1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2001, 2002 Sistina Software (UK) Limited. 4 * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved. 5 * 6 * This file is released under the GPL. 7 */ 8 9 #include "dm-core.h" 10 #include "dm-rq.h" 11 #include "dm-uevent.h" 12 #include "dm-ima.h" 13 14 #include <linux/init.h> 15 #include <linux/module.h> 16 #include <linux/mutex.h> 17 #include <linux/sched/mm.h> 18 #include <linux/sched/signal.h> 19 #include <linux/blkpg.h> 20 #include <linux/bio.h> 21 #include <linux/mempool.h> 22 #include <linux/dax.h> 23 #include <linux/slab.h> 24 #include <linux/idr.h> 25 #include <linux/uio.h> 26 #include <linux/hdreg.h> 27 #include <linux/delay.h> 28 #include <linux/wait.h> 29 #include <linux/pr.h> 30 #include <linux/refcount.h> 31 #include <linux/part_stat.h> 32 #include <linux/blk-crypto.h> 33 #include <linux/blk-crypto-profile.h> 34 35 #define DM_MSG_PREFIX "core" 36 37 /* 38 * Cookies are numeric values sent with CHANGE and REMOVE 39 * uevents while resuming, removing or renaming the device. 40 */ 41 #define DM_COOKIE_ENV_VAR_NAME "DM_COOKIE" 42 #define DM_COOKIE_LENGTH 24 43 44 /* 45 * For REQ_POLLED fs bio, this flag is set if we link mapped underlying 46 * dm_io into one list, and reuse bio->bi_private as the list head. Before 47 * ending this fs bio, we will recover its ->bi_private. 48 */ 49 #define REQ_DM_POLL_LIST REQ_DRV 50 51 static const char *_name = DM_NAME; 52 53 static unsigned int major; 54 static unsigned int _major; 55 56 static DEFINE_IDR(_minor_idr); 57 58 static DEFINE_SPINLOCK(_minor_lock); 59 60 static void do_deferred_remove(struct work_struct *w); 61 62 static DECLARE_WORK(deferred_remove_work, do_deferred_remove); 63 64 static struct workqueue_struct *deferred_remove_workqueue; 65 66 atomic_t dm_global_event_nr = ATOMIC_INIT(0); 67 DECLARE_WAIT_QUEUE_HEAD(dm_global_eventq); 68 69 void dm_issue_global_event(void) 70 { 71 atomic_inc(&dm_global_event_nr); 72 wake_up(&dm_global_eventq); 73 } 74 75 DEFINE_STATIC_KEY_FALSE(stats_enabled); 76 DEFINE_STATIC_KEY_FALSE(swap_bios_enabled); 77 DEFINE_STATIC_KEY_FALSE(zoned_enabled); 78 79 /* 80 * One of these is allocated (on-stack) per original bio. 81 */ 82 struct clone_info { 83 struct dm_table *map; 84 struct bio *bio; 85 struct dm_io *io; 86 sector_t sector; 87 unsigned int sector_count; 88 bool is_abnormal_io:1; 89 bool submit_as_polled:1; 90 }; 91 92 static inline struct dm_target_io *clone_to_tio(struct bio *clone) 93 { 94 return container_of(clone, struct dm_target_io, clone); 95 } 96 97 void *dm_per_bio_data(struct bio *bio, size_t data_size) 98 { 99 if (!dm_tio_flagged(clone_to_tio(bio), DM_TIO_INSIDE_DM_IO)) 100 return (char *)bio - DM_TARGET_IO_BIO_OFFSET - data_size; 101 return (char *)bio - DM_IO_BIO_OFFSET - data_size; 102 } 103 EXPORT_SYMBOL_GPL(dm_per_bio_data); 104 105 struct bio *dm_bio_from_per_bio_data(void *data, size_t data_size) 106 { 107 struct dm_io *io = (struct dm_io *)((char *)data + data_size); 108 109 if (io->magic == DM_IO_MAGIC) 110 return (struct bio *)((char *)io + DM_IO_BIO_OFFSET); 111 BUG_ON(io->magic != DM_TIO_MAGIC); 112 return (struct bio *)((char *)io + DM_TARGET_IO_BIO_OFFSET); 113 } 114 EXPORT_SYMBOL_GPL(dm_bio_from_per_bio_data); 115 116 unsigned int dm_bio_get_target_bio_nr(const struct bio *bio) 117 { 118 return container_of(bio, struct dm_target_io, clone)->target_bio_nr; 119 } 120 EXPORT_SYMBOL_GPL(dm_bio_get_target_bio_nr); 121 122 #define MINOR_ALLOCED ((void *)-1) 123 124 #define DM_NUMA_NODE NUMA_NO_NODE 125 static int dm_numa_node = DM_NUMA_NODE; 126 127 #define DEFAULT_SWAP_BIOS (8 * 1048576 / PAGE_SIZE) 128 static int swap_bios = DEFAULT_SWAP_BIOS; 129 static int get_swap_bios(void) 130 { 131 int latch = READ_ONCE(swap_bios); 132 133 if (unlikely(latch <= 0)) 134 latch = DEFAULT_SWAP_BIOS; 135 return latch; 136 } 137 138 struct table_device { 139 struct list_head list; 140 refcount_t count; 141 struct dm_dev dm_dev; 142 }; 143 144 /* 145 * Bio-based DM's mempools' reserved IOs set by the user. 146 */ 147 #define RESERVED_BIO_BASED_IOS 16 148 static unsigned int reserved_bio_based_ios = RESERVED_BIO_BASED_IOS; 149 150 static int __dm_get_module_param_int(int *module_param, int min, int max) 151 { 152 int param = READ_ONCE(*module_param); 153 int modified_param = 0; 154 bool modified = true; 155 156 if (param < min) 157 modified_param = min; 158 else if (param > max) 159 modified_param = max; 160 else 161 modified = false; 162 163 if (modified) { 164 (void)cmpxchg(module_param, param, modified_param); 165 param = modified_param; 166 } 167 168 return param; 169 } 170 171 unsigned int __dm_get_module_param(unsigned int *module_param, unsigned int def, unsigned int max) 172 { 173 unsigned int param = READ_ONCE(*module_param); 174 unsigned int modified_param = 0; 175 176 if (!param) 177 modified_param = def; 178 else if (param > max) 179 modified_param = max; 180 181 if (modified_param) { 182 (void)cmpxchg(module_param, param, modified_param); 183 param = modified_param; 184 } 185 186 return param; 187 } 188 189 unsigned int dm_get_reserved_bio_based_ios(void) 190 { 191 return __dm_get_module_param(&reserved_bio_based_ios, 192 RESERVED_BIO_BASED_IOS, DM_RESERVED_MAX_IOS); 193 } 194 EXPORT_SYMBOL_GPL(dm_get_reserved_bio_based_ios); 195 196 static unsigned int dm_get_numa_node(void) 197 { 198 return __dm_get_module_param_int(&dm_numa_node, 199 DM_NUMA_NODE, num_online_nodes() - 1); 200 } 201 202 static int __init local_init(void) 203 { 204 int r; 205 206 r = dm_uevent_init(); 207 if (r) 208 return r; 209 210 deferred_remove_workqueue = alloc_ordered_workqueue("kdmremove", 0); 211 if (!deferred_remove_workqueue) { 212 r = -ENOMEM; 213 goto out_uevent_exit; 214 } 215 216 _major = major; 217 r = register_blkdev(_major, _name); 218 if (r < 0) 219 goto out_free_workqueue; 220 221 if (!_major) 222 _major = r; 223 224 return 0; 225 226 out_free_workqueue: 227 destroy_workqueue(deferred_remove_workqueue); 228 out_uevent_exit: 229 dm_uevent_exit(); 230 231 return r; 232 } 233 234 static void local_exit(void) 235 { 236 destroy_workqueue(deferred_remove_workqueue); 237 238 unregister_blkdev(_major, _name); 239 dm_uevent_exit(); 240 241 _major = 0; 242 243 DMINFO("cleaned up"); 244 } 245 246 static int (*_inits[])(void) __initdata = { 247 local_init, 248 dm_target_init, 249 dm_linear_init, 250 dm_stripe_init, 251 dm_io_init, 252 dm_kcopyd_init, 253 dm_interface_init, 254 dm_statistics_init, 255 }; 256 257 static void (*_exits[])(void) = { 258 local_exit, 259 dm_target_exit, 260 dm_linear_exit, 261 dm_stripe_exit, 262 dm_io_exit, 263 dm_kcopyd_exit, 264 dm_interface_exit, 265 dm_statistics_exit, 266 }; 267 268 static int __init dm_init(void) 269 { 270 const int count = ARRAY_SIZE(_inits); 271 int r, i; 272 273 #if (IS_ENABLED(CONFIG_IMA) && !IS_ENABLED(CONFIG_IMA_DISABLE_HTABLE)) 274 DMWARN("CONFIG_IMA_DISABLE_HTABLE is disabled." 275 " Duplicate IMA measurements will not be recorded in the IMA log."); 276 #endif 277 278 for (i = 0; i < count; i++) { 279 r = _inits[i](); 280 if (r) 281 goto bad; 282 } 283 284 return 0; 285 bad: 286 while (i--) 287 _exits[i](); 288 289 return r; 290 } 291 292 static void __exit dm_exit(void) 293 { 294 int i = ARRAY_SIZE(_exits); 295 296 while (i--) 297 _exits[i](); 298 299 /* 300 * Should be empty by this point. 301 */ 302 idr_destroy(&_minor_idr); 303 } 304 305 /* 306 * Block device functions 307 */ 308 int dm_deleting_md(struct mapped_device *md) 309 { 310 return test_bit(DMF_DELETING, &md->flags); 311 } 312 313 static int dm_blk_open(struct gendisk *disk, blk_mode_t mode) 314 { 315 struct mapped_device *md; 316 317 spin_lock(&_minor_lock); 318 319 md = disk->private_data; 320 if (!md) 321 goto out; 322 323 if (test_bit(DMF_FREEING, &md->flags) || 324 dm_deleting_md(md)) { 325 md = NULL; 326 goto out; 327 } 328 329 dm_get(md); 330 atomic_inc(&md->open_count); 331 out: 332 spin_unlock(&_minor_lock); 333 334 return md ? 0 : -ENXIO; 335 } 336 337 static void dm_blk_close(struct gendisk *disk) 338 { 339 struct mapped_device *md; 340 341 spin_lock(&_minor_lock); 342 343 md = disk->private_data; 344 if (WARN_ON(!md)) 345 goto out; 346 347 if (atomic_dec_and_test(&md->open_count) && 348 (test_bit(DMF_DEFERRED_REMOVE, &md->flags))) 349 queue_work(deferred_remove_workqueue, &deferred_remove_work); 350 351 dm_put(md); 352 out: 353 spin_unlock(&_minor_lock); 354 } 355 356 int dm_open_count(struct mapped_device *md) 357 { 358 return atomic_read(&md->open_count); 359 } 360 361 /* 362 * Guarantees nothing is using the device before it's deleted. 363 */ 364 int dm_lock_for_deletion(struct mapped_device *md, bool mark_deferred, bool only_deferred) 365 { 366 int r = 0; 367 368 spin_lock(&_minor_lock); 369 370 if (dm_open_count(md)) { 371 r = -EBUSY; 372 if (mark_deferred) 373 set_bit(DMF_DEFERRED_REMOVE, &md->flags); 374 } else if (only_deferred && !test_bit(DMF_DEFERRED_REMOVE, &md->flags)) 375 r = -EEXIST; 376 else 377 set_bit(DMF_DELETING, &md->flags); 378 379 spin_unlock(&_minor_lock); 380 381 return r; 382 } 383 384 int dm_cancel_deferred_remove(struct mapped_device *md) 385 { 386 int r = 0; 387 388 spin_lock(&_minor_lock); 389 390 if (test_bit(DMF_DELETING, &md->flags)) 391 r = -EBUSY; 392 else 393 clear_bit(DMF_DEFERRED_REMOVE, &md->flags); 394 395 spin_unlock(&_minor_lock); 396 397 return r; 398 } 399 400 static void do_deferred_remove(struct work_struct *w) 401 { 402 dm_deferred_remove(); 403 } 404 405 static int dm_blk_getgeo(struct block_device *bdev, struct hd_geometry *geo) 406 { 407 struct mapped_device *md = bdev->bd_disk->private_data; 408 409 return dm_get_geometry(md, geo); 410 } 411 412 static int dm_prepare_ioctl(struct mapped_device *md, int *srcu_idx, 413 struct block_device **bdev) 414 { 415 struct dm_target *ti; 416 struct dm_table *map; 417 int r; 418 419 retry: 420 r = -ENOTTY; 421 map = dm_get_live_table(md, srcu_idx); 422 if (!map || !dm_table_get_size(map)) 423 return r; 424 425 /* We only support devices that have a single target */ 426 if (map->num_targets != 1) 427 return r; 428 429 ti = dm_table_get_target(map, 0); 430 if (!ti->type->prepare_ioctl) 431 return r; 432 433 if (dm_suspended_md(md)) 434 return -EAGAIN; 435 436 r = ti->type->prepare_ioctl(ti, bdev); 437 if (r == -ENOTCONN && !fatal_signal_pending(current)) { 438 dm_put_live_table(md, *srcu_idx); 439 fsleep(10000); 440 goto retry; 441 } 442 443 return r; 444 } 445 446 static void dm_unprepare_ioctl(struct mapped_device *md, int srcu_idx) 447 { 448 dm_put_live_table(md, srcu_idx); 449 } 450 451 static int dm_blk_ioctl(struct block_device *bdev, blk_mode_t mode, 452 unsigned int cmd, unsigned long arg) 453 { 454 struct mapped_device *md = bdev->bd_disk->private_data; 455 int r, srcu_idx; 456 457 r = dm_prepare_ioctl(md, &srcu_idx, &bdev); 458 if (r < 0) 459 goto out; 460 461 if (r > 0) { 462 /* 463 * Target determined this ioctl is being issued against a 464 * subset of the parent bdev; require extra privileges. 465 */ 466 if (!capable(CAP_SYS_RAWIO)) { 467 DMDEBUG_LIMIT( 468 "%s: sending ioctl %x to DM device without required privilege.", 469 current->comm, cmd); 470 r = -ENOIOCTLCMD; 471 goto out; 472 } 473 } 474 475 if (!bdev->bd_disk->fops->ioctl) 476 r = -ENOTTY; 477 else 478 r = bdev->bd_disk->fops->ioctl(bdev, mode, cmd, arg); 479 out: 480 dm_unprepare_ioctl(md, srcu_idx); 481 return r; 482 } 483 484 u64 dm_start_time_ns_from_clone(struct bio *bio) 485 { 486 return jiffies_to_nsecs(clone_to_tio(bio)->io->start_time); 487 } 488 EXPORT_SYMBOL_GPL(dm_start_time_ns_from_clone); 489 490 static inline bool bio_is_flush_with_data(struct bio *bio) 491 { 492 return ((bio->bi_opf & REQ_PREFLUSH) && bio->bi_iter.bi_size); 493 } 494 495 static inline unsigned int dm_io_sectors(struct dm_io *io, struct bio *bio) 496 { 497 /* 498 * If REQ_PREFLUSH set, don't account payload, it will be 499 * submitted (and accounted) after this flush completes. 