xref: /linux/drivers/md/dm-log.c (revision a5f998094fa344cdd1342164948abb4d7c6101ce)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * Copyright (C) 2003 Sistina Software
4  * Copyright (C) 2004-2008 Red Hat, Inc. All rights reserved.
5  *
6  * This file is released under the LGPL.
7  */
8 
9 #include <linux/init.h>
10 #include <linux/slab.h>
11 #include <linux/module.h>
12 #include <linux/vmalloc.h>
13 #include <linux/dm-io.h>
14 #include <linux/dm-dirty-log.h>
15 
16 #include <linux/device-mapper.h>
17 
18 #define DM_MSG_PREFIX "dirty region log"
19 
20 static LIST_HEAD(_log_types);
21 static DEFINE_SPINLOCK(_lock);
22 
__find_dirty_log_type(const char * name)23 static struct dm_dirty_log_type *__find_dirty_log_type(const char *name)
24 {
25 	struct dm_dirty_log_type *log_type;
26 
27 	list_for_each_entry(log_type, &_log_types, list)
28 		if (!strcmp(name, log_type->name))
29 			return log_type;
30 
31 	return NULL;
32 }
33 
_get_dirty_log_type(const char * name)34 static struct dm_dirty_log_type *_get_dirty_log_type(const char *name)
35 {
36 	struct dm_dirty_log_type *log_type;
37 
38 	spin_lock(&_lock);
39 
40 	log_type = __find_dirty_log_type(name);
41 	if (log_type && !try_module_get(log_type->module))
42 		log_type = NULL;
43 
44 	spin_unlock(&_lock);
45 
46 	return log_type;
47 }
48 
49 /*
50  * get_type
51  * @type_name
52  *
53  * Attempt to retrieve the dm_dirty_log_type by name.  If not already
54  * available, attempt to load the appropriate module.
55  *
56  * Log modules are named "dm-log-" followed by the 'type_name'.
57  * Modules may contain multiple types.
58  * This function will first try the module "dm-log-<type_name>",
59  * then truncate 'type_name' on the last '-' and try again.
60  *
61  * For example, if type_name was "clustered-disk", it would search
62  * 'dm-log-clustered-disk' then 'dm-log-clustered'.
63  *
64  * Returns: dirty_log_type* on success, NULL on failure
65  */
get_type(const char * type_name)66 static struct dm_dirty_log_type *get_type(const char *type_name)
67 {
68 	char *p, *type_name_dup;
69 	struct dm_dirty_log_type *log_type;
70 
71 	if (!type_name)
72 		return NULL;
73 
74 	log_type = _get_dirty_log_type(type_name);
75 	if (log_type)
76 		return log_type;
77 
78 	type_name_dup = kstrdup(type_name, GFP_KERNEL);
79 	if (!type_name_dup) {
80 		DMWARN("No memory left to attempt log module load for \"%s\"",
81 		       type_name);
82 		return NULL;
83 	}
84 
85 	while (request_module("dm-log-%s", type_name_dup) ||
86 	       !(log_type = _get_dirty_log_type(type_name))) {
87 		p = strrchr(type_name_dup, '-');
88 		if (!p)
89 			break;
90 		p[0] = '\0';
91 	}
92 
93 	if (!log_type)
94 		DMWARN("Module for logging type \"%s\" not found.", type_name);
95 
96 	kfree(type_name_dup);
97 
98 	return log_type;
99 }
100 
put_type(struct dm_dirty_log_type * type)101 static void put_type(struct dm_dirty_log_type *type)
102 {
103 	if (!type)
104 		return;
105 
106 	spin_lock(&_lock);
107 	if (!__find_dirty_log_type(type->name))
108 		goto out;
109 
110 	module_put(type->module);
111 
112 out:
113 	spin_unlock(&_lock);
114 }
115 
dm_dirty_log_type_register(struct dm_dirty_log_type * type)116 int dm_dirty_log_type_register(struct dm_dirty_log_type *type)
117 {
118 	int r = 0;
119 
120 	spin_lock(&_lock);
121 	if (!__find_dirty_log_type(type->name))
122 		list_add(&type->list, &_log_types);
123 	else
124 		r = -EBUSY;
