mpt2sas_scsih.c 187 KB

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  1. /*
  2. * Scsi Host Layer for MPT (Message Passing Technology) based controllers
  3. *
  4. * This code is based on drivers/scsi/mpt2sas/mpt2_scsih.c
  5. * Copyright (C) 2007-2009 LSI Corporation
  6. * (mailto:DL-MPTFusionLinux@lsi.com)
  7. *
  8. * This program is free software; you can redistribute it and/or
  9. * modify it under the terms of the GNU General Public License
  10. * as published by the Free Software Foundation; either version 2
  11. * of the License, or (at your option) any later version.
  12. *
  13. * This program is distributed in the hope that it will be useful,
  14. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  15. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  16. * GNU General Public License for more details.
  17. *
  18. * NO WARRANTY
  19. * THE PROGRAM IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OR
  20. * CONDITIONS OF ANY KIND, EITHER EXPRESS OR IMPLIED INCLUDING, WITHOUT
  21. * LIMITATION, ANY WARRANTIES OR CONDITIONS OF TITLE, NON-INFRINGEMENT,
  22. * MERCHANTABILITY OR FITNESS FOR A PARTICULAR PURPOSE. Each Recipient is
  23. * solely responsible for determining the appropriateness of using and
  24. * distributing the Program and assumes all risks associated with its
  25. * exercise of rights under this Agreement, including but not limited to
  26. * the risks and costs of program errors, damage to or loss of data,
  27. * programs or equipment, and unavailability or interruption of operations.
  28. * DISCLAIMER OF LIABILITY
  29. * NEITHER RECIPIENT NOR ANY CONTRIBUTORS SHALL HAVE ANY LIABILITY FOR ANY
  30. * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
  31. * DAMAGES (INCLUDING WITHOUT LIMITATION LOST PROFITS), HOWEVER CAUSED AND
  32. * ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR
  33. * TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE
  34. * USE OR DISTRIBUTION OF THE PROGRAM OR THE EXERCISE OF ANY RIGHTS GRANTED
  35. * HEREUNDER, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGES
  36. * You should have received a copy of the GNU General Public License
  37. * along with this program; if not, write to the Free Software
  38. * Foundation, Inc., 51 Franklin Street, Fifth Floor, Boston, MA 02110-1301,
  39. * USA.
  40. */
  41. #include <linux/version.h>
  42. #include <linux/module.h>
  43. #include <linux/kernel.h>
  44. #include <linux/init.h>
  45. #include <linux/errno.h>
  46. #include <linux/blkdev.h>
  47. #include <linux/sched.h>
  48. #include <linux/workqueue.h>
  49. #include <linux/delay.h>
  50. #include <linux/pci.h>
  51. #include <linux/interrupt.h>
  52. #include <linux/raid_class.h>
  53. #include <linux/slab.h>
  54. #include "mpt2sas_base.h"
  55. MODULE_AUTHOR(MPT2SAS_AUTHOR);
  56. MODULE_DESCRIPTION(MPT2SAS_DESCRIPTION);
  57. MODULE_LICENSE("GPL");
  58. MODULE_VERSION(MPT2SAS_DRIVER_VERSION);
  59. #define RAID_CHANNEL 1
  60. /* forward proto's */
  61. static void _scsih_expander_node_remove(struct MPT2SAS_ADAPTER *ioc,
  62. struct _sas_node *sas_expander);
  63. static void _firmware_event_work(struct work_struct *work);
  64. /* global parameters */
  65. LIST_HEAD(mpt2sas_ioc_list);
  66. /* local parameters */
  67. static u8 scsi_io_cb_idx = -1;
  68. static u8 tm_cb_idx = -1;
  69. static u8 ctl_cb_idx = -1;
  70. static u8 base_cb_idx = -1;
  71. static u8 transport_cb_idx = -1;
  72. static u8 scsih_cb_idx = -1;
  73. static u8 config_cb_idx = -1;
  74. static int mpt_ids;
  75. static u8 tm_tr_cb_idx = -1 ;
  76. static u8 tm_sas_control_cb_idx = -1;
  77. /* command line options */
  78. static u32 logging_level;
  79. MODULE_PARM_DESC(logging_level, " bits for enabling additional logging info "
  80. "(default=0)");
  81. /* scsi-mid layer global parmeter is max_report_luns, which is 511 */
  82. #define MPT2SAS_MAX_LUN (16895)
  83. static int max_lun = MPT2SAS_MAX_LUN;
  84. module_param(max_lun, int, 0);
  85. MODULE_PARM_DESC(max_lun, " max lun, default=16895 ");
  86. /**
  87. * struct sense_info - common structure for obtaining sense keys
  88. * @skey: sense key
  89. * @asc: additional sense code
  90. * @ascq: additional sense code qualifier
  91. */
  92. struct sense_info {
  93. u8 skey;
  94. u8 asc;
  95. u8 ascq;
  96. };
  97. #define MPT2SAS_RESCAN_AFTER_HOST_RESET (0xFFFF)
  98. /**
  99. * struct fw_event_work - firmware event struct
  100. * @list: link list framework
  101. * @work: work object (ioc->fault_reset_work_q)
  102. * @cancel_pending_work: flag set during reset handling
  103. * @ioc: per adapter object
  104. * @VF_ID: virtual function id
  105. * @VP_ID: virtual port id
  106. * @ignore: flag meaning this event has been marked to ignore
  107. * @event: firmware event MPI2_EVENT_XXX defined in mpt2_ioc.h
  108. * @event_data: reply event data payload follows
  109. *
  110. * This object stored on ioc->fw_event_list.
  111. */
  112. struct fw_event_work {
  113. struct list_head list;
  114. u8 cancel_pending_work;
  115. struct delayed_work delayed_work;
  116. struct MPT2SAS_ADAPTER *ioc;
  117. u8 VF_ID;
  118. u8 VP_ID;
  119. u8 ignore;
  120. u16 event;
  121. void *event_data;
  122. };
  123. /* raid transport support */
  124. static struct raid_template *mpt2sas_raid_template;
  125. /**
  126. * struct _scsi_io_transfer - scsi io transfer
  127. * @handle: sas device handle (assigned by firmware)
  128. * @is_raid: flag set for hidden raid components
  129. * @dir: DMA_TO_DEVICE, DMA_FROM_DEVICE,
  130. * @data_length: data transfer length
  131. * @data_dma: dma pointer to data
  132. * @sense: sense data
  133. * @lun: lun number
  134. * @cdb_length: cdb length
  135. * @cdb: cdb contents
  136. * @timeout: timeout for this command
  137. * @VF_ID: virtual function id
  138. * @VP_ID: virtual port id
  139. * @valid_reply: flag set for reply message
  140. * @sense_length: sense length
  141. * @ioc_status: ioc status
  142. * @scsi_state: scsi state
  143. * @scsi_status: scsi staus
  144. * @log_info: log information
  145. * @transfer_length: data length transfer when there is a reply message
  146. *
  147. * Used for sending internal scsi commands to devices within this module.
  148. * Refer to _scsi_send_scsi_io().
  149. */
  150. struct _scsi_io_transfer {
  151. u16 handle;
  152. u8 is_raid;
  153. enum dma_data_direction dir;
  154. u32 data_length;
  155. dma_addr_t data_dma;
  156. u8 sense[SCSI_SENSE_BUFFERSIZE];
  157. u32 lun;
  158. u8 cdb_length;
  159. u8 cdb[32];
  160. u8 timeout;
  161. u8 VF_ID;
  162. u8 VP_ID;
  163. u8 valid_reply;
  164. /* the following bits are only valid when 'valid_reply = 1' */
  165. u32 sense_length;
  166. u16 ioc_status;
  167. u8 scsi_state;
  168. u8 scsi_status;
  169. u32 log_info;
  170. u32 transfer_length;
  171. };
  172. /*
  173. * The pci device ids are defined in mpi/mpi2_cnfg.h.
  174. */
  175. static struct pci_device_id scsih_pci_table[] = {
  176. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2004,
  177. PCI_ANY_ID, PCI_ANY_ID },
  178. /* Falcon ~ 2008*/
  179. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2008,
  180. PCI_ANY_ID, PCI_ANY_ID },
  181. /* Liberator ~ 2108 */
  182. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2108_1,
  183. PCI_ANY_ID, PCI_ANY_ID },
  184. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2108_2,
  185. PCI_ANY_ID, PCI_ANY_ID },
  186. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2108_3,
  187. PCI_ANY_ID, PCI_ANY_ID },
  188. /* Meteor ~ 2116 */
  189. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2116_1,
  190. PCI_ANY_ID, PCI_ANY_ID },
  191. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2116_2,
  192. PCI_ANY_ID, PCI_ANY_ID },
  193. /* Thunderbolt ~ 2208 */
  194. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_1,
  195. PCI_ANY_ID, PCI_ANY_ID },
  196. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_2,
  197. PCI_ANY_ID, PCI_ANY_ID },
  198. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_3,
  199. PCI_ANY_ID, PCI_ANY_ID },
  200. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_4,
  201. PCI_ANY_ID, PCI_ANY_ID },
  202. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_5,
  203. PCI_ANY_ID, PCI_ANY_ID },
  204. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_6,
  205. PCI_ANY_ID, PCI_ANY_ID },
  206. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_7,
  207. PCI_ANY_ID, PCI_ANY_ID },
  208. { MPI2_MFGPAGE_VENDORID_LSI, MPI2_MFGPAGE_DEVID_SAS2208_8,
  209. PCI_ANY_ID, PCI_ANY_ID },
  210. {0} /* Terminating entry */
  211. };
  212. MODULE_DEVICE_TABLE(pci, scsih_pci_table);
  213. /**
  214. * _scsih_set_debug_level - global setting of ioc->logging_level.
  215. *
  216. * Note: The logging levels are defined in mpt2sas_debug.h.
  217. */
  218. static int
  219. _scsih_set_debug_level(const char *val, struct kernel_param *kp)
  220. {
  221. int ret = param_set_int(val, kp);
  222. struct MPT2SAS_ADAPTER *ioc;
  223. if (ret)
  224. return ret;
  225. printk(KERN_INFO "setting logging_level(0x%08x)\n", logging_level);
  226. list_for_each_entry(ioc, &mpt2sas_ioc_list, list)
  227. ioc->logging_level = logging_level;
  228. return 0;
  229. }
  230. module_param_call(logging_level, _scsih_set_debug_level, param_get_int,
  231. &logging_level, 0644);
  232. /**
  233. * _scsih_srch_boot_sas_address - search based on sas_address
  234. * @sas_address: sas address
  235. * @boot_device: boot device object from bios page 2
  236. *
  237. * Returns 1 when there's a match, 0 means no match.
  238. */
  239. static inline int
  240. _scsih_srch_boot_sas_address(u64 sas_address,
  241. Mpi2BootDeviceSasWwid_t *boot_device)
  242. {
  243. return (sas_address == le64_to_cpu(boot_device->SASAddress)) ? 1 : 0;
  244. }
  245. /**
  246. * _scsih_srch_boot_device_name - search based on device name
  247. * @device_name: device name specified in INDENTIFY fram
  248. * @boot_device: boot device object from bios page 2
  249. *
  250. * Returns 1 when there's a match, 0 means no match.
  251. */
  252. static inline int
  253. _scsih_srch_boot_device_name(u64 device_name,
  254. Mpi2BootDeviceDeviceName_t *boot_device)
  255. {
  256. return (device_name == le64_to_cpu(boot_device->DeviceName)) ? 1 : 0;
  257. }
  258. /**
  259. * _scsih_srch_boot_encl_slot - search based on enclosure_logical_id/slot
  260. * @enclosure_logical_id: enclosure logical id
  261. * @slot_number: slot number
  262. * @boot_device: boot device object from bios page 2
  263. *
  264. * Returns 1 when there's a match, 0 means no match.
  265. */
  266. static inline int
  267. _scsih_srch_boot_encl_slot(u64 enclosure_logical_id, u16 slot_number,
  268. Mpi2BootDeviceEnclosureSlot_t *boot_device)
  269. {
  270. return (enclosure_logical_id == le64_to_cpu(boot_device->
  271. EnclosureLogicalID) && slot_number == le16_to_cpu(boot_device->
  272. SlotNumber)) ? 1 : 0;
  273. }
  274. /**
  275. * _scsih_is_boot_device - search for matching boot device.
  276. * @sas_address: sas address
  277. * @device_name: device name specified in INDENTIFY fram
  278. * @enclosure_logical_id: enclosure logical id
  279. * @slot_number: slot number
  280. * @form: specifies boot device form
  281. * @boot_device: boot device object from bios page 2
  282. *
  283. * Returns 1 when there's a match, 0 means no match.
  284. */
  285. static int
  286. _scsih_is_boot_device(u64 sas_address, u64 device_name,
  287. u64 enclosure_logical_id, u16 slot, u8 form,
  288. Mpi2BiosPage2BootDevice_t *boot_device)
  289. {
  290. int rc = 0;
  291. switch (form) {
  292. case MPI2_BIOSPAGE2_FORM_SAS_WWID:
  293. if (!sas_address)
  294. break;
  295. rc = _scsih_srch_boot_sas_address(
  296. sas_address, &boot_device->SasWwid);
  297. break;
  298. case MPI2_BIOSPAGE2_FORM_ENCLOSURE_SLOT:
  299. if (!enclosure_logical_id)
  300. break;
  301. rc = _scsih_srch_boot_encl_slot(
  302. enclosure_logical_id,
  303. slot, &boot_device->EnclosureSlot);
  304. break;
  305. case MPI2_BIOSPAGE2_FORM_DEVICE_NAME:
  306. if (!device_name)
  307. break;
  308. rc = _scsih_srch_boot_device_name(
  309. device_name, &boot_device->DeviceName);
  310. break;
  311. case MPI2_BIOSPAGE2_FORM_NO_DEVICE_SPECIFIED:
  312. break;
  313. }
  314. return rc;
  315. }
  316. /**
  317. * _scsih_get_sas_address - set the sas_address for given device handle
  318. * @handle: device handle
  319. * @sas_address: sas address
  320. *
  321. * Returns 0 success, non-zero when failure
  322. */
  323. static int
  324. _scsih_get_sas_address(struct MPT2SAS_ADAPTER *ioc, u16 handle,
  325. u64 *sas_address)
  326. {
  327. Mpi2SasDevicePage0_t sas_device_pg0;
  328. Mpi2ConfigReply_t mpi_reply;
  329. u32 ioc_status;
  330. if (handle <= ioc->sas_hba.num_phys) {
  331. *sas_address = ioc->sas_hba.sas_address;
  332. return 0;
  333. } else
  334. *sas_address = 0;
  335. if ((mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply, &sas_device_pg0,
  336. MPI2_SAS_DEVICE_PGAD_FORM_HANDLE, handle))) {
  337. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  338. ioc->name, __FILE__, __LINE__, __func__);
  339. return -ENXIO;
  340. }
  341. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  342. MPI2_IOCSTATUS_MASK;
  343. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  344. printk(MPT2SAS_ERR_FMT "handle(0x%04x), ioc_status(0x%04x)"
  345. "\nfailure at %s:%d/%s()!\n", ioc->name, handle, ioc_status,
  346. __FILE__, __LINE__, __func__);
  347. return -EIO;
  348. }
  349. *sas_address = le64_to_cpu(sas_device_pg0.SASAddress);
  350. return 0;
  351. }
  352. /**
  353. * _scsih_determine_boot_device - determine boot device.
  354. * @ioc: per adapter object
  355. * @device: either sas_device or raid_device object
  356. * @is_raid: [flag] 1 = raid object, 0 = sas object
  357. *
  358. * Determines whether this device should be first reported device to
  359. * to scsi-ml or sas transport, this purpose is for persistant boot device.
  360. * There are primary, alternate, and current entries in bios page 2. The order
  361. * priority is primary, alternate, then current. This routine saves
  362. * the corresponding device object and is_raid flag in the ioc object.
  363. * The saved data to be used later in _scsih_probe_boot_devices().
  364. */
  365. static void
  366. _scsih_determine_boot_device(struct MPT2SAS_ADAPTER *ioc,
  367. void *device, u8 is_raid)
  368. {
  369. struct _sas_device *sas_device;
  370. struct _raid_device *raid_device;
  371. u64 sas_address;
  372. u64 device_name;
  373. u64 enclosure_logical_id;
  374. u16 slot;
  375. /* only process this function when driver loads */
  376. if (!ioc->wait_for_port_enable_to_complete)
  377. return;
  378. if (!is_raid) {
  379. sas_device = device;
  380. sas_address = sas_device->sas_address;
  381. device_name = sas_device->device_name;
  382. enclosure_logical_id = sas_device->enclosure_logical_id;
  383. slot = sas_device->slot;
  384. } else {
  385. raid_device = device;
  386. sas_address = raid_device->wwid;
  387. device_name = 0;
  388. enclosure_logical_id = 0;
  389. slot = 0;
  390. }
  391. if (!ioc->req_boot_device.device) {
  392. if (_scsih_is_boot_device(sas_address, device_name,
  393. enclosure_logical_id, slot,
  394. (ioc->bios_pg2.ReqBootDeviceForm &
  395. MPI2_BIOSPAGE2_FORM_MASK),
  396. &ioc->bios_pg2.RequestedBootDevice)) {
  397. dinitprintk(ioc, printk(MPT2SAS_DEBUG_FMT
  398. "%s: req_boot_device(0x%016llx)\n",
  399. ioc->name, __func__,
  400. (unsigned long long)sas_address));
  401. ioc->req_boot_device.device = device;
  402. ioc->req_boot_device.is_raid = is_raid;
  403. }
  404. }
  405. if (!ioc->req_alt_boot_device.device) {
  406. if (_scsih_is_boot_device(sas_address, device_name,
  407. enclosure_logical_id, slot,
  408. (ioc->bios_pg2.ReqAltBootDeviceForm &
  409. MPI2_BIOSPAGE2_FORM_MASK),
  410. &ioc->bios_pg2.RequestedAltBootDevice)) {
  411. dinitprintk(ioc, printk(MPT2SAS_DEBUG_FMT
  412. "%s: req_alt_boot_device(0x%016llx)\n",
  413. ioc->name, __func__,
  414. (unsigned long long)sas_address));
  415. ioc->req_alt_boot_device.device = device;
  416. ioc->req_alt_boot_device.is_raid = is_raid;
  417. }
  418. }
  419. if (!ioc->current_boot_device.device) {
  420. if (_scsih_is_boot_device(sas_address, device_name,
  421. enclosure_logical_id, slot,
  422. (ioc->bios_pg2.CurrentBootDeviceForm &
  423. MPI2_BIOSPAGE2_FORM_MASK),
  424. &ioc->bios_pg2.CurrentBootDevice)) {
  425. dinitprintk(ioc, printk(MPT2SAS_DEBUG_FMT
  426. "%s: current_boot_device(0x%016llx)\n",
  427. ioc->name, __func__,
  428. (unsigned long long)sas_address));
  429. ioc->current_boot_device.device = device;
  430. ioc->current_boot_device.is_raid = is_raid;
  431. }
  432. }
  433. }
  434. /**
  435. * mpt2sas_scsih_sas_device_find_by_sas_address - sas device search
  436. * @ioc: per adapter object
  437. * @sas_address: sas address
  438. * Context: Calling function should acquire ioc->sas_device_lock
  439. *
  440. * This searches for sas_device based on sas_address, then return sas_device
  441. * object.
  442. */
  443. struct _sas_device *
  444. mpt2sas_scsih_sas_device_find_by_sas_address(struct MPT2SAS_ADAPTER *ioc,
  445. u64 sas_address)
  446. {
  447. struct _sas_device *sas_device;
  448. list_for_each_entry(sas_device, &ioc->sas_device_list, list)
  449. if (sas_device->sas_address == sas_address)
  450. return sas_device;
  451. list_for_each_entry(sas_device, &ioc->sas_device_init_list, list)
  452. if (sas_device->sas_address == sas_address)
  453. return sas_device;
  454. return NULL;
  455. }
  456. /**
  457. * _scsih_sas_device_find_by_handle - sas device search
  458. * @ioc: per adapter object
  459. * @handle: sas device handle (assigned by firmware)
  460. * Context: Calling function should acquire ioc->sas_device_lock
  461. *
  462. * This searches for sas_device based on sas_address, then return sas_device
  463. * object.
  464. */
  465. static struct _sas_device *
  466. _scsih_sas_device_find_by_handle(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  467. {
  468. struct _sas_device *sas_device;
  469. list_for_each_entry(sas_device, &ioc->sas_device_list, list)
  470. if (sas_device->handle == handle)
  471. return sas_device;
  472. list_for_each_entry(sas_device, &ioc->sas_device_init_list, list)
  473. if (sas_device->handle == handle)
  474. return sas_device;
  475. return NULL;
  476. }
  477. /**
  478. * _scsih_sas_device_remove - remove sas_device from list.
  479. * @ioc: per adapter object
  480. * @sas_device: the sas_device object
  481. * Context: This function will acquire ioc->sas_device_lock.
  482. *
  483. * Removing object and freeing associated memory from the ioc->sas_device_list.
  484. */
  485. static void
  486. _scsih_sas_device_remove(struct MPT2SAS_ADAPTER *ioc,
  487. struct _sas_device *sas_device)
  488. {
  489. unsigned long flags;
  490. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  491. list_del(&sas_device->list);
  492. memset(sas_device, 0, sizeof(struct _sas_device));
  493. kfree(sas_device);
  494. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  495. }
  496. /**
  497. * _scsih_sas_device_add - insert sas_device to the list.
  498. * @ioc: per adapter object
  499. * @sas_device: the sas_device object
  500. * Context: This function will acquire ioc->sas_device_lock.
  501. *
  502. * Adding new object to the ioc->sas_device_list.
  503. */
  504. static void
  505. _scsih_sas_device_add(struct MPT2SAS_ADAPTER *ioc,
  506. struct _sas_device *sas_device)
  507. {
  508. unsigned long flags;
  509. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: handle"
  510. "(0x%04x), sas_addr(0x%016llx)\n", ioc->name, __func__,
  511. sas_device->handle, (unsigned long long)sas_device->sas_address));
  512. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  513. list_add_tail(&sas_device->list, &ioc->sas_device_list);
  514. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  515. if (!mpt2sas_transport_port_add(ioc, sas_device->handle,
  516. sas_device->sas_address_parent))
  517. _scsih_sas_device_remove(ioc, sas_device);
  518. }
  519. /**
  520. * _scsih_sas_device_init_add - insert sas_device to the list.
  521. * @ioc: per adapter object
  522. * @sas_device: the sas_device object
  523. * Context: This function will acquire ioc->sas_device_lock.
  524. *
  525. * Adding new object at driver load time to the ioc->sas_device_init_list.
  526. */
  527. static void
  528. _scsih_sas_device_init_add(struct MPT2SAS_ADAPTER *ioc,
  529. struct _sas_device *sas_device)
  530. {
  531. unsigned long flags;
  532. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: handle"
  533. "(0x%04x), sas_addr(0x%016llx)\n", ioc->name, __func__,
  534. sas_device->handle, (unsigned long long)sas_device->sas_address));
  535. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  536. list_add_tail(&sas_device->list, &ioc->sas_device_init_list);
  537. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  538. _scsih_determine_boot_device(ioc, sas_device, 0);
  539. }
  540. /**
  541. * _scsih_raid_device_find_by_id - raid device search
  542. * @ioc: per adapter object
  543. * @id: sas device target id
  544. * @channel: sas device channel
  545. * Context: Calling function should acquire ioc->raid_device_lock
  546. *
  547. * This searches for raid_device based on target id, then return raid_device
  548. * object.
  549. */
  550. static struct _raid_device *
  551. _scsih_raid_device_find_by_id(struct MPT2SAS_ADAPTER *ioc, int id, int channel)
  552. {
  553. struct _raid_device *raid_device, *r;
  554. r = NULL;
  555. list_for_each_entry(raid_device, &ioc->raid_device_list, list) {
  556. if (raid_device->id == id && raid_device->channel == channel) {
  557. r = raid_device;
  558. goto out;
  559. }
  560. }
  561. out:
  562. return r;
  563. }
  564. /**
  565. * _scsih_raid_device_find_by_handle - raid device search
  566. * @ioc: per adapter object
  567. * @handle: sas device handle (assigned by firmware)
  568. * Context: Calling function should acquire ioc->raid_device_lock
  569. *
  570. * This searches for raid_device based on handle, then return raid_device
  571. * object.
  572. */
  573. static struct _raid_device *
  574. _scsih_raid_device_find_by_handle(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  575. {
  576. struct _raid_device *raid_device, *r;
  577. r = NULL;
  578. list_for_each_entry(raid_device, &ioc->raid_device_list, list) {
  579. if (raid_device->handle != handle)
  580. continue;
  581. r = raid_device;
  582. goto out;
  583. }
  584. out:
  585. return r;
  586. }
  587. /**
  588. * _scsih_raid_device_find_by_wwid - raid device search
  589. * @ioc: per adapter object
  590. * @handle: sas device handle (assigned by firmware)
  591. * Context: Calling function should acquire ioc->raid_device_lock
  592. *
  593. * This searches for raid_device based on wwid, then return raid_device
  594. * object.
  595. */
  596. static struct _raid_device *
  597. _scsih_raid_device_find_by_wwid(struct MPT2SAS_ADAPTER *ioc, u64 wwid)
  598. {
  599. struct _raid_device *raid_device, *r;
  600. r = NULL;
  601. list_for_each_entry(raid_device, &ioc->raid_device_list, list) {
  602. if (raid_device->wwid != wwid)
  603. continue;
  604. r = raid_device;
  605. goto out;
  606. }
  607. out:
  608. return r;
  609. }
  610. /**
  611. * _scsih_raid_device_add - add raid_device object
  612. * @ioc: per adapter object
  613. * @raid_device: raid_device object
  614. *
  615. * This is added to the raid_device_list link list.
  616. */
  617. static void
  618. _scsih_raid_device_add(struct MPT2SAS_ADAPTER *ioc,
  619. struct _raid_device *raid_device)
  620. {
  621. unsigned long flags;
  622. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: handle"
  623. "(0x%04x), wwid(0x%016llx)\n", ioc->name, __func__,
  624. raid_device->handle, (unsigned long long)raid_device->wwid));
  625. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  626. list_add_tail(&raid_device->list, &ioc->raid_device_list);
  627. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  628. }
  629. /**
  630. * _scsih_raid_device_remove - delete raid_device object
  631. * @ioc: per adapter object
  632. * @raid_device: raid_device object
  633. *
  634. * This is removed from the raid_device_list link list.
  635. */
  636. static void
  637. _scsih_raid_device_remove(struct MPT2SAS_ADAPTER *ioc,
  638. struct _raid_device *raid_device)
  639. {
  640. unsigned long flags;
  641. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  642. list_del(&raid_device->list);
  643. memset(raid_device, 0, sizeof(struct _raid_device));
  644. kfree(raid_device);
  645. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  646. }
  647. /**
  648. * mpt2sas_scsih_expander_find_by_handle - expander device search
  649. * @ioc: per adapter object
  650. * @handle: expander handle (assigned by firmware)
  651. * Context: Calling function should acquire ioc->sas_device_lock
  652. *
  653. * This searches for expander device based on handle, then returns the
  654. * sas_node object.
  655. */
  656. struct _sas_node *
  657. mpt2sas_scsih_expander_find_by_handle(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  658. {
  659. struct _sas_node *sas_expander, *r;
  660. r = NULL;
  661. list_for_each_entry(sas_expander, &ioc->sas_expander_list, list) {
  662. if (sas_expander->handle != handle)
  663. continue;
  664. r = sas_expander;
  665. goto out;
  666. }
  667. out:
  668. return r;
  669. }
  670. /**
  671. * mpt2sas_scsih_expander_find_by_sas_address - expander device search
  672. * @ioc: per adapter object
  673. * @sas_address: sas address
  674. * Context: Calling function should acquire ioc->sas_node_lock.
  675. *
  676. * This searches for expander device based on sas_address, then returns the
  677. * sas_node object.
  678. */
  679. struct _sas_node *
  680. mpt2sas_scsih_expander_find_by_sas_address(struct MPT2SAS_ADAPTER *ioc,
  681. u64 sas_address)
  682. {
  683. struct _sas_node *sas_expander, *r;
  684. r = NULL;
  685. list_for_each_entry(sas_expander, &ioc->sas_expander_list, list) {
  686. if (sas_expander->sas_address != sas_address)
  687. continue;
  688. r = sas_expander;
  689. goto out;
  690. }
  691. out:
  692. return r;
  693. }
  694. /**
  695. * _scsih_expander_node_add - insert expander device to the list.
  696. * @ioc: per adapter object
  697. * @sas_expander: the sas_device object
  698. * Context: This function will acquire ioc->sas_node_lock.
  699. *
  700. * Adding new object to the ioc->sas_expander_list.
  701. *
  702. * Return nothing.
  703. */
  704. static void
  705. _scsih_expander_node_add(struct MPT2SAS_ADAPTER *ioc,
  706. struct _sas_node *sas_expander)
  707. {
  708. unsigned long flags;
  709. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  710. list_add_tail(&sas_expander->list, &ioc->sas_expander_list);
  711. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  712. }
  713. /**
  714. * _scsih_is_end_device - determines if device is an end device
  715. * @device_info: bitfield providing information about the device.
  716. * Context: none
  717. *
  718. * Returns 1 if end device.
  719. */
  720. static int
  721. _scsih_is_end_device(u32 device_info)
  722. {
  723. if (device_info & MPI2_SAS_DEVICE_INFO_END_DEVICE &&
  724. ((device_info & MPI2_SAS_DEVICE_INFO_SSP_TARGET) |
  725. (device_info & MPI2_SAS_DEVICE_INFO_STP_TARGET) |
  726. (device_info & MPI2_SAS_DEVICE_INFO_SATA_DEVICE)))
  727. return 1;
  728. else
  729. return 0;
  730. }
  731. /**
  732. * mptscsih_get_scsi_lookup - returns scmd entry
  733. * @ioc: per adapter object
  734. * @smid: system request message index
  735. *
  736. * Returns the smid stored scmd pointer.
  737. */
  738. static struct scsi_cmnd *
  739. _scsih_scsi_lookup_get(struct MPT2SAS_ADAPTER *ioc, u16 smid)
  740. {
  741. return ioc->scsi_lookup[smid - 1].scmd;
  742. }
  743. /**
  744. * _scsih_scsi_lookup_find_by_scmd - scmd lookup
  745. * @ioc: per adapter object
  746. * @smid: system request message index
  747. * @scmd: pointer to scsi command object
  748. * Context: This function will acquire ioc->scsi_lookup_lock.
  749. *
  750. * This will search for a scmd pointer in the scsi_lookup array,
  751. * returning the revelent smid. A returned value of zero means invalid.
  752. */
  753. static u16
  754. _scsih_scsi_lookup_find_by_scmd(struct MPT2SAS_ADAPTER *ioc, struct scsi_cmnd
  755. *scmd)
  756. {
  757. u16 smid;
  758. unsigned long flags;
  759. int i;
  760. spin_lock_irqsave(&ioc->scsi_lookup_lock, flags);
  761. smid = 0;
  762. for (i = 0; i < ioc->scsiio_depth; i++) {
  763. if (ioc->scsi_lookup[i].scmd == scmd) {
  764. smid = ioc->scsi_lookup[i].smid;
  765. goto out;
  766. }
  767. }
  768. out:
  769. spin_unlock_irqrestore(&ioc->scsi_lookup_lock, flags);
  770. return smid;
  771. }
  772. /**
  773. * _scsih_scsi_lookup_find_by_target - search for matching channel:id
  774. * @ioc: per adapter object
  775. * @id: target id
  776. * @channel: channel
  777. * Context: This function will acquire ioc->scsi_lookup_lock.
  778. *
  779. * This will search for a matching channel:id in the scsi_lookup array,
  780. * returning 1 if found.
  781. */
  782. static u8
  783. _scsih_scsi_lookup_find_by_target(struct MPT2SAS_ADAPTER *ioc, int id,
  784. int channel)
  785. {
  786. u8 found;
  787. unsigned long flags;
  788. int i;
  789. spin_lock_irqsave(&ioc->scsi_lookup_lock, flags);
  790. found = 0;
  791. for (i = 0 ; i < ioc->scsiio_depth; i++) {
  792. if (ioc->scsi_lookup[i].scmd &&
  793. (ioc->scsi_lookup[i].scmd->device->id == id &&
  794. ioc->scsi_lookup[i].scmd->device->channel == channel)) {
  795. found = 1;
  796. goto out;
  797. }
  798. }
  799. out:
  800. spin_unlock_irqrestore(&ioc->scsi_lookup_lock, flags);
  801. return found;
  802. }
  803. /**
  804. * _scsih_scsi_lookup_find_by_lun - search for matching channel:id:lun
  805. * @ioc: per adapter object
  806. * @id: target id
  807. * @lun: lun number
  808. * @channel: channel
  809. * Context: This function will acquire ioc->scsi_lookup_lock.
  810. *
  811. * This will search for a matching channel:id:lun in the scsi_lookup array,
  812. * returning 1 if found.
  813. */
  814. static u8
  815. _scsih_scsi_lookup_find_by_lun(struct MPT2SAS_ADAPTER *ioc, int id,
  816. unsigned int lun, int channel)
  817. {
  818. u8 found;
  819. unsigned long flags;
  820. int i;
  821. spin_lock_irqsave(&ioc->scsi_lookup_lock, flags);
  822. found = 0;
  823. for (i = 0 ; i < ioc->scsiio_depth; i++) {
  824. if (ioc->scsi_lookup[i].scmd &&
  825. (ioc->scsi_lookup[i].scmd->device->id == id &&
  826. ioc->scsi_lookup[i].scmd->device->channel == channel &&
  827. ioc->scsi_lookup[i].scmd->device->lun == lun)) {
  828. found = 1;
  829. goto out;
  830. }
  831. }
  832. out:
  833. spin_unlock_irqrestore(&ioc->scsi_lookup_lock, flags);
  834. return found;
  835. }
  836. /**
  837. * _scsih_get_chain_buffer_dma - obtain block of chains (dma address)
  838. * @ioc: per adapter object
  839. * @smid: system request message index
  840. *
  841. * Returns phys pointer to chain buffer.
  842. */
  843. static dma_addr_t
  844. _scsih_get_chain_buffer_dma(struct MPT2SAS_ADAPTER *ioc, u16 smid)
  845. {
  846. return ioc->chain_dma + ((smid - 1) * (ioc->request_sz *
  847. ioc->chains_needed_per_io));
  848. }
  849. /**
  850. * _scsih_get_chain_buffer - obtain block of chains assigned to a mf request
  851. * @ioc: per adapter object
  852. * @smid: system request message index
  853. *
  854. * Returns virt pointer to chain buffer.
