qla_iocb.c 53 KB

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  1. /*
  2. * QLogic Fibre Channel HBA Driver
  3. * Copyright (c) 2003-2008 QLogic Corporation
  4. *
  5. * See LICENSE.qla2xxx for copyright and licensing details.
  6. */
  7. #include "qla_def.h"
  8. #include <linux/blkdev.h>
  9. #include <linux/delay.h>
  10. #include <scsi/scsi_tcq.h>
  11. static request_t *qla2x00_req_pkt(struct scsi_qla_host *, struct req_que *,
  12. struct rsp_que *rsp);
  13. static void qla2x00_isp_cmd(struct scsi_qla_host *, struct req_que *);
  14. static void qla25xx_set_que(srb_t *, struct rsp_que **);
  15. /**
  16. * qla2x00_get_cmd_direction() - Determine control_flag data direction.
  17. * @cmd: SCSI command
  18. *
  19. * Returns the proper CF_* direction based on CDB.
  20. */
  21. static inline uint16_t
  22. qla2x00_get_cmd_direction(srb_t *sp)
  23. {
  24. uint16_t cflags;
  25. cflags = 0;
  26. /* Set transfer direction */
  27. if (sp->cmd->sc_data_direction == DMA_TO_DEVICE) {
  28. cflags = CF_WRITE;
  29. sp->fcport->vha->hw->qla_stats.output_bytes +=
  30. scsi_bufflen(sp->cmd);
  31. } else if (sp->cmd->sc_data_direction == DMA_FROM_DEVICE) {
  32. cflags = CF_READ;
  33. sp->fcport->vha->hw->qla_stats.input_bytes +=
  34. scsi_bufflen(sp->cmd);
  35. }
  36. return (cflags);
  37. }
  38. /**
  39. * qla2x00_calc_iocbs_32() - Determine number of Command Type 2 and
  40. * Continuation Type 0 IOCBs to allocate.
  41. *
  42. * @dsds: number of data segment decriptors needed
  43. *
  44. * Returns the number of IOCB entries needed to store @dsds.
  45. */
  46. uint16_t
  47. qla2x00_calc_iocbs_32(uint16_t dsds)
  48. {
  49. uint16_t iocbs;
  50. iocbs = 1;
  51. if (dsds > 3) {
  52. iocbs += (dsds - 3) / 7;
  53. if ((dsds - 3) % 7)
  54. iocbs++;
  55. }
  56. return (iocbs);
  57. }
  58. /**
  59. * qla2x00_calc_iocbs_64() - Determine number of Command Type 3 and
  60. * Continuation Type 1 IOCBs to allocate.
  61. *
  62. * @dsds: number of data segment decriptors needed
  63. *
  64. * Returns the number of IOCB entries needed to store @dsds.
  65. */
  66. uint16_t
  67. qla2x00_calc_iocbs_64(uint16_t dsds)
  68. {
  69. uint16_t iocbs;
  70. iocbs = 1;
  71. if (dsds > 2) {
  72. iocbs += (dsds - 2) / 5;
  73. if ((dsds - 2) % 5)
  74. iocbs++;
  75. }
  76. return (iocbs);
  77. }
  78. /**
  79. * qla2x00_prep_cont_type0_iocb() - Initialize a Continuation Type 0 IOCB.
  80. * @ha: HA context
  81. *
  82. * Returns a pointer to the Continuation Type 0 IOCB packet.
  83. */
  84. static inline cont_entry_t *
  85. qla2x00_prep_cont_type0_iocb(struct scsi_qla_host *vha)
  86. {
  87. cont_entry_t *cont_pkt;
  88. struct req_que *req = vha->req;
  89. /* Adjust ring index. */
  90. req->ring_index++;
  91. if (req->ring_index == req->length) {
  92. req->ring_index = 0;
  93. req->ring_ptr = req->ring;
  94. } else {
  95. req->ring_ptr++;
  96. }
  97. cont_pkt = (cont_entry_t *)req->ring_ptr;
  98. /* Load packet defaults. */
  99. *((uint32_t *)(&cont_pkt->entry_type)) =
  100. __constant_cpu_to_le32(CONTINUE_TYPE);
  101. return (cont_pkt);
  102. }
  103. /**
  104. * qla2x00_prep_cont_type1_iocb() - Initialize a Continuation Type 1 IOCB.
  105. * @ha: HA context
  106. *
  107. * Returns a pointer to the continuation type 1 IOCB packet.
