xref: /freebsd/sys/geom/raid/md_promise.c (revision f5f47d5068fb97df18eb114a66ae8ef51a0b3c8c)
1 /*-
2  * Copyright (c) 2011 Alexander Motin <mav@FreeBSD.org>
3  * Copyright (c) 2000 - 2008 Søren Schmidt <sos@FreeBSD.org>
4  * All rights reserved.
5  *
6  * Redistribution and use in source and binary forms, with or without
7  * modification, are permitted provided that the following conditions
8  * are met:
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  * 2. Redistributions in binary form must reproduce the above copyright
12  *    notice, this list of conditions and the following disclaimer in the
13  *    documentation and/or other materials provided with the distribution.
14  *
15  * THIS SOFTWARE IS PROVIDED BY THE AUTHORS AND CONTRIBUTORS ``AS IS'' AND
16  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
17  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
18  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHORS OR CONTRIBUTORS BE LIABLE
19  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
20  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
21  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
22  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
23  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
24  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
25  * SUCH DAMAGE.
26  */
27 
28 #include <sys/cdefs.h>
29 __FBSDID("$FreeBSD$");
30 
31 #include <sys/param.h>
32 #include <sys/bio.h>
33 #include <sys/endian.h>
34 #include <sys/kernel.h>
35 #include <sys/kobj.h>
36 #include <sys/limits.h>
37 #include <sys/lock.h>
38 #include <sys/malloc.h>
39 #include <sys/mutex.h>
40 #include <sys/systm.h>
41 #include <geom/geom.h>
42 #include "geom/raid/g_raid.h"
43 #include "g_raid_md_if.h"
44 
45 static MALLOC_DEFINE(M_MD_PROMISE, "md_promise_data", "GEOM_RAID Promise metadata");
46 
47 #define	PROMISE_MAX_DISKS	8
48 #define	PROMISE_MAX_SUBDISKS	2
49 #define	PROMISE_META_OFFSET	14
50 
51 struct promise_raid_disk {
52 	uint8_t		flags;			/* Subdisk status. */
53 #define PROMISE_F_VALID		0x01
54 #define PROMISE_F_ONLINE	0x02
55 #define PROMISE_F_ASSIGNED	0x04
56 #define PROMISE_F_SPARE		0x08
57 #define PROMISE_F_DUPLICATE	0x10
58 #define PROMISE_F_REDIR		0x20
59 #define PROMISE_F_DOWN		0x40
60 #define PROMISE_F_READY		0x80
61 
62 	uint8_t		number;			/* Position in a volume. */
63 	uint8_t		channel;		/* ATA channel number. */
64 	uint8_t		device;			/* ATA device number. */
65 	uint64_t	id __packed;		/* Subdisk ID. */
66 } __packed;
67 
68 struct promise_raid_conf {
69 	char		promise_id[24];
70 #define PROMISE_MAGIC		"Promise Technology, Inc."
71 #define FREEBSD_MAGIC		"FreeBSD ATA driver RAID "
72 
73 	uint32_t	dummy_0;
74 	uint64_t	magic_0;
75 #define PROMISE_MAGIC0(x)	(((uint64_t)(x.channel) << 48) | \
76 				((uint64_t)(x.device != 0) << 56))
77 	uint16_t	magic_1;
78 	uint32_t	magic_2;
79 	uint8_t		filler1[470];
80 
81 	uint32_t	integrity;
82 #define PROMISE_I_VALID		0x00000080
83 
84 	struct promise_raid_disk	disk;	/* This subdisk info. */
85 	uint32_t	disk_offset;		/* Subdisk offset. */
86 	uint32_t	disk_sectors;		/* Subdisk size */
87 	uint32_t	rebuild_lba;		/* Rebuild position. */
88 	uint16_t	generation;		/* Generation number. */
89 	uint8_t		status;			/* Volume status. */
90 #define PROMISE_S_VALID		0x01
91 #define PROMISE_S_ONLINE	0x02
92 #define PROMISE_S_INITED	0x04
93 #define PROMISE_S_READY		0x08
94 #define PROMISE_S_DEGRADED	0x10
95 #define PROMISE_S_MARKED	0x20
96 #define PROMISE_S_MIGRATING	0x40
97 #define PROMISE_S_FUNCTIONAL	0x80
98 
99 	uint8_t		type;			/* Voluem type. */
100 #define PROMISE_T_RAID0		0x00
101 #define PROMISE_T_RAID1		0x01
102 #define PROMISE_T_RAID3		0x02
103 #define PROMISE_T_RAID5		0x04
104 #define PROMISE_T_SPAN		0x08
105 #define PROMISE_T_JBOD		0x10
106 
107 	uint8_t		total_disks;		/* Disks in this volume. */
108 	uint8_t		stripe_shift;		/* Strip size. */
109 	uint8_t		array_width;		/* Number of RAID0 stripes. */
110 	uint8_t		array_number;		/* Global volume number. */
111 	uint32_t	total_sectors;		/* Volume size. */
112 	uint16_t	cylinders;		/* Volume geometry: C. */
113 	uint8_t		heads;			/* Volume geometry: H. */
114 	uint8_t		sectors;		/* Volume geometry: S. */
115 	uint64_t	volume_id __packed;	/* Volume ID, */
116 	struct promise_raid_disk	disks[PROMISE_MAX_DISKS];
117 						/* Subdisks in this volume. */
118 	char		name[32];		/* Volume label. */
119 
120 	uint32_t	filler2[8];
121 	uint32_t	magic_3;	/* Something related to rebuild. */
122 	uint64_t	rebuild_lba64;	/* Per-volume rebuild position. */
123 	uint32_t	magic_4;
124 	uint32_t	magic_5;
125 	uint32_t	total_sectors_high;
126 	uint32_t	filler3[324];
127 	uint32_t	checksum;
128 } __packed;
129 
130 struct g_raid_md_promise_perdisk {
131 	int		 pd_updated;
132 	int		 pd_subdisks;
133 	struct promise_raid_conf	*pd_meta[PROMISE_MAX_SUBDISKS];
134 };
135 
136 struct g_raid_md_promise_pervolume {
137 	struct promise_raid_conf	*pv_meta;
138 	uint64_t			 pv_id;
139 	uint16_t			 pv_generation;
140 	int				 pv_disks_present;
141 	int				 pv_started;
142 	struct callout			 pv_start_co;	/* STARTING state timer. */
143 };
144 
145 static g_raid_md_create_t g_raid_md_create_promise;
146 static g_raid_md_taste_t g_raid_md_taste_promise;
147 static g_raid_md_event_t g_raid_md_event_promise;
148 static g_raid_md_volume_event_t g_raid_md_volume_event_promise;
149 static g_raid_md_ctl_t g_raid_md_ctl_promise;
150 static g_raid_md_write_t g_raid_md_write_promise;
151 static g_raid_md_fail_disk_t g_raid_md_fail_disk_promise;
152 static g_raid_md_free_disk_t g_raid_md_free_disk_promise;
153 static g_raid_md_free_volume_t g_raid_md_free_volume_promise;
154 static g_raid_md_free_t g_raid_md_free_promise;
155 
156 static kobj_method_t g_raid_md_promise_methods[] = {
157 	KOBJMETHOD(g_raid_md_create,	g_raid_md_create_promise),
158 	KOBJMETHOD(g_raid_md_taste,	g_raid_md_taste_promise),
159 	KOBJMETHOD(g_raid_md_event,	g_raid_md_event_promise),
160 	KOBJMETHOD(g_raid_md_volume_event,	g_raid_md_volume_event_promise),
161 	KOBJMETHOD(g_raid_md_ctl,	g_raid_md_ctl_promise),
162 	KOBJMETHOD(g_raid_md_write,	g_raid_md_write_promise),
163 	KOBJMETHOD(g_raid_md_fail_disk,	g_raid_md_fail_disk_promise),
164 	KOBJMETHOD(g_raid_md_free_disk,	g_raid_md_free_disk_promise),
165 	KOBJMETHOD(g_raid_md_free_volume,	g_raid_md_free_volume_promise),
166 	KOBJMETHOD(g_raid_md_free,	g_raid_md_free_promise),
167 	{ 0, 0 }
168 };
169 
170 static struct g_raid_md_class g_raid_md_promise_class = {
171 	"Promise",
172 	g_raid_md_promise_methods,
173 	sizeof(struct g_raid_md_object),
174 	.mdc_priority = 100
175 };
176 
177 
178 static void
179 g_raid_md_promise_print(struct promise_raid_conf *meta)
180 {
181 	int i;
182 
183 	if (g_raid_debug < 1)
184 		return;
185 
186 	printf("********* ATA Promise Metadata *********\n");
187 	printf("promise_id          <%.24s>\n", meta->promise_id);
188 	printf("disk                %02x %02x %02x %02x %016jx\n",
189 	    meta->disk.flags, meta->disk.number, meta->disk.channel,
190 	    meta->disk.device, meta->disk.id);
191 	printf("disk_offset         %u\n", meta->disk_offset);
192 	printf("disk_sectors        %u\n", meta->disk_sectors);
193 	printf("rebuild_lba         %u\n", meta->rebuild_lba);
194 	printf("generation          %u\n", meta->generation);
195 	printf("status              0x%02x\n", meta->status);
196 	printf("type                %u\n", meta->type);
197 	printf("total_disks         %u\n", meta->total_disks);
198 	printf("stripe_shift        %u\n", meta->stripe_shift);
199 	printf("array_width         %u\n", meta->array_width);
200 	printf("array_number        %u\n", meta->array_number);
201 	printf("total_sectors       %u\n", meta->total_sectors);
202 	printf("cylinders           %u\n", meta->cylinders);
203 	printf("heads               %u\n", meta->heads);
204 	printf("sectors             %u\n", meta->sectors);
205 	printf("volume_id           0x%016jx\n", meta->volume_id);
206 	printf("disks:\n");
207 	for (i = 0; i < PROMISE_MAX_DISKS; i++ ) {
