1 // SPDX-License-Identifier: GPL-2.0-or-later
2 /*
3 * raid5.c : Multiple Devices driver for Linux
4 * Copyright (C) 1996, 1997 Ingo Molnar, Miguel de Icaza, Gadi Oxman
5 * Copyright (C) 1999, 2000 Ingo Molnar
6 * Copyright (C) 2002, 2003 H. Peter Anvin
7 *
8 * RAID-4/5/6 management functions.
9 * Thanks to Penguin Computing for making the RAID-6 development possible
10 * by donating a test server!
11 */
12
13 /*
14 * BITMAP UNPLUGGING:
15 *
16 * The sequencing for updating the bitmap reliably is a little
17 * subtle (and I got it wrong the first time) so it deserves some
18 * explanation.
19 *
20 * We group bitmap updates into batches. Each batch has a number.
21 * We may write out several batches at once, but that isn't very important.
22 * conf->seq_write is the number of the last batch successfully written.
23 * conf->seq_flush is the number of the last batch that was closed to
24 * new additions.
25 * When we discover that we will need to write to any block in a stripe
26 * (in add_stripe_bio) we update the in-memory bitmap and record in sh->bm_seq
27 * the number of the batch it will be in. This is seq_flush+1.
28 * When we are ready to do a write, if that batch hasn't been written yet,
29 * we plug the array and queue the stripe for later.
30 * When an unplug happens, we increment bm_flush, thus closing the current
31 * batch.
32 * When we notice that bm_flush > bm_write, we write out all pending updates
33 * to the bitmap, and advance bm_write to where bm_flush was.
34 * This may occasionally write a bit out twice, but is sure never to
35 * miss any bits.
36 */
37
38 #include <linux/blkdev.h>
39 #include <linux/kthread.h>
40 #include <linux/raid/pq.h>
41 #include <linux/async_tx.h>
42 #include <linux/module.h>
43 #include <linux/async.h>
44 #include <linux/seq_file.h>
45 #include <linux/cpu.h>
46 #include <linux/slab.h>
47 #include <linux/ratelimit.h>
48 #include <linux/nodemask.h>
49
50 #include <trace/events/block.h>
51 #include <linux/list_sort.h>
52
53 #include "md.h"
54 #include "raid5.h"
55 #include "raid0.h"
56 #include "md-bitmap.h"
57 #include "raid5-log.h"
58
59 #define UNSUPPORTED_MDDEV_FLAGS \
60 ((1L << MD_FAILFAST_SUPPORTED) | \
61 (1L << MD_FAILLAST_DEV) | \
62 (1L << MD_SERIALIZE_POLICY))
63
64
65 #define cpu_to_group(cpu) cpu_to_node(cpu)
66 #define ANY_GROUP NUMA_NO_NODE
67
68 #define RAID5_MAX_REQ_STRIPES 256
69
70 static bool devices_handle_discard_safely = false;
71 module_param(devices_handle_discard_safely, bool, 0644);
72 MODULE_PARM_DESC(devices_handle_discard_safely,
73 "Set to Y if all devices in each array reliably return zeroes on reads from discarded regions");
74 static struct workqueue_struct *raid5_wq;
75
76 static void raid5_quiesce(struct mddev *mddev, int quiesce);
77
stripe_hash(struct r5conf * conf,sector_t sect)78 static inline struct hlist_head *stripe_hash(struct r5conf *conf, sector_t sect)
79 {
80 int hash = (sect >> RAID5_STRIPE_SHIFT(conf)) & HASH_MASK;
81 return &conf->stripe_hashtbl[hash];
82 }
83
stripe_hash_locks_hash(struct r5conf * conf,sector_t sect)84 static inline int stripe_hash_locks_hash(struct r5conf *conf, sector_t sect)
85 {
86 return (sect >> RAID5_STRIPE_SHIFT(conf)) & STRIPE_HASH_LOCKS_MASK;
87 }
88
lock_device_hash_lock(struct r5conf * conf,int hash)89 static inline void lock_device_hash_lock(struct r5conf *conf, int hash)
90 __acquires(&conf->device_lock)
91 {
92 spin_lock_irq(conf->hash_locks + hash);
93 spin_lock(&conf->device_lock);
94 }
95
unlock_device_hash_lock(struct r5conf * conf,int hash)96 static inline void unlock_device_hash_lock(struct r5conf *conf, int hash)
97 __releases(&conf->device_lock)
98 {
99 spin_unlock(&conf->device_lock);
100 spin_unlock_irq(conf->hash_locks + hash);
101 }
102
lock_all_device_hash_locks_irq(struct r5conf * conf)103 static inline void lock_all_device_hash_locks_irq(struct r5conf *conf)
104 __acquires(&conf->device_lock)
105 {
106 int i;
107 spin_lock_irq(conf->hash_locks);
108 for (i = 1; i < NR_STRIPE_HASH_LOCKS; i++)
109 spin_lock_nest_lock(conf->hash_locks + i, conf->hash_locks);
110 spin_lock(&conf->device_lock);
111 }
112
unlock_all_device_hash_locks_irq(struct r5conf * conf)113 static inline void unlock_all_device_hash_locks_irq(struct r5conf *conf)
114 __releases(&conf->device_lock)
115 {
116 int i;
117 spin_unlock(&conf->device_lock);
118 for (i = NR_STRIPE_HASH_LOCKS - 1; i; i--)
119 spin_unlock(conf->hash_locks + i);
120 spin_unlock_irq(conf->hash_locks);
121 }
122
123 /* Find first data disk in a raid6 stripe */
raid6_d0(struct stripe_head * sh)124 static inline int raid6_d0(struct stripe_head *sh)
125 {
126 if (sh->ddf_layout)
127 /* ddf always start from first device */
128 return 0;
129 /* md starts just after Q block */
130 if (sh->qd_idx == sh->disks - 1)
131 return 0;
132 else
133 return sh->qd_idx + 1;
134 }
raid6_next_disk(int disk,int raid_disks)135 static inline int raid6_next_disk(int disk, int raid_disks)
136 {
137 disk++;
138 return (disk < raid_disks) ? disk : 0;
139 }
140
141 /* When walking through the disks in a raid5, starting at raid6_d0,
142 * We need to map each disk to a 'slot', where the data disks are slot
143 * 0 .. raid_disks-3, the parity disk is raid_disks-2 and the Q disk
144 * is raid_disks-1. This help does that mapping.
145 */
raid6_idx_to_slot(int idx,struct stripe_head * sh,int * count,int syndrome_disks)146 static int raid6_idx_to_slot(int idx, struct stripe_head *sh,
147 int *count, int syndrome_disks)
148 {
149 int slot = *count;
150
151 if (sh->ddf_layout)
152 (*count)++;
153 if (idx == sh->pd_idx)
154 return syndrome_disks;
155 if (idx == sh->qd_idx)
156 return syndrome_disks + 1;
157 if (!sh->ddf_layout)
158 (*count)++;
159 return slot;
160 }
161
162 static void print_raid5_conf(struct r5conf *conf);
163
stripe_operations_active(struct stripe_head * sh)164 static int stripe_operations_active(struct stripe_head *sh)
165 {
166 return sh->check_state || sh->reconstruct_state ||
167 test_bit(STRIPE_BIOFILL_RUN, &sh->state) ||
168 test_bit(STRIPE_COMPUTE_RUN, &sh->state);
169 }
170
stripe_is_lowprio(struct stripe_head * sh)171 static bool stripe_is_lowprio(struct stripe_head *sh)
172 {
173 return (test_bit(STRIPE_R5C_FULL_STRIPE, &sh->state) ||
174 test_bit(STRIPE_R5C_PARTIAL_STRIPE, &sh->state)) &&
175 !test_bit(STRIPE_R5C_CACHING, &sh->state);
176 }
177
raid5_wakeup_stripe_thread(struct stripe_head * sh)178 static void raid5_wakeup_stripe_thread(struct stripe_head *sh)
179 __must_hold(&sh->raid_conf->device_lock)
180 {
181 struct r5conf *conf = sh->raid_conf;
182 struct r5worker_group *group;
183 int thread_cnt;
184 int i, cpu = sh->cpu;
185
186 if (!cpu_online(cpu)) {
187 cpu = cpumask_any(cpu_online_mask);
188 sh->cpu = cpu;
189 }
190
191 if (list_empty(&sh->lru)) {
192 struct r5worker_group *group;
193 group = conf->worker_groups + cpu_to_group(cpu);
194 if (stripe_is_lowprio(sh))
195 list_add_tail(&sh->lru, &group->loprio_list);
196 else
197 list_add_tail(&sh->lru, &group->handle_list);
198 group->stripes_cnt++;
199 sh->group = group;
200 }
201
202 if (conf->worker_cnt_per_group == 0) {
203 md_wakeup_thread(conf->mddev->thread);
204 return;
205 }
206
207 group = conf->worker_groups + cpu_to_group(sh->cpu);
208
209 group->workers[0].working = true;
210 /* at least one worker should run to avoid race */
211 queue_work_on(sh->cpu, raid5_wq, &group->workers[0].work);
212
213 thread_cnt = group->stripes_cnt / MAX_STRIPE_BATCH - 1;
214 /* wakeup more workers */
215 for (i = 1; i < conf->worker_cnt_per_group && thread_cnt > 0; i++) {
216 if (group->workers[i].working == false) {
217 group->workers[i].working = true;
218 queue_work_on(sh->cpu, raid5_wq,
219 &group->workers[i].work);
220 thread_cnt--;
221 }
222 }
223 }
224
do_release_stripe(struct r5conf * conf,struct stripe_head * sh,struct list_head * temp_inactive_list)225 static void do_release_stripe(struct r5conf *conf, struct stripe_head *sh,
226 struct list_head *temp_inactive_list)
227 __must_hold(&conf->device_lock)
228 {
229 int i;
230 int injournal = 0; /* number of date pages with R5_InJournal */
231
232 BUG_ON(!list_empty(&sh->lru));
233 BUG_ON(atomic_read(&conf->active_stripes)==0);
234
235 if (r5c_is_writeback(conf->log))
236 for (i = sh->disks; i--; )
237 if (test_bit(R5_InJournal, &sh->dev[i].flags))
238 injournal++;
239 /*
240 * In the following cases, the stripe cannot be released to cached
241 * lists. Therefore, we make the stripe write out and set
242 * STRIPE_HANDLE:
243 * 1. when quiesce in r5c write back;
244 * 2. when resync is requested fot the stripe.
245 */
246 if (test_bit(STRIPE_SYNC_REQUESTED, &sh->state) ||
247 (conf->quiesce && r5c_is_writeback(conf->log) &&
248 !test_bit(STRIPE_HANDLE, &sh->state) && injournal != 0)) {
249 if (test_bit(STRIPE_R5C_CACHING, &sh->state))
250 r5c_make_stripe_write_out(sh);
251 set_bit(STRIPE_HANDLE, &sh->state);
252 }
253
254 if (test_bit(STRIPE_HANDLE, &sh->state)) {
255 if (test_bit(STRIPE_DELAYED, &sh->state) &&
256 !test_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
257 list_add_tail(&sh->lru, &conf->delayed_list);
258 else if (test_bit(STRIPE_BIT_DELAY, &sh->state) &&
259 sh->bm_seq - conf->seq_write > 0)
260 list_add_tail(&sh->lru, &conf->bitmap_list);
261 else {
262 clear_bit(STRIPE_DELAYED, &sh->state);
263 clear_bit(STRIPE_BIT_DELAY, &sh->state);
264 if (conf->worker_cnt_per_group == 0) {
265 if (stripe_is_lowprio(sh))
266 list_add_tail(&sh->lru,
267 &conf->loprio_list);
268 else
269 list_add_tail(&sh->lru,
270 &conf->handle_list);
271 } else {
272 raid5_wakeup_stripe_thread(sh);
273 return;
274 }
275 }
276 md_wakeup_thread(conf->mddev->thread);
277 } else {
278 BUG_ON(stripe_operations_active(sh));
279 if (test_and_clear_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
280 if (atomic_dec_return(&conf->preread_active_stripes)
281 < IO_THRESHOLD)
282 md_wakeup_thread(conf->mddev->thread);
283 atomic_dec(&conf->active_stripes);
284 if (!test_bit(STRIPE_EXPANDING, &sh->state)) {
285 if (!r5c_is_writeback(conf->log))
286 list_add_tail(&sh->lru, temp_inactive_list);
287 else {
288 WARN_ON(test_bit(R5_InJournal, &sh->dev[sh->pd_idx].flags));
289 if (injournal == 0)
290 list_add_tail(&sh->lru, temp_inactive_list);
291 else if (injournal == conf->raid_disks - conf->max_degraded) {
292 /* full stripe */
293 if (!test_and_set_bit(STRIPE_R5C_FULL_STRIPE, &sh->state))
294 atomic_inc(&conf->r5c_cached_full_stripes);
295 if (test_and_clear_bit(STRIPE_R5C_PARTIAL_STRIPE, &sh->state))
296 atomic_dec(&conf->r5c_cached_partial_stripes);
297 list_add_tail(&sh->lru, &conf->r5c_full_stripe_list);
298 r5c_check_cached_full_stripe(conf);
299 } else
300 /*
301 * STRIPE_R5C_PARTIAL_STRIPE is set in
302 * r5c_try_caching_write(). No need to
303 * set it again.
304 */
305 list_add_tail(&sh->lru, &conf->r5c_partial_stripe_list);
306 }
307 }
308 }
309 }
310
__release_stripe(struct r5conf * conf,struct stripe_head * sh,struct list_head * temp_inactive_list)311 static void __release_stripe(struct r5conf *conf, struct stripe_head *sh,
312 struct list_head *temp_inactive_list)
313 __must_hold(&conf->device_lock)
314 {
315 if (atomic_dec_and_test(&sh->count))
316 do_release_stripe(conf, sh, temp_inactive_list);
317 }
318
319 /*
320 * @hash could be NR_STRIPE_HASH_LOCKS, then we have a list of inactive_list
321 *
322 * Be careful: Only one task can add/delete stripes from temp_inactive_list at
323 * given time. Adding stripes only takes device lock, while deleting stripes
324 * only takes hash lock.
325 */
release_inactive_stripe_list(struct r5conf * conf,struct list_head * temp_inactive_list,int hash)326 static void release_inactive_stripe_list(struct r5conf *conf,
327 struct list_head *temp_inactive_list,
328 int hash)
329 {
330 int size;
331 bool do_wakeup = false;
332 unsigned long flags;
333
334 if (hash == NR_STRIPE_HASH_LOCKS) {
335 size = NR_STRIPE_HASH_LOCKS;
336 hash = NR_STRIPE_HASH_LOCKS - 1;
337 } else
338 size = 1;
339 while (size) {
340 struct list_head *list = &temp_inactive_list[size - 1];
341
342 /*
343 * We don't hold any lock here yet, raid5_get_active_stripe() might
344 * remove stripes from the list
345 */
346 if (!list_empty_careful(list)) {
347 spin_lock_irqsave(conf->hash_locks + hash, flags);
348 if (list_empty(conf->inactive_list + hash) &&
349 !list_empty(list))
350 atomic_dec(&conf->empty_inactive_list_nr);
351 list_splice_tail_init(list, conf->inactive_list + hash);
352 do_wakeup = true;
353 spin_unlock_irqrestore(conf->hash_locks + hash, flags);
354 }
355 size--;
356 hash--;
357 }
358
359 if (do_wakeup) {
360 wake_up(&conf->wait_for_stripe);
361 if (atomic_read(&conf->active_stripes) == 0)
362 wake_up(&conf->wait_for_quiescent);
363 if (conf->retry_read_aligned)
364 md_wakeup_thread(conf->mddev->thread);
365 }
366 }
367
release_stripe_list(struct r5conf * conf,struct list_head * temp_inactive_list)368 static int release_stripe_list(struct r5conf *conf,
369 struct list_head *temp_inactive_list)
370 __must_hold(&conf->device_lock)
371 {
372 struct stripe_head *sh, *t;
373 int count = 0;
374 struct llist_node *head;
375
376 head = llist_del_all(&conf->released_stripes);
377 head = llist_reverse_order(head);
378 llist_for_each_entry_safe(sh, t, head, release_list) {
379 int hash;
380
381 /* sh could be readded after STRIPE_ON_RELEASE_LIST is cleard */
382 smp_mb();
383 clear_bit(STRIPE_ON_RELEASE_LIST, &sh->state);
384 /*
385 * Don't worry the bit is set here, because if the bit is set
386 * again, the count is always > 1. This is true for
387 * STRIPE_ON_UNPLUG_LIST bit too.
388 */
389 hash = sh->hash_lock_index;
390 __release_stripe(conf, sh, &temp_inactive_list[hash]);
391 count++;
392 }
393
394 return count;
395 }
396
raid5_release_stripe(struct stripe_head * sh)397 void raid5_release_stripe(struct stripe_head *sh)
398 {
399 struct r5conf *conf = sh->raid_conf;
400 unsigned long flags;
401 struct list_head list;
402 int hash;
403 bool wakeup;
404
405 /* Avoid release_list until the last reference.
406 */
407 if (atomic_add_unless(&sh->count, -1, 1))
408 return;
409
410 if (unlikely(!conf->mddev->thread) ||
411 test_and_set_bit(STRIPE_ON_RELEASE_LIST, &sh->state))
412 goto slow_path;
413 wakeup = llist_add(&sh->release_list, &conf->released_stripes);
414 if (wakeup)
415 md_wakeup_thread(conf->mddev->thread);
416 return;
417 slow_path:
418 /* we are ok here if STRIPE_ON_RELEASE_LIST is set or not */
419 if (atomic_dec_and_lock_irqsave(&sh->count, &conf->device_lock, flags)) {
420 INIT_LIST_HEAD(&list);
421 hash = sh->hash_lock_index;
422 do_release_stripe(conf, sh, &list);
423 spin_unlock_irqrestore(&conf->device_lock, flags);
424 release_inactive_stripe_list(conf, &list, hash);
425 }
426 }
427
remove_hash(struct stripe_head * sh)428 static inline void remove_hash(struct stripe_head *sh)
429 {
430 pr_debug("remove_hash(), stripe %llu\n",
431 (unsigned long long)sh->sector);
432
433 hlist_del_init(&sh->hash);
434 }
435
insert_hash(struct r5conf * conf,struct stripe_head * sh)436 static inline void insert_hash(struct r5conf *conf, struct stripe_head *sh)
437 {
438 struct hlist_head *hp = stripe_hash(conf, sh->sector);
439
440 pr_debug("insert_hash(), stripe %llu\n",
441 (unsigned long long)sh->sector);
442
443 hlist_add_head(&sh->hash, hp);
444 }
445
446 /* find an idle stripe, make sure it is unhashed, and return it. */
get_free_stripe(struct r5conf * conf,int hash)447 static struct stripe_head *get_free_stripe(struct r5conf *conf, int hash)
448 {
449 struct stripe_head *sh = NULL;
450 struct list_head *first;
451
452 if (list_empty(conf->inactive_list + hash))
453 goto out;
454 first = (conf->inactive_list + hash)->next;
455 sh = list_entry(first, struct stripe_head, lru);
456 list_del_init(first);
457 remove_hash(sh);
458 atomic_inc(&conf->active_stripes);
459 BUG_ON(hash != sh->hash_lock_index);
460 if (list_empty(conf->inactive_list + hash))
461 atomic_inc(&conf->empty_inactive_list_nr);
462 out:
463 return sh;
464 }
465
466 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
free_stripe_pages(struct stripe_head * sh)467 static void free_stripe_pages(struct stripe_head *sh)
468 {
469 int i;
470 struct page *p;
471
472 /* Have not allocate page pool */
473 if (!sh->pages)
474 return;
475
476 for (i = 0; i < sh->nr_pages; i++) {
477 p = sh->pages[i];
478 if (p)
479 put_page(p);
480 sh->pages[i] = NULL;
481 }
482 }
483
alloc_stripe_pages(struct stripe_head * sh,gfp_t gfp)484 static int alloc_stripe_pages(struct stripe_head *sh, gfp_t gfp)
485 {
486 int i;
487 struct page *p;
488
489 for (i = 0; i < sh->nr_pages; i++) {
490 /* The page have allocated. */
491 if (sh->pages[i])
492 continue;
493
494 p = alloc_page(gfp);
495 if (!p) {
496 free_stripe_pages(sh);
497 return -ENOMEM;
498 }
499 sh->pages[i] = p;
500 }
501 return 0;
502 }
503
504 static int
init_stripe_shared_pages(struct stripe_head * sh,struct r5conf * conf,int disks)505 init_stripe_shared_pages(struct stripe_head *sh, struct r5conf *conf, int disks)
506 {
507 int nr_pages, cnt;
508
509 if (sh->pages)
510 return 0;
511
512 /* Each of the sh->dev[i] need one conf->stripe_size */
513 cnt = PAGE_SIZE / conf->stripe_size;
514 nr_pages = (disks + cnt - 1) / cnt;
515
516 sh->pages = kzalloc_objs(struct page *, nr_pages);
517 if (!sh->pages)
518 return -ENOMEM;
519 sh->nr_pages = nr_pages;
520 sh->stripes_per_page = cnt;
521 return 0;
522 }
523 #endif
524
shrink_buffers(struct stripe_head * sh)525 static void shrink_buffers(struct stripe_head *sh)
526 {
527 int i;
528 int num = sh->raid_conf->pool_size;
529
530 #if PAGE_SIZE == DEFAULT_STRIPE_SIZE
531 for (i = 0; i < num ; i++) {
532 struct page *p;
533
534 WARN_ON(sh->dev[i].page != sh->dev[i].orig_page);
535 p = sh->dev[i].page;
536 if (!p)
537 continue;
538 sh->dev[i].page = NULL;
539 put_page(p);
540 }
541 #else
542 for (i = 0; i < num; i++)
543 sh->dev[i].page = NULL;
544 free_stripe_pages(sh); /* Free pages */
545 #endif
546 }
547
grow_buffers(struct stripe_head * sh,gfp_t gfp)548 static int grow_buffers(struct stripe_head *sh, gfp_t gfp)
549 {
550 int i;
551 int num = sh->raid_conf->pool_size;
552
553 #if PAGE_SIZE == DEFAULT_STRIPE_SIZE
554 for (i = 0; i < num; i++) {
555 struct page *page;
556
557 if (!(page = alloc_page(gfp))) {
558 return 1;
559 }
560 sh->dev[i].page = page;
561 sh->dev[i].orig_page = page;
562 sh->dev[i].offset = 0;
563 }
564 #else
565 if (alloc_stripe_pages(sh, gfp))
566 return -ENOMEM;
567
568 for (i = 0; i < num; i++) {
569 sh->dev[i].page = raid5_get_dev_page(sh, i);
570 sh->dev[i].orig_page = sh->dev[i].page;
571 sh->dev[i].offset = raid5_get_page_offset(sh, i);
572 }
573 #endif
574 return 0;
575 }
576
577 static void stripe_set_idx(sector_t stripe, struct r5conf *conf, int previous,
578 struct stripe_head *sh);
579
init_stripe(struct stripe_head * sh,sector_t sector,int previous)580 static void init_stripe(struct stripe_head *sh, sector_t sector, int previous)
581 {
582 struct r5conf *conf = sh->raid_conf;
583 int i, seq;
584
585 BUG_ON(atomic_read(&sh->count) != 0);
586 BUG_ON(test_bit(STRIPE_HANDLE, &sh->state));
587 BUG_ON(stripe_operations_active(sh));
588 BUG_ON(sh->batch_head);
589
590 pr_debug("init_stripe called, stripe %llu\n",
591 (unsigned long long)sector);
592 retry:
593 seq = read_seqcount_begin(&conf->gen_lock);
594 sh->generation = conf->generation - previous;
595 sh->disks = previous ? conf->previous_raid_disks : conf->raid_disks;
596 sh->sector = sector;
597 stripe_set_idx(sector, conf, previous, sh);
598 sh->state = 0;
599
600 for (i = sh->disks; i--; ) {
601 struct r5dev *dev = &sh->dev[i];
602
603 if (dev->toread || dev->read || dev->towrite || dev->written ||
604 test_bit(R5_LOCKED, &dev->flags)) {
605 pr_err("sector=%llx i=%d %p %p %p %p %d\n",
606 (unsigned long long)sh->sector, i, dev->toread,
607 dev->read, dev->towrite, dev->written,
608 test_bit(R5_LOCKED, &dev->flags));
609 WARN_ON(1);
610 }
611 dev->flags = 0;
612 dev->sector = raid5_compute_blocknr(sh, i, previous);
613 }
614 if (read_seqcount_retry(&conf->gen_lock, seq))
615 goto retry;
616 sh->overwrite_disks = 0;
617 insert_hash(conf, sh);
618 sh->cpu = smp_processor_id();
619 set_bit(STRIPE_BATCH_READY, &sh->state);
620 }
621
__find_stripe(struct r5conf * conf,sector_t sector,short generation)622 static struct stripe_head *__find_stripe(struct r5conf *conf, sector_t sector,
623 short generation)
624 {
625 struct stripe_head *sh;
626
627 pr_debug("__find_stripe, sector %llu\n", (unsigned long long)sector);
628 hlist_for_each_entry(sh, stripe_hash(conf, sector), hash)
629 if (sh->sector == sector && sh->generation == generation)
630 return sh;
631 pr_debug("__stripe %llu not in cache\n", (unsigned long long)sector);
632 return NULL;
633 }
634
find_get_stripe(struct r5conf * conf,sector_t sector,short generation,int hash)635 static struct stripe_head *find_get_stripe(struct r5conf *conf,
636 sector_t sector, short generation, int hash)
637 {
638 int inc_empty_inactive_list_flag;
639 struct stripe_head *sh;
640
641 sh = __find_stripe(conf, sector, generation);
642 if (!sh)
643 return NULL;
644
645 if (atomic_inc_not_zero(&sh->count))
646 return sh;
647
648 /*
649 * Slow path. The reference count is zero which means the stripe must
650 * be on a list (sh->lru). Must remove the stripe from the list that
651 * references it with the device_lock held.
652 */
653
654 spin_lock(&conf->device_lock);
655 if (!atomic_read(&sh->count)) {
656 if (!test_bit(STRIPE_HANDLE, &sh->state))
657 atomic_inc(&conf->active_stripes);
658 BUG_ON(list_empty(&sh->lru) &&
659 !test_bit(STRIPE_EXPANDING, &sh->state));
660 inc_empty_inactive_list_flag = 0;
661 if (!list_empty(conf->inactive_list + hash))
662 inc_empty_inactive_list_flag = 1;
663 list_del_init(&sh->lru);
664 if (list_empty(conf->inactive_list + hash) &&
665 inc_empty_inactive_list_flag)
666 atomic_inc(&conf->empty_inactive_list_nr);
667 if (sh->group) {
668 sh->group->stripes_cnt--;
669 sh->group = NULL;
670 }
671 }
672 atomic_inc(&sh->count);
673 spin_unlock(&conf->device_lock);
674
675 return sh;
676 }
677
678 /*
679 * Need to check if array has failed when deciding whether to:
680 * - start an array
681 * - remove non-faulty devices
682 * - add a spare
683 * - allow a reshape
684 * This determination is simple when no reshape is happening.
685 * However if there is a reshape, we need to carefully check
686 * both the before and after sections.
687 * This is because some failed devices may only affect one
688 * of the two sections, and some non-in_sync devices may
689 * be insync in the section most affected by failed devices.
690 *
691 * Most calls to this function hold &conf->device_lock. Calls
692 * in raid5_run() do not require the lock as no other threads
693 * have been started yet.
694 */
raid5_calc_degraded(struct r5conf * conf)695 int raid5_calc_degraded(struct r5conf *conf)
696 {
697 int degraded, degraded2;
698 int i;
699
700 degraded = 0;
701 for (i = 0; i < conf->previous_raid_disks; i++) {
702 struct md_rdev *rdev = READ_ONCE(conf->disks[i].rdev);
703
704 if (rdev && test_bit(Faulty, &rdev->flags))
705 rdev = READ_ONCE(conf->disks[i].replacement);
706 if (!rdev || test_bit(Faulty, &rdev->flags))
707 degraded++;
708 else if (test_bit(In_sync, &rdev->flags))
709 ;
710 else
711 /* not in-sync or faulty.
712 * If the reshape increases the number of devices,
713 * this is being recovered by the reshape, so
714 * this 'previous' section is not in_sync.
715 * If the number of devices is being reduced however,
716 * the device can only be part of the array if
717 * we are reverting a reshape, so this section will
718 * be in-sync.
719 */
720 if (conf->raid_disks >= conf->previous_raid_disks)
721 degraded++;
722 }
723 if (conf->raid_disks == conf->previous_raid_disks)
724 return degraded;
725 degraded2 = 0;
726 for (i = 0; i < conf->raid_disks; i++) {
727 struct md_rdev *rdev = READ_ONCE(conf->disks[i].rdev);
728
729 if (rdev && test_bit(Faulty, &rdev->flags))
730 rdev = READ_ONCE(conf->disks[i].replacement);
731 if (!rdev || test_bit(Faulty, &rdev->flags))
732 degraded2++;
733 else if (test_bit(In_sync, &rdev->flags))
734 ;
735 else
736 /* not in-sync or faulty.
737 * If reshape increases the number of devices, this
738 * section has already been recovered, else it
739 * almost certainly hasn't.
740 */
741 if (conf->raid_disks <= conf->previous_raid_disks)
742 degraded2++;
743 }
744 if (degraded2 > degraded)
745 return degraded2;
746 return degraded;
747 }
748
has_failed(struct r5conf * conf)749 static bool has_failed(struct r5conf *conf)
750 {
751 int degraded = conf->mddev->degraded;
752
753 if (test_bit(MD_BROKEN, &conf->mddev->flags))
754 return true;
755
756 if (conf->mddev->reshape_position != MaxSector)
757 degraded = raid5_calc_degraded(conf);
758
759 return degraded > conf->max_degraded;
760 }
761
762 enum stripe_result {
763 STRIPE_SUCCESS = 0,
764 STRIPE_RETRY,
765 STRIPE_SCHEDULE_AND_RETRY,
766 STRIPE_FAIL,
767 STRIPE_WAIT_RESHAPE,
768 };
769
770 struct stripe_request_ctx {
771 /* a reference to the last stripe_head for batching */
772 struct stripe_head *batch_last;
773
774 /* first sector in the request */
775 sector_t first_sector;
776
777 /* last sector in the request */
778 sector_t last_sector;
779
780 /* the request had REQ_PREFLUSH, cleared after the first stripe_head */
781 bool do_flush;
782
783 /*
784 * bitmap to track stripe sectors that have been added to stripes
785 * add one to account for unaligned requests
786 */
787 unsigned long sectors_to_do[];
788 };
789
790 /*
791 * Block until another thread clears R5_INACTIVE_BLOCKED or
792 * there are fewer than 3/4 the maximum number of active stripes
793 * and there is an inactive stripe available.
794 */
is_inactive_blocked(struct r5conf * conf,int hash)795 static bool is_inactive_blocked(struct r5conf *conf, int hash)
796 {
797 if (list_empty(conf->inactive_list + hash))
798 return false;
799
800 if (!test_bit(R5_INACTIVE_BLOCKED, &conf->cache_state))
801 return true;
802
803 return (atomic_read(&conf->active_stripes) <
804 (conf->max_nr_stripes * 3 / 4));
805 }
806
raid5_get_active_stripe(struct r5conf * conf,struct stripe_request_ctx * ctx,sector_t sector,unsigned int flags)807 struct stripe_head *raid5_get_active_stripe(struct r5conf *conf,
808 struct stripe_request_ctx *ctx, sector_t sector,
809 unsigned int flags)
810 {
811 struct stripe_head *sh;
812 int hash = stripe_hash_locks_hash(conf, sector);
813 int previous = !!(flags & R5_GAS_PREVIOUS);
814
815 pr_debug("get_stripe, sector %llu\n", (unsigned long long)sector);
816
817 spin_lock_irq(conf->hash_locks + hash);
818
819 for (;;) {
820 if (!(flags & R5_GAS_NOQUIESCE) && conf->quiesce) {
821 /*
822 * Must release the reference to batch_last before
823 * waiting, on quiesce, otherwise the batch_last will
824 * hold a reference to a stripe and raid5_quiesce()
825 * will deadlock waiting for active_stripes to go to
826 * zero.
827 */
828 if (ctx && ctx->batch_last) {
829 raid5_release_stripe(ctx->batch_last);
830 ctx->batch_last = NULL;
831 }
832
833 wait_event_lock_irq(conf->wait_for_quiescent,
834 !conf->quiesce,
835 *(conf->hash_locks + hash));
836 }
837
838 sh = find_get_stripe(conf, sector, conf->generation - previous,
839 hash);
840 if (sh)
841 break;
842
843 if (!test_bit(R5_INACTIVE_BLOCKED, &conf->cache_state)) {
844 sh = get_free_stripe(conf, hash);
845 if (sh) {
846 r5c_check_stripe_cache_usage(conf);
847 init_stripe(sh, sector, previous);
848 atomic_inc(&sh->count);
849 break;
850 }
851
852 if (!test_bit(R5_DID_ALLOC, &conf->cache_state))
853 set_bit(R5_ALLOC_MORE, &conf->cache_state);
854 }
855
856 if (flags & R5_GAS_NOBLOCK)
857 break;
858
859 set_bit(R5_INACTIVE_BLOCKED, &conf->cache_state);
860 r5l_wake_reclaim(conf->log, 0);
861
862 /* release batch_last before wait to avoid risk of deadlock */
863 if (ctx && ctx->batch_last) {
864 raid5_release_stripe(ctx->batch_last);
865 ctx->batch_last = NULL;
866 }
867
868 wait_event_lock_irq(conf->wait_for_stripe,
869 is_inactive_blocked(conf, hash),
870 *(conf->hash_locks + hash));
871 clear_bit(R5_INACTIVE_BLOCKED, &conf->cache_state);
872 }
873
874 spin_unlock_irq(conf->hash_locks + hash);
875 return sh;
876 }
877
is_full_stripe_write(struct stripe_head * sh)878 static bool is_full_stripe_write(struct stripe_head *sh)
879 {
880 BUG_ON(sh->overwrite_disks > (sh->disks - sh->raid_conf->max_degraded));
881 return sh->overwrite_disks == (sh->disks - sh->raid_conf->max_degraded);
882 }
883
lock_two_stripes(struct stripe_head * sh1,struct stripe_head * sh2)884 static void lock_two_stripes(struct stripe_head *sh1, struct stripe_head *sh2)
885 __acquires(&sh1->stripe_lock)
886 __acquires(&sh2->stripe_lock)
887 {
888 if (sh1 > sh2) {
889 spin_lock_irq(&sh2->stripe_lock);
890 spin_lock_nested(&sh1->stripe_lock, 1);
891 } else {
892 spin_lock_irq(&sh1->stripe_lock);
893 spin_lock_nested(&sh2->stripe_lock, 1);
894 }
895 }
896
unlock_two_stripes(struct stripe_head * sh1,struct stripe_head * sh2)897 static void unlock_two_stripes(struct stripe_head *sh1, struct stripe_head *sh2)
898 __releases(&sh1->stripe_lock)
899 __releases(&sh2->stripe_lock)
900 {
901 spin_unlock(&sh1->stripe_lock);
902 spin_unlock_irq(&sh2->stripe_lock);
903 }
904
905 /* Only freshly new full stripe normal write stripe can be added to a batch list */
stripe_can_batch(struct stripe_head * sh)906 static bool stripe_can_batch(struct stripe_head *sh)
907 {
908 struct r5conf *conf = sh->raid_conf;
909
910 if (raid5_has_log(conf) || raid5_has_ppl(conf))
911 return false;
912 return test_bit(STRIPE_BATCH_READY, &sh->state) &&
913 is_full_stripe_write(sh);
914 }
915
916 /* we only do back search */
stripe_add_to_batch_list(struct r5conf * conf,struct stripe_head * sh,struct stripe_head * last_sh)917 static void stripe_add_to_batch_list(struct r5conf *conf,
918 struct stripe_head *sh, struct stripe_head *last_sh)
919 {
920 struct stripe_head *head;
921 sector_t head_sector, tmp_sec;
922 int hash;
923 int dd_idx;
924
925 /* Don't cross chunks, so stripe pd_idx/qd_idx is the same */
926 tmp_sec = sh->sector;
927 if (!sector_div(tmp_sec, conf->chunk_sectors))
928 return;
929 head_sector = sh->sector - RAID5_STRIPE_SECTORS(conf);
930
931 if (last_sh && head_sector == last_sh->sector) {
932 head = last_sh;
933 atomic_inc(&head->count);
934 } else {
935 hash = stripe_hash_locks_hash(conf, head_sector);
936 spin_lock_irq(conf->hash_locks + hash);
937 head = find_get_stripe(conf, head_sector, conf->generation,
938 hash);
939 spin_unlock_irq(conf->hash_locks + hash);
940 if (!head)
941 return;
942 if (!stripe_can_batch(head))
943 goto out;
944 }
945
946 lock_two_stripes(head, sh);
947 /* clear_batch_ready clear the flag */
948 if (!stripe_can_batch(head) || !stripe_can_batch(sh))
949 goto unlock_out;
950
951 if (sh->batch_head)
952 goto unlock_out;
953
954 dd_idx = 0;
955 while (dd_idx == sh->pd_idx || dd_idx == sh->qd_idx)
956 dd_idx++;
957 if (head->dev[dd_idx].towrite->bi_opf != sh->dev[dd_idx].towrite->bi_opf ||
958 bio_op(head->dev[dd_idx].towrite) != bio_op(sh->dev[dd_idx].towrite))
959 goto unlock_out;
960
961 if (head->batch_head) {
962 spin_lock(&head->batch_head->batch_lock);
963 /* This batch list is already running */
964 if (!stripe_can_batch(head)) {
965 spin_unlock(&head->batch_head->batch_lock);
966 goto unlock_out;
967 }
968 /*
969 * We must assign batch_head of this stripe within the
970 * batch_lock, otherwise clear_batch_ready of batch head
971 * stripe could clear BATCH_READY bit of this stripe and
972 * this stripe->batch_head doesn't get assigned, which
973 * could confuse clear_batch_ready for this stripe
974 */
975 sh->batch_head = head->batch_head;
976
977 /*
978 * at this point, head's BATCH_READY could be cleared, but we
979 * can still add the stripe to batch list
980 */
981 list_add(&sh->batch_list, &head->batch_list);
982 spin_unlock(&head->batch_head->batch_lock);
983 } else {
984 head->batch_head = head;
985 sh->batch_head = head->batch_head;
986 spin_lock(&head->batch_lock);
987 list_add_tail(&sh->batch_list, &head->batch_list);
988 spin_unlock(&head->batch_lock);
989 }
990
991 if (test_and_clear_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
992 if (atomic_dec_return(&conf->preread_active_stripes)
993 < IO_THRESHOLD)
994 md_wakeup_thread(conf->mddev->thread);
995
996 if (test_and_clear_bit(STRIPE_BIT_DELAY, &sh->state)) {
997 int seq = sh->bm_seq;
998 if (test_bit(STRIPE_BIT_DELAY, &sh->batch_head->state) &&
999 sh->batch_head->bm_seq > seq)
1000 seq = sh->batch_head->bm_seq;
1001 set_bit(STRIPE_BIT_DELAY, &sh->batch_head->state);
1002 sh->batch_head->bm_seq = seq;
1003 }
1004
1005 atomic_inc(&sh->count);
1006 unlock_out:
1007 unlock_two_stripes(head, sh);
1008 out:
1009 raid5_release_stripe(head);
1010 }
1011
1012 /* Determine if 'data_offset' or 'new_data_offset' should be used
1013 * in this stripe_head.
1014 */
use_new_offset(struct r5conf * conf,struct stripe_head * sh)1015 static int use_new_offset(struct r5conf *conf, struct stripe_head *sh)
1016 {
1017 sector_t progress = conf->reshape_progress;
1018 /* Need a memory barrier to make sure we see the value
1019 * of conf->generation, or ->data_offset that was set before
1020 * reshape_progress was updated.
1021 */
1022 smp_rmb();
1023 if (progress == MaxSector)
1024 return 0;
1025 if (sh->generation == conf->generation - 1)
1026 return 0;
1027 /* We are in a reshape, and this is a new-generation stripe,
1028 * so use new_data_offset.
1029 */
1030 return 1;
1031 }
1032
dispatch_bio_list(struct bio_list * tmp)1033 static void dispatch_bio_list(struct bio_list *tmp)
1034 {
1035 struct bio *bio;
1036
1037 while ((bio = bio_list_pop(tmp)))
1038 submit_bio_noacct(bio);
1039 }
1040
cmp_stripe(void * priv,const struct list_head * a,const struct list_head * b)1041 static int cmp_stripe(void *priv, const struct list_head *a,
1042 const struct list_head *b)
1043 {
1044 const struct r5pending_data *da = list_entry(a,
1045 struct r5pending_data, sibling);
1046 const struct r5pending_data *db = list_entry(b,
1047 struct r5pending_data, sibling);
1048 if (da->sector > db->sector)
1049 return 1;
1050 if (da->sector < db->sector)
1051 return -1;
1052 return 0;
1053 }
1054
dispatch_defer_bios(struct r5conf * conf,int target,struct bio_list * list)1055 static void dispatch_defer_bios(struct r5conf *conf, int target,
1056 struct bio_list *list)
1057 {
1058 struct r5pending_data *data;
1059 struct list_head *first, *next = NULL;
1060 int cnt = 0;
1061
1062 if (conf->pending_data_cnt == 0)
1063 return;
1064
1065 list_sort(NULL, &conf->pending_list, cmp_stripe);
1066
1067 first = conf->pending_list.next;
1068
1069 /* temporarily move the head */
1070 if (conf->next_pending_data)
1071 list_move_tail(&conf->pending_list,
1072 &conf->next_pending_data->sibling);
1073
1074 while (!list_empty(&conf->pending_list)) {
1075 data = list_first_entry(&conf->pending_list,
1076 struct r5pending_data, sibling);
1077 if (&data->sibling == first)
1078 first = data->sibling.next;
1079 next = data->sibling.next;
1080
1081 bio_list_merge(list, &data->bios);
1082 list_move(&data->sibling, &conf->free_list);
1083 cnt++;
1084 if (cnt >= target)
1085 break;
1086 }
1087 conf->pending_data_cnt -= cnt;
1088 BUG_ON(conf->pending_data_cnt < 0 || cnt < target);
1089
1090 if (next != &conf->pending_list)
1091 conf->next_pending_data = list_entry(next,
1092 struct r5pending_data, sibling);
1093 else
1094 conf->next_pending_data = NULL;
1095 /* list isn't empty */
1096 if (first != &conf->pending_list)
1097 list_move_tail(&conf->pending_list, first);
1098 }
1099
flush_deferred_bios(struct r5conf * conf)1100 static void flush_deferred_bios(struct r5conf *conf)
1101 {
1102 struct bio_list tmp = BIO_EMPTY_LIST;
1103
1104 if (conf->pending_data_cnt == 0)
1105 return;
1106
1107 spin_lock(&conf->pending_bios_lock);
1108 dispatch_defer_bios(conf, conf->pending_data_cnt, &tmp);
1109 BUG_ON(conf->pending_data_cnt != 0);
1110 spin_unlock(&conf->pending_bios_lock);
1111
1112 dispatch_bio_list(&tmp);
1113 }
1114
defer_issue_bios(struct r5conf * conf,sector_t sector,struct bio_list * bios)1115 static void defer_issue_bios(struct r5conf *conf, sector_t sector,
1116 struct bio_list *bios)
1117 {
1118 struct bio_list tmp = BIO_EMPTY_LIST;
1119 struct r5pending_data *ent;
1120
1121 spin_lock(&conf->pending_bios_lock);
1122 ent = list_first_entry(&conf->free_list, struct r5pending_data,
1123 sibling);
1124 list_move_tail(&ent->sibling, &conf->pending_list);
1125 ent->sector = sector;
1126 bio_list_init(&ent->bios);
1127 bio_list_merge(&ent->bios, bios);
1128 conf->pending_data_cnt++;
1129 if (conf->pending_data_cnt >= PENDING_IO_MAX)
1130 dispatch_defer_bios(conf, PENDING_IO_ONE_FLUSH, &tmp);
1131
1132 spin_unlock(&conf->pending_bios_lock);
1133
1134 dispatch_bio_list(&tmp);
1135 }
1136
1137 static void
1138 raid5_end_read_request(struct bio *bi);
1139 static void
1140 raid5_end_write_request(struct bio *bi);
1141
ops_run_io(struct stripe_head * sh,struct stripe_head_state * s)1142 static void ops_run_io(struct stripe_head *sh, struct stripe_head_state *s)
1143 {
1144 struct r5conf *conf = sh->raid_conf;
1145 int i, disks = sh->disks;
1146 struct stripe_head *head_sh = sh;
1147 struct bio_list pending_bios = BIO_EMPTY_LIST;
1148 struct r5dev *dev;
1149 bool should_defer;
1150
1151 might_sleep();
1152
1153 if (log_stripe(sh, s) == 0)
1154 return;
1155
1156 should_defer = conf->batch_bio_dispatch && conf->group_cnt;
1157
1158 for (i = disks; i--; ) {
1159 enum req_op op;
1160 blk_opf_t op_flags = 0;
1161 int replace_only = 0;
1162 struct bio *bi, *rbi;
1163 struct md_rdev *rdev, *rrdev = NULL;
1164
1165 sh = head_sh;
1166 if (test_and_clear_bit(R5_Wantwrite, &sh->dev[i].flags)) {
1167 op = REQ_OP_WRITE;
1168 if (test_and_clear_bit(R5_WantFUA, &sh->dev[i].flags))
1169 op_flags = REQ_FUA;
1170 if (test_bit(R5_Discard, &sh->dev[i].flags))
1171 op = REQ_OP_DISCARD;
1172 } else if (test_and_clear_bit(R5_Wantread, &sh->dev[i].flags))
1173 op = REQ_OP_READ;
1174 else if (test_and_clear_bit(R5_WantReplace,
1175 &sh->dev[i].flags)) {
1176 op = REQ_OP_WRITE;
1177 replace_only = 1;
1178 } else
1179 continue;
1180 if (test_and_clear_bit(R5_SyncIO, &sh->dev[i].flags))
1181 op_flags |= REQ_SYNC;
1182
1183 again:
1184 dev = &sh->dev[i];
1185 bi = &dev->req;
1186 rbi = &dev->rreq; /* For writing to replacement */
1187
1188 rdev = conf->disks[i].rdev;
1189 rrdev = conf->disks[i].replacement;
1190 if (op_is_write(op)) {
1191 if (replace_only)
1192 rdev = NULL;
1193 if (rdev == rrdev)
1194 /* We raced and saw duplicates */
1195 rrdev = NULL;
1196 } else {
1197 if (test_bit(R5_ReadRepl, &head_sh->dev[i].flags) && rrdev)
1198 rdev = rrdev;
1199 rrdev = NULL;
1200 }
1201
1202 if (rdev && test_bit(Faulty, &rdev->flags))
1203 rdev = NULL;
1204 if (rdev)
1205 atomic_inc(&rdev->nr_pending);
1206 if (rrdev && test_bit(Faulty, &rrdev->flags))
1207 rrdev = NULL;
1208 if (rrdev)
1209 atomic_inc(&rrdev->nr_pending);
1210
1211 /* We have already checked bad blocks for reads. Now
1212 * need to check for writes. We never accept write errors
1213 * on the replacement, so we don't to check rrdev.
