1 // SPDX-License-Identifier: GPL-2.0
2 /*
3 * Copyright (c) 2017-2018 Christoph Hellwig.
4 */
5
6 #include <linux/backing-dev.h>
7 #include <linux/moduleparam.h>
8 #include <linux/vmalloc.h>
9 #include <trace/events/block.h>
10 #include "nvme.h"
11
12 bool multipath = true;
13 static bool multipath_always_on;
14
multipath_param_set(const char * val,const struct kernel_param * kp)15 static int multipath_param_set(const char *val, const struct kernel_param *kp)
16 {
17 int ret;
18 bool *arg = kp->arg;
19
20 ret = param_set_bool(val, kp);
21 if (ret)
22 return ret;
23
24 if (multipath_always_on && !*arg) {
25 pr_err("Can't disable multipath when multipath_always_on is configured.\n");
26 *arg = true;
27 return -EINVAL;
28 }
29
30 return 0;
31 }
32
33 static const struct kernel_param_ops multipath_param_ops = {
34 .set = multipath_param_set,
35 .get = param_get_bool,
36 };
37
38 module_param_cb(multipath, &multipath_param_ops, &multipath, 0444);
39 MODULE_PARM_DESC(multipath,
40 "turn on native support for multiple controllers per subsystem");
41
multipath_always_on_set(const char * val,const struct kernel_param * kp)42 static int multipath_always_on_set(const char *val,
43 const struct kernel_param *kp)
44 {
45 int ret;
46 bool *arg = kp->arg;
47
48 ret = param_set_bool(val, kp);
49 if (ret < 0)
50 return ret;
51
52 if (*arg)
53 multipath = true;
54
55 return 0;
56 }
57
58 static const struct kernel_param_ops multipath_always_on_ops = {
59 .set = multipath_always_on_set,
60 .get = param_get_bool,
61 };
62
63 module_param_cb(multipath_always_on, &multipath_always_on_ops,
64 &multipath_always_on, 0444);
65 MODULE_PARM_DESC(multipath_always_on,
66 "create multipath node always except for private namespace with non-unique nsid; note that this also implicitly enables native multipath support");
67
68 static const char *nvme_iopolicy_names[] = {
69 [NVME_IOPOLICY_NUMA] = "numa",
70 [NVME_IOPOLICY_RR] = "round-robin",
71 [NVME_IOPOLICY_QD] = "queue-depth",
72 };
73
74 static int iopolicy = NVME_IOPOLICY_NUMA;
75
nvme_iopolicy_parse(const char * str)76 static int nvme_iopolicy_parse(const char *str)
77 {
78 int i;
79
80 for (i = 0; i < ARRAY_SIZE(nvme_iopolicy_names); i++) {
81 if (sysfs_streq(str, nvme_iopolicy_names[i]))
82 return i;
83 }
84 return -EINVAL;
85 }
86
nvme_set_iopolicy(const char * val,const struct kernel_param * kp)87 static int nvme_set_iopolicy(const char *val, const struct kernel_param *kp)
88 {
89 int policy;
90
91 if (!val)
92 return -EINVAL;
93
94 policy = nvme_iopolicy_parse(val);
95 if (policy < 0)
96 return policy;
97
98 iopolicy = policy;
99 return 0;
100 }
101
nvme_get_iopolicy(char * buf,const struct kernel_param * kp)102 static int nvme_get_iopolicy(char *buf, const struct kernel_param *kp)
103 {
104 return sprintf(buf, "%s\n", nvme_iopolicy_names[iopolicy]);
105 }
106
107 module_param_call(iopolicy, nvme_set_iopolicy, nvme_get_iopolicy,
108 &iopolicy, 0644);
109 MODULE_PARM_DESC(iopolicy,
110 "Default multipath I/O policy; 'numa' (default), 'round-robin' or 'queue-depth'");
111
nvme_mpath_default_iopolicy(struct nvme_subsystem * subsys)112 void nvme_mpath_default_iopolicy(struct nvme_subsystem *subsys)
113 {
114 subsys->iopolicy = iopolicy;
115 }
116
nvme_mpath_unfreeze(struct nvme_subsystem * subsys)117 void nvme_mpath_unfreeze(struct nvme_subsystem *subsys)
118 {
119 struct nvme_ns_head *h;
120
121 lockdep_assert_held(&subsys->lock);
122 list_for_each_entry(h, &subsys->nsheads, entry)
123 if (h->disk)
124 blk_mq_unfreeze_queue_nomemrestore(h->disk->queue);
125 }
126
nvme_mpath_wait_freeze(struct nvme_subsystem * subsys)127 void nvme_mpath_wait_freeze(struct nvme_subsystem *subsys)
128 {
129 struct nvme_ns_head *h;
130
131 lockdep_assert_held(&subsys->lock);
132 list_for_each_entry(h, &subsys->nsheads, entry)
133 if (h->disk)
134 blk_mq_freeze_queue_wait(h->disk->queue);
135 }
136
nvme_mpath_start_freeze(struct nvme_subsystem * subsys)137 void nvme_mpath_start_freeze(struct nvme_subsystem *subsys)
138 {
139 struct nvme_ns_head *h;
140
141 lockdep_assert_held(&subsys->lock);
142 list_for_each_entry(h, &subsys->nsheads, entry)
143 if (h->disk)
144 blk_freeze_queue_start(h->disk->queue);
145 }
146
nvme_failover_req(struct request * req)147 void nvme_failover_req(struct request *req)
148 {
149 struct nvme_ns *ns = req->q->queuedata;
150 u16 status = nvme_req(req)->status & NVME_SCT_SC_MASK;
151 unsigned long flags;
152 struct bio *bio;
153
154 nvme_mpath_clear_current_path(ns);
155 atomic_long_inc(&ns->failover);
156
157 /*
158 * If we got back an ANA error, we know the controller is alive but not
159 * ready to serve this namespace. Kick of a re-read of the ANA
160 * information page, and just try any other available path for now.
