megaraid_sas_fusion.c 65 KB

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  1. /*
  2. * Linux MegaRAID driver for SAS based RAID controllers
  3. *
  4. * Copyright (c) 2009-2011 LSI Corporation.
  5. *
  6. * This program is free software; you can redistribute it and/or
  7. * modify it under the terms of the GNU General Public License
  8. * as published by the Free Software Foundation; either version 2
  9. * of the License, or (at your option) any later version.
  10. *
  11. * This program is distributed in the hope that it will be useful,
  12. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. * GNU General Public License for more details.
  15. *
  16. * You should have received a copy of the GNU General Public License
  17. * along with this program; if not, write to the Free Software
  18. * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
  19. *
  20. * FILE: megaraid_sas_fusion.c
  21. *
  22. * Authors: LSI Corporation
  23. * Sumant Patro
  24. * Adam Radford <linuxraid@lsi.com>
  25. *
  26. * Send feedback to: <megaraidlinux@lsi.com>
  27. *
  28. * Mail to: LSI Corporation, 1621 Barber Lane, Milpitas, CA 95035
  29. * ATTN: Linuxraid
  30. */
  31. #include <linux/kernel.h>
  32. #include <linux/types.h>
  33. #include <linux/pci.h>
  34. #include <linux/list.h>
  35. #include <linux/moduleparam.h>
  36. #include <linux/module.h>
  37. #include <linux/spinlock.h>
  38. #include <linux/interrupt.h>
  39. #include <linux/delay.h>
  40. #include <linux/uio.h>
  41. #include <linux/uaccess.h>
  42. #include <linux/fs.h>
  43. #include <linux/compat.h>
  44. #include <linux/blkdev.h>
  45. #include <linux/mutex.h>
  46. #include <linux/poll.h>
  47. #include <scsi/scsi.h>
  48. #include <scsi/scsi_cmnd.h>
  49. #include <scsi/scsi_device.h>
  50. #include <scsi/scsi_host.h>
  51. #include "megaraid_sas_fusion.h"
  52. #include "megaraid_sas.h"
  53. extern void megasas_free_cmds(struct megasas_instance *instance);
  54. extern struct megasas_cmd *megasas_get_cmd(struct megasas_instance
  55. *instance);
  56. extern void
  57. megasas_complete_cmd(struct megasas_instance *instance,
  58. struct megasas_cmd *cmd, u8 alt_status);
  59. int megasas_is_ldio(struct scsi_cmnd *cmd);
  60. int
  61. wait_and_poll(struct megasas_instance *instance, struct megasas_cmd *cmd);
  62. void
  63. megasas_return_cmd(struct megasas_instance *instance, struct megasas_cmd *cmd);
  64. int megasas_alloc_cmds(struct megasas_instance *instance);
  65. int
  66. megasas_clear_intr_fusion(struct megasas_register_set __iomem *regs);
  67. int
  68. megasas_issue_polled(struct megasas_instance *instance,
  69. struct megasas_cmd *cmd);
  70. u8
  71. MR_BuildRaidContext(struct megasas_instance *instance,
  72. struct IO_REQUEST_INFO *io_info,
  73. struct RAID_CONTEXT *pRAID_Context,
  74. struct MR_FW_RAID_MAP_ALL *map);
  75. u16 MR_TargetIdToLdGet(u32 ldTgtId, struct MR_FW_RAID_MAP_ALL *map);
  76. struct MR_LD_RAID *MR_LdRaidGet(u32 ld, struct MR_FW_RAID_MAP_ALL *map);
  77. u16 MR_GetLDTgtId(u32 ld, struct MR_FW_RAID_MAP_ALL *map);
  78. void
  79. megasas_check_and_restore_queue_depth(struct megasas_instance *instance);
  80. u8 MR_ValidateMapInfo(struct MR_FW_RAID_MAP_ALL *map,
  81. struct LD_LOAD_BALANCE_INFO *lbInfo);
  82. u16 get_updated_dev_handle(struct LD_LOAD_BALANCE_INFO *lbInfo,
  83. struct IO_REQUEST_INFO *in_info);
  84. int megasas_transition_to_ready(struct megasas_instance *instance, int ocr);
  85. void megaraid_sas_kill_hba(struct megasas_instance *instance);
  86. extern u32 megasas_dbg_lvl;
  87. /**
  88. * megasas_enable_intr_fusion - Enables interrupts
  89. * @regs: MFI register set
  90. */
  91. void
  92. megasas_enable_intr_fusion(struct megasas_register_set __iomem *regs)
  93. {
  94. /* For Thunderbolt/Invader also clear intr on enable */
  95. writel(~0, &regs->outbound_intr_status);
  96. readl(&regs->outbound_intr_status);
  97. writel(~MFI_FUSION_ENABLE_INTERRUPT_MASK, &(regs)->outbound_intr_mask);
  98. /* Dummy readl to force pci flush */
  99. readl(&regs->outbound_intr_mask);
  100. }
  101. /**
  102. * megasas_disable_intr_fusion - Disables interrupt
  103. * @regs: MFI register set
  104. */
  105. void
  106. megasas_disable_intr_fusion(struct megasas_register_set __iomem *regs)
  107. {
  108. u32 mask = 0xFFFFFFFF;
  109. u32 status;
  110. writel(mask, &regs->outbound_intr_mask);
  111. /* Dummy readl to force pci flush */
  112. status = readl(&regs->outbound_intr_mask);
  113. }
  114. int
  115. megasas_clear_intr_fusion(struct megasas_register_set __iomem *regs)
  116. {
  117. u32 status;
  118. /*
  119. * Check if it is our interrupt
  120. */
  121. status = readl(&regs->outbound_intr_status);
  122. if (status & 1) {
  123. writel(status, &regs->outbound_intr_status);
  124. readl(&regs->outbound_intr_status);
  125. return 1;
  126. }
  127. if (!(status & MFI_FUSION_ENABLE_INTERRUPT_MASK))
  128. return 0;
  129. return 1;
  130. }
  131. /**
  132. * megasas_get_cmd_fusion - Get a command from the free pool
  133. * @instance: Adapter soft state
  134. *
  135. * Returns a free command from the pool
  136. */
  137. struct megasas_cmd_fusion *megasas_get_cmd_fusion(struct megasas_instance
  138. *instance)
  139. {
  140. unsigned long flags;
  141. struct fusion_context *fusion =
  142. (struct fusion_context *)instance->ctrl_context;
  143. struct megasas_cmd_fusion *cmd = NULL;
  144. spin_lock_irqsave(&fusion->cmd_pool_lock, flags);
  145. if (!list_empty(&fusion->cmd_pool)) {
  146. cmd = list_entry((&fusion->cmd_pool)->next,
  147. struct megasas_cmd_fusion, list);
  148. list_del_init(&cmd->list);
  149. } else {
  150. printk(KERN_ERR "megasas: Command pool (fusion) empty!\n");
  151. }
  152. spin_unlock_irqrestore(&fusion->cmd_pool_lock, flags);
  153. return cmd;
  154. }
  155. /**
  156. * megasas_return_cmd_fusion - Return a cmd to free command pool
  157. * @instance: Adapter soft state
  158. * @cmd: Command packet to be returned to free command pool
  159. */
  160. static inline void
  161. megasas_return_cmd_fusion(struct megasas_instance *instance,
  162. struct megasas_cmd_fusion *cmd)
  163. {
  164. unsigned long flags;
  165. struct fusion_context *fusion =
  166. (struct fusion_context *)instance->ctrl_context;
  167. spin_lock_irqsave(&fusion->cmd_pool_lock, flags);
  168. cmd->scmd = NULL;
  169. cmd->sync_cmd_idx = (u32)ULONG_MAX;
  170. list_add_tail(&cmd->list, &fusion->cmd_pool);
  171. spin_unlock_irqrestore(&fusion->cmd_pool_lock, flags);
  172. }
  173. /**
  174. * megasas_teardown_frame_pool_fusion - Destroy the cmd frame DMA pool
  175. * @instance: Adapter soft state
  176. */
  177. static void megasas_teardown_frame_pool_fusion(
  178. struct megasas_instance *instance)
  179. {
  180. int i;
  181. struct fusion_context *fusion = instance->ctrl_context;
  182. u16 max_cmd = instance->max_fw_cmds;
  183. struct megasas_cmd_fusion *cmd;
  184. if (!fusion->sg_dma_pool || !fusion->sense_dma_pool) {
  185. printk(KERN_ERR "megasas: dma pool is null. SG Pool %p, "
  186. "sense pool : %p\n", fusion->sg_dma_pool,
  187. fusion->sense_dma_pool);
  188. return;
  189. }
  190. /*
  191. * Return all frames to pool
  192. */
  193. for (i = 0; i < max_cmd; i++) {
  194. cmd = fusion->cmd_list[i];
  195. if (cmd->sg_frame)
  196. pci_pool_free(fusion->sg_dma_pool, cmd->sg_frame,
  197. cmd->sg_frame_phys_addr);
  198. if (cmd->sense)
  199. pci_pool_free(fusion->sense_dma_pool, cmd->sense,
  200. cmd->sense_phys_addr);
  201. }
  202. /*
  203. * Now destroy the pool itself
  204. */
  205. pci_pool_destroy(fusion->sg_dma_pool);
  206. pci_pool_destroy(fusion->sense_dma_pool);
  207. fusion->sg_dma_pool = NULL;
  208. fusion->sense_dma_pool = NULL;
  209. }
  210. /**
  211. * megasas_free_cmds_fusion - Free all the cmds in the free cmd pool
  212. * @instance: Adapter soft state
  213. */
  214. void
  215. megasas_free_cmds_fusion(struct megasas_instance *instance)
  216. {
  217. int i;
  218. struct fusion_context *fusion = instance->ctrl_context;
  219. u32 max_cmds, req_sz, reply_sz, io_frames_sz;
  220. req_sz = fusion->request_alloc_sz;
  221. reply_sz = fusion->reply_alloc_sz;
  222. io_frames_sz = fusion->io_frames_alloc_sz;
  223. max_cmds = instance->max_fw_cmds;
  224. /* Free descriptors and request Frames memory */
  225. if (fusion->req_frames_desc)
  226. dma_free_coherent(&instance->pdev->dev, req_sz,
  227. fusion->req_frames_desc,
  228. fusion->req_frames_desc_phys);
  229. if (fusion->reply_frames_desc) {
  230. pci_pool_free(fusion->reply_frames_desc_pool,
  231. fusion->reply_frames_desc,
  232. fusion->reply_frames_desc_phys);
  233. pci_pool_destroy(fusion->reply_frames_desc_pool);
  234. }
  235. if (fusion->io_request_frames) {
  236. pci_pool_free(fusion->io_request_frames_pool,
  237. fusion->io_request_frames,
  238. fusion->io_request_frames_phys);
  239. pci_pool_destroy(fusion->io_request_frames_pool);
  240. }
  241. /* Free the Fusion frame pool */
  242. megasas_teardown_frame_pool_fusion(instance);
  243. /* Free all the commands in the cmd_list */
  244. for (i = 0; i < max_cmds; i++)
  245. kfree(fusion->cmd_list[i]);
  246. /* Free the cmd_list buffer itself */
  247. kfree(fusion->cmd_list);
  248. fusion->cmd_list = NULL;
  249. INIT_LIST_HEAD(&fusion->cmd_pool);
  250. }
  251. /**
  252. * megasas_create_frame_pool_fusion - Creates DMA pool for cmd frames
  253. * @instance: Adapter soft state
  254. *
  255. */
  256. static int megasas_create_frame_pool_fusion(struct megasas_instance *instance)
  257. {
  258. int i;
  259. u32 max_cmd;
  260. struct fusion_context *fusion;
  261. struct megasas_cmd_fusion *cmd;
  262. u32 total_sz_chain_frame;
  263. fusion = instance->ctrl_context;
  264. max_cmd = instance->max_fw_cmds;
  265. total_sz_chain_frame = MEGASAS_MAX_SZ_CHAIN_FRAME;
  266. /*
  267. * Use DMA pool facility provided by PCI layer
  268. */
  269. fusion->sg_dma_pool = pci_pool_create("megasas sg pool fusion",
  270. instance->pdev,
  271. total_sz_chain_frame, 4,
  272. 0);
  273. if (!fusion->sg_dma_pool) {
  274. printk(KERN_DEBUG "megasas: failed to setup request pool "
  275. "fusion\n");
  276. return -ENOMEM;
  277. }
  278. fusion->sense_dma_pool = pci_pool_create("megasas sense pool fusion",
  279. instance->pdev,
  280. SCSI_SENSE_BUFFERSIZE, 64, 0);
  281. if (!fusion->sense_dma_pool) {
  282. printk(KERN_DEBUG "megasas: failed to setup sense pool "
  283. "fusion\n");
  284. pci_pool_destroy(fusion->sg_dma_pool);
  285. fusion->sg_dma_pool = NULL;
  286. return -ENOMEM;
  287. }
  288. /*
  289. * Allocate and attach a frame to each of the commands in cmd_list
  290. */
  291. for (i = 0; i < max_cmd; i++) {
  292. cmd = fusion->cmd_list[i];
  293. cmd->sg_frame = pci_pool_alloc(fusion->sg_dma_pool,
  294. GFP_KERNEL,
  295. &cmd->sg_frame_phys_addr);
  296. cmd->sense = pci_pool_alloc(fusion->sense_dma_pool,
  297. GFP_KERNEL, &cmd->sense_phys_addr);
  298. /*
  299. * megasas_teardown_frame_pool_fusion() takes care of freeing
  300. * whatever has been allocated
  301. */
  302. if (!cmd->sg_frame || !cmd->sense) {
  303. printk(KERN_DEBUG "megasas: pci_pool_alloc failed\n");
  304. megasas_teardown_frame_pool_fusion(instance);
  305. return -ENOMEM;
  306. }
  307. }
  308. return 0;
  309. }
  310. /**
  311. * megasas_alloc_cmds_fusion - Allocates the command packets
  312. * @instance: Adapter soft state
  313. *
  314. *
  315. * Each frame has a 32-bit field called context. This context is used to get
  316. * back the megasas_cmd_fusion from the frame when a frame gets completed
  317. * In this driver, the 32 bit values are the indices into an array cmd_list.
