1 /* SPDX-License-Identifier: GPL-2.0 */
2 /*
3 * Portions Copyright (C) 1992 Drew Eckhardt
4 */
5 #ifndef _LINUX_BLKDEV_H
6 #define _LINUX_BLKDEV_H
7
8 #include <linux/types.h>
9 #include <linux/blk_types.h>
10 #include <linux/blk_plug.h>
11 #include <linux/device.h>
12 #include <linux/list.h>
13 #include <linux/llist.h>
14 #include <linux/minmax.h>
15 #include <linux/timer.h>
16 #include <linux/workqueue.h>
17 #include <linux/completion.h>
18 #include <linux/wait.h>
19 #include <linux/bio.h>
20 #include <linux/gfp.h>
21 #include <linux/kdev_t.h>
22 #include <linux/rcupdate.h>
23 #include <linux/percpu-refcount.h>
24 #include <linux/blkzoned.h>
25 #include <linux/sbitmap.h>
26 #include <linux/uuid.h>
27 #include <linux/xarray.h>
28 #include <linux/file.h>
29 #include <linux/lockdep.h>
30
31 struct module;
32 struct request_queue;
33 struct elevator_queue;
34 struct blk_trace;
35 struct request;
36 struct sg_io_hdr;
37 struct blkcg_gq;
38 struct blk_flush_queue;
39 struct kiocb;
40 struct pr_ops;
41 struct rq_qos;
42 struct hd_geometry;
43 struct blk_report_zones_args;
44 struct blk_queue_stats;
45 struct blk_stat_callback;
46 struct blk_crypto_profile;
47
48 extern const struct device_type disk_type;
49 extern const struct device_type part_type;
50 extern const struct class block_class;
51
52 /*
53 * Maximum number of blkcg policies allowed to be registered concurrently.
54 * Defined here to simplify include dependency.
55 */
56 #define BLKCG_MAX_POLS 6
57
58 #define DISK_MAX_PARTS 256
59 #define DISK_NAME_LEN 32
60
61 #define PARTITION_META_INFO_VOLNAMELTH 64
62 /*
63 * Enough for the string representation of any kind of UUID plus NULL.
64 * EFI UUID is 36 characters. MSDOS UUID is 11 characters.
65 */
66 #define PARTITION_META_INFO_UUIDLTH (UUID_STRING_LEN + 1)
67
68 struct partition_meta_info {
69 char uuid[PARTITION_META_INFO_UUIDLTH];
70 u8 volname[PARTITION_META_INFO_VOLNAMELTH];
71 };
72
73 /**
74 * DOC: genhd capability flags
75 *
76 * ``GENHD_FL_REMOVABLE``: indicates that the block device gives access to
77 * removable media. When set, the device remains present even when media is not
78 * inserted. Shall not be set for devices which are removed entirely when the
79 * media is removed.
80 *
81 * ``GENHD_FL_HIDDEN``: the block device is hidden; it doesn't produce events,
82 * doesn't appear in sysfs, and can't be opened from userspace or using
83 * blkdev_get*. Used for the underlying components of multipath devices.
84 *
85 * ``GENHD_FL_NO_PART``: partition support is disabled. The kernel will not
86 * scan for partitions from add_disk, and users can't add partitions manually.
87 *
88 */
89 enum {
90 GENHD_FL_REMOVABLE = 1 << 0,
91 GENHD_FL_HIDDEN = 1 << 1,
92 GENHD_FL_NO_PART = 1 << 2,
93 };
94
95 enum {
96 DISK_EVENT_MEDIA_CHANGE = 1 << 0, /* media changed */
97 DISK_EVENT_EJECT_REQUEST = 1 << 1, /* eject requested */
98 };
99
100 enum {
101 /* Poll even if events_poll_msecs is unset */
102 DISK_EVENT_FLAG_POLL = 1 << 0,
103 /* Forward events to udev */
104 DISK_EVENT_FLAG_UEVENT = 1 << 1,
105 /* Block event polling when open for exclusive write */
106 DISK_EVENT_FLAG_BLOCK_ON_EXCL_WRITE = 1 << 2,
107 };
108
109 struct disk_events;
110 struct badblocks;
111
112 enum blk_integrity_checksum {
113 BLK_INTEGRITY_CSUM_NONE = 0,
114 BLK_INTEGRITY_CSUM_IP = 1,
115 BLK_INTEGRITY_CSUM_CRC = 2,
116 BLK_INTEGRITY_CSUM_CRC64 = 3,
117 } __packed ;
118
119 struct blk_integrity {
120 unsigned char flags;
121 enum blk_integrity_checksum csum_type;
122 unsigned char metadata_size;
123 unsigned char pi_offset;
124 unsigned char interval_exp;
125 unsigned char tag_size;
126 unsigned char pi_tuple_size;
127 };
128
129 /* open for reading */
130 #define BLK_OPEN_READ ((__force blk_mode_t)(1 << 0))
131 /* open for writing */
132 #define BLK_OPEN_WRITE ((__force blk_mode_t)(1 << 1))
133 /* open exclusively (vs other exclusive openers */
134 #define BLK_OPEN_EXCL ((__force blk_mode_t)(1 << 2))
135 /* opened with O_NDELAY */
136 #define BLK_OPEN_NDELAY ((__force blk_mode_t)(1 << 3))
137 /* open for "writes" only for ioctls (specialy hack for floppy.c) */
138 #define BLK_OPEN_WRITE_IOCTL ((__force blk_mode_t)(1 << 4))
139 /* open is exclusive wrt all other BLK_OPEN_WRITE opens to the device */
140 #define BLK_OPEN_RESTRICT_WRITES ((__force blk_mode_t)(1 << 5))
141 /* return partition scanning errors */
142 #define BLK_OPEN_STRICT_SCAN ((__force blk_mode_t)(1 << 6))
143
144 struct gendisk {
145 /*
146 * major/first_minor/minors should not be set by any new driver, the
147 * block core will take care of allocating them automatically.
148 */
149 int major;
150 int first_minor;
151 int minors;
152
153 char disk_name[DISK_NAME_LEN]; /* name of major driver */
154
155 unsigned short events; /* supported events */
156 unsigned short event_flags; /* flags related to event processing */
157
158 struct xarray part_tbl;
159 struct block_device *part0;
160
161 const struct block_device_operations *fops;
162 struct request_queue *queue;
163 void *private_data;
164
165 struct bio_set bio_split;
166
167 int flags;
168 unsigned long state;
169 #define GD_NEED_PART_SCAN 0
170 #define GD_READ_ONLY 1
171 #define GD_DEAD 2
172 #define GD_NATIVE_CAPACITY 3
173 #define GD_ADDED 4
174 #define GD_SUPPRESS_PART_SCAN 5
175 #define GD_OWNS_QUEUE 6
176 #define GD_ZONE_APPEND_USED 7
177 #define GD_ERROR_INJECT 8
178
179 struct mutex open_mutex; /* open/close mutex */
180 unsigned open_partitions; /* number of open partitions */
181
182 struct backing_dev_info *bdi;
183 struct kobject queue_kobj; /* the queue/ directory */
184 struct kobject *slave_dir;
185 #ifdef CONFIG_BLOCK_HOLDER_DEPRECATED
186 struct list_head slave_bdevs;
187 #endif
188 struct timer_rand_state *random;
189 struct disk_events *ev;
190
191 #ifdef CONFIG_BLK_DEV_ZONED
192 /*
193 * Zoned block device information. Reads of this information must be
194 * protected with blk_queue_enter() / blk_queue_exit(). Modifying this
195 * information is only allowed while no requests are being processed.
196 * See also blk_mq_freeze_queue() and blk_mq_unfreeze_queue().
197 */
198 unsigned int nr_zones;
199 unsigned int zone_capacity;
200 unsigned int last_zone_capacity;
201 u8 __rcu *zones_cond;
202 unsigned int zone_wplugs_hash_bits;
203 atomic_t nr_zone_wplugs;
204 spinlock_t zone_wplugs_hash_lock;
205 struct mempool *zone_wplugs_pool;
206 struct hlist_head *zone_wplugs_hash;
207 struct workqueue_struct *zone_wplugs_wq;
208 spinlock_t zone_wplugs_list_lock;
209 struct list_head zone_wplugs_list;
210 struct task_struct *zone_wplugs_worker;
211 struct completion zone_wplugs_worker_bio_done;
212 #endif /* CONFIG_BLK_DEV_ZONED */
213
214 #if IS_ENABLED(CONFIG_CDROM)
215 struct cdrom_device_info *cdi;
216 #endif
217 int node_id;
218 struct badblocks *bb;
219 struct lockdep_map lockdep_map;
220 u64 diskseq;
221 blk_mode_t open_mode;
222
223 /*
224 * Independent sector access ranges. This is always NULL for
225 * devices that do not have multiple independent access ranges.
226 */
227 struct blk_independent_access_ranges *ia_ranges;
228
229 #ifdef CONFIG_BLK_ERROR_INJECTION
230 struct mutex error_injection_lock;
231 struct list_head error_injection_list;
232 #endif
233
234 struct mutex rqos_state_mutex; /* rqos state change mutex */
235 };
236
237 /**
238 * disk_openers - returns how many openers are there for a disk
239 * @disk: disk to check
240 *
241 * This returns the number of openers for a disk. Note that this value is only
242 * stable if disk->open_mutex is held.
243 *
244 * Note: Due to a quirk in the block layer open code, each open partition is
245 * only counted once even if there are multiple openers.
246 */
disk_openers(struct gendisk * disk)247 static inline unsigned int disk_openers(struct gendisk *disk)
248 {
249 return atomic_read(&disk->part0->bd_openers);
250 }
251
252 /**
253 * disk_has_partscan - return %true if partition scanning is enabled on a disk
254 * @disk: disk to check
255 *
256 * Returns %true if partitions scanning is enabled for @disk, or %false if
257 * partition scanning is disabled either permanently or temporarily.
