scsi_dh_rdac.c 23 KB

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  1. /*
  2. * LSI/Engenio/NetApp E-Series RDAC SCSI Device Handler
  3. *
  4. * Copyright (C) 2005 Mike Christie. All rights reserved.
  5. * Copyright (C) Chandra Seetharaman, IBM Corp. 2007
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2 of the License, or
  10. * (at your option) any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
  20. *
  21. */
  22. #include <scsi/scsi.h>
  23. #include <scsi/scsi_eh.h>
  24. #include <scsi/scsi_dh.h>
  25. #include <linux/workqueue.h>
  26. #include <linux/slab.h>
  27. #include <linux/module.h>
  28. #define RDAC_NAME "rdac"
  29. #define RDAC_RETRY_COUNT 5
  30. /*
  31. * LSI mode page stuff
  32. *
  33. * These struct definitions and the forming of the
  34. * mode page were taken from the LSI RDAC 2.4 GPL'd
  35. * driver, and then converted to Linux conventions.
  36. */
  37. #define RDAC_QUIESCENCE_TIME 20
  38. /*
  39. * Page Codes
  40. */
  41. #define RDAC_PAGE_CODE_REDUNDANT_CONTROLLER 0x2c
  42. /*
  43. * Controller modes definitions
  44. */
  45. #define RDAC_MODE_TRANSFER_SPECIFIED_LUNS 0x02
  46. /*
  47. * RDAC Options field
  48. */
  49. #define RDAC_FORCED_QUIESENCE 0x02
  50. #define RDAC_TIMEOUT (60 * HZ)
  51. #define RDAC_RETRIES 3
  52. struct rdac_mode_6_hdr {
  53. u8 data_len;
  54. u8 medium_type;
  55. u8 device_params;
  56. u8 block_desc_len;
  57. };
  58. struct rdac_mode_10_hdr {
  59. u16 data_len;
  60. u8 medium_type;
  61. u8 device_params;
  62. u16 reserved;
  63. u16 block_desc_len;
  64. };
  65. struct rdac_mode_common {
  66. u8 controller_serial[16];
  67. u8 alt_controller_serial[16];
  68. u8 rdac_mode[2];
  69. u8 alt_rdac_mode[2];
  70. u8 quiescence_timeout;
  71. u8 rdac_options;
  72. };
  73. struct rdac_pg_legacy {
  74. struct rdac_mode_6_hdr hdr;
  75. u8 page_code;
  76. u8 page_len;
  77. struct rdac_mode_common common;
  78. #define MODE6_MAX_LUN 32
  79. u8 lun_table[MODE6_MAX_LUN];
  80. u8 reserved2[32];
  81. u8 reserved3;
  82. u8 reserved4;
  83. };
  84. struct rdac_pg_expanded {
  85. struct rdac_mode_10_hdr hdr;
  86. u8 page_code;
  87. u8 subpage_code;
  88. u8 page_len[2];
  89. struct rdac_mode_common common;
  90. u8 lun_table[256];
  91. u8 reserved3;
  92. u8 reserved4;
  93. };
  94. struct c9_inquiry {
  95. u8 peripheral_info;
  96. u8 page_code; /* 0xC9 */
  97. u8 reserved1;
  98. u8 page_len;
  99. u8 page_id[4]; /* "vace" */
  100. u8 avte_cvp;
  101. u8 path_prio;
  102. u8 reserved2[38];
  103. };
  104. #define SUBSYS_ID_LEN 16
  105. #define SLOT_ID_LEN 2
  106. #define ARRAY_LABEL_LEN 31
  107. struct c4_inquiry {
  108. u8 peripheral_info;
  109. u8 page_code; /* 0xC4 */
  110. u8 reserved1;
  111. u8 page_len;
  112. u8 page_id[4]; /* "subs" */
  113. u8 subsys_id[SUBSYS_ID_LEN];
  114. u8 revision[4];
  115. u8 slot_id[SLOT_ID_LEN];
  116. u8 reserved[2];
  117. };
  118. #define UNIQUE_ID_LEN 16
  119. struct c8_inquiry {
  120. u8 peripheral_info;
  121. u8 page_code; /* 0xC8 */
  122. u8 reserved1;
  123. u8 page_len;
  124. u8 page_id[4]; /* "edid" */
  125. u8 reserved2[3];
  126. u8 vol_uniq_id_len;
  127. u8 vol_uniq_id[16];
  128. u8 vol_user_label_len;
  129. u8 vol_user_label[60];
  130. u8 array_uniq_id_len;
  131. u8 array_unique_id[UNIQUE_ID_LEN];
  132. u8 array_user_label_len;
  133. u8 array_user_label[60];
  134. u8 lun[8];
