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v6.2
   1// SPDX-License-Identifier: GPL-2.0-or-later
   2/*
   3 * raid1.c : Multiple Devices driver for Linux
   4 *
   5 * Copyright (C) 1999, 2000, 2001 Ingo Molnar, Red Hat
   6 *
   7 * Copyright (C) 1996, 1997, 1998 Ingo Molnar, Miguel de Icaza, Gadi Oxman
   8 *
   9 * RAID-1 management functions.
  10 *
  11 * Better read-balancing code written by Mika Kuoppala <miku@iki.fi>, 2000
  12 *
  13 * Fixes to reconstruction by Jakob Østergaard" <jakob@ostenfeld.dk>
  14 * Various fixes by Neil Brown <neilb@cse.unsw.edu.au>
  15 *
  16 * Changes by Peter T. Breuer <ptb@it.uc3m.es> 31/1/2003 to support
  17 * bitmapped intelligence in resync:
  18 *
  19 *      - bitmap marked during normal i/o
  20 *      - bitmap used to skip nondirty blocks during sync
  21 *
  22 * Additions to bitmap code, (C) 2003-2004 Paul Clements, SteelEye Technology:
  23 * - persistent bitmap code
 
 
 
 
 
 
 
 
 
  24 */
  25
  26#include <linux/slab.h>
  27#include <linux/delay.h>
  28#include <linux/blkdev.h>
  29#include <linux/module.h>
  30#include <linux/seq_file.h>
  31#include <linux/ratelimit.h>
  32#include <linux/interval_tree_generic.h>
  33
  34#include <trace/events/block.h>
  35
  36#include "md.h"
  37#include "raid1.h"
  38#include "md-bitmap.h"
  39
  40#define UNSUPPORTED_MDDEV_FLAGS		\
  41	((1L << MD_HAS_JOURNAL) |	\
  42	 (1L << MD_JOURNAL_CLEAN) |	\
  43	 (1L << MD_HAS_PPL) |		\
  44	 (1L << MD_HAS_MULTIPLE_PPLS))
  45
  46static void allow_barrier(struct r1conf *conf, sector_t sector_nr);
  47static void lower_barrier(struct r1conf *conf, sector_t sector_nr);
  48
  49#define raid1_log(md, fmt, args...)				\
  50	do { if ((md)->queue) blk_add_trace_msg((md)->queue, "raid1 " fmt, ##args); } while (0)
  51
  52#include "raid1-10.c"
  53
  54#define START(node) ((node)->start)
  55#define LAST(node) ((node)->last)
  56INTERVAL_TREE_DEFINE(struct serial_info, node, sector_t, _subtree_last,
  57		     START, LAST, static inline, raid1_rb);
  58
  59static int check_and_add_serial(struct md_rdev *rdev, struct r1bio *r1_bio,
  60				struct serial_info *si, int idx)
  61{
  62	unsigned long flags;
  63	int ret = 0;
  64	sector_t lo = r1_bio->sector;
  65	sector_t hi = lo + r1_bio->sectors;
  66	struct serial_in_rdev *serial = &rdev->serial[idx];
  67
  68	spin_lock_irqsave(&serial->serial_lock, flags);
  69	/* collision happened */
  70	if (raid1_rb_iter_first(&serial->serial_rb, lo, hi))
  71		ret = -EBUSY;
  72	else {
  73		si->start = lo;
  74		si->last = hi;
  75		raid1_rb_insert(si, &serial->serial_rb);
  76	}
  77	spin_unlock_irqrestore(&serial->serial_lock, flags);
  78
  79	return ret;
  80}
  81
  82static void wait_for_serialization(struct md_rdev *rdev, struct r1bio *r1_bio)
  83{
  84	struct mddev *mddev = rdev->mddev;
  85	struct serial_info *si;
  86	int idx = sector_to_idx(r1_bio->sector);
  87	struct serial_in_rdev *serial = &rdev->serial[idx];
  88
  89	if (WARN_ON(!mddev->serial_info_pool))
  90		return;
  91	si = mempool_alloc(mddev->serial_info_pool, GFP_NOIO);
  92	wait_event(serial->serial_io_wait,
  93		   check_and_add_serial(rdev, r1_bio, si, idx) == 0);
  94}
  95
  96static void remove_serial(struct md_rdev *rdev, sector_t lo, sector_t hi)
  97{
  98	struct serial_info *si;
  99	unsigned long flags;
 100	int found = 0;
 101	struct mddev *mddev = rdev->mddev;
 102	int idx = sector_to_idx(lo);
 103	struct serial_in_rdev *serial = &rdev->serial[idx];
 104
 105	spin_lock_irqsave(&serial->serial_lock, flags);
 106	for (si = raid1_rb_iter_first(&serial->serial_rb, lo, hi);
 107	     si; si = raid1_rb_iter_next(si, lo, hi)) {
 108		if (si->start == lo && si->last == hi) {
 109			raid1_rb_remove(si, &serial->serial_rb);
 110			mempool_free(si, mddev->serial_info_pool);
 111			found = 1;
 112			break;
 113		}
 114	}
 115	if (!found)
 116		WARN(1, "The write IO is not recorded for serialization\n");
 117	spin_unlock_irqrestore(&serial->serial_lock, flags);
 118	wake_up(&serial->serial_io_wait);
 119}
 120
 121/*
 122 * for resync bio, r1bio pointer can be retrieved from the per-bio
 123 * 'struct resync_pages'.
 124 */
 125static inline struct r1bio *get_resync_r1bio(struct bio *bio)
 126{
 127	return get_resync_pages(bio)->raid_bio;
 128}
 
 
 
 
 
 
 129
 130static void * r1bio_pool_alloc(gfp_t gfp_flags, void *data)
 131{
 132	struct pool_info *pi = data;
 133	int size = offsetof(struct r1bio, bios[pi->raid_disks]);
 134
 135	/* allocate a r1bio with room for raid_disks entries in the bios array */
 136	return kzalloc(size, gfp_flags);
 137}
 138
 139#define RESYNC_DEPTH 32
 
 
 
 
 
 
 140#define RESYNC_SECTORS (RESYNC_BLOCK_SIZE >> 9)
 141#define RESYNC_WINDOW (RESYNC_BLOCK_SIZE * RESYNC_DEPTH)
 142#define RESYNC_WINDOW_SECTORS (RESYNC_WINDOW >> 9)
 143#define CLUSTER_RESYNC_WINDOW (16 * RESYNC_WINDOW)
 144#define CLUSTER_RESYNC_WINDOW_SECTORS (CLUSTER_RESYNC_WINDOW >> 9)
 145
 146static void * r1buf_pool_alloc(gfp_t gfp_flags, void *data)
 147{
 148	struct pool_info *pi = data;
 
 149	struct r1bio *r1_bio;
 150	struct bio *bio;
 151	int need_pages;
 152	int j;
 153	struct resync_pages *rps;
 154
 155	r1_bio = r1bio_pool_alloc(gfp_flags, pi);
 156	if (!r1_bio)
 157		return NULL;
 158
 159	rps = kmalloc_array(pi->raid_disks, sizeof(struct resync_pages),
 160			    gfp_flags);
 161	if (!rps)
 162		goto out_free_r1bio;
 163
 164	/*
 165	 * Allocate bios : 1 for reading, n-1 for writing
 166	 */
 167	for (j = pi->raid_disks ; j-- ; ) {
 168		bio = bio_kmalloc(RESYNC_PAGES, gfp_flags);
 169		if (!bio)
 170			goto out_free_bio;
 171		bio_init(bio, NULL, bio->bi_inline_vecs, RESYNC_PAGES, 0);
 172		r1_bio->bios[j] = bio;
 173	}
 174	/*
 175	 * Allocate RESYNC_PAGES data pages and attach them to
 176	 * the first bio.
 177	 * If this is a user-requested check/repair, allocate
 178	 * RESYNC_PAGES for each bio.
 179	 */
 180	if (test_bit(MD_RECOVERY_REQUESTED, &pi->mddev->recovery))
 181		need_pages = pi->raid_disks;
 182	else
 183		need_pages = 1;
 184	for (j = 0; j < pi->raid_disks; j++) {
 185		struct resync_pages *rp = &rps[j];
 186
 187		bio = r1_bio->bios[j];
 188
 189		if (j < need_pages) {
 190			if (resync_alloc_pages(rp, gfp_flags))
 191				goto out_free_pages;
 192		} else {
 193			memcpy(rp, &rps[0], sizeof(*rp));
 194			resync_get_all_pages(rp);
 195		}
 196
 197		rp->raid_bio = r1_bio;
 198		bio->bi_private = rp;
 
 
 
 
 
 
 
 
 199	}
 200
 201	r1_bio->master_bio = NULL;
 202
 203	return r1_bio;
 204
 205out_free_pages:
 206	while (--j >= 0)
 207		resync_free_pages(&rps[j]);
 208
 
 209out_free_bio:
 210	while (++j < pi->raid_disks) {
 211		bio_uninit(r1_bio->bios[j]);
 212		kfree(r1_bio->bios[j]);
 213	}
 214	kfree(rps);
 215
 216out_free_r1bio:
 217	rbio_pool_free(r1_bio, data);
 218	return NULL;
 219}
 220
 221static void r1buf_pool_free(void *__r1_bio, void *data)
 222{
 223	struct pool_info *pi = data;
 224	int i;
 225	struct r1bio *r1bio = __r1_bio;
 226	struct resync_pages *rp = NULL;
 227
 228	for (i = pi->raid_disks; i--; ) {
 229		rp = get_resync_pages(r1bio->bios[i]);
 230		resync_free_pages(rp);
 231		bio_uninit(r1bio->bios[i]);
 232		kfree(r1bio->bios[i]);
 233	}
 234
 235	/* resync pages array stored in the 1st bio's .bi_private */
 236	kfree(rp);
 
 
 
 
 
 
 
 237
 238	rbio_pool_free(r1bio, data);
 239}
 240
 241static void put_all_bios(struct r1conf *conf, struct r1bio *r1_bio)
 242{
 243	int i;
 244
 245	for (i = 0; i < conf->raid_disks * 2; i++) {
 246		struct bio **bio = r1_bio->bios + i;
 247		if (!BIO_SPECIAL(*bio))
 248			bio_put(*bio);
 249		*bio = NULL;
 250	}
 251}
 252
 253static void free_r1bio(struct r1bio *r1_bio)
 254{
 255	struct r1conf *conf = r1_bio->mddev->private;
 256
 257	put_all_bios(conf, r1_bio);
 258	mempool_free(r1_bio, &conf->r1bio_pool);
 259}
 260
 261static void put_buf(struct r1bio *r1_bio)
 262{
 263	struct r1conf *conf = r1_bio->mddev->private;
 264	sector_t sect = r1_bio->sector;
 265	int i;
 266
 267	for (i = 0; i < conf->raid_disks * 2; i++) {
 268		struct bio *bio = r1_bio->bios[i];
 269		if (bio->bi_end_io)
 270			rdev_dec_pending(conf->mirrors[i].rdev, r1_bio->mddev);
 271	}
 272
 273	mempool_free(r1_bio, &conf->r1buf_pool);
 274
 275	lower_barrier(conf, sect);
 276}
 277
 278static void reschedule_retry(struct r1bio *r1_bio)
 279{
 280	unsigned long flags;
 281	struct mddev *mddev = r1_bio->mddev;
 282	struct r1conf *conf = mddev->private;
 283	int idx;
 284
 285	idx = sector_to_idx(r1_bio->sector);
 286	spin_lock_irqsave(&conf->device_lock, flags);
 287	list_add(&r1_bio->retry_list, &conf->retry_list);
 288	atomic_inc(&conf->nr_queued[idx]);
 289	spin_unlock_irqrestore(&conf->device_lock, flags);
 290
 291	wake_up(&conf->wait_barrier);
 292	md_wakeup_thread(mddev->thread);
 293}
 294
 295/*
 296 * raid_end_bio_io() is called when we have finished servicing a mirrored
 297 * operation and are ready to return a success/failure code to the buffer
 298 * cache layer.
 299 */
 300static void call_bio_endio(struct r1bio *r1_bio)
 301{
 302	struct bio *bio = r1_bio->master_bio;
 
 
 303
 304	if (!test_bit(R1BIO_Uptodate, &r1_bio->state))
 305		bio->bi_status = BLK_STS_IOERR;
 
 
 
 
 
 
 306
 307	if (blk_queue_io_stat(bio->bi_bdev->bd_disk->queue))
 308		bio_end_io_acct(bio, r1_bio->start_time);
 309	bio_endio(bio);
 
 
 
 
 
 
 
 310}
 311
 312static void raid_end_bio_io(struct r1bio *r1_bio)
 313{
 314	struct bio *bio = r1_bio->master_bio;
 315	struct r1conf *conf = r1_bio->mddev->private;
 316
 317	/* if nobody has done the final endio yet, do it now */
 318	if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) {
 319		pr_debug("raid1: sync end %s on sectors %llu-%llu\n",
 320			 (bio_data_dir(bio) == WRITE) ? "write" : "read",
 321			 (unsigned long long) bio->bi_iter.bi_sector,
 322			 (unsigned long long) bio_end_sector(bio) - 1);
 
 323
 324		call_bio_endio(r1_bio);
 325	}
 326	/*
 327	 * Wake up any possible resync thread that waits for the device
 328	 * to go idle.  All I/Os, even write-behind writes, are done.
 329	 */
 330	allow_barrier(conf, r1_bio->sector);
 331
 332	free_r1bio(r1_bio);
 333}
 334
 335/*
 336 * Update disk head position estimator based on IRQ completion info.
 337 */
 338static inline void update_head_pos(int disk, struct r1bio *r1_bio)
 339{
 340	struct r1conf *conf = r1_bio->mddev->private;
 341
 342	conf->mirrors[disk].head_position =
 343		r1_bio->sector + (r1_bio->sectors);
 344}
 345
 346/*
 347 * Find the disk number which triggered given bio
 348 */
 349static int find_bio_disk(struct r1bio *r1_bio, struct bio *bio)
 350{
 351	int mirror;
 352	struct r1conf *conf = r1_bio->mddev->private;
 353	int raid_disks = conf->raid_disks;
 354
 355	for (mirror = 0; mirror < raid_disks * 2; mirror++)
 356		if (r1_bio->bios[mirror] == bio)
 357			break;
 358
 359	BUG_ON(mirror == raid_disks * 2);
 360	update_head_pos(mirror, r1_bio);
 361
 362	return mirror;
 363}
 364
 365static void raid1_end_read_request(struct bio *bio)
 366{
 367	int uptodate = !bio->bi_status;
 368	struct r1bio *r1_bio = bio->bi_private;
 
 369	struct r1conf *conf = r1_bio->mddev->private;
 370	struct md_rdev *rdev = conf->mirrors[r1_bio->read_disk].rdev;
 371
 
 372	/*
 373	 * this branch is our 'one mirror IO has finished' event handler:
 374	 */
 375	update_head_pos(r1_bio->read_disk, r1_bio);
 376
 377	if (uptodate)
 378		set_bit(R1BIO_Uptodate, &r1_bio->state);
 379	else if (test_bit(FailFast, &rdev->flags) &&
 380		 test_bit(R1BIO_FailFast, &r1_bio->state))
 381		/* This was a fail-fast read so we definitely
 382		 * want to retry */
 383		;
 384	else {
 385		/* If all other devices have failed, we want to return
 386		 * the error upwards rather than fail the last device.
 387		 * Here we redefine "uptodate" to mean "Don't want to retry"
 388		 */
 389		unsigned long flags;
 390		spin_lock_irqsave(&conf->device_lock, flags);
 391		if (r1_bio->mddev->degraded == conf->raid_disks ||
 392		    (r1_bio->mddev->degraded == conf->raid_disks-1 &&
 393		     test_bit(In_sync, &rdev->flags)))
 394			uptodate = 1;
 395		spin_unlock_irqrestore(&conf->device_lock, flags);
 396	}
 397
 398	if (uptodate) {
 399		raid_end_bio_io(r1_bio);
 400		rdev_dec_pending(rdev, conf->mddev);
 401	} else {
 402		/*
 403		 * oops, read error:
 404		 */
 405		pr_err_ratelimited("md/raid1:%s: %pg: rescheduling sector %llu\n",
 406				   mdname(conf->mddev),
 407				   rdev->bdev,
 408				   (unsigned long long)r1_bio->sector);
 
 
 
 
 409		set_bit(R1BIO_ReadError, &r1_bio->state);
 410		reschedule_retry(r1_bio);
 411		/* don't drop the reference on read_disk yet */
 412	}
 
 
 413}
 414
 415static void close_write(struct r1bio *r1_bio)
 416{
 417	/* it really is the end of this request */
 418	if (test_bit(R1BIO_BehindIO, &r1_bio->state)) {
 419		bio_free_pages(r1_bio->behind_master_bio);
 420		bio_put(r1_bio->behind_master_bio);
 421		r1_bio->behind_master_bio = NULL;
 
 
 
 422	}
 423	/* clear the bitmap if all writes complete successfully */
 424	md_bitmap_endwrite(r1_bio->mddev->bitmap, r1_bio->sector,
 425			   r1_bio->sectors,
 426			   !test_bit(R1BIO_Degraded, &r1_bio->state),
 427			   test_bit(R1BIO_BehindIO, &r1_bio->state));
 428	md_write_end(r1_bio->mddev);
 429}
 430
 431static void r1_bio_write_done(struct r1bio *r1_bio)
 432{
 433	if (!atomic_dec_and_test(&r1_bio->remaining))
 434		return;
 435
 436	if (test_bit(R1BIO_WriteError, &r1_bio->state))
 437		reschedule_retry(r1_bio);
 438	else {
 439		close_write(r1_bio);
 440		if (test_bit(R1BIO_MadeGood, &r1_bio->state))
 441			reschedule_retry(r1_bio);
 442		else
 443			raid_end_bio_io(r1_bio);
 444	}
 445}
 446
 447static void raid1_end_write_request(struct bio *bio)
 448{
 
 449	struct r1bio *r1_bio = bio->bi_private;
 450	int behind = test_bit(R1BIO_BehindIO, &r1_bio->state);
 451	struct r1conf *conf = r1_bio->mddev->private;
 452	struct bio *to_put = NULL;
 453	int mirror = find_bio_disk(r1_bio, bio);
 454	struct md_rdev *rdev = conf->mirrors[mirror].rdev;
 455	bool discard_error;
 456	sector_t lo = r1_bio->sector;
 457	sector_t hi = r1_bio->sector + r1_bio->sectors;
 458
 459	discard_error = bio->bi_status && bio_op(bio) == REQ_OP_DISCARD;
 460
 461	/*
 462	 * 'one mirror IO has finished' event handler:
 463	 */
 464	if (bio->bi_status && !discard_error) {
 465		set_bit(WriteErrorSeen,	&rdev->flags);
 466		if (!test_and_set_bit(WantReplacement, &rdev->flags))
 
 
 467			set_bit(MD_RECOVERY_NEEDED, &
 468				conf->mddev->recovery);
 469
 470		if (test_bit(FailFast, &rdev->flags) &&
 471		    (bio->bi_opf & MD_FAILFAST) &&
 472		    /* We never try FailFast to WriteMostly devices */
 473		    !test_bit(WriteMostly, &rdev->flags)) {
 474			md_error(r1_bio->mddev, rdev);
 475		}
 476
 477		/*
 478		 * When the device is faulty, it is not necessary to
 479		 * handle write error.
 480		 */
 481		if (!test_bit(Faulty, &rdev->flags))
 482			set_bit(R1BIO_WriteError, &r1_bio->state);
 483		else {
 484			/* Fail the request */
 485			set_bit(R1BIO_Degraded, &r1_bio->state);
 486			/* Finished with this branch */
 487			r1_bio->bios[mirror] = NULL;
 488			to_put = bio;
 489		}
 490	} else {
 491		/*
 492		 * Set R1BIO_Uptodate in our master bio, so that we
 493		 * will return a good error code for to the higher
 494		 * levels even if IO on some other mirrored buffer
 495		 * fails.
 496		 *
 497		 * The 'master' represents the composite IO operation
 498		 * to user-side. So if something waits for IO, then it
 499		 * will wait for the 'master' bio.
 500		 */
 501		sector_t first_bad;
 502		int bad_sectors;
 503
 504		r1_bio->bios[mirror] = NULL;
 505		to_put = bio;
 506		/*
 507		 * Do not set R1BIO_Uptodate if the current device is
 508		 * rebuilding or Faulty. This is because we cannot use
 509		 * such device for properly reading the data back (we could
 510		 * potentially use it, if the current write would have felt
 511		 * before rdev->recovery_offset, but for simplicity we don't
 512		 * check this here.
 513		 */
 514		if (test_bit(In_sync, &rdev->flags) &&
 515		    !test_bit(Faulty, &rdev->flags))
 516			set_bit(R1BIO_Uptodate, &r1_bio->state);
 517
 518		/* Maybe we can clear some bad blocks. */
 519		if (is_badblock(rdev, r1_bio->sector, r1_bio->sectors,
 520				&first_bad, &bad_sectors) && !discard_error) {
 
 521			r1_bio->bios[mirror] = IO_MADE_GOOD;
 522			set_bit(R1BIO_MadeGood, &r1_bio->state);
 523		}
 524	}
 525
 526	if (behind) {
 527		if (test_bit(CollisionCheck, &rdev->flags))
 528			remove_serial(rdev, lo, hi);
 529		if (test_bit(WriteMostly, &rdev->flags))
 530			atomic_dec(&r1_bio->behind_remaining);
 531
 532		/*
 533		 * In behind mode, we ACK the master bio once the I/O
 534		 * has safely reached all non-writemostly
 535		 * disks. Setting the Returned bit ensures that this
 536		 * gets done only once -- we don't ever want to return
 537		 * -EIO here, instead we'll wait
 538		 */
 539		if (atomic_read(&r1_bio->behind_remaining) >= (atomic_read(&r1_bio->remaining)-1) &&
 540		    test_bit(R1BIO_Uptodate, &r1_bio->state)) {
 541			/* Maybe we can return now */
 542			if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) {
 543				struct bio *mbio = r1_bio->master_bio;
 544				pr_debug("raid1: behind end write sectors"
 545					 " %llu-%llu\n",
 546					 (unsigned long long) mbio->bi_iter.bi_sector,
 547					 (unsigned long long) bio_end_sector(mbio) - 1);
 
 548				call_bio_endio(r1_bio);
 549			}
 550		}
 551	} else if (rdev->mddev->serialize_policy)
 552		remove_serial(rdev, lo, hi);
 553	if (r1_bio->bios[mirror] == NULL)
 554		rdev_dec_pending(rdev, conf->mddev);
 
 555
 556	/*
 557	 * Let's see if all mirrored write operations have finished
 558	 * already.
 559	 */
 560	r1_bio_write_done(r1_bio);
 561
 562	if (to_put)
 563		bio_put(to_put);
 564}
 565
 566static sector_t align_to_barrier_unit_end(sector_t start_sector,
 567					  sector_t sectors)
 568{
 569	sector_t len;
 570
 571	WARN_ON(sectors == 0);
 572	/*
 573	 * len is the number of sectors from start_sector to end of the
 574	 * barrier unit which start_sector belongs to.
 575	 */
 576	len = round_up(start_sector + 1, BARRIER_UNIT_SECTOR_SIZE) -
 577	      start_sector;
 578
 579	if (len > sectors)
 580		len = sectors;
 581
 582	return len;
 583}
 584
 585/*
 586 * This routine returns the disk from which the requested read should
 587 * be done. There is a per-array 'next expected sequential IO' sector
 588 * number - if this matches on the next IO then we use the last disk.
 589 * There is also a per-disk 'last know head position' sector that is
 590 * maintained from IRQ contexts, both the normal and the resync IO
 591 * completion handlers update this position correctly. If there is no
 592 * perfect sequential match then we pick the disk whose head is closest.
 593 *
 594 * If there are 2 mirrors in the same 2 devices, performance degrades
 595 * because position is mirror, not device based.
 596 *
 597 * The rdev for the device selected will have nr_pending incremented.
 598 */
 599static int read_balance(struct r1conf *conf, struct r1bio *r1_bio, int *max_sectors)
 600{
 601	const sector_t this_sector = r1_bio->sector;
 602	int sectors;
 603	int best_good_sectors;
 604	int best_disk, best_dist_disk, best_pending_disk;
 605	int has_nonrot_disk;
 606	int disk;
 607	sector_t best_dist;
 608	unsigned int min_pending;
 609	struct md_rdev *rdev;
 610	int choose_first;
 611	int choose_next_idle;
 612
 613	rcu_read_lock();
 614	/*
 615	 * Check if we can balance. We can balance on the whole
 616	 * device if no resync is going on, or below the resync window.
 617	 * We take the first readable disk when above the resync window.
 618	 */
 619 retry:
 620	sectors = r1_bio->sectors;
 621	best_disk = -1;
 622	best_dist_disk = -1;
 623	best_dist = MaxSector;
 624	best_pending_disk = -1;
 625	min_pending = UINT_MAX;
 626	best_good_sectors = 0;
 627	has_nonrot_disk = 0;
 628	choose_next_idle = 0;
 629	clear_bit(R1BIO_FailFast, &r1_bio->state);
 630
 631	if ((conf->mddev->recovery_cp < this_sector + sectors) ||
 632	    (mddev_is_clustered(conf->mddev) &&
 633	    md_cluster_ops->area_resyncing(conf->mddev, READ, this_sector,
 634		    this_sector + sectors)))
 635		choose_first = 1;
 636	else
 
 637		choose_first = 0;
 
 
 638
 639	for (disk = 0 ; disk < conf->raid_disks * 2 ; disk++) {
 640		sector_t dist;
 641		sector_t first_bad;
 642		int bad_sectors;
 643		unsigned int pending;
 644		bool nonrot;
 
 
 645
 646		rdev = rcu_dereference(conf->mirrors[disk].rdev);
 647		if (r1_bio->bios[disk] == IO_BLOCKED
 648		    || rdev == NULL
 
 649		    || test_bit(Faulty, &rdev->flags))
 650			continue;
 651		if (!test_bit(In_sync, &rdev->flags) &&
 652		    rdev->recovery_offset < this_sector + sectors)
 653			continue;
 654		if (test_bit(WriteMostly, &rdev->flags)) {
 655			/* Don't balance among write-mostly, just
 656			 * use the first as a last resort */
 657			if (best_dist_disk < 0) {
 658				if (is_badblock(rdev, this_sector, sectors,
 659						&first_bad, &bad_sectors)) {
 660					if (first_bad <= this_sector)
 661						/* Cannot use this */
 662						continue;
 663					best_good_sectors = first_bad - this_sector;
 664				} else
 665					best_good_sectors = sectors;
 666				best_dist_disk = disk;
 667				best_pending_disk = disk;
 668			}
 669			continue;
 670		}
 671		/* This is a reasonable device to use.  It might
 672		 * even be best.
 673		 */
 674		if (is_badblock(rdev, this_sector, sectors,
 675				&first_bad, &bad_sectors)) {
 676			if (best_dist < MaxSector)
 677				/* already have a better device */
 678				continue;
 679			if (first_bad <= this_sector) {
 680				/* cannot read here. If this is the 'primary'
 681				 * device, then we must not read beyond
 682				 * bad_sectors from another device..
 683				 */
 684				bad_sectors -= (this_sector - first_bad);
 685				if (choose_first && sectors > bad_sectors)
 686					sectors = bad_sectors;
 687				if (best_good_sectors > sectors)
 688					best_good_sectors = sectors;
 689
 690			} else {
 691				sector_t good_sectors = first_bad - this_sector;
 692				if (good_sectors > best_good_sectors) {
 693					best_good_sectors = good_sectors;
 694					best_disk = disk;
 695				}
 696				if (choose_first)
 697					break;
 698			}
 699			continue;
 700		} else {
 701			if ((sectors > best_good_sectors) && (best_disk >= 0))
 702				best_disk = -1;
 703			best_good_sectors = sectors;
 704		}
 705
 706		if (best_disk >= 0)
 707			/* At least two disks to choose from so failfast is OK */
 708			set_bit(R1BIO_FailFast, &r1_bio->state);
 709
 710		nonrot = bdev_nonrot(rdev->bdev);
 711		has_nonrot_disk |= nonrot;
 712		pending = atomic_read(&rdev->nr_pending);
 713		dist = abs(this_sector - conf->mirrors[disk].head_position);
 714		if (choose_first) {
 
 
 
 
 
 715			best_disk = disk;
 716			break;
 717		}
 718		/* Don't change to another disk for sequential reads */
 719		if (conf->mirrors[disk].next_seq_sect == this_sector
 720		    || dist == 0) {
 721			int opt_iosize = bdev_io_opt(rdev->bdev) >> 9;
 722			struct raid1_info *mirror = &conf->mirrors[disk];
 723
 724			best_disk = disk;
 725			/*
 726			 * If buffered sequential IO size exceeds optimal
 727			 * iosize, check if there is idle disk. If yes, choose
 728			 * the idle disk. read_balance could already choose an
 729			 * idle disk before noticing it's a sequential IO in
 730			 * this disk. This doesn't matter because this disk
 731			 * will idle, next time it will be utilized after the
 732			 * first disk has IO size exceeds optimal iosize. In
 733			 * this way, iosize of the first disk will be optimal
 734			 * iosize at least. iosize of the second disk might be
 735			 * small, but not a big deal since when the second disk
 736			 * starts IO, the first disk is likely still busy.
 737			 */
 738			if (nonrot && opt_iosize > 0 &&
 739			    mirror->seq_start != MaxSector &&
 740			    mirror->next_seq_sect > opt_iosize &&
 741			    mirror->next_seq_sect - opt_iosize >=
 742			    mirror->seq_start) {
 743				choose_next_idle = 1;
 744				continue;
 745			}
 746			break;
 747		}
 748
 749		if (choose_next_idle)
 750			continue;
 751
 752		if (min_pending > pending) {
 753			min_pending = pending;
 754			best_pending_disk = disk;
 755		}
 756
 757		if (dist < best_dist) {
 758			best_dist = dist;
 759			best_dist_disk = disk;
 760		}
 761	}
 762
 763	/*
 764	 * If all disks are rotational, choose the closest disk. If any disk is
 765	 * non-rotational, choose the disk with less pending request even the
 766	 * disk is rotational, which might/might not be optimal for raids with
 767	 * mixed ratation/non-rotational disks depending on workload.
 768	 */
 769	if (best_disk == -1) {
 770		if (has_nonrot_disk || min_pending == 0)
 771			best_disk = best_pending_disk;
 772		else
 773			best_disk = best_dist_disk;
 774	}
 775
 776	if (best_disk >= 0) {
 777		rdev = rcu_dereference(conf->mirrors[best_disk].rdev);
 778		if (!rdev)
 779			goto retry;
 780		atomic_inc(&rdev->nr_pending);
 
 
 
 
 
 
 
 781		sectors = best_good_sectors;
 782
 783		if (conf->mirrors[best_disk].next_seq_sect != this_sector)
 784			conf->mirrors[best_disk].seq_start = this_sector;
 785
 786		conf->mirrors[best_disk].next_seq_sect = this_sector + sectors;
 787	}
 788	rcu_read_unlock();
 789	*max_sectors = sectors;
 790
 791	return best_disk;
 792}
 793
 794static void flush_bio_list(struct r1conf *conf, struct bio *bio)
 
 
 795{
 796	/* flush any pending bitmap writes to disk before proceeding w/ I/O */
 797	md_bitmap_unplug(conf->mddev->bitmap);
 798	wake_up(&conf->wait_barrier);
 