  108. */
  109. static inline cont_a64_entry_t *
  110. qla2x00_prep_cont_type1_iocb(scsi_qla_host_t *vha)
  111. {
  112. cont_a64_entry_t *cont_pkt;
  113. struct req_que *req = vha->req;
  114. /* Adjust ring index. */
  115. req->ring_index++;
  116. if (req->ring_index == req->length) {
  117. req->ring_index = 0;
  118. req->ring_ptr = req->ring;
  119. } else {
  120. req->ring_ptr++;
  121. }
  122. cont_pkt = (cont_a64_entry_t *)req->ring_ptr;
  123. /* Load packet defaults. */
  124. *((uint32_t *)(&cont_pkt->entry_type)) =
  125. __constant_cpu_to_le32(CONTINUE_A64_TYPE);
  126. return (cont_pkt);
  127. }
  128. static inline int
  129. qla24xx_configure_prot_mode(srb_t *sp, uint16_t *fw_prot_opts)
  130. {
  131. uint8_t guard = scsi_host_get_guard(sp->cmd->device->host);
  132. /* We only support T10 DIF right now */
  133. if (guard != SHOST_DIX_GUARD_CRC) {
  134. DEBUG2(printk(KERN_ERR "Unsupported guard: %d\n", guard));
  135. return 0;
  136. }
  137. /* We always use DIFF Bundling for best performance */
  138. *fw_prot_opts = 0;
  139. /* Translate SCSI opcode to a protection opcode */
  140. switch (scsi_get_prot_op(sp->cmd)) {
  141. case SCSI_PROT_READ_STRIP:
  142. *fw_prot_opts |= PO_MODE_DIF_REMOVE;
  143. break;
  144. case SCSI_PROT_WRITE_INSERT:
  145. *fw_prot_opts |= PO_MODE_DIF_INSERT;
  146. break;
  147. case SCSI_PROT_READ_INSERT:
  148. *fw_prot_opts |= PO_MODE_DIF_INSERT;
  149. break;
  150. case SCSI_PROT_WRITE_STRIP:
  151. *fw_prot_opts |= PO_MODE_DIF_REMOVE;
  152. break;
  153. case SCSI_PROT_READ_PASS:
  154. *fw_prot_opts |= PO_MODE_DIF_PASS;
  155. break;
  156. case SCSI_PROT_WRITE_PASS:
  157. *fw_prot_opts |= PO_MODE_DIF_PASS;
  158. break;
  159. default: /* Normal Request */
  160. *fw_prot_opts |= PO_MODE_DIF_PASS;
  161. break;
  162. }
  163. return scsi_prot_sg_count(sp->cmd);
  164. }
  165. /*
  166. * qla2x00_build_scsi_iocbs_32() - Build IOCB command utilizing 32bit
  167. * capable IOCB types.
  168. *
  169. * @sp: SRB command to process
  170. * @cmd_pkt: Command type 2 IOCB
  171. * @tot_dsds: Total number of segments to transfer
  172. */
  173. void qla2x00_build_scsi_iocbs_32(srb_t *sp, cmd_entry_t *cmd_pkt,
  174. uint16_t tot_dsds)
  175. {
  176. uint16_t avail_dsds;
  177. uint32_t *cur_dsd;
  178. scsi_qla_host_t *vha;
  179. struct scsi_cmnd *cmd;
  180. struct scatterlist *sg;
  181. int i;
  182. cmd = sp->cmd;
  183. /* Update entry type to indicate Command Type 2 IOCB */
  184. *((uint32_t *)(&cmd_pkt->entry_type)) =
  185. __constant_cpu_to_le32(COMMAND_TYPE);
  186. /* No data transfer */
  187. if (!scsi_bufflen(cmd) || cmd->sc_data_direction == DMA_NONE) {
  188. cmd_pkt->byte_count = __constant_cpu_to_le32(0);
  189. return;
  190. }
  191. vha = sp->fcport->vha;
  192. cmd_pkt->control_flags |= cpu_to_le16(qla2x00_get_cmd_direction(sp));
  193. /* Three DSDs are available in the Command Type 2 IOCB */
  194. avail_dsds = 3;
  195. cur_dsd = (uint32_t *)&cmd_pkt->dseg_0_address;
  196. /* Load data segments */
  197. scsi_for_each_sg(cmd, sg, tot_dsds, i) {
  198. cont_entry_t *cont_pkt;
  199. /* Allocate additional continuation packets? */
  200. if (avail_dsds == 0) {
  201. /*
  202. * Seven DSDs are available in the Continuation
  203. * Type 0 IOCB.
  204. */
  205. cont_pkt = qla2x00_prep_cont_type0_iocb(vha);
  206. cur_dsd = (uint32_t *)&cont_pkt->dseg_0_address;
  207. avail_dsds = 7;
  208. }
  209. *cur_dsd++ = cpu_to_le32(sg_dma_address(sg));
  210. *cur_dsd++ = cpu_to_le32(sg_dma_len(sg));
  211. avail_dsds--;
  212. }
  213. }
  214. /**
  215. * qla2x00_build_scsi_iocbs_64() - Build IOCB command utilizing 64bit
  216. * capable IOCB types.
  217. *
  218. * @sp: SRB command to process
  219. * @cmd_pkt: Command type 3 IOCB
  220. * @tot_dsds: Total number of segments to transfer
  221. */
  222. void qla2x00_build_scsi_iocbs_64(srb_t *sp, cmd_entry_t *cmd_pkt,
  223. uint16_t tot_dsds)
  224. {
  225. uint16_t avail_dsds;
  226. uint32_t *cur_dsd;
  227. scsi_qla_host_t *vha;
  228. struct scsi_cmnd *cmd;
  229. struct scatterlist *sg;
  230. int i;
  231. cmd = sp->cmd;
  232. /* Update entry type to indicate Command Type 3 IOCB */
  233. *((uint32_t *)(&cmd_pkt->entry_type)) =
  234. __constant_cpu_to_le32(COMMAND_A64_TYPE);
  235. /* No data transfer */
  236. if (!scsi_bufflen(cmd) || cmd->sc_data_direction == DMA_NONE) {
  237. cmd_pkt->byte_count = __constant_cpu_to_le32(0);
  238. return;
  239. }
  240. vha = sp->fcport->vha;
  241. cmd_pkt->control_flags |= cpu_to_le16(qla2x00_get_cmd_direction(sp));
  242. /* Two DSDs are available in the Command Type 3 IOCB */
  243. avail_dsds = 2;
  244. cur_dsd = (uint32_t *)&cmd_pkt->dseg_0_address;
  245. /* Load data segments */
  246. scsi_for_each_sg(cmd, sg, tot_dsds, i) {
  247. dma_addr_t sle_dma;
  248. cont_a64_entry_t *cont_pkt;
  249. /* Allocate additional continuation packets? */
  250. if (avail_dsds == 0) {
  251. /*
  252. * Five DSDs are available in the Continuation
  253. * Type 1 IOCB.
