ll_rw_blk.c 99 KB

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  1. /*
  2. * Copyright (C) 1991, 1992 Linus Torvalds
  3. * Copyright (C) 1994, Karl Keyte: Added support for disk statistics
  4. * Elevator latency, (C) 2000 Andrea Arcangeli <andrea@suse.de> SuSE
  5. * Queue request tables / lock, selectable elevator, Jens Axboe <axboe@suse.de>
  6. * kernel-doc documentation started by NeilBrown <neilb@cse.unsw.edu.au> - July2000
  7. * bio rewrite, highmem i/o, etc, Jens Axboe <axboe@suse.de> - may 2001
  8. */
  9. /*
  10. * This handles all read/write requests to block devices
  11. */
  12. #include <linux/kernel.h>
  13. #include <linux/module.h>
  14. #include <linux/backing-dev.h>
  15. #include <linux/bio.h>
  16. #include <linux/blkdev.h>
  17. #include <linux/highmem.h>
  18. #include <linux/mm.h>
  19. #include <linux/kernel_stat.h>
  20. #include <linux/string.h>
  21. #include <linux/init.h>
  22. #include <linux/bootmem.h> /* for max_pfn/max_low_pfn */
  23. #include <linux/completion.h>
  24. #include <linux/slab.h>
  25. #include <linux/swap.h>
  26. #include <linux/writeback.h>
  27. #include <linux/interrupt.h>
  28. #include <linux/cpu.h>
  29. #include <linux/blktrace_api.h>
  30. /*
  31. * for max sense size
  32. */
  33. #include <scsi/scsi_cmnd.h>
  34. static void blk_unplug_work(void *data);
  35. static void blk_unplug_timeout(unsigned long data);
  36. static void drive_stat_acct(struct request *rq, int nr_sectors, int new_io);
  37. static void init_request_from_bio(struct request *req, struct bio *bio);
  38. static int __make_request(request_queue_t *q, struct bio *bio);
  39. /*
  40. * For the allocated request tables
  41. */
  42. static kmem_cache_t *request_cachep;
  43. /*
  44. * For queue allocation
  45. */
  46. static kmem_cache_t *requestq_cachep;
  47. /*
  48. * For io context allocations
  49. */
  50. static kmem_cache_t *iocontext_cachep;
  51. static wait_queue_head_t congestion_wqh[2] = {
  52. __WAIT_QUEUE_HEAD_INITIALIZER(congestion_wqh[0]),
  53. __WAIT_QUEUE_HEAD_INITIALIZER(congestion_wqh[1])
  54. };
  55. /*
  56. * Controlling structure to kblockd
  57. */
  58. static struct workqueue_struct *kblockd_workqueue;
  59. unsigned long blk_max_low_pfn, blk_max_pfn;
  60. EXPORT_SYMBOL(blk_max_low_pfn);
  61. EXPORT_SYMBOL(blk_max_pfn);
  62. static DEFINE_PER_CPU(struct list_head, blk_cpu_done);
  63. /* Amount of time in which a process may batch requests */
  64. #define BLK_BATCH_TIME (HZ/50UL)
  65. /* Number of requests a "batching" process may submit */
  66. #define BLK_BATCH_REQ 32
  67. /*
  68. * Return the threshold (number of used requests) at which the queue is
  69. * considered to be congested. It include a little hysteresis to keep the
  70. * context switch rate down.
  71. */
  72. static inline int queue_congestion_on_threshold(struct request_queue *q)
  73. {
  74. return q->nr_congestion_on;
  75. }
  76. /*
  77. * The threshold at which a queue is considered to be uncongested
  78. */
  79. static inline int queue_congestion_off_threshold(struct request_queue *q)
  80. {
  81. return q->nr_congestion_off;
  82. }
  83. static void blk_queue_congestion_threshold(struct request_queue *q)
  84. {
  85. int nr;
  86. nr = q->nr_requests - (q->nr_requests / 8) + 1;
  87. if (nr > q->nr_requests)
  88. nr = q->nr_requests;
  89. q->nr_congestion_on = nr;
  90. nr = q->nr_requests - (q->nr_requests / 8) - (q->nr_requests / 16) - 1;
  91. if (nr < 1)
  92. nr = 1;
  93. q->nr_congestion_off = nr;
  94. }
  95. /*
  96. * A queue has just exitted congestion. Note this in the global counter of
  97. * congested queues, and wake up anyone who was waiting for requests to be
  98. * put back.
  99. */
  100. static void clear_queue_congested(request_queue_t *q, int rw)
  101. {
  102. enum bdi_state bit;
  103. wait_queue_head_t *wqh = &congestion_wqh[rw];
  104. bit = (rw == WRITE) ? BDI_write_congested : BDI_read_congested;
  105. clear_bit(bit, &q->backing_dev_info.state);
  106. smp_mb__after_clear_bit();
  107. if (waitqueue_active(wqh))
  108. wake_up(wqh);
  109. }
  110. /*
  111. * A queue has just entered congestion. Flag that in the queue's VM-visible
  112. * state flags and increment the global gounter of congested queues.
  113. */
  114. static void set_queue_congested(request_queue_t *q, int rw)
  115. {
  116. enum bdi_state bit;
  117. bit = (rw == WRITE) ? BDI_write_congested : BDI_read_congested;
  118. set_bit(bit, &q->backing_dev_info.state);
  119. }
  120. /**
  121. * blk_get_backing_dev_info - get the address of a queue's backing_dev_info
  122. * @bdev: device
  123. *
  124. * Locates the passed device's request queue and returns the address of its
  125. * backing_dev_info
  126. *
  127. * Will return NULL if the request queue cannot be located.
  128. */
  129. struct backing_dev_info *blk_get_backing_dev_info(struct block_device *bdev)
  130. {
  131. struct backing_dev_info *ret = NULL;
  132. request_queue_t *q = bdev_get_queue(bdev);
  133. if (q)
  134. ret = &q->backing_dev_info;
  135. return ret;
  136. }
  137. EXPORT_SYMBOL(blk_get_backing_dev_info);
  138. void blk_queue_activity_fn(request_queue_t *q, activity_fn *fn, void *data)
  139. {
  140. q->activity_fn = fn;
  141. q->activity_data = data;
  142. }
  143. EXPORT_SYMBOL(blk_queue_activity_fn);
  144. /**
  145. * blk_queue_prep_rq - set a prepare_request function for queue
  146. * @q: queue
  147. * @pfn: prepare_request function
  148. *
  149. * It's possible for a queue to register a prepare_request callback which
  150. * is invoked before the request is handed to the request_fn. The goal of
  151. * the function is to prepare a request for I/O, it can be used to build a
  152. * cdb from the request data for instance.
  153. *
  154. */
  155. void blk_queue_prep_rq(request_queue_t *q, prep_rq_fn *pfn)
  156. {
  157. q->prep_rq_fn = pfn;
  158. }
  159. EXPORT_SYMBOL(blk_queue_prep_rq);
  160. /**
  161. * blk_queue_merge_bvec - set a merge_bvec function for queue
  162. * @q: queue
  163. * @mbfn: merge_bvec_fn
  164. *
  165. * Usually queues have static limitations on the max sectors or segments that
  166. * we can put in a request. Stacking drivers may have some settings that
  167. * are dynamic, and thus we have to query the queue whether it is ok to
  168. * add a new bio_vec to a bio at a given offset or not. If the block device
  169. * has such limitations, it needs to register a merge_bvec_fn to control
  170. * the size of bio's sent to it. Note that a block device *must* allow a
  171. * single page to be added to an empty bio. The block device driver may want
  172. * to use the bio_split() function to deal with these bio's. By default
  173. * no merge_bvec_fn is defined for a queue, and only the fixed limits are
  174. * honored.
  175. */
  176. void blk_queue_merge_bvec(request_queue_t *q, merge_bvec_fn *mbfn)
  177. {
  178. q->merge_bvec_fn = mbfn;
  179. }
  180. EXPORT_SYMBOL(blk_queue_merge_bvec);
  181. void blk_queue_softirq_done(request_queue_t *q, softirq_done_fn *fn)
  182. {
  183. q->softirq_done_fn = fn;
  184. }
  185. EXPORT_SYMBOL(blk_queue_softirq_done);
  186. /**
  187. * blk_queue_make_request - define an alternate make_request function for a device
  188. * @q: the request queue for the device to be affected
  189. * @mfn: the alternate make_request function
  190. *
  191. * Description:
  192. * The normal way for &struct bios to be passed to a device
  193. * driver is for them to be collected into requests on a request
  194. * queue, and then to allow the device driver to select requests
  195. * off that queue when it is ready. This works well for many block
  196. * devices. However some block devices (typically virtual devices
  197. * such as md or lvm) do not benefit from the processing on the
  198. * request queue, and are served best by having the requests passed
  199. * directly to them. This can be achieved by providing a function
  200. * to blk_queue_make_request().
  201. *
  202. * Caveat:
  203. * The driver that does this *must* be able to deal appropriately
  204. * with buffers in "highmemory". This can be accomplished by either calling
  205. * __bio_kmap_atomic() to get a temporary kernel mapping, or by calling
  206. * blk_queue_bounce() to create a buffer in normal memory.
  207. **/
  208. void blk_queue_make_request(request_queue_t * q, make_request_fn * mfn)
  209. {
  210. /*
  211. * set defaults
  212. */
  213. q->nr_requests = BLKDEV_MAX_RQ;
  214. blk_queue_max_phys_segments(q, MAX_PHYS_SEGMENTS);
  215. blk_queue_max_hw_segments(q, MAX_HW_SEGMENTS);
  216. q->make_request_fn = mfn;
  217. q->backing_dev_info.ra_pages = (VM_MAX_READAHEAD * 1024) / PAGE_CACHE_SIZE;
  218. q->backing_dev_info.state = 0;
  219. q->backing_dev_info.capabilities = BDI_CAP_MAP_COPY;
  220. blk_queue_max_sectors(q, SAFE_MAX_SECTORS);
  221. blk_queue_hardsect_size(q, 512);
  222. blk_queue_dma_alignment(q, 511);
  223. blk_queue_congestion_threshold(q);
  224. q->nr_batching = BLK_BATCH_REQ;
  225. q->unplug_thresh = 4; /* hmm */
  226. q->unplug_delay = (3 * HZ) / 1000; /* 3 milliseconds */
  227. if (q->unplug_delay == 0)
  228. q->unplug_delay = 1;
  229. INIT_WORK(&q->unplug_work, blk_unplug_work, q);
  230. q->unplug_timer.function = blk_unplug_timeout;
  231. q->unplug_timer.data = (unsigned long)q;
  232. /*
  233. * by default assume old behaviour and bounce for any highmem page
  234. */
  235. blk_queue_bounce_limit(q, BLK_BOUNCE_HIGH);
  236. blk_queue_activity_fn(q, NULL, NULL);
  237. }
  238. EXPORT_SYMBOL(blk_queue_make_request);
  239. static inline void rq_init(request_queue_t *q, struct request *rq)
  240. {
  241. INIT_LIST_HEAD(&rq->queuelist);
  242. INIT_LIST_HEAD(&rq->donelist);
  243. rq->errors = 0;
  244. rq->rq_status = RQ_ACTIVE;
  245. rq->bio = rq->biotail = NULL;
  246. rq->ioprio = 0;
  247. rq->buffer = NULL;
  248. rq->ref_count = 1;
  249. rq->q = q;
  250. rq->waiting = NULL;
  251. rq->special = NULL;
  252. rq->data_len = 0;
  253. rq->data = NULL;
  254. rq->nr_phys_segments = 0;
  255. rq->sense = NULL;
  256. rq->end_io = NULL;
  257. rq->end_io_data = NULL;
  258. rq->completion_data = NULL;
  259. }
  260. /**
  261. * blk_queue_ordered - does this queue support ordered writes
  262. * @q: the request queue
  263. * @ordered: one of QUEUE_ORDERED_*
  264. * @prepare_flush_fn: rq setup helper for cache flush ordered writes
  265. *
  266. * Description:
  267. * For journalled file systems, doing ordered writes on a commit
  268. * block instead of explicitly doing wait_on_buffer (which is bad
  269. * for performance) can be a big win. Block drivers supporting this
  270. * feature should call this function and indicate so.
  271. *
  272. **/
  273. int blk_queue_ordered(request_queue_t *q, unsigned ordered,
  274. prepare_flush_fn *prepare_flush_fn)
  275. {
  276. if (ordered & (QUEUE_ORDERED_PREFLUSH | QUEUE_ORDERED_POSTFLUSH) &&
  277. prepare_flush_fn == NULL) {
  278. printk(KERN_ERR "blk_queue_ordered: prepare_flush_fn required\n");
  279. return -EINVAL;
  280. }
  281. if (ordered != QUEUE_ORDERED_NONE &&
  282. ordered != QUEUE_ORDERED_DRAIN &&
  283. ordered != QUEUE_ORDERED_DRAIN_FLUSH &&
  284. ordered != QUEUE_ORDERED_DRAIN_FUA &&
  285. ordered != QUEUE_ORDERED_TAG &&
  286. ordered != QUEUE_ORDERED_TAG_FLUSH &&
  287. ordered != QUEUE_ORDERED_TAG_FUA) {
  288. printk(KERN_ERR "blk_queue_ordered: bad value %d\n", ordered);
  289. return -EINVAL;
  290. }
  291. q->ordered = ordered;
  292. q->next_ordered = ordered;
  293. q->prepare_flush_fn = prepare_flush_fn;
  294. return 0;
  295. }
  296. EXPORT_SYMBOL(blk_queue_ordered);
  297. /**
  298. * blk_queue_issue_flush_fn - set function for issuing a flush
  299. * @q: the request queue
  300. * @iff: the function to be called issuing the flush
  301. *
  302. * Description:
  303. * If a driver supports issuing a flush command, the support is notified
  304. * to the block layer by defining it through this call.
  305. *
  306. **/
  307. void blk_queue_issue_flush_fn(request_queue_t *q, issue_flush_fn *iff)
  308. {
  309. q->issue_flush_fn = iff;
  310. }
  311. EXPORT_SYMBOL(blk_queue_issue_flush_fn);
  312. /*
  313. * Cache flushing for ordered writes handling
  314. */
  315. inline unsigned blk_ordered_cur_seq(request_queue_t *q)
  316. {
  317. if (!q->ordseq)
  318. return 0;
  319. return 1 << ffz(q->ordseq);
  320. }
  321. unsigned blk_ordered_req_seq(struct request *rq)
  322. {
  323. request_queue_t *q = rq->q;
  324. BUG_ON(q->ordseq == 0);
  325. if (rq == &q->pre_flush_rq)
  326. return QUEUE_ORDSEQ_PREFLUSH;
  327. if (rq == &q->bar_rq)
  328. return QUEUE_ORDSEQ_BAR;
  329. if (rq == &q->post_flush_rq)
  330. return QUEUE_ORDSEQ_POSTFLUSH;
  331. if ((rq->flags & REQ_ORDERED_COLOR) ==
  332. (q->orig_bar_rq->flags & REQ_ORDERED_COLOR))
  333. return QUEUE_ORDSEQ_DRAIN;
  334. else
  335. return QUEUE_ORDSEQ_DONE;
  336. }
  337. void blk_ordered_complete_seq(request_queue_t *q, unsigned seq, int error)
  338. {
  339. struct request *rq;
  340. int uptodate;
  341. if (error && !q->orderr)
  342. q->orderr = error;
  343. BUG_ON(q->ordseq & seq);
  344. q->ordseq |= seq;
  345. if (blk_ordered_cur_seq(q) != QUEUE_ORDSEQ_DONE)
  346. return;
  347. /*
  348. * Okay, sequence complete.
  349. */
  350. rq = q->orig_bar_rq;
  351. uptodate = q->orderr ? q->orderr : 1;
  352. q->ordseq = 0;
  353. end_that_request_first(rq, uptodate, rq->hard_nr_sectors);
  354. end_that_request_last(rq, uptodate);
  355. }
  356. static void pre_flush_end_io(struct request *rq, int error)
  357. {
  358. elv_completed_request(rq->q, rq);
  359. blk_ordered_complete_seq(rq->q, QUEUE_ORDSEQ_PREFLUSH, error);
  360. }
  361. static void bar_end_io(struct request *rq, int error)
  362. {
  363. elv_completed_request(rq->q, rq);
  364. blk_ordered_complete_seq(rq->q, QUEUE_ORDSEQ_BAR, error);
  365. }
  366. static void post_flush_end_io(struct request *rq, int error)
  367. {
  368. elv_completed_request(rq->q, rq);
  369. blk_ordered_complete_seq(rq->q, QUEUE_ORDSEQ_POSTFLUSH, error);
  370. }
  371. static void queue_flush(request_queue_t *q, unsigned which)
  372. {
  373. struct request *rq;
  374. rq_end_io_fn *end_io;
  375. if (which == QUEUE_ORDERED_PREFLUSH) {
  376. rq = &q->pre_flush_rq;
  377. end_io = pre_flush_end_io;
  378. } else {
  379. rq = &q->post_flush_rq;
  380. end_io = post_flush_end_io;
  381. }
  382. rq_init(q, rq);
  383. rq->flags = REQ_HARDBARRIER;
  384. rq->elevator_private = NULL;
  385. rq->rq_disk = q->bar_rq.rq_disk;
  386. rq->rl = NULL;
  387. rq->end_io = end_io;
  388. q->prepare_flush_fn(q, rq);
  389. elv_insert(q, rq, ELEVATOR_INSERT_FRONT);
  390. }
  391. static inline struct request *start_ordered(request_queue_t *q,
  392. struct request *rq)
  393. {
  394. q->bi_size = 0;
  395. q->orderr = 0;
  396. q->ordered = q->next_ordered;
  397. q->ordseq |= QUEUE_ORDSEQ_STARTED;
  398. /*
  399. * Prep proxy barrier request.
  400. */
  401. blkdev_dequeue_request(rq);
  402. q->orig_bar_rq = rq;
  403. rq = &q->bar_rq;
  404. rq_init(q, rq);
  405. rq->flags = bio_data_dir(q->orig_bar_rq->bio);
  406. rq->flags |= q->ordered & QUEUE_ORDERED_FUA ? REQ_FUA : 0;
  407. rq->elevator_private = NULL;
  408. rq->rl = NULL;
  409. init_request_from_bio(rq, q->orig_bar_rq->bio);
  410. rq->end_io = bar_end_io;
  411. /*
  412. * Queue ordered sequence. As we stack them at the head, we
  413. * need to queue in reverse order. Note that we rely on that
  414. * no fs request uses ELEVATOR_INSERT_FRONT and thus no fs
  415. * request gets inbetween ordered sequence.
