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mdmon: don't wait for O_EXCL when shutting down.
[thirdparty/mdadm.git] / monitor.c
CommitLineData
a54d5262
DW
1/*
2 * mdmon - monitor external metadata arrays
3 *
e736b623
N
4 * Copyright (C) 2007-2009 Neil Brown <neilb@suse.de>
5 * Copyright (C) 2007-2009 Intel Corporation
a54d5262
DW
6 *
7 * This program is free software; you can redistribute it and/or modify it
8 * under the terms and conditions of the GNU General Public License,
9 * version 2, as published by the Free Software Foundation.
10 *
11 * This program is distributed in the hope it will be useful, but WITHOUT
12 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
13 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
14 * more details.
15 *
16 * You should have received a copy of the GNU General Public License along with
17 * this program; if not, write to the Free Software Foundation, Inc.,
18 * 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
19 */
549e9569
NB
20
21#include "mdadm.h"
22#include "mdmon.h"
4d43913c 23#include <sys/syscall.h>
549e9569 24#include <sys/select.h>
1ed3f387 25#include <signal.h>
549e9569
NB
26
27static char *array_states[] = {
28 "clear", "inactive", "suspended", "readonly", "read-auto",
29 "clean", "active", "write-pending", "active-idle", NULL };
30static char *sync_actions[] = {
31 "idle", "reshape", "resync", "recover", "check", "repair", NULL
32};
33
34static int write_attr(char *attr, int fd)
35{
36 return write(fd, attr, strlen(attr));
37}
38
39static void add_fd(fd_set *fds, int *maxfd, int fd)
40{
41 if (fd < 0)
42 return;
43 if (fd > *maxfd)
44 *maxfd = fd;
45 FD_SET(fd, fds);
46}
47
48static int read_attr(char *buf, int len, int fd)
49{
50 int n;
51
52 if (fd < 0) {
53 buf[0] = 0;
54 return 0;
55 }
56 lseek(fd, 0, 0);
57 n = read(fd, buf, len - 1);
58
59 if (n <= 0) {
60 buf[0] = 0;
61 return 0;
62 }
63 buf[n] = 0;
64 if (buf[n-1] == '\n')
65 buf[n-1] = 0;
66 return n;
67}
68
b7941fd6 69static unsigned long long read_resync_start(int fd)
c052ba30
DW
70{
71 char buf[30];
72 int n;
73
b7941fd6 74 n = read_attr(buf, 30, fd);
c052ba30 75 if (n <= 0)
b7941fd6 76 return 0;
7e7fffc4 77 if (strncmp(buf, "none", 4) == 0)
b7528a20 78 return MaxSector;
7e7fffc4 79 else
b7941fd6 80 return strtoull(buf, NULL, 10);
c052ba30 81}
549e9569 82
484240d8
DW
83static unsigned long long read_sync_completed(int fd)
84{
85 unsigned long long val;
86 char buf[50];
87 int n;
88 char *ep;
89
90 n = read_attr(buf, 50, fd);
91
92 if (n <= 0)
93 return 0;
94 buf[n] = 0;
95 val = strtoull(buf, &ep, 0);
96 if (ep == buf || (*ep != 0 && *ep != '\n' && *ep != ' '))
97 return 0;
98 return val;
99}
100
549e9569
NB
101static enum array_state read_state(int fd)
102{
103 char buf[20];
104 int n = read_attr(buf, 20, fd);
105
106 if (n <= 0)
107 return bad_word;
1770662b 108 return (enum array_state) sysfs_match_word(buf, array_states);
549e9569
NB
109}
110
111static enum sync_action read_action( int fd)
112{
113 char buf[20];
114 int n = read_attr(buf, 20, fd);
115
116 if (n <= 0)
117 return bad_action;
1770662b 118 return (enum sync_action) sysfs_match_word(buf, sync_actions);
549e9569
NB
119}
120
549e9569
NB
121int read_dev_state(int fd)
122{
123 char buf[60];
124 int n = read_attr(buf, 60, fd);
125 char *cp;
126 int rv = 0;
127
128 if (n <= 0)
129 return 0;
130
131 cp = buf;
132 while (cp) {
1770662b 133 if (sysfs_attr_match(cp, "faulty"))
549e9569 134 rv |= DS_FAULTY;
1770662b 135 if (sysfs_attr_match(cp, "in_sync"))
549e9569 136 rv |= DS_INSYNC;
1770662b 137 if (sysfs_attr_match(cp, "write_mostly"))
549e9569 138 rv |= DS_WRITE_MOSTLY;
1770662b 139 if (sysfs_attr_match(cp, "spare"))
549e9569 140 rv |= DS_SPARE;
1770662b 141 if (sysfs_attr_match(cp, "blocked"))
8d45d196 142 rv |= DS_BLOCKED;
549e9569
NB
143 cp = strchr(cp, ',');
144 if (cp)
145 cp++;
146 }
147 return rv;
148}
149
1ed3f387
NB
150static void signal_manager(void)
151{
4d43913c
NB
152 /* tgkill(getpid(), mon_tid, SIGUSR1); */
153 int pid = getpid();
154 syscall(SYS_tgkill, pid, mgr_tid, SIGUSR1);
1ed3f387 155}
549e9569
NB
156
157/* Monitor a set of active md arrays - all of which share the
158 * same metadata - and respond to events that require
159 * metadata update.