  254. */
  255. cont_pkt = qla2x00_prep_cont_type1_iocb(vha);
  256. cur_dsd = (uint32_t *)cont_pkt->dseg_0_address;
  257. avail_dsds = 5;
  258. }
  259. sle_dma = sg_dma_address(sg);
  260. *cur_dsd++ = cpu_to_le32(LSD(sle_dma));
  261. *cur_dsd++ = cpu_to_le32(MSD(sle_dma));
  262. *cur_dsd++ = cpu_to_le32(sg_dma_len(sg));
  263. avail_dsds--;
  264. }
  265. }
  266. /**
  267. * qla2x00_start_scsi() - Send a SCSI command to the ISP
  268. * @sp: command to send to the ISP
  269. *
  270. * Returns non-zero if a failure occurred, else zero.
  271. */
  272. int
  273. qla2x00_start_scsi(srb_t *sp)
  274. {
  275. int ret, nseg;
  276. unsigned long flags;
  277. scsi_qla_host_t *vha;
  278. struct scsi_cmnd *cmd;
  279. uint32_t *clr_ptr;
  280. uint32_t index;
  281. uint32_t handle;
  282. cmd_entry_t *cmd_pkt;
  283. uint16_t cnt;
  284. uint16_t req_cnt;
  285. uint16_t tot_dsds;
  286. struct device_reg_2xxx __iomem *reg;
  287. struct qla_hw_data *ha;
  288. struct req_que *req;
  289. struct rsp_que *rsp;
  290. /* Setup device pointers. */
  291. ret = 0;
  292. vha = sp->fcport->vha;
  293. ha = vha->hw;
  294. reg = &ha->iobase->isp;
  295. cmd = sp->cmd;
  296. req = ha->req_q_map[0];
  297. rsp = ha->rsp_q_map[0];
  298. /* So we know we haven't pci_map'ed anything yet */
  299. tot_dsds = 0;
  300. /* Send marker if required */
  301. if (vha->marker_needed != 0) {
  302. if (qla2x00_marker(vha, req, rsp, 0, 0, MK_SYNC_ALL)
  303. != QLA_SUCCESS)
  304. return (QLA_FUNCTION_FAILED);
  305. vha->marker_needed = 0;
  306. }
  307. /* Acquire ring specific lock */
  308. spin_lock_irqsave(&ha->hardware_lock, flags);
  309. /* Check for room in outstanding command list. */
  310. handle = req->current_outstanding_cmd;
  311. for (index = 1; index < MAX_OUTSTANDING_COMMANDS; index++) {
  312. handle++;
  313. if (handle == MAX_OUTSTANDING_COMMANDS)
  314. handle = 1;
  315. if (!req->outstanding_cmds[handle])
  316. break;
  317. }
  318. if (index == MAX_OUTSTANDING_COMMANDS)
  319. goto queuing_error;
  320. /* Map the sg table so we have an accurate count of sg entries needed */
  321. if (scsi_sg_count(cmd)) {
  322. nseg = dma_map_sg(&ha->pdev->dev, scsi_sglist(cmd),
  323. scsi_sg_count(cmd), cmd->sc_data_direction);
  324. if (unlikely(!nseg))
  325. goto queuing_error;
  326. } else
  327. nseg = 0;
  328. tot_dsds = nseg;
  329. /* Calculate the number of request entries needed. */
  330. req_cnt = ha->isp_ops->calc_req_entries(tot_dsds);
  331. if (req->cnt < (req_cnt + 2)) {
  332. cnt = RD_REG_WORD_RELAXED(ISP_REQ_Q_OUT(ha, reg));
  333. if (req->ring_index < cnt)
  334. req->cnt = cnt - req->ring_index;
  335. else
  336. req->cnt = req->length -
  337. (req->ring_index - cnt);
  338. }
  339. if (req->cnt < (req_cnt + 2))
  340. goto queuing_error;
  341. /* Build command packet */
  342. req->current_outstanding_cmd = handle;
  343. req->outstanding_cmds[handle] = sp;
  344. sp->handle = handle;
  345. sp->cmd->host_scribble = (unsigned char *)(unsigned long)handle;
  346. req->cnt -= req_cnt;
  347. cmd_pkt = (cmd_entry_t *)req->ring_ptr;
  348. cmd_pkt->handle = handle;
  349. /* Zero out remaining portion of packet. */
  350. clr_ptr = (uint32_t *)cmd_pkt + 2;
  351. memset(clr_ptr, 0, REQUEST_ENTRY_SIZE - 8);
  352. cmd_pkt->dseg_count = cpu_to_le16(tot_dsds);
  353. /* Set target ID and LUN number*/
  354. SET_TARGET_ID(ha, cmd_pkt->target, sp->fcport->loop_id);
  355. cmd_pkt->lun = cpu_to_le16(sp->cmd->device->lun);
  356. /* Update tagged queuing modifier */
  357. cmd_pkt->control_flags = __constant_cpu_to_le16(CF_SIMPLE_TAG);
