xref: /linux/block/genhd.c (revision e72e8bf1c9847a12de74f2fd3ea1f5511866526b)
1 // SPDX-License-Identifier: GPL-2.0
2 /*
3  *  gendisk handling
4  */
5 
6 #include <linux/module.h>
7 #include <linux/ctype.h>
8 #include <linux/fs.h>
9 #include <linux/genhd.h>
10 #include <linux/kdev_t.h>
11 #include <linux/kernel.h>
12 #include <linux/blkdev.h>
13 #include <linux/backing-dev.h>
14 #include <linux/init.h>
15 #include <linux/spinlock.h>
16 #include <linux/proc_fs.h>
17 #include <linux/seq_file.h>
18 #include <linux/slab.h>
19 #include <linux/kmod.h>
20 #include <linux/kobj_map.h>
21 #include <linux/mutex.h>
22 #include <linux/idr.h>
23 #include <linux/log2.h>
24 #include <linux/pm_runtime.h>
25 #include <linux/badblocks.h>
26 
27 #include "blk.h"
28 
29 static DEFINE_MUTEX(block_class_lock);
30 static struct kobject *block_depr;
31 
32 /* for extended dynamic devt allocation, currently only one major is used */
33 #define NR_EXT_DEVT		(1 << MINORBITS)
34 
35 /* For extended devt allocation.  ext_devt_lock prevents look up
36  * results from going away underneath its user.
37  */
38 static DEFINE_SPINLOCK(ext_devt_lock);
39 static DEFINE_IDR(ext_devt_idr);
40 
41 static const struct device_type disk_type;
42 
43 static void disk_check_events(struct disk_events *ev,
44 			      unsigned int *clearing_ptr);
45 static void disk_alloc_events(struct gendisk *disk);
46 static void disk_add_events(struct gendisk *disk);
47 static void disk_del_events(struct gendisk *disk);
48 static void disk_release_events(struct gendisk *disk);
49 
50 /*
51  * Set disk capacity and notify if the size is not currently
52  * zero and will not be set to zero
53  */
54 void set_capacity_revalidate_and_notify(struct gendisk *disk, sector_t size,
55 					bool revalidate)
56 {
57 	sector_t capacity = get_capacity(disk);
58 
59 	set_capacity(disk, size);
60 
61 	if (revalidate)
62 		revalidate_disk(disk);
63 
64 	if (capacity != size && capacity != 0 && size != 0) {
65 		char *envp[] = { "RESIZE=1", NULL };
66 
67 		kobject_uevent_env(&disk_to_dev(disk)->kobj, KOBJ_CHANGE, envp);
68 	}
69 }
70 
71 EXPORT_SYMBOL_GPL(set_capacity_revalidate_and_notify);
72 
73 /*
74  * Format the device name of the indicated disk into the supplied buffer and
75  * return a pointer to that same buffer for convenience.
76  */
77 char *disk_name(struct gendisk *hd, int partno, char *buf)
78 {
79 	if (!partno)
80 		snprintf(buf, BDEVNAME_SIZE, "%s", hd->disk_name);
81 	else if (isdigit(hd->disk_name[strlen(hd->disk_name)-1]))
82 		snprintf(buf, BDEVNAME_SIZE, "%sp%d", hd->disk_name, partno);
83 	else
84 		snprintf(buf, BDEVNAME_SIZE, "%s%d", hd->disk_name, partno);
85 
86 	return buf;
87 }
88 
89 const char *bdevname(struct block_device *bdev, char *buf)
90 {
91 	return disk_name(bdev->bd_disk, bdev->bd_part->partno, buf);
92 }
93 EXPORT_SYMBOL(bdevname);
94 
95 #ifdef CONFIG_SMP
96 static void part_stat_read_all(struct hd_struct *part, struct disk_stats *stat)
97 {
98 	int cpu;
99 
100 	memset(stat, 0, sizeof(struct disk_stats));
101 	for_each_possible_cpu(cpu) {
102 		struct disk_stats *ptr = per_cpu_ptr(part->dkstats, cpu);
103 		int group;
104 
105 		for (group = 0; group < NR_STAT_GROUPS; group++) {
106 			stat->nsecs[group] += ptr->nsecs[group];
107 			stat->sectors[group] += ptr->sectors[group];
108 			stat->ios[group] += ptr->ios[group];
109 			stat->merges[group] += ptr->merges[group];
110 		}
111 
112 		stat->io_ticks += ptr->io_ticks;
113 	}
114 }
115 #else /* CONFIG_SMP */
116 static void part_stat_read_all(struct hd_struct *part, struct disk_stats *stat)
117 {
118 	memcpy(stat, &part->dkstats, sizeof(struct disk_stats));
119 }
120 #endif /* CONFIG_SMP */
121 
122 void part_inc_in_flight(struct request_queue *q, struct hd_struct *part, int rw)
123 {
124 	if (queue_is_mq(q))
125 		return;
126 
127 	part_stat_local_inc(part, in_flight[rw]);
128 	if (part->partno)
129 		part_stat_local_inc(&part_to_disk(part)->part0, in_flight[rw]);
130 }
131 
132 void part_dec_in_flight(struct request_queue *q, struct hd_struct *part, int rw)
133 {
134 	if (queue_is_mq(q))
135 		return;
136 
137 	part_stat_local_dec(part, in_flight[rw]);
138 	if (part->partno)
139 		part_stat_local_dec(&part_to_disk(part)->part0, in_flight[rw]);
140 }
141 
142 static unsigned int part_in_flight(struct request_queue *q,
143 		struct hd_struct *part)
144 {
145 	int cpu;
146 	unsigned int inflight;
147 
148 	if (queue_is_mq(q)) {
149 		return blk_mq_in_flight(q, part);
150 	}
151 
152 	inflight = 0;
153 	for_each_possible_cpu(cpu) {
154 		inflight += part_stat_local_read_cpu(part, in_flight[0], cpu) +
155 			    part_stat_local_read_cpu(part, in_flight[1], cpu);
156 	}
157 	if ((int)inflight < 0)
158 		inflight = 0;
159 
160 	return inflight;
161 }
162 
163 static void part_in_flight_rw(struct request_queue *q, struct hd_struct *part,
164 		unsigned int inflight[2])
165 {
166 	int cpu;
167 
168 	if (queue_is_mq(q)) {
169 		blk_mq_in_flight_rw(q, part, inflight);
170 		return;
171 	}
172 
173 	inflight[0] = 0;
174 	inflight[1] = 0;
175 	for_each_possible_cpu(cpu) {
176 		inflight[0] += part_stat_local_read_cpu(part, in_flight[0], cpu);
177 		inflight[1] += part_stat_local_read_cpu(part, in_flight[1], cpu);
178 	}
179 	if ((int)inflight[0] < 0)
180 		inflight[0] = 0;
181 	if ((int)inflight[1] < 0)
182 		inflight[1] = 0;
183 }
184 
185 struct hd_struct *__disk_get_part(struct gendisk *disk, int partno)
186 {
187 	struct disk_part_tbl *ptbl = rcu_dereference(disk->part_tbl);
188 
189 	if (unlikely(partno < 0 || partno >= ptbl->len))
190 		return NULL;
191 	return rcu_dereference(ptbl->part[partno]);
192 }
193 
194 /**
195  * disk_get_part - get partition
196  * @disk: disk to look partition from
197  * @partno: partition number
198  *
199  * Look for partition @partno from @disk.  If found, increment
200  * reference count and return it.
201  *
202  * CONTEXT:
203  * Don't care.
204  *
205  * RETURNS:
206  * Pointer to the found partition on success, NULL if not found.
207  */
208 struct hd_struct *disk_get_part(struct gendisk *disk, int partno)
209 {
210 	struct hd_struct *part;
211 
212 	rcu_read_lock();
213 	part = __disk_get_part(disk, partno);
214 	if (part)
215 		get_device(part_to_dev(part));
216 	rcu_read_unlock();
217 
218 	return part;
219 }
220 
221 /**
222  * disk_part_iter_init - initialize partition iterator
223  * @piter: iterator to initialize
224  * @disk: disk to iterate over
225  * @flags: DISK_PITER_* flags
226  *
227  * Initialize @piter so that it iterates over partitions of @disk.
228  *
229  * CONTEXT:
230  * Don't care.
231  */
232 void disk_part_iter_init(struct disk_part_iter *piter, struct gendisk *disk,
233 			  unsigned int flags)
234 {
235 	struct disk_part_tbl *ptbl;
236 
237 	rcu_read_lock();
238 	ptbl = rcu_dereference(disk->part_tbl);
239 
240 	piter->disk = disk;
241 	piter->part = NULL;
242 
243 	if (flags & DISK_PITER_REVERSE)
244 		piter->idx = ptbl->len - 1;
245 	else if (flags & (DISK_PITER_INCL_PART0 | DISK_PITER_INCL_EMPTY_PART0))
246 		piter->idx = 0;
247 	else
248 		piter->idx = 1;
249 
250 	piter->flags = flags;
251 
252 	rcu_read_unlock();
253 }
254 EXPORT_SYMBOL_GPL(disk_part_iter_init);
255 
256 /**
257  * disk_part_iter_next - proceed iterator to the next partition and return it
258  * @piter: iterator of interest
259  *
260  * Proceed @piter to the next partition and return it.
261  *
262  * CONTEXT:
263  * Don't care.
264  */
265 struct hd_struct *disk_part_iter_next(struct disk_part_iter *piter)
266 {
267 	struct disk_part_tbl *ptbl;
268 	int inc, end;
269 
270 	/* put the last partition */
271 	disk_put_part(piter->part);
272 	piter->part = NULL;
273 
274 	/* get part_tbl */
275 	rcu_read_lock();
276 	ptbl = rcu_dereference(piter->disk->part_tbl);
277 
278 	/* determine iteration parameters */
279 	if (piter->flags & DISK_PITER_REVERSE) {
280 		inc = -1;
281 		if (piter->flags & (DISK_PITER_INCL_PART0 |
282 				    DISK_PITER_INCL_EMPTY_PART0))
283 			end = -1;
284 		else
285 			end = 0;
286 	} else {
287 		inc = 1;
288 		end = ptbl->len;
289 	}
290 
291 	/* iterate to the next partition */
292 	for (; piter->idx != end; piter->idx += inc) {
293 		struct hd_struct *part;
294 
295 		part = rcu_dereference(ptbl->part[piter->idx]);
296 		if (!part)
297 			continue;
298 		if (!part_nr_sects_read(part) &&
299 		    !(piter->flags & DISK_PITER_INCL_EMPTY) &&
300 		    !(piter->flags & DISK_PITER_INCL_EMPTY_PART0 &&
301 		      piter->idx == 0))
302 			continue;
303 
304 		get_device(part_to_dev(part));
305 		piter->part = part;
306 		piter->idx += inc;
307 		break;
308 	}
309 
310 	rcu_read_unlock();
311 
312 	return piter->part;
313 }
314 EXPORT_SYMBOL_GPL(disk_part_iter_next);
315 
316 /**
317  * disk_part_iter_exit - finish up partition iteration
318  * @piter: iter of interest
319  *
320  * Called when iteration is over.  Cleans up @piter.
