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1 /*
2 * CDDL HEADER START
3 *
4 * The contents of this file are subject to the terms of the
5 * Common Development and Distribution License (the "License").
6 * You may not use this file except in compliance with the License.
7 *
8 * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9 * or https://opensource.org/licenses/CDDL-1.0.
10 * See the License for the specific language governing permissions
11 * and limitations under the License.
12 *
13 * When distributing Covered Code, include this CDDL HEADER in each
14 * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15 * If applicable, add the following below this CDDL HEADER, with the
16 * fields enclosed by brackets "[]" replaced with your own identifying
17 * information: Portions Copyright [yyyy] [name of copyright owner]
18 *
19 * CDDL HEADER END
20 */
21 /*
22 * Copyright (C) 2008-2010 Lawrence Livermore National Security, LLC.
23 * Produced at Lawrence Livermore National Laboratory (cf, DISCLAIMER).
24 * Rewritten for Linux by Brian Behlendorf <behlendorf1@llnl.gov>.
25 * LLNL-CODE-403049.
26 * Copyright (c) 2012, 2019 by Delphix. All rights reserved.
27 */
28
29 #include <sys/zfs_context.h>
30 #include <sys/spa_impl.h>
31 #include <sys/vdev_disk.h>
32 #include <sys/vdev_impl.h>
33 #include <sys/vdev_trim.h>
34 #include <sys/abd.h>
35 #include <sys/fs/zfs.h>
36 #include <sys/zio.h>
37 #include <linux/blkpg.h>
38 #include <linux/msdos_fs.h>
39 #include <linux/vfs_compat.h>
40 #ifdef HAVE_LINUX_BLK_CGROUP_HEADER
41 #include <linux/blk-cgroup.h>
42 #endif
43
44 typedef struct vdev_disk {
45 struct block_device *vd_bdev;
46 krwlock_t vd_lock;
47 } vdev_disk_t;
48
49 /*
50 * Unique identifier for the exclusive vdev holder.
51 */
52 static void *zfs_vdev_holder = VDEV_HOLDER;
53
54 /*
55 * Wait up to zfs_vdev_open_timeout_ms milliseconds before determining the
56 * device is missing. The missing path may be transient since the links
57 * can be briefly removed and recreated in response to udev events.
58 */
59 static unsigned zfs_vdev_open_timeout_ms = 1000;
60
61 /*
62 * Size of the "reserved" partition, in blocks.
63 */
64 #define EFI_MIN_RESV_SIZE (16 * 1024)
65
66 /*
67 * Virtual device vector for disks.
68 */
69 typedef struct dio_request {
70 zio_t *dr_zio; /* Parent ZIO */
71 atomic_t dr_ref; /* References */
72 int dr_error; /* Bio error */
73 int dr_bio_count; /* Count of bio's */
74 struct bio *dr_bio[0]; /* Attached bio's */
75 } dio_request_t;
76
77 static fmode_t
78 vdev_bdev_mode(spa_mode_t spa_mode)
79 {
80 fmode_t mode = 0;
81
82 if (spa_mode & SPA_MODE_READ)
83 mode |= FMODE_READ;
84
85 if (spa_mode & SPA_MODE_WRITE)
86 mode |= FMODE_WRITE;
87
88 return (mode);
89 }
90
91 /*
92 * Returns the usable capacity (in bytes) for the partition or disk.
93 */
94 static uint64_t
95 bdev_capacity(struct block_device *bdev)
96 {
97 return (i_size_read(bdev->bd_inode));
98 }
99
100 #if !defined(HAVE_BDEV_WHOLE)
101 static inline struct block_device *
102 bdev_whole(struct block_device *bdev)
103 {
104 return (bdev->bd_contains);
105 }
106 #endif
107
108 #if defined(HAVE_BDEVNAME)
109 #define vdev_bdevname(bdev, name) bdevname(bdev, name)
110 #else
111 static inline void
112 vdev_bdevname(struct block_device *bdev, char *name)
113 {
114 snprintf(name, BDEVNAME_SIZE, "%pg", bdev);
115 }
116 #endif
117
118 /*
119 * Returns the maximum expansion capacity of the block device (in bytes).
120 *
121 * It is possible to expand a vdev when it has been created as a wholedisk
122 * and the containing block device has increased in capacity. Or when the
123 * partition containing the pool has been manually increased in size.
124 *
125 * This function is only responsible for calculating the potential expansion
126 * size so it can be reported by 'zpool list'. The efi_use_whole_disk() is
127 * responsible for verifying the expected partition layout in the wholedisk
128 * case, and updating the partition table if appropriate. Once the partition
129 * size has been increased the additional capacity will be visible using
130 * bdev_capacity().
131 *
132 * The returned maximum expansion capacity is always expected to be larger, or
133 * at the very least equal, to its usable capacity to prevent overestimating
134 * the pool expandsize.
