1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * MQ Deadline i/o scheduler - adaptation of the legacy deadline scheduler, 4 * for the blk-mq scheduling framework 5 * 6 * Copyright (C) 2016 Jens Axboe <axboe@kernel.dk> 7 */ 8 #include <linux/kernel.h> 9 #include <linux/fs.h> 10 #include <linux/blkdev.h> 11 #include <linux/bio.h> 12 #include <linux/module.h> 13 #include <linux/slab.h> 14 #include <linux/init.h> 15 #include <linux/compiler.h> 16 #include <linux/rbtree.h> 17 #include <linux/sbitmap.h> 18 19 #include <trace/events/block.h> 20 21 #include "elevator.h" 22 #include "blk.h" 23 #include "blk-mq.h" 24 #include "blk-mq-debugfs.h" 25 #include "blk-mq-sched.h" 26 27 /* 28 * See Documentation/block/deadline-iosched.rst 29 */ 30 static const int read_expire = HZ / 2; /* max time before a read is submitted. */ 31 static const int write_expire = 5 * HZ; /* ditto for writes, these limits are SOFT! */ 32 /* 33 * Time after which to dispatch lower priority requests even if higher 34 * priority requests are pending. 35 */ 36 static const int prio_aging_expire = 10 * HZ; 37 static const int writes_starved = 2; /* max times reads can starve a write */ 38 static const int fifo_batch = 16; /* # of sequential requests treated as one 39 by the above parameters. For throughput. */ 40 41 enum dd_data_dir { 42 DD_READ = READ, 43 DD_WRITE = WRITE, 44 }; 45 46 enum { DD_DIR_COUNT = 2 }; 47 48 enum dd_prio { 49 DD_RT_PRIO = 0, 50 DD_BE_PRIO = 1, 51 DD_IDLE_PRIO = 2, 52 DD_PRIO_MAX = 2, 53 }; 54 55 enum { DD_PRIO_COUNT = 3 }; 56 57 /* 58 * I/O statistics per I/O priority. It is fine if these counters overflow. 59 * What matters is that these counters are at least as wide as 60 * log2(max_outstanding_requests). 61 */ 62 struct io_stats_per_prio { 63 uint32_t inserted; 64 uint32_t merged; 65 uint32_t dispatched; 66 atomic_t completed; 67 }; 68 69 /* 70 * Deadline scheduler data per I/O priority (enum dd_prio). Requests are 71 * present on both sort_list[] and fifo_list[]. 72 */ 73 struct dd_per_prio { 74 struct list_head dispatch; 75 struct rb_root sort_list[DD_DIR_COUNT]; 76 struct list_head fifo_list[DD_DIR_COUNT]; 77 /* Position of the most recently dispatched request. */ 78 sector_t latest_pos[DD_DIR_COUNT]; 79 struct io_stats_per_prio stats; 80 }; 81 82 struct deadline_data { 83 /* 84 * run time data 85 */ 86 87 struct dd_per_prio per_prio[DD_PRIO_COUNT]; 88 89 /* Data direction of latest dispatched request. */ 90 enum dd_data_dir last_dir; 91 unsigned int batching; /* number of sequential requests made */ 92 unsigned int starved; /* times reads have starved writes */ 93 94 /* 95 * settings that change how the i/o scheduler behaves 96 */ 97 int fifo_expire[DD_DIR_COUNT]; 98 int fifo_batch; 99 int writes_starved; 100 int front_merges; 101 u32 async_depth; 102 int prio_aging_expire; 103 104 spinlock_t lock; 105 }; 106 107 /* Maps an I/O priority class to a deadline scheduler priority. */ 108 static const enum dd_prio ioprio_class_to_prio[] = { 109 [IOPRIO_CLASS_NONE] = DD_BE_PRIO, 110 [IOPRIO_CLASS_RT] = DD_RT_PRIO, 111 [IOPRIO_CLASS_BE] = DD_BE_PRIO, 112 [IOPRIO_CLASS_IDLE] = DD_IDLE_PRIO, 113 }; 114 115 static inline struct rb_root * 116 deadline_rb_root(struct dd_per_prio *per_prio, struct request *rq) 117 { 118 return &per_prio->sort_list[rq_data_dir(rq)]; 119 } 120 121 /* 122 * Returns the I/O priority class (IOPRIO_CLASS_*) that has been assigned to a 123 * request. 124 */ 125 static u8 dd_rq_ioclass(struct request *rq) 126 { 127 return IOPRIO_PRIO_CLASS(req_get_ioprio(rq)); 128 } 129 130 /* 131 * Return the first request for which blk_rq_pos() >= @pos. 132 */ 133 static inline struct request *deadline_from_pos(struct dd_per_prio *per_prio, 134 enum dd_data_dir data_dir, sector_t pos) 135 { 136 struct rb_node *node = per_prio->sort_list[data_dir].rb_node; 137 struct request *rq, *res = NULL; 138 139 if (!node) 140 return NULL; 141 142 rq = rb_entry_rq(node); 143 while (node) { 144 rq = rb_entry_rq(node); 145 if (blk_rq_pos(rq) >= pos) { 146 res = rq; 147 node = node->rb_left; 148 } else { 149 node = node->rb_right; 150 } 151 } 152 return res; 153 } 154 155 static void 156 deadline_add_rq_rb(struct dd_per_prio *per_prio, struct request *rq) 157 { 158 struct rb_root *root = deadline_rb_root(per_prio, rq); 159 160 elv_rb_add(root, rq); 161 } 162 163 static inline void 164 deadline_del_rq_rb(struct dd_per_prio *per_prio, struct request *rq) 165 { 166 elv_rb_del(deadline_rb_root(per_prio, rq), rq); 167 } 168 169 /* 170 * remove rq from rbtree and fifo. 171 */ 172 static void deadline_remove_request(struct request_queue *q, 173 struct dd_per_prio *per_prio, 174 struct request *rq) 175 { 176 list_del_init(&rq->queuelist); 177 178 /* 179 * We might not be on the rbtree, if we are doing an insert merge 180 */ 181 if (!RB_EMPTY_NODE(&rq->rb_node)) 182 deadline_del_rq_rb(per_prio, rq); 183 184 elv_rqhash_del(q, rq); 185 if (q->last_merge == rq) 186 q->last_merge = NULL; 187 } 188 189 static void dd_request_merged(struct request_queue *q, struct request *req, 190 enum elv_merge type) 191 { 192 struct deadline_data *dd = q->elevator->elevator_data; 193 const u8 ioprio_class = dd_rq_ioclass(req); 194 const enum dd_prio prio = ioprio_class_to_prio[ioprio_class]; 195 struct dd_per_prio *per_prio = &dd->per_prio[prio]; 196 197 /* 198 * if the merge was a front merge, we need to reposition request 199 */ 200 if (type == ELEVATOR_FRONT_MERGE) { 201 elv_rb_del(deadline_rb_root(per_prio, req), req); 202 deadline_add_rq_rb(per_prio, req); 203 } 204 } 205 206 /* 207 * Callback function that is invoked after @next has been merged into @req. 208 */ 209 static void dd_merged_requests(struct request_queue *q, struct request *req, 210 struct request *next) 211 { 212 struct deadline_data *dd = q->elevator->elevator_data; 213 const u8 ioprio_class = dd_rq_ioclass(next); 214 const enum dd_prio prio = ioprio_class_to_prio[ioprio_class]; 215 216 lockdep_assert_held(&dd->lock); 217 218 dd->per_prio[prio].stats.merged++; 219 220 /* 221 * if next expires before rq, assign its expire time to rq 222 * and move into next position (next will be deleted) in fifo 223 */ 224 if (!list_empty(&req->queuelist) && !list_empty(&next->queuelist)) { 225 if (time_before((unsigned long)next->fifo_time, 226 (unsigned long)req->fifo_time)) { 227 list_move(&req->queuelist, &next->queuelist); 228 req->fifo_time = next->fifo_time; 229 } 230 } 231 232 /* 233 * kill knowledge of next, this one is a goner 234 */ 235 deadline_remove_request(q, &dd->per_prio[prio], next); 236 } 237 238 /* 239 * move an entry to dispatch queue 240 */ 241 static void 242 deadline_move_request(struct deadline_data *dd, struct dd_per_prio *per_prio, 243 struct request *rq) 244 { 245 /* 246 * take it off the sort and fifo list 247 */ 248 deadline_remove_request(rq->q, per_prio, rq); 249 } 250 251 /* Number of requests queued for a given priority level. */ 252 static u32 dd_queued(struct deadline_data *dd, enum dd_prio prio) 253 { 254 const struct io_stats_per_prio *stats = &dd->per_prio[prio].stats; 255 256 lockdep_assert_held(&dd->lock); 257 258 return stats->inserted - atomic_read(&stats->completed); 259 } 260 261 /* 262 * deadline_check_fifo returns true if and only if there are expired requests 263 * in the FIFO list. Requires !list_empty(&dd->fifo_list[data_dir]). 264 */ 265 static inline bool deadline_check_fifo(struct dd_per_prio *per_prio, 266 enum dd_data_dir data_dir) 267 { 268 struct request *rq = rq_entry_fifo(per_prio->fifo_list[data_dir].next); 269 270 return time_is_before_eq_jiffies((unsigned long)rq->fifo_time); 271 } 272 273 /* 274 * For the specified data direction, return the next request to 275 * dispatch using arrival ordered lists. 276 */ 277 static struct request * 278 deadline_fifo_request(struct deadline_data *dd, struct dd_per_prio *per_prio, 279 enum dd_data_dir data_dir) 280 { 281 if (list_empty(&per_prio->fifo_list[data_dir])) 282 return NULL; 283 284 return rq_entry_fifo(per_prio->fifo_list[data_dir].next); 285 } 286 287 /* 288 * For the specified data direction, return the next request to 289 * dispatch using sector position sorted lists. 