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1 /*
2 * mdadm - Intel(R) Matrix Storage Manager Support
3 *
4 * Copyright (C) 2002-2008 Intel Corporation
5 *
6 * This program is free software; you can redistribute it and/or modify it
7 * under the terms and conditions of the GNU General Public License,
8 * version 2, as published by the Free Software Foundation.
9 *
10 * This program is distributed in the hope it will be useful, but WITHOUT
11 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
12 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
13 * more details.
14 *
15 * You should have received a copy of the GNU General Public License along with
16 * this program; if not, write to the Free Software Foundation, Inc.,
17 * 51 Franklin St - Fifth Floor, Boston, MA 02110-1301 USA.
18 */
19
20 #define HAVE_STDINT_H 1
21 #include "mdadm.h"
22 #include "mdmon.h"
23 #include "sha1.h"
24 #include "platform-intel.h"
25 #include <values.h>
26 #include <scsi/sg.h>
27 #include <ctype.h>
28 #include <dirent.h>
29
30 /* MPB == Metadata Parameter Block */
31 #define MPB_SIGNATURE "Intel Raid ISM Cfg Sig. "
32 #define MPB_SIG_LEN (strlen(MPB_SIGNATURE))
33 #define MPB_VERSION_RAID0 "1.0.00"
34 #define MPB_VERSION_RAID1 "1.1.00"
35 #define MPB_VERSION_MANY_VOLUMES_PER_ARRAY "1.2.00"
36 #define MPB_VERSION_3OR4_DISK_ARRAY "1.2.01"
37 #define MPB_VERSION_RAID5 "1.2.02"
38 #define MPB_VERSION_5OR6_DISK_ARRAY "1.2.04"
39 #define MPB_VERSION_CNG "1.2.06"
40 #define MPB_VERSION_ATTRIBS "1.3.00"
41 #define MAX_SIGNATURE_LENGTH 32
42 #define MAX_RAID_SERIAL_LEN 16
43
44 #define MPB_ATTRIB_CHECKSUM_VERIFY __cpu_to_le32(0x80000000)
45 #define MPB_ATTRIB_PM __cpu_to_le32(0x40000000)
46 #define MPB_ATTRIB_2TB __cpu_to_le32(0x20000000)
47 #define MPB_ATTRIB_RAID0 __cpu_to_le32(0x00000001)
48 #define MPB_ATTRIB_RAID1 __cpu_to_le32(0x00000002)
49 #define MPB_ATTRIB_RAID10 __cpu_to_le32(0x00000004)
50 #define MPB_ATTRIB_RAID1E __cpu_to_le32(0x00000008)
51 #define MPB_ATTRIB_RAID5 __cpu_to_le32(0x00000010)
52 #define MPB_ATTRIB_RAIDCNG __cpu_to_le32(0x00000020)
53
54 #define MPB_SECTOR_CNT 418
55 #define IMSM_RESERVED_SECTORS 4096
56 #define SECT_PER_MB_SHIFT 11
57
58 /* Disk configuration info. */
59 #define IMSM_MAX_DEVICES 255
60 struct imsm_disk {
61 __u8 serial[MAX_RAID_SERIAL_LEN];/* 0xD8 - 0xE7 ascii serial number */
62 __u32 total_blocks; /* 0xE8 - 0xEB total blocks */
63 __u32 scsi_id; /* 0xEC - 0xEF scsi ID */
64 #define SPARE_DISK __cpu_to_le32(0x01) /* Spare */
65 #define CONFIGURED_DISK __cpu_to_le32(0x02) /* Member of some RaidDev */
66 #define FAILED_DISK __cpu_to_le32(0x04) /* Permanent failure */
67 __u32 status; /* 0xF0 - 0xF3 */
68 __u32 owner_cfg_num; /* which config 0,1,2... owns this disk */
69 #define IMSM_DISK_FILLERS 4
70 __u32 filler[IMSM_DISK_FILLERS]; /* 0xF4 - 0x107 MPB_DISK_FILLERS for future expansion */
71 };
72
73 /* RAID map configuration infos. */
74 struct imsm_map {
75 __u32 pba_of_lba0; /* start address of partition */
76 __u32 blocks_per_member;/* blocks per member */
77 __u32 num_data_stripes; /* number of data stripes */
78 __u16 blocks_per_strip;
79 __u8 map_state; /* Normal, Uninitialized, Degraded, Failed */
80 #define IMSM_T_STATE_NORMAL 0
81 #define IMSM_T_STATE_UNINITIALIZED 1
82 #define IMSM_T_STATE_DEGRADED 2
83 #define IMSM_T_STATE_FAILED 3
84 __u8 raid_level;
85 #define IMSM_T_RAID0 0
86 #define IMSM_T_RAID1 1
87 #define IMSM_T_RAID5 5 /* since metadata version 1.2.02 ? */
88 __u8 num_members; /* number of member disks */
89 __u8 num_domains; /* number of parity domains */
90 __u8 failed_disk_num; /* valid only when state is degraded */
91 __u8 ddf;
92 __u32 filler[7]; /* expansion area */
93 #define IMSM_ORD_REBUILD (1 << 24)
94 __u32 disk_ord_tbl[1]; /* disk_ord_tbl[num_members],
95 * top byte contains some flags
96 */
97 } __attribute__ ((packed));
98
99 struct imsm_vol {
100 __u32 curr_migr_unit;
101 __u32 checkpoint_id; /* id to access curr_migr_unit */
102 __u8 migr_state; /* Normal or Migrating */
103 #define MIGR_INIT 0
104 #define MIGR_REBUILD 1
105 #define MIGR_VERIFY 2 /* analagous to echo check > sync_action */
106 #define MIGR_GEN_MIGR 3
107 #define MIGR_STATE_CHANGE 4
108 #define MIGR_REPAIR 5
109 __u8 migr_type; /* Initializing, Rebuilding, ... */
110 __u8 dirty;
111 __u8 fs_state; /* fast-sync state for CnG (0xff == disabled) */
112 __u16 verify_errors; /* number of mismatches */
113 __u16 bad_blocks; /* number of bad blocks during verify */
114 __u32 filler[4];
115 struct imsm_map map[1];
116 /* here comes another one if migr_state */
117 } __attribute__ ((packed));
118
119 struct imsm_dev {
120 __u8 volume[MAX_RAID_SERIAL_LEN];
121 __u32 size_low;
122 __u32 size_high;
123 #define DEV_BOOTABLE __cpu_to_le32(0x01)
124 #define DEV_BOOT_DEVICE __cpu_to_le32(0x02)
125 #define DEV_READ_COALESCING __cpu_to_le32(0x04)
126 #define DEV_WRITE_COALESCING __cpu_to_le32(0x08)
127 #define DEV_LAST_SHUTDOWN_DIRTY __cpu_to_le32(0x10)
128 #define DEV_HIDDEN_AT_BOOT __cpu_to_le32(0x20)
129 #define DEV_CURRENTLY_HIDDEN __cpu_to_le32(0x40)
130 #define DEV_VERIFY_AND_FIX __cpu_to_le32(0x80)
131 #define DEV_MAP_STATE_UNINIT __cpu_to_le32(0x100)
132 #define DEV_NO_AUTO_RECOVERY __cpu_to_le32(0x200)
133 #define DEV_CLONE_N_GO __cpu_to_le32(0x400)
134 #define DEV_CLONE_MAN_SYNC __cpu_to_le32(0x800)
135 #define DEV_CNG_MASTER_DISK_NUM __cpu_to_le32(0x1000)
136 __u32 status; /* Persistent RaidDev status */
137 __u32 reserved_blocks; /* Reserved blocks at beginning of volume */
138 __u8 migr_priority;
139 __u8 num_sub_vols;
140 __u8 tid;
141 __u8 cng_master_disk;
142 __u16 cache_policy;
143 __u8 cng_state;
144 __u8 cng_sub_state;
145 #define IMSM_DEV_FILLERS 10
146 __u32 filler[IMSM_DEV_FILLERS];
147 struct imsm_vol vol;
148 } __attribute__ ((packed));
149
150 struct imsm_super {
151 __u8 sig[MAX_SIGNATURE_LENGTH]; /* 0x00 - 0x1F */
152 __u32 check_sum; /* 0x20 - 0x23 MPB Checksum */
153 __u32 mpb_size; /* 0x24 - 0x27 Size of MPB */
154 __u32 family_num; /* 0x28 - 0x2B Checksum from first time this config was written */
155 __u32 generation_num; /* 0x2C - 0x2F Incremented each time this array's MPB is written */
156 __u32 error_log_size; /* 0x30 - 0x33 in bytes */
157 __u32 attributes; /* 0x34 - 0x37 */
158 __u8 num_disks; /* 0x38 Number of configured disks */
159 __u8 num_raid_devs; /* 0x39 Number of configured volumes */
160 __u8 error_log_pos; /* 0x3A */
161 __u8 fill[1]; /* 0x3B */
162 __u32 cache_size; /* 0x3c - 0x40 in mb */
163 __u32 orig_family_num; /* 0x40 - 0x43 original family num */
164 __u32 pwr_cycle_count; /* 0x44 - 0x47 simulated power cycle count for array */
165 __u32 bbm_log_size; /* 0x48 - 0x4B - size of bad Block Mgmt Log in bytes */
166 #define IMSM_FILLERS 35
167 __u32 filler[IMSM_FILLERS]; /* 0x4C - 0xD7 RAID_MPB_FILLERS */
168 struct imsm_disk disk[1]; /* 0xD8 diskTbl[numDisks] */
169 /* here comes imsm_dev[num_raid_devs] */
170 /* here comes BBM logs */
171 } __attribute__ ((packed));
172
173 #define BBM_LOG_MAX_ENTRIES 254
174
175 struct bbm_log_entry {
176 __u64 defective_block_start;
177 #define UNREADABLE 0xFFFFFFFF
178 __u32 spare_block_offset;
179 __u16 remapped_marked_count;
180 __u16 disk_ordinal;
181 } __attribute__ ((__packed__));
182
183 struct bbm_log {
184 __u32 signature; /* 0xABADB10C */
185 __u32 entry_count;
186 __u32 reserved_spare_block_count; /* 0 */
187 __u32 reserved; /* 0xFFFF */
188 __u64 first_spare_lba;
189 struct bbm_log_entry mapped_block_entries[BBM_LOG_MAX_ENTRIES];
190 } __attribute__ ((__packed__));
191
192
193 #ifndef MDASSEMBLE
194 static char *map_state_str[] = { "normal", "uninitialized", "degraded", "failed" };
195 #endif
196
197 static __u8 migr_type(struct imsm_dev *dev)
198 {
199 if (dev->vol.migr_type == MIGR_VERIFY &&
200 dev->status & DEV_VERIFY_AND_FIX)
201 return MIGR_REPAIR;
202 else
203 return dev->vol.migr_type;
204 }
205
206 static void set_migr_type(struct imsm_dev *dev, __u8 migr_type)
207 {
208 /* for compatibility with older oroms convert MIGR_REPAIR, into
209 * MIGR_VERIFY w/ DEV_VERIFY_AND_FIX status
210 */
211 if (migr_type == MIGR_REPAIR) {
212 dev->vol.migr_type = MIGR_VERIFY;
213 dev->status |= DEV_VERIFY_AND_FIX;
214 } else {
215 dev->vol.migr_type = migr_type;
216 dev->status &= ~DEV_VERIFY_AND_FIX;
217 }
218 }
219
220 static unsigned int sector_count(__u32 bytes)
221 {
222 return ((bytes + (512-1)) & (~(512-1))) / 512;
223 }
224
225 static unsigned int mpb_sectors(struct imsm_super *mpb)
226 {
227 return sector_count(__le32_to_cpu(mpb->mpb_size));
228 }
229
230 struct intel_dev {
231 struct imsm_dev *dev;
232 struct intel_dev *next;
233 unsigned index;
234 };
235
236 /* internal representation of IMSM metadata */
237 struct intel_super {
238 union {
239 void *buf; /* O_DIRECT buffer for reading/writing metadata */
240 struct imsm_super *anchor; /* immovable parameters */
241 };
242 size_t len; /* size of the 'buf' allocation */
243 void *next_buf; /* for realloc'ing buf from the manager */
244 size_t next_len;
245 int updates_pending; /* count of pending updates for mdmon */
246 int current_vol; /* index of raid device undergoing creation */
247 __u32 create_offset; /* common start for 'current_vol' */
248 __u32 random; /* random data for seeding new family numbers */
249 struct intel_dev *devlist;
250 struct dl {
251 struct dl *next;
252 int index;
253 __u8 serial[MAX_RAID_SERIAL_LEN];
254 int major, minor;
255 char *devname;
256 struct imsm_disk disk;
257 int fd;
258 int extent_cnt;
259 struct extent *e; /* for determining freespace @ create */
260 int raiddisk; /* slot to fill in autolayout */
261 } *disks;
262 struct dl *add; /* list of disks to add while mdmon active */
263 struct dl *missing; /* disks removed while we weren't looking */
264 struct bbm_log *bbm_log;
265 const char *hba; /* device path of the raid controller for this metadata */
266 const struct imsm_orom *orom; /* platform firmware support */
267 struct intel_super *next; /* (temp) list for disambiguating family_num */
268 };
269
270 struct intel_disk {
271 struct imsm_disk disk;
272 #define IMSM_UNKNOWN_OWNER (-1)
273 int owner;
274 struct intel_disk *next;
275 };
276
277 struct extent {
278 unsigned long long start, size;
279 };
280
281 /* definition of messages passed to imsm_process_update */
282 enum imsm_update_type {
283 update_activate_spare,
284 update_create_array,
285 update_kill_array,
286 update_rename_array,
287 update_add_disk,
288 };
289
290 struct imsm_update_activate_spare {
291 enum imsm_update_type type;
292 struct dl *dl;
293 int slot;
294 int array;
295 struct imsm_update_activate_spare *next;
296 };
297
298 struct disk_info {
299 __u8 serial[MAX_RAID_SERIAL_LEN];
300 };
301
302 struct imsm_update_create_array {
303 enum imsm_update_type type;
304 int dev_idx;
305 struct imsm_dev dev;
306 };
307
308 struct imsm_update_kill_array {
309 enum imsm_update_type type;
310 int dev_idx;
311 };
312
313 struct imsm_update_rename_array {
314 enum imsm_update_type type;
315 __u8 name[MAX_RAID_SERIAL_LEN];
316 int dev_idx;
317 };
318
319 struct imsm_update_add_disk {
320 enum imsm_update_type type;
321 };
322
323 static struct supertype *match_metadata_desc_imsm(char *arg)
324 {
325 struct supertype *st;
326
327 if (strcmp(arg, "imsm") != 0 &&
328 strcmp(arg, "default") != 0
329 )
330 return NULL;
331
332 st = malloc(sizeof(*st));
333 if (!st)
334 return NULL;
335 memset(st, 0, sizeof(*st));
336 st->ss = &super_imsm;
337 st->max_devs = IMSM_MAX_DEVICES;
338 st->minor_version = 0;
339 st->sb = NULL;
340 return st;
341 }
342
343 #ifndef MDASSEMBLE
344 static __u8 *get_imsm_version(struct imsm_super *mpb)
345 {
346 return &mpb->sig[MPB_SIG_LEN];
347 }
348 #endif
349
350 /* retrieve a disk directly from the anchor when the anchor is known to be
351 * up-to-date, currently only at load time
352 */
353 static struct imsm_disk *__get_imsm_disk(struct imsm_super *mpb, __u8 index)
354 {
355 if (index >= mpb->num_disks)
356 return NULL;
357 return &mpb->disk[index];
358 }
359
360 /* retrieve a disk from the parsed metadata */
361 static struct imsm_disk *get_imsm_disk(struct intel_super *super, __u8 index)
362 {
363 struct dl *d;
364
365 for (d = super->disks; d; d = d->next)
366 if (d->index == index)
367 return &d->disk;
368
369 return NULL;
370 }
371
372 /* generate a checksum directly from the anchor when the anchor is known to be
373 * up-to-date, currently only at load or write_super after coalescing
374 */
375 static __u32 __gen_imsm_checksum(struct imsm_super *mpb)
376 {
377 __u32 end = mpb->mpb_size / sizeof(end);
378 __u32 *p = (__u32 *) mpb;
379 __u32 sum = 0;
380
381 while (end--) {
382 sum += __le32_to_cpu(*p);
383 p++;
384 }
385
386 return sum - __le32_to_cpu(mpb->check_sum);
387 }
388
389 static size_t sizeof_imsm_map(struct imsm_map *map)
390 {
391 return sizeof(struct imsm_map) + sizeof(__u32) * (map->num_members - 1);
392 }
393
394 struct imsm_map *get_imsm_map(struct imsm_dev *dev, int second_map)
395 {
396 struct imsm_map *map = &dev->vol.map[0];
397
398 if (second_map && !dev->vol.migr_state)
399 return NULL;
400 else if (second_map) {
401 void *ptr = map;
402
403 return ptr + sizeof_imsm_map(map);
404 } else
405 return map;
406
407 }
408
409 /* return the size of the device.
410 * migr_state increases the returned size if map[0] were to be duplicated
411 */
412 static size_t sizeof_imsm_dev(struct imsm_dev *dev, int migr_state)
413 {
414 size_t size = sizeof(*dev) - sizeof(struct imsm_map) +
415 sizeof_imsm_map(get_imsm_map(dev, 0));
416
417 /* migrating means an additional map */
418 if (dev->vol.migr_state)
419 size += sizeof_imsm_map(get_imsm_map(dev, 1));
420 else if (migr_state)
421 size += sizeof_imsm_map(get_imsm_map(dev, 0));
422
423 return size;
424 }
425
426 #ifndef MDASSEMBLE
427 /* retrieve disk serial number list from a metadata update */
428 static struct disk_info *get_disk_info(struct imsm_update_create_array *update)
429 {
430 void *u = update;
431 struct disk_info *inf;
432
433 inf = u + sizeof(*update) - sizeof(struct imsm_dev) +
434 sizeof_imsm_dev(&update->dev, 0);
435
436 return inf;
437 }
438 #endif
439
440 static struct imsm_dev *__get_imsm_dev(struct imsm_super *mpb, __u8 index)
441 {
442 int offset;
443 int i;
444 void *_mpb = mpb;
445
446 if (index >= mpb->num_raid_devs)
447 return NULL;
448
449 /* devices start after all disks */
450 offset = ((void *) &mpb->disk[mpb->num_disks]) - _mpb;
451
452 for (i = 0; i <= index; i++)
453 if (i == index)
454 return _mpb + offset;
455 else
456 offset += sizeof_imsm_dev(_mpb + offset, 0);
457
458 return NULL;
459 }
460
461 static struct imsm_dev *get_imsm_dev(struct intel_super *super, __u8 index)
462 {
463 struct intel_dev *dv;
464
465 if (index >= super->anchor->num_raid_devs)
466 return NULL;
467 for (dv = super->devlist; dv; dv = dv->next)
468 if (dv->index == index)
469 return dv->dev;
470 return NULL;
471 }
472
473 static __u32 get_imsm_ord_tbl_ent(struct imsm_dev *dev, int slot)
474 {
475 struct imsm_map *map;
476
477 if (dev->vol.migr_state)
478 map = get_imsm_map(dev, 1);
479 else
480 map = get_imsm_map(dev, 0);
481
482 /* top byte identifies disk under rebuild */
483 return __le32_to_cpu(map->disk_ord_tbl[slot]);
484 }
485
486 #define ord_to_idx(ord) (((ord) << 8) >> 8)
487 static __u32 get_imsm_disk_idx(struct imsm_dev *dev, int slot)
488 {
489 __u32 ord = get_imsm_ord_tbl_ent(dev, slot);
490
491 return ord_to_idx(ord);
492 }
493
494 static void set_imsm_ord_tbl_ent(struct imsm_map *map, int slot, __u32 ord)
495 {
496 map->disk_ord_tbl[slot] = __cpu_to_le32(ord);
497 }
498
499 static int get_imsm_disk_slot(struct imsm_map *map, unsigned idx)
500 {
501 int slot;
502 __u32 ord;
503
504 for (slot = 0; slot < map->num_members; slot++) {
505 ord = __le32_to_cpu(map->disk_ord_tbl[slot]);
506 if (ord_to_idx(ord) == idx)
507 return slot;
508 }
509
510 return -1;
511 }
512
513 static int get_imsm_raid_level(struct imsm_map *map)
514 {
515 if (map->raid_level == 1) {
516 if (map->num_members == 2)
517 return 1;
518 else
519 return 10;
520 }
521
522 return map->raid_level;
523 }
524
525 static int cmp_extent(const void *av, const void *bv)
526 {
527 const struct extent *a = av;
528 const struct extent *b = bv;
529 if (a->start < b->start)
530 return -1;
531 if (a->start > b->start)
532 return 1;
533 return 0;
534 }
535
536 static int count_memberships(struct dl *dl, struct intel_super *super)
537 {
538 int memberships = 0;
539 int i;
540
541 for (i = 0; i < super->anchor->num_raid_devs; i++) {
542 struct imsm_dev *dev = get_imsm_dev(super, i);
543 struct imsm_map *map = get_imsm_map(dev, 0);
544
545 if (get_imsm_disk_slot(map, dl->index) >= 0)
546 memberships++;
547 }
548
549 return memberships;
550 }
551
552 static struct extent *get_extents(struct intel_super *super, struct dl *dl)
553 {
554 /* find a list of used extents on the given physical device */
555 struct extent *rv, *e;
556 int i;
557 int memberships = count_memberships(dl, super);
558 __u32 reservation = MPB_SECTOR_CNT + IMSM_RESERVED_SECTORS;
559
560 rv = malloc(sizeof(struct extent) * (memberships + 1));
561 if (!rv)
562 return NULL;
563 e = rv;
564
565 for (i = 0; i < super->anchor->num_raid_devs; i++) {
566 struct imsm_dev *dev = get_imsm_dev(super, i);
567 struct imsm_map *map = get_imsm_map(dev, 0);
568
569 if (get_imsm_disk_slot(map, dl->index) >= 0) {
570 e->start = __le32_to_cpu(map->pba_of_lba0);
571 e->size = __le32_to_cpu(map->blocks_per_member);
572 e++;
573 }
574 }
575 qsort(rv, memberships, sizeof(*rv), cmp_extent);
576
577 /* determine the start of the metadata
578 * when no raid devices are defined use the default
579 * ...otherwise allow the metadata to truncate the value
580 * as is the case with older versions of imsm
581 */
582 if (memberships) {
583 struct extent *last = &rv[memberships - 1];
584 __u32 remainder;
585
586 remainder = __le32_to_cpu(dl->disk.total_blocks) -
587 (last->start + last->size);
588 /* round down to 1k block to satisfy precision of the kernel
589 * 'size' interface
590 */
591 remainder &= ~1UL;
592 /* make sure remainder is still sane */
593 if (remainder < (unsigned)ROUND_UP(super->len, 512) >> 9)
594 remainder = ROUND_UP(super->len, 512) >> 9;
595 if (reservation > remainder)
596 reservation = remainder;
597 }
598 e->start = __le32_to_cpu(dl->disk.total_blocks) - reservation;
599 e->size = 0;
600 return rv;
601 }
602
603 /* try to determine how much space is reserved for metadata from
604 * the last get_extents() entry, otherwise fallback to the
605 * default
606 */
607 static __u32 imsm_reserved_sectors(struct intel_super *super, struct dl *dl)
608 {
609 struct extent *e;
610 int i;
611 __u32 rv;
612
613 /* for spares just return a minimal reservation which will grow
614 * once the spare is picked up by an array
615 */
616 if (dl->index == -1)
617 return MPB_SECTOR_CNT;
618
619 e = get_extents(super, dl);
620 if (!e)
621 return MPB_SECTOR_CNT + IMSM_RESERVED_SECTORS;