160 *
161 * New arrays are detected by another thread which allocates
162 * required memory and attaches the data structure to our list.
163 *
164 * Events:
165 * Array stops.
166 * This is detected by array_state going to 'clear' or 'inactive'.
167 * while we thought it was active.
168 * Response is to mark metadata as clean and 'clear' the array(??)
169 * write-pending
170 * array_state if 'write-pending'
171 * We mark metadata as 'dirty' then set array to 'active'.
172 * active_idle
173 * Either ignore, or mark clean, then mark metadata as clean.
174 *
175 * device fails
176 * detected by rd-N/state reporting "faulty"
8d45d196
DW
177 * mark device as 'failed' in metadata, let the kernel release the
178 * device by writing '-blocked' to rd/state, and finally write 'remove' to
0af73f61
DW
179 * rd/state. Before a disk can be replaced it must be failed and removed
180 * from all container members, this will be preemptive for the other
181 * arrays... safe?
549e9569
NB
182 *
183 * sync completes
184 * sync_action was 'resync' and becomes 'idle' and resync_start becomes
185 * MaxSector
186 * Notify metadata that sync is complete.
549e9569
NB
187 *
188 * recovery completes
189 * sync_action changes from 'recover' to 'idle'
190 * Check each device state and mark metadata if 'faulty' or 'in_sync'.
549e9569
NB
191 *
192 * deal with resync
c052ba30
DW
193 * This only happens on finding a new array... mdadm will have set
194 * 'resync_start' to the correct value. If 'resync_start' indicates that an
195 * resync needs to occur set the array to the 'active' state rather than the
196 * initial read-auto state.
549e9569
NB
197 *
198 *
199 *
200 * We wait for a change (poll/select) on array_state, sync_action, and
201 * each rd-X/state file.
202 * When we get any change, we check everything. So read each state file,
203 * then decide what to do.
204 *
205 * The core action is to write new metadata to all devices in the array.
206 * This is done at most once on any wakeup.
207 * After that we might:
208 * - update the array_state
209 * - set the role of some devices.
210 * - request a sync_action
211 *
212 */
213
214static int read_and_act(struct active_array *a)
215{
484240d8 216 unsigned long long sync_completed;
6c3fb95c 217 int check_degraded = 0;
0f99b4bd 218 int check_reshape = 0;
2a0bb19e 219 int deactivate = 0;
549e9569 220 struct mdinfo *mdi;
140d3685 221 int dirty = 0;
549e9569
NB
222
223 a->next_state = bad_word;
224 a->next_action = bad_action;
225
226 a->curr_state = read_state(a->info.state_fd);
227 a->curr_action = read_action(a->action_fd);
b7941fd6 228 a->info.resync_start = read_resync_start(a->resync_start_fd);
484240d8 229 sync_completed = read_sync_completed(a->sync_completed_fd);
549e9569
NB
230 for (mdi = a->info.devs; mdi ; mdi = mdi->next) {
231 mdi->next_state = 0;
10ce1808 232 mdi->curr_state = 0;
e1516be1
DW
233 if (mdi->state_fd >= 0) {
234 mdi->recovery_start = read_resync_start(mdi->recovery_fd);
8d45d196 235 mdi->curr_state = read_dev_state(mdi->state_fd);
e1516be1 236 }
549e9569
NB
237 }
238
4867e068
AK
239 if (a->curr_state > inactive &&
240 a->prev_state == inactive) {
241 /* array has been started
242 * possible that container operation has to be completed
243 */
244 a->container->ss->set_array_state(a, 0);
245 }
549e9569
NB
246 if (a->curr_state <= inactive &&
247 a->prev_state > inactive) {
248 /* array has been stopped */
ed9d66aa 249 a->container->ss->set_array_state(a, 1);
549e9569 250 a->next_state = clear;
2a0bb19e 251 deactivate = 1;
549e9569
NB
252 }