135 */
136 static uint64_t
137 bdev_max_capacity(struct block_device *bdev, uint64_t wholedisk)
138 {
139 uint64_t psize;
140 int64_t available;
141
142 if (wholedisk && bdev != bdev_whole(bdev)) {
143 /*
144 * When reporting maximum expansion capacity for a wholedisk
145 * deduct any capacity which is expected to be lost due to
146 * alignment restrictions. Over reporting this value isn't
147 * harmful and would only result in slightly less capacity
148 * than expected post expansion.
149 * The estimated available space may be slightly smaller than
150 * bdev_capacity() for devices where the number of sectors is
151 * not a multiple of the alignment size and the partition layout
152 * is keeping less than PARTITION_END_ALIGNMENT bytes after the
153 * "reserved" EFI partition: in such cases return the device
154 * usable capacity.
155 */
156 available = i_size_read(bdev_whole(bdev)->bd_inode) -
157 ((EFI_MIN_RESV_SIZE + NEW_START_BLOCK +
158 PARTITION_END_ALIGNMENT) << SECTOR_BITS);
159 psize = MAX(available, bdev_capacity(bdev));
160 } else {
161 psize = bdev_capacity(bdev);
162 }
163
164 return (psize);
165 }
166
167 static void
168 vdev_disk_error(zio_t *zio)
169 {
170 /*
171 * This function can be called in interrupt context, for instance while
172 * handling IRQs coming from a misbehaving disk device; use printk()
173 * which is safe from any context.
174 */
175 printk(KERN_WARNING "zio pool=%s vdev=%s error=%d type=%d "
176 "offset=%llu size=%llu flags=%x\n", spa_name(zio->io_spa),
177 zio->io_vd->vdev_path, zio->io_error, zio->io_type,
178 (u_longlong_t)zio->io_offset, (u_longlong_t)zio->io_size,
179 zio->io_flags);
180 }
181
182 static void
183 vdev_disk_kobj_evt_post(vdev_t *v)
184 {
185 vdev_disk_t *vd = v->vdev_tsd;
186 if (vd && vd->vd_bdev) {
187 spl_signal_kobj_evt(vd->vd_bdev);
188 } else {
189 vdev_dbgmsg(v, "vdev_disk_t is NULL for VDEV:%s\n",
190 v->vdev_path);
191 }
192 }
193
194 static int
195 vdev_disk_open(vdev_t *v, uint64_t *psize, uint64_t *max_psize,
196 uint64_t *logical_ashift, uint64_t *physical_ashift)
197 {
198 struct block_device *bdev;
199 fmode_t mode = vdev_bdev_mode(spa_mode(v->vdev_spa));
200 hrtime_t timeout = MSEC2NSEC(zfs_vdev_open_timeout_ms);
201 vdev_disk_t *vd;
202
203 /* Must have a pathname and it must be absolute. */
204 if (v->vdev_path == NULL || v->vdev_path[0] != '/') {
205 v->vdev_stat.vs_aux = VDEV_AUX_BAD_LABEL;
206 vdev_dbgmsg(v, "invalid vdev_path");
207 return (SET_ERROR(EINVAL));
208 }
209
210 /*
211 * Reopen the device if it is currently open. When expanding a
212 * partition force re-scanning the partition table if userland
213 * did not take care of this already. We need to do this while closed
214 * in order to get an accurate updated block device size. Then
215 * since udev may need to recreate the device links increase the
216 * open retry timeout before reporting the device as unavailable.
217 */
218 vd = v->vdev_tsd;
219 if (vd) {
220 char disk_name[BDEVNAME_SIZE + 6] = "/dev/";
221 boolean_t reread_part = B_FALSE;
222
223 rw_enter(&vd->vd_lock, RW_WRITER);
224 bdev = vd->vd_bdev;
225 vd->vd_bdev = NULL;
226
227 if (bdev) {
228 if (v->vdev_expanding && bdev != bdev_whole(bdev)) {
229 vdev_bdevname(bdev_whole(bdev), disk_name + 5);
230 /*
231 * If userland has BLKPG_RESIZE_PARTITION,
232 * then it should have updated the partition
233 * table already. We can detect this by
234 * comparing our current physical size
235 * with that of the device. If they are
236 * the same, then we must not have
237 * BLKPG_RESIZE_PARTITION or it failed to
238 * update the partition table online. We
239 * fallback to rescanning the partition
240 * table from the kernel below. However,
241 * if the capacity already reflects the
242 * updated partition, then we skip
243 * rescanning the partition table here.