208 		printf("                    %02x %02x %02x %02x %016jx\n",
209 		    meta->disks[i].flags, meta->disks[i].number,
210 		    meta->disks[i].channel, meta->disks[i].device,
211 		    meta->disks[i].id);
212 	}
213 	printf("name                <%.32s>\n", meta->name);
214 	printf("magic_3             0x%08x\n", meta->magic_3);
215 	printf("rebuild_lba64       %ju\n", meta->rebuild_lba64);
216 	printf("magic_4             0x%08x\n", meta->magic_4);
217 	printf("magic_5             0x%08x\n", meta->magic_5);
218 	printf("total_sectors_high  0x%08x\n", meta->total_sectors_high);
219 	printf("=================================================\n");
220 }
221 
222 static struct promise_raid_conf *
223 promise_meta_copy(struct promise_raid_conf *meta)
224 {
225 	struct promise_raid_conf *nmeta;
226 
227 	nmeta = malloc(sizeof(*nmeta), M_MD_PROMISE, M_WAITOK);
228 	memcpy(nmeta, meta, sizeof(*nmeta));
229 	return (nmeta);
230 }
231 
232 static int
233 promise_meta_find_disk(struct promise_raid_conf *meta, uint64_t id)
234 {
235 	int pos;
236 
237 	for (pos = 0; pos < meta->total_disks; pos++) {
238 		if (meta->disks[pos].id == id)
239 			return (pos);
240 	}
241 	return (-1);
242 }
243 
244 static int
245 promise_meta_unused_range(struct promise_raid_conf **metaarr, int nsd,
246     uint32_t sectors, uint32_t *off, uint32_t *size)
247 {
248 	uint32_t coff, csize;
249 	int i, j;
250 
251 	sectors -= 131072;
252 	*off = 0;
253 	*size = 0;
254 	coff = 0;
255 	csize = sectors;
256 	i = 0;
257 	while (1) {
258 		for (j = 0; j < nsd; j++) {
259 			if (metaarr[j]->disk_offset >= coff) {
260 				csize = MIN(csize,
261 				    metaarr[j]->disk_offset - coff);
262 			}
263 		}
264 		if (csize > *size) {
265 			*off = coff;
266 			*size = csize;
267 		}
268 		if (i >= nsd)
269 			break;
270 		coff = metaarr[i]->disk_offset + metaarr[i]->disk_sectors;
271 		csize = sectors - coff;
272 		i++;
273 	};
274 	return ((*size > 0) ? 1 : 0);
275 }
276 
277 static int
278 promise_meta_translate_disk(struct g_raid_volume *vol, int md_disk_pos)
279 {
280 	int disk_pos, width;
281 
282 	if (md_disk_pos >= 0 && vol->v_raid_level == G_RAID_VOLUME_RL_RAID1E) {
283 		width = vol->v_disks_count / 2;
284 		disk_pos = (md_disk_pos / width) +
285 		    (md_disk_pos % width) * width;
286 	} else
287 		disk_pos = md_disk_pos;
288 	return (disk_pos);
289 }
290 
291 static void
292 promise_meta_get_name(struct promise_raid_conf *meta, char *buf)
293 {
294 	int i;
295 
296 	strncpy(buf, meta->name, 32);
297 	buf[32] = 0;
298 	for (i = 31; i >= 0; i--) {
299 		if (buf[i] > 0x20)
300 			break;
301 		buf[i] = 0;
302 	}
303 }
304 
305 static void
306 promise_meta_put_name(struct promise_raid_conf *meta, char *buf)
307 {
308 
309 	memset(meta->name, 0x20, 32);
310 	memcpy(meta->name, buf, MIN(strlen(buf), 32));
311 }
312 
313 static int
314 promise_meta_read(struct g_consumer *cp, struct promise_raid_conf **metaarr)
315 {
316 	struct g_provider *pp;
317 	struct promise_raid_conf *meta;
318 	char *buf;
319 	int error, i, subdisks;
320 	uint32_t checksum, *ptr;
321 
322 	pp = cp->provider;
323 	subdisks = 0;
324 next:
325 	/* Read metadata block. */
326 	buf = g_read_data(cp, pp->mediasize - pp->sectorsize *
327 	    (63 - subdisks * PROMISE_META_OFFSET),
328 	    pp->sectorsize * 4, &error);
329 	if (buf == NULL) {
330 		G_RAID_DEBUG(1, "Cannot read metadata from %s (error=%d).",
331 		    pp->name, error);
332 		return (subdisks);
333 	}
334 	meta = (struct promise_raid_conf *)buf;
335 
336 	/* Check if this is an Promise RAID struct */
337 	if (strncmp(meta->promise_id, PROMISE_MAGIC, strlen(PROMISE_MAGIC)) &&
338 	    strncmp(meta->promise_id, FREEBSD_MAGIC, strlen(FREEBSD_MAGIC))) {
339 		if (subdisks == 0)
340 			G_RAID_DEBUG(1,
341 			    "Promise signature check failed on %s", pp->name);
342 		g_free(buf);
343 		return (subdisks);
344 	}
345 	meta = malloc(sizeof(*meta), M_MD_PROMISE, M_WAITOK);
346 	memcpy(meta, buf, MIN(sizeof(*meta), pp->sectorsize * 4));
347 	g_free(buf);
348 
349 	/* Check metadata checksum. */
350 	for (checksum = 0, ptr = (uint32_t *)meta, i = 0; i < 511; i++)
351 		checksum += *ptr++;
352 	if (checksum != meta->checksum) {
353 		G_RAID_DEBUG(1, "Promise checksum check failed on %s", pp->name);
354 		free(meta, M_MD_PROMISE);
355 		return (subdisks);
356 	}
357 
358 	if ((meta->integrity & PROMISE_I_VALID) == 0) {
359 		G_RAID_DEBUG(1, "Promise metadata is invalid on %s", pp->name);
360 		free(meta, M_MD_PROMISE);
361 		return (subdisks);
362 	}
363 
364 	if (meta->total_disks > PROMISE_MAX_DISKS) {
365 		G_RAID_DEBUG(1, "Wrong number of disks on %s (%d)",
366 		    pp->name, meta->total_disks);
367 		free(meta, M_MD_PROMISE);
368 		return (subdisks);
369 	}
370 
371 	/* Save this part and look for next. */
372 	*metaarr = meta;
373 	metaarr++;
374 	subdisks++;
375 	if (subdisks < PROMISE_MAX_SUBDISKS)
376 		goto next;
377 
378 	return (subdisks);
379 }
380 
381 static int
382 promise_meta_write(struct g_consumer *cp,
383     struct promise_raid_conf **metaarr, int nsd)
384 {
385 	struct g_provider *pp;
386 	struct promise_raid_conf *meta;
387 	char *buf;
388 	int error, i, subdisk, fake;
389 	uint32_t checksum, *ptr, off, size;
390 
391 	pp = cp->provider;
392 	subdisk = 0;
393 	fake = 0;
394 next:
395 	buf = malloc(pp->sectorsize * 4, M_MD_PROMISE, M_WAITOK | M_ZERO);
396 	meta = NULL;
397 	if (subdisk < nsd) {
398 		meta = metaarr[subdisk];
399 	} else if (!fake && promise_meta_unused_range(metaarr, nsd,
400 	    cp->provider->mediasize / cp->provider->sectorsize,
401 	    &off, &size)) {
402 		/* Optionally add record for unused space. */
403 		meta = (struct promise_raid_conf *)buf;
404 		memcpy(&meta->promise_id[0], PROMISE_MAGIC,
405 		    sizeof(PROMISE_MAGIC) - 1);
406 		meta->dummy_0 = 0x00020000;
407 		meta->integrity = PROMISE_I_VALID;
408 		meta->disk.flags = PROMISE_F_ONLINE | PROMISE_F_VALID;
409 		meta->disk.number = 0xff;
410 		arc4rand(&meta->disk.id, sizeof(meta->disk.id), 0);
411 		meta->disk_offset = off;
412 		meta->disk_sectors = size;
413 		meta->rebuild_lba = UINT32_MAX;
414 		fake = 1;
415 	}
416 	if (meta != NULL) {
417 		/* Recalculate checksum for case if metadata were changed. */
418 		meta->checksum = 0;
419 		for (checksum = 0, ptr = (uint32_t *)meta, i = 0; i < 511; i++)
420 			checksum += *ptr++;
421 		meta->checksum = checksum;
422 		memcpy(buf, meta, MIN(pp->sectorsize * 4, sizeof(*meta)));
423 	}
424 	error = g_write_data(cp, pp->mediasize - pp->sectorsize *
425 	    (63 - subdisk * PROMISE_META_OFFSET),
426 	    buf, pp->sectorsize * 4);
427 	if (error != 0) {
428 		G_RAID_DEBUG(1, "Cannot write metadata to %s (error=%d).",
429 		    pp->name, error);
430 	}
431 	free(buf, M_MD_PROMISE);
432 
433 	subdisk++;
434 	if (subdisk < PROMISE_MAX_SUBDISKS)
435 		goto next;
436 
437 	return (error);
438 }
439 
440 static int
441 promise_meta_erase(struct g_consumer *cp)
442 {
443 	struct g_provider *pp;
444 	char *buf;
445 	int error, subdisk;
446 
447 	pp = cp->provider;
448 	buf = malloc(4 * pp->sectorsize, M_MD_PROMISE, M_WAITOK | M_ZERO);
449 	for (subdisk = 0; subdisk < PROMISE_MAX_SUBDISKS; subdisk++) {
450 		error = g_write_data(cp, pp->mediasize - pp->sectorsize *
451 		    (63 - subdisk * PROMISE_META_OFFSET),
452 		    buf, 4 * pp->sectorsize);
453 		if (error != 0) {
454 			G_RAID_DEBUG(1, "Cannot erase metadata on %s (error=%d).",
455 			    pp->name, error);
456 		}
457 	}
458 	free(buf, M_MD_PROMISE);
459 	return (error);
460 }
461 
462 static int
463 promise_meta_write_spare(struct g_consumer *cp)
464 {
465 	struct promise_raid_conf *meta;
466 	int error;
467 
468 	meta = malloc(sizeof(*meta), M_MD_PROMISE, M_WAITOK | M_ZERO);
469 	memcpy(&meta->promise_id[0], PROMISE_MAGIC, sizeof(PROMISE_MAGIC) - 1);
470 	meta->dummy_0 = 0x00020000;
471 	meta->integrity = PROMISE_I_VALID;
472 	meta->disk.flags = PROMISE_F_SPARE | PROMISE_F_ONLINE | PROMISE_F_VALID;
473 	meta->disk.number = 0xff;
474 	arc4rand(&meta->disk.id, sizeof(meta->disk.id), 0);
