elevator.c 18 KB

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  1. /*
  2. * linux/drivers/block/elevator.c
  3. *
  4. * Block device elevator/IO-scheduler.
  5. *
  6. * Copyright (C) 2000 Andrea Arcangeli <andrea@suse.de> SuSE
  7. *
  8. * 30042000 Jens Axboe <axboe@suse.de> :
  9. *
  10. * Split the elevator a bit so that it is possible to choose a different
  11. * one or even write a new "plug in". There are three pieces:
  12. * - elevator_fn, inserts a new request in the queue list
  13. * - elevator_merge_fn, decides whether a new buffer can be merged with
  14. * an existing request
  15. * - elevator_dequeue_fn, called when a request is taken off the active list
  16. *
  17. * 20082000 Dave Jones <davej@suse.de> :
  18. * Removed tests for max-bomb-segments, which was breaking elvtune
  19. * when run without -bN
  20. *
  21. * Jens:
  22. * - Rework again to work with bio instead of buffer_heads
  23. * - loose bi_dev comparisons, partition handling is right now
  24. * - completely modularize elevator setup and teardown
  25. *
  26. */
  27. #include <linux/kernel.h>
  28. #include <linux/fs.h>
  29. #include <linux/blkdev.h>
  30. #include <linux/elevator.h>
  31. #include <linux/bio.h>
  32. #include <linux/config.h>
  33. #include <linux/module.h>
  34. #include <linux/slab.h>
  35. #include <linux/init.h>
  36. #include <linux/compiler.h>
  37. #include <asm/uaccess.h>
  38. static DEFINE_SPINLOCK(elv_list_lock);
  39. static LIST_HEAD(elv_list);
  40. /*
  41. * can we safely merge with this request?
  42. */
  43. inline int elv_rq_merge_ok(struct request *rq, struct bio *bio)
  44. {
  45. if (!rq_mergeable(rq))
  46. return 0;
  47. /*
  48. * different data direction or already started, don't merge
  49. */
  50. if (bio_data_dir(bio) != rq_data_dir(rq))
  51. return 0;
  52. /*
  53. * same device and no special stuff set, merge is ok
  54. */
  55. if (rq->rq_disk == bio->bi_bdev->bd_disk &&
  56. !rq->waiting && !rq->special)
  57. return 1;
  58. return 0;
  59. }
  60. EXPORT_SYMBOL(elv_rq_merge_ok);
  61. inline int elv_try_merge(struct request *__rq, struct bio *bio)
  62. {
  63. int ret = ELEVATOR_NO_MERGE;
  64. /*
  65. * we can merge and sequence is ok, check if it's possible
  66. */
  67. if (elv_rq_merge_ok(__rq, bio)) {
  68. if (__rq->sector + __rq->nr_sectors == bio->bi_sector)
  69. ret = ELEVATOR_BACK_MERGE;
  70. else if (__rq->sector - bio_sectors(bio) == bio->bi_sector)
  71. ret = ELEVATOR_FRONT_MERGE;
  72. }
  73. return ret;
  74. }
  75. EXPORT_SYMBOL(elv_try_merge);
  76. static struct elevator_type *elevator_find(const char *name)
  77. {
  78. struct elevator_type *e = NULL;
  79. struct list_head *entry;
  80. list_for_each(entry, &elv_list) {
  81. struct elevator_type *__e;
  82. __e = list_entry(entry, struct elevator_type, list);
  83. if (!strcmp(__e->elevator_name, name)) {
  84. e = __e;
  85. break;
  86. }
  87. }
  88. return e;
  89. }
  90. static void elevator_put(struct elevator_type *e)
  91. {
  92. module_put(e->elevator_owner);
  93. }
  94. static struct elevator_type *elevator_get(const char *name)
  95. {
  96. struct elevator_type *e;
  97. spin_lock_irq(&elv_list_lock);
  98. e = elevator_find(name);
  99. if (e && !try_module_get(e->elevator_owner))
  100. e = NULL;
  101. spin_unlock_irq(&elv_list_lock);
  102. return e;
  103. }