 799
 800	while (bio) { /* submit pending writes */
 801		struct bio *next = bio->bi_next;
 802		struct md_rdev *rdev = (void *)bio->bi_bdev;
 803		bio->bi_next = NULL;
 804		bio_set_dev(bio, rdev->bdev);
 805		if (test_bit(Faulty, &rdev->flags)) {
 806			bio_io_error(bio);
 807		} else if (unlikely((bio_op(bio) == REQ_OP_DISCARD) &&
 808				    !bdev_max_discard_sectors(bio->bi_bdev)))
 809			/* Just ignore it */
 810			bio_endio(bio);
 811		else
 812			submit_bio_noacct(bio);
 813		bio = next;
 814		cond_resched();
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 815	}
 
 
 
 
 
 
 
 
 
 
 
 816}
 817
 818static void flush_pending_writes(struct r1conf *conf)
 819{
 820	/* Any writes that have been queued but are awaiting
 821	 * bitmap updates get flushed here.
 822	 */
 823	spin_lock_irq(&conf->device_lock);
 824
 825	if (conf->pending_bio_list.head) {
 826		struct blk_plug plug;
 827		struct bio *bio;
 828
 829		bio = bio_list_get(&conf->pending_bio_list);
 
 830		spin_unlock_irq(&conf->device_lock);
 
 
 
 
 831
 832		/*
 833		 * As this is called in a wait_event() loop (see freeze_array),
 834		 * current->state might be TASK_UNINTERRUPTIBLE which will
 835		 * cause a warning when we prepare to wait again.  As it is
 836		 * rare that this path is taken, it is perfectly safe to force
 837		 * us to go around the wait_event() loop again, so the warning
 838		 * is a false-positive.  Silence the warning by resetting
 839		 * thread state
 840		 */
 841		__set_current_state(TASK_RUNNING);
 842		blk_start_plug(&plug);
 843		flush_bio_list(conf, bio);
 844		blk_finish_plug(&plug);
 845	} else
 846		spin_unlock_irq(&conf->device_lock);
 847}
 848
 849/* Barriers....
 850 * Sometimes we need to suspend IO while we do something else,
 851 * either some resync/recovery, or reconfigure the array.
 852 * To do this we raise a 'barrier'.
 853 * The 'barrier' is a counter that can be raised multiple times
 854 * to count how many activities are happening which preclude
 855 * normal IO.
 856 * We can only raise the barrier if there is no pending IO.
 857 * i.e. if nr_pending == 0.
 858 * We choose only to raise the barrier if no-one is waiting for the
 859 * barrier to go down.  This means that as soon as an IO request
 860 * is ready, no other operations which require a barrier will start
 861 * until the IO request has had a chance.
 862 *
 863 * So: regular IO calls 'wait_barrier'.  When that returns there
 864 *    is no backgroup IO happening,  It must arrange to call
 865 *    allow_barrier when it has finished its IO.
 866 * backgroup IO calls must call raise_barrier.  Once that returns
 867 *    there is no normal IO happeing.  It must arrange to call
 868 *    lower_barrier when the particular background IO completes.
 869 *
 870 * If resync/recovery is interrupted, returns -EINTR;
 871 * Otherwise, returns 0.
 872 */
 873static int raise_barrier(struct r1conf *conf, sector_t sector_nr)
 874{
 875	int idx = sector_to_idx(sector_nr);
 876
 
 
 877	spin_lock_irq(&conf->resync_lock);
 878
 879	/* Wait until no block IO is waiting */
 880	wait_event_lock_irq(conf->wait_barrier,
 881			    !atomic_read(&conf->nr_waiting[idx]),
 882			    conf->resync_lock);
 883
 884	/* block any new IO from starting */
 885	atomic_inc(&conf->barrier[idx]);
 886	/*
 887	 * In raise_barrier() we firstly increase conf->barrier[idx] then
 888	 * check conf->nr_pending[idx]. In _wait_barrier() we firstly
 889	 * increase conf->nr_pending[idx] then check conf->barrier[idx].
 890	 * A memory barrier here to make sure conf->nr_pending[idx] won't
 891	 * be fetched before conf->barrier[idx] is increased. Otherwise
 892	 * there will be a race between raise_barrier() and _wait_barrier().
 893	 */
 894	smp_mb__after_atomic();
 895
 896	/* For these conditions we must wait:
 897	 * A: while the array is in frozen state
 898	 * B: while conf->nr_pending[idx] is not 0, meaning regular I/O
 899	 *    existing in corresponding I/O barrier bucket.
 900	 * C: while conf->barrier[idx] >= RESYNC_DEPTH, meaning reaches
 901	 *    max resync count which allowed on current I/O barrier bucket.
 902	 */
 903	wait_event_lock_irq(conf->wait_barrier,
 904			    (!conf->array_frozen &&
 905			     !atomic_read(&conf->nr_pending[idx]) &&
 906			     atomic_read(&conf->barrier[idx]) < RESYNC_DEPTH) ||
 907				test_bit(MD_RECOVERY_INTR, &conf->mddev->recovery),
 908			    conf->resync_lock);
 909
 910	if (test_bit(MD_RECOVERY_INTR, &conf->mddev->recovery)) {
 911		atomic_dec(&conf->barrier[idx]);
 912		spin_unlock_irq(&conf->resync_lock);
 913		wake_up(&conf->wait_barrier);
 914		return -EINTR;
 915	}
 916
 917	atomic_inc(&conf->nr_sync_pending);
 918	spin_unlock_irq(&conf->resync_lock);
 919
 920	return 0;
 921}
 922
 923static void lower_barrier(struct r1conf *conf, sector_t sector_nr)
 924{
 925	int idx = sector_to_idx(sector_nr);
 926
 927	BUG_ON(atomic_read(&conf->barrier[idx]) <= 0);
 928
 929	atomic_dec(&conf->barrier[idx]);
 930	atomic_dec(&conf->nr_sync_pending);
 931	wake_up(&conf->wait_barrier);
 932}
 933
 934static bool _wait_barrier(struct r1conf *conf, int idx, bool nowait)
 935{
 936	bool ret = true;
 937
 938	/*
 939	 * We need to increase conf->nr_pending[idx] very early here,
 940	 * then raise_barrier() can be blocked when it waits for
 941	 * conf->nr_pending[idx] to be 0. Then we can avoid holding
 942	 * conf->resync_lock when there is no barrier raised in same
 943	 * barrier unit bucket. Also if the array is frozen, I/O
 944	 * should be blocked until array is unfrozen.
 945	 */
 946	atomic_inc(&conf->nr_pending[idx]);
 947	/*
 948	 * In _wait_barrier() we firstly increase conf->nr_pending[idx], then
 949	 * check conf->barrier[idx]. In raise_barrier() we firstly increase
 950	 * conf->barrier[idx], then check conf->nr_pending[idx]. A memory
 951	 * barrier is necessary here to make sure conf->barrier[idx] won't be
 952	 * fetched before conf->nr_pending[idx] is increased. Otherwise there
 953	 * will be a race between _wait_barrier() and raise_barrier().
 954	 */
 955	smp_mb__after_atomic();
 956
 957	/*
 958	 * Don't worry about checking two atomic_t variables at same time
 959	 * here. If during we check conf->barrier[idx], the array is
 960	 * frozen (conf->array_frozen is 1), and chonf->barrier[idx] is
 961	 * 0, it is safe to return and make the I/O continue. Because the
 962	 * array is frozen, all I/O returned here will eventually complete
 963	 * or be queued, no race will happen. See code comment in
 964	 * frozen_array().
 965	 */
 966	if (!READ_ONCE(conf->array_frozen) &&
 967	    !atomic_read(&conf->barrier[idx]))
 968		return ret;
 969
 970	/*
 971	 * After holding conf->resync_lock, conf->nr_pending[idx]
 972	 * should be decreased before waiting for barrier to drop.
 973	 * Otherwise, we may encounter a race condition because
 974	 * raise_barrer() might be waiting for conf->nr_pending[idx]
 975	 * to be 0 at same time.
 976	 */
 977	spin_lock_irq(&conf->resync_lock);
 978	atomic_inc(&conf->nr_waiting[idx]);
 979	atomic_dec(&conf->nr_pending[idx]);
 980	/*
 981	 * In case freeze_array() is waiting for
 982	 * get_unqueued_pending() == extra
 983	 */
 984	wake_up(&conf->wait_barrier);
 985	/* Wait for the barrier in same barrier unit bucket to drop. */
 986
 987	/* Return false when nowait flag is set */
 988	if (nowait) {
 989		ret = false;
 990	} else {
 991		wait_event_lock_irq(conf->wait_barrier,
 992				!conf->array_frozen &&
 993				!atomic_read(&conf->barrier[idx]),
 994				conf->resync_lock);
 995		atomic_inc(&conf->nr_pending[idx]);
 996	}
 997
 998	atomic_dec(&conf->nr_waiting[idx]);
 999	spin_unlock_irq(&conf->resync_lock);
1000	return ret;
1001}
1002
1003static bool wait_read_barrier(struct r1conf *conf, sector_t sector_nr, bool nowait)
1004{
1005	int idx = sector_to_idx(sector_nr);
1006	bool ret = true;
1007
1008	/*
1009	 * Very similar to _wait_barrier(). The difference is, for read
1010	 * I/O we don't need wait for sync I/O, but if the whole array
1011	 * is frozen, the read I/O still has to wait until the array is
1012	 * unfrozen. Since there is no ordering requirement with
1013	 * conf->barrier[idx] here, memory barrier is unnecessary as well.
1014	 */
1015	atomic_inc(&conf->nr_pending[idx]);
1016
1017	if (!READ_ONCE(conf->array_frozen))
1018		return ret;
1019
1020	spin_lock_irq(&conf->resync_lock);
1021	atomic_inc(&conf->nr_waiting[idx]);
1022	atomic_dec(&conf->nr_pending[idx]);
1023	/*
1024	 * In case freeze_array() is waiting for
1025	 * get_unqueued_pending() == extra
1026	 */
1027	wake_up(&conf->wait_barrier);
1028	/* Wait for array to be unfrozen */
1029
1030	/* Return false when nowait flag is set */
1031	if (nowait) {
1032		/* Return false when nowait flag is set */
1033		ret = false;
1034	} else {
1035		wait_event_lock_irq(conf->wait_barrier,
1036				!conf->array_frozen,
1037				conf->resync_lock);
1038		atomic_inc(&conf->nr_pending[idx]);
 
 
 
 
1039	}
1040
1041	atomic_dec(&conf->nr_waiting[idx]);
1042	spin_unlock_irq(&conf->resync_lock);
1043	return ret;
1044}
1045
1046static bool wait_barrier(struct r1conf *conf, sector_t sector_nr, bool nowait)
1047{
1048	int idx = sector_to_idx(sector_nr);
1049
1050	return _wait_barrier(conf, idx, nowait);
1051}
1052
1053static void _allow_barrier(struct r1conf *conf, int idx)
1054{
1055	atomic_dec(&conf->nr_pending[idx]);
1056	wake_up(&conf->wait_barrier);
1057}
1058
1059static void allow_barrier(struct r1conf *conf, sector_t sector_nr)
1060{
1061	int idx = sector_to_idx(sector_nr);
1062
1063	_allow_barrier(conf, idx);
1064}
1065
1066/* conf->resync_lock should be held */
1067static int get_unqueued_pending(struct r1conf *conf)
1068{
1069	int idx, ret;
1070
1071	ret = atomic_read(&conf->nr_sync_pending);
1072	for (idx = 0; idx < BARRIER_BUCKETS_NR; idx++)
1073		ret += atomic_read(&conf->nr_pending[idx]) -
1074			atomic_read(&conf->nr_queued[idx]);
1075
1076	return ret;
1077}
1078
1079static void freeze_array(struct r1conf *conf, int extra)
1080{
1081	/* Stop sync I/O and normal I/O and wait for everything to
1082	 * go quiet.
1083	 * This is called in two situations:
1084	 * 1) management command handlers (reshape, remove disk, quiesce).
1085	 * 2) one normal I/O request failed.
1086
1087	 * After array_frozen is set to 1, new sync IO will be blocked at
1088	 * raise_barrier(), and new normal I/O will blocked at _wait_barrier()
1089	 * or wait_read_barrier(). The flying I/Os will either complete or be
1090	 * queued. When everything goes quite, there are only queued I/Os left.
1091
1092	 * Every flying I/O contributes to a conf->nr_pending[idx], idx is the
1093	 * barrier bucket index which this I/O request hits. When all sync and
1094	 * normal I/O are queued, sum of all conf->nr_pending[] will match sum
1095	 * of all conf->nr_queued[]. But normal I/O failure is an exception,
1096	 * in handle_read_error(), we may call freeze_array() before trying to
1097	 * fix the read error. In this case, the error read I/O is not queued,
1098	 * so get_unqueued_pending() == 1.
1099	 *
1100	 * Therefore before this function returns, we need to wait until
1101	 * get_unqueued_pendings(conf) gets equal to extra. For
1102	 * normal I/O context, extra is 1, in rested situations extra is 0.
1103	 */
1104	spin_lock_irq(&conf->resync_lock);
1105	conf->array_frozen = 1;
1106	raid1_log(conf->mddev, "wait freeze");
1107	wait_event_lock_irq_cmd(
1108		conf->wait_barrier,
1109		get_unqueued_pending(conf) == extra,
1110		conf->resync_lock,
1111		flush_pending_writes(conf));
1112	spin_unlock_irq(&conf->resync_lock);
1113}
1114static void unfreeze_array(struct r1conf *conf)
1115{
1116	/* reverse the effect of the freeze */
1117	spin_lock_irq(&conf->resync_lock);
1118	conf->array_frozen = 0;
1119	spin_unlock_irq(&conf->resync_lock);
1120	wake_up(&conf->wait_barrier);
 
1121}
1122
1123static void alloc_behind_master_bio(struct r1bio *r1_bio,
1124					   struct bio *bio)
 
 
1125{
1126	int size = bio->bi_iter.bi_size;
1127	unsigned vcnt = (size + PAGE_SIZE - 1) >> PAGE_SHIFT;
1128	int i = 0;
1129	struct bio *behind_bio = NULL;
1130
1131	behind_bio = bio_alloc_bioset(NULL, vcnt, 0, GFP_NOIO,
1132				      &r1_bio->mddev->bio_set);
1133	if (!behind_bio)
1134		return;
1135
1136	/* discard op, we don't support writezero/writesame yet */
1137	if (!bio_has_data(bio)) {
1138		behind_bio->bi_iter.bi_size = size;
1139		goto skip_copy;
1140	}
1141
1142	while (i < vcnt && size) {
1143		struct page *page;
1144		int len = min_t(int, PAGE_SIZE, size);
1145
1146		page = alloc_page(GFP_NOIO);
1147		if (unlikely(!page))
1148			goto free_pages;
1149
1150		bio_add_page(behind_bio, page, len, 0);
1151
1152		size -= len;
1153		i++;
1154	}
1155
1156	bio_copy_data(behind_bio, bio);
1157skip_copy:
1158	r1_bio->behind_master_bio = behind_bio;
1159	set_bit(R1BIO_BehindIO, &r1_bio->state);
1160
1161	return;
1162
1163free_pages:
1164	pr_debug("%dB behind alloc failed, doing sync I/O\n",
1165		 bio->bi_iter.bi_size);
1166	bio_free_pages(behind_bio);
1167	bio_put(behind_bio);
1168}
1169
1170static void raid1_unplug(struct blk_plug_cb *cb, bool from_schedule)
1171{
1172	struct raid1_plug_cb *plug = container_of(cb, struct raid1_plug_cb,
1173						  cb);
1174	struct mddev *mddev = plug->cb.data;
1175	struct r1conf *conf = mddev->private;
1176	struct bio *bio;
1177
1178	if (from_schedule || current->bio_list) {
1179		spin_lock_irq(&conf->device_lock);
1180		bio_list_merge(&conf->pending_bio_list, &plug->pending);
1181		spin_unlock_irq(&conf->device_lock);
1182		wake_up(&conf->wait_barrier);
1183		md_wakeup_thread(mddev->thread);
1184		kfree(plug);
1185		return;
1186	}
1187
1188	/* we aren't scheduling, so we can do the write-out directly. */
1189	bio = bio_list_get(&plug->pending);
1190	flush_bio_list(conf, bio);
1191	kfree(plug);
1192}
1193
1194static void init_r1bio(struct r1bio *r1_bio, struct mddev *mddev, struct bio *bio)
1195{
1196	r1_bio->master_bio = bio;
1197	r1_bio->sectors = bio_sectors(bio);
1198	r1_bio->state = 0;
1199	r1_bio->mddev = mddev;
1200	r1_bio->sector = bio->bi_iter.bi_sector;
1201}
1202
1203static inline struct r1bio *
1204alloc_r1bio(struct mddev *mddev, struct bio *bio)
1205{
1206	struct r1conf *conf = mddev->private;
 
1207	struct r1bio *r1_bio;
1208
1209	r1_bio = mempool_alloc(&conf->r1bio_pool, GFP_NOIO);
1210	/* Ensure no bio records IO_BLOCKED */
1211	memset(r1_bio->bios, 0, conf->raid_disks * sizeof(r1_bio->bios[0]));
1212	init_r1bio(r1_bio, mddev, bio);
1213	return r1_bio;
1214}
1215
1216static void raid1_read_request(struct mddev *mddev, struct bio *bio,
1217			       int max_read_sectors, struct r1bio *r1_bio)
1218{
1219	struct r1conf *conf = mddev->private;
1220	struct raid1_info *mirror;
1221	struct bio *read_bio;
1222	struct bitmap *bitmap = mddev->bitmap;
1223	const enum req_op op = bio_op(bio);
1224	const blk_opf_t do_sync = bio->bi_opf & REQ_SYNC;
 
 
 
 
 
 
1225	int max_sectors;
1226	int rdisk;
1227	bool r1bio_existed = !!r1_bio;
1228	char b[BDEVNAME_SIZE];
1229
1230	/*
1231	 * If r1_bio is set, we are blocking the raid1d thread
1232	 * so there is a tiny risk of deadlock.  So ask for
1233	 * emergency memory if needed.
1234	 */
1235	gfp_t gfp = r1_bio ? (GFP_NOIO | __GFP_HIGH) : GFP_NOIO;
1236
1237	if (r1bio_existed) {
1238		/* Need to get the block device name carefully */
1239		struct md_rdev *rdev;
1240		rcu_read_lock();
1241		rdev = rcu_dereference(conf->mirrors[r1_bio->read_disk].rdev);
1242		if (rdev)
1243			snprintf(b, sizeof(b), "%pg", rdev->bdev);
1244		else
1245			strcpy(b, "???");
1246		rcu_read_unlock();
1247	}
1248
1249	/*
1250	 * Still need barrier for READ in case that whole
1251	 * array is frozen.
1252	 */
1253	if (!wait_read_barrier(conf, bio->bi_iter.bi_sector,
1254				bio->bi_opf & REQ_NOWAIT)) {
1255		bio_wouldblock_error(bio);
1256		return;
 
 
 
 
 
 
 
 
 
 
1257	}
1258
1259	if (!r1_bio)
1260		r1_bio = alloc_r1bio(mddev, bio);
1261	else
1262		init_r1bio(r1_bio, mddev, bio);
1263	r1_bio->sectors = max_read_sectors;
1264
1265	/*
1266	 * make_request() can abort the operation when read-ahead is being
1267	 * used and no empty request is available.
 
1268	 */
1269	rdisk = read_balance(conf, r1_bio, &max_sectors);
1270
1271	if (rdisk < 0) {
1272		/* couldn't find anywhere to read from */
1273		if (r1bio_existed) {
1274			pr_crit_ratelimited("md/raid1:%s: %s: unrecoverable I/O read error for block %llu\n",
1275					    mdname(mddev),
1276					    b,
1277					    (unsigned long long)r1_bio->sector);
1278		}
1279		raid_end_bio_io(r1_bio);
1280		return;
1281	}
1282	mirror = conf->mirrors + rdisk;
1283
1284	if (r1bio_existed)
1285		pr_info_ratelimited("md/raid1:%s: redirecting sector %llu to other mirror: %pg\n",
1286				    mdname(mddev),
1287				    (unsigned long long)r1_bio->sector,
1288				    mirror->rdev->bdev);
 
 
 
 
1289
1290	if (test_bit(WriteMostly, &mirror->rdev->flags) &&
1291	    bitmap) {
1292		/*
1293		 * Reading from a write-mostly device must take care not to
1294		 * over-take any writes that are 'behind'
1295		 */
1296		raid1_log(mddev, "wait behind writes");
1297		wait_event(bitmap->behind_wait,
1298			   atomic_read(&bitmap->behind_writes) == 0);
1299	}
1300
1301	if (max_sectors < bio_sectors(bio)) {
1302		struct bio *split = bio_split(bio, max_sectors,
1303					      gfp, &conf->bio_split);
1304		bio_chain(split, bio);
1305		submit_bio_noacct(bio);
1306		bio = split;
1307		r1_bio->master_bio = bio;
1308		r1_bio->sectors = max_sectors;
1309	}
1310
1311	r1_bio->read_disk = rdisk;
1312
1313	if (!r1bio_existed && blk_queue_io_stat(bio->bi_bdev->bd_disk->queue))
1314		r1_bio->start_time = bio_start_io_acct(bio);
1315
1316	read_bio = bio_alloc_clone(mirror->rdev->bdev, bio, gfp,
1317				   &mddev->bio_set);
1318
1319	r1_bio->bios[rdisk] = read_bio;
1320
1321	read_bio->bi_iter.bi_sector = r1_bio->sector +
1322		mirror->rdev->data_offset;
1323	read_bio->bi_end_io = raid1_end_read_request;
1324	read_bio->bi_opf = op | do_sync;
1325	if (test_bit(FailFast, &mirror->rdev->flags) &&
1326	    test_bit(R1BIO_FailFast, &r1_bio->state))
1327	        read_bio->bi_opf |= MD_FAILFAST;
1328	read_bio->bi_private = r1_bio;
1329
1330	if (mddev->gendisk)
1331	        trace_block_bio_remap(read_bio, disk_devt(mddev->gendisk),
1332				      r1_bio->sector);
 
 
 
 
 
 
 
1333
1334	submit_bio_noacct(read_bio);
1335}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1336
1337static void raid1_write_request(struct mddev *mddev, struct bio *bio,
1338				int max_write_sectors)
1339{
1340	struct r1conf *conf = mddev->private;
1341	struct r1bio *r1_bio;
1342	int i, disks;
1343	struct bitmap *bitmap = mddev->bitmap;
1344	unsigned long flags;
1345	struct md_rdev *blocked_rdev;
1346	struct blk_plug_cb *cb;
1347	struct raid1_plug_cb *plug = NULL;
1348	int first_clone;
1349	int max_sectors;
1350	bool write_behind = false;
 
1351
1352	if (mddev_is_clustered(mddev) &&
1353	     md_cluster_ops->area_resyncing(mddev, WRITE,
1354		     bio->bi_iter.bi_sector, bio_end_sector(bio))) {
1355
1356		DEFINE_WAIT(w);
1357		if (bio->bi_opf & REQ_NOWAIT) {
1358			bio_wouldblock_error(bio);
1359			return;
1360		}
1361		for (;;) {
1362			prepare_to_wait(&conf->wait_barrier,
1363					&w, TASK_IDLE);
1364			if (!md_cluster_ops->area_resyncing(mddev, WRITE,
1365							bio->bi_iter.bi_sector,
1366							bio_end_sector(bio)))
1367				break;
1368			schedule();
1369		}
1370		finish_wait(&conf->wait_barrier, &w);
1371	}
1372
1373	/*
1374	 * Register the new request and wait if the reconstruction
1375	 * thread has put up a bar for new requests.
1376	 * Continue immediately if no resync is active currently.
1377	 */
1378	if (!wait_barrier(conf, bio->bi_iter.bi_sector,
1379				bio->bi_opf & REQ_NOWAIT)) {
1380		bio_wouldblock_error(bio);
1381		return;
1382	}
1383
1384	r1_bio = alloc_r1bio(mddev, bio);
1385	r1_bio->sectors = max_write_sectors;
1386
1387	/* first select target devices under rcu_lock and
1388	 * inc refcount on their rdev.  Record them by setting
1389	 * bios[x] to bio
1390	 * If there are known/acknowledged bad blocks on any device on
1391	 * which we have seen a write error, we want to avoid writing those
1392	 * blocks.
1393	 * This potentially requires several writes to write around
1394	 * the bad blocks.  Each set of writes gets it's own r1bio
1395	 * with a set of bios attached.
1396	 */
1397
1398	disks = conf->raid_disks * 2;
1399 retry_write:
1400	blocked_rdev = NULL;
1401	rcu_read_lock();
1402	max_sectors = r1_bio->sectors;
1403	for (i = 0;  i < disks; i++) {
1404		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
1405
1406		/*
1407		 * The write-behind io is only attempted on drives marked as
1408		 * write-mostly, which means we could allocate write behind
1409		 * bio later.
1410		 */
1411		if (rdev && test_bit(WriteMostly, &rdev->flags))
1412			write_behind = true;
1413
1414		if (rdev && unlikely(test_bit(Blocked, &rdev->flags))) {
1415			atomic_inc(&rdev->nr_pending);
1416			blocked_rdev = rdev;
1417			break;
1418		}
1419		r1_bio->bios[i] = NULL;
1420		if (!rdev || test_bit(Faulty, &rdev->flags)) {
 
1421			if (i < conf->raid_disks)
1422				set_bit(R1BIO_Degraded, &r1_bio->state);
1423			continue;
1424		}
1425
1426		atomic_inc(&rdev->nr_pending);
1427		if (test_bit(WriteErrorSeen, &rdev->flags)) {
1428			sector_t first_bad;
1429			int bad_sectors;
1430			int is_bad;
1431
1432			is_bad = is_badblock(rdev, r1_bio->sector, max_sectors,
 
1433					     &first_bad, &bad_sectors);
1434			if (is_bad < 0) {
1435				/* mustn't write here until the bad block is
1436				 * acknowledged*/
1437				set_bit(BlockedBadBlocks, &rdev->flags);
1438				blocked_rdev = rdev;
1439				break;
1440			}
1441			if (is_bad && first_bad <= r1_bio->sector) {
1442				/* Cannot write here at all */
1443				bad_sectors -= (r1_bio->sector - first_bad);
1444				if (bad_sectors < max_sectors)
1445					/* mustn't write more than bad_sectors
1446					 * to other devices yet
1447					 */
1448					max_sectors = bad_sectors;
1449				rdev_dec_pending(rdev, mddev);
1450				/* We don't set R1BIO_Degraded as that
1451				 * only applies if the disk is
1452				 * missing, so it might be re-added,
1453				 * and we want to know to recover this
1454				 * chunk.
1455				 * In this case the device is here,
1456				 * and the fact that this chunk is not
1457				 * in-sync is recorded in the bad
1458				 * block log
1459				 */
1460				continue;
1461			}
1462			if (is_bad) {
1463				int good_sectors = first_bad - r1_bio->sector;
1464				if (good_sectors < max_sectors)
1465					max_sectors = good_sectors;
1466			}
1467		}
1468		r1_bio->bios[i] = bio;
1469	}
1470	rcu_read_unlock();
1471
1472	if (unlikely(blocked_rdev)) {
1473		/* Wait for this device to become unblocked */
1474		int j;
1475
1476		for (j = 0; j < i; j++)
1477			if (r1_bio->bios[j])
1478				rdev_dec_pending(conf->mirrors[j].rdev, mddev);
1479		r1_bio->state = 0;
1480		allow_barrier(conf, bio->bi_iter.bi_sector);
1481
1482		if (bio->bi_opf & REQ_NOWAIT) {
1483			bio_wouldblock_error(bio);
1484			return;
1485		}
1486		raid1_log(mddev, "wait rdev %d blocked", blocked_rdev->raid_disk);
1487		md_wait_for_blocked_rdev(blocked_rdev, mddev);
1488		wait_barrier(conf, bio->bi_iter.bi_sector, false);
1489		goto retry_write;
1490	}
1491
1492	/*
1493	 * When using a bitmap, we may call alloc_behind_master_bio below.
1494	 * alloc_behind_master_bio allocates a copy of the data payload a page
1495	 * at a time and thus needs a new bio that can fit the whole payload
1496	 * this bio in page sized chunks.
1497	 */
1498	if (write_behind && bitmap)
1499		max_sectors = min_t(int, max_sectors,
1500				    BIO_MAX_VECS * (PAGE_SIZE >> 9));
1501	if (max_sectors < bio_sectors(bio)) {
1502		struct bio *split = bio_split(bio, max_sectors,
1503					      GFP_NOIO, &conf->bio_split);
1504		bio_chain(split, bio);
1505		submit_bio_noacct(bio);
1506		bio = split;
1507		r1_bio->master_bio = bio;
1508		r1_bio->sectors = max_sectors;
 
 
 
 
 
 
1509	}
 
1510
1511	if (blk_queue_io_stat(bio->bi_bdev->bd_disk->queue))
1512		r1_bio->start_time = bio_start_io_acct(bio);
1513	atomic_set(&r1_bio->remaining, 1);
1514	atomic_set(&r1_bio->behind_remaining, 0);
1515
1516	first_clone = 1;
1517
1518	for (i = 0; i < disks; i++) {
1519		struct bio *mbio = NULL;
1520		struct md_rdev *rdev = conf->mirrors[i].rdev;
1521		if (!r1_bio->bios[i])
1522			continue;
1523
 
 
 
1524		if (first_clone) {
1525			/* do behind I/O ?
1526			 * Not if there are too many, or cannot
1527			 * allocate memory, or a reader on WriteMostly
1528			 * is waiting for behind writes to flush */
1529			if (bitmap &&
1530			    test_bit(WriteMostly, &rdev->flags) &&
1531			    (atomic_read(&bitmap->behind_writes)
1532			     < mddev->bitmap_info.max_write_behind) &&
1533			    !waitqueue_active(&bitmap->behind_wait)) {
1534				alloc_behind_master_bio(r1_bio, bio);
1535			}
1536
1537			md_bitmap_startwrite(bitmap, r1_bio->sector, r1_bio->sectors,
1538					     test_bit(R1BIO_BehindIO, &r1_bio->state));
 
 
1539			first_clone = 0;
1540		}
1541
1542		if (r1_bio->behind_master_bio) {
1543			mbio = bio_alloc_clone(rdev->bdev,
1544					       r1_bio->behind_master_bio,
1545					       GFP_NOIO, &mddev->bio_set);
1546			if (test_bit(CollisionCheck, &rdev->flags))
1547				wait_for_serialization(rdev, r1_bio);
1548			if (test_bit(WriteMostly, &rdev->flags))
 
 
 
 
 
 
1549				atomic_inc(&r1_bio->behind_remaining);
1550		} else {
1551			mbio = bio_alloc_clone(rdev->bdev, bio, GFP_NOIO,
1552					       &mddev->bio_set);
1553
1554			if (mddev->serialize_policy)
1555				wait_for_serialization(rdev, r1_bio);
1556		}
1557
1558		r1_bio->bios[i] = mbio;
1559
1560		mbio->bi_iter.bi_sector	= (r1_bio->sector + rdev->data_offset);
 