  135. };
  136. struct rdac_controller {
  137. u8 array_id[UNIQUE_ID_LEN];
  138. int use_ms10;
  139. struct kref kref;
  140. struct list_head node; /* list of all controllers */
  141. union {
  142. struct rdac_pg_legacy legacy;
  143. struct rdac_pg_expanded expanded;
  144. } mode_select;
  145. u8 index;
  146. u8 array_name[ARRAY_LABEL_LEN];
  147. struct Scsi_Host *host;
  148. spinlock_t ms_lock;
  149. int ms_queued;
  150. struct work_struct ms_work;
  151. struct scsi_device *ms_sdev;
  152. struct list_head ms_head;
  153. };
  154. struct c2_inquiry {
  155. u8 peripheral_info;
  156. u8 page_code; /* 0xC2 */
  157. u8 reserved1;
  158. u8 page_len;
  159. u8 page_id[4]; /* "swr4" */
  160. u8 sw_version[3];
  161. u8 sw_date[3];
  162. u8 features_enabled;
  163. u8 max_lun_supported;
  164. u8 partitions[239]; /* Total allocation length should be 0xFF */
  165. };
  166. struct rdac_dh_data {
  167. struct rdac_controller *ctlr;
  168. #define UNINITIALIZED_LUN (1 << 8)
  169. unsigned lun;
  170. #define RDAC_MODE 0
  171. #define RDAC_MODE_AVT 1
  172. #define RDAC_MODE_IOSHIP 2
  173. unsigned char mode;
  174. #define RDAC_STATE_ACTIVE 0
  175. #define RDAC_STATE_PASSIVE 1
  176. unsigned char state;
  177. #define RDAC_LUN_UNOWNED 0
  178. #define RDAC_LUN_OWNED 1
  179. char lun_state;
  180. #define RDAC_PREFERRED 0
  181. #define RDAC_NON_PREFERRED 1
  182. char preferred;
  183. unsigned char sense[SCSI_SENSE_BUFFERSIZE];
  184. union {
  185. struct c2_inquiry c2;
  186. struct c4_inquiry c4;
  187. struct c8_inquiry c8;
  188. struct c9_inquiry c9;
  189. } inq;
  190. };
  191. static const char *mode[] = {
  192. "RDAC",
  193. "AVT",
  194. "IOSHIP",
  195. };
  196. static const char *lun_state[] =
  197. {
  198. "unowned",
  199. "owned",
  200. };
  201. struct rdac_queue_data {
  202. struct list_head entry;
  203. struct rdac_dh_data *h;
  204. activate_complete callback_fn;
  205. void *callback_data;
  206. };
  207. static LIST_HEAD(ctlr_list);
  208. static DEFINE_SPINLOCK(list_lock);
  209. static struct workqueue_struct *kmpath_rdacd;
  210. static void send_mode_select(struct work_struct *work);
  211. /*
  212. * module parameter to enable rdac debug logging.
  213. * 2 bits for each type of logging, only two types defined for now
  214. * Can be enhanced if required at later point
  215. */
  216. static int rdac_logging = 1;
  217. module_param(rdac_logging, int, S_IRUGO|S_IWUSR);
  218. MODULE_PARM_DESC(rdac_logging, "A bit mask of rdac logging levels, "
  219. "Default is 1 - failover logging enabled, "
  220. "set it to 0xF to enable all the logs");
  221. #define RDAC_LOG_FAILOVER 0
  222. #define RDAC_LOG_SENSE 2
  223. #define RDAC_LOG_BITS 2
  224. #define RDAC_LOG_LEVEL(SHIFT) \
  225. ((rdac_logging >> (SHIFT)) & ((1 << (RDAC_LOG_BITS)) - 1))
  226. #define RDAC_LOG(SHIFT, sdev, f, arg...) \
  227. do { \
  228. if (unlikely(RDAC_LOG_LEVEL(SHIFT))) \
  229. sdev_printk(KERN_INFO, sdev, RDAC_NAME ": " f "\n", ## arg); \
  230. } while (0);
  231. static inline struct rdac_dh_data *get_rdac_data(struct scsi_device *sdev)
  232. {
  233. struct scsi_dh_data *scsi_dh_data = sdev->scsi_dh_data;
  234. BUG_ON(scsi_dh_data == NULL);
  235. return ((struct rdac_dh_data *) scsi_dh_data->buf);
  236. }
  237. static struct request *get_rdac_req(struct scsi_device *sdev,
  238. void *buffer, unsigned buflen, int rw)
