&ep->ex_lock);
  1976. }
  1977. /**
  1978. * fc_exch_els_rrq() - Handler for ELS RRQ (Reset Recovery Qualifier) requests
  1979. * @fp: The RRQ frame, not freed here.
  1980. */
  1981. static void fc_exch_els_rrq(struct fc_frame *fp)
  1982. {
  1983. struct fc_lport *lport;
  1984. struct fc_exch *ep = NULL; /* request or subject exchange */
  1985. struct fc_els_rrq *rp;
  1986. u32 sid;
  1987. u16 xid;
  1988. enum fc_els_rjt_explan explan;
  1989. lport = fr_dev(fp);
  1990. rp = fc_frame_payload_get(fp, sizeof(*rp));
  1991. explan = ELS_EXPL_INV_LEN;
  1992. if (!rp)
  1993. goto reject;
  1994. /*
  1995. * lookup subject exchange.
  1996. */
  1997. sid = ntoh24(rp->rrq_s_id); /* subject source */
  1998. xid = fc_host_port_id(lport->host) == sid ?
  1999. ntohs(rp->rrq_ox_id) : ntohs(rp->rrq_rx_id);
  2000. ep = fc_exch_lookup(lport, xid);
  2001. explan = ELS_EXPL_OXID_RXID;
  2002. if (!ep)
  2003. goto reject;
  2004. spin_lock_bh(&ep->ex_lock);
  2005. if (ep->oxid != ntohs(rp->rrq_ox_id))
  2006. goto unlock_reject;
  2007. if (ep->rxid != ntohs(rp->rrq_rx_id) &&
  2008. ep->rxid != FC_XID_UNKNOWN)
  2009. goto unlock_reject;
  2010. explan = ELS_EXPL_SID;
  2011. if (ep->sid != sid)
  2012. goto unlock_reject;
  2013. /*
  2014. * Clear Recovery Qualifier state, and cancel timer if complete.
  2015. */
  2016. if (ep->esb_stat & ESB_ST_REC_QUAL) {
  2017. ep->esb_stat &= ~ESB_ST_REC_QUAL;
  2018. atomic_dec(&ep->ex_refcnt); /* drop hold for rec qual */
  2019. }
  2020. if (ep->esb_stat & ESB_ST_COMPLETE)
  2021. fc_exch_timer_cancel(ep);
  2022. spin_unlock_bh(&ep->ex_lock);
  2023. /*
  2024. * Send LS_ACC.
  2025. */
  2026. fc_seq_ls_acc(fp);
  2027. goto out;
  2028. unlock_reject:
  2029. spin_unlock_bh(&ep->ex_lock);
  2030. reject:
  2031. fc_seq_ls_rjt(fp, ELS_RJT_LOGIC, explan);
  2032. out:
  2033. if (ep)
  2034. fc_exch_release(ep); /* drop hold from fc_exch_find */
  2035. }
  2036. /**
  2037. * fc_exch_update_stats() - update exches stats to lport
  2038. * @lport: The local port to update exchange manager stats
  2039. */
  2040. void fc_exch_update_stats(struct fc_lport *lport)
  2041. {
  2042. struct fc_host_statistics *st;
  2043. struct fc_exch_mgr_anchor *ema;
  2044. struct fc_exch_mgr *mp;
  2045. st = &lport->host_stats;
  2046. list_for_each_entry(ema, &lport->ema_list, ema_list) {
  2047. mp = ema->mp;
  2048. st->fc_no_free_exch += atomic_read(&mp->stats.no_free_exch);
  2049. st->fc_no_free_exch_xid +=
  2050. atomic_read(&mp->stats.no_free_exch_xid);
  2051. st->fc_xid_not_found += atomic_read(&mp->stats.xid_not_found);
  2052. st->fc_xid_busy += atomic_read(&mp->stats.xid_busy);
  2053. st->fc_seq_not_found += atomic_read(&mp->stats.seq_not_found);
  2054. st->fc_non_bls_resp += atomic_read(&mp->stats.non_bls_resp);
  2055. }
  2056. }
  2057. EXPORT_SYMBOL(fc_exch_update_stats);
  2058. /**
  2059. * fc_exch_mgr_add() - Add an exchange manager to a local port's list of EMs
  2060. * @lport: The local port to add the exchange manager to