 
1561		mbio->bi_end_io	= raid1_end_write_request;
1562		mbio->bi_opf = bio_op(bio) | (bio->bi_opf & (REQ_SYNC | REQ_FUA));
1563		if (test_bit(FailFast, &rdev->flags) &&
1564		    !test_bit(WriteMostly, &rdev->flags) &&
1565		    conf->raid_disks - mddev->degraded > 1)
1566			mbio->bi_opf |= MD_FAILFAST;
1567		mbio->bi_private = r1_bio;
1568
1569		atomic_inc(&r1_bio->remaining);
1570
1571		if (mddev->gendisk)
1572			trace_block_bio_remap(mbio, disk_devt(mddev->gendisk),
1573					      r1_bio->sector);
1574		/* flush_pending_writes() needs access to the rdev so...*/
1575		mbio->bi_bdev = (void *)rdev;
1576
1577		cb = blk_check_plugged(raid1_unplug, mddev, sizeof(*plug));
1578		if (cb)
1579			plug = container_of(cb, struct raid1_plug_cb, cb);
1580		else
1581			plug = NULL;
1582		if (plug) {
1583			bio_list_add(&plug->pending, mbio);
1584		} else {
1585			spin_lock_irqsave(&conf->device_lock, flags);
1586			bio_list_add(&conf->pending_bio_list, mbio);
1587			spin_unlock_irqrestore(&conf->device_lock, flags);
1588			md_wakeup_thread(mddev->thread);
1589		}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1590	}
1591
1592	r1_bio_write_done(r1_bio);
1593
1594	/* In case raid1d snuck in to freeze_array */
1595	wake_up(&conf->wait_barrier);
1596}
1597
1598static bool raid1_make_request(struct mddev *mddev, struct bio *bio)
1599{
1600	sector_t sectors;
1601
1602	if (unlikely(bio->bi_opf & REQ_PREFLUSH)
1603	    && md_flush_request(mddev, bio))
1604		return true;
1605
1606	/*
1607	 * There is a limit to the maximum size, but
1608	 * the read/write handler might find a lower limit
1609	 * due to bad blocks.  To avoid multiple splits,
1610	 * we pass the maximum number of sectors down
1611	 * and let the lower level perform the split.
1612	 */
1613	sectors = align_to_barrier_unit_end(
1614		bio->bi_iter.bi_sector, bio_sectors(bio));
1615
1616	if (bio_data_dir(bio) == READ)
1617		raid1_read_request(mddev, bio, sectors, NULL);
1618	else {
1619		if (!md_write_start(mddev,bio))
1620			return false;
1621		raid1_write_request(mddev, bio, sectors);
1622	}
1623	return true;
1624}
1625
1626static void raid1_status(struct seq_file *seq, struct mddev *mddev)
1627{
1628	struct r1conf *conf = mddev->private;
1629	int i;
1630
1631	seq_printf(seq, " [%d/%d] [", conf->raid_disks,
1632		   conf->raid_disks - mddev->degraded);
1633	rcu_read_lock();
1634	for (i = 0; i < conf->raid_disks; i++) {
1635		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
1636		seq_printf(seq, "%s",
1637			   rdev && test_bit(In_sync, &rdev->flags) ? "U" : "_");
1638	}
1639	rcu_read_unlock();
1640	seq_printf(seq, "]");
1641}
1642
1643/**
1644 * raid1_error() - RAID1 error handler.
1645 * @mddev: affected md device.
1646 * @rdev: member device to fail.
1647 *
1648 * The routine acknowledges &rdev failure and determines new @mddev state.
1649 * If it failed, then:
1650 *	- &MD_BROKEN flag is set in &mddev->flags.
1651 *	- recovery is disabled.
1652 * Otherwise, it must be degraded:
1653 *	- recovery is interrupted.
1654 *	- &mddev->degraded is bumped.
1655 *
1656 * @rdev is marked as &Faulty excluding case when array is failed and
1657 * &mddev->fail_last_dev is off.
1658 */
1659static void raid1_error(struct mddev *mddev, struct md_rdev *rdev)
1660{
 
1661	struct r1conf *conf = mddev->private;
1662	unsigned long flags;
1663
1664	spin_lock_irqsave(&conf->device_lock, flags);
1665
1666	if (test_bit(In_sync, &rdev->flags) &&
1667	    (conf->raid_disks - mddev->degraded) == 1) {
1668		set_bit(MD_BROKEN, &mddev->flags);
1669
1670		if (!mddev->fail_last_dev) {
1671			conf->recovery_disabled = mddev->recovery_disabled;
1672			spin_unlock_irqrestore(&conf->device_lock, flags);
1673			return;
1674		}
 
 
 
 
 
1675	}
1676	set_bit(Blocked, &rdev->flags);
1677	if (test_and_clear_bit(In_sync, &rdev->flags))
 
 
1678		mddev->degraded++;
1679	set_bit(Faulty, &rdev->flags);
1680	spin_unlock_irqrestore(&conf->device_lock, flags);
1681	/*
1682	 * if recovery is running, make sure it aborts.
1683	 */
1684	set_bit(MD_RECOVERY_INTR, &mddev->recovery);
1685	set_mask_bits(&mddev->sb_flags, 0,
1686		      BIT(MD_SB_CHANGE_DEVS) | BIT(MD_SB_CHANGE_PENDING));
1687	pr_crit("md/raid1:%s: Disk failure on %pg, disabling device.\n"
1688		"md/raid1:%s: Operation continuing on %d devices.\n",
1689		mdname(mddev), rdev->bdev,
1690		mdname(mddev), conf->raid_disks - mddev->degraded);
 
 
1691}
1692
1693static void print_conf(struct r1conf *conf)
1694{
1695	int i;
1696
1697	pr_debug("RAID1 conf printout:\n");
1698	if (!conf) {
1699		pr_debug("(!conf)\n");
1700		return;
1701	}
1702	pr_debug(" --- wd:%d rd:%d\n", conf->raid_disks - conf->mddev->degraded,
1703		 conf->raid_disks);
1704
1705	rcu_read_lock();
1706	for (i = 0; i < conf->raid_disks; i++) {
 
1707		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
1708		if (rdev)
1709			pr_debug(" disk %d, wo:%d, o:%d, dev:%pg\n",
1710				 i, !test_bit(In_sync, &rdev->flags),
1711				 !test_bit(Faulty, &rdev->flags),
1712				 rdev->bdev);
1713	}
1714	rcu_read_unlock();
1715}
1716
1717static void close_sync(struct r1conf *conf)
1718{
1719	int idx;
 
1720
1721	for (idx = 0; idx < BARRIER_BUCKETS_NR; idx++) {
1722		_wait_barrier(conf, idx, false);
1723		_allow_barrier(conf, idx);
1724	}
1725
1726	mempool_exit(&conf->r1buf_pool);
1727}
1728
1729static int raid1_spare_active(struct mddev *mddev)
1730{
1731	int i;
1732	struct r1conf *conf = mddev->private;
1733	int count = 0;
1734	unsigned long flags;
1735
1736	/*
1737	 * Find all failed disks within the RAID1 configuration
1738	 * and mark them readable.
1739	 * Called under mddev lock, so rcu protection not needed.
1740	 * device_lock used to avoid races with raid1_end_read_request
1741	 * which expects 'In_sync' flags and ->degraded to be consistent.
1742	 */
1743	spin_lock_irqsave(&conf->device_lock, flags);
1744	for (i = 0; i < conf->raid_disks; i++) {
1745		struct md_rdev *rdev = conf->mirrors[i].rdev;
1746		struct md_rdev *repl = conf->mirrors[conf->raid_disks + i].rdev;
1747		if (repl
1748		    && !test_bit(Candidate, &repl->flags)
1749		    && repl->recovery_offset == MaxSector
1750		    && !test_bit(Faulty, &repl->flags)
1751		    && !test_and_set_bit(In_sync, &repl->flags)) {
1752			/* replacement has just become active */
1753			if (!rdev ||
1754			    !test_and_clear_bit(In_sync, &rdev->flags))
1755				count++;
1756			if (rdev) {
1757				/* Replaced device not technically
1758				 * faulty, but we need to be sure
1759				 * it gets removed and never re-added
1760				 */
1761				set_bit(Faulty, &rdev->flags);
1762				sysfs_notify_dirent_safe(
1763					rdev->sysfs_state);
1764			}
1765		}
1766		if (rdev
1767		    && rdev->recovery_offset == MaxSector
1768		    && !test_bit(Faulty, &rdev->flags)
1769		    && !test_and_set_bit(In_sync, &rdev->flags)) {
1770			count++;
1771			sysfs_notify_dirent_safe(rdev->sysfs_state);
1772		}
1773	}
 
1774	mddev->degraded -= count;
1775	spin_unlock_irqrestore(&conf->device_lock, flags);
1776
1777	print_conf(conf);
1778	return count;
1779}
1780
 
1781static int raid1_add_disk(struct mddev *mddev, struct md_rdev *rdev)
1782{
1783	struct r1conf *conf = mddev->private;
1784	int err = -EEXIST;
1785	int mirror = 0;
1786	struct raid1_info *p;
1787	int first = 0;
1788	int last = conf->raid_disks - 1;
 
1789
1790	if (mddev->recovery_disabled == conf->recovery_disabled)
1791		return -EBUSY;
1792
1793	if (md_integrity_add_rdev(rdev, mddev))
1794		return -ENXIO;
1795
1796	if (rdev->raid_disk >= 0)
1797		first = last = rdev->raid_disk;
1798
1799	/*
1800	 * find the disk ... but prefer rdev->saved_raid_disk
1801	 * if possible.
1802	 */
1803	if (rdev->saved_raid_disk >= 0 &&
1804	    rdev->saved_raid_disk >= first &&
1805	    rdev->saved_raid_disk < conf->raid_disks &&
1806	    conf->mirrors[rdev->saved_raid_disk].rdev == NULL)
1807		first = last = rdev->saved_raid_disk;
1808
1809	for (mirror = first; mirror <= last; mirror++) {
1810		p = conf->mirrors + mirror;
1811		if (!p->rdev) {
1812			if (mddev->gendisk)
1813				disk_stack_limits(mddev->gendisk, rdev->bdev,
1814						  rdev->data_offset << 9);
1815
1816			p->head_position = 0;
1817			rdev->raid_disk = mirror;
1818			err = 0;
1819			/* As all devices are equivalent, we don't need a full recovery
1820			 * if this was recently any drive of the array
1821			 */
1822			if (rdev->saved_raid_disk < 0)
1823				conf->fullsync = 1;
1824			rcu_assign_pointer(p->rdev, rdev);
1825			break;
1826		}
1827		if (test_bit(WantReplacement, &p->rdev->flags) &&
1828		    p[conf->raid_disks].rdev == NULL) {
1829			/* Add this device as a replacement */
1830			clear_bit(In_sync, &rdev->flags);
1831			set_bit(Replacement, &rdev->flags);
1832			rdev->raid_disk = mirror;
1833			err = 0;
1834			conf->fullsync = 1;
1835			rcu_assign_pointer(p[conf->raid_disks].rdev, rdev);
1836			break;
1837		}
1838	}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1839	print_conf(conf);
1840	return err;
1841}
1842
1843static int raid1_remove_disk(struct mddev *mddev, struct md_rdev *rdev)
1844{
1845	struct r1conf *conf = mddev->private;
1846	int err = 0;
1847	int number = rdev->raid_disk;
1848	struct raid1_info *p = conf->mirrors + number;
1849
1850	if (rdev != p->rdev)
1851		p = conf->mirrors + conf->raid_disks + number;
1852
1853	print_conf(conf);
1854	if (rdev == p->rdev) {
1855		if (test_bit(In_sync, &rdev->flags) ||
1856		    atomic_read(&rdev->nr_pending)) {
1857			err = -EBUSY;
1858			goto abort;
1859		}
1860		/* Only remove non-faulty devices if recovery
1861		 * is not possible.
1862		 */
1863		if (!test_bit(Faulty, &rdev->flags) &&
1864		    mddev->recovery_disabled != conf->recovery_disabled &&
1865		    mddev->degraded < conf->raid_disks) {
1866			err = -EBUSY;
1867			goto abort;
1868		}
1869		p->rdev = NULL;
1870		if (!test_bit(RemoveSynchronized, &rdev->flags)) {
1871			synchronize_rcu();
1872			if (atomic_read(&rdev->nr_pending)) {
1873				/* lost the race, try later */
1874				err = -EBUSY;
1875				p->rdev = rdev;
1876				goto abort;
1877			}
1878		}
1879		if (conf->mirrors[conf->raid_disks + number].rdev) {
1880			/* We just removed a device that is being replaced.
1881			 * Move down the replacement.  We drain all IO before
1882			 * doing this to avoid confusion.
1883			 */
1884			struct md_rdev *repl =
1885				conf->mirrors[conf->raid_disks + number].rdev;
1886			freeze_array(conf, 0);
1887			if (atomic_read(&repl->nr_pending)) {
1888				/* It means that some queued IO of retry_list
1889				 * hold repl. Thus, we cannot set replacement
1890				 * as NULL, avoiding rdev NULL pointer
1891				 * dereference in sync_request_write and
1892				 * handle_write_finished.
1893				 */
1894				err = -EBUSY;
1895				unfreeze_array(conf);
1896				goto abort;
1897			}
1898			clear_bit(Replacement, &repl->flags);
1899			p->rdev = repl;
1900			conf->mirrors[conf->raid_disks + number].rdev = NULL;
1901			unfreeze_array(conf);
1902		}
1903
1904		clear_bit(WantReplacement, &rdev->flags);
1905		err = md_integrity_register(mddev);
1906	}
1907abort:
1908
1909	print_conf(conf);
1910	return err;
1911}
1912
1913static void end_sync_read(struct bio *bio)
 
1914{
1915	struct r1bio *r1_bio = get_resync_r1bio(bio);
1916
1917	update_head_pos(r1_bio->read_disk, r1_bio);
1918
1919	/*
1920	 * we have read a block, now it needs to be re-written,
1921	 * or re-read if the read failed.
1922	 * We don't do much here, just schedule handling by raid1d
1923	 */
1924	if (!bio->bi_status)
1925		set_bit(R1BIO_Uptodate, &r1_bio->state);
1926
1927	if (atomic_dec_and_test(&r1_bio->remaining))
1928		reschedule_retry(r1_bio);
1929}
1930
1931static void abort_sync_write(struct mddev *mddev, struct r1bio *r1_bio)
1932{
1933	sector_t sync_blocks = 0;
1934	sector_t s = r1_bio->sector;
1935	long sectors_to_go = r1_bio->sectors;
1936
1937	/* make sure these bits don't get cleared. */
1938	do {
1939		md_bitmap_end_sync(mddev->bitmap, s, &sync_blocks, 1);
1940		s += sync_blocks;
1941		sectors_to_go -= sync_blocks;
1942	} while (sectors_to_go > 0);
1943}
1944
1945static void put_sync_write_buf(struct r1bio *r1_bio, int uptodate)
1946{
1947	if (atomic_dec_and_test(&r1_bio->remaining)) {
1948		struct mddev *mddev = r1_bio->mddev;
1949		int s = r1_bio->sectors;
1950
1951		if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
1952		    test_bit(R1BIO_WriteError, &r1_bio->state))
1953			reschedule_retry(r1_bio);
1954		else {
1955			put_buf(r1_bio);
1956			md_done_sync(mddev, s, uptodate);
1957		}
1958	}
1959}
1960
1961static void end_sync_write(struct bio *bio)
1962{
1963	int uptodate = !bio->bi_status;
1964	struct r1bio *r1_bio = get_resync_r1bio(bio);
1965	struct mddev *mddev = r1_bio->mddev;
1966	struct r1conf *conf = mddev->private;
 
1967	sector_t first_bad;
1968	int bad_sectors;
1969	struct md_rdev *rdev = conf->mirrors[find_bio_disk(r1_bio, bio)].rdev;
 
1970
1971	if (!uptodate) {
1972		abort_sync_write(mddev, r1_bio);
1973		set_bit(WriteErrorSeen, &rdev->flags);
1974		if (!test_and_set_bit(WantReplacement, &rdev->flags))
 
 
 
 
 
 
 
 
 
 
 
1975			set_bit(MD_RECOVERY_NEEDED, &
1976				mddev->recovery);
1977		set_bit(R1BIO_WriteError, &r1_bio->state);
1978	} else if (is_badblock(rdev, r1_bio->sector, r1_bio->sectors,
 
 
1979			       &first_bad, &bad_sectors) &&
1980		   !is_badblock(conf->mirrors[r1_bio->read_disk].rdev,
1981				r1_bio->sector,
1982				r1_bio->sectors,
1983				&first_bad, &bad_sectors)
1984		)
1985		set_bit(R1BIO_MadeGood, &r1_bio->state);
1986
1987	put_sync_write_buf(r1_bio, uptodate);
 
 
 
 
 
 
 
 
 
1988}
1989
1990static int r1_sync_page_io(struct md_rdev *rdev, sector_t sector,
1991			   int sectors, struct page *page, int rw)
1992{
1993	if (sync_page_io(rdev, sector, sectors << 9, page, rw, false))
1994		/* success */
1995		return 1;
1996	if (rw == WRITE) {
1997		set_bit(WriteErrorSeen, &rdev->flags);
1998		if (!test_and_set_bit(WantReplacement,
1999				      &rdev->flags))
2000			set_bit(MD_RECOVERY_NEEDED, &
2001				rdev->mddev->recovery);
2002	}
2003	/* need to record an error - either for the block or the device */
2004	if (!rdev_set_badblocks(rdev, sector, sectors, 0))
2005		md_error(rdev->mddev, rdev);
2006	return 0;
2007}
2008
2009static int fix_sync_read_error(struct r1bio *r1_bio)
2010{
2011	/* Try some synchronous reads of other devices to get
2012	 * good data, much like with normal read errors.  Only
2013	 * read into the pages we already have so we don't
2014	 * need to re-issue the read request.
2015	 * We don't need to freeze the array, because being in an
2016	 * active sync request, there is no normal IO, and
2017	 * no overlapping syncs.
2018	 * We don't need to check is_badblock() again as we
2019	 * made sure that anything with a bad block in range
2020	 * will have bi_end_io clear.
2021	 */
2022	struct mddev *mddev = r1_bio->mddev;
2023	struct r1conf *conf = mddev->private;
2024	struct bio *bio = r1_bio->bios[r1_bio->read_disk];
2025	struct page **pages = get_resync_pages(bio)->pages;
2026	sector_t sect = r1_bio->sector;
2027	int sectors = r1_bio->sectors;
2028	int idx = 0;
2029	struct md_rdev *rdev;
2030
2031	rdev = conf->mirrors[r1_bio->read_disk].rdev;
2032	if (test_bit(FailFast, &rdev->flags)) {
2033		/* Don't try recovering from here - just fail it
2034		 * ... unless it is the last working device of course */
2035		md_error(mddev, rdev);
2036		if (test_bit(Faulty, &rdev->flags))
2037			/* Don't try to read from here, but make sure
2038			 * put_buf does it's thing
2039			 */
2040			bio->bi_end_io = end_sync_write;
2041	}
2042
2043	while(sectors) {
2044		int s = sectors;
2045		int d = r1_bio->read_disk;
2046		int success = 0;
 
2047		int start;
2048
2049		if (s > (PAGE_SIZE>>9))
2050			s = PAGE_SIZE >> 9;
2051		do {
2052			if (r1_bio->bios[d]->bi_end_io == end_sync_read) {
2053				/* No rcu protection needed here devices
2054				 * can only be removed when no resync is
2055				 * active, and resync is currently active
2056				 */
2057				rdev = conf->mirrors[d].rdev;
2058				if (sync_page_io(rdev, sect, s<<9,
2059						 pages[idx],
2060						 REQ_OP_READ, false)) {
2061					success = 1;
2062					break;
2063				}
2064			}
2065			d++;
2066			if (d == conf->raid_disks * 2)
2067				d = 0;
2068		} while (!success && d != r1_bio->read_disk);
2069
2070		if (!success) {
 
2071			int abort = 0;
2072			/* Cannot read from anywhere, this block is lost.
2073			 * Record a bad block on each device.  If that doesn't
2074			 * work just disable and interrupt the recovery.
2075			 * Don't fail devices as that won't really help.
2076			 */
2077			pr_crit_ratelimited("md/raid1:%s: %pg: unrecoverable I/O read error for block %llu\n",
2078					    mdname(mddev), bio->bi_bdev,
2079					    (unsigned long long)r1_bio->sector);
 
 
2080			for (d = 0; d < conf->raid_disks * 2; d++) {
2081				rdev = conf->mirrors[d].rdev;
2082				if (!rdev || test_bit(Faulty, &rdev->flags))
2083					continue;
2084				if (!rdev_set_badblocks(rdev, sect, s, 0))
2085					abort = 1;
2086			}
2087			if (abort) {
2088				conf->recovery_disabled =
2089					mddev->recovery_disabled;
2090				set_bit(MD_RECOVERY_INTR, &mddev->recovery);
2091				md_done_sync(mddev, r1_bio->sectors, 0);
2092				put_buf(r1_bio);
2093				return 0;
2094			}
2095			/* Try next page */
2096			sectors -= s;
2097			sect += s;
2098			idx++;
2099			continue;
2100		}
2101
2102		start = d;
2103		/* write it back and re-read */
2104		while (d != r1_bio->read_disk) {
2105			if (d == 0)
2106				d = conf->raid_disks * 2;
2107			d--;
2108			if (r1_bio->bios[d]->bi_end_io != end_sync_read)
2109				continue;
2110			rdev = conf->mirrors[d].rdev;
2111			if (r1_sync_page_io(rdev, sect, s,
2112					    pages[idx],
2113					    WRITE) == 0) {
2114				r1_bio->bios[d]->bi_end_io = NULL;
2115				rdev_dec_pending(rdev, mddev);
2116			}
2117		}
2118		d = start;
2119		while (d != r1_bio->read_disk) {
2120			if (d == 0)
2121				d = conf->raid_disks * 2;
2122			d--;
2123			if (r1_bio->bios[d]->bi_end_io != end_sync_read)
2124				continue;
2125			rdev = conf->mirrors[d].rdev;
2126			if (r1_sync_page_io(rdev, sect, s,
2127					    pages[idx],
2128					    READ) != 0)
2129				atomic_add(s, &rdev->corrected_errors);
2130		}
2131		sectors -= s;
2132		sect += s;
2133		idx ++;
2134	}
2135	set_bit(R1BIO_Uptodate, &r1_bio->state);
2136	bio->bi_status = 0;
2137	return 1;
2138}
2139
2140static void process_checks(struct r1bio *r1_bio)
2141{
2142	/* We have read all readable devices.  If we haven't
2143	 * got the block, then there is no hope left.
2144	 * If we have, then we want to do a comparison
2145	 * and skip the write if everything is the same.
2146	 * If any blocks failed to read, then we need to
2147	 * attempt an over-write
2148	 */
2149	struct mddev *mddev = r1_bio->mddev;
2150	struct r1conf *conf = mddev->private;
2151	int primary;
2152	int i;
2153	int vcnt;
2154
2155	/* Fix variable parts of all bios */
2156	vcnt = (r1_bio->sectors + PAGE_SIZE / 512 - 1) >> (PAGE_SHIFT - 9);
2157	for (i = 0; i < conf->raid_disks * 2; i++) {
2158		blk_status_t status;
2159		struct bio *b = r1_bio->bios[i];
2160		struct resync_pages *rp = get_resync_pages(b);
2161		if (b->bi_end_io != end_sync_read)
2162			continue;
2163		/* fixup the bio for reuse, but preserve errno */
2164		status = b->bi_status;
2165		bio_reset(b, conf->mirrors[i].rdev->bdev, REQ_OP_READ);
2166		b->bi_status = status;
2167		b->bi_iter.bi_sector = r1_bio->sector +
2168			conf->mirrors[i].rdev->data_offset;
2169		b->bi_end_io = end_sync_read;
2170		rp->raid_bio = r1_bio;
2171		b->bi_private = rp;
2172
2173		/* initialize bvec table again */
2174		md_bio_reset_resync_pages(b, rp, r1_bio->sectors << 9);
2175	}
2176	for (primary = 0; primary < conf->raid_disks * 2; primary++)
2177		if (r1_bio->bios[primary]->bi_end_io == end_sync_read &&
2178		    !r1_bio->bios[primary]->bi_status) {
2179			r1_bio->bios[primary]->bi_end_io = NULL;
2180			rdev_dec_pending(conf->mirrors[primary].rdev, mddev);
2181			break;
2182		}
2183	r1_bio->read_disk = primary;
 
2184	for (i = 0; i < conf->raid_disks * 2; i++) {
2185		int j = 0;
2186		struct bio *pbio = r1_bio->bios[primary];
2187		struct bio *sbio = r1_bio->bios[i];
2188		blk_status_t status = sbio->bi_status;
2189		struct page **ppages = get_resync_pages(pbio)->pages;
2190		struct page **spages = get_resync_pages(sbio)->pages;
2191		struct bio_vec *bi;
2192		int page_len[RESYNC_PAGES] = { 0 };
2193		struct bvec_iter_all iter_all;
2194
2195		if (sbio->bi_end_io != end_sync_read)
2196			continue;
2197		/* Now we can 'fixup' the error value */
2198		sbio->bi_status = 0;
2199
2200		bio_for_each_segment_all(bi, sbio, iter_all)
2201			page_len[j++] = bi->bv_len;
2202
2203		if (!status) {
2204			for (j = vcnt; j-- ; ) {
2205				if (memcmp(page_address(ppages[j]),
2206					   page_address(spages[j]),
2207					   page_len[j]))
 
 
 
2208					break;
2209			}
2210		} else
2211			j = 0;
2212		if (j >= 0)
2213			atomic64_add(r1_bio->sectors, &mddev->resync_mismatches);
2214		if (j < 0 || (test_bit(MD_RECOVERY_CHECK, &mddev->recovery)
2215			      && !status)) {
2216			/* No need to write to this device. */
2217			sbio->bi_end_io = NULL;
2218			rdev_dec_pending(conf->mirrors[i].rdev, mddev);
2219			continue;
2220		}
2221
2222		bio_copy_data(sbio, pbio);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2223	}
 
2224}
2225
2226static void sync_request_write(struct mddev *mddev, struct r1bio *r1_bio)
2227{
2228	struct r1conf *conf = mddev->private;
2229	int i;
2230	int disks = conf->raid_disks * 2;
2231	struct bio *wbio;
 
 
2232
2233	if (!test_bit(R1BIO_Uptodate, &r1_bio->state))
2234		/* ouch - failed to read all of that. */
2235		if (!fix_sync_read_error(r1_bio))
2236			return;
2237
2238	if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery))
2239		process_checks(r1_bio);
2240
2241	/*
2242	 * schedule writes
2243	 */
2244	atomic_set(&r1_bio->remaining, 1);
2245	for (i = 0; i < disks ; i++) {
2246		wbio = r1_bio->bios[i];
2247		if (wbio->bi_end_io == NULL ||
2248		    (wbio->bi_end_io == end_sync_read &&
2249		     (i == r1_bio->read_disk ||
2250		      !test_bit(MD_RECOVERY_SYNC, &mddev->recovery))))
2251			continue;
2252		if (test_bit(Faulty, &conf->mirrors[i].rdev->flags)) {
2253			abort_sync_write(mddev, r1_bio);
2254			continue;
2255		}
2256
2257		wbio->bi_opf = REQ_OP_WRITE;
2258		if (test_bit(FailFast, &conf->mirrors[i].rdev->flags))
2259			wbio->bi_opf |= MD_FAILFAST;
2260
 
2261		wbio->bi_end_io = end_sync_write;
2262		atomic_inc(&r1_bio->remaining);
2263		md_sync_acct(conf->mirrors[i].rdev->bdev, bio_sectors(wbio));
2264
2265		submit_bio_noacct(wbio);
2266	}
2267
2268	put_sync_write_buf(r1_bio, 1);
 
 
 
 
 
 
 
 
 
 
2269}
2270
2271/*
2272 * This is a kernel thread which:
2273 *
2274 *	1.	Retries failed read operations on working mirrors.
2275 *	2.	Updates the raid superblock when problems encounter.
2276 *	3.	Performs writes following reads for array synchronising.
2277 */
2278
2279static void fix_read_error(struct r1conf *conf, int read_disk,
2280			   sector_t sect, int sectors)
2281{
2282	struct mddev *mddev = conf->mddev;
2283	while(sectors) {
2284		int s = sectors;
2285		int d = read_disk;
2286		int success = 0;
2287		int start;
2288		struct md_rdev *rdev;
2289
2290		if (s > (PAGE_SIZE>>9))
2291			s = PAGE_SIZE >> 9;
2292
2293		do {
 
 
 
 
 
2294			sector_t first_bad;
2295			int bad_sectors;
2296
2297			rcu_read_lock();
2298			rdev = rcu_dereference(conf->mirrors[d].rdev);
2299			if (rdev &&
2300			    (test_bit(In_sync, &rdev->flags) ||
2301			     (!test_bit(Faulty, &rdev->flags) &&
2302			      rdev->recovery_offset >= sect + s)) &&
2303			    is_badblock(rdev, sect, s,
2304					&first_bad, &bad_sectors) == 0) {
2305				atomic_inc(&rdev->nr_pending);
2306				rcu_read_unlock();
2307				if (sync_page_io(rdev, sect, s<<9,
2308					 conf->tmppage, REQ_OP_READ, false))
2309					success = 1;
2310				rdev_dec_pending(rdev, mddev);
2311				if (success)
2312					break;
2313			} else
2314				rcu_read_unlock();
2315			d++;
2316			if (d == conf->raid_disks * 2)
2317				d = 0;
2318		} while (!success && d != read_disk);
2319
2320		if (!success) {
2321			/* Cannot read from anywhere - mark it bad */
2322			struct md_rdev *rdev = conf->mirrors[read_disk].rdev;
2323			if (!rdev_set_badblocks(rdev, sect, s, 0))
2324				md_error(mddev, rdev);
2325			break;
2326		}
2327		/* write it back and re-read */
2328		start = d;
2329		while (d != read_disk) {
2330			if (d==0)
2331				d = conf->raid_disks * 2;
2332			d--;
2333			rcu_read_lock();
2334			rdev = rcu_dereference(conf->mirrors[d].rdev);
2335			if (rdev &&
2336			    !test_bit(Faulty, &rdev->flags)) {
2337				atomic_inc(&rdev->nr_pending);
2338				rcu_read_unlock();
2339				r1_sync_page_io(rdev, sect, s,
2340						conf->tmppage, WRITE);
2341				rdev_dec_pending(rdev, mddev);
2342			} else
2343				rcu_read_unlock();
2344		}
2345		d = start;
2346		while (d != read_disk) {
 
2347			if (d==0)
2348				d = conf->raid_disks * 2;
2349			d--;
2350			rcu_read_lock();
2351			rdev = rcu_dereference(conf->mirrors[d].rdev);
2352			if (rdev &&
2353			    !test_bit(Faulty, &rdev->flags)) {
2354				atomic_inc(&rdev->nr_pending);
2355				rcu_read_unlock();
2356				if (r1_sync_page_io(rdev, sect, s,
2357						    conf->tmppage, READ)) {
2358					atomic_add(s, &rdev->corrected_errors);
2359					pr_info("md/raid1:%s: read error corrected (%d sectors at %llu on %pg)\n",
2360						mdname(mddev), s,
2361						(unsigned long long)(sect +
2362								     rdev->data_offset),
2363						rdev->bdev);
 
 
2364				}
2365				rdev_dec_pending(rdev, mddev);
2366			} else
2367				rcu_read_unlock();
2368		}
2369		sectors -= s;
2370		sect += s;
2371	}
2372}
2373
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2374static int narrow_write_error(struct r1bio *r1_bio, int i)
2375{
2376	struct mddev *mddev = r1_bio->mddev;
2377	struct r1conf *conf = mddev->private;
2378	struct md_rdev *rdev = conf->mirrors[i].rdev;
 