  239. {
  240. struct request *rq;
  241. struct request_queue *q = sdev->request_queue;
  242. rq = blk_get_request(q, rw, GFP_NOIO);
  243. if (!rq) {
  244. sdev_printk(KERN_INFO, sdev,
  245. "get_rdac_req: blk_get_request failed.\n");
  246. return NULL;
  247. }
  248. blk_rq_set_block_pc(rq);
  249. if (buflen && blk_rq_map_kern(q, rq, buffer, buflen, GFP_NOIO)) {
  250. blk_put_request(rq);
  251. sdev_printk(KERN_INFO, sdev,
  252. "get_rdac_req: blk_rq_map_kern failed.\n");
  253. return NULL;
  254. }
  255. rq->cmd_flags |= REQ_FAILFAST_DEV | REQ_FAILFAST_TRANSPORT |
  256. REQ_FAILFAST_DRIVER;
  257. rq->retries = RDAC_RETRIES;
  258. rq->timeout = RDAC_TIMEOUT;
  259. return rq;
  260. }
  261. static struct request *rdac_failover_get(struct scsi_device *sdev,
  262. struct rdac_dh_data *h, struct list_head *list)
  263. {
  264. struct request *rq;
  265. struct rdac_mode_common *common;
  266. unsigned data_size;
  267. struct rdac_queue_data *qdata;
  268. u8 *lun_table;
  269. if (h->ctlr->use_ms10) {
  270. struct rdac_pg_expanded *rdac_pg;
  271. data_size = sizeof(struct rdac_pg_expanded);
  272. rdac_pg = &h->ctlr->mode_select.expanded;
  273. memset(rdac_pg, 0, data_size);
  274. common = &rdac_pg->common;
  275. rdac_pg->page_code = RDAC_PAGE_CODE_REDUNDANT_CONTROLLER + 0x40;
  276. rdac_pg->subpage_code = 0x1;
  277. rdac_pg->page_len[0] = 0x01;
  278. rdac_pg->page_len[1] = 0x28;
  279. lun_table = rdac_pg->lun_table;
  280. } else {
  281. struct rdac_pg_legacy *rdac_pg;
  282. data_size = sizeof(struct rdac_pg_legacy);
  283. rdac_pg = &h->ctlr->mode_select.legacy;
  284. memset(rdac_pg, 0, data_size);
  285. common = &rdac_pg->common;
  286. rdac_pg->page_code = RDAC_PAGE_CODE_REDUNDANT_CONTROLLER;
  287. rdac_pg->page_len = 0x68;
  288. lun_table = rdac_pg->lun_table;
  289. }
  290. common->rdac_mode[1] = RDAC_MODE_TRANSFER_SPECIFIED_LUNS;
  291. common->quiescence_timeout = RDAC_QUIESCENCE_TIME;
  292. common->rdac_options = RDAC_FORCED_QUIESENCE;
  293. list_for_each_entry(qdata, list, entry) {
  294. lun_table[qdata->h->lun] = 0x81;
  295. }
  296. /* get request for block layer packet command */
  297. rq = get_rdac_req(sdev, &h->ctlr->mode_select, data_size, WRITE);
  298. if (!rq)
  299. return NULL;
  300. /* Prepare the command. */
  301. if (h->ctlr->use_ms10) {
  302. rq->cmd[0] = MODE_SELECT_10;
  303. rq->cmd[7] = data_size >> 8;
  304. rq->cmd[8] = data_size & 0xff;
  305. } else {
  306. rq->cmd[0] = MODE_SELECT;
  307. rq->cmd[4] = data_size;
  308. }
  309. rq->cmd_len = COMMAND_SIZE(rq->cmd[0]);
  310. rq->sense = h->sense;
  311. memset(rq->sense, 0, SCSI_SENSE_BUFFERSIZE);
  312. rq->sense_len = 0;
  313. return rq;
  314. }
  315. static void release_controller(struct kref *kref)
  316. {
  317. struct rdac_controller *ctlr;
  318. ctlr = container_of(kref, struct rdac_controller, kref);
  319. list_del(&ctlr->node);
  320. kfree(ctlr);
  321. }
  322. static struct rdac_controller *get_controller(int index, char *array_name,
  323. u8 *array_id, struct scsi_device *sdev)
  324. {
  325. struct rdac_controller *ctlr, *tmp;
  326. list_for_each_entry(tmp, &ctlr_list, node) {
  327. if ((memcmp(tmp->array_id, array_id, UNIQUE_ID_LEN) == 0) &&
  328. (tmp->index == index) &&
  329. (tmp->host == sdev->host)) {
  330. kref_get(&tmp->kref);
  331. return tmp;
  332. }
  333. }
  334. ctlr = kmalloc(sizeof(*ctlr), GFP_ATOMIC);