321  *
322  * CONTEXT:
323  * Don't care.
324  */
325 void disk_part_iter_exit(struct disk_part_iter *piter)
326 {
327 	disk_put_part(piter->part);
328 	piter->part = NULL;
329 }
330 EXPORT_SYMBOL_GPL(disk_part_iter_exit);
331 
332 static inline int sector_in_part(struct hd_struct *part, sector_t sector)
333 {
334 	return part->start_sect <= sector &&
335 		sector < part->start_sect + part_nr_sects_read(part);
336 }
337 
338 /**
339  * disk_map_sector_rcu - map sector to partition
340  * @disk: gendisk of interest
341  * @sector: sector to map
342  *
343  * Find out which partition @sector maps to on @disk.  This is
344  * primarily used for stats accounting.
345  *
346  * CONTEXT:
347  * RCU read locked.  The returned partition pointer is valid only
348  * while preemption is disabled.
349  *
350  * RETURNS:
351  * Found partition on success, part0 is returned if no partition matches
352  */
353 struct hd_struct *disk_map_sector_rcu(struct gendisk *disk, sector_t sector)
354 {
355 	struct disk_part_tbl *ptbl;
356 	struct hd_struct *part;
357 	int i;
358 
359 	ptbl = rcu_dereference(disk->part_tbl);
360 
361 	part = rcu_dereference(ptbl->last_lookup);
362 	if (part && sector_in_part(part, sector))
363 		return part;
364 
365 	for (i = 1; i < ptbl->len; i++) {
366 		part = rcu_dereference(ptbl->part[i]);
367 
368 		if (part && sector_in_part(part, sector)) {
369 			rcu_assign_pointer(ptbl->last_lookup, part);
370 			return part;
371 		}
372 	}
373 	return &disk->part0;
374 }
375 
376 /**
377  * disk_has_partitions
378  * @disk: gendisk of interest
379  *
380  * Walk through the partition table and check if valid partition exists.
381  *
382  * CONTEXT:
383  * Don't care.
384  *
385  * RETURNS:
386  * True if the gendisk has at least one valid non-zero size partition.
387  * Otherwise false.
388  */
389 bool disk_has_partitions(struct gendisk *disk)
390 {
391 	struct disk_part_tbl *ptbl;
392 	int i;
393 	bool ret = false;
394 
395 	rcu_read_lock();
396 	ptbl = rcu_dereference(disk->part_tbl);
397 
398 	/* Iterate partitions skipping the whole device at index 0 */
399 	for (i = 1; i < ptbl->len; i++) {
400 		if (rcu_dereference(ptbl->part[i])) {
401 			ret = true;
402 			break;
403 		}
404 	}
405 
406 	rcu_read_unlock();
407 
408 	return ret;
409 }
410 EXPORT_SYMBOL_GPL(disk_has_partitions);
411 
412 /*
413  * Can be deleted altogether. Later.
414  *
415  */
416 #define BLKDEV_MAJOR_HASH_SIZE 255
417 static struct blk_major_name {
418 	struct blk_major_name *next;
419 	int major;
420 	char name[16];
421 } *major_names[BLKDEV_MAJOR_HASH_SIZE];
422 
423 /* index in the above - for now: assume no multimajor ranges */
424 static inline int major_to_index(unsigned major)
425 {
426 	return major % BLKDEV_MAJOR_HASH_SIZE;
427 }
428 
429 #ifdef CONFIG_PROC_FS
430 void blkdev_show(struct seq_file *seqf, off_t offset)
431 {
432 	struct blk_major_name *dp;
433 
434 	mutex_lock(&block_class_lock);
435 	for (dp = major_names[major_to_index(offset)]; dp; dp = dp->next)
436 		if (dp->major == offset)
437 			seq_printf(seqf, "%3d %s\n", dp->major, dp->name);
438 	mutex_unlock(&block_class_lock);
439 }
440 #endif /* CONFIG_PROC_FS */
441 
442 /**
443  * register_blkdev - register a new block device
444  *
445  * @major: the requested major device number [1..BLKDEV_MAJOR_MAX-1]. If
446  *         @major = 0, try to allocate any unused major number.
447  * @name: the name of the new block device as a zero terminated string
448  *
449  * The @name must be unique within the system.
450  *
451  * The return value depends on the @major input parameter:
452  *
453  *  - if a major device number was requested in range [1..BLKDEV_MAJOR_MAX-1]
454  *    then the function returns zero on success, or a negative error code
455  *  - if any unused major number was requested with @major = 0 parameter
456  *    then the return value is the allocated major number in range
457  *    [1..BLKDEV_MAJOR_MAX-1] or a negative error code otherwise
458  *
459  * See Documentation/admin-guide/devices.txt for the list of allocated
460  * major numbers.
461  */
462 int register_blkdev(unsigned int major, const char *name)
463 {
464 	struct blk_major_name **n, *p;
465 	int index, ret = 0;
466 
467 	mutex_lock(&block_class_lock);
468 
469 	/* temporary */
470 	if (major == 0) {
471 		for (index = ARRAY_SIZE(major_names)-1; index > 0; index--) {
472 			if (major_names[index] == NULL)
473 				break;
474 		}
475 
476 		if (index == 0) {
477 			printk("%s: failed to get major for %s\n",
478 			       __func__, name);
479 			ret = -EBUSY;
480 			goto out;
481 		}
482 		major = index;
483 		ret = major;
484 	}
485 
486 	if (major >= BLKDEV_MAJOR_MAX) {
487 		pr_err("%s: major requested (%u) is greater than the maximum (%u) for %s\n",
488 		       __func__, major, BLKDEV_MAJOR_MAX-1, name);
489 
490 		ret = -EINVAL;
491 		goto out;
492 	}
493 
494 	p = kmalloc(sizeof(struct blk_major_name), GFP_KERNEL);
495 	if (p == NULL) {
496 		ret = -ENOMEM;
497 		goto out;
498 	}
499 
500 	p->major = major;
501 	strlcpy(p->name, name, sizeof(p->name));
502 	p->next = NULL;
503 	index = major_to_index(major);
504 
505 	for (n = &major_names[index]; *n; n = &(*n)->next) {
506 		if ((*n)->major == major)
507 			break;
508 	}
509 	if (!*n)
510 		*n = p;
511 	else
512 		ret = -EBUSY;
513 
514 	if (ret < 0) {
515 		printk("register_blkdev: cannot get major %u for %s\n",
516 		       major, name);
517 		kfree(p);
518 	}
519 out:
520 	mutex_unlock(&block_class_lock);
521 	return ret;
522 }
523 
524 EXPORT_SYMBOL(register_blkdev);
525 
526 void unregister_blkdev(unsigned int major, const char *name)
527 {
528 	struct blk_major_name **n;
529 	struct blk_major_name *p = NULL;
530 	int index = major_to_index(major);
531 
532 	mutex_lock(&block_class_lock);
533 	for (n = &major_names[index]; *n; n = &(*n)->next)
534 		if ((*n)->major == major)
535 			break;
536 	if (!*n || strcmp((*n)->name, name)) {
537 		WARN_ON(1);
538 	} else {
539 		p = *n;
540 		*n = p->next;
541 	}
542 	mutex_unlock(&block_class_lock);
543 	kfree(p);
544 }
545 
546 EXPORT_SYMBOL(unregister_blkdev);
547 
548 static struct kobj_map *bdev_map;
549 
550 /**
551  * blk_mangle_minor - scatter minor numbers apart
552  * @minor: minor number to mangle
553  *
554  * Scatter consecutively allocated @minor number apart if MANGLE_DEVT
555  * is enabled.  Mangling twice gives the original value.
556  *
557  * RETURNS:
558  * Mangled value.
559  *
560  * CONTEXT:
561  * Don't care.
562  */
563 static int blk_mangle_minor(int minor)
564 {
565 #ifdef CONFIG_DEBUG_BLOCK_EXT_DEVT
566 	int i;
567 
568 	for (i = 0; i < MINORBITS / 2; i++) {
569 		int low = minor & (1 << i);
570 		int high = minor & (1 << (MINORBITS - 1 - i));
571 		int distance = MINORBITS - 1 - 2 * i;
572 
573 		minor ^= low | high;	/* clear both bits */
574 		low <<= distance;	/* swap the positions */
575 		high >>= distance;
576 		minor |= low | high;	/* and set */
577 	}
578 #endif
579 	return minor;
580 }
581 
582 /**
583  * blk_alloc_devt - allocate a dev_t for a partition
584  * @part: partition to allocate dev_t for
585  * @devt: out parameter for resulting dev_t
586  *
587  * Allocate a dev_t for block device.
588  *
589  * RETURNS:
590  * 0 on success, allocated dev_t is returned in *@devt.  -errno on
591  * failure.
592  *
593  * CONTEXT:
594  * Might sleep.
595  */
596 int blk_alloc_devt(struct hd_struct *part, dev_t *devt)
597 {
598 	struct gendisk *disk = part_to_disk(part);
599 	int idx;
600 
601 	/* in consecutive minor range? */
602 	if (part->partno < disk->minors) {
603 		*devt = MKDEV(disk->major, disk->first_minor + part->partno);
604 		return 0;
605 	}
606 
607 	/* allocate ext devt */
608 	idr_preload(GFP_KERNEL);
609 
610 	spin_lock_bh(&ext_devt_lock);
611 	idx = idr_alloc(&ext_devt_idr, part, 0, NR_EXT_DEVT, GFP_NOWAIT);
612 	spin_unlock_bh(&ext_devt_lock);
613 
614 	idr_preload_end();
615 	if (idx < 0)
616 		return idx == -ENOSPC ? -EBUSY : idx;
617 
618 	*devt = MKDEV(BLOCK_EXT_MAJOR, blk_mangle_minor(idx));
619 	return 0;
620 }
621 
622 /**
623  * blk_free_devt - free a dev_t
624  * @devt: dev_t to free
625  *
626  * Free @devt which was allocated using blk_alloc_devt().
627  *
628  * CONTEXT:
629  * Might sleep.