500 */ 501 if (bio_is_flush_with_data(bio)) 502 return 0; 503 if (unlikely(dm_io_flagged(io, DM_IO_WAS_SPLIT))) 504 return io->sectors; 505 return bio_sectors(bio); 506 } 507 508 static void dm_io_acct(struct dm_io *io, bool end) 509 { 510 struct bio *bio = io->orig_bio; 511 512 if (dm_io_flagged(io, DM_IO_BLK_STAT)) { 513 if (!end) 514 bdev_start_io_acct(bio->bi_bdev, bio_op(bio), 515 io->start_time); 516 else 517 bdev_end_io_acct(bio->bi_bdev, bio_op(bio), 518 dm_io_sectors(io, bio), 519 io->start_time); 520 } 521 522 if (static_branch_unlikely(&stats_enabled) && 523 unlikely(dm_stats_used(&io->md->stats))) { 524 sector_t sector; 525 526 if (unlikely(dm_io_flagged(io, DM_IO_WAS_SPLIT))) 527 sector = bio_end_sector(bio) - io->sector_offset; 528 else 529 sector = bio->bi_iter.bi_sector; 530 531 dm_stats_account_io(&io->md->stats, bio_data_dir(bio), 532 sector, dm_io_sectors(io, bio), 533 end, io->start_time, &io->stats_aux); 534 } 535 } 536 537 static void __dm_start_io_acct(struct dm_io *io) 538 { 539 dm_io_acct(io, false); 540 } 541 542 static void dm_start_io_acct(struct dm_io *io, struct bio *clone) 543 { 544 /* 545 * Ensure IO accounting is only ever started once. 546 */ 547 if (dm_io_flagged(io, DM_IO_ACCOUNTED)) 548 return; 549 550 /* Expect no possibility for race unless DM_TIO_IS_DUPLICATE_BIO. */ 551 if (!clone || likely(dm_tio_is_normal(clone_to_tio(clone)))) { 552 dm_io_set_flag(io, DM_IO_ACCOUNTED); 553 } else { 554 unsigned long flags; 555 /* Can afford locking given DM_TIO_IS_DUPLICATE_BIO */ 556 spin_lock_irqsave(&io->lock, flags); 557 if (dm_io_flagged(io, DM_IO_ACCOUNTED)) { 558 spin_unlock_irqrestore(&io->lock, flags); 559 return; 560 } 561 dm_io_set_flag(io, DM_IO_ACCOUNTED); 562 spin_unlock_irqrestore(&io->lock, flags); 563 } 564 565 __dm_start_io_acct(io); 566 } 567 568 static void dm_end_io_acct(struct dm_io *io) 569 { 570 dm_io_acct(io, true); 571 } 572 573 static struct dm_io *alloc_io(struct mapped_device *md, struct bio *bio) 574 { 575 struct dm_io *io; 576 struct dm_target_io *tio; 577 struct bio *clone; 578 579 clone = bio_alloc_clone(NULL, bio, GFP_NOIO, &md->mempools->io_bs); 580 tio = clone_to_tio(clone); 581 tio->flags = 0; 582 dm_tio_set_flag(tio, DM_TIO_INSIDE_DM_IO); 583 tio->io = NULL; 584 585 io = container_of(tio, struct dm_io, tio); 586 io->magic = DM_IO_MAGIC; 587 io->status = BLK_STS_OK; 588 589 /* one ref is for submission, the other is for completion */ 590 atomic_set(&io->io_count, 2); 591 this_cpu_inc(*md->pending_io); 592 io->orig_bio = bio; 593 io->md = md; 594 spin_lock_init(&io->lock); 595 io->start_time = jiffies; 596 io->flags = 0; 597 if (blk_queue_io_stat(md->queue)) 598 dm_io_set_flag(io, DM_IO_BLK_STAT); 599 600 if (static_branch_unlikely(&stats_enabled) && 601 unlikely(dm_stats_used(&md->stats))) 602 dm_stats_record_start(&md->stats, &io->stats_aux); 603 604 return io; 605 } 606 607 static void free_io(struct dm_io *io) 608 { 609 bio_put(&io->tio.clone); 610 } 611 612 static struct bio *alloc_tio(struct clone_info *ci, struct dm_target *ti, 613 unsigned int target_bio_nr, unsigned int *len, gfp_t gfp_mask) 614 { 615 struct mapped_device *md = ci->io->md; 616 struct dm_target_io *tio; 617 struct bio *clone; 618 619 if (!ci->io->tio.io) { 620 /* the dm_target_io embedded in ci->io is available */ 621 tio = &ci->io->tio; 622 /* alloc_io() already initialized embedded clone */ 623 clone = &tio->clone; 624 } else { 625 clone = bio_alloc_clone(NULL, ci->bio, gfp_mask, 626 &md->mempools->bs); 627 if (!clone) 628 return NULL; 629 630 /* REQ_DM_POLL_LIST shouldn't be inherited */ 631 clone->bi_opf &= ~REQ_DM_POLL_LIST; 632 633 tio = clone_to_tio(clone); 634 tio->flags = 0; /* also clears DM_TIO_INSIDE_DM_IO */ 635 } 636 637 tio->magic = DM_TIO_MAGIC; 638 tio->io = ci->io; 639 tio->ti = ti; 640 tio->target_bio_nr = target_bio_nr; 641 tio->len_ptr = len; 642 tio->old_sector = 0; 643 644 /* Set default bdev, but target must bio_set_dev() before issuing IO */ 645 clone->bi_bdev = md->disk->part0; 646 if (unlikely(ti->needs_bio_set_dev)) 647 bio_set_dev(clone, md->disk->part0); 648 649 if (len) { 650 clone->bi_iter.bi_size = to_bytes(*len); 651 if (bio_integrity(clone)) 652 bio_integrity_trim(clone); 653 } 654 655 return clone; 656 } 657 658 static void free_tio(struct bio *clone) 659 { 660 if (dm_tio_flagged(clone_to_tio(clone), DM_TIO_INSIDE_DM_IO)) 661 return; 662 bio_put(clone); 663 } 664 665 /* 666 * Add the bio to the list of deferred io. 667 */ 668 static void queue_io(struct mapped_device *md, struct bio *bio) 669 { 670 unsigned long flags; 671 672 spin_lock_irqsave(&md->deferred_lock, flags); 673 bio_list_add(&md->deferred, bio); 674 spin_unlock_irqrestore(&md->deferred_lock, flags); 675 queue_work(md->wq, &md->work); 676 } 677 678 /* 679 * Everyone (including functions in this file), should use this 680 * function to access the md->map field, and make sure they call 681 * dm_put_live_table() when finished. 682 */ 683 struct dm_table *dm_get_live_table(struct mapped_device *md, 684 int *srcu_idx) __acquires(md->io_barrier) 685 { 686 *srcu_idx = srcu_read_lock(&md->io_barrier); 687 688 return srcu_dereference(md->map, &md->io_barrier); 689 } 690 691 void dm_put_live_table(struct mapped_device *md, 692 int srcu_idx) __releases(md->io_barrier) 693 { 694 srcu_read_unlock(&md->io_barrier, srcu_idx); 695 } 696 697 void dm_sync_table(struct mapped_device *md) 698 { 699 synchronize_srcu(&md->io_barrier); 700 synchronize_rcu_expedited(); 701 } 702 703 /* 704 * A fast alternative to dm_get_live_table/dm_put_live_table. 705 * The caller must not block between these two functions. 706 */ 707 static struct dm_table *dm_get_live_table_fast(struct mapped_device *md) __acquires(RCU) 708 { 709 rcu_read_lock(); 710 return rcu_dereference(md->map); 711 } 712 713 static void dm_put_live_table_fast(struct mapped_device *md) __releases(RCU) 714 { 715 rcu_read_unlock(); 716 } 717 718 static char *_dm_claim_ptr = "I belong to device-mapper"; 719 720 /* 721 * Open a table device so we can use it as a map destination. 722 */ 723 static struct table_device *open_table_device(struct mapped_device *md, 724 dev_t dev, blk_mode_t mode) 725 { 726 struct table_device *td; 727 struct bdev_handle *bdev_handle; 728 u64 part_off; 729 int r; 730 731 td = kmalloc_node(sizeof(*td), GFP_KERNEL, md->numa_node_id); 732 if (!td) 733 return ERR_PTR(-ENOMEM); 734 refcount_set(&td->count, 1); 735 736 bdev_handle = bdev_open_by_dev(dev, mode, _dm_claim_ptr, NULL); 737 if (IS_ERR(bdev_handle)) { 738 r = PTR_ERR(bdev_handle); 739 goto out_free_td; 740 } 741 742 /* 743 * We can be called before the dm disk is added. In that case we can't 744 * register the holder relation here. It will be done once add_disk was 745 * called. 746 */ 747 if (md->disk->slave_dir) { 748 r = bd_link_disk_holder(bdev_handle->bdev, md->disk); 749 if (r) 750 goto out_blkdev_put; 751 } 752 753 td->dm_dev.mode = mode; 754 td->dm_dev.bdev = bdev_handle->bdev; 755 td->dm_dev.bdev_handle = bdev_handle; 756 td->dm_dev.dax_dev = fs_dax_get_by_bdev(bdev_handle->bdev, &part_off, 757 NULL, NULL); 758 format_dev_t(td->dm_dev.name, dev); 759 list_add(&td->list, &md->table_devices); 760 return td; 761 762 out_blkdev_put: 763 bdev_release(bdev_handle); 764 out_free_td: 765 kfree(td); 766 return ERR_PTR(r); 767 } 768 769 /* 770 * Close a table device that we've been using. 771 */ 772 static void close_table_device(struct table_device *td, struct mapped_device *md) 773 { 774 if (md->disk->slave_dir) 775 bd_unlink_disk_holder(td->dm_dev.bdev, md->disk); 776 bdev_release(td->dm_dev.bdev_handle); 777 put_dax(td->dm_dev.dax_dev); 778 list_del(&td->list); 779 kfree(td); 780 } 781 782 static struct table_device *find_table_device(struct list_head *l, dev_t dev, 783 blk_mode_t mode) 784 { 785 struct table_device *td; 786 787 list_for_each_entry(td, l, list) 788 if (td->dm_dev.bdev->bd_dev == dev && td->dm_dev.mode == mode) 789 return td; 790 791 return NULL; 792 } 793 794 int dm_get_table_device(struct mapped_device *md, dev_t dev, blk_mode_t mode, 795 struct dm_dev **result) 796 { 797 struct table_device *td; 798 799 mutex_lock(&md->table_devices_lock); 800 td = find_table_device(&md->table_devices, dev, mode); 801 if (!td) { 802 td = open_table_device(md, dev, mode); 803 if (IS_ERR(td)) { 804 mutex_unlock(&md->table_devices_lock); 805 return PTR_ERR(td); 806 } 807 } else { 808 refcount_inc(&td->count); 809 } 810 mutex_unlock(&md->table_devices_lock); 811 812 *result = &td->dm_dev; 813 return 0; 814 } 815 816 void dm_put_table_device(struct mapped_device *md, struct dm_dev *d) 817 { 818 struct table_device *td = container_of(d, struct table_device, dm_dev); 819 820 mutex_lock(&md->table_devices_lock); 821 if (refcount_dec_and_test(&td->count)) 822 close_table_device(td, md); 823 mutex_unlock(&md->table_devices_lock); 824 } 825 826 /* 827 * Get the geometry associated with a dm device 828 */ 829 int dm_get_geometry(struct mapped_device *md, struct hd_geometry *geo) 830 { 831 *geo = md->geometry; 832 833 return 0; 834 } 835 836 /* 837 * Set the geometry of a device. 838 */ 839 int dm_set_geometry(struct mapped_device *md, struct hd_geometry *geo) 840 { 841 sector_t sz = (sector_t)geo->cylinders * geo->heads * geo->sectors; 842 843 if (geo->start > sz) { 844 DMERR("Start sector is beyond the geometry limits."); 845 return -EINVAL; 846 } 847 848 md->geometry = *geo; 849 850 return 0; 851 } 852 853 static int __noflush_suspending(struct mapped_device *md) 854 { 855 return test_bit(DMF_NOFLUSH_SUSPENDING, &md->flags); 856 } 857 858 static void dm_requeue_add_io(struct dm_io *io, bool first_stage) 859 { 860 struct mapped_device *md = io->md; 861 862 if (first_stage) { 863 struct dm_io *next = md->requeue_list; 864 865 md->requeue_list = io; 866 io->next = next; 867 } else { 868 bio_list_add_head(&md->deferred, io->orig_bio); 869 } 870 } 871 872 static void dm_kick_requeue(struct mapped_device *md, bool first_stage) 873 { 874 if (first_stage) 875 queue_work(md->wq, &md->requeue_work); 876 else 877 queue_work(md->wq, &md->work); 878 } 879 880 /* 881 * Return true if the dm_io's original bio is requeued. 882 * io->status is updated with error if requeue disallowed. 883 */ 884 static bool dm_handle_requeue(struct dm_io *io, bool first_stage) 885 { 886 struct bio *bio = io->orig_bio; 887 bool handle_requeue = (io->status == BLK_STS_DM_REQUEUE); 888 bool handle_polled_eagain = ((io->status == BLK_STS_AGAIN) && 889 (bio->bi_opf & REQ_POLLED)); 890 struct mapped_device *md = io->md; 891 bool requeued = false; 892 893 if (handle_requeue || handle_polled_eagain) { 894 unsigned long flags; 895 896 if (bio->bi_opf & REQ_POLLED) { 897 /* 898 * Upper layer won't help us poll split bio 899 * (io->orig_bio may only reflect a subset of the 900 * pre-split original) so clear REQ_POLLED. 901 */ 902 bio_clear_polled(bio); 903 } 904 905 /* 906 * Target requested pushing back the I/O or 907 * polled IO hit BLK_STS_AGAIN. 908 */ 909 spin_lock_irqsave(&md->deferred_lock, flags); 910 if ((__noflush_suspending(md) && 911 !WARN_ON_ONCE(dm_is_zone_write(md, bio))) || 912 handle_polled_eagain || first_stage) { 913 dm_requeue_add_io(io, first_stage); 914 requeued = true; 915 } else { 916 /* 917 * noflush suspend was interrupted or this is 918 * a write to a zoned target. 