  335. if (!ctlr)
  336. return NULL;
  337. /* initialize fields of controller */
  338. memcpy(ctlr->array_id, array_id, UNIQUE_ID_LEN);
  339. ctlr->index = index;
  340. ctlr->host = sdev->host;
  341. memcpy(ctlr->array_name, array_name, ARRAY_LABEL_LEN);
  342. kref_init(&ctlr->kref);
  343. ctlr->use_ms10 = -1;
  344. ctlr->ms_queued = 0;
  345. ctlr->ms_sdev = NULL;
  346. spin_lock_init(&ctlr->ms_lock);
  347. INIT_WORK(&ctlr->ms_work, send_mode_select);
  348. INIT_LIST_HEAD(&ctlr->ms_head);
  349. list_add(&ctlr->node, &ctlr_list);
  350. return ctlr;
  351. }
  352. static int submit_inquiry(struct scsi_device *sdev, int page_code,
  353. unsigned int len, struct rdac_dh_data *h)
  354. {
  355. struct request *rq;
  356. struct request_queue *q = sdev->request_queue;
  357. int err = SCSI_DH_RES_TEMP_UNAVAIL;
  358. rq = get_rdac_req(sdev, &h->inq, len, READ);
  359. if (!rq)
  360. goto done;
  361. /* Prepare the command. */
  362. rq->cmd[0] = INQUIRY;
  363. rq->cmd[1] = 1;
  364. rq->cmd[2] = page_code;
  365. rq->cmd[4] = len;
  366. rq->cmd_len = COMMAND_SIZE(INQUIRY);
  367. rq->sense = h->sense;
  368. memset(rq->sense, 0, SCSI_SENSE_BUFFERSIZE);
  369. rq->sense_len = 0;
  370. err = blk_execute_rq(q, NULL, rq, 1);
  371. if (err == -EIO)
  372. err = SCSI_DH_IO;
  373. blk_put_request(rq);
  374. done:
  375. return err;
  376. }
  377. static int get_lun_info(struct scsi_device *sdev, struct rdac_dh_data *h,
  378. char *array_name, u8 *array_id)
  379. {
  380. int err, i;
  381. struct c8_inquiry *inqp;
  382. err = submit_inquiry(sdev, 0xC8, sizeof(struct c8_inquiry), h);
  383. if (err == SCSI_DH_OK) {
  384. inqp = &h->inq.c8;
  385. if (inqp->page_code != 0xc8)
  386. return SCSI_DH_NOSYS;
  387. if (inqp->page_id[0] != 'e' || inqp->page_id[1] != 'd' ||
  388. inqp->page_id[2] != 'i' || inqp->page_id[3] != 'd')
  389. return SCSI_DH_NOSYS;
  390. h->lun = inqp->lun[7]; /* Uses only the last byte */
  391. for(i=0; i<ARRAY_LABEL_LEN-1; ++i)
  392. *(array_name+i) = inqp->array_user_label[(2*i)+1];
  393. *(array_name+ARRAY_LABEL_LEN-1) = '\0';
  394. memset(array_id, 0, UNIQUE_ID_LEN);
  395. memcpy(array_id, inqp->array_unique_id, inqp->array_uniq_id_len);
  396. }
  397. return err;
  398. }
  399. static int check_ownership(struct scsi_device *sdev, struct rdac_dh_data *h)
  400. {
  401. int err;
  402. struct c9_inquiry *inqp;
  403. h->state = RDAC_STATE_ACTIVE;
  404. err = submit_inquiry(sdev, 0xC9, sizeof(struct c9_inquiry), h);
  405. if (err == SCSI_DH_OK) {
  406. inqp = &h->inq.c9;
  407. /* detect the operating mode */
  408. if ((inqp->avte_cvp >> 5) & 0x1)
  409. h->mode = RDAC_MODE_IOSHIP; /* LUN in IOSHIP mode */
  410. else if (inqp->avte_cvp >> 7)
  411. h->mode = RDAC_MODE_AVT; /* LUN in AVT mode */
  412. else
  413. h->mode = RDAC_MODE; /* LUN in RDAC mode */
  414. /* Update ownership */
  415. if (inqp->avte_cvp & 0x1)
  416. h->lun_state = RDAC_LUN_OWNED;
  417. else {
  418. h->lun_state = RDAC_LUN_UNOWNED;
  419. if (h->mode == RDAC_MODE)
  420. h->state = RDAC_STATE_PASSIVE;
  421. }
  422. /* Update path prio*/
  423. if (inqp->path_prio & 0x1)
  424. h->preferred = RDAC_PREFERRED;
  425. else
  426. h->preferred = RDAC_NON_PREFERRED;
  427. }
  428. return err;
  429. }
  430. static int initialize_controller(struct scsi_device *sdev,
  431. struct rdac_dh_data *h, char *array_name, u8 *array_id)
