1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * Common Block IO controller cgroup interface 4 * 5 * Based on ideas and code from CFQ, CFS and BFQ: 6 * Copyright (C) 2003 Jens Axboe <axboe@kernel.dk> 7 * 8 * Copyright (C) 2008 Fabio Checconi <fabio@gandalf.sssup.it> 9 * Paolo Valente <paolo.valente@unimore.it> 10 * 11 * Copyright (C) 2009 Vivek Goyal <vgoyal@redhat.com> 12 * Nauman Rafique <nauman@google.com> 13 * 14 * For policy-specific per-blkcg data: 15 * Copyright (C) 2015 Paolo Valente <paolo.valente@unimore.it> 16 * Arianna Avanzini <avanzini.arianna@gmail.com> 17 */ 18 #include <linux/ioprio.h> 19 #include <linux/kdev_t.h> 20 #include <linux/module.h> 21 #include <linux/sched/signal.h> 22 #include <linux/err.h> 23 #include <linux/blkdev.h> 24 #include <linux/backing-dev.h> 25 #include <linux/slab.h> 26 #include <linux/delay.h> 27 #include <linux/wait_bit.h> 28 #include <linux/atomic.h> 29 #include <linux/ctype.h> 30 #include <linux/resume_user_mode.h> 31 #include <linux/psi.h> 32 #include <linux/part_stat.h> 33 #include "blk.h" 34 #include "blk-cgroup.h" 35 #include "blk-ioprio.h" 36 #include "blk-throttle.h" 37 38 static void __blkcg_rstat_flush(struct blkcg *blkcg, int cpu); 39 40 /* 41 * blkcg_pol_mutex protects blkcg_policy[] and policy [de]activation. 42 * blkcg_pol_register_mutex nests outside of it and synchronizes entire 43 * policy [un]register operations including cgroup file additions / 44 * removals. Putting cgroup file registration outside blkcg_pol_mutex 45 * allows grabbing it from cgroup callbacks. 46 */ 47 static DEFINE_MUTEX(blkcg_pol_register_mutex); 48 static DEFINE_MUTEX(blkcg_pol_mutex); 49 50 struct blkcg blkcg_root; 51 EXPORT_SYMBOL_GPL(blkcg_root); 52 53 struct cgroup_subsys_state * const blkcg_root_css = &blkcg_root.css; 54 EXPORT_SYMBOL_GPL(blkcg_root_css); 55 56 static struct blkcg_policy *blkcg_policy[BLKCG_MAX_POLS]; 57 58 static LIST_HEAD(all_blkcgs); /* protected by blkcg_pol_mutex */ 59 60 bool blkcg_debug_stats = false; 61 62 static DEFINE_RAW_SPINLOCK(blkg_stat_lock); 63 64 #define BLKG_DESTROY_BATCH_SIZE 64 65 66 /* 67 * Lockless lists for tracking IO stats update 68 * 69 * New IO stats are stored in the percpu iostat_cpu within blkcg_gq (blkg). 70 * There are multiple blkg's (one for each block device) attached to each 71 * blkcg. The rstat code keeps track of which cpu has IO stats updated, 72 * but it doesn't know which blkg has the updated stats. If there are many 73 * block devices in a system, the cost of iterating all the blkg's to flush 74 * out the IO stats can be high. To reduce such overhead, a set of percpu 75 * lockless lists (lhead) per blkcg are used to track the set of recently 76 * updated iostat_cpu's since the last flush. An iostat_cpu will be put 77 * onto the lockless list on the update side [blk_cgroup_bio_start()] if 78 * not there yet and then removed when being flushed [blkcg_rstat_flush()]. 79 * References to blkg are gotten and then put back in the process to 80 * protect against blkg removal. 81 * 82 * Return: 0 if successful or -ENOMEM if allocation fails. 83 */ 84 static int init_blkcg_llists(struct blkcg *blkcg) 85 { 86 int cpu; 87 88 blkcg->lhead = alloc_percpu_gfp(struct llist_head, GFP_KERNEL); 89 if (!blkcg->lhead) 90 return -ENOMEM; 91 92 for_each_possible_cpu(cpu) 93 init_llist_head(per_cpu_ptr(blkcg->lhead, cpu)); 94 return 0; 95 } 96 97 /** 98 * blkcg_css - find the current css 99 * 100 * Find the css associated with either the kthread or the current task. 101 * This may return a dying css, so it is up to the caller to use tryget logic 102 * to confirm it is alive and well. 103 */ 104 static struct cgroup_subsys_state *blkcg_css(void) 105 { 106 struct cgroup_subsys_state *css; 107 108 css = kthread_blkcg(); 109 if (css) 110 return css; 111 return task_css(current, io_cgrp_id); 112 } 113 114 static void blkg_free_workfn(struct work_struct *work) 115 { 116 struct blkcg_gq *blkg = container_of(work, struct blkcg_gq, 117 free_work); 118 struct request_queue *q = blkg->q; 119 int i; 120 121 /* 122 * pd_free_fn() can also be called from blkcg_deactivate_policy(), 123 * in order to make sure pd_free_fn() is called in order, the deletion 124 * of the list blkg->q_node is delayed to here from blkg_destroy(), and 125 * blkcg_mutex is used to synchronize blkg_free_workfn() and 126 * blkcg_deactivate_policy(). 127 */ 128 mutex_lock(&q->blkcg_mutex); 129 for (i = 0; i < BLKCG_MAX_POLS; i++) 130 if (blkg->pd[i]) 131 blkcg_policy[i]->pd_free_fn(blkg->pd[i]); 132 if (blkg->parent) 133 blkg_put(blkg->parent); 134 spin_lock_irq(&q->queue_lock); 135 list_del_init(&blkg->q_node); 136 spin_unlock_irq(&q->queue_lock); 137 mutex_unlock(&q->blkcg_mutex); 138 139 blk_put_queue(q); 140 free_percpu(blkg->iostat_cpu); 141 percpu_ref_exit(&blkg->refcnt); 142 kfree(blkg); 143 } 144 145 /** 146 * blkg_free - free a blkg 147 * @blkg: blkg to free 148 * 149 * Free @blkg which may be partially allocated. 150 */ 151 static void blkg_free(struct blkcg_gq *blkg) 152 { 153 if (!blkg) 154 return; 155 156 /* 157 * Both ->pd_free_fn() and request queue's release handler may 158 * sleep, so free us by scheduling one work func 159 */ 160 INIT_WORK(&blkg->free_work, blkg_free_workfn); 161 schedule_work(&blkg->free_work); 162 } 163 164 static void __blkg_release(struct rcu_head *rcu) 165 { 166 struct blkcg_gq *blkg = container_of(rcu, struct blkcg_gq, rcu_head); 167 struct blkcg *blkcg = blkg->blkcg; 168 int cpu; 169 170 #ifdef CONFIG_BLK_CGROUP_PUNT_BIO 171 WARN_ON(!bio_list_empty(&blkg->async_bios)); 172 #endif 173 /* 174 * Flush all the non-empty percpu lockless lists before releasing 175 * us, given these stat belongs to us. 176 * 177 * blkg_stat_lock is for serializing blkg stat update 178 */ 179 for_each_possible_cpu(cpu) 180 __blkcg_rstat_flush(blkcg, cpu); 181 182 /* release the blkcg and parent blkg refs this blkg has been holding */ 183 css_put(&blkg->blkcg->css); 184 blkg_free(blkg); 185 } 186 187 /* 188 * A group is RCU protected, but having an rcu lock does not mean that one 189 * can access all the fields of blkg and assume these are valid. For 190 * example, don't try to follow throtl_data and request queue links. 191 * 192 * Having a reference to blkg under an rcu allows accesses to only values 193 * local to groups like group stats and group rate limits. 194 */ 195 static void blkg_release(struct percpu_ref *ref) 196 { 197 struct blkcg_gq *blkg = container_of(ref, struct blkcg_gq, refcnt); 198 199 call_rcu(&blkg->rcu_head, __blkg_release); 200 } 201 202 #ifdef CONFIG_BLK_CGROUP_PUNT_BIO 203 static struct workqueue_struct *blkcg_punt_bio_wq; 204 205 static void blkg_async_bio_workfn(struct work_struct *work) 206 { 207 struct blkcg_gq *blkg = container_of(work, struct blkcg_gq, 208 async_bio_work); 209 struct bio_list bios = BIO_EMPTY_LIST; 210 struct bio *bio; 211 struct blk_plug plug; 212 bool need_plug = false; 213 214 /* as long as there are pending bios, @blkg can't go away */ 215 spin_lock(&blkg->async_bio_lock); 216 bio_list_merge_init(&bios, &blkg->async_bios); 217 spin_unlock(&blkg->async_bio_lock); 218 219 /* start plug only when bio_list contains at least 2 bios */ 220 if (bios.head && bios.head->bi_next) { 221 need_plug = true; 222 blk_start_plug(&plug); 223 } 224 while ((bio = bio_list_pop(&bios))) 225 submit_bio(bio); 226 if (need_plug) 227 blk_finish_plug(&plug); 228 } 229 230 /* 231 * When a shared kthread issues a bio for a cgroup, doing so synchronously can 232 * lead to priority inversions as the kthread can be trapped waiting for that 233 * cgroup. Use this helper instead of submit_bio to punt the actual issuing to 234 * a dedicated per-blkcg work item to avoid such priority inversions. 