  855. */
  856. static void *
  857. _scsih_get_chain_buffer(struct MPT2SAS_ADAPTER *ioc, u16 smid)
  858. {
  859. return (void *)(ioc->chain + ((smid - 1) * (ioc->request_sz *
  860. ioc->chains_needed_per_io)));
  861. }
  862. /**
  863. * _scsih_build_scatter_gather - main sg creation routine
  864. * @ioc: per adapter object
  865. * @scmd: scsi command
  866. * @smid: system request message index
  867. * Context: none.
  868. *
  869. * The main routine that builds scatter gather table from a given
  870. * scsi request sent via the .queuecommand main handler.
  871. *
  872. * Returns 0 success, anything else error
  873. */
  874. static int
  875. _scsih_build_scatter_gather(struct MPT2SAS_ADAPTER *ioc,
  876. struct scsi_cmnd *scmd, u16 smid)
  877. {
  878. Mpi2SCSIIORequest_t *mpi_request;
  879. dma_addr_t chain_dma;
  880. struct scatterlist *sg_scmd;
  881. void *sg_local, *chain;
  882. u32 chain_offset;
  883. u32 chain_length;
  884. u32 chain_flags;
  885. int sges_left;
  886. u32 sges_in_segment;
  887. u32 sgl_flags;
  888. u32 sgl_flags_last_element;
  889. u32 sgl_flags_end_buffer;
  890. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid);
  891. /* init scatter gather flags */
  892. sgl_flags = MPI2_SGE_FLAGS_SIMPLE_ELEMENT;
  893. if (scmd->sc_data_direction == DMA_TO_DEVICE)
  894. sgl_flags |= MPI2_SGE_FLAGS_HOST_TO_IOC;
  895. sgl_flags_last_element = (sgl_flags | MPI2_SGE_FLAGS_LAST_ELEMENT)
  896. << MPI2_SGE_FLAGS_SHIFT;
  897. sgl_flags_end_buffer = (sgl_flags | MPI2_SGE_FLAGS_LAST_ELEMENT |
  898. MPI2_SGE_FLAGS_END_OF_BUFFER | MPI2_SGE_FLAGS_END_OF_LIST)
  899. << MPI2_SGE_FLAGS_SHIFT;
  900. sgl_flags = sgl_flags << MPI2_SGE_FLAGS_SHIFT;
  901. sg_scmd = scsi_sglist(scmd);
  902. sges_left = scsi_dma_map(scmd);
  903. if (sges_left < 0) {
  904. sdev_printk(KERN_ERR, scmd->device, "pci_map_sg"
  905. " failed: request for %d bytes!\n", scsi_bufflen(scmd));
  906. return -ENOMEM;
  907. }
  908. sg_local = &mpi_request->SGL;
  909. sges_in_segment = ioc->max_sges_in_main_message;
  910. if (sges_left <= sges_in_segment)
  911. goto fill_in_last_segment;
  912. mpi_request->ChainOffset = (offsetof(Mpi2SCSIIORequest_t, SGL) +
  913. (sges_in_segment * ioc->sge_size))/4;
  914. /* fill in main message segment when there is a chain following */
  915. while (sges_in_segment) {
  916. if (sges_in_segment == 1)
  917. ioc->base_add_sg_single(sg_local,
  918. sgl_flags_last_element | sg_dma_len(sg_scmd),
  919. sg_dma_address(sg_scmd));
  920. else
  921. ioc->base_add_sg_single(sg_local, sgl_flags |
  922. sg_dma_len(sg_scmd), sg_dma_address(sg_scmd));
  923. sg_scmd = sg_next(sg_scmd);
  924. sg_local += ioc->sge_size;
  925. sges_left--;
  926. sges_in_segment--;
  927. }
  928. /* initializing the chain flags and pointers */
  929. chain_flags = MPI2_SGE_FLAGS_CHAIN_ELEMENT << MPI2_SGE_FLAGS_SHIFT;
  930. chain = _scsih_get_chain_buffer(ioc, smid);
  931. chain_dma = _scsih_get_chain_buffer_dma(ioc, smid);
  932. do {
  933. sges_in_segment = (sges_left <=
  934. ioc->max_sges_in_chain_message) ? sges_left :
  935. ioc->max_sges_in_chain_message;
  936. chain_offset = (sges_left == sges_in_segment) ?
  937. 0 : (sges_in_segment * ioc->sge_size)/4;
  938. chain_length = sges_in_segment * ioc->sge_size;
  939. if (chain_offset) {
  940. chain_offset = chain_offset <<
  941. MPI2_SGE_CHAIN_OFFSET_SHIFT;
  942. chain_length += ioc->sge_size;
  943. }
  944. ioc->base_add_sg_single(sg_local, chain_flags | chain_offset |
  945. chain_length, chain_dma);
  946. sg_local = chain;
  947. if (!chain_offset)
  948. goto fill_in_last_segment;
  949. /* fill in chain segments */
  950. while (sges_in_segment) {
  951. if (sges_in_segment == 1)
  952. ioc->base_add_sg_single(sg_local,
  953. sgl_flags_last_element |
  954. sg_dma_len(sg_scmd),
  955. sg_dma_address(sg_scmd));
  956. else
  957. ioc->base_add_sg_single(sg_local, sgl_flags |
  958. sg_dma_len(sg_scmd),
  959. sg_dma_address(sg_scmd));
  960. sg_scmd = sg_next(sg_scmd);
  961. sg_local += ioc->sge_size;
  962. sges_left--;
  963. sges_in_segment--;
  964. }
  965. chain_dma += ioc->request_sz;
  966. chain += ioc->request_sz;
  967. } while (1);
  968. fill_in_last_segment:
  969. /* fill the last segment */
  970. while (sges_left) {
  971. if (sges_left == 1)
  972. ioc->base_add_sg_single(sg_local, sgl_flags_end_buffer |
  973. sg_dma_len(sg_scmd), sg_dma_address(sg_scmd));
  974. else
  975. ioc->base_add_sg_single(sg_local, sgl_flags |
  976. sg_dma_len(sg_scmd), sg_dma_address(sg_scmd));
  977. sg_scmd = sg_next(sg_scmd);
  978. sg_local += ioc->sge_size;
  979. sges_left--;
  980. }
  981. return 0;
  982. }
  983. /**
  984. * _scsih_change_queue_depth - setting device queue depth
  985. * @sdev: scsi device struct
  986. * @qdepth: requested queue depth
  987. * @reason: calling context
  988. *
  989. * Returns queue depth.
  990. */
  991. static int
  992. _scsih_change_queue_depth(struct scsi_device *sdev, int qdepth, int reason)
  993. {
  994. struct Scsi_Host *shost = sdev->host;
  995. int max_depth;
  996. int tag_type;
  997. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  998. struct MPT2SAS_DEVICE *sas_device_priv_data;
  999. struct MPT2SAS_TARGET *sas_target_priv_data;
  1000. struct _sas_device *sas_device;
  1001. unsigned long flags;
  1002. if (reason != SCSI_QDEPTH_DEFAULT)
  1003. return -EOPNOTSUPP;
  1004. max_depth = shost->can_queue;
  1005. /* limit max device queue for SATA to 32 */
  1006. sas_device_priv_data = sdev->hostdata;
  1007. if (!sas_device_priv_data)
  1008. goto not_sata;
  1009. sas_target_priv_data = sas_device_priv_data->sas_target;
  1010. if (!sas_target_priv_data)
  1011. goto not_sata;
  1012. if ((sas_target_priv_data->flags & MPT_TARGET_FLAGS_VOLUME))
  1013. goto not_sata;
  1014. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  1015. sas_device = mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  1016. sas_device_priv_data->sas_target->sas_address);
  1017. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  1018. if (sas_device && sas_device->device_info &
  1019. MPI2_SAS_DEVICE_INFO_SATA_DEVICE)
  1020. max_depth = MPT2SAS_SATA_QUEUE_DEPTH;
  1021. not_sata:
  1022. if (!sdev->tagged_supported)
  1023. max_depth = 1;
  1024. if (qdepth > max_depth)
  1025. qdepth = max_depth;
  1026. tag_type = (qdepth == 1) ? 0 : MSG_SIMPLE_TAG;
  1027. scsi_adjust_queue_depth(sdev, tag_type, qdepth);
  1028. if (sdev->inquiry_len > 7)
  1029. sdev_printk(KERN_INFO, sdev, "qdepth(%d), tagged(%d), "
  1030. "simple(%d), ordered(%d), scsi_level(%d), cmd_que(%d)\n",
  1031. sdev->queue_depth, sdev->tagged_supported, sdev->simple_tags,
  1032. sdev->ordered_tags, sdev->scsi_level,
  1033. (sdev->inquiry[7] & 2) >> 1);
  1034. return sdev->queue_depth;
  1035. }
  1036. /**
  1037. * _scsih_change_queue_type - changing device queue tag type
  1038. * @sdev: scsi device struct
  1039. * @tag_type: requested tag type
  1040. *
  1041. * Returns queue tag type.
  1042. */
  1043. static int
  1044. _scsih_change_queue_type(struct scsi_device *sdev, int tag_type)
  1045. {
  1046. if (sdev->tagged_supported) {
  1047. scsi_set_tag_type(sdev, tag_type);
  1048. if (tag_type)
  1049. scsi_activate_tcq(sdev, sdev->queue_depth);
  1050. else
  1051. scsi_deactivate_tcq(sdev, sdev->queue_depth);
  1052. } else
  1053. tag_type = 0;
  1054. return tag_type;
  1055. }
  1056. /**
  1057. * _scsih_target_alloc - target add routine
  1058. * @starget: scsi target struct
  1059. *
  1060. * Returns 0 if ok. Any other return is assumed to be an error and
  1061. * the device is ignored.
  1062. */
  1063. static int
  1064. _scsih_target_alloc(struct scsi_target *starget)
  1065. {
  1066. struct Scsi_Host *shost = dev_to_shost(&starget->dev);
  1067. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  1068. struct MPT2SAS_TARGET *sas_target_priv_data;
  1069. struct _sas_device *sas_device;
  1070. struct _raid_device *raid_device;
  1071. unsigned long flags;
  1072. struct sas_rphy *rphy;
  1073. sas_target_priv_data = kzalloc(sizeof(struct scsi_target), GFP_KERNEL);
  1074. if (!sas_target_priv_data)
  1075. return -ENOMEM;
  1076. starget->hostdata = sas_target_priv_data;
  1077. sas_target_priv_data->starget = starget;
  1078. sas_target_priv_data->handle = MPT2SAS_INVALID_DEVICE_HANDLE;
  1079. /* RAID volumes */
  1080. if (starget->channel == RAID_CHANNEL) {
  1081. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  1082. raid_device = _scsih_raid_device_find_by_id(ioc, starget->id,
  1083. starget->channel);
  1084. if (raid_device) {
  1085. sas_target_priv_data->handle = raid_device->handle;
  1086. sas_target_priv_data->sas_address = raid_device->wwid;
  1087. sas_target_priv_data->flags |= MPT_TARGET_FLAGS_VOLUME;
  1088. raid_device->starget = starget;
  1089. }
  1090. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  1091. return 0;
  1092. }
  1093. /* sas/sata devices */
  1094. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  1095. rphy = dev_to_rphy(starget->dev.parent);
  1096. sas_device = mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  1097. rphy->identify.sas_address);
  1098. if (sas_device) {
  1099. sas_target_priv_data->handle = sas_device->handle;
  1100. sas_target_priv_data->sas_address = sas_device->sas_address;
  1101. sas_device->starget = starget;
  1102. sas_device->id = starget->id;
  1103. sas_device->channel = starget->channel;
  1104. if (sas_device->hidden_raid_component)
  1105. sas_target_priv_data->flags |=
  1106. MPT_TARGET_FLAGS_RAID_COMPONENT;
  1107. }
  1108. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  1109. return 0;
  1110. }
  1111. /**
  1112. * _scsih_target_destroy - target destroy routine
  1113. * @starget: scsi target struct
  1114. *
  1115. * Returns nothing.
  1116. */
  1117. static void
  1118. _scsih_target_destroy(struct scsi_target *starget)
  1119. {
  1120. struct Scsi_Host *shost = dev_to_shost(&starget->dev);
  1121. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  1122. struct MPT2SAS_TARGET *sas_target_priv_data;
  1123. struct _sas_device *sas_device;
  1124. struct _raid_device *raid_device;
  1125. unsigned long flags;
  1126. struct sas_rphy *rphy;
  1127. sas_target_priv_data = starget->hostdata;
  1128. if (!sas_target_priv_data)
  1129. return;
  1130. if (starget->channel == RAID_CHANNEL) {
  1131. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  1132. raid_device = _scsih_raid_device_find_by_id(ioc, starget->id,
  1133. starget->channel);
  1134. if (raid_device) {
  1135. raid_device->starget = NULL;
  1136. raid_device->sdev = NULL;
  1137. }
  1138. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  1139. goto out;
  1140. }
  1141. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  1142. rphy = dev_to_rphy(starget->dev.parent);
  1143. sas_device = mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  1144. rphy->identify.sas_address);
  1145. if (sas_device && (sas_device->starget == starget) &&
  1146. (sas_device->id == starget->id) &&
  1147. (sas_device->channel == starget->channel))
  1148. sas_device->starget = NULL;
  1149. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  1150. out:
  1151. kfree(sas_target_priv_data);
  1152. starget->hostdata = NULL;
  1153. }
  1154. /**
  1155. * _scsih_slave_alloc - device add routine
  1156. * @sdev: scsi device struct
  1157. *
  1158. * Returns 0 if ok. Any other return is assumed to be an error and
  1159. * the device is ignored.
  1160. */
  1161. static int
  1162. _scsih_slave_alloc(struct scsi_device *sdev)
  1163. {
  1164. struct Scsi_Host *shost;
  1165. struct MPT2SAS_ADAPTER *ioc;
  1166. struct MPT2SAS_TARGET *sas_target_priv_data;
  1167. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1168. struct scsi_target *starget;
  1169. struct _raid_device *raid_device;
  1170. unsigned long flags;
  1171. sas_device_priv_data = kzalloc(sizeof(struct scsi_device), GFP_KERNEL);
  1172. if (!sas_device_priv_data)
  1173. return -ENOMEM;
  1174. sas_device_priv_data->lun = sdev->lun;
  1175. sas_device_priv_data->flags = MPT_DEVICE_FLAGS_INIT;
  1176. starget = scsi_target(sdev);
  1177. sas_target_priv_data = starget->hostdata;
  1178. sas_target_priv_data->num_luns++;
  1179. sas_device_priv_data->sas_target = sas_target_priv_data;
  1180. sdev->hostdata = sas_device_priv_data;
  1181. if ((sas_target_priv_data->flags & MPT_TARGET_FLAGS_RAID_COMPONENT))
  1182. sdev->no_uld_attach = 1;
  1183. shost = dev_to_shost(&starget->dev);
  1184. ioc = shost_priv(shost);
  1185. if (starget->channel == RAID_CHANNEL) {
  1186. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  1187. raid_device = _scsih_raid_device_find_by_id(ioc,
  1188. starget->id, starget->channel);
  1189. if (raid_device)
  1190. raid_device->sdev = sdev; /* raid is single lun */
  1191. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  1192. }
  1193. return 0;
  1194. }
  1195. /**
  1196. * _scsih_slave_destroy - device destroy routine
  1197. * @sdev: scsi device struct
  1198. *
  1199. * Returns nothing.
  1200. */
  1201. static void
  1202. _scsih_slave_destroy(struct scsi_device *sdev)
  1203. {
  1204. struct MPT2SAS_TARGET *sas_target_priv_data;
  1205. struct scsi_target *starget;
  1206. if (!sdev->hostdata)
  1207. return;
  1208. starget = scsi_target(sdev);
  1209. sas_target_priv_data = starget->hostdata;
  1210. sas_target_priv_data->num_luns--;
  1211. kfree(sdev->hostdata);
  1212. sdev->hostdata = NULL;
  1213. }
  1214. /**
  1215. * _scsih_display_sata_capabilities - sata capabilities
  1216. * @ioc: per adapter object
  1217. * @sas_device: the sas_device object
  1218. * @sdev: scsi device struct
  1219. */
  1220. static void
  1221. _scsih_display_sata_capabilities(struct MPT2SAS_ADAPTER *ioc,
  1222. struct _sas_device *sas_device, struct scsi_device *sdev)
  1223. {
  1224. Mpi2ConfigReply_t mpi_reply;
  1225. Mpi2SasDevicePage0_t sas_device_pg0;
  1226. u32 ioc_status;
  1227. u16 flags;
  1228. u32 device_info;
  1229. if ((mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply, &sas_device_pg0,
  1230. MPI2_SAS_DEVICE_PGAD_FORM_HANDLE, sas_device->handle))) {
  1231. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1232. ioc->name, __FILE__, __LINE__, __func__);
  1233. return;
  1234. }
  1235. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  1236. MPI2_IOCSTATUS_MASK;
  1237. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  1238. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1239. ioc->name, __FILE__, __LINE__, __func__);
  1240. return;
  1241. }
  1242. flags = le16_to_cpu(sas_device_pg0.Flags);
  1243. device_info = le16_to_cpu(sas_device_pg0.DeviceInfo);
  1244. sdev_printk(KERN_INFO, sdev,
  1245. "atapi(%s), ncq(%s), asyn_notify(%s), smart(%s), fua(%s), "
  1246. "sw_preserve(%s)\n",
  1247. (device_info & MPI2_SAS_DEVICE_INFO_ATAPI_DEVICE) ? "y" : "n",
  1248. (flags & MPI2_SAS_DEVICE0_FLAGS_SATA_NCQ_SUPPORTED) ? "y" : "n",
  1249. (flags & MPI2_SAS_DEVICE0_FLAGS_SATA_ASYNCHRONOUS_NOTIFY) ? "y" :
  1250. "n",
  1251. (flags & MPI2_SAS_DEVICE0_FLAGS_SATA_SMART_SUPPORTED) ? "y" : "n",
  1252. (flags & MPI2_SAS_DEVICE0_FLAGS_SATA_FUA_SUPPORTED) ? "y" : "n",
  1253. (flags & MPI2_SAS_DEVICE0_FLAGS_SATA_SW_PRESERVE) ? "y" : "n");
  1254. }
  1255. /**
  1256. * _scsih_is_raid - return boolean indicating device is raid volume
  1257. * @dev the device struct object
  1258. */
  1259. static int
  1260. _scsih_is_raid(struct device *dev)
  1261. {
  1262. struct scsi_device *sdev = to_scsi_device(dev);
  1263. return (sdev->channel == RAID_CHANNEL) ? 1 : 0;
  1264. }
  1265. /**
  1266. * _scsih_get_resync - get raid volume resync percent complete
  1267. * @dev the device struct object
  1268. */
  1269. static void
  1270. _scsih_get_resync(struct device *dev)
  1271. {
  1272. struct scsi_device *sdev = to_scsi_device(dev);
  1273. struct MPT2SAS_ADAPTER *ioc = shost_priv(sdev->host);
  1274. static struct _raid_device *raid_device;
  1275. unsigned long flags;
  1276. Mpi2RaidVolPage0_t vol_pg0;
  1277. Mpi2ConfigReply_t mpi_reply;
  1278. u32 volume_status_flags;
  1279. u8 percent_complete = 0;
  1280. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  1281. raid_device = _scsih_raid_device_find_by_id(ioc, sdev->id,
  1282. sdev->channel);
  1283. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  1284. if (!raid_device)
  1285. goto out;
  1286. if (mpt2sas_config_get_raid_volume_pg0(ioc, &mpi_reply, &vol_pg0,
  1287. MPI2_RAID_VOLUME_PGAD_FORM_HANDLE, raid_device->handle,
  1288. sizeof(Mpi2RaidVolPage0_t))) {
  1289. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1290. ioc->name, __FILE__, __LINE__, __func__);
  1291. goto out;
  1292. }
  1293. volume_status_flags = le32_to_cpu(vol_pg0.VolumeStatusFlags);
  1294. if (volume_status_flags & MPI2_RAIDVOL0_STATUS_FLAG_RESYNC_IN_PROGRESS)
  1295. percent_complete = raid_device->percent_complete;
  1296. out:
  1297. raid_set_resync(mpt2sas_raid_template, dev, percent_complete);
  1298. }
  1299. /**
  1300. * _scsih_get_state - get raid volume level
  1301. * @dev the device struct object
  1302. */
  1303. static void
  1304. _scsih_get_state(struct device *dev)
  1305. {
  1306. struct scsi_device *sdev = to_scsi_device(dev);
  1307. struct MPT2SAS_ADAPTER *ioc = shost_priv(sdev->host);
  1308. static struct _raid_device *raid_device;
  1309. unsigned long flags;
  1310. Mpi2RaidVolPage0_t vol_pg0;
  1311. Mpi2ConfigReply_t mpi_reply;
  1312. u32 volstate;
  1313. enum raid_state state = RAID_STATE_UNKNOWN;
  1314. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  1315. raid_device = _scsih_raid_device_find_by_id(ioc, sdev->id,
  1316. sdev->channel);
  1317. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  1318. if (!raid_device)
  1319. goto out;
  1320. if (mpt2sas_config_get_raid_volume_pg0(ioc, &mpi_reply, &vol_pg0,
  1321. MPI2_RAID_VOLUME_PGAD_FORM_HANDLE, raid_device->handle,
  1322. sizeof(Mpi2RaidVolPage0_t))) {
  1323. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1324. ioc->name, __FILE__, __LINE__, __func__);
  1325. goto out;
  1326. }
  1327. volstate = le32_to_cpu(vol_pg0.VolumeStatusFlags);
  1328. if (volstate & MPI2_RAIDVOL0_STATUS_FLAG_RESYNC_IN_PROGRESS) {
  1329. state = RAID_STATE_RESYNCING;
  1330. goto out;
  1331. }
  1332. switch (vol_pg0.VolumeState) {
  1333. case MPI2_RAID_VOL_STATE_OPTIMAL:
  1334. case MPI2_RAID_VOL_STATE_ONLINE:
  1335. state = RAID_STATE_ACTIVE;
  1336. break;
  1337. case MPI2_RAID_VOL_STATE_DEGRADED:
  1338. state = RAID_STATE_DEGRADED;
  1339. break;
  1340. case MPI2_RAID_VOL_STATE_FAILED:
  1341. case MPI2_RAID_VOL_STATE_MISSING:
  1342. state = RAID_STATE_OFFLINE;
  1343. break;
  1344. }
  1345. out:
  1346. raid_set_state(mpt2sas_raid_template, dev, state);
  1347. }
  1348. /**
  1349. * _scsih_set_level - set raid level
  1350. * @sdev: scsi device struct
  1351. * @raid_device: raid_device object
  1352. */
  1353. static void
  1354. _scsih_set_level(struct scsi_device *sdev, struct _raid_device *raid_device)
  1355. {
  1356. enum raid_level level = RAID_LEVEL_UNKNOWN;
  1357. switch (raid_device->volume_type) {
  1358. case MPI2_RAID_VOL_TYPE_RAID0:
  1359. level = RAID_LEVEL_0;
  1360. break;
  1361. case MPI2_RAID_VOL_TYPE_RAID10:
  1362. level = RAID_LEVEL_10;
  1363. break;
  1364. case MPI2_RAID_VOL_TYPE_RAID1E:
  1365. level = RAID_LEVEL_1E;
  1366. break;
  1367. case MPI2_RAID_VOL_TYPE_RAID1:
  1368. level = RAID_LEVEL_1;
  1369. break;
  1370. }
  1371. raid_set_level(mpt2sas_raid_template, &sdev->sdev_gendev, level);
  1372. }
  1373. /**
  1374. * _scsih_get_volume_capabilities - volume capabilities
  1375. * @ioc: per adapter object
  1376. * @sas_device: the raid_device object
  1377. */
  1378. static void
  1379. _scsih_get_volume_capabilities(struct MPT2SAS_ADAPTER *ioc,
  1380. struct _raid_device *raid_device)
  1381. {
  1382. Mpi2RaidVolPage0_t *vol_pg0;
  1383. Mpi2RaidPhysDiskPage0_t pd_pg0;
  1384. Mpi2SasDevicePage0_t sas_device_pg0;
  1385. Mpi2ConfigReply_t mpi_reply;
  1386. u16 sz;
  1387. u8 num_pds;
  1388. if ((mpt2sas_config_get_number_pds(ioc, raid_device->handle,
  1389. &num_pds)) || !num_pds) {
  1390. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1391. ioc->name, __FILE__, __LINE__, __func__);
  1392. return;
  1393. }
  1394. raid_device->num_pds = num_pds;
  1395. sz = offsetof(Mpi2RaidVolPage0_t, PhysDisk) + (num_pds *
  1396. sizeof(Mpi2RaidVol0PhysDisk_t));
  1397. vol_pg0 = kzalloc(sz, GFP_KERNEL);
  1398. if (!vol_pg0) {
  1399. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1400. ioc->name, __FILE__, __LINE__, __func__);
  1401. return;
  1402. }
  1403. if ((mpt2sas_config_get_raid_volume_pg0(ioc, &mpi_reply, vol_pg0,
  1404. MPI2_RAID_VOLUME_PGAD_FORM_HANDLE, raid_device->handle, sz))) {
  1405. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1406. ioc->name, __FILE__, __LINE__, __func__);
  1407. kfree(vol_pg0);
  1408. return;
  1409. }
  1410. raid_device->volume_type = vol_pg0->VolumeType;
  1411. /* figure out what the underlying devices are by
  1412. * obtaining the device_info bits for the 1st device
  1413. */
  1414. if (!(mpt2sas_config_get_phys_disk_pg0(ioc, &mpi_reply,
  1415. &pd_pg0, MPI2_PHYSDISK_PGAD_FORM_PHYSDISKNUM,
  1416. vol_pg0->PhysDisk[0].PhysDiskNum))) {
  1417. if (!(mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply,
  1418. &sas_device_pg0, MPI2_SAS_DEVICE_PGAD_FORM_HANDLE,
  1419. le16_to_cpu(pd_pg0.DevHandle)))) {
  1420. raid_device->device_info =
  1421. le32_to_cpu(sas_device_pg0.DeviceInfo);
  1422. }
  1423. }
  1424. kfree(vol_pg0);
  1425. }
  1426. /**
  1427. * _scsih_enable_tlr - setting TLR flags
  1428. * @ioc: per adapter object
  1429. * @sdev: scsi device struct
  1430. *
  1431. * Enabling Transaction Layer Retries for tape devices when
  1432. * vpd page 0x90 is present
  1433. *
  1434. */
  1435. static void
  1436. _scsih_enable_tlr(struct MPT2SAS_ADAPTER *ioc, struct scsi_device *sdev)
  1437. {
  1438. /* only for TAPE */
  1439. if (sdev->type != TYPE_TAPE)
  1440. return;
  1441. if (!(ioc->facts.IOCCapabilities & MPI2_IOCFACTS_CAPABILITY_TLR))
  1442. return;
  1443. sas_enable_tlr(sdev);
  1444. sdev_printk(KERN_INFO, sdev, "TLR %s\n",
  1445. sas_is_tlr_enabled(sdev) ? "Enabled" : "Disabled");
  1446. return;
  1447. }
  1448. /**
  1449. * _scsih_slave_configure - device configure routine.
  1450. * @sdev: scsi device struct
  1451. *
  1452. * Returns 0 if ok. Any other return is assumed to be an error and
  1453. * the device is ignored.
  1454. */
  1455. static int
  1456. _scsih_slave_configure(struct scsi_device *sdev)
  1457. {
  1458. struct Scsi_Host *shost = sdev->host;
  1459. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  1460. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1461. struct MPT2SAS_TARGET *sas_target_priv_data;
  1462. struct _sas_device *sas_device;
  1463. struct _raid_device *raid_device;
  1464. unsigned long flags;
  1465. int qdepth;
  1466. u8 ssp_target = 0;
  1467. char *ds = "";
  1468. char *r_level = "";
  1469. qdepth = 1;
  1470. sas_device_priv_data = sdev->hostdata;
  1471. sas_device_priv_data->configured_lun = 1;
  1472. sas_device_priv_data->flags &= ~MPT_DEVICE_FLAGS_INIT;
  1473. sas_target_priv_data = sas_device_priv_data->sas_target;
  1474. /* raid volume handling */
  1475. if (sas_target_priv_data->flags & MPT_TARGET_FLAGS_VOLUME) {
  1476. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  1477. raid_device = _scsih_raid_device_find_by_handle(ioc,
  1478. sas_target_priv_data->handle);
  1479. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  1480. if (!raid_device) {
  1481. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  1482. ioc->name, __FILE__, __LINE__, __func__);
  1483. return 0;
  1484. }
  1485. _scsih_get_volume_capabilities(ioc, raid_device);
  1486. /* RAID Queue Depth Support
  1487. * IS volume = underlying qdepth of drive type, either
  1488. * MPT2SAS_SAS_QUEUE_DEPTH or MPT2SAS_SATA_QUEUE_DEPTH
  1489. * IM/IME/R10 = 128 (MPT2SAS_RAID_QUEUE_DEPTH)
  1490. */
  1491. if (raid_device->device_info &
  1492. MPI2_SAS_DEVICE_INFO_SSP_TARGET) {
  1493. qdepth = MPT2SAS_SAS_QUEUE_DEPTH;
  1494. ds = "SSP";
  1495. } else {
  1496. qdepth = MPT2SAS_SATA_QUEUE_DEPTH;
  1497. if (raid_device->device_info &
  1498. MPI2_SAS_DEVICE_INFO_SATA_DEVICE)
  1499. ds = "SATA";
  1500. else
  1501. ds = "STP";
  1502. }
  1503. switch (raid_device->volume_type) {
  1504. case MPI2_RAID_VOL_TYPE_RAID0:
  1505. r_level = "RAID0";
  1506. break;
  1507. case MPI2_RAID_VOL_TYPE_RAID1E:
  1508. qdepth = MPT2SAS_RAID_QUEUE_DEPTH;
  1509. if (ioc->manu_pg10.OEMIdentifier &&
  1510. (ioc->manu_pg10.GenericFlags0 &
  1511. MFG10_GF0_R10_DISPLAY) &&
  1512. !(raid_device->num_pds % 2))
  1513. r_level = "RAID10";
  1514. else
  1515. r_level = "RAID1E";
  1516. break;
  1517. case MPI2_RAID_VOL_TYPE_RAID1:
  1518. qdepth = MPT2SAS_RAID_QUEUE_DEPTH;
  1519. r_level = "RAID1";
  1520. break;
  1521. case MPI2_RAID_VOL_TYPE_RAID10:
  1522. qdepth = MPT2SAS_RAID_QUEUE_DEPTH;
  1523. r_level = "RAID10";
  1524. break;
  1525. case MPI2_RAID_VOL_TYPE_UNKNOWN:
  1526. default:
  1527. qdepth = MPT2SAS_RAID_QUEUE_DEPTH;
  1528. r_level = "RAIDX";
  1529. break;
  1530. }
  1531. sdev_printk(KERN_INFO, sdev, "%s: "
  1532. "handle(0x%04x), wwid(0x%016llx), pd_count(%d), type(%s)\n",
  1533. r_level, raid_device->handle,
  1534. (unsigned long long)raid_device->wwid,
  1535. raid_device->num_pds, ds);
  1536. _scsih_change_queue_depth(sdev, qdepth, SCSI_QDEPTH_DEFAULT);
  1537. /* raid transport support */
  1538. _scsih_set_level(sdev, raid_device);
  1539. return 0;
  1540. }
  1541. /* non-raid handling */
  1542. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  1543. sas_device = mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  1544. sas_device_priv_data->sas_target->sas_address);
  1545. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  1546. if (sas_device) {
  1547. if (sas_target_priv_data->flags &
  1548. MPT_TARGET_FLAGS_RAID_COMPONENT) {
  1549. mpt2sas_config_get_volume_handle(ioc,
  1550. sas_device->handle, &sas_device->volume_handle);
  1551. mpt2sas_config_get_volume_wwid(ioc,
  1552. sas_device->volume_handle,
  1553. &sas_device->volume_wwid);
  1554. }
  1555. if (sas_device->device_info & MPI2_SAS_DEVICE_INFO_SSP_TARGET) {
  1556. qdepth = MPT2SAS_SAS_QUEUE_DEPTH;
  1557. ssp_target = 1;
  1558. ds = "SSP";
  1559. } else {
  1560. qdepth = MPT2SAS_SATA_QUEUE_DEPTH;
  1561. if (sas_device->device_info &
  1562. MPI2_SAS_DEVICE_INFO_STP_TARGET)
  1563. ds = "STP";
  1564. else if (sas_device->device_info &
  1565. MPI2_SAS_DEVICE_INFO_SATA_DEVICE)
  1566. ds = "SATA";
  1567. }
  1568. sdev_printk(KERN_INFO, sdev, "%s: handle(0x%04x), "
  1569. "sas_addr(0x%016llx), device_name(0x%016llx)\n",
  1570. ds, sas_device->handle,
  1571. (unsigned long long)sas_device->sas_address,
  1572. (unsigned long long)sas_device->device_name);
  1573. sdev_printk(KERN_INFO, sdev, "%s: "
  1574. "enclosure_logical_id(0x%016llx), slot(%d)\n", ds,
  1575. (unsigned long long) sas_device->enclosure_logical_id,
  1576. sas_device->slot);
  1577. if (!ssp_target)
  1578. _scsih_display_sata_capabilities(ioc, sas_device, sdev);
  1579. }
  1580. _scsih_change_queue_depth(sdev, qdepth, SCSI_QDEPTH_DEFAULT);
  1581. if (ssp_target) {
  1582. sas_read_port_mode_page(sdev);
  1583. _scsih_enable_tlr(ioc, sdev);
  1584. }
  1585. return 0;
  1586. }
  1587. /**
  1588. * _scsih_bios_param - fetch head, sector, cylinder info for a disk
  1589. * @sdev: scsi device struct
  1590. * @bdev: pointer to block device context
  1591. * @capacity: device size (in 512 byte sectors)
  1592. * @params: three element array to place output:
  1593. * params[0] number of heads (max 255)
  1594. * params[1] number of sectors (max 63)
  1595. * params[2] number of cylinders
  1596. *
  1597. * Return nothing.