919 */ 920 io->status = BLK_STS_IOERR; 921 } 922 spin_unlock_irqrestore(&md->deferred_lock, flags); 923 } 924 925 if (requeued) 926 dm_kick_requeue(md, first_stage); 927 928 return requeued; 929 } 930 931 static void __dm_io_complete(struct dm_io *io, bool first_stage) 932 { 933 struct bio *bio = io->orig_bio; 934 struct mapped_device *md = io->md; 935 blk_status_t io_error; 936 bool requeued; 937 938 requeued = dm_handle_requeue(io, first_stage); 939 if (requeued && first_stage) 940 return; 941 942 io_error = io->status; 943 if (dm_io_flagged(io, DM_IO_ACCOUNTED)) 944 dm_end_io_acct(io); 945 else if (!io_error) { 946 /* 947 * Must handle target that DM_MAPIO_SUBMITTED only to 948 * then bio_endio() rather than dm_submit_bio_remap() 949 */ 950 __dm_start_io_acct(io); 951 dm_end_io_acct(io); 952 } 953 free_io(io); 954 smp_wmb(); 955 this_cpu_dec(*md->pending_io); 956 957 /* nudge anyone waiting on suspend queue */ 958 if (unlikely(wq_has_sleeper(&md->wait))) 959 wake_up(&md->wait); 960 961 /* Return early if the original bio was requeued */ 962 if (requeued) 963 return; 964 965 if (bio_is_flush_with_data(bio)) { 966 /* 967 * Preflush done for flush with data, reissue 968 * without REQ_PREFLUSH. 969 */ 970 bio->bi_opf &= ~REQ_PREFLUSH; 971 queue_io(md, bio); 972 } else { 973 /* done with normal IO or empty flush */ 974 if (io_error) 975 bio->bi_status = io_error; 976 bio_endio(bio); 977 } 978 } 979 980 static void dm_wq_requeue_work(struct work_struct *work) 981 { 982 struct mapped_device *md = container_of(work, struct mapped_device, 983 requeue_work); 984 unsigned long flags; 985 struct dm_io *io; 986 987 /* reuse deferred lock to simplify dm_handle_requeue */ 988 spin_lock_irqsave(&md->deferred_lock, flags); 989 io = md->requeue_list; 990 md->requeue_list = NULL; 991 spin_unlock_irqrestore(&md->deferred_lock, flags); 992 993 while (io) { 994 struct dm_io *next = io->next; 995 996 dm_io_rewind(io, &md->disk->bio_split); 997 998 io->next = NULL; 999 __dm_io_complete(io, false); 1000 io = next; 1001 cond_resched(); 1002 } 1003 } 1004 1005 /* 1006 * Two staged requeue: 1007 * 1008 * 1) io->orig_bio points to the real original bio, and the part mapped to 1009 * this io must be requeued, instead of other parts of the original bio. 1010 * 1011 * 2) io->orig_bio points to new cloned bio which matches the requeued dm_io. 1012 */ 1013 static void dm_io_complete(struct dm_io *io) 1014 { 1015 bool first_requeue; 1016 1017 /* 1018 * Only dm_io that has been split needs two stage requeue, otherwise 1019 * we may run into long bio clone chain during suspend and OOM could 1020 * be triggered. 1021 * 1022 * Also flush data dm_io won't be marked as DM_IO_WAS_SPLIT, so they 1023 * also aren't handled via the first stage requeue. 1024 */ 1025 if (dm_io_flagged(io, DM_IO_WAS_SPLIT)) 1026 first_requeue = true; 1027 else 1028 first_requeue = false; 1029 1030 __dm_io_complete(io, first_requeue); 1031 } 1032 1033 /* 1034 * Decrements the number of outstanding ios that a bio has been 1035 * cloned into, completing the original io if necc. 1036 */ 1037 static inline void __dm_io_dec_pending(struct dm_io *io) 1038 { 1039 if (atomic_dec_and_test(&io->io_count)) 1040 dm_io_complete(io); 1041 } 1042 1043 static void dm_io_set_error(struct dm_io *io, blk_status_t error) 1044 { 1045 unsigned long flags; 1046 1047 /* Push-back supersedes any I/O errors */ 1048 spin_lock_irqsave(&io->lock, flags); 1049 if (!(io->status == BLK_STS_DM_REQUEUE && 1050 __noflush_suspending(io->md))) { 1051 io->status = error; 1052 } 1053 spin_unlock_irqrestore(&io->lock, flags); 1054 } 1055 1056 static void dm_io_dec_pending(struct dm_io *io, blk_status_t error) 1057 { 1058 if (unlikely(error)) 1059 dm_io_set_error(io, error); 1060 1061 __dm_io_dec_pending(io); 1062 } 1063 1064 /* 1065 * The queue_limits are only valid as long as you have a reference 1066 * count on 'md'. But _not_ imposing verification to avoid atomic_read(), 1067 */ 1068 static inline struct queue_limits *dm_get_queue_limits(struct mapped_device *md) 1069 { 1070 return &md->queue->limits; 1071 } 1072 1073 void disable_discard(struct mapped_device *md) 1074 { 1075 struct queue_limits *limits = dm_get_queue_limits(md); 1076 1077 /* device doesn't really support DISCARD, disable it */ 1078 limits->max_discard_sectors = 0; 1079 } 1080 1081 void disable_write_zeroes(struct mapped_device *md) 1082 { 1083 struct queue_limits *limits = dm_get_queue_limits(md); 1084 1085 /* device doesn't really support WRITE ZEROES, disable it */ 1086 limits->max_write_zeroes_sectors = 0; 1087 } 1088 1089 static bool swap_bios_limit(struct dm_target *ti, struct bio *bio) 1090 { 1091 return unlikely((bio->bi_opf & REQ_SWAP) != 0) && unlikely(ti->limit_swap_bios); 1092 } 1093 1094 static void clone_endio(struct bio *bio) 1095 { 1096 blk_status_t error = bio->bi_status; 1097 struct dm_target_io *tio = clone_to_tio(bio); 1098 struct dm_target *ti = tio->ti; 1099 dm_endio_fn endio = ti->type->end_io; 1100 struct dm_io *io = tio->io; 1101 struct mapped_device *md = io->md; 1102 1103 if (unlikely(error == BLK_STS_TARGET)) { 1104 if (bio_op(bio) == REQ_OP_DISCARD && 1105 !bdev_max_discard_sectors(bio->bi_bdev)) 1106 disable_discard(md); 1107 else if (bio_op(bio) == REQ_OP_WRITE_ZEROES && 1108 !bdev_write_zeroes_sectors(bio->bi_bdev)) 1109 disable_write_zeroes(md); 1110 } 1111 1112 if (static_branch_unlikely(&zoned_enabled) && 1113 unlikely(bdev_is_zoned(bio->bi_bdev))) 1114 dm_zone_endio(io, bio); 1115 1116 if (endio) { 1117 int r = endio(ti, bio, &error); 1118 1119 switch (r) { 1120 case DM_ENDIO_REQUEUE: 1121 if (static_branch_unlikely(&zoned_enabled)) { 1122 /* 1123 * Requeuing writes to a sequential zone of a zoned 1124 * target will break the sequential write pattern: 1125 * fail such IO. 1126 */ 1127 if (WARN_ON_ONCE(dm_is_zone_write(md, bio))) 1128 error = BLK_STS_IOERR; 1129 else 1130 error = BLK_STS_DM_REQUEUE; 1131 } else 1132 error = BLK_STS_DM_REQUEUE; 1133 fallthrough; 1134 case DM_ENDIO_DONE: 1135 break; 1136 case DM_ENDIO_INCOMPLETE: 1137 /* The target will handle the io */ 1138 return; 1139 default: 1140 DMCRIT("unimplemented target endio return value: %d", r); 1141 BUG(); 1142 } 1143 } 1144 1145 if (static_branch_unlikely(&swap_bios_enabled) && 1146 unlikely(swap_bios_limit(ti, bio))) 1147 up(&md->swap_bios_semaphore); 1148 1149 free_tio(bio); 1150 dm_io_dec_pending(io, error); 1151 } 1152 1153 /* 1154 * Return maximum size of I/O possible at the supplied sector up to the current 1155 * target boundary. 1156 */ 1157 static inline sector_t max_io_len_target_boundary(struct dm_target *ti, 1158 sector_t target_offset) 1159 { 1160 return ti->len - target_offset; 1161 } 1162 1163 static sector_t __max_io_len(struct dm_target *ti, sector_t sector, 1164 unsigned int max_granularity, 1165 unsigned int max_sectors) 1166 { 1167 sector_t target_offset = dm_target_offset(ti, sector); 1168 sector_t len = max_io_len_target_boundary(ti, target_offset); 1169 1170 /* 1171 * Does the target need to split IO even further? 1172 * - varied (per target) IO splitting is a tenet of DM; this 1173 * explains why stacked chunk_sectors based splitting via 1174 * bio_split_to_limits() isn't possible here. 1175 */ 1176 if (!max_granularity) 1177 return len; 1178 return min_t(sector_t, len, 1179 min(max_sectors ? : queue_max_sectors(ti->table->md->queue), 1180 blk_chunk_sectors_left(target_offset, max_granularity))); 1181 } 1182 1183 static inline sector_t max_io_len(struct dm_target *ti, sector_t sector) 1184 { 1185 return __max_io_len(ti, sector, ti->max_io_len, 0); 1186 } 1187 1188 int dm_set_target_max_io_len(struct dm_target *ti, sector_t len) 1189 { 1190 if (len > UINT_MAX) { 1191 DMERR("Specified maximum size of target IO (%llu) exceeds limit (%u)", 1192 (unsigned long long)len, UINT_MAX); 1193 ti->error = "Maximum size of target IO is too large"; 1194 return -EINVAL; 1195 } 1196 1197 ti->max_io_len = (uint32_t) len; 1198 1199 return 0; 1200 } 1201 EXPORT_SYMBOL_GPL(dm_set_target_max_io_len); 1202 1203 static struct dm_target *dm_dax_get_live_target(struct mapped_device *md, 1204 sector_t sector, int *srcu_idx) 1205 __acquires(md->io_barrier) 1206 { 1207 struct dm_table *map; 1208 struct dm_target *ti; 1209 1210 map = dm_get_live_table(md, srcu_idx); 1211 if (!map) 1212 return NULL; 1213 1214 ti = dm_table_find_target(map, sector); 1215 if (!ti) 1216 return NULL; 1217 1218 return ti; 1219 } 1220 1221 static long dm_dax_direct_access(struct dax_device *dax_dev, pgoff_t pgoff, 1222 long nr_pages, enum dax_access_mode mode, void **kaddr, 1223 pfn_t *pfn) 1224 { 1225 struct mapped_device *md = dax_get_private(dax_dev); 1226 sector_t sector = pgoff * PAGE_SECTORS; 1227 struct dm_target *ti; 1228 long len, ret = -EIO; 1229 int srcu_idx; 1230 1231 ti = dm_dax_get_live_target(md, sector, &srcu_idx); 1232 1233 if (!ti) 1234 goto out; 1235 if (!ti->type->direct_access) 1236 goto out; 1237 len = max_io_len(ti, sector) / PAGE_SECTORS; 1238 if (len < 1) 1239 goto out; 1240 nr_pages = min(len, nr_pages); 1241 ret = ti->type->direct_access(ti, pgoff, nr_pages, mode, kaddr, pfn); 1242 1243 out: 1244 dm_put_live_table(md, srcu_idx); 1245 1246 return ret; 1247 } 1248 1249 static int dm_dax_zero_page_range(struct dax_device *dax_dev, pgoff_t pgoff, 1250 size_t nr_pages) 1251 { 1252 struct mapped_device *md = dax_get_private(dax_dev); 1253 sector_t sector = pgoff * PAGE_SECTORS; 1254 struct dm_target *ti; 1255 int ret = -EIO; 1256 int srcu_idx; 1257 1258 ti = dm_dax_get_live_target(md, sector, &srcu_idx); 1259 1260 if (!ti) 1261 goto out; 1262 if (WARN_ON(!ti->type->dax_zero_page_range)) { 1263 /* 1264 * ->zero_page_range() is mandatory dax operation. If we are 1265 * here, something is wrong. 1266 */ 1267 goto out; 1268 } 1269 ret = ti->type->dax_zero_page_range(ti, pgoff, nr_pages); 1270 out: 1271 dm_put_live_table(md, srcu_idx); 1272 1273 return ret; 1274 } 1275 1276 static size_t dm_dax_recovery_write(struct dax_device *dax_dev, pgoff_t pgoff, 1277 void *addr, size_t bytes, struct iov_iter *i) 1278 { 1279 struct mapped_device *md = dax_get_private(dax_dev); 1280 sector_t sector = pgoff * PAGE_SECTORS; 1281 struct dm_target *ti; 1282 int srcu_idx; 1283 long ret = 0; 1284 1285 ti = dm_dax_get_live_target(md, sector, &srcu_idx); 1286 if (!ti || !ti->type->dax_recovery_write) 1287 goto out; 1288 1289 ret = ti->type->dax_recovery_write(ti, pgoff, addr, bytes, i); 1290 out: 1291 dm_put_live_table(md, srcu_idx); 1292 return ret; 1293 } 1294 1295 /* 1296 * A target may call dm_accept_partial_bio only from the map routine. It is 1297 * allowed for all bio types except REQ_PREFLUSH, REQ_OP_ZONE_* zone management 1298 * operations, REQ_OP_ZONE_APPEND (zone append writes) and any bio serviced by 1299 * __send_duplicate_bios(). 1300 * 1301 * dm_accept_partial_bio informs the dm that the target only wants to process 1302 * additional n_sectors sectors of the bio and the rest of the data should be 1303 * sent in a next bio. 1304 * 1305 * A diagram that explains the arithmetics: 1306 * +--------------------+---------------+-------+ 1307 * | 1 | 2 | 3 | 1308 * +--------------------+---------------+-------+ 1309 * 1310 * <-------------- *tio->len_ptr ---------------> 1311 * <----- bio_sectors -----> 1312 * <-- n_sectors --> 1313 * 1314 * Region 1 was already iterated over with bio_advance or similar function. 1315 * (it may be empty if the target doesn't use bio_advance) 1316 * Region 2 is the remaining bio size that the target wants to process. 1317 * (it may be empty if region 1 is non-empty, although there is no reason 1318 * to make it empty) 1319 * The target requires that region 3 is to be sent in the next bio. 1320 * 1321 * If the target wants to receive multiple copies of the bio (via num_*bios, etc), 1322 * the partially processed part (the sum of regions 1+2) must be the same for all 1323 * copies of the bio. 1324 */ 1325 void dm_accept_partial_bio(struct bio *bio, unsigned int n_sectors) 1326 { 1327 struct dm_target_io *tio = clone_to_tio(bio); 1328 struct dm_io *io = tio->io; 1329 unsigned int bio_sectors = bio_sectors(bio); 1330 1331 BUG_ON(dm_tio_flagged(tio, DM_TIO_IS_DUPLICATE_BIO)); 1332 BUG_ON(op_is_zone_mgmt(bio_op(bio))); 1333 BUG_ON(bio_op(bio) == REQ_OP_ZONE_APPEND); 1334 BUG_ON(bio_sectors > *tio->len_ptr); 1335 BUG_ON(n_sectors > bio_sectors); 1336 1337 *tio->len_ptr -= bio_sectors - n_sectors; 1338 bio->bi_iter.bi_size = n_sectors << SECTOR_SHIFT; 1339 1340 /* 1341 * __split_and_process_bio() may have already saved mapped part 1342 * for accounting but it is being reduced so update accordingly. 