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1 /*
2  * Copyright (C) 2003 Sistina Software Limited.
3  * Copyright (C) 2004-2005 Red Hat, Inc. All rights reserved.
4  *
5  * This file is released under the GPL.
6  */
7
8 #include <linux/device-mapper.h>
9
10 #include "dm.h"
11 #include "dm-path-selector.h"
12 #include "dm-uevent.h"
13
14 #include <linux/ctype.h>
15 #include <linux/init.h>
16 #include <linux/mempool.h>
17 #include <linux/module.h>
18 #include <linux/pagemap.h>
19 #include <linux/slab.h>
20 #include <linux/time.h>
21 #include <linux/workqueue.h>
22 #include <linux/delay.h>
23 #include <scsi/scsi_dh.h>
24 #include <linux/atomic.h>
25
26 #define DM_MSG_PREFIX "multipath"
27 #define DM_PG_INIT_DELAY_MSECS 2000
28 #define DM_PG_INIT_DELAY_DEFAULT ((unsigned) -1)
29
30 /* Path properties */
31 struct pgpath {
32         struct list_head list;
33
34         struct priority_group *pg;      /* Owning PG */
35         unsigned is_active;             /* Path status */
36         unsigned fail_count;            /* Cumulative failure count */
37
38         struct dm_path path;
39         struct delayed_work activate_path;
40 };
41
42 #define path_to_pgpath(__pgp) container_of((__pgp), struct pgpath, path)
43
44 /*
45  * Paths are grouped into Priority Groups and numbered from 1 upwards.
46  * Each has a path selector which controls which path gets used.
47  */
48 struct priority_group {
49         struct list_head list;
50
51         struct multipath *m;            /* Owning multipath instance */
52         struct path_selector ps;
53
54         unsigned pg_num;                /* Reference number */
55         unsigned bypassed;              /* Temporarily bypass this PG? */
56
57         unsigned nr_pgpaths;            /* Number of paths in PG */
58         struct list_head pgpaths;
59 };
60
61 /* Multipath context */
62 struct multipath {
63         struct list_head list;
64         struct dm_target *ti;
65
66         const char *hw_handler_name;
67         char *hw_handler_params;
68
69         spinlock_t lock;
70
71         unsigned nr_priority_groups;
72         struct list_head priority_groups;
73
74         wait_queue_head_t pg_init_wait; /* Wait for pg_init completion */
75
76         unsigned pg_init_required;      /* pg_init needs calling? */
77         unsigned pg_init_in_progress;   /* Only one pg_init allowed at once */
78         unsigned pg_init_delay_retry;   /* Delay pg_init retry? */
79
80         unsigned nr_valid_paths;        /* Total number of usable paths */
81         struct pgpath *current_pgpath;
82         struct priority_group *current_pg;
83         struct priority_group *next_pg; /* Switch to this PG if set */
84         unsigned repeat_count;          /* I/Os left before calling PS again */
85
86         unsigned queue_io:1;            /* Must we queue all I/O? */
87         unsigned queue_if_no_path:1;    /* Queue I/O if last path fails? */
88         unsigned saved_queue_if_no_path:1; /* Saved state during suspension */
89         unsigned retain_attached_hw_handler:1; /* If there's already a hw_handler present, don't change it. */
90         unsigned pg_init_disabled:1;    /* pg_init is not currently allowed */
91
92         unsigned pg_init_retries;       /* Number of times to retry pg_init */
93         unsigned pg_init_count;         /* Number of times pg_init called */
94         unsigned pg_init_delay_msecs;   /* Number of msecs before pg_init retry */
95
96         struct work_struct trigger_event;
97
98         /*
99          * We must use a mempool of dm_mpath_io structs so that we
100          * can resubmit bios on error.
101          */
102         mempool_t *mpio_pool;
103
104         struct mutex work_mutex;
105 };
106
107 /*
108  * Context information attached to each bio we process.
109  */
110 struct dm_mpath_io {
111         struct pgpath *pgpath;
112         size_t nr_bytes;
113 };
114
115 typedef int (*action_fn) (struct pgpath *pgpath);
116
117 static struct kmem_cache *_mpio_cache;
118
119 static struct workqueue_struct *kmultipathd, *kmpath_handlerd;
120 static void trigger_event(struct work_struct *work);
121 static void activate_path(struct work_struct *work);
122 static int __pgpath_busy(struct pgpath *pgpath);
123
124
125 /*-----------------------------------------------
126  * Allocation routines
127  *-----------------------------------------------*/
128
129 static struct pgpath *alloc_pgpath(void)
130 {
131         struct pgpath *pgpath = kzalloc(sizeof(*pgpath), GFP_KERNEL);
132
133         if (pgpath) {
134                 pgpath->is_active = 1;
135                 INIT_DELAYED_WORK(&pgpath->activate_path, activate_path);
136         }
137
138         return pgpath;
139 }
140
141 static void free_pgpath(struct pgpath *pgpath)
142 {
143         kfree(pgpath);
144 }
145
146 static struct priority_group *alloc_priority_group(void)
147 {
148         struct priority_group *pg;
149
150         pg = kzalloc(sizeof(*pg), GFP_KERNEL);
151
152         if (pg)
153                 INIT_LIST_HEAD(&pg->pgpaths);
154
155         return pg;
156 }
157
158 static void free_pgpaths(struct list_head *pgpaths, struct dm_target *ti)
159 {
160         struct pgpath *pgpath, *tmp;
161         struct multipath *m = ti->private;
162
163         list_for_each_entry_safe(pgpath, tmp, pgpaths, list) {
164                 list_del(&pgpath->list);
165                 if (m->hw_handler_name)
166                         scsi_dh_detach(bdev_get_queue(pgpath->path.dev->bdev));
167                 dm_put_device(ti, pgpath->path.dev);
168                 free_pgpath(pgpath);
169         }
170 }
171
172 static void free_priority_group(struct priority_group *pg,
173                                 struct dm_target *ti)
174 {
175         struct path_selector *ps = &pg->ps;
176
177         if (ps->type) {
178                 ps->type->destroy(ps);
179                 dm_put_path_selector(ps->type);
180         }
181
182         free_pgpaths(&pg->pgpaths, ti);
183         kfree(pg);
184 }
185
186 static struct multipath *alloc_multipath(struct dm_target *ti)
187 {
188         struct multipath *m;
189         unsigned min_ios = dm_get_reserved_rq_based_ios();
190
191         m = kzalloc(sizeof(*m), GFP_KERNEL);
192         if (m) {
193                 INIT_LIST_HEAD(&m->priority_groups);
194                 spin_lock_init(&m->lock);
195                 m->queue_io = 1;
196                 m->pg_init_delay_msecs = DM_PG_INIT_DELAY_DEFAULT;
197                 INIT_WORK(&m->trigger_event, trigger_event);
198                 init_waitqueue_head(&m->pg_init_wait);
199                 mutex_init(&m->work_mutex);
200                 m->mpio_pool = mempool_create_slab_pool(min_ios, _mpio_cache);
201                 if (!m->mpio_pool) {
202                         kfree(m);
203                         return NULL;
204                 }
205                 m->ti = ti;
206                 ti->private = m;
207         }
208
209         return m;
210 }
211
212 static void free_multipath(struct multipath *m)
213 {
214         struct priority_group *pg, *tmp;
215
216         list_for_each_entry_safe(pg, tmp, &m->priority_groups, list) {
217                 list_del(&pg->list);
218                 free_priority_group(pg, m->ti);
219         }
220
221         kfree(m->hw_handler_name);
222         kfree(m->hw_handler_params);
223         mempool_destroy(m->mpio_pool);
224         kfree(m);
225 }
226
227 static int set_mapinfo(struct multipath *m, union map_info *info)
228 {
229         struct dm_mpath_io *mpio;
230
231         mpio = mempool_alloc(m->mpio_pool, GFP_ATOMIC);
232         if (!mpio)
233                 return -ENOMEM;
234
235         memset(mpio, 0, sizeof(*mpio));
236         info->ptr = mpio;
237
238         return 0;
239 }
240
241 static void clear_mapinfo(struct multipath *m, union map_info *info)
242 {
243         struct dm_mpath_io *mpio = info->ptr;
244
245         info->ptr = NULL;
246         mempool_free(mpio, m->mpio_pool);
247 }
248
249 /*-----------------------------------------------
250  * Path selection
251  *-----------------------------------------------*/
252
253 static int __pg_init_all_paths(struct multipath *m)
254 {
255         struct pgpath *pgpath;
256         unsigned long pg_init_delay = 0;
257
258         if (m->pg_init_in_progress || m->pg_init_disabled)
259                 return 0;
260
261         m->pg_init_count++;
262         m->pg_init_required = 0;
263
264         /* Check here to reset pg_init_required */
265         if (!m->current_pg)
266                 return 0;
267
268         if (m->pg_init_delay_retry)
269                 pg_init_delay = msecs_to_jiffies(m->pg_init_delay_msecs != DM_PG_INIT_DELAY_DEFAULT ?