  1598. */
  1599. static int
  1600. _scsih_bios_param(struct scsi_device *sdev, struct block_device *bdev,
  1601. sector_t capacity, int params[])
  1602. {
  1603. int heads;
  1604. int sectors;
  1605. sector_t cylinders;
  1606. ulong dummy;
  1607. heads = 64;
  1608. sectors = 32;
  1609. dummy = heads * sectors;
  1610. cylinders = capacity;
  1611. sector_div(cylinders, dummy);
  1612. /*
  1613. * Handle extended translation size for logical drives
  1614. * > 1Gb
  1615. */
  1616. if ((ulong)capacity >= 0x200000) {
  1617. heads = 255;
  1618. sectors = 63;
  1619. dummy = heads * sectors;
  1620. cylinders = capacity;
  1621. sector_div(cylinders, dummy);
  1622. }
  1623. /* return result */
  1624. params[0] = heads;
  1625. params[1] = sectors;
  1626. params[2] = cylinders;
  1627. return 0;
  1628. }
  1629. /**
  1630. * _scsih_response_code - translation of device response code
  1631. * @ioc: per adapter object
  1632. * @response_code: response code returned by the device
  1633. *
  1634. * Return nothing.
  1635. */
  1636. static void
  1637. _scsih_response_code(struct MPT2SAS_ADAPTER *ioc, u8 response_code)
  1638. {
  1639. char *desc;
  1640. switch (response_code) {
  1641. case MPI2_SCSITASKMGMT_RSP_TM_COMPLETE:
  1642. desc = "task management request completed";
  1643. break;
  1644. case MPI2_SCSITASKMGMT_RSP_INVALID_FRAME:
  1645. desc = "invalid frame";
  1646. break;
  1647. case MPI2_SCSITASKMGMT_RSP_TM_NOT_SUPPORTED:
  1648. desc = "task management request not supported";
  1649. break;
  1650. case MPI2_SCSITASKMGMT_RSP_TM_FAILED:
  1651. desc = "task management request failed";
  1652. break;
  1653. case MPI2_SCSITASKMGMT_RSP_TM_SUCCEEDED:
  1654. desc = "task management request succeeded";
  1655. break;
  1656. case MPI2_SCSITASKMGMT_RSP_TM_INVALID_LUN:
  1657. desc = "invalid lun";
  1658. break;
  1659. case 0xA:
  1660. desc = "overlapped tag attempted";
  1661. break;
  1662. case MPI2_SCSITASKMGMT_RSP_IO_QUEUED_ON_IOC:
  1663. desc = "task queued, however not sent to target";
  1664. break;
  1665. default:
  1666. desc = "unknown";
  1667. break;
  1668. }
  1669. printk(MPT2SAS_WARN_FMT "response_code(0x%01x): %s\n",
  1670. ioc->name, response_code, desc);
  1671. }
  1672. /**
  1673. * _scsih_tm_done - tm completion routine
  1674. * @ioc: per adapter object
  1675. * @smid: system request message index
  1676. * @msix_index: MSIX table index supplied by the OS
  1677. * @reply: reply message frame(lower 32bit addr)
  1678. * Context: none.
  1679. *
  1680. * The callback handler when using scsih_issue_tm.
  1681. *
  1682. * Return 1 meaning mf should be freed from _base_interrupt
  1683. * 0 means the mf is freed from this function.
  1684. */
  1685. static u8
  1686. _scsih_tm_done(struct MPT2SAS_ADAPTER *ioc, u16 smid, u8 msix_index, u32 reply)
  1687. {
  1688. MPI2DefaultReply_t *mpi_reply;
  1689. if (ioc->tm_cmds.status == MPT2_CMD_NOT_USED)
  1690. return 1;
  1691. if (ioc->tm_cmds.smid != smid)
  1692. return 1;
  1693. ioc->tm_cmds.status |= MPT2_CMD_COMPLETE;
  1694. mpi_reply = mpt2sas_base_get_reply_virt_addr(ioc, reply);
  1695. if (mpi_reply) {
  1696. memcpy(ioc->tm_cmds.reply, mpi_reply, mpi_reply->MsgLength*4);
  1697. ioc->tm_cmds.status |= MPT2_CMD_REPLY_VALID;
  1698. }
  1699. ioc->tm_cmds.status &= ~MPT2_CMD_PENDING;
  1700. complete(&ioc->tm_cmds.done);
  1701. return 1;
  1702. }
  1703. /**
  1704. * mpt2sas_scsih_set_tm_flag - set per target tm_busy
  1705. * @ioc: per adapter object
  1706. * @handle: device handle
  1707. *
  1708. * During taskmangement request, we need to freeze the device queue.
  1709. */
  1710. void
  1711. mpt2sas_scsih_set_tm_flag(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  1712. {
  1713. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1714. struct scsi_device *sdev;
  1715. u8 skip = 0;
  1716. shost_for_each_device(sdev, ioc->shost) {
  1717. if (skip)
  1718. continue;
  1719. sas_device_priv_data = sdev->hostdata;
  1720. if (!sas_device_priv_data)
  1721. continue;
  1722. if (sas_device_priv_data->sas_target->handle == handle) {
  1723. sas_device_priv_data->sas_target->tm_busy = 1;
  1724. skip = 1;
  1725. ioc->ignore_loginfos = 1;
  1726. }
  1727. }
  1728. }
  1729. /**
  1730. * mpt2sas_scsih_clear_tm_flag - clear per target tm_busy
  1731. * @ioc: per adapter object
  1732. * @handle: device handle
  1733. *
  1734. * During taskmangement request, we need to freeze the device queue.
  1735. */
  1736. void
  1737. mpt2sas_scsih_clear_tm_flag(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  1738. {
  1739. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1740. struct scsi_device *sdev;
  1741. u8 skip = 0;
  1742. shost_for_each_device(sdev, ioc->shost) {
  1743. if (skip)
  1744. continue;
  1745. sas_device_priv_data = sdev->hostdata;
  1746. if (!sas_device_priv_data)
  1747. continue;
  1748. if (sas_device_priv_data->sas_target->handle == handle) {
  1749. sas_device_priv_data->sas_target->tm_busy = 0;
  1750. skip = 1;
  1751. ioc->ignore_loginfos = 0;
  1752. }
  1753. }
  1754. }
  1755. /**
  1756. * mpt2sas_scsih_issue_tm - main routine for sending tm requests
  1757. * @ioc: per adapter struct
  1758. * @device_handle: device handle
  1759. * @lun: lun number
  1760. * @type: MPI2_SCSITASKMGMT_TASKTYPE__XXX (defined in mpi2_init.h)
  1761. * @smid_task: smid assigned to the task
  1762. * @timeout: timeout in seconds
  1763. * Context: The calling function needs to acquire the tm_cmds.mutex
  1764. *
  1765. * A generic API for sending task management requests to firmware.
  1766. *
  1767. * The ioc->tm_cmds.status flag should be MPT2_CMD_NOT_USED before calling
  1768. * this API.
  1769. *
  1770. * The callback index is set inside `ioc->tm_cb_idx`.
  1771. *
  1772. * Return nothing.
  1773. */
  1774. void
  1775. mpt2sas_scsih_issue_tm(struct MPT2SAS_ADAPTER *ioc, u16 handle, uint lun,
  1776. u8 type, u16 smid_task, ulong timeout)
  1777. {
  1778. Mpi2SCSITaskManagementRequest_t *mpi_request;
  1779. Mpi2SCSITaskManagementReply_t *mpi_reply;
  1780. u16 smid = 0;
  1781. u32 ioc_state;
  1782. unsigned long timeleft;
  1783. if (ioc->tm_cmds.status != MPT2_CMD_NOT_USED) {
  1784. printk(MPT2SAS_INFO_FMT "%s: tm_cmd busy!!!\n",
  1785. __func__, ioc->name);
  1786. return;
  1787. }
  1788. if (ioc->shost_recovery) {
  1789. printk(MPT2SAS_INFO_FMT "%s: host reset in progress!\n",
  1790. __func__, ioc->name);
  1791. return;
  1792. }
  1793. ioc_state = mpt2sas_base_get_iocstate(ioc, 0);
  1794. if (ioc_state & MPI2_DOORBELL_USED) {
  1795. dhsprintk(ioc, printk(MPT2SAS_DEBUG_FMT "unexpected doorbell "
  1796. "active!\n", ioc->name));
  1797. goto issue_host_reset;
  1798. }
  1799. if ((ioc_state & MPI2_IOC_STATE_MASK) == MPI2_IOC_STATE_FAULT) {
  1800. mpt2sas_base_fault_info(ioc, ioc_state &
  1801. MPI2_DOORBELL_DATA_MASK);
  1802. goto issue_host_reset;
  1803. }
  1804. smid = mpt2sas_base_get_smid_hpr(ioc, ioc->tm_cb_idx);
  1805. if (!smid) {
  1806. printk(MPT2SAS_ERR_FMT "%s: failed obtaining a smid\n",
  1807. ioc->name, __func__);
  1808. return;
  1809. }
  1810. dtmprintk(ioc, printk(MPT2SAS_INFO_FMT "sending tm: handle(0x%04x),"
  1811. " task_type(0x%02x), smid(%d)\n", ioc->name, handle, type,
  1812. smid_task));
  1813. ioc->tm_cmds.status = MPT2_CMD_PENDING;
  1814. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid);
  1815. ioc->tm_cmds.smid = smid;
  1816. memset(mpi_request, 0, sizeof(Mpi2SCSITaskManagementRequest_t));
  1817. mpi_request->Function = MPI2_FUNCTION_SCSI_TASK_MGMT;
  1818. mpi_request->DevHandle = cpu_to_le16(handle);
  1819. mpi_request->TaskType = type;
  1820. mpi_request->TaskMID = cpu_to_le16(smid_task);
  1821. mpi_request->VP_ID = 0; /* TODO */
  1822. mpi_request->VF_ID = 0;
  1823. int_to_scsilun(lun, (struct scsi_lun *)mpi_request->LUN);
  1824. mpt2sas_scsih_set_tm_flag(ioc, handle);
  1825. init_completion(&ioc->tm_cmds.done);
  1826. mpt2sas_base_put_smid_hi_priority(ioc, smid);
  1827. timeleft = wait_for_completion_timeout(&ioc->tm_cmds.done, timeout*HZ);
  1828. mpt2sas_scsih_clear_tm_flag(ioc, handle);
  1829. if (!(ioc->tm_cmds.status & MPT2_CMD_COMPLETE)) {
  1830. printk(MPT2SAS_ERR_FMT "%s: timeout\n",
  1831. ioc->name, __func__);
  1832. _debug_dump_mf(mpi_request,
  1833. sizeof(Mpi2SCSITaskManagementRequest_t)/4);
  1834. if (!(ioc->tm_cmds.status & MPT2_CMD_RESET))
  1835. goto issue_host_reset;
  1836. }
  1837. if (ioc->tm_cmds.status & MPT2_CMD_REPLY_VALID) {
  1838. mpi_reply = ioc->tm_cmds.reply;
  1839. dtmprintk(ioc, printk(MPT2SAS_INFO_FMT "complete tm: "
  1840. "ioc_status(0x%04x), loginfo(0x%08x), term_count(0x%08x)\n",
  1841. ioc->name, le16_to_cpu(mpi_reply->IOCStatus),
  1842. le32_to_cpu(mpi_reply->IOCLogInfo),
  1843. le32_to_cpu(mpi_reply->TerminationCount)));
  1844. if (ioc->logging_level & MPT_DEBUG_TM)
  1845. _scsih_response_code(ioc, mpi_reply->ResponseCode);
  1846. }
  1847. return;
  1848. issue_host_reset:
  1849. mpt2sas_base_hard_reset_handler(ioc, CAN_SLEEP, FORCE_BIG_HAMMER);
  1850. }
  1851. /**
  1852. * _scsih_abort - eh threads main abort routine
  1853. * @sdev: scsi device struct
  1854. *
  1855. * Returns SUCCESS if command aborted else FAILED
  1856. */
  1857. static int
  1858. _scsih_abort(struct scsi_cmnd *scmd)
  1859. {
  1860. struct MPT2SAS_ADAPTER *ioc = shost_priv(scmd->device->host);
  1861. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1862. u16 smid;
  1863. u16 handle;
  1864. int r;
  1865. struct scsi_cmnd *scmd_lookup;
  1866. printk(MPT2SAS_INFO_FMT "attempting task abort! scmd(%p)\n",
  1867. ioc->name, scmd);
  1868. scsi_print_command(scmd);
  1869. sas_device_priv_data = scmd->device->hostdata;
  1870. if (!sas_device_priv_data || !sas_device_priv_data->sas_target) {
  1871. printk(MPT2SAS_INFO_FMT "device been deleted! scmd(%p)\n",
  1872. ioc->name, scmd);
  1873. scmd->result = DID_NO_CONNECT << 16;
  1874. scmd->scsi_done(scmd);
  1875. r = SUCCESS;
  1876. goto out;
  1877. }
  1878. /* search for the command */
  1879. smid = _scsih_scsi_lookup_find_by_scmd(ioc, scmd);
  1880. if (!smid) {
  1881. scmd->result = DID_RESET << 16;
  1882. r = SUCCESS;
  1883. goto out;
  1884. }
  1885. /* for hidden raid components and volumes this is not supported */
  1886. if (sas_device_priv_data->sas_target->flags &
  1887. MPT_TARGET_FLAGS_RAID_COMPONENT ||
  1888. sas_device_priv_data->sas_target->flags & MPT_TARGET_FLAGS_VOLUME) {
  1889. scmd->result = DID_RESET << 16;
  1890. r = FAILED;
  1891. goto out;
  1892. }
  1893. mpt2sas_halt_firmware(ioc);
  1894. mutex_lock(&ioc->tm_cmds.mutex);
  1895. handle = sas_device_priv_data->sas_target->handle;
  1896. mpt2sas_scsih_issue_tm(ioc, handle, sas_device_priv_data->lun,
  1897. MPI2_SCSITASKMGMT_TASKTYPE_ABORT_TASK, smid, 30);
  1898. /* sanity check - see whether command actually completed */
  1899. scmd_lookup = _scsih_scsi_lookup_get(ioc, smid);
  1900. if (scmd_lookup && (scmd_lookup->serial_number == scmd->serial_number))
  1901. r = FAILED;
  1902. else
  1903. r = SUCCESS;
  1904. ioc->tm_cmds.status = MPT2_CMD_NOT_USED;
  1905. mutex_unlock(&ioc->tm_cmds.mutex);
  1906. out:
  1907. printk(MPT2SAS_INFO_FMT "task abort: %s scmd(%p)\n",
  1908. ioc->name, ((r == SUCCESS) ? "SUCCESS" : "FAILED"), scmd);
  1909. return r;
  1910. }
  1911. /**
  1912. * _scsih_dev_reset - eh threads main device reset routine
  1913. * @sdev: scsi device struct
  1914. *
  1915. * Returns SUCCESS if command aborted else FAILED
  1916. */
  1917. static int
  1918. _scsih_dev_reset(struct scsi_cmnd *scmd)
  1919. {
  1920. struct MPT2SAS_ADAPTER *ioc = shost_priv(scmd->device->host);
  1921. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1922. struct _sas_device *sas_device;
  1923. unsigned long flags;
  1924. u16 handle;
  1925. int r;
  1926. printk(MPT2SAS_INFO_FMT "attempting device reset! scmd(%p)\n",
  1927. ioc->name, scmd);
  1928. scsi_print_command(scmd);
  1929. sas_device_priv_data = scmd->device->hostdata;
  1930. if (!sas_device_priv_data || !sas_device_priv_data->sas_target) {
  1931. printk(MPT2SAS_INFO_FMT "device been deleted! scmd(%p)\n",
  1932. ioc->name, scmd);
  1933. scmd->result = DID_NO_CONNECT << 16;
  1934. scmd->scsi_done(scmd);
  1935. r = SUCCESS;
  1936. goto out;
  1937. }
  1938. /* for hidden raid components obtain the volume_handle */
  1939. handle = 0;
  1940. if (sas_device_priv_data->sas_target->flags &
  1941. MPT_TARGET_FLAGS_RAID_COMPONENT) {
  1942. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  1943. sas_device = _scsih_sas_device_find_by_handle(ioc,
  1944. sas_device_priv_data->sas_target->handle);
  1945. if (sas_device)
  1946. handle = sas_device->volume_handle;
  1947. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  1948. } else
  1949. handle = sas_device_priv_data->sas_target->handle;
  1950. if (!handle) {
  1951. scmd->result = DID_RESET << 16;
  1952. r = FAILED;
  1953. goto out;
  1954. }
  1955. mutex_lock(&ioc->tm_cmds.mutex);
  1956. mpt2sas_scsih_issue_tm(ioc, handle, 0,
  1957. MPI2_SCSITASKMGMT_TASKTYPE_LOGICAL_UNIT_RESET, scmd->device->lun,
  1958. 30);
  1959. /*
  1960. * sanity check see whether all commands to this device been
  1961. * completed
  1962. */
  1963. if (_scsih_scsi_lookup_find_by_lun(ioc, scmd->device->id,
  1964. scmd->device->lun, scmd->device->channel))
  1965. r = FAILED;
  1966. else
  1967. r = SUCCESS;
  1968. ioc->tm_cmds.status = MPT2_CMD_NOT_USED;
  1969. mutex_unlock(&ioc->tm_cmds.mutex);
  1970. out:
  1971. printk(MPT2SAS_INFO_FMT "device reset: %s scmd(%p)\n",
  1972. ioc->name, ((r == SUCCESS) ? "SUCCESS" : "FAILED"), scmd);
  1973. return r;
  1974. }
  1975. /**
  1976. * _scsih_target_reset - eh threads main target reset routine
  1977. * @sdev: scsi device struct
  1978. *
  1979. * Returns SUCCESS if command aborted else FAILED
  1980. */
  1981. static int
  1982. _scsih_target_reset(struct scsi_cmnd *scmd)
  1983. {
  1984. struct MPT2SAS_ADAPTER *ioc = shost_priv(scmd->device->host);
  1985. struct MPT2SAS_DEVICE *sas_device_priv_data;
  1986. struct _sas_device *sas_device;
  1987. unsigned long flags;
  1988. u16 handle;
  1989. int r;
  1990. printk(MPT2SAS_INFO_FMT "attempting target reset! scmd(%p)\n",
  1991. ioc->name, scmd);
  1992. scsi_print_command(scmd);
  1993. sas_device_priv_data = scmd->device->hostdata;
  1994. if (!sas_device_priv_data || !sas_device_priv_data->sas_target) {
  1995. printk(MPT2SAS_INFO_FMT "target been deleted! scmd(%p)\n",
  1996. ioc->name, scmd);
  1997. scmd->result = DID_NO_CONNECT << 16;
  1998. scmd->scsi_done(scmd);
  1999. r = SUCCESS;
  2000. goto out;
  2001. }
  2002. /* for hidden raid components obtain the volume_handle */
  2003. handle = 0;
  2004. if (sas_device_priv_data->sas_target->flags &
  2005. MPT_TARGET_FLAGS_RAID_COMPONENT) {
  2006. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  2007. sas_device = _scsih_sas_device_find_by_handle(ioc,
  2008. sas_device_priv_data->sas_target->handle);
  2009. if (sas_device)
  2010. handle = sas_device->volume_handle;
  2011. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2012. } else
  2013. handle = sas_device_priv_data->sas_target->handle;
  2014. if (!handle) {
  2015. scmd->result = DID_RESET << 16;
  2016. r = FAILED;
  2017. goto out;
  2018. }
  2019. mutex_lock(&ioc->tm_cmds.mutex);
  2020. mpt2sas_scsih_issue_tm(ioc, handle, 0,
  2021. MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET, 0, 30);
  2022. /*
  2023. * sanity check see whether all commands to this target been
  2024. * completed
  2025. */
  2026. if (_scsih_scsi_lookup_find_by_target(ioc, scmd->device->id,
  2027. scmd->device->channel))
  2028. r = FAILED;
  2029. else
  2030. r = SUCCESS;
  2031. ioc->tm_cmds.status = MPT2_CMD_NOT_USED;
  2032. mutex_unlock(&ioc->tm_cmds.mutex);
  2033. out:
  2034. printk(MPT2SAS_INFO_FMT "target reset: %s scmd(%p)\n",
  2035. ioc->name, ((r == SUCCESS) ? "SUCCESS" : "FAILED"), scmd);
  2036. return r;
  2037. }
  2038. /**
  2039. * _scsih_host_reset - eh threads main host reset routine
  2040. * @sdev: scsi device struct
  2041. *
  2042. * Returns SUCCESS if command aborted else FAILED
  2043. */
  2044. static int
  2045. _scsih_host_reset(struct scsi_cmnd *scmd)
  2046. {
  2047. struct MPT2SAS_ADAPTER *ioc = shost_priv(scmd->device->host);
  2048. int r, retval;
  2049. printk(MPT2SAS_INFO_FMT "attempting host reset! scmd(%p)\n",
  2050. ioc->name, scmd);
  2051. scsi_print_command(scmd);
  2052. retval = mpt2sas_base_hard_reset_handler(ioc, CAN_SLEEP,
  2053. FORCE_BIG_HAMMER);
  2054. r = (retval < 0) ? FAILED : SUCCESS;
  2055. printk(MPT2SAS_INFO_FMT "host reset: %s scmd(%p)\n",
  2056. ioc->name, ((r == SUCCESS) ? "SUCCESS" : "FAILED"), scmd);
  2057. return r;
  2058. }
  2059. /**
  2060. * _scsih_fw_event_add - insert and queue up fw_event
  2061. * @ioc: per adapter object
  2062. * @fw_event: object describing the event
  2063. * Context: This function will acquire ioc->fw_event_lock.
  2064. *
  2065. * This adds the firmware event object into link list, then queues it up to
  2066. * be processed from user context.
  2067. *
  2068. * Return nothing.
  2069. */
  2070. static void
  2071. _scsih_fw_event_add(struct MPT2SAS_ADAPTER *ioc, struct fw_event_work *fw_event)
  2072. {
  2073. unsigned long flags;
  2074. if (ioc->firmware_event_thread == NULL)
  2075. return;
  2076. spin_lock_irqsave(&ioc->fw_event_lock, flags);
  2077. list_add_tail(&fw_event->list, &ioc->fw_event_list);
  2078. INIT_DELAYED_WORK(&fw_event->delayed_work, _firmware_event_work);
  2079. queue_delayed_work(ioc->firmware_event_thread,
  2080. &fw_event->delayed_work, 0);
  2081. spin_unlock_irqrestore(&ioc->fw_event_lock, flags);
  2082. }
  2083. /**
  2084. * _scsih_fw_event_free - delete fw_event
  2085. * @ioc: per adapter object
  2086. * @fw_event: object describing the event
  2087. * Context: This function will acquire ioc->fw_event_lock.
  2088. *
  2089. * This removes firmware event object from link list, frees associated memory.
  2090. *
  2091. * Return nothing.
  2092. */
  2093. static void
  2094. _scsih_fw_event_free(struct MPT2SAS_ADAPTER *ioc, struct fw_event_work
  2095. *fw_event)
  2096. {
  2097. unsigned long flags;
  2098. spin_lock_irqsave(&ioc->fw_event_lock, flags);
  2099. list_del(&fw_event->list);
  2100. kfree(fw_event->event_data);
  2101. kfree(fw_event);
  2102. spin_unlock_irqrestore(&ioc->fw_event_lock, flags);
  2103. }
  2104. /**
  2105. * _scsih_queue_rescan - queue a topology rescan from user context
  2106. * @ioc: per adapter object
  2107. *
  2108. * Return nothing.
  2109. */
  2110. static void
  2111. _scsih_queue_rescan(struct MPT2SAS_ADAPTER *ioc)
  2112. {
  2113. struct fw_event_work *fw_event;
  2114. if (ioc->wait_for_port_enable_to_complete)
  2115. return;
  2116. fw_event = kzalloc(sizeof(struct fw_event_work), GFP_ATOMIC);
  2117. if (!fw_event)
  2118. return;
  2119. fw_event->event = MPT2SAS_RESCAN_AFTER_HOST_RESET;
  2120. fw_event->ioc = ioc;
  2121. _scsih_fw_event_add(ioc, fw_event);
  2122. }
  2123. /**
  2124. * _scsih_fw_event_cleanup_queue - cleanup event queue
  2125. * @ioc: per adapter object
  2126. *
  2127. * Walk the firmware event queue, either killing timers, or waiting
  2128. * for outstanding events to complete
  2129. *
  2130. * Return nothing.
  2131. */
  2132. static void
  2133. _scsih_fw_event_cleanup_queue(struct MPT2SAS_ADAPTER *ioc)
  2134. {
  2135. struct fw_event_work *fw_event, *next;
  2136. if (list_empty(&ioc->fw_event_list) ||
  2137. !ioc->firmware_event_thread || in_interrupt())
  2138. return;
  2139. list_for_each_entry_safe(fw_event, next, &ioc->fw_event_list, list) {
  2140. if (cancel_delayed_work(&fw_event->delayed_work)) {
  2141. _scsih_fw_event_free(ioc, fw_event);
  2142. continue;
  2143. }
  2144. fw_event->cancel_pending_work = 1;
  2145. }
  2146. }
  2147. /**
  2148. * _scsih_ublock_io_device - set the device state to SDEV_RUNNING
  2149. * @ioc: per adapter object
  2150. * @handle: device handle
  2151. *
  2152. * During device pull we need to appropiately set the sdev state.
  2153. */
  2154. static void
  2155. _scsih_ublock_io_device(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  2156. {
  2157. struct MPT2SAS_DEVICE *sas_device_priv_data;
  2158. struct scsi_device *sdev;
  2159. shost_for_each_device(sdev, ioc->shost) {
  2160. sas_device_priv_data = sdev->hostdata;
  2161. if (!sas_device_priv_data)
  2162. continue;
  2163. if (!sas_device_priv_data->block)
  2164. continue;
  2165. if (sas_device_priv_data->sas_target->handle == handle) {
  2166. dewtprintk(ioc, sdev_printk(KERN_INFO, sdev,
  2167. MPT2SAS_INFO_FMT "SDEV_RUNNING: "
  2168. "handle(0x%04x)\n", ioc->name, handle));
  2169. sas_device_priv_data->block = 0;
  2170. scsi_internal_device_unblock(sdev);
  2171. }
  2172. }
  2173. }
  2174. /**
  2175. * _scsih_block_io_device - set the device state to SDEV_BLOCK
  2176. * @ioc: per adapter object
  2177. * @handle: device handle
  2178. *
  2179. * During device pull we need to appropiately set the sdev state.
  2180. */
  2181. static void
  2182. _scsih_block_io_device(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  2183. {
  2184. struct MPT2SAS_DEVICE *sas_device_priv_data;
  2185. struct scsi_device *sdev;
  2186. shost_for_each_device(sdev, ioc->shost) {
  2187. sas_device_priv_data = sdev->hostdata;
  2188. if (!sas_device_priv_data)
  2189. continue;
  2190. if (sas_device_priv_data->block)
  2191. continue;
  2192. if (sas_device_priv_data->sas_target->handle == handle) {
  2193. dewtprintk(ioc, sdev_printk(KERN_INFO, sdev,
  2194. MPT2SAS_INFO_FMT "SDEV_BLOCK: "
  2195. "handle(0x%04x)\n", ioc->name, handle));
  2196. sas_device_priv_data->block = 1;
  2197. scsi_internal_device_block(sdev);
  2198. }
  2199. }
  2200. }
  2201. /**
  2202. * _scsih_block_io_to_children_attached_to_ex
  2203. * @ioc: per adapter object
  2204. * @sas_expander: the sas_device object
  2205. *
  2206. * This routine set sdev state to SDEV_BLOCK for all devices
  2207. * attached to this expander. This function called when expander is
  2208. * pulled.
  2209. */
  2210. static void
  2211. _scsih_block_io_to_children_attached_to_ex(struct MPT2SAS_ADAPTER *ioc,
  2212. struct _sas_node *sas_expander)
  2213. {
  2214. struct _sas_port *mpt2sas_port;
  2215. struct _sas_device *sas_device;
  2216. struct _sas_node *expander_sibling;
  2217. unsigned long flags;
  2218. if (!sas_expander)
  2219. return;
  2220. list_for_each_entry(mpt2sas_port,
  2221. &sas_expander->sas_port_list, port_list) {
  2222. if (mpt2sas_port->remote_identify.device_type ==
  2223. SAS_END_DEVICE) {
  2224. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  2225. sas_device =
  2226. mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  2227. mpt2sas_port->remote_identify.sas_address);
  2228. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2229. if (!sas_device)
  2230. continue;
  2231. _scsih_block_io_device(ioc, sas_device->handle);
  2232. }
  2233. }
  2234. list_for_each_entry(mpt2sas_port,
  2235. &sas_expander->sas_port_list, port_list) {
  2236. if (mpt2sas_port->remote_identify.device_type ==
  2237. MPI2_SAS_DEVICE_INFO_EDGE_EXPANDER ||
  2238. mpt2sas_port->remote_identify.device_type ==
  2239. MPI2_SAS_DEVICE_INFO_FANOUT_EXPANDER) {
  2240. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  2241. expander_sibling =
  2242. mpt2sas_scsih_expander_find_by_sas_address(
  2243. ioc, mpt2sas_port->remote_identify.sas_address);
  2244. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  2245. _scsih_block_io_to_children_attached_to_ex(ioc,
  2246. expander_sibling);
  2247. }
  2248. }
  2249. }
  2250. /**
  2251. * _scsih_block_io_to_children_attached_directly
  2252. * @ioc: per adapter object
  2253. * @event_data: topology change event data
  2254. *
  2255. * This routine set sdev state to SDEV_BLOCK for all devices
  2256. * direct attached during device pull.
  2257. */
  2258. static void
  2259. _scsih_block_io_to_children_attached_directly(struct MPT2SAS_ADAPTER *ioc,
  2260. Mpi2EventDataSasTopologyChangeList_t *event_data)
  2261. {
  2262. int i;
  2263. u16 handle;
  2264. u16 reason_code;
  2265. u8 phy_number;
  2266. for (i = 0; i < event_data->NumEntries; i++) {
  2267. handle = le16_to_cpu(event_data->PHY[i].AttachedDevHandle);
  2268. if (!handle)
  2269. continue;
  2270. phy_number = event_data->StartPhyNum + i;
  2271. reason_code = event_data->PHY[i].PhyStatus &
  2272. MPI2_EVENT_SAS_TOPO_RC_MASK;
  2273. if (reason_code == MPI2_EVENT_SAS_TOPO_RC_DELAY_NOT_RESPONDING)
  2274. _scsih_block_io_device(ioc, handle);
  2275. }
  2276. }
  2277. /**
  2278. * _scsih_tm_tr_send - send task management request
  2279. * @ioc: per adapter object
  2280. * @handle: device handle
  2281. * Context: interrupt time.
  2282. *
  2283. * This code is to initiate the device removal handshake protocal
  2284. * with controller firmware. This function will issue target reset
  2285. * using high priority request queue. It will send a sas iounit
  2286. * controll request (MPI2_SAS_OP_REMOVE_DEVICE) from this completion.
  2287. *
  2288. * This is designed to send muliple task management request at the same
  2289. * time to the fifo. If the fifo is full, we will append the request,
  2290. * and process it in a future completion.
  2291. */
  2292. static void
  2293. _scsih_tm_tr_send(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  2294. {
  2295. Mpi2SCSITaskManagementRequest_t *mpi_request;
  2296. u16 smid;
  2297. struct _sas_device *sas_device;
  2298. unsigned long flags;
  2299. struct _tr_list *delayed_tr;
  2300. if (ioc->shost_recovery || ioc->remove_host) {
  2301. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "%s: host reset in "
  2302. "progress!\n", __func__, ioc->name));
  2303. return;
  2304. }
  2305. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  2306. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  2307. if (sas_device && sas_device->hidden_raid_component) {
  2308. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2309. return;
  2310. }
  2311. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2312. smid = mpt2sas_base_get_smid_hpr(ioc, ioc->tm_tr_cb_idx);
  2313. if (!smid) {
  2314. delayed_tr = kzalloc(sizeof(*delayed_tr), GFP_ATOMIC);
  2315. if (!delayed_tr)
  2316. return;
  2317. INIT_LIST_HEAD(&delayed_tr->list);
  2318. delayed_tr->handle = handle;
  2319. list_add_tail(&delayed_tr->list, &ioc->delayed_tr_list);
  2320. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT
  2321. "DELAYED:tr:handle(0x%04x), (open)\n",
  2322. ioc->name, handle));
  2323. return;
  2324. }
  2325. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "tr_send:handle(0x%04x), "
  2326. "(open), smid(%d), cb(%d)\n", ioc->name, handle, smid,
  2327. ioc->tm_tr_cb_idx));
  2328. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid);
  2329. memset(mpi_request, 0, sizeof(Mpi2SCSITaskManagementRequest_t));
  2330. mpi_request->Function = MPI2_FUNCTION_SCSI_TASK_MGMT;
  2331. mpi_request->DevHandle = cpu_to_le16(handle);
  2332. mpi_request->TaskType = MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET;
  2333. mpt2sas_base_put_smid_hi_priority(ioc, smid);
  2334. }
  2335. /**
  2336. * _scsih_sas_control_complete - completion routine
  2337. * @ioc: per adapter object
  2338. * @smid: system request message index
  2339. * @msix_index: MSIX table index supplied by the OS
  2340. * @reply: reply message frame(lower 32bit addr)
  2341. * Context: interrupt time.
  2342. *
  2343. * This is the sas iounit controll completion routine.
  2344. * This code is part of the code to initiate the device removal
  2345. * handshake protocal with controller firmware.
  2346. *
  2347. * Return 1 meaning mf should be freed from _base_interrupt
  2348. * 0 means the mf is freed from this function.
  2349. */
  2350. static u8
  2351. _scsih_sas_control_complete(struct MPT2SAS_ADAPTER *ioc, u16 smid,
  2352. u8 msix_index, u32 reply)
  2353. {
  2354. Mpi2SasIoUnitControlReply_t *mpi_reply =
  2355. mpt2sas_base_get_reply_virt_addr(ioc, reply);
  2356. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT
  2357. "sc_complete:handle(0x%04x), (open) "
  2358. "smid(%d), ioc_status(0x%04x), loginfo(0x%08x)\n",
  2359. ioc->name, le16_to_cpu(mpi_reply->DevHandle), smid,
  2360. le16_to_cpu(mpi_reply->IOCStatus),
  2361. le32_to_cpu(mpi_reply->IOCLogInfo)));
  2362. return 1;
  2363. }
  2364. /**
  2365. * _scsih_tm_tr_complete -
  2366. * @ioc: per adapter object
  2367. * @smid: system request message index
  2368. * @msix_index: MSIX table index supplied by the OS
  2369. * @reply: reply message frame(lower 32bit addr)
  2370. * Context: interrupt time.
