md_intel.c 77 KB

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  1. /*-
  2. * SPDX-License-Identifier: BSD-2-Clause
  3. *
  4. * Copyright (c) 2010 Alexander Motin <mav@FreeBSD.org>
  5. * Copyright (c) 2000 - 2008 Søren Schmidt <sos@FreeBSD.org>
  6. * All rights reserved.
  7. *
  8. * Redistribution and use in source and binary forms, with or without
  9. * modification, are permitted provided that the following conditions
  10. * are met:
  11. * 1. Redistributions of source code must retain the above copyright
  12. * notice, this list of conditions and the following disclaimer.
  13. * 2. Redistributions in binary form must reproduce the above copyright
  14. * notice, this list of conditions and the following disclaimer in the
  15. * documentation and/or other materials provided with the distribution.
  16. *
  17. * THIS SOFTWARE IS PROVIDED BY THE AUTHORS AND CONTRIBUTORS ``AS IS'' AND
  18. * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
  19. * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
  20. * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHORS OR CONTRIBUTORS BE LIABLE
  21. * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  22. * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
  23. * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
  24. * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
  25. * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
  26. * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
  27. * SUCH DAMAGE.
  28. */
  29. #include <sys/param.h>
  30. #include <sys/bio.h>
  31. #include <sys/endian.h>
  32. #include <sys/kernel.h>
  33. #include <sys/kobj.h>
  34. #include <sys/limits.h>
  35. #include <sys/lock.h>
  36. #include <sys/malloc.h>
  37. #include <sys/mutex.h>
  38. #include <sys/systm.h>
  39. #include <sys/taskqueue.h>
  40. #include <sys/disk.h>
  41. #include <geom/geom.h>
  42. #include <geom/geom_dbg.h>
  43. #include "geom/raid/g_raid.h"
  44. #include "g_raid_md_if.h"
  45. static MALLOC_DEFINE(M_MD_INTEL, "md_intel_data", "GEOM_RAID Intel metadata");
  46. struct intel_raid_map {
  47. uint32_t offset;
  48. uint32_t disk_sectors;
  49. uint32_t stripe_count;
  50. uint16_t strip_sectors;
  51. uint8_t status;
  52. #define INTEL_S_READY 0x00
  53. #define INTEL_S_UNINITIALIZED 0x01
  54. #define INTEL_S_DEGRADED 0x02
  55. #define INTEL_S_FAILURE 0x03
  56. uint8_t type;
  57. #define INTEL_T_RAID0 0x00
  58. #define INTEL_T_RAID1 0x01
  59. #define INTEL_T_RAID5 0x05
  60. uint8_t total_disks;
  61. uint8_t total_domains;
  62. uint8_t failed_disk_num;
  63. uint8_t ddf;
  64. uint32_t offset_hi;
  65. uint32_t disk_sectors_hi;
  66. uint32_t stripe_count_hi;
  67. uint32_t filler_2[4];
  68. uint32_t disk_idx[1]; /* total_disks entries. */
  69. #define INTEL_DI_IDX 0x00ffffff
  70. #define INTEL_DI_RBLD 0x01000000
  71. } __packed;
  72. struct intel_raid_vol {
  73. uint8_t name[16];
  74. uint64_t total_sectors __packed;
  75. uint32_t state;
  76. #define INTEL_ST_BOOTABLE 0x00000001
  77. #define INTEL_ST_BOOT_DEVICE 0x00000002
  78. #define INTEL_ST_READ_COALESCING 0x00000004
  79. #define INTEL_ST_WRITE_COALESCING 0x00000008
  80. #define INTEL_ST_LAST_SHUTDOWN_DIRTY 0x00000010
  81. #define INTEL_ST_HIDDEN_AT_BOOT 0x00000020
  82. #define INTEL_ST_CURRENTLY_HIDDEN 0x00000040
  83. #define INTEL_ST_VERIFY_AND_FIX 0x00000080
  84. #define INTEL_ST_MAP_STATE_UNINIT 0x00000100
  85. #define INTEL_ST_NO_AUTO_RECOVERY 0x00000200
  86. #define INTEL_ST_CLONE_N_GO 0x00000400
  87. #define INTEL_ST_CLONE_MAN_SYNC 0x00000800
  88. #define INTEL_ST_CNG_MASTER_DISK_NUM 0x00001000
  89. uint32_t reserved;
  90. uint8_t migr_priority;
  91. uint8_t num_sub_vols;
  92. uint8_t tid;
  93. uint8_t cng_master_disk;
  94. uint16_t cache_policy;
  95. uint8_t cng_state;
  96. #define INTEL_CNGST_UPDATED 0
  97. #define INTEL_CNGST_NEEDS_UPDATE 1
  98. #define INTEL_CNGST_MASTER_MISSING 2
  99. uint8_t cng_sub_state;
  100. uint32_t filler_0[10];
  101. uint32_t curr_migr_unit;
  102. uint32_t checkpoint_id;
  103. uint8_t migr_state;
  104. uint8_t migr_type;
  105. #define INTEL_MT_INIT 0
  106. #define INTEL_MT_REBUILD 1
  107. #define INTEL_MT_VERIFY 2
  108. #define INTEL_MT_GEN_MIGR 3
  109. #define INTEL_MT_STATE_CHANGE 4
  110. #define INTEL_MT_REPAIR 5
  111. uint8_t dirty;
  112. uint8_t fs_state;
  113. uint16_t verify_errors;
  114. uint16_t bad_blocks;
  115. uint32_t curr_migr_unit_hi;
  116. uint32_t filler_1[3];
  117. struct intel_raid_map map[1]; /* 2 entries if migr_state != 0. */
  118. } __packed;
  119. struct intel_raid_disk {
  120. #define INTEL_SERIAL_LEN 16
  121. uint8_t serial[INTEL_SERIAL_LEN];
  122. uint32_t sectors;
  123. uint32_t id;
  124. uint32_t flags;
  125. #define INTEL_F_SPARE 0x01
  126. #define INTEL_F_ASSIGNED 0x02
  127. #define INTEL_F_FAILED 0x04
  128. #define INTEL_F_ONLINE 0x08
  129. #define INTEL_F_DISABLED 0x80
  130. uint32_t owner_cfg_num;
  131. uint32_t sectors_hi;
  132. uint32_t filler[3];
  133. } __packed;
  134. struct intel_raid_conf {
  135. uint8_t intel_id[24];
  136. #define INTEL_MAGIC "Intel Raid ISM Cfg Sig. "
  137. uint8_t version[6];
  138. #define INTEL_VERSION_1000 "1.0.00" /* RAID0 */
  139. #define INTEL_VERSION_1100 "1.1.00" /* RAID1 */
  140. #define INTEL_VERSION_1200 "1.2.00" /* Many volumes */
  141. #define INTEL_VERSION_1201 "1.2.01" /* 3 or 4 disks */
  142. #define INTEL_VERSION_1202 "1.2.02" /* RAID5 */
  143. #define INTEL_VERSION_1204 "1.2.04" /* 5 or 6 disks */
  144. #define INTEL_VERSION_1206 "1.2.06" /* CNG */
  145. #define INTEL_VERSION_1300 "1.3.00" /* Attributes */
  146. uint8_t dummy_0[2];
  147. uint32_t checksum;
  148. uint32_t config_size;
  149. uint32_t config_id;
  150. uint32_t generation;
  151. uint32_t error_log_size;
  152. uint32_t attributes;
  153. #define INTEL_ATTR_RAID0 0x00000001
  154. #define INTEL_ATTR_RAID1 0x00000002
  155. #define INTEL_ATTR_RAID10 0x00000004
  156. #define INTEL_ATTR_RAID1E 0x00000008
  157. #define INTEL_ATTR_RAID5 0x00000010
  158. #define INTEL_ATTR_RAIDCNG 0x00000020
  159. #define INTEL_ATTR_EXT_STRIP 0x00000040
  160. #define INTEL_ATTR_NVM_CACHE 0x02000000
  161. #define INTEL_ATTR_2TB_DISK 0x04000000
  162. #define INTEL_ATTR_BBM 0x08000000
  163. #define INTEL_ATTR_NVM_CACHE2 0x10000000
  164. #define INTEL_ATTR_2TB 0x20000000
  165. #define INTEL_ATTR_PM 0x40000000
  166. #define INTEL_ATTR_CHECKSUM 0x80000000
  167. uint8_t total_disks;
  168. uint8_t total_volumes;
  169. uint8_t error_log_pos;
  170. uint8_t dummy_2[1];
  171. uint32_t cache_size;
  172. uint32_t orig_config_id;
  173. uint32_t pwr_cycle_count;
  174. uint32_t bbm_log_size;
  175. uint32_t filler_0[35];
  176. struct intel_raid_disk disk[1]; /* total_disks entries. */
  177. /* Here goes total_volumes of struct intel_raid_vol. */
  178. } __packed;
  179. #define INTEL_ATTR_SUPPORTED ( INTEL_ATTR_RAID0 | INTEL_ATTR_RAID1 | \
  180. INTEL_ATTR_RAID10 | INTEL_ATTR_RAID1E | INTEL_ATTR_RAID5 | \
  181. INTEL_ATTR_RAIDCNG | INTEL_ATTR_EXT_STRIP | INTEL_ATTR_2TB_DISK | \
  182. INTEL_ATTR_2TB | INTEL_ATTR_PM | INTEL_ATTR_CHECKSUM )
  183. #define INTEL_MAX_MD_SIZE(ndisks) \
  184. (sizeof(struct intel_raid_conf) + \
  185. sizeof(struct intel_raid_disk) * (ndisks - 1) + \
  186. sizeof(struct intel_raid_vol) * 2 + \
  187. sizeof(struct intel_raid_map) * 2 + \
  188. sizeof(uint32_t) * (ndisks - 1) * 4)
  189. struct g_raid_md_intel_perdisk {
  190. struct intel_raid_conf *pd_meta;
  191. int pd_disk_pos;
  192. struct intel_raid_disk pd_disk_meta;
  193. };
  194. struct g_raid_md_intel_pervolume {
  195. int pv_volume_pos;
  196. int pv_cng;
  197. int pv_cng_man_sync;
  198. int pv_cng_master_disk;
  199. };
  200. struct g_raid_md_intel_object {
  201. struct g_raid_md_object mdio_base;
  202. uint32_t mdio_config_id;
  203. uint32_t mdio_orig_config_id;
  204. uint32_t mdio_generation;
  205. struct intel_raid_conf *mdio_meta;
  206. struct callout mdio_start_co; /* STARTING state timer. */
  207. int mdio_disks_present;
  208. int mdio_started;
  209. int mdio_incomplete;
  210. struct root_hold_token *mdio_rootmount; /* Root mount delay token. */
  211. };
  212. static g_raid_md_create_t g_raid_md_create_intel;
  213. static g_raid_md_taste_t g_raid_md_taste_intel;
  214. static g_raid_md_event_t g_raid_md_event_intel;
  215. static g_raid_md_ctl_t g_raid_md_ctl_intel;
  216. static g_raid_md_write_t g_raid_md_write_intel;
  217. static g_raid_md_fail_disk_t g_raid_md_fail_disk_intel;
  218. static g_raid_md_free_disk_t g_raid_md_free_disk_intel;
  219. static g_raid_md_free_volume_t g_raid_md_free_volume_intel;
  220. static g_raid_md_free_t g_raid_md_free_intel;
  221. static kobj_method_t g_raid_md_intel_methods[] = {
  222. KOBJMETHOD(g_raid_md_create, g_raid_md_create_intel),
  223. KOBJMETHOD(g_raid_md_taste, g_raid_md_taste_intel),
  224. KOBJMETHOD(g_raid_md_event, g_raid_md_event_intel),
  225. KOBJMETHOD(g_raid_md_ctl, g_raid_md_ctl_intel),
  226. KOBJMETHOD(g_raid_md_write, g_raid_md_write_intel),
  227. KOBJMETHOD(g_raid_md_fail_disk, g_raid_md_fail_disk_intel),
  228. KOBJMETHOD(g_raid_md_free_disk, g_raid_md_free_disk_intel),
  229. KOBJMETHOD(g_raid_md_free_volume, g_raid_md_free_volume_intel),
  230. KOBJMETHOD(g_raid_md_free, g_raid_md_free_intel),
  231. { 0, 0 }
  232. };
  233. static struct g_raid_md_class g_raid_md_intel_class = {
  234. "Intel",
  235. g_raid_md_intel_methods,
  236. sizeof(struct g_raid_md_intel_object),
  237. .mdc_enable = 1,
  238. .mdc_priority = 100
  239. };
  240. static struct intel_raid_map *
  241. intel_get_map(struct intel_raid_vol *mvol, int i)
  242. {
  243. struct intel_raid_map *mmap;
  244. if (i > (mvol->migr_state ? 1 : 0))
  245. return (NULL);
  246. mmap = &mvol->map[0];
  247. for (; i > 0; i--) {
  248. mmap = (struct intel_raid_map *)
  249. &mmap->disk_idx[mmap->total_disks];
  250. }
  251. return ((struct intel_raid_map *)mmap);
  252. }
  253. static struct intel_raid_vol *
  254. intel_get_volume(struct intel_raid_conf *meta, int i)
  255. {
  256. struct intel_raid_vol *mvol;
  257. struct intel_raid_map *mmap;
  258. if (i > 1)
  259. return (NULL);
  260. mvol = (struct intel_raid_vol *)&meta->disk[meta->total_disks];
  261. for (; i > 0; i--) {
  262. mmap = intel_get_map(mvol, mvol->migr_state ? 1 : 0);
  263. mvol = (struct intel_raid_vol *)
  264. &mmap->disk_idx[mmap->total_disks];
  265. }
  266. return (mvol);
  267. }
  268. static off_t
  269. intel_get_map_offset(struct intel_raid_map *mmap)
  270. {
  271. off_t offset = (off_t)mmap->offset_hi << 32;
  272. offset += mmap->offset;
  273. return (offset);
  274. }
  275. static void
  276. intel_set_map_offset(struct intel_raid_map *mmap, off_t offset)
  277. {
  278. mmap->offset = offset & 0xffffffff;
  279. mmap->offset_hi = offset >> 32;
  280. }
  281. static off_t
  282. intel_get_map_disk_sectors(struct intel_raid_map *mmap)
  283. {
  284. off_t disk_sectors = (off_t)mmap->disk_sectors_hi << 32;
  285. disk_sectors += mmap->disk_sectors;
  286. return (disk_sectors);
  287. }
  288. static void
  289. intel_set_map_disk_sectors(struct intel_raid_map *mmap, off_t disk_sectors)
  290. {
  291. mmap->disk_sectors = disk_sectors & 0xffffffff;
  292. mmap->disk_sectors_hi = disk_sectors >> 32;
  293. }
  294. static void
  295. intel_set_map_stripe_count(struct intel_raid_map *mmap, off_t stripe_count)
  296. {
  297. mmap->stripe_count = stripe_count & 0xffffffff;
  298. mmap->stripe_count_hi = stripe_count >> 32;
  299. }
  300. static off_t
  301. intel_get_disk_sectors(struct intel_raid_disk *disk)
  302. {
  303. off_t sectors = (off_t)disk->sectors_hi << 32;
  304. sectors += disk->sectors;
  305. return (sectors);
  306. }
  307. static void
  308. intel_set_disk_sectors(struct intel_raid_disk *disk, off_t sectors)
  309. {
  310. disk->sectors = sectors & 0xffffffff;
  311. disk->sectors_hi = sectors >> 32;
  312. }
  313. static off_t
  314. intel_get_vol_curr_migr_unit(struct intel_raid_vol *vol)
  315. {
  316. off_t curr_migr_unit = (off_t)vol->curr_migr_unit_hi << 32;
  317. curr_migr_unit += vol->curr_migr_unit;
  318. return (curr_migr_unit);
  319. }
  320. static void