1214 */
1215 while (op_is_write(op) && rdev &&
1216 test_bit(WriteErrorSeen, &rdev->flags)) {
1217 int bad = rdev_has_badblock(rdev, sh->sector,
1218 RAID5_STRIPE_SECTORS(conf));
1219 if (!bad)
1220 break;
1221
1222 if (bad < 0) {
1223 set_bit(BlockedBadBlocks, &rdev->flags);
1224 if (!conf->mddev->external &&
1225 conf->mddev->sb_flags) {
1226 /* It is very unlikely, but we might
1227 * still need to write out the
1228 * bad block log - better give it
1229 * a chance*/
1230 md_check_recovery(conf->mddev);
1231 }
1232 /*
1233 * Because md_wait_for_blocked_rdev
1234 * will dec nr_pending, we must
1235 * increment it first.
1236 */
1237 atomic_inc(&rdev->nr_pending);
1238 md_wait_for_blocked_rdev(rdev, conf->mddev);
1239 } else {
1240 /* Acknowledged bad block - skip the write */
1241 rdev_dec_pending(rdev, conf->mddev);
1242 rdev = NULL;
1243 }
1244 }
1245
1246 if (rdev) {
1247 set_bit(STRIPE_IO_STARTED, &sh->state);
1248
1249 bio_init(bi, rdev->bdev, &dev->vec, 1, op | op_flags);
1250 bi->bi_end_io = op_is_write(op)
1251 ? raid5_end_write_request
1252 : raid5_end_read_request;
1253 bi->bi_private = sh;
1254
1255 pr_debug("%s: for %llu schedule op %d on disc %d\n",
1256 __func__, (unsigned long long)sh->sector,
1257 bi->bi_opf, i);
1258 atomic_inc(&sh->count);
1259 if (sh != head_sh)
1260 atomic_inc(&head_sh->count);
1261 if (use_new_offset(conf, sh))
1262 bi->bi_iter.bi_sector = (sh->sector
1263 + rdev->new_data_offset);
1264 else
1265 bi->bi_iter.bi_sector = (sh->sector
1266 + rdev->data_offset);
1267 if (test_bit(R5_ReadNoMerge, &head_sh->dev[i].flags))
1268 bi->bi_opf |= REQ_NOMERGE;
1269
1270 if (test_bit(R5_SkipCopy, &sh->dev[i].flags))
1271 WARN_ON(test_bit(R5_UPTODATE, &sh->dev[i].flags));
1272
1273 if (!op_is_write(op) &&
1274 test_bit(R5_InJournal, &sh->dev[i].flags))
1275 /*
1276 * issuing read for a page in journal, this
1277 * must be preparing for prexor in rmw; read
1278 * the data into orig_page
1279 */
1280 sh->dev[i].vec.bv_page = sh->dev[i].orig_page;
1281 else
1282 sh->dev[i].vec.bv_page = sh->dev[i].page;
1283 bi->bi_vcnt = 1;
1284 bi->bi_io_vec[0].bv_len = RAID5_STRIPE_SIZE(conf);
1285 bi->bi_io_vec[0].bv_offset = sh->dev[i].offset;
1286 bi->bi_iter.bi_size = RAID5_STRIPE_SIZE(conf);
1287 /*
1288 * If this is discard request, set bi_vcnt 0. We don't
1289 * want to confuse SCSI because SCSI will replace payload
1290 */
1291 if (op == REQ_OP_DISCARD)
1292 bi->bi_vcnt = 0;
1293 if (rrdev)
1294 set_bit(R5_DOUBLE_LOCKED, &sh->dev[i].flags);
1295
1296 mddev_trace_remap(conf->mddev, bi, sh->dev[i].sector);
1297 if (should_defer && op_is_write(op))
1298 bio_list_add(&pending_bios, bi);
1299 else
1300 submit_bio_noacct(bi);
1301 }
1302 if (rrdev) {
1303 set_bit(STRIPE_IO_STARTED, &sh->state);
1304
1305 bio_init(rbi, rrdev->bdev, &dev->rvec, 1, op | op_flags);
1306 BUG_ON(!op_is_write(op));
1307 rbi->bi_end_io = raid5_end_write_request;
1308 rbi->bi_private = sh;
1309
1310 pr_debug("%s: for %llu schedule op %d on "
1311 "replacement disc %d\n",
1312 __func__, (unsigned long long)sh->sector,
1313 rbi->bi_opf, i);
1314 atomic_inc(&sh->count);
1315 if (sh != head_sh)
1316 atomic_inc(&head_sh->count);
1317 if (use_new_offset(conf, sh))
1318 rbi->bi_iter.bi_sector = (sh->sector
1319 + rrdev->new_data_offset);
1320 else
1321 rbi->bi_iter.bi_sector = (sh->sector
1322 + rrdev->data_offset);
1323 if (test_bit(R5_SkipCopy, &sh->dev[i].flags))
1324 WARN_ON(test_bit(R5_UPTODATE, &sh->dev[i].flags));
1325 sh->dev[i].rvec.bv_page = sh->dev[i].page;
1326 rbi->bi_vcnt = 1;
1327 rbi->bi_io_vec[0].bv_len = RAID5_STRIPE_SIZE(conf);
1328 rbi->bi_io_vec[0].bv_offset = sh->dev[i].offset;
1329 rbi->bi_iter.bi_size = RAID5_STRIPE_SIZE(conf);
1330 /*
1331 * If this is discard request, set bi_vcnt 0. We don't
1332 * want to confuse SCSI because SCSI will replace payload
1333 */
1334 if (op == REQ_OP_DISCARD)
1335 rbi->bi_vcnt = 0;
1336 mddev_trace_remap(conf->mddev, rbi, sh->dev[i].sector);
1337 if (should_defer && op_is_write(op))
1338 bio_list_add(&pending_bios, rbi);
1339 else
1340 submit_bio_noacct(rbi);
1341 }
1342 if (!rdev && !rrdev) {
1343 pr_debug("skip op %d on disc %d for sector %llu\n",
1344 bi->bi_opf, i, (unsigned long long)sh->sector);
1345 clear_bit(R5_LOCKED, &sh->dev[i].flags);
1346 set_bit(STRIPE_HANDLE, &sh->state);
1347 }
1348
1349 if (!head_sh->batch_head)
1350 continue;
1351 sh = list_first_entry(&sh->batch_list, struct stripe_head,
1352 batch_list);
1353 if (sh != head_sh)
1354 goto again;
1355 }
1356
1357 if (should_defer && !bio_list_empty(&pending_bios))
1358 defer_issue_bios(conf, head_sh->sector, &pending_bios);
1359 }
1360
1361 static struct dma_async_tx_descriptor *
async_copy_data(int frombio,struct bio * bio,struct page ** page,unsigned int poff,sector_t sector,struct dma_async_tx_descriptor * tx,struct stripe_head * sh,int no_skipcopy)1362 async_copy_data(int frombio, struct bio *bio, struct page **page,
1363 unsigned int poff, sector_t sector, struct dma_async_tx_descriptor *tx,
1364 struct stripe_head *sh, int no_skipcopy)
1365 {
1366 struct bio_vec bvl;
1367 struct bvec_iter iter;
1368 struct page *bio_page;
1369 int page_offset;
1370 struct async_submit_ctl submit;
1371 enum async_tx_flags flags = 0;
1372 struct r5conf *conf = sh->raid_conf;
1373
1374 if (bio->bi_iter.bi_sector >= sector)
1375 page_offset = (signed)(bio->bi_iter.bi_sector - sector) * 512;
1376 else
1377 page_offset = (signed)(sector - bio->bi_iter.bi_sector) * -512;
1378
1379 if (frombio)
1380 flags |= ASYNC_TX_FENCE;
1381 init_async_submit(&submit, flags, tx, NULL, NULL, NULL);
1382
1383 bio_for_each_segment(bvl, bio, iter) {
1384 int len = bvl.bv_len;
1385 int clen;
1386 int b_offset = 0;
1387
1388 if (page_offset < 0) {
1389 b_offset = -page_offset;
1390 page_offset += b_offset;
1391 len -= b_offset;
1392 }
1393
1394 if (len > 0 && page_offset + len > RAID5_STRIPE_SIZE(conf))
1395 clen = RAID5_STRIPE_SIZE(conf) - page_offset;
1396 else
1397 clen = len;
1398
1399 if (clen > 0) {
1400 b_offset += bvl.bv_offset;
1401 bio_page = bvl.bv_page;
1402 if (frombio) {
1403 if (conf->skip_copy &&
1404 b_offset == 0 && page_offset == 0 &&
1405 clen == RAID5_STRIPE_SIZE(conf) &&
1406 !no_skipcopy)
1407 *page = bio_page;
1408 else
1409 tx = async_memcpy(*page, bio_page, page_offset + poff,
1410 b_offset, clen, &submit);
1411 } else
1412 tx = async_memcpy(bio_page, *page, b_offset,
1413 page_offset + poff, clen, &submit);
1414 }
1415 /* chain the operations */
1416 submit.depend_tx = tx;
1417
1418 if (clen < len) /* hit end of page */
1419 break;
1420 page_offset += len;
1421 }
1422
1423 return tx;
1424 }
1425
ops_complete_biofill(void * stripe_head_ref)1426 static void ops_complete_biofill(void *stripe_head_ref)
1427 {
1428 struct stripe_head *sh = stripe_head_ref;
1429 int i;
1430 struct r5conf *conf = sh->raid_conf;
1431
1432 pr_debug("%s: stripe %llu\n", __func__,
1433 (unsigned long long)sh->sector);
1434
1435 /* clear completed biofills */
1436 for (i = sh->disks; i--; ) {
1437 struct r5dev *dev = &sh->dev[i];
1438
1439 /* acknowledge completion of a biofill operation */
1440 /* and check if we need to reply to a read request,
1441 * new R5_Wantfill requests are held off until
1442 * !STRIPE_BIOFILL_RUN
1443 */
1444 if (test_and_clear_bit(R5_Wantfill, &dev->flags)) {
1445 struct bio *rbi, *rbi2;
1446
1447 BUG_ON(!dev->read);
1448 rbi = dev->read;
1449 dev->read = NULL;
1450 while (rbi && rbi->bi_iter.bi_sector <
1451 dev->sector + RAID5_STRIPE_SECTORS(conf)) {
1452 rbi2 = r5_next_bio(conf, rbi, dev->sector);
1453 bio_endio(rbi);
1454 rbi = rbi2;
1455 }
1456 }
1457 }
1458 clear_bit(STRIPE_BIOFILL_RUN, &sh->state);
1459
1460 set_bit(STRIPE_HANDLE, &sh->state);
1461 raid5_release_stripe(sh);
1462 }
1463
ops_run_biofill(struct stripe_head * sh)1464 static void ops_run_biofill(struct stripe_head *sh)
1465 {
1466 struct dma_async_tx_descriptor *tx = NULL;
1467 struct async_submit_ctl submit;
1468 int i;
1469 struct r5conf *conf = sh->raid_conf;
1470
1471 BUG_ON(sh->batch_head);
1472 pr_debug("%s: stripe %llu\n", __func__,
1473 (unsigned long long)sh->sector);
1474
1475 for (i = sh->disks; i--; ) {
1476 struct r5dev *dev = &sh->dev[i];
1477 if (test_bit(R5_Wantfill, &dev->flags)) {
1478 struct bio *rbi;
1479 spin_lock_irq(&sh->stripe_lock);
1480 dev->read = rbi = dev->toread;
1481 dev->toread = NULL;
1482 spin_unlock_irq(&sh->stripe_lock);
1483 while (rbi && rbi->bi_iter.bi_sector <
1484 dev->sector + RAID5_STRIPE_SECTORS(conf)) {
1485 tx = async_copy_data(0, rbi, &dev->page,
1486 dev->offset,
1487 dev->sector, tx, sh, 0);
1488 rbi = r5_next_bio(conf, rbi, dev->sector);
1489 }
1490 }
1491 }
1492
1493 atomic_inc(&sh->count);
1494 init_async_submit(&submit, ASYNC_TX_ACK, tx, ops_complete_biofill, sh, NULL);
1495 async_trigger_callback(&submit);
1496 }
1497
mark_target_uptodate(struct stripe_head * sh,int target)1498 static void mark_target_uptodate(struct stripe_head *sh, int target)
1499 {
1500 struct r5dev *tgt;
1501
1502 if (target < 0)
1503 return;
1504
1505 tgt = &sh->dev[target];
1506 set_bit(R5_UPTODATE, &tgt->flags);
1507 BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
1508 clear_bit(R5_Wantcompute, &tgt->flags);
1509 }
1510
ops_complete_compute(void * stripe_head_ref)1511 static void ops_complete_compute(void *stripe_head_ref)
1512 {
1513 struct stripe_head *sh = stripe_head_ref;
1514
1515 pr_debug("%s: stripe %llu\n", __func__,
1516 (unsigned long long)sh->sector);
1517
1518 /* mark the computed target(s) as uptodate */
1519 mark_target_uptodate(sh, sh->ops.target);
1520 mark_target_uptodate(sh, sh->ops.target2);
1521
1522 clear_bit(STRIPE_COMPUTE_RUN, &sh->state);
1523 if (sh->check_state == check_state_compute_run)
1524 sh->check_state = check_state_compute_result;
1525 set_bit(STRIPE_HANDLE, &sh->state);
1526 raid5_release_stripe(sh);
1527 }
1528
1529 /* return a pointer to the address conversion region of the scribble buffer */
to_addr_page(struct raid5_percpu * percpu,int i)1530 static struct page **to_addr_page(struct raid5_percpu *percpu, int i)
1531 {
1532 return percpu->scribble + i * percpu->scribble_obj_size;
1533 }
1534
1535 /* return a pointer to the address conversion region of the scribble buffer */
to_addr_conv(struct stripe_head * sh,struct raid5_percpu * percpu,int i)1536 static addr_conv_t *to_addr_conv(struct stripe_head *sh,
1537 struct raid5_percpu *percpu, int i)
1538 {
1539 return (void *) (to_addr_page(percpu, i) + sh->disks + 2);
1540 }
1541
1542 /*
1543 * Return a pointer to record offset address.
1544 */
1545 static unsigned int *
to_addr_offs(struct stripe_head * sh,struct raid5_percpu * percpu)1546 to_addr_offs(struct stripe_head *sh, struct raid5_percpu *percpu)
1547 {
1548 return (unsigned int *) (to_addr_conv(sh, percpu, 0) + sh->disks + 2);
1549 }
1550
1551 static struct dma_async_tx_descriptor *
ops_run_compute5(struct stripe_head * sh,struct raid5_percpu * percpu)1552 ops_run_compute5(struct stripe_head *sh, struct raid5_percpu *percpu)
1553 {
1554 int disks = sh->disks;
1555 struct page **xor_srcs = to_addr_page(percpu, 0);
1556 unsigned int *off_srcs = to_addr_offs(sh, percpu);
1557 int target = sh->ops.target;
1558 struct r5dev *tgt = &sh->dev[target];
1559 struct page *xor_dest = tgt->page;
1560 unsigned int off_dest = tgt->offset;
1561 int count = 0;
1562 struct dma_async_tx_descriptor *tx;
1563 struct async_submit_ctl submit;
1564 int i;
1565
1566 BUG_ON(sh->batch_head);
1567
1568 pr_debug("%s: stripe %llu block: %d\n",
1569 __func__, (unsigned long long)sh->sector, target);
1570 BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
1571
1572 for (i = disks; i--; ) {
1573 if (i != target) {
1574 off_srcs[count] = sh->dev[i].offset;
1575 xor_srcs[count++] = sh->dev[i].page;
1576 }
1577 }
1578
1579 atomic_inc(&sh->count);
1580
1581 init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_XOR_ZERO_DST, NULL,
1582 ops_complete_compute, sh, to_addr_conv(sh, percpu, 0));
1583 if (unlikely(count == 1))
1584 tx = async_memcpy(xor_dest, xor_srcs[0], off_dest, off_srcs[0],
1585 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
1586 else
1587 tx = async_xor_offs(xor_dest, off_dest, xor_srcs, off_srcs, count,
1588 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
1589
1590 return tx;
1591 }
1592
1593 /* set_syndrome_sources - populate source buffers for gen_syndrome
1594 * @srcs - (struct page *) array of size sh->disks
1595 * @offs - (unsigned int) array of offset for each page
1596 * @sh - stripe_head to parse
1597 *
1598 * Populates srcs in proper layout order for the stripe and returns the
1599 * 'count' of sources to be used in a call to async_gen_syndrome. The P
1600 * destination buffer is recorded in srcs[count] and the Q destination
1601 * is recorded in srcs[count+1]].
1602 */
set_syndrome_sources(struct page ** srcs,unsigned int * offs,struct stripe_head * sh,int srctype)1603 static int set_syndrome_sources(struct page **srcs,
1604 unsigned int *offs,
1605 struct stripe_head *sh,
1606 int srctype)
1607 {
1608 int disks = sh->disks;
1609 int syndrome_disks = sh->ddf_layout ? disks : (disks - 2);
1610 int d0_idx = raid6_d0(sh);
1611 int count;
1612 int i;
1613
1614 for (i = 0; i < disks; i++)
1615 srcs[i] = NULL;
1616
1617 count = 0;
1618 i = d0_idx;
1619 do {
1620 int slot = raid6_idx_to_slot(i, sh, &count, syndrome_disks);
1621 struct r5dev *dev = &sh->dev[i];
1622
1623 if (i == sh->qd_idx || i == sh->pd_idx ||
1624 (srctype == SYNDROME_SRC_ALL) ||
1625 (srctype == SYNDROME_SRC_WANT_DRAIN &&
1626 (test_bit(R5_Wantdrain, &dev->flags) ||
1627 test_bit(R5_InJournal, &dev->flags))) ||
1628 (srctype == SYNDROME_SRC_WRITTEN &&
1629 (dev->written ||
1630 test_bit(R5_InJournal, &dev->flags)))) {
1631 if (test_bit(R5_InJournal, &dev->flags))
1632 srcs[slot] = sh->dev[i].orig_page;
1633 else
1634 srcs[slot] = sh->dev[i].page;
1635 /*
1636 * For R5_InJournal, PAGE_SIZE must be 4KB and will
1637 * not shared page. In that case, dev[i].offset
1638 * is 0.
1639 */
1640 offs[slot] = sh->dev[i].offset;
1641 }
1642 i = raid6_next_disk(i, disks);
1643 } while (i != d0_idx);
1644
1645 return syndrome_disks;
1646 }
1647
1648 static struct dma_async_tx_descriptor *
ops_run_compute6_1(struct stripe_head * sh,struct raid5_percpu * percpu)1649 ops_run_compute6_1(struct stripe_head *sh, struct raid5_percpu *percpu)
1650 {
1651 int disks = sh->disks;
1652 struct page **blocks = to_addr_page(percpu, 0);
1653 unsigned int *offs = to_addr_offs(sh, percpu);
1654 int target;
1655 int qd_idx = sh->qd_idx;
1656 struct dma_async_tx_descriptor *tx;
1657 struct async_submit_ctl submit;
1658 struct r5dev *tgt;
1659 struct page *dest;
1660 unsigned int dest_off;
1661 int i;
1662 int count;
1663
1664 BUG_ON(sh->batch_head);
1665 if (sh->ops.target < 0)
1666 target = sh->ops.target2;
1667 else if (sh->ops.target2 < 0)
1668 target = sh->ops.target;
1669 else
1670 /* we should only have one valid target */
1671 BUG();
1672 BUG_ON(target < 0);
1673 pr_debug("%s: stripe %llu block: %d\n",
1674 __func__, (unsigned long long)sh->sector, target);
1675
1676 tgt = &sh->dev[target];
1677 BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
1678 dest = tgt->page;
1679 dest_off = tgt->offset;
1680
1681 atomic_inc(&sh->count);
1682
1683 if (target == qd_idx) {
1684 count = set_syndrome_sources(blocks, offs, sh, SYNDROME_SRC_ALL);
1685 blocks[count] = NULL; /* regenerating p is not necessary */
1686 BUG_ON(blocks[count+1] != dest); /* q should already be set */
1687 init_async_submit(&submit, ASYNC_TX_FENCE, NULL,
1688 ops_complete_compute, sh,
1689 to_addr_conv(sh, percpu, 0));
1690 tx = async_gen_syndrome(blocks, offs, count+2,
1691 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
1692 } else {
1693 /* Compute any data- or p-drive using XOR */
1694 count = 0;
1695 for (i = disks; i-- ; ) {
1696 if (i == target || i == qd_idx)
1697 continue;
1698 offs[count] = sh->dev[i].offset;
1699 blocks[count++] = sh->dev[i].page;
1700 }
1701
1702 init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_XOR_ZERO_DST,
1703 NULL, ops_complete_compute, sh,
1704 to_addr_conv(sh, percpu, 0));
1705 tx = async_xor_offs(dest, dest_off, blocks, offs, count,
1706 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
1707 }
1708
1709 return tx;
1710 }
1711
1712 static struct dma_async_tx_descriptor *
ops_run_compute6_2(struct stripe_head * sh,struct raid5_percpu * percpu)1713 ops_run_compute6_2(struct stripe_head *sh, struct raid5_percpu *percpu)
1714 {
1715 int i, count, disks = sh->disks;
1716 int syndrome_disks = sh->ddf_layout ? disks : disks-2;
1717 int d0_idx = raid6_d0(sh);
1718 int faila = -1, failb = -1;
1719 int target = sh->ops.target;
1720 int target2 = sh->ops.target2;
1721 struct r5dev *tgt = &sh->dev[target];
1722 struct r5dev *tgt2 = &sh->dev[target2];
1723 struct dma_async_tx_descriptor *tx;
1724 struct page **blocks = to_addr_page(percpu, 0);
1725 unsigned int *offs = to_addr_offs(sh, percpu);
1726 struct async_submit_ctl submit;
1727
1728 BUG_ON(sh->batch_head);
1729 pr_debug("%s: stripe %llu block1: %d block2: %d\n",
1730 __func__, (unsigned long long)sh->sector, target, target2);
1731 BUG_ON(target < 0 || target2 < 0);
1732 BUG_ON(!test_bit(R5_Wantcompute, &tgt->flags));
1733 BUG_ON(!test_bit(R5_Wantcompute, &tgt2->flags));
1734
1735 /* we need to open-code set_syndrome_sources to handle the
1736 * slot number conversion for 'faila' and 'failb'
1737 */
1738 for (i = 0; i < disks ; i++) {
1739 offs[i] = 0;
1740 blocks[i] = NULL;
1741 }
1742 count = 0;
1743 i = d0_idx;
1744 do {
1745 int slot = raid6_idx_to_slot(i, sh, &count, syndrome_disks);
1746
1747 offs[slot] = sh->dev[i].offset;
1748 blocks[slot] = sh->dev[i].page;
1749
1750 if (i == target)
1751 faila = slot;
1752 if (i == target2)
1753 failb = slot;
1754 i = raid6_next_disk(i, disks);
1755 } while (i != d0_idx);
1756
1757 BUG_ON(faila == failb);
1758 if (failb < faila)
1759 swap(faila, failb);
1760 pr_debug("%s: stripe: %llu faila: %d failb: %d\n",
1761 __func__, (unsigned long long)sh->sector, faila, failb);
1762
1763 atomic_inc(&sh->count);
1764
1765 if (failb == syndrome_disks+1) {
1766 /* Q disk is one of the missing disks */
1767 if (faila == syndrome_disks) {
1768 /* Missing P+Q, just recompute */
1769 init_async_submit(&submit, ASYNC_TX_FENCE, NULL,
1770 ops_complete_compute, sh,
1771 to_addr_conv(sh, percpu, 0));
1772 return async_gen_syndrome(blocks, offs, syndrome_disks+2,
1773 RAID5_STRIPE_SIZE(sh->raid_conf),
1774 &submit);
1775 } else {
1776 struct page *dest;
1777 unsigned int dest_off;
1778 int data_target;
1779 int qd_idx = sh->qd_idx;
1780
1781 /* Missing D+Q: recompute D from P, then recompute Q */
1782 if (target == qd_idx)
1783 data_target = target2;
1784 else
1785 data_target = target;
1786
1787 count = 0;
1788 for (i = disks; i-- ; ) {
1789 if (i == data_target || i == qd_idx)
1790 continue;
1791 offs[count] = sh->dev[i].offset;
1792 blocks[count++] = sh->dev[i].page;
1793 }
1794 dest = sh->dev[data_target].page;
1795 dest_off = sh->dev[data_target].offset;
1796 init_async_submit(&submit,
1797 ASYNC_TX_FENCE|ASYNC_TX_XOR_ZERO_DST,
1798 NULL, NULL, NULL,
1799 to_addr_conv(sh, percpu, 0));
1800 tx = async_xor_offs(dest, dest_off, blocks, offs, count,
1801 RAID5_STRIPE_SIZE(sh->raid_conf),
1802 &submit);
1803
1804 count = set_syndrome_sources(blocks, offs, sh, SYNDROME_SRC_ALL);
1805 init_async_submit(&submit, ASYNC_TX_FENCE, tx,
1806 ops_complete_compute, sh,
1807 to_addr_conv(sh, percpu, 0));
1808 return async_gen_syndrome(blocks, offs, count+2,
1809 RAID5_STRIPE_SIZE(sh->raid_conf),
1810 &submit);
1811 }
1812 } else {
1813 init_async_submit(&submit, ASYNC_TX_FENCE, NULL,
1814 ops_complete_compute, sh,
1815 to_addr_conv(sh, percpu, 0));
1816 if (failb == syndrome_disks) {
1817 /* We're missing D+P. */
1818 return async_raid6_datap_recov(syndrome_disks+2,
1819 RAID5_STRIPE_SIZE(sh->raid_conf),
1820 faila,
1821 blocks, offs, &submit);
1822 } else {
1823 /* We're missing D+D. */
1824 return async_raid6_2data_recov(syndrome_disks+2,
1825 RAID5_STRIPE_SIZE(sh->raid_conf),
1826 faila, failb,
1827 blocks, offs, &submit);
1828 }
1829 }
1830 }
1831
ops_complete_prexor(void * stripe_head_ref)1832 static void ops_complete_prexor(void *stripe_head_ref)
1833 {
1834 struct stripe_head *sh = stripe_head_ref;
1835
1836 pr_debug("%s: stripe %llu\n", __func__,
1837 (unsigned long long)sh->sector);
1838
1839 if (r5c_is_writeback(sh->raid_conf->log))
1840 /*
1841 * raid5-cache write back uses orig_page during prexor.
1842 * After prexor, it is time to free orig_page
1843 */
1844 r5c_release_extra_page(sh);
1845 }
1846
1847 static struct dma_async_tx_descriptor *
ops_run_prexor5(struct stripe_head * sh,struct raid5_percpu * percpu,struct dma_async_tx_descriptor * tx)1848 ops_run_prexor5(struct stripe_head *sh, struct raid5_percpu *percpu,
1849 struct dma_async_tx_descriptor *tx)
1850 {
1851 int disks = sh->disks;
1852 struct page **xor_srcs = to_addr_page(percpu, 0);
1853 unsigned int *off_srcs = to_addr_offs(sh, percpu);
1854 int count = 0, pd_idx = sh->pd_idx, i;
1855 struct async_submit_ctl submit;
1856
1857 /* existing parity data subtracted */
1858 unsigned int off_dest = off_srcs[count] = sh->dev[pd_idx].offset;
1859 struct page *xor_dest = xor_srcs[count++] = sh->dev[pd_idx].page;
1860
1861 BUG_ON(sh->batch_head);
1862 pr_debug("%s: stripe %llu\n", __func__,
1863 (unsigned long long)sh->sector);
1864
1865 for (i = disks; i--; ) {
1866 struct r5dev *dev = &sh->dev[i];
1867 /* Only process blocks that are known to be uptodate */
1868 if (test_bit(R5_InJournal, &dev->flags)) {
1869 /*
1870 * For this case, PAGE_SIZE must be equal to 4KB and
1871 * page offset is zero.
1872 */
1873 off_srcs[count] = dev->offset;
1874 xor_srcs[count++] = dev->orig_page;
1875 } else if (test_bit(R5_Wantdrain, &dev->flags)) {
1876 off_srcs[count] = dev->offset;
1877 xor_srcs[count++] = dev->page;
1878 }
1879 }
1880
1881 init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_XOR_DROP_DST, tx,
1882 ops_complete_prexor, sh, to_addr_conv(sh, percpu, 0));
1883 tx = async_xor_offs(xor_dest, off_dest, xor_srcs, off_srcs, count,
1884 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
1885
1886 return tx;
1887 }
1888
1889 static struct dma_async_tx_descriptor *
ops_run_prexor6(struct stripe_head * sh,struct raid5_percpu * percpu,struct dma_async_tx_descriptor * tx)1890 ops_run_prexor6(struct stripe_head *sh, struct raid5_percpu *percpu,
1891 struct dma_async_tx_descriptor *tx)
1892 {
1893 struct page **blocks = to_addr_page(percpu, 0);
1894 unsigned int *offs = to_addr_offs(sh, percpu);
1895 int count;
1896 struct async_submit_ctl submit;
1897
1898 pr_debug("%s: stripe %llu\n", __func__,
1899 (unsigned long long)sh->sector);
1900
1901 count = set_syndrome_sources(blocks, offs, sh, SYNDROME_SRC_WANT_DRAIN);
1902
1903 init_async_submit(&submit, ASYNC_TX_FENCE|ASYNC_TX_PQ_XOR_DST, tx,
1904 ops_complete_prexor, sh, to_addr_conv(sh, percpu, 0));
1905 tx = async_gen_syndrome(blocks, offs, count+2,
1906 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
1907
1908 return tx;
1909 }
1910
1911 static struct dma_async_tx_descriptor *
ops_run_biodrain(struct stripe_head * sh,struct dma_async_tx_descriptor * tx)1912 ops_run_biodrain(struct stripe_head *sh, struct dma_async_tx_descriptor *tx)
1913 {
1914 struct r5conf *conf = sh->raid_conf;
1915 int disks = sh->disks;
1916 int i;
1917 struct stripe_head *head_sh = sh;
1918
1919 pr_debug("%s: stripe %llu\n", __func__,
1920 (unsigned long long)sh->sector);
1921
1922 for (i = disks; i--; ) {
1923 struct r5dev *dev;
1924 struct bio *chosen;
1925
1926 sh = head_sh;
1927 if (test_and_clear_bit(R5_Wantdrain, &head_sh->dev[i].flags)) {
1928 struct bio *wbi;
1929
1930 again:
1931 dev = &sh->dev[i];
1932 /*
1933 * clear R5_InJournal, so when rewriting a page in
1934 * journal, it is not skipped by r5l_log_stripe()
1935 */
1936 clear_bit(R5_InJournal, &dev->flags);
1937 spin_lock_irq(&sh->stripe_lock);
1938 chosen = dev->towrite;
1939 dev->towrite = NULL;
1940 sh->overwrite_disks = 0;
1941 BUG_ON(dev->written);
1942 wbi = dev->written = chosen;
1943 spin_unlock_irq(&sh->stripe_lock);
1944 WARN_ON(dev->page != dev->orig_page);
1945
1946 while (wbi && wbi->bi_iter.bi_sector <
1947 dev->sector + RAID5_STRIPE_SECTORS(conf)) {
1948 if (wbi->bi_opf & REQ_FUA)
1949 set_bit(R5_WantFUA, &dev->flags);
1950 if (wbi->bi_opf & REQ_SYNC)
1951 set_bit(R5_SyncIO, &dev->flags);
1952 if (bio_op(wbi) == REQ_OP_DISCARD)
1953 set_bit(R5_Discard, &dev->flags);
1954 else {
1955 tx = async_copy_data(1, wbi, &dev->page,
1956 dev->offset,
1957 dev->sector, tx, sh,
1958 r5c_is_writeback(conf->log));
1959 if (dev->page != dev->orig_page &&
1960 !r5c_is_writeback(conf->log)) {
1961 set_bit(R5_SkipCopy, &dev->flags);
1962 clear_bit(R5_UPTODATE, &dev->flags);
1963 clear_bit(R5_OVERWRITE, &dev->flags);
1964 }
1965 }
1966 wbi = r5_next_bio(conf, wbi, dev->sector);
1967 }
1968
1969 if (head_sh->batch_head) {
1970 sh = list_first_entry(&sh->batch_list,
1971 struct stripe_head,
1972 batch_list);
1973 if (sh == head_sh)
1974 continue;
1975 goto again;
1976 }
1977 }
1978 }
1979
1980 return tx;
1981 }
1982
ops_complete_reconstruct(void * stripe_head_ref)1983 static void ops_complete_reconstruct(void *stripe_head_ref)
1984 {
1985 struct stripe_head *sh = stripe_head_ref;
1986 int disks = sh->disks;
1987 int pd_idx = sh->pd_idx;
1988 int qd_idx = sh->qd_idx;
1989 int i;
1990 bool fua = false, sync = false, discard = false;
1991
1992 pr_debug("%s: stripe %llu\n", __func__,
1993 (unsigned long long)sh->sector);
1994
1995 for (i = disks; i--; ) {
1996 fua |= test_bit(R5_WantFUA, &sh->dev[i].flags);
1997 sync |= test_bit(R5_SyncIO, &sh->dev[i].flags);
1998 discard |= test_bit(R5_Discard, &sh->dev[i].flags);
1999 }
2000
2001 for (i = disks; i--; ) {
2002 struct r5dev *dev = &sh->dev[i];
2003
2004 if (dev->written || i == pd_idx || i == qd_idx) {
2005 if (!discard && !test_bit(R5_SkipCopy, &dev->flags)) {
2006 set_bit(R5_UPTODATE, &dev->flags);
2007 if (test_bit(STRIPE_EXPAND_READY, &sh->state))
2008 set_bit(R5_Expanded, &dev->flags);
2009 }
2010 if (fua)
2011 set_bit(R5_WantFUA, &dev->flags);
2012 if (sync)
2013 set_bit(R5_SyncIO, &dev->flags);
2014 }
2015 }
2016
2017 if (sh->reconstruct_state == reconstruct_state_drain_run)
2018 sh->reconstruct_state = reconstruct_state_drain_result;
2019 else if (sh->reconstruct_state == reconstruct_state_prexor_drain_run)
2020 sh->reconstruct_state = reconstruct_state_prexor_drain_result;
2021 else {
2022 BUG_ON(sh->reconstruct_state != reconstruct_state_run);
2023 sh->reconstruct_state = reconstruct_state_result;
2024 }
2025
2026 set_bit(STRIPE_HANDLE, &sh->state);
2027 raid5_release_stripe(sh);
2028 }
2029
2030 static void
ops_run_reconstruct5(struct stripe_head * sh,struct raid5_percpu * percpu,struct dma_async_tx_descriptor * tx)2031 ops_run_reconstruct5(struct stripe_head *sh, struct raid5_percpu *percpu,
2032 struct dma_async_tx_descriptor *tx)
2033 {
2034 int disks = sh->disks;
2035 struct page **xor_srcs;
2036 unsigned int *off_srcs;
2037 struct async_submit_ctl submit;
2038 int count, pd_idx = sh->pd_idx, i;
2039 struct page *xor_dest;
2040 unsigned int off_dest;
2041 int prexor = 0;
2042 unsigned long flags;
2043 int j = 0;
2044 struct stripe_head *head_sh = sh;
2045 int last_stripe;
2046
2047 pr_debug("%s: stripe %llu\n", __func__,
2048 (unsigned long long)sh->sector);
2049
2050 for (i = 0; i < sh->disks; i++) {
2051 if (pd_idx == i)
2052 continue;
2053 if (!test_bit(R5_Discard, &sh->dev[i].flags))
2054 break;
2055 }
2056 if (i >= sh->disks) {
2057 atomic_inc(&sh->count);
2058 set_bit(R5_Discard, &sh->dev[pd_idx].flags);
2059 ops_complete_reconstruct(sh);
2060 return;
2061 }
2062 again:
2063 count = 0;
2064 xor_srcs = to_addr_page(percpu, j);
2065 off_srcs = to_addr_offs(sh, percpu);
2066 /* check if prexor is active which means only process blocks
2067 * that are part of a read-modify-write (written)
2068 */
2069 if (head_sh->reconstruct_state == reconstruct_state_prexor_drain_run) {
2070 prexor = 1;
2071 off_dest = off_srcs[count] = sh->dev[pd_idx].offset;
2072 xor_dest = xor_srcs[count++] = sh->dev[pd_idx].page;
2073 for (i = disks; i--; ) {
2074 struct r5dev *dev = &sh->dev[i];
2075 if (head_sh->dev[i].written ||
2076 test_bit(R5_InJournal, &head_sh->dev[i].flags)) {
2077 off_srcs[count] = dev->offset;
2078 xor_srcs[count++] = dev->page;
2079 }
2080 }
2081 } else {
2082 xor_dest = sh->dev[pd_idx].page;
2083 off_dest = sh->dev[pd_idx].offset;
2084 for (i = disks; i--; ) {
2085 struct r5dev *dev = &sh->dev[i];
2086 if (i != pd_idx) {
2087 off_srcs[count] = dev->offset;
2088 xor_srcs[count++] = dev->page;
2089 }
2090 }
2091 }
2092
2093 /* 1/ if we prexor'd then the dest is reused as a source
2094 * 2/ if we did not prexor then we are redoing the parity
2095 * set ASYNC_TX_XOR_DROP_DST and ASYNC_TX_XOR_ZERO_DST
2096 * for the synchronous xor case
2097 */
2098 last_stripe = !head_sh->batch_head ||
2099 list_first_entry(&sh->batch_list,
2100 struct stripe_head, batch_list) == head_sh;
2101 if (last_stripe) {
2102 flags = ASYNC_TX_ACK |
2103 (prexor ? ASYNC_TX_XOR_DROP_DST : ASYNC_TX_XOR_ZERO_DST);
2104
2105 atomic_inc(&head_sh->count);
2106 init_async_submit(&submit, flags, tx, ops_complete_reconstruct, head_sh,
2107 to_addr_conv(sh, percpu, j));
2108 } else {
2109 flags = prexor ? ASYNC_TX_XOR_DROP_DST : ASYNC_TX_XOR_ZERO_DST;
2110 init_async_submit(&submit, flags, tx, NULL, NULL,
2111 to_addr_conv(sh, percpu, j));
2112 }
2113
2114 if (unlikely(count == 1))
2115 tx = async_memcpy(xor_dest, xor_srcs[0], off_dest, off_srcs[0],
2116 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
2117 else
2118 tx = async_xor_offs(xor_dest, off_dest, xor_srcs, off_srcs, count,
2119 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
2120 if (!last_stripe) {
2121 j++;
2122 sh = list_first_entry(&sh->batch_list, struct stripe_head,
2123 batch_list);
2124 goto again;
2125 }
2126 }
2127
2128 static void
ops_run_reconstruct6(struct stripe_head * sh,struct raid5_percpu * percpu,struct dma_async_tx_descriptor * tx)2129 ops_run_reconstruct6(struct stripe_head *sh, struct raid5_percpu *percpu,
2130 struct dma_async_tx_descriptor *tx)
2131 {
2132 struct async_submit_ctl submit;
2133 struct page **blocks;
2134 unsigned int *offs;
2135 int count, i, j = 0;
2136 struct stripe_head *head_sh = sh;
2137 int last_stripe;
2138 int synflags;
2139 unsigned long txflags;
2140
2141 pr_debug("%s: stripe %llu\n", __func__, (unsigned long long)sh->sector);
2142
2143 for (i = 0; i < sh->disks; i++) {
2144 if (sh->pd_idx == i || sh->qd_idx == i)
2145 continue;
2146 if (!test_bit(R5_Discard, &sh->dev[i].flags))
2147 break;
2148 }
2149 if (i >= sh->disks) {
2150 atomic_inc(&sh->count);
2151 set_bit(R5_Discard, &sh->dev[sh->pd_idx].flags);
2152 set_bit(R5_Discard, &sh->dev[sh->qd_idx].flags);
2153 ops_complete_reconstruct(sh);
2154 return;
2155 }
2156
2157 again:
2158 blocks = to_addr_page(percpu, j);
2159 offs = to_addr_offs(sh, percpu);
2160
2161 if (sh->reconstruct_state == reconstruct_state_prexor_drain_run) {
2162 synflags = SYNDROME_SRC_WRITTEN;
2163 txflags = ASYNC_TX_ACK | ASYNC_TX_PQ_XOR_DST;
2164 } else {
2165 synflags = SYNDROME_SRC_ALL;
2166 txflags = ASYNC_TX_ACK;
2167 }
2168
2169 count = set_syndrome_sources(blocks, offs, sh, synflags);
2170 last_stripe = !head_sh->batch_head ||
2171 list_first_entry(&sh->batch_list,
2172 struct stripe_head, batch_list) == head_sh;
2173
2174 if (last_stripe) {
2175 atomic_inc(&head_sh->count);
2176 init_async_submit(&submit, txflags, tx, ops_complete_reconstruct,
2177 head_sh, to_addr_conv(sh, percpu, j));
2178 } else
2179 init_async_submit(&submit, 0, tx, NULL, NULL,
2180 to_addr_conv(sh, percpu, j));
2181 tx = async_gen_syndrome(blocks, offs, count+2,
2182 RAID5_STRIPE_SIZE(sh->raid_conf), &submit);
2183 if (!last_stripe) {
2184 j++;
2185 sh = list_first_entry(&sh->batch_list, struct stripe_head,
2186 batch_list);
2187 goto again;
2188 }
2189 }
2190
ops_complete_check(void * stripe_head_ref)2191 static void ops_complete_check(void *stripe_head_ref)
2192 {
2193 struct stripe_head *sh = stripe_head_ref;
2194
2195 pr_debug("%s: stripe %llu\n", __func__,
2196 (unsigned long long)sh->sector);
2197
2198 sh->check_state = check_state_check_result;
2199 set_bit(STRIPE_HANDLE, &sh->state);
2200 raid5_release_stripe(sh);
2201 }
2202
ops_run_check_p(struct stripe_head * sh,struct raid5_percpu * percpu)2203 static void ops_run_check_p(struct stripe_head *sh, struct raid5_percpu *percpu)
2204 {
2205 int disks = sh->disks;
2206 int pd_idx = sh->pd_idx;
2207 int qd_idx = sh->qd_idx;
2208 struct page *xor_dest;
2209 unsigned int off_dest;
2210 struct page **xor_srcs = to_addr_page(percpu, 0);
2211 unsigned int *off_srcs = to_addr_offs(sh, percpu);
2212 struct dma_async_tx_descriptor *tx;
2213 struct async_submit_ctl submit;
2214 int count;
2215 int i;
2216
2217 pr_debug("%s: stripe %llu\n", __func__,
2218 (unsigned long long)sh->sector);
2219
2220 BUG_ON(sh->batch_head);
2221 count = 0;
2222 xor_dest = sh->dev[pd_idx].page;
2223 off_dest = sh->dev[pd_idx].offset;
2224 off_srcs[count] = off_dest;
2225 xor_srcs[count++] = xor_dest;
2226 for (i = disks; i--; ) {
2227 if (i == pd_idx || i == qd_idx)
2228 continue;
2229 off_srcs[count] = sh->dev[i].offset;
2230 xor_srcs[count++] = sh->dev[i].page;
2231 }
2232
2233 init_async_submit(&submit, 0, NULL, NULL, NULL,
2234 to_addr_conv(sh, percpu, 0));
2235 tx = async_xor_val_offs(xor_dest, off_dest, xor_srcs, off_srcs, count,
2236 RAID5_STRIPE_SIZE(sh->raid_conf),
2237 &sh->ops.zero_sum_result, &submit);
2238
2239 atomic_inc(&sh->count);
2240 init_async_submit(&submit, ASYNC_TX_ACK, tx, ops_complete_check, sh, NULL);
2241 tx = async_trigger_callback(&submit);
2242 }
2243
ops_run_check_pq(struct stripe_head * sh,struct raid5_percpu * percpu,int checkp)2244 static void ops_run_check_pq(struct stripe_head *sh, struct raid5_percpu *percpu, int checkp)
2245 {
2246 struct page **srcs = to_addr_page(percpu, 0);
2247 unsigned int *offs = to_addr_offs(sh, percpu);
2248 struct async_submit_ctl submit;
2249 int count;
2250
2251 pr_debug("%s: stripe %llu checkp: %d\n", __func__,
2252 (unsigned long long)sh->sector, checkp);
2253
2254 BUG_ON(sh->batch_head);
2255 count = set_syndrome_sources(srcs, offs, sh, SYNDROME_SRC_ALL);
2256 if (!checkp)
2257 srcs[count] = NULL;
2258
2259 atomic_inc(&sh->count);
2260 init_async_submit(&submit, ASYNC_TX_ACK, NULL, ops_complete_check,
2261 sh, to_addr_conv(sh, percpu, 0));
2262 async_syndrome_val(srcs, offs, count+2,
2263 RAID5_STRIPE_SIZE(sh->raid_conf),
2264 &sh->ops.zero_sum_result, percpu->spare_page, 0, &submit);
2265 }
2266
raid_run_ops(struct stripe_head * sh,unsigned long ops_request)2267 static void raid_run_ops(struct stripe_head *sh, unsigned long ops_request)
2268 {
2269 int overlap_clear = 0, i, disks = sh->disks;
2270 struct dma_async_tx_descriptor *tx = NULL;
2271 struct r5conf *conf = sh->raid_conf;
2272 int level = conf->level;
2273 struct raid5_percpu *percpu;
2274
2275 local_lock(&conf->percpu->lock);
2276 percpu = this_cpu_ptr(conf->percpu);
2277 if (test_bit(STRIPE_OP_BIOFILL, &ops_request)) {
2278 ops_run_biofill(sh);
2279 overlap_clear++;
2280 }
2281
2282 if (test_bit(STRIPE_OP_COMPUTE_BLK, &ops_request)) {
2283 if (level < 6)
2284 tx = ops_run_compute5(sh, percpu);
2285 else {
2286 if (sh->ops.target2 < 0 || sh->ops.target < 0)
2287 tx = ops_run_compute6_1(sh, percpu);
2288 else
2289 tx = ops_run_compute6_2(sh, percpu);
2290 }
2291 /* terminate the chain if reconstruct is not set to be run */
2292 if (tx && !test_bit(STRIPE_OP_RECONSTRUCT, &ops_request))
2293 async_tx_ack(tx);
2294 }
2295
2296 if (test_bit(STRIPE_OP_PREXOR, &ops_request)) {
2297 if (level < 6)
2298 tx = ops_run_prexor5(sh, percpu, tx);
2299 else
2300 tx = ops_run_prexor6(sh, percpu, tx);
2301 }
2302
2303 if (test_bit(STRIPE_OP_PARTIAL_PARITY, &ops_request))
2304 tx = ops_run_partial_parity(sh, percpu, tx);
2305
2306 if (test_bit(STRIPE_OP_BIODRAIN, &ops_request)) {
2307 tx = ops_run_biodrain(sh, tx);
2308 overlap_clear++;
2309 }
2310
2311 if (test_bit(STRIPE_OP_RECONSTRUCT, &ops_request)) {
2312 if (level < 6)
2313 ops_run_reconstruct5(sh, percpu, tx);
2314 else
2315 ops_run_reconstruct6(sh, percpu, tx);
2316 }
2317
2318 if (test_bit(STRIPE_OP_CHECK, &ops_request)) {
2319 if (sh->check_state == check_state_run)
2320 ops_run_check_p(sh, percpu);
2321 else if (sh->check_state == check_state_run_q)
2322 ops_run_check_pq(sh, percpu, 0);
2323 else if (sh->check_state == check_state_run_pq)
2324 ops_run_check_pq(sh, percpu, 1);
2325 else
2326 BUG();
2327 }
2328
2329 if (overlap_clear && !sh->batch_head) {
2330 for (i = disks; i--; ) {
2331 struct r5dev *dev = &sh->dev[i];
2332 if (test_and_clear_bit(R5_Overlap, &dev->flags))
2333 wake_up_bit(&dev->flags, R5_Overlap);
2334 }
2335 }
2336 local_unlock(&conf->percpu->lock);
2337 }
2338
free_stripe(struct kmem_cache * sc,struct stripe_head * sh)2339 static void free_stripe(struct kmem_cache *sc, struct stripe_head *sh)
2340 {
2341 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
2342 kfree(sh->pages);
2343 #endif
2344 if (sh->ppl_page)
2345 __free_page(sh->ppl_page);
2346 kmem_cache_free(sc, sh);
2347 }
2348
alloc_stripe(struct kmem_cache * sc,gfp_t gfp,int disks,struct r5conf * conf)2349 static struct stripe_head *alloc_stripe(struct kmem_cache *sc, gfp_t gfp,
2350 int disks, struct r5conf *conf)
2351 {
2352 struct stripe_head *sh;
2353
2354 sh = kmem_cache_zalloc(sc, gfp);
2355 if (sh) {
2356 spin_lock_init(&sh->stripe_lock);
2357 spin_lock_init(&sh->batch_lock);
2358 INIT_LIST_HEAD(&sh->batch_list);
2359 INIT_LIST_HEAD(&sh->lru);
2360 INIT_LIST_HEAD(&sh->r5c);
2361 INIT_LIST_HEAD(&sh->log_list);
2362 atomic_set(&sh->count, 1);
2363 sh->raid_conf = conf;
2364 sh->log_start = MaxSector;
2365
2366 if (raid5_has_ppl(conf)) {
2367 sh->ppl_page = alloc_page(gfp);
2368 if (!sh->ppl_page) {
2369 free_stripe(sc, sh);
2370 return NULL;
2371 }
2372 }
2373 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
2374 if (init_stripe_shared_pages(sh, conf, disks)) {
2375 free_stripe(sc, sh);
2376 return NULL;
2377 }
2378 #endif
2379 }
2380 return sh;
2381 }
grow_one_stripe(struct r5conf * conf,gfp_t gfp)2382 static int grow_one_stripe(struct r5conf *conf, gfp_t gfp)
2383 {
2384 struct stripe_head *sh;
2385
2386 sh = alloc_stripe(conf->slab_cache, gfp, conf->pool_size, conf);
2387 if (!sh)
2388 return 0;
2389
2390 if (grow_buffers(sh, gfp)) {
2391 shrink_buffers(sh);
2392 free_stripe(conf->slab_cache, sh);
2393 return 0;
2394 }
2395 sh->hash_lock_index =
2396 conf->max_nr_stripes % NR_STRIPE_HASH_LOCKS;
2397 /* we just created an active stripe so... */
2398 atomic_inc(&conf->active_stripes);
2399
2400 raid5_release_stripe(sh);
2401 WRITE_ONCE(conf->max_nr_stripes, conf->max_nr_stripes + 1);
2402 return 1;
2403 }
2404
grow_stripes(struct r5conf * conf,int num)2405 static int grow_stripes(struct r5conf *conf, int num)
2406 {
2407 struct kmem_cache *sc;
2408 size_t namelen = sizeof(conf->cache_name[0]);
2409 int devs = max(conf->raid_disks, conf->previous_raid_disks);
2410
2411 if (mddev_is_dm(conf->mddev))
2412 snprintf(conf->cache_name[0], namelen,
2413 "raid%d-%p", conf->level, conf->mddev);
2414 else
2415 snprintf(conf->cache_name[0], namelen,
2416 "raid%d-%s", conf->level, mdname(conf->mddev));
2417 snprintf(conf->cache_name[1], namelen, "%.27s-alt", conf->cache_name[0]);
2418
2419 conf->active_name = 0;
2420 sc = kmem_cache_create(conf->cache_name[conf->active_name],
2421 struct_size_t(struct stripe_head, dev, devs),
2422 0, 0, NULL);
2423 if (!sc)
2424 return 1;
2425 conf->slab_cache = sc;
2426 conf->pool_size = devs;
2427 while (num--)
2428 if (!grow_one_stripe(conf, GFP_KERNEL))
2429 return 1;
2430
2431 return 0;
2432 }
2433
2434 /**
2435 * scribble_alloc - allocate percpu scribble buffer for required size
2436 * of the scribble region
2437 * @percpu: from for_each_present_cpu() of the caller
2438 * @num: total number of disks in the array
2439 * @cnt: scribble objs count for required size of the scribble region
2440 *
2441 * The scribble buffer size must be enough to contain:
2442 * 1/ a struct page pointer for each device in the array +2
2443 * 2/ room to convert each entry in (1) to its corresponding dma
2444 * (dma_map_page()) or page (page_address()) address.