630  */
631 void blk_free_devt(dev_t devt)
632 {
633 	if (devt == MKDEV(0, 0))
634 		return;
635 
636 	if (MAJOR(devt) == BLOCK_EXT_MAJOR) {
637 		spin_lock_bh(&ext_devt_lock);
638 		idr_remove(&ext_devt_idr, blk_mangle_minor(MINOR(devt)));
639 		spin_unlock_bh(&ext_devt_lock);
640 	}
641 }
642 
643 /*
644  * We invalidate devt by assigning NULL pointer for devt in idr.
645  */
646 void blk_invalidate_devt(dev_t devt)
647 {
648 	if (MAJOR(devt) == BLOCK_EXT_MAJOR) {
649 		spin_lock_bh(&ext_devt_lock);
650 		idr_replace(&ext_devt_idr, NULL, blk_mangle_minor(MINOR(devt)));
651 		spin_unlock_bh(&ext_devt_lock);
652 	}
653 }
654 
655 static char *bdevt_str(dev_t devt, char *buf)
656 {
657 	if (MAJOR(devt) <= 0xff && MINOR(devt) <= 0xff) {
658 		char tbuf[BDEVT_SIZE];
659 		snprintf(tbuf, BDEVT_SIZE, "%02x%02x", MAJOR(devt), MINOR(devt));
660 		snprintf(buf, BDEVT_SIZE, "%-9s", tbuf);
661 	} else
662 		snprintf(buf, BDEVT_SIZE, "%03x:%05x", MAJOR(devt), MINOR(devt));
663 
664 	return buf;
665 }
666 
667 /*
668  * Register device numbers dev..(dev+range-1)
669  * range must be nonzero
670  * The hash chain is sorted on range, so that subranges can override.
671  */
672 void blk_register_region(dev_t devt, unsigned long range, struct module *module,
673 			 struct kobject *(*probe)(dev_t, int *, void *),
674 			 int (*lock)(dev_t, void *), void *data)
675 {
676 	kobj_map(bdev_map, devt, range, module, probe, lock, data);
677 }
678 
679 EXPORT_SYMBOL(blk_register_region);
680 
681 void blk_unregister_region(dev_t devt, unsigned long range)
682 {
683 	kobj_unmap(bdev_map, devt, range);
684 }
685 
686 EXPORT_SYMBOL(blk_unregister_region);
687 
688 static struct kobject *exact_match(dev_t devt, int *partno, void *data)
689 {
690 	struct gendisk *p = data;
691 
692 	return &disk_to_dev(p)->kobj;
693 }
694 
695 static int exact_lock(dev_t devt, void *data)
696 {
697 	struct gendisk *p = data;
698 
699 	if (!get_disk_and_module(p))
700 		return -1;
701 	return 0;
702 }
703 
704 static void register_disk(struct device *parent, struct gendisk *disk,
705 			  const struct attribute_group **groups)
706 {
707 	struct device *ddev = disk_to_dev(disk);
708 	struct block_device *bdev;
709 	struct disk_part_iter piter;
710 	struct hd_struct *part;
711 	int err;
712 
713 	ddev->parent = parent;
714 
715 	dev_set_name(ddev, "%s", disk->disk_name);
716 
717 	/* delay uevents, until we scanned partition table */
718 	dev_set_uevent_suppress(ddev, 1);
719 
720 	if (groups) {
721 		WARN_ON(ddev->groups);
722 		ddev->groups = groups;
723 	}
724 	if (device_add(ddev))
725 		return;
726 	if (!sysfs_deprecated) {
727 		err = sysfs_create_link(block_depr, &ddev->kobj,
728 					kobject_name(&ddev->kobj));
729 		if (err) {
730 			device_del(ddev);
731 			return;
732 		}
733 	}
734 
735 	/*
736 	 * avoid probable deadlock caused by allocating memory with
737 	 * GFP_KERNEL in runtime_resume callback of its all ancestor
738 	 * devices
739 	 */
740 	pm_runtime_set_memalloc_noio(ddev, true);
741 
742 	disk->part0.holder_dir = kobject_create_and_add("holders", &ddev->kobj);
743 	disk->slave_dir = kobject_create_and_add("slaves", &ddev->kobj);
744 
745 	if (disk->flags & GENHD_FL_HIDDEN) {
746 		dev_set_uevent_suppress(ddev, 0);
747 		return;
748 	}
749 
750 	/* No minors to use for partitions */
751 	if (!disk_part_scan_enabled(disk))
752 		goto exit;
753 
754 	/* No such device (e.g., media were just removed) */
755 	if (!get_capacity(disk))
756 		goto exit;
757 
758 	bdev = bdget_disk(disk, 0);
759 	if (!bdev)
760 		goto exit;
761 
762 	bdev->bd_invalidated = 1;
763 	err = blkdev_get(bdev, FMODE_READ, NULL);
764 	if (err < 0)
765 		goto exit;
766 	blkdev_put(bdev, FMODE_READ);
767 
768 exit:
769 	/* announce disk after possible partitions are created */
770 	dev_set_uevent_suppress(ddev, 0);
771 	kobject_uevent(&ddev->kobj, KOBJ_ADD);
772 
773 	/* announce possible partitions */
774 	disk_part_iter_init(&piter, disk, 0);
775 	while ((part = disk_part_iter_next(&piter)))
776 		kobject_uevent(&part_to_dev(part)->kobj, KOBJ_ADD);
777 	disk_part_iter_exit(&piter);
778 
779 	if (disk->queue->backing_dev_info->dev) {
780 		err = sysfs_create_link(&ddev->kobj,
781 			  &disk->queue->backing_dev_info->dev->kobj,
782 			  "bdi");
783 		WARN_ON(err);
784 	}
785 }
786 
787 /**
788  * __device_add_disk - add disk information to kernel list
789  * @parent: parent device for the disk
790  * @disk: per-device partitioning information
791  * @groups: Additional per-device sysfs groups
792  * @register_queue: register the queue if set to true
793  *
794  * This function registers the partitioning information in @disk
795  * with the kernel.
796  *
797  * FIXME: error handling
798  */
799 static void __device_add_disk(struct device *parent, struct gendisk *disk,
800 			      const struct attribute_group **groups,
801 			      bool register_queue)
802 {
803 	dev_t devt;
804 	int retval;
805 
806 	/*
807 	 * The disk queue should now be all set with enough information about
808 	 * the device for the elevator code to pick an adequate default
809 	 * elevator if one is needed, that is, for devices requesting queue
810 	 * registration.
811 	 */
812 	if (register_queue)
813 		elevator_init_mq(disk->queue);
814 
815 	/* minors == 0 indicates to use ext devt from part0 and should
816 	 * be accompanied with EXT_DEVT flag.  Make sure all
817 	 * parameters make sense.
818 	 */
819 	WARN_ON(disk->minors && !(disk->major || disk->first_minor));
820 	WARN_ON(!disk->minors &&
821 		!(disk->flags & (GENHD_FL_EXT_DEVT | GENHD_FL_HIDDEN)));
822 
823 	disk->flags |= GENHD_FL_UP;
824 
825 	retval = blk_alloc_devt(&disk->part0, &devt);
826 	if (retval) {
827 		WARN_ON(1);
828 		return;
829 	}
830 	disk->major = MAJOR(devt);
831 	disk->first_minor = MINOR(devt);
832 
833 	disk_alloc_events(disk);
834 
835 	if (disk->flags & GENHD_FL_HIDDEN) {
836 		/*
837 		 * Don't let hidden disks show up in /proc/partitions,
838 		 * and don't bother scanning for partitions either.
839 		 */
840 		disk->flags |= GENHD_FL_SUPPRESS_PARTITION_INFO;
841 		disk->flags |= GENHD_FL_NO_PART_SCAN;
842 	} else {
843 		struct backing_dev_info *bdi = disk->queue->backing_dev_info;
844 		struct device *dev = disk_to_dev(disk);
845 		int ret;
846 
847 		/* Register BDI before referencing it from bdev */
848 		dev->devt = devt;
849 		ret = bdi_register(bdi, "%u:%u", MAJOR(devt), MINOR(devt));
850 		WARN_ON(ret);
851 		bdi_set_owner(bdi, dev);
852 		blk_register_region(disk_devt(disk), disk->minors, NULL,
853 				    exact_match, exact_lock, disk);
854 	}
855 	register_disk(parent, disk, groups);
856 	if (register_queue)
857 		blk_register_queue(disk);
858 
859 	/*
860 	 * Take an extra ref on queue which will be put on disk_release()
861 	 * so that it sticks around as long as @disk is there.
862 	 */
863 	WARN_ON_ONCE(!blk_get_queue(disk->queue));
864 
865 	disk_add_events(disk);
866 	blk_integrity_add(disk);
867 }
868 
869 void device_add_disk(struct device *parent, struct gendisk *disk,
870 		     const struct attribute_group **groups)
871 
872 {
873 	__device_add_disk(parent, disk, groups, true);
874 }
875 EXPORT_SYMBOL(device_add_disk);
876 
877 void device_add_disk_no_queue_reg(struct device *parent, struct gendisk *disk)
878 {
879 	__device_add_disk(parent, disk, NULL, false);
880 }
881 EXPORT_SYMBOL(device_add_disk_no_queue_reg);
882 
883 static void invalidate_partition(struct gendisk *disk, int partno)
884 {
885 	struct block_device *bdev;
886 
887 	bdev = bdget_disk(disk, partno);
888 	if (!bdev)
889 		return;
890 
891 	fsync_bdev(bdev);
892 	__invalidate_device(bdev, true);
893 
894 	/*
895 	 * Unhash the bdev inode for this device so that it gets evicted as soon
896 	 * as last inode reference is dropped.
897 	 */
898 	remove_inode_hash(bdev->bd_inode);
899 	bdput(bdev);
900 }
901 
902 void del_gendisk(struct gendisk *disk)
903 {
904 	struct disk_part_iter piter;
905 	struct hd_struct *part;
906 
907 	blk_integrity_del(disk);
908 	disk_del_events(disk);
909 
910 	/*
911 	 * Block lookups of the disk until all bdevs are unhashed and the
912 	 * disk is marked as dead (GENHD_FL_UP cleared).
913 	 */
914 	down_write(&disk->lookup_sem);
915 	/* invalidate stuff */
916 	disk_part_iter_init(&piter, disk,
917 			     DISK_PITER_INCL_EMPTY | DISK_PITER_REVERSE);
918 	while ((part = disk_part_iter_next(&piter))) {
919 		invalidate_partition(disk, part->partno);
920 		delete_partition(disk, part);
921 	}
922 	disk_part_iter_exit(&piter);
923 
924 	invalidate_partition(disk, 0);
925 	set_capacity(disk, 0);
926 	disk->flags &= ~GENHD_FL_UP;
927 	up_write(&disk->lookup_sem);
928 
929 	if (!(disk->flags & GENHD_FL_HIDDEN))
930 		sysfs_remove_link(&disk_to_dev(disk)->kobj, "bdi");
931 	if (disk->queue) {
932 		/*
933 		 * Unregister bdi before releasing device numbers (as they can
934 		 * get reused and we'd get clashes in sysfs).