 
2379
2380	/* bio has the data to be written to device 'i' where
2381	 * we just recently had a write error.
2382	 * We repeatedly clone the bio and trim down to one block,
2383	 * then try the write.  Where the write fails we record
2384	 * a bad block.
2385	 * It is conceivable that the bio doesn't exactly align with
2386	 * blocks.  We must handle this somehow.
2387	 *
2388	 * We currently own a reference on the rdev.
2389	 */
2390
2391	int block_sectors;
2392	sector_t sector;
2393	int sectors;
2394	int sect_to_write = r1_bio->sectors;
2395	int ok = 1;
2396
2397	if (rdev->badblocks.shift < 0)
2398		return 0;
2399
2400	block_sectors = roundup(1 << rdev->badblocks.shift,
2401				bdev_logical_block_size(rdev->bdev) >> 9);
2402	sector = r1_bio->sector;
2403	sectors = ((sector + block_sectors)
2404		   & ~(sector_t)(block_sectors - 1))
2405		- sector;
2406
 
 
 
 
 
 
 
 
 
 
 
2407	while (sect_to_write) {
2408		struct bio *wbio;
2409		if (sectors > sect_to_write)
2410			sectors = sect_to_write;
2411		/* Write at 'sector' for 'sectors'*/
2412
2413		if (test_bit(R1BIO_BehindIO, &r1_bio->state)) {
2414			wbio = bio_alloc_clone(rdev->bdev,
2415					       r1_bio->behind_master_bio,
2416					       GFP_NOIO, &mddev->bio_set);
2417		} else {
2418			wbio = bio_alloc_clone(rdev->bdev, r1_bio->master_bio,
2419					       GFP_NOIO, &mddev->bio_set);
2420		}
2421
2422		wbio->bi_opf = REQ_OP_WRITE;
2423		wbio->bi_iter.bi_sector = r1_bio->sector;
2424		wbio->bi_iter.bi_size = r1_bio->sectors << 9;
2425
2426		bio_trim(wbio, sector - r1_bio->sector, sectors);
2427		wbio->bi_iter.bi_sector += rdev->data_offset;
2428
2429		if (submit_bio_wait(wbio) < 0)
2430			/* failure! */
2431			ok = rdev_set_badblocks(rdev, sector,
2432						sectors, 0)
2433				&& ok;
2434
2435		bio_put(wbio);
2436		sect_to_write -= sectors;
2437		sector += sectors;
2438		sectors = block_sectors;
2439	}
2440	return ok;
2441}
2442
2443static void handle_sync_write_finished(struct r1conf *conf, struct r1bio *r1_bio)
2444{
2445	int m;
2446	int s = r1_bio->sectors;
2447	for (m = 0; m < conf->raid_disks * 2 ; m++) {
2448		struct md_rdev *rdev = conf->mirrors[m].rdev;
2449		struct bio *bio = r1_bio->bios[m];
2450		if (bio->bi_end_io == NULL)
2451			continue;
2452		if (!bio->bi_status &&
2453		    test_bit(R1BIO_MadeGood, &r1_bio->state)) {
2454			rdev_clear_badblocks(rdev, r1_bio->sector, s, 0);
2455		}
2456		if (bio->bi_status &&
2457		    test_bit(R1BIO_WriteError, &r1_bio->state)) {
2458			if (!rdev_set_badblocks(rdev, r1_bio->sector, s, 0))
2459				md_error(conf->mddev, rdev);
2460		}
2461	}
2462	put_buf(r1_bio);
2463	md_done_sync(conf->mddev, s, 1);
2464}
2465
2466static void handle_write_finished(struct r1conf *conf, struct r1bio *r1_bio)
2467{
2468	int m, idx;
2469	bool fail = false;
2470
2471	for (m = 0; m < conf->raid_disks * 2 ; m++)
2472		if (r1_bio->bios[m] == IO_MADE_GOOD) {
2473			struct md_rdev *rdev = conf->mirrors[m].rdev;
2474			rdev_clear_badblocks(rdev,
2475					     r1_bio->sector,
2476					     r1_bio->sectors, 0);
2477			rdev_dec_pending(rdev, conf->mddev);
2478		} else if (r1_bio->bios[m] != NULL) {
2479			/* This drive got a write error.  We need to
2480			 * narrow down and record precise write
2481			 * errors.
2482			 */
2483			fail = true;
2484			if (!narrow_write_error(r1_bio, m)) {
2485				md_error(conf->mddev,
2486					 conf->mirrors[m].rdev);
2487				/* an I/O failed, we can't clear the bitmap */
2488				set_bit(R1BIO_Degraded, &r1_bio->state);
2489			}
2490			rdev_dec_pending(conf->mirrors[m].rdev,
2491					 conf->mddev);
2492		}
2493	if (fail) {
2494		spin_lock_irq(&conf->device_lock);
2495		list_add(&r1_bio->retry_list, &conf->bio_end_io_list);
2496		idx = sector_to_idx(r1_bio->sector);
2497		atomic_inc(&conf->nr_queued[idx]);
2498		spin_unlock_irq(&conf->device_lock);
2499		/*
2500		 * In case freeze_array() is waiting for condition
2501		 * get_unqueued_pending() == extra to be true.
2502		 */
2503		wake_up(&conf->wait_barrier);
2504		md_wakeup_thread(conf->mddev->thread);
2505	} else {
2506		if (test_bit(R1BIO_WriteError, &r1_bio->state))
2507			close_write(r1_bio);
2508		raid_end_bio_io(r1_bio);
2509	}
2510}
2511
2512static void handle_read_error(struct r1conf *conf, struct r1bio *r1_bio)
2513{
 
 
2514	struct mddev *mddev = conf->mddev;
2515	struct bio *bio;
 
2516	struct md_rdev *rdev;
2517
2518	clear_bit(R1BIO_ReadError, &r1_bio->state);
2519	/* we got a read error. Maybe the drive is bad.  Maybe just
2520	 * the block and we can fix it.
2521	 * We freeze all other IO, and try reading the block from
2522	 * other devices.  When we find one, we re-write
2523	 * and check it that fixes the read error.
2524	 * This is all done synchronously while the array is
2525	 * frozen
2526	 */
2527
2528	bio = r1_bio->bios[r1_bio->read_disk];
2529	bio_put(bio);
2530	r1_bio->bios[r1_bio->read_disk] = NULL;
2531
2532	rdev = conf->mirrors[r1_bio->read_disk].rdev;
2533	if (mddev->ro == 0
2534	    && !test_bit(FailFast, &rdev->flags)) {
2535		freeze_array(conf, 1);
2536		fix_read_error(conf, r1_bio->read_disk,
2537			       r1_bio->sector, r1_bio->sectors);
2538		unfreeze_array(conf);
2539	} else if (mddev->ro == 0 && test_bit(FailFast, &rdev->flags)) {
2540		md_error(mddev, rdev);
2541	} else {
2542		r1_bio->bios[r1_bio->read_disk] = IO_BLOCKED;
2543	}
2544
2545	rdev_dec_pending(rdev, conf->mddev);
2546	allow_barrier(conf, r1_bio->sector);
2547	bio = r1_bio->master_bio;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2548
2549	/* Reuse the old r1_bio so that the IO_BLOCKED settings are preserved */
2550	r1_bio->state = 0;
2551	raid1_read_request(mddev, bio, r1_bio->sectors, r1_bio);
 
2552}
2553
2554static void raid1d(struct md_thread *thread)
2555{
2556	struct mddev *mddev = thread->mddev;
2557	struct r1bio *r1_bio;
2558	unsigned long flags;
2559	struct r1conf *conf = mddev->private;
2560	struct list_head *head = &conf->retry_list;
2561	struct blk_plug plug;
2562	int idx;
2563
2564	md_check_recovery(mddev);
2565
2566	if (!list_empty_careful(&conf->bio_end_io_list) &&
2567	    !test_bit(MD_SB_CHANGE_PENDING, &mddev->sb_flags)) {
2568		LIST_HEAD(tmp);
2569		spin_lock_irqsave(&conf->device_lock, flags);
2570		if (!test_bit(MD_SB_CHANGE_PENDING, &mddev->sb_flags))
2571			list_splice_init(&conf->bio_end_io_list, &tmp);
2572		spin_unlock_irqrestore(&conf->device_lock, flags);
2573		while (!list_empty(&tmp)) {
2574			r1_bio = list_first_entry(&tmp, struct r1bio,
2575						  retry_list);
2576			list_del(&r1_bio->retry_list);
2577			idx = sector_to_idx(r1_bio->sector);
2578			atomic_dec(&conf->nr_queued[idx]);
2579			if (mddev->degraded)
2580				set_bit(R1BIO_Degraded, &r1_bio->state);
2581			if (test_bit(R1BIO_WriteError, &r1_bio->state))
2582				close_write(r1_bio);
2583			raid_end_bio_io(r1_bio);
2584		}
2585	}
2586
2587	blk_start_plug(&plug);
2588	for (;;) {
2589
2590		flush_pending_writes(conf);
 
2591
2592		spin_lock_irqsave(&conf->device_lock, flags);
2593		if (list_empty(head)) {
2594			spin_unlock_irqrestore(&conf->device_lock, flags);
2595			break;
2596		}
2597		r1_bio = list_entry(head->prev, struct r1bio, retry_list);
2598		list_del(head->prev);
2599		idx = sector_to_idx(r1_bio->sector);
2600		atomic_dec(&conf->nr_queued[idx]);
2601		spin_unlock_irqrestore(&conf->device_lock, flags);
2602
2603		mddev = r1_bio->mddev;
2604		conf = mddev->private;
2605		if (test_bit(R1BIO_IsSync, &r1_bio->state)) {
2606			if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
2607			    test_bit(R1BIO_WriteError, &r1_bio->state))
2608				handle_sync_write_finished(conf, r1_bio);
2609			else
2610				sync_request_write(mddev, r1_bio);
2611		} else if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
2612			   test_bit(R1BIO_WriteError, &r1_bio->state))
2613			handle_write_finished(conf, r1_bio);
2614		else if (test_bit(R1BIO_ReadError, &r1_bio->state))
2615			handle_read_error(conf, r1_bio);
2616		else
2617			WARN_ON_ONCE(1);
 
 
 
2618
2619		cond_resched();
2620		if (mddev->sb_flags & ~(1<<MD_SB_CHANGE_PENDING))
2621			md_check_recovery(mddev);
2622	}
2623	blk_finish_plug(&plug);
2624}
2625
 
2626static int init_resync(struct r1conf *conf)
2627{
2628	int buffs;
2629
2630	buffs = RESYNC_WINDOW / RESYNC_BLOCK_SIZE;
2631	BUG_ON(mempool_initialized(&conf->r1buf_pool));
2632
2633	return mempool_init(&conf->r1buf_pool, buffs, r1buf_pool_alloc,
2634			    r1buf_pool_free, conf->poolinfo);
2635}
2636
2637static struct r1bio *raid1_alloc_init_r1buf(struct r1conf *conf)
2638{
2639	struct r1bio *r1bio = mempool_alloc(&conf->r1buf_pool, GFP_NOIO);
2640	struct resync_pages *rps;
2641	struct bio *bio;
2642	int i;
2643
2644	for (i = conf->poolinfo->raid_disks; i--; ) {
2645		bio = r1bio->bios[i];
2646		rps = bio->bi_private;
2647		bio_reset(bio, NULL, 0);
2648		bio->bi_private = rps;
2649	}
2650	r1bio->master_bio = NULL;
2651	return r1bio;
2652}
2653
2654/*
2655 * perform a "sync" on one "block"
2656 *
2657 * We need to make sure that no normal I/O request - particularly write
2658 * requests - conflict with active sync requests.
2659 *
2660 * This is achieved by tracking pending requests and a 'barrier' concept
2661 * that can be installed to exclude normal IO requests.
2662 */
2663
2664static sector_t raid1_sync_request(struct mddev *mddev, sector_t sector_nr,
2665				   int *skipped)
2666{
2667	struct r1conf *conf = mddev->private;
2668	struct r1bio *r1_bio;
2669	struct bio *bio;
2670	sector_t max_sector, nr_sectors;
2671	int disk = -1;
2672	int i;
2673	int wonly = -1;
2674	int write_targets = 0, read_targets = 0;
2675	sector_t sync_blocks;
2676	int still_degraded = 0;
2677	int good_sectors = RESYNC_SECTORS;
2678	int min_bad = 0; /* number of sectors that are bad in all devices */
2679	int idx = sector_to_idx(sector_nr);
2680	int page_idx = 0;
2681
2682	if (!mempool_initialized(&conf->r1buf_pool))
2683		if (init_resync(conf))
2684			return 0;
2685
2686	max_sector = mddev->dev_sectors;
2687	if (sector_nr >= max_sector) {
2688		/* If we aborted, we need to abort the
2689		 * sync on the 'current' bitmap chunk (there will
2690		 * only be one in raid1 resync.
2691		 * We can find the current addess in mddev->curr_resync
2692		 */
2693		if (mddev->curr_resync < max_sector) /* aborted */
2694			md_bitmap_end_sync(mddev->bitmap, mddev->curr_resync,
2695					   &sync_blocks, 1);
2696		else /* completed sync */
2697			conf->fullsync = 0;
2698
2699		md_bitmap_close_sync(mddev->bitmap);
2700		close_sync(conf);
2701
2702		if (mddev_is_clustered(mddev)) {
2703			conf->cluster_sync_low = 0;
2704			conf->cluster_sync_high = 0;
2705		}
2706		return 0;
2707	}
2708
2709	if (mddev->bitmap == NULL &&
2710	    mddev->recovery_cp == MaxSector &&
2711	    !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) &&
2712	    conf->fullsync == 0) {
2713		*skipped = 1;
2714		return max_sector - sector_nr;
2715	}
2716	/* before building a request, check if we can skip these blocks..
2717	 * This call the bitmap_start_sync doesn't actually record anything
2718	 */
2719	if (!md_bitmap_start_sync(mddev->bitmap, sector_nr, &sync_blocks, 1) &&
2720	    !conf->fullsync && !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) {
2721		/* We can skip this block, and probably several more */
2722		*skipped = 1;
2723		return sync_blocks;
2724	}
2725
2726	/*
2727	 * If there is non-resync activity waiting for a turn, then let it
2728	 * though before starting on this new sync request.
2729	 */
2730	if (atomic_read(&conf->nr_waiting[idx]))
2731		schedule_timeout_uninterruptible(1);
 
 
 
 
 
2732
2733	/* we are incrementing sector_nr below. To be safe, we check against
2734	 * sector_nr + two times RESYNC_SECTORS
2735	 */
2736
2737	md_bitmap_cond_end_sync(mddev->bitmap, sector_nr,
2738		mddev_is_clustered(mddev) && (sector_nr + 2 * RESYNC_SECTORS > conf->cluster_sync_high));
2739
2740
2741	if (raise_barrier(conf, sector_nr))
2742		return 0;
2743
2744	r1_bio = raid1_alloc_init_r1buf(conf);
2745
2746	rcu_read_lock();
2747	/*
2748	 * If we get a correctably read error during resync or recovery,
2749	 * we might want to read from a different device.  So we
2750	 * flag all drives that could conceivably be read from for READ,
2751	 * and any others (which will be non-In_sync devices) for WRITE.
2752	 * If a read fails, we try reading from something else for which READ
2753	 * is OK.
2754	 */
2755
2756	r1_bio->mddev = mddev;
2757	r1_bio->sector = sector_nr;
2758	r1_bio->state = 0;
2759	set_bit(R1BIO_IsSync, &r1_bio->state);
2760	/* make sure good_sectors won't go across barrier unit boundary */
2761	good_sectors = align_to_barrier_unit_end(sector_nr, good_sectors);
2762
2763	for (i = 0; i < conf->raid_disks * 2; i++) {
2764		struct md_rdev *rdev;
2765		bio = r1_bio->bios[i];
2766
 
 
 
 
 
 
 
 
 
 
 
 
2767		rdev = rcu_dereference(conf->mirrors[i].rdev);
2768		if (rdev == NULL ||
2769		    test_bit(Faulty, &rdev->flags)) {
2770			if (i < conf->raid_disks)
2771				still_degraded = 1;
2772		} else if (!test_bit(In_sync, &rdev->flags)) {
2773			bio->bi_opf = REQ_OP_WRITE;
2774			bio->bi_end_io = end_sync_write;
2775			write_targets ++;
2776		} else {
2777			/* may need to read from here */
2778			sector_t first_bad = MaxSector;
2779			int bad_sectors;
2780
2781			if (is_badblock(rdev, sector_nr, good_sectors,
2782					&first_bad, &bad_sectors)) {
2783				if (first_bad > sector_nr)
2784					good_sectors = first_bad - sector_nr;
2785				else {
2786					bad_sectors -= (sector_nr - first_bad);
2787					if (min_bad == 0 ||
2788					    min_bad > bad_sectors)
2789						min_bad = bad_sectors;
2790				}
2791			}
2792			if (sector_nr < first_bad) {
2793				if (test_bit(WriteMostly, &rdev->flags)) {
2794					if (wonly < 0)
2795						wonly = i;
2796				} else {
2797					if (disk < 0)
2798						disk = i;
2799				}
2800				bio->bi_opf = REQ_OP_READ;
2801				bio->bi_end_io = end_sync_read;
2802				read_targets++;
2803			} else if (!test_bit(WriteErrorSeen, &rdev->flags) &&
2804				test_bit(MD_RECOVERY_SYNC, &mddev->recovery) &&
2805				!test_bit(MD_RECOVERY_CHECK, &mddev->recovery)) {
2806				/*
2807				 * The device is suitable for reading (InSync),
2808				 * but has bad block(s) here. Let's try to correct them,
2809				 * if we are doing resync or repair. Otherwise, leave
2810				 * this device alone for this sync request.
2811				 */
2812				bio->bi_opf = REQ_OP_WRITE;
2813				bio->bi_end_io = end_sync_write;
2814				write_targets++;
2815			}
2816		}
2817		if (rdev && bio->bi_end_io) {
2818			atomic_inc(&rdev->nr_pending);
2819			bio->bi_iter.bi_sector = sector_nr + rdev->data_offset;
2820			bio_set_dev(bio, rdev->bdev);
2821			if (test_bit(FailFast, &rdev->flags))
2822				bio->bi_opf |= MD_FAILFAST;
2823		}
2824	}
2825	rcu_read_unlock();
2826	if (disk < 0)
2827		disk = wonly;
2828	r1_bio->read_disk = disk;
2829
2830	if (read_targets == 0 && min_bad > 0) {
2831		/* These sectors are bad on all InSync devices, so we
2832		 * need to mark them bad on all write targets
2833		 */
2834		int ok = 1;
2835		for (i = 0 ; i < conf->raid_disks * 2 ; i++)
2836			if (r1_bio->bios[i]->bi_end_io == end_sync_write) {
2837				struct md_rdev *rdev = conf->mirrors[i].rdev;
2838				ok = rdev_set_badblocks(rdev, sector_nr,
2839							min_bad, 0
2840					) && ok;
2841			}
2842		set_bit(MD_SB_CHANGE_DEVS, &mddev->sb_flags);
2843		*skipped = 1;
2844		put_buf(r1_bio);
2845
2846		if (!ok) {
2847			/* Cannot record the badblocks, so need to
2848			 * abort the resync.
2849			 * If there are multiple read targets, could just
2850			 * fail the really bad ones ???
2851			 */
2852			conf->recovery_disabled = mddev->recovery_disabled;
2853			set_bit(MD_RECOVERY_INTR, &mddev->recovery);
2854			return 0;
2855		} else
2856			return min_bad;
2857
2858	}
2859	if (min_bad > 0 && min_bad < good_sectors) {
2860		/* only resync enough to reach the next bad->good
2861		 * transition */
2862		good_sectors = min_bad;
2863	}
2864
2865	if (test_bit(MD_RECOVERY_SYNC, &mddev->recovery) && read_targets > 0)
2866		/* extra read targets are also write targets */
2867		write_targets += read_targets-1;
2868
2869	if (write_targets == 0 || read_targets == 0) {
2870		/* There is nowhere to write, so all non-sync
2871		 * drives must be failed - so we are finished
2872		 */
2873		sector_t rv;
2874		if (min_bad > 0)
2875			max_sector = sector_nr + min_bad;
2876		rv = max_sector - sector_nr;
2877		*skipped = 1;
2878		put_buf(r1_bio);
2879		return rv;
2880	}
2881
2882	if (max_sector > mddev->resync_max)
2883		max_sector = mddev->resync_max; /* Don't do IO beyond here */
2884	if (max_sector > sector_nr + good_sectors)
2885		max_sector = sector_nr + good_sectors;
2886	nr_sectors = 0;
2887	sync_blocks = 0;
2888	do {
2889		struct page *page;
2890		int len = PAGE_SIZE;
2891		if (sector_nr + (len>>9) > max_sector)
2892			len = (max_sector - sector_nr) << 9;
2893		if (len == 0)
2894			break;
2895		if (sync_blocks == 0) {
2896			if (!md_bitmap_start_sync(mddev->bitmap, sector_nr,
2897						  &sync_blocks, still_degraded) &&
2898			    !conf->fullsync &&
2899			    !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery))
2900				break;
 
2901			if ((len >> 9) > sync_blocks)
2902				len = sync_blocks<<9;
2903		}
2904
2905		for (i = 0 ; i < conf->raid_disks * 2; i++) {
2906			struct resync_pages *rp;
2907
2908			bio = r1_bio->bios[i];
2909			rp = get_resync_pages(bio);
2910			if (bio->bi_end_io) {
2911				page = resync_fetch_page(rp, page_idx);
2912
2913				/*
2914				 * won't fail because the vec table is big
2915				 * enough to hold all these pages
2916				 */
2917				bio_add_page(bio, page, len, 0);
 
 
 
 
 
 
 
 
 
2918			}
2919		}
2920		nr_sectors += len>>9;
2921		sector_nr += len>>9;
2922		sync_blocks -= (len>>9);
2923	} while (++page_idx < RESYNC_PAGES);
2924
2925	r1_bio->sectors = nr_sectors;
2926
2927	if (mddev_is_clustered(mddev) &&
2928			conf->cluster_sync_high < sector_nr + nr_sectors) {
2929		conf->cluster_sync_low = mddev->curr_resync_completed;
2930		conf->cluster_sync_high = conf->cluster_sync_low + CLUSTER_RESYNC_WINDOW_SECTORS;
2931		/* Send resync message */
2932		md_cluster_ops->resync_info_update(mddev,
2933				conf->cluster_sync_low,
2934				conf->cluster_sync_high);
2935	}
2936
2937	/* For a user-requested sync, we read all readable devices and do a
2938	 * compare
2939	 */
2940	if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) {
2941		atomic_set(&r1_bio->remaining, read_targets);
2942		for (i = 0; i < conf->raid_disks * 2 && read_targets; i++) {
2943			bio = r1_bio->bios[i];
2944			if (bio->bi_end_io == end_sync_read) {
2945				read_targets--;
2946				md_sync_acct_bio(bio, nr_sectors);
2947				if (read_targets == 1)
2948					bio->bi_opf &= ~MD_FAILFAST;
2949				submit_bio_noacct(bio);
2950			}
2951		}
2952	} else {
2953		atomic_set(&r1_bio->remaining, 1);
2954		bio = r1_bio->bios[r1_bio->read_disk];
2955		md_sync_acct_bio(bio, nr_sectors);
2956		if (read_targets == 1)
2957			bio->bi_opf &= ~MD_FAILFAST;
2958		submit_bio_noacct(bio);
2959	}
2960	return nr_sectors;
2961}
2962
2963static sector_t raid1_size(struct mddev *mddev, sector_t sectors, int raid_disks)
2964{
2965	if (sectors)
2966		return sectors;
2967
2968	return mddev->dev_sectors;
2969}
2970
2971static struct r1conf *setup_conf(struct mddev *mddev)
2972{
2973	struct r1conf *conf;
2974	int i;
2975	struct raid1_info *disk;
2976	struct md_rdev *rdev;
2977	int err = -ENOMEM;
2978
2979	conf = kzalloc(sizeof(struct r1conf), GFP_KERNEL);
2980	if (!conf)
2981		goto abort;
2982
2983	conf->nr_pending = kcalloc(BARRIER_BUCKETS_NR,
2984				   sizeof(atomic_t), GFP_KERNEL);
2985	if (!conf->nr_pending)
2986		goto abort;
2987
2988	conf->nr_waiting = kcalloc(BARRIER_BUCKETS_NR,
2989				   sizeof(atomic_t), GFP_KERNEL);
2990	if (!conf->nr_waiting)
2991		goto abort;
2992
2993	conf->nr_queued = kcalloc(BARRIER_BUCKETS_NR,
2994				  sizeof(atomic_t), GFP_KERNEL);
2995	if (!conf->nr_queued)
2996		goto abort;
2997
2998	conf->barrier = kcalloc(BARRIER_BUCKETS_NR,
2999				sizeof(atomic_t), GFP_KERNEL);
3000	if (!conf->barrier)
3001		goto abort;
3002
3003	conf->mirrors = kzalloc(array3_size(sizeof(struct raid1_info),
3004					    mddev->raid_disks, 2),
3005				GFP_KERNEL);
3006	if (!conf->mirrors)
3007		goto abort;
3008
3009	conf->tmppage = alloc_page(GFP_KERNEL);
3010	if (!conf->tmppage)
3011		goto abort;
3012
3013	conf->poolinfo = kzalloc(sizeof(*conf->poolinfo), GFP_KERNEL);
3014	if (!conf->poolinfo)
3015		goto abort;
3016	conf->poolinfo->raid_disks = mddev->raid_disks * 2;
3017	err = mempool_init(&conf->r1bio_pool, NR_RAID_BIOS, r1bio_pool_alloc,
3018			   rbio_pool_free, conf->poolinfo);
3019	if (err)
3020		goto abort;
3021
3022	err = bioset_init(&conf->bio_split, BIO_POOL_SIZE, 0, 0);
3023	if (err)
3024		goto abort;
3025
3026	conf->poolinfo->mddev = mddev;
3027
3028	err = -EINVAL;
3029	spin_lock_init(&conf->device_lock);
3030	rdev_for_each(rdev, mddev) {
 
3031		int disk_idx = rdev->raid_disk;
3032		if (disk_idx >= mddev->raid_disks
3033		    || disk_idx < 0)
3034			continue;
3035		if (test_bit(Replacement, &rdev->flags))
3036			disk = conf->mirrors + mddev->raid_disks + disk_idx;
3037		else
3038			disk = conf->mirrors + disk_idx;
3039
3040		if (disk->rdev)
3041			goto abort;
3042		disk->rdev = rdev;
 
 
 
 
3043		disk->head_position = 0;
3044		disk->seq_start = MaxSector;
3045	}
3046	conf->raid_disks = mddev->raid_disks;
3047	conf->mddev = mddev;
3048	INIT_LIST_HEAD(&conf->retry_list);
3049	INIT_LIST_HEAD(&conf->bio_end_io_list);
3050
3051	spin_lock_init(&conf->resync_lock);
3052	init_waitqueue_head(&conf->wait_barrier);
3053
3054	bio_list_init(&conf->pending_bio_list);
 
3055	conf->recovery_disabled = mddev->recovery_disabled - 1;
3056
3057	err = -EIO;
 
3058	for (i = 0; i < conf->raid_disks * 2; i++) {
3059
3060		disk = conf->mirrors + i;
3061
3062		if (i < conf->raid_disks &&
3063		    disk[conf->raid_disks].rdev) {
3064			/* This slot has a replacement. */
3065			if (!disk->rdev) {
3066				/* No original, just make the replacement
3067				 * a recovering spare
3068				 */
3069				disk->rdev =
3070					disk[conf->raid_disks].rdev;
3071				disk[conf->raid_disks].rdev = NULL;
3072			} else if (!test_bit(In_sync, &disk->rdev->flags))
3073				/* Original is not in_sync - bad */
3074				goto abort;
3075		}
3076
3077		if (!disk->rdev ||
3078		    !test_bit(In_sync, &disk->rdev->flags)) {
3079			disk->head_position = 0;
3080			if (disk->rdev &&
3081			    (disk->rdev->saved_raid_disk < 0))
3082				conf->fullsync = 1;
3083		}
 
 
 
 
 
3084	}
3085
 
 
 
 
 
3086	err = -ENOMEM;
3087	conf->thread = md_register_thread(raid1d, mddev, "raid1");
3088	if (!conf->thread)
 
 
 
3089		goto abort;
 
3090
3091	return conf;
3092
3093 abort:
3094	if (conf) {
3095		mempool_exit(&conf->r1bio_pool);
 
3096		kfree(conf->mirrors);
3097		safe_put_page(conf->tmppage);
3098		kfree(conf->poolinfo);
3099		kfree(conf->nr_pending);
3100		kfree(conf->nr_waiting);
3101		kfree(conf->nr_queued);
3102		kfree(conf->barrier);
3103		bioset_exit(&conf->bio_split);
3104		kfree(conf);
3105	}
3106	return ERR_PTR(err);
3107}
3108
3109static void raid1_free(struct mddev *mddev, void *priv);
3110static int raid1_run(struct mddev *mddev)
3111{
3112	struct r1conf *conf;
3113	int i;
3114	struct md_rdev *rdev;
3115	int ret;
3116
3117	if (mddev->level != 1) {
3118		pr_warn("md/raid1:%s: raid level not set to mirroring (%d)\n",
3119			mdname(mddev), mddev->level);
3120		return -EIO;
3121	}
3122	if (mddev->reshape_position != MaxSector) {
3123		pr_warn("md/raid1:%s: reshape_position set but not supported\n",
3124			mdname(mddev));
3125		return -EIO;
3126	}
3127	if (mddev_init_writes_pending(mddev) < 0)
3128		return -ENOMEM;
3129	/*
3130	 * copy the already verified devices into our private RAID1
3131	 * bookkeeping area. [whatever we allocate in run(),
3132	 * should be freed in raid1_free()]
3133	 */
3134	if (mddev->private == NULL)
3135		conf = setup_conf(mddev);
3136	else
3137		conf = mddev->private;
3138
3139	if (IS_ERR(conf))
3140		return PTR_ERR(conf);
3141
3142	if (mddev->queue)
3143		blk_queue_max_write_zeroes_sectors(mddev->queue, 0);
3144
3145	rdev_for_each(rdev, mddev) {
3146		if (!mddev->gendisk)
3147			continue;
3148		disk_stack_limits(mddev->gendisk, rdev->bdev,
3149				  rdev->data_offset << 9);
3150	}
3151
3152	mddev->degraded = 0;
3153	for (i = 0; i < conf->raid_disks; i++)
3154		if (conf->mirrors[i].rdev == NULL ||
3155		    !test_bit(In_sync, &conf->mirrors[i].rdev->flags) ||
3156		    test_bit(Faulty, &conf->mirrors[i].rdev->flags))
3157			mddev->degraded++;
3158	/*
3159	 * RAID1 needs at least one disk in active
3160	 */
3161	if (conf->raid_disks - mddev->degraded < 1) {
3162		md_unregister_thread(&conf->thread);
3163		ret = -EINVAL;
3164		goto abort;
3165	}
3166
3167	if (conf->raid_disks - mddev->degraded == 1)
3168		mddev->recovery_cp = MaxSector;
3169
3170	if (mddev->recovery_cp != MaxSector)
3171		pr_info("md/raid1:%s: not clean -- starting background reconstruction\n",
3172			mdname(mddev));
3173	pr_info("md/raid1:%s: active with %d out of %d mirrors\n",
3174		mdname(mddev), mddev->raid_disks - mddev->degraded,
 