2445 *
2446 * Note: the +2 is for the destination buffers of the ddf/raid6 case where we
2447 * calculate over all devices (not just the data blocks), using zeros in place
2448 * of the P and Q blocks.
2449 */
scribble_alloc(struct raid5_percpu * percpu,int num,int cnt)2450 static int scribble_alloc(struct raid5_percpu *percpu,
2451 int num, int cnt)
2452 {
2453 size_t obj_size =
2454 sizeof(struct page *) * (num + 2) +
2455 sizeof(addr_conv_t) * (num + 2) +
2456 sizeof(unsigned int) * (num + 2);
2457 void *scribble;
2458
2459 /*
2460 * If here is in raid array suspend context, it is in memalloc noio
2461 * context as well, there is no potential recursive memory reclaim
2462 * I/Os with the GFP_KERNEL flag.
2463 */
2464 scribble = kvmalloc_array(cnt, obj_size, GFP_KERNEL);
2465 if (!scribble)
2466 return -ENOMEM;
2467
2468 kvfree(percpu->scribble);
2469
2470 percpu->scribble = scribble;
2471 percpu->scribble_obj_size = obj_size;
2472 return 0;
2473 }
2474
resize_chunks(struct r5conf * conf,int new_disks,int new_sectors)2475 static int resize_chunks(struct r5conf *conf, int new_disks, int new_sectors)
2476 {
2477 unsigned long cpu;
2478 int err = 0;
2479
2480 /* Never shrink. */
2481 if (conf->scribble_disks >= new_disks &&
2482 conf->scribble_sectors >= new_sectors)
2483 return 0;
2484
2485 raid5_quiesce(conf->mddev, true);
2486 cpus_read_lock();
2487
2488 for_each_present_cpu(cpu) {
2489 struct raid5_percpu *percpu;
2490
2491 percpu = per_cpu_ptr(conf->percpu, cpu);
2492 err = scribble_alloc(percpu, new_disks,
2493 new_sectors / RAID5_STRIPE_SECTORS(conf));
2494 if (err)
2495 break;
2496 }
2497
2498 cpus_read_unlock();
2499 raid5_quiesce(conf->mddev, false);
2500
2501 if (!err) {
2502 conf->scribble_disks = new_disks;
2503 conf->scribble_sectors = new_sectors;
2504 }
2505 return err;
2506 }
2507
resize_stripes(struct r5conf * conf,int newsize)2508 static int resize_stripes(struct r5conf *conf, int newsize)
2509 {
2510 /* Make all the stripes able to hold 'newsize' devices.
2511 * New slots in each stripe get 'page' set to a new page.
2512 *
2513 * This happens in stages:
2514 * 1/ create a new kmem_cache and allocate the required number of
2515 * stripe_heads.
2516 * 2/ gather all the old stripe_heads and transfer the pages across
2517 * to the new stripe_heads. This will have the side effect of
2518 * freezing the array as once all stripe_heads have been collected,
2519 * no IO will be possible. Old stripe heads are freed once their
2520 * pages have been transferred over, and the old kmem_cache is
2521 * freed when all stripes are done.
2522 * 3/ reallocate conf->disks to be suitable bigger. If this fails,
2523 * we simple return a failure status - no need to clean anything up.
2524 * 4/ allocate new pages for the new slots in the new stripe_heads.
2525 * If this fails, we don't bother trying the shrink the
2526 * stripe_heads down again, we just leave them as they are.
2527 * As each stripe_head is processed the new one is released into
2528 * active service.
2529 *
2530 * Once step2 is started, we cannot afford to wait for a write,
2531 * so we use GFP_NOIO allocations.
2532 */
2533 struct stripe_head *osh, *nsh;
2534 LIST_HEAD(newstripes);
2535 struct disk_info *ndisks;
2536 int err = 0;
2537 struct kmem_cache *sc;
2538 int i;
2539 int hash, cnt;
2540
2541 md_allow_write(conf->mddev);
2542
2543 /* Step 1 */
2544 sc = kmem_cache_create(conf->cache_name[1-conf->active_name],
2545 struct_size_t(struct stripe_head, dev, newsize),
2546 0, 0, NULL);
2547 if (!sc)
2548 return -ENOMEM;
2549
2550 /* Need to ensure auto-resizing doesn't interfere */
2551 mutex_lock(&conf->cache_size_mutex);
2552
2553 for (i = conf->max_nr_stripes; i; i--) {
2554 nsh = alloc_stripe(sc, GFP_KERNEL, newsize, conf);
2555 if (!nsh)
2556 break;
2557
2558 list_add(&nsh->lru, &newstripes);
2559 }
2560 if (i) {
2561 /* didn't get enough, give up */
2562 while (!list_empty(&newstripes)) {
2563 nsh = list_entry(newstripes.next, struct stripe_head, lru);
2564 list_del(&nsh->lru);
2565 free_stripe(sc, nsh);
2566 }
2567 kmem_cache_destroy(sc);
2568 mutex_unlock(&conf->cache_size_mutex);
2569 return -ENOMEM;
2570 }
2571 /* Step 2 - Must use GFP_NOIO now.
2572 * OK, we have enough stripes, start collecting inactive
2573 * stripes and copying them over
2574 */
2575 hash = 0;
2576 cnt = 0;
2577 list_for_each_entry(nsh, &newstripes, lru) {
2578 lock_device_hash_lock(conf, hash);
2579 wait_event_cmd(conf->wait_for_stripe,
2580 !list_empty(conf->inactive_list + hash),
2581 unlock_device_hash_lock(conf, hash),
2582 lock_device_hash_lock(conf, hash));
2583 osh = get_free_stripe(conf, hash);
2584 unlock_device_hash_lock(conf, hash);
2585
2586 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
2587 for (i = 0; i < osh->nr_pages; i++) {
2588 nsh->pages[i] = osh->pages[i];
2589 osh->pages[i] = NULL;
2590 }
2591 #endif
2592 for(i=0; i<conf->pool_size; i++) {
2593 nsh->dev[i].page = osh->dev[i].page;
2594 nsh->dev[i].orig_page = osh->dev[i].page;
2595 nsh->dev[i].offset = osh->dev[i].offset;
2596 }
2597 nsh->hash_lock_index = hash;
2598 free_stripe(conf->slab_cache, osh);
2599 cnt++;
2600 if (cnt >= conf->max_nr_stripes / NR_STRIPE_HASH_LOCKS +
2601 !!((conf->max_nr_stripes % NR_STRIPE_HASH_LOCKS) > hash)) {
2602 hash++;
2603 cnt = 0;
2604 }
2605 }
2606 kmem_cache_destroy(conf->slab_cache);
2607
2608 /* Step 3.
2609 * At this point, we are holding all the stripes so the array
2610 * is completely stalled, so now is a good time to resize
2611 * conf->disks and the scribble region
2612 */
2613 ndisks = kzalloc_objs(struct disk_info, newsize, GFP_NOIO);
2614 if (ndisks) {
2615 for (i = 0; i < conf->pool_size; i++)
2616 ndisks[i] = conf->disks[i];
2617
2618 for (i = conf->pool_size; i < newsize; i++) {
2619 ndisks[i].extra_page = alloc_page(GFP_NOIO);
2620 if (!ndisks[i].extra_page)
2621 err = -ENOMEM;
2622 }
2623
2624 if (err) {
2625 for (i = conf->pool_size; i < newsize; i++)
2626 if (ndisks[i].extra_page)
2627 put_page(ndisks[i].extra_page);
2628 kfree(ndisks);
2629 } else {
2630 kfree(conf->disks);
2631 conf->disks = ndisks;
2632 }
2633 } else
2634 err = -ENOMEM;
2635
2636 conf->slab_cache = sc;
2637 conf->active_name = 1-conf->active_name;
2638
2639 /* Step 4, return new stripes to service */
2640 while(!list_empty(&newstripes)) {
2641 nsh = list_entry(newstripes.next, struct stripe_head, lru);
2642 list_del_init(&nsh->lru);
2643
2644 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
2645 for (i = 0; i < nsh->nr_pages; i++) {
2646 if (nsh->pages[i])
2647 continue;
2648 nsh->pages[i] = alloc_page(GFP_NOIO);
2649 if (!nsh->pages[i])
2650 err = -ENOMEM;
2651 }
2652
2653 for (i = conf->raid_disks; i < newsize; i++) {
2654 if (nsh->dev[i].page)
2655 continue;
2656 nsh->dev[i].page = raid5_get_dev_page(nsh, i);
2657 nsh->dev[i].orig_page = nsh->dev[i].page;
2658 nsh->dev[i].offset = raid5_get_page_offset(nsh, i);
2659 }
2660 #else
2661 for (i=conf->raid_disks; i < newsize; i++)
2662 if (nsh->dev[i].page == NULL) {
2663 struct page *p = alloc_page(GFP_NOIO);
2664 nsh->dev[i].page = p;
2665 nsh->dev[i].orig_page = p;
2666 nsh->dev[i].offset = 0;
2667 if (!p)
2668 err = -ENOMEM;
2669 }
2670 #endif
2671 raid5_release_stripe(nsh);
2672 }
2673 /* critical section pass, GFP_NOIO no longer needed */
2674
2675 if (!err)
2676 conf->pool_size = newsize;
2677 mutex_unlock(&conf->cache_size_mutex);
2678
2679 return err;
2680 }
2681
drop_one_stripe(struct r5conf * conf)2682 static int drop_one_stripe(struct r5conf *conf)
2683 {
2684 struct stripe_head *sh;
2685 int hash = (conf->max_nr_stripes - 1) & STRIPE_HASH_LOCKS_MASK;
2686
2687 spin_lock_irq(conf->hash_locks + hash);
2688 sh = get_free_stripe(conf, hash);
2689 spin_unlock_irq(conf->hash_locks + hash);
2690 if (!sh)
2691 return 0;
2692 BUG_ON(atomic_read(&sh->count));
2693 shrink_buffers(sh);
2694 free_stripe(conf->slab_cache, sh);
2695 atomic_dec(&conf->active_stripes);
2696 WRITE_ONCE(conf->max_nr_stripes, conf->max_nr_stripes - 1);
2697 return 1;
2698 }
2699
shrink_stripes(struct r5conf * conf)2700 static void shrink_stripes(struct r5conf *conf)
2701 {
2702 while (conf->max_nr_stripes &&
2703 drop_one_stripe(conf))
2704 ;
2705
2706 kmem_cache_destroy(conf->slab_cache);
2707 conf->slab_cache = NULL;
2708 }
2709
raid5_end_read_request(struct bio * bi)2710 static void raid5_end_read_request(struct bio * bi)
2711 {
2712 struct stripe_head *sh = bi->bi_private;
2713 struct r5conf *conf = sh->raid_conf;
2714 int disks = sh->disks, i;
2715 struct md_rdev *rdev = NULL;
2716 sector_t s;
2717
2718 for (i=0 ; i<disks; i++)
2719 if (bi == &sh->dev[i].req)
2720 break;
2721
2722 pr_debug("end_read_request %llu/%d, count: %d, error %d.\n",
2723 (unsigned long long)sh->sector, i, atomic_read(&sh->count),
2724 bi->bi_status);
2725 if (i == disks) {
2726 BUG();
2727 return;
2728 }
2729 if (test_bit(R5_ReadRepl, &sh->dev[i].flags))
2730 /* If replacement finished while this request was outstanding,
2731 * 'replacement' might be NULL already.
2732 * In that case it moved down to 'rdev'.
2733 * rdev is not removed until all requests are finished.
2734 */
2735 rdev = conf->disks[i].replacement;
2736 if (!rdev)
2737 rdev = conf->disks[i].rdev;
2738
2739 if (use_new_offset(conf, sh))
2740 s = sh->sector + rdev->new_data_offset;
2741 else
2742 s = sh->sector + rdev->data_offset;
2743 if (!bi->bi_status) {
2744 set_bit(R5_UPTODATE, &sh->dev[i].flags);
2745 if (test_bit(R5_ReadError, &sh->dev[i].flags)) {
2746 /* Note that this cannot happen on a
2747 * replacement device. We just fail those on
2748 * any error
2749 */
2750 pr_info_ratelimited(
2751 "md/raid:%s: read error corrected (%lu sectors at %llu on %pg)\n",
2752 mdname(conf->mddev), RAID5_STRIPE_SECTORS(conf),
2753 (unsigned long long)s,
2754 rdev->bdev);
2755 atomic_add(RAID5_STRIPE_SECTORS(conf), &rdev->corrected_errors);
2756 clear_bit(R5_ReadError, &sh->dev[i].flags);
2757 clear_bit(R5_ReWrite, &sh->dev[i].flags);
2758 } else if (test_bit(R5_ReadNoMerge, &sh->dev[i].flags))
2759 clear_bit(R5_ReadNoMerge, &sh->dev[i].flags);
2760
2761 if (test_bit(R5_InJournal, &sh->dev[i].flags))
2762 /*
2763 * end read for a page in journal, this
2764 * must be preparing for prexor in rmw
2765 */
2766 set_bit(R5_OrigPageUPTDODATE, &sh->dev[i].flags);
2767
2768 if (atomic_read(&rdev->read_errors))
2769 atomic_set(&rdev->read_errors, 0);
2770 } else {
2771 int retry = 0;
2772 int set_bad = 0;
2773
2774 clear_bit(R5_UPTODATE, &sh->dev[i].flags);
2775 if (!(bi->bi_status == BLK_STS_PROTECTION))
2776 atomic_inc(&rdev->read_errors);
2777 if (test_bit(R5_ReadRepl, &sh->dev[i].flags))
2778 pr_warn_ratelimited(
2779 "md/raid:%s: read error on replacement device (sector %llu on %pg).\n",
2780 mdname(conf->mddev),
2781 (unsigned long long)s,
2782 rdev->bdev);
2783 else if (conf->mddev->degraded >= conf->max_degraded) {
2784 set_bad = 1;
2785 pr_warn_ratelimited(
2786 "md/raid:%s: read error not correctable (sector %llu on %pg).\n",
2787 mdname(conf->mddev),
2788 (unsigned long long)s,
2789 rdev->bdev);
2790 } else if (test_bit(R5_ReWrite, &sh->dev[i].flags)) {
2791 /* Oh, no!!! */
2792 set_bad = 1;
2793 pr_warn_ratelimited(
2794 "md/raid:%s: read error NOT corrected!! (sector %llu on %pg).\n",
2795 mdname(conf->mddev),
2796 (unsigned long long)s,
2797 rdev->bdev);
2798 } else if (atomic_read(&rdev->read_errors)
2799 > conf->max_nr_stripes) {
2800 if (!test_bit(Faulty, &rdev->flags)) {
2801 pr_warn("md/raid:%s: %d read_errors > %d stripes\n",
2802 mdname(conf->mddev),
2803 atomic_read(&rdev->read_errors),
2804 conf->max_nr_stripes);
2805 pr_warn("md/raid:%s: Too many read errors, failing device %pg.\n",
2806 mdname(conf->mddev), rdev->bdev);
2807 }
2808 } else
2809 retry = 1;
2810 if (set_bad && test_bit(In_sync, &rdev->flags)
2811 && !test_bit(R5_ReadNoMerge, &sh->dev[i].flags))
2812 retry = 1;
2813 if (retry)
2814 if (sh->qd_idx >= 0 && sh->pd_idx == i)
2815 set_bit(R5_ReadError, &sh->dev[i].flags);
2816 else if (test_bit(R5_ReadNoMerge, &sh->dev[i].flags)) {
2817 set_bit(R5_ReadError, &sh->dev[i].flags);
2818 clear_bit(R5_ReadNoMerge, &sh->dev[i].flags);
2819 } else
2820 set_bit(R5_ReadNoMerge, &sh->dev[i].flags);
2821 else {
2822 clear_bit(R5_ReadError, &sh->dev[i].flags);
2823 clear_bit(R5_ReWrite, &sh->dev[i].flags);
2824 if (!(set_bad && test_bit(In_sync, &rdev->flags)))
2825 rdev_set_badblocks(rdev, sh->sector,
2826 RAID5_STRIPE_SECTORS(conf), 0);
2827 }
2828 }
2829 rdev_dec_pending(rdev, conf->mddev);
2830 bio_uninit(bi);
2831 clear_bit(R5_LOCKED, &sh->dev[i].flags);
2832 set_bit(STRIPE_HANDLE, &sh->state);
2833 raid5_release_stripe(sh);
2834 }
2835
raid5_end_write_request(struct bio * bi)2836 static void raid5_end_write_request(struct bio *bi)
2837 {
2838 struct stripe_head *sh = bi->bi_private;
2839 struct r5conf *conf = sh->raid_conf;
2840 int disks = sh->disks, i;
2841 struct md_rdev *rdev;
2842 int replacement = 0;
2843
2844 for (i = 0 ; i < disks; i++) {
2845 if (bi == &sh->dev[i].req) {
2846 rdev = conf->disks[i].rdev;
2847 break;
2848 }
2849 if (bi == &sh->dev[i].rreq) {
2850 rdev = conf->disks[i].replacement;
2851 if (rdev)
2852 replacement = 1;
2853 else
2854 /* rdev was removed and 'replacement'
2855 * replaced it. rdev is not removed
2856 * until all requests are finished.
2857 */
2858 rdev = conf->disks[i].rdev;
2859 break;
2860 }
2861 }
2862 pr_debug("end_write_request %llu/%d, count %d, error: %d.\n",
2863 (unsigned long long)sh->sector, i, atomic_read(&sh->count),
2864 bi->bi_status);
2865 if (i == disks) {
2866 BUG();
2867 return;
2868 }
2869
2870 if (replacement) {
2871 if (bi->bi_status)
2872 md_error(conf->mddev, rdev);
2873 else if (rdev_has_badblock(rdev, sh->sector,
2874 RAID5_STRIPE_SECTORS(conf)))
2875 set_bit(R5_MadeGoodRepl, &sh->dev[i].flags);
2876 } else {
2877 if (bi->bi_status) {
2878 set_bit(WriteErrorSeen, &rdev->flags);
2879 set_bit(R5_WriteError, &sh->dev[i].flags);
2880 if (!test_and_set_bit(WantReplacement, &rdev->flags))
2881 set_bit(MD_RECOVERY_NEEDED,
2882 &rdev->mddev->recovery);
2883 } else if (rdev_has_badblock(rdev, sh->sector,
2884 RAID5_STRIPE_SECTORS(conf))) {
2885 set_bit(R5_MadeGood, &sh->dev[i].flags);
2886 if (test_bit(R5_ReadError, &sh->dev[i].flags))
2887 /* That was a successful write so make
2888 * sure it looks like we already did
2889 * a re-write.
2890 */
2891 set_bit(R5_ReWrite, &sh->dev[i].flags);
2892 }
2893 }
2894 rdev_dec_pending(rdev, conf->mddev);
2895
2896 if (sh->batch_head && bi->bi_status && !replacement)
2897 set_bit(STRIPE_BATCH_ERR, &sh->batch_head->state);
2898
2899 bio_uninit(bi);
2900 if (!test_and_clear_bit(R5_DOUBLE_LOCKED, &sh->dev[i].flags))
2901 clear_bit(R5_LOCKED, &sh->dev[i].flags);
2902 set_bit(STRIPE_HANDLE, &sh->state);
2903
2904 if (sh->batch_head && sh != sh->batch_head)
2905 raid5_release_stripe(sh->batch_head);
2906 raid5_release_stripe(sh);
2907 }
2908
raid5_error(struct mddev * mddev,struct md_rdev * rdev)2909 static void raid5_error(struct mddev *mddev, struct md_rdev *rdev)
2910 {
2911 struct r5conf *conf = mddev->private;
2912 unsigned long flags;
2913 pr_debug("raid456: error called\n");
2914
2915 pr_crit("md/raid:%s: Disk failure on %pg, disabling device.\n",
2916 mdname(mddev), rdev->bdev);
2917
2918 spin_lock_irqsave(&conf->device_lock, flags);
2919 set_bit(Faulty, &rdev->flags);
2920 clear_bit(In_sync, &rdev->flags);
2921 mddev->degraded = raid5_calc_degraded(conf);
2922
2923 if (has_failed(conf)) {
2924 set_bit(MD_BROKEN, &conf->mddev->flags);
2925
2926 pr_crit("md/raid:%s: Cannot continue operation (%d/%d failed).\n",
2927 mdname(mddev), mddev->degraded, conf->raid_disks);
2928 } else {
2929 pr_crit("md/raid:%s: Operation continuing on %d devices.\n",
2930 mdname(mddev), conf->raid_disks - mddev->degraded);
2931 }
2932
2933 spin_unlock_irqrestore(&conf->device_lock, flags);
2934 set_bit(MD_RECOVERY_INTR, &mddev->recovery);
2935
2936 set_bit(Blocked, &rdev->flags);
2937 set_mask_bits(&mddev->sb_flags, 0,
2938 BIT(MD_SB_CHANGE_DEVS) | BIT(MD_SB_CHANGE_PENDING));
2939 r5c_update_on_rdev_error(mddev, rdev);
2940 }
2941
2942 /*
2943 * Input: a 'big' sector number,
2944 * Output: index of the data and parity disk, and the sector # in them.
2945 */
raid5_compute_sector(struct r5conf * conf,sector_t r_sector,int previous,int * dd_idx,struct stripe_head * sh)2946 sector_t raid5_compute_sector(struct r5conf *conf, sector_t r_sector,
2947 int previous, int *dd_idx,
2948 struct stripe_head *sh)
2949 {
2950 sector_t stripe, stripe2;
2951 sector_t chunk_number;
2952 unsigned int chunk_offset;
2953 int pd_idx, qd_idx;
2954 int ddf_layout = 0;
2955 sector_t new_sector;
2956 int algorithm = previous ? conf->prev_algo
2957 : conf->algorithm;
2958 int sectors_per_chunk = previous ? conf->prev_chunk_sectors
2959 : conf->chunk_sectors;
2960 int raid_disks = previous ? conf->previous_raid_disks
2961 : conf->raid_disks;
2962 int data_disks = raid_disks - conf->max_degraded;
2963
2964 /* First compute the information on this sector */
2965
2966 /*
2967 * Compute the chunk number and the sector offset inside the chunk
2968 */
2969 chunk_offset = sector_div(r_sector, sectors_per_chunk);
2970 chunk_number = r_sector;
2971
2972 /*
2973 * Compute the stripe number
2974 */
2975 stripe = chunk_number;
2976 *dd_idx = sector_div(stripe, data_disks);
2977 stripe2 = stripe;
2978 /*
2979 * Select the parity disk based on the user selected algorithm.
2980 */
2981 pd_idx = qd_idx = -1;
2982 switch(conf->level) {
2983 case 4:
2984 pd_idx = data_disks;
2985 break;
2986 case 5:
2987 switch (algorithm) {
2988 case ALGORITHM_LEFT_ASYMMETRIC:
2989 pd_idx = data_disks - sector_div(stripe2, raid_disks);
2990 if (*dd_idx >= pd_idx)
2991 (*dd_idx)++;
2992 break;
2993 case ALGORITHM_RIGHT_ASYMMETRIC:
2994 pd_idx = sector_div(stripe2, raid_disks);
2995 if (*dd_idx >= pd_idx)
2996 (*dd_idx)++;
2997 break;
2998 case ALGORITHM_LEFT_SYMMETRIC:
2999 pd_idx = data_disks - sector_div(stripe2, raid_disks);
3000 *dd_idx = (pd_idx + 1 + *dd_idx) % raid_disks;
3001 break;
3002 case ALGORITHM_RIGHT_SYMMETRIC:
3003 pd_idx = sector_div(stripe2, raid_disks);
3004 *dd_idx = (pd_idx + 1 + *dd_idx) % raid_disks;
3005 break;
3006 case ALGORITHM_PARITY_0:
3007 pd_idx = 0;
3008 (*dd_idx)++;
3009 break;
3010 case ALGORITHM_PARITY_N:
3011 pd_idx = data_disks;
3012 break;
3013 default:
3014 BUG();
3015 }
3016 break;
3017 case 6:
3018
3019 switch (algorithm) {
3020 case ALGORITHM_LEFT_ASYMMETRIC:
3021 pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
3022 qd_idx = pd_idx + 1;
3023 if (pd_idx == raid_disks-1) {
3024 (*dd_idx)++; /* Q D D D P */
3025 qd_idx = 0;
3026 } else if (*dd_idx >= pd_idx)
3027 (*dd_idx) += 2; /* D D P Q D */
3028 break;
3029 case ALGORITHM_RIGHT_ASYMMETRIC:
3030 pd_idx = sector_div(stripe2, raid_disks);
3031 qd_idx = pd_idx + 1;
3032 if (pd_idx == raid_disks-1) {
3033 (*dd_idx)++; /* Q D D D P */
3034 qd_idx = 0;
3035 } else if (*dd_idx >= pd_idx)
3036 (*dd_idx) += 2; /* D D P Q D */
3037 break;
3038 case ALGORITHM_LEFT_SYMMETRIC:
3039 pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
3040 qd_idx = (pd_idx + 1) % raid_disks;
3041 *dd_idx = (pd_idx + 2 + *dd_idx) % raid_disks;
3042 break;
3043 case ALGORITHM_RIGHT_SYMMETRIC:
3044 pd_idx = sector_div(stripe2, raid_disks);
3045 qd_idx = (pd_idx + 1) % raid_disks;
3046 *dd_idx = (pd_idx + 2 + *dd_idx) % raid_disks;
3047 break;
3048
3049 case ALGORITHM_PARITY_0:
3050 pd_idx = 0;
3051 qd_idx = 1;
3052 (*dd_idx) += 2;
3053 break;
3054 case ALGORITHM_PARITY_N:
3055 pd_idx = data_disks;
3056 qd_idx = data_disks + 1;
3057 break;
3058
3059 case ALGORITHM_ROTATING_ZERO_RESTART:
3060 /* Exactly the same as RIGHT_ASYMMETRIC, but or
3061 * of blocks for computing Q is different.
3062 */
3063 pd_idx = sector_div(stripe2, raid_disks);
3064 qd_idx = pd_idx + 1;
3065 if (pd_idx == raid_disks-1) {
3066 (*dd_idx)++; /* Q D D D P */
3067 qd_idx = 0;
3068 } else if (*dd_idx >= pd_idx)
3069 (*dd_idx) += 2; /* D D P Q D */
3070 ddf_layout = 1;
3071 break;
3072
3073 case ALGORITHM_ROTATING_N_RESTART:
3074 /* Same a left_asymmetric, by first stripe is
3075 * D D D P Q rather than
3076 * Q D D D P
3077 */
3078 stripe2 += 1;
3079 pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
3080 qd_idx = pd_idx + 1;
3081 if (pd_idx == raid_disks-1) {
3082 (*dd_idx)++; /* Q D D D P */
3083 qd_idx = 0;
3084 } else if (*dd_idx >= pd_idx)
3085 (*dd_idx) += 2; /* D D P Q D */
3086 ddf_layout = 1;
3087 break;
3088
3089 case ALGORITHM_ROTATING_N_CONTINUE:
3090 /* Same as left_symmetric but Q is before P */
3091 pd_idx = raid_disks - 1 - sector_div(stripe2, raid_disks);
3092 qd_idx = (pd_idx + raid_disks - 1) % raid_disks;
3093 *dd_idx = (pd_idx + 1 + *dd_idx) % raid_disks;
3094 ddf_layout = 1;
3095 break;
3096
3097 case ALGORITHM_LEFT_ASYMMETRIC_6:
3098 /* RAID5 left_asymmetric, with Q on last device */
3099 pd_idx = data_disks - sector_div(stripe2, raid_disks-1);
3100 if (*dd_idx >= pd_idx)
3101 (*dd_idx)++;
3102 qd_idx = raid_disks - 1;
3103 break;
3104
3105 case ALGORITHM_RIGHT_ASYMMETRIC_6:
3106 pd_idx = sector_div(stripe2, raid_disks-1);
3107 if (*dd_idx >= pd_idx)
3108 (*dd_idx)++;
3109 qd_idx = raid_disks - 1;
3110 break;
3111
3112 case ALGORITHM_LEFT_SYMMETRIC_6:
3113 pd_idx = data_disks - sector_div(stripe2, raid_disks-1);
3114 *dd_idx = (pd_idx + 1 + *dd_idx) % (raid_disks-1);
3115 qd_idx = raid_disks - 1;
3116 break;
3117
3118 case ALGORITHM_RIGHT_SYMMETRIC_6:
3119 pd_idx = sector_div(stripe2, raid_disks-1);
3120 *dd_idx = (pd_idx + 1 + *dd_idx) % (raid_disks-1);
3121 qd_idx = raid_disks - 1;
3122 break;
3123
3124 case ALGORITHM_PARITY_0_6:
3125 pd_idx = 0;
3126 (*dd_idx)++;
3127 qd_idx = raid_disks - 1;
3128 break;
3129
3130 default:
3131 BUG();
3132 }
3133 break;
3134 }
3135
3136 if (sh) {
3137 sh->pd_idx = pd_idx;
3138 sh->qd_idx = qd_idx;
3139 sh->ddf_layout = ddf_layout;
3140 }
3141 /*
3142 * Finally, compute the new sector number
3143 */
3144 new_sector = (sector_t)stripe * sectors_per_chunk + chunk_offset;
3145 return new_sector;
3146 }
3147
raid5_compute_blocknr(struct stripe_head * sh,int i,int previous)3148 sector_t raid5_compute_blocknr(struct stripe_head *sh, int i, int previous)
3149 {
3150 struct r5conf *conf = sh->raid_conf;
3151 int raid_disks = sh->disks;
3152 int data_disks = raid_disks - conf->max_degraded;
3153 sector_t new_sector = sh->sector, check;
3154 int sectors_per_chunk = previous ? conf->prev_chunk_sectors
3155 : conf->chunk_sectors;
3156 int algorithm = previous ? conf->prev_algo
3157 : conf->algorithm;
3158 sector_t stripe;
3159 int chunk_offset;
3160 sector_t chunk_number;
3161 int dummy1, dd_idx = i;
3162 sector_t r_sector;
3163 struct stripe_head sh2;
3164
3165 chunk_offset = sector_div(new_sector, sectors_per_chunk);
3166 stripe = new_sector;
3167
3168 if (i == sh->pd_idx)
3169 return 0;
3170 switch(conf->level) {
3171 case 4: break;
3172 case 5:
3173 switch (algorithm) {
3174 case ALGORITHM_LEFT_ASYMMETRIC:
3175 case ALGORITHM_RIGHT_ASYMMETRIC:
3176 if (i > sh->pd_idx)
3177 i--;
3178 break;
3179 case ALGORITHM_LEFT_SYMMETRIC:
3180 case ALGORITHM_RIGHT_SYMMETRIC:
3181 if (i < sh->pd_idx)
3182 i += raid_disks;
3183 i -= (sh->pd_idx + 1);
3184 break;
3185 case ALGORITHM_PARITY_0:
3186 i -= 1;
3187 break;
3188 case ALGORITHM_PARITY_N:
3189 break;
3190 default:
3191 BUG();
3192 }
3193 break;
3194 case 6:
3195 if (i == sh->qd_idx)
3196 return 0; /* It is the Q disk */
3197 switch (algorithm) {
3198 case ALGORITHM_LEFT_ASYMMETRIC:
3199 case ALGORITHM_RIGHT_ASYMMETRIC:
3200 case ALGORITHM_ROTATING_ZERO_RESTART:
3201 case ALGORITHM_ROTATING_N_RESTART:
3202 if (sh->pd_idx == raid_disks-1)
3203 i--; /* Q D D D P */
3204 else if (i > sh->pd_idx)
3205 i -= 2; /* D D P Q D */
3206 break;
3207 case ALGORITHM_LEFT_SYMMETRIC:
3208 case ALGORITHM_RIGHT_SYMMETRIC:
3209 if (sh->pd_idx == raid_disks-1)
3210 i--; /* Q D D D P */
3211 else {
3212 /* D D P Q D */
3213 if (i < sh->pd_idx)
3214 i += raid_disks;
3215 i -= (sh->pd_idx + 2);
3216 }
3217 break;
3218 case ALGORITHM_PARITY_0:
3219 i -= 2;
3220 break;
3221 case ALGORITHM_PARITY_N:
3222 break;
3223 case ALGORITHM_ROTATING_N_CONTINUE:
3224 /* Like left_symmetric, but P is before Q */
3225 if (sh->pd_idx == 0)
3226 i--; /* P D D D Q */
3227 else {
3228 /* D D Q P D */
3229 if (i < sh->pd_idx)
3230 i += raid_disks;
3231 i -= (sh->pd_idx + 1);
3232 }
3233 break;
3234 case ALGORITHM_LEFT_ASYMMETRIC_6:
3235 case ALGORITHM_RIGHT_ASYMMETRIC_6:
3236 if (i > sh->pd_idx)
3237 i--;
3238 break;
3239 case ALGORITHM_LEFT_SYMMETRIC_6:
3240 case ALGORITHM_RIGHT_SYMMETRIC_6:
3241 if (i < sh->pd_idx)
3242 i += data_disks + 1;
3243 i -= (sh->pd_idx + 1);
3244 break;
3245 case ALGORITHM_PARITY_0_6:
3246 i -= 1;
3247 break;
3248 default:
3249 BUG();
3250 }
3251 break;
3252 }
3253
3254 chunk_number = stripe * data_disks + i;
3255 r_sector = chunk_number * sectors_per_chunk + chunk_offset;
3256
3257 check = raid5_compute_sector(conf, r_sector,
3258 previous, &dummy1, &sh2);
3259 if (check != sh->sector || dummy1 != dd_idx || sh2.pd_idx != sh->pd_idx
3260 || sh2.qd_idx != sh->qd_idx) {
3261 pr_warn("md/raid:%s: compute_blocknr: map not correct\n",
3262 mdname(conf->mddev));
3263 return 0;
3264 }
3265 return r_sector;
3266 }
3267
3268 /*
3269 * There are cases where we want handle_stripe_dirtying() and
3270 * schedule_reconstruction() to delay towrite to some dev of a stripe.
3271 *
3272 * This function checks whether we want to delay the towrite. Specifically,
3273 * we delay the towrite when:
3274 *
3275 * 1. degraded stripe has a non-overwrite to the missing dev, AND this
3276 * stripe has data in journal (for other devices).
3277 *
3278 * In this case, when reading data for the non-overwrite dev, it is
3279 * necessary to handle complex rmw of write back cache (prexor with
3280 * orig_page, and xor with page). To keep read path simple, we would
3281 * like to flush data in journal to RAID disks first, so complex rmw
3282 * is handled in the write patch (handle_stripe_dirtying).
3283 *
3284 * 2. when journal space is critical (R5C_LOG_CRITICAL=1)
3285 *
3286 * It is important to be able to flush all stripes in raid5-cache.
3287 * Therefore, we need reserve some space on the journal device for
3288 * these flushes. If flush operation includes pending writes to the
3289 * stripe, we need to reserve (conf->raid_disk + 1) pages per stripe
3290 * for the flush out. If we exclude these pending writes from flush
3291 * operation, we only need (conf->max_degraded + 1) pages per stripe.
3292 * Therefore, excluding pending writes in these cases enables more
3293 * efficient use of the journal device.
3294 *
3295 * Note: To make sure the stripe makes progress, we only delay
3296 * towrite for stripes with data already in journal (injournal > 0).
3297 * When LOG_CRITICAL, stripes with injournal == 0 will be sent to
3298 * no_space_stripes list.
3299 *
3300 * 3. during journal failure
3301 * In journal failure, we try to flush all cached data to raid disks
3302 * based on data in stripe cache. The array is read-only to upper
3303 * layers, so we would skip all pending writes.
3304 *
3305 */
delay_towrite(struct r5conf * conf,struct r5dev * dev,struct stripe_head_state * s)3306 static inline bool delay_towrite(struct r5conf *conf,
3307 struct r5dev *dev,
3308 struct stripe_head_state *s)
3309 {
3310 /* case 1 above */
3311 if (!test_bit(R5_OVERWRITE, &dev->flags) &&
3312 !test_bit(R5_Insync, &dev->flags) && s->injournal)
3313 return true;
3314 /* case 2 above */
3315 if (test_bit(R5C_LOG_CRITICAL, &conf->cache_state) &&
3316 s->injournal > 0)
3317 return true;
3318 /* case 3 above */
3319 if (s->log_failed && s->injournal)
3320 return true;
3321 return false;
3322 }
3323
3324 static void
schedule_reconstruction(struct stripe_head * sh,struct stripe_head_state * s,int rcw,int expand)3325 schedule_reconstruction(struct stripe_head *sh, struct stripe_head_state *s,
3326 int rcw, int expand)
3327 {
3328 int i, pd_idx = sh->pd_idx, qd_idx = sh->qd_idx, disks = sh->disks;
3329 struct r5conf *conf = sh->raid_conf;
3330 int level = conf->level;
3331
3332 if (rcw) {
3333 /*
3334 * In some cases, handle_stripe_dirtying initially decided to
3335 * run rmw and allocates extra page for prexor. However, rcw is
3336 * cheaper later on. We need to free the extra page now,
3337 * because we won't be able to do that in ops_complete_prexor().
3338 */
3339 r5c_release_extra_page(sh);
3340
3341 for (i = disks; i--; ) {
3342 struct r5dev *dev = &sh->dev[i];
3343
3344 if (dev->towrite && !delay_towrite(conf, dev, s)) {
3345 set_bit(R5_LOCKED, &dev->flags);
3346 set_bit(R5_Wantdrain, &dev->flags);
3347 if (!expand)
3348 clear_bit(R5_UPTODATE, &dev->flags);
3349 s->locked++;
3350 } else if (test_bit(R5_InJournal, &dev->flags)) {
3351 set_bit(R5_LOCKED, &dev->flags);
3352 s->locked++;
3353 }
3354 }
3355 /* if we are not expanding this is a proper write request, and
3356 * there will be bios with new data to be drained into the
3357 * stripe cache
3358 */
3359 if (!expand) {
3360 if (!s->locked)
3361 /* False alarm, nothing to do */
3362 return;
3363 sh->reconstruct_state = reconstruct_state_drain_run;
3364 set_bit(STRIPE_OP_BIODRAIN, &s->ops_request);
3365 } else
3366 sh->reconstruct_state = reconstruct_state_run;
3367
3368 set_bit(STRIPE_OP_RECONSTRUCT, &s->ops_request);
3369
3370 if (s->locked + conf->max_degraded == disks)
3371 if (!test_and_set_bit(STRIPE_FULL_WRITE, &sh->state))
3372 atomic_inc(&conf->pending_full_writes);
3373 } else {
3374 BUG_ON(!(test_bit(R5_UPTODATE, &sh->dev[pd_idx].flags) ||
3375 test_bit(R5_Wantcompute, &sh->dev[pd_idx].flags)));
3376 BUG_ON(level == 6 &&
3377 (!(test_bit(R5_UPTODATE, &sh->dev[qd_idx].flags) ||
3378 test_bit(R5_Wantcompute, &sh->dev[qd_idx].flags))));
3379
3380 for (i = disks; i--; ) {
3381 struct r5dev *dev = &sh->dev[i];
3382 if (i == pd_idx || i == qd_idx)
3383 continue;
3384
3385 if (dev->towrite &&
3386 (test_bit(R5_UPTODATE, &dev->flags) ||
3387 test_bit(R5_Wantcompute, &dev->flags))) {
3388 set_bit(R5_Wantdrain, &dev->flags);
3389 set_bit(R5_LOCKED, &dev->flags);
3390 clear_bit(R5_UPTODATE, &dev->flags);
3391 s->locked++;
3392 } else if (test_bit(R5_InJournal, &dev->flags)) {
3393 set_bit(R5_LOCKED, &dev->flags);
3394 s->locked++;
3395 }
3396 }
3397 if (!s->locked)
3398 /* False alarm - nothing to do */
3399 return;
3400 sh->reconstruct_state = reconstruct_state_prexor_drain_run;
3401 set_bit(STRIPE_OP_PREXOR, &s->ops_request);
3402 set_bit(STRIPE_OP_BIODRAIN, &s->ops_request);
3403 set_bit(STRIPE_OP_RECONSTRUCT, &s->ops_request);
3404 }
3405
3406 /* keep the parity disk(s) locked while asynchronous operations
3407 * are in flight
3408 */
3409 set_bit(R5_LOCKED, &sh->dev[pd_idx].flags);
3410 clear_bit(R5_UPTODATE, &sh->dev[pd_idx].flags);
3411 s->locked++;
3412
3413 if (level == 6) {
3414 int qd_idx = sh->qd_idx;
3415 struct r5dev *dev = &sh->dev[qd_idx];
3416
3417 set_bit(R5_LOCKED, &dev->flags);
3418 clear_bit(R5_UPTODATE, &dev->flags);
3419 s->locked++;
3420 }
3421
3422 if (raid5_has_ppl(sh->raid_conf) && sh->ppl_page &&
3423 test_bit(STRIPE_OP_BIODRAIN, &s->ops_request) &&
3424 !test_bit(STRIPE_FULL_WRITE, &sh->state) &&
3425 test_bit(R5_Insync, &sh->dev[pd_idx].flags))
3426 set_bit(STRIPE_OP_PARTIAL_PARITY, &s->ops_request);
3427
3428 pr_debug("%s: stripe %llu locked: %d ops_request: %lx\n",
3429 __func__, (unsigned long long)sh->sector,
3430 s->locked, s->ops_request);
3431 }
3432
stripe_bio_overlaps(struct stripe_head * sh,struct bio * bi,int dd_idx,int forwrite)3433 static bool stripe_bio_overlaps(struct stripe_head *sh, struct bio *bi,
3434 int dd_idx, int forwrite)
3435 {
3436 struct r5conf *conf = sh->raid_conf;
3437 struct bio **bip;
3438
3439 pr_debug("checking bi b#%llu to stripe s#%llu\n",
3440 bi->bi_iter.bi_sector, sh->sector);
3441
3442 /* Don't allow new IO added to stripes in batch list */
3443 if (sh->batch_head)
3444 return true;
3445
3446 if (forwrite)
3447 bip = &sh->dev[dd_idx].towrite;
3448 else
3449 bip = &sh->dev[dd_idx].toread;
3450
3451 while (*bip && (*bip)->bi_iter.bi_sector < bi->bi_iter.bi_sector) {
3452 if (bio_end_sector(*bip) > bi->bi_iter.bi_sector)
3453 return true;
3454 bip = &(*bip)->bi_next;
3455 }
3456
3457 if (*bip && (*bip)->bi_iter.bi_sector < bio_end_sector(bi))
3458 return true;
3459
3460 if (forwrite && raid5_has_ppl(conf)) {
3461 /*
3462 * With PPL only writes to consecutive data chunks within a
3463 * stripe are allowed because for a single stripe_head we can
3464 * only have one PPL entry at a time, which describes one data
3465 * range. Not really an overlap, but R5_Overlap can be
3466 * used to handle this.