161 */
162 if (nvme_is_ana_error(status) && ns->ctrl->ana_log_buf) {
163 set_bit(NVME_NS_ANA_PENDING, &ns->flags);
164 queue_work(nvme_wq, &ns->ctrl->ana_work);
165 }
166
167 spin_lock_irqsave(&ns->head->requeue_lock, flags);
168 for (bio = req->bio; bio; bio = bio->bi_next)
169 bio_set_dev(bio, ns->head->disk->part0);
170 blk_steal_bios(&ns->head->requeue_list, req);
171 spin_unlock_irqrestore(&ns->head->requeue_lock, flags);
172
173 nvme_req(req)->status = 0;
174 nvme_end_req(req);
175 kblockd_schedule_work(&ns->head->requeue_work);
176 }
177
nvme_mpath_start_request(struct request * rq)178 void nvme_mpath_start_request(struct request *rq)
179 {
180 struct nvme_ns *ns = rq->q->queuedata;
181 struct gendisk *disk = ns->head->disk;
182
183 if ((READ_ONCE(ns->head->subsys->iopolicy) == NVME_IOPOLICY_QD) &&
184 !(nvme_req(rq)->flags & NVME_MPATH_CNT_ACTIVE)) {
185 atomic_inc(&ns->ctrl->nr_active);
186 nvme_req(rq)->flags |= NVME_MPATH_CNT_ACTIVE;
187 }
188
189 if (!blk_queue_io_stat(disk->queue) ||
190 (nvme_req(rq)->flags & NVME_MPATH_IO_STATS))
191 return;
192 if (blk_rq_is_passthrough(rq) &&
193 !blk_rq_passthrough_stats(rq, disk->queue))
194 return;
195
196 nvme_req(rq)->flags |= NVME_MPATH_IO_STATS;
197 nvme_req(rq)->start_time = bdev_start_io_acct(disk->part0, req_op(rq),
198 jiffies);
199 }
200 EXPORT_SYMBOL_GPL(nvme_mpath_start_request);
201
nvme_mpath_end_request(struct request * rq)202 void nvme_mpath_end_request(struct request *rq)
203 {
204 struct nvme_ns *ns = rq->q->queuedata;
205
206 if (nvme_req(rq)->flags & NVME_MPATH_CNT_ACTIVE)
207 atomic_dec_if_positive(&ns->ctrl->nr_active);
208
209 if (!(nvme_req(rq)->flags & NVME_MPATH_IO_STATS))
210 return;
211 bdev_end_io_acct(ns->head->disk->part0, req_op(rq),
212 blk_rq_bytes(rq) >> SECTOR_SHIFT,
213 nvme_req(rq)->start_time);
214 }
215
nvme_kick_requeue_lists(struct nvme_ctrl * ctrl)216 void nvme_kick_requeue_lists(struct nvme_ctrl *ctrl)
217 {
218 struct nvme_ns *ns;
219 int srcu_idx;
220
221 srcu_idx = srcu_read_lock(&ctrl->srcu);
222 list_for_each_entry_srcu(ns, &ctrl->namespaces, list,
223 srcu_read_lock_held(&ctrl->srcu)) {
224 if (!ns->head->disk)
225 continue;
226 kblockd_schedule_work(&ns->head->requeue_work);
227 if (nvme_ctrl_state(ns->ctrl) == NVME_CTRL_LIVE)
228 disk_uevent(ns->head->disk, KOBJ_CHANGE);
229 }
230 srcu_read_unlock(&ctrl->srcu, srcu_idx);
231 }
232
233 static const char *nvme_ana_state_names[] = {
234 [0] = "invalid state",
235 [NVME_ANA_OPTIMIZED] = "optimized",
236 [NVME_ANA_NONOPTIMIZED] = "non-optimized",
237 [NVME_ANA_INACCESSIBLE] = "inaccessible",
238 [NVME_ANA_PERSISTENT_LOSS] = "persistent-loss",
239 [NVME_ANA_CHANGE] = "change",
240 };
241
nvme_mpath_clear_current_path(struct nvme_ns * ns)242 bool nvme_mpath_clear_current_path(struct nvme_ns *ns)
243 {
244 struct nvme_ns_head *head = ns->head;
245 bool changed = false;
246 int node;
247
248 for_each_node(node) {
249 if (ns == rcu_access_pointer(head->current_path[node])) {
250 rcu_assign_pointer(head->current_path[node], NULL);
251 changed = true;
252 }
253 }
254 return changed;
255 }
256
nvme_mpath_clear_ctrl_paths(struct nvme_ctrl * ctrl)257 void nvme_mpath_clear_ctrl_paths(struct nvme_ctrl *ctrl)
258 {
259 struct nvme_ns *ns;
260 int srcu_idx;
261
262 srcu_idx = srcu_read_lock(&ctrl->srcu);
263 list_for_each_entry_srcu(ns, &ctrl->namespaces, list,
264 srcu_read_lock_held(&ctrl->srcu)) {
265 nvme_mpath_clear_current_path(ns);
266 kblockd_schedule_work(&ns->head->requeue_work);
267 }
268 srcu_read_unlock(&ctrl->srcu, srcu_idx);
269 }
270
nvme_mpath_revalidate_paths(struct nvme_ns_head * head)271 void nvme_mpath_revalidate_paths(struct nvme_ns_head *head)
272 {
273 sector_t capacity = get_capacity(head->disk);
274 struct nvme_ns *ns;
275 int node;
276 int srcu_idx;
277
278 srcu_idx = srcu_read_lock(&head->srcu);
279 list_for_each_entry_srcu(ns, &head->list, siblings,
280 srcu_read_lock_held(&head->srcu)) {
281 if (capacity != get_capacity(ns->disk))
282 clear_bit(NVME_NS_READY, &ns->flags);
283 }
284 srcu_read_unlock(&head->srcu, srcu_idx);
285
286 for_each_node(node)
287 rcu_assign_pointer(head->current_path[node], NULL);
288 kblockd_schedule_work(&head->requeue_work);
289 }
290
291 #ifdef CONFIG_BLK_DEV_ZONED
nvme_mpath_revalidate_zones(struct nvme_ns_head * head)292 int nvme_mpath_revalidate_zones(struct nvme_ns_head *head)
293 {
294 struct gendisk *disk = head->disk;
295 int ret;
296
297 if (!disk || !blk_queue_is_zoned(disk->queue) ||
298 !test_bit(NVME_NSHEAD_DISK_LIVE, &head->flags))
299 return 0;
300
301 ret = blk_revalidate_disk_zones(disk);
302 if (ret)
303 dev_warn_ratelimited(disk_to_dev(disk),
304 "failed to revalidate zoned namespace head: %d\n",
305 ret);
306 return ret;
307 }
308 #endif /* CONFIG_BLK_DEV_ZONED */
309
nvme_path_is_disabled(struct nvme_ns * ns)310 static bool nvme_path_is_disabled(struct nvme_ns *ns)
311 {
312 enum nvme_ctrl_state state = nvme_ctrl_state(ns->ctrl);
313
314 /*
315 * We don't treat NVME_CTRL_DELETING as a disabled path as I/O should
316 * still be able to complete assuming that the controller is connected.
317 * Otherwise it will fail immediately and return to the requeue list.
318 */
319 if (state != NVME_CTRL_LIVE && state != NVME_CTRL_DELETING)
320 return true;
321 if (test_bit(NVME_NS_ANA_PENDING, &ns->flags) ||
322 !test_bit(NVME_NS_READY, &ns->flags))
323 return true;
324 return false;
325 }
326
__nvme_find_path(struct nvme_ns_head * head,int node)327 static struct nvme_ns *__nvme_find_path(struct nvme_ns_head *head, int node)
328 __must_hold_shared(&head->srcu)
329 {
330 int found_distance = INT_MAX, fallback_distance = INT_MAX, distance;
331 struct nvme_ns *found = NULL, *fallback = NULL, *ns;
332
333 list_for_each_entry_srcu(ns, &head->list, siblings,
334 srcu_read_lock_held(&head->srcu)) {
335 if (nvme_path_is_disabled(ns))
336 continue;
337
338 if (ns->ctrl->numa_node != NUMA_NO_NODE &&
339 READ_ONCE(head->subsys->iopolicy) == NVME_IOPOLICY_NUMA)
340 distance = node_distance(node, ns->ctrl->numa_node);
341 else
342 distance = LOCAL_DISTANCE;
343
344 switch (ns->ana_state) {
345 case NVME_ANA_OPTIMIZED:
346 if (distance < found_distance) {
347 found_distance = distance;
348 found = ns;
349 }
350 break;
351 case NVME_ANA_NONOPTIMIZED:
352 if (distance < fallback_distance) {
353 fallback_distance = distance;
354 fallback = ns;
355 }
356 break;
357 default:
358 break;
359 }
360 }
361
362 if (!found)
363 found = fallback;
364 if (found)
365 rcu_assign_pointer(head->current_path[node], found);
366 return found;
367 }
368
nvme_next_ns(struct nvme_ns_head * head,struct nvme_ns * ns)369 static struct nvme_ns *nvme_next_ns(struct nvme_ns_head *head,
370 struct nvme_ns *ns)
371 __must_hold_shared(&head->srcu)
372 {
373 ns = list_next_or_null_rcu(&head->list, &ns->siblings, struct nvme_ns,
374 siblings);
375 if (ns)
376 return ns;
377 return list_first_or_null_rcu(&head->list, struct nvme_ns, siblings);
378 }
379
nvme_round_robin_path(struct nvme_ns_head * head)380 static struct nvme_ns *nvme_round_robin_path(struct nvme_ns_head *head)
381 __must_hold_shared(&head->srcu)
382 {
383 struct nvme_ns *ns, *found = NULL;
384 int node = numa_node_id();
385 struct nvme_ns *old = srcu_dereference(head->current_path[node],
386 &head->srcu);
387
388 if (unlikely(!old))
389 return __nvme_find_path(head, node);
390
391 if (list_is_singular(&head->list)) {
392 if (nvme_path_is_disabled(old))
393 return NULL;
394 return old;
395 }
396
397 for (ns = nvme_next_ns(head, old);
398 ns && ns != old;
399 ns = nvme_next_ns(head, ns)) {
400 if (nvme_path_is_disabled(ns))
401 continue;
402
403 if (ns->ana_state == NVME_ANA_OPTIMIZED) {
404 found = ns;
405 goto out;
406 }
407 if (ns->ana_state == NVME_ANA_NONOPTIMIZED)
408 found = ns;
409 }
410
411 /*
412 * The loop above skips the current path for round-robin semantics.