  2371. *
  2372. * This is the target reset completion routine.
  2373. * This code is part of the code to initiate the device removal
  2374. * handshake protocal with controller firmware.
  2375. * It will send a sas iounit controll request (MPI2_SAS_OP_REMOVE_DEVICE)
  2376. *
  2377. * Return 1 meaning mf should be freed from _base_interrupt
  2378. * 0 means the mf is freed from this function.
  2379. */
  2380. static u8
  2381. _scsih_tm_tr_complete(struct MPT2SAS_ADAPTER *ioc, u16 smid, u8 msix_index,
  2382. u32 reply)
  2383. {
  2384. u16 handle;
  2385. Mpi2SCSITaskManagementRequest_t *mpi_request_tm;
  2386. Mpi2SCSITaskManagementReply_t *mpi_reply =
  2387. mpt2sas_base_get_reply_virt_addr(ioc, reply);
  2388. Mpi2SasIoUnitControlRequest_t *mpi_request;
  2389. u16 smid_sas_ctrl;
  2390. struct _tr_list *delayed_tr;
  2391. if (ioc->shost_recovery || ioc->remove_host) {
  2392. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "%s: host reset in "
  2393. "progress!\n", __func__, ioc->name));
  2394. return 1;
  2395. }
  2396. mpi_request_tm = mpt2sas_base_get_msg_frame(ioc, smid);
  2397. handle = le16_to_cpu(mpi_request_tm->DevHandle);
  2398. if (handle != le16_to_cpu(mpi_reply->DevHandle)) {
  2399. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "spurious interrupt: "
  2400. "handle(0x%04x:0x%04x), smid(%d)!!!\n", ioc->name, handle,
  2401. le16_to_cpu(mpi_reply->DevHandle), smid));
  2402. return 0;
  2403. }
  2404. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT
  2405. "tr_complete:handle(0x%04x), (open) smid(%d), ioc_status(0x%04x), "
  2406. "loginfo(0x%08x), completed(%d)\n", ioc->name,
  2407. handle, smid, le16_to_cpu(mpi_reply->IOCStatus),
  2408. le32_to_cpu(mpi_reply->IOCLogInfo),
  2409. le32_to_cpu(mpi_reply->TerminationCount)));
  2410. smid_sas_ctrl = mpt2sas_base_get_smid(ioc, ioc->tm_sas_control_cb_idx);
  2411. if (!smid_sas_ctrl) {
  2412. printk(MPT2SAS_ERR_FMT "%s: failed obtaining a smid\n",
  2413. ioc->name, __func__);
  2414. return 1;
  2415. }
  2416. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "sc_send:handle(0x%04x), "
  2417. "(open), smid(%d), cb(%d)\n", ioc->name, handle, smid_sas_ctrl,
  2418. ioc->tm_sas_control_cb_idx));
  2419. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid_sas_ctrl);
  2420. memset(mpi_request, 0, sizeof(Mpi2SasIoUnitControlRequest_t));
  2421. mpi_request->Function = MPI2_FUNCTION_SAS_IO_UNIT_CONTROL;
  2422. mpi_request->Operation = MPI2_SAS_OP_REMOVE_DEVICE;
  2423. mpi_request->DevHandle = mpi_request_tm->DevHandle;
  2424. mpt2sas_base_put_smid_default(ioc, smid_sas_ctrl);
  2425. if (!list_empty(&ioc->delayed_tr_list)) {
  2426. delayed_tr = list_entry(ioc->delayed_tr_list.next,
  2427. struct _tr_list, list);
  2428. mpt2sas_base_free_smid(ioc, smid);
  2429. _scsih_tm_tr_send(ioc, delayed_tr->handle);
  2430. list_del(&delayed_tr->list);
  2431. kfree(delayed_tr);
  2432. return 0; /* tells base_interrupt not to free mf */
  2433. }
  2434. return 1;
  2435. }
  2436. /**
  2437. * _scsih_check_topo_delete_events - sanity check on topo events
  2438. * @ioc: per adapter object
  2439. * @event_data: the event data payload
  2440. *
  2441. * This routine added to better handle cable breaker.
  2442. *
  2443. * This handles the case where driver recieves multiple expander
  2444. * add and delete events in a single shot. When there is a delete event
  2445. * the routine will void any pending add events waiting in the event queue.
  2446. *
  2447. * Return nothing.
  2448. */
  2449. static void
  2450. _scsih_check_topo_delete_events(struct MPT2SAS_ADAPTER *ioc,
  2451. Mpi2EventDataSasTopologyChangeList_t *event_data)
  2452. {
  2453. struct fw_event_work *fw_event;
  2454. Mpi2EventDataSasTopologyChangeList_t *local_event_data;
  2455. u16 expander_handle;
  2456. struct _sas_node *sas_expander;
  2457. unsigned long flags;
  2458. int i, reason_code;
  2459. u16 handle;
  2460. for (i = 0 ; i < event_data->NumEntries; i++) {
  2461. if (event_data->PHY[i].PhyStatus &
  2462. MPI2_EVENT_SAS_TOPO_PHYSTATUS_VACANT)
  2463. continue;
  2464. handle = le16_to_cpu(event_data->PHY[i].AttachedDevHandle);
  2465. if (!handle)
  2466. continue;
  2467. reason_code = event_data->PHY[i].PhyStatus &
  2468. MPI2_EVENT_SAS_TOPO_RC_MASK;
  2469. if (reason_code == MPI2_EVENT_SAS_TOPO_RC_TARG_NOT_RESPONDING)
  2470. _scsih_tm_tr_send(ioc, handle);
  2471. }
  2472. expander_handle = le16_to_cpu(event_data->ExpanderDevHandle);
  2473. if (expander_handle < ioc->sas_hba.num_phys) {
  2474. _scsih_block_io_to_children_attached_directly(ioc, event_data);
  2475. return;
  2476. }
  2477. if (event_data->ExpStatus == MPI2_EVENT_SAS_TOPO_ES_DELAY_NOT_RESPONDING
  2478. || event_data->ExpStatus == MPI2_EVENT_SAS_TOPO_ES_NOT_RESPONDING) {
  2479. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  2480. sas_expander = mpt2sas_scsih_expander_find_by_handle(ioc,
  2481. expander_handle);
  2482. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  2483. _scsih_block_io_to_children_attached_to_ex(ioc, sas_expander);
  2484. } else if (event_data->ExpStatus == MPI2_EVENT_SAS_TOPO_ES_RESPONDING)
  2485. _scsih_block_io_to_children_attached_directly(ioc, event_data);
  2486. if (event_data->ExpStatus != MPI2_EVENT_SAS_TOPO_ES_NOT_RESPONDING)
  2487. return;
  2488. /* mark ignore flag for pending events */
  2489. spin_lock_irqsave(&ioc->fw_event_lock, flags);
  2490. list_for_each_entry(fw_event, &ioc->fw_event_list, list) {
  2491. if (fw_event->event != MPI2_EVENT_SAS_TOPOLOGY_CHANGE_LIST ||
  2492. fw_event->ignore)
  2493. continue;
  2494. local_event_data = fw_event->event_data;
  2495. if (local_event_data->ExpStatus ==
  2496. MPI2_EVENT_SAS_TOPO_ES_ADDED ||
  2497. local_event_data->ExpStatus ==
  2498. MPI2_EVENT_SAS_TOPO_ES_RESPONDING) {
  2499. if (le16_to_cpu(local_event_data->ExpanderDevHandle) ==
  2500. expander_handle) {
  2501. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT
  2502. "setting ignoring flag\n", ioc->name));
  2503. fw_event->ignore = 1;
  2504. }
  2505. }
  2506. }
  2507. spin_unlock_irqrestore(&ioc->fw_event_lock, flags);
  2508. }
  2509. /**
  2510. * _scsih_flush_running_cmds - completing outstanding commands.
  2511. * @ioc: per adapter object
  2512. *
  2513. * The flushing out of all pending scmd commands following host reset,
  2514. * where all IO is dropped to the floor.
  2515. *
  2516. * Return nothing.
  2517. */
  2518. static void
  2519. _scsih_flush_running_cmds(struct MPT2SAS_ADAPTER *ioc)
  2520. {
  2521. struct scsi_cmnd *scmd;
  2522. u16 smid;
  2523. u16 count = 0;
  2524. for (smid = 1; smid <= ioc->scsiio_depth; smid++) {
  2525. scmd = _scsih_scsi_lookup_get(ioc, smid);
  2526. if (!scmd)
  2527. continue;
  2528. count++;
  2529. mpt2sas_base_free_smid(ioc, smid);
  2530. scsi_dma_unmap(scmd);
  2531. scmd->result = DID_RESET << 16;
  2532. scmd->scsi_done(scmd);
  2533. }
  2534. dtmprintk(ioc, printk(MPT2SAS_INFO_FMT "completing %d cmds\n",
  2535. ioc->name, count));
  2536. }
  2537. /**
  2538. * _scsih_setup_eedp - setup MPI request for EEDP transfer
  2539. * @scmd: pointer to scsi command object
  2540. * @mpi_request: pointer to the SCSI_IO reqest message frame
  2541. *
  2542. * Supporting protection 1 and 3.
  2543. *
  2544. * Returns nothing
  2545. */
  2546. static void
  2547. _scsih_setup_eedp(struct scsi_cmnd *scmd, Mpi2SCSIIORequest_t *mpi_request)
  2548. {
  2549. u16 eedp_flags;
  2550. unsigned char prot_op = scsi_get_prot_op(scmd);
  2551. unsigned char prot_type = scsi_get_prot_type(scmd);
  2552. if (prot_type == SCSI_PROT_DIF_TYPE0 ||
  2553. prot_type == SCSI_PROT_DIF_TYPE2 ||
  2554. prot_op == SCSI_PROT_NORMAL)
  2555. return;
  2556. if (prot_op == SCSI_PROT_READ_STRIP)
  2557. eedp_flags = MPI2_SCSIIO_EEDPFLAGS_CHECK_REMOVE_OP;
  2558. else if (prot_op == SCSI_PROT_WRITE_INSERT)
  2559. eedp_flags = MPI2_SCSIIO_EEDPFLAGS_INSERT_OP;
  2560. else
  2561. return;
  2562. switch (prot_type) {
  2563. case SCSI_PROT_DIF_TYPE1:
  2564. /*
  2565. * enable ref/guard checking
  2566. * auto increment ref tag
  2567. */
  2568. eedp_flags |= MPI2_SCSIIO_EEDPFLAGS_INC_PRI_REFTAG |
  2569. MPI2_SCSIIO_EEDPFLAGS_CHECK_REFTAG |
  2570. MPI2_SCSIIO_EEDPFLAGS_CHECK_GUARD;
  2571. mpi_request->CDB.EEDP32.PrimaryReferenceTag =
  2572. cpu_to_be32(scsi_get_lba(scmd));
  2573. break;
  2574. case SCSI_PROT_DIF_TYPE3:
  2575. /*
  2576. * enable guard checking
  2577. */
  2578. eedp_flags |= MPI2_SCSIIO_EEDPFLAGS_CHECK_GUARD;
  2579. break;
  2580. }
  2581. mpi_request->EEDPBlockSize = cpu_to_le32(scmd->device->sector_size);
  2582. mpi_request->EEDPFlags = cpu_to_le16(eedp_flags);
  2583. }
  2584. /**
  2585. * _scsih_eedp_error_handling - return sense code for EEDP errors
  2586. * @scmd: pointer to scsi command object
  2587. * @ioc_status: ioc status
  2588. *
  2589. * Returns nothing
  2590. */
  2591. static void
  2592. _scsih_eedp_error_handling(struct scsi_cmnd *scmd, u16 ioc_status)
  2593. {
  2594. u8 ascq;
  2595. u8 sk;
  2596. u8 host_byte;
  2597. switch (ioc_status) {
  2598. case MPI2_IOCSTATUS_EEDP_GUARD_ERROR:
  2599. ascq = 0x01;
  2600. break;
  2601. case MPI2_IOCSTATUS_EEDP_APP_TAG_ERROR:
  2602. ascq = 0x02;
  2603. break;
  2604. case MPI2_IOCSTATUS_EEDP_REF_TAG_ERROR:
  2605. ascq = 0x03;
  2606. break;
  2607. default:
  2608. ascq = 0x00;
  2609. break;
  2610. }
  2611. if (scmd->sc_data_direction == DMA_TO_DEVICE) {
  2612. sk = ILLEGAL_REQUEST;
  2613. host_byte = DID_ABORT;
  2614. } else {
  2615. sk = ABORTED_COMMAND;
  2616. host_byte = DID_OK;
  2617. }
  2618. scsi_build_sense_buffer(0, scmd->sense_buffer, sk, 0x10, ascq);
  2619. scmd->result = DRIVER_SENSE << 24 | (host_byte << 16) |
  2620. SAM_STAT_CHECK_CONDITION;
  2621. }
  2622. /**
  2623. * _scsih_qcmd - main scsi request entry point
  2624. * @scmd: pointer to scsi command object
  2625. * @done: function pointer to be invoked on completion
  2626. *
  2627. * The callback index is set inside `ioc->scsi_io_cb_idx`.
  2628. *
  2629. * Returns 0 on success. If there's a failure, return either:
  2630. * SCSI_MLQUEUE_DEVICE_BUSY if the device queue is full, or
  2631. * SCSI_MLQUEUE_HOST_BUSY if the entire host queue is full
  2632. */
  2633. static int
  2634. _scsih_qcmd(struct scsi_cmnd *scmd, void (*done)(struct scsi_cmnd *))
  2635. {
  2636. struct MPT2SAS_ADAPTER *ioc = shost_priv(scmd->device->host);
  2637. struct MPT2SAS_DEVICE *sas_device_priv_data;
  2638. struct MPT2SAS_TARGET *sas_target_priv_data;
  2639. Mpi2SCSIIORequest_t *mpi_request;
  2640. u32 mpi_control;
  2641. u16 smid;
  2642. scmd->scsi_done = done;
  2643. sas_device_priv_data = scmd->device->hostdata;
  2644. if (!sas_device_priv_data) {
  2645. scmd->result = DID_NO_CONNECT << 16;
  2646. scmd->scsi_done(scmd);
  2647. return 0;
  2648. }
  2649. sas_target_priv_data = sas_device_priv_data->sas_target;
  2650. if (!sas_target_priv_data || sas_target_priv_data->handle ==
  2651. MPT2SAS_INVALID_DEVICE_HANDLE || sas_target_priv_data->deleted) {
  2652. scmd->result = DID_NO_CONNECT << 16;
  2653. scmd->scsi_done(scmd);
  2654. return 0;
  2655. }
  2656. /* see if we are busy with task managment stuff */
  2657. if (sas_device_priv_data->block || sas_target_priv_data->tm_busy)
  2658. return SCSI_MLQUEUE_DEVICE_BUSY;
  2659. else if (ioc->shost_recovery || ioc->ioc_link_reset_in_progress)
  2660. return SCSI_MLQUEUE_HOST_BUSY;
  2661. if (scmd->sc_data_direction == DMA_FROM_DEVICE)
  2662. mpi_control = MPI2_SCSIIO_CONTROL_READ;
  2663. else if (scmd->sc_data_direction == DMA_TO_DEVICE)
  2664. mpi_control = MPI2_SCSIIO_CONTROL_WRITE;
  2665. else
  2666. mpi_control = MPI2_SCSIIO_CONTROL_NODATATRANSFER;
  2667. /* set tags */
  2668. if (!(sas_device_priv_data->flags & MPT_DEVICE_FLAGS_INIT)) {
  2669. if (scmd->device->tagged_supported) {
  2670. if (scmd->device->ordered_tags)
  2671. mpi_control |= MPI2_SCSIIO_CONTROL_ORDEREDQ;
  2672. else
  2673. mpi_control |= MPI2_SCSIIO_CONTROL_SIMPLEQ;
  2674. } else
  2675. /* MPI Revision I (UNIT = 0xA) - removed MPI2_SCSIIO_CONTROL_UNTAGGED */
  2676. /* mpi_control |= MPI2_SCSIIO_CONTROL_UNTAGGED;
  2677. */
  2678. mpi_control |= (0x500);
  2679. } else
  2680. mpi_control |= MPI2_SCSIIO_CONTROL_SIMPLEQ;
  2681. /* Make sure Device is not raid volume */
  2682. if (!_scsih_is_raid(&scmd->device->sdev_gendev) &&
  2683. sas_is_tlr_enabled(scmd->device))
  2684. mpi_control |= MPI2_SCSIIO_CONTROL_TLR_ON;
  2685. smid = mpt2sas_base_get_smid_scsiio(ioc, ioc->scsi_io_cb_idx, scmd);
  2686. if (!smid) {
  2687. printk(MPT2SAS_ERR_FMT "%s: failed obtaining a smid\n",
  2688. ioc->name, __func__);
  2689. goto out;
  2690. }
  2691. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid);
  2692. memset(mpi_request, 0, sizeof(Mpi2SCSIIORequest_t));
  2693. _scsih_setup_eedp(scmd, mpi_request);
  2694. mpi_request->Function = MPI2_FUNCTION_SCSI_IO_REQUEST;
  2695. if (sas_device_priv_data->sas_target->flags &
  2696. MPT_TARGET_FLAGS_RAID_COMPONENT)
  2697. mpi_request->Function = MPI2_FUNCTION_RAID_SCSI_IO_PASSTHROUGH;
  2698. else
  2699. mpi_request->Function = MPI2_FUNCTION_SCSI_IO_REQUEST;
  2700. mpi_request->DevHandle =
  2701. cpu_to_le16(sas_device_priv_data->sas_target->handle);
  2702. mpi_request->DataLength = cpu_to_le32(scsi_bufflen(scmd));
  2703. mpi_request->Control = cpu_to_le32(mpi_control);
  2704. mpi_request->IoFlags = cpu_to_le16(scmd->cmd_len);
  2705. mpi_request->MsgFlags = MPI2_SCSIIO_MSGFLAGS_SYSTEM_SENSE_ADDR;
  2706. mpi_request->SenseBufferLength = SCSI_SENSE_BUFFERSIZE;
  2707. mpi_request->SenseBufferLowAddress =
  2708. mpt2sas_base_get_sense_buffer_dma(ioc, smid);
  2709. mpi_request->SGLOffset0 = offsetof(Mpi2SCSIIORequest_t, SGL) / 4;
  2710. mpi_request->SGLFlags = cpu_to_le16(MPI2_SCSIIO_SGLFLAGS_TYPE_MPI +
  2711. MPI2_SCSIIO_SGLFLAGS_SYSTEM_ADDR);
  2712. mpi_request->VF_ID = 0; /* TODO */
  2713. mpi_request->VP_ID = 0;
  2714. int_to_scsilun(sas_device_priv_data->lun, (struct scsi_lun *)
  2715. mpi_request->LUN);
  2716. memcpy(mpi_request->CDB.CDB32, scmd->cmnd, scmd->cmd_len);
  2717. if (!mpi_request->DataLength) {
  2718. mpt2sas_base_build_zero_len_sge(ioc, &mpi_request->SGL);
  2719. } else {
  2720. if (_scsih_build_scatter_gather(ioc, scmd, smid)) {
  2721. mpt2sas_base_free_smid(ioc, smid);
  2722. goto out;
  2723. }
  2724. }
  2725. mpt2sas_base_put_smid_scsi_io(ioc, smid,
  2726. sas_device_priv_data->sas_target->handle);
  2727. return 0;
  2728. out:
  2729. return SCSI_MLQUEUE_HOST_BUSY;
  2730. }
  2731. /**
  2732. * _scsih_normalize_sense - normalize descriptor and fixed format sense data
  2733. * @sense_buffer: sense data returned by target
  2734. * @data: normalized skey/asc/ascq
  2735. *
  2736. * Return nothing.
  2737. */
  2738. static void
  2739. _scsih_normalize_sense(char *sense_buffer, struct sense_info *data)
  2740. {
  2741. if ((sense_buffer[0] & 0x7F) >= 0x72) {
  2742. /* descriptor format */
  2743. data->skey = sense_buffer[1] & 0x0F;
  2744. data->asc = sense_buffer[2];
  2745. data->ascq = sense_buffer[3];
  2746. } else {
  2747. /* fixed format */
  2748. data->skey = sense_buffer[2] & 0x0F;
  2749. data->asc = sense_buffer[12];
  2750. data->ascq = sense_buffer[13];
  2751. }
  2752. }
  2753. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  2754. /**
  2755. * _scsih_scsi_ioc_info - translated non-successfull SCSI_IO request
  2756. * @ioc: per adapter object
  2757. * @scmd: pointer to scsi command object
  2758. * @mpi_reply: reply mf payload returned from firmware
  2759. *
  2760. * scsi_status - SCSI Status code returned from target device
  2761. * scsi_state - state info associated with SCSI_IO determined by ioc
  2762. * ioc_status - ioc supplied status info
  2763. *
  2764. * Return nothing.
  2765. */
  2766. static void
  2767. _scsih_scsi_ioc_info(struct MPT2SAS_ADAPTER *ioc, struct scsi_cmnd *scmd,
  2768. Mpi2SCSIIOReply_t *mpi_reply, u16 smid)
  2769. {
  2770. u32 response_info;
  2771. u8 *response_bytes;
  2772. u16 ioc_status = le16_to_cpu(mpi_reply->IOCStatus) &
  2773. MPI2_IOCSTATUS_MASK;
  2774. u8 scsi_state = mpi_reply->SCSIState;
  2775. u8 scsi_status = mpi_reply->SCSIStatus;
  2776. char *desc_ioc_state = NULL;
  2777. char *desc_scsi_status = NULL;
  2778. char *desc_scsi_state = ioc->tmp_string;
  2779. u32 log_info = le32_to_cpu(mpi_reply->IOCLogInfo);
  2780. if (log_info == 0x31170000)
  2781. return;
  2782. switch (ioc_status) {
  2783. case MPI2_IOCSTATUS_SUCCESS:
  2784. desc_ioc_state = "success";
  2785. break;
  2786. case MPI2_IOCSTATUS_INVALID_FUNCTION:
  2787. desc_ioc_state = "invalid function";
  2788. break;
  2789. case MPI2_IOCSTATUS_SCSI_RECOVERED_ERROR:
  2790. desc_ioc_state = "scsi recovered error";
  2791. break;
  2792. case MPI2_IOCSTATUS_SCSI_INVALID_DEVHANDLE:
  2793. desc_ioc_state = "scsi invalid dev handle";
  2794. break;
  2795. case MPI2_IOCSTATUS_SCSI_DEVICE_NOT_THERE:
  2796. desc_ioc_state = "scsi device not there";
  2797. break;
  2798. case MPI2_IOCSTATUS_SCSI_DATA_OVERRUN:
  2799. desc_ioc_state = "scsi data overrun";
  2800. break;
  2801. case MPI2_IOCSTATUS_SCSI_DATA_UNDERRUN:
  2802. desc_ioc_state = "scsi data underrun";
  2803. break;
  2804. case MPI2_IOCSTATUS_SCSI_IO_DATA_ERROR:
  2805. desc_ioc_state = "scsi io data error";
  2806. break;
  2807. case MPI2_IOCSTATUS_SCSI_PROTOCOL_ERROR:
  2808. desc_ioc_state = "scsi protocol error";
  2809. break;
  2810. case MPI2_IOCSTATUS_SCSI_TASK_TERMINATED:
  2811. desc_ioc_state = "scsi task terminated";
  2812. break;
  2813. case MPI2_IOCSTATUS_SCSI_RESIDUAL_MISMATCH:
  2814. desc_ioc_state = "scsi residual mismatch";
  2815. break;
  2816. case MPI2_IOCSTATUS_SCSI_TASK_MGMT_FAILED:
  2817. desc_ioc_state = "scsi task mgmt failed";
  2818. break;
  2819. case MPI2_IOCSTATUS_SCSI_IOC_TERMINATED:
  2820. desc_ioc_state = "scsi ioc terminated";
  2821. break;
  2822. case MPI2_IOCSTATUS_SCSI_EXT_TERMINATED:
  2823. desc_ioc_state = "scsi ext terminated";
  2824. break;
  2825. case MPI2_IOCSTATUS_EEDP_GUARD_ERROR:
  2826. desc_ioc_state = "eedp guard error";
  2827. break;
  2828. case MPI2_IOCSTATUS_EEDP_REF_TAG_ERROR:
  2829. desc_ioc_state = "eedp ref tag error";
  2830. break;
  2831. case MPI2_IOCSTATUS_EEDP_APP_TAG_ERROR:
  2832. desc_ioc_state = "eedp app tag error";
  2833. break;
  2834. default:
  2835. desc_ioc_state = "unknown";
  2836. break;
  2837. }
  2838. switch (scsi_status) {
  2839. case MPI2_SCSI_STATUS_GOOD:
  2840. desc_scsi_status = "good";
  2841. break;
  2842. case MPI2_SCSI_STATUS_CHECK_CONDITION:
  2843. desc_scsi_status = "check condition";
  2844. break;
  2845. case MPI2_SCSI_STATUS_CONDITION_MET:
  2846. desc_scsi_status = "condition met";
  2847. break;
  2848. case MPI2_SCSI_STATUS_BUSY:
  2849. desc_scsi_status = "busy";
  2850. break;
  2851. case MPI2_SCSI_STATUS_INTERMEDIATE:
  2852. desc_scsi_status = "intermediate";
  2853. break;
  2854. case MPI2_SCSI_STATUS_INTERMEDIATE_CONDMET:
  2855. desc_scsi_status = "intermediate condmet";
  2856. break;
  2857. case MPI2_SCSI_STATUS_RESERVATION_CONFLICT:
  2858. desc_scsi_status = "reservation conflict";
  2859. break;
  2860. case MPI2_SCSI_STATUS_COMMAND_TERMINATED:
  2861. desc_scsi_status = "command terminated";
  2862. break;
  2863. case MPI2_SCSI_STATUS_TASK_SET_FULL:
  2864. desc_scsi_status = "task set full";
  2865. break;
  2866. case MPI2_SCSI_STATUS_ACA_ACTIVE:
  2867. desc_scsi_status = "aca active";
  2868. break;
  2869. case MPI2_SCSI_STATUS_TASK_ABORTED:
  2870. desc_scsi_status = "task aborted";
  2871. break;
  2872. default:
  2873. desc_scsi_status = "unknown";
  2874. break;
  2875. }
  2876. desc_scsi_state[0] = '\0';
  2877. if (!scsi_state)
  2878. desc_scsi_state = " ";
  2879. if (scsi_state & MPI2_SCSI_STATE_RESPONSE_INFO_VALID)
  2880. strcat(desc_scsi_state, "response info ");
  2881. if (scsi_state & MPI2_SCSI_STATE_TERMINATED)
  2882. strcat(desc_scsi_state, "state terminated ");
  2883. if (scsi_state & MPI2_SCSI_STATE_NO_SCSI_STATUS)
  2884. strcat(desc_scsi_state, "no status ");
  2885. if (scsi_state & MPI2_SCSI_STATE_AUTOSENSE_FAILED)
  2886. strcat(desc_scsi_state, "autosense failed ");
  2887. if (scsi_state & MPI2_SCSI_STATE_AUTOSENSE_VALID)
  2888. strcat(desc_scsi_state, "autosense valid ");
  2889. scsi_print_command(scmd);
  2890. printk(MPT2SAS_WARN_FMT "\tdev handle(0x%04x), "
  2891. "ioc_status(%s)(0x%04x), smid(%d)\n", ioc->name,
  2892. le16_to_cpu(mpi_reply->DevHandle), desc_ioc_state,
  2893. ioc_status, smid);
  2894. printk(MPT2SAS_WARN_FMT "\trequest_len(%d), underflow(%d), "
  2895. "resid(%d)\n", ioc->name, scsi_bufflen(scmd), scmd->underflow,
  2896. scsi_get_resid(scmd));
  2897. printk(MPT2SAS_WARN_FMT "\ttag(%d), transfer_count(%d), "
  2898. "sc->result(0x%08x)\n", ioc->name, le16_to_cpu(mpi_reply->TaskTag),
  2899. le32_to_cpu(mpi_reply->TransferCount), scmd->result);
  2900. printk(MPT2SAS_WARN_FMT "\tscsi_status(%s)(0x%02x), "
  2901. "scsi_state(%s)(0x%02x)\n", ioc->name, desc_scsi_status,
  2902. scsi_status, desc_scsi_state, scsi_state);
  2903. if (scsi_state & MPI2_SCSI_STATE_AUTOSENSE_VALID) {
  2904. struct sense_info data;
  2905. _scsih_normalize_sense(scmd->sense_buffer, &data);
  2906. printk(MPT2SAS_WARN_FMT "\t[sense_key,asc,ascq]: "
  2907. "[0x%02x,0x%02x,0x%02x]\n", ioc->name, data.skey,
  2908. data.asc, data.ascq);
  2909. }
  2910. if (scsi_state & MPI2_SCSI_STATE_RESPONSE_INFO_VALID) {
  2911. response_info = le32_to_cpu(mpi_reply->ResponseInfo);
  2912. response_bytes = (u8 *)&response_info;
  2913. _scsih_response_code(ioc, response_bytes[0]);
  2914. }
  2915. }
  2916. #endif
  2917. /**
  2918. * _scsih_smart_predicted_fault - illuminate Fault LED
  2919. * @ioc: per adapter object
  2920. * @handle: device handle
  2921. *
  2922. * Return nothing.
  2923. */
  2924. static void
  2925. _scsih_smart_predicted_fault(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  2926. {
  2927. Mpi2SepReply_t mpi_reply;
  2928. Mpi2SepRequest_t mpi_request;
  2929. struct scsi_target *starget;
  2930. struct MPT2SAS_TARGET *sas_target_priv_data;
  2931. Mpi2EventNotificationReply_t *event_reply;
  2932. Mpi2EventDataSasDeviceStatusChange_t *event_data;
  2933. struct _sas_device *sas_device;
  2934. ssize_t sz;
  2935. unsigned long flags;
  2936. /* only handle non-raid devices */
  2937. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  2938. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  2939. if (!sas_device) {
  2940. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2941. return;
  2942. }
  2943. starget = sas_device->starget;
  2944. sas_target_priv_data = starget->hostdata;
  2945. if ((sas_target_priv_data->flags & MPT_TARGET_FLAGS_RAID_COMPONENT) ||
  2946. ((sas_target_priv_data->flags & MPT_TARGET_FLAGS_VOLUME))) {
  2947. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2948. return;
  2949. }
  2950. starget_printk(KERN_WARNING, starget, "predicted fault\n");
  2951. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  2952. if (ioc->pdev->subsystem_vendor == PCI_VENDOR_ID_IBM) {
  2953. memset(&mpi_request, 0, sizeof(Mpi2SepRequest_t));
  2954. mpi_request.Function = MPI2_FUNCTION_SCSI_ENCLOSURE_PROCESSOR;
  2955. mpi_request.Action = MPI2_SEP_REQ_ACTION_WRITE_STATUS;
  2956. mpi_request.SlotStatus =
  2957. MPI2_SEP_REQ_SLOTSTATUS_PREDICTED_FAULT;
  2958. mpi_request.DevHandle = cpu_to_le16(handle);
  2959. mpi_request.Flags = MPI2_SEP_REQ_FLAGS_DEVHANDLE_ADDRESS;
  2960. if ((mpt2sas_base_scsi_enclosure_processor(ioc, &mpi_reply,
  2961. &mpi_request)) != 0) {
  2962. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  2963. ioc->name, __FILE__, __LINE__, __func__);
  2964. return;
  2965. }
  2966. if (mpi_reply.IOCStatus || mpi_reply.IOCLogInfo) {
  2967. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT
  2968. "enclosure_processor: ioc_status (0x%04x), "
  2969. "loginfo(0x%08x)\n", ioc->name,
  2970. le16_to_cpu(mpi_reply.IOCStatus),
  2971. le32_to_cpu(mpi_reply.IOCLogInfo)));
  2972. return;
  2973. }
  2974. }
  2975. /* insert into event log */
  2976. sz = offsetof(Mpi2EventNotificationReply_t, EventData) +
  2977. sizeof(Mpi2EventDataSasDeviceStatusChange_t);
  2978. event_reply = kzalloc(sz, GFP_KERNEL);
  2979. if (!event_reply) {
  2980. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  2981. ioc->name, __FILE__, __LINE__, __func__);
  2982. return;
  2983. }
  2984. event_reply->Function = MPI2_FUNCTION_EVENT_NOTIFICATION;
  2985. event_reply->Event =
  2986. cpu_to_le16(MPI2_EVENT_SAS_DEVICE_STATUS_CHANGE);
  2987. event_reply->MsgLength = sz/4;
  2988. event_reply->EventDataLength =
  2989. cpu_to_le16(sizeof(Mpi2EventDataSasDeviceStatusChange_t)/4);
  2990. event_data = (Mpi2EventDataSasDeviceStatusChange_t *)
  2991. event_reply->EventData;
  2992. event_data->ReasonCode = MPI2_EVENT_SAS_DEV_STAT_RC_SMART_DATA;
  2993. event_data->ASC = 0x5D;
  2994. event_data->DevHandle = cpu_to_le16(handle);
  2995. event_data->SASAddress = cpu_to_le64(sas_target_priv_data->sas_address);
  2996. mpt2sas_ctl_add_to_event_log(ioc, event_reply);
  2997. kfree(event_reply);
  2998. }
  2999. /**
  3000. * _scsih_io_done - scsi request callback
  3001. * @ioc: per adapter object
  3002. * @smid: system request message index
  3003. * @msix_index: MSIX table index supplied by the OS
  3004. * @reply: reply message frame(lower 32bit addr)
  3005. *
  3006. * Callback handler when using _scsih_qcmd.
  3007. *
  3008. * Return 1 meaning mf should be freed from _base_interrupt
  3009. * 0 means the mf is freed from this function.
