1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Interface for controlling IO bandwidth on a request queue
4 *
5 * Copyright (C) 2010 Vivek Goyal <vgoyal@redhat.com>
6 */
7
8 #include <linux/module.h>
9 #include <linux/slab.h>
10 #include <linux/blkdev.h>
11 #include <linux/bio.h>
12 #include <linux/blktrace_api.h>
13 #include "blk.h"
14 #include "blk-cgroup-rwstat.h"
15 #include "blk-throttle.h"
16
17 /* Max dispatch from a group in 1 round */
18 #define THROTL_GRP_QUANTUM 8
19
20 /* Total max dispatch from all groups in one round */
21 #define THROTL_QUANTUM 32
22
23 /* Throttling is performed over a slice and after that slice is renewed */
24 #define DFL_THROTL_SLICE (HZ / 10)
25
26 /* A workqueue to queue throttle related work */
27 static struct workqueue_struct *kthrotld_workqueue;
28
29 #define rb_entry_tg(node) rb_entry((node), struct throtl_grp, rb_node)
30
31 struct throtl_data
32 {
33 /* service tree for active throtl groups */
34 struct throtl_service_queue service_queue;
35
36 struct request_queue *queue;
37
38 /* Total Number of queued bios on READ and WRITE lists */
39 unsigned int nr_queued[2];
40
41 /* Work for dispatching throttled bios */
42 struct work_struct dispatch_work;
43 };
44
45 static void throtl_pending_timer_fn(struct timer_list *t);
46
tg_to_blkg(struct throtl_grp * tg)47 static inline struct blkcg_gq *tg_to_blkg(struct throtl_grp *tg)
48 {
49 return pd_to_blkg(&tg->pd);
50 }
51
52 /**
53 * sq_to_tg - return the throl_grp the specified service queue belongs to
54 * @sq: the throtl_service_queue of interest
55 *
56 * Return the throtl_grp @sq belongs to. If @sq is the top-level one
57 * embedded in throtl_data, %NULL is returned.
58 */
sq_to_tg(struct throtl_service_queue * sq)59 static struct throtl_grp *sq_to_tg(struct throtl_service_queue *sq)
60 {
61 if (sq && sq->parent_sq)
62 return container_of(sq, struct throtl_grp, service_queue);
63 else
64 return NULL;
65 }
66
67 /**
68 * sq_to_td - return throtl_data the specified service queue belongs to
69 * @sq: the throtl_service_queue of interest
70 *
71 * A service_queue can be embedded in either a throtl_grp or throtl_data.
72 * Determine the associated throtl_data accordingly and return it.
73 */
sq_to_td(struct throtl_service_queue * sq)74 static struct throtl_data *sq_to_td(struct throtl_service_queue *sq)
75 {
76 struct throtl_grp *tg = sq_to_tg(sq);
77
78 if (tg)
79 return tg->td;
80 else
81 return container_of(sq, struct throtl_data, service_queue);
82 }
83
tg_bps_limit(struct throtl_grp * tg,int rw)84 static uint64_t tg_bps_limit(struct throtl_grp *tg, int rw)
85 {
86 struct blkcg_gq *blkg = tg_to_blkg(tg);
87
88 if (cgroup_subsys_on_dfl(io_cgrp_subsys) && !blkg->parent)
89 return U64_MAX;
90
91 return tg->bps[rw];
92 }
93
tg_iops_limit(struct throtl_grp * tg,int rw)94 static unsigned int tg_iops_limit(struct throtl_grp *tg, int rw)
95 {
96 struct blkcg_gq *blkg = tg_to_blkg(tg);
97
98 if (cgroup_subsys_on_dfl(io_cgrp_subsys) && !blkg->parent)
99 return UINT_MAX;
100
101 return tg->iops[rw];
102 }
103
104 /**
105 * throtl_log - log debug message via blktrace
106 * @sq: the service_queue being reported
107 * @fmt: printf format string
108 * @args: printf args
109 *
110 * The messages are prefixed with "throtl BLKG_NAME" if @sq belongs to a
111 * throtl_grp; otherwise, just "throtl".
112 */
113 #define throtl_log(sq, fmt, args...) do { \
114 struct throtl_grp *__tg = sq_to_tg((sq)); \
115 struct throtl_data *__td = sq_to_td((sq)); \
116 \
117 (void)__td; \
118 if (likely(!blk_trace_note_message_enabled(__td->queue))) \
119 break; \
120 if ((__tg)) { \
121 blk_add_cgroup_trace_msg(__td->queue, \
122 &tg_to_blkg(__tg)->blkcg->css, "throtl " fmt, ##args);\
123 } else { \
124 blk_add_trace_msg(__td->queue, "throtl " fmt, ##args); \
125 } \
126 } while (0)
127
throtl_bio_data_size(struct bio * bio)128 static inline unsigned int throtl_bio_data_size(struct bio *bio)
129 {
130 /* assume it's one sector */
131 if (unlikely(bio_op(bio) == REQ_OP_DISCARD))
132 return 512;
133 return bio->bi_iter.bi_size;
134 }
135
throtl_qnode_init(struct throtl_qnode * qn,struct throtl_grp * tg)136 static void throtl_qnode_init(struct throtl_qnode *qn, struct throtl_grp *tg)
137 {
138 INIT_LIST_HEAD(&qn->node);
139 bio_list_init(&qn->bios_bps);
140 bio_list_init(&qn->bios_iops);
141 qn->tg = tg;
142 }
143
144 /**
145 * throtl_qnode_add_bio - add a bio to a throtl_qnode and activate it
146 * @bio: bio being added
147 * @qn: qnode to add bio to
148 * @sq: the service_queue @qn belongs to
149 *
150 * Add @bio to @qn and put @qn on @sq->queued if it's not already on.
151 * @qn->tg's reference count is bumped when @qn is activated. See the
152 * comment on top of throtl_qnode definition for details.
153 */
throtl_qnode_add_bio(struct bio * bio,struct throtl_qnode * qn,struct throtl_service_queue * sq)154 static void throtl_qnode_add_bio(struct bio *bio, struct throtl_qnode *qn,
155 struct throtl_service_queue *sq)
156 {
157 bool rw = bio_data_dir(bio);
158
159 /*
160 * Split bios have already been throttled by bps, so they are
161 * directly queued into the iops path.
162 */
163 if (bio_flagged(bio, BIO_TG_BPS_THROTTLED) ||
164 bio_flagged(bio, BIO_BPS_THROTTLED)) {
165 bio_list_add(&qn->bios_iops, bio);
166 sq->nr_queued_iops[rw]++;
167 } else {
168 bio_list_add(&qn->bios_bps, bio);
169 sq->nr_queued_bps[rw]++;
170 }
171
172 if (list_empty(&qn->node)) {
173 list_add_tail(&qn->node, &sq->queued[rw]);
174 blkg_get(tg_to_blkg(qn->tg));
175 }
176 }
177
178 /**
179 * throtl_peek_queued - peek the first bio on a qnode list
180 * @queued: the qnode list to peek
181 *
182 * Always take a bio from the head of the iops queue first. If the queue is
183 * empty, we then take it from the bps queue to maintain the overall idea of
184 * fetching bios from the head.
185 */
throtl_peek_queued(struct list_head * queued)186 static struct bio *throtl_peek_queued(struct list_head *queued)
187 {
188 struct throtl_qnode *qn;
189 struct bio *bio;
190
191 if (list_empty(queued))
192 return NULL;
193
194 qn = list_first_entry(queued, struct throtl_qnode, node);
195 bio = bio_list_peek(&qn->bios_iops);
196 if (!bio)
197 bio = bio_list_peek(&qn->bios_bps);
198 WARN_ON_ONCE(!bio);
199 return bio;
200 }
201
202 /**
203 * throtl_pop_queued - pop the first bio form a qnode list
204 * @sq: the service_queue to pop a bio from
205 * @tg_to_put: optional out argument for throtl_grp to put
206 * @rw: read/write
207 *
208 * Pop the first bio from the qnode list @sq->queued. Note that we firstly
209 * focus on the iops list because bios are ultimately dispatched from it.
210 * After popping, the first qnode is removed from @sq->queued if empty or moved
211 * to the end of @sq->queued so that the popping order is round-robin.
212 *
213 * When the first qnode is removed, its associated throtl_grp should be put
214 * too. If @tg_to_put is NULL, this function automatically puts it;
215 * otherwise, *@tg_to_put is set to the throtl_grp to put and the caller is
216 * responsible for putting it.