125 	spin_unlock(&_lock);
126 
127 	return r;
128 }
129 EXPORT_SYMBOL(dm_dirty_log_type_register);
130 
dm_dirty_log_type_unregister(struct dm_dirty_log_type * type)131 int dm_dirty_log_type_unregister(struct dm_dirty_log_type *type)
132 {
133 	spin_lock(&_lock);
134 
135 	if (!__find_dirty_log_type(type->name)) {
136 		spin_unlock(&_lock);
137 		return -EINVAL;
138 	}
139 
140 	list_del(&type->list);
141 
142 	spin_unlock(&_lock);
143 
144 	return 0;
145 }
146 EXPORT_SYMBOL(dm_dirty_log_type_unregister);
147 
dm_dirty_log_create(const char * type_name,struct dm_target * ti,int (* flush_callback_fn)(struct dm_target * ti),unsigned int argc,char ** argv)148 struct dm_dirty_log *dm_dirty_log_create(const char *type_name,
149 			struct dm_target *ti,
150 			int (*flush_callback_fn)(struct dm_target *ti),
151 			unsigned int argc, char **argv)
152 {
153 	struct dm_dirty_log_type *type;
154 	struct dm_dirty_log *log;
155 
156 	log = kmalloc_obj(*log);
157 	if (!log)
158 		return NULL;
159 
160 	type = get_type(type_name);
161 	if (!type) {
162 		kfree(log);
163 		return NULL;
164 	}
165 
166 	log->flush_callback_fn = flush_callback_fn;
167 	log->type = type;
168 	if (type->ctr(log, ti, argc, argv)) {
169 		kfree(log);
170 		put_type(type);
171 		return NULL;
172 	}
173 
174 	return log;
175 }
176 EXPORT_SYMBOL(dm_dirty_log_create);
177 
dm_dirty_log_destroy(struct dm_dirty_log * log)178 void dm_dirty_log_destroy(struct dm_dirty_log *log)
179 {
180 	log->type->dtr(log);
181 	put_type(log->type);
182 	kfree(log);
183 }
184 EXPORT_SYMBOL(dm_dirty_log_destroy);
185 
186 /*
187  *---------------------------------------------------------------
188  * Persistent and core logs share a lot of their implementation.
189  * FIXME: need a reload method to be called from a resume
190  *---------------------------------------------------------------
191  */
192 /*
193  * Magic for persistent mirrors: "MiRr"
194  */
195 #define MIRROR_MAGIC 0x4D695272
196 
197 /*
198  * The on-disk version of the metadata.
199  */
200 #define MIRROR_DISK_VERSION 2
201 #define LOG_OFFSET 2
202 
203 struct log_header_disk {
204 	__le32 magic;
205 
206 	/*
207 	 * Simple, incrementing version. no backward
208 	 * compatibility.
209 	 */
210 	__le32 version;
211 	__le64 nr_regions;
212 } __packed;
213 
214 struct log_header_core {
215 	uint32_t magic;
216 	uint32_t version;
217 	uint64_t nr_regions;
218 };
219 
220 struct log_c {
221 	struct dm_target *ti;
222 	int touched_dirtied;
223 	int touched_cleaned;
224 	int flush_failed;
225 	uint32_t region_size;
226 	unsigned int region_count;
227 	region_t sync_count;
228 
229 	unsigned int bitset_uint32_count;
230 	uint32_t *clean_bits;
231 	uint32_t *sync_bits;
232 	uint32_t *recovering_bits;	/* FIXME: this seems excessive */
233 
234 	int sync_search;
235 
236 	/* Resync flag */
237 	enum sync {
238 		DEFAULTSYNC,	/* Synchronize if necessary */
239 		NOSYNC,		/* Devices known to be already in sync */
240 		FORCESYNC,	/* Force a sync to happen */
241 	} sync;
242 
243 	struct dm_io_request io_req;
244 
245 	/*
246 	 * Disk log fields
247 	 */
248 	int log_dev_failed;
249 	int log_dev_flush_failed;
250 	struct dm_dev *log_dev;
251 	struct log_header_core header;
252 
253 	struct dm_io_region header_location;
254 	struct log_header_disk *disk_header;
255 };
256 
257 /*
258  * The touched member needs to be updated every time we access
259  * one of the bitsets.