935 		 */
936 		if (!(disk->flags & GENHD_FL_HIDDEN))
937 			bdi_unregister(disk->queue->backing_dev_info);
938 		blk_unregister_queue(disk);
939 	} else {
940 		WARN_ON(1);
941 	}
942 
943 	if (!(disk->flags & GENHD_FL_HIDDEN))
944 		blk_unregister_region(disk_devt(disk), disk->minors);
945 	/*
946 	 * Remove gendisk pointer from idr so that it cannot be looked up
947 	 * while RCU period before freeing gendisk is running to prevent
948 	 * use-after-free issues. Note that the device number stays
949 	 * "in-use" until we really free the gendisk.
950 	 */
951 	blk_invalidate_devt(disk_devt(disk));
952 
953 	kobject_put(disk->part0.holder_dir);
954 	kobject_put(disk->slave_dir);
955 
956 	part_stat_set_all(&disk->part0, 0);
957 	disk->part0.stamp = 0;
958 	if (!sysfs_deprecated)
959 		sysfs_remove_link(block_depr, dev_name(disk_to_dev(disk)));
960 	pm_runtime_set_memalloc_noio(disk_to_dev(disk), false);
961 	device_del(disk_to_dev(disk));
962 }
963 EXPORT_SYMBOL(del_gendisk);
964 
965 /* sysfs access to bad-blocks list. */
966 static ssize_t disk_badblocks_show(struct device *dev,
967 					struct device_attribute *attr,
968 					char *page)
969 {
970 	struct gendisk *disk = dev_to_disk(dev);
971 
972 	if (!disk->bb)
973 		return sprintf(page, "\n");
974 
975 	return badblocks_show(disk->bb, page, 0);
976 }
977 
978 static ssize_t disk_badblocks_store(struct device *dev,
979 					struct device_attribute *attr,
980 					const char *page, size_t len)
981 {
982 	struct gendisk *disk = dev_to_disk(dev);
983 
984 	if (!disk->bb)
985 		return -ENXIO;
986 
987 	return badblocks_store(disk->bb, page, len, 0);
988 }
989 
990 /**
991  * get_gendisk - get partitioning information for a given device
992  * @devt: device to get partitioning information for
993  * @partno: returned partition index
994  *
995  * This function gets the structure containing partitioning
996  * information for the given device @devt.
997  */
998 struct gendisk *get_gendisk(dev_t devt, int *partno)
999 {
1000 	struct gendisk *disk = NULL;
1001 
1002 	if (MAJOR(devt) != BLOCK_EXT_MAJOR) {
1003 		struct kobject *kobj;
1004 
1005 		kobj = kobj_lookup(bdev_map, devt, partno);
1006 		if (kobj)
1007 			disk = dev_to_disk(kobj_to_dev(kobj));
1008 	} else {
1009 		struct hd_struct *part;
1010 
1011 		spin_lock_bh(&ext_devt_lock);
1012 		part = idr_find(&ext_devt_idr, blk_mangle_minor(MINOR(devt)));
1013 		if (part && get_disk_and_module(part_to_disk(part))) {
1014 			*partno = part->partno;
1015 			disk = part_to_disk(part);
1016 		}
1017 		spin_unlock_bh(&ext_devt_lock);
1018 	}
1019 
1020 	if (!disk)
1021 		return NULL;
1022 
1023 	/*
1024 	 * Synchronize with del_gendisk() to not return disk that is being
1025 	 * destroyed.
1026 	 */
1027 	down_read(&disk->lookup_sem);
1028 	if (unlikely((disk->flags & GENHD_FL_HIDDEN) ||
1029 		     !(disk->flags & GENHD_FL_UP))) {
1030 		up_read(&disk->lookup_sem);
1031 		put_disk_and_module(disk);
1032 		disk = NULL;
1033 	} else {
1034 		up_read(&disk->lookup_sem);
1035 	}
1036 	return disk;
1037 }
1038 
1039 /**
1040  * bdget_disk - do bdget() by gendisk and partition number
1041  * @disk: gendisk of interest
1042  * @partno: partition number
1043  *
1044  * Find partition @partno from @disk, do bdget() on it.
1045  *
1046  * CONTEXT:
1047  * Don't care.
1048  *
1049  * RETURNS:
1050  * Resulting block_device on success, NULL on failure.
1051  */
1052 struct block_device *bdget_disk(struct gendisk *disk, int partno)
1053 {
1054 	struct hd_struct *part;
1055 	struct block_device *bdev = NULL;
1056 
1057 	part = disk_get_part(disk, partno);
1058 	if (part)
1059 		bdev = bdget(part_devt(part));
1060 	disk_put_part(part);
1061 
1062 	return bdev;
1063 }
1064 EXPORT_SYMBOL(bdget_disk);
1065 
1066 /*
1067  * print a full list of all partitions - intended for places where the root
1068  * filesystem can't be mounted and thus to give the victim some idea of what
1069  * went wrong
1070  */
1071 void __init printk_all_partitions(void)
1072 {
1073 	struct class_dev_iter iter;
1074 	struct device *dev;
1075 
1076 	class_dev_iter_init(&iter, &block_class, NULL, &disk_type);
1077 	while ((dev = class_dev_iter_next(&iter))) {
1078 		struct gendisk *disk = dev_to_disk(dev);
1079 		struct disk_part_iter piter;
1080 		struct hd_struct *part;
1081 		char name_buf[BDEVNAME_SIZE];
1082 		char devt_buf[BDEVT_SIZE];
1083 
1084 		/*
1085 		 * Don't show empty devices or things that have been
1086 		 * suppressed
1087 		 */
1088 		if (get_capacity(disk) == 0 ||
1089 		    (disk->flags & GENHD_FL_SUPPRESS_PARTITION_INFO))
1090 			continue;
1091 
1092 		/*
1093 		 * Note, unlike /proc/partitions, I am showing the
1094 		 * numbers in hex - the same format as the root=
1095 		 * option takes.
1096 		 */
1097 		disk_part_iter_init(&piter, disk, DISK_PITER_INCL_PART0);
1098 		while ((part = disk_part_iter_next(&piter))) {
1099 			bool is_part0 = part == &disk->part0;
1100 
1101 			printk("%s%s %10llu %s %s", is_part0 ? "" : "  ",
1102 			       bdevt_str(part_devt(part), devt_buf),
1103 			       (unsigned long long)part_nr_sects_read(part) >> 1
1104 			       , disk_name(disk, part->partno, name_buf),
1105 			       part->info ? part->info->uuid : "");
1106 			if (is_part0) {
1107 				if (dev->parent && dev->parent->driver)
1108 					printk(" driver: %s\n",
1109 					      dev->parent->driver->name);
1110 				else
1111 					printk(" (driver?)\n");
1112 			} else
1113 				printk("\n");
1114 		}
1115 		disk_part_iter_exit(&piter);
1116 	}
1117 	class_dev_iter_exit(&iter);
1118 }
1119 
1120 #ifdef CONFIG_PROC_FS
1121 /* iterator */
1122 static void *disk_seqf_start(struct seq_file *seqf, loff_t *pos)
1123 {
1124 	loff_t skip = *pos;
1125 	struct class_dev_iter *iter;
1126 	struct device *dev;
1127 
1128 	iter = kmalloc(sizeof(*iter), GFP_KERNEL);
1129 	if (!iter)
1130 		return ERR_PTR(-ENOMEM);
1131 
1132 	seqf->private = iter;
1133 	class_dev_iter_init(iter, &block_class, NULL, &disk_type);
1134 	do {
1135 		dev = class_dev_iter_next(iter);
1136 		if (!dev)
1137 			return NULL;
1138 	} while (skip--);
1139 
1140 	return dev_to_disk(dev);
1141 }
1142 
1143 static void *disk_seqf_next(struct seq_file *seqf, void *v, loff_t *pos)
1144 {
1145 	struct device *dev;
1146 
1147 	(*pos)++;
1148 	dev = class_dev_iter_next(seqf->private);
1149 	if (dev)
1150 		return dev_to_disk(dev);
1151 
1152 	return NULL;
1153 }
1154 
1155 static void disk_seqf_stop(struct seq_file *seqf, void *v)
1156 {
1157 	struct class_dev_iter *iter = seqf->private;
1158 
1159 	/* stop is called even after start failed :-( */
1160 	if (iter) {
1161 		class_dev_iter_exit(iter);
1162 		kfree(iter);
1163 		seqf->private = NULL;
1164 	}
1165 }
1166 
1167 static void *show_partition_start(struct seq_file *seqf, loff_t *pos)
1168 {
1169 	void *p;
1170 
1171 	p = disk_seqf_start(seqf, pos);
1172 	if (!IS_ERR_OR_NULL(p) && !*pos)
1173 		seq_puts(seqf, "major minor  #blocks  name\n\n");
1174 	return p;
1175 }
1176 
1177 static int show_partition(struct seq_file *seqf, void *v)
1178 {
1179 	struct gendisk *sgp = v;
1180 	struct disk_part_iter piter;
1181 	struct hd_struct *part;
1182 	char buf[BDEVNAME_SIZE];
1183 
1184 	/* Don't show non-partitionable removeable devices or empty devices */
1185 	if (!get_capacity(sgp) || (!disk_max_parts(sgp) &&
1186 				   (sgp->flags & GENHD_FL_REMOVABLE)))
1187 		return 0;
1188 	if (sgp->flags & GENHD_FL_SUPPRESS_PARTITION_INFO)
1189 		return 0;
1190 
1191 	/* show the full disk and all non-0 size partitions of it */
1192 	disk_part_iter_init(&piter, sgp, DISK_PITER_INCL_PART0);
1193 	while ((part = disk_part_iter_next(&piter)))
1194 		seq_printf(seqf, "%4d  %7d %10llu %s\n",
1195 			   MAJOR(part_devt(part)), MINOR(part_devt(part)),
1196 			   (unsigned long long)part_nr_sects_read(part) >> 1,
1197 			   disk_name(sgp, part->partno, buf));
1198 	disk_part_iter_exit(&piter);
1199 
1200 	return 0;
1201 }
1202 
1203 static const struct seq_operations partitions_op = {
1204 	.start	= show_partition_start,
1205 	.next	= disk_seqf_next,
1206 	.stop	= disk_seqf_stop,
1207 	.show	= show_partition
1208 };
1209 #endif
1210 
1211 
1212 static struct kobject *base_probe(dev_t devt, int *partno, void *data)