258 */
disk_has_partscan(struct gendisk * disk)259 static inline bool disk_has_partscan(struct gendisk *disk)
260 {
261 return !(disk->flags & (GENHD_FL_NO_PART | GENHD_FL_HIDDEN)) &&
262 !test_bit(GD_SUPPRESS_PART_SCAN, &disk->state);
263 }
264
265 /*
266 * The gendisk is refcounted by the part0 block_device, and the bd_device
267 * therein is also used for device model presentation in sysfs.
268 */
269 #define dev_to_disk(device) \
270 (dev_to_bdev(device)->bd_disk)
271 #define disk_to_dev(disk) \
272 (&((disk)->part0->bd_device))
273
274 #if IS_REACHABLE(CONFIG_CDROM)
275 #define disk_to_cdi(disk) ((disk)->cdi)
276 #else
277 #define disk_to_cdi(disk) NULL
278 #endif
279
disk_devt(struct gendisk * disk)280 static inline dev_t disk_devt(struct gendisk *disk)
281 {
282 return MKDEV(disk->major, disk->first_minor);
283 }
284
285 #ifdef CONFIG_TRANSPARENT_HUGEPAGE
286 /*
287 * We should strive for 1 << (PAGE_SHIFT + MAX_PAGECACHE_ORDER)
288 * however we constrain this to what we can validate and test.
289 */
290 #define BLK_MAX_BLOCK_SIZE SZ_64K
291 #else
292 #define BLK_MAX_BLOCK_SIZE PAGE_SIZE
293 #endif
294
295
296 /* blk_validate_limits() validates bsize, so drivers don't usually need to */
blk_validate_block_size(unsigned long bsize)297 static inline int blk_validate_block_size(unsigned long bsize)
298 {
299 if (bsize < 512 || bsize > BLK_MAX_BLOCK_SIZE || !is_power_of_2(bsize))
300 return -EINVAL;
301
302 return 0;
303 }
304
blk_op_is_passthrough(blk_opf_t op)305 static inline bool blk_op_is_passthrough(blk_opf_t op)
306 {
307 op &= REQ_OP_MASK;
308 return op == REQ_OP_DRV_IN || op == REQ_OP_DRV_OUT;
309 }
310
311 /* flags set by the driver in queue_limits.features */
312 typedef unsigned int __bitwise blk_features_t;
313
314 /* supports a volatile write cache */
315 #define BLK_FEAT_WRITE_CACHE ((__force blk_features_t)(1u << 0))
316
317 /* supports passing on the FUA bit */
318 #define BLK_FEAT_FUA ((__force blk_features_t)(1u << 1))
319
320 /* rotational device (hard drive or floppy) */
321 #define BLK_FEAT_ROTATIONAL ((__force blk_features_t)(1u << 2))
322
323 /* contributes to the random number pool */
324 #define BLK_FEAT_ADD_RANDOM ((__force blk_features_t)(1u << 3))
325
326 /* do disk/partitions IO accounting */
327 #define BLK_FEAT_IO_STAT ((__force blk_features_t)(1u << 4))
328
329 /* don't modify data until writeback is done */
330 #define BLK_FEAT_STABLE_WRITES ((__force blk_features_t)(1u << 5))
331
332 /* always completes in submit context */
333 #define BLK_FEAT_SYNCHRONOUS ((__force blk_features_t)(1u << 6))
334
335 /* supports REQ_NOWAIT */
336 #define BLK_FEAT_NOWAIT ((__force blk_features_t)(1u << 7))
337
338 /* supports DAX */
339 #define BLK_FEAT_DAX ((__force blk_features_t)(1u << 8))
340
341 /* supports I/O polling */
342 #define BLK_FEAT_POLL ((__force blk_features_t)(1u << 9))
343
344 /* is a zoned device */
345 #define BLK_FEAT_ZONED ((__force blk_features_t)(1u << 10))
346
347 /* supports PCI(e) p2p requests */
348 #define BLK_FEAT_PCI_P2PDMA ((__force blk_features_t)(1u << 12))
349
350 /* skip this queue in blk_mq_(un)quiesce_tagset */
351 #define BLK_FEAT_SKIP_TAGSET_QUIESCE ((__force blk_features_t)(1u << 13))
352
353 /* atomic writes enabled */
354 #define BLK_FEAT_ATOMIC_WRITES ((__force blk_features_t)(1u << 14))
355
356 /* undocumented magic for bcache */
357 #define BLK_FEAT_RAID_PARTIAL_STRIPES_EXPENSIVE \
358 ((__force blk_features_t)(1u << 15))
359
360 /*
361 * Flags automatically inherited when stacking limits.
362 */
363 #define BLK_FEAT_INHERIT_MASK \
364 (BLK_FEAT_WRITE_CACHE | BLK_FEAT_FUA | BLK_FEAT_ROTATIONAL | \
365 BLK_FEAT_STABLE_WRITES | BLK_FEAT_ZONED | \
366 BLK_FEAT_RAID_PARTIAL_STRIPES_EXPENSIVE)
367
368 /* internal flags in queue_limits.flags */
369 typedef unsigned int __bitwise blk_flags_t;
370
371 /* do not send FLUSH/FUA commands despite advertising a write cache */
372 #define BLK_FLAG_WRITE_CACHE_DISABLED ((__force blk_flags_t)(1u << 0))
373
374 /* I/O topology is misaligned */
375 #define BLK_FLAG_MISALIGNED ((__force blk_flags_t)(1u << 1))
376
377 /* passthrough command IO accounting */
378 #define BLK_FLAG_IOSTATS_PASSTHROUGH ((__force blk_flags_t)(1u << 2))
379
380 struct queue_limits {
381 blk_features_t features;
382 blk_flags_t flags;
383 unsigned long seg_boundary_mask;
384 unsigned long virt_boundary_mask;
385
386 unsigned int max_hw_sectors;
387 unsigned int max_dev_sectors;
388 unsigned int chunk_sectors;
389 unsigned int max_sectors;
390 unsigned int max_user_sectors;
391 unsigned int max_segment_size;
392 unsigned int max_fast_segment_size;
393 unsigned int physical_block_size;
394 unsigned int logical_block_size;
395 unsigned int alignment_offset;
396 unsigned int io_min;
397 unsigned int io_opt;
398 unsigned int max_discard_sectors;
399 unsigned int max_hw_discard_sectors;
400 unsigned int max_user_discard_sectors;
401 unsigned int max_secure_erase_sectors;
402 unsigned int max_write_zeroes_sectors;
403 unsigned int max_wzeroes_unmap_sectors;
404 unsigned int max_hw_wzeroes_unmap_sectors;
405 unsigned int max_user_wzeroes_unmap_sectors;
406 unsigned int max_hw_zone_append_sectors;
407 unsigned int max_zone_append_sectors;
408 unsigned int discard_granularity;
409 unsigned int discard_alignment;
410 unsigned int zone_write_granularity;
411
412 /* atomic write limits */
413 unsigned int atomic_write_hw_max;
414 unsigned int atomic_write_max_sectors;
415 unsigned int atomic_write_hw_boundary;
416 unsigned int atomic_write_boundary_sectors;
417 unsigned int atomic_write_hw_unit_min;
418 unsigned int atomic_write_unit_min;
419 unsigned int atomic_write_hw_unit_max;
420 unsigned int atomic_write_unit_max;
421
422 unsigned short max_segments;
423 unsigned short max_integrity_segments;
424 unsigned short max_discard_segments;
425
426 unsigned short max_write_streams;
427 unsigned int write_stream_granularity;
428
429 unsigned int max_open_zones;
430 unsigned int max_active_zones;
431
432 /*
433 * Drivers that set dma_alignment to less than 511 must be prepared to
434 * handle individual bvec's that are not a multiple of a SECTOR_SIZE
435 * due to possible offsets.
436 */
437 unsigned int dma_alignment;
438 unsigned int dma_pad_mask;
439
440 struct blk_integrity integrity;
441 };
442
443 typedef int (*report_zones_cb)(struct blk_zone *zone, unsigned int idx,
444 void *data);
445
446 int disk_report_zone(struct gendisk *disk, struct blk_zone *zone,
447 unsigned int idx, struct blk_report_zones_args *args);
448
449 int blkdev_get_zone_info(struct block_device *bdev, sector_t sector,
450 struct blk_zone *zone);
451
452 #define BLK_ALL_ZONES ((unsigned int)-1)
453 int blkdev_report_zones(struct block_device *bdev, sector_t sector,
454 unsigned int nr_zones, report_zones_cb cb, void *data);
455 int blkdev_report_zones_cached(struct block_device *bdev, sector_t sector,
456 unsigned int nr_zones, report_zones_cb cb, void *data);
457 int blkdev_zone_mgmt(struct block_device *bdev, enum req_op op,
458 sector_t sectors, sector_t nr_sectors);
459 int blk_revalidate_disk_zones(struct gendisk *disk);
460
461 /*
462 * Independent access ranges: struct blk_independent_access_range describes
463 * a range of contiguous sectors that can be accessed using device command
464 * execution resources that are independent from the resources used for
465 * other access ranges. This is typically found with single-LUN multi-actuator
466 * HDDs where each access range is served by a different set of heads.
467 * The set of independent ranges supported by the device is defined using
468 * struct blk_independent_access_ranges. The independent ranges must not overlap
469 * and must include all sectors within the disk capacity (no sector holes
470 * allowed).
471 * For a device with multiple ranges, requests targeting sectors in different
472 * ranges can be executed in parallel. A request can straddle an access range
473 * boundary.
474 */
475 struct blk_independent_access_range {
476 struct kobject kobj;
477 sector_t sector;
478 sector_t nr_sectors;
479 };
480
481 struct blk_independent_access_ranges {
482 struct kobject kobj;
483 bool sysfs_registered;
484 unsigned int nr_ia_ranges;
485 struct blk_independent_access_range ia_range[];
486 };
487
488 struct request_queue {
489 /*
490 * The queue owner gets to use this for whatever they like.
491 * ll_rw_blk doesn't touch it.
