cfq-iosched.c 104 KB

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  1. /*
  2. * CFQ, or complete fairness queueing, disk scheduler.
  3. *
  4. * Based on ideas from a previously unfinished io
  5. * scheduler (round robin per-process disk scheduling) and Andrea Arcangeli.
  6. *
  7. * Copyright (C) 2003 Jens Axboe <axboe@kernel.dk>
  8. */
  9. #include <linux/module.h>
  10. #include <linux/slab.h>
  11. #include <linux/blkdev.h>
  12. #include <linux/elevator.h>
  13. #include <linux/jiffies.h>
  14. #include <linux/rbtree.h>
  15. #include <linux/ioprio.h>
  16. #include <linux/blktrace_api.h>
  17. #include "cfq.h"
  18. /*
  19. * tunables
  20. */
  21. /* max queue in one round of service */
  22. static const int cfq_quantum = 8;
  23. static const int cfq_fifo_expire[2] = { HZ / 4, HZ / 8 };
  24. /* maximum backwards seek, in KiB */
  25. static const int cfq_back_max = 16 * 1024;
  26. /* penalty of a backwards seek */
  27. static const int cfq_back_penalty = 2;
  28. static const int cfq_slice_sync = HZ / 10;
  29. static int cfq_slice_async = HZ / 25;
  30. static const int cfq_slice_async_rq = 2;
  31. static int cfq_slice_idle = HZ / 125;
  32. static int cfq_group_idle = HZ / 125;
  33. static const int cfq_target_latency = HZ * 3/10; /* 300 ms */
  34. static const int cfq_hist_divisor = 4;
  35. /*
  36. * offset from end of service tree
  37. */
  38. #define CFQ_IDLE_DELAY (HZ / 5)
  39. /*
  40. * below this threshold, we consider thinktime immediate
  41. */
  42. #define CFQ_MIN_TT (2)
  43. #define CFQ_SLICE_SCALE (5)
  44. #define CFQ_HW_QUEUE_MIN (5)
  45. #define CFQ_SERVICE_SHIFT 12
  46. #define CFQQ_SEEK_THR (sector_t)(8 * 100)
  47. #define CFQQ_CLOSE_THR (sector_t)(8 * 1024)
  48. #define CFQQ_SECT_THR_NONROT (sector_t)(2 * 32)
  49. #define CFQQ_SEEKY(cfqq) (hweight32(cfqq->seek_history) > 32/8)
  50. #define RQ_CIC(rq) \
  51. ((struct cfq_io_context *) (rq)->elevator_private[0])
  52. #define RQ_CFQQ(rq) (struct cfq_queue *) ((rq)->elevator_private[1])
  53. #define RQ_CFQG(rq) (struct cfq_group *) ((rq)->elevator_private[2])
  54. static struct kmem_cache *cfq_pool;
  55. static struct kmem_cache *cfq_ioc_pool;
  56. static DEFINE_PER_CPU(unsigned long, cfq_ioc_count);
  57. static struct completion *ioc_gone;
  58. static DEFINE_SPINLOCK(ioc_gone_lock);
  59. static DEFINE_SPINLOCK(cic_index_lock);
  60. static DEFINE_IDA(cic_index_ida);
  61. #define CFQ_PRIO_LISTS IOPRIO_BE_NR
  62. #define cfq_class_idle(cfqq) ((cfqq)->ioprio_class == IOPRIO_CLASS_IDLE)
  63. #define cfq_class_rt(cfqq) ((cfqq)->ioprio_class == IOPRIO_CLASS_RT)
  64. #define sample_valid(samples) ((samples) > 80)
  65. #define rb_entry_cfqg(node) rb_entry((node), struct cfq_group, rb_node)
  66. /*
  67. * Most of our rbtree usage is for sorting with min extraction, so
  68. * if we cache the leftmost node we don't have to walk down the tree
  69. * to find it. Idea borrowed from Ingo Molnars CFS scheduler. We should
  70. * move this into the elevator for the rq sorting as well.
  71. */
  72. struct cfq_rb_root {
  73. struct rb_root rb;
  74. struct rb_node *left;
  75. unsigned count;
  76. unsigned total_weight;
  77. u64 min_vdisktime;
  78. };
  79. #define CFQ_RB_ROOT (struct cfq_rb_root) { .rb = RB_ROOT, .left = NULL, \
  80. .count = 0, .min_vdisktime = 0, }
  81. /*
  82. * Per process-grouping structure
  83. */
  84. struct cfq_queue {
  85. /* reference count */
  86. int ref;
  87. /* various state flags, see below */
  88. unsigned int flags;
  89. /* parent cfq_data */
  90. struct cfq_data *cfqd;
  91. /* service_tree member */
  92. struct rb_node rb_node;
  93. /* service_tree key */
  94. unsigned long rb_key;
  95. /* prio tree member */
  96. struct rb_node p_node;
  97. /* prio tree root we belong to, if any */
  98. struct rb_root *p_root;
  99. /* sorted list of pending requests */
  100. struct rb_root sort_list;
  101. /* if fifo isn't expired, next request to serve */
  102. struct request *next_rq;
  103. /* requests queued in sort_list */
  104. int queued[2];
  105. /* currently allocated requests */
  106. int allocated[2];
  107. /* fifo list of requests in sort_list */
  108. struct list_head fifo;
  109. /* time when queue got scheduled in to dispatch first request. */
  110. unsigned long dispatch_start;
  111. unsigned int allocated_slice;
  112. unsigned int slice_dispatch;
  113. /* time when first request from queue completed and slice started. */
  114. unsigned long slice_start;
  115. unsigned long slice_end;
  116. long slice_resid;
  117. /* pending metadata requests */
  118. int meta_pending;
  119. /* number of requests that are on the dispatch list or inside driver */
  120. int dispatched;
  121. /* io prio of this group */
  122. unsigned short ioprio, org_ioprio;
  123. unsigned short ioprio_class, org_ioprio_class;
  124. pid_t pid;
  125. u32 seek_history;
  126. sector_t last_request_pos;
  127. struct cfq_rb_root *service_tree;
  128. struct cfq_queue *new_cfqq;
  129. struct cfq_group *cfqg;
  130. /* Number of sectors dispatched from queue in single dispatch round */
  131. unsigned long nr_sectors;
  132. };
  133. /*
  134. * First index in the service_trees.
  135. * IDLE is handled separately, so it has negative index
  136. */
  137. enum wl_prio_t {
  138. BE_WORKLOAD = 0,
  139. RT_WORKLOAD = 1,
  140. IDLE_WORKLOAD = 2,
  141. CFQ_PRIO_NR,
  142. };
  143. /*
  144. * Second index in the service_trees.
  145. */
  146. enum wl_type_t {
  147. ASYNC_WORKLOAD = 0,
  148. SYNC_NOIDLE_WORKLOAD = 1,
  149. SYNC_WORKLOAD = 2
  150. };
  151. /* This is per cgroup per device grouping structure */
  152. struct cfq_group {
  153. /* group service_tree member */
  154. struct rb_node rb_node;
  155. /* group service_tree key */
  156. u64 vdisktime;
  157. unsigned int weight;
  158. /* number of cfqq currently on this group */
  159. int nr_cfqq;
  160. /*
  161. * Per group busy queus average. Useful for workload slice calc. We
  162. * create the array for each prio class but at run time it is used
  163. * only for RT and BE class and slot for IDLE class remains unused.
  164. * This is primarily done to avoid confusion and a gcc warning.
  165. */
  166. unsigned int busy_queues_avg[CFQ_PRIO_NR];
  167. /*
  168. * rr lists of queues with requests. We maintain service trees for
  169. * RT and BE classes. These trees are subdivided in subclasses
  170. * of SYNC, SYNC_NOIDLE and ASYNC based on workload type. For IDLE
  171. * class there is no subclassification and all the cfq queues go on
  172. * a single tree service_tree_idle.
  173. * Counts are embedded in the cfq_rb_root
  174. */
  175. struct cfq_rb_root service_trees[2][3];
  176. struct cfq_rb_root service_tree_idle;
  177. unsigned long saved_workload_slice;
  178. enum wl_type_t saved_workload;
  179. enum wl_prio_t saved_serving_prio;
  180. struct blkio_group blkg;
  181. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  182. struct hlist_node cfqd_node;
  183. int ref;
  184. #endif
  185. /* number of requests that are on the dispatch list or inside driver */
  186. int dispatched;
  187. };
  188. /*
  189. * Per block device queue structure
  190. */
  191. struct cfq_data {
  192. struct request_queue *queue;
  193. /* Root service tree for cfq_groups */
  194. struct cfq_rb_root grp_service_tree;
  195. struct cfq_group root_group;
  196. /*
  197. * The priority currently being served
  198. */
  199. enum wl_prio_t serving_prio;
  200. enum wl_type_t serving_type;
  201. unsigned long workload_expires;
  202. struct cfq_group *serving_group;
  203. /*
  204. * Each priority tree is sorted by next_request position. These
  205. * trees are used when determining if two or more queues are
  206. * interleaving requests (see cfq_close_cooperator).
  207. */
  208. struct rb_root prio_trees[CFQ_PRIO_LISTS];
  209. unsigned int busy_queues;
  210. int rq_in_driver;
  211. int rq_in_flight[2];
  212. /*
  213. * queue-depth detection
  214. */
  215. int rq_queued;
  216. int hw_tag;
  217. /*
  218. * hw_tag can be
  219. * -1 => indeterminate, (cfq will behave as if NCQ is present, to allow better detection)
  220. * 1 => NCQ is present (hw_tag_est_depth is the estimated max depth)
  221. * 0 => no NCQ
  222. */
  223. int hw_tag_est_depth;
  224. unsigned int hw_tag_samples;
  225. /*
  226. * idle window management
  227. */
  228. struct timer_list idle_slice_timer;
  229. struct work_struct unplug_work;
  230. struct cfq_queue *active_queue;
  231. struct cfq_io_context *active_cic;
  232. /*
  233. * async queue for each priority case
  234. */
  235. struct cfq_queue *async_cfqq[2][IOPRIO_BE_NR];
  236. struct cfq_queue *async_idle_cfqq;
  237. sector_t last_position;
  238. /*
  239. * tunables, see top of file
  240. */
  241. unsigned int cfq_quantum;
  242. unsigned int cfq_fifo_expire[2];
  243. unsigned int cfq_back_penalty;
  244. unsigned int cfq_back_max;
  245. unsigned int cfq_slice[2];
  246. unsigned int cfq_slice_async_rq;
  247. unsigned int cfq_slice_idle;
  248. unsigned int cfq_group_idle;
  249. unsigned int cfq_latency;
  250. unsigned int cic_index;
  251. struct list_head cic_list;
  252. /*
  253. * Fallback dummy cfqq for extreme OOM conditions
  254. */
  255. struct cfq_queue oom_cfqq;
  256. unsigned long last_delayed_sync;
  257. /* List of cfq groups being managed on this device*/
  258. struct hlist_head cfqg_list;
  259. struct rcu_head rcu;
  260. };
  261. static struct cfq_group *cfq_get_next_cfqg(struct cfq_data *cfqd);
  262. static struct cfq_rb_root *service_tree_for(struct cfq_group *cfqg,
  263. enum wl_prio_t prio,
  264. enum wl_type_t type)
  265. {
  266. if (!cfqg)
  267. return NULL;
  268. if (prio == IDLE_WORKLOAD)
  269. return &cfqg->service_tree_idle;
  270. return &cfqg->service_trees[prio][type];
  271. }
  272. enum cfqq_state_flags {
  273. CFQ_CFQQ_FLAG_on_rr = 0, /* on round-robin busy list */
  274. CFQ_CFQQ_FLAG_wait_request, /* waiting for a request */
  275. CFQ_CFQQ_FLAG_must_dispatch, /* must be allowed a dispatch */
  276. CFQ_CFQQ_FLAG_must_alloc_slice, /* per-slice must_alloc flag */
  277. CFQ_CFQQ_FLAG_fifo_expire, /* FIFO checked in this slice */
  278. CFQ_CFQQ_FLAG_idle_window, /* slice idling enabled */
  279. CFQ_CFQQ_FLAG_prio_changed, /* task priority has changed */
  280. CFQ_CFQQ_FLAG_slice_new, /* no requests dispatched in slice */
  281. CFQ_CFQQ_FLAG_sync, /* synchronous queue */
  282. CFQ_CFQQ_FLAG_coop, /* cfqq is shared */
  283. CFQ_CFQQ_FLAG_split_coop, /* shared cfqq will be splitted */
  284. CFQ_CFQQ_FLAG_deep, /* sync cfqq experienced large depth */
  285. CFQ_CFQQ_FLAG_wait_busy, /* Waiting for next request */
  286. };
  287. #define CFQ_CFQQ_FNS(name) \
  288. static inline void cfq_mark_cfqq_##name(struct cfq_queue *cfqq) \
  289. { \
  290. (cfqq)->flags |= (1 << CFQ_CFQQ_FLAG_##name); \
  291. } \
  292. static inline void cfq_clear_cfqq_##name(struct cfq_queue *cfqq) \
  293. { \
  294. (cfqq)->flags &= ~(1 << CFQ_CFQQ_FLAG_##name); \
  295. } \
  296. static inline int cfq_cfqq_##name(const struct cfq_queue *cfqq) \
  297. { \
  298. return ((cfqq)->flags & (1 << CFQ_CFQQ_FLAG_##name)) != 0; \
  299. }
  300. CFQ_CFQQ_FNS(on_rr);
  301. CFQ_CFQQ_FNS(wait_request);
  302. CFQ_CFQQ_FNS(must_dispatch);
  303. CFQ_CFQQ_FNS(must_alloc_slice);
  304. CFQ_CFQQ_FNS(fifo_expire);
  305. CFQ_CFQQ_FNS(idle_window);
  306. CFQ_CFQQ_FNS(prio_changed);
  307. CFQ_CFQQ_FNS(slice_new);
  308. CFQ_CFQQ_FNS(sync);
  309. CFQ_CFQQ_FNS(coop);
  310. CFQ_CFQQ_FNS(split_coop);
  311. CFQ_CFQQ_FNS(deep);
  312. CFQ_CFQQ_FNS(wait_busy);
  313. #undef CFQ_CFQQ_FNS
  314. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  315. #define cfq_log_cfqq(cfqd, cfqq, fmt, args...) \
  316. blk_add_trace_msg((cfqd)->queue, "cfq%d%c %s " fmt, (cfqq)->pid, \
  317. cfq_cfqq_sync((cfqq)) ? 'S' : 'A', \
  318. blkg_path(&(cfqq)->cfqg->blkg), ##args);
  319. #define cfq_log_cfqg(cfqd, cfqg, fmt, args...) \
  320. blk_add_trace_msg((cfqd)->queue, "%s " fmt, \
  321. blkg_path(&(cfqg)->blkg), ##args); \
  322. #else
  323. #define cfq_log_cfqq(cfqd, cfqq, fmt, args...) \
  324. blk_add_trace_msg((cfqd)->queue, "cfq%d " fmt, (cfqq)->pid, ##args)
  325. #define cfq_log_cfqg(cfqd, cfqg, fmt, args...) do {} while (0);
  326. #endif
  327. #define cfq_log(cfqd, fmt, args...) \
  328. blk_add_trace_msg((cfqd)->queue, "cfq " fmt, ##args)
  329. /* Traverses through cfq group service trees */
  330. #define for_each_cfqg_st(cfqg, i, j, st) \
  331. for (i = 0; i <= IDLE_WORKLOAD; i++) \
  332. for (j = 0, st = i < IDLE_WORKLOAD ? &cfqg->service_trees[i][j]\
  333. : &cfqg->service_tree_idle; \
  334. (i < IDLE_WORKLOAD && j <= SYNC_WORKLOAD) || \
  335. (i == IDLE_WORKLOAD && j == 0); \
  336. j++, st = i < IDLE_WORKLOAD ? \
  337. &cfqg->service_trees[i][j]: NULL) \
  338. static inline bool iops_mode(struct cfq_data *cfqd)
  339. {
  340. /*
  341. * If we are not idling on queues and it is a NCQ drive, parallel
  342. * execution of requests is on and measuring time is not possible
  343. * in most of the cases until and unless we drive shallower queue
  344. * depths and that becomes a performance bottleneck. In such cases
  345. * switch to start providing fairness in terms of number of IOs.
  346. */
  347. if (!cfqd->cfq_slice_idle && cfqd->hw_tag)
  348. return true;
  349. else
  350. return false;
  351. }
  352. static inline enum wl_prio_t cfqq_prio(struct cfq_queue *cfqq)
  353. {
  354. if (cfq_class_idle(cfqq))
  355. return IDLE_WORKLOAD;
  356. if (cfq_class_rt(cfqq))
  357. return RT_WORKLOAD;
  358. return BE_WORKLOAD;
  359. }
  360. static enum wl_type_t cfqq_type(struct cfq_queue *cfqq)
  361. {
  362. if (!cfq_cfqq_sync(cfqq))
  363. return ASYNC_WORKLOAD;
  364. if (!cfq_cfqq_idle_window(cfqq))
  365. return SYNC_NOIDLE_WORKLOAD;
  366. return SYNC_WORKLOAD;
  367. }
  368. static inline int cfq_group_busy_queues_wl(enum wl_prio_t wl,
  369. struct cfq_data *cfqd,
  370. struct cfq_group *cfqg)
  371. {
  372. if (wl == IDLE_WORKLOAD)
  373. return cfqg->service_tree_idle.count;
  374. return cfqg->service_trees[wl][ASYNC_WORKLOAD].count
  375. + cfqg->service_trees[wl][SYNC_NOIDLE_WORKLOAD].count
  376. + cfqg->service_trees[wl][SYNC_WORKLOAD].count;
  377. }
  378. static inline int cfqg_busy_async_queues(struct cfq_data *cfqd,
  379. struct cfq_group *cfqg)
  380. {
  381. return cfqg->service_trees[RT_WORKLOAD][ASYNC_WORKLOAD].count
  382. + cfqg->service_trees[BE_WORKLOAD][ASYNC_WORKLOAD].count;
  383. }
  384. static void cfq_dispatch_insert(struct request_queue *, struct request *);
  385. static struct cfq_queue *cfq_get_queue(struct cfq_data *, bool,
  386. struct io_context *, gfp_t);
  387. static struct cfq_io_context *cfq_cic_lookup(struct cfq_data *,
  388. struct io_context *);
  389. static inline struct cfq_queue *cic_to_cfqq(struct cfq_io_context *cic,
  390. bool is_sync)
  391. {
  392. return cic->cfqq[is_sync];
  393. }
  394. static inline void cic_set_cfqq(struct cfq_io_context *cic,
  395. struct cfq_queue *cfqq, bool is_sync)
  396. {
  397. cic->cfqq[is_sync] = cfqq;
  398. }
  399. #define CIC_DEAD_KEY 1ul
  400. #define CIC_DEAD_INDEX_SHIFT 1
  401. static inline void *cfqd_dead_key(struct cfq_data *cfqd)
  402. {
  403. return (void *)(cfqd->cic_index << CIC_DEAD_INDEX_SHIFT | CIC_DEAD_KEY);
  404. }
  405. static inline struct cfq_data *cic_to_cfqd(struct cfq_io_context *cic)
  406. {
  407. struct cfq_data *cfqd = cic->key;
  408. if (unlikely((unsigned long) cfqd & CIC_DEAD_KEY))
  409. return NULL;
  410. return cfqd;
  411. }
  412. /*
  413. * We regard a request as SYNC, if it's either a read or has the SYNC bit
  414. * set (in which case it could also be direct WRITE).
  415. */
  416. static inline bool cfq_bio_sync(struct bio *bio)
  417. {
  418. return bio_data_dir(bio) == READ || (bio->bi_rw & REQ_SYNC);
  419. }
  420. /*
  421. * scheduler run of queue, if there are requests pending and no one in the
  422. * driver that will restart queueing
  423. */
  424. static inline void cfq_schedule_dispatch(struct cfq_data *cfqd)
  425. {
  426. if (cfqd->busy_queues) {
  427. cfq_log(cfqd, "schedule dispatch");
  428. kblockd_schedule_work(cfqd->queue, &cfqd->unplug_work);
  429. }
  430. }
  431. static int cfq_queue_empty(struct request_queue *q)
  432. {
  433. struct cfq_data *cfqd = q->elevator->elevator_data;
  434. return !cfqd->rq_queued;
  435. }
  436. /*
  437. * Scale schedule slice based on io priority. Use the sync time slice only
  438. * if a queue is marked sync and has sync io queued. A sync queue with async
  439. * io only, should not get full sync slice length.