1213 {
1214 	if (request_module("block-major-%d-%d", MAJOR(devt), MINOR(devt)) > 0)
1215 		/* Make old-style 2.4 aliases work */
1216 		request_module("block-major-%d", MAJOR(devt));
1217 	return NULL;
1218 }
1219 
1220 static int __init genhd_device_init(void)
1221 {
1222 	int error;
1223 
1224 	block_class.dev_kobj = sysfs_dev_block_kobj;
1225 	error = class_register(&block_class);
1226 	if (unlikely(error))
1227 		return error;
1228 	bdev_map = kobj_map_init(base_probe, &block_class_lock);
1229 	blk_dev_init();
1230 
1231 	register_blkdev(BLOCK_EXT_MAJOR, "blkext");
1232 
1233 	/* create top-level block dir */
1234 	if (!sysfs_deprecated)
1235 		block_depr = kobject_create_and_add("block", NULL);
1236 	return 0;
1237 }
1238 
1239 subsys_initcall(genhd_device_init);
1240 
1241 static ssize_t disk_range_show(struct device *dev,
1242 			       struct device_attribute *attr, char *buf)
1243 {
1244 	struct gendisk *disk = dev_to_disk(dev);
1245 
1246 	return sprintf(buf, "%d\n", disk->minors);
1247 }
1248 
1249 static ssize_t disk_ext_range_show(struct device *dev,
1250 				   struct device_attribute *attr, char *buf)
1251 {
1252 	struct gendisk *disk = dev_to_disk(dev);
1253 
1254 	return sprintf(buf, "%d\n", disk_max_parts(disk));
1255 }
1256 
1257 static ssize_t disk_removable_show(struct device *dev,
1258 				   struct device_attribute *attr, char *buf)
1259 {
1260 	struct gendisk *disk = dev_to_disk(dev);
1261 
1262 	return sprintf(buf, "%d\n",
1263 		       (disk->flags & GENHD_FL_REMOVABLE ? 1 : 0));
1264 }
1265 
1266 static ssize_t disk_hidden_show(struct device *dev,
1267 				   struct device_attribute *attr, char *buf)
1268 {
1269 	struct gendisk *disk = dev_to_disk(dev);
1270 
1271 	return sprintf(buf, "%d\n",
1272 		       (disk->flags & GENHD_FL_HIDDEN ? 1 : 0));
1273 }
1274 
1275 static ssize_t disk_ro_show(struct device *dev,
1276 				   struct device_attribute *attr, char *buf)
1277 {
1278 	struct gendisk *disk = dev_to_disk(dev);
1279 
1280 	return sprintf(buf, "%d\n", get_disk_ro(disk) ? 1 : 0);
1281 }
1282 
1283 ssize_t part_size_show(struct device *dev,
1284 		       struct device_attribute *attr, char *buf)
1285 {
1286 	struct hd_struct *p = dev_to_part(dev);
1287 
1288 	return sprintf(buf, "%llu\n",
1289 		(unsigned long long)part_nr_sects_read(p));
1290 }
1291 
1292 ssize_t part_stat_show(struct device *dev,
1293 		       struct device_attribute *attr, char *buf)
1294 {
1295 	struct hd_struct *p = dev_to_part(dev);
1296 	struct request_queue *q = part_to_disk(p)->queue;
1297 	struct disk_stats stat;
1298 	unsigned int inflight;
1299 
1300 	part_stat_read_all(p, &stat);
1301 	inflight = part_in_flight(q, p);
1302 
1303 	return sprintf(buf,
1304 		"%8lu %8lu %8llu %8u "
1305 		"%8lu %8lu %8llu %8u "
1306 		"%8u %8u %8u "
1307 		"%8lu %8lu %8llu %8u "
1308 		"%8lu %8u"
1309 		"\n",
1310 		stat.ios[STAT_READ],
1311 		stat.merges[STAT_READ],
1312 		(unsigned long long)stat.sectors[STAT_READ],
1313 		(unsigned int)div_u64(stat.nsecs[STAT_READ], NSEC_PER_MSEC),
1314 		stat.ios[STAT_WRITE],
1315 		stat.merges[STAT_WRITE],
1316 		(unsigned long long)stat.sectors[STAT_WRITE],
1317 		(unsigned int)div_u64(stat.nsecs[STAT_WRITE], NSEC_PER_MSEC),
1318 		inflight,
1319 		jiffies_to_msecs(stat.io_ticks),
1320 		(unsigned int)div_u64(stat.nsecs[STAT_READ] +
1321 				      stat.nsecs[STAT_WRITE] +
1322 				      stat.nsecs[STAT_DISCARD] +
1323 				      stat.nsecs[STAT_FLUSH],
1324 						NSEC_PER_MSEC),
1325 		stat.ios[STAT_DISCARD],
1326 		stat.merges[STAT_DISCARD],
1327 		(unsigned long long)stat.sectors[STAT_DISCARD],
1328 		(unsigned int)div_u64(stat.nsecs[STAT_DISCARD], NSEC_PER_MSEC),
1329 		stat.ios[STAT_FLUSH],
1330 		(unsigned int)div_u64(stat.nsecs[STAT_FLUSH], NSEC_PER_MSEC));
1331 }
1332 
1333 ssize_t part_inflight_show(struct device *dev, struct device_attribute *attr,
1334 			   char *buf)
1335 {
1336 	struct hd_struct *p = dev_to_part(dev);
1337 	struct request_queue *q = part_to_disk(p)->queue;
1338 	unsigned int inflight[2];
1339 
1340 	part_in_flight_rw(q, p, inflight);
1341 	return sprintf(buf, "%8u %8u\n", inflight[0], inflight[1]);
1342 }
1343 
1344 static ssize_t disk_capability_show(struct device *dev,
1345 				    struct device_attribute *attr, char *buf)
1346 {
1347 	struct gendisk *disk = dev_to_disk(dev);
1348 
1349 	return sprintf(buf, "%x\n", disk->flags);
1350 }
1351 
1352 static ssize_t disk_alignment_offset_show(struct device *dev,
1353 					  struct device_attribute *attr,
1354 					  char *buf)
1355 {
1356 	struct gendisk *disk = dev_to_disk(dev);
1357 
1358 	return sprintf(buf, "%d\n", queue_alignment_offset(disk->queue));
1359 }
1360 
1361 static ssize_t disk_discard_alignment_show(struct device *dev,
1362 					   struct device_attribute *attr,
1363 					   char *buf)
1364 {
1365 	struct gendisk *disk = dev_to_disk(dev);
1366 
1367 	return sprintf(buf, "%d\n", queue_discard_alignment(disk->queue));
1368 }
1369 
1370 static DEVICE_ATTR(range, 0444, disk_range_show, NULL);
1371 static DEVICE_ATTR(ext_range, 0444, disk_ext_range_show, NULL);
1372 static DEVICE_ATTR(removable, 0444, disk_removable_show, NULL);
1373 static DEVICE_ATTR(hidden, 0444, disk_hidden_show, NULL);
1374 static DEVICE_ATTR(ro, 0444, disk_ro_show, NULL);
1375 static DEVICE_ATTR(size, 0444, part_size_show, NULL);
1376 static DEVICE_ATTR(alignment_offset, 0444, disk_alignment_offset_show, NULL);
1377 static DEVICE_ATTR(discard_alignment, 0444, disk_discard_alignment_show, NULL);
1378 static DEVICE_ATTR(capability, 0444, disk_capability_show, NULL);
1379 static DEVICE_ATTR(stat, 0444, part_stat_show, NULL);
1380 static DEVICE_ATTR(inflight, 0444, part_inflight_show, NULL);
1381 static DEVICE_ATTR(badblocks, 0644, disk_badblocks_show, disk_badblocks_store);
1382 
1383 #ifdef CONFIG_FAIL_MAKE_REQUEST
1384 ssize_t part_fail_show(struct device *dev,
1385 		       struct device_attribute *attr, char *buf)
1386 {
1387 	struct hd_struct *p = dev_to_part(dev);
1388 
1389 	return sprintf(buf, "%d\n", p->make_it_fail);
1390 }
1391 
1392 ssize_t part_fail_store(struct device *dev,
1393 			struct device_attribute *attr,
1394 			const char *buf, size_t count)
1395 {
1396 	struct hd_struct *p = dev_to_part(dev);
1397 	int i;
1398 
1399 	if (count > 0 && sscanf(buf, "%d", &i) > 0)
1400 		p->make_it_fail = (i == 0) ? 0 : 1;
1401 
1402 	return count;
1403 }
1404 
1405 static struct device_attribute dev_attr_fail =
1406 	__ATTR(make-it-fail, 0644, part_fail_show, part_fail_store);
1407 #endif /* CONFIG_FAIL_MAKE_REQUEST */
1408 
1409 #ifdef CONFIG_FAIL_IO_TIMEOUT
1410 static struct device_attribute dev_attr_fail_timeout =
1411 	__ATTR(io-timeout-fail, 0644, part_timeout_show, part_timeout_store);
1412 #endif
1413 
1414 static struct attribute *disk_attrs[] = {
1415 	&dev_attr_range.attr,
1416 	&dev_attr_ext_range.attr,
1417 	&dev_attr_removable.attr,
1418 	&dev_attr_hidden.attr,
1419 	&dev_attr_ro.attr,
1420 	&dev_attr_size.attr,
1421 	&dev_attr_alignment_offset.attr,
1422 	&dev_attr_discard_alignment.attr,
1423 	&dev_attr_capability.attr,
1424 	&dev_attr_stat.attr,
1425 	&dev_attr_inflight.attr,
1426 	&dev_attr_badblocks.attr,
1427 #ifdef CONFIG_FAIL_MAKE_REQUEST
1428 	&dev_attr_fail.attr,
1429 #endif
1430 #ifdef CONFIG_FAIL_IO_TIMEOUT
1431 	&dev_attr_fail_timeout.attr,
1432 #endif
1433 	NULL
1434 };
1435 
1436 static umode_t disk_visible(struct kobject *kobj, struct attribute *a, int n)
1437 {
1438 	struct device *dev = container_of(kobj, typeof(*dev), kobj);
1439 	struct gendisk *disk = dev_to_disk(dev);
1440 
1441 	if (a == &dev_attr_badblocks.attr && !disk->bb)
1442 		return 0;
1443 	return a->mode;
1444 }
1445 
1446 static struct attribute_group disk_attr_group = {
1447 	.attrs = disk_attrs,
1448 	.is_visible = disk_visible,
1449 };
1450 
1451 static const struct attribute_group *disk_attr_groups[] = {
1452 	&disk_attr_group,
1453 	NULL
1454 };
1455 
1456 /**
1457  * disk_replace_part_tbl - replace disk->part_tbl in RCU-safe way
1458  * @disk: disk to replace part_tbl for
1459  * @new_ptbl: new part_tbl to install
1460  *
1461  * Replace disk->part_tbl with @new_ptbl in RCU-safe way.  The
1462  * original ptbl is freed using RCU callback.