235 */ 236 void blkcg_punt_bio_submit(struct bio *bio) 237 { 238 struct blkcg_gq *blkg = bio->bi_blkg; 239 240 if (blkg->parent) { 241 spin_lock(&blkg->async_bio_lock); 242 bio_list_add(&blkg->async_bios, bio); 243 spin_unlock(&blkg->async_bio_lock); 244 queue_work(blkcg_punt_bio_wq, &blkg->async_bio_work); 245 } else { 246 /* never bounce for the root cgroup */ 247 submit_bio(bio); 248 } 249 } 250 EXPORT_SYMBOL_GPL(blkcg_punt_bio_submit); 251 252 static int __init blkcg_punt_bio_init(void) 253 { 254 blkcg_punt_bio_wq = alloc_workqueue("blkcg_punt_bio", 255 WQ_MEM_RECLAIM | WQ_FREEZABLE | 256 WQ_UNBOUND | WQ_SYSFS, 0); 257 if (!blkcg_punt_bio_wq) 258 return -ENOMEM; 259 return 0; 260 } 261 subsys_initcall(blkcg_punt_bio_init); 262 #endif /* CONFIG_BLK_CGROUP_PUNT_BIO */ 263 264 /** 265 * bio_blkcg_css - return the blkcg CSS associated with a bio 266 * @bio: target bio 267 * 268 * This returns the CSS for the blkcg associated with a bio, or %NULL if not 269 * associated. Callers are expected to either handle %NULL or know association 270 * has been done prior to calling this. 271 */ 272 struct cgroup_subsys_state *bio_blkcg_css(struct bio *bio) 273 { 274 if (!bio || !bio->bi_blkg) 275 return NULL; 276 return &bio->bi_blkg->blkcg->css; 277 } 278 EXPORT_SYMBOL_GPL(bio_blkcg_css); 279 280 /** 281 * blkcg_parent - get the parent of a blkcg 282 * @blkcg: blkcg of interest 283 * 284 * Return the parent blkcg of @blkcg. Can be called anytime. 285 */ 286 static inline struct blkcg *blkcg_parent(struct blkcg *blkcg) 287 { 288 return css_to_blkcg(blkcg->css.parent); 289 } 290 291 /** 292 * blkg_alloc - allocate a blkg 293 * @blkcg: block cgroup the new blkg is associated with 294 * @disk: gendisk the new blkg is associated with 295 * @gfp_mask: allocation mask to use 296 * 297 * Allocate a new blkg associating @blkcg and @disk. 298 */ 299 static struct blkcg_gq *blkg_alloc(struct blkcg *blkcg, struct gendisk *disk, 300 gfp_t gfp_mask) 301 { 302 struct blkcg_gq *blkg; 303 int i, cpu; 304 305 /* alloc and init base part */ 306 blkg = kzalloc_node(sizeof(*blkg), gfp_mask, disk->queue->node); 307 if (!blkg) 308 return NULL; 309 if (percpu_ref_init(&blkg->refcnt, blkg_release, 0, gfp_mask)) 310 goto out_free_blkg; 311 blkg->iostat_cpu = alloc_percpu_gfp(struct blkg_iostat_set, gfp_mask); 312 if (!blkg->iostat_cpu) 313 goto out_exit_refcnt; 314 if (!blk_get_queue(disk->queue)) 315 goto out_free_iostat; 316 317 blkg->q = disk->queue; 318 INIT_LIST_HEAD(&blkg->q_node); 319 blkg->blkcg = blkcg; 320 blkg->iostat.blkg = blkg; 321 #ifdef CONFIG_BLK_CGROUP_PUNT_BIO 322 spin_lock_init(&blkg->async_bio_lock); 323 bio_list_init(&blkg->async_bios); 324 INIT_WORK(&blkg->async_bio_work, blkg_async_bio_workfn); 325 #endif 326 327 u64_stats_init(&blkg->iostat.sync); 328 for_each_possible_cpu(cpu) { 329 u64_stats_init(&per_cpu_ptr(blkg->iostat_cpu, cpu)->sync); 330 per_cpu_ptr(blkg->iostat_cpu, cpu)->blkg = blkg; 331 } 332 333 for (i = 0; i < BLKCG_MAX_POLS; i++) { 334 struct blkcg_policy *pol = blkcg_policy[i]; 335 struct blkg_policy_data *pd; 336 337 if (!blkcg_policy_enabled(disk->queue, pol)) 338 continue; 339 340 /* alloc per-policy data and attach it to blkg */ 341 pd = pol->pd_alloc_fn(disk, blkcg, gfp_mask); 342 if (!pd) 343 goto out_free_pds; 344 blkg->pd[i] = pd; 345 pd->blkg = blkg; 346 pd->plid = i; 347 pd->online = false; 348 } 349 350 return blkg; 351 352 out_free_pds: 353 while (--i >= 0) 354 if (blkg->pd[i]) 355 blkcg_policy[i]->pd_free_fn(blkg->pd[i]); 356 blk_put_queue(disk->queue); 357 out_free_iostat: 358 free_percpu(blkg->iostat_cpu); 359 out_exit_refcnt: 360 percpu_ref_exit(&blkg->refcnt); 361 out_free_blkg: 362 kfree(blkg); 363 return NULL; 364 } 365 366 /* 367 * If @new_blkg is %NULL, this function tries to allocate a new one as 368 * necessary using %GFP_NOWAIT. @new_blkg is always consumed on return. 369 */ 370 static struct blkcg_gq *blkg_create(struct blkcg *blkcg, struct gendisk *disk, 371 struct blkcg_gq *new_blkg) 372 { 373 struct blkcg_gq *blkg; 374 int i, ret; 375 376 lockdep_assert_held(&disk->queue->queue_lock); 377 378 /* request_queue is dying, do not create/recreate a blkg */ 379 if (blk_queue_dying(disk->queue)) { 380 ret = -ENODEV; 381 goto err_free_blkg; 382 } 383 384 /* blkg holds a reference to blkcg */ 385 if (!css_tryget_online(&blkcg->css)) { 386 ret = -ENODEV; 387 goto err_free_blkg; 388 } 389 390 /* allocate */ 391 if (!new_blkg) { 392 new_blkg = blkg_alloc(blkcg, disk, GFP_NOWAIT); 393 if (unlikely(!new_blkg)) { 394 ret = -ENOMEM; 395 goto err_put_css; 396 } 397 } 398 blkg = new_blkg; 399 400 /* link parent */ 401 if (blkcg_parent(blkcg)) { 402 blkg->parent = blkg_lookup(blkcg_parent(blkcg), disk->queue); 403 if (WARN_ON_ONCE(!blkg->parent)) { 404 ret = -ENODEV; 405 goto err_put_css; 406 } 407 blkg_get(blkg->parent); 408 } 409 410 /* invoke per-policy init */ 411 for (i = 0; i < BLKCG_MAX_POLS; i++) { 412 struct blkcg_policy *pol = blkcg_policy[i]; 413 414 if (blkg->pd[i] && pol->pd_init_fn) 415 pol->pd_init_fn(blkg->pd[i]); 416 } 417 418 /* insert */ 419 spin_lock(&blkcg->lock); 420 ret = radix_tree_insert(&blkcg->blkg_tree, disk->queue->id, blkg); 421 if (likely(!ret)) { 422 hlist_add_head_rcu(&blkg->blkcg_node, &blkcg->blkg_list); 423 list_add(&blkg->q_node, &disk->queue->blkg_list); 424 425 for (i = 0; i < BLKCG_MAX_POLS; i++) { 426 struct blkcg_policy *pol = blkcg_policy[i]; 427 428 if (blkg->pd[i]) { 429 if (pol->pd_online_fn) 430 pol->pd_online_fn(blkg->pd[i]); 431 blkg->pd[i]->online = true; 432 } 433 } 434 } 435 blkg->online = true; 436 spin_unlock(&blkcg->lock); 437 438 if (!ret) 439 return blkg; 440 441 /* @blkg failed fully initialized, use the usual release path */ 442 blkg_put(blkg); 443 return ERR_PTR(ret); 444 445 err_put_css: 446 css_put(&blkcg->css); 447 err_free_blkg: 448 if (new_blkg) 449 blkg_free(new_blkg); 450 return ERR_PTR(ret); 451 } 452 453 /** 454 * blkg_lookup_create - lookup blkg, try to create one if not there 455 * @blkcg: blkcg of interest 456 * @disk: gendisk of interest 457 * 458 * Lookup blkg for the @blkcg - @disk pair. If it doesn't exist, try to 459 * create one. blkg creation is performed recursively from blkcg_root such 460 * that all non-root blkg's have access to the parent blkg. This function 461 * should be called under RCU read lock and takes @disk->queue->queue_lock. 462 * 463 * Returns the blkg or the closest blkg if blkg_create() fails as it walks 464 * down from root. 465 */ 466 static struct blkcg_gq *blkg_lookup_create(struct blkcg *blkcg, 467 struct gendisk *disk) 468 { 469 struct request_queue *q = disk->queue; 470 struct blkcg_gq *blkg; 471 unsigned long flags; 472 473 WARN_ON_ONCE(!rcu_read_lock_held()); 474 475 blkg = blkg_lookup(blkcg, q); 476 if (blkg) 477 return blkg; 478 479 spin_lock_irqsave(&q->queue_lock, flags); 480 blkg = blkg_lookup(blkcg, q); 481 if (blkg) { 482 if (blkcg != &blkcg_root && 483 blkg != rcu_dereference(blkcg->blkg_hint)) 484 rcu_assign_pointer(blkcg->blkg_hint, blkg); 485 goto found; 486 } 487 488 /* 489 * Create blkgs walking down from blkcg_root to @blkcg, so that all 490 * non-root blkgs have access to their parents. Returns the closest 491 * blkg to the intended blkg should blkg_create() fail. 492 */ 493 while (true) { 494 struct blkcg *pos = blkcg; 495 struct blkcg *parent = blkcg_parent(blkcg); 496 struct blkcg_gq *ret_blkg = q->root_blkg; 497 498 while (parent) { 499 blkg = blkg_lookup(parent, q); 500 if (blkg) { 501 /* remember closest blkg */ 502 ret_blkg = blkg; 503 break; 504 } 505 pos = parent; 506 parent = blkcg_parent(parent); 507 } 508 509 blkg = blkg_create(pos, disk, NULL); 510 if (IS_ERR(blkg)) { 511 blkg = ret_blkg; 512 break; 513 } 514 if (pos == blkcg) 515 break; 516 } 517 518 found: 519 spin_unlock_irqrestore(&q->queue_lock, flags); 520 return blkg; 521 } 522 523 static void blkg_destroy(struct blkcg_gq *blkg) 524 { 525 struct blkcg *blkcg = blkg->blkcg; 526 int i; 527 528 lockdep_assert_held(&blkg->q->queue_lock); 529 lockdep_assert_held(&blkcg->lock); 530 531 /* 532 * blkg stays on the queue list until blkg_free_workfn(), see details in 533 * blkg_free_workfn(), hence this function can be called from 534 * blkcg_destroy_blkgs() first and again from blkg_destroy_all() before 535 * blkg_free_workfn(). 536 */ 537 if (hlist_unhashed(&blkg->blkcg_node)) 538 return; 539 540 for (i = 0; i < BLKCG_MAX_POLS; i++) { 541 struct blkcg_policy *pol = blkcg_policy[i]; 542 543 if (blkg->pd[i] && blkg->pd[i]->online) { 544 blkg->pd[i]->online = false; 545 if (pol->pd_offline_fn) 546 pol->pd_offline_fn(blkg->pd[i]); 547 } 548 } 549 550 blkg->online = false; 551 552 radix_tree_delete(&blkcg->blkg_tree, blkg->q->id); 553 hlist_del_init_rcu(&blkg->blkcg_node); 554 555 /* 556 * Both setting lookup hint to and clearing it from @blkg are done 557 * under queue_lock. If it's not pointing to @blkg now, it never 558 * will. Hint assignment itself can race safely. 