  358. /* Load SCSI command packet. */
  359. memcpy(cmd_pkt->scsi_cdb, cmd->cmnd, cmd->cmd_len);
  360. cmd_pkt->byte_count = cpu_to_le32((uint32_t)scsi_bufflen(cmd));
  361. /* Build IOCB segments */
  362. ha->isp_ops->build_iocbs(sp, cmd_pkt, tot_dsds);
  363. /* Set total data segment count. */
  364. cmd_pkt->entry_count = (uint8_t)req_cnt;
  365. wmb();
  366. /* Adjust ring index. */
  367. req->ring_index++;
  368. if (req->ring_index == req->length) {
  369. req->ring_index = 0;
  370. req->ring_ptr = req->ring;
  371. } else
  372. req->ring_ptr++;
  373. sp->flags |= SRB_DMA_VALID;
  374. /* Set chip new ring index. */
  375. WRT_REG_WORD(ISP_REQ_Q_IN(ha, reg), req->ring_index);
  376. RD_REG_WORD_RELAXED(ISP_REQ_Q_IN(ha, reg)); /* PCI Posting. */
  377. /* Manage unprocessed RIO/ZIO commands in response queue. */
  378. if (vha->flags.process_response_queue &&
  379. rsp->ring_ptr->signature != RESPONSE_PROCESSED)
  380. qla2x00_process_response_queue(rsp);
  381. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  382. return (QLA_SUCCESS);
  383. queuing_error:
  384. if (tot_dsds)
  385. scsi_dma_unmap(cmd);
  386. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  387. return (QLA_FUNCTION_FAILED);
  388. }
  389. /**
  390. * qla2x00_marker() - Send a marker IOCB to the firmware.
  391. * @ha: HA context
  392. * @loop_id: loop ID
  393. * @lun: LUN
  394. * @type: marker modifier
  395. *
  396. * Can be called from both normal and interrupt context.
  397. *
  398. * Returns non-zero if a failure occurred, else zero.
  399. */
  400. int
  401. __qla2x00_marker(struct scsi_qla_host *vha, struct req_que *req,
  402. struct rsp_que *rsp, uint16_t loop_id,
  403. uint16_t lun, uint8_t type)
  404. {
  405. mrk_entry_t *mrk;
  406. struct mrk_entry_24xx *mrk24;
  407. struct qla_hw_data *ha = vha->hw;
  408. scsi_qla_host_t *base_vha = pci_get_drvdata(ha->pdev);
  409. mrk24 = NULL;
  410. mrk = (mrk_entry_t *)qla2x00_req_pkt(vha, req, rsp);
  411. if (mrk == NULL) {
  412. DEBUG2_3(printk("%s(%ld): failed to allocate Marker IOCB.\n",
  413. __func__, base_vha->host_no));
  414. return (QLA_FUNCTION_FAILED);
  415. }
  416. mrk->entry_type = MARKER_TYPE;
  417. mrk->modifier = type;
  418. if (type != MK_SYNC_ALL) {
  419. if (IS_FWI2_CAPABLE(ha)) {
  420. mrk24 = (struct mrk_entry_24xx *) mrk;
  421. mrk24->nport_handle = cpu_to_le16(loop_id);
  422. mrk24->lun[1] = LSB(lun);
  423. mrk24->lun[2] = MSB(lun);
  424. host_to_fcp_swap(mrk24->lun, sizeof(mrk24->lun));
  425. mrk24->vp_index = vha->vp_idx;
  426. mrk24->handle = MAKE_HANDLE(req->id, mrk24->handle);
  427. } else {
  428. SET_TARGET_ID(ha, mrk->target, loop_id);
  429. mrk->lun = cpu_to_le16(lun);
  430. }
  431. }
  432. wmb();
  433. qla2x00_isp_cmd(vha, req);
  434. return (QLA_SUCCESS);
  435. }
  436. int
  437. qla2x00_marker(struct scsi_qla_host *vha, struct req_que *req,
  438. struct rsp_que *rsp, uint16_t loop_id, uint16_t lun,
  439. uint8_t type)
  440. {
  441. int ret;
  442. unsigned long flags = 0;
  443. spin_lock_irqsave(&vha->hw->hardware_lock, flags);
  444. ret = __qla2x00_marker(vha, req, rsp, loop_id, lun, type);
  445. spin_unlock_irqrestore(&vha->hw->hardware_lock, flags);
  446. return (ret);
  447. }
  448. /**
  449. * qla2x00_req_pkt() - Retrieve a request packet from the request ring.
  450. * @ha: HA context
  451. *
  452. * Note: The caller must hold the hardware lock before calling this routine.
  453. *
  454. * Returns NULL if function failed, else, a pointer to the request packet.