 
3175		mddev->raid_disks);
3176
3177	/*
3178	 * Ok, everything is just fine now
3179	 */
3180	mddev->thread = conf->thread;
3181	conf->thread = NULL;
3182	mddev->private = conf;
3183	set_bit(MD_FAILFAST_SUPPORTED, &mddev->flags);
3184
3185	md_set_array_sectors(mddev, raid1_size(mddev, 0, 0));
3186
3187	ret = md_integrity_register(mddev);
3188	if (ret) {
3189		md_unregister_thread(&mddev->thread);
3190		goto abort;
3191	}
3192	return 0;
3193
3194abort:
3195	raid1_free(mddev, conf);
 
3196	return ret;
3197}
3198
3199static void raid1_free(struct mddev *mddev, void *priv)
3200{
3201	struct r1conf *conf = priv;
 
3202
3203	mempool_exit(&conf->r1bio_pool);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
3204	kfree(conf->mirrors);
3205	safe_put_page(conf->tmppage);
3206	kfree(conf->poolinfo);
3207	kfree(conf->nr_pending);
3208	kfree(conf->nr_waiting);
3209	kfree(conf->nr_queued);
3210	kfree(conf->barrier);
3211	bioset_exit(&conf->bio_split);
3212	kfree(conf);
 
 
3213}
3214
3215static int raid1_resize(struct mddev *mddev, sector_t sectors)
3216{
3217	/* no resync is happening, and there is enough space
3218	 * on all devices, so we can resize.
3219	 * We need to make sure resync covers any new space.
3220	 * If the array is shrinking we should possibly wait until
3221	 * any io in the removed space completes, but it hardly seems
3222	 * worth it.
3223	 */
3224	sector_t newsize = raid1_size(mddev, sectors, 0);
3225	if (mddev->external_size &&
3226	    mddev->array_sectors > newsize)
3227		return -EINVAL;
3228	if (mddev->bitmap) {
3229		int ret = md_bitmap_resize(mddev->bitmap, newsize, 0, 0);
3230		if (ret)
3231			return ret;
3232	}
3233	md_set_array_sectors(mddev, newsize);
 
 
3234	if (sectors > mddev->dev_sectors &&
3235	    mddev->recovery_cp > mddev->dev_sectors) {
3236		mddev->recovery_cp = mddev->dev_sectors;
3237		set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
3238	}
3239	mddev->dev_sectors = sectors;
3240	mddev->resync_max_sectors = sectors;
3241	return 0;
3242}
3243
3244static int raid1_reshape(struct mddev *mddev)
3245{
3246	/* We need to:
3247	 * 1/ resize the r1bio_pool
3248	 * 2/ resize conf->mirrors
3249	 *
3250	 * We allocate a new r1bio_pool if we can.
3251	 * Then raise a device barrier and wait until all IO stops.
3252	 * Then resize conf->mirrors and swap in the new r1bio pool.
3253	 *
3254	 * At the same time, we "pack" the devices so that all the missing
3255	 * devices have the higher raid_disk numbers.
3256	 */
3257	mempool_t newpool, oldpool;
3258	struct pool_info *newpoolinfo;
3259	struct raid1_info *newmirrors;
3260	struct r1conf *conf = mddev->private;
3261	int cnt, raid_disks;
3262	unsigned long flags;
3263	int d, d2;
3264	int ret;
3265
3266	memset(&newpool, 0, sizeof(newpool));
3267	memset(&oldpool, 0, sizeof(oldpool));
3268
3269	/* Cannot change chunk_size, layout, or level */
3270	if (mddev->chunk_sectors != mddev->new_chunk_sectors ||
3271	    mddev->layout != mddev->new_layout ||
3272	    mddev->level != mddev->new_level) {
3273		mddev->new_chunk_sectors = mddev->chunk_sectors;
3274		mddev->new_layout = mddev->layout;
3275		mddev->new_level = mddev->level;
3276		return -EINVAL;
3277	}
3278
3279	if (!mddev_is_clustered(mddev))
3280		md_allow_write(mddev);
 
3281
3282	raid_disks = mddev->raid_disks + mddev->delta_disks;
3283
3284	if (raid_disks < conf->raid_disks) {
3285		cnt=0;
3286		for (d= 0; d < conf->raid_disks; d++)
3287			if (conf->mirrors[d].rdev)
3288				cnt++;
3289		if (cnt > raid_disks)
3290			return -EBUSY;
3291	}
3292
3293	newpoolinfo = kmalloc(sizeof(*newpoolinfo), GFP_KERNEL);
3294	if (!newpoolinfo)
3295		return -ENOMEM;
3296	newpoolinfo->mddev = mddev;
3297	newpoolinfo->raid_disks = raid_disks * 2;
3298
3299	ret = mempool_init(&newpool, NR_RAID_BIOS, r1bio_pool_alloc,
3300			   rbio_pool_free, newpoolinfo);
3301	if (ret) {
3302		kfree(newpoolinfo);
3303		return ret;
3304	}
3305	newmirrors = kzalloc(array3_size(sizeof(struct raid1_info),
3306					 raid_disks, 2),
3307			     GFP_KERNEL);
3308	if (!newmirrors) {
3309		kfree(newpoolinfo);
3310		mempool_exit(&newpool);
3311		return -ENOMEM;
3312	}
3313
3314	freeze_array(conf, 0);
3315
3316	/* ok, everything is stopped */
3317	oldpool = conf->r1bio_pool;
3318	conf->r1bio_pool = newpool;
3319
3320	for (d = d2 = 0; d < conf->raid_disks; d++) {
3321		struct md_rdev *rdev = conf->mirrors[d].rdev;
3322		if (rdev && rdev->raid_disk != d2) {
3323			sysfs_unlink_rdev(mddev, rdev);
3324			rdev->raid_disk = d2;
3325			sysfs_unlink_rdev(mddev, rdev);
3326			if (sysfs_link_rdev(mddev, rdev))
3327				pr_warn("md/raid1:%s: cannot register rd%d\n",
3328					mdname(mddev), rdev->raid_disk);
 
3329		}
3330		if (rdev)
3331			newmirrors[d2++].rdev = rdev;
3332	}
3333	kfree(conf->mirrors);
3334	conf->mirrors = newmirrors;
3335	kfree(conf->poolinfo);
3336	conf->poolinfo = newpoolinfo;
3337
3338	spin_lock_irqsave(&conf->device_lock, flags);
3339	mddev->degraded += (raid_disks - conf->raid_disks);
3340	spin_unlock_irqrestore(&conf->device_lock, flags);
3341	conf->raid_disks = mddev->raid_disks = raid_disks;
3342	mddev->delta_disks = 0;
3343
3344	unfreeze_array(conf);
 
3345
3346	set_bit(MD_RECOVERY_RECOVER, &mddev->recovery);
3347	set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
3348	md_wakeup_thread(mddev->thread);
3349
3350	mempool_exit(&oldpool);
3351	return 0;
3352}
3353
3354static void raid1_quiesce(struct mddev *mddev, int quiesce)
3355{
3356	struct r1conf *conf = mddev->private;
3357
3358	if (quiesce)
3359		freeze_array(conf, 0);
3360	else
3361		unfreeze_array(conf);
 
 
 
 
 
 
 
3362}
3363
3364static void *raid1_takeover(struct mddev *mddev)
3365{
3366	/* raid1 can take over:
3367	 *  raid5 with 2 devices, any layout or chunk size
3368	 */
3369	if (mddev->level == 5 && mddev->raid_disks == 2) {
3370		struct r1conf *conf;
3371		mddev->new_level = 1;
3372		mddev->new_layout = 0;
3373		mddev->new_chunk_sectors = 0;
3374		conf = setup_conf(mddev);
3375		if (!IS_ERR(conf)) {
3376			/* Array must appear to be quiesced */
3377			conf->array_frozen = 1;
3378			mddev_clear_unsupported_flags(mddev,
3379				UNSUPPORTED_MDDEV_FLAGS);
3380		}
3381		return conf;
3382	}
3383	return ERR_PTR(-EINVAL);
3384}
3385
3386static struct md_personality raid1_personality =
3387{
3388	.name		= "raid1",
3389	.level		= 1,
3390	.owner		= THIS_MODULE,
3391	.make_request	= raid1_make_request,
3392	.run		= raid1_run,
3393	.free		= raid1_free,
3394	.status		= raid1_status,
3395	.error_handler	= raid1_error,
3396	.hot_add_disk	= raid1_add_disk,
3397	.hot_remove_disk= raid1_remove_disk,
3398	.spare_active	= raid1_spare_active,
3399	.sync_request	= raid1_sync_request,
3400	.resize		= raid1_resize,
3401	.size		= raid1_size,
3402	.check_reshape	= raid1_reshape,
3403	.quiesce	= raid1_quiesce,
3404	.takeover	= raid1_takeover,
3405};
3406
3407static int __init raid_init(void)
3408{
3409	return register_md_personality(&raid1_personality);
3410}
3411
3412static void raid_exit(void)
3413{
3414	unregister_md_personality(&raid1_personality);
3415}
3416
3417module_init(raid_init);
3418module_exit(raid_exit);
3419MODULE_LICENSE("GPL");
3420MODULE_DESCRIPTION("RAID1 (mirroring) personality for MD");
3421MODULE_ALIAS("md-personality-3"); /* RAID1 */
3422MODULE_ALIAS("md-raid1");
3423MODULE_ALIAS("md-level-1");
v3.5.6
 
   1/*
   2 * raid1.c : Multiple Devices driver for Linux
   3 *
   4 * Copyright (C) 1999, 2000, 2001 Ingo Molnar, Red Hat
   5 *
   6 * Copyright (C) 1996, 1997, 1998 Ingo Molnar, Miguel de Icaza, Gadi Oxman
   7 *
   8 * RAID-1 management functions.
   9 *
  10 * Better read-balancing code written by Mika Kuoppala <miku@iki.fi>, 2000
  11 *
  12 * Fixes to reconstruction by Jakob Østergaard" <jakob@ostenfeld.dk>
  13 * Various fixes by Neil Brown <neilb@cse.unsw.edu.au>
  14 *
  15 * Changes by Peter T. Breuer <ptb@it.uc3m.es> 31/1/2003 to support
  16 * bitmapped intelligence in resync:
  17 *
  18 *      - bitmap marked during normal i/o
  19 *      - bitmap used to skip nondirty blocks during sync
  20 *
  21 * Additions to bitmap code, (C) 2003-2004 Paul Clements, SteelEye Technology:
  22 * - persistent bitmap code
  23 *
  24 * This program is free software; you can redistribute it and/or modify
  25 * it under the terms of the GNU General Public License as published by
  26 * the Free Software Foundation; either version 2, or (at your option)
  27 * any later version.
  28 *
  29 * You should have received a copy of the GNU General Public License
  30 * (for example /usr/src/linux/COPYING); if not, write to the Free
  31 * Software Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  32 */
  33
  34#include <linux/slab.h>
  35#include <linux/delay.h>
  36#include <linux/blkdev.h>
  37#include <linux/module.h>
  38#include <linux/seq_file.h>
  39#include <linux/ratelimit.h>
 
 
 
 
  40#include "md.h"
  41#include "raid1.h"
  42#include "bitmap.h"
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
  43
  44/*
  45 * Number of guaranteed r1bios in case of extreme VM load:
 
  46 */
  47#define	NR_RAID1_BIOS 256
  48
  49/* When there are this many requests queue to be written by
  50 * the raid1 thread, we become 'congested' to provide back-pressure
  51 * for writeback.
  52 */
  53static int max_queued_requests = 1024;
  54
  55static void allow_barrier(struct r1conf *conf);
  56static void lower_barrier(struct r1conf *conf);
  57
  58static void * r1bio_pool_alloc(gfp_t gfp_flags, void *data)
  59{
  60	struct pool_info *pi = data;
  61	int size = offsetof(struct r1bio, bios[pi->raid_disks]);
  62
  63	/* allocate a r1bio with room for raid_disks entries in the bios array */
  64	return kzalloc(size, gfp_flags);
  65}
  66
  67static void r1bio_pool_free(void *r1_bio, void *data)
  68{
  69	kfree(r1_bio);
  70}
  71
  72#define RESYNC_BLOCK_SIZE (64*1024)
  73//#define RESYNC_BLOCK_SIZE PAGE_SIZE
  74#define RESYNC_SECTORS (RESYNC_BLOCK_SIZE >> 9)
  75#define RESYNC_PAGES ((RESYNC_BLOCK_SIZE + PAGE_SIZE-1) / PAGE_SIZE)
  76#define RESYNC_WINDOW (2048*1024)
 
 
  77
  78static void * r1buf_pool_alloc(gfp_t gfp_flags, void *data)
  79{
  80	struct pool_info *pi = data;
  81	struct page *page;
  82	struct r1bio *r1_bio;
  83	struct bio *bio;
  84	int i, j;
 
 
  85
  86	r1_bio = r1bio_pool_alloc(gfp_flags, pi);
  87	if (!r1_bio)
  88		return NULL;
  89
 
 
 
 
 
  90	/*
  91	 * Allocate bios : 1 for reading, n-1 for writing
  92	 */
  93	for (j = pi->raid_disks ; j-- ; ) {
  94		bio = bio_kmalloc(gfp_flags, RESYNC_PAGES);
  95		if (!bio)
  96			goto out_free_bio;
 
  97		r1_bio->bios[j] = bio;
  98	}
  99	/*
 100	 * Allocate RESYNC_PAGES data pages and attach them to
 101	 * the first bio.
 102	 * If this is a user-requested check/repair, allocate
 103	 * RESYNC_PAGES for each bio.
 104	 */
 105	if (test_bit(MD_RECOVERY_REQUESTED, &pi->mddev->recovery))
 106		j = pi->raid_disks;
 107	else
 108		j = 1;
 109	while(j--) {
 
 
 110		bio = r1_bio->bios[j];
 111		for (i = 0; i < RESYNC_PAGES; i++) {
 112			page = alloc_page(gfp_flags);
 113			if (unlikely(!page))
 114				goto out_free_pages;
 
 
 
 
 115
 116			bio->bi_io_vec[i].bv_page = page;
 117			bio->bi_vcnt = i+1;
 118		}
 119	}
 120	/* If not user-requests, copy the page pointers to all bios */
 121	if (!test_bit(MD_RECOVERY_REQUESTED, &pi->mddev->recovery)) {
 122		for (i=0; i<RESYNC_PAGES ; i++)
 123			for (j=1; j<pi->raid_disks; j++)
 124				r1_bio->bios[j]->bi_io_vec[i].bv_page =
 125					r1_bio->bios[0]->bi_io_vec[i].bv_page;
 126	}
 127
 128	r1_bio->master_bio = NULL;
 129
 130	return r1_bio;
 131
 132out_free_pages:
 133	for (j=0 ; j < pi->raid_disks; j++)
 134		for (i=0; i < r1_bio->bios[j]->bi_vcnt ; i++)
 135			put_page(r1_bio->bios[j]->bi_io_vec[i].bv_page);
 136	j = -1;
 137out_free_bio:
 138	while (++j < pi->raid_disks)
 139		bio_put(r1_bio->bios[j]);
 140	r1bio_pool_free(r1_bio, data);
 
 
 
 
 
 141	return NULL;
 142}
 143
 144static void r1buf_pool_free(void *__r1_bio, void *data)
 145{
 146	struct pool_info *pi = data;
 147	int i,j;
 148	struct r1bio *r1bio = __r1_bio;
 
 
 
 
 
 
 
 
 149
 150	for (i = 0; i < RESYNC_PAGES; i++)
 151		for (j = pi->raid_disks; j-- ;) {
 152			if (j == 0 ||
 153			    r1bio->bios[j]->bi_io_vec[i].bv_page !=
 154			    r1bio->bios[0]->bi_io_vec[i].bv_page)
 155				safe_put_page(r1bio->bios[j]->bi_io_vec[i].bv_page);
 156		}
 157	for (i=0 ; i < pi->raid_disks; i++)
 158		bio_put(r1bio->bios[i]);
 159
 160	r1bio_pool_free(r1bio, data);
 161}
 162
 163static void put_all_bios(struct r1conf *conf, struct r1bio *r1_bio)
 164{
 165	int i;
 166
 167	for (i = 0; i < conf->raid_disks * 2; i++) {
 168		struct bio **bio = r1_bio->bios + i;
 169		if (!BIO_SPECIAL(*bio))
 170			bio_put(*bio);
 171		*bio = NULL;
 172	}
 173}
 174
 175static void free_r1bio(struct r1bio *r1_bio)
 176{
 177	struct r1conf *conf = r1_bio->mddev->private;
 178
 179	put_all_bios(conf, r1_bio);
 180	mempool_free(r1_bio, conf->r1bio_pool);
 181}
 182
 183static void put_buf(struct r1bio *r1_bio)
 184{
 185	struct r1conf *conf = r1_bio->mddev->private;
 
 186	int i;
 187
 188	for (i = 0; i < conf->raid_disks * 2; i++) {
 189		struct bio *bio = r1_bio->bios[i];
 190		if (bio->bi_end_io)
 191			rdev_dec_pending(conf->mirrors[i].rdev, r1_bio->mddev);
 192	}
 193
 194	mempool_free(r1_bio, conf->r1buf_pool);
 195
 196	lower_barrier(conf);
 197}
 198
 199static void reschedule_retry(struct r1bio *r1_bio)
 200{
 201	unsigned long flags;
 202	struct mddev *mddev = r1_bio->mddev;
 203	struct r1conf *conf = mddev->private;
 
 204
 
 205	spin_lock_irqsave(&conf->device_lock, flags);
 206	list_add(&r1_bio->retry_list, &conf->retry_list);
 207	conf->nr_queued ++;
 208	spin_unlock_irqrestore(&conf->device_lock, flags);
 209
 210	wake_up(&conf->wait_barrier);
 211	md_wakeup_thread(mddev->thread);
 212}
 213
 214/*
 215 * raid_end_bio_io() is called when we have finished servicing a mirrored
 216 * operation and are ready to return a success/failure code to the buffer
 217 * cache layer.
 218 */
 219static void call_bio_endio(struct r1bio *r1_bio)
 220{
 221	struct bio *bio = r1_bio->master_bio;
 222	int done;
 223	struct r1conf *conf = r1_bio->mddev->private;
 224
 225	if (bio->bi_phys_segments) {
 226		unsigned long flags;
 227		spin_lock_irqsave(&conf->device_lock, flags);
 228		bio->bi_phys_segments--;
 229		done = (bio->bi_phys_segments == 0);
 230		spin_unlock_irqrestore(&conf->device_lock, flags);
 231	} else
 232		done = 1;
 233
 234	if (!test_bit(R1BIO_Uptodate, &r1_bio->state))
 235		clear_bit(BIO_UPTODATE, &bio->bi_flags);
 236	if (done) {
 237		bio_endio(bio, 0);
 238		/*
 239		 * Wake up any possible resync thread that waits for the device
 240		 * to go idle.
 241		 */
 242		allow_barrier(conf);
 243	}
 244}
 245
 246static void raid_end_bio_io(struct r1bio *r1_bio)
 247{
 248	struct bio *bio = r1_bio->master_bio;
 
 249
 250	/* if nobody has done the final endio yet, do it now */
 251	if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) {
 252		pr_debug("raid1: sync end %s on sectors %llu-%llu\n",
 253			 (bio_data_dir(bio) == WRITE) ? "write" : "read",
 254			 (unsigned long long) bio->bi_sector,
 255			 (unsigned long long) bio->bi_sector +
 256			 (bio->bi_size >> 9) - 1);
 257
 258		call_bio_endio(r1_bio);
 259	}
 
 
 
 
 
 
 260	free_r1bio(r1_bio);
 261}
 262
 263/*
 264 * Update disk head position estimator based on IRQ completion info.
 265 */
 266static inline void update_head_pos(int disk, struct r1bio *r1_bio)
 267{
 268	struct r1conf *conf = r1_bio->mddev->private;
 269
 270	conf->mirrors[disk].head_position =
 271		r1_bio->sector + (r1_bio->sectors);
 272}
 273
 274/*
 275 * Find the disk number which triggered given bio
 276 */
 277static int find_bio_disk(struct r1bio *r1_bio, struct bio *bio)
 278{
 279	int mirror;
 280	struct r1conf *conf = r1_bio->mddev->private;
 281	int raid_disks = conf->raid_disks;
 282
 283	for (mirror = 0; mirror < raid_disks * 2; mirror++)
 284		if (r1_bio->bios[mirror] == bio)
 285			break;
 286
 287	BUG_ON(mirror == raid_disks * 2);
 288	update_head_pos(mirror, r1_bio);
 289
 290	return mirror;
 291}
 292
 293static void raid1_end_read_request(struct bio *bio, int error)
 294{
 295	int uptodate = test_bit(BIO_UPTODATE, &bio->bi_flags);
 296	struct r1bio *r1_bio = bio->bi_private;
 297	int mirror;
 298	struct r1conf *conf = r1_bio->mddev->private;
 
 299
 300	mirror = r1_bio->read_disk;
 301	/*
 302	 * this branch is our 'one mirror IO has finished' event handler:
 303	 */
 304	update_head_pos(mirror, r1_bio);
 305
 306	if (uptodate)
 307		set_bit(R1BIO_Uptodate, &r1_bio->state);
 
 
 
 
 
 308	else {
 309		/* If all other devices have failed, we want to return
 310		 * the error upwards rather than fail the last device.
 311		 * Here we redefine "uptodate" to mean "Don't want to retry"
 312		 */
 313		unsigned long flags;
 314		spin_lock_irqsave(&conf->device_lock, flags);
 315		if (r1_bio->mddev->degraded == conf->raid_disks ||
 316		    (r1_bio->mddev->degraded == conf->raid_disks-1 &&
 317		     !test_bit(Faulty, &conf->mirrors[mirror].rdev->flags)))
 318			uptodate = 1;
 319		spin_unlock_irqrestore(&conf->device_lock, flags);
 320	}
 321
 322	if (uptodate)
 323		raid_end_bio_io(r1_bio);
 324	else {
 
 325		/*
 326		 * oops, read error:
 327		 */
 328		char b[BDEVNAME_SIZE];
 329		printk_ratelimited(
 330			KERN_ERR "md/raid1:%s: %s: "
 331			"rescheduling sector %llu\n",
 332			mdname(conf->mddev),
 333			bdevname(conf->mirrors[mirror].rdev->bdev,
 334				 b),
 335			(unsigned long long)r1_bio->sector);
 336		set_bit(R1BIO_ReadError, &r1_bio->state);
 337		reschedule_retry(r1_bio);
 
 338	}
 339
 340	rdev_dec_pending(conf->mirrors[mirror].rdev, conf->mddev);
 341}
 342
 343static void close_write(struct r1bio *r1_bio)
 344{
 345	/* it really is the end of this request */
 346	if (test_bit(R1BIO_BehindIO, &r1_bio->state)) {
 347		/* free extra copy of the data pages */
 348		int i = r1_bio->behind_page_count;
 349		while (i--)
 350			safe_put_page(r1_bio->behind_bvecs[i].bv_page);
 351		kfree(r1_bio->behind_bvecs);
 352		r1_bio->behind_bvecs = NULL;
 353	}
 354	/* clear the bitmap if all writes complete successfully */
 355	bitmap_endwrite(r1_bio->mddev->bitmap, r1_bio->sector,
 356			r1_bio->sectors,
 357			!test_bit(R1BIO_Degraded, &r1_bio->state),
 358			test_bit(R1BIO_BehindIO, &r1_bio->state));
 359	md_write_end(r1_bio->mddev);
 360}
 361
 362static void r1_bio_write_done(struct r1bio *r1_bio)
 363{
 364	if (!atomic_dec_and_test(&r1_bio->remaining))
 365		return;
 366
 367	if (test_bit(R1BIO_WriteError, &r1_bio->state))
 368		reschedule_retry(r1_bio);
 369	else {
 370		close_write(r1_bio);
 371		if (test_bit(R1BIO_MadeGood, &r1_bio->state))
 372			reschedule_retry(r1_bio);
 373		else
 374			raid_end_bio_io(r1_bio);
 375	}
 376}
 377
 378static void raid1_end_write_request(struct bio *bio, int error)
 379{
 380	int uptodate = test_bit(BIO_UPTODATE, &bio->bi_flags);
 381	struct r1bio *r1_bio = bio->bi_private;
 382	int mirror, behind = test_bit(R1BIO_BehindIO, &r1_bio->state);
 383	struct r1conf *conf = r1_bio->mddev->private;
 384	struct bio *to_put = NULL;
 
 
 
 
 
 385
 386	mirror = find_bio_disk(r1_bio, bio);
 387
 388	/*
 389	 * 'one mirror IO has finished' event handler:
 390	 */
 391	if (!uptodate) {
 392		set_bit(WriteErrorSeen,
 393			&conf->mirrors[mirror].rdev->flags);
 394		if (!test_and_set_bit(WantReplacement,
 395				      &conf->mirrors[mirror].rdev->flags))
 396			set_bit(MD_RECOVERY_NEEDED, &
 397				conf->mddev->recovery);
 398
 399		set_bit(R1BIO_WriteError, &r1_bio->state);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 400	} else {
 401		/*
 402		 * Set R1BIO_Uptodate in our master bio, so that we
 403		 * will return a good error code for to the higher
 404		 * levels even if IO on some other mirrored buffer
 405		 * fails.
 406		 *
 407		 * The 'master' represents the composite IO operation
 408		 * to user-side. So if something waits for IO, then it
 409		 * will wait for the 'master' bio.
 410		 */
 411		sector_t first_bad;
 412		int bad_sectors;
 413
 414		r1_bio->bios[mirror] = NULL;
 415		to_put = bio;
 416		set_bit(R1BIO_Uptodate, &r1_bio->state);
 
 
 
 
 
 
 
 
 
 
 417
 418		/* Maybe we can clear some bad blocks. */
 419		if (is_badblock(conf->mirrors[mirror].rdev,
 420				r1_bio->sector, r1_bio->sectors,
 421				&first_bad, &bad_sectors)) {
 422			r1_bio->bios[mirror] = IO_MADE_GOOD;
 423			set_bit(R1BIO_MadeGood, &r1_bio->state);
 424		}
 425	}
 426
 427	if (behind) {
 428		if (test_bit(WriteMostly, &conf->mirrors[mirror].rdev->flags))
 
 
 429			atomic_dec(&r1_bio->behind_remaining);
 430
 431		/*
 432		 * In behind mode, we ACK the master bio once the I/O
 433		 * has safely reached all non-writemostly
 434		 * disks. Setting the Returned bit ensures that this
 435		 * gets done only once -- we don't ever want to return
 436		 * -EIO here, instead we'll wait
 437		 */
 438		if (atomic_read(&r1_bio->behind_remaining) >= (atomic_read(&r1_bio->remaining)-1) &&
 439		    test_bit(R1BIO_Uptodate, &r1_bio->state)) {
 440			/* Maybe we can return now */
 441			if (!test_and_set_bit(R1BIO_Returned, &r1_bio->state)) {
 442				struct bio *mbio = r1_bio->master_bio;
 443				pr_debug("raid1: behind end write sectors"
 444					 " %llu-%llu\n",
 445					 (unsigned long long) mbio->bi_sector,
 446					 (unsigned long long) mbio->bi_sector +
 447					 (mbio->bi_size >> 9) - 1);
 448				call_bio_endio(r1_bio);
 449			}
 450		}
 451	}
 
 452	if (r1_bio->bios[mirror] == NULL)
 453		rdev_dec_pending(conf->mirrors[mirror].rdev,
 454				 conf->mddev);
 455
 456	/*
 457	 * Let's see if all mirrored write operations have finished
 458	 * already.
 459	 */
 460	r1_bio_write_done(r1_bio);
 461
 462	if (to_put)
 463		bio_put(to_put);
 464}
 465
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 466
 467/*
 468 * This routine returns the disk from which the requested read should
 469 * be done. There is a per-array 'next expected sequential IO' sector
 470 * number - if this matches on the next IO then we use the last disk.
 471 * There is also a per-disk 'last know head position' sector that is
 472 * maintained from IRQ contexts, both the normal and the resync IO
 473 * completion handlers update this position correctly. If there is no
 474 * perfect sequential match then we pick the disk whose head is closest.
 475 *
 476 * If there are 2 mirrors in the same 2 devices, performance degrades
 477 * because position is mirror, not device based.
 478 *
 479 * The rdev for the device selected will have nr_pending incremented.
 480 */
 481static int read_balance(struct r1conf *conf, struct r1bio *r1_bio, int *max_sectors)
 482{
 483	const sector_t this_sector = r1_bio->sector;
 484	int sectors;
 485	int best_good_sectors;
 486	int start_disk;
 487	int best_disk;
 488	int i;
 489	sector_t best_dist;
 
 490	struct md_rdev *rdev;
 491	int choose_first;
 
 492
 493	rcu_read_lock();
 494	/*
 495	 * Check if we can balance. We can balance on the whole
 496	 * device if no resync is going on, or below the resync window.
 497	 * We take the first readable disk when above the resync window.
 498	 */
 499 retry:
 500	sectors = r1_bio->sectors;
 501	best_disk = -1;
 
 502	best_dist = MaxSector;
 
 
 503	best_good_sectors = 0;
 504
 505	if (conf->mddev->recovery_cp < MaxSector &&
 506	    (this_sector + sectors >= conf->next_resync)) {
 
 
 
 
 
 507		choose_first = 1;
 508		start_disk = 0;
 509	} else {
 510		choose_first = 0;
 511		start_disk = conf->last_used;
 512	}
 513
 514	for (i = 0 ; i < conf->raid_disks * 2 ; i++) {
 515		sector_t dist;
 516		sector_t first_bad;
 517		int bad_sectors;
 518
 519		int disk = start_disk + i;
 520		if (disk >= conf->raid_disks * 2)
 521			disk -= conf->raid_disks * 2;
 522
 523		rdev = rcu_dereference(conf->mirrors[disk].rdev);
 524		if (r1_bio->bios[disk] == IO_BLOCKED
 525		    || rdev == NULL
 526		    || test_bit(Unmerged, &rdev->flags)
 527		    || test_bit(Faulty, &rdev->flags))
 528			continue;
 529		if (!test_bit(In_sync, &rdev->flags) &&
 530		    rdev->recovery_offset < this_sector + sectors)
 531			continue;
 532		if (test_bit(WriteMostly, &rdev->flags)) {
 533			/* Don't balance among write-mostly, just
 534			 * use the first as a last resort */
 535			if (best_disk < 0) {
 536				if (is_badblock(rdev, this_sector, sectors,
 537						&first_bad, &bad_sectors)) {
 538					if (first_bad < this_sector)
 539						/* Cannot use this */
 540						continue;
 541					best_good_sectors = first_bad - this_sector;
 542				} else
 543					best_good_sectors = sectors;
 544				best_disk = disk;
 