1343 */ 1344 dm_io_set_flag(io, DM_IO_WAS_SPLIT); 1345 io->sectors = n_sectors; 1346 io->sector_offset = bio_sectors(io->orig_bio); 1347 } 1348 EXPORT_SYMBOL_GPL(dm_accept_partial_bio); 1349 1350 /* 1351 * @clone: clone bio that DM core passed to target's .map function 1352 * @tgt_clone: clone of @clone bio that target needs submitted 1353 * 1354 * Targets should use this interface to submit bios they take 1355 * ownership of when returning DM_MAPIO_SUBMITTED. 1356 * 1357 * Target should also enable ti->accounts_remapped_io 1358 */ 1359 void dm_submit_bio_remap(struct bio *clone, struct bio *tgt_clone) 1360 { 1361 struct dm_target_io *tio = clone_to_tio(clone); 1362 struct dm_io *io = tio->io; 1363 1364 /* establish bio that will get submitted */ 1365 if (!tgt_clone) 1366 tgt_clone = clone; 1367 1368 /* 1369 * Account io->origin_bio to DM dev on behalf of target 1370 * that took ownership of IO with DM_MAPIO_SUBMITTED. 1371 */ 1372 dm_start_io_acct(io, clone); 1373 1374 trace_block_bio_remap(tgt_clone, disk_devt(io->md->disk), 1375 tio->old_sector); 1376 submit_bio_noacct(tgt_clone); 1377 } 1378 EXPORT_SYMBOL_GPL(dm_submit_bio_remap); 1379 1380 static noinline void __set_swap_bios_limit(struct mapped_device *md, int latch) 1381 { 1382 mutex_lock(&md->swap_bios_lock); 1383 while (latch < md->swap_bios) { 1384 cond_resched(); 1385 down(&md->swap_bios_semaphore); 1386 md->swap_bios--; 1387 } 1388 while (latch > md->swap_bios) { 1389 cond_resched(); 1390 up(&md->swap_bios_semaphore); 1391 md->swap_bios++; 1392 } 1393 mutex_unlock(&md->swap_bios_lock); 1394 } 1395 1396 static void __map_bio(struct bio *clone) 1397 { 1398 struct dm_target_io *tio = clone_to_tio(clone); 1399 struct dm_target *ti = tio->ti; 1400 struct dm_io *io = tio->io; 1401 struct mapped_device *md = io->md; 1402 int r; 1403 1404 clone->bi_end_io = clone_endio; 1405 1406 /* 1407 * Map the clone. 1408 */ 1409 tio->old_sector = clone->bi_iter.bi_sector; 1410 1411 if (static_branch_unlikely(&swap_bios_enabled) && 1412 unlikely(swap_bios_limit(ti, clone))) { 1413 int latch = get_swap_bios(); 1414 1415 if (unlikely(latch != md->swap_bios)) 1416 __set_swap_bios_limit(md, latch); 1417 down(&md->swap_bios_semaphore); 1418 } 1419 1420 if (static_branch_unlikely(&zoned_enabled)) { 1421 /* 1422 * Check if the IO needs a special mapping due to zone append 1423 * emulation on zoned target. In this case, dm_zone_map_bio() 1424 * calls the target map operation. 1425 */ 1426 if (unlikely(dm_emulate_zone_append(md))) 1427 r = dm_zone_map_bio(tio); 1428 else 1429 r = ti->type->map(ti, clone); 1430 } else 1431 r = ti->type->map(ti, clone); 1432 1433 switch (r) { 1434 case DM_MAPIO_SUBMITTED: 1435 /* target has assumed ownership of this io */ 1436 if (!ti->accounts_remapped_io) 1437 dm_start_io_acct(io, clone); 1438 break; 1439 case DM_MAPIO_REMAPPED: 1440 dm_submit_bio_remap(clone, NULL); 1441 break; 1442 case DM_MAPIO_KILL: 1443 case DM_MAPIO_REQUEUE: 1444 if (static_branch_unlikely(&swap_bios_enabled) && 1445 unlikely(swap_bios_limit(ti, clone))) 1446 up(&md->swap_bios_semaphore); 1447 free_tio(clone); 1448 if (r == DM_MAPIO_KILL) 1449 dm_io_dec_pending(io, BLK_STS_IOERR); 1450 else 1451 dm_io_dec_pending(io, BLK_STS_DM_REQUEUE); 1452 break; 1453 default: 1454 DMCRIT("unimplemented target map return value: %d", r); 1455 BUG(); 1456 } 1457 } 1458 1459 static void setup_split_accounting(struct clone_info *ci, unsigned int len) 1460 { 1461 struct dm_io *io = ci->io; 1462 1463 if (ci->sector_count > len) { 1464 /* 1465 * Split needed, save the mapped part for accounting. 1466 * NOTE: dm_accept_partial_bio() will update accordingly. 1467 */ 1468 dm_io_set_flag(io, DM_IO_WAS_SPLIT); 1469 io->sectors = len; 1470 io->sector_offset = bio_sectors(ci->bio); 1471 } 1472 } 1473 1474 static void alloc_multiple_bios(struct bio_list *blist, struct clone_info *ci, 1475 struct dm_target *ti, unsigned int num_bios, 1476 unsigned *len) 1477 { 1478 struct bio *bio; 1479 int try; 1480 1481 for (try = 0; try < 2; try++) { 1482 int bio_nr; 1483 1484 if (try) 1485 mutex_lock(&ci->io->md->table_devices_lock); 1486 for (bio_nr = 0; bio_nr < num_bios; bio_nr++) { 1487 bio = alloc_tio(ci, ti, bio_nr, len, 1488 try ? GFP_NOIO : GFP_NOWAIT); 1489 if (!bio) 1490 break; 1491 1492 bio_list_add(blist, bio); 1493 } 1494 if (try) 1495 mutex_unlock(&ci->io->md->table_devices_lock); 1496 if (bio_nr == num_bios) 1497 return; 1498 1499 while ((bio = bio_list_pop(blist))) 1500 free_tio(bio); 1501 } 1502 } 1503 1504 static int __send_duplicate_bios(struct clone_info *ci, struct dm_target *ti, 1505 unsigned int num_bios, unsigned int *len) 1506 { 1507 struct bio_list blist = BIO_EMPTY_LIST; 1508 struct bio *clone; 1509 unsigned int ret = 0; 1510 1511 switch (num_bios) { 1512 case 0: 1513 break; 1514 case 1: 1515 if (len) 1516 setup_split_accounting(ci, *len); 1517 clone = alloc_tio(ci, ti, 0, len, GFP_NOIO); 1518 __map_bio(clone); 1519 ret = 1; 1520 break; 1521 default: 1522 if (len) 1523 setup_split_accounting(ci, *len); 1524 /* dm_accept_partial_bio() is not supported with shared tio->len_ptr */ 1525 alloc_multiple_bios(&blist, ci, ti, num_bios, len); 1526 while ((clone = bio_list_pop(&blist))) { 1527 dm_tio_set_flag(clone_to_tio(clone), DM_TIO_IS_DUPLICATE_BIO); 1528 __map_bio(clone); 1529 ret += 1; 1530 } 1531 break; 1532 } 1533 1534 return ret; 1535 } 1536 1537 static void __send_empty_flush(struct clone_info *ci) 1538 { 1539 struct dm_table *t = ci->map; 1540 struct bio flush_bio; 1541 1542 /* 1543 * Use an on-stack bio for this, it's safe since we don't 1544 * need to reference it after submit. It's just used as 1545 * the basis for the clone(s). 1546 */ 1547 bio_init(&flush_bio, ci->io->md->disk->part0, NULL, 0, 1548 REQ_OP_WRITE | REQ_PREFLUSH | REQ_SYNC); 1549 1550 ci->bio = &flush_bio; 1551 ci->sector_count = 0; 1552 ci->io->tio.clone.bi_iter.bi_size = 0; 1553 1554 for (unsigned int i = 0; i < t->num_targets; i++) { 1555 unsigned int bios; 1556 struct dm_target *ti = dm_table_get_target(t, i); 1557 1558 atomic_add(ti->num_flush_bios, &ci->io->io_count); 1559 bios = __send_duplicate_bios(ci, ti, ti->num_flush_bios, NULL); 1560 atomic_sub(ti->num_flush_bios - bios, &ci->io->io_count); 1561 } 1562 1563 /* 1564 * alloc_io() takes one extra reference for submission, so the 1565 * reference won't reach 0 without the following subtraction 1566 */ 1567 atomic_sub(1, &ci->io->io_count); 1568 1569 bio_uninit(ci->bio); 1570 } 1571 1572 static void __send_changing_extent_only(struct clone_info *ci, struct dm_target *ti, 1573 unsigned int num_bios, 1574 unsigned int max_granularity, 1575 unsigned int max_sectors) 1576 { 1577 unsigned int len, bios; 1578 1579 len = min_t(sector_t, ci->sector_count, 1580 __max_io_len(ti, ci->sector, max_granularity, max_sectors)); 1581 1582 atomic_add(num_bios, &ci->io->io_count); 1583 bios = __send_duplicate_bios(ci, ti, num_bios, &len); 1584 /* 1585 * alloc_io() takes one extra reference for submission, so the 1586 * reference won't reach 0 without the following (+1) subtraction 1587 */ 1588 atomic_sub(num_bios - bios + 1, &ci->io->io_count); 1589 1590 ci->sector += len; 1591 ci->sector_count -= len; 1592 } 1593 1594 static bool is_abnormal_io(struct bio *bio) 1595 { 1596 enum req_op op = bio_op(bio); 1597 1598 if (op != REQ_OP_READ && op != REQ_OP_WRITE && op != REQ_OP_FLUSH) { 1599 switch (op) { 1600 case REQ_OP_DISCARD: 1601 case REQ_OP_SECURE_ERASE: 1602 case REQ_OP_WRITE_ZEROES: 1603 return true; 1604 default: 1605 break; 1606 } 1607 } 1608 1609 return false; 1610 } 1611 1612 static blk_status_t __process_abnormal_io(struct clone_info *ci, 1613 struct dm_target *ti) 1614 { 1615 unsigned int num_bios = 0; 1616 unsigned int max_granularity = 0; 1617 unsigned int max_sectors = 0; 1618 struct queue_limits *limits = dm_get_queue_limits(ti->table->md); 1619 1620 switch (bio_op(ci->bio)) { 1621 case REQ_OP_DISCARD: 1622 num_bios = ti->num_discard_bios; 1623 max_sectors = limits->max_discard_sectors; 1624 if (ti->max_discard_granularity) 1625 max_granularity = max_sectors; 1626 break; 1627 case REQ_OP_SECURE_ERASE: 1628 num_bios = ti->num_secure_erase_bios; 1629 max_sectors = limits->max_secure_erase_sectors; 1630 if (ti->max_secure_erase_granularity) 1631 max_granularity = max_sectors; 1632 break; 1633 case REQ_OP_WRITE_ZEROES: 1634 num_bios = ti->num_write_zeroes_bios; 1635 max_sectors = limits->max_write_zeroes_sectors; 1636 if (ti->max_write_zeroes_granularity) 1637 max_granularity = max_sectors; 1638 break; 1639 default: 1640 break; 1641 } 1642 1643 /* 1644 * Even though the device advertised support for this type of 1645 * request, that does not mean every target supports it, and 1646 * reconfiguration might also have changed that since the 1647 * check was performed. 1648 */ 1649 if (unlikely(!num_bios)) 1650 return BLK_STS_NOTSUPP; 1651 1652 __send_changing_extent_only(ci, ti, num_bios, 1653 max_granularity, max_sectors); 1654 return BLK_STS_OK; 1655 } 1656 1657 /* 1658 * Reuse ->bi_private as dm_io list head for storing all dm_io instances 1659 * associated with this bio, and this bio's bi_private needs to be 1660 * stored in dm_io->data before the reuse. 1661 * 1662 * bio->bi_private is owned by fs or upper layer, so block layer won't 1663 * touch it after splitting. Meantime it won't be changed by anyone after 1664 * bio is submitted. So this reuse is safe. 1665 */ 1666 static inline struct dm_io **dm_poll_list_head(struct bio *bio) 1667 { 1668 return (struct dm_io **)&bio->bi_private; 1669 } 1670 1671 static void dm_queue_poll_io(struct bio *bio, struct dm_io *io) 1672 { 1673 struct dm_io **head = dm_poll_list_head(bio); 1674 1675 if (!(bio->bi_opf & REQ_DM_POLL_LIST)) { 1676 bio->bi_opf |= REQ_DM_POLL_LIST; 1677 /* 1678 * Save .bi_private into dm_io, so that we can reuse 1679 * .bi_private as dm_io list head for storing dm_io list 1680 */ 1681 io->data = bio->bi_private; 1682 1683 /* tell block layer to poll for completion */ 1684 bio->bi_cookie = ~BLK_QC_T_NONE; 1685 1686 io->next = NULL; 1687 } else { 1688 /* 1689 * bio recursed due to split, reuse original poll list, 1690 * and save bio->bi_private too. 1691 */ 1692 io->data = (*head)->data; 1693 io->next = *head; 1694 } 1695 1696 *head = io; 1697 } 1698 1699 /* 1700 * Select the correct strategy for processing a non-flush bio. 1701 */ 1702 static blk_status_t __split_and_process_bio(struct clone_info *ci) 1703 { 1704 struct bio *clone; 1705 struct dm_target *ti; 1706 unsigned int len; 1707 1708 ti = dm_table_find_target(ci->map, ci->sector); 1709 if (unlikely(!ti)) 1710 return BLK_STS_IOERR; 1711 1712 if (unlikely((ci->bio->bi_opf & REQ_NOWAIT) != 0) && 1713 unlikely(!dm_target_supports_nowait(ti->type))) 1714 return BLK_STS_NOTSUPP; 1715 1716 if (unlikely(ci->is_abnormal_io)) 1717 return __process_abnormal_io(ci, ti); 1718 1719 /* 1720 * Only support bio polling for normal IO, and the target io is 1721 * exactly inside the dm_io instance (verified in dm_poll_dm_io) 1722 */ 1723 ci->submit_as_polled = !!