413 * Fall back to the current path if either:
414 * - no other optimized path found and current is optimized,
415 * - no other usable path found and current is usable.
416 */
417 if (!nvme_path_is_disabled(old) &&
418 (old->ana_state == NVME_ANA_OPTIMIZED ||
419 (!found && old->ana_state == NVME_ANA_NONOPTIMIZED)))
420 return old;
421
422 if (!found)
423 return NULL;
424 out:
425 rcu_assign_pointer(head->current_path[node], found);
426 return found;
427 }
428
nvme_queue_depth_path(struct nvme_ns_head * head)429 static struct nvme_ns *nvme_queue_depth_path(struct nvme_ns_head *head)
430 __must_hold_shared(&head->srcu)
431 {
432 struct nvme_ns *best_opt = NULL, *best_nonopt = NULL, *ns;
433 unsigned int min_depth_opt = UINT_MAX, min_depth_nonopt = UINT_MAX;
434 unsigned int depth;
435
436 list_for_each_entry_srcu(ns, &head->list, siblings,
437 srcu_read_lock_held(&head->srcu)) {
438 if (nvme_path_is_disabled(ns))
439 continue;
440
441 depth = atomic_read(&ns->ctrl->nr_active);
442
443 switch (ns->ana_state) {
444 case NVME_ANA_OPTIMIZED:
445 if (depth < min_depth_opt) {
446 min_depth_opt = depth;
447 best_opt = ns;
448 }
449 break;
450 case NVME_ANA_NONOPTIMIZED:
451 if (depth < min_depth_nonopt) {
452 min_depth_nonopt = depth;
453 best_nonopt = ns;
454 }
455 break;
456 default:
457 break;
458 }
459
460 if (min_depth_opt == 0)
461 return best_opt;
462 }
463
464 return best_opt ? best_opt : best_nonopt;
465 }
466
nvme_path_is_optimized(struct nvme_ns * ns)467 static inline bool nvme_path_is_optimized(struct nvme_ns *ns)
468 {
469 return nvme_ctrl_state(ns->ctrl) == NVME_CTRL_LIVE &&
470 ns->ana_state == NVME_ANA_OPTIMIZED;
471 }
472
nvme_numa_path(struct nvme_ns_head * head)473 static struct nvme_ns *nvme_numa_path(struct nvme_ns_head *head)
474 __must_hold_shared(&head->srcu)
475 {
476 int node = numa_node_id();
477 struct nvme_ns *ns;
478
479 ns = srcu_dereference(head->current_path[node], &head->srcu);
480 if (unlikely(!ns))
481 return __nvme_find_path(head, node);
482 if (unlikely(!nvme_path_is_optimized(ns)))
483 return __nvme_find_path(head, node);
484 return ns;
485 }
486
nvme_find_path(struct nvme_ns_head * head)487 inline struct nvme_ns *nvme_find_path(struct nvme_ns_head *head)
488 {
489 switch (READ_ONCE(head->subsys->iopolicy)) {
490 case NVME_IOPOLICY_QD:
491 return nvme_queue_depth_path(head);
492 case NVME_IOPOLICY_RR:
493 return nvme_round_robin_path(head);
494 default:
495 return nvme_numa_path(head);
496 }
497 }
498
nvme_available_path(struct nvme_ns_head * head)499 static bool nvme_available_path(struct nvme_ns_head *head)
500 __must_hold_shared(&head->srcu)
501 {
502 struct nvme_ns *ns;
503
504 if (!test_bit(NVME_NSHEAD_DISK_LIVE, &head->flags))
505 return false;
506
507 list_for_each_entry_srcu(ns, &head->list, siblings,
508 srcu_read_lock_held(&head->srcu)) {
509 if (test_bit(NVME_CTRL_FAILFAST_EXPIRED, &ns->ctrl->flags))
510 continue;
511 switch (nvme_ctrl_state(ns->ctrl)) {
512 case NVME_CTRL_LIVE:
513 case NVME_CTRL_RESETTING:
514 case NVME_CTRL_CONNECTING:
515 return true;
516 default:
517 break;
518 }
519 }
520
521 /*
522 * If "head->delayed_removal_secs" is configured (i.e., non-zero), do
523 * not immediately fail I/O. Instead, requeue the I/O for the configured
524 * duration, anticipating that if there's a transient link failure then
525 * it may recover within this time window. This parameter is exported to
526 * userspace via sysfs, and its default value is zero. It is internally
527 * mapped to NVME_NSHEAD_QUEUE_IF_NO_PATH. When delayed_removal_secs is
528 * non-zero, this flag is set to true. When zero, the flag is cleared.
529 */
530 return nvme_mpath_queue_if_no_path(head);
531 }
532
nvme_ns_head_submit_bio(struct bio * bio)533 static void nvme_ns_head_submit_bio(struct bio *bio)
534 {
535 struct nvme_ns_head *head = bio->bi_bdev->bd_disk->private_data;
536 struct device *dev = disk_to_dev(head->disk);
537 struct nvme_ns *ns;
538 int srcu_idx;
539
540 /*
541 * The namespace might be going away and the bio might be moved to a
542 * different queue via blk_steal_bios(), so we need to use the bio_split
543 * pool from the original queue to allocate the bvecs from.
544 */
545 bio = bio_split_to_limits(bio);
546 if (!bio)
547 return;
548
549 srcu_idx = srcu_read_lock(&head->srcu);
550 ns = nvme_find_path(head);
551 if (likely(ns)) {
552 bio_set_dev(bio, ns->disk->part0);
553 /*
554 * Use BIO_REMAPPED to skip bio_check_eod() when this bio
555 * enters submit_bio_noacct() for the per-path device. The EOD
556 * check already passed on the multipath head.