622
623 /* scroll to last entry */
624 for (i = 0; e[i].size; i++)
625 continue;
626
627 rv = __le32_to_cpu(dl->disk.total_blocks) - e[i].start;
628
629 free(e);
630
631 return rv;
632 }
633
634 static int is_spare(struct imsm_disk *disk)
635 {
636 return (disk->status & SPARE_DISK) == SPARE_DISK;
637 }
638
639 static int is_configured(struct imsm_disk *disk)
640 {
641 return (disk->status & CONFIGURED_DISK) == CONFIGURED_DISK;
642 }
643
644 static int is_failed(struct imsm_disk *disk)
645 {
646 return (disk->status & FAILED_DISK) == FAILED_DISK;
647 }
648
649 #ifndef MDASSEMBLE
650 static __u64 blocks_per_migr_unit(struct imsm_dev *dev);
651
652 static void print_imsm_dev(struct imsm_dev *dev, char *uuid, int disk_idx)
653 {
654 __u64 sz;
655 int slot, i;
656 struct imsm_map *map = get_imsm_map(dev, 0);
657 __u32 ord;
658
659 printf("\n");
660 printf("[%.16s]:\n", dev->volume);
661 printf(" UUID : %s\n", uuid);
662 printf(" RAID Level : %d\n", get_imsm_raid_level(map));
663 printf(" Members : %d\n", map->num_members);
664 printf(" Slots : [");
665 for (i = 0; i < map->num_members; i++) {
666 ord = get_imsm_ord_tbl_ent(dev, i);
667 printf("%s", ord & IMSM_ORD_REBUILD ? "_" : "U");
668 }
669 printf("]\n");
670 slot = get_imsm_disk_slot(map, disk_idx);
671 if (slot >= 0) {
672 ord = get_imsm_ord_tbl_ent(dev, slot);
673 printf(" This Slot : %d%s\n", slot,
674 ord & IMSM_ORD_REBUILD ? " (out-of-sync)" : "");
675 } else
676 printf(" This Slot : ?\n");
677 sz = __le32_to_cpu(dev->size_high);
678 sz <<= 32;
679 sz += __le32_to_cpu(dev->size_low);
680 printf(" Array Size : %llu%s\n", (unsigned long long)sz,
681 human_size(sz * 512));
682 sz = __le32_to_cpu(map->blocks_per_member);
683 printf(" Per Dev Size : %llu%s\n", (unsigned long long)sz,
684 human_size(sz * 512));
685 printf(" Sector Offset : %u\n",
686 __le32_to_cpu(map->pba_of_lba0));
687 printf(" Num Stripes : %u\n",
688 __le32_to_cpu(map->num_data_stripes));
689 printf(" Chunk Size : %u KiB\n",
690 __le16_to_cpu(map->blocks_per_strip) / 2);
691 printf(" Reserved : %d\n", __le32_to_cpu(dev->reserved_blocks));
692 printf(" Migrate State : ");
693 if (dev->vol.migr_state) {
694 if (migr_type(dev) == MIGR_INIT)
695 printf("initialize\n");
696 else if (migr_type(dev) == MIGR_REBUILD)
697 printf("rebuild\n");
698 else if (migr_type(dev) == MIGR_VERIFY)
699 printf("check\n");
700 else if (migr_type(dev) == MIGR_GEN_MIGR)
701 printf("general migration\n");
702 else if (migr_type(dev) == MIGR_STATE_CHANGE)
703 printf("state change\n");
704 else if (migr_type(dev) == MIGR_REPAIR)
705 printf("repair\n");
706 else
707 printf("<unknown:%d>\n", migr_type(dev));
708 } else
709 printf("idle\n");
710 printf(" Map State : %s", map_state_str[map->map_state]);
711 if (dev->vol.migr_state) {
712 struct imsm_map *map = get_imsm_map(dev, 1);
713
714 printf(" <-- %s", map_state_str[map->map_state]);
715 printf("\n Checkpoint : %u (%llu)",
716 __le32_to_cpu(dev->vol.curr_migr_unit),
717 (unsigned long long)blocks_per_migr_unit(dev));
718 }
719 printf("\n");
720 printf(" Dirty State : %s\n", dev->vol.dirty ? "dirty" : "clean");
721 }
722
723 static void print_imsm_disk(struct imsm_super *mpb, int index, __u32 reserved)
724 {
725 struct imsm_disk *disk = __get_imsm_disk(mpb, index);
726 char str[MAX_RAID_SERIAL_LEN + 1];
727 __u64 sz;
728
729 if (index < 0 || !disk)
730 return;
731
732 printf("\n");
733 snprintf(str, MAX_RAID_SERIAL_LEN + 1, "%s", disk->serial);
734 printf(" Disk%02d Serial : %s\n", index, str);
735 printf(" State :%s%s%s\n", is_spare(disk) ? " spare" : "",
736 is_configured(disk) ? " active" : "",
737 is_failed(disk) ? " failed" : "");
738 printf(" Id : %08x\n", __le32_to_cpu(disk->scsi_id));
739 sz = __le32_to_cpu(disk->total_blocks) - reserved;
740 printf(" Usable Size : %llu%s\n", (unsigned long long)sz,
741 human_size(sz * 512));
742 }
743
744 static void getinfo_super_imsm(struct supertype *st, struct mdinfo *info, char *map);
745
746 static void examine_super_imsm(struct supertype *st, char *homehost)
747 {
748 struct intel_super *super = st->sb;
749 struct imsm_super *mpb = super->anchor;
750 char str[MAX_SIGNATURE_LENGTH];
751 int i;
752 struct mdinfo info;
753 char nbuf[64];
754 __u32 sum;
755 __u32 reserved = imsm_reserved_sectors(super, super->disks);
756
757
758 snprintf(str, MPB_SIG_LEN, "%s", mpb->sig);
759 printf(" Magic : %s\n", str);
760 snprintf(str, strlen(MPB_VERSION_RAID0), "%s", get_imsm_version(mpb));
761 printf(" Version : %s\n", get_imsm_version(mpb));
762 printf(" Orig Family : %08x\n", __le32_to_cpu(mpb->orig_family_num));
763 printf(" Family : %08x\n", __le32_to_cpu(mpb->family_num));
764 printf(" Generation : %08x\n", __le32_to_cpu(mpb->generation_num));
765 getinfo_super_imsm(st, &info, NULL);
766 fname_from_uuid(st, &info, nbuf, ':');
767 printf(" UUID : %s\n", nbuf + 5);
768 sum = __le32_to_cpu(mpb->check_sum);
769 printf(" Checksum : %08x %s\n", sum,
770 __gen_imsm_checksum(mpb) == sum ? "correct" : "incorrect");
771 printf(" MPB Sectors : %d\n", mpb_sectors(mpb));
772 printf(" Disks : %d\n", mpb->num_disks);
773 printf(" RAID Devices : %d\n", mpb->num_raid_devs);
774 print_imsm_disk(mpb, super->disks->index, reserved);
775 if (super->bbm_log) {
776 struct bbm_log *log = super->bbm_log;
777
778 printf("\n");
779 printf("Bad Block Management Log:\n");
780 printf(" Log Size : %d\n", __le32_to_cpu(mpb->bbm_log_size));
781 printf(" Signature : %x\n", __le32_to_cpu(log->signature));
782 printf(" Entry Count : %d\n", __le32_to_cpu(log->entry_count));
783 printf(" Spare Blocks : %d\n", __le32_to_cpu(log->reserved_spare_block_count));
784 printf(" First Spare : %llx\n",
785 (unsigned long long) __le64_to_cpu(log->first_spare_lba));
786 }
787 for (i = 0; i < mpb->num_raid_devs; i++) {
788 struct mdinfo info;
789 struct imsm_dev *dev = __get_imsm_dev(mpb, i);
790
791 super->current_vol = i;
792 getinfo_super_imsm(st, &info, NULL);
793 fname_from_uuid(st, &info, nbuf, ':');
794 print_imsm_dev(dev, nbuf + 5, super->disks->index);
795 }
796 for (i = 0; i < mpb->num_disks; i++) {
797 if (i == super->disks->index)
798 continue;
799 print_imsm_disk(mpb, i, reserved);
800 }
801 }
802
803 static void brief_examine_super_imsm(struct supertype *st, int verbose)
804 {
805 /* We just write a generic IMSM ARRAY entry */
806 struct mdinfo info;
807 char nbuf[64];
808 struct intel_super *super = st->sb;
809
810 if (!super->anchor->num_raid_devs) {
811 printf("ARRAY metadata=imsm\n");
812 return;
813 }
814
815 getinfo_super_imsm(st, &info, NULL);
816 fname_from_uuid(st, &info, nbuf, ':');
817 printf("ARRAY metadata=imsm UUID=%s\n", nbuf + 5);
818 }
819
820 static void brief_examine_subarrays_imsm(struct supertype *st, int verbose)
821 {
822 /* We just write a generic IMSM ARRAY entry */
823 struct mdinfo info;
824 char nbuf[64];
825 char nbuf1[64];
826 struct intel_super *super = st->sb;
827 int i;
828
829 if (!super->anchor->num_raid_devs)
830 return;
831
832 getinfo_super_imsm(st, &info, NULL);
833 fname_from_uuid(st, &info, nbuf, ':');
834 for (i = 0; i < super->anchor->num_raid_devs; i++) {
835 struct imsm_dev *dev = get_imsm_dev(super, i);
836
837 super->current_vol = i;
838 getinfo_super_imsm(st, &info, NULL);
839 fname_from_uuid(st, &info, nbuf1, ':');
840 printf("ARRAY /dev/md/%.16s container=%s member=%d UUID=%s\n",
841 dev->volume, nbuf + 5, i, nbuf1 + 5);
842 }
843 }
844
845 static void export_examine_super_imsm(struct supertype *st)
846 {
847 struct intel_super *super = st->sb;
848 struct imsm_super *mpb = super->anchor;
849 struct mdinfo info;
850 char nbuf[64];
851
852 getinfo_super_imsm(st, &info, NULL);
853 fname_from_uuid(st, &info, nbuf, ':');
854 printf("MD_METADATA=imsm\n");
855 printf("MD_LEVEL=container\n");
856 printf("MD_UUID=%s\n", nbuf+5);
857 printf("MD_DEVICES=%u\n", mpb->num_disks);
858 }
859
860 static void detail_super_imsm(struct supertype *st, char *homehost)
861 {
862 struct mdinfo info;
863 char nbuf[64];
864
865 getinfo_super_imsm(st, &info, NULL);
866 fname_from_uuid(st, &info, nbuf, ':');
867 printf("\n UUID : %s\n", nbuf + 5);
868 }
869
870 static void brief_detail_super_imsm(struct supertype *st)
871 {
872 struct mdinfo info;
873 char nbuf[64];
874 getinfo_super_imsm(st, &info, NULL);
875 fname_from_uuid(st, &info, nbuf, ':');
876 printf(" UUID=%s", nbuf + 5);
877 }
878
879 static int imsm_read_serial(int fd, char *devname, __u8 *serial);
880 static void fd2devname(int fd, char *name);
881
882 static int imsm_enumerate_ports(const char *hba_path, int port_count, int host_base, int verbose)
883 {
884 /* dump an unsorted list of devices attached to ahci, as well as
885 * non-connected ports
886 */
887 int hba_len = strlen(hba_path) + 1;
888 struct dirent *ent;
889 DIR *dir;
890 char *path = NULL;
891 int err = 0;
892 unsigned long port_mask = (1 << port_count) - 1;
893
894 if (port_count > (int)sizeof(port_mask) * 8) {
895 if (verbose)
896 fprintf(stderr, Name ": port_count %d out of range\n", port_count);
897 return 2;
898 }
899
900 /* scroll through /sys/dev/block looking for devices attached to
901 * this hba
902 */
903 dir = opendir("/sys/dev/block");
904 for (ent = dir ? readdir(dir) : NULL; ent; ent = readdir(dir)) {
905 int fd;
906 char model[64];
907 char vendor[64];
908 char buf[1024];
909 int major, minor;
910 char *device;
911 char *c;
912 int port;
913 int type;
914
915 if (sscanf(ent->d_name, "%d:%d", &major, &minor) != 2)
916 continue;
917 path = devt_to_devpath(makedev(major, minor));
918 if (!path)
919 continue;
920 if (!path_attached_to_hba(path, hba_path)) {
921 free(path);
922 path = NULL;
923 continue;
924 }
925
926 /* retrieve the scsi device type */
927 if (asprintf(&device, "/sys/dev/block/%d:%d/device/xxxxxxx", major, minor) < 0) {
928 if (verbose)
929 fprintf(stderr, Name ": failed to allocate 'device'\n");
930 err = 2;
931 break;
932 }
933 sprintf(device, "/sys/dev/block/%d:%d/device/type", major, minor);
934 if (load_sys(device, buf) != 0) {
935 if (verbose)
936 fprintf(stderr, Name ": failed to read device type for %s\n",
937 path);
938 err = 2;
939 free(device);
940 break;
941 }
942 type = strtoul(buf, NULL, 10);
943
944 /* if it's not a disk print the vendor and model */
945 if (!(type == 0 || type == 7 || type == 14)) {
946 vendor[0] = '\0';
947 model[0] = '\0';
948 sprintf(device, "/sys/dev/block/%d:%d/device/vendor", major, minor);
949 if (load_sys(device, buf) == 0) {
950 strncpy(vendor, buf, sizeof(vendor));
951 vendor[sizeof(vendor) - 1] = '\0';
952 c = (char *) &vendor[sizeof(vendor) - 1];
953 while (isspace(*c) || *c == '\0')
954 *c-- = '\0';
955
956 }
957 sprintf(device, "/sys/dev/block/%d:%d/device/model", major, minor);
958 if (load_sys(device, buf) == 0) {
959 strncpy(model, buf, sizeof(model));
960 model[sizeof(model) - 1] = '\0';
961 c = (char *) &model[sizeof(model) - 1];
962 while (isspace(*c) || *c == '\0')
963 *c-- = '\0';
964 }
965
966 if (vendor[0] && model[0])
967 sprintf(buf, "%.64s %.64s", vendor, model);
968 else
969 switch (type) { /* numbers from hald/linux/device.c */
970 case 1: sprintf(buf, "tape"); break;
971 case 2: sprintf(buf, "printer"); break;
972 case 3: sprintf(buf, "processor"); break;
973 case 4:
974 case 5: sprintf(buf, "cdrom"); break;
975 case 6: sprintf(buf, "scanner"); break;
976 case 8: sprintf(buf, "media_changer"); break;
977 case 9: sprintf(buf, "comm"); break;
978 case 12: sprintf(buf, "raid"); break;
979 default: sprintf(buf, "unknown");
980 }
981 } else
982 buf[0] = '\0';
983 free(device);
984
985 /* chop device path to 'host%d' and calculate the port number */
986 c = strchr(&path[hba_len], '/');
987 if (!c) {
988 if (verbose)
989 fprintf(stderr, Name ": %s - invalid path name\n", path + hba_len);
990 err = 2;
991 break;
992 }
993 *c = '\0';
994 if (sscanf(&path[hba_len], "host%d", &port) == 1)
995 port -= host_base;
996 else {
997 if (verbose) {
998 *c = '/'; /* repair the full string */
999 fprintf(stderr, Name ": failed to determine port number for %s\n",
1000 path);
1001 }
1002 err = 2;
1003 break;
1004 }
1005
1006 /* mark this port as used */
1007 port_mask &= ~(1 << port);
1008
1009 /* print out the device information */
1010 if (buf[0]) {
1011 printf(" Port%d : - non-disk device (%s) -\n", port, buf);
1012 continue;
1013 }
1014
1015 fd = dev_open(ent->d_name, O_RDONLY);
1016 if (fd < 0)
1017 printf(" Port%d : - disk info unavailable -\n", port);
1018 else {
1019 fd2devname(fd, buf);
1020 printf(" Port%d : %s", port, buf);
1021 if (imsm_read_serial(fd, NULL, (__u8 *) buf) == 0)
1022 printf(" (%s)\n", buf);
1023 else
1024 printf("()\n");
1025 }
1026 close(fd);
1027 free(path);
1028 path = NULL;
1029 }
1030 if (path)
1031 free(path);
1032 if (dir)
1033 closedir(dir);
1034 if (err == 0) {
1035 int i;
1036
1037 for (i = 0; i < port_count; i++)
1038 if (port_mask & (1 << i))
1039 printf(" Port%d : - no device attached -\n", i);
1040 }
1041
1042 return err;
1043 }
1044
1045 static int detail_platform_imsm(int verbose, int enumerate_only)
1046 {
1047 /* There are two components to imsm platform support, the ahci SATA
1048 * controller and the option-rom. To find the SATA controller we
1049 * simply look in /sys/bus/pci/drivers/ahci to see if an ahci
1050 * controller with the Intel vendor id is present. This approach
1051 * allows mdadm to leverage the kernel's ahci detection logic, with the
1052 * caveat that if ahci.ko is not loaded mdadm will not be able to
1053 * detect platform raid capabilities. The option-rom resides in a
1054 * platform "Adapter ROM". We scan for its signature to retrieve the
1055 * platform capabilities. If raid support is disabled in the BIOS the
1056 * option-rom capability structure will not be available.
1057 */
1058 const struct imsm_orom *orom;
1059 struct sys_dev *list, *hba;
1060 DIR *dir;
1061 struct dirent *ent;
1062 const char *hba_path;
1063 int host_base = 0;
1064 int port_count = 0;
1065
1066 if (enumerate_only) {
1067 if (check_env("IMSM_NO_PLATFORM") || find_imsm_orom())
1068 return 0;
1069 return 2;
1070 }
1071
1072 list = find_driver_devices("pci", "ahci");
1073 for (hba = list; hba; hba = hba->next)
1074 if (devpath_to_vendor(hba->path) == 0x8086)
1075 break;
1076
1077 if (!hba) {
1078 if (verbose)
1079 fprintf(stderr, Name ": unable to find active ahci controller\n");
1080 free_sys_dev(&list);
1081 return 2;
1082 } else if (verbose)
1083 fprintf(stderr, Name ": found Intel SATA AHCI Controller\n");
1084 hba_path = hba->path;
1085 hba->path = NULL;
1086 free_sys_dev(&list);
1087
1088 orom = find_imsm_orom();
1089 if (!orom) {
1090 if (verbose)
1091 fprintf(stderr, Name ": imsm option-rom not found\n");
1092 return 2;
1093 }
1094
1095 printf(" Platform : Intel(R) Matrix Storage Manager\n");
1096 printf(" Version : %d.%d.%d.%d\n", orom->major_ver, orom->minor_ver,
1097 orom->hotfix_ver, orom->build);
1098 printf(" RAID Levels :%s%s%s%s%s\n",
1099 imsm_orom_has_raid0(orom) ? " raid0" : "",
1100 imsm_orom_has_raid1(orom) ? " raid1" : "",
1101 imsm_orom_has_raid1e(orom) ? " raid1e" : "",
1102 imsm_orom_has_raid10(orom) ? " raid10" : "",
1103 imsm_orom_has_raid5(orom) ? " raid5" : "");
1104 printf(" Chunk Sizes :%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s%s\n",
1105 imsm_orom_has_chunk(orom, 2) ? " 2k" : "",
1106 imsm_orom_has_chunk(orom, 4) ? " 4k" : "",
1107 imsm_orom_has_chunk(orom, 8) ? " 8k" : "",
1108 imsm_orom_has_chunk(orom, 16) ? " 16k" : "",
1109 imsm_orom_has_chunk(orom, 32) ? " 32k" : "",
1110 imsm_orom_has_chunk(orom, 64) ? " 64k" : "",
1111 imsm_orom_has_chunk(orom, 128) ? " 128k" : "",
1112 imsm_orom_has_chunk(orom, 256) ? " 256k" : "",
1113 imsm_orom_has_chunk(orom, 512) ? " 512k" : "",
1114 imsm_orom_has_chunk(orom, 1024*1) ? " 1M" : "",
1115 imsm_orom_has_chunk(orom, 1024*2) ? " 2M" : "",
1116 imsm_orom_has_chunk(orom, 1024*4) ? " 4M" : "",
1117 imsm_orom_has_chunk(orom, 1024*8) ? " 8M" : "",
1118 imsm_orom_has_chunk(orom, 1024*16) ? " 16M" : "",
1119 imsm_orom_has_chunk(orom, 1024*32) ? " 32M" : "",
1120 imsm_orom_has_chunk(orom, 1024*64) ? " 64M" : "");
1121 printf(" Max Disks : %d\n", orom->tds);
1122 printf(" Max Volumes : %d\n", orom->vpa);
1123 printf(" I/O Controller : %s\n", hba_path);
1124
1125 /* find the smallest scsi host number to determine a port number base */
1126 dir = opendir(hba_path);
1127 for (ent = dir ? readdir(dir) : NULL; ent; ent = readdir(dir)) {
1128 int host;
1129
1130 if (sscanf(ent->d_name, "host%d", &host) != 1)
1131 continue;
1132 if (port_count == 0)
1133 host_base = host;
1134 else if (host < host_base)
1135 host_base = host;
1136
1137 if (host + 1 > port_count + host_base)
1138 port_count = host + 1 - host_base;
1139
1140 }
1141 if (dir)
1142 closedir(dir);
1143
1144 if (!port_count || imsm_enumerate_ports(hba_path, port_count,
1145 host_base, verbose) != 0) {
1146 if (verbose)
1147 fprintf(stderr, Name ": failed to enumerate ports\n");
1148 return 2;
1149 }
1150
1151 return 0;
1152 }
1153 #endif
1154
1155 static int match_home_imsm(struct supertype *st, char *homehost)
1156 {
1157 /* the imsm metadata format does not specify any host
1158 * identification information. We return -1 since we can never
1159 * confirm nor deny whether a given array is "meant" for this
1160 * host. We rely on compare_super and the 'family_num' fields to
1161 * exclude member disks that do not belong, and we rely on
1162 * mdadm.conf to specify the arrays that should be assembled.
1163 * Auto-assembly may still pick up "foreign" arrays.
1164 */
1165
1166 return -1;
1167 }
1168
1169 static void uuid_from_super_imsm(struct supertype *st, int uuid[4])
1170 {
1171 /* The uuid returned here is used for:
1172 * uuid to put into bitmap file (Create, Grow)
1173 * uuid for backup header when saving critical section (Grow)
1174 * comparing uuids when re-adding a device into an array
1175 * In these cases the uuid required is that of the data-array,
1176 * not the device-set.
1177 * uuid to recognise same set when adding a missing device back
1178 * to an array. This is a uuid for the device-set.
1179 *
1180 * For each of these we can make do with a truncated
1181 * or hashed uuid rather than the original, as long as
1182 * everyone agrees.
1183 * In each case the uuid required is that of the data-array,
1184 * not the device-set.
1185 */
1186 /* imsm does not track uuid's so we synthesis one using sha1 on
1187 * - The signature (Which is constant for all imsm array, but no matter)
1188 * - the orig_family_num of the container
1189 * - the index number of the volume
1190 * - the 'serial' number of the volume.
1191 * Hopefully these are all constant.
1192 */
1193 struct intel_super *super = st->sb;
1194
1195 char buf[20];
1196 struct sha1_ctx ctx;
1197 struct imsm_dev *dev = NULL;
1198 __u32 family_num;
1199
1200 /* some mdadm versions failed to set ->orig_family_num, in which
1201 * case fall back to ->family_num. orig_family_num will be
1202 * fixed up with the first metadata update.