217 */
throtl_pop_queued(struct throtl_service_queue * sq,struct throtl_grp ** tg_to_put,bool rw)218 static struct bio *throtl_pop_queued(struct throtl_service_queue *sq,
219 struct throtl_grp **tg_to_put, bool rw)
220 {
221 struct list_head *queued = &sq->queued[rw];
222 struct throtl_qnode *qn;
223 struct bio *bio;
224
225 if (list_empty(queued))
226 return NULL;
227
228 qn = list_first_entry(queued, struct throtl_qnode, node);
229 bio = bio_list_pop(&qn->bios_iops);
230 if (bio) {
231 sq->nr_queued_iops[rw]--;
232 } else {
233 bio = bio_list_pop(&qn->bios_bps);
234 if (bio)
235 sq->nr_queued_bps[rw]--;
236 }
237 WARN_ON_ONCE(!bio);
238
239 if (bio_list_empty(&qn->bios_bps) && bio_list_empty(&qn->bios_iops)) {
240 list_del_init(&qn->node);
241 if (tg_to_put)
242 *tg_to_put = qn->tg;
243 else
244 blkg_put(tg_to_blkg(qn->tg));
245 } else {
246 list_move_tail(&qn->node, queued);
247 }
248
249 return bio;
250 }
251
252 /* init a service_queue, assumes the caller zeroed it */
throtl_service_queue_init(struct throtl_service_queue * sq)253 static void throtl_service_queue_init(struct throtl_service_queue *sq)
254 {
255 INIT_LIST_HEAD(&sq->queued[READ]);
256 INIT_LIST_HEAD(&sq->queued[WRITE]);
257 sq->pending_tree = RB_ROOT_CACHED;
258 timer_setup(&sq->pending_timer, throtl_pending_timer_fn, 0);
259 }
260
throtl_pd_alloc(struct gendisk * disk,struct blkcg * blkcg,gfp_t gfp)261 static struct blkg_policy_data *throtl_pd_alloc(struct gendisk *disk,
262 struct blkcg *blkcg, gfp_t gfp)
263 {
264 struct throtl_grp *tg;
265 int rw;
266
267 tg = kzalloc_node(sizeof(*tg), gfp, disk->node_id);
268 if (!tg)
269 return NULL;
270
271 if (blkg_rwstat_init(&tg->stat_bytes, gfp))
272 goto err_free_tg;
273
274 if (blkg_rwstat_init(&tg->stat_ios, gfp))
275 goto err_exit_stat_bytes;
276
277 throtl_service_queue_init(&tg->service_queue);
278
279 for (rw = READ; rw <= WRITE; rw++) {
280 throtl_qnode_init(&tg->qnode_on_self[rw], tg);
281 throtl_qnode_init(&tg->qnode_on_parent[rw], tg);
282 }
283
284 RB_CLEAR_NODE(&tg->rb_node);
285 tg->bps[READ] = U64_MAX;
286 tg->bps[WRITE] = U64_MAX;
287 tg->iops[READ] = UINT_MAX;
288 tg->iops[WRITE] = UINT_MAX;
289
290 return &tg->pd;
291
292 err_exit_stat_bytes:
293 blkg_rwstat_exit(&tg->stat_bytes);
294 err_free_tg:
295 kfree(tg);
296 return NULL;
297 }
298
throtl_pd_init(struct blkg_policy_data * pd)299 static void throtl_pd_init(struct blkg_policy_data *pd)
300 {
301 struct throtl_grp *tg = pd_to_tg(pd);
302 struct blkcg_gq *blkg = tg_to_blkg(tg);
303 struct throtl_data *td = blkg->q->td;
304 struct throtl_service_queue *sq = &tg->service_queue;
305
306 /*
307 * If on the default hierarchy, we switch to properly hierarchical
308 * behavior where limits on a given throtl_grp are applied to the
309 * whole subtree rather than just the group itself. e.g. If 16M
310 * read_bps limit is set on a parent group, summary bps of
311 * parent group and its subtree groups can't exceed 16M for the
312 * device.
313 *
314 * If not on the default hierarchy, the broken flat hierarchy
315 * behavior is retained where all throtl_grps are treated as if
316 * they're all separate root groups right below throtl_data.
317 * Limits of a group don't interact with limits of other groups
318 * regardless of the position of the group in the hierarchy.
319 */
320 sq->parent_sq = &td->service_queue;
321 if (cgroup_subsys_on_dfl(io_cgrp_subsys) && blkg->parent)
322 sq->parent_sq = &blkg_to_tg(blkg->parent)->service_queue;
323 tg->td = td;
324 }
325
326 /*
327 * Set has_rules[] if @tg or any of its parents have limits configured.
328 * This doesn't require walking up to the top of the hierarchy as the
329 * parent's has_rules[] is guaranteed to be correct.
330 */
tg_update_has_rules(struct throtl_grp * tg)331 static void tg_update_has_rules(struct throtl_grp *tg)
332 {
333 struct throtl_grp *parent_tg = sq_to_tg(tg->service_queue.parent_sq);
334 int rw;
335
336 for (rw = READ; rw <= WRITE; rw++) {
337 tg->has_rules_iops[rw] =
338 (parent_tg && parent_tg->has_rules_iops[rw]) ||
339 tg_iops_limit(tg, rw) != UINT_MAX;
340 tg->has_rules_bps[rw] =
341 (parent_tg && parent_tg->has_rules_bps[rw]) ||
342 tg_bps_limit(tg, rw) != U64_MAX;
343 }
344 }
345
throtl_pd_online(struct blkg_policy_data * pd)346 static void throtl_pd_online(struct blkg_policy_data *pd)
347 {
348 struct throtl_grp *tg = pd_to_tg(pd);
349 /*
350 * We don't want new groups to escape the limits of its ancestors.
351 * Update has_rules[] after a new group is brought online.
352 */
353 tg_update_has_rules(tg);
354 }
355
tg_release(struct rcu_head * rcu)356 static void tg_release(struct rcu_head *rcu)
357 {
358 struct blkg_policy_data *pd =
359 container_of(rcu, struct blkg_policy_data, rcu_head);
360 struct throtl_grp *tg = pd_to_tg(pd);
361
362 blkg_rwstat_exit(&tg->stat_bytes);
363 blkg_rwstat_exit(&tg->stat_ios);
364 kfree(tg);
365 }
366
throtl_pd_free(struct blkg_policy_data * pd)367 static void throtl_pd_free(struct blkg_policy_data *pd)
368 {
369 struct throtl_grp *tg = pd_to_tg(pd);
370
371 timer_delete_sync(&tg->service_queue.pending_timer);
372 call_rcu(&pd->rcu_head, tg_release);
373 }
374
375 static struct throtl_grp *
throtl_rb_first(struct throtl_service_queue * parent_sq)376 throtl_rb_first(struct throtl_service_queue *parent_sq)
377 {
378 struct rb_node *n;
379
380 n = rb_first_cached(&parent_sq->pending_tree);
381 WARN_ON_ONCE(!n);
382 if (!n)
383 return NULL;
384 return rb_entry_tg(n);
385 }
386
throtl_rb_erase(struct rb_node * n,struct throtl_service_queue * parent_sq)387 static void throtl_rb_erase(struct rb_node *n,
388 struct throtl_service_queue *parent_sq)
389 {
390 rb_erase_cached(n, &parent_sq->pending_tree);
391 RB_CLEAR_NODE(n);
392 }
393
update_min_dispatch_time(struct throtl_service_queue * parent_sq)394 static void update_min_dispatch_time(struct throtl_service_queue *parent_sq)
395 {
396 struct throtl_grp *tg;
397
398 tg = throtl_rb_first(parent_sq);
399 if (!tg)
400 return;
401
402 parent_sq->first_pending_disptime = tg->disptime;
403 }
404
tg_service_queue_add(struct throtl_grp * tg)405 static void tg_service_queue_add(struct throtl_grp *tg)
406 {
407 struct throtl_service_queue *parent_sq = tg->service_queue.parent_sq;
408 struct rb_node **node = &parent_sq->pending_tree.rb_root.rb_node;
409 struct rb_node *parent = NULL;
410 struct throtl_grp *__tg;
411 unsigned long key = tg->disptime;
412 bool leftmost = true;
413
414 while (*node != NULL) {
415 parent = *node;
416 __tg = rb_entry_tg(parent);
417
418 if (time_before(key, __tg->disptime))
419 node = &parent->rb_left;
420 else {
421 node = &parent->rb_right;
422 leftmost = false;
423 }
424 }
425
426 rb_link_node(&tg->rb_node, parent, node);
427 rb_insert_color_cached(&tg->rb_node, &parent_sq->pending_tree,
428 leftmost);
429 }
430
throtl_enqueue_tg(struct throtl_grp * tg)431 static void throtl_enqueue_tg(struct throtl_grp *tg)
432 {
433 if (!(tg->flags & THROTL_TG_PENDING)) {
434 tg_service_queue_add(tg);
435 tg->flags |= THROTL_TG_PENDING;
436 tg->service_queue.parent_sq->nr_pending++;
437 }
438 }
439
throtl_dequeue_tg(struct throtl_grp * tg)440 static void throtl_dequeue_tg(struct throtl_grp *tg)
441 {
442 if (tg->flags & THROTL_TG_PENDING) {
443 struct throtl_service_queue *parent_sq =
444 tg->service_queue.parent_sq;
445
446 throtl_rb_erase(&tg->rb_node, parent_sq);
447 --parent_sq->nr_pending;
448 tg->flags &= ~THROTL_TG_PENDING;
449 }
450 }
451
452 /* Call with queue lock held */
throtl_schedule_pending_timer(struct throtl_service_queue * sq,unsigned long expires)453 static void throtl_schedule_pending_timer(struct throtl_service_queue *sq,
454 unsigned long expires)
455 {
456 unsigned long max_expire = jiffies + 8 * DFL_THROTL_SLICE;
457
458 /*
459 * Since we are adjusting the throttle limit dynamically, the sleep
460 * time calculated according to previous limit might be invalid. It's
461 * possible the cgroup sleep time is very long and no other cgroups
462 * have IO running so notify the limit changes. Make sure the cgroup
463 * doesn't sleep too long to avoid the missed notification.
464 */
465 if (time_after(expires, max_expire))
466 expires = max_expire;
467 mod_timer(&sq->pending_timer, expires);
468 throtl_log(sq, "schedule timer. delay=%lu jiffies=%lu",
469 expires - jiffies, jiffies);
470 }
471
472 /**
473 * throtl_schedule_next_dispatch - schedule the next dispatch cycle
474 * @sq: the service_queue to schedule dispatch for
475 * @force: force scheduling
476 *
477 * Arm @sq->pending_timer so that the next dispatch cycle starts on the
478 * dispatch time of the first pending child. Returns %true if either timer
479 * is armed or there's no pending child left. %false if the current
480 * dispatch window is still open and the caller should continue
481 * dispatching.
482 *
483 * If @force is %true, the dispatch timer is always scheduled and this
484 * function is guaranteed to return %true. This is to be used when the
485 * caller can't dispatch itself and needs to invoke pending_timer
486 * unconditionally. Note that forced scheduling is likely to induce short
487 * delay before dispatch starts even if @sq->first_pending_disptime is not
488 * in the future and thus shouldn't be used in hot paths.