  104. static int elevator_attach(request_queue_t *q, struct elevator_type *e,
  105. struct elevator_queue *eq)
  106. {
  107. int ret = 0;
  108. memset(eq, 0, sizeof(*eq));
  109. eq->ops = &e->ops;
  110. eq->elevator_type = e;
  111. INIT_LIST_HEAD(&q->queue_head);
  112. q->last_merge = NULL;
  113. q->elevator = eq;
  114. q->end_sector = 0;
  115. q->boundary_rq = NULL;
  116. q->max_back_kb = 0;
  117. if (eq->ops->elevator_init_fn)
  118. ret = eq->ops->elevator_init_fn(q, eq);
  119. return ret;
  120. }
  121. static char chosen_elevator[16];
  122. static void elevator_setup_default(void)
  123. {
  124. struct elevator_type *e;
  125. /*
  126. * check if default is set and exists
  127. */
  128. if (chosen_elevator[0] && (e = elevator_get(chosen_elevator))) {
  129. elevator_put(e);
  130. return;
  131. }
  132. #if defined(CONFIG_IOSCHED_AS)
  133. strcpy(chosen_elevator, "anticipatory");
  134. #elif defined(CONFIG_IOSCHED_DEADLINE)
  135. strcpy(chosen_elevator, "deadline");
  136. #elif defined(CONFIG_IOSCHED_CFQ)
  137. strcpy(chosen_elevator, "cfq");
  138. #elif defined(CONFIG_IOSCHED_NOOP)
  139. strcpy(chosen_elevator, "noop");
  140. #else
  141. #error "You must build at least 1 IO scheduler into the kernel"
  142. #endif
  143. }
  144. static int __init elevator_setup(char *str)
  145. {
  146. strncpy(chosen_elevator, str, sizeof(chosen_elevator) - 1);
  147. return 0;
  148. }
  149. __setup("elevator=", elevator_setup);
  150. int elevator_init(request_queue_t *q, char *name)
  151. {
  152. struct elevator_type *e = NULL;
  153. struct elevator_queue *eq;
  154. int ret = 0;
  155. elevator_setup_default();
  156. if (!name)
  157. name = chosen_elevator;
  158. e = elevator_get(name);
  159. if (!e)
  160. return -EINVAL;
  161. eq = kmalloc(sizeof(struct elevator_queue), GFP_KERNEL);
  162. if (!eq) {
  163. elevator_put(e->elevator_type);
  164. return -ENOMEM;
  165. }
  166. ret = elevator_attach(q, e, eq);
  167. if (ret) {
  168. kfree(eq);
  169. elevator_put(e->elevator_type);
  170. }
  171. return ret;
  172. }
  173. void elevator_exit(elevator_t *e)
  174. {
  175. if (e->ops->elevator_exit_fn)
  176. e->ops->elevator_exit_fn(e);
  177. elevator_put(e->elevator_type);
  178. e->elevator_type = NULL;
  179. kfree(e);
  180. }
  181. /*
  182. * Insert rq into dispatch queue of q. Queue lock must be held on
  183. * entry. If sort != 0, rq is sort-inserted; otherwise, rq will be
  184. * appended to the dispatch queue. To be used by specific elevators.
  185. */
  186. void elv_dispatch_sort(request_queue_t *q, struct request *rq)
  187. {
  188. sector_t boundary;
  189. unsigned max_back;
  190. struct list_head *entry;
  191. if (q->last_merge == rq)
  192. q->last_merge = NULL;
  193. boundary = q->end_sector;
  194. max_back = q->max_back_kb * 2;
  195. boundary = boundary > max_back ? boundary - max_back : 0;
  196. list_for_each_prev(entry, &q->queue_head) {
  197. struct request *pos = list_entry_rq(entry);
  198. if (pos->flags & (REQ_SOFTBARRIER|REQ_HARDBARRIER|REQ_STARTED))
  199. break;
  200. if (rq->sector >= boundary) {
  201. if (pos->sector < boundary)
  202. continue;
  203. } else {
  204. if (pos->sector >= boundary)
  205. break;
  206. }
  207. if (rq->sector >= pos->sector)
  208. break;
  209. }
  210. list_add(&rq->queuelist, entry);
  211. }