1203 */
1204 family_num = super->anchor->orig_family_num;
1205 if (family_num == 0)
1206 family_num = super->anchor->family_num;
1207 sha1_init_ctx(&ctx);
1208 sha1_process_bytes(super->anchor->sig, MPB_SIG_LEN, &ctx);
1209 sha1_process_bytes(&family_num, sizeof(__u32), &ctx);
1210 if (super->current_vol >= 0)
1211 dev = get_imsm_dev(super, super->current_vol);
1212 if (dev) {
1213 __u32 vol = super->current_vol;
1214 sha1_process_bytes(&vol, sizeof(vol), &ctx);
1215 sha1_process_bytes(dev->volume, MAX_RAID_SERIAL_LEN, &ctx);
1216 }
1217 sha1_finish_ctx(&ctx, buf);
1218 memcpy(uuid, buf, 4*4);
1219 }
1220
1221 #if 0
1222 static void
1223 get_imsm_numerical_version(struct imsm_super *mpb, int *m, int *p)
1224 {
1225 __u8 *v = get_imsm_version(mpb);
1226 __u8 *end = mpb->sig + MAX_SIGNATURE_LENGTH;
1227 char major[] = { 0, 0, 0 };
1228 char minor[] = { 0 ,0, 0 };
1229 char patch[] = { 0, 0, 0 };
1230 char *ver_parse[] = { major, minor, patch };
1231 int i, j;
1232
1233 i = j = 0;
1234 while (*v != '\0' && v < end) {
1235 if (*v != '.' && j < 2)
1236 ver_parse[i][j++] = *v;
1237 else {
1238 i++;
1239 j = 0;
1240 }
1241 v++;
1242 }
1243
1244 *m = strtol(minor, NULL, 0);
1245 *p = strtol(patch, NULL, 0);
1246 }
1247 #endif
1248
1249 static __u32 migr_strip_blocks_resync(struct imsm_dev *dev)
1250 {
1251 /* migr_strip_size when repairing or initializing parity */
1252 struct imsm_map *map = get_imsm_map(dev, 0);
1253 __u32 chunk = __le32_to_cpu(map->blocks_per_strip);
1254
1255 switch (get_imsm_raid_level(map)) {
1256 case 5:
1257 case 10:
1258 return chunk;
1259 default:
1260 return 128*1024 >> 9;
1261 }
1262 }
1263
1264 static __u32 migr_strip_blocks_rebuild(struct imsm_dev *dev)
1265 {
1266 /* migr_strip_size when rebuilding a degraded disk, no idea why
1267 * this is different than migr_strip_size_resync(), but it's good
1268 * to be compatible
1269 */
1270 struct imsm_map *map = get_imsm_map(dev, 1);
1271 __u32 chunk = __le32_to_cpu(map->blocks_per_strip);
1272
1273 switch (get_imsm_raid_level(map)) {
1274 case 1:
1275 case 10:
1276 if (map->num_members % map->num_domains == 0)
1277 return 128*1024 >> 9;
1278 else
1279 return chunk;
1280 case 5:
1281 return max((__u32) 64*1024 >> 9, chunk);
1282 default:
1283 return 128*1024 >> 9;
1284 }
1285 }
1286
1287 static __u32 num_stripes_per_unit_resync(struct imsm_dev *dev)
1288 {
1289 struct imsm_map *lo = get_imsm_map(dev, 0);
1290 struct imsm_map *hi = get_imsm_map(dev, 1);
1291 __u32 lo_chunk = __le32_to_cpu(lo->blocks_per_strip);
1292 __u32 hi_chunk = __le32_to_cpu(hi->blocks_per_strip);
1293
1294 return max((__u32) 1, hi_chunk / lo_chunk);
1295 }
1296
1297 static __u32 num_stripes_per_unit_rebuild(struct imsm_dev *dev)
1298 {
1299 struct imsm_map *lo = get_imsm_map(dev, 0);
1300 int level = get_imsm_raid_level(lo);
1301
1302 if (level == 1 || level == 10) {
1303 struct imsm_map *hi = get_imsm_map(dev, 1);
1304
1305 return hi->num_domains;
1306 } else
1307 return num_stripes_per_unit_resync(dev);
1308 }
1309
1310 static __u8 imsm_num_data_members(struct imsm_dev *dev)
1311 {
1312 /* named 'imsm_' because raid0, raid1 and raid10
1313 * counter-intuitively have the same number of data disks
1314 */
1315 struct imsm_map *map = get_imsm_map(dev, 0);
1316
1317 switch (get_imsm_raid_level(map)) {
1318 case 0:
1319 case 1:
1320 case 10:
1321 return map->num_members;
1322 case 5:
1323 return map->num_members - 1;
1324 default:
1325 dprintf("%s: unsupported raid level\n", __func__);
1326 return 0;
1327 }
1328 }
1329
1330 static __u32 parity_segment_depth(struct imsm_dev *dev)
1331 {
1332 struct imsm_map *map = get_imsm_map(dev, 0);
1333 __u32 chunk = __le32_to_cpu(map->blocks_per_strip);
1334
1335 switch(get_imsm_raid_level(map)) {
1336 case 1:
1337 case 10:
1338 return chunk * map->num_domains;
1339 case 5:
1340 return chunk * map->num_members;
1341 default:
1342 return chunk;
1343 }
1344 }
1345
1346 static __u32 map_migr_block(struct imsm_dev *dev, __u32 block)
1347 {
1348 struct imsm_map *map = get_imsm_map(dev, 1);
1349 __u32 chunk = __le32_to_cpu(map->blocks_per_strip);
1350 __u32 strip = block / chunk;
1351
1352 switch (get_imsm_raid_level(map)) {
1353 case 1:
1354 case 10: {
1355 __u32 vol_strip = (strip * map->num_domains) + 1;
1356 __u32 vol_stripe = vol_strip / map->num_members;
1357
1358 return vol_stripe * chunk + block % chunk;
1359 } case 5: {
1360 __u32 stripe = strip / (map->num_members - 1);
1361
1362 return stripe * chunk + block % chunk;
1363 }
1364 default:
1365 return 0;
1366 }
1367 }
1368
1369 static __u64 blocks_per_migr_unit(struct imsm_dev *dev)
1370 {
1371 /* calculate the conversion factor between per member 'blocks'
1372 * (md/{resync,rebuild}_start) and imsm migration units, return
1373 * 0 for the 'not migrating' and 'unsupported migration' cases
1374 */
1375 if (!dev->vol.migr_state)
1376 return 0;
1377
1378 switch (migr_type(dev)) {
1379 case MIGR_VERIFY:
1380 case MIGR_REPAIR:
1381 case MIGR_INIT: {
1382 struct imsm_map *map = get_imsm_map(dev, 0);
1383 __u32 stripes_per_unit;
1384 __u32 blocks_per_unit;
1385 __u32 parity_depth;
1386 __u32 migr_chunk;
1387 __u32 block_map;
1388 __u32 block_rel;
1389 __u32 segment;
1390 __u32 stripe;
1391 __u8 disks;
1392
1393 /* yes, this is really the translation of migr_units to
1394 * per-member blocks in the 'resync' case
1395 */
1396 stripes_per_unit = num_stripes_per_unit_resync(dev);
1397 migr_chunk = migr_strip_blocks_resync(dev);
1398 disks = imsm_num_data_members(dev);
1399 blocks_per_unit = stripes_per_unit * migr_chunk * disks;
1400 stripe = __le32_to_cpu(map->blocks_per_strip) * disks;
1401 segment = blocks_per_unit / stripe;
1402 block_rel = blocks_per_unit - segment * stripe;
1403 parity_depth = parity_segment_depth(dev);
1404 block_map = map_migr_block(dev, block_rel);
1405 return block_map + parity_depth * segment;
1406 }
1407 case MIGR_REBUILD: {
1408 __u32 stripes_per_unit;
1409 __u32 migr_chunk;
1410
1411 stripes_per_unit = num_stripes_per_unit_rebuild(dev);
1412 migr_chunk = migr_strip_blocks_rebuild(dev);
1413 return migr_chunk * stripes_per_unit;
1414 }
1415 case MIGR_GEN_MIGR:
1416 case MIGR_STATE_CHANGE:
1417 default:
1418 return 0;
1419 }
1420 }
1421
1422 static int imsm_level_to_layout(int level)
1423 {
1424 switch (level) {
1425 case 0:
1426 case 1:
1427 return 0;
1428 case 5:
1429 case 6:
1430 return ALGORITHM_LEFT_ASYMMETRIC;
1431 case 10:
1432 return 0x102;
1433 }
1434 return UnSet;
1435 }
1436
1437 static void getinfo_super_imsm_volume(struct supertype *st, struct mdinfo *info, char *dmap)
1438 {
1439 struct intel_super *super = st->sb;
1440 struct imsm_dev *dev = get_imsm_dev(super, super->current_vol);
1441 struct imsm_map *map = get_imsm_map(dev, 0);
1442 struct dl *dl;
1443 char *devname;
1444 int map_disks = info->array.raid_disks;
1445
1446 for (dl = super->disks; dl; dl = dl->next)
1447 if (dl->raiddisk == info->disk.raid_disk)
1448 break;
1449 info->container_member = super->current_vol;
1450 info->array.raid_disks = map->num_members;
1451 info->array.level = get_imsm_raid_level(map);
1452 info->array.layout = imsm_level_to_layout(info->array.level);
1453 info->array.md_minor = -1;
1454 info->array.ctime = 0;
1455 info->array.utime = 0;
1456 info->array.chunk_size = __le16_to_cpu(map->blocks_per_strip) << 9;
1457 info->array.state = !dev->vol.dirty;
1458 info->custom_array_size = __le32_to_cpu(dev->size_high);
1459 info->custom_array_size <<= 32;
1460 info->custom_array_size |= __le32_to_cpu(dev->size_low);
1461
1462 info->disk.major = 0;
1463 info->disk.minor = 0;
1464 if (dl) {
1465 info->disk.major = dl->major;
1466 info->disk.minor = dl->minor;
1467 }
1468
1469 info->data_offset = __le32_to_cpu(map->pba_of_lba0);
1470 info->component_size = __le32_to_cpu(map->blocks_per_member);
1471 memset(info->uuid, 0, sizeof(info->uuid));
1472 info->recovery_start = MaxSector;
1473 info->reshape_active = 0;
1474
1475 if (map->map_state == IMSM_T_STATE_UNINITIALIZED || dev->vol.dirty) {
1476 info->resync_start = 0;
1477 } else if (dev->vol.migr_state) {
1478 switch (migr_type(dev)) {
1479 case MIGR_REPAIR:
1480 case MIGR_INIT: {
1481 __u64 blocks_per_unit = blocks_per_migr_unit(dev);
1482 __u64 units = __le32_to_cpu(dev->vol.curr_migr_unit);
1483
1484 info->resync_start = blocks_per_unit * units;
1485 break;
1486 }
1487 case MIGR_VERIFY:
1488 /* we could emulate the checkpointing of
1489 * 'sync_action=check' migrations, but for now
1490 * we just immediately complete them
1491 */
1492 case MIGR_REBUILD:
1493 /* this is handled by container_content_imsm() */
1494 case MIGR_GEN_MIGR:
1495 case MIGR_STATE_CHANGE:
1496 /* FIXME handle other migrations */
1497 default:
1498 /* we are not dirty, so... */
1499 info->resync_start = MaxSector;
1500 }
1501 } else
1502 info->resync_start = MaxSector;
1503
1504 strncpy(info->name, (char *) dev->volume, MAX_RAID_SERIAL_LEN);
1505 info->name[MAX_RAID_SERIAL_LEN] = 0;
1506
1507 info->array.major_version = -1;
1508 info->array.minor_version = -2;
1509 devname = devnum2devname(st->container_dev);
1510 *info->text_version = '\0';
1511 if (devname)
1512 sprintf(info->text_version, "/%s/%d", devname, info->container_member);
1513 free(devname);
1514 info->safe_mode_delay = 4000; /* 4 secs like the Matrix driver */
1515 uuid_from_super_imsm(st, info->uuid);
1516
1517 if (dmap) {
1518 int i, j;
1519 for (i=0; i<map_disks; i++) {
1520 dmap[i] = 0;
1521 if (i < info->array.raid_disks) {
1522 struct imsm_disk *dsk;
1523 j = get_imsm_disk_idx(dev, i);
1524 dsk = get_imsm_disk(super, j);
1525 if (dsk && (dsk->status & CONFIGURED_DISK))
1526 dmap[i] = 1;
1527 }
1528 }
1529 }
1530 }
1531
1532 /* check the config file to see if we can return a real uuid for this spare */
1533 static void fixup_container_spare_uuid(struct mdinfo *inf)
1534 {
1535 struct mddev_ident_s *array_list;
1536
1537 if (inf->array.level != LEVEL_CONTAINER ||
1538 memcmp(inf->uuid, uuid_match_any, sizeof(int[4])) != 0)
1539 return;
1540
1541 array_list = conf_get_ident(NULL);
1542
1543 for (; array_list; array_list = array_list->next) {
1544 if (array_list->uuid_set) {
1545 struct supertype *_sst; /* spare supertype */
1546 struct supertype *_cst; /* container supertype */
1547
1548 _cst = array_list->st;
1549 if (_cst)
1550 _sst = _cst->ss->match_metadata_desc(inf->text_version);
1551 else
1552 _sst = NULL;
1553
1554 if (_sst) {
1555 memcpy(inf->uuid, array_list->uuid, sizeof(int[4]));
1556 free(_sst);
1557 break;
1558 }
1559 }
1560 }
1561 }
1562
1563
1564 static __u8 imsm_check_degraded(struct intel_super *super, struct imsm_dev *dev, int failed);
1565 static int imsm_count_failed(struct intel_super *super, struct imsm_dev *dev);
1566
1567 static struct imsm_disk *get_imsm_missing(struct intel_super *super, __u8 index)
1568 {
1569 struct dl *d;
1570
1571 for (d = super->missing; d; d = d->next)
1572 if (d->index == index)
1573 return &d->disk;
1574 return NULL;
1575 }
1576
1577 static void getinfo_super_imsm(struct supertype *st, struct mdinfo *info, char *map)
1578 {
1579 struct intel_super *super = st->sb;
1580 struct imsm_disk *disk;
1581 int map_disks = info->array.raid_disks;
1582
1583 if (super->current_vol >= 0) {
1584 getinfo_super_imsm_volume(st, info, map);
1585 return;
1586 }
1587
1588 /* Set raid_disks to zero so that Assemble will always pull in valid
1589 * spares
1590 */
1591 info->array.raid_disks = 0;
1592 info->array.level = LEVEL_CONTAINER;
1593 info->array.layout = 0;
1594 info->array.md_minor = -1;
1595 info->array.ctime = 0; /* N/A for imsm */
1596 info->array.utime = 0;
1597 info->array.chunk_size = 0;
1598
1599 info->disk.major = 0;
1600 info->disk.minor = 0;
1601 info->disk.raid_disk = -1;
1602 info->reshape_active = 0;
1603 info->array.major_version = -1;
1604 info->array.minor_version = -2;
1605 strcpy(info->text_version, "imsm");
1606 info->safe_mode_delay = 0;
1607 info->disk.number = -1;
1608 info->disk.state = 0;
1609 info->name[0] = 0;
1610 info->recovery_start = MaxSector;
1611
1612 /* do we have the all the insync disks that we expect? */
1613 if (st->loaded_container) {
1614 struct imsm_super *mpb = super->anchor;
1615 int max_enough = -1, i;
1616
1617 for (i = 0; i < mpb->num_raid_devs; i++) {
1618 struct imsm_dev *dev = get_imsm_dev(super, i);
1619 int failed, enough, j, missing = 0;
1620 struct imsm_map *map;
1621 __u8 state;
1622
1623 failed = imsm_count_failed(super, dev);
1624 state = imsm_check_degraded(super, dev, failed);
1625 map = get_imsm_map(dev, dev->vol.migr_state);
1626
1627 /* any newly missing disks?
1628 * (catches single-degraded vs double-degraded)
1629 */
1630 for (j = 0; j < map->num_members; j++) {
1631 __u32 ord = get_imsm_ord_tbl_ent(dev, i);
1632 __u32 idx = ord_to_idx(ord);
1633
1634 if (!(ord & IMSM_ORD_REBUILD) &&
1635 get_imsm_missing(super, idx)) {
1636 missing = 1;
1637 break;
1638 }
1639 }
1640
1641 if (state == IMSM_T_STATE_FAILED)
1642 enough = -1;
1643 else if (state == IMSM_T_STATE_DEGRADED &&
1644 (state != map->map_state || missing))
1645 enough = 0;
1646 else /* we're normal, or already degraded */
1647 enough = 1;
1648
1649 /* in the missing/failed disk case check to see
1650 * if at least one array is runnable
1651 */
1652 max_enough = max(max_enough, enough);
1653 }
1654 dprintf("%s: enough: %d\n", __func__, max_enough);
1655 info->container_enough = max_enough;
1656 } else
1657 info->container_enough = -1;
1658
1659 if (super->disks) {
1660 __u32 reserved = imsm_reserved_sectors(super, super->disks);
1661
1662 disk = &super->disks->disk;
1663 info->data_offset = __le32_to_cpu(disk->total_blocks) - reserved;
1664 info->component_size = reserved;
1665 info->disk.state = is_configured(disk) ? (1 << MD_DISK_ACTIVE) : 0;
1666 /* we don't change info->disk.raid_disk here because
1667 * this state will be finalized in mdmon after we have
1668 * found the 'most fresh' version of the metadata
1669 */
1670 info->disk.state |= is_failed(disk) ? (1 << MD_DISK_FAULTY) : 0;
1671 info->disk.state |= is_spare(disk) ? 0 : (1 << MD_DISK_SYNC);
1672 }
1673
1674 /* only call uuid_from_super_imsm when this disk is part of a populated container,
1675 * ->compare_super may have updated the 'num_raid_devs' field for spares
1676 */
1677 if (info->disk.state & (1 << MD_DISK_SYNC) || super->anchor->num_raid_devs)
1678 uuid_from_super_imsm(st, info->uuid);
1679 else {
1680 memcpy(info->uuid, uuid_match_any, sizeof(int[4]));
1681 fixup_container_spare_uuid(info);
1682 }
1683
1684 /* I don't know how to compute 'map' on imsm, so use safe default */
1685 if (map) {
1686 int i;
1687 for (i = 0; i < map_disks; i++)
1688 map[i] = 1;
1689 }
1690
1691 }
1692
1693 static int update_super_imsm(struct supertype *st, struct mdinfo *info,
1694 char *update, char *devname, int verbose,
1695 int uuid_set, char *homehost)
1696 {
1697 /* For 'assemble' and 'force' we need to return non-zero if any
1698 * change was made. For others, the return value is ignored.
1699 * Update options are:
1700 * force-one : This device looks a bit old but needs to be included,
1701 * update age info appropriately.
1702 * assemble: clear any 'faulty' flag to allow this device to
1703 * be assembled.
1704 * force-array: Array is degraded but being forced, mark it clean
1705 * if that will be needed to assemble it.
1706 *
1707 * newdev: not used ????
1708 * grow: Array has gained a new device - this is currently for
1709 * linear only
1710 * resync: mark as dirty so a resync will happen.
1711 * name: update the name - preserving the homehost
1712 * uuid: Change the uuid of the array to match watch is given
1713 *
1714 * Following are not relevant for this imsm:
1715 * sparc2.2 : update from old dodgey metadata
1716 * super-minor: change the preferred_minor number
1717 * summaries: update redundant counters.
1718 * homehost: update the recorded homehost
1719 * _reshape_progress: record new reshape_progress position.
1720 */
1721 int rv = 1;
1722 struct intel_super *super = st->sb;
1723 struct imsm_super *mpb;
1724
1725 /* we can only update container info */
1726 if (!super || super->current_vol >= 0 || !super->anchor)
1727 return 1;
1728
1729 mpb = super->anchor;
1730
1731 if (strcmp(update, "uuid") == 0 && uuid_set && !info->update_private)
1732 rv = -1;
1733 else if (strcmp(update, "uuid") == 0 && uuid_set && info->update_private) {
1734 mpb->orig_family_num = *((__u32 *) info->update_private);
1735 rv = 0;
1736 } else if (strcmp(update, "uuid") == 0) {
1737 __u32 *new_family = malloc(sizeof(*new_family));
1738
1739 /* update orig_family_number with the incoming random
1740 * data, report the new effective uuid, and store the
1741 * new orig_family_num for future updates.
1742 */
1743 if (new_family) {
1744 memcpy(&mpb->orig_family_num, info->uuid, sizeof(__u32));
1745 uuid_from_super_imsm(st, info->uuid);
1746 *new_family = mpb->orig_family_num;
1747 info->update_private = new_family;
1748 rv = 0;
1749 }
1750 } else if (strcmp(update, "assemble") == 0)
1751 rv = 0;
1752 else
1753 rv = -1;
1754
1755 /* successful update? recompute checksum */
1756 if (rv == 0)
1757 mpb->check_sum = __le32_to_cpu(__gen_imsm_checksum(mpb));
1758
1759 return rv;
1760 }
1761
1762 static size_t disks_to_mpb_size(int disks)
1763 {
1764 size_t size;
1765
1766 size = sizeof(struct imsm_super);
1767 size += (disks - 1) * sizeof(struct imsm_disk);
1768 size += 2 * sizeof(struct imsm_dev);
1769 /* up to 2 maps per raid device (-2 for imsm_maps in imsm_dev */
1770 size += (4 - 2) * sizeof(struct imsm_map);
1771 /* 4 possible disk_ord_tbl's */
1772 size += 4 * (disks - 1) * sizeof(__u32);
1773
1774 return size;
1775 }
1776
1777 static __u64 avail_size_imsm(struct supertype *st, __u64 devsize)
1778 {
1779 if (devsize < (MPB_SECTOR_CNT + IMSM_RESERVED_SECTORS))
1780 return 0;
1781
1782 return devsize - (MPB_SECTOR_CNT + IMSM_RESERVED_SECTORS);
1783 }
1784
1785 static void free_devlist(struct intel_super *super)
1786 {
1787 struct intel_dev *dv;
1788
1789 while (super->devlist) {
1790 dv = super->devlist->next;
1791 free(super->devlist->dev);
1792 free(super->devlist);
1793 super->devlist = dv;
1794 }
1795 }
1796
1797 static void imsm_copy_dev(struct imsm_dev *dest, struct imsm_dev *src)
1798 {
1799 memcpy(dest, src, sizeof_imsm_dev(src, 0));
1800 }
1801
1802 static int compare_super_imsm(struct supertype *st, struct supertype *tst)
1803 {
1804 /*
1805 * return:
1806 * 0 same, or first was empty, and second was copied
1807 * 1 second had wrong number
1808 * 2 wrong uuid
1809 * 3 wrong other info
1810 */
1811 struct intel_super *first = st->sb;
1812 struct intel_super *sec = tst->sb;
1813
1814 if (!first) {
1815 st->sb = tst->sb;
1816 tst->sb = NULL;
1817 return 0;
1818 }
1819
1820 /* if an anchor does not have num_raid_devs set then it is a free
1821 * floating spare
1822 */
1823 if (first->anchor->num_raid_devs > 0 &&
1824 sec->anchor->num_raid_devs > 0) {
1825 /* Determine if these disks might ever have been
1826 * related. Further disambiguation can only take place
1827 * in load_super_imsm_all
1828 */
1829 __u32 first_family = first->anchor->orig_family_num;
1830 __u32 sec_family = sec->anchor->orig_family_num;
1831
1832 if (memcmp(first->anchor->sig, sec->anchor->sig,
1833 MAX_SIGNATURE_LENGTH) != 0)
1834 return 3;
1835
1836 if (first_family == 0)
1837 first_family = first->anchor->family_num;
1838 if (sec_family == 0)
1839 sec_family = sec->anchor->family_num;
1840
1841 if (first_family != sec_family)
1842 return 3;
1843
1844 }
1845
1846
1847 /* if 'first' is a spare promote it to a populated mpb with sec's
1848 * family number
1849 */
1850 if (first->anchor->num_raid_devs == 0 &&
1851 sec->anchor->num_raid_devs > 0) {
1852 int i;
1853 struct intel_dev *dv;
1854 struct imsm_dev *dev;
1855
1856 /* we need to copy raid device info from sec if an allocation
1857 * fails here we don't associate the spare
1858 */
1859 for (i = 0; i < sec->anchor->num_raid_devs; i++) {
1860 dv = malloc(sizeof(*dv));
1861 if (!dv)
1862 break;
1863 dev = malloc(sizeof_imsm_dev(get_imsm_dev(sec, i), 1));
1864 if (!dev) {
1865 free(dv);
1866 break;
1867 }
1868 dv->dev = dev;
1869 dv->index = i;
1870 dv->next = first->devlist;
1871 first->devlist = dv;
1872 }
1873 if (i < sec->anchor->num_raid_devs) {
1874 /* allocation failure */
1875 free_devlist(first);
1876 fprintf(stderr, "imsm: failed to associate spare\n");
1877 return 3;
1878 }
1879 first->anchor->num_raid_devs = sec->anchor->num_raid_devs;
1880 first->anchor->orig_family_num = sec->anchor->orig_family_num;
1881 first->anchor->family_num = sec->anchor->family_num;
1882 memcpy(first->anchor->sig, sec->anchor->sig, MAX_SIGNATURE_LENGTH);
1883 for (i = 0; i < sec->anchor->num_raid_devs; i++)
1884 imsm_copy_dev(get_imsm_dev(first, i), get_imsm_dev(sec, i));
1885 }
1886
1887 return 0;
1888 }
1889
1890 static void fd2devname(int fd, char *name)
1891 {
1892 struct stat st;
1893 char path[256];
1894 char dname[PATH_MAX];
1895 char *nm;
1896 int rv;
1897
1898 name[0] = '\0';
1899 if (fstat(fd, &st) != 0)
1900 return;
1901 sprintf(path, "/sys/dev/block/%d:%d",
1902 major(st.st_rdev), minor(st.st_rdev));
1903
1904 rv = readlink(path, dname, sizeof(dname));
1905 if (rv <= 0)
1906 return;
1907
1908 dname[rv] = '\0';
1909 nm = strrchr(dname, '/');
1910 nm++;
1911 snprintf(name, MAX_RAID_SERIAL_LEN, "/dev/%s", nm);
1912 }
1913
1914 extern int scsi_get_serial(int fd, void *buf, size_t buf_len);
1915
1916 static int imsm_read_serial(int fd, char *devname,
1917 __u8 serial[MAX_RAID_SERIAL_LEN])
1918 {
1919 unsigned char scsi_serial[255];
1920 int rv;
1921 int rsp_len;
1922 int len;
1923 char *dest;
1924 char *src;
1925 char *rsp_buf;
1926 int i;
1927
1928 memset(scsi_serial, 0, sizeof(scsi_serial));
1929
1930 rv = scsi_get_serial(fd, scsi_serial, sizeof(scsi_serial));
1931
1932 if (rv && check_env("IMSM_DEVNAME_AS_SERIAL")) {
1933 memset(serial, 0, MAX_RAID_SERIAL_LEN);
1934 fd2devname(fd, (char *) serial);
1935 return 0;
1936 }
1937
1938 if (rv != 0) {
1939 if (devname)
1940 fprintf(stderr,
1941 Name ": Failed to retrieve serial for %s\n",
1942 devname);
1943 return rv;
1944 }
1945
1946 rsp_len = scsi_serial[3];
1947 if (!rsp_len) {
1948 if (devname)
1949 fprintf(stderr,
1950 Name ": Failed to retrieve serial for %s\n",
1951 devname);
1952 return 2;
1953 }
1954 rsp_buf = (char *) &scsi_serial[4];
1955
1956 /* trim all whitespace and non-printable characters and convert
1957 * ':' to ';'
1958 */
1959 for (i = 0, dest = rsp_buf; i < rsp_len; i++) {
1960 src = &rsp_buf[i];
1961 if (*src > 0x20) {
1962 /* ':' is reserved for use in placeholder serial
1963 * numbers for missing disks
1964 */
1965 if (*src == ':')
1966 *dest++ = ';';
1967 else
1968 *dest++ = *src;
1969 }
1970 }
1971 len = dest - rsp_buf;
1972 dest = rsp_buf;
1973
1974 /* truncate leading characters */
1975 if (len > MAX_RAID_SERIAL_LEN) {
1976 dest += len - MAX_RAID_SERIAL_LEN;
1977 len = MAX_RAID_SERIAL_LEN;
1978 }
1979
1980 memset(serial, 0, MAX_RAID_SERIAL_LEN);
1981 memcpy(serial, dest, len);
1982
1983 return 0;
1984 }
1985
1986 static int serialcmp(__u8 *s1, __u8 *s2)
1987 {
1988 return strncmp((char *) s1, (char *) s2, MAX_RAID_SERIAL_LEN);
1989 }
1990
1991 static void serialcpy(__u8 *dest, __u8 *src)
1992 {
1993 strncpy((char *) dest, (char *) src, MAX_RAID_SERIAL_LEN);
1994 }
1995
1996 #ifndef MDASSEMBLE
1997 static struct dl *serial_to_dl(__u8 *serial, struct intel_super *super)
1998 {
1999 struct dl *dl;
2000
2001 for (dl = super->disks; dl; dl = dl->next)
2002 if (serialcmp(dl->serial, serial) == 0)
2003 break;
2004
2005 return dl;
2006 }
2007 #endif
2008
2009 static struct imsm_disk *
2010 __serial_to_disk(__u8 *serial, struct imsm_super *mpb, int *idx)
2011 {
2012 int i;
2013
2014 for (i = 0; i < mpb->num_disks; i++) {
2015 struct imsm_disk *disk = __get_imsm_disk(mpb, i);
2016
2017 if (serialcmp(disk->serial, serial) == 0) {
2018 if (idx)
2019 *idx = i;
2020 return disk;
2021 }
2022 }
2023
2024 return NULL;
2025 }
2026
2027 static int
2028 load_imsm_disk(int fd, struct intel_super *super, char *devname, int keep_fd)
2029 {
2030 struct imsm_disk *disk;
2031 struct dl *dl;
2032 struct stat stb;
2033 int rv;
2034 char name[40];
2035 __u8 serial[MAX_RAID_SERIAL_LEN];
2036
2037 rv = imsm_read_serial(fd, devname, serial);
2038
2039 if (rv != 0)
2040 return 2;
2041
2042 dl = calloc(1, sizeof(*dl));
2043 if (!dl) {
2044 if (devname)
2045 fprintf(stderr,
2046 Name ": failed to allocate disk buffer for %s\n",
2047 devname);
2048 return 2;
2049 }
2050
2051 fstat(fd, &stb);
2052 dl->major = major(stb.st_rdev);
2053 dl->minor = minor(stb.st_rdev);
2054 dl->next = super->disks;
2055 dl->fd = keep_fd ? fd : -1;
2056 assert(super->disks == NULL);
2057 super->disks = dl;
2058 serialcpy(dl->serial, serial);
2059 dl->index = -2;
2060 dl->e = NULL;
2061 fd2devname(fd, name);
2062 if (devname)
2063 dl->devname = strdup(devname);
2064 else
2065 dl->devname = strdup(name);
2066
2067 /* look up this disk's index in the current anchor */
2068 disk = __serial_to_disk(dl->serial, super->anchor, &dl->index);
2069 if (disk) {
2070 dl->disk = *disk;
2071 /* only set index on disks that are a member of a
2072 * populated contianer, i.e. one with raid_devs
2073 */
2074 if (is_failed(&dl->disk))
2075 dl->index = -2;
2076 else if (is_spare(&dl->disk))
2077 dl->index = -1;
2078 }
2079
2080 return 0;
2081 }
2082
2083 #ifndef MDASSEMBLE
2084 /* When migrating map0 contains the 'destination' state while map1
2085 * contains the current state. When not migrating map0 contains the
2086 * current state. This routine assumes that map[0].map_state is set to
2087 * the current array state before being called.