(ci->bio->bi_opf & REQ_POLLED); 1724 1725 len = min_t(sector_t, max_io_len(ti, ci->sector), ci->sector_count); 1726 setup_split_accounting(ci, len); 1727 clone = alloc_tio(ci, ti, 0, &len, GFP_NOIO); 1728 __map_bio(clone); 1729 1730 ci->sector += len; 1731 ci->sector_count -= len; 1732 1733 return BLK_STS_OK; 1734 } 1735 1736 static void init_clone_info(struct clone_info *ci, struct mapped_device *md, 1737 struct dm_table *map, struct bio *bio, bool is_abnormal) 1738 { 1739 ci->map = map; 1740 ci->io = alloc_io(md, bio); 1741 ci->bio = bio; 1742 ci->is_abnormal_io = is_abnormal; 1743 ci->submit_as_polled = false; 1744 ci->sector = bio->bi_iter.bi_sector; 1745 ci->sector_count = bio_sectors(bio); 1746 1747 /* Shouldn't happen but sector_count was being set to 0 so... */ 1748 if (static_branch_unlikely(&zoned_enabled) && 1749 WARN_ON_ONCE(op_is_zone_mgmt(bio_op(bio)) && ci->sector_count)) 1750 ci->sector_count = 0; 1751 } 1752 1753 /* 1754 * Entry point to split a bio into clones and submit them to the targets. 1755 */ 1756 static void dm_split_and_process_bio(struct mapped_device *md, 1757 struct dm_table *map, struct bio *bio) 1758 { 1759 struct clone_info ci; 1760 struct dm_io *io; 1761 blk_status_t error = BLK_STS_OK; 1762 bool is_abnormal; 1763 1764 is_abnormal = is_abnormal_io(bio); 1765 if (unlikely(is_abnormal)) { 1766 /* 1767 * Use bio_split_to_limits() for abnormal IO (e.g. discard, etc) 1768 * otherwise associated queue_limits won't be imposed. 1769 */ 1770 bio = bio_split_to_limits(bio); 1771 if (!bio) 1772 return; 1773 } 1774 1775 init_clone_info(&ci, md, map, bio, is_abnormal); 1776 io = ci.io; 1777 1778 if (bio->bi_opf & REQ_PREFLUSH) { 1779 __send_empty_flush(&ci); 1780 /* dm_io_complete submits any data associated with flush */ 1781 goto out; 1782 } 1783 1784 error = __split_and_process_bio(&ci); 1785 if (error || !ci.sector_count) 1786 goto out; 1787 /* 1788 * Remainder must be passed to submit_bio_noacct() so it gets handled 1789 * *after* bios already submitted have been completely processed. 1790 */ 1791 bio_trim(bio, io->sectors, ci.sector_count); 1792 trace_block_split(bio, bio->bi_iter.bi_sector); 1793 bio_inc_remaining(bio); 1794 submit_bio_noacct(bio); 1795 out: 1796 /* 1797 * Drop the extra reference count for non-POLLED bio, and hold one 1798 * reference for POLLED bio, which will be released in dm_poll_bio 1799 * 1800 * Add every dm_io instance into the dm_io list head which is stored 1801 * in bio->bi_private, so that dm_poll_bio can poll them all. 1802 */ 1803 if (error || !ci.submit_as_polled) { 1804 /* 1805 * In case of submission failure, the extra reference for 1806 * submitting io isn't consumed yet 1807 */ 1808 if (error) 1809 atomic_dec(&io->io_count); 1810 dm_io_dec_pending(io, error); 1811 } else 1812 dm_queue_poll_io(bio, io); 1813 } 1814 1815 static void dm_submit_bio(struct bio *bio) 1816 { 1817 struct mapped_device *md = bio->bi_bdev->bd_disk->private_data; 1818 int srcu_idx; 1819 struct dm_table *map; 1820 1821 map = dm_get_live_table(md, &srcu_idx); 1822 1823 /* If suspended, or map not yet available, queue this IO for later */ 1824 if (unlikely(test_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags)) || 1825 unlikely(!map)) { 1826 if (bio->bi_opf & REQ_NOWAIT) 1827 bio_wouldblock_error(bio); 1828 else if (bio->bi_opf & REQ_RAHEAD) 1829 bio_io_error(bio); 1830 else 1831 queue_io(md, bio); 1832 goto out; 1833 } 1834 1835 dm_split_and_process_bio(md, map, bio); 1836 out: 1837 dm_put_live_table(md, srcu_idx); 1838 } 1839 1840 static bool dm_poll_dm_io(struct dm_io *io, struct io_comp_batch *iob, 1841 unsigned int flags) 1842 { 1843 WARN_ON_ONCE(!dm_tio_is_normal(&io->tio)); 1844 1845 /* don't poll if the mapped io is done */ 1846 if (atomic_read(&io->io_count) > 1) 1847 bio_poll(&io->tio.clone, iob, flags); 1848 1849 /* bio_poll holds the last reference */ 1850 return atomic_read(&io->io_count) == 1; 1851 } 1852 1853 static int dm_poll_bio(struct bio *bio, struct io_comp_batch *iob, 1854 unsigned int flags) 1855 { 1856 struct dm_io **head = dm_poll_list_head(bio); 1857 struct dm_io *list = *head; 1858 struct dm_io *tmp = NULL; 1859 struct dm_io *curr, *next; 1860 1861 /* Only poll normal bio which was marked as REQ_DM_POLL_LIST */ 1862 if (!(bio->bi_opf & REQ_DM_POLL_LIST)) 1863 return 0; 1864 1865 WARN_ON_ONCE(!list); 1866 1867 /* 1868 * Restore .bi_private before possibly completing dm_io. 1869 * 1870 * bio_poll() is only possible once @bio has been completely 1871 * submitted via submit_bio_noacct()'s depth-first submission. 1872 * So there is no dm_queue_poll_io() race associated with 1873 * clearing REQ_DM_POLL_LIST here. 1874 */ 1875 bio->bi_opf &= ~REQ_DM_POLL_LIST; 1876 bio->bi_private = list->data; 1877 1878 for (curr = list, next = curr->next; curr; curr = next, next = 1879 curr ? curr->next : NULL) { 1880 if (dm_poll_dm_io(curr, iob, flags)) { 1881 /* 1882 * clone_endio() has already occurred, so no 1883 * error handling is needed here. 1884 */ 1885 __dm_io_dec_pending(curr); 1886 } else { 1887 curr->next = tmp; 1888 tmp = curr; 1889 } 1890 } 1891 1892 /* Not done? */ 1893 if (tmp) { 1894 bio->bi_opf |= REQ_DM_POLL_LIST; 1895 /* Reset bio->bi_private to dm_io list head */ 1896 *head = tmp; 1897 return 0; 1898 } 1899 return 1; 1900 } 1901 1902 /* 1903 *--------------------------------------------------------------- 1904 * An IDR is used to keep track of allocated minor numbers. 1905 *--------------------------------------------------------------- 1906 */ 1907 static void free_minor(int minor) 1908 { 1909 spin_lock(&_minor_lock); 1910 idr_remove(&_minor_idr, minor); 1911 spin_unlock(&_minor_lock); 1912 } 1913 1914 /* 1915 * See if the device with a specific minor # is free. 1916 */ 1917 static int specific_minor(int minor) 1918 { 1919 int r; 1920 1921 if (minor >= (1 << MINORBITS)) 1922 return -EINVAL; 1923 1924 idr_preload(GFP_KERNEL); 1925 spin_lock(&_minor_lock); 1926 1927 r = idr_alloc(&_minor_idr, MINOR_ALLOCED, minor, minor + 1, GFP_NOWAIT); 1928 1929 spin_unlock(&_minor_lock); 1930 idr_preload_end(); 1931 if (r < 0) 1932 return r == -ENOSPC ? -EBUSY : r; 1933 return 0; 1934 } 1935 1936 static int next_free_minor(int *minor) 1937 { 1938 int r; 1939 1940 idr_preload(GFP_KERNEL); 1941 spin_lock(&_minor_lock); 1942 1943 r = idr_alloc(&_minor_idr, MINOR_ALLOCED, 0, 1 << MINORBITS, GFP_NOWAIT); 1944 1945 spin_unlock(&_minor_lock); 1946 idr_preload_end(); 1947 if (r < 0) 1948 return r; 1949 *minor = r; 1950 return 0; 1951 } 1952 1953 static const struct block_device_operations dm_blk_dops; 1954 static const struct block_device_operations dm_rq_blk_dops; 1955 static const struct dax_operations dm_dax_ops; 1956 1957 static void dm_wq_work(struct work_struct *work); 1958 1959 #ifdef CONFIG_BLK_INLINE_ENCRYPTION 1960 static void dm_queue_destroy_crypto_profile(struct request_queue *q) 1961 { 1962 dm_destroy_crypto_profile(q->crypto_profile); 1963 } 1964 1965 #else /* CONFIG_BLK_INLINE_ENCRYPTION */ 1966 1967 static inline void dm_queue_destroy_crypto_profile(struct request_queue *q) 1968 { 1969 } 1970 #endif /* !CONFIG_BLK_INLINE_ENCRYPTION */ 1971 1972 static void cleanup_mapped_device(struct mapped_device *md) 1973 { 1974 if (md->wq) 1975 destroy_workqueue(md->wq); 1976 dm_free_md_mempools(md->mempools); 1977 1978 if (md->dax_dev) { 1979 dax_remove_host(md->disk); 1980 kill_dax(md->dax_dev); 1981 put_dax(md->dax_dev); 1982 md->dax_dev = NULL; 1983 } 1984 1985 dm_cleanup_zoned_dev(md); 1986 if (md->disk) { 1987 spin_lock(&_minor_lock); 1988 md->disk->private_data = NULL; 1989 spin_unlock(&_minor_lock); 1990 if (dm_get_md_type(md) != DM_TYPE_NONE) { 1991 struct table_device *td; 1992 1993 dm_sysfs_exit(md); 1994 list_for_each_entry(td, &md->table_devices, list) { 1995 bd_unlink_disk_holder(td->dm_dev.bdev, 1996 md->disk); 1997 } 1998 1999 /* 2000 * Hold lock to make sure del_gendisk() won't concurrent 2001 * with open/close_table_device(). 2002 */ 2003 mutex_lock(&md->table_devices_lock); 2004 del_gendisk(md->disk); 2005 mutex_unlock(&md->table_devices_lock); 2006 } 2007 dm_queue_destroy_crypto_profile(md->queue); 2008 put_disk(md->disk); 2009 } 2010 2011 if (md->pending_io) { 2012 free_percpu(md->pending_io); 2013 md->pending_io = NULL; 2014 } 2015 2016 cleanup_srcu_struct(&md->io_barrier); 2017 2018 mutex_destroy(&md->suspend_lock); 2019 mutex_destroy(&md->type_lock); 2020 mutex_destroy(&md->table_devices_lock); 2021 mutex_destroy(&md->swap_bios_lock); 2022 2023 dm_mq_cleanup_mapped_device(md); 2024 } 2025 2026 /* 2027 * Allocate and initialise a blank device with a given minor. 2028 */ 2029 static struct mapped_device *alloc_dev(int minor) 2030 { 2031 int r, numa_node_id = dm_get_numa_node(); 2032 struct mapped_device *md; 2033 void *old_md; 2034 2035 md = kvzalloc_node(sizeof(*md), GFP_KERNEL, numa_node_id); 2036 if (!md) { 2037 DMERR("unable to allocate device, out of memory."); 2038 return NULL; 2039 } 2040 2041 if (!try_module_get(THIS_MODULE)) 2042 goto bad_module_get; 2043 2044 /* get a minor number for the dev */ 2045 if (minor == DM_ANY_MINOR) 2046 r = next_free_minor(&minor); 2047 else 2048 r = specific_minor(minor); 2049 if (r < 0) 2050 goto bad_minor; 2051 2052 r = init_srcu_struct(&md->io_barrier); 2053 if (r < 0) 2054 goto bad_io_barrier; 2055 2056 md->numa_node_id = numa_node_id; 2057 md->init_tio_pdu = false; 2058 md->type = DM_TYPE_NONE; 2059 mutex_init(&md->suspend_lock); 2060 mutex_init(&md->type_lock); 2061 mutex_init(&md->table_devices_lock); 2062 spin_lock_init(&md->deferred_lock); 2063 atomic_set(&md->holders, 1); 2064 atomic_set(&md->open_count, 0); 2065 atomic_set(&md->event_nr, 0); 2066 atomic_set(&md->uevent_seq, 0); 2067 INIT_LIST_HEAD(&md->uevent_list); 2068 INIT_LIST_HEAD(&md->table_devices); 2069 spin_lock_init(&md->uevent_lock); 2070 2071 /* 2072 * default to bio-based until DM table is loaded and md->type 2073 * established. If request-based table is loaded: blk-mq will 2074 * override accordingly. 2075 */ 2076 md->disk = blk_alloc_disk(md->numa_node_id); 2077 if (!md->disk) 2078 goto bad; 2079 md->queue = md->disk->queue; 2080 2081 init_waitqueue_head(&md->wait); 2082 INIT_WORK(&md->work, dm_wq_work); 2083 INIT_WORK(&md->requeue_work, dm_wq_requeue_work); 2084 init_waitqueue_head(&md->eventq); 2085 init_completion(&md->kobj_holder.completion); 2086 2087 md->requeue_list = NULL; 2088 md->swap_bios = get_swap_bios(); 2089 sema_init(&md->swap_bios_semaphore, md->swap_bios); 2090 mutex_init(&md->swap_bios_lock); 2091 2092 md->disk->major = _major; 2093 md->disk->first_minor = minor; 2094 md->disk->minors = 1; 2095 md->disk->flags |= GENHD_FL_NO_PART; 2096 md->disk->fops = &dm_blk_dops; 2097 md->disk->private_data = md; 2098 sprintf(md->disk->disk_name, "dm-%d", minor); 2099 2100 if (IS_ENABLED(CONFIG_FS_DAX)) { 2101 md->dax_dev = alloc_dax(md, &dm_dax_ops); 2102 if (IS_ERR(md->dax_dev)) { 2103 md->dax_dev = NULL; 2104 goto bad; 2105 } 2106 set_dax_nocache(md->dax_dev); 2107 set_dax_nomc(md->dax_dev); 2108 if (dax_add_host(md->dax_dev, md->disk)) 2109 goto bad; 2110 } 2111 2112 format_dev_t(md->name, MKDEV(_major, minor)); 2113 2114 md->wq = alloc_workqueue("kdmflush/%s", WQ_MEM_RECLAIM, 0, md->name); 2115 if (!md->wq) 2116 goto bad; 2117 2118 md->pending_io = alloc_percpu(unsigned long); 2119 if (!md->pending_io) 2120 goto bad; 2121 2122 r = dm_stats_init(&md->stats); 2123 if (r < 0) 2124 goto bad; 2125 2126 /* Populate the mapping, nobody knows we exist yet */ 2127 spin_lock(&_minor_lock); 2128 old_md = idr_replace(&_minor_idr, md, minor); 2129 spin_unlock(&_minor_lock); 2130 2131 BUG_ON(old_md != MINOR_ALLOCED); 2132 2133 return md; 2134 2135 bad: 2136 cleanup_mapped_device(md); 2137 bad_io_barrier: 2138 free_minor(minor); 2139 bad_minor: 2140 module_put(THIS_MODULE); 2141 bad_module_get: 2142 kvfree(md); 2143 return NULL; 2144 } 2145 2146 static void unlock_fs(struct mapped_device *md); 2147 2148 static void free_dev(struct mapped_device *md) 2149 { 2150 int minor = MINOR(disk_devt(md->disk)); 2151 2152 unlock_fs(md); 2153 2154 cleanup_mapped_device(md); 2155 2156 WARN_ON_ONCE(!list_empty(&md->table_devices)); 2157 dm_stats_cleanup(&md->stats); 2158 free_minor(minor); 2159 2160 module_put(THIS_MODULE); 2161 kvfree(md); 2162 } 2163 2164 /* 2165 * Bind a table to the device. 