253 if (a->curr_state == write_pending) {
ed9d66aa 254 a->container->ss->set_array_state(a, 0);
549e9569 255 a->next_state = active;
140d3685 256 dirty = 1;
549e9569
NB
257 }
258 if (a->curr_state == active_idle) {
d797a062
DW
259 /* Set array to 'clean' FIRST, then mark clean
260 * in the metadata
549e9569 261 */
d797a062 262 a->next_state = clean;
140d3685 263 dirty = 1;
d797a062
DW
264 }
265 if (a->curr_state == clean) {
d797a062 266 a->container->ss->set_array_state(a, 1);
549e9569 267 }
140d3685
DW
268 if (a->curr_state == active ||
269 a->curr_state == suspended ||
270 a->curr_state == bad_word)
271 dirty = 1;
549e9569 272 if (a->curr_state == readonly) {
e9dd1598
N
273 /* Well, I'm ready to handle things. If readonly
274 * wasn't requested, transition to read-auto.
549e9569 275 */
e9dd1598
N
276 char buf[64];
277 read_attr(buf, sizeof(buf), a->metadata_fd);
278 if (strncmp(buf, "external:-", 10) == 0) {
279 /* explicit request for readonly array. Leave it alone */
280 ;
281 } else {
e9dd1598
N
282 if (a->container->ss->set_array_state(a, 2))
283 a->next_state = read_auto; /* array is clean */
140d3685 284 else {
e9dd1598 285 a->next_state = active; /* Now active for recovery etc */
140d3685
DW
286 dirty = 1;
287 }
e9dd1598 288 }
549e9569
NB
289 }
290
00e02142
DW
291 if (!deactivate &&
292 a->curr_action == idle &&
549e9569 293 a->prev_action == resync) {
4e5528c6
NB
294 /* A resync has finished. The endpoint is recorded in
295 * 'sync_start'. We don't update the metadata
296 * until the array goes inactive or readonly though.
297 * Just check if we need to fiddle spares.
298 */
0c0c44db 299 a->container->ss->set_array_state(a, a->curr_state <= clean);
549e9569
NB
300 check_degraded = 1;
301 }
302
00e02142
DW
303 if (!deactivate &&
304 a->curr_action == idle &&
549e9569 305 a->prev_action == recover) {
0a6bdbee
DW
306 /* A recovery has finished. Some disks may be in sync now,
307 * and the array may no longer be degraded
308 */
549e9569 309 for (mdi = a->info.devs ; mdi ; mdi = mdi->next) {
8d45d196
DW
310 a->container->ss->set_disk(a, mdi->disk.raid_disk,
311 mdi->curr_state);
549e9569
NB
312 if (! (mdi->curr_state & DS_INSYNC))
313 check_degraded = 1;
314 }
315 }
316
0f99b4bd
N
317 if (!deactivate &&
318 a->curr_action == reshape &&
319 a->prev_action != reshape)
320 /* reshape was requested by mdadm. Need to see if
321 * new devices have been added. Manager does that
322 * when it sees check_reshape
323 */
324 check_reshape = 1;
325
92967543
DW
326 /* Check for failures and if found:
327 * 1/ Record the failure in the metadata and unblock the device.
328 * FIXME update the kernel to stop notifying on failed drives when
329 * the array is readonly and we have cleared 'blocked'
330 * 2/ Try to remove the device if the array is writable, or can be
331 * made writable.
332 */
549e9569
NB
333 for (mdi = a->info.devs ; mdi ; mdi = mdi->next) {
334 if (mdi->curr_state & DS_FAULTY) {
8d45d196
DW
335 a->container->ss->set_disk(a, mdi->disk.raid_disk,
336 mdi->curr_state);
549e9569 337 check_degraded = 1;
92967543
DW
338 mdi->next_state |= DS_UNBLOCK;
339 if (a->curr_state == read_auto) {
340 a->container->ss->set_array_state(a, 0);
341 a->next_state = active;
342 }
343 if (a->curr_state > readonly)
344 mdi->next_state |= DS_REMOVE;
549e9569
NB
345 }
346 }
347
484240d8
DW
348 /* Check for recovery checkpoint notifications. We need to be a
349 * minimum distance away from the last checkpoint to prevent
aad6f216
N
350 * over checkpointing. Note reshape checkpointing is handled
351 * in the second branch.