270                                                  m->pg_init_delay_msecs : DM_PG_INIT_DELAY_MSECS);
271         list_for_each_entry(pgpath, &m->current_pg->pgpaths, list) {
272                 /* Skip failed paths */
273                 if (!pgpath->is_active)
274                         continue;
275                 if (queue_delayed_work(kmpath_handlerd, &pgpath->activate_path,
276                                        pg_init_delay))
277                         m->pg_init_in_progress++;
278         }
279         return m->pg_init_in_progress;
280 }
281
282 static void __switch_pg(struct multipath *m, struct pgpath *pgpath)
283 {
284         m->current_pg = pgpath->pg;
285
286         /* Must we initialise the PG first, and queue I/O till it's ready? */
287         if (m->hw_handler_name) {
288                 m->pg_init_required = 1;
289                 m->queue_io = 1;
290         } else {
291                 m->pg_init_required = 0;
292                 m->queue_io = 0;
293         }
294
295         m->pg_init_count = 0;
296 }
297
298 static int __choose_path_in_pg(struct multipath *m, struct priority_group *pg,
299                                size_t nr_bytes)
300 {
301         struct dm_path *path;
302
303         path = pg->ps.type->select_path(&pg->ps, &m->repeat_count, nr_bytes);
304         if (!path)
305                 return -ENXIO;
306
307         m->current_pgpath = path_to_pgpath(path);
308
309         if (m->current_pg != pg)
310                 __switch_pg(m, m->current_pgpath);
311
312         return 0;
313 }
314
315 static void __choose_pgpath(struct multipath *m, size_t nr_bytes)
316 {
317         struct priority_group *pg;
318         unsigned bypassed = 1;
319
320         if (!m->nr_valid_paths)
321                 goto failed;
322
323         /* Were we instructed to switch PG? */
324         if (m->next_pg) {
325                 pg = m->next_pg;
326                 m->next_pg = NULL;
327                 if (!__choose_path_in_pg(m, pg, nr_bytes))
328                         return;
329         }
330
331         /* Don't change PG until it has no remaining paths */
332         if (m->current_pg && !__choose_path_in_pg(m, m->current_pg, nr_bytes))
333                 return;
334
335         /*
336          * Loop through priority groups until we find a valid path.
337          * First time we skip PGs marked 'bypassed'.
338          * Second time we only try the ones we skipped, but set
339          * pg_init_delay_retry so we do not hammer controllers.
340          */
341         do {
342                 list_for_each_entry(pg, &m->priority_groups, list) {
343                         if (pg->bypassed == bypassed)
344                                 continue;
345                         if (!__choose_path_in_pg(m, pg, nr_bytes)) {
346                                 if (!bypassed)
347                                         m->pg_init_delay_retry = 1;
348                                 return;
349                         }
350                 }
351         } while (bypassed--);
352
353 failed:
354         m->current_pgpath = NULL;
355         m->current_pg = NULL;
356 }
357
358 /*
359  * Check whether bios must be queued in the device-mapper core rather
360  * than here in the target.
361  *
362  * m->lock must be held on entry.
363  *
364  * If m->queue_if_no_path and m->saved_queue_if_no_path hold the
365  * same value then we are not between multipath_presuspend()
366  * and multipath_resume() calls and we have no need to check
367  * for the DMF_NOFLUSH_SUSPENDING flag.
368  */
369 static int __must_push_back(struct multipath *m)
370 {
371         return (m->queue_if_no_path ||
372                 (m->queue_if_no_path != m->saved_queue_if_no_path &&
373                  dm_noflush_suspending(m->ti)));
374 }
375
376 #define pg_ready(m) (!(m)->queue_io && !(m)->pg_init_required)
377
378 /*
379  * Map cloned requests
380  */
381 static int multipath_map(struct dm_target *ti, struct request *clone,
382                          union map_info *map_context)
383 {
384         struct multipath *m = (struct multipath *) ti->private;
385         int r = DM_MAPIO_REQUEUE;
386         size_t nr_bytes = blk_rq_bytes(clone);
387         unsigned long flags;
388         struct pgpath *pgpath;
389         struct block_device *bdev;
390         struct dm_mpath_io *mpio;
391
392         spin_lock_irqsave(&m->lock, flags);
393
394         /* Do we need to select a new pgpath? */
395         if (!m->current_pgpath ||
396             (!m->queue_io && (m->repeat_count && --m->repeat_count == 0)))
397                 __choose_pgpath(m, nr_bytes);
398
399         pgpath = m->current_pgpath;
400
401         if (!pgpath) {
402                 if (!__must_push_back(m))
403                         r = -EIO;       /* Failed */
404                 goto out_unlock;
405         }
406         if (!pg_ready(m)) {
407                 __pg_init_all_paths(m);
408                 goto out_unlock;
409         }
410         if (set_mapinfo(m, map_context) < 0)
411                 /* ENOMEM, requeue */
412                 goto out_unlock;
413
414         bdev = pgpath->path.dev->bdev;
415         clone->q = bdev_get_queue(bdev);
416         clone->rq_disk = bdev->bd_disk;
417         clone->cmd_flags |= REQ_FAILFAST_TRANSPORT;
418         mpio = map_context->ptr;
419         mpio->pgpath = pgpath;
420         mpio->nr_bytes = nr_bytes;
421         if (pgpath->pg->ps.type->start_io)
422                 pgpath->pg->ps.type->start_io(&pgpath->pg->ps,
423                                               &pgpath->path,
424                                               nr_bytes);
425         r = DM_MAPIO_REMAPPED;
426
427 out_unlock:
428         spin_unlock_irqrestore(&m->lock, flags);
429
430         return r;
431 }
432
433 /*
434  * If we run out of usable paths, should we queue I/O or error it?