  416. */
  417. if (q->ordered & QUEUE_ORDERED_POSTFLUSH)
  418. queue_flush(q, QUEUE_ORDERED_POSTFLUSH);
  419. else
  420. q->ordseq |= QUEUE_ORDSEQ_POSTFLUSH;
  421. elv_insert(q, rq, ELEVATOR_INSERT_FRONT);
  422. if (q->ordered & QUEUE_ORDERED_PREFLUSH) {
  423. queue_flush(q, QUEUE_ORDERED_PREFLUSH);
  424. rq = &q->pre_flush_rq;
  425. } else
  426. q->ordseq |= QUEUE_ORDSEQ_PREFLUSH;
  427. if ((q->ordered & QUEUE_ORDERED_TAG) || q->in_flight == 0)
  428. q->ordseq |= QUEUE_ORDSEQ_DRAIN;
  429. else
  430. rq = NULL;
  431. return rq;
  432. }
  433. int blk_do_ordered(request_queue_t *q, struct request **rqp)
  434. {
  435. struct request *rq = *rqp;
  436. int is_barrier = blk_fs_request(rq) && blk_barrier_rq(rq);
  437. if (!q->ordseq) {
  438. if (!is_barrier)
  439. return 1;
  440. if (q->next_ordered != QUEUE_ORDERED_NONE) {
  441. *rqp = start_ordered(q, rq);
  442. return 1;
  443. } else {
  444. /*
  445. * This can happen when the queue switches to
  446. * ORDERED_NONE while this request is on it.
  447. */
  448. blkdev_dequeue_request(rq);
  449. end_that_request_first(rq, -EOPNOTSUPP,
  450. rq->hard_nr_sectors);
  451. end_that_request_last(rq, -EOPNOTSUPP);
  452. *rqp = NULL;
  453. return 0;
  454. }
  455. }
  456. /*
  457. * Ordered sequence in progress
  458. */
  459. /* Special requests are not subject to ordering rules. */
  460. if (!blk_fs_request(rq) &&
  461. rq != &q->pre_flush_rq && rq != &q->post_flush_rq)
  462. return 1;
  463. if (q->ordered & QUEUE_ORDERED_TAG) {
  464. /* Ordered by tag. Blocking the next barrier is enough. */
  465. if (is_barrier && rq != &q->bar_rq)
  466. *rqp = NULL;
  467. } else {
  468. /* Ordered by draining. Wait for turn. */
  469. WARN_ON(blk_ordered_req_seq(rq) < blk_ordered_cur_seq(q));
  470. if (blk_ordered_req_seq(rq) > blk_ordered_cur_seq(q))
  471. *rqp = NULL;
  472. }
  473. return 1;
  474. }
  475. static int flush_dry_bio_endio(struct bio *bio, unsigned int bytes, int error)
  476. {
  477. request_queue_t *q = bio->bi_private;
  478. struct bio_vec *bvec;
  479. int i;
  480. /*
  481. * This is dry run, restore bio_sector and size. We'll finish
  482. * this request again with the original bi_end_io after an
  483. * error occurs or post flush is complete.
  484. */
  485. q->bi_size += bytes;
  486. if (bio->bi_size)
  487. return 1;
  488. /* Rewind bvec's */
  489. bio->bi_idx = 0;
  490. bio_for_each_segment(bvec, bio, i) {
  491. bvec->bv_len += bvec->bv_offset;
  492. bvec->bv_offset = 0;
  493. }
  494. /* Reset bio */
  495. set_bit(BIO_UPTODATE, &bio->bi_flags);
  496. bio->bi_size = q->bi_size;
  497. bio->bi_sector -= (q->bi_size >> 9);
  498. q->bi_size = 0;
  499. return 0;
  500. }
  501. static inline int ordered_bio_endio(struct request *rq, struct bio *bio,
  502. unsigned int nbytes, int error)
  503. {
  504. request_queue_t *q = rq->q;
  505. bio_end_io_t *endio;
  506. void *private;
  507. if (&q->bar_rq != rq)
  508. return 0;
  509. /*
  510. * Okay, this is the barrier request in progress, dry finish it.
  511. */
  512. if (error && !q->orderr)
  513. q->orderr = error;
  514. endio = bio->bi_end_io;
  515. private = bio->bi_private;
  516. bio->bi_end_io = flush_dry_bio_endio;
  517. bio->bi_private = q;
  518. bio_endio(bio, nbytes, error);
  519. bio->bi_end_io = endio;
  520. bio->bi_private = private;
  521. return 1;
  522. }
  523. /**
  524. * blk_queue_bounce_limit - set bounce buffer limit for queue
  525. * @q: the request queue for the device
  526. * @dma_addr: bus address limit
  527. *
  528. * Description:
  529. * Different hardware can have different requirements as to what pages
  530. * it can do I/O directly to. A low level driver can call
  531. * blk_queue_bounce_limit to have lower memory pages allocated as bounce
  532. * buffers for doing I/O to pages residing above @page.
  533. **/
  534. void blk_queue_bounce_limit(request_queue_t *q, u64 dma_addr)
  535. {
  536. unsigned long bounce_pfn = dma_addr >> PAGE_SHIFT;
  537. int dma = 0;
  538. q->bounce_gfp = GFP_NOIO;
  539. #if BITS_PER_LONG == 64
  540. /* Assume anything <= 4GB can be handled by IOMMU.
  541. Actually some IOMMUs can handle everything, but I don't
  542. know of a way to test this here. */
  543. if (bounce_pfn < (min_t(u64,0xffffffff,BLK_BOUNCE_HIGH) >> PAGE_SHIFT))
  544. dma = 1;
  545. q->bounce_pfn = max_low_pfn;
  546. #else
  547. if (bounce_pfn < blk_max_low_pfn)
  548. dma = 1;
  549. q->bounce_pfn = bounce_pfn;
  550. #endif
  551. if (dma) {
  552. init_emergency_isa_pool();
  553. q->bounce_gfp = GFP_NOIO | GFP_DMA;
  554. q->bounce_pfn = bounce_pfn;
  555. }
  556. }
  557. EXPORT_SYMBOL(blk_queue_bounce_limit);
  558. /**
  559. * blk_queue_max_sectors - set max sectors for a request for this queue
  560. * @q: the request queue for the device
  561. * @max_sectors: max sectors in the usual 512b unit
  562. *
  563. * Description:
  564. * Enables a low level driver to set an upper limit on the size of
  565. * received requests.
  566. **/
  567. void blk_queue_max_sectors(request_queue_t *q, unsigned int max_sectors)
  568. {
  569. if ((max_sectors << 9) < PAGE_CACHE_SIZE) {
  570. max_sectors = 1 << (PAGE_CACHE_SHIFT - 9);
  571. printk("%s: set to minimum %d\n", __FUNCTION__, max_sectors);
  572. }
  573. if (BLK_DEF_MAX_SECTORS > max_sectors)
  574. q->max_hw_sectors = q->max_sectors = max_sectors;
  575. else {
  576. q->max_sectors = BLK_DEF_MAX_SECTORS;
  577. q->max_hw_sectors = max_sectors;
  578. }
  579. }
  580. EXPORT_SYMBOL(blk_queue_max_sectors);
  581. /**
  582. * blk_queue_max_phys_segments - set max phys segments for a request for this queue
  583. * @q: the request queue for the device
  584. * @max_segments: max number of segments
  585. *
  586. * Description:
  587. * Enables a low level driver to set an upper limit on the number of
  588. * physical data segments in a request. This would be the largest sized
  589. * scatter list the driver could handle.
  590. **/
  591. void blk_queue_max_phys_segments(request_queue_t *q, unsigned short max_segments)
  592. {
  593. if (!max_segments) {
  594. max_segments = 1;
  595. printk("%s: set to minimum %d\n", __FUNCTION__, max_segments);
  596. }
  597. q->max_phys_segments = max_segments;
  598. }
  599. EXPORT_SYMBOL(blk_queue_max_phys_segments);
  600. /**
  601. * blk_queue_max_hw_segments - set max hw segments for a request for this queue
  602. * @q: the request queue for the device
  603. * @max_segments: max number of segments
  604. *
  605. * Description:
  606. * Enables a low level driver to set an upper limit on the number of
  607. * hw data segments in a request. This would be the largest number of
  608. * address/length pairs the host adapter can actually give as once
  609. * to the device.
  610. **/
  611. void blk_queue_max_hw_segments(request_queue_t *q, unsigned short max_segments)
  612. {
  613. if (!max_segments) {
  614. max_segments = 1;
  615. printk("%s: set to minimum %d\n", __FUNCTION__, max_segments);
  616. }
  617. q->max_hw_segments = max_segments;
  618. }
  619. EXPORT_SYMBOL(blk_queue_max_hw_segments);
  620. /**
  621. * blk_queue_max_segment_size - set max segment size for blk_rq_map_sg
  622. * @q: the request queue for the device
  623. * @max_size: max size of segment in bytes
  624. *
  625. * Description:
  626. * Enables a low level driver to set an upper limit on the size of a
  627. * coalesced segment
  628. **/
  629. void blk_queue_max_segment_size(request_queue_t *q, unsigned int max_size)
  630. {
  631. if (max_size < PAGE_CACHE_SIZE) {
  632. max_size = PAGE_CACHE_SIZE;
  633. printk("%s: set to minimum %d\n", __FUNCTION__, max_size);
  634. }
  635. q->max_segment_size = max_size;
  636. }
  637. EXPORT_SYMBOL(blk_queue_max_segment_size);
  638. /**
  639. * blk_queue_hardsect_size - set hardware sector size for the queue
  640. * @q: the request queue for the device
  641. * @size: the hardware sector size, in bytes
  642. *
  643. * Description:
  644. * This should typically be set to the lowest possible sector size
  645. * that the hardware can operate on (possible without reverting to
  646. * even internal read-modify-write operations). Usually the default
  647. * of 512 covers most hardware.
  648. **/
  649. void blk_queue_hardsect_size(request_queue_t *q, unsigned short size)
  650. {
  651. q->hardsect_size = size;
  652. }
  653. EXPORT_SYMBOL(blk_queue_hardsect_size);
  654. /*
  655. * Returns the minimum that is _not_ zero, unless both are zero.
  656. */
  657. #define min_not_zero(l, r) (l == 0) ? r : ((r == 0) ? l : min(l, r))
  658. /**
  659. * blk_queue_stack_limits - inherit underlying queue limits for stacked drivers
  660. * @t: the stacking driver (top)
  661. * @b: the underlying device (bottom)
  662. **/
  663. void blk_queue_stack_limits(request_queue_t *t, request_queue_t *b)
  664. {
  665. /* zero is "infinity" */
  666. t->max_sectors = min_not_zero(t->max_sectors,b->max_sectors);
  667. t->max_hw_sectors = min_not_zero(t->max_hw_sectors,b->max_hw_sectors);
  668. t->max_phys_segments = min(t->max_phys_segments,b->max_phys_segments);
  669. t->max_hw_segments = min(t->max_hw_segments,b->max_hw_segments);
  670. t->max_segment_size = min(t->max_segment_size,b->max_segment_size);
  671. t->hardsect_size = max(t->hardsect_size,b->hardsect_size);
  672. if (!test_bit(QUEUE_FLAG_CLUSTER, &b->queue_flags))
  673. clear_bit(QUEUE_FLAG_CLUSTER, &t->queue_flags);
  674. }
  675. EXPORT_SYMBOL(blk_queue_stack_limits);
  676. /**
  677. * blk_queue_segment_boundary - set boundary rules for segment merging
  678. * @q: the request queue for the device
  679. * @mask: the memory boundary mask
  680. **/
  681. void blk_queue_segment_boundary(request_queue_t *q, unsigned long mask)
  682. {
  683. if (mask < PAGE_CACHE_SIZE - 1) {
  684. mask = PAGE_CACHE_SIZE - 1;
  685. printk("%s: set to minimum %lx\n", __FUNCTION__, mask);
  686. }
  687. q->seg_boundary_mask = mask;
  688. }
  689. EXPORT_SYMBOL(blk_queue_segment_boundary);
  690. /**
  691. * blk_queue_dma_alignment - set dma length and memory alignment
  692. * @q: the request queue for the device
  693. * @mask: alignment mask
  694. *
  695. * description:
  696. * set required memory and length aligment for direct dma transactions.
  697. * this is used when buiding direct io requests for the queue.
  698. *
  699. **/
  700. void blk_queue_dma_alignment(request_queue_t *q, int mask)
  701. {
  702. q->dma_alignment = mask;
  703. }
  704. EXPORT_SYMBOL(blk_queue_dma_alignment);
  705. /**
  706. * blk_queue_find_tag - find a request by its tag and queue
  707. * @q: The request queue for the device
  708. * @tag: The tag of the request
  709. *
  710. * Notes:
  711. * Should be used when a device returns a tag and you want to match
  712. * it with a request.
  713. *
  714. * no locks need be held.
  715. **/
  716. struct request *blk_queue_find_tag(request_queue_t *q, int tag)
  717. {
  718. struct blk_queue_tag *bqt = q->queue_tags;
  719. if (unlikely(bqt == NULL || tag >= bqt->real_max_depth))
  720. return NULL;
  721. return bqt->tag_index[tag];
  722. }
  723. EXPORT_SYMBOL(blk_queue_find_tag);
  724. /**
  725. * __blk_queue_free_tags - release tag maintenance info
  726. * @q: the request queue for the device
  727. *
  728. * Notes:
  729. * blk_cleanup_queue() will take care of calling this function, if tagging
  730. * has been used. So there's no need to call this directly.
  731. **/
  732. static void __blk_queue_free_tags(request_queue_t *q)
  733. {
  734. struct blk_queue_tag *bqt = q->queue_tags;
  735. if (!bqt)
  736. return;
  737. if (atomic_dec_and_test(&bqt->refcnt)) {
  738. BUG_ON(bqt->busy);
  739. BUG_ON(!list_empty(&bqt->busy_list));
  740. kfree(bqt->tag_index);
  741. bqt->tag_index = NULL;
  742. kfree(bqt->tag_map);
  743. bqt->tag_map = NULL;
  744. kfree(bqt);
  745. }
  746. q->queue_tags = NULL;
  747. q->queue_flags &= ~(1 << QUEUE_FLAG_QUEUED);
  748. }
  749. /**
  750. * blk_queue_free_tags - release tag maintenance info
  751. * @q: the request queue for the device
  752. *
  753. * Notes:
  754. * This is used to disabled tagged queuing to a device, yet leave
  755. * queue in function.
  756. **/
  757. void blk_queue_free_tags(request_queue_t *q)
  758. {
  759. clear_bit(QUEUE_FLAG_QUEUED, &q->queue_flags);
  760. }
  761. EXPORT_SYMBOL(blk_queue_free_tags);
  762. static int
  763. init_tag_map(request_queue_t *q, struct blk_queue_tag *tags, int depth)
  764. {
  765. struct request **tag_index;
  766. unsigned long *tag_map;
  767. int nr_ulongs;
  768. if (depth > q->nr_requests * 2) {
  769. depth = q->nr_requests * 2;
  770. printk(KERN_ERR "%s: adjusted depth to %d\n",
  771. __FUNCTION__, depth);
  772. }
  773. tag_index = kzalloc(depth * sizeof(struct request *), GFP_ATOMIC);
  774. if (!tag_index)
  775. goto fail;
  776. nr_ulongs = ALIGN(depth, BITS_PER_LONG) / BITS_PER_LONG;
  777. tag_map = kzalloc(nr_ulongs * sizeof(unsigned long), GFP_ATOMIC);
  778. if (!tag_map)
  779. goto fail;
  780. tags->real_max_depth = depth;
  781. tags->max_depth = depth;
  782. tags->tag_index = tag_index;
  783. tags->tag_map = tag_map;
  784. return 0;
  785. fail:
  786. kfree(tag_index);
  787. return -ENOMEM;
  788. }
  789. /**
  790. * blk_queue_init_tags - initialize the queue tag info
  791. * @q: the request queue for the device
  792. * @depth: the maximum queue depth supported
  793. * @tags: the tag to use
  794. **/
  795. int blk_queue_init_tags(request_queue_t *q, int depth,
  796. struct blk_queue_tag *tags)
  797. {
  798. int rc;
  799. BUG_ON(tags && q->queue_tags && tags != q->queue_tags);
  800. if (!tags && !q->queue_tags) {
  801. tags = kmalloc(sizeof(struct blk_queue_tag), GFP_ATOMIC);
  802. if (!tags)
  803. goto fail;
  804. if (init_tag_map(q, tags, depth))
  805. goto fail;
  806. INIT_LIST_HEAD(&tags->busy_list);
  807. tags->busy = 0;
  808. atomic_set(&tags->refcnt, 1);
  809. } else if (q->queue_tags) {
  810. if ((rc = blk_queue_resize_tags(q, depth)))
  811. return rc;
  812. set_bit(QUEUE_FLAG_QUEUED, &q->queue_flags);
  813. return 0;
  814. } else
  815. atomic_inc(&tags->refcnt);
  816. /*
  817. * assign it, all done
  818. */
  819. q->queue_tags = tags;
  820. q->queue_flags |= (1 << QUEUE_FLAG_QUEUED);
  821. return 0;
  822. fail:
  823. kfree(tags);
  824. return -ENOMEM;
  825. }
  826. EXPORT_SYMBOL(blk_queue_init_tags);
  827. /**
  828. * blk_queue_resize_tags - change the queueing depth
  829. * @q: the request queue for the device
  830. * @new_depth: the new max command queueing depth
  831. *
  832. * Notes:
  833. * Must be called with the queue lock held.
  834. **/
  835. int blk_queue_resize_tags(request_queue_t *q, int new_depth)
  836. {
  837. struct blk_queue_tag *bqt = q->queue_tags;
  838. struct request **tag_index;
  839. unsigned long *tag_map;
  840. int max_depth, nr_ulongs;
  841. if (!bqt)
  842. return -ENXIO;
  843. /*
  844. * if we already have large enough real_max_depth. just
  845. * adjust max_depth. *NOTE* as requests with tag value
  846. * between new_depth and real_max_depth can be in-flight, tag
  847. * map can not be shrunk blindly here.