  432. {
  433. int err, index;
  434. struct c4_inquiry *inqp;
  435. err = submit_inquiry(sdev, 0xC4, sizeof(struct c4_inquiry), h);
  436. if (err == SCSI_DH_OK) {
  437. inqp = &h->inq.c4;
  438. /* get the controller index */
  439. if (inqp->slot_id[1] == 0x31)
  440. index = 0;
  441. else
  442. index = 1;
  443. spin_lock(&list_lock);
  444. h->ctlr = get_controller(index, array_name, array_id, sdev);
  445. if (!h->ctlr)
  446. err = SCSI_DH_RES_TEMP_UNAVAIL;
  447. spin_unlock(&list_lock);
  448. }
  449. return err;
  450. }
  451. static int set_mode_select(struct scsi_device *sdev, struct rdac_dh_data *h)
  452. {
  453. int err;
  454. struct c2_inquiry *inqp;
  455. err = submit_inquiry(sdev, 0xC2, sizeof(struct c2_inquiry), h);
  456. if (err == SCSI_DH_OK) {
  457. inqp = &h->inq.c2;
  458. /*
  459. * If more than MODE6_MAX_LUN luns are supported, use
  460. * mode select 10
  461. */
  462. if (inqp->max_lun_supported >= MODE6_MAX_LUN)
  463. h->ctlr->use_ms10 = 1;
  464. else
  465. h->ctlr->use_ms10 = 0;
  466. }
  467. return err;
  468. }
  469. static int mode_select_handle_sense(struct scsi_device *sdev,
  470. unsigned char *sensebuf)
  471. {
  472. struct scsi_sense_hdr sense_hdr;
  473. int err = SCSI_DH_IO, ret;
  474. struct rdac_dh_data *h = get_rdac_data(sdev);
  475. ret = scsi_normalize_sense(sensebuf, SCSI_SENSE_BUFFERSIZE, &sense_hdr);
  476. if (!ret)
  477. goto done;
  478. switch (sense_hdr.sense_key) {
  479. case NO_SENSE:
  480. case ABORTED_COMMAND:
  481. case UNIT_ATTENTION:
  482. err = SCSI_DH_RETRY;
  483. break;
  484. case NOT_READY:
  485. if (sense_hdr.asc == 0x04 && sense_hdr.ascq == 0x01)
  486. /* LUN Not Ready and is in the Process of Becoming
  487. * Ready
  488. */
  489. err = SCSI_DH_RETRY;
  490. break;
  491. case ILLEGAL_REQUEST:
  492. if (sense_hdr.asc == 0x91 && sense_hdr.ascq == 0x36)
  493. /*
  494. * Command Lock contention
  495. */
  496. err = SCSI_DH_RETRY;
  497. break;
  498. default:
  499. break;
  500. }
  501. RDAC_LOG(RDAC_LOG_FAILOVER, sdev, "array %s, ctlr %d, "
  502. "MODE_SELECT returned with sense %02x/%02x/%02x",
  503. (char *) h->ctlr->array_name, h->ctlr->index,
  504. sense_hdr.sense_key, sense_hdr.asc, sense_hdr.ascq);
  505. done:
  506. return err;
  507. }
  508. static void send_mode_select(struct work_struct *work)
  509. {
  510. struct rdac_controller *ctlr =
  511. container_of(work, struct rdac_controller, ms_work);
  512. struct request *rq;
  513. struct scsi_device *sdev = ctlr->ms_sdev;
  514. struct rdac_dh_data *h = get_rdac_data(sdev);
  515. struct request_queue *q = sdev->request_queue;
  516. int err, retry_cnt = RDAC_RETRY_COUNT;
  517. struct rdac_queue_data *tmp, *qdata;
  518. LIST_HEAD(list);
  519. spin_lock(&ctlr->ms_lock);
  520. list_splice_init(&ctlr->ms_head, &list);
  521. ctlr->ms_queued = 0;
  522. ctlr->ms_sdev = NULL;
  523. spin_unlock(&ctlr->ms_lock);
  524. retry:
  525. err = SCSI_DH_RES_TEMP_UNAVAIL;
  526. rq = rdac_failover_get(sdev, h, &list);
  527. if (!rq)
  528. goto done;
  529. RDAC_LOG(RDAC_LOG_FAILOVER, sdev, "array %s, ctlr %d, "
  530. "%s MODE_SELECT command",
  531. (char *) h->ctlr->array_name, h->ctlr->index,
  532. (retry_cnt == RDAC_RETRY_COUNT) ? "queueing" : "retrying");
  533. err = blk_execute_rq(q, NULL, rq, 1);
  534. blk_put_request(rq);
  535. if (err != SCSI_DH_OK) {