  321. intel_set_vol_curr_migr_unit(struct intel_raid_vol *vol, off_t curr_migr_unit)
  322. {
  323. vol->curr_migr_unit = curr_migr_unit & 0xffffffff;
  324. vol->curr_migr_unit_hi = curr_migr_unit >> 32;
  325. }
  326. static char *
  327. intel_status2str(int status)
  328. {
  329. switch (status) {
  330. case INTEL_S_READY:
  331. return ("READY");
  332. case INTEL_S_UNINITIALIZED:
  333. return ("UNINITIALIZED");
  334. case INTEL_S_DEGRADED:
  335. return ("DEGRADED");
  336. case INTEL_S_FAILURE:
  337. return ("FAILURE");
  338. default:
  339. return ("UNKNOWN");
  340. }
  341. }
  342. static char *
  343. intel_type2str(int type)
  344. {
  345. switch (type) {
  346. case INTEL_T_RAID0:
  347. return ("RAID0");
  348. case INTEL_T_RAID1:
  349. return ("RAID1");
  350. case INTEL_T_RAID5:
  351. return ("RAID5");
  352. default:
  353. return ("UNKNOWN");
  354. }
  355. }
  356. static char *
  357. intel_cngst2str(int cng_state)
  358. {
  359. switch (cng_state) {
  360. case INTEL_CNGST_UPDATED:
  361. return ("UPDATED");
  362. case INTEL_CNGST_NEEDS_UPDATE:
  363. return ("NEEDS_UPDATE");
  364. case INTEL_CNGST_MASTER_MISSING:
  365. return ("MASTER_MISSING");
  366. default:
  367. return ("UNKNOWN");
  368. }
  369. }
  370. static char *
  371. intel_mt2str(int type)
  372. {
  373. switch (type) {
  374. case INTEL_MT_INIT:
  375. return ("INIT");
  376. case INTEL_MT_REBUILD:
  377. return ("REBUILD");
  378. case INTEL_MT_VERIFY:
  379. return ("VERIFY");
  380. case INTEL_MT_GEN_MIGR:
  381. return ("GEN_MIGR");
  382. case INTEL_MT_STATE_CHANGE:
  383. return ("STATE_CHANGE");
  384. case INTEL_MT_REPAIR:
  385. return ("REPAIR");
  386. default:
  387. return ("UNKNOWN");
  388. }
  389. }
  390. static void
  391. g_raid_md_intel_print(struct intel_raid_conf *meta)
  392. {
  393. struct intel_raid_vol *mvol;
  394. struct intel_raid_map *mmap;
  395. int i, j, k;
  396. if (g_raid_debug < 1)
  397. return;
  398. printf("********* ATA Intel MatrixRAID Metadata *********\n");
  399. printf("intel_id <%.24s>\n", meta->intel_id);
  400. printf("version <%.6s>\n", meta->version);
  401. printf("checksum 0x%08x\n", meta->checksum);
  402. printf("config_size 0x%08x\n", meta->config_size);
  403. printf("config_id 0x%08x\n", meta->config_id);
  404. printf("generation 0x%08x\n", meta->generation);
  405. printf("error_log_size %d\n", meta->error_log_size);
  406. printf("attributes 0x%b\n", meta->attributes,
  407. "\020"
  408. "\001RAID0"
  409. "\002RAID1"
  410. "\003RAID10"
  411. "\004RAID1E"
  412. "\005RAID15"
  413. "\006RAIDCNG"
  414. "\007EXT_STRIP"
  415. "\032NVM_CACHE"
  416. "\0332TB_DISK"
  417. "\034BBM"
  418. "\035NVM_CACHE"
  419. "\0362TB"
  420. "\037PM"
  421. "\040CHECKSUM");
  422. printf("total_disks %u\n", meta->total_disks);
  423. printf("total_volumes %u\n", meta->total_volumes);
  424. printf("error_log_pos %u\n", meta->error_log_pos);
  425. printf("cache_size %u\n", meta->cache_size);
  426. printf("orig_config_id 0x%08x\n", meta->orig_config_id);
  427. printf("pwr_cycle_count %u\n", meta->pwr_cycle_count);
  428. printf("bbm_log_size %u\n", meta->bbm_log_size);
  429. printf("Flags: S - Spare, A - Assigned, F - Failed, O - Online, D - Disabled\n");
  430. printf("DISK# serial disk_sectors disk_sectors_hi disk_id flags owner\n");
  431. for (i = 0; i < meta->total_disks; i++ ) {
  432. printf(" %d <%.16s> %u %u 0x%08x 0x%b %08x\n", i,
  433. meta->disk[i].serial, meta->disk[i].sectors,
  434. meta->disk[i].sectors_hi, meta->disk[i].id,
  435. meta->disk[i].flags, "\20\01S\02A\03F\04O\05D",
  436. meta->disk[i].owner_cfg_num);
  437. }
  438. for (i = 0; i < meta->total_volumes; i++) {
  439. mvol = intel_get_volume(meta, i);
  440. printf(" ****** Volume %d ******\n", i);
  441. printf(" name %.16s\n", mvol->name);
  442. printf(" total_sectors %ju\n", mvol->total_sectors);
  443. printf(" state 0x%b\n", mvol->state,
  444. "\020"
  445. "\001BOOTABLE"
  446. "\002BOOT_DEVICE"
  447. "\003READ_COALESCING"
  448. "\004WRITE_COALESCING"
  449. "\005LAST_SHUTDOWN_DIRTY"
  450. "\006HIDDEN_AT_BOOT"
  451. "\007CURRENTLY_HIDDEN"
  452. "\010VERIFY_AND_FIX"
  453. "\011MAP_STATE_UNINIT"
  454. "\012NO_AUTO_RECOVERY"
  455. "\013CLONE_N_GO"
  456. "\014CLONE_MAN_SYNC"
  457. "\015CNG_MASTER_DISK_NUM");
  458. printf(" reserved %u\n", mvol->reserved);
  459. printf(" migr_priority %u\n", mvol->migr_priority);
  460. printf(" num_sub_vols %u\n", mvol->num_sub_vols);
  461. printf(" tid %u\n", mvol->tid);
  462. printf(" cng_master_disk %u\n", mvol->cng_master_disk);
  463. printf(" cache_policy %u\n", mvol->cache_policy);
  464. printf(" cng_state %u (%s)\n", mvol->cng_state,
  465. intel_cngst2str(mvol->cng_state));
  466. printf(" cng_sub_state %u\n", mvol->cng_sub_state);
  467. printf(" curr_migr_unit %u\n", mvol->curr_migr_unit);
  468. printf(" curr_migr_unit_hi %u\n", mvol->curr_migr_unit_hi);
  469. printf(" checkpoint_id %u\n", mvol->checkpoint_id);
  470. printf(" migr_state %u\n", mvol->migr_state);
  471. printf(" migr_type %u (%s)\n", mvol->migr_type,
  472. intel_mt2str(mvol->migr_type));
  473. printf(" dirty %u\n", mvol->dirty);
  474. printf(" fs_state %u\n", mvol->fs_state);
  475. printf(" verify_errors %u\n", mvol->verify_errors);
  476. printf(" bad_blocks %u\n", mvol->bad_blocks);
  477. for (j = 0; j < (mvol->migr_state ? 2 : 1); j++) {
  478. printf(" *** Map %d ***\n", j);
  479. mmap = intel_get_map(mvol, j);
  480. printf(" offset %u\n", mmap->offset);
  481. printf(" offset_hi %u\n", mmap->offset_hi);
  482. printf(" disk_sectors %u\n", mmap->disk_sectors);
  483. printf(" disk_sectors_hi %u\n", mmap->disk_sectors_hi);
  484. printf(" stripe_count %u\n", mmap->stripe_count);
  485. printf(" stripe_count_hi %u\n", mmap->stripe_count_hi);
  486. printf(" strip_sectors %u\n", mmap->strip_sectors);
  487. printf(" status %u (%s)\n", mmap->status,
  488. intel_status2str(mmap->status));
  489. printf(" type %u (%s)\n", mmap->type,
  490. intel_type2str(mmap->type));
  491. printf(" total_disks %u\n", mmap->total_disks);
  492. printf(" total_domains %u\n", mmap->total_domains);
  493. printf(" failed_disk_num %u\n", mmap->failed_disk_num);
  494. printf(" ddf %u\n", mmap->ddf);
  495. printf(" disk_idx ");
  496. for (k = 0; k < mmap->total_disks; k++)
  497. printf(" 0x%08x", mmap->disk_idx[k]);
  498. printf("\n");
  499. }
  500. }
  501. printf("=================================================\n");
  502. }
  503. static struct intel_raid_conf *
  504. intel_meta_copy(struct intel_raid_conf *meta)
  505. {
  506. struct intel_raid_conf *nmeta;
  507. nmeta = malloc(meta->config_size, M_MD_INTEL, M_WAITOK);
  508. memcpy(nmeta, meta, meta->config_size);
  509. return (nmeta);
  510. }
  511. static int
  512. intel_meta_find_disk(struct intel_raid_conf *meta, char *serial)
  513. {
  514. int pos;
  515. for (pos = 0; pos < meta->total_disks; pos++) {
  516. if (strncmp(meta->disk[pos].serial,
  517. serial, INTEL_SERIAL_LEN) == 0)
  518. return (pos);
  519. }
  520. return (-1);
  521. }
  522. static struct intel_raid_conf *
  523. intel_meta_read(struct g_consumer *cp)
  524. {
  525. struct g_provider *pp;
  526. struct intel_raid_conf *meta;
  527. struct intel_raid_vol *mvol;
  528. struct intel_raid_map *mmap, *mmap1;
  529. char *buf;
  530. int error, i, j, k, left, size;
  531. uint32_t checksum, *ptr;
  532. pp = cp->provider;
  533. if (pp->sectorsize < sizeof(*meta))
  534. return (NULL);
  535. /* Read the anchor sector. */
  536. buf = g_read_data(cp,
  537. pp->mediasize - pp->sectorsize * 2, pp->sectorsize, &error);
  538. if (buf == NULL) {
  539. G_RAID_DEBUG(1, "Cannot read metadata from %s (error=%d).",
  540. pp->name, error);
  541. return (NULL);
  542. }
  543. meta = (struct intel_raid_conf *)buf;
  544. /* Check if this is an Intel RAID struct */
  545. if (strncmp(meta->intel_id, INTEL_MAGIC, strlen(INTEL_MAGIC))) {
  546. G_RAID_DEBUG(1, "Intel signature check failed on %s", pp->name);
  547. g_free(buf);
  548. return (NULL);
  549. }
  550. if (meta->config_size > 65536 ||
  551. meta->config_size < sizeof(struct intel_raid_conf)) {
  552. G_RAID_DEBUG(1, "Intel metadata size looks wrong: %d",
  553. meta->config_size);
  554. g_free(buf);
  555. return (NULL);
  556. }
  557. size = meta->config_size;
  558. meta = malloc(size, M_MD_INTEL, M_WAITOK);
  559. memcpy(meta, buf, min(size, pp->sectorsize));
  560. g_free(buf);
  561. /* Read all the rest, if needed. */
  562. if (meta->config_size > pp->sectorsize) {
  563. left = (meta->config_size - 1) / pp->sectorsize;
  564. buf = g_read_data(cp,
  565. pp->mediasize - pp->sectorsize * (2 + left),
  566. pp->sectorsize * left, &error);
  567. if (buf == NULL) {
  568. G_RAID_DEBUG(1, "Cannot read remaining metadata"
  569. " part from %s (error=%d).",
  570. pp->name, error);
  571. free(meta, M_MD_INTEL);
  572. return (NULL);
  573. }
  574. memcpy(((char *)meta) + pp->sectorsize, buf,
  575. pp->sectorsize * left);
  576. g_free(buf);
  577. }
  578. /* Check metadata checksum. */
  579. for (checksum = 0, ptr = (uint32_t *)meta, i = 0;
  580. i < (meta->config_size / sizeof(uint32_t)); i++) {
  581. checksum += *ptr++;
  582. }
  583. checksum -= meta->checksum;
  584. if (checksum != meta->checksum) {
  585. G_RAID_DEBUG(1, "Intel checksum check failed on %s", pp->name);
  586. free(meta, M_MD_INTEL);
  587. return (NULL);
  588. }
  589. /* Validate metadata size. */
  590. size = sizeof(struct intel_raid_conf) +
  591. sizeof(struct intel_raid_disk) * (meta->total_disks - 1) +
  592. sizeof(struct intel_raid_vol) * meta->total_volumes;
  593. if (size > meta->config_size) {
  594. badsize:
  595. G_RAID_DEBUG(1, "Intel metadata size incorrect %d < %d",
  596. meta->config_size, size);
  597. free(meta, M_MD_INTEL);
  598. return (NULL);
  599. }
  600. for (i = 0; i < meta->total_volumes; i++) {
  601. mvol = intel_get_volume(meta, i);
  602. mmap = intel_get_map(mvol, 0);
  603. size += 4 * (mmap->total_disks - 1);
  604. if (size > meta->config_size)
  605. goto badsize;
  606. if (mvol->migr_state) {
  607. size += sizeof(struct intel_raid_map);
  608. if (size > meta->config_size)
  609. goto badsize;
  610. mmap = intel_get_map(mvol, 1);
  611. size += 4 * (mmap->total_disks - 1);
  612. if (size > meta->config_size)
  613. goto badsize;
  614. }
  615. }
  616. g_raid_md_intel_print(meta);
  617. if (strncmp(meta->version, INTEL_VERSION_1300, 6) > 0) {
  618. G_RAID_DEBUG(1, "Intel unsupported version: '%.6s'",
  619. meta->version);
  620. free(meta, M_MD_INTEL);
  621. return (NULL);
  622. }
  623. if (strncmp(meta->version, INTEL_VERSION_1300, 6) >= 0 &&
  624. (meta->attributes & ~INTEL_ATTR_SUPPORTED) != 0) {
  625. G_RAID_DEBUG(1, "Intel unsupported attributes: 0x%08x",
  626. meta->attributes & ~INTEL_ATTR_SUPPORTED);
  627. free(meta, M_MD_INTEL);
  628. return (NULL);
  629. }
  630. /* Validate disk indexes. */
  631. for (i = 0; i < meta->total_volumes; i++) {
  632. mvol = intel_get_volume(meta, i);
  633. for (j = 0; j < (mvol->migr_state ? 2 : 1); j++) {
  634. mmap = intel_get_map(mvol, j);
  635. for (k = 0; k < mmap->total_disks; k++) {
  636. if ((mmap->disk_idx[k] & INTEL_DI_IDX) >
  637. meta->total_disks) {
  638. G_RAID_DEBUG(1, "Intel metadata disk"
  639. " index %d too big (>%d)",
  640. mmap->disk_idx[k] & INTEL_DI_IDX,
  641. meta->total_disks);
  642. free(meta, M_MD_INTEL);
  643. return (NULL);
  644. }
  645. }
  646. }
  647. }
  648. /* Validate migration types. */
  649. for (i = 0; i < meta->total_volumes; i++) {
  650. mvol = intel_get_volume(meta, i);
  651. /* Deny unknown migration types. */
  652. if (mvol->migr_state &&
  653. mvol->migr_type != INTEL_MT_INIT &&
  654. mvol->migr_type != INTEL_MT_REBUILD &&
  655. mvol->migr_type != INTEL_MT_VERIFY &&
  656. mvol->migr_type != INTEL_MT_GEN_MIGR &&
  657. mvol->migr_type != INTEL_MT_REPAIR) {
  658. G_RAID_DEBUG(1, "Intel metadata has unsupported"
  659. " migration type %d", mvol->migr_type);
  660. free(meta, M_MD_INTEL);
  661. return (NULL);
  662. }
  663. /* Deny general migrations except SINGLE->RAID1. */
  664. if (mvol->migr_state &&
  665. mvol->migr_type == INTEL_MT_GEN_MIGR) {