557 */
558 bio_set_flag(bio, BIO_REMAPPED);
559 bio->bi_opf |= REQ_NVME_MPATH;
560 trace_block_bio_remap(bio, disk_devt(ns->head->disk),
561 bio->bi_iter.bi_sector);
562 submit_bio_noacct(bio);
563 } else if (nvme_available_path(head)) {
564 dev_warn_ratelimited(dev, "no usable path - requeuing I/O\n");
565
566 spin_lock_irq(&head->requeue_lock);
567 bio_list_add(&head->requeue_list, bio);
568 spin_unlock_irq(&head->requeue_lock);
569 atomic_long_inc(&head->io_requeue_no_usable_path_count);
570 } else {
571 dev_warn_ratelimited(dev, "no available path - failing I/O\n");
572
573 bio_io_error(bio);
574 atomic_long_inc(&head->io_fail_no_available_path_count);
575 }
576
577 srcu_read_unlock(&head->srcu, srcu_idx);
578 }
579
nvme_ns_head_open(struct gendisk * disk,blk_mode_t mode)580 static int nvme_ns_head_open(struct gendisk *disk, blk_mode_t mode)
581 {
582 if (!nvme_tryget_ns_head(disk->private_data))
583 return -ENXIO;
584 return 0;
585 }
586
nvme_ns_head_release(struct gendisk * disk)587 static void nvme_ns_head_release(struct gendisk *disk)
588 {
589 nvme_put_ns_head(disk->private_data);
590 }
591
nvme_ns_head_get_unique_id(struct gendisk * disk,u8 id[16],enum blk_unique_id type)592 static int nvme_ns_head_get_unique_id(struct gendisk *disk, u8 id[16],
593 enum blk_unique_id type)
594 {
595 struct nvme_ns_head *head = disk->private_data;
596 struct nvme_ns *ns;
597 int srcu_idx, ret = -EWOULDBLOCK;
598
599 srcu_idx = srcu_read_lock(&head->srcu);
600 ns = nvme_find_path(head);
601 if (ns)
602 ret = nvme_ns_get_unique_id(ns, id, type);
603 srcu_read_unlock(&head->srcu, srcu_idx);
604 return ret;
605 }
606
607 #ifdef CONFIG_BLK_DEV_ZONED
nvme_ns_head_report_zones(struct gendisk * disk,sector_t sector,unsigned int nr_zones,struct blk_report_zones_args * args)608 static int nvme_ns_head_report_zones(struct gendisk *disk, sector_t sector,
609 unsigned int nr_zones, struct blk_report_zones_args *args)
610 {
611 struct nvme_ns_head *head = disk->private_data;
612 struct nvme_ns *ns;
613 int srcu_idx, ret = -EWOULDBLOCK;
614
615 srcu_idx = srcu_read_lock(&head->srcu);
616 ns = nvme_find_path(head);
617 if (ns)
618 ret = nvme_ns_report_zones(ns, sector, nr_zones, args);
619 srcu_read_unlock(&head->srcu, srcu_idx);
620 return ret;
621 }
622 #else
623 #define nvme_ns_head_report_zones NULL
624 #endif /* CONFIG_BLK_DEV_ZONED */
625
626 const struct block_device_operations nvme_ns_head_ops = {
627 .owner = THIS_MODULE,
628 .submit_bio = nvme_ns_head_submit_bio,
629 .open = nvme_ns_head_open,
630 .release = nvme_ns_head_release,
631 .ioctl = nvme_ns_head_ioctl,
632 .compat_ioctl = blkdev_compat_ptr_ioctl,
633 .getgeo = nvme_getgeo,
634 .get_unique_id = nvme_ns_head_get_unique_id,
635 .report_zones = nvme_ns_head_report_zones,
636 .pr_ops = &nvme_pr_ops,
637 };
638
639 static const struct file_operations nvme_ns_head_chr_fops = {
640 .owner = THIS_MODULE,
641 .unlocked_ioctl = nvme_ns_head_chr_ioctl,
642 .compat_ioctl = compat_ptr_ioctl,
643 .uring_cmd = nvme_ns_head_chr_uring_cmd,
644 .uring_cmd_iopoll = nvme_ns_chr_uring_cmd_iopoll,
645 };
646
nvme_add_ns_head_cdev(struct nvme_ns_head * head)647 static void nvme_add_ns_head_cdev(struct nvme_ns_head *head)
648 {
649 char name[32];
650
651 head->cdev_device.parent = &head->subsys->dev;
652 snprintf(name, sizeof(name), "ng%dn%d", head->subsys->instance,
653 head->instance);
654
655 nvme_get_ns_head(head); /* Undone in nvme_cdev_rel() */
656 if (nvme_cdev_add(name, &head->cdev, &head->cdev_device,
657 &nvme_ns_head_chr_fops, THIS_MODULE)) {
658 dev_err(disk_to_dev(head->disk),
659 "Unable to create the %s device\n", name);
660 nvme_put_ns_head(head);
661 return;
662 }
663 set_bit(NVME_NSHEAD_CDEV_LIVE, &head->flags);
664 }
665
nvme_partition_scan_work(struct work_struct * work)666 static void nvme_partition_scan_work(struct work_struct *work)
667 {
668 struct nvme_ns_head *head =
669 container_of(work, struct nvme_ns_head, partition_scan_work);
670
671 if (WARN_ON_ONCE(!test_and_clear_bit(GD_SUPPRESS_PART_SCAN,
672 &head->disk->state)))
673 return;
674
675 mutex_lock(&head->disk->open_mutex);
676 bdev_disk_changed(head->disk, false);
677 mutex_unlock(&head->disk->open_mutex);
678 }
679
nvme_requeue_work(struct work_struct * work)680 static void nvme_requeue_work(struct work_struct *work)
681 {
682 struct nvme_ns_head *head =
683 container_of(work, struct nvme_ns_head, requeue_work);
684 struct bio *bio, *next;
685
686 spin_lock_irq(&head->requeue_lock);
687 next = bio_list_get(&head->requeue_list);
688 spin_unlock_irq(&head->requeue_lock);
689
690 while ((bio = next) != NULL) {
691 next = bio->bi_next;
692 bio->bi_next = NULL;
693
694 submit_bio_noacct(bio);
695 }
696 }
697
nvme_remove_head(struct nvme_ns_head * head)698 static void nvme_remove_head(struct nvme_ns_head *head)
699 {
700 if (test_and_clear_bit(NVME_NSHEAD_DISK_LIVE, &head->flags)) {
701 /*
702 * Requeue I/O after NVME_NSHEAD_DISK_LIVE has been cleared
703 * to allow multipath to fail all I/O. First synchronize to
704 * add any bios to the requeue list.
705 */
706 synchronize_srcu(&head->srcu);
707 kblockd_schedule_work(&head->requeue_work);
708
709 if (test_and_clear_bit(NVME_NSHEAD_CDEV_LIVE, &head->flags))
710 nvme_cdev_del(&head->cdev, &head->cdev_device);
711 del_gendisk(head->disk);
712 }
713 nvme_put_ns_head(head);
714 }
715
nvme_remove_head_work(struct work_struct * work)716 static void nvme_remove_head_work(struct work_struct *work)
717 {
718 struct nvme_ns_head *head = container_of(to_delayed_work(work),
719 struct nvme_ns_head, remove_work);
720 bool remove = false;
721
722 mutex_lock(&head->subsys->lock);
723 if (list_empty(&head->list)) {
724 list_del_init(&head->entry);
725 remove = true;
726 }
727 mutex_unlock(&head->subsys->lock);
728 if (remove)
729 nvme_remove_head(head);
730
731 module_put(THIS_MODULE);
732 }
733
nvme_mpath_alloc_disk(struct nvme_ctrl * ctrl,struct nvme_ns_head * head)734 int nvme_mpath_alloc_disk(struct nvme_ctrl *ctrl, struct nvme_ns_head *head)
735 {
736 struct queue_limits lim;
737
738 mutex_init(&head->lock);
739 spin_lock_init(&head->requeue_lock);
740 INIT_WORK(&head->requeue_work, nvme_requeue_work);
741 INIT_WORK(&head->partition_scan_work, nvme_partition_scan_work);
742 INIT_DELAYED_WORK(&head->remove_work, nvme_remove_head_work);
743
744 /*
745 * If "multipath_always_on" is enabled, a multipath node is added
746 * regardless of whether the disk is single/multi ported, and whether
747 * the namespace is shared or private. If "multipath_always_on" is not
748 * enabled, a multipath node is added only if the subsystem supports
749 * multiple controllers and the "multipath" option is configured. In
750 * either case, for private namespaces, we ensure that the NSID is
751 * unique.
752 */
753 if (!multipath_always_on) {
754 if (!(ctrl->subsys->cmic & NVME_CTRL_CMIC_MULTI_CTRL) ||
755 !multipath)
756 return 0;
757 }
758
759 if (!nvme_is_unique_nsid(ctrl, head))
760 return 0;
761
762 blk_set_stacking_limits(&lim);
763 lim.dma_alignment = 3;
764 lim.features |= BLK_FEAT_IO_STAT | BLK_FEAT_NOWAIT |
765 BLK_FEAT_POLL | BLK_FEAT_ATOMIC_WRITES | BLK_FEAT_PCI_P2PDMA;
766 if (head->ids.csi == NVME_CSI_ZNS)
767 lim.features |= BLK_FEAT_ZONED;
768
769 head->disk = blk_alloc_disk(&lim, ctrl->numa_node);
770 if (IS_ERR(head->disk))
771 return PTR_ERR(head->disk);
772 head->disk->fops = &nvme_ns_head_ops;
773 head->disk->private_data = head;
774
775 /*
776 * We need to suppress the partition scan from occuring within the
777 * controller's scan_work context. If a path error occurs here, the IO
778 * will wait until a path becomes available or all paths are torn down,
779 * but that action also occurs within scan_work, so it would deadlock.