  455. */
  456. static request_t *
  457. qla2x00_req_pkt(struct scsi_qla_host *vha, struct req_que *req,
  458. struct rsp_que *rsp)
  459. {
  460. struct qla_hw_data *ha = vha->hw;
  461. device_reg_t __iomem *reg = ISP_QUE_REG(ha, req->id);
  462. request_t *pkt = NULL;
  463. uint16_t cnt;
  464. uint32_t *dword_ptr;
  465. uint32_t timer;
  466. uint16_t req_cnt = 1;
  467. /* Wait 1 second for slot. */
  468. for (timer = HZ; timer; timer--) {
  469. if ((req_cnt + 2) >= req->cnt) {
  470. /* Calculate number of free request entries. */
  471. if (ha->mqenable)
  472. cnt = (uint16_t)
  473. RD_REG_DWORD(&reg->isp25mq.req_q_out);
  474. else {
  475. if (IS_QLA82XX(ha))
  476. cnt = (uint16_t)RD_REG_DWORD(
  477. &reg->isp82.req_q_out);
  478. else if (IS_FWI2_CAPABLE(ha))
  479. cnt = (uint16_t)RD_REG_DWORD(
  480. &reg->isp24.req_q_out);
  481. else
  482. cnt = qla2x00_debounce_register(
  483. ISP_REQ_Q_OUT(ha, &reg->isp));
  484. }
  485. if (req->ring_index < cnt)
  486. req->cnt = cnt - req->ring_index;
  487. else
  488. req->cnt = req->length -
  489. (req->ring_index - cnt);
  490. }
  491. /* If room for request in request ring. */
  492. if ((req_cnt + 2) < req->cnt) {
  493. req->cnt--;
  494. pkt = req->ring_ptr;
  495. /* Zero out packet. */
  496. dword_ptr = (uint32_t *)pkt;
  497. for (cnt = 0; cnt < REQUEST_ENTRY_SIZE / 4; cnt++)
  498. *dword_ptr++ = 0;
  499. /* Set entry count. */
  500. pkt->entry_count = 1;
  501. break;
  502. }
  503. /* Release ring specific lock */
  504. spin_unlock_irq(&ha->hardware_lock);
  505. udelay(2); /* 2 us */
  506. /* Check for pending interrupts. */
  507. /* During init we issue marker directly */
  508. if (!vha->marker_needed && !vha->flags.init_done)
  509. qla2x00_poll(rsp);
  510. spin_lock_irq(&ha->hardware_lock);
  511. }
  512. if (!pkt) {
  513. DEBUG2_3(printk("%s(): **** FAILED ****\n", __func__));
  514. }
  515. return (pkt);
  516. }
  517. /**
  518. * qla2x00_isp_cmd() - Modify the request ring pointer.
  519. * @ha: HA context
  520. *
  521. * Note: The caller must hold the hardware lock before calling this routine.
  522. */
  523. static void
  524. qla2x00_isp_cmd(struct scsi_qla_host *vha, struct req_que *req)
  525. {
  526. struct qla_hw_data *ha = vha->hw;
  527. device_reg_t __iomem *reg = ISP_QUE_REG(ha, req->id);
  528. struct device_reg_2xxx __iomem *ioreg = &ha->iobase->isp;
  529. DEBUG5(printk("%s(): IOCB data:\n", __func__));
  530. DEBUG5(qla2x00_dump_buffer(
  531. (uint8_t *)req->ring_ptr, REQUEST_ENTRY_SIZE));
  532. /* Adjust ring index. */
  533. req->ring_index++;
  534. if (req->ring_index == req->length) {
  535. req->ring_index = 0;
  536. req->ring_ptr = req->ring;
  537. } else
  538. req->ring_ptr++;
  539. /* Set chip new ring index. */
  540. if (IS_QLA82XX(ha)) {
  541. uint32_t dbval = 0x04 | (ha->portnum << 5);
  542. /* write, read and verify logic */
  543. dbval = dbval | (req->id << 8) | (req->ring_index << 16);
  544. if (ql2xdbwr)
  545. qla82xx_wr_32(ha, ha->nxdb_wr_ptr, dbval);
  546. else {
  547. WRT_REG_DWORD(
  548. (unsigned long __iomem *)ha->nxdb_wr_ptr,
  549. dbval);
  550. wmb();
  551. while (RD_REG_DWORD(ha->nxdb_rd_ptr) != dbval) {
  552. WRT_REG_DWORD((unsigned long __iomem *)
  553. ha->nxdb_wr_ptr, dbval);
  554. wmb();
  555. }
  556. }
  557. } else if (ha->mqenable) {
  558. /* Set chip new ring index. */
  559. WRT_REG_DWORD(&reg->isp25mq.req_q_in, req->ring_index);
  560. RD_REG_DWORD(&ioreg->hccr);
  561. } else {
  562. if (IS_FWI2_CAPABLE(ha)) {
  563. WRT_REG_DWORD(&reg->isp24.req_q_in, req->ring_index);
  564. RD_REG_DWORD_RELAXED(&reg->isp24.req_q_in);
  565. } else {
  566. WRT_REG_WORD(ISP_REQ_Q_IN(ha, &reg->isp),
  567. req->ring_index);
  568. RD_REG_WORD_RELAXED(ISP_REQ_Q_IN(ha, &reg->isp));
  569. }
  570. }
  571. }
  572. /**
  573. * qla24xx_calc_iocbs() - Determine number of Command Type 3 and
  574. * Continuation Type 1 IOCBs to allocate.
  575. *
  576. * @dsds: number of data segment decriptors needed
  577. *
  578. * Returns the number of IOCB entries needed to store @dsds.
  579. */
  580. inline uint16_t
  581. qla24xx_calc_iocbs(uint16_t dsds)
  582. {
  583. uint16_t iocbs;
  584. iocbs = 1;
  585. if (dsds > 1) {
  586. iocbs += (dsds - 1) / 5;
  587. if ((dsds - 1) % 5)
  588. iocbs++;
  589. }
  590. DEBUG3(printk(KERN_DEBUG "%s(): Required PKT(s) = %d\n",
  591. __func__, iocbs));
  592. return iocbs;
  593. }
  594. /**
  595. * qla24xx_build_scsi_iocbs() - Build IOCB command utilizing Command Type 7
  596. * IOCB types.