435  */
436 static int queue_if_no_path(struct multipath *m, unsigned queue_if_no_path,
437                             unsigned save_old_value)
438 {
439         unsigned long flags;
440
441         spin_lock_irqsave(&m->lock, flags);
442
443         if (save_old_value)
444                 m->saved_queue_if_no_path = m->queue_if_no_path;
445         else
446                 m->saved_queue_if_no_path = queue_if_no_path;
447         m->queue_if_no_path = queue_if_no_path;
448         if (!m->queue_if_no_path)
449                 dm_table_run_md_queue_async(m->ti->table);
450
451         spin_unlock_irqrestore(&m->lock, flags);
452
453         return 0;
454 }
455
456 /*
457  * An event is triggered whenever a path is taken out of use.
458  * Includes path failure and PG bypass.
459  */
460 static void trigger_event(struct work_struct *work)
461 {
462         struct multipath *m =
463                 container_of(work, struct multipath, trigger_event);
464
465         dm_table_event(m->ti->table);
466 }
467
468 /*-----------------------------------------------------------------
469  * Constructor/argument parsing:
470  * <#multipath feature args> [<arg>]*
471  * <#hw_handler args> [hw_handler [<arg>]*]
472  * <#priority groups>
473  * <initial priority group>
474  *     [<selector> <#selector args> [<arg>]*
475  *      <#paths> <#per-path selector args>
476  *         [<path> [<arg>]* ]+ ]+
477  *---------------------------------------------------------------*/
478 static int parse_path_selector(struct dm_arg_set *as, struct priority_group *pg,
479                                struct dm_target *ti)
480 {
481         int r;
482         struct path_selector_type *pst;
483         unsigned ps_argc;
484
485         static struct dm_arg _args[] = {
486                 {0, 1024, "invalid number of path selector args"},
487         };
488
489         pst = dm_get_path_selector(dm_shift_arg(as));
490         if (!pst) {
491                 ti->error = "unknown path selector type";
492                 return -EINVAL;
493         }
494
495         r = dm_read_arg_group(_args, as, &ps_argc, &ti->error);
496         if (r) {
497                 dm_put_path_selector(pst);
498                 return -EINVAL;
499         }
500
501         r = pst->create(&pg->ps, ps_argc, as->argv);
502         if (r) {
503                 dm_put_path_selector(pst);
504                 ti->error = "path selector constructor failed";
505                 return r;
506         }
507
508         pg->ps.type = pst;
509         dm_consume_args(as, ps_argc);
510
511         return 0;
512 }
513
514 static struct pgpath *parse_path(struct dm_arg_set *as, struct path_selector *ps,
515                                struct dm_target *ti)
516 {
517         int r;
518         struct pgpath *p;
519         struct multipath *m = ti->private;
520         struct request_queue *q = NULL;
521         const char *attached_handler_name;
522
523         /* we need at least a path arg */
524         if (as->argc < 1) {
525                 ti->error = "no device given";
526                 return ERR_PTR(-EINVAL);
527         }
528
529         p = alloc_pgpath();
530         if (!p)
531                 return ERR_PTR(-ENOMEM);
532
533         r = dm_get_device(ti, dm_shift_arg(as), dm_table_get_mode(ti->table),
534                           &p->path.dev);
535         if (r) {
536                 ti->error = "error getting device";
537                 goto bad;
538         }
539
540         if (m->retain_attached_hw_handler || m->hw_handler_name)
541                 q = bdev_get_queue(p->path.dev->bdev);
542
543         if (m->retain_attached_hw_handler) {
544                 attached_handler_name = scsi_dh_attached_handler_name(q, GFP_KERNEL);
545                 if (attached_handler_name) {
546                         /*
547                          * Reset hw_handler_name to match the attached handler
548                          * and clear any hw_handler_params associated with the
549                          * ignored handler.
550                          *
551                          * NB. This modifies the table line to show the actual
552                          * handler instead of the original table passed in.
553                          */
554                         kfree(m->hw_handler_name);
555                         m->hw_handler_name = attached_handler_name;
556
557                         kfree(m->hw_handler_params);
558                         m->hw_handler_params = NULL;
559                 }
560         }
561
562         if (m->hw_handler_name) {
563                 /*
564                  * Increments scsi_dh reference, even when using an
565                  * already-attached handler.
566                  */
567                 r = scsi_dh_attach(q, m->hw_handler_name);
568                 if (r == -EBUSY) {
569                         /*
570                          * Already attached to different hw_handler:
571                          * try to reattach with correct one.
572                          */
573                         scsi_dh_detach(q);
574                         r = scsi_dh_attach(q, m->hw_handler_name);
575                 }
576
577                 if (r < 0) {
578                         ti->error = "error attaching hardware handler";
579                         dm_put_device(ti, p->path.dev);
580                         goto bad;
581                 }
582
583                 if (m->hw_handler_params) {
584                         r = scsi_dh_set_params(q, m->hw_handler_params);
585                         if (r < 0) {
586                                 ti->error = "unable to set hardware "
587                                                         "handler parameters";
588                                 scsi_dh_detach(q);
589                                 dm_put_device(ti, p->path.dev);
590                                 goto bad;
591                         }
592                 }
593         }
594
595         r = ps->type->add_path(ps, &p->path, as->argc, as->argv, &ti->error);
596         if (r) {
597                 dm_put_device(ti, p->path.dev);
598                 goto bad;
599         }
600
601         return p;
602
603  bad:
604         free_pgpath(p);
605         return ERR_PTR(r);
606 }
607
608 static struct priority_group *parse_priority_group(struct dm_arg_set *as,
609                                                    struct multipath *m)
610 {
611         static struct dm_arg _args[] = {
612                 {1, 1024, "invalid number of paths"},
613                 {0, 1024, "invalid number of selector args"}
614         };
615
616         int r;
617         unsigned i, nr_selector_args, nr_args;
618         struct priority_group *pg;
619         struct dm_target *ti = m->ti;
620
621         if (as->argc < 2) {
622                 as->argc = 0;
623                 ti->error = "not enough priority group arguments";
624                 return ERR_PTR(-EINVAL);
625         }
626
627         pg = alloc_priority_group();
628         if (!pg) {
629                 ti->error = "couldn't allocate priority group";
630                 return ERR_PTR(-ENOMEM);
631         }
632         pg->m = m;
633
634         r = parse_path_selector(as, pg, ti);
635         if (r)
636                 goto bad;
637
638         /*
639          * read the paths
640          */
641         r = dm_read_arg(_args, as, &pg->nr_pgpaths, &ti->error);
642         if (r)
643                 goto bad;
644
645         r = dm_read_arg(_args + 1, as, &nr_selector_args, &ti->error);
646         if (r)
647                 goto bad;
648
649         nr_args = 1 + nr_selector_args;
650         for (i = 0; i < pg->nr_pgpaths; i++) {
651                 struct pgpath *pgpath;
652                 struct dm_arg_set path_args;
653
654                 if (as->argc < nr_args) {
655                         ti->error = "not enough path parameters";
656                         r = -EINVAL;
657                         goto bad;
658                 }
659
660                 path_args.argc = nr_args;
661                 path_args.argv = as->argv;
662
663                 pgpath = parse_path(&path_args, &pg->ps, ti);