  3010. */
  3011. static u8
  3012. _scsih_io_done(struct MPT2SAS_ADAPTER *ioc, u16 smid, u8 msix_index, u32 reply)
  3013. {
  3014. Mpi2SCSIIORequest_t *mpi_request;
  3015. Mpi2SCSIIOReply_t *mpi_reply;
  3016. struct scsi_cmnd *scmd;
  3017. u16 ioc_status;
  3018. u32 xfer_cnt;
  3019. u8 scsi_state;
  3020. u8 scsi_status;
  3021. u32 log_info;
  3022. struct MPT2SAS_DEVICE *sas_device_priv_data;
  3023. u32 response_code = 0;
  3024. mpi_reply = mpt2sas_base_get_reply_virt_addr(ioc, reply);
  3025. scmd = _scsih_scsi_lookup_get(ioc, smid);
  3026. if (scmd == NULL)
  3027. return 1;
  3028. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid);
  3029. if (mpi_reply == NULL) {
  3030. scmd->result = DID_OK << 16;
  3031. goto out;
  3032. }
  3033. sas_device_priv_data = scmd->device->hostdata;
  3034. if (!sas_device_priv_data || !sas_device_priv_data->sas_target ||
  3035. sas_device_priv_data->sas_target->deleted) {
  3036. scmd->result = DID_NO_CONNECT << 16;
  3037. goto out;
  3038. }
  3039. /* turning off TLR */
  3040. scsi_state = mpi_reply->SCSIState;
  3041. if (scsi_state & MPI2_SCSI_STATE_RESPONSE_INFO_VALID)
  3042. response_code =
  3043. le32_to_cpu(mpi_reply->ResponseInfo) & 0xFF;
  3044. if (!sas_device_priv_data->tlr_snoop_check) {
  3045. sas_device_priv_data->tlr_snoop_check++;
  3046. if (!_scsih_is_raid(&scmd->device->sdev_gendev) &&
  3047. sas_is_tlr_enabled(scmd->device) &&
  3048. response_code == MPI2_SCSITASKMGMT_RSP_INVALID_FRAME) {
  3049. sas_disable_tlr(scmd->device);
  3050. sdev_printk(KERN_INFO, scmd->device, "TLR disabled\n");
  3051. }
  3052. }
  3053. xfer_cnt = le32_to_cpu(mpi_reply->TransferCount);
  3054. scsi_set_resid(scmd, scsi_bufflen(scmd) - xfer_cnt);
  3055. ioc_status = le16_to_cpu(mpi_reply->IOCStatus);
  3056. if (ioc_status & MPI2_IOCSTATUS_FLAG_LOG_INFO_AVAILABLE)
  3057. log_info = le32_to_cpu(mpi_reply->IOCLogInfo);
  3058. else
  3059. log_info = 0;
  3060. ioc_status &= MPI2_IOCSTATUS_MASK;
  3061. scsi_status = mpi_reply->SCSIStatus;
  3062. if (ioc_status == MPI2_IOCSTATUS_SCSI_DATA_UNDERRUN && xfer_cnt == 0 &&
  3063. (scsi_status == MPI2_SCSI_STATUS_BUSY ||
  3064. scsi_status == MPI2_SCSI_STATUS_RESERVATION_CONFLICT ||
  3065. scsi_status == MPI2_SCSI_STATUS_TASK_SET_FULL)) {
  3066. ioc_status = MPI2_IOCSTATUS_SUCCESS;
  3067. }
  3068. if (scsi_state & MPI2_SCSI_STATE_AUTOSENSE_VALID) {
  3069. struct sense_info data;
  3070. const void *sense_data = mpt2sas_base_get_sense_buffer(ioc,
  3071. smid);
  3072. u32 sz = min_t(u32, SCSI_SENSE_BUFFERSIZE,
  3073. le32_to_cpu(mpi_reply->SenseCount));
  3074. memcpy(scmd->sense_buffer, sense_data, sz);
  3075. _scsih_normalize_sense(scmd->sense_buffer, &data);
  3076. /* failure prediction threshold exceeded */
  3077. if (data.asc == 0x5D)
  3078. _scsih_smart_predicted_fault(ioc,
  3079. le16_to_cpu(mpi_reply->DevHandle));
  3080. }
  3081. switch (ioc_status) {
  3082. case MPI2_IOCSTATUS_BUSY:
  3083. case MPI2_IOCSTATUS_INSUFFICIENT_RESOURCES:
  3084. scmd->result = SAM_STAT_BUSY;
  3085. break;
  3086. case MPI2_IOCSTATUS_SCSI_DEVICE_NOT_THERE:
  3087. scmd->result = DID_NO_CONNECT << 16;
  3088. break;
  3089. case MPI2_IOCSTATUS_SCSI_IOC_TERMINATED:
  3090. if (sas_device_priv_data->block) {
  3091. scmd->result = DID_TRANSPORT_DISRUPTED << 16;
  3092. goto out;
  3093. }
  3094. case MPI2_IOCSTATUS_SCSI_TASK_TERMINATED:
  3095. case MPI2_IOCSTATUS_SCSI_EXT_TERMINATED:
  3096. scmd->result = DID_RESET << 16;
  3097. break;
  3098. case MPI2_IOCSTATUS_SCSI_RESIDUAL_MISMATCH:
  3099. if ((xfer_cnt == 0) || (scmd->underflow > xfer_cnt))
  3100. scmd->result = DID_SOFT_ERROR << 16;
  3101. else
  3102. scmd->result = (DID_OK << 16) | scsi_status;
  3103. break;
  3104. case MPI2_IOCSTATUS_SCSI_DATA_UNDERRUN:
  3105. scmd->result = (DID_OK << 16) | scsi_status;
  3106. if ((scsi_state & MPI2_SCSI_STATE_AUTOSENSE_VALID))
  3107. break;
  3108. if (xfer_cnt < scmd->underflow) {
  3109. if (scsi_status == SAM_STAT_BUSY)
  3110. scmd->result = SAM_STAT_BUSY;
  3111. else
  3112. scmd->result = DID_SOFT_ERROR << 16;
  3113. } else if (scsi_state & (MPI2_SCSI_STATE_AUTOSENSE_FAILED |
  3114. MPI2_SCSI_STATE_NO_SCSI_STATUS))
  3115. scmd->result = DID_SOFT_ERROR << 16;
  3116. else if (scsi_state & MPI2_SCSI_STATE_TERMINATED)
  3117. scmd->result = DID_RESET << 16;
  3118. else if (!xfer_cnt && scmd->cmnd[0] == REPORT_LUNS) {
  3119. mpi_reply->SCSIState = MPI2_SCSI_STATE_AUTOSENSE_VALID;
  3120. mpi_reply->SCSIStatus = SAM_STAT_CHECK_CONDITION;
  3121. scmd->result = (DRIVER_SENSE << 24) |
  3122. SAM_STAT_CHECK_CONDITION;
  3123. scmd->sense_buffer[0] = 0x70;
  3124. scmd->sense_buffer[2] = ILLEGAL_REQUEST;
  3125. scmd->sense_buffer[12] = 0x20;
  3126. scmd->sense_buffer[13] = 0;
  3127. }
  3128. break;
  3129. case MPI2_IOCSTATUS_SCSI_DATA_OVERRUN:
  3130. scsi_set_resid(scmd, 0);
  3131. case MPI2_IOCSTATUS_SCSI_RECOVERED_ERROR:
  3132. case MPI2_IOCSTATUS_SUCCESS:
  3133. scmd->result = (DID_OK << 16) | scsi_status;
  3134. if (response_code ==
  3135. MPI2_SCSITASKMGMT_RSP_INVALID_FRAME ||
  3136. (scsi_state & (MPI2_SCSI_STATE_AUTOSENSE_FAILED |
  3137. MPI2_SCSI_STATE_NO_SCSI_STATUS)))
  3138. scmd->result = DID_SOFT_ERROR << 16;
  3139. else if (scsi_state & MPI2_SCSI_STATE_TERMINATED)
  3140. scmd->result = DID_RESET << 16;
  3141. break;
  3142. case MPI2_IOCSTATUS_EEDP_GUARD_ERROR:
  3143. case MPI2_IOCSTATUS_EEDP_REF_TAG_ERROR:
  3144. case MPI2_IOCSTATUS_EEDP_APP_TAG_ERROR:
  3145. _scsih_eedp_error_handling(scmd, ioc_status);
  3146. break;
  3147. case MPI2_IOCSTATUS_SCSI_PROTOCOL_ERROR:
  3148. case MPI2_IOCSTATUS_INVALID_FUNCTION:
  3149. case MPI2_IOCSTATUS_INVALID_SGL:
  3150. case MPI2_IOCSTATUS_INTERNAL_ERROR:
  3151. case MPI2_IOCSTATUS_INVALID_FIELD:
  3152. case MPI2_IOCSTATUS_INVALID_STATE:
  3153. case MPI2_IOCSTATUS_SCSI_IO_DATA_ERROR:
  3154. case MPI2_IOCSTATUS_SCSI_TASK_MGMT_FAILED:
  3155. default:
  3156. scmd->result = DID_SOFT_ERROR << 16;
  3157. break;
  3158. }
  3159. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  3160. if (scmd->result && (ioc->logging_level & MPT_DEBUG_REPLY))
  3161. _scsih_scsi_ioc_info(ioc , scmd, mpi_reply, smid);
  3162. #endif
  3163. out:
  3164. scsi_dma_unmap(scmd);
  3165. scmd->scsi_done(scmd);
  3166. return 1;
  3167. }
  3168. /**
  3169. * _scsih_sas_host_refresh - refreshing sas host object contents
  3170. * @ioc: per adapter object
  3171. * Context: user
  3172. *
  3173. * During port enable, fw will send topology events for every device. Its
  3174. * possible that the handles may change from the previous setting, so this
  3175. * code keeping handles updating if changed.
  3176. *
  3177. * Return nothing.
  3178. */
  3179. static void
  3180. _scsih_sas_host_refresh(struct MPT2SAS_ADAPTER *ioc)
  3181. {
  3182. u16 sz;
  3183. u16 ioc_status;
  3184. int i;
  3185. Mpi2ConfigReply_t mpi_reply;
  3186. Mpi2SasIOUnitPage0_t *sas_iounit_pg0 = NULL;
  3187. u16 attached_handle;
  3188. dtmprintk(ioc, printk(MPT2SAS_INFO_FMT
  3189. "updating handles for sas_host(0x%016llx)\n",
  3190. ioc->name, (unsigned long long)ioc->sas_hba.sas_address));
  3191. sz = offsetof(Mpi2SasIOUnitPage0_t, PhyData) + (ioc->sas_hba.num_phys
  3192. * sizeof(Mpi2SasIOUnit0PhyData_t));
  3193. sas_iounit_pg0 = kzalloc(sz, GFP_KERNEL);
  3194. if (!sas_iounit_pg0) {
  3195. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3196. ioc->name, __FILE__, __LINE__, __func__);
  3197. return;
  3198. }
  3199. if ((mpt2sas_config_get_sas_iounit_pg0(ioc, &mpi_reply,
  3200. sas_iounit_pg0, sz)) != 0)
  3201. goto out;
  3202. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) & MPI2_IOCSTATUS_MASK;
  3203. if (ioc_status != MPI2_IOCSTATUS_SUCCESS)
  3204. goto out;
  3205. for (i = 0; i < ioc->sas_hba.num_phys ; i++) {
  3206. if (i == 0)
  3207. ioc->sas_hba.handle = le16_to_cpu(sas_iounit_pg0->
  3208. PhyData[0].ControllerDevHandle);
  3209. ioc->sas_hba.phy[i].handle = ioc->sas_hba.handle;
  3210. attached_handle = le16_to_cpu(sas_iounit_pg0->PhyData[i].
  3211. AttachedDevHandle);
  3212. mpt2sas_transport_update_links(ioc, ioc->sas_hba.sas_address,
  3213. attached_handle, i, sas_iounit_pg0->PhyData[i].
  3214. NegotiatedLinkRate >> 4);
  3215. }
  3216. out:
  3217. kfree(sas_iounit_pg0);
  3218. }
  3219. /**
  3220. * _scsih_sas_host_add - create sas host object
  3221. * @ioc: per adapter object
  3222. *
  3223. * Creating host side data object, stored in ioc->sas_hba
  3224. *
  3225. * Return nothing.
  3226. */
  3227. static void
  3228. _scsih_sas_host_add(struct MPT2SAS_ADAPTER *ioc)
  3229. {
  3230. int i;
  3231. Mpi2ConfigReply_t mpi_reply;
  3232. Mpi2SasIOUnitPage0_t *sas_iounit_pg0 = NULL;
  3233. Mpi2SasIOUnitPage1_t *sas_iounit_pg1 = NULL;
  3234. Mpi2SasPhyPage0_t phy_pg0;
  3235. Mpi2SasDevicePage0_t sas_device_pg0;
  3236. Mpi2SasEnclosurePage0_t enclosure_pg0;
  3237. u16 ioc_status;
  3238. u16 sz;
  3239. u16 device_missing_delay;
  3240. mpt2sas_config_get_number_hba_phys(ioc, &ioc->sas_hba.num_phys);
  3241. if (!ioc->sas_hba.num_phys) {
  3242. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3243. ioc->name, __FILE__, __LINE__, __func__);
  3244. return;
  3245. }
  3246. /* sas_iounit page 0 */
  3247. sz = offsetof(Mpi2SasIOUnitPage0_t, PhyData) + (ioc->sas_hba.num_phys *
  3248. sizeof(Mpi2SasIOUnit0PhyData_t));
  3249. sas_iounit_pg0 = kzalloc(sz, GFP_KERNEL);
  3250. if (!sas_iounit_pg0) {
  3251. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3252. ioc->name, __FILE__, __LINE__, __func__);
  3253. return;
  3254. }
  3255. if ((mpt2sas_config_get_sas_iounit_pg0(ioc, &mpi_reply,
  3256. sas_iounit_pg0, sz))) {
  3257. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3258. ioc->name, __FILE__, __LINE__, __func__);
  3259. goto out;
  3260. }
  3261. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  3262. MPI2_IOCSTATUS_MASK;
  3263. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  3264. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3265. ioc->name, __FILE__, __LINE__, __func__);
  3266. goto out;
  3267. }
  3268. /* sas_iounit page 1 */
  3269. sz = offsetof(Mpi2SasIOUnitPage1_t, PhyData) + (ioc->sas_hba.num_phys *
  3270. sizeof(Mpi2SasIOUnit1PhyData_t));
  3271. sas_iounit_pg1 = kzalloc(sz, GFP_KERNEL);
  3272. if (!sas_iounit_pg1) {
  3273. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3274. ioc->name, __FILE__, __LINE__, __func__);
  3275. goto out;
  3276. }
  3277. if ((mpt2sas_config_get_sas_iounit_pg1(ioc, &mpi_reply,
  3278. sas_iounit_pg1, sz))) {
  3279. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3280. ioc->name, __FILE__, __LINE__, __func__);
  3281. goto out;
  3282. }
  3283. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  3284. MPI2_IOCSTATUS_MASK;
  3285. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  3286. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3287. ioc->name, __FILE__, __LINE__, __func__);
  3288. goto out;
  3289. }
  3290. ioc->io_missing_delay =
  3291. le16_to_cpu(sas_iounit_pg1->IODeviceMissingDelay);
  3292. device_missing_delay =
  3293. le16_to_cpu(sas_iounit_pg1->ReportDeviceMissingDelay);
  3294. if (device_missing_delay & MPI2_SASIOUNIT1_REPORT_MISSING_UNIT_16)
  3295. ioc->device_missing_delay = (device_missing_delay &
  3296. MPI2_SASIOUNIT1_REPORT_MISSING_TIMEOUT_MASK) * 16;
  3297. else
  3298. ioc->device_missing_delay = device_missing_delay &
  3299. MPI2_SASIOUNIT1_REPORT_MISSING_TIMEOUT_MASK;
  3300. ioc->sas_hba.parent_dev = &ioc->shost->shost_gendev;
  3301. ioc->sas_hba.phy = kcalloc(ioc->sas_hba.num_phys,
  3302. sizeof(struct _sas_phy), GFP_KERNEL);
  3303. if (!ioc->sas_hba.phy) {
  3304. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3305. ioc->name, __FILE__, __LINE__, __func__);
  3306. goto out;
  3307. }
  3308. for (i = 0; i < ioc->sas_hba.num_phys ; i++) {
  3309. if ((mpt2sas_config_get_phy_pg0(ioc, &mpi_reply, &phy_pg0,
  3310. i))) {
  3311. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3312. ioc->name, __FILE__, __LINE__, __func__);
  3313. goto out;
  3314. }
  3315. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  3316. MPI2_IOCSTATUS_MASK;
  3317. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  3318. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3319. ioc->name, __FILE__, __LINE__, __func__);
  3320. goto out;
  3321. }
  3322. if (i == 0)
  3323. ioc->sas_hba.handle = le16_to_cpu(sas_iounit_pg0->
  3324. PhyData[0].ControllerDevHandle);
  3325. ioc->sas_hba.phy[i].handle = ioc->sas_hba.handle;
  3326. ioc->sas_hba.phy[i].phy_id = i;
  3327. mpt2sas_transport_add_host_phy(ioc, &ioc->sas_hba.phy[i],
  3328. phy_pg0, ioc->sas_hba.parent_dev);
  3329. }
  3330. if ((mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply, &sas_device_pg0,
  3331. MPI2_SAS_DEVICE_PGAD_FORM_HANDLE, ioc->sas_hba.handle))) {
  3332. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3333. ioc->name, __FILE__, __LINE__, __func__);
  3334. goto out;
  3335. }
  3336. ioc->sas_hba.enclosure_handle =
  3337. le16_to_cpu(sas_device_pg0.EnclosureHandle);
  3338. ioc->sas_hba.sas_address = le64_to_cpu(sas_device_pg0.SASAddress);
  3339. printk(MPT2SAS_INFO_FMT "host_add: handle(0x%04x), "
  3340. "sas_addr(0x%016llx), phys(%d)\n", ioc->name, ioc->sas_hba.handle,
  3341. (unsigned long long) ioc->sas_hba.sas_address,
  3342. ioc->sas_hba.num_phys) ;
  3343. if (ioc->sas_hba.enclosure_handle) {
  3344. if (!(mpt2sas_config_get_enclosure_pg0(ioc, &mpi_reply,
  3345. &enclosure_pg0,
  3346. MPI2_SAS_ENCLOS_PGAD_FORM_HANDLE,
  3347. ioc->sas_hba.enclosure_handle))) {
  3348. ioc->sas_hba.enclosure_logical_id =
  3349. le64_to_cpu(enclosure_pg0.EnclosureLogicalID);
  3350. }
  3351. }
  3352. out:
  3353. kfree(sas_iounit_pg1);
  3354. kfree(sas_iounit_pg0);
  3355. }
  3356. /**
  3357. * _scsih_expander_add - creating expander object
  3358. * @ioc: per adapter object
  3359. * @handle: expander handle
  3360. *
  3361. * Creating expander object, stored in ioc->sas_expander_list.
  3362. *
  3363. * Return 0 for success, else error.
  3364. */
  3365. static int
  3366. _scsih_expander_add(struct MPT2SAS_ADAPTER *ioc, u16 handle)
  3367. {
  3368. struct _sas_node *sas_expander;
  3369. Mpi2ConfigReply_t mpi_reply;
  3370. Mpi2ExpanderPage0_t expander_pg0;
  3371. Mpi2ExpanderPage1_t expander_pg1;
  3372. Mpi2SasEnclosurePage0_t enclosure_pg0;
  3373. u32 ioc_status;
  3374. u16 parent_handle;
  3375. __le64 sas_address, sas_address_parent = 0;
  3376. int i;
  3377. unsigned long flags;
  3378. struct _sas_port *mpt2sas_port = NULL;
  3379. int rc = 0;
  3380. if (!handle)
  3381. return -1;
  3382. if (ioc->shost_recovery)
  3383. return -1;
  3384. if ((mpt2sas_config_get_expander_pg0(ioc, &mpi_reply, &expander_pg0,
  3385. MPI2_SAS_EXPAND_PGAD_FORM_HNDL, handle))) {
  3386. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3387. ioc->name, __FILE__, __LINE__, __func__);
  3388. return -1;
  3389. }
  3390. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  3391. MPI2_IOCSTATUS_MASK;
  3392. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  3393. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3394. ioc->name, __FILE__, __LINE__, __func__);
  3395. return -1;
  3396. }
  3397. /* handle out of order topology events */
  3398. parent_handle = le16_to_cpu(expander_pg0.ParentDevHandle);
  3399. if (_scsih_get_sas_address(ioc, parent_handle, &sas_address_parent)
  3400. != 0) {
  3401. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3402. ioc->name, __FILE__, __LINE__, __func__);
  3403. return -1;
  3404. }
  3405. if (sas_address_parent != ioc->sas_hba.sas_address) {
  3406. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  3407. sas_expander = mpt2sas_scsih_expander_find_by_sas_address(ioc,
  3408. sas_address_parent);
  3409. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  3410. if (!sas_expander) {
  3411. rc = _scsih_expander_add(ioc, parent_handle);
  3412. if (rc != 0)
  3413. return rc;
  3414. }
  3415. }
  3416. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  3417. sas_address = le64_to_cpu(expander_pg0.SASAddress);
  3418. sas_expander = mpt2sas_scsih_expander_find_by_sas_address(ioc,
  3419. sas_address);
  3420. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  3421. if (sas_expander)
  3422. return 0;
  3423. sas_expander = kzalloc(sizeof(struct _sas_node),
  3424. GFP_KERNEL);
  3425. if (!sas_expander) {
  3426. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3427. ioc->name, __FILE__, __LINE__, __func__);
  3428. return -1;
  3429. }
  3430. sas_expander->handle = handle;
  3431. sas_expander->num_phys = expander_pg0.NumPhys;
  3432. sas_expander->sas_address_parent = sas_address_parent;
  3433. sas_expander->sas_address = sas_address;
  3434. printk(MPT2SAS_INFO_FMT "expander_add: handle(0x%04x),"
  3435. " parent(0x%04x), sas_addr(0x%016llx), phys(%d)\n", ioc->name,
  3436. handle, parent_handle, (unsigned long long)
  3437. sas_expander->sas_address, sas_expander->num_phys);
  3438. if (!sas_expander->num_phys)
  3439. goto out_fail;
  3440. sas_expander->phy = kcalloc(sas_expander->num_phys,
  3441. sizeof(struct _sas_phy), GFP_KERNEL);
  3442. if (!sas_expander->phy) {
  3443. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3444. ioc->name, __FILE__, __LINE__, __func__);
  3445. rc = -1;
  3446. goto out_fail;
  3447. }
  3448. INIT_LIST_HEAD(&sas_expander->sas_port_list);
  3449. mpt2sas_port = mpt2sas_transport_port_add(ioc, handle,
  3450. sas_address_parent);
  3451. if (!mpt2sas_port) {
  3452. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3453. ioc->name, __FILE__, __LINE__, __func__);
  3454. rc = -1;
  3455. goto out_fail;
  3456. }
  3457. sas_expander->parent_dev = &mpt2sas_port->rphy->dev;
  3458. for (i = 0 ; i < sas_expander->num_phys ; i++) {
  3459. if ((mpt2sas_config_get_expander_pg1(ioc, &mpi_reply,
  3460. &expander_pg1, i, handle))) {
  3461. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3462. ioc->name, __FILE__, __LINE__, __func__);
  3463. rc = -1;
  3464. goto out_fail;
  3465. }
  3466. sas_expander->phy[i].handle = handle;
  3467. sas_expander->phy[i].phy_id = i;
  3468. if ((mpt2sas_transport_add_expander_phy(ioc,
  3469. &sas_expander->phy[i], expander_pg1,
  3470. sas_expander->parent_dev))) {
  3471. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3472. ioc->name, __FILE__, __LINE__, __func__);
  3473. rc = -1;
  3474. goto out_fail;
  3475. }
  3476. }
  3477. if (sas_expander->enclosure_handle) {
  3478. if (!(mpt2sas_config_get_enclosure_pg0(ioc, &mpi_reply,
  3479. &enclosure_pg0, MPI2_SAS_ENCLOS_PGAD_FORM_HANDLE,
  3480. sas_expander->enclosure_handle))) {
  3481. sas_expander->enclosure_logical_id =
  3482. le64_to_cpu(enclosure_pg0.EnclosureLogicalID);
  3483. }
  3484. }
  3485. _scsih_expander_node_add(ioc, sas_expander);
  3486. return 0;
  3487. out_fail:
  3488. if (mpt2sas_port)
  3489. mpt2sas_transport_port_remove(ioc, sas_expander->sas_address,
  3490. sas_address_parent);
  3491. kfree(sas_expander);
  3492. return rc;
  3493. }
  3494. /**
  3495. * _scsih_done - scsih callback handler.
  3496. * @ioc: per adapter object
  3497. * @smid: system request message index
  3498. * @msix_index: MSIX table index supplied by the OS
  3499. * @reply: reply message frame(lower 32bit addr)
  3500. *
  3501. * Callback handler when sending internal generated message frames.
  3502. * The callback index passed is `ioc->scsih_cb_idx`
  3503. *
  3504. * Return 1 meaning mf should be freed from _base_interrupt
  3505. * 0 means the mf is freed from this function.
  3506. */
  3507. static u8
  3508. _scsih_done(struct MPT2SAS_ADAPTER *ioc, u16 smid, u8 msix_index, u32 reply)
  3509. {
  3510. MPI2DefaultReply_t *mpi_reply;
  3511. mpi_reply = mpt2sas_base_get_reply_virt_addr(ioc, reply);
  3512. if (ioc->scsih_cmds.status == MPT2_CMD_NOT_USED)
  3513. return 1;
  3514. if (ioc->scsih_cmds.smid != smid)
  3515. return 1;
  3516. ioc->scsih_cmds.status |= MPT2_CMD_COMPLETE;
  3517. if (mpi_reply) {
  3518. memcpy(ioc->scsih_cmds.reply, mpi_reply,
  3519. mpi_reply->MsgLength*4);
  3520. ioc->scsih_cmds.status |= MPT2_CMD_REPLY_VALID;
  3521. }
  3522. ioc->scsih_cmds.status &= ~MPT2_CMD_PENDING;
  3523. complete(&ioc->scsih_cmds.done);
  3524. return 1;
  3525. }
  3526. /**
  3527. * _scsih_expander_remove - removing expander object
  3528. * @ioc: per adapter object
  3529. * @sas_address: expander sas_address
  3530. *
  3531. * Return nothing.
  3532. */
  3533. static void
  3534. _scsih_expander_remove(struct MPT2SAS_ADAPTER *ioc, u64 sas_address)
  3535. {
  3536. struct _sas_node *sas_expander;
  3537. unsigned long flags;
  3538. if (ioc->shost_recovery)
  3539. return;
  3540. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  3541. sas_expander = mpt2sas_scsih_expander_find_by_sas_address(ioc,
  3542. sas_address);
  3543. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  3544. _scsih_expander_node_remove(ioc, sas_expander);
  3545. }
  3546. /**
  3547. * _scsih_add_device - creating sas device object
  3548. * @ioc: per adapter object
  3549. * @handle: sas device handle
  3550. * @phy_num: phy number end device attached to
  3551. * @is_pd: is this hidden raid component
  3552. *
  3553. * Creating end device object, stored in ioc->sas_device_list.
  3554. *
  3555. * Returns 0 for success, non-zero for failure.
  3556. */
  3557. static int
  3558. _scsih_add_device(struct MPT2SAS_ADAPTER *ioc, u16 handle, u8 phy_num, u8 is_pd)
  3559. {
  3560. Mpi2ConfigReply_t mpi_reply;
  3561. Mpi2SasDevicePage0_t sas_device_pg0;
  3562. Mpi2SasEnclosurePage0_t enclosure_pg0;
  3563. struct _sas_device *sas_device;
  3564. u32 ioc_status;
  3565. __le64 sas_address;
  3566. u32 device_info;
  3567. unsigned long flags;
  3568. if ((mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply, &sas_device_pg0,
  3569. MPI2_SAS_DEVICE_PGAD_FORM_HANDLE, handle))) {
  3570. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3571. ioc->name, __FILE__, __LINE__, __func__);
  3572. return -1;
  3573. }
  3574. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  3575. MPI2_IOCSTATUS_MASK;
  3576. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  3577. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3578. ioc->name, __FILE__, __LINE__, __func__);
  3579. return -1;
  3580. }
  3581. /* check if device is present */
  3582. if (!(le16_to_cpu(sas_device_pg0.Flags) &
  3583. MPI2_SAS_DEVICE0_FLAGS_DEVICE_PRESENT)) {
  3584. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3585. ioc->name, __FILE__, __LINE__, __func__);
  3586. printk(MPT2SAS_ERR_FMT "Flags = 0x%04x\n",
  3587. ioc->name, le16_to_cpu(sas_device_pg0.Flags));
  3588. return -1;
  3589. }
  3590. /* check if there were any issus with discovery */
  3591. if (sas_device_pg0.AccessStatus ==
  3592. MPI2_SAS_DEVICE0_ASTATUS_SATA_INIT_FAILED) {
  3593. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3594. ioc->name, __FILE__, __LINE__, __func__);
  3595. printk(MPT2SAS_ERR_FMT "AccessStatus = 0x%02x\n",
  3596. ioc->name, sas_device_pg0.AccessStatus);
  3597. return -1;
  3598. }
  3599. /* check if this is end device */
  3600. device_info = le32_to_cpu(sas_device_pg0.DeviceInfo);
  3601. if (!(_scsih_is_end_device(device_info))) {
  3602. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3603. ioc->name, __FILE__, __LINE__, __func__);
  3604. return -1;
  3605. }
  3606. sas_address = le64_to_cpu(sas_device_pg0.SASAddress);
  3607. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  3608. sas_device = mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  3609. sas_address);
  3610. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  3611. if (sas_device) {
  3612. _scsih_ublock_io_device(ioc, handle);
  3613. return 0;
  3614. }
  3615. sas_device = kzalloc(sizeof(struct _sas_device),
  3616. GFP_KERNEL);
  3617. if (!sas_device) {
  3618. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3619. ioc->name, __FILE__, __LINE__, __func__);
  3620. return -1;
  3621. }
  3622. sas_device->handle = handle;
  3623. if (_scsih_get_sas_address(ioc, le16_to_cpu
  3624. (sas_device_pg0.ParentDevHandle),
  3625. &sas_device->sas_address_parent) != 0)
  3626. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3627. ioc->name, __FILE__, __LINE__, __func__);
  3628. sas_device->enclosure_handle =
  3629. le16_to_cpu(sas_device_pg0.EnclosureHandle);
  3630. sas_device->slot =
  3631. le16_to_cpu(sas_device_pg0.Slot);
  3632. sas_device->device_info = device_info;
  3633. sas_device->sas_address = sas_address;
  3634. sas_device->hidden_raid_component = is_pd;
  3635. /* get enclosure_logical_id */
  3636. if (sas_device->enclosure_handle && !(mpt2sas_config_get_enclosure_pg0(
  3637. ioc, &mpi_reply, &enclosure_pg0, MPI2_SAS_ENCLOS_PGAD_FORM_HANDLE,
  3638. sas_device->enclosure_handle)))
  3639. sas_device->enclosure_logical_id =
  3640. le64_to_cpu(enclosure_pg0.EnclosureLogicalID);
  3641. /* get device name */
  3642. sas_device->device_name = le64_to_cpu(sas_device_pg0.DeviceName);
  3643. if (ioc->wait_for_port_enable_to_complete)
  3644. _scsih_sas_device_init_add(ioc, sas_device);
  3645. else
  3646. _scsih_sas_device_add(ioc, sas_device);
  3647. return 0;
  3648. }
  3649. /**
  3650. * _scsih_remove_pd_device - removing sas device pd object
  3651. * @ioc: per adapter object
  3652. * @sas_device_delete: the sas_device object
  3653. *
  3654. * For hidden raid components, we do driver-fw handshake from
  3655. * hotplug work threads.
  3656. * Return nothing.
  3657. */
  3658. static void
  3659. _scsih_remove_pd_device(struct MPT2SAS_ADAPTER *ioc, struct _sas_device
  3660. sas_device)
  3661. {
  3662. Mpi2SasIoUnitControlReply_t mpi_reply;
  3663. Mpi2SasIoUnitControlRequest_t mpi_request;
  3664. u16 vol_handle, handle;
  3665. handle = sas_device.handle;
  3666. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "%s: enter: handle(0x%04x),"
  3667. " sas_addr(0x%016llx)\n", ioc->name, __func__, handle,
  3668. (unsigned long long) sas_device.sas_address));
  3669. vol_handle = sas_device.volume_handle;
  3670. if (!vol_handle)
  3671. return;
  3672. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "issue target reset: "
  3673. "handle(0x%04x)\n", ioc->name, vol_handle));
  3674. mpt2sas_scsih_issue_tm(ioc, vol_handle, 0,
  3675. MPI2_SCSITASKMGMT_TASKTYPE_TARGET_RESET, 0, 30);
  3676. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "issue target reset "
  3677. "done: handle(0x%04x)\n", ioc->name, vol_handle));
  3678. if (ioc->shost_recovery)
  3679. return;
  3680. /* SAS_IO_UNIT_CNTR - send REMOVE_DEVICE */
  3681. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "sas_iounit: handle"
  3682. "(0x%04x)\n", ioc->name, handle));
  3683. memset(&mpi_request, 0, sizeof(Mpi2SasIoUnitControlRequest_t));
  3684. mpi_request.Function = MPI2_FUNCTION_SAS_IO_UNIT_CONTROL;
  3685. mpi_request.Operation = MPI2_SAS_OP_REMOVE_DEVICE;
  3686. mpi_request.DevHandle = cpu_to_le16(handle);
  3687. if ((mpt2sas_base_sas_iounit_control(ioc, &mpi_reply,
  3688. &mpi_request)) != 0)
  3689. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  3690. ioc->name, __FILE__, __LINE__, __func__);
  3691. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "sas_iounit: ioc_status"
  3692. "(0x%04x), loginfo(0x%08x)\n", ioc->name,
  3693. le16_to_cpu(mpi_reply.IOCStatus),
  3694. le32_to_cpu(mpi_reply.IOCLogInfo)));
  3695. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "%s: exit: handle(0x%04x),"
  3696. " sas_addr(0x%016llx)\n", ioc->name, __func__, handle,
  3697. (unsigned long long) sas_device.sas_address));
  3698. }
  3699. /**
  3700. * _scsih_remove_device - removing sas device object
  3701. * @ioc: per adapter object
  3702. * @sas_device_delete: the sas_device object
  3703. *
  3704. * Return nothing.