244 */
245 if (v->vdev_psize == bdev_capacity(bdev))
246 reread_part = B_TRUE;
247 }
248
249 blkdev_put(bdev, mode | FMODE_EXCL);
250 }
251
252 if (reread_part) {
253 bdev = blkdev_get_by_path(disk_name, mode | FMODE_EXCL,
254 zfs_vdev_holder);
255 if (!IS_ERR(bdev)) {
256 int error = vdev_bdev_reread_part(bdev);
257 blkdev_put(bdev, mode | FMODE_EXCL);
258 if (error == 0) {
259 timeout = MSEC2NSEC(
260 zfs_vdev_open_timeout_ms * 2);
261 }
262 }
263 }
264 } else {
265 vd = kmem_zalloc(sizeof (vdev_disk_t), KM_SLEEP);
266
267 rw_init(&vd->vd_lock, NULL, RW_DEFAULT, NULL);
268 rw_enter(&vd->vd_lock, RW_WRITER);
269 }
270
271 /*
272 * Devices are always opened by the path provided at configuration
273 * time. This means that if the provided path is a udev by-id path
274 * then drives may be re-cabled without an issue. If the provided
275 * path is a udev by-path path, then the physical location information
276 * will be preserved. This can be critical for more complicated
277 * configurations where drives are located in specific physical
278 * locations to maximize the systems tolerance to component failure.
279 *
280 * Alternatively, you can provide your own udev rule to flexibly map
281 * the drives as you see fit. It is not advised that you use the
282 * /dev/[hd]d devices which may be reordered due to probing order.
283 * Devices in the wrong locations will be detected by the higher
284 * level vdev validation.
285 *
286 * The specified paths may be briefly removed and recreated in
287 * response to udev events. This should be exceptionally unlikely
288 * because the zpool command makes every effort to verify these paths
289 * have already settled prior to reaching this point. Therefore,
290 * a ENOENT failure at this point is highly likely to be transient
291 * and it is reasonable to sleep and retry before giving up. In
292 * practice delays have been observed to be on the order of 100ms.
293 *
294 * When ERESTARTSYS is returned it indicates the block device is
295 * a zvol which could not be opened due to the deadlock detection
296 * logic in zvol_open(). Extend the timeout and retry the open
297 * subsequent attempts are expected to eventually succeed.
298 */
299 hrtime_t start = gethrtime();
300 bdev = ERR_PTR(-ENXIO);
301 while (IS_ERR(bdev) && ((gethrtime() - start) < timeout)) {
302 bdev = blkdev_get_by_path(v->vdev_path, mode | FMODE_EXCL,
303 zfs_vdev_holder);
304 if (unlikely(PTR_ERR(bdev) == -ENOENT)) {
305 /*
306 * There is no point of waiting since device is removed
307 * explicitly
308 */
309 if (v->vdev_removed)
310 break;
311
312 schedule_timeout(MSEC_TO_TICK(10));
313 } else if (unlikely(PTR_ERR(bdev) == -ERESTARTSYS)) {
314 timeout = MSEC2NSEC(zfs_vdev_open_timeout_ms * 10);
315 continue;
316 } else if (IS_ERR(bdev)) {
317 break;
318 }
319 }
320
321 if (IS_ERR(bdev)) {
322 int error = -PTR_ERR(bdev);
323 vdev_dbgmsg(v, "open error=%d timeout=%llu/%llu", error,
324 (u_longlong_t)(gethrtime() - start),
325 (u_longlong_t)timeout);
326 vd->vd_bdev = NULL;
327 v->vdev_tsd = vd;
328 rw_exit(&vd->vd_lock);
329 return (SET_ERROR(error));
330 } else {
331 vd->vd_bdev = bdev;
332 v->vdev_tsd = vd;
333 rw_exit(&vd->vd_lock);
334 }
335
336 /* Determine the physical block size */
337 int physical_block_size = bdev_physical_block_size(vd->vd_bdev);
338
339 /* Determine the logical block size */
340 int logical_block_size = bdev_logical_block_size(vd->vd_bdev);
341
342 /* Clear the nowritecache bit, causes vdev_reopen() to try again. */
343 v->vdev_nowritecache = B_FALSE;
344
345 /* Set when device reports it supports TRIM. */
346 v->vdev_has_trim = bdev_discard_supported(vd->vd_bdev);
347
348 /* Set when device reports it supports secure TRIM. */
349 v->vdev_has_securetrim = bdev_secure_discard_supported(vd->vd_bdev);
350
351 /* Inform the ZIO pipeline that we are non-rotational */
352 v->vdev_nonrot = blk_queue_nonrot(bdev_get_queue(vd->vd_bdev));
353
354 /* Physical volume size in bytes for the partition */
355 *psize = bdev_capacity(vd->vd_bdev);