664                 if (IS_ERR(pgpath)) {
665                         r = PTR_ERR(pgpath);
666                         goto bad;
667                 }
668
669                 pgpath->pg = pg;
670                 list_add_tail(&pgpath->list, &pg->pgpaths);
671                 dm_consume_args(as, nr_args);
672         }
673
674         return pg;
675
676  bad:
677         free_priority_group(pg, ti);
678         return ERR_PTR(r);
679 }
680
681 static int parse_hw_handler(struct dm_arg_set *as, struct multipath *m)
682 {
683         unsigned hw_argc;
684         int ret;
685         struct dm_target *ti = m->ti;
686
687         static struct dm_arg _args[] = {
688                 {0, 1024, "invalid number of hardware handler args"},
689         };
690
691         if (dm_read_arg_group(_args, as, &hw_argc, &ti->error))
692                 return -EINVAL;
693
694         if (!hw_argc)
695                 return 0;
696
697         m->hw_handler_name = kstrdup(dm_shift_arg(as), GFP_KERNEL);
698         if (!try_then_request_module(scsi_dh_handler_exist(m->hw_handler_name),
699                                      "scsi_dh_%s", m->hw_handler_name)) {
700                 ti->error = "unknown hardware handler type";
701                 ret = -EINVAL;
702                 goto fail;
703         }
704
705         if (hw_argc > 1) {
706                 char *p;
707                 int i, j, len = 4;
708
709                 for (i = 0; i <= hw_argc - 2; i++)
710                         len += strlen(as->argv[i]) + 1;
711                 p = m->hw_handler_params = kzalloc(len, GFP_KERNEL);
712                 if (!p) {
713                         ti->error = "memory allocation failed";
714                         ret = -ENOMEM;
715                         goto fail;
716                 }
717                 j = sprintf(p, "%d", hw_argc - 1);
718                 for (i = 0, p+=j+1; i <= hw_argc - 2; i++, p+=j+1)
719                         j = sprintf(p, "%s", as->argv[i]);
720         }
721         dm_consume_args(as, hw_argc - 1);
722
723         return 0;
724 fail:
725         kfree(m->hw_handler_name);
726         m->hw_handler_name = NULL;
727         return ret;
728 }
729
730 static int parse_features(struct dm_arg_set *as, struct multipath *m)
731 {
732         int r;
733         unsigned argc;
734         struct dm_target *ti = m->ti;
735         const char *arg_name;
736
737         static struct dm_arg _args[] = {
738                 {0, 6, "invalid number of feature args"},
739                 {1, 50, "pg_init_retries must be between 1 and 50"},
740                 {0, 60000, "pg_init_delay_msecs must be between 0 and 60000"},
741         };
742
743         r = dm_read_arg_group(_args, as, &argc, &ti->error);
744         if (r)
745                 return -EINVAL;
746
747         if (!argc)
748                 return 0;
749
750         do {
751                 arg_name = dm_shift_arg(as);
752                 argc--;
753
754                 if (!strcasecmp(arg_name, "queue_if_no_path")) {
755                         r = queue_if_no_path(m, 1, 0);
756                         continue;
757                 }
758
759                 if (!strcasecmp(arg_name, "retain_attached_hw_handler")) {
760                         m->retain_attached_hw_handler = 1;
761                         continue;
762                 }
763
764                 if (!strcasecmp(arg_name, "pg_init_retries") &&
765                     (argc >= 1)) {
766                         r = dm_read_arg(_args + 1, as, &m->pg_init_retries, &ti->error);
767                         argc--;
768                         continue;
769                 }
770
771                 if (!strcasecmp(arg_name, "pg_init_delay_msecs") &&
772                     (argc >= 1)) {
773                         r = dm_read_arg(_args + 2, as, &m->pg_init_delay_msecs, &ti->error);
774                         argc--;
775                         continue;
776                 }
777
778                 ti->error = "Unrecognised multipath feature request";
779                 r = -EINVAL;
780         } while (argc && !r);
781
782         return r;
783 }
784
785 static int multipath_ctr(struct dm_target *ti, unsigned int argc,
786                          char **argv)
787 {
788         /* target arguments */
789         static struct dm_arg _args[] = {
790                 {0, 1024, "invalid number of priority groups"},
791                 {0, 1024, "invalid initial priority group number"},
792         };
793
794         int r;
795         struct multipath *m;
796         struct dm_arg_set as;
797         unsigned pg_count = 0;
798         unsigned next_pg_num;
799
800         as.argc = argc;
801         as.argv = argv;
802
803         m = alloc_multipath(ti);
804         if (!m) {
805                 ti->error = "can't allocate multipath";
806                 return -EINVAL;
807         }
808
809         r = parse_features(&as, m);
810         if (r)
811                 goto bad;
812
813         r = parse_hw_handler(&as, m);
814         if (r)
815                 goto bad;
816
817         r = dm_read_arg(_args, &as, &m->nr_priority_groups, &ti->error);
818         if (r)
819                 goto bad;
820
821         r = dm_read_arg(_args + 1, &as, &next_pg_num, &ti->error);
822         if (r)
823                 goto bad;
824
825         if ((!m->nr_priority_groups && next_pg_num) ||
826             (m->nr_priority_groups && !next_pg_num)) {
827                 ti->error = "invalid initial priority group";
828                 r = -EINVAL;
829                 goto bad;
830         }
831
832         /* parse the priority groups */
833         while (as.argc) {
834                 struct priority_group *pg;
835
836                 pg = parse_priority_group(&as, m);
837                 if (IS_ERR(pg)) {
838                         r = PTR_ERR(pg);
839                         goto bad;
840                 }
841
842                 m->nr_valid_paths += pg->nr_pgpaths;
843                 list_add_tail(&pg->list, &m->priority_groups);
844                 pg_count++;
845                 pg->pg_num = pg_count;
846                 if (!--next_pg_num)
847                         m->next_pg = pg;
848         }
849
850         if (pg_count != m->nr_priority_groups) {
851                 ti->error = "priority group count mismatch";
852                 r = -EINVAL;
853                 goto bad;
854         }
855
856         ti->num_flush_bios = 1;
857         ti->num_discard_bios = 1;
858         ti->num_write_same_bios = 1;
859
860         return 0;
861
862  bad:
863         free_multipath(m);
864         return r;
865 }
866
867 static void multipath_wait_for_pg_init_completion(struct multipath *m)
868 {
869         DECLARE_WAITQUEUE(wait, current);
870         unsigned long flags;
871
872         add_wait_queue(&m->pg_init_wait, &wait);
873
874         while (1) {
875                 set_current_state(TASK_UNINTERRUPTIBLE);
876
877                 spin_lock_irqsave(&m->lock, flags);
878                 if (!m->pg_init_in_progress) {
879                         spin_unlock_irqrestore(&m->lock, flags);
880                         break;
881                 }
882                 spin_unlock_irqrestore(&m->lock, flags);
883
884                 io_schedule();
885         }
886         set_current_state(TASK_RUNNING);
887
888         remove_wait_queue(&m->pg_init_wait, &wait);
889 }
890
891 static void flush_multipath_work(struct multipath *m)
892 {
893         unsigned long flags;
894
895         spin_lock_irqsave(&m->lock, flags);
896         m->pg_init_disabled = 1;
897         spin_unlock_irqrestore(&m->lock, flags);
898
899         flush_workqueue(kmpath_handlerd);
900         multipath_wait_for_pg_init_completion(m);
901         flush_workqueue(kmultipathd);
902         flush_work(&m->trigger_event);
903
904         spin_lock_irqsave(&m->lock, flags);
905         m->pg_init_disabled = 0;
906         spin_unlock_irqrestore(&m->lock, flags);
907 }
908
909 static void multipath_dtr(struct dm_target *ti)
910 {
911         struct multipath *m = ti->private;
912
913         flush_multipath_work(m);
914         free_multipath(m);
915 }
916
917 /*
918  * Take a path out of use.