484240d8
DW
352 */
353 if (sync_completed > a->last_checkpoint &&
354 sync_completed - a->last_checkpoint > a->info.component_size >> 4 &&
4f0a7acc
DW
355 a->curr_action > reshape) {
356 /* A (non-reshape) sync_action has reached a checkpoint.
357 * Record the updated position in the metadata
358 */
359 a->last_checkpoint = sync_completed;
360 a->container->ss->set_array_state(a, a->curr_state <= clean);
aad6f216
N
361 } else if ((a->curr_action == idle && a->prev_action == reshape) ||
362 (a->curr_action == reshape
363 && sync_completed > a->last_checkpoint) ) {
364 /* Reshape has progressed or completed so we need to
365 * update the array state - and possibly the array size
366 */
2a9f8409
AK
367 if (sync_completed != 0)
368 a->last_checkpoint = sync_completed;
6d4225a1
AK
369 /* We might need to update last_checkpoint depending on
370 * the reason that reshape finished.
371 * if array reshape is really finished:
372 * set check point to the end, this allows
373 * set_array_state() to finalize reshape in metadata
374 * if reshape if broken: do not set checkpoint to the end
375 * this allows for reshape restart from checkpoint
376 */
377 if ((a->curr_action != reshape) &&
378 (a->prev_action == reshape)) {
379 char buf[40];
380 if ((sysfs_get_str(&a->info, NULL,
381 "reshape_position",
382 buf,
383 sizeof(buf)) >= 0) &&
384 strncmp(buf, "none", 4) == 0)
385 a->last_checkpoint = a->info.component_size;
386 }
aad6f216 387 a->container->ss->set_array_state(a, a->curr_state <= clean);
2a9f8409 388 a->last_checkpoint = sync_completed;
aad6f216
N
389 }
390
391 if (sync_completed > a->last_checkpoint)
484240d8 392 a->last_checkpoint = sync_completed;
484240d8 393
2e735d19 394 a->container->ss->sync_metadata(a->container);
4065aa81
DW
395 dprintf("%s(%d): state:%s action:%s next(", __func__, a->info.container_member,
396 array_states[a->curr_state], sync_actions[a->curr_action]);
549e9569
NB
397
398 /* Effect state changes in the array */
4e6e574a
DW
399 if (a->next_state != bad_word) {
400 dprintf(" state:%s", array_states[a->next_state]);
549e9569 401 write_attr(array_states[a->next_state], a->info.state_fd);
4e6e574a
DW
402 }
403 if (a->next_action != bad_action) {
549e9569 404 write_attr(sync_actions[a->next_action], a->action_fd);
4065aa81 405 dprintf(" action:%s", sync_actions[a->next_action]);
4e6e574a 406 }
549e9569 407 for (mdi = a->info.devs; mdi ; mdi = mdi->next) {
92967543
DW
408 if (mdi->next_state & DS_UNBLOCK) {
409 dprintf(" %d:-blocked", mdi->disk.raid_disk);
410 write_attr("-blocked", mdi->state_fd);
411 }
412
413 if ((mdi->next_state & DS_REMOVE) && mdi->state_fd >= 0) {
57632f4a 414 int remove_result;
8d45d196 415
8d45d196
DW
416 /* the kernel may not be able to immediately remove the
417 * disk, we can simply wait until the next event to try
418 * again.