3467 */
3468 sector_t sector;
3469 sector_t first = 0;
3470 sector_t last = 0;
3471 int count = 0;
3472 int i;
3473
3474 for (i = 0; i < sh->disks; i++) {
3475 if (i != sh->pd_idx &&
3476 (i == dd_idx || sh->dev[i].towrite)) {
3477 sector = sh->dev[i].sector;
3478 if (count == 0 || sector < first)
3479 first = sector;
3480 if (sector > last)
3481 last = sector;
3482 count++;
3483 }
3484 }
3485
3486 if (first + conf->chunk_sectors * (count - 1) != last)
3487 return true;
3488 }
3489
3490 return false;
3491 }
3492
__add_stripe_bio(struct stripe_head * sh,struct bio * bi,int dd_idx,int forwrite,int previous)3493 static void __add_stripe_bio(struct stripe_head *sh, struct bio *bi,
3494 int dd_idx, int forwrite, int previous)
3495 {
3496 struct r5conf *conf = sh->raid_conf;
3497 struct bio **bip;
3498 int firstwrite = 0;
3499
3500 if (forwrite) {
3501 bip = &sh->dev[dd_idx].towrite;
3502 if (!*bip)
3503 firstwrite = 1;
3504 } else {
3505 bip = &sh->dev[dd_idx].toread;
3506 }
3507
3508 while (*bip && (*bip)->bi_iter.bi_sector < bi->bi_iter.bi_sector)
3509 bip = &(*bip)->bi_next;
3510
3511 if (!forwrite || previous)
3512 clear_bit(STRIPE_BATCH_READY, &sh->state);
3513
3514 BUG_ON(*bip && bi->bi_next && (*bip) != bi->bi_next);
3515 if (*bip)
3516 bi->bi_next = *bip;
3517 *bip = bi;
3518 bio_inc_remaining(bi);
3519 md_write_inc(conf->mddev, bi);
3520
3521 if (forwrite) {
3522 /* check if page is covered */
3523 sector_t sector = sh->dev[dd_idx].sector;
3524 for (bi=sh->dev[dd_idx].towrite;
3525 sector < sh->dev[dd_idx].sector + RAID5_STRIPE_SECTORS(conf) &&
3526 bi && bi->bi_iter.bi_sector <= sector;
3527 bi = r5_next_bio(conf, bi, sh->dev[dd_idx].sector)) {
3528 if (bio_end_sector(bi) >= sector)
3529 sector = bio_end_sector(bi);
3530 }
3531 if (sector >= sh->dev[dd_idx].sector + RAID5_STRIPE_SECTORS(conf))
3532 if (!test_and_set_bit(R5_OVERWRITE, &sh->dev[dd_idx].flags))
3533 sh->overwrite_disks++;
3534 }
3535
3536 pr_debug("added bi b#%llu to stripe s#%llu, disk %d, logical %llu\n",
3537 (*bip)->bi_iter.bi_sector, sh->sector, dd_idx,
3538 sh->dev[dd_idx].sector);
3539
3540 if (conf->mddev->bitmap && firstwrite && !sh->batch_head) {
3541 sh->bm_seq = conf->seq_flush+1;
3542 set_bit(STRIPE_BIT_DELAY, &sh->state);
3543 }
3544 }
3545
3546 /*
3547 * Each stripe/dev can have one or more bios attached.
3548 * toread/towrite point to the first in a chain.
3549 * The bi_next chain must be in order.
3550 */
add_stripe_bio(struct stripe_head * sh,struct bio * bi,int dd_idx,int forwrite,int previous)3551 static bool add_stripe_bio(struct stripe_head *sh, struct bio *bi,
3552 int dd_idx, int forwrite, int previous)
3553 {
3554 spin_lock_irq(&sh->stripe_lock);
3555
3556 if (stripe_bio_overlaps(sh, bi, dd_idx, forwrite)) {
3557 set_bit(R5_Overlap, &sh->dev[dd_idx].flags);
3558 spin_unlock_irq(&sh->stripe_lock);
3559 return false;
3560 }
3561
3562 __add_stripe_bio(sh, bi, dd_idx, forwrite, previous);
3563 spin_unlock_irq(&sh->stripe_lock);
3564 return true;
3565 }
3566
3567 static void end_reshape(struct r5conf *conf);
3568
stripe_set_idx(sector_t stripe,struct r5conf * conf,int previous,struct stripe_head * sh)3569 static void stripe_set_idx(sector_t stripe, struct r5conf *conf, int previous,
3570 struct stripe_head *sh)
3571 {
3572 int sectors_per_chunk =
3573 previous ? conf->prev_chunk_sectors : conf->chunk_sectors;
3574 int dd_idx;
3575 int chunk_offset = sector_div(stripe, sectors_per_chunk);
3576 int disks = previous ? conf->previous_raid_disks : conf->raid_disks;
3577
3578 raid5_compute_sector(conf,
3579 stripe * (disks - conf->max_degraded)
3580 *sectors_per_chunk + chunk_offset,
3581 previous,
3582 &dd_idx, sh);
3583 }
3584
3585 static void
handle_failed_stripe(struct r5conf * conf,struct stripe_head * sh,struct stripe_head_state * s,int disks)3586 handle_failed_stripe(struct r5conf *conf, struct stripe_head *sh,
3587 struct stripe_head_state *s, int disks)
3588 {
3589 int i;
3590 BUG_ON(sh->batch_head);
3591 for (i = disks; i--; ) {
3592 struct bio *bi;
3593
3594 if (test_bit(R5_ReadError, &sh->dev[i].flags)) {
3595 struct md_rdev *rdev = conf->disks[i].rdev;
3596
3597 if (rdev && test_bit(In_sync, &rdev->flags) &&
3598 !test_bit(Faulty, &rdev->flags))
3599 atomic_inc(&rdev->nr_pending);
3600 else
3601 rdev = NULL;
3602 if (rdev) {
3603 rdev_set_badblocks(rdev,
3604 sh->sector,
3605 RAID5_STRIPE_SECTORS(conf),
3606 0);
3607 rdev_dec_pending(rdev, conf->mddev);
3608 }
3609 }
3610 spin_lock_irq(&sh->stripe_lock);
3611 /* fail all writes first */
3612 bi = sh->dev[i].towrite;
3613 sh->dev[i].towrite = NULL;
3614 sh->overwrite_disks = 0;
3615 spin_unlock_irq(&sh->stripe_lock);
3616
3617 log_stripe_write_finished(sh);
3618
3619 if (test_and_clear_bit(R5_Overlap, &sh->dev[i].flags))
3620 wake_up_bit(&sh->dev[i].flags, R5_Overlap);
3621
3622 while (bi && bi->bi_iter.bi_sector <
3623 sh->dev[i].sector + RAID5_STRIPE_SECTORS(conf)) {
3624 struct bio *nextbi = r5_next_bio(conf, bi, sh->dev[i].sector);
3625
3626 md_write_end(conf->mddev);
3627 bio_io_error(bi);
3628 bi = nextbi;
3629 }
3630 /* and fail all 'written' */
3631 bi = sh->dev[i].written;
3632 sh->dev[i].written = NULL;
3633 if (test_and_clear_bit(R5_SkipCopy, &sh->dev[i].flags)) {
3634 WARN_ON(test_bit(R5_UPTODATE, &sh->dev[i].flags));
3635 sh->dev[i].page = sh->dev[i].orig_page;
3636 }
3637
3638 while (bi && bi->bi_iter.bi_sector <
3639 sh->dev[i].sector + RAID5_STRIPE_SECTORS(conf)) {
3640 struct bio *bi2 = r5_next_bio(conf, bi, sh->dev[i].sector);
3641
3642 md_write_end(conf->mddev);
3643 bio_io_error(bi);
3644 bi = bi2;
3645 }
3646
3647 /* fail any reads if this device is non-operational and
3648 * the data has not reached the cache yet.
3649 */
3650 if (!test_bit(R5_Wantfill, &sh->dev[i].flags) &&
3651 s->failed > conf->max_degraded &&
3652 (!test_bit(R5_Insync, &sh->dev[i].flags) ||
3653 test_bit(R5_ReadError, &sh->dev[i].flags))) {
3654 spin_lock_irq(&sh->stripe_lock);
3655 bi = sh->dev[i].toread;
3656 sh->dev[i].toread = NULL;
3657 spin_unlock_irq(&sh->stripe_lock);
3658 if (test_and_clear_bit(R5_Overlap, &sh->dev[i].flags))
3659 wake_up_bit(&sh->dev[i].flags, R5_Overlap);
3660 if (bi)
3661 s->to_read--;
3662 while (bi && bi->bi_iter.bi_sector <
3663 sh->dev[i].sector + RAID5_STRIPE_SECTORS(conf)) {
3664 struct bio *nextbi =
3665 r5_next_bio(conf, bi, sh->dev[i].sector);
3666
3667 bio_io_error(bi);
3668 bi = nextbi;
3669 }
3670 }
3671 /* If we were in the middle of a write the parity block might
3672 * still be locked - so just clear all R5_LOCKED flags
3673 */
3674 clear_bit(R5_LOCKED, &sh->dev[i].flags);
3675 }
3676 s->to_write = 0;
3677 s->written = 0;
3678
3679 if (test_and_clear_bit(STRIPE_FULL_WRITE, &sh->state))
3680 if (atomic_dec_and_test(&conf->pending_full_writes))
3681 md_wakeup_thread(conf->mddev->thread);
3682 }
3683
3684 static void
handle_failed_sync(struct r5conf * conf,struct stripe_head * sh,struct stripe_head_state * s)3685 handle_failed_sync(struct r5conf *conf, struct stripe_head *sh,
3686 struct stripe_head_state *s)
3687 {
3688 int abort = 0;
3689 int i;
3690
3691 BUG_ON(sh->batch_head);
3692 clear_bit(STRIPE_SYNCING, &sh->state);
3693 if (test_and_clear_bit(R5_Overlap, &sh->dev[sh->pd_idx].flags))
3694 wake_up_bit(&sh->dev[sh->pd_idx].flags, R5_Overlap);
3695 s->syncing = 0;
3696 s->replacing = 0;
3697 /* There is nothing more to do for sync/check/repair.
3698 * Don't even need to abort as that is handled elsewhere
3699 * if needed, and not always wanted e.g. if there is a known
3700 * bad block here.
3701 * For recover/replace we need to record a bad block on all
3702 * non-sync devices, or abort the recovery
3703 */
3704 if (test_bit(MD_RECOVERY_RECOVER, &conf->mddev->recovery)) {
3705 /* During recovery devices cannot be removed, so
3706 * locking and refcounting of rdevs is not needed
3707 */
3708 for (i = 0; i < conf->raid_disks; i++) {
3709 struct md_rdev *rdev = conf->disks[i].rdev;
3710
3711 if (rdev
3712 && !test_bit(Faulty, &rdev->flags)
3713 && !test_bit(In_sync, &rdev->flags)
3714 && !rdev_set_badblocks(rdev, sh->sector,
3715 RAID5_STRIPE_SECTORS(conf), 0))
3716 abort = 1;
3717 rdev = conf->disks[i].replacement;
3718
3719 if (rdev
3720 && !test_bit(Faulty, &rdev->flags)
3721 && !test_bit(In_sync, &rdev->flags)
3722 && !rdev_set_badblocks(rdev, sh->sector,
3723 RAID5_STRIPE_SECTORS(conf), 0))
3724 abort = 1;
3725 }
3726 }
3727 md_done_sync(conf->mddev, RAID5_STRIPE_SECTORS(conf));
3728
3729 if (abort)
3730 md_sync_error(conf->mddev);
3731 }
3732
want_replace(struct stripe_head * sh,int disk_idx)3733 static int want_replace(struct stripe_head *sh, int disk_idx)
3734 {
3735 struct md_rdev *rdev;
3736 int rv = 0;
3737
3738 rdev = sh->raid_conf->disks[disk_idx].replacement;
3739 if (rdev
3740 && !test_bit(Faulty, &rdev->flags)
3741 && !test_bit(In_sync, &rdev->flags)
3742 && (rdev->recovery_offset <= sh->sector
3743 || rdev->mddev->resync_offset <= sh->sector))
3744 rv = 1;
3745 return rv;
3746 }
3747
need_this_block(struct stripe_head * sh,struct stripe_head_state * s,int disk_idx,int disks)3748 static int need_this_block(struct stripe_head *sh, struct stripe_head_state *s,
3749 int disk_idx, int disks)
3750 {
3751 struct r5dev *dev = &sh->dev[disk_idx];
3752 struct r5dev *fdev[2] = { &sh->dev[s->failed_num[0]],
3753 &sh->dev[s->failed_num[1]] };
3754 struct mddev *mddev = sh->raid_conf->mddev;
3755 bool force_rcw = false;
3756 int i;
3757
3758 if (sh->raid_conf->rmw_level == PARITY_DISABLE_RMW ||
3759 (mddev->bitmap_ops && mddev->bitmap_ops->blocks_synced &&
3760 !mddev->bitmap_ops->blocks_synced(mddev, sh->sector)))
3761 force_rcw = true;
3762
3763 if (test_bit(R5_LOCKED, &dev->flags) ||
3764 test_bit(R5_UPTODATE, &dev->flags))
3765 /* No point reading this as we already have it or have
3766 * decided to get it.
3767 */
3768 return 0;
3769
3770 if (dev->toread ||
3771 (dev->towrite && !test_bit(R5_OVERWRITE, &dev->flags)))
3772 /* We need this block to directly satisfy a request */
3773 return 1;
3774
3775 if (s->syncing || s->expanding ||
3776 (s->replacing && want_replace(sh, disk_idx)))
3777 /* When syncing, or expanding we read everything.
3778 * When replacing, we need the replaced block.
3779 */
3780 return 1;
3781
3782 if ((s->failed >= 1 && fdev[0]->toread) ||
3783 (s->failed >= 2 && fdev[1]->toread))
3784 /* If we want to read from a failed device, then
3785 * we need to actually read every other device.
3786 */
3787 return 1;
3788
3789 /* Sometimes neither read-modify-write nor reconstruct-write
3790 * cycles can work. In those cases we read every block we
3791 * can. Then the parity-update is certain to have enough to
3792 * work with.
3793 * This can only be a problem when we need to write something,
3794 * and some device has failed. If either of those tests
3795 * fail we need look no further.
3796 */
3797 if (!s->failed || !s->to_write)
3798 return 0;
3799
3800 if (test_bit(R5_Insync, &dev->flags) &&
3801 !test_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
3802 /* Pre-reads at not permitted until after short delay
3803 * to gather multiple requests. However if this
3804 * device is no Insync, the block could only be computed
3805 * and there is no need to delay that.
3806 */
3807 return 0;
3808
3809 for (i = 0; i < s->failed && i < 2; i++) {
3810 if (fdev[i]->towrite &&
3811 !test_bit(R5_UPTODATE, &fdev[i]->flags) &&
3812 !test_bit(R5_OVERWRITE, &fdev[i]->flags))
3813 /* If we have a partial write to a failed
3814 * device, then we will need to reconstruct
3815 * the content of that device, so all other
3816 * devices must be read.
3817 */
3818 return 1;
3819
3820 if (s->failed >= 2 &&
3821 (fdev[i]->towrite ||
3822 s->failed_num[i] == sh->pd_idx ||
3823 s->failed_num[i] == sh->qd_idx) &&
3824 !test_bit(R5_UPTODATE, &fdev[i]->flags))
3825 /* In max degraded raid6, If the failed disk is P, Q,
3826 * or we want to read the failed disk, we need to do
3827 * reconstruct-write.
3828 */
3829 force_rcw = true;
3830 }
3831
3832 /* If we are forced to do a reconstruct-write, because parity
3833 * cannot be trusted and we are currently recovering it, there
3834 * is extra need to be careful.
3835 * If one of the devices that we would need to read, because
3836 * it is not being overwritten (and maybe not written at all)
3837 * is missing/faulty, then we need to read everything we can.
3838 */
3839 if (!force_rcw &&
3840 sh->sector < sh->raid_conf->mddev->resync_offset)
3841 /* reconstruct-write isn't being forced */
3842 return 0;
3843 for (i = 0; i < s->failed && i < 2; i++) {
3844 if (s->failed_num[i] != sh->pd_idx &&
3845 s->failed_num[i] != sh->qd_idx &&
3846 !test_bit(R5_UPTODATE, &fdev[i]->flags) &&
3847 !test_bit(R5_OVERWRITE, &fdev[i]->flags))
3848 return 1;
3849 }
3850
3851 return 0;
3852 }
3853
3854 /* fetch_block - checks the given member device to see if its data needs
3855 * to be read or computed to satisfy a request.
3856 *
3857 * Returns 1 when no more member devices need to be checked, otherwise returns
3858 * 0 to tell the loop in handle_stripe_fill to continue
3859 */
fetch_block(struct stripe_head * sh,struct stripe_head_state * s,int disk_idx,int disks)3860 static int fetch_block(struct stripe_head *sh, struct stripe_head_state *s,
3861 int disk_idx, int disks)
3862 {
3863 struct r5dev *dev = &sh->dev[disk_idx];
3864
3865 /* is the data in this block needed, and can we get it? */
3866 if (need_this_block(sh, s, disk_idx, disks)) {
3867 /* we would like to get this block, possibly by computing it,
3868 * otherwise read it if the backing disk is insync
3869 */
3870 BUG_ON(test_bit(R5_Wantcompute, &dev->flags));
3871 BUG_ON(test_bit(R5_Wantread, &dev->flags));
3872 BUG_ON(sh->batch_head);
3873
3874 /*
3875 * In the raid6 case if the only non-uptodate disk is P
3876 * then we already trusted P to compute the other failed
3877 * drives. It is safe to compute rather than re-read P.
3878 * In other cases we only compute blocks from failed
3879 * devices, otherwise check/repair might fail to detect
3880 * a real inconsistency.
3881 */
3882
3883 if ((s->uptodate == disks - 1) &&
3884 ((sh->qd_idx >= 0 && sh->pd_idx == disk_idx) ||
3885 (s->failed && (disk_idx == s->failed_num[0] ||
3886 disk_idx == s->failed_num[1])))) {
3887 /* have disk failed, and we're requested to fetch it;
3888 * do compute it
3889 */
3890 pr_debug("Computing stripe %llu block %d\n",
3891 (unsigned long long)sh->sector, disk_idx);
3892 set_bit(STRIPE_COMPUTE_RUN, &sh->state);
3893 set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
3894 set_bit(R5_Wantcompute, &dev->flags);
3895 sh->ops.target = disk_idx;
3896 sh->ops.target2 = -1; /* no 2nd target */
3897 s->req_compute = 1;
3898 /* Careful: from this point on 'uptodate' is in the eye
3899 * of raid_run_ops which services 'compute' operations
3900 * before writes. R5_Wantcompute flags a block that will
3901 * be R5_UPTODATE by the time it is needed for a
3902 * subsequent operation.
3903 */
3904 s->uptodate++;
3905 return 1;
3906 } else if (s->uptodate == disks-2 && s->failed >= 2) {
3907 /* Computing 2-failure is *very* expensive; only
3908 * do it if failed >= 2
3909 */
3910 int other;
3911 for (other = disks; other--; ) {
3912 if (other == disk_idx)
3913 continue;
3914 if (!test_bit(R5_UPTODATE,
3915 &sh->dev[other].flags))
3916 break;
3917 }
3918 BUG_ON(other < 0);
3919 pr_debug("Computing stripe %llu blocks %d,%d\n",
3920 (unsigned long long)sh->sector,
3921 disk_idx, other);
3922 set_bit(STRIPE_COMPUTE_RUN, &sh->state);
3923 set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
3924 set_bit(R5_Wantcompute, &sh->dev[disk_idx].flags);
3925 set_bit(R5_Wantcompute, &sh->dev[other].flags);
3926 sh->ops.target = disk_idx;
3927 sh->ops.target2 = other;
3928 s->uptodate += 2;
3929 s->req_compute = 1;
3930 return 1;
3931 } else if (test_bit(R5_Insync, &dev->flags)) {
3932 set_bit(R5_LOCKED, &dev->flags);
3933 set_bit(R5_Wantread, &dev->flags);
3934 s->locked++;
3935 pr_debug("Reading block %d (sync=%d)\n",
3936 disk_idx, s->syncing);
3937 }
3938 }
3939
3940 return 0;
3941 }
3942
3943 /*
3944 * handle_stripe_fill - read or compute data to satisfy pending requests.
3945 */
handle_stripe_fill(struct stripe_head * sh,struct stripe_head_state * s,int disks)3946 static void handle_stripe_fill(struct stripe_head *sh,
3947 struct stripe_head_state *s,
3948 int disks)
3949 {
3950 int i;
3951
3952 /* look for blocks to read/compute, skip this if a compute
3953 * is already in flight, or if the stripe contents are in the
3954 * midst of changing due to a write
3955 */
3956 if (!test_bit(STRIPE_COMPUTE_RUN, &sh->state) && !sh->check_state &&
3957 !sh->reconstruct_state) {
3958
3959 /*
3960 * For degraded stripe with data in journal, do not handle
3961 * read requests yet, instead, flush the stripe to raid
3962 * disks first, this avoids handling complex rmw of write
3963 * back cache (prexor with orig_page, and then xor with
3964 * page) in the read path
3965 */
3966 if (s->to_read && s->injournal && s->failed) {
3967 if (test_bit(STRIPE_R5C_CACHING, &sh->state))
3968 r5c_make_stripe_write_out(sh);
3969 goto out;
3970 }
3971
3972 for (i = disks; i--; )
3973 if (fetch_block(sh, s, i, disks))
3974 break;
3975 }
3976 out:
3977 set_bit(STRIPE_HANDLE, &sh->state);
3978 }
3979
3980 static void break_stripe_batch_list(struct stripe_head *head_sh,
3981 unsigned long handle_flags);
3982 /* handle_stripe_clean_event
3983 * any written block on an uptodate or failed drive can be returned.
3984 * Note that if we 'wrote' to a failed drive, it will be UPTODATE, but
3985 * never LOCKED, so we don't need to test 'failed' directly.
3986 */
handle_stripe_clean_event(struct r5conf * conf,struct stripe_head * sh,int disks)3987 static void handle_stripe_clean_event(struct r5conf *conf,
3988 struct stripe_head *sh, int disks)
3989 {
3990 int i;
3991 struct r5dev *dev;
3992 int discard_pending = 0;
3993 struct stripe_head *head_sh = sh;
3994 bool do_endio = false;
3995
3996 for (i = disks; i--; )
3997 if (sh->dev[i].written) {
3998 dev = &sh->dev[i];
3999 if (!test_bit(R5_LOCKED, &dev->flags) &&
4000 (test_bit(R5_UPTODATE, &dev->flags) ||
4001 test_bit(R5_Discard, &dev->flags) ||
4002 test_bit(R5_SkipCopy, &dev->flags))) {
4003 /* We can return any write requests */
4004 struct bio *wbi, *wbi2;
4005 pr_debug("Return write for disc %d\n", i);
4006 if (test_and_clear_bit(R5_Discard, &dev->flags))
4007 clear_bit(R5_UPTODATE, &dev->flags);
4008 if (test_and_clear_bit(R5_SkipCopy, &dev->flags)) {
4009 WARN_ON(test_bit(R5_UPTODATE, &dev->flags));
4010 }
4011 do_endio = true;
4012
4013 returnbi:
4014 dev->page = dev->orig_page;
4015 wbi = dev->written;
4016 dev->written = NULL;
4017 while (wbi && wbi->bi_iter.bi_sector <
4018 dev->sector + RAID5_STRIPE_SECTORS(conf)) {
4019 wbi2 = r5_next_bio(conf, wbi, dev->sector);
4020 md_write_end(conf->mddev);
4021 bio_endio(wbi);
4022 wbi = wbi2;
4023 }
4024
4025 if (head_sh->batch_head) {
4026 sh = list_first_entry(&sh->batch_list,
4027 struct stripe_head,
4028 batch_list);
4029 if (sh != head_sh) {
4030 dev = &sh->dev[i];
4031 goto returnbi;
4032 }
4033 }
4034 sh = head_sh;
4035 dev = &sh->dev[i];
4036 } else if (test_bit(R5_Discard, &dev->flags))
4037 discard_pending = 1;
4038 }
4039
4040 log_stripe_write_finished(sh);
4041
4042 if (!discard_pending &&
4043 test_bit(R5_Discard, &sh->dev[sh->pd_idx].flags)) {
4044 int hash;
4045 clear_bit(R5_Discard, &sh->dev[sh->pd_idx].flags);
4046 clear_bit(R5_UPTODATE, &sh->dev[sh->pd_idx].flags);
4047 if (sh->qd_idx >= 0) {
4048 clear_bit(R5_Discard, &sh->dev[sh->qd_idx].flags);
4049 clear_bit(R5_UPTODATE, &sh->dev[sh->qd_idx].flags);
4050 }
4051 /* now that discard is done we can proceed with any sync */
4052 clear_bit(STRIPE_DISCARD, &sh->state);
4053 /*
4054 * SCSI discard will change some bio fields and the stripe has
4055 * no updated data, so remove it from hash list and the stripe
4056 * will be reinitialized
4057 */
4058 unhash:
4059 hash = sh->hash_lock_index;
4060 spin_lock_irq(conf->hash_locks + hash);
4061 remove_hash(sh);
4062 spin_unlock_irq(conf->hash_locks + hash);
4063 if (head_sh->batch_head) {
4064 sh = list_first_entry(&sh->batch_list,
4065 struct stripe_head, batch_list);
4066 if (sh != head_sh)
4067 goto unhash;
4068 }
4069 sh = head_sh;
4070
4071 if (test_bit(STRIPE_SYNC_REQUESTED, &sh->state))
4072 set_bit(STRIPE_HANDLE, &sh->state);
4073
4074 }
4075
4076 if (test_and_clear_bit(STRIPE_FULL_WRITE, &sh->state))
4077 if (atomic_dec_and_test(&conf->pending_full_writes))
4078 md_wakeup_thread(conf->mddev->thread);
4079
4080 if (head_sh->batch_head && do_endio)
4081 break_stripe_batch_list(head_sh, STRIPE_EXPAND_SYNC_FLAGS);
4082 }
4083
4084 /*
4085 * For RMW in write back cache, we need extra page in prexor to store the
4086 * old data. This page is stored in dev->orig_page.
4087 *
4088 * This function checks whether we have data for prexor. The exact logic
4089 * is:
4090 * R5_UPTODATE && (!R5_InJournal || R5_OrigPageUPTDODATE)
4091 */
uptodate_for_rmw(struct r5dev * dev)4092 static inline bool uptodate_for_rmw(struct r5dev *dev)
4093 {
4094 return (test_bit(R5_UPTODATE, &dev->flags)) &&
4095 (!test_bit(R5_InJournal, &dev->flags) ||
4096 test_bit(R5_OrigPageUPTDODATE, &dev->flags));
4097 }
4098
handle_stripe_dirtying(struct r5conf * conf,struct stripe_head * sh,struct stripe_head_state * s,int disks)4099 static int handle_stripe_dirtying(struct r5conf *conf,
4100 struct stripe_head *sh,
4101 struct stripe_head_state *s,
4102 int disks)
4103 {
4104 int rmw = 0, rcw = 0, i;
4105 struct mddev *mddev = conf->mddev;
4106 sector_t resync_offset = mddev->resync_offset;
4107
4108 /* Check whether resync is now happening or should start.
4109 * If yes, then the array is dirty (after unclean shutdown or
4110 * initial creation), so parity in some stripes might be inconsistent.
4111 * In this case, we need to always do reconstruct-write, to ensure
4112 * that in case of drive failure or read-error correction, we
4113 * generate correct data from the parity.
4114 */
4115 if (conf->rmw_level == PARITY_DISABLE_RMW ||
4116 (resync_offset < MaxSector && sh->sector >= resync_offset &&
4117 s->failed == 0)) {
4118 /* Calculate the real rcw later - for now make it
4119 * look like rcw is cheaper
4120 */
4121 rcw = 1; rmw = 2;
4122 pr_debug("force RCW rmw_level=%u, resync_offset=%llu sh->sector=%llu\n",
4123 conf->rmw_level, (unsigned long long)resync_offset,
4124 (unsigned long long)sh->sector);
4125 } else if (mddev->bitmap_ops && mddev->bitmap_ops->blocks_synced &&
4126 !mddev->bitmap_ops->blocks_synced(mddev, sh->sector)) {
4127 /* The initial recover is not done, must read everything */
4128 rcw = 1; rmw = 2;
4129 pr_debug("force RCW by lazy recovery, sh->sector=%llu\n",
4130 sh->sector);
4131 } else for (i = disks; i--; ) {
4132 /* would I have to read this buffer for read_modify_write */
4133 struct r5dev *dev = &sh->dev[i];
4134 if (((dev->towrite && !delay_towrite(conf, dev, s)) ||
4135 i == sh->pd_idx || i == sh->qd_idx ||
4136 test_bit(R5_InJournal, &dev->flags)) &&
4137 !test_bit(R5_LOCKED, &dev->flags) &&
4138 !(uptodate_for_rmw(dev) ||
4139 test_bit(R5_Wantcompute, &dev->flags))) {
4140 if (test_bit(R5_Insync, &dev->flags))
4141 rmw++;
4142 else
4143 rmw += 2*disks; /* cannot read it */
4144 }
4145 /* Would I have to read this buffer for reconstruct_write */
4146 if (!test_bit(R5_OVERWRITE, &dev->flags) &&
4147 i != sh->pd_idx && i != sh->qd_idx &&
4148 !test_bit(R5_LOCKED, &dev->flags) &&
4149 !(test_bit(R5_UPTODATE, &dev->flags) ||
4150 test_bit(R5_Wantcompute, &dev->flags))) {
4151 if (test_bit(R5_Insync, &dev->flags))
4152 rcw++;
4153 else
4154 rcw += 2*disks;
4155 }
4156 }
4157
4158 pr_debug("for sector %llu state 0x%lx, rmw=%d rcw=%d\n",
4159 (unsigned long long)sh->sector, sh->state, rmw, rcw);
4160 set_bit(STRIPE_HANDLE, &sh->state);
4161 if ((rmw < rcw || (rmw == rcw && conf->rmw_level == PARITY_PREFER_RMW)) && rmw > 0) {
4162 /* prefer read-modify-write, but need to get some data */
4163 mddev_add_trace_msg(mddev, "raid5 rmw %llu %d",
4164 sh->sector, rmw);
4165
4166 for (i = disks; i--; ) {
4167 struct r5dev *dev = &sh->dev[i];
4168 if (test_bit(R5_InJournal, &dev->flags) &&
4169 dev->page == dev->orig_page &&
4170 !test_bit(R5_LOCKED, &sh->dev[sh->pd_idx].flags)) {
4171 /* alloc page for prexor */
4172 struct page *p = alloc_page(GFP_NOIO);
4173
4174 if (p) {
4175 dev->orig_page = p;
4176 continue;
4177 }
4178
4179 /*
4180 * alloc_page() failed, try use
4181 * disk_info->extra_page
4182 */
4183 if (!test_and_set_bit(R5C_EXTRA_PAGE_IN_USE,
4184 &conf->cache_state)) {
4185 r5c_use_extra_page(sh);
4186 break;
4187 }
4188
4189 /* extra_page in use, add to delayed_list */
4190 set_bit(STRIPE_DELAYED, &sh->state);
4191 s->waiting_extra_page = 1;
4192 return -EAGAIN;
4193 }
4194 }
4195
4196 for (i = disks; i--; ) {
4197 struct r5dev *dev = &sh->dev[i];
4198 if (((dev->towrite && !delay_towrite(conf, dev, s)) ||
4199 i == sh->pd_idx || i == sh->qd_idx ||
4200 test_bit(R5_InJournal, &dev->flags)) &&
4201 !test_bit(R5_LOCKED, &dev->flags) &&
4202 !(uptodate_for_rmw(dev) ||
4203 test_bit(R5_Wantcompute, &dev->flags)) &&
4204 test_bit(R5_Insync, &dev->flags)) {
4205 if (test_bit(STRIPE_PREREAD_ACTIVE,
4206 &sh->state)) {
4207 pr_debug("Read_old block %d for r-m-w\n",
4208 i);
4209 set_bit(R5_LOCKED, &dev->flags);
4210 set_bit(R5_Wantread, &dev->flags);
4211 s->locked++;
4212 } else
4213 set_bit(STRIPE_DELAYED, &sh->state);
4214 }
4215 }
4216 }
4217 if ((rcw < rmw || (rcw == rmw && conf->rmw_level != PARITY_PREFER_RMW)) && rcw > 0) {
4218 /* want reconstruct write, but need to get some data */
4219 int qread =0;
4220 rcw = 0;
4221 for (i = disks; i--; ) {
4222 struct r5dev *dev = &sh->dev[i];
4223 if (!test_bit(R5_OVERWRITE, &dev->flags) &&
4224 i != sh->pd_idx && i != sh->qd_idx &&
4225 !test_bit(R5_LOCKED, &dev->flags) &&
4226 !(test_bit(R5_UPTODATE, &dev->flags) ||
4227 test_bit(R5_Wantcompute, &dev->flags))) {
4228 rcw++;
4229 if (test_bit(R5_Insync, &dev->flags) &&
4230 test_bit(STRIPE_PREREAD_ACTIVE,
4231 &sh->state)) {
4232 pr_debug("Read_old block "
4233 "%d for Reconstruct\n", i);
4234 set_bit(R5_LOCKED, &dev->flags);
4235 set_bit(R5_Wantread, &dev->flags);
4236 s->locked++;
4237 qread++;
4238 } else
4239 set_bit(STRIPE_DELAYED, &sh->state);
4240 }
4241 }
4242 if (rcw && !mddev_is_dm(mddev))
4243 blk_add_trace_msg(mddev->gendisk->queue,
4244 "raid5 rcw %llu %d %d %d",
4245 (unsigned long long)sh->sector, rcw, qread,
4246 test_bit(STRIPE_DELAYED, &sh->state));
4247 }
4248
4249 if (rcw > disks && rmw > disks &&
4250 !test_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
4251 set_bit(STRIPE_DELAYED, &sh->state);
4252
4253 /* now if nothing is locked, and if we have enough data,
4254 * we can start a write request
4255 */
4256 /* since handle_stripe can be called at any time we need to handle the
4257 * case where a compute block operation has been submitted and then a
4258 * subsequent call wants to start a write request. raid_run_ops only
4259 * handles the case where compute block and reconstruct are requested
4260 * simultaneously. If this is not the case then new writes need to be
4261 * held off until the compute completes.
4262 */
4263 if ((s->req_compute || !test_bit(STRIPE_COMPUTE_RUN, &sh->state)) &&
4264 (s->locked == 0 && (rcw == 0 || rmw == 0) &&
4265 !test_bit(STRIPE_BIT_DELAY, &sh->state)))
4266 schedule_reconstruction(sh, s, rcw == 0, 0);
4267 return 0;
4268 }
4269
handle_parity_checks5(struct r5conf * conf,struct stripe_head * sh,struct stripe_head_state * s,int disks)4270 static void handle_parity_checks5(struct r5conf *conf, struct stripe_head *sh,
4271 struct stripe_head_state *s, int disks)
4272 {
4273 struct r5dev *dev = NULL;
4274
4275 BUG_ON(sh->batch_head);
4276 set_bit(STRIPE_HANDLE, &sh->state);
4277
4278 switch (sh->check_state) {
4279 case check_state_idle:
4280 /* start a new check operation if there are no failures */
4281 if (s->failed == 0) {
4282 BUG_ON(s->uptodate != disks);
4283 sh->check_state = check_state_run;
4284 set_bit(STRIPE_OP_CHECK, &s->ops_request);
4285 clear_bit(R5_UPTODATE, &sh->dev[sh->pd_idx].flags);
4286 s->uptodate--;
4287 break;
4288 }
4289 dev = &sh->dev[s->failed_num[0]];
4290 fallthrough;
4291 case check_state_compute_result:
4292 sh->check_state = check_state_idle;
4293 if (!dev)
4294 dev = &sh->dev[sh->pd_idx];
4295
4296 /* check that a write has not made the stripe insync */
4297 if (test_bit(STRIPE_INSYNC, &sh->state))
4298 break;
4299
4300 /* either failed parity check, or recovery is happening */
4301 BUG_ON(!test_bit(R5_UPTODATE, &dev->flags));
4302 BUG_ON(s->uptodate != disks);
4303
4304 set_bit(R5_LOCKED, &dev->flags);
4305 s->locked++;
4306 set_bit(R5_Wantwrite, &dev->flags);
4307
4308 set_bit(STRIPE_INSYNC, &sh->state);
4309 break;
4310 case check_state_run:
4311 break; /* we will be called again upon completion */
4312 case check_state_check_result:
4313 sh->check_state = check_state_idle;
4314
4315 /* if a failure occurred during the check operation, leave
4316 * STRIPE_INSYNC not set and let the stripe be handled again
4317 */
4318 if (s->failed)
4319 break;
4320
4321 /* handle a successful check operation, if parity is correct
4322 * we are done. Otherwise update the mismatch count and repair
4323 * parity if !MD_RECOVERY_CHECK
4324 */
4325 if ((sh->ops.zero_sum_result & SUM_CHECK_P_RESULT) == 0)
4326 /* parity is correct (on disc,
4327 * not in buffer any more)
4328 */
4329 set_bit(STRIPE_INSYNC, &sh->state);
4330 else {
4331 atomic64_add(RAID5_STRIPE_SECTORS(conf), &conf->mddev->resync_mismatches);
4332 if (test_bit(MD_RECOVERY_CHECK, &conf->mddev->recovery)) {
4333 /* don't try to repair!! */
4334 set_bit(STRIPE_INSYNC, &sh->state);
4335 pr_warn_ratelimited("%s: mismatch sector in range "
4336 "%llu-%llu\n", mdname(conf->mddev),
4337 (unsigned long long) sh->sector,
4338 (unsigned long long) sh->sector +
4339 RAID5_STRIPE_SECTORS(conf));
4340 } else {
4341 sh->check_state = check_state_compute_run;
4342 set_bit(STRIPE_COMPUTE_RUN, &sh->state);
4343 set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
4344 set_bit(R5_Wantcompute,
4345 &sh->dev[sh->pd_idx].flags);
4346 sh->ops.target = sh->pd_idx;
4347 sh->ops.target2 = -1;
4348 s->uptodate++;
4349 }
4350 }
4351 break;
4352 case check_state_compute_run:
4353 break;
4354 default:
4355 pr_err("%s: unknown check_state: %d sector: %llu\n",
4356 __func__, sh->check_state,
4357 (unsigned long long) sh->sector);
4358 BUG();
4359 }
4360 }
4361
handle_parity_checks6(struct r5conf * conf,struct stripe_head * sh,struct stripe_head_state * s,int disks)4362 static void handle_parity_checks6(struct r5conf *conf, struct stripe_head *sh,
4363 struct stripe_head_state *s,
4364 int disks)
4365 {
4366 int pd_idx = sh->pd_idx;
4367 int qd_idx = sh->qd_idx;
4368 struct r5dev *dev;
4369
4370 BUG_ON(sh->batch_head);
4371 set_bit(STRIPE_HANDLE, &sh->state);
4372
4373 BUG_ON(s->failed > 2);
4374
4375 /* Want to check and possibly repair P and Q.
4376 * However there could be one 'failed' device, in which
4377 * case we can only check one of them, possibly using the
4378 * other to generate missing data
4379 */
4380
4381 switch (sh->check_state) {
4382 case check_state_idle:
4383 /* start a new check operation if there are < 2 failures */
4384 if (s->failed == s->q_failed) {
4385 /* The only possible failed device holds Q, so it
4386 * makes sense to check P (If anything else were failed,
4387 * we would have used P to recreate it).
4388 */
4389 sh->check_state = check_state_run;
4390 }
4391 if (!s->q_failed && s->failed < 2) {
4392 /* Q is not failed, and we didn't use it to generate
4393 * anything, so it makes sense to check it
4394 */
4395 if (sh->check_state == check_state_run)
4396 sh->check_state = check_state_run_pq;
4397 else
4398 sh->check_state = check_state_run_q;
4399 }
4400
4401 /* discard potentially stale zero_sum_result */
4402 sh->ops.zero_sum_result = 0;
4403
4404 if (sh->check_state == check_state_run) {
4405 /* async_xor_zero_sum destroys the contents of P */
4406 clear_bit(R5_UPTODATE, &sh->dev[pd_idx].flags);
4407 s->uptodate--;
4408 }
4409 if (sh->check_state >= check_state_run &&
4410 sh->check_state <= check_state_run_pq) {
4411 /* async_syndrome_zero_sum preserves P and Q, so
4412 * no need to mark them !uptodate here
4413 */
4414 set_bit(STRIPE_OP_CHECK, &s->ops_request);
4415 break;
4416 }
4417
4418 /* we have 2-disk failure */
4419 BUG_ON(s->failed != 2);
4420 fallthrough;
4421 case check_state_compute_result:
4422 sh->check_state = check_state_idle;
4423
4424 /* check that a write has not made the stripe insync */
4425 if (test_bit(STRIPE_INSYNC, &sh->state))
4426 break;
4427
4428 /* now write out any block on a failed drive,
4429 * or P or Q if they were recomputed
4430 */
4431 dev = NULL;
4432 if (s->failed == 2) {
4433 dev = &sh->dev[s->failed_num[1]];
4434 s->locked++;
4435 set_bit(R5_LOCKED, &dev->flags);
4436 set_bit(R5_Wantwrite, &dev->flags);
4437 }
4438 if (s->failed >= 1) {
4439 dev = &sh->dev[s->failed_num[0]];
4440 s->locked++;
4441 set_bit(R5_LOCKED, &dev->flags);
4442 set_bit(R5_Wantwrite, &dev->flags);
4443 }
4444 if (sh->ops.zero_sum_result & SUM_CHECK_P_RESULT) {
4445 dev = &sh->dev[pd_idx];
4446 s->locked++;
4447 set_bit(R5_LOCKED, &dev->flags);
4448 set_bit(R5_Wantwrite, &dev->flags);
4449 }
4450 if (sh->ops.zero_sum_result & SUM_CHECK_Q_RESULT) {
4451 dev = &sh->dev[qd_idx];
4452 s->locked++;
4453 set_bit(R5_LOCKED, &dev->flags);
4454 set_bit(R5_Wantwrite, &dev->flags);
4455 }
4456 if (WARN_ONCE(dev && !test_bit(R5_UPTODATE, &dev->flags),
4457 "%s: disk%td not up to date\n",
4458 mdname(conf->mddev),
4459 dev - (struct r5dev *) &sh->dev)) {
4460 clear_bit(R5_LOCKED, &dev->flags);
4461 clear_bit(R5_Wantwrite, &dev->flags);
4462 s->locked--;
4463 }
4464
4465 set_bit(STRIPE_INSYNC, &sh->state);
4466 break;
4467 case check_state_run:
4468 case check_state_run_q:
4469 case check_state_run_pq:
4470 break; /* we will be called again upon completion */
4471 case check_state_check_result:
4472 sh->check_state = check_state_idle;
4473
4474 /* handle a successful check operation, if parity is correct
4475 * we are done. Otherwise update the mismatch count and repair
4476 * parity if !MD_RECOVERY_CHECK
4477 */
4478 if (sh->ops.zero_sum_result == 0) {
4479 /* both parities are correct */
4480 if (!s->failed)
4481 set_bit(STRIPE_INSYNC, &sh->state);
4482 else {
4483 /* in contrast to the raid5 case we can validate
4484 * parity, but still have a failure to write
4485 * back
4486 */
4487 sh->check_state = check_state_compute_result;
4488 /* Returning at this point means that we may go
4489 * off and bring p and/or q uptodate again so
4490 * we make sure to check zero_sum_result again
4491 * to verify if p or q need writeback
4492 */
4493 }
4494 } else {
4495 atomic64_add(RAID5_STRIPE_SECTORS(conf), &conf->mddev->resync_mismatches);
4496 if (test_bit(MD_RECOVERY_CHECK, &conf->mddev->recovery)) {
4497 /* don't try to repair!! */
4498 set_bit(STRIPE_INSYNC, &sh->state);
4499 pr_warn_ratelimited("%s: mismatch sector in range "
4500 "%llu-%llu\n", mdname(conf->mddev),
4501 (unsigned long long) sh->sector,
4502 (unsigned long long) sh->sector +
4503 RAID5_STRIPE_SECTORS(conf));
4504 } else {
4505 int *target = &sh->ops.target;
4506
4507 sh->ops.target = -1;
4508 sh->ops.target2 = -1;
4509 sh->check_state = check_state_compute_run;
4510 set_bit(STRIPE_COMPUTE_RUN, &sh->state);
4511 set_bit(STRIPE_OP_COMPUTE_BLK, &s->ops_request);
4512 if (sh->ops.zero_sum_result & SUM_CHECK_P_RESULT) {
4513 set_bit(R5_Wantcompute,
4514 &sh->dev[pd_idx].flags);
4515 *target = pd_idx;
4516 target = &sh->ops.target2;
4517 s->uptodate++;
4518 }
4519 if (sh->ops.zero_sum_result & SUM_CHECK_Q_RESULT) {
4520 set_bit(R5_Wantcompute,
4521 &sh->dev[qd_idx].flags);
4522 *target = qd_idx;
4523 s->uptodate++;
4524 }
4525 }
4526 }
4527 break;
4528 case check_state_compute_run:
4529 break;
4530 default:
4531 pr_warn("%s: unknown check_state: %d sector: %llu\n",
4532 __func__, sh->check_state,
4533 (unsigned long long) sh->sector);
4534 BUG();
4535 }
4536 }
4537
handle_stripe_expansion(struct r5conf * conf,struct stripe_head * sh)4538 static void handle_stripe_expansion(struct r5conf *conf, struct stripe_head *sh)
4539 {
4540 int i;
4541
4542 /* We have read all the blocks in this stripe and now we need to
4543 * copy some of them into a target stripe for expand.
4544 */
4545 struct dma_async_tx_descriptor *tx = NULL;
4546 BUG_ON(sh->batch_head);
4547 clear_bit(STRIPE_EXPAND_SOURCE, &sh->state);
4548 for (i = 0; i < sh->disks; i++)
4549 if (i != sh->pd_idx && i != sh->qd_idx) {
4550 int dd_idx, j;
4551 struct stripe_head *sh2;
4552 struct async_submit_ctl submit;
4553
4554 sector_t bn = raid5_compute_blocknr(sh, i, 1);
4555 sector_t s = raid5_compute_sector(conf, bn, 0,
4556 &dd_idx, NULL);
4557 sh2 = raid5_get_active_stripe(conf, NULL, s,
4558 R5_GAS_NOBLOCK | R5_GAS_NOQUIESCE);
4559 if (sh2 == NULL)
4560 /* so far only the early blocks of this stripe
4561 * have been requested. When later blocks
4562 * get requested, we will try again
4563 */
4564 continue;
4565 if (!test_bit(STRIPE_EXPANDING, &sh2->state) ||
4566 test_bit(R5_Expanded, &sh2->dev[dd_idx].flags)) {
4567 /* must have already done this block */
4568 raid5_release_stripe(sh2);
4569 continue;
4570 }
4571
4572 /* place all the copies on one channel */
4573 init_async_submit(&submit, 0, tx, NULL, NULL, NULL);
4574 tx = async_memcpy(sh2->dev[dd_idx].page,
4575 sh->dev[i].page, sh2->dev[dd_idx].offset,
4576 sh->dev[i].offset, RAID5_STRIPE_SIZE(conf),
4577 &submit);
4578
4579 set_bit(R5_Expanded, &sh2->dev[dd_idx].flags);
4580 set_bit(R5_UPTODATE, &sh2->dev[dd_idx].flags);
4581 for (j = 0; j < conf->raid_disks; j++)
4582 if (j != sh2->pd_idx &&
4583 j != sh2->qd_idx &&
4584 !test_bit(R5_Expanded, &sh2->dev[j].flags))
4585 break;
4586 if (j == conf->raid_disks) {
4587 set_bit(STRIPE_EXPAND_READY, &sh2->state);
4588 set_bit(STRIPE_HANDLE, &sh2->state);
4589 }
4590 raid5_release_stripe(sh2);
4591
4592 }
4593 /* done submitting copies, wait for them to complete */
4594 async_tx_quiesce(&tx);
4595 }
4596
4597 /*
4598 * handle_stripe - do things to a stripe.