489 */
throtl_schedule_next_dispatch(struct throtl_service_queue * sq,bool force)490 static bool throtl_schedule_next_dispatch(struct throtl_service_queue *sq,
491 bool force)
492 {
493 /* any pending children left? */
494 if (!sq->nr_pending)
495 return true;
496
497 update_min_dispatch_time(sq);
498
499 /* is the next dispatch time in the future? */
500 if (force || time_after(sq->first_pending_disptime, jiffies)) {
501 throtl_schedule_pending_timer(sq, sq->first_pending_disptime);
502 return true;
503 }
504
505 /* tell the caller to continue dispatching */
506 return false;
507 }
508
throtl_start_new_slice_with_credit(struct throtl_grp * tg,bool rw,unsigned long start)509 static inline void throtl_start_new_slice_with_credit(struct throtl_grp *tg,
510 bool rw, unsigned long start)
511 {
512 tg->bytes_disp[rw] = 0;
513 tg->io_disp[rw] = 0;
514
515 /*
516 * Previous slice has expired. We must have trimmed it after last
517 * bio dispatch. That means since start of last slice, we never used
518 * that bandwidth. Do try to make use of that bandwidth while giving
519 * credit.
520 */
521 if (time_after(start, tg->slice_start[rw]))
522 tg->slice_start[rw] = start;
523
524 tg->slice_end[rw] = jiffies + DFL_THROTL_SLICE;
525 throtl_log(&tg->service_queue,
526 "[%c] new slice with credit start=%lu end=%lu jiffies=%lu",
527 rw == READ ? 'R' : 'W', tg->slice_start[rw],
528 tg->slice_end[rw], jiffies);
529 }
530
throtl_start_new_slice(struct throtl_grp * tg,bool rw,bool clear)531 static inline void throtl_start_new_slice(struct throtl_grp *tg, bool rw,
532 bool clear)
533 {
534 if (clear) {
535 tg->bytes_disp[rw] = 0;
536 tg->io_disp[rw] = 0;
537 }
538 tg->slice_start[rw] = jiffies;
539 tg->slice_end[rw] = jiffies + DFL_THROTL_SLICE;
540
541 throtl_log(&tg->service_queue,
542 "[%c] new slice start=%lu end=%lu jiffies=%lu",
543 rw == READ ? 'R' : 'W', tg->slice_start[rw],
544 tg->slice_end[rw], jiffies);
545 }
546
throtl_set_slice_end(struct throtl_grp * tg,bool rw,unsigned long jiffy_end)547 static inline void throtl_set_slice_end(struct throtl_grp *tg, bool rw,
548 unsigned long jiffy_end)
549 {
550 tg->slice_end[rw] = roundup(jiffy_end, DFL_THROTL_SLICE);
551 }
552
throtl_extend_slice(struct throtl_grp * tg,bool rw,unsigned long jiffy_end)553 static inline void throtl_extend_slice(struct throtl_grp *tg, bool rw,
554 unsigned long jiffy_end)
555 {
556 if (!time_before(tg->slice_end[rw], jiffy_end))
557 return;
558
559 throtl_set_slice_end(tg, rw, jiffy_end);
560 throtl_log(&tg->service_queue,
561 "[%c] extend slice start=%lu end=%lu jiffies=%lu",
562 rw == READ ? 'R' : 'W', tg->slice_start[rw],
563 tg->slice_end[rw], jiffies);
564 }
565
566 /* Determine if previously allocated or extended slice is complete or not */
throtl_slice_used(struct throtl_grp * tg,bool rw)567 static bool throtl_slice_used(struct throtl_grp *tg, bool rw)
568 {
569 if (time_in_range(jiffies, tg->slice_start[rw], tg->slice_end[rw]))
570 return false;
571
572 return true;
573 }
574
sq_queued(struct throtl_service_queue * sq,int type)575 static unsigned int sq_queued(struct throtl_service_queue *sq, int type)
576 {
577 return sq->nr_queued_bps[type] + sq->nr_queued_iops[type];
578 }
579
calculate_io_allowed(u32 iops_limit,unsigned long jiffy_elapsed)580 static unsigned int calculate_io_allowed(u32 iops_limit,
581 unsigned long jiffy_elapsed)
582 {
583 unsigned int io_allowed;
584 u64 tmp;
585
586 /*
587 * jiffy_elapsed should not be a big value as minimum iops can be
588 * 1 then at max jiffy elapsed should be equivalent of 1 second as we
589 * will allow dispatch after 1 second and after that slice should
590 * have been trimmed.
591 */
592
593 tmp = (u64)iops_limit * jiffy_elapsed;
594 do_div(tmp, HZ);
595
596 if (tmp > UINT_MAX)
597 io_allowed = UINT_MAX;
598 else
599 io_allowed = tmp;
600
601 return io_allowed;
602 }
603
calculate_bytes_allowed(u64 bps_limit,unsigned long jiffy_elapsed)604 static u64 calculate_bytes_allowed(u64 bps_limit, unsigned long jiffy_elapsed)
605 {
606 /*
607 * Can result be wider than 64 bits?
608 * We check against 62, not 64, due to ilog2 truncation.
609 */
610 if (ilog2(bps_limit) + ilog2(jiffy_elapsed) - ilog2(HZ) > 62)
611 return U64_MAX;
612 return mul_u64_u64_div_u64(bps_limit, (u64)jiffy_elapsed, (u64)HZ);
613 }
614
throtl_trim_bps(struct throtl_grp * tg,bool rw,unsigned long time_elapsed)615 static long long throtl_trim_bps(struct throtl_grp *tg, bool rw,
616 unsigned long time_elapsed)
617 {
618 u64 bps_limit = tg_bps_limit(tg, rw);
619 long long bytes_trim;
620
621 if (bps_limit == U64_MAX)
622 return 0;
623
624 /* Need to consider the case of bytes_allowed overflow. */
625 bytes_trim = calculate_bytes_allowed(bps_limit, time_elapsed);
626 if (bytes_trim <= 0 || tg->bytes_disp[rw] < bytes_trim) {
627 bytes_trim = tg->bytes_disp[rw];
628 tg->bytes_disp[rw] = 0;
629 } else {
630 tg->bytes_disp[rw] -= bytes_trim;
631 }
632
633 return bytes_trim;
634 }
635
throtl_trim_iops(struct throtl_grp * tg,bool rw,unsigned long time_elapsed)636 static int throtl_trim_iops(struct throtl_grp *tg, bool rw,
637 unsigned long time_elapsed)
638 {
639 u32 iops_limit = tg_iops_limit(tg, rw);
640 int io_trim;
641
642 if (iops_limit == UINT_MAX)
643 return 0;
644
645 /* Need to consider the case of io_allowed overflow. */
646 io_trim = calculate_io_allowed(iops_limit, time_elapsed);
647 if (io_trim <= 0 || tg->io_disp[rw] < io_trim) {
648 io_trim = tg->io_disp[rw];
649 tg->io_disp[rw] = 0;
650 } else {
651 tg->io_disp[rw] -= io_trim;
652 }
653
654 return io_trim;
655 }
656
657 /* Trim the used slices and adjust slice start accordingly */
throtl_trim_slice(struct throtl_grp * tg,bool rw)658 static inline void throtl_trim_slice(struct throtl_grp *tg, bool rw)
659 {
660 unsigned long time_elapsed;
661 long long bytes_trim;
662 int io_trim;
663
664 BUG_ON(time_before(tg->slice_end[rw], tg->slice_start[rw]));
665
666 /*
667 * If bps are unlimited (-1), then time slice don't get
668 * renewed. Don't try to trim the slice if slice is used. A new
669 * slice will start when appropriate.
670 */
671 if (throtl_slice_used(tg, rw))
672 return;
673
674 /*
675 * A bio has been dispatched. Also adjust slice_end. It might happen
676 * that initially cgroup limit was very low resulting in high
677 * slice_end, but later limit was bumped up and bio was dispatched
678 * sooner, then we need to reduce slice_end. A high bogus slice_end
679 * is bad because it does not allow new slice to start.
680 */
681 throtl_set_slice_end(tg, rw, jiffies + DFL_THROTL_SLICE);
682
683 time_elapsed = rounddown(jiffies - tg->slice_start[rw],
684 DFL_THROTL_SLICE);
685 /* Don't trim slice until at least 2 slices are used */
686 if (time_elapsed < DFL_THROTL_SLICE * 2)
687 return;
688
689 /*
690 * The bio submission time may be a few jiffies more than the expected
691 * waiting time, due to 'extra_bytes' can't be divided in
692 * tg_within_bps_limit(), and also due to timer wakeup delay. In this
693 * case, adjust slice_start will discard the extra wait time, causing
694 * lower rate than expected. Therefore, other than the above rounddown,
695 * one extra slice is preserved for deviation.
696 */
697 time_elapsed -= DFL_THROTL_SLICE;
698 bytes_trim = throtl_trim_bps(tg, rw, time_elapsed);
699 io_trim = throtl_trim_iops(tg, rw, time_elapsed);
700 if (!bytes_trim && !io_trim)
701 return;
702
703 tg->slice_start[rw] += time_elapsed;
704
705 throtl_log(&tg->service_queue,
706 "[%c] trim slice nr=%lu bytes=%lld io=%d start=%lu end=%lu jiffies=%lu",
707 rw == READ ? 'R' : 'W', time_elapsed / DFL_THROTL_SLICE,
708 bytes_trim, io_trim, tg->slice_start[rw], tg->slice_end[rw],
709 jiffies);
710 }
711
__tg_update_carryover(struct throtl_grp * tg,bool rw,long long * bytes,int * ios)712 static void __tg_update_carryover(struct throtl_grp *tg, bool rw,
713 long long *bytes, int *ios)
714 {
715 unsigned long jiffy_elapsed = jiffies - tg->slice_start[rw];
716 u64 bps_limit = tg_bps_limit(tg, rw);
717 u32 iops_limit = tg_iops_limit(tg, rw);
718 long long bytes_allowed;
719 int io_allowed;
720
721 /*
722 * If the queue is empty, carryover handling is not needed. In such cases,
723 * tg->[bytes/io]_disp should be reset to 0 to avoid impacting the dispatch
724 * of subsequent bios. The same handling applies when the previous BPS/IOPS
725 * limit was set to max.