290 */ 291 static struct request * 292 deadline_next_request(struct deadline_data *dd, struct dd_per_prio *per_prio, 293 enum dd_data_dir data_dir) 294 { 295 return deadline_from_pos(per_prio, data_dir, 296 per_prio->latest_pos[data_dir]); 297 } 298 299 /* 300 * Returns true if and only if @rq started after @latest_start where 301 * @latest_start is in jiffies. 302 */ 303 static bool started_after(struct deadline_data *dd, struct request *rq, 304 unsigned long latest_start) 305 { 306 unsigned long start_time = (unsigned long)rq->fifo_time; 307 308 start_time -= dd->fifo_expire[rq_data_dir(rq)]; 309 310 return time_after(start_time, latest_start); 311 } 312 313 /* 314 * deadline_dispatch_requests selects the best request according to 315 * read/write expire, fifo_batch, etc and with a start time <= @latest_start. 316 */ 317 static struct request *__dd_dispatch_request(struct deadline_data *dd, 318 struct dd_per_prio *per_prio, 319 unsigned long latest_start) 320 { 321 struct request *rq, *next_rq; 322 enum dd_data_dir data_dir; 323 enum dd_prio prio; 324 u8 ioprio_class; 325 326 lockdep_assert_held(&dd->lock); 327 328 if (!list_empty(&per_prio->dispatch)) { 329 rq = list_first_entry(&per_prio->dispatch, struct request, 330 queuelist); 331 if (started_after(dd, rq, latest_start)) 332 return NULL; 333 list_del_init(&rq->queuelist); 334 data_dir = rq_data_dir(rq); 335 goto done; 336 } 337 338 /* 339 * batches are currently reads XOR writes 340 */ 341 rq = deadline_next_request(dd, per_prio, dd->last_dir); 342 if (rq && dd->batching < dd->fifo_batch) { 343 /* we have a next request and are still entitled to batch */ 344 data_dir = rq_data_dir(rq); 345 goto dispatch_request; 346 } 347 348 /* 349 * at this point we are not running a batch. select the appropriate 350 * data direction (read / write) 351 */ 352 353 if (!list_empty(&per_prio->fifo_list[DD_READ])) { 354 BUG_ON(RB_EMPTY_ROOT(&per_prio->sort_list[DD_READ])); 355 356 if (deadline_fifo_request(dd, per_prio, DD_WRITE) && 357 (dd->starved++ >= dd->writes_starved)) 358 goto dispatch_writes; 359 360 data_dir = DD_READ; 361 362 goto dispatch_find_request; 363 } 364 365 /* 366 * there are either no reads or writes have been starved 367 */ 368 369 if (!list_empty(&per_prio->fifo_list[DD_WRITE])) { 370 dispatch_writes: 371 BUG_ON(RB_EMPTY_ROOT(&per_prio->sort_list[DD_WRITE])); 372 373 dd->starved = 0; 374 375 data_dir = DD_WRITE; 376 377 goto dispatch_find_request; 378 } 379 380 return NULL; 381 382 dispatch_find_request: 383 /* 384 * we are not running a batch, find best request for selected data_dir 385 */ 386 next_rq = deadline_next_request(dd, per_prio, data_dir); 387 if (deadline_check_fifo(per_prio, data_dir) || !next_rq) { 388 /* 389 * A deadline has expired, the last request was in the other 390 * direction, or we have run out of higher-sectored requests. 391 * Start again from the request with the earliest expiry time. 392 */ 393 rq = deadline_fifo_request(dd, per_prio, data_dir); 394 } else { 395 /* 396 * The last req was the same dir and we have a next request in 397 * sort order. No expired requests so continue on from here. 398 */ 399 rq = next_rq; 400 } 401 402 if (!rq) 403 return NULL; 404 405 dd->last_dir = data_dir; 406 dd->batching = 0; 407 408 dispatch_request: 409 if (started_after(dd, rq, latest_start)) 410 return NULL; 411 412 /* 413 * rq is the selected appropriate request. 414 */ 415 dd->batching++; 416 deadline_move_request(dd, per_prio, rq); 417 done: 418 ioprio_class = dd_rq_ioclass(rq); 419 prio = ioprio_class_to_prio[ioprio_class]; 420 dd->per_prio[prio].latest_pos[data_dir] = blk_rq_pos(rq); 421 dd->per_prio[prio].stats.dispatched++; 422 rq->rq_flags |= RQF_STARTED; 423 return rq; 424 } 425 426 /* 427 * Check whether there are any requests with priority other than DD_RT_PRIO 428 * that were inserted more than prio_aging_expire jiffies ago. 429 */ 430 static struct request *dd_dispatch_prio_aged_requests(struct deadline_data *dd, 431 unsigned long now) 432 { 433 struct request *rq; 434 enum dd_prio prio; 435 int prio_cnt; 436 437 lockdep_assert_held(&dd->lock); 438 439 prio_cnt = !!dd_queued(dd, DD_RT_PRIO) + !!dd_queued(dd, DD_BE_PRIO) + 440 !!dd_queued(dd, DD_IDLE_PRIO); 441 if (prio_cnt < 2) 442 return NULL; 443 444 for (prio = DD_BE_PRIO; prio <= DD_PRIO_MAX; prio++) { 445 rq = __dd_dispatch_request(dd, &dd->per_prio[prio], 446 now - dd->prio_aging_expire); 447 if (rq) 448 return rq; 449 } 450 451 return NULL; 452 } 453 454 /* 455 * Called from blk_mq_run_hw_queue() -> __blk_mq_sched_dispatch_requests(). 