559 */ 560 if (rcu_access_pointer(blkcg->blkg_hint) == blkg) 561 rcu_assign_pointer(blkcg->blkg_hint, NULL); 562 563 /* 564 * Put the reference taken at the time of creation so that when all 565 * queues are gone, group can be destroyed. 566 */ 567 percpu_ref_kill(&blkg->refcnt); 568 } 569 570 static void blkg_destroy_all(struct gendisk *disk) 571 { 572 struct request_queue *q = disk->queue; 573 struct blkcg_gq *blkg; 574 int count = BLKG_DESTROY_BATCH_SIZE; 575 int i; 576 577 restart: 578 spin_lock_irq(&q->queue_lock); 579 list_for_each_entry(blkg, &q->blkg_list, q_node) { 580 struct blkcg *blkcg = blkg->blkcg; 581 582 if (hlist_unhashed(&blkg->blkcg_node)) 583 continue; 584 585 spin_lock(&blkcg->lock); 586 blkg_destroy(blkg); 587 spin_unlock(&blkcg->lock); 588 589 /* 590 * in order to avoid holding the spin lock for too long, release 591 * it when a batch of blkgs are destroyed. 592 */ 593 if (!(--count)) { 594 count = BLKG_DESTROY_BATCH_SIZE; 595 spin_unlock_irq(&q->queue_lock); 596 cond_resched(); 597 goto restart; 598 } 599 } 600 601 /* 602 * Mark policy deactivated since policy offline has been done, and 603 * the free is scheduled, so future blkcg_deactivate_policy() can 604 * be bypassed 605 */ 606 for (i = 0; i < BLKCG_MAX_POLS; i++) { 607 struct blkcg_policy *pol = blkcg_policy[i]; 608 609 if (pol) 610 __clear_bit(pol->plid, q->blkcg_pols); 611 } 612 613 q->root_blkg = NULL; 614 spin_unlock_irq(&q->queue_lock); 615 616 wake_up_var(&q->root_blkg); 617 } 618 619 static void blkg_iostat_set(struct blkg_iostat *dst, struct blkg_iostat *src) 620 { 621 int i; 622 623 for (i = 0; i < BLKG_IOSTAT_NR; i++) { 624 dst->bytes[i] = src->bytes[i]; 625 dst->ios[i] = src->ios[i]; 626 } 627 } 628 629 static void __blkg_clear_stat(struct blkg_iostat_set *bis) 630 { 631 struct blkg_iostat cur = {0}; 632 unsigned long flags; 633 634 flags = u64_stats_update_begin_irqsave(&bis->sync); 635 blkg_iostat_set(&bis->cur, &cur); 636 blkg_iostat_set(&bis->last, &cur); 637 u64_stats_update_end_irqrestore(&bis->sync, flags); 638 } 639 640 static void blkg_clear_stat(struct blkcg_gq *blkg) 641 { 642 int cpu; 643 644 for_each_possible_cpu(cpu) { 645 struct blkg_iostat_set *s = per_cpu_ptr(blkg->iostat_cpu, cpu); 646 647 __blkg_clear_stat(s); 648 } 649 __blkg_clear_stat(&blkg->iostat); 650 } 651 652 static int blkcg_reset_stats(struct cgroup_subsys_state *css, 653 struct cftype *cftype, u64 val) 654 { 655 struct blkcg *blkcg = css_to_blkcg(css); 656 struct blkcg_gq *blkg; 657 int i; 658 659 pr_info_once("blkio.%s is deprecated\n", cftype->name); 660 mutex_lock(&blkcg_pol_mutex); 661 spin_lock_irq(&blkcg->lock); 662 663 /* 664 * Note that stat reset is racy - it doesn't synchronize against 665 * stat updates. This is a debug feature which shouldn't exist 666 * anyway. If you get hit by a race, retry. 667 */ 668 hlist_for_each_entry(blkg, &blkcg->blkg_list, blkcg_node) { 669 blkg_clear_stat(blkg); 670 for (i = 0; i < BLKCG_MAX_POLS; i++) { 671 struct blkcg_policy *pol = blkcg_policy[i]; 672 673 if (blkg->pd[i] && pol->pd_reset_stats_fn) 674 pol->pd_reset_stats_fn(blkg->pd[i]); 675 } 676 } 677 678 spin_unlock_irq(&blkcg->lock); 679 mutex_unlock(&blkcg_pol_mutex); 680 return 0; 681 } 682 683 const char *blkg_dev_name(struct blkcg_gq *blkg) 684 { 685 if (!blkg->q->disk) 686 return NULL; 687 return bdi_dev_name(blkg->q->disk->bdi); 688 } 689 690 /** 691 * blkcg_print_blkgs - helper for printing per-blkg data 692 * @sf: seq_file to print to 693 * @blkcg: blkcg of interest 694 * @prfill: fill function to print out a blkg 695 * @pol: policy in question 696 * @data: data to be passed to @prfill 697 * @show_total: to print out sum of prfill return values or not 698 * 699 * This function invokes @prfill on each blkg of @blkcg if pd for the 700 * policy specified by @pol exists. @prfill is invoked with @sf, the 701 * policy data and @data and the matching queue lock held. If @show_total 702 * is %true, the sum of the return values from @prfill is printed with 703 * "Total" label at the end. 704 * 705 * This is to be used to construct print functions for 706 * cftype->read_seq_string method. 707 */ 708 void blkcg_print_blkgs(struct seq_file *sf, struct blkcg *blkcg, 709 u64 (*prfill)(struct seq_file *, 710 struct blkg_policy_data *, int), 711 const struct blkcg_policy *pol, int data, 712 bool show_total) 713 { 714 struct blkcg_gq *blkg; 715 u64 total = 0; 716 717 rcu_read_lock(); 718 hlist_for_each_entry_rcu(blkg, &blkcg->blkg_list, blkcg_node) { 719 spin_lock_irq(&blkg->q->queue_lock); 720 if (blkcg_policy_enabled(blkg->q, pol)) 721 total += prfill(sf, blkg->pd[pol->plid], data); 722 spin_unlock_irq(&blkg->q->queue_lock); 723 } 724 rcu_read_unlock(); 725 726 if (show_total) 727 seq_printf(sf, "Total %llu\n", (unsigned long long)total); 728 } 729 EXPORT_SYMBOL_GPL(blkcg_print_blkgs); 730 731 /** 732 * __blkg_prfill_u64 - prfill helper for a single u64 value 733 * @sf: seq_file to print to 734 * @pd: policy private data of interest 735 * @v: value to print 736 * 737 * Print @v to @sf for the device associated with @pd. 738 */ 739 u64 __blkg_prfill_u64(struct seq_file *sf, struct blkg_policy_data *pd, u64 v) 740 { 741 const char *dname = blkg_dev_name(pd->blkg); 742 743 if (!dname) 744 return 0; 745 746 seq_printf(sf, "%s %llu\n", dname, (unsigned long long)v); 747 return v; 748 } 749 EXPORT_SYMBOL_GPL(__blkg_prfill_u64); 750 751 /** 752 * blkg_conf_init - initialize a blkg_conf_ctx 753 * @ctx: blkg_conf_ctx to initialize 754 * @input: input string 755 * 756 * Initialize @ctx which can be used to parse blkg config input string @input. 757 * Once initialized, @ctx can be used with blkg_conf_open_bdev() and 758 * blkg_conf_prep(). 759 */ 760 void blkg_conf_init(struct blkg_conf_ctx *ctx, char *input) 761 { 762 *ctx = (struct blkg_conf_ctx){ .input = input }; 763 } 764 EXPORT_SYMBOL_GPL(blkg_conf_init); 765 766 /** 767 * blkg_conf_open_bdev - parse and open bdev for per-blkg config update 768 * @ctx: blkg_conf_ctx initialized with blkg_conf_init() 769 * 770 * Parse the device node prefix part, MAJ:MIN, of per-blkg config update from 771 * @ctx->input and get and store the matching bdev in @ctx->bdev. @ctx->body is 772 * set to point past the device node prefix. 773 * 774 * Returns: -errno on error. 775 */ 776 int blkg_conf_open_bdev(struct blkg_conf_ctx *ctx) 777 { 778 char *input = ctx->input; 779 unsigned int major, minor; 780 struct block_device *bdev; 781 int key_len; 782 783 if (WARN_ON_ONCE(ctx->bdev)) 784 return -EINVAL; 785 786 if (sscanf(input, "%u:%u%n", &major, &minor, &key_len) != 2) 787 return -EINVAL; 788 789 input += key_len; 790 if (!isspace(*input)) 791 return -EINVAL; 792 input = skip_spaces(input); 793 794 bdev = blkdev_get_no_open(MKDEV(major, minor), false); 795 if (!bdev) 796 return -ENODEV; 797 if (bdev_is_partition(bdev)) { 798 blkdev_put_no_open(bdev); 799 return -ENODEV; 800 } 801 802 mutex_lock(&bdev->bd_queue->rq_qos_mutex); 803 if (!disk_live(bdev->bd_disk)) { 804 blkdev_put_no_open(bdev); 805 mutex_unlock(&bdev->bd_queue->rq_qos_mutex); 806 return -ENODEV; 807 } 808 809 ctx->body = input; 810 ctx->bdev = bdev; 811 return 0; 812 } 813 EXPORT_SYMBOL_GPL(blkg_conf_open_bdev); 814 815 /** 816 * blkg_conf_prep - parse and prepare for per-blkg config update 817 * @blkcg: target block cgroup 818 * @pol: target policy 819 * @ctx: blkg_conf_ctx initialized with blkg_conf_init() 820 * 821 * Parse per-blkg config update from @ctx->input and initialize @ctx 822 * accordingly. On success, @ctx->body points to the part of @ctx->input 823 * following MAJ:MIN, @ctx->bdev points to the target block device and 824 * @ctx->blkg to the blkg being configured. 825 * 826 * blkg_conf_open_bdev() must be called on @ctx beforehand. On success, this 827 * function returns with queue lock held and must be followed by 828 * blkg_conf_close_bdev(). 829 */ 830 int blkg_conf_prep(struct blkcg *blkcg, const struct blkcg_policy *pol, 831 struct blkg_conf_ctx *ctx) 832 { 833 struct gendisk *disk; 834 struct request_queue *q; 835 struct blkcg_gq *blkg; 836 int ret; 837 838 if (WARN_ON_ONCE(!ctx->bdev)) 839 return -EINVAL; 840 841 disk = ctx->bdev->bd_disk; 842 q = disk->queue; 843 844 /* Prevent concurrent with blkcg_deactivate_policy() */ 845 mutex_lock(&q->blkcg_mutex); 846 spin_lock_irq(&q->queue_lock); 847 848 if (!blkcg_policy_enabled(q, pol)) { 849 ret = -EOPNOTSUPP; 850 goto fail_unlock; 851 } 852 853 blkg = blkg_lookup(blkcg, q); 854 if (blkg) 855 goto success; 856 857 /* 858 * Create blkgs walking down from blkcg_root to @blkcg, so that all 859 * non-root blkgs have access to their parents. 