  318. * This array is used only to look up the megasas_cmd_fusion given the context.
  319. * The free commands themselves are maintained in a linked list called cmd_pool.
  320. *
  321. * cmds are formed in the io_request and sg_frame members of the
  322. * megasas_cmd_fusion. The context field is used to get a request descriptor
  323. * and is used as SMID of the cmd.
  324. * SMID value range is from 1 to max_fw_cmds.
  325. */
  326. int
  327. megasas_alloc_cmds_fusion(struct megasas_instance *instance)
  328. {
  329. int i, j, count;
  330. u32 max_cmd, io_frames_sz;
  331. struct fusion_context *fusion;
  332. struct megasas_cmd_fusion *cmd;
  333. union MPI2_REPLY_DESCRIPTORS_UNION *reply_desc;
  334. u32 offset;
  335. dma_addr_t io_req_base_phys;
  336. u8 *io_req_base;
  337. fusion = instance->ctrl_context;
  338. max_cmd = instance->max_fw_cmds;
  339. fusion->req_frames_desc =
  340. dma_alloc_coherent(&instance->pdev->dev,
  341. fusion->request_alloc_sz,
  342. &fusion->req_frames_desc_phys, GFP_KERNEL);
  343. if (!fusion->req_frames_desc) {
  344. printk(KERN_ERR "megasas; Could not allocate memory for "
  345. "request_frames\n");
  346. goto fail_req_desc;
  347. }
  348. count = instance->msix_vectors > 0 ? instance->msix_vectors : 1;
  349. fusion->reply_frames_desc_pool =
  350. pci_pool_create("reply_frames pool", instance->pdev,
  351. fusion->reply_alloc_sz * count, 16, 0);
  352. if (!fusion->reply_frames_desc_pool) {
  353. printk(KERN_ERR "megasas; Could not allocate memory for "
  354. "reply_frame pool\n");
  355. goto fail_reply_desc;
  356. }
  357. fusion->reply_frames_desc =
  358. pci_pool_alloc(fusion->reply_frames_desc_pool, GFP_KERNEL,
  359. &fusion->reply_frames_desc_phys);
  360. if (!fusion->reply_frames_desc) {
  361. printk(KERN_ERR "megasas; Could not allocate memory for "
  362. "reply_frame pool\n");
  363. pci_pool_destroy(fusion->reply_frames_desc_pool);
  364. goto fail_reply_desc;
  365. }
  366. reply_desc = fusion->reply_frames_desc;
  367. for (i = 0; i < fusion->reply_q_depth * count; i++, reply_desc++)
  368. reply_desc->Words = ULLONG_MAX;
  369. io_frames_sz = fusion->io_frames_alloc_sz;
  370. fusion->io_request_frames_pool =
  371. pci_pool_create("io_request_frames pool", instance->pdev,
  372. fusion->io_frames_alloc_sz, 16, 0);
  373. if (!fusion->io_request_frames_pool) {
  374. printk(KERN_ERR "megasas: Could not allocate memory for "
  375. "io_request_frame pool\n");
  376. goto fail_io_frames;
  377. }
  378. fusion->io_request_frames =
  379. pci_pool_alloc(fusion->io_request_frames_pool, GFP_KERNEL,
  380. &fusion->io_request_frames_phys);
  381. if (!fusion->io_request_frames) {
  382. printk(KERN_ERR "megasas: Could not allocate memory for "
  383. "io_request_frames frames\n");
  384. pci_pool_destroy(fusion->io_request_frames_pool);
  385. goto fail_io_frames;
  386. }
  387. /*
  388. * fusion->cmd_list is an array of struct megasas_cmd_fusion pointers.
  389. * Allocate the dynamic array first and then allocate individual
  390. * commands.
  391. */
  392. fusion->cmd_list = kmalloc(sizeof(struct megasas_cmd_fusion *)
  393. *max_cmd, GFP_KERNEL);
  394. if (!fusion->cmd_list) {
  395. printk(KERN_DEBUG "megasas: out of memory. Could not alloc "
  396. "memory for cmd_list_fusion\n");
  397. goto fail_cmd_list;
  398. }
  399. memset(fusion->cmd_list, 0, sizeof(struct megasas_cmd_fusion *)
  400. *max_cmd);
  401. max_cmd = instance->max_fw_cmds;
  402. for (i = 0; i < max_cmd; i++) {
  403. fusion->cmd_list[i] = kmalloc(sizeof(struct megasas_cmd_fusion),
  404. GFP_KERNEL);
  405. if (!fusion->cmd_list[i]) {
  406. printk(KERN_ERR "Could not alloc cmd list fusion\n");
  407. for (j = 0; j < i; j++)
  408. kfree(fusion->cmd_list[j]);
  409. kfree(fusion->cmd_list);
  410. fusion->cmd_list = NULL;
  411. goto fail_cmd_list;
  412. }
  413. }
  414. /* The first 256 bytes (SMID 0) is not used. Don't add to cmd list */
  415. io_req_base = fusion->io_request_frames +
  416. MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE;
  417. io_req_base_phys = fusion->io_request_frames_phys +
  418. MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE;
  419. /*
  420. * Add all the commands to command pool (fusion->cmd_pool)
  421. */
  422. /* SMID 0 is reserved. Set SMID/index from 1 */
  423. for (i = 0; i < max_cmd; i++) {
  424. cmd = fusion->cmd_list[i];
  425. offset = MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE * i;
  426. memset(cmd, 0, sizeof(struct megasas_cmd_fusion));
  427. cmd->index = i + 1;
  428. cmd->scmd = NULL;
  429. cmd->sync_cmd_idx = (u32)ULONG_MAX; /* Set to Invalid */
  430. cmd->instance = instance;
  431. cmd->io_request =
  432. (struct MPI2_RAID_SCSI_IO_REQUEST *)
  433. (io_req_base + offset);
  434. memset(cmd->io_request, 0,
  435. sizeof(struct MPI2_RAID_SCSI_IO_REQUEST));
  436. cmd->io_request_phys_addr = io_req_base_phys + offset;
  437. list_add_tail(&cmd->list, &fusion->cmd_pool);
  438. }
  439. /*
  440. * Create a frame pool and assign one frame to each cmd
  441. */
  442. if (megasas_create_frame_pool_fusion(instance)) {
  443. printk(KERN_DEBUG "megasas: Error creating frame DMA pool\n");
  444. megasas_free_cmds_fusion(instance);
  445. goto fail_req_desc;
  446. }
  447. return 0;
  448. fail_cmd_list:
  449. pci_pool_free(fusion->io_request_frames_pool, fusion->io_request_frames,
  450. fusion->io_request_frames_phys);
  451. pci_pool_destroy(fusion->io_request_frames_pool);
  452. fail_io_frames:
  453. dma_free_coherent(&instance->pdev->dev, fusion->request_alloc_sz,
  454. fusion->reply_frames_desc,
  455. fusion->reply_frames_desc_phys);
  456. pci_pool_free(fusion->reply_frames_desc_pool,
  457. fusion->reply_frames_desc,
  458. fusion->reply_frames_desc_phys);
  459. pci_pool_destroy(fusion->reply_frames_desc_pool);
  460. fail_reply_desc:
  461. dma_free_coherent(&instance->pdev->dev, fusion->request_alloc_sz,
  462. fusion->req_frames_desc,
  463. fusion->req_frames_desc_phys);
  464. fail_req_desc:
  465. return -ENOMEM;
  466. }
  467. /**
  468. * wait_and_poll - Issues a polling command
  469. * @instance: Adapter soft state
  470. * @cmd: Command packet to be issued
  471. *
  472. * For polling, MFI requires the cmd_status to be set to 0xFF before posting.
  473. */
  474. int
  475. wait_and_poll(struct megasas_instance *instance, struct megasas_cmd *cmd)
  476. {
  477. int i;
  478. struct megasas_header *frame_hdr = &cmd->frame->hdr;
  479. u32 msecs = MFI_POLL_TIMEOUT_SECS * 1000;
  480. /*
  481. * Wait for cmd_status to change
  482. */
  483. for (i = 0; (i < msecs) && (frame_hdr->cmd_status == 0xff); i += 20) {
  484. rmb();
  485. msleep(20);
  486. }
  487. if (frame_hdr->cmd_status == 0xff)
  488. return -ETIME;
  489. return 0;
  490. }
  491. /**
  492. * megasas_ioc_init_fusion - Initializes the FW
  493. * @instance: Adapter soft state
  494. *
  495. * Issues the IOC Init cmd
  496. */
  497. int
  498. megasas_ioc_init_fusion(struct megasas_instance *instance)
  499. {
  500. struct megasas_init_frame *init_frame;
  501. struct MPI2_IOC_INIT_REQUEST *IOCInitMessage;
  502. dma_addr_t ioc_init_handle;
  503. struct megasas_cmd *cmd;
  504. u8 ret;
  505. struct fusion_context *fusion;
  506. union MEGASAS_REQUEST_DESCRIPTOR_UNION *req_desc;
  507. int i;
  508. struct megasas_header *frame_hdr;
  509. fusion = instance->ctrl_context;
  510. cmd = megasas_get_cmd(instance);
  511. if (!cmd) {
  512. printk(KERN_ERR "Could not allocate cmd for INIT Frame\n");
  513. ret = 1;
  514. goto fail_get_cmd;
  515. }
  516. IOCInitMessage =
  517. dma_alloc_coherent(&instance->pdev->dev,
  518. sizeof(struct MPI2_IOC_INIT_REQUEST),
  519. &ioc_init_handle, GFP_KERNEL);
  520. if (!IOCInitMessage) {
  521. printk(KERN_ERR "Could not allocate memory for "
  522. "IOCInitMessage\n");
  523. ret = 1;
  524. goto fail_fw_init;
  525. }
  526. memset(IOCInitMessage, 0, sizeof(struct MPI2_IOC_INIT_REQUEST));
  527. IOCInitMessage->Function = MPI2_FUNCTION_IOC_INIT;
  528. IOCInitMessage->WhoInit = MPI2_WHOINIT_HOST_DRIVER;
  529. IOCInitMessage->MsgVersion = MPI2_VERSION;
  530. IOCInitMessage->HeaderVersion = MPI2_HEADER_VERSION;
  531. IOCInitMessage->SystemRequestFrameSize =
  532. MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE / 4;
  533. IOCInitMessage->ReplyDescriptorPostQueueDepth = fusion->reply_q_depth;
  534. IOCInitMessage->ReplyDescriptorPostQueueAddress =
  535. fusion->reply_frames_desc_phys;
  536. IOCInitMessage->SystemRequestFrameBaseAddress =
  537. fusion->io_request_frames_phys;
  538. IOCInitMessage->HostMSIxVectors = instance->msix_vectors;
  539. init_frame = (struct megasas_init_frame *)cmd->frame;
  540. memset(init_frame, 0, MEGAMFI_FRAME_SIZE);
  541. frame_hdr = &cmd->frame->hdr;
  542. frame_hdr->cmd_status = 0xFF;
  543. frame_hdr->flags |= MFI_FRAME_DONT_POST_IN_REPLY_QUEUE;
  544. init_frame->cmd = MFI_CMD_INIT;
  545. init_frame->cmd_status = 0xFF;
  546. init_frame->queue_info_new_phys_addr_lo = ioc_init_handle;
  547. init_frame->data_xfer_len = sizeof(struct MPI2_IOC_INIT_REQUEST);
  548. req_desc =
  549. (union MEGASAS_REQUEST_DESCRIPTOR_UNION *)fusion->req_frames_desc;
  550. req_desc->Words = cmd->frame_phys_addr;
  551. req_desc->MFAIo.RequestFlags =
  552. (MEGASAS_REQ_DESCRIPT_FLAGS_MFA <<
  553. MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  554. /*
  555. * disable the intr before firing the init frame
  556. */
  557. instance->instancet->disable_intr(instance->reg_set);
  558. for (i = 0; i < (10 * 1000); i += 20) {
  559. if (readl(&instance->reg_set->doorbell) & 1)
  560. msleep(20);
  561. else
  562. break;
  563. }
  564. instance->instancet->fire_cmd(instance, req_desc->u.low,
  565. req_desc->u.high, instance->reg_set);
  566. wait_and_poll(instance, cmd);
  567. frame_hdr = &cmd->frame->hdr;
  568. if (frame_hdr->cmd_status != 0) {
  569. ret = 1;
  570. goto fail_fw_init;
  571. }
  572. printk(KERN_ERR "megasas:IOC Init cmd success\n");
  573. ret = 0;
  574. fail_fw_init:
  575. megasas_return_cmd(instance, cmd);
  576. if (IOCInitMessage)
  577. dma_free_coherent(&instance->pdev->dev,
  578. sizeof(struct MPI2_IOC_INIT_REQUEST),
  579. IOCInitMessage, ioc_init_handle);
  580. fail_get_cmd:
  581. return ret;
  582. }
  583. /*
  584. * megasas_get_ld_map_info - Returns FW's ld_map structure
  585. * @instance: Adapter soft state
  586. * @pend: Pend the command or not
  587. * Issues an internal command (DCMD) to get the FW's controller PD
  588. * list structure. This information is mainly used to find out SYSTEM
  589. * supported by the FW.