 545			}
 546			continue;
 547		}
 548		/* This is a reasonable device to use.  It might
 549		 * even be best.
 550		 */
 551		if (is_badblock(rdev, this_sector, sectors,
 552				&first_bad, &bad_sectors)) {
 553			if (best_dist < MaxSector)
 554				/* already have a better device */
 555				continue;
 556			if (first_bad <= this_sector) {
 557				/* cannot read here. If this is the 'primary'
 558				 * device, then we must not read beyond
 559				 * bad_sectors from another device..
 560				 */
 561				bad_sectors -= (this_sector - first_bad);
 562				if (choose_first && sectors > bad_sectors)
 563					sectors = bad_sectors;
 564				if (best_good_sectors > sectors)
 565					best_good_sectors = sectors;
 566
 567			} else {
 568				sector_t good_sectors = first_bad - this_sector;
 569				if (good_sectors > best_good_sectors) {
 570					best_good_sectors = good_sectors;
 571					best_disk = disk;
 572				}
 573				if (choose_first)
 574					break;
 575			}
 576			continue;
 577		} else
 
 
 578			best_good_sectors = sectors;
 
 579
 
 
 
 
 
 
 
 580		dist = abs(this_sector - conf->mirrors[disk].head_position);
 581		if (choose_first
 582		    /* Don't change to another disk for sequential reads */
 583		    || conf->next_seq_sect == this_sector
 584		    || dist == 0
 585		    /* If device is idle, use it */
 586		    || atomic_read(&rdev->nr_pending) == 0) {
 587			best_disk = disk;
 588			break;
 589		}
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 590		if (dist < best_dist) {
 591			best_dist = dist;
 592			best_disk = disk;
 593		}
 594	}
 595
 
 
 
 
 
 
 
 
 
 
 
 
 
 596	if (best_disk >= 0) {
 597		rdev = rcu_dereference(conf->mirrors[best_disk].rdev);
 598		if (!rdev)
 599			goto retry;
 600		atomic_inc(&rdev->nr_pending);
 601		if (test_bit(Faulty, &rdev->flags)) {
 602			/* cannot risk returning a device that failed
 603			 * before we inc'ed nr_pending
 604			 */
 605			rdev_dec_pending(rdev, conf->mddev);
 606			goto retry;
 607		}
 608		sectors = best_good_sectors;
 609		conf->next_seq_sect = this_sector + sectors;
 610		conf->last_used = best_disk;
 
 
 
 611	}
 612	rcu_read_unlock();
 613	*max_sectors = sectors;
 614
 615	return best_disk;
 616}
 617
 618static int raid1_mergeable_bvec(struct request_queue *q,
 619				struct bvec_merge_data *bvm,
 620				struct bio_vec *biovec)
 621{
 622	struct mddev *mddev = q->queuedata;
 623	struct r1conf *conf = mddev->private;
 624	sector_t sector = bvm->bi_sector + get_start_sect(bvm->bi_bdev);
 625	int max = biovec->bv_len;
 626
 627	if (mddev->merge_check_needed) {
 628		int disk;
 629		rcu_read_lock();
 630		for (disk = 0; disk < conf->raid_disks * 2; disk++) {
 631			struct md_rdev *rdev = rcu_dereference(
 632				conf->mirrors[disk].rdev);
 633			if (rdev && !test_bit(Faulty, &rdev->flags)) {
 634				struct request_queue *q =
 635					bdev_get_queue(rdev->bdev);
 636				if (q->merge_bvec_fn) {
 637					bvm->bi_sector = sector +
 638						rdev->data_offset;
 639					bvm->bi_bdev = rdev->bdev;
 640					max = min(max, q->merge_bvec_fn(
 641							  q, bvm, biovec));
 642				}
 643			}
 644		}
 645		rcu_read_unlock();
 646	}
 647	return max;
 648
 649}
 650
 651int md_raid1_congested(struct mddev *mddev, int bits)
 652{
 653	struct r1conf *conf = mddev->private;
 654	int i, ret = 0;
 655
 656	if ((bits & (1 << BDI_async_congested)) &&
 657	    conf->pending_count >= max_queued_requests)
 658		return 1;
 659
 660	rcu_read_lock();
 661	for (i = 0; i < conf->raid_disks * 2; i++) {
 662		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
 663		if (rdev && !test_bit(Faulty, &rdev->flags)) {
 664			struct request_queue *q = bdev_get_queue(rdev->bdev);
 665
 666			BUG_ON(!q);
 667
 668			/* Note the '|| 1' - when read_balance prefers
 669			 * non-congested targets, it can be removed
 670			 */
 671			if ((bits & (1<<BDI_async_congested)) || 1)
 672				ret |= bdi_congested(&q->backing_dev_info, bits);
 673			else
 674				ret &= bdi_congested(&q->backing_dev_info, bits);
 675		}
 676	}
 677	rcu_read_unlock();
 678	return ret;
 679}
 680EXPORT_SYMBOL_GPL(md_raid1_congested);
 681
 682static int raid1_congested(void *data, int bits)
 683{
 684	struct mddev *mddev = data;
 685
 686	return mddev_congested(mddev, bits) ||
 687		md_raid1_congested(mddev, bits);
 688}
 689
 690static void flush_pending_writes(struct r1conf *conf)
 691{
 692	/* Any writes that have been queued but are awaiting
 693	 * bitmap updates get flushed here.
 694	 */
 695	spin_lock_irq(&conf->device_lock);
 696
 697	if (conf->pending_bio_list.head) {
 
 698		struct bio *bio;
 
 699		bio = bio_list_get(&conf->pending_bio_list);
 700		conf->pending_count = 0;
 701		spin_unlock_irq(&conf->device_lock);
 702		/* flush any pending bitmap writes to
 703		 * disk before proceeding w/ I/O */
 704		bitmap_unplug(conf->mddev->bitmap);
 705		wake_up(&conf->wait_barrier);
 706
 707		while (bio) { /* submit pending writes */
 708			struct bio *next = bio->bi_next;
 709			bio->bi_next = NULL;
 710			generic_make_request(bio);
 711			bio = next;
 712		}
 
 
 
 
 
 
 
 713	} else
 714		spin_unlock_irq(&conf->device_lock);
 715}
 716
 717/* Barriers....
 718 * Sometimes we need to suspend IO while we do something else,
 719 * either some resync/recovery, or reconfigure the array.
 720 * To do this we raise a 'barrier'.
 721 * The 'barrier' is a counter that can be raised multiple times
 722 * to count how many activities are happening which preclude
 723 * normal IO.
 724 * We can only raise the barrier if there is no pending IO.
 725 * i.e. if nr_pending == 0.
 726 * We choose only to raise the barrier if no-one is waiting for the
 727 * barrier to go down.  This means that as soon as an IO request
 728 * is ready, no other operations which require a barrier will start
 729 * until the IO request has had a chance.
 730 *
 731 * So: regular IO calls 'wait_barrier'.  When that returns there
 732 *    is no backgroup IO happening,  It must arrange to call
 733 *    allow_barrier when it has finished its IO.
 734 * backgroup IO calls must call raise_barrier.  Once that returns
 735 *    there is no normal IO happeing.  It must arrange to call
 736 *    lower_barrier when the particular background IO completes.
 
 
 
 737 */
 738#define RESYNC_DEPTH 32
 
 
 739
 740static void raise_barrier(struct r1conf *conf)
 741{
 742	spin_lock_irq(&conf->resync_lock);
 743
 744	/* Wait until no block IO is waiting */
 745	wait_event_lock_irq(conf->wait_barrier, !conf->nr_waiting,
 746			    conf->resync_lock, );
 
 747
 748	/* block any new IO from starting */
 749	conf->barrier++;
 750
 751	/* Now wait for all pending IO to complete */
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 752	wait_event_lock_irq(conf->wait_barrier,
 753			    !conf->nr_pending && conf->barrier < RESYNC_DEPTH,
 754			    conf->resync_lock, );
 
 
 
 
 
 
 
 
 
 
 755
 
 756	spin_unlock_irq(&conf->resync_lock);
 
 
 
 
 
 
 
 
 
 
 
 
 
 757}
 758
 759static void lower_barrier(struct r1conf *conf)
 760{
 761	unsigned long flags;
 762	BUG_ON(conf->barrier <= 0);
 763	spin_lock_irqsave(&conf->resync_lock, flags);
 764	conf->barrier--;
 765	spin_unlock_irqrestore(&conf->resync_lock, flags);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 766	wake_up(&conf->wait_barrier);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 767}
 768
 769static void wait_barrier(struct r1conf *conf)
 770{
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 771	spin_lock_irq(&conf->resync_lock);
 772	if (conf->barrier) {
 773		conf->nr_waiting++;
 774		/* Wait for the barrier to drop.
 775		 * However if there are already pending
 776		 * requests (preventing the barrier from
 777		 * rising completely), and the
 778		 * pre-process bio queue isn't empty,
 779		 * then don't wait, as we need to empty
 780		 * that queue to get the nr_pending
 781		 * count down.
 782		 */
 
 
 
 783		wait_event_lock_irq(conf->wait_barrier,
 784				    !conf->barrier ||
 785				    (conf->nr_pending &&
 786				     current->bio_list &&
 787				     !bio_list_empty(current->bio_list)),
 788				    conf->resync_lock,
 789			);
 790		conf->nr_waiting--;
 791	}
 792	conf->nr_pending++;
 
 793	spin_unlock_irq(&conf->resync_lock);
 
 794}
 795
 796static void allow_barrier(struct r1conf *conf)
 797{
 798	unsigned long flags;
 799	spin_lock_irqsave(&conf->resync_lock, flags);
 800	conf->nr_pending--;
 801	spin_unlock_irqrestore(&conf->resync_lock, flags);
 
 
 
 
 802	wake_up(&conf->wait_barrier);
 803}
 804
 805static void freeze_array(struct r1conf *conf)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 806{
 807	/* stop syncio and normal IO and wait for everything to
 808	 * go quite.
 809	 * We increment barrier and nr_waiting, and then
 810	 * wait until nr_pending match nr_queued+1
 811	 * This is called in the context of one normal IO request
 812	 * that has failed. Thus any sync request that might be pending
 813	 * will be blocked by nr_pending, and we need to wait for
 814	 * pending IO requests to complete or be queued for re-try.
 815	 * Thus the number queued (nr_queued) plus this request (1)
 816	 * must match the number of pending IOs (nr_pending) before
 817	 * we continue.
 
 
 
 
 
 
 
 
 
 
 
 818	 */
 819	spin_lock_irq(&conf->resync_lock);
 820	conf->barrier++;
 821	conf->nr_waiting++;
 822	wait_event_lock_irq(conf->wait_barrier,
 823			    conf->nr_pending == conf->nr_queued+1,
 824			    conf->resync_lock,
 825			    flush_pending_writes(conf));
 
 826	spin_unlock_irq(&conf->resync_lock);
 827}
 828static void unfreeze_array(struct r1conf *conf)
 829{
 830	/* reverse the effect of the freeze */
 831	spin_lock_irq(&conf->resync_lock);
 832	conf->barrier--;
 833	conf->nr_waiting--;
 834	wake_up(&conf->wait_barrier);
 835	spin_unlock_irq(&conf->resync_lock);
 836}
 837
 838
 839/* duplicate the data pages for behind I/O 
 840 */
 841static void alloc_behind_pages(struct bio *bio, struct r1bio *r1_bio)
 842{
 843	int i;
 844	struct bio_vec *bvec;
 845	struct bio_vec *bvecs = kzalloc(bio->bi_vcnt * sizeof(struct bio_vec),
 846					GFP_NOIO);
 847	if (unlikely(!bvecs))
 
 
 
 848		return;
 849
 850	bio_for_each_segment(bvec, bio, i) {
 851		bvecs[i] = *bvec;
 852		bvecs[i].bv_page = alloc_page(GFP_NOIO);
 853		if (unlikely(!bvecs[i].bv_page))
 854			goto do_sync_io;
 855		memcpy(kmap(bvecs[i].bv_page) + bvec->bv_offset,
 856		       kmap(bvec->bv_page) + bvec->bv_offset, bvec->bv_len);
 857		kunmap(bvecs[i].bv_page);
 858		kunmap(bvec->bv_page);
 
 
 
 
 
 
 
 
 
 859	}
 860	r1_bio->behind_bvecs = bvecs;
 861	r1_bio->behind_page_count = bio->bi_vcnt;
 
 
 862	set_bit(R1BIO_BehindIO, &r1_bio->state);
 
 863	return;
 864
 865do_sync_io:
 866	for (i = 0; i < bio->bi_vcnt; i++)
 867		if (bvecs[i].bv_page)
 868			put_page(bvecs[i].bv_page);
 869	kfree(bvecs);
 870	pr_debug("%dB behind alloc failed, doing sync I/O\n", bio->bi_size);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 871}
 872
 873static void make_request(struct mddev *mddev, struct bio * bio)
 
 
 
 
 
 
 
 
 
 
 874{
 875	struct r1conf *conf = mddev->private;
 876	struct mirror_info *mirror;
 877	struct r1bio *r1_bio;
 
 
 
 
 
 
 
 
 
 
 
 
 
 878	struct bio *read_bio;
 879	int i, disks;
 880	struct bitmap *bitmap;
 881	unsigned long flags;
 882	const int rw = bio_data_dir(bio);
 883	const unsigned long do_sync = (bio->bi_rw & REQ_SYNC);
 884	const unsigned long do_flush_fua = (bio->bi_rw & (REQ_FLUSH | REQ_FUA));
 885	struct md_rdev *blocked_rdev;
 886	int first_clone;
 887	int sectors_handled;
 888	int max_sectors;
 
 
 
 889
 890	/*
 891	 * Register the new request and wait if the reconstruction
 892	 * thread has put up a bar for new requests.
 893	 * Continue immediately if no resync is active currently.
 894	 */
 
 895
 896	md_write_start(mddev, bio); /* wait on superblock update early */
 
 
 
 
 
 
 
 
 
 
 897
 898	if (bio_data_dir(bio) == WRITE &&
 899	    bio->bi_sector + bio->bi_size/512 > mddev->suspend_lo &&
 900	    bio->bi_sector < mddev->suspend_hi) {
 901		/* As the suspend_* range is controlled by
 902		 * userspace, we want an interruptible
 903		 * wait.
 904		 */
 905		DEFINE_WAIT(w);
 906		for (;;) {
 907			flush_signals(current);
 908			prepare_to_wait(&conf->wait_barrier,
 909					&w, TASK_INTERRUPTIBLE);
 910			if (bio->bi_sector + bio->bi_size/512 <= mddev->suspend_lo ||
 911			    bio->bi_sector >= mddev->suspend_hi)
 912				break;
 913			schedule();
 914		}
 915		finish_wait(&conf->wait_barrier, &w);
 916	}
 917
 918	wait_barrier(conf);
 919
 920	bitmap = mddev->bitmap;
 
 
 921
 922	/*
 923	 * make_request() can abort the operation when READA is being
 924	 * used and no empty request is available.
 925	 *
 926	 */
 927	r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
 928
 929	r1_bio->master_bio = bio;
 930	r1_bio->sectors = bio->bi_size >> 9;
 931	r1_bio->state = 0;
 932	r1_bio->mddev = mddev;
 933	r1_bio->sector = bio->bi_sector;
 
 
 
 
 
 
 
 934
 935	/* We might need to issue multiple reads to different
 936	 * devices if there are bad blocks around, so we keep
 937	 * track of the number of reads in bio->bi_phys_segments.
 938	 * If this is 0, there is only one r1_bio and no locking
 939	 * will be needed when requests complete.  If it is
 940	 * non-zero, then it is the number of not-completed requests.
 941	 */
 942	bio->bi_phys_segments = 0;
 943	clear_bit(BIO_SEG_VALID, &bio->bi_flags);
 944
 945	if (rw == READ) {
 
 946		/*
 947		 * read balancing logic:
 
 948		 */
 949		int rdisk;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 950
 951read_again:
 952		rdisk = read_balance(conf, r1_bio, &max_sectors);
 953
 954		if (rdisk < 0) {
 955			/* couldn't find anywhere to read from */
 956			raid_end_bio_io(r1_bio);
 957			return;
 958		}
 959		mirror = conf->mirrors + rdisk;
 
 
 
 
 
 
 
 960
 961		if (test_bit(WriteMostly, &mirror->rdev->flags) &&
 962		    bitmap) {
 963			/* Reading from a write-mostly device must
 964			 * take care not to over-take any writes
 965			 * that are 'behind'
 966			 */
 967			wait_event(bitmap->behind_wait,
 968				   atomic_read(&bitmap->behind_writes) == 0);
 969		}
 970		r1_bio->read_disk = rdisk;
 971
 972		read_bio = bio_clone_mddev(bio, GFP_NOIO, mddev);
 973		md_trim_bio(read_bio, r1_bio->sector - bio->bi_sector,
 974			    max_sectors);
 975
 976		r1_bio->bios[rdisk] = read_bio;
 977
 978		read_bio->bi_sector = r1_bio->sector + mirror->rdev->data_offset;
 979		read_bio->bi_bdev = mirror->rdev->bdev;
 980		read_bio->bi_end_io = raid1_end_read_request;
 981		read_bio->bi_rw = READ | do_sync;
 982		read_bio->bi_private = r1_bio;
 983
 984		if (max_sectors < r1_bio->sectors) {
 985			/* could not read all from this device, so we will
 986			 * need another r1_bio.
 987			 */
 988
 989			sectors_handled = (r1_bio->sector + max_sectors
 990					   - bio->bi_sector);
 991			r1_bio->sectors = max_sectors;
 992			spin_lock_irq(&conf->device_lock);
 993			if (bio->bi_phys_segments == 0)
 994				bio->bi_phys_segments = 2;
 995			else
 996				bio->bi_phys_segments++;
 997			spin_unlock_irq(&conf->device_lock);
 998			/* Cannot call generic_make_request directly
 999			 * as that will be queued in __make_request
1000			 * and subsequent mempool_alloc might block waiting
1001			 * for it.  So hand bio over to raid1d.
1002			 */
1003			reschedule_retry(r1_bio);
1004
1005			r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
 
 
1006
1007			r1_bio->master_bio = bio;
1008			r1_bio->sectors = (bio->bi_size >> 9) - sectors_handled;
1009			r1_bio->state = 0;
1010			r1_bio->mddev = mddev;
1011			r1_bio->sector = bio->bi_sector + sectors_handled;
1012			goto read_again;
1013		} else
1014			generic_make_request(read_bio);
1015		return;
 
 
 
 
 
 
1016	}
1017
1018	/*
1019	 * WRITE:
 
 
1020	 */
1021	if (conf->pending_count >= max_queued_requests) {
1022		md_wakeup_thread(mddev->thread);
1023		wait_event(conf->wait_barrier,
1024			   conf->pending_count < max_queued_requests);
1025	}
 
 
 
 
1026	/* first select target devices under rcu_lock and
1027	 * inc refcount on their rdev.  Record them by setting
1028	 * bios[x] to bio
1029	 * If there are known/acknowledged bad blocks on any device on
1030	 * which we have seen a write error, we want to avoid writing those
1031	 * blocks.
1032	 * This potentially requires several writes to write around
1033	 * the bad blocks.  Each set of writes gets it's own r1bio
1034	 * with a set of bios attached.
1035	 */
1036
1037	disks = conf->raid_disks * 2;
1038 retry_write:
1039	blocked_rdev = NULL;
1040	rcu_read_lock();
1041	max_sectors = r1_bio->sectors;
1042	for (i = 0;  i < disks; i++) {
1043		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
 
 
 
 
 
 
 
 
 
1044		if (rdev && unlikely(test_bit(Blocked, &rdev->flags))) {
1045			atomic_inc(&rdev->nr_pending);
1046			blocked_rdev = rdev;
1047			break;
1048		}
1049		r1_bio->bios[i] = NULL;
1050		if (!rdev || test_bit(Faulty, &rdev->flags)
1051		    || test_bit(Unmerged, &rdev->flags)) {
1052			if (i < conf->raid_disks)
1053				set_bit(R1BIO_Degraded, &r1_bio->state);
1054			continue;
1055		}
1056
1057		atomic_inc(&rdev->nr_pending);
1058		if (test_bit(WriteErrorSeen, &rdev->flags)) {
1059			sector_t first_bad;
1060			int bad_sectors;
1061			int is_bad;
1062
1063			is_bad = is_badblock(rdev, r1_bio->sector,
1064					     max_sectors,
1065					     &first_bad, &bad_sectors);
1066			if (is_bad < 0) {
1067				/* mustn't write here until the bad block is
1068				 * acknowledged*/
1069				set_bit(BlockedBadBlocks, &rdev->flags);
1070				blocked_rdev = rdev;
1071				break;
1072			}
1073			if (is_bad && first_bad <= r1_bio->sector) {
1074				/* Cannot write here at all */
1075				bad_sectors -= (r1_bio->sector - first_bad);
1076				if (bad_sectors < max_sectors)
1077					/* mustn't write more than bad_sectors
1078					 * to other devices yet
1079					 */
1080					max_sectors = bad_sectors;
1081				rdev_dec_pending(rdev, mddev);
1082				/* We don't set R1BIO_Degraded as that
1083				 * only applies if the disk is
1084				 * missing, so it might be re-added,
1085				 * and we want to know to recover this
1086				 * chunk.
1087				 * In this case the device is here,
1088				 * and the fact that this chunk is not
1089				 * in-sync is recorded in the bad
1090				 * block log
1091				 */
1092				continue;
1093			}
1094			if (is_bad) {
1095				int good_sectors = first_bad - r1_bio->sector;
1096				if (good_sectors < max_sectors)
1097					max_sectors = good_sectors;
1098			}
1099		}
1100		r1_bio->bios[i] = bio;
1101	}
1102	rcu_read_unlock();
1103
1104	if (unlikely(blocked_rdev)) {
1105		/* Wait for this device to become unblocked */
1106		int j;
1107
1108		for (j = 0; j < i; j++)
1109			if (r1_bio->bios[j])
1110				rdev_dec_pending(conf->mirrors[j].rdev, mddev);
1111		r1_bio->state = 0;
1112		allow_barrier(conf);
 
 
 
 
 
 
1113		md_wait_for_blocked_rdev(blocked_rdev, mddev);
1114		wait_barrier(conf);
1115		goto retry_write;
1116	}
1117
1118	if (max_sectors < r1_bio->sectors) {
1119		/* We are splitting this write into multiple parts, so
1120		 * we need to prepare for allocating another r1_bio.
1121		 */
 
 
 
 
 
 
 
 
 
 
 
 
1122		r1_bio->sectors = max_sectors;
1123		spin_lock_irq(&conf->device_lock);
1124		if (bio->bi_phys_segments == 0)
1125			bio->bi_phys_segments = 2;
1126		else
1127			bio->bi_phys_segments++;
1128		spin_unlock_irq(&conf->device_lock);
1129	}
1130	sectors_handled = r1_bio->sector + max_sectors - bio->bi_sector;
1131
 
 
1132	atomic_set(&r1_bio->remaining, 1);
1133	atomic_set(&r1_bio->behind_remaining, 0);
1134
1135	first_clone = 1;
 
1136	for (i = 0; i < disks; i++) {
1137		struct bio *mbio;
 
1138		if (!r1_bio->bios[i])
1139			continue;
1140
1141		mbio = bio_clone_mddev(bio, GFP_NOIO, mddev);
1142		md_trim_bio(mbio, r1_bio->sector - bio->bi_sector, max_sectors);
1143
1144		if (first_clone) {
1145			/* do behind I/O ?
1146			 * Not if there are too many, or cannot
1147			 * allocate memory, or a reader on WriteMostly
1148			 * is waiting for behind writes to flush */
1149			if (bitmap &&
 
1150			    (atomic_read(&bitmap->behind_writes)
1151			     < mddev->bitmap_info.max_write_behind) &&
1152			    !waitqueue_active(&bitmap->behind_wait))
1153				alloc_behind_pages(mbio, r1_bio);
 
1154
1155			bitmap_startwrite(bitmap, r1_bio->sector,
1156					  r1_bio->sectors,
1157					  test_bit(R1BIO_BehindIO,
1158						   &r1_bio->state));
1159			first_clone = 0;
1160		}
1161		if (r1_bio->behind_bvecs) {
1162			struct bio_vec *bvec;
1163			int j;
1164
1165			/* Yes, I really want the '__' version so that
1166			 * we clear any unused pointer in the io_vec, rather
1167			 * than leave them unchanged.  This is important
1168			 * because when we come to free the pages, we won't
1169			 * know the original bi_idx, so we just free
1170			 * them all
1171			 */
1172			__bio_for_each_segment(bvec, mbio, j, 0)
1173				bvec->bv_page = r1_bio->behind_bvecs[j].bv_page;
1174			if (test_bit(WriteMostly, &conf->mirrors[i].rdev->flags))
1175				atomic_inc(&r1_bio->behind_remaining);
 
 
 
 
 
 
1176		}
1177
1178		r1_bio->bios[i] = mbio;
1179
1180		mbio->bi_sector	= (r1_bio->sector +
1181				   conf->mirrors[i].rdev->data_offset);
1182		mbio->bi_bdev = conf->mirrors[i].rdev->bdev;
1183		mbio->bi_end_io	= raid1_end_write_request;
1184		mbio->bi_rw = WRITE | do_flush_fua | do_sync;
 
 
 
 
1185		mbio->bi_private = r1_bio;
1186
1187		atomic_inc(&r1_bio->remaining);
1188		spin_lock_irqsave(&conf->device_lock, flags);
1189		bio_list_add(&conf->pending_bio_list, mbio);
1190		conf->pending_count++;
1191		spin_unlock_irqrestore(&conf->device_lock, flags);
1192		if (!mddev_check_plugged(mddev))
 
 
 
 
 
 
 
 
 
 
 
 
 
1193			md_wakeup_thread(mddev->thread);
1194	}
1195	/* Mustn't call r1_bio_write_done before this next test,
1196	 * as it could result in the bio being freed.
1197	 */
1198	if (sectors_handled < (bio->bi_size >> 9)) {
1199		r1_bio_write_done(r1_bio);
1200		/* We need another r1_bio.  It has already been counted
1201		 * in bio->bi_phys_segments
1202		 */
1203		r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
1204		r1_bio->master_bio = bio;
1205		r1_bio->sectors = (bio->bi_size >> 9) - sectors_handled;
1206		r1_bio->state = 0;
1207		r1_bio->mddev = mddev;
1208		r1_bio->sector = bio->bi_sector + sectors_handled;
1209		goto retry_write;
1210	}
1211
1212	r1_bio_write_done(r1_bio);
1213
1214	/* In case raid1d snuck in to freeze_array */
1215	wake_up(&conf->wait_barrier);
1216}
1217
1218static void status(struct seq_file *seq, struct mddev *mddev)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1219{
1220	struct r1conf *conf = mddev->private;
1221	int i;
1222
1223	seq_printf(seq, " [%d/%d] [", conf->raid_disks,
1224		   conf->raid_disks - mddev->degraded);
1225	rcu_read_lock();
1226	for (i = 0; i < conf->raid_disks; i++) {
1227		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
1228		seq_printf(seq, "%s",
1229			   rdev && test_bit(In_sync, &rdev->flags) ? "U" : "_");
1230	}
1231	rcu_read_unlock();
1232	seq_printf(seq, "]");
1233}
1234
1235
1236static void error(struct mddev *mddev, struct md_rdev *rdev)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1237{
1238	char b[BDEVNAME_SIZE];
1239	struct r1conf *conf = mddev->private;
 
1240
1241	/*
1242	 * If it is not operational, then we have already marked it as dead
1243	 * else if it is the last working disks, ignore the error, let the
1244	 * next level up know.
1245	 * else mark the drive as failed
1246	 */
1247	if (test_bit(In_sync, &rdev->flags)
1248	    && (conf->raid_disks - mddev->degraded) == 1) {
1249		/*
1250		 * Don't fail the drive, act as though we were just a
1251		 * normal single drive.
1252		 * However don't try a recovery from this drive as
1253		 * it is very likely to fail.
1254		 */
1255		conf->recovery_disabled = mddev->recovery_disabled;
1256		return;
1257	}
1258	set_bit(Blocked, &rdev->flags);
1259	if (test_and_clear_bit(In_sync, &rdev->flags)) {
1260		unsigned long flags;
1261		spin_lock_irqsave(&conf->device_lock, flags);
1262		mddev->degraded++;
1263		set_bit(Faulty, &rdev->flags);
1264		spin_unlock_irqrestore(&conf->device_lock, flags);
1265		/*
1266		 * if recovery is running, make sure it aborts.
1267		 */
1268		set_bit(MD_RECOVERY_INTR, &mddev->recovery);
1269	} else
1270		set_bit(Faulty, &rdev->flags);
1271	set_bit(MD_CHANGE_DEVS, &mddev->flags);
1272	printk(KERN_ALERT
1273	       "md/raid1:%s: Disk failure on %s, disabling device.\n"
1274	       "md/raid1:%s: Operation continuing on %d devices.\n",
1275	       mdname(mddev), bdevname(rdev->bdev, b),
1276	       mdname(mddev), conf->raid_disks - mddev->degraded);
1277}
1278
1279static void print_conf(struct r1conf *conf)
1280{
1281	int i;
1282
1283	printk(KERN_DEBUG "RAID1 conf printout:\n");
1284	if (!conf) {
1285		printk(KERN_DEBUG "(!conf)\n");
1286		return;
1287	}
1288	printk(KERN_DEBUG " --- wd:%d rd:%d\n", conf->raid_disks - conf->mddev->degraded,
1289		conf->raid_disks);
1290
1291	rcu_read_lock();
1292	for (i = 0; i < conf->raid_disks; i++) {
1293		char b[BDEVNAME_SIZE];
1294		struct md_rdev *rdev = rcu_dereference(conf->mirrors[i].rdev);
1295		if (rdev)
1296			printk(KERN_DEBUG " disk %d, wo:%d, o:%d, dev:%s\n",
1297			       i, !test_bit(In_sync, &rdev->flags),
1298			       !test_bit(Faulty, &rdev->flags),
1299			       bdevname(rdev->bdev,b));
1300	}
1301	rcu_read_unlock();
1302}
1303
1304static void close_sync(struct r1conf *conf)
1305{
1306	wait_barrier(conf);
1307	allow_barrier(conf);
1308
1309	mempool_destroy(conf->r1buf_pool);
1310	conf->r1buf_pool = NULL;
 
 
 
 
1311}
1312
1313static int raid1_spare_active(struct mddev *mddev)
1314{
1315	int i;
1316	struct r1conf *conf = mddev->private;
1317	int count = 0;
1318	unsigned long flags;
1319
1320	/*
1321	 * Find all failed disks within the RAID1 configuration 
1322	 * and mark them readable.
1323	 * Called under mddev lock, so rcu protection not needed.
 