  440. */
  441. static inline int cfq_prio_slice(struct cfq_data *cfqd, bool sync,
  442. unsigned short prio)
  443. {
  444. const int base_slice = cfqd->cfq_slice[sync];
  445. WARN_ON(prio >= IOPRIO_BE_NR);
  446. return base_slice + (base_slice/CFQ_SLICE_SCALE * (4 - prio));
  447. }
  448. static inline int
  449. cfq_prio_to_slice(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  450. {
  451. return cfq_prio_slice(cfqd, cfq_cfqq_sync(cfqq), cfqq->ioprio);
  452. }
  453. static inline u64 cfq_scale_slice(unsigned long delta, struct cfq_group *cfqg)
  454. {
  455. u64 d = delta << CFQ_SERVICE_SHIFT;
  456. d = d * BLKIO_WEIGHT_DEFAULT;
  457. do_div(d, cfqg->weight);
  458. return d;
  459. }
  460. static inline u64 max_vdisktime(u64 min_vdisktime, u64 vdisktime)
  461. {
  462. s64 delta = (s64)(vdisktime - min_vdisktime);
  463. if (delta > 0)
  464. min_vdisktime = vdisktime;
  465. return min_vdisktime;
  466. }
  467. static inline u64 min_vdisktime(u64 min_vdisktime, u64 vdisktime)
  468. {
  469. s64 delta = (s64)(vdisktime - min_vdisktime);
  470. if (delta < 0)
  471. min_vdisktime = vdisktime;
  472. return min_vdisktime;
  473. }
  474. static void update_min_vdisktime(struct cfq_rb_root *st)
  475. {
  476. u64 vdisktime = st->min_vdisktime;
  477. struct cfq_group *cfqg;
  478. if (st->left) {
  479. cfqg = rb_entry_cfqg(st->left);
  480. vdisktime = min_vdisktime(vdisktime, cfqg->vdisktime);
  481. }
  482. st->min_vdisktime = max_vdisktime(st->min_vdisktime, vdisktime);
  483. }
  484. /*
  485. * get averaged number of queues of RT/BE priority.
  486. * average is updated, with a formula that gives more weight to higher numbers,
  487. * to quickly follows sudden increases and decrease slowly
  488. */
  489. static inline unsigned cfq_group_get_avg_queues(struct cfq_data *cfqd,
  490. struct cfq_group *cfqg, bool rt)
  491. {
  492. unsigned min_q, max_q;
  493. unsigned mult = cfq_hist_divisor - 1;
  494. unsigned round = cfq_hist_divisor / 2;
  495. unsigned busy = cfq_group_busy_queues_wl(rt, cfqd, cfqg);
  496. min_q = min(cfqg->busy_queues_avg[rt], busy);
  497. max_q = max(cfqg->busy_queues_avg[rt], busy);
  498. cfqg->busy_queues_avg[rt] = (mult * max_q + min_q + round) /
  499. cfq_hist_divisor;
  500. return cfqg->busy_queues_avg[rt];
  501. }
  502. static inline unsigned
  503. cfq_group_slice(struct cfq_data *cfqd, struct cfq_group *cfqg)
  504. {
  505. struct cfq_rb_root *st = &cfqd->grp_service_tree;
  506. return cfq_target_latency * cfqg->weight / st->total_weight;
  507. }
  508. static inline unsigned
  509. cfq_scaled_cfqq_slice(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  510. {
  511. unsigned slice = cfq_prio_to_slice(cfqd, cfqq);
  512. if (cfqd->cfq_latency) {
  513. /*
  514. * interested queues (we consider only the ones with the same
  515. * priority class in the cfq group)
  516. */
  517. unsigned iq = cfq_group_get_avg_queues(cfqd, cfqq->cfqg,
  518. cfq_class_rt(cfqq));
  519. unsigned sync_slice = cfqd->cfq_slice[1];
  520. unsigned expect_latency = sync_slice * iq;
  521. unsigned group_slice = cfq_group_slice(cfqd, cfqq->cfqg);
  522. if (expect_latency > group_slice) {
  523. unsigned base_low_slice = 2 * cfqd->cfq_slice_idle;
  524. /* scale low_slice according to IO priority
  525. * and sync vs async */
  526. unsigned low_slice =
  527. min(slice, base_low_slice * slice / sync_slice);
  528. /* the adapted slice value is scaled to fit all iqs
  529. * into the target latency */
  530. slice = max(slice * group_slice / expect_latency,
  531. low_slice);
  532. }
  533. }
  534. return slice;
  535. }
  536. static inline void
  537. cfq_set_prio_slice(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  538. {
  539. unsigned slice = cfq_scaled_cfqq_slice(cfqd, cfqq);
  540. cfqq->slice_start = jiffies;
  541. cfqq->slice_end = jiffies + slice;
  542. cfqq->allocated_slice = slice;
  543. cfq_log_cfqq(cfqd, cfqq, "set_slice=%lu", cfqq->slice_end - jiffies);
  544. }
  545. /*
  546. * We need to wrap this check in cfq_cfqq_slice_new(), since ->slice_end
  547. * isn't valid until the first request from the dispatch is activated
  548. * and the slice time set.
  549. */
  550. static inline bool cfq_slice_used(struct cfq_queue *cfqq)
  551. {
  552. if (cfq_cfqq_slice_new(cfqq))
  553. return false;
  554. if (time_before(jiffies, cfqq->slice_end))
  555. return false;
  556. return true;
  557. }
  558. /*
  559. * Lifted from AS - choose which of rq1 and rq2 that is best served now.
  560. * We choose the request that is closest to the head right now. Distance
  561. * behind the head is penalized and only allowed to a certain extent.
  562. */
  563. static struct request *
  564. cfq_choose_req(struct cfq_data *cfqd, struct request *rq1, struct request *rq2, sector_t last)
  565. {
  566. sector_t s1, s2, d1 = 0, d2 = 0;
  567. unsigned long back_max;
  568. #define CFQ_RQ1_WRAP 0x01 /* request 1 wraps */
  569. #define CFQ_RQ2_WRAP 0x02 /* request 2 wraps */
  570. unsigned wrap = 0; /* bit mask: requests behind the disk head? */
  571. if (rq1 == NULL || rq1 == rq2)
  572. return rq2;
  573. if (rq2 == NULL)
  574. return rq1;
  575. if (rq_is_sync(rq1) && !rq_is_sync(rq2))
  576. return rq1;
  577. else if (rq_is_sync(rq2) && !rq_is_sync(rq1))
  578. return rq2;
  579. if ((rq1->cmd_flags & REQ_META) && !(rq2->cmd_flags & REQ_META))
  580. return rq1;
  581. else if ((rq2->cmd_flags & REQ_META) &&
  582. !(rq1->cmd_flags & REQ_META))
  583. return rq2;
  584. s1 = blk_rq_pos(rq1);
  585. s2 = blk_rq_pos(rq2);
  586. /*
  587. * by definition, 1KiB is 2 sectors
  588. */
  589. back_max = cfqd->cfq_back_max * 2;
  590. /*
  591. * Strict one way elevator _except_ in the case where we allow
  592. * short backward seeks which are biased as twice the cost of a
  593. * similar forward seek.
  594. */
  595. if (s1 >= last)
  596. d1 = s1 - last;
  597. else if (s1 + back_max >= last)
  598. d1 = (last - s1) * cfqd->cfq_back_penalty;
  599. else
  600. wrap |= CFQ_RQ1_WRAP;
  601. if (s2 >= last)
  602. d2 = s2 - last;
  603. else if (s2 + back_max >= last)
  604. d2 = (last - s2) * cfqd->cfq_back_penalty;
  605. else
  606. wrap |= CFQ_RQ2_WRAP;
  607. /* Found required data */
  608. /*
  609. * By doing switch() on the bit mask "wrap" we avoid having to
  610. * check two variables for all permutations: --> faster!
  611. */
  612. switch (wrap) {
  613. case 0: /* common case for CFQ: rq1 and rq2 not wrapped */
  614. if (d1 < d2)
  615. return rq1;
  616. else if (d2 < d1)
  617. return rq2;
  618. else {
  619. if (s1 >= s2)
  620. return rq1;
  621. else
  622. return rq2;
  623. }
  624. case CFQ_RQ2_WRAP:
  625. return rq1;
  626. case CFQ_RQ1_WRAP:
  627. return rq2;
  628. case (CFQ_RQ1_WRAP|CFQ_RQ2_WRAP): /* both rqs wrapped */
  629. default:
  630. /*
  631. * Since both rqs are wrapped,
  632. * start with the one that's further behind head
  633. * (--> only *one* back seek required),
  634. * since back seek takes more time than forward.
  635. */
  636. if (s1 <= s2)
  637. return rq1;
  638. else
  639. return rq2;
  640. }
  641. }
  642. /*
  643. * The below is leftmost cache rbtree addon
  644. */
  645. static struct cfq_queue *cfq_rb_first(struct cfq_rb_root *root)
  646. {
  647. /* Service tree is empty */
  648. if (!root->count)
  649. return NULL;
  650. if (!root->left)
  651. root->left = rb_first(&root->rb);
  652. if (root->left)
  653. return rb_entry(root->left, struct cfq_queue, rb_node);
  654. return NULL;
  655. }
  656. static struct cfq_group *cfq_rb_first_group(struct cfq_rb_root *root)
  657. {
  658. if (!root->left)
  659. root->left = rb_first(&root->rb);
  660. if (root->left)
  661. return rb_entry_cfqg(root->left);
  662. return NULL;
  663. }
  664. static void rb_erase_init(struct rb_node *n, struct rb_root *root)
  665. {
  666. rb_erase(n, root);
  667. RB_CLEAR_NODE(n);
  668. }
  669. static void cfq_rb_erase(struct rb_node *n, struct cfq_rb_root *root)
  670. {
  671. if (root->left == n)
  672. root->left = NULL;
  673. rb_erase_init(n, &root->rb);
  674. --root->count;
  675. }
  676. /*
  677. * would be nice to take fifo expire time into account as well
  678. */
  679. static struct request *
  680. cfq_find_next_rq(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  681. struct request *last)
  682. {
  683. struct rb_node *rbnext = rb_next(&last->rb_node);
  684. struct rb_node *rbprev = rb_prev(&last->rb_node);
  685. struct request *next = NULL, *prev = NULL;
  686. BUG_ON(RB_EMPTY_NODE(&last->rb_node));
  687. if (rbprev)
  688. prev = rb_entry_rq(rbprev);
  689. if (rbnext)
  690. next = rb_entry_rq(rbnext);
  691. else {
  692. rbnext = rb_first(&cfqq->sort_list);
  693. if (rbnext && rbnext != &last->rb_node)
  694. next = rb_entry_rq(rbnext);
  695. }
  696. return cfq_choose_req(cfqd, next, prev, blk_rq_pos(last));
  697. }
  698. static unsigned long cfq_slice_offset(struct cfq_data *cfqd,
  699. struct cfq_queue *cfqq)
  700. {
  701. /*
  702. * just an approximation, should be ok.
  703. */
  704. return (cfqq->cfqg->nr_cfqq - 1) * (cfq_prio_slice(cfqd, 1, 0) -
  705. cfq_prio_slice(cfqd, cfq_cfqq_sync(cfqq), cfqq->ioprio));
  706. }
  707. static inline s64
  708. cfqg_key(struct cfq_rb_root *st, struct cfq_group *cfqg)
  709. {
  710. return cfqg->vdisktime - st->min_vdisktime;
  711. }
  712. static void
  713. __cfq_group_service_tree_add(struct cfq_rb_root *st, struct cfq_group *cfqg)
  714. {
  715. struct rb_node **node = &st->rb.rb_node;
  716. struct rb_node *parent = NULL;
  717. struct cfq_group *__cfqg;
  718. s64 key = cfqg_key(st, cfqg);
  719. int left = 1;
  720. while (*node != NULL) {
  721. parent = *node;
  722. __cfqg = rb_entry_cfqg(parent);
  723. if (key < cfqg_key(st, __cfqg))
  724. node = &parent->rb_left;
  725. else {
  726. node = &parent->rb_right;
  727. left = 0;
  728. }
  729. }
  730. if (left)
  731. st->left = &cfqg->rb_node;
  732. rb_link_node(&cfqg->rb_node, parent, node);
  733. rb_insert_color(&cfqg->rb_node, &st->rb);
  734. }
  735. static void
  736. cfq_group_service_tree_add(struct cfq_data *cfqd, struct cfq_group *cfqg)
  737. {
  738. struct cfq_rb_root *st = &cfqd->grp_service_tree;
  739. struct cfq_group *__cfqg;
  740. struct rb_node *n;
  741. cfqg->nr_cfqq++;
  742. if (!RB_EMPTY_NODE(&cfqg->rb_node))
  743. return;
  744. /*
  745. * Currently put the group at the end. Later implement something
  746. * so that groups get lesser vtime based on their weights, so that
  747. * if group does not loose all if it was not continously backlogged.
  748. */
  749. n = rb_last(&st->rb);
  750. if (n) {
  751. __cfqg = rb_entry_cfqg(n);
  752. cfqg->vdisktime = __cfqg->vdisktime + CFQ_IDLE_DELAY;
  753. } else
  754. cfqg->vdisktime = st->min_vdisktime;
  755. __cfq_group_service_tree_add(st, cfqg);
  756. st->total_weight += cfqg->weight;
  757. }
  758. static void
  759. cfq_group_service_tree_del(struct cfq_data *cfqd, struct cfq_group *cfqg)
  760. {
  761. struct cfq_rb_root *st = &cfqd->grp_service_tree;
  762. BUG_ON(cfqg->nr_cfqq < 1);
  763. cfqg->nr_cfqq--;
  764. /* If there are other cfq queues under this group, don't delete it */
  765. if (cfqg->nr_cfqq)
  766. return;
  767. cfq_log_cfqg(cfqd, cfqg, "del_from_rr group");
  768. st->total_weight -= cfqg->weight;
  769. if (!RB_EMPTY_NODE(&cfqg->rb_node))
  770. cfq_rb_erase(&cfqg->rb_node, st);
  771. cfqg->saved_workload_slice = 0;
  772. cfq_blkiocg_update_dequeue_stats(&cfqg->blkg, 1);
  773. }
  774. static inline unsigned int cfq_cfqq_slice_usage(struct cfq_queue *cfqq)
  775. {
  776. unsigned int slice_used;
  777. /*
  778. * Queue got expired before even a single request completed or
  779. * got expired immediately after first request completion.
  780. */
  781. if (!cfqq->slice_start || cfqq->slice_start == jiffies) {
  782. /*
  783. * Also charge the seek time incurred to the group, otherwise
  784. * if there are mutiple queues in the group, each can dispatch
  785. * a single request on seeky media and cause lots of seek time
  786. * and group will never know it.
  787. */
  788. slice_used = max_t(unsigned, (jiffies - cfqq->dispatch_start),
  789. 1);
  790. } else {
  791. slice_used = jiffies - cfqq->slice_start;
  792. if (slice_used > cfqq->allocated_slice)
  793. slice_used = cfqq->allocated_slice;
  794. }
  795. return slice_used;
  796. }
  797. static void cfq_group_served(struct cfq_data *cfqd, struct cfq_group *cfqg,
  798. struct cfq_queue *cfqq)
  799. {
  800. struct cfq_rb_root *st = &cfqd->grp_service_tree;
  801. unsigned int used_sl, charge;
  802. int nr_sync = cfqg->nr_cfqq - cfqg_busy_async_queues(cfqd, cfqg)
  803. - cfqg->service_tree_idle.count;
  804. BUG_ON(nr_sync < 0);
  805. used_sl = charge = cfq_cfqq_slice_usage(cfqq);
  806. if (iops_mode(cfqd))
  807. charge = cfqq->slice_dispatch;
  808. else if (!cfq_cfqq_sync(cfqq) && !nr_sync)
  809. charge = cfqq->allocated_slice;
  810. /* Can't update vdisktime while group is on service tree */
  811. cfq_rb_erase(&cfqg->rb_node, st);
  812. cfqg->vdisktime += cfq_scale_slice(charge, cfqg);
  813. __cfq_group_service_tree_add(st, cfqg);
  814. /* This group is being expired. Save the context */
  815. if (time_after(cfqd->workload_expires, jiffies)) {
  816. cfqg->saved_workload_slice = cfqd->workload_expires
  817. - jiffies;
  818. cfqg->saved_workload = cfqd->serving_type;
  819. cfqg->saved_serving_prio = cfqd->serving_prio;
  820. } else
  821. cfqg->saved_workload_slice = 0;
  822. cfq_log_cfqg(cfqd, cfqg, "served: vt=%llu min_vt=%llu", cfqg->vdisktime,
  823. st->min_vdisktime);
  824. cfq_log_cfqq(cfqq->cfqd, cfqq, "sl_used=%u disp=%u charge=%u iops=%u"
  825. " sect=%u", used_sl, cfqq->slice_dispatch, charge,
  826. iops_mode(cfqd), cfqq->nr_sectors);
  827. cfq_blkiocg_update_timeslice_used(&cfqg->blkg, used_sl);
  828. cfq_blkiocg_set_start_empty_time(&cfqg->blkg);
  829. }
  830. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  831. static inline struct cfq_group *cfqg_of_blkg(struct blkio_group *blkg)
  832. {
  833. if (blkg)
  834. return container_of(blkg, struct cfq_group, blkg);
  835. return NULL;
  836. }
  837. void cfq_update_blkio_group_weight(void *key, struct blkio_group *blkg,
  838. unsigned int weight)
  839. {
  840. cfqg_of_blkg(blkg)->weight = weight;
  841. }
  842. static struct cfq_group *
  843. cfq_find_alloc_cfqg(struct cfq_data *cfqd, struct cgroup *cgroup, int create)
  844. {
  845. struct blkio_cgroup *blkcg = cgroup_to_blkio_cgroup(cgroup);
  846. struct cfq_group *cfqg = NULL;
  847. void *key = cfqd;
  848. int i, j;
  849. struct cfq_rb_root *st;
  850. struct backing_dev_info *bdi = &cfqd->queue->backing_dev_info;
  851. unsigned int major, minor;
  852. cfqg = cfqg_of_blkg(blkiocg_lookup_group(blkcg, key));
  853. if (cfqg && !cfqg->blkg.dev && bdi->dev && dev_name(bdi->dev)) {
  854. sscanf(dev_name(bdi->dev), "%u:%u", &major, &minor);
  855. cfqg->blkg.dev = MKDEV(major, minor);
  856. goto done;
  857. }
  858. if (cfqg || !create)
  859. goto done;
  860. cfqg = kzalloc_node(sizeof(*cfqg), GFP_ATOMIC, cfqd->queue->node);
  861. if (!cfqg)
  862. goto done;
  863. for_each_cfqg_st(cfqg, i, j, st)
  864. *st = CFQ_RB_ROOT;
  865. RB_CLEAR_NODE(&cfqg->rb_node);
  866. /*
  867. * Take the initial reference that will be released on destroy
  868. * This can be thought of a joint reference by cgroup and
  869. * elevator which will be dropped by either elevator exit
  870. * or cgroup deletion path depending on who is exiting first.
  871. */
  872. cfqg->ref = 1;
  873. /*
  874. * Add group onto cgroup list. It might happen that bdi->dev is
  875. * not initialized yet. Initialize this new group without major
  876. * and minor info and this info will be filled in once a new thread
  877. * comes for IO. See code above.
  878. */
  879. if (bdi->dev) {
  880. sscanf(dev_name(bdi->dev), "%u:%u", &major, &minor);
  881. cfq_blkiocg_add_blkio_group(blkcg, &cfqg->blkg, (void *)cfqd,
  882. MKDEV(major, minor));
  883. } else
  884. cfq_blkiocg_add_blkio_group(blkcg, &cfqg->blkg, (void *)cfqd,
  885. 0);
  886. cfqg->weight = blkcg_get_weight(blkcg, cfqg->blkg.dev);
  887. /* Add group on cfqd list */
  888. hlist_add_head(&cfqg->cfqd_node, &cfqd->cfqg_list);
  889. done:
  890. return cfqg;
  891. }
  892. /*
  893. * Search for the cfq group current task belongs to. If create = 1, then also
  894. * create the cfq group if it does not exist. request_queue lock must be held.