356
357 /* Physical volume size in bytes including possible expansion space */
358 *max_psize = bdev_max_capacity(vd->vd_bdev, v->vdev_wholedisk);
359
360 /* Based on the minimum sector size set the block size */
361 *physical_ashift = highbit64(MAX(physical_block_size,
362 SPA_MINBLOCKSIZE)) - 1;
363
364 *logical_ashift = highbit64(MAX(logical_block_size,
365 SPA_MINBLOCKSIZE)) - 1;
366
367 return (0);
368 }
369
370 static void
371 vdev_disk_close(vdev_t *v)
372 {
373 vdev_disk_t *vd = v->vdev_tsd;
374
375 if (v->vdev_reopening || vd == NULL)
376 return;
377
378 if (vd->vd_bdev != NULL) {
379 blkdev_put(vd->vd_bdev,
380 vdev_bdev_mode(spa_mode(v->vdev_spa)) | FMODE_EXCL);
381 }
382
383 rw_destroy(&vd->vd_lock);
384 kmem_free(vd, sizeof (vdev_disk_t));
385 v->vdev_tsd = NULL;
386 }
387
388 static dio_request_t *
389 vdev_disk_dio_alloc(int bio_count)
390 {
391 dio_request_t *dr = kmem_zalloc(sizeof (dio_request_t) +
392 sizeof (struct bio *) * bio_count, KM_SLEEP);
393 atomic_set(&dr->dr_ref, 0);
394 dr->dr_bio_count = bio_count;
395 dr->dr_error = 0;
396
397 for (int i = 0; i < dr->dr_bio_count; i++)
398 dr->dr_bio[i] = NULL;
399
400 return (dr);
401 }
402
403 static void
404 vdev_disk_dio_free(dio_request_t *dr)
405 {
406 int i;
407
408 for (i = 0; i < dr->dr_bio_count; i++)
409 if (dr->dr_bio[i])
410 bio_put(dr->dr_bio[i]);
411
412 kmem_free(dr, sizeof (dio_request_t) +
413 sizeof (struct bio *) * dr->dr_bio_count);
414 }
415
416 static void
417 vdev_disk_dio_get(dio_request_t *dr)
418 {
419 atomic_inc(&dr->dr_ref);
420 }
421
422 static int
423 vdev_disk_dio_put(dio_request_t *dr)
424 {
425 int rc = atomic_dec_return(&dr->dr_ref);
426
427 /*
428 * Free the dio_request when the last reference is dropped and
429 * ensure zio_interpret is called only once with the correct zio
430 */
431 if (rc == 0) {
432 zio_t *zio = dr->dr_zio;
433 int error = dr->dr_error;
434
435 vdev_disk_dio_free(dr);
436
437 if (zio) {
438 zio->io_error = error;
439 ASSERT3S(zio->io_error, >=, 0);
440 if (zio->io_error)
441 vdev_disk_error(zio);
442
443 zio_delay_interrupt(zio);
444 }
445 }
446
447 return (rc);
448 }
449
450 BIO_END_IO_PROTO(vdev_disk_physio_completion, bio, error)
451 {
452 dio_request_t *dr = bio->bi_private;
453 int rc;
454
455 if (dr->dr_error == 0) {
456 #ifdef HAVE_1ARG_BIO_END_IO_T
457 dr->dr_error = BIO_END_IO_ERROR(bio);
458 #else
459 if (error)
460 dr->dr_error = -(error);
461 else if (!test_bit(BIO_UPTODATE, &bio->bi_flags))
462 dr->dr_error = EIO;
463 #endif
464 }
465
466 /* Drop reference acquired by __vdev_disk_physio */
467 rc = vdev_disk_dio_put(dr);
468 }
469
470 static inline void
471 vdev_submit_bio_impl(struct bio *bio)
472 {
473 #ifdef HAVE_1ARG_SUBMIT_BIO
474 (void) submit_bio(bio);
475 #else
476 (void) submit_bio(bio_data_dir(bio), bio);
477 #endif
478 }
479
480 /*
481 * preempt_schedule_notrace is GPL-only which breaks the ZFS build, so
482 * replace it with preempt_schedule under the following condition:
483 */
484 #if defined(CONFIG_ARM64) && \
485 defined(CONFIG_PREEMPTION) && \
486 defined(CONFIG_BLK_CGROUP)
487 #define preempt_schedule_notrace(x) preempt_schedule(x)
488 #endif
489
490 /*
491 * As for the Linux 5.18 kernel bio_alloc() expects a block_device struct
492 * as an argument removing the need to set it with bio_set_dev(). This
493 * removes the need for all of the following compatibility code.
494 */
495 #if !defined(HAVE_BIO_ALLOC_4ARG)
496
497 #ifdef HAVE_BIO_SET_DEV
498 #if defined(CONFIG_BLK_CGROUP) && defined(HAVE_BIO_SET_DEV_GPL_ONLY)
499 /*
500 * The Linux 5.5 kernel updated percpu_ref_tryget() which is inlined by
501 * blkg_tryget() to use rcu_read_lock() instead of rcu_read_lock_sched().
502 * As a side effect the function was converted to GPL-only. Define our
503 * own version when needed which uses rcu_read_lock_sched().
504 *
505 * The Linux 5.17 kernel split linux/blk-cgroup.h into a private and a public
506 * part, moving blkg_tryget into the private one. Define our own version.