492 */
493 void *queuedata;
494
495 struct elevator_queue *elevator;
496
497 const struct blk_mq_ops *mq_ops;
498
499 /* sw queues */
500 struct blk_mq_ctx __percpu *queue_ctx;
501
502 /*
503 * various queue flags, see QUEUE_* below
504 */
505 unsigned long queue_flags;
506
507 unsigned int __data_racy rq_timeout;
508
509 unsigned int queue_depth;
510
511 refcount_t refs;
512
513 /* hw dispatch queues */
514 unsigned int nr_hw_queues;
515 struct blk_mq_hw_ctx * __rcu *queue_hw_ctx __counted_by_ptr(nr_hw_queues);
516
517 struct percpu_ref q_usage_counter;
518 struct lock_class_key io_lock_cls_key;
519 struct lockdep_map io_lockdep_map;
520
521 struct lock_class_key q_lock_cls_key;
522 struct lockdep_map q_lockdep_map;
523
524 struct request *last_merge;
525
526 spinlock_t queue_lock;
527
528 int quiesce_depth;
529
530 struct gendisk *disk;
531
532 /*
533 * mq queue kobject
534 */
535 struct kobject *mq_kobj;
536
537 struct queue_limits limits;
538
539 #ifdef CONFIG_PM
540 struct device *dev;
541 enum rpm_status rpm_status;
542 #endif
543
544 /*
545 * Number of contexts that have called blk_set_pm_only(). If this
546 * counter is above zero then only RQF_PM requests are processed.
547 */
548 atomic_t pm_only;
549
550 struct blk_queue_stats *stats;
551 struct rq_qos *rq_qos;
552 struct mutex rq_qos_mutex;
553
554 /*
555 * ida allocated id for this queue. Used to index queues from
556 * ioctx.
557 */
558 int id;
559
560 /*
561 * queue settings
562 */
563 unsigned int nr_requests; /* Max # of requests */
564 unsigned int async_depth; /* Max # of async requests */
565
566 #ifdef CONFIG_BLK_INLINE_ENCRYPTION
567 struct blk_crypto_profile *crypto_profile;
568 struct kobject *crypto_kobject;
569 #endif
570
571 struct timer_list timeout;
572 struct work_struct timeout_work;
573
574 atomic_t nr_active_requests_shared_tags;
575
576 struct blk_mq_tags *sched_shared_tags;
577
578 struct list_head icq_list;
579 #ifdef CONFIG_BLK_CGROUP
580 DECLARE_BITMAP (blkcg_pols, BLKCG_MAX_POLS);
581 struct blkcg_gq *root_blkg;
582 struct list_head blkg_list;
583 struct mutex blkcg_mutex;
584 #endif
585
586 int node;
587
588 spinlock_t requeue_lock;
589 struct list_head requeue_list;
590 struct delayed_work requeue_work;
591
592 #ifdef CONFIG_BLK_DEV_IO_TRACE
593 struct blk_trace __rcu *blk_trace;
594 #endif
595 /*
596 * for flush operations
597 */
598 struct blk_flush_queue *fq;
599 struct list_head flush_list;
600
601 /*
602 * Protects against I/O scheduler switching, particularly when updating
603 * q->elevator. Since the elevator update code path may also modify q->
604 * nr_requests and wbt latency, this lock also protects the sysfs attrs
605 * nr_requests and wbt_lat_usec. Additionally the nr_hw_queues update
606 * may modify hctx tags, reserved-tags and cpumask, so this lock also
607 * helps protect the hctx sysfs/debugfs attrs. To ensure proper locking
608 * order during an elevator or nr_hw_queue update, first freeze the
609 * queue, then acquire ->elevator_lock.
610 */
611 struct mutex elevator_lock;
612
613 struct mutex sysfs_lock;
614 /*
615 * Protects queue limits and also sysfs attribute read_ahead_kb.
616 */
617 struct mutex limits_lock;
618
619 /*
620 * for reusing dead hctx instance in case of updating
621 * nr_hw_queues
622 */
623 struct list_head unused_hctx_list;
624 spinlock_t unused_hctx_lock;
625
626 int mq_freeze_depth;
627
628 #ifdef CONFIG_BLK_DEV_THROTTLING
629 /* Throttle data */
630 struct throtl_data *td;
631 #endif
632 struct rcu_head rcu_head;
633 #ifdef CONFIG_LOCKDEP
634 struct task_struct *mq_freeze_owner;
635 int mq_freeze_owner_depth;
636 /*
637 * Records disk & queue state in current context, used in unfreeze
638 * queue
639 */
640 bool mq_freeze_disk_dead;
641 bool mq_freeze_queue_dying;
642 #endif
643 wait_queue_head_t mq_freeze_wq;
644 /*
645 * Protect concurrent access to q_usage_counter by
646 * percpu_ref_kill() and percpu_ref_reinit().
647 */
648 struct mutex mq_freeze_lock;
649
650 struct blk_mq_tag_set *tag_set;
651 struct list_head tag_set_list;
652
653 struct dentry *debugfs_dir;
654 struct dentry *sched_debugfs_dir;
655 struct dentry *rqos_debugfs_dir;
656 /*
657 * Serializes all debugfs metadata operations using the above dentries.
658 */
659 struct mutex debugfs_mutex;
660 };
661
662 /* Keep blk_queue_flag_name[] in sync with the definitions below */
663 enum {
664 QUEUE_FLAG_DYING, /* queue being torn down */
665 QUEUE_FLAG_NOMERGES, /* disable merge attempts */
666 QUEUE_FLAG_SAME_COMP, /* complete on same CPU-group */
667 QUEUE_FLAG_FAIL_IO, /* fake timeout */
668 QUEUE_FLAG_NOXMERGES, /* No extended merges */
669 QUEUE_FLAG_SAME_FORCE, /* force complete on same CPU */
670 QUEUE_FLAG_INIT_DONE, /* queue is initialized */
671 QUEUE_FLAG_STATS, /* track IO start and completion times */
672 QUEUE_FLAG_REGISTERED, /* queue has been registered to a disk */
673 QUEUE_FLAG_QUIESCED, /* queue has been quiesced */
674 QUEUE_FLAG_RQ_ALLOC_TIME, /* record rq->alloc_time_ns */
675 QUEUE_FLAG_HCTX_ACTIVE, /* at least one blk-mq hctx is active */
676 QUEUE_FLAG_SQ_SCHED, /* single queue style io dispatch */
677 QUEUE_FLAG_DISABLE_WBT_DEF, /* for sched to disable/enable wbt */
678 QUEUE_FLAG_NO_ELV_SWITCH, /* can't switch elevator any more */
679 QUEUE_FLAG_QOS_ENABLED, /* qos is enabled */
680 QUEUE_FLAG_BIO_ISSUE_TIME, /* record bio->issue_time_ns */
681 QUEUE_FLAG_ZONED_QD1_WRITES, /* Limit zoned devices writes to QD=1 */
682 QUEUE_FLAG_MAX
683 };
684
685 #define QUEUE_FLAG_MQ_DEFAULT (1UL << QUEUE_FLAG_SAME_COMP)
686
687 void blk_queue_flag_set(unsigned int flag, struct request_queue *q);
688 void blk_queue_flag_clear(unsigned int flag, struct request_queue *q);
689
690 #define blk_queue_dying(q) test_bit(QUEUE_FLAG_DYING, &(q)->queue_flags)
691 #define blk_queue_init_done(q) test_bit(QUEUE_FLAG_INIT_DONE, &(q)->queue_flags)
692 #define blk_queue_nomerges(q) test_bit(QUEUE_FLAG_NOMERGES, &(q)->queue_flags)
693 #define blk_queue_noxmerges(q) \
694 test_bit(QUEUE_FLAG_NOXMERGES, &(q)->queue_flags)
695 #define blk_queue_rot(q) ((q)->limits.features & BLK_FEAT_ROTATIONAL)
696 #define blk_queue_io_stat(q) ((q)->limits.features & BLK_FEAT_IO_STAT)
697 #define blk_queue_passthrough_stat(q) \
698 ((q)->limits.flags & BLK_FLAG_IOSTATS_PASSTHROUGH)
699 #define blk_queue_dax(q) ((q)->limits.features & BLK_FEAT_DAX)
700 #define blk_queue_pci_p2pdma(q) ((q)->limits.features & BLK_FEAT_PCI_P2PDMA)
701 #ifdef CONFIG_BLK_RQ_ALLOC_TIME
702 #define blk_queue_rq_alloc_time(q) \
703 test_bit(QUEUE_FLAG_RQ_ALLOC_TIME, &(q)->queue_flags)
704 #else
705 #define blk_queue_rq_alloc_time(q) false
706 #endif
707
708 #define blk_noretry_request(rq) \
709 ((rq)->cmd_flags & (REQ_FAILFAST_DEV|REQ_FAILFAST_TRANSPORT| \
710 REQ_FAILFAST_DRIVER))
711 #define blk_queue_quiesced(q) test_bit(QUEUE_FLAG_QUIESCED, &(q)->queue_flags)
712 #define blk_queue_pm_only(q) atomic_read(&(q)->pm_only)
713 #define blk_queue_registered(q) test_bit(QUEUE_FLAG_REGISTERED, &(q)->queue_flags)
714 #define blk_queue_sq_sched(q) test_bit(QUEUE_FLAG_SQ_SCHED, &(q)->queue_flags)
715 #define blk_queue_skip_tagset_quiesce(q) \
716 ((q)->limits.features & BLK_FEAT_SKIP_TAGSET_QUIESCE)
717 #define blk_queue_disable_wbt(q) \
718 test_bit(QUEUE_FLAG_DISABLE_WBT_DEF, &(q)->queue_flags)
719 #define blk_queue_no_elv_switch(q) \
720 test_bit(QUEUE_FLAG_NO_ELV_SWITCH, &(q)->queue_flags)
721 #define blk_queue_zoned_qd1_writes(q) \
722 test_bit(QUEUE_FLAG_ZONED_QD1_WRITES, &(q)->queue_flags)
723
724 extern void blk_set_pm_only(struct request_queue *q);
725 extern void blk_clear_pm_only(struct request_queue *q);
726
727 #define list_entry_rq(ptr) list_entry((ptr), struct request, queuelist)
728
729 #define dma_map_bvec(dev, bv, dir, attrs) \
730 dma_map_page_attrs(dev, (bv)->bv_page, (bv)->bv_offset, (bv)->bv_len, \
731 (dir), (attrs))
732
queue_is_mq(struct request_queue * q)733 static inline bool queue_is_mq(struct request_queue *q)
734 {
735 return q->mq_ops;
736 }
737
738 #ifdef CONFIG_PM
queue_rpm_status(struct request_queue * q)739 static inline enum rpm_status queue_rpm_status(struct request_queue *q)
740 {
741 return q->rpm_status;
742 }
743 #else
queue_rpm_status(struct request_queue * q)744 static inline enum rpm_status queue_rpm_status(struct request_queue *q)
745 {
746 return RPM_ACTIVE;