260  */
log_test_bit(uint32_t * bs,unsigned int bit)261 static inline int log_test_bit(uint32_t *bs, unsigned int bit)
262 {
263 	return test_bit_le(bit, bs) ? 1 : 0;
264 }
265 
log_set_bit(struct log_c * l,uint32_t * bs,unsigned int bit)266 static inline void log_set_bit(struct log_c *l,
267 			       uint32_t *bs, unsigned int bit)
268 {
269 	__set_bit_le(bit, bs);
270 	l->touched_cleaned = 1;
271 }
272 
log_clear_bit(struct log_c * l,uint32_t * bs,unsigned int bit)273 static inline void log_clear_bit(struct log_c *l,
274 				 uint32_t *bs, unsigned int bit)
275 {
276 	__clear_bit_le(bit, bs);
277 	l->touched_dirtied = 1;
278 }
279 
280 /*
281  *---------------------------------------------------------------
282  * Header IO
283  *--------------------------------------------------------------
284  */
header_to_disk(struct log_header_core * core,struct log_header_disk * disk)285 static void header_to_disk(struct log_header_core *core, struct log_header_disk *disk)
286 {
287 	disk->magic = cpu_to_le32(core->magic);
288 	disk->version = cpu_to_le32(core->version);
289 	disk->nr_regions = cpu_to_le64(core->nr_regions);
290 }
291 
header_from_disk(struct log_header_core * core,struct log_header_disk * disk)292 static void header_from_disk(struct log_header_core *core, struct log_header_disk *disk)
293 {
294 	core->magic = le32_to_cpu(disk->magic);
295 	core->version = le32_to_cpu(disk->version);
296 	core->nr_regions = le64_to_cpu(disk->nr_regions);
297 }
298 
rw_header(struct log_c * lc,enum req_op op)299 static int rw_header(struct log_c *lc, enum req_op op)
300 {
301 	lc->io_req.bi_opf = op;
302 
303 	return dm_io(&lc->io_req, 1, &lc->header_location, NULL, IOPRIO_DEFAULT);
304 }
305 
flush_header(struct log_c * lc)306 static int flush_header(struct log_c *lc)
307 {
308 	struct dm_io_region null_location = {
309 		.bdev = lc->header_location.bdev,
310 		.sector = 0,
311 		.count = 0,
312 	};
313 
314 	lc->io_req.bi_opf = REQ_OP_WRITE | REQ_PREFLUSH;
315 
316 	return dm_io(&lc->io_req, 1, &null_location, NULL, IOPRIO_DEFAULT);
317 }
318 
read_header(struct log_c * log)319 static int read_header(struct log_c *log)
320 {
321 	int r;
322 
323 	r = rw_header(log, REQ_OP_READ);
324 	if (r)
325 		return r;
326 
327 	header_from_disk(&log->header, log->disk_header);
328 
329 	/* New log required? */
330 	if (log->sync != DEFAULTSYNC || log->header.magic != MIRROR_MAGIC) {
331 		log->header.magic = MIRROR_MAGIC;
332 		log->header.version = MIRROR_DISK_VERSION;
333 		log->header.nr_regions = 0;
334 	}
335 
336 #ifdef __LITTLE_ENDIAN
337 	if (log->header.version == 1)
338 		log->header.version = 2;
339 #endif
340 
341 	if (log->header.version != MIRROR_DISK_VERSION) {
342 		DMWARN("incompatible disk log version");
343 		return -EINVAL;
344 	}
345 
346 	return 0;
347 }
348 
_check_region_size(struct dm_target * ti,uint32_t region_size)349 static int _check_region_size(struct dm_target *ti, uint32_t region_size)