507 */
508 #if defined(HAVE_BLKG_TRYGET_GPL_ONLY) || !defined(HAVE_BLKG_TRYGET)
509 static inline bool
510 vdev_blkg_tryget(struct blkcg_gq *blkg)
511 {
512 struct percpu_ref *ref = &blkg->refcnt;
513 unsigned long __percpu *count;
514 bool rc;
515
516 rcu_read_lock_sched();
517
518 if (__ref_is_percpu(ref, &count)) {
519 this_cpu_inc(*count);
520 rc = true;
521 } else {
522 #ifdef ZFS_PERCPU_REF_COUNT_IN_DATA
523 rc = atomic_long_inc_not_zero(&ref->data->count);
524 #else
525 rc = atomic_long_inc_not_zero(&ref->count);
526 #endif
527 }
528
529 rcu_read_unlock_sched();
530
531 return (rc);
532 }
533 #else
534 #define vdev_blkg_tryget(bg) blkg_tryget(bg)
535 #endif
536 #ifdef HAVE_BIO_SET_DEV_MACRO
537 /*
538 * The Linux 5.0 kernel updated the bio_set_dev() macro so it calls the
539 * GPL-only bio_associate_blkg() symbol thus inadvertently converting
540 * the entire macro. Provide a minimal version which always assigns the
541 * request queue's root_blkg to the bio.
542 */
543 static inline void
544 vdev_bio_associate_blkg(struct bio *bio)
545 {
546 #if defined(HAVE_BIO_BDEV_DISK)
547 struct request_queue *q = bio->bi_bdev->bd_disk->queue;
548 #else
549 struct request_queue *q = bio->bi_disk->queue;
550 #endif
551
552 ASSERT3P(q, !=, NULL);
553 ASSERT3P(bio->bi_blkg, ==, NULL);
554
555 if (q->root_blkg && vdev_blkg_tryget(q->root_blkg))
556 bio->bi_blkg = q->root_blkg;
557 }
558
559 #define bio_associate_blkg vdev_bio_associate_blkg
560 #else
561 static inline void
562 vdev_bio_set_dev(struct bio *bio, struct block_device *bdev)
563 {
564 #if defined(HAVE_BIO_BDEV_DISK)
565 struct request_queue *q = bdev->bd_disk->queue;
566 #else
567 struct request_queue *q = bio->bi_disk->queue;
568 #endif
569 bio_clear_flag(bio, BIO_REMAPPED);
570 if (bio->bi_bdev != bdev)
571 bio_clear_flag(bio, BIO_THROTTLED);
572 bio->bi_bdev = bdev;
573
574 ASSERT3P(q, !=, NULL);
575 ASSERT3P(bio->bi_blkg, ==, NULL);
576
577 if (q->root_blkg && vdev_blkg_tryget(q->root_blkg))
578 bio->bi_blkg = q->root_blkg;
579 }
580 #define bio_set_dev vdev_bio_set_dev
581 #endif
582 #endif
583 #else
584 /*
585 * Provide a bio_set_dev() helper macro for pre-Linux 4.14 kernels.
586 */
587 static inline void
588 bio_set_dev(struct bio *bio, struct block_device *bdev)
589 {
590 bio->bi_bdev = bdev;
591 }
592 #endif /* HAVE_BIO_SET_DEV */
593 #endif /* !HAVE_BIO_ALLOC_4ARG */
594
595 static inline void
596 vdev_submit_bio(struct bio *bio)
597 {
598 struct bio_list *bio_list = current->bio_list;
599 current->bio_list = NULL;
600 vdev_submit_bio_impl(bio);
601 current->bio_list = bio_list;
602 }
603
604 static inline struct bio *
605 vdev_bio_alloc(struct block_device *bdev, gfp_t gfp_mask,
606 unsigned short nr_vecs)
607 {
608 struct bio *bio;
609
610 #ifdef HAVE_BIO_ALLOC_4ARG
611 bio = bio_alloc(bdev, nr_vecs, 0, gfp_mask);
612 #else
613 bio = bio_alloc(gfp_mask, nr_vecs);
614 if (likely(bio != NULL))
615 bio_set_dev(bio, bdev);
616 #endif
617
618 return (bio);
619 }
620
621 static inline unsigned int
622 vdev_bio_max_segs(zio_t *zio, int bio_size, uint64_t abd_offset)
623 {
624 unsigned long nr_segs = abd_nr_pages_off(zio->io_abd,
625 bio_size, abd_offset);
626
627 #ifdef HAVE_BIO_MAX_SEGS
628 return (bio_max_segs(nr_segs));
629 #else
630 return (MIN(nr_segs, BIO_MAX_PAGES));
631 #endif
632 }
633
634 static int
635 __vdev_disk_physio(struct block_device *bdev, zio_t *zio,
636 size_t io_size, uint64_t io_offset, int rw, int flags)
637 {
638 dio_request_t *dr;
639 uint64_t abd_offset;
640 uint64_t bio_offset;
641 int bio_size;
642 int bio_count = 16;
643 int error = 0;
644 struct blk_plug plug;
645 unsigned short nr_vecs;
646
647 /*
648 * Accessing outside the block device is never allowed.