  212. int elv_merge(request_queue_t *q, struct request **req, struct bio *bio)
  213. {
  214. elevator_t *e = q->elevator;
  215. int ret;
  216. if (q->last_merge) {
  217. ret = elv_try_merge(q->last_merge, bio);
  218. if (ret != ELEVATOR_NO_MERGE) {
  219. *req = q->last_merge;
  220. return ret;
  221. }
  222. }
  223. if (e->ops->elevator_merge_fn)
  224. return e->ops->elevator_merge_fn(q, req, bio);
  225. return ELEVATOR_NO_MERGE;
  226. }
  227. void elv_merged_request(request_queue_t *q, struct request *rq)
  228. {
  229. elevator_t *e = q->elevator;
  230. if (e->ops->elevator_merged_fn)
  231. e->ops->elevator_merged_fn(q, rq);
  232. q->last_merge = rq;
  233. }
  234. void elv_merge_requests(request_queue_t *q, struct request *rq,
  235. struct request *next)
  236. {
  237. elevator_t *e = q->elevator;
  238. if (e->ops->elevator_merge_req_fn)
  239. e->ops->elevator_merge_req_fn(q, rq, next);
  240. q->last_merge = rq;
  241. }
  242. void elv_requeue_request(request_queue_t *q, struct request *rq)
  243. {
  244. elevator_t *e = q->elevator;
  245. /*
  246. * it already went through dequeue, we need to decrement the
  247. * in_flight count again
  248. */
  249. if (blk_account_rq(rq)) {
  250. q->in_flight--;
  251. if (blk_sorted_rq(rq) && e->ops->elevator_deactivate_req_fn)
  252. e->ops->elevator_deactivate_req_fn(q, rq);
  253. }
  254. rq->flags &= ~REQ_STARTED;
  255. /*
  256. * if this is the flush, requeue the original instead and drop the flush
  257. */
  258. if (rq->flags & REQ_BAR_FLUSH) {
  259. clear_bit(QUEUE_FLAG_FLUSH, &q->queue_flags);
  260. rq = rq->end_io_data;
  261. }
  262. __elv_add_request(q, rq, ELEVATOR_INSERT_FRONT, 0);
  263. }
  264. void __elv_add_request(request_queue_t *q, struct request *rq, int where,
  265. int plug)
  266. {
  267. if (rq->flags & (REQ_SOFTBARRIER | REQ_HARDBARRIER)) {
  268. /*
  269. * barriers implicitly indicate back insertion
  270. */
  271. if (where == ELEVATOR_INSERT_SORT)
  272. where = ELEVATOR_INSERT_BACK;
  273. /*
  274. * this request is scheduling boundary, update end_sector
  275. */
  276. if (blk_fs_request(rq)) {
  277. q->end_sector = rq_end_sector(rq);
  278. q->boundary_rq = rq;
  279. }
  280. }
  281. if (plug)
  282. blk_plug_device(q);
  283. rq->q = q;
  284. if (unlikely(test_bit(QUEUE_FLAG_DRAIN, &q->queue_flags))) {
  285. /*
  286. * if drain is set, store the request "locally". when the drain
  287. * is finished, the requests will be handed ordered to the io
  288. * scheduler
  289. */
  290. list_add_tail(&rq->queuelist, &q->drain_list);
  291. return;
  292. }
  293. switch (where) {
  294. case ELEVATOR_INSERT_FRONT:
  295. rq->flags |= REQ_SOFTBARRIER;
  296. list_add(&rq->queuelist, &q->queue_head);
  297. break;
  298. case ELEVATOR_INSERT_BACK:
  299. rq->flags |= REQ_SOFTBARRIER;
  300. while (q->elevator->ops->elevator_dispatch_fn(q, 1))
  301. ;
  302. list_add_tail(&rq->queuelist, &q->queue_head);
  303. /*
  304. * We kick the queue here for the following reasons.
  305. * - The elevator might have returned NULL previously
  306. * to delay requests and returned them now. As the
  307. * queue wasn't empty before this request, ll_rw_blk
  308. * won't run the queue on return, resulting in hang.
  309. * - Usually, back inserted requests won't be merged
  310. * with anything. There's no point in delaying queue
  311. * processing.