456 * 457 * One confusing aspect here is that we get called for a specific 458 * hardware queue, but we may return a request that is for a 459 * different hardware queue. This is because mq-deadline has shared 460 * state for all hardware queues, in terms of sorting, FIFOs, etc. 461 */ 462 static struct request *dd_dispatch_request(struct blk_mq_hw_ctx *hctx) 463 { 464 struct deadline_data *dd = hctx->queue->elevator->elevator_data; 465 const unsigned long now = jiffies; 466 struct request *rq; 467 enum dd_prio prio; 468 469 spin_lock(&dd->lock); 470 rq = dd_dispatch_prio_aged_requests(dd, now); 471 if (rq) 472 goto unlock; 473 474 /* 475 * Next, dispatch requests in priority order. Ignore lower priority 476 * requests if any higher priority requests are pending. 477 */ 478 for (prio = 0; prio <= DD_PRIO_MAX; prio++) { 479 rq = __dd_dispatch_request(dd, &dd->per_prio[prio], now); 480 if (rq || dd_queued(dd, prio)) 481 break; 482 } 483 484 unlock: 485 spin_unlock(&dd->lock); 486 487 return rq; 488 } 489 490 /* 491 * Called by __blk_mq_alloc_request(). The shallow_depth value set by this 492 * function is used by __blk_mq_get_tag(). 493 */ 494 static void dd_limit_depth(blk_opf_t opf, struct blk_mq_alloc_data *data) 495 { 496 struct deadline_data *dd = data->q->elevator->elevator_data; 497 498 /* Do not throttle synchronous reads. */ 499 if (op_is_sync(opf) && !op_is_write(opf)) 500 return; 501 502 /* 503 * Throttle asynchronous requests and writes such that these requests 504 * do not block the allocation of synchronous requests. 505 */ 506 data->shallow_depth = dd->async_depth; 507 } 508 509 /* Called by blk_mq_update_nr_requests(). */ 510 static void dd_depth_updated(struct blk_mq_hw_ctx *hctx) 511 { 512 struct request_queue *q = hctx->queue; 513 struct deadline_data *dd = q->elevator->elevator_data; 514 struct blk_mq_tags *tags = hctx->sched_tags; 515 516 dd->async_depth = q->nr_requests; 517 518 sbitmap_queue_min_shallow_depth(&tags->bitmap_tags, 1); 519 } 520 521 /* Called by blk_mq_init_hctx() and blk_mq_init_sched(). */ 522 static int dd_init_hctx(struct blk_mq_hw_ctx *hctx, unsigned int hctx_idx) 523 { 524 dd_depth_updated(hctx); 525 return 0; 526 } 527 528 static void dd_exit_sched(struct elevator_queue *e) 529 { 530 struct deadline_data *dd = e->elevator_data; 531 enum dd_prio prio; 532 533 for (prio = 0; prio <= DD_PRIO_MAX; prio++) { 534 struct dd_per_prio *per_prio = &dd->per_prio[prio]; 535 const struct io_stats_per_prio *stats = &per_prio->stats; 536 uint32_t queued; 537 538 WARN_ON_ONCE(!list_empty(&per_prio->fifo_list[DD_READ])); 539 WARN_ON_ONCE(!list_empty(&per_prio->fifo_list[DD_WRITE])); 540 541 spin_lock(&dd->lock); 542 queued = dd_queued(dd, prio); 543 spin_unlock(&dd->lock); 544 545 WARN_ONCE(queued != 0, 546 "statistics for priority %d: i %u m %u d %u c %u\n", 547 prio, stats->inserted, stats->merged, 548 stats->dispatched, atomic_read(&stats->completed)); 549 } 550 551 kfree(dd); 552 } 553 554 /* 555 * initialize elevator private data (deadline_data). 