  666. mmap = intel_get_map(mvol, 0);
  667. mmap1 = intel_get_map(mvol, 1);
  668. if (mmap1->total_disks != 1 ||
  669. mmap->type != INTEL_T_RAID1 ||
  670. mmap->total_disks != 2 ||
  671. mmap->offset != mmap1->offset ||
  672. mmap->disk_sectors != mmap1->disk_sectors ||
  673. mmap->total_domains != mmap->total_disks ||
  674. mmap->offset_hi != mmap1->offset_hi ||
  675. mmap->disk_sectors_hi != mmap1->disk_sectors_hi ||
  676. (mmap->disk_idx[0] != mmap1->disk_idx[0] &&
  677. mmap->disk_idx[0] != mmap1->disk_idx[1])) {
  678. G_RAID_DEBUG(1, "Intel metadata has unsupported"
  679. " variant of general migration");
  680. free(meta, M_MD_INTEL);
  681. return (NULL);
  682. }
  683. }
  684. }
  685. return (meta);
  686. }
  687. static int
  688. intel_meta_write(struct g_consumer *cp, struct intel_raid_conf *meta)
  689. {
  690. struct g_provider *pp;
  691. char *buf;
  692. int error, i, sectors;
  693. uint32_t checksum, *ptr;
  694. pp = cp->provider;
  695. /* Recalculate checksum for case if metadata were changed. */
  696. meta->checksum = 0;
  697. for (checksum = 0, ptr = (uint32_t *)meta, i = 0;
  698. i < (meta->config_size / sizeof(uint32_t)); i++) {
  699. checksum += *ptr++;
  700. }
  701. meta->checksum = checksum;
  702. /* Create and fill buffer. */
  703. sectors = howmany(meta->config_size, pp->sectorsize);
  704. buf = malloc(sectors * pp->sectorsize, M_MD_INTEL, M_WAITOK | M_ZERO);
  705. if (sectors > 1) {
  706. memcpy(buf, ((char *)meta) + pp->sectorsize,
  707. (sectors - 1) * pp->sectorsize);
  708. }
  709. memcpy(buf + (sectors - 1) * pp->sectorsize, meta, pp->sectorsize);
  710. error = g_write_data(cp,
  711. pp->mediasize - pp->sectorsize * (1 + sectors),
  712. buf, pp->sectorsize * sectors);
  713. if (error != 0) {
  714. G_RAID_DEBUG(1, "Cannot write metadata to %s (error=%d).",
  715. pp->name, error);
  716. }
  717. free(buf, M_MD_INTEL);
  718. return (error);
  719. }
  720. static int
  721. intel_meta_erase(struct g_consumer *cp)
  722. {
  723. struct g_provider *pp;
  724. char *buf;
  725. int error;
  726. pp = cp->provider;
  727. buf = malloc(pp->sectorsize, M_MD_INTEL, M_WAITOK | M_ZERO);
  728. error = g_write_data(cp,
  729. pp->mediasize - 2 * pp->sectorsize,
  730. buf, pp->sectorsize);
  731. if (error != 0) {
  732. G_RAID_DEBUG(1, "Cannot erase metadata on %s (error=%d).",
  733. pp->name, error);
  734. }
  735. free(buf, M_MD_INTEL);
  736. return (error);
  737. }
  738. static int
  739. intel_meta_write_spare(struct g_consumer *cp, struct intel_raid_disk *d)
  740. {
  741. struct intel_raid_conf *meta;
  742. int error;
  743. /* Fill anchor and single disk. */
  744. meta = malloc(INTEL_MAX_MD_SIZE(1), M_MD_INTEL, M_WAITOK | M_ZERO);
  745. memcpy(&meta->intel_id[0], INTEL_MAGIC, sizeof(INTEL_MAGIC) - 1);
  746. memcpy(&meta->version[0], INTEL_VERSION_1000,
  747. sizeof(INTEL_VERSION_1000) - 1);
  748. meta->config_size = INTEL_MAX_MD_SIZE(1);
  749. meta->config_id = meta->orig_config_id = arc4random();
  750. meta->generation = 1;
  751. meta->total_disks = 1;
  752. meta->disk[0] = *d;
  753. error = intel_meta_write(cp, meta);
  754. free(meta, M_MD_INTEL);
  755. return (error);
  756. }
  757. static struct g_raid_disk *
  758. g_raid_md_intel_get_disk(struct g_raid_softc *sc, int id)
  759. {
  760. struct g_raid_disk *disk;
  761. struct g_raid_md_intel_perdisk *pd;
  762. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  763. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  764. if (pd->pd_disk_pos == id)
  765. break;
  766. }
  767. return (disk);
  768. }
  769. static int
  770. g_raid_md_intel_supported(int level, int qual, int disks, int force)
  771. {
  772. switch (level) {
  773. case G_RAID_VOLUME_RL_RAID0:
  774. if (disks < 1)
  775. return (0);
  776. if (!force && (disks < 2 || disks > 6))
  777. return (0);
  778. break;
  779. case G_RAID_VOLUME_RL_RAID1:
  780. if (disks < 1)
  781. return (0);
  782. if (!force && (disks != 2))
  783. return (0);
  784. break;
  785. case G_RAID_VOLUME_RL_RAID1E:
  786. if (disks < 2)
  787. return (0);
  788. if (!force && (disks != 4))
  789. return (0);
  790. break;
  791. case G_RAID_VOLUME_RL_RAID5:
  792. if (disks < 3)
  793. return (0);
  794. if (!force && disks > 6)
  795. return (0);
  796. if (qual != G_RAID_VOLUME_RLQ_R5LA)
  797. return (0);
  798. break;
  799. default:
  800. return (0);
  801. }
  802. if (level != G_RAID_VOLUME_RL_RAID5 && qual != G_RAID_VOLUME_RLQ_NONE)
  803. return (0);
  804. return (1);
  805. }
  806. static struct g_raid_volume *
  807. g_raid_md_intel_get_volume(struct g_raid_softc *sc, int id)
  808. {
  809. struct g_raid_volume *mvol;
  810. struct g_raid_md_intel_pervolume *pv;
  811. TAILQ_FOREACH(mvol, &sc->sc_volumes, v_next) {
  812. pv = mvol->v_md_data;
  813. if (pv->pv_volume_pos == id)
  814. break;
  815. }
  816. return (mvol);
  817. }
  818. static int
  819. g_raid_md_intel_start_disk(struct g_raid_disk *disk)
  820. {
  821. struct g_raid_softc *sc;
  822. struct g_raid_subdisk *sd, *tmpsd;
  823. struct g_raid_disk *olddisk, *tmpdisk;
  824. struct g_raid_md_object *md;
  825. struct g_raid_md_intel_object *mdi;
  826. struct g_raid_md_intel_pervolume *pv;
  827. struct g_raid_md_intel_perdisk *pd, *oldpd;
  828. struct intel_raid_conf *meta;
  829. struct intel_raid_vol *mvol;
  830. struct intel_raid_map *mmap0, *mmap1;
  831. int disk_pos, resurrection = 0, migr_global, i;
  832. sc = disk->d_softc;
  833. md = sc->sc_md;
  834. mdi = (struct g_raid_md_intel_object *)md;
  835. meta = mdi->mdio_meta;
  836. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  837. olddisk = NULL;
  838. /* Find disk position in metadata by its serial. */
  839. disk_pos = intel_meta_find_disk(meta, pd->pd_disk_meta.serial);
  840. if (disk_pos < 0) {
  841. G_RAID_DEBUG1(1, sc, "Unknown, probably new or stale disk");
  842. /* Failed stale disk is useless for us. */
  843. if ((pd->pd_disk_meta.flags & INTEL_F_FAILED) &&
  844. !(pd->pd_disk_meta.flags & INTEL_F_DISABLED)) {
  845. g_raid_change_disk_state(disk, G_RAID_DISK_S_STALE_FAILED);
  846. return (0);
  847. }
  848. /* If we are in the start process, that's all for now. */
  849. if (!mdi->mdio_started)
  850. goto nofit;
  851. /*
  852. * If we have already started - try to get use of the disk.
  853. * Try to replace OFFLINE disks first, then FAILED.
  854. */
  855. TAILQ_FOREACH(tmpdisk, &sc->sc_disks, d_next) {
  856. if (tmpdisk->d_state != G_RAID_DISK_S_OFFLINE &&
  857. tmpdisk->d_state != G_RAID_DISK_S_FAILED)
  858. continue;
  859. /* Make sure this disk is big enough. */
  860. TAILQ_FOREACH(sd, &tmpdisk->d_subdisks, sd_next) {
  861. off_t disk_sectors =
  862. intel_get_disk_sectors(&pd->pd_disk_meta);
  863. if (sd->sd_offset + sd->sd_size + 4096 >
  864. disk_sectors * 512) {
  865. G_RAID_DEBUG1(1, sc,
  866. "Disk too small (%llu < %llu)",
  867. (unsigned long long)
  868. disk_sectors * 512,
  869. (unsigned long long)
  870. sd->sd_offset + sd->sd_size + 4096);
  871. break;
  872. }
  873. }
  874. if (sd != NULL)
  875. continue;
  876. if (tmpdisk->d_state == G_RAID_DISK_S_OFFLINE) {
  877. olddisk = tmpdisk;
  878. break;
  879. } else if (olddisk == NULL)
  880. olddisk = tmpdisk;
  881. }
  882. if (olddisk == NULL) {
  883. nofit:
  884. if (pd->pd_disk_meta.flags & INTEL_F_SPARE) {
  885. g_raid_change_disk_state(disk,
  886. G_RAID_DISK_S_SPARE);
  887. return (1);
  888. } else {
  889. g_raid_change_disk_state(disk,
  890. G_RAID_DISK_S_STALE);
  891. return (0);
  892. }
  893. }
  894. oldpd = (struct g_raid_md_intel_perdisk *)olddisk->d_md_data;
  895. disk_pos = oldpd->pd_disk_pos;
  896. resurrection = 1;
  897. }
  898. if (olddisk == NULL) {
  899. /* Find placeholder by position. */
  900. olddisk = g_raid_md_intel_get_disk(sc, disk_pos);
  901. if (olddisk == NULL)
  902. panic("No disk at position %d!", disk_pos);
  903. if (olddisk->d_state != G_RAID_DISK_S_OFFLINE) {
  904. G_RAID_DEBUG1(1, sc, "More than one disk for pos %d",
  905. disk_pos);
  906. g_raid_change_disk_state(disk, G_RAID_DISK_S_STALE);
  907. return (0);
  908. }
  909. oldpd = (struct g_raid_md_intel_perdisk *)olddisk->d_md_data;
  910. }
  911. /* Replace failed disk or placeholder with new disk. */
  912. TAILQ_FOREACH_SAFE(sd, &olddisk->d_subdisks, sd_next, tmpsd) {
  913. TAILQ_REMOVE(&olddisk->d_subdisks, sd, sd_next);
  914. TAILQ_INSERT_TAIL(&disk->d_subdisks, sd, sd_next);
  915. sd->sd_disk = disk;
  916. }
  917. oldpd->pd_disk_pos = -2;
  918. pd->pd_disk_pos = disk_pos;
  919. /* If it was placeholder -- destroy it. */
  920. if (olddisk->d_state == G_RAID_DISK_S_OFFLINE) {
  921. g_raid_destroy_disk(olddisk);
  922. } else {
  923. /* Otherwise, make it STALE_FAILED. */
  924. g_raid_change_disk_state(olddisk, G_RAID_DISK_S_STALE_FAILED);
  925. /* Update global metadata just in case. */
  926. memcpy(&meta->disk[disk_pos], &pd->pd_disk_meta,
  927. sizeof(struct intel_raid_disk));
  928. }
  929. /* Welcome the new disk. */
  930. if ((meta->disk[disk_pos].flags & INTEL_F_DISABLED) &&
  931. !(pd->pd_disk_meta.flags & INTEL_F_SPARE))
  932. g_raid_change_disk_state(disk, G_RAID_DISK_S_DISABLED);
  933. else if (resurrection)
  934. g_raid_change_disk_state(disk, G_RAID_DISK_S_ACTIVE);
  935. else if (meta->disk[disk_pos].flags & INTEL_F_FAILED)
  936. g_raid_change_disk_state(disk, G_RAID_DISK_S_FAILED);
  937. else if (meta->disk[disk_pos].flags & INTEL_F_SPARE)
  938. g_raid_change_disk_state(disk, G_RAID_DISK_S_SPARE);
  939. else
  940. g_raid_change_disk_state(disk, G_RAID_DISK_S_ACTIVE);
  941. TAILQ_FOREACH(sd, &disk->d_subdisks, sd_next) {
  942. pv = sd->sd_volume->v_md_data;
  943. mvol = intel_get_volume(meta, pv->pv_volume_pos);
  944. mmap0 = intel_get_map(mvol, 0);
  945. if (mvol->migr_state)
  946. mmap1 = intel_get_map(mvol, 1);
  947. else
  948. mmap1 = mmap0;
  949. migr_global = 1;
  950. for (i = 0; i < mmap0->total_disks; i++) {
  951. if ((mmap0->disk_idx[i] & INTEL_DI_RBLD) == 0 &&
  952. (mmap1->disk_idx[i] & INTEL_DI_RBLD) != 0)
  953. migr_global = 0;
  954. }
  955. if ((meta->disk[disk_pos].flags & INTEL_F_DISABLED) &&
  956. !(pd->pd_disk_meta.flags & INTEL_F_SPARE)) {
  957. /* Disabled disk, useless. */
  958. g_raid_change_subdisk_state(sd,
  959. G_RAID_SUBDISK_S_NONE);
  960. } else if (resurrection) {
  961. /* Stale disk, almost same as new. */
  962. g_raid_change_subdisk_state(sd,
  963. G_RAID_SUBDISK_S_NEW);
  964. } else if (meta->disk[disk_pos].flags & INTEL_F_FAILED) {
  965. /* Failed disk, almost useless. */
  966. g_raid_change_subdisk_state(sd,
  967. G_RAID_SUBDISK_S_FAILED);
  968. } else if (mvol->migr_state == 0) {
  969. if (mmap0->status == INTEL_S_UNINITIALIZED &&
  970. (!pv->pv_cng || pv->pv_cng_master_disk != disk_pos)) {
  971. /* Freshly created uninitialized volume. */
  972. g_raid_change_subdisk_state(sd,
  973. G_RAID_SUBDISK_S_UNINITIALIZED);
  974. } else if (mmap0->disk_idx[sd->sd_pos] & INTEL_DI_RBLD) {
  975. /* Freshly inserted disk. */
  976. g_raid_change_subdisk_state(sd,
  977. G_RAID_SUBDISK_S_NEW);
  978. } else if (mvol->dirty && (!pv->pv_cng ||
  979. pv->pv_cng_master_disk != disk_pos)) {
  980. /* Dirty volume (unclean shutdown). */
  981. g_raid_change_subdisk_state(sd,
  982. G_RAID_SUBDISK_S_STALE);
  983. } else {
  984. /* Up to date disk. */
  985. g_raid_change_subdisk_state(sd,
  986. G_RAID_SUBDISK_S_ACTIVE);
  987. }
  988. } else if (mvol->migr_type == INTEL_MT_INIT ||
  989. mvol->migr_type == INTEL_MT_REBUILD) {
  990. if (mmap0->disk_idx[sd->sd_pos] & INTEL_DI_RBLD) {
  991. /* Freshly inserted disk. */
  992. g_raid_change_subdisk_state(sd,
  993. G_RAID_SUBDISK_S_NEW);
  994. } else if (mmap1->disk_idx[sd->sd_pos] & INTEL_DI_RBLD) {
  995. /* Rebuilding disk. */
  996. g_raid_change_subdisk_state(sd,
  997. G_RAID_SUBDISK_S_REBUILD);
  998. if (mvol->dirty) {
  999. sd->sd_rebuild_pos = 0;
  1000. } else {
  1001. sd->sd_rebuild_pos =
  1002. intel_get_vol_curr_migr_unit(mvol) *
  1003. sd->sd_volume->v_strip_size *
  1004. mmap0->total_domains;
  1005. }
  1006. } else if (mvol->migr_type == INTEL_MT_INIT &&
  1007. migr_global) {
  1008. /* Freshly created uninitialized volume. */