726 */
727 if (sq_queued(&tg->service_queue, rw) == 0) {
728 tg->bytes_disp[rw] = 0;
729 tg->io_disp[rw] = 0;
730 return;
731 }
732
733 /*
734 * If config is updated while bios are still throttled, calculate and
735 * accumulate how many bytes/ios are waited across changes. And use the
736 * calculated carryover (@bytes/@ios) to update [bytes/io]_disp, which
737 * will be used to calculate new wait time under new configuration.
738 * And we need to consider the case of bytes/io_allowed overflow.
739 */
740 if (bps_limit != U64_MAX) {
741 bytes_allowed = calculate_bytes_allowed(bps_limit, jiffy_elapsed);
742 if (bytes_allowed > 0)
743 *bytes = bytes_allowed - tg->bytes_disp[rw];
744 }
745 if (iops_limit != UINT_MAX) {
746 io_allowed = calculate_io_allowed(iops_limit, jiffy_elapsed);
747 if (io_allowed > 0)
748 *ios = io_allowed - tg->io_disp[rw];
749 }
750
751 tg->bytes_disp[rw] = -*bytes;
752 tg->io_disp[rw] = -*ios;
753 }
754
tg_update_carryover(struct throtl_grp * tg)755 static void tg_update_carryover(struct throtl_grp *tg)
756 {
757 long long bytes[2] = {0};
758 int ios[2] = {0};
759
760 __tg_update_carryover(tg, READ, &bytes[READ], &ios[READ]);
761 __tg_update_carryover(tg, WRITE, &bytes[WRITE], &ios[WRITE]);
762
763 /* see comments in struct throtl_grp for meaning of carryover. */
764 throtl_log(&tg->service_queue, "%s: %lld %lld %d %d\n", __func__,
765 bytes[READ], bytes[WRITE], ios[READ], ios[WRITE]);
766 }
767
tg_within_iops_limit(struct throtl_grp * tg,struct bio * bio,u32 iops_limit)768 static unsigned long tg_within_iops_limit(struct throtl_grp *tg, struct bio *bio,
769 u32 iops_limit)
770 {
771 bool rw = bio_data_dir(bio);
772 int io_allowed;
773 unsigned long jiffy_elapsed, jiffy_wait, jiffy_elapsed_rnd;
774
775 jiffy_elapsed = jiffies - tg->slice_start[rw];
776
777 /* Round up to the next throttle slice, wait time must be nonzero */
778 jiffy_elapsed_rnd = roundup(jiffy_elapsed + 1, DFL_THROTL_SLICE);
779 io_allowed = calculate_io_allowed(iops_limit, jiffy_elapsed_rnd);
780 if (io_allowed > 0 && tg->io_disp[rw] + 1 <= io_allowed)
781 return 0;
782
783 /* Calc approx time to dispatch */
784 jiffy_wait = jiffy_elapsed_rnd - jiffy_elapsed;
785
786 /* make sure at least one io can be dispatched after waiting */
787 jiffy_wait = max(jiffy_wait, HZ / iops_limit + 1);
788 return jiffy_wait;
789 }
790
tg_within_bps_limit(struct throtl_grp * tg,struct bio * bio,u64 bps_limit)791 static unsigned long tg_within_bps_limit(struct throtl_grp *tg, struct bio *bio,
792 u64 bps_limit)
793 {
794 bool rw = bio_data_dir(bio);
795 long long bytes_allowed;
796 u64 extra_bytes;
797 unsigned long jiffy_elapsed, jiffy_wait, jiffy_elapsed_rnd;
798 unsigned int bio_size = throtl_bio_data_size(bio);
799
800 jiffy_elapsed = jiffy_elapsed_rnd = jiffies - tg->slice_start[rw];
801
802 /* Slice has just started. Consider one slice interval */
803 if (!jiffy_elapsed)
804 jiffy_elapsed_rnd = DFL_THROTL_SLICE;
805
806 jiffy_elapsed_rnd = roundup(jiffy_elapsed_rnd, DFL_THROTL_SLICE);
807 bytes_allowed = calculate_bytes_allowed(bps_limit, jiffy_elapsed_rnd);
808 /* Need to consider the case of bytes_allowed overflow. */
809 if ((bytes_allowed > 0 && tg->bytes_disp[rw] + bio_size <= bytes_allowed)
810 || bytes_allowed < 0)
811 return 0;
812
813 /* Calc approx time to dispatch */
814 extra_bytes = tg->bytes_disp[rw] + bio_size - bytes_allowed;
815 jiffy_wait = div64_u64(extra_bytes * HZ, bps_limit);
816
817 if (!jiffy_wait)
818 jiffy_wait = 1;
819
820 /*
821 * This wait time is without taking into consideration the rounding
822 * up we did. Add that time also.
823 */
824 jiffy_wait = jiffy_wait + (jiffy_elapsed_rnd - jiffy_elapsed);
825 return jiffy_wait;
826 }
827
throtl_charge_bps_bio(struct throtl_grp * tg,struct bio * bio)828 static void throtl_charge_bps_bio(struct throtl_grp *tg, struct bio *bio)
829 {
830 unsigned int bio_size = throtl_bio_data_size(bio);
831
832 /* Charge the bio to the group */
833 if (!bio_flagged(bio, BIO_BPS_THROTTLED) &&
834 !bio_flagged(bio, BIO_TG_BPS_THROTTLED)) {
835 bio_set_flag(bio, BIO_TG_BPS_THROTTLED);
836 tg->bytes_disp[bio_data_dir(bio)] += bio_size;
837 }
838 }
839
throtl_charge_iops_bio(struct throtl_grp * tg,struct bio * bio)840 static void throtl_charge_iops_bio(struct throtl_grp *tg, struct bio *bio)
841 {
842 bio_clear_flag(bio, BIO_TG_BPS_THROTTLED);
843 tg->io_disp[bio_data_dir(bio)]++;
844 }
845
846 /*
847 * If previous slice expired, start a new one otherwise renew/extend existing
848 * slice to make sure it is at least throtl_slice interval long since now. New
849 * slice is started only for empty throttle group. If there is queued bio, that
850 * means there should be an active slice and it should be extended instead.
851 */
tg_update_slice(struct throtl_grp * tg,bool rw)852 static void tg_update_slice(struct throtl_grp *tg, bool rw)
853 {
854 if (throtl_slice_used(tg, rw) &&
855 sq_queued(&tg->service_queue, rw) == 0)
856 throtl_start_new_slice(tg, rw, true);
857 else
858 throtl_extend_slice(tg, rw, jiffies + DFL_THROTL_SLICE);
859 }
860
tg_dispatch_bps_time(struct throtl_grp * tg,struct bio * bio)861 static unsigned long tg_dispatch_bps_time(struct throtl_grp *tg, struct bio *bio)
862 {
863 bool rw = bio_data_dir(bio);
864 u64 bps_limit = tg_bps_limit(tg, rw);
865 unsigned long bps_wait;
866
867 /* no need to throttle if this bio's bytes have been accounted */
868 if (bps_limit == U64_MAX || tg->flags & THROTL_TG_CANCELING ||
869 bio_flagged(bio, BIO_BPS_THROTTLED) ||
870 bio_flagged(bio, BIO_TG_BPS_THROTTLED))
871 return 0;
872
873 tg_update_slice(tg, rw);
874 bps_wait = tg_within_bps_limit(tg, bio, bps_limit);
875 throtl_extend_slice(tg, rw, jiffies + bps_wait);
876
877 return bps_wait;
878 }
879
tg_dispatch_iops_time(struct throtl_grp * tg,struct bio * bio)880 static unsigned long tg_dispatch_iops_time(struct throtl_grp *tg, struct bio *bio)
881 {
882 bool rw = bio_data_dir(bio);
883 u32 iops_limit = tg_iops_limit(tg, rw);
884 unsigned long iops_wait;
885
886 if (iops_limit == UINT_MAX || tg->flags & THROTL_TG_CANCELING)
887 return 0;
888
889 tg_update_slice(tg, rw);
890 iops_wait = tg_within_iops_limit(tg, bio, iops_limit);
891 throtl_extend_slice(tg, rw, jiffies + iops_wait);
892
893 return iops_wait;
894 }
895
896 /*
897 * Returns approx number of jiffies to wait before this bio is with-in IO rate
898 * and can be moved to other queue or dispatched.
899 */
tg_dispatch_time(struct throtl_grp * tg,struct bio * bio)900 static unsigned long tg_dispatch_time(struct throtl_grp *tg, struct bio *bio)
901 {
902 bool rw = bio_data_dir(bio);
903 unsigned long wait;
904
905 /*
906 * Currently whole state machine of group depends on first bio
907 * queued in the group bio list. So one should not be calling
908 * this function with a different bio if there are other bios
909 * queued.
910 */
911 BUG_ON(sq_queued(&tg->service_queue, rw) &&
912 bio != throtl_peek_queued(&tg->service_queue.queued[rw]));
913
914 wait = tg_dispatch_bps_time(tg, bio);
915 if (wait != 0)
916 return wait;
917
918 /*
919 * Charge bps here because @bio will be directly placed into the
920 * iops queue afterward.
921 */
922 throtl_charge_bps_bio(tg, bio);
923
924 return tg_dispatch_iops_time(tg, bio);
925 }
926
927 /**
928 * throtl_add_bio_tg - add a bio to the specified throtl_grp
929 * @bio: bio to add
930 * @qn: qnode to use
931 * @tg: the target throtl_grp
932 *
933 * Add @bio to @tg's service_queue using @qn. If @qn is not specified,
934 * tg->qnode_on_self[] is used.