  590. */
  591. static int
  592. megasas_get_ld_map_info(struct megasas_instance *instance)
  593. {
  594. int ret = 0;
  595. struct megasas_cmd *cmd;
  596. struct megasas_dcmd_frame *dcmd;
  597. struct MR_FW_RAID_MAP_ALL *ci;
  598. dma_addr_t ci_h = 0;
  599. u32 size_map_info;
  600. struct fusion_context *fusion;
  601. cmd = megasas_get_cmd(instance);
  602. if (!cmd) {
  603. printk(KERN_DEBUG "megasas: Failed to get cmd for map info.\n");
  604. return -ENOMEM;
  605. }
  606. fusion = instance->ctrl_context;
  607. if (!fusion) {
  608. megasas_return_cmd(instance, cmd);
  609. return 1;
  610. }
  611. dcmd = &cmd->frame->dcmd;
  612. size_map_info = sizeof(struct MR_FW_RAID_MAP) +
  613. (sizeof(struct MR_LD_SPAN_MAP) *(MAX_LOGICAL_DRIVES - 1));
  614. ci = fusion->ld_map[(instance->map_id & 1)];
  615. ci_h = fusion->ld_map_phys[(instance->map_id & 1)];
  616. if (!ci) {
  617. printk(KERN_DEBUG "Failed to alloc mem for ld_map_info\n");
  618. megasas_return_cmd(instance, cmd);
  619. return -ENOMEM;
  620. }
  621. memset(ci, 0, sizeof(*ci));
  622. memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
  623. dcmd->cmd = MFI_CMD_DCMD;
  624. dcmd->cmd_status = 0xFF;
  625. dcmd->sge_count = 1;
  626. dcmd->flags = MFI_FRAME_DIR_READ;
  627. dcmd->timeout = 0;
  628. dcmd->pad_0 = 0;
  629. dcmd->data_xfer_len = size_map_info;
  630. dcmd->opcode = MR_DCMD_LD_MAP_GET_INFO;
  631. dcmd->sgl.sge32[0].phys_addr = ci_h;
  632. dcmd->sgl.sge32[0].length = size_map_info;
  633. if (!megasas_issue_polled(instance, cmd))
  634. ret = 0;
  635. else {
  636. printk(KERN_ERR "megasas: Get LD Map Info Failed\n");
  637. ret = -1;
  638. }
  639. megasas_return_cmd(instance, cmd);
  640. return ret;
  641. }
  642. u8
  643. megasas_get_map_info(struct megasas_instance *instance)
  644. {
  645. struct fusion_context *fusion = instance->ctrl_context;
  646. fusion->fast_path_io = 0;
  647. if (!megasas_get_ld_map_info(instance)) {
  648. if (MR_ValidateMapInfo(fusion->ld_map[(instance->map_id & 1)],
  649. fusion->load_balance_info)) {
  650. fusion->fast_path_io = 1;
  651. return 0;
  652. }
  653. }
  654. return 1;
  655. }
  656. /*
  657. * megasas_sync_map_info - Returns FW's ld_map structure
  658. * @instance: Adapter soft state
  659. *
  660. * Issues an internal command (DCMD) to get the FW's controller PD
  661. * list structure. This information is mainly used to find out SYSTEM
  662. * supported by the FW.
  663. */
  664. int
  665. megasas_sync_map_info(struct megasas_instance *instance)
  666. {
  667. int ret = 0, i;
  668. struct megasas_cmd *cmd;
  669. struct megasas_dcmd_frame *dcmd;
  670. u32 size_sync_info, num_lds;
  671. struct fusion_context *fusion;
  672. struct MR_LD_TARGET_SYNC *ci = NULL;
  673. struct MR_FW_RAID_MAP_ALL *map;
  674. struct MR_LD_RAID *raid;
  675. struct MR_LD_TARGET_SYNC *ld_sync;
  676. dma_addr_t ci_h = 0;
  677. u32 size_map_info;
  678. cmd = megasas_get_cmd(instance);
  679. if (!cmd) {
  680. printk(KERN_DEBUG "megasas: Failed to get cmd for sync"
  681. "info.\n");
  682. return -ENOMEM;
  683. }
  684. fusion = instance->ctrl_context;
  685. if (!fusion) {
  686. megasas_return_cmd(instance, cmd);
  687. return 1;
  688. }
  689. map = fusion->ld_map[instance->map_id & 1];
  690. num_lds = map->raidMap.ldCount;
  691. dcmd = &cmd->frame->dcmd;
  692. size_sync_info = sizeof(struct MR_LD_TARGET_SYNC) *num_lds;
  693. memset(dcmd->mbox.b, 0, MFI_MBOX_SIZE);
  694. ci = (struct MR_LD_TARGET_SYNC *)
  695. fusion->ld_map[(instance->map_id - 1) & 1];
  696. memset(ci, 0, sizeof(struct MR_FW_RAID_MAP_ALL));
  697. ci_h = fusion->ld_map_phys[(instance->map_id - 1) & 1];
  698. ld_sync = (struct MR_LD_TARGET_SYNC *)ci;
  699. for (i = 0; i < num_lds; i++, ld_sync++) {
  700. raid = MR_LdRaidGet(i, map);
  701. ld_sync->targetId = MR_GetLDTgtId(i, map);
  702. ld_sync->seqNum = raid->seqNum;
  703. }
  704. size_map_info = sizeof(struct MR_FW_RAID_MAP) +
  705. (sizeof(struct MR_LD_SPAN_MAP) *(MAX_LOGICAL_DRIVES - 1));
  706. dcmd->cmd = MFI_CMD_DCMD;
  707. dcmd->cmd_status = 0xFF;
  708. dcmd->sge_count = 1;
  709. dcmd->flags = MFI_FRAME_DIR_WRITE;
  710. dcmd->timeout = 0;
  711. dcmd->pad_0 = 0;
  712. dcmd->data_xfer_len = size_map_info;
  713. dcmd->mbox.b[0] = num_lds;
  714. dcmd->mbox.b[1] = MEGASAS_DCMD_MBOX_PEND_FLAG;
  715. dcmd->opcode = MR_DCMD_LD_MAP_GET_INFO;
  716. dcmd->sgl.sge32[0].phys_addr = ci_h;
  717. dcmd->sgl.sge32[0].length = size_map_info;
  718. instance->map_update_cmd = cmd;
  719. instance->instancet->issue_dcmd(instance, cmd);
  720. return ret;
  721. }
  722. /**
  723. * megasas_init_adapter_fusion - Initializes the FW
  724. * @instance: Adapter soft state
  725. *
  726. * This is the main function for initializing firmware.
  727. */
  728. u32
  729. megasas_init_adapter_fusion(struct megasas_instance *instance)
  730. {
  731. struct megasas_register_set __iomem *reg_set;
  732. struct fusion_context *fusion;
  733. u32 max_cmd;
  734. int i = 0, count;
  735. fusion = instance->ctrl_context;
  736. reg_set = instance->reg_set;
  737. /*
  738. * Get various operational parameters from status register
  739. */
  740. instance->max_fw_cmds =
  741. instance->instancet->read_fw_status_reg(reg_set) & 0x00FFFF;
  742. instance->max_fw_cmds = min(instance->max_fw_cmds, (u16)1008);
  743. /*
  744. * Reduce the max supported cmds by 1. This is to ensure that the
  745. * reply_q_sz (1 more than the max cmd that driver may send)
  746. * does not exceed max cmds that the FW can support
  747. */
  748. instance->max_fw_cmds = instance->max_fw_cmds-1;
  749. /* Only internal cmds (DCMD) need to have MFI frames */
  750. instance->max_mfi_cmds = MEGASAS_INT_CMDS;
  751. max_cmd = instance->max_fw_cmds;
  752. fusion->reply_q_depth = ((max_cmd + 1 + 15)/16)*16;
  753. fusion->request_alloc_sz =
  754. sizeof(union MEGASAS_REQUEST_DESCRIPTOR_UNION) *max_cmd;
  755. fusion->reply_alloc_sz = sizeof(union MPI2_REPLY_DESCRIPTORS_UNION)
  756. *(fusion->reply_q_depth);
  757. fusion->io_frames_alloc_sz = MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE +
  758. (MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE *
  759. (max_cmd + 1)); /* Extra 1 for SMID 0 */
  760. fusion->max_sge_in_main_msg =
  761. (MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE -
  762. offsetof(struct MPI2_RAID_SCSI_IO_REQUEST, SGL))/16;
  763. fusion->max_sge_in_chain =
  764. MEGASAS_MAX_SZ_CHAIN_FRAME / sizeof(union MPI2_SGE_IO_UNION);
  765. instance->max_num_sge = fusion->max_sge_in_main_msg +
  766. fusion->max_sge_in_chain - 2;
  767. /* Used for pass thru MFI frame (DCMD) */
  768. fusion->chain_offset_mfi_pthru =
  769. offsetof(struct MPI2_RAID_SCSI_IO_REQUEST, SGL)/16;
  770. fusion->chain_offset_io_request =
  771. (MEGA_MPI2_RAID_DEFAULT_IO_FRAME_SIZE -
  772. sizeof(union MPI2_SGE_IO_UNION))/16;
  773. count = instance->msix_vectors > 0 ? instance->msix_vectors : 1;
  774. for (i = 0 ; i < count; i++)
  775. fusion->last_reply_idx[i] = 0;
  776. /*
  777. * Allocate memory for descriptors
  778. * Create a pool of commands
  779. */
  780. if (megasas_alloc_cmds(instance))
  781. goto fail_alloc_mfi_cmds;
  782. if (megasas_alloc_cmds_fusion(instance))
  783. goto fail_alloc_cmds;
  784. if (megasas_ioc_init_fusion(instance))
  785. goto fail_ioc_init;
  786. instance->flag_ieee = 1;
  787. fusion->map_sz = sizeof(struct MR_FW_RAID_MAP) +
  788. (sizeof(struct MR_LD_SPAN_MAP) *(MAX_LOGICAL_DRIVES - 1));
  789. fusion->fast_path_io = 0;
  790. for (i = 0; i < 2; i++) {
  791. fusion->ld_map[i] = dma_alloc_coherent(&instance->pdev->dev,
  792. fusion->map_sz,
  793. &fusion->ld_map_phys[i],
  794. GFP_KERNEL);
  795. if (!fusion->ld_map[i]) {
  796. printk(KERN_ERR "megasas: Could not allocate memory "
  797. "for map info\n");
  798. goto fail_map_info;
  799. }
  800. }
  801. if (!megasas_get_map_info(instance))
  802. megasas_sync_map_info(instance);
  803. return 0;
  804. fail_map_info:
  805. if (i == 1)
  806. dma_free_coherent(&instance->pdev->dev, fusion->map_sz,
  807. fusion->ld_map[0], fusion->ld_map_phys[0]);
  808. fail_ioc_init:
  809. megasas_free_cmds_fusion(instance);
  810. fail_alloc_cmds:
  811. megasas_free_cmds(instance);
  812. fail_alloc_mfi_cmds:
  813. return 1;
  814. }
  815. /**
  816. * megasas_fire_cmd_fusion - Sends command to the FW
  817. * @frame_phys_addr : Physical address of cmd
  818. * @frame_count : Number of frames for the command
  819. * @regs : MFI register set
  820. */
  821. void
  822. megasas_fire_cmd_fusion(struct megasas_instance *instance,
  823. dma_addr_t req_desc_lo,
  824. u32 req_desc_hi,
  825. struct megasas_register_set __iomem *regs)
  826. {
  827. unsigned long flags;
  828. spin_lock_irqsave(&instance->hba_lock, flags);
  829. writel(req_desc_lo,
  830. &(regs)->inbound_low_queue_port);
  831. writel(req_desc_hi, &(regs)->inbound_high_queue_port);
  832. spin_unlock_irqrestore(&instance->hba_lock, flags);
  833. }
  834. /**
  835. * map_cmd_status - Maps FW cmd status to OS cmd status
  836. * @cmd : Pointer to cmd
  837. * @status : status of cmd returned by FW
  838. * @ext_status : ext status of cmd returned by FW
  839. */
  840. void
  841. map_cmd_status(struct megasas_cmd_fusion *cmd, u8 status, u8 ext_status)
  842. {
  843. switch (status) {
  844. case MFI_STAT_OK:
  845. cmd->scmd->result = DID_OK << 16;
  846. break;
  847. case MFI_STAT_SCSI_IO_FAILED:
  848. case MFI_STAT_LD_INIT_IN_PROGRESS:
  849. cmd->scmd->result = (DID_ERROR << 16) | ext_status;
  850. break;
  851. case MFI_STAT_SCSI_DONE_WITH_ERROR:
  852. cmd->scmd->result = (DID_OK << 16) | ext_status;
  853. if (ext_status == SAM_STAT_CHECK_CONDITION) {
  854. memset(cmd->scmd->sense_buffer, 0,
  855. SCSI_SENSE_BUFFERSIZE);
  856. memcpy(cmd->scmd->sense_buffer, cmd->sense,
  857. SCSI_SENSE_BUFFERSIZE);
  858. cmd->scmd->result |= DRIVER_SENSE << 24;
  859. }
  860. break;
  861. case MFI_STAT_LD_OFFLINE:
  862. case MFI_STAT_DEVICE_NOT_FOUND:
  863. cmd->scmd->result = DID_BAD_TARGET << 16;
  864. break;
  865. case MFI_STAT_CONFIG_SEQ_MISMATCH:
  866. cmd->scmd->result = DID_IMM_RETRY << 16;
  867. break;
  868. default:
  869. printk(KERN_DEBUG "megasas: FW status %#x\n", status);
  870. cmd->scmd->result = DID_ERROR << 16;
  871. break;
  872. }
  873. }
  874. /**
  875. * megasas_make_sgl_fusion - Prepares 32-bit SGL
  876. * @instance: Adapter soft state
  877. * @scp: SCSI command from the mid-layer
  878. * @sgl_ptr: SGL to be filled in
  879. * @cmd: cmd we are working on
  880. *
  881. * If successful, this function returns the number of SG elements.