2088 *
2089 * Migration is indicated by one of the following states
2090 * 1/ Idle (migr_state=0 map0state=normal||unitialized||degraded||failed)
2091 * 2/ Initialize (migr_state=1 migr_type=MIGR_INIT map0state=normal
2092 * map1state=unitialized)
2093 * 3/ Repair (Resync) (migr_state=1 migr_type=MIGR_REPAIR map0state=normal
2094 * map1state=normal)
2095 * 4/ Rebuild (migr_state=1 migr_type=MIGR_REBUILD map0state=normal
2096 * map1state=degraded)
2097 */
2098 static void migrate(struct imsm_dev *dev, __u8 to_state, int migr_type)
2099 {
2100 struct imsm_map *dest;
2101 struct imsm_map *src = get_imsm_map(dev, 0);
2102
2103 dev->vol.migr_state = 1;
2104 set_migr_type(dev, migr_type);
2105 dev->vol.curr_migr_unit = 0;
2106 dest = get_imsm_map(dev, 1);
2107
2108 /* duplicate and then set the target end state in map[0] */
2109 memcpy(dest, src, sizeof_imsm_map(src));
2110 if (migr_type == MIGR_REBUILD) {
2111 __u32 ord;
2112 int i;
2113
2114 for (i = 0; i < src->num_members; i++) {
2115 ord = __le32_to_cpu(src->disk_ord_tbl[i]);
2116 set_imsm_ord_tbl_ent(src, i, ord_to_idx(ord));
2117 }
2118 }
2119
2120 src->map_state = to_state;
2121 }
2122
2123 static void end_migration(struct imsm_dev *dev, __u8 map_state)
2124 {
2125 struct imsm_map *map = get_imsm_map(dev, 0);
2126 struct imsm_map *prev = get_imsm_map(dev, dev->vol.migr_state);
2127 int i;
2128
2129 /* merge any IMSM_ORD_REBUILD bits that were not successfully
2130 * completed in the last migration.
2131 *
2132 * FIXME add support for online capacity expansion and
2133 * raid-level-migration
2134 */
2135 for (i = 0; i < prev->num_members; i++)
2136 map->disk_ord_tbl[i] |= prev->disk_ord_tbl[i];
2137
2138 dev->vol.migr_state = 0;
2139 dev->vol.curr_migr_unit = 0;
2140 map->map_state = map_state;
2141 }
2142 #endif
2143
2144 static int parse_raid_devices(struct intel_super *super)
2145 {
2146 int i;
2147 struct imsm_dev *dev_new;
2148 size_t len, len_migr;
2149 size_t space_needed = 0;
2150 struct imsm_super *mpb = super->anchor;
2151
2152 for (i = 0; i < super->anchor->num_raid_devs; i++) {
2153 struct imsm_dev *dev_iter = __get_imsm_dev(super->anchor, i);
2154 struct intel_dev *dv;
2155
2156 len = sizeof_imsm_dev(dev_iter, 0);
2157 len_migr = sizeof_imsm_dev(dev_iter, 1);
2158 if (len_migr > len)
2159 space_needed += len_migr - len;
2160
2161 dv = malloc(sizeof(*dv));
2162 if (!dv)
2163 return 1;
2164 dev_new = malloc(len_migr);
2165 if (!dev_new) {
2166 free(dv);
2167 return 1;
2168 }
2169 imsm_copy_dev(dev_new, dev_iter);
2170 dv->dev = dev_new;
2171 dv->index = i;
2172 dv->next = super->devlist;
2173 super->devlist = dv;
2174 }
2175
2176 /* ensure that super->buf is large enough when all raid devices
2177 * are migrating
2178 */
2179 if (__le32_to_cpu(mpb->mpb_size) + space_needed > super->len) {
2180 void *buf;
2181
2182 len = ROUND_UP(__le32_to_cpu(mpb->mpb_size) + space_needed, 512);
2183 if (posix_memalign(&buf, 512, len) != 0)
2184 return 1;
2185
2186 memcpy(buf, super->buf, super->len);
2187 memset(buf + super->len, 0, len - super->len);
2188 free(super->buf);
2189 super->buf = buf;
2190 super->len = len;
2191 }
2192
2193 return 0;
2194 }
2195
2196 /* retrieve a pointer to the bbm log which starts after all raid devices */
2197 struct bbm_log *__get_imsm_bbm_log(struct imsm_super *mpb)
2198 {
2199 void *ptr = NULL;
2200
2201 if (__le32_to_cpu(mpb->bbm_log_size)) {
2202 ptr = mpb;
2203 ptr += mpb->mpb_size - __le32_to_cpu(mpb->bbm_log_size);
2204 }
2205
2206 return ptr;
2207 }
2208
2209 static void __free_imsm(struct intel_super *super, int free_disks);
2210
2211 /* load_imsm_mpb - read matrix metadata
2212 * allocates super->mpb to be freed by free_super
2213 */
2214 static int load_imsm_mpb(int fd, struct intel_super *super, char *devname)
2215 {
2216 unsigned long long dsize;
2217 unsigned long long sectors;
2218 struct stat;
2219 struct imsm_super *anchor;
2220 __u32 check_sum;
2221
2222 get_dev_size(fd, NULL, &dsize);
2223 if (dsize < 1024) {
2224 if (devname)
2225 fprintf(stderr,
2226 Name ": %s: device to small for imsm\n",
2227 devname);
2228 return 1;
2229 }
2230
2231 if (lseek64(fd, dsize - (512 * 2), SEEK_SET) < 0) {
2232 if (devname)
2233 fprintf(stderr,
2234 Name ": Cannot seek to anchor block on %s: %s\n",
2235 devname, strerror(errno));
2236 return 1;
2237 }
2238
2239 if (posix_memalign((void**)&anchor, 512, 512) != 0) {
2240 if (devname)
2241 fprintf(stderr,
2242 Name ": Failed to allocate imsm anchor buffer"
2243 " on %s\n", devname);
2244 return 1;
2245 }
2246 if (read(fd, anchor, 512) != 512) {
2247 if (devname)
2248 fprintf(stderr,
2249 Name ": Cannot read anchor block on %s: %s\n",
2250 devname, strerror(errno));
2251 free(anchor);
2252 return 1;
2253 }
2254
2255 if (strncmp((char *) anchor->sig, MPB_SIGNATURE, MPB_SIG_LEN) != 0) {
2256 if (devname)
2257 fprintf(stderr,
2258 Name ": no IMSM anchor on %s\n", devname);
2259 free(anchor);
2260 return 2;
2261 }
2262
2263 __free_imsm(super, 0);
2264 super->len = ROUND_UP(anchor->mpb_size, 512);
2265 if (posix_memalign(&super->buf, 512, super->len) != 0) {
2266 if (devname)
2267 fprintf(stderr,
2268 Name ": unable to allocate %zu byte mpb buffer\n",
2269 super->len);
2270 free(anchor);
2271 return 2;
2272 }
2273 memcpy(super->buf, anchor, 512);
2274
2275 sectors = mpb_sectors(anchor) - 1;
2276 free(anchor);
2277 if (!sectors) {
2278 check_sum = __gen_imsm_checksum(super->anchor);
2279 if (check_sum != __le32_to_cpu(super->anchor->check_sum)) {
2280 if (devname)
2281 fprintf(stderr,
2282 Name ": IMSM checksum %x != %x on %s\n",
2283 check_sum,
2284 __le32_to_cpu(super->anchor->check_sum),
2285 devname);
2286 return 2;
2287 }
2288
2289 return 0;
2290 }
2291
2292 /* read the extended mpb */
2293 if (lseek64(fd, dsize - (512 * (2 + sectors)), SEEK_SET) < 0) {
2294 if (devname)
2295 fprintf(stderr,
2296 Name ": Cannot seek to extended mpb on %s: %s\n",
2297 devname, strerror(errno));
2298 return 1;
2299 }
2300
2301 if ((unsigned)read(fd, super->buf + 512, super->len - 512) != super->len - 512) {
2302 if (devname)
2303 fprintf(stderr,
2304 Name ": Cannot read extended mpb on %s: %s\n",
2305 devname, strerror(errno));
2306 return 2;
2307 }
2308
2309 check_sum = __gen_imsm_checksum(super->anchor);
2310 if (check_sum != __le32_to_cpu(super->anchor->check_sum)) {
2311 if (devname)
2312 fprintf(stderr,
2313 Name ": IMSM checksum %x != %x on %s\n",
2314 check_sum, __le32_to_cpu(super->anchor->check_sum),
2315 devname);
2316 return 3;
2317 }
2318
2319 /* FIXME the BBM log is disk specific so we cannot use this global
2320 * buffer for all disks. Ok for now since we only look at the global
2321 * bbm_log_size parameter to gate assembly
2322 */
2323 super->bbm_log = __get_imsm_bbm_log(super->anchor);
2324
2325 return 0;
2326 }
2327
2328 static int
2329 load_and_parse_mpb(int fd, struct intel_super *super, char *devname, int keep_fd)
2330 {
2331 int err;
2332
2333 err = load_imsm_mpb(fd, super, devname);
2334 if (err)
2335 return err;
2336 err = load_imsm_disk(fd, super, devname, keep_fd);
2337 if (err)
2338 return err;
2339 err = parse_raid_devices(super);
2340
2341 return err;
2342 }
2343
2344 static void __free_imsm_disk(struct dl *d)
2345 {
2346 if (d->fd >= 0)
2347 close(d->fd);
2348 if (d->devname)
2349 free(d->devname);
2350 if (d->e)
2351 free(d->e);
2352 free(d);
2353
2354 }
2355 static void free_imsm_disks(struct intel_super *super)
2356 {
2357 struct dl *d;
2358
2359 while (super->disks) {
2360 d = super->disks;
2361 super->disks = d->next;
2362 __free_imsm_disk(d);
2363 }
2364 while (super->missing) {
2365 d = super->missing;
2366 super->missing = d->next;
2367 __free_imsm_disk(d);
2368 }
2369
2370 }
2371
2372 /* free all the pieces hanging off of a super pointer */
2373 static void __free_imsm(struct intel_super *super, int free_disks)
2374 {
2375 if (super->buf) {
2376 free(super->buf);
2377 super->buf = NULL;
2378 }
2379 if (free_disks)
2380 free_imsm_disks(super);
2381 free_devlist(super);
2382 if (super->hba) {
2383 free((void *) super->hba);
2384 super->hba = NULL;
2385 }
2386 }
2387
2388 static void free_imsm(struct intel_super *super)
2389 {
2390 __free_imsm(super, 1);
2391 free(super);
2392 }
2393
2394 static void free_super_imsm(struct supertype *st)
2395 {
2396 struct intel_super *super = st->sb;
2397
2398 if (!super)
2399 return;
2400
2401 free_imsm(super);
2402 st->sb = NULL;
2403 }
2404
2405 static struct intel_super *alloc_super(void)
2406 {
2407 struct intel_super *super = malloc(sizeof(*super));
2408
2409 if (super) {
2410 memset(super, 0, sizeof(*super));
2411 super->current_vol = -1;
2412 super->create_offset = ~((__u32 ) 0);
2413 if (!check_env("IMSM_NO_PLATFORM"))
2414 super->orom = find_imsm_orom();
2415 if (super->orom && !check_env("IMSM_TEST_OROM")) {
2416 struct sys_dev *list, *ent;
2417
2418 /* find the first intel ahci controller */
2419 list = find_driver_devices("pci", "ahci");
2420 for (ent = list; ent; ent = ent->next)
2421 if (devpath_to_vendor(ent->path) == 0x8086)
2422 break;
2423 if (ent) {
2424 super->hba = ent->path;
2425 ent->path = NULL;
2426 }
2427 free_sys_dev(&list);
2428 }
2429 }
2430
2431 return super;
2432 }
2433
2434 #ifndef MDASSEMBLE
2435 /* find_missing - helper routine for load_super_imsm_all that identifies
2436 * disks that have disappeared from the system. This routine relies on
2437 * the mpb being uptodate, which it is at load time.
2438 */
2439 static int find_missing(struct intel_super *super)
2440 {
2441 int i;
2442 struct imsm_super *mpb = super->anchor;
2443 struct dl *dl;
2444 struct imsm_disk *disk;
2445
2446 for (i = 0; i < mpb->num_disks; i++) {
2447 disk = __get_imsm_disk(mpb, i);
2448 dl = serial_to_dl(disk->serial, super);
2449 if (dl)
2450 continue;
2451
2452 dl = malloc(sizeof(*dl));
2453 if (!dl)
2454 return 1;
2455 dl->major = 0;
2456 dl->minor = 0;
2457 dl->fd = -1;
2458 dl->devname = strdup("missing");
2459 dl->index = i;
2460 serialcpy(dl->serial, disk->serial);
2461 dl->disk = *disk;
2462 dl->e = NULL;
2463 dl->next = super->missing;
2464 super->missing = dl;
2465 }
2466
2467 return 0;
2468 }
2469
2470 static struct intel_disk *disk_list_get(__u8 *serial, struct intel_disk *disk_list)
2471 {
2472 struct intel_disk *idisk = disk_list;
2473
2474 while (idisk) {
2475 if (serialcmp(idisk->disk.serial, serial) == 0)
2476 break;
2477 idisk = idisk->next;
2478 }
2479
2480 return idisk;
2481 }
2482
2483 static int __prep_thunderdome(struct intel_super **table, int tbl_size,
2484 struct intel_super *super,
2485 struct intel_disk **disk_list)
2486 {
2487 struct imsm_disk *d = &super->disks->disk;
2488 struct imsm_super *mpb = super->anchor;
2489 int i, j;
2490
2491 for (i = 0; i < tbl_size; i++) {
2492 struct imsm_super *tbl_mpb = table[i]->anchor;
2493 struct imsm_disk *tbl_d = &table[i]->disks->disk;
2494
2495 if (tbl_mpb->family_num == mpb->family_num) {
2496 if (tbl_mpb->check_sum == mpb->check_sum) {
2497 dprintf("%s: mpb from %d:%d matches %d:%d\n",
2498 __func__, super->disks->major,
2499 super->disks->minor,
2500 table[i]->disks->major,
2501 table[i]->disks->minor);
2502 break;
2503 }
2504
2505 if (((is_configured(d) && !is_configured(tbl_d)) ||
2506 is_configured(d) == is_configured(tbl_d)) &&
2507 tbl_mpb->generation_num < mpb->generation_num) {
2508 /* current version of the mpb is a
2509 * better candidate than the one in
2510 * super_table, but copy over "cross
2511 * generational" status
2512 */
2513 struct intel_disk *idisk;
2514
2515 dprintf("%s: mpb from %d:%d replaces %d:%d\n",
2516 __func__, super->disks->major,
2517 super->disks->minor,
2518 table[i]->disks->major,
2519 table[i]->disks->minor);
2520
2521 idisk = disk_list_get(tbl_d->serial, *disk_list);
2522 if (idisk && is_failed(&idisk->disk))
2523 tbl_d->status |= FAILED_DISK;
2524 break;
2525 } else {
2526 struct intel_disk *idisk;
2527 struct imsm_disk *disk;
2528
2529 /* tbl_mpb is more up to date, but copy
2530 * over cross generational status before
2531 * returning
2532 */
2533 disk = __serial_to_disk(d->serial, mpb, NULL);
2534 if (disk && is_failed(disk))
2535 d->status |= FAILED_DISK;
2536
2537 idisk = disk_list_get(d->serial, *disk_list);
2538 if (idisk) {
2539 idisk->owner = i;
2540 if (disk && is_configured(disk))
2541 idisk->disk.status |= CONFIGURED_DISK;
2542 }
2543
2544 dprintf("%s: mpb from %d:%d prefer %d:%d\n",
2545 __func__, super->disks->major,
2546 super->disks->minor,
2547 table[i]->disks->major,
2548 table[i]->disks->minor);
2549
2550 return tbl_size;
2551 }
2552 }
2553 }
2554
2555 if (i >= tbl_size)
2556 table[tbl_size++] = super;
2557 else
2558 table[i] = super;
2559
2560 /* update/extend the merged list of imsm_disk records */
2561 for (j = 0; j < mpb->num_disks; j++) {
2562 struct imsm_disk *disk = __get_imsm_disk(mpb, j);
2563 struct intel_disk *idisk;
2564
2565 idisk = disk_list_get(disk->serial, *disk_list);
2566 if (idisk) {
2567 idisk->disk.status |= disk->status;
2568 if (is_configured(&idisk->disk) ||
2569 is_failed(&idisk->disk))
2570 idisk->disk.status &= ~(SPARE_DISK);
2571 } else {
2572 idisk = calloc(1, sizeof(*idisk));
2573 if (!idisk)
2574 return -1;
2575 idisk->owner = IMSM_UNKNOWN_OWNER;
2576 idisk->disk = *disk;
2577 idisk->next = *disk_list;
2578 *disk_list = idisk;
2579 }
2580
2581 if (serialcmp(idisk->disk.serial, d->serial) == 0)
2582 idisk->owner = i;
2583 }
2584
2585 return tbl_size;
2586 }
2587
2588 static struct intel_super *
2589 validate_members(struct intel_super *super, struct intel_disk *disk_list,
2590 const int owner)
2591 {
2592 struct imsm_super *mpb = super->anchor;
2593 int ok_count = 0;
2594 int i;
2595
2596 for (i = 0; i < mpb->num_disks; i++) {
2597 struct imsm_disk *disk = __get_imsm_disk(mpb, i);
2598 struct intel_disk *idisk;
2599
2600 idisk = disk_list_get(disk->serial, disk_list);
2601 if (idisk) {
2602 if (idisk->owner == owner ||
2603 idisk->owner == IMSM_UNKNOWN_OWNER)
2604 ok_count++;
2605 else
2606 dprintf("%s: '%.16s' owner %d != %d\n",
2607 __func__, disk->serial, idisk->owner,
2608 owner);
2609 } else {
2610 dprintf("%s: unknown disk %x [%d]: %.16s\n",
2611 __func__, __le32_to_cpu(mpb->family_num), i,
2612 disk->serial);
2613 break;
2614 }
2615 }
2616
2617 if (ok_count == mpb->num_disks)
2618 return super;
2619 return NULL;
2620 }
2621
2622 static void show_conflicts(__u32 family_num, struct intel_super *super_list)
2623 {
2624 struct intel_super *s;
2625
2626 for (s = super_list; s; s = s->next) {
2627 if (family_num != s->anchor->family_num)
2628 continue;
2629 fprintf(stderr, "Conflict, offlining family %#x on '%s'\n",
2630 __le32_to_cpu(family_num), s->disks->devname);
2631 }
2632 }
2633
2634 static struct intel_super *
2635 imsm_thunderdome(struct intel_super **super_list, int len)
2636 {
2637 struct intel_super *super_table[len];
2638 struct intel_disk *disk_list = NULL;
2639 struct intel_super *champion, *spare;
2640 struct intel_super *s, **del;
2641 int tbl_size = 0;
2642 int conflict;
2643 int i;
2644
2645 memset(super_table, 0, sizeof(super_table));
2646 for (s = *super_list; s; s = s->next)
2647 tbl_size = __prep_thunderdome(super_table, tbl_size, s, &disk_list);
2648
2649 for (i = 0; i < tbl_size; i++) {
2650 struct imsm_disk *d;
2651 struct intel_disk *idisk;
2652 struct imsm_super *mpb = super_table[i]->anchor;
2653
2654 s = super_table[i];
2655 d = &s->disks->disk;
2656
2657 /* 'd' must appear in merged disk list for its
2658 * configuration to be valid
2659 */
2660 idisk = disk_list_get(d->serial, disk_list);
2661 if (idisk && idisk->owner == i)
2662 s = validate_members(s, disk_list, i);
2663 else
2664 s = NULL;
2665
2666 if (!s)
2667 dprintf("%s: marking family: %#x from %d:%d offline\n",
2668 __func__, mpb->family_num,
2669 super_table[i]->disks->major,
2670 super_table[i]->disks->minor);
2671 super_table[i] = s;
2672 }
2673
2674 /* This is where the mdadm implementation differs from the Windows
2675 * driver which has no strict concept of a container. We can only
2676 * assemble one family from a container, so when returning a prodigal
2677 * array member to this system the code will not be able to disambiguate
2678 * the container contents that should be assembled ("foreign" versus
2679 * "local"). It requires user intervention to set the orig_family_num
2680 * to a new value to establish a new container. The Windows driver in
2681 * this situation fixes up the volume name in place and manages the
2682 * foreign array as an independent entity.