860 */ 861 while (true) { 862 struct blkcg *pos = blkcg; 863 struct blkcg *parent; 864 struct blkcg_gq *new_blkg; 865 866 parent = blkcg_parent(blkcg); 867 while (parent && !blkg_lookup(parent, q)) { 868 pos = parent; 869 parent = blkcg_parent(parent); 870 } 871 872 /* Drop locks to do new blkg allocation with GFP_KERNEL. */ 873 spin_unlock_irq(&q->queue_lock); 874 875 new_blkg = blkg_alloc(pos, disk, GFP_NOIO); 876 if (unlikely(!new_blkg)) { 877 ret = -ENOMEM; 878 goto fail_exit; 879 } 880 881 if (radix_tree_preload(GFP_KERNEL)) { 882 blkg_free(new_blkg); 883 ret = -ENOMEM; 884 goto fail_exit; 885 } 886 887 spin_lock_irq(&q->queue_lock); 888 889 if (!blkcg_policy_enabled(q, pol)) { 890 blkg_free(new_blkg); 891 ret = -EOPNOTSUPP; 892 goto fail_preloaded; 893 } 894 895 blkg = blkg_lookup(pos, q); 896 if (blkg) { 897 blkg_free(new_blkg); 898 } else { 899 blkg = blkg_create(pos, disk, new_blkg); 900 if (IS_ERR(blkg)) { 901 ret = PTR_ERR(blkg); 902 goto fail_preloaded; 903 } 904 } 905 906 radix_tree_preload_end(); 907 908 if (pos == blkcg) 909 goto success; 910 } 911 success: 912 mutex_unlock(&q->blkcg_mutex); 913 ctx->blkg = blkg; 914 return 0; 915 916 fail_preloaded: 917 radix_tree_preload_end(); 918 fail_unlock: 919 spin_unlock_irq(&q->queue_lock); 920 fail_exit: 921 mutex_unlock(&q->blkcg_mutex); 922 /* 923 * If queue was bypassing, we should retry. Do so after a 924 * short msleep(). It isn't strictly necessary but queue 925 * can be bypassing for some time and it's always nice to 926 * avoid busy looping. 927 */ 928 if (ret == -EBUSY) { 929 msleep(10); 930 ret = restart_syscall(); 931 } 932 return ret; 933 } 934 EXPORT_SYMBOL_GPL(blkg_conf_prep); 935 936 /** 937 * blkg_conf_unprep - counterpart of blkg_conf_prep() 938 * @ctx: blkg_conf_ctx initialized with blkg_conf_init() 939 */ 940 void blkg_conf_unprep(struct blkg_conf_ctx *ctx) 941 { 942 WARN_ON_ONCE(!ctx->blkg); 943 spin_unlock_irq(&ctx->bdev->bd_disk->queue->queue_lock); 944 ctx->blkg = NULL; 945 } 946 EXPORT_SYMBOL_GPL(blkg_conf_unprep); 947 948 /** 949 * blkg_conf_close_bdev - counterpart of blkg_conf_open_bdev() 950 * @ctx: blkg_conf_ctx initialized with blkg_conf_init() 951 */ 952 void blkg_conf_close_bdev(struct blkg_conf_ctx *ctx) 953 { 954 mutex_unlock(&ctx->bdev->bd_queue->rq_qos_mutex); 955 blkdev_put_no_open(ctx->bdev); 956 ctx->body = NULL; 957 ctx->bdev = NULL; 958 } 959 EXPORT_SYMBOL_GPL(blkg_conf_close_bdev); 960 961 static void blkg_iostat_add(struct blkg_iostat *dst, struct blkg_iostat *src) 962 { 963 int i; 964 965 for (i = 0; i < BLKG_IOSTAT_NR; i++) { 966 dst->bytes[i] += src->bytes[i]; 967 dst->ios[i] += src->ios[i]; 968 } 969 } 970 971 static void blkg_iostat_sub(struct blkg_iostat *dst, struct blkg_iostat *src) 972 { 973 int i; 974 975 for (i = 0; i < BLKG_IOSTAT_NR; i++) { 976 dst->bytes[i] -= src->bytes[i]; 977 dst->ios[i] -= src->ios[i]; 978 } 979 } 980 981 static void blkcg_iostat_update(struct blkcg_gq *blkg, struct blkg_iostat *cur, 982 struct blkg_iostat *last) 983 { 984 struct blkg_iostat delta; 985 unsigned long flags; 986 987 /* propagate percpu delta to global */ 988 flags = u64_stats_update_begin_irqsave(&blkg->iostat.sync); 989 blkg_iostat_set(&delta, cur); 990 blkg_iostat_sub(&delta, last); 991 blkg_iostat_add(&blkg->iostat.cur, &delta); 992 blkg_iostat_add(last, &delta); 993 u64_stats_update_end_irqrestore(&blkg->iostat.sync, flags); 994 } 995 996 static void __blkcg_rstat_flush(struct blkcg *blkcg, int cpu) 997 { 998 struct llist_head *lhead = per_cpu_ptr(blkcg->lhead, cpu); 999 struct llist_node *lnode; 1000 struct blkg_iostat_set *bisc, *next_bisc; 1001 unsigned long flags; 1002 1003 rcu_read_lock(); 1004 1005 lnode = llist_del_all(lhead); 1006 if (!lnode) 1007 goto out; 1008 1009 /* 1010 * For covering concurrent parent blkg update from blkg_release(). 1011 * 1012 * When flushing from cgroup, the subsystem rstat lock is always held, 1013 * so this lock won't cause contention most of time. 1014 */ 1015 raw_spin_lock_irqsave(&blkg_stat_lock, flags); 1016 1017 /* 1018 * Iterate only the iostat_cpu's queued in the lockless list. 1019 */ 1020 llist_for_each_entry_safe(bisc, next_bisc, lnode, lnode) { 1021 struct blkcg_gq *blkg = bisc->blkg; 1022 struct blkcg_gq *parent = blkg->parent; 1023 struct blkg_iostat cur; 1024 unsigned int seq; 1025 1026 /* 1027 * Order assignment of `next_bisc` from `bisc->lnode.next` in 1028 * llist_for_each_entry_safe and clearing `bisc->lqueued` for 1029 * avoiding to assign `next_bisc` with new next pointer added 1030 * in blk_cgroup_bio_start() in case of re-ordering. 1031 * 1032 * The pair barrier is implied in llist_add() in blk_cgroup_bio_start(). 1033 */ 1034 smp_mb(); 1035 1036 WRITE_ONCE(bisc->lqueued, false); 1037 if (bisc == &blkg->iostat) 1038 goto propagate_up; /* propagate up to parent only */ 1039 1040 /* fetch the current per-cpu values */ 1041 do { 1042 seq = u64_stats_fetch_begin(&bisc->sync); 1043 blkg_iostat_set(&cur, &bisc->cur); 1044 } while (u64_stats_fetch_retry(&bisc->sync, seq)); 1045 1046 blkcg_iostat_update(blkg, &cur, &bisc->last); 1047 1048 propagate_up: 1049 /* propagate global delta to parent (unless that's root) */ 1050 if (parent && parent->parent) { 1051 blkcg_iostat_update(parent, &blkg->iostat.cur, 1052 &blkg->iostat.last); 1053 /* 1054 * Queue parent->iostat to its blkcg's lockless 1055 * list to propagate up to the grandparent if the 1056 * iostat hasn't been queued yet. 1057 */ 1058 if (!parent->iostat.lqueued) { 1059 struct llist_head *plhead; 1060 1061 plhead = per_cpu_ptr(parent->blkcg->lhead, cpu); 1062 llist_add(&parent->iostat.lnode, plhead); 1063 parent->iostat.lqueued = true; 1064 } 1065 } 1066 } 1067 raw_spin_unlock_irqrestore(&blkg_stat_lock, flags); 1068 out: 1069 rcu_read_unlock(); 1070 } 1071 1072 static void blkcg_rstat_flush(struct cgroup_subsys_state *css, int cpu) 1073 { 1074 /* Root-level stats are sourced from system-wide IO stats */ 1075 if (cgroup_parent(css->cgroup)) 1076 __blkcg_rstat_flush(css_to_blkcg(css), cpu); 1077 } 1078 1079 /* 1080 * We source root cgroup stats from the system-wide stats to avoid 1081 * tracking the same information twice and incurring overhead when no 1082 * cgroups are defined. For that reason, css_rstat_flush in 1083 * blkcg_print_stat does not actually fill out the iostat in the root 1084 * cgroup's blkcg_gq. 1085 * 1086 * However, we would like to re-use the printing code between the root and 1087 * non-root cgroups to the extent possible. For that reason, we simulate 1088 * flushing the root cgroup's stats by explicitly filling in the iostat 1089 * with disk level statistics. 1090 */ 1091 static void blkcg_fill_root_iostats(void) 1092 { 1093 struct class_dev_iter iter; 1094 struct device *dev; 1095 1096 class_dev_iter_init(&iter, &block_class, NULL, &disk_type); 1097 while ((dev = class_dev_iter_next(&iter))) { 1098 struct block_device *bdev = dev_to_bdev(dev); 1099 struct blkcg_gq *blkg = bdev->bd_disk->queue->root_blkg; 1100 struct blkg_iostat tmp; 1101 int cpu; 1102 unsigned long flags; 1103 1104 memset(&tmp, 0, sizeof(tmp)); 1105 for_each_possible_cpu(cpu) { 1106 struct disk_stats *cpu_dkstats; 1107 1108 cpu_dkstats = per_cpu_ptr(bdev->bd_stats, cpu); 1109 tmp.ios[BLKG_IOSTAT_READ] += 1110 cpu_dkstats->ios[STAT_READ]; 1111 tmp.ios[BLKG_IOSTAT_WRITE] += 1112 cpu_dkstats->ios[STAT_WRITE]; 1113 tmp.ios[BLKG_IOSTAT_DISCARD] += 1114 cpu_dkstats->ios[STAT_DISCARD]; 1115 // convert sectors to bytes 1116 tmp.bytes[BLKG_IOSTAT_READ] += 1117 cpu_dkstats->sectors[STAT_READ] << 9; 1118 tmp.bytes[BLKG_IOSTAT_WRITE] += 1119 cpu_dkstats->sectors[STAT_WRITE] << 9; 1120 tmp.bytes[BLKG_IOSTAT_DISCARD] += 1121 cpu_dkstats->sectors[STAT_DISCARD] << 9; 1122 } 1123 1124 flags = u64_stats_update_begin_irqsave(&blkg->iostat.sync); 1125 blkg_iostat_set(&blkg->iostat.cur, &tmp); 1126 u64_stats_update_end_irqrestore(&blkg->iostat.sync, flags); 1127 } 1128 class_dev_iter_exit(&iter); 1129 } 1130 1131 static void