919  */
920 static int fail_path(struct pgpath *pgpath)
921 {
922         unsigned long flags;
923         struct multipath *m = pgpath->pg->m;
924
925         spin_lock_irqsave(&m->lock, flags);
926
927         if (!pgpath->is_active)
928                 goto out;
929
930         DMWARN("Failing path %s.", pgpath->path.dev->name);
931
932         pgpath->pg->ps.type->fail_path(&pgpath->pg->ps, &pgpath->path);
933         pgpath->is_active = 0;
934         pgpath->fail_count++;
935
936         m->nr_valid_paths--;
937
938         if (pgpath == m->current_pgpath)
939                 m->current_pgpath = NULL;
940
941         dm_path_uevent(DM_UEVENT_PATH_FAILED, m->ti,
942                       pgpath->path.dev->name, m->nr_valid_paths);
943
944         schedule_work(&m->trigger_event);
945
946 out:
947         spin_unlock_irqrestore(&m->lock, flags);
948
949         return 0;
950 }
951
952 /*
953  * Reinstate a previously-failed path
954  */
955 static int reinstate_path(struct pgpath *pgpath)
956 {
957         int r = 0;
958         unsigned long flags;
959         struct multipath *m = pgpath->pg->m;
960
961         spin_lock_irqsave(&m->lock, flags);
962
963         if (pgpath->is_active)
964                 goto out;
965
966         if (!pgpath->pg->ps.type->reinstate_path) {
967                 DMWARN("Reinstate path not supported by path selector %s",
968                        pgpath->pg->ps.type->name);
969                 r = -EINVAL;
970                 goto out;
971         }
972
973         r = pgpath->pg->ps.type->reinstate_path(&pgpath->pg->ps, &pgpath->path);
974         if (r)
975                 goto out;
976
977         pgpath->is_active = 1;
978
979         if (!m->nr_valid_paths++) {
980                 m->current_pgpath = NULL;
981                 dm_table_run_md_queue_async(m->ti->table);
982         } else if (m->hw_handler_name && (m->current_pg == pgpath->pg)) {
983                 if (queue_work(kmpath_handlerd, &pgpath->activate_path.work))
984                         m->pg_init_in_progress++;
985         }
986
987         dm_path_uevent(DM_UEVENT_PATH_REINSTATED, m->ti,
988                       pgpath->path.dev->name, m->nr_valid_paths);
989
990         schedule_work(&m->trigger_event);
991
992 out:
993         spin_unlock_irqrestore(&m->lock, flags);
994
995         return r;
996 }
997
998 /*
999  * Fail or reinstate all paths that match the provided struct dm_dev.
1000  */
1001 static int action_dev(struct multipath *m, struct dm_dev *dev,
1002                       action_fn action)
1003 {
1004         int r = -EINVAL;
1005         struct pgpath *pgpath;
1006         struct priority_group *pg;
1007
1008         list_for_each_entry(pg, &m->priority_groups, list) {
1009                 list_for_each_entry(pgpath, &pg->pgpaths, list) {
1010                         if (pgpath->path.dev == dev)
1011                                 r = action(pgpath);
1012                 }
1013         }
1014
1015         return r;
1016 }
1017
1018 /*
1019  * Temporarily try to avoid having to use the specified PG
1020  */
1021 static void bypass_pg(struct multipath *m, struct priority_group *pg,
1022                       int bypassed)
1023 {
1024         unsigned long flags;
1025
1026         spin_lock_irqsave(&m->lock, flags);
1027
1028         pg->bypassed = bypassed;
1029         m->current_pgpath = NULL;
1030         m->current_pg = NULL;
1031
1032         spin_unlock_irqrestore(&m->lock, flags);
1033
1034         schedule_work(&m->trigger_event);
1035 }
1036
1037 /*
1038  * Switch to using the specified PG from the next I/O that gets mapped
1039  */
1040 static int switch_pg_num(struct multipath *m, const char *pgstr)
1041 {
1042         struct priority_group *pg;
1043         unsigned pgnum;
1044         unsigned long flags;
1045         char dummy;
1046
1047         if (!pgstr || (sscanf(pgstr, "%u%c", &pgnum, &dummy) != 1) || !pgnum ||
1048             (pgnum > m->nr_priority_groups)) {
1049                 DMWARN("invalid PG number supplied to switch_pg_num");
1050                 return -EINVAL;
1051         }
1052
1053         spin_lock_irqsave(&m->lock, flags);
1054         list_for_each_entry(pg, &m->priority_groups, list) {
1055                 pg->bypassed = 0;
1056                 if (--pgnum)
1057                         continue;
1058
1059                 m->current_pgpath = NULL;
1060                 m->current_pg = NULL;
1061                 m->next_pg = pg;
1062         }
1063         spin_unlock_irqrestore(&m->lock, flags);
1064
1065         schedule_work(&m->trigger_event);
1066         return 0;
1067 }
1068
1069 /*
1070  * Set/clear bypassed status of a PG.
1071  * PGs are numbered upwards from 1 in the order they were declared.
1072  */
1073 static int bypass_pg_num(struct multipath *m, const char *pgstr, int bypassed)
1074 {
1075         struct priority_group *pg;
1076         unsigned pgnum;
1077         char dummy;
1078
1079         if (!pgstr || (sscanf(pgstr, "%u%c", &pgnum, &dummy) != 1) || !pgnum ||
1080             (pgnum > m->nr_priority_groups)) {
1081                 DMWARN("invalid PG number supplied to bypass_pg");
1082                 return -EINVAL;
1083         }
1084
1085         list_for_each_entry(pg, &m->priority_groups, list) {
1086                 if (!--pgnum)
1087                         break;
1088         }
1089
1090         bypass_pg(m, pg, bypassed);
1091         return 0;
1092 }
1093
1094 /*
1095  * Should we retry pg_init immediately?
1096  */
1097 static int pg_init_limit_reached(struct multipath *m, struct pgpath *pgpath)
1098 {
1099         unsigned long flags;
1100         int limit_reached = 0;
1101
1102         spin_lock_irqsave(&m->lock, flags);
1103
1104         if (m->pg_init_count <= m->pg_init_retries && !m->pg_init_disabled)
1105                 m->pg_init_required = 1;
1106         else
1107                 limit_reached = 1;
1108
1109         spin_unlock_irqrestore(&m->lock, flags);
1110
1111         return limit_reached;
1112 }
1113
1114 static void pg_init_done(void *data, int errors)
1115 {
1116         struct pgpath *pgpath = data;
1117         struct priority_group *pg = pgpath->pg;
1118         struct multipath *m = pg->m;
1119         unsigned long flags;
1120         unsigned delay_retry = 0;
1121
1122         /* device or driver problems */
1123         switch (errors) {
1124         case SCSI_DH_OK:
1125                 break;
1126         case SCSI_DH_NOSYS:
1127                 if (!m->hw_handler_name) {
1128                         errors = 0;
1129                         break;
1130                 }
1131                 DMERR("Could not failover the device: Handler scsi_dh_%s "
1132                       "Error %d.", m->hw_handler_name, errors);
1133                 /*
1134                  * Fail path for now, so we do not ping pong
1135                  */
1136                 fail_path(pgpath);
1137                 break;
1138         case SCSI_DH_DEV_TEMP_BUSY:
1139                 /*
1140                  * Probably doing something like FW upgrade on the
1141                  * controller so try the other pg.