747 }
748 #endif
749
blk_queue_is_zoned(struct request_queue * q)750 static inline bool blk_queue_is_zoned(struct request_queue *q)
751 {
752 return IS_ENABLED(CONFIG_BLK_DEV_ZONED) &&
753 (q->limits.features & BLK_FEAT_ZONED);
754 }
755
disk_zone_no(struct gendisk * disk,sector_t sector)756 static inline unsigned int disk_zone_no(struct gendisk *disk, sector_t sector)
757 {
758 if (!blk_queue_is_zoned(disk->queue))
759 return 0;
760 return sector >> ilog2(disk->queue->limits.chunk_sectors);
761 }
762
bdev_max_open_zones(struct block_device * bdev)763 static inline unsigned int bdev_max_open_zones(struct block_device *bdev)
764 {
765 return bdev->bd_disk->queue->limits.max_open_zones;
766 }
767
bdev_max_active_zones(struct block_device * bdev)768 static inline unsigned int bdev_max_active_zones(struct block_device *bdev)
769 {
770 return bdev->bd_disk->queue->limits.max_active_zones;
771 }
772
blk_queue_depth(struct request_queue * q)773 static inline unsigned int blk_queue_depth(struct request_queue *q)
774 {
775 if (q->queue_depth)
776 return q->queue_depth;
777
778 return q->nr_requests;
779 }
780
781 /*
782 * default timeout for SG_IO if none specified
783 */
784 #define BLK_DEFAULT_SG_TIMEOUT (60 * HZ)
785 #define BLK_MIN_SG_TIMEOUT (7 * HZ)
786
787 /* This should not be used directly - use rq_for_each_segment */
788 #define for_each_bio(_bio) \
789 for (; _bio; _bio = _bio->bi_next)
790
791 int __must_check add_disk_fwnode(struct device *parent, struct gendisk *disk,
792 const struct attribute_group **groups,
793 struct fwnode_handle *fwnode);
794 int __must_check device_add_disk(struct device *parent, struct gendisk *disk,
795 const struct attribute_group **groups);
add_disk(struct gendisk * disk)796 static inline int __must_check add_disk(struct gendisk *disk)
797 {
798 return device_add_disk(NULL, disk, NULL);
799 }
800 void del_gendisk(struct gendisk *gp);
801 void invalidate_disk(struct gendisk *disk);
802 void set_disk_ro(struct gendisk *disk, bool read_only);
803 void disk_uevent(struct gendisk *disk, enum kobject_action action);
804
bdev_partno(const struct block_device * bdev)805 static inline u8 bdev_partno(const struct block_device *bdev)
806 {
807 return atomic_read(&bdev->__bd_flags) & BD_PARTNO;
808 }
809
bdev_test_flag(const struct block_device * bdev,unsigned flag)810 static inline bool bdev_test_flag(const struct block_device *bdev, unsigned flag)
811 {
812 return atomic_read(&bdev->__bd_flags) & flag;
813 }
814
bdev_set_flag(struct block_device * bdev,unsigned flag)815 static inline void bdev_set_flag(struct block_device *bdev, unsigned flag)
816 {
817 atomic_or(flag, &bdev->__bd_flags);
818 }
819
bdev_clear_flag(struct block_device * bdev,unsigned flag)820 static inline void bdev_clear_flag(struct block_device *bdev, unsigned flag)
821 {
822 atomic_andnot(flag, &bdev->__bd_flags);
823 }
824
get_disk_ro(struct gendisk * disk)825 static inline bool get_disk_ro(struct gendisk *disk)
826 {
827 return bdev_test_flag(disk->part0, BD_READ_ONLY) ||
828 test_bit(GD_READ_ONLY, &disk->state);
829 }
830
bdev_read_only(struct block_device * bdev)831 static inline bool bdev_read_only(struct block_device *bdev)
832 {
833 return bdev_test_flag(bdev, BD_READ_ONLY) || get_disk_ro(bdev->bd_disk);
834 }
835
836 bool set_capacity_and_notify(struct gendisk *disk, sector_t size);
837 void disk_force_media_change(struct gendisk *disk);
838 void bdev_mark_dead(struct block_device *bdev, bool surprise);
839
840 void add_disk_randomness(struct gendisk *disk) __latent_entropy;
841 void rand_initialize_disk(struct gendisk *disk);
842
get_start_sect(struct block_device * bdev)843 static inline sector_t get_start_sect(struct block_device *bdev)
844 {
845 return bdev->bd_start_sect;
846 }
847
bdev_nr_sectors(struct block_device * bdev)848 static inline sector_t bdev_nr_sectors(struct block_device *bdev)
849 {
850 return bdev->bd_nr_sectors;
851 }
852
bdev_nr_bytes(struct block_device * bdev)853 static inline loff_t bdev_nr_bytes(struct block_device *bdev)
854 {
855 return (loff_t)bdev_nr_sectors(bdev) << SECTOR_SHIFT;
856 }
857
get_capacity(struct gendisk * disk)858 static inline sector_t get_capacity(struct gendisk *disk)
859 {
860 return bdev_nr_sectors(disk->part0);
861 }
862
sb_bdev_nr_blocks(struct super_block * sb)863 static inline u64 sb_bdev_nr_blocks(struct super_block *sb)
864 {
865 return bdev_nr_sectors(sb->s_bdev) >>
866 (sb->s_blocksize_bits - SECTOR_SHIFT);
867 }
868
869 #ifdef CONFIG_BLK_DEV_ZONED
disk_nr_zones(struct gendisk * disk)870 static inline unsigned int disk_nr_zones(struct gendisk *disk)
871 {
872 return disk->nr_zones;
873 }
874
875 /**
876 * bio_needs_zone_write_plugging - Check if a BIO needs to be handled with zone
877 * write plugging
878 * @bio: The BIO being submitted
879 *
880 * Return true whenever @bio execution needs to be handled through zone
881 * write plugging (using blk_zone_plug_bio()). Return false otherwise.
882 */
bio_needs_zone_write_plugging(struct bio * bio)883 static inline bool bio_needs_zone_write_plugging(struct bio *bio)
884 {
885 enum req_op op = bio_op(bio);
886
887 /*
888 * Only zoned block devices have a zone write plug hash table. But not
889 * all of them have one (e.g. DM devices may not need one).
890 */
891 if (!bio->bi_bdev->bd_disk->zone_wplugs_hash)
892 return false;
893
894 /* Only write operations need zone write plugging. */
895 if (!op_is_write(op))
896 return false;
897
898 /* Ignore empty flush */
899 if (op_is_flush(bio->bi_opf) && !bio_sectors(bio))
900 return false;
901
902 /* Ignore BIOs that already have been handled by zone write plugging. */
903 if (bio_flagged(bio, BIO_ZONE_WRITE_PLUGGING))
904 return false;
905
906 /*
907 * All zone write operations must be handled through zone write plugging
908 * using blk_zone_plug_bio().
909 */
910 switch (op) {
911 case REQ_OP_ZONE_APPEND:
912 case REQ_OP_WRITE:
913 case REQ_OP_WRITE_ZEROES:
914 case REQ_OP_ZONE_FINISH:
915 case REQ_OP_ZONE_RESET:
916 case REQ_OP_ZONE_RESET_ALL:
917 return true;
918 default:
919 return false;
920 }
921 }
922
923 bool blk_zone_plug_bio(struct bio *bio, unsigned int nr_segs);
924
925 /**
926 * disk_zone_capacity - returns the zone capacity of zone containing @sector
927 * @disk: disk to work with
928 * @sector: sector number within the querying zone
929 *
930 * Returns the zone capacity of a zone containing @sector. @sector can be any
931 * sector in the zone.
932 */
disk_zone_capacity(struct gendisk * disk,sector_t sector)933 static inline unsigned int disk_zone_capacity(struct gendisk *disk,
934 sector_t sector)
935 {
936 sector_t zone_sectors = disk->queue->limits.chunk_sectors;
937
938 if (sector + zone_sectors >= get_capacity(disk))
939 return disk->last_zone_capacity;
940 return disk->zone_capacity;
941 }
bdev_zone_capacity(struct block_device * bdev,sector_t pos)942 static inline unsigned int bdev_zone_capacity(struct block_device *bdev,
943 sector_t pos)
944 {
945 return disk_zone_capacity(bdev->bd_disk, pos);
946 }
947
948 bool bdev_zone_is_seq(struct block_device *bdev, sector_t sector);
949
950 #else /* CONFIG_BLK_DEV_ZONED */
disk_nr_zones(struct gendisk * disk)951 static inline unsigned int disk_nr_zones(struct gendisk *disk)
952 {
953 return 0;
954 }
955
bdev_zone_is_seq(struct block_device * bdev,sector_t sector)956 static inline bool bdev_zone_is_seq(struct block_device *bdev, sector_t sector)
957 {
958 return false;
959 }
960
bio_needs_zone_write_plugging(struct bio * bio)961 static inline bool bio_needs_zone_write_plugging(struct bio *bio)
962 {
963 return false;
964 }
965
blk_zone_plug_bio(struct bio * bio,unsigned int nr_segs)966 static inline bool blk_zone_plug_bio(struct bio *bio, unsigned int nr_segs)
967 {
968 return false;
969 }
970 #endif /* CONFIG_BLK_DEV_ZONED */
971
bdev_nr_zones(struct block_device * bdev)972 static inline unsigned int bdev_nr_zones(struct block_device *bdev)
973 {
974 return disk_nr_zones(bdev->bd_disk);
975 }
976
977 int bdev_disk_changed(struct gendisk *disk, bool invalidate);
978
979 void put_disk(struct gendisk *disk);
980 struct gendisk *__blk_alloc_disk(struct queue_limits *lim, int node,
981 struct lock_class_key *lkclass);
982
983 /**
984 * blk_alloc_disk - allocate a gendisk structure
985 * @lim: queue limits to be used for this disk.