649 */
650 if (io_offset + io_size > bdev->bd_inode->i_size) {
651 vdev_dbgmsg(zio->io_vd,
652 "Illegal access %llu size %llu, device size %llu",
653 (u_longlong_t)io_offset,
654 (u_longlong_t)io_size,
655 (u_longlong_t)i_size_read(bdev->bd_inode));
656 return (SET_ERROR(EIO));
657 }
658
659 retry:
660 dr = vdev_disk_dio_alloc(bio_count);
661
662 if (zio && !(zio->io_flags & (ZIO_FLAG_IO_RETRY | ZIO_FLAG_TRYHARD)))
663 bio_set_flags_failfast(bdev, &flags);
664
665 dr->dr_zio = zio;
666
667 /*
668 * Since bio's can have up to BIO_MAX_PAGES=256 iovec's, each of which
669 * is at least 512 bytes and at most PAGESIZE (typically 4K), one bio
670 * can cover at least 128KB and at most 1MB. When the required number
671 * of iovec's exceeds this, we are forced to break the IO in multiple
672 * bio's and wait for them all to complete. This is likely if the
673 * recordsize property is increased beyond 1MB. The default
674 * bio_count=16 should typically accommodate the maximum-size zio of
675 * 16MB.
676 */
677
678 abd_offset = 0;
679 bio_offset = io_offset;
680 bio_size = io_size;
681 for (int i = 0; i <= dr->dr_bio_count; i++) {
682
683 /* Finished constructing bio's for given buffer */
684 if (bio_size <= 0)
685 break;
686
687 /*
688 * If additional bio's are required, we have to retry, but
689 * this should be rare - see the comment above.
690 */
691 if (dr->dr_bio_count == i) {
692 vdev_disk_dio_free(dr);
693 bio_count *= 2;
694 goto retry;
695 }
696
697 nr_vecs = vdev_bio_max_segs(zio, bio_size, abd_offset);
698 dr->dr_bio[i] = vdev_bio_alloc(bdev, GFP_NOIO, nr_vecs);
699 if (unlikely(dr->dr_bio[i] == NULL)) {
700 vdev_disk_dio_free(dr);
701 return (SET_ERROR(ENOMEM));
702 }
703
704 /* Matching put called by vdev_disk_physio_completion */
705 vdev_disk_dio_get(dr);
706
707 BIO_BI_SECTOR(dr->dr_bio[i]) = bio_offset >> 9;
708 dr->dr_bio[i]->bi_end_io = vdev_disk_physio_completion;
709 dr->dr_bio[i]->bi_private = dr;
710 bio_set_op_attrs(dr->dr_bio[i], rw, flags);
711
712 /* Remaining size is returned to become the new size */
713 bio_size = abd_bio_map_off(dr->dr_bio[i], zio->io_abd,
714 bio_size, abd_offset);
715
716 /* Advance in buffer and construct another bio if needed */
717 abd_offset += BIO_BI_SIZE(dr->dr_bio[i]);
718 bio_offset += BIO_BI_SIZE(dr->dr_bio[i]);
719 }
720
721 /* Extra reference to protect dio_request during vdev_submit_bio */
722 vdev_disk_dio_get(dr);
723
724 if (dr->dr_bio_count > 1)
725 blk_start_plug(&plug);
726
727 /* Submit all bio's associated with this dio */
728 for (int i = 0; i < dr->dr_bio_count; i++) {
729 if (dr->dr_bio[i])
730 vdev_submit_bio(dr->dr_bio[i]);
731 }
732
733 if (dr->dr_bio_count > 1)
734 blk_finish_plug(&plug);
735
736 (void) vdev_disk_dio_put(dr);
737
738 return (error);
739 }
740
741 BIO_END_IO_PROTO(vdev_disk_io_flush_completion, bio, error)
742 {
743 zio_t *zio = bio->bi_private;
744 #ifdef HAVE_1ARG_BIO_END_IO_T
745 zio->io_error = BIO_END_IO_ERROR(bio);
746 #else
747 zio->io_error = -error;
748 #endif
749
750 if (zio->io_error && (zio->io_error == EOPNOTSUPP))
751 zio->io_vd->vdev_nowritecache = B_TRUE;
752
753 bio_put(bio);
754 ASSERT3S(zio->io_error, >=, 0);
755 if (zio->io_error)
756 vdev_disk_error(zio);
757 zio_interrupt(zio);
758 }
759
760 static int
761 vdev_disk_io_flush(struct block_device *bdev, zio_t *zio)
762 {
763 struct request_queue *q;
764 struct bio *bio;
765
766 q = bdev_get_queue(bdev);
767 if (!q)
768 return (SET_ERROR(ENXIO));