4599 *
4600 * We lock the stripe by setting STRIPE_ACTIVE and then examine the
4601 * state of various bits to see what needs to be done.
4602 * Possible results:
4603 * return some read requests which now have data
4604 * return some write requests which are safely on storage
4605 * schedule a read on some buffers
4606 * schedule a write of some buffers
4607 * return confirmation of parity correctness
4608 *
4609 */
4610
analyse_stripe(struct stripe_head * sh,struct stripe_head_state * s)4611 static void analyse_stripe(struct stripe_head *sh, struct stripe_head_state *s)
4612 {
4613 struct r5conf *conf = sh->raid_conf;
4614 int disks = sh->disks;
4615 struct r5dev *dev;
4616 int i;
4617 int do_recovery = 0;
4618
4619 memset(s, 0, sizeof(*s));
4620
4621 s->expanding = test_bit(STRIPE_EXPAND_SOURCE, &sh->state) && !sh->batch_head;
4622 s->expanded = test_bit(STRIPE_EXPAND_READY, &sh->state) && !sh->batch_head;
4623 s->failed_num[0] = -1;
4624 s->failed_num[1] = -1;
4625 s->log_failed = r5l_log_disk_error(conf);
4626
4627 /* Now to look around and see what can be done */
4628 for (i=disks; i--; ) {
4629 struct md_rdev *rdev;
4630 int is_bad = 0;
4631
4632 dev = &sh->dev[i];
4633
4634 pr_debug("check %d: state 0x%lx read %p write %p written %p\n",
4635 i, dev->flags,
4636 dev->toread, dev->towrite, dev->written);
4637 /* maybe we can reply to a read
4638 *
4639 * new wantfill requests are only permitted while
4640 * ops_complete_biofill is guaranteed to be inactive
4641 */
4642 if (test_bit(R5_UPTODATE, &dev->flags) && dev->toread &&
4643 !test_bit(STRIPE_BIOFILL_RUN, &sh->state))
4644 set_bit(R5_Wantfill, &dev->flags);
4645
4646 /* now count some things */
4647 if (test_bit(R5_LOCKED, &dev->flags))
4648 s->locked++;
4649 if (test_bit(R5_UPTODATE, &dev->flags))
4650 s->uptodate++;
4651 if (test_bit(R5_Wantcompute, &dev->flags)) {
4652 s->compute++;
4653 BUG_ON(s->compute > 2);
4654 }
4655
4656 if (test_bit(R5_Wantfill, &dev->flags))
4657 s->to_fill++;
4658 else if (dev->toread)
4659 s->to_read++;
4660 if (dev->towrite) {
4661 s->to_write++;
4662 if (!test_bit(R5_OVERWRITE, &dev->flags))
4663 s->non_overwrite++;
4664 }
4665 if (dev->written)
4666 s->written++;
4667 /* Prefer to use the replacement for reads, but only
4668 * if it is recovered enough and has no bad blocks.
4669 */
4670 rdev = conf->disks[i].replacement;
4671 if (rdev && !test_bit(Faulty, &rdev->flags) &&
4672 rdev->recovery_offset >= sh->sector + RAID5_STRIPE_SECTORS(conf) &&
4673 !rdev_has_badblock(rdev, sh->sector,
4674 RAID5_STRIPE_SECTORS(conf)))
4675 set_bit(R5_ReadRepl, &dev->flags);
4676 else {
4677 if (rdev && !test_bit(Faulty, &rdev->flags))
4678 set_bit(R5_NeedReplace, &dev->flags);
4679 else
4680 clear_bit(R5_NeedReplace, &dev->flags);
4681 rdev = conf->disks[i].rdev;
4682 clear_bit(R5_ReadRepl, &dev->flags);
4683 }
4684 if (rdev && test_bit(Faulty, &rdev->flags))
4685 rdev = NULL;
4686 if (rdev) {
4687 is_bad = rdev_has_badblock(rdev, sh->sector,
4688 RAID5_STRIPE_SECTORS(conf));
4689 if (s->blocked_rdev == NULL) {
4690 if (is_bad < 0)
4691 set_bit(BlockedBadBlocks, &rdev->flags);
4692 if (rdev_blocked(rdev)) {
4693 s->blocked_rdev = rdev;
4694 atomic_inc(&rdev->nr_pending);
4695 }
4696 }
4697 }
4698 clear_bit(R5_Insync, &dev->flags);
4699 if (!rdev)
4700 /* Not in-sync */;
4701 else if (is_bad) {
4702 /* also not in-sync */
4703 if (!test_bit(WriteErrorSeen, &rdev->flags) &&
4704 test_bit(R5_UPTODATE, &dev->flags)) {
4705 /* treat as in-sync, but with a read error
4706 * which we can now try to correct
4707 */
4708 set_bit(R5_Insync, &dev->flags);
4709 set_bit(R5_ReadError, &dev->flags);
4710 }
4711 } else if (test_bit(In_sync, &rdev->flags))
4712 set_bit(R5_Insync, &dev->flags);
4713 else if (sh->sector + RAID5_STRIPE_SECTORS(conf) <=
4714 rdev->recovery_offset) {
4715 /*
4716 * in sync if:
4717 * - normal IO, or
4718 * - resync IO that is not lazy recovery
4719 *
4720 * For lazy recovery, we have to mark the rdev without
4721 * In_sync as failed, to build initial xor data.
4722 */
4723 if (!test_bit(STRIPE_SYNCING, &sh->state) ||
4724 !test_bit(MD_RECOVERY_LAZY_RECOVER,
4725 &conf->mddev->recovery))
4726 set_bit(R5_Insync, &dev->flags);
4727 } else if (test_bit(R5_UPTODATE, &dev->flags) &&
4728 test_bit(R5_Expanded, &dev->flags))
4729 /* If we've reshaped into here, we assume it is Insync.
4730 * We will shortly update recovery_offset to make
4731 * it official.
4732 */
4733 set_bit(R5_Insync, &dev->flags);
4734
4735 if (test_bit(R5_WriteError, &dev->flags)) {
4736 /* This flag does not apply to '.replacement'
4737 * only to .rdev, so make sure to check that*/
4738 struct md_rdev *rdev2 = conf->disks[i].rdev;
4739
4740 if (rdev2 == rdev)
4741 clear_bit(R5_Insync, &dev->flags);
4742 if (rdev2 && !test_bit(Faulty, &rdev2->flags)) {
4743 s->handle_bad_blocks = 1;
4744 atomic_inc(&rdev2->nr_pending);
4745 } else
4746 clear_bit(R5_WriteError, &dev->flags);
4747 }
4748 if (test_bit(R5_MadeGood, &dev->flags)) {
4749 /* This flag does not apply to '.replacement'
4750 * only to .rdev, so make sure to check that*/
4751 struct md_rdev *rdev2 = conf->disks[i].rdev;
4752
4753 if (rdev2 && !test_bit(Faulty, &rdev2->flags)) {
4754 s->handle_bad_blocks = 1;
4755 atomic_inc(&rdev2->nr_pending);
4756 } else
4757 clear_bit(R5_MadeGood, &dev->flags);
4758 }
4759 if (test_bit(R5_MadeGoodRepl, &dev->flags)) {
4760 struct md_rdev *rdev2 = conf->disks[i].replacement;
4761
4762 if (rdev2 && !test_bit(Faulty, &rdev2->flags)) {
4763 s->handle_bad_blocks = 1;
4764 atomic_inc(&rdev2->nr_pending);
4765 } else
4766 clear_bit(R5_MadeGoodRepl, &dev->flags);
4767 }
4768 if (!test_bit(R5_Insync, &dev->flags)) {
4769 /* The ReadError flag will just be confusing now */
4770 clear_bit(R5_ReadError, &dev->flags);
4771 clear_bit(R5_ReWrite, &dev->flags);
4772 }
4773 if (test_bit(R5_ReadError, &dev->flags))
4774 clear_bit(R5_Insync, &dev->flags);
4775 if (!test_bit(R5_Insync, &dev->flags)) {
4776 if (s->failed < 2)
4777 s->failed_num[s->failed] = i;
4778 s->failed++;
4779 if (rdev && !test_bit(Faulty, &rdev->flags))
4780 do_recovery = 1;
4781 else if (!rdev) {
4782 rdev = conf->disks[i].replacement;
4783 if (rdev && !test_bit(Faulty, &rdev->flags))
4784 do_recovery = 1;
4785 }
4786 }
4787
4788 if (test_bit(R5_InJournal, &dev->flags))
4789 s->injournal++;
4790 if (test_bit(R5_InJournal, &dev->flags) && dev->written)
4791 s->just_cached++;
4792 }
4793 if (test_bit(STRIPE_SYNCING, &sh->state)) {
4794 /* If there is a failed device being replaced,
4795 * we must be recovering.
4796 * else if we are after resync_offset, we must be syncing
4797 * else if MD_RECOVERY_REQUESTED is set, we also are syncing.
4798 * else we can only be replacing
4799 * sync and recovery both need to read all devices, and so
4800 * use the same flag.
4801 */
4802 if (do_recovery ||
4803 sh->sector >= conf->mddev->resync_offset ||
4804 test_bit(MD_RECOVERY_REQUESTED, &(conf->mddev->recovery)))
4805 s->syncing = 1;
4806 else
4807 s->replacing = 1;
4808 }
4809 }
4810
4811 /*
4812 * Return '1' if this is a member of batch, or '0' if it is a lone stripe or
4813 * a head which can now be handled.
4814 */
clear_batch_ready(struct stripe_head * sh)4815 static int clear_batch_ready(struct stripe_head *sh)
4816 {
4817 struct stripe_head *tmp;
4818 if (!test_and_clear_bit(STRIPE_BATCH_READY, &sh->state))
4819 return (sh->batch_head && sh->batch_head != sh);
4820 spin_lock(&sh->stripe_lock);
4821 if (!sh->batch_head) {
4822 spin_unlock(&sh->stripe_lock);
4823 return 0;
4824 }
4825
4826 /*
4827 * this stripe could be added to a batch list before we check
4828 * BATCH_READY, skips it
4829 */
4830 if (sh->batch_head != sh) {
4831 spin_unlock(&sh->stripe_lock);
4832 return 1;
4833 }
4834 spin_lock(&sh->batch_lock);
4835 list_for_each_entry(tmp, &sh->batch_list, batch_list)
4836 clear_bit(STRIPE_BATCH_READY, &tmp->state);
4837 spin_unlock(&sh->batch_lock);
4838 spin_unlock(&sh->stripe_lock);
4839
4840 /*
4841 * BATCH_READY is cleared, no new stripes can be added.
4842 * batch_list can be accessed without lock
4843 */
4844 return 0;
4845 }
4846
break_stripe_batch_list(struct stripe_head * head_sh,unsigned long handle_flags)4847 static void break_stripe_batch_list(struct stripe_head *head_sh,
4848 unsigned long handle_flags)
4849 {
4850 struct stripe_head *sh, *next;
4851 int i;
4852
4853 list_for_each_entry_safe(sh, next, &head_sh->batch_list, batch_list) {
4854
4855 list_del_init(&sh->batch_list);
4856
4857 WARN_ONCE(sh->state & ((1 << STRIPE_ACTIVE) |
4858 (1 << STRIPE_SYNCING) |
4859 (1 << STRIPE_REPLACED) |
4860 (1 << STRIPE_DELAYED) |
4861 (1 << STRIPE_BIT_DELAY) |
4862 (1 << STRIPE_FULL_WRITE) |
4863 (1 << STRIPE_BIOFILL_RUN) |
4864 (1 << STRIPE_COMPUTE_RUN) |
4865 (1 << STRIPE_DISCARD) |
4866 (1 << STRIPE_BATCH_READY) |
4867 (1 << STRIPE_BATCH_ERR)),
4868 "stripe state: %lx\n", sh->state);
4869 WARN_ONCE(head_sh->state & ((1 << STRIPE_DISCARD) |
4870 (1 << STRIPE_REPLACED)),
4871 "head stripe state: %lx\n", head_sh->state);
4872
4873 set_mask_bits(&sh->state, ~(STRIPE_EXPAND_SYNC_FLAGS |
4874 (1 << STRIPE_PREREAD_ACTIVE) |
4875 (1 << STRIPE_ON_UNPLUG_LIST)),
4876 head_sh->state & (1 << STRIPE_INSYNC));
4877
4878 sh->check_state = head_sh->check_state;
4879 sh->reconstruct_state = head_sh->reconstruct_state;
4880 spin_lock_irq(&sh->stripe_lock);
4881 sh->batch_head = NULL;
4882 spin_unlock_irq(&sh->stripe_lock);
4883 for (i = 0; i < sh->disks; i++) {
4884 if (test_and_clear_bit(R5_Overlap, &sh->dev[i].flags))
4885 wake_up_bit(&sh->dev[i].flags, R5_Overlap);
4886 sh->dev[i].flags = head_sh->dev[i].flags &
4887 (~((1 << R5_WriteError) | (1 << R5_Overlap)));
4888 }
4889 if (handle_flags == 0 ||
4890 sh->state & handle_flags)
4891 set_bit(STRIPE_HANDLE, &sh->state);
4892 raid5_release_stripe(sh);
4893 }
4894 spin_lock_irq(&head_sh->stripe_lock);
4895 head_sh->batch_head = NULL;
4896 spin_unlock_irq(&head_sh->stripe_lock);
4897 for (i = 0; i < head_sh->disks; i++)
4898 if (test_and_clear_bit(R5_Overlap, &head_sh->dev[i].flags))
4899 wake_up_bit(&head_sh->dev[i].flags, R5_Overlap);
4900 if (head_sh->state & handle_flags)
4901 set_bit(STRIPE_HANDLE, &head_sh->state);
4902 }
4903
handle_stripe(struct stripe_head * sh)4904 static void handle_stripe(struct stripe_head *sh)
4905 {
4906 struct stripe_head_state s;
4907 struct r5conf *conf = sh->raid_conf;
4908 int i;
4909 int prexor;
4910 int disks = sh->disks;
4911 struct r5dev *pdev, *qdev;
4912
4913 clear_bit(STRIPE_HANDLE, &sh->state);
4914
4915 /*
4916 * handle_stripe should not continue handle the batched stripe, only
4917 * the head of batch list or lone stripe can continue. Otherwise we
4918 * could see break_stripe_batch_list warns about the STRIPE_ACTIVE
4919 * is set for the batched stripe.
4920 */
4921 if (clear_batch_ready(sh))
4922 return;
4923
4924 if (test_and_set_bit_lock(STRIPE_ACTIVE, &sh->state)) {
4925 /* already being handled, ensure it gets handled
4926 * again when current action finishes */
4927 set_bit(STRIPE_HANDLE, &sh->state);
4928 return;
4929 }
4930
4931 if (test_and_clear_bit(STRIPE_BATCH_ERR, &sh->state))
4932 break_stripe_batch_list(sh, 0);
4933
4934 if (test_bit(STRIPE_SYNC_REQUESTED, &sh->state) && !sh->batch_head) {
4935 spin_lock(&sh->stripe_lock);
4936 /*
4937 * Cannot process 'sync' concurrently with 'discard'.
4938 * Flush data in r5cache before 'sync'.
4939 */
4940 if (!test_bit(STRIPE_R5C_PARTIAL_STRIPE, &sh->state) &&
4941 !test_bit(STRIPE_R5C_FULL_STRIPE, &sh->state) &&
4942 !test_bit(STRIPE_DISCARD, &sh->state) &&
4943 test_and_clear_bit(STRIPE_SYNC_REQUESTED, &sh->state)) {
4944 set_bit(STRIPE_SYNCING, &sh->state);
4945 clear_bit(STRIPE_INSYNC, &sh->state);
4946 clear_bit(STRIPE_REPLACED, &sh->state);
4947 }
4948 spin_unlock(&sh->stripe_lock);
4949 }
4950 clear_bit(STRIPE_DELAYED, &sh->state);
4951
4952 pr_debug("handling stripe %llu, state=%#lx cnt=%d, "
4953 "pd_idx=%d, qd_idx=%d\n, check:%d, reconstruct:%d\n",
4954 (unsigned long long)sh->sector, sh->state,
4955 atomic_read(&sh->count), sh->pd_idx, sh->qd_idx,
4956 sh->check_state, sh->reconstruct_state);
4957
4958 analyse_stripe(sh, &s);
4959
4960 if (test_bit(STRIPE_LOG_TRAPPED, &sh->state))
4961 goto finish;
4962
4963 if (s.handle_bad_blocks ||
4964 (md_is_rdwr(conf->mddev) &&
4965 test_bit(MD_SB_CHANGE_PENDING, &conf->mddev->sb_flags))) {
4966 set_bit(STRIPE_HANDLE, &sh->state);
4967 goto finish;
4968 }
4969
4970 if (unlikely(s.blocked_rdev)) {
4971 if (s.syncing || s.expanding || s.expanded ||
4972 s.replacing || s.to_write || s.written) {
4973 set_bit(STRIPE_HANDLE, &sh->state);
4974 goto finish;
4975 }
4976 /* There is nothing for the blocked_rdev to block */
4977 rdev_dec_pending(s.blocked_rdev, conf->mddev);
4978 s.blocked_rdev = NULL;
4979 }
4980
4981 if (s.to_fill && !test_bit(STRIPE_BIOFILL_RUN, &sh->state)) {
4982 set_bit(STRIPE_OP_BIOFILL, &s.ops_request);
4983 set_bit(STRIPE_BIOFILL_RUN, &sh->state);
4984 }
4985
4986 pr_debug("locked=%d uptodate=%d to_read=%d"
4987 " to_write=%d failed=%d failed_num=%d,%d\n",
4988 s.locked, s.uptodate, s.to_read, s.to_write, s.failed,
4989 s.failed_num[0], s.failed_num[1]);
4990 /*
4991 * check if the array has lost more than max_degraded devices and,
4992 * if so, some requests might need to be failed.
4993 *
4994 * When journal device failed (log_failed), we will only process
4995 * the stripe if there is data need write to raid disks
4996 */
4997 if (s.failed > conf->max_degraded ||
4998 (s.log_failed && s.injournal == 0)) {
4999 sh->check_state = 0;
5000 sh->reconstruct_state = 0;
5001 break_stripe_batch_list(sh, 0);
5002 if (s.to_read+s.to_write+s.written)
5003 handle_failed_stripe(conf, sh, &s, disks);
5004 if (s.syncing + s.replacing)
5005 handle_failed_sync(conf, sh, &s);
5006 }
5007
5008 /* Now we check to see if any write operations have recently
5009 * completed
5010 */
5011 prexor = 0;
5012 if (sh->reconstruct_state == reconstruct_state_prexor_drain_result)
5013 prexor = 1;
5014 if (sh->reconstruct_state == reconstruct_state_drain_result ||
5015 sh->reconstruct_state == reconstruct_state_prexor_drain_result) {
5016 sh->reconstruct_state = reconstruct_state_idle;
5017
5018 /* All the 'written' buffers and the parity block are ready to
5019 * be written back to disk
5020 */
5021 BUG_ON(!test_bit(R5_UPTODATE, &sh->dev[sh->pd_idx].flags) &&
5022 !test_bit(R5_Discard, &sh->dev[sh->pd_idx].flags));
5023 BUG_ON(sh->qd_idx >= 0 &&
5024 !test_bit(R5_UPTODATE, &sh->dev[sh->qd_idx].flags) &&
5025 !test_bit(R5_Discard, &sh->dev[sh->qd_idx].flags));
5026 for (i = disks; i--; ) {
5027 struct r5dev *dev = &sh->dev[i];
5028 if (test_bit(R5_LOCKED, &dev->flags) &&
5029 (i == sh->pd_idx || i == sh->qd_idx ||
5030 dev->written || test_bit(R5_InJournal,
5031 &dev->flags))) {
5032 pr_debug("Writing block %d\n", i);
5033 set_bit(R5_Wantwrite, &dev->flags);
5034 if (prexor)
5035 continue;
5036 if (s.failed > 1)
5037 continue;
5038 if (!test_bit(R5_Insync, &dev->flags) ||
5039 ((i == sh->pd_idx || i == sh->qd_idx) &&
5040 s.failed == 0))
5041 set_bit(STRIPE_INSYNC, &sh->state);
5042 }
5043 }
5044 if (test_and_clear_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
5045 s.dec_preread_active = 1;
5046 }
5047
5048 /*
5049 * might be able to return some write requests if the parity blocks
5050 * are safe, or on a failed drive
5051 */
5052 pdev = &sh->dev[sh->pd_idx];
5053 s.p_failed = (s.failed >= 1 && s.failed_num[0] == sh->pd_idx)
5054 || (s.failed >= 2 && s.failed_num[1] == sh->pd_idx);
5055 qdev = &sh->dev[sh->qd_idx];
5056 s.q_failed = (s.failed >= 1 && s.failed_num[0] == sh->qd_idx)
5057 || (s.failed >= 2 && s.failed_num[1] == sh->qd_idx)
5058 || conf->level < 6;
5059
5060 if (s.written &&
5061 (s.p_failed || ((test_bit(R5_Insync, &pdev->flags)
5062 && !test_bit(R5_LOCKED, &pdev->flags)
5063 && (test_bit(R5_UPTODATE, &pdev->flags) ||
5064 test_bit(R5_Discard, &pdev->flags))))) &&
5065 (s.q_failed || ((test_bit(R5_Insync, &qdev->flags)
5066 && !test_bit(R5_LOCKED, &qdev->flags)
5067 && (test_bit(R5_UPTODATE, &qdev->flags) ||
5068 test_bit(R5_Discard, &qdev->flags))))))
5069 handle_stripe_clean_event(conf, sh, disks);
5070
5071 if (s.just_cached)
5072 r5c_handle_cached_data_endio(conf, sh, disks);
5073 log_stripe_write_finished(sh);
5074
5075 /* Now we might consider reading some blocks, either to check/generate
5076 * parity, or to satisfy requests
5077 * or to load a block that is being partially written.
5078 */
5079 if (s.to_read || s.non_overwrite
5080 || (s.to_write && s.failed)
5081 || (s.syncing && (s.uptodate + s.compute < disks))
5082 || s.replacing
5083 || s.expanding)
5084 handle_stripe_fill(sh, &s, disks);
5085
5086 /*
5087 * When the stripe finishes full journal write cycle (write to journal
5088 * and raid disk), this is the clean up procedure so it is ready for
5089 * next operation.
5090 */
5091 r5c_finish_stripe_write_out(conf, sh, &s);
5092
5093 /*
5094 * Now to consider new write requests, cache write back and what else,
5095 * if anything should be read. We do not handle new writes when:
5096 * 1/ A 'write' operation (copy+xor) is already in flight.
5097 * 2/ A 'check' operation is in flight, as it may clobber the parity
5098 * block.
5099 * 3/ A r5c cache log write is in flight.
5100 */
5101
5102 if (!sh->reconstruct_state && !sh->check_state && !sh->log_io) {
5103 if (!r5c_is_writeback(conf->log)) {
5104 if (s.to_write)
5105 handle_stripe_dirtying(conf, sh, &s, disks);
5106 } else { /* write back cache */
5107 int ret = 0;
5108
5109 /* First, try handle writes in caching phase */
5110 if (s.to_write)
5111 ret = r5c_try_caching_write(conf, sh, &s,
5112 disks);
5113 /*
5114 * If caching phase failed: ret == -EAGAIN
5115 * OR
5116 * stripe under reclaim: !caching && injournal
5117 *
5118 * fall back to handle_stripe_dirtying()
5119 */
5120 if (ret == -EAGAIN ||
5121 /* stripe under reclaim: !caching && injournal */
5122 (!test_bit(STRIPE_R5C_CACHING, &sh->state) &&
5123 s.injournal > 0)) {
5124 ret = handle_stripe_dirtying(conf, sh, &s,
5125 disks);
5126 if (ret == -EAGAIN)
5127 goto finish;
5128 }
5129 }
5130 }
5131
5132 /* maybe we need to check and possibly fix the parity for this stripe
5133 * Any reads will already have been scheduled, so we just see if enough
5134 * data is available. The parity check is held off while parity
5135 * dependent operations are in flight.
5136 */
5137 if (sh->check_state ||
5138 (s.syncing && s.locked == 0 &&
5139 !test_bit(STRIPE_COMPUTE_RUN, &sh->state) &&
5140 !test_bit(STRIPE_INSYNC, &sh->state))) {
5141 if (conf->level == 6)
5142 handle_parity_checks6(conf, sh, &s, disks);
5143 else
5144 handle_parity_checks5(conf, sh, &s, disks);
5145 }
5146
5147 if ((s.replacing || s.syncing) && s.locked == 0
5148 && !test_bit(STRIPE_COMPUTE_RUN, &sh->state)
5149 && !test_bit(STRIPE_REPLACED, &sh->state)) {
5150 /* Write out to replacement devices where possible */
5151 for (i = 0; i < conf->raid_disks; i++)
5152 if (test_bit(R5_NeedReplace, &sh->dev[i].flags)) {
5153 WARN_ON(!test_bit(R5_UPTODATE, &sh->dev[i].flags));
5154 set_bit(R5_WantReplace, &sh->dev[i].flags);
5155 set_bit(R5_LOCKED, &sh->dev[i].flags);
5156 s.locked++;
5157 }
5158 if (s.replacing)
5159 set_bit(STRIPE_INSYNC, &sh->state);
5160 set_bit(STRIPE_REPLACED, &sh->state);
5161 }
5162 if ((s.syncing || s.replacing) && s.locked == 0 &&
5163 !test_bit(STRIPE_COMPUTE_RUN, &sh->state) &&
5164 test_bit(STRIPE_INSYNC, &sh->state)) {
5165 md_done_sync(conf->mddev, RAID5_STRIPE_SECTORS(conf));
5166 clear_bit(STRIPE_SYNCING, &sh->state);
5167 if (test_and_clear_bit(R5_Overlap, &sh->dev[sh->pd_idx].flags))
5168 wake_up_bit(&sh->dev[sh->pd_idx].flags, R5_Overlap);
5169 }
5170
5171 /* If the failed drives are just a ReadError, then we might need
5172 * to progress the repair/check process
5173 */
5174 if (s.failed <= conf->max_degraded && !conf->mddev->ro)
5175 for (i = 0; i < s.failed; i++) {
5176 struct r5dev *dev = &sh->dev[s.failed_num[i]];
5177 if (test_bit(R5_ReadError, &dev->flags)
5178 && !test_bit(R5_LOCKED, &dev->flags)
5179 && test_bit(R5_UPTODATE, &dev->flags)
5180 ) {
5181 if (!test_bit(R5_ReWrite, &dev->flags)) {
5182 set_bit(R5_Wantwrite, &dev->flags);
5183 set_bit(R5_ReWrite, &dev->flags);
5184 } else
5185 /* let's read it back */
5186 set_bit(R5_Wantread, &dev->flags);
5187 set_bit(R5_LOCKED, &dev->flags);
5188 s.locked++;
5189 }
5190 }
5191
5192 /* Finish reconstruct operations initiated by the expansion process */
5193 if (sh->reconstruct_state == reconstruct_state_result) {
5194 struct stripe_head *sh_src
5195 = raid5_get_active_stripe(conf, NULL, sh->sector,
5196 R5_GAS_PREVIOUS | R5_GAS_NOBLOCK |
5197 R5_GAS_NOQUIESCE);
5198 if (sh_src && test_bit(STRIPE_EXPAND_SOURCE, &sh_src->state)) {
5199 /* sh cannot be written until sh_src has been read.
5200 * so arrange for sh to be delayed a little
5201 */
5202 set_bit(STRIPE_DELAYED, &sh->state);
5203 set_bit(STRIPE_HANDLE, &sh->state);
5204 if (!test_and_set_bit(STRIPE_PREREAD_ACTIVE,
5205 &sh_src->state))
5206 atomic_inc(&conf->preread_active_stripes);
5207 raid5_release_stripe(sh_src);
5208 goto finish;
5209 }
5210 if (sh_src)
5211 raid5_release_stripe(sh_src);
5212
5213 sh->reconstruct_state = reconstruct_state_idle;
5214 clear_bit(STRIPE_EXPANDING, &sh->state);
5215 for (i = conf->raid_disks; i--; ) {
5216 set_bit(R5_Wantwrite, &sh->dev[i].flags);
5217 set_bit(R5_LOCKED, &sh->dev[i].flags);
5218 s.locked++;
5219 }
5220 }
5221
5222 if (s.expanded && test_bit(STRIPE_EXPANDING, &sh->state) &&
5223 !sh->reconstruct_state) {
5224 /* Need to write out all blocks after computing parity */
5225 sh->disks = conf->raid_disks;
5226 stripe_set_idx(sh->sector, conf, 0, sh);
5227 schedule_reconstruction(sh, &s, 1, 1);
5228 } else if (s.expanded && !sh->reconstruct_state && s.locked == 0) {
5229 clear_bit(STRIPE_EXPAND_READY, &sh->state);
5230 atomic_dec(&conf->reshape_stripes);
5231 wake_up(&conf->wait_for_reshape);
5232 md_done_sync(conf->mddev, RAID5_STRIPE_SECTORS(conf));
5233 }
5234
5235 if (s.expanding && s.locked == 0 &&
5236 !test_bit(STRIPE_COMPUTE_RUN, &sh->state))
5237 handle_stripe_expansion(conf, sh);
5238
5239 finish:
5240 /* wait for this device to become unblocked */
5241 if (unlikely(s.blocked_rdev)) {
5242 if (conf->mddev->external)
5243 md_wait_for_blocked_rdev(s.blocked_rdev,
5244 conf->mddev);
5245 else
5246 /* Internal metadata will immediately
5247 * be written by raid5d, so we don't
5248 * need to wait here.
5249 */
5250 rdev_dec_pending(s.blocked_rdev,
5251 conf->mddev);
5252 }
5253
5254 if (s.handle_bad_blocks)
5255 for (i = disks; i--; ) {
5256 struct md_rdev *rdev;
5257 struct r5dev *dev = &sh->dev[i];
5258 if (test_and_clear_bit(R5_WriteError, &dev->flags)) {
5259 /* We own a safe reference to the rdev */
5260 rdev = conf->disks[i].rdev;
5261 rdev_set_badblocks(rdev, sh->sector,
5262 RAID5_STRIPE_SECTORS(conf), 0);
5263 rdev_dec_pending(rdev, conf->mddev);
5264 }
5265 if (test_and_clear_bit(R5_MadeGood, &dev->flags)) {
5266 rdev = conf->disks[i].rdev;
5267 rdev_clear_badblocks(rdev, sh->sector,
5268 RAID5_STRIPE_SECTORS(conf), 0);
5269 rdev_dec_pending(rdev, conf->mddev);
5270 }
5271 if (test_and_clear_bit(R5_MadeGoodRepl, &dev->flags)) {
5272 rdev = conf->disks[i].replacement;
5273 if (!rdev)
5274 /* rdev have been moved down */
5275 rdev = conf->disks[i].rdev;
5276 rdev_clear_badblocks(rdev, sh->sector,
5277 RAID5_STRIPE_SECTORS(conf), 0);
5278 rdev_dec_pending(rdev, conf->mddev);
5279 }
5280 }
5281
5282 if (s.ops_request)
5283 raid_run_ops(sh, s.ops_request);
5284
5285 ops_run_io(sh, &s);
5286
5287 if (s.dec_preread_active) {
5288 /* We delay this until after ops_run_io so that if make_request
5289 * is waiting on a flush, it won't continue until the writes
5290 * have actually been submitted.
5291 */
5292 atomic_dec(&conf->preread_active_stripes);
5293 if (atomic_read(&conf->preread_active_stripes) <
5294 IO_THRESHOLD)
5295 md_wakeup_thread(conf->mddev->thread);
5296 }
5297
5298 clear_bit_unlock(STRIPE_ACTIVE, &sh->state);
5299 }
5300
raid5_activate_delayed(struct r5conf * conf)5301 static void raid5_activate_delayed(struct r5conf *conf)
5302 __must_hold(&conf->device_lock)
5303 {
5304 if (atomic_read(&conf->preread_active_stripes) < IO_THRESHOLD) {
5305 while (!list_empty(&conf->delayed_list)) {
5306 struct list_head *l = conf->delayed_list.next;
5307 struct stripe_head *sh;
5308 sh = list_entry(l, struct stripe_head, lru);
5309 list_del_init(l);
5310 clear_bit(STRIPE_DELAYED, &sh->state);
5311 if (!test_and_set_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
5312 atomic_inc(&conf->preread_active_stripes);
5313 list_add_tail(&sh->lru, &conf->hold_list);
5314 raid5_wakeup_stripe_thread(sh);
5315 }
5316 }
5317 }
5318
activate_bit_delay(struct r5conf * conf,struct list_head * temp_inactive_list)5319 static void activate_bit_delay(struct r5conf *conf,
5320 struct list_head *temp_inactive_list)
5321 __must_hold(&conf->device_lock)
5322 {
5323 struct list_head head;
5324 list_add(&head, &conf->bitmap_list);
5325 list_del_init(&conf->bitmap_list);
5326 while (!list_empty(&head)) {
5327 struct stripe_head *sh = list_entry(head.next, struct stripe_head, lru);
5328 int hash;
5329 list_del_init(&sh->lru);
5330 atomic_inc(&sh->count);
5331 hash = sh->hash_lock_index;
5332 __release_stripe(conf, sh, &temp_inactive_list[hash]);
5333 }
5334 }
5335
in_chunk_boundary(struct mddev * mddev,struct bio * bio)5336 static int in_chunk_boundary(struct mddev *mddev, struct bio *bio)
5337 {
5338 struct r5conf *conf = mddev->private;
5339 sector_t sector = bio->bi_iter.bi_sector;
5340 unsigned int chunk_sectors;
5341 unsigned int bio_sectors = bio_sectors(bio);
5342
5343 chunk_sectors = min(conf->chunk_sectors, conf->prev_chunk_sectors);
5344 return chunk_sectors >=
5345 ((sector & (chunk_sectors - 1)) + bio_sectors);
5346 }
5347
5348 /*
5349 * add bio to the retry LIFO ( in O(1) ... we are in interrupt )
5350 * later sampled by raid5d.
5351 */
add_bio_to_retry(struct bio * bi,struct r5conf * conf)5352 static void add_bio_to_retry(struct bio *bi,struct r5conf *conf)
5353 {
5354 unsigned long flags;
5355
5356 spin_lock_irqsave(&conf->device_lock, flags);
5357
5358 bi->bi_next = conf->retry_read_aligned_list;
5359 conf->retry_read_aligned_list = bi;
5360
5361 spin_unlock_irqrestore(&conf->device_lock, flags);
5362 md_wakeup_thread(conf->mddev->thread);
5363 }
5364
remove_bio_from_retry(struct r5conf * conf,unsigned int * offset)5365 static struct bio *remove_bio_from_retry(struct r5conf *conf,
5366 unsigned int *offset)
5367 {
5368 struct bio *bi;
5369
5370 bi = conf->retry_read_aligned;
5371 if (bi) {
5372 *offset = conf->retry_read_offset;
5373 conf->retry_read_aligned = NULL;
5374 return bi;
5375 }
5376 bi = conf->retry_read_aligned_list;
5377 if(bi) {
5378 conf->retry_read_aligned_list = bi->bi_next;
5379 bi->bi_next = NULL;
5380 *offset = 0;
5381 }
5382
5383 return bi;
5384 }
5385
5386 /*
5387 * The "raid5_align_endio" should check if the read succeeded and if it
5388 * did, call bio_endio on the original bio (having bio_put the new bio
5389 * first).
5390 * If the read failed..
5391 */
raid5_align_endio(struct bio * bi)5392 static void raid5_align_endio(struct bio *bi)
5393 {
5394 struct bio *raid_bi = bi->bi_private;
5395 struct md_rdev *rdev = (void *)raid_bi->bi_next;
5396 struct mddev *mddev = rdev->mddev;
5397 struct r5conf *conf = mddev->private;
5398 blk_status_t error = bi->bi_status;
5399
5400 bio_put(bi);
5401 raid_bi->bi_next = NULL;
5402 rdev_dec_pending(rdev, conf->mddev);
5403
5404 if (!error) {
5405 bio_endio(raid_bi);
5406 if (atomic_dec_and_test(&conf->active_aligned_reads))
5407 wake_up(&conf->wait_for_quiescent);
5408 return;
5409 }
5410
5411 pr_debug("raid5_align_endio : io error...handing IO for a retry\n");
5412
5413 add_bio_to_retry(raid_bi, conf);
5414 }
5415
raid5_read_one_chunk(struct mddev * mddev,struct bio * raid_bio)5416 static int raid5_read_one_chunk(struct mddev *mddev, struct bio *raid_bio)
5417 {
5418 struct r5conf *conf = mddev->private;
5419 struct bio *align_bio;
5420 struct md_rdev *rdev;
5421 sector_t sector, end_sector;
5422 int dd_idx;
5423 bool did_inc;
5424
5425 if (!in_chunk_boundary(mddev, raid_bio)) {
5426 pr_debug("%s: non aligned\n", __func__);
5427 return 0;
5428 }
5429
5430 sector = raid5_compute_sector(conf, raid_bio->bi_iter.bi_sector, 0,
5431 &dd_idx, NULL);
5432 end_sector = sector + bio_sectors(raid_bio);
5433
5434 if (r5c_big_stripe_cached(conf, sector))
5435 return 0;
5436
5437 rdev = conf->disks[dd_idx].replacement;
5438 if (!rdev || test_bit(Faulty, &rdev->flags) ||
5439 rdev->recovery_offset < end_sector) {
5440 rdev = conf->disks[dd_idx].rdev;
5441 if (!rdev)
5442 return 0;
5443 if (test_bit(Faulty, &rdev->flags) ||
5444 !(test_bit(In_sync, &rdev->flags) ||
5445 rdev->recovery_offset >= end_sector))
5446 return 0;
5447 }
5448
5449 atomic_inc(&rdev->nr_pending);
5450
5451 if (rdev_has_badblock(rdev, sector, bio_sectors(raid_bio))) {
5452 rdev_dec_pending(rdev, mddev);
5453 return 0;
5454 }
5455
5456 md_account_bio(mddev, &raid_bio);
5457 raid_bio->bi_next = (void *)rdev;
5458
5459 align_bio = bio_alloc_clone(rdev->bdev, raid_bio, GFP_NOIO,
5460 &mddev->bio_set);
5461 align_bio->bi_end_io = raid5_align_endio;
5462 align_bio->bi_private = raid_bio;
5463 align_bio->bi_iter.bi_sector = sector;
5464
5465 /* No reshape active, so we can trust rdev->data_offset */
5466 align_bio->bi_iter.bi_sector += rdev->data_offset;
5467
5468 did_inc = false;
5469 if (conf->quiesce == 0) {
5470 atomic_inc(&conf->active_aligned_reads);
5471 did_inc = true;
5472 }
5473 /* need a memory barrier to detect the race with raid5_quiesce() */
5474 if (!did_inc || smp_load_acquire(&conf->quiesce) != 0) {
5475 /* quiesce is in progress, so we need to undo io activation and wait
5476 * for it to finish
5477 */
5478 if (did_inc && atomic_dec_and_test(&conf->active_aligned_reads))
5479 wake_up(&conf->wait_for_quiescent);
5480 spin_lock_irq(&conf->device_lock);
5481 wait_event_lock_irq(conf->wait_for_quiescent, conf->quiesce == 0,
5482 conf->device_lock);
5483 atomic_inc(&conf->active_aligned_reads);
5484 spin_unlock_irq(&conf->device_lock);
5485 }
5486
5487 mddev_trace_remap(mddev, align_bio, raid_bio->bi_iter.bi_sector);
5488 submit_bio_noacct(align_bio);
5489 return 1;
5490 }
5491
chunk_aligned_read(struct mddev * mddev,struct bio * raid_bio)5492 static struct bio *chunk_aligned_read(struct mddev *mddev, struct bio *raid_bio)
5493 {
5494 sector_t sector = raid_bio->bi_iter.bi_sector;
5495 unsigned chunk_sects = mddev->chunk_sectors;
5496 unsigned sectors = chunk_sects - (sector & (chunk_sects-1));
5497
5498 if (sectors < bio_sectors(raid_bio)) {
5499 struct r5conf *conf = mddev->private;
5500
5501 raid_bio = bio_submit_split_bioset(raid_bio, sectors,
5502 &conf->bio_split);
5503 if (!raid_bio)
5504 return NULL;
5505 }
5506
5507 if (!raid5_read_one_chunk(mddev, raid_bio))
5508 return raid_bio;
5509
5510 return NULL;
5511 }
5512
5513 /* __get_priority_stripe - get the next stripe to process
5514 *
5515 * Full stripe writes are allowed to pass preread active stripes up until
5516 * the bypass_threshold is exceeded. In general the bypass_count
5517 * increments when the handle_list is handled before the hold_list; however, it
5518 * will not be incremented when STRIPE_IO_STARTED is sampled set signifying a
5519 * stripe with in flight i/o. The bypass_count will be reset when the
5520 * head of the hold_list has changed, i.e. the head was promoted to the
5521 * handle_list.