986 * @node_id: numa node to allocate on
987 *
988 * Allocate and pre-initialize a gendisk structure for use with BIO based
989 * drivers.
990 *
991 * Returns an ERR_PTR on error, else the allocated disk.
992 *
993 * Context: can sleep
994 */
995 #define blk_alloc_disk(lim, node_id) \
996 ({ \
997 static struct lock_class_key __key; \
998 \
999 __blk_alloc_disk(lim, node_id, &__key); \
1000 })
1001
1002 int __register_blkdev(unsigned int major, const char *name,
1003 void (*probe)(dev_t devt));
1004 #define register_blkdev(major, name) \
1005 __register_blkdev(major, name, NULL)
1006 void unregister_blkdev(unsigned int major, const char *name);
1007
1008 bool disk_check_media_change(struct gendisk *disk);
1009 void set_capacity(struct gendisk *disk, sector_t size);
1010
1011 #ifdef CONFIG_BLOCK_HOLDER_DEPRECATED
1012 int bd_link_disk_holder(struct block_device *bdev, struct gendisk *disk);
1013 void bd_unlink_disk_holder(struct block_device *bdev, struct gendisk *disk);
1014 #else
bd_link_disk_holder(struct block_device * bdev,struct gendisk * disk)1015 static inline int bd_link_disk_holder(struct block_device *bdev,
1016 struct gendisk *disk)
1017 {
1018 return 0;
1019 }
bd_unlink_disk_holder(struct block_device * bdev,struct gendisk * disk)1020 static inline void bd_unlink_disk_holder(struct block_device *bdev,
1021 struct gendisk *disk)
1022 {
1023 }
1024 #endif /* CONFIG_BLOCK_HOLDER_DEPRECATED */
1025
1026 dev_t part_devt(struct gendisk *disk, u8 partno);
1027 void inc_diskseq(struct gendisk *disk);
1028 void blk_request_module(dev_t devt);
1029
1030 extern int blk_register_queue(struct gendisk *disk);
1031 extern void blk_unregister_queue(struct gendisk *disk);
1032 void submit_bio_noacct(struct bio *bio);
1033 struct bio *bio_split_to_limits(struct bio *bio);
1034 struct bio *bio_submit_split_bioset(struct bio *bio, unsigned int split_sectors,
1035 struct bio_set *bs);
1036
1037 extern int blk_lld_busy(struct request_queue *q);
1038 extern int blk_queue_enter(struct request_queue *q, blk_mq_req_flags_t flags);
1039 extern void blk_queue_exit(struct request_queue *q);
1040 extern void blk_sync_queue(struct request_queue *q);
1041
1042 /* Convert a request operation REQ_OP_name into the string "name" */
1043 extern const char *blk_op_str(enum req_op op);
1044
1045 int blk_status_to_errno(blk_status_t status);
1046 blk_status_t errno_to_blk_status(int errno);
1047
1048 /* only poll the hardware once, don't continue until a completion was found */
1049 #define BLK_POLL_ONESHOT (1 << 0)
1050 int bio_poll(struct bio *bio, struct io_comp_batch *iob, unsigned int flags);
1051 int iocb_bio_iopoll(struct kiocb *kiocb, struct io_comp_batch *iob,
1052 unsigned int flags);
1053
bdev_get_queue(struct block_device * bdev)1054 static inline struct request_queue *bdev_get_queue(struct block_device *bdev)
1055 {
1056 return bdev->bd_queue; /* this is never NULL */
1057 }
1058
1059 /* Convert a zone condition BLK_ZONE_COND_name into the string "name" */
1060 const char *blk_zone_cond_str(enum blk_zone_cond zone_cond);
1061
bio_zone_no(struct bio * bio)1062 static inline unsigned int bio_zone_no(struct bio *bio)
1063 {
1064 return disk_zone_no(bio->bi_bdev->bd_disk, bio->bi_iter.bi_sector);
1065 }
1066
bio_straddles_zones(struct bio * bio)1067 static inline bool bio_straddles_zones(struct bio *bio)
1068 {
1069 return bio_sectors(bio) &&
1070 bio_zone_no(bio) !=
1071 disk_zone_no(bio->bi_bdev->bd_disk, bio_end_sector(bio) - 1);
1072 }
1073
1074 /*
1075 * Return how much within the boundary is left to be used for I/O at a given
1076 * offset.
1077 */
blk_boundary_sectors_left(sector_t offset,unsigned int boundary_sectors)1078 static inline unsigned int blk_boundary_sectors_left(sector_t offset,
1079 unsigned int boundary_sectors)
1080 {
1081 if (unlikely(!is_power_of_2(boundary_sectors)))
1082 return boundary_sectors - sector_div(offset, boundary_sectors);
1083 return boundary_sectors - (offset & (boundary_sectors - 1));
1084 }
1085
1086 /**
1087 * queue_limits_start_update - start an atomic update of queue limits
1088 * @q: queue to update
1089 *
1090 * This functions starts an atomic update of the queue limits. It takes a lock
1091 * to prevent other updates and returns a snapshot of the current limits that
1092 * the caller can modify. The caller must call queue_limits_commit_update()
1093 * to finish the update.
1094 *
1095 * Context: process context.
1096 */
1097 static inline struct queue_limits
queue_limits_start_update(struct request_queue * q)1098 queue_limits_start_update(struct request_queue *q)
1099 __acquires(&q->limits_lock)
1100 {
1101 mutex_lock(&q->limits_lock);
1102 return q->limits;
1103 }
1104 int queue_limits_commit_update_frozen(struct request_queue *q,
1105 struct queue_limits *lim) __releases(&q->limits_lock);
1106 int queue_limits_commit_update(struct request_queue *q,
1107 struct queue_limits *lim) __releases(&q->limits_lock);
1108 int queue_limits_set(struct request_queue *q, struct queue_limits *lim)
1109 __must_not_hold(&q->limits_lock);
1110 int blk_validate_limits(struct queue_limits *lim);
1111
1112 /**
1113 * queue_limits_cancel_update - cancel an atomic update of queue limits
1114 * @q: queue to update
1115 *
1116 * This functions cancels an atomic update of the queue limits started by
1117 * queue_limits_start_update() and should be used when an error occurs after
1118 * starting update.
1119 */
queue_limits_cancel_update(struct request_queue * q)1120 static inline void queue_limits_cancel_update(struct request_queue *q)
1121 __releases(&q->limits_lock)
1122 {
1123 mutex_unlock(&q->limits_lock);
1124 }
1125
1126 /*
1127 * These helpers are for drivers that have sloppy feature negotiation and might
1128 * have to disable DISCARD, WRITE_ZEROES or SECURE_DISCARD from the I/O
1129 * completion handler when the device returned an indicator that the respective
1130 * feature is not actually supported. They are racy and the driver needs to
1131 * cope with that. Try to avoid this scheme if you can.