475 	meta->disk_sectors = cp->provider->mediasize / cp->provider->sectorsize;
476 	meta->disk_sectors -= 131072;
477 	meta->rebuild_lba = UINT32_MAX;
478 	error = promise_meta_write(cp, &meta, 1);
479 	free(meta, M_MD_PROMISE);
480 	return (error);
481 }
482 
483 static struct g_raid_volume *
484 g_raid_md_promise_get_volume(struct g_raid_softc *sc, uint64_t id)
485 {
486 	struct g_raid_volume	*vol;
487 	struct g_raid_md_promise_pervolume *pv;
488 
489 	TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
490 		pv = vol->v_md_data;
491 		if (pv->pv_id == id)
492 			break;
493 	}
494 	return (vol);
495 }
496 
497 static int
498 g_raid_md_promise_purge_volumes(struct g_raid_softc *sc)
499 {
500 	struct g_raid_volume	*vol, *tvol;
501 	struct g_raid_md_promise_pervolume *pv;
502 	int i, res;
503 
504 	res = 0;
505 	TAILQ_FOREACH_SAFE(vol, &sc->sc_volumes, v_next, tvol) {
506 		pv = vol->v_md_data;
507 		if (!pv->pv_started || vol->v_stopping)
508 			continue;
509 		for (i = 0; i < vol->v_disks_count; i++) {
510 			if (vol->v_subdisks[i].sd_state != G_RAID_SUBDISK_S_NONE)
511 				break;
512 		}
513 		if (i >= vol->v_disks_count) {
514 			g_raid_destroy_volume(vol);
515 			res = 1;
516 		}
517 	}
518 	return (res);
519 }
520 
521 static int
522 g_raid_md_promise_purge_disks(struct g_raid_softc *sc)
523 {
524 	struct g_raid_disk	*disk, *tdisk;
525 	struct g_raid_volume	*vol;
526 	struct g_raid_md_promise_perdisk *pd;
527 	int i, j, res;
528 
529 	res = 0;
530 	TAILQ_FOREACH_SAFE(disk, &sc->sc_disks, d_next, tdisk) {
531 		if (disk->d_state == G_RAID_DISK_S_SPARE)
532 			continue;
533 		pd = (struct g_raid_md_promise_perdisk *)disk->d_md_data;
534 
535 		/* Scan for deleted volumes. */
536 		for (i = 0; i < pd->pd_subdisks; ) {
537 			vol = g_raid_md_promise_get_volume(sc,
538 			    pd->pd_meta[i]->volume_id);
539 			if (vol != NULL && !vol->v_stopping) {
540 				i++;
541 				continue;
542 			}
543 			free(pd->pd_meta[i], M_MD_PROMISE);
544 			for (j = i; j < pd->pd_subdisks - 1; j++)
545 				pd->pd_meta[j] = pd->pd_meta[j + 1];
546 			pd->pd_meta[PROMISE_MAX_SUBDISKS - 1] = NULL;
547 			pd->pd_subdisks--;
548 			pd->pd_updated = 1;
549 		}
550 
551 		/* If there is no metadata left - erase and delete disk. */
552 		if (pd->pd_subdisks == 0) {
553 			promise_meta_erase(disk->d_consumer);
554 			g_raid_destroy_disk(disk);
555 			res = 1;
556 		}
557 	}
558 	return (res);
559 }
560 
561 static int
562 g_raid_md_promise_supported(int level, int qual, int disks, int force)
563 {
564 
565 	if (disks > PROMISE_MAX_DISKS)
566 		return (0);
567 	switch (level) {
568 	case G_RAID_VOLUME_RL_RAID0:
569 		if (disks < 1)
570 			return (0);
571 		if (!force && disks < 2)
572 			return (0);
573 		break;
574 	case G_RAID_VOLUME_RL_RAID1:
575 		if (disks < 1)
576 			return (0);
577 		if (!force && (disks != 2))
578 			return (0);
579 		break;
580 	case G_RAID_VOLUME_RL_RAID1E:
581 		if (disks < 2)
582 			return (0);
583 		if (disks % 2 != 0)
584 			return (0);
585 		if (!force && (disks != 4))
586 			return (0);
587 		break;
588 	case G_RAID_VOLUME_RL_SINGLE:
589 		if (disks != 1)
590 			return (0);
591 		break;
592 	case G_RAID_VOLUME_RL_CONCAT:
593 		if (disks < 2)
594 			return (0);
595 		break;
596 	case G_RAID_VOLUME_RL_RAID5:
597 		if (disks < 3)
598 			return (0);
599 		if (qual != G_RAID_VOLUME_RLQ_R5LA)
600 			return (0);
601 		break;
602 	default:
603 		return (0);
604 	}
605 	if (level != G_RAID_VOLUME_RL_RAID5 && qual != G_RAID_VOLUME_RLQ_NONE)
606 		return (0);
607 	return (1);
608 }
609 
610 static int
611 g_raid_md_promise_start_disk(struct g_raid_disk *disk, int sdn,
612     struct g_raid_volume *vol)
613 {
614 	struct g_raid_softc *sc;
615 	struct g_raid_subdisk *sd;
616 	struct g_raid_md_promise_perdisk *pd;
617 	struct g_raid_md_promise_pervolume *pv;
618 	struct promise_raid_conf *meta;
619 	off_t size;
620 	int disk_pos, md_disk_pos, i, resurrection = 0;
621 	uint32_t eoff, esize;
622 
623 	sc = disk->d_softc;
624 	pd = (struct g_raid_md_promise_perdisk *)disk->d_md_data;
625 
626 	pv = vol->v_md_data;
627 	meta = pv->pv_meta;
628 
629 	if (sdn >= 0) {
630 		/* Find disk position in metadata by it's serial. */
631 		md_disk_pos = promise_meta_find_disk(meta, pd->pd_meta[sdn]->disk.id);
632 		/* For RAID0+1 we need to translate order. */
633 		disk_pos = promise_meta_translate_disk(vol, md_disk_pos);
634 	} else {
635 		md_disk_pos = -1;
636 		disk_pos = -1;
637 	}
638 	if (disk_pos < 0) {
639 		G_RAID_DEBUG1(1, sc, "Disk %s is not part of the volume %s",
640 		    g_raid_get_diskname(disk), vol->v_name);
641 		/* Failed stale disk is useless for us. */
642 		if (sdn >= 0 &&
643 		    pd->pd_meta[sdn]->disk.flags & PROMISE_F_DOWN) {
644 			g_raid_change_disk_state(disk, G_RAID_DISK_S_STALE_FAILED);
645 			return (0);
646 		}
647 		/* If we were given specific metadata subdisk - erase it. */
648 		if (sdn >= 0) {
649 			free(pd->pd_meta[sdn], M_MD_PROMISE);
650 			for (i = sdn; i < pd->pd_subdisks - 1; i++)
651 				pd->pd_meta[i] = pd->pd_meta[i + 1];
652 			pd->pd_meta[PROMISE_MAX_SUBDISKS - 1] = NULL;
653 			pd->pd_subdisks--;
654 		}
655 		/* If we are in the start process, that's all for now. */
656 		if (!pv->pv_started)
657 			goto nofit;
658 		/*
659 		 * If we have already started - try to get use of the disk.
660 		 * Try to replace OFFLINE disks first, then FAILED.
661 		 */
662 		promise_meta_unused_range(pd->pd_meta, pd->pd_subdisks,
663 		    disk->d_consumer->provider->mediasize /
664 		    disk->d_consumer->provider->sectorsize,
665 		    &eoff, &esize);
666 		if (esize == 0) {
667 			G_RAID_DEBUG1(1, sc, "No free space on disk %s",
668 			    g_raid_get_diskname(disk));
669 			goto nofit;
670 		}
671 		size = INT64_MAX;
672 		for (i = 0; i < vol->v_disks_count; i++) {
673 			sd = &vol->v_subdisks[i];
674 			if (sd->sd_state != G_RAID_SUBDISK_S_NONE)
675 				size = sd->sd_size;
676 			if (sd->sd_state <= G_RAID_SUBDISK_S_FAILED &&
677 			    (disk_pos < 0 ||
678 			     vol->v_subdisks[i].sd_state < sd->sd_state))
679 				disk_pos = i;
680 		}
681 		if (disk_pos >= 0 &&
682 		    vol->v_raid_level != G_RAID_VOLUME_RL_CONCAT &&
683 		    (off_t)esize * 512 < size) {
684 			G_RAID_DEBUG1(1, sc, "Disk %s free space "
685 			    "is too small (%ju < %ju)",
686 			    g_raid_get_diskname(disk),
687 			    (off_t)esize * 512, size);
688 			disk_pos = -1;
689 		}
690 		if (disk_pos >= 0) {
691 			if (vol->v_raid_level != G_RAID_VOLUME_RL_CONCAT)
692 				esize = size / 512;
693 			/* For RAID0+1 we need to translate order. */
694 			md_disk_pos = promise_meta_translate_disk(vol, disk_pos);
695 		} else {
696 nofit:
697 			if (pd->pd_subdisks == 0) {
698 				g_raid_change_disk_state(disk,
699 				    G_RAID_DISK_S_SPARE);
700 			}
701 			return (0);
702 		}
703 		G_RAID_DEBUG1(1, sc, "Disk %s takes pos %d in the volume %s",
704 		    g_raid_get_diskname(disk), disk_pos, vol->v_name);
705 		resurrection = 1;
706 	}
707 
708 	sd = &vol->v_subdisks[disk_pos];
709 
710 	if (resurrection && sd->sd_disk != NULL) {
711 		g_raid_change_disk_state(sd->sd_disk,
712 		    G_RAID_DISK_S_STALE_FAILED);
713 		TAILQ_REMOVE(&sd->sd_disk->d_subdisks,
714 		    sd, sd_next);
715 	}
716 	vol->v_subdisks[disk_pos].sd_disk = disk;
717 	TAILQ_INSERT_TAIL(&disk->d_subdisks, sd, sd_next);
718 
719 	/* Welcome the new disk. */
720 	if (resurrection)
721 		g_raid_change_disk_state(disk, G_RAID_DISK_S_ACTIVE);
722 	else if (meta->disks[md_disk_pos].flags & PROMISE_F_DOWN)
723 		g_raid_change_disk_state(disk, G_RAID_DISK_S_FAILED);
724 	else
725 		g_raid_change_disk_state(disk, G_RAID_DISK_S_ACTIVE);
726 
727 	if (resurrection) {
728 		sd->sd_offset = (off_t)eoff * 512;
729 		sd->sd_size = (off_t)esize * 512;
730 	} else {
731 		sd->sd_offset = (off_t)pd->pd_meta[sdn]->disk_offset * 512;
732 		sd->sd_size = (off_t)pd->pd_meta[sdn]->disk_sectors * 512;
733 	}
734 
735 	if (resurrection) {
736 		/* Stale disk, almost same as new. */
737 		g_raid_change_subdisk_state(sd,
738 		    G_RAID_SUBDISK_S_NEW);