  848. */
  849. if (new_depth <= bqt->real_max_depth) {
  850. bqt->max_depth = new_depth;
  851. return 0;
  852. }
  853. /*
  854. * save the old state info, so we can copy it back
  855. */
  856. tag_index = bqt->tag_index;
  857. tag_map = bqt->tag_map;
  858. max_depth = bqt->real_max_depth;
  859. if (init_tag_map(q, bqt, new_depth))
  860. return -ENOMEM;
  861. memcpy(bqt->tag_index, tag_index, max_depth * sizeof(struct request *));
  862. nr_ulongs = ALIGN(max_depth, BITS_PER_LONG) / BITS_PER_LONG;
  863. memcpy(bqt->tag_map, tag_map, nr_ulongs * sizeof(unsigned long));
  864. kfree(tag_index);
  865. kfree(tag_map);
  866. return 0;
  867. }
  868. EXPORT_SYMBOL(blk_queue_resize_tags);
  869. /**
  870. * blk_queue_end_tag - end tag operations for a request
  871. * @q: the request queue for the device
  872. * @rq: the request that has completed
  873. *
  874. * Description:
  875. * Typically called when end_that_request_first() returns 0, meaning
  876. * all transfers have been done for a request. It's important to call
  877. * this function before end_that_request_last(), as that will put the
  878. * request back on the free list thus corrupting the internal tag list.
  879. *
  880. * Notes:
  881. * queue lock must be held.
  882. **/
  883. void blk_queue_end_tag(request_queue_t *q, struct request *rq)
  884. {
  885. struct blk_queue_tag *bqt = q->queue_tags;
  886. int tag = rq->tag;
  887. BUG_ON(tag == -1);
  888. if (unlikely(tag >= bqt->real_max_depth))
  889. /*
  890. * This can happen after tag depth has been reduced.
  891. * FIXME: how about a warning or info message here?
  892. */
  893. return;
  894. if (unlikely(!__test_and_clear_bit(tag, bqt->tag_map))) {
  895. printk(KERN_ERR "%s: attempt to clear non-busy tag (%d)\n",
  896. __FUNCTION__, tag);
  897. return;
  898. }
  899. list_del_init(&rq->queuelist);
  900. rq->flags &= ~REQ_QUEUED;
  901. rq->tag = -1;
  902. if (unlikely(bqt->tag_index[tag] == NULL))
  903. printk(KERN_ERR "%s: tag %d is missing\n",
  904. __FUNCTION__, tag);
  905. bqt->tag_index[tag] = NULL;
  906. bqt->busy--;
  907. }
  908. EXPORT_SYMBOL(blk_queue_end_tag);
  909. /**
  910. * blk_queue_start_tag - find a free tag and assign it
  911. * @q: the request queue for the device
  912. * @rq: the block request that needs tagging
  913. *
  914. * Description:
  915. * This can either be used as a stand-alone helper, or possibly be
  916. * assigned as the queue &prep_rq_fn (in which case &struct request
  917. * automagically gets a tag assigned). Note that this function
  918. * assumes that any type of request can be queued! if this is not
  919. * true for your device, you must check the request type before
  920. * calling this function. The request will also be removed from
  921. * the request queue, so it's the drivers responsibility to readd
  922. * it if it should need to be restarted for some reason.
  923. *
  924. * Notes:
  925. * queue lock must be held.
  926. **/
  927. int blk_queue_start_tag(request_queue_t *q, struct request *rq)
  928. {
  929. struct blk_queue_tag *bqt = q->queue_tags;
  930. int tag;
  931. if (unlikely((rq->flags & REQ_QUEUED))) {
  932. printk(KERN_ERR
  933. "%s: request %p for device [%s] already tagged %d",
  934. __FUNCTION__, rq,
  935. rq->rq_disk ? rq->rq_disk->disk_name : "?", rq->tag);
  936. BUG();
  937. }
  938. tag = find_first_zero_bit(bqt->tag_map, bqt->max_depth);
  939. if (tag >= bqt->max_depth)
  940. return 1;
  941. __set_bit(tag, bqt->tag_map);
  942. rq->flags |= REQ_QUEUED;
  943. rq->tag = tag;
  944. bqt->tag_index[tag] = rq;
  945. blkdev_dequeue_request(rq);
  946. list_add(&rq->queuelist, &bqt->busy_list);
  947. bqt->busy++;
  948. return 0;
  949. }
  950. EXPORT_SYMBOL(blk_queue_start_tag);
  951. /**
  952. * blk_queue_invalidate_tags - invalidate all pending tags
  953. * @q: the request queue for the device
  954. *
  955. * Description:
  956. * Hardware conditions may dictate a need to stop all pending requests.
  957. * In this case, we will safely clear the block side of the tag queue and
  958. * readd all requests to the request queue in the right order.
  959. *
  960. * Notes:
  961. * queue lock must be held.
  962. **/
  963. void blk_queue_invalidate_tags(request_queue_t *q)
  964. {
  965. struct blk_queue_tag *bqt = q->queue_tags;
  966. struct list_head *tmp, *n;
  967. struct request *rq;
  968. list_for_each_safe(tmp, n, &bqt->busy_list) {
  969. rq = list_entry_rq(tmp);
  970. if (rq->tag == -1) {
  971. printk(KERN_ERR
  972. "%s: bad tag found on list\n", __FUNCTION__);
  973. list_del_init(&rq->queuelist);
  974. rq->flags &= ~REQ_QUEUED;
  975. } else
  976. blk_queue_end_tag(q, rq);
  977. rq->flags &= ~REQ_STARTED;
  978. __elv_add_request(q, rq, ELEVATOR_INSERT_BACK, 0);
  979. }
  980. }
  981. EXPORT_SYMBOL(blk_queue_invalidate_tags);
  982. static const char * const rq_flags[] = {
  983. "REQ_RW",
  984. "REQ_FAILFAST",
  985. "REQ_SORTED",
  986. "REQ_SOFTBARRIER",
  987. "REQ_HARDBARRIER",
  988. "REQ_FUA",
  989. "REQ_CMD",
  990. "REQ_NOMERGE",
  991. "REQ_STARTED",
  992. "REQ_DONTPREP",
  993. "REQ_QUEUED",
  994. "REQ_ELVPRIV",
  995. "REQ_PC",
  996. "REQ_BLOCK_PC",
  997. "REQ_SENSE",
  998. "REQ_FAILED",
  999. "REQ_QUIET",
  1000. "REQ_SPECIAL",
  1001. "REQ_DRIVE_CMD",
  1002. "REQ_DRIVE_TASK",
  1003. "REQ_DRIVE_TASKFILE",
  1004. "REQ_PREEMPT",
  1005. "REQ_PM_SUSPEND",
  1006. "REQ_PM_RESUME",
  1007. "REQ_PM_SHUTDOWN",
  1008. "REQ_ORDERED_COLOR",
  1009. };
  1010. void blk_dump_rq_flags(struct request *rq, char *msg)
  1011. {
  1012. int bit;
  1013. printk("%s: dev %s: flags = ", msg,
  1014. rq->rq_disk ? rq->rq_disk->disk_name : "?");
  1015. bit = 0;
  1016. do {
  1017. if (rq->flags & (1 << bit))
  1018. printk("%s ", rq_flags[bit]);
  1019. bit++;
  1020. } while (bit < __REQ_NR_BITS);
  1021. printk("\nsector %llu, nr/cnr %lu/%u\n", (unsigned long long)rq->sector,
  1022. rq->nr_sectors,
  1023. rq->current_nr_sectors);
  1024. printk("bio %p, biotail %p, buffer %p, data %p, len %u\n", rq->bio, rq->biotail, rq->buffer, rq->data, rq->data_len);
  1025. if (rq->flags & (REQ_BLOCK_PC | REQ_PC)) {
  1026. printk("cdb: ");
  1027. for (bit = 0; bit < sizeof(rq->cmd); bit++)
  1028. printk("%02x ", rq->cmd[bit]);
  1029. printk("\n");
  1030. }
  1031. }
  1032. EXPORT_SYMBOL(blk_dump_rq_flags);
  1033. void blk_recount_segments(request_queue_t *q, struct bio *bio)
  1034. {
  1035. struct bio_vec *bv, *bvprv = NULL;
  1036. int i, nr_phys_segs, nr_hw_segs, seg_size, hw_seg_size, cluster;
  1037. int high, highprv = 1;
  1038. if (unlikely(!bio->bi_io_vec))
  1039. return;
  1040. cluster = q->queue_flags & (1 << QUEUE_FLAG_CLUSTER);
  1041. hw_seg_size = seg_size = nr_phys_segs = nr_hw_segs = 0;
  1042. bio_for_each_segment(bv, bio, i) {
  1043. /*
  1044. * the trick here is making sure that a high page is never
  1045. * considered part of another segment, since that might
  1046. * change with the bounce page.
  1047. */
  1048. high = page_to_pfn(bv->bv_page) >= q->bounce_pfn;
  1049. if (high || highprv)
  1050. goto new_hw_segment;
  1051. if (cluster) {
  1052. if (seg_size + bv->bv_len > q->max_segment_size)
  1053. goto new_segment;
  1054. if (!BIOVEC_PHYS_MERGEABLE(bvprv, bv))
  1055. goto new_segment;
  1056. if (!BIOVEC_SEG_BOUNDARY(q, bvprv, bv))
  1057. goto new_segment;
  1058. if (BIOVEC_VIRT_OVERSIZE(hw_seg_size + bv->bv_len))
  1059. goto new_hw_segment;
  1060. seg_size += bv->bv_len;
  1061. hw_seg_size += bv->bv_len;
  1062. bvprv = bv;
  1063. continue;
  1064. }
  1065. new_segment:
  1066. if (BIOVEC_VIRT_MERGEABLE(bvprv, bv) &&
  1067. !BIOVEC_VIRT_OVERSIZE(hw_seg_size + bv->bv_len)) {
  1068. hw_seg_size += bv->bv_len;
  1069. } else {
  1070. new_hw_segment:
  1071. if (hw_seg_size > bio->bi_hw_front_size)
  1072. bio->bi_hw_front_size = hw_seg_size;
  1073. hw_seg_size = BIOVEC_VIRT_START_SIZE(bv) + bv->bv_len;
  1074. nr_hw_segs++;
  1075. }
  1076. nr_phys_segs++;
  1077. bvprv = bv;
  1078. seg_size = bv->bv_len;
  1079. highprv = high;
  1080. }
  1081. if (hw_seg_size > bio->bi_hw_back_size)
  1082. bio->bi_hw_back_size = hw_seg_size;
  1083. if (nr_hw_segs == 1 && hw_seg_size > bio->bi_hw_front_size)
  1084. bio->bi_hw_front_size = hw_seg_size;
  1085. bio->bi_phys_segments = nr_phys_segs;
  1086. bio->bi_hw_segments = nr_hw_segs;
  1087. bio->bi_flags |= (1 << BIO_SEG_VALID);
  1088. }
  1089. static int blk_phys_contig_segment(request_queue_t *q, struct bio *bio,
  1090. struct bio *nxt)
  1091. {
  1092. if (!(q->queue_flags & (1 << QUEUE_FLAG_CLUSTER)))
  1093. return 0;
  1094. if (!BIOVEC_PHYS_MERGEABLE(__BVEC_END(bio), __BVEC_START(nxt)))
  1095. return 0;
  1096. if (bio->bi_size + nxt->bi_size > q->max_segment_size)
  1097. return 0;
  1098. /*
  1099. * bio and nxt are contigous in memory, check if the queue allows
  1100. * these two to be merged into one
  1101. */
  1102. if (BIO_SEG_BOUNDARY(q, bio, nxt))
  1103. return 1;
  1104. return 0;
  1105. }
  1106. static int blk_hw_contig_segment(request_queue_t *q, struct bio *bio,
  1107. struct bio *nxt)
  1108. {
  1109. if (unlikely(!bio_flagged(bio, BIO_SEG_VALID)))
  1110. blk_recount_segments(q, bio);
  1111. if (unlikely(!bio_flagged(nxt, BIO_SEG_VALID)))
  1112. blk_recount_segments(q, nxt);
  1113. if (!BIOVEC_VIRT_MERGEABLE(__BVEC_END(bio), __BVEC_START(nxt)) ||
  1114. BIOVEC_VIRT_OVERSIZE(bio->bi_hw_front_size + bio->bi_hw_back_size))
  1115. return 0;
  1116. if (bio->bi_size + nxt->bi_size > q->max_segment_size)
  1117. return 0;
  1118. return 1;
  1119. }
  1120. /*
  1121. * map a request to scatterlist, return number of sg entries setup. Caller
  1122. * must make sure sg can hold rq->nr_phys_segments entries
  1123. */
  1124. int blk_rq_map_sg(request_queue_t *q, struct request *rq, struct scatterlist *sg)
  1125. {
  1126. struct bio_vec *bvec, *bvprv;
  1127. struct bio *bio;
  1128. int nsegs, i, cluster;
  1129. nsegs = 0;
  1130. cluster = q->queue_flags & (1 << QUEUE_FLAG_CLUSTER);
  1131. /*
  1132. * for each bio in rq
  1133. */
  1134. bvprv = NULL;
  1135. rq_for_each_bio(bio, rq) {
  1136. /*
  1137. * for each segment in bio
  1138. */
  1139. bio_for_each_segment(bvec, bio, i) {
  1140. int nbytes = bvec->bv_len;
  1141. if (bvprv && cluster) {
  1142. if (sg[nsegs - 1].length + nbytes > q->max_segment_size)
  1143. goto new_segment;
  1144. if (!BIOVEC_PHYS_MERGEABLE(bvprv, bvec))
  1145. goto new_segment;
  1146. if (!BIOVEC_SEG_BOUNDARY(q, bvprv, bvec))
  1147. goto new_segment;
  1148. sg[nsegs - 1].length += nbytes;
  1149. } else {
  1150. new_segment:
  1151. memset(&sg[nsegs],0,sizeof(struct scatterlist));
  1152. sg[nsegs].page = bvec->bv_page;
  1153. sg[nsegs].length = nbytes;
  1154. sg[nsegs].offset = bvec->bv_offset;
  1155. nsegs++;
  1156. }
  1157. bvprv = bvec;
  1158. } /* segments in bio */
  1159. } /* bios in rq */
  1160. return nsegs;
  1161. }
  1162. EXPORT_SYMBOL(blk_rq_map_sg);
  1163. /*
  1164. * the standard queue merge functions, can be overridden with device
  1165. * specific ones if so desired
  1166. */
  1167. static inline int ll_new_mergeable(request_queue_t *q,
  1168. struct request *req,
  1169. struct bio *bio)
  1170. {
  1171. int nr_phys_segs = bio_phys_segments(q, bio);
  1172. if (req->nr_phys_segments + nr_phys_segs > q->max_phys_segments) {
  1173. req->flags |= REQ_NOMERGE;
  1174. if (req == q->last_merge)
  1175. q->last_merge = NULL;
  1176. return 0;
  1177. }
  1178. /*
  1179. * A hw segment is just getting larger, bump just the phys
  1180. * counter.
  1181. */
  1182. req->nr_phys_segments += nr_phys_segs;
  1183. return 1;
  1184. }
  1185. static inline int ll_new_hw_segment(request_queue_t *q,
  1186. struct request *req,
  1187. struct bio *bio)
  1188. {
  1189. int nr_hw_segs = bio_hw_segments(q, bio);
  1190. int nr_phys_segs = bio_phys_segments(q, bio);
  1191. if (req->nr_hw_segments + nr_hw_segs > q->max_hw_segments
  1192. || req->nr_phys_segments + nr_phys_segs > q->max_phys_segments) {
  1193. req->flags |= REQ_NOMERGE;
  1194. if (req == q->last_merge)
  1195. q->last_merge = NULL;
  1196. return 0;
  1197. }
  1198. /*
  1199. * This will form the start of a new hw segment. Bump both
  1200. * counters.
  1201. */
  1202. req->nr_hw_segments += nr_hw_segs;
  1203. req->nr_phys_segments += nr_phys_segs;
  1204. return 1;
  1205. }
  1206. static int ll_back_merge_fn(request_queue_t *q, struct request *req,
  1207. struct bio *bio)
  1208. {
  1209. unsigned short max_sectors;
  1210. int len;
  1211. if (unlikely(blk_pc_request(req)))
  1212. max_sectors = q->max_hw_sectors;
  1213. else
  1214. max_sectors = q->max_sectors;
  1215. if (req->nr_sectors + bio_sectors(bio) > max_sectors) {
  1216. req->flags |= REQ_NOMERGE;
  1217. if (req == q->last_merge)
  1218. q->last_merge = NULL;
  1219. return 0;
  1220. }
  1221. if (unlikely(!bio_flagged(req->biotail, BIO_SEG_VALID)))
  1222. blk_recount_segments(q, req->biotail);
  1223. if (unlikely(!bio_flagged(bio, BIO_SEG_VALID)))
  1224. blk_recount_segments(q, bio);
  1225. len = req->biotail->bi_hw_back_size + bio->bi_hw_front_size;
  1226. if (BIOVEC_VIRT_MERGEABLE(__BVEC_END(req->biotail), __BVEC_START(bio)) &&
  1227. !BIOVEC_VIRT_OVERSIZE(len)) {
  1228. int mergeable = ll_new_mergeable(q, req, bio);
  1229. if (mergeable) {
  1230. if (req->nr_hw_segments == 1)
  1231. req->bio->bi_hw_front_size = len;
  1232. if (bio->bi_hw_segments == 1)
  1233. bio->bi_hw_back_size = len;
  1234. }
  1235. return mergeable;
  1236. }
  1237. return ll_new_hw_segment(q, req, bio);
  1238. }
  1239. static int ll_front_merge_fn(request_queue_t *q, struct request *req,
  1240. struct bio *bio)
  1241. {
  1242. unsigned short max_sectors;
  1243. int len;
  1244. if (unlikely(blk_pc_request(req)))
  1245. max_sectors = q->max_hw_sectors;
  1246. else
  1247. max_sectors = q->max_sectors;
  1248. if (req->nr_sectors + bio_sectors(bio) > max_sectors) {
  1249. req->flags |= REQ_NOMERGE;
  1250. if (req == q->last_merge)
  1251. q->last_merge = NULL;
  1252. return 0;
  1253. }
  1254. len = bio->bi_hw_back_size + req->bio->bi_hw_front_size;
  1255. if (unlikely(!bio_flagged(bio, BIO_SEG_VALID)))
  1256. blk_recount_segments(q, bio);
  1257. if (unlikely(!bio_flagged(req->bio, BIO_SEG_VALID)))
  1258. blk_recount_segments(q, req->bio);
  1259. if (BIOVEC_VIRT_MERGEABLE(__BVEC_END(bio), __BVEC_START(req->bio)) &&
  1260. !BIOVEC_VIRT_OVERSIZE(len)) {
  1261. int mergeable = ll_new_mergeable(q, req, bio);
  1262. if (mergeable) {
  1263. if (bio->bi_hw_segments == 1)
  1264. bio->bi_hw_front_size = len;
  1265. if (req->nr_hw_segments == 1)
  1266. req->biotail->bi_hw_back_size = len;
  1267. }
  1268. return mergeable;
  1269. }
  1270. return ll_new_hw_segment(q, req, bio);
  1271. }
  1272. static int ll_merge_requests_fn(request_queue_t *q, struct request *req,
  1273. struct request *next)
  1274. {
  1275. int total_phys_segments;
  1276. int total_hw_segments;
  1277. /*
  1278. * First check if the either of the requests are re-queued
  1279. * requests. Can't merge them if they are.