1132 */
blk_queue_disable_discard(struct request_queue * q)1133 static inline void blk_queue_disable_discard(struct request_queue *q)
1134 {
1135 q->limits.max_discard_sectors = 0;
1136 }
1137
blk_queue_disable_secure_erase(struct request_queue * q)1138 static inline void blk_queue_disable_secure_erase(struct request_queue *q)
1139 {
1140 q->limits.max_secure_erase_sectors = 0;
1141 }
1142
blk_queue_disable_write_zeroes(struct request_queue * q)1143 static inline void blk_queue_disable_write_zeroes(struct request_queue *q)
1144 {
1145 q->limits.max_write_zeroes_sectors = 0;
1146 q->limits.max_wzeroes_unmap_sectors = 0;
1147 }
1148
1149 /*
1150 * Access functions for manipulating queue properties
1151 */
1152 extern void blk_set_queue_depth(struct request_queue *q, unsigned int depth);
1153 extern void blk_set_stacking_limits(struct queue_limits *lim);
1154 extern int blk_stack_limits(struct queue_limits *t, struct queue_limits *b,
1155 sector_t offset);
1156 void queue_limits_stack_bdev(struct queue_limits *t, struct block_device *bdev,
1157 sector_t offset, const char *pfx);
1158 extern void blk_queue_rq_timeout(struct request_queue *, unsigned int);
1159
1160 struct blk_independent_access_ranges *
1161 disk_alloc_independent_access_ranges(struct gendisk *disk, int nr_ia_ranges);
1162 void disk_set_independent_access_ranges(struct gendisk *disk,
1163 struct blk_independent_access_ranges *iars);
1164
1165 bool __must_check blk_get_queue(struct request_queue *);
1166 extern void blk_put_queue(struct request_queue *);
1167
1168 void blk_mark_disk_dead(struct gendisk *disk);
1169
1170 #ifdef CONFIG_BLOCK
1171 int blkdev_issue_flush(struct block_device *bdev);
1172 long nr_blockdev_pages(void);
1173 #else /* CONFIG_BLOCK */
blkdev_issue_flush(struct block_device * bdev)1174 static inline int blkdev_issue_flush(struct block_device *bdev)
1175 {
1176 return 0;
1177 }
1178
nr_blockdev_pages(void)1179 static inline long nr_blockdev_pages(void)
1180 {
1181 return 0;
1182 }
1183 #endif /* CONFIG_BLOCK */
1184
1185 extern void blk_io_schedule(void);
1186
1187 int blkdev_issue_discard(struct block_device *bdev, sector_t sector,
1188 sector_t nr_sects, gfp_t gfp_mask);
1189 void __blkdev_issue_discard(struct block_device *bdev, sector_t sector,
1190 sector_t nr_sects, gfp_t gfp_mask, struct bio **biop);
1191 int blkdev_issue_secure_erase(struct block_device *bdev, sector_t sector,
1192 sector_t nr_sects, gfp_t gfp);
1193
1194 #define BLKDEV_ZERO_NOUNMAP (1 << 0) /* do not free blocks */
1195 #define BLKDEV_ZERO_NOFALLBACK (1 << 1) /* don't write explicit zeroes */
1196 #define BLKDEV_ZERO_KILLABLE (1 << 2) /* interruptible by fatal signals */
1197
1198 extern int __blkdev_issue_zeroout(struct block_device *bdev, sector_t sector,
1199 sector_t nr_sects, gfp_t gfp_mask, struct bio **biop,
1200 unsigned flags);
1201 extern int blkdev_issue_zeroout(struct block_device *bdev, sector_t sector,
1202 sector_t nr_sects, gfp_t gfp_mask, unsigned flags);
1203
sb_issue_discard(struct super_block * sb,sector_t block,sector_t nr_blocks,gfp_t gfp_mask,unsigned long flags)1204 static inline int sb_issue_discard(struct super_block *sb, sector_t block,
1205 sector_t nr_blocks, gfp_t gfp_mask, unsigned long flags)
1206 {
1207 return blkdev_issue_discard(sb->s_bdev,
1208 block << (sb->s_blocksize_bits -
1209 SECTOR_SHIFT),
1210 nr_blocks << (sb->s_blocksize_bits -
1211 SECTOR_SHIFT),
1212 gfp_mask);
1213 }
sb_issue_zeroout(struct super_block * sb,sector_t block,sector_t nr_blocks,gfp_t gfp_mask)1214 static inline int sb_issue_zeroout(struct super_block *sb, sector_t block,
1215 sector_t nr_blocks, gfp_t gfp_mask)
1216 {
1217 return blkdev_issue_zeroout(sb->s_bdev,
1218 block << (sb->s_blocksize_bits -
1219 SECTOR_SHIFT),
1220 nr_blocks << (sb->s_blocksize_bits -
1221 SECTOR_SHIFT),
1222 gfp_mask, 0);
1223 }
1224
bdev_is_partition(struct block_device * bdev)1225 static inline bool bdev_is_partition(struct block_device *bdev)
1226 {
1227 return bdev_partno(bdev) != 0;
1228 }
1229
1230 enum blk_default_limits {
1231 BLK_MAX_SEGMENTS = 128,
1232 BLK_SAFE_MAX_SECTORS = 255,
1233 BLK_MAX_SEGMENT_SIZE = 65536,
1234 BLK_SEG_BOUNDARY_MASK = 0xFFFFFFFFUL,
1235 };
1236
bdev_limits(struct block_device * bdev)1237 static inline struct queue_limits *bdev_limits(struct block_device *bdev)
1238 {
1239 return &bdev_get_queue(bdev)->limits;
1240 }
1241
queue_segment_boundary(const struct request_queue * q)1242 static inline unsigned long queue_segment_boundary(const struct request_queue *q)
1243 {
1244 return q->limits.seg_boundary_mask;
1245 }
1246
queue_virt_boundary(const struct request_queue * q)1247 static inline unsigned long queue_virt_boundary(const struct request_queue *q)
1248 {
1249 return q->limits.virt_boundary_mask;
1250 }
1251
queue_max_sectors(const struct request_queue * q)1252 static inline unsigned int queue_max_sectors(const struct request_queue *q)
1253 {
1254 return q->limits.max_sectors;
1255 }
1256
queue_max_bytes(struct request_queue * q)1257 static inline unsigned int queue_max_bytes(struct request_queue *q)
1258 {
1259 return min_t(unsigned int, queue_max_sectors(q), INT_MAX >> 9) << 9;
1260 }
1261
queue_max_hw_sectors(const struct request_queue * q)1262 static inline unsigned int queue_max_hw_sectors(const struct request_queue *q)
1263 {
1264 return q->limits.max_hw_sectors;
1265 }
1266
queue_max_segments(const struct request_queue * q)1267 static inline unsigned short queue_max_segments(const struct request_queue *q)
1268 {
1269 return q->limits.max_segments;
1270 }
1271
queue_max_discard_segments(const struct request_queue * q)1272 static inline unsigned short queue_max_discard_segments(const struct request_queue *q)
1273 {
1274 return q->limits.max_discard_segments;
1275 }
1276
queue_max_segment_size(const struct request_queue * q)1277 static inline unsigned int queue_max_segment_size(const struct request_queue *q)
1278 {
1279 return q->limits.max_segment_size;
1280 }
1281
queue_emulates_zone_append(struct request_queue * q)1282 static inline bool queue_emulates_zone_append(struct request_queue *q)
1283 {
1284 return blk_queue_is_zoned(q) && !q->limits.max_hw_zone_append_sectors;
1285 }
1286
bdev_emulates_zone_append(struct block_device * bdev)1287 static inline bool bdev_emulates_zone_append(struct block_device *bdev)
1288 {
1289 return queue_emulates_zone_append(bdev_get_queue(bdev));
1290 }
1291
1292 static inline unsigned int
bdev_max_zone_append_sectors(struct block_device * bdev)1293 bdev_max_zone_append_sectors(struct block_device *bdev)
1294 {
1295 return bdev_limits(bdev)->max_zone_append_sectors;
1296 }
1297
bdev_max_segments(struct block_device * bdev)1298 static inline unsigned int bdev_max_segments(struct block_device *bdev)
1299 {
1300 return queue_max_segments(bdev_get_queue(bdev));
1301 }
1302
bdev_max_write_streams(struct block_device * bdev)1303 static inline unsigned short bdev_max_write_streams(struct block_device *bdev)
1304 {
1305 if (bdev_is_partition(bdev))
1306 return 0;
1307 return bdev_limits(bdev)->max_write_streams;
1308 }
1309
queue_logical_block_size(const struct request_queue * q)1310 static inline unsigned queue_logical_block_size(const struct request_queue *q)
1311 {
1312 return q->limits.logical_block_size;
1313 }
1314
bdev_logical_block_size(struct block_device * bdev)1315 static inline unsigned int bdev_logical_block_size(struct block_device *bdev)
1316 {
1317 return queue_logical_block_size(bdev_get_queue(bdev));
1318 }
1319
queue_physical_block_size(const struct request_queue * q)1320 static inline unsigned int queue_physical_block_size(const struct request_queue *q)
1321 {
1322 return q->limits.physical_block_size;
1323 }
1324
bdev_physical_block_size(struct block_device * bdev)1325 static inline unsigned int bdev_physical_block_size(struct block_device *bdev)
1326 {
1327 return queue_physical_block_size(bdev_get_queue(bdev));
1328 }
1329
queue_io_min(const struct request_queue * q)1330 static inline unsigned int queue_io_min(const struct request_queue *q)
1331 {
1332 return q->limits.io_min;
1333 }
1334
bdev_io_min(struct block_device * bdev)1335 static inline unsigned int bdev_io_min(struct block_device *bdev)
1336 {
1337 return queue_io_min(bdev_get_queue(bdev));
1338 }
1339
queue_io_opt(const struct request_queue * q)1340 static inline unsigned int queue_io_opt(const struct request_queue *q)
1341 {
1342 return q->limits.io_opt;
1343 }
1344
bdev_io_opt(struct block_device * bdev)1345 static inline unsigned int bdev_io_opt(struct block_device *bdev)
1346 {
1347 return queue_io_opt(bdev_get_queue(bdev));
1348 }
1349
1350 static inline unsigned int
queue_zone_write_granularity(const struct request_queue * q)1351 queue_zone_write_granularity(const struct request_queue *q)
1352 {
1353 return q->limits.zone_write_granularity;
1354 }
1355
1356 static inline unsigned int
bdev_zone_write_granularity(struct block_device * bdev)1357 bdev_zone_write_granularity(struct block_device *bdev)
1358 {
1359 return queue_zone_write_granularity(bdev_get_queue(bdev));
1360 }
1361
1362 int bdev_alignment_offset(struct block_device *bdev);
1363 unsigned int bdev_discard_alignment(struct block_device *bdev);
1364
bdev_max_discard_sectors(struct block_device * bdev)1365 static inline unsigned int bdev_max_discard_sectors(struct block_device *bdev)