blkcg_print_one_stat(struct blkcg_gq *blkg, struct seq_file *s) 1132 { 1133 struct blkg_iostat_set *bis = &blkg->iostat; 1134 u64 rbytes, wbytes, rios, wios, dbytes, dios; 1135 const char *dname; 1136 unsigned seq; 1137 int i; 1138 1139 if (!blkg->online) 1140 return; 1141 1142 dname = blkg_dev_name(blkg); 1143 if (!dname) 1144 return; 1145 1146 seq_printf(s, "%s ", dname); 1147 1148 do { 1149 seq = u64_stats_fetch_begin(&bis->sync); 1150 1151 rbytes = bis->cur.bytes[BLKG_IOSTAT_READ]; 1152 wbytes = bis->cur.bytes[BLKG_IOSTAT_WRITE]; 1153 dbytes = bis->cur.bytes[BLKG_IOSTAT_DISCARD]; 1154 rios = bis->cur.ios[BLKG_IOSTAT_READ]; 1155 wios = bis->cur.ios[BLKG_IOSTAT_WRITE]; 1156 dios = bis->cur.ios[BLKG_IOSTAT_DISCARD]; 1157 } while (u64_stats_fetch_retry(&bis->sync, seq)); 1158 1159 if (rbytes || wbytes || rios || wios) { 1160 seq_printf(s, "rbytes=%llu wbytes=%llu rios=%llu wios=%llu dbytes=%llu dios=%llu", 1161 rbytes, wbytes, rios, wios, 1162 dbytes, dios); 1163 } 1164 1165 if (blkcg_debug_stats && atomic_read(&blkg->use_delay)) { 1166 seq_printf(s, " use_delay=%d delay_nsec=%llu", 1167 atomic_read(&blkg->use_delay), 1168 atomic64_read(&blkg->delay_nsec)); 1169 } 1170 1171 for (i = 0; i < BLKCG_MAX_POLS; i++) { 1172 struct blkcg_policy *pol = blkcg_policy[i]; 1173 1174 if (!blkg->pd[i] || !pol->pd_stat_fn) 1175 continue; 1176 1177 pol->pd_stat_fn(blkg->pd[i], s); 1178 } 1179 1180 seq_puts(s, "\n"); 1181 } 1182 1183 static int blkcg_print_stat(struct seq_file *sf, void *v) 1184 { 1185 struct blkcg *blkcg = css_to_blkcg(seq_css(sf)); 1186 struct blkcg_gq *blkg; 1187 1188 if (!seq_css(sf)->parent) 1189 blkcg_fill_root_iostats(); 1190 else 1191 css_rstat_flush(&blkcg->css); 1192 1193 rcu_read_lock(); 1194 hlist_for_each_entry_rcu(blkg, &blkcg->blkg_list, blkcg_node) { 1195 spin_lock_irq(&blkg->q->queue_lock); 1196 blkcg_print_one_stat(blkg, sf); 1197 spin_unlock_irq(&blkg->q->queue_lock); 1198 } 1199 rcu_read_unlock(); 1200 return 0; 1201 } 1202 1203 static struct cftype blkcg_files[] = { 1204 { 1205 .name = "stat", 1206 .seq_show = blkcg_print_stat, 1207 }, 1208 { } /* terminate */ 1209 }; 1210 1211 static struct cftype blkcg_legacy_files[] = { 1212 { 1213 .name = "reset_stats", 1214 .write_u64 = blkcg_reset_stats, 1215 }, 1216 { } /* terminate */ 1217 }; 1218 1219 #ifdef CONFIG_CGROUP_WRITEBACK 1220 struct list_head *blkcg_get_cgwb_list(struct cgroup_subsys_state *css) 1221 { 1222 return &css_to_blkcg(css)->cgwb_list; 1223 } 1224 #endif 1225 1226 /* 1227 * blkcg destruction is a three-stage process. 1228 * 1229 * 1. Destruction starts. The blkcg_css_offline() callback is invoked 1230 * which offlines writeback. Here we tie the next stage of blkg destruction 1231 * to the completion of writeback associated with the blkcg. This lets us 1232 * avoid punting potentially large amounts of outstanding writeback to root 1233 * while maintaining any ongoing policies. The next stage is triggered when 1234 * the nr_cgwbs count goes to zero. 1235 * 1236 * 2. When the nr_cgwbs count goes to zero, blkcg_destroy_blkgs() is called 1237 * and handles the destruction of blkgs. Here the css reference held by 1238 * the blkg is put back eventually allowing blkcg_css_free() to be called. 1239 * This work may occur in cgwb_release_workfn() on the cgwb_release 1240 * workqueue. Any submitted ios that fail to get the blkg ref will be 1241 * punted to the root_blkg. 1242 * 1243 * 3. Once the blkcg ref count goes to zero, blkcg_css_free() is called. 1244 * This finally frees the blkcg. 1245 */ 1246 1247 /** 1248 * blkcg_destroy_blkgs - responsible for shooting down blkgs 1249 * @blkcg: blkcg of interest 1250 * 1251 * blkgs should be removed while holding both q and blkcg locks. As blkcg lock 1252 * is nested inside q lock, this function performs reverse double lock dancing. 1253 * Destroying the blkgs releases the reference held on the blkcg's css allowing 1254 * blkcg_css_free to eventually be called. 1255 * 1256 * This is the blkcg counterpart of ioc_release_fn(). 1257 */ 1258 static void blkcg_destroy_blkgs(struct blkcg *blkcg) 1259 { 1260 might_sleep(); 1261 1262 spin_lock_irq(&blkcg->lock); 1263 1264 while (!hlist_empty(&blkcg->blkg_list)) { 1265 struct blkcg_gq *blkg = hlist_entry(blkcg->blkg_list.first, 1266 struct blkcg_gq, blkcg_node); 1267 struct request_queue *q = blkg->q; 1268 1269 if (need_resched() || !spin_trylock(&q->queue_lock)) { 1270 /* 1271 * Given that the system can accumulate a huge number 1272 * of blkgs in pathological cases, check to see if we 1273 * need to rescheduling to avoid softlockup. 1274 */ 1275 spin_unlock_irq(&blkcg->lock); 1276 cond_resched(); 1277 spin_lock_irq(&blkcg->lock); 1278 continue; 1279 } 1280 1281 blkg_destroy(blkg); 1282 spin_unlock(&q->queue_lock); 1283 } 1284 1285 spin_unlock_irq(&blkcg->lock); 1286 } 1287 1288 /** 1289 * blkcg_pin_online - pin online state 1290 * @blkcg_css: blkcg of interest 1291 * 1292 * While pinned, a blkcg is kept online. This is primarily used to 1293 * impedance-match blkg and cgwb lifetimes so that blkg doesn't go offline 1294 * while an associated cgwb is still active. 1295 */ 1296 void blkcg_pin_online(struct cgroup_subsys_state *blkcg_css) 1297 { 1298 refcount_inc(&css_to_blkcg(blkcg_css)->online_pin); 1299 } 1300 1301 /** 1302 * blkcg_unpin_online - unpin online state 1303 * @blkcg_css: blkcg of interest 1304 * 1305 * This is primarily used to impedance-match blkg and cgwb lifetimes so 1306 * that blkg doesn't go offline while an associated cgwb is still active. 1307 * When this count goes to zero, all active cgwbs have finished so the 1308 * blkcg can continue destruction by calling blkcg_destroy_blkgs(). 1309 */ 1310 void blkcg_unpin_online(struct cgroup_subsys_state *blkcg_css) 1311 { 1312 struct blkcg *blkcg = css_to_blkcg(blkcg_css); 1313 1314 do { 1315 struct blkcg *parent; 1316 1317 if (!refcount_dec_and_test(&blkcg->online_pin)) 1318 break; 1319 1320 parent = blkcg_parent(blkcg); 1321 blkcg_destroy_blkgs(blkcg); 1322 blkcg = parent; 1323 } while (blkcg); 1324 } 1325 1326 /** 1327 * blkcg_css_offline - cgroup css_offline callback 1328 * @css: css of interest 1329 * 1330 * This function is called when @css is about to go away. Here the cgwbs are 1331 * offlined first and only once writeback associated with the blkcg has 1332 * finished do we start step 2 (see above). 1333 */ 1334 static void blkcg_css_offline(struct cgroup_subsys_state *css) 1335 { 1336 /* this prevents anyone from attaching or migrating to this blkcg */ 1337 wb_blkcg_offline(css); 1338 1339 /* put the base online pin allowing step 2 to be triggered */ 1340 blkcg_unpin_online(css); 1341 } 1342 1343 static void blkcg_css_free(struct cgroup_subsys_state *css) 1344 { 1345 struct blkcg *blkcg = css_to_blkcg(css); 1346 int i; 1347 1348 mutex_lock(&blkcg_pol_mutex); 1349 1350 list_del(&blkcg->all_blkcgs_node); 1351 1352 for (i = 0; i < BLKCG_MAX_POLS; i++) 1353 if (blkcg->cpd[i]) 1354 blkcg_policy[i]->cpd_free_fn(blkcg->cpd[i]); 1355 1356 mutex_unlock(&blkcg_pol_mutex); 1357 1358 free_percpu(blkcg->lhead); 1359 kfree(blkcg); 1360 } 1361 1362 static struct cgroup_subsys_state * 1363 blkcg_css_alloc(struct cgroup_subsys_state *parent_css) 1364 { 1365 struct blkcg *blkcg; 1366 int i; 1367 1368 mutex_lock(&blkcg_pol_mutex); 1369 1370 if (!parent_css) { 1371 blkcg = &blkcg_root; 1372 } else { 1373 blkcg = kzalloc_obj(*blkcg); 1374 if (!blkcg) 1375 goto unlock; 1376 } 1377 1378 if (init_blkcg_llists(blkcg)) 1379 goto free_blkcg; 1380 1381 for (i = 0; i < BLKCG_MAX_POLS ; i++) { 1382 struct blkcg_policy *pol = blkcg_policy[i]; 1383 struct blkcg_policy_data *cpd; 1384 1385 /* 1386 * If the policy hasn't been attached yet, wait for it 1387 * to be attached before doing anything else. Otherwise, 1388 * check if the policy requires any specific per-cgroup 1389 * data: if it does, allocate and initialize it. 1390 */ 1391 if (!pol || !pol->cpd_alloc_fn) 1392 continue; 1393 1394 cpd = pol->cpd_alloc_fn(GFP_KERNEL); 1395 if (!cpd) 1396 goto free_pd_blkcg; 1397 1398 blkcg->cpd[i] = cpd; 1399 cpd->blkcg = blkcg; 1400 cpd->plid = i; 1401 } 1402 1403 spin_lock_init(&blkcg->lock); 1404 refcount_set(&blkcg->online_pin, 1); 1405 INIT_RADIX_TREE(&blkcg->blkg_tree, GFP_NOWAIT); 1406 INIT_HLIST_HEAD(&blkcg->blkg_list); 1407 #ifdef CONFIG_CGROUP_WRITEBACK 