  1009. g_raid_change_subdisk_state(sd,
  1010. G_RAID_SUBDISK_S_UNINITIALIZED);
  1011. } else if (mvol->dirty && (!pv->pv_cng ||
  1012. pv->pv_cng_master_disk != disk_pos)) {
  1013. /* Dirty volume (unclean shutdown). */
  1014. g_raid_change_subdisk_state(sd,
  1015. G_RAID_SUBDISK_S_STALE);
  1016. } else {
  1017. /* Up to date disk. */
  1018. g_raid_change_subdisk_state(sd,
  1019. G_RAID_SUBDISK_S_ACTIVE);
  1020. }
  1021. } else if (mvol->migr_type == INTEL_MT_VERIFY ||
  1022. mvol->migr_type == INTEL_MT_REPAIR) {
  1023. if (mmap0->disk_idx[sd->sd_pos] & INTEL_DI_RBLD) {
  1024. /* Freshly inserted disk. */
  1025. g_raid_change_subdisk_state(sd,
  1026. G_RAID_SUBDISK_S_NEW);
  1027. } else if ((mmap1->disk_idx[sd->sd_pos] & INTEL_DI_RBLD) ||
  1028. migr_global) {
  1029. /* Resyncing disk. */
  1030. g_raid_change_subdisk_state(sd,
  1031. G_RAID_SUBDISK_S_RESYNC);
  1032. if (mvol->dirty) {
  1033. sd->sd_rebuild_pos = 0;
  1034. } else {
  1035. sd->sd_rebuild_pos =
  1036. intel_get_vol_curr_migr_unit(mvol) *
  1037. sd->sd_volume->v_strip_size *
  1038. mmap0->total_domains;
  1039. }
  1040. } else if (mvol->dirty) {
  1041. /* Dirty volume (unclean shutdown). */
  1042. g_raid_change_subdisk_state(sd,
  1043. G_RAID_SUBDISK_S_STALE);
  1044. } else {
  1045. /* Up to date disk. */
  1046. g_raid_change_subdisk_state(sd,
  1047. G_RAID_SUBDISK_S_ACTIVE);
  1048. }
  1049. } else if (mvol->migr_type == INTEL_MT_GEN_MIGR) {
  1050. if ((mmap1->disk_idx[0] & INTEL_DI_IDX) != disk_pos) {
  1051. /* Freshly inserted disk. */
  1052. g_raid_change_subdisk_state(sd,
  1053. G_RAID_SUBDISK_S_NEW);
  1054. } else {
  1055. /* Up to date disk. */
  1056. g_raid_change_subdisk_state(sd,
  1057. G_RAID_SUBDISK_S_ACTIVE);
  1058. }
  1059. }
  1060. g_raid_event_send(sd, G_RAID_SUBDISK_E_NEW,
  1061. G_RAID_EVENT_SUBDISK);
  1062. }
  1063. /* Update status of our need for spare. */
  1064. if (mdi->mdio_started) {
  1065. mdi->mdio_incomplete =
  1066. (g_raid_ndisks(sc, G_RAID_DISK_S_ACTIVE) +
  1067. g_raid_ndisks(sc, G_RAID_DISK_S_DISABLED) <
  1068. meta->total_disks);
  1069. }
  1070. return (resurrection);
  1071. }
  1072. static void
  1073. g_disk_md_intel_retaste(void *arg, int pending)
  1074. {
  1075. G_RAID_DEBUG(1, "Array is not complete, trying to retaste.");
  1076. g_retaste(&g_raid_class);
  1077. free(arg, M_MD_INTEL);
  1078. }
  1079. static void
  1080. g_raid_md_intel_refill(struct g_raid_softc *sc)
  1081. {
  1082. struct g_raid_md_object *md;
  1083. struct g_raid_md_intel_object *mdi;
  1084. struct intel_raid_conf *meta;
  1085. struct g_raid_disk *disk;
  1086. struct task *task;
  1087. int update, na;
  1088. md = sc->sc_md;
  1089. mdi = (struct g_raid_md_intel_object *)md;
  1090. meta = mdi->mdio_meta;
  1091. update = 0;
  1092. do {
  1093. /* Make sure we miss anything. */
  1094. na = g_raid_ndisks(sc, G_RAID_DISK_S_ACTIVE) +
  1095. g_raid_ndisks(sc, G_RAID_DISK_S_DISABLED);
  1096. if (na == meta->total_disks)
  1097. break;
  1098. G_RAID_DEBUG1(1, md->mdo_softc,
  1099. "Array is not complete (%d of %d), "
  1100. "trying to refill.", na, meta->total_disks);
  1101. /* Try to get use some of STALE disks. */
  1102. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  1103. if (disk->d_state == G_RAID_DISK_S_STALE) {
  1104. update += g_raid_md_intel_start_disk(disk);
  1105. if (disk->d_state == G_RAID_DISK_S_ACTIVE ||
  1106. disk->d_state == G_RAID_DISK_S_DISABLED)
  1107. break;
  1108. }
  1109. }
  1110. if (disk != NULL)
  1111. continue;
  1112. /* Try to get use some of SPARE disks. */
  1113. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  1114. if (disk->d_state == G_RAID_DISK_S_SPARE) {
  1115. update += g_raid_md_intel_start_disk(disk);
  1116. if (disk->d_state == G_RAID_DISK_S_ACTIVE)
  1117. break;
  1118. }
  1119. }
  1120. } while (disk != NULL);
  1121. /* Write new metadata if we changed something. */
  1122. if (update) {
  1123. g_raid_md_write_intel(md, NULL, NULL, NULL);
  1124. meta = mdi->mdio_meta;
  1125. }
  1126. /* Update status of our need for spare. */
  1127. mdi->mdio_incomplete = (g_raid_ndisks(sc, G_RAID_DISK_S_ACTIVE) +
  1128. g_raid_ndisks(sc, G_RAID_DISK_S_DISABLED) < meta->total_disks);
  1129. /* Request retaste hoping to find spare. */
  1130. if (mdi->mdio_incomplete) {
  1131. task = malloc(sizeof(struct task),
  1132. M_MD_INTEL, M_WAITOK | M_ZERO);
  1133. TASK_INIT(task, 0, g_disk_md_intel_retaste, task);
  1134. taskqueue_enqueue(taskqueue_swi, task);
  1135. }
  1136. }
  1137. static void
  1138. g_raid_md_intel_start(struct g_raid_softc *sc)
  1139. {
  1140. struct g_raid_md_object *md;
  1141. struct g_raid_md_intel_object *mdi;
  1142. struct g_raid_md_intel_pervolume *pv;
  1143. struct g_raid_md_intel_perdisk *pd;
  1144. struct intel_raid_conf *meta;
  1145. struct intel_raid_vol *mvol;
  1146. struct intel_raid_map *mmap;
  1147. struct g_raid_volume *vol;
  1148. struct g_raid_subdisk *sd;
  1149. struct g_raid_disk *disk;
  1150. int i, j, disk_pos;
  1151. md = sc->sc_md;
  1152. mdi = (struct g_raid_md_intel_object *)md;
  1153. meta = mdi->mdio_meta;
  1154. /* Create volumes and subdisks. */
  1155. for (i = 0; i < meta->total_volumes; i++) {
  1156. mvol = intel_get_volume(meta, i);
  1157. mmap = intel_get_map(mvol, 0);
  1158. vol = g_raid_create_volume(sc, mvol->name, mvol->tid - 1);
  1159. pv = malloc(sizeof(*pv), M_MD_INTEL, M_WAITOK | M_ZERO);
  1160. pv->pv_volume_pos = i;
  1161. pv->pv_cng = (mvol->state & INTEL_ST_CLONE_N_GO) != 0;
  1162. pv->pv_cng_man_sync = (mvol->state & INTEL_ST_CLONE_MAN_SYNC) != 0;
  1163. if (mvol->cng_master_disk < mmap->total_disks)
  1164. pv->pv_cng_master_disk = mvol->cng_master_disk;
  1165. vol->v_md_data = pv;
  1166. vol->v_raid_level_qualifier = G_RAID_VOLUME_RLQ_NONE;
  1167. if (mmap->type == INTEL_T_RAID0)
  1168. vol->v_raid_level = G_RAID_VOLUME_RL_RAID0;
  1169. else if (mmap->type == INTEL_T_RAID1 &&
  1170. mmap->total_domains >= 2 &&
  1171. mmap->total_domains <= mmap->total_disks) {
  1172. /* Assume total_domains is correct. */
  1173. if (mmap->total_domains == mmap->total_disks)
  1174. vol->v_raid_level = G_RAID_VOLUME_RL_RAID1;
  1175. else
  1176. vol->v_raid_level = G_RAID_VOLUME_RL_RAID1E;
  1177. } else if (mmap->type == INTEL_T_RAID1) {
  1178. /* total_domains looks wrong. */
  1179. if (mmap->total_disks <= 2)
  1180. vol->v_raid_level = G_RAID_VOLUME_RL_RAID1;
  1181. else
  1182. vol->v_raid_level = G_RAID_VOLUME_RL_RAID1E;
  1183. } else if (mmap->type == INTEL_T_RAID5) {
  1184. vol->v_raid_level = G_RAID_VOLUME_RL_RAID5;
  1185. vol->v_raid_level_qualifier = G_RAID_VOLUME_RLQ_R5LA;
  1186. } else
  1187. vol->v_raid_level = G_RAID_VOLUME_RL_UNKNOWN;
  1188. vol->v_strip_size = (u_int)mmap->strip_sectors * 512; //ZZZ
  1189. vol->v_disks_count = mmap->total_disks;
  1190. vol->v_mediasize = (off_t)mvol->total_sectors * 512; //ZZZ
  1191. vol->v_sectorsize = 512; //ZZZ
  1192. for (j = 0; j < vol->v_disks_count; j++) {
  1193. sd = &vol->v_subdisks[j];
  1194. sd->sd_offset = intel_get_map_offset(mmap) * 512; //ZZZ
  1195. sd->sd_size = intel_get_map_disk_sectors(mmap) * 512; //ZZZ
  1196. }
  1197. g_raid_start_volume(vol);
  1198. }
  1199. /* Create disk placeholders to store data for later writing. */
  1200. for (disk_pos = 0; disk_pos < meta->total_disks; disk_pos++) {
  1201. pd = malloc(sizeof(*pd), M_MD_INTEL, M_WAITOK | M_ZERO);
  1202. pd->pd_disk_pos = disk_pos;
  1203. pd->pd_disk_meta = meta->disk[disk_pos];
  1204. disk = g_raid_create_disk(sc);
  1205. disk->d_md_data = (void *)pd;
  1206. disk->d_state = G_RAID_DISK_S_OFFLINE;
  1207. for (i = 0; i < meta->total_volumes; i++) {
  1208. mvol = intel_get_volume(meta, i);
  1209. mmap = intel_get_map(mvol, 0);
  1210. for (j = 0; j < mmap->total_disks; j++) {
  1211. if ((mmap->disk_idx[j] & INTEL_DI_IDX) == disk_pos)
  1212. break;
  1213. }
  1214. if (j == mmap->total_disks)
  1215. continue;
  1216. vol = g_raid_md_intel_get_volume(sc, i);
  1217. sd = &vol->v_subdisks[j];
  1218. sd->sd_disk = disk;
  1219. TAILQ_INSERT_TAIL(&disk->d_subdisks, sd, sd_next);
  1220. }
  1221. }
  1222. /* Make all disks found till the moment take their places. */
  1223. do {
  1224. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  1225. if (disk->d_state == G_RAID_DISK_S_NONE) {
  1226. g_raid_md_intel_start_disk(disk);
  1227. break;
  1228. }
  1229. }
  1230. } while (disk != NULL);
  1231. mdi->mdio_started = 1;
  1232. G_RAID_DEBUG1(0, sc, "Array started.");
  1233. g_raid_md_write_intel(md, NULL, NULL, NULL);
  1234. /* Pickup any STALE/SPARE disks to refill array if needed. */
  1235. g_raid_md_intel_refill(sc);
  1236. TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
  1237. g_raid_event_send(vol, G_RAID_VOLUME_E_START,
  1238. G_RAID_EVENT_VOLUME);
  1239. }
  1240. callout_stop(&mdi->mdio_start_co);
  1241. G_RAID_DEBUG1(1, sc, "root_mount_rel %p", mdi->mdio_rootmount);
  1242. root_mount_rel(mdi->mdio_rootmount);
  1243. mdi->mdio_rootmount = NULL;
  1244. }
  1245. static void
  1246. g_raid_md_intel_new_disk(struct g_raid_disk *disk)
  1247. {
  1248. struct g_raid_softc *sc;
  1249. struct g_raid_md_object *md;
  1250. struct g_raid_md_intel_object *mdi;
  1251. struct intel_raid_conf *pdmeta;
  1252. struct g_raid_md_intel_perdisk *pd;
  1253. sc = disk->d_softc;
  1254. md = sc->sc_md;
  1255. mdi = (struct g_raid_md_intel_object *)md;
  1256. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  1257. pdmeta = pd->pd_meta;
  1258. if (mdi->mdio_started) {
  1259. if (g_raid_md_intel_start_disk(disk))
  1260. g_raid_md_write_intel(md, NULL, NULL, NULL);
  1261. } else {
  1262. /* If we haven't started yet - check metadata freshness. */
  1263. if (mdi->mdio_meta == NULL ||
  1264. ((int32_t)(pdmeta->generation - mdi->mdio_generation)) > 0) {
  1265. G_RAID_DEBUG1(1, sc, "Newer disk");
  1266. if (mdi->mdio_meta != NULL)
  1267. free(mdi->mdio_meta, M_MD_INTEL);
  1268. mdi->mdio_meta = intel_meta_copy(pdmeta);
  1269. mdi->mdio_generation = mdi->mdio_meta->generation;
  1270. mdi->mdio_disks_present = 1;
  1271. } else if (pdmeta->generation == mdi->mdio_generation) {
  1272. mdi->mdio_disks_present++;
  1273. G_RAID_DEBUG1(1, sc, "Matching disk (%d of %d up)",
  1274. mdi->mdio_disks_present,
  1275. mdi->mdio_meta->total_disks);
  1276. } else {
  1277. G_RAID_DEBUG1(1, sc, "Older disk");
  1278. }
  1279. /* If we collected all needed disks - start array. */
  1280. if (mdi->mdio_disks_present == mdi->mdio_meta->total_disks)
  1281. g_raid_md_intel_start(sc);
  1282. }
  1283. }
  1284. static void
  1285. g_raid_intel_go(void *arg)
  1286. {
  1287. struct g_raid_softc *sc;
  1288. struct g_raid_md_object *md;
  1289. struct g_raid_md_intel_object *mdi;
  1290. sc = arg;
  1291. md = sc->sc_md;
  1292. mdi = (struct g_raid_md_intel_object *)md;
  1293. if (!mdi->mdio_started) {
  1294. G_RAID_DEBUG1(0, sc, "Force array start due to timeout.");
  1295. g_raid_event_send(sc, G_RAID_NODE_E_START, 0);
  1296. }
  1297. }
  1298. static int
  1299. g_raid_md_create_intel(struct g_raid_md_object *md, struct g_class *mp,
  1300. struct g_geom **gp)
  1301. {
  1302. struct g_raid_softc *sc;
  1303. struct g_raid_md_intel_object *mdi;
  1304. char name[16];
  1305. mdi = (struct g_raid_md_intel_object *)md;
  1306. mdi->mdio_config_id = mdi->mdio_orig_config_id = arc4random();
  1307. mdi->mdio_generation = 0;
  1308. snprintf(name, sizeof(name), "Intel-%08x", mdi->mdio_config_id);
  1309. sc = g_raid_create_node(mp, name, md);
  1310. if (sc == NULL)
  1311. return (G_RAID_MD_TASTE_FAIL);
  1312. md->mdo_softc = sc;
  1313. *gp = sc->sc_geom;
  1314. return (G_RAID_MD_TASTE_NEW);
  1315. }
  1316. /*
  1317. * Return the last N characters of the serial label. The Linux and
  1318. * ataraid(7) code always uses the last 16 characters of the label to
  1319. * store into the Intel meta format. Generalize this to N characters
  1320. * since that's easy. Labels can be up to 20 characters for SATA drives
  1321. * and up 251 characters for SAS drives. Since intel controllers don't
  1322. * support SAS drives, just stick with the SATA limits for stack friendliness.