  597. *
  598. * @sp: SRB command to process
  599. * @cmd_pkt: Command type 3 IOCB
  600. * @tot_dsds: Total number of segments to transfer
  601. */
  602. inline void
  603. qla24xx_build_scsi_iocbs(srb_t *sp, struct cmd_type_7 *cmd_pkt,
  604. uint16_t tot_dsds)
  605. {
  606. uint16_t avail_dsds;
  607. uint32_t *cur_dsd;
  608. scsi_qla_host_t *vha;
  609. struct scsi_cmnd *cmd;
  610. struct scatterlist *sg;
  611. int i;
  612. struct req_que *req;
  613. cmd = sp->cmd;
  614. /* Update entry type to indicate Command Type 3 IOCB */
  615. *((uint32_t *)(&cmd_pkt->entry_type)) =
  616. __constant_cpu_to_le32(COMMAND_TYPE_7);
  617. /* No data transfer */
  618. if (!scsi_bufflen(cmd) || cmd->sc_data_direction == DMA_NONE) {
  619. cmd_pkt->byte_count = __constant_cpu_to_le32(0);
  620. return;
  621. }
  622. vha = sp->fcport->vha;
  623. req = vha->req;
  624. /* Set transfer direction */
  625. if (cmd->sc_data_direction == DMA_TO_DEVICE) {
  626. cmd_pkt->task_mgmt_flags =
  627. __constant_cpu_to_le16(TMF_WRITE_DATA);
  628. sp->fcport->vha->hw->qla_stats.output_bytes +=
  629. scsi_bufflen(sp->cmd);
  630. } else if (cmd->sc_data_direction == DMA_FROM_DEVICE) {
  631. cmd_pkt->task_mgmt_flags =
  632. __constant_cpu_to_le16(TMF_READ_DATA);
  633. sp->fcport->vha->hw->qla_stats.input_bytes +=
  634. scsi_bufflen(sp->cmd);
  635. }
  636. /* One DSD is available in the Command Type 3 IOCB */
  637. avail_dsds = 1;
  638. cur_dsd = (uint32_t *)&cmd_pkt->dseg_0_address;
  639. /* Load data segments */
  640. scsi_for_each_sg(cmd, sg, tot_dsds, i) {
  641. dma_addr_t sle_dma;
  642. cont_a64_entry_t *cont_pkt;
  643. /* Allocate additional continuation packets? */
  644. if (avail_dsds == 0) {
  645. /*
  646. * Five DSDs are available in the Continuation
  647. * Type 1 IOCB.
  648. */
  649. cont_pkt = qla2x00_prep_cont_type1_iocb(vha);
  650. cur_dsd = (uint32_t *)cont_pkt->dseg_0_address;
  651. avail_dsds = 5;
  652. }
  653. sle_dma = sg_dma_address(sg);
  654. *cur_dsd++ = cpu_to_le32(LSD(sle_dma));
  655. *cur_dsd++ = cpu_to_le32(MSD(sle_dma));
  656. *cur_dsd++ = cpu_to_le32(sg_dma_len(sg));
  657. avail_dsds--;
  658. }
  659. }
  660. struct fw_dif_context {
  661. uint32_t ref_tag;
  662. uint16_t app_tag;
  663. uint8_t ref_tag_mask[4]; /* Validation/Replacement Mask*/
  664. uint8_t app_tag_mask[2]; /* Validation/Replacement Mask*/
  665. };
  666. /*
  667. * qla24xx_set_t10dif_tags_from_cmd - Extract Ref and App tags from SCSI command
  668. *
  669. */
  670. static inline void
  671. qla24xx_set_t10dif_tags(struct scsi_cmnd *cmd, struct fw_dif_context *pkt,
  672. unsigned int protcnt)
  673. {
  674. struct sd_dif_tuple *spt;
  675. unsigned char op = scsi_get_prot_op(cmd);
  676. switch (scsi_get_prot_type(cmd)) {
  677. /* For TYPE 0 protection: no checking */
  678. case SCSI_PROT_DIF_TYPE0:
  679. pkt->ref_tag_mask[0] = 0x00;
  680. pkt->ref_tag_mask[1] = 0x00;
  681. pkt->ref_tag_mask[2] = 0x00;
  682. pkt->ref_tag_mask[3] = 0x00;
  683. break;
  684. /*
  685. * For TYPE 2 protection: 16 bit GUARD + 32 bit REF tag has to
  686. * match LBA in CDB + N
  687. */
  688. case SCSI_PROT_DIF_TYPE2:
  689. break;
  690. /* For Type 3 protection: 16 bit GUARD only */
  691. case SCSI_PROT_DIF_TYPE3:
  692. pkt->ref_tag_mask[0] = pkt->ref_tag_mask[1] =
  693. pkt->ref_tag_mask[2] = pkt->ref_tag_mask[3] =
  694. 0x00;
  695. break;
  696. /*
  697. * For TYpe 1 protection: 16 bit GUARD tag, 32 bit REF tag, and
  698. * 16 bit app tag.