1463  *
1464  * LOCKING:
1465  * Matching bd_mutex locked or the caller is the only user of @disk.
1466  */
1467 static void disk_replace_part_tbl(struct gendisk *disk,
1468 				  struct disk_part_tbl *new_ptbl)
1469 {
1470 	struct disk_part_tbl *old_ptbl =
1471 		rcu_dereference_protected(disk->part_tbl, 1);
1472 
1473 	rcu_assign_pointer(disk->part_tbl, new_ptbl);
1474 
1475 	if (old_ptbl) {
1476 		rcu_assign_pointer(old_ptbl->last_lookup, NULL);
1477 		kfree_rcu(old_ptbl, rcu_head);
1478 	}
1479 }
1480 
1481 /**
1482  * disk_expand_part_tbl - expand disk->part_tbl
1483  * @disk: disk to expand part_tbl for
1484  * @partno: expand such that this partno can fit in
1485  *
1486  * Expand disk->part_tbl such that @partno can fit in.  disk->part_tbl
1487  * uses RCU to allow unlocked dereferencing for stats and other stuff.
1488  *
1489  * LOCKING:
1490  * Matching bd_mutex locked or the caller is the only user of @disk.
1491  * Might sleep.
1492  *
1493  * RETURNS:
1494  * 0 on success, -errno on failure.
1495  */
1496 int disk_expand_part_tbl(struct gendisk *disk, int partno)
1497 {
1498 	struct disk_part_tbl *old_ptbl =
1499 		rcu_dereference_protected(disk->part_tbl, 1);
1500 	struct disk_part_tbl *new_ptbl;
1501 	int len = old_ptbl ? old_ptbl->len : 0;
1502 	int i, target;
1503 
1504 	/*
1505 	 * check for int overflow, since we can get here from blkpg_ioctl()
1506 	 * with a user passed 'partno'.
1507 	 */
1508 	target = partno + 1;
1509 	if (target < 0)
1510 		return -EINVAL;
1511 
1512 	/* disk_max_parts() is zero during initialization, ignore if so */
1513 	if (disk_max_parts(disk) && target > disk_max_parts(disk))
1514 		return -EINVAL;
1515 
1516 	if (target <= len)
1517 		return 0;
1518 
1519 	new_ptbl = kzalloc_node(struct_size(new_ptbl, part, target), GFP_KERNEL,
1520 				disk->node_id);
1521 	if (!new_ptbl)
1522 		return -ENOMEM;
1523 
1524 	new_ptbl->len = target;
1525 
1526 	for (i = 0; i < len; i++)
1527 		rcu_assign_pointer(new_ptbl->part[i], old_ptbl->part[i]);
1528 
1529 	disk_replace_part_tbl(disk, new_ptbl);
1530 	return 0;
1531 }
1532 
1533 static void disk_release(struct device *dev)
1534 {
1535 	struct gendisk *disk = dev_to_disk(dev);
1536 
1537 	blk_free_devt(dev->devt);
1538 	disk_release_events(disk);
1539 	kfree(disk->random);
1540 	disk_replace_part_tbl(disk, NULL);
1541 	hd_free_part(&disk->part0);
1542 	if (disk->queue)
1543 		blk_put_queue(disk->queue);
1544 	kfree(disk);
1545 }
1546 struct class block_class = {
1547 	.name		= "block",
1548 };
1549 
1550 static char *block_devnode(struct device *dev, umode_t *mode,
1551 			   kuid_t *uid, kgid_t *gid)
1552 {
1553 	struct gendisk *disk = dev_to_disk(dev);
1554 
1555 	if (disk->fops->devnode)
1556 		return disk->fops->devnode(disk, mode);
1557 	return NULL;
1558 }
1559 
1560 static const struct device_type disk_type = {
1561 	.name		= "disk",
1562 	.groups		= disk_attr_groups,
1563 	.release	= disk_release,
1564 	.devnode	= block_devnode,
1565 };
1566 
1567 #ifdef CONFIG_PROC_FS
1568 /*
1569  * aggregate disk stat collector.  Uses the same stats that the sysfs
1570  * entries do, above, but makes them available through one seq_file.
1571  *
1572  * The output looks suspiciously like /proc/partitions with a bunch of
1573  * extra fields.
1574  */
1575 static int diskstats_show(struct seq_file *seqf, void *v)
1576 {
1577 	struct gendisk *gp = v;
1578 	struct disk_part_iter piter;
1579 	struct hd_struct *hd;
1580 	char buf[BDEVNAME_SIZE];
1581 	unsigned int inflight;
1582 	struct disk_stats stat;
1583 
1584 	/*
1585 	if (&disk_to_dev(gp)->kobj.entry == block_class.devices.next)
1586 		seq_puts(seqf,	"major minor name"
1587 				"     rio rmerge rsect ruse wio wmerge "
1588 				"wsect wuse running use aveq"
1589 				"\n\n");
1590 	*/
1591 
1592 	disk_part_iter_init(&piter, gp, DISK_PITER_INCL_EMPTY_PART0);
1593 	while ((hd = disk_part_iter_next(&piter))) {
1594 		part_stat_read_all(hd, &stat);
1595 		inflight = part_in_flight(gp->queue, hd);
1596 
1597 		seq_printf(seqf, "%4d %7d %s "
1598 			   "%lu %lu %lu %u "
1599 			   "%lu %lu %lu %u "
1600 			   "%u %u %u "
1601 			   "%lu %lu %lu %u "
1602 			   "%lu %u"
1603 			   "\n",
1604 			   MAJOR(part_devt(hd)), MINOR(part_devt(hd)),
1605 			   disk_name(gp, hd->partno, buf),
1606 			   stat.ios[STAT_READ],
1607 			   stat.merges[STAT_READ],
1608 			   stat.sectors[STAT_READ],
1609 			   (unsigned int)div_u64(stat.nsecs[STAT_READ],
1610 							NSEC_PER_MSEC),
1611 			   stat.ios[STAT_WRITE],
1612 			   stat.merges[STAT_WRITE],
1613 			   stat.sectors[STAT_WRITE],
1614 			   (unsigned int)div_u64(stat.nsecs[STAT_WRITE],
1615 							NSEC_PER_MSEC),
1616 			   inflight,
1617 			   jiffies_to_msecs(stat.io_ticks),
1618 			   (unsigned int)div_u64(stat.nsecs[STAT_READ] +
1619 						 stat.nsecs[STAT_WRITE] +
1620 						 stat.nsecs[STAT_DISCARD] +
1621 						 stat.nsecs[STAT_FLUSH],
1622 							NSEC_PER_MSEC),
1623 			   stat.ios[STAT_DISCARD],
1624 			   stat.merges[STAT_DISCARD],
1625 			   stat.sectors[STAT_DISCARD],
1626 			   (unsigned int)div_u64(stat.nsecs[STAT_DISCARD],
1627 						 NSEC_PER_MSEC),
1628 			   stat.ios[STAT_FLUSH],
1629 			   (unsigned int)div_u64(stat.nsecs[STAT_FLUSH],
1630 						 NSEC_PER_MSEC)
1631 			);
1632 	}
1633 	disk_part_iter_exit(&piter);
1634 
1635 	return 0;
1636 }
1637 
1638 static const struct seq_operations diskstats_op = {
1639 	.start	= disk_seqf_start,
1640 	.next	= disk_seqf_next,
1641 	.stop	= disk_seqf_stop,
1642 	.show	= diskstats_show
1643 };
1644 
1645 static int __init proc_genhd_init(void)
1646 {
1647 	proc_create_seq("diskstats", 0, NULL, &diskstats_op);
1648 	proc_create_seq("partitions", 0, NULL, &partitions_op);
1649 	return 0;
1650 }
1651 module_init(proc_genhd_init);
1652 #endif /* CONFIG_PROC_FS */
1653 
1654 dev_t blk_lookup_devt(const char *name, int partno)
1655 {
1656 	dev_t devt = MKDEV(0, 0);
1657 	struct class_dev_iter iter;
1658 	struct device *dev;
1659 
1660 	class_dev_iter_init(&iter, &block_class, NULL, &disk_type);
1661 	while ((dev = class_dev_iter_next(&iter))) {
1662 		struct gendisk *disk = dev_to_disk(dev);
1663 		struct hd_struct *part;
1664 
1665 		if (strcmp(dev_name(dev), name))
1666 			continue;
1667 
1668 		if (partno < disk->minors) {
1669 			/* We need to return the right devno, even
1670 			 * if the partition doesn't exist yet.
1671 			 */
1672 			devt = MKDEV(MAJOR(dev->devt),
1673 				     MINOR(dev->devt) + partno);
1674 			break;
1675 		}
1676 		part = disk_get_part(disk, partno);
1677 		if (part) {
1678 			devt = part_devt(part);
1679 			disk_put_part(part);
1680 			break;
1681 		}
1682 		disk_put_part(part);
1683 	}
1684 	class_dev_iter_exit(&iter);
1685 	return devt;
1686 }
1687 
1688 struct gendisk *__alloc_disk_node(int minors, int node_id)
1689 {
1690 	struct gendisk *disk;
1691 	struct disk_part_tbl *ptbl;
1692 
1693 	if (minors > DISK_MAX_PARTS) {
1694 		printk(KERN_ERR
1695 			"block: can't allocate more than %d partitions\n",
1696 			DISK_MAX_PARTS);
1697 		minors = DISK_MAX_PARTS;
1698 	}
1699 
1700 	disk = kzalloc_node(sizeof(struct gendisk), GFP_KERNEL, node_id);
1701 	if (disk) {
1702 		if (!init_part_stats(&disk->part0)) {
1703 			kfree(disk);
1704 			return NULL;
1705 		}
1706 		init_rwsem(&disk->lookup_sem);
1707 		disk->node_id = node_id;
1708 		if (disk_expand_part_tbl(disk, 0)) {
1709 			free_part_stats(&disk->part0);
1710 			kfree(disk);
1711 			return NULL;
1712 		}
1713 		ptbl = rcu_dereference_protected(disk->part_tbl, 1);
1714 		rcu_assign_pointer(ptbl->part[0], &disk->part0);
1715 
1716 		/*
1717 		 * set_capacity() and get_capacity() currently don't use
1718 		 * seqcounter to read/update the part0->nr_sects. Still init
1719 		 * the counter as we can read the sectors in IO submission
1720 		 * patch using seqence counters.