  1323. */
  1324. static int
  1325. g_raid_md_get_label(struct g_consumer *cp, char *serial, int serlen)
  1326. {
  1327. char serial_buffer[DISK_IDENT_SIZE];
  1328. int len, error;
  1329. len = sizeof(serial_buffer);
  1330. error = g_io_getattr("GEOM::ident", cp, &len, serial_buffer);
  1331. if (error != 0)
  1332. return (error);
  1333. len = strlen(serial_buffer);
  1334. if (len > serlen)
  1335. len -= serlen;
  1336. else
  1337. len = 0;
  1338. strncpy(serial, serial_buffer + len, serlen);
  1339. return (0);
  1340. }
  1341. static int
  1342. g_raid_md_taste_intel(struct g_raid_md_object *md, struct g_class *mp,
  1343. struct g_consumer *cp, struct g_geom **gp)
  1344. {
  1345. struct g_consumer *rcp;
  1346. struct g_provider *pp;
  1347. struct g_raid_md_intel_object *mdi, *mdi1;
  1348. struct g_raid_softc *sc;
  1349. struct g_raid_disk *disk;
  1350. struct intel_raid_conf *meta;
  1351. struct g_raid_md_intel_perdisk *pd;
  1352. struct g_geom *geom;
  1353. int error, disk_pos, result, spare, len;
  1354. char serial[INTEL_SERIAL_LEN];
  1355. char name[16];
  1356. uint16_t vendor;
  1357. G_RAID_DEBUG(1, "Tasting Intel on %s", cp->provider->name);
  1358. mdi = (struct g_raid_md_intel_object *)md;
  1359. pp = cp->provider;
  1360. /* Read metadata from device. */
  1361. meta = NULL;
  1362. disk_pos = 0;
  1363. g_topology_unlock();
  1364. error = g_raid_md_get_label(cp, serial, sizeof(serial));
  1365. if (error != 0) {
  1366. G_RAID_DEBUG(1, "Cannot get serial number from %s (error=%d).",
  1367. pp->name, error);
  1368. goto fail2;
  1369. }
  1370. vendor = 0xffff;
  1371. len = sizeof(vendor);
  1372. if (pp->geom->rank == 1)
  1373. g_io_getattr("GEOM::hba_vendor", cp, &len, &vendor);
  1374. meta = intel_meta_read(cp);
  1375. g_topology_lock();
  1376. if (meta == NULL) {
  1377. if (g_raid_aggressive_spare) {
  1378. if (vendor != 0x8086) {
  1379. G_RAID_DEBUG(1,
  1380. "Intel vendor mismatch 0x%04x != 0x8086",
  1381. vendor);
  1382. } else {
  1383. G_RAID_DEBUG(1,
  1384. "No Intel metadata, forcing spare.");
  1385. spare = 2;
  1386. goto search;
  1387. }
  1388. }
  1389. return (G_RAID_MD_TASTE_FAIL);
  1390. }
  1391. /* Check this disk position in obtained metadata. */
  1392. disk_pos = intel_meta_find_disk(meta, serial);
  1393. if (disk_pos < 0) {
  1394. G_RAID_DEBUG(1, "Intel serial '%s' not found", serial);
  1395. goto fail1;
  1396. }
  1397. if (intel_get_disk_sectors(&meta->disk[disk_pos]) !=
  1398. (pp->mediasize / pp->sectorsize)) {
  1399. G_RAID_DEBUG(1, "Intel size mismatch %ju != %ju",
  1400. intel_get_disk_sectors(&meta->disk[disk_pos]),
  1401. (off_t)(pp->mediasize / pp->sectorsize));
  1402. goto fail1;
  1403. }
  1404. G_RAID_DEBUG(1, "Intel disk position %d", disk_pos);
  1405. spare = meta->disk[disk_pos].flags & INTEL_F_SPARE;
  1406. search:
  1407. /* Search for matching node. */
  1408. sc = NULL;
  1409. mdi1 = NULL;
  1410. LIST_FOREACH(geom, &mp->geom, geom) {
  1411. sc = geom->softc;
  1412. if (sc == NULL)
  1413. continue;
  1414. if (sc->sc_stopping != 0)
  1415. continue;
  1416. if (sc->sc_md->mdo_class != md->mdo_class)
  1417. continue;
  1418. mdi1 = (struct g_raid_md_intel_object *)sc->sc_md;
  1419. if (spare) {
  1420. if (mdi1->mdio_incomplete)
  1421. break;
  1422. } else {
  1423. if (mdi1->mdio_config_id == meta->config_id)
  1424. break;
  1425. }
  1426. }
  1427. /* Found matching node. */
  1428. if (geom != NULL) {
  1429. G_RAID_DEBUG(1, "Found matching array %s", sc->sc_name);
  1430. result = G_RAID_MD_TASTE_EXISTING;
  1431. } else if (spare) { /* Not found needy node -- left for later. */
  1432. G_RAID_DEBUG(1, "Spare is not needed at this time");
  1433. goto fail1;
  1434. } else { /* Not found matching node -- create one. */
  1435. result = G_RAID_MD_TASTE_NEW;
  1436. mdi->mdio_config_id = meta->config_id;
  1437. mdi->mdio_orig_config_id = meta->orig_config_id;
  1438. snprintf(name, sizeof(name), "Intel-%08x", meta->config_id);
  1439. sc = g_raid_create_node(mp, name, md);
  1440. md->mdo_softc = sc;
  1441. geom = sc->sc_geom;
  1442. callout_init(&mdi->mdio_start_co, 1);
  1443. callout_reset(&mdi->mdio_start_co, g_raid_start_timeout * hz,
  1444. g_raid_intel_go, sc);
  1445. mdi->mdio_rootmount = root_mount_hold("GRAID-Intel");
  1446. G_RAID_DEBUG1(1, sc, "root_mount_hold %p", mdi->mdio_rootmount);
  1447. }
  1448. /* There is no return after this point, so we close passed consumer. */
  1449. g_access(cp, -1, 0, 0);
  1450. rcp = g_new_consumer(geom);
  1451. rcp->flags |= G_CF_DIRECT_RECEIVE;
  1452. g_attach(rcp, pp);
  1453. if (g_access(rcp, 1, 1, 1) != 0)
  1454. ; //goto fail1;
  1455. g_topology_unlock();
  1456. sx_xlock(&sc->sc_lock);
  1457. pd = malloc(sizeof(*pd), M_MD_INTEL, M_WAITOK | M_ZERO);
  1458. pd->pd_meta = meta;
  1459. pd->pd_disk_pos = -1;
  1460. if (spare == 2) {
  1461. memcpy(&pd->pd_disk_meta.serial[0], serial, INTEL_SERIAL_LEN);
  1462. intel_set_disk_sectors(&pd->pd_disk_meta,
  1463. pp->mediasize / pp->sectorsize);
  1464. pd->pd_disk_meta.id = 0;
  1465. pd->pd_disk_meta.flags = INTEL_F_SPARE;
  1466. } else {
  1467. pd->pd_disk_meta = meta->disk[disk_pos];
  1468. }
  1469. disk = g_raid_create_disk(sc);
  1470. disk->d_md_data = (void *)pd;
  1471. disk->d_consumer = rcp;
  1472. rcp->private = disk;
  1473. g_raid_get_disk_info(disk);
  1474. g_raid_md_intel_new_disk(disk);
  1475. sx_xunlock(&sc->sc_lock);
  1476. g_topology_lock();
  1477. *gp = geom;
  1478. return (result);
  1479. fail2:
  1480. g_topology_lock();
  1481. fail1:
  1482. free(meta, M_MD_INTEL);
  1483. return (G_RAID_MD_TASTE_FAIL);
  1484. }
  1485. static int
  1486. g_raid_md_event_intel(struct g_raid_md_object *md,
  1487. struct g_raid_disk *disk, u_int event)
  1488. {
  1489. struct g_raid_softc *sc;
  1490. struct g_raid_subdisk *sd;
  1491. struct g_raid_md_intel_object *mdi;
  1492. struct g_raid_md_intel_perdisk *pd;
  1493. sc = md->mdo_softc;
  1494. mdi = (struct g_raid_md_intel_object *)md;
  1495. if (disk == NULL) {
  1496. switch (event) {
  1497. case G_RAID_NODE_E_START:
  1498. if (!mdi->mdio_started)
  1499. g_raid_md_intel_start(sc);
  1500. return (0);
  1501. }
  1502. return (-1);
  1503. }
  1504. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  1505. switch (event) {
  1506. case G_RAID_DISK_E_DISCONNECTED:
  1507. /* If disk was assigned, just update statuses. */
  1508. if (pd->pd_disk_pos >= 0) {
  1509. g_raid_change_disk_state(disk, G_RAID_DISK_S_OFFLINE);
  1510. if (disk->d_consumer) {
  1511. g_raid_kill_consumer(sc, disk->d_consumer);
  1512. disk->d_consumer = NULL;
  1513. }
  1514. TAILQ_FOREACH(sd, &disk->d_subdisks, sd_next) {
  1515. g_raid_change_subdisk_state(sd,
  1516. G_RAID_SUBDISK_S_NONE);
  1517. g_raid_event_send(sd, G_RAID_SUBDISK_E_DISCONNECTED,
  1518. G_RAID_EVENT_SUBDISK);
  1519. }
  1520. } else {
  1521. /* Otherwise -- delete. */
  1522. g_raid_change_disk_state(disk, G_RAID_DISK_S_NONE);
  1523. g_raid_destroy_disk(disk);
  1524. }
  1525. /* Write updated metadata to all disks. */
  1526. g_raid_md_write_intel(md, NULL, NULL, NULL);
  1527. /* Check if anything left except placeholders. */
  1528. if (g_raid_ndisks(sc, -1) ==
  1529. g_raid_ndisks(sc, G_RAID_DISK_S_OFFLINE))
  1530. g_raid_destroy_node(sc, 0);
  1531. else
  1532. g_raid_md_intel_refill(sc);
  1533. return (0);
  1534. }
  1535. return (-2);
  1536. }
  1537. static int
  1538. g_raid_md_ctl_intel(struct g_raid_md_object *md,
  1539. struct gctl_req *req)
  1540. {
  1541. struct g_raid_softc *sc;
  1542. struct g_raid_volume *vol, *vol1;
  1543. struct g_raid_subdisk *sd;
  1544. struct g_raid_disk *disk;
  1545. struct g_raid_md_intel_object *mdi;
  1546. struct g_raid_md_intel_pervolume *pv;
  1547. struct g_raid_md_intel_perdisk *pd;
  1548. struct g_consumer *cp;
  1549. struct g_provider *pp;
  1550. char arg[16], serial[INTEL_SERIAL_LEN];
  1551. const char *nodename, *verb, *volname, *levelname, *diskname;
  1552. char *tmp;
  1553. int *nargs, *force;
  1554. off_t off, size, sectorsize, strip, disk_sectors;
  1555. intmax_t *sizearg, *striparg;
  1556. int numdisks, i, len, level, qual, update;
  1557. int error;
  1558. sc = md->mdo_softc;
  1559. mdi = (struct g_raid_md_intel_object *)md;
  1560. verb = gctl_get_param(req, "verb", NULL);
  1561. nargs = gctl_get_paraml(req, "nargs", sizeof(*nargs));
  1562. error = 0;
  1563. if (strcmp(verb, "label") == 0) {
  1564. if (*nargs < 4) {
  1565. gctl_error(req, "Invalid number of arguments.");
  1566. return (-1);
  1567. }
  1568. volname = gctl_get_asciiparam(req, "arg1");
  1569. if (volname == NULL) {
  1570. gctl_error(req, "No volume name.");
  1571. return (-2);
  1572. }
  1573. levelname = gctl_get_asciiparam(req, "arg2");
  1574. if (levelname == NULL) {
  1575. gctl_error(req, "No RAID level.");
  1576. return (-3);
  1577. }
  1578. if (strcasecmp(levelname, "RAID5") == 0)
  1579. levelname = "RAID5-LA";
  1580. if (g_raid_volume_str2level(levelname, &level, &qual)) {
  1581. gctl_error(req, "Unknown RAID level '%s'.", levelname);
  1582. return (-4);
  1583. }
  1584. numdisks = *nargs - 3;
  1585. force = gctl_get_paraml(req, "force", sizeof(*force));
  1586. if (!g_raid_md_intel_supported(level, qual, numdisks,
  1587. force ? *force : 0)) {
  1588. gctl_error(req, "Unsupported RAID level "
  1589. "(0x%02x/0x%02x), or number of disks (%d).",
  1590. level, qual, numdisks);
  1591. return (-5);
  1592. }
  1593. /* Search for disks, connect them and probe. */
  1594. size = 0x7fffffffffffffffllu;
  1595. sectorsize = 0;
  1596. for (i = 0; i < numdisks; i++) {
  1597. snprintf(arg, sizeof(arg), "arg%d", i + 3);
  1598. diskname = gctl_get_asciiparam(req, arg);
  1599. if (diskname == NULL) {
  1600. gctl_error(req, "No disk name (%s).", arg);
  1601. error = -6;
  1602. break;
  1603. }
  1604. if (strcmp(diskname, "NONE") == 0) {
  1605. cp = NULL;
  1606. pp = NULL;
  1607. } else {
  1608. g_topology_lock();
  1609. cp = g_raid_open_consumer(sc, diskname);
  1610. if (cp == NULL) {
  1611. gctl_error(req, "Can't open disk '%s'.",
  1612. diskname);
  1613. g_topology_unlock();
  1614. error = -7;
  1615. break;
  1616. }
  1617. pp = cp->provider;
  1618. }
  1619. pd = malloc(sizeof(*pd), M_MD_INTEL, M_WAITOK | M_ZERO);
  1620. pd->pd_disk_pos = i;
  1621. disk = g_raid_create_disk(sc);
  1622. disk->d_md_data = (void *)pd;
  1623. disk->d_consumer = cp;
  1624. if (cp == NULL) {