5522 */
__get_priority_stripe(struct r5conf * conf,int group)5523 static struct stripe_head *__get_priority_stripe(struct r5conf *conf, int group)
5524 __must_hold(&conf->device_lock)
5525 {
5526 struct stripe_head *sh, *tmp;
5527 struct list_head *handle_list = NULL;
5528 struct r5worker_group *wg;
5529 bool second_try = !r5c_is_writeback(conf->log) &&
5530 !r5l_log_disk_error(conf);
5531 bool try_loprio = test_bit(R5C_LOG_TIGHT, &conf->cache_state) ||
5532 r5l_log_disk_error(conf);
5533
5534 again:
5535 wg = NULL;
5536 sh = NULL;
5537 if (conf->worker_cnt_per_group == 0) {
5538 handle_list = try_loprio ? &conf->loprio_list :
5539 &conf->handle_list;
5540 } else if (group != ANY_GROUP) {
5541 handle_list = try_loprio ? &conf->worker_groups[group].loprio_list :
5542 &conf->worker_groups[group].handle_list;
5543 wg = &conf->worker_groups[group];
5544 } else {
5545 int i;
5546 for (i = 0; i < conf->group_cnt; i++) {
5547 handle_list = try_loprio ? &conf->worker_groups[i].loprio_list :
5548 &conf->worker_groups[i].handle_list;
5549 wg = &conf->worker_groups[i];
5550 if (!list_empty(handle_list))
5551 break;
5552 }
5553 }
5554
5555 pr_debug("%s: handle: %s hold: %s full_writes: %d bypass_count: %d\n",
5556 __func__,
5557 list_empty(handle_list) ? "empty" : "busy",
5558 list_empty(&conf->hold_list) ? "empty" : "busy",
5559 atomic_read(&conf->pending_full_writes), conf->bypass_count);
5560
5561 if (!list_empty(handle_list)) {
5562 sh = list_entry(handle_list->next, typeof(*sh), lru);
5563
5564 if (list_empty(&conf->hold_list))
5565 conf->bypass_count = 0;
5566 else if (!test_bit(STRIPE_IO_STARTED, &sh->state)) {
5567 if (conf->hold_list.next == conf->last_hold)
5568 conf->bypass_count++;
5569 else {
5570 conf->last_hold = conf->hold_list.next;
5571 conf->bypass_count -= conf->bypass_threshold;
5572 if (conf->bypass_count < 0)
5573 conf->bypass_count = 0;
5574 }
5575 }
5576 } else if (!list_empty(&conf->hold_list) &&
5577 ((conf->bypass_threshold &&
5578 conf->bypass_count > conf->bypass_threshold) ||
5579 atomic_read(&conf->pending_full_writes) == 0)) {
5580
5581 list_for_each_entry(tmp, &conf->hold_list, lru) {
5582 if (conf->worker_cnt_per_group == 0 ||
5583 group == ANY_GROUP ||
5584 !cpu_online(tmp->cpu) ||
5585 cpu_to_group(tmp->cpu) == group) {
5586 sh = tmp;
5587 break;
5588 }
5589 }
5590
5591 if (sh) {
5592 conf->bypass_count -= conf->bypass_threshold;
5593 if (conf->bypass_count < 0)
5594 conf->bypass_count = 0;
5595 }
5596 wg = NULL;
5597 }
5598
5599 if (!sh) {
5600 if (second_try)
5601 return NULL;
5602 second_try = true;
5603 try_loprio = !try_loprio;
5604 goto again;
5605 }
5606
5607 if (wg) {
5608 wg->stripes_cnt--;
5609 sh->group = NULL;
5610 }
5611 list_del_init(&sh->lru);
5612 BUG_ON(atomic_inc_return(&sh->count) != 1);
5613 return sh;
5614 }
5615
5616 struct raid5_plug_cb {
5617 struct blk_plug_cb cb;
5618 struct list_head list;
5619 struct list_head temp_inactive_list[NR_STRIPE_HASH_LOCKS];
5620 };
5621
raid5_unplug(struct blk_plug_cb * blk_cb,bool from_schedule)5622 static void raid5_unplug(struct blk_plug_cb *blk_cb, bool from_schedule)
5623 {
5624 struct raid5_plug_cb *cb = container_of(
5625 blk_cb, struct raid5_plug_cb, cb);
5626 struct stripe_head *sh;
5627 struct mddev *mddev = cb->cb.data;
5628 struct r5conf *conf = mddev->private;
5629 int cnt = 0;
5630 int hash;
5631
5632 if (cb->list.next && !list_empty(&cb->list)) {
5633 spin_lock_irq(&conf->device_lock);
5634 while (!list_empty(&cb->list)) {
5635 sh = list_first_entry(&cb->list, struct stripe_head, lru);
5636 list_del_init(&sh->lru);
5637 /*
5638 * avoid race release_stripe_plug() sees
5639 * STRIPE_ON_UNPLUG_LIST clear but the stripe
5640 * is still in our list
5641 */
5642 smp_mb__before_atomic();
5643 clear_bit(STRIPE_ON_UNPLUG_LIST, &sh->state);
5644 /*
5645 * STRIPE_ON_RELEASE_LIST could be set here. In that
5646 * case, the count is always > 1 here
5647 */
5648 hash = sh->hash_lock_index;
5649 __release_stripe(conf, sh, &cb->temp_inactive_list[hash]);
5650 cnt++;
5651 }
5652 spin_unlock_irq(&conf->device_lock);
5653 }
5654 release_inactive_stripe_list(conf, cb->temp_inactive_list,
5655 NR_STRIPE_HASH_LOCKS);
5656 if (!mddev_is_dm(mddev))
5657 trace_block_unplug(mddev->gendisk->queue, cnt, !from_schedule);
5658 kfree(cb);
5659 }
5660
release_stripe_plug(struct mddev * mddev,struct stripe_head * sh)5661 static void release_stripe_plug(struct mddev *mddev,
5662 struct stripe_head *sh)
5663 {
5664 struct blk_plug_cb *blk_cb = blk_check_plugged(
5665 raid5_unplug, mddev,
5666 sizeof(struct raid5_plug_cb));
5667 struct raid5_plug_cb *cb;
5668
5669 if (!blk_cb) {
5670 raid5_release_stripe(sh);
5671 return;
5672 }
5673
5674 cb = container_of(blk_cb, struct raid5_plug_cb, cb);
5675
5676 if (cb->list.next == NULL) {
5677 int i;
5678 INIT_LIST_HEAD(&cb->list);
5679 for (i = 0; i < NR_STRIPE_HASH_LOCKS; i++)
5680 INIT_LIST_HEAD(cb->temp_inactive_list + i);
5681 }
5682
5683 if (!test_and_set_bit(STRIPE_ON_UNPLUG_LIST, &sh->state))
5684 list_add_tail(&sh->lru, &cb->list);
5685 else
5686 raid5_release_stripe(sh);
5687 }
5688
make_discard_request(struct mddev * mddev,struct bio * bi)5689 static void make_discard_request(struct mddev *mddev, struct bio *bi)
5690 {
5691 struct r5conf *conf = mddev->private;
5692 sector_t logical_sector, last_sector;
5693 struct stripe_head *sh;
5694 int stripe_sectors;
5695
5696 /* We need to handle this when io_uring supports discard/trim */
5697 if (WARN_ON_ONCE(bi->bi_opf & REQ_NOWAIT))
5698 return;
5699
5700 if (mddev->reshape_position != MaxSector)
5701 /* Skip discard while reshape is happening */
5702 return;
5703
5704 logical_sector = bi->bi_iter.bi_sector & ~((sector_t)RAID5_STRIPE_SECTORS(conf)-1);
5705 last_sector = bio_end_sector(bi);
5706
5707 bi->bi_next = NULL;
5708
5709 stripe_sectors = conf->chunk_sectors *
5710 (conf->raid_disks - conf->max_degraded);
5711 logical_sector = DIV_ROUND_UP_SECTOR_T(logical_sector,
5712 stripe_sectors);
5713 sector_div(last_sector, stripe_sectors);
5714
5715 logical_sector *= conf->chunk_sectors;
5716 last_sector *= conf->chunk_sectors;
5717
5718 for (; logical_sector < last_sector;
5719 logical_sector += RAID5_STRIPE_SECTORS(conf)) {
5720 DEFINE_WAIT(w);
5721 int d;
5722 again:
5723 sh = raid5_get_active_stripe(conf, NULL, logical_sector, 0);
5724 set_bit(R5_Overlap, &sh->dev[sh->pd_idx].flags);
5725 if (test_bit(STRIPE_SYNCING, &sh->state)) {
5726 raid5_release_stripe(sh);
5727 wait_on_bit(&sh->dev[sh->pd_idx].flags, R5_Overlap,
5728 TASK_UNINTERRUPTIBLE);
5729 goto again;
5730 }
5731 clear_bit(R5_Overlap, &sh->dev[sh->pd_idx].flags);
5732 spin_lock_irq(&sh->stripe_lock);
5733 for (d = 0; d < conf->raid_disks; d++) {
5734 if (d == sh->pd_idx || d == sh->qd_idx)
5735 continue;
5736 if (sh->dev[d].towrite || sh->dev[d].toread) {
5737 set_bit(R5_Overlap, &sh->dev[d].flags);
5738 spin_unlock_irq(&sh->stripe_lock);
5739 raid5_release_stripe(sh);
5740 wait_on_bit(&sh->dev[d].flags, R5_Overlap,
5741 TASK_UNINTERRUPTIBLE);
5742 goto again;
5743 }
5744 }
5745 set_bit(STRIPE_DISCARD, &sh->state);
5746 sh->overwrite_disks = 0;
5747 for (d = 0; d < conf->raid_disks; d++) {
5748 if (d == sh->pd_idx || d == sh->qd_idx)
5749 continue;
5750 sh->dev[d].towrite = bi;
5751 set_bit(R5_OVERWRITE, &sh->dev[d].flags);
5752 bio_inc_remaining(bi);
5753 md_write_inc(mddev, bi);
5754 sh->overwrite_disks++;
5755 }
5756 spin_unlock_irq(&sh->stripe_lock);
5757 if (conf->mddev->bitmap) {
5758 sh->bm_seq = conf->seq_flush + 1;
5759 set_bit(STRIPE_BIT_DELAY, &sh->state);
5760 }
5761
5762 set_bit(STRIPE_HANDLE, &sh->state);
5763 clear_bit(STRIPE_DELAYED, &sh->state);
5764 if (!test_and_set_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
5765 atomic_inc(&conf->preread_active_stripes);
5766 release_stripe_plug(mddev, sh);
5767 }
5768
5769 bio_endio(bi);
5770 }
5771
ahead_of_reshape(struct mddev * mddev,sector_t sector,sector_t reshape_sector)5772 static bool ahead_of_reshape(struct mddev *mddev, sector_t sector,
5773 sector_t reshape_sector)
5774 {
5775 return mddev->reshape_backwards ? sector < reshape_sector :
5776 sector >= reshape_sector;
5777 }
5778
range_ahead_of_reshape(struct mddev * mddev,sector_t min,sector_t max,sector_t reshape_sector)5779 static bool range_ahead_of_reshape(struct mddev *mddev, sector_t min,
5780 sector_t max, sector_t reshape_sector)
5781 {
5782 return mddev->reshape_backwards ? max < reshape_sector :
5783 min >= reshape_sector;
5784 }
5785
stripe_ahead_of_reshape(struct mddev * mddev,struct r5conf * conf,struct stripe_head * sh)5786 static bool stripe_ahead_of_reshape(struct mddev *mddev, struct r5conf *conf,
5787 struct stripe_head *sh)
5788 {
5789 sector_t max_sector = 0, min_sector = MaxSector;
5790 bool ret = false;
5791 int dd_idx;
5792
5793 for (dd_idx = 0; dd_idx < sh->disks; dd_idx++) {
5794 if (dd_idx == sh->pd_idx || dd_idx == sh->qd_idx)
5795 continue;
5796
5797 min_sector = min(min_sector, sh->dev[dd_idx].sector);
5798 max_sector = max(max_sector, sh->dev[dd_idx].sector);
5799 }
5800
5801 spin_lock_irq(&conf->device_lock);
5802
5803 if (!range_ahead_of_reshape(mddev, min_sector, max_sector,
5804 conf->reshape_progress))
5805 /* mismatch, need to try again */
5806 ret = true;
5807
5808 spin_unlock_irq(&conf->device_lock);
5809
5810 return ret;
5811 }
5812
add_all_stripe_bios(struct r5conf * conf,struct stripe_request_ctx * ctx,struct stripe_head * sh,struct bio * bi,int forwrite,int previous)5813 static int add_all_stripe_bios(struct r5conf *conf,
5814 struct stripe_request_ctx *ctx, struct stripe_head *sh,
5815 struct bio *bi, int forwrite, int previous)
5816 {
5817 int dd_idx;
5818
5819 spin_lock_irq(&sh->stripe_lock);
5820
5821 for (dd_idx = 0; dd_idx < sh->disks; dd_idx++) {
5822 struct r5dev *dev = &sh->dev[dd_idx];
5823
5824 if (dd_idx == sh->pd_idx || dd_idx == sh->qd_idx)
5825 continue;
5826
5827 if (dev->sector < ctx->first_sector ||
5828 dev->sector >= ctx->last_sector)
5829 continue;
5830
5831 if (stripe_bio_overlaps(sh, bi, dd_idx, forwrite)) {
5832 set_bit(R5_Overlap, &dev->flags);
5833 spin_unlock_irq(&sh->stripe_lock);
5834 raid5_release_stripe(sh);
5835 /* release batch_last before wait to avoid risk of deadlock */
5836 if (ctx->batch_last) {
5837 raid5_release_stripe(ctx->batch_last);
5838 ctx->batch_last = NULL;
5839 }
5840 md_wakeup_thread(conf->mddev->thread);
5841 wait_on_bit(&dev->flags, R5_Overlap, TASK_UNINTERRUPTIBLE);
5842 return 0;
5843 }
5844 }
5845
5846 for (dd_idx = 0; dd_idx < sh->disks; dd_idx++) {
5847 struct r5dev *dev = &sh->dev[dd_idx];
5848
5849 if (dd_idx == sh->pd_idx || dd_idx == sh->qd_idx)
5850 continue;
5851
5852 if (dev->sector < ctx->first_sector ||
5853 dev->sector >= ctx->last_sector)
5854 continue;
5855
5856 __add_stripe_bio(sh, bi, dd_idx, forwrite, previous);
5857 clear_bit((dev->sector - ctx->first_sector) >>
5858 RAID5_STRIPE_SHIFT(conf), ctx->sectors_to_do);
5859 }
5860
5861 spin_unlock_irq(&sh->stripe_lock);
5862 return 1;
5863 }
5864
5865 enum reshape_loc {
5866 LOC_NO_RESHAPE,
5867 LOC_AHEAD_OF_RESHAPE,
5868 LOC_INSIDE_RESHAPE,
5869 LOC_BEHIND_RESHAPE,
5870 };
5871
get_reshape_loc(struct mddev * mddev,struct r5conf * conf,sector_t logical_sector)5872 static enum reshape_loc get_reshape_loc(struct mddev *mddev,
5873 struct r5conf *conf, sector_t logical_sector)
5874 {
5875 sector_t reshape_progress, reshape_safe;
5876
5877 if (likely(conf->reshape_progress == MaxSector))
5878 return LOC_NO_RESHAPE;
5879 /*
5880 * Spinlock is needed as reshape_progress may be
5881 * 64bit on a 32bit platform, and so it might be
5882 * possible to see a half-updated value
5883 * Of course reshape_progress could change after
5884 * the lock is dropped, so once we get a reference
5885 * to the stripe that we think it is, we will have
5886 * to check again.
5887 */
5888 spin_lock_irq(&conf->device_lock);
5889 reshape_progress = conf->reshape_progress;
5890 reshape_safe = conf->reshape_safe;
5891 spin_unlock_irq(&conf->device_lock);
5892 if (reshape_progress == MaxSector)
5893 return LOC_NO_RESHAPE;
5894 if (ahead_of_reshape(mddev, logical_sector, reshape_progress))
5895 return LOC_AHEAD_OF_RESHAPE;
5896 if (ahead_of_reshape(mddev, logical_sector, reshape_safe))
5897 return LOC_INSIDE_RESHAPE;
5898 return LOC_BEHIND_RESHAPE;
5899 }
5900
raid5_bitmap_sector(struct mddev * mddev,sector_t * offset,unsigned long * sectors)5901 static void raid5_bitmap_sector(struct mddev *mddev, sector_t *offset,
5902 unsigned long *sectors)
5903 {
5904 struct r5conf *conf = mddev->private;
5905 sector_t start = *offset;
5906 sector_t end = start + *sectors;
5907 sector_t prev_start = start;
5908 sector_t prev_end = end;
5909 int sectors_per_chunk;
5910 enum reshape_loc loc;
5911 int dd_idx;
5912
5913 sectors_per_chunk = conf->chunk_sectors *
5914 (conf->raid_disks - conf->max_degraded);
5915 start = round_down(start, sectors_per_chunk);
5916 end = round_up(end, sectors_per_chunk);
5917
5918 start = raid5_compute_sector(conf, start, 0, &dd_idx, NULL);
5919 end = raid5_compute_sector(conf, end, 0, &dd_idx, NULL);
5920
5921 /*
5922 * For LOC_INSIDE_RESHAPE, this IO will wait for reshape to make
5923 * progress, hence it's the same as LOC_BEHIND_RESHAPE.
5924 */
5925 loc = get_reshape_loc(mddev, conf, prev_start);
5926 if (likely(loc != LOC_AHEAD_OF_RESHAPE)) {
5927 *offset = start;
5928 *sectors = end - start;
5929 return;
5930 }
5931
5932 sectors_per_chunk = conf->prev_chunk_sectors *
5933 (conf->previous_raid_disks - conf->max_degraded);
5934 prev_start = round_down(prev_start, sectors_per_chunk);
5935 prev_end = round_down(prev_end, sectors_per_chunk);
5936
5937 prev_start = raid5_compute_sector(conf, prev_start, 1, &dd_idx, NULL);
5938 prev_end = raid5_compute_sector(conf, prev_end, 1, &dd_idx, NULL);
5939
5940 /*
5941 * for LOC_AHEAD_OF_RESHAPE, reshape can make progress before this IO
5942 * is handled in make_stripe_request(), we can't know this here hence
5943 * we set bits for both.
5944 */
5945 *offset = min(start, prev_start);
5946 *sectors = max(end, prev_end) - *offset;
5947 }
5948
make_stripe_request(struct mddev * mddev,struct r5conf * conf,struct stripe_request_ctx * ctx,sector_t logical_sector,struct bio * bi)5949 static enum stripe_result make_stripe_request(struct mddev *mddev,
5950 struct r5conf *conf, struct stripe_request_ctx *ctx,
5951 sector_t logical_sector, struct bio *bi)
5952 {
5953 const int rw = bio_data_dir(bi);
5954 enum stripe_result ret;
5955 struct stripe_head *sh;
5956 enum reshape_loc loc;
5957 sector_t new_sector;
5958 int previous = 0, flags = 0;
5959 int seq, dd_idx;
5960
5961 seq = read_seqcount_begin(&conf->gen_lock);
5962 loc = get_reshape_loc(mddev, conf, logical_sector);
5963 if (loc == LOC_INSIDE_RESHAPE) {
5964 ret = STRIPE_SCHEDULE_AND_RETRY;
5965 goto out;
5966 }
5967 if (loc == LOC_AHEAD_OF_RESHAPE)
5968 previous = 1;
5969
5970 new_sector = raid5_compute_sector(conf, logical_sector, previous,
5971 &dd_idx, NULL);
5972 pr_debug("raid456: %s, sector %llu logical %llu\n", __func__,
5973 new_sector, logical_sector);
5974
5975 if (previous)
5976 flags |= R5_GAS_PREVIOUS;
5977 if (bi->bi_opf & REQ_RAHEAD)
5978 flags |= R5_GAS_NOBLOCK;
5979 sh = raid5_get_active_stripe(conf, ctx, new_sector, flags);
5980 if (unlikely(!sh)) {
5981 /* cannot get stripe, just give-up */
5982 bi->bi_status = BLK_STS_IOERR;
5983 return STRIPE_FAIL;
5984 }
5985
5986 if (unlikely(previous) &&
5987 stripe_ahead_of_reshape(mddev, conf, sh)) {
5988 /*
5989 * Expansion moved on while waiting for a stripe.
5990 * Expansion could still move past after this
5991 * test, but as we are holding a reference to
5992 * 'sh', we know that if that happens,
5993 * STRIPE_EXPANDING will get set and the expansion
5994 * won't proceed until we finish with the stripe.
5995 */
5996 ret = STRIPE_SCHEDULE_AND_RETRY;
5997 goto out_release;
5998 }
5999
6000 if (read_seqcount_retry(&conf->gen_lock, seq)) {
6001 /* Might have got the wrong stripe_head by accident */
6002 ret = STRIPE_RETRY;
6003 goto out_release;
6004 }
6005
6006 if (test_bit(STRIPE_EXPANDING, &sh->state)) {
6007 md_wakeup_thread(mddev->thread);
6008 ret = STRIPE_SCHEDULE_AND_RETRY;
6009 goto out_release;
6010 }
6011
6012 if (!add_all_stripe_bios(conf, ctx, sh, bi, rw, previous)) {
6013 ret = STRIPE_RETRY;
6014 goto out;
6015 }
6016
6017 if (stripe_can_batch(sh)) {
6018 stripe_add_to_batch_list(conf, sh, ctx->batch_last);
6019 if (ctx->batch_last)
6020 raid5_release_stripe(ctx->batch_last);
6021 atomic_inc(&sh->count);
6022 ctx->batch_last = sh;
6023 }
6024
6025 if (ctx->do_flush) {
6026 set_bit(STRIPE_R5C_PREFLUSH, &sh->state);
6027 /* we only need flush for one stripe */
6028 ctx->do_flush = false;
6029 }
6030
6031 set_bit(STRIPE_HANDLE, &sh->state);
6032 clear_bit(STRIPE_DELAYED, &sh->state);
6033 if ((!sh->batch_head || sh == sh->batch_head) &&
6034 (bi->bi_opf & REQ_SYNC) &&
6035 !test_and_set_bit(STRIPE_PREREAD_ACTIVE, &sh->state))
6036 atomic_inc(&conf->preread_active_stripes);
6037
6038 release_stripe_plug(mddev, sh);
6039 return STRIPE_SUCCESS;
6040
6041 out_release:
6042 raid5_release_stripe(sh);
6043 out:
6044 if (ret == STRIPE_SCHEDULE_AND_RETRY && reshape_interrupted(mddev)) {
6045 bi->bi_status = BLK_STS_RESOURCE;
6046 ret = STRIPE_WAIT_RESHAPE;
6047 pr_err_ratelimited("dm-raid456: io across reshape position while reshape can't make progress");
6048 }
6049 return ret;
6050 }
6051
6052 /*
6053 * If the bio covers multiple data disks, find sector within the bio that has
6054 * the lowest chunk offset in the first chunk.
6055 */
raid5_bio_lowest_chunk_sector(struct r5conf * conf,struct bio * bi)6056 static sector_t raid5_bio_lowest_chunk_sector(struct r5conf *conf,
6057 struct bio *bi)
6058 {
6059 int sectors_per_chunk = conf->chunk_sectors;
6060 int raid_disks = conf->raid_disks;
6061 int dd_idx;
6062 struct stripe_head sh;
6063 unsigned int chunk_offset;
6064 sector_t r_sector = bi->bi_iter.bi_sector & ~((sector_t)RAID5_STRIPE_SECTORS(conf)-1);
6065 sector_t sector;
6066
6067 /* We pass in fake stripe_head to get back parity disk numbers */
6068 sector = raid5_compute_sector(conf, r_sector, 0, &dd_idx, &sh);
6069 chunk_offset = sector_div(sector, sectors_per_chunk);
6070 if (sectors_per_chunk - chunk_offset >= bio_sectors(bi))
6071 return r_sector;
6072 /*
6073 * Bio crosses to the next data disk. Check whether it's in the same
6074 * chunk.
6075 */
6076 dd_idx++;
6077 while (dd_idx == sh.pd_idx || dd_idx == sh.qd_idx)
6078 dd_idx++;
6079 if (dd_idx >= raid_disks)
6080 return r_sector;
6081 return r_sector + sectors_per_chunk - chunk_offset;
6082 }
6083
raid5_make_request(struct mddev * mddev,struct bio * bi)6084 static bool raid5_make_request(struct mddev *mddev, struct bio * bi)
6085 {
6086 DEFINE_WAIT_FUNC(wait, woken_wake_function);
6087 struct r5conf *conf = mddev->private;
6088 const int rw = bio_data_dir(bi);
6089 struct stripe_request_ctx *ctx;
6090 sector_t logical_sector;
6091 enum stripe_result res;
6092 int s, stripe_cnt;
6093 bool on_wq;
6094
6095 if (unlikely(bi->bi_opf & REQ_PREFLUSH)) {
6096 int ret = log_handle_flush_request(conf, bi);
6097
6098 if (ret == 0)
6099 return true;
6100 if (ret == -ENODEV) {
6101 if (md_flush_request(mddev, bi))
6102 return true;
6103 }
6104 /* ret == -EAGAIN, fallback */
6105 }
6106
6107 md_write_start(mddev, bi);
6108 /*
6109 * If array is degraded, better not do chunk aligned read because
6110 * later we might have to read it again in order to reconstruct
6111 * data on failed drives.
6112 */
6113 if (rw == READ && mddev->degraded == 0 &&
6114 mddev->reshape_position == MaxSector) {
6115 bi = chunk_aligned_read(mddev, bi);
6116 if (!bi)
6117 return true;
6118 }
6119
6120 if (unlikely(bio_op(bi) == REQ_OP_DISCARD)) {
6121 make_discard_request(mddev, bi);
6122 md_write_end(mddev);
6123 return true;
6124 }
6125
6126 logical_sector = bi->bi_iter.bi_sector & ~((sector_t)RAID5_STRIPE_SECTORS(conf)-1);
6127 bi->bi_next = NULL;
6128
6129 ctx = mempool_alloc(conf->ctx_pool, GFP_NOIO);
6130 memset(ctx, 0, conf->ctx_size);
6131 ctx->first_sector = logical_sector;
6132 ctx->last_sector = bio_end_sector(bi);
6133 /*
6134 * if r5l_handle_flush_request() didn't clear REQ_PREFLUSH,
6135 * we need to flush journal device
6136 */
6137 if (unlikely(bi->bi_opf & REQ_PREFLUSH))
6138 ctx->do_flush = true;
6139
6140 stripe_cnt = DIV_ROUND_UP_SECTOR_T(ctx->last_sector - logical_sector,
6141 RAID5_STRIPE_SECTORS(conf));
6142 bitmap_set(ctx->sectors_to_do, 0, stripe_cnt);
6143
6144 pr_debug("raid456: %s, logical %llu to %llu\n", __func__,
6145 bi->bi_iter.bi_sector, ctx->last_sector);
6146
6147 /* Bail out if conflicts with reshape and REQ_NOWAIT is set */
6148 if ((bi->bi_opf & REQ_NOWAIT) &&
6149 get_reshape_loc(mddev, conf, logical_sector) == LOC_INSIDE_RESHAPE) {
6150 bio_wouldblock_error(bi);
6151 if (rw == WRITE)
6152 md_write_end(mddev);
6153 mempool_free(ctx, conf->ctx_pool);
6154 return true;
6155 }
6156 md_account_bio(mddev, &bi);
6157
6158 /*
6159 * Lets start with the stripe with the lowest chunk offset in the first
6160 * chunk. That has the best chances of creating IOs adjacent to
6161 * previous IOs in case of sequential IO and thus creates the most
6162 * sequential IO pattern. We don't bother with the optimization when
6163 * reshaping as the performance benefit is not worth the complexity.
6164 */
6165 if (likely(conf->reshape_progress == MaxSector)) {
6166 logical_sector = raid5_bio_lowest_chunk_sector(conf, bi);
6167 on_wq = false;
6168 } else {
6169 add_wait_queue(&conf->wait_for_reshape, &wait);
6170 on_wq = true;
6171 }
6172 s = (logical_sector - ctx->first_sector) >> RAID5_STRIPE_SHIFT(conf);
6173
6174 while (1) {
6175 res = make_stripe_request(mddev, conf, ctx, logical_sector,
6176 bi);
6177 if (res == STRIPE_FAIL || res == STRIPE_WAIT_RESHAPE)
6178 break;
6179
6180 if (res == STRIPE_RETRY)
6181 continue;
6182
6183 if (res == STRIPE_SCHEDULE_AND_RETRY) {
6184 WARN_ON_ONCE(!on_wq);
6185 /*
6186 * Must release the reference to batch_last before
6187 * scheduling and waiting for work to be done,
6188 * otherwise the batch_last stripe head could prevent
6189 * raid5_activate_delayed() from making progress
6190 * and thus deadlocking.
6191 */
6192 if (ctx->batch_last) {
6193 raid5_release_stripe(ctx->batch_last);
6194 ctx->batch_last = NULL;
6195 }
6196
6197 wait_woken(&wait, TASK_UNINTERRUPTIBLE,
6198 MAX_SCHEDULE_TIMEOUT);
6199 continue;
6200 }
6201
6202 s = find_next_bit_wrap(ctx->sectors_to_do, stripe_cnt, s);
6203 if (s == stripe_cnt)
6204 break;
6205
6206 logical_sector = ctx->first_sector +
6207 (s << RAID5_STRIPE_SHIFT(conf));
6208 }
6209 if (unlikely(on_wq))
6210 remove_wait_queue(&conf->wait_for_reshape, &wait);
6211
6212 if (ctx->batch_last)
6213 raid5_release_stripe(ctx->batch_last);
6214
6215 if (rw == WRITE)
6216 md_write_end(mddev);
6217
6218 mempool_free(ctx, conf->ctx_pool);
6219 if (res == STRIPE_WAIT_RESHAPE) {
6220 md_free_cloned_bio(bi);
6221 return false;
6222 }
6223
6224 bio_endio(bi);
6225 return true;
6226 }
6227
6228 static sector_t raid5_size(struct mddev *mddev, sector_t sectors, int raid_disks);
6229
reshape_request(struct mddev * mddev,sector_t sector_nr,int * skipped)6230 static sector_t reshape_request(struct mddev *mddev, sector_t sector_nr, int *skipped)
6231 {
6232 /* reshaping is quite different to recovery/resync so it is
6233 * handled quite separately ... here.
6234 *
6235 * On each call to sync_request, we gather one chunk worth of
6236 * destination stripes and flag them as expanding.
6237 * Then we find all the source stripes and request reads.
6238 * As the reads complete, handle_stripe will copy the data
6239 * into the destination stripe and release that stripe.
6240 */
6241 struct r5conf *conf = mddev->private;
6242 struct stripe_head *sh;
6243 struct md_rdev *rdev;
6244 sector_t first_sector, last_sector;
6245 int raid_disks = conf->previous_raid_disks;
6246 int data_disks = raid_disks - conf->max_degraded;
6247 int new_data_disks = conf->raid_disks - conf->max_degraded;
6248 int i;
6249 int dd_idx;
6250 sector_t writepos, readpos, safepos;
6251 sector_t stripe_addr;
6252 int reshape_sectors;
6253 struct list_head stripes;
6254 sector_t retn;
6255
6256 if (sector_nr == 0) {
6257 /* If restarting in the middle, skip the initial sectors */
6258 if (mddev->reshape_backwards &&
6259 conf->reshape_progress < raid5_size(mddev, 0, 0)) {
6260 sector_nr = raid5_size(mddev, 0, 0)
6261 - conf->reshape_progress;
6262 } else if (mddev->reshape_backwards &&
6263 conf->reshape_progress == MaxSector) {
6264 /* shouldn't happen, but just in case, finish up.*/
6265 sector_nr = MaxSector;
6266 } else if (!mddev->reshape_backwards &&
6267 conf->reshape_progress > 0)
6268 sector_nr = conf->reshape_progress;
6269 sector_div(sector_nr, new_data_disks);
6270 if (sector_nr) {
6271 mddev->curr_resync_completed = sector_nr;
6272 sysfs_notify_dirent_safe(mddev->sysfs_completed);
6273 *skipped = 1;
6274 retn = sector_nr;
6275 goto finish;
6276 }
6277 }
6278
6279 /* We need to process a full chunk at a time.
6280 * If old and new chunk sizes differ, we need to process the
6281 * largest of these
6282 */
6283
6284 reshape_sectors = max(conf->chunk_sectors, conf->prev_chunk_sectors);
6285
6286 /* We update the metadata at least every 10 seconds, or when
6287 * the data about to be copied would over-write the source of
6288 * the data at the front of the range. i.e. one new_stripe
6289 * along from reshape_progress new_maps to after where
6290 * reshape_safe old_maps to
6291 */
6292 writepos = conf->reshape_progress;
6293 sector_div(writepos, new_data_disks);
6294 readpos = conf->reshape_progress;
6295 sector_div(readpos, data_disks);
6296 safepos = conf->reshape_safe;
6297 sector_div(safepos, data_disks);
6298 if (mddev->reshape_backwards) {
6299 if (WARN_ON(writepos < reshape_sectors))
6300 return MaxSector;
6301
6302 writepos -= reshape_sectors;
6303 readpos += reshape_sectors;
6304 safepos += reshape_sectors;
6305 } else {
6306 writepos += reshape_sectors;
6307 /* readpos and safepos are worst-case calculations.
6308 * A negative number is overly pessimistic, and causes
6309 * obvious problems for unsigned storage. So clip to 0.
6310 */
6311 readpos -= min_t(sector_t, reshape_sectors, readpos);
6312 safepos -= min_t(sector_t, reshape_sectors, safepos);
6313 }
6314
6315 /* Having calculated the 'writepos' possibly use it
6316 * to set 'stripe_addr' which is where we will write to.
6317 */
6318 if (mddev->reshape_backwards) {
6319 if (WARN_ON(conf->reshape_progress == 0))
6320 return MaxSector;
6321
6322 stripe_addr = writepos;
6323 if (WARN_ON((mddev->dev_sectors &
6324 ~((sector_t)reshape_sectors - 1)) -
6325 reshape_sectors - stripe_addr != sector_nr))
6326 return MaxSector;
6327 } else {
6328 if (WARN_ON(writepos != sector_nr + reshape_sectors))
6329 return MaxSector;
6330
6331 stripe_addr = sector_nr;
6332 }
6333
6334 /* 'writepos' is the most advanced device address we might write.
6335 * 'readpos' is the least advanced device address we might read.
6336 * 'safepos' is the least address recorded in the metadata as having
6337 * been reshaped.
6338 * If there is a min_offset_diff, these are adjusted either by
6339 * increasing the safepos/readpos if diff is negative, or
6340 * increasing writepos if diff is positive.
6341 * If 'readpos' is then behind 'writepos', there is no way that we can
6342 * ensure safety in the face of a crash - that must be done by userspace
6343 * making a backup of the data. So in that case there is no particular
6344 * rush to update metadata.
6345 * Otherwise if 'safepos' is behind 'writepos', then we really need to
6346 * update the metadata to advance 'safepos' to match 'readpos' so that
6347 * we can be safe in the event of a crash.
6348 * So we insist on updating metadata if safepos is behind writepos and
6349 * readpos is beyond writepos.
6350 * In any case, update the metadata every 10 seconds.
6351 * Maybe that number should be configurable, but I'm not sure it is
6352 * worth it.... maybe it could be a multiple of safemode_delay???
6353 */
6354 if (conf->min_offset_diff < 0) {
6355 safepos += -conf->min_offset_diff;
6356 readpos += -conf->min_offset_diff;
6357 } else
6358 writepos += conf->min_offset_diff;
6359
6360 if ((mddev->reshape_backwards
6361 ? (safepos > writepos && readpos < writepos)
6362 : (safepos < writepos && readpos > writepos)) ||
6363 time_after(jiffies, conf->reshape_checkpoint + 10*HZ)) {
6364 /* Cannot proceed until we've updated the superblock... */
6365 wait_event(conf->wait_for_reshape,
6366 atomic_read(&conf->reshape_stripes)==0
6367 || test_bit(MD_RECOVERY_INTR, &mddev->recovery));
6368 if (atomic_read(&conf->reshape_stripes) != 0)
6369 return 0;
6370 mddev->reshape_position = conf->reshape_progress;
6371 mddev->curr_resync_completed = sector_nr;
6372 if (!mddev->reshape_backwards)
6373 /* Can update recovery_offset */
6374 rdev_for_each(rdev, mddev)
6375 if (rdev->raid_disk >= 0 &&
6376 !test_bit(Journal, &rdev->flags) &&
6377 !test_bit(In_sync, &rdev->flags) &&
6378 rdev->recovery_offset < sector_nr)
6379 rdev->recovery_offset = sector_nr;
6380
6381 conf->reshape_checkpoint = jiffies;
6382 set_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags);
6383 md_wakeup_thread(mddev->thread);
6384 wait_event(mddev->sb_wait, mddev->sb_flags == 0 ||
6385 test_bit(MD_RECOVERY_INTR, &mddev->recovery));
6386 if (test_bit(MD_RECOVERY_INTR, &mddev->recovery))
6387 return 0;
6388 spin_lock_irq(&conf->device_lock);
6389 conf->reshape_safe = mddev->reshape_position;
6390 spin_unlock_irq(&conf->device_lock);
6391 wake_up(&conf->wait_for_reshape);
6392 sysfs_notify_dirent_safe(mddev->sysfs_completed);
6393 }
6394
6395 INIT_LIST_HEAD(&stripes);
6396 for (i = 0; i < reshape_sectors; i += RAID5_STRIPE_SECTORS(conf)) {
6397 int j;
6398 int skipped_disk = 0;
6399 sh = raid5_get_active_stripe(conf, NULL, stripe_addr+i,
6400 R5_GAS_NOQUIESCE);
6401 set_bit(STRIPE_EXPANDING, &sh->state);
6402 atomic_inc(&conf->reshape_stripes);
6403 /* If any of this stripe is beyond the end of the old
6404 * array, then we need to zero those blocks
6405 */
6406 for (j=sh->disks; j--;) {
6407 sector_t s;
6408 if (j == sh->pd_idx)
6409 continue;
6410 if (conf->level == 6 &&
6411 j == sh->qd_idx)
6412 continue;
6413 s = raid5_compute_blocknr(sh, j, 0);
6414 if (s < raid5_size(mddev, 0, 0)) {
6415 skipped_disk = 1;
6416 continue;
6417 }
6418 memset(page_address(sh->dev[j].page), 0, RAID5_STRIPE_SIZE(conf));
6419 set_bit(R5_Expanded, &sh->dev[j].flags);
6420 set_bit(R5_UPTODATE, &sh->dev[j].flags);
6421 }
6422 if (!skipped_disk) {
6423 set_bit(STRIPE_EXPAND_READY, &sh->state);
6424 set_bit(STRIPE_HANDLE, &sh->state);
6425 }
6426 list_add(&sh->lru, &stripes);
6427 }
6428 spin_lock_irq(&conf->device_lock);
6429 if (mddev->reshape_backwards)
6430 conf->reshape_progress -= reshape_sectors * new_data_disks;
6431 else
6432 conf->reshape_progress += reshape_sectors * new_data_disks;
6433 spin_unlock_irq(&conf->device_lock);
6434 /* Ok, those stripe are ready. We can start scheduling
6435 * reads on the source stripes.
6436 * The source stripes are determined by mapping the first and last
6437 * block on the destination stripes.
6438 */
6439 first_sector =
6440 raid5_compute_sector(conf, stripe_addr*(new_data_disks),
6441 1, &dd_idx, NULL);
6442 last_sector =
6443 raid5_compute_sector(conf, ((stripe_addr+reshape_sectors)
6444 * new_data_disks - 1),
6445 1, &dd_idx, NULL);
6446 if (last_sector >= mddev->dev_sectors)
6447 last_sector = mddev->dev_sectors - 1;
6448 while (first_sector <= last_sector) {
6449 sh = raid5_get_active_stripe(conf, NULL, first_sector,
6450 R5_GAS_PREVIOUS | R5_GAS_NOQUIESCE);
6451 set_bit(STRIPE_EXPAND_SOURCE, &sh->state);
6452 set_bit(STRIPE_HANDLE, &sh->state);
6453 raid5_release_stripe(sh);
6454 first_sector += RAID5_STRIPE_SECTORS(conf);
6455 }
6456 /* Now that the sources are clearly marked, we can release
6457 * the destination stripes
6458 */
6459 while (!list_empty(&stripes)) {
6460 sh = list_entry(stripes.next, struct stripe_head, lru);
6461 list_del_init(&sh->lru);
6462 raid5_release_stripe(sh);
6463 }
6464 /* If this takes us to the resync_max point where we have to pause,
6465 * then we need to write out the superblock.
6466 */
6467 sector_nr += reshape_sectors;
6468 retn = reshape_sectors;
6469 finish:
6470 if (mddev->curr_resync_completed > mddev->resync_max ||
6471 (sector_nr - mddev->curr_resync_completed) * 2
6472 >= mddev->resync_max - mddev->curr_resync_completed) {
6473 /* Cannot proceed until we've updated the superblock... */
6474 wait_event(conf->wait_for_reshape,
6475 atomic_read(&conf->reshape_stripes) == 0
6476 || test_bit(MD_RECOVERY_INTR, &mddev->recovery));
6477 if (atomic_read(&conf->reshape_stripes) != 0)
6478 goto ret;
6479 mddev->reshape_position = conf->reshape_progress;
6480 mddev->curr_resync_completed = sector_nr;
6481 if (!mddev->reshape_backwards)
6482 /* Can update recovery_offset */
6483 rdev_for_each(rdev, mddev)
6484 if (rdev->raid_disk >= 0 &&
6485 !test_bit(Journal, &rdev->flags) &&
6486 !test_bit(In_sync, &rdev->flags) &&
6487 rdev->recovery_offset < sector_nr)
6488 rdev->recovery_offset = sector_nr;
6489 conf->reshape_checkpoint = jiffies;
6490 set_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags);
6491 md_wakeup_thread(mddev->thread);
6492 wait_event(mddev->sb_wait,
6493 !test_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags)
6494 || test_bit(MD_RECOVERY_INTR, &mddev->recovery));
6495 if (test_bit(MD_RECOVERY_INTR, &mddev->recovery))
6496 goto ret;
6497 spin_lock_irq(&conf->device_lock);
6498 conf->reshape_safe = mddev->reshape_position;
6499 spin_unlock_irq(&conf->device_lock);
6500 wake_up(&conf->wait_for_reshape);
6501 sysfs_notify_dirent_safe(mddev->sysfs_completed);
6502 }
6503 ret:
6504 return retn;
6505 }
6506
raid5_sync_request(struct mddev * mddev,sector_t sector_nr,sector_t max_sector,int * skipped)6507 static inline sector_t raid5_sync_request(struct mddev *mddev, sector_t sector_nr,
6508 sector_t max_sector, int *skipped)
6509 {
6510 struct r5conf *conf = mddev->private;
6511 struct stripe_head *sh;
6512 sector_t sync_blocks;
6513 bool still_degraded = false;
6514 int i;
6515
6516 if (sector_nr >= max_sector) {
6517 /* just being told to finish up .. nothing much to do */
6518
6519 if (test_bit(MD_RECOVERY_RESHAPE, &mddev->recovery)) {
6520 end_reshape(conf);
6521 return 0;
6522 }
6523
6524 if (mddev->curr_resync < max_sector) /* aborted */
6525 md_bitmap_end_sync(mddev, mddev->curr_resync,
6526 &sync_blocks);
6527 else /* completed sync */
6528 conf->fullsync = 0;
6529 if (md_bitmap_enabled(mddev, false))
6530 mddev->bitmap_ops->close_sync(mddev);
6531
6532 return 0;
6533 }
6534
6535 /* Allow raid5_quiesce to complete */
6536 wait_event(conf->wait_for_reshape, conf->quiesce != 2);
6537
6538 if (test_bit(MD_RECOVERY_RESHAPE, &mddev->recovery))
6539 return reshape_request(mddev, sector_nr, skipped);
6540
6541 /* No need to check resync_max as we never do more than one
6542 * stripe, and as resync_max will always be on a chunk boundary,
6543 * if the check in md_do_sync didn't fire, there is no chance
6544 * of overstepping resync_max here
6545 */
6546
6547 /* if there is too many failed drives and we are trying
6548 * to resync, then assert that we are finished, because there is
6549 * nothing we can do.
6550 */
6551 if (mddev->degraded >= conf->max_degraded &&
6552 test_bit(MD_RECOVERY_SYNC, &mddev->recovery)) {
6553 sector_t rv = mddev->dev_sectors - sector_nr;
6554 *skipped = 1;
6555 return rv;
6556 }
6557 if (!test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) &&
6558 !conf->fullsync &&
6559 !md_bitmap_start_sync(mddev, sector_nr, &sync_blocks, true) &&
6560 sync_blocks >= RAID5_STRIPE_SECTORS(conf)) {
6561 /* we can skip this block, and probably more */
6562 do_div(sync_blocks, RAID5_STRIPE_SECTORS(conf));
6563 *skipped = 1;
6564 /* keep things rounded to whole stripes */
6565 return sync_blocks * RAID5_STRIPE_SECTORS(conf);
6566 }
6567
6568 if (md_bitmap_enabled(mddev, false))
6569 mddev->bitmap_ops->cond_end_sync(mddev, sector_nr, false);
6570
6571 sh = raid5_get_active_stripe(conf, NULL, sector_nr,
6572 R5_GAS_NOBLOCK);
6573 if (sh == NULL) {
6574 sh = raid5_get_active_stripe(conf, NULL, sector_nr, 0);
6575 /* make sure we don't swamp the stripe cache if someone else
6576 * is trying to get access
6577 */
6578 schedule_timeout_uninterruptible(1);
6579 }
6580 /* Need to check if array will still be degraded after recovery/resync
6581 * Note in case of > 1 drive failures it's possible we're rebuilding
6582 * one drive while leaving another faulty drive in array.
6583 */
6584 for (i = 0; i < conf->raid_disks; i++) {
6585 struct md_rdev *rdev = conf->disks[i].rdev;
6586
6587 if (rdev == NULL || test_bit(Faulty, &rdev->flags))
6588 still_degraded = true;
6589 }
6590
6591 md_bitmap_start_sync(mddev, sector_nr, &sync_blocks, still_degraded);
6592 set_bit(STRIPE_SYNC_REQUESTED, &sh->state);
6593 set_bit(STRIPE_HANDLE, &sh->state);
6594
6595 raid5_release_stripe(sh);
6596
6597 return RAID5_STRIPE_SECTORS(conf);
6598 }
6599
retry_aligned_read(struct r5conf * conf,struct bio * raid_bio,unsigned int offset)6600 static int retry_aligned_read(struct r5conf *conf, struct bio *raid_bio,
6601 unsigned int offset)
6602 {
6603 /* We may not be able to submit a whole bio at once as there
6604 * may not be enough stripe_heads available.
6605 * We cannot pre-allocate enough stripe_heads as we may need
6606 * more than exist in the cache (if we allow ever large chunks).
6607 * So we do one stripe head at a time and record in
6608 * ->bi_hw_segments how many have been done.
6609 *
6610 * We *know* that this entire raid_bio is in one chunk, so
6611 * it will be only one 'dd_idx' and only need one call to raid5_compute_sector.
6612 */
6613 struct stripe_head *sh;
6614 int dd_idx;
6615 sector_t sector, logical_sector, last_sector;
6616 int scnt = 0;
6617 int handled = 0;
6618
6619 logical_sector = raid_bio->bi_iter.bi_sector &
6620 ~((sector_t)RAID5_STRIPE_SECTORS(conf)-1);
6621 sector = raid5_compute_sector(conf, logical_sector,
6622 0, &dd_idx, NULL);
6623 last_sector = bio_end_sector(raid_bio);
6624
6625 for (; logical_sector < last_sector;
6626 logical_sector += RAID5_STRIPE_SECTORS(conf),
6627 sector += RAID5_STRIPE_SECTORS(conf),
6628 scnt++) {
6629
6630 if (scnt < offset)
6631 /* already done this stripe */
6632 continue;
6633
6634 sh = raid5_get_active_stripe(conf, NULL, sector,
6635 R5_GAS_NOBLOCK | R5_GAS_NOQUIESCE);
6636 if (!sh) {
6637 /* failed to get a stripe - must wait */
6638 conf->retry_read_aligned = raid_bio;
6639 conf->retry_read_offset = scnt;
6640 return handled;
6641 }
6642
6643 if (!add_stripe_bio(sh, raid_bio, dd_idx, 0, 0)) {
6644 raid5_release_stripe(sh);
6645 conf->retry_read_aligned = raid_bio;
6646 conf->retry_read_offset = scnt;
6647 return handled;
6648 }
6649
6650 set_bit(R5_ReadNoMerge, &sh->dev[dd_idx].flags);
6651 handle_stripe(sh);
6652 raid5_release_stripe(sh);
6653 handled++;
6654 }
6655
6656 bio_endio(raid_bio);
6657
6658 if (atomic_dec_and_test(&conf->active_aligned_reads))
6659 wake_up(&conf->wait_for_quiescent);
6660 return handled;
6661 }
6662
handle_active_stripes(struct r5conf * conf,int group,struct r5worker * worker,struct list_head * temp_inactive_list)6663 static int handle_active_stripes(struct r5conf *conf, int group,
6664 struct r5worker *worker,
6665 struct list_head *temp_inactive_list)
6666 __must_hold(&conf->device_lock)
6667 {
6668 struct stripe_head *batch[MAX_STRIPE_BATCH], *sh;
6669 int i, batch_size = 0, hash;
6670 bool release_inactive = false;
6671
6672 while (batch_size < MAX_STRIPE_BATCH &&
6673 (sh = __get_priority_stripe(conf, group)) != NULL)
6674 batch[batch_size++] = sh;
6675
6676 if (batch_size == 0) {
6677 for (i = 0; i < NR_STRIPE_HASH_LOCKS; i++)
6678 if (!list_empty(temp_inactive_list + i))
6679 break;
6680 if (i == NR_STRIPE_HASH_LOCKS) {
6681 spin_unlock_irq(&conf->device_lock);
6682 log_flush_stripe_to_raid(conf);
6683 spin_lock_irq(&conf->device_lock);
6684 return batch_size;
6685 }
6686 release_inactive = true;
6687 }
6688 spin_unlock_irq(&conf->device_lock);
6689
6690 release_inactive_stripe_list(conf, temp_inactive_list,
6691 NR_STRIPE_HASH_LOCKS);
6692
6693 r5l_flush_stripe_to_raid(conf->log);
6694 if (release_inactive) {
6695 spin_lock_irq(&conf->device_lock);
6696 return 0;
6697 }
6698
6699 for (i = 0; i < batch_size; i++)
6700 handle_stripe(batch[i]);
6701 log_write_stripe_run(conf);
6702
6703 cond_resched();
6704
6705 spin_lock_irq(&conf->device_lock);
6706 for (i = 0; i < batch_size; i++) {
6707 hash = batch[i]->hash_lock_index;
6708 __release_stripe(conf, batch[i], &temp_inactive_list[hash]);
6709 }
6710 return batch_size;
6711 }
6712
raid5_do_work(struct work_struct * work)6713 static void raid5_do_work(struct work_struct *work)
6714 {
6715 struct r5worker *worker = container_of(work, struct r5worker, work);
6716 struct r5worker_group *group = worker->group;
6717 struct r5conf *conf = group->conf;
6718 struct mddev *mddev = conf->mddev;
6719 int group_id = group - conf->worker_groups;
6720 int handled;
6721 struct blk_plug plug;
6722
6723 pr_debug("+++ raid5worker active\n");
6724
6725 blk_start_plug(&plug);
6726 handled = 0;
6727 spin_lock_irq(&conf->device_lock);
6728 while (1) {
6729 int batch_size, released;
6730
6731 released = release_stripe_list(conf, worker->temp_inactive_list);
6732
6733 batch_size = handle_active_stripes(conf, group_id, worker,
6734 worker->temp_inactive_list);
6735 worker->working = false;
6736 if (!batch_size && !released)
6737 break;
6738 handled += batch_size;
6739 wait_event_lock_irq(mddev->sb_wait,
6740 !test_bit(MD_SB_CHANGE_PENDING, &mddev->sb_flags),
6741 conf->device_lock);
6742 }
6743 pr_debug("%d stripes handled\n", handled);
6744
6745 spin_unlock_irq(&conf->device_lock);
6746
6747 flush_deferred_bios(conf);
6748
6749 r5l_flush_stripe_to_raid(conf->log);
6750
6751 async_tx_issue_pending_all();
6752 blk_finish_plug(&plug);
6753
6754 pr_debug("--- raid5worker inactive\n");
6755 }
6756
6757 /*
6758 * This is our raid5 kernel thread.
6759 *
6760 * We scan the hash table for stripes which can be handled now.
6761 * During the scan, completed stripes are saved for us by the interrupt
6762 * handler, so that they will not have to wait for our next wakeup.