  895. */
  896. static struct cfq_group *cfq_get_cfqg(struct cfq_data *cfqd, int create)
  897. {
  898. struct cgroup *cgroup;
  899. struct cfq_group *cfqg = NULL;
  900. rcu_read_lock();
  901. cgroup = task_cgroup(current, blkio_subsys_id);
  902. cfqg = cfq_find_alloc_cfqg(cfqd, cgroup, create);
  903. if (!cfqg && create)
  904. cfqg = &cfqd->root_group;
  905. rcu_read_unlock();
  906. return cfqg;
  907. }
  908. static inline struct cfq_group *cfq_ref_get_cfqg(struct cfq_group *cfqg)
  909. {
  910. cfqg->ref++;
  911. return cfqg;
  912. }
  913. static void cfq_link_cfqq_cfqg(struct cfq_queue *cfqq, struct cfq_group *cfqg)
  914. {
  915. /* Currently, all async queues are mapped to root group */
  916. if (!cfq_cfqq_sync(cfqq))
  917. cfqg = &cfqq->cfqd->root_group;
  918. cfqq->cfqg = cfqg;
  919. /* cfqq reference on cfqg */
  920. cfqq->cfqg->ref++;
  921. }
  922. static void cfq_put_cfqg(struct cfq_group *cfqg)
  923. {
  924. struct cfq_rb_root *st;
  925. int i, j;
  926. BUG_ON(cfqg->ref <= 0);
  927. cfqg->ref--;
  928. if (cfqg->ref)
  929. return;
  930. for_each_cfqg_st(cfqg, i, j, st)
  931. BUG_ON(!RB_EMPTY_ROOT(&st->rb));
  932. kfree(cfqg);
  933. }
  934. static void cfq_destroy_cfqg(struct cfq_data *cfqd, struct cfq_group *cfqg)
  935. {
  936. /* Something wrong if we are trying to remove same group twice */
  937. BUG_ON(hlist_unhashed(&cfqg->cfqd_node));
  938. hlist_del_init(&cfqg->cfqd_node);
  939. /*
  940. * Put the reference taken at the time of creation so that when all
  941. * queues are gone, group can be destroyed.
  942. */
  943. cfq_put_cfqg(cfqg);
  944. }
  945. static void cfq_release_cfq_groups(struct cfq_data *cfqd)
  946. {
  947. struct hlist_node *pos, *n;
  948. struct cfq_group *cfqg;
  949. hlist_for_each_entry_safe(cfqg, pos, n, &cfqd->cfqg_list, cfqd_node) {
  950. /*
  951. * If cgroup removal path got to blk_group first and removed
  952. * it from cgroup list, then it will take care of destroying
  953. * cfqg also.
  954. */
  955. if (!cfq_blkiocg_del_blkio_group(&cfqg->blkg))
  956. cfq_destroy_cfqg(cfqd, cfqg);
  957. }
  958. }
  959. /*
  960. * Blk cgroup controller notification saying that blkio_group object is being
  961. * delinked as associated cgroup object is going away. That also means that
  962. * no new IO will come in this group. So get rid of this group as soon as
  963. * any pending IO in the group is finished.
  964. *
  965. * This function is called under rcu_read_lock(). key is the rcu protected
  966. * pointer. That means "key" is a valid cfq_data pointer as long as we are rcu
  967. * read lock.
  968. *
  969. * "key" was fetched from blkio_group under blkio_cgroup->lock. That means
  970. * it should not be NULL as even if elevator was exiting, cgroup deltion
  971. * path got to it first.
  972. */
  973. void cfq_unlink_blkio_group(void *key, struct blkio_group *blkg)
  974. {
  975. unsigned long flags;
  976. struct cfq_data *cfqd = key;
  977. spin_lock_irqsave(cfqd->queue->queue_lock, flags);
  978. cfq_destroy_cfqg(cfqd, cfqg_of_blkg(blkg));
  979. spin_unlock_irqrestore(cfqd->queue->queue_lock, flags);
  980. }
  981. #else /* GROUP_IOSCHED */
  982. static struct cfq_group *cfq_get_cfqg(struct cfq_data *cfqd, int create)
  983. {
  984. return &cfqd->root_group;
  985. }
  986. static inline struct cfq_group *cfq_ref_get_cfqg(struct cfq_group *cfqg)
  987. {
  988. return cfqg;
  989. }
  990. static inline void
  991. cfq_link_cfqq_cfqg(struct cfq_queue *cfqq, struct cfq_group *cfqg) {
  992. cfqq->cfqg = cfqg;
  993. }
  994. static void cfq_release_cfq_groups(struct cfq_data *cfqd) {}
  995. static inline void cfq_put_cfqg(struct cfq_group *cfqg) {}
  996. #endif /* GROUP_IOSCHED */
  997. /*
  998. * The cfqd->service_trees holds all pending cfq_queue's that have
  999. * requests waiting to be processed. It is sorted in the order that
  1000. * we will service the queues.
  1001. */
  1002. static void cfq_service_tree_add(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  1003. bool add_front)
  1004. {
  1005. struct rb_node **p, *parent;
  1006. struct cfq_queue *__cfqq;
  1007. unsigned long rb_key;
  1008. struct cfq_rb_root *service_tree;
  1009. int left;
  1010. int new_cfqq = 1;
  1011. int group_changed = 0;
  1012. service_tree = service_tree_for(cfqq->cfqg, cfqq_prio(cfqq),
  1013. cfqq_type(cfqq));
  1014. if (cfq_class_idle(cfqq)) {
  1015. rb_key = CFQ_IDLE_DELAY;
  1016. parent = rb_last(&service_tree->rb);
  1017. if (parent && parent != &cfqq->rb_node) {
  1018. __cfqq = rb_entry(parent, struct cfq_queue, rb_node);
  1019. rb_key += __cfqq->rb_key;
  1020. } else
  1021. rb_key += jiffies;
  1022. } else if (!add_front) {
  1023. /*
  1024. * Get our rb key offset. Subtract any residual slice
  1025. * value carried from last service. A negative resid
  1026. * count indicates slice overrun, and this should position
  1027. * the next service time further away in the tree.
  1028. */
  1029. rb_key = cfq_slice_offset(cfqd, cfqq) + jiffies;
  1030. rb_key -= cfqq->slice_resid;
  1031. cfqq->slice_resid = 0;
  1032. } else {
  1033. rb_key = -HZ;
  1034. __cfqq = cfq_rb_first(service_tree);
  1035. rb_key += __cfqq ? __cfqq->rb_key : jiffies;
  1036. }
  1037. if (!RB_EMPTY_NODE(&cfqq->rb_node)) {
  1038. new_cfqq = 0;
  1039. /*
  1040. * same position, nothing more to do
  1041. */
  1042. if (rb_key == cfqq->rb_key &&
  1043. cfqq->service_tree == service_tree)
  1044. return;
  1045. cfq_rb_erase(&cfqq->rb_node, cfqq->service_tree);
  1046. cfqq->service_tree = NULL;
  1047. }
  1048. left = 1;
  1049. parent = NULL;
  1050. cfqq->service_tree = service_tree;
  1051. p = &service_tree->rb.rb_node;
  1052. while (*p) {
  1053. struct rb_node **n;
  1054. parent = *p;
  1055. __cfqq = rb_entry(parent, struct cfq_queue, rb_node);
  1056. /*
  1057. * sort by key, that represents service time.
  1058. */
  1059. if (time_before(rb_key, __cfqq->rb_key))
  1060. n = &(*p)->rb_left;
  1061. else {
  1062. n = &(*p)->rb_right;
  1063. left = 0;
  1064. }
  1065. p = n;
  1066. }
  1067. if (left)
  1068. service_tree->left = &cfqq->rb_node;
  1069. cfqq->rb_key = rb_key;
  1070. rb_link_node(&cfqq->rb_node, parent, p);
  1071. rb_insert_color(&cfqq->rb_node, &service_tree->rb);
  1072. service_tree->count++;
  1073. if ((add_front || !new_cfqq) && !group_changed)
  1074. return;
  1075. cfq_group_service_tree_add(cfqd, cfqq->cfqg);
  1076. }
  1077. static struct cfq_queue *
  1078. cfq_prio_tree_lookup(struct cfq_data *cfqd, struct rb_root *root,
  1079. sector_t sector, struct rb_node **ret_parent,
  1080. struct rb_node ***rb_link)
  1081. {
  1082. struct rb_node **p, *parent;
  1083. struct cfq_queue *cfqq = NULL;
  1084. parent = NULL;
  1085. p = &root->rb_node;
  1086. while (*p) {
  1087. struct rb_node **n;
  1088. parent = *p;
  1089. cfqq = rb_entry(parent, struct cfq_queue, p_node);
  1090. /*
  1091. * Sort strictly based on sector. Smallest to the left,
  1092. * largest to the right.
  1093. */
  1094. if (sector > blk_rq_pos(cfqq->next_rq))
  1095. n = &(*p)->rb_right;
  1096. else if (sector < blk_rq_pos(cfqq->next_rq))
  1097. n = &(*p)->rb_left;
  1098. else
  1099. break;
  1100. p = n;
  1101. cfqq = NULL;
  1102. }
  1103. *ret_parent = parent;
  1104. if (rb_link)
  1105. *rb_link = p;
  1106. return cfqq;
  1107. }
  1108. static void cfq_prio_tree_add(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1109. {
  1110. struct rb_node **p, *parent;
  1111. struct cfq_queue *__cfqq;
  1112. if (cfqq->p_root) {
  1113. rb_erase(&cfqq->p_node, cfqq->p_root);
  1114. cfqq->p_root = NULL;
  1115. }
  1116. if (cfq_class_idle(cfqq))
  1117. return;
  1118. if (!cfqq->next_rq)
  1119. return;
  1120. cfqq->p_root = &cfqd->prio_trees[cfqq->org_ioprio];
  1121. __cfqq = cfq_prio_tree_lookup(cfqd, cfqq->p_root,
  1122. blk_rq_pos(cfqq->next_rq), &parent, &p);
  1123. if (!__cfqq) {
  1124. rb_link_node(&cfqq->p_node, parent, p);
  1125. rb_insert_color(&cfqq->p_node, cfqq->p_root);
  1126. } else
  1127. cfqq->p_root = NULL;
  1128. }
  1129. /*
  1130. * Update cfqq's position in the service tree.
  1131. */
  1132. static void cfq_resort_rr_list(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1133. {
  1134. /*
  1135. * Resorting requires the cfqq to be on the RR list already.
  1136. */
  1137. if (cfq_cfqq_on_rr(cfqq)) {
  1138. cfq_service_tree_add(cfqd, cfqq, 0);
  1139. cfq_prio_tree_add(cfqd, cfqq);
  1140. }
  1141. }
  1142. /*
  1143. * add to busy list of queues for service, trying to be fair in ordering
  1144. * the pending list according to last request service
  1145. */
  1146. static void cfq_add_cfqq_rr(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1147. {
  1148. cfq_log_cfqq(cfqd, cfqq, "add_to_rr");
  1149. BUG_ON(cfq_cfqq_on_rr(cfqq));
  1150. cfq_mark_cfqq_on_rr(cfqq);
  1151. cfqd->busy_queues++;
  1152. cfq_resort_rr_list(cfqd, cfqq);
  1153. }
  1154. /*
  1155. * Called when the cfqq no longer has requests pending, remove it from
  1156. * the service tree.
  1157. */
  1158. static void cfq_del_cfqq_rr(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1159. {
  1160. cfq_log_cfqq(cfqd, cfqq, "del_from_rr");
  1161. BUG_ON(!cfq_cfqq_on_rr(cfqq));
  1162. cfq_clear_cfqq_on_rr(cfqq);
  1163. if (!RB_EMPTY_NODE(&cfqq->rb_node)) {
  1164. cfq_rb_erase(&cfqq->rb_node, cfqq->service_tree);
  1165. cfqq->service_tree = NULL;
  1166. }
  1167. if (cfqq->p_root) {
  1168. rb_erase(&cfqq->p_node, cfqq->p_root);
  1169. cfqq->p_root = NULL;
  1170. }
  1171. cfq_group_service_tree_del(cfqd, cfqq->cfqg);
  1172. BUG_ON(!cfqd->busy_queues);
  1173. cfqd->busy_queues--;
  1174. }
  1175. /*
  1176. * rb tree support functions
  1177. */
  1178. static void cfq_del_rq_rb(struct request *rq)
  1179. {
  1180. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  1181. const int sync = rq_is_sync(rq);
  1182. BUG_ON(!cfqq->queued[sync]);
  1183. cfqq->queued[sync]--;
  1184. elv_rb_del(&cfqq->sort_list, rq);
  1185. if (cfq_cfqq_on_rr(cfqq) && RB_EMPTY_ROOT(&cfqq->sort_list)) {
  1186. /*
  1187. * Queue will be deleted from service tree when we actually
  1188. * expire it later. Right now just remove it from prio tree
  1189. * as it is empty.
  1190. */
  1191. if (cfqq->p_root) {
  1192. rb_erase(&cfqq->p_node, cfqq->p_root);
  1193. cfqq->p_root = NULL;
  1194. }
  1195. }
  1196. }
  1197. static void cfq_add_rq_rb(struct request *rq)
  1198. {
  1199. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  1200. struct cfq_data *cfqd = cfqq->cfqd;
  1201. struct request *__alias, *prev;
  1202. cfqq->queued[rq_is_sync(rq)]++;
  1203. /*
  1204. * looks a little odd, but the first insert might return an alias.
  1205. * if that happens, put the alias on the dispatch list
  1206. */
  1207. while ((__alias = elv_rb_add(&cfqq->sort_list, rq)) != NULL)
  1208. cfq_dispatch_insert(cfqd->queue, __alias);
  1209. if (!cfq_cfqq_on_rr(cfqq))
  1210. cfq_add_cfqq_rr(cfqd, cfqq);
  1211. /*
  1212. * check if this request is a better next-serve candidate
  1213. */
  1214. prev = cfqq->next_rq;
  1215. cfqq->next_rq = cfq_choose_req(cfqd, cfqq->next_rq, rq, cfqd->last_position);
  1216. /*
  1217. * adjust priority tree position, if ->next_rq changes
  1218. */
  1219. if (prev != cfqq->next_rq)
  1220. cfq_prio_tree_add(cfqd, cfqq);
  1221. BUG_ON(!cfqq->next_rq);
  1222. }
  1223. static void cfq_reposition_rq_rb(struct cfq_queue *cfqq, struct request *rq)
  1224. {
  1225. elv_rb_del(&cfqq->sort_list, rq);
  1226. cfqq->queued[rq_is_sync(rq)]--;
  1227. cfq_blkiocg_update_io_remove_stats(&(RQ_CFQG(rq))->blkg,
  1228. rq_data_dir(rq), rq_is_sync(rq));
  1229. cfq_add_rq_rb(rq);
  1230. cfq_blkiocg_update_io_add_stats(&(RQ_CFQG(rq))->blkg,
  1231. &cfqq->cfqd->serving_group->blkg, rq_data_dir(rq),
  1232. rq_is_sync(rq));
  1233. }
  1234. static struct request *
  1235. cfq_find_rq_fmerge(struct cfq_data *cfqd, struct bio *bio)
  1236. {
  1237. struct task_struct *tsk = current;
  1238. struct cfq_io_context *cic;
  1239. struct cfq_queue *cfqq;
  1240. cic = cfq_cic_lookup(cfqd, tsk->io_context);
  1241. if (!cic)
  1242. return NULL;
  1243. cfqq = cic_to_cfqq(cic, cfq_bio_sync(bio));
  1244. if (cfqq) {
  1245. sector_t sector = bio->bi_sector + bio_sectors(bio);
  1246. return elv_rb_find(&cfqq->sort_list, sector);
  1247. }
  1248. return NULL;
  1249. }
  1250. static void cfq_activate_request(struct request_queue *q, struct request *rq)
  1251. {
  1252. struct cfq_data *cfqd = q->elevator->elevator_data;
  1253. cfqd->rq_in_driver++;
  1254. cfq_log_cfqq(cfqd, RQ_CFQQ(rq), "activate rq, drv=%d",
  1255. cfqd->rq_in_driver);
  1256. cfqd->last_position = blk_rq_pos(rq) + blk_rq_sectors(rq);
  1257. }
  1258. static void cfq_deactivate_request(struct request_queue *q, struct request *rq)
  1259. {
  1260. struct cfq_data *cfqd = q->elevator->elevator_data;
  1261. WARN_ON(!cfqd->rq_in_driver);
  1262. cfqd->rq_in_driver--;
  1263. cfq_log_cfqq(cfqd, RQ_CFQQ(rq), "deactivate rq, drv=%d",
  1264. cfqd->rq_in_driver);
  1265. }
  1266. static void cfq_remove_request(struct request *rq)
  1267. {
  1268. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  1269. if (cfqq->next_rq == rq)
  1270. cfqq->next_rq = cfq_find_next_rq(cfqq->cfqd, cfqq, rq);
  1271. list_del_init(&rq->queuelist);
  1272. cfq_del_rq_rb(rq);
  1273. cfqq->cfqd->rq_queued--;
  1274. cfq_blkiocg_update_io_remove_stats(&(RQ_CFQG(rq))->blkg,
  1275. rq_data_dir(rq), rq_is_sync(rq));
  1276. if (rq->cmd_flags & REQ_META) {
  1277. WARN_ON(!cfqq->meta_pending);
  1278. cfqq->meta_pending--;
  1279. }
  1280. }
  1281. static int cfq_merge(struct request_queue *q, struct request **req,
  1282. struct bio *bio)
  1283. {
  1284. struct cfq_data *cfqd = q->elevator->elevator_data;
  1285. struct request *__rq;
  1286. __rq = cfq_find_rq_fmerge(cfqd, bio);
  1287. if (__rq && elv_rq_merge_ok(__rq, bio)) {
  1288. *req = __rq;
  1289. return ELEVATOR_FRONT_MERGE;
  1290. }
  1291. return ELEVATOR_NO_MERGE;
  1292. }
  1293. static void cfq_merged_request(struct request_queue *q, struct request *req,
  1294. int type)
  1295. {
  1296. if (type == ELEVATOR_FRONT_MERGE) {
  1297. struct cfq_queue *cfqq = RQ_CFQQ(req);
  1298. cfq_reposition_rq_rb(cfqq, req);
  1299. }
  1300. }
  1301. static void cfq_bio_merged(struct request_queue *q, struct request *req,
  1302. struct bio *bio)
  1303. {
  1304. cfq_blkiocg_update_io_merged_stats(&(RQ_CFQG(req))->blkg,
  1305. bio_data_dir(bio), cfq_bio_sync(bio));
  1306. }
  1307. static void
  1308. cfq_merged_requests(struct request_queue *q, struct request *rq,
  1309. struct request *next)
  1310. {
  1311. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  1312. /*
  1313. * reposition in fifo if next is older than rq
  1314. */
  1315. if (!list_empty(&rq->queuelist) && !list_empty(&next->queuelist) &&
  1316. time_before(rq_fifo_time(next), rq_fifo_time(rq))) {
  1317. list_move(&rq->queuelist, &next->queuelist);
  1318. rq_set_fifo_time(rq, rq_fifo_time(next));
  1319. }
  1320. if (cfqq->next_rq == next)
  1321. cfqq->next_rq = rq;
  1322. cfq_remove_request(next);
  1323. cfq_blkiocg_update_io_merged_stats(&(RQ_CFQG(rq))->blkg,
  1324. rq_data_dir(next), rq_is_sync(next));
  1325. }
  1326. static int cfq_allow_merge(struct request_queue *q, struct request *rq,
  1327. struct bio *bio)
  1328. {
  1329. struct cfq_data *cfqd = q->elevator->elevator_data;
  1330. struct cfq_io_context *cic;
  1331. struct cfq_queue *cfqq;
  1332. /*
  1333. * Disallow merge of a sync bio into an async request.
  1334. */
  1335. if (cfq_bio_sync(bio) && !rq_is_sync(rq))
  1336. return false;
  1337. /*
  1338. * Lookup the cfqq that this bio will be queued with. Allow
  1339. * merge only if rq is queued there.