  2061. * @mp: The exchange manager to be added to the local port
  2062. * @match: The match routine that indicates when this EM should be used
  2063. */
  2064. struct fc_exch_mgr_anchor *fc_exch_mgr_add(struct fc_lport *lport,
  2065. struct fc_exch_mgr *mp,
  2066. bool (*match)(struct fc_frame *))
  2067. {
  2068. struct fc_exch_mgr_anchor *ema;
  2069. ema = kmalloc(sizeof(*ema), GFP_ATOMIC);
  2070. if (!ema)
  2071. return ema;
  2072. ema->mp = mp;
  2073. ema->match = match;
  2074. /* add EM anchor to EM anchors list */
  2075. list_add_tail(&ema->ema_list, &lport->ema_list);
  2076. kref_get(&mp->kref);
  2077. return ema;
  2078. }
  2079. EXPORT_SYMBOL(fc_exch_mgr_add);
  2080. /**
  2081. * fc_exch_mgr_destroy() - Destroy an exchange manager
  2082. * @kref: The reference to the EM to be destroyed
  2083. */
  2084. static void fc_exch_mgr_destroy(struct kref *kref)
  2085. {
  2086. struct fc_exch_mgr *mp = container_of(kref, struct fc_exch_mgr, kref);
  2087. mempool_destroy(mp->ep_pool);
  2088. free_percpu(mp->pool);
  2089. kfree(mp);
  2090. }
  2091. /**
  2092. * fc_exch_mgr_del() - Delete an EM from a local port's list
  2093. * @ema: The exchange manager anchor identifying the EM to be deleted
  2094. */
  2095. void fc_exch_mgr_del(struct fc_exch_mgr_anchor *ema)
  2096. {
  2097. /* remove EM anchor from EM anchors list */
  2098. list_del(&ema->ema_list);
  2099. kref_put(&ema->mp->kref, fc_exch_mgr_destroy);
  2100. kfree(ema);
  2101. }
  2102. EXPORT_SYMBOL(fc_exch_mgr_del);
  2103. /**
  2104. * fc_exch_mgr_list_clone() - Share all exchange manager objects
  2105. * @src: Source lport to clone exchange managers from
  2106. * @dst: New lport that takes references to all the exchange managers
  2107. */
  2108. int fc_exch_mgr_list_clone(struct fc_lport *src, struct fc_lport *dst)
  2109. {
  2110. struct fc_exch_mgr_anchor *ema, *tmp;
  2111. list_for_each_entry(ema, &src->ema_list, ema_list) {
  2112. if (!fc_exch_mgr_add(dst, ema->mp, ema->match))
  2113. goto err;
  2114. }
  2115. return 0;
  2116. err:
  2117. list_for_each_entry_safe(ema, tmp, &dst->ema_list, ema_list)
  2118. fc_exch_mgr_del(ema);
  2119. return -ENOMEM;
  2120. }
  2121. EXPORT_SYMBOL(fc_exch_mgr_list_clone);
  2122. /**
  2123. * fc_exch_mgr_alloc() - Allocate an exchange manager
  2124. * @lport: The local port that the new EM will be associated with
  2125. * @class: The default FC class for new exchanges
  2126. * @min_xid: The minimum XID for exchanges from the new EM
  2127. * @max_xid: The maximum XID for exchanges from the new EM
  2128. * @match: The match routine for the new EM
  2129. */
  2130. struct fc_exch_mgr *fc_exch_mgr_alloc(struct fc_lport *lport,
  2131. enum fc_class class,
  2132. u16 min_xid, u16 max_xid,
  2133. bool (*match)(struct fc_frame *))
  2134. {
  2135. struct fc_exch_mgr *mp;
  2136. u16 pool_exch_range;
  2137. size_t pool_size;
  2138. unsigned int cpu;
  2139. struct fc_exch_pool *pool;