  882. */
  883. static int
  884. megasas_make_sgl_fusion(struct megasas_instance *instance,
  885. struct scsi_cmnd *scp,
  886. struct MPI25_IEEE_SGE_CHAIN64 *sgl_ptr,
  887. struct megasas_cmd_fusion *cmd)
  888. {
  889. int i, sg_processed, sge_count;
  890. struct scatterlist *os_sgl;
  891. struct fusion_context *fusion;
  892. fusion = instance->ctrl_context;
  893. if (instance->pdev->device == PCI_DEVICE_ID_LSI_INVADER) {
  894. struct MPI25_IEEE_SGE_CHAIN64 *sgl_ptr_end = sgl_ptr;
  895. sgl_ptr_end += fusion->max_sge_in_main_msg - 1;
  896. sgl_ptr_end->Flags = 0;
  897. }
  898. sge_count = scsi_dma_map(scp);
  899. BUG_ON(sge_count < 0);
  900. if (sge_count > instance->max_num_sge || !sge_count)
  901. return sge_count;
  902. scsi_for_each_sg(scp, os_sgl, sge_count, i) {
  903. sgl_ptr->Length = sg_dma_len(os_sgl);
  904. sgl_ptr->Address = sg_dma_address(os_sgl);
  905. sgl_ptr->Flags = 0;
  906. if (instance->pdev->device == PCI_DEVICE_ID_LSI_INVADER) {
  907. if (i == sge_count - 1)
  908. sgl_ptr->Flags = IEEE_SGE_FLAGS_END_OF_LIST;
  909. }
  910. sgl_ptr++;
  911. sg_processed = i + 1;
  912. if ((sg_processed == (fusion->max_sge_in_main_msg - 1)) &&
  913. (sge_count > fusion->max_sge_in_main_msg)) {
  914. struct MPI25_IEEE_SGE_CHAIN64 *sg_chain;
  915. if (instance->pdev->device ==
  916. PCI_DEVICE_ID_LSI_INVADER) {
  917. if ((cmd->io_request->IoFlags &
  918. MPI25_SAS_DEVICE0_FLAGS_ENABLED_FAST_PATH) !=
  919. MPI25_SAS_DEVICE0_FLAGS_ENABLED_FAST_PATH)
  920. cmd->io_request->ChainOffset =
  921. fusion->
  922. chain_offset_io_request;
  923. else
  924. cmd->io_request->ChainOffset = 0;
  925. } else
  926. cmd->io_request->ChainOffset =
  927. fusion->chain_offset_io_request;
  928. sg_chain = sgl_ptr;
  929. /* Prepare chain element */
  930. sg_chain->NextChainOffset = 0;
  931. if (instance->pdev->device ==
  932. PCI_DEVICE_ID_LSI_INVADER)
  933. sg_chain->Flags = IEEE_SGE_FLAGS_CHAIN_ELEMENT;
  934. else
  935. sg_chain->Flags =
  936. (IEEE_SGE_FLAGS_CHAIN_ELEMENT |
  937. MPI2_IEEE_SGE_FLAGS_IOCPLBNTA_ADDR);
  938. sg_chain->Length = (sizeof(union MPI2_SGE_IO_UNION)
  939. *(sge_count - sg_processed));
  940. sg_chain->Address = cmd->sg_frame_phys_addr;
  941. sgl_ptr =
  942. (struct MPI25_IEEE_SGE_CHAIN64 *)cmd->sg_frame;
  943. }
  944. }
  945. return sge_count;
  946. }
  947. /**
  948. * megasas_set_pd_lba - Sets PD LBA
  949. * @cdb: CDB
  950. * @cdb_len: cdb length
  951. * @start_blk: Start block of IO
  952. *
  953. * Used to set the PD LBA in CDB for FP IOs
  954. */
  955. void
  956. megasas_set_pd_lba(struct MPI2_RAID_SCSI_IO_REQUEST *io_request, u8 cdb_len,
  957. struct IO_REQUEST_INFO *io_info, struct scsi_cmnd *scp,
  958. struct MR_FW_RAID_MAP_ALL *local_map_ptr, u32 ref_tag)
  959. {
  960. struct MR_LD_RAID *raid;
  961. u32 ld;
  962. u64 start_blk = io_info->pdBlock;
  963. u8 *cdb = io_request->CDB.CDB32;
  964. u32 num_blocks = io_info->numBlocks;
  965. u8 opcode = 0, flagvals = 0, groupnum = 0, control = 0;
  966. /* Check if T10 PI (DIF) is enabled for this LD */
  967. ld = MR_TargetIdToLdGet(io_info->ldTgtId, local_map_ptr);
  968. raid = MR_LdRaidGet(ld, local_map_ptr);
  969. if (raid->capability.ldPiMode == MR_PROT_INFO_TYPE_CONTROLLER) {
  970. memset(cdb, 0, sizeof(io_request->CDB.CDB32));
  971. cdb[0] = MEGASAS_SCSI_VARIABLE_LENGTH_CMD;
  972. cdb[7] = MEGASAS_SCSI_ADDL_CDB_LEN;
  973. if (scp->sc_data_direction == PCI_DMA_FROMDEVICE)
  974. cdb[9] = MEGASAS_SCSI_SERVICE_ACTION_READ32;
  975. else
  976. cdb[9] = MEGASAS_SCSI_SERVICE_ACTION_WRITE32;
  977. cdb[10] = MEGASAS_RD_WR_PROTECT_CHECK_ALL;
  978. /* LBA */
  979. cdb[12] = (u8)((start_blk >> 56) & 0xff);
  980. cdb[13] = (u8)((start_blk >> 48) & 0xff);
  981. cdb[14] = (u8)((start_blk >> 40) & 0xff);
  982. cdb[15] = (u8)((start_blk >> 32) & 0xff);
  983. cdb[16] = (u8)((start_blk >> 24) & 0xff);
  984. cdb[17] = (u8)((start_blk >> 16) & 0xff);
  985. cdb[18] = (u8)((start_blk >> 8) & 0xff);
  986. cdb[19] = (u8)(start_blk & 0xff);
  987. /* Logical block reference tag */
  988. io_request->CDB.EEDP32.PrimaryReferenceTag =
  989. cpu_to_be32(ref_tag);
  990. io_request->CDB.EEDP32.PrimaryApplicationTagMask = 0xffff;
  991. io_request->DataLength = num_blocks * 512;
  992. io_request->IoFlags = 32; /* Specify 32-byte cdb */
  993. /* Transfer length */
  994. cdb[28] = (u8)((num_blocks >> 24) & 0xff);
  995. cdb[29] = (u8)((num_blocks >> 16) & 0xff);
  996. cdb[30] = (u8)((num_blocks >> 8) & 0xff);
  997. cdb[31] = (u8)(num_blocks & 0xff);
  998. /* set SCSI IO EEDPFlags */
  999. if (scp->sc_data_direction == PCI_DMA_FROMDEVICE) {
  1000. io_request->EEDPFlags =
  1001. MPI2_SCSIIO_EEDPFLAGS_INC_PRI_REFTAG |
  1002. MPI2_SCSIIO_EEDPFLAGS_CHECK_REFTAG |
  1003. MPI2_SCSIIO_EEDPFLAGS_CHECK_REMOVE_OP |
  1004. MPI2_SCSIIO_EEDPFLAGS_CHECK_APPTAG |
  1005. MPI2_SCSIIO_EEDPFLAGS_CHECK_GUARD;
  1006. } else {
  1007. io_request->EEDPFlags =
  1008. MPI2_SCSIIO_EEDPFLAGS_INC_PRI_REFTAG |
  1009. MPI2_SCSIIO_EEDPFLAGS_INSERT_OP;
  1010. }
  1011. io_request->Control |= (0x4 << 26);
  1012. io_request->EEDPBlockSize = MEGASAS_EEDPBLOCKSIZE;
  1013. } else {
  1014. /* Some drives don't support 16/12 byte CDB's, convert to 10 */
  1015. if (((cdb_len == 12) || (cdb_len == 16)) &&
  1016. (start_blk <= 0xffffffff)) {
  1017. if (cdb_len == 16) {
  1018. opcode = cdb[0] == READ_16 ? READ_10 : WRITE_10;
  1019. flagvals = cdb[1];
  1020. groupnum = cdb[14];
  1021. control = cdb[15];
  1022. } else {
  1023. opcode = cdb[0] == READ_12 ? READ_10 : WRITE_10;
  1024. flagvals = cdb[1];
  1025. groupnum = cdb[10];
  1026. control = cdb[11];
  1027. }
  1028. memset(cdb, 0, sizeof(io_request->CDB.CDB32));
  1029. cdb[0] = opcode;
  1030. cdb[1] = flagvals;
  1031. cdb[6] = groupnum;
  1032. cdb[9] = control;
  1033. /* Transfer length */
  1034. cdb[8] = (u8)(num_blocks & 0xff);
  1035. cdb[7] = (u8)((num_blocks >> 8) & 0xff);
  1036. io_request->IoFlags = 10; /* Specify 10-byte cdb */
  1037. cdb_len = 10;
  1038. } else if ((cdb_len < 16) && (start_blk > 0xffffffff)) {