 
1324	 */
 
1325	for (i = 0; i < conf->raid_disks; i++) {
1326		struct md_rdev *rdev = conf->mirrors[i].rdev;
1327		struct md_rdev *repl = conf->mirrors[conf->raid_disks + i].rdev;
1328		if (repl
 
1329		    && repl->recovery_offset == MaxSector
1330		    && !test_bit(Faulty, &repl->flags)
1331		    && !test_and_set_bit(In_sync, &repl->flags)) {
1332			/* replacement has just become active */
1333			if (!rdev ||
1334			    !test_and_clear_bit(In_sync, &rdev->flags))
1335				count++;
1336			if (rdev) {
1337				/* Replaced device not technically
1338				 * faulty, but we need to be sure
1339				 * it gets removed and never re-added
1340				 */
1341				set_bit(Faulty, &rdev->flags);
1342				sysfs_notify_dirent_safe(
1343					rdev->sysfs_state);
1344			}
1345		}
1346		if (rdev
 
1347		    && !test_bit(Faulty, &rdev->flags)
1348		    && !test_and_set_bit(In_sync, &rdev->flags)) {
1349			count++;
1350			sysfs_notify_dirent_safe(rdev->sysfs_state);
1351		}
1352	}
1353	spin_lock_irqsave(&conf->device_lock, flags);
1354	mddev->degraded -= count;
1355	spin_unlock_irqrestore(&conf->device_lock, flags);
1356
1357	print_conf(conf);
1358	return count;
1359}
1360
1361
1362static int raid1_add_disk(struct mddev *mddev, struct md_rdev *rdev)
1363{
1364	struct r1conf *conf = mddev->private;
1365	int err = -EEXIST;
1366	int mirror = 0;
1367	struct mirror_info *p;
1368	int first = 0;
1369	int last = conf->raid_disks - 1;
1370	struct request_queue *q = bdev_get_queue(rdev->bdev);
1371
1372	if (mddev->recovery_disabled == conf->recovery_disabled)
1373		return -EBUSY;
1374
 
 
 
1375	if (rdev->raid_disk >= 0)
1376		first = last = rdev->raid_disk;
1377
1378	if (q->merge_bvec_fn) {
1379		set_bit(Unmerged, &rdev->flags);
1380		mddev->merge_check_needed = 1;
1381	}
 
 
 
 
 
1382
1383	for (mirror = first; mirror <= last; mirror++) {
1384		p = conf->mirrors+mirror;
1385		if (!p->rdev) {
1386
1387			disk_stack_limits(mddev->gendisk, rdev->bdev,
1388					  rdev->data_offset << 9);
1389
1390			p->head_position = 0;
1391			rdev->raid_disk = mirror;
1392			err = 0;
1393			/* As all devices are equivalent, we don't need a full recovery
1394			 * if this was recently any drive of the array
1395			 */
1396			if (rdev->saved_raid_disk < 0)
1397				conf->fullsync = 1;
1398			rcu_assign_pointer(p->rdev, rdev);
1399			break;
1400		}
1401		if (test_bit(WantReplacement, &p->rdev->flags) &&
1402		    p[conf->raid_disks].rdev == NULL) {
1403			/* Add this device as a replacement */
1404			clear_bit(In_sync, &rdev->flags);
1405			set_bit(Replacement, &rdev->flags);
1406			rdev->raid_disk = mirror;
1407			err = 0;
1408			conf->fullsync = 1;
1409			rcu_assign_pointer(p[conf->raid_disks].rdev, rdev);
1410			break;
1411		}
1412	}
1413	if (err == 0 && test_bit(Unmerged, &rdev->flags)) {
1414		/* Some requests might not have seen this new
1415		 * merge_bvec_fn.  We must wait for them to complete
1416		 * before merging the device fully.
1417		 * First we make sure any code which has tested
1418		 * our function has submitted the request, then
1419		 * we wait for all outstanding requests to complete.
1420		 */
1421		synchronize_sched();
1422		raise_barrier(conf);
1423		lower_barrier(conf);
1424		clear_bit(Unmerged, &rdev->flags);
1425	}
1426	md_integrity_add_rdev(rdev, mddev);
1427	print_conf(conf);
1428	return err;
1429}
1430
1431static int raid1_remove_disk(struct mddev *mddev, struct md_rdev *rdev)
1432{
1433	struct r1conf *conf = mddev->private;
1434	int err = 0;
1435	int number = rdev->raid_disk;
1436	struct mirror_info *p = conf->mirrors+ number;
1437
1438	if (rdev != p->rdev)
1439		p = conf->mirrors + conf->raid_disks + number;
1440
1441	print_conf(conf);
1442	if (rdev == p->rdev) {
1443		if (test_bit(In_sync, &rdev->flags) ||
1444		    atomic_read(&rdev->nr_pending)) {
1445			err = -EBUSY;
1446			goto abort;
1447		}
1448		/* Only remove non-faulty devices if recovery
1449		 * is not possible.
1450		 */
1451		if (!test_bit(Faulty, &rdev->flags) &&
1452		    mddev->recovery_disabled != conf->recovery_disabled &&
1453		    mddev->degraded < conf->raid_disks) {
1454			err = -EBUSY;
1455			goto abort;
1456		}
1457		p->rdev = NULL;
1458		synchronize_rcu();
1459		if (atomic_read(&rdev->nr_pending)) {
1460			/* lost the race, try later */
1461			err = -EBUSY;
1462			p->rdev = rdev;
1463			goto abort;
1464		} else if (conf->mirrors[conf->raid_disks + number].rdev) {
 
 
 
1465			/* We just removed a device that is being replaced.
1466			 * Move down the replacement.  We drain all IO before
1467			 * doing this to avoid confusion.
1468			 */
1469			struct md_rdev *repl =
1470				conf->mirrors[conf->raid_disks + number].rdev;
1471			raise_barrier(conf);
 
 
 
 
 
 
 
 
 
 
 
1472			clear_bit(Replacement, &repl->flags);
1473			p->rdev = repl;
1474			conf->mirrors[conf->raid_disks + number].rdev = NULL;
1475			lower_barrier(conf);
1476			clear_bit(WantReplacement, &rdev->flags);
1477		} else
1478			clear_bit(WantReplacement, &rdev->flags);
1479		err = md_integrity_register(mddev);
1480	}
1481abort:
1482
1483	print_conf(conf);
1484	return err;
1485}
1486
1487
1488static void end_sync_read(struct bio *bio, int error)
1489{
1490	struct r1bio *r1_bio = bio->bi_private;
1491
1492	update_head_pos(r1_bio->read_disk, r1_bio);
1493
1494	/*
1495	 * we have read a block, now it needs to be re-written,
1496	 * or re-read if the read failed.
1497	 * We don't do much here, just schedule handling by raid1d
1498	 */
1499	if (test_bit(BIO_UPTODATE, &bio->bi_flags))
1500		set_bit(R1BIO_Uptodate, &r1_bio->state);
1501
1502	if (atomic_dec_and_test(&r1_bio->remaining))
1503		reschedule_retry(r1_bio);
1504}
1505
1506static void end_sync_write(struct bio *bio, int error)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1507{
1508	int uptodate = test_bit(BIO_UPTODATE, &bio->bi_flags);
1509	struct r1bio *r1_bio = bio->bi_private;
1510	struct mddev *mddev = r1_bio->mddev;
1511	struct r1conf *conf = mddev->private;
1512	int mirror=0;
1513	sector_t first_bad;
1514	int bad_sectors;
1515
1516	mirror = find_bio_disk(r1_bio, bio);
1517
1518	if (!uptodate) {
1519		sector_t sync_blocks = 0;
1520		sector_t s = r1_bio->sector;
1521		long sectors_to_go = r1_bio->sectors;
1522		/* make sure these bits doesn't get cleared. */
1523		do {
1524			bitmap_end_sync(mddev->bitmap, s,
1525					&sync_blocks, 1);
1526			s += sync_blocks;
1527			sectors_to_go -= sync_blocks;
1528		} while (sectors_to_go > 0);
1529		set_bit(WriteErrorSeen,
1530			&conf->mirrors[mirror].rdev->flags);
1531		if (!test_and_set_bit(WantReplacement,
1532				      &conf->mirrors[mirror].rdev->flags))
1533			set_bit(MD_RECOVERY_NEEDED, &
1534				mddev->recovery);
1535		set_bit(R1BIO_WriteError, &r1_bio->state);
1536	} else if (is_badblock(conf->mirrors[mirror].rdev,
1537			       r1_bio->sector,
1538			       r1_bio->sectors,
1539			       &first_bad, &bad_sectors) &&
1540		   !is_badblock(conf->mirrors[r1_bio->read_disk].rdev,
1541				r1_bio->sector,
1542				r1_bio->sectors,
1543				&first_bad, &bad_sectors)
1544		)
1545		set_bit(R1BIO_MadeGood, &r1_bio->state);
1546
1547	if (atomic_dec_and_test(&r1_bio->remaining)) {
1548		int s = r1_bio->sectors;
1549		if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
1550		    test_bit(R1BIO_WriteError, &r1_bio->state))
1551			reschedule_retry(r1_bio);
1552		else {
1553			put_buf(r1_bio);
1554			md_done_sync(mddev, s, uptodate);
1555		}
1556	}
1557}
1558
1559static int r1_sync_page_io(struct md_rdev *rdev, sector_t sector,
1560			    int sectors, struct page *page, int rw)
1561{
1562	if (sync_page_io(rdev, sector, sectors << 9, page, rw, false))
1563		/* success */
1564		return 1;
1565	if (rw == WRITE) {
1566		set_bit(WriteErrorSeen, &rdev->flags);
1567		if (!test_and_set_bit(WantReplacement,
1568				      &rdev->flags))
1569			set_bit(MD_RECOVERY_NEEDED, &
1570				rdev->mddev->recovery);
1571	}
1572	/* need to record an error - either for the block or the device */
1573	if (!rdev_set_badblocks(rdev, sector, sectors, 0))
1574		md_error(rdev->mddev, rdev);
1575	return 0;
1576}
1577
1578static int fix_sync_read_error(struct r1bio *r1_bio)
1579{
1580	/* Try some synchronous reads of other devices to get
1581	 * good data, much like with normal read errors.  Only
1582	 * read into the pages we already have so we don't
1583	 * need to re-issue the read request.
1584	 * We don't need to freeze the array, because being in an
1585	 * active sync request, there is no normal IO, and
1586	 * no overlapping syncs.
1587	 * We don't need to check is_badblock() again as we
1588	 * made sure that anything with a bad block in range
1589	 * will have bi_end_io clear.
1590	 */
1591	struct mddev *mddev = r1_bio->mddev;
1592	struct r1conf *conf = mddev->private;
1593	struct bio *bio = r1_bio->bios[r1_bio->read_disk];
 
1594	sector_t sect = r1_bio->sector;
1595	int sectors = r1_bio->sectors;
1596	int idx = 0;
 
 
 
 
 
 
 
 
 
 
 
 
 
1597
1598	while(sectors) {
1599		int s = sectors;
1600		int d = r1_bio->read_disk;
1601		int success = 0;
1602		struct md_rdev *rdev;
1603		int start;
1604
1605		if (s > (PAGE_SIZE>>9))
1606			s = PAGE_SIZE >> 9;
1607		do {
1608			if (r1_bio->bios[d]->bi_end_io == end_sync_read) {
1609				/* No rcu protection needed here devices
1610				 * can only be removed when no resync is
1611				 * active, and resync is currently active
1612				 */
1613				rdev = conf->mirrors[d].rdev;
1614				if (sync_page_io(rdev, sect, s<<9,
1615						 bio->bi_io_vec[idx].bv_page,
1616						 READ, false)) {
1617					success = 1;
1618					break;
1619				}
1620			}
1621			d++;
1622			if (d == conf->raid_disks * 2)
1623				d = 0;
1624		} while (!success && d != r1_bio->read_disk);
1625
1626		if (!success) {
1627			char b[BDEVNAME_SIZE];
1628			int abort = 0;
1629			/* Cannot read from anywhere, this block is lost.
1630			 * Record a bad block on each device.  If that doesn't
1631			 * work just disable and interrupt the recovery.
1632			 * Don't fail devices as that won't really help.
1633			 */
1634			printk(KERN_ALERT "md/raid1:%s: %s: unrecoverable I/O read error"
1635			       " for block %llu\n",
1636			       mdname(mddev),
1637			       bdevname(bio->bi_bdev, b),
1638			       (unsigned long long)r1_bio->sector);
1639			for (d = 0; d < conf->raid_disks * 2; d++) {
1640				rdev = conf->mirrors[d].rdev;
1641				if (!rdev || test_bit(Faulty, &rdev->flags))
1642					continue;
1643				if (!rdev_set_badblocks(rdev, sect, s, 0))
1644					abort = 1;
1645			}
1646			if (abort) {
1647				conf->recovery_disabled =
1648					mddev->recovery_disabled;
1649				set_bit(MD_RECOVERY_INTR, &mddev->recovery);
1650				md_done_sync(mddev, r1_bio->sectors, 0);
1651				put_buf(r1_bio);
1652				return 0;
1653			}
1654			/* Try next page */
1655			sectors -= s;
1656			sect += s;
1657			idx++;
1658			continue;
1659		}
1660
1661		start = d;
1662		/* write it back and re-read */
1663		while (d != r1_bio->read_disk) {
1664			if (d == 0)
1665				d = conf->raid_disks * 2;
1666			d--;
1667			if (r1_bio->bios[d]->bi_end_io != end_sync_read)
1668				continue;
1669			rdev = conf->mirrors[d].rdev;
1670			if (r1_sync_page_io(rdev, sect, s,
1671					    bio->bi_io_vec[idx].bv_page,
1672					    WRITE) == 0) {
1673				r1_bio->bios[d]->bi_end_io = NULL;
1674				rdev_dec_pending(rdev, mddev);
1675			}
1676		}
1677		d = start;
1678		while (d != r1_bio->read_disk) {
1679			if (d == 0)
1680				d = conf->raid_disks * 2;
1681			d--;
1682			if (r1_bio->bios[d]->bi_end_io != end_sync_read)
1683				continue;
1684			rdev = conf->mirrors[d].rdev;
1685			if (r1_sync_page_io(rdev, sect, s,
1686					    bio->bi_io_vec[idx].bv_page,
1687					    READ) != 0)
1688				atomic_add(s, &rdev->corrected_errors);
1689		}
1690		sectors -= s;
1691		sect += s;
1692		idx ++;
1693	}
1694	set_bit(R1BIO_Uptodate, &r1_bio->state);
1695	set_bit(BIO_UPTODATE, &bio->bi_flags);
1696	return 1;
1697}
1698
1699static int process_checks(struct r1bio *r1_bio)
1700{
1701	/* We have read all readable devices.  If we haven't
1702	 * got the block, then there is no hope left.
1703	 * If we have, then we want to do a comparison
1704	 * and skip the write if everything is the same.
1705	 * If any blocks failed to read, then we need to
1706	 * attempt an over-write
1707	 */
1708	struct mddev *mddev = r1_bio->mddev;
1709	struct r1conf *conf = mddev->private;
1710	int primary;
1711	int i;
1712	int vcnt;
1713
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1714	for (primary = 0; primary < conf->raid_disks * 2; primary++)
1715		if (r1_bio->bios[primary]->bi_end_io == end_sync_read &&
1716		    test_bit(BIO_UPTODATE, &r1_bio->bios[primary]->bi_flags)) {
1717			r1_bio->bios[primary]->bi_end_io = NULL;
1718			rdev_dec_pending(conf->mirrors[primary].rdev, mddev);
1719			break;
1720		}
1721	r1_bio->read_disk = primary;
1722	vcnt = (r1_bio->sectors + PAGE_SIZE / 512 - 1) >> (PAGE_SHIFT - 9);
1723	for (i = 0; i < conf->raid_disks * 2; i++) {
1724		int j;
1725		struct bio *pbio = r1_bio->bios[primary];
1726		struct bio *sbio = r1_bio->bios[i];
1727		int size;
 
 
 
 
 
1728
1729		if (r1_bio->bios[i]->bi_end_io != end_sync_read)
1730			continue;
 
 
1731
1732		if (test_bit(BIO_UPTODATE, &sbio->bi_flags)) {
 
 
 
1733			for (j = vcnt; j-- ; ) {
1734				struct page *p, *s;
1735				p = pbio->bi_io_vec[j].bv_page;
1736				s = sbio->bi_io_vec[j].bv_page;
1737				if (memcmp(page_address(p),
1738					   page_address(s),
1739					   sbio->bi_io_vec[j].bv_len))
1740					break;
1741			}
1742		} else
1743			j = 0;
1744		if (j >= 0)
1745			mddev->resync_mismatches += r1_bio->sectors;
1746		if (j < 0 || (test_bit(MD_RECOVERY_CHECK, &mddev->recovery)
1747			      && test_bit(BIO_UPTODATE, &sbio->bi_flags))) {
1748			/* No need to write to this device. */
1749			sbio->bi_end_io = NULL;
1750			rdev_dec_pending(conf->mirrors[i].rdev, mddev);
1751			continue;
1752		}
1753		/* fixup the bio for reuse */
1754		sbio->bi_vcnt = vcnt;
1755		sbio->bi_size = r1_bio->sectors << 9;
1756		sbio->bi_idx = 0;
1757		sbio->bi_phys_segments = 0;
1758		sbio->bi_flags &= ~(BIO_POOL_MASK - 1);
1759		sbio->bi_flags |= 1 << BIO_UPTODATE;
1760		sbio->bi_next = NULL;
1761		sbio->bi_sector = r1_bio->sector +
1762			conf->mirrors[i].rdev->data_offset;
1763		sbio->bi_bdev = conf->mirrors[i].rdev->bdev;
1764		size = sbio->bi_size;
1765		for (j = 0; j < vcnt ; j++) {
1766			struct bio_vec *bi;
1767			bi = &sbio->bi_io_vec[j];
1768			bi->bv_offset = 0;
1769			if (size > PAGE_SIZE)
1770				bi->bv_len = PAGE_SIZE;
1771			else
1772				bi->bv_len = size;
1773			size -= PAGE_SIZE;
1774			memcpy(page_address(bi->bv_page),
1775			       page_address(pbio->bi_io_vec[j].bv_page),
1776			       PAGE_SIZE);
1777		}
1778	}
1779	return 0;
1780}
1781
1782static void sync_request_write(struct mddev *mddev, struct r1bio *r1_bio)
1783{
1784	struct r1conf *conf = mddev->private;
1785	int i;
1786	int disks = conf->raid_disks * 2;
1787	struct bio *bio, *wbio;
1788
1789	bio = r1_bio->bios[r1_bio->read_disk];
1790
1791	if (!test_bit(R1BIO_Uptodate, &r1_bio->state))
1792		/* ouch - failed to read all of that. */
1793		if (!fix_sync_read_error(r1_bio))
1794			return;
1795
1796	if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery))
1797		if (process_checks(r1_bio) < 0)
1798			return;
1799	/*
1800	 * schedule writes
1801	 */
1802	atomic_set(&r1_bio->remaining, 1);
1803	for (i = 0; i < disks ; i++) {
1804		wbio = r1_bio->bios[i];
1805		if (wbio->bi_end_io == NULL ||
1806		    (wbio->bi_end_io == end_sync_read &&
1807		     (i == r1_bio->read_disk ||
1808		      !test_bit(MD_RECOVERY_SYNC, &mddev->recovery))))
1809			continue;
 
 
 
 
 
 
 
 
1810
1811		wbio->bi_rw = WRITE;
1812		wbio->bi_end_io = end_sync_write;
1813		atomic_inc(&r1_bio->remaining);
1814		md_sync_acct(conf->mirrors[i].rdev->bdev, wbio->bi_size >> 9);
1815
1816		generic_make_request(wbio);
1817	}
1818
1819	if (atomic_dec_and_test(&r1_bio->remaining)) {
1820		/* if we're here, all write(s) have completed, so clean up */
1821		int s = r1_bio->sectors;
1822		if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
1823		    test_bit(R1BIO_WriteError, &r1_bio->state))
1824			reschedule_retry(r1_bio);
1825		else {
1826			put_buf(r1_bio);
1827			md_done_sync(mddev, s, 1);
1828		}
1829	}
1830}
1831
1832/*
1833 * This is a kernel thread which:
1834 *
1835 *	1.	Retries failed read operations on working mirrors.
1836 *	2.	Updates the raid superblock when problems encounter.
1837 *	3.	Performs writes following reads for array synchronising.
1838 */
1839
1840static void fix_read_error(struct r1conf *conf, int read_disk,
1841			   sector_t sect, int sectors)
1842{
1843	struct mddev *mddev = conf->mddev;
1844	while(sectors) {
1845		int s = sectors;
1846		int d = read_disk;
1847		int success = 0;
1848		int start;
1849		struct md_rdev *rdev;
1850
1851		if (s > (PAGE_SIZE>>9))
1852			s = PAGE_SIZE >> 9;
1853
1854		do {
1855			/* Note: no rcu protection needed here
1856			 * as this is synchronous in the raid1d thread
1857			 * which is the thread that might remove
1858			 * a device.  If raid1d ever becomes multi-threaded....
1859			 */
1860			sector_t first_bad;
1861			int bad_sectors;
1862
1863			rdev = conf->mirrors[d].rdev;
 
1864			if (rdev &&
1865			    (test_bit(In_sync, &rdev->flags) ||
1866			     (!test_bit(Faulty, &rdev->flags) &&
1867			      rdev->recovery_offset >= sect + s)) &&
1868			    is_badblock(rdev, sect, s,
1869					&first_bad, &bad_sectors) == 0 &&
1870			    sync_page_io(rdev, sect, s<<9,
1871					 conf->tmppage, READ, false))
1872				success = 1;
1873			else {
1874				d++;
1875				if (d == conf->raid_disks * 2)
1876					d = 0;
1877			}
 
 
 
 
 
1878		} while (!success && d != read_disk);
1879
1880		if (!success) {
1881			/* Cannot read from anywhere - mark it bad */
1882			struct md_rdev *rdev = conf->mirrors[read_disk].rdev;
1883			if (!rdev_set_badblocks(rdev, sect, s, 0))
1884				md_error(mddev, rdev);
1885			break;
1886		}
1887		/* write it back and re-read */
1888		start = d;
1889		while (d != read_disk) {
1890			if (d==0)
1891				d = conf->raid_disks * 2;
1892			d--;
1893			rdev = conf->mirrors[d].rdev;
 
1894			if (rdev &&
1895			    test_bit(In_sync, &rdev->flags))
 
 
1896				r1_sync_page_io(rdev, sect, s,
1897						conf->tmppage, WRITE);
 
 
 
1898		}
1899		d = start;
1900		while (d != read_disk) {
1901			char b[BDEVNAME_SIZE];
1902			if (d==0)
1903				d = conf->raid_disks * 2;
1904			d--;
1905			rdev = conf->mirrors[d].rdev;
 
1906			if (rdev &&
1907			    test_bit(In_sync, &rdev->flags)) {
 
 
1908				if (r1_sync_page_io(rdev, sect, s,
1909						    conf->tmppage, READ)) {
1910					atomic_add(s, &rdev->corrected_errors);
1911					printk(KERN_INFO
1912					       "md/raid1:%s: read error corrected "
1913					       "(%d sectors at %llu on %s)\n",
1914					       mdname(mddev), s,
1915					       (unsigned long long)(sect +
1916					           rdev->data_offset),
1917					       bdevname(rdev->bdev, b));
1918				}
1919			}
 
 
1920		}
1921		sectors -= s;
1922		sect += s;
1923	}
1924}
1925
1926static void bi_complete(struct bio *bio, int error)
1927{
1928	complete((struct completion *)bio->bi_private);
1929}
1930
1931static int submit_bio_wait(int rw, struct bio *bio)
1932{
1933	struct completion event;
1934	rw |= REQ_SYNC;
1935
1936	init_completion(&event);
1937	bio->bi_private = &event;
1938	bio->bi_end_io = bi_complete;
1939	submit_bio(rw, bio);
1940	wait_for_completion(&event);
1941
1942	return test_bit(BIO_UPTODATE, &bio->bi_flags);
1943}
1944
1945static int narrow_write_error(struct r1bio *r1_bio, int i)
1946{
1947	struct mddev *mddev = r1_bio->mddev;
1948	struct r1conf *conf = mddev->private;
1949	struct md_rdev *rdev = conf->mirrors[i].rdev;
1950	int vcnt, idx;
1951	struct bio_vec *vec;
1952
1953	/* bio has the data to be written to device 'i' where
1954	 * we just recently had a write error.
1955	 * We repeatedly clone the bio and trim down to one block,
1956	 * then try the write.  Where the write fails we record
1957	 * a bad block.
1958	 * It is conceivable that the bio doesn't exactly align with
1959	 * blocks.  We must handle this somehow.
1960	 *
1961	 * We currently own a reference on the rdev.
1962	 */
1963
1964	int block_sectors;
1965	sector_t sector;
1966	int sectors;
1967	int sect_to_write = r1_bio->sectors;
1968	int ok = 1;
1969
1970	if (rdev->badblocks.shift < 0)
1971		return 0;
1972
1973	block_sectors = 1 << rdev->badblocks.shift;
 
1974	sector = r1_bio->sector;
1975	sectors = ((sector + block_sectors)
1976		   & ~(sector_t)(block_sectors - 1))
1977		- sector;
1978
1979	if (test_bit(R1BIO_BehindIO, &r1_bio->state)) {
1980		vcnt = r1_bio->behind_page_count;
1981		vec = r1_bio->behind_bvecs;
1982		idx = 0;
1983		while (vec[idx].bv_page == NULL)
1984			idx++;
1985	} else {
1986		vcnt = r1_bio->master_bio->bi_vcnt;
1987		vec = r1_bio->master_bio->bi_io_vec;
1988		idx = r1_bio->master_bio->bi_idx;
1989	}
1990	while (sect_to_write) {
1991		struct bio *wbio;
1992		if (sectors > sect_to_write)
1993			sectors = sect_to_write;
1994		/* Write at 'sector' for 'sectors'*/
1995
1996		wbio = bio_alloc_mddev(GFP_NOIO, vcnt, mddev);
1997		memcpy(wbio->bi_io_vec, vec, vcnt * sizeof(struct bio_vec));
1998		wbio->bi_sector = r1_bio->sector;
1999		wbio->bi_rw = WRITE;
2000		wbio->bi_vcnt = vcnt;
2001		wbio->bi_size = r1_bio->sectors << 9;
2002		wbio->bi_idx = idx;
2003
2004		md_trim_bio(wbio, sector - r1_bio->sector, sectors);
2005		wbio->bi_sector += rdev->data_offset;
2006		wbio->bi_bdev = rdev->bdev;
2007		if (submit_bio_wait(WRITE, wbio) == 0)
 
 
 
 
 
2008			/* failure! */
2009			ok = rdev_set_badblocks(rdev, sector,
2010						sectors, 0)
2011				&& ok;
2012
2013		bio_put(wbio);
2014		sect_to_write -= sectors;
2015		sector += sectors;
2016		sectors = block_sectors;
2017	}
2018	return ok;
2019}
2020
2021static void handle_sync_write_finished(struct r1conf *conf, struct r1bio *r1_bio)
2022{
2023	int m;
2024	int s = r1_bio->sectors;
2025	for (m = 0; m < conf->raid_disks * 2 ; m++) {
2026		struct md_rdev *rdev = conf->mirrors[m].rdev;
2027		struct bio *bio = r1_bio->bios[m];
2028		if (bio->bi_end_io == NULL)
2029			continue;
2030		if (test_bit(BIO_UPTODATE, &bio->bi_flags) &&
2031		    test_bit(R1BIO_MadeGood, &r1_bio->state)) {
2032			rdev_clear_badblocks(rdev, r1_bio->sector, s, 0);
2033		}
2034		if (!test_bit(BIO_UPTODATE, &bio->bi_flags) &&
2035		    test_bit(R1BIO_WriteError, &r1_bio->state)) {
2036			if (!rdev_set_badblocks(rdev, r1_bio->sector, s, 0))
2037				md_error(conf->mddev, rdev);
2038		}
2039	}
2040	put_buf(r1_bio);
2041	md_done_sync(conf->mddev, s, 1);
2042}
2043
2044static void handle_write_finished(struct r1conf *conf, struct r1bio *r1_bio)
2045{
2046	int m;
 
 
2047	for (m = 0; m < conf->raid_disks * 2 ; m++)
2048		if (r1_bio->bios[m] == IO_MADE_GOOD) {
2049			struct md_rdev *rdev = conf->mirrors[m].rdev;
2050			rdev_clear_badblocks(rdev,
2051					     r1_bio->sector,
2052					     r1_bio->sectors, 0);
2053			rdev_dec_pending(rdev, conf->mddev);
2054		} else if (r1_bio->bios[m] != NULL) {
2055			/* This drive got a write error.  We need to
2056			 * narrow down and record precise write
2057			 * errors.
2058			 */
 
2059			if (!narrow_write_error(r1_bio, m)) {
2060				md_error(conf->mddev,
2061					 conf->mirrors[m].rdev);
2062				/* an I/O failed, we can't clear the bitmap */
2063				set_bit(R1BIO_Degraded, &r1_bio->state);
2064			}
2065			rdev_dec_pending(conf->mirrors[m].rdev,
2066					 conf->mddev);
2067		}
2068	if (test_bit(R1BIO_WriteError, &r1_bio->state))
2069		close_write(r1_bio);
2070	raid_end_bio_io(r1_bio);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2071}
2072
2073static void handle_read_error(struct r1conf *conf, struct r1bio *r1_bio)
2074{
2075	int disk;
2076	int max_sectors;
2077	struct mddev *mddev = conf->mddev;
2078	struct bio *bio;
2079	char b[BDEVNAME_SIZE];
2080	struct md_rdev *rdev;
2081
2082	clear_bit(R1BIO_ReadError, &r1_bio->state);
2083	/* we got a read error. Maybe the drive is bad.  Maybe just
2084	 * the block and we can fix it.
2085	 * We freeze all other IO, and try reading the block from
2086	 * other devices.  When we find one, we re-write
2087	 * and check it that fixes the read error.
2088	 * This is all done synchronously while the array is
2089	 * frozen
2090	 */
2091	if (mddev->ro == 0) {
2092		freeze_array(conf);
 
 
 
 
 
 
 
2093		fix_read_error(conf, r1_bio->read_disk,
2094			       r1_bio->sector, r1_bio->sectors);
2095		unfreeze_array(conf);
2096	} else
2097		md_error(mddev, conf->mirrors[r1_bio->read_disk].rdev);
 
 
 
2098
2099	bio = r1_bio->bios[r1_bio->read_disk];
2100	bdevname(bio->bi_bdev, b);
2101read_more:
2102	disk = read_balance(conf, r1_bio, &max_sectors);
2103	if (disk == -1) {
2104		printk(KERN_ALERT "md/raid1:%s: %s: unrecoverable I/O"
2105		       " read error for block %llu\n",
2106		       mdname(mddev), b, (unsigned long long)r1_bio->sector);
2107		raid_end_bio_io(r1_bio);
2108	} else {
2109		const unsigned long do_sync
2110			= r1_bio->master_bio->bi_rw & REQ_SYNC;
2111		if (bio) {
2112			r1_bio->bios[r1_bio->read_disk] =
2113				mddev->ro ? IO_BLOCKED : NULL;
2114			bio_put(bio);
2115		}
2116		r1_bio->read_disk = disk;
2117		bio = bio_clone_mddev(r1_bio->master_bio, GFP_NOIO, mddev);
2118		md_trim_bio(bio, r1_bio->sector - bio->bi_sector, max_sectors);
2119		r1_bio->bios[r1_bio->read_disk] = bio;
2120		rdev = conf->mirrors[disk].rdev;
2121		printk_ratelimited(KERN_ERR
2122				   "md/raid1:%s: redirecting sector %llu"
2123				   " to other mirror: %s\n",
2124				   mdname(mddev),
2125				   (unsigned long long)r1_bio->sector,
2126				   bdevname(rdev->bdev, b));
2127		bio->bi_sector = r1_bio->sector + rdev->data_offset;
2128		bio->bi_bdev = rdev->bdev;
2129		bio->bi_end_io = raid1_end_read_request;
2130		bio->bi_rw = READ | do_sync;
2131		bio->bi_private = r1_bio;
2132		if (max_sectors < r1_bio->sectors) {
2133			/* Drat - have to split this up more */
2134			struct bio *mbio = r1_bio->master_bio;
2135			int sectors_handled = (r1_bio->sector + max_sectors
2136					       - mbio->bi_sector);
2137			r1_bio->sectors = max_sectors;
2138			spin_lock_irq(&conf->device_lock);
2139			if (mbio->bi_phys_segments == 0)
2140				mbio->bi_phys_segments = 2;
2141			else
2142				mbio->bi_phys_segments++;
2143			spin_unlock_irq(&conf->device_lock);
2144			generic_make_request(bio);
2145			bio = NULL;
2146
2147			r1_bio = mempool_alloc(conf->r1bio_pool, GFP_NOIO);
2148
2149			r1_bio->master_bio = mbio;
2150			r1_bio->sectors = (mbio->bi_size >> 9)
2151					  - sectors_handled;
2152			r1_bio->state = 0;
2153			set_bit(R1BIO_ReadError, &r1_bio->state);
2154			r1_bio->mddev = mddev;
2155			r1_bio->sector = mbio->bi_sector + sectors_handled;
2156
2157			goto read_more;
2158		} else
2159			generic_make_request(bio);
2160	}
2161}
2162
2163static void raid1d(struct mddev *mddev)
2164{
 