2683 */
2684 s = NULL;
2685 spare = NULL;
2686 conflict = 0;
2687 for (i = 0; i < tbl_size; i++) {
2688 struct intel_super *tbl_ent = super_table[i];
2689 int is_spare = 0;
2690
2691 if (!tbl_ent)
2692 continue;
2693
2694 if (tbl_ent->anchor->num_raid_devs == 0) {
2695 spare = tbl_ent;
2696 is_spare = 1;
2697 }
2698
2699 if (s && !is_spare) {
2700 show_conflicts(tbl_ent->anchor->family_num, *super_list);
2701 conflict++;
2702 } else if (!s && !is_spare)
2703 s = tbl_ent;
2704 }
2705
2706 if (!s)
2707 s = spare;
2708 if (!s) {
2709 champion = NULL;
2710 goto out;
2711 }
2712 champion = s;
2713
2714 if (conflict)
2715 fprintf(stderr, "Chose family %#x on '%s', "
2716 "assemble conflicts to new container with '--update=uuid'\n",
2717 __le32_to_cpu(s->anchor->family_num), s->disks->devname);
2718
2719 /* collect all dl's onto 'champion', and update them to
2720 * champion's version of the status
2721 */
2722 for (s = *super_list; s; s = s->next) {
2723 struct imsm_super *mpb = champion->anchor;
2724 struct dl *dl = s->disks;
2725
2726 if (s == champion)
2727 continue;
2728
2729 for (i = 0; i < mpb->num_disks; i++) {
2730 struct imsm_disk *disk;
2731
2732 disk = __serial_to_disk(dl->serial, mpb, &dl->index);
2733 if (disk) {
2734 dl->disk = *disk;
2735 /* only set index on disks that are a member of
2736 * a populated contianer, i.e. one with
2737 * raid_devs
2738 */
2739 if (is_failed(&dl->disk))
2740 dl->index = -2;
2741 else if (is_spare(&dl->disk))
2742 dl->index = -1;
2743 break;
2744 }
2745 }
2746
2747 if (i >= mpb->num_disks) {
2748 struct intel_disk *idisk;
2749
2750 idisk = disk_list_get(dl->serial, disk_list);
2751 if (idisk && is_spare(&idisk->disk) &&
2752 !is_failed(&idisk->disk) && !is_configured(&idisk->disk))
2753 dl->index = -1;
2754 else {
2755 dl->index = -2;
2756 continue;
2757 }
2758 }
2759
2760 dl->next = champion->disks;
2761 champion->disks = dl;
2762 s->disks = NULL;
2763 }
2764
2765 /* delete 'champion' from super_list */
2766 for (del = super_list; *del; ) {
2767 if (*del == champion) {
2768 *del = (*del)->next;
2769 break;
2770 } else
2771 del = &(*del)->next;
2772 }
2773 champion->next = NULL;
2774
2775 out:
2776 while (disk_list) {
2777 struct intel_disk *idisk = disk_list;
2778
2779 disk_list = disk_list->next;
2780 free(idisk);
2781 }
2782
2783 return champion;
2784 }
2785
2786 static int load_super_imsm_all(struct supertype *st, int fd, void **sbp,
2787 char *devname, int keep_fd)
2788 {
2789 struct mdinfo *sra;
2790 struct intel_super *super_list = NULL;
2791 struct intel_super *super = NULL;
2792 int devnum = fd2devnum(fd);
2793 struct mdinfo *sd;
2794 int retry;
2795 int err = 0;
2796 int i;
2797
2798 /* check if 'fd' an opened container */
2799 sra = sysfs_read(fd, 0, GET_LEVEL|GET_VERSION|GET_DEVS|GET_STATE);
2800 if (!sra)
2801 return 1;
2802
2803 if (sra->array.major_version != -1 ||
2804 sra->array.minor_version != -2 ||
2805 strcmp(sra->text_version, "imsm") != 0) {
2806 err = 1;
2807 goto error;
2808 }
2809 /* load all mpbs */
2810 for (sd = sra->devs, i = 0; sd; sd = sd->next, i++) {
2811 struct intel_super *s = alloc_super();
2812 char nm[32];
2813 int dfd;
2814
2815 err = 1;
2816 if (!s)
2817 goto error;
2818 s->next = super_list;
2819 super_list = s;
2820
2821 err = 2;
2822 sprintf(nm, "%d:%d", sd->disk.major, sd->disk.minor);
2823 dfd = dev_open(nm, keep_fd ? O_RDWR : O_RDONLY);
2824 if (dfd < 0)
2825 goto error;
2826
2827 err = load_and_parse_mpb(dfd, s, NULL, keep_fd);
2828
2829 /* retry the load if we might have raced against mdmon */
2830 if (err == 3 && mdmon_running(devnum))
2831 for (retry = 0; retry < 3; retry++) {
2832 usleep(3000);
2833 err = load_and_parse_mpb(dfd, s, NULL, keep_fd);
2834 if (err != 3)
2835 break;
2836 }
2837 if (!keep_fd)
2838 close(dfd);
2839 if (err)
2840 goto error;
2841 }
2842
2843 /* all mpbs enter, maybe one leaves */
2844 super = imsm_thunderdome(&super_list, i);
2845 if (!super) {
2846 err = 1;
2847 goto error;
2848 }
2849
2850 if (find_missing(super) != 0) {
2851 free_imsm(super);
2852 err = 2;
2853 goto error;
2854 }
2855 err = 0;
2856
2857 error:
2858 while (super_list) {
2859 struct intel_super *s = super_list;
2860
2861 super_list = super_list->next;
2862 free_imsm(s);
2863 }
2864 sysfs_free(sra);
2865
2866 if (err)
2867 return err;
2868
2869 *sbp = super;
2870 st->container_dev = devnum;
2871 if (err == 0 && st->ss == NULL) {
2872 st->ss = &super_imsm;
2873 st->minor_version = 0;
2874 st->max_devs = IMSM_MAX_DEVICES;
2875 }
2876 st->loaded_container = 1;
2877
2878 return 0;
2879 }
2880 #endif
2881
2882 static int load_super_imsm(struct supertype *st, int fd, char *devname)
2883 {
2884 struct intel_super *super;
2885 int rv;
2886
2887 #ifndef MDASSEMBLE
2888 if (load_super_imsm_all(st, fd, &st->sb, devname, 1) == 0)
2889 return 0;
2890 #endif
2891
2892 if (test_partition(fd))
2893 /* IMSM not allowed on partitions */
2894 return 1;
2895
2896 free_super_imsm(st);
2897
2898 super = alloc_super();
2899 if (!super) {
2900 fprintf(stderr,
2901 Name ": malloc of %zu failed.\n",
2902 sizeof(*super));
2903 return 1;
2904 }
2905
2906 rv = load_and_parse_mpb(fd, super, devname, 0);
2907
2908 if (rv) {
2909 if (devname)
2910 fprintf(stderr,
2911 Name ": Failed to load all information "
2912 "sections on %s\n", devname);
2913 free_imsm(super);
2914 return rv;
2915 }
2916
2917 st->sb = super;
2918 if (st->ss == NULL) {
2919 st->ss = &super_imsm;
2920 st->minor_version = 0;
2921 st->max_devs = IMSM_MAX_DEVICES;
2922 }
2923 st->loaded_container = 0;
2924
2925 return 0;
2926 }
2927
2928 static __u16 info_to_blocks_per_strip(mdu_array_info_t *info)
2929 {
2930 if (info->level == 1)
2931 return 128;
2932 return info->chunk_size >> 9;
2933 }
2934
2935 static __u32 info_to_num_data_stripes(mdu_array_info_t *info, int num_domains)
2936 {
2937 __u32 num_stripes;
2938
2939 num_stripes = (info->size * 2) / info_to_blocks_per_strip(info);
2940 num_stripes /= num_domains;
2941
2942 return num_stripes;
2943 }
2944
2945 static __u32 info_to_blocks_per_member(mdu_array_info_t *info)
2946 {
2947 if (info->level == 1)
2948 return info->size * 2;
2949 else
2950 return (info->size * 2) & ~(info_to_blocks_per_strip(info) - 1);
2951 }
2952
2953 static void imsm_update_version_info(struct intel_super *super)
2954 {
2955 /* update the version and attributes */
2956 struct imsm_super *mpb = super->anchor;
2957 char *version;
2958 struct imsm_dev *dev;
2959 struct imsm_map *map;
2960 int i;
2961
2962 for (i = 0; i < mpb->num_raid_devs; i++) {
2963 dev = get_imsm_dev(super, i);
2964 map = get_imsm_map(dev, 0);
2965 if (__le32_to_cpu(dev->size_high) > 0)
2966 mpb->attributes |= MPB_ATTRIB_2TB;
2967
2968 /* FIXME detect when an array spans a port multiplier */
2969 #if 0
2970 mpb->attributes |= MPB_ATTRIB_PM;
2971 #endif
2972
2973 if (mpb->num_raid_devs > 1 ||
2974 mpb->attributes != MPB_ATTRIB_CHECKSUM_VERIFY) {
2975 version = MPB_VERSION_ATTRIBS;
2976 switch (get_imsm_raid_level(map)) {
2977 case 0: mpb->attributes |= MPB_ATTRIB_RAID0; break;
2978 case 1: mpb->attributes |= MPB_ATTRIB_RAID1; break;
2979 case 10: mpb->attributes |= MPB_ATTRIB_RAID10; break;
2980 case 5: mpb->attributes |= MPB_ATTRIB_RAID5; break;
2981 }
2982 } else {
2983 if (map->num_members >= 5)
2984 version = MPB_VERSION_5OR6_DISK_ARRAY;
2985 else if (dev->status == DEV_CLONE_N_GO)
2986 version = MPB_VERSION_CNG;
2987 else if (get_imsm_raid_level(map) == 5)
2988 version = MPB_VERSION_RAID5;
2989 else if (map->num_members >= 3)
2990 version = MPB_VERSION_3OR4_DISK_ARRAY;
2991 else if (get_imsm_raid_level(map) == 1)
2992 version = MPB_VERSION_RAID1;
2993 else
2994 version = MPB_VERSION_RAID0;
2995 }
2996 strcpy(((char *) mpb->sig) + strlen(MPB_SIGNATURE), version);
2997 }
2998 }
2999
3000 static int check_name(struct intel_super *super, char *name, int quiet)
3001 {
3002 struct imsm_super *mpb = super->anchor;
3003 char *reason = NULL;
3004 int i;
3005
3006 if (strlen(name) > MAX_RAID_SERIAL_LEN)
3007 reason = "must be 16 characters or less";
3008
3009 for (i = 0; i < mpb->num_raid_devs; i++) {
3010 struct imsm_dev *dev = get_imsm_dev(super, i);
3011
3012 if (strncmp((char *) dev->volume, name, MAX_RAID_SERIAL_LEN) == 0) {
3013 reason = "already exists";
3014 break;
3015 }
3016 }
3017
3018 if (reason && !quiet)
3019 fprintf(stderr, Name ": imsm volume name %s\n", reason);
3020
3021 return !reason;
3022 }
3023
3024 static int init_super_imsm_volume(struct supertype *st, mdu_array_info_t *info,
3025 unsigned long long size, char *name,
3026 char *homehost, int *uuid)
3027 {
3028 /* We are creating a volume inside a pre-existing container.
3029 * so st->sb is already set.
3030 */
3031 struct intel_super *super = st->sb;
3032 struct imsm_super *mpb = super->anchor;
3033 struct intel_dev *dv;
3034 struct imsm_dev *dev;
3035 struct imsm_vol *vol;
3036 struct imsm_map *map;
3037 int idx = mpb->num_raid_devs;
3038 int i;
3039 unsigned long long array_blocks;
3040 size_t size_old, size_new;
3041 __u32 num_data_stripes;
3042
3043 if (super->orom && mpb->num_raid_devs >= super->orom->vpa) {
3044 fprintf(stderr, Name": This imsm-container already has the "
3045 "maximum of %d volumes\n", super->orom->vpa);
3046 return 0;
3047 }
3048
3049 /* ensure the mpb is large enough for the new data */
3050 size_old = __le32_to_cpu(mpb->mpb_size);
3051 size_new = disks_to_mpb_size(info->nr_disks);
3052 if (size_new > size_old) {
3053 void *mpb_new;
3054 size_t size_round = ROUND_UP(size_new, 512);
3055
3056 if (posix_memalign(&mpb_new, 512, size_round) != 0) {
3057 fprintf(stderr, Name": could not allocate new mpb\n");
3058 return 0;
3059 }
3060 memcpy(mpb_new, mpb, size_old);
3061 free(mpb);
3062 mpb = mpb_new;
3063 super->anchor = mpb_new;
3064 mpb->mpb_size = __cpu_to_le32(size_new);
3065 memset(mpb_new + size_old, 0, size_round - size_old);
3066 }
3067 super->current_vol = idx;
3068 /* when creating the first raid device in this container set num_disks
3069 * to zero, i.e. delete this spare and add raid member devices in
3070 * add_to_super_imsm_volume()
3071 */
3072 if (super->current_vol == 0)
3073 mpb->num_disks = 0;
3074
3075 if (!check_name(super, name, 0))
3076 return 0;
3077 sprintf(st->subarray, "%d", idx);
3078 dv = malloc(sizeof(*dv));
3079 if (!dv) {
3080 fprintf(stderr, Name ": failed to allocate device list entry\n");
3081 return 0;
3082 }
3083 dev = malloc(sizeof(*dev) + sizeof(__u32) * (info->raid_disks - 1));
3084 if (!dev) {
3085 free(dv);
3086 fprintf(stderr, Name": could not allocate raid device\n");
3087 return 0;
3088 }
3089 strncpy((char *) dev->volume, name, MAX_RAID_SERIAL_LEN);
3090 if (info->level == 1)
3091 array_blocks = info_to_blocks_per_member(info);
3092 else
3093 array_blocks = calc_array_size(info->level, info->raid_disks,
3094 info->layout, info->chunk_size,
3095 info->size*2);
3096 /* round array size down to closest MB */
3097 array_blocks = (array_blocks >> SECT_PER_MB_SHIFT) << SECT_PER_MB_SHIFT;
3098
3099 dev->size_low = __cpu_to_le32((__u32) array_blocks);
3100 dev->size_high = __cpu_to_le32((__u32) (array_blocks >> 32));
3101 dev->status = __cpu_to_le32(0);
3102 dev->reserved_blocks = __cpu_to_le32(0);
3103 vol = &dev->vol;
3104 vol->migr_state = 0;
3105 set_migr_type(dev, MIGR_INIT);
3106 vol->dirty = 0;
3107 vol->curr_migr_unit = 0;
3108 map = get_imsm_map(dev, 0);
3109 map->pba_of_lba0 = __cpu_to_le32(super->create_offset);
3110 map->blocks_per_member = __cpu_to_le32(info_to_blocks_per_member(info));
3111 map->blocks_per_strip = __cpu_to_le16(info_to_blocks_per_strip(info));
3112 map->failed_disk_num = ~0;
3113 map->map_state = info->level ? IMSM_T_STATE_UNINITIALIZED :
3114 IMSM_T_STATE_NORMAL;
3115 map->ddf = 1;
3116
3117 if (info->level == 1 && info->raid_disks > 2) {
3118 free(dev);
3119 free(dv);
3120 fprintf(stderr, Name": imsm does not support more than 2 disks"
3121 "in a raid1 volume\n");
3122 return 0;
3123 }
3124
3125 map->raid_level = info->level;
3126 if (info->level == 10) {
3127 map->raid_level = 1;
3128 map->num_domains = info->raid_disks / 2;
3129 } else if (info->level == 1)
3130 map->num_domains = info->raid_disks;
3131 else
3132 map->num_domains = 1;
3133
3134 num_data_stripes = info_to_num_data_stripes(info, map->num_domains);
3135 map->num_data_stripes = __cpu_to_le32(num_data_stripes);
3136
3137 map->num_members = info->raid_disks;
3138 for (i = 0; i < map->num_members; i++) {
3139 /* initialized in add_to_super */
3140 set_imsm_ord_tbl_ent(map, i, IMSM_ORD_REBUILD);
3141 }
3142 mpb->num_raid_devs++;
3143
3144 dv->dev = dev;
3145 dv->index = super->current_vol;
3146 dv->next = super->devlist;
3147 super->devlist = dv;
3148
3149 imsm_update_version_info(super);
3150
3151 return 1;
3152 }
3153
3154 static int init_super_imsm(struct supertype *st, mdu_array_info_t *info,
3155 unsigned long long size, char *name,
3156 char *homehost, int *uuid)
3157 {
3158 /* This is primarily called by Create when creating a new array.
3159 * We will then get add_to_super called for each component, and then
3160 * write_init_super called to write it out to each device.
3161 * For IMSM, Create can create on fresh devices or on a pre-existing
3162 * array.
3163 * To create on a pre-existing array a different method will be called.
3164 * This one is just for fresh drives.
3165 */
3166 struct intel_super *super;
3167 struct imsm_super *mpb;
3168 size_t mpb_size;
3169 char *version;
3170
3171 if (st->sb)
3172 return init_super_imsm_volume(st, info, size, name, homehost, uuid);
3173
3174 if (info)
3175 mpb_size = disks_to_mpb_size(info->nr_disks);
3176 else
3177 mpb_size = 512;
3178
3179 super = alloc_super();
3180 if (super && posix_memalign(&super->buf, 512, mpb_size) != 0) {
3181 free(super);
3182 super = NULL;
3183 }
3184 if (!super) {
3185 fprintf(stderr, Name
3186 ": %s could not allocate superblock\n", __func__);
3187 return 0;
3188 }
3189 memset(super->buf, 0, mpb_size);
3190 mpb = super->buf;
3191 mpb->mpb_size = __cpu_to_le32(mpb_size);
3192 st->sb = super;
3193
3194 if (info == NULL) {
3195 /* zeroing superblock */
3196 return 0;
3197 }
3198
3199 mpb->attributes = MPB_ATTRIB_CHECKSUM_VERIFY;
3200
3201 version = (char *) mpb->sig;
3202 strcpy(version, MPB_SIGNATURE);
3203 version += strlen(MPB_SIGNATURE);
3204 strcpy(version, MPB_VERSION_RAID0);
3205
3206 return 1;
3207 }
3208
3209 #ifndef MDASSEMBLE
3210 static int add_to_super_imsm_volume(struct supertype *st, mdu_disk_info_t *dk,
3211 int fd, char *devname)
3212 {
3213 struct intel_super *super = st->sb;
3214 struct imsm_super *mpb = super->anchor;
3215 struct dl *dl;
3216 struct imsm_dev *dev;
3217 struct imsm_map *map;
3218 int slot;
3219
3220 dev = get_imsm_dev(super, super->current_vol);
3221 map = get_imsm_map(dev, 0);
3222
3223 if (! (dk->state & (1<<MD_DISK_SYNC))) {
3224 fprintf(stderr, Name ": %s: Cannot add spare devices to IMSM volume\n",
3225 devname);
3226 return 1;
3227 }
3228
3229 if (fd == -1) {
3230 /* we're doing autolayout so grab the pre-marked (in
3231 * validate_geometry) raid_disk
3232 */
3233 for (dl = super->disks; dl; dl = dl->next)
3234 if (dl->raiddisk == dk->raid_disk)
3235 break;
3236 } else {
3237 for (dl = super->disks; dl ; dl = dl->next)
3238 if (dl->major == dk->major &&
3239 dl->minor == dk->minor)
3240 break;
3241 }
3242
3243 if (!dl) {
3244 fprintf(stderr, Name ": %s is not a member of the same container\n", devname);
3245 return 1;
3246 }
3247
3248 /* add a pristine spare to the metadata */
3249 if (dl->index < 0) {
3250 dl->index = super->anchor->num_disks;
3251 super->anchor->num_disks++;
3252 }
3253 /* Check the device has not already been added */
3254 slot = get_imsm_disk_slot(map, dl->index);
3255 if (slot >= 0 &&
3256 (get_imsm_ord_tbl_ent(dev, slot) & IMSM_ORD_REBUILD) == 0) {
3257 fprintf(stderr, Name ": %s has been included in this array twice\n",
3258 devname);
3259 return 1;
3260 }
3261 set_imsm_ord_tbl_ent(map, dk->number, dl->index);
3262 dl->disk.status = CONFIGURED_DISK;
3263
3264 /* if we are creating the first raid device update the family number */
3265 if (super->current_vol == 0) {
3266 __u32 sum;
3267 struct imsm_dev *_dev = __get_imsm_dev(mpb, 0);
3268 struct imsm_disk *_disk = __get_imsm_disk(mpb, dl->index);
3269
3270 if (!_dev || !_disk) {
3271 fprintf(stderr, Name ": BUG mpb setup error\n");
3272 return 1;
3273 }
3274 *_dev = *dev;
3275 *_disk = dl->disk;
3276 sum = random32();
3277 sum += __gen_imsm_checksum(mpb);
3278 mpb->family_num = __cpu_to_le32(sum);
3279 mpb->orig_family_num = mpb->family_num;
3280 }
3281
3282 return 0;
3283 }
3284
3285 static int add_to_super_imsm(struct supertype *st, mdu_disk_info_t *dk,
3286 int fd, char *devname)
3287 {
3288 struct intel_super *super = st->sb;
3289 struct dl *dd;
3290 unsigned long long size;
3291 __u32 id;
3292 int rv;
3293 struct stat stb;
3294
3295 /* if we are on an RAID enabled platform check that the disk is
3296 * attached to the raid controller
3297 */
3298 if (super->hba && !disk_attached_to_hba(fd, super->hba)) {
3299 fprintf(stderr,
3300 Name ": %s is not attached to the raid controller: %s\n",
3301 devname ? : "disk", super->hba);
3302 return 1;
3303 }
3304
3305 if (super->current_vol >= 0)
3306 return add_to_super_imsm_volume(st, dk, fd, devname);
3307
3308 fstat(fd, &stb);
3309 dd = malloc(sizeof(*dd));
3310 if (!dd) {
3311 fprintf(stderr,
3312 Name ": malloc failed %s:%d.\n", __func__, __LINE__);
3313 return 1;
3314 }
3315 memset(dd, 0, sizeof(*dd));
3316 dd->major = major(stb.st_rdev);
3317 dd->minor = minor(stb.st_rdev);
3318 dd->index = -1;
3319 dd->devname = devname ? strdup(devname) : NULL;
3320 dd->fd = fd;
3321 dd->e = NULL;
3322 rv = imsm_read_serial(fd, devname, dd->serial);
3323 if (rv) {
3324 fprintf(stderr,
3325 Name ": failed to retrieve scsi serial, aborting\n");
3326 free(dd);
3327 abort();
3328 }
3329
3330 get_dev_size(fd, NULL, &size);
3331 size /= 512;
3332 serialcpy(dd->disk.serial, dd->serial);
3333 dd->disk.total_blocks = __cpu_to_le32(size);
3334 dd->disk.status = SPARE_DISK;
3335 if (sysfs_disk_to_scsi_id(fd, &id) == 0)
3336 dd->disk.scsi_id = __cpu_to_le32(id);
3337 else
3338 dd->disk.scsi_id = __cpu_to_le32(0);
3339
3340 if (st->update_tail) {
3341 dd->next = super->add;
3342 super->add = dd;
3343 } else {
3344 dd->next = super->disks;
3345 super->disks = dd;
3346 }
3347
3348 return 0;
3349 }
3350
3351 static int store_imsm_mpb(int fd, struct imsm_super *mpb);
3352
3353 static union {
3354 char buf[512];
3355 struct imsm_super anchor;
3356 } spare_record __attribute__ ((aligned(512)));
3357
3358 /* spare records have their own family number and do not have any defined raid
3359 * devices
3360 */
3361 static int write_super_imsm_spares(struct intel_super *super, int doclose)
3362 {
3363 struct imsm_super *mpb = super->anchor;
3364 struct imsm_super *spare = &spare_record.anchor;
3365 __u32 sum;
3366 struct dl *d;
3367
3368 spare->mpb_size = __cpu_to_le32(sizeof(struct imsm_super)),
3369 spare->generation_num = __cpu_to_le32(1UL),
3370 spare->attributes = MPB_ATTRIB_CHECKSUM_VERIFY;
3371 spare->num_disks = 1,
3372 spare->num_raid_devs = 0,
3373 spare->cache_size = mpb->cache_size,
3374 spare->pwr_cycle_count = __cpu_to_le32(1),
3375
3376 snprintf((char *) spare->sig, MAX_SIGNATURE_LENGTH,
3377 MPB_SIGNATURE MPB_VERSION_RAID0);
3378
3379 for (d = super->disks; d; d = d->next) {
3380 if (d->index != -1)
3381 continue;
3382
3383 spare->disk[0] = d->disk;
3384 sum = __gen_imsm_checksum(spare);
3385 spare->family_num = __cpu_to_le32(sum);
3386 spare->orig_family_num = 0;
3387 sum = __gen_imsm_checksum(spare);
3388 spare->check_sum = __cpu_to_le32(sum);
3389
3390 if (store_imsm_mpb(d->fd, spare)) {
3391 fprintf(stderr, "%s: failed for device %d:%d %s\n",
3392 __func__, d->major, d->minor, strerror(errno));
3393 return 1;
3394 }
3395 if (doclose) {
3396 close(d->fd);
3397 d->fd = -1;
3398 }
3399 }
3400
3401 return 0;
3402 }
3403
3404 static int write_super_imsm(struct intel_super *super, int doclose)
3405 {
3406 struct imsm_super *mpb = super->anchor;
3407 struct dl *d;
3408 __u32 generation;
3409 __u32 sum;
3410 int spares = 0;
3411 int i;
3412 __u32 mpb_size = sizeof(struct imsm_super) - sizeof(struct imsm_disk);
3413
3414 /* 'generation' is incremented everytime the metadata is written */
3415 generation = __le32_to_cpu(mpb->generation_num);
3416 generation++;
3417 mpb->generation_num = __cpu_to_le32(generation);
3418
3419 /* fix up cases where previous mdadm releases failed to set
3420 * orig_family_num
3421 */
3422 if (mpb->orig_family_num == 0)
3423 mpb->orig_family_num = mpb->family_num;
3424
3425 mpb_size += sizeof(struct imsm_disk) * mpb->num_disks;
3426 for (d = super->disks; d; d = d->next) {
3427 if (d->index == -1)
3428 spares++;
3429 else
3430 mpb->disk[d->index] = d->disk;
3431 }
3432 for (d = super->missing; d; d = d->next)
3433 mpb->disk[d->index] = d->disk;
3434
3435 for (i = 0; i < mpb->num_raid_devs; i++) {
3436 struct imsm_dev *dev = __get_imsm_dev(mpb, i);
3437
3438 imsm_copy_dev(dev, get_imsm_dev(super, i));
3439 mpb_size += sizeof_imsm_dev(dev, 0);
3440 }
3441 mpb_size += __le32_to_cpu(mpb->bbm_log_size);
3442 mpb->mpb_size = __cpu_to_le32(mpb_size);
3443
3444 /* recalculate checksum */
3445 sum = __gen_imsm_checksum(mpb);
3446 mpb->check_sum = __cpu_to_le32(sum);
3447
3448 /* write the mpb for disks that compose raid devices */
3449 for (d = super->disks; d ; d = d->next) {
3450 if (d->index < 0)
3451 continue;
3452 if (store_imsm_mpb(d->fd, mpb))
3453 fprintf(stderr, "%s: failed for device %d:%d %s\n",
3454 __func__, d->major, d->minor, strerror(errno));
3455 if (doclose) {
3456 close(d->fd);
3457 d->fd = -1;
3458 }
3459 }
3460
3461 if (spares)
3462 return write_super_imsm_spares(super, doclose);
3463
3464 return 0;
3465 }
3466
3467
3468 static int create_array(struct supertype *st, int dev_idx)
3469 {
3470 size_t len;
3471 struct imsm_update_create_array *u;
3472 struct intel_super *super = st->sb;
3473 struct imsm_dev *dev = get_imsm_dev(super, dev_idx);