350 {
351 	if (region_size < 2 || region_size > ti->len)
352 		return 0;
353 
354 	if (!is_power_of_2(region_size))
355 		return 0;
356 
357 	return 1;
358 }
359 
360 /*
361  *--------------------------------------------------------------
362  * core log constructor/destructor
363  *
364  * argv contains region_size followed optionally by [no]sync
365  *--------------------------------------------------------------
366  */
367 #define BYTE_SHIFT 3
create_log_context(struct dm_dirty_log * log,struct dm_target * ti,unsigned int argc,char ** argv,struct dm_dev * dev)368 static int create_log_context(struct dm_dirty_log *log, struct dm_target *ti,
369 			      unsigned int argc, char **argv,
370 			      struct dm_dev *dev)
371 {
372 	enum sync sync = DEFAULTSYNC;
373 
374 	struct log_c *lc;
375 	uint32_t region_size;
376 	sector_t region_count;
377 	size_t bitset_size, buf_size;
378 	int r;
379 	char dummy;
380 
381 	if (argc < 1 || argc > 2) {
382 		DMWARN("wrong number of arguments to dirty region log");
383 		return -EINVAL;
384 	}
385 
386 	if (argc > 1) {
387 		if (!strcmp(argv[1], "sync"))
388 			sync = FORCESYNC;
389 		else if (!strcmp(argv[1], "nosync"))
390 			sync = NOSYNC;
391 		else {
392 			DMWARN("unrecognised sync argument to dirty region log: %s", argv[1]);
393 			return -EINVAL;
394 		}
395 	}
396 
397 	if (sscanf(argv[0], "%u%c", &region_size, &dummy) != 1 ||
398 	    !_check_region_size(ti, region_size)) {
399 		DMWARN("invalid region size %s", argv[0]);
400 		return -EINVAL;
401 	}
402 
403 	region_count = dm_sector_div_up(ti->len, region_size);
404 	if (region_count > UINT_MAX) {
405 		DMWARN("region count exceeds limit of %u", UINT_MAX);
406 		return -EINVAL;
407 	}
408 
409 	lc = kmalloc_obj(*lc);
410 	if (!lc) {
411 		DMWARN("couldn't allocate core log");
412 		return -ENOMEM;
413 	}
414 
415 	lc->ti = ti;
416 	lc->touched_dirtied = 0;
417 	lc->touched_cleaned = 0;
418 	lc->flush_failed = 0;
419 	lc->region_size = region_size;
420 	lc->region_count = region_count;
421 	lc->sync = sync;
422 
423 	/*
424 	 * Work out how many "unsigned long"s we need to hold the bitset.
425 	 */
426 	bitset_size = dm_round_up(region_count, BITS_PER_LONG);
427 	bitset_size >>= BYTE_SHIFT;
428 
429 	lc->bitset_uint32_count = bitset_size / sizeof(*lc->clean_bits);
430 
431 	/*
432 	 * Disk log?
433 	 */
434 	if (!dev) {
435 		lc->clean_bits = vmalloc(bitset_size);
436 		if (!lc->clean_bits) {
437 			DMWARN("couldn't allocate clean bitset");
438 			kfree(lc);
439 			return -ENOMEM;
440 		}
441 		lc->disk_header = NULL;
442 	} else {
443 		lc->log_dev = dev;
444 		lc->log_dev_failed = 0;
445 		lc->log_dev_flush_failed = 0;
446 		lc->header_location.bdev = lc->log_dev->bdev;
447 		lc->header_location.sector = 0;
448 
449 		/*
450 		 * Buffer holds both header and bitset.