769
770 bio = vdev_bio_alloc(bdev, GFP_NOIO, 0);
771 if (unlikely(bio == NULL))
772 return (SET_ERROR(ENOMEM));
773
774 bio->bi_end_io = vdev_disk_io_flush_completion;
775 bio->bi_private = zio;
776 bio_set_flush(bio);
777 vdev_submit_bio(bio);
778 invalidate_bdev(bdev);
779
780 return (0);
781 }
782
783 static int
784 vdev_disk_io_trim(zio_t *zio)
785 {
786 vdev_t *v = zio->io_vd;
787 vdev_disk_t *vd = v->vdev_tsd;
788
789 #if defined(HAVE_BLKDEV_ISSUE_SECURE_ERASE)
790 if (zio->io_trim_flags & ZIO_TRIM_SECURE) {
791 return (-blkdev_issue_secure_erase(vd->vd_bdev,
792 zio->io_offset >> 9, zio->io_size >> 9, GFP_NOFS));
793 } else {
794 return (-blkdev_issue_discard(vd->vd_bdev,
795 zio->io_offset >> 9, zio->io_size >> 9, GFP_NOFS));
796 }
797 #elif defined(HAVE_BLKDEV_ISSUE_DISCARD)
798 unsigned long trim_flags = 0;
799 #if defined(BLKDEV_DISCARD_SECURE)
800 if (zio->io_trim_flags & ZIO_TRIM_SECURE)
801 trim_flags |= BLKDEV_DISCARD_SECURE;
802 #endif
803 return (-blkdev_issue_discard(vd->vd_bdev,
804 zio->io_offset >> 9, zio->io_size >> 9, GFP_NOFS, trim_flags));
805 #else
806 #error "Unsupported kernel"
807 #endif
808 }
809
810 static void
811 vdev_disk_io_start(zio_t *zio)
812 {
813 vdev_t *v = zio->io_vd;
814 vdev_disk_t *vd = v->vdev_tsd;
815 int rw, error;
816
817 /*
818 * If the vdev is closed, it's likely in the REMOVED or FAULTED state.
819 * Nothing to be done here but return failure.
820 */
821 if (vd == NULL) {
822 zio->io_error = ENXIO;
823 zio_interrupt(zio);
824 return;
825 }
826
827 rw_enter(&vd->vd_lock, RW_READER);
828
829 /*
830 * If the vdev is closed, it's likely due to a failed reopen and is
831 * in the UNAVAIL state. Nothing to be done here but return failure.
832 */
833 if (vd->vd_bdev == NULL) {
834 rw_exit(&vd->vd_lock);
835 zio->io_error = ENXIO;
836 zio_interrupt(zio);
837 return;
838 }
839
840 switch (zio->io_type) {
841 case ZIO_TYPE_IOCTL:
842
843 if (!vdev_readable(v)) {
844 rw_exit(&vd->vd_lock);
845 zio->io_error = SET_ERROR(ENXIO);
846 zio_interrupt(zio);
847 return;
848 }
849
850 switch (zio->io_cmd) {
851 case DKIOCFLUSHWRITECACHE:
852
853 if (zfs_nocacheflush)
854 break;
855
856 if (v->vdev_nowritecache) {
857 zio->io_error = SET_ERROR(ENOTSUP);
858 break;
859 }
860
861 error = vdev_disk_io_flush(vd->vd_bdev, zio);
862 if (error == 0) {
863 rw_exit(&vd->vd_lock);
864 return;
865 }
866
867 zio->io_error = error;
868
869 break;
870
871 default:
872 zio->io_error = SET_ERROR(ENOTSUP);
873 }
874
875 rw_exit(&vd->vd_lock);
876 zio_execute(zio);
877 return;
878 case ZIO_TYPE_WRITE:
879 rw = WRITE;
880 break;
881
882 case ZIO_TYPE_READ:
883 rw = READ;
884 break;
885
886 case ZIO_TYPE_TRIM:
887 zio->io_error = vdev_disk_io_trim(zio);
888 rw_exit(&vd->vd_lock);
889 zio_interrupt(zio);
890 return;
891
892 default:
893 rw_exit(&vd->vd_lock);
894 zio->io_error = SET_ERROR(ENOTSUP);
895 zio_interrupt(zio);
896 return;
897 }
898
899 zio->io_target_timestamp = zio_handle_io_delay(zio);
900 error = __vdev_disk_physio(vd->vd_bdev, zio,
901 zio->io_size, zio->io_offset, rw, 0);
902 rw_exit(&vd->vd_lock);
903
904 if (error) {
905 zio->io_error = error;
906 zio_interrupt(zio);
907 return;
908 }
909 }
910
911 static void
912 vdev_disk_io_done(zio_t *zio)
913 {
914 /*
915 * If the device returned EIO, we revalidate the media. If it is
916 * determined the media has changed this triggers the asynchronous
917 * removal of the device from the configuration.