1408 INIT_LIST_HEAD(&blkcg->cgwb_list); 1409 #endif 1410 list_add_tail(&blkcg->all_blkcgs_node, &all_blkcgs); 1411 1412 mutex_unlock(&blkcg_pol_mutex); 1413 return &blkcg->css; 1414 1415 free_pd_blkcg: 1416 for (i--; i >= 0; i--) 1417 if (blkcg->cpd[i]) 1418 blkcg_policy[i]->cpd_free_fn(blkcg->cpd[i]); 1419 free_percpu(blkcg->lhead); 1420 free_blkcg: 1421 if (blkcg != &blkcg_root) 1422 kfree(blkcg); 1423 unlock: 1424 mutex_unlock(&blkcg_pol_mutex); 1425 return ERR_PTR(-ENOMEM); 1426 } 1427 1428 static int blkcg_css_online(struct cgroup_subsys_state *css) 1429 { 1430 struct blkcg *parent = blkcg_parent(css_to_blkcg(css)); 1431 1432 /* 1433 * blkcg_pin_online() is used to delay blkcg offline so that blkgs 1434 * don't go offline while cgwbs are still active on them. Pin the 1435 * parent so that offline always happens towards the root. 1436 */ 1437 if (parent) 1438 blkcg_pin_online(&parent->css); 1439 return 0; 1440 } 1441 1442 void blkg_init_queue(struct request_queue *q) 1443 { 1444 INIT_LIST_HEAD(&q->blkg_list); 1445 mutex_init(&q->blkcg_mutex); 1446 } 1447 1448 int blkcg_init_disk(struct gendisk *disk) 1449 { 1450 struct request_queue *q = disk->queue; 1451 struct blkcg_gq *new_blkg, *blkg; 1452 bool preloaded; 1453 1454 /* 1455 * If the queue is shared across disk rebind (e.g., SCSI), the 1456 * previous disk's blkcg state is cleaned up asynchronously via 1457 * disk_release() -> blkcg_exit_disk(). Wait for that cleanup to 1458 * finish (indicated by root_blkg becoming NULL) before setting up 1459 * new blkcg state. Otherwise, we may overwrite q->root_blkg while 1460 * the old one is still alive, and radix_tree_insert() in 1461 * blkg_create() will fail with -EEXIST because the old entries 1462 * still occupy the same queue id slot in blkcg->blkg_tree. 1463 */ 1464 wait_var_event(&q->root_blkg, !READ_ONCE(q->root_blkg)); 1465 1466 new_blkg = blkg_alloc(&blkcg_root, disk, GFP_KERNEL); 1467 if (!new_blkg) 1468 return -ENOMEM; 1469 1470 preloaded = !radix_tree_preload(GFP_KERNEL); 1471 1472 /* Make sure the root blkg exists. */ 1473 /* spin_lock_irq can serve as RCU read-side critical section. */ 1474 spin_lock_irq(&q->queue_lock); 1475 blkg = blkg_create(&blkcg_root, disk, new_blkg); 1476 if (IS_ERR(blkg)) 1477 goto err_unlock; 1478 q->root_blkg = blkg; 1479 spin_unlock_irq(&q->queue_lock); 1480 1481 if (preloaded) 1482 radix_tree_preload_end(); 1483 1484 return 0; 1485 1486 err_unlock: 1487 spin_unlock_irq(&q->queue_lock); 1488 if (preloaded) 1489 radix_tree_preload_end(); 1490 return PTR_ERR(blkg); 1491 } 1492 1493 void blkcg_exit_disk(struct gendisk *disk) 1494 { 1495 blkg_destroy_all(disk); 1496 blk_throtl_exit(disk); 1497 } 1498 1499 static void blkcg_exit(struct task_struct *tsk) 1500 { 1501 if (tsk->throttle_disk) 1502 put_disk(tsk->throttle_disk); 1503 tsk->throttle_disk = NULL; 1504 } 1505 1506 struct cgroup_subsys io_cgrp_subsys = { 1507 .css_alloc = blkcg_css_alloc, 1508 .css_online = blkcg_css_online, 1509 .css_offline = blkcg_css_offline, 1510 .css_free = blkcg_css_free, 1511 .css_rstat_flush = blkcg_rstat_flush, 1512 .dfl_cftypes = blkcg_files, 1513 .legacy_cftypes = blkcg_legacy_files, 1514 .legacy_name = "blkio", 1515 .exit = blkcg_exit, 1516 #ifdef CONFIG_MEMCG 1517 /* 1518 * This ensures that, if available, memcg is automatically enabled 1519 * together on the default hierarchy so that the owner cgroup can 1520 * be retrieved from writeback pages. 1521 */ 1522 .depends_on = 1 << memory_cgrp_id, 1523 #endif 1524 }; 1525 EXPORT_SYMBOL_GPL(io_cgrp_subsys); 1526 1527 /** 1528 * blkcg_activate_policy - activate a blkcg policy on a gendisk 1529 * @disk: gendisk of interest 1530 * @pol: blkcg policy to activate 1531 * 1532 * Activate @pol on @disk. Requires %GFP_KERNEL context. @disk goes through 1533 * bypass mode to populate its blkgs with policy_data for @pol. 1534 * 1535 * Activation happens with @disk bypassed, so nobody would be accessing blkgs 1536 * from IO path. Update of each blkg is protected by both queue and blkcg 1537 * locks so that holding either lock and testing blkcg_policy_enabled() is 1538 * always enough for dereferencing policy data. 1539 * 1540 * The caller is responsible for synchronizing [de]activations and policy 1541 * [un]registerations. Returns 0 on success, -errno on failure. 1542 */ 1543 int blkcg_activate_policy(struct gendisk *disk, const struct blkcg_policy *pol) 1544 { 1545 struct request_queue *q = disk->queue; 1546 struct blkg_policy_data *pd_prealloc = NULL; 1547 struct blkcg_gq *blkg, *pinned_blkg = NULL; 1548 unsigned int memflags; 1549 int ret; 1550 1551 if (blkcg_policy_enabled(q, pol)) 1552 return 0; 1553 1554 /* 1555 * Policy is allowed to be registered without pd_alloc_fn/pd_free_fn, 1556 * for example, ioprio. Such policy will work on blkcg level, not disk 1557 * level, and don't need to be activated. 1558 */ 1559 if (WARN_ON_ONCE(!pol->pd_alloc_fn || !pol->pd_free_fn)) 1560 return -EINVAL; 1561 1562 if (queue_is_mq(q)) 1563 memflags = blk_mq_freeze_queue(q); 1564 retry: 1565 spin_lock_irq(&q->queue_lock); 1566 1567 /* blkg_list is pushed at the head, reverse walk to initialize parents first */ 1568 list_for_each_entry_reverse(blkg, &q->blkg_list, q_node) { 1569 struct blkg_policy_data *pd; 1570 1571 if (blkg->pd[pol->plid]) 1572 continue; 1573 1574 /* If prealloc matches, use it; otherwise try GFP_NOWAIT */ 1575 if (blkg == pinned_blkg) { 1576 pd = pd_prealloc; 1577 pd_prealloc = NULL; 1578 } else { 1579 pd = pol->pd_alloc_fn(disk, blkg->blkcg, 1580 GFP_NOWAIT); 1581 } 1582 1583 if (!pd) { 1584 /* 1585 * GFP_NOWAIT failed. Free the existing one and 1586 * prealloc for @blkg w/ GFP_KERNEL. 1587 */ 1588 if (pinned_blkg) 1589 blkg_put(pinned_blkg); 1590 blkg_get(blkg); 1591 pinned_blkg = blkg; 1592 1593 spin_unlock_irq(&q->queue_lock); 1594 1595 if (pd_prealloc) 1596 pol->pd_free_fn(pd_prealloc); 1597 pd_prealloc = pol->pd_alloc_fn(disk, blkg->blkcg, 1598 GFP_KERNEL); 1599 if (pd_prealloc) 1600 goto retry; 1601 else 1602 goto enomem; 1603 } 1604 1605 spin_lock(&blkg->blkcg->lock); 1606 1607 pd->blkg = blkg; 1608 pd->plid = pol->plid; 1609 blkg->pd[pol->plid] = pd; 1610 1611 if (pol->pd_init_fn) 1612 pol->pd_init_fn(pd); 1613 1614 if (pol->pd_online_fn) 1615 pol->pd_online_fn(pd); 1616 pd->online = true; 1617 1618 spin_unlock(&blkg->blkcg->lock); 1619 } 1620 1621 __set_bit(pol->plid, q->blkcg_pols); 1622 ret = 0; 1623 1624 spin_unlock_irq(&q->queue_lock); 1625 out: 1626 if (queue_is_mq(q)) 1627 blk_mq_unfreeze_queue(q, memflags); 1628 if (pinned_blkg) 1629 blkg_put(pinned_blkg); 1630 if (pd_prealloc) 1631 pol->pd_free_fn(pd_prealloc); 1632 return ret; 1633 1634 enomem: 1635 /* alloc failed, take down everything */ 1636 spin_lock_irq(&q->queue_lock); 1637 list_for_each_entry(blkg, &q->blkg_list, q_node) { 1638 struct blkcg *blkcg = blkg->blkcg; 1639 struct blkg_policy_data *pd; 1640 1641 spin_lock(&blkcg->lock); 1642 pd = blkg->pd[pol->plid]; 1643 if (pd) { 1644 if (pd->online && pol->pd_offline_fn) 1645 pol->pd_offline_fn(pd); 1646 pd->online = false; 1647 pol->pd_free_fn(pd); 1648 blkg->pd[pol->plid] = NULL; 1649 } 1650 spin_unlock(&blkcg->lock); 1651 } 1652 spin_unlock_irq(&q->queue_lock); 1653 ret = -ENOMEM; 1654 goto out; 1655 } 1656 EXPORT_SYMBOL_GPL(blkcg_activate_policy); 1657 1658 /** 1659 * blkcg_deactivate_policy - deactivate a blkcg policy on a gendisk 1660 * @disk: gendisk of interest 1661 * @pol: blkcg policy to deactivate 1662 * 1663 * Deactivate @pol on @disk. Follows the same synchronization rules as 1664 * blkcg_activate_policy(). 