935 */
throtl_add_bio_tg(struct bio * bio,struct throtl_qnode * qn,struct throtl_grp * tg)936 static void throtl_add_bio_tg(struct bio *bio, struct throtl_qnode *qn,
937 struct throtl_grp *tg)
938 {
939 struct throtl_service_queue *sq = &tg->service_queue;
940 bool rw = bio_data_dir(bio);
941
942 if (!qn)
943 qn = &tg->qnode_on_self[rw];
944
945 /*
946 * If @tg doesn't currently have any bios queued in the same
947 * direction, queueing @bio can change when @tg should be
948 * dispatched. Mark that @tg was empty. This is automatically
949 * cleared on the next tg_update_disptime().
950 */
951 if (sq_queued(sq, rw) == 0)
952 tg->flags |= THROTL_TG_WAS_EMPTY;
953
954 throtl_qnode_add_bio(bio, qn, sq);
955
956 /*
957 * Since we have split the queues, when the iops queue is
958 * previously empty and a new @bio is added into the first @qn,
959 * we also need to update the @tg->disptime.
960 */
961 if (bio_flagged(bio, BIO_BPS_THROTTLED) &&
962 bio == throtl_peek_queued(&sq->queued[rw]))
963 tg->flags |= THROTL_TG_IOPS_WAS_EMPTY;
964
965 throtl_enqueue_tg(tg);
966 }
967
tg_update_disptime(struct throtl_grp * tg)968 static void tg_update_disptime(struct throtl_grp *tg)
969 {
970 struct throtl_service_queue *sq = &tg->service_queue;
971 unsigned long read_wait = -1, write_wait = -1, min_wait, disptime;
972 struct bio *bio;
973
974 bio = throtl_peek_queued(&sq->queued[READ]);
975 if (bio)
976 read_wait = tg_dispatch_time(tg, bio);
977
978 bio = throtl_peek_queued(&sq->queued[WRITE]);
979 if (bio)
980 write_wait = tg_dispatch_time(tg, bio);
981
982 min_wait = min(read_wait, write_wait);
983 disptime = jiffies + min_wait;
984
985 /* Update dispatch time */
986 throtl_rb_erase(&tg->rb_node, tg->service_queue.parent_sq);
987 tg->disptime = disptime;
988 tg_service_queue_add(tg);
989
990 /* see throtl_add_bio_tg() */
991 tg->flags &= ~THROTL_TG_WAS_EMPTY;
992 tg->flags &= ~THROTL_TG_IOPS_WAS_EMPTY;
993 }
994
start_parent_slice_with_credit(struct throtl_grp * child_tg,struct throtl_grp * parent_tg,bool rw)995 static void start_parent_slice_with_credit(struct throtl_grp *child_tg,
996 struct throtl_grp *parent_tg, bool rw)
997 {
998 if (throtl_slice_used(parent_tg, rw)) {
999 throtl_start_new_slice_with_credit(parent_tg, rw,
1000 child_tg->slice_start[rw]);
1001 }
1002
1003 }
1004
tg_dispatch_one_bio(struct throtl_grp * tg,bool rw)1005 static void tg_dispatch_one_bio(struct throtl_grp *tg, bool rw)
1006 {
1007 struct throtl_service_queue *sq = &tg->service_queue;
1008 struct throtl_service_queue *parent_sq = sq->parent_sq;
1009 struct throtl_grp *parent_tg = sq_to_tg(parent_sq);
1010 struct throtl_grp *tg_to_put = NULL;
1011 struct bio *bio;
1012
1013 /*
1014 * @bio is being transferred from @tg to @parent_sq. Popping a bio
1015 * from @tg may put its reference and @parent_sq might end up
1016 * getting released prematurely. Remember the tg to put and put it
1017 * after @bio is transferred to @parent_sq.
1018 */
1019 bio = throtl_pop_queued(sq, &tg_to_put, rw);
1020
1021 throtl_charge_iops_bio(tg, bio);
1022
1023 /*
1024 * If our parent is another tg, we just need to transfer @bio to
1025 * the parent using throtl_add_bio_tg(). If our parent is
1026 * @td->service_queue, @bio is ready to be issued. Put it on its
1027 * bio_lists[] and decrease total number queued. The caller is
1028 * responsible for issuing these bios.
1029 */
1030 if (parent_tg) {
1031 throtl_add_bio_tg(bio, &tg->qnode_on_parent[rw], parent_tg);
1032 start_parent_slice_with_credit(tg, parent_tg, rw);
1033 } else {
1034 bio_set_flag(bio, BIO_BPS_THROTTLED);
1035 throtl_qnode_add_bio(bio, &tg->qnode_on_parent[rw],
1036 parent_sq);
1037 BUG_ON(tg->td->nr_queued[rw] <= 0);
1038 tg->td->nr_queued[rw]--;
1039 }
1040
1041 throtl_trim_slice(tg, rw);
1042
1043 if (tg_to_put)
1044 blkg_put(tg_to_blkg(tg_to_put));
1045 }
1046
throtl_dispatch_tg(struct throtl_grp * tg)1047 static int throtl_dispatch_tg(struct throtl_grp *tg)
1048 {
1049 struct throtl_service_queue *sq = &tg->service_queue;
1050 unsigned int nr_reads = 0, nr_writes = 0;
1051 unsigned int max_nr_reads = THROTL_GRP_QUANTUM * 3 / 4;
1052 unsigned int max_nr_writes = THROTL_GRP_QUANTUM - max_nr_reads;
1053 struct bio *bio;
1054
1055 /* Try to dispatch 75% READS and 25% WRITES */
1056
1057 while ((bio = throtl_peek_queued(&sq->queued[READ])) &&
1058 tg_dispatch_time(tg, bio) == 0) {
1059
1060 tg_dispatch_one_bio(tg, READ);
1061 nr_reads++;
1062
1063 if (nr_reads >= max_nr_reads)
1064 break;
1065 }
1066
1067 while ((bio = throtl_peek_queued(&sq->queued[WRITE])) &&
1068 tg_dispatch_time(tg, bio) == 0) {
1069
1070 tg_dispatch_one_bio(tg, WRITE);
1071 nr_writes++;
1072
1073 if (nr_writes >= max_nr_writes)
1074 break;
1075 }
1076
1077 return nr_reads + nr_writes;
1078 }
1079
throtl_select_dispatch(struct throtl_service_queue * parent_sq)1080 static int throtl_select_dispatch(struct throtl_service_queue *parent_sq)
1081 {
1082 unsigned int nr_disp = 0;
1083
1084 while (1) {
1085 struct throtl_grp *tg;
1086 struct throtl_service_queue *sq;
1087
1088 if (!parent_sq->nr_pending)
1089 break;
1090
1091 tg = throtl_rb_first(parent_sq);
1092 if (!tg)
1093 break;
1094
1095 if (time_before(jiffies, tg->disptime))
1096 break;
1097
1098 nr_disp += throtl_dispatch_tg(tg);
1099
1100 sq = &tg->service_queue;
1101 if (sq_queued(sq, READ) || sq_queued(sq, WRITE))
1102 tg_update_disptime(tg);
1103 else
1104 throtl_dequeue_tg(tg);
1105
1106 if (nr_disp >= THROTL_QUANTUM)
1107 break;
1108 }
1109
1110 return nr_disp;
1111 }
1112
1113 /**
1114 * throtl_pending_timer_fn - timer function for service_queue->pending_timer
1115 * @t: the pending_timer member of the throtl_service_queue being serviced
1116 *
1117 * This timer is armed when a child throtl_grp with active bio's become
1118 * pending and queued on the service_queue's pending_tree and expires when
1119 * the first child throtl_grp should be dispatched. This function
1120 * dispatches bio's from the children throtl_grps to the parent
1121 * service_queue.
1122 *
1123 * If the parent's parent is another throtl_grp, dispatching is propagated
1124 * by either arming its pending_timer or repeating dispatch directly. If
1125 * the top-level service_tree is reached, throtl_data->dispatch_work is
1126 * kicked so that the ready bio's are issued.
1127 */
throtl_pending_timer_fn(struct timer_list * t)1128 static void throtl_pending_timer_fn(struct timer_list *t)
1129 {
1130 struct throtl_service_queue *sq = timer_container_of(sq, t,
1131 pending_timer);
1132 struct throtl_grp *tg = sq_to_tg(sq);
1133 struct throtl_data *td = sq_to_td(sq);
1134 struct throtl_service_queue *parent_sq;
1135 struct request_queue *q;
1136 bool dispatched;
1137 int ret;
1138
1139 /* throtl_data may be gone, so figure out request queue by blkg */
1140 if (tg)
1141 q = tg->pd.blkg->q;
1142 else
1143 q = td->queue;
1144
1145 spin_lock_irq(&q->queue_lock);
1146
1147 if (!q->root_blkg)
1148 goto out_unlock;
1149
1150 again:
1151 parent_sq = sq->parent_sq;
1152 dispatched = false;
1153
1154 while (true) {
1155 unsigned int __maybe_unused bio_cnt_r = sq_queued(sq, READ);
1156 unsigned int __maybe_unused bio_cnt_w = sq_queued(sq, WRITE);
1157
1158 throtl_log(sq, "dispatch nr_queued=%u read=%u write=%u",
1159 bio_cnt_r + bio_cnt_w, bio_cnt_r, bio_cnt_w);
1160
1161 ret = throtl_select_dispatch(sq);
1162 if (ret) {
1163 throtl_log(sq, "bios disp=%u", ret);
1164 dispatched = true;
1165 }
1166
1167 if (throtl_schedule_next_dispatch(sq, false))
1168 break;
1169
1170 /* this dispatch windows is still open, relax and repeat */
1171 spin_unlock_irq(&q->queue_lock);
1172 cpu_relax();
1173 spin_lock_irq(&q->queue_lock);
1174 }
1175
1176 if (!dispatched)
1177 goto out_unlock;
1178
1179 if (parent_sq) {
1180 /* @parent_sq is another throl_grp, propagate dispatch */
1181 if (tg->flags & THROTL_TG_WAS_EMPTY ||
1182 tg->flags & THROTL_TG_IOPS_WAS_EMPTY) {
1183 tg_update_disptime(tg);
1184 if (!throtl_schedule_next_dispatch(parent_sq, false)) {
1185 /* window is already open, repeat dispatching */
1186 sq = parent_sq;
1187 tg = sq_to_tg(sq);
1188 goto again;
1189 }
1190 }
1191 } else {
1192 /* reached the top-level, queue issuing */
1193 queue_work(kthrotld_workqueue, &td->dispatch_work);
1194 }
1195 out_unlock:
1196 spin_unlock_irq(&q->queue_lock);
1197 }
1198
1199 /**
1200 * blk_throtl_dispatch_work_fn - work function for throtl_data->dispatch_work
1201 * @work: work item being executed
1202 *
1203 * This function is queued for execution when bios reach the bio_lists[]
1204 * of throtl_data->service_queue. Those bios are ready and issued by this
1205 * function.