918 */
919 if (zio->io_error == EIO) {
920 vdev_t *v = zio->io_vd;
921 vdev_disk_t *vd = v->vdev_tsd;
922
923 if (!zfs_check_disk_status(vd->vd_bdev)) {
924 invalidate_bdev(vd->vd_bdev);
925 v->vdev_remove_wanted = B_TRUE;
926 spa_async_request(zio->io_spa, SPA_ASYNC_REMOVE);
927 }
928 }
929 }
930
931 static void
932 vdev_disk_hold(vdev_t *vd)
933 {
934 ASSERT(spa_config_held(vd->vdev_spa, SCL_STATE, RW_WRITER));
935
936 /* We must have a pathname, and it must be absolute. */
937 if (vd->vdev_path == NULL || vd->vdev_path[0] != '/')
938 return;
939
940 /*
941 * Only prefetch path and devid info if the device has
942 * never been opened.
943 */
944 if (vd->vdev_tsd != NULL)
945 return;
946
947 }
948
949 static void
950 vdev_disk_rele(vdev_t *vd)
951 {
952 ASSERT(spa_config_held(vd->vdev_spa, SCL_STATE, RW_WRITER));
953
954 /* XXX: Implement me as a vnode rele for the device */
955 }
956
957 vdev_ops_t vdev_disk_ops = {
958 .vdev_op_init = NULL,
959 .vdev_op_fini = NULL,
960 .vdev_op_open = vdev_disk_open,
961 .vdev_op_close = vdev_disk_close,
962 .vdev_op_asize = vdev_default_asize,
963 .vdev_op_min_asize = vdev_default_min_asize,
964 .vdev_op_min_alloc = NULL,
965 .vdev_op_io_start = vdev_disk_io_start,
966 .vdev_op_io_done = vdev_disk_io_done,
967 .vdev_op_state_change = NULL,
968 .vdev_op_need_resilver = NULL,
969 .vdev_op_hold = vdev_disk_hold,
970 .vdev_op_rele = vdev_disk_rele,
971 .vdev_op_remap = NULL,
972 .vdev_op_xlate = vdev_default_xlate,
973 .vdev_op_rebuild_asize = NULL,
974 .vdev_op_metaslab_init = NULL,
975 .vdev_op_config_generate = NULL,
976 .vdev_op_nparity = NULL,
977 .vdev_op_ndisks = NULL,
978 .vdev_op_type = VDEV_TYPE_DISK, /* name of this vdev type */
979 .vdev_op_leaf = B_TRUE, /* leaf vdev */
980 .vdev_op_kobj_evt_post = vdev_disk_kobj_evt_post
981 };
982
983 /*
984 * The zfs_vdev_scheduler module option has been deprecated. Setting this
985 * value no longer has any effect. It has not yet been entirely removed
986 * to allow the module to be loaded if this option is specified in the
987 * /etc/modprobe.d/zfs.conf file. The following warning will be logged.
988 */
989 static int
990 param_set_vdev_scheduler(const char *val, zfs_kernel_param_t *kp)
991 {
992 int error = param_set_charp(val, kp);
993 if (error == 0) {
994 printk(KERN_INFO "The 'zfs_vdev_scheduler' module option "
995 "is not supported.\n");
996 }
997
998 return (error);
999 }
1000
1001 static const char *zfs_vdev_scheduler = "unused";
1002 module_param_call(zfs_vdev_scheduler, param_set_vdev_scheduler,
1003 param_get_charp, &zfs_vdev_scheduler, 0644);
1004 MODULE_PARM_DESC(zfs_vdev_scheduler, "I/O scheduler");
1005
1006 int
1007 param_set_min_auto_ashift(const char *buf, zfs_kernel_param_t *kp)
1008 {
1009 uint_t val;
1010 int error;
1011
1012 error = kstrtouint(buf, 0, &val);
1013 if (error < 0)
1014 return (SET_ERROR(error));
1015
1016 if (val < ASHIFT_MIN || val > zfs_vdev_max_auto_ashift)
1017 return (SET_ERROR(-EINVAL));
1018
1019 error = param_set_uint(buf, kp);
1020 if (error < 0)
1021 return (SET_ERROR(error));
1022
1023 return (0);
1024 }
1025
1026 int
1027 param_set_max_auto_ashift(const char *buf, zfs_kernel_param_t *kp)
1028 {
1029 uint_t val;
1030 int error;
1031
1032 error = kstrtouint(buf, 0, &val);
1033 if (error < 0)
1034 return (SET_ERROR(error));
1035
1036 if (val > ASHIFT_MAX || val < zfs_vdev_min_auto_ashift)
1037 return (SET_ERROR(-EINVAL));
1038
1039 error = param_set_uint(buf, kp);
1040 if (error < 0)
1041 return (SET_ERROR(error));
1042
1043 return (0);
1044 }