2166 */ 2167 static void event_callback(void *context) 2168 { 2169 unsigned long flags; 2170 LIST_HEAD(uevents); 2171 struct mapped_device *md = context; 2172 2173 spin_lock_irqsave(&md->uevent_lock, flags); 2174 list_splice_init(&md->uevent_list, &uevents); 2175 spin_unlock_irqrestore(&md->uevent_lock, flags); 2176 2177 dm_send_uevents(&uevents, &disk_to_dev(md->disk)->kobj); 2178 2179 atomic_inc(&md->event_nr); 2180 wake_up(&md->eventq); 2181 dm_issue_global_event(); 2182 } 2183 2184 /* 2185 * Returns old map, which caller must destroy. 2186 */ 2187 static struct dm_table *__bind(struct mapped_device *md, struct dm_table *t, 2188 struct queue_limits *limits) 2189 { 2190 struct dm_table *old_map; 2191 sector_t size; 2192 int ret; 2193 2194 lockdep_assert_held(&md->suspend_lock); 2195 2196 size = dm_table_get_size(t); 2197 2198 /* 2199 * Wipe any geometry if the size of the table changed. 2200 */ 2201 if (size != dm_get_size(md)) 2202 memset(&md->geometry, 0, sizeof(md->geometry)); 2203 2204 set_capacity(md->disk, size); 2205 2206 dm_table_event_callback(t, event_callback, md); 2207 2208 if (dm_table_request_based(t)) { 2209 /* 2210 * Leverage the fact that request-based DM targets are 2211 * immutable singletons - used to optimize dm_mq_queue_rq. 2212 */ 2213 md->immutable_target = dm_table_get_immutable_target(t); 2214 2215 /* 2216 * There is no need to reload with request-based dm because the 2217 * size of front_pad doesn't change. 2218 * 2219 * Note for future: If you are to reload bioset, prep-ed 2220 * requests in the queue may refer to bio from the old bioset, 2221 * so you must walk through the queue to unprep. 2222 */ 2223 if (!md->mempools) { 2224 md->mempools = t->mempools; 2225 t->mempools = NULL; 2226 } 2227 } else { 2228 /* 2229 * The md may already have mempools that need changing. 2230 * If so, reload bioset because front_pad may have changed 2231 * because a different table was loaded. 2232 */ 2233 dm_free_md_mempools(md->mempools); 2234 md->mempools = t->mempools; 2235 t->mempools = NULL; 2236 } 2237 2238 ret = dm_table_set_restrictions(t, md->queue, limits); 2239 if (ret) { 2240 old_map = ERR_PTR(ret); 2241 goto out; 2242 } 2243 2244 old_map = rcu_dereference_protected(md->map, lockdep_is_held(&md->suspend_lock)); 2245 rcu_assign_pointer(md->map, (void *)t); 2246 md->immutable_target_type = dm_table_get_immutable_target_type(t); 2247 2248 if (old_map) 2249 dm_sync_table(md); 2250 out: 2251 return old_map; 2252 } 2253 2254 /* 2255 * Returns unbound table for the caller to free. 2256 */ 2257 static struct dm_table *__unbind(struct mapped_device *md) 2258 { 2259 struct dm_table *map = rcu_dereference_protected(md->map, 1); 2260 2261 if (!map) 2262 return NULL; 2263 2264 dm_table_event_callback(map, NULL, NULL); 2265 RCU_INIT_POINTER(md->map, NULL); 2266 dm_sync_table(md); 2267 2268 return map; 2269 } 2270 2271 /* 2272 * Constructor for a new device. 2273 */ 2274 int dm_create(int minor, struct mapped_device **result) 2275 { 2276 struct mapped_device *md; 2277 2278 md = alloc_dev(minor); 2279 if (!md) 2280 return -ENXIO; 2281 2282 dm_ima_reset_data(md); 2283 2284 *result = md; 2285 return 0; 2286 } 2287 2288 /* 2289 * Functions to manage md->type. 2290 * All are required to hold md->type_lock. 2291 */ 2292 void dm_lock_md_type(struct mapped_device *md) 2293 { 2294 mutex_lock(&md->type_lock); 2295 } 2296 2297 void dm_unlock_md_type(struct mapped_device *md) 2298 { 2299 mutex_unlock(&md->type_lock); 2300 } 2301 2302 void dm_set_md_type(struct mapped_device *md, enum dm_queue_mode type) 2303 { 2304 BUG_ON(!mutex_is_locked(&md->type_lock)); 2305 md->type = type; 2306 } 2307 2308 enum dm_queue_mode dm_get_md_type(struct mapped_device *md) 2309 { 2310 return md->type; 2311 } 2312 2313 struct target_type *dm_get_immutable_target_type(struct mapped_device *md) 2314 { 2315 return md->immutable_target_type; 2316 } 2317 2318 /* 2319 * Setup the DM device's queue based on md's type 2320 */ 2321 int dm_setup_md_queue(struct mapped_device *md, struct dm_table *t) 2322 { 2323 enum dm_queue_mode type = dm_table_get_type(t); 2324 struct queue_limits limits; 2325 struct table_device *td; 2326 int r; 2327 2328 switch (type) { 2329 case DM_TYPE_REQUEST_BASED: 2330 md->disk->fops = &dm_rq_blk_dops; 2331 r = dm_mq_init_request_queue(md, t); 2332 if (r) { 2333 DMERR("Cannot initialize queue for request-based dm mapped device"); 2334 return r; 2335 } 2336 break; 2337 case DM_TYPE_BIO_BASED: 2338 case DM_TYPE_DAX_BIO_BASED: 2339 blk_queue_flag_set(QUEUE_FLAG_IO_STAT, md->queue); 2340 break; 2341 case DM_TYPE_NONE: 2342 WARN_ON_ONCE(true); 2343 break; 2344 } 2345 2346 r = dm_calculate_queue_limits(t, &limits); 2347 if (r) { 2348 DMERR("Cannot calculate initial queue limits"); 2349 return r; 2350 } 2351 r = dm_table_set_restrictions(t, md->queue, &limits); 2352 if (r) 2353 return r; 2354 2355 /* 2356 * Hold lock to make sure add_disk() and del_gendisk() won't concurrent 2357 * with open_table_device() and close_table_device(). 2358 */ 2359 mutex_lock(&md->table_devices_lock); 2360 r = add_disk(md->disk); 2361 mutex_unlock(&md->table_devices_lock); 2362 if (r) 2363 return r; 2364 2365 /* 2366 * Register the holder relationship for devices added before the disk 2367 * was live. 2368 */ 2369 list_for_each_entry(td, &md->table_devices, list) { 2370 r = bd_link_disk_holder(td->dm_dev.bdev, md->disk); 2371 if (r) 2372 goto out_undo_holders; 2373 } 2374 2375 r = dm_sysfs_init(md); 2376 if (r) 2377 goto out_undo_holders; 2378 2379 md->type = type; 2380 return 0; 2381 2382 out_undo_holders: 2383 list_for_each_entry_continue_reverse(td, &md->table_devices, list) 2384 bd_unlink_disk_holder(td->dm_dev.bdev, md->disk); 2385 mutex_lock(&md->table_devices_lock); 2386 del_gendisk(md->disk); 2387 mutex_unlock(&md->table_devices_lock); 2388 return r; 2389 } 2390 2391 struct mapped_device *dm_get_md(dev_t dev) 2392 { 2393 struct mapped_device *md; 2394 unsigned int minor = MINOR(dev); 2395 2396 if (MAJOR(dev) != _major || minor >= (1 << MINORBITS)) 2397 return NULL; 2398 2399 spin_lock(&_minor_lock); 2400 2401 md = idr_find(&_minor_idr, minor); 2402 if (!md || md == MINOR_ALLOCED || (MINOR(disk_devt(dm_disk(md))) != minor) || 2403 test_bit(DMF_FREEING, &md->flags) || dm_deleting_md(md)) { 2404 md = NULL; 2405 goto out; 2406 } 2407 dm_get(md); 2408 out: 2409 spin_unlock(&_minor_lock); 2410 2411 return md; 2412 } 2413 EXPORT_SYMBOL_GPL(dm_get_md); 2414 2415 void *dm_get_mdptr(struct mapped_device *md) 2416 { 2417 return md->interface_ptr; 2418 } 2419 2420 void dm_set_mdptr(struct mapped_device *md, void *ptr) 2421 { 2422 md->interface_ptr = ptr; 2423 } 2424 2425 void dm_get(struct mapped_device *md) 2426 { 2427 atomic_inc(&md->holders); 2428 BUG_ON(test_bit(DMF_FREEING, &md->flags)); 2429 } 2430 2431 int dm_hold(struct mapped_device *md) 2432 { 2433 spin_lock(&_minor_lock); 2434 if (test_bit(DMF_FREEING, &md->flags)) { 2435 spin_unlock(&_minor_lock); 2436 return -EBUSY; 2437 } 2438 dm_get(md); 2439 spin_unlock(&_minor_lock); 2440 return 0; 2441 } 2442 EXPORT_SYMBOL_GPL(dm_hold); 2443 2444 const char *dm_device_name(struct mapped_device *md) 2445 { 2446 return md->name; 2447 } 2448 EXPORT_SYMBOL_GPL(dm_device_name); 2449 2450 static void __dm_destroy(struct mapped_device *md, bool wait) 2451 { 2452 struct dm_table *map; 2453 int srcu_idx; 2454 2455 might_sleep(); 2456 2457 spin_lock(&_minor_lock); 2458 idr_replace(&_minor_idr, MINOR_ALLOCED, MINOR(disk_devt(dm_disk(md)))); 2459 set_bit(DMF_FREEING, &md->flags); 2460 spin_unlock(&_minor_lock); 2461 2462 blk_mark_disk_dead(md->disk); 2463 2464 /* 2465 * Take suspend_lock so that presuspend and postsuspend methods 2466 * do not race with internal suspend. 2467 */ 2468 mutex_lock(&md->suspend_lock); 2469 map = dm_get_live_table(md, &srcu_idx); 2470 if (!dm_suspended_md(md)) { 2471 dm_table_presuspend_targets(map); 2472 set_bit(DMF_SUSPENDED, &md->flags); 2473 set_bit(DMF_POST_SUSPENDING, &md->flags); 2474 dm_table_postsuspend_targets(map); 2475 } 2476 /* dm_put_live_table must be before fsleep, otherwise deadlock is possible */ 2477 dm_put_live_table(md, srcu_idx); 2478 mutex_unlock(&md->suspend_lock); 2479 2480 /* 2481 * Rare, but there may be I/O requests still going to complete, 2482 * for example. Wait for all references to disappear. 2483 * No one should increment the reference count of the mapped_device, 2484 * after the mapped_device state becomes DMF_FREEING. 2485 */ 2486 if (wait) 2487 while (atomic_read(&md->holders)) 2488 fsleep(1000); 2489 else if (atomic_read(&md->holders)) 2490 DMWARN("%s: Forcibly removing mapped_device still in use! (%d users)", 2491 dm_device_name(md), atomic_read(&md->holders)); 2492 2493 dm_table_destroy(__unbind(md)); 2494 free_dev(md); 2495 } 2496 2497 void dm_destroy(struct mapped_device *md) 2498 { 2499 __dm_destroy(md, true); 2500 } 2501 2502 void dm_destroy_immediate(struct mapped_device *md) 2503 { 2504 __dm_destroy(md, false); 2505 } 2506 2507 void dm_put(struct mapped_device *md) 2508 { 2509 atomic_dec(&md->holders); 2510 } 2511 EXPORT_SYMBOL_GPL(dm_put); 2512 2513 static bool dm_in_flight_bios(struct mapped_device *md) 2514 { 2515 int cpu; 2516 unsigned long sum = 0; 2517 2518 for_each_possible_cpu(cpu) 2519 sum += *per_cpu_ptr(md->pending_io, cpu); 2520 2521 return sum != 0; 2522 } 2523 2524 static int dm_wait_for_bios_completion(struct mapped_device *md, unsigned int task_state) 2525 { 2526 int r = 0; 2527 DEFINE_WAIT(wait); 2528 2529 while (true) { 2530 prepare_to_wait(&md->wait, &wait, task_state); 2531 2532 if (!dm_in_flight_bios(md)) 2533 break; 2534 2535 if (signal_pending_state(task_state, current)) { 2536 r = -EINTR; 2537 break; 2538 } 2539 2540 io_schedule(); 2541 } 2542 finish_wait(&md->wait, &wait); 2543 2544 smp_rmb(); 2545 2546 return r; 2547 } 2548 2549 static int dm_wait_for_completion(struct mapped_device *md, unsigned int task_state) 2550 { 2551 int r = 0; 2552 2553 if (!queue_is_mq(md->queue)) 2554 return dm_wait_for_bios_completion(md, task_state); 2555 2556 while (true) { 2557 if (!blk_mq_queue_inflight(md->queue)) 2558 break; 2559 2560 if (signal_pending_state(task_state, current)) { 2561 r = -EINTR; 2562 break; 2563 } 2564 2565 fsleep(5000); 2566 } 2567 2568 return r; 2569 } 2570 2571 /* 2572 * Process the deferred bios 2573 */ 2574 static void dm_wq_work(struct work_struct *work) 2575 { 2576 struct mapped_device *md = container_of(work, struct mapped_device, work); 2577 struct bio *bio; 2578 2579 while (!test_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags)) { 2580 spin_lock_irq(&md->deferred_lock); 2581 bio = bio_list_pop(&md->deferred); 2582 spin_unlock_irq(&md->deferred_lock); 2583 2584 if (!bio) 2585 break; 2586 2587 submit_bio_noacct(bio); 2588 cond_resched(); 2589 } 2590 } 2591 2592 static void dm_queue_flush(struct mapped_device *md) 2593 { 2594 clear_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags); 2595 smp_mb__after_atomic(); 2596 queue_work(md->wq, &md->work); 2597 } 2598 2599 /* 2600 * Swap in a new table, returning the old one for the caller to destroy. 2601 */ 2602 struct dm_table *dm_swap_table(struct mapped_device *md, struct dm_table *table) 2603 { 2604 struct dm_table *live_map = NULL, *map = ERR_PTR(-EINVAL); 2605 struct queue_limits limits; 2606 int r; 2607 2608 mutex_lock(&md->suspend_lock); 2609 2610 /* device must be suspended */ 2611 if (!dm_suspended_md(md)) 2612 goto out; 2613 2614 /* 2615 * If the new table has no data devices, retain the existing limits. 2616 * This helps multipath with queue_if_no_path if all paths disappear, 2617 * then new I/O is queued based on these limits, and then some paths 2618 * reappear. 