  1039. /* Convert to 16 byte CDB for large LBA's */
  1040. switch (cdb_len) {
  1041. case 6:
  1042. opcode = cdb[0] == READ_6 ? READ_16 : WRITE_16;
  1043. control = cdb[5];
  1044. break;
  1045. case 10:
  1046. opcode =
  1047. cdb[0] == READ_10 ? READ_16 : WRITE_16;
  1048. flagvals = cdb[1];
  1049. groupnum = cdb[6];
  1050. control = cdb[9];
  1051. break;
  1052. case 12:
  1053. opcode =
  1054. cdb[0] == READ_12 ? READ_16 : WRITE_16;
  1055. flagvals = cdb[1];
  1056. groupnum = cdb[10];
  1057. control = cdb[11];
  1058. break;
  1059. }
  1060. memset(cdb, 0, sizeof(io_request->CDB.CDB32));
  1061. cdb[0] = opcode;
  1062. cdb[1] = flagvals;
  1063. cdb[14] = groupnum;
  1064. cdb[15] = control;
  1065. /* Transfer length */
  1066. cdb[13] = (u8)(num_blocks & 0xff);
  1067. cdb[12] = (u8)((num_blocks >> 8) & 0xff);
  1068. cdb[11] = (u8)((num_blocks >> 16) & 0xff);
  1069. cdb[10] = (u8)((num_blocks >> 24) & 0xff);
  1070. io_request->IoFlags = 16; /* Specify 16-byte cdb */
  1071. cdb_len = 16;
  1072. }
  1073. /* Normal case, just load LBA here */
  1074. switch (cdb_len) {
  1075. case 6:
  1076. {
  1077. u8 val = cdb[1] & 0xE0;
  1078. cdb[3] = (u8)(start_blk & 0xff);
  1079. cdb[2] = (u8)((start_blk >> 8) & 0xff);
  1080. cdb[1] = val | ((u8)(start_blk >> 16) & 0x1f);
  1081. break;
  1082. }
  1083. case 10:
  1084. cdb[5] = (u8)(start_blk & 0xff);
  1085. cdb[4] = (u8)((start_blk >> 8) & 0xff);
  1086. cdb[3] = (u8)((start_blk >> 16) & 0xff);
  1087. cdb[2] = (u8)((start_blk >> 24) & 0xff);
  1088. break;
  1089. case 12:
  1090. cdb[5] = (u8)(start_blk & 0xff);
  1091. cdb[4] = (u8)((start_blk >> 8) & 0xff);
  1092. cdb[3] = (u8)((start_blk >> 16) & 0xff);
  1093. cdb[2] = (u8)((start_blk >> 24) & 0xff);
  1094. break;
  1095. case 16:
  1096. cdb[9] = (u8)(start_blk & 0xff);
  1097. cdb[8] = (u8)((start_blk >> 8) & 0xff);
  1098. cdb[7] = (u8)((start_blk >> 16) & 0xff);
  1099. cdb[6] = (u8)((start_blk >> 24) & 0xff);
  1100. cdb[5] = (u8)((start_blk >> 32) & 0xff);
  1101. cdb[4] = (u8)((start_blk >> 40) & 0xff);
  1102. cdb[3] = (u8)((start_blk >> 48) & 0xff);
  1103. cdb[2] = (u8)((start_blk >> 56) & 0xff);
  1104. break;
  1105. }
  1106. }
  1107. }
  1108. /**
  1109. * megasas_build_ldio_fusion - Prepares IOs to devices
  1110. * @instance: Adapter soft state
  1111. * @scp: SCSI command
  1112. * @cmd: Command to be prepared
  1113. *
  1114. * Prepares the io_request and chain elements (sg_frame) for IO
  1115. * The IO can be for PD (Fast Path) or LD
  1116. */
  1117. void
  1118. megasas_build_ldio_fusion(struct megasas_instance *instance,
  1119. struct scsi_cmnd *scp,
  1120. struct megasas_cmd_fusion *cmd)
  1121. {
  1122. u8 fp_possible;
  1123. u32 start_lba_lo, start_lba_hi, device_id;
  1124. struct MPI2_RAID_SCSI_IO_REQUEST *io_request;
  1125. union MEGASAS_REQUEST_DESCRIPTOR_UNION *req_desc;
  1126. struct IO_REQUEST_INFO io_info;
  1127. struct fusion_context *fusion;
  1128. struct MR_FW_RAID_MAP_ALL *local_map_ptr;
  1129. device_id = MEGASAS_DEV_INDEX(instance, scp);
  1130. fusion = instance->ctrl_context;
  1131. io_request = cmd->io_request;
  1132. io_request->RaidContext.VirtualDiskTgtId = device_id;
  1133. io_request->RaidContext.status = 0;
  1134. io_request->RaidContext.exStatus = 0;
  1135. req_desc = (union MEGASAS_REQUEST_DESCRIPTOR_UNION *)cmd->request_desc;
  1136. start_lba_lo = 0;
  1137. start_lba_hi = 0;
  1138. fp_possible = 0;
  1139. /*
  1140. * 6-byte READ(0x08) or WRITE(0x0A) cdb
  1141. */
  1142. if (scp->cmd_len == 6) {
  1143. io_request->DataLength = (u32) scp->cmnd[4];
  1144. start_lba_lo = ((u32) scp->cmnd[1] << 16) |
  1145. ((u32) scp->cmnd[2] << 8) | (u32) scp->cmnd[3];
  1146. start_lba_lo &= 0x1FFFFF;
  1147. }
  1148. /*
  1149. * 10-byte READ(0x28) or WRITE(0x2A) cdb
  1150. */
  1151. else if (scp->cmd_len == 10) {
  1152. io_request->DataLength = (u32) scp->cmnd[8] |
  1153. ((u32) scp->cmnd[7] << 8);
  1154. start_lba_lo = ((u32) scp->cmnd[2] << 24) |
  1155. ((u32) scp->cmnd[3] << 16) |
  1156. ((u32) scp->cmnd[4] << 8) | (u32) scp->cmnd[5];
  1157. }
  1158. /*
  1159. * 12-byte READ(0xA8) or WRITE(0xAA) cdb
  1160. */
  1161. else if (scp->cmd_len == 12) {
  1162. io_request->DataLength = ((u32) scp->cmnd[6] << 24) |
  1163. ((u32) scp->cmnd[7] << 16) |
  1164. ((u32) scp->cmnd[8] << 8) | (u32) scp->cmnd[9];
  1165. start_lba_lo = ((u32) scp->cmnd[2] << 24) |
  1166. ((u32) scp->cmnd[3] << 16) |
  1167. ((u32) scp->cmnd[4] << 8) | (u32) scp->cmnd[5];
  1168. }
  1169. /*
  1170. * 16-byte READ(0x88) or WRITE(0x8A) cdb
  1171. */
  1172. else if (scp->cmd_len == 16) {
  1173. io_request->DataLength = ((u32) scp->cmnd[10] << 24) |
  1174. ((u32) scp->cmnd[11] << 16) |
  1175. ((u32) scp->cmnd[12] << 8) | (u32) scp->cmnd[13];
  1176. start_lba_lo = ((u32) scp->cmnd[6] << 24) |
  1177. ((u32) scp->cmnd[7] << 16) |
  1178. ((u32) scp->cmnd[8] << 8) | (u32) scp->cmnd[9];
  1179. start_lba_hi = ((u32) scp->cmnd[2] << 24) |
  1180. ((u32) scp->cmnd[3] << 16) |
  1181. ((u32) scp->cmnd[4] << 8) | (u32) scp->cmnd[5];
  1182. }
  1183. memset(&io_info, 0, sizeof(struct IO_REQUEST_INFO));
  1184. io_info.ldStartBlock = ((u64)start_lba_hi << 32) | start_lba_lo;
  1185. io_info.numBlocks = io_request->DataLength;
  1186. io_info.ldTgtId = device_id;
  1187. if (scp->sc_data_direction == PCI_DMA_FROMDEVICE)
  1188. io_info.isRead = 1;
  1189. local_map_ptr = fusion->ld_map[(instance->map_id & 1)];
  1190. if ((MR_TargetIdToLdGet(device_id, local_map_ptr) >=
  1191. MAX_LOGICAL_DRIVES) || (!fusion->fast_path_io)) {
  1192. io_request->RaidContext.regLockFlags = 0;
  1193. fp_possible = 0;
  1194. } else {
  1195. if (MR_BuildRaidContext(instance, &io_info,
  1196. &io_request->RaidContext,
  1197. local_map_ptr))
  1198. fp_possible = io_info.fpOkForIo;
  1199. }
  1200. /* Use smp_processor_id() for now until cmd->request->cpu is CPU
  1201. id by default, not CPU group id, otherwise all MSI-X queues won't
  1202. be utilized */
  1203. cmd->request_desc->SCSIIO.MSIxIndex = instance->msix_vectors ?