  3705. */
  3706. static void
  3707. _scsih_remove_device(struct MPT2SAS_ADAPTER *ioc,
  3708. struct _sas_device *sas_device)
  3709. {
  3710. struct _sas_device sas_device_backup;
  3711. struct MPT2SAS_TARGET *sas_target_priv_data;
  3712. if (!sas_device)
  3713. return;
  3714. memcpy(&sas_device_backup, sas_device, sizeof(struct _sas_device));
  3715. _scsih_sas_device_remove(ioc, sas_device);
  3716. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "%s: enter: "
  3717. "handle(0x%04x), sas_addr(0x%016llx)\n", ioc->name, __func__,
  3718. sas_device_backup.handle, (unsigned long long)
  3719. sas_device_backup.sas_address));
  3720. if (sas_device_backup.starget && sas_device_backup.starget->hostdata) {
  3721. sas_target_priv_data = sas_device_backup.starget->hostdata;
  3722. sas_target_priv_data->deleted = 1;
  3723. }
  3724. if (sas_device_backup.hidden_raid_component)
  3725. _scsih_remove_pd_device(ioc, sas_device_backup);
  3726. _scsih_ublock_io_device(ioc, sas_device_backup.handle);
  3727. mpt2sas_transport_port_remove(ioc, sas_device_backup.sas_address,
  3728. sas_device_backup.sas_address_parent);
  3729. printk(MPT2SAS_INFO_FMT "removing handle(0x%04x), sas_addr"
  3730. "(0x%016llx)\n", ioc->name, sas_device_backup.handle,
  3731. (unsigned long long) sas_device_backup.sas_address);
  3732. dewtprintk(ioc, printk(MPT2SAS_INFO_FMT "%s: exit: "
  3733. "handle(0x%04x), sas_addr(0x%016llx)\n", ioc->name, __func__,
  3734. sas_device_backup.handle, (unsigned long long)
  3735. sas_device_backup.sas_address));
  3736. }
  3737. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  3738. /**
  3739. * _scsih_sas_topology_change_event_debug - debug for topology event
  3740. * @ioc: per adapter object
  3741. * @event_data: event data payload
  3742. * Context: user.
  3743. */
  3744. static void
  3745. _scsih_sas_topology_change_event_debug(struct MPT2SAS_ADAPTER *ioc,
  3746. Mpi2EventDataSasTopologyChangeList_t *event_data)
  3747. {
  3748. int i;
  3749. u16 handle;
  3750. u16 reason_code;
  3751. u8 phy_number;
  3752. char *status_str = NULL;
  3753. u8 link_rate, prev_link_rate;
  3754. switch (event_data->ExpStatus) {
  3755. case MPI2_EVENT_SAS_TOPO_ES_ADDED:
  3756. status_str = "add";
  3757. break;
  3758. case MPI2_EVENT_SAS_TOPO_ES_NOT_RESPONDING:
  3759. status_str = "remove";
  3760. break;
  3761. case MPI2_EVENT_SAS_TOPO_ES_RESPONDING:
  3762. case 0:
  3763. status_str = "responding";
  3764. break;
  3765. case MPI2_EVENT_SAS_TOPO_ES_DELAY_NOT_RESPONDING:
  3766. status_str = "remove delay";
  3767. break;
  3768. default:
  3769. status_str = "unknown status";
  3770. break;
  3771. }
  3772. printk(MPT2SAS_DEBUG_FMT "sas topology change: (%s)\n",
  3773. ioc->name, status_str);
  3774. printk(KERN_DEBUG "\thandle(0x%04x), enclosure_handle(0x%04x) "
  3775. "start_phy(%02d), count(%d)\n",
  3776. le16_to_cpu(event_data->ExpanderDevHandle),
  3777. le16_to_cpu(event_data->EnclosureHandle),
  3778. event_data->StartPhyNum, event_data->NumEntries);
  3779. for (i = 0; i < event_data->NumEntries; i++) {
  3780. handle = le16_to_cpu(event_data->PHY[i].AttachedDevHandle);
  3781. if (!handle)
  3782. continue;
  3783. phy_number = event_data->StartPhyNum + i;
  3784. reason_code = event_data->PHY[i].PhyStatus &
  3785. MPI2_EVENT_SAS_TOPO_RC_MASK;
  3786. switch (reason_code) {
  3787. case MPI2_EVENT_SAS_TOPO_RC_TARG_ADDED:
  3788. status_str = "target add";
  3789. break;
  3790. case MPI2_EVENT_SAS_TOPO_RC_TARG_NOT_RESPONDING:
  3791. status_str = "target remove";
  3792. break;
  3793. case MPI2_EVENT_SAS_TOPO_RC_DELAY_NOT_RESPONDING:
  3794. status_str = "delay target remove";
  3795. break;
  3796. case MPI2_EVENT_SAS_TOPO_RC_PHY_CHANGED:
  3797. status_str = "link rate change";
  3798. break;
  3799. case MPI2_EVENT_SAS_TOPO_RC_NO_CHANGE:
  3800. status_str = "target responding";
  3801. break;
  3802. default:
  3803. status_str = "unknown";
  3804. break;
  3805. }
  3806. link_rate = event_data->PHY[i].LinkRate >> 4;
  3807. prev_link_rate = event_data->PHY[i].LinkRate & 0xF;
  3808. printk(KERN_DEBUG "\tphy(%02d), attached_handle(0x%04x): %s:"
  3809. " link rate: new(0x%02x), old(0x%02x)\n", phy_number,
  3810. handle, status_str, link_rate, prev_link_rate);
  3811. }
  3812. }
  3813. #endif
  3814. /**
  3815. * _scsih_sas_topology_change_event - handle topology changes
  3816. * @ioc: per adapter object
  3817. * @fw_event: The fw_event_work object
  3818. * Context: user.
  3819. *
  3820. */
  3821. static void
  3822. _scsih_sas_topology_change_event(struct MPT2SAS_ADAPTER *ioc,
  3823. struct fw_event_work *fw_event)
  3824. {
  3825. int i;
  3826. u16 parent_handle, handle;
  3827. u16 reason_code;
  3828. u8 phy_number;
  3829. struct _sas_node *sas_expander;
  3830. struct _sas_device *sas_device;
  3831. u64 sas_address;
  3832. unsigned long flags;
  3833. u8 link_rate, prev_link_rate;
  3834. Mpi2EventDataSasTopologyChangeList_t *event_data = fw_event->event_data;
  3835. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  3836. if (ioc->logging_level & MPT_DEBUG_EVENT_WORK_TASK)
  3837. _scsih_sas_topology_change_event_debug(ioc, event_data);
  3838. #endif
  3839. if (ioc->shost_recovery)
  3840. return;
  3841. if (!ioc->sas_hba.num_phys)
  3842. _scsih_sas_host_add(ioc);
  3843. else
  3844. _scsih_sas_host_refresh(ioc);
  3845. if (fw_event->ignore) {
  3846. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "ignoring expander "
  3847. "event\n", ioc->name));
  3848. return;
  3849. }
  3850. parent_handle = le16_to_cpu(event_data->ExpanderDevHandle);
  3851. /* handle expander add */
  3852. if (event_data->ExpStatus == MPI2_EVENT_SAS_TOPO_ES_ADDED)
  3853. if (_scsih_expander_add(ioc, parent_handle) != 0)
  3854. return;
  3855. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  3856. sas_expander = mpt2sas_scsih_expander_find_by_handle(ioc,
  3857. parent_handle);
  3858. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  3859. if (sas_expander)
  3860. sas_address = sas_expander->sas_address;
  3861. else if (parent_handle < ioc->sas_hba.num_phys)
  3862. sas_address = ioc->sas_hba.sas_address;
  3863. else
  3864. return;
  3865. /* handle siblings events */
  3866. for (i = 0; i < event_data->NumEntries; i++) {
  3867. if (fw_event->ignore) {
  3868. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "ignoring "
  3869. "expander event\n", ioc->name));
  3870. return;
  3871. }
  3872. if (ioc->shost_recovery)
  3873. return;
  3874. phy_number = event_data->StartPhyNum + i;
  3875. reason_code = event_data->PHY[i].PhyStatus &
  3876. MPI2_EVENT_SAS_TOPO_RC_MASK;
  3877. if ((event_data->PHY[i].PhyStatus &
  3878. MPI2_EVENT_SAS_TOPO_PHYSTATUS_VACANT) && (reason_code !=
  3879. MPI2_EVENT_SAS_TOPO_RC_TARG_NOT_RESPONDING))
  3880. continue;
  3881. handle = le16_to_cpu(event_data->PHY[i].AttachedDevHandle);
  3882. if (!handle)
  3883. continue;
  3884. link_rate = event_data->PHY[i].LinkRate >> 4;
  3885. prev_link_rate = event_data->PHY[i].LinkRate & 0xF;
  3886. switch (reason_code) {
  3887. case MPI2_EVENT_SAS_TOPO_RC_PHY_CHANGED:
  3888. if (link_rate == prev_link_rate)
  3889. break;
  3890. mpt2sas_transport_update_links(ioc, sas_address,
  3891. handle, phy_number, link_rate);
  3892. if (link_rate >= MPI2_SAS_NEG_LINK_RATE_1_5)
  3893. _scsih_ublock_io_device(ioc, handle);
  3894. break;
  3895. case MPI2_EVENT_SAS_TOPO_RC_TARG_ADDED:
  3896. mpt2sas_transport_update_links(ioc, sas_address,
  3897. handle, phy_number, link_rate);
  3898. _scsih_add_device(ioc, handle, phy_number, 0);
  3899. break;
  3900. case MPI2_EVENT_SAS_TOPO_RC_TARG_NOT_RESPONDING:
  3901. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  3902. sas_device = _scsih_sas_device_find_by_handle(ioc,
  3903. handle);
  3904. if (!sas_device) {
  3905. spin_unlock_irqrestore(&ioc->sas_device_lock,
  3906. flags);
  3907. break;
  3908. }
  3909. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  3910. _scsih_remove_device(ioc, sas_device);
  3911. break;
  3912. }
  3913. }
  3914. /* handle expander removal */
  3915. if (event_data->ExpStatus == MPI2_EVENT_SAS_TOPO_ES_NOT_RESPONDING &&
  3916. sas_expander)
  3917. _scsih_expander_remove(ioc, sas_address);
  3918. }
  3919. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  3920. /**
  3921. * _scsih_sas_device_status_change_event_debug - debug for device event
  3922. * @event_data: event data payload
  3923. * Context: user.
  3924. *
  3925. * Return nothing.
  3926. */
  3927. static void
  3928. _scsih_sas_device_status_change_event_debug(struct MPT2SAS_ADAPTER *ioc,
  3929. Mpi2EventDataSasDeviceStatusChange_t *event_data)
  3930. {
  3931. char *reason_str = NULL;
  3932. switch (event_data->ReasonCode) {
  3933. case MPI2_EVENT_SAS_DEV_STAT_RC_SMART_DATA:
  3934. reason_str = "smart data";
  3935. break;
  3936. case MPI2_EVENT_SAS_DEV_STAT_RC_UNSUPPORTED:
  3937. reason_str = "unsupported device discovered";
  3938. break;
  3939. case MPI2_EVENT_SAS_DEV_STAT_RC_INTERNAL_DEVICE_RESET:
  3940. reason_str = "internal device reset";
  3941. break;
  3942. case MPI2_EVENT_SAS_DEV_STAT_RC_TASK_ABORT_INTERNAL:
  3943. reason_str = "internal task abort";
  3944. break;
  3945. case MPI2_EVENT_SAS_DEV_STAT_RC_ABORT_TASK_SET_INTERNAL:
  3946. reason_str = "internal task abort set";
  3947. break;
  3948. case MPI2_EVENT_SAS_DEV_STAT_RC_CLEAR_TASK_SET_INTERNAL:
  3949. reason_str = "internal clear task set";
  3950. break;
  3951. case MPI2_EVENT_SAS_DEV_STAT_RC_QUERY_TASK_INTERNAL:
  3952. reason_str = "internal query task";
  3953. break;
  3954. case MPI2_EVENT_SAS_DEV_STAT_RC_SATA_INIT_FAILURE:
  3955. reason_str = "sata init failure";
  3956. break;
  3957. case MPI2_EVENT_SAS_DEV_STAT_RC_CMP_INTERNAL_DEV_RESET:
  3958. reason_str = "internal device reset complete";
  3959. break;
  3960. case MPI2_EVENT_SAS_DEV_STAT_RC_CMP_TASK_ABORT_INTERNAL:
  3961. reason_str = "internal task abort complete";
  3962. break;
  3963. case MPI2_EVENT_SAS_DEV_STAT_RC_ASYNC_NOTIFICATION:
  3964. reason_str = "internal async notification";
  3965. break;
  3966. case MPI2_EVENT_SAS_DEV_STAT_RC_EXPANDER_REDUCED_FUNCTIONALITY:
  3967. reason_str = "expander reduced functionality";
  3968. break;
  3969. case MPI2_EVENT_SAS_DEV_STAT_RC_CMP_EXPANDER_REDUCED_FUNCTIONALITY:
  3970. reason_str = "expander reduced functionality complete";
  3971. break;
  3972. default:
  3973. reason_str = "unknown reason";
  3974. break;
  3975. }
  3976. printk(MPT2SAS_DEBUG_FMT "device status change: (%s)\n"
  3977. "\thandle(0x%04x), sas address(0x%016llx)", ioc->name,
  3978. reason_str, le16_to_cpu(event_data->DevHandle),
  3979. (unsigned long long)le64_to_cpu(event_data->SASAddress));
  3980. if (event_data->ReasonCode == MPI2_EVENT_SAS_DEV_STAT_RC_SMART_DATA)
  3981. printk(MPT2SAS_DEBUG_FMT ", ASC(0x%x), ASCQ(0x%x)\n", ioc->name,
  3982. event_data->ASC, event_data->ASCQ);
  3983. printk(KERN_INFO "\n");
  3984. }
  3985. #endif
  3986. /**
  3987. * _scsih_sas_device_status_change_event - handle device status change
  3988. * @ioc: per adapter object
  3989. * @fw_event: The fw_event_work object
  3990. * Context: user.
  3991. *
  3992. * Return nothing.
  3993. */
  3994. static void
  3995. _scsih_sas_device_status_change_event(struct MPT2SAS_ADAPTER *ioc,
  3996. struct fw_event_work *fw_event)
  3997. {
  3998. struct MPT2SAS_TARGET *target_priv_data;
  3999. struct _sas_device *sas_device;
  4000. __le64 sas_address;
  4001. unsigned long flags;
  4002. Mpi2EventDataSasDeviceStatusChange_t *event_data =
  4003. fw_event->event_data;
  4004. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4005. if (ioc->logging_level & MPT_DEBUG_EVENT_WORK_TASK)
  4006. _scsih_sas_device_status_change_event_debug(ioc,
  4007. event_data);
  4008. #endif
  4009. if (!(event_data->ReasonCode ==
  4010. MPI2_EVENT_SAS_DEV_STAT_RC_INTERNAL_DEVICE_RESET &&
  4011. event_data->ReasonCode ==
  4012. MPI2_EVENT_SAS_DEV_STAT_RC_CMP_INTERNAL_DEV_RESET))
  4013. return;
  4014. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4015. sas_address = le64_to_cpu(event_data->SASAddress);
  4016. sas_device = mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  4017. sas_address);
  4018. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4019. if (!sas_device || !sas_device->starget)
  4020. return;
  4021. target_priv_data = sas_device->starget->hostdata;
  4022. if (!target_priv_data)
  4023. return;
  4024. if (event_data->ReasonCode ==
  4025. MPI2_EVENT_SAS_DEV_STAT_RC_INTERNAL_DEVICE_RESET)
  4026. target_priv_data->tm_busy = 1;
  4027. else
  4028. target_priv_data->tm_busy = 0;
  4029. }
  4030. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4031. /**
  4032. * _scsih_sas_enclosure_dev_status_change_event_debug - debug for enclosure event
  4033. * @ioc: per adapter object
  4034. * @event_data: event data payload
  4035. * Context: user.
  4036. *
  4037. * Return nothing.
  4038. */
  4039. static void
  4040. _scsih_sas_enclosure_dev_status_change_event_debug(struct MPT2SAS_ADAPTER *ioc,
  4041. Mpi2EventDataSasEnclDevStatusChange_t *event_data)
  4042. {
  4043. char *reason_str = NULL;
  4044. switch (event_data->ReasonCode) {
  4045. case MPI2_EVENT_SAS_ENCL_RC_ADDED:
  4046. reason_str = "enclosure add";
  4047. break;
  4048. case MPI2_EVENT_SAS_ENCL_RC_NOT_RESPONDING:
  4049. reason_str = "enclosure remove";
  4050. break;
  4051. default:
  4052. reason_str = "unknown reason";
  4053. break;
  4054. }
  4055. printk(MPT2SAS_DEBUG_FMT "enclosure status change: (%s)\n"
  4056. "\thandle(0x%04x), enclosure logical id(0x%016llx)"
  4057. " number slots(%d)\n", ioc->name, reason_str,
  4058. le16_to_cpu(event_data->EnclosureHandle),
  4059. (unsigned long long)le64_to_cpu(event_data->EnclosureLogicalID),
  4060. le16_to_cpu(event_data->StartSlot));
  4061. }
  4062. #endif
  4063. /**
  4064. * _scsih_sas_enclosure_dev_status_change_event - handle enclosure events
  4065. * @ioc: per adapter object
  4066. * @fw_event: The fw_event_work object
  4067. * Context: user.
  4068. *
  4069. * Return nothing.
  4070. */
  4071. static void
  4072. _scsih_sas_enclosure_dev_status_change_event(struct MPT2SAS_ADAPTER *ioc,
  4073. struct fw_event_work *fw_event)
  4074. {
  4075. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4076. if (ioc->logging_level & MPT_DEBUG_EVENT_WORK_TASK)
  4077. _scsih_sas_enclosure_dev_status_change_event_debug(ioc,
  4078. fw_event->event_data);
  4079. #endif
  4080. }
  4081. /**
  4082. * _scsih_sas_broadcast_primative_event - handle broadcast events
  4083. * @ioc: per adapter object
  4084. * @fw_event: The fw_event_work object
  4085. * Context: user.
  4086. *
  4087. * Return nothing.
  4088. */
  4089. static void
  4090. _scsih_sas_broadcast_primative_event(struct MPT2SAS_ADAPTER *ioc,
  4091. struct fw_event_work *fw_event)
  4092. {
  4093. struct scsi_cmnd *scmd;
  4094. u16 smid, handle;
  4095. u32 lun;
  4096. struct MPT2SAS_DEVICE *sas_device_priv_data;
  4097. u32 termination_count;
  4098. u32 query_count;
  4099. Mpi2SCSITaskManagementReply_t *mpi_reply;
  4100. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4101. Mpi2EventDataSasBroadcastPrimitive_t *event_data = fw_event->event_data;
  4102. #endif
  4103. u16 ioc_status;
  4104. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "broadcast primative: "
  4105. "phy number(%d), width(%d)\n", ioc->name, event_data->PhyNum,
  4106. event_data->PortWidth));
  4107. dtmprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: enter\n", ioc->name,
  4108. __func__));
  4109. mutex_lock(&ioc->tm_cmds.mutex);
  4110. termination_count = 0;
  4111. query_count = 0;
  4112. mpi_reply = ioc->tm_cmds.reply;
  4113. for (smid = 1; smid <= ioc->scsiio_depth; smid++) {
  4114. scmd = _scsih_scsi_lookup_get(ioc, smid);
  4115. if (!scmd)
  4116. continue;
  4117. sas_device_priv_data = scmd->device->hostdata;
  4118. if (!sas_device_priv_data || !sas_device_priv_data->sas_target)
  4119. continue;
  4120. /* skip hidden raid components */
  4121. if (sas_device_priv_data->sas_target->flags &
  4122. MPT_TARGET_FLAGS_RAID_COMPONENT)
  4123. continue;
  4124. /* skip volumes */
  4125. if (sas_device_priv_data->sas_target->flags &
  4126. MPT_TARGET_FLAGS_VOLUME)
  4127. continue;
  4128. handle = sas_device_priv_data->sas_target->handle;
  4129. lun = sas_device_priv_data->lun;
  4130. query_count++;
  4131. mpt2sas_scsih_issue_tm(ioc, handle, lun,
  4132. MPI2_SCSITASKMGMT_TASKTYPE_QUERY_TASK, smid, 30);
  4133. ioc->tm_cmds.status = MPT2_CMD_NOT_USED;
  4134. ioc_status = le16_to_cpu(mpi_reply->IOCStatus)
  4135. & MPI2_IOCSTATUS_MASK;
  4136. if ((ioc_status == MPI2_IOCSTATUS_SUCCESS) &&
  4137. (mpi_reply->ResponseCode ==
  4138. MPI2_SCSITASKMGMT_RSP_TM_SUCCEEDED ||
  4139. mpi_reply->ResponseCode ==
  4140. MPI2_SCSITASKMGMT_RSP_IO_QUEUED_ON_IOC))
  4141. continue;
  4142. mpt2sas_scsih_issue_tm(ioc, handle, lun,
  4143. MPI2_SCSITASKMGMT_TASKTYPE_ABRT_TASK_SET, 0, 30);
  4144. ioc->tm_cmds.status = MPT2_CMD_NOT_USED;
  4145. termination_count += le32_to_cpu(mpi_reply->TerminationCount);
  4146. }
  4147. ioc->broadcast_aen_busy = 0;
  4148. mutex_unlock(&ioc->tm_cmds.mutex);
  4149. dtmprintk(ioc, printk(MPT2SAS_DEBUG_FMT
  4150. "%s - exit, query_count = %d termination_count = %d\n",
  4151. ioc->name, __func__, query_count, termination_count));
  4152. }
  4153. /**
  4154. * _scsih_sas_discovery_event - handle discovery events
  4155. * @ioc: per adapter object
  4156. * @fw_event: The fw_event_work object
  4157. * Context: user.
  4158. *
  4159. * Return nothing.
  4160. */
  4161. static void
  4162. _scsih_sas_discovery_event(struct MPT2SAS_ADAPTER *ioc,
  4163. struct fw_event_work *fw_event)
  4164. {
  4165. Mpi2EventDataSasDiscovery_t *event_data = fw_event->event_data;
  4166. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4167. if (ioc->logging_level & MPT_DEBUG_EVENT_WORK_TASK) {
  4168. printk(MPT2SAS_DEBUG_FMT "discovery event: (%s)", ioc->name,
  4169. (event_data->ReasonCode == MPI2_EVENT_SAS_DISC_RC_STARTED) ?
  4170. "start" : "stop");
  4171. if (event_data->DiscoveryStatus)
  4172. printk("discovery_status(0x%08x)",
  4173. le32_to_cpu(event_data->DiscoveryStatus));
  4174. printk("\n");
  4175. }
  4176. #endif
  4177. if (event_data->ReasonCode == MPI2_EVENT_SAS_DISC_RC_STARTED &&
  4178. !ioc->sas_hba.num_phys)
  4179. _scsih_sas_host_add(ioc);
  4180. }
  4181. /**
  4182. * _scsih_reprobe_lun - reprobing lun
  4183. * @sdev: scsi device struct
  4184. * @no_uld_attach: sdev->no_uld_attach flag setting
  4185. *
  4186. **/
  4187. static void
  4188. _scsih_reprobe_lun(struct scsi_device *sdev, void *no_uld_attach)
  4189. {
  4190. int rc;
  4191. sdev->no_uld_attach = no_uld_attach ? 1 : 0;
  4192. sdev_printk(KERN_INFO, sdev, "%s raid component\n",
  4193. sdev->no_uld_attach ? "hidding" : "exposing");
  4194. rc = scsi_device_reprobe(sdev);
  4195. }
  4196. /**
  4197. * _scsih_reprobe_target - reprobing target
  4198. * @starget: scsi target struct
  4199. * @no_uld_attach: sdev->no_uld_attach flag setting
  4200. *
  4201. * Note: no_uld_attach flag determines whether the disk device is attached
  4202. * to block layer. A value of `1` means to not attach.
  4203. **/
  4204. static void
  4205. _scsih_reprobe_target(struct scsi_target *starget, int no_uld_attach)
  4206. {
  4207. struct MPT2SAS_TARGET *sas_target_priv_data = starget->hostdata;
  4208. if (no_uld_attach)
  4209. sas_target_priv_data->flags |= MPT_TARGET_FLAGS_RAID_COMPONENT;
  4210. else
  4211. sas_target_priv_data->flags &= ~MPT_TARGET_FLAGS_RAID_COMPONENT;
  4212. starget_for_each_device(starget, no_uld_attach ? (void *)1 : NULL,
  4213. _scsih_reprobe_lun);
  4214. }
  4215. /**
  4216. * _scsih_sas_volume_add - add new volume
  4217. * @ioc: per adapter object
  4218. * @element: IR config element data
  4219. * Context: user.
  4220. *
  4221. * Return nothing.
  4222. */
  4223. static void
  4224. _scsih_sas_volume_add(struct MPT2SAS_ADAPTER *ioc,
  4225. Mpi2EventIrConfigElement_t *element)
  4226. {
  4227. struct _raid_device *raid_device;
  4228. unsigned long flags;
  4229. u64 wwid;
  4230. u16 handle = le16_to_cpu(element->VolDevHandle);
  4231. int rc;
  4232. mpt2sas_config_get_volume_wwid(ioc, handle, &wwid);
  4233. if (!wwid) {
  4234. printk(MPT2SAS_ERR_FMT
  4235. "failure at %s:%d/%s()!\n", ioc->name,
  4236. __FILE__, __LINE__, __func__);
  4237. return;
  4238. }
  4239. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  4240. raid_device = _scsih_raid_device_find_by_wwid(ioc, wwid);
  4241. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  4242. if (raid_device)
  4243. return;
  4244. raid_device = kzalloc(sizeof(struct _raid_device), GFP_KERNEL);
  4245. if (!raid_device) {
  4246. printk(MPT2SAS_ERR_FMT
  4247. "failure at %s:%d/%s()!\n", ioc->name,
  4248. __FILE__, __LINE__, __func__);
  4249. return;
  4250. }
  4251. raid_device->id = ioc->sas_id++;
  4252. raid_device->channel = RAID_CHANNEL;
  4253. raid_device->handle = handle;
  4254. raid_device->wwid = wwid;
  4255. _scsih_raid_device_add(ioc, raid_device);
  4256. if (!ioc->wait_for_port_enable_to_complete) {
  4257. rc = scsi_add_device(ioc->shost, RAID_CHANNEL,
  4258. raid_device->id, 0);
  4259. if (rc)
  4260. _scsih_raid_device_remove(ioc, raid_device);
  4261. } else
  4262. _scsih_determine_boot_device(ioc, raid_device, 1);
  4263. }
  4264. /**
  4265. * _scsih_sas_volume_delete - delete volume
  4266. * @ioc: per adapter object
  4267. * @element: IR config element data
  4268. * Context: user.
  4269. *
  4270. * Return nothing.
  4271. */
  4272. static void
  4273. _scsih_sas_volume_delete(struct MPT2SAS_ADAPTER *ioc,
  4274. Mpi2EventIrConfigElement_t *element)
  4275. {
  4276. struct _raid_device *raid_device;
  4277. u16 handle = le16_to_cpu(element->VolDevHandle);
  4278. unsigned long flags;
  4279. struct MPT2SAS_TARGET *sas_target_priv_data;
  4280. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  4281. raid_device = _scsih_raid_device_find_by_handle(ioc, handle);
  4282. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  4283. if (!raid_device)
  4284. return;
  4285. if (raid_device->starget) {
  4286. sas_target_priv_data = raid_device->starget->hostdata;
  4287. sas_target_priv_data->deleted = 1;
  4288. scsi_remove_target(&raid_device->starget->dev);
  4289. }
  4290. _scsih_raid_device_remove(ioc, raid_device);
  4291. }
  4292. /**
  4293. * _scsih_sas_pd_expose - expose pd component to /dev/sdX
  4294. * @ioc: per adapter object
  4295. * @element: IR config element data
  4296. * Context: user.
  4297. *
  4298. * Return nothing.
  4299. */
  4300. static void
  4301. _scsih_sas_pd_expose(struct MPT2SAS_ADAPTER *ioc,
  4302. Mpi2EventIrConfigElement_t *element)
  4303. {
  4304. struct _sas_device *sas_device;
  4305. unsigned long flags;
  4306. u16 handle = le16_to_cpu(element->PhysDiskDevHandle);
  4307. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4308. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  4309. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4310. if (!sas_device)
  4311. return;
  4312. /* exposing raid component */
  4313. sas_device->volume_handle = 0;
  4314. sas_device->volume_wwid = 0;
  4315. sas_device->hidden_raid_component = 0;
  4316. _scsih_reprobe_target(sas_device->starget, 0);
  4317. }
  4318. /**
  4319. * _scsih_sas_pd_hide - hide pd component from /dev/sdX
  4320. * @ioc: per adapter object
  4321. * @element: IR config element data
  4322. * Context: user.
  4323. *
  4324. * Return nothing.
  4325. */
  4326. static void
  4327. _scsih_sas_pd_hide(struct MPT2SAS_ADAPTER *ioc,
  4328. Mpi2EventIrConfigElement_t *element)
  4329. {
  4330. struct _sas_device *sas_device;
  4331. unsigned long flags;
  4332. u16 handle = le16_to_cpu(element->PhysDiskDevHandle);
  4333. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4334. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  4335. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4336. if (!sas_device)
  4337. return;
  4338. /* hiding raid component */
  4339. mpt2sas_config_get_volume_handle(ioc, handle,
  4340. &sas_device->volume_handle);
  4341. mpt2sas_config_get_volume_wwid(ioc, sas_device->volume_handle,
  4342. &sas_device->volume_wwid);
  4343. sas_device->hidden_raid_component = 1;
  4344. _scsih_reprobe_target(sas_device->starget, 1);
  4345. }
  4346. /**
  4347. * _scsih_sas_pd_delete - delete pd component
  4348. * @ioc: per adapter object
  4349. * @element: IR config element data
  4350. * Context: user.
  4351. *
  4352. * Return nothing.
  4353. */
  4354. static void
  4355. _scsih_sas_pd_delete(struct MPT2SAS_ADAPTER *ioc,
  4356. Mpi2EventIrConfigElement_t *element)
  4357. {
  4358. struct _sas_device *sas_device;
  4359. unsigned long flags;
  4360. u16 handle = le16_to_cpu(element->PhysDiskDevHandle);
  4361. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4362. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  4363. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4364. if (!sas_device)
  4365. return;
  4366. _scsih_remove_device(ioc, sas_device);
  4367. }
  4368. /**
  4369. * _scsih_sas_pd_add - remove pd component
  4370. * @ioc: per adapter object
  4371. * @element: IR config element data
  4372. * Context: user.
  4373. *
  4374. * Return nothing.
  4375. */
  4376. static void
  4377. _scsih_sas_pd_add(struct MPT2SAS_ADAPTER *ioc,
  4378. Mpi2EventIrConfigElement_t *element)
  4379. {
  4380. struct _sas_device *sas_device;
  4381. unsigned long flags;
  4382. u16 handle = le16_to_cpu(element->PhysDiskDevHandle);
  4383. Mpi2ConfigReply_t mpi_reply;
  4384. Mpi2SasDevicePage0_t sas_device_pg0;
  4385. u32 ioc_status;
  4386. u64 sas_address;
  4387. u16 parent_handle;
  4388. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4389. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  4390. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4391. if (sas_device) {
  4392. sas_device->hidden_raid_component = 1;
  4393. return;
  4394. }
  4395. if ((mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply, &sas_device_pg0,
  4396. MPI2_SAS_DEVICE_PGAD_FORM_HANDLE, handle))) {
  4397. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  4398. ioc->name, __FILE__, __LINE__, __func__);
  4399. return;
  4400. }
  4401. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  4402. MPI2_IOCSTATUS_MASK;
  4403. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  4404. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  4405. ioc->name, __FILE__, __LINE__, __func__);
  4406. return;
  4407. }
  4408. parent_handle = le16_to_cpu(sas_device_pg0.ParentDevHandle);
  4409. if (!_scsih_get_sas_address(ioc, parent_handle, &sas_address))
  4410. mpt2sas_transport_update_links(ioc, sas_address, handle,
  4411. sas_device_pg0.PhyNum, MPI2_SAS_NEG_LINK_RATE_1_5);
  4412. _scsih_add_device(ioc, handle, 0, 1);
  4413. }
  4414. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4415. /**
  4416. * _scsih_sas_ir_config_change_event_debug - debug for IR Config Change events
  4417. * @ioc: per adapter object
  4418. * @event_data: event data payload
  4419. * Context: user.
  4420. *
  4421. * Return nothing.
  4422. */
  4423. static void
  4424. _scsih_sas_ir_config_change_event_debug(struct MPT2SAS_ADAPTER *ioc,
  4425. Mpi2EventDataIrConfigChangeList_t *event_data)
  4426. {
  4427. Mpi2EventIrConfigElement_t *element;
  4428. u8 element_type;
  4429. int i;
  4430. char *reason_str = NULL, *element_str = NULL;
  4431. element = (Mpi2EventIrConfigElement_t *)&event_data->ConfigElement[0];
  4432. printk(MPT2SAS_DEBUG_FMT "raid config change: (%s), elements(%d)\n",
  4433. ioc->name, (le32_to_cpu(event_data->Flags) &
  4434. MPI2_EVENT_IR_CHANGE_FLAGS_FOREIGN_CONFIG) ?
  4435. "foreign" : "native", event_data->NumElements);
  4436. for (i = 0; i < event_data->NumElements; i++, element++) {
  4437. switch (element->ReasonCode) {
  4438. case MPI2_EVENT_IR_CHANGE_RC_ADDED:
  4439. reason_str = "add";
  4440. break;
  4441. case MPI2_EVENT_IR_CHANGE_RC_REMOVED:
  4442. reason_str = "remove";
  4443. break;
  4444. case MPI2_EVENT_IR_CHANGE_RC_NO_CHANGE:
  4445. reason_str = "no change";
  4446. break;
  4447. case MPI2_EVENT_IR_CHANGE_RC_HIDE:
  4448. reason_str = "hide";
  4449. break;
  4450. case MPI2_EVENT_IR_CHANGE_RC_UNHIDE:
  4451. reason_str = "unhide";
  4452. break;
  4453. case MPI2_EVENT_IR_CHANGE_RC_VOLUME_CREATED:
  4454. reason_str = "volume_created";
  4455. break;
  4456. case MPI2_EVENT_IR_CHANGE_RC_VOLUME_DELETED:
  4457. reason_str = "volume_deleted";
  4458. break;
  4459. case MPI2_EVENT_IR_CHANGE_RC_PD_CREATED:
  4460. reason_str = "pd_created";
  4461. break;
  4462. case MPI2_EVENT_IR_CHANGE_RC_PD_DELETED:
  4463. reason_str = "pd_deleted";
  4464. break;
  4465. default:
  4466. reason_str = "unknown reason";
  4467. break;
  4468. }
  4469. element_type = le16_to_cpu(element->ElementFlags) &
  4470. MPI2_EVENT_IR_CHANGE_EFLAGS_ELEMENT_TYPE_MASK;
  4471. switch (element_type) {
  4472. case MPI2_EVENT_IR_CHANGE_EFLAGS_VOLUME_ELEMENT:
  4473. element_str = "volume";
  4474. break;
  4475. case MPI2_EVENT_IR_CHANGE_EFLAGS_VOLPHYSDISK_ELEMENT:
  4476. element_str = "phys disk";
  4477. break;
  4478. case MPI2_EVENT_IR_CHANGE_EFLAGS_HOTSPARE_ELEMENT:
  4479. element_str = "hot spare";
  4480. break;
  4481. default:
  4482. element_str = "unknown element";
  4483. break;
  4484. }
  4485. printk(KERN_DEBUG "\t(%s:%s), vol handle(0x%04x), "
  4486. "pd handle(0x%04x), pd num(0x%02x)\n", element_str,
  4487. reason_str, le16_to_cpu(element->VolDevHandle),
  4488. le16_to_cpu(element->PhysDiskDevHandle),
  4489. element->PhysDiskNum);
  4490. }
  4491. }
  4492. #endif
  4493. /**
  4494. * _scsih_sas_ir_config_change_event - handle ir configuration change events
  4495. * @ioc: per adapter object
  4496. * @fw_event: The fw_event_work object
  4497. * Context: user.