3474 struct imsm_map *map = get_imsm_map(dev, 0);
3475 struct disk_info *inf;
3476 struct imsm_disk *disk;
3477 int i;
3478
3479 len = sizeof(*u) - sizeof(*dev) + sizeof_imsm_dev(dev, 0) +
3480 sizeof(*inf) * map->num_members;
3481 u = malloc(len);
3482 if (!u) {
3483 fprintf(stderr, "%s: failed to allocate update buffer\n",
3484 __func__);
3485 return 1;
3486 }
3487
3488 u->type = update_create_array;
3489 u->dev_idx = dev_idx;
3490 imsm_copy_dev(&u->dev, dev);
3491 inf = get_disk_info(u);
3492 for (i = 0; i < map->num_members; i++) {
3493 int idx = get_imsm_disk_idx(dev, i);
3494
3495 disk = get_imsm_disk(super, idx);
3496 serialcpy(inf[i].serial, disk->serial);
3497 }
3498 append_metadata_update(st, u, len);
3499
3500 return 0;
3501 }
3502
3503 static int _add_disk(struct supertype *st)
3504 {
3505 struct intel_super *super = st->sb;
3506 size_t len;
3507 struct imsm_update_add_disk *u;
3508
3509 if (!super->add)
3510 return 0;
3511
3512 len = sizeof(*u);
3513 u = malloc(len);
3514 if (!u) {
3515 fprintf(stderr, "%s: failed to allocate update buffer\n",
3516 __func__);
3517 return 1;
3518 }
3519
3520 u->type = update_add_disk;
3521 append_metadata_update(st, u, len);
3522
3523 return 0;
3524 }
3525
3526 static int write_init_super_imsm(struct supertype *st)
3527 {
3528 struct intel_super *super = st->sb;
3529 int current_vol = super->current_vol;
3530
3531 /* we are done with current_vol reset it to point st at the container */
3532 super->current_vol = -1;
3533
3534 if (st->update_tail) {
3535 /* queue the recently created array / added disk
3536 * as a metadata update */
3537 struct dl *d;
3538 int rv;
3539
3540 /* determine if we are creating a volume or adding a disk */
3541 if (current_vol < 0) {
3542 /* in the add disk case we are running in mdmon
3543 * context, so don't close fd's
3544 */
3545 return _add_disk(st);
3546 } else
3547 rv = create_array(st, current_vol);
3548
3549 for (d = super->disks; d ; d = d->next) {
3550 close(d->fd);
3551 d->fd = -1;
3552 }
3553
3554 return rv;
3555 } else {
3556 struct dl *d;
3557 for (d = super->disks; d; d = d->next)
3558 Kill(d->devname, NULL, 0, 1, 1);
3559 return write_super_imsm(st->sb, 1);
3560 }
3561 }
3562 #endif
3563
3564 static int store_super_imsm(struct supertype *st, int fd)
3565 {
3566 struct intel_super *super = st->sb;
3567 struct imsm_super *mpb = super ? super->anchor : NULL;
3568
3569 if (!mpb)
3570 return 1;
3571
3572 #ifndef MDASSEMBLE
3573 return store_imsm_mpb(fd, mpb);
3574 #else
3575 return 1;
3576 #endif
3577 }
3578
3579 static int imsm_bbm_log_size(struct imsm_super *mpb)
3580 {
3581 return __le32_to_cpu(mpb->bbm_log_size);
3582 }
3583
3584 #ifndef MDASSEMBLE
3585 static int validate_geometry_imsm_container(struct supertype *st, int level,
3586 int layout, int raiddisks, int chunk,
3587 unsigned long long size, char *dev,
3588 unsigned long long *freesize,
3589 int verbose)
3590 {
3591 int fd;
3592 unsigned long long ldsize;
3593 const struct imsm_orom *orom;
3594
3595 if (level != LEVEL_CONTAINER)
3596 return 0;
3597 if (!dev)
3598 return 1;
3599
3600 if (check_env("IMSM_NO_PLATFORM"))
3601 orom = NULL;
3602 else
3603 orom = find_imsm_orom();
3604 if (orom && raiddisks > orom->tds) {
3605 if (verbose)
3606 fprintf(stderr, Name ": %d exceeds maximum number of"
3607 " platform supported disks: %d\n",
3608 raiddisks, orom->tds);
3609 return 0;
3610 }
3611
3612 fd = open(dev, O_RDONLY|O_EXCL, 0);
3613 if (fd < 0) {
3614 if (verbose)
3615 fprintf(stderr, Name ": imsm: Cannot open %s: %s\n",
3616 dev, strerror(errno));
3617 return 0;
3618 }
3619 if (!get_dev_size(fd, dev, &ldsize)) {
3620 close(fd);
3621 return 0;
3622 }
3623 close(fd);
3624
3625 *freesize = avail_size_imsm(st, ldsize >> 9);
3626
3627 return 1;
3628 }
3629
3630 static unsigned long long find_size(struct extent *e, int *idx, int num_extents)
3631 {
3632 const unsigned long long base_start = e[*idx].start;
3633 unsigned long long end = base_start + e[*idx].size;
3634 int i;
3635
3636 if (base_start == end)
3637 return 0;
3638
3639 *idx = *idx + 1;
3640 for (i = *idx; i < num_extents; i++) {
3641 /* extend overlapping extents */
3642 if (e[i].start >= base_start &&
3643 e[i].start <= end) {
3644 if (e[i].size == 0)
3645 return 0;
3646 if (e[i].start + e[i].size > end)
3647 end = e[i].start + e[i].size;
3648 } else if (e[i].start > end) {
3649 *idx = i;
3650 break;
3651 }
3652 }
3653
3654 return end - base_start;
3655 }
3656
3657 static unsigned long long merge_extents(struct intel_super *super, int sum_extents)
3658 {
3659 /* build a composite disk with all known extents and generate a new
3660 * 'maxsize' given the "all disks in an array must share a common start
3661 * offset" constraint
3662 */
3663 struct extent *e = calloc(sum_extents, sizeof(*e));
3664 struct dl *dl;
3665 int i, j;
3666 int start_extent;
3667 unsigned long long pos;
3668 unsigned long long start = 0;
3669 unsigned long long maxsize;
3670 unsigned long reserve;
3671
3672 if (!e)
3673 return 0;
3674
3675 /* coalesce and sort all extents. also, check to see if we need to
3676 * reserve space between member arrays
3677 */
3678 j = 0;
3679 for (dl = super->disks; dl; dl = dl->next) {
3680 if (!dl->e)
3681 continue;
3682 for (i = 0; i < dl->extent_cnt; i++)
3683 e[j++] = dl->e[i];
3684 }
3685 qsort(e, sum_extents, sizeof(*e), cmp_extent);
3686
3687 /* merge extents */
3688 i = 0;
3689 j = 0;
3690 while (i < sum_extents) {
3691 e[j].start = e[i].start;
3692 e[j].size = find_size(e, &i, sum_extents);
3693 j++;
3694 if (e[j-1].size == 0)
3695 break;
3696 }
3697
3698 pos = 0;
3699 maxsize = 0;
3700 start_extent = 0;
3701 i = 0;
3702 do {
3703 unsigned long long esize;
3704
3705 esize = e[i].start - pos;
3706 if (esize >= maxsize) {
3707 maxsize = esize;
3708 start = pos;
3709 start_extent = i;
3710 }
3711 pos = e[i].start + e[i].size;
3712 i++;
3713 } while (e[i-1].size);
3714 free(e);
3715
3716 if (maxsize == 0)
3717 return 0;
3718
3719 /* FIXME assumes volume at offset 0 is the first volume in a
3720 * container
3721 */
3722 if (start_extent > 0)
3723 reserve = IMSM_RESERVED_SECTORS; /* gap between raid regions */
3724 else
3725 reserve = 0;
3726
3727 if (maxsize < reserve)
3728 return 0;
3729
3730 super->create_offset = ~((__u32) 0);
3731 if (start + reserve > super->create_offset)
3732 return 0; /* start overflows create_offset */
3733 super->create_offset = start + reserve;
3734
3735 return maxsize - reserve;
3736 }
3737
3738 static int is_raid_level_supported(const struct imsm_orom *orom, int level, int raiddisks)
3739 {
3740 if (level < 0 || level == 6 || level == 4)
3741 return 0;
3742
3743 /* if we have an orom prevent invalid raid levels */
3744 if (orom)
3745 switch (level) {
3746 case 0: return imsm_orom_has_raid0(orom);
3747 case 1:
3748 if (raiddisks > 2)
3749 return imsm_orom_has_raid1e(orom);
3750 return imsm_orom_has_raid1(orom) && raiddisks == 2;
3751 case 10: return imsm_orom_has_raid10(orom) && raiddisks == 4;
3752 case 5: return imsm_orom_has_raid5(orom) && raiddisks > 2;
3753 }
3754 else
3755 return 1; /* not on an Intel RAID platform so anything goes */
3756
3757 return 0;
3758 }
3759
3760 #define pr_vrb(fmt, arg...) (void) (verbose && fprintf(stderr, Name fmt, ##arg))
3761 static int
3762 validate_geometry_imsm_orom(struct intel_super *super, int level, int layout,
3763 int raiddisks, int chunk, int verbose)
3764 {
3765 if (!is_raid_level_supported(super->orom, level, raiddisks)) {
3766 pr_vrb(": platform does not support raid%d with %d disk%s\n",
3767 level, raiddisks, raiddisks > 1 ? "s" : "");
3768 return 0;
3769 }
3770 if (super->orom && level != 1 &&
3771 !imsm_orom_has_chunk(super->orom, chunk)) {
3772 pr_vrb(": platform does not support a chunk size of: %d\n", chunk);
3773 return 0;
3774 }
3775 if (layout != imsm_level_to_layout(level)) {
3776 if (level == 5)
3777 pr_vrb(": imsm raid 5 only supports the left-asymmetric layout\n");
3778 else if (level == 10)
3779 pr_vrb(": imsm raid 10 only supports the n2 layout\n");
3780 else
3781 pr_vrb(": imsm unknown layout %#x for this raid level %d\n",
3782 layout, level);
3783 return 0;
3784 }
3785
3786 return 1;
3787 }
3788
3789 /* validate_geometry_imsm_volume - lifted from validate_geometry_ddf_bvd
3790 * FIX ME add ahci details
3791 */
3792 static int validate_geometry_imsm_volume(struct supertype *st, int level,
3793 int layout, int raiddisks, int chunk,
3794 unsigned long long size, char *dev,
3795 unsigned long long *freesize,
3796 int verbose)
3797 {
3798 struct stat stb;
3799 struct intel_super *super = st->sb;
3800 struct imsm_super *mpb = super->anchor;
3801 struct dl *dl;
3802 unsigned long long pos = 0;
3803 unsigned long long maxsize;
3804 struct extent *e;
3805 int i;
3806
3807 /* We must have the container info already read in. */
3808 if (!super)
3809 return 0;
3810
3811 if (!validate_geometry_imsm_orom(super, level, layout, raiddisks, chunk, verbose))
3812 return 0;
3813
3814 if (!dev) {
3815 /* General test: make sure there is space for
3816 * 'raiddisks' device extents of size 'size' at a given
3817 * offset
3818 */
3819 unsigned long long minsize = size;
3820 unsigned long long start_offset = MaxSector;
3821 int dcnt = 0;
3822 if (minsize == 0)
3823 minsize = MPB_SECTOR_CNT + IMSM_RESERVED_SECTORS;
3824 for (dl = super->disks; dl ; dl = dl->next) {
3825 int found = 0;
3826
3827 pos = 0;
3828 i = 0;
3829 e = get_extents(super, dl);
3830 if (!e) continue;
3831 do {
3832 unsigned long long esize;
3833 esize = e[i].start - pos;
3834 if (esize >= minsize)
3835 found = 1;
3836 if (found && start_offset == MaxSector) {
3837 start_offset = pos;
3838 break;
3839 } else if (found && pos != start_offset) {
3840 found = 0;
3841 break;
3842 }
3843 pos = e[i].start + e[i].size;
3844 i++;
3845 } while (e[i-1].size);
3846 if (found)
3847 dcnt++;
3848 free(e);
3849 }
3850 if (dcnt < raiddisks) {
3851 if (verbose)
3852 fprintf(stderr, Name ": imsm: Not enough "
3853 "devices with space for this array "
3854 "(%d < %d)\n",
3855 dcnt, raiddisks);
3856 return 0;
3857 }
3858 return 1;
3859 }
3860
3861 /* This device must be a member of the set */
3862 if (stat(dev, &stb) < 0)
3863 return 0;
3864 if ((S_IFMT & stb.st_mode) != S_IFBLK)
3865 return 0;
3866 for (dl = super->disks ; dl ; dl = dl->next) {
3867 if (dl->major == (int)major(stb.st_rdev) &&
3868 dl->minor == (int)minor(stb.st_rdev))
3869 break;
3870 }
3871 if (!dl) {
3872 if (verbose)
3873 fprintf(stderr, Name ": %s is not in the "
3874 "same imsm set\n", dev);
3875 return 0;
3876 } else if (super->orom && dl->index < 0 && mpb->num_raid_devs) {
3877 /* If a volume is present then the current creation attempt
3878 * cannot incorporate new spares because the orom may not
3879 * understand this configuration (all member disks must be
3880 * members of each array in the container).
3881 */
3882 fprintf(stderr, Name ": %s is a spare and a volume"
3883 " is already defined for this container\n", dev);
3884 fprintf(stderr, Name ": The option-rom requires all member"
3885 " disks to be a member of all volumes\n");
3886 return 0;
3887 }
3888
3889 /* retrieve the largest free space block */
3890 e = get_extents(super, dl);
3891 maxsize = 0;
3892 i = 0;
3893 if (e) {
3894 do {
3895 unsigned long long esize;
3896
3897 esize = e[i].start - pos;
3898 if (esize >= maxsize)
3899 maxsize = esize;
3900 pos = e[i].start + e[i].size;
3901 i++;
3902 } while (e[i-1].size);
3903 dl->e = e;
3904 dl->extent_cnt = i;
3905 } else {
3906 if (verbose)
3907 fprintf(stderr, Name ": unable to determine free space for: %s\n",
3908 dev);
3909 return 0;
3910 }
3911 if (maxsize < size) {
3912 if (verbose)
3913 fprintf(stderr, Name ": %s not enough space (%llu < %llu)\n",
3914 dev, maxsize, size);
3915 return 0;
3916 }
3917
3918 /* count total number of extents for merge */
3919 i = 0;
3920 for (dl = super->disks; dl; dl = dl->next)
3921 if (dl->e)
3922 i += dl->extent_cnt;
3923
3924 maxsize = merge_extents(super, i);
3925 if (maxsize < size || maxsize == 0) {
3926 if (verbose)
3927 fprintf(stderr, Name ": not enough space after merge (%llu < %llu)\n",
3928 maxsize, size);
3929 return 0;
3930 }
3931
3932 *freesize = maxsize;
3933
3934 return 1;
3935 }
3936
3937 static int reserve_space(struct supertype *st, int raiddisks,
3938 unsigned long long size, int chunk,
3939 unsigned long long *freesize)
3940 {
3941 struct intel_super *super = st->sb;
3942 struct imsm_super *mpb = super->anchor;
3943 struct dl *dl;
3944 int i;
3945 int extent_cnt;
3946 struct extent *e;
3947 unsigned long long maxsize;
3948 unsigned long long minsize;
3949 int cnt;
3950 int used;
3951
3952 /* find the largest common start free region of the possible disks */
3953 used = 0;
3954 extent_cnt = 0;
3955 cnt = 0;
3956 for (dl = super->disks; dl; dl = dl->next) {
3957 dl->raiddisk = -1;
3958
3959 if (dl->index >= 0)
3960 used++;
3961
3962 /* don't activate new spares if we are orom constrained
3963 * and there is already a volume active in the container
3964 */
3965 if (super->orom && dl->index < 0 && mpb->num_raid_devs)
3966 continue;
3967
3968 e = get_extents(super, dl);
3969 if (!e)
3970 continue;
3971 for (i = 1; e[i-1].size; i++)
3972 ;
3973 dl->e = e;
3974 dl->extent_cnt = i;
3975 extent_cnt += i;
3976 cnt++;
3977 }
3978
3979 maxsize = merge_extents(super, extent_cnt);
3980 minsize = size;
3981 if (size == 0)
3982 minsize = chunk;
3983
3984 if (cnt < raiddisks ||
3985 (super->orom && used && used != raiddisks) ||
3986 maxsize < minsize ||
3987 maxsize == 0) {
3988 fprintf(stderr, Name ": not enough devices with space to create array.\n");
3989 return 0; /* No enough free spaces large enough */
3990 }
3991
3992 if (size == 0) {
3993 size = maxsize;
3994 if (chunk) {
3995 size /= chunk;
3996 size *= chunk;
3997 }
3998 }
3999
4000 cnt = 0;
4001 for (dl = super->disks; dl; dl = dl->next)
4002 if (dl->e)
4003 dl->raiddisk = cnt++;
4004
4005 *freesize = size;
4006
4007 return 1;
4008 }
4009
4010 static int validate_geometry_imsm(struct supertype *st, int level, int layout,
4011 int raiddisks, int chunk, unsigned long long size,
4012 char *dev, unsigned long long *freesize,
4013 int verbose)
4014 {
4015 int fd, cfd;
4016 struct mdinfo *sra;
4017 int is_member = 0;
4018
4019 /* if given unused devices create a container
4020 * if given given devices in a container create a member volume
4021 */
4022 if (level == LEVEL_CONTAINER) {
4023 /* Must be a fresh device to add to a container */
4024 return validate_geometry_imsm_container(st, level, layout,
4025 raiddisks, chunk, size,
4026 dev, freesize,
4027 verbose);
4028 }
4029
4030 if (!dev) {
4031 if (st->sb && freesize) {
4032 /* we are being asked to automatically layout a
4033 * new volume based on the current contents of
4034 * the container. If the the parameters can be
4035 * satisfied reserve_space will record the disks,
4036 * start offset, and size of the volume to be
4037 * created. add_to_super and getinfo_super
4038 * detect when autolayout is in progress.
4039 */
4040 if (!validate_geometry_imsm_orom(st->sb, level, layout,
4041 raiddisks, chunk,
4042 verbose))
4043 return 0;
4044 return reserve_space(st, raiddisks, size, chunk, freesize);
4045 }
4046 return 1;
4047 }
4048 if (st->sb) {
4049 /* creating in a given container */
4050 return validate_geometry_imsm_volume(st, level, layout,
4051 raiddisks, chunk, size,
4052 dev, freesize, verbose);
4053 }
4054
4055 /* This device needs to be a device in an 'imsm' container */
4056 fd = open(dev, O_RDONLY|O_EXCL, 0);
4057 if (fd >= 0) {
4058 if (verbose)
4059 fprintf(stderr,
4060 Name ": Cannot create this array on device %s\n",
4061 dev);
4062 close(fd);
4063 return 0;
4064 }
4065 if (errno != EBUSY || (fd = open(dev, O_RDONLY, 0)) < 0) {
4066 if (verbose)
4067 fprintf(stderr, Name ": Cannot open %s: %s\n",
4068 dev, strerror(errno));
4069 return 0;
4070 }
4071 /* Well, it is in use by someone, maybe an 'imsm' container. */
4072 cfd = open_container(fd);
4073 close(fd);
4074 if (cfd < 0) {
4075 if (verbose)
4076 fprintf(stderr, Name ": Cannot use %s: It is busy\n",
4077 dev);
4078 return 0;
4079 }
4080 sra = sysfs_read(cfd, 0, GET_VERSION);
4081 if (sra && sra->array.major_version == -1 &&
4082 strcmp(sra->text_version, "imsm") == 0)
4083 is_member = 1;
4084 sysfs_free(sra);
4085 if (is_member) {
4086 /* This is a member of a imsm container. Load the container
4087 * and try to create a volume
4088 */
4089 struct intel_super *super;
4090
4091 if (load_super_imsm_all(st, cfd, (void **) &super, NULL, 1) == 0) {
4092 st->sb = super;
4093 st->container_dev = fd2devnum(cfd);
4094 close(cfd);
4095 return validate_geometry_imsm_volume(st, level, layout,
4096 raiddisks, chunk,
4097 size, dev,
4098 freesize, verbose);
4099 }
4100 }
4101
4102 if (verbose)
4103 fprintf(stderr, Name ": failed container membership check\n");
4104
4105 close(cfd);
4106 return 0;
4107 }
4108
4109 static int default_chunk_imsm(struct supertype *st)
4110 {
4111 struct intel_super *super = st->sb;
4112
4113 if (!super->orom)
4114 return 0;
4115
4116 return imsm_orom_default_chunk(super->orom);
4117 }
4118
4119 static void handle_missing(struct intel_super *super, struct imsm_dev *dev);
4120
4121 static int kill_subarray_imsm(struct supertype *st)
4122 {
4123 /* remove the subarray currently referenced by ->current_vol */
4124 __u8 i;
4125 struct intel_dev **dp;
4126 struct intel_super *super = st->sb;
4127 __u8 current_vol = super->current_vol;
4128 struct imsm_super *mpb = super->anchor;
4129
4130 if (super->current_vol < 0)
4131 return 2;
4132 super->current_vol = -1; /* invalidate subarray cursor */
4133
4134 /* block deletions that would change the uuid of active subarrays
4135 *
4136 * FIXME when immutable ids are available, but note that we'll
4137 * also need to fixup the invalidated/active subarray indexes in
4138 * mdstat
4139 */
4140 for (i = 0; i < mpb->num_raid_devs; i++) {
4141 char subarray[4];
4142
4143 if (i < current_vol)
4144 continue;
4145 sprintf(subarray, "%u", i);
4146 if (is_subarray_active(subarray, st->devname)) {
4147 fprintf(stderr,
4148 Name ": deleting subarray-%d would change the UUID of active subarray-%d, aborting\n",
4149 current_vol, i);
4150
4151 return 2;
4152 }
4153 }
4154
4155 if (st->update_tail) {
4156 struct imsm_update_kill_array *u = malloc(sizeof(*u));
4157
4158 if (!u)
4159 return 2;
4160 u->type = update_kill_array;
4161 u->dev_idx = current_vol;
4162 append_metadata_update(st, u, sizeof(*u));
4163
4164 return 0;
4165 }
4166
4167 for (dp = &super->devlist; *dp;)
4168 if ((*dp)->index == current_vol) {
4169 *dp = (*dp)->next;
4170 } else {
4171 handle_missing(super, (*dp)->dev);
4172 if ((*dp)->index > current_vol)
4173 (*dp)->index--;
4174 dp = &(*dp)->next;
4175 }
4176
4177 /* no more raid devices, all active components are now spares,
4178 * but of course failed are still failed
4179 */
4180 if (--mpb->num_raid_devs == 0) {
4181 struct dl *d;
4182
4183 for (d = super->disks; d; d = d->next)
4184 if (d->index > -2) {
4185 d->index = -1;
4186 d->disk.status = SPARE_DISK;
4187 }
4188 }
4189
4190 super->updates_pending++;
4191
4192 return 0;
4193 }
4194
4195 static int update_subarray_imsm(struct supertype *st, char *subarray,
4196 char *update, mddev_ident_t ident)
4197 {
4198 /* update the subarray currently referenced by ->current_vol */
4199 struct intel_super *super = st->sb;
4200 struct imsm_super *mpb = super->anchor;
4201
4202 if (strcmp(update, "name") == 0) {
4203 char *name = ident->name;
4204 char *ep;
4205 int vol;
4206
4207 if (is_subarray_active(subarray, st->devname)) {
4208 fprintf(stderr,
4209 Name ": Unable to update name of active subarray\n");
4210 return 2;
4211 }
4212
4213 if (!check_name(super, name, 0))
4214 return 2;
4215
4216 vol = strtoul(subarray, &ep, 10);
4217 if (*ep != '\0' || vol >= super->anchor->num_raid_devs)
4218 return 2;
4219
4220 if (st->update_tail) {
4221 struct imsm_update_rename_array *u = malloc(sizeof(*u));
4222
4223 if (!u)
4224 return 2;
4225 u->type = update_rename_array;
4226 u->dev_idx = vol;
4227 snprintf((char *) u->name, MAX_RAID_SERIAL_LEN, "%s", name);
4228 append_metadata_update(st, u, sizeof(*u));
4229 } else {
4230 struct imsm_dev *dev;
4231 int i;
4232
4233 dev = get_imsm_dev(super, vol);
4234 snprintf((char *) dev->volume, MAX_RAID_SERIAL_LEN, "%s", name);
4235 for (i = 0; i < mpb->num_raid_devs; i++) {
4236 dev = get_imsm_dev(super, i);
4237 handle_missing(super, dev);
4238 }
4239 super->updates_pending++;
4240 }
4241 } else
4242 return 2;
4243
4244 return 0;
4245 }
4246 #endif /* MDASSEMBLE */
4247
4248 static int is_rebuilding(struct imsm_dev *dev)
4249 {
4250 struct imsm_map *migr_map;
4251
4252 if (!dev->vol.migr_state)
4253 return 0;
4254
4255 if (migr_type(dev) != MIGR_REBUILD)
4256 return 0;
4257
4258 migr_map = get_imsm_map(dev, 1);
4259
4260 if (migr_map->map_state == IMSM_T_STATE_DEGRADED)
4261 return 1;
4262 else
4263 return 0;
4264 }
4265
4266 static void update_recovery_start(struct imsm_dev *dev, struct mdinfo *array)
4267 {
4268 struct mdinfo *rebuild = NULL;
4269 struct mdinfo *d;
4270 __u32 units;
4271
4272 if (!is_rebuilding(dev))
4273 return;
4274
4275 /* Find the rebuild target, but punt on the dual rebuild case */
4276 for (d = array->devs; d; d = d->next)
4277 if (d->recovery_start == 0) {
4278 if (rebuild)
4279 return;
4280 rebuild = d;
4281 }
4282
4283 if (!rebuild) {
4284 /* (?) none of the disks are marked with
4285 * IMSM_ORD_REBUILD, so assume they are missing and the
4286 * disk_ord_tbl was not correctly updated
4287 */
4288 dprintf("%s: failed to locate out-of-sync disk\n", __func__);
4289 return;
4290 }
4291
4292 units = __le32_to_cpu(dev->vol.curr_migr_unit);
4293 rebuild->recovery_start = units * blocks_per_migr_unit(dev);
4294 }
4295
4296
4297 static struct mdinfo *container_content_imsm(struct supertype *st, char *subarray)
4298 {
4299 /* Given a container loaded by load_super_imsm_all,
4300 * extract information about all the arrays into
4301 * an mdinfo tree.