  1340. */
  1341. cic = cfq_cic_lookup(cfqd, current->io_context);
  1342. if (!cic)
  1343. return false;
  1344. cfqq = cic_to_cfqq(cic, cfq_bio_sync(bio));
  1345. return cfqq == RQ_CFQQ(rq);
  1346. }
  1347. static inline void cfq_del_timer(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1348. {
  1349. del_timer(&cfqd->idle_slice_timer);
  1350. cfq_blkiocg_update_idle_time_stats(&cfqq->cfqg->blkg);
  1351. }
  1352. static void __cfq_set_active_queue(struct cfq_data *cfqd,
  1353. struct cfq_queue *cfqq)
  1354. {
  1355. if (cfqq) {
  1356. cfq_log_cfqq(cfqd, cfqq, "set_active wl_prio:%d wl_type:%d",
  1357. cfqd->serving_prio, cfqd->serving_type);
  1358. cfq_blkiocg_update_avg_queue_size_stats(&cfqq->cfqg->blkg);
  1359. cfqq->slice_start = 0;
  1360. cfqq->dispatch_start = jiffies;
  1361. cfqq->allocated_slice = 0;
  1362. cfqq->slice_end = 0;
  1363. cfqq->slice_dispatch = 0;
  1364. cfqq->nr_sectors = 0;
  1365. cfq_clear_cfqq_wait_request(cfqq);
  1366. cfq_clear_cfqq_must_dispatch(cfqq);
  1367. cfq_clear_cfqq_must_alloc_slice(cfqq);
  1368. cfq_clear_cfqq_fifo_expire(cfqq);
  1369. cfq_mark_cfqq_slice_new(cfqq);
  1370. cfq_del_timer(cfqd, cfqq);
  1371. }
  1372. cfqd->active_queue = cfqq;
  1373. }
  1374. /*
  1375. * current cfqq expired its slice (or was too idle), select new one
  1376. */
  1377. static void
  1378. __cfq_slice_expired(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  1379. bool timed_out)
  1380. {
  1381. cfq_log_cfqq(cfqd, cfqq, "slice expired t=%d", timed_out);
  1382. if (cfq_cfqq_wait_request(cfqq))
  1383. cfq_del_timer(cfqd, cfqq);
  1384. cfq_clear_cfqq_wait_request(cfqq);
  1385. cfq_clear_cfqq_wait_busy(cfqq);
  1386. /*
  1387. * If this cfqq is shared between multiple processes, check to
  1388. * make sure that those processes are still issuing I/Os within
  1389. * the mean seek distance. If not, it may be time to break the
  1390. * queues apart again.
  1391. */
  1392. if (cfq_cfqq_coop(cfqq) && CFQQ_SEEKY(cfqq))
  1393. cfq_mark_cfqq_split_coop(cfqq);
  1394. /*
  1395. * store what was left of this slice, if the queue idled/timed out
  1396. */
  1397. if (timed_out) {
  1398. if (cfq_cfqq_slice_new(cfqq))
  1399. cfqq->slice_resid = cfq_scaled_cfqq_slice(cfqd, cfqq);
  1400. else
  1401. cfqq->slice_resid = cfqq->slice_end - jiffies;
  1402. cfq_log_cfqq(cfqd, cfqq, "resid=%ld", cfqq->slice_resid);
  1403. }
  1404. cfq_group_served(cfqd, cfqq->cfqg, cfqq);
  1405. if (cfq_cfqq_on_rr(cfqq) && RB_EMPTY_ROOT(&cfqq->sort_list))
  1406. cfq_del_cfqq_rr(cfqd, cfqq);
  1407. cfq_resort_rr_list(cfqd, cfqq);
  1408. if (cfqq == cfqd->active_queue)
  1409. cfqd->active_queue = NULL;
  1410. if (cfqd->active_cic) {
  1411. put_io_context(cfqd->active_cic->ioc);
  1412. cfqd->active_cic = NULL;
  1413. }
  1414. }
  1415. static inline void cfq_slice_expired(struct cfq_data *cfqd, bool timed_out)
  1416. {
  1417. struct cfq_queue *cfqq = cfqd->active_queue;
  1418. if (cfqq)
  1419. __cfq_slice_expired(cfqd, cfqq, timed_out);
  1420. }
  1421. /*
  1422. * Get next queue for service. Unless we have a queue preemption,
  1423. * we'll simply select the first cfqq in the service tree.
  1424. */
  1425. static struct cfq_queue *cfq_get_next_queue(struct cfq_data *cfqd)
  1426. {
  1427. struct cfq_rb_root *service_tree =
  1428. service_tree_for(cfqd->serving_group, cfqd->serving_prio,
  1429. cfqd->serving_type);
  1430. if (!cfqd->rq_queued)
  1431. return NULL;
  1432. /* There is nothing to dispatch */
  1433. if (!service_tree)
  1434. return NULL;
  1435. if (RB_EMPTY_ROOT(&service_tree->rb))
  1436. return NULL;
  1437. return cfq_rb_first(service_tree);
  1438. }
  1439. static struct cfq_queue *cfq_get_next_queue_forced(struct cfq_data *cfqd)
  1440. {
  1441. struct cfq_group *cfqg;
  1442. struct cfq_queue *cfqq;
  1443. int i, j;
  1444. struct cfq_rb_root *st;
  1445. if (!cfqd->rq_queued)
  1446. return NULL;
  1447. cfqg = cfq_get_next_cfqg(cfqd);
  1448. if (!cfqg)
  1449. return NULL;
  1450. for_each_cfqg_st(cfqg, i, j, st)
  1451. if ((cfqq = cfq_rb_first(st)) != NULL)
  1452. return cfqq;
  1453. return NULL;
  1454. }
  1455. /*
  1456. * Get and set a new active queue for service.
  1457. */
  1458. static struct cfq_queue *cfq_set_active_queue(struct cfq_data *cfqd,
  1459. struct cfq_queue *cfqq)
  1460. {
  1461. if (!cfqq)
  1462. cfqq = cfq_get_next_queue(cfqd);
  1463. __cfq_set_active_queue(cfqd, cfqq);
  1464. return cfqq;
  1465. }
  1466. static inline sector_t cfq_dist_from_last(struct cfq_data *cfqd,
  1467. struct request *rq)
  1468. {
  1469. if (blk_rq_pos(rq) >= cfqd->last_position)
  1470. return blk_rq_pos(rq) - cfqd->last_position;
  1471. else
  1472. return cfqd->last_position - blk_rq_pos(rq);
  1473. }
  1474. static inline int cfq_rq_close(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  1475. struct request *rq)
  1476. {
  1477. return cfq_dist_from_last(cfqd, rq) <= CFQQ_CLOSE_THR;
  1478. }
  1479. static struct cfq_queue *cfqq_close(struct cfq_data *cfqd,
  1480. struct cfq_queue *cur_cfqq)
  1481. {
  1482. struct rb_root *root = &cfqd->prio_trees[cur_cfqq->org_ioprio];
  1483. struct rb_node *parent, *node;
  1484. struct cfq_queue *__cfqq;
  1485. sector_t sector = cfqd->last_position;
  1486. if (RB_EMPTY_ROOT(root))
  1487. return NULL;
  1488. /*
  1489. * First, if we find a request starting at the end of the last
  1490. * request, choose it.
  1491. */
  1492. __cfqq = cfq_prio_tree_lookup(cfqd, root, sector, &parent, NULL);
  1493. if (__cfqq)
  1494. return __cfqq;
  1495. /*
  1496. * If the exact sector wasn't found, the parent of the NULL leaf
  1497. * will contain the closest sector.
  1498. */
  1499. __cfqq = rb_entry(parent, struct cfq_queue, p_node);
  1500. if (cfq_rq_close(cfqd, cur_cfqq, __cfqq->next_rq))
  1501. return __cfqq;
  1502. if (blk_rq_pos(__cfqq->next_rq) < sector)
  1503. node = rb_next(&__cfqq->p_node);
  1504. else
  1505. node = rb_prev(&__cfqq->p_node);
  1506. if (!node)
  1507. return NULL;
  1508. __cfqq = rb_entry(node, struct cfq_queue, p_node);
  1509. if (cfq_rq_close(cfqd, cur_cfqq, __cfqq->next_rq))
  1510. return __cfqq;
  1511. return NULL;
  1512. }
  1513. /*
  1514. * cfqd - obvious
  1515. * cur_cfqq - passed in so that we don't decide that the current queue is
  1516. * closely cooperating with itself.
  1517. *
  1518. * So, basically we're assuming that that cur_cfqq has dispatched at least
  1519. * one request, and that cfqd->last_position reflects a position on the disk
  1520. * associated with the I/O issued by cur_cfqq. I'm not sure this is a valid
  1521. * assumption.
  1522. */
  1523. static struct cfq_queue *cfq_close_cooperator(struct cfq_data *cfqd,
  1524. struct cfq_queue *cur_cfqq)
  1525. {
  1526. struct cfq_queue *cfqq;
  1527. if (cfq_class_idle(cur_cfqq))
  1528. return NULL;
  1529. if (!cfq_cfqq_sync(cur_cfqq))
  1530. return NULL;
  1531. if (CFQQ_SEEKY(cur_cfqq))
  1532. return NULL;
  1533. /*
  1534. * Don't search priority tree if it's the only queue in the group.
  1535. */
  1536. if (cur_cfqq->cfqg->nr_cfqq == 1)
  1537. return NULL;
  1538. /*
  1539. * We should notice if some of the queues are cooperating, eg
  1540. * working closely on the same area of the disk. In that case,
  1541. * we can group them together and don't waste time idling.
  1542. */
  1543. cfqq = cfqq_close(cfqd, cur_cfqq);
  1544. if (!cfqq)
  1545. return NULL;
  1546. /* If new queue belongs to different cfq_group, don't choose it */
  1547. if (cur_cfqq->cfqg != cfqq->cfqg)
  1548. return NULL;
  1549. /*
  1550. * It only makes sense to merge sync queues.
  1551. */
  1552. if (!cfq_cfqq_sync(cfqq))
  1553. return NULL;
  1554. if (CFQQ_SEEKY(cfqq))
  1555. return NULL;
  1556. /*
  1557. * Do not merge queues of different priority classes
  1558. */
  1559. if (cfq_class_rt(cfqq) != cfq_class_rt(cur_cfqq))
  1560. return NULL;
  1561. return cfqq;
  1562. }
  1563. /*
  1564. * Determine whether we should enforce idle window for this queue.
  1565. */
  1566. static bool cfq_should_idle(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1567. {
  1568. enum wl_prio_t prio = cfqq_prio(cfqq);
  1569. struct cfq_rb_root *service_tree = cfqq->service_tree;
  1570. BUG_ON(!service_tree);
  1571. BUG_ON(!service_tree->count);
  1572. if (!cfqd->cfq_slice_idle)
  1573. return false;
  1574. /* We never do for idle class queues. */
  1575. if (prio == IDLE_WORKLOAD)
  1576. return false;
  1577. /* We do for queues that were marked with idle window flag. */
  1578. if (cfq_cfqq_idle_window(cfqq) &&
  1579. !(blk_queue_nonrot(cfqd->queue) && cfqd->hw_tag))
  1580. return true;
  1581. /*
  1582. * Otherwise, we do only if they are the last ones
  1583. * in their service tree.
  1584. */
  1585. if (service_tree->count == 1 && cfq_cfqq_sync(cfqq))
  1586. return true;
  1587. cfq_log_cfqq(cfqd, cfqq, "Not idling. st->count:%d",
  1588. service_tree->count);
  1589. return false;
  1590. }
  1591. static void cfq_arm_slice_timer(struct cfq_data *cfqd)
  1592. {
  1593. struct cfq_queue *cfqq = cfqd->active_queue;
  1594. struct cfq_io_context *cic;
  1595. unsigned long sl, group_idle = 0;
  1596. /*
  1597. * SSD device without seek penalty, disable idling. But only do so
  1598. * for devices that support queuing, otherwise we still have a problem
  1599. * with sync vs async workloads.
  1600. */
  1601. if (blk_queue_nonrot(cfqd->queue) && cfqd->hw_tag)
  1602. return;
  1603. WARN_ON(!RB_EMPTY_ROOT(&cfqq->sort_list));
  1604. WARN_ON(cfq_cfqq_slice_new(cfqq));
  1605. /*
  1606. * idle is disabled, either manually or by past process history
  1607. */
  1608. if (!cfq_should_idle(cfqd, cfqq)) {
  1609. /* no queue idling. Check for group idling */
  1610. if (cfqd->cfq_group_idle)
  1611. group_idle = cfqd->cfq_group_idle;
  1612. else
  1613. return;
  1614. }
  1615. /*
  1616. * still active requests from this queue, don't idle
  1617. */
  1618. if (cfqq->dispatched)
  1619. return;
  1620. /*
  1621. * task has exited, don't wait
  1622. */
  1623. cic = cfqd->active_cic;
  1624. if (!cic || !atomic_read(&cic->ioc->nr_tasks))
  1625. return;
  1626. /*
  1627. * If our average think time is larger than the remaining time
  1628. * slice, then don't idle. This avoids overrunning the allotted
  1629. * time slice.
  1630. */
  1631. if (sample_valid(cic->ttime_samples) &&
  1632. (cfqq->slice_end - jiffies < cic->ttime_mean)) {
  1633. cfq_log_cfqq(cfqd, cfqq, "Not idling. think_time:%d",
  1634. cic->ttime_mean);
  1635. return;
  1636. }
  1637. /* There are other queues in the group, don't do group idle */
  1638. if (group_idle && cfqq->cfqg->nr_cfqq > 1)
  1639. return;
  1640. cfq_mark_cfqq_wait_request(cfqq);
  1641. if (group_idle)
  1642. sl = cfqd->cfq_group_idle;
  1643. else
  1644. sl = cfqd->cfq_slice_idle;
  1645. mod_timer(&cfqd->idle_slice_timer, jiffies + sl);
  1646. cfq_blkiocg_update_set_idle_time_stats(&cfqq->cfqg->blkg);
  1647. cfq_log_cfqq(cfqd, cfqq, "arm_idle: %lu group_idle: %d", sl,
  1648. group_idle ? 1 : 0);
  1649. }
  1650. /*
  1651. * Move request from internal lists to the request queue dispatch list.
  1652. */
  1653. static void cfq_dispatch_insert(struct request_queue *q, struct request *rq)
  1654. {
  1655. struct cfq_data *cfqd = q->elevator->elevator_data;
  1656. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  1657. cfq_log_cfqq(cfqd, cfqq, "dispatch_insert");
  1658. cfqq->next_rq = cfq_find_next_rq(cfqd, cfqq, rq);
  1659. cfq_remove_request(rq);
  1660. cfqq->dispatched++;
  1661. (RQ_CFQG(rq))->dispatched++;
  1662. elv_dispatch_sort(q, rq);
  1663. cfqd->rq_in_flight[cfq_cfqq_sync(cfqq)]++;
  1664. cfqq->nr_sectors += blk_rq_sectors(rq);
  1665. cfq_blkiocg_update_dispatch_stats(&cfqq->cfqg->blkg, blk_rq_bytes(rq),
  1666. rq_data_dir(rq), rq_is_sync(rq));
  1667. }
  1668. /*
  1669. * return expired entry, or NULL to just start from scratch in rbtree
  1670. */
  1671. static struct request *cfq_check_fifo(struct cfq_queue *cfqq)
  1672. {
  1673. struct request *rq = NULL;
  1674. if (cfq_cfqq_fifo_expire(cfqq))
  1675. return NULL;
  1676. cfq_mark_cfqq_fifo_expire(cfqq);
  1677. if (list_empty(&cfqq->fifo))
  1678. return NULL;
  1679. rq = rq_entry_fifo(cfqq->fifo.next);
  1680. if (time_before(jiffies, rq_fifo_time(rq)))
  1681. rq = NULL;
  1682. cfq_log_cfqq(cfqq->cfqd, cfqq, "fifo=%p", rq);
  1683. return rq;
  1684. }
  1685. static inline int
  1686. cfq_prio_to_maxrq(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1687. {
  1688. const int base_rq = cfqd->cfq_slice_async_rq;
  1689. WARN_ON(cfqq->ioprio >= IOPRIO_BE_NR);
  1690. return 2 * (base_rq + base_rq * (CFQ_PRIO_LISTS - 1 - cfqq->ioprio));
  1691. }
  1692. /*
  1693. * Must be called with the queue_lock held.
  1694. */
  1695. static int cfqq_process_refs(struct cfq_queue *cfqq)
  1696. {
  1697. int process_refs, io_refs;
  1698. io_refs = cfqq->allocated[READ] + cfqq->allocated[WRITE];
  1699. process_refs = cfqq->ref - io_refs;
  1700. BUG_ON(process_refs < 0);
  1701. return process_refs;
  1702. }
  1703. static void cfq_setup_merge(struct cfq_queue *cfqq, struct cfq_queue *new_cfqq)
  1704. {
  1705. int process_refs, new_process_refs;
  1706. struct cfq_queue *__cfqq;
  1707. /*
  1708. * If there are no process references on the new_cfqq, then it is
  1709. * unsafe to follow the ->new_cfqq chain as other cfqq's in the
  1710. * chain may have dropped their last reference (not just their
  1711. * last process reference).
  1712. */
  1713. if (!cfqq_process_refs(new_cfqq))
  1714. return;
  1715. /* Avoid a circular list and skip interim queue merges */
  1716. while ((__cfqq = new_cfqq->new_cfqq)) {
  1717. if (__cfqq == cfqq)
  1718. return;
  1719. new_cfqq = __cfqq;
  1720. }
  1721. process_refs = cfqq_process_refs(cfqq);
  1722. new_process_refs = cfqq_process_refs(new_cfqq);
  1723. /*
  1724. * If the process for the cfqq has gone away, there is no
  1725. * sense in merging the queues.
  1726. */
  1727. if (process_refs == 0 || new_process_refs == 0)
  1728. return;
  1729. /*
  1730. * Merge in the direction of the lesser amount of work.
  1731. */
  1732. if (new_process_refs >= process_refs) {
  1733. cfqq->new_cfqq = new_cfqq;
  1734. new_cfqq->ref += process_refs;
  1735. } else {
  1736. new_cfqq->new_cfqq = cfqq;
  1737. cfqq->ref += new_process_refs;
  1738. }
  1739. }
  1740. static enum wl_type_t cfq_choose_wl(struct cfq_data *cfqd,
  1741. struct cfq_group *cfqg, enum wl_prio_t prio)
  1742. {
  1743. struct cfq_queue *queue;
  1744. int i;
  1745. bool key_valid = false;
  1746. unsigned long lowest_key = 0;
  1747. enum wl_type_t cur_best = SYNC_NOIDLE_WORKLOAD;
  1748. for (i = 0; i <= SYNC_WORKLOAD; ++i) {
  1749. /* select the one with lowest rb_key */
  1750. queue = cfq_rb_first(service_tree_for(cfqg, prio, i));
  1751. if (queue &&
  1752. (!key_valid || time_before(queue->rb_key, lowest_key))) {
  1753. lowest_key = queue->rb_key;
  1754. cur_best = i;
  1755. key_valid = true;
  1756. }
  1757. }
  1758. return cur_best;
  1759. }
  1760. static void choose_service_tree(struct cfq_data *cfqd, struct cfq_group *cfqg)
  1761. {
  1762. unsigned slice;
  1763. unsigned count;
  1764. struct cfq_rb_root *st;
  1765. unsigned group_slice;
  1766. enum wl_prio_t original_prio = cfqd->serving_prio;
  1767. /* Choose next priority. RT > BE > IDLE */
  1768. if (cfq_group_busy_queues_wl(RT_WORKLOAD, cfqd, cfqg))
  1769. cfqd->serving_prio = RT_WORKLOAD;
  1770. else if (cfq_group_busy_queues_wl(BE_WORKLOAD, cfqd, cfqg))
  1771. cfqd->serving_prio = BE_WORKLOAD;
  1772. else {
  1773. cfqd->serving_prio = IDLE_WORKLOAD;
  1774. cfqd->workload_expires = jiffies + 1;
  1775. return;
  1776. }
  1777. if (original_prio != cfqd->serving_prio)
  1778. goto new_workload;
  1779. /*
  1780. * For RT and BE, we have to choose also the type
  1781. * (SYNC, SYNC_NOIDLE, ASYNC), and to compute a workload
  1782. * expiration time
  1783. */
  1784. st = service_tree_for(cfqg, cfqd->serving_prio, cfqd->serving_type);
  1785. count = st->count;
  1786. /*
  1787. * check workload expiration, and that we still have other queues ready
  1788. */
  1789. if (count && !time_after(jiffies, cfqd->workload_expires))
  1790. return;
  1791. new_workload:
  1792. /* otherwise select new workload type */
  1793. cfqd->serving_type =
  1794. cfq_choose_wl(cfqd, cfqg, cfqd->serving_prio);
  1795. st = service_tree_for(cfqg, cfqd->serving_prio, cfqd->serving_type);
  1796. count = st->count;
  1797. /*
  1798. * the workload slice is computed as a fraction of target latency
  1799. * proportional to the number of queues in that workload, over
  1800. * all the queues in the same priority class
  1801. */
  1802. group_slice = cfq_group_slice(cfqd, cfqg);
  1803. slice = group_slice * count /
  1804. max_t(unsigned, cfqg->busy_queues_avg[cfqd->serving_prio],
  1805. cfq_group_busy_queues_wl(cfqd->serving_prio, cfqd, cfqg));
  1806. if (cfqd->serving_type == ASYNC_WORKLOAD) {
  1807. unsigned int tmp;
  1808. /*
  1809. * Async queues are currently system wide. Just taking
  1810. * proportion of queues with-in same group will lead to higher
  1811. * async ratio system wide as generally root group is going
  1812. * to have higher weight. A more accurate thing would be to
  1813. * calculate system wide asnc/sync ratio.