  1280. */
  1281. if (req->special || next->special)
  1282. return 0;
  1283. /*
  1284. * Will it become too large?
  1285. */
  1286. if ((req->nr_sectors + next->nr_sectors) > q->max_sectors)
  1287. return 0;
  1288. total_phys_segments = req->nr_phys_segments + next->nr_phys_segments;
  1289. if (blk_phys_contig_segment(q, req->biotail, next->bio))
  1290. total_phys_segments--;
  1291. if (total_phys_segments > q->max_phys_segments)
  1292. return 0;
  1293. total_hw_segments = req->nr_hw_segments + next->nr_hw_segments;
  1294. if (blk_hw_contig_segment(q, req->biotail, next->bio)) {
  1295. int len = req->biotail->bi_hw_back_size + next->bio->bi_hw_front_size;
  1296. /*
  1297. * propagate the combined length to the end of the requests
  1298. */
  1299. if (req->nr_hw_segments == 1)
  1300. req->bio->bi_hw_front_size = len;
  1301. if (next->nr_hw_segments == 1)
  1302. next->biotail->bi_hw_back_size = len;
  1303. total_hw_segments--;
  1304. }
  1305. if (total_hw_segments > q->max_hw_segments)
  1306. return 0;
  1307. /* Merge is OK... */
  1308. req->nr_phys_segments = total_phys_segments;
  1309. req->nr_hw_segments = total_hw_segments;
  1310. return 1;
  1311. }
  1312. /*
  1313. * "plug" the device if there are no outstanding requests: this will
  1314. * force the transfer to start only after we have put all the requests
  1315. * on the list.
  1316. *
  1317. * This is called with interrupts off and no requests on the queue and
  1318. * with the queue lock held.
  1319. */
  1320. void blk_plug_device(request_queue_t *q)
  1321. {
  1322. WARN_ON(!irqs_disabled());
  1323. /*
  1324. * don't plug a stopped queue, it must be paired with blk_start_queue()
  1325. * which will restart the queueing
  1326. */
  1327. if (blk_queue_stopped(q))
  1328. return;
  1329. if (!test_and_set_bit(QUEUE_FLAG_PLUGGED, &q->queue_flags)) {
  1330. mod_timer(&q->unplug_timer, jiffies + q->unplug_delay);
  1331. blk_add_trace_generic(q, NULL, 0, BLK_TA_PLUG);
  1332. }
  1333. }
  1334. EXPORT_SYMBOL(blk_plug_device);
  1335. /*
  1336. * remove the queue from the plugged list, if present. called with
  1337. * queue lock held and interrupts disabled.
  1338. */
  1339. int blk_remove_plug(request_queue_t *q)
  1340. {
  1341. WARN_ON(!irqs_disabled());
  1342. if (!test_and_clear_bit(QUEUE_FLAG_PLUGGED, &q->queue_flags))
  1343. return 0;
  1344. del_timer(&q->unplug_timer);
  1345. return 1;
  1346. }
  1347. EXPORT_SYMBOL(blk_remove_plug);
  1348. /*
  1349. * remove the plug and let it rip..
  1350. */
  1351. void __generic_unplug_device(request_queue_t *q)
  1352. {
  1353. if (unlikely(blk_queue_stopped(q)))
  1354. return;
  1355. if (!blk_remove_plug(q))
  1356. return;
  1357. q->request_fn(q);
  1358. }
  1359. EXPORT_SYMBOL(__generic_unplug_device);
  1360. /**
  1361. * generic_unplug_device - fire a request queue
  1362. * @q: The &request_queue_t in question
  1363. *
  1364. * Description:
  1365. * Linux uses plugging to build bigger requests queues before letting
  1366. * the device have at them. If a queue is plugged, the I/O scheduler
  1367. * is still adding and merging requests on the queue. Once the queue
  1368. * gets unplugged, the request_fn defined for the queue is invoked and
  1369. * transfers started.
  1370. **/
  1371. void generic_unplug_device(request_queue_t *q)
  1372. {
  1373. spin_lock_irq(q->queue_lock);
  1374. __generic_unplug_device(q);
  1375. spin_unlock_irq(q->queue_lock);
  1376. }
  1377. EXPORT_SYMBOL(generic_unplug_device);
  1378. static void blk_backing_dev_unplug(struct backing_dev_info *bdi,
  1379. struct page *page)
  1380. {
  1381. request_queue_t *q = bdi->unplug_io_data;
  1382. /*
  1383. * devices don't necessarily have an ->unplug_fn defined
  1384. */
  1385. if (q->unplug_fn) {
  1386. blk_add_trace_pdu_int(q, BLK_TA_UNPLUG_IO, NULL,
  1387. q->rq.count[READ] + q->rq.count[WRITE]);
  1388. q->unplug_fn(q);
  1389. }
  1390. }
  1391. static void blk_unplug_work(void *data)
  1392. {
  1393. request_queue_t *q = data;
  1394. blk_add_trace_pdu_int(q, BLK_TA_UNPLUG_IO, NULL,
  1395. q->rq.count[READ] + q->rq.count[WRITE]);
  1396. q->unplug_fn(q);
  1397. }
  1398. static void blk_unplug_timeout(unsigned long data)
  1399. {
  1400. request_queue_t *q = (request_queue_t *)data;
  1401. blk_add_trace_pdu_int(q, BLK_TA_UNPLUG_TIMER, NULL,
  1402. q->rq.count[READ] + q->rq.count[WRITE]);
  1403. kblockd_schedule_work(&q->unplug_work);
  1404. }
  1405. /**
  1406. * blk_start_queue - restart a previously stopped queue
  1407. * @q: The &request_queue_t in question
  1408. *
  1409. * Description:
  1410. * blk_start_queue() will clear the stop flag on the queue, and call
  1411. * the request_fn for the queue if it was in a stopped state when
  1412. * entered. Also see blk_stop_queue(). Queue lock must be held.
  1413. **/
  1414. void blk_start_queue(request_queue_t *q)
  1415. {
  1416. WARN_ON(!irqs_disabled());
  1417. clear_bit(QUEUE_FLAG_STOPPED, &q->queue_flags);
  1418. /*
  1419. * one level of recursion is ok and is much faster than kicking
  1420. * the unplug handling
  1421. */
  1422. if (!test_and_set_bit(QUEUE_FLAG_REENTER, &q->queue_flags)) {
  1423. q->request_fn(q);
  1424. clear_bit(QUEUE_FLAG_REENTER, &q->queue_flags);
  1425. } else {
  1426. blk_plug_device(q);
  1427. kblockd_schedule_work(&q->unplug_work);
  1428. }
  1429. }
  1430. EXPORT_SYMBOL(blk_start_queue);
  1431. /**
  1432. * blk_stop_queue - stop a queue
  1433. * @q: The &request_queue_t in question
  1434. *
  1435. * Description:
  1436. * The Linux block layer assumes that a block driver will consume all
  1437. * entries on the request queue when the request_fn strategy is called.
  1438. * Often this will not happen, because of hardware limitations (queue
  1439. * depth settings). If a device driver gets a 'queue full' response,
  1440. * or if it simply chooses not to queue more I/O at one point, it can
  1441. * call this function to prevent the request_fn from being called until
  1442. * the driver has signalled it's ready to go again. This happens by calling
  1443. * blk_start_queue() to restart queue operations. Queue lock must be held.
  1444. **/
  1445. void blk_stop_queue(request_queue_t *q)
  1446. {
  1447. blk_remove_plug(q);
  1448. set_bit(QUEUE_FLAG_STOPPED, &q->queue_flags);
  1449. }
  1450. EXPORT_SYMBOL(blk_stop_queue);
  1451. /**
  1452. * blk_sync_queue - cancel any pending callbacks on a queue
  1453. * @q: the queue
  1454. *
  1455. * Description:
  1456. * The block layer may perform asynchronous callback activity
  1457. * on a queue, such as calling the unplug function after a timeout.
  1458. * A block device may call blk_sync_queue to ensure that any
  1459. * such activity is cancelled, thus allowing it to release resources
  1460. * the the callbacks might use. The caller must already have made sure
  1461. * that its ->make_request_fn will not re-add plugging prior to calling
  1462. * this function.
  1463. *
  1464. */
  1465. void blk_sync_queue(struct request_queue *q)
  1466. {
  1467. del_timer_sync(&q->unplug_timer);
  1468. kblockd_flush();
  1469. }
  1470. EXPORT_SYMBOL(blk_sync_queue);
  1471. /**
  1472. * blk_run_queue - run a single device queue
  1473. * @q: The queue to run
  1474. */
  1475. void blk_run_queue(struct request_queue *q)
  1476. {
  1477. unsigned long flags;
  1478. spin_lock_irqsave(q->queue_lock, flags);
  1479. blk_remove_plug(q);
  1480. /*
  1481. * Only recurse once to avoid overrunning the stack, let the unplug
  1482. * handling reinvoke the handler shortly if we already got there.
  1483. */
  1484. if (!elv_queue_empty(q)) {
  1485. if (!test_and_set_bit(QUEUE_FLAG_REENTER, &q->queue_flags)) {
  1486. q->request_fn(q);
  1487. clear_bit(QUEUE_FLAG_REENTER, &q->queue_flags);
  1488. } else {
  1489. blk_plug_device(q);
  1490. kblockd_schedule_work(&q->unplug_work);
  1491. }
  1492. }
  1493. spin_unlock_irqrestore(q->queue_lock, flags);
  1494. }
  1495. EXPORT_SYMBOL(blk_run_queue);
  1496. /**
  1497. * blk_cleanup_queue: - release a &request_queue_t when it is no longer needed
  1498. * @kobj: the kobj belonging of the request queue to be released
  1499. *
  1500. * Description:
  1501. * blk_cleanup_queue is the pair to blk_init_queue() or
  1502. * blk_queue_make_request(). It should be called when a request queue is
  1503. * being released; typically when a block device is being de-registered.
  1504. * Currently, its primary task it to free all the &struct request
  1505. * structures that were allocated to the queue and the queue itself.
  1506. *
  1507. * Caveat:
  1508. * Hopefully the low level driver will have finished any
  1509. * outstanding requests first...
  1510. **/
  1511. static void blk_release_queue(struct kobject *kobj)
  1512. {
  1513. request_queue_t *q = container_of(kobj, struct request_queue, kobj);
  1514. struct request_list *rl = &q->rq;
  1515. blk_sync_queue(q);
  1516. if (rl->rq_pool)
  1517. mempool_destroy(rl->rq_pool);
  1518. if (q->queue_tags)
  1519. __blk_queue_free_tags(q);
  1520. if (q->blk_trace)
  1521. blk_trace_shutdown(q);
  1522. kmem_cache_free(requestq_cachep, q);
  1523. }
  1524. void blk_put_queue(request_queue_t *q)
  1525. {
  1526. kobject_put(&q->kobj);
  1527. }
  1528. EXPORT_SYMBOL(blk_put_queue);
  1529. void blk_cleanup_queue(request_queue_t * q)
  1530. {
  1531. mutex_lock(&q->sysfs_lock);
  1532. set_bit(QUEUE_FLAG_DEAD, &q->queue_flags);
  1533. mutex_unlock(&q->sysfs_lock);
  1534. if (q->elevator)
  1535. elevator_exit(q->elevator);
  1536. blk_put_queue(q);
  1537. }
  1538. EXPORT_SYMBOL(blk_cleanup_queue);
  1539. static int blk_init_free_list(request_queue_t *q)
  1540. {
  1541. struct request_list *rl = &q->rq;
  1542. rl->count[READ] = rl->count[WRITE] = 0;
  1543. rl->starved[READ] = rl->starved[WRITE] = 0;
  1544. rl->elvpriv = 0;
  1545. init_waitqueue_head(&rl->wait[READ]);
  1546. init_waitqueue_head(&rl->wait[WRITE]);
  1547. rl->rq_pool = mempool_create_node(BLKDEV_MIN_RQ, mempool_alloc_slab,
  1548. mempool_free_slab, request_cachep, q->node);
  1549. if (!rl->rq_pool)
  1550. return -ENOMEM;
  1551. return 0;
  1552. }
  1553. request_queue_t *blk_alloc_queue(gfp_t gfp_mask)
  1554. {
  1555. return blk_alloc_queue_node(gfp_mask, -1);
  1556. }
  1557. EXPORT_SYMBOL(blk_alloc_queue);
  1558. static struct kobj_type queue_ktype;
  1559. request_queue_t *blk_alloc_queue_node(gfp_t gfp_mask, int node_id)
  1560. {
  1561. request_queue_t *q;
  1562. q = kmem_cache_alloc_node(requestq_cachep, gfp_mask, node_id);
  1563. if (!q)
  1564. return NULL;
  1565. memset(q, 0, sizeof(*q));
  1566. init_timer(&q->unplug_timer);
  1567. snprintf(q->kobj.name, KOBJ_NAME_LEN, "%s", "queue");
  1568. q->kobj.ktype = &queue_ktype;
  1569. kobject_init(&q->kobj);
  1570. q->backing_dev_info.unplug_io_fn = blk_backing_dev_unplug;
  1571. q->backing_dev_info.unplug_io_data = q;
  1572. mutex_init(&q->sysfs_lock);
  1573. return q;
  1574. }
  1575. EXPORT_SYMBOL(blk_alloc_queue_node);
  1576. /**
  1577. * blk_init_queue - prepare a request queue for use with a block device
  1578. * @rfn: The function to be called to process requests that have been
  1579. * placed on the queue.
  1580. * @lock: Request queue spin lock
  1581. *
  1582. * Description:
  1583. * If a block device wishes to use the standard request handling procedures,
  1584. * which sorts requests and coalesces adjacent requests, then it must
  1585. * call blk_init_queue(). The function @rfn will be called when there
  1586. * are requests on the queue that need to be processed. If the device
  1587. * supports plugging, then @rfn may not be called immediately when requests
  1588. * are available on the queue, but may be called at some time later instead.
  1589. * Plugged queues are generally unplugged when a buffer belonging to one
  1590. * of the requests on the queue is needed, or due to memory pressure.
  1591. *
  1592. * @rfn is not required, or even expected, to remove all requests off the
  1593. * queue, but only as many as it can handle at a time. If it does leave
  1594. * requests on the queue, it is responsible for arranging that the requests
  1595. * get dealt with eventually.
  1596. *
  1597. * The queue spin lock must be held while manipulating the requests on the
  1598. * request queue; this lock will be taken also from interrupt context, so irq
  1599. * disabling is needed for it.
  1600. *
  1601. * Function returns a pointer to the initialized request queue, or NULL if
  1602. * it didn't succeed.
  1603. *
  1604. * Note:
  1605. * blk_init_queue() must be paired with a blk_cleanup_queue() call
  1606. * when the block device is deactivated (such as at module unload).
  1607. **/
  1608. request_queue_t *blk_init_queue(request_fn_proc *rfn, spinlock_t *lock)
  1609. {
  1610. return blk_init_queue_node(rfn, lock, -1);
  1611. }
  1612. EXPORT_SYMBOL(blk_init_queue);
  1613. request_queue_t *
  1614. blk_init_queue_node(request_fn_proc *rfn, spinlock_t *lock, int node_id)
  1615. {
  1616. request_queue_t *q = blk_alloc_queue_node(GFP_KERNEL, node_id);
  1617. if (!q)
  1618. return NULL;
  1619. q->node = node_id;
  1620. if (blk_init_free_list(q)) {
  1621. kmem_cache_free(requestq_cachep, q);
  1622. return NULL;
  1623. }
  1624. /*
  1625. * if caller didn't supply a lock, they get per-queue locking with
  1626. * our embedded lock
  1627. */
  1628. if (!lock) {
  1629. spin_lock_init(&q->__queue_lock);
  1630. lock = &q->__queue_lock;
  1631. }
  1632. q->request_fn = rfn;
  1633. q->back_merge_fn = ll_back_merge_fn;
  1634. q->front_merge_fn = ll_front_merge_fn;
  1635. q->merge_requests_fn = ll_merge_requests_fn;
  1636. q->prep_rq_fn = NULL;
  1637. q->unplug_fn = generic_unplug_device;
  1638. q->queue_flags = (1 << QUEUE_FLAG_CLUSTER);
  1639. q->queue_lock = lock;
  1640. blk_queue_segment_boundary(q, 0xffffffff);
  1641. blk_queue_make_request(q, __make_request);
  1642. blk_queue_max_segment_size(q, MAX_SEGMENT_SIZE);
  1643. blk_queue_max_hw_segments(q, MAX_HW_SEGMENTS);
  1644. blk_queue_max_phys_segments(q, MAX_PHYS_SEGMENTS);
  1645. /*
  1646. * all done
  1647. */
  1648. if (!elevator_init(q, NULL)) {
  1649. blk_queue_congestion_threshold(q);
  1650. return q;
  1651. }
  1652. blk_put_queue(q);
  1653. return NULL;
  1654. }
  1655. EXPORT_SYMBOL(blk_init_queue_node);
  1656. int blk_get_queue(request_queue_t *q)
  1657. {
  1658. if (likely(!test_bit(QUEUE_FLAG_DEAD, &q->queue_flags))) {
  1659. kobject_get(&q->kobj);
  1660. return 0;
  1661. }
  1662. return 1;
  1663. }
  1664. EXPORT_SYMBOL(blk_get_queue);
  1665. static inline void blk_free_request(request_queue_t *q, struct request *rq)
  1666. {
  1667. if (rq->flags & REQ_ELVPRIV)
  1668. elv_put_request(q, rq);
  1669. mempool_free(rq, q->rq.rq_pool);
  1670. }
  1671. static inline struct request *
  1672. blk_alloc_request(request_queue_t *q, int rw, struct bio *bio,
  1673. int priv, gfp_t gfp_mask)
  1674. {
  1675. struct request *rq = mempool_alloc(q->rq.rq_pool, gfp_mask);
  1676. if (!rq)
  1677. return NULL;
  1678. /*
  1679. * first three bits are identical in rq->flags and bio->bi_rw,
  1680. * see bio.h and blkdev.h
  1681. */
  1682. rq->flags = rw;
  1683. if (priv) {
  1684. if (unlikely(elv_set_request(q, rq, bio, gfp_mask))) {
  1685. mempool_free(rq, q->rq.rq_pool);
  1686. return NULL;
  1687. }
  1688. rq->flags |= REQ_ELVPRIV;
  1689. }
  1690. return rq;
  1691. }
  1692. /*
  1693. * ioc_batching returns true if the ioc is a valid batching request and
  1694. * should be given priority access to a request.