739 	} else if (meta->disks[md_disk_pos].flags & PROMISE_F_DOWN) {
740 		/* Failed disk. */
741 		g_raid_change_subdisk_state(sd,
742 		    G_RAID_SUBDISK_S_FAILED);
743 	} else if (meta->disks[md_disk_pos].flags & PROMISE_F_REDIR) {
744 		/* Rebuilding disk. */
745 		g_raid_change_subdisk_state(sd,
746 		    G_RAID_SUBDISK_S_REBUILD);
747 		if (pd->pd_meta[sdn]->generation != meta->generation)
748 			sd->sd_rebuild_pos = 0;
749 		else {
750 			sd->sd_rebuild_pos =
751 			    (off_t)pd->pd_meta[sdn]->rebuild_lba * 512;
752 		}
753 	} else if (!(meta->disks[md_disk_pos].flags & PROMISE_F_ONLINE)) {
754 		/* Rebuilding disk. */
755 		g_raid_change_subdisk_state(sd,
756 		    G_RAID_SUBDISK_S_NEW);
757 	} else if (pd->pd_meta[sdn]->generation != meta->generation ||
758 	    (meta->status & PROMISE_S_MARKED)) {
759 		/* Stale disk or dirty volume (unclean shutdown). */
760 		g_raid_change_subdisk_state(sd,
761 		    G_RAID_SUBDISK_S_STALE);
762 	} else {
763 		/* Up to date disk. */
764 		g_raid_change_subdisk_state(sd,
765 		    G_RAID_SUBDISK_S_ACTIVE);
766 	}
767 	g_raid_event_send(sd, G_RAID_SUBDISK_E_NEW,
768 	    G_RAID_EVENT_SUBDISK);
769 
770 	return (resurrection);
771 }
772 
773 static void
774 g_raid_md_promise_refill(struct g_raid_softc *sc)
775 {
776 	struct g_raid_volume *vol;
777 	struct g_raid_subdisk *sd;
778 	struct g_raid_disk *disk;
779 	struct g_raid_md_object *md;
780 	struct g_raid_md_promise_perdisk *pd;
781 	struct g_raid_md_promise_pervolume *pv;
782 	int update, updated, i, bad;
783 
784 	md = sc->sc_md;
785 restart:
786 	updated = 0;
787 	TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
788 		pv = vol->v_md_data;
789 		if (!pv->pv_started || vol->v_stopping)
790 			continue;
791 
792 		/* Search for subdisk that needs replacement. */
793 		bad = 0;
794 		for (i = 0; i < vol->v_disks_count; i++) {
795 			sd = &vol->v_subdisks[i];
796 			if (sd->sd_state == G_RAID_SUBDISK_S_NONE ||
797 			    sd->sd_state == G_RAID_SUBDISK_S_FAILED)
798 			        bad = 1;
799 		}
800 		if (!bad)
801 			continue;
802 
803 		G_RAID_DEBUG1(1, sc, "Volume %s is not complete, "
804 		    "trying to refill.", vol->v_name);
805 
806 		TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
807 			/* Skip failed. */
808 			if (disk->d_state < G_RAID_DISK_S_SPARE)
809 				continue;
810 			/* Skip already used by this volume. */
811 			for (i = 0; i < vol->v_disks_count; i++) {
812 				sd = &vol->v_subdisks[i];
813 				if (sd->sd_disk == disk)
814 					break;
815 			}
816 			if (i < vol->v_disks_count)
817 				continue;
818 
819 			/* Try to use disk if it has empty extents. */
820 			pd = disk->d_md_data;
821 			if (pd->pd_subdisks < PROMISE_MAX_SUBDISKS) {
822 				update =
823 				    g_raid_md_promise_start_disk(disk, -1, vol);
824 			} else
825 				update = 0;
826 			if (update) {
827 				updated = 1;
828 				g_raid_md_write_promise(md, vol, NULL, disk);
829 				break;
830 			}
831 		}
832 	}
833 	if (updated)
834 		goto restart;
835 }
836 
837 static void
838 g_raid_md_promise_start(struct g_raid_volume *vol)
839 {
840 	struct g_raid_softc *sc;
841 	struct g_raid_subdisk *sd;
842 	struct g_raid_disk *disk;
843 	struct g_raid_md_object *md;
844 	struct g_raid_md_promise_perdisk *pd;
845 	struct g_raid_md_promise_pervolume *pv;
846 	struct promise_raid_conf *meta;
847 	int i;
848 
849 	sc = vol->v_softc;
850 	md = sc->sc_md;
851 	pv = vol->v_md_data;
852 	meta = pv->pv_meta;
853 
854 	vol->v_raid_level_qualifier = G_RAID_VOLUME_RLQ_NONE;
855 	if (meta->type == PROMISE_T_RAID0)
856 		vol->v_raid_level = G_RAID_VOLUME_RL_RAID0;
857 	else if (meta->type == PROMISE_T_RAID1) {
858 		if (meta->array_width == 1)
859 			vol->v_raid_level = G_RAID_VOLUME_RL_RAID1;
860 		else
861 			vol->v_raid_level = G_RAID_VOLUME_RL_RAID1E;
862 	} else if (meta->type == PROMISE_T_RAID3)
863 		vol->v_raid_level = G_RAID_VOLUME_RL_RAID3;
864 	else if (meta->type == PROMISE_T_RAID5) {
865 		vol->v_raid_level = G_RAID_VOLUME_RL_RAID5;
866 		vol->v_raid_level_qualifier = G_RAID_VOLUME_RLQ_R5LA;
867 	} else if (meta->type == PROMISE_T_SPAN)
868 		vol->v_raid_level = G_RAID_VOLUME_RL_CONCAT;
869 	else if (meta->type == PROMISE_T_JBOD)
870 		vol->v_raid_level = G_RAID_VOLUME_RL_SINGLE;
871 	else
872 		vol->v_raid_level = G_RAID_VOLUME_RL_UNKNOWN;
873 	vol->v_strip_size = 512 << meta->stripe_shift; //ZZZ
874 	vol->v_disks_count = meta->total_disks;
875 	vol->v_mediasize = (off_t)meta->total_sectors * 512; //ZZZ
876 	if (meta->total_sectors_high < 256) /* If value looks sane. */
877 		vol->v_mediasize |=
878 		    ((off_t)meta->total_sectors_high << 32) * 512; //ZZZ
879 	vol->v_sectorsize = 512; //ZZZ
880 	for (i = 0; i < vol->v_disks_count; i++) {
881 		sd = &vol->v_subdisks[i];
882 		sd->sd_offset = (off_t)meta->disk_offset * 512; //ZZZ
883 		sd->sd_size = (off_t)meta->disk_sectors * 512; //ZZZ
884 	}
885 	g_raid_start_volume(vol);
886 
887 	/* Make all disks found till the moment take their places. */
888 	TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
889 		pd = disk->d_md_data;
890 		for (i = 0; i < pd->pd_subdisks; i++) {
891 			if (pd->pd_meta[i]->volume_id == meta->volume_id)
892 				g_raid_md_promise_start_disk(disk, i, vol);
893 		}
894 	}
895 
896 	pv->pv_started = 1;
897 	callout_stop(&pv->pv_start_co);
898 	G_RAID_DEBUG1(0, sc, "Volume started.");
899 	g_raid_md_write_promise(md, vol, NULL, NULL);
900 
901 	/* Pickup any STALE/SPARE disks to refill array if needed. */
902 	g_raid_md_promise_refill(sc);
903 
904 	g_raid_event_send(vol, G_RAID_VOLUME_E_START, G_RAID_EVENT_VOLUME);
905 }
906 
907 static void
908 g_raid_promise_go(void *arg)
909 {
910 	struct g_raid_volume *vol;
911 	struct g_raid_softc *sc;
912 	struct g_raid_md_promise_pervolume *pv;
913 
914 	vol = arg;
915 	pv = vol->v_md_data;
916 	sc = vol->v_softc;
917 	if (!pv->pv_started) {
918 		G_RAID_DEBUG1(0, sc, "Force volume start due to timeout.");
919 		g_raid_event_send(vol, G_RAID_VOLUME_E_STARTMD,
920 		    G_RAID_EVENT_VOLUME);
921 	}
922 }
923 
924 static void
925 g_raid_md_promise_new_disk(struct g_raid_disk *disk)
926 {
927 	struct g_raid_softc *sc;
928 	struct g_raid_md_object *md;
929 	struct promise_raid_conf *pdmeta;
930 	struct g_raid_md_promise_perdisk *pd;
931 	struct g_raid_md_promise_pervolume *pv;
932 	struct g_raid_volume *vol;
933 	int i;
934 	char buf[33];
935 
936 	sc = disk->d_softc;
937 	md = sc->sc_md;
938 	pd = (struct g_raid_md_promise_perdisk *)disk->d_md_data;
939 
940 	if (pd->pd_subdisks == 0) {
941 		g_raid_change_disk_state(disk, G_RAID_DISK_S_SPARE);
942 		g_raid_md_promise_refill(sc);
943 		return;
944 	}
945 
946 	for (i = 0; i < pd->pd_subdisks; i++) {
947 		pdmeta = pd->pd_meta[i];
948 
949 		/* Look for volume with matching ID. */
950 		vol = g_raid_md_promise_get_volume(sc, pdmeta->volume_id);
951 		if (vol == NULL) {
952 			promise_meta_get_name(pdmeta, buf);
953 			vol = g_raid_create_volume(sc, buf, pdmeta->array_number);
954 			pv = malloc(sizeof(*pv), M_MD_PROMISE, M_WAITOK | M_ZERO);
955 			pv->pv_id = pdmeta->volume_id;
956 			vol->v_md_data = pv;
957 			callout_init(&pv->pv_start_co, 1);
958 			callout_reset(&pv->pv_start_co,
959 			    g_raid_start_timeout * hz,
960 			    g_raid_promise_go, vol);
961 		} else
962 			pv = vol->v_md_data;
963 
964 		/* If we haven't started yet - check metadata freshness. */
965 		if (pv->pv_meta == NULL || !pv->pv_started) {
966 			if (pv->pv_meta == NULL ||
967 			    ((int16_t)(pdmeta->generation - pv->pv_generation)) > 0) {
968 				G_RAID_DEBUG1(1, sc, "Newer disk");
969 				if (pv->pv_meta != NULL)
970 					free(pv->pv_meta, M_MD_PROMISE);
971 				pv->pv_meta = promise_meta_copy(pdmeta);
972 				pv->pv_generation = pv->pv_meta->generation;
973 				pv->pv_disks_present = 1;
974 			} else if (pdmeta->generation == pv->pv_generation) {
975 				pv->pv_disks_present++;
976 				G_RAID_DEBUG1(1, sc, "Matching disk (%d of %d up)",
977 				    pv->pv_disks_present,
978 				    pv->pv_meta->total_disks);
979 			} else {
980 				G_RAID_DEBUG1(1, sc, "Older disk");
981 			}