4302 * If 'subarray' is given, just extract info about that array.
4303 *
4304 * For each imsm_dev create an mdinfo, fill it in,
4305 * then look for matching devices in super->disks
4306 * and create appropriate device mdinfo.
4307 */
4308 struct intel_super *super = st->sb;
4309 struct imsm_super *mpb = super->anchor;
4310 struct mdinfo *rest = NULL;
4311 unsigned int i;
4312
4313 /* do not assemble arrays that might have bad blocks */
4314 if (imsm_bbm_log_size(super->anchor)) {
4315 fprintf(stderr, Name ": BBM log found in metadata. "
4316 "Cannot activate array(s).\n");
4317 return NULL;
4318 }
4319
4320 for (i = 0; i < mpb->num_raid_devs; i++) {
4321 struct imsm_dev *dev;
4322 struct imsm_map *map;
4323 struct mdinfo *this;
4324 int slot;
4325 char *ep;
4326
4327 if (subarray &&
4328 (i != strtoul(subarray, &ep, 10) || *ep != '\0'))
4329 continue;
4330
4331 dev = get_imsm_dev(super, i);
4332 map = get_imsm_map(dev, 0);
4333
4334 /* do not publish arrays that are in the middle of an
4335 * unsupported migration
4336 */
4337 if (dev->vol.migr_state &&
4338 (migr_type(dev) == MIGR_GEN_MIGR ||
4339 migr_type(dev) == MIGR_STATE_CHANGE)) {
4340 fprintf(stderr, Name ": cannot assemble volume '%.16s':"
4341 " unsupported migration in progress\n",
4342 dev->volume);
4343 continue;
4344 }
4345
4346 this = malloc(sizeof(*this));
4347 if (!this) {
4348 fprintf(stderr, Name ": failed to allocate %zu bytes\n",
4349 sizeof(*this));
4350 break;
4351 }
4352 memset(this, 0, sizeof(*this));
4353 this->next = rest;
4354
4355 super->current_vol = i;
4356 getinfo_super_imsm_volume(st, this, NULL);
4357 for (slot = 0 ; slot < map->num_members; slot++) {
4358 unsigned long long recovery_start;
4359 struct mdinfo *info_d;
4360 struct dl *d;
4361 int idx;
4362 int skip;
4363 __u32 ord;
4364
4365 skip = 0;
4366 idx = get_imsm_disk_idx(dev, slot);
4367 ord = get_imsm_ord_tbl_ent(dev, slot);
4368 for (d = super->disks; d ; d = d->next)
4369 if (d->index == idx)
4370 break;
4371
4372 recovery_start = MaxSector;
4373 if (d == NULL)
4374 skip = 1;
4375 if (d && is_failed(&d->disk))
4376 skip = 1;
4377 if (ord & IMSM_ORD_REBUILD)
4378 recovery_start = 0;
4379
4380 /*
4381 * if we skip some disks the array will be assmebled degraded;
4382 * reset resync start to avoid a dirty-degraded
4383 * situation when performing the intial sync
4384 *
4385 * FIXME handle dirty degraded
4386 */
4387 if ((skip || recovery_start == 0) && !dev->vol.dirty)
4388 this->resync_start = MaxSector;
4389 if (skip)
4390 continue;
4391
4392 info_d = calloc(1, sizeof(*info_d));
4393 if (!info_d) {
4394 fprintf(stderr, Name ": failed to allocate disk"
4395 " for volume %.16s\n", dev->volume);
4396 info_d = this->devs;
4397 while (info_d) {
4398 struct mdinfo *d = info_d->next;
4399
4400 free(info_d);
4401 info_d = d;
4402 }
4403 free(this);
4404 this = rest;
4405 break;
4406 }
4407 info_d->next = this->devs;
4408 this->devs = info_d;
4409
4410 info_d->disk.number = d->index;
4411 info_d->disk.major = d->major;
4412 info_d->disk.minor = d->minor;
4413 info_d->disk.raid_disk = slot;
4414 info_d->recovery_start = recovery_start;
4415
4416 if (info_d->recovery_start == MaxSector)
4417 this->array.working_disks++;
4418
4419 info_d->events = __le32_to_cpu(mpb->generation_num);
4420 info_d->data_offset = __le32_to_cpu(map->pba_of_lba0);
4421 info_d->component_size = __le32_to_cpu(map->blocks_per_member);
4422 }
4423 /* now that the disk list is up-to-date fixup recovery_start */
4424 update_recovery_start(dev, this);
4425 rest = this;
4426 }
4427
4428 return rest;
4429 }
4430
4431
4432 static __u8 imsm_check_degraded(struct intel_super *super, struct imsm_dev *dev, int failed)
4433 {
4434 struct imsm_map *map = get_imsm_map(dev, 0);
4435
4436 if (!failed)
4437 return map->map_state == IMSM_T_STATE_UNINITIALIZED ?
4438 IMSM_T_STATE_UNINITIALIZED : IMSM_T_STATE_NORMAL;
4439
4440 switch (get_imsm_raid_level(map)) {
4441 case 0:
4442 return IMSM_T_STATE_FAILED;
4443 break;
4444 case 1:
4445 if (failed < map->num_members)
4446 return IMSM_T_STATE_DEGRADED;
4447 else
4448 return IMSM_T_STATE_FAILED;
4449 break;
4450 case 10:
4451 {
4452 /**
4453 * check to see if any mirrors have failed, otherwise we
4454 * are degraded. Even numbered slots are mirrored on
4455 * slot+1
4456 */
4457 int i;
4458 /* gcc -Os complains that this is unused */
4459 int insync = insync;
4460
4461 for (i = 0; i < map->num_members; i++) {
4462 __u32 ord = get_imsm_ord_tbl_ent(dev, i);
4463 int idx = ord_to_idx(ord);
4464 struct imsm_disk *disk;
4465
4466 /* reset the potential in-sync count on even-numbered
4467 * slots. num_copies is always 2 for imsm raid10
4468 */
4469 if ((i & 1) == 0)
4470 insync = 2;
4471
4472 disk = get_imsm_disk(super, idx);
4473 if (!disk || is_failed(disk) || ord & IMSM_ORD_REBUILD)
4474 insync--;
4475
4476 /* no in-sync disks left in this mirror the
4477 * array has failed
4478 */
4479 if (insync == 0)
4480 return IMSM_T_STATE_FAILED;
4481 }
4482
4483 return IMSM_T_STATE_DEGRADED;
4484 }
4485 case 5:
4486 if (failed < 2)
4487 return IMSM_T_STATE_DEGRADED;
4488 else
4489 return IMSM_T_STATE_FAILED;
4490 break;
4491 default:
4492 break;
4493 }
4494
4495 return map->map_state;
4496 }
4497
4498 static int imsm_count_failed(struct intel_super *super, struct imsm_dev *dev)
4499 {
4500 int i;
4501 int failed = 0;
4502 struct imsm_disk *disk;
4503 struct imsm_map *map = get_imsm_map(dev, 0);
4504 struct imsm_map *prev = get_imsm_map(dev, dev->vol.migr_state);
4505 __u32 ord;
4506 int idx;
4507
4508 /* at the beginning of migration we set IMSM_ORD_REBUILD on
4509 * disks that are being rebuilt. New failures are recorded to
4510 * map[0]. So we look through all the disks we started with and
4511 * see if any failures are still present, or if any new ones
4512 * have arrived
4513 *
4514 * FIXME add support for online capacity expansion and
4515 * raid-level-migration
4516 */
4517 for (i = 0; i < prev->num_members; i++) {
4518 ord = __le32_to_cpu(prev->disk_ord_tbl[i]);
4519 ord |= __le32_to_cpu(map->disk_ord_tbl[i]);
4520 idx = ord_to_idx(ord);
4521
4522 disk = get_imsm_disk(super, idx);
4523 if (!disk || is_failed(disk) || ord & IMSM_ORD_REBUILD)
4524 failed++;
4525 }
4526
4527 return failed;
4528 }
4529
4530 #ifndef MDASSEMBLE
4531 static int imsm_open_new(struct supertype *c, struct active_array *a,
4532 char *inst)
4533 {
4534 struct intel_super *super = c->sb;
4535 struct imsm_super *mpb = super->anchor;
4536
4537 if (atoi(inst) >= mpb->num_raid_devs) {
4538 fprintf(stderr, "%s: subarry index %d, out of range\n",
4539 __func__, atoi(inst));
4540 return -ENODEV;
4541 }
4542
4543 dprintf("imsm: open_new %s\n", inst);
4544 a->info.container_member = atoi(inst);
4545 return 0;
4546 }
4547
4548 static int is_resyncing(struct imsm_dev *dev)
4549 {
4550 struct imsm_map *migr_map;
4551
4552 if (!dev->vol.migr_state)
4553 return 0;
4554
4555 if (migr_type(dev) == MIGR_INIT ||
4556 migr_type(dev) == MIGR_REPAIR)
4557 return 1;
4558
4559 migr_map = get_imsm_map(dev, 1);
4560
4561 if (migr_map->map_state == IMSM_T_STATE_NORMAL)
4562 return 1;
4563 else
4564 return 0;
4565 }
4566
4567 /* return true if we recorded new information */
4568 static int mark_failure(struct imsm_dev *dev, struct imsm_disk *disk, int idx)
4569 {
4570 __u32 ord;
4571 int slot;
4572 struct imsm_map *map;
4573
4574 /* new failures are always set in map[0] */
4575 map = get_imsm_map(dev, 0);
4576
4577 slot = get_imsm_disk_slot(map, idx);
4578 if (slot < 0)
4579 return 0;
4580
4581 ord = __le32_to_cpu(map->disk_ord_tbl[slot]);
4582 if (is_failed(disk) && (ord & IMSM_ORD_REBUILD))
4583 return 0;
4584
4585 disk->status |= FAILED_DISK;
4586 disk->status &= ~CONFIGURED_DISK;
4587 set_imsm_ord_tbl_ent(map, slot, idx | IMSM_ORD_REBUILD);
4588 if (map->failed_disk_num == 0xff)
4589 map->failed_disk_num = slot;
4590 return 1;
4591 }
4592
4593 static void mark_missing(struct imsm_dev *dev, struct imsm_disk *disk, int idx)
4594 {
4595 mark_failure(dev, disk, idx);
4596
4597 if (disk->scsi_id == __cpu_to_le32(~(__u32)0))
4598 return;
4599
4600 disk->scsi_id = __cpu_to_le32(~(__u32)0);
4601 memmove(&disk->serial[0], &disk->serial[1], MAX_RAID_SERIAL_LEN - 1);
4602 }
4603
4604 static void handle_missing(struct intel_super *super, struct imsm_dev *dev)
4605 {
4606 __u8 map_state;
4607 struct dl *dl;
4608 int failed;
4609
4610 if (!super->missing)
4611 return;
4612 failed = imsm_count_failed(super, dev);
4613 map_state = imsm_check_degraded(super, dev, failed);
4614
4615 dprintf("imsm: mark missing\n");
4616 end_migration(dev, map_state);
4617 for (dl = super->missing; dl; dl = dl->next)
4618 mark_missing(dev, &dl->disk, dl->index);
4619 super->updates_pending++;
4620 }
4621
4622 /* Handle dirty -> clean transititions and resync. Degraded and rebuild
4623 * states are handled in imsm_set_disk() with one exception, when a
4624 * resync is stopped due to a new failure this routine will set the
4625 * 'degraded' state for the array.
4626 */
4627 static int imsm_set_array_state(struct active_array *a, int consistent)
4628 {
4629 int inst = a->info.container_member;
4630 struct intel_super *super = a->container->sb;
4631 struct imsm_dev *dev = get_imsm_dev(super, inst);
4632 struct imsm_map *map = get_imsm_map(dev, 0);
4633 int failed = imsm_count_failed(super, dev);
4634 __u8 map_state = imsm_check_degraded(super, dev, failed);
4635 __u32 blocks_per_unit;
4636
4637 /* before we activate this array handle any missing disks */
4638 if (consistent == 2)
4639 handle_missing(super, dev);
4640
4641 if (consistent == 2 &&
4642 (!is_resync_complete(&a->info) ||
4643 map_state != IMSM_T_STATE_NORMAL ||
4644 dev->vol.migr_state))
4645 consistent = 0;
4646
4647 if (is_resync_complete(&a->info)) {
4648 /* complete intialization / resync,
4649 * recovery and interrupted recovery is completed in
4650 * ->set_disk
4651 */
4652 if (is_resyncing(dev)) {
4653 dprintf("imsm: mark resync done\n");
4654 end_migration(dev, map_state);
4655 super->updates_pending++;
4656 a->last_checkpoint = 0;
4657 }
4658 } else if (!is_resyncing(dev) && !failed) {
4659 /* mark the start of the init process if nothing is failed */
4660 dprintf("imsm: mark resync start\n");
4661 if (map->map_state == IMSM_T_STATE_UNINITIALIZED)
4662 migrate(dev, IMSM_T_STATE_NORMAL, MIGR_INIT);
4663 else
4664 migrate(dev, IMSM_T_STATE_NORMAL, MIGR_REPAIR);
4665 super->updates_pending++;
4666 }
4667
4668 /* check if we can update curr_migr_unit from resync_start, recovery_start */
4669 blocks_per_unit = blocks_per_migr_unit(dev);
4670 if (blocks_per_unit) {
4671 __u32 units32;
4672 __u64 units;
4673
4674 units = a->last_checkpoint / blocks_per_unit;
4675 units32 = units;
4676
4677 /* check that we did not overflow 32-bits, and that
4678 * curr_migr_unit needs updating
4679 */
4680 if (units32 == units &&
4681 __le32_to_cpu(dev->vol.curr_migr_unit) != units32) {
4682 dprintf("imsm: mark checkpoint (%u)\n", units32);
4683 dev->vol.curr_migr_unit = __cpu_to_le32(units32);
4684 super->updates_pending++;
4685 }
4686 }
4687
4688 /* mark dirty / clean */
4689 if (dev->vol.dirty != !consistent) {
4690 dprintf("imsm: mark '%s'\n", consistent ? "clean" : "dirty");
4691 if (consistent)
4692 dev->vol.dirty = 0;
4693 else
4694 dev->vol.dirty = 1;
4695 super->updates_pending++;
4696 }
4697 return consistent;
4698 }
4699
4700 static void imsm_set_disk(struct active_array *a, int n, int state)
4701 {
4702 int inst = a->info.container_member;
4703 struct intel_super *super = a->container->sb;
4704 struct imsm_dev *dev = get_imsm_dev(super, inst);
4705 struct imsm_map *map = get_imsm_map(dev, 0);
4706 struct imsm_disk *disk;
4707 int failed;
4708 __u32 ord;
4709 __u8 map_state;
4710
4711 if (n > map->num_members)
4712 fprintf(stderr, "imsm: set_disk %d out of range 0..%d\n",
4713 n, map->num_members - 1);
4714
4715 if (n < 0)
4716 return;
4717
4718 dprintf("imsm: set_disk %d:%x\n", n, state);
4719
4720 ord = get_imsm_ord_tbl_ent(dev, n);
4721 disk = get_imsm_disk(super, ord_to_idx(ord));
4722
4723 /* check for new failures */
4724 if (state & DS_FAULTY) {
4725 if (mark_failure(dev, disk, ord_to_idx(ord)))
4726 super->updates_pending++;
4727 }
4728
4729 /* check if in_sync */
4730 if (state & DS_INSYNC && ord & IMSM_ORD_REBUILD && is_rebuilding(dev)) {
4731 struct imsm_map *migr_map = get_imsm_map(dev, 1);
4732
4733 set_imsm_ord_tbl_ent(migr_map, n, ord_to_idx(ord));
4734 super->updates_pending++;
4735 }
4736
4737 failed = imsm_count_failed(super, dev);
4738 map_state = imsm_check_degraded(super, dev, failed);
4739
4740 /* check if recovery complete, newly degraded, or failed */
4741 if (map_state == IMSM_T_STATE_NORMAL && is_rebuilding(dev)) {
4742 end_migration(dev, map_state);
4743 map = get_imsm_map(dev, 0);
4744 map->failed_disk_num = ~0;
4745 super->updates_pending++;
4746 a->last_checkpoint = 0;
4747 } else if (map_state == IMSM_T_STATE_DEGRADED &&
4748 map->map_state != map_state &&
4749 !dev->vol.migr_state) {
4750 dprintf("imsm: mark degraded\n");
4751 map->map_state = map_state;
4752 super->updates_pending++;
4753 a->last_checkpoint = 0;
4754 } else if (map_state == IMSM_T_STATE_FAILED &&
4755 map->map_state != map_state) {
4756 dprintf("imsm: mark failed\n");
4757 end_migration(dev, map_state);
4758 super->updates_pending++;
4759 a->last_checkpoint = 0;
4760 }
4761 }
4762
4763 static int store_imsm_mpb(int fd, struct imsm_super *mpb)
4764 {
4765 void *buf = mpb;
4766 __u32 mpb_size = __le32_to_cpu(mpb->mpb_size);
4767 unsigned long long dsize;
4768 unsigned long long sectors;
4769
4770 get_dev_size(fd, NULL, &dsize);
4771
4772 if (mpb_size > 512) {
4773 /* -1 to account for anchor */
4774 sectors = mpb_sectors(mpb) - 1;
4775
4776 /* write the extended mpb to the sectors preceeding the anchor */
4777 if (lseek64(fd, dsize - (512 * (2 + sectors)), SEEK_SET) < 0)
4778 return 1;
4779
4780 if ((unsigned long long)write(fd, buf + 512, 512 * sectors)
4781 != 512 * sectors)
4782 return 1;
4783 }
4784
4785 /* first block is stored on second to last sector of the disk */
4786 if (lseek64(fd, dsize - (512 * 2), SEEK_SET) < 0)
4787 return 1;
4788
4789 if (write(fd, buf, 512) != 512)
4790 return 1;
4791
4792 return 0;
4793 }
4794
4795 static void imsm_sync_metadata(struct supertype *container)
4796 {
4797 struct intel_super *super = container->sb;
4798
4799 if (!super->updates_pending)
4800 return;
4801
4802 write_super_imsm(super, 0);
4803
4804 super->updates_pending = 0;
4805 }
4806
4807 static struct dl *imsm_readd(struct intel_super *super, int idx, struct active_array *a)
4808 {
4809 struct imsm_dev *dev = get_imsm_dev(super, a->info.container_member);
4810 int i = get_imsm_disk_idx(dev, idx);
4811 struct dl *dl;
4812
4813 for (dl = super->disks; dl; dl = dl->next)
4814 if (dl->index == i)
4815 break;
4816
4817 if (dl && is_failed(&dl->disk))
4818 dl = NULL;
4819
4820 if (dl)
4821 dprintf("%s: found %x:%x\n", __func__, dl->major, dl->minor);
4822
4823 return dl;
4824 }
4825
4826 static struct dl *imsm_add_spare(struct intel_super *super, int slot,
4827 struct active_array *a, int activate_new)
4828 {
4829 struct imsm_dev *dev = get_imsm_dev(super, a->info.container_member);
4830 int idx = get_imsm_disk_idx(dev, slot);
4831 struct imsm_super *mpb = super->anchor;
4832 struct imsm_map *map;
4833 unsigned long long pos;
4834 struct mdinfo *d;
4835 struct extent *ex;
4836 int i, j;
4837 int found;
4838 __u32 array_start = 0;
4839 __u32 array_end = 0;
4840 struct dl *dl;
4841
4842 for (dl = super->disks; dl; dl = dl->next) {
4843 /* If in this array, skip */
4844 for (d = a->info.devs ; d ; d = d->next)
4845 if (d->state_fd >= 0 &&
4846 d->disk.major == dl->major &&
4847 d->disk.minor == dl->minor) {
4848 dprintf("%x:%x already in array\n", dl->major, dl->minor);
4849 break;
4850 }
4851 if (d)
4852 continue;
4853
4854 /* skip in use or failed drives */
4855 if (is_failed(&dl->disk) || idx == dl->index ||
4856 dl->index == -2) {
4857 dprintf("%x:%x status (failed: %d index: %d)\n",
4858 dl->major, dl->minor, is_failed(&dl->disk), idx);
4859 continue;
4860 }
4861
4862 /* skip pure spares when we are looking for partially
4863 * assimilated drives
4864 */
4865 if (dl->index == -1 && !activate_new)
4866 continue;
4867
4868 /* Does this unused device have the requisite free space?
4869 * It needs to be able to cover all member volumes
4870 */
4871 ex = get_extents(super, dl);
4872 if (!ex) {
4873 dprintf("cannot get extents\n");
4874 continue;
4875 }
4876 for (i = 0; i < mpb->num_raid_devs; i++) {
4877 dev = get_imsm_dev(super, i);
4878 map = get_imsm_map(dev, 0);
4879
4880 /* check if this disk is already a member of
4881 * this array
4882 */
4883 if (get_imsm_disk_slot(map, dl->index) >= 0)
4884 continue;
4885
4886 found = 0;
4887 j = 0;
4888 pos = 0;
4889 array_start = __le32_to_cpu(map->pba_of_lba0);
4890 array_end = array_start +
4891 __le32_to_cpu(map->blocks_per_member) - 1;
4892
4893 do {
4894 /* check that we can start at pba_of_lba0 with
4895 * blocks_per_member of space
4896 */
4897 if (array_start >= pos && array_end < ex[j].start) {
4898 found = 1;
4899 break;
4900 }
4901 pos = ex[j].start + ex[j].size;
4902 j++;
4903 } while (ex[j-1].size);
4904
4905 if (!found)
4906 break;
4907 }
4908
4909 free(ex);
4910 if (i < mpb->num_raid_devs) {
4911 dprintf("%x:%x does not have %u to %u available\n",
4912 dl->major, dl->minor, array_start, array_end);
4913 /* No room */
4914 continue;
4915 }
4916 return dl;
4917 }
4918
4919 return dl;
4920 }
4921
4922 static struct mdinfo *imsm_activate_spare(struct active_array *a,
4923 struct metadata_update **updates)
4924 {
4925 /**
4926 * Find a device with unused free space and use it to replace a
4927 * failed/vacant region in an array. We replace failed regions one a
4928 * array at a time. The result is that a new spare disk will be added
4929 * to the first failed array and after the monitor has finished
4930 * propagating failures the remainder will be consumed.