780 * Defer the partition scan to a different context that does not block
781 * scan_work.
782 */
783 set_bit(GD_SUPPRESS_PART_SCAN, &head->disk->state);
784 sprintf(head->disk->disk_name, "nvme%dn%d",
785 ctrl->subsys->instance, head->instance);
786 nvme_get_ns_head(head);
787 return 0;
788 }
789
nvme_mpath_set_live(struct nvme_ns * ns)790 static void nvme_mpath_set_live(struct nvme_ns *ns)
791 {
792 struct nvme_ns_head *head = ns->head;
793 int rc;
794
795 if (!head->disk)
796 return;
797
798 /*
799 * test_and_set_bit() is used because it is protecting against two nvme
800 * paths simultaneously calling device_add_disk() on the same namespace
801 * head.
802 */
803 if (!test_and_set_bit(NVME_NSHEAD_DISK_LIVE, &head->flags)) {
804 rc = device_add_disk(&head->subsys->dev, head->disk,
805 nvme_ns_attr_groups);
806 if (rc) {
807 clear_bit(NVME_NSHEAD_DISK_LIVE, &head->flags);
808 return;
809 }
810 nvme_add_ns_head_cdev(head);
811 queue_work(nvme_wq, &head->partition_scan_work);
812 }
813
814 nvme_mpath_add_sysfs_link(ns->head);
815
816 mutex_lock(&head->lock);
817 if (nvme_path_is_optimized(ns)) {
818 int node, srcu_idx;
819
820 srcu_idx = srcu_read_lock(&head->srcu);
821 for_each_online_node(node)
822 __nvme_find_path(head, node);
823 srcu_read_unlock(&head->srcu, srcu_idx);
824 }
825 mutex_unlock(&head->lock);
826
827 synchronize_srcu(&head->srcu);
828 nvme_mpath_revalidate_zones(head);
829 kblockd_schedule_work(&head->requeue_work);
830 }
831
nvme_parse_ana_log(struct nvme_ctrl * ctrl,void * data,int (* cb)(struct nvme_ctrl * ctrl,struct nvme_ana_group_desc *,void *))832 static int nvme_parse_ana_log(struct nvme_ctrl *ctrl, void *data,
833 int (*cb)(struct nvme_ctrl *ctrl, struct nvme_ana_group_desc *,
834 void *))
835 __must_hold(&ctrl->ana_lock)
836 {
837 void *base = ctrl->ana_log_buf;
838 size_t offset = sizeof(struct nvme_ana_rsp_hdr);
839 int error, i;
840
841 lockdep_assert_held(&ctrl->ana_lock);
842
843 for (i = 0; i < le16_to_cpu(ctrl->ana_log_buf->ngrps); i++) {
844 struct nvme_ana_group_desc *desc = base + offset;
845 u32 nr_nsids;
846 size_t nsid_buf_size;
847
848 if (WARN_ON_ONCE(offset > ctrl->ana_log_size - sizeof(*desc)))
849 return -EINVAL;
850
851 nr_nsids = le32_to_cpu(desc->nnsids);
852 nsid_buf_size = flex_array_size(desc, nsids, nr_nsids);
853
854 if (WARN_ON_ONCE(desc->grpid == 0))
855 return -EINVAL;
856 if (WARN_ON_ONCE(le32_to_cpu(desc->grpid) > ctrl->anagrpmax))
857 return -EINVAL;
858 if (WARN_ON_ONCE(desc->state == 0))
859 return -EINVAL;
860 if (WARN_ON_ONCE(desc->state > NVME_ANA_CHANGE))
861 return -EINVAL;
862
863 offset += sizeof(*desc);
864 if (WARN_ON_ONCE(offset > ctrl->ana_log_size - nsid_buf_size))
865 return -EINVAL;
866
867 error = cb(ctrl, desc, data);
868 if (error)
869 return error;
870
871 offset += nsid_buf_size;
872 }
873
874 return 0;
875 }
876
nvme_state_is_live(enum nvme_ana_state state)877 static inline bool nvme_state_is_live(enum nvme_ana_state state)
878 {
879 return state == NVME_ANA_OPTIMIZED || state == NVME_ANA_NONOPTIMIZED;
880 }
881
nvme_update_ns_ana_state(struct nvme_ana_group_desc * desc,struct nvme_ns * ns)882 static void nvme_update_ns_ana_state(struct nvme_ana_group_desc *desc,
883 struct nvme_ns *ns)
884 {
885 ns->ana_grpid = le32_to_cpu(desc->grpid);
886 ns->ana_state = desc->state;
887 clear_bit(NVME_NS_ANA_PENDING, &ns->flags);
888 /*
889 * nvme_mpath_set_live() will trigger I/O to the multipath path device
890 * and in turn to this path device. However we cannot accept this I/O
891 * if the controller is not live. This may deadlock if called from
892 * nvme_mpath_init_identify() and the ctrl will never complete
893 * initialization, preventing I/O from completing. For this case we
894 * will reprocess the ANA log page in nvme_mpath_update() once the
895 * controller is ready.
896 */
897 if (nvme_state_is_live(ns->ana_state) &&
898 nvme_ctrl_state(ns->ctrl) == NVME_CTRL_LIVE)
899 nvme_mpath_set_live(ns);
900 else {
901 /*
902 * Add sysfs link from multipath head gendisk node to path
903 * device gendisk node.
904 * If path's ana state is live (i.e. state is either optimized
905 * or non-optimized) while we alloc the ns then sysfs link would
906 * be created from nvme_mpath_set_live(). In that case we would
907 * not fallthrough this code path. However for the path's ana
908 * state other than live, we call nvme_mpath_set_live() only
909 * after ana state transitioned to the live state. But we still
910 * want to create the sysfs link from head node to a path device
911 * irrespctive of the path's ana state.
912 * If we reach through here then it means that path's ana state
913 * is not live but still create the sysfs link to this path from
914 * head node if head node of the path has already come alive.
915 */
916 if (test_bit(NVME_NSHEAD_DISK_LIVE, &ns->head->flags))
917 nvme_mpath_add_sysfs_link(ns->head);
918 }
919 }
920
nvme_update_ana_state(struct nvme_ctrl * ctrl,struct nvme_ana_group_desc * desc,void * data)921 static int nvme_update_ana_state(struct nvme_ctrl *ctrl,
922 struct nvme_ana_group_desc *desc, void *data)
923 {
924 u32 nr_nsids = le32_to_cpu(desc->nnsids), n = 0;
925 unsigned *nr_change_groups = data;
926 struct nvme_ns *ns;
927 int srcu_idx;
928
929 dev_dbg(ctrl->device, "ANA group %d: %s.\n",
930 le32_to_cpu(desc->grpid),
931 nvme_ana_state_names[desc->state]);
932
933 if (desc->state == NVME_ANA_CHANGE)
934 (*nr_change_groups)++;
935
936 if (!nr_nsids)
937 return 0;
938
939 srcu_idx = srcu_read_lock(&ctrl->srcu);
940 list_for_each_entry_srcu(ns, &ctrl->namespaces, list,
941 srcu_read_lock_held(&ctrl->srcu)) {
942 unsigned nsid;
943 again:
944 nsid = le32_to_cpu(desc->nsids[n]);
945 if (ns->head->ns_id < nsid)
946 continue;
947 if (ns->head->ns_id == nsid)
948 nvme_update_ns_ana_state(desc, ns);
949 if (++n == nr_nsids)
950 break;
951 if (ns->head->ns_id > nsid)
952 goto again;
953 }
954 srcu_read_unlock(&ctrl->srcu, srcu_idx);
955 return 0;
956 }
957
nvme_read_ana_log(struct nvme_ctrl * ctrl)958 static int nvme_read_ana_log(struct nvme_ctrl *ctrl)
959 {
960 u32 nr_change_groups = 0;
961 int error;
962
963 mutex_lock(&ctrl->ana_lock);
964 error = nvme_get_log(ctrl, NVME_NSID_ALL, NVME_LOG_ANA, 0, NVME_CSI_NVM,
965 ctrl->ana_log_buf, ctrl->ana_log_size, 0);
966 if (error) {
967 dev_warn(ctrl->device, "Failed to get ANA log: %d\n", error);
968 goto out_unlock;
969 }
970
971 error = nvme_parse_ana_log(ctrl, &nr_change_groups,
972 nvme_update_ana_state);
973 if (error)
974 goto out_unlock;
975
976 /*
977 * In theory we should have an ANATT timer per group as they might enter
978 * the change state at different times. But that is a lot of overhead
979 * just to protect against a target that keeps entering new changes
980 * states while never finishing previous ones. But we'll still
981 * eventually time out once all groups are in change state, so this
982 * isn't a big deal.