556 */ 557 static int dd_init_sched(struct request_queue *q, struct elevator_queue *eq) 558 { 559 struct deadline_data *dd; 560 enum dd_prio prio; 561 562 dd = kzalloc_node(sizeof(*dd), GFP_KERNEL, q->node); 563 if (!dd) 564 return -ENOMEM; 565 566 eq->elevator_data = dd; 567 568 for (prio = 0; prio <= DD_PRIO_MAX; prio++) { 569 struct dd_per_prio *per_prio = &dd->per_prio[prio]; 570 571 INIT_LIST_HEAD(&per_prio->dispatch); 572 INIT_LIST_HEAD(&per_prio->fifo_list[DD_READ]); 573 INIT_LIST_HEAD(&per_prio->fifo_list[DD_WRITE]); 574 per_prio->sort_list[DD_READ] = RB_ROOT; 575 per_prio->sort_list[DD_WRITE] = RB_ROOT; 576 } 577 dd->fifo_expire[DD_READ] = read_expire; 578 dd->fifo_expire[DD_WRITE] = write_expire; 579 dd->writes_starved = writes_starved; 580 dd->front_merges = 1; 581 dd->last_dir = DD_WRITE; 582 dd->fifo_batch = fifo_batch; 583 dd->prio_aging_expire = prio_aging_expire; 584 spin_lock_init(&dd->lock); 585 586 /* We dispatch from request queue wide instead of hw queue */ 587 blk_queue_flag_set(QUEUE_FLAG_SQ_SCHED, q); 588 589 q->elevator = eq; 590 return 0; 591 } 592 593 /* 594 * Try to merge @bio into an existing request. If @bio has been merged into 595 * an existing request, store the pointer to that request into *@rq. 596 */ 597 static int dd_request_merge(struct request_queue *q, struct request **rq, 598 struct bio *bio) 599 { 600 struct deadline_data *dd = q->elevator->elevator_data; 601 const u8 ioprio_class = IOPRIO_PRIO_CLASS(bio->bi_ioprio); 602 const enum dd_prio prio = ioprio_class_to_prio[ioprio_class]; 603 struct dd_per_prio *per_prio = &dd->per_prio[prio]; 604 sector_t sector = bio_end_sector(bio); 605 struct request *__rq; 606 607 if (!dd->front_merges) 608 return ELEVATOR_NO_MERGE; 609 610 __rq = elv_rb_find(&per_prio->sort_list[bio_data_dir(bio)], sector); 611 if (__rq) { 612 BUG_ON(sector != blk_rq_pos(__rq)); 613 614 if (elv_bio_merge_ok(__rq, bio)) { 615 *rq = __rq; 616 if (blk_discard_mergable(__rq)) 617 return ELEVATOR_DISCARD_MERGE; 618 return ELEVATOR_FRONT_MERGE; 619 } 620 } 621 622 return ELEVATOR_NO_MERGE; 623 } 624 625 /* 626 * Attempt to merge a bio into an existing request. This function is called 627 * before @bio is associated with a request. 628 */ 629 static bool dd_bio_merge(struct request_queue *q, struct bio *bio, 630 unsigned int nr_segs) 631 { 632 struct deadline_data *dd = q->elevator->elevator_data; 633 struct request *free = NULL; 634 bool ret; 635 636 spin_lock(&dd->lock); 637 ret = blk_mq_sched_try_merge(q, bio, nr_segs, &free); 638 spin_unlock(&dd->lock); 639 640 if (free) 641 blk_mq_free_request(free); 642 643 return ret; 644 } 645 646 /* 647 * add rq to rbtree and fifo 648 */ 649 static void dd_insert_request(struct blk_mq_hw_ctx *hctx, struct request *rq, 650 blk_insert_t flags, struct list_head *free) 651 { 652 struct request_queue *q = hctx->queue; 653 struct deadline_data *dd = q->elevator->elevator_data; 654 const enum dd_data_dir data_dir = rq_data_dir(rq); 655 u16 ioprio = req_get_ioprio(rq); 656 u8 ioprio_class = IOPRIO_PRIO_CLASS(ioprio); 657 struct dd_per_prio *per_prio; 658 enum dd_prio prio; 659 660 lockdep_assert_held(&dd->lock); 661 662 prio = ioprio_class_to_prio[ioprio_class]; 663 per_prio = &dd->per_prio[prio]; 664 if (!rq->elv.priv[0]) 665 per_prio->stats.inserted++; 666 rq->elv.priv[0] = per_prio; 667 668 if (blk_mq_sched_try_insert_merge(q, rq, free)) 669 return; 670 671 trace_block_rq_insert(rq); 672 673 if (flags & BLK_MQ_INSERT_AT_HEAD) { 674 list_add(&rq->queuelist, &per_prio->dispatch); 675 rq->fifo_time = jiffies; 676 } else { 677 deadline_add_rq_rb(per_prio, rq); 678 679 if (rq_mergeable(rq)) { 680 elv_rqhash_add(q, rq); 681 if (!q->last_merge) 682 q->last_merge = rq; 683 } 684 685 /* 686 * set expire time and add to fifo list 687 */ 688 rq->fifo_time = jiffies + dd->fifo_expire[data_dir]; 689 list_add_tail(&rq->queuelist, &per_prio->fifo_list[data_dir]); 690 } 691 } 692 693 /* 694 * Called from blk_mq_insert_request() or blk_mq_dispatch_list(). 695 */ 696 static void dd_insert_requests(struct blk_mq_hw_ctx *hctx, 697 struct list_head *list, 698 blk_insert_t flags) 699 { 700 struct request_queue *q = hctx->queue; 701 struct deadline_data *dd = q->elevator->elevator_data; 702 LIST_HEAD(free); 703 704 spin_lock(&dd->lock); 705 while (!list_empty(list)) { 706 struct request *rq; 707 708 rq = list_first_entry(list, struct request, queuelist); 709 list_del_init(&rq->queuelist); 710 dd_insert_request(hctx, rq, flags, &free); 711 } 712 spin_unlock(&dd->lock); 713 714 blk_mq_free_requests(&free); 715 } 716 717 /* Callback from inside blk_mq_rq_ctx_init(). */ 718 static void dd_prepare_request(struct request *rq) 719 { 720 rq->elv.priv[0] = NULL; 721 } 722 723 /* 724 * Callback from inside blk_mq_free_request(). 