982 		}
983 	}
984 
985 	for (i = 0; i < pd->pd_subdisks; i++) {
986 		pdmeta = pd->pd_meta[i];
987 
988 		/* Look for volume with matching ID. */
989 		vol = g_raid_md_promise_get_volume(sc, pdmeta->volume_id);
990 		if (vol == NULL)
991 			continue;
992 		pv = vol->v_md_data;
993 
994 		if (pv->pv_started) {
995 			if (g_raid_md_promise_start_disk(disk, i, vol))
996 				g_raid_md_write_promise(md, vol, NULL, NULL);
997 		} else {
998 			/* If we collected all needed disks - start array. */
999 			if (pv->pv_disks_present == pv->pv_meta->total_disks)
1000 				g_raid_md_promise_start(vol);
1001 		}
1002 	}
1003 }
1004 
1005 static int
1006 g_raid_md_create_promise(struct g_raid_md_object *md, struct g_class *mp,
1007     struct g_geom **gp)
1008 {
1009 	struct g_geom *geom;
1010 	struct g_raid_softc *sc;
1011 
1012 	/* Search for existing node. */
1013 	LIST_FOREACH(geom, &mp->geom, geom) {
1014 		sc = geom->softc;
1015 		if (sc == NULL)
1016 			continue;
1017 		if (sc->sc_stopping != 0)
1018 			continue;
1019 		if (sc->sc_md->mdo_class != md->mdo_class)
1020 			continue;
1021 		break;
1022 	}
1023 	if (geom != NULL) {
1024 		*gp = geom;
1025 		return (G_RAID_MD_TASTE_EXISTING);
1026 	}
1027 
1028 	/* Create new one if not found. */
1029 	sc = g_raid_create_node(mp, "Promise", md);
1030 	if (sc == NULL)
1031 		return (G_RAID_MD_TASTE_FAIL);
1032 	md->mdo_softc = sc;
1033 	*gp = sc->sc_geom;
1034 	return (G_RAID_MD_TASTE_NEW);
1035 }
1036 
1037 static int
1038 g_raid_md_taste_promise(struct g_raid_md_object *md, struct g_class *mp,
1039                               struct g_consumer *cp, struct g_geom **gp)
1040 {
1041 	struct g_consumer *rcp;
1042 	struct g_provider *pp;
1043 	struct g_raid_softc *sc;
1044 	struct g_raid_disk *disk;
1045 	struct promise_raid_conf *meta, *metaarr[4];
1046 	struct g_raid_md_promise_perdisk *pd;
1047 	struct g_geom *geom;
1048 	int error, i, j, result, len, subdisks;
1049 	char name[16];
1050 	uint16_t vendor;
1051 
1052 	G_RAID_DEBUG(1, "Tasting Promise on %s", cp->provider->name);
1053 	pp = cp->provider;
1054 
1055 	/* Read metadata from device. */
1056 	meta = NULL;
1057 	vendor = 0xffff;
1058 	if (g_access(cp, 1, 0, 0) != 0)
1059 		return (G_RAID_MD_TASTE_FAIL);
1060 	g_topology_unlock();
1061 	len = 2;
1062 	if (pp->geom->rank == 1)
1063 		g_io_getattr("GEOM::hba_vendor", cp, &len, &vendor);
1064 	subdisks = promise_meta_read(cp, metaarr);
1065 	g_topology_lock();
1066 	g_access(cp, -1, 0, 0);
1067 	if (subdisks == 0) {
1068 		if (g_raid_aggressive_spare) {
1069 			if (vendor == 0x105a || vendor == 0x1002) {
1070 				G_RAID_DEBUG(1,
1071 				    "No Promise metadata, forcing spare.");
1072 				goto search;
1073 			} else {
1074 				G_RAID_DEBUG(1,
1075 				    "Promise/ATI vendor mismatch "
1076 				    "0x%04x != 0x105a/0x1002",
1077 				    vendor);
1078 			}
1079 		}
1080 		return (G_RAID_MD_TASTE_FAIL);
1081 	}
1082 
1083 	/* Metadata valid. Print it. */
1084 	for (i = 0; i < subdisks; i++)
1085 		g_raid_md_promise_print(metaarr[i]);
1086 
1087 	/* Purge meaningless (empty/spare) records. */
1088 	for (i = 0; i < subdisks; ) {
1089 		if (metaarr[i]->disk.flags & PROMISE_F_ASSIGNED) {
1090 			i++;
1091 			continue;
1092 		}
1093 		free(metaarr[i], M_MD_PROMISE);
1094 		for (j = i; j < subdisks - 1; j++)
1095 			metaarr[i] = metaarr[j + 1];
1096 		metaarr[PROMISE_MAX_SUBDISKS - 1] = NULL;
1097 		subdisks--;
1098 	}
1099 
1100 search:
1101 	/* Search for matching node. */
1102 	sc = NULL;
1103 	LIST_FOREACH(geom, &mp->geom, geom) {
1104 		sc = geom->softc;
1105 		if (sc == NULL)
1106 			continue;
1107 		if (sc->sc_stopping != 0)
1108 			continue;
1109 		if (sc->sc_md->mdo_class != md->mdo_class)
1110 			continue;
1111 		break;
1112 	}
1113 
1114 	/* Found matching node. */
1115 	if (geom != NULL) {
1116 		G_RAID_DEBUG(1, "Found matching array %s", sc->sc_name);
1117 		result = G_RAID_MD_TASTE_EXISTING;
1118 
1119 	} else { /* Not found matching node -- create one. */
1120 		result = G_RAID_MD_TASTE_NEW;
1121 		snprintf(name, sizeof(name), "Promise");
1122 		sc = g_raid_create_node(mp, name, md);
1123 		md->mdo_softc = sc;
1124 		geom = sc->sc_geom;
1125 	}
1126 
1127 	rcp = g_new_consumer(geom);
1128 	g_attach(rcp, pp);
1129 	if (g_access(rcp, 1, 1, 1) != 0)
1130 		; //goto fail1;
1131 
1132 	g_topology_unlock();
1133 	sx_xlock(&sc->sc_lock);
1134 
1135 	pd = malloc(sizeof(*pd), M_MD_PROMISE, M_WAITOK | M_ZERO);
1136 	pd->pd_subdisks = subdisks;
1137 	for (i = 0; i < subdisks; i++)
1138 		pd->pd_meta[i] = metaarr[i];
1139 	disk = g_raid_create_disk(sc);
1140 	disk->d_md_data = (void *)pd;
1141 	disk->d_consumer = rcp;
1142 	rcp->private = disk;
1143 
1144 	/* Read kernel dumping information. */
1145 	disk->d_kd.offset = 0;
1146 	disk->d_kd.length = OFF_MAX;
1147 	len = sizeof(disk->d_kd);
1148 	error = g_io_getattr("GEOM::kerneldump", rcp, &len, &disk->d_kd);
1149 	if (disk->d_kd.di.dumper == NULL)
1150 		G_RAID_DEBUG1(2, sc, "Dumping not supported by %s: %d.",
1151 		    rcp->provider->name, error);
1152 
1153 	g_raid_md_promise_new_disk(disk);
1154 
1155 	sx_xunlock(&sc->sc_lock);
1156 	g_topology_lock();
1157 	*gp = geom;
1158 	return (result);
1159 }
1160 
1161 static int
1162 g_raid_md_event_promise(struct g_raid_md_object *md,
1163     struct g_raid_disk *disk, u_int event)
1164 {
1165 	struct g_raid_softc *sc;
1166 
1167 	sc = md->mdo_softc;
1168 	if (disk == NULL)
1169 		return (-1);
1170 	switch (event) {
1171 	case G_RAID_DISK_E_DISCONNECTED:
1172 		/* Delete disk. */
1173 		g_raid_change_disk_state(disk, G_RAID_DISK_S_NONE);
1174 		g_raid_destroy_disk(disk);
1175 		g_raid_md_promise_purge_volumes(sc);
1176 
1177 		/* Write updated metadata to all disks. */
1178 		g_raid_md_write_promise(md, NULL, NULL, NULL);
1179 
1180 		/* Check if anything left. */
1181 		if (g_raid_ndisks(sc, -1) == 0)
1182 			g_raid_destroy_node(sc, 0);
1183 		else
1184 			g_raid_md_promise_refill(sc);
1185 		return (0);
1186 	}
1187 	return (-2);
1188 }
1189 
1190 static int
1191 g_raid_md_volume_event_promise(struct g_raid_md_object *md,
1192     struct g_raid_volume *vol, u_int event)
1193 {
1194 	struct g_raid_md_promise_pervolume *pv;
1195 
1196 	pv = (struct g_raid_md_promise_pervolume *)vol->v_md_data;
1197 	switch (event) {
1198 	case G_RAID_VOLUME_E_STARTMD:
1199 		if (!pv->pv_started)
1200 			g_raid_md_promise_start(vol);
1201 		return (0);
1202 	}
1203 	return (-2);
1204 }
1205 
1206 static int
1207 g_raid_md_ctl_promise(struct g_raid_md_object *md,
1208     struct gctl_req *req)
1209 {
1210 	struct g_raid_softc *sc;
1211 	struct g_raid_volume *vol, *vol1;
1212 	struct g_raid_subdisk *sd;
1213 	struct g_raid_disk *disk, *disks[PROMISE_MAX_DISKS];
1214 	struct g_raid_md_promise_perdisk *pd;
1215 	struct g_raid_md_promise_pervolume *pv;
1216 	struct g_consumer *cp;
1217 	struct g_provider *pp;
1218 	char arg[16];
1219 	const char *verb, *volname, *levelname, *diskname;
1220 	char *tmp;
1221 	int *nargs, *force;
1222 	off_t size, sectorsize, strip;
1223 	intmax_t *sizearg, *striparg;
1224 	uint32_t offs[PROMISE_MAX_DISKS], esize;
1225 	int numdisks, i, len, level, qual;
1226 	int error;
1227 
1228 	sc = md->mdo_softc;
1229 	verb = gctl_get_param(req, "verb", NULL);
1230 	nargs = gctl_get_paraml(req, "nargs", sizeof(*nargs));
1231 	error = 0;
1232 	if (strcmp(verb, "label") == 0) {
1233 
1234 		if (*nargs < 4) {
1235 			gctl_error(req, "Invalid number of arguments.");
1236 			return (-1);
1237 		}
1238 		volname = gctl_get_asciiparam(req, "arg1");
1239 		if (volname == NULL) {
1240 			gctl_error(req, "No volume name.");
1241 			return (-2);
1242 		}
1243 		levelname = gctl_get_asciiparam(req, "arg2");
1244 		if (levelname == NULL) {
1245 			gctl_error(req, "No RAID level.");
1246 			return (-3);
1247 		}
1248 		if (strcasecmp(levelname, "RAID5") == 0)
1249 			levelname = "RAID5-LA";
1250 		if (g_raid_volume_str2level(levelname, &level, &qual)) {
1251 			gctl_error(req, "Unknown RAID level '%s'.", levelname);
1252 			return (-4);
1253 		}
1254 		numdisks = *nargs - 3;