  4498. *
  4499. * Return nothing.
  4500. */
  4501. static void
  4502. _scsih_sas_ir_config_change_event(struct MPT2SAS_ADAPTER *ioc,
  4503. struct fw_event_work *fw_event)
  4504. {
  4505. Mpi2EventIrConfigElement_t *element;
  4506. int i;
  4507. u8 foreign_config;
  4508. Mpi2EventDataIrConfigChangeList_t *event_data = fw_event->event_data;
  4509. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4510. if (ioc->logging_level & MPT_DEBUG_EVENT_WORK_TASK)
  4511. _scsih_sas_ir_config_change_event_debug(ioc, event_data);
  4512. #endif
  4513. foreign_config = (le32_to_cpu(event_data->Flags) &
  4514. MPI2_EVENT_IR_CHANGE_FLAGS_FOREIGN_CONFIG) ? 1 : 0;
  4515. element = (Mpi2EventIrConfigElement_t *)&event_data->ConfigElement[0];
  4516. for (i = 0; i < event_data->NumElements; i++, element++) {
  4517. switch (element->ReasonCode) {
  4518. case MPI2_EVENT_IR_CHANGE_RC_VOLUME_CREATED:
  4519. case MPI2_EVENT_IR_CHANGE_RC_ADDED:
  4520. if (!foreign_config)
  4521. _scsih_sas_volume_add(ioc, element);
  4522. break;
  4523. case MPI2_EVENT_IR_CHANGE_RC_VOLUME_DELETED:
  4524. case MPI2_EVENT_IR_CHANGE_RC_REMOVED:
  4525. if (!foreign_config)
  4526. _scsih_sas_volume_delete(ioc, element);
  4527. break;
  4528. case MPI2_EVENT_IR_CHANGE_RC_PD_CREATED:
  4529. _scsih_sas_pd_hide(ioc, element);
  4530. break;
  4531. case MPI2_EVENT_IR_CHANGE_RC_PD_DELETED:
  4532. _scsih_sas_pd_expose(ioc, element);
  4533. break;
  4534. case MPI2_EVENT_IR_CHANGE_RC_HIDE:
  4535. _scsih_sas_pd_add(ioc, element);
  4536. break;
  4537. case MPI2_EVENT_IR_CHANGE_RC_UNHIDE:
  4538. _scsih_sas_pd_delete(ioc, element);
  4539. break;
  4540. }
  4541. }
  4542. }
  4543. /**
  4544. * _scsih_sas_ir_volume_event - IR volume event
  4545. * @ioc: per adapter object
  4546. * @fw_event: The fw_event_work object
  4547. * Context: user.
  4548. *
  4549. * Return nothing.
  4550. */
  4551. static void
  4552. _scsih_sas_ir_volume_event(struct MPT2SAS_ADAPTER *ioc,
  4553. struct fw_event_work *fw_event)
  4554. {
  4555. u64 wwid;
  4556. unsigned long flags;
  4557. struct _raid_device *raid_device;
  4558. u16 handle;
  4559. u32 state;
  4560. int rc;
  4561. struct MPT2SAS_TARGET *sas_target_priv_data;
  4562. Mpi2EventDataIrVolume_t *event_data = fw_event->event_data;
  4563. if (event_data->ReasonCode != MPI2_EVENT_IR_VOLUME_RC_STATE_CHANGED)
  4564. return;
  4565. handle = le16_to_cpu(event_data->VolDevHandle);
  4566. state = le32_to_cpu(event_data->NewValue);
  4567. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: handle(0x%04x), "
  4568. "old(0x%08x), new(0x%08x)\n", ioc->name, __func__, handle,
  4569. le32_to_cpu(event_data->PreviousValue), state));
  4570. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  4571. raid_device = _scsih_raid_device_find_by_handle(ioc, handle);
  4572. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  4573. switch (state) {
  4574. case MPI2_RAID_VOL_STATE_MISSING:
  4575. case MPI2_RAID_VOL_STATE_FAILED:
  4576. if (!raid_device)
  4577. break;
  4578. if (raid_device->starget) {
  4579. sas_target_priv_data = raid_device->starget->hostdata;
  4580. sas_target_priv_data->deleted = 1;
  4581. scsi_remove_target(&raid_device->starget->dev);
  4582. }
  4583. _scsih_raid_device_remove(ioc, raid_device);
  4584. break;
  4585. case MPI2_RAID_VOL_STATE_ONLINE:
  4586. case MPI2_RAID_VOL_STATE_DEGRADED:
  4587. case MPI2_RAID_VOL_STATE_OPTIMAL:
  4588. if (raid_device)
  4589. break;
  4590. mpt2sas_config_get_volume_wwid(ioc, handle, &wwid);
  4591. if (!wwid) {
  4592. printk(MPT2SAS_ERR_FMT
  4593. "failure at %s:%d/%s()!\n", ioc->name,
  4594. __FILE__, __LINE__, __func__);
  4595. break;
  4596. }
  4597. raid_device = kzalloc(sizeof(struct _raid_device), GFP_KERNEL);
  4598. if (!raid_device) {
  4599. printk(MPT2SAS_ERR_FMT
  4600. "failure at %s:%d/%s()!\n", ioc->name,
  4601. __FILE__, __LINE__, __func__);
  4602. break;
  4603. }
  4604. raid_device->id = ioc->sas_id++;
  4605. raid_device->channel = RAID_CHANNEL;
  4606. raid_device->handle = handle;
  4607. raid_device->wwid = wwid;
  4608. _scsih_raid_device_add(ioc, raid_device);
  4609. rc = scsi_add_device(ioc->shost, RAID_CHANNEL,
  4610. raid_device->id, 0);
  4611. if (rc)
  4612. _scsih_raid_device_remove(ioc, raid_device);
  4613. break;
  4614. case MPI2_RAID_VOL_STATE_INITIALIZING:
  4615. default:
  4616. break;
  4617. }
  4618. }
  4619. /**
  4620. * _scsih_sas_ir_physical_disk_event - PD event
  4621. * @ioc: per adapter object
  4622. * @fw_event: The fw_event_work object
  4623. * Context: user.
  4624. *
  4625. * Return nothing.
  4626. */
  4627. static void
  4628. _scsih_sas_ir_physical_disk_event(struct MPT2SAS_ADAPTER *ioc,
  4629. struct fw_event_work *fw_event)
  4630. {
  4631. u16 handle, parent_handle;
  4632. u32 state;
  4633. struct _sas_device *sas_device;
  4634. unsigned long flags;
  4635. Mpi2ConfigReply_t mpi_reply;
  4636. Mpi2SasDevicePage0_t sas_device_pg0;
  4637. u32 ioc_status;
  4638. Mpi2EventDataIrPhysicalDisk_t *event_data = fw_event->event_data;
  4639. u64 sas_address;
  4640. if (event_data->ReasonCode != MPI2_EVENT_IR_PHYSDISK_RC_STATE_CHANGED)
  4641. return;
  4642. handle = le16_to_cpu(event_data->PhysDiskDevHandle);
  4643. state = le32_to_cpu(event_data->NewValue);
  4644. dewtprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: handle(0x%04x), "
  4645. "old(0x%08x), new(0x%08x)\n", ioc->name, __func__, handle,
  4646. le32_to_cpu(event_data->PreviousValue), state));
  4647. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4648. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  4649. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4650. switch (state) {
  4651. case MPI2_RAID_PD_STATE_ONLINE:
  4652. case MPI2_RAID_PD_STATE_DEGRADED:
  4653. case MPI2_RAID_PD_STATE_REBUILDING:
  4654. case MPI2_RAID_PD_STATE_OPTIMAL:
  4655. if (sas_device) {
  4656. sas_device->hidden_raid_component = 1;
  4657. return;
  4658. }
  4659. if ((mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply,
  4660. &sas_device_pg0, MPI2_SAS_DEVICE_PGAD_FORM_HANDLE,
  4661. handle))) {
  4662. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  4663. ioc->name, __FILE__, __LINE__, __func__);
  4664. return;
  4665. }
  4666. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  4667. MPI2_IOCSTATUS_MASK;
  4668. if (ioc_status != MPI2_IOCSTATUS_SUCCESS) {
  4669. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  4670. ioc->name, __FILE__, __LINE__, __func__);
  4671. return;
  4672. }
  4673. parent_handle = le16_to_cpu(sas_device_pg0.ParentDevHandle);
  4674. if (!_scsih_get_sas_address(ioc, parent_handle, &sas_address))
  4675. mpt2sas_transport_update_links(ioc, sas_address, handle,
  4676. sas_device_pg0.PhyNum, MPI2_SAS_NEG_LINK_RATE_1_5);
  4677. _scsih_add_device(ioc, handle, 0, 1);
  4678. break;
  4679. case MPI2_RAID_PD_STATE_OFFLINE:
  4680. case MPI2_RAID_PD_STATE_NOT_CONFIGURED:
  4681. case MPI2_RAID_PD_STATE_NOT_COMPATIBLE:
  4682. case MPI2_RAID_PD_STATE_HOT_SPARE:
  4683. default:
  4684. break;
  4685. }
  4686. }
  4687. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4688. /**
  4689. * _scsih_sas_ir_operation_status_event_debug - debug for IR op event
  4690. * @ioc: per adapter object
  4691. * @event_data: event data payload
  4692. * Context: user.
  4693. *
  4694. * Return nothing.
  4695. */
  4696. static void
  4697. _scsih_sas_ir_operation_status_event_debug(struct MPT2SAS_ADAPTER *ioc,
  4698. Mpi2EventDataIrOperationStatus_t *event_data)
  4699. {
  4700. char *reason_str = NULL;
  4701. switch (event_data->RAIDOperation) {
  4702. case MPI2_EVENT_IR_RAIDOP_RESYNC:
  4703. reason_str = "resync";
  4704. break;
  4705. case MPI2_EVENT_IR_RAIDOP_ONLINE_CAP_EXPANSION:
  4706. reason_str = "online capacity expansion";
  4707. break;
  4708. case MPI2_EVENT_IR_RAIDOP_CONSISTENCY_CHECK:
  4709. reason_str = "consistency check";
  4710. break;
  4711. case MPI2_EVENT_IR_RAIDOP_BACKGROUND_INIT:
  4712. reason_str = "background init";
  4713. break;
  4714. case MPI2_EVENT_IR_RAIDOP_MAKE_DATA_CONSISTENT:
  4715. reason_str = "make data consistent";
  4716. break;
  4717. }
  4718. if (!reason_str)
  4719. return;
  4720. printk(MPT2SAS_INFO_FMT "raid operational status: (%s)"
  4721. "\thandle(0x%04x), percent complete(%d)\n",
  4722. ioc->name, reason_str,
  4723. le16_to_cpu(event_data->VolDevHandle),
  4724. event_data->PercentComplete);
  4725. }
  4726. #endif
  4727. /**
  4728. * _scsih_sas_ir_operation_status_event - handle RAID operation events
  4729. * @ioc: per adapter object
  4730. * @fw_event: The fw_event_work object
  4731. * Context: user.
  4732. *
  4733. * Return nothing.
  4734. */
  4735. static void
  4736. _scsih_sas_ir_operation_status_event(struct MPT2SAS_ADAPTER *ioc,
  4737. struct fw_event_work *fw_event)
  4738. {
  4739. Mpi2EventDataIrOperationStatus_t *event_data = fw_event->event_data;
  4740. static struct _raid_device *raid_device;
  4741. unsigned long flags;
  4742. u16 handle;
  4743. #ifdef CONFIG_SCSI_MPT2SAS_LOGGING
  4744. if (ioc->logging_level & MPT_DEBUG_EVENT_WORK_TASK)
  4745. _scsih_sas_ir_operation_status_event_debug(ioc,
  4746. event_data);
  4747. #endif
  4748. /* code added for raid transport support */
  4749. if (event_data->RAIDOperation == MPI2_EVENT_IR_RAIDOP_RESYNC) {
  4750. handle = le16_to_cpu(event_data->VolDevHandle);
  4751. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  4752. raid_device = _scsih_raid_device_find_by_handle(ioc, handle);
  4753. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  4754. if (!raid_device)
  4755. return;
  4756. if (event_data->RAIDOperation == MPI2_EVENT_IR_RAIDOP_RESYNC)
  4757. raid_device->percent_complete =
  4758. event_data->PercentComplete;
  4759. }
  4760. }
  4761. /**
  4762. * _scsih_task_set_full - handle task set full
  4763. * @ioc: per adapter object
  4764. * @fw_event: The fw_event_work object
  4765. * Context: user.
  4766. *
  4767. * Throttle back qdepth.
  4768. */
  4769. static void
  4770. _scsih_task_set_full(struct MPT2SAS_ADAPTER *ioc, struct fw_event_work
  4771. *fw_event)
  4772. {
  4773. unsigned long flags;
  4774. struct _sas_device *sas_device;
  4775. static struct _raid_device *raid_device;
  4776. struct scsi_device *sdev;
  4777. int depth;
  4778. u16 current_depth;
  4779. u16 handle;
  4780. int id, channel;
  4781. u64 sas_address;
  4782. Mpi2EventDataTaskSetFull_t *event_data = fw_event->event_data;
  4783. current_depth = le16_to_cpu(event_data->CurrentDepth);
  4784. handle = le16_to_cpu(event_data->DevHandle);
  4785. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4786. sas_device = _scsih_sas_device_find_by_handle(ioc, handle);
  4787. if (!sas_device) {
  4788. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4789. return;
  4790. }
  4791. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4792. id = sas_device->id;
  4793. channel = sas_device->channel;
  4794. sas_address = sas_device->sas_address;
  4795. /* if hidden raid component, then change to volume characteristics */
  4796. if (sas_device->hidden_raid_component && sas_device->volume_handle) {
  4797. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  4798. raid_device = _scsih_raid_device_find_by_handle(
  4799. ioc, sas_device->volume_handle);
  4800. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  4801. if (raid_device) {
  4802. id = raid_device->id;
  4803. channel = raid_device->channel;
  4804. handle = raid_device->handle;
  4805. sas_address = raid_device->wwid;
  4806. }
  4807. }
  4808. if (ioc->logging_level & MPT_DEBUG_TASK_SET_FULL)
  4809. starget_printk(KERN_DEBUG, sas_device->starget, "task set "
  4810. "full: handle(0x%04x), sas_addr(0x%016llx), depth(%d)\n",
  4811. handle, (unsigned long long)sas_address, current_depth);
  4812. shost_for_each_device(sdev, ioc->shost) {
  4813. if (sdev->id == id && sdev->channel == channel) {
  4814. if (current_depth > sdev->queue_depth) {
  4815. if (ioc->logging_level &
  4816. MPT_DEBUG_TASK_SET_FULL)
  4817. sdev_printk(KERN_INFO, sdev, "strange "
  4818. "observation, the queue depth is"
  4819. " (%d) meanwhile fw queue depth "
  4820. "is (%d)\n", sdev->queue_depth,
  4821. current_depth);
  4822. continue;
  4823. }
  4824. depth = scsi_track_queue_full(sdev,
  4825. current_depth - 1);
  4826. if (depth > 0)
  4827. sdev_printk(KERN_INFO, sdev, "Queue depth "
  4828. "reduced to (%d)\n", depth);
  4829. else if (depth < 0)
  4830. sdev_printk(KERN_INFO, sdev, "Tagged Command "
  4831. "Queueing is being disabled\n");
  4832. else if (depth == 0)
  4833. if (ioc->logging_level &
  4834. MPT_DEBUG_TASK_SET_FULL)
  4835. sdev_printk(KERN_INFO, sdev,
  4836. "Queue depth not changed yet\n");
  4837. }
  4838. }
  4839. }
  4840. /**
  4841. * _scsih_mark_responding_sas_device - mark a sas_devices as responding
  4842. * @ioc: per adapter object
  4843. * @sas_address: sas address
  4844. * @slot: enclosure slot id
  4845. * @handle: device handle
  4846. *
  4847. * After host reset, find out whether devices are still responding.
  4848. * Used in _scsi_remove_unresponsive_sas_devices.
  4849. *
  4850. * Return nothing.
  4851. */
  4852. static void
  4853. _scsih_mark_responding_sas_device(struct MPT2SAS_ADAPTER *ioc, u64 sas_address,
  4854. u16 slot, u16 handle)
  4855. {
  4856. struct MPT2SAS_TARGET *sas_target_priv_data;
  4857. struct scsi_target *starget;
  4858. struct _sas_device *sas_device;
  4859. unsigned long flags;
  4860. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  4861. list_for_each_entry(sas_device, &ioc->sas_device_list, list) {
  4862. if (sas_device->sas_address == sas_address &&
  4863. sas_device->slot == slot && sas_device->starget) {
  4864. sas_device->responding = 1;
  4865. starget = sas_device->starget;
  4866. sas_target_priv_data = starget->hostdata;
  4867. sas_target_priv_data->tm_busy = 0;
  4868. starget_printk(KERN_INFO, sas_device->starget,
  4869. "handle(0x%04x), sas_addr(0x%016llx), enclosure "
  4870. "logical id(0x%016llx), slot(%d)\n", handle,
  4871. (unsigned long long)sas_device->sas_address,
  4872. (unsigned long long)
  4873. sas_device->enclosure_logical_id,
  4874. sas_device->slot);
  4875. if (sas_device->handle == handle)
  4876. goto out;
  4877. printk(KERN_INFO "\thandle changed from(0x%04x)!!!\n",
  4878. sas_device->handle);
  4879. sas_device->handle = handle;
  4880. sas_target_priv_data->handle = handle;
  4881. goto out;
  4882. }
  4883. }
  4884. out:
  4885. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  4886. }
  4887. /**
  4888. * _scsih_search_responding_sas_devices -
  4889. * @ioc: per adapter object
  4890. *
  4891. * After host reset, find out whether devices are still responding.
  4892. * If not remove.
  4893. *
  4894. * Return nothing.
  4895. */
  4896. static void
  4897. _scsih_search_responding_sas_devices(struct MPT2SAS_ADAPTER *ioc)
  4898. {
  4899. Mpi2SasDevicePage0_t sas_device_pg0;
  4900. Mpi2ConfigReply_t mpi_reply;
  4901. u16 ioc_status;
  4902. __le64 sas_address;
  4903. u16 handle;
  4904. u32 device_info;
  4905. u16 slot;
  4906. printk(MPT2SAS_INFO_FMT "%s\n", ioc->name, __func__);
  4907. if (list_empty(&ioc->sas_device_list))
  4908. return;
  4909. handle = 0xFFFF;
  4910. while (!(mpt2sas_config_get_sas_device_pg0(ioc, &mpi_reply,
  4911. &sas_device_pg0, MPI2_SAS_DEVICE_PGAD_FORM_GET_NEXT_HANDLE,
  4912. handle))) {
  4913. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  4914. MPI2_IOCSTATUS_MASK;
  4915. if (ioc_status == MPI2_IOCSTATUS_CONFIG_INVALID_PAGE)
  4916. break;
  4917. handle = le16_to_cpu(sas_device_pg0.DevHandle);
  4918. device_info = le32_to_cpu(sas_device_pg0.DeviceInfo);
  4919. if (!(_scsih_is_end_device(device_info)))
  4920. continue;
  4921. sas_address = le64_to_cpu(sas_device_pg0.SASAddress);
  4922. slot = le16_to_cpu(sas_device_pg0.Slot);
  4923. _scsih_mark_responding_sas_device(ioc, sas_address, slot,
  4924. handle);
  4925. }
  4926. }
  4927. /**
  4928. * _scsih_mark_responding_raid_device - mark a raid_device as responding
  4929. * @ioc: per adapter object
  4930. * @wwid: world wide identifier for raid volume
  4931. * @handle: device handle
  4932. *
  4933. * After host reset, find out whether devices are still responding.
  4934. * Used in _scsi_remove_unresponsive_raid_devices.
  4935. *
  4936. * Return nothing.
  4937. */
  4938. static void
  4939. _scsih_mark_responding_raid_device(struct MPT2SAS_ADAPTER *ioc, u64 wwid,
  4940. u16 handle)
  4941. {
  4942. struct MPT2SAS_TARGET *sas_target_priv_data;
  4943. struct scsi_target *starget;
  4944. struct _raid_device *raid_device;
  4945. unsigned long flags;
  4946. spin_lock_irqsave(&ioc->raid_device_lock, flags);
  4947. list_for_each_entry(raid_device, &ioc->raid_device_list, list) {
  4948. if (raid_device->wwid == wwid && raid_device->starget) {
  4949. raid_device->responding = 1;
  4950. starget_printk(KERN_INFO, raid_device->starget,
  4951. "handle(0x%04x), wwid(0x%016llx)\n", handle,
  4952. (unsigned long long)raid_device->wwid);
  4953. if (raid_device->handle == handle)
  4954. goto out;
  4955. printk(KERN_INFO "\thandle changed from(0x%04x)!!!\n",
  4956. raid_device->handle);
  4957. raid_device->handle = handle;
  4958. starget = raid_device->starget;
  4959. sas_target_priv_data = starget->hostdata;
  4960. sas_target_priv_data->handle = handle;
  4961. goto out;
  4962. }
  4963. }
  4964. out:
  4965. spin_unlock_irqrestore(&ioc->raid_device_lock, flags);
  4966. }
  4967. /**
  4968. * _scsih_search_responding_raid_devices -
  4969. * @ioc: per adapter object
  4970. *
  4971. * After host reset, find out whether devices are still responding.
  4972. * If not remove.
  4973. *
  4974. * Return nothing.
  4975. */
  4976. static void
  4977. _scsih_search_responding_raid_devices(struct MPT2SAS_ADAPTER *ioc)
  4978. {
  4979. Mpi2RaidVolPage1_t volume_pg1;
  4980. Mpi2ConfigReply_t mpi_reply;
  4981. u16 ioc_status;
  4982. u16 handle;
  4983. printk(MPT2SAS_INFO_FMT "%s\n", ioc->name, __func__);
  4984. if (list_empty(&ioc->raid_device_list))
  4985. return;
  4986. handle = 0xFFFF;
  4987. while (!(mpt2sas_config_get_raid_volume_pg1(ioc, &mpi_reply,
  4988. &volume_pg1, MPI2_RAID_VOLUME_PGAD_FORM_GET_NEXT_HANDLE, handle))) {
  4989. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  4990. MPI2_IOCSTATUS_MASK;
  4991. if (ioc_status == MPI2_IOCSTATUS_CONFIG_INVALID_PAGE)
  4992. break;
  4993. handle = le16_to_cpu(volume_pg1.DevHandle);
  4994. _scsih_mark_responding_raid_device(ioc,
  4995. le64_to_cpu(volume_pg1.WWID), handle);
  4996. }
  4997. }
  4998. /**
  4999. * _scsih_mark_responding_expander - mark a expander as responding
  5000. * @ioc: per adapter object
  5001. * @sas_address: sas address
  5002. * @handle:
  5003. *
  5004. * After host reset, find out whether devices are still responding.
  5005. * Used in _scsi_remove_unresponsive_expanders.
  5006. *
  5007. * Return nothing.
  5008. */
  5009. static void
  5010. _scsih_mark_responding_expander(struct MPT2SAS_ADAPTER *ioc, u64 sas_address,
  5011. u16 handle)
  5012. {
  5013. struct _sas_node *sas_expander;
  5014. unsigned long flags;
  5015. int i;
  5016. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  5017. list_for_each_entry(sas_expander, &ioc->sas_expander_list, list) {
  5018. if (sas_expander->sas_address != sas_address)
  5019. continue;
  5020. sas_expander->responding = 1;
  5021. if (sas_expander->handle == handle)
  5022. goto out;
  5023. printk(KERN_INFO "\texpander(0x%016llx): handle changed"
  5024. " from(0x%04x) to (0x%04x)!!!\n",
  5025. (unsigned long long)sas_expander->sas_address,
  5026. sas_expander->handle, handle);
  5027. sas_expander->handle = handle;
  5028. for (i = 0 ; i < sas_expander->num_phys ; i++)
  5029. sas_expander->phy[i].handle = handle;
  5030. goto out;
  5031. }
  5032. out:
  5033. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  5034. }
  5035. /**
  5036. * _scsih_search_responding_expanders -
  5037. * @ioc: per adapter object
  5038. *
  5039. * After host reset, find out whether devices are still responding.
  5040. * If not remove.
  5041. *
  5042. * Return nothing.
  5043. */
  5044. static void
  5045. _scsih_search_responding_expanders(struct MPT2SAS_ADAPTER *ioc)
  5046. {
  5047. Mpi2ExpanderPage0_t expander_pg0;
  5048. Mpi2ConfigReply_t mpi_reply;
  5049. u16 ioc_status;
  5050. __le64 sas_address;
  5051. u16 handle;
  5052. printk(MPT2SAS_INFO_FMT "%s\n", ioc->name, __func__);
  5053. if (list_empty(&ioc->sas_expander_list))
  5054. return;
  5055. handle = 0xFFFF;
  5056. while (!(mpt2sas_config_get_expander_pg0(ioc, &mpi_reply, &expander_pg0,
  5057. MPI2_SAS_EXPAND_PGAD_FORM_GET_NEXT_HNDL, handle))) {
  5058. ioc_status = le16_to_cpu(mpi_reply.IOCStatus) &
  5059. MPI2_IOCSTATUS_MASK;
  5060. if (ioc_status == MPI2_IOCSTATUS_CONFIG_INVALID_PAGE)
  5061. break;
  5062. handle = le16_to_cpu(expander_pg0.DevHandle);
  5063. sas_address = le64_to_cpu(expander_pg0.SASAddress);
  5064. printk(KERN_INFO "\texpander present: handle(0x%04x), "
  5065. "sas_addr(0x%016llx)\n", handle,
  5066. (unsigned long long)sas_address);
  5067. _scsih_mark_responding_expander(ioc, sas_address, handle);
  5068. }
  5069. }
  5070. /**
  5071. * _scsih_remove_unresponding_sas_devices - removing unresponding devices
  5072. * @ioc: per adapter object
  5073. *
  5074. * Return nothing.
  5075. */
  5076. static void
  5077. _scsih_remove_unresponding_sas_devices(struct MPT2SAS_ADAPTER *ioc)
  5078. {
  5079. struct _sas_device *sas_device, *sas_device_next;
  5080. struct _sas_node *sas_expander;
  5081. struct _raid_device *raid_device, *raid_device_next;
  5082. list_for_each_entry_safe(sas_device, sas_device_next,
  5083. &ioc->sas_device_list, list) {
  5084. if (sas_device->responding) {
  5085. sas_device->responding = 0;
  5086. continue;
  5087. }
  5088. if (sas_device->starget)
  5089. starget_printk(KERN_INFO, sas_device->starget,
  5090. "removing: handle(0x%04x), sas_addr(0x%016llx), "
  5091. "enclosure logical id(0x%016llx), slot(%d)\n",
  5092. sas_device->handle,
  5093. (unsigned long long)sas_device->sas_address,
  5094. (unsigned long long)
  5095. sas_device->enclosure_logical_id,
  5096. sas_device->slot);
  5097. /* invalidate the device handle */
  5098. sas_device->handle = 0;
  5099. _scsih_remove_device(ioc, sas_device);
  5100. }
  5101. list_for_each_entry_safe(raid_device, raid_device_next,
  5102. &ioc->raid_device_list, list) {
  5103. if (raid_device->responding) {
  5104. raid_device->responding = 0;
  5105. continue;
  5106. }
  5107. if (raid_device->starget) {
  5108. starget_printk(KERN_INFO, raid_device->starget,
  5109. "removing: handle(0x%04x), wwid(0x%016llx)\n",
  5110. raid_device->handle,
  5111. (unsigned long long)raid_device->wwid);
  5112. scsi_remove_target(&raid_device->starget->dev);
  5113. }
  5114. _scsih_raid_device_remove(ioc, raid_device);
  5115. }
  5116. retry_expander_search:
  5117. sas_expander = NULL;
  5118. list_for_each_entry(sas_expander, &ioc->sas_expander_list, list) {
  5119. if (sas_expander->responding) {
  5120. sas_expander->responding = 0;
  5121. continue;
  5122. }
  5123. _scsih_expander_remove(ioc, sas_expander->sas_address);
  5124. goto retry_expander_search;
  5125. }
  5126. }
  5127. /**
  5128. * mpt2sas_scsih_reset_handler - reset callback handler (for scsih)
  5129. * @ioc: per adapter object
  5130. * @reset_phase: phase
  5131. *
  5132. * The handler for doing any required cleanup or initialization.
  5133. *
  5134. * The reset phase can be MPT2_IOC_PRE_RESET, MPT2_IOC_AFTER_RESET,
  5135. * MPT2_IOC_DONE_RESET
  5136. *
  5137. * Return nothing.
  5138. */
  5139. void
  5140. mpt2sas_scsih_reset_handler(struct MPT2SAS_ADAPTER *ioc, int reset_phase)
  5141. {
  5142. switch (reset_phase) {
  5143. case MPT2_IOC_PRE_RESET:
  5144. dtmprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: "
  5145. "MPT2_IOC_PRE_RESET\n", ioc->name, __func__));
  5146. break;
  5147. case MPT2_IOC_AFTER_RESET:
  5148. dtmprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: "
  5149. "MPT2_IOC_AFTER_RESET\n", ioc->name, __func__));
  5150. if (ioc->scsih_cmds.status & MPT2_CMD_PENDING) {
  5151. ioc->scsih_cmds.status |= MPT2_CMD_RESET;
  5152. mpt2sas_base_free_smid(ioc, ioc->scsih_cmds.smid);
  5153. complete(&ioc->scsih_cmds.done);
  5154. }
  5155. if (ioc->tm_cmds.status & MPT2_CMD_PENDING) {
  5156. ioc->tm_cmds.status |= MPT2_CMD_RESET;
  5157. mpt2sas_base_free_smid(ioc, ioc->tm_cmds.smid);
  5158. complete(&ioc->tm_cmds.done);
  5159. }
  5160. _scsih_fw_event_cleanup_queue(ioc);
  5161. _scsih_flush_running_cmds(ioc);
  5162. _scsih_queue_rescan(ioc);
  5163. break;
  5164. case MPT2_IOC_DONE_RESET:
  5165. dtmprintk(ioc, printk(MPT2SAS_DEBUG_FMT "%s: "
  5166. "MPT2_IOC_DONE_RESET\n", ioc->name, __func__));
  5167. _scsih_sas_host_refresh(ioc);
  5168. break;
  5169. }
  5170. }
  5171. /**
  5172. * _firmware_event_work - delayed task for processing firmware events
  5173. * @ioc: per adapter object
  5174. * @work: equal to the fw_event_work object
  5175. * Context: user.
  5176. *
  5177. * Return nothing.
  5178. */
  5179. static void
  5180. _firmware_event_work(struct work_struct *work)
  5181. {
  5182. struct fw_event_work *fw_event = container_of(work,
  5183. struct fw_event_work, delayed_work.work);
  5184. unsigned long flags;
  5185. struct MPT2SAS_ADAPTER *ioc = fw_event->ioc;
  5186. /* the queue is being flushed so ignore this event */
  5187. if (ioc->remove_host || fw_event->cancel_pending_work) {
  5188. _scsih_fw_event_free(ioc, fw_event);
  5189. return;
  5190. }
  5191. if (fw_event->event == MPT2SAS_RESCAN_AFTER_HOST_RESET) {
  5192. _scsih_fw_event_free(ioc, fw_event);
  5193. spin_lock_irqsave(&ioc->ioc_reset_in_progress_lock, flags);
  5194. if (ioc->shost_recovery) {
  5195. init_completion(&ioc->shost_recovery_done);
  5196. spin_unlock_irqrestore(&ioc->ioc_reset_in_progress_lock,
  5197. flags);
  5198. wait_for_completion(&ioc->shost_recovery_done);
  5199. } else
  5200. spin_unlock_irqrestore(&ioc->ioc_reset_in_progress_lock,
  5201. flags);
  5202. _scsih_search_responding_sas_devices(ioc);
  5203. _scsih_search_responding_raid_devices(ioc);
  5204. _scsih_search_responding_expanders(ioc);
  5205. _scsih_remove_unresponding_sas_devices(ioc);
  5206. return;
  5207. }
  5208. switch (fw_event->event) {
  5209. case MPI2_EVENT_SAS_TOPOLOGY_CHANGE_LIST:
  5210. _scsih_sas_topology_change_event(ioc, fw_event);
  5211. break;
  5212. case MPI2_EVENT_SAS_DEVICE_STATUS_CHANGE:
  5213. _scsih_sas_device_status_change_event(ioc,
  5214. fw_event);
  5215. break;
  5216. case MPI2_EVENT_SAS_DISCOVERY:
  5217. _scsih_sas_discovery_event(ioc,
  5218. fw_event);
  5219. break;
  5220. case MPI2_EVENT_SAS_BROADCAST_PRIMITIVE:
  5221. _scsih_sas_broadcast_primative_event(ioc,
  5222. fw_event);
  5223. break;
  5224. case MPI2_EVENT_SAS_ENCL_DEVICE_STATUS_CHANGE:
  5225. _scsih_sas_enclosure_dev_status_change_event(ioc,
  5226. fw_event);
  5227. break;
  5228. case MPI2_EVENT_IR_CONFIGURATION_CHANGE_LIST:
  5229. _scsih_sas_ir_config_change_event(ioc, fw_event);
  5230. break;
  5231. case MPI2_EVENT_IR_VOLUME:
  5232. _scsih_sas_ir_volume_event(ioc, fw_event);
  5233. break;
  5234. case MPI2_EVENT_IR_PHYSICAL_DISK:
  5235. _scsih_sas_ir_physical_disk_event(ioc, fw_event);
  5236. break;
  5237. case MPI2_EVENT_IR_OPERATION_STATUS:
  5238. _scsih_sas_ir_operation_status_event(ioc, fw_event);
  5239. break;
  5240. case MPI2_EVENT_TASK_SET_FULL:
  5241. _scsih_task_set_full(ioc, fw_event);
  5242. break;
  5243. }
  5244. _scsih_fw_event_free(ioc, fw_event);
  5245. }
  5246. /**
  5247. * mpt2sas_scsih_event_callback - firmware event handler (called at ISR time)
  5248. * @ioc: per adapter object
  5249. * @msix_index: MSIX table index supplied by the OS
  5250. * @reply: reply message frame(lower 32bit addr)
  5251. * Context: interrupt.