983 *
984 * We also double the ANATT value to provide some slack for transports
985 * or AEN processing overhead.
986 */
987 if (nr_change_groups)
988 mod_timer(&ctrl->anatt_timer, ctrl->anatt * HZ * 2 + jiffies);
989 else
990 timer_delete_sync(&ctrl->anatt_timer);
991 out_unlock:
992 mutex_unlock(&ctrl->ana_lock);
993 return error;
994 }
995
nvme_ana_work(struct work_struct * work)996 static void nvme_ana_work(struct work_struct *work)
997 {
998 struct nvme_ctrl *ctrl = container_of(work, struct nvme_ctrl, ana_work);
999
1000 if (nvme_ctrl_state(ctrl) != NVME_CTRL_LIVE)
1001 return;
1002
1003 nvme_read_ana_log(ctrl);
1004 }
1005
nvme_mpath_update(struct nvme_ctrl * ctrl)1006 void nvme_mpath_update(struct nvme_ctrl *ctrl)
1007 {
1008 u32 nr_change_groups = 0;
1009
1010 if (!ctrl->ana_log_buf)
1011 return;
1012
1013 mutex_lock(&ctrl->ana_lock);
1014 nvme_parse_ana_log(ctrl, &nr_change_groups, nvme_update_ana_state);
1015 mutex_unlock(&ctrl->ana_lock);
1016 }
1017
nvme_anatt_timeout(struct timer_list * t)1018 static void nvme_anatt_timeout(struct timer_list *t)
1019 {
1020 struct nvme_ctrl *ctrl = timer_container_of(ctrl, t, anatt_timer);
1021
1022 dev_info(ctrl->device, "ANATT timeout, resetting controller.\n");
1023 nvme_reset_ctrl(ctrl);
1024 }
1025
nvme_mpath_stop(struct nvme_ctrl * ctrl)1026 void nvme_mpath_stop(struct nvme_ctrl *ctrl)
1027 {
1028 if (!nvme_ctrl_use_ana(ctrl))
1029 return;
1030 timer_delete_sync(&ctrl->anatt_timer);
1031 cancel_work_sync(&ctrl->ana_work);
1032 }
1033
1034 #define SUBSYS_ATTR_RW(_name, _mode, _show, _store) \
1035 struct device_attribute subsys_attr_##_name = \
1036 __ATTR(_name, _mode, _show, _store)
1037
nvme_subsys_iopolicy_show(struct device * dev,struct device_attribute * attr,char * buf)1038 static ssize_t nvme_subsys_iopolicy_show(struct device *dev,
1039 struct device_attribute *attr, char *buf)
1040 {
1041 struct nvme_subsystem *subsys =
1042 container_of(dev, struct nvme_subsystem, dev);
1043
1044 return sysfs_emit(buf, "%s\n",
1045 nvme_iopolicy_names[READ_ONCE(subsys->iopolicy)]);
1046 }
1047
nvme_subsys_iopolicy_update(struct nvme_subsystem * subsys,int iopolicy)1048 static void nvme_subsys_iopolicy_update(struct nvme_subsystem *subsys,
1049 int iopolicy)
1050 {
1051 struct nvme_ctrl *ctrl;
1052 int old_iopolicy = READ_ONCE(subsys->iopolicy);
1053
1054 if (old_iopolicy == iopolicy)
1055 return;
1056
1057 WRITE_ONCE(subsys->iopolicy, iopolicy);
1058
1059 /* iopolicy changes clear the mpath by design */
1060 mutex_lock(&nvme_subsystems_lock);
1061 list_for_each_entry(ctrl, &subsys->ctrls, subsys_entry)
1062 nvme_mpath_clear_ctrl_paths(ctrl);
1063 mutex_unlock(&nvme_subsystems_lock);
1064
1065 pr_notice("subsysnqn %s iopolicy changed from %s to %s\n",
1066 subsys->subnqn,
1067 nvme_iopolicy_names[old_iopolicy],
1068 nvme_iopolicy_names[iopolicy]);
1069 }
1070
nvme_subsys_iopolicy_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1071 static ssize_t nvme_subsys_iopolicy_store(struct device *dev,
1072 struct device_attribute *attr, const char *buf, size_t count)
1073 {
1074 struct nvme_subsystem *subsys =
1075 container_of(dev, struct nvme_subsystem, dev);
1076 int policy;
1077
1078 policy = nvme_iopolicy_parse(buf);
1079 if (policy < 0)
1080 return policy;
1081
1082 nvme_subsys_iopolicy_update(subsys, policy);
1083 return count;
1084 }
1085 SUBSYS_ATTR_RW(iopolicy, S_IRUGO | S_IWUSR,
1086 nvme_subsys_iopolicy_show, nvme_subsys_iopolicy_store);
1087
ana_grpid_show(struct device * dev,struct device_attribute * attr,char * buf)1088 static ssize_t ana_grpid_show(struct device *dev, struct device_attribute *attr,
1089 char *buf)
1090 {
1091 return sysfs_emit(buf, "%d\n", nvme_get_ns_from_dev(dev)->ana_grpid);
1092 }
1093 DEVICE_ATTR_RO(ana_grpid);
1094
ana_state_show(struct device * dev,struct device_attribute * attr,char * buf)1095 static ssize_t ana_state_show(struct device *dev, struct device_attribute *attr,
1096 char *buf)
1097 {
1098 struct nvme_ns *ns = nvme_get_ns_from_dev(dev);
1099
1100 return sysfs_emit(buf, "%s\n", nvme_ana_state_names[ns->ana_state]);
1101 }
1102 DEVICE_ATTR_RO(ana_state);
1103
queue_depth_show(struct device * dev,struct device_attribute * attr,char * buf)1104 static ssize_t queue_depth_show(struct device *dev,
1105 struct device_attribute *attr, char *buf)
1106 {
1107 struct nvme_ns *ns = nvme_get_ns_from_dev(dev);
1108
1109 if (ns->head->subsys->iopolicy != NVME_IOPOLICY_QD)
1110 return 0;
1111
1112 return sysfs_emit(buf, "%d\n", atomic_read(&ns->ctrl->nr_active));
1113 }
1114 DEVICE_ATTR_RO(queue_depth);
1115
numa_nodes_show(struct device * dev,struct device_attribute * attr,char * buf)1116 static ssize_t numa_nodes_show(struct device *dev, struct device_attribute *attr,
1117 char *buf)
1118 {
1119 int node, srcu_idx;
1120 nodemask_t numa_nodes;
1121 struct nvme_ns *current_ns;
1122 struct nvme_ns *ns = nvme_get_ns_from_dev(dev);
1123 struct nvme_ns_head *head = ns->head;
1124
1125 if (head->subsys->iopolicy != NVME_IOPOLICY_NUMA)
1126 return 0;
1127
1128 nodes_clear(numa_nodes);
1129
1130 srcu_idx = srcu_read_lock(&head->srcu);
1131 for_each_node(node) {
1132 current_ns = srcu_dereference(head->current_path[node],
1133 &head->srcu);
1134 if (ns == current_ns)
1135 node_set(node, numa_nodes);
1136 }
1137 srcu_read_unlock(&head->srcu, srcu_idx);
1138
1139 return sysfs_emit(buf, "%*pbl\n", nodemask_pr_args(&numa_nodes));
1140 }
1141 DEVICE_ATTR_RO(numa_nodes);
1142
delayed_removal_secs_show(struct device * dev,struct device_attribute * attr,char * buf)1143 static ssize_t delayed_removal_secs_show(struct device *dev,
1144 struct device_attribute *attr, char *buf)
1145 {
1146 struct gendisk *disk = dev_to_disk(dev);
1147 struct nvme_ns_head *head = disk->private_data;
1148 int ret;
1149
1150 mutex_lock(&head->subsys->lock);
1151 ret = sysfs_emit(buf, "%u\n", head->delayed_removal_secs);
1152 mutex_unlock(&head->subsys->lock);
1153 return ret;
1154 }
1155
delayed_removal_secs_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1156 static ssize_t delayed_removal_secs_store(struct device *dev,
1157 struct device_attribute *attr, const char *buf, size_t count)
1158 {
1159 struct gendisk *disk = dev_to_disk(dev);
1160 struct nvme_ns_head *head = disk->private_data;
1161 unsigned int sec;
1162 int ret;
1163
1164 ret = kstrtouint(buf, 0, &sec);
1165 if (ret < 0)
1166 return ret;
1167
1168 mutex_lock(&head->subsys->lock);
1169 head->delayed_removal_secs = sec;
1170 if (sec)
1171 set_bit(NVME_NSHEAD_QUEUE_IF_NO_PATH, &head->flags);
1172 else
1173 clear_bit(NVME_NSHEAD_QUEUE_IF_NO_PATH, &head->flags);
1174 mutex_unlock(&head->subsys->lock);
1175 /*
1176 * Ensure that update to NVME_NSHEAD_QUEUE_IF_NO_PATH is seen
1177 * by its reader.