2619 */ 2620 if (dm_table_has_no_data_devices(table)) { 2621 live_map = dm_get_live_table_fast(md); 2622 if (live_map) 2623 limits = md->queue->limits; 2624 dm_put_live_table_fast(md); 2625 } 2626 2627 if (!live_map) { 2628 r = dm_calculate_queue_limits(table, &limits); 2629 if (r) { 2630 map = ERR_PTR(r); 2631 goto out; 2632 } 2633 } 2634 2635 map = __bind(md, table, &limits); 2636 dm_issue_global_event(); 2637 2638 out: 2639 mutex_unlock(&md->suspend_lock); 2640 return map; 2641 } 2642 2643 /* 2644 * Functions to lock and unlock any filesystem running on the 2645 * device. 2646 */ 2647 static int lock_fs(struct mapped_device *md) 2648 { 2649 int r; 2650 2651 WARN_ON(test_bit(DMF_FROZEN, &md->flags)); 2652 2653 r = freeze_bdev(md->disk->part0); 2654 if (!r) 2655 set_bit(DMF_FROZEN, &md->flags); 2656 return r; 2657 } 2658 2659 static void unlock_fs(struct mapped_device *md) 2660 { 2661 if (!test_bit(DMF_FROZEN, &md->flags)) 2662 return; 2663 thaw_bdev(md->disk->part0); 2664 clear_bit(DMF_FROZEN, &md->flags); 2665 } 2666 2667 /* 2668 * @suspend_flags: DM_SUSPEND_LOCKFS_FLAG and/or DM_SUSPEND_NOFLUSH_FLAG 2669 * @task_state: e.g. TASK_INTERRUPTIBLE or TASK_UNINTERRUPTIBLE 2670 * @dmf_suspended_flag: DMF_SUSPENDED or DMF_SUSPENDED_INTERNALLY 2671 * 2672 * If __dm_suspend returns 0, the device is completely quiescent 2673 * now. There is no request-processing activity. All new requests 2674 * are being added to md->deferred list. 2675 */ 2676 static int __dm_suspend(struct mapped_device *md, struct dm_table *map, 2677 unsigned int suspend_flags, unsigned int task_state, 2678 int dmf_suspended_flag) 2679 { 2680 bool do_lockfs = suspend_flags & DM_SUSPEND_LOCKFS_FLAG; 2681 bool noflush = suspend_flags & DM_SUSPEND_NOFLUSH_FLAG; 2682 int r; 2683 2684 lockdep_assert_held(&md->suspend_lock); 2685 2686 /* 2687 * DMF_NOFLUSH_SUSPENDING must be set before presuspend. 2688 * This flag is cleared before dm_suspend returns. 2689 */ 2690 if (noflush) 2691 set_bit(DMF_NOFLUSH_SUSPENDING, &md->flags); 2692 else 2693 DMDEBUG("%s: suspending with flush", dm_device_name(md)); 2694 2695 /* 2696 * This gets reverted if there's an error later and the targets 2697 * provide the .presuspend_undo hook. 2698 */ 2699 dm_table_presuspend_targets(map); 2700 2701 /* 2702 * Flush I/O to the device. 2703 * Any I/O submitted after lock_fs() may not be flushed. 2704 * noflush takes precedence over do_lockfs. 2705 * (lock_fs() flushes I/Os and waits for them to complete.) 2706 */ 2707 if (!noflush && do_lockfs) { 2708 r = lock_fs(md); 2709 if (r) { 2710 dm_table_presuspend_undo_targets(map); 2711 return r; 2712 } 2713 } 2714 2715 /* 2716 * Here we must make sure that no processes are submitting requests 2717 * to target drivers i.e. no one may be executing 2718 * dm_split_and_process_bio from dm_submit_bio. 2719 * 2720 * To get all processes out of dm_split_and_process_bio in dm_submit_bio, 2721 * we take the write lock. To prevent any process from reentering 2722 * dm_split_and_process_bio from dm_submit_bio and quiesce the thread 2723 * (dm_wq_work), we set DMF_BLOCK_IO_FOR_SUSPEND and call 2724 * flush_workqueue(md->wq). 2725 */ 2726 set_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags); 2727 if (map) 2728 synchronize_srcu(&md->io_barrier); 2729 2730 /* 2731 * Stop md->queue before flushing md->wq in case request-based 2732 * dm defers requests to md->wq from md->queue. 2733 */ 2734 if (dm_request_based(md)) 2735 dm_stop_queue(md->queue); 2736 2737 flush_workqueue(md->wq); 2738 2739 /* 2740 * At this point no more requests are entering target request routines. 2741 * We call dm_wait_for_completion to wait for all existing requests 2742 * to finish. 2743 */ 2744 r = dm_wait_for_completion(md, task_state); 2745 if (!r) 2746 set_bit(dmf_suspended_flag, &md->flags); 2747 2748 if (noflush) 2749 clear_bit(DMF_NOFLUSH_SUSPENDING, &md->flags); 2750 if (map) 2751 synchronize_srcu(&md->io_barrier); 2752 2753 /* were we interrupted ? */ 2754 if (r < 0) { 2755 dm_queue_flush(md); 2756 2757 if (dm_request_based(md)) 2758 dm_start_queue(md->queue); 2759 2760 unlock_fs(md); 2761 dm_table_presuspend_undo_targets(map); 2762 /* pushback list is already flushed, so skip flush */ 2763 } 2764 2765 return r; 2766 } 2767 2768 /* 2769 * We need to be able to change a mapping table under a mounted 2770 * filesystem. For example we might want to move some data in 2771 * the background. Before the table can be swapped with 2772 * dm_bind_table, dm_suspend must be called to flush any in 2773 * flight bios and ensure that any further io gets deferred. 2774 */ 2775 /* 2776 * Suspend mechanism in request-based dm. 2777 * 2778 * 1. Flush all I/Os by lock_fs() if needed. 2779 * 2. Stop dispatching any I/O by stopping the request_queue. 2780 * 3. Wait for all in-flight I/Os to be completed or requeued. 2781 * 2782 * To abort suspend, start the request_queue. 2783 */ 2784 int dm_suspend(struct mapped_device *md, unsigned int suspend_flags) 2785 { 2786 struct dm_table *map = NULL; 2787 int r = 0; 2788 2789 retry: 2790 mutex_lock_nested(&md->suspend_lock, SINGLE_DEPTH_NESTING); 2791 2792 if (dm_suspended_md(md)) { 2793 r = -EINVAL; 2794 goto out_unlock; 2795 } 2796 2797 if (dm_suspended_internally_md(md)) { 2798 /* already internally suspended, wait for internal resume */ 2799 mutex_unlock(&md->suspend_lock); 2800 r = wait_on_bit(&md->flags, DMF_SUSPENDED_INTERNALLY, TASK_INTERRUPTIBLE); 2801 if (r) 2802 return r; 2803 goto retry; 2804 } 2805 2806 map = rcu_dereference_protected(md->map, lockdep_is_held(&md->suspend_lock)); 2807 if (!map) { 2808 /* avoid deadlock with fs/namespace.c:do_mount() */ 2809 suspend_flags &= ~DM_SUSPEND_LOCKFS_FLAG; 2810 } 2811 2812 r = __dm_suspend(md, map, suspend_flags, TASK_INTERRUPTIBLE, DMF_SUSPENDED); 2813 if (r) 2814 goto out_unlock; 2815 2816 set_bit(DMF_POST_SUSPENDING, &md->flags); 2817 dm_table_postsuspend_targets(map); 2818 clear_bit(DMF_POST_SUSPENDING, &md->flags); 2819 2820 out_unlock: 2821 mutex_unlock(&md->suspend_lock); 2822 return r; 2823 } 2824 2825 static int __dm_resume(struct mapped_device *md, struct dm_table *map) 2826 { 2827 if (map) { 2828 int r = dm_table_resume_targets(map); 2829 2830 if (r) 2831 return r; 2832 } 2833 2834 dm_queue_flush(md); 2835 2836 /* 2837 * Flushing deferred I/Os must be done after targets are resumed 2838 * so that mapping of targets can work correctly. 2839 * Request-based dm is queueing the deferred I/Os in its request_queue. 2840 */ 2841 if (dm_request_based(md)) 2842 dm_start_queue(md->queue); 2843 2844 unlock_fs(md); 2845 2846 return 0; 2847 } 2848 2849 int dm_resume(struct mapped_device *md) 2850 { 2851 int r; 2852 struct dm_table *map = NULL; 2853 2854 retry: 2855 r = -EINVAL; 2856 mutex_lock_nested(&md->suspend_lock, SINGLE_DEPTH_NESTING); 2857 2858 if (!dm_suspended_md(md)) 2859 goto out; 2860 2861 if (dm_suspended_internally_md(md)) { 2862 /* already internally suspended, wait for internal resume */ 2863 mutex_unlock(&md->suspend_lock); 2864 r = wait_on_bit(&md->flags, DMF_SUSPENDED_INTERNALLY, TASK_INTERRUPTIBLE); 2865 if (r) 2866 return r; 2867 goto retry; 2868 } 2869 2870 map = rcu_dereference_protected(md->map, lockdep_is_held(&md->suspend_lock)); 2871 if (!map || !dm_table_get_size(map)) 2872 goto out; 2873 2874 r = __dm_resume(md, map); 2875 if (r) 2876 goto out; 2877 2878 clear_bit(DMF_SUSPENDED, &md->flags); 2879 out: 2880 mutex_unlock(&md->suspend_lock); 2881 2882 return r; 2883 } 2884 2885 /* 2886 * Internal suspend/resume works like userspace-driven suspend. It waits 2887 * until all bios finish and prevents issuing new bios to the target drivers. 2888 * It may be used only from the kernel. 2889 */ 2890 2891 static void __dm_internal_suspend(struct mapped_device *md, unsigned int suspend_flags) 2892 { 2893 struct dm_table *map = NULL; 2894 2895 lockdep_assert_held(&md->suspend_lock); 2896 2897 if (md->internal_suspend_count++) 2898 return; /* nested internal suspend */ 2899 2900 if (dm_suspended_md(md)) { 2901 set_bit(DMF_SUSPENDED_INTERNALLY, &md->flags); 2902 return; /* nest suspend */ 2903 } 2904 2905 map = rcu_dereference_protected(md->map, lockdep_is_held(&md->suspend_lock)); 2906 2907 /* 2908 * Using TASK_UNINTERRUPTIBLE because only NOFLUSH internal suspend is 2909 * supported. Properly supporting a TASK_INTERRUPTIBLE internal suspend 2910 * would require changing .presuspend to return an error -- avoid this 2911 * until there is a need for more elaborate variants of internal suspend. 2912 */ 2913 (void) __dm_suspend(md, map, suspend_flags, TASK_UNINTERRUPTIBLE, 2914 DMF_SUSPENDED_INTERNALLY); 2915 2916 set_bit(DMF_POST_SUSPENDING, &md->flags); 2917 dm_table_postsuspend_targets(map); 2918 clear_bit(DMF_POST_SUSPENDING, &md->flags); 2919 } 2920 2921 static void __dm_internal_resume(struct mapped_device *md) 2922 { 2923 BUG_ON(!md->internal_suspend_count); 2924 2925 if (--md->internal_suspend_count) 2926 return; /* resume from nested internal suspend */ 2927 2928 if (dm_suspended_md(md)) 2929 goto done; /* resume from nested suspend */ 2930 2931 /* 2932 * NOTE: existing callers don't need to call dm_table_resume_targets 2933 * (which may fail -- so best to avoid it for now by passing NULL map) 2934 */ 2935 (void) __dm_resume(md, NULL); 2936 2937 done: 2938 clear_bit(DMF_SUSPENDED_INTERNALLY, &md->flags); 2939 smp_mb__after_atomic(); 2940 wake_up_bit(&md->flags, DMF_SUSPENDED_INTERNALLY); 2941 } 2942 2943 void dm_internal_suspend_noflush(struct mapped_device *md) 2944 { 2945 mutex_lock(&md->suspend_lock); 2946 __dm_internal_suspend(md, DM_SUSPEND_NOFLUSH_FLAG); 2947 mutex_unlock(&md->suspend_lock); 2948 } 2949 EXPORT_SYMBOL_GPL(dm_internal_suspend_noflush); 2950 2951 void dm_internal_resume(struct mapped_device *md) 2952 { 2953 mutex_lock(&md->suspend_lock); 2954 __dm_internal_resume(md); 2955 mutex_unlock(&md->suspend_lock); 2956 } 2957 EXPORT_SYMBOL_GPL(dm_internal_resume); 2958 2959 /* 2960 * Fast variants of internal suspend/resume hold md->suspend_lock, 2961 * which prevents interaction with userspace-driven suspend. 2962 */ 2963 2964 void dm_internal_suspend_fast(struct mapped_device *md) 2965 { 2966 mutex_lock(&md->suspend_lock); 2967 if (dm_suspended_md(md) || dm_suspended_internally_md(md)) 2968 return; 2969 2970 set_bit(DMF_BLOCK_IO_FOR_SUSPEND, &md->flags); 2971 synchronize_srcu(&md->io_barrier); 2972 flush_workqueue(md->wq); 2973 dm_wait_for_completion(md, TASK_UNINTERRUPTIBLE); 2974 } 2975 EXPORT_SYMBOL_GPL(dm_internal_suspend_fast); 2976 2977 void dm_internal_resume_fast(struct mapped_device *md) 2978 { 2979 if (dm_suspended_md(md) || dm_suspended_internally_md(md)) 2980 goto done; 2981 2982 dm_queue_flush(md); 2983 2984 done: 2985 mutex_unlock(&md->suspend_lock); 2986 } 2987 EXPORT_SYMBOL_GPL(dm_internal_resume_fast); 2988 2989 /* 2990 *--------------------------------------------------------------- 2991 * Event notification. 2992 *--------------------------------------------------------------- 2993 */ 2994 int dm_kobject_uevent(struct mapped_device *md, enum kobject_action action, 2995 unsigned int cookie, bool need_resize_uevent) 2996 { 2997 int r; 2998 unsigned int noio_flag; 2999 char udev_cookie[DM_COOKIE_LENGTH]; 3000 char *envp[3] = { NULL, NULL, NULL }; 3001 char **envpp = envp; 3002 if (cookie) { 3003 snprintf(udev_cookie, DM_COOKIE_LENGTH, "%s=%u", 3004 DM_COOKIE_ENV_VAR_NAME, cookie); 3005 *envpp++ = udev_cookie; 3006 } 3007 if (need_resize_uevent) { 3008 *envpp++ = "RESIZE=1"; 3009 } 3010 3011 noio_flag = memalloc_noio_save(); 3012 3013 r = kobject_uevent_env(&disk_to_dev(md->disk)->kobj, action, envp); 3014 3015 memalloc_noio_restore(noio_flag); 3016 3017 return r; 3018 } 3019 3020 uint32_t dm_next_uevent_seq(struct mapped_device *md) 3021 { 3022 return atomic_add_return(1, &md->uevent_seq); 3023 } 3024 3025 uint32_t dm_get_event_nr(struct mapped_device *md) 3026 { 3027 return atomic_read(&md->event_nr); 3028 } 3029 3030 int dm_wait_event(struct mapped_device *md, int event_nr) 3031 { 3032 return wait_event_interruptible(md->eventq, 3033 (event_nr != atomic_read(&md->event_nr))); 3034 } 3035 3036 void dm_uevent_add(struct mapped_device *md, struct list_head *elist) 3037 { 3038 unsigned long flags; 3039 3040 spin_lock_irqsave(&md->uevent_lock, flags); 3041 list_add(elist, &md->uevent_list); 3042 spin_unlock_irqrestore(&md->uevent_lock, flags); 3043 } 3044 3045 /* 3046 * The gendisk is only valid as long as you have a reference 3047 * count on 'md'. 