  312. */
  313. blk_remove_plug(q);
  314. q->request_fn(q);
  315. break;
  316. case ELEVATOR_INSERT_SORT:
  317. BUG_ON(!blk_fs_request(rq));
  318. rq->flags |= REQ_SORTED;
  319. q->elevator->ops->elevator_add_req_fn(q, rq);
  320. if (q->last_merge == NULL && rq_mergeable(rq))
  321. q->last_merge = rq;
  322. break;
  323. default:
  324. printk(KERN_ERR "%s: bad insertion point %d\n",
  325. __FUNCTION__, where);
  326. BUG();
  327. }
  328. if (blk_queue_plugged(q)) {
  329. int nrq = q->rq.count[READ] + q->rq.count[WRITE]
  330. - q->in_flight;
  331. if (nrq >= q->unplug_thresh)
  332. __generic_unplug_device(q);
  333. }
  334. }
  335. void elv_add_request(request_queue_t *q, struct request *rq, int where,
  336. int plug)
  337. {
  338. unsigned long flags;
  339. spin_lock_irqsave(q->queue_lock, flags);
  340. __elv_add_request(q, rq, where, plug);
  341. spin_unlock_irqrestore(q->queue_lock, flags);
  342. }
  343. static inline struct request *__elv_next_request(request_queue_t *q)
  344. {
  345. struct request *rq;
  346. if (unlikely(list_empty(&q->queue_head) &&
  347. !q->elevator->ops->elevator_dispatch_fn(q, 0)))
  348. return NULL;
  349. rq = list_entry_rq(q->queue_head.next);
  350. /*
  351. * if this is a barrier write and the device has to issue a
  352. * flush sequence to support it, check how far we are
  353. */
  354. if (blk_fs_request(rq) && blk_barrier_rq(rq)) {
  355. BUG_ON(q->ordered == QUEUE_ORDERED_NONE);
  356. if (q->ordered == QUEUE_ORDERED_FLUSH &&
  357. !blk_barrier_preflush(rq))
  358. rq = blk_start_pre_flush(q, rq);
  359. }
  360. return rq;
  361. }
  362. struct request *elv_next_request(request_queue_t *q)
  363. {
  364. struct request *rq;
  365. int ret;
  366. while ((rq = __elv_next_request(q)) != NULL) {
  367. if (!(rq->flags & REQ_STARTED)) {
  368. elevator_t *e = q->elevator;
  369. /*
  370. * This is the first time the device driver
  371. * sees this request (possibly after
  372. * requeueing). Notify IO scheduler.
  373. */
  374. if (blk_sorted_rq(rq) &&
  375. e->ops->elevator_activate_req_fn)
  376. e->ops->elevator_activate_req_fn(q, rq);
  377. /*
  378. * just mark as started even if we don't start
  379. * it, a request that has been delayed should
  380. * not be passed by new incoming requests
  381. */
  382. rq->flags |= REQ_STARTED;
  383. }
  384. if (!q->boundary_rq || q->boundary_rq == rq) {
  385. q->end_sector = rq_end_sector(rq);
  386. q->boundary_rq = NULL;
  387. }
  388. if ((rq->flags & REQ_DONTPREP) || !q->prep_rq_fn)
  389. break;
  390. ret = q->prep_rq_fn(q, rq);
  391. if (ret == BLKPREP_OK) {
  392. break;
  393. } else if (ret == BLKPREP_DEFER) {
  394. /*
  395. * the request may have been (partially) prepped.
  396. * we need to keep this request in the front to
  397. * avoid resource deadlock. REQ_STARTED will
  398. * prevent other fs requests from passing this one.
  399. */
  400. rq = NULL;
  401. break;
  402. } else if (ret == BLKPREP_KILL) {
  403. int nr_bytes = rq->hard_nr_sectors << 9;
  404. if (!nr_bytes)
  405. nr_bytes = rq->data_len;
  406. blkdev_dequeue_request(rq);
  407. rq->flags |= REQ_QUIET;
  408. end_that_request_chunk(rq, 0, nr_bytes);
  409. end_that_request_last(rq);
  410. } else {
  411. printk(KERN_ERR "%s: bad return=%d\n", __FUNCTION__,
  412. ret);
  413. break;
  414. }
  415. }
  416. return rq;
  417. }
  418. void elv_dequeue_request(request_queue_t *q, struct request *rq)
  419. {
  420. BUG_ON(list_empty(&rq->queuelist));
  421. list_del_init(&rq->queuelist);
  422. /*
  423. * the time frame between a request being removed from the lists
  424. * and to it is freed is accounted as io that is in progress at
  425. * the driver side.