  1204. smp_processor_id() % instance->msix_vectors : 0;
  1205. if (fp_possible) {
  1206. megasas_set_pd_lba(io_request, scp->cmd_len, &io_info, scp,
  1207. local_map_ptr, start_lba_lo);
  1208. io_request->DataLength = scsi_bufflen(scp);
  1209. io_request->Function = MPI2_FUNCTION_SCSI_IO_REQUEST;
  1210. cmd->request_desc->SCSIIO.RequestFlags =
  1211. (MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY
  1212. << MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1213. if (instance->pdev->device == PCI_DEVICE_ID_LSI_INVADER) {
  1214. if (io_request->RaidContext.regLockFlags ==
  1215. REGION_TYPE_UNUSED)
  1216. cmd->request_desc->SCSIIO.RequestFlags =
  1217. (MEGASAS_REQ_DESCRIPT_FLAGS_NO_LOCK <<
  1218. MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1219. io_request->RaidContext.Type = MPI2_TYPE_CUDA;
  1220. io_request->RaidContext.nseg = 0x1;
  1221. io_request->IoFlags |=
  1222. MPI25_SAS_DEVICE0_FLAGS_ENABLED_FAST_PATH;
  1223. io_request->RaidContext.regLockFlags |=
  1224. (MR_RL_FLAGS_GRANT_DESTINATION_CUDA |
  1225. MR_RL_FLAGS_SEQ_NUM_ENABLE);
  1226. }
  1227. if ((fusion->load_balance_info[device_id].loadBalanceFlag) &&
  1228. (io_info.isRead)) {
  1229. io_info.devHandle =
  1230. get_updated_dev_handle(
  1231. &fusion->load_balance_info[device_id],
  1232. &io_info);
  1233. scp->SCp.Status |= MEGASAS_LOAD_BALANCE_FLAG;
  1234. } else
  1235. scp->SCp.Status &= ~MEGASAS_LOAD_BALANCE_FLAG;
  1236. cmd->request_desc->SCSIIO.DevHandle = io_info.devHandle;
  1237. io_request->DevHandle = io_info.devHandle;
  1238. } else {
  1239. io_request->RaidContext.timeoutValue =
  1240. local_map_ptr->raidMap.fpPdIoTimeoutSec;
  1241. cmd->request_desc->SCSIIO.RequestFlags =
  1242. (MEGASAS_REQ_DESCRIPT_FLAGS_LD_IO
  1243. << MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1244. if (instance->pdev->device == PCI_DEVICE_ID_LSI_INVADER) {
  1245. if (io_request->RaidContext.regLockFlags ==
  1246. REGION_TYPE_UNUSED)
  1247. cmd->request_desc->SCSIIO.RequestFlags =
  1248. (MEGASAS_REQ_DESCRIPT_FLAGS_NO_LOCK <<
  1249. MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1250. io_request->RaidContext.Type = MPI2_TYPE_CUDA;
  1251. io_request->RaidContext.regLockFlags |=
  1252. (MR_RL_FLAGS_GRANT_DESTINATION_CPU0 |
  1253. MR_RL_FLAGS_SEQ_NUM_ENABLE);
  1254. io_request->RaidContext.nseg = 0x1;
  1255. }
  1256. io_request->Function = MEGASAS_MPI2_FUNCTION_LD_IO_REQUEST;
  1257. io_request->DevHandle = device_id;
  1258. } /* Not FP */
  1259. }
  1260. /**
  1261. * megasas_build_dcdb_fusion - Prepares IOs to devices
  1262. * @instance: Adapter soft state
  1263. * @scp: SCSI command
  1264. * @cmd: Command to be prepared
  1265. *
  1266. * Prepares the io_request frame for non-io cmds
  1267. */
  1268. static void
  1269. megasas_build_dcdb_fusion(struct megasas_instance *instance,
  1270. struct scsi_cmnd *scmd,
  1271. struct megasas_cmd_fusion *cmd)
  1272. {
  1273. u32 device_id;
  1274. struct MPI2_RAID_SCSI_IO_REQUEST *io_request;
  1275. u16 pd_index = 0;
  1276. struct MR_FW_RAID_MAP_ALL *local_map_ptr;
  1277. struct fusion_context *fusion = instance->ctrl_context;
  1278. io_request = cmd->io_request;
  1279. device_id = MEGASAS_DEV_INDEX(instance, scmd);
  1280. pd_index = (scmd->device->channel * MEGASAS_MAX_DEV_PER_CHANNEL)
  1281. +scmd->device->id;
  1282. local_map_ptr = fusion->ld_map[(instance->map_id & 1)];
  1283. /* Check if this is a system PD I/O */
  1284. if (instance->pd_list[pd_index].driveState == MR_PD_STATE_SYSTEM) {
  1285. io_request->Function = 0;
  1286. io_request->DevHandle =
  1287. local_map_ptr->raidMap.devHndlInfo[device_id].curDevHdl;
  1288. io_request->RaidContext.timeoutValue =
  1289. local_map_ptr->raidMap.fpPdIoTimeoutSec;
  1290. io_request->RaidContext.regLockFlags = 0;
  1291. io_request->RaidContext.regLockRowLBA = 0;
  1292. io_request->RaidContext.regLockLength = 0;
  1293. io_request->RaidContext.RAIDFlags =
  1294. MR_RAID_FLAGS_IO_SUB_TYPE_SYSTEM_PD <<
  1295. MR_RAID_CTX_RAID_FLAGS_IO_SUB_TYPE_SHIFT;
  1296. cmd->request_desc->SCSIIO.RequestFlags =
  1297. (MPI2_REQ_DESCRIPT_FLAGS_HIGH_PRIORITY <<
  1298. MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1299. } else {
  1300. io_request->Function = MEGASAS_MPI2_FUNCTION_LD_IO_REQUEST;
  1301. io_request->DevHandle = device_id;
  1302. cmd->request_desc->SCSIIO.RequestFlags =
  1303. (MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO <<
  1304. MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1305. }
  1306. io_request->RaidContext.VirtualDiskTgtId = device_id;
  1307. io_request->LUN[1] = scmd->device->lun;
  1308. io_request->DataLength = scsi_bufflen(scmd);
  1309. }
  1310. /**
  1311. * megasas_build_io_fusion - Prepares IOs to devices
  1312. * @instance: Adapter soft state
  1313. * @scp: SCSI command
  1314. * @cmd: Command to be prepared
  1315. *
  1316. * Invokes helper functions to prepare request frames
  1317. * and sets flags appropriate for IO/Non-IO cmd
  1318. */
  1319. int
  1320. megasas_build_io_fusion(struct megasas_instance *instance,
  1321. struct scsi_cmnd *scp,
  1322. struct megasas_cmd_fusion *cmd)
  1323. {
  1324. u32 device_id, sge_count;
  1325. struct MPI2_RAID_SCSI_IO_REQUEST *io_request = cmd->io_request;
  1326. device_id = MEGASAS_DEV_INDEX(instance, scp);
  1327. /* Zero out some fields so they don't get reused */
  1328. io_request->LUN[1] = 0;
  1329. io_request->CDB.EEDP32.PrimaryReferenceTag = 0;
  1330. io_request->CDB.EEDP32.PrimaryApplicationTagMask = 0;
  1331. io_request->EEDPFlags = 0;
  1332. io_request->Control = 0;
  1333. io_request->EEDPBlockSize = 0;
  1334. io_request->ChainOffset = 0;
  1335. io_request->RaidContext.RAIDFlags = 0;
  1336. io_request->RaidContext.Type = 0;
  1337. io_request->RaidContext.nseg = 0;
  1338. memcpy(io_request->CDB.CDB32, scp->cmnd, scp->cmd_len);
  1339. /*
  1340. * Just the CDB length,rest of the Flags are zero
  1341. * This will be modified for FP in build_ldio_fusion
  1342. */
  1343. io_request->IoFlags = scp->cmd_len;
  1344. if (megasas_is_ldio(scp))
  1345. megasas_build_ldio_fusion(instance, scp, cmd);
  1346. else
  1347. megasas_build_dcdb_fusion(instance, scp, cmd);
  1348. /*
  1349. * Construct SGL
  1350. */
  1351. sge_count =
  1352. megasas_make_sgl_fusion(instance, scp,
  1353. (struct MPI25_IEEE_SGE_CHAIN64 *)
  1354. &io_request->SGL, cmd);
  1355. if (sge_count > instance->max_num_sge) {
  1356. printk(KERN_ERR "megasas: Error. sge_count (0x%x) exceeds "
  1357. "max (0x%x) allowed\n", sge_count,
  1358. instance->max_num_sge);
  1359. return 1;
  1360. }
  1361. io_request->RaidContext.numSGE = sge_count;
  1362. io_request->SGLFlags = MPI2_SGE_FLAGS_64_BIT_ADDRESSING;
  1363. if (scp->sc_data_direction == PCI_DMA_TODEVICE)
  1364. io_request->Control |= MPI2_SCSIIO_CONTROL_WRITE;
  1365. else if (scp->sc_data_direction == PCI_DMA_FROMDEVICE)
  1366. io_request->Control |= MPI2_SCSIIO_CONTROL_READ;
  1367. io_request->SGLOffset0 =
  1368. offsetof(struct MPI2_RAID_SCSI_IO_REQUEST, SGL) / 4;
  1369. io_request->SenseBufferLowAddress = cmd->sense_phys_addr;
  1370. io_request->SenseBufferLength = SCSI_SENSE_BUFFERSIZE;
  1371. cmd->scmd = scp;
  1372. scp->SCp.ptr = (char *)cmd;
  1373. return 0;
  1374. }
  1375. union MEGASAS_REQUEST_DESCRIPTOR_UNION *
  1376. megasas_get_request_descriptor(struct megasas_instance *instance, u16 index)
  1377. {
  1378. u8 *p;
  1379. struct fusion_context *fusion;
  1380. if (index >= instance->max_fw_cmds) {
  1381. printk(KERN_ERR "megasas: Invalid SMID (0x%x)request for "
  1382. "descriptor\n", index);
  1383. return NULL;
  1384. }
  1385. fusion = instance->ctrl_context;
  1386. p = fusion->req_frames_desc
  1387. +sizeof(union MEGASAS_REQUEST_DESCRIPTOR_UNION) *index;
  1388. return (union MEGASAS_REQUEST_DESCRIPTOR_UNION *)p;
  1389. }
  1390. /**
  1391. * megasas_build_and_issue_cmd_fusion -Main routine for building and
  1392. * issuing non IOCTL cmd
  1393. * @instance: Adapter soft state
  1394. * @scmd: pointer to scsi cmd from OS
  1395. */
  1396. static u32
  1397. megasas_build_and_issue_cmd_fusion(struct megasas_instance *instance,
  1398. struct scsi_cmnd *scmd)
  1399. {
  1400. struct megasas_cmd_fusion *cmd;
  1401. union MEGASAS_REQUEST_DESCRIPTOR_UNION *req_desc;
  1402. u32 index;
  1403. struct fusion_context *fusion;
  1404. fusion = instance->ctrl_context;
  1405. cmd = megasas_get_cmd_fusion(instance);
  1406. if (!cmd)
  1407. return SCSI_MLQUEUE_HOST_BUSY;
  1408. index = cmd->index;
  1409. req_desc = megasas_get_request_descriptor(instance, index-1);
  1410. if (!req_desc)
  1411. return 1;
  1412. req_desc->Words = 0;
  1413. cmd->request_desc = req_desc;
  1414. if (megasas_build_io_fusion(instance, scmd, cmd)) {
  1415. megasas_return_cmd_fusion(instance, cmd);
  1416. printk(KERN_ERR "megasas: Error building command.\n");
  1417. cmd->request_desc = NULL;
  1418. return 1;
  1419. }
  1420. req_desc = cmd->request_desc;
  1421. req_desc->SCSIIO.SMID = index;
  1422. if (cmd->io_request->ChainOffset != 0 &&
  1423. cmd->io_request->ChainOffset != 0xF)
  1424. printk(KERN_ERR "megasas: The chain offset value is not "
  1425. "correct : %x\n", cmd->io_request->ChainOffset);
  1426. /*
  1427. * Issue the command to the FW
  1428. */
  1429. atomic_inc(&instance->fw_outstanding);
  1430. instance->instancet->fire_cmd(instance,
  1431. req_desc->u.low, req_desc->u.high,
  1432. instance->reg_set);
  1433. return 0;
  1434. }
  1435. /**
  1436. * complete_cmd_fusion - Completes command
  1437. * @instance: Adapter soft state
  1438. * Completes all commands that is in reply descriptor queue
  1439. */
  1440. int
  1441. complete_cmd_fusion(struct megasas_instance *instance, u32 MSIxIndex)
  1442. {
  1443. union MPI2_REPLY_DESCRIPTORS_UNION *desc;
  1444. struct MPI2_SCSI_IO_SUCCESS_REPLY_DESCRIPTOR *reply_desc;
  1445. struct MPI2_RAID_SCSI_IO_REQUEST *scsi_io_req;
  1446. struct fusion_context *fusion;
  1447. struct megasas_cmd *cmd_mfi;
  1448. struct megasas_cmd_fusion *cmd_fusion;
  1449. u16 smid, num_completed;
  1450. u8 reply_descript_type, arm;
  1451. u32 status, extStatus, device_id;
  1452. union desc_value d_val;
  1453. struct LD_LOAD_BALANCE_INFO *lbinfo;
  1454. fusion = instance->ctrl_context;
  1455. if (instance->adprecovery == MEGASAS_HW_CRITICAL_ERROR)
  1456. return IRQ_HANDLED;