2165	struct r1bio *r1_bio;
2166	unsigned long flags;
2167	struct r1conf *conf = mddev->private;
2168	struct list_head *head = &conf->retry_list;
2169	struct blk_plug plug;
 
2170
2171	md_check_recovery(mddev);
2172
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2173	blk_start_plug(&plug);
2174	for (;;) {
2175
2176		if (atomic_read(&mddev->plug_cnt) == 0)
2177			flush_pending_writes(conf);
2178
2179		spin_lock_irqsave(&conf->device_lock, flags);
2180		if (list_empty(head)) {
2181			spin_unlock_irqrestore(&conf->device_lock, flags);
2182			break;
2183		}
2184		r1_bio = list_entry(head->prev, struct r1bio, retry_list);
2185		list_del(head->prev);
2186		conf->nr_queued--;
 
2187		spin_unlock_irqrestore(&conf->device_lock, flags);
2188
2189		mddev = r1_bio->mddev;
2190		conf = mddev->private;
2191		if (test_bit(R1BIO_IsSync, &r1_bio->state)) {
2192			if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
2193			    test_bit(R1BIO_WriteError, &r1_bio->state))
2194				handle_sync_write_finished(conf, r1_bio);
2195			else
2196				sync_request_write(mddev, r1_bio);
2197		} else if (test_bit(R1BIO_MadeGood, &r1_bio->state) ||
2198			   test_bit(R1BIO_WriteError, &r1_bio->state))
2199			handle_write_finished(conf, r1_bio);
2200		else if (test_bit(R1BIO_ReadError, &r1_bio->state))
2201			handle_read_error(conf, r1_bio);
2202		else
2203			/* just a partial read to be scheduled from separate
2204			 * context
2205			 */
2206			generic_make_request(r1_bio->bios[r1_bio->read_disk]);
2207
2208		cond_resched();
2209		if (mddev->flags & ~(1<<MD_CHANGE_PENDING))
2210			md_check_recovery(mddev);
2211	}
2212	blk_finish_plug(&plug);
2213}
2214
2215
2216static int init_resync(struct r1conf *conf)
2217{
2218	int buffs;
2219
2220	buffs = RESYNC_WINDOW / RESYNC_BLOCK_SIZE;
2221	BUG_ON(conf->r1buf_pool);
2222	conf->r1buf_pool = mempool_create(buffs, r1buf_pool_alloc, r1buf_pool_free,
2223					  conf->poolinfo);
2224	if (!conf->r1buf_pool)
2225		return -ENOMEM;
2226	conf->next_resync = 0;
2227	return 0;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2228}
2229
2230/*
2231 * perform a "sync" on one "block"
2232 *
2233 * We need to make sure that no normal I/O request - particularly write
2234 * requests - conflict with active sync requests.
2235 *
2236 * This is achieved by tracking pending requests and a 'barrier' concept
2237 * that can be installed to exclude normal IO requests.
2238 */
2239
2240static sector_t sync_request(struct mddev *mddev, sector_t sector_nr, int *skipped, int go_faster)
 
2241{
2242	struct r1conf *conf = mddev->private;
2243	struct r1bio *r1_bio;
2244	struct bio *bio;
2245	sector_t max_sector, nr_sectors;
2246	int disk = -1;
2247	int i;
2248	int wonly = -1;
2249	int write_targets = 0, read_targets = 0;
2250	sector_t sync_blocks;
2251	int still_degraded = 0;
2252	int good_sectors = RESYNC_SECTORS;
2253	int min_bad = 0; /* number of sectors that are bad in all devices */
 
 
2254
2255	if (!conf->r1buf_pool)
2256		if (init_resync(conf))
2257			return 0;
2258
2259	max_sector = mddev->dev_sectors;
2260	if (sector_nr >= max_sector) {
2261		/* If we aborted, we need to abort the
2262		 * sync on the 'current' bitmap chunk (there will
2263		 * only be one in raid1 resync.
2264		 * We can find the current addess in mddev->curr_resync
2265		 */
2266		if (mddev->curr_resync < max_sector) /* aborted */
2267			bitmap_end_sync(mddev->bitmap, mddev->curr_resync,
2268						&sync_blocks, 1);
2269		else /* completed sync */
2270			conf->fullsync = 0;
2271
2272		bitmap_close_sync(mddev->bitmap);
2273		close_sync(conf);
 
 
 
 
 
2274		return 0;
2275	}
2276
2277	if (mddev->bitmap == NULL &&
2278	    mddev->recovery_cp == MaxSector &&
2279	    !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery) &&
2280	    conf->fullsync == 0) {
2281		*skipped = 1;
2282		return max_sector - sector_nr;
2283	}
2284	/* before building a request, check if we can skip these blocks..
2285	 * This call the bitmap_start_sync doesn't actually record anything
2286	 */
2287	if (!bitmap_start_sync(mddev->bitmap, sector_nr, &sync_blocks, 1) &&
2288	    !conf->fullsync && !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) {
2289		/* We can skip this block, and probably several more */
2290		*skipped = 1;
2291		return sync_blocks;
2292	}
 
2293	/*
2294	 * If there is non-resync activity waiting for a turn,
2295	 * and resync is going fast enough,
2296	 * then let it though before starting on this new sync request.
2297	 */
2298	if (!go_faster && conf->nr_waiting)
2299		msleep_interruptible(1000);
2300
2301	bitmap_cond_end_sync(mddev->bitmap, sector_nr);
2302	r1_bio = mempool_alloc(conf->r1buf_pool, GFP_NOIO);
2303	raise_barrier(conf);
2304
2305	conf->next_resync = sector_nr;
 
 
 
 
 
 
 
 
 
 
 
2306
2307	rcu_read_lock();
2308	/*
2309	 * If we get a correctably read error during resync or recovery,
2310	 * we might want to read from a different device.  So we
2311	 * flag all drives that could conceivably be read from for READ,
2312	 * and any others (which will be non-In_sync devices) for WRITE.
2313	 * If a read fails, we try reading from something else for which READ
2314	 * is OK.
2315	 */
2316
2317	r1_bio->mddev = mddev;
2318	r1_bio->sector = sector_nr;
2319	r1_bio->state = 0;
2320	set_bit(R1BIO_IsSync, &r1_bio->state);
 
 
2321
2322	for (i = 0; i < conf->raid_disks * 2; i++) {
2323		struct md_rdev *rdev;
2324		bio = r1_bio->bios[i];
2325
2326		/* take from bio_init */
2327		bio->bi_next = NULL;
2328		bio->bi_flags &= ~(BIO_POOL_MASK-1);
2329		bio->bi_flags |= 1 << BIO_UPTODATE;
2330		bio->bi_rw = READ;
2331		bio->bi_vcnt = 0;
2332		bio->bi_idx = 0;
2333		bio->bi_phys_segments = 0;
2334		bio->bi_size = 0;
2335		bio->bi_end_io = NULL;
2336		bio->bi_private = NULL;
2337
2338		rdev = rcu_dereference(conf->mirrors[i].rdev);
2339		if (rdev == NULL ||
2340		    test_bit(Faulty, &rdev->flags)) {
2341			if (i < conf->raid_disks)
2342				still_degraded = 1;
2343		} else if (!test_bit(In_sync, &rdev->flags)) {
2344			bio->bi_rw = WRITE;
2345			bio->bi_end_io = end_sync_write;
2346			write_targets ++;
2347		} else {
2348			/* may need to read from here */
2349			sector_t first_bad = MaxSector;
2350			int bad_sectors;
2351
2352			if (is_badblock(rdev, sector_nr, good_sectors,
2353					&first_bad, &bad_sectors)) {
2354				if (first_bad > sector_nr)
2355					good_sectors = first_bad - sector_nr;
2356				else {
2357					bad_sectors -= (sector_nr - first_bad);
2358					if (min_bad == 0 ||
2359					    min_bad > bad_sectors)
2360						min_bad = bad_sectors;
2361				}
2362			}
2363			if (sector_nr < first_bad) {
2364				if (test_bit(WriteMostly, &rdev->flags)) {
2365					if (wonly < 0)
2366						wonly = i;
2367				} else {
2368					if (disk < 0)
2369						disk = i;
2370				}
2371				bio->bi_rw = READ;
2372				bio->bi_end_io = end_sync_read;
2373				read_targets++;
 
 
 
 
 
 
 
 
 
 
 
 
2374			}
2375		}
2376		if (bio->bi_end_io) {
2377			atomic_inc(&rdev->nr_pending);
2378			bio->bi_sector = sector_nr + rdev->data_offset;
2379			bio->bi_bdev = rdev->bdev;
2380			bio->bi_private = r1_bio;
 
2381		}
2382	}
2383	rcu_read_unlock();
2384	if (disk < 0)
2385		disk = wonly;
2386	r1_bio->read_disk = disk;
2387
2388	if (read_targets == 0 && min_bad > 0) {
2389		/* These sectors are bad on all InSync devices, so we
2390		 * need to mark them bad on all write targets
2391		 */
2392		int ok = 1;
2393		for (i = 0 ; i < conf->raid_disks * 2 ; i++)
2394			if (r1_bio->bios[i]->bi_end_io == end_sync_write) {
2395				struct md_rdev *rdev = conf->mirrors[i].rdev;
2396				ok = rdev_set_badblocks(rdev, sector_nr,
2397							min_bad, 0
2398					) && ok;
2399			}
2400		set_bit(MD_CHANGE_DEVS, &mddev->flags);
2401		*skipped = 1;
2402		put_buf(r1_bio);
2403
2404		if (!ok) {
2405			/* Cannot record the badblocks, so need to
2406			 * abort the resync.
2407			 * If there are multiple read targets, could just
2408			 * fail the really bad ones ???
2409			 */
2410			conf->recovery_disabled = mddev->recovery_disabled;
2411			set_bit(MD_RECOVERY_INTR, &mddev->recovery);
2412			return 0;
2413		} else
2414			return min_bad;
2415
2416	}
2417	if (min_bad > 0 && min_bad < good_sectors) {
2418		/* only resync enough to reach the next bad->good
2419		 * transition */
2420		good_sectors = min_bad;
2421	}
2422
2423	if (test_bit(MD_RECOVERY_SYNC, &mddev->recovery) && read_targets > 0)
2424		/* extra read targets are also write targets */
2425		write_targets += read_targets-1;
2426
2427	if (write_targets == 0 || read_targets == 0) {
2428		/* There is nowhere to write, so all non-sync
2429		 * drives must be failed - so we are finished
2430		 */
2431		sector_t rv;
2432		if (min_bad > 0)
2433			max_sector = sector_nr + min_bad;
2434		rv = max_sector - sector_nr;
2435		*skipped = 1;
2436		put_buf(r1_bio);
2437		return rv;
2438	}
2439
2440	if (max_sector > mddev->resync_max)
2441		max_sector = mddev->resync_max; /* Don't do IO beyond here */
2442	if (max_sector > sector_nr + good_sectors)
2443		max_sector = sector_nr + good_sectors;
2444	nr_sectors = 0;
2445	sync_blocks = 0;
2446	do {
2447		struct page *page;
2448		int len = PAGE_SIZE;
2449		if (sector_nr + (len>>9) > max_sector)
2450			len = (max_sector - sector_nr) << 9;
2451		if (len == 0)
2452			break;
2453		if (sync_blocks == 0) {
2454			if (!bitmap_start_sync(mddev->bitmap, sector_nr,
2455					       &sync_blocks, still_degraded) &&
2456			    !conf->fullsync &&
2457			    !test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery))
2458				break;
2459			BUG_ON(sync_blocks < (PAGE_SIZE>>9));
2460			if ((len >> 9) > sync_blocks)
2461				len = sync_blocks<<9;
2462		}
2463
2464		for (i = 0 ; i < conf->raid_disks * 2; i++) {
 
 
2465			bio = r1_bio->bios[i];
 
2466			if (bio->bi_end_io) {
2467				page = bio->bi_io_vec[bio->bi_vcnt].bv_page;
2468				if (bio_add_page(bio, page, len, 0) == 0) {
2469					/* stop here */
2470					bio->bi_io_vec[bio->bi_vcnt].bv_page = page;
2471					while (i > 0) {
2472						i--;
2473						bio = r1_bio->bios[i];
2474						if (bio->bi_end_io==NULL)
2475							continue;
2476						/* remove last page from this bio */
2477						bio->bi_vcnt--;
2478						bio->bi_size -= len;
2479						bio->bi_flags &= ~(1<< BIO_SEG_VALID);
2480					}
2481					goto bio_full;
2482				}
2483			}
2484		}
2485		nr_sectors += len>>9;
2486		sector_nr += len>>9;
2487		sync_blocks -= (len>>9);
2488	} while (r1_bio->bios[disk]->bi_vcnt < RESYNC_PAGES);
2489 bio_full:
2490	r1_bio->sectors = nr_sectors;
2491
 
 
 
 
 
 
 
 
 
 
2492	/* For a user-requested sync, we read all readable devices and do a
2493	 * compare
2494	 */
2495	if (test_bit(MD_RECOVERY_REQUESTED, &mddev->recovery)) {
2496		atomic_set(&r1_bio->remaining, read_targets);
2497		for (i = 0; i < conf->raid_disks * 2 && read_targets; i++) {
2498			bio = r1_bio->bios[i];
2499			if (bio->bi_end_io == end_sync_read) {
2500				read_targets--;
2501				md_sync_acct(bio->bi_bdev, nr_sectors);
2502				generic_make_request(bio);
 
 
2503			}
2504		}
2505	} else {
2506		atomic_set(&r1_bio->remaining, 1);
2507		bio = r1_bio->bios[r1_bio->read_disk];
2508		md_sync_acct(bio->bi_bdev, nr_sectors);
2509		generic_make_request(bio);
2510
 
2511	}
2512	return nr_sectors;
2513}
2514
2515static sector_t raid1_size(struct mddev *mddev, sector_t sectors, int raid_disks)
2516{
2517	if (sectors)
2518		return sectors;
2519
2520	return mddev->dev_sectors;
2521}
2522
2523static struct r1conf *setup_conf(struct mddev *mddev)
2524{
2525	struct r1conf *conf;
2526	int i;
2527	struct mirror_info *disk;
2528	struct md_rdev *rdev;
2529	int err = -ENOMEM;
2530
2531	conf = kzalloc(sizeof(struct r1conf), GFP_KERNEL);
2532	if (!conf)
2533		goto abort;
2534
2535	conf->mirrors = kzalloc(sizeof(struct mirror_info)
2536				* mddev->raid_disks * 2,
2537				 GFP_KERNEL);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
2538	if (!conf->mirrors)
2539		goto abort;
2540
2541	conf->tmppage = alloc_page(GFP_KERNEL);
2542	if (!conf->tmppage)
2543		goto abort;
2544
2545	conf->poolinfo = kzalloc(sizeof(*conf->poolinfo), GFP_KERNEL);
2546	if (!conf->poolinfo)
2547		goto abort;
2548	conf->poolinfo->raid_disks = mddev->raid_disks * 2;
2549	conf->r1bio_pool = mempool_create(NR_RAID1_BIOS, r1bio_pool_alloc,
2550					  r1bio_pool_free,
2551					  conf->poolinfo);
2552	if (!conf->r1bio_pool)
 
 
 
2553		goto abort;
2554
2555	conf->poolinfo->mddev = mddev;
2556
2557	err = -EINVAL;
2558	spin_lock_init(&conf->device_lock);
2559	rdev_for_each(rdev, mddev) {
2560		struct request_queue *q;
2561		int disk_idx = rdev->raid_disk;
2562		if (disk_idx >= mddev->raid_disks
2563		    || disk_idx < 0)
2564			continue;
2565		if (test_bit(Replacement, &rdev->flags))
2566			disk = conf->mirrors + conf->raid_disks + disk_idx;
2567		else
2568			disk = conf->mirrors + disk_idx;
2569
2570		if (disk->rdev)
2571			goto abort;
2572		disk->rdev = rdev;
2573		q = bdev_get_queue(rdev->bdev);
2574		if (q->merge_bvec_fn)
2575			mddev->merge_check_needed = 1;
2576
2577		disk->head_position = 0;
 
2578	}
2579	conf->raid_disks = mddev->raid_disks;
2580	conf->mddev = mddev;
2581	INIT_LIST_HEAD(&conf->retry_list);
 
2582
2583	spin_lock_init(&conf->resync_lock);
2584	init_waitqueue_head(&conf->wait_barrier);
2585
2586	bio_list_init(&conf->pending_bio_list);
2587	conf->pending_count = 0;
2588	conf->recovery_disabled = mddev->recovery_disabled - 1;
2589
2590	err = -EIO;
2591	conf->last_used = -1;
2592	for (i = 0; i < conf->raid_disks * 2; i++) {
2593
2594		disk = conf->mirrors + i;
2595
2596		if (i < conf->raid_disks &&
2597		    disk[conf->raid_disks].rdev) {
2598			/* This slot has a replacement. */
2599			if (!disk->rdev) {
2600				/* No original, just make the replacement
2601				 * a recovering spare
2602				 */
2603				disk->rdev =
2604					disk[conf->raid_disks].rdev;
2605				disk[conf->raid_disks].rdev = NULL;
2606			} else if (!test_bit(In_sync, &disk->rdev->flags))
2607				/* Original is not in_sync - bad */
2608				goto abort;
2609		}
2610
2611		if (!disk->rdev ||
2612		    !test_bit(In_sync, &disk->rdev->flags)) {
2613			disk->head_position = 0;
2614			if (disk->rdev &&
2615			    (disk->rdev->saved_raid_disk < 0))
2616				conf->fullsync = 1;
2617		} else if (conf->last_used < 0)
2618			/*
2619			 * The first working device is used as a
2620			 * starting point to read balancing.
2621			 */
2622			conf->last_used = i;
2623	}
2624
2625	if (conf->last_used < 0) {
2626		printk(KERN_ERR "md/raid1:%s: no operational mirrors\n",
2627		       mdname(mddev));
2628		goto abort;
2629	}
2630	err = -ENOMEM;
2631	conf->thread = md_register_thread(raid1d, mddev, "raid1");
2632	if (!conf->thread) {
2633		printk(KERN_ERR
2634		       "md/raid1:%s: couldn't allocate thread\n",
2635		       mdname(mddev));
2636		goto abort;
2637	}
2638
2639	return conf;
2640
2641 abort:
2642	if (conf) {
2643		if (conf->r1bio_pool)
2644			mempool_destroy(conf->r1bio_pool);
2645		kfree(conf->mirrors);
2646		safe_put_page(conf->tmppage);
2647		kfree(conf->poolinfo);
 
 
 
 
 
2648		kfree(conf);
2649	}
2650	return ERR_PTR(err);
2651}
2652
2653static int stop(struct mddev *mddev);
2654static int run(struct mddev *mddev)
2655{
2656	struct r1conf *conf;
2657	int i;
2658	struct md_rdev *rdev;
2659	int ret;
2660
2661	if (mddev->level != 1) {
2662		printk(KERN_ERR "md/raid1:%s: raid level not set to mirroring (%d)\n",
2663		       mdname(mddev), mddev->level);
2664		return -EIO;
2665	}
2666	if (mddev->reshape_position != MaxSector) {
2667		printk(KERN_ERR "md/raid1:%s: reshape_position set but not supported\n",
2668		       mdname(mddev));
2669		return -EIO;
2670	}
 
 
2671	/*
2672	 * copy the already verified devices into our private RAID1
2673	 * bookkeeping area. [whatever we allocate in run(),
2674	 * should be freed in stop()]
2675	 */
2676	if (mddev->private == NULL)
2677		conf = setup_conf(mddev);
2678	else
2679		conf = mddev->private;
2680
2681	if (IS_ERR(conf))
2682		return PTR_ERR(conf);
2683
 
 
 
2684	rdev_for_each(rdev, mddev) {
2685		if (!mddev->gendisk)
2686			continue;
2687		disk_stack_limits(mddev->gendisk, rdev->bdev,
2688				  rdev->data_offset << 9);
2689	}
2690
2691	mddev->degraded = 0;
2692	for (i=0; i < conf->raid_disks; i++)
2693		if (conf->mirrors[i].rdev == NULL ||
2694		    !test_bit(In_sync, &conf->mirrors[i].rdev->flags) ||
2695		    test_bit(Faulty, &conf->mirrors[i].rdev->flags))
2696			mddev->degraded++;
 
 
 
 
 
 
 
 
2697
2698	if (conf->raid_disks - mddev->degraded == 1)
2699		mddev->recovery_cp = MaxSector;
2700
2701	if (mddev->recovery_cp != MaxSector)
2702		printk(KERN_NOTICE "md/raid1:%s: not clean"
2703		       " -- starting background reconstruction\n",
2704		       mdname(mddev));
2705	printk(KERN_INFO 
2706		"md/raid1:%s: active with %d out of %d mirrors\n",
2707		mdname(mddev), mddev->raid_disks - mddev->degraded, 
2708		mddev->raid_disks);
2709
2710	/*
2711	 * Ok, everything is just fine now
2712	 */
2713	mddev->thread = conf->thread;
2714	conf->thread = NULL;
2715	mddev->private = conf;
 
2716
2717	md_set_array_sectors(mddev, raid1_size(mddev, 0, 0));
2718
2719	if (mddev->queue) {
2720		mddev->queue->backing_dev_info.congested_fn = raid1_congested;
2721		mddev->queue->backing_dev_info.congested_data = mddev;
2722		blk_queue_merge_bvec(mddev->queue, raid1_mergeable_bvec);
2723	}
 
2724
2725	ret =  md_integrity_register(mddev);
2726	if (ret)
2727		stop(mddev);
2728	return ret;
2729}
2730
2731static int stop(struct mddev *mddev)
2732{
2733	struct r1conf *conf = mddev->private;
2734	struct bitmap *bitmap = mddev->bitmap;
2735
2736	/* wait for behind writes to complete */
2737	if (bitmap && atomic_read(&bitmap->behind_writes) > 0) {
2738		printk(KERN_INFO "md/raid1:%s: behind writes in progress - waiting to stop.\n",
2739		       mdname(mddev));
2740		/* need to kick something here to make sure I/O goes? */
2741		wait_event(bitmap->behind_wait,
2742			   atomic_read(&bitmap->behind_writes) == 0);
2743	}
2744
2745	raise_barrier(conf);
2746	lower_barrier(conf);
2747
2748	md_unregister_thread(&mddev->thread);
2749	if (conf->r1bio_pool)
2750		mempool_destroy(conf->r1bio_pool);
2751	kfree(conf->mirrors);
 
2752	kfree(conf->poolinfo);
 
 
 
 
 
2753	kfree(conf);
2754	mddev->private = NULL;
2755	return 0;
2756}
2757
2758static int raid1_resize(struct mddev *mddev, sector_t sectors)
2759{
2760	/* no resync is happening, and there is enough space
2761	 * on all devices, so we can resize.
2762	 * We need to make sure resync covers any new space.
2763	 * If the array is shrinking we should possibly wait until
2764	 * any io in the removed space completes, but it hardly seems
2765	 * worth it.
2766	 */
2767	sector_t newsize = raid1_size(mddev, sectors, 0);
2768	if (mddev->external_size &&
2769	    mddev->array_sectors > newsize)
2770		return -EINVAL;
2771	if (mddev->bitmap) {
2772		int ret = bitmap_resize(mddev->bitmap, newsize, 0, 0);
2773		if (ret)
2774			return ret;
2775	}
2776	md_set_array_sectors(mddev, newsize);
2777	set_capacity(mddev->gendisk, mddev->array_sectors);
2778	revalidate_disk(mddev->gendisk);
2779	if (sectors > mddev->dev_sectors &&
2780	    mddev->recovery_cp > mddev->dev_sectors) {
2781		mddev->recovery_cp = mddev->dev_sectors;
2782		set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
2783	}
2784	mddev->dev_sectors = sectors;
2785	mddev->resync_max_sectors = sectors;
2786	return 0;
2787}
2788
2789static int raid1_reshape(struct mddev *mddev)
2790{
2791	/* We need to:
2792	 * 1/ resize the r1bio_pool
2793	 * 2/ resize conf->mirrors
2794	 *
2795	 * We allocate a new r1bio_pool if we can.
2796	 * Then raise a device barrier and wait until all IO stops.
2797	 * Then resize conf->mirrors and swap in the new r1bio pool.
2798	 *
2799	 * At the same time, we "pack" the devices so that all the missing
2800	 * devices have the higher raid_disk numbers.
2801	 */
2802	mempool_t *newpool, *oldpool;
2803	struct pool_info *newpoolinfo;
2804	struct mirror_info *newmirrors;
2805	struct r1conf *conf = mddev->private;
2806	int cnt, raid_disks;
2807	unsigned long flags;
2808	int d, d2, err;
 
 
 
 
2809
2810	/* Cannot change chunk_size, layout, or level */
2811	if (mddev->chunk_sectors != mddev->new_chunk_sectors ||
2812	    mddev->layout != mddev->new_layout ||
2813	    mddev->level != mddev->new_level) {
2814		mddev->new_chunk_sectors = mddev->chunk_sectors;
2815		mddev->new_layout = mddev->layout;
2816		mddev->new_level = mddev->level;
2817		return -EINVAL;
2818	}
2819
2820	err = md_allow_write(mddev);
2821	if (err)
2822		return err;
2823
2824	raid_disks = mddev->raid_disks + mddev->delta_disks;
2825
2826	if (raid_disks < conf->raid_disks) {
2827		cnt=0;
2828		for (d= 0; d < conf->raid_disks; d++)
2829			if (conf->mirrors[d].rdev)
2830				cnt++;
2831		if (cnt > raid_disks)
2832			return -EBUSY;
2833	}
2834
2835	newpoolinfo = kmalloc(sizeof(*newpoolinfo), GFP_KERNEL);
2836	if (!newpoolinfo)
2837		return -ENOMEM;
2838	newpoolinfo->mddev = mddev;
2839	newpoolinfo->raid_disks = raid_disks * 2;
2840
2841	newpool = mempool_create(NR_RAID1_BIOS, r1bio_pool_alloc,
2842				 r1bio_pool_free, newpoolinfo);
2843	if (!newpool) {
2844		kfree(newpoolinfo);
2845		return -ENOMEM;
2846	}
2847	newmirrors = kzalloc(sizeof(struct mirror_info) * raid_disks * 2,
 
2848			     GFP_KERNEL);
2849	if (!newmirrors) {
2850		kfree(newpoolinfo);
2851		mempool_destroy(newpool);
2852		return -ENOMEM;
2853	}
2854
2855	raise_barrier(conf);
2856
2857	/* ok, everything is stopped */
2858	oldpool = conf->r1bio_pool;
2859	conf->r1bio_pool = newpool;
2860
2861	for (d = d2 = 0; d < conf->raid_disks; d++) {
2862		struct md_rdev *rdev = conf->mirrors[d].rdev;
2863		if (rdev && rdev->raid_disk != d2) {
2864			sysfs_unlink_rdev(mddev, rdev);
2865			rdev->raid_disk = d2;
2866			sysfs_unlink_rdev(mddev, rdev);
2867			if (sysfs_link_rdev(mddev, rdev))
2868				printk(KERN_WARNING
2869				       "md/raid1:%s: cannot register rd%d\n",
2870				       mdname(mddev), rdev->raid_disk);
2871		}
2872		if (rdev)
2873			newmirrors[d2++].rdev = rdev;
2874	}
2875	kfree(conf->mirrors);
2876	conf->mirrors = newmirrors;
2877	kfree(conf->poolinfo);
2878	conf->poolinfo = newpoolinfo;
2879
2880	spin_lock_irqsave(&conf->device_lock, flags);
2881	mddev->degraded += (raid_disks - conf->raid_disks);
2882	spin_unlock_irqrestore(&conf->device_lock, flags);
2883	conf->raid_disks = mddev->raid_disks = raid_disks;
2884	mddev->delta_disks = 0;
2885
2886	conf->last_used = 0; /* just make sure it is in-range */
2887	lower_barrier(conf);
2888
 
2889	set_bit(MD_RECOVERY_NEEDED, &mddev->recovery);
2890	md_wakeup_thread(mddev->thread);
2891
2892	mempool_destroy(oldpool);
2893	return 0;
2894}
2895
2896static void raid1_quiesce(struct mddev *mddev, int state)
2897{
2898	struct r1conf *conf = mddev->private;
2899
2900	switch(state) {
2901	case 2: /* wake for suspend */
2902		wake_up(&conf->wait_barrier);
2903		break;
2904	case 1:
2905		raise_barrier(conf);
2906		break;
2907	case 0:
2908		lower_barrier(conf);
2909		break;
2910	}
2911}
2912
2913static void *raid1_takeover(struct mddev *mddev)
2914{
2915	/* raid1 can take over:
2916	 *  raid5 with 2 devices, any layout or chunk size
2917	 */
2918	if (mddev->level == 5 && mddev->raid_disks == 2) {
2919		struct r1conf *conf;
2920		mddev->new_level = 1;
2921		mddev->new_layout = 0;
2922		mddev->new_chunk_sectors = 0;
2923		conf = setup_conf(mddev);
2924		if (!IS_ERR(conf))
2925			conf->barrier = 1;
 
 
 
 
2926		return conf;
2927	}
2928	return ERR_PTR(-EINVAL);
2929}
2930
2931static struct md_personality raid1_personality =
2932{
2933	.name		= "raid1",
2934	.level		= 1,
2935	.owner		= THIS_MODULE,
2936	.make_request	= make_request,
2937	.run		= run,
2938	.stop		= stop,
2939	.status		= status,
2940	.error_handler	= error,
2941	.hot_add_disk	= raid1_add_disk,
2942	.hot_remove_disk= raid1_remove_disk,
2943	.spare_active	= raid1_spare_active,
2944	.sync_request	= sync_request,
2945	.resize		= raid1_resize,
2946	.size		= raid1_size,
2947	.check_reshape	= raid1_reshape,
2948	.quiesce	= raid1_quiesce,
2949	.takeover	= raid1_takeover,
2950};
2951
2952static int __init raid_init(void)
2953{
2954	return register_md_personality(&raid1_personality);
2955}
2956
2957static void raid_exit(void)
2958{
2959	unregister_md_personality(&raid1_personality);
2960}
2961
2962module_init(raid_init);
2963module_exit(raid_exit);
2964MODULE_LICENSE("GPL");
2965MODULE_DESCRIPTION("RAID1 (mirroring) personality for MD");
2966MODULE_ALIAS("md-personality-3"); /* RAID1 */
2967MODULE_ALIAS("md-raid1");
2968MODULE_ALIAS("md-level-1");
2969
2970module_param(max_queued_requests, int, S_IRUGO|S_IWUSR);