  1695. */
  1696. static inline int ioc_batching(request_queue_t *q, struct io_context *ioc)
  1697. {
  1698. if (!ioc)
  1699. return 0;
  1700. /*
  1701. * Make sure the process is able to allocate at least 1 request
  1702. * even if the batch times out, otherwise we could theoretically
  1703. * lose wakeups.
  1704. */
  1705. return ioc->nr_batch_requests == q->nr_batching ||
  1706. (ioc->nr_batch_requests > 0
  1707. && time_before(jiffies, ioc->last_waited + BLK_BATCH_TIME));
  1708. }
  1709. /*
  1710. * ioc_set_batching sets ioc to be a new "batcher" if it is not one. This
  1711. * will cause the process to be a "batcher" on all queues in the system. This
  1712. * is the behaviour we want though - once it gets a wakeup it should be given
  1713. * a nice run.
  1714. */
  1715. static void ioc_set_batching(request_queue_t *q, struct io_context *ioc)
  1716. {
  1717. if (!ioc || ioc_batching(q, ioc))
  1718. return;
  1719. ioc->nr_batch_requests = q->nr_batching;
  1720. ioc->last_waited = jiffies;
  1721. }
  1722. static void __freed_request(request_queue_t *q, int rw)
  1723. {
  1724. struct request_list *rl = &q->rq;
  1725. if (rl->count[rw] < queue_congestion_off_threshold(q))
  1726. clear_queue_congested(q, rw);
  1727. if (rl->count[rw] + 1 <= q->nr_requests) {
  1728. if (waitqueue_active(&rl->wait[rw]))
  1729. wake_up(&rl->wait[rw]);
  1730. blk_clear_queue_full(q, rw);
  1731. }
  1732. }
  1733. /*
  1734. * A request has just been released. Account for it, update the full and
  1735. * congestion status, wake up any waiters. Called under q->queue_lock.
  1736. */
  1737. static void freed_request(request_queue_t *q, int rw, int priv)
  1738. {
  1739. struct request_list *rl = &q->rq;
  1740. rl->count[rw]--;
  1741. if (priv)
  1742. rl->elvpriv--;
  1743. __freed_request(q, rw);
  1744. if (unlikely(rl->starved[rw ^ 1]))
  1745. __freed_request(q, rw ^ 1);
  1746. }
  1747. #define blkdev_free_rq(list) list_entry((list)->next, struct request, queuelist)
  1748. /*
  1749. * Get a free request, queue_lock must be held.
  1750. * Returns NULL on failure, with queue_lock held.
  1751. * Returns !NULL on success, with queue_lock *not held*.
  1752. */
  1753. static struct request *get_request(request_queue_t *q, int rw, struct bio *bio,
  1754. gfp_t gfp_mask)
  1755. {
  1756. struct request *rq = NULL;
  1757. struct request_list *rl = &q->rq;
  1758. struct io_context *ioc = NULL;
  1759. int may_queue, priv;
  1760. may_queue = elv_may_queue(q, rw, bio);
  1761. if (may_queue == ELV_MQUEUE_NO)
  1762. goto rq_starved;
  1763. if (rl->count[rw]+1 >= queue_congestion_on_threshold(q)) {
  1764. if (rl->count[rw]+1 >= q->nr_requests) {
  1765. ioc = current_io_context(GFP_ATOMIC);
  1766. /*
  1767. * The queue will fill after this allocation, so set
  1768. * it as full, and mark this process as "batching".
  1769. * This process will be allowed to complete a batch of
  1770. * requests, others will be blocked.
  1771. */
  1772. if (!blk_queue_full(q, rw)) {
  1773. ioc_set_batching(q, ioc);
  1774. blk_set_queue_full(q, rw);
  1775. } else {
  1776. if (may_queue != ELV_MQUEUE_MUST
  1777. && !ioc_batching(q, ioc)) {
  1778. /*
  1779. * The queue is full and the allocating
  1780. * process is not a "batcher", and not
  1781. * exempted by the IO scheduler
  1782. */
  1783. goto out;
  1784. }
  1785. }
  1786. }
  1787. set_queue_congested(q, rw);
  1788. }
  1789. /*
  1790. * Only allow batching queuers to allocate up to 50% over the defined
  1791. * limit of requests, otherwise we could have thousands of requests
  1792. * allocated with any setting of ->nr_requests
  1793. */
  1794. if (rl->count[rw] >= (3 * q->nr_requests / 2))
  1795. goto out;
  1796. rl->count[rw]++;
  1797. rl->starved[rw] = 0;
  1798. priv = !test_bit(QUEUE_FLAG_ELVSWITCH, &q->queue_flags);
  1799. if (priv)
  1800. rl->elvpriv++;
  1801. spin_unlock_irq(q->queue_lock);
  1802. rq = blk_alloc_request(q, rw, bio, priv, gfp_mask);
  1803. if (unlikely(!rq)) {
  1804. /*
  1805. * Allocation failed presumably due to memory. Undo anything
  1806. * we might have messed up.
  1807. *
  1808. * Allocating task should really be put onto the front of the
  1809. * wait queue, but this is pretty rare.
  1810. */
  1811. spin_lock_irq(q->queue_lock);
  1812. freed_request(q, rw, priv);
  1813. /*
  1814. * in the very unlikely event that allocation failed and no
  1815. * requests for this direction was pending, mark us starved
  1816. * so that freeing of a request in the other direction will
  1817. * notice us. another possible fix would be to split the
  1818. * rq mempool into READ and WRITE
  1819. */
  1820. rq_starved:
  1821. if (unlikely(rl->count[rw] == 0))
  1822. rl->starved[rw] = 1;
  1823. goto out;
  1824. }
  1825. /*
  1826. * ioc may be NULL here, and ioc_batching will be false. That's
  1827. * OK, if the queue is under the request limit then requests need
  1828. * not count toward the nr_batch_requests limit. There will always
  1829. * be some limit enforced by BLK_BATCH_TIME.
  1830. */
  1831. if (ioc_batching(q, ioc))
  1832. ioc->nr_batch_requests--;
  1833. rq_init(q, rq);
  1834. rq->rl = rl;
  1835. blk_add_trace_generic(q, bio, rw, BLK_TA_GETRQ);
  1836. out:
  1837. return rq;
  1838. }
  1839. /*
  1840. * No available requests for this queue, unplug the device and wait for some
  1841. * requests to become available.
  1842. *
  1843. * Called with q->queue_lock held, and returns with it unlocked.
  1844. */
  1845. static struct request *get_request_wait(request_queue_t *q, int rw,
  1846. struct bio *bio)
  1847. {
  1848. struct request *rq;
  1849. rq = get_request(q, rw, bio, GFP_NOIO);
  1850. while (!rq) {
  1851. DEFINE_WAIT(wait);
  1852. struct request_list *rl = &q->rq;
  1853. prepare_to_wait_exclusive(&rl->wait[rw], &wait,
  1854. TASK_UNINTERRUPTIBLE);
  1855. rq = get_request(q, rw, bio, GFP_NOIO);
  1856. if (!rq) {
  1857. struct io_context *ioc;
  1858. blk_add_trace_generic(q, bio, rw, BLK_TA_SLEEPRQ);
  1859. __generic_unplug_device(q);
  1860. spin_unlock_irq(q->queue_lock);
  1861. io_schedule();
  1862. /*
  1863. * After sleeping, we become a "batching" process and
  1864. * will be able to allocate at least one request, and
  1865. * up to a big batch of them for a small period time.
  1866. * See ioc_batching, ioc_set_batching
  1867. */
  1868. ioc = current_io_context(GFP_NOIO);
  1869. ioc_set_batching(q, ioc);
  1870. spin_lock_irq(q->queue_lock);
  1871. }
  1872. finish_wait(&rl->wait[rw], &wait);
  1873. }
  1874. return rq;
  1875. }
  1876. struct request *blk_get_request(request_queue_t *q, int rw, gfp_t gfp_mask)
  1877. {
  1878. struct request *rq;
  1879. BUG_ON(rw != READ && rw != WRITE);
  1880. spin_lock_irq(q->queue_lock);
  1881. if (gfp_mask & __GFP_WAIT) {
  1882. rq = get_request_wait(q, rw, NULL);
  1883. } else {
  1884. rq = get_request(q, rw, NULL, gfp_mask);
  1885. if (!rq)
  1886. spin_unlock_irq(q->queue_lock);
  1887. }
  1888. /* q->queue_lock is unlocked at this point */
  1889. return rq;
  1890. }
  1891. EXPORT_SYMBOL(blk_get_request);
  1892. /**
  1893. * blk_requeue_request - put a request back on queue
  1894. * @q: request queue where request should be inserted
  1895. * @rq: request to be inserted
  1896. *
  1897. * Description:
  1898. * Drivers often keep queueing requests until the hardware cannot accept
  1899. * more, when that condition happens we need to put the request back
  1900. * on the queue. Must be called with queue lock held.
  1901. */
  1902. void blk_requeue_request(request_queue_t *q, struct request *rq)
  1903. {
  1904. blk_add_trace_rq(q, rq, BLK_TA_REQUEUE);
  1905. if (blk_rq_tagged(rq))
  1906. blk_queue_end_tag(q, rq);
  1907. elv_requeue_request(q, rq);
  1908. }
  1909. EXPORT_SYMBOL(blk_requeue_request);
  1910. /**
  1911. * blk_insert_request - insert a special request in to a request queue
  1912. * @q: request queue where request should be inserted
  1913. * @rq: request to be inserted
  1914. * @at_head: insert request at head or tail of queue
  1915. * @data: private data
  1916. *
  1917. * Description:
  1918. * Many block devices need to execute commands asynchronously, so they don't
  1919. * block the whole kernel from preemption during request execution. This is
  1920. * accomplished normally by inserting aritficial requests tagged as
  1921. * REQ_SPECIAL in to the corresponding request queue, and letting them be
  1922. * scheduled for actual execution by the request queue.
  1923. *
  1924. * We have the option of inserting the head or the tail of the queue.
  1925. * Typically we use the tail for new ioctls and so forth. We use the head
  1926. * of the queue for things like a QUEUE_FULL message from a device, or a
  1927. * host that is unable to accept a particular command.
  1928. */
  1929. void blk_insert_request(request_queue_t *q, struct request *rq,
  1930. int at_head, void *data)
  1931. {
  1932. int where = at_head ? ELEVATOR_INSERT_FRONT : ELEVATOR_INSERT_BACK;
  1933. unsigned long flags;
  1934. /*
  1935. * tell I/O scheduler that this isn't a regular read/write (ie it
  1936. * must not attempt merges on this) and that it acts as a soft
  1937. * barrier
  1938. */
  1939. rq->flags |= REQ_SPECIAL | REQ_SOFTBARRIER;
  1940. rq->special = data;
  1941. spin_lock_irqsave(q->queue_lock, flags);
  1942. /*
  1943. * If command is tagged, release the tag
  1944. */
  1945. if (blk_rq_tagged(rq))
  1946. blk_queue_end_tag(q, rq);
  1947. drive_stat_acct(rq, rq->nr_sectors, 1);
  1948. __elv_add_request(q, rq, where, 0);
  1949. if (blk_queue_plugged(q))
  1950. __generic_unplug_device(q);
  1951. else
  1952. q->request_fn(q);
  1953. spin_unlock_irqrestore(q->queue_lock, flags);
  1954. }
  1955. EXPORT_SYMBOL(blk_insert_request);
  1956. /**
  1957. * blk_rq_map_user - map user data to a request, for REQ_BLOCK_PC usage
  1958. * @q: request queue where request should be inserted
  1959. * @rq: request structure to fill
  1960. * @ubuf: the user buffer
  1961. * @len: length of user data
  1962. *
  1963. * Description:
  1964. * Data will be mapped directly for zero copy io, if possible. Otherwise
  1965. * a kernel bounce buffer is used.
  1966. *
  1967. * A matching blk_rq_unmap_user() must be issued at the end of io, while
  1968. * still in process context.
  1969. *
  1970. * Note: The mapped bio may need to be bounced through blk_queue_bounce()
  1971. * before being submitted to the device, as pages mapped may be out of
  1972. * reach. It's the callers responsibility to make sure this happens. The
  1973. * original bio must be passed back in to blk_rq_unmap_user() for proper
  1974. * unmapping.
  1975. */
  1976. int blk_rq_map_user(request_queue_t *q, struct request *rq, void __user *ubuf,
  1977. unsigned int len)
  1978. {
  1979. unsigned long uaddr;
  1980. struct bio *bio;
  1981. int reading;
  1982. if (len > (q->max_hw_sectors << 9))
  1983. return -EINVAL;
  1984. if (!len || !ubuf)
  1985. return -EINVAL;
  1986. reading = rq_data_dir(rq) == READ;
  1987. /*
  1988. * if alignment requirement is satisfied, map in user pages for
  1989. * direct dma. else, set up kernel bounce buffers
  1990. */
  1991. uaddr = (unsigned long) ubuf;
  1992. if (!(uaddr & queue_dma_alignment(q)) && !(len & queue_dma_alignment(q)))
  1993. bio = bio_map_user(q, NULL, uaddr, len, reading);
  1994. else
  1995. bio = bio_copy_user(q, uaddr, len, reading);
  1996. if (!IS_ERR(bio)) {
  1997. rq->bio = rq->biotail = bio;
  1998. blk_rq_bio_prep(q, rq, bio);
  1999. rq->buffer = rq->data = NULL;
  2000. rq->data_len = len;
  2001. return 0;
  2002. }
  2003. /*
  2004. * bio is the err-ptr
  2005. */
  2006. return PTR_ERR(bio);
  2007. }
  2008. EXPORT_SYMBOL(blk_rq_map_user);
  2009. /**
  2010. * blk_rq_map_user_iov - map user data to a request, for REQ_BLOCK_PC usage
  2011. * @q: request queue where request should be inserted
  2012. * @rq: request to map data to
  2013. * @iov: pointer to the iovec
  2014. * @iov_count: number of elements in the iovec
  2015. *
  2016. * Description:
  2017. * Data will be mapped directly for zero copy io, if possible. Otherwise
  2018. * a kernel bounce buffer is used.
  2019. *
  2020. * A matching blk_rq_unmap_user() must be issued at the end of io, while
  2021. * still in process context.
  2022. *
  2023. * Note: The mapped bio may need to be bounced through blk_queue_bounce()
  2024. * before being submitted to the device, as pages mapped may be out of
  2025. * reach. It's the callers responsibility to make sure this happens. The
  2026. * original bio must be passed back in to blk_rq_unmap_user() for proper
  2027. * unmapping.
  2028. */
  2029. int blk_rq_map_user_iov(request_queue_t *q, struct request *rq,
  2030. struct sg_iovec *iov, int iov_count)
  2031. {
  2032. struct bio *bio;
  2033. if (!iov || iov_count <= 0)
  2034. return -EINVAL;
  2035. /* we don't allow misaligned data like bio_map_user() does. If the
  2036. * user is using sg, they're expected to know the alignment constraints
  2037. * and respect them accordingly */
  2038. bio = bio_map_user_iov(q, NULL, iov, iov_count, rq_data_dir(rq)== READ);
  2039. if (IS_ERR(bio))
  2040. return PTR_ERR(bio);
  2041. rq->bio = rq->biotail = bio;
  2042. blk_rq_bio_prep(q, rq, bio);
  2043. rq->buffer = rq->data = NULL;
  2044. rq->data_len = bio->bi_size;
  2045. return 0;
  2046. }
  2047. EXPORT_SYMBOL(blk_rq_map_user_iov);
  2048. /**
  2049. * blk_rq_unmap_user - unmap a request with user data
  2050. * @bio: bio to be unmapped
  2051. * @ulen: length of user buffer
  2052. *
  2053. * Description:
  2054. * Unmap a bio previously mapped by blk_rq_map_user().