419 */
57632f4a
NB
420 remove_result = write_attr("remove", mdi->state_fd);
421 if (remove_result > 0) {
4e6e574a 422 dprintf(" %d:removed", mdi->disk.raid_disk);
8d45d196 423 close(mdi->state_fd);
e40512fd 424 close(mdi->recovery_fd);
8d45d196
DW
425 mdi->state_fd = -1;
426 }
427 }
4e6e574a 428 if (mdi->next_state & DS_INSYNC) {
549e9569 429 write_attr("+in_sync", mdi->state_fd);
4e6e574a
DW
430 dprintf(" %d:+in_sync", mdi->disk.raid_disk);
431 }
549e9569 432 }
4e6e574a 433 dprintf(" )\n");
549e9569
NB
434
435 /* move curr_ to prev_ */
436 a->prev_state = a->curr_state;
437
438 a->prev_action = a->curr_action;
439
440 for (mdi = a->info.devs; mdi ; mdi = mdi->next) {
441 mdi->prev_state = mdi->curr_state;
442 mdi->next_state = 0;
443 }
444
0f99b4bd 445 if (check_degraded || check_reshape) {
7e1432fb 446 /* manager will do the actual check */
0f99b4bd
N
447 if (check_degraded)
448 a->check_degraded = 1;
449 if (check_reshape)
450 a->check_reshape = 1;
7e1432fb
NB
451 signal_manager();
452 }
453
2a0bb19e
DW
454 if (deactivate)
455 a->container = NULL;
456
140d3685 457 return dirty;
549e9569
NB
458}
459
0af73f61
DW
460static struct mdinfo *
461find_device(struct active_array *a, int major, int minor)
462{
463 struct mdinfo *mdi;
464
465 for (mdi = a->info.devs ; mdi ; mdi = mdi->next)
466 if (mdi->disk.major == major && mdi->disk.minor == minor)
467 return mdi;
468
469 return NULL;
470}
471
472static void reconcile_failed(struct active_array *aa, struct mdinfo *failed)
473{
474 struct active_array *a;
475 struct mdinfo *victim;
476
477 for (a = aa; a; a = a->next) {
478 if (!a->container)
479 continue;
480 victim = find_device(a, failed->disk.major, failed->disk.minor);
481 if (!victim)
482 continue;
483
484 if (!(victim->curr_state & DS_FAULTY))
485 write_attr("faulty", victim->state_fd);
486 }
487}
488
4e6e574a
DW
489#ifdef DEBUG
490static void dprint_wake_reasons(fd_set *fds)
491{
492 int i;
493 char proc_path[256];
494 char link[256];
495 char *basename;
496 int rv;
497
498 fprintf(stderr, "monitor: wake ( ");
499 for (i = 0; i < FD_SETSIZE; i++) {
500 if (FD_ISSET(i, fds)) {
501 sprintf(proc_path, "/proc/%d/fd/%d",
502 (int) getpid(), i);
503
504 rv = readlink(proc_path, link, sizeof(link) - 1);
505 if (rv < 0) {
506 fprintf(stderr, "%d:unknown ", i);
507 continue;
508 }
509 link[rv] = '\0';
510 basename = strrchr(link, '/');
511 fprintf(stderr, "%d:%s ",
512 i, basename ? ++basename : link);
513 }
514 }
515 fprintf(stderr, ")\n");
516}
517#endif
518
1eb252b8
N
519int monitor_loop_cnt;
520
4d43913c 521static int wait_and_act(struct supertype *container, int nowait)
549e9569
NB
522{
523 fd_set rfds;
524 int maxfd = 0;
e0d6609f 525 struct active_array **aap = &container->arrays;
1ed3f387 526 struct active_array *a, **ap;
549e9569 527 int rv;
0af73f61 528 struct mdinfo *mdi;
6144ed44 529 static unsigned int dirty_arrays = ~0; /* start at some non-zero value */
549e9569
NB
530
531 FD_ZERO(&rfds);
532
1ed3f387
NB
533 for (ap = aap ; *ap ;) {
534 a = *ap;
535 /* once an array has been deactivated we want to
536 * ask the manager to discard it.
2a0bb19e 537 */
57f8c769 538 if (!a->container || (a->info.array.level == 0)) {
1ed3f387
NB
539 if (discard_this) {
540 ap = &(*ap)->next;
541 continue;
542 }
543 *ap = a->next;
544 a->next = NULL;
545 discard_this = a;
546 signal_manager();
2a0bb19e 547 continue;
1ed3f387 548 }
2a0bb19e 549
549e9569
NB
550 add_fd(&rfds, &maxfd, a->info.state_fd);
551 add_fd(&rfds, &maxfd, a->action_fd);
484240d8 552 add_fd(&rfds, &maxfd, a->sync_completed_fd);
549e9569
NB
553 for (mdi = a->info.devs ; mdi ; mdi = mdi->next)
554 add_fd(&rfds, &maxfd, mdi->state_fd);
1ed3f387
NB
555
556 ap = &(*ap)->next;
549e9569
NB
557 }
558
6144ed44
DW
559 if (manager_ready && (*aap == NULL || (sigterm && !dirty_arrays))) {
560 /* No interesting arrays, or we have been told to
561 * terminate and everything is clean. Lets see about
562 * exiting. Note that blocking at this point is not a
563 * problem as there are no active arrays, there is
564 * nothing that we need to be ready to do.