4931 *
4932 * FIXME add a capability for mdmon to request spares from another
4933 * container.
4934 */
4935
4936 struct intel_super *super = a->container->sb;
4937 int inst = a->info.container_member;
4938 struct imsm_dev *dev = get_imsm_dev(super, inst);
4939 struct imsm_map *map = get_imsm_map(dev, 0);
4940 int failed = a->info.array.raid_disks;
4941 struct mdinfo *rv = NULL;
4942 struct mdinfo *d;
4943 struct mdinfo *di;
4944 struct metadata_update *mu;
4945 struct dl *dl;
4946 struct imsm_update_activate_spare *u;
4947 int num_spares = 0;
4948 int i;
4949
4950 for (d = a->info.devs ; d ; d = d->next) {
4951 if ((d->curr_state & DS_FAULTY) &&
4952 d->state_fd >= 0)
4953 /* wait for Removal to happen */
4954 return NULL;
4955 if (d->state_fd >= 0)
4956 failed--;
4957 }
4958
4959 dprintf("imsm: activate spare: inst=%d failed=%d (%d) level=%d\n",
4960 inst, failed, a->info.array.raid_disks, a->info.array.level);
4961 if (imsm_check_degraded(super, dev, failed) != IMSM_T_STATE_DEGRADED)
4962 return NULL;
4963
4964 /* For each slot, if it is not working, find a spare */
4965 for (i = 0; i < a->info.array.raid_disks; i++) {
4966 for (d = a->info.devs ; d ; d = d->next)
4967 if (d->disk.raid_disk == i)
4968 break;
4969 dprintf("found %d: %p %x\n", i, d, d?d->curr_state:0);
4970 if (d && (d->state_fd >= 0))
4971 continue;
4972
4973 /*
4974 * OK, this device needs recovery. Try to re-add the
4975 * previous occupant of this slot, if this fails see if
4976 * we can continue the assimilation of a spare that was
4977 * partially assimilated, finally try to activate a new
4978 * spare.
4979 */
4980 dl = imsm_readd(super, i, a);
4981 if (!dl)
4982 dl = imsm_add_spare(super, i, a, 0);
4983 if (!dl)
4984 dl = imsm_add_spare(super, i, a, 1);
4985 if (!dl)
4986 continue;
4987
4988 /* found a usable disk with enough space */
4989 di = malloc(sizeof(*di));
4990 if (!di)
4991 continue;
4992 memset(di, 0, sizeof(*di));
4993
4994 /* dl->index will be -1 in the case we are activating a
4995 * pristine spare. imsm_process_update() will create a
4996 * new index in this case. Once a disk is found to be
4997 * failed in all member arrays it is kicked from the
4998 * metadata
4999 */
5000 di->disk.number = dl->index;
5001
5002 /* (ab)use di->devs to store a pointer to the device
5003 * we chose
5004 */
5005 di->devs = (struct mdinfo *) dl;
5006
5007 di->disk.raid_disk = i;
5008 di->disk.major = dl->major;
5009 di->disk.minor = dl->minor;
5010 di->disk.state = 0;
5011 di->recovery_start = 0;
5012 di->data_offset = __le32_to_cpu(map->pba_of_lba0);
5013 di->component_size = a->info.component_size;
5014 di->container_member = inst;
5015 super->random = random32();
5016 di->next = rv;
5017 rv = di;
5018 num_spares++;
5019 dprintf("%x:%x to be %d at %llu\n", dl->major, dl->minor,
5020 i, di->data_offset);
5021
5022 break;
5023 }
5024
5025 if (!rv)
5026 /* No spares found */
5027 return rv;
5028 /* Now 'rv' has a list of devices to return.
5029 * Create a metadata_update record to update the
5030 * disk_ord_tbl for the array
5031 */
5032 mu = malloc(sizeof(*mu));
5033 if (mu) {
5034 mu->buf = malloc(sizeof(struct imsm_update_activate_spare) * num_spares);
5035 if (mu->buf == NULL) {
5036 free(mu);
5037 mu = NULL;
5038 }
5039 }
5040 if (!mu) {
5041 while (rv) {
5042 struct mdinfo *n = rv->next;
5043
5044 free(rv);
5045 rv = n;
5046 }
5047 return NULL;
5048 }
5049
5050 mu->space = NULL;
5051 mu->len = sizeof(struct imsm_update_activate_spare) * num_spares;
5052 mu->next = *updates;
5053 u = (struct imsm_update_activate_spare *) mu->buf;
5054
5055 for (di = rv ; di ; di = di->next) {
5056 u->type = update_activate_spare;
5057 u->dl = (struct dl *) di->devs;
5058 di->devs = NULL;
5059 u->slot = di->disk.raid_disk;
5060 u->array = inst;
5061 u->next = u + 1;
5062 u++;
5063 }
5064 (u-1)->next = NULL;
5065 *updates = mu;
5066
5067 return rv;
5068 }
5069
5070 static int disks_overlap(struct intel_super *super, int idx, struct imsm_update_create_array *u)
5071 {
5072 struct imsm_dev *dev = get_imsm_dev(super, idx);
5073 struct imsm_map *map = get_imsm_map(dev, 0);
5074 struct imsm_map *new_map = get_imsm_map(&u->dev, 0);
5075 struct disk_info *inf = get_disk_info(u);
5076 struct imsm_disk *disk;
5077 int i;
5078 int j;
5079
5080 for (i = 0; i < map->num_members; i++) {
5081 disk = get_imsm_disk(super, get_imsm_disk_idx(dev, i));
5082 for (j = 0; j < new_map->num_members; j++)
5083 if (serialcmp(disk->serial, inf[j].serial) == 0)
5084 return 1;
5085 }
5086
5087 return 0;
5088 }
5089
5090 static void imsm_delete(struct intel_super *super, struct dl **dlp, unsigned index);
5091
5092 static void imsm_process_update(struct supertype *st,
5093 struct metadata_update *update)
5094 {
5095 /**
5096 * crack open the metadata_update envelope to find the update record
5097 * update can be one of:
5098 * update_activate_spare - a spare device has replaced a failed
5099 * device in an array, update the disk_ord_tbl. If this disk is
5100 * present in all member arrays then also clear the SPARE_DISK
5101 * flag
5102 */
5103 struct intel_super *super = st->sb;
5104 struct imsm_super *mpb;
5105 enum imsm_update_type type = *(enum imsm_update_type *) update->buf;
5106
5107 /* update requires a larger buf but the allocation failed */
5108 if (super->next_len && !super->next_buf) {
5109 super->next_len = 0;
5110 return;
5111 }
5112
5113 if (super->next_buf) {
5114 memcpy(super->next_buf, super->buf, super->len);
5115 free(super->buf);
5116 super->len = super->next_len;
5117 super->buf = super->next_buf;
5118
5119 super->next_len = 0;
5120 super->next_buf = NULL;
5121 }
5122
5123 mpb = super->anchor;
5124
5125 switch (type) {
5126 case update_activate_spare: {
5127 struct imsm_update_activate_spare *u = (void *) update->buf;
5128 struct imsm_dev *dev = get_imsm_dev(super, u->array);
5129 struct imsm_map *map = get_imsm_map(dev, 0);
5130 struct imsm_map *migr_map;
5131 struct active_array *a;
5132 struct imsm_disk *disk;
5133 __u8 to_state;
5134 struct dl *dl;
5135 unsigned int found;
5136 int failed;
5137 int victim = get_imsm_disk_idx(dev, u->slot);
5138 int i;
5139
5140 for (dl = super->disks; dl; dl = dl->next)
5141 if (dl == u->dl)
5142 break;
5143
5144 if (!dl) {
5145 fprintf(stderr, "error: imsm_activate_spare passed "
5146 "an unknown disk (index: %d)\n",
5147 u->dl->index);
5148 return;
5149 }
5150
5151 super->updates_pending++;
5152
5153 /* count failures (excluding rebuilds and the victim)
5154 * to determine map[0] state
5155 */
5156 failed = 0;
5157 for (i = 0; i < map->num_members; i++) {
5158 if (i == u->slot)
5159 continue;
5160 disk = get_imsm_disk(super, get_imsm_disk_idx(dev, i));
5161 if (!disk || is_failed(disk))
5162 failed++;
5163 }
5164
5165 /* adding a pristine spare, assign a new index */
5166 if (dl->index < 0) {
5167 dl->index = super->anchor->num_disks;
5168 super->anchor->num_disks++;
5169 }
5170 disk = &dl->disk;
5171 disk->status |= CONFIGURED_DISK;
5172 disk->status &= ~SPARE_DISK;
5173
5174 /* mark rebuild */
5175 to_state = imsm_check_degraded(super, dev, failed);
5176 map->map_state = IMSM_T_STATE_DEGRADED;
5177 migrate(dev, to_state, MIGR_REBUILD);
5178 migr_map = get_imsm_map(dev, 1);
5179 set_imsm_ord_tbl_ent(map, u->slot, dl->index);
5180 set_imsm_ord_tbl_ent(migr_map, u->slot, dl->index | IMSM_ORD_REBUILD);
5181
5182 /* update the family_num to mark a new container
5183 * generation, being careful to record the existing
5184 * family_num in orig_family_num to clean up after
5185 * earlier mdadm versions that neglected to set it.
5186 */
5187 if (mpb->orig_family_num == 0)
5188 mpb->orig_family_num = mpb->family_num;
5189 mpb->family_num += super->random;
5190
5191 /* count arrays using the victim in the metadata */
5192 found = 0;
5193 for (a = st->arrays; a ; a = a->next) {
5194 dev = get_imsm_dev(super, a->info.container_member);
5195 map = get_imsm_map(dev, 0);
5196
5197 if (get_imsm_disk_slot(map, victim) >= 0)
5198 found++;
5199 }
5200
5201 /* delete the victim if it is no longer being
5202 * utilized anywhere
5203 */
5204 if (!found) {
5205 struct dl **dlp;
5206
5207 /* We know that 'manager' isn't touching anything,
5208 * so it is safe to delete
5209 */
5210 for (dlp = &super->disks; *dlp; dlp = &(*dlp)->next)
5211 if ((*dlp)->index == victim)
5212 break;
5213
5214 /* victim may be on the missing list */
5215 if (!*dlp)
5216 for (dlp = &super->missing; *dlp; dlp = &(*dlp)->next)
5217 if ((*dlp)->index == victim)
5218 break;
5219 imsm_delete(super, dlp, victim);
5220 }
5221 break;
5222 }
5223 case update_create_array: {
5224 /* someone wants to create a new array, we need to be aware of
5225 * a few races/collisions:
5226 * 1/ 'Create' called by two separate instances of mdadm
5227 * 2/ 'Create' versus 'activate_spare': mdadm has chosen
5228 * devices that have since been assimilated via
5229 * activate_spare.
5230 * In the event this update can not be carried out mdadm will
5231 * (FIX ME) notice that its update did not take hold.
5232 */
5233 struct imsm_update_create_array *u = (void *) update->buf;
5234 struct intel_dev *dv;
5235 struct imsm_dev *dev;
5236 struct imsm_map *map, *new_map;
5237 unsigned long long start, end;
5238 unsigned long long new_start, new_end;
5239 int i;
5240 struct disk_info *inf;
5241 struct dl *dl;
5242
5243 /* handle racing creates: first come first serve */
5244 if (u->dev_idx < mpb->num_raid_devs) {
5245 dprintf("%s: subarray %d already defined\n",
5246 __func__, u->dev_idx);
5247 goto create_error;
5248 }
5249
5250 /* check update is next in sequence */
5251 if (u->dev_idx != mpb->num_raid_devs) {
5252 dprintf("%s: can not create array %d expected index %d\n",
5253 __func__, u->dev_idx, mpb->num_raid_devs);
5254 goto create_error;
5255 }
5256
5257 new_map = get_imsm_map(&u->dev, 0);
5258 new_start = __le32_to_cpu(new_map->pba_of_lba0);
5259 new_end = new_start + __le32_to_cpu(new_map->blocks_per_member);
5260 inf = get_disk_info(u);
5261
5262 /* handle activate_spare versus create race:
5263 * check to make sure that overlapping arrays do not include
5264 * overalpping disks
5265 */
5266 for (i = 0; i < mpb->num_raid_devs; i++) {
5267 dev = get_imsm_dev(super, i);
5268 map = get_imsm_map(dev, 0);
5269 start = __le32_to_cpu(map->pba_of_lba0);
5270 end = start + __le32_to_cpu(map->blocks_per_member);
5271 if ((new_start >= start && new_start <= end) ||
5272 (start >= new_start && start <= new_end))
5273 /* overlap */;
5274 else
5275 continue;
5276
5277 if (disks_overlap(super, i, u)) {
5278 dprintf("%s: arrays overlap\n", __func__);
5279 goto create_error;
5280 }
5281 }
5282
5283 /* check that prepare update was successful */
5284 if (!update->space) {
5285 dprintf("%s: prepare update failed\n", __func__);
5286 goto create_error;
5287 }
5288
5289 /* check that all disks are still active before committing
5290 * changes. FIXME: could we instead handle this by creating a
5291 * degraded array? That's probably not what the user expects,
5292 * so better to drop this update on the floor.
5293 */
5294 for (i = 0; i < new_map->num_members; i++) {
5295 dl = serial_to_dl(inf[i].serial, super);
5296 if (!dl) {
5297 dprintf("%s: disk disappeared\n", __func__);
5298 goto create_error;
5299 }
5300 }
5301
5302 super->updates_pending++;
5303
5304 /* convert spares to members and fixup ord_tbl */
5305 for (i = 0; i < new_map->num_members; i++) {
5306 dl = serial_to_dl(inf[i].serial, super);
5307 if (dl->index == -1) {
5308 dl->index = mpb->num_disks;
5309 mpb->num_disks++;
5310 dl->disk.status |= CONFIGURED_DISK;
5311 dl->disk.status &= ~SPARE_DISK;
5312 }
5313 set_imsm_ord_tbl_ent(new_map, i, dl->index);
5314 }
5315
5316 dv = update->space;
5317 dev = dv->dev;
5318 update->space = NULL;
5319 imsm_copy_dev(dev, &u->dev);
5320 dv->index = u->dev_idx;
5321 dv->next = super->devlist;
5322 super->devlist = dv;
5323 mpb->num_raid_devs++;
5324
5325 imsm_update_version_info(super);
5326 break;
5327 create_error:
5328 /* mdmon knows how to release update->space, but not
5329 * ((struct intel_dev *) update->space)->dev
5330 */
5331 if (update->space) {
5332 dv = update->space;
5333 free(dv->dev);
5334 }
5335 break;
5336 }
5337 case update_kill_array: {
5338 struct imsm_update_kill_array *u = (void *) update->buf;
5339 int victim = u->dev_idx;
5340 struct active_array *a;
5341 struct intel_dev **dp;
5342 struct imsm_dev *dev;
5343
5344 /* sanity check that we are not affecting the uuid of
5345 * active arrays, or deleting an active array
5346 *
5347 * FIXME when immutable ids are available, but note that
5348 * we'll also need to fixup the invalidated/active
5349 * subarray indexes in mdstat
5350 */
5351 for (a = st->arrays; a; a = a->next)
5352 if (a->info.container_member >= victim)
5353 break;
5354 /* by definition if mdmon is running at least one array
5355 * is active in the container, so checking
5356 * mpb->num_raid_devs is just extra paranoia
5357 */
5358 dev = get_imsm_dev(super, victim);
5359 if (a || !dev || mpb->num_raid_devs == 1) {
5360 dprintf("failed to delete subarray-%d\n", victim);
5361 break;
5362 }
5363
5364 for (dp = &super->devlist; *dp;)
5365 if ((*dp)->index == (unsigned)super->current_vol) {
5366 *dp = (*dp)->next;
5367 } else {
5368 if ((*dp)->index > (unsigned)victim)
5369 (*dp)->index--;
5370 dp = &(*dp)->next;
5371 }
5372 mpb->num_raid_devs--;
5373 super->updates_pending++;
5374 break;
5375 }
5376 case update_rename_array: {
5377 struct imsm_update_rename_array *u = (void *) update->buf;
5378 char name[MAX_RAID_SERIAL_LEN+1];
5379 int target = u->dev_idx;
5380 struct active_array *a;
5381 struct imsm_dev *dev;
5382
5383 /* sanity check that we are not affecting the uuid of
5384 * an active array
5385 */
5386 snprintf(name, MAX_RAID_SERIAL_LEN, "%s", (char *) u->name);
5387 name[MAX_RAID_SERIAL_LEN] = '\0';
5388 for (a = st->arrays; a; a = a->next)
5389 if (a->info.container_member == target)
5390 break;
5391 dev = get_imsm_dev(super, u->dev_idx);
5392 if (a || !dev || !check_name(super, name, 1)) {
5393 dprintf("failed to rename subarray-%d\n", target);
5394 break;
5395 }
5396
5397 snprintf((char *) dev->volume, MAX_RAID_SERIAL_LEN, "%s", name);
5398 super->updates_pending++;
5399 break;
5400 }
5401 case update_add_disk:
5402
5403 /* we may be able to repair some arrays if disks are
5404 * being added */
5405 if (super->add) {
5406 struct active_array *a;
5407
5408 super->updates_pending++;
5409 for (a = st->arrays; a; a = a->next)
5410 a->check_degraded = 1;
5411 }
5412 /* add some spares to the metadata */
5413 while (super->add) {
5414 struct dl *al;
5415
5416 al = super->add;
5417 super->add = al->next;
5418 al->next = super->disks;
5419 super->disks = al;
5420 dprintf("%s: added %x:%x\n",
5421 __func__, al->major, al->minor);
5422 }
5423
5424 break;
5425 }
5426 }
5427
5428 static void imsm_prepare_update(struct supertype *st,
5429 struct metadata_update *update)
5430 {
5431 /**
5432 * Allocate space to hold new disk entries, raid-device entries or a new
5433 * mpb if necessary. The manager synchronously waits for updates to
5434 * complete in the monitor, so new mpb buffers allocated here can be
5435 * integrated by the monitor thread without worrying about live pointers
5436 * in the manager thread.
5437 */
5438 enum imsm_update_type type = *(enum imsm_update_type *) update->buf;
5439 struct intel_super *super = st->sb;
5440 struct imsm_super *mpb = super->anchor;
5441 size_t buf_len;
5442 size_t len = 0;
5443
5444 switch (type) {
5445 case update_create_array: {
5446 struct imsm_update_create_array *u = (void *) update->buf;
5447 struct intel_dev *dv;
5448 struct imsm_dev *dev = &u->dev;
5449 struct imsm_map *map = get_imsm_map(dev, 0);
5450 struct dl *dl;
5451 struct disk_info *inf;
5452 int i;
5453 int activate = 0;
5454
5455 inf = get_disk_info(u);
5456 len = sizeof_imsm_dev(dev, 1);
5457 /* allocate a new super->devlist entry */
5458 dv = malloc(sizeof(*dv));
5459 if (dv) {
5460 dv->dev = malloc(len);
5461 if (dv->dev)
5462 update->space = dv;
5463 else {
5464 free(dv);
5465 update->space = NULL;
5466 }
5467 }
5468
5469 /* count how many spares will be converted to members */
5470 for (i = 0; i < map->num_members; i++) {
5471 dl = serial_to_dl(inf[i].serial, super);
5472 if (!dl) {
5473 /* hmm maybe it failed?, nothing we can do about
5474 * it here
5475 */
5476 continue;
5477 }
5478 if (count_memberships(dl, super) == 0)
5479 activate++;
5480 }
5481 len += activate * sizeof(struct imsm_disk);
5482 break;
5483 default:
5484 break;
5485 }
5486 }
5487
5488 /* check if we need a larger metadata buffer */
5489 if (super->next_buf)
5490 buf_len = super->next_len;
5491 else
5492 buf_len = super->len;
5493
5494 if (__le32_to_cpu(mpb->mpb_size) + len > buf_len) {
5495 /* ok we need a larger buf than what is currently allocated
5496 * if this allocation fails process_update will notice that
5497 * ->next_len is set and ->next_buf is NULL
5498 */
5499 buf_len = ROUND_UP(__le32_to_cpu(mpb->mpb_size) + len, 512);
5500 if (super->next_buf)
5501 free(super->next_buf);
5502
5503 super->next_len = buf_len;
5504 if (posix_memalign(&super->next_buf, 512, buf_len) == 0)
5505 memset(super->next_buf, 0, buf_len);
5506 else
5507 super->next_buf = NULL;
5508 }
5509 }
5510
5511 /* must be called while manager is quiesced */
5512 static void imsm_delete(struct intel_super *super, struct dl **dlp, unsigned index)
5513 {
5514 struct imsm_super *mpb = super->anchor;
5515 struct dl *iter;
5516 struct imsm_dev *dev;
5517 struct imsm_map *map;
5518 int i, j, num_members;
5519 __u32 ord;
5520
5521 dprintf("%s: deleting device[%d] from imsm_super\n",
5522 __func__, index);
5523
5524 /* shift all indexes down one */
5525 for (iter = super->disks; iter; iter = iter->next)
5526 if (iter->index > (int)index)
5527 iter->index--;
5528 for (iter = super->missing; iter; iter = iter->next)
5529 if (iter->index > (int)index)
5530 iter->index--;
5531
5532 for (i = 0; i < mpb->num_raid_devs; i++) {
5533 dev = get_imsm_dev(super, i);
5534 map = get_imsm_map(dev, 0);
5535 num_members = map->num_members;
5536 for (j = 0; j < num_members; j++) {
5537 /* update ord entries being careful not to propagate
5538 * ord-flags to the first map
5539 */
5540 ord = get_imsm_ord_tbl_ent(dev, j);
5541
5542 if (ord_to_idx(ord) <= index)
5543 continue;
5544
5545 map = get_imsm_map(dev, 0);
5546 set_imsm_ord_tbl_ent(map, j, ord_to_idx(ord - 1));
5547 map = get_imsm_map(dev, 1);
5548 if (map)
5549 set_imsm_ord_tbl_ent(map, j, ord - 1);
5550 }
5551 }
5552
5553 mpb->num_disks--;
5554 super->updates_pending++;
5555 if (*dlp) {
5556 struct dl *dl = *dlp;
5557
5558 *dlp = (*dlp)->next;
5559 __free_imsm_disk(dl);
5560 }
5561 }
5562 #endif /* MDASSEMBLE */
5563
5564 struct superswitch super_imsm = {
5565 #ifndef MDASSEMBLE
5566 .examine_super = examine_super_imsm,
5567 .brief_examine_super = brief_examine_super_imsm,
5568 .brief_examine_subarrays = brief_examine_subarrays_imsm,
5569 .export_examine_super = export_examine_super_imsm,
5570 .detail_super = detail_super_imsm,
5571 .brief_detail_super = brief_detail_super_imsm,
5572 .write_init_super = write_init_super_imsm,
5573 .validate_geometry = validate_geometry_imsm,
5574 .default_chunk = default_chunk_imsm,
5575 .add_to_super = add_to_super_imsm,
5576 .detail_platform = detail_platform_imsm,
5577 .kill_subarray = kill_subarray_imsm,
5578 .update_subarray = update_subarray_imsm,
5579 #endif
5580 .match_home = match_home_imsm,
5581 .uuid_from_super= uuid_from_super_imsm,
5582 .getinfo_super = getinfo_super_imsm,
5583 .update_super = update_super_imsm,
5584
5585 .avail_size = avail_size_imsm,
5586
5587 .compare_super = compare_super_imsm,
5588
5589 .load_super = load_super_imsm,
5590 .init_super = init_super_imsm,
5591 .store_super = store_super_imsm,
5592 .free_super = free_super_imsm,
5593 .match_metadata_desc = match_metadata_desc_imsm,
5594 .container_content = container_content_imsm,
5595 .default_layout = imsm_level_to_layout,
5596
5597 .external = 1,
5598 .name = "imsm",
5599
5600 #ifndef MDASSEMBLE
5601 /* for mdmon */
5602 .open_new = imsm_open_new,
5603 .set_array_state= imsm_set_array_state,
5604 .set_disk = imsm_set_disk,
5605 .sync_metadata = imsm_sync_metadata,
5606 .activate_spare = imsm_activate_spare,
5607 .process_update = imsm_process_update,
5608 .prepare_update = imsm_prepare_update,
5609 #endif /* MDASSEMBLE */
5610 };