1206 */
blk_throtl_dispatch_work_fn(struct work_struct * work)1207 static void blk_throtl_dispatch_work_fn(struct work_struct *work)
1208 {
1209 struct throtl_data *td = container_of(work, struct throtl_data,
1210 dispatch_work);
1211 struct throtl_service_queue *td_sq = &td->service_queue;
1212 struct request_queue *q = td->queue;
1213 struct bio_list bio_list_on_stack;
1214 struct bio *bio;
1215 struct blk_plug plug;
1216 int rw;
1217
1218 bio_list_init(&bio_list_on_stack);
1219
1220 spin_lock_irq(&q->queue_lock);
1221 for (rw = READ; rw <= WRITE; rw++)
1222 while ((bio = throtl_pop_queued(td_sq, NULL, rw)))
1223 bio_list_add(&bio_list_on_stack, bio);
1224 spin_unlock_irq(&q->queue_lock);
1225
1226 if (!bio_list_empty(&bio_list_on_stack)) {
1227 blk_start_plug(&plug);
1228 while ((bio = bio_list_pop(&bio_list_on_stack)))
1229 submit_bio_noacct_nocheck(bio, false);
1230 blk_finish_plug(&plug);
1231 }
1232 }
1233
tg_prfill_conf_u64(struct seq_file * sf,struct blkg_policy_data * pd,int off)1234 static u64 tg_prfill_conf_u64(struct seq_file *sf, struct blkg_policy_data *pd,
1235 int off)
1236 {
1237 struct throtl_grp *tg = pd_to_tg(pd);
1238 u64 v = *(u64 *)((void *)tg + off);
1239
1240 if (v == U64_MAX)
1241 return 0;
1242 return __blkg_prfill_u64(sf, pd, v);
1243 }
1244
tg_prfill_conf_uint(struct seq_file * sf,struct blkg_policy_data * pd,int off)1245 static u64 tg_prfill_conf_uint(struct seq_file *sf, struct blkg_policy_data *pd,
1246 int off)
1247 {
1248 struct throtl_grp *tg = pd_to_tg(pd);
1249 unsigned int v = *(unsigned int *)((void *)tg + off);
1250
1251 if (v == UINT_MAX)
1252 return 0;
1253 return __blkg_prfill_u64(sf, pd, v);
1254 }
1255
tg_print_conf_u64(struct seq_file * sf,void * v)1256 static int tg_print_conf_u64(struct seq_file *sf, void *v)
1257 {
1258 blkcg_print_blkgs(sf, css_to_blkcg(seq_css(sf)), tg_prfill_conf_u64,
1259 &blkcg_policy_throtl, seq_cft(sf)->private, false);
1260 return 0;
1261 }
1262
tg_print_conf_uint(struct seq_file * sf,void * v)1263 static int tg_print_conf_uint(struct seq_file *sf, void *v)
1264 {
1265 blkcg_print_blkgs(sf, css_to_blkcg(seq_css(sf)), tg_prfill_conf_uint,
1266 &blkcg_policy_throtl, seq_cft(sf)->private, false);
1267 return 0;
1268 }
1269
tg_conf_updated(struct throtl_grp * tg,bool global)1270 static void tg_conf_updated(struct throtl_grp *tg, bool global)
1271 {
1272 struct throtl_service_queue *sq = &tg->service_queue;
1273 struct cgroup_subsys_state *pos_css;
1274 struct blkcg_gq *blkg;
1275
1276 throtl_log(&tg->service_queue,
1277 "limit change rbps=%llu wbps=%llu riops=%u wiops=%u",
1278 tg_bps_limit(tg, READ), tg_bps_limit(tg, WRITE),
1279 tg_iops_limit(tg, READ), tg_iops_limit(tg, WRITE));
1280
1281 rcu_read_lock();
1282 /*
1283 * Update has_rules[] flags for the updated tg's subtree. A tg is
1284 * considered to have rules if either the tg itself or any of its
1285 * ancestors has rules. This identifies groups without any
1286 * restrictions in the whole hierarchy and allows them to bypass
1287 * blk-throttle.
1288 */
1289 blkg_for_each_descendant_pre(blkg, pos_css,
1290 global ? tg->td->queue->root_blkg : tg_to_blkg(tg)) {
1291 struct throtl_grp *this_tg = blkg_to_tg(blkg);
1292
1293 tg_update_has_rules(this_tg);
1294 /* ignore root/second level */
1295 if (!cgroup_subsys_on_dfl(io_cgrp_subsys) || !blkg->parent ||
1296 !blkg->parent->parent)
1297 continue;
1298 }
1299 rcu_read_unlock();
1300
1301 /*
1302 * We're already holding queue_lock and know @tg is valid. Let's
1303 * apply the new config directly.
1304 *
1305 * Restart the slices for both READ and WRITES. It might happen
1306 * that a group's limit are dropped suddenly and we don't want to
1307 * account recently dispatched IO with new low rate.
1308 */
1309 throtl_start_new_slice(tg, READ, false);
1310 throtl_start_new_slice(tg, WRITE, false);
1311
1312 if (tg->flags & THROTL_TG_PENDING) {
1313 tg_update_disptime(tg);
1314 throtl_schedule_next_dispatch(sq->parent_sq, true);
1315 }
1316 }
1317
blk_throtl_init(struct gendisk * disk)1318 static int blk_throtl_init(struct gendisk *disk)
1319 {
1320 struct request_queue *q = disk->queue;
1321 struct throtl_data *td;
1322 unsigned int memflags;
1323 int ret;
1324
1325 td = kzalloc_node(sizeof(*td), GFP_KERNEL, q->node);
1326 if (!td)
1327 return -ENOMEM;
1328
1329 INIT_WORK(&td->dispatch_work, blk_throtl_dispatch_work_fn);
1330 throtl_service_queue_init(&td->service_queue);
1331
1332 memflags = blk_mq_freeze_queue(disk->queue);
1333 blk_mq_quiesce_queue(disk->queue);
1334
1335 q->td = td;
1336 td->queue = q;
1337
1338 /* activate policy, blk_throtl_activated() will return true */
1339 ret = blkcg_activate_policy(disk, &blkcg_policy_throtl);
1340 if (ret) {
1341 q->td = NULL;
1342 kfree(td);
1343 }
1344
1345 blk_mq_unquiesce_queue(disk->queue);
1346 blk_mq_unfreeze_queue(disk->queue, memflags);
1347
1348 return ret;
1349 }
1350
1351
tg_set_conf(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off,bool is_u64)1352 static ssize_t tg_set_conf(struct kernfs_open_file *of,
1353 char *buf, size_t nbytes, loff_t off, bool is_u64)
1354 {
1355 struct blkcg *blkcg = css_to_blkcg(of_css(of));
1356 struct blkg_conf_ctx ctx;
1357 struct throtl_grp *tg;
1358 int ret;
1359 u64 v;
1360
1361 blkg_conf_init(&ctx, buf);
1362
1363 ret = blkg_conf_open_bdev(&ctx);
1364 if (ret)
1365 return ret;
1366
1367 if (!blk_throtl_activated(ctx.bdev->bd_queue)) {
1368 ret = blk_throtl_init(ctx.bdev->bd_disk);
1369 if (ret)
1370 goto close_bdev;
1371 }
1372
1373 ret = blkg_conf_prep(blkcg, &blkcg_policy_throtl, &ctx);
1374 if (ret)
1375 goto close_bdev;
1376
1377 ret = -EINVAL;
1378 if (sscanf(ctx.body, "%llu", &v) != 1)
1379 goto unprep;
1380 if (!v)
1381 v = U64_MAX;
1382
1383 tg = blkg_to_tg(ctx.blkg);
1384 tg_update_carryover(tg);
1385
1386 if (is_u64)
1387 *(u64 *)((void *)tg + of_cft(of)->private) = v;
1388 else
1389 *(unsigned int *)((void *)tg + of_cft(of)->private) = v;
1390
1391 tg_conf_updated(tg, false);
1392 ret = 0;
1393
1394 unprep:
1395 blkg_conf_unprep(&ctx);
1396
1397 close_bdev:
1398 blkg_conf_close_bdev(&ctx);
1399 return ret ?: nbytes;
1400 }
1401
tg_set_conf_u64(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1402 static ssize_t tg_set_conf_u64(struct kernfs_open_file *of,
1403 char *buf, size_t nbytes, loff_t off)
1404 {
1405 return tg_set_conf(of, buf, nbytes, off, true);
1406 }
1407
tg_set_conf_uint(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1408 static ssize_t tg_set_conf_uint(struct kernfs_open_file *of,
1409 char *buf, size_t nbytes, loff_t off)
1410 {
1411 return tg_set_conf(of, buf, nbytes, off, false);
1412 }
1413
tg_print_rwstat(struct seq_file * sf,void * v)1414 static int tg_print_rwstat(struct seq_file *sf, void *v)
1415 {
1416 blkcg_print_blkgs(sf, css_to_blkcg(seq_css(sf)),
1417 blkg_prfill_rwstat, &blkcg_policy_throtl,
1418 seq_cft(sf)->private, true);
1419 return 0;