451 		 */
452 		buf_size =
453 		    dm_round_up((LOG_OFFSET << SECTOR_SHIFT) + bitset_size,
454 				bdev_logical_block_size(lc->header_location.bdev));
455 
456 		if (buf_size > bdev_nr_bytes(dev->bdev)) {
457 			DMWARN("log device %s too small: need %llu bytes",
458 				dev->name, (unsigned long long)buf_size);
459 			kfree(lc);
460 			return -EINVAL;
461 		}
462 
463 		lc->header_location.count = buf_size >> SECTOR_SHIFT;
464 
465 		lc->io_req.mem.type = DM_IO_VMA;
466 		lc->io_req.notify.fn = NULL;
467 		lc->io_req.client = dm_io_client_create();
468 		if (IS_ERR(lc->io_req.client)) {
469 			r = PTR_ERR(lc->io_req.client);
470 			DMWARN("couldn't allocate disk io client");
471 			kfree(lc);
472 			return r;
473 		}
474 
475 		lc->disk_header = vmalloc(buf_size);
476 		if (!lc->disk_header) {
477 			DMWARN("couldn't allocate disk log buffer");
478 			dm_io_client_destroy(lc->io_req.client);
479 			kfree(lc);
480 			return -ENOMEM;
481 		}
482 
483 		lc->io_req.mem.ptr.vma = lc->disk_header;
484 		lc->clean_bits = (void *)lc->disk_header +
485 				 (LOG_OFFSET << SECTOR_SHIFT);
486 	}
487 
488 	memset(lc->clean_bits, -1, bitset_size);
489 
490 	lc->sync_bits = vmalloc(bitset_size);
491 	if (!lc->sync_bits) {
492 		DMWARN("couldn't allocate sync bitset");
493 		if (!dev)
494 			vfree(lc->clean_bits);
495 		else
496 			dm_io_client_destroy(lc->io_req.client);
497 		vfree(lc->disk_header);
498 		kfree(lc);
499 		return -ENOMEM;
500 	}
501 	memset(lc->sync_bits, (sync == NOSYNC) ? -1 : 0, bitset_size);
502 	lc->sync_count = (sync == NOSYNC) ? region_count : 0;
503 
504 	lc->recovering_bits = vzalloc(bitset_size);
505 	if (!lc->recovering_bits) {
506 		DMWARN("couldn't allocate sync bitset");
507 		vfree(lc->sync_bits);
508 		if (!dev)
509 			vfree(lc->clean_bits);
510 		else
511 			dm_io_client_destroy(lc->io_req.client);
512 		vfree(lc->disk_header);
513 		kfree(lc);
514 		return -ENOMEM;
515 	}
516 	lc->sync_search = 0;
517 	log->context = lc;
518 
519 	return 0;
520 }
521 
core_ctr(struct dm_dirty_log * log,struct dm_target * ti,unsigned int argc,char ** argv)522 static int core_ctr(struct dm_dirty_log *log, struct dm_target *ti,
523 		    unsigned int argc, char **argv)
524 {
525 	return create_log_context(log, ti, argc, argv, NULL);
526 }
527 
destroy_log_context(struct log_c * lc)528 static void destroy_log_context(struct log_c *lc)
529 {
530 	vfree(lc->sync_bits);
531 	vfree(lc->recovering_bits);
532 	kfree(lc);
533 }
534 
core_dtr(struct dm_dirty_log * log)535 static void core_dtr(struct dm_dirty_log *log)
536 {
537 	struct log_c *lc = log->context;
538 
539 	vfree(lc->clean_bits);
540 	destroy_log_context(lc);
541 }
542 
543 /*
544  *---------------------------------------------------------------------
545  * disk log constructor/destructor
546  *
547  * argv contains log_device region_size followed optionally by [no]sync
548  *---------------------------------------------------------------------
549  */
disk_ctr(struct dm_dirty_log * log,struct dm_target * ti,unsigned int argc,char ** argv)550 static int disk_ctr(struct dm_dirty_log *log, struct dm_target *ti,
551 		    unsigned int argc, char **argv)
552 {
553 	int r;
554 	struct dm_dev *dev;
555 
556 	if (argc < 2 || argc > 3) {
557 		DMWARN("wrong number of arguments to disk dirty region log");
558 		return -EINVAL;
559 	}
560 
561 	r = dm_get_device(ti, argv[0], dm_table_get_mode(ti->table), &dev);
562 	if (r)
563 		return r;
564 
565 	r = create_log_context(log, ti, argc - 1, argv + 1, dev);
566 	if (r) {
567 		dm_put_device(ti, dev);
568 		return r;
569 	}
570 
571 	return 0;
572 }
573 
disk_dtr(struct dm_dirty_log * log)574 static void disk_dtr(struct dm_dirty_log *log)
575 {
576 	struct log_c *lc = log->context;
577 
578 	dm_put_device(lc->ti, lc->log_dev);
579 	vfree(lc->disk_header);
580 	dm_io_client_destroy(lc->io_req.client);
581 	destroy_log_context(lc);
582 }
583 
fail_log_device(struct log_c * lc)584 static void fail_log_device(struct log_c *lc)
585 {
586 	if (lc->log_dev_failed)
587 		return;
588 
589 	lc->log_dev_failed = 1;
590 	dm_table_event(lc->ti->table);
591 }
592 
disk_resume(struct dm_dirty_log * log)593 static int disk_resume(struct dm_dirty_log *log)
594 {
595 	int r;
596 	unsigned int i;
597 	struct log_c *lc = log->context;
598 	size_t size = lc->bitset_uint32_count * sizeof(uint32_t);
599 
600 	/* read the disk header */
601 	r = read_header(lc);
602 	if (r) {
603 		DMWARN("%s: Failed to read header on dirty region log device",
604 		       lc->log_dev->name);
605 		fail_log_device(lc);
606 		/*
607 		 * If the log device cannot be read, we must assume
608 		 * all regions are out-of-sync.  If we simply return
609 		 * here, the state will be uninitialized and could
610 		 * lead us to return 'in-sync' status for regions
611 		 * that are actually 'out-of-sync'.