3048 */ 3049 struct gendisk *dm_disk(struct mapped_device *md) 3050 { 3051 return md->disk; 3052 } 3053 EXPORT_SYMBOL_GPL(dm_disk); 3054 3055 struct kobject *dm_kobject(struct mapped_device *md) 3056 { 3057 return &md->kobj_holder.kobj; 3058 } 3059 3060 struct mapped_device *dm_get_from_kobject(struct kobject *kobj) 3061 { 3062 struct mapped_device *md; 3063 3064 md = container_of(kobj, struct mapped_device, kobj_holder.kobj); 3065 3066 spin_lock(&_minor_lock); 3067 if (test_bit(DMF_FREEING, &md->flags) || dm_deleting_md(md)) { 3068 md = NULL; 3069 goto out; 3070 } 3071 dm_get(md); 3072 out: 3073 spin_unlock(&_minor_lock); 3074 3075 return md; 3076 } 3077 3078 int dm_suspended_md(struct mapped_device *md) 3079 { 3080 return test_bit(DMF_SUSPENDED, &md->flags); 3081 } 3082 3083 static int dm_post_suspending_md(struct mapped_device *md) 3084 { 3085 return test_bit(DMF_POST_SUSPENDING, &md->flags); 3086 } 3087 3088 int dm_suspended_internally_md(struct mapped_device *md) 3089 { 3090 return test_bit(DMF_SUSPENDED_INTERNALLY, &md->flags); 3091 } 3092 3093 int dm_test_deferred_remove_flag(struct mapped_device *md) 3094 { 3095 return test_bit(DMF_DEFERRED_REMOVE, &md->flags); 3096 } 3097 3098 int dm_suspended(struct dm_target *ti) 3099 { 3100 return dm_suspended_md(ti->table->md); 3101 } 3102 EXPORT_SYMBOL_GPL(dm_suspended); 3103 3104 int dm_post_suspending(struct dm_target *ti) 3105 { 3106 return dm_post_suspending_md(ti->table->md); 3107 } 3108 EXPORT_SYMBOL_GPL(dm_post_suspending); 3109 3110 int dm_noflush_suspending(struct dm_target *ti) 3111 { 3112 return __noflush_suspending(ti->table->md); 3113 } 3114 EXPORT_SYMBOL_GPL(dm_noflush_suspending); 3115 3116 void dm_free_md_mempools(struct dm_md_mempools *pools) 3117 { 3118 if (!pools) 3119 return; 3120 3121 bioset_exit(&pools->bs); 3122 bioset_exit(&pools->io_bs); 3123 3124 kfree(pools); 3125 } 3126 3127 struct dm_pr { 3128 u64 old_key; 3129 u64 new_key; 3130 u32 flags; 3131 bool abort; 3132 bool fail_early; 3133 int ret; 3134 enum pr_type type; 3135 struct pr_keys *read_keys; 3136 struct pr_held_reservation *rsv; 3137 }; 3138 3139 static int dm_call_pr(struct block_device *bdev, iterate_devices_callout_fn fn, 3140 struct dm_pr *pr) 3141 { 3142 struct mapped_device *md = bdev->bd_disk->private_data; 3143 struct dm_table *table; 3144 struct dm_target *ti; 3145 int ret = -ENOTTY, srcu_idx; 3146 3147 table = dm_get_live_table(md, &srcu_idx); 3148 if (!table || !dm_table_get_size(table)) 3149 goto out; 3150 3151 /* We only support devices that have a single target */ 3152 if (table->num_targets != 1) 3153 goto out; 3154 ti = dm_table_get_target(table, 0); 3155 3156 if (dm_suspended_md(md)) { 3157 ret = -EAGAIN; 3158 goto out; 3159 } 3160 3161 ret = -EINVAL; 3162 if (!ti->type->iterate_devices) 3163 goto out; 3164 3165 ti->type->iterate_devices(ti, fn, pr); 3166 ret = 0; 3167 out: 3168 dm_put_live_table(md, srcu_idx); 3169 return ret; 3170 } 3171 3172 /* 3173 * For register / unregister we need to manually call out to every path. 3174 */ 3175 static int __dm_pr_register(struct dm_target *ti, struct dm_dev *dev, 3176 sector_t start, sector_t len, void *data) 3177 { 3178 struct dm_pr *pr = data; 3179 const struct pr_ops *ops = dev->bdev->bd_disk->fops->pr_ops; 3180 int ret; 3181 3182 if (!ops || !ops->pr_register) { 3183 pr->ret = -EOPNOTSUPP; 3184 return -1; 3185 } 3186 3187 ret = ops->pr_register(dev->bdev, pr->old_key, pr->new_key, pr->flags); 3188 if (!ret) 3189 return 0; 3190 3191 if (!pr->ret) 3192 pr->ret = ret; 3193 3194 if (pr->fail_early) 3195 return -1; 3196 3197 return 0; 3198 } 3199 3200 static int dm_pr_register(struct block_device *bdev, u64 old_key, u64 new_key, 3201 u32 flags) 3202 { 3203 struct dm_pr pr = { 3204 .old_key = old_key, 3205 .new_key = new_key, 3206 .flags = flags, 3207 .fail_early = true, 3208 .ret = 0, 3209 }; 3210 int ret; 3211 3212 ret = dm_call_pr(bdev, __dm_pr_register, &pr); 3213 if (ret) { 3214 /* Didn't even get to register a path */ 3215 return ret; 3216 } 3217 3218 if (!pr.ret) 3219 return 0; 3220 ret = pr.ret; 3221 3222 if (!new_key) 3223 return ret; 3224 3225 /* unregister all paths if we failed to register any path */ 3226 pr.old_key = new_key; 3227 pr.new_key = 0; 3228 pr.flags = 0; 3229 pr.fail_early = false; 3230 (void) dm_call_pr(bdev, __dm_pr_register, &pr); 3231 return ret; 3232 } 3233 3234 3235 static int __dm_pr_reserve(struct dm_target *ti, struct dm_dev *dev, 3236 sector_t start, sector_t len, void *data) 3237 { 3238 struct dm_pr *pr = data; 3239 const struct pr_ops *ops = dev->bdev->bd_disk->fops->pr_ops; 3240 3241 if (!ops || !ops->pr_reserve) { 3242 pr->ret = -EOPNOTSUPP; 3243 return -1; 3244 } 3245 3246 pr->ret = ops->pr_reserve(dev->bdev, pr->old_key, pr->type, pr->flags); 3247 if (!pr->ret) 3248 return -1; 3249 3250 return 0; 3251 } 3252 3253 static int dm_pr_reserve(struct block_device *bdev, u64 key, enum pr_type type, 3254 u32 flags) 3255 { 3256 struct dm_pr pr = { 3257 .old_key = key, 3258 .flags = flags, 3259 .type = type, 3260 .fail_early = false, 3261 .ret = 0, 3262 }; 3263 int ret; 3264 3265 ret = dm_call_pr(bdev, __dm_pr_reserve, &pr); 3266 if (ret) 3267 return ret; 3268 3269 return pr.ret; 3270 } 3271 3272 /* 3273 * If there is a non-All Registrants type of reservation, the release must be 3274 * sent down the holding path. For the cases where there is no reservation or 3275 * the path is not the holder the device will also return success, so we must 3276 * try each path to make sure we got the correct path. 3277 */ 3278 static int __dm_pr_release(struct dm_target *ti, struct dm_dev *dev, 3279 sector_t start, sector_t len, void *data) 3280 { 3281 struct dm_pr *pr = data; 3282 const struct pr_ops *ops = dev->bdev->bd_disk->fops->pr_ops; 3283 3284 if (!ops || !ops->pr_release) { 3285 pr->ret = -EOPNOTSUPP; 3286 return -1; 3287 } 3288 3289 pr->ret = ops->pr_release(dev->bdev, pr->old_key, pr->type); 3290 if (pr->ret) 3291 return -1; 3292 3293 return 0; 3294 } 3295 3296 static int dm_pr_release(struct block_device *bdev, u64 key, enum pr_type type) 3297 { 3298 struct dm_pr pr = { 3299 .old_key = key, 3300 .type = type, 3301 .fail_early = false, 3302 }; 3303 int ret; 3304 3305 ret = dm_call_pr(bdev, __dm_pr_release, &pr); 3306 if (ret) 3307 return ret; 3308 3309 return pr.ret; 3310 } 3311 3312 static int __dm_pr_preempt(struct dm_target *ti, struct dm_dev *dev, 3313 sector_t start, sector_t len, void *data) 3314 { 3315 struct dm_pr *pr = data; 3316 const struct pr_ops *ops = dev->bdev->bd_disk->fops->pr_ops; 3317 3318 if (!ops || !ops->pr_preempt) { 3319 pr->ret = -EOPNOTSUPP; 3320 return -1; 3321 } 3322 3323 pr->ret = ops->pr_preempt(dev->bdev, pr->old_key, pr->new_key, pr->type, 3324 pr->abort); 3325 if (!pr->ret) 3326 return -1; 3327 3328 return 0; 3329 } 3330 3331 static int dm_pr_preempt(struct block_device *bdev, u64 old_key, u64 new_key, 3332 enum pr_type type, bool abort) 3333 { 3334 struct dm_pr pr = { 3335 .new_key = new_key, 3336 .old_key = old_key, 3337 .type = type, 3338 .fail_early = false, 3339 }; 3340 int ret; 3341 3342 ret = dm_call_pr(bdev, __dm_pr_preempt, &pr); 3343 if (ret) 3344 return ret; 3345 3346 return pr.ret; 3347 } 3348 3349 static int dm_pr_clear(struct block_device *bdev, u64 key) 3350 { 3351 struct mapped_device *md = bdev->bd_disk->private_data; 3352 const struct pr_ops *ops; 3353 int r, srcu_idx; 3354 3355 r = dm_prepare_ioctl(md, &srcu_idx, &bdev); 3356 if (r < 0) 3357 goto out; 3358 3359 ops = bdev->bd_disk->fops->pr_ops; 3360 if (ops && ops->pr_clear) 3361 r = ops->pr_clear(bdev, key); 3362 else 3363 r = -EOPNOTSUPP; 3364 out: 3365 dm_unprepare_ioctl(md, srcu_idx); 3366 return r; 3367 } 3368 3369 static int __dm_pr_read_keys(struct dm_target *ti, struct dm_dev *dev, 3370 sector_t start, sector_t len, void *data) 3371 { 3372 struct dm_pr *pr = data; 3373 const struct pr_ops *ops = dev->bdev->bd_disk->fops->pr_ops; 3374 3375 if (!ops || !ops->pr_read_keys) { 3376 pr->ret = -EOPNOTSUPP; 3377 return -1; 3378 } 3379 3380 pr->ret = ops->pr_read_keys(dev->bdev, pr->read_keys); 3381 if (!pr->ret) 3382 return -1; 3383 3384 return 0; 3385 } 3386 3387 static int dm_pr_read_keys(struct block_device *bdev, struct pr_keys *keys) 3388 { 3389 struct dm_pr pr = { 3390 .read_keys = keys, 3391 }; 3392 int ret; 3393 3394 ret = dm_call_pr(bdev, __dm_pr_read_keys, &pr); 3395 if (ret) 3396 return ret; 3397 3398 return pr.ret; 3399 } 3400 3401 static int __dm_pr_read_reservation(struct dm_target *ti, struct dm_dev *dev, 3402 sector_t start, sector_t len, void *data) 3403 { 3404 struct dm_pr *pr = data; 3405 const struct pr_ops *ops = dev->bdev->bd_disk->fops->pr_ops; 3406 3407 if (!ops || !ops->pr_read_reservation) { 3408 pr->ret = -EOPNOTSUPP; 3409 return -1; 3410 } 3411 3412 pr->ret = ops->pr_read_reservation(dev->bdev, pr->rsv); 3413 if (!pr->ret) 3414 return -1; 3415 3416 return 0; 3417 } 3418 3419 static int dm_pr_read_reservation(struct block_device *bdev, 3420 struct pr_held_reservation *rsv) 3421 { 3422 struct dm_pr pr = { 3423 .rsv = rsv, 3424 }; 3425 int ret; 3426 3427 ret = dm_call_pr(bdev, __dm_pr_read_reservation, &pr); 3428 if (ret) 3429 return ret; 3430 3431 return pr.ret; 3432 } 3433 3434 static const struct pr_ops dm_pr_ops = { 3435 .pr_register = dm_pr_register, 3436 .pr_reserve = dm_pr_reserve, 3437 .pr_release = dm_pr_release, 3438 .pr_preempt = dm_pr_preempt, 3439 .pr_clear = dm_pr_clear, 3440 .pr_read_keys = dm_pr_read_keys, 3441 .pr_read_reservation = dm_pr_read_reservation, 3442 }; 3443 3444 static const struct block_device_operations dm_blk_dops = { 3445 .submit_bio = dm_submit_bio, 3446 .poll_bio = dm_poll_bio, 3447 .open = dm_blk_open, 3448 .release = dm_blk_close, 3449 .ioctl = dm_blk_ioctl, 3450 .getgeo = dm_blk_getgeo, 3451 .report_zones = dm_blk_report_zones, 3452 .pr_ops = &dm_pr_ops, 3453 .owner = THIS_MODULE 3454 }; 3455 3456 static const struct block_device_operations dm_rq_blk_dops = { 3457 .open = dm_blk_open, 3458 .release = dm_blk_close, 3459 .ioctl = dm_blk_ioctl, 3460 .getgeo = dm_blk_getgeo, 3461 .pr_ops = &dm_pr_ops, 3462 .owner = THIS_MODULE 3463 }; 3464 3465 static const struct dax_operations dm_dax_ops = { 3466 .direct_access = dm_dax_direct_access, 3467 .zero_page_range = dm_dax_zero_page_range, 3468 .recovery_write = dm_dax_recovery_write, 3469 }; 3470 3471 /* 3472 * module hooks 3473 */ 3474 module_init(dm_init); 3475 module_exit(dm_exit); 3476 3477 module_param(major, uint, 0); 3478 MODULE_PARM_DESC(major, "The major number of the device mapper"); 3479 3480 module_param(reserved_bio_based_ios, uint, 0644); 3481 MODULE_PARM_DESC(reserved_bio_based_ios, "Reserved IOs in bio-based mempools"); 3482 3483 module_param(dm_numa_node, int, 0644); 3484 MODULE_PARM_DESC(dm_numa_node, "NUMA node for DM device memory allocations"); 3485 3486 module_param(swap_bios, int, 0644); 3487 MODULE_PARM_DESC(swap_bios, "Maximum allowed inflight swap IOs"); 3488 3489 MODULE_DESCRIPTION(DM_NAME " driver"); 3490 MODULE_AUTHOR("Joe Thornber <dm-devel@redhat.com>"); 3491 MODULE_LICENSE("GPL"); 3492