  1457. desc = fusion->reply_frames_desc;
  1458. desc += ((MSIxIndex * fusion->reply_alloc_sz)/
  1459. sizeof(union MPI2_REPLY_DESCRIPTORS_UNION)) +
  1460. fusion->last_reply_idx[MSIxIndex];
  1461. reply_desc = (struct MPI2_SCSI_IO_SUCCESS_REPLY_DESCRIPTOR *)desc;
  1462. d_val.word = desc->Words;
  1463. reply_descript_type = reply_desc->ReplyFlags &
  1464. MPI2_RPY_DESCRIPT_FLAGS_TYPE_MASK;
  1465. if (reply_descript_type == MPI2_RPY_DESCRIPT_FLAGS_UNUSED)
  1466. return IRQ_NONE;
  1467. d_val.word = desc->Words;
  1468. num_completed = 0;
  1469. while ((d_val.u.low != UINT_MAX) && (d_val.u.high != UINT_MAX)) {
  1470. smid = reply_desc->SMID;
  1471. cmd_fusion = fusion->cmd_list[smid - 1];
  1472. scsi_io_req =
  1473. (struct MPI2_RAID_SCSI_IO_REQUEST *)
  1474. cmd_fusion->io_request;
  1475. if (cmd_fusion->scmd)
  1476. cmd_fusion->scmd->SCp.ptr = NULL;
  1477. status = scsi_io_req->RaidContext.status;
  1478. extStatus = scsi_io_req->RaidContext.exStatus;
  1479. switch (scsi_io_req->Function) {
  1480. case MPI2_FUNCTION_SCSI_IO_REQUEST: /*Fast Path IO.*/
  1481. /* Update load balancing info */
  1482. device_id = MEGASAS_DEV_INDEX(instance,
  1483. cmd_fusion->scmd);
  1484. lbinfo = &fusion->load_balance_info[device_id];
  1485. if (cmd_fusion->scmd->SCp.Status &
  1486. MEGASAS_LOAD_BALANCE_FLAG) {
  1487. arm = lbinfo->raid1DevHandle[0] ==
  1488. cmd_fusion->io_request->DevHandle ? 0 :
  1489. 1;
  1490. atomic_dec(&lbinfo->scsi_pending_cmds[arm]);
  1491. cmd_fusion->scmd->SCp.Status &=
  1492. ~MEGASAS_LOAD_BALANCE_FLAG;
  1493. }
  1494. if (reply_descript_type ==
  1495. MPI2_RPY_DESCRIPT_FLAGS_SCSI_IO_SUCCESS) {
  1496. if (megasas_dbg_lvl == 5)
  1497. printk(KERN_ERR "\nmegasas: FAST Path "
  1498. "IO Success\n");
  1499. }
  1500. /* Fall thru and complete IO */
  1501. case MEGASAS_MPI2_FUNCTION_LD_IO_REQUEST: /* LD-IO Path */
  1502. /* Map the FW Cmd Status */
  1503. map_cmd_status(cmd_fusion, status, extStatus);
  1504. scsi_dma_unmap(cmd_fusion->scmd);
  1505. cmd_fusion->scmd->scsi_done(cmd_fusion->scmd);
  1506. scsi_io_req->RaidContext.status = 0;
  1507. scsi_io_req->RaidContext.exStatus = 0;
  1508. megasas_return_cmd_fusion(instance, cmd_fusion);
  1509. atomic_dec(&instance->fw_outstanding);
  1510. break;
  1511. case MEGASAS_MPI2_FUNCTION_PASSTHRU_IO_REQUEST: /*MFI command */
  1512. cmd_mfi = instance->cmd_list[cmd_fusion->sync_cmd_idx];
  1513. megasas_complete_cmd(instance, cmd_mfi, DID_OK);
  1514. cmd_fusion->flags = 0;
  1515. megasas_return_cmd_fusion(instance, cmd_fusion);
  1516. break;
  1517. }
  1518. fusion->last_reply_idx[MSIxIndex]++;
  1519. if (fusion->last_reply_idx[MSIxIndex] >=
  1520. fusion->reply_q_depth)
  1521. fusion->last_reply_idx[MSIxIndex] = 0;
  1522. desc->Words = ULLONG_MAX;
  1523. num_completed++;
  1524. /* Get the next reply descriptor */
  1525. if (!fusion->last_reply_idx[MSIxIndex])
  1526. desc = fusion->reply_frames_desc +
  1527. ((MSIxIndex * fusion->reply_alloc_sz)/
  1528. sizeof(union MPI2_REPLY_DESCRIPTORS_UNION));
  1529. else
  1530. desc++;
  1531. reply_desc =
  1532. (struct MPI2_SCSI_IO_SUCCESS_REPLY_DESCRIPTOR *)desc;
  1533. d_val.word = desc->Words;
  1534. reply_descript_type = reply_desc->ReplyFlags &
  1535. MPI2_RPY_DESCRIPT_FLAGS_TYPE_MASK;
  1536. if (reply_descript_type == MPI2_RPY_DESCRIPT_FLAGS_UNUSED)
  1537. break;
  1538. }
  1539. if (!num_completed)
  1540. return IRQ_NONE;
  1541. wmb();
  1542. writel((MSIxIndex << 24) | fusion->last_reply_idx[MSIxIndex],
  1543. &instance->reg_set->reply_post_host_index);
  1544. megasas_check_and_restore_queue_depth(instance);
  1545. return IRQ_HANDLED;
  1546. }
  1547. /**
  1548. * megasas_complete_cmd_dpc_fusion - Completes command
  1549. * @instance: Adapter soft state
  1550. *
  1551. * Tasklet to complete cmds
  1552. */
  1553. void
  1554. megasas_complete_cmd_dpc_fusion(unsigned long instance_addr)
  1555. {
  1556. struct megasas_instance *instance =
  1557. (struct megasas_instance *)instance_addr;
  1558. unsigned long flags;
  1559. u32 count, MSIxIndex;
  1560. count = instance->msix_vectors > 0 ? instance->msix_vectors : 1;
  1561. /* If we have already declared adapter dead, donot complete cmds */
  1562. spin_lock_irqsave(&instance->hba_lock, flags);
  1563. if (instance->adprecovery == MEGASAS_HW_CRITICAL_ERROR) {
  1564. spin_unlock_irqrestore(&instance->hba_lock, flags);
  1565. return;
  1566. }
  1567. spin_unlock_irqrestore(&instance->hba_lock, flags);
  1568. spin_lock_irqsave(&instance->completion_lock, flags);
  1569. for (MSIxIndex = 0 ; MSIxIndex < count; MSIxIndex++)
  1570. complete_cmd_fusion(instance, MSIxIndex);
  1571. spin_unlock_irqrestore(&instance->completion_lock, flags);
  1572. }
  1573. /**
  1574. * megasas_isr_fusion - isr entry point
  1575. */
  1576. irqreturn_t megasas_isr_fusion(int irq, void *devp)
  1577. {
  1578. struct megasas_irq_context *irq_context = devp;
  1579. struct megasas_instance *instance = irq_context->instance;
  1580. u32 mfiStatus, fw_state;
  1581. if (!instance->msix_vectors) {
  1582. mfiStatus = instance->instancet->clear_intr(instance->reg_set);
  1583. if (!mfiStatus)
  1584. return IRQ_NONE;
  1585. }
  1586. /* If we are resetting, bail */
  1587. if (test_bit(MEGASAS_FUSION_IN_RESET, &instance->reset_flags)) {
  1588. instance->instancet->clear_intr(instance->reg_set);
  1589. return IRQ_HANDLED;
  1590. }
  1591. if (!complete_cmd_fusion(instance, irq_context->MSIxIndex)) {
  1592. instance->instancet->clear_intr(instance->reg_set);
  1593. /* If we didn't complete any commands, check for FW fault */
  1594. fw_state = instance->instancet->read_fw_status_reg(
  1595. instance->reg_set) & MFI_STATE_MASK;
  1596. if (fw_state == MFI_STATE_FAULT)
  1597. schedule_work(&instance->work_init);
  1598. }
  1599. return IRQ_HANDLED;
  1600. }
  1601. /**
  1602. * build_mpt_mfi_pass_thru - builds a cmd fo MFI Pass thru
  1603. * @instance: Adapter soft state
  1604. * mfi_cmd: megasas_cmd pointer
  1605. *
  1606. */
  1607. u8
  1608. build_mpt_mfi_pass_thru(struct megasas_instance *instance,
  1609. struct megasas_cmd *mfi_cmd)
  1610. {
  1611. struct MPI25_IEEE_SGE_CHAIN64 *mpi25_ieee_chain;
  1612. struct MPI2_RAID_SCSI_IO_REQUEST *io_req;
  1613. struct megasas_cmd_fusion *cmd;
  1614. struct fusion_context *fusion;
  1615. struct megasas_header *frame_hdr = &mfi_cmd->frame->hdr;
  1616. cmd = megasas_get_cmd_fusion(instance);
  1617. if (!cmd)
  1618. return 1;
  1619. /* Save the smid. To be used for returning the cmd */
  1620. mfi_cmd->context.smid = cmd->index;
  1621. cmd->sync_cmd_idx = mfi_cmd->index;
  1622. /*
  1623. * For cmds where the flag is set, store the flag and check
  1624. * on completion. For cmds with this flag, don't call
  1625. * megasas_complete_cmd
  1626. */
  1627. if (frame_hdr->flags & MFI_FRAME_DONT_POST_IN_REPLY_QUEUE)
  1628. cmd->flags = MFI_FRAME_DONT_POST_IN_REPLY_QUEUE;
  1629. fusion = instance->ctrl_context;
  1630. io_req = cmd->io_request;
  1631. if (instance->pdev->device == PCI_DEVICE_ID_LSI_INVADER) {
  1632. struct MPI25_IEEE_SGE_CHAIN64 *sgl_ptr_end =
  1633. (struct MPI25_IEEE_SGE_CHAIN64 *)&io_req->SGL;
  1634. sgl_ptr_end += fusion->max_sge_in_main_msg - 1;
  1635. sgl_ptr_end->Flags = 0;
  1636. }
  1637. mpi25_ieee_chain =
  1638. (struct MPI25_IEEE_SGE_CHAIN64 *)&io_req->SGL.IeeeChain;
  1639. io_req->Function = MEGASAS_MPI2_FUNCTION_PASSTHRU_IO_REQUEST;
  1640. io_req->SGLOffset0 = offsetof(struct MPI2_RAID_SCSI_IO_REQUEST,
  1641. SGL) / 4;
  1642. io_req->ChainOffset = fusion->chain_offset_mfi_pthru;
  1643. mpi25_ieee_chain->Address = mfi_cmd->frame_phys_addr;
  1644. mpi25_ieee_chain->Flags = IEEE_SGE_FLAGS_CHAIN_ELEMENT |
  1645. MPI2_IEEE_SGE_FLAGS_IOCPLBNTA_ADDR;
  1646. mpi25_ieee_chain->Length = MEGASAS_MAX_SZ_CHAIN_FRAME;
  1647. return 0;
  1648. }
  1649. /**
  1650. * build_mpt_cmd - Calls helper function to build a cmd MFI Pass thru cmd
  1651. * @instance: Adapter soft state
  1652. * @cmd: mfi cmd to build
  1653. *
  1654. */
  1655. union MEGASAS_REQUEST_DESCRIPTOR_UNION *
  1656. build_mpt_cmd(struct megasas_instance *instance, struct megasas_cmd *cmd)
  1657. {
  1658. union MEGASAS_REQUEST_DESCRIPTOR_UNION *req_desc;
  1659. u16 index;
  1660. if (build_mpt_mfi_pass_thru(instance, cmd)) {
  1661. printk(KERN_ERR "Couldn't build MFI pass thru cmd\n");
  1662. return NULL;
  1663. }
  1664. index = cmd->context.smid;
  1665. req_desc = megasas_get_request_descriptor(instance, index - 1);
  1666. if (!req_desc)
  1667. return NULL;
  1668. req_desc->Words = 0;
  1669. req_desc->SCSIIO.RequestFlags = (MPI2_REQ_DESCRIPT_FLAGS_SCSI_IO <<
  1670. MEGASAS_REQ_DESCRIPT_FLAGS_TYPE_SHIFT);
  1671. req_desc->SCSIIO.SMID = index;
  1672. return req_desc;
  1673. }
  1674. /**
  1675. * megasas_issue_dcmd_fusion - Issues a MFI Pass thru cmd
  1676. * @instance: Adapter soft state
  1677. * @cmd: mfi cmd pointer
  1678. *
  1679. */
  1680. void
  1681. megasas_issue_dcmd_fusion(struct megasas_instance *instance,
  1682. struct megasas_cmd *cmd)
  1683. {
  1684. union MEGASAS_REQUEST_DESCRIPTOR_UNION *req_desc;
  1685. req_desc = build_mpt_cmd(instance, cmd);
  1686. if (!req_desc) {
  1687. printk(KERN_ERR "Couldn't issue MFI pass thru cmd\n");
  1688. return;
  1689. }
  1690. instance->instancet->fire_cmd(instance, req_desc->u.low,
  1691. req_desc->u.high, instance->reg_set);
  1692. }
  1693. /**
  1694. * megasas_release_fusion - Reverses the FW initialization
  1695. * @intance: Adapter soft state
  1696. */
  1697. void
  1698. megasas_release_fusion(struct megasas_instance *instance)
  1699. {
  1700. megasas_free_cmds(instance);
  1701. megasas_free_cmds_fusion(instance);
  1702. iounmap(instance->reg_set);
  1703. pci_release_selected_regions(instance->pdev, instance->bar);
  1704. }
  1705. /**
  1706. * megasas_read_fw_status_reg_fusion - returns the current FW status value
  1707. * @regs: MFI register set
  1708. */
  1709. static u32
  1710. megasas_read_fw_status_reg_fusion(struct megasas_register_set __iomem *regs)
  1711. {
  1712. return readl(&(regs)->outbound_scratch_pad);
  1713. }
  1714. /**
  1715. * megasas_adp_reset_fusion - For controller reset
  1716. * @regs: MFI register set
  1717. */
  1718. static int
  1719. megasas_adp_reset_fusion(struct megasas_instance *instance,
  1720. struct megasas_register_set __iomem *regs)
  1721. {
  1722. return 0;