  1625. strcpy(&pd->pd_disk_meta.serial[0], "NONE");
  1626. pd->pd_disk_meta.id = 0xffffffff;
  1627. pd->pd_disk_meta.flags = INTEL_F_ASSIGNED;
  1628. continue;
  1629. }
  1630. cp->private = disk;
  1631. g_topology_unlock();
  1632. error = g_raid_md_get_label(cp,
  1633. &pd->pd_disk_meta.serial[0], INTEL_SERIAL_LEN);
  1634. if (error != 0) {
  1635. gctl_error(req,
  1636. "Can't get serial for provider '%s'.",
  1637. diskname);
  1638. error = -8;
  1639. break;
  1640. }
  1641. g_raid_get_disk_info(disk);
  1642. intel_set_disk_sectors(&pd->pd_disk_meta,
  1643. pp->mediasize / pp->sectorsize);
  1644. if (size > pp->mediasize)
  1645. size = pp->mediasize;
  1646. if (sectorsize < pp->sectorsize)
  1647. sectorsize = pp->sectorsize;
  1648. pd->pd_disk_meta.id = 0;
  1649. pd->pd_disk_meta.flags = INTEL_F_ASSIGNED | INTEL_F_ONLINE;
  1650. }
  1651. if (error != 0)
  1652. return (error);
  1653. if (sectorsize <= 0) {
  1654. gctl_error(req, "Can't get sector size.");
  1655. return (-8);
  1656. }
  1657. /* Reserve some space for metadata. */
  1658. size -= ((4096 + sectorsize - 1) / sectorsize) * sectorsize;
  1659. /* Handle size argument. */
  1660. len = sizeof(*sizearg);
  1661. sizearg = gctl_get_param(req, "size", &len);
  1662. if (sizearg != NULL && len == sizeof(*sizearg) &&
  1663. *sizearg > 0) {
  1664. if (*sizearg > size) {
  1665. gctl_error(req, "Size too big %lld > %lld.",
  1666. (long long)*sizearg, (long long)size);
  1667. return (-9);
  1668. }
  1669. size = *sizearg;
  1670. }
  1671. /* Handle strip argument. */
  1672. strip = 131072;
  1673. len = sizeof(*striparg);
  1674. striparg = gctl_get_param(req, "strip", &len);
  1675. if (striparg != NULL && len == sizeof(*striparg) &&
  1676. *striparg > 0) {
  1677. if (*striparg < sectorsize) {
  1678. gctl_error(req, "Strip size too small.");
  1679. return (-10);
  1680. }
  1681. if (*striparg % sectorsize != 0) {
  1682. gctl_error(req, "Incorrect strip size.");
  1683. return (-11);
  1684. }
  1685. if (strip > 65535 * sectorsize) {
  1686. gctl_error(req, "Strip size too big.");
  1687. return (-12);
  1688. }
  1689. strip = *striparg;
  1690. }
  1691. /* Round size down to strip or sector. */
  1692. if (level == G_RAID_VOLUME_RL_RAID1)
  1693. size -= (size % sectorsize);
  1694. else if (level == G_RAID_VOLUME_RL_RAID1E &&
  1695. (numdisks & 1) != 0)
  1696. size -= (size % (2 * strip));
  1697. else
  1698. size -= (size % strip);
  1699. if (size <= 0) {
  1700. gctl_error(req, "Size too small.");
  1701. return (-13);
  1702. }
  1703. /* We have all we need, create things: volume, ... */
  1704. mdi->mdio_started = 1;
  1705. vol = g_raid_create_volume(sc, volname, -1);
  1706. pv = malloc(sizeof(*pv), M_MD_INTEL, M_WAITOK | M_ZERO);
  1707. pv->pv_volume_pos = 0;
  1708. vol->v_md_data = pv;
  1709. vol->v_raid_level = level;
  1710. vol->v_raid_level_qualifier = qual;
  1711. vol->v_strip_size = strip;
  1712. vol->v_disks_count = numdisks;
  1713. if (level == G_RAID_VOLUME_RL_RAID0)
  1714. vol->v_mediasize = size * numdisks;
  1715. else if (level == G_RAID_VOLUME_RL_RAID1)
  1716. vol->v_mediasize = size;
  1717. else if (level == G_RAID_VOLUME_RL_RAID5)
  1718. vol->v_mediasize = size * (numdisks - 1);
  1719. else { /* RAID1E */
  1720. vol->v_mediasize = ((size * numdisks) / strip / 2) *
  1721. strip;
  1722. }
  1723. vol->v_sectorsize = sectorsize;
  1724. g_raid_start_volume(vol);
  1725. /* , and subdisks. */
  1726. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  1727. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  1728. sd = &vol->v_subdisks[pd->pd_disk_pos];
  1729. sd->sd_disk = disk;
  1730. sd->sd_offset = 0;
  1731. sd->sd_size = size;
  1732. TAILQ_INSERT_TAIL(&disk->d_subdisks, sd, sd_next);
  1733. if (sd->sd_disk->d_consumer != NULL) {
  1734. g_raid_change_disk_state(disk,
  1735. G_RAID_DISK_S_ACTIVE);
  1736. if (level == G_RAID_VOLUME_RL_RAID5)
  1737. g_raid_change_subdisk_state(sd,
  1738. G_RAID_SUBDISK_S_UNINITIALIZED);
  1739. else
  1740. g_raid_change_subdisk_state(sd,
  1741. G_RAID_SUBDISK_S_ACTIVE);
  1742. g_raid_event_send(sd, G_RAID_SUBDISK_E_NEW,
  1743. G_RAID_EVENT_SUBDISK);
  1744. } else {
  1745. g_raid_change_disk_state(disk, G_RAID_DISK_S_OFFLINE);
  1746. }
  1747. }
  1748. /* Write metadata based on created entities. */
  1749. G_RAID_DEBUG1(0, sc, "Array started.");
  1750. g_raid_md_write_intel(md, NULL, NULL, NULL);
  1751. /* Pickup any STALE/SPARE disks to refill array if needed. */
  1752. g_raid_md_intel_refill(sc);
  1753. g_raid_event_send(vol, G_RAID_VOLUME_E_START,
  1754. G_RAID_EVENT_VOLUME);
  1755. return (0);
  1756. }
  1757. if (strcmp(verb, "add") == 0) {
  1758. if (*nargs != 3) {
  1759. gctl_error(req, "Invalid number of arguments.");
  1760. return (-1);
  1761. }
  1762. volname = gctl_get_asciiparam(req, "arg1");
  1763. if (volname == NULL) {
  1764. gctl_error(req, "No volume name.");
  1765. return (-2);
  1766. }
  1767. levelname = gctl_get_asciiparam(req, "arg2");
  1768. if (levelname == NULL) {
  1769. gctl_error(req, "No RAID level.");
  1770. return (-3);
  1771. }
  1772. if (strcasecmp(levelname, "RAID5") == 0)
  1773. levelname = "RAID5-LA";
  1774. if (g_raid_volume_str2level(levelname, &level, &qual)) {
  1775. gctl_error(req, "Unknown RAID level '%s'.", levelname);
  1776. return (-4);
  1777. }
  1778. /* Look for existing volumes. */
  1779. i = 0;
  1780. vol1 = NULL;
  1781. TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
  1782. vol1 = vol;
  1783. i++;
  1784. }
  1785. if (i > 1) {
  1786. gctl_error(req, "Maximum two volumes supported.");
  1787. return (-6);
  1788. }
  1789. if (vol1 == NULL) {
  1790. gctl_error(req, "At least one volume must exist.");
  1791. return (-7);
  1792. }
  1793. numdisks = vol1->v_disks_count;
  1794. force = gctl_get_paraml(req, "force", sizeof(*force));
  1795. if (!g_raid_md_intel_supported(level, qual, numdisks,
  1796. force ? *force : 0)) {
  1797. gctl_error(req, "Unsupported RAID level "
  1798. "(0x%02x/0x%02x), or number of disks (%d).",
  1799. level, qual, numdisks);
  1800. return (-5);
  1801. }
  1802. /* Collect info about present disks. */
  1803. size = 0x7fffffffffffffffllu;
  1804. sectorsize = 512;
  1805. for (i = 0; i < numdisks; i++) {
  1806. disk = vol1->v_subdisks[i].sd_disk;
  1807. pd = (struct g_raid_md_intel_perdisk *)
  1808. disk->d_md_data;
  1809. disk_sectors =
  1810. intel_get_disk_sectors(&pd->pd_disk_meta);
  1811. if (disk_sectors * 512 < size)
  1812. size = disk_sectors * 512;
  1813. if (disk->d_consumer != NULL &&
  1814. disk->d_consumer->provider != NULL &&
  1815. disk->d_consumer->provider->sectorsize >
  1816. sectorsize) {
  1817. sectorsize =
  1818. disk->d_consumer->provider->sectorsize;
  1819. }
  1820. }
  1821. /* Reserve some space for metadata. */
  1822. size -= ((4096 + sectorsize - 1) / sectorsize) * sectorsize;
  1823. /* Decide insert before or after. */
  1824. sd = &vol1->v_subdisks[0];
  1825. if (sd->sd_offset >
  1826. size - (sd->sd_offset + sd->sd_size)) {
  1827. off = 0;
  1828. size = sd->sd_offset;
  1829. } else {
  1830. off = sd->sd_offset + sd->sd_size;
  1831. size = size - (sd->sd_offset + sd->sd_size);
  1832. }
  1833. /* Handle strip argument. */
  1834. strip = 131072;
  1835. len = sizeof(*striparg);
  1836. striparg = gctl_get_param(req, "strip", &len);
  1837. if (striparg != NULL && len == sizeof(*striparg) &&
  1838. *striparg > 0) {
  1839. if (*striparg < sectorsize) {
  1840. gctl_error(req, "Strip size too small.");
  1841. return (-10);
  1842. }
  1843. if (*striparg % sectorsize != 0) {
  1844. gctl_error(req, "Incorrect strip size.");
  1845. return (-11);
  1846. }
  1847. if (strip > 65535 * sectorsize) {
  1848. gctl_error(req, "Strip size too big.");
  1849. return (-12);
  1850. }
  1851. strip = *striparg;
  1852. }
  1853. /* Round offset up to strip. */
  1854. if (off % strip != 0) {
  1855. size -= strip - off % strip;
  1856. off += strip - off % strip;
  1857. }
  1858. /* Handle size argument. */
  1859. len = sizeof(*sizearg);
  1860. sizearg = gctl_get_param(req, "size", &len);
  1861. if (sizearg != NULL && len == sizeof(*sizearg) &&
  1862. *sizearg > 0) {
  1863. if (*sizearg > size) {
  1864. gctl_error(req, "Size too big %lld > %lld.",
  1865. (long long)*sizearg, (long long)size);
  1866. return (-9);
  1867. }
  1868. size = *sizearg;
  1869. }
  1870. /* Round size down to strip or sector. */
  1871. if (level == G_RAID_VOLUME_RL_RAID1)
  1872. size -= (size % sectorsize);
  1873. else
  1874. size -= (size % strip);
  1875. if (size <= 0) {
  1876. gctl_error(req, "Size too small.");
  1877. return (-13);
  1878. }
  1879. if (size > 0xffffffffllu * sectorsize) {
  1880. gctl_error(req, "Size too big.");
  1881. return (-14);
  1882. }
  1883. /* We have all we need, create things: volume, ... */
  1884. vol = g_raid_create_volume(sc, volname, -1);
  1885. pv = malloc(sizeof(*pv), M_MD_INTEL, M_WAITOK | M_ZERO);
  1886. pv->pv_volume_pos = i;
  1887. vol->v_md_data = pv;
  1888. vol->v_raid_level = level;
  1889. vol->v_raid_level_qualifier = qual;
  1890. vol->v_strip_size = strip;
  1891. vol->v_disks_count = numdisks;
  1892. if (level == G_RAID_VOLUME_RL_RAID0)
  1893. vol->v_mediasize = size * numdisks;
  1894. else if (level == G_RAID_VOLUME_RL_RAID1)
  1895. vol->v_mediasize = size;
  1896. else if (level == G_RAID_VOLUME_RL_RAID5)
  1897. vol->v_mediasize = size * (numdisks - 1);
  1898. else { /* RAID1E */
  1899. vol->v_mediasize = ((size * numdisks) / strip / 2) *
  1900. strip;
  1901. }
  1902. vol->v_sectorsize = sectorsize;
  1903. g_raid_start_volume(vol);
  1904. /* , and subdisks. */
  1905. for (i = 0; i < numdisks; i++) {
  1906. disk = vol1->v_subdisks[i].sd_disk;
  1907. sd = &vol->v_subdisks[i];
  1908. sd->sd_disk = disk;
  1909. sd->sd_offset = off;
  1910. sd->sd_size = size;
  1911. TAILQ_INSERT_TAIL(&disk->d_subdisks, sd, sd_next);
  1912. if (disk->d_state == G_RAID_DISK_S_ACTIVE) {
  1913. if (level == G_RAID_VOLUME_RL_RAID5)
  1914. g_raid_change_subdisk_state(sd,
  1915. G_RAID_SUBDISK_S_UNINITIALIZED);
  1916. else
  1917. g_raid_change_subdisk_state(sd,
  1918. G_RAID_SUBDISK_S_ACTIVE);
  1919. g_raid_event_send(sd, G_RAID_SUBDISK_E_NEW,
  1920. G_RAID_EVENT_SUBDISK);
  1921. }
  1922. }
  1923. /* Write metadata based on created entities. */
  1924. g_raid_md_write_intel(md, NULL, NULL, NULL);
  1925. g_raid_event_send(vol, G_RAID_VOLUME_E_START,