1255 		force = gctl_get_paraml(req, "force", sizeof(*force));
1256 		if (!g_raid_md_promise_supported(level, qual, numdisks,
1257 		    force ? *force : 0)) {
1258 			gctl_error(req, "Unsupported RAID level "
1259 			    "(0x%02x/0x%02x), or number of disks (%d).",
1260 			    level, qual, numdisks);
1261 			return (-5);
1262 		}
1263 
1264 		/* Search for disks, connect them and probe. */
1265 		size = INT64_MAX;
1266 		sectorsize = 0;
1267 		bzero(disks, sizeof(disks));
1268 		bzero(offs, sizeof(offs));
1269 		for (i = 0; i < numdisks; i++) {
1270 			snprintf(arg, sizeof(arg), "arg%d", i + 3);
1271 			diskname = gctl_get_asciiparam(req, arg);
1272 			if (diskname == NULL) {
1273 				gctl_error(req, "No disk name (%s).", arg);
1274 				error = -6;
1275 				break;
1276 			}
1277 			if (strcmp(diskname, "NONE") == 0)
1278 				continue;
1279 
1280 			TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
1281 				if (disk->d_consumer != NULL &&
1282 				    disk->d_consumer->provider != NULL &&
1283 				    strcmp(disk->d_consumer->provider->name,
1284 				     diskname) == 0)
1285 					break;
1286 			}
1287 			if (disk != NULL) {
1288 				if (disk->d_state != G_RAID_DISK_S_ACTIVE) {
1289 					gctl_error(req, "Disk '%s' is in a "
1290 					    "wrong state (%s).", diskname,
1291 					    g_raid_disk_state2str(disk->d_state));
1292 					error = -7;
1293 					break;
1294 				}
1295 				pd = disk->d_md_data;
1296 				if (pd->pd_subdisks >= PROMISE_MAX_SUBDISKS) {
1297 					gctl_error(req, "Disk '%s' already "
1298 					    "used by %d volumes.",
1299 					    diskname, pd->pd_subdisks);
1300 					error = -7;
1301 					break;
1302 				}
1303 				pp = disk->d_consumer->provider;
1304 				disks[i] = disk;
1305 				promise_meta_unused_range(pd->pd_meta,
1306 				    pd->pd_subdisks,
1307 				    pp->mediasize / pp->sectorsize,
1308 				    &offs[i], &esize);
1309 				size = MIN(size, (off_t)esize * pp->sectorsize);
1310 				sectorsize = MAX(sectorsize, pp->sectorsize);
1311 				continue;
1312 			}
1313 
1314 			g_topology_lock();
1315 			cp = g_raid_open_consumer(sc, diskname);
1316 			if (cp == NULL) {
1317 				gctl_error(req, "Can't open disk '%s'.",
1318 				    diskname);
1319 				g_topology_unlock();
1320 				error = -8;
1321 				break;
1322 			}
1323 			pp = cp->provider;
1324 			pd = malloc(sizeof(*pd), M_MD_PROMISE, M_WAITOK | M_ZERO);
1325 			disk = g_raid_create_disk(sc);
1326 			disk->d_md_data = (void *)pd;
1327 			disk->d_consumer = cp;
1328 			disks[i] = disk;
1329 			cp->private = disk;
1330 			g_topology_unlock();
1331 
1332 			if (pp->mediasize / pp->sectorsize > UINT32_MAX) {
1333 				gctl_error(req,
1334 				    "Disk '%s' is too big.", diskname);
1335 				error = -8;
1336 				break;
1337 			}
1338 
1339 			/* Read kernel dumping information. */
1340 			disk->d_kd.offset = 0;
1341 			disk->d_kd.length = OFF_MAX;
1342 			len = sizeof(disk->d_kd);
1343 			g_io_getattr("GEOM::kerneldump", cp, &len, &disk->d_kd);
1344 			if (disk->d_kd.di.dumper == NULL)
1345 				G_RAID_DEBUG1(2, sc,
1346 				    "Dumping not supported by %s.",
1347 				    cp->provider->name);
1348 
1349 			/* Reserve some space for metadata. */
1350 			size = MIN(size, pp->mediasize - 131072llu * pp->sectorsize);
1351 			sectorsize = MAX(sectorsize, pp->sectorsize);
1352 		}
1353 		if (error != 0) {
1354 			for (i = 0; i < numdisks; i++) {
1355 				if (disks[i] != NULL &&
1356 				    disks[i]->d_state == G_RAID_DISK_S_NONE)
1357 					g_raid_destroy_disk(disks[i]);
1358 			}
1359 			return (error);
1360 		}
1361 
1362 		if (sectorsize <= 0) {
1363 			gctl_error(req, "Can't get sector size.");
1364 			return (-8);
1365 		}
1366 
1367 		/* Handle size argument. */
1368 		len = sizeof(*sizearg);
1369 		sizearg = gctl_get_param(req, "size", &len);
1370 		if (sizearg != NULL && len == sizeof(*sizearg) &&
1371 		    *sizearg > 0) {
1372 			if (*sizearg > size) {
1373 				gctl_error(req, "Size too big %lld > %lld.",
1374 				    (long long)*sizearg, (long long)size);
1375 				return (-9);
1376 			}
1377 			size = *sizearg;
1378 		}
1379 
1380 		/* Handle strip argument. */
1381 		strip = 131072;
1382 		len = sizeof(*striparg);
1383 		striparg = gctl_get_param(req, "strip", &len);
1384 		if (striparg != NULL && len == sizeof(*striparg) &&
1385 		    *striparg > 0) {
1386 			if (*striparg < sectorsize) {
1387 				gctl_error(req, "Strip size too small.");
1388 				return (-10);
1389 			}
1390 			if (*striparg % sectorsize != 0) {
1391 				gctl_error(req, "Incorrect strip size.");
1392 				return (-11);
1393 			}
1394 			strip = *striparg;
1395 		}
1396 
1397 		/* Round size down to strip or sector. */
1398 		if (level == G_RAID_VOLUME_RL_RAID1 ||
1399 		    level == G_RAID_VOLUME_RL_SINGLE ||
1400 		    level == G_RAID_VOLUME_RL_CONCAT)
1401 			size -= (size % sectorsize);
1402 		else if (level == G_RAID_VOLUME_RL_RAID1E &&
1403 		    (numdisks & 1) != 0)
1404 			size -= (size % (2 * strip));
1405 		else
1406 			size -= (size % strip);
1407 		if (size <= 0) {
1408 			gctl_error(req, "Size too small.");
1409 			return (-13);
1410 		}
1411 		if (size > 0xffffffffllu * sectorsize) {
1412 			gctl_error(req, "Size too big.");
1413 			return (-14);
1414 		}
1415 
1416 		/* We have all we need, create things: volume, ... */
1417 		pv = malloc(sizeof(*pv), M_MD_PROMISE, M_WAITOK | M_ZERO);
1418 		arc4rand(&pv->pv_id, sizeof(pv->pv_id), 0);
1419 		pv->pv_generation = 0;
1420 		pv->pv_started = 1;
1421 		vol = g_raid_create_volume(sc, volname, -1);
1422 		vol->v_md_data = pv;
1423 		vol->v_raid_level = level;
1424 		vol->v_raid_level_qualifier = qual;
1425 		vol->v_strip_size = strip;
1426 		vol->v_disks_count = numdisks;
1427 		if (level == G_RAID_VOLUME_RL_RAID0 ||
1428 		    level == G_RAID_VOLUME_RL_CONCAT ||
1429 		    level == G_RAID_VOLUME_RL_SINGLE)
1430 			vol->v_mediasize = size * numdisks;
1431 		else if (level == G_RAID_VOLUME_RL_RAID1)
1432 			vol->v_mediasize = size;
1433 		else if (level == G_RAID_VOLUME_RL_RAID3 ||
1434 		    level == G_RAID_VOLUME_RL_RAID5)
1435 			vol->v_mediasize = size * (numdisks - 1);
1436 		else { /* RAID1E */
1437 			vol->v_mediasize = ((size * numdisks) / strip / 2) *
1438 			    strip;
1439 		}
1440 		vol->v_sectorsize = sectorsize;
1441 		g_raid_start_volume(vol);
1442 
1443 		/* , and subdisks. */
1444 		for (i = 0; i < numdisks; i++) {
1445 			disk = disks[i];
1446 			sd = &vol->v_subdisks[i];
1447 			sd->sd_disk = disk;
1448 			sd->sd_offset = (off_t)offs[i] * 512;
1449 			sd->sd_size = size;
1450 			if (disk == NULL)
1451 				continue;
1452 			TAILQ_INSERT_TAIL(&disk->d_subdisks, sd, sd_next);
1453 			g_raid_change_disk_state(disk,
1454 			    G_RAID_DISK_S_ACTIVE);
1455 			g_raid_change_subdisk_state(sd,
1456 			    G_RAID_SUBDISK_S_ACTIVE);
1457 			g_raid_event_send(sd, G_RAID_SUBDISK_E_NEW,
1458 			    G_RAID_EVENT_SUBDISK);
1459 		}
1460 
1461 		/* Write metadata based on created entities. */
1462 		G_RAID_DEBUG1(0, sc, "Array started.");
1463 		g_raid_md_write_promise(md, vol, NULL, NULL);
1464 
1465 		/* Pickup any STALE/SPARE disks to refill array if needed. */
1466 		g_raid_md_promise_refill(sc);
1467 
1468 		g_raid_event_send(vol, G_RAID_VOLUME_E_START,
1469 		    G_RAID_EVENT_VOLUME);
1470 		return (0);
1471 	}
1472 	if (strcmp(verb, "add") == 0) {
1473 
1474 		gctl_error(req, "`add` command is not applicable, "
1475 		    "use `label` instead.");
1476 		return (-99);
1477 	}
1478 	if (strcmp(verb, "delete") == 0) {
1479 
1480 		/* Full node destruction. */
1481 		if (*nargs == 1) {
1482 			/* Check if some volume is still open. */
1483 			force = gctl_get_paraml(req, "force", sizeof(*force));
1484 			if (force != NULL && *force == 0 &&
1485 			    g_raid_nopens(sc) != 0) {
1486 				gctl_error(req, "Some volume is still open.");
1487 				return (-4);
1488 			}
1489 
1490 			TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
1491 				if (disk->d_consumer)
1492 					promise_meta_erase(disk->d_consumer);
1493 			}
1494 			g_raid_destroy_node(sc, 0);