  536. err = mode_select_handle_sense(sdev, h->sense);
  537. if (err == SCSI_DH_RETRY && retry_cnt--)
  538. goto retry;
  539. }
  540. if (err == SCSI_DH_OK) {
  541. h->state = RDAC_STATE_ACTIVE;
  542. RDAC_LOG(RDAC_LOG_FAILOVER, sdev, "array %s, ctlr %d, "
  543. "MODE_SELECT completed",
  544. (char *) h->ctlr->array_name, h->ctlr->index);
  545. }
  546. done:
  547. list_for_each_entry_safe(qdata, tmp, &list, entry) {
  548. list_del(&qdata->entry);
  549. if (err == SCSI_DH_OK)
  550. qdata->h->state = RDAC_STATE_ACTIVE;
  551. if (qdata->callback_fn)
  552. qdata->callback_fn(qdata->callback_data, err);
  553. kfree(qdata);
  554. }
  555. return;
  556. }
  557. static int queue_mode_select(struct scsi_device *sdev,
  558. activate_complete fn, void *data)
  559. {
  560. struct rdac_queue_data *qdata;
  561. struct rdac_controller *ctlr;
  562. qdata = kzalloc(sizeof(*qdata), GFP_KERNEL);
  563. if (!qdata)
  564. return SCSI_DH_RETRY;
  565. qdata->h = get_rdac_data(sdev);
  566. qdata->callback_fn = fn;
  567. qdata->callback_data = data;
  568. ctlr = qdata->h->ctlr;
  569. spin_lock(&ctlr->ms_lock);
  570. list_add_tail(&qdata->entry, &ctlr->ms_head);
  571. if (!ctlr->ms_queued) {
  572. ctlr->ms_queued = 1;
  573. ctlr->ms_sdev = sdev;
  574. queue_work(kmpath_rdacd, &ctlr->ms_work);
  575. }
  576. spin_unlock(&ctlr->ms_lock);
  577. return SCSI_DH_OK;
  578. }
  579. static int rdac_activate(struct scsi_device *sdev,
  580. activate_complete fn, void *data)
  581. {
  582. struct rdac_dh_data *h = get_rdac_data(sdev);
  583. int err = SCSI_DH_OK;
  584. int act = 0;
  585. err = check_ownership(sdev, h);
  586. if (err != SCSI_DH_OK)
  587. goto done;
  588. switch (h->mode) {
  589. case RDAC_MODE:
  590. if (h->lun_state == RDAC_LUN_UNOWNED)
  591. act = 1;
  592. break;
  593. case RDAC_MODE_IOSHIP:
  594. if ((h->lun_state == RDAC_LUN_UNOWNED) &&
  595. (h->preferred == RDAC_PREFERRED))
  596. act = 1;
  597. break;
  598. default:
  599. break;
  600. }
  601. if (act) {
  602. err = queue_mode_select(sdev, fn, data);
  603. if (err == SCSI_DH_OK)
  604. return 0;
  605. }
  606. done:
  607. if (fn)
  608. fn(data, err);
  609. return 0;
  610. }
  611. static int rdac_prep_fn(struct scsi_device *sdev, struct request *req)
  612. {
  613. struct rdac_dh_data *h = get_rdac_data(sdev);
  614. int ret = BLKPREP_OK;
  615. if (h->state != RDAC_STATE_ACTIVE) {
  616. ret = BLKPREP_KILL;
  617. req->cmd_flags |= REQ_QUIET;
  618. }
  619. return ret;
  620. }
  621. static int rdac_check_sense(struct scsi_device *sdev,
  622. struct scsi_sense_hdr *sense_hdr)
  623. {
  624. struct rdac_dh_data *h = get_rdac_data(sdev);
  625. RDAC_LOG(RDAC_LOG_SENSE, sdev, "array %s, ctlr %d, "
  626. "I/O returned with sense %02x/%02x/%02x",
  627. (char *) h->ctlr->array_name, h->ctlr->index,
  628. sense_hdr->sense_key, sense_hdr->asc, sense_hdr->ascq);
  629. switch (sense_hdr->sense_key) {
  630. case NOT_READY:
  631. if (sense_hdr->asc == 0x04 && sense_hdr->ascq == 0x01)
  632. /* LUN Not Ready - Logical Unit Not Ready and is in
  633. * the process of becoming ready
  634. * Just retry.
  635. */
  636. return ADD_TO_MLQUEUE;
  637. if (sense_hdr->asc == 0x04 && sense_hdr->ascq == 0x81)
  638. /* LUN Not Ready - Storage firmware incompatible
  639. * Manual code synchonisation required.
  640. *
  641. * Nothing we can do here. Try to bypass the path.