  1926. G_RAID_EVENT_VOLUME);
  1927. return (0);
  1928. }
  1929. if (strcmp(verb, "delete") == 0) {
  1930. nodename = gctl_get_asciiparam(req, "arg0");
  1931. if (nodename != NULL && strcasecmp(sc->sc_name, nodename) != 0)
  1932. nodename = NULL;
  1933. /* Full node destruction. */
  1934. if (*nargs == 1 && nodename != NULL) {
  1935. /* Check if some volume is still open. */
  1936. force = gctl_get_paraml(req, "force", sizeof(*force));
  1937. if (force != NULL && *force == 0 &&
  1938. g_raid_nopens(sc) != 0) {
  1939. gctl_error(req, "Some volume is still open.");
  1940. return (-4);
  1941. }
  1942. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  1943. if (disk->d_consumer)
  1944. intel_meta_erase(disk->d_consumer);
  1945. }
  1946. g_raid_destroy_node(sc, 0);
  1947. return (0);
  1948. }
  1949. /* Destroy specified volume. If it was last - all node. */
  1950. if (*nargs > 2) {
  1951. gctl_error(req, "Invalid number of arguments.");
  1952. return (-1);
  1953. }
  1954. volname = gctl_get_asciiparam(req,
  1955. nodename != NULL ? "arg1" : "arg0");
  1956. if (volname == NULL) {
  1957. gctl_error(req, "No volume name.");
  1958. return (-2);
  1959. }
  1960. /* Search for volume. */
  1961. TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
  1962. if (strcmp(vol->v_name, volname) == 0)
  1963. break;
  1964. pp = vol->v_provider;
  1965. if (pp == NULL)
  1966. continue;
  1967. if (strcmp(pp->name, volname) == 0)
  1968. break;
  1969. if (strncmp(pp->name, "raid/", 5) == 0 &&
  1970. strcmp(pp->name + 5, volname) == 0)
  1971. break;
  1972. }
  1973. if (vol == NULL) {
  1974. i = strtol(volname, &tmp, 10);
  1975. if (verb != volname && tmp[0] == 0) {
  1976. TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
  1977. if (vol->v_global_id == i)
  1978. break;
  1979. }
  1980. }
  1981. }
  1982. if (vol == NULL) {
  1983. gctl_error(req, "Volume '%s' not found.", volname);
  1984. return (-3);
  1985. }
  1986. /* Check if volume is still open. */
  1987. force = gctl_get_paraml(req, "force", sizeof(*force));
  1988. if (force != NULL && *force == 0 &&
  1989. vol->v_provider_open != 0) {
  1990. gctl_error(req, "Volume is still open.");
  1991. return (-4);
  1992. }
  1993. /* Destroy volume and potentially node. */
  1994. i = 0;
  1995. TAILQ_FOREACH(vol1, &sc->sc_volumes, v_next)
  1996. i++;
  1997. if (i >= 2) {
  1998. g_raid_destroy_volume(vol);
  1999. g_raid_md_write_intel(md, NULL, NULL, NULL);
  2000. } else {
  2001. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  2002. if (disk->d_consumer)
  2003. intel_meta_erase(disk->d_consumer);
  2004. }
  2005. g_raid_destroy_node(sc, 0);
  2006. }
  2007. return (0);
  2008. }
  2009. if (strcmp(verb, "remove") == 0 ||
  2010. strcmp(verb, "fail") == 0) {
  2011. if (*nargs < 2) {
  2012. gctl_error(req, "Invalid number of arguments.");
  2013. return (-1);
  2014. }
  2015. for (i = 1; i < *nargs; i++) {
  2016. snprintf(arg, sizeof(arg), "arg%d", i);
  2017. diskname = gctl_get_asciiparam(req, arg);
  2018. if (diskname == NULL) {
  2019. gctl_error(req, "No disk name (%s).", arg);
  2020. error = -2;
  2021. break;
  2022. }
  2023. if (strncmp(diskname, _PATH_DEV, 5) == 0)
  2024. diskname += 5;
  2025. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  2026. if (disk->d_consumer != NULL &&
  2027. disk->d_consumer->provider != NULL &&
  2028. strcmp(disk->d_consumer->provider->name,
  2029. diskname) == 0)
  2030. break;
  2031. }
  2032. if (disk == NULL) {
  2033. gctl_error(req, "Disk '%s' not found.",
  2034. diskname);
  2035. error = -3;
  2036. break;
  2037. }
  2038. if (strcmp(verb, "fail") == 0) {
  2039. g_raid_md_fail_disk_intel(md, NULL, disk);
  2040. continue;
  2041. }
  2042. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  2043. /* Erase metadata on deleting disk. */
  2044. intel_meta_erase(disk->d_consumer);
  2045. /* If disk was assigned, just update statuses. */
  2046. if (pd->pd_disk_pos >= 0) {
  2047. g_raid_change_disk_state(disk, G_RAID_DISK_S_OFFLINE);
  2048. g_raid_kill_consumer(sc, disk->d_consumer);
  2049. disk->d_consumer = NULL;
  2050. TAILQ_FOREACH(sd, &disk->d_subdisks, sd_next) {
  2051. g_raid_change_subdisk_state(sd,
  2052. G_RAID_SUBDISK_S_NONE);
  2053. g_raid_event_send(sd, G_RAID_SUBDISK_E_DISCONNECTED,
  2054. G_RAID_EVENT_SUBDISK);
  2055. }
  2056. } else {
  2057. /* Otherwise -- delete. */
  2058. g_raid_change_disk_state(disk, G_RAID_DISK_S_NONE);
  2059. g_raid_destroy_disk(disk);
  2060. }
  2061. }
  2062. /* Write updated metadata to remaining disks. */
  2063. g_raid_md_write_intel(md, NULL, NULL, NULL);
  2064. /* Check if anything left except placeholders. */
  2065. if (g_raid_ndisks(sc, -1) ==
  2066. g_raid_ndisks(sc, G_RAID_DISK_S_OFFLINE))
  2067. g_raid_destroy_node(sc, 0);
  2068. else
  2069. g_raid_md_intel_refill(sc);
  2070. return (error);
  2071. }
  2072. if (strcmp(verb, "insert") == 0) {
  2073. if (*nargs < 2) {
  2074. gctl_error(req, "Invalid number of arguments.");
  2075. return (-1);
  2076. }
  2077. update = 0;
  2078. for (i = 1; i < *nargs; i++) {
  2079. /* Get disk name. */
  2080. snprintf(arg, sizeof(arg), "arg%d", i);
  2081. diskname = gctl_get_asciiparam(req, arg);
  2082. if (diskname == NULL) {
  2083. gctl_error(req, "No disk name (%s).", arg);
  2084. error = -3;
  2085. break;
  2086. }
  2087. /* Try to find provider with specified name. */
  2088. g_topology_lock();
  2089. cp = g_raid_open_consumer(sc, diskname);
  2090. if (cp == NULL) {
  2091. gctl_error(req, "Can't open disk '%s'.",
  2092. diskname);
  2093. g_topology_unlock();
  2094. error = -4;
  2095. break;
  2096. }
  2097. pp = cp->provider;
  2098. g_topology_unlock();
  2099. /* Read disk serial. */
  2100. error = g_raid_md_get_label(cp,
  2101. &serial[0], INTEL_SERIAL_LEN);
  2102. if (error != 0) {
  2103. gctl_error(req,
  2104. "Can't get serial for provider '%s'.",
  2105. diskname);
  2106. g_raid_kill_consumer(sc, cp);
  2107. error = -7;
  2108. break;
  2109. }
  2110. pd = malloc(sizeof(*pd), M_MD_INTEL, M_WAITOK | M_ZERO);
  2111. pd->pd_disk_pos = -1;
  2112. disk = g_raid_create_disk(sc);
  2113. disk->d_consumer = cp;
  2114. disk->d_md_data = (void *)pd;
  2115. cp->private = disk;
  2116. g_raid_get_disk_info(disk);
  2117. memcpy(&pd->pd_disk_meta.serial[0], &serial[0],
  2118. INTEL_SERIAL_LEN);
  2119. intel_set_disk_sectors(&pd->pd_disk_meta,
  2120. pp->mediasize / pp->sectorsize);
  2121. pd->pd_disk_meta.id = 0;
  2122. pd->pd_disk_meta.flags = INTEL_F_SPARE;
  2123. /* Welcome the "new" disk. */
  2124. update += g_raid_md_intel_start_disk(disk);
  2125. if (disk->d_state == G_RAID_DISK_S_SPARE) {
  2126. intel_meta_write_spare(cp, &pd->pd_disk_meta);
  2127. g_raid_destroy_disk(disk);
  2128. } else if (disk->d_state != G_RAID_DISK_S_ACTIVE) {
  2129. gctl_error(req, "Disk '%s' doesn't fit.",
  2130. diskname);
  2131. g_raid_destroy_disk(disk);
  2132. error = -8;
  2133. break;
  2134. }
  2135. }
  2136. /* Write new metadata if we changed something. */
  2137. if (update)
  2138. g_raid_md_write_intel(md, NULL, NULL, NULL);
  2139. return (error);
  2140. }
  2141. return (-100);
  2142. }
  2143. static int
  2144. g_raid_md_write_intel(struct g_raid_md_object *md, struct g_raid_volume *tvol,
  2145. struct g_raid_subdisk *tsd, struct g_raid_disk *tdisk)
  2146. {
  2147. struct g_raid_softc *sc;
  2148. struct g_raid_volume *vol;
  2149. struct g_raid_subdisk *sd;
  2150. struct g_raid_disk *disk;
  2151. struct g_raid_md_intel_object *mdi;
  2152. struct g_raid_md_intel_pervolume *pv;
  2153. struct g_raid_md_intel_perdisk *pd;
  2154. struct intel_raid_conf *meta;
  2155. struct intel_raid_vol *mvol;
  2156. struct intel_raid_map *mmap0, *mmap1;
  2157. off_t sectorsize = 512, pos;
  2158. const char *version, *cv;
  2159. int vi, sdi, numdisks, len, state, stale;
  2160. sc = md->mdo_softc;
  2161. mdi = (struct g_raid_md_intel_object *)md;
  2162. if (sc->sc_stopping == G_RAID_DESTROY_HARD)
  2163. return (0);
  2164. /* Bump generation. Newly written metadata may differ from previous. */
  2165. mdi->mdio_generation++;
  2166. /* Count number of disks. */
  2167. numdisks = 0;
  2168. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  2169. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  2170. if (pd->pd_disk_pos < 0)
  2171. continue;
  2172. numdisks++;
  2173. if (disk->d_state == G_RAID_DISK_S_ACTIVE) {
  2174. pd->pd_disk_meta.flags =
  2175. INTEL_F_ONLINE | INTEL_F_ASSIGNED;
  2176. } else if (disk->d_state == G_RAID_DISK_S_FAILED) {
  2177. pd->pd_disk_meta.flags = INTEL_F_FAILED |
  2178. INTEL_F_ASSIGNED;
  2179. } else if (disk->d_state == G_RAID_DISK_S_DISABLED) {
  2180. pd->pd_disk_meta.flags = INTEL_F_FAILED |
  2181. INTEL_F_ASSIGNED | INTEL_F_DISABLED;
  2182. } else {
  2183. if (!(pd->pd_disk_meta.flags & INTEL_F_DISABLED))
  2184. pd->pd_disk_meta.flags = INTEL_F_ASSIGNED;
  2185. if (pd->pd_disk_meta.id != 0xffffffff) {
  2186. pd->pd_disk_meta.id = 0xffffffff;
  2187. len = strlen(pd->pd_disk_meta.serial);
  2188. len = min(len, INTEL_SERIAL_LEN - 3);
  2189. strcpy(pd->pd_disk_meta.serial + len, ":0");
  2190. }
  2191. }
  2192. }
  2193. /* Fill anchor and disks. */
  2194. meta = malloc(INTEL_MAX_MD_SIZE(numdisks),
  2195. M_MD_INTEL, M_WAITOK | M_ZERO);
  2196. memcpy(&meta->intel_id[0], INTEL_MAGIC, sizeof(INTEL_MAGIC) - 1);
  2197. meta->config_size = INTEL_MAX_MD_SIZE(numdisks);
  2198. meta->config_id = mdi->mdio_config_id;
  2199. meta->orig_config_id = mdi->mdio_orig_config_id;
  2200. meta->generation = mdi->mdio_generation;
  2201. meta->attributes = INTEL_ATTR_CHECKSUM;
  2202. meta->total_disks = numdisks;
  2203. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  2204. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  2205. if (pd->pd_disk_pos < 0)
  2206. continue;
  2207. meta->disk[pd->pd_disk_pos] = pd->pd_disk_meta;
  2208. if (pd->pd_disk_meta.sectors_hi != 0)
  2209. meta->attributes |= INTEL_ATTR_2TB_DISK;
  2210. }
  2211. /* Fill volumes and maps. */
  2212. vi = 0;
  2213. version = INTEL_VERSION_1000;
  2214. TAILQ_FOREACH(vol, &sc->sc_volumes, v_next) {
  2215. pv = vol->v_md_data;
  2216. if (vol->v_stopping)
  2217. continue;
  2218. mvol = intel_get_volume(meta, vi);
  2219. /* New metadata may have different volumes order. */
  2220. pv->pv_volume_pos = vi;
  2221. for (sdi = 0; sdi < vol->v_disks_count; sdi++) {
  2222. sd = &vol->v_subdisks[sdi];