1142                  */
1143                 bypass_pg(m, pg, 1);
1144                 break;
1145         case SCSI_DH_RETRY:
1146                 /* Wait before retrying. */
1147                 delay_retry = 1;
1148         case SCSI_DH_IMM_RETRY:
1149         case SCSI_DH_RES_TEMP_UNAVAIL:
1150                 if (pg_init_limit_reached(m, pgpath))
1151                         fail_path(pgpath);
1152                 errors = 0;
1153                 break;
1154         default:
1155                 /*
1156                  * We probably do not want to fail the path for a device
1157                  * error, but this is what the old dm did. In future
1158                  * patches we can do more advanced handling.
1159                  */
1160                 fail_path(pgpath);
1161         }
1162
1163         spin_lock_irqsave(&m->lock, flags);
1164         if (errors) {
1165                 if (pgpath == m->current_pgpath) {
1166                         DMERR("Could not failover device. Error %d.", errors);
1167                         m->current_pgpath = NULL;
1168                         m->current_pg = NULL;
1169                 }
1170         } else if (!m->pg_init_required)
1171                 pg->bypassed = 0;
1172
1173         if (--m->pg_init_in_progress)
1174                 /* Activations of other paths are still on going */
1175                 goto out;
1176
1177         if (m->pg_init_required) {
1178                 m->pg_init_delay_retry = delay_retry;
1179                 if (__pg_init_all_paths(m))
1180                         goto out;
1181         }
1182         m->queue_io = 0;
1183
1184         /*
1185          * Wake up any thread waiting to suspend.
1186          */
1187         wake_up(&m->pg_init_wait);
1188
1189 out:
1190         spin_unlock_irqrestore(&m->lock, flags);
1191 }
1192
1193 static void activate_path(struct work_struct *work)
1194 {
1195         struct pgpath *pgpath =
1196                 container_of(work, struct pgpath, activate_path.work);
1197
1198         if (pgpath->is_active)
1199                 scsi_dh_activate(bdev_get_queue(pgpath->path.dev->bdev),
1200                                  pg_init_done, pgpath);
1201         else
1202                 pg_init_done(pgpath, SCSI_DH_DEV_OFFLINED);
1203 }
1204
1205 static int noretry_error(int error)
1206 {
1207         switch (error) {
1208         case -EOPNOTSUPP:
1209         case -EREMOTEIO:
1210         case -EILSEQ:
1211         case -ENODATA:
1212         case -ENOSPC:
1213                 return 1;
1214         }
1215
1216         /* Anything else could be a path failure, so should be retried */
1217         return 0;
1218 }
1219
1220 /*
1221  * end_io handling
1222  */
1223 static int do_end_io(struct multipath *m, struct request *clone,
1224                      int error, struct dm_mpath_io *mpio)
1225 {
1226         /*
1227          * We don't queue any clone request inside the multipath target
1228          * during end I/O handling, since those clone requests don't have
1229          * bio clones.  If we queue them inside the multipath target,
1230          * we need to make bio clones, that requires memory allocation.
1231          * (See drivers/md/dm.c:end_clone_bio() about why the clone requests
1232          *  don't have bio clones.)
1233          * Instead of queueing the clone request here, we queue the original
1234          * request into dm core, which will remake a clone request and
1235          * clone bios for it and resubmit it later.
1236          */
1237         int r = DM_ENDIO_REQUEUE;
1238         unsigned long flags;
1239
1240         if (!error && !clone->errors)
1241                 return 0;       /* I/O complete */
1242
1243         if (noretry_error(error)) {
1244                 if ((clone->cmd_flags & REQ_WRITE_SAME) &&
1245                     !clone->q->limits.max_write_same_sectors) {
1246                         struct queue_limits *limits;
1247
1248                         /* device doesn't really support WRITE SAME, disable it */
1249                         limits = dm_get_queue_limits(dm_table_get_md(m->ti->table));
1250                         limits->max_write_same_sectors = 0;
1251                 }
1252                 return error;
1253         }
1254
1255         if (mpio->pgpath)
1256                 fail_path(mpio->pgpath);
1257
1258         spin_lock_irqsave(&m->lock, flags);
1259         if (!m->nr_valid_paths) {
1260                 if (!m->queue_if_no_path) {
1261                         if (!__must_push_back(m))
1262                                 r = -EIO;
1263                 } else {
1264                         if (error == -EBADE)
1265                                 r = error;
1266                 }
1267         }
1268         spin_unlock_irqrestore(&m->lock, flags);
1269
1270         return r;
1271 }
1272
1273 static int multipath_end_io(struct dm_target *ti, struct request *clone,
1274                             int error, union map_info *map_context)
1275 {
1276         struct multipath *m = ti->private;
1277         struct dm_mpath_io *mpio = map_context->ptr;
1278         struct pgpath *pgpath;
1279         struct path_selector *ps;
1280         int r;
1281
1282         BUG_ON(!mpio);
1283
1284         r  = do_end_io(m, clone, error, mpio);
1285         pgpath = mpio->pgpath;
1286         if (pgpath) {
1287                 ps = &pgpath->pg->ps;
1288                 if (ps->type->end_io)
1289                         ps->type->end_io(ps, &pgpath->path, mpio->nr_bytes);
1290         }
1291         clear_mapinfo(m, map_context);
1292
1293         return r;
1294 }
1295
1296 /*
1297  * Suspend can't complete until all the I/O is processed so if
1298  * the last path fails we must error any remaining I/O.
1299  * Note that if the freeze_bdev fails while suspending, the
1300  * queue_if_no_path state is lost - userspace should reset it.
1301  */
1302 static void multipath_presuspend(struct dm_target *ti)
1303 {
1304         struct multipath *m = (struct multipath *) ti->private;
1305
1306         queue_if_no_path(m, 0, 1);
1307 }
1308
1309 static void multipath_postsuspend(struct dm_target *ti)
1310 {
1311         struct multipath *m = ti->private;
1312
1313         mutex_lock(&m->work_mutex);
1314         flush_multipath_work(m);
1315         mutex_unlock(&m->work_mutex);
1316 }
1317
1318 /*
1319  * Restore the queue_if_no_path setting.