  642. */
  643. return SUCCESS;
  644. if (sense_hdr->asc == 0x04 && sense_hdr->ascq == 0xA1)
  645. /* LUN Not Ready - Quiescense in progress
  646. *
  647. * Just retry and wait.
  648. */
  649. return ADD_TO_MLQUEUE;
  650. if (sense_hdr->asc == 0xA1 && sense_hdr->ascq == 0x02)
  651. /* LUN Not Ready - Quiescense in progress
  652. * or has been achieved
  653. * Just retry.
  654. */
  655. return ADD_TO_MLQUEUE;
  656. break;
  657. case ILLEGAL_REQUEST:
  658. if (sense_hdr->asc == 0x94 && sense_hdr->ascq == 0x01) {
  659. /* Invalid Request - Current Logical Unit Ownership.
  660. * Controller is not the current owner of the LUN,
  661. * Fail the path, so that the other path be used.
  662. */
  663. h->state = RDAC_STATE_PASSIVE;
  664. return SUCCESS;
  665. }
  666. break;
  667. case UNIT_ATTENTION:
  668. if (sense_hdr->asc == 0x29 && sense_hdr->ascq == 0x00)
  669. /*
  670. * Power On, Reset, or Bus Device Reset, just retry.
  671. */
  672. return ADD_TO_MLQUEUE;
  673. if (sense_hdr->asc == 0x8b && sense_hdr->ascq == 0x02)
  674. /*
  675. * Quiescence in progress , just retry.
  676. */
  677. return ADD_TO_MLQUEUE;
  678. break;
  679. }
  680. /* success just means we do not care what scsi-ml does */
  681. return SCSI_RETURN_NOT_HANDLED;
  682. }
  683. static const struct scsi_dh_devlist rdac_dev_list[] = {
  684. {"IBM", "1722"},
  685. {"IBM", "1724"},
  686. {"IBM", "1726"},
  687. {"IBM", "1742"},
  688. {"IBM", "1745"},
  689. {"IBM", "1746"},
  690. {"IBM", "1814"},
  691. {"IBM", "1815"},
  692. {"IBM", "1818"},
  693. {"IBM", "3526"},
  694. {"SGI", "TP9400"},
  695. {"SGI", "TP9500"},
  696. {"SGI", "TP9700"},
  697. {"SGI", "IS"},
  698. {"STK", "OPENstorage D280"},
  699. {"SUN", "CSM200_R"},
  700. {"SUN", "LCSM100_I"},
  701. {"SUN", "LCSM100_S"},
  702. {"SUN", "LCSM100_E"},
  703. {"SUN", "LCSM100_F"},
  704. {"DELL", "MD3000"},
  705. {"DELL", "MD3000i"},
  706. {"DELL", "MD32xx"},
  707. {"DELL", "MD32xxi"},
  708. {"DELL", "MD36xxi"},
  709. {"DELL", "MD36xxf"},
  710. {"LSI", "INF-01-00"},
  711. {"ENGENIO", "INF-01-00"},
  712. {"STK", "FLEXLINE 380"},
  713. {"SUN", "CSM100_R_FC"},
  714. {"SUN", "STK6580_6780"},
  715. {"SUN", "SUN_6180"},
  716. {"SUN", "ArrayStorage"},
  717. {NULL, NULL},
  718. };
  719. static bool rdac_match(struct scsi_device *sdev)
  720. {
  721. int i;
  722. if (scsi_device_tpgs(sdev))
  723. return false;
  724. for (i = 0; rdac_dev_list[i].vendor; i++) {
  725. if (!strncmp(sdev->vendor, rdac_dev_list[i].vendor,
  726. strlen(rdac_dev_list[i].vendor)) &&
  727. !strncmp(sdev->model, rdac_dev_list[i].model,
  728. strlen(rdac_dev_list[i].model))) {
  729. return true;
  730. }
  731. }
  732. return false;
  733. }
  734. static int rdac_bus_attach(struct scsi_device *sdev);
  735. static void rdac_bus_detach(struct scsi_device *sdev);
  736. static struct scsi_device_handler rdac_dh = {
  737. .name = RDAC_NAME,
  738. .module = THIS_MODULE,
  739. .devlist = rdac_dev_list,
  740. .prep_fn = rdac_prep_fn,
  741. .check_sense = rdac_check_sense,
  742. .attach = rdac_bus_attach,
  743. .detach = rdac_bus_detach,
  744. .activate = rdac_activate,
  745. .match = rdac_match,
  746. };
  747. static int rdac_bus_attach(struct scsi_device *sdev)
  748. {
  749. struct scsi_dh_data *scsi_dh_data;
  750. struct rdac_dh_data *h;
  751. unsigned long flags;