612 		 */
613 		lc->header.nr_regions = 0;
614 	}
615 
616 	/* set or clear any new bits -- device has grown */
617 	if (lc->sync == NOSYNC)
618 		for (i = lc->header.nr_regions; i < lc->region_count; i++)
619 			/* FIXME: amazingly inefficient */
620 			log_set_bit(lc, lc->clean_bits, i);
621 	else
622 		for (i = lc->header.nr_regions; i < lc->region_count; i++)
623 			/* FIXME: amazingly inefficient */
624 			log_clear_bit(lc, lc->clean_bits, i);
625 
626 	/* clear any old bits -- device has shrunk */
627 	for (i = lc->region_count; i % BITS_PER_LONG; i++)
628 		log_clear_bit(lc, lc->clean_bits, i);
629 
630 	/* copy clean across to sync */
631 	memcpy(lc->sync_bits, lc->clean_bits, size);
632 	lc->sync_count = memweight(lc->clean_bits,
633 				lc->bitset_uint32_count * sizeof(uint32_t));
634 	lc->sync_search = 0;
635 
636 	/* set the correct number of regions in the header */
637 	lc->header.nr_regions = lc->region_count;
638 
639 	header_to_disk(&lc->header, lc->disk_header);
640 
641 	/* write the new header */
642 	r = rw_header(lc, REQ_OP_WRITE);
643 	if (!r) {
644 		r = flush_header(lc);
645 		if (r)
646 			lc->log_dev_flush_failed = 1;
647 	}
648 	if (r) {
649 		DMWARN("%s: Failed to write header on dirty region log device",
650 		       lc->log_dev->name);
651 		fail_log_device(lc);
652 	}
653 
654 	return r;
655 }
656 
core_get_region_size(struct dm_dirty_log * log)657 static uint32_t core_get_region_size(struct dm_dirty_log *log)
658 {
659 	struct log_c *lc = log->context;
660 
661 	return lc->region_size;
662 }
663 
core_resume(struct dm_dirty_log * log)664 static int core_resume(struct dm_dirty_log *log)
665 {
666 	struct log_c *lc = log->context;
667 
668 	lc->sync_search = 0;
669 	return 0;
670 }
671 
core_is_clean(struct dm_dirty_log * log,region_t region)672 static int core_is_clean(struct dm_dirty_log *log, region_t region)
673 {
674 	struct log_c *lc = log->context;
675 
676 	return log_test_bit(lc->clean_bits, region);
677 }
678 
core_in_sync(struct dm_dirty_log * log,region_t region,int block)679 static int core_in_sync(struct dm_dirty_log *log, region_t region, int block)
680 {
681 	struct log_c *lc = log->context;
682 
683 	return log_test_bit(lc->sync_bits, region);
684 }
685 
core_flush(struct dm_dirty_log * log)686 static int core_flush(struct dm_dirty_log *log)
687 {
688 	/* no op */
689 	return 0;
690 }
691 
disk_flush(struct dm_dirty_log * log)692 static int disk_flush(struct dm_dirty_log *log)
693 {
694 	int r, i;
695 	struct log_c *lc = log->context;
696 
697 	/* only write if the log has changed */
698 	if (!lc->touched_cleaned && !lc->touched_dirtied)
699 		return 0;
700 
701 	if (lc->touched_cleaned && log->flush_callback_fn &&
702 	    log->flush_callback_fn(lc->ti)) {
703 		/*
704 		 * At this point it is impossible to determine which
705 		 * regions are clean and which are dirty (without
706 		 * re-reading the log off disk). So mark all of them
707 		 * dirty.