1178 */
1179 synchronize_srcu(&head->srcu);
1180
1181 return count;
1182 }
1183
1184 DEVICE_ATTR_RW(delayed_removal_secs);
1185
multipath_failover_count_show(struct device * dev,struct device_attribute * attr,char * buf)1186 static ssize_t multipath_failover_count_show(struct device *dev,
1187 struct device_attribute *attr, char *buf)
1188 {
1189 struct nvme_ns *ns = nvme_get_ns_from_dev(dev);
1190
1191 return sysfs_emit(buf, "%lu\n", atomic_long_read(&ns->failover));
1192 }
1193
multipath_failover_count_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1194 static ssize_t multipath_failover_count_store(struct device *dev,
1195 struct device_attribute *attr, const char *buf, size_t count)
1196 {
1197 unsigned long failover;
1198 int ret;
1199 struct nvme_ns *ns = nvme_get_ns_from_dev(dev);
1200
1201 ret = kstrtoul(buf, 0, &failover);
1202 if (ret)
1203 return -EINVAL;
1204
1205 atomic_long_set(&ns->failover, failover);
1206
1207 return count;
1208 }
1209
1210 DEVICE_ATTR_RW(multipath_failover_count);
1211
io_requeue_no_usable_path_count_show(struct device * dev,struct device_attribute * attr,char * buf)1212 static ssize_t io_requeue_no_usable_path_count_show(struct device *dev,
1213 struct device_attribute *attr, char *buf)
1214 {
1215 struct gendisk *disk = dev_to_disk(dev);
1216 struct nvme_ns_head *head = disk->private_data;
1217
1218 return sysfs_emit(buf, "%lu\n",
1219 atomic_long_read(&head->io_requeue_no_usable_path_count));
1220 }
1221
io_requeue_no_usable_path_count_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1222 static ssize_t io_requeue_no_usable_path_count_store(struct device *dev,
1223 struct device_attribute *attr, const char *buf, size_t count)
1224 {
1225 int err;
1226 unsigned long requeue_cnt;
1227 struct gendisk *disk = dev_to_disk(dev);
1228 struct nvme_ns_head *head = disk->private_data;
1229
1230 err = kstrtoul(buf, 0, &requeue_cnt);
1231 if (err)
1232 return -EINVAL;
1233
1234 atomic_long_set(&head->io_requeue_no_usable_path_count, requeue_cnt);
1235
1236 return count;
1237 }
1238
1239 DEVICE_ATTR_RW(io_requeue_no_usable_path_count);
1240
io_fail_no_available_path_count_show(struct device * dev,struct device_attribute * attr,char * buf)1241 static ssize_t io_fail_no_available_path_count_show(struct device *dev,
1242 struct device_attribute *attr, char *buf)
1243 {
1244 struct gendisk *disk = dev_to_disk(dev);
1245 struct nvme_ns_head *head = disk->private_data;
1246
1247 return sysfs_emit(buf, "%lu\n",
1248 atomic_long_read(&head->io_fail_no_available_path_count));
1249 }
1250
io_fail_no_available_path_count_store(struct device * dev,struct device_attribute * attr,const char * buf,size_t count)1251 static ssize_t io_fail_no_available_path_count_store(struct device *dev,
1252 struct device_attribute *attr, const char *buf, size_t count)
1253 {
1254 int err;
1255 unsigned long fail_cnt;
1256 struct gendisk *disk = dev_to_disk(dev);
1257 struct nvme_ns_head *head = disk->private_data;
1258
1259 err = kstrtoul(buf, 0, &fail_cnt);
1260 if (err)
1261 return -EINVAL;
1262
1263 atomic_long_set(&head->io_fail_no_available_path_count, fail_cnt);
1264
1265 return count;
1266 }
1267
1268 DEVICE_ATTR_RW(io_fail_no_available_path_count);
1269
nvme_lookup_ana_group_desc(struct nvme_ctrl * ctrl,struct nvme_ana_group_desc * desc,void * data)1270 static int nvme_lookup_ana_group_desc(struct nvme_ctrl *ctrl,
1271 struct nvme_ana_group_desc *desc, void *data)
1272 {
1273 struct nvme_ana_group_desc *dst = data;
1274
1275 if (desc->grpid != dst->grpid)
1276 return 0;
1277
1278 *dst = *desc;
1279 return -ENXIO; /* just break out of the loop */
1280 }
1281
nvme_mpath_add_sysfs_link(struct nvme_ns_head * head)1282 void nvme_mpath_add_sysfs_link(struct nvme_ns_head *head)
1283 {
1284 struct device *target;
1285 int rc, srcu_idx;
1286 struct nvme_ns *ns;
1287 struct kobject *kobj;
1288
1289 /*
1290 * Ensure head disk node is already added otherwise we may get invalid
1291 * kobj for head disk node
1292 */
1293 if (!test_bit(GD_ADDED, &head->disk->state))
1294 return;
1295
1296 kobj = &disk_to_dev(head->disk)->kobj;
1297
1298 /*
1299 * loop through each ns chained through the head->list and create the
1300 * sysfs link from head node to the ns path node
1301 */
1302 srcu_idx = srcu_read_lock(&head->srcu);
1303
1304 list_for_each_entry_srcu(ns, &head->list, siblings,
1305 srcu_read_lock_held(&head->srcu)) {
1306 /*
1307 * Ensure that ns path disk node is already added otherwise we
1308 * may get invalid kobj name for target
1309 */
1310 if (!test_bit(GD_ADDED, &ns->disk->state))
1311 continue;
1312
1313 /*
1314 * Avoid creating link if it already exists for the given path.
1315 * When path ana state transitions from optimized to non-
1316 * optimized or vice-versa, the nvme_mpath_set_live() is
1317 * invoked which in truns call this function. Now if the sysfs
1318 * link already exists for the given path and we attempt to re-
1319 * create the link then sysfs code would warn about it loudly.
1320 * So we evaluate NVME_NS_SYSFS_ATTR_LINK flag here to ensure
1321 * that we're not creating duplicate link.
1322 * The test_and_set_bit() is used because it is protecting
1323 * against multiple nvme paths being simultaneously added.