  1814. */
  1815. tmp = cfq_target_latency * cfqg_busy_async_queues(cfqd, cfqg);
  1816. tmp = tmp/cfqd->busy_queues;
  1817. slice = min_t(unsigned, slice, tmp);
  1818. /* async workload slice is scaled down according to
  1819. * the sync/async slice ratio. */
  1820. slice = slice * cfqd->cfq_slice[0] / cfqd->cfq_slice[1];
  1821. } else
  1822. /* sync workload slice is at least 2 * cfq_slice_idle */
  1823. slice = max(slice, 2 * cfqd->cfq_slice_idle);
  1824. slice = max_t(unsigned, slice, CFQ_MIN_TT);
  1825. cfq_log(cfqd, "workload slice:%d", slice);
  1826. cfqd->workload_expires = jiffies + slice;
  1827. }
  1828. static struct cfq_group *cfq_get_next_cfqg(struct cfq_data *cfqd)
  1829. {
  1830. struct cfq_rb_root *st = &cfqd->grp_service_tree;
  1831. struct cfq_group *cfqg;
  1832. if (RB_EMPTY_ROOT(&st->rb))
  1833. return NULL;
  1834. cfqg = cfq_rb_first_group(st);
  1835. update_min_vdisktime(st);
  1836. return cfqg;
  1837. }
  1838. static void cfq_choose_cfqg(struct cfq_data *cfqd)
  1839. {
  1840. struct cfq_group *cfqg = cfq_get_next_cfqg(cfqd);
  1841. cfqd->serving_group = cfqg;
  1842. /* Restore the workload type data */
  1843. if (cfqg->saved_workload_slice) {
  1844. cfqd->workload_expires = jiffies + cfqg->saved_workload_slice;
  1845. cfqd->serving_type = cfqg->saved_workload;
  1846. cfqd->serving_prio = cfqg->saved_serving_prio;
  1847. } else
  1848. cfqd->workload_expires = jiffies - 1;
  1849. choose_service_tree(cfqd, cfqg);
  1850. }
  1851. /*
  1852. * Select a queue for service. If we have a current active queue,
  1853. * check whether to continue servicing it, or retrieve and set a new one.
  1854. */
  1855. static struct cfq_queue *cfq_select_queue(struct cfq_data *cfqd)
  1856. {
  1857. struct cfq_queue *cfqq, *new_cfqq = NULL;
  1858. cfqq = cfqd->active_queue;
  1859. if (!cfqq)
  1860. goto new_queue;
  1861. if (!cfqd->rq_queued)
  1862. return NULL;
  1863. /*
  1864. * We were waiting for group to get backlogged. Expire the queue
  1865. */
  1866. if (cfq_cfqq_wait_busy(cfqq) && !RB_EMPTY_ROOT(&cfqq->sort_list))
  1867. goto expire;
  1868. /*
  1869. * The active queue has run out of time, expire it and select new.
  1870. */
  1871. if (cfq_slice_used(cfqq) && !cfq_cfqq_must_dispatch(cfqq)) {
  1872. /*
  1873. * If slice had not expired at the completion of last request
  1874. * we might not have turned on wait_busy flag. Don't expire
  1875. * the queue yet. Allow the group to get backlogged.
  1876. *
  1877. * The very fact that we have used the slice, that means we
  1878. * have been idling all along on this queue and it should be
  1879. * ok to wait for this request to complete.
  1880. */
  1881. if (cfqq->cfqg->nr_cfqq == 1 && RB_EMPTY_ROOT(&cfqq->sort_list)
  1882. && cfqq->dispatched && cfq_should_idle(cfqd, cfqq)) {
  1883. cfqq = NULL;
  1884. goto keep_queue;
  1885. } else
  1886. goto check_group_idle;
  1887. }
  1888. /*
  1889. * The active queue has requests and isn't expired, allow it to
  1890. * dispatch.
  1891. */
  1892. if (!RB_EMPTY_ROOT(&cfqq->sort_list))
  1893. goto keep_queue;
  1894. /*
  1895. * If another queue has a request waiting within our mean seek
  1896. * distance, let it run. The expire code will check for close
  1897. * cooperators and put the close queue at the front of the service
  1898. * tree. If possible, merge the expiring queue with the new cfqq.
  1899. */
  1900. new_cfqq = cfq_close_cooperator(cfqd, cfqq);
  1901. if (new_cfqq) {
  1902. if (!cfqq->new_cfqq)
  1903. cfq_setup_merge(cfqq, new_cfqq);
  1904. goto expire;
  1905. }
  1906. /*
  1907. * No requests pending. If the active queue still has requests in
  1908. * flight or is idling for a new request, allow either of these
  1909. * conditions to happen (or time out) before selecting a new queue.
  1910. */
  1911. if (timer_pending(&cfqd->idle_slice_timer)) {
  1912. cfqq = NULL;
  1913. goto keep_queue;
  1914. }
  1915. /*
  1916. * This is a deep seek queue, but the device is much faster than
  1917. * the queue can deliver, don't idle
  1918. **/
  1919. if (CFQQ_SEEKY(cfqq) && cfq_cfqq_idle_window(cfqq) &&
  1920. (cfq_cfqq_slice_new(cfqq) ||
  1921. (cfqq->slice_end - jiffies > jiffies - cfqq->slice_start))) {
  1922. cfq_clear_cfqq_deep(cfqq);
  1923. cfq_clear_cfqq_idle_window(cfqq);
  1924. }
  1925. if (cfqq->dispatched && cfq_should_idle(cfqd, cfqq)) {
  1926. cfqq = NULL;
  1927. goto keep_queue;
  1928. }
  1929. /*
  1930. * If group idle is enabled and there are requests dispatched from
  1931. * this group, wait for requests to complete.
  1932. */
  1933. check_group_idle:
  1934. if (cfqd->cfq_group_idle && cfqq->cfqg->nr_cfqq == 1
  1935. && cfqq->cfqg->dispatched) {
  1936. cfqq = NULL;
  1937. goto keep_queue;
  1938. }
  1939. expire:
  1940. cfq_slice_expired(cfqd, 0);
  1941. new_queue:
  1942. /*
  1943. * Current queue expired. Check if we have to switch to a new
  1944. * service tree
  1945. */
  1946. if (!new_cfqq)
  1947. cfq_choose_cfqg(cfqd);
  1948. cfqq = cfq_set_active_queue(cfqd, new_cfqq);
  1949. keep_queue:
  1950. return cfqq;
  1951. }
  1952. static int __cfq_forced_dispatch_cfqq(struct cfq_queue *cfqq)
  1953. {
  1954. int dispatched = 0;
  1955. while (cfqq->next_rq) {
  1956. cfq_dispatch_insert(cfqq->cfqd->queue, cfqq->next_rq);
  1957. dispatched++;
  1958. }
  1959. BUG_ON(!list_empty(&cfqq->fifo));
  1960. /* By default cfqq is not expired if it is empty. Do it explicitly */
  1961. __cfq_slice_expired(cfqq->cfqd, cfqq, 0);
  1962. return dispatched;
  1963. }
  1964. /*
  1965. * Drain our current requests. Used for barriers and when switching
  1966. * io schedulers on-the-fly.
  1967. */
  1968. static int cfq_forced_dispatch(struct cfq_data *cfqd)
  1969. {
  1970. struct cfq_queue *cfqq;
  1971. int dispatched = 0;
  1972. /* Expire the timeslice of the current active queue first */
  1973. cfq_slice_expired(cfqd, 0);
  1974. while ((cfqq = cfq_get_next_queue_forced(cfqd)) != NULL) {
  1975. __cfq_set_active_queue(cfqd, cfqq);
  1976. dispatched += __cfq_forced_dispatch_cfqq(cfqq);
  1977. }
  1978. BUG_ON(cfqd->busy_queues);
  1979. cfq_log(cfqd, "forced_dispatch=%d", dispatched);
  1980. return dispatched;
  1981. }
  1982. static inline bool cfq_slice_used_soon(struct cfq_data *cfqd,
  1983. struct cfq_queue *cfqq)
  1984. {
  1985. /* the queue hasn't finished any request, can't estimate */
  1986. if (cfq_cfqq_slice_new(cfqq))
  1987. return true;
  1988. if (time_after(jiffies + cfqd->cfq_slice_idle * cfqq->dispatched,
  1989. cfqq->slice_end))
  1990. return true;
  1991. return false;
  1992. }
  1993. static bool cfq_may_dispatch(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  1994. {
  1995. unsigned int max_dispatch;
  1996. /*
  1997. * Drain async requests before we start sync IO
  1998. */
  1999. if (cfq_should_idle(cfqd, cfqq) && cfqd->rq_in_flight[BLK_RW_ASYNC])
  2000. return false;
  2001. /*
  2002. * If this is an async queue and we have sync IO in flight, let it wait
  2003. */
  2004. if (cfqd->rq_in_flight[BLK_RW_SYNC] && !cfq_cfqq_sync(cfqq))
  2005. return false;
  2006. max_dispatch = max_t(unsigned int, cfqd->cfq_quantum / 2, 1);
  2007. if (cfq_class_idle(cfqq))
  2008. max_dispatch = 1;
  2009. /*
  2010. * Does this cfqq already have too much IO in flight?
  2011. */
  2012. if (cfqq->dispatched >= max_dispatch) {
  2013. /*
  2014. * idle queue must always only have a single IO in flight
  2015. */
  2016. if (cfq_class_idle(cfqq))
  2017. return false;
  2018. /*
  2019. * We have other queues, don't allow more IO from this one
  2020. */
  2021. if (cfqd->busy_queues > 1 && cfq_slice_used_soon(cfqd, cfqq))
  2022. return false;
  2023. /*
  2024. * Sole queue user, no limit
  2025. */
  2026. if (cfqd->busy_queues == 1)
  2027. max_dispatch = -1;
  2028. else
  2029. /*
  2030. * Normally we start throttling cfqq when cfq_quantum/2
  2031. * requests have been dispatched. But we can drive
  2032. * deeper queue depths at the beginning of slice
  2033. * subjected to upper limit of cfq_quantum.
  2034. * */
  2035. max_dispatch = cfqd->cfq_quantum;
  2036. }
  2037. /*
  2038. * Async queues must wait a bit before being allowed dispatch.
  2039. * We also ramp up the dispatch depth gradually for async IO,
  2040. * based on the last sync IO we serviced
  2041. */
  2042. if (!cfq_cfqq_sync(cfqq) && cfqd->cfq_latency) {
  2043. unsigned long last_sync = jiffies - cfqd->last_delayed_sync;
  2044. unsigned int depth;
  2045. depth = last_sync / cfqd->cfq_slice[1];
  2046. if (!depth && !cfqq->dispatched)
  2047. depth = 1;
  2048. if (depth < max_dispatch)
  2049. max_dispatch = depth;
  2050. }
  2051. /*
  2052. * If we're below the current max, allow a dispatch
  2053. */
  2054. return cfqq->dispatched < max_dispatch;
  2055. }
  2056. /*
  2057. * Dispatch a request from cfqq, moving them to the request queue
  2058. * dispatch list.
  2059. */
  2060. static bool cfq_dispatch_request(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  2061. {
  2062. struct request *rq;
  2063. BUG_ON(RB_EMPTY_ROOT(&cfqq->sort_list));
  2064. if (!cfq_may_dispatch(cfqd, cfqq))
  2065. return false;
  2066. /*
  2067. * follow expired path, else get first next available
  2068. */
  2069. rq = cfq_check_fifo(cfqq);
  2070. if (!rq)
  2071. rq = cfqq->next_rq;
  2072. /*
  2073. * insert request into driver dispatch list
  2074. */
  2075. cfq_dispatch_insert(cfqd->queue, rq);
  2076. if (!cfqd->active_cic) {
  2077. struct cfq_io_context *cic = RQ_CIC(rq);
  2078. atomic_long_inc(&cic->ioc->refcount);
  2079. cfqd->active_cic = cic;
  2080. }
  2081. return true;
  2082. }
  2083. /*
  2084. * Find the cfqq that we need to service and move a request from that to the
  2085. * dispatch list
  2086. */
  2087. static int cfq_dispatch_requests(struct request_queue *q, int force)
  2088. {
  2089. struct cfq_data *cfqd = q->elevator->elevator_data;
  2090. struct cfq_queue *cfqq;
  2091. if (!cfqd->busy_queues)
  2092. return 0;
  2093. if (unlikely(force))
  2094. return cfq_forced_dispatch(cfqd);
  2095. cfqq = cfq_select_queue(cfqd);
  2096. if (!cfqq)
  2097. return 0;
  2098. /*
  2099. * Dispatch a request from this cfqq, if it is allowed
  2100. */
  2101. if (!cfq_dispatch_request(cfqd, cfqq))
  2102. return 0;
  2103. cfqq->slice_dispatch++;
  2104. cfq_clear_cfqq_must_dispatch(cfqq);
  2105. /*
  2106. * expire an async queue immediately if it has used up its slice. idle
  2107. * queue always expire after 1 dispatch round.
  2108. */
  2109. if (cfqd->busy_queues > 1 && ((!cfq_cfqq_sync(cfqq) &&
  2110. cfqq->slice_dispatch >= cfq_prio_to_maxrq(cfqd, cfqq)) ||
  2111. cfq_class_idle(cfqq))) {
  2112. cfqq->slice_end = jiffies + 1;
  2113. cfq_slice_expired(cfqd, 0);
  2114. }
  2115. cfq_log_cfqq(cfqd, cfqq, "dispatched a request");
  2116. return 1;
  2117. }
  2118. /*
  2119. * task holds one reference to the queue, dropped when task exits. each rq
  2120. * in-flight on this queue also holds a reference, dropped when rq is freed.
  2121. *
  2122. * Each cfq queue took a reference on the parent group. Drop it now.
  2123. * queue lock must be held here.
  2124. */
  2125. static void cfq_put_queue(struct cfq_queue *cfqq)
  2126. {
  2127. struct cfq_data *cfqd = cfqq->cfqd;
  2128. struct cfq_group *cfqg;
  2129. BUG_ON(cfqq->ref <= 0);
  2130. cfqq->ref--;
  2131. if (cfqq->ref)
  2132. return;
  2133. cfq_log_cfqq(cfqd, cfqq, "put_queue");
  2134. BUG_ON(rb_first(&cfqq->sort_list));
  2135. BUG_ON(cfqq->allocated[READ] + cfqq->allocated[WRITE]);
  2136. cfqg = cfqq->cfqg;
  2137. if (unlikely(cfqd->active_queue == cfqq)) {
  2138. __cfq_slice_expired(cfqd, cfqq, 0);
  2139. cfq_schedule_dispatch(cfqd);
  2140. }
  2141. BUG_ON(cfq_cfqq_on_rr(cfqq));
  2142. kmem_cache_free(cfq_pool, cfqq);
  2143. cfq_put_cfqg(cfqg);
  2144. }
  2145. /*
  2146. * Must always be called with the rcu_read_lock() held
  2147. */
  2148. static void
  2149. __call_for_each_cic(struct io_context *ioc,
  2150. void (*func)(struct io_context *, struct cfq_io_context *))
  2151. {
  2152. struct cfq_io_context *cic;
  2153. struct hlist_node *n;
  2154. hlist_for_each_entry_rcu(cic, n, &ioc->cic_list, cic_list)
  2155. func(ioc, cic);
  2156. }
  2157. /*
  2158. * Call func for each cic attached to this ioc.
  2159. */
  2160. static void
  2161. call_for_each_cic(struct io_context *ioc,
  2162. void (*func)(struct io_context *, struct cfq_io_context *))
  2163. {
  2164. rcu_read_lock();
  2165. __call_for_each_cic(ioc, func);
  2166. rcu_read_unlock();
  2167. }
  2168. static void cfq_cic_free_rcu(struct rcu_head *head)
  2169. {
  2170. struct cfq_io_context *cic;
  2171. cic = container_of(head, struct cfq_io_context, rcu_head);
  2172. kmem_cache_free(cfq_ioc_pool, cic);
  2173. elv_ioc_count_dec(cfq_ioc_count);
  2174. if (ioc_gone) {
  2175. /*
  2176. * CFQ scheduler is exiting, grab exit lock and check
  2177. * the pending io context count. If it hits zero,
  2178. * complete ioc_gone and set it back to NULL
  2179. */
  2180. spin_lock(&ioc_gone_lock);
  2181. if (ioc_gone && !elv_ioc_count_read(cfq_ioc_count)) {
  2182. complete(ioc_gone);
  2183. ioc_gone = NULL;
  2184. }
  2185. spin_unlock(&ioc_gone_lock);
  2186. }
  2187. }
  2188. static void cfq_cic_free(struct cfq_io_context *cic)
  2189. {
  2190. call_rcu(&cic->rcu_head, cfq_cic_free_rcu);
  2191. }
  2192. static void cic_free_func(struct io_context *ioc, struct cfq_io_context *cic)
  2193. {
  2194. unsigned long flags;
  2195. unsigned long dead_key = (unsigned long) cic->key;
  2196. BUG_ON(!(dead_key & CIC_DEAD_KEY));
  2197. spin_lock_irqsave(&ioc->lock, flags);
  2198. radix_tree_delete(&ioc->radix_root, dead_key >> CIC_DEAD_INDEX_SHIFT);
  2199. hlist_del_rcu(&cic->cic_list);
  2200. spin_unlock_irqrestore(&ioc->lock, flags);
  2201. cfq_cic_free(cic);
  2202. }
  2203. /*
  2204. * Must be called with rcu_read_lock() held or preemption otherwise disabled.
  2205. * Only two callers of this - ->dtor() which is called with the rcu_read_lock(),
  2206. * and ->trim() which is called with the task lock held
  2207. */
  2208. static void cfq_free_io_context(struct io_context *ioc)
  2209. {
  2210. /*
  2211. * ioc->refcount is zero here, or we are called from elv_unregister(),
  2212. * so no more cic's are allowed to be linked into this ioc. So it
  2213. * should be ok to iterate over the known list, we will see all cic's
  2214. * since no new ones are added.
  2215. */
  2216. __call_for_each_cic(ioc, cic_free_func);
  2217. }
  2218. static void cfq_put_cooperator(struct cfq_queue *cfqq)
  2219. {
  2220. struct cfq_queue *__cfqq, *next;
  2221. /*
  2222. * If this queue was scheduled to merge with another queue, be
  2223. * sure to drop the reference taken on that queue (and others in
  2224. * the merge chain). See cfq_setup_merge and cfq_merge_cfqqs.