  752. int err;
  753. char array_name[ARRAY_LABEL_LEN];
  754. char array_id[UNIQUE_ID_LEN];
  755. scsi_dh_data = kzalloc(sizeof(*scsi_dh_data)
  756. + sizeof(*h) , GFP_KERNEL);
  757. if (!scsi_dh_data) {
  758. sdev_printk(KERN_ERR, sdev, "%s: Attach failed\n",
  759. RDAC_NAME);
  760. return 0;
  761. }
  762. scsi_dh_data->scsi_dh = &rdac_dh;
  763. h = (struct rdac_dh_data *) scsi_dh_data->buf;
  764. h->lun = UNINITIALIZED_LUN;
  765. h->state = RDAC_STATE_ACTIVE;
  766. err = get_lun_info(sdev, h, array_name, array_id);
  767. if (err != SCSI_DH_OK)
  768. goto failed;
  769. err = initialize_controller(sdev, h, array_name, array_id);
  770. if (err != SCSI_DH_OK)
  771. goto failed;
  772. err = check_ownership(sdev, h);
  773. if (err != SCSI_DH_OK)
  774. goto clean_ctlr;
  775. err = set_mode_select(sdev, h);
  776. if (err != SCSI_DH_OK)
  777. goto clean_ctlr;
  778. if (!try_module_get(THIS_MODULE))
  779. goto clean_ctlr;
  780. spin_lock_irqsave(sdev->request_queue->queue_lock, flags);
  781. sdev->scsi_dh_data = scsi_dh_data;
  782. spin_unlock_irqrestore(sdev->request_queue->queue_lock, flags);
  783. sdev_printk(KERN_NOTICE, sdev,
  784. "%s: LUN %d (%s) (%s)\n",
  785. RDAC_NAME, h->lun, mode[(int)h->mode],
  786. lun_state[(int)h->lun_state]);
  787. return 0;
  788. clean_ctlr:
  789. spin_lock(&list_lock);
  790. kref_put(&h->ctlr->kref, release_controller);
  791. spin_unlock(&list_lock);
  792. failed:
  793. kfree(scsi_dh_data);
  794. sdev_printk(KERN_ERR, sdev, "%s: not attached\n",
  795. RDAC_NAME);
  796. return -EINVAL;
  797. }
  798. static void rdac_bus_detach( struct scsi_device *sdev )
  799. {
  800. struct scsi_dh_data *scsi_dh_data;
  801. struct rdac_dh_data *h;
  802. unsigned long flags;
  803. scsi_dh_data = sdev->scsi_dh_data;
  804. h = (struct rdac_dh_data *) scsi_dh_data->buf;
  805. if (h->ctlr && h->ctlr->ms_queued)
  806. flush_workqueue(kmpath_rdacd);
  807. spin_lock_irqsave(sdev->request_queue->queue_lock, flags);
  808. sdev->scsi_dh_data = NULL;
  809. spin_unlock_irqrestore(sdev->request_queue->queue_lock, flags);
  810. spin_lock(&list_lock);
  811. if (h->ctlr)
  812. kref_put(&h->ctlr->kref, release_controller);
  813. spin_unlock(&list_lock);
  814. kfree(scsi_dh_data);
  815. module_put(THIS_MODULE);
  816. sdev_printk(KERN_NOTICE, sdev, "%s: Detached\n", RDAC_NAME);
  817. }
  818. static int __init rdac_init(void)
  819. {
  820. int r;
  821. r = scsi_register_device_handler(&rdac_dh);
  822. if (r != 0) {
  823. printk(KERN_ERR "Failed to register scsi device handler.");
  824. goto done;
  825. }
  826. /*
  827. * Create workqueue to handle mode selects for rdac
  828. */
  829. kmpath_rdacd = create_singlethread_workqueue("kmpath_rdacd");
  830. if (!kmpath_rdacd) {
  831. scsi_unregister_device_handler(&rdac_dh);
  832. printk(KERN_ERR "kmpath_rdacd creation failed.\n");
  833. r = -EINVAL;
  834. }
  835. done:
  836. return r;
  837. }
  838. static void __exit rdac_exit(void)
  839. {
  840. destroy_workqueue(kmpath_rdacd);
  841. scsi_unregister_device_handler(&rdac_dh);
  842. }
  843. module_init(rdac_init);
  844. module_exit(rdac_exit);
  845. MODULE_DESCRIPTION("Multipath LSI/Engenio/NetApp E-Series RDAC driver");
  846. MODULE_AUTHOR("Mike Christie, Chandra Seetharaman");
  847. MODULE_VERSION("01.00.0000.0000");
  848. MODULE_LICENSE("GPL");