1366 {
1367 return bdev_limits(bdev)->max_discard_sectors;
1368 }
1369
bdev_discard_granularity(struct block_device * bdev)1370 static inline unsigned int bdev_discard_granularity(struct block_device *bdev)
1371 {
1372 return bdev_limits(bdev)->discard_granularity;
1373 }
1374
1375 static inline unsigned int
bdev_max_secure_erase_sectors(struct block_device * bdev)1376 bdev_max_secure_erase_sectors(struct block_device *bdev)
1377 {
1378 return bdev_limits(bdev)->max_secure_erase_sectors;
1379 }
1380
bdev_write_zeroes_sectors(struct block_device * bdev)1381 static inline unsigned int bdev_write_zeroes_sectors(struct block_device *bdev)
1382 {
1383 return bdev_limits(bdev)->max_write_zeroes_sectors;
1384 }
1385
1386 static inline unsigned int
bdev_write_zeroes_unmap_sectors(struct block_device * bdev)1387 bdev_write_zeroes_unmap_sectors(struct block_device *bdev)
1388 {
1389 return bdev_limits(bdev)->max_wzeroes_unmap_sectors;
1390 }
1391
bdev_rot(struct block_device * bdev)1392 static inline bool bdev_rot(struct block_device *bdev)
1393 {
1394 return blk_queue_rot(bdev_get_queue(bdev));
1395 }
1396
bdev_synchronous(struct block_device * bdev)1397 static inline bool bdev_synchronous(struct block_device *bdev)
1398 {
1399 return bdev->bd_disk->queue->limits.features & BLK_FEAT_SYNCHRONOUS;
1400 }
1401
bdev_has_integrity_csum(struct block_device * bdev)1402 static inline bool bdev_has_integrity_csum(struct block_device *bdev)
1403 {
1404 struct queue_limits *lim = bdev_limits(bdev);
1405
1406 return IS_ENABLED(CONFIG_BLK_DEV_INTEGRITY) &&
1407 lim->integrity.csum_type != BLK_INTEGRITY_CSUM_NONE;
1408 }
1409
bdev_stable_writes(struct block_device * bdev)1410 static inline bool bdev_stable_writes(struct block_device *bdev)
1411 {
1412 return bdev_has_integrity_csum(bdev) ||
1413 (bdev_limits(bdev)->features & BLK_FEAT_STABLE_WRITES);
1414 }
1415
blk_queue_write_cache(struct request_queue * q)1416 static inline bool blk_queue_write_cache(struct request_queue *q)
1417 {
1418 return (q->limits.features & BLK_FEAT_WRITE_CACHE) &&
1419 !(q->limits.flags & BLK_FLAG_WRITE_CACHE_DISABLED);
1420 }
1421
bdev_write_cache(struct block_device * bdev)1422 static inline bool bdev_write_cache(struct block_device *bdev)
1423 {
1424 return blk_queue_write_cache(bdev_get_queue(bdev));
1425 }
1426
bdev_fua(struct block_device * bdev)1427 static inline bool bdev_fua(struct block_device *bdev)
1428 {
1429 return bdev_limits(bdev)->features & BLK_FEAT_FUA;
1430 }
1431
bdev_nowait(struct block_device * bdev)1432 static inline bool bdev_nowait(struct block_device *bdev)
1433 {
1434 return bdev->bd_disk->queue->limits.features & BLK_FEAT_NOWAIT;
1435 }
1436
bdev_is_zoned(struct block_device * bdev)1437 static inline bool bdev_is_zoned(struct block_device *bdev)
1438 {
1439 return blk_queue_is_zoned(bdev_get_queue(bdev));
1440 }
1441
bdev_zone_no(struct block_device * bdev,sector_t sec)1442 static inline unsigned int bdev_zone_no(struct block_device *bdev, sector_t sec)
1443 {
1444 return disk_zone_no(bdev->bd_disk, sec);
1445 }
1446
bdev_zone_sectors(struct block_device * bdev)1447 static inline sector_t bdev_zone_sectors(struct block_device *bdev)
1448 {
1449 struct request_queue *q = bdev_get_queue(bdev);
1450
1451 if (!blk_queue_is_zoned(q))
1452 return 0;
1453 return q->limits.chunk_sectors;
1454 }
1455
bdev_zone_start(struct block_device * bdev,sector_t sector)1456 static inline sector_t bdev_zone_start(struct block_device *bdev,
1457 sector_t sector)
1458 {
1459 return sector & ~(bdev_zone_sectors(bdev) - 1);
1460 }
1461
bdev_offset_from_zone_start(struct block_device * bdev,sector_t sector)1462 static inline sector_t bdev_offset_from_zone_start(struct block_device *bdev,
1463 sector_t sector)
1464 {
1465 return sector & (bdev_zone_sectors(bdev) - 1);
1466 }
1467
bio_offset_from_zone_start(struct bio * bio)1468 static inline sector_t bio_offset_from_zone_start(struct bio *bio)
1469 {
1470 return bdev_offset_from_zone_start(bio->bi_bdev,
1471 bio->bi_iter.bi_sector);
1472 }
1473
bdev_is_zone_start(struct block_device * bdev,sector_t sector)1474 static inline bool bdev_is_zone_start(struct block_device *bdev,
1475 sector_t sector)
1476 {
1477 return bdev_offset_from_zone_start(bdev, sector) == 0;
1478 }
1479
1480 /* Check whether @sector is a multiple of the zone size. */
bdev_is_zone_aligned(struct block_device * bdev,sector_t sector)1481 static inline bool bdev_is_zone_aligned(struct block_device *bdev,
1482 sector_t sector)
1483 {
1484 return bdev_is_zone_start(bdev, sector);
1485 }
1486
1487 int blk_zone_issue_zeroout(struct block_device *bdev, sector_t sector,
1488 sector_t nr_sects, gfp_t gfp_mask);
1489
queue_dma_alignment(const struct request_queue * q)1490 static inline unsigned int queue_dma_alignment(const struct request_queue *q)
1491 {
1492 return q->limits.dma_alignment;
1493 }
1494
1495 static inline unsigned int
queue_atomic_write_unit_max_bytes(const struct request_queue * q)1496 queue_atomic_write_unit_max_bytes(const struct request_queue *q)
1497 {
1498 return q->limits.atomic_write_unit_max;
1499 }
1500
1501 static inline unsigned int
queue_atomic_write_unit_min_bytes(const struct request_queue * q)1502 queue_atomic_write_unit_min_bytes(const struct request_queue *q)
1503 {
1504 return q->limits.atomic_write_unit_min;
1505 }
1506
1507 static inline unsigned int
queue_atomic_write_boundary_bytes(const struct request_queue * q)1508 queue_atomic_write_boundary_bytes(const struct request_queue *q)
1509 {
1510 return q->limits.atomic_write_boundary_sectors << SECTOR_SHIFT;
1511 }
1512
1513 static inline unsigned int
queue_atomic_write_max_bytes(const struct request_queue * q)1514 queue_atomic_write_max_bytes(const struct request_queue *q)
1515 {
1516 return q->limits.atomic_write_max_sectors << SECTOR_SHIFT;
1517 }
1518
bdev_dma_alignment(struct block_device * bdev)1519 static inline unsigned int bdev_dma_alignment(struct block_device *bdev)
1520 {
1521 return queue_dma_alignment(bdev_get_queue(bdev));
1522 }
1523
1524 static inline unsigned int
blk_lim_dma_alignment_and_pad(struct queue_limits * lim)1525 blk_lim_dma_alignment_and_pad(struct queue_limits *lim)
1526 {
1527 return lim->dma_alignment | lim->dma_pad_mask;
1528 }
1529
blk_rq_aligned(struct request_queue * q,unsigned long addr,unsigned int len)1530 static inline bool blk_rq_aligned(struct request_queue *q, unsigned long addr,
1531 unsigned int len)
1532 {
1533 unsigned int alignment = blk_lim_dma_alignment_and_pad(&q->limits);
1534
1535 return !(addr & alignment) && !(len & alignment);
1536 }
1537
1538 /* assumes size > 256 */
blksize_bits(unsigned int size)1539 static inline unsigned int blksize_bits(unsigned int size)
1540 {
1541 return order_base_2(size >> SECTOR_SHIFT) + SECTOR_SHIFT;
1542 }
1543
1544 int kblockd_schedule_work(struct work_struct *work);
1545 int kblockd_mod_delayed_work_on(int cpu, struct delayed_work *dwork, unsigned long delay);
1546
1547 #define MODULE_ALIAS_BLOCKDEV(major,minor) \
1548 MODULE_ALIAS("block-major-" __stringify(major) "-" __stringify(minor))
1549 #define MODULE_ALIAS_BLOCKDEV_MAJOR(major) \
1550 MODULE_ALIAS("block-major-" __stringify(major) "-*")
1551
1552 #ifdef CONFIG_BLK_INLINE_ENCRYPTION
1553
1554 bool blk_crypto_register(struct blk_crypto_profile *profile,
1555 struct request_queue *q);
1556
1557 #else /* CONFIG_BLK_INLINE_ENCRYPTION */
1558
blk_crypto_register(struct blk_crypto_profile * profile,struct request_queue * q)1559 static inline bool blk_crypto_register(struct blk_crypto_profile *profile,
1560 struct request_queue *q)
1561 {
1562 return true;
1563 }
1564
1565 #endif /* CONFIG_BLK_INLINE_ENCRYPTION */
1566
1567 enum blk_unique_id {
1568 /* these match the Designator Types specified in SPC */
1569 BLK_UID_T10 = 1,
1570 BLK_UID_EUI64 = 2,
1571 BLK_UID_NAA = 3,
1572 };
1573
1574 struct block_device_operations {
1575 void (*submit_bio)(struct bio *bio);
1576 int (*poll_bio)(struct bio *bio, struct io_comp_batch *iob,
1577 unsigned int flags);
1578 int (*open)(struct gendisk *disk, blk_mode_t mode);
1579 void (*release)(struct gendisk *disk);
1580 int (*ioctl)(struct block_device *bdev, blk_mode_t mode,
1581 unsigned cmd, unsigned long arg);
1582 int (*compat_ioctl)(struct block_device *bdev, blk_mode_t mode,
1583 unsigned cmd, unsigned long arg);
1584 unsigned int (*check_events) (struct gendisk *disk,
1585 unsigned int clearing);
1586 void (*unlock_native_capacity) (struct gendisk *);
1587 int (*getgeo)(struct gendisk *, struct hd_geometry *);
1588 int (*set_read_only)(struct block_device *bdev, bool ro);
1589 void (*free_disk)(struct gendisk *disk);
1590 /* this callback is with swap_lock and sometimes page table lock held */
1591 void (*swap_slot_free_notify) (struct block_device *, unsigned long);
1592 int (*report_zones)(struct gendisk *, sector_t sector,
1593 unsigned int nr_zones,
1594 struct blk_report_zones_args *args);
1595 char *(*devnode)(struct gendisk *disk, umode_t *mode);
1596 /* returns the length of the identifier or a negative errno: */
1597 int (*get_unique_id)(struct gendisk *disk, u8 id[16],
1598 enum blk_unique_id id_type);
1599 struct module *owner;
1600 const struct pr_ops *pr_ops;
1601
1602 /*
1603 * Special callback for probing GPT entry at a given sector.