  1723. }
  1724. /**
  1725. * megasas_check_reset_fusion - For controller reset check
  1726. * @regs: MFI register set
  1727. */
  1728. static int
  1729. megasas_check_reset_fusion(struct megasas_instance *instance,
  1730. struct megasas_register_set __iomem *regs)
  1731. {
  1732. return 0;
  1733. }
  1734. /* This function waits for outstanding commands on fusion to complete */
  1735. int megasas_wait_for_outstanding_fusion(struct megasas_instance *instance)
  1736. {
  1737. int i, outstanding, retval = 0;
  1738. u32 fw_state, wait_time = MEGASAS_RESET_WAIT_TIME;
  1739. for (i = 0; i < wait_time; i++) {
  1740. /* Check if firmware is in fault state */
  1741. fw_state = instance->instancet->read_fw_status_reg(
  1742. instance->reg_set) & MFI_STATE_MASK;
  1743. if (fw_state == MFI_STATE_FAULT) {
  1744. printk(KERN_WARNING "megasas: Found FW in FAULT state,"
  1745. " will reset adapter.\n");
  1746. retval = 1;
  1747. goto out;
  1748. }
  1749. outstanding = atomic_read(&instance->fw_outstanding);
  1750. if (!outstanding)
  1751. goto out;
  1752. if (!(i % MEGASAS_RESET_NOTICE_INTERVAL)) {
  1753. printk(KERN_NOTICE "megasas: [%2d]waiting for %d "
  1754. "commands to complete\n", i, outstanding);
  1755. megasas_complete_cmd_dpc_fusion(
  1756. (unsigned long)instance);
  1757. }
  1758. msleep(1000);
  1759. }
  1760. if (atomic_read(&instance->fw_outstanding)) {
  1761. printk("megaraid_sas: pending commands remain after waiting, "
  1762. "will reset adapter.\n");
  1763. retval = 1;
  1764. }
  1765. out:
  1766. return retval;
  1767. }
  1768. void megasas_reset_reply_desc(struct megasas_instance *instance)
  1769. {
  1770. int i, count;
  1771. struct fusion_context *fusion;
  1772. union MPI2_REPLY_DESCRIPTORS_UNION *reply_desc;
  1773. fusion = instance->ctrl_context;
  1774. count = instance->msix_vectors > 0 ? instance->msix_vectors : 1;
  1775. for (i = 0 ; i < count ; i++)
  1776. fusion->last_reply_idx[i] = 0;
  1777. reply_desc = fusion->reply_frames_desc;
  1778. for (i = 0 ; i < fusion->reply_q_depth * count; i++, reply_desc++)
  1779. reply_desc->Words = ULLONG_MAX;
  1780. }
  1781. /* Core fusion reset function */
  1782. int megasas_reset_fusion(struct Scsi_Host *shost)
  1783. {
  1784. int retval = SUCCESS, i, j, retry = 0;
  1785. struct megasas_instance *instance;
  1786. struct megasas_cmd_fusion *cmd_fusion;
  1787. struct fusion_context *fusion;
  1788. struct megasas_cmd *cmd_mfi;
  1789. union MEGASAS_REQUEST_DESCRIPTOR_UNION *req_desc;
  1790. u32 host_diag, abs_state, status_reg, reset_adapter;
  1791. instance = (struct megasas_instance *)shost->hostdata;
  1792. fusion = instance->ctrl_context;
  1793. if (instance->adprecovery == MEGASAS_HW_CRITICAL_ERROR) {
  1794. printk(KERN_WARNING "megaraid_sas: Hardware critical error, "
  1795. "returning FAILED.\n");
  1796. return FAILED;
  1797. }
  1798. mutex_lock(&instance->reset_mutex);
  1799. set_bit(MEGASAS_FUSION_IN_RESET, &instance->reset_flags);
  1800. instance->adprecovery = MEGASAS_ADPRESET_SM_INFAULT;
  1801. instance->instancet->disable_intr(instance->reg_set);
  1802. msleep(1000);
  1803. /* First try waiting for commands to complete */
  1804. if (megasas_wait_for_outstanding_fusion(instance)) {
  1805. printk(KERN_WARNING "megaraid_sas: resetting fusion "
  1806. "adapter.\n");
  1807. /* Now return commands back to the OS */
  1808. for (i = 0 ; i < instance->max_fw_cmds; i++) {
  1809. cmd_fusion = fusion->cmd_list[i];
  1810. if (cmd_fusion->scmd) {
  1811. scsi_dma_unmap(cmd_fusion->scmd);
  1812. cmd_fusion->scmd->result = (DID_RESET << 16);
  1813. cmd_fusion->scmd->scsi_done(cmd_fusion->scmd);
  1814. megasas_return_cmd_fusion(instance, cmd_fusion);
  1815. atomic_dec(&instance->fw_outstanding);
  1816. }
  1817. }
  1818. status_reg = instance->instancet->read_fw_status_reg(
  1819. instance->reg_set);
  1820. abs_state = status_reg & MFI_STATE_MASK;
  1821. reset_adapter = status_reg & MFI_RESET_ADAPTER;
  1822. if (instance->disableOnlineCtrlReset ||
  1823. (abs_state == MFI_STATE_FAULT && !reset_adapter)) {
  1824. /* Reset not supported, kill adapter */
  1825. printk(KERN_WARNING "megaraid_sas: Reset not supported"
  1826. ", killing adapter.\n");
  1827. megaraid_sas_kill_hba(instance);
  1828. instance->adprecovery = MEGASAS_HW_CRITICAL_ERROR;
  1829. retval = FAILED;
  1830. goto out;
  1831. }
  1832. /* Now try to reset the chip */
  1833. for (i = 0; i < MEGASAS_FUSION_MAX_RESET_TRIES; i++) {
  1834. writel(MPI2_WRSEQ_FLUSH_KEY_VALUE,
  1835. &instance->reg_set->fusion_seq_offset);
  1836. writel(MPI2_WRSEQ_1ST_KEY_VALUE,
  1837. &instance->reg_set->fusion_seq_offset);
  1838. writel(MPI2_WRSEQ_2ND_KEY_VALUE,
  1839. &instance->reg_set->fusion_seq_offset);
  1840. writel(MPI2_WRSEQ_3RD_KEY_VALUE,
  1841. &instance->reg_set->fusion_seq_offset);
  1842. writel(MPI2_WRSEQ_4TH_KEY_VALUE,
  1843. &instance->reg_set->fusion_seq_offset);
  1844. writel(MPI2_WRSEQ_5TH_KEY_VALUE,
  1845. &instance->reg_set->fusion_seq_offset);
  1846. writel(MPI2_WRSEQ_6TH_KEY_VALUE,
  1847. &instance->reg_set->fusion_seq_offset);
  1848. /* Check that the diag write enable (DRWE) bit is on */
  1849. host_diag = readl(&instance->reg_set->fusion_host_diag);
  1850. retry = 0;
  1851. while (!(host_diag & HOST_DIAG_WRITE_ENABLE)) {
  1852. msleep(100);
  1853. host_diag =
  1854. readl(&instance->reg_set->fusion_host_diag);
  1855. if (retry++ == 100) {
  1856. printk(KERN_WARNING "megaraid_sas: "
  1857. "Host diag unlock failed!\n");
  1858. break;
  1859. }
  1860. }
  1861. if (!(host_diag & HOST_DIAG_WRITE_ENABLE))
  1862. continue;
  1863. /* Send chip reset command */
  1864. writel(host_diag | HOST_DIAG_RESET_ADAPTER,
  1865. &instance->reg_set->fusion_host_diag);
  1866. msleep(3000);
  1867. /* Make sure reset adapter bit is cleared */
  1868. host_diag = readl(&instance->reg_set->fusion_host_diag);
  1869. retry = 0;
  1870. while (host_diag & HOST_DIAG_RESET_ADAPTER) {
  1871. msleep(100);
  1872. host_diag =
  1873. readl(&instance->reg_set->fusion_host_diag);
  1874. if (retry++ == 1000) {
  1875. printk(KERN_WARNING "megaraid_sas: "
  1876. "Diag reset adapter never "
  1877. "cleared!\n");
  1878. break;
  1879. }
  1880. }
  1881. if (host_diag & HOST_DIAG_RESET_ADAPTER)
  1882. continue;
  1883. abs_state =
  1884. instance->instancet->read_fw_status_reg(
  1885. instance->reg_set) & MFI_STATE_MASK;
  1886. retry = 0;
  1887. while ((abs_state <= MFI_STATE_FW_INIT) &&
  1888. (retry++ < 1000)) {
  1889. msleep(100);
  1890. abs_state =
  1891. instance->instancet->read_fw_status_reg(
  1892. instance->reg_set) & MFI_STATE_MASK;
  1893. }
  1894. if (abs_state <= MFI_STATE_FW_INIT) {
  1895. printk(KERN_WARNING "megaraid_sas: firmware "
  1896. "state < MFI_STATE_FW_INIT, state = "
  1897. "0x%x\n", abs_state);
  1898. continue;
  1899. }
  1900. /* Wait for FW to become ready */
  1901. if (megasas_transition_to_ready(instance, 1)) {
  1902. printk(KERN_WARNING "megaraid_sas: Failed to "
  1903. "transition controller to ready.\n");
  1904. continue;
  1905. }
  1906. megasas_reset_reply_desc(instance);
  1907. if (megasas_ioc_init_fusion(instance)) {
  1908. printk(KERN_WARNING "megaraid_sas: "
  1909. "megasas_ioc_init_fusion() failed!\n");
  1910. continue;
  1911. }
  1912. clear_bit(MEGASAS_FUSION_IN_RESET,
  1913. &instance->reset_flags);
  1914. instance->instancet->enable_intr(instance->reg_set);
  1915. instance->adprecovery = MEGASAS_HBA_OPERATIONAL;
  1916. /* Re-fire management commands */
  1917. for (j = 0 ; j < instance->max_fw_cmds; j++) {
  1918. cmd_fusion = fusion->cmd_list[j];
  1919. if (cmd_fusion->sync_cmd_idx !=
  1920. (u32)ULONG_MAX) {
  1921. cmd_mfi =
  1922. instance->
  1923. cmd_list[cmd_fusion->sync_cmd_idx];
  1924. if (cmd_mfi->frame->dcmd.opcode ==
  1925. MR_DCMD_LD_MAP_GET_INFO) {
  1926. megasas_return_cmd(instance,
  1927. cmd_mfi);
  1928. megasas_return_cmd_fusion(
  1929. instance, cmd_fusion);
  1930. } else {
  1931. req_desc =
  1932. megasas_get_request_descriptor(
  1933. instance,
  1934. cmd_mfi->context.smid
  1935. -1);
  1936. if (!req_desc)
  1937. printk(KERN_WARNING
  1938. "req_desc NULL"
  1939. "\n");
  1940. else {
  1941. instance->instancet->
  1942. fire_cmd(instance,
  1943. req_desc->
  1944. u.low,
  1945. req_desc->
  1946. u.high,
  1947. instance->
  1948. reg_set);
  1949. }
  1950. }
  1951. }
  1952. }
  1953. /* Reset load balance info */
  1954. memset(fusion->load_balance_info, 0,
  1955. sizeof(struct LD_LOAD_BALANCE_INFO)
  1956. *MAX_LOGICAL_DRIVES);
  1957. if (!megasas_get_map_info(instance))
  1958. megasas_sync_map_info(instance);
  1959. /* Adapter reset completed successfully */
  1960. printk(KERN_WARNING "megaraid_sas: Reset "
  1961. "successful.\n");
  1962. retval = SUCCESS;
  1963. goto out;
  1964. }
  1965. /* Reset failed, kill the adapter */
  1966. printk(KERN_WARNING "megaraid_sas: Reset failed, killing "
  1967. "adapter.\n");
  1968. megaraid_sas_kill_hba(instance);
  1969. retval = FAILED;
  1970. } else {
  1971. clear_bit(MEGASAS_FUSION_IN_RESET, &instance->reset_flags);
  1972. instance->instancet->enable_intr(instance->reg_set);
  1973. instance->adprecovery = MEGASAS_HBA_OPERATIONAL;
  1974. }
  1975. out:
  1976. clear_bit(MEGASAS_FUSION_IN_RESET, &instance->reset_flags);
  1977. mutex_unlock(&instance->reset_mutex);
  1978. return retval;
  1979. }
  1980. /* Fusion OCR work queue */
  1981. void megasas_fusion_ocr_wq(struct work_struct *work)
  1982. {
  1983. struct megasas_instance *instance =
  1984. container_of(work, struct megasas_instance, work_init);
  1985. megasas_reset_fusion(instance->host);
  1986. }
  1987. struct megasas_instance_template megasas_instance_template_fusion = {
  1988. .fire_cmd = megasas_fire_cmd_fusion,
  1989. .enable_intr = megasas_enable_intr_fusion,
  1990. .disable_intr = megasas_disable_intr_fusion,
  1991. .clear_intr = megasas_clear_intr_fusion,
  1992. .read_fw_status_reg = megasas_read_fw_status_reg_fusion,
  1993. .adp_reset = megasas_adp_reset_fusion,
  1994. .check_reset = megasas_check_reset_fusion,
  1995. .service_isr = megasas_isr_fusion,
  1996. .tasklet = megasas_complete_cmd_dpc_fusion,
  1997. .init_adapter = megasas_init_adapter_fusion,
  1998. .build_and_issue_cmd = megasas_build_and_issue_cmd_fusion,
  1999. .issue_dcmd = megasas_issue_dcmd_fusion,
  2000. };