  2140. if (max_xid <= min_xid || max_xid == FC_XID_UNKNOWN ||
  2141. (min_xid & fc_cpu_mask) != 0) {
  2142. FC_LPORT_DBG(lport, "Invalid min_xid 0x:%x and max_xid 0x:%x\n",
  2143. min_xid, max_xid);
  2144. return NULL;
  2145. }
  2146. /*
  2147. * allocate memory for EM
  2148. */
  2149. mp = kzalloc(sizeof(struct fc_exch_mgr), GFP_ATOMIC);
  2150. if (!mp)
  2151. return NULL;
  2152. mp->class = class;
  2153. /* adjust em exch xid range for offload */
  2154. mp->min_xid = min_xid;
  2155. /* reduce range so per cpu pool fits into PCPU_MIN_UNIT_SIZE pool */
  2156. pool_exch_range = (PCPU_MIN_UNIT_SIZE - sizeof(*pool)) /
  2157. sizeof(struct fc_exch *);
  2158. if ((max_xid - min_xid + 1) / (fc_cpu_mask + 1) > pool_exch_range) {
  2159. mp->max_xid = pool_exch_range * (fc_cpu_mask + 1) +
  2160. min_xid - 1;
  2161. } else {
  2162. mp->max_xid = max_xid;
  2163. pool_exch_range = (mp->max_xid - mp->min_xid + 1) /
  2164. (fc_cpu_mask + 1);
  2165. }
  2166. mp->ep_pool = mempool_create_slab_pool(2, fc_em_cachep);
  2167. if (!mp->ep_pool)
  2168. goto free_mp;
  2169. /*
  2170. * Setup per cpu exch pool with entire exchange id range equally
  2171. * divided across all cpus. The exch pointers array memory is
  2172. * allocated for exch range per pool.
  2173. */
  2174. mp->pool_max_index = pool_exch_range - 1;
  2175. /*
  2176. * Allocate and initialize per cpu exch pool
  2177. */
  2178. pool_size = sizeof(*pool) + pool_exch_range * sizeof(struct fc_exch *);
  2179. mp->pool = __alloc_percpu(pool_size, __alignof__(struct fc_exch_pool));
  2180. if (!mp->pool)
  2181. goto free_mempool;
  2182. for_each_possible_cpu(cpu) {
  2183. pool = per_cpu_ptr(mp->pool, cpu);
  2184. pool->next_index = 0;
  2185. pool->left = FC_XID_UNKNOWN;
  2186. pool->right = FC_XID_UNKNOWN;
  2187. spin_lock_init(&pool->lock);
  2188. INIT_LIST_HEAD(&pool->ex_list);
  2189. }
  2190. kref_init(&mp->kref);
  2191. if (!fc_exch_mgr_add(lport, mp, match)) {
  2192. free_percpu(mp->pool);
  2193. goto free_mempool;
  2194. }
  2195. /*
  2196. * Above kref_init() sets mp->kref to 1 and then
  2197. * call to fc_exch_mgr_add incremented mp->kref again,
  2198. * so adjust that extra increment.
  2199. */
  2200. kref_put(&mp->kref, fc_exch_mgr_destroy);
  2201. return mp;
  2202. free_mempool:
  2203. mempool_destroy(mp->ep_pool);
  2204. free_mp:
  2205. kfree(mp);
  2206. return NULL;
  2207. }
  2208. EXPORT_SYMBOL(fc_exch_mgr_alloc);
  2209. /**
  2210. * fc_exch_mgr_free() - Free all exchange managers on a local port
  2211. * @lport: The local port whose EMs are to be freed
  2212. */
  2213. void fc_exch_mgr_free(struct fc_lport *lport)
  2214. {
  2215. struct fc_exch_mgr_anchor *ema, *next;
  2216. flush_workqueue(fc_exch_workqueue);
  2217. list_for_each_entry_safe(ema, next, &lport->ema_list, ema_list)
  2218. fc_exch_mgr_del(ema);
  2219. }
  2220. EXPORT_SYMBOL(fc_exch_mgr_free);
  2221. /**
  2222. * fc_find_ema() - Lookup and return appropriate Exchange Manager Anchor depending
  2223. * upon 'xid'.