  2225. */
  2226. __cfqq = cfqq->new_cfqq;
  2227. while (__cfqq) {
  2228. if (__cfqq == cfqq) {
  2229. WARN(1, "cfqq->new_cfqq loop detected\n");
  2230. break;
  2231. }
  2232. next = __cfqq->new_cfqq;
  2233. cfq_put_queue(__cfqq);
  2234. __cfqq = next;
  2235. }
  2236. }
  2237. static void cfq_exit_cfqq(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  2238. {
  2239. if (unlikely(cfqq == cfqd->active_queue)) {
  2240. __cfq_slice_expired(cfqd, cfqq, 0);
  2241. cfq_schedule_dispatch(cfqd);
  2242. }
  2243. cfq_put_cooperator(cfqq);
  2244. cfq_put_queue(cfqq);
  2245. }
  2246. static void __cfq_exit_single_io_context(struct cfq_data *cfqd,
  2247. struct cfq_io_context *cic)
  2248. {
  2249. struct io_context *ioc = cic->ioc;
  2250. list_del_init(&cic->queue_list);
  2251. /*
  2252. * Make sure dead mark is seen for dead queues
  2253. */
  2254. smp_wmb();
  2255. cic->key = cfqd_dead_key(cfqd);
  2256. if (ioc->ioc_data == cic)
  2257. rcu_assign_pointer(ioc->ioc_data, NULL);
  2258. if (cic->cfqq[BLK_RW_ASYNC]) {
  2259. cfq_exit_cfqq(cfqd, cic->cfqq[BLK_RW_ASYNC]);
  2260. cic->cfqq[BLK_RW_ASYNC] = NULL;
  2261. }
  2262. if (cic->cfqq[BLK_RW_SYNC]) {
  2263. cfq_exit_cfqq(cfqd, cic->cfqq[BLK_RW_SYNC]);
  2264. cic->cfqq[BLK_RW_SYNC] = NULL;
  2265. }
  2266. }
  2267. static void cfq_exit_single_io_context(struct io_context *ioc,
  2268. struct cfq_io_context *cic)
  2269. {
  2270. struct cfq_data *cfqd = cic_to_cfqd(cic);
  2271. if (cfqd) {
  2272. struct request_queue *q = cfqd->queue;
  2273. unsigned long flags;
  2274. spin_lock_irqsave(q->queue_lock, flags);
  2275. /*
  2276. * Ensure we get a fresh copy of the ->key to prevent
  2277. * race between exiting task and queue
  2278. */
  2279. smp_read_barrier_depends();
  2280. if (cic->key == cfqd)
  2281. __cfq_exit_single_io_context(cfqd, cic);
  2282. spin_unlock_irqrestore(q->queue_lock, flags);
  2283. }
  2284. }
  2285. /*
  2286. * The process that ioc belongs to has exited, we need to clean up
  2287. * and put the internal structures we have that belongs to that process.
  2288. */
  2289. static void cfq_exit_io_context(struct io_context *ioc)
  2290. {
  2291. call_for_each_cic(ioc, cfq_exit_single_io_context);
  2292. }
  2293. static struct cfq_io_context *
  2294. cfq_alloc_io_context(struct cfq_data *cfqd, gfp_t gfp_mask)
  2295. {
  2296. struct cfq_io_context *cic;
  2297. cic = kmem_cache_alloc_node(cfq_ioc_pool, gfp_mask | __GFP_ZERO,
  2298. cfqd->queue->node);
  2299. if (cic) {
  2300. cic->last_end_request = jiffies;
  2301. INIT_LIST_HEAD(&cic->queue_list);
  2302. INIT_HLIST_NODE(&cic->cic_list);
  2303. cic->dtor = cfq_free_io_context;
  2304. cic->exit = cfq_exit_io_context;
  2305. elv_ioc_count_inc(cfq_ioc_count);
  2306. }
  2307. return cic;
  2308. }
  2309. static void cfq_init_prio_data(struct cfq_queue *cfqq, struct io_context *ioc)
  2310. {
  2311. struct task_struct *tsk = current;
  2312. int ioprio_class;
  2313. if (!cfq_cfqq_prio_changed(cfqq))
  2314. return;
  2315. ioprio_class = IOPRIO_PRIO_CLASS(ioc->ioprio);
  2316. switch (ioprio_class) {
  2317. default:
  2318. printk(KERN_ERR "cfq: bad prio %x\n", ioprio_class);
  2319. case IOPRIO_CLASS_NONE:
  2320. /*
  2321. * no prio set, inherit CPU scheduling settings
  2322. */
  2323. cfqq->ioprio = task_nice_ioprio(tsk);
  2324. cfqq->ioprio_class = task_nice_ioclass(tsk);
  2325. break;
  2326. case IOPRIO_CLASS_RT:
  2327. cfqq->ioprio = task_ioprio(ioc);
  2328. cfqq->ioprio_class = IOPRIO_CLASS_RT;
  2329. break;
  2330. case IOPRIO_CLASS_BE:
  2331. cfqq->ioprio = task_ioprio(ioc);
  2332. cfqq->ioprio_class = IOPRIO_CLASS_BE;
  2333. break;
  2334. case IOPRIO_CLASS_IDLE:
  2335. cfqq->ioprio_class = IOPRIO_CLASS_IDLE;
  2336. cfqq->ioprio = 7;
  2337. cfq_clear_cfqq_idle_window(cfqq);
  2338. break;
  2339. }
  2340. /*
  2341. * keep track of original prio settings in case we have to temporarily
  2342. * elevate the priority of this queue
  2343. */
  2344. cfqq->org_ioprio = cfqq->ioprio;
  2345. cfqq->org_ioprio_class = cfqq->ioprio_class;
  2346. cfq_clear_cfqq_prio_changed(cfqq);
  2347. }
  2348. static void changed_ioprio(struct io_context *ioc, struct cfq_io_context *cic)
  2349. {
  2350. struct cfq_data *cfqd = cic_to_cfqd(cic);
  2351. struct cfq_queue *cfqq;
  2352. unsigned long flags;
  2353. if (unlikely(!cfqd))
  2354. return;
  2355. spin_lock_irqsave(cfqd->queue->queue_lock, flags);
  2356. cfqq = cic->cfqq[BLK_RW_ASYNC];
  2357. if (cfqq) {
  2358. struct cfq_queue *new_cfqq;
  2359. new_cfqq = cfq_get_queue(cfqd, BLK_RW_ASYNC, cic->ioc,
  2360. GFP_ATOMIC);
  2361. if (new_cfqq) {
  2362. cic->cfqq[BLK_RW_ASYNC] = new_cfqq;
  2363. cfq_put_queue(cfqq);
  2364. }
  2365. }
  2366. cfqq = cic->cfqq[BLK_RW_SYNC];
  2367. if (cfqq)
  2368. cfq_mark_cfqq_prio_changed(cfqq);
  2369. spin_unlock_irqrestore(cfqd->queue->queue_lock, flags);
  2370. }
  2371. static void cfq_ioc_set_ioprio(struct io_context *ioc)
  2372. {
  2373. call_for_each_cic(ioc, changed_ioprio);
  2374. ioc->ioprio_changed = 0;
  2375. }
  2376. static void cfq_init_cfqq(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  2377. pid_t pid, bool is_sync)
  2378. {
  2379. RB_CLEAR_NODE(&cfqq->rb_node);
  2380. RB_CLEAR_NODE(&cfqq->p_node);
  2381. INIT_LIST_HEAD(&cfqq->fifo);
  2382. cfqq->ref = 0;
  2383. cfqq->cfqd = cfqd;
  2384. cfq_mark_cfqq_prio_changed(cfqq);
  2385. if (is_sync) {
  2386. if (!cfq_class_idle(cfqq))
  2387. cfq_mark_cfqq_idle_window(cfqq);
  2388. cfq_mark_cfqq_sync(cfqq);
  2389. }
  2390. cfqq->pid = pid;
  2391. }
  2392. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  2393. static void changed_cgroup(struct io_context *ioc, struct cfq_io_context *cic)
  2394. {
  2395. struct cfq_queue *sync_cfqq = cic_to_cfqq(cic, 1);
  2396. struct cfq_data *cfqd = cic_to_cfqd(cic);
  2397. unsigned long flags;
  2398. struct request_queue *q;
  2399. if (unlikely(!cfqd))
  2400. return;
  2401. q = cfqd->queue;
  2402. spin_lock_irqsave(q->queue_lock, flags);
  2403. if (sync_cfqq) {
  2404. /*
  2405. * Drop reference to sync queue. A new sync queue will be
  2406. * assigned in new group upon arrival of a fresh request.
  2407. */
  2408. cfq_log_cfqq(cfqd, sync_cfqq, "changed cgroup");
  2409. cic_set_cfqq(cic, NULL, 1);
  2410. cfq_put_queue(sync_cfqq);
  2411. }
  2412. spin_unlock_irqrestore(q->queue_lock, flags);
  2413. }
  2414. static void cfq_ioc_set_cgroup(struct io_context *ioc)
  2415. {
  2416. call_for_each_cic(ioc, changed_cgroup);
  2417. ioc->cgroup_changed = 0;
  2418. }
  2419. #endif /* CONFIG_CFQ_GROUP_IOSCHED */
  2420. static struct cfq_queue *
  2421. cfq_find_alloc_queue(struct cfq_data *cfqd, bool is_sync,
  2422. struct io_context *ioc, gfp_t gfp_mask)
  2423. {
  2424. struct cfq_queue *cfqq, *new_cfqq = NULL;
  2425. struct cfq_io_context *cic;
  2426. struct cfq_group *cfqg;
  2427. retry:
  2428. cfqg = cfq_get_cfqg(cfqd, 1);
  2429. cic = cfq_cic_lookup(cfqd, ioc);
  2430. /* cic always exists here */
  2431. cfqq = cic_to_cfqq(cic, is_sync);
  2432. /*
  2433. * Always try a new alloc if we fell back to the OOM cfqq
  2434. * originally, since it should just be a temporary situation.
  2435. */
  2436. if (!cfqq || cfqq == &cfqd->oom_cfqq) {
  2437. cfqq = NULL;
  2438. if (new_cfqq) {
  2439. cfqq = new_cfqq;
  2440. new_cfqq = NULL;
  2441. } else if (gfp_mask & __GFP_WAIT) {
  2442. spin_unlock_irq(cfqd->queue->queue_lock);
  2443. new_cfqq = kmem_cache_alloc_node(cfq_pool,
  2444. gfp_mask | __GFP_ZERO,
  2445. cfqd->queue->node);
  2446. spin_lock_irq(cfqd->queue->queue_lock);
  2447. if (new_cfqq)
  2448. goto retry;
  2449. } else {
  2450. cfqq = kmem_cache_alloc_node(cfq_pool,
  2451. gfp_mask | __GFP_ZERO,
  2452. cfqd->queue->node);
  2453. }
  2454. if (cfqq) {
  2455. cfq_init_cfqq(cfqd, cfqq, current->pid, is_sync);
  2456. cfq_init_prio_data(cfqq, ioc);
  2457. cfq_link_cfqq_cfqg(cfqq, cfqg);
  2458. cfq_log_cfqq(cfqd, cfqq, "alloced");
  2459. } else
  2460. cfqq = &cfqd->oom_cfqq;
  2461. }
  2462. if (new_cfqq)
  2463. kmem_cache_free(cfq_pool, new_cfqq);
  2464. return cfqq;
  2465. }
  2466. static struct cfq_queue **
  2467. cfq_async_queue_prio(struct cfq_data *cfqd, int ioprio_class, int ioprio)
  2468. {
  2469. switch (ioprio_class) {
  2470. case IOPRIO_CLASS_RT:
  2471. return &cfqd->async_cfqq[0][ioprio];
  2472. case IOPRIO_CLASS_BE:
  2473. return &cfqd->async_cfqq[1][ioprio];
  2474. case IOPRIO_CLASS_IDLE:
  2475. return &cfqd->async_idle_cfqq;
  2476. default:
  2477. BUG();
  2478. }
  2479. }
  2480. static struct cfq_queue *
  2481. cfq_get_queue(struct cfq_data *cfqd, bool is_sync, struct io_context *ioc,
  2482. gfp_t gfp_mask)
  2483. {
  2484. const int ioprio = task_ioprio(ioc);
  2485. const int ioprio_class = task_ioprio_class(ioc);
  2486. struct cfq_queue **async_cfqq = NULL;
  2487. struct cfq_queue *cfqq = NULL;
  2488. if (!is_sync) {
  2489. async_cfqq = cfq_async_queue_prio(cfqd, ioprio_class, ioprio);
  2490. cfqq = *async_cfqq;
  2491. }
  2492. if (!cfqq)
  2493. cfqq = cfq_find_alloc_queue(cfqd, is_sync, ioc, gfp_mask);
  2494. /*
  2495. * pin the queue now that it's allocated, scheduler exit will prune it
  2496. */
  2497. if (!is_sync && !(*async_cfqq)) {
  2498. cfqq->ref++;
  2499. *async_cfqq = cfqq;
  2500. }
  2501. cfqq->ref++;
  2502. return cfqq;
  2503. }
  2504. /*
  2505. * We drop cfq io contexts lazily, so we may find a dead one.
  2506. */
  2507. static void
  2508. cfq_drop_dead_cic(struct cfq_data *cfqd, struct io_context *ioc,
  2509. struct cfq_io_context *cic)
  2510. {
  2511. unsigned long flags;
  2512. WARN_ON(!list_empty(&cic->queue_list));
  2513. BUG_ON(cic->key != cfqd_dead_key(cfqd));
  2514. spin_lock_irqsave(&ioc->lock, flags);
  2515. BUG_ON(ioc->ioc_data == cic);
  2516. radix_tree_delete(&ioc->radix_root, cfqd->cic_index);
  2517. hlist_del_rcu(&cic->cic_list);
  2518. spin_unlock_irqrestore(&ioc->lock, flags);
  2519. cfq_cic_free(cic);
  2520. }
  2521. static struct cfq_io_context *
  2522. cfq_cic_lookup(struct cfq_data *cfqd, struct io_context *ioc)
  2523. {
  2524. struct cfq_io_context *cic;
  2525. unsigned long flags;
  2526. if (unlikely(!ioc))
  2527. return NULL;
  2528. rcu_read_lock();
  2529. /*
  2530. * we maintain a last-hit cache, to avoid browsing over the tree
  2531. */
  2532. cic = rcu_dereference(ioc->ioc_data);
  2533. if (cic && cic->key == cfqd) {
  2534. rcu_read_unlock();
  2535. return cic;
  2536. }
  2537. do {
  2538. cic = radix_tree_lookup(&ioc->radix_root, cfqd->cic_index);
  2539. rcu_read_unlock();
  2540. if (!cic)
  2541. break;
  2542. if (unlikely(cic->key != cfqd)) {
  2543. cfq_drop_dead_cic(cfqd, ioc, cic);
  2544. rcu_read_lock();
  2545. continue;
  2546. }
  2547. spin_lock_irqsave(&ioc->lock, flags);
  2548. rcu_assign_pointer(ioc->ioc_data, cic);
  2549. spin_unlock_irqrestore(&ioc->lock, flags);
  2550. break;
  2551. } while (1);
  2552. return cic;
  2553. }
  2554. /*
  2555. * Add cic into ioc, using cfqd as the search key. This enables us to lookup
  2556. * the process specific cfq io context when entered from the block layer.
  2557. * Also adds the cic to a per-cfqd list, used when this queue is removed.
  2558. */
  2559. static int cfq_cic_link(struct cfq_data *cfqd, struct io_context *ioc,
  2560. struct cfq_io_context *cic, gfp_t gfp_mask)
  2561. {
  2562. unsigned long flags;
  2563. int ret;
  2564. ret = radix_tree_preload(gfp_mask);
  2565. if (!ret) {
  2566. cic->ioc = ioc;
  2567. cic->key = cfqd;
  2568. spin_lock_irqsave(&ioc->lock, flags);
  2569. ret = radix_tree_insert(&ioc->radix_root,
  2570. cfqd->cic_index, cic);
  2571. if (!ret)
  2572. hlist_add_head_rcu(&cic->cic_list, &ioc->cic_list);
  2573. spin_unlock_irqrestore(&ioc->lock, flags);
  2574. radix_tree_preload_end();
  2575. if (!ret) {
  2576. spin_lock_irqsave(cfqd->queue->queue_lock, flags);
  2577. list_add(&cic->queue_list, &cfqd->cic_list);
  2578. spin_unlock_irqrestore(cfqd->queue->queue_lock, flags);
  2579. }
  2580. }
  2581. if (ret)
  2582. printk(KERN_ERR "cfq: cic link failed!\n");
  2583. return ret;
  2584. }
  2585. /*
  2586. * Setup general io context and cfq io context. There can be several cfq
  2587. * io contexts per general io context, if this process is doing io to more
  2588. * than one device managed by cfq.
  2589. */
  2590. static struct cfq_io_context *
  2591. cfq_get_io_context(struct cfq_data *cfqd, gfp_t gfp_mask)
  2592. {
  2593. struct io_context *ioc = NULL;
  2594. struct cfq_io_context *cic;
  2595. might_sleep_if(gfp_mask & __GFP_WAIT);
  2596. ioc = get_io_context(gfp_mask, cfqd->queue->node);
  2597. if (!ioc)
  2598. return NULL;
  2599. cic = cfq_cic_lookup(cfqd, ioc);
  2600. if (cic)
  2601. goto out;
  2602. cic = cfq_alloc_io_context(cfqd, gfp_mask);
  2603. if (cic == NULL)
  2604. goto err;
  2605. if (cfq_cic_link(cfqd, ioc, cic, gfp_mask))
  2606. goto err_free;
  2607. out:
  2608. smp_read_barrier_depends();
  2609. if (unlikely(ioc->ioprio_changed))
  2610. cfq_ioc_set_ioprio(ioc);
  2611. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  2612. if (unlikely(ioc->cgroup_changed))
  2613. cfq_ioc_set_cgroup(ioc);
  2614. #endif
  2615. return cic;
  2616. err_free:
  2617. cfq_cic_free(cic);
  2618. err:
  2619. put_io_context(ioc);
  2620. return NULL;
  2621. }
  2622. static void
  2623. cfq_update_io_thinktime(struct cfq_data *cfqd, struct cfq_io_context *cic)
  2624. {
  2625. unsigned long elapsed = jiffies - cic->last_end_request;
  2626. unsigned long ttime = min(elapsed, 2UL * cfqd->cfq_slice_idle);
  2627. cic->ttime_samples = (7*cic->ttime_samples + 256) / 8;
  2628. cic->ttime_total = (7*cic->ttime_total + 256*ttime) / 8;
  2629. cic->ttime_mean = (cic->ttime_total + 128) / cic->ttime_samples;
  2630. }
  2631. static void
  2632. cfq_update_io_seektime(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  2633. struct request *rq)
  2634. {
  2635. sector_t sdist = 0;
  2636. sector_t n_sec = blk_rq_sectors(rq);
  2637. if (cfqq->last_request_pos) {
  2638. if (cfqq->last_request_pos < blk_rq_pos(rq))
  2639. sdist = blk_rq_pos(rq) - cfqq->last_request_pos;
  2640. else
  2641. sdist = cfqq->last_request_pos - blk_rq_pos(rq);
  2642. }
  2643. cfqq->seek_history <<= 1;
  2644. if (blk_queue_nonrot(cfqd->queue))
  2645. cfqq->seek_history |= (n_sec < CFQQ_SECT_THR_NONROT);
  2646. else
  2647. cfqq->seek_history |= (sdist > CFQQ_SEEK_THR);
  2648. }
  2649. /*
  2650. * Disable idle window if the process thinks too long or seeks so much that
  2651. * it doesn't matter
  2652. */
  2653. static void
  2654. cfq_update_idle_window(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  2655. struct cfq_io_context *cic)
  2656. {
  2657. int old_idle, enable_idle;
  2658. /*
  2659. * Don't idle for async or idle io prio class
  2660. */
  2661. if (!cfq_cfqq_sync(cfqq) || cfq_class_idle(cfqq))
  2662. return;
  2663. enable_idle = old_idle = cfq_cfqq_idle_window(cfqq);
  2664. if (cfqq->queued[0] + cfqq->queued[1] >= 4)
  2665. cfq_mark_cfqq_deep(cfqq);
  2666. if (cfqq->next_rq && (cfqq->next_rq->cmd_flags & REQ_NOIDLE))
  2667. enable_idle = 0;
  2668. else if (!atomic_read(&cic->ioc->nr_tasks) || !cfqd->cfq_slice_idle ||
  2669. (!cfq_cfqq_deep(cfqq) && CFQQ_SEEKY(cfqq)))
  2670. enable_idle = 0;
  2671. else if (sample_valid(cic->ttime_samples)) {
  2672. if (cic->ttime_mean > cfqd->cfq_slice_idle)
  2673. enable_idle = 0;
  2674. else
  2675. enable_idle = 1;
  2676. }
  2677. if (old_idle != enable_idle) {
  2678. cfq_log_cfqq(cfqd, cfqq, "idle=%d", enable_idle);
  2679. if (enable_idle)
  2680. cfq_mark_cfqq_idle_window(cfqq);
  2681. else
  2682. cfq_clear_cfqq_idle_window(cfqq);
  2683. }
  2684. }
  2685. /*
  2686. * Check if new_cfqq should preempt the currently active queue. Return 0 for
  2687. * no or if we aren't sure, a 1 will cause a preempt.