  699. */
  700. case SCSI_PROT_DIF_TYPE1:
  701. if (!ql2xenablehba_err_chk)
  702. break;
  703. if (protcnt && (op == SCSI_PROT_WRITE_STRIP ||
  704. op == SCSI_PROT_WRITE_PASS)) {
  705. spt = page_address(sg_page(scsi_prot_sglist(cmd))) +
  706. scsi_prot_sglist(cmd)[0].offset;
  707. DEBUG18(printk(KERN_DEBUG
  708. "%s(): LBA from user %p, lba = 0x%x\n",
  709. __func__, spt, (int)spt->ref_tag));
  710. pkt->ref_tag = swab32(spt->ref_tag);
  711. pkt->app_tag_mask[0] = 0x0;
  712. pkt->app_tag_mask[1] = 0x0;
  713. } else {
  714. pkt->ref_tag = cpu_to_le32((uint32_t)
  715. (0xffffffff & scsi_get_lba(cmd)));
  716. pkt->app_tag = __constant_cpu_to_le16(0);
  717. pkt->app_tag_mask[0] = 0x0;
  718. pkt->app_tag_mask[1] = 0x0;
  719. }
  720. /* enable ALL bytes of the ref tag */
  721. pkt->ref_tag_mask[0] = 0xff;
  722. pkt->ref_tag_mask[1] = 0xff;
  723. pkt->ref_tag_mask[2] = 0xff;
  724. pkt->ref_tag_mask[3] = 0xff;
  725. break;
  726. }
  727. DEBUG18(printk(KERN_DEBUG
  728. "%s(): Setting protection Tags: (BIG) ref tag = 0x%x,"
  729. " app tag = 0x%x, prot SG count %d , cmd lba 0x%x,"
  730. " prot_type=%u\n", __func__, pkt->ref_tag, pkt->app_tag, protcnt,
  731. (int)scsi_get_lba(cmd), scsi_get_prot_type(cmd)));
  732. }
  733. static int
  734. qla24xx_walk_and_build_sglist(struct qla_hw_data *ha, srb_t *sp, uint32_t *dsd,
  735. uint16_t tot_dsds)
  736. {
  737. void *next_dsd;
  738. uint8_t avail_dsds = 0;
  739. uint32_t dsd_list_len;
  740. struct dsd_dma *dsd_ptr;
  741. struct scatterlist *sg;
  742. uint32_t *cur_dsd = dsd;
  743. int i;
  744. uint16_t used_dsds = tot_dsds;
  745. uint8_t *cp;
  746. scsi_for_each_sg(sp->cmd, sg, tot_dsds, i) {
  747. dma_addr_t sle_dma;
  748. /* Allocate additional continuation packets? */
  749. if (avail_dsds == 0) {
  750. avail_dsds = (used_dsds > QLA_DSDS_PER_IOCB) ?
  751. QLA_DSDS_PER_IOCB : used_dsds;
  752. dsd_list_len = (avail_dsds + 1) * 12;
  753. used_dsds -= avail_dsds;
  754. /* allocate tracking DS */
  755. dsd_ptr = kzalloc(sizeof(struct dsd_dma), GFP_ATOMIC);
  756. if (!dsd_ptr)
  757. return 1;
  758. /* allocate new list */
  759. dsd_ptr->dsd_addr = next_dsd =
  760. dma_pool_alloc(ha->dl_dma_pool, GFP_ATOMIC,
  761. &dsd_ptr->dsd_list_dma);
  762. if (!next_dsd) {
  763. /*
  764. * Need to cleanup only this dsd_ptr, rest
  765. * will be done by sp_free_dma()
  766. */
  767. kfree(dsd_ptr);
  768. return 1;
  769. }
  770. list_add_tail(&dsd_ptr->list,
  771. &((struct crc_context *)sp->ctx)->dsd_list);
  772. sp->flags |= SRB_CRC_CTX_DSD_VALID;
  773. /* add new list to cmd iocb or last list */
  774. *cur_dsd++ = cpu_to_le32(LSD(dsd_ptr->dsd_list_dma));
  775. *cur_dsd++ = cpu_to_le32(MSD(dsd_ptr->dsd_list_dma));
  776. *cur_dsd++ = dsd_list_len;
  777. cur_dsd = (uint32_t *)next_dsd;
  778. }
  779. sle_dma = sg_dma_address(sg);
  780. DEBUG18(printk("%s(): %p, sg entry %d - addr =0x%x 0x%x,"
  781. " len =%d\n", __func__ , cur_dsd, i, LSD(sle_dma),
  782. MSD(sle_dma), sg_dma_len(sg)));
  783. *cur_dsd++ = cpu_to_le32(LSD(sle_dma));
  784. *cur_dsd++ = cpu_to_le32(MSD(sle_dma));
  785. *cur_dsd++ = cpu_to_le32(sg_dma_len(sg));
  786. avail_dsds--;
  787. if (scsi_get_prot_op(sp->cmd) == SCSI_PROT_WRITE_PASS) {
  788. cp = page_address(sg_page(sg)) + sg->offset;
  789. DEBUG18(printk("%s(): User Data buffer= %p:\n",
  790. __func__ , cp));
  791. }
  792. }
  793. /* Null termination */
  794. *cur_dsd++ = 0;
  795. *cur_dsd++ = 0;
  796. *cur_dsd++ = 0;
  797. return 0;
  798. }
  799. static int
  800. qla24xx_walk_and_build_prot_sglist(struct qla_hw_data *ha, srb_t *sp,
  801. uint32_t *dsd,
  802. uint16_t tot_dsds)
  803. {
  804. void *next_dsd;
  805. uint8_t avail_dsds = 0;
  806. uint32_t dsd_list_len;
  807. struct dsd_dma *dsd_ptr;
  808. struct scatterlist *sg;
  809. int i;
  810. struct scsi_cmnd *cmd;
  811. uint32_t *cur_dsd = dsd;
  812. uint16_t used_dsds = tot_dsds;
  813. uint8_t *cp;
  814. cmd = sp->cmd;
  815. scsi_for_each_prot_sg(cmd, sg, tot_dsds, i) {
  816. dma_addr_t sle_dma;
  817. /* Allocate additional continuation packets? */
  818. if (avail_dsds == 0) {
  819. avail_dsds = (used_dsds > QLA_DSDS_PER_IOCB) ?