1324 */
1325 if (test_and_set_bit(NVME_NS_SYSFS_ATTR_LINK, &ns->flags))
1326 continue;
1327
1328 target = disk_to_dev(ns->disk);
1329 /*
1330 * Create sysfs link from head gendisk kobject @kobj to the
1331 * ns path gendisk kobject @target->kobj.
1332 */
1333 rc = sysfs_add_link_to_group(kobj, nvme_ns_mpath_attr_group.name,
1334 &target->kobj, dev_name(target));
1335 if (unlikely(rc)) {
1336 dev_err(disk_to_dev(ns->head->disk),
1337 "failed to create link to %s\n",
1338 dev_name(target));
1339 clear_bit(NVME_NS_SYSFS_ATTR_LINK, &ns->flags);
1340 }
1341 }
1342
1343 srcu_read_unlock(&head->srcu, srcu_idx);
1344 }
1345
nvme_mpath_remove_sysfs_link(struct nvme_ns * ns)1346 void nvme_mpath_remove_sysfs_link(struct nvme_ns *ns)
1347 {
1348 struct device *target;
1349 struct kobject *kobj;
1350
1351 if (!test_bit(NVME_NS_SYSFS_ATTR_LINK, &ns->flags))
1352 return;
1353
1354 target = disk_to_dev(ns->disk);
1355 kobj = &disk_to_dev(ns->head->disk)->kobj;
1356 sysfs_remove_link_from_group(kobj, nvme_ns_mpath_attr_group.name,
1357 dev_name(target));
1358 clear_bit(NVME_NS_SYSFS_ATTR_LINK, &ns->flags);
1359 }
1360
nvme_mpath_add_disk(struct nvme_ns * ns,__le32 anagrpid)1361 void nvme_mpath_add_disk(struct nvme_ns *ns, __le32 anagrpid)
1362 {
1363 if (nvme_ctrl_use_ana(ns->ctrl)) {
1364 struct nvme_ana_group_desc desc = {
1365 .grpid = anagrpid,
1366 .state = 0,
1367 };
1368
1369 mutex_lock(&ns->ctrl->ana_lock);
1370 ns->ana_grpid = le32_to_cpu(anagrpid);
1371 nvme_parse_ana_log(ns->ctrl, &desc, nvme_lookup_ana_group_desc);
1372 mutex_unlock(&ns->ctrl->ana_lock);
1373 if (desc.state) {
1374 /* found the group desc: update */
1375 nvme_update_ns_ana_state(&desc, ns);
1376 } else {
1377 /* group desc not found: trigger a re-read */
1378 set_bit(NVME_NS_ANA_PENDING, &ns->flags);
1379 queue_work(nvme_wq, &ns->ctrl->ana_work);
1380 }
1381 } else {
1382 ns->ana_state = NVME_ANA_OPTIMIZED;
1383 nvme_mpath_set_live(ns);
1384 }
1385
1386 }
1387
nvme_mpath_remove_disk(struct nvme_ns_head * head)1388 void nvme_mpath_remove_disk(struct nvme_ns_head *head)
1389 {
1390 bool remove = false;
1391
1392 if (!head->disk)
1393 return;
1394
1395 mutex_lock(&head->subsys->lock);
1396 /*
1397 * We are called when all paths have been removed, and at that point
1398 * head->list is expected to be empty. However, nvme_ns_remove() and
1399 * nvme_init_ns_head() can run concurrently and so if head->delayed_
1400 * removal_secs is configured, it is possible that by the time we reach
1401 * this point, head->list may no longer be empty. Therefore, we recheck
1402 * head->list here. If it is no longer empty then we skip enqueuing the
1403 * delayed head removal work.
1404 */
1405 if (!list_empty(&head->list))
1406 goto out;
1407
1408 /*
1409 * Ensure that no one could remove this module while the head
1410 * remove work is pending.
1411 */
1412 if (head->delayed_removal_secs && try_module_get(THIS_MODULE)) {
1413 mod_delayed_work(nvme_wq, &head->remove_work,
1414 head->delayed_removal_secs * HZ);
1415 } else {
1416 list_del_init(&head->entry);
1417 remove = true;
1418 }
1419 out:
1420 mutex_unlock(&head->subsys->lock);
1421 if (remove)
1422 nvme_remove_head(head);
1423 }
1424
nvme_mpath_put_disk(struct nvme_ns_head * head)1425 void nvme_mpath_put_disk(struct nvme_ns_head *head)
1426 {
1427 if (!head->disk)
1428 return;
1429 /* make sure all pending bios are cleaned up */
1430 kblockd_schedule_work(&head->requeue_work);
1431 flush_work(&head->requeue_work);
1432 flush_work(&head->partition_scan_work);
1433 put_disk(head->disk);
1434 }
1435
nvme_mpath_init_ctrl(struct nvme_ctrl * ctrl)1436 void nvme_mpath_init_ctrl(struct nvme_ctrl *ctrl)
1437 {
1438 mutex_init(&ctrl->ana_lock);
1439 timer_setup(&ctrl->anatt_timer, nvme_anatt_timeout, 0);
1440 INIT_WORK(&ctrl->ana_work, nvme_ana_work);
1441 }
1442
nvme_mpath_init_identify(struct nvme_ctrl * ctrl,struct nvme_id_ctrl * id)1443 int nvme_mpath_init_identify(struct nvme_ctrl *ctrl, struct nvme_id_ctrl *id)
1444 {
1445 size_t max_transfer_size = ctrl->max_hw_sectors << SECTOR_SHIFT;
1446 size_t ana_log_size;
1447 int error = 0;
1448
1449 /* check if multipath is enabled and we have the capability */
1450 if (!multipath || !ctrl->subsys ||
1451 !(ctrl->subsys->cmic & NVME_CTRL_CMIC_ANA))
1452 return 0;
1453
1454 /* initialize this in the identify path to cover controller resets */
1455 atomic_set(&ctrl->nr_active, 0);
1456
1457 if (!ctrl->max_namespaces ||
1458 ctrl->max_namespaces > le32_to_cpu(id->nn)) {
1459 dev_err(ctrl->device,
1460 "Invalid MNAN value %u\n", ctrl->max_namespaces);
1461 return -EINVAL;
1462 }
1463
1464 ctrl->anacap = id->anacap;
1465 ctrl->anatt = id->anatt;
1466 ctrl->nanagrpid = le32_to_cpu(id->nanagrpid);
1467 ctrl->anagrpmax = le32_to_cpu(id->anagrpmax);
1468
1469 ana_log_size = sizeof(struct nvme_ana_rsp_hdr) +
1470 ctrl->nanagrpid * sizeof(struct nvme_ana_group_desc) +
1471 ctrl->max_namespaces * sizeof(__le32);
1472 if (ana_log_size > max_transfer_size) {
1473 dev_err(ctrl->device,
1474 "ANA log page size (%zd) larger than MDTS (%zd).\n",
1475 ana_log_size, max_transfer_size);
1476 dev_err(ctrl->device, "disabling ANA support.\n");
1477 goto out_uninit;
1478 }
1479 if (ana_log_size > ctrl->ana_log_size) {
1480 nvme_mpath_stop(ctrl);
1481 nvme_mpath_uninit(ctrl);
1482 ctrl->ana_log_buf = kvmalloc(ana_log_size, GFP_KERNEL);
1483 if (!ctrl->ana_log_buf)
1484 return -ENOMEM;
1485 }
1486 ctrl->ana_log_size = ana_log_size;
1487 error = nvme_read_ana_log(ctrl);
1488 if (error)
1489 goto out_uninit;
1490 return 0;
1491
1492 out_uninit:
1493 nvme_mpath_uninit(ctrl);
1494 return error;
1495 }
1496
nvme_mpath_uninit(struct nvme_ctrl * ctrl)1497 void nvme_mpath_uninit(struct nvme_ctrl *ctrl)
1498 {
1499 kvfree(ctrl->ana_log_buf);
1500 ctrl->ana_log_buf = NULL;
1501 ctrl->ana_log_size = 0;
1502 }
1503