  2223. if (sd->sd_disk != NULL)
  2224. break;
  2225. }
  2226. if (sdi >= vol->v_disks_count)
  2227. panic("No any filled subdisk in volume");
  2228. if (vol->v_mediasize >= 0x20000000000llu)
  2229. meta->attributes |= INTEL_ATTR_2TB;
  2230. if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID0)
  2231. meta->attributes |= INTEL_ATTR_RAID0;
  2232. else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1)
  2233. meta->attributes |= INTEL_ATTR_RAID1;
  2234. else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID5)
  2235. meta->attributes |= INTEL_ATTR_RAID5;
  2236. else if ((vol->v_disks_count & 1) == 0)
  2237. meta->attributes |= INTEL_ATTR_RAID10;
  2238. else
  2239. meta->attributes |= INTEL_ATTR_RAID1E;
  2240. if (pv->pv_cng)
  2241. meta->attributes |= INTEL_ATTR_RAIDCNG;
  2242. if (vol->v_strip_size > 131072)
  2243. meta->attributes |= INTEL_ATTR_EXT_STRIP;
  2244. if (pv->pv_cng)
  2245. cv = INTEL_VERSION_1206;
  2246. else if (vol->v_disks_count > 4)
  2247. cv = INTEL_VERSION_1204;
  2248. else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID5)
  2249. cv = INTEL_VERSION_1202;
  2250. else if (vol->v_disks_count > 2)
  2251. cv = INTEL_VERSION_1201;
  2252. else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1)
  2253. cv = INTEL_VERSION_1100;
  2254. else
  2255. cv = INTEL_VERSION_1000;
  2256. if (strcmp(cv, version) > 0)
  2257. version = cv;
  2258. strlcpy(&mvol->name[0], vol->v_name, sizeof(mvol->name));
  2259. mvol->total_sectors = vol->v_mediasize / sectorsize;
  2260. mvol->state = (INTEL_ST_READ_COALESCING |
  2261. INTEL_ST_WRITE_COALESCING);
  2262. mvol->tid = vol->v_global_id + 1;
  2263. if (pv->pv_cng) {
  2264. mvol->state |= INTEL_ST_CLONE_N_GO;
  2265. if (pv->pv_cng_man_sync)
  2266. mvol->state |= INTEL_ST_CLONE_MAN_SYNC;
  2267. mvol->cng_master_disk = pv->pv_cng_master_disk;
  2268. if (vol->v_subdisks[pv->pv_cng_master_disk].sd_state ==
  2269. G_RAID_SUBDISK_S_NONE)
  2270. mvol->cng_state = INTEL_CNGST_MASTER_MISSING;
  2271. else if (vol->v_state != G_RAID_VOLUME_S_OPTIMAL)
  2272. mvol->cng_state = INTEL_CNGST_NEEDS_UPDATE;
  2273. else
  2274. mvol->cng_state = INTEL_CNGST_UPDATED;
  2275. }
  2276. /* Check for any recovery in progress. */
  2277. state = G_RAID_SUBDISK_S_ACTIVE;
  2278. pos = 0x7fffffffffffffffllu;
  2279. stale = 0;
  2280. for (sdi = 0; sdi < vol->v_disks_count; sdi++) {
  2281. sd = &vol->v_subdisks[sdi];
  2282. if (sd->sd_state == G_RAID_SUBDISK_S_REBUILD)
  2283. state = G_RAID_SUBDISK_S_REBUILD;
  2284. else if (sd->sd_state == G_RAID_SUBDISK_S_RESYNC &&
  2285. state != G_RAID_SUBDISK_S_REBUILD)
  2286. state = G_RAID_SUBDISK_S_RESYNC;
  2287. else if (sd->sd_state == G_RAID_SUBDISK_S_STALE)
  2288. stale = 1;
  2289. if ((sd->sd_state == G_RAID_SUBDISK_S_REBUILD ||
  2290. sd->sd_state == G_RAID_SUBDISK_S_RESYNC) &&
  2291. sd->sd_rebuild_pos < pos)
  2292. pos = sd->sd_rebuild_pos;
  2293. }
  2294. if (state == G_RAID_SUBDISK_S_REBUILD) {
  2295. mvol->migr_state = 1;
  2296. mvol->migr_type = INTEL_MT_REBUILD;
  2297. } else if (state == G_RAID_SUBDISK_S_RESYNC) {
  2298. mvol->migr_state = 1;
  2299. /* mvol->migr_type = INTEL_MT_REPAIR; */
  2300. mvol->migr_type = INTEL_MT_VERIFY;
  2301. mvol->state |= INTEL_ST_VERIFY_AND_FIX;
  2302. } else
  2303. mvol->migr_state = 0;
  2304. mvol->dirty = (vol->v_dirty || stale);
  2305. mmap0 = intel_get_map(mvol, 0);
  2306. /* Write map / common part of two maps. */
  2307. intel_set_map_offset(mmap0, sd->sd_offset / sectorsize);
  2308. intel_set_map_disk_sectors(mmap0, sd->sd_size / sectorsize);
  2309. mmap0->strip_sectors = vol->v_strip_size / sectorsize;
  2310. if (vol->v_state == G_RAID_VOLUME_S_BROKEN)
  2311. mmap0->status = INTEL_S_FAILURE;
  2312. else if (vol->v_state == G_RAID_VOLUME_S_DEGRADED)
  2313. mmap0->status = INTEL_S_DEGRADED;
  2314. else if (g_raid_nsubdisks(vol, G_RAID_SUBDISK_S_UNINITIALIZED)
  2315. == g_raid_nsubdisks(vol, -1))
  2316. mmap0->status = INTEL_S_UNINITIALIZED;
  2317. else
  2318. mmap0->status = INTEL_S_READY;
  2319. if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID0)
  2320. mmap0->type = INTEL_T_RAID0;
  2321. else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1 ||
  2322. vol->v_raid_level == G_RAID_VOLUME_RL_RAID1E)
  2323. mmap0->type = INTEL_T_RAID1;
  2324. else
  2325. mmap0->type = INTEL_T_RAID5;
  2326. mmap0->total_disks = vol->v_disks_count;
  2327. if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1)
  2328. mmap0->total_domains = vol->v_disks_count;
  2329. else if (vol->v_raid_level == G_RAID_VOLUME_RL_RAID1E)
  2330. mmap0->total_domains = 2;
  2331. else
  2332. mmap0->total_domains = 1;
  2333. intel_set_map_stripe_count(mmap0,
  2334. sd->sd_size / vol->v_strip_size / mmap0->total_domains);
  2335. mmap0->failed_disk_num = 0xff;
  2336. mmap0->ddf = 1;
  2337. /* If there are two maps - copy common and update. */
  2338. if (mvol->migr_state) {
  2339. intel_set_vol_curr_migr_unit(mvol,
  2340. pos / vol->v_strip_size / mmap0->total_domains);
  2341. mmap1 = intel_get_map(mvol, 1);
  2342. memcpy(mmap1, mmap0, sizeof(struct intel_raid_map));
  2343. mmap0->status = INTEL_S_READY;
  2344. } else
  2345. mmap1 = NULL;
  2346. /* Write disk indexes and put rebuild flags. */
  2347. for (sdi = 0; sdi < vol->v_disks_count; sdi++) {
  2348. sd = &vol->v_subdisks[sdi];
  2349. pd = (struct g_raid_md_intel_perdisk *)
  2350. sd->sd_disk->d_md_data;
  2351. mmap0->disk_idx[sdi] = pd->pd_disk_pos;
  2352. if (mvol->migr_state)
  2353. mmap1->disk_idx[sdi] = pd->pd_disk_pos;
  2354. if (sd->sd_state == G_RAID_SUBDISK_S_REBUILD ||
  2355. sd->sd_state == G_RAID_SUBDISK_S_RESYNC) {
  2356. mmap1->disk_idx[sdi] |= INTEL_DI_RBLD;
  2357. } else if (sd->sd_state != G_RAID_SUBDISK_S_ACTIVE &&
  2358. sd->sd_state != G_RAID_SUBDISK_S_STALE &&
  2359. sd->sd_state != G_RAID_SUBDISK_S_UNINITIALIZED) {
  2360. mmap0->disk_idx[sdi] |= INTEL_DI_RBLD;
  2361. if (mvol->migr_state)
  2362. mmap1->disk_idx[sdi] |= INTEL_DI_RBLD;
  2363. }
  2364. if ((sd->sd_state == G_RAID_SUBDISK_S_NONE ||
  2365. sd->sd_state == G_RAID_SUBDISK_S_FAILED ||
  2366. sd->sd_state == G_RAID_SUBDISK_S_REBUILD) &&
  2367. mmap0->failed_disk_num == 0xff) {
  2368. mmap0->failed_disk_num = sdi;
  2369. if (mvol->migr_state)
  2370. mmap1->failed_disk_num = sdi;
  2371. }
  2372. }
  2373. vi++;
  2374. }
  2375. meta->total_volumes = vi;
  2376. if (vi > 1 || meta->attributes &
  2377. (INTEL_ATTR_EXT_STRIP | INTEL_ATTR_2TB_DISK | INTEL_ATTR_2TB))
  2378. version = INTEL_VERSION_1300;
  2379. if (strcmp(version, INTEL_VERSION_1300) < 0)
  2380. meta->attributes &= INTEL_ATTR_CHECKSUM;
  2381. memcpy(&meta->version[0], version, sizeof(INTEL_VERSION_1000) - 1);
  2382. /* We are done. Print meta data and store them to disks. */
  2383. g_raid_md_intel_print(meta);
  2384. if (mdi->mdio_meta != NULL)
  2385. free(mdi->mdio_meta, M_MD_INTEL);
  2386. mdi->mdio_meta = meta;
  2387. TAILQ_FOREACH(disk, &sc->sc_disks, d_next) {
  2388. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  2389. if (disk->d_state != G_RAID_DISK_S_ACTIVE)
  2390. continue;
  2391. if (pd->pd_meta != NULL) {
  2392. free(pd->pd_meta, M_MD_INTEL);
  2393. pd->pd_meta = NULL;
  2394. }
  2395. pd->pd_meta = intel_meta_copy(meta);
  2396. intel_meta_write(disk->d_consumer, meta);
  2397. }
  2398. return (0);
  2399. }
  2400. static int
  2401. g_raid_md_fail_disk_intel(struct g_raid_md_object *md,
  2402. struct g_raid_subdisk *tsd, struct g_raid_disk *tdisk)
  2403. {
  2404. struct g_raid_softc *sc;
  2405. struct g_raid_md_intel_object *mdi;
  2406. struct g_raid_md_intel_perdisk *pd;
  2407. struct g_raid_subdisk *sd;
  2408. sc = md->mdo_softc;
  2409. mdi = (struct g_raid_md_intel_object *)md;
  2410. pd = (struct g_raid_md_intel_perdisk *)tdisk->d_md_data;
  2411. /* We can't fail disk that is not a part of array now. */
  2412. if (pd->pd_disk_pos < 0)
  2413. return (-1);
  2414. /*
  2415. * Mark disk as failed in metadata and try to write that metadata
  2416. * to the disk itself to prevent it's later resurrection as STALE.
  2417. */
  2418. mdi->mdio_meta->disk[pd->pd_disk_pos].flags = INTEL_F_FAILED;
  2419. pd->pd_disk_meta.flags = INTEL_F_FAILED;
  2420. g_raid_md_intel_print(mdi->mdio_meta);
  2421. if (tdisk->d_consumer)
  2422. intel_meta_write(tdisk->d_consumer, mdi->mdio_meta);
  2423. /* Change states. */
  2424. g_raid_change_disk_state(tdisk, G_RAID_DISK_S_FAILED);
  2425. TAILQ_FOREACH(sd, &tdisk->d_subdisks, sd_next) {
  2426. g_raid_change_subdisk_state(sd,
  2427. G_RAID_SUBDISK_S_FAILED);
  2428. g_raid_event_send(sd, G_RAID_SUBDISK_E_FAILED,
  2429. G_RAID_EVENT_SUBDISK);
  2430. }
  2431. /* Write updated metadata to remaining disks. */
  2432. g_raid_md_write_intel(md, NULL, NULL, tdisk);
  2433. /* Check if anything left except placeholders. */
  2434. if (g_raid_ndisks(sc, -1) ==
  2435. g_raid_ndisks(sc, G_RAID_DISK_S_OFFLINE))
  2436. g_raid_destroy_node(sc, 0);
  2437. else
  2438. g_raid_md_intel_refill(sc);
  2439. return (0);
  2440. }
  2441. static int
  2442. g_raid_md_free_disk_intel(struct g_raid_md_object *md,
  2443. struct g_raid_disk *disk)
  2444. {
  2445. struct g_raid_md_intel_perdisk *pd;
  2446. pd = (struct g_raid_md_intel_perdisk *)disk->d_md_data;
  2447. if (pd->pd_meta != NULL) {
  2448. free(pd->pd_meta, M_MD_INTEL);
  2449. pd->pd_meta = NULL;
  2450. }
  2451. free(pd, M_MD_INTEL);
  2452. disk->d_md_data = NULL;
  2453. return (0);
  2454. }
  2455. static int
  2456. g_raid_md_free_volume_intel(struct g_raid_md_object *md,
  2457. struct g_raid_volume *vol)
  2458. {
  2459. struct g_raid_md_intel_pervolume *pv;
  2460. pv = (struct g_raid_md_intel_pervolume *)vol->v_md_data;
  2461. free(pv, M_MD_INTEL);
  2462. vol->v_md_data = NULL;
  2463. return (0);
  2464. }
  2465. static int
  2466. g_raid_md_free_intel(struct g_raid_md_object *md)
  2467. {
  2468. struct g_raid_md_intel_object *mdi;
  2469. mdi = (struct g_raid_md_intel_object *)md;
  2470. if (!mdi->mdio_started) {
  2471. mdi->mdio_started = 0;
  2472. callout_stop(&mdi->mdio_start_co);
  2473. G_RAID_DEBUG1(1, md->mdo_softc,
  2474. "root_mount_rel %p", mdi->mdio_rootmount);
  2475. root_mount_rel(mdi->mdio_rootmount);
  2476. mdi->mdio_rootmount = NULL;
  2477. }
  2478. if (mdi->mdio_meta != NULL) {
  2479. free(mdi->mdio_meta, M_MD_INTEL);
  2480. mdi->mdio_meta = NULL;
  2481. }
  2482. return (0);
  2483. }
  2484. G_RAID_MD_DECLARE(intel, "Intel");