1320  */
1321 static void multipath_resume(struct dm_target *ti)
1322 {
1323         struct multipath *m = (struct multipath *) ti->private;
1324         unsigned long flags;
1325
1326         spin_lock_irqsave(&m->lock, flags);
1327         m->queue_if_no_path = m->saved_queue_if_no_path;
1328         spin_unlock_irqrestore(&m->lock, flags);
1329 }
1330
1331 /*
1332  * Info output has the following format:
1333  * num_multipath_feature_args [multipath_feature_args]*
1334  * num_handler_status_args [handler_status_args]*
1335  * num_groups init_group_number
1336  *            [A|D|E num_ps_status_args [ps_status_args]*
1337  *             num_paths num_selector_args
1338  *             [path_dev A|F fail_count [selector_args]* ]+ ]+
1339  *
1340  * Table output has the following format (identical to the constructor string):
1341  * num_feature_args [features_args]*
1342  * num_handler_args hw_handler [hw_handler_args]*
1343  * num_groups init_group_number
1344  *     [priority selector-name num_ps_args [ps_args]*
1345  *      num_paths num_selector_args [path_dev [selector_args]* ]+ ]+
1346  */
1347 static void multipath_status(struct dm_target *ti, status_type_t type,
1348                              unsigned status_flags, char *result, unsigned maxlen)
1349 {
1350         int sz = 0;
1351         unsigned long flags;
1352         struct multipath *m = (struct multipath *) ti->private;
1353         struct priority_group *pg;
1354         struct pgpath *p;
1355         unsigned pg_num;
1356         char state;
1357
1358         spin_lock_irqsave(&m->lock, flags);
1359
1360         /* Features */
1361         if (type == STATUSTYPE_INFO)
1362                 DMEMIT("2 %u %u ", m->queue_io, m->pg_init_count);
1363         else {
1364                 DMEMIT("%u ", m->queue_if_no_path +
1365                               (m->pg_init_retries > 0) * 2 +
1366                               (m->pg_init_delay_msecs != DM_PG_INIT_DELAY_DEFAULT) * 2 +
1367                               m->retain_attached_hw_handler);
1368                 if (m->queue_if_no_path)
1369                         DMEMIT("queue_if_no_path ");
1370                 if (m->pg_init_retries)
1371                         DMEMIT("pg_init_retries %u ", m->pg_init_retries);
1372                 if (m->pg_init_delay_msecs != DM_PG_INIT_DELAY_DEFAULT)
1373                         DMEMIT("pg_init_delay_msecs %u ", m->pg_init_delay_msecs);
1374                 if (m->retain_attached_hw_handler)
1375                         DMEMIT("retain_attached_hw_handler ");
1376         }
1377
1378         if (!m->hw_handler_name || type == STATUSTYPE_INFO)
1379                 DMEMIT("0 ");
1380         else
1381                 DMEMIT("1 %s ", m->hw_handler_name);
1382
1383         DMEMIT("%u ", m->nr_priority_groups);
1384
1385         if (m->next_pg)
1386                 pg_num = m->next_pg->pg_num;
1387         else if (m->current_pg)
1388                 pg_num = m->current_pg->pg_num;
1389         else
1390                 pg_num = (m->nr_priority_groups ? 1 : 0);
1391
1392         DMEMIT("%u ", pg_num);
1393
1394         switch (type) {
1395         case STATUSTYPE_INFO:
1396                 list_for_each_entry(pg, &m->priority_groups, list) {
1397                         if (pg->bypassed)
1398                                 state = 'D';    /* Disabled */
1399                         else if (pg == m->current_pg)
1400                                 state = 'A';    /* Currently Active */
1401                         else
1402                                 state = 'E';    /* Enabled */
1403
1404                         DMEMIT("%c ", state);
1405
1406                         if (pg->ps.type->status)
1407                                 sz += pg->ps.type->status(&pg->ps, NULL, type,
1408                                                           result + sz,
1409                                                           maxlen - sz);
1410                         else
1411                                 DMEMIT("0 ");
1412
1413                         DMEMIT("%u %u ", pg->nr_pgpaths,
1414                                pg->ps.type->info_args);
1415
1416                         list_for_each_entry(p, &pg->pgpaths, list) {
1417                                 DMEMIT("%s %s %u ", p->path.dev->name,
1418                                        p->is_active ? "A" : "F",
1419                                        p->fail_count);
1420                                 if (pg->ps.type->status)
1421                                         sz += pg->ps.type->status(&pg->ps,
1422                                               &p->path, type, result + sz,
1423                                               maxlen - sz);
1424                         }
1425                 }
1426                 break;
1427
1428         case STATUSTYPE_TABLE:
1429                 list_for_each_entry(pg, &m->priority_groups, list) {
1430                         DMEMIT("%s ", pg->ps.type->name);
1431
1432                         if (pg->ps.type->status)
1433                                 sz += pg->ps.type->status(&pg->ps, NULL, type,
1434                                                           result + sz,
1435                                                           maxlen - sz);
1436                         else
1437                                 DMEMIT("0 ");
1438
1439                         DMEMIT("%u %u ", pg->nr_pgpaths,
1440                                pg->ps.type->table_args);
1441
1442                         list_for_each_entry(p, &pg->pgpaths, list) {
1443                                 DMEMIT("%s ", p->path.dev->name);
1444                                 if (pg->ps.type->status)
1445                                         sz += pg->ps.type->status(&pg->ps,
1446                                               &p->path, type, result + sz,
1447                                               maxlen - sz);
1448                         }
1449                 }
1450                 break;
1451         }
1452
1453         spin_unlock_irqrestore(&m->lock, flags);
1454 }
1455
1456 static int multipath_message(struct dm_target *ti, unsigned argc, char **argv)
1457 {
1458         int r = -EINVAL;
1459         struct dm_dev *dev;
1460         struct multipath *m = (struct multipath *) ti->private;
1461         action_fn action;
1462
1463         mutex_lock(&m->work_mutex);
1464
1465         if (dm_suspended(ti)) {
1466                 r = -EBUSY;
1467                 goto out;
1468         }
1469
1470         if (argc == 1) {
1471                 if (!strcasecmp(argv[0], "queue_if_no_path")) {
1472                         r = queue_if_no_path(m, 1, 0);
1473                         goto out;
1474                 } else if (!strcasecmp(argv[0], "fail_if_no_path")) {
1475                         r = queue_if_no_path(m, 0, 0);
1476                         goto out;
1477                 }
1478         }
1479
1480         if (argc != 2) {
1481                 DMWARN("Invalid multipath message arguments. Expected 2 arguments, got %d.", argc);
1482                 goto out;
1483         }
1484
1485         if (!strcasecmp(argv[0], "disable_group")) {
1486                 r = bypass_pg_num(m, argv[1], 1);
1487                 goto out;
1488         } else if (!strcasecmp(argv[0], "enable_group")) {
1489                 r = bypass_pg_num(m, argv[1], 0);
1490                 goto out;
1491         } else if (!strcasecmp(argv[0], "switch_group")) {
1492                 r = switch_pg_num(m, argv[1]);
1493                 goto out;
1494         } else if (!strcasecmp(argv[0], "reinstate_path"))
1495                 action = reinstate_path;
1496         else if (!strcasecmp(argv[0], "fail_path"))
1497                 action = fail_path;
1498         else {
1499                 DMWARN("Unrecognised multipath message received: %s", argv[0]);
1500                 goto out;
1501         }
1502
1503         r = dm_get_device(ti, argv[1], dm_table_get_mode(ti->table), &dev);
1504         if (r) {
1505                 DMWARN("message: error getting device %s",
1506                        argv[1]);
1507                 goto out;
1508         }
1509
1510         r = action_dev(m, dev, action);
1511
1512         dm_put_device(ti, dev);
1513
1514 out:
1515         mutex_unlock(&m->work_mutex);
1516         return r;
1517 }
1518
1519 static int multipath_ioctl(struct dm_target *ti, unsigned int cmd,
1520                            unsigned long arg)
1521 {
1522         struct multipath *m = ti->private;
1523         struct pgpath *pgpath;
1524         struct block_device *bdev;
1525         fmode_t mode;
1526         unsigned long flags;
1527         int r;
1528
1529         bdev = NULL;
1530         mode = 0;
1531         r = 0;
1532
1533         spin_lock_irqsave(&m->lock, flags);
1534
1535         if (!m->current_pgpath)
1536                 __choose_pgpath(m, 0);
1537
1538         pgpath = m->current_pgpath;
1539
1540         if (pgpath) {
1541                 bdev = pgpath->path.dev->bdev;
1542                 mode = pgpath->path.dev->mode;
1543         }
1544
1545         if ((pgpath && m->queue_io) || (!pgpath && m->queue_if_no_path))
1546                 r = -ENOTCONN;
1547         else if (!bdev)
1548                 r = -EIO;
1549
1550         spin_unlock_irqrestore(&m->lock, flags);
1551
1552         /*
1553          * Only pass ioctls through if the device sizes match exactly.