1420 }
1421
tg_prfill_rwstat_recursive(struct seq_file * sf,struct blkg_policy_data * pd,int off)1422 static u64 tg_prfill_rwstat_recursive(struct seq_file *sf,
1423 struct blkg_policy_data *pd, int off)
1424 {
1425 struct blkg_rwstat_sample sum;
1426
1427 blkg_rwstat_recursive_sum(pd_to_blkg(pd), &blkcg_policy_throtl, off,
1428 &sum);
1429 return __blkg_prfill_rwstat(sf, pd, &sum);
1430 }
1431
tg_print_rwstat_recursive(struct seq_file * sf,void * v)1432 static int tg_print_rwstat_recursive(struct seq_file *sf, void *v)
1433 {
1434 blkcg_print_blkgs(sf, css_to_blkcg(seq_css(sf)),
1435 tg_prfill_rwstat_recursive, &blkcg_policy_throtl,
1436 seq_cft(sf)->private, true);
1437 return 0;
1438 }
1439
1440 static struct cftype throtl_legacy_files[] = {
1441 {
1442 .name = "throttle.read_bps_device",
1443 .private = offsetof(struct throtl_grp, bps[READ]),
1444 .seq_show = tg_print_conf_u64,
1445 .write = tg_set_conf_u64,
1446 },
1447 {
1448 .name = "throttle.write_bps_device",
1449 .private = offsetof(struct throtl_grp, bps[WRITE]),
1450 .seq_show = tg_print_conf_u64,
1451 .write = tg_set_conf_u64,
1452 },
1453 {
1454 .name = "throttle.read_iops_device",
1455 .private = offsetof(struct throtl_grp, iops[READ]),
1456 .seq_show = tg_print_conf_uint,
1457 .write = tg_set_conf_uint,
1458 },
1459 {
1460 .name = "throttle.write_iops_device",
1461 .private = offsetof(struct throtl_grp, iops[WRITE]),
1462 .seq_show = tg_print_conf_uint,
1463 .write = tg_set_conf_uint,
1464 },
1465 {
1466 .name = "throttle.io_service_bytes",
1467 .private = offsetof(struct throtl_grp, stat_bytes),
1468 .seq_show = tg_print_rwstat,
1469 },
1470 {
1471 .name = "throttle.io_service_bytes_recursive",
1472 .private = offsetof(struct throtl_grp, stat_bytes),
1473 .seq_show = tg_print_rwstat_recursive,
1474 },
1475 {
1476 .name = "throttle.io_serviced",
1477 .private = offsetof(struct throtl_grp, stat_ios),
1478 .seq_show = tg_print_rwstat,
1479 },
1480 {
1481 .name = "throttle.io_serviced_recursive",
1482 .private = offsetof(struct throtl_grp, stat_ios),
1483 .seq_show = tg_print_rwstat_recursive,
1484 },
1485 { } /* terminate */
1486 };
1487
tg_prfill_limit(struct seq_file * sf,struct blkg_policy_data * pd,int off)1488 static u64 tg_prfill_limit(struct seq_file *sf, struct blkg_policy_data *pd,
1489 int off)
1490 {
1491 struct throtl_grp *tg = pd_to_tg(pd);
1492 const char *dname = blkg_dev_name(pd->blkg);
1493 u64 bps_dft;
1494 unsigned int iops_dft;
1495
1496 if (!dname)
1497 return 0;
1498
1499 bps_dft = U64_MAX;
1500 iops_dft = UINT_MAX;
1501
1502 if (tg->bps[READ] == bps_dft &&
1503 tg->bps[WRITE] == bps_dft &&
1504 tg->iops[READ] == iops_dft &&
1505 tg->iops[WRITE] == iops_dft)
1506 return 0;
1507
1508 seq_printf(sf, "%s", dname);
1509 if (tg->bps[READ] == U64_MAX)
1510 seq_printf(sf, " rbps=max");
1511 else
1512 seq_printf(sf, " rbps=%llu", tg->bps[READ]);
1513
1514 if (tg->bps[WRITE] == U64_MAX)
1515 seq_printf(sf, " wbps=max");
1516 else
1517 seq_printf(sf, " wbps=%llu", tg->bps[WRITE]);
1518
1519 if (tg->iops[READ] == UINT_MAX)
1520 seq_printf(sf, " riops=max");
1521 else
1522 seq_printf(sf, " riops=%u", tg->iops[READ]);
1523
1524 if (tg->iops[WRITE] == UINT_MAX)
1525 seq_printf(sf, " wiops=max");
1526 else
1527 seq_printf(sf, " wiops=%u", tg->iops[WRITE]);
1528
1529 seq_printf(sf, "\n");
1530 return 0;
1531 }
1532
tg_print_limit(struct seq_file * sf,void * v)1533 static int tg_print_limit(struct seq_file *sf, void *v)
1534 {
1535 blkcg_print_blkgs(sf, css_to_blkcg(seq_css(sf)), tg_prfill_limit,
1536 &blkcg_policy_throtl, seq_cft(sf)->private, false);
1537 return 0;
1538 }
1539
tg_set_limit(struct kernfs_open_file * of,char * buf,size_t nbytes,loff_t off)1540 static ssize_t tg_set_limit(struct kernfs_open_file *of,
1541 char *buf, size_t nbytes, loff_t off)
1542 {
1543 struct blkcg *blkcg = css_to_blkcg(of_css(of));
1544 struct blkg_conf_ctx ctx;
1545 struct throtl_grp *tg;
1546 u64 v[4];
1547 int ret;
1548
1549 blkg_conf_init(&ctx, buf);
1550
1551 ret = blkg_conf_open_bdev(&ctx);
1552 if (ret)
1553 return ret;
1554
1555 if (!blk_throtl_activated(ctx.bdev->bd_queue)) {
1556 ret = blk_throtl_init(ctx.bdev->bd_disk);
1557 if (ret)
1558 goto close_bdev;
1559 }
1560
1561 ret = blkg_conf_prep(blkcg, &blkcg_policy_throtl, &ctx);
1562 if (ret)
1563 goto close_bdev;
1564
1565 tg = blkg_to_tg(ctx.blkg);
1566 tg_update_carryover(tg);
1567
1568 v[0] = tg->bps[READ];
1569 v[1] = tg->bps[WRITE];
1570 v[2] = tg->iops[READ];
1571 v[3] = tg->iops[WRITE];
1572
1573 while (true) {
1574 char tok[27]; /* wiops=18446744073709551616 */
1575 char *p;
1576 u64 val = U64_MAX;
1577 int len;
1578
1579 if (sscanf(ctx.body, "%26s%n", tok, &len) != 1)
1580 break;
1581 if (tok[0] == '\0')
1582 break;
1583 ctx.body += len;
1584
1585 ret = -EINVAL;
1586 p = tok;
1587 strsep(&p, "=");
1588 if (!p || (sscanf(p, "%llu", &val) != 1 && strcmp(p, "max")))
1589 goto unprep;
1590
1591 ret = -ERANGE;
1592 if (!val)
1593 goto unprep;
1594
1595 ret = -EINVAL;
1596 if (!strcmp(tok, "rbps"))
1597 v[0] = val;
1598 else if (!strcmp(tok, "wbps"))
1599 v[1] = val;
1600 else if (!strcmp(tok, "riops"))
1601 v[2] = min_t(u64, val, UINT_MAX);
1602 else if (!strcmp(tok, "wiops"))
1603 v[3] = min_t(u64, val, UINT_MAX);
1604 else
1605 goto unprep;
1606 }
1607
1608 tg->bps[READ] = v[0];
1609 tg->bps[WRITE] = v[1];
1610 tg->iops[READ] = v[2];
1611 tg->iops[WRITE] = v[3];
1612
1613 tg_conf_updated(tg, false);
1614 ret = 0;
1615 unprep:
1616 blkg_conf_unprep(&ctx);
1617 close_bdev:
1618 blkg_conf_close_bdev(&ctx);
1619 return ret ?: nbytes;
1620 }
1621
1622 static struct cftype throtl_files[] = {
1623 {
1624 .name = "max",
1625 .flags = CFTYPE_NOT_ON_ROOT,
1626 .seq_show = tg_print_limit,
1627 .write = tg_set_limit,
1628 },
1629 { } /* terminate */
1630 };
1631
throtl_shutdown_wq(struct request_queue * q)1632 static void throtl_shutdown_wq(struct request_queue *q)
1633 {
1634 struct throtl_data *td = q->td;
1635
1636 cancel_work_sync(&td->dispatch_work);
1637 }
1638
tg_flush_bios(struct throtl_grp * tg)1639 static void tg_flush_bios(struct throtl_grp *tg)
1640 {
1641 struct throtl_service_queue *sq = &tg->service_queue;
1642
1643 if (tg->flags & THROTL_TG_CANCELING)
1644 return;
1645 /*
1646 * Set the flag to make sure throtl_pending_timer_fn() won't
1647 * stop until all throttled bios are dispatched.
1648 */
1649 tg->flags |= THROTL_TG_CANCELING;
1650
1651 /*
1652 * Do not dispatch cgroup without THROTL_TG_PENDING or cgroup
1653 * will be inserted to service queue without THROTL_TG_PENDING
1654 * set in tg_update_disptime below. Then IO dispatched from
1655 * child in tg_dispatch_one_bio will trigger double insertion
1656 * and corrupt the tree.
1657 */
1658 if (!(tg->flags & THROTL_TG_PENDING))
1659 return;
1660
1661 /*
1662 * Update disptime after setting the above flag to make sure
1663 * throtl_select_dispatch() won't exit without dispatching.