  426. */
  427. if (blk_account_rq(rq))
  428. q->in_flight++;
  429. }
  430. int elv_queue_empty(request_queue_t *q)
  431. {
  432. elevator_t *e = q->elevator;
  433. if (!list_empty(&q->queue_head))
  434. return 0;
  435. if (e->ops->elevator_queue_empty_fn)
  436. return e->ops->elevator_queue_empty_fn(q);
  437. return 1;
  438. }
  439. struct request *elv_latter_request(request_queue_t *q, struct request *rq)
  440. {
  441. struct list_head *next;
  442. elevator_t *e = q->elevator;
  443. if (e->ops->elevator_latter_req_fn)
  444. return e->ops->elevator_latter_req_fn(q, rq);
  445. next = rq->queuelist.next;
  446. if (next != &q->queue_head && next != &rq->queuelist)
  447. return list_entry_rq(next);
  448. return NULL;
  449. }
  450. struct request *elv_former_request(request_queue_t *q, struct request *rq)
  451. {
  452. struct list_head *prev;
  453. elevator_t *e = q->elevator;
  454. if (e->ops->elevator_former_req_fn)
  455. return e->ops->elevator_former_req_fn(q, rq);
  456. prev = rq->queuelist.prev;
  457. if (prev != &q->queue_head && prev != &rq->queuelist)
  458. return list_entry_rq(prev);
  459. return NULL;
  460. }
  461. int elv_set_request(request_queue_t *q, struct request *rq, struct bio *bio,
  462. int gfp_mask)
  463. {
  464. elevator_t *e = q->elevator;
  465. if (e->ops->elevator_set_req_fn)
  466. return e->ops->elevator_set_req_fn(q, rq, bio, gfp_mask);
  467. rq->elevator_private = NULL;
  468. return 0;
  469. }
  470. void elv_put_request(request_queue_t *q, struct request *rq)
  471. {
  472. elevator_t *e = q->elevator;
  473. if (e->ops->elevator_put_req_fn)
  474. e->ops->elevator_put_req_fn(q, rq);
  475. }
  476. int elv_may_queue(request_queue_t *q, int rw, struct bio *bio)
  477. {
  478. elevator_t *e = q->elevator;
  479. if (e->ops->elevator_may_queue_fn)
  480. return e->ops->elevator_may_queue_fn(q, rw, bio);
  481. return ELV_MQUEUE_MAY;
  482. }
  483. void elv_completed_request(request_queue_t *q, struct request *rq)
  484. {
  485. elevator_t *e = q->elevator;
  486. /*
  487. * request is released from the driver, io must be done
  488. */
  489. if (blk_account_rq(rq)) {
  490. q->in_flight--;
  491. if (blk_sorted_rq(rq) && e->ops->elevator_completed_req_fn)
  492. e->ops->elevator_completed_req_fn(q, rq);
  493. }
  494. }
  495. int elv_register_queue(struct request_queue *q)
  496. {
  497. elevator_t *e = q->elevator;
  498. e->kobj.parent = kobject_get(&q->kobj);
  499. if (!e->kobj.parent)
  500. return -EBUSY;
  501. snprintf(e->kobj.name, KOBJ_NAME_LEN, "%s", "iosched");
  502. e->kobj.ktype = e->elevator_type->elevator_ktype;
  503. return kobject_register(&e->kobj);
  504. }
  505. void elv_unregister_queue(struct request_queue *q)
  506. {
  507. if (q) {
  508. elevator_t *e = q->elevator;
  509. kobject_unregister(&e->kobj);
  510. kobject_put(&q->kobj);
  511. }
  512. }
  513. int elv_register(struct elevator_type *e)
  514. {
  515. spin_lock_irq(&elv_list_lock);
  516. if (elevator_find(e->elevator_name))
  517. BUG();
  518. list_add_tail(&e->list, &elv_list);
  519. spin_unlock_irq(&elv_list_lock);
  520. printk(KERN_INFO "io scheduler %s registered", e->elevator_name);
  521. if (!strcmp(e->elevator_name, chosen_elevator))
  522. printk(" (default)");
  523. printk("\n");
  524. return 0;
  525. }
  526. EXPORT_SYMBOL_GPL(elv_register);
  527. void elv_unregister(struct elevator_type *e)
  528. {
  529. spin_lock_irq(&elv_list_lock);
  530. list_del_init(&e->list);
  531. spin_unlock_irq(&elv_list_lock);
  532. }
  533. EXPORT_SYMBOL_GPL(elv_unregister);
  534. /*
  535. * switch to new_e io scheduler. be careful not to introduce deadlocks -
  536. * we don't free the old io scheduler, before we have allocated what we
  537. * need for the new one. this way we have a chance of going back to the old
  538. * one, if the new one fails init for some reason. we also do an intermediate
  539. * switch to noop to ensure safety with stack-allocated requests, since they
  540. * don't originate from the block layer allocator. noop is safe here, because
  541. * it never needs to touch the elevator itself for completion events. DRAIN
  542. * flags will make sure we don't touch it for additions either.