  2688. */
  2689. static bool
  2690. cfq_should_preempt(struct cfq_data *cfqd, struct cfq_queue *new_cfqq,
  2691. struct request *rq)
  2692. {
  2693. struct cfq_queue *cfqq;
  2694. cfqq = cfqd->active_queue;
  2695. if (!cfqq)
  2696. return false;
  2697. if (cfq_class_idle(new_cfqq))
  2698. return false;
  2699. if (cfq_class_idle(cfqq))
  2700. return true;
  2701. /*
  2702. * Don't allow a non-RT request to preempt an ongoing RT cfqq timeslice.
  2703. */
  2704. if (cfq_class_rt(cfqq) && !cfq_class_rt(new_cfqq))
  2705. return false;
  2706. /*
  2707. * if the new request is sync, but the currently running queue is
  2708. * not, let the sync request have priority.
  2709. */
  2710. if (rq_is_sync(rq) && !cfq_cfqq_sync(cfqq))
  2711. return true;
  2712. if (new_cfqq->cfqg != cfqq->cfqg)
  2713. return false;
  2714. if (cfq_slice_used(cfqq))
  2715. return true;
  2716. /* Allow preemption only if we are idling on sync-noidle tree */
  2717. if (cfqd->serving_type == SYNC_NOIDLE_WORKLOAD &&
  2718. cfqq_type(new_cfqq) == SYNC_NOIDLE_WORKLOAD &&
  2719. new_cfqq->service_tree->count == 2 &&
  2720. RB_EMPTY_ROOT(&cfqq->sort_list))
  2721. return true;
  2722. /*
  2723. * So both queues are sync. Let the new request get disk time if
  2724. * it's a metadata request and the current queue is doing regular IO.
  2725. */
  2726. if ((rq->cmd_flags & REQ_META) && !cfqq->meta_pending)
  2727. return true;
  2728. /*
  2729. * Allow an RT request to pre-empt an ongoing non-RT cfqq timeslice.
  2730. */
  2731. if (cfq_class_rt(new_cfqq) && !cfq_class_rt(cfqq))
  2732. return true;
  2733. /* An idle queue should not be idle now for some reason */
  2734. if (RB_EMPTY_ROOT(&cfqq->sort_list) && !cfq_should_idle(cfqd, cfqq))
  2735. return true;
  2736. if (!cfqd->active_cic || !cfq_cfqq_wait_request(cfqq))
  2737. return false;
  2738. /*
  2739. * if this request is as-good as one we would expect from the
  2740. * current cfqq, let it preempt
  2741. */
  2742. if (cfq_rq_close(cfqd, cfqq, rq))
  2743. return true;
  2744. return false;
  2745. }
  2746. /*
  2747. * cfqq preempts the active queue. if we allowed preempt with no slice left,
  2748. * let it have half of its nominal slice.
  2749. */
  2750. static void cfq_preempt_queue(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  2751. {
  2752. struct cfq_queue *old_cfqq = cfqd->active_queue;
  2753. cfq_log_cfqq(cfqd, cfqq, "preempt");
  2754. cfq_slice_expired(cfqd, 1);
  2755. /*
  2756. * workload type is changed, don't save slice, otherwise preempt
  2757. * doesn't happen
  2758. */
  2759. if (cfqq_type(old_cfqq) != cfqq_type(cfqq))
  2760. cfqq->cfqg->saved_workload_slice = 0;
  2761. /*
  2762. * Put the new queue at the front of the of the current list,
  2763. * so we know that it will be selected next.
  2764. */
  2765. BUG_ON(!cfq_cfqq_on_rr(cfqq));
  2766. cfq_service_tree_add(cfqd, cfqq, 1);
  2767. cfqq->slice_end = 0;
  2768. cfq_mark_cfqq_slice_new(cfqq);
  2769. }
  2770. /*
  2771. * Called when a new fs request (rq) is added (to cfqq). Check if there's
  2772. * something we should do about it
  2773. */
  2774. static void
  2775. cfq_rq_enqueued(struct cfq_data *cfqd, struct cfq_queue *cfqq,
  2776. struct request *rq)
  2777. {
  2778. struct cfq_io_context *cic = RQ_CIC(rq);
  2779. cfqd->rq_queued++;
  2780. if (rq->cmd_flags & REQ_META)
  2781. cfqq->meta_pending++;
  2782. cfq_update_io_thinktime(cfqd, cic);
  2783. cfq_update_io_seektime(cfqd, cfqq, rq);
  2784. cfq_update_idle_window(cfqd, cfqq, cic);
  2785. cfqq->last_request_pos = blk_rq_pos(rq) + blk_rq_sectors(rq);
  2786. if (cfqq == cfqd->active_queue) {
  2787. /*
  2788. * Remember that we saw a request from this process, but
  2789. * don't start queuing just yet. Otherwise we risk seeing lots
  2790. * of tiny requests, because we disrupt the normal plugging
  2791. * and merging. If the request is already larger than a single
  2792. * page, let it rip immediately. For that case we assume that
  2793. * merging is already done. Ditto for a busy system that
  2794. * has other work pending, don't risk delaying until the
  2795. * idle timer unplug to continue working.
  2796. */
  2797. if (cfq_cfqq_wait_request(cfqq)) {
  2798. if (blk_rq_bytes(rq) > PAGE_CACHE_SIZE ||
  2799. cfqd->busy_queues > 1) {
  2800. cfq_del_timer(cfqd, cfqq);
  2801. cfq_clear_cfqq_wait_request(cfqq);
  2802. __blk_run_queue(cfqd->queue);
  2803. } else {
  2804. cfq_blkiocg_update_idle_time_stats(
  2805. &cfqq->cfqg->blkg);
  2806. cfq_mark_cfqq_must_dispatch(cfqq);
  2807. }
  2808. }
  2809. } else if (cfq_should_preempt(cfqd, cfqq, rq)) {
  2810. /*
  2811. * not the active queue - expire current slice if it is
  2812. * idle and has expired it's mean thinktime or this new queue
  2813. * has some old slice time left and is of higher priority or
  2814. * this new queue is RT and the current one is BE
  2815. */
  2816. cfq_preempt_queue(cfqd, cfqq);
  2817. __blk_run_queue(cfqd->queue);
  2818. }
  2819. }
  2820. static void cfq_insert_request(struct request_queue *q, struct request *rq)
  2821. {
  2822. struct cfq_data *cfqd = q->elevator->elevator_data;
  2823. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  2824. cfq_log_cfqq(cfqd, cfqq, "insert_request");
  2825. cfq_init_prio_data(cfqq, RQ_CIC(rq)->ioc);
  2826. rq_set_fifo_time(rq, jiffies + cfqd->cfq_fifo_expire[rq_is_sync(rq)]);
  2827. list_add_tail(&rq->queuelist, &cfqq->fifo);
  2828. cfq_add_rq_rb(rq);
  2829. cfq_blkiocg_update_io_add_stats(&(RQ_CFQG(rq))->blkg,
  2830. &cfqd->serving_group->blkg, rq_data_dir(rq),
  2831. rq_is_sync(rq));
  2832. cfq_rq_enqueued(cfqd, cfqq, rq);
  2833. }
  2834. /*
  2835. * Update hw_tag based on peak queue depth over 50 samples under
  2836. * sufficient load.
  2837. */
  2838. static void cfq_update_hw_tag(struct cfq_data *cfqd)
  2839. {
  2840. struct cfq_queue *cfqq = cfqd->active_queue;
  2841. if (cfqd->rq_in_driver > cfqd->hw_tag_est_depth)
  2842. cfqd->hw_tag_est_depth = cfqd->rq_in_driver;
  2843. if (cfqd->hw_tag == 1)
  2844. return;
  2845. if (cfqd->rq_queued <= CFQ_HW_QUEUE_MIN &&
  2846. cfqd->rq_in_driver <= CFQ_HW_QUEUE_MIN)
  2847. return;
  2848. /*
  2849. * If active queue hasn't enough requests and can idle, cfq might not
  2850. * dispatch sufficient requests to hardware. Don't zero hw_tag in this
  2851. * case
  2852. */
  2853. if (cfqq && cfq_cfqq_idle_window(cfqq) &&
  2854. cfqq->dispatched + cfqq->queued[0] + cfqq->queued[1] <
  2855. CFQ_HW_QUEUE_MIN && cfqd->rq_in_driver < CFQ_HW_QUEUE_MIN)
  2856. return;
  2857. if (cfqd->hw_tag_samples++ < 50)
  2858. return;
  2859. if (cfqd->hw_tag_est_depth >= CFQ_HW_QUEUE_MIN)
  2860. cfqd->hw_tag = 1;
  2861. else
  2862. cfqd->hw_tag = 0;
  2863. }
  2864. static bool cfq_should_wait_busy(struct cfq_data *cfqd, struct cfq_queue *cfqq)
  2865. {
  2866. struct cfq_io_context *cic = cfqd->active_cic;
  2867. /* If the queue already has requests, don't wait */
  2868. if (!RB_EMPTY_ROOT(&cfqq->sort_list))
  2869. return false;
  2870. /* If there are other queues in the group, don't wait */
  2871. if (cfqq->cfqg->nr_cfqq > 1)
  2872. return false;
  2873. if (cfq_slice_used(cfqq))
  2874. return true;
  2875. /* if slice left is less than think time, wait busy */
  2876. if (cic && sample_valid(cic->ttime_samples)
  2877. && (cfqq->slice_end - jiffies < cic->ttime_mean))
  2878. return true;
  2879. /*
  2880. * If think times is less than a jiffy than ttime_mean=0 and above
  2881. * will not be true. It might happen that slice has not expired yet
  2882. * but will expire soon (4-5 ns) during select_queue(). To cover the
  2883. * case where think time is less than a jiffy, mark the queue wait
  2884. * busy if only 1 jiffy is left in the slice.
  2885. */
  2886. if (cfqq->slice_end - jiffies == 1)
  2887. return true;
  2888. return false;
  2889. }
  2890. static void cfq_completed_request(struct request_queue *q, struct request *rq)
  2891. {
  2892. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  2893. struct cfq_data *cfqd = cfqq->cfqd;
  2894. const int sync = rq_is_sync(rq);
  2895. unsigned long now;
  2896. now = jiffies;
  2897. cfq_log_cfqq(cfqd, cfqq, "complete rqnoidle %d",
  2898. !!(rq->cmd_flags & REQ_NOIDLE));
  2899. cfq_update_hw_tag(cfqd);
  2900. WARN_ON(!cfqd->rq_in_driver);
  2901. WARN_ON(!cfqq->dispatched);
  2902. cfqd->rq_in_driver--;
  2903. cfqq->dispatched--;
  2904. (RQ_CFQG(rq))->dispatched--;
  2905. cfq_blkiocg_update_completion_stats(&cfqq->cfqg->blkg,
  2906. rq_start_time_ns(rq), rq_io_start_time_ns(rq),
  2907. rq_data_dir(rq), rq_is_sync(rq));
  2908. cfqd->rq_in_flight[cfq_cfqq_sync(cfqq)]--;
  2909. if (sync) {
  2910. RQ_CIC(rq)->last_end_request = now;
  2911. if (!time_after(rq->start_time + cfqd->cfq_fifo_expire[1], now))
  2912. cfqd->last_delayed_sync = now;
  2913. }
  2914. /*
  2915. * If this is the active queue, check if it needs to be expired,
  2916. * or if we want to idle in case it has no pending requests.
  2917. */
  2918. if (cfqd->active_queue == cfqq) {
  2919. const bool cfqq_empty = RB_EMPTY_ROOT(&cfqq->sort_list);
  2920. if (cfq_cfqq_slice_new(cfqq)) {
  2921. cfq_set_prio_slice(cfqd, cfqq);
  2922. cfq_clear_cfqq_slice_new(cfqq);
  2923. }
  2924. /*
  2925. * Should we wait for next request to come in before we expire
  2926. * the queue.
  2927. */
  2928. if (cfq_should_wait_busy(cfqd, cfqq)) {
  2929. unsigned long extend_sl = cfqd->cfq_slice_idle;
  2930. if (!cfqd->cfq_slice_idle)
  2931. extend_sl = cfqd->cfq_group_idle;
  2932. cfqq->slice_end = jiffies + extend_sl;
  2933. cfq_mark_cfqq_wait_busy(cfqq);
  2934. cfq_log_cfqq(cfqd, cfqq, "will busy wait");
  2935. }
  2936. /*
  2937. * Idling is not enabled on:
  2938. * - expired queues
  2939. * - idle-priority queues
  2940. * - async queues
  2941. * - queues with still some requests queued
  2942. * - when there is a close cooperator
  2943. */
  2944. if (cfq_slice_used(cfqq) || cfq_class_idle(cfqq))
  2945. cfq_slice_expired(cfqd, 1);
  2946. else if (sync && cfqq_empty &&
  2947. !cfq_close_cooperator(cfqd, cfqq)) {
  2948. cfq_arm_slice_timer(cfqd);
  2949. }
  2950. }
  2951. if (!cfqd->rq_in_driver)
  2952. cfq_schedule_dispatch(cfqd);
  2953. }
  2954. /*
  2955. * we temporarily boost lower priority queues if they are holding fs exclusive
  2956. * resources. they are boosted to normal prio (CLASS_BE/4)
  2957. */
  2958. static void cfq_prio_boost(struct cfq_queue *cfqq)
  2959. {
  2960. if (has_fs_excl()) {
  2961. /*
  2962. * boost idle prio on transactions that would lock out other
  2963. * users of the filesystem
  2964. */
  2965. if (cfq_class_idle(cfqq))
  2966. cfqq->ioprio_class = IOPRIO_CLASS_BE;
  2967. if (cfqq->ioprio > IOPRIO_NORM)
  2968. cfqq->ioprio = IOPRIO_NORM;
  2969. } else {
  2970. /*
  2971. * unboost the queue (if needed)
  2972. */
  2973. cfqq->ioprio_class = cfqq->org_ioprio_class;
  2974. cfqq->ioprio = cfqq->org_ioprio;
  2975. }
  2976. }
  2977. static inline int __cfq_may_queue(struct cfq_queue *cfqq)
  2978. {
  2979. if (cfq_cfqq_wait_request(cfqq) && !cfq_cfqq_must_alloc_slice(cfqq)) {
  2980. cfq_mark_cfqq_must_alloc_slice(cfqq);
  2981. return ELV_MQUEUE_MUST;
  2982. }
  2983. return ELV_MQUEUE_MAY;
  2984. }
  2985. static int cfq_may_queue(struct request_queue *q, int rw)
  2986. {
  2987. struct cfq_data *cfqd = q->elevator->elevator_data;
  2988. struct task_struct *tsk = current;
  2989. struct cfq_io_context *cic;
  2990. struct cfq_queue *cfqq;
  2991. /*
  2992. * don't force setup of a queue from here, as a call to may_queue
  2993. * does not necessarily imply that a request actually will be queued.
  2994. * so just lookup a possibly existing queue, or return 'may queue'
  2995. * if that fails
  2996. */
  2997. cic = cfq_cic_lookup(cfqd, tsk->io_context);
  2998. if (!cic)
  2999. return ELV_MQUEUE_MAY;
  3000. cfqq = cic_to_cfqq(cic, rw_is_sync(rw));
  3001. if (cfqq) {
  3002. cfq_init_prio_data(cfqq, cic->ioc);
  3003. cfq_prio_boost(cfqq);
  3004. return __cfq_may_queue(cfqq);
  3005. }
  3006. return ELV_MQUEUE_MAY;
  3007. }
  3008. /*
  3009. * queue lock held here
  3010. */
  3011. static void cfq_put_request(struct request *rq)
  3012. {
  3013. struct cfq_queue *cfqq = RQ_CFQQ(rq);
  3014. if (cfqq) {
  3015. const int rw = rq_data_dir(rq);
  3016. BUG_ON(!cfqq->allocated[rw]);
  3017. cfqq->allocated[rw]--;
  3018. put_io_context(RQ_CIC(rq)->ioc);
  3019. rq->elevator_private[0] = NULL;
  3020. rq->elevator_private[1] = NULL;
  3021. /* Put down rq reference on cfqg */
  3022. cfq_put_cfqg(RQ_CFQG(rq));
  3023. rq->elevator_private[2] = NULL;
  3024. cfq_put_queue(cfqq);
  3025. }
  3026. }
  3027. static struct cfq_queue *
  3028. cfq_merge_cfqqs(struct cfq_data *cfqd, struct cfq_io_context *cic,
  3029. struct cfq_queue *cfqq)
  3030. {
  3031. cfq_log_cfqq(cfqd, cfqq, "merging with queue %p", cfqq->new_cfqq);
  3032. cic_set_cfqq(cic, cfqq->new_cfqq, 1);
  3033. cfq_mark_cfqq_coop(cfqq->new_cfqq);
  3034. cfq_put_queue(cfqq);
  3035. return cic_to_cfqq(cic, 1);
  3036. }
  3037. /*
  3038. * Returns NULL if a new cfqq should be allocated, or the old cfqq if this
  3039. * was the last process referring to said cfqq.
  3040. */
  3041. static struct cfq_queue *
  3042. split_cfqq(struct cfq_io_context *cic, struct cfq_queue *cfqq)
  3043. {
  3044. if (cfqq_process_refs(cfqq) == 1) {
  3045. cfqq->pid = current->pid;
  3046. cfq_clear_cfqq_coop(cfqq);
  3047. cfq_clear_cfqq_split_coop(cfqq);
  3048. return cfqq;
  3049. }
  3050. cic_set_cfqq(cic, NULL, 1);
  3051. cfq_put_cooperator(cfqq);
  3052. cfq_put_queue(cfqq);
  3053. return NULL;
  3054. }
  3055. /*
  3056. * Allocate cfq data structures associated with this request.
  3057. */
  3058. static int
  3059. cfq_set_request(struct request_queue *q, struct request *rq, gfp_t gfp_mask)
  3060. {
  3061. struct cfq_data *cfqd = q->elevator->elevator_data;
  3062. struct cfq_io_context *cic;
  3063. const int rw = rq_data_dir(rq);
  3064. const bool is_sync = rq_is_sync(rq);
  3065. struct cfq_queue *cfqq;
  3066. unsigned long flags;
  3067. might_sleep_if(gfp_mask & __GFP_WAIT);
  3068. cic = cfq_get_io_context(cfqd, gfp_mask);
  3069. spin_lock_irqsave(q->queue_lock, flags);
  3070. if (!cic)
  3071. goto queue_fail;
  3072. new_queue:
  3073. cfqq = cic_to_cfqq(cic, is_sync);
  3074. if (!cfqq || cfqq == &cfqd->oom_cfqq) {
  3075. cfqq = cfq_get_queue(cfqd, is_sync, cic->ioc, gfp_mask);
  3076. cic_set_cfqq(cic, cfqq, is_sync);
  3077. } else {
  3078. /*
  3079. * If the queue was seeky for too long, break it apart.
  3080. */
  3081. if (cfq_cfqq_coop(cfqq) && cfq_cfqq_split_coop(cfqq)) {
  3082. cfq_log_cfqq(cfqd, cfqq, "breaking apart cfqq");
  3083. cfqq = split_cfqq(cic, cfqq);
  3084. if (!cfqq)
  3085. goto new_queue;
  3086. }
  3087. /*
  3088. * Check to see if this queue is scheduled to merge with
  3089. * another, closely cooperating queue. The merging of
  3090. * queues happens here as it must be done in process context.