6763 */
raid5d(struct md_thread * thread)6764 static void raid5d(struct md_thread *thread)
6765 {
6766 struct mddev *mddev = thread->mddev;
6767 struct r5conf *conf = mddev->private;
6768 int handled;
6769 struct blk_plug plug;
6770
6771 pr_debug("+++ raid5d active\n");
6772
6773 md_check_recovery(mddev);
6774
6775 blk_start_plug(&plug);
6776 handled = 0;
6777 spin_lock_irq(&conf->device_lock);
6778 while (1) {
6779 struct bio *bio;
6780 int batch_size, released;
6781 unsigned int offset;
6782
6783 if (md_is_rdwr(mddev) &&
6784 test_bit(MD_SB_CHANGE_PENDING, &mddev->sb_flags))
6785 break;
6786
6787 released = release_stripe_list(conf, conf->temp_inactive_list);
6788 if (released)
6789 clear_bit(R5_DID_ALLOC, &conf->cache_state);
6790
6791 if (
6792 !list_empty(&conf->bitmap_list)) {
6793 /* Now is a good time to flush some bitmap updates */
6794 conf->seq_flush++;
6795 spin_unlock_irq(&conf->device_lock);
6796 if (md_bitmap_enabled(mddev, true))
6797 mddev->bitmap_ops->unplug(mddev, true);
6798 spin_lock_irq(&conf->device_lock);
6799 conf->seq_write = conf->seq_flush;
6800 activate_bit_delay(conf, conf->temp_inactive_list);
6801 }
6802 raid5_activate_delayed(conf);
6803
6804 while ((bio = remove_bio_from_retry(conf, &offset))) {
6805 int ok;
6806 spin_unlock_irq(&conf->device_lock);
6807 ok = retry_aligned_read(conf, bio, offset);
6808 spin_lock_irq(&conf->device_lock);
6809 if (!ok)
6810 break;
6811 handled++;
6812 }
6813
6814 batch_size = handle_active_stripes(conf, ANY_GROUP, NULL,
6815 conf->temp_inactive_list);
6816 if (!batch_size && !released)
6817 break;
6818 handled += batch_size;
6819
6820 if (mddev->sb_flags & ~(1 << MD_SB_CHANGE_PENDING)) {
6821 spin_unlock_irq(&conf->device_lock);
6822 md_check_recovery(mddev);
6823 spin_lock_irq(&conf->device_lock);
6824 }
6825 }
6826 pr_debug("%d stripes handled\n", handled);
6827
6828 spin_unlock_irq(&conf->device_lock);
6829 if (test_and_clear_bit(R5_ALLOC_MORE, &conf->cache_state) &&
6830 mutex_trylock(&conf->cache_size_mutex)) {
6831 grow_one_stripe(conf, __GFP_NOWARN);
6832 /* Set flag even if allocation failed. This helps
6833 * slow down allocation requests when mem is short
6834 */
6835 set_bit(R5_DID_ALLOC, &conf->cache_state);
6836 mutex_unlock(&conf->cache_size_mutex);
6837 }
6838
6839 flush_deferred_bios(conf);
6840
6841 r5l_flush_stripe_to_raid(conf->log);
6842
6843 async_tx_issue_pending_all();
6844 blk_finish_plug(&plug);
6845
6846 pr_debug("--- raid5d inactive\n");
6847 }
6848
6849 static ssize_t
raid5_show_stripe_cache_size(struct mddev * mddev,char * page)6850 raid5_show_stripe_cache_size(struct mddev *mddev, char *page)
6851 {
6852 struct r5conf *conf;
6853 int ret = 0;
6854 spin_lock(&mddev->lock);
6855 conf = mddev->private;
6856 if (conf)
6857 ret = sprintf(page, "%d\n", conf->min_nr_stripes);
6858 spin_unlock(&mddev->lock);
6859 return ret;
6860 }
6861
6862 int
raid5_set_cache_size(struct mddev * mddev,int size)6863 raid5_set_cache_size(struct mddev *mddev, int size)
6864 {
6865 int result = 0;
6866 struct r5conf *conf = mddev->private;
6867
6868 if (size <= 16 || size > 32768)
6869 return -EINVAL;
6870
6871 WRITE_ONCE(conf->min_nr_stripes, size);
6872 mutex_lock(&conf->cache_size_mutex);
6873 while (size < conf->max_nr_stripes &&
6874 drop_one_stripe(conf))
6875 ;
6876 mutex_unlock(&conf->cache_size_mutex);
6877
6878 md_allow_write(mddev);
6879
6880 mutex_lock(&conf->cache_size_mutex);
6881 while (size > conf->max_nr_stripes)
6882 if (!grow_one_stripe(conf, GFP_KERNEL)) {
6883 WRITE_ONCE(conf->min_nr_stripes, conf->max_nr_stripes);
6884 result = -ENOMEM;
6885 break;
6886 }
6887 mutex_unlock(&conf->cache_size_mutex);
6888
6889 return result;
6890 }
6891 EXPORT_SYMBOL(raid5_set_cache_size);
6892
6893 static ssize_t
raid5_store_stripe_cache_size(struct mddev * mddev,const char * page,size_t len)6894 raid5_store_stripe_cache_size(struct mddev *mddev, const char *page, size_t len)
6895 {
6896 struct r5conf *conf;
6897 unsigned long new;
6898 int err;
6899
6900 if (len >= PAGE_SIZE)
6901 return -EINVAL;
6902 if (kstrtoul(page, 10, &new))
6903 return -EINVAL;
6904 err = mddev_lock(mddev);
6905 if (err)
6906 return err;
6907 conf = mddev->private;
6908 if (!conf)
6909 err = -ENODEV;
6910 else
6911 err = raid5_set_cache_size(mddev, new);
6912 mddev_unlock(mddev);
6913
6914 return err ?: len;
6915 }
6916
6917 static struct md_sysfs_entry
6918 raid5_stripecache_size = __ATTR(stripe_cache_size, S_IRUGO | S_IWUSR,
6919 raid5_show_stripe_cache_size,
6920 raid5_store_stripe_cache_size);
6921
6922 static ssize_t
raid5_show_rmw_level(struct mddev * mddev,char * page)6923 raid5_show_rmw_level(struct mddev *mddev, char *page)
6924 {
6925 struct r5conf *conf = mddev->private;
6926 if (conf)
6927 return sprintf(page, "%d\n", conf->rmw_level);
6928 else
6929 return 0;
6930 }
6931
6932 static ssize_t
raid5_store_rmw_level(struct mddev * mddev,const char * page,size_t len)6933 raid5_store_rmw_level(struct mddev *mddev, const char *page, size_t len)
6934 {
6935 struct r5conf *conf = mddev->private;
6936 unsigned long new;
6937
6938 if (!conf)
6939 return -ENODEV;
6940
6941 if (len >= PAGE_SIZE)
6942 return -EINVAL;
6943
6944 if (kstrtoul(page, 10, &new))
6945 return -EINVAL;
6946
6947 if (new != PARITY_DISABLE_RMW && !raid6_call.xor_syndrome)
6948 return -EINVAL;
6949
6950 if (new != PARITY_DISABLE_RMW &&
6951 new != PARITY_ENABLE_RMW &&
6952 new != PARITY_PREFER_RMW)
6953 return -EINVAL;
6954
6955 conf->rmw_level = new;
6956 return len;
6957 }
6958
6959 static struct md_sysfs_entry
6960 raid5_rmw_level = __ATTR(rmw_level, S_IRUGO | S_IWUSR,
6961 raid5_show_rmw_level,
6962 raid5_store_rmw_level);
6963
6964 static ssize_t
raid5_show_stripe_size(struct mddev * mddev,char * page)6965 raid5_show_stripe_size(struct mddev *mddev, char *page)
6966 {
6967 struct r5conf *conf;
6968 int ret = 0;
6969
6970 spin_lock(&mddev->lock);
6971 conf = mddev->private;
6972 if (conf)
6973 ret = sprintf(page, "%lu\n", RAID5_STRIPE_SIZE(conf));
6974 spin_unlock(&mddev->lock);
6975 return ret;
6976 }
6977
6978 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
6979 static ssize_t
raid5_store_stripe_size(struct mddev * mddev,const char * page,size_t len)6980 raid5_store_stripe_size(struct mddev *mddev, const char *page, size_t len)
6981 {
6982 struct r5conf *conf;
6983 unsigned long new;
6984 int err;
6985 int size;
6986
6987 if (len >= PAGE_SIZE)
6988 return -EINVAL;
6989 if (kstrtoul(page, 10, &new))
6990 return -EINVAL;
6991
6992 /*
6993 * The value should not be bigger than PAGE_SIZE. It requires to
6994 * be multiple of DEFAULT_STRIPE_SIZE and the value should be power
6995 * of two.
6996 */
6997 if (new % DEFAULT_STRIPE_SIZE != 0 ||
6998 new > PAGE_SIZE || new == 0 ||
6999 new != roundup_pow_of_two(new))
7000 return -EINVAL;
7001
7002 err = mddev_suspend_and_lock(mddev);
7003 if (err)
7004 return err;
7005
7006 conf = mddev->private;
7007 if (!conf) {
7008 err = -ENODEV;
7009 goto out_unlock;
7010 }
7011
7012 if (new == conf->stripe_size)
7013 goto out_unlock;
7014
7015 pr_debug("md/raid: change stripe_size from %lu to %lu\n",
7016 conf->stripe_size, new);
7017
7018 if (test_bit(MD_RECOVERY_RUNNING, &mddev->recovery) ||
7019 mddev->reshape_position != MaxSector || mddev->sysfs_active) {
7020 err = -EBUSY;
7021 goto out_unlock;
7022 }
7023
7024 mutex_lock(&conf->cache_size_mutex);
7025 size = conf->max_nr_stripes;
7026
7027 shrink_stripes(conf);
7028
7029 conf->stripe_size = new;
7030 conf->stripe_shift = ilog2(new) - 9;
7031 conf->stripe_sectors = new >> 9;
7032 if (grow_stripes(conf, size)) {
7033 pr_warn("md/raid:%s: couldn't allocate buffers\n",
7034 mdname(mddev));
7035 err = -ENOMEM;
7036 }
7037 mutex_unlock(&conf->cache_size_mutex);
7038
7039 out_unlock:
7040 mddev_unlock_and_resume(mddev);
7041 return err ?: len;
7042 }
7043
7044 static struct md_sysfs_entry
7045 raid5_stripe_size = __ATTR(stripe_size, 0644,
7046 raid5_show_stripe_size,
7047 raid5_store_stripe_size);
7048 #else
7049 static struct md_sysfs_entry
7050 raid5_stripe_size = __ATTR(stripe_size, 0444,
7051 raid5_show_stripe_size,
7052 NULL);
7053 #endif
7054
7055 static ssize_t
raid5_show_preread_threshold(struct mddev * mddev,char * page)7056 raid5_show_preread_threshold(struct mddev *mddev, char *page)
7057 {
7058 struct r5conf *conf;
7059 int ret = 0;
7060 spin_lock(&mddev->lock);
7061 conf = mddev->private;
7062 if (conf)
7063 ret = sprintf(page, "%d\n", conf->bypass_threshold);
7064 spin_unlock(&mddev->lock);
7065 return ret;
7066 }
7067
7068 static ssize_t
raid5_store_preread_threshold(struct mddev * mddev,const char * page,size_t len)7069 raid5_store_preread_threshold(struct mddev *mddev, const char *page, size_t len)
7070 {
7071 struct r5conf *conf;
7072 unsigned long new;
7073 int err;
7074
7075 if (len >= PAGE_SIZE)
7076 return -EINVAL;
7077 if (kstrtoul(page, 10, &new))
7078 return -EINVAL;
7079
7080 err = mddev_lock(mddev);
7081 if (err)
7082 return err;
7083 conf = mddev->private;
7084 if (!conf)
7085 err = -ENODEV;
7086 else if (new > conf->min_nr_stripes)
7087 err = -EINVAL;
7088 else
7089 conf->bypass_threshold = new;
7090 mddev_unlock(mddev);
7091 return err ?: len;
7092 }
7093
7094 static struct md_sysfs_entry
7095 raid5_preread_bypass_threshold = __ATTR(preread_bypass_threshold,
7096 S_IRUGO | S_IWUSR,
7097 raid5_show_preread_threshold,
7098 raid5_store_preread_threshold);
7099
7100 static ssize_t
raid5_show_skip_copy(struct mddev * mddev,char * page)7101 raid5_show_skip_copy(struct mddev *mddev, char *page)
7102 {
7103 struct r5conf *conf;
7104 int ret = 0;
7105 spin_lock(&mddev->lock);
7106 conf = mddev->private;
7107 if (conf)
7108 ret = sprintf(page, "%d\n", conf->skip_copy);
7109 spin_unlock(&mddev->lock);
7110 return ret;
7111 }
7112
7113 static ssize_t
raid5_store_skip_copy(struct mddev * mddev,const char * page,size_t len)7114 raid5_store_skip_copy(struct mddev *mddev, const char *page, size_t len)
7115 {
7116 struct r5conf *conf;
7117 unsigned long new;
7118 int err;
7119
7120 if (len >= PAGE_SIZE)
7121 return -EINVAL;
7122 if (kstrtoul(page, 10, &new))
7123 return -EINVAL;
7124 new = !!new;
7125
7126 err = mddev_suspend_and_lock(mddev);
7127 if (err)
7128 return err;
7129 conf = mddev->private;
7130 if (!conf)
7131 err = -ENODEV;
7132 else if (new != conf->skip_copy) {
7133 struct request_queue *q = mddev->gendisk->queue;
7134 struct queue_limits lim = queue_limits_start_update(q);
7135
7136 conf->skip_copy = new;
7137 if (new)
7138 lim.features |= BLK_FEAT_STABLE_WRITES;
7139 else
7140 lim.features &= ~BLK_FEAT_STABLE_WRITES;
7141 err = queue_limits_commit_update(q, &lim);
7142 }
7143 mddev_unlock_and_resume(mddev);
7144 return err ?: len;
7145 }
7146
7147 static struct md_sysfs_entry
7148 raid5_skip_copy = __ATTR(skip_copy, S_IRUGO | S_IWUSR,
7149 raid5_show_skip_copy,
7150 raid5_store_skip_copy);
7151
7152 static ssize_t
stripe_cache_active_show(struct mddev * mddev,char * page)7153 stripe_cache_active_show(struct mddev *mddev, char *page)
7154 {
7155 struct r5conf *conf = mddev->private;
7156 if (conf)
7157 return sprintf(page, "%d\n", atomic_read(&conf->active_stripes));
7158 else
7159 return 0;
7160 }
7161
7162 static struct md_sysfs_entry
7163 raid5_stripecache_active = __ATTR_RO(stripe_cache_active);
7164
7165 static ssize_t
raid5_show_group_thread_cnt(struct mddev * mddev,char * page)7166 raid5_show_group_thread_cnt(struct mddev *mddev, char *page)
7167 {
7168 struct r5conf *conf;
7169 int ret = 0;
7170 spin_lock(&mddev->lock);
7171 conf = mddev->private;
7172 if (conf)
7173 ret = sprintf(page, "%d\n", conf->worker_cnt_per_group);
7174 spin_unlock(&mddev->lock);
7175 return ret;
7176 }
7177
7178 static int alloc_thread_groups(struct r5conf *conf, int cnt,
7179 int *group_cnt,
7180 struct r5worker_group **worker_groups);
7181 static ssize_t
raid5_store_group_thread_cnt(struct mddev * mddev,const char * page,size_t len)7182 raid5_store_group_thread_cnt(struct mddev *mddev, const char *page, size_t len)
7183 {
7184 struct r5conf *conf;
7185 unsigned int new;
7186 int err;
7187 struct r5worker_group *new_groups, *old_groups;
7188 int group_cnt;
7189
7190 if (len >= PAGE_SIZE)
7191 return -EINVAL;
7192 if (kstrtouint(page, 10, &new))
7193 return -EINVAL;
7194 /* 8192 should be big enough */
7195 if (new > 8192)
7196 return -EINVAL;
7197
7198 err = mddev_suspend_and_lock(mddev);
7199 if (err)
7200 return err;
7201 conf = mddev->private;
7202 if (!conf) {
7203 mddev_unlock_and_resume(mddev);
7204 return -ENODEV;
7205 }
7206 raid5_quiesce(mddev, true);
7207
7208 if (new != conf->worker_cnt_per_group) {
7209 old_groups = conf->worker_groups;
7210 if (old_groups)
7211 flush_workqueue(raid5_wq);
7212
7213 err = alloc_thread_groups(conf, new, &group_cnt, &new_groups);
7214 if (!err) {
7215 spin_lock_irq(&conf->device_lock);
7216 conf->group_cnt = group_cnt;
7217 conf->worker_cnt_per_group = new;
7218 conf->worker_groups = new_groups;
7219 spin_unlock_irq(&conf->device_lock);
7220
7221 if (old_groups)
7222 kfree(old_groups[0].workers);
7223 kfree(old_groups);
7224 }
7225 }
7226
7227 raid5_quiesce(mddev, false);
7228 mddev_unlock_and_resume(mddev);
7229
7230 return err ?: len;
7231 }
7232
7233 static struct md_sysfs_entry
7234 raid5_group_thread_cnt = __ATTR(group_thread_cnt, S_IRUGO | S_IWUSR,
7235 raid5_show_group_thread_cnt,
7236 raid5_store_group_thread_cnt);
7237
7238 static struct attribute *raid5_attrs[] = {
7239 &raid5_stripecache_size.attr,
7240 &raid5_stripecache_active.attr,
7241 &raid5_preread_bypass_threshold.attr,
7242 &raid5_group_thread_cnt.attr,
7243 &raid5_skip_copy.attr,
7244 &raid5_rmw_level.attr,
7245 &raid5_stripe_size.attr,
7246 &r5c_journal_mode.attr,
7247 &ppl_write_hint.attr,
7248 NULL,
7249 };
7250 static const struct attribute_group raid5_attrs_group = {
7251 .name = NULL,
7252 .attrs = raid5_attrs,
7253 };
7254
alloc_thread_groups(struct r5conf * conf,int cnt,int * group_cnt,struct r5worker_group ** worker_groups)7255 static int alloc_thread_groups(struct r5conf *conf, int cnt, int *group_cnt,
7256 struct r5worker_group **worker_groups)
7257 {
7258 int i, j, k;
7259 ssize_t size;
7260 struct r5worker *workers;
7261
7262 if (cnt == 0) {
7263 *group_cnt = 0;
7264 *worker_groups = NULL;
7265 return 0;
7266 }
7267 *group_cnt = num_possible_nodes();
7268 size = sizeof(struct r5worker) * cnt;
7269 workers = kcalloc(size, *group_cnt, GFP_NOIO);
7270 *worker_groups = kzalloc_objs(struct r5worker_group, *group_cnt,
7271 GFP_NOIO);
7272 if (!*worker_groups || !workers) {
7273 kfree(workers);
7274 kfree(*worker_groups);
7275 return -ENOMEM;
7276 }
7277
7278 for (i = 0; i < *group_cnt; i++) {
7279 struct r5worker_group *group;
7280
7281 group = &(*worker_groups)[i];
7282 INIT_LIST_HEAD(&group->handle_list);
7283 INIT_LIST_HEAD(&group->loprio_list);
7284 group->conf = conf;
7285 group->workers = workers + i * cnt;
7286
7287 for (j = 0; j < cnt; j++) {
7288 struct r5worker *worker = group->workers + j;
7289 worker->group = group;
7290 INIT_WORK(&worker->work, raid5_do_work);
7291
7292 for (k = 0; k < NR_STRIPE_HASH_LOCKS; k++)
7293 INIT_LIST_HEAD(worker->temp_inactive_list + k);
7294 }
7295 }
7296
7297 return 0;
7298 }
7299
free_thread_groups(struct r5conf * conf)7300 static void free_thread_groups(struct r5conf *conf)
7301 {
7302 if (conf->worker_groups)
7303 kfree(conf->worker_groups[0].workers);
7304 kfree(conf->worker_groups);
7305 conf->worker_groups = NULL;
7306 }
7307
7308 static sector_t
raid5_size(struct mddev * mddev,sector_t sectors,int raid_disks)7309 raid5_size(struct mddev *mddev, sector_t sectors, int raid_disks)
7310 {
7311 struct r5conf *conf = mddev->private;
7312
7313 if (!sectors)
7314 sectors = mddev->dev_sectors;
7315 if (!raid_disks)
7316 /* size is defined by the smallest of previous and new size */
7317 raid_disks = min(conf->raid_disks, conf->previous_raid_disks);
7318
7319 sectors &= ~((sector_t)conf->chunk_sectors - 1);
7320 sectors &= ~((sector_t)conf->prev_chunk_sectors - 1);
7321 return sectors * (raid_disks - conf->max_degraded);
7322 }
7323
free_scratch_buffer(struct r5conf * conf,struct raid5_percpu * percpu)7324 static void free_scratch_buffer(struct r5conf *conf, struct raid5_percpu *percpu)
7325 {
7326 safe_put_page(percpu->spare_page);
7327 percpu->spare_page = NULL;
7328 kvfree(percpu->scribble);
7329 percpu->scribble = NULL;
7330 }
7331
alloc_scratch_buffer(struct r5conf * conf,struct raid5_percpu * percpu)7332 static int alloc_scratch_buffer(struct r5conf *conf, struct raid5_percpu *percpu)
7333 {
7334 if (conf->level == 6 && !percpu->spare_page) {
7335 percpu->spare_page = alloc_page(GFP_KERNEL);
7336 if (!percpu->spare_page)
7337 return -ENOMEM;
7338 }
7339
7340 if (scribble_alloc(percpu,
7341 max(conf->raid_disks,
7342 conf->previous_raid_disks),
7343 max(conf->chunk_sectors,
7344 conf->prev_chunk_sectors)
7345 / RAID5_STRIPE_SECTORS(conf))) {
7346 free_scratch_buffer(conf, percpu);
7347 return -ENOMEM;
7348 }
7349
7350 local_lock_init(&percpu->lock);
7351 return 0;
7352 }
7353
raid456_cpu_dead(unsigned int cpu,struct hlist_node * node)7354 static int raid456_cpu_dead(unsigned int cpu, struct hlist_node *node)
7355 {
7356 struct r5conf *conf = hlist_entry_safe(node, struct r5conf, node);
7357
7358 free_scratch_buffer(conf, per_cpu_ptr(conf->percpu, cpu));
7359 return 0;
7360 }
7361
raid5_free_percpu(struct r5conf * conf)7362 static void raid5_free_percpu(struct r5conf *conf)
7363 {
7364 if (!conf->percpu)
7365 return;
7366
7367 cpuhp_state_remove_instance(CPUHP_MD_RAID5_PREPARE, &conf->node);
7368 free_percpu(conf->percpu);
7369 }
7370
free_conf(struct r5conf * conf)7371 static void free_conf(struct r5conf *conf)
7372 {
7373 int i;
7374
7375 log_exit(conf);
7376
7377 shrinker_free(conf->shrinker);
7378 free_thread_groups(conf);
7379 shrink_stripes(conf);
7380 raid5_free_percpu(conf);
7381 for (i = 0; i < conf->pool_size; i++)
7382 if (conf->disks[i].extra_page)
7383 put_page(conf->disks[i].extra_page);
7384 kfree(conf->disks);
7385 bioset_exit(&conf->bio_split);
7386 kfree(conf->stripe_hashtbl);
7387 kfree(conf->pending_data);
7388
7389 mempool_destroy(conf->ctx_pool);
7390
7391 kfree(conf);
7392 }
7393
raid456_cpu_up_prepare(unsigned int cpu,struct hlist_node * node)7394 static int raid456_cpu_up_prepare(unsigned int cpu, struct hlist_node *node)
7395 {
7396 struct r5conf *conf = hlist_entry_safe(node, struct r5conf, node);
7397 struct raid5_percpu *percpu = per_cpu_ptr(conf->percpu, cpu);
7398
7399 if (alloc_scratch_buffer(conf, percpu)) {
7400 pr_warn("%s: failed memory allocation for cpu%u\n",
7401 __func__, cpu);
7402 return -ENOMEM;
7403 }
7404 return 0;
7405 }
7406
raid5_alloc_percpu(struct r5conf * conf)7407 static int raid5_alloc_percpu(struct r5conf *conf)
7408 {
7409 int err = 0;
7410
7411 conf->percpu = alloc_percpu(struct raid5_percpu);
7412 if (!conf->percpu)
7413 return -ENOMEM;
7414
7415 err = cpuhp_state_add_instance(CPUHP_MD_RAID5_PREPARE, &conf->node);
7416 if (!err) {
7417 conf->scribble_disks = max(conf->raid_disks,
7418 conf->previous_raid_disks);
7419 conf->scribble_sectors = max(conf->chunk_sectors,
7420 conf->prev_chunk_sectors);
7421 }
7422 return err;
7423 }
7424
raid5_cache_scan(struct shrinker * shrink,struct shrink_control * sc)7425 static unsigned long raid5_cache_scan(struct shrinker *shrink,
7426 struct shrink_control *sc)
7427 {
7428 struct r5conf *conf = shrink->private_data;
7429 unsigned long ret = SHRINK_STOP;
7430
7431 if (mutex_trylock(&conf->cache_size_mutex)) {
7432 ret= 0;
7433 while (ret < sc->nr_to_scan &&
7434 conf->max_nr_stripes > conf->min_nr_stripes) {
7435 if (drop_one_stripe(conf) == 0) {
7436 ret = SHRINK_STOP;
7437 break;
7438 }
7439 ret++;
7440 }
7441 mutex_unlock(&conf->cache_size_mutex);
7442 }
7443 return ret;
7444 }
7445
raid5_cache_count(struct shrinker * shrink,struct shrink_control * sc)7446 static unsigned long raid5_cache_count(struct shrinker *shrink,
7447 struct shrink_control *sc)
7448 {
7449 struct r5conf *conf = shrink->private_data;
7450 int max_stripes = READ_ONCE(conf->max_nr_stripes);
7451 int min_stripes = READ_ONCE(conf->min_nr_stripes);
7452
7453 if (max_stripes < min_stripes)
7454 /* unlikely, but not impossible */
7455 return 0;
7456 return max_stripes - min_stripes;
7457 }
7458
setup_conf(struct mddev * mddev)7459 static struct r5conf *setup_conf(struct mddev *mddev)
7460 {
7461 struct r5conf *conf;
7462 int raid_disk, memory, max_disks;
7463 struct md_rdev *rdev;
7464 struct disk_info *disk;
7465 char pers_name[6];
7466 int i;
7467 int group_cnt;
7468 struct r5worker_group *new_group;
7469 int ret = -ENOMEM;
7470
7471 if (mddev->new_level != 5
7472 && mddev->new_level != 4
7473 && mddev->new_level != 6) {
7474 pr_warn("md/raid:%s: raid level not set to 4/5/6 (%d)\n",
7475 mdname(mddev), mddev->new_level);
7476 return ERR_PTR(-EIO);
7477 }
7478 if ((mddev->new_level == 5
7479 && !algorithm_valid_raid5(mddev->new_layout)) ||
7480 (mddev->new_level == 6
7481 && !algorithm_valid_raid6(mddev->new_layout))) {
7482 pr_warn("md/raid:%s: layout %d not supported\n",
7483 mdname(mddev), mddev->new_layout);
7484 return ERR_PTR(-EIO);
7485 }
7486 if (mddev->new_level == 6 && mddev->raid_disks < 4) {
7487 pr_warn("md/raid:%s: not enough configured devices (%d, minimum 4)\n",
7488 mdname(mddev), mddev->raid_disks);
7489 return ERR_PTR(-EINVAL);
7490 }
7491
7492 if (!mddev->new_chunk_sectors ||
7493 (mddev->new_chunk_sectors << 9) % PAGE_SIZE ||
7494 !is_power_of_2(mddev->new_chunk_sectors)) {
7495 pr_warn("md/raid:%s: invalid chunk size %d\n",
7496 mdname(mddev), mddev->new_chunk_sectors << 9);
7497 return ERR_PTR(-EINVAL);
7498 }
7499
7500 conf = kzalloc_obj(struct r5conf);
7501 if (conf == NULL)
7502 goto abort;
7503
7504 #if PAGE_SIZE != DEFAULT_STRIPE_SIZE
7505 conf->stripe_size = DEFAULT_STRIPE_SIZE;
7506 conf->stripe_shift = ilog2(DEFAULT_STRIPE_SIZE) - 9;
7507 conf->stripe_sectors = DEFAULT_STRIPE_SIZE >> 9;
7508 #endif
7509 INIT_LIST_HEAD(&conf->free_list);
7510 INIT_LIST_HEAD(&conf->pending_list);
7511 conf->pending_data = kzalloc_objs(struct r5pending_data, PENDING_IO_MAX);
7512 if (!conf->pending_data)
7513 goto abort;
7514 for (i = 0; i < PENDING_IO_MAX; i++)
7515 list_add(&conf->pending_data[i].sibling, &conf->free_list);
7516 /* Don't enable multi-threading by default*/
7517 if (!alloc_thread_groups(conf, 0, &group_cnt, &new_group)) {
7518 conf->group_cnt = group_cnt;
7519 conf->worker_cnt_per_group = 0;
7520 conf->worker_groups = new_group;
7521 } else
7522 goto abort;
7523 spin_lock_init(&conf->device_lock);
7524 seqcount_spinlock_init(&conf->gen_lock, &conf->device_lock);
7525 mutex_init(&conf->cache_size_mutex);
7526
7527 init_waitqueue_head(&conf->wait_for_quiescent);
7528 init_waitqueue_head(&conf->wait_for_stripe);
7529 init_waitqueue_head(&conf->wait_for_reshape);
7530 INIT_LIST_HEAD(&conf->handle_list);
7531 INIT_LIST_HEAD(&conf->loprio_list);
7532 INIT_LIST_HEAD(&conf->hold_list);
7533 INIT_LIST_HEAD(&conf->delayed_list);
7534 INIT_LIST_HEAD(&conf->bitmap_list);
7535 init_llist_head(&conf->released_stripes);
7536 atomic_set(&conf->active_stripes, 0);
7537 atomic_set(&conf->preread_active_stripes, 0);
7538 atomic_set(&conf->active_aligned_reads, 0);
7539 spin_lock_init(&conf->pending_bios_lock);
7540 conf->batch_bio_dispatch = true;
7541 rdev_for_each(rdev, mddev) {
7542 if (test_bit(Journal, &rdev->flags))
7543 continue;
7544 if (bdev_nonrot(rdev->bdev)) {
7545 conf->batch_bio_dispatch = false;
7546 break;
7547 }
7548 }
7549
7550 conf->bypass_threshold = BYPASS_THRESHOLD;
7551 conf->raid_disks = mddev->raid_disks;
7552 if (mddev->reshape_position == MaxSector)
7553 conf->previous_raid_disks = mddev->raid_disks;
7554 else
7555 conf->previous_raid_disks = mddev->raid_disks - mddev->delta_disks;
7556 max_disks = max(conf->raid_disks, conf->previous_raid_disks);
7557
7558 conf->disks = kzalloc_objs(struct disk_info, max_disks);
7559
7560 if (!conf->disks)
7561 goto abort;
7562
7563 for (i = 0; i < max_disks; i++) {
7564 conf->disks[i].extra_page = alloc_page(GFP_KERNEL);
7565 if (!conf->disks[i].extra_page)
7566 goto abort;
7567 }
7568
7569 ret = bioset_init(&conf->bio_split, BIO_POOL_SIZE, 0, 0);
7570 if (ret)
7571 goto abort;
7572 conf->mddev = mddev;
7573
7574 ret = -ENOMEM;
7575 conf->stripe_hashtbl = kzalloc(PAGE_SIZE, GFP_KERNEL);
7576 if (!conf->stripe_hashtbl)
7577 goto abort;
7578
7579 /* We init hash_locks[0] separately to that it can be used
7580 * as the reference lock in the spin_lock_nest_lock() call
7581 * in lock_all_device_hash_locks_irq in order to convince
7582 * lockdep that we know what we are doing.
7583 */
7584 spin_lock_init(conf->hash_locks);
7585 for (i = 1; i < NR_STRIPE_HASH_LOCKS; i++)
7586 spin_lock_init(conf->hash_locks + i);
7587
7588 for (i = 0; i < NR_STRIPE_HASH_LOCKS; i++)
7589 INIT_LIST_HEAD(conf->inactive_list + i);
7590
7591 for (i = 0; i < NR_STRIPE_HASH_LOCKS; i++)
7592 INIT_LIST_HEAD(conf->temp_inactive_list + i);
7593
7594 atomic_set(&conf->r5c_cached_full_stripes, 0);
7595 INIT_LIST_HEAD(&conf->r5c_full_stripe_list);
7596 atomic_set(&conf->r5c_cached_partial_stripes, 0);
7597 INIT_LIST_HEAD(&conf->r5c_partial_stripe_list);
7598 atomic_set(&conf->r5c_flushing_full_stripes, 0);
7599 atomic_set(&conf->r5c_flushing_partial_stripes, 0);
7600
7601 conf->level = mddev->new_level;
7602 conf->chunk_sectors = mddev->new_chunk_sectors;
7603 ret = raid5_alloc_percpu(conf);
7604 if (ret)
7605 goto abort;
7606
7607 pr_debug("raid456: run(%s) called.\n", mdname(mddev));
7608
7609 ret = -EIO;
7610 rdev_for_each(rdev, mddev) {
7611 raid_disk = rdev->raid_disk;
7612 if (raid_disk >= max_disks
7613 || raid_disk < 0 || test_bit(Journal, &rdev->flags))
7614 continue;
7615 disk = conf->disks + raid_disk;
7616
7617 if (test_bit(Replacement, &rdev->flags)) {
7618 if (disk->replacement)
7619 goto abort;
7620 disk->replacement = rdev;
7621 } else {
7622 if (disk->rdev)
7623 goto abort;
7624 disk->rdev = rdev;
7625 }
7626
7627 if (test_bit(In_sync, &rdev->flags)) {
7628 pr_info("md/raid:%s: device %pg operational as raid disk %d\n",
7629 mdname(mddev), rdev->bdev, raid_disk);
7630 } else if (rdev->saved_raid_disk != raid_disk)
7631 /* Cannot rely on bitmap to complete recovery */
7632 conf->fullsync = 1;
7633 }
7634
7635 conf->level = mddev->new_level;
7636 if (conf->level == 6) {
7637 conf->max_degraded = 2;
7638 if (raid6_call.xor_syndrome)
7639 conf->rmw_level = PARITY_ENABLE_RMW;
7640 else
7641 conf->rmw_level = PARITY_DISABLE_RMW;
7642 } else {
7643 conf->max_degraded = 1;
7644 conf->rmw_level = PARITY_ENABLE_RMW;
7645 }
7646 conf->algorithm = mddev->new_layout;
7647 conf->reshape_progress = mddev->reshape_position;
7648 if (conf->reshape_progress != MaxSector) {
7649 conf->prev_chunk_sectors = mddev->chunk_sectors;
7650 conf->prev_algo = mddev->layout;
7651 } else {
7652 conf->prev_chunk_sectors = conf->chunk_sectors;
7653 conf->prev_algo = conf->algorithm;
7654 }
7655
7656 conf->min_nr_stripes = NR_STRIPES;
7657 if (mddev->reshape_position != MaxSector) {
7658 int stripes = max_t(int,
7659 ((mddev->chunk_sectors << 9) / RAID5_STRIPE_SIZE(conf)) * 4,
7660 ((mddev->new_chunk_sectors << 9) / RAID5_STRIPE_SIZE(conf)) * 4);
7661 conf->min_nr_stripes = max(NR_STRIPES, stripes);
7662 if (conf->min_nr_stripes != NR_STRIPES)
7663 pr_info("md/raid:%s: force stripe size %d for reshape\n",
7664 mdname(mddev), conf->min_nr_stripes);
7665 }
7666 memory = conf->min_nr_stripes * (sizeof(struct stripe_head) +
7667 max_disks * ((sizeof(struct bio) + PAGE_SIZE))) / 1024;
7668 atomic_set(&conf->empty_inactive_list_nr, NR_STRIPE_HASH_LOCKS);
7669 if (grow_stripes(conf, conf->min_nr_stripes)) {
7670 pr_warn("md/raid:%s: couldn't allocate %dkB for buffers\n",
7671 mdname(mddev), memory);
7672 ret = -ENOMEM;
7673 goto abort;
7674 } else
7675 pr_debug("md/raid:%s: allocated %dkB\n", mdname(mddev), memory);
7676 /*
7677 * Losing a stripe head costs more than the time to refill it,
7678 * it reduces the queue depth and so can hurt throughput.
7679 * So set it rather large, scaled by number of devices.
7680 */
7681 conf->shrinker = shrinker_alloc(0, "md-raid5:%s", mdname(mddev));
7682 if (!conf->shrinker) {
7683 ret = -ENOMEM;
7684 pr_warn("md/raid:%s: couldn't allocate shrinker.\n",
7685 mdname(mddev));
7686 goto abort;
7687 }
7688
7689 conf->shrinker->seeks = DEFAULT_SEEKS * conf->raid_disks * 4;
7690 conf->shrinker->scan_objects = raid5_cache_scan;
7691 conf->shrinker->count_objects = raid5_cache_count;
7692 conf->shrinker->batch = 128;
7693 conf->shrinker->private_data = conf;
7694
7695 shrinker_register(conf->shrinker);
7696
7697 sprintf(pers_name, "raid%d", mddev->new_level);
7698 rcu_assign_pointer(conf->thread,
7699 md_register_thread(raid5d, mddev, pers_name));
7700 if (!conf->thread) {
7701 pr_warn("md/raid:%s: couldn't allocate thread.\n",
7702 mdname(mddev));
7703 ret = -ENOMEM;
7704 goto abort;
7705 }
7706
7707 return conf;
7708
7709 abort:
7710 if (conf)
7711 free_conf(conf);
7712 return ERR_PTR(ret);
7713 }
7714
only_parity(int raid_disk,int algo,int raid_disks,int max_degraded)7715 static int only_parity(int raid_disk, int algo, int raid_disks, int max_degraded)
7716 {
7717 switch (algo) {
7718 case ALGORITHM_PARITY_0:
7719 if (raid_disk < max_degraded)
7720 return 1;
7721 break;
7722 case ALGORITHM_PARITY_N:
7723 if (raid_disk >= raid_disks - max_degraded)
7724 return 1;
7725 break;
7726 case ALGORITHM_PARITY_0_6:
7727 if (raid_disk == 0 ||
7728 raid_disk == raid_disks - 1)
7729 return 1;
7730 break;
7731 case ALGORITHM_LEFT_ASYMMETRIC_6:
7732 case ALGORITHM_RIGHT_ASYMMETRIC_6:
7733 case ALGORITHM_LEFT_SYMMETRIC_6:
7734 case ALGORITHM_RIGHT_SYMMETRIC_6:
7735 if (raid_disk == raid_disks - 1)
7736 return 1;
7737 }
7738 return 0;
7739 }
7740
raid5_create_ctx_pool(struct r5conf * conf)7741 static int raid5_create_ctx_pool(struct r5conf *conf)
7742 {
7743 struct stripe_request_ctx *ctx;
7744 int size;
7745
7746 if (mddev_is_dm(conf->mddev))
7747 size = BITS_TO_LONGS(RAID5_MAX_REQ_STRIPES);
7748 else
7749 size = BITS_TO_LONGS(
7750 queue_max_hw_sectors(conf->mddev->gendisk->queue) >>
7751 RAID5_STRIPE_SHIFT(conf));
7752
7753 conf->ctx_size = struct_size(ctx, sectors_to_do, size);
7754 conf->ctx_pool = mempool_create_kmalloc_pool(NR_RAID_BIOS,
7755 conf->ctx_size);
7756
7757 return conf->ctx_pool ? 0 : -ENOMEM;
7758 }
7759
raid5_set_limits(struct mddev * mddev)7760 static int raid5_set_limits(struct mddev *mddev)
7761 {
7762 struct r5conf *conf = mddev->private;
7763 struct queue_limits lim;
7764 int data_disks, stripe;
7765 struct md_rdev *rdev;
7766
7767 /*
7768 * The read-ahead size must cover two whole stripes, which is
7769 * 2 * (datadisks) * chunksize where 'n' is the number of raid devices.
7770 */
7771 data_disks = conf->previous_raid_disks - conf->max_degraded;
7772
7773 /*
7774 * We can only discard a whole stripe. It doesn't make sense to
7775 * discard data disk but write parity disk
7776 */
7777 stripe = roundup_pow_of_two(data_disks * (mddev->chunk_sectors << 9));
7778
7779 md_init_stacking_limits(&lim);
7780 lim.logical_block_size = mddev->logical_block_size;
7781 lim.io_min = mddev->chunk_sectors << 9;
7782 lim.io_opt = lim.io_min * (conf->raid_disks - conf->max_degraded);
7783 lim.features |= BLK_FEAT_RAID_PARTIAL_STRIPES_EXPENSIVE;
7784 lim.discard_granularity = stripe;
7785 lim.max_write_zeroes_sectors = 0;
7786 lim.max_hw_wzeroes_unmap_sectors = 0;
7787 mddev_stack_rdev_limits(mddev, &lim, 0);
7788 rdev_for_each(rdev, mddev)
7789 queue_limits_stack_bdev(&lim, rdev->bdev, rdev->new_data_offset,
7790 mddev->gendisk->disk_name);
7791
7792 /*
7793 * Zeroing is required for discard, otherwise data could be lost.
7794 *
7795 * Consider a scenario: discard a stripe (the stripe could be
7796 * inconsistent if discard_zeroes_data is 0); write one disk of the
7797 * stripe (the stripe could be inconsistent again depending on which
7798 * disks are used to calculate parity); the disk is broken; The stripe
7799 * data of this disk is lost.
7800 *
7801 * We only allow DISCARD if the sysadmin has confirmed that only safe
7802 * devices are in use by setting a module parameter. A better idea
7803 * might be to turn DISCARD into WRITE_ZEROES requests, as that is
7804 * required to be safe.
7805 */
7806 if (!devices_handle_discard_safely ||
7807 lim.max_discard_sectors < (stripe >> 9) ||
7808 lim.discard_granularity < stripe)
7809 lim.max_hw_discard_sectors = 0;
7810
7811 /*
7812 * Requests require having a bitmap for each stripe.
7813 * Limit the max sectors based on this.
7814 */
7815 lim.max_hw_sectors = RAID5_MAX_REQ_STRIPES << RAID5_STRIPE_SHIFT(conf);
7816 if ((lim.max_hw_sectors << 9) < lim.io_opt)
7817 lim.max_hw_sectors = lim.io_opt >> 9;
7818
7819 /* No restrictions on the number of segments in the request */
7820 lim.max_segments = USHRT_MAX;
7821
7822 return queue_limits_set(mddev->gendisk->queue, &lim);
7823 }
7824
raid5_run(struct mddev * mddev)7825 static int raid5_run(struct mddev *mddev)
7826 {
7827 struct r5conf *conf;
7828 int dirty_parity_disks = 0;
7829 struct md_rdev *rdev;
7830 struct md_rdev *journal_dev = NULL;
7831 sector_t reshape_offset = 0;
7832 int i;
7833 long long min_offset_diff = 0;
7834 int first = 1;
7835 int ret = -EIO;
7836
7837 if (mddev->resync_offset != MaxSector)
7838 pr_notice("md/raid:%s: not clean -- starting background reconstruction\n",
7839 mdname(mddev));
7840
7841 rdev_for_each(rdev, mddev) {
7842 long long diff;
7843
7844 if (test_bit(Journal, &rdev->flags)) {
7845 journal_dev = rdev;
7846 continue;
7847 }
7848 if (rdev->raid_disk < 0)
7849 continue;
7850 diff = (rdev->new_data_offset - rdev->data_offset);
7851 if (first) {
7852 min_offset_diff = diff;
7853 first = 0;
7854 } else if (mddev->reshape_backwards &&
7855 diff < min_offset_diff)
7856 min_offset_diff = diff;
7857 else if (!mddev->reshape_backwards &&
7858 diff > min_offset_diff)
7859 min_offset_diff = diff;
7860 }
7861
7862 if ((test_bit(MD_HAS_JOURNAL, &mddev->flags) || journal_dev) &&
7863 (mddev->bitmap_info.offset || mddev->bitmap_info.file)) {
7864 pr_notice("md/raid:%s: array cannot have both journal and bitmap\n",
7865 mdname(mddev));
7866 return -EINVAL;
7867 }
7868
7869 if (mddev->reshape_position != MaxSector) {
7870 /* Check that we can continue the reshape.
7871 * Difficulties arise if the stripe we would write to
7872 * next is at or after the stripe we would read from next.
7873 * For a reshape that changes the number of devices, this
7874 * is only possible for a very short time, and mdadm makes
7875 * sure that time appears to have past before assembling
7876 * the array. So we fail if that time hasn't passed.
7877 * For a reshape that keeps the number of devices the same
7878 * mdadm must be monitoring the reshape can keeping the
7879 * critical areas read-only and backed up. It will start
7880 * the array in read-only mode, so we check for that.
7881 */
7882 sector_t here_new, here_old;
7883 int old_disks;
7884 int max_degraded = (mddev->level == 6 ? 2 : 1);
7885 int chunk_sectors;
7886 int new_data_disks;
7887
7888 if (journal_dev) {
7889 pr_warn("md/raid:%s: don't support reshape with journal - aborting.\n",
7890 mdname(mddev));
7891 return -EINVAL;
7892 }
7893
7894 if (mddev->new_level != mddev->level) {
7895 pr_warn("md/raid:%s: unsupported reshape required - aborting.\n",
7896 mdname(mddev));
7897 return -EINVAL;
7898 }
7899 old_disks = mddev->raid_disks - mddev->delta_disks;
7900 /* reshape_position must be on a new-stripe boundary, and one
7901 * further up in new geometry must map after here in old
7902 * geometry.
7903 * If the chunk sizes are different, then as we perform reshape
7904 * in units of the largest of the two, reshape_position needs
7905 * be a multiple of the largest chunk size times new data disks.
7906 */
7907 here_new = mddev->reshape_position;
7908 chunk_sectors = max(mddev->chunk_sectors, mddev->new_chunk_sectors);
7909 new_data_disks = mddev->raid_disks - max_degraded;
7910 if (sector_div(here_new, chunk_sectors * new_data_disks)) {
7911 pr_warn("md/raid:%s: reshape_position not on a stripe boundary\n",
7912 mdname(mddev));
7913 return -EINVAL;
7914 }
7915 reshape_offset = here_new * chunk_sectors;
7916 /* here_new is the stripe we will write to */
7917 here_old = mddev->reshape_position;
7918 sector_div(here_old, chunk_sectors * (old_disks-max_degraded));
7919 /* here_old is the first stripe that we might need to read
7920 * from */
7921 if (mddev->delta_disks == 0) {
7922 /* We cannot be sure it is safe to start an in-place
7923 * reshape. It is only safe if user-space is monitoring
7924 * and taking constant backups.
7925 * mdadm always starts a situation like this in
7926 * readonly mode so it can take control before
7927 * allowing any writes. So just check for that.