1554          */
1555         if (!bdev || ti->len != i_size_read(bdev->bd_inode) >> SECTOR_SHIFT) {
1556                 int err = scsi_verify_blk_ioctl(NULL, cmd);
1557                 if (err)
1558                         r = err;
1559         }
1560
1561         if (r == -ENOTCONN && !fatal_signal_pending(current)) {
1562                 spin_lock_irqsave(&m->lock, flags);
1563                 if (!m->current_pg) {
1564                         /* Path status changed, redo selection */
1565                         __choose_pgpath(m, 0);
1566                 }
1567                 if (m->pg_init_required)
1568                         __pg_init_all_paths(m);
1569                 spin_unlock_irqrestore(&m->lock, flags);
1570                 dm_table_run_md_queue_async(m->ti->table);
1571         }
1572
1573         return r ? : __blkdev_driver_ioctl(bdev, mode, cmd, arg);
1574 }
1575
1576 static int multipath_iterate_devices(struct dm_target *ti,
1577                                      iterate_devices_callout_fn fn, void *data)
1578 {
1579         struct multipath *m = ti->private;
1580         struct priority_group *pg;
1581         struct pgpath *p;
1582         int ret = 0;
1583
1584         list_for_each_entry(pg, &m->priority_groups, list) {
1585                 list_for_each_entry(p, &pg->pgpaths, list) {
1586                         ret = fn(ti, p->path.dev, ti->begin, ti->len, data);
1587                         if (ret)
1588                                 goto out;
1589                 }
1590         }
1591
1592 out:
1593         return ret;
1594 }
1595
1596 static int __pgpath_busy(struct pgpath *pgpath)
1597 {
1598         struct request_queue *q = bdev_get_queue(pgpath->path.dev->bdev);
1599
1600         return dm_underlying_device_busy(q);
1601 }
1602
1603 /*
1604  * We return "busy", only when we can map I/Os but underlying devices
1605  * are busy (so even if we map I/Os now, the I/Os will wait on
1606  * the underlying queue).
1607  * In other words, if we want to kill I/Os or queue them inside us
1608  * due to map unavailability, we don't return "busy".  Otherwise,
1609  * dm core won't give us the I/Os and we can't do what we want.
1610  */
1611 static int multipath_busy(struct dm_target *ti)
1612 {
1613         int busy = 0, has_active = 0;
1614         struct multipath *m = ti->private;
1615         struct priority_group *pg;
1616         struct pgpath *pgpath;
1617         unsigned long flags;
1618
1619         spin_lock_irqsave(&m->lock, flags);
1620
1621         /* pg_init in progress, requeue until done */
1622         if (!pg_ready(m)) {
1623                 busy = 1;
1624                 goto out;
1625         }
1626         /* Guess which priority_group will be used at next mapping time */
1627         if (unlikely(!m->current_pgpath && m->next_pg))
1628                 pg = m->next_pg;
1629         else if (likely(m->current_pg))
1630                 pg = m->current_pg;
1631         else
1632                 /*
1633                  * We don't know which pg will be used at next mapping time.
1634                  * We don't call __choose_pgpath() here to avoid to trigger
1635                  * pg_init just by busy checking.
1636                  * So we don't know whether underlying devices we will be using
1637                  * at next mapping time are busy or not. Just try mapping.
1638                  */
1639                 goto out;
1640
1641         /*
1642          * If there is one non-busy active path at least, the path selector
1643          * will be able to select it. So we consider such a pg as not busy.
1644          */
1645         busy = 1;
1646         list_for_each_entry(pgpath, &pg->pgpaths, list)
1647                 if (pgpath->is_active) {
1648                         has_active = 1;
1649
1650                         if (!__pgpath_busy(pgpath)) {
1651                                 busy = 0;
1652                                 break;
1653                         }
1654                 }
1655
1656         if (!has_active)
1657                 /*
1658                  * No active path in this pg, so this pg won't be used and
1659                  * the current_pg will be changed at next mapping time.
1660                  * We need to try mapping to determine it.
1661                  */
1662                 busy = 0;
1663
1664 out:
1665         spin_unlock_irqrestore(&m->lock, flags);
1666
1667         return busy;
1668 }
1669
1670 /*-----------------------------------------------------------------
1671  * Module setup
1672  *---------------------------------------------------------------*/
1673 static struct target_type multipath_target = {
1674         .name = "multipath",
1675         .version = {1, 7, 0},
1676         .module = THIS_MODULE,
1677         .ctr = multipath_ctr,
1678         .dtr = multipath_dtr,
1679         .map_rq = multipath_map,
1680         .rq_end_io = multipath_end_io,
1681         .presuspend = multipath_presuspend,
1682         .postsuspend = multipath_postsuspend,
1683         .resume = multipath_resume,
1684         .status = multipath_status,
1685         .message = multipath_message,
1686         .ioctl  = multipath_ioctl,
1687         .iterate_devices = multipath_iterate_devices,
1688         .busy = multipath_busy,
1689 };
1690
1691 static int __init dm_multipath_init(void)
1692 {
1693         int r;
1694
1695         /* allocate a slab for the dm_ios */
1696         _mpio_cache = KMEM_CACHE(dm_mpath_io, 0);
1697         if (!_mpio_cache)
1698                 return -ENOMEM;
1699
1700         r = dm_register_target(&multipath_target);
1701         if (r < 0) {
1702                 DMERR("register failed %d", r);
1703                 kmem_cache_destroy(_mpio_cache);
1704                 return -EINVAL;
1705         }
1706
1707         kmultipathd = alloc_workqueue("kmpathd", WQ_MEM_RECLAIM, 0);
1708         if (!kmultipathd) {
1709                 DMERR("failed to create workqueue kmpathd");
1710                 dm_unregister_target(&multipath_target);
1711                 kmem_cache_destroy(_mpio_cache);
1712                 return -ENOMEM;
1713         }
1714
1715         /*
1716          * A separate workqueue is used to handle the device handlers
1717          * to avoid overloading existing workqueue. Overloading the
1718          * old workqueue would also create a bottleneck in the
1719          * path of the storage hardware device activation.
1720          */
1721         kmpath_handlerd = alloc_ordered_workqueue("kmpath_handlerd",
1722                                                   WQ_MEM_RECLAIM);
1723         if (!kmpath_handlerd) {
1724                 DMERR("failed to create workqueue kmpath_handlerd");
1725                 destroy_workqueue(kmultipathd);
1726                 dm_unregister_target(&multipath_target);
1727                 kmem_cache_destroy(_mpio_cache);
1728                 return -ENOMEM;
1729         }
1730
1731         DMINFO("version %u.%u.%u loaded",
1732                multipath_target.version[0], multipath_target.version[1],
1733                multipath_target.version[2]);
1734
1735         return r;
1736 }
1737
1738 static void __exit dm_multipath_exit(void)
1739 {
1740         destroy_workqueue(kmpath_handlerd);
1741         destroy_workqueue(kmultipathd);
1742
1743         dm_unregister_target(&multipath_target);
1744         kmem_cache_destroy(_mpio_cache);
1745 }
1746
1747 module_init(dm_multipath_init);
1748 module_exit(dm_multipath_exit);
1749
1750 MODULE_DESCRIPTION(DM_NAME " multipath target");
1751 MODULE_AUTHOR("Sistina Software <dm-devel@redhat.com>");
1752 MODULE_LICENSE("GPL");