1664 */
1665 tg_update_disptime(tg);
1666
1667 throtl_schedule_next_dispatch(sq->parent_sq, true);
1668 }
1669
throtl_pd_offline(struct blkg_policy_data * pd)1670 static void throtl_pd_offline(struct blkg_policy_data *pd)
1671 {
1672 tg_flush_bios(pd_to_tg(pd));
1673 }
1674
1675 struct blkcg_policy blkcg_policy_throtl = {
1676 .dfl_cftypes = throtl_files,
1677 .legacy_cftypes = throtl_legacy_files,
1678
1679 .pd_alloc_fn = throtl_pd_alloc,
1680 .pd_init_fn = throtl_pd_init,
1681 .pd_online_fn = throtl_pd_online,
1682 .pd_offline_fn = throtl_pd_offline,
1683 .pd_free_fn = throtl_pd_free,
1684 };
1685
tg_cancel_writeback_bios(struct throtl_grp * tg,struct bio_list * cancel_bios)1686 static void tg_cancel_writeback_bios(struct throtl_grp *tg,
1687 struct bio_list *cancel_bios)
1688 {
1689 struct throtl_service_queue *sq = &tg->service_queue;
1690 struct throtl_data *td = sq_to_td(sq);
1691 int rw;
1692
1693 if (tg->flags & THROTL_TG_CANCELING)
1694 return;
1695 tg->flags |= THROTL_TG_CANCELING;
1696
1697 for (rw = READ; rw <= WRITE; rw++) {
1698 struct throtl_qnode *qn, *tmp;
1699 unsigned int nr_bios = 0;
1700
1701 list_for_each_entry_safe(qn, tmp, &sq->queued[rw], node) {
1702 struct bio *bio;
1703
1704 while ((bio = bio_list_pop(&qn->bios_iops))) {
1705 sq->nr_queued_iops[rw]--;
1706 bio_list_add(&cancel_bios[rw], bio);
1707 nr_bios++;
1708 }
1709 while ((bio = bio_list_pop(&qn->bios_bps))) {
1710 sq->nr_queued_bps[rw]--;
1711 bio_list_add(&cancel_bios[rw], bio);
1712 nr_bios++;
1713 }
1714
1715 list_del_init(&qn->node);
1716 blkg_put(tg_to_blkg(qn->tg));
1717 }
1718
1719 td->nr_queued[rw] -= nr_bios;
1720 }
1721
1722 throtl_dequeue_tg(tg);
1723 }
1724
blk_throtl_cancel_bios(struct gendisk * disk)1725 void blk_throtl_cancel_bios(struct gendisk *disk)
1726 {
1727 struct request_queue *q = disk->queue;
1728 struct cgroup_subsys_state *pos_css;
1729 struct blkcg_gq *blkg;
1730 struct bio_list cancel_bios[2] = { };
1731 int rw;
1732
1733 if (!blk_throtl_activated(q))
1734 return;
1735
1736 spin_lock_irq(&q->queue_lock);
1737 /*
1738 * queue_lock is held, rcu lock is not needed here technically.
1739 * However, rcu lock is still held to emphasize that following
1740 * path need RCU protection and to prevent warning from lockdep.
1741 */
1742 rcu_read_lock();
1743 blkg_for_each_descendant_post(blkg, pos_css, q->root_blkg) {
1744 /*
1745 * disk_release will call pd_offline_fn to cancel bios.
1746 * However, disk_release can't be called if someone get
1747 * the refcount of device and issued bios which are
1748 * inflight after del_gendisk.
1749 * Cancel bios here to ensure no bios are inflight after
1750 * del_gendisk.
1751 */
1752 tg_cancel_writeback_bios(blkg_to_tg(blkg), cancel_bios);
1753 }
1754 rcu_read_unlock();
1755 spin_unlock_irq(&q->queue_lock);
1756
1757 for (rw = READ; rw <= WRITE; rw++) {
1758 struct bio *bio;
1759 while ((bio = bio_list_pop(&cancel_bios[rw])))
1760 bio_io_error(bio);
1761 }
1762 }
1763
tg_within_limit(struct throtl_grp * tg,struct bio * bio,bool rw)1764 static bool tg_within_limit(struct throtl_grp *tg, struct bio *bio, bool rw)
1765 {
1766 struct throtl_service_queue *sq = &tg->service_queue;
1767
1768 /*
1769 * For a split bio, we need to specifically distinguish whether the
1770 * iops queue is empty.
1771 */
1772 if (bio_flagged(bio, BIO_BPS_THROTTLED))
1773 return sq->nr_queued_iops[rw] == 0 &&
1774 tg_dispatch_iops_time(tg, bio) == 0;
1775
1776 /*
1777 * Throtl is FIFO - if bios are already queued, should queue.
1778 * If the bps queue is empty and @bio is within the bps limit, charge
1779 * bps here for direct placement into the iops queue.
1780 */
1781 if (sq_queued(&tg->service_queue, rw)) {
1782 if (sq->nr_queued_bps[rw] == 0 &&
1783 tg_dispatch_bps_time(tg, bio) == 0)
1784 throtl_charge_bps_bio(tg, bio);
1785
1786 return false;
1787 }
1788
1789 return tg_dispatch_time(tg, bio) == 0;
1790 }
1791
__blk_throtl_bio(struct bio * bio)1792 bool __blk_throtl_bio(struct bio *bio)
1793 {
1794 struct request_queue *q = bdev_get_queue(bio->bi_bdev);
1795 struct blkcg_gq *blkg = bio->bi_blkg;
1796 struct throtl_qnode *qn = NULL;
1797 struct throtl_grp *tg = blkg_to_tg(blkg);
1798 struct throtl_service_queue *sq;
1799 bool rw = bio_data_dir(bio);
1800 bool throttled = false;
1801 struct throtl_data *td = tg->td;
1802
1803 rcu_read_lock();
1804 spin_lock_irq(&q->queue_lock);
1805 sq = &tg->service_queue;
1806
1807 while (true) {
1808 if (tg_within_limit(tg, bio, rw)) {
1809 /* within limits, let's charge and dispatch directly */
1810 throtl_charge_iops_bio(tg, bio);
1811
1812 /*
1813 * We need to trim slice even when bios are not being
1814 * queued otherwise it might happen that a bio is not
1815 * queued for a long time and slice keeps on extending
1816 * and trim is not called for a long time. Now if limits
1817 * are reduced suddenly we take into account all the IO
1818 * dispatched so far at new low rate and * newly queued
1819 * IO gets a really long dispatch time.
1820 *
1821 * So keep on trimming slice even if bio is not queued.
1822 */
1823 throtl_trim_slice(tg, rw);
1824 } else if (bio_issue_as_root_blkg(bio)) {
1825 /*
1826 * IOs which may cause priority inversions are
1827 * dispatched directly, even if they're over limit.
1828 *
1829 * Charge and dispatch directly, and our throttle
1830 * control algorithm is adaptive, and extra IO bytes
1831 * will be throttled for paying the debt
1832 */
1833 throtl_charge_bps_bio(tg, bio);
1834 throtl_charge_iops_bio(tg, bio);
1835 } else {
1836 /* if above limits, break to queue */
1837 break;
1838 }
1839
1840 /*
1841 * @bio passed through this layer without being throttled.
1842 * Climb up the ladder. If we're already at the top, it
1843 * can be executed directly.
1844 */
1845 qn = &tg->qnode_on_parent[rw];
1846 sq = sq->parent_sq;
1847 tg = sq_to_tg(sq);
1848 if (!tg) {
1849 bio_set_flag(bio, BIO_BPS_THROTTLED);
1850 goto out_unlock;
1851 }
1852 }
1853
1854 /* out-of-limit, queue to @tg */
1855 throtl_log(sq, "[%c] bio. bdisp=%llu sz=%u bps=%llu iodisp=%u iops=%u queued=%d/%d",
1856 rw == READ ? 'R' : 'W',
1857 tg->bytes_disp[rw], bio->bi_iter.bi_size,
1858 tg_bps_limit(tg, rw),
1859 tg->io_disp[rw], tg_iops_limit(tg, rw),
1860 sq_queued(sq, READ), sq_queued(sq, WRITE));
1861
1862 td->nr_queued[rw]++;
1863 throtl_add_bio_tg(bio, qn, tg);
1864 throttled = true;
1865
1866 /*
1867 * Update @tg's dispatch time and force schedule dispatch if @tg
1868 * was empty before @bio, or the iops queue is empty and @bio will
1869 * add to. The forced scheduling isn't likely to cause undue
1870 * delay as @bio is likely to be dispatched directly if its @tg's
1871 * disptime is not in the future.
1872 */
1873 if (tg->flags & THROTL_TG_WAS_EMPTY ||
1874 tg->flags & THROTL_TG_IOPS_WAS_EMPTY) {
1875 tg_update_disptime(tg);
1876 throtl_schedule_next_dispatch(tg->service_queue.parent_sq, true);
1877 }
1878
1879 out_unlock:
1880 spin_unlock_irq(&q->queue_lock);
1881
1882 rcu_read_unlock();
1883 return throttled;
1884 }
1885
blk_throtl_exit(struct gendisk * disk)1886 void blk_throtl_exit(struct gendisk *disk)
1887 {
1888 struct request_queue *q = disk->queue;
1889
1890 /*
1891 * blkg_destroy_all() already deactivate throtl policy, just check and
1892 * free throtl data.
1893 */
1894 if (!q->td)
1895 return;
1896
1897 timer_delete_sync(&q->td->service_queue.pending_timer);
1898 throtl_shutdown_wq(q);
1899 kfree(q->td);
1900 }
1901
throtl_init(void)1902 static int __init throtl_init(void)
1903 {
1904 kthrotld_workqueue = alloc_workqueue("kthrotld", WQ_MEM_RECLAIM | WQ_PERCPU, 0);
1905 if (!kthrotld_workqueue)
1906 panic("Failed to create kthrotld\n");
1907
1908 return blkcg_policy_register(&blkcg_policy_throtl);
1909 }
1910
1911 module_init(throtl_init);
1912