1495 			return (0);
1496 		}
1497 
1498 		/* Destroy specified volume. If it was last - all node. */
1499 		if (*nargs != 2) {
1500 			gctl_error(req, "Invalid number of arguments.");
1501 			return (-1);
1502 		}
1503 		volname = gctl_get_asciiparam(req, "arg1");
1504 		if (volname == NULL) {
1505 			gctl_error(req, "No volume name.");
1506 			return (-2);
1507 		}
1508 
1509 		/* Search for volume. */
1510 		TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
1511 			if (strcmp(vol->v_name, volname) == 0)
1512 				break;
1513 		}
1514 		if (vol == NULL) {
1515 			i = strtol(volname, &tmp, 10);
1516 			if (verb != volname && tmp[0] == 0) {
1517 				TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
1518 					if (vol->v_global_id == i)
1519 						break;
1520 				}
1521 			}
1522 		}
1523 		if (vol == NULL) {
1524 			gctl_error(req, "Volume '%s' not found.", volname);
1525 			return (-3);
1526 		}
1527 
1528 		/* Check if volume is still open. */
1529 		force = gctl_get_paraml(req, "force", sizeof(*force));
1530 		if (force != NULL && *force == 0 &&
1531 		    vol->v_provider_open != 0) {
1532 			gctl_error(req, "Volume is still open.");
1533 			return (-4);
1534 		}
1535 
1536 		/* Destroy volume and potentially node. */
1537 		i = 0;
1538 		TAILQ_FOREACH(vol1, &sc->sc_volumes, v_next)
1539 			i++;
1540 		if (i >= 2) {
1541 			g_raid_destroy_volume(vol);
1542 			g_raid_md_promise_purge_disks(sc);
1543 			g_raid_md_write_promise(md, NULL, NULL, NULL);
1544 		} else {
1545 			TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
1546 				if (disk->d_consumer)
1547 					promise_meta_erase(disk->d_consumer);
1548 			}
1549 			g_raid_destroy_node(sc, 0);
1550 		}
1551 		return (0);
1552 	}
1553 	if (strcmp(verb, "remove") == 0 ||
1554 	    strcmp(verb, "fail") == 0) {
1555 		if (*nargs < 2) {
1556 			gctl_error(req, "Invalid number of arguments.");
1557 			return (-1);
1558 		}
1559 		for (i = 1; i < *nargs; i++) {
1560 			snprintf(arg, sizeof(arg), "arg%d", i);
1561 			diskname = gctl_get_asciiparam(req, arg);
1562 			if (diskname == NULL) {
1563 				gctl_error(req, "No disk name (%s).", arg);
1564 				error = -2;
1565 				break;
1566 			}
1567 			if (strncmp(diskname, "/dev/", 5) == 0)
1568 				diskname += 5;
1569 
1570 			TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
1571 				if (disk->d_consumer != NULL &&
1572 				    disk->d_consumer->provider != NULL &&
1573 				    strcmp(disk->d_consumer->provider->name,
1574 				     diskname) == 0)
1575 					break;
1576 			}
1577 			if (disk == NULL) {
1578 				gctl_error(req, "Disk '%s' not found.",
1579 				    diskname);
1580 				error = -3;
1581 				break;
1582 			}
1583 
1584 			if (strcmp(verb, "fail") == 0) {
1585 				g_raid_md_fail_disk_promise(md, NULL, disk);
1586 				continue;
1587 			}
1588 
1589 			/* Erase metadata on deleting disk and destroy it. */
1590 			promise_meta_erase(disk->d_consumer);
1591 			g_raid_destroy_disk(disk);
1592 		}
1593 		g_raid_md_promise_purge_volumes(sc);
1594 
1595 		/* Write updated metadata to remaining disks. */
1596 		g_raid_md_write_promise(md, NULL, NULL, NULL);
1597 
1598 		/* Check if anything left. */
1599 		if (g_raid_ndisks(sc, -1) == 0)
1600 			g_raid_destroy_node(sc, 0);
1601 		else
1602 			g_raid_md_promise_refill(sc);
1603 		return (error);
1604 	}
1605 	if (strcmp(verb, "insert") == 0) {
1606 		if (*nargs < 2) {
1607 			gctl_error(req, "Invalid number of arguments.");
1608 			return (-1);
1609 		}
1610 		for (i = 1; i < *nargs; i++) {
1611 			/* Get disk name. */
1612 			snprintf(arg, sizeof(arg), "arg%d", i);
1613 			diskname = gctl_get_asciiparam(req, arg);
1614 			if (diskname == NULL) {
1615 				gctl_error(req, "No disk name (%s).", arg);
1616 				error = -3;
1617 				break;
1618 			}
1619 
1620 			/* Try to find provider with specified name. */
1621 			g_topology_lock();
1622 			cp = g_raid_open_consumer(sc, diskname);
1623 			if (cp == NULL) {
1624 				gctl_error(req, "Can't open disk '%s'.",
1625 				    diskname);
1626 				g_topology_unlock();
1627 				error = -4;
1628 				break;
1629 			}
1630 			pp = cp->provider;
1631 			g_topology_unlock();
1632 
1633 			if (pp->mediasize / pp->sectorsize > UINT32_MAX) {
1634 				gctl_error(req,
1635 				    "Disk '%s' is too big.", diskname);
1636 				g_raid_kill_consumer(sc, cp);
1637 				error = -8;
1638 				break;
1639 			}
1640 
1641 			pd = malloc(sizeof(*pd), M_MD_PROMISE, M_WAITOK | M_ZERO);
1642 
1643 			disk = g_raid_create_disk(sc);
1644 			disk->d_consumer = cp;
1645 			disk->d_md_data = (void *)pd;
1646 			cp->private = disk;
1647 
1648 			/* Read kernel dumping information. */
1649 			disk->d_kd.offset = 0;
1650 			disk->d_kd.length = OFF_MAX;
1651 			len = sizeof(disk->d_kd);
1652 			g_io_getattr("GEOM::kerneldump", cp, &len, &disk->d_kd);
1653 			if (disk->d_kd.di.dumper == NULL)
1654 				G_RAID_DEBUG1(2, sc,
1655 				    "Dumping not supported by %s.",
1656 				    cp->provider->name);
1657 
1658 			/* Welcome the "new" disk. */
1659 			g_raid_change_disk_state(disk, G_RAID_DISK_S_SPARE);
1660 			promise_meta_write_spare(cp);
1661 			g_raid_md_promise_refill(sc);
1662 		}
1663 		return (error);
1664 	}
1665 	return (-100);
1666 }
1667 
1668 static int
1669 g_raid_md_write_promise(struct g_raid_md_object *md, struct g_raid_volume *tvol,
1670     struct g_raid_subdisk *tsd, struct g_raid_disk *tdisk)
1671 {
1672 	struct g_raid_softc *sc;
1673 	struct g_raid_volume *vol;
1674 	struct g_raid_subdisk *sd;
1675 	struct g_raid_disk *disk;
1676 	struct g_raid_md_promise_perdisk *pd;
1677 	struct g_raid_md_promise_pervolume *pv;
1678 	struct promise_raid_conf *meta;
1679 	off_t rebuild_lba64;
1680 	int i, j, pos, rebuild;
1681 
1682 	sc = md->mdo_softc;
1683 
1684 	if (sc->sc_stopping == G_RAID_DESTROY_HARD)
1685 		return (0);
1686 
1687 	/* Generate new per-volume metadata for affected volumes. */
1688 	TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
1689 		if (vol->v_stopping)
1690 			continue;
1691 
1692 		/* Skip volumes not related to specified targets. */
1693 		if (tvol != NULL && vol != tvol)
1694 			continue;
1695 		if (tsd != NULL && vol != tsd->sd_volume)
1696 			continue;
1697 		if (tdisk != NULL) {
1698 			for (i = 0; i < vol->v_disks_count; i++) {
1699 				if (vol->v_subdisks[i].sd_disk == tdisk)
1700 					break;
1701 			}
1702 			if (i >= vol->v_disks_count)
1703 				continue;
1704 		}
1705 
1706 		pv = (struct g_raid_md_promise_pervolume *)vol->v_md_data;
1707 		pv->pv_generation++;
1708 
1709 		meta = malloc(sizeof(*meta), M_MD_PROMISE, M_WAITOK | M_ZERO);
1710 		if (pv->pv_meta != NULL)
1711 			memcpy(meta, pv->pv_meta, sizeof(*meta));
1712 		memcpy(meta->promise_id, PROMISE_MAGIC,
1713 		    sizeof(PROMISE_MAGIC) - 1);
1714 		meta->dummy_0 = 0x00020000;
1715 		meta->integrity = PROMISE_I_VALID;
1716 
1717 		meta->generation = pv->pv_generation;
1718 		meta->status = PROMISE_S_VALID | PROMISE_S_ONLINE |
1719 		    PROMISE_S_INITED | PROMISE_S_READY;
1720 		if (vol->v_state <= G_RAID_VOLUME_S_DEGRADED)
1721 			meta->status |= PROMISE_S_DEGRADED;
1722 		if (vol->v_dirty)
1723 			meta->status |= PROMISE_S_MARKED; /* XXX: INVENTED! */
1724 		if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID0 ||
1725 		    vol->v_raid_level == G_RAID_VOLUME_RL_SINGLE)
1726 			meta->type = PROMISE_T_RAID0;
1727 		else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1 ||
1728 		    vol->v_raid_level == G_RAID_VOLUME_RL_RAID1E)
1729 			meta->type = PROMISE_T_RAID1;
1730 		else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID3)
1731 			meta->type = PROMISE_T_RAID3;
1732 		else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID5)
1733 			meta->type = PROMISE_T_RAID5;
1734 		else if (vol->v_raid_level == G_RAID_VOLUME_RL_CONCAT)
1735 			meta->type = PROMISE_T_SPAN;
1736 		else
1737 			meta->type = PROMISE_T_JBOD;
1738 		meta->total_disks = vol->v_disks_count;
1739 		meta->stripe_shift = ffs(vol->v_strip_size / 1024);
1740 		meta->array_width = vol->v_disks_count;
1741 		if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1 ||