1721 		 *
1722 		 * TODO: Ideally set_capacity() and get_capacity() should be
1723 		 * converted to make use of bd_mutex and sequence counters.
1724 		 */
1725 		seqcount_init(&disk->part0.nr_sects_seq);
1726 		if (hd_ref_init(&disk->part0)) {
1727 			hd_free_part(&disk->part0);
1728 			kfree(disk);
1729 			return NULL;
1730 		}
1731 
1732 		disk->minors = minors;
1733 		rand_initialize_disk(disk);
1734 		disk_to_dev(disk)->class = &block_class;
1735 		disk_to_dev(disk)->type = &disk_type;
1736 		device_initialize(disk_to_dev(disk));
1737 	}
1738 	return disk;
1739 }
1740 EXPORT_SYMBOL(__alloc_disk_node);
1741 
1742 struct kobject *get_disk_and_module(struct gendisk *disk)
1743 {
1744 	struct module *owner;
1745 	struct kobject *kobj;
1746 
1747 	if (!disk->fops)
1748 		return NULL;
1749 	owner = disk->fops->owner;
1750 	if (owner && !try_module_get(owner))
1751 		return NULL;
1752 	kobj = kobject_get_unless_zero(&disk_to_dev(disk)->kobj);
1753 	if (kobj == NULL) {
1754 		module_put(owner);
1755 		return NULL;
1756 	}
1757 	return kobj;
1758 
1759 }
1760 EXPORT_SYMBOL(get_disk_and_module);
1761 
1762 void put_disk(struct gendisk *disk)
1763 {
1764 	if (disk)
1765 		kobject_put(&disk_to_dev(disk)->kobj);
1766 }
1767 EXPORT_SYMBOL(put_disk);
1768 
1769 /*
1770  * This is a counterpart of get_disk_and_module() and thus also of
1771  * get_gendisk().
1772  */
1773 void put_disk_and_module(struct gendisk *disk)
1774 {
1775 	if (disk) {
1776 		struct module *owner = disk->fops->owner;
1777 
1778 		put_disk(disk);
1779 		module_put(owner);
1780 	}
1781 }
1782 EXPORT_SYMBOL(put_disk_and_module);
1783 
1784 static void set_disk_ro_uevent(struct gendisk *gd, int ro)
1785 {
1786 	char event[] = "DISK_RO=1";
1787 	char *envp[] = { event, NULL };
1788 
1789 	if (!ro)
1790 		event[8] = '0';
1791 	kobject_uevent_env(&disk_to_dev(gd)->kobj, KOBJ_CHANGE, envp);
1792 }
1793 
1794 void set_device_ro(struct block_device *bdev, int flag)
1795 {
1796 	bdev->bd_part->policy = flag;
1797 }
1798 
1799 EXPORT_SYMBOL(set_device_ro);
1800 
1801 void set_disk_ro(struct gendisk *disk, int flag)
1802 {
1803 	struct disk_part_iter piter;
1804 	struct hd_struct *part;
1805 
1806 	if (disk->part0.policy != flag) {
1807 		set_disk_ro_uevent(disk, flag);
1808 		disk->part0.policy = flag;
1809 	}
1810 
1811 	disk_part_iter_init(&piter, disk, DISK_PITER_INCL_EMPTY);
1812 	while ((part = disk_part_iter_next(&piter)))
1813 		part->policy = flag;
1814 	disk_part_iter_exit(&piter);
1815 }
1816 
1817 EXPORT_SYMBOL(set_disk_ro);
1818 
1819 int bdev_read_only(struct block_device *bdev)
1820 {
1821 	if (!bdev)
1822 		return 0;
1823 	return bdev->bd_part->policy;
1824 }
1825 
1826 EXPORT_SYMBOL(bdev_read_only);
1827 
1828 /*
1829  * Disk events - monitor disk events like media change and eject request.
1830  */
1831 struct disk_events {
1832 	struct list_head	node;		/* all disk_event's */
1833 	struct gendisk		*disk;		/* the associated disk */
1834 	spinlock_t		lock;
1835 
1836 	struct mutex		block_mutex;	/* protects blocking */
1837 	int			block;		/* event blocking depth */
1838 	unsigned int		pending;	/* events already sent out */
1839 	unsigned int		clearing;	/* events being cleared */
1840 
1841 	long			poll_msecs;	/* interval, -1 for default */
1842 	struct delayed_work	dwork;
1843 };
1844 
1845 static const char *disk_events_strs[] = {
1846 	[ilog2(DISK_EVENT_MEDIA_CHANGE)]	= "media_change",
1847 	[ilog2(DISK_EVENT_EJECT_REQUEST)]	= "eject_request",
1848 };
1849 
1850 static char *disk_uevents[] = {
1851 	[ilog2(DISK_EVENT_MEDIA_CHANGE)]	= "DISK_MEDIA_CHANGE=1",
1852 	[ilog2(DISK_EVENT_EJECT_REQUEST)]	= "DISK_EJECT_REQUEST=1",
1853 };
1854 
1855 /* list of all disk_events */
1856 static DEFINE_MUTEX(disk_events_mutex);
1857 static LIST_HEAD(disk_events);
1858 
1859 /* disable in-kernel polling by default */
1860 static unsigned long disk_events_dfl_poll_msecs;
1861 
1862 static unsigned long disk_events_poll_jiffies(struct gendisk *disk)
1863 {
1864 	struct disk_events *ev = disk->ev;
1865 	long intv_msecs = 0;
1866 
1867 	/*
1868 	 * If device-specific poll interval is set, always use it.  If
1869 	 * the default is being used, poll if the POLL flag is set.
1870 	 */
1871 	if (ev->poll_msecs >= 0)
1872 		intv_msecs = ev->poll_msecs;
1873 	else if (disk->event_flags & DISK_EVENT_FLAG_POLL)
1874 		intv_msecs = disk_events_dfl_poll_msecs;
1875 
1876 	return msecs_to_jiffies(intv_msecs);
1877 }
1878 
1879 /**
1880  * disk_block_events - block and flush disk event checking
1881  * @disk: disk to block events for
1882  *
1883  * On return from this function, it is guaranteed that event checking
1884  * isn't in progress and won't happen until unblocked by
1885  * disk_unblock_events().  Events blocking is counted and the actual
1886  * unblocking happens after the matching number of unblocks are done.
1887  *
1888  * Note that this intentionally does not block event checking from
1889  * disk_clear_events().
1890  *
1891  * CONTEXT:
1892  * Might sleep.
1893  */
1894 void disk_block_events(struct gendisk *disk)
1895 {
1896 	struct disk_events *ev = disk->ev;
1897 	unsigned long flags;
1898 	bool cancel;
1899 
1900 	if (!ev)
1901 		return;
1902 
1903 	/*
1904 	 * Outer mutex ensures that the first blocker completes canceling
1905 	 * the event work before further blockers are allowed to finish.
1906 	 */
1907 	mutex_lock(&ev->block_mutex);
1908 
1909 	spin_lock_irqsave(&ev->lock, flags);
1910 	cancel = !ev->block++;
1911 	spin_unlock_irqrestore(&ev->lock, flags);
1912 
1913 	if (cancel)
1914 		cancel_delayed_work_sync(&disk->ev->dwork);
1915 
1916 	mutex_unlock(&ev->block_mutex);
1917 }
1918 
1919 static void __disk_unblock_events(struct gendisk *disk, bool check_now)
1920 {
1921 	struct disk_events *ev = disk->ev;
1922 	unsigned long intv;
1923 	unsigned long flags;
1924 
1925 	spin_lock_irqsave(&ev->lock, flags);
1926 
1927 	if (WARN_ON_ONCE(ev->block <= 0))
1928 		goto out_unlock;
1929 
1930 	if (--ev->block)
1931 		goto out_unlock;
1932 
1933 	intv = disk_events_poll_jiffies(disk);
1934 	if (check_now)
1935 		queue_delayed_work(system_freezable_power_efficient_wq,
1936 				&ev->dwork, 0);
1937 	else if (intv)
1938 		queue_delayed_work(system_freezable_power_efficient_wq,
1939 				&ev->dwork, intv);
1940 out_unlock:
1941 	spin_unlock_irqrestore(&ev->lock, flags);
1942 }
1943 
1944 /**
1945  * disk_unblock_events - unblock disk event checking
1946  * @disk: disk to unblock events for
1947  *
1948  * Undo disk_block_events().  When the block count reaches zero, it
1949  * starts events polling if configured.
1950  *
1951  * CONTEXT:
1952  * Don't care.  Safe to call from irq context.
1953  */
1954 void disk_unblock_events(struct gendisk *disk)
1955 {
1956 	if (disk->ev)
1957 		__disk_unblock_events(disk, false);
1958 }
1959 
1960 /**
1961  * disk_flush_events - schedule immediate event checking and flushing
1962  * @disk: disk to check and flush events for
1963  * @mask: events to flush
1964  *
1965  * Schedule immediate event checking on @disk if not blocked.  Events in
1966  * @mask are scheduled to be cleared from the driver.  Note that this
1967  * doesn't clear the events from @disk->ev.
1968  *
1969  * CONTEXT:
1970  * If @mask is non-zero must be called with bdev->bd_mutex held.
1971  */
1972 void disk_flush_events(struct gendisk *disk, unsigned int mask)
1973 {
1974 	struct disk_events *ev = disk->ev;
1975 
1976 	if (!ev)
1977 		return;
1978 
1979 	spin_lock_irq(&ev->lock);
1980 	ev->clearing |= mask;
1981 	if (!ev->block)
1982 		mod_delayed_work(system_freezable_power_efficient_wq,
1983 				&ev->dwork, 0);
1984 	spin_unlock_irq(&ev->lock);
1985 }
1986 
1987 /**
1988  * disk_clear_events - synchronously check, clear and return pending events
1989  * @disk: disk to fetch and clear events from
1990  * @mask: mask of events to be fetched and cleared
1991  *
1992  * Disk events are synchronously checked and pending events in @mask
1993  * are cleared and returned.  This ignores the block count.
1994  *
1995  * CONTEXT:
1996  * Might sleep.
1997  */
1998 unsigned int disk_clear_events(struct gendisk *disk, unsigned int mask)
1999 {
2000 	const struct block_device_operations *bdops = disk->fops;
2001 	struct disk_events *ev = disk->ev;
2002 	unsigned int pending;
2003 	unsigned int clearing = mask;
2004 
2005 	if (!ev) {
2006 		/* for drivers still using the old ->media_changed method */
2007 		if ((mask & DISK_EVENT_MEDIA_CHANGE) &&
2008 		    bdops->media_changed && bdops->media_changed(disk))
2009 			return DISK_EVENT_MEDIA_CHANGE;
2010 		return 0;
2011 	}
2012 
2013 	disk_block_events(disk);
2014 
2015 	/*
2016 	 * store the union of mask and ev->clearing on the stack so that the
2017 	 * race with disk_flush_events does not cause ambiguity (ev->clearing
2018 	 * can still be modified even if events are blocked).