  2224. * @f_ctl: f_ctl
  2225. * @lport: The local port the frame was received on
  2226. * @fh: The received frame header
  2227. */
  2228. static struct fc_exch_mgr_anchor *fc_find_ema(u32 f_ctl,
  2229. struct fc_lport *lport,
  2230. struct fc_frame_header *fh)
  2231. {
  2232. struct fc_exch_mgr_anchor *ema;
  2233. u16 xid;
  2234. if (f_ctl & FC_FC_EX_CTX)
  2235. xid = ntohs(fh->fh_ox_id);
  2236. else {
  2237. xid = ntohs(fh->fh_rx_id);
  2238. if (xid == FC_XID_UNKNOWN)
  2239. return list_entry(lport->ema_list.prev,
  2240. typeof(*ema), ema_list);
  2241. }
  2242. list_for_each_entry(ema, &lport->ema_list, ema_list) {
  2243. if ((xid >= ema->mp->min_xid) &&
  2244. (xid <= ema->mp->max_xid))
  2245. return ema;
  2246. }
  2247. return NULL;
  2248. }
  2249. /**
  2250. * fc_exch_recv() - Handler for received frames
  2251. * @lport: The local port the frame was received on
  2252. * @fp: The received frame
  2253. */
  2254. void fc_exch_recv(struct fc_lport *lport, struct fc_frame *fp)
  2255. {
  2256. struct fc_frame_header *fh = fc_frame_header_get(fp);
  2257. struct fc_exch_mgr_anchor *ema;
  2258. u32 f_ctl;
  2259. /* lport lock ? */
  2260. if (!lport || lport->state == LPORT_ST_DISABLED) {
  2261. FC_LPORT_DBG(lport, "Receiving frames for an lport that "
  2262. "has not been initialized correctly\n");
  2263. fc_frame_free(fp);
  2264. return;
  2265. }
  2266. f_ctl = ntoh24(fh->fh_f_ctl);
  2267. ema = fc_find_ema(f_ctl, lport, fh);
  2268. if (!ema) {
  2269. FC_LPORT_DBG(lport, "Unable to find Exchange Manager Anchor,"
  2270. "fc_ctl <0x%x>, xid <0x%x>\n",
  2271. f_ctl,
  2272. (f_ctl & FC_FC_EX_CTX) ?
  2273. ntohs(fh->fh_ox_id) :
  2274. ntohs(fh->fh_rx_id));
  2275. fc_frame_free(fp);
  2276. return;
  2277. }
  2278. /*
  2279. * If frame is marked invalid, just drop it.