1742 		    vol->v_raid_level == G_RAID_VOLUME_RL_RAID1E)
1743 			meta->array_width /= 2;
1744 		meta->array_number = vol->v_global_id;
1745 		meta->total_sectors = vol->v_mediasize / vol->v_sectorsize;
1746 		meta->total_sectors_high =
1747 		    (vol->v_mediasize / vol->v_sectorsize) >> 32;
1748 		meta->cylinders = meta->total_sectors / (255 * 63) - 1;
1749 		meta->heads = 254;
1750 		meta->sectors = 63;
1751 		meta->volume_id = pv->pv_id;
1752 		rebuild_lba64 = UINT64_MAX;
1753 		rebuild = 0;
1754 		for (i = 0; i < vol->v_disks_count; i++) {
1755 			sd = &vol->v_subdisks[i];
1756 			/* For RAID0+1 we need to translate order. */
1757 			pos = promise_meta_translate_disk(vol, i);
1758 			meta->disks[pos].flags = PROMISE_F_VALID |
1759 			    PROMISE_F_ASSIGNED;
1760 			if (sd->sd_state == G_RAID_SUBDISK_S_NONE) {
1761 				meta->disks[pos].flags |= 0;
1762 			} else if (sd->sd_state == G_RAID_SUBDISK_S_FAILED) {
1763 				meta->disks[pos].flags |=
1764 				    PROMISE_F_DOWN | PROMISE_F_REDIR;
1765 			} else if (sd->sd_state <= G_RAID_SUBDISK_S_REBUILD) {
1766 				meta->disks[pos].flags |=
1767 				    PROMISE_F_ONLINE | PROMISE_F_REDIR;
1768 				if (sd->sd_state == G_RAID_SUBDISK_S_REBUILD) {
1769 					rebuild_lba64 = MIN(rebuild_lba64,
1770 					    sd->sd_rebuild_pos / 512);
1771 				} else
1772 					rebuild_lba64 = 0;
1773 				rebuild = 1;
1774 			} else {
1775 				meta->disks[pos].flags |= PROMISE_F_ONLINE;
1776 				if (sd->sd_state < G_RAID_SUBDISK_S_ACTIVE) {
1777 					meta->status |= PROMISE_S_MARKED;
1778 					if (sd->sd_state == G_RAID_SUBDISK_S_RESYNC) {
1779 						rebuild_lba64 = MIN(rebuild_lba64,
1780 						    sd->sd_rebuild_pos / 512);
1781 					} else
1782 						rebuild_lba64 = 0;
1783 				}
1784 			}
1785 			if (pv->pv_meta != NULL) {
1786 				meta->disks[pos].id = pv->pv_meta->disks[pos].id;
1787 			} else {
1788 				meta->disks[pos].number = i * 2;
1789 				arc4rand(&meta->disks[pos].id,
1790 				    sizeof(meta->disks[pos].id), 0);
1791 			}
1792 		}
1793 		promise_meta_put_name(meta, vol->v_name);
1794 
1795 		/* Try to mimic AMD BIOS rebuild/resync behavior. */
1796 		if (rebuild_lba64 != UINT64_MAX) {
1797 			if (rebuild)
1798 				meta->magic_3 = 0x03040010UL; /* Rebuild? */
1799 			else
1800 				meta->magic_3 = 0x03040008UL; /* Resync? */
1801 			/* Translate from per-disk to per-volume LBA. */
1802 			if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1 ||
1803 			    vol->v_raid_level == G_RAID_VOLUME_RL_RAID1E) {
1804 				rebuild_lba64 *= meta->array_width;
1805 			} else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID3 ||
1806 			    vol->v_raid_level == G_RAID_VOLUME_RL_RAID5) {
1807 				rebuild_lba64 *= meta->array_width - 1;
1808 			} else
1809 				rebuild_lba64 = 0;
1810 		} else
1811 			meta->magic_3 = 0x03000000UL;
1812 		meta->rebuild_lba64 = rebuild_lba64;
1813 		meta->magic_4 = 0x04010101UL;
1814 
1815 		/* Replace per-volume metadata with new. */
1816 		if (pv->pv_meta != NULL)
1817 			free(pv->pv_meta, M_MD_PROMISE);
1818 		pv->pv_meta = meta;
1819 
1820 		/* Copy new metadata to the disks, adding or replacing old. */
1821 		for (i = 0; i < vol->v_disks_count; i++) {
1822 			sd = &vol->v_subdisks[i];
1823 			disk = sd->sd_disk;
1824 			if (disk == NULL)
1825 				continue;
1826 			/* For RAID0+1 we need to translate order. */
1827 			pos = promise_meta_translate_disk(vol, i);
1828 			pd = (struct g_raid_md_promise_perdisk *)disk->d_md_data;
1829 			for (j = 0; j < pd->pd_subdisks; j++) {
1830 				if (pd->pd_meta[j]->volume_id == meta->volume_id)
1831 					break;
1832 			}
1833 			if (j == pd->pd_subdisks)
1834 				pd->pd_subdisks++;
1835 			if (pd->pd_meta[j] != NULL)
1836 				free(pd->pd_meta[j], M_MD_PROMISE);
1837 			pd->pd_meta[j] = promise_meta_copy(meta);
1838 			pd->pd_meta[j]->disk = meta->disks[pos];
1839 			pd->pd_meta[j]->disk.number = pos;
1840 			pd->pd_meta[j]->disk_offset = sd->sd_offset / 512;
1841 			pd->pd_meta[j]->disk_sectors = sd->sd_size / 512;
1842 			if (sd->sd_state == G_RAID_SUBDISK_S_REBUILD) {
1843 				pd->pd_meta[j]->rebuild_lba =
1844 				    sd->sd_rebuild_pos / 512;
1845 			} else if (sd->sd_state < G_RAID_SUBDISK_S_REBUILD)
1846 				pd->pd_meta[j]->rebuild_lba = 0;
1847 			else
1848 				pd->pd_meta[j]->rebuild_lba = UINT32_MAX;
1849 			pd->pd_updated = 1;
1850 		}
1851 	}
1852 
1853 	TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
1854 		pd = (struct g_raid_md_promise_perdisk *)disk->d_md_data;
1855 		if (disk->d_state != G_RAID_DISK_S_ACTIVE)
1856 			continue;
1857 		if (!pd->pd_updated)
1858 			continue;
1859 		G_RAID_DEBUG(1, "Writing Promise metadata to %s",
1860 		    g_raid_get_diskname(disk));
1861 		for (i = 0; i < pd->pd_subdisks; i++)
1862 			g_raid_md_promise_print(pd->pd_meta[i]);
1863 		promise_meta_write(disk->d_consumer,
1864 		    pd->pd_meta, pd->pd_subdisks);
1865 		pd->pd_updated = 0;
1866 	}
1867 
1868 	return (0);
1869 }
1870 
1871 static int
1872 g_raid_md_fail_disk_promise(struct g_raid_md_object *md,
1873     struct g_raid_subdisk *tsd, struct g_raid_disk *tdisk)
1874 {
1875 	struct g_raid_softc *sc;
1876 	struct g_raid_md_promise_perdisk *pd;
1877 	struct g_raid_subdisk *sd;
1878 	int i, pos;
1879 
1880 	sc = md->mdo_softc;
1881 	pd = (struct g_raid_md_promise_perdisk *)tdisk->d_md_data;
1882 
1883 	/* We can't fail disk that is not a part of array now. */
1884 	if (tdisk->d_state != G_RAID_DISK_S_ACTIVE)
1885 		return (-1);
1886 
1887 	/*
1888 	 * Mark disk as failed in metadata and try to write that metadata
1889 	 * to the disk itself to prevent it's later resurrection as STALE.
1890 	 */
1891 	if (pd->pd_subdisks > 0 && tdisk->d_consumer != NULL)
1892 		G_RAID_DEBUG(1, "Writing Promise metadata to %s",
1893 		    g_raid_get_diskname(tdisk));
1894 	for (i = 0; i < pd->pd_subdisks; i++) {
1895 		pd->pd_meta[i]->disk.flags |=
1896 		    PROMISE_F_DOWN | PROMISE_F_REDIR;
1897 		pos = pd->pd_meta[i]->disk.number;
1898 		if (pos >= 0 && pos < PROMISE_MAX_DISKS) {
1899 			pd->pd_meta[i]->disks[pos].flags |=
1900 			    PROMISE_F_DOWN | PROMISE_F_REDIR;
1901 		}
1902 		g_raid_md_promise_print(pd->pd_meta[i]);
1903 	}
1904 	if (tdisk->d_consumer != NULL)
1905 		promise_meta_write(tdisk->d_consumer,
1906 		    pd->pd_meta, pd->pd_subdisks);
1907 
1908 	/* Change states. */
1909 	g_raid_change_disk_state(tdisk, G_RAID_DISK_S_FAILED);
1910 	TAILQ_FOREACH(sd, &tdisk->d_subdisks, sd_next) {
1911 		g_raid_change_subdisk_state(sd,
1912 		    G_RAID_SUBDISK_S_FAILED);
1913 		g_raid_event_send(sd, G_RAID_SUBDISK_E_FAILED,
1914 		    G_RAID_EVENT_SUBDISK);
1915 	}
1916 
1917 	/* Write updated metadata to remaining disks. */
1918 	g_raid_md_write_promise(md, NULL, NULL, tdisk);
1919 
1920 	g_raid_md_promise_refill(sc);
1921 	return (0);
1922 }
1923 
1924 static int
1925 g_raid_md_free_disk_promise(struct g_raid_md_object *md,
1926     struct g_raid_disk *disk)
1927 {
1928 	struct g_raid_md_promise_perdisk *pd;
1929 	int i;
1930 
1931 	pd = (struct g_raid_md_promise_perdisk *)disk->d_md_data;
1932 	for (i = 0; i < pd->pd_subdisks; i++) {
1933 		if (pd->pd_meta[i] != NULL) {
1934 			free(pd->pd_meta[i], M_MD_PROMISE);
1935 			pd->pd_meta[i] = NULL;
1936 		}
1937 	}
1938 	free(pd, M_MD_PROMISE);
1939 	disk->d_md_data = NULL;
1940 	return (0);
1941 }
1942 
1943 static int
1944 g_raid_md_free_volume_promise(struct g_raid_md_object *md,
1945     struct g_raid_volume *vol)
1946 {
1947 	struct g_raid_md_promise_pervolume *pv;
1948 
1949 	pv = (struct g_raid_md_promise_pervolume *)vol->v_md_data;
1950 	if (pv && pv->pv_meta != NULL) {
1951 		free(pv->pv_meta, M_MD_PROMISE);
1952 		pv->pv_meta = NULL;
1953 	}
1954 	if (pv && !pv->pv_started) {
1955 		pv->pv_started = 1;
1956 		callout_stop(&pv->pv_start_co);
1957 	}
1958 	free(pv, M_MD_PROMISE);
1959 	vol->v_md_data = NULL;
1960 	return (0);
1961 }
1962 
1963 static int
1964 g_raid_md_free_promise(struct g_raid_md_object *md)
1965 {
1966 
1967 	return (0);
1968 }
1969 
1970 G_RAID_MD_DECLARE(g_raid_md_promise);
1971