2019 	 */
2020 	spin_lock_irq(&ev->lock);
2021 	clearing |= ev->clearing;
2022 	ev->clearing = 0;
2023 	spin_unlock_irq(&ev->lock);
2024 
2025 	disk_check_events(ev, &clearing);
2026 	/*
2027 	 * if ev->clearing is not 0, the disk_flush_events got called in the
2028 	 * middle of this function, so we want to run the workfn without delay.
2029 	 */
2030 	__disk_unblock_events(disk, ev->clearing ? true : false);
2031 
2032 	/* then, fetch and clear pending events */
2033 	spin_lock_irq(&ev->lock);
2034 	pending = ev->pending & mask;
2035 	ev->pending &= ~mask;
2036 	spin_unlock_irq(&ev->lock);
2037 	WARN_ON_ONCE(clearing & mask);
2038 
2039 	return pending;
2040 }
2041 
2042 /*
2043  * Separate this part out so that a different pointer for clearing_ptr can be
2044  * passed in for disk_clear_events.
2045  */
2046 static void disk_events_workfn(struct work_struct *work)
2047 {
2048 	struct delayed_work *dwork = to_delayed_work(work);
2049 	struct disk_events *ev = container_of(dwork, struct disk_events, dwork);
2050 
2051 	disk_check_events(ev, &ev->clearing);
2052 }
2053 
2054 static void disk_check_events(struct disk_events *ev,
2055 			      unsigned int *clearing_ptr)
2056 {
2057 	struct gendisk *disk = ev->disk;
2058 	char *envp[ARRAY_SIZE(disk_uevents) + 1] = { };
2059 	unsigned int clearing = *clearing_ptr;
2060 	unsigned int events;
2061 	unsigned long intv;
2062 	int nr_events = 0, i;
2063 
2064 	/* check events */
2065 	events = disk->fops->check_events(disk, clearing);
2066 
2067 	/* accumulate pending events and schedule next poll if necessary */
2068 	spin_lock_irq(&ev->lock);
2069 
2070 	events &= ~ev->pending;
2071 	ev->pending |= events;
2072 	*clearing_ptr &= ~clearing;
2073 
2074 	intv = disk_events_poll_jiffies(disk);
2075 	if (!ev->block && intv)
2076 		queue_delayed_work(system_freezable_power_efficient_wq,
2077 				&ev->dwork, intv);
2078 
2079 	spin_unlock_irq(&ev->lock);
2080 
2081 	/*
2082 	 * Tell userland about new events.  Only the events listed in
2083 	 * @disk->events are reported, and only if DISK_EVENT_FLAG_UEVENT
2084 	 * is set. Otherwise, events are processed internally but never
2085 	 * get reported to userland.
2086 	 */
2087 	for (i = 0; i < ARRAY_SIZE(disk_uevents); i++)
2088 		if ((events & disk->events & (1 << i)) &&
2089 		    (disk->event_flags & DISK_EVENT_FLAG_UEVENT))
2090 			envp[nr_events++] = disk_uevents[i];
2091 
2092 	if (nr_events)
2093 		kobject_uevent_env(&disk_to_dev(disk)->kobj, KOBJ_CHANGE, envp);
2094 }
2095 
2096 /*
2097  * A disk events enabled device has the following sysfs nodes under
2098  * its /sys/block/X/ directory.
2099  *
2100  * events		: list of all supported events
2101  * events_async		: list of events which can be detected w/o polling
2102  *			  (always empty, only for backwards compatibility)
2103  * events_poll_msecs	: polling interval, 0: disable, -1: system default
2104  */
2105 static ssize_t __disk_events_show(unsigned int events, char *buf)
2106 {
2107 	const char *delim = "";
2108 	ssize_t pos = 0;
2109 	int i;
2110 
2111 	for (i = 0; i < ARRAY_SIZE(disk_events_strs); i++)
2112 		if (events & (1 << i)) {
2113 			pos += sprintf(buf + pos, "%s%s",
2114 				       delim, disk_events_strs[i]);
2115 			delim = " ";
2116 		}
2117 	if (pos)
2118 		pos += sprintf(buf + pos, "\n");
2119 	return pos;
2120 }
2121 
2122 static ssize_t disk_events_show(struct device *dev,
2123 				struct device_attribute *attr, char *buf)
2124 {
2125 	struct gendisk *disk = dev_to_disk(dev);
2126 
2127 	if (!(disk->event_flags & DISK_EVENT_FLAG_UEVENT))
2128 		return 0;
2129 
2130 	return __disk_events_show(disk->events, buf);
2131 }
2132 
2133 static ssize_t disk_events_async_show(struct device *dev,
2134 				      struct device_attribute *attr, char *buf)
2135 {
2136 	return 0;
2137 }
2138 
2139 static ssize_t disk_events_poll_msecs_show(struct device *dev,
2140 					   struct device_attribute *attr,
2141 					   char *buf)
2142 {
2143 	struct gendisk *disk = dev_to_disk(dev);
2144 
2145 	if (!disk->ev)
2146 		return sprintf(buf, "-1\n");
2147 
2148 	return sprintf(buf, "%ld\n", disk->ev->poll_msecs);
2149 }
2150 
2151 static ssize_t disk_events_poll_msecs_store(struct device *dev,
2152 					    struct device_attribute *attr,
2153 					    const char *buf, size_t count)
2154 {
2155 	struct gendisk *disk = dev_to_disk(dev);
2156 	long intv;
2157 
2158 	if (!count || !sscanf(buf, "%ld", &intv))
2159 		return -EINVAL;
2160 
2161 	if (intv < 0 && intv != -1)
2162 		return -EINVAL;
2163 
2164 	if (!disk->ev)
2165 		return -ENODEV;
2166 
2167 	disk_block_events(disk);
2168 	disk->ev->poll_msecs = intv;
2169 	__disk_unblock_events(disk, true);
2170 
2171 	return count;
2172 }
2173 
2174 static const DEVICE_ATTR(events, 0444, disk_events_show, NULL);
2175 static const DEVICE_ATTR(events_async, 0444, disk_events_async_show, NULL);
2176 static const DEVICE_ATTR(events_poll_msecs, 0644,
2177 			 disk_events_poll_msecs_show,
2178 			 disk_events_poll_msecs_store);
2179 
2180 static const struct attribute *disk_events_attrs[] = {
2181 	&dev_attr_events.attr,
2182 	&dev_attr_events_async.attr,
2183 	&dev_attr_events_poll_msecs.attr,
2184 	NULL,
2185 };
2186 
2187 /*
2188  * The default polling interval can be specified by the kernel
2189  * parameter block.events_dfl_poll_msecs which defaults to 0
2190  * (disable).  This can also be modified runtime by writing to
2191  * /sys/module/block/parameters/events_dfl_poll_msecs.
2192  */
2193 static int disk_events_set_dfl_poll_msecs(const char *val,
2194 					  const struct kernel_param *kp)
2195 {
2196 	struct disk_events *ev;
2197 	int ret;
2198 
2199 	ret = param_set_ulong(val, kp);
2200 	if (ret < 0)
2201 		return ret;
2202 
2203 	mutex_lock(&disk_events_mutex);
2204 
2205 	list_for_each_entry(ev, &disk_events, node)
2206 		disk_flush_events(ev->disk, 0);
2207 
2208 	mutex_unlock(&disk_events_mutex);
2209 
2210 	return 0;
2211 }
2212 
2213 static const struct kernel_param_ops disk_events_dfl_poll_msecs_param_ops = {
2214 	.set	= disk_events_set_dfl_poll_msecs,
2215 	.get	= param_get_ulong,
2216 };
2217 
2218 #undef MODULE_PARAM_PREFIX
2219 #define MODULE_PARAM_PREFIX	"block."
2220 
2221 module_param_cb(events_dfl_poll_msecs, &disk_events_dfl_poll_msecs_param_ops,
2222 		&disk_events_dfl_poll_msecs, 0644);
2223 
2224 /*
2225  * disk_{alloc|add|del|release}_events - initialize and destroy disk_events.
2226  */
2227 static void disk_alloc_events(struct gendisk *disk)
2228 {
2229 	struct disk_events *ev;
2230 
2231 	if (!disk->fops->check_events || !disk->events)
2232 		return;
2233 
2234 	ev = kzalloc(sizeof(*ev), GFP_KERNEL);
2235 	if (!ev) {
2236 		pr_warn("%s: failed to initialize events\n", disk->disk_name);
2237 		return;
2238 	}
2239 
2240 	INIT_LIST_HEAD(&ev->node);
2241 	ev->disk = disk;
2242 	spin_lock_init(&ev->lock);
2243 	mutex_init(&ev->block_mutex);
2244 	ev->block = 1;
2245 	ev->poll_msecs = -1;
2246 	INIT_DELAYED_WORK(&ev->dwork, disk_events_workfn);
2247 
2248 	disk->ev = ev;
2249 }
2250 
2251 static void disk_add_events(struct gendisk *disk)
2252 {
2253 	/* FIXME: error handling */
2254 	if (sysfs_create_files(&disk_to_dev(disk)->kobj, disk_events_attrs) < 0)
2255 		pr_warn("%s: failed to create sysfs files for events\n",
2256 			disk->disk_name);
2257 
2258 	if (!disk->ev)
2259 		return;
2260 
2261 	mutex_lock(&disk_events_mutex);
2262 	list_add_tail(&disk->ev->node, &disk_events);
2263 	mutex_unlock(&disk_events_mutex);
2264 
2265 	/*
2266 	 * Block count is initialized to 1 and the following initial
2267 	 * unblock kicks it into action.
2268 	 */
2269 	__disk_unblock_events(disk, true);
2270 }
2271 
2272 static void disk_del_events(struct gendisk *disk)
2273 {
2274 	if (disk->ev) {
2275 		disk_block_events(disk);
2276 
2277 		mutex_lock(&disk_events_mutex);
2278 		list_del_init(&disk->ev->node);
2279 		mutex_unlock(&disk_events_mutex);
2280 	}
2281 
2282 	sysfs_remove_files(&disk_to_dev(disk)->kobj, disk_events_attrs);
2283 }
2284 
2285 static void disk_release_events(struct gendisk *disk)
2286 {
2287 	/* the block count should be 1 from disk_del_events() */
2288 	WARN_ON_ONCE(disk->ev && disk->ev->block != 1);
2289 	kfree(disk->ev);
2290 }
2291