  2280. */
  2281. switch (fr_eof(fp)) {
  2282. case FC_EOF_T:
  2283. if (f_ctl & FC_FC_END_SEQ)
  2284. skb_trim(fp_skb(fp), fr_len(fp) - FC_FC_FILL(f_ctl));
  2285. /* fall through */
  2286. case FC_EOF_N:
  2287. if (fh->fh_type == FC_TYPE_BLS)
  2288. fc_exch_recv_bls(ema->mp, fp);
  2289. else if ((f_ctl & (FC_FC_EX_CTX | FC_FC_SEQ_CTX)) ==
  2290. FC_FC_EX_CTX)
  2291. fc_exch_recv_seq_resp(ema->mp, fp);
  2292. else if (f_ctl & FC_FC_SEQ_CTX)
  2293. fc_exch_recv_resp(ema->mp, fp);
  2294. else /* no EX_CTX and no SEQ_CTX */
  2295. fc_exch_recv_req(lport, ema->mp, fp);
  2296. break;
  2297. default:
  2298. FC_LPORT_DBG(lport, "dropping invalid frame (eof %x)",
  2299. fr_eof(fp));
  2300. fc_frame_free(fp);
  2301. }
  2302. }
  2303. EXPORT_SYMBOL(fc_exch_recv);
  2304. /**
  2305. * fc_exch_init() - Initialize the exchange layer for a local port
  2306. * @lport: The local port to initialize the exchange layer for
  2307. */
  2308. int fc_exch_init(struct fc_lport *lport)
  2309. {
  2310. if (!lport->tt.seq_start_next)
  2311. lport->tt.seq_start_next = fc_seq_start_next;
  2312. if (!lport->tt.seq_set_resp)
  2313. lport->tt.seq_set_resp = fc_seq_set_resp;
  2314. if (!lport->tt.exch_seq_send)
  2315. lport->tt.exch_seq_send = fc_exch_seq_send;
  2316. if (!lport->tt.seq_send)
  2317. lport->tt.seq_send = fc_seq_send;
  2318. if (!lport->tt.seq_els_rsp_send)
  2319. lport->tt.seq_els_rsp_send = fc_seq_els_rsp_send;
  2320. if (!lport->tt.exch_done)
  2321. lport->tt.exch_done = fc_exch_done;
  2322. if (!lport->tt.exch_mgr_reset)
  2323. lport->tt.exch_mgr_reset = fc_exch_mgr_reset;
  2324. if (!lport->tt.seq_exch_abort)
  2325. lport->tt.seq_exch_abort = fc_seq_exch_abort;
  2326. if (!lport->tt.seq_assign)
  2327. lport->tt.seq_assign = fc_seq_assign;
  2328. if (!lport->tt.seq_release)
  2329. lport->tt.seq_release = fc_seq_release;
  2330. return 0;
  2331. }
  2332. EXPORT_SYMBOL(fc_exch_init);
  2333. /**
  2334. * fc_setup_exch_mgr() - Setup an exchange manager
  2335. */
  2336. int fc_setup_exch_mgr(void)
  2337. {
  2338. fc_em_cachep = kmem_cache_create("libfc_em", sizeof(struct fc_exch),
  2339. 0, SLAB_HWCACHE_ALIGN, NULL);
  2340. if (!fc_em_cachep)
  2341. return -ENOMEM;
  2342. /*
  2343. * Initialize fc_cpu_mask and fc_cpu_order. The
  2344. * fc_cpu_mask is set for nr_cpu_ids rounded up
  2345. * to order of 2's * power and order is stored
  2346. * in fc_cpu_order as this is later required in
  2347. * mapping between an exch id and exch array index
  2348. * in per cpu exch pool.
  2349. *
  2350. * This round up is required to align fc_cpu_mask
  2351. * to exchange id's lower bits such that all incoming
  2352. * frames of an exchange gets delivered to the same
  2353. * cpu on which exchange originated by simple bitwise
  2354. * AND operation between fc_cpu_mask and exchange id.
  2355. */
  2356. fc_cpu_order = ilog2(roundup_pow_of_two(nr_cpu_ids));
  2357. fc_cpu_mask = (1 << fc_cpu_order) - 1;
  2358. fc_exch_workqueue = create_singlethread_workqueue("fc_exch_workqueue");
  2359. if (!fc_exch_workqueue)
  2360. goto err;
  2361. return 0;
  2362. err:
  2363. kmem_cache_destroy(fc_em_cachep);
  2364. return -ENOMEM;
  2365. }
  2366. /**
  2367. * fc_destroy_exch_mgr() - Destroy an exchange manager
  2368. */
  2369. void fc_destroy_exch_mgr(void)
  2370. {
  2371. destroy_workqueue(fc_exch_workqueue);
  2372. kmem_cache_destroy(fc_em_cachep);
  2373. }