1665 */ 1666 void blkcg_deactivate_policy(struct gendisk *disk, 1667 const struct blkcg_policy *pol) 1668 { 1669 struct request_queue *q = disk->queue; 1670 struct blkcg_gq *blkg; 1671 unsigned int memflags; 1672 1673 if (!blkcg_policy_enabled(q, pol)) 1674 return; 1675 1676 if (queue_is_mq(q)) 1677 memflags = blk_mq_freeze_queue(q); 1678 1679 mutex_lock(&q->blkcg_mutex); 1680 spin_lock_irq(&q->queue_lock); 1681 1682 __clear_bit(pol->plid, q->blkcg_pols); 1683 1684 list_for_each_entry(blkg, &q->blkg_list, q_node) { 1685 struct blkcg *blkcg = blkg->blkcg; 1686 1687 spin_lock(&blkcg->lock); 1688 if (blkg->pd[pol->plid]) { 1689 if (blkg->pd[pol->plid]->online && pol->pd_offline_fn) 1690 pol->pd_offline_fn(blkg->pd[pol->plid]); 1691 pol->pd_free_fn(blkg->pd[pol->plid]); 1692 blkg->pd[pol->plid] = NULL; 1693 } 1694 spin_unlock(&blkcg->lock); 1695 } 1696 1697 spin_unlock_irq(&q->queue_lock); 1698 mutex_unlock(&q->blkcg_mutex); 1699 1700 if (queue_is_mq(q)) 1701 blk_mq_unfreeze_queue(q, memflags); 1702 } 1703 EXPORT_SYMBOL_GPL(blkcg_deactivate_policy); 1704 1705 static void blkcg_free_all_cpd(struct blkcg_policy *pol) 1706 { 1707 struct blkcg *blkcg; 1708 1709 list_for_each_entry(blkcg, &all_blkcgs, all_blkcgs_node) { 1710 if (blkcg->cpd[pol->plid]) { 1711 pol->cpd_free_fn(blkcg->cpd[pol->plid]); 1712 blkcg->cpd[pol->plid] = NULL; 1713 } 1714 } 1715 } 1716 1717 /** 1718 * blkcg_policy_register - register a blkcg policy 1719 * @pol: blkcg policy to register 1720 * 1721 * Register @pol with blkcg core. Might sleep and @pol may be modified on 1722 * successful registration. Returns 0 on success and -errno on failure. 1723 */ 1724 int blkcg_policy_register(struct blkcg_policy *pol) 1725 { 1726 struct blkcg *blkcg; 1727 int i, ret; 1728 1729 /* 1730 * Make sure cpd/pd_alloc_fn and cpd/pd_free_fn in pairs, and policy 1731 * without pd_alloc_fn/pd_free_fn can't be activated. 1732 */ 1733 if ((!pol->cpd_alloc_fn ^ !pol->cpd_free_fn) || 1734 (!pol->pd_alloc_fn ^ !pol->pd_free_fn)) 1735 return -EINVAL; 1736 1737 mutex_lock(&blkcg_pol_register_mutex); 1738 mutex_lock(&blkcg_pol_mutex); 1739 1740 /* find an empty slot */ 1741 for (i = 0; i < BLKCG_MAX_POLS; i++) 1742 if (!blkcg_policy[i]) 1743 break; 1744 if (i >= BLKCG_MAX_POLS) { 1745 pr_warn("blkcg_policy_register: BLKCG_MAX_POLS too small\n"); 1746 ret = -ENOSPC; 1747 goto err_unlock; 1748 } 1749 1750 /* register @pol */ 1751 pol->plid = i; 1752 blkcg_policy[pol->plid] = pol; 1753 1754 /* allocate and install cpd's */ 1755 if (pol->cpd_alloc_fn) { 1756 list_for_each_entry(blkcg, &all_blkcgs, all_blkcgs_node) { 1757 struct blkcg_policy_data *cpd; 1758 1759 cpd = pol->cpd_alloc_fn(GFP_KERNEL); 1760 if (!cpd) { 1761 ret = -ENOMEM; 1762 goto err_free_cpds; 1763 } 1764 1765 blkcg->cpd[pol->plid] = cpd; 1766 cpd->blkcg = blkcg; 1767 cpd->plid = pol->plid; 1768 } 1769 } 1770 1771 mutex_unlock(&blkcg_pol_mutex); 1772 1773 /* everything is in place, add intf files for the new policy */ 1774 if (pol->dfl_cftypes == pol->legacy_cftypes) { 1775 WARN_ON(cgroup_add_cftypes(&io_cgrp_subsys, 1776 pol->dfl_cftypes)); 1777 } else { 1778 WARN_ON(cgroup_add_dfl_cftypes(&io_cgrp_subsys, 1779 pol->dfl_cftypes)); 1780 WARN_ON(cgroup_add_legacy_cftypes(&io_cgrp_subsys, 1781 pol->legacy_cftypes)); 1782 } 1783 mutex_unlock(&blkcg_pol_register_mutex); 1784 return 0; 1785 1786 err_free_cpds: 1787 if (pol->cpd_free_fn) 1788 blkcg_free_all_cpd(pol); 1789 1790 blkcg_policy[pol->plid] = NULL; 1791 err_unlock: 1792 mutex_unlock(&blkcg_pol_mutex); 1793 mutex_unlock(&blkcg_pol_register_mutex); 1794 return ret; 1795 } 1796 EXPORT_SYMBOL_GPL(blkcg_policy_register); 1797 1798 /** 1799 * blkcg_policy_unregister - unregister a blkcg policy 1800 * @pol: blkcg policy to unregister 1801 * 1802 * Undo blkcg_policy_register(@pol). Might sleep. 1803 */ 1804 void blkcg_policy_unregister(struct blkcg_policy *pol) 1805 { 1806 mutex_lock(&blkcg_pol_register_mutex); 1807 1808 if (WARN_ON(blkcg_policy[pol->plid] != pol)) 1809 goto out_unlock; 1810 1811 /* kill the intf files first */ 1812 if (pol->dfl_cftypes) 1813 cgroup_rm_cftypes(pol->dfl_cftypes); 1814 if (pol->legacy_cftypes) 1815 cgroup_rm_cftypes(pol->legacy_cftypes); 1816 1817 /* remove cpds and unregister */ 1818 mutex_lock(&blkcg_pol_mutex); 1819 1820 if (pol->cpd_free_fn) 1821 blkcg_free_all_cpd(pol); 1822 1823 blkcg_policy[pol->plid] = NULL; 1824 1825 mutex_unlock(&blkcg_pol_mutex); 1826 out_unlock: 1827 mutex_unlock(&blkcg_pol_register_mutex); 1828 } 1829 EXPORT_SYMBOL_GPL(blkcg_policy_unregister); 1830 1831 /* 1832 * Scale the accumulated delay based on how long it has been since we updated 1833 * the delay. We only call this when we are adding delay, in case it's been a 1834 * while since we added delay, and when we are checking to see if we need to 1835 * delay a task, to account for any delays that may have occurred. 1836 */ 1837 static void blkcg_scale_delay(struct blkcg_gq *blkg, u64 now) 1838 { 1839 u64 old = atomic64_read(&blkg->delay_start); 1840 1841 /* negative use_delay means no scaling, see blkcg_set_delay() */ 1842 if (atomic_read(&blkg->use_delay) < 0) 1843 return; 1844 1845 /* 1846 * We only want to scale down every second. The idea here is that we 1847 * want to delay people for min(delay_nsec, NSEC_PER_SEC) in a certain 1848 * time window. We only want to throttle tasks for recent delay that 1849 * has occurred, in 1 second time windows since that's the maximum 1850 * things can be throttled. We save the current delay window in 1851 * blkg->last_delay so we know what amount is still left to be charged 1852 * to the blkg from this point onward. blkg->last_use keeps track of 1853 * the use_delay counter. The idea is if we're unthrottling the blkg we 1854 * are ok with whatever is happening now, and we can take away more of 1855 * the accumulated delay as we've already throttled enough that 1856 * everybody is happy with their IO latencies. 1857 */ 1858 if (time_before64(old + NSEC_PER_SEC, now) && 1859 atomic64_try_cmpxchg(&blkg->delay_start, &old, now)) { 1860 u64 cur = atomic64_read(&blkg->delay_nsec); 1861 u64 sub = min_t(u64, blkg->last_delay, now - old); 1862 int cur_use = atomic_read(&blkg->use_delay); 1863 1864 /* 1865 * We've been unthrottled, subtract a larger chunk of our 1866 * accumulated delay. 1867 */ 1868 if (cur_use < blkg->last_use) 1869 sub = max_t(u64, sub, blkg->last_delay >> 1); 1870 1871 /* 1872 * This shouldn't happen, but handle it anyway. Our delay_nsec 1873 * should only ever be growing except here where we subtract out 1874 * min(last_delay, 1 second), but lord knows bugs happen and I'd 1875 * rather not end up with negative numbers. 1876 */ 1877 if (unlikely(cur < sub)) { 1878 atomic64_set(&blkg->delay_nsec, 0); 1879 blkg->last_delay = 0; 1880 } else { 1881 atomic64_sub(sub, &blkg->delay_nsec); 1882 blkg->last_delay = cur - sub; 1883 } 1884 blkg->last_use = cur_use; 1885 } 1886 } 1887 1888 /* 1889 * This is called when we want to actually walk up the hierarchy and check to 1890 * see if we need to throttle, and then actually throttle if there is some 1891 * accumulated delay. This should only be called upon return to user space so 1892 * we're not holding some lock that would induce a priority inversion. 1893 */ 1894 static void blkcg_maybe_throttle_blkg(struct blkcg_gq *blkg, bool use_memdelay) 1895 { 1896 unsigned long pflags; 1897 bool clamp; 1898 u64 now = blk_time_get_ns(); 1899 u64 exp; 1900 u64 delay_nsec = 0; 1901 int tok; 1902 1903 while (blkg->parent) { 1904 int use_delay = atomic_read(&blkg->use_delay); 1905 1906 if (use_delay) { 1907 u64 this_delay; 1908 1909 blkcg_scale_delay(blkg, now); 1910 this_delay = atomic64_read(&blkg->delay_nsec); 1911 if (this_delay > delay_nsec) { 1912 delay_nsec = this_delay; 1913 clamp = use_delay > 0; 1914 } 1915 } 1916 blkg = blkg->parent; 1917 } 1918 1919 if (!delay_nsec) 1920 return; 1921 1922 /* 1923 * Let's not sleep for all eternity if we've amassed a huge delay. 1924 * Swapping or metadata IO can accumulate 10's of seconds worth of 1925 * delay, and we want userspace to be able to do _something_ so cap the 1926 * delays at 0.25s. If there's 10's of seconds worth of delay then the 1927 * tasks will be delayed for 0.25 second for every syscall. If 1928 * blkcg_set_delay() was used as indicated by negative use_delay, the 1929 * caller is responsible for regulating the range. 1930 */ 1931 if (clamp) 1932 delay_nsec = min_t(u64, delay_nsec, 250 * NSEC_PER_MSEC); 1933 1934 if (use_memdelay) 1935 psi_memstall_enter(&pflags); 1936 1937 exp = ktime_add_ns(now, delay_nsec); 1938 tok = io_schedule_prepare(); 1939 do { 1940 __set_current_state(TASK_KILLABLE); 1941 if (!schedule_hrtimeout(&exp, HRTIMER_MODE_ABS)) 1942 break; 1943 } while (!fatal_signal_pending(current)); 1944 io_schedule_finish(tok); 1945 1946 if (use_memdelay) 1947 psi_memstall_leave(&pflags); 1948 } 1949 1950 /** 1951 * blkcg_maybe_throttle_current - throttle the current task if it has been marked 1952 * 1953 * This is only called if we've been marked with set_notify_resume(). Obviously 1954 * we can be set_notify_resume() for reasons other than blkcg throttling, so we 1955 * check to see if current->throttle_disk is set and if not this doesn't do 1956 * anything. This should only ever be called by the resume code, it's not meant 1957 * to be called by people willy-nilly as it will actually do the work to 1958 * throttle the task if it is setup for throttling. 