708 		 */
709 		lc->flush_failed = 1;
710 		for (i = 0; i < lc->region_count; i++)
711 			log_clear_bit(lc, lc->clean_bits, i);
712 	}
713 
714 	r = rw_header(lc, REQ_OP_WRITE);
715 	if (r)
716 		fail_log_device(lc);
717 	else {
718 		if (lc->touched_dirtied) {
719 			r = flush_header(lc);
720 			if (r) {
721 				lc->log_dev_flush_failed = 1;
722 				fail_log_device(lc);
723 			} else
724 				lc->touched_dirtied = 0;
725 		}
726 		lc->touched_cleaned = 0;
727 	}
728 
729 	return r;
730 }
731 
core_mark_region(struct dm_dirty_log * log,region_t region)732 static void core_mark_region(struct dm_dirty_log *log, region_t region)
733 {
734 	struct log_c *lc = log->context;
735 
736 	log_clear_bit(lc, lc->clean_bits, region);
737 }
738 
core_clear_region(struct dm_dirty_log * log,region_t region)739 static void core_clear_region(struct dm_dirty_log *log, region_t region)
740 {
741 	struct log_c *lc = log->context;
742 
743 	if (likely(!lc->flush_failed))
744 		log_set_bit(lc, lc->clean_bits, region);
745 }
746 
core_get_resync_work(struct dm_dirty_log * log,region_t * region)747 static int core_get_resync_work(struct dm_dirty_log *log, region_t *region)
748 {
749 	struct log_c *lc = log->context;
750 
751 	if (lc->sync_search >= lc->region_count)
752 		return 0;
753 
754 	do {
755 		*region = find_next_zero_bit_le(lc->sync_bits,
756 					     lc->region_count,
757 					     lc->sync_search);
758 		lc->sync_search = *region + 1;
759 
760 		if (*region >= lc->region_count)
761 			return 0;
762 
763 	} while (log_test_bit(lc->recovering_bits, *region));
764 
765 	log_set_bit(lc, lc->recovering_bits, *region);
766 	return 1;
767 }
768 
core_set_region_sync(struct dm_dirty_log * log,region_t region,int in_sync)769 static void core_set_region_sync(struct dm_dirty_log *log, region_t region,
770 				 int in_sync)
771 {
772 	struct log_c *lc = log->context;
773 
774 	log_clear_bit(lc, lc->recovering_bits, region);
775 	if (in_sync) {
776 		log_set_bit(lc, lc->sync_bits, region);
777 		lc->sync_count++;
778 	} else if (log_test_bit(lc->sync_bits, region)) {
779 		lc->sync_count--;
780 		log_clear_bit(lc, lc->sync_bits, region);
781 	}
782 }
783 
core_get_sync_count(struct dm_dirty_log * log)784 static region_t core_get_sync_count(struct dm_dirty_log *log)
785 {
786 	struct log_c *lc = log->context;
787 
788 	return lc->sync_count;
789 }
790 
791 #define	DMEMIT_SYNC \
792 	do { \
793 		if (lc->sync != DEFAULTSYNC) \
794 			DMEMIT("%ssync ", lc->sync == NOSYNC ? "no" : ""); \
795 	} while (0)
796 
core_status(struct dm_dirty_log * log,status_type_t status,char * result,unsigned int maxlen)797 static int core_status(struct dm_dirty_log *log, status_type_t status,
798 		       char *result, unsigned int maxlen)
799 {
800 	int sz = 0;
801 	struct log_c *lc = log->context;
802 
803 	switch (status) {
804 	case STATUSTYPE_INFO:
805 		DMEMIT("1 %s", log->type->name);
806 		break;
807 
808 	case STATUSTYPE_TABLE:
809 		DMEMIT("%s %u %u ", log->type->name,