  2055. */
  2056. int blk_rq_unmap_user(struct bio *bio, unsigned int ulen)
  2057. {
  2058. int ret = 0;
  2059. if (bio) {
  2060. if (bio_flagged(bio, BIO_USER_MAPPED))
  2061. bio_unmap_user(bio);
  2062. else
  2063. ret = bio_uncopy_user(bio);
  2064. }
  2065. return 0;
  2066. }
  2067. EXPORT_SYMBOL(blk_rq_unmap_user);
  2068. /**
  2069. * blk_rq_map_kern - map kernel data to a request, for REQ_BLOCK_PC usage
  2070. * @q: request queue where request should be inserted
  2071. * @rq: request to fill
  2072. * @kbuf: the kernel buffer
  2073. * @len: length of user data
  2074. * @gfp_mask: memory allocation flags
  2075. */
  2076. int blk_rq_map_kern(request_queue_t *q, struct request *rq, void *kbuf,
  2077. unsigned int len, gfp_t gfp_mask)
  2078. {
  2079. struct bio *bio;
  2080. if (len > (q->max_hw_sectors << 9))
  2081. return -EINVAL;
  2082. if (!len || !kbuf)
  2083. return -EINVAL;
  2084. bio = bio_map_kern(q, kbuf, len, gfp_mask);
  2085. if (IS_ERR(bio))
  2086. return PTR_ERR(bio);
  2087. if (rq_data_dir(rq) == WRITE)
  2088. bio->bi_rw |= (1 << BIO_RW);
  2089. rq->bio = rq->biotail = bio;
  2090. blk_rq_bio_prep(q, rq, bio);
  2091. rq->buffer = rq->data = NULL;
  2092. rq->data_len = len;
  2093. return 0;
  2094. }
  2095. EXPORT_SYMBOL(blk_rq_map_kern);
  2096. /**
  2097. * blk_execute_rq_nowait - insert a request into queue for execution
  2098. * @q: queue to insert the request in
  2099. * @bd_disk: matching gendisk
  2100. * @rq: request to insert
  2101. * @at_head: insert request at head or tail of queue
  2102. * @done: I/O completion handler
  2103. *
  2104. * Description:
  2105. * Insert a fully prepared request at the back of the io scheduler queue
  2106. * for execution. Don't wait for completion.
  2107. */
  2108. void blk_execute_rq_nowait(request_queue_t *q, struct gendisk *bd_disk,
  2109. struct request *rq, int at_head,
  2110. rq_end_io_fn *done)
  2111. {
  2112. int where = at_head ? ELEVATOR_INSERT_FRONT : ELEVATOR_INSERT_BACK;
  2113. rq->rq_disk = bd_disk;
  2114. rq->flags |= REQ_NOMERGE;
  2115. rq->end_io = done;
  2116. WARN_ON(irqs_disabled());
  2117. spin_lock_irq(q->queue_lock);
  2118. __elv_add_request(q, rq, where, 1);
  2119. __generic_unplug_device(q);
  2120. spin_unlock_irq(q->queue_lock);
  2121. }
  2122. EXPORT_SYMBOL_GPL(blk_execute_rq_nowait);
  2123. /**
  2124. * blk_execute_rq - insert a request into queue for execution
  2125. * @q: queue to insert the request in
  2126. * @bd_disk: matching gendisk
  2127. * @rq: request to insert
  2128. * @at_head: insert request at head or tail of queue
  2129. *
  2130. * Description:
  2131. * Insert a fully prepared request at the back of the io scheduler queue
  2132. * for execution and wait for completion.
  2133. */
  2134. int blk_execute_rq(request_queue_t *q, struct gendisk *bd_disk,
  2135. struct request *rq, int at_head)
  2136. {
  2137. DECLARE_COMPLETION_ONSTACK(wait);
  2138. char sense[SCSI_SENSE_BUFFERSIZE];
  2139. int err = 0;
  2140. /*
  2141. * we need an extra reference to the request, so we can look at
  2142. * it after io completion
  2143. */
  2144. rq->ref_count++;
  2145. if (!rq->sense) {
  2146. memset(sense, 0, sizeof(sense));
  2147. rq->sense = sense;
  2148. rq->sense_len = 0;
  2149. }
  2150. rq->waiting = &wait;
  2151. blk_execute_rq_nowait(q, bd_disk, rq, at_head, blk_end_sync_rq);
  2152. wait_for_completion(&wait);
  2153. rq->waiting = NULL;
  2154. if (rq->errors)
  2155. err = -EIO;
  2156. return err;
  2157. }
  2158. EXPORT_SYMBOL(blk_execute_rq);
  2159. /**
  2160. * blkdev_issue_flush - queue a flush
  2161. * @bdev: blockdev to issue flush for
  2162. * @error_sector: error sector
  2163. *
  2164. * Description:
  2165. * Issue a flush for the block device in question. Caller can supply
  2166. * room for storing the error offset in case of a flush error, if they
  2167. * wish to. Caller must run wait_for_completion() on its own.
  2168. */
  2169. int blkdev_issue_flush(struct block_device *bdev, sector_t *error_sector)
  2170. {
  2171. request_queue_t *q;
  2172. if (bdev->bd_disk == NULL)
  2173. return -ENXIO;
  2174. q = bdev_get_queue(bdev);
  2175. if (!q)
  2176. return -ENXIO;
  2177. if (!q->issue_flush_fn)
  2178. return -EOPNOTSUPP;
  2179. return q->issue_flush_fn(q, bdev->bd_disk, error_sector);
  2180. }
  2181. EXPORT_SYMBOL(blkdev_issue_flush);
  2182. static void drive_stat_acct(struct request *rq, int nr_sectors, int new_io)
  2183. {
  2184. int rw = rq_data_dir(rq);
  2185. if (!blk_fs_request(rq) || !rq->rq_disk)
  2186. return;
  2187. if (!new_io) {
  2188. __disk_stat_inc(rq->rq_disk, merges[rw]);
  2189. } else {
  2190. disk_round_stats(rq->rq_disk);
  2191. rq->rq_disk->in_flight++;
  2192. }
  2193. }
  2194. /*
  2195. * add-request adds a request to the linked list.
  2196. * queue lock is held and interrupts disabled, as we muck with the
  2197. * request queue list.
  2198. */
  2199. static inline void add_request(request_queue_t * q, struct request * req)
  2200. {
  2201. drive_stat_acct(req, req->nr_sectors, 1);
  2202. if (q->activity_fn)
  2203. q->activity_fn(q->activity_data, rq_data_dir(req));
  2204. /*
  2205. * elevator indicated where it wants this request to be
  2206. * inserted at elevator_merge time
  2207. */
  2208. __elv_add_request(q, req, ELEVATOR_INSERT_SORT, 0);
  2209. }
  2210. /*
  2211. * disk_round_stats() - Round off the performance stats on a struct
  2212. * disk_stats.
  2213. *
  2214. * The average IO queue length and utilisation statistics are maintained
  2215. * by observing the current state of the queue length and the amount of
  2216. * time it has been in this state for.
  2217. *
  2218. * Normally, that accounting is done on IO completion, but that can result
  2219. * in more than a second's worth of IO being accounted for within any one
  2220. * second, leading to >100% utilisation. To deal with that, we call this
  2221. * function to do a round-off before returning the results when reading
  2222. * /proc/diskstats. This accounts immediately for all queue usage up to
  2223. * the current jiffies and restarts the counters again.
  2224. */
  2225. void disk_round_stats(struct gendisk *disk)
  2226. {
  2227. unsigned long now = jiffies;
  2228. if (now == disk->stamp)
  2229. return;
  2230. if (disk->in_flight) {
  2231. __disk_stat_add(disk, time_in_queue,
  2232. disk->in_flight * (now - disk->stamp));
  2233. __disk_stat_add(disk, io_ticks, (now - disk->stamp));
  2234. }
  2235. disk->stamp = now;
  2236. }
  2237. EXPORT_SYMBOL_GPL(disk_round_stats);
  2238. /*
  2239. * queue lock must be held
  2240. */
  2241. void __blk_put_request(request_queue_t *q, struct request *req)
  2242. {
  2243. struct request_list *rl = req->rl;
  2244. if (unlikely(!q))
  2245. return;
  2246. if (unlikely(--req->ref_count))
  2247. return;
  2248. elv_completed_request(q, req);
  2249. req->rq_status = RQ_INACTIVE;
  2250. req->rl = NULL;
  2251. /*
  2252. * Request may not have originated from ll_rw_blk. if not,
  2253. * it didn't come out of our reserved rq pools
  2254. */
  2255. if (rl) {
  2256. int rw = rq_data_dir(req);
  2257. int priv = req->flags & REQ_ELVPRIV;
  2258. BUG_ON(!list_empty(&req->queuelist));
  2259. blk_free_request(q, req);
  2260. freed_request(q, rw, priv);
  2261. }
  2262. }
  2263. EXPORT_SYMBOL_GPL(__blk_put_request);
  2264. void blk_put_request(struct request *req)
  2265. {
  2266. unsigned long flags;
  2267. request_queue_t *q = req->q;
  2268. /*
  2269. * Gee, IDE calls in w/ NULL q. Fix IDE and remove the
  2270. * following if (q) test.
  2271. */
  2272. if (q) {
  2273. spin_lock_irqsave(q->queue_lock, flags);
  2274. __blk_put_request(q, req);
  2275. spin_unlock_irqrestore(q->queue_lock, flags);
  2276. }
  2277. }
  2278. EXPORT_SYMBOL(blk_put_request);
  2279. /**
  2280. * blk_end_sync_rq - executes a completion event on a request
  2281. * @rq: request to complete
  2282. * @error: end io status of the request
  2283. */
  2284. void blk_end_sync_rq(struct request *rq, int error)
  2285. {
  2286. struct completion *waiting = rq->waiting;
  2287. rq->waiting = NULL;
  2288. __blk_put_request(rq->q, rq);
  2289. /*
  2290. * complete last, if this is a stack request the process (and thus
  2291. * the rq pointer) could be invalid right after this complete()
  2292. */
  2293. complete(waiting);
  2294. }
  2295. EXPORT_SYMBOL(blk_end_sync_rq);
  2296. /**
  2297. * blk_congestion_wait - wait for a queue to become uncongested
  2298. * @rw: READ or WRITE
  2299. * @timeout: timeout in jiffies
  2300. *
  2301. * Waits for up to @timeout jiffies for a queue (any queue) to exit congestion.
  2302. * If no queues are congested then just wait for the next request to be
  2303. * returned.
  2304. */
  2305. long blk_congestion_wait(int rw, long timeout)
  2306. {
  2307. long ret;
  2308. DEFINE_WAIT(wait);
  2309. wait_queue_head_t *wqh = &congestion_wqh[rw];
  2310. prepare_to_wait(wqh, &wait, TASK_UNINTERRUPTIBLE);
  2311. ret = io_schedule_timeout(timeout);
  2312. finish_wait(wqh, &wait);
  2313. return ret;
  2314. }
  2315. EXPORT_SYMBOL(blk_congestion_wait);
  2316. /*
  2317. * Has to be called with the request spinlock acquired
  2318. */
  2319. static int attempt_merge(request_queue_t *q, struct request *req,
  2320. struct request *next)
  2321. {
  2322. if (!rq_mergeable(req) || !rq_mergeable(next))
  2323. return 0;
  2324. /*
  2325. * not contiguous
  2326. */
  2327. if (req->sector + req->nr_sectors != next->sector)
  2328. return 0;
  2329. if (rq_data_dir(req) != rq_data_dir(next)
  2330. || req->rq_disk != next->rq_disk
  2331. || next->waiting || next->special)
  2332. return 0;
  2333. /*
  2334. * If we are allowed to merge, then append bio list
  2335. * from next to rq and release next. merge_requests_fn
  2336. * will have updated segment counts, update sector
  2337. * counts here.
  2338. */
  2339. if (!q->merge_requests_fn(q, req, next))
  2340. return 0;
  2341. /*
  2342. * At this point we have either done a back merge
  2343. * or front merge. We need the smaller start_time of
  2344. * the merged requests to be the current request
  2345. * for accounting purposes.
  2346. */
  2347. if (time_after(req->start_time, next->start_time))
  2348. req->start_time = next->start_time;
  2349. req->biotail->bi_next = next->bio;
  2350. req->biotail = next->biotail;
  2351. req->nr_sectors = req->hard_nr_sectors += next->hard_nr_sectors;
  2352. elv_merge_requests(q, req, next);
  2353. if (req->rq_disk) {
  2354. disk_round_stats(req->rq_disk);
  2355. req->rq_disk->in_flight--;
  2356. }
  2357. req->ioprio = ioprio_best(req->ioprio, next->ioprio);
  2358. __blk_put_request(q, next);
  2359. return 1;
  2360. }
  2361. static inline int attempt_back_merge(request_queue_t *q, struct request *rq)
  2362. {
  2363. struct request *next = elv_latter_request(q, rq);
  2364. if (next)
  2365. return attempt_merge(q, rq, next);
  2366. return 0;
  2367. }
  2368. static inline int attempt_front_merge(request_queue_t *q, struct request *rq)
  2369. {
  2370. struct request *prev = elv_former_request(q, rq);
  2371. if (prev)
  2372. return attempt_merge(q, prev, rq);
  2373. return 0;
  2374. }
  2375. static void init_request_from_bio(struct request *req, struct bio *bio)
  2376. {
  2377. req->flags |= REQ_CMD;
  2378. /*
  2379. * inherit FAILFAST from bio (for read-ahead, and explicit FAILFAST)
  2380. */
  2381. if (bio_rw_ahead(bio) || bio_failfast(bio))
  2382. req->flags |= REQ_FAILFAST;
  2383. /*
  2384. * REQ_BARRIER implies no merging, but lets make it explicit
  2385. */
  2386. if (unlikely(bio_barrier(bio)))
  2387. req->flags |= (REQ_HARDBARRIER | REQ_NOMERGE);
  2388. if (bio_sync(bio))
  2389. req->flags |= REQ_RW_SYNC;
  2390. req->errors = 0;
  2391. req->hard_sector = req->sector = bio->bi_sector;
  2392. req->hard_nr_sectors = req->nr_sectors = bio_sectors(bio);
  2393. req->current_nr_sectors = req->hard_cur_sectors = bio_cur_sectors(bio);
  2394. req->nr_phys_segments = bio_phys_segments(req->q, bio);
  2395. req->nr_hw_segments = bio_hw_segments(req->q, bio);
  2396. req->buffer = bio_data(bio); /* see ->buffer comment above */
  2397. req->waiting = NULL;
  2398. req->bio = req->biotail = bio;
  2399. req->ioprio = bio_prio(bio);
  2400. req->rq_disk = bio->bi_bdev->bd_disk;
  2401. req->start_time = jiffies;
  2402. }
  2403. static int __make_request(request_queue_t *q, struct bio *bio)
  2404. {
  2405. struct request *req;
  2406. int el_ret, rw, nr_sectors, cur_nr_sectors, barrier, err, sync;
  2407. unsigned short prio;
  2408. sector_t sector;
  2409. sector = bio->bi_sector;
  2410. nr_sectors = bio_sectors(bio);
  2411. cur_nr_sectors = bio_cur_sectors(bio);
  2412. prio = bio_prio(bio);
  2413. rw = bio_data_dir(bio);
  2414. sync = bio_sync(bio);
  2415. /*
  2416. * low level driver can indicate that it wants pages above a
  2417. * certain limit bounced to low memory (ie for highmem, or even
  2418. * ISA dma in theory)
  2419. */
  2420. blk_queue_bounce(q, &bio);
  2421. spin_lock_prefetch(q->queue_lock);
  2422. barrier = bio_barrier(bio);
  2423. if (unlikely(barrier) && (q->next_ordered == QUEUE_ORDERED_NONE)) {
  2424. err = -EOPNOTSUPP;
  2425. goto end_io;
  2426. }
  2427. spin_lock_irq(q->queue_lock);
  2428. if (unlikely(barrier) || elv_queue_empty(q))
  2429. goto get_rq;
  2430. el_ret = elv_merge(q, &req, bio);
  2431. switch (el_ret) {
  2432. case ELEVATOR_BACK_MERGE:
  2433. BUG_ON(!rq_mergeable(req));
  2434. if (!q->back_merge_fn(q, req, bio))
  2435. break;
  2436. blk_add_trace_bio(q, bio, BLK_TA_BACKMERGE);
  2437. req->biotail->bi_next = bio;
  2438. req->biotail = bio;
  2439. req->nr_sectors = req->hard_nr_sectors += nr_sectors;
  2440. req->ioprio = ioprio_best(req->ioprio, prio);
  2441. drive_stat_acct(req, nr_sectors, 0);
  2442. if (!attempt_back_merge(q, req))
  2443. elv_merged_request(q, req);
  2444. goto out;
  2445. case ELEVATOR_FRONT_MERGE:
  2446. BUG_ON(!rq_mergeable(req));
  2447. if (!q->front_merge_fn(q, req, bio))
  2448. break;
  2449. blk_add_trace_bio(q, bio, BLK_TA_FRONTMERGE);
  2450. bio->bi_next = req->bio;
  2451. req->bio = bio;
  2452. /*
  2453. * may not be valid. if the low level driver said
  2454. * it didn't need a bounce buffer then it better
  2455. * not touch req->buffer either...
  2456. */
  2457. req->buffer = bio_data(bio);
  2458. req->current_nr_sectors = cur_nr_sectors;
  2459. req->hard_cur_sectors = cur_nr_sectors;
  2460. req->sector = req->hard_sector = sector;
  2461. req->nr_sectors = req->hard_nr_sectors += nr_sectors;
  2462. req->ioprio = ioprio_best(req->ioprio, prio);
  2463. drive_stat_acct(req, nr_sectors, 0);
  2464. if (!attempt_front_merge(q, req))
  2465. elv_merged_request(q, req);
  2466. goto out;
  2467. /* ELV_NO_MERGE: elevator says don't/can't merge. */
  2468. default:
  2469. ;
  2470. }
  2471. get_rq:
  2472. /*
  2473. * Grab a free request. This is might sleep but can not fail.
  2474. * Returns with the queue unlocked.
  2475. */
  2476. req = get_request_wait(q, rw, bio);
  2477. /*
  2478. * After dropping the lock and possibly sleeping here, our request
  2479. * may now be mergeable after it had proven unmergeable (above).
  2480. * We don't worry about that case for efficiency. It won't happen
  2481. * often, and the elevators are able to handle it.