  820. QLA_DSDS_PER_IOCB : used_dsds;
  821. dsd_list_len = (avail_dsds + 1) * 12;
  822. used_dsds -= avail_dsds;
  823. /* allocate tracking DS */
  824. dsd_ptr = kzalloc(sizeof(struct dsd_dma), GFP_ATOMIC);
  825. if (!dsd_ptr)
  826. return 1;
  827. /* allocate new list */
  828. dsd_ptr->dsd_addr = next_dsd =
  829. dma_pool_alloc(ha->dl_dma_pool, GFP_ATOMIC,
  830. &dsd_ptr->dsd_list_dma);
  831. if (!next_dsd) {
  832. /*
  833. * Need to cleanup only this dsd_ptr, rest
  834. * will be done by sp_free_dma()
  835. */
  836. kfree(dsd_ptr);
  837. return 1;
  838. }
  839. list_add_tail(&dsd_ptr->list,
  840. &((struct crc_context *)sp->ctx)->dsd_list);
  841. sp->flags |= SRB_CRC_CTX_DSD_VALID;
  842. /* add new list to cmd iocb or last list */
  843. *cur_dsd++ = cpu_to_le32(LSD(dsd_ptr->dsd_list_dma));
  844. *cur_dsd++ = cpu_to_le32(MSD(dsd_ptr->dsd_list_dma));
  845. *cur_dsd++ = dsd_list_len;
  846. cur_dsd = (uint32_t *)next_dsd;
  847. }
  848. sle_dma = sg_dma_address(sg);
  849. if (scsi_get_prot_op(sp->cmd) == SCSI_PROT_WRITE_PASS) {
  850. DEBUG18(printk(KERN_DEBUG
  851. "%s(): %p, sg entry %d - addr =0x%x"
  852. "0x%x, len =%d\n", __func__ , cur_dsd, i,
  853. LSD(sle_dma), MSD(sle_dma), sg_dma_len(sg)));
  854. }
  855. *cur_dsd++ = cpu_to_le32(LSD(sle_dma));
  856. *cur_dsd++ = cpu_to_le32(MSD(sle_dma));
  857. *cur_dsd++ = cpu_to_le32(sg_dma_len(sg));
  858. if (scsi_get_prot_op(sp->cmd) == SCSI_PROT_WRITE_PASS) {
  859. cp = page_address(sg_page(sg)) + sg->offset;
  860. DEBUG18(printk("%s(): Protection Data buffer = %p:\n",
  861. __func__ , cp));
  862. }
  863. avail_dsds--;
  864. }
  865. /* Null termination */
  866. *cur_dsd++ = 0;
  867. *cur_dsd++ = 0;
  868. *cur_dsd++ = 0;
  869. return 0;
  870. }
  871. /**
  872. * qla24xx_build_scsi_crc_2_iocbs() - Build IOCB command utilizing Command
  873. * Type 6 IOCB types.
  874. *
  875. * @sp: SRB command to process
  876. * @cmd_pkt: Command type 3 IOCB
  877. * @tot_dsds: Total number of segments to transfer
  878. */
  879. static inline int
  880. qla24xx_build_scsi_crc_2_iocbs(srb_t *sp, struct cmd_type_crc_2 *cmd_pkt,
  881. uint16_t tot_dsds, uint16_t tot_prot_dsds, uint16_t fw_prot_opts)
  882. {
  883. uint32_t *cur_dsd, *fcp_dl;
  884. scsi_qla_host_t *vha;
  885. struct scsi_cmnd *cmd;
  886. struct scatterlist *cur_seg;
  887. int sgc;
  888. uint32_t total_bytes;
  889. uint32_t data_bytes;
  890. uint32_t dif_bytes;
  891. uint8_t bundling = 1;
  892. uint16_t blk_size;
  893. uint8_t *clr_ptr;
  894. struct crc_context *crc_ctx_pkt = NULL;
  895. struct qla_hw_data *ha;
  896. uint8_t additional_fcpcdb_len;
  897. uint16_t fcp_cmnd_len;
  898. struct fcp_cmnd *fcp_cmnd;
  899. dma_addr_t crc_ctx_dma;
  900. cmd = sp->cmd;
  901. sgc = 0;
  902. /* Update entry type to indicate Command Type CRC_2 IOCB */
  903. *((uint32_t *)(&cmd_pkt->entry_type)) =
  904. __constant_cpu_to_le32(COMMAND_TYPE_CRC_2);
  905. /* No data transfer */
  906. data_bytes = scsi_bufflen(cmd);
  907. if (!data_bytes || cmd->sc_data_direction == DMA_NONE) {
  908. DEBUG18(printk(KERN_INFO "%s: Zero data bytes or DMA-NONE %d\n",