810 		       lc->sync == DEFAULTSYNC ? 1 : 2, lc->region_size);
811 		DMEMIT_SYNC;
812 		break;
813 
814 	case STATUSTYPE_IMA:
815 		*result = '\0';
816 		break;
817 	}
818 
819 	return sz;
820 }
821 
disk_status(struct dm_dirty_log * log,status_type_t status,char * result,unsigned int maxlen)822 static int disk_status(struct dm_dirty_log *log, status_type_t status,
823 		       char *result, unsigned int maxlen)
824 {
825 	int sz = 0;
826 	struct log_c *lc = log->context;
827 
828 	switch (status) {
829 	case STATUSTYPE_INFO:
830 		DMEMIT("3 %s %s %c", log->type->name, lc->log_dev->name,
831 		       lc->log_dev_flush_failed ? 'F' :
832 		       lc->log_dev_failed ? 'D' :
833 		       'A');
834 		break;
835 
836 	case STATUSTYPE_TABLE:
837 		DMEMIT("%s %u %s %u ", log->type->name,
838 		       lc->sync == DEFAULTSYNC ? 2 : 3, lc->log_dev->name,
839 		       lc->region_size);
840 		DMEMIT_SYNC;
841 		break;
842 
843 	case STATUSTYPE_IMA:
844 		*result = '\0';
845 		break;
846 	}
847 
848 	return sz;
849 }
850 
851 static struct dm_dirty_log_type _core_type = {
852 	.name = "core",
853 	.module = THIS_MODULE,
854 	.ctr = core_ctr,
855 	.dtr = core_dtr,
856 	.resume = core_resume,
857 	.get_region_size = core_get_region_size,
858 	.is_clean = core_is_clean,
859 	.in_sync = core_in_sync,
860 	.flush = core_flush,
861 	.mark_region = core_mark_region,
862 	.clear_region = core_clear_region,
863 	.get_resync_work = core_get_resync_work,
864 	.set_region_sync = core_set_region_sync,
865 	.get_sync_count = core_get_sync_count,
866 	.status = core_status,
867 };
868 
869 static struct dm_dirty_log_type _disk_type = {
870 	.name = "disk",
871 	.module = THIS_MODULE,
872 	.ctr = disk_ctr,
873 	.dtr = disk_dtr,
874 	.postsuspend = disk_flush,
875 	.resume = disk_resume,
876 	.get_region_size = core_get_region_size,
877 	.is_clean = core_is_clean,
878 	.in_sync = core_in_sync,
879 	.flush = disk_flush,
880 	.mark_region = core_mark_region,
881 	.clear_region = core_clear_region,
882 	.get_resync_work = core_get_resync_work,
883 	.set_region_sync = core_set_region_sync,
884 	.get_sync_count = core_get_sync_count,
885 	.status = disk_status,
886 };
887 
dm_dirty_log_init(void)888 static int __init dm_dirty_log_init(void)
889 {
890 	int r;
891 
892 	r = dm_dirty_log_type_register(&_core_type);
893 	if (r)
894 		DMWARN("couldn't register core log");
895 
896 	r = dm_dirty_log_type_register(&_disk_type);
897 	if (r) {
898 		DMWARN("couldn't register disk type");
899 		dm_dirty_log_type_unregister(&_core_type);
900 	}
901 
902 	return r;
903 }
904 
dm_dirty_log_exit(void)905 static void __exit dm_dirty_log_exit(void)
906 {
907 	dm_dirty_log_type_unregister(&_disk_type);
908 	dm_dirty_log_type_unregister(&_core_type);
909 }
910 
911 module_init(dm_dirty_log_init);
912 module_exit(dm_dirty_log_exit);
913 
914 MODULE_DESCRIPTION(DM_NAME " dirty region log");
915 MODULE_AUTHOR("Joe Thornber, Heinz Mauelshagen <dm-devel@lists.linux.dev>");
916 MODULE_LICENSE("GPL");
917