7928 */
7929 if (abs(min_offset_diff) >= mddev->chunk_sectors &&
7930 abs(min_offset_diff) >= mddev->new_chunk_sectors)
7931 /* not really in-place - so OK */;
7932 else if (mddev->ro == 0) {
7933 pr_warn("md/raid:%s: in-place reshape must be started in read-only mode - aborting\n",
7934 mdname(mddev));
7935 return -EINVAL;
7936 }
7937 } else if (mddev->reshape_backwards
7938 ? (here_new * chunk_sectors + min_offset_diff <=
7939 here_old * chunk_sectors)
7940 : (here_new * chunk_sectors >=
7941 here_old * chunk_sectors + (-min_offset_diff))) {
7942 /* Reading from the same stripe as writing to - bad */
7943 pr_warn("md/raid:%s: reshape_position too early for auto-recovery - aborting.\n",
7944 mdname(mddev));
7945 return -EINVAL;
7946 }
7947 pr_debug("md/raid:%s: reshape will continue\n", mdname(mddev));
7948 /* OK, we should be able to continue; */
7949 } else {
7950 BUG_ON(mddev->level != mddev->new_level);
7951 BUG_ON(mddev->layout != mddev->new_layout);
7952 BUG_ON(mddev->chunk_sectors != mddev->new_chunk_sectors);
7953 BUG_ON(mddev->delta_disks != 0);
7954 }
7955
7956 if (test_bit(MD_HAS_JOURNAL, &mddev->flags) &&
7957 test_bit(MD_HAS_PPL, &mddev->flags)) {
7958 pr_warn("md/raid:%s: using journal device and PPL not allowed - disabling PPL\n",
7959 mdname(mddev));
7960 clear_bit(MD_HAS_PPL, &mddev->flags);
7961 clear_bit(MD_HAS_MULTIPLE_PPLS, &mddev->flags);
7962 }
7963
7964 if (mddev->private == NULL)
7965 conf = setup_conf(mddev);
7966 else
7967 conf = mddev->private;
7968
7969 if (IS_ERR(conf))
7970 return PTR_ERR(conf);
7971
7972 if (test_bit(MD_HAS_JOURNAL, &mddev->flags)) {
7973 if (!journal_dev) {
7974 pr_warn("md/raid:%s: journal disk is missing, force array readonly\n",
7975 mdname(mddev));
7976 mddev->ro = 1;
7977 set_disk_ro(mddev->gendisk, 1);
7978 } else if (mddev->resync_offset == MaxSector)
7979 set_bit(MD_JOURNAL_CLEAN, &mddev->flags);
7980 }
7981
7982 conf->min_offset_diff = min_offset_diff;
7983 rcu_assign_pointer(mddev->thread, conf->thread);
7984 rcu_assign_pointer(conf->thread, NULL);
7985 mddev->private = conf;
7986
7987 for (i = 0; i < conf->raid_disks && conf->previous_raid_disks;
7988 i++) {
7989 rdev = conf->disks[i].rdev;
7990 if (!rdev)
7991 continue;
7992 if (conf->disks[i].replacement &&
7993 conf->reshape_progress != MaxSector) {
7994 /* replacements and reshape simply do not mix. */
7995 pr_warn("md: cannot handle concurrent replacement and reshape.\n");
7996 goto abort;
7997 }
7998 if (test_bit(In_sync, &rdev->flags))
7999 continue;
8000 /* This disc is not fully in-sync. However if it
8001 * just stored parity (beyond the recovery_offset),
8002 * when we don't need to be concerned about the
8003 * array being dirty.
8004 * When reshape goes 'backwards', we never have
8005 * partially completed devices, so we only need
8006 * to worry about reshape going forwards.
8007 */
8008 /* Hack because v0.91 doesn't store recovery_offset properly. */
8009 if (mddev->major_version == 0 &&
8010 mddev->minor_version > 90)
8011 rdev->recovery_offset = reshape_offset;
8012
8013 if (rdev->recovery_offset < reshape_offset) {
8014 /* We need to check old and new layout */
8015 if (!only_parity(rdev->raid_disk,
8016 conf->algorithm,
8017 conf->raid_disks,
8018 conf->max_degraded))
8019 continue;
8020 }
8021 if (!only_parity(rdev->raid_disk,
8022 conf->prev_algo,
8023 conf->previous_raid_disks,
8024 conf->max_degraded))
8025 continue;
8026 dirty_parity_disks++;
8027 }
8028
8029 /*
8030 * 0 for a fully functional array, 1 or 2 for a degraded array.
8031 */
8032 mddev->degraded = raid5_calc_degraded(conf);
8033
8034 if (has_failed(conf)) {
8035 pr_crit("md/raid:%s: not enough operational devices (%d/%d failed)\n",
8036 mdname(mddev), mddev->degraded, conf->raid_disks);
8037 goto abort;
8038 }
8039
8040 /* device size must be a multiple of chunk size */
8041 mddev->dev_sectors &= ~((sector_t)mddev->chunk_sectors - 1);
8042 mddev->resync_max_sectors = mddev->dev_sectors;
8043
8044 if (mddev->degraded > dirty_parity_disks &&
8045 mddev->resync_offset != MaxSector) {
8046 if (test_bit(MD_HAS_PPL, &mddev->flags))
8047 pr_crit("md/raid:%s: starting dirty degraded array with PPL.\n",
8048 mdname(mddev));
8049 else if (mddev->ok_start_degraded)
8050 pr_crit("md/raid:%s: starting dirty degraded array - data corruption possible.\n",
8051 mdname(mddev));
8052 else {
8053 pr_crit("md/raid:%s: cannot start dirty degraded array.\n",
8054 mdname(mddev));
8055 goto abort;
8056 }
8057 }
8058
8059 pr_info("md/raid:%s: raid level %d active with %d out of %d devices, algorithm %d\n",
8060 mdname(mddev), conf->level,
8061 mddev->raid_disks-mddev->degraded, mddev->raid_disks,
8062 mddev->new_layout);
8063
8064 print_raid5_conf(conf);
8065
8066 if (conf->reshape_progress != MaxSector) {
8067 conf->reshape_safe = conf->reshape_progress;
8068 atomic_set(&conf->reshape_stripes, 0);
8069 clear_bit(MD_RECOVERY_SYNC, &mddev->recovery);
8070 clear_bit(MD_RECOVERY_CHECK, &mddev->recovery);
8071 set_bit(MD_RECOVERY_RESHAPE, &mddev->recovery);
8072 set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
8073 }
8074
8075 /* Ok, everything is just fine now */
8076 if (mddev->to_remove == &raid5_attrs_group)
8077 mddev->to_remove = NULL;
8078 else if (mddev->kobj.sd &&
8079 sysfs_create_group(&mddev->kobj, &raid5_attrs_group))
8080 pr_warn("raid5: failed to create sysfs attributes for %s\n",
8081 mdname(mddev));
8082 md_set_array_sectors(mddev, raid5_size(mddev, 0, 0));
8083
8084 if (!mddev_is_dm(mddev)) {
8085 ret = raid5_set_limits(mddev);
8086 if (ret)
8087 goto abort;
8088 }
8089
8090 ret = raid5_create_ctx_pool(conf);
8091 if (ret)
8092 goto abort;
8093
8094 ret = log_init(conf, journal_dev, raid5_has_ppl(conf));
8095 if (ret)
8096 goto abort;
8097
8098 return 0;
8099 abort:
8100 md_unregister_thread(mddev, &mddev->thread);
8101 print_raid5_conf(conf);
8102 free_conf(conf);
8103 mddev->private = NULL;
8104 pr_warn("md/raid:%s: failed to run raid set.\n", mdname(mddev));
8105 return ret;
8106 }
8107
raid5_free(struct mddev * mddev,void * priv)8108 static void raid5_free(struct mddev *mddev, void *priv)
8109 {
8110 struct r5conf *conf = priv;
8111
8112 free_conf(conf);
8113 mddev->to_remove = &raid5_attrs_group;
8114 }
8115
raid5_status(struct seq_file * seq,struct mddev * mddev)8116 static void raid5_status(struct seq_file *seq, struct mddev *mddev)
8117 {
8118 struct r5conf *conf = mddev->private;
8119 int i;
8120
8121 lockdep_assert_held(&mddev->lock);
8122
8123 seq_printf(seq, " level %d, %dk chunk, algorithm %d", mddev->level,
8124 conf->chunk_sectors / 2, mddev->layout);
8125 seq_printf (seq, " [%d/%d] [", conf->raid_disks, conf->raid_disks - mddev->degraded);
8126 for (i = 0; i < conf->raid_disks; i++) {
8127 struct md_rdev *rdev = READ_ONCE(conf->disks[i].rdev);
8128
8129 seq_printf (seq, "%s", rdev && test_bit(In_sync, &rdev->flags) ? "U" : "_");
8130 }
8131 seq_printf (seq, "]");
8132 }
8133
print_raid5_conf(struct r5conf * conf)8134 static void print_raid5_conf(struct r5conf *conf)
8135 {
8136 struct md_rdev *rdev;
8137 int i;
8138
8139 pr_debug("RAID conf printout:\n");
8140 if (!conf) {
8141 pr_debug("(conf==NULL)\n");
8142 return;
8143 }
8144 pr_debug(" --- level:%d rd:%d wd:%d\n", conf->level,
8145 conf->raid_disks,
8146 conf->raid_disks - conf->mddev->degraded);
8147
8148 for (i = 0; i < conf->raid_disks; i++) {
8149 rdev = conf->disks[i].rdev;
8150 if (rdev)
8151 pr_debug(" disk %d, o:%d, dev:%pg\n",
8152 i, !test_bit(Faulty, &rdev->flags),
8153 rdev->bdev);
8154 }
8155 }
8156
raid5_spare_active(struct mddev * mddev)8157 static int raid5_spare_active(struct mddev *mddev)
8158 {
8159 int i;
8160 struct r5conf *conf = mddev->private;
8161 struct md_rdev *rdev, *replacement;
8162 int count = 0;
8163 unsigned long flags;
8164
8165 for (i = 0; i < conf->raid_disks; i++) {
8166 rdev = conf->disks[i].rdev;
8167 replacement = conf->disks[i].replacement;
8168 if (replacement
8169 && replacement->recovery_offset == MaxSector
8170 && !test_bit(Faulty, &replacement->flags)
8171 && !test_and_set_bit(In_sync, &replacement->flags)) {
8172 /* Replacement has just become active. */
8173 if (!rdev
8174 || !test_and_clear_bit(In_sync, &rdev->flags))
8175 count++;
8176 if (rdev) {
8177 /* Replaced device not technically faulty,
8178 * but we need to be sure it gets removed
8179 * and never re-added.
8180 */
8181 set_bit(Faulty, &rdev->flags);
8182 sysfs_notify_dirent_safe(
8183 rdev->sysfs_state);
8184 }
8185 sysfs_notify_dirent_safe(replacement->sysfs_state);
8186 } else if (rdev
8187 && rdev->recovery_offset == MaxSector
8188 && !test_bit(Faulty, &rdev->flags)
8189 && !test_and_set_bit(In_sync, &rdev->flags)) {
8190 count++;
8191 sysfs_notify_dirent_safe(rdev->sysfs_state);
8192 }
8193 }
8194 spin_lock_irqsave(&conf->device_lock, flags);
8195 mddev->degraded = raid5_calc_degraded(conf);
8196 spin_unlock_irqrestore(&conf->device_lock, flags);
8197 print_raid5_conf(conf);
8198 return count;
8199 }
8200
raid5_remove_disk(struct mddev * mddev,struct md_rdev * rdev)8201 static int raid5_remove_disk(struct mddev *mddev, struct md_rdev *rdev)
8202 {
8203 struct r5conf *conf = mddev->private;
8204 int err = 0;
8205 int number = rdev->raid_disk;
8206 struct md_rdev **rdevp;
8207 struct disk_info *p;
8208 struct md_rdev *tmp;
8209
8210 print_raid5_conf(conf);
8211 if (test_bit(Journal, &rdev->flags) && conf->log) {
8212 /*
8213 * we can't wait pending write here, as this is called in
8214 * raid5d, wait will deadlock.
8215 * neilb: there is no locking about new writes here,
8216 * so this cannot be safe.
8217 */
8218 if (atomic_read(&conf->active_stripes) ||
8219 atomic_read(&conf->r5c_cached_full_stripes) ||
8220 atomic_read(&conf->r5c_cached_partial_stripes)) {
8221 return -EBUSY;
8222 }
8223 log_exit(conf);
8224 return 0;
8225 }
8226 if (unlikely(number >= conf->pool_size))
8227 return 0;
8228 p = conf->disks + number;
8229 if (rdev == p->rdev)
8230 rdevp = &p->rdev;
8231 else if (rdev == p->replacement)
8232 rdevp = &p->replacement;
8233 else
8234 return 0;
8235
8236 if (number >= conf->raid_disks &&
8237 conf->reshape_progress == MaxSector)
8238 clear_bit(In_sync, &rdev->flags);
8239
8240 if (test_bit(In_sync, &rdev->flags) ||
8241 atomic_read(&rdev->nr_pending)) {
8242 err = -EBUSY;
8243 goto abort;
8244 }
8245 /* Only remove non-faulty devices if recovery
8246 * isn't possible.
8247 */
8248 if (!test_bit(Faulty, &rdev->flags) &&
8249 !has_failed(conf) &&
8250 (!p->replacement || p->replacement == rdev) &&
8251 number < conf->raid_disks) {
8252 err = -EBUSY;
8253 goto abort;
8254 }
8255 WRITE_ONCE(*rdevp, NULL);
8256 if (!err) {
8257 err = log_modify(conf, rdev, false);
8258 if (err)
8259 goto abort;
8260 }
8261
8262 tmp = p->replacement;
8263 if (tmp) {
8264 /* We must have just cleared 'rdev' */
8265 WRITE_ONCE(p->rdev, tmp);
8266 clear_bit(Replacement, &tmp->flags);
8267 WRITE_ONCE(p->replacement, NULL);
8268
8269 if (!err)
8270 err = log_modify(conf, tmp, true);
8271 }
8272
8273 clear_bit(WantReplacement, &rdev->flags);
8274 abort:
8275
8276 print_raid5_conf(conf);
8277 return err;
8278 }
8279
raid5_add_disk(struct mddev * mddev,struct md_rdev * rdev)8280 static int raid5_add_disk(struct mddev *mddev, struct md_rdev *rdev)
8281 {
8282 struct r5conf *conf = mddev->private;
8283 int ret, err = -EEXIST;
8284 int disk;
8285 struct disk_info *p;
8286 struct md_rdev *tmp;
8287 int first = 0;
8288 int last = conf->raid_disks - 1;
8289
8290 if (test_bit(Journal, &rdev->flags)) {
8291 if (conf->log)
8292 return -EBUSY;
8293
8294 rdev->raid_disk = 0;
8295 /*
8296 * The array is in readonly mode if journal is missing, so no
8297 * write requests running. We should be safe
8298 */
8299 ret = log_init(conf, rdev, false);
8300 if (ret)
8301 return ret;
8302
8303 ret = r5l_start(conf->log);
8304 if (ret)
8305 return ret;
8306
8307 return 0;
8308 }
8309
8310 if (rdev->saved_raid_disk < 0 && has_failed(conf))
8311 /* no point adding a device */
8312 return -EINVAL;
8313
8314 if (rdev->raid_disk >= 0)
8315 first = last = rdev->raid_disk;
8316
8317 /*
8318 * find the disk ... but prefer rdev->saved_raid_disk
8319 * if possible.
8320 */
8321 if (rdev->saved_raid_disk >= first &&
8322 rdev->saved_raid_disk <= last &&
8323 conf->disks[rdev->saved_raid_disk].rdev == NULL)
8324 first = rdev->saved_raid_disk;
8325
8326 for (disk = first; disk <= last; disk++) {
8327 p = conf->disks + disk;
8328 if (p->rdev == NULL) {
8329 clear_bit(In_sync, &rdev->flags);
8330 rdev->raid_disk = disk;
8331 if (rdev->saved_raid_disk != disk)
8332 conf->fullsync = 1;
8333 WRITE_ONCE(p->rdev, rdev);
8334
8335 err = log_modify(conf, rdev, true);
8336
8337 goto out;
8338 }
8339 }
8340 for (disk = first; disk <= last; disk++) {
8341 p = conf->disks + disk;
8342 tmp = p->rdev;
8343 if (test_bit(WantReplacement, &tmp->flags) &&
8344 mddev->reshape_position == MaxSector &&
8345 p->replacement == NULL) {
8346 clear_bit(In_sync, &rdev->flags);
8347 set_bit(Replacement, &rdev->flags);
8348 rdev->raid_disk = disk;
8349 err = 0;
8350 conf->fullsync = 1;
8351 WRITE_ONCE(p->replacement, rdev);
8352 break;
8353 }
8354 }
8355 out:
8356 print_raid5_conf(conf);
8357 return err;
8358 }
8359
raid5_resize(struct mddev * mddev,sector_t sectors)8360 static int raid5_resize(struct mddev *mddev, sector_t sectors)
8361 {
8362 /* no resync is happening, and there is enough space
8363 * on all devices, so we can resize.
8364 * We need to make sure resync covers any new space.
8365 * If the array is shrinking we should possibly wait until
8366 * any io in the removed space completes, but it hardly seems
8367 * worth it.
8368 */
8369 sector_t newsize;
8370 struct r5conf *conf = mddev->private;
8371
8372 if (raid5_has_log(conf) || raid5_has_ppl(conf))
8373 return -EINVAL;
8374 sectors &= ~((sector_t)conf->chunk_sectors - 1);
8375 newsize = raid5_size(mddev, sectors, mddev->raid_disks);
8376 if (mddev->external_size &&
8377 mddev->array_sectors > newsize)
8378 return -EINVAL;
8379
8380 if (md_bitmap_enabled(mddev, false)) {
8381 int ret = mddev->bitmap_ops->resize(mddev, sectors, 0);
8382
8383 if (ret)
8384 return ret;
8385 }
8386
8387 md_set_array_sectors(mddev, newsize);
8388 if (sectors > mddev->dev_sectors &&
8389 mddev->resync_offset > mddev->dev_sectors) {
8390 mddev->resync_offset = mddev->dev_sectors;
8391 set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
8392 }
8393 mddev->dev_sectors = sectors;
8394 mddev->resync_max_sectors = sectors;
8395 return 0;
8396 }
8397
check_stripe_cache(struct mddev * mddev)8398 static int check_stripe_cache(struct mddev *mddev)
8399 {
8400 /* Can only proceed if there are plenty of stripe_heads.
8401 * We need a minimum of one full stripe,, and for sensible progress
8402 * it is best to have about 4 times that.
8403 * If we require 4 times, then the default 256 4K stripe_heads will
8404 * allow for chunk sizes up to 256K, which is probably OK.
8405 * If the chunk size is greater, user-space should request more
8406 * stripe_heads first.
8407 */
8408 struct r5conf *conf = mddev->private;
8409 if (((mddev->chunk_sectors << 9) / RAID5_STRIPE_SIZE(conf)) * 4
8410 > conf->min_nr_stripes ||
8411 ((mddev->new_chunk_sectors << 9) / RAID5_STRIPE_SIZE(conf)) * 4
8412 > conf->min_nr_stripes) {
8413 pr_warn("md/raid:%s: reshape: not enough stripes. Needed %lu\n",
8414 mdname(mddev),
8415 ((max(mddev->chunk_sectors, mddev->new_chunk_sectors) << 9)
8416 / RAID5_STRIPE_SIZE(conf))*4);
8417 return 0;
8418 }
8419 return 1;
8420 }
8421
check_reshape(struct mddev * mddev)8422 static int check_reshape(struct mddev *mddev)
8423 {
8424 struct r5conf *conf = mddev->private;
8425
8426 if (raid5_has_log(conf) || raid5_has_ppl(conf))
8427 return -EINVAL;
8428 if (mddev->delta_disks == 0 &&
8429 mddev->new_layout == mddev->layout &&
8430 mddev->new_chunk_sectors == mddev->chunk_sectors)
8431 return 0; /* nothing to do */
8432 if (has_failed(conf))
8433 return -EINVAL;
8434 if (mddev->delta_disks < 0 && mddev->reshape_position == MaxSector) {
8435 /* We might be able to shrink, but the devices must
8436 * be made bigger first.
8437 * For raid6, 4 is the minimum size.
8438 * Otherwise 2 is the minimum
8439 */
8440 int min = 2;
8441 if (mddev->level == 6)
8442 min = 4;
8443 if (mddev->raid_disks + mddev->delta_disks < min)
8444 return -EINVAL;
8445 }
8446
8447 if (!check_stripe_cache(mddev))
8448 return -ENOSPC;
8449
8450 if (mddev->new_chunk_sectors > mddev->chunk_sectors ||
8451 mddev->delta_disks > 0)
8452 if (resize_chunks(conf,
8453 conf->previous_raid_disks
8454 + max(0, mddev->delta_disks),
8455 max(mddev->new_chunk_sectors,
8456 mddev->chunk_sectors)
8457 ) < 0)
8458 return -ENOMEM;
8459
8460 if (conf->previous_raid_disks + mddev->delta_disks <= conf->pool_size)
8461 return 0; /* never bother to shrink */
8462 return resize_stripes(conf, (conf->previous_raid_disks
8463 + mddev->delta_disks));
8464 }
8465
raid5_start_reshape(struct mddev * mddev)8466 static int raid5_start_reshape(struct mddev *mddev)
8467 {
8468 struct r5conf *conf = mddev->private;
8469 struct md_rdev *rdev;
8470 int spares = 0;
8471 int i;
8472 unsigned long flags;
8473
8474 if (test_bit(MD_RECOVERY_RUNNING, &mddev->recovery))
8475 return -EBUSY;
8476
8477 if (!check_stripe_cache(mddev))
8478 return -ENOSPC;
8479
8480 if (has_failed(conf))
8481 return -EINVAL;
8482
8483 /* raid5 can't handle concurrent reshape and recovery */
8484 if (mddev->resync_offset < MaxSector)
8485 return -EBUSY;
8486 for (i = 0; i < conf->raid_disks; i++)
8487 if (conf->disks[i].replacement)
8488 return -EBUSY;
8489
8490 rdev_for_each(rdev, mddev) {
8491 if (!test_bit(In_sync, &rdev->flags)
8492 && !test_bit(Faulty, &rdev->flags))
8493 spares++;
8494 }
8495
8496 if (spares - mddev->degraded < mddev->delta_disks - conf->max_degraded)
8497 /* Not enough devices even to make a degraded array
8498 * of that size
8499 */
8500 return -EINVAL;
8501
8502 /* Refuse to reduce size of the array. Any reductions in
8503 * array size must be through explicit setting of array_size
8504 * attribute.
8505 */
8506 if (raid5_size(mddev, 0, conf->raid_disks + mddev->delta_disks)
8507 < mddev->array_sectors) {
8508 pr_warn("md/raid:%s: array size must be reduced before number of disks\n",
8509 mdname(mddev));
8510 return -EINVAL;
8511 }
8512
8513 atomic_set(&conf->reshape_stripes, 0);
8514 spin_lock_irq(&conf->device_lock);
8515 write_seqcount_begin(&conf->gen_lock);
8516 conf->previous_raid_disks = conf->raid_disks;
8517 conf->raid_disks += mddev->delta_disks;
8518 conf->prev_chunk_sectors = conf->chunk_sectors;
8519 conf->chunk_sectors = mddev->new_chunk_sectors;
8520 conf->prev_algo = conf->algorithm;
8521 conf->algorithm = mddev->new_layout;
8522 conf->generation++;
8523 /* Code that selects data_offset needs to see the generation update
8524 * if reshape_progress has been set - so a memory barrier needed.
8525 */
8526 smp_mb();
8527 if (mddev->reshape_backwards)
8528 conf->reshape_progress = raid5_size(mddev, 0, 0);
8529 else
8530 conf->reshape_progress = 0;
8531 conf->reshape_safe = conf->reshape_progress;
8532 write_seqcount_end(&conf->gen_lock);
8533 spin_unlock_irq(&conf->device_lock);
8534
8535 /* Now make sure any requests that proceeded on the assumption
8536 * the reshape wasn't running - like Discard or Read - have
8537 * completed.
8538 */
8539 raid5_quiesce(mddev, true);
8540 raid5_quiesce(mddev, false);
8541
8542 /* Add some new drives, as many as will fit.
8543 * We know there are enough to make the newly sized array work.
8544 * Don't add devices if we are reducing the number of
8545 * devices in the array. This is because it is not possible
8546 * to correctly record the "partially reconstructed" state of
8547 * such devices during the reshape and confusion could result.
8548 */
8549 if (mddev->delta_disks >= 0) {
8550 rdev_for_each(rdev, mddev)
8551 if (rdev->raid_disk < 0 &&
8552 !test_bit(Faulty, &rdev->flags)) {
8553 if (raid5_add_disk(mddev, rdev) == 0) {
8554 if (rdev->raid_disk
8555 >= conf->previous_raid_disks)
8556 set_bit(In_sync, &rdev->flags);
8557 else
8558 rdev->recovery_offset = 0;
8559
8560 /* Failure here is OK */
8561 sysfs_link_rdev(mddev, rdev);
8562 }
8563 } else if (rdev->raid_disk >= conf->previous_raid_disks
8564 && !test_bit(Faulty, &rdev->flags)) {
8565 /* This is a spare that was manually added */
8566 set_bit(In_sync, &rdev->flags);
8567 }
8568
8569 /* When a reshape changes the number of devices,
8570 * ->degraded is measured against the larger of the
8571 * pre and post number of devices.
8572 */
8573 spin_lock_irqsave(&conf->device_lock, flags);
8574 mddev->degraded = raid5_calc_degraded(conf);
8575 spin_unlock_irqrestore(&conf->device_lock, flags);
8576 }
8577 mddev->raid_disks = conf->raid_disks;
8578 mddev->reshape_position = conf->reshape_progress;
8579 set_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags);
8580
8581 clear_bit(MD_RECOVERY_SYNC, &mddev->recovery);
8582 clear_bit(MD_RECOVERY_CHECK, &mddev->recovery);
8583 clear_bit(MD_RECOVERY_DONE, &mddev->recovery);
8584 set_bit(MD_RECOVERY_RESHAPE, &mddev->recovery);
8585 set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
8586 conf->reshape_checkpoint = jiffies;
8587 md_new_event();
8588 return 0;
8589 }
8590
8591 /* This is called from the reshape thread and should make any
8592 * changes needed in 'conf'
8593 */
end_reshape(struct r5conf * conf)8594 static void end_reshape(struct r5conf *conf)
8595 {
8596
8597 if (!test_bit(MD_RECOVERY_INTR, &conf->mddev->recovery)) {
8598 struct md_rdev *rdev;
8599
8600 spin_lock_irq(&conf->device_lock);
8601 conf->previous_raid_disks = conf->raid_disks;
8602 md_finish_reshape(conf->mddev);
8603 smp_wmb();
8604 conf->reshape_progress = MaxSector;
8605 conf->mddev->reshape_position = MaxSector;
8606 rdev_for_each(rdev, conf->mddev)
8607 if (rdev->raid_disk >= 0 &&
8608 !test_bit(Journal, &rdev->flags) &&
8609 !test_bit(In_sync, &rdev->flags))
8610 rdev->recovery_offset = MaxSector;
8611 spin_unlock_irq(&conf->device_lock);
8612 wake_up(&conf->wait_for_reshape);
8613
8614 mddev_update_io_opt(conf->mddev,
8615 conf->raid_disks - conf->max_degraded);
8616 }
8617 }
8618
8619 /* This is called from the raid5d thread with mddev_lock held.
8620 * It makes config changes to the device.
8621 */
raid5_finish_reshape(struct mddev * mddev)8622 static void raid5_finish_reshape(struct mddev *mddev)
8623 {
8624 struct r5conf *conf = mddev->private;
8625 struct md_rdev *rdev;
8626
8627 if (!test_bit(MD_RECOVERY_INTR, &mddev->recovery)) {
8628
8629 if (mddev->delta_disks <= 0) {
8630 int d;
8631 spin_lock_irq(&conf->device_lock);
8632 mddev->degraded = raid5_calc_degraded(conf);
8633 spin_unlock_irq(&conf->device_lock);
8634 for (d = conf->raid_disks ;
8635 d < conf->raid_disks - mddev->delta_disks;
8636 d++) {
8637 rdev = conf->disks[d].rdev;
8638 if (rdev)
8639 clear_bit(In_sync, &rdev->flags);
8640 rdev = conf->disks[d].replacement;
8641 if (rdev)
8642 clear_bit(In_sync, &rdev->flags);
8643 }
8644 }
8645 mddev->layout = conf->algorithm;
8646 mddev->chunk_sectors = conf->chunk_sectors;
8647 mddev->reshape_position = MaxSector;
8648 mddev->delta_disks = 0;
8649 mddev->reshape_backwards = 0;
8650 }
8651 }
8652
raid5_quiesce(struct mddev * mddev,int quiesce)8653 static void raid5_quiesce(struct mddev *mddev, int quiesce)
8654 {
8655 struct r5conf *conf = mddev->private;
8656
8657 if (quiesce) {
8658 /* stop all writes */
8659 lock_all_device_hash_locks_irq(conf);
8660 /* '2' tells resync/reshape to pause so that all
8661 * active stripes can drain
8662 */
8663 r5c_flush_cache(conf, INT_MAX);
8664 /* need a memory barrier to make sure read_one_chunk() sees
8665 * quiesce started and reverts to slow (locked) path.
8666 */
8667 smp_store_release(&conf->quiesce, 2);
8668 wait_event_cmd(conf->wait_for_quiescent,
8669 atomic_read(&conf->active_stripes) == 0 &&
8670 atomic_read(&conf->active_aligned_reads) == 0,
8671 unlock_all_device_hash_locks_irq(conf),
8672 lock_all_device_hash_locks_irq(conf));
8673 conf->quiesce = 1;
8674 unlock_all_device_hash_locks_irq(conf);
8675 /* allow reshape to continue */
8676 wake_up(&conf->wait_for_reshape);
8677 } else {
8678 /* re-enable writes */
8679 lock_all_device_hash_locks_irq(conf);
8680 conf->quiesce = 0;
8681 wake_up(&conf->wait_for_quiescent);
8682 wake_up(&conf->wait_for_reshape);
8683 unlock_all_device_hash_locks_irq(conf);
8684 }
8685 log_quiesce(conf, quiesce);
8686 }
8687
raid45_takeover_raid0(struct mddev * mddev,int level)8688 static void *raid45_takeover_raid0(struct mddev *mddev, int level)
8689 {
8690 struct r0conf *raid0_conf = mddev->private;
8691 sector_t sectors;
8692
8693 /* for raid0 takeover only one zone is supported */
8694 if (raid0_conf->nr_strip_zones > 1) {
8695 pr_warn("md/raid:%s: cannot takeover raid0 with more than one zone.\n",
8696 mdname(mddev));
8697 return ERR_PTR(-EINVAL);
8698 }
8699
8700 sectors = raid0_conf->strip_zone[0].zone_end;
8701 sector_div(sectors, raid0_conf->strip_zone[0].nb_dev);
8702 mddev->dev_sectors = sectors;
8703 mddev->new_level = level;
8704 mddev->new_layout = ALGORITHM_PARITY_N;
8705 mddev->new_chunk_sectors = mddev->chunk_sectors;
8706 mddev->raid_disks += 1;
8707 mddev->delta_disks = 1;
8708 /* make sure it will be not marked as dirty */
8709 mddev->resync_offset = MaxSector;
8710
8711 return setup_conf(mddev);
8712 }
8713
raid5_takeover_raid1(struct mddev * mddev)8714 static void *raid5_takeover_raid1(struct mddev *mddev)
8715 {
8716 int chunksect;
8717 void *ret;
8718
8719 if (mddev->raid_disks != 2 ||
8720 mddev->degraded > 1)
8721 return ERR_PTR(-EINVAL);
8722
8723 /* Should check if there are write-behind devices? */
8724
8725 chunksect = 64*2; /* 64K by default */
8726
8727 /* The array must be an exact multiple of chunksize */
8728 while (chunksect && (mddev->array_sectors & (chunksect-1)))
8729 chunksect >>= 1;
8730
8731 if ((chunksect<<9) < RAID5_STRIPE_SIZE((struct r5conf *)mddev->private))
8732 /* array size does not allow a suitable chunk size */
8733 return ERR_PTR(-EINVAL);
8734
8735 mddev->new_level = 5;
8736 mddev->new_layout = ALGORITHM_LEFT_SYMMETRIC;
8737 mddev->new_chunk_sectors = chunksect;
8738
8739 ret = setup_conf(mddev);
8740 if (!IS_ERR(ret))
8741 mddev_clear_unsupported_flags(mddev,
8742 UNSUPPORTED_MDDEV_FLAGS);
8743 return ret;
8744 }
8745
raid5_takeover_raid6(struct mddev * mddev)8746 static void *raid5_takeover_raid6(struct mddev *mddev)
8747 {
8748 int new_layout;
8749
8750 switch (mddev->layout) {
8751 case ALGORITHM_LEFT_ASYMMETRIC_6:
8752 new_layout = ALGORITHM_LEFT_ASYMMETRIC;
8753 break;
8754 case ALGORITHM_RIGHT_ASYMMETRIC_6:
8755 new_layout = ALGORITHM_RIGHT_ASYMMETRIC;
8756 break;
8757 case ALGORITHM_LEFT_SYMMETRIC_6:
8758 new_layout = ALGORITHM_LEFT_SYMMETRIC;
8759 break;
8760 case ALGORITHM_RIGHT_SYMMETRIC_6:
8761 new_layout = ALGORITHM_RIGHT_SYMMETRIC;
8762 break;
8763 case ALGORITHM_PARITY_0_6:
8764 new_layout = ALGORITHM_PARITY_0;
8765 break;
8766 case ALGORITHM_PARITY_N:
8767 new_layout = ALGORITHM_PARITY_N;
8768 break;
8769 default:
8770 return ERR_PTR(-EINVAL);
8771 }
8772 mddev->new_level = 5;
8773 mddev->new_layout = new_layout;
8774 mddev->delta_disks = -1;
8775 mddev->raid_disks -= 1;
8776 return setup_conf(mddev);
8777 }
8778
raid5_check_reshape(struct mddev * mddev)8779 static int raid5_check_reshape(struct mddev *mddev)
8780 {
8781 /* For a 2-drive array, the layout and chunk size can be changed
8782 * immediately as not restriping is needed.
8783 * For larger arrays we record the new value - after validation
8784 * to be used by a reshape pass.
8785 */
8786 struct r5conf *conf = mddev->private;
8787 int new_chunk = mddev->new_chunk_sectors;
8788
8789 if (mddev->new_layout >= 0 && !algorithm_valid_raid5(mddev->new_layout))
8790 return -EINVAL;
8791 if (new_chunk > 0) {
8792 if (!is_power_of_2(new_chunk))
8793 return -EINVAL;
8794 if (new_chunk < (PAGE_SIZE>>9))
8795 return -EINVAL;
8796 if (mddev->array_sectors & (new_chunk-1))
8797 /* not factor of array size */
8798 return -EINVAL;
8799 }
8800
8801 /* They look valid */
8802
8803 if (mddev->raid_disks == 2) {
8804 /* can make the change immediately */
8805 if (mddev->new_layout >= 0) {
8806 conf->algorithm = mddev->new_layout;
8807 mddev->layout = mddev->new_layout;
8808 }
8809 if (new_chunk > 0) {
8810 conf->chunk_sectors = new_chunk ;
8811 mddev->chunk_sectors = new_chunk;
8812 }
8813 set_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags);
8814 md_wakeup_thread(mddev->thread);
8815 }
8816 return check_reshape(mddev);
8817 }
8818
raid6_check_reshape(struct mddev * mddev)8819 static int raid6_check_reshape(struct mddev *mddev)
8820 {
8821 int new_chunk = mddev->new_chunk_sectors;
8822
8823 if (mddev->new_layout >= 0 && !algorithm_valid_raid6(mddev->new_layout))
8824 return -EINVAL;
8825 if (new_chunk > 0) {
8826 if (!is_power_of_2(new_chunk))
8827 return -EINVAL;
8828 if (new_chunk < (PAGE_SIZE >> 9))
8829 return -EINVAL;
8830 if (mddev->array_sectors & (new_chunk-1))
8831 /* not factor of array size */
8832 return -EINVAL;
8833 }
8834
8835 /* They look valid */
8836 return check_reshape(mddev);
8837 }
8838
raid5_takeover(struct mddev * mddev)8839 static void *raid5_takeover(struct mddev *mddev)
8840 {
8841 /* raid5 can take over:
8842 * raid0 - if there is only one strip zone - make it a raid4 layout
8843 * raid1 - if there are two drives. We need to know the chunk size
8844 * raid4 - trivial - just use a raid4 layout.
8845 * raid6 - Providing it is a *_6 layout
8846 */
8847 if (mddev->level == 0)
8848 return raid45_takeover_raid0(mddev, 5);
8849 if (mddev->level == 1)
8850 return raid5_takeover_raid1(mddev);
8851 if (mddev->level == 4) {
8852 mddev->new_layout = ALGORITHM_PARITY_N;
8853 mddev->new_level = 5;
8854 return setup_conf(mddev);
8855 }
8856 if (mddev->level == 6)
8857 return raid5_takeover_raid6(mddev);
8858
8859 return ERR_PTR(-EINVAL);
8860 }
8861
raid4_takeover(struct mddev * mddev)8862 static void *raid4_takeover(struct mddev *mddev)
8863 {
8864 /* raid4 can take over:
8865 * raid0 - if there is only one strip zone
8866 * raid5 - if layout is right
8867 */
8868 if (mddev->level == 0)
8869 return raid45_takeover_raid0(mddev, 4);
8870 if (mddev->level == 5 &&
8871 mddev->layout == ALGORITHM_PARITY_N) {
8872 mddev->new_layout = 0;
8873 mddev->new_level = 4;
8874 return setup_conf(mddev);
8875 }
8876 return ERR_PTR(-EINVAL);
8877 }
8878
8879 static struct md_personality raid5_personality;
8880
raid6_takeover(struct mddev * mddev)8881 static void *raid6_takeover(struct mddev *mddev)
8882 {
8883 /* Currently can only take over a raid5. We map the
8884 * personality to an equivalent raid6 personality
8885 * with the Q block at the end.
8886 */
8887 int new_layout;
8888
8889 if (mddev->pers != &raid5_personality)
8890 return ERR_PTR(-EINVAL);
8891 if (mddev->degraded > 1)
8892 return ERR_PTR(-EINVAL);
8893 if (mddev->raid_disks > 253)
8894 return ERR_PTR(-EINVAL);
8895 if (mddev->raid_disks < 3)
8896 return ERR_PTR(-EINVAL);
8897
8898 switch (mddev->layout) {
8899 case ALGORITHM_LEFT_ASYMMETRIC:
8900 new_layout = ALGORITHM_LEFT_ASYMMETRIC_6;
8901 break;
8902 case ALGORITHM_RIGHT_ASYMMETRIC:
8903 new_layout = ALGORITHM_RIGHT_ASYMMETRIC_6;
8904 break;
8905 case ALGORITHM_LEFT_SYMMETRIC:
8906 new_layout = ALGORITHM_LEFT_SYMMETRIC_6;
8907 break;
8908 case ALGORITHM_RIGHT_SYMMETRIC:
8909 new_layout = ALGORITHM_RIGHT_SYMMETRIC_6;
8910 break;
8911 case ALGORITHM_PARITY_0:
8912 new_layout = ALGORITHM_PARITY_0_6;
8913 break;
8914 case ALGORITHM_PARITY_N:
8915 new_layout = ALGORITHM_PARITY_N;
8916 break;
8917 default:
8918 return ERR_PTR(-EINVAL);
8919 }
8920 mddev->new_level = 6;
8921 mddev->new_layout = new_layout;
8922 mddev->delta_disks = 1;
8923 mddev->raid_disks += 1;
8924 return setup_conf(mddev);
8925 }
8926
raid5_change_consistency_policy(struct mddev * mddev,const char * buf)8927 static int raid5_change_consistency_policy(struct mddev *mddev, const char *buf)
8928 {
8929 struct r5conf *conf;
8930 int err;
8931
8932 err = mddev_suspend_and_lock(mddev);
8933 if (err)
8934 return err;
8935 conf = mddev->private;
8936 if (!conf) {
8937 mddev_unlock_and_resume(mddev);
8938 return -ENODEV;
8939 }
8940
8941 if (strncmp(buf, "ppl", 3) == 0) {
8942 /* ppl only works with RAID 5 */
8943 if (!raid5_has_ppl(conf) && conf->level == 5) {
8944 err = log_init(conf, NULL, true);
8945 if (!err) {
8946 err = resize_stripes(conf, conf->pool_size);
8947 if (err)
8948 log_exit(conf);
8949 }
8950 } else
8951 err = -EINVAL;
8952 } else if (strncmp(buf, "resync", 6) == 0) {
8953 if (raid5_has_ppl(conf)) {
8954 log_exit(conf);
8955 err = resize_stripes(conf, conf->pool_size);
8956 } else if (test_bit(MD_HAS_JOURNAL, &conf->mddev->flags) &&
8957 r5l_log_disk_error(conf)) {
8958 bool journal_dev_exists = false;
8959 struct md_rdev *rdev;
8960
8961 rdev_for_each(rdev, mddev)
8962 if (test_bit(Journal, &rdev->flags)) {
8963 journal_dev_exists = true;
8964 break;
8965 }
8966
8967 if (!journal_dev_exists)
8968 clear_bit(MD_HAS_JOURNAL, &mddev->flags);
8969 else /* need remove journal device first */
8970 err = -EBUSY;
8971 } else
8972 err = -EINVAL;
8973 } else {
8974 err = -EINVAL;
8975 }
8976
8977 if (!err)
8978 md_update_sb(mddev, 1);
8979
8980 mddev_unlock_and_resume(mddev);
8981
8982 return err;
8983 }
8984
raid5_start(struct mddev * mddev)8985 static int raid5_start(struct mddev *mddev)
8986 {
8987 struct r5conf *conf = mddev->private;
8988
8989 return r5l_start(conf->log);
8990 }
8991
8992 /*
8993 * This is only used for dm-raid456, caller already frozen sync_thread, hence
8994 * if rehsape is still in progress, io that is waiting for reshape can never be
8995 * done now, hence wake up and handle those IO.
8996 */
raid5_prepare_suspend(struct mddev * mddev)8997 static void raid5_prepare_suspend(struct mddev *mddev)
8998 {
8999 struct r5conf *conf = mddev->private;
9000
9001 wake_up(&conf->wait_for_reshape);
9002 }
9003
9004 static struct md_personality raid6_personality =
9005 {
9006 .head = {
9007 .type = MD_PERSONALITY,
9008 .id = ID_RAID6,
9009 .name = "raid6",
9010 .owner = THIS_MODULE,
9011 },
9012
9013 .make_request = raid5_make_request,
9014 .run = raid5_run,
9015 .start = raid5_start,
9016 .free = raid5_free,
9017 .status = raid5_status,
9018 .error_handler = raid5_error,
9019 .hot_add_disk = raid5_add_disk,
9020 .hot_remove_disk= raid5_remove_disk,
9021 .spare_active = raid5_spare_active,
9022 .sync_request = raid5_sync_request,
9023 .resize = raid5_resize,
9024 .size = raid5_size,
9025 .check_reshape = raid6_check_reshape,
9026 .start_reshape = raid5_start_reshape,
9027 .finish_reshape = raid5_finish_reshape,
9028 .quiesce = raid5_quiesce,
9029 .takeover = raid6_takeover,
9030 .change_consistency_policy = raid5_change_consistency_policy,
9031 .prepare_suspend = raid5_prepare_suspend,
9032 .bitmap_sector = raid5_bitmap_sector,
9033 };
9034 static struct md_personality raid5_personality =
9035 {
9036 .head = {
9037 .type = MD_PERSONALITY,
9038 .id = ID_RAID5,
9039 .name = "raid5",
9040 .owner = THIS_MODULE,
9041 },
9042
9043 .make_request = raid5_make_request,
9044 .run = raid5_run,
9045 .start = raid5_start,
9046 .free = raid5_free,
9047 .status = raid5_status,
9048 .error_handler = raid5_error,
9049 .hot_add_disk = raid5_add_disk,
9050 .hot_remove_disk= raid5_remove_disk,
9051 .spare_active = raid5_spare_active,
9052 .sync_request = raid5_sync_request,
9053 .resize = raid5_resize,
9054 .size = raid5_size,
9055 .check_reshape = raid5_check_reshape,
9056 .start_reshape = raid5_start_reshape,
9057 .finish_reshape = raid5_finish_reshape,
9058 .quiesce = raid5_quiesce,
9059 .takeover = raid5_takeover,
9060 .change_consistency_policy = raid5_change_consistency_policy,
9061 .prepare_suspend = raid5_prepare_suspend,
9062 .bitmap_sector = raid5_bitmap_sector,
9063 };
9064
9065 static struct md_personality raid4_personality =
9066 {
9067 .head = {
9068 .type = MD_PERSONALITY,
9069 .id = ID_RAID4,
9070 .name = "raid4",
9071 .owner = THIS_MODULE,
9072 },
9073
9074 .make_request = raid5_make_request,
9075 .run = raid5_run,
9076 .start = raid5_start,
9077 .free = raid5_free,
9078 .status = raid5_status,
9079 .error_handler = raid5_error,
9080 .hot_add_disk = raid5_add_disk,
9081 .hot_remove_disk= raid5_remove_disk,
9082 .spare_active = raid5_spare_active,
9083 .sync_request = raid5_sync_request,
9084 .resize = raid5_resize,
9085 .size = raid5_size,
9086 .check_reshape = raid5_check_reshape,
9087 .start_reshape = raid5_start_reshape,
9088 .finish_reshape = raid5_finish_reshape,
9089 .quiesce = raid5_quiesce,
9090 .takeover = raid4_takeover,
9091 .change_consistency_policy = raid5_change_consistency_policy,
9092 .prepare_suspend = raid5_prepare_suspend,
9093 .bitmap_sector = raid5_bitmap_sector,
9094 };
9095
raid5_init(void)9096 static int __init raid5_init(void)
9097 {
9098 int ret;
9099
9100 raid5_wq = alloc_workqueue("raid5wq",
9101 WQ_UNBOUND|WQ_MEM_RECLAIM|WQ_SYSFS, 0);
9102 if (!raid5_wq)
9103 return -ENOMEM;
9104
9105 ret = cpuhp_setup_state_multi(CPUHP_MD_RAID5_PREPARE,
9106 "md/raid5:prepare",
9107 raid456_cpu_up_prepare,
9108 raid456_cpu_dead);
9109 if (ret)
9110 goto err_destroy_wq;
9111
9112 ret = register_md_submodule(&raid6_personality.head);
9113 if (ret)
9114 goto err_cpuhp_remove;
9115
9116 ret = register_md_submodule(&raid5_personality.head);
9117 if (ret)
9118 goto err_unregister_raid6;
9119
9120 ret = register_md_submodule(&raid4_personality.head);
9121 if (ret)
9122 goto err_unregister_raid5;
9123
9124 return 0;
9125
9126 err_unregister_raid5:
9127 unregister_md_submodule(&raid5_personality.head);
9128 err_unregister_raid6:
9129 unregister_md_submodule(&raid6_personality.head);
9130 err_cpuhp_remove:
9131 cpuhp_remove_multi_state(CPUHP_MD_RAID5_PREPARE);
9132 err_destroy_wq:
9133 destroy_workqueue(raid5_wq);
9134 return ret;
9135 }
9136
raid5_exit(void)9137 static void __exit raid5_exit(void)
9138 {
9139 unregister_md_submodule(&raid6_personality.head);
9140 unregister_md_submodule(&raid5_personality.head);
9141 unregister_md_submodule(&raid4_personality.head);
9142 cpuhp_remove_multi_state(CPUHP_MD_RAID5_PREPARE);
9143 destroy_workqueue(raid5_wq);
9144 }
9145
9146 module_init(raid5_init);
9147 module_exit(raid5_exit);
9148 MODULE_LICENSE("GPL");
9149 MODULE_DESCRIPTION("RAID4/5/6 (striping with parity) personality for MD");
9150 MODULE_ALIAS("md-personality-4"); /* RAID5 */
9151 MODULE_ALIAS("md-raid5");
9152 MODULE_ALIAS("md-raid4");
9153 MODULE_ALIAS("md-level-5");
9154 MODULE_ALIAS("md-level-4");
9155 MODULE_ALIAS("md-personality-8"); /* RAID6 */
9156 MODULE_ALIAS("md-raid6");
9157 MODULE_ALIAS("md-level-6");
9158
9159 /* This used to be two separate modules, they were: */
9160 MODULE_ALIAS("raid5");
9161 MODULE_ALIAS("raid6");
9162