1959 */ 1960 void blkcg_maybe_throttle_current(void) 1961 { 1962 struct gendisk *disk = current->throttle_disk; 1963 struct blkcg *blkcg; 1964 struct blkcg_gq *blkg; 1965 bool use_memdelay = current->use_memdelay; 1966 1967 if (!disk) 1968 return; 1969 1970 current->throttle_disk = NULL; 1971 current->use_memdelay = false; 1972 1973 rcu_read_lock(); 1974 blkcg = css_to_blkcg(blkcg_css()); 1975 if (!blkcg) 1976 goto out; 1977 blkg = blkg_lookup(blkcg, disk->queue); 1978 if (!blkg) 1979 goto out; 1980 if (!blkg_tryget(blkg)) 1981 goto out; 1982 rcu_read_unlock(); 1983 1984 blkcg_maybe_throttle_blkg(blkg, use_memdelay); 1985 blkg_put(blkg); 1986 put_disk(disk); 1987 return; 1988 out: 1989 rcu_read_unlock(); 1990 put_disk(disk); 1991 } 1992 1993 /** 1994 * blkcg_schedule_throttle - this task needs to check for throttling 1995 * @disk: disk to throttle 1996 * @use_memdelay: do we charge this to memory delay for PSI 1997 * 1998 * This is called by the IO controller when we know there's delay accumulated 1999 * for the blkg for this task. We do not pass the blkg because there are places 2000 * we call this that may not have that information, the swapping code for 2001 * instance will only have a block_device at that point. This set's the 2002 * notify_resume for the task to check and see if it requires throttling before 2003 * returning to user space. 2004 * 2005 * We will only schedule once per syscall. You can call this over and over 2006 * again and it will only do the check once upon return to user space, and only 2007 * throttle once. If the task needs to be throttled again it'll need to be 2008 * re-set at the next time we see the task. 2009 */ 2010 void blkcg_schedule_throttle(struct gendisk *disk, bool use_memdelay) 2011 { 2012 if (unlikely(current->flags & PF_KTHREAD)) 2013 return; 2014 2015 if (current->throttle_disk != disk) { 2016 if (test_bit(GD_DEAD, &disk->state)) 2017 return; 2018 get_device(disk_to_dev(disk)); 2019 2020 if (current->throttle_disk) 2021 put_disk(current->throttle_disk); 2022 current->throttle_disk = disk; 2023 } 2024 2025 if (use_memdelay) 2026 current->use_memdelay = use_memdelay; 2027 set_notify_resume(current); 2028 } 2029 2030 /** 2031 * blkcg_add_delay - add delay to this blkg 2032 * @blkg: blkg of interest 2033 * @now: the current time in nanoseconds 2034 * @delta: how many nanoseconds of delay to add 2035 * 2036 * Charge @delta to the blkg's current delay accumulation. This is used to 2037 * throttle tasks if an IO controller thinks we need more throttling. 2038 */ 2039 void blkcg_add_delay(struct blkcg_gq *blkg, u64 now, u64 delta) 2040 { 2041 if (WARN_ON_ONCE(atomic_read(&blkg->use_delay) < 0)) 2042 return; 2043 blkcg_scale_delay(blkg, now); 2044 atomic64_add(delta, &blkg->delay_nsec); 2045 } 2046 2047 /** 2048 * blkg_tryget_closest - try and get a blkg ref on the closet blkg 2049 * @bio: target bio 2050 * @css: target css 2051 * 2052 * As the failure mode here is to walk up the blkg tree, this ensure that the 2053 * blkg->parent pointers are always valid. This returns the blkg that it ended 2054 * up taking a reference on or %NULL if no reference was taken. 2055 */ 2056 static inline struct blkcg_gq *blkg_tryget_closest(struct bio *bio, 2057 struct cgroup_subsys_state *css) 2058 { 2059 struct blkcg_gq *blkg, *ret_blkg = NULL; 2060 2061 rcu_read_lock(); 2062 blkg = blkg_lookup_create(css_to_blkcg(css), bio->bi_bdev->bd_disk); 2063 while (blkg) { 2064 if (blkg_tryget(blkg)) { 2065 ret_blkg = blkg; 2066 break; 2067 } 2068 blkg = blkg->parent; 2069 } 2070 rcu_read_unlock(); 2071 2072 return ret_blkg; 2073 } 2074 2075 /** 2076 * bio_associate_blkg_from_css - associate a bio with a specified css 2077 * @bio: target bio 2078 * @css: target css 2079 * 2080 * Associate @bio with the blkg found by combining the css's blkg and the 2081 * request_queue of the @bio. An association failure is handled by walking up 2082 * the blkg tree. Therefore, the blkg associated can be anything between @blkg 2083 * and q->root_blkg. This situation only happens when a cgroup is dying and 2084 * then the remaining bios will spill to the closest alive blkg. 2085 * 2086 * A reference will be taken on the blkg and will be released when @bio is 2087 * freed. 2088 */ 2089 void bio_associate_blkg_from_css(struct bio *bio, 2090 struct cgroup_subsys_state *css) 2091 { 2092 if (bio->bi_blkg) 2093 blkg_put(bio->bi_blkg); 2094 2095 if (css && css->parent) { 2096 bio->bi_blkg = blkg_tryget_closest(bio, css); 2097 } else { 2098 blkg_get(bdev_get_queue(bio->bi_bdev)->root_blkg); 2099 bio->bi_blkg = bdev_get_queue(bio->bi_bdev)->root_blkg; 2100 } 2101 } 2102 EXPORT_SYMBOL_GPL(bio_associate_blkg_from_css); 2103 2104 /** 2105 * bio_associate_blkg - associate a bio with a blkg 2106 * @bio: target bio 2107 * 2108 * Associate @bio with the blkg found from the bio's css and request_queue. 2109 * If one is not found, bio_lookup_blkg() creates the blkg. If a blkg is 2110 * already associated, the css is reused and association redone as the 2111 * request_queue may have changed. 2112 */ 2113 void bio_associate_blkg(struct bio *bio) 2114 { 2115 struct cgroup_subsys_state *css; 2116 2117 if (blk_op_is_passthrough(bio->bi_opf)) 2118 return; 2119 2120 rcu_read_lock(); 2121 2122 if (bio->bi_blkg) 2123 css = bio_blkcg_css(bio); 2124 else 2125 css = blkcg_css(); 2126 2127 bio_associate_blkg_from_css(bio, css); 2128 2129 rcu_read_unlock(); 2130 } 2131 EXPORT_SYMBOL_GPL(bio_associate_blkg); 2132 2133 /** 2134 * bio_clone_blkg_association - clone blkg association from src to dst bio 2135 * @dst: destination bio 2136 * @src: source bio 2137 */ 2138 void bio_clone_blkg_association(struct bio *dst, struct bio *src) 2139 { 2140 if (src->bi_blkg) 2141 bio_associate_blkg_from_css(dst, bio_blkcg_css(src)); 2142 } 2143 EXPORT_SYMBOL_GPL(bio_clone_blkg_association); 2144 2145 static int blk_cgroup_io_type(struct bio *bio) 2146 { 2147 if (op_is_discard(bio->bi_opf)) 2148 return BLKG_IOSTAT_DISCARD; 2149 if (op_is_write(bio->bi_opf)) 2150 return BLKG_IOSTAT_WRITE; 2151 return BLKG_IOSTAT_READ; 2152 } 2153 2154 void blk_cgroup_bio_start(struct bio *bio) 2155 { 2156 struct blkcg *blkcg = bio->bi_blkg->blkcg; 2157 int rwd = blk_cgroup_io_type(bio), cpu; 2158 struct blkg_iostat_set *bis; 2159 unsigned long flags; 2160 2161 if (!cgroup_subsys_on_dfl(io_cgrp_subsys)) 2162 return; 2163 2164 /* Root-level stats are sourced from system-wide IO stats */ 2165 if (!cgroup_parent(blkcg->css.cgroup)) 2166 return; 2167 2168 cpu = get_cpu(); 2169 bis = per_cpu_ptr(bio->bi_blkg->iostat_cpu, cpu); 2170 flags = u64_stats_update_begin_irqsave(&bis->sync); 2171 2172 /* 2173 * If the bio is flagged with BIO_CGROUP_ACCT it means this is a split 2174 * bio and we would have already accounted for the size of the bio. 2175 */ 2176 if (!bio_flagged(bio, BIO_CGROUP_ACCT)) { 2177 bio_set_flag(bio, BIO_CGROUP_ACCT); 2178 bis->cur.bytes[rwd] += bio->bi_iter.bi_size; 2179 } 2180 bis->cur.ios[rwd]++; 2181 2182 /* 2183 * If the iostat_cpu isn't in a lockless list, put it into the 2184 * list to indicate that a stat update is pending. 2185 */ 2186 if (!READ_ONCE(bis->lqueued)) { 2187 struct llist_head *lhead = this_cpu_ptr(blkcg->lhead); 2188 2189 llist_add(&bis->lnode, lhead); 2190 WRITE_ONCE(bis->lqueued, true); 2191 } 2192 2193 u64_stats_update_end_irqrestore(&bis->sync, flags); 2194 __css_rstat_updated(&blkcg->css, cpu); 2195 put_cpu(); 2196 } 2197 2198 bool blk_cgroup_congested(void) 2199 { 2200 struct blkcg *blkcg; 2201 bool ret = false; 2202 2203 rcu_read_lock(); 2204 for (blkcg = css_to_blkcg(blkcg_css()); blkcg; 2205 blkcg = blkcg_parent(blkcg)) { 2206 if (atomic_read(&blkcg->congestion_count)) { 2207 ret = true; 2208 break; 2209 } 2210 } 2211 rcu_read_unlock(); 2212 return ret; 2213 } 2214 2215 module_param(blkcg_debug_stats, bool, 0644); 2216 MODULE_PARM_DESC(blkcg_debug_stats, "True if you want debug stats, false if not"); 2217