  3091. * The reference on new_cfqq was taken in merge_cfqqs.
  3092. */
  3093. if (cfqq->new_cfqq)
  3094. cfqq = cfq_merge_cfqqs(cfqd, cic, cfqq);
  3095. }
  3096. cfqq->allocated[rw]++;
  3097. spin_unlock_irqrestore(q->queue_lock, flags);
  3098. cfqq->ref++;
  3099. rq->elevator_private[0] = cic;
  3100. rq->elevator_private[1] = cfqq;
  3101. rq->elevator_private[2] = cfq_ref_get_cfqg(cfqq->cfqg);
  3102. return 0;
  3103. queue_fail:
  3104. if (cic)
  3105. put_io_context(cic->ioc);
  3106. cfq_schedule_dispatch(cfqd);
  3107. spin_unlock_irqrestore(q->queue_lock, flags);
  3108. cfq_log(cfqd, "set_request fail");
  3109. return 1;
  3110. }
  3111. static void cfq_kick_queue(struct work_struct *work)
  3112. {
  3113. struct cfq_data *cfqd =
  3114. container_of(work, struct cfq_data, unplug_work);
  3115. struct request_queue *q = cfqd->queue;
  3116. spin_lock_irq(q->queue_lock);
  3117. __blk_run_queue(cfqd->queue);
  3118. spin_unlock_irq(q->queue_lock);
  3119. }
  3120. /*
  3121. * Timer running if the active_queue is currently idling inside its time slice
  3122. */
  3123. static void cfq_idle_slice_timer(unsigned long data)
  3124. {
  3125. struct cfq_data *cfqd = (struct cfq_data *) data;
  3126. struct cfq_queue *cfqq;
  3127. unsigned long flags;
  3128. int timed_out = 1;
  3129. cfq_log(cfqd, "idle timer fired");
  3130. spin_lock_irqsave(cfqd->queue->queue_lock, flags);
  3131. cfqq = cfqd->active_queue;
  3132. if (cfqq) {
  3133. timed_out = 0;
  3134. /*
  3135. * We saw a request before the queue expired, let it through
  3136. */
  3137. if (cfq_cfqq_must_dispatch(cfqq))
  3138. goto out_kick;
  3139. /*
  3140. * expired
  3141. */
  3142. if (cfq_slice_used(cfqq))
  3143. goto expire;
  3144. /*
  3145. * only expire and reinvoke request handler, if there are
  3146. * other queues with pending requests
  3147. */
  3148. if (!cfqd->busy_queues)
  3149. goto out_cont;
  3150. /*
  3151. * not expired and it has a request pending, let it dispatch
  3152. */
  3153. if (!RB_EMPTY_ROOT(&cfqq->sort_list))
  3154. goto out_kick;
  3155. /*
  3156. * Queue depth flag is reset only when the idle didn't succeed
  3157. */
  3158. cfq_clear_cfqq_deep(cfqq);
  3159. }
  3160. expire:
  3161. cfq_slice_expired(cfqd, timed_out);
  3162. out_kick:
  3163. cfq_schedule_dispatch(cfqd);
  3164. out_cont:
  3165. spin_unlock_irqrestore(cfqd->queue->queue_lock, flags);
  3166. }
  3167. static void cfq_shutdown_timer_wq(struct cfq_data *cfqd)
  3168. {
  3169. del_timer_sync(&cfqd->idle_slice_timer);
  3170. cancel_work_sync(&cfqd->unplug_work);
  3171. }
  3172. static void cfq_put_async_queues(struct cfq_data *cfqd)
  3173. {
  3174. int i;
  3175. for (i = 0; i < IOPRIO_BE_NR; i++) {
  3176. if (cfqd->async_cfqq[0][i])
  3177. cfq_put_queue(cfqd->async_cfqq[0][i]);
  3178. if (cfqd->async_cfqq[1][i])
  3179. cfq_put_queue(cfqd->async_cfqq[1][i]);
  3180. }
  3181. if (cfqd->async_idle_cfqq)
  3182. cfq_put_queue(cfqd->async_idle_cfqq);
  3183. }
  3184. static void cfq_cfqd_free(struct rcu_head *head)
  3185. {
  3186. kfree(container_of(head, struct cfq_data, rcu));
  3187. }
  3188. static void cfq_exit_queue(struct elevator_queue *e)
  3189. {
  3190. struct cfq_data *cfqd = e->elevator_data;
  3191. struct request_queue *q = cfqd->queue;
  3192. cfq_shutdown_timer_wq(cfqd);
  3193. spin_lock_irq(q->queue_lock);
  3194. if (cfqd->active_queue)
  3195. __cfq_slice_expired(cfqd, cfqd->active_queue, 0);
  3196. while (!list_empty(&cfqd->cic_list)) {
  3197. struct cfq_io_context *cic = list_entry(cfqd->cic_list.next,
  3198. struct cfq_io_context,
  3199. queue_list);
  3200. __cfq_exit_single_io_context(cfqd, cic);
  3201. }
  3202. cfq_put_async_queues(cfqd);
  3203. cfq_release_cfq_groups(cfqd);
  3204. cfq_blkiocg_del_blkio_group(&cfqd->root_group.blkg);
  3205. spin_unlock_irq(q->queue_lock);
  3206. cfq_shutdown_timer_wq(cfqd);
  3207. spin_lock(&cic_index_lock);
  3208. ida_remove(&cic_index_ida, cfqd->cic_index);
  3209. spin_unlock(&cic_index_lock);
  3210. /* Wait for cfqg->blkg->key accessors to exit their grace periods. */
  3211. call_rcu(&cfqd->rcu, cfq_cfqd_free);
  3212. }
  3213. static int cfq_alloc_cic_index(void)
  3214. {
  3215. int index, error;
  3216. do {
  3217. if (!ida_pre_get(&cic_index_ida, GFP_KERNEL))
  3218. return -ENOMEM;
  3219. spin_lock(&cic_index_lock);
  3220. error = ida_get_new(&cic_index_ida, &index);
  3221. spin_unlock(&cic_index_lock);
  3222. if (error && error != -EAGAIN)
  3223. return error;
  3224. } while (error);
  3225. return index;
  3226. }
  3227. static void *cfq_init_queue(struct request_queue *q)
  3228. {
  3229. struct cfq_data *cfqd;
  3230. int i, j;
  3231. struct cfq_group *cfqg;
  3232. struct cfq_rb_root *st;
  3233. i = cfq_alloc_cic_index();
  3234. if (i < 0)
  3235. return NULL;
  3236. cfqd = kmalloc_node(sizeof(*cfqd), GFP_KERNEL | __GFP_ZERO, q->node);
  3237. if (!cfqd)
  3238. return NULL;
  3239. /*
  3240. * Don't need take queue_lock in the routine, since we are
  3241. * initializing the ioscheduler, and nobody is using cfqd
  3242. */
  3243. cfqd->cic_index = i;
  3244. /* Init root service tree */
  3245. cfqd->grp_service_tree = CFQ_RB_ROOT;
  3246. /* Init root group */
  3247. cfqg = &cfqd->root_group;
  3248. for_each_cfqg_st(cfqg, i, j, st)
  3249. *st = CFQ_RB_ROOT;
  3250. RB_CLEAR_NODE(&cfqg->rb_node);
  3251. /* Give preference to root group over other groups */
  3252. cfqg->weight = 2*BLKIO_WEIGHT_DEFAULT;
  3253. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  3254. /*
  3255. * Take a reference to root group which we never drop. This is just
  3256. * to make sure that cfq_put_cfqg() does not try to kfree root group
  3257. */
  3258. cfqg->ref = 1;
  3259. rcu_read_lock();
  3260. cfq_blkiocg_add_blkio_group(&blkio_root_cgroup, &cfqg->blkg,
  3261. (void *)cfqd, 0);
  3262. rcu_read_unlock();
  3263. #endif
  3264. /*
  3265. * Not strictly needed (since RB_ROOT just clears the node and we
  3266. * zeroed cfqd on alloc), but better be safe in case someone decides
  3267. * to add magic to the rb code
  3268. */
  3269. for (i = 0; i < CFQ_PRIO_LISTS; i++)
  3270. cfqd->prio_trees[i] = RB_ROOT;
  3271. /*
  3272. * Our fallback cfqq if cfq_find_alloc_queue() runs into OOM issues.
  3273. * Grab a permanent reference to it, so that the normal code flow
  3274. * will not attempt to free it.
  3275. */
  3276. cfq_init_cfqq(cfqd, &cfqd->oom_cfqq, 1, 0);
  3277. cfqd->oom_cfqq.ref++;
  3278. cfq_link_cfqq_cfqg(&cfqd->oom_cfqq, &cfqd->root_group);
  3279. INIT_LIST_HEAD(&cfqd->cic_list);
  3280. cfqd->queue = q;
  3281. init_timer(&cfqd->idle_slice_timer);
  3282. cfqd->idle_slice_timer.function = cfq_idle_slice_timer;
  3283. cfqd->idle_slice_timer.data = (unsigned long) cfqd;
  3284. INIT_WORK(&cfqd->unplug_work, cfq_kick_queue);
  3285. cfqd->cfq_quantum = cfq_quantum;
  3286. cfqd->cfq_fifo_expire[0] = cfq_fifo_expire[0];
  3287. cfqd->cfq_fifo_expire[1] = cfq_fifo_expire[1];
  3288. cfqd->cfq_back_max = cfq_back_max;
  3289. cfqd->cfq_back_penalty = cfq_back_penalty;
  3290. cfqd->cfq_slice[0] = cfq_slice_async;
  3291. cfqd->cfq_slice[1] = cfq_slice_sync;
  3292. cfqd->cfq_slice_async_rq = cfq_slice_async_rq;
  3293. cfqd->cfq_slice_idle = cfq_slice_idle;
  3294. cfqd->cfq_group_idle = cfq_group_idle;
  3295. cfqd->cfq_latency = 1;
  3296. cfqd->hw_tag = -1;
  3297. /*
  3298. * we optimistically start assuming sync ops weren't delayed in last
  3299. * second, in order to have larger depth for async operations.
  3300. */
  3301. cfqd->last_delayed_sync = jiffies - HZ;
  3302. return cfqd;
  3303. }
  3304. static void cfq_slab_kill(void)
  3305. {
  3306. /*
  3307. * Caller already ensured that pending RCU callbacks are completed,
  3308. * so we should have no busy allocations at this point.
  3309. */
  3310. if (cfq_pool)
  3311. kmem_cache_destroy(cfq_pool);
  3312. if (cfq_ioc_pool)
  3313. kmem_cache_destroy(cfq_ioc_pool);
  3314. }
  3315. static int __init cfq_slab_setup(void)
  3316. {
  3317. cfq_pool = KMEM_CACHE(cfq_queue, 0);
  3318. if (!cfq_pool)
  3319. goto fail;
  3320. cfq_ioc_pool = KMEM_CACHE(cfq_io_context, 0);
  3321. if (!cfq_ioc_pool)
  3322. goto fail;
  3323. return 0;
  3324. fail:
  3325. cfq_slab_kill();
  3326. return -ENOMEM;
  3327. }
  3328. /*
  3329. * sysfs parts below -->
  3330. */
  3331. static ssize_t
  3332. cfq_var_show(unsigned int var, char *page)
  3333. {
  3334. return sprintf(page, "%d\n", var);
  3335. }
  3336. static ssize_t
  3337. cfq_var_store(unsigned int *var, const char *page, size_t count)
  3338. {
  3339. char *p = (char *) page;
  3340. *var = simple_strtoul(p, &p, 10);
  3341. return count;
  3342. }
  3343. #define SHOW_FUNCTION(__FUNC, __VAR, __CONV) \
  3344. static ssize_t __FUNC(struct elevator_queue *e, char *page) \
  3345. { \
  3346. struct cfq_data *cfqd = e->elevator_data; \
  3347. unsigned int __data = __VAR; \
  3348. if (__CONV) \
  3349. __data = jiffies_to_msecs(__data); \
  3350. return cfq_var_show(__data, (page)); \
  3351. }
  3352. SHOW_FUNCTION(cfq_quantum_show, cfqd->cfq_quantum, 0);
  3353. SHOW_FUNCTION(cfq_fifo_expire_sync_show, cfqd->cfq_fifo_expire[1], 1);
  3354. SHOW_FUNCTION(cfq_fifo_expire_async_show, cfqd->cfq_fifo_expire[0], 1);
  3355. SHOW_FUNCTION(cfq_back_seek_max_show, cfqd->cfq_back_max, 0);
  3356. SHOW_FUNCTION(cfq_back_seek_penalty_show, cfqd->cfq_back_penalty, 0);
  3357. SHOW_FUNCTION(cfq_slice_idle_show, cfqd->cfq_slice_idle, 1);
  3358. SHOW_FUNCTION(cfq_group_idle_show, cfqd->cfq_group_idle, 1);
  3359. SHOW_FUNCTION(cfq_slice_sync_show, cfqd->cfq_slice[1], 1);
  3360. SHOW_FUNCTION(cfq_slice_async_show, cfqd->cfq_slice[0], 1);
  3361. SHOW_FUNCTION(cfq_slice_async_rq_show, cfqd->cfq_slice_async_rq, 0);
  3362. SHOW_FUNCTION(cfq_low_latency_show, cfqd->cfq_latency, 0);
  3363. #undef SHOW_FUNCTION
  3364. #define STORE_FUNCTION(__FUNC, __PTR, MIN, MAX, __CONV) \
  3365. static ssize_t __FUNC(struct elevator_queue *e, const char *page, size_t count) \
  3366. { \
  3367. struct cfq_data *cfqd = e->elevator_data; \
  3368. unsigned int __data; \
  3369. int ret = cfq_var_store(&__data, (page), count); \
  3370. if (__data < (MIN)) \
  3371. __data = (MIN); \
  3372. else if (__data > (MAX)) \
  3373. __data = (MAX); \
  3374. if (__CONV) \
  3375. *(__PTR) = msecs_to_jiffies(__data); \
  3376. else \
  3377. *(__PTR) = __data; \
  3378. return ret; \
  3379. }
  3380. STORE_FUNCTION(cfq_quantum_store, &cfqd->cfq_quantum, 1, UINT_MAX, 0);
  3381. STORE_FUNCTION(cfq_fifo_expire_sync_store, &cfqd->cfq_fifo_expire[1], 1,
  3382. UINT_MAX, 1);
  3383. STORE_FUNCTION(cfq_fifo_expire_async_store, &cfqd->cfq_fifo_expire[0], 1,
  3384. UINT_MAX, 1);
  3385. STORE_FUNCTION(cfq_back_seek_max_store, &cfqd->cfq_back_max, 0, UINT_MAX, 0);
  3386. STORE_FUNCTION(cfq_back_seek_penalty_store, &cfqd->cfq_back_penalty, 1,
  3387. UINT_MAX, 0);
  3388. STORE_FUNCTION(cfq_slice_idle_store, &cfqd->cfq_slice_idle, 0, UINT_MAX, 1);
  3389. STORE_FUNCTION(cfq_group_idle_store, &cfqd->cfq_group_idle, 0, UINT_MAX, 1);
  3390. STORE_FUNCTION(cfq_slice_sync_store, &cfqd->cfq_slice[1], 1, UINT_MAX, 1);
  3391. STORE_FUNCTION(cfq_slice_async_store, &cfqd->cfq_slice[0], 1, UINT_MAX, 1);
  3392. STORE_FUNCTION(cfq_slice_async_rq_store, &cfqd->cfq_slice_async_rq, 1,
  3393. UINT_MAX, 0);
  3394. STORE_FUNCTION(cfq_low_latency_store, &cfqd->cfq_latency, 0, 1, 0);
  3395. #undef STORE_FUNCTION
  3396. #define CFQ_ATTR(name) \
  3397. __ATTR(name, S_IRUGO|S_IWUSR, cfq_##name##_show, cfq_##name##_store)
  3398. static struct elv_fs_entry cfq_attrs[] = {
  3399. CFQ_ATTR(quantum),
  3400. CFQ_ATTR(fifo_expire_sync),
  3401. CFQ_ATTR(fifo_expire_async),
  3402. CFQ_ATTR(back_seek_max),
  3403. CFQ_ATTR(back_seek_penalty),
  3404. CFQ_ATTR(slice_sync),
  3405. CFQ_ATTR(slice_async),
  3406. CFQ_ATTR(slice_async_rq),
  3407. CFQ_ATTR(slice_idle),
  3408. CFQ_ATTR(group_idle),
  3409. CFQ_ATTR(low_latency),
  3410. __ATTR_NULL
  3411. };
  3412. static struct elevator_type iosched_cfq = {
  3413. .ops = {
  3414. .elevator_merge_fn = cfq_merge,
  3415. .elevator_merged_fn = cfq_merged_request,
  3416. .elevator_merge_req_fn = cfq_merged_requests,
  3417. .elevator_allow_merge_fn = cfq_allow_merge,
  3418. .elevator_bio_merged_fn = cfq_bio_merged,
  3419. .elevator_dispatch_fn = cfq_dispatch_requests,
  3420. .elevator_add_req_fn = cfq_insert_request,
  3421. .elevator_activate_req_fn = cfq_activate_request,
  3422. .elevator_deactivate_req_fn = cfq_deactivate_request,
  3423. .elevator_queue_empty_fn = cfq_queue_empty,
  3424. .elevator_completed_req_fn = cfq_completed_request,
  3425. .elevator_former_req_fn = elv_rb_former_request,
  3426. .elevator_latter_req_fn = elv_rb_latter_request,
  3427. .elevator_set_req_fn = cfq_set_request,
  3428. .elevator_put_req_fn = cfq_put_request,
  3429. .elevator_may_queue_fn = cfq_may_queue,
  3430. .elevator_init_fn = cfq_init_queue,
  3431. .elevator_exit_fn = cfq_exit_queue,
  3432. .trim = cfq_free_io_context,
  3433. },
  3434. .elevator_attrs = cfq_attrs,
  3435. .elevator_name = "cfq",
  3436. .elevator_owner = THIS_MODULE,
  3437. };
  3438. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  3439. static struct blkio_policy_type blkio_policy_cfq = {
  3440. .ops = {
  3441. .blkio_unlink_group_fn = cfq_unlink_blkio_group,
  3442. .blkio_update_group_weight_fn = cfq_update_blkio_group_weight,
  3443. },
  3444. .plid = BLKIO_POLICY_PROP,
  3445. };
  3446. #else
  3447. static struct blkio_policy_type blkio_policy_cfq;
  3448. #endif
  3449. static int __init cfq_init(void)
  3450. {
  3451. /*
  3452. * could be 0 on HZ < 1000 setups
  3453. */
  3454. if (!cfq_slice_async)
  3455. cfq_slice_async = 1;
  3456. if (!cfq_slice_idle)
  3457. cfq_slice_idle = 1;
  3458. #ifdef CONFIG_CFQ_GROUP_IOSCHED
  3459. if (!cfq_group_idle)
  3460. cfq_group_idle = 1;
  3461. #else
  3462. cfq_group_idle = 0;
  3463. #endif
  3464. if (cfq_slab_setup())
  3465. return -ENOMEM;
  3466. elv_register(&iosched_cfq);
  3467. blkio_policy_register(&blkio_policy_cfq);
  3468. return 0;
  3469. }
  3470. static void __exit cfq_exit(void)
  3471. {
  3472. DECLARE_COMPLETION_ONSTACK(all_gone);
  3473. blkio_policy_unregister(&blkio_policy_cfq);
  3474. elv_unregister(&iosched_cfq);
  3475. ioc_gone = &all_gone;
  3476. /* ioc_gone's update must be visible before reading ioc_count */
  3477. smp_wmb();
  3478. /*
  3479. * this also protects us from entering cfq_slab_kill() with
  3480. * pending RCU callbacks
  3481. */
  3482. if (elv_ioc_count_read(cfq_ioc_count))
  3483. wait_for_completion(&all_gone);
  3484. ida_destroy(&cic_index_ida);
  3485. cfq_slab_kill();
  3486. }
  3487. module_init(cfq_init);
  3488. module_exit(cfq_exit);
  3489. MODULE_AUTHOR("Jens Axboe");
  3490. MODULE_LICENSE("GPL");
  3491. MODULE_DESCRIPTION("Completely Fair Queueing IO scheduler");