  2482. */
  2483. init_request_from_bio(req, bio);
  2484. spin_lock_irq(q->queue_lock);
  2485. if (elv_queue_empty(q))
  2486. blk_plug_device(q);
  2487. add_request(q, req);
  2488. out:
  2489. if (sync)
  2490. __generic_unplug_device(q);
  2491. spin_unlock_irq(q->queue_lock);
  2492. return 0;
  2493. end_io:
  2494. bio_endio(bio, nr_sectors << 9, err);
  2495. return 0;
  2496. }
  2497. /*
  2498. * If bio->bi_dev is a partition, remap the location
  2499. */
  2500. static inline void blk_partition_remap(struct bio *bio)
  2501. {
  2502. struct block_device *bdev = bio->bi_bdev;
  2503. if (bdev != bdev->bd_contains) {
  2504. struct hd_struct *p = bdev->bd_part;
  2505. const int rw = bio_data_dir(bio);
  2506. p->sectors[rw] += bio_sectors(bio);
  2507. p->ios[rw]++;
  2508. bio->bi_sector += p->start_sect;
  2509. bio->bi_bdev = bdev->bd_contains;
  2510. }
  2511. }
  2512. static void handle_bad_sector(struct bio *bio)
  2513. {
  2514. char b[BDEVNAME_SIZE];
  2515. printk(KERN_INFO "attempt to access beyond end of device\n");
  2516. printk(KERN_INFO "%s: rw=%ld, want=%Lu, limit=%Lu\n",
  2517. bdevname(bio->bi_bdev, b),
  2518. bio->bi_rw,
  2519. (unsigned long long)bio->bi_sector + bio_sectors(bio),
  2520. (long long)(bio->bi_bdev->bd_inode->i_size >> 9));
  2521. set_bit(BIO_EOF, &bio->bi_flags);
  2522. }
  2523. /**
  2524. * generic_make_request: hand a buffer to its device driver for I/O
  2525. * @bio: The bio describing the location in memory and on the device.
  2526. *
  2527. * generic_make_request() is used to make I/O requests of block
  2528. * devices. It is passed a &struct bio, which describes the I/O that needs
  2529. * to be done.
  2530. *
  2531. * generic_make_request() does not return any status. The
  2532. * success/failure status of the request, along with notification of
  2533. * completion, is delivered asynchronously through the bio->bi_end_io
  2534. * function described (one day) else where.
  2535. *
  2536. * The caller of generic_make_request must make sure that bi_io_vec
  2537. * are set to describe the memory buffer, and that bi_dev and bi_sector are
  2538. * set to describe the device address, and the
  2539. * bi_end_io and optionally bi_private are set to describe how
  2540. * completion notification should be signaled.
  2541. *
  2542. * generic_make_request and the drivers it calls may use bi_next if this
  2543. * bio happens to be merged with someone else, and may change bi_dev and
  2544. * bi_sector for remaps as it sees fit. So the values of these fields
  2545. * should NOT be depended on after the call to generic_make_request.
  2546. */
  2547. void generic_make_request(struct bio *bio)
  2548. {
  2549. request_queue_t *q;
  2550. sector_t maxsector;
  2551. int ret, nr_sectors = bio_sectors(bio);
  2552. dev_t old_dev;
  2553. might_sleep();
  2554. /* Test device or partition size, when known. */
  2555. maxsector = bio->bi_bdev->bd_inode->i_size >> 9;
  2556. if (maxsector) {
  2557. sector_t sector = bio->bi_sector;
  2558. if (maxsector < nr_sectors || maxsector - nr_sectors < sector) {
  2559. /*
  2560. * This may well happen - the kernel calls bread()
  2561. * without checking the size of the device, e.g., when
  2562. * mounting a device.
  2563. */
  2564. handle_bad_sector(bio);
  2565. goto end_io;
  2566. }
  2567. }
  2568. /*
  2569. * Resolve the mapping until finished. (drivers are
  2570. * still free to implement/resolve their own stacking
  2571. * by explicitly returning 0)
  2572. *
  2573. * NOTE: we don't repeat the blk_size check for each new device.
  2574. * Stacking drivers are expected to know what they are doing.
  2575. */
  2576. maxsector = -1;
  2577. old_dev = 0;
  2578. do {
  2579. char b[BDEVNAME_SIZE];
  2580. q = bdev_get_queue(bio->bi_bdev);
  2581. if (!q) {
  2582. printk(KERN_ERR
  2583. "generic_make_request: Trying to access "
  2584. "nonexistent block-device %s (%Lu)\n",
  2585. bdevname(bio->bi_bdev, b),
  2586. (long long) bio->bi_sector);
  2587. end_io:
  2588. bio_endio(bio, bio->bi_size, -EIO);
  2589. break;
  2590. }
  2591. if (unlikely(bio_sectors(bio) > q->max_hw_sectors)) {
  2592. printk("bio too big device %s (%u > %u)\n",
  2593. bdevname(bio->bi_bdev, b),
  2594. bio_sectors(bio),
  2595. q->max_hw_sectors);
  2596. goto end_io;
  2597. }
  2598. if (unlikely(test_bit(QUEUE_FLAG_DEAD, &q->queue_flags)))
  2599. goto end_io;
  2600. /*
  2601. * If this device has partitions, remap block n
  2602. * of partition p to block n+start(p) of the disk.
  2603. */
  2604. blk_partition_remap(bio);
  2605. if (maxsector != -1)
  2606. blk_add_trace_remap(q, bio, old_dev, bio->bi_sector,
  2607. maxsector);
  2608. blk_add_trace_bio(q, bio, BLK_TA_QUEUE);
  2609. maxsector = bio->bi_sector;
  2610. old_dev = bio->bi_bdev->bd_dev;
  2611. ret = q->make_request_fn(q, bio);
  2612. } while (ret);
  2613. }
  2614. EXPORT_SYMBOL(generic_make_request);
  2615. /**
  2616. * submit_bio: submit a bio to the block device layer for I/O
  2617. * @rw: whether to %READ or %WRITE, or maybe to %READA (read ahead)
  2618. * @bio: The &struct bio which describes the I/O
  2619. *
  2620. * submit_bio() is very similar in purpose to generic_make_request(), and
  2621. * uses that function to do most of the work. Both are fairly rough
  2622. * interfaces, @bio must be presetup and ready for I/O.
  2623. *
  2624. */
  2625. void submit_bio(int rw, struct bio *bio)
  2626. {
  2627. int count = bio_sectors(bio);
  2628. BIO_BUG_ON(!bio->bi_size);
  2629. BIO_BUG_ON(!bio->bi_io_vec);
  2630. bio->bi_rw |= rw;
  2631. if (rw & WRITE)
  2632. count_vm_events(PGPGOUT, count);
  2633. else
  2634. count_vm_events(PGPGIN, count);
  2635. if (unlikely(block_dump)) {
  2636. char b[BDEVNAME_SIZE];
  2637. printk(KERN_DEBUG "%s(%d): %s block %Lu on %s\n",
  2638. current->comm, current->pid,
  2639. (rw & WRITE) ? "WRITE" : "READ",
  2640. (unsigned long long)bio->bi_sector,
  2641. bdevname(bio->bi_bdev,b));
  2642. }
  2643. generic_make_request(bio);
  2644. }
  2645. EXPORT_SYMBOL(submit_bio);
  2646. static void blk_recalc_rq_segments(struct request *rq)
  2647. {
  2648. struct bio *bio, *prevbio = NULL;
  2649. int nr_phys_segs, nr_hw_segs;
  2650. unsigned int phys_size, hw_size;
  2651. request_queue_t *q = rq->q;
  2652. if (!rq->bio)
  2653. return;
  2654. phys_size = hw_size = nr_phys_segs = nr_hw_segs = 0;
  2655. rq_for_each_bio(bio, rq) {
  2656. /* Force bio hw/phys segs to be recalculated. */
  2657. bio->bi_flags &= ~(1 << BIO_SEG_VALID);
  2658. nr_phys_segs += bio_phys_segments(q, bio);
  2659. nr_hw_segs += bio_hw_segments(q, bio);
  2660. if (prevbio) {
  2661. int pseg = phys_size + prevbio->bi_size + bio->bi_size;
  2662. int hseg = hw_size + prevbio->bi_size + bio->bi_size;
  2663. if (blk_phys_contig_segment(q, prevbio, bio) &&
  2664. pseg <= q->max_segment_size) {
  2665. nr_phys_segs--;
  2666. phys_size += prevbio->bi_size + bio->bi_size;
  2667. } else
  2668. phys_size = 0;
  2669. if (blk_hw_contig_segment(q, prevbio, bio) &&
  2670. hseg <= q->max_segment_size) {
  2671. nr_hw_segs--;
  2672. hw_size += prevbio->bi_size + bio->bi_size;
  2673. } else
  2674. hw_size = 0;
  2675. }
  2676. prevbio = bio;
  2677. }
  2678. rq->nr_phys_segments = nr_phys_segs;
  2679. rq->nr_hw_segments = nr_hw_segs;
  2680. }
  2681. static void blk_recalc_rq_sectors(struct request *rq, int nsect)
  2682. {
  2683. if (blk_fs_request(rq)) {
  2684. rq->hard_sector += nsect;
  2685. rq->hard_nr_sectors -= nsect;
  2686. /*
  2687. * Move the I/O submission pointers ahead if required.
  2688. */
  2689. if ((rq->nr_sectors >= rq->hard_nr_sectors) &&
  2690. (rq->sector <= rq->hard_sector)) {
  2691. rq->sector = rq->hard_sector;
  2692. rq->nr_sectors = rq->hard_nr_sectors;
  2693. rq->hard_cur_sectors = bio_cur_sectors(rq->bio);
  2694. rq->current_nr_sectors = rq->hard_cur_sectors;
  2695. rq->buffer = bio_data(rq->bio);
  2696. }
  2697. /*
  2698. * if total number of sectors is less than the first segment
  2699. * size, something has gone terribly wrong
  2700. */
  2701. if (rq->nr_sectors < rq->current_nr_sectors) {
  2702. printk("blk: request botched\n");
  2703. rq->nr_sectors = rq->current_nr_sectors;
  2704. }
  2705. }
  2706. }
  2707. static int __end_that_request_first(struct request *req, int uptodate,
  2708. int nr_bytes)
  2709. {
  2710. int total_bytes, bio_nbytes, error, next_idx = 0;
  2711. struct bio *bio;
  2712. blk_add_trace_rq(req->q, req, BLK_TA_COMPLETE);
  2713. /*
  2714. * extend uptodate bool to allow < 0 value to be direct io error
  2715. */
  2716. error = 0;
  2717. if (end_io_error(uptodate))
  2718. error = !uptodate ? -EIO : uptodate;
  2719. /*
  2720. * for a REQ_BLOCK_PC request, we want to carry any eventual
  2721. * sense key with us all the way through
  2722. */
  2723. if (!blk_pc_request(req))
  2724. req->errors = 0;
  2725. if (!uptodate) {
  2726. if (blk_fs_request(req) && !(req->flags & REQ_QUIET))
  2727. printk("end_request: I/O error, dev %s, sector %llu\n",
  2728. req->rq_disk ? req->rq_disk->disk_name : "?",
  2729. (unsigned long long)req->sector);
  2730. }
  2731. if (blk_fs_request(req) && req->rq_disk) {
  2732. const int rw = rq_data_dir(req);
  2733. disk_stat_add(req->rq_disk, sectors[rw], nr_bytes >> 9);
  2734. }
  2735. total_bytes = bio_nbytes = 0;
  2736. while ((bio = req->bio) != NULL) {
  2737. int nbytes;
  2738. if (nr_bytes >= bio->bi_size) {
  2739. req->bio = bio->bi_next;
  2740. nbytes = bio->bi_size;
  2741. if (!ordered_bio_endio(req, bio, nbytes, error))
  2742. bio_endio(bio, nbytes, error);
  2743. next_idx = 0;
  2744. bio_nbytes = 0;
  2745. } else {
  2746. int idx = bio->bi_idx + next_idx;
  2747. if (unlikely(bio->bi_idx >= bio->bi_vcnt)) {
  2748. blk_dump_rq_flags(req, "__end_that");
  2749. printk("%s: bio idx %d >= vcnt %d\n",
  2750. __FUNCTION__,
  2751. bio->bi_idx, bio->bi_vcnt);
  2752. break;
  2753. }
  2754. nbytes = bio_iovec_idx(bio, idx)->bv_len;
  2755. BIO_BUG_ON(nbytes > bio->bi_size);
  2756. /*
  2757. * not a complete bvec done
  2758. */
  2759. if (unlikely(nbytes > nr_bytes)) {
  2760. bio_nbytes += nr_bytes;
  2761. total_bytes += nr_bytes;
  2762. break;
  2763. }
  2764. /*
  2765. * advance to the next vector
  2766. */
  2767. next_idx++;
  2768. bio_nbytes += nbytes;
  2769. }
  2770. total_bytes += nbytes;
  2771. nr_bytes -= nbytes;
  2772. if ((bio = req->bio)) {
  2773. /*
  2774. * end more in this run, or just return 'not-done'
  2775. */
  2776. if (unlikely(nr_bytes <= 0))
  2777. break;
  2778. }
  2779. }
  2780. /*
  2781. * completely done
  2782. */
  2783. if (!req->bio)
  2784. return 0;
  2785. /*
  2786. * if the request wasn't completed, update state
  2787. */
  2788. if (bio_nbytes) {
  2789. if (!ordered_bio_endio(req, bio, bio_nbytes, error))
  2790. bio_endio(bio, bio_nbytes, error);
  2791. bio->bi_idx += next_idx;
  2792. bio_iovec(bio)->bv_offset += nr_bytes;
  2793. bio_iovec(bio)->bv_len -= nr_bytes;
  2794. }
  2795. blk_recalc_rq_sectors(req, total_bytes >> 9);
  2796. blk_recalc_rq_segments(req);
  2797. return 1;
  2798. }
  2799. /**
  2800. * end_that_request_first - end I/O on a request
  2801. * @req: the request being processed
  2802. * @uptodate: 1 for success, 0 for I/O error, < 0 for specific error
  2803. * @nr_sectors: number of sectors to end I/O on
  2804. *
  2805. * Description:
  2806. * Ends I/O on a number of sectors attached to @req, and sets it up
  2807. * for the next range of segments (if any) in the cluster.
  2808. *
  2809. * Return:
  2810. * 0 - we are done with this request, call end_that_request_last()
  2811. * 1 - still buffers pending for this request
  2812. **/
  2813. int end_that_request_first(struct request *req, int uptodate, int nr_sectors)
  2814. {
  2815. return __end_that_request_first(req, uptodate, nr_sectors << 9);
  2816. }
  2817. EXPORT_SYMBOL(end_that_request_first);
  2818. /**
  2819. * end_that_request_chunk - end I/O on a request
  2820. * @req: the request being processed
  2821. * @uptodate: 1 for success, 0 for I/O error, < 0 for specific error
  2822. * @nr_bytes: number of bytes to complete
  2823. *
  2824. * Description:
  2825. * Ends I/O on a number of bytes attached to @req, and sets it up
  2826. * for the next range of segments (if any). Like end_that_request_first(),
  2827. * but deals with bytes instead of sectors.
  2828. *
  2829. * Return:
  2830. * 0 - we are done with this request, call end_that_request_last()
  2831. * 1 - still buffers pending for this request
  2832. **/
  2833. int end_that_request_chunk(struct request *req, int uptodate, int nr_bytes)
  2834. {
  2835. return __end_that_request_first(req, uptodate, nr_bytes);
  2836. }
  2837. EXPORT_SYMBOL(end_that_request_chunk);
  2838. /*
  2839. * splice the completion data to a local structure and hand off to
  2840. * process_completion_queue() to complete the requests
  2841. */
  2842. static void blk_done_softirq(struct softirq_action *h)
  2843. {
  2844. struct list_head *cpu_list, local_list;
  2845. local_irq_disable();
  2846. cpu_list = &__get_cpu_var(blk_cpu_done);
  2847. list_replace_init(cpu_list, &local_list);
  2848. local_irq_enable();
  2849. while (!list_empty(&local_list)) {
  2850. struct request *rq = list_entry(local_list.next, struct request, donelist);
  2851. list_del_init(&rq->donelist);
  2852. rq->q->softirq_done_fn(rq);
  2853. }
  2854. }
  2855. #ifdef CONFIG_HOTPLUG_CPU
  2856. static int blk_cpu_notify(struct notifier_block *self, unsigned long action,
  2857. void *hcpu)
  2858. {
  2859. /*
  2860. * If a CPU goes away, splice its entries to the current CPU
  2861. * and trigger a run of the softirq
  2862. */
  2863. if (action == CPU_DEAD) {
  2864. int cpu = (unsigned long) hcpu;
  2865. local_irq_disable();
  2866. list_splice_init(&per_cpu(blk_cpu_done, cpu),
  2867. &__get_cpu_var(blk_cpu_done));
  2868. raise_softirq_irqoff(BLOCK_SOFTIRQ);
  2869. local_irq_enable();
  2870. }
  2871. return NOTIFY_OK;
  2872. }
  2873. static struct notifier_block __devinitdata blk_cpu_notifier = {
  2874. .notifier_call = blk_cpu_notify,
  2875. };
  2876. #endif /* CONFIG_HOTPLUG_CPU */
  2877. /**
  2878. * blk_complete_request - end I/O on a request
  2879. * @req: the request being processed
  2880. *
  2881. * Description:
  2882. * Ends all I/O on a request. It does not handle partial completions,
  2883. * unless the driver actually implements this in its completion callback
  2884. * through requeueing. Theh actual completion happens out-of-order,
  2885. * through a softirq handler. The user must have registered a completion
  2886. * callback through blk_queue_softirq_done().
  2887. **/
  2888. void blk_complete_request(struct request *req)
  2889. {
  2890. struct list_head *cpu_list;
  2891. unsigned long flags;
  2892. BUG_ON(!req->q->softirq_done_fn);
  2893. local_irq_save(flags);
  2894. cpu_list = &__get_cpu_var(blk_cpu_done);
  2895. list_add_tail(&req->donelist, cpu_list);
  2896. raise_softirq_irqoff(BLOCK_SOFTIRQ);
  2897. local_irq_restore(flags);
  2898. }
  2899. EXPORT_SYMBOL(blk_complete_request);
  2900. /*
  2901. * queue lock must be held
  2902. */
  2903. void end_that_request_last(struct request *req, int uptodate)
  2904. {
  2905. struct gendisk *disk = req->rq_disk;
  2906. int error;
  2907. /*
  2908. * extend uptodate bool to allow < 0 value to be direct io error
  2909. */
  2910. error = 0;
  2911. if (end_io_error(uptodate))
  2912. error = !uptodate ? -EIO : uptodate;
  2913. if (unlikely(laptop_mode) && blk_fs_request(req))
  2914. laptop_io_completion();
  2915. /*
  2916. * Account IO completion. bar_rq isn't accounted as a normal
  2917. * IO on queueing nor completion. Accounting the containing
  2918. * request is enough.