1604 * Needed by Android devices, used by GPT scanner and MMC blk
1605 * driver.
1606 */
1607 int (*alternative_gpt_sector)(struct gendisk *disk, sector_t *sector);
1608 };
1609
1610 #ifdef CONFIG_COMPAT
1611 extern int blkdev_compat_ptr_ioctl(struct block_device *, blk_mode_t,
1612 unsigned int, unsigned long);
1613 #else
1614 #define blkdev_compat_ptr_ioctl NULL
1615 #endif
1616
blk_wake_io_task(struct task_struct * waiter)1617 static inline void blk_wake_io_task(struct task_struct *waiter)
1618 {
1619 /*
1620 * If we're polling, the task itself is doing the completions. For
1621 * that case, we don't need to signal a wakeup, it's enough to just
1622 * mark us as RUNNING.
1623 */
1624 if (waiter == current)
1625 __set_current_state(TASK_RUNNING);
1626 else
1627 wake_up_process(waiter);
1628 }
1629
1630 unsigned long bdev_start_io_acct(struct block_device *bdev, enum req_op op,
1631 unsigned long start_time);
1632 void bdev_end_io_acct(struct block_device *bdev, enum req_op op,
1633 unsigned int sectors, unsigned long start_time);
1634
1635 unsigned long bio_start_io_acct(struct bio *bio);
1636 void bio_end_io_acct_remapped(struct bio *bio, unsigned long start_time,
1637 struct block_device *orig_bdev);
1638
1639 /**
1640 * bio_end_io_acct - end I/O accounting for bio based drivers
1641 * @bio: bio to end account for
1642 * @start_time: start time returned by bio_start_io_acct()
1643 */
bio_end_io_acct(struct bio * bio,unsigned long start_time)1644 static inline void bio_end_io_acct(struct bio *bio, unsigned long start_time)
1645 {
1646 return bio_end_io_acct_remapped(bio, start_time, bio->bi_bdev);
1647 }
1648
1649 int bdev_validate_blocksize(struct block_device *bdev, int block_size);
1650 int set_blocksize(struct file *file, int size);
1651
1652 int lookup_bdev(const char *pathname, dev_t *dev);
1653
1654 void blkdev_show(struct seq_file *seqf, off_t offset);
1655
1656 #define BDEVNAME_SIZE 32 /* Largest string for a blockdev identifier */
1657 #define BDEVT_SIZE 10 /* Largest string for MAJ:MIN for blkdev */
1658 #ifdef CONFIG_BLOCK
1659 #define BLKDEV_MAJOR_MAX 512
1660 #else
1661 #define BLKDEV_MAJOR_MAX 0
1662 #endif
1663
1664 struct blk_holder_ops {
1665 void (*mark_dead)(struct block_device *bdev, bool surprise)
1666 __releases(&bdev->bd_holder_lock);
1667
1668 /*
1669 * Sync the file system mounted on the block device.
1670 */
1671 void (*sync)(struct block_device *bdev)
1672 __releases(&bdev->bd_holder_lock);
1673
1674 /*
1675 * Freeze the file system mounted on the block device.
1676 */
1677 int (*freeze)(struct block_device *bdev)
1678 __releases(&bdev->bd_holder_lock);
1679
1680 /*
1681 * Thaw the file system mounted on the block device.
1682 */
1683 int (*thaw)(struct block_device *bdev)
1684 __releases(&bdev->bd_holder_lock);
1685 };
1686
1687 /*
1688 * Return the correct open flags for blkdev_get_by_* for super block flags
1689 * as stored in sb->s_flags.
1690 */
1691 #define sb_open_mode(flags) \
1692 (BLK_OPEN_READ | BLK_OPEN_RESTRICT_WRITES | \
1693 (((flags) & SB_RDONLY) ? 0 : BLK_OPEN_WRITE))
1694
1695 struct file *bdev_file_open_by_dev(dev_t dev, blk_mode_t mode, void *holder,
1696 const struct blk_holder_ops *hops);
1697 struct file *bdev_file_open_by_path(const char *path, blk_mode_t mode,
1698 void *holder, const struct blk_holder_ops *hops);
1699 int bd_prepare_to_claim(struct block_device *bdev, void *holder,
1700 const struct blk_holder_ops *hops);
1701 void bd_abort_claiming(struct block_device *bdev, void *holder);
1702
1703 struct block_device *I_BDEV(struct inode *inode);
1704 struct block_device *file_bdev(struct file *bdev_file);
1705 bool disk_live(struct gendisk *disk);
1706 unsigned int block_size(struct block_device *bdev);
1707
1708 #ifdef CONFIG_BLOCK
1709 void invalidate_bdev(struct block_device *bdev);
1710 int sync_blockdev(struct block_device *bdev);
1711 int sync_blockdev_range(struct block_device *bdev, loff_t lstart, loff_t lend);
1712 int sync_blockdev_nowait(struct block_device *bdev);
1713 void sync_bdevs(bool wait);
1714 void bdev_statx(const struct path *path, struct kstat *stat, u32 request_mask);
1715 void printk_all_partitions(void);
1716 int __init early_lookup_bdev(const char *pathname, dev_t *dev);
1717 #else
invalidate_bdev(struct block_device * bdev)1718 static inline void invalidate_bdev(struct block_device *bdev)
1719 {
1720 }
sync_blockdev(struct block_device * bdev)1721 static inline int sync_blockdev(struct block_device *bdev)
1722 {
1723 return 0;
1724 }
sync_blockdev_nowait(struct block_device * bdev)1725 static inline int sync_blockdev_nowait(struct block_device *bdev)
1726 {
1727 return 0;
1728 }
sync_bdevs(bool wait)1729 static inline void sync_bdevs(bool wait)
1730 {
1731 }
bdev_statx(const struct path * path,struct kstat * stat,u32 request_mask)1732 static inline void bdev_statx(const struct path *path, struct kstat *stat,
1733 u32 request_mask)
1734 {
1735 }
printk_all_partitions(void)1736 static inline void printk_all_partitions(void)
1737 {
1738 }
early_lookup_bdev(const char * pathname,dev_t * dev)1739 static inline int early_lookup_bdev(const char *pathname, dev_t *dev)
1740 {
1741 return -EINVAL;
1742 }
1743 #endif /* CONFIG_BLOCK */
1744
1745 int bdev_freeze(struct block_device *bdev);
1746 int bdev_thaw(struct block_device *bdev);
1747 int bdev_deny_freeze(struct block_device *bdev);
1748 void bdev_allow_freeze(struct block_device *bdev);
1749 void bdev_fput(struct file *bdev_file);
1750 void bdev_yield_claim(struct file *bdev_file);
1751
1752 struct io_comp_batch {
1753 struct rq_list req_list;
1754 bool need_ts;
1755 void (*complete)(struct io_comp_batch *);
1756 void *poll_ctx;
1757 };
1758
blk_atomic_write_start_sect_aligned(sector_t sector,struct queue_limits * limits)1759 static inline bool blk_atomic_write_start_sect_aligned(sector_t sector,
1760 struct queue_limits *limits)
1761 {
1762 unsigned int alignment = max(limits->atomic_write_hw_unit_min,
1763 limits->atomic_write_hw_boundary);
1764
1765 return IS_ALIGNED(sector, alignment >> SECTOR_SHIFT);
1766 }
1767
bdev_can_atomic_write(struct block_device * bdev)1768 static inline bool bdev_can_atomic_write(struct block_device *bdev)
1769 {
1770 struct request_queue *bd_queue = bdev->bd_queue;
1771 struct queue_limits *limits = &bd_queue->limits;
1772
1773 if (!limits->atomic_write_unit_min)
1774 return false;
1775
1776 if (bdev_is_partition(bdev))
1777 return blk_atomic_write_start_sect_aligned(bdev->bd_start_sect,
1778 limits);
1779
1780 return true;
1781 }
1782
1783 static inline unsigned int
bdev_atomic_write_unit_min_bytes(struct block_device * bdev)1784 bdev_atomic_write_unit_min_bytes(struct block_device *bdev)
1785 {
1786 if (!bdev_can_atomic_write(bdev))
1787 return 0;
1788 return queue_atomic_write_unit_min_bytes(bdev_get_queue(bdev));
1789 }
1790
1791 static inline unsigned int
bdev_atomic_write_unit_max_bytes(struct block_device * bdev)1792 bdev_atomic_write_unit_max_bytes(struct block_device *bdev)
1793 {
1794 if (!bdev_can_atomic_write(bdev))
1795 return 0;
1796 return queue_atomic_write_unit_max_bytes(bdev_get_queue(bdev));
1797 }
1798
bio_split_rw_at(struct bio * bio,const struct queue_limits * lim,unsigned * segs,unsigned max_bytes)1799 static inline int bio_split_rw_at(struct bio *bio,
1800 const struct queue_limits *lim,
1801 unsigned *segs, unsigned max_bytes)
1802 {
1803 return bio_split_io_at(bio, lim, segs, max_bytes, lim->dma_alignment);
1804 }
1805
1806 /*
1807 * Maximum contiguous integrity buffer allocation.
1808 */
1809 #define BLK_INTEGRITY_MAX_SIZE SZ_2M
1810
1811 /*
1812 * Maximum size of I/O that needs a block layer integrity buffer. Limited
1813 * by the number of intervals for which we can fit the integrity buffer into
1814 * the buffer size. Because the buffer is a single segment it is also limited
1815 * by the maximum segment size.
1816 */
max_integrity_io_size(struct queue_limits * lim)1817 static inline unsigned int max_integrity_io_size(struct queue_limits *lim)
1818 {
1819 return min_t(unsigned int, lim->max_segment_size,
1820 (BLK_INTEGRITY_MAX_SIZE / lim->integrity.metadata_size) <<
1821 lim->integrity.interval_exp);
1822 }
1823
1824 #define DEFINE_IO_COMP_BATCH(name) struct io_comp_batch name = { }
1825
1826 #endif /* _LINUX_BLKDEV_H */
1827