e0d6609f 565 */
d998b738
N
566 int fd;
567 if (sigterm)
568 fd = open_dev_excl(container->devnum);
569 else
570 fd = open_dev_flags(container->devnum, O_RDONLY|O_EXCL);
e0d6609f
NB
571 if (fd >= 0 || errno != EBUSY) {
572 /* OK, we are safe to leave */
6144ed44
DW
573 if (sigterm && !dirty_arrays)
574 dprintf("caught sigterm, all clean... exiting\n");
575 else
576 dprintf("no arrays to monitor... exiting\n");
fa716c83
N
577 if (!sigterm)
578 /* On SIGTERM, someone (the take-over mdmon) will
579 * clean up
580 */
581 remove_pidfile(container->devname);
e0d6609f
NB
582 exit_now = 1;
583 signal_manager();
6f4cdfd9 584 close(fd);
e0d6609f
NB
585 exit(0);
586 }
587 }
588
549e9569 589 if (!nowait) {
4d43913c 590 sigset_t set;
d998b738
N
591 struct timespec ts;
592 ts.tv_sec = 24*3600;
593 ts.tv_nsec = 0;
594 if (*aap == NULL) {
595 /* just waiting to get O_EXCL access */
596 ts.tv_sec = 0;
597 ts.tv_nsec = 20000000ULL;
598 }
4d43913c
NB
599 sigprocmask(SIG_UNBLOCK, NULL, &set);
600 sigdelset(&set, SIGUSR1);
1eb252b8 601 monitor_loop_cnt |= 1;
d998b738 602 rv = pselect(maxfd+1, NULL, NULL, &rfds, &ts, &set);
1eb252b8 603 monitor_loop_cnt += 1;
bfa44e2e
NB
604 if (rv == -1 && errno == EINTR)
605 rv = 0;
4e6e574a
DW
606 #ifdef DEBUG
607 dprint_wake_reasons(&rfds);
608 #endif
609
549e9569
NB
610 }
611
2e735d19
NB
612 if (update_queue) {
613 struct metadata_update *this;
614
615 for (this = update_queue; this ; this = this->next)
616 container->ss->process_update(container, this);
617
618 update_queue_handled = update_queue;
619 update_queue = NULL;
620 signal_manager();
621 container->ss->sync_metadata(container);
622 }
623
3d2c4fc7 624 rv = 0;
6144ed44 625 dirty_arrays = 0;
1ed3f387 626 for (a = *aap; a ; a = a->next) {
6144ed44
DW
627 int is_dirty;
628
2a0bb19e 629 if (a->replaces && !discard_this) {
549e9569
NB
630 struct active_array **ap;
631 for (ap = &a->next; *ap && *ap != a->replaces;
632 ap = & (*ap)->next)
633 ;
634 if (*ap)
635 *ap = (*ap)->next;
636 discard_this = a->replaces;
637 a->replaces = NULL;
6c3fb95c 638 /* FIXME check if device->state_fd need to be cleared?*/
1ed3f387 639 signal_manager();
549e9569 640 }
140d3685
DW
641 if (a->container) {
642 is_dirty = read_and_act(a);
643 rv |= 1;
644 dirty_arrays += is_dirty;
645 /* when terminating stop manipulating the array after it
646 * is clean, but make sure read_and_act() is given a
647 * chance to handle 'active_idle'
648 */
649 if (sigterm && !is_dirty)
650 a->container = NULL; /* stop touching this array */
6144ed44 651 }
549e9569 652 }
0af73f61
DW
653
654 /* propagate failures across container members */
1ed3f387 655 for (a = *aap; a ; a = a->next) {
0af73f61
DW
656 if (!a->container)
657 continue;
658 for (mdi = a->info.devs ; mdi ; mdi = mdi->next)
659 if (mdi->curr_state & DS_FAULTY)
1ed3f387 660 reconcile_failed(*aap, mdi);
0af73f61
DW
661 }
662
549e9569
NB
663 return rv;
664}
665
666void do_monitor(struct supertype *container)
667{
668 int rv;
669 int first = 1;
670 do {
4d43913c 671 rv = wait_and_act(container, first);
549e9569
NB
672 first = 0;
673 } while (rv >= 0);
674}