725 */ 726 static void dd_finish_request(struct request *rq) 727 { 728 struct dd_per_prio *per_prio = rq->elv.priv[0]; 729 730 /* 731 * The block layer core may call dd_finish_request() without having 732 * called dd_insert_requests(). Skip requests that bypassed I/O 733 * scheduling. See also blk_mq_request_bypass_insert(). 734 */ 735 if (per_prio) 736 atomic_inc(&per_prio->stats.completed); 737 } 738 739 static bool dd_has_work_for_prio(struct dd_per_prio *per_prio) 740 { 741 return !list_empty_careful(&per_prio->dispatch) || 742 !list_empty_careful(&per_prio->fifo_list[DD_READ]) || 743 !list_empty_careful(&per_prio->fifo_list[DD_WRITE]); 744 } 745 746 static bool dd_has_work(struct blk_mq_hw_ctx *hctx) 747 { 748 struct deadline_data *dd = hctx->queue->elevator->elevator_data; 749 enum dd_prio prio; 750 751 for (prio = 0; prio <= DD_PRIO_MAX; prio++) 752 if (dd_has_work_for_prio(&dd->per_prio[prio])) 753 return true; 754 755 return false; 756 } 757 758 /* 759 * sysfs parts below 760 */ 761 #define SHOW_INT(__FUNC, __VAR) \ 762 static ssize_t __FUNC(struct elevator_queue *e, char *page) \ 763 { \ 764 struct deadline_data *dd = e->elevator_data; \ 765 \ 766 return sysfs_emit(page, "%d\n", __VAR); \ 767 } 768 #define SHOW_JIFFIES(__FUNC, __VAR) SHOW_INT(__FUNC, jiffies_to_msecs(__VAR)) 769 SHOW_JIFFIES(deadline_read_expire_show, dd->fifo_expire[DD_READ]); 770 SHOW_JIFFIES(deadline_write_expire_show, dd->fifo_expire[DD_WRITE]); 771 SHOW_JIFFIES(deadline_prio_aging_expire_show, dd->prio_aging_expire); 772 SHOW_INT(deadline_writes_starved_show, dd->writes_starved); 773 SHOW_INT(deadline_front_merges_show, dd->front_merges); 774 SHOW_INT(deadline_async_depth_show, dd->async_depth); 775 SHOW_INT(deadline_fifo_batch_show, dd->fifo_batch); 776 #undef SHOW_INT 777 #undef SHOW_JIFFIES 778 779 #define STORE_FUNCTION(__FUNC, __PTR, MIN, MAX, __CONV) \ 780 static ssize_t __FUNC(struct elevator_queue *e, const char *page, size_t count) \ 781 { \ 782 struct deadline_data *dd = e->elevator_data; \ 783 int __data, __ret; \ 784 \ 785 __ret = kstrtoint(page, 0, &__data); \ 786 if (__ret < 0) \ 787 return __ret; \ 788 if (__data < (MIN)) \ 789 __data = (MIN); \ 790 else if (__data > (MAX)) \ 791 __data = (MAX); \ 792 *(__PTR) = __CONV(__data); \ 793 return count; \ 794 } 795 #define STORE_INT(__FUNC, __PTR, MIN, MAX) \ 796 STORE_FUNCTION(__FUNC, __PTR, MIN, MAX, ) 797 #define STORE_JIFFIES(__FUNC, __PTR, MIN, MAX) \ 798 STORE_FUNCTION(__FUNC, __PTR, MIN, MAX, msecs_to_jiffies) 799 STORE_JIFFIES(deadline_read_expire_store, &dd->fifo_expire[DD_READ], 0, INT_MAX); 800 STORE_JIFFIES(deadline_write_expire_store, &dd->fifo_expire[DD_WRITE], 0, INT_MAX); 801 STORE_JIFFIES(deadline_prio_aging_expire_store, &dd->prio_aging_expire, 0, INT_MAX); 802 STORE_INT(deadline_writes_starved_store, &dd->writes_starved, INT_MIN, INT_MAX); 803 STORE_INT(deadline_front_merges_store, &dd->front_merges, 0, 1); 804 STORE_INT(deadline_async_depth_store, &dd->async_depth, 1, INT_MAX); 805 STORE_INT(deadline_fifo_batch_store, &dd->fifo_batch, 0, INT_MAX); 806 #undef STORE_FUNCTION 807 #undef STORE_INT 808 #undef STORE_JIFFIES 809 810 #define DD_ATTR(name) \ 811 __ATTR(name, 0644, deadline_##name##_show, deadline_##name##_store) 812 813 static const struct elv_fs_entry deadline_attrs[] = { 814 DD_ATTR(read_expire), 815 DD_ATTR(write_expire), 816 DD_ATTR(writes_starved), 817 DD_ATTR(front_merges), 818 DD_ATTR(async_depth), 819 DD_ATTR(fifo_batch), 820 DD_ATTR(prio_aging_expire), 821 __ATTR_NULL 822 }; 823 824 #ifdef CONFIG_BLK_DEBUG_FS 825 #define DEADLINE_DEBUGFS_DDIR_ATTRS(prio, data_dir, name) \ 826 static void *deadline_##name##_fifo_start(struct seq_file *m, \ 827 loff_t *pos) \ 828 __acquires(&dd->lock) \ 829 { \ 830 struct request_queue *q = m->private; \ 831 struct deadline_data *dd = q->elevator->elevator_data; \ 832 struct dd_per_prio *per_prio = &dd->per_prio[prio]; \ 833 \ 834 spin_lock(&dd->lock); \ 835 return seq_list_start(&per_prio->fifo_list[data_dir], *pos); \ 836 } \ 837 \ 838 static void *deadline_##name##_fifo_next(struct seq_file *m, void *v, \ 839 loff_t *pos) \ 840 { \ 841 struct request_queue *q = m->private; \ 842 struct deadline_data *dd = q->elevator->elevator_data; \ 843 struct dd_per_prio *per_prio = &dd->per_prio[prio]; \ 844 \ 845 return seq_list_next(v, &per_prio->fifo_list[data_dir], pos); \ 846 } \ 847 \ 848 static void deadline_##name##_fifo_stop(struct seq_file *m, void *v) \ 849 __releases(&dd->lock) \ 850 { \ 851 struct request_queue *q = m->private; \ 852 struct deadline_data *dd = q->elevator->elevator_data; \ 853 \ 854 spin_unlock(&dd->lock); \ 855 } \ 856 \ 857 static const struct seq_operations deadline_##name##_fifo_seq_ops = { \ 858 .start = deadline_##name##_fifo_start, \ 859 .next = deadline_##name##_fifo_next, \ 860 .stop = deadline_##name##_fifo_stop, \ 861 .show = blk_mq_debugfs_rq_show, \ 862 }; \ 863 \ 864 static int deadline_##name##_next_rq_show(void *data, \ 865 struct seq_file *m) \ 866 { \ 867 struct request_queue *q = data; \ 868 struct deadline_data *dd = q->elevator->elevator_data; \ 869 struct dd_per_prio *per_prio = &dd->per_prio[prio]; \ 870 struct request *rq; \ 871 \ 872 rq = deadline_from_pos(per_prio, data_dir, \ 873 per_prio->latest_pos[data_dir]); \ 874 if (rq) \ 875 __blk_mq_debugfs_rq_show(m, rq); \ 876 return 0; \ 877 } 878 879 DEADLINE_DEBUGFS_DDIR_ATTRS(DD_RT_PRIO, DD_READ, read0); 880 DEADLINE_DEBUGFS_DDIR_ATTRS(DD_RT_PRIO, DD_WRITE, write0); 881 DEADLINE_DEBUGFS_DDIR_ATTRS(DD_BE_PRIO, DD_READ, read1); 882 DEADLINE_DEBUGFS_DDIR_ATTRS(DD_BE_PRIO, DD_WRITE, write1); 883 DEADLINE_DEBUGFS_DDIR_ATTRS(DD_IDLE_PRIO, DD_READ, read2); 884 DEADLINE_DEBUGFS_DDIR_ATTRS(DD_IDLE_PRIO, DD_WRITE, write2); 885 #undef DEADLINE_DEBUGFS_DDIR_ATTRS 886 887 static int deadline_batching_show(void *data, struct seq_file *m) 888 { 889 struct request_queue *q = data; 890 struct deadline_data *dd = q->elevator->elevator_data; 891 892 seq_printf(m, "%u\n", dd->batching); 893 return 0; 894 } 895 896 static int deadline_starved_show(void *data, struct seq_file *m) 897 { 898 struct request_queue *q = data; 899 struct deadline_data *dd = q->elevator->elevator_data; 900 901 seq_printf(m, "%u\n", dd->starved); 902 return 0; 903 } 904 905 static int dd_async_depth_show(void *data, struct seq_file *m) 906 { 907 struct request_queue *q = data; 908 struct deadline_data *dd = q->elevator->elevator_data; 909 910 seq_printf(m, "%u\n", dd->async_depth); 911 return 0; 912 } 913 914 static int dd_queued_show(void *data, struct seq_file *m) 915 { 916 struct request_queue *q = data; 917 struct deadline_data *dd = q->elevator->elevator_data; 918 u32 rt, be, idle; 919 920 spin_lock(&dd->lock); 921 rt = dd_queued(dd, DD_RT_PRIO); 922 be = dd_queued(dd, DD_BE_PRIO); 923 idle = dd_queued(dd, DD_IDLE_PRIO); 924 spin_unlock(&dd->lock); 925 926 seq_printf(m, "%u %u %u\n", rt, be, idle); 927 928 return 0; 929 } 930 931 /* Number of requests owned by the block driver for a given priority. */ 932 static u32 dd_owned_by_driver(struct deadline_data *dd, enum dd_prio prio) 933 { 934 const struct io_stats_per_prio *stats = &dd->per_prio[prio].stats; 935 936 lockdep_assert_held(&dd->lock); 937 938 return stats->dispatched + stats->merged - 939 atomic_read(&stats->completed); 940 } 941 942 static int dd_owned_by_driver_show(void *data, struct seq_file *m) 943 { 944 struct request_queue *q = data; 945 struct deadline_data *dd = q->elevator->elevator_data; 946 u32 rt, be, idle; 947 948 spin_lock(&dd->lock); 949 rt = dd_owned_by_driver(dd, DD_RT_PRIO); 950 be = dd_owned_by_driver(dd, DD_BE_PRIO); 951 idle = dd_owned_by_driver(dd, DD_IDLE_PRIO); 952 spin_unlock(&dd->lock); 953 954 seq_printf(m, "%u %u %u\n", rt, be, idle); 955 956 return 0; 957 } 958 959 #define DEADLINE_DISPATCH_ATTR(prio) \ 960 static void *deadline_dispatch##prio##_start(struct seq_file *m, \ 961 loff_t *pos) \ 962 __acquires(&dd->lock) \ 963 { \ 964 struct request_queue *q = m->private; \ 965 struct deadline_data *dd = q->elevator->elevator_data; \ 966 struct dd_per_prio *per_prio = &dd->per_prio[prio]; \ 967 \ 968 spin_lock(&dd->lock); \ 969 return seq_list_start(&per_prio->dispatch, *pos); \ 970 } \ 971 \ 972 static void *deadline_dispatch##prio##_next(struct seq_file *m, \ 973 void *v, loff_t *pos) \ 974 { \ 975 struct request_queue *q = m->private; \ 976 struct deadline_data *dd = q->elevator->elevator_data; \ 977 struct dd_per_prio *per_prio = &dd->per_prio[prio]; \ 978 \ 979 return seq_list_next(v, &per_prio->dispatch, pos); \ 980 } \ 981 \ 982 static void deadline_dispatch##prio##_stop(struct seq_file *m, void *v) \ 983 __releases(&dd->lock) \ 984 { \ 985 struct request_queue *q = m->private; \ 986 struct deadline_data *dd = q->elevator->elevator_data; \ 987 \ 988 spin_unlock(&dd->lock); \ 989 } \ 990 \ 991 static const struct seq_operations deadline_dispatch##prio##_seq_ops = { \ 992 .start = deadline_dispatch##prio##_start, \ 993 .next = deadline_dispatch##prio##_next, \ 994 .stop = deadline_dispatch##prio##_stop, \ 995 .show = blk_mq_debugfs_rq_show, \ 996 } 997 998 DEADLINE_DISPATCH_ATTR(0); 999 DEADLINE_DISPATCH_ATTR(1); 1000 DEADLINE_DISPATCH_ATTR(2); 1001 #undef DEADLINE_DISPATCH_ATTR 1002 1003 #define DEADLINE_QUEUE_DDIR_ATTRS(name) \ 1004 {#name "_fifo_list", 0400, \ 1005 .seq_ops = &deadline_##name##_fifo_seq_ops} 1006 #define DEADLINE_NEXT_RQ_ATTR(name) \ 1007 {#name "_next_rq", 0400, deadline_##name##_next_rq_show} 1008 static const struct blk_mq_debugfs_attr deadline_queue_debugfs_attrs[] = { 1009 DEADLINE_QUEUE_DDIR_ATTRS(read0), 1010 DEADLINE_QUEUE_DDIR_ATTRS(write0), 1011 DEADLINE_QUEUE_DDIR_ATTRS(read1), 1012 DEADLINE_QUEUE_DDIR_ATTRS(write1), 1013 DEADLINE_QUEUE_DDIR_ATTRS(read2), 1014 DEADLINE_QUEUE_DDIR_ATTRS(write2), 1015 DEADLINE_NEXT_RQ_ATTR(read0), 1016 DEADLINE_NEXT_RQ_ATTR(write0), 1017 DEADLINE_NEXT_RQ_ATTR(read1), 1018 DEADLINE_NEXT_RQ_ATTR(write1), 1019 DEADLINE_NEXT_RQ_ATTR(read2), 1020 DEADLINE_NEXT_RQ_ATTR(write2), 1021 {"batching", 0400, deadline_batching_show}, 1022 {"starved", 0400, deadline_starved_show}, 1023 {"async_depth", 0400, dd_async_depth_show}, 1024 {"dispatch0", 0400, .seq_ops = &deadline_dispatch0_seq_ops}, 1025 {"dispatch1", 0400, .seq_ops = &deadline_dispatch1_seq_ops}, 1026 {"dispatch2", 0400, .seq_ops = &deadline_dispatch2_seq_ops}, 1027 {"owned_by_driver", 0400, dd_owned_by_driver_show}, 1028 {"queued", 0400, dd_queued_show}, 1029 {}, 1030 }; 1031 #undef DEADLINE_QUEUE_DDIR_ATTRS 1032 #endif 1033 1034 static struct elevator_type mq_deadline = { 1035 .ops = { 1036 .depth_updated = dd_depth_updated, 1037 .limit_depth = dd_limit_depth, 1038 .insert_requests = dd_insert_requests, 1039 .dispatch_request = dd_dispatch_request, 1040 .prepare_request = dd_prepare_request, 1041 .finish_request = dd_finish_request, 1042 .next_request = elv_rb_latter_request, 1043 .former_request = elv_rb_former_request, 1044 .bio_merge = dd_bio_merge, 1045 .request_merge = dd_request_merge, 1046 .requests_merged = dd_merged_requests, 1047 .request_merged = dd_request_merged, 1048 .has_work = dd_has_work, 1049 .init_sched = dd_init_sched, 1050 .exit_sched = dd_exit_sched, 1051 .init_hctx = dd_init_hctx, 1052 }, 1053 1054 #ifdef CONFIG_BLK_DEBUG_FS 1055 .queue_debugfs_attrs = deadline_queue_debugfs_attrs, 1056 #endif 1057 .elevator_attrs = deadline_attrs, 1058 .elevator_name = "mq-deadline", 1059 .elevator_alias = "deadline", 1060 .elevator_owner = THIS_MODULE, 1061 }; 1062 MODULE_ALIAS("mq-deadline-iosched"); 1063 1064 static int __init deadline_init(void) 1065 { 1066 return elv_register(&mq_deadline); 1067 } 1068 1069 static void __exit deadline_exit(void) 1070 { 1071 elv_unregister(&mq_deadline); 1072 } 1073 1074 module_init(deadline_init); 1075 module_exit(deadline_exit); 1076 1077 MODULE_AUTHOR("Jens Axboe, Damien Le Moal and Bart Van Assche"); 1078 MODULE_LICENSE("GPL"); 1079 MODULE_DESCRIPTION("MQ deadline IO scheduler"); 1080