  5252. *
  5253. * This function merely adds a new work task into ioc->firmware_event_thread.
  5254. * The tasks are worked from _firmware_event_work in user context.
  5255. *
  5256. * Return 1 meaning mf should be freed from _base_interrupt
  5257. * 0 means the mf is freed from this function.
  5258. */
  5259. u8
  5260. mpt2sas_scsih_event_callback(struct MPT2SAS_ADAPTER *ioc, u8 msix_index,
  5261. u32 reply)
  5262. {
  5263. struct fw_event_work *fw_event;
  5264. Mpi2EventNotificationReply_t *mpi_reply;
  5265. u16 event;
  5266. /* events turned off due to host reset or driver unloading */
  5267. if (ioc->remove_host)
  5268. return 1;
  5269. mpi_reply = mpt2sas_base_get_reply_virt_addr(ioc, reply);
  5270. event = le16_to_cpu(mpi_reply->Event);
  5271. switch (event) {
  5272. /* handle these */
  5273. case MPI2_EVENT_SAS_BROADCAST_PRIMITIVE:
  5274. {
  5275. Mpi2EventDataSasBroadcastPrimitive_t *baen_data =
  5276. (Mpi2EventDataSasBroadcastPrimitive_t *)
  5277. mpi_reply->EventData;
  5278. if (baen_data->Primitive !=
  5279. MPI2_EVENT_PRIMITIVE_ASYNCHRONOUS_EVENT ||
  5280. ioc->broadcast_aen_busy)
  5281. return 1;
  5282. ioc->broadcast_aen_busy = 1;
  5283. break;
  5284. }
  5285. case MPI2_EVENT_SAS_TOPOLOGY_CHANGE_LIST:
  5286. _scsih_check_topo_delete_events(ioc,
  5287. (Mpi2EventDataSasTopologyChangeList_t *)
  5288. mpi_reply->EventData);
  5289. break;
  5290. case MPI2_EVENT_SAS_DEVICE_STATUS_CHANGE:
  5291. case MPI2_EVENT_IR_OPERATION_STATUS:
  5292. case MPI2_EVENT_SAS_DISCOVERY:
  5293. case MPI2_EVENT_SAS_ENCL_DEVICE_STATUS_CHANGE:
  5294. case MPI2_EVENT_IR_VOLUME:
  5295. case MPI2_EVENT_IR_PHYSICAL_DISK:
  5296. case MPI2_EVENT_IR_CONFIGURATION_CHANGE_LIST:
  5297. case MPI2_EVENT_TASK_SET_FULL:
  5298. break;
  5299. default: /* ignore the rest */
  5300. return 1;
  5301. }
  5302. fw_event = kzalloc(sizeof(struct fw_event_work), GFP_ATOMIC);
  5303. if (!fw_event) {
  5304. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  5305. ioc->name, __FILE__, __LINE__, __func__);
  5306. return 1;
  5307. }
  5308. fw_event->event_data =
  5309. kzalloc(mpi_reply->EventDataLength*4, GFP_ATOMIC);
  5310. if (!fw_event->event_data) {
  5311. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  5312. ioc->name, __FILE__, __LINE__, __func__);
  5313. kfree(fw_event);
  5314. return 1;
  5315. }
  5316. memcpy(fw_event->event_data, mpi_reply->EventData,
  5317. mpi_reply->EventDataLength*4);
  5318. fw_event->ioc = ioc;
  5319. fw_event->VF_ID = mpi_reply->VF_ID;
  5320. fw_event->VP_ID = mpi_reply->VP_ID;
  5321. fw_event->event = event;
  5322. _scsih_fw_event_add(ioc, fw_event);
  5323. return 1;
  5324. }
  5325. /* shost template */
  5326. static struct scsi_host_template scsih_driver_template = {
  5327. .module = THIS_MODULE,
  5328. .name = "Fusion MPT SAS Host",
  5329. .proc_name = MPT2SAS_DRIVER_NAME,
  5330. .queuecommand = _scsih_qcmd,
  5331. .target_alloc = _scsih_target_alloc,
  5332. .slave_alloc = _scsih_slave_alloc,
  5333. .slave_configure = _scsih_slave_configure,
  5334. .target_destroy = _scsih_target_destroy,
  5335. .slave_destroy = _scsih_slave_destroy,
  5336. .change_queue_depth = _scsih_change_queue_depth,
  5337. .change_queue_type = _scsih_change_queue_type,
  5338. .eh_abort_handler = _scsih_abort,
  5339. .eh_device_reset_handler = _scsih_dev_reset,
  5340. .eh_target_reset_handler = _scsih_target_reset,
  5341. .eh_host_reset_handler = _scsih_host_reset,
  5342. .bios_param = _scsih_bios_param,
  5343. .can_queue = 1,
  5344. .this_id = -1,
  5345. .sg_tablesize = MPT2SAS_SG_DEPTH,
  5346. .max_sectors = 8192,
  5347. .cmd_per_lun = 7,
  5348. .use_clustering = ENABLE_CLUSTERING,
  5349. .shost_attrs = mpt2sas_host_attrs,
  5350. .sdev_attrs = mpt2sas_dev_attrs,
  5351. };
  5352. /**
  5353. * _scsih_expander_node_remove - removing expander device from list.
  5354. * @ioc: per adapter object
  5355. * @sas_expander: the sas_device object
  5356. * Context: Calling function should acquire ioc->sas_node_lock.
  5357. *
  5358. * Removing object and freeing associated memory from the
  5359. * ioc->sas_expander_list.
  5360. *
  5361. * Return nothing.
  5362. */
  5363. static void
  5364. _scsih_expander_node_remove(struct MPT2SAS_ADAPTER *ioc,
  5365. struct _sas_node *sas_expander)
  5366. {
  5367. struct _sas_port *mpt2sas_port;
  5368. struct _sas_device *sas_device;
  5369. struct _sas_node *expander_sibling;
  5370. unsigned long flags;
  5371. if (!sas_expander)
  5372. return;
  5373. /* remove sibling ports attached to this expander */
  5374. retry_device_search:
  5375. list_for_each_entry(mpt2sas_port,
  5376. &sas_expander->sas_port_list, port_list) {
  5377. if (mpt2sas_port->remote_identify.device_type ==
  5378. SAS_END_DEVICE) {
  5379. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  5380. sas_device =
  5381. mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  5382. mpt2sas_port->remote_identify.sas_address);
  5383. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  5384. if (!sas_device)
  5385. continue;
  5386. _scsih_remove_device(ioc, sas_device);
  5387. if (ioc->shost_recovery)
  5388. return;
  5389. goto retry_device_search;
  5390. }
  5391. }
  5392. retry_expander_search:
  5393. list_for_each_entry(mpt2sas_port,
  5394. &sas_expander->sas_port_list, port_list) {
  5395. if (mpt2sas_port->remote_identify.device_type ==
  5396. MPI2_SAS_DEVICE_INFO_EDGE_EXPANDER ||
  5397. mpt2sas_port->remote_identify.device_type ==
  5398. MPI2_SAS_DEVICE_INFO_FANOUT_EXPANDER) {
  5399. spin_lock_irqsave(&ioc->sas_node_lock, flags);
  5400. expander_sibling =
  5401. mpt2sas_scsih_expander_find_by_sas_address(
  5402. ioc, mpt2sas_port->remote_identify.sas_address);
  5403. spin_unlock_irqrestore(&ioc->sas_node_lock, flags);
  5404. if (!expander_sibling)
  5405. continue;
  5406. _scsih_expander_remove(ioc,
  5407. expander_sibling->sas_address);
  5408. if (ioc->shost_recovery)
  5409. return;
  5410. goto retry_expander_search;
  5411. }
  5412. }
  5413. mpt2sas_transport_port_remove(ioc, sas_expander->sas_address,
  5414. sas_expander->sas_address_parent);
  5415. printk(MPT2SAS_INFO_FMT "expander_remove: handle"
  5416. "(0x%04x), sas_addr(0x%016llx)\n", ioc->name,
  5417. sas_expander->handle, (unsigned long long)
  5418. sas_expander->sas_address);
  5419. list_del(&sas_expander->list);
  5420. kfree(sas_expander->phy);
  5421. kfree(sas_expander);
  5422. }
  5423. /**
  5424. * _scsih_ir_shutdown - IR shutdown notification
  5425. * @ioc: per adapter object
  5426. *
  5427. * Sending RAID Action to alert the Integrated RAID subsystem of the IOC that
  5428. * the host system is shutting down.
  5429. *
  5430. * Return nothing.
  5431. */
  5432. static void
  5433. _scsih_ir_shutdown(struct MPT2SAS_ADAPTER *ioc)
  5434. {
  5435. Mpi2RaidActionRequest_t *mpi_request;
  5436. Mpi2RaidActionReply_t *mpi_reply;
  5437. u16 smid;
  5438. /* is IR firmware build loaded ? */
  5439. if (!ioc->ir_firmware)
  5440. return;
  5441. /* are there any volumes ? */
  5442. if (list_empty(&ioc->raid_device_list))
  5443. return;
  5444. mutex_lock(&ioc->scsih_cmds.mutex);
  5445. if (ioc->scsih_cmds.status != MPT2_CMD_NOT_USED) {
  5446. printk(MPT2SAS_ERR_FMT "%s: scsih_cmd in use\n",
  5447. ioc->name, __func__);
  5448. goto out;
  5449. }
  5450. ioc->scsih_cmds.status = MPT2_CMD_PENDING;
  5451. smid = mpt2sas_base_get_smid(ioc, ioc->scsih_cb_idx);
  5452. if (!smid) {
  5453. printk(MPT2SAS_ERR_FMT "%s: failed obtaining a smid\n",
  5454. ioc->name, __func__);
  5455. ioc->scsih_cmds.status = MPT2_CMD_NOT_USED;
  5456. goto out;
  5457. }
  5458. mpi_request = mpt2sas_base_get_msg_frame(ioc, smid);
  5459. ioc->scsih_cmds.smid = smid;
  5460. memset(mpi_request, 0, sizeof(Mpi2RaidActionRequest_t));
  5461. mpi_request->Function = MPI2_FUNCTION_RAID_ACTION;
  5462. mpi_request->Action = MPI2_RAID_ACTION_SYSTEM_SHUTDOWN_INITIATED;
  5463. printk(MPT2SAS_INFO_FMT "IR shutdown (sending)\n", ioc->name);
  5464. init_completion(&ioc->scsih_cmds.done);
  5465. mpt2sas_base_put_smid_default(ioc, smid);
  5466. wait_for_completion_timeout(&ioc->scsih_cmds.done, 10*HZ);
  5467. if (!(ioc->scsih_cmds.status & MPT2_CMD_COMPLETE)) {
  5468. printk(MPT2SAS_ERR_FMT "%s: timeout\n",
  5469. ioc->name, __func__);
  5470. goto out;
  5471. }
  5472. if (ioc->scsih_cmds.status & MPT2_CMD_REPLY_VALID) {
  5473. mpi_reply = ioc->scsih_cmds.reply;
  5474. printk(MPT2SAS_INFO_FMT "IR shutdown (complete): "
  5475. "ioc_status(0x%04x), loginfo(0x%08x)\n",
  5476. ioc->name, le16_to_cpu(mpi_reply->IOCStatus),
  5477. le32_to_cpu(mpi_reply->IOCLogInfo));
  5478. }
  5479. out:
  5480. ioc->scsih_cmds.status = MPT2_CMD_NOT_USED;
  5481. mutex_unlock(&ioc->scsih_cmds.mutex);
  5482. }
  5483. /**
  5484. * _scsih_shutdown - routine call during system shutdown
  5485. * @pdev: PCI device struct
  5486. *
  5487. * Return nothing.
  5488. */
  5489. static void
  5490. _scsih_shutdown(struct pci_dev *pdev)
  5491. {
  5492. struct Scsi_Host *shost = pci_get_drvdata(pdev);
  5493. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  5494. struct workqueue_struct *wq;
  5495. unsigned long flags;
  5496. ioc->remove_host = 1;
  5497. _scsih_fw_event_cleanup_queue(ioc);
  5498. spin_lock_irqsave(&ioc->fw_event_lock, flags);
  5499. wq = ioc->firmware_event_thread;
  5500. ioc->firmware_event_thread = NULL;
  5501. spin_unlock_irqrestore(&ioc->fw_event_lock, flags);
  5502. if (wq)
  5503. destroy_workqueue(wq);
  5504. _scsih_ir_shutdown(ioc);
  5505. mpt2sas_base_detach(ioc);
  5506. }
  5507. /**
  5508. * _scsih_remove - detach and remove add host
  5509. * @pdev: PCI device struct
  5510. *
  5511. * Routine called when unloading the driver.
  5512. * Return nothing.
  5513. */
  5514. static void __devexit
  5515. _scsih_remove(struct pci_dev *pdev)
  5516. {
  5517. struct Scsi_Host *shost = pci_get_drvdata(pdev);
  5518. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  5519. struct _sas_port *mpt2sas_port;
  5520. struct _sas_device *sas_device;
  5521. struct _sas_node *expander_sibling;
  5522. struct _raid_device *raid_device, *next;
  5523. struct MPT2SAS_TARGET *sas_target_priv_data;
  5524. struct workqueue_struct *wq;
  5525. unsigned long flags;
  5526. ioc->remove_host = 1;
  5527. _scsih_fw_event_cleanup_queue(ioc);
  5528. spin_lock_irqsave(&ioc->fw_event_lock, flags);
  5529. wq = ioc->firmware_event_thread;
  5530. ioc->firmware_event_thread = NULL;
  5531. spin_unlock_irqrestore(&ioc->fw_event_lock, flags);
  5532. if (wq)
  5533. destroy_workqueue(wq);
  5534. /* release all the volumes */
  5535. list_for_each_entry_safe(raid_device, next, &ioc->raid_device_list,
  5536. list) {
  5537. if (raid_device->starget) {
  5538. sas_target_priv_data =
  5539. raid_device->starget->hostdata;
  5540. sas_target_priv_data->deleted = 1;
  5541. scsi_remove_target(&raid_device->starget->dev);
  5542. }
  5543. printk(MPT2SAS_INFO_FMT "removing handle(0x%04x), wwid"
  5544. "(0x%016llx)\n", ioc->name, raid_device->handle,
  5545. (unsigned long long) raid_device->wwid);
  5546. _scsih_raid_device_remove(ioc, raid_device);
  5547. }
  5548. /* free ports attached to the sas_host */
  5549. retry_again:
  5550. list_for_each_entry(mpt2sas_port,
  5551. &ioc->sas_hba.sas_port_list, port_list) {
  5552. if (mpt2sas_port->remote_identify.device_type ==
  5553. SAS_END_DEVICE) {
  5554. sas_device =
  5555. mpt2sas_scsih_sas_device_find_by_sas_address(ioc,
  5556. mpt2sas_port->remote_identify.sas_address);
  5557. if (sas_device) {
  5558. _scsih_remove_device(ioc, sas_device);
  5559. goto retry_again;
  5560. }
  5561. } else {
  5562. expander_sibling =
  5563. mpt2sas_scsih_expander_find_by_sas_address(ioc,
  5564. mpt2sas_port->remote_identify.sas_address);
  5565. if (expander_sibling) {
  5566. _scsih_expander_remove(ioc,
  5567. expander_sibling->sas_address);
  5568. goto retry_again;
  5569. }
  5570. }
  5571. }
  5572. /* free phys attached to the sas_host */
  5573. if (ioc->sas_hba.num_phys) {
  5574. kfree(ioc->sas_hba.phy);
  5575. ioc->sas_hba.phy = NULL;
  5576. ioc->sas_hba.num_phys = 0;
  5577. }
  5578. sas_remove_host(shost);
  5579. _scsih_shutdown(pdev);
  5580. list_del(&ioc->list);
  5581. scsi_remove_host(shost);
  5582. scsi_host_put(shost);
  5583. }
  5584. /**
  5585. * _scsih_probe_boot_devices - reports 1st device
  5586. * @ioc: per adapter object
  5587. *
  5588. * If specified in bios page 2, this routine reports the 1st
  5589. * device scsi-ml or sas transport for persistent boot device
  5590. * purposes. Please refer to function _scsih_determine_boot_device()
  5591. */
  5592. static void
  5593. _scsih_probe_boot_devices(struct MPT2SAS_ADAPTER *ioc)
  5594. {
  5595. u8 is_raid;
  5596. void *device;
  5597. struct _sas_device *sas_device;
  5598. struct _raid_device *raid_device;
  5599. u16 handle;
  5600. u64 sas_address_parent;
  5601. u64 sas_address;
  5602. unsigned long flags;
  5603. int rc;
  5604. device = NULL;
  5605. if (ioc->req_boot_device.device) {
  5606. device = ioc->req_boot_device.device;
  5607. is_raid = ioc->req_boot_device.is_raid;
  5608. } else if (ioc->req_alt_boot_device.device) {
  5609. device = ioc->req_alt_boot_device.device;
  5610. is_raid = ioc->req_alt_boot_device.is_raid;
  5611. } else if (ioc->current_boot_device.device) {
  5612. device = ioc->current_boot_device.device;
  5613. is_raid = ioc->current_boot_device.is_raid;
  5614. }
  5615. if (!device)
  5616. return;
  5617. if (is_raid) {
  5618. raid_device = device;
  5619. rc = scsi_add_device(ioc->shost, RAID_CHANNEL,
  5620. raid_device->id, 0);
  5621. if (rc)
  5622. _scsih_raid_device_remove(ioc, raid_device);
  5623. } else {
  5624. sas_device = device;
  5625. handle = sas_device->handle;
  5626. sas_address_parent = sas_device->sas_address_parent;
  5627. sas_address = sas_device->sas_address;
  5628. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  5629. list_move_tail(&sas_device->list, &ioc->sas_device_list);
  5630. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  5631. if (!mpt2sas_transport_port_add(ioc, sas_device->handle,
  5632. sas_device->sas_address_parent)) {
  5633. _scsih_sas_device_remove(ioc, sas_device);
  5634. } else if (!sas_device->starget) {
  5635. mpt2sas_transport_port_remove(ioc, sas_address,
  5636. sas_address_parent);
  5637. _scsih_sas_device_remove(ioc, sas_device);
  5638. }
  5639. }
  5640. }
  5641. /**
  5642. * _scsih_probe_raid - reporting raid volumes to scsi-ml
  5643. * @ioc: per adapter object
  5644. *
  5645. * Called during initial loading of the driver.
  5646. */
  5647. static void
  5648. _scsih_probe_raid(struct MPT2SAS_ADAPTER *ioc)
  5649. {
  5650. struct _raid_device *raid_device, *raid_next;
  5651. int rc;
  5652. list_for_each_entry_safe(raid_device, raid_next,
  5653. &ioc->raid_device_list, list) {
  5654. if (raid_device->starget)
  5655. continue;
  5656. rc = scsi_add_device(ioc->shost, RAID_CHANNEL,
  5657. raid_device->id, 0);
  5658. if (rc)
  5659. _scsih_raid_device_remove(ioc, raid_device);
  5660. }
  5661. }
  5662. /**
  5663. * _scsih_probe_sas - reporting sas devices to sas transport
  5664. * @ioc: per adapter object
  5665. *
  5666. * Called during initial loading of the driver.
  5667. */
  5668. static void
  5669. _scsih_probe_sas(struct MPT2SAS_ADAPTER *ioc)
  5670. {
  5671. struct _sas_device *sas_device, *next;
  5672. unsigned long flags;
  5673. /* SAS Device List */
  5674. list_for_each_entry_safe(sas_device, next, &ioc->sas_device_init_list,
  5675. list) {
  5676. spin_lock_irqsave(&ioc->sas_device_lock, flags);
  5677. list_move_tail(&sas_device->list, &ioc->sas_device_list);
  5678. spin_unlock_irqrestore(&ioc->sas_device_lock, flags);
  5679. if (!mpt2sas_transport_port_add(ioc, sas_device->handle,
  5680. sas_device->sas_address_parent)) {
  5681. _scsih_sas_device_remove(ioc, sas_device);
  5682. } else if (!sas_device->starget) {
  5683. mpt2sas_transport_port_remove(ioc,
  5684. sas_device->sas_address,
  5685. sas_device->sas_address_parent);
  5686. _scsih_sas_device_remove(ioc, sas_device);
  5687. }
  5688. }
  5689. }
  5690. /**
  5691. * _scsih_probe_devices - probing for devices
  5692. * @ioc: per adapter object
  5693. *
  5694. * Called during initial loading of the driver.
  5695. */
  5696. static void
  5697. _scsih_probe_devices(struct MPT2SAS_ADAPTER *ioc)
  5698. {
  5699. u16 volume_mapping_flags =
  5700. le16_to_cpu(ioc->ioc_pg8.IRVolumeMappingFlags) &
  5701. MPI2_IOCPAGE8_IRFLAGS_MASK_VOLUME_MAPPING_MODE;
  5702. if (!(ioc->facts.ProtocolFlags & MPI2_IOCFACTS_PROTOCOL_SCSI_INITIATOR))
  5703. return; /* return when IOC doesn't support initiator mode */
  5704. _scsih_probe_boot_devices(ioc);
  5705. if (ioc->ir_firmware) {
  5706. if ((volume_mapping_flags &
  5707. MPI2_IOCPAGE8_IRFLAGS_HIGH_VOLUME_MAPPING)) {
  5708. _scsih_probe_sas(ioc);
  5709. _scsih_probe_raid(ioc);
  5710. } else {
  5711. _scsih_probe_raid(ioc);
  5712. _scsih_probe_sas(ioc);
  5713. }
  5714. } else
  5715. _scsih_probe_sas(ioc);
  5716. }
  5717. /**
  5718. * _scsih_probe - attach and add scsi host
  5719. * @pdev: PCI device struct
  5720. * @id: pci device id
  5721. *
  5722. * Returns 0 success, anything else error.
  5723. */
  5724. static int
  5725. _scsih_probe(struct pci_dev *pdev, const struct pci_device_id *id)
  5726. {
  5727. struct MPT2SAS_ADAPTER *ioc;
  5728. struct Scsi_Host *shost;
  5729. shost = scsi_host_alloc(&scsih_driver_template,
  5730. sizeof(struct MPT2SAS_ADAPTER));
  5731. if (!shost)
  5732. return -ENODEV;
  5733. /* init local params */
  5734. ioc = shost_priv(shost);
  5735. memset(ioc, 0, sizeof(struct MPT2SAS_ADAPTER));
  5736. INIT_LIST_HEAD(&ioc->list);
  5737. list_add_tail(&ioc->list, &mpt2sas_ioc_list);
  5738. ioc->shost = shost;
  5739. ioc->id = mpt_ids++;
  5740. sprintf(ioc->name, "%s%d", MPT2SAS_DRIVER_NAME, ioc->id);
  5741. ioc->pdev = pdev;
  5742. ioc->scsi_io_cb_idx = scsi_io_cb_idx;
  5743. ioc->tm_cb_idx = tm_cb_idx;
  5744. ioc->ctl_cb_idx = ctl_cb_idx;
  5745. ioc->base_cb_idx = base_cb_idx;
  5746. ioc->transport_cb_idx = transport_cb_idx;
  5747. ioc->scsih_cb_idx = scsih_cb_idx;
  5748. ioc->config_cb_idx = config_cb_idx;
  5749. ioc->tm_tr_cb_idx = tm_tr_cb_idx;
  5750. ioc->tm_sas_control_cb_idx = tm_sas_control_cb_idx;
  5751. ioc->logging_level = logging_level;
  5752. /* misc semaphores and spin locks */
  5753. spin_lock_init(&ioc->ioc_reset_in_progress_lock);
  5754. spin_lock_init(&ioc->scsi_lookup_lock);
  5755. spin_lock_init(&ioc->sas_device_lock);
  5756. spin_lock_init(&ioc->sas_node_lock);
  5757. spin_lock_init(&ioc->fw_event_lock);
  5758. spin_lock_init(&ioc->raid_device_lock);
  5759. INIT_LIST_HEAD(&ioc->sas_device_list);
  5760. INIT_LIST_HEAD(&ioc->sas_device_init_list);
  5761. INIT_LIST_HEAD(&ioc->sas_expander_list);
  5762. INIT_LIST_HEAD(&ioc->fw_event_list);
  5763. INIT_LIST_HEAD(&ioc->raid_device_list);
  5764. INIT_LIST_HEAD(&ioc->sas_hba.sas_port_list);
  5765. INIT_LIST_HEAD(&ioc->delayed_tr_list);
  5766. /* init shost parameters */
  5767. shost->max_cmd_len = 16;
  5768. shost->max_lun = max_lun;
  5769. shost->transportt = mpt2sas_transport_template;
  5770. shost->unique_id = ioc->id;
  5771. if ((scsi_add_host(shost, &pdev->dev))) {
  5772. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  5773. ioc->name, __FILE__, __LINE__, __func__);
  5774. list_del(&ioc->list);
  5775. goto out_add_shost_fail;
  5776. }
  5777. scsi_host_set_prot(shost, SHOST_DIF_TYPE1_PROTECTION
  5778. | SHOST_DIF_TYPE3_PROTECTION);
  5779. scsi_host_set_guard(shost, SHOST_DIX_GUARD_CRC);
  5780. /* event thread */
  5781. snprintf(ioc->firmware_event_name, sizeof(ioc->firmware_event_name),
  5782. "fw_event%d", ioc->id);
  5783. ioc->firmware_event_thread = create_singlethread_workqueue(
  5784. ioc->firmware_event_name);
  5785. if (!ioc->firmware_event_thread) {
  5786. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  5787. ioc->name, __FILE__, __LINE__, __func__);
  5788. goto out_thread_fail;
  5789. }
  5790. ioc->wait_for_port_enable_to_complete = 1;
  5791. if ((mpt2sas_base_attach(ioc))) {
  5792. printk(MPT2SAS_ERR_FMT "failure at %s:%d/%s()!\n",
  5793. ioc->name, __FILE__, __LINE__, __func__);
  5794. goto out_attach_fail;
  5795. }
  5796. ioc->wait_for_port_enable_to_complete = 0;
  5797. _scsih_probe_devices(ioc);
  5798. return 0;
  5799. out_attach_fail:
  5800. destroy_workqueue(ioc->firmware_event_thread);
  5801. out_thread_fail:
  5802. list_del(&ioc->list);
  5803. scsi_remove_host(shost);
  5804. out_add_shost_fail:
  5805. return -ENODEV;
  5806. }
  5807. #ifdef CONFIG_PM
  5808. /**
  5809. * _scsih_suspend - power management suspend main entry point
  5810. * @pdev: PCI device struct
  5811. * @state: PM state change to (usually PCI_D3)
  5812. *
  5813. * Returns 0 success, anything else error.
  5814. */
  5815. static int
  5816. _scsih_suspend(struct pci_dev *pdev, pm_message_t state)
  5817. {
  5818. struct Scsi_Host *shost = pci_get_drvdata(pdev);
  5819. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  5820. u32 device_state;
  5821. mpt2sas_base_stop_watchdog(ioc);
  5822. flush_scheduled_work();
  5823. scsi_block_requests(shost);
  5824. device_state = pci_choose_state(pdev, state);
  5825. printk(MPT2SAS_INFO_FMT "pdev=0x%p, slot=%s, entering "
  5826. "operating state [D%d]\n", ioc->name, pdev,
  5827. pci_name(pdev), device_state);
  5828. mpt2sas_base_free_resources(ioc);
  5829. pci_save_state(pdev);
  5830. pci_disable_device(pdev);
  5831. pci_set_power_state(pdev, device_state);
  5832. return 0;
  5833. }
  5834. /**
  5835. * _scsih_resume - power management resume main entry point
  5836. * @pdev: PCI device struct
  5837. *
  5838. * Returns 0 success, anything else error.
  5839. */
  5840. static int
  5841. _scsih_resume(struct pci_dev *pdev)
  5842. {
  5843. struct Scsi_Host *shost = pci_get_drvdata(pdev);
  5844. struct MPT2SAS_ADAPTER *ioc = shost_priv(shost);
  5845. u32 device_state = pdev->current_state;
  5846. int r;
  5847. printk(MPT2SAS_INFO_FMT "pdev=0x%p, slot=%s, previous "
  5848. "operating state [D%d]\n", ioc->name, pdev,
  5849. pci_name(pdev), device_state);
  5850. pci_set_power_state(pdev, PCI_D0);
  5851. pci_enable_wake(pdev, PCI_D0, 0);
  5852. pci_restore_state(pdev);
  5853. ioc->pdev = pdev;
  5854. r = mpt2sas_base_map_resources(ioc);
  5855. if (r)
  5856. return r;
  5857. mpt2sas_base_hard_reset_handler(ioc, CAN_SLEEP, SOFT_RESET);
  5858. scsi_unblock_requests(shost);
  5859. mpt2sas_base_start_watchdog(ioc);
  5860. return 0;
  5861. }
  5862. #endif /* CONFIG_PM */
  5863. static struct pci_driver scsih_driver = {
  5864. .name = MPT2SAS_DRIVER_NAME,
  5865. .id_table = scsih_pci_table,
  5866. .probe = _scsih_probe,
  5867. .remove = __devexit_p(_scsih_remove),
  5868. .shutdown = _scsih_shutdown,
  5869. #ifdef CONFIG_PM
  5870. .suspend = _scsih_suspend,
  5871. .resume = _scsih_resume,
  5872. #endif
  5873. };
  5874. /* raid transport support */
  5875. static struct raid_function_template mpt2sas_raid_functions = {
  5876. .cookie = &scsih_driver_template,
  5877. .is_raid = _scsih_is_raid,
  5878. .get_resync = _scsih_get_resync,
  5879. .get_state = _scsih_get_state,
  5880. };
  5881. /**
  5882. * _scsih_init - main entry point for this driver.
  5883. *
  5884. * Returns 0 success, anything else error.
  5885. */
  5886. static int __init
  5887. _scsih_init(void)
  5888. {
  5889. int error;
  5890. mpt_ids = 0;
  5891. printk(KERN_INFO "%s version %s loaded\n", MPT2SAS_DRIVER_NAME,
  5892. MPT2SAS_DRIVER_VERSION);
  5893. mpt2sas_transport_template =
  5894. sas_attach_transport(&mpt2sas_transport_functions);
  5895. if (!mpt2sas_transport_template)
  5896. return -ENODEV;
  5897. /* raid transport support */
  5898. mpt2sas_raid_template = raid_class_attach(&mpt2sas_raid_functions);
  5899. if (!mpt2sas_raid_template) {
  5900. sas_release_transport(mpt2sas_transport_template);
  5901. return -ENODEV;
  5902. }
  5903. mpt2sas_base_initialize_callback_handler();
  5904. /* queuecommand callback hander */
  5905. scsi_io_cb_idx = mpt2sas_base_register_callback_handler(_scsih_io_done);
  5906. /* task managment callback handler */
  5907. tm_cb_idx = mpt2sas_base_register_callback_handler(_scsih_tm_done);
  5908. /* base internal commands callback handler */
  5909. base_cb_idx = mpt2sas_base_register_callback_handler(mpt2sas_base_done);
  5910. /* transport internal commands callback handler */
  5911. transport_cb_idx = mpt2sas_base_register_callback_handler(
  5912. mpt2sas_transport_done);
  5913. /* scsih internal commands callback handler */
  5914. scsih_cb_idx = mpt2sas_base_register_callback_handler(_scsih_done);
  5915. /* configuration page API internal commands callback handler */
  5916. config_cb_idx = mpt2sas_base_register_callback_handler(
  5917. mpt2sas_config_done);
  5918. /* ctl module callback handler */
  5919. ctl_cb_idx = mpt2sas_base_register_callback_handler(mpt2sas_ctl_done);
  5920. tm_tr_cb_idx = mpt2sas_base_register_callback_handler(
  5921. _scsih_tm_tr_complete);
  5922. tm_sas_control_cb_idx = mpt2sas_base_register_callback_handler(
  5923. _scsih_sas_control_complete);
  5924. mpt2sas_ctl_init();
  5925. error = pci_register_driver(&scsih_driver);
  5926. if (error) {
  5927. /* raid transport support */
  5928. raid_class_release(mpt2sas_raid_template);
  5929. sas_release_transport(mpt2sas_transport_template);
  5930. }
  5931. return error;
  5932. }
  5933. /**
  5934. * _scsih_exit - exit point for this driver (when it is a module).
  5935. *
  5936. * Returns 0 success, anything else error.
  5937. */
  5938. static void __exit
  5939. _scsih_exit(void)
  5940. {
  5941. printk(KERN_INFO "mpt2sas version %s unloading\n",
  5942. MPT2SAS_DRIVER_VERSION);
  5943. pci_unregister_driver(&scsih_driver);
  5944. mpt2sas_ctl_exit();
  5945. mpt2sas_base_release_callback_handler(scsi_io_cb_idx);
  5946. mpt2sas_base_release_callback_handler(tm_cb_idx);
  5947. mpt2sas_base_release_callback_handler(base_cb_idx);
  5948. mpt2sas_base_release_callback_handler(transport_cb_idx);
  5949. mpt2sas_base_release_callback_handler(scsih_cb_idx);
  5950. mpt2sas_base_release_callback_handler(config_cb_idx);
  5951. mpt2sas_base_release_callback_handler(ctl_cb_idx);
  5952. mpt2sas_base_release_callback_handler(tm_tr_cb_idx);
  5953. mpt2sas_base_release_callback_handler(tm_sas_control_cb_idx);
  5954. /* raid transport support */
  5955. raid_class_release(mpt2sas_raid_template);
  5956. sas_release_transport(mpt2sas_transport_template);
  5957. }
  5958. module_init(_scsih_init);
  5959. module_exit(_scsih_exit);