  2919. */
  2920. if (disk && blk_fs_request(req) && req != &req->q->bar_rq) {
  2921. unsigned long duration = jiffies - req->start_time;
  2922. const int rw = rq_data_dir(req);
  2923. __disk_stat_inc(disk, ios[rw]);
  2924. __disk_stat_add(disk, ticks[rw], duration);
  2925. disk_round_stats(disk);
  2926. disk->in_flight--;
  2927. }
  2928. if (req->end_io)
  2929. req->end_io(req, error);
  2930. else
  2931. __blk_put_request(req->q, req);
  2932. }
  2933. EXPORT_SYMBOL(end_that_request_last);
  2934. void end_request(struct request *req, int uptodate)
  2935. {
  2936. if (!end_that_request_first(req, uptodate, req->hard_cur_sectors)) {
  2937. add_disk_randomness(req->rq_disk);
  2938. blkdev_dequeue_request(req);
  2939. end_that_request_last(req, uptodate);
  2940. }
  2941. }
  2942. EXPORT_SYMBOL(end_request);
  2943. void blk_rq_bio_prep(request_queue_t *q, struct request *rq, struct bio *bio)
  2944. {
  2945. /* first three bits are identical in rq->flags and bio->bi_rw */
  2946. rq->flags |= (bio->bi_rw & 7);
  2947. rq->nr_phys_segments = bio_phys_segments(q, bio);
  2948. rq->nr_hw_segments = bio_hw_segments(q, bio);
  2949. rq->current_nr_sectors = bio_cur_sectors(bio);
  2950. rq->hard_cur_sectors = rq->current_nr_sectors;
  2951. rq->hard_nr_sectors = rq->nr_sectors = bio_sectors(bio);
  2952. rq->buffer = bio_data(bio);
  2953. rq->bio = rq->biotail = bio;
  2954. }
  2955. EXPORT_SYMBOL(blk_rq_bio_prep);
  2956. int kblockd_schedule_work(struct work_struct *work)
  2957. {
  2958. return queue_work(kblockd_workqueue, work);
  2959. }
  2960. EXPORT_SYMBOL(kblockd_schedule_work);
  2961. void kblockd_flush(void)
  2962. {
  2963. flush_workqueue(kblockd_workqueue);
  2964. }
  2965. EXPORT_SYMBOL(kblockd_flush);
  2966. int __init blk_dev_init(void)
  2967. {
  2968. int i;
  2969. kblockd_workqueue = create_workqueue("kblockd");
  2970. if (!kblockd_workqueue)
  2971. panic("Failed to create kblockd\n");
  2972. request_cachep = kmem_cache_create("blkdev_requests",
  2973. sizeof(struct request), 0, SLAB_PANIC, NULL, NULL);
  2974. requestq_cachep = kmem_cache_create("blkdev_queue",
  2975. sizeof(request_queue_t), 0, SLAB_PANIC, NULL, NULL);
  2976. iocontext_cachep = kmem_cache_create("blkdev_ioc",
  2977. sizeof(struct io_context), 0, SLAB_PANIC, NULL, NULL);
  2978. for_each_possible_cpu(i)
  2979. INIT_LIST_HEAD(&per_cpu(blk_cpu_done, i));
  2980. open_softirq(BLOCK_SOFTIRQ, blk_done_softirq, NULL);
  2981. register_hotcpu_notifier(&blk_cpu_notifier);
  2982. blk_max_low_pfn = max_low_pfn;
  2983. blk_max_pfn = max_pfn;
  2984. return 0;
  2985. }
  2986. /*
  2987. * IO Context helper functions
  2988. */
  2989. void put_io_context(struct io_context *ioc)
  2990. {
  2991. if (ioc == NULL)
  2992. return;
  2993. BUG_ON(atomic_read(&ioc->refcount) == 0);
  2994. if (atomic_dec_and_test(&ioc->refcount)) {
  2995. struct cfq_io_context *cic;
  2996. rcu_read_lock();
  2997. if (ioc->aic && ioc->aic->dtor)
  2998. ioc->aic->dtor(ioc->aic);
  2999. if (ioc->cic_root.rb_node != NULL) {
  3000. struct rb_node *n = rb_first(&ioc->cic_root);
  3001. cic = rb_entry(n, struct cfq_io_context, rb_node);
  3002. cic->dtor(ioc);
  3003. }
  3004. rcu_read_unlock();
  3005. kmem_cache_free(iocontext_cachep, ioc);
  3006. }
  3007. }
  3008. EXPORT_SYMBOL(put_io_context);
  3009. /* Called by the exitting task */
  3010. void exit_io_context(void)
  3011. {
  3012. unsigned long flags;
  3013. struct io_context *ioc;
  3014. struct cfq_io_context *cic;
  3015. local_irq_save(flags);
  3016. task_lock(current);
  3017. ioc = current->io_context;
  3018. current->io_context = NULL;
  3019. ioc->task = NULL;
  3020. task_unlock(current);
  3021. local_irq_restore(flags);
  3022. if (ioc->aic && ioc->aic->exit)
  3023. ioc->aic->exit(ioc->aic);
  3024. if (ioc->cic_root.rb_node != NULL) {
  3025. cic = rb_entry(rb_first(&ioc->cic_root), struct cfq_io_context, rb_node);
  3026. cic->exit(ioc);
  3027. }
  3028. put_io_context(ioc);
  3029. }
  3030. /*
  3031. * If the current task has no IO context then create one and initialise it.
  3032. * Otherwise, return its existing IO context.
  3033. *
  3034. * This returned IO context doesn't have a specifically elevated refcount,
  3035. * but since the current task itself holds a reference, the context can be
  3036. * used in general code, so long as it stays within `current` context.
  3037. */
  3038. struct io_context *current_io_context(gfp_t gfp_flags)
  3039. {
  3040. struct task_struct *tsk = current;
  3041. struct io_context *ret;
  3042. ret = tsk->io_context;
  3043. if (likely(ret))
  3044. return ret;
  3045. ret = kmem_cache_alloc(iocontext_cachep, gfp_flags);
  3046. if (ret) {
  3047. atomic_set(&ret->refcount, 1);
  3048. ret->task = current;
  3049. ret->set_ioprio = NULL;
  3050. ret->last_waited = jiffies; /* doesn't matter... */
  3051. ret->nr_batch_requests = 0; /* because this is 0 */
  3052. ret->aic = NULL;
  3053. ret->cic_root.rb_node = NULL;
  3054. tsk->io_context = ret;
  3055. }
  3056. return ret;
  3057. }
  3058. EXPORT_SYMBOL(current_io_context);
  3059. /*
  3060. * If the current task has no IO context then create one and initialise it.
  3061. * If it does have a context, take a ref on it.
  3062. *
  3063. * This is always called in the context of the task which submitted the I/O.
  3064. */
  3065. struct io_context *get_io_context(gfp_t gfp_flags)
  3066. {
  3067. struct io_context *ret;
  3068. ret = current_io_context(gfp_flags);
  3069. if (likely(ret))
  3070. atomic_inc(&ret->refcount);
  3071. return ret;
  3072. }
  3073. EXPORT_SYMBOL(get_io_context);
  3074. void copy_io_context(struct io_context **pdst, struct io_context **psrc)
  3075. {
  3076. struct io_context *src = *psrc;
  3077. struct io_context *dst = *pdst;
  3078. if (src) {
  3079. BUG_ON(atomic_read(&src->refcount) == 0);
  3080. atomic_inc(&src->refcount);
  3081. put_io_context(dst);
  3082. *pdst = src;
  3083. }
  3084. }
  3085. EXPORT_SYMBOL(copy_io_context);
  3086. void swap_io_context(struct io_context **ioc1, struct io_context **ioc2)
  3087. {
  3088. struct io_context *temp;
  3089. temp = *ioc1;
  3090. *ioc1 = *ioc2;
  3091. *ioc2 = temp;
  3092. }
  3093. EXPORT_SYMBOL(swap_io_context);
  3094. /*
  3095. * sysfs parts below
  3096. */
  3097. struct queue_sysfs_entry {
  3098. struct attribute attr;
  3099. ssize_t (*show)(struct request_queue *, char *);
  3100. ssize_t (*store)(struct request_queue *, const char *, size_t);
  3101. };
  3102. static ssize_t
  3103. queue_var_show(unsigned int var, char *page)
  3104. {
  3105. return sprintf(page, "%d\n", var);
  3106. }
  3107. static ssize_t
  3108. queue_var_store(unsigned long *var, const char *page, size_t count)
  3109. {
  3110. char *p = (char *) page;
  3111. *var = simple_strtoul(p, &p, 10);
  3112. return count;
  3113. }
  3114. static ssize_t queue_requests_show(struct request_queue *q, char *page)
  3115. {
  3116. return queue_var_show(q->nr_requests, (page));
  3117. }
  3118. static ssize_t
  3119. queue_requests_store(struct request_queue *q, const char *page, size_t count)
  3120. {
  3121. struct request_list *rl = &q->rq;
  3122. unsigned long nr;
  3123. int ret = queue_var_store(&nr, page, count);
  3124. if (nr < BLKDEV_MIN_RQ)
  3125. nr = BLKDEV_MIN_RQ;
  3126. spin_lock_irq(q->queue_lock);
  3127. q->nr_requests = nr;
  3128. blk_queue_congestion_threshold(q);
  3129. if (rl->count[READ] >= queue_congestion_on_threshold(q))
  3130. set_queue_congested(q, READ);
  3131. else if (rl->count[READ] < queue_congestion_off_threshold(q))
  3132. clear_queue_congested(q, READ);
  3133. if (rl->count[WRITE] >= queue_congestion_on_threshold(q))
  3134. set_queue_congested(q, WRITE);
  3135. else if (rl->count[WRITE] < queue_congestion_off_threshold(q))
  3136. clear_queue_congested(q, WRITE);
  3137. if (rl->count[READ] >= q->nr_requests) {
  3138. blk_set_queue_full(q, READ);
  3139. } else if (rl->count[READ]+1 <= q->nr_requests) {
  3140. blk_clear_queue_full(q, READ);
  3141. wake_up(&rl->wait[READ]);
  3142. }
  3143. if (rl->count[WRITE] >= q->nr_requests) {
  3144. blk_set_queue_full(q, WRITE);
  3145. } else if (rl->count[WRITE]+1 <= q->nr_requests) {
  3146. blk_clear_queue_full(q, WRITE);
  3147. wake_up(&rl->wait[WRITE]);
  3148. }
  3149. spin_unlock_irq(q->queue_lock);
  3150. return ret;
  3151. }
  3152. static ssize_t queue_ra_show(struct request_queue *q, char *page)
  3153. {
  3154. int ra_kb = q->backing_dev_info.ra_pages << (PAGE_CACHE_SHIFT - 10);
  3155. return queue_var_show(ra_kb, (page));
  3156. }
  3157. static ssize_t
  3158. queue_ra_store(struct request_queue *q, const char *page, size_t count)
  3159. {
  3160. unsigned long ra_kb;
  3161. ssize_t ret = queue_var_store(&ra_kb, page, count);
  3162. spin_lock_irq(q->queue_lock);
  3163. if (ra_kb > (q->max_sectors >> 1))
  3164. ra_kb = (q->max_sectors >> 1);
  3165. q->backing_dev_info.ra_pages = ra_kb >> (PAGE_CACHE_SHIFT - 10);
  3166. spin_unlock_irq(q->queue_lock);
  3167. return ret;
  3168. }
  3169. static ssize_t queue_max_sectors_show(struct request_queue *q, char *page)
  3170. {
  3171. int max_sectors_kb = q->max_sectors >> 1;
  3172. return queue_var_show(max_sectors_kb, (page));
  3173. }
  3174. static ssize_t
  3175. queue_max_sectors_store(struct request_queue *q, const char *page, size_t count)
  3176. {
  3177. unsigned long max_sectors_kb,
  3178. max_hw_sectors_kb = q->max_hw_sectors >> 1,
  3179. page_kb = 1 << (PAGE_CACHE_SHIFT - 10);
  3180. ssize_t ret = queue_var_store(&max_sectors_kb, page, count);
  3181. int ra_kb;
  3182. if (max_sectors_kb > max_hw_sectors_kb || max_sectors_kb < page_kb)
  3183. return -EINVAL;
  3184. /*
  3185. * Take the queue lock to update the readahead and max_sectors
  3186. * values synchronously:
  3187. */
  3188. spin_lock_irq(q->queue_lock);
  3189. /*
  3190. * Trim readahead window as well, if necessary:
  3191. */
  3192. ra_kb = q->backing_dev_info.ra_pages << (PAGE_CACHE_SHIFT - 10);
  3193. if (ra_kb > max_sectors_kb)
  3194. q->backing_dev_info.ra_pages =
  3195. max_sectors_kb >> (PAGE_CACHE_SHIFT - 10);
  3196. q->max_sectors = max_sectors_kb << 1;
  3197. spin_unlock_irq(q->queue_lock);
  3198. return ret;
  3199. }
  3200. static ssize_t queue_max_hw_sectors_show(struct request_queue *q, char *page)
  3201. {
  3202. int max_hw_sectors_kb = q->max_hw_sectors >> 1;
  3203. return queue_var_show(max_hw_sectors_kb, (page));
  3204. }
  3205. static struct queue_sysfs_entry queue_requests_entry = {
  3206. .attr = {.name = "nr_requests", .mode = S_IRUGO | S_IWUSR },
  3207. .show = queue_requests_show,
  3208. .store = queue_requests_store,
  3209. };
  3210. static struct queue_sysfs_entry queue_ra_entry = {
  3211. .attr = {.name = "read_ahead_kb", .mode = S_IRUGO | S_IWUSR },
  3212. .show = queue_ra_show,
  3213. .store = queue_ra_store,
  3214. };
  3215. static struct queue_sysfs_entry queue_max_sectors_entry = {
  3216. .attr = {.name = "max_sectors_kb", .mode = S_IRUGO | S_IWUSR },
  3217. .show = queue_max_sectors_show,
  3218. .store = queue_max_sectors_store,
  3219. };
  3220. static struct queue_sysfs_entry queue_max_hw_sectors_entry = {
  3221. .attr = {.name = "max_hw_sectors_kb", .mode = S_IRUGO },
  3222. .show = queue_max_hw_sectors_show,
  3223. };
  3224. static struct queue_sysfs_entry queue_iosched_entry = {
  3225. .attr = {.name = "scheduler", .mode = S_IRUGO | S_IWUSR },
  3226. .show = elv_iosched_show,
  3227. .store = elv_iosched_store,
  3228. };
  3229. static struct attribute *default_attrs[] = {
  3230. &queue_requests_entry.attr,
  3231. &queue_ra_entry.attr,
  3232. &queue_max_hw_sectors_entry.attr,
  3233. &queue_max_sectors_entry.attr,
  3234. &queue_iosched_entry.attr,
  3235. NULL,
  3236. };
  3237. #define to_queue(atr) container_of((atr), struct queue_sysfs_entry, attr)
  3238. static ssize_t
  3239. queue_attr_show(struct kobject *kobj, struct attribute *attr, char *page)
  3240. {
  3241. struct queue_sysfs_entry *entry = to_queue(attr);
  3242. request_queue_t *q = container_of(kobj, struct request_queue, kobj);
  3243. ssize_t res;
  3244. if (!entry->show)
  3245. return -EIO;
  3246. mutex_lock(&q->sysfs_lock);
  3247. if (test_bit(QUEUE_FLAG_DEAD, &q->queue_flags)) {
  3248. mutex_unlock(&q->sysfs_lock);
  3249. return -ENOENT;
  3250. }
  3251. res = entry->show(q, page);
  3252. mutex_unlock(&q->sysfs_lock);
  3253. return res;
  3254. }
  3255. static ssize_t
  3256. queue_attr_store(struct kobject *kobj, struct attribute *attr,
  3257. const char *page, size_t length)
  3258. {
  3259. struct queue_sysfs_entry *entry = to_queue(attr);
  3260. request_queue_t *q = container_of(kobj, struct request_queue, kobj);
  3261. ssize_t res;
  3262. if (!entry->store)
  3263. return -EIO;
  3264. mutex_lock(&q->sysfs_lock);
  3265. if (test_bit(QUEUE_FLAG_DEAD, &q->queue_flags)) {
  3266. mutex_unlock(&q->sysfs_lock);
  3267. return -ENOENT;
  3268. }
  3269. res = entry->store(q, page, length);
  3270. mutex_unlock(&q->sysfs_lock);
  3271. return res;
  3272. }
  3273. static struct sysfs_ops queue_sysfs_ops = {
  3274. .show = queue_attr_show,
  3275. .store = queue_attr_store,
  3276. };
  3277. static struct kobj_type queue_ktype = {
  3278. .sysfs_ops = &queue_sysfs_ops,
  3279. .default_attrs = default_attrs,
  3280. .release = blk_release_queue,
  3281. };
  3282. int blk_register_queue(struct gendisk *disk)
  3283. {
  3284. int ret;
  3285. request_queue_t *q = disk->queue;
  3286. if (!q || !q->request_fn)
  3287. return -ENXIO;
  3288. q->kobj.parent = kobject_get(&disk->kobj);
  3289. ret = kobject_add(&q->kobj);
  3290. if (ret < 0)
  3291. return ret;
  3292. kobject_uevent(&q->kobj, KOBJ_ADD);
  3293. ret = elv_register_queue(q);
  3294. if (ret) {
  3295. kobject_uevent(&q->kobj, KOBJ_REMOVE);
  3296. kobject_del(&q->kobj);
  3297. return ret;
  3298. }
  3299. return 0;
  3300. }
  3301. void blk_unregister_queue(struct gendisk *disk)
  3302. {
  3303. request_queue_t *q = disk->queue;
  3304. if (q && q->request_fn) {
  3305. elv_unregister_queue(q);
  3306. kobject_uevent(&q->kobj, KOBJ_REMOVE);
  3307. kobject_del(&q->kobj);
  3308. kobject_put(&disk->kobj);
  3309. }
  3310. }