  543. */
  544. static void elevator_switch(request_queue_t *q, struct elevator_type *new_e)
  545. {
  546. elevator_t *e = kmalloc(sizeof(elevator_t), GFP_KERNEL);
  547. struct elevator_type *noop_elevator = NULL;
  548. elevator_t *old_elevator;
  549. if (!e)
  550. goto error;
  551. /*
  552. * first step, drain requests from the block freelist
  553. */
  554. blk_wait_queue_drained(q, 0);
  555. /*
  556. * unregister old elevator data
  557. */
  558. elv_unregister_queue(q);
  559. old_elevator = q->elevator;
  560. /*
  561. * next step, switch to noop since it uses no private rq structures
  562. * and doesn't allocate any memory for anything. then wait for any
  563. * non-fs requests in-flight
  564. */
  565. noop_elevator = elevator_get("noop");
  566. spin_lock_irq(q->queue_lock);
  567. elevator_attach(q, noop_elevator, e);
  568. spin_unlock_irq(q->queue_lock);
  569. blk_wait_queue_drained(q, 1);
  570. /*
  571. * attach and start new elevator
  572. */
  573. if (elevator_attach(q, new_e, e))
  574. goto fail;
  575. if (elv_register_queue(q))
  576. goto fail_register;
  577. /*
  578. * finally exit old elevator and start queue again
  579. */
  580. elevator_exit(old_elevator);
  581. blk_finish_queue_drain(q);
  582. elevator_put(noop_elevator);
  583. return;
  584. fail_register:
  585. /*
  586. * switch failed, exit the new io scheduler and reattach the old
  587. * one again (along with re-adding the sysfs dir)
  588. */
  589. elevator_exit(e);
  590. fail:
  591. q->elevator = old_elevator;
  592. elv_register_queue(q);
  593. blk_finish_queue_drain(q);
  594. error:
  595. if (noop_elevator)
  596. elevator_put(noop_elevator);
  597. elevator_put(new_e);
  598. printk(KERN_ERR "elevator: switch to %s failed\n",new_e->elevator_name);
  599. }
  600. ssize_t elv_iosched_store(request_queue_t *q, const char *name, size_t count)
  601. {
  602. char elevator_name[ELV_NAME_MAX];
  603. struct elevator_type *e;
  604. memset(elevator_name, 0, sizeof(elevator_name));
  605. strncpy(elevator_name, name, sizeof(elevator_name));
  606. if (elevator_name[strlen(elevator_name) - 1] == '\n')
  607. elevator_name[strlen(elevator_name) - 1] = '\0';
  608. e = elevator_get(elevator_name);
  609. if (!e) {
  610. printk(KERN_ERR "elevator: type %s not found\n", elevator_name);
  611. return -EINVAL;
  612. }
  613. if (!strcmp(elevator_name, q->elevator->elevator_type->elevator_name))
  614. return count;
  615. elevator_switch(q, e);
  616. return count;
  617. }
  618. ssize_t elv_iosched_show(request_queue_t *q, char *name)
  619. {
  620. elevator_t *e = q->elevator;
  621. struct elevator_type *elv = e->elevator_type;
  622. struct list_head *entry;
  623. int len = 0;
  624. spin_lock_irq(q->queue_lock);
  625. list_for_each(entry, &elv_list) {
  626. struct elevator_type *__e;
  627. __e = list_entry(entry, struct elevator_type, list);
  628. if (!strcmp(elv->elevator_name, __e->elevator_name))
  629. len += sprintf(name+len, "[%s] ", elv->elevator_name);
  630. else
  631. len += sprintf(name+len, "%s ", __e->elevator_name);
  632. }
  633. spin_unlock_irq(q->queue_lock);
  634. len += sprintf(len+name, "\n");
  635. return len;
  636. }
  637. EXPORT_SYMBOL(elv_dispatch_sort);
  638. EXPORT_SYMBOL(elv_add_request);
  639. EXPORT_SYMBOL(__elv_add_request);
  640. EXPORT_SYMBOL(elv_requeue_request);
  641. EXPORT_SYMBOL(elv_next_request);
  642. EXPORT_SYMBOL(elv_dequeue_request);
  643. EXPORT_SYMBOL(elv_queue_empty);
  644. EXPORT_SYMBOL(elv_completed_request);
  645. EXPORT_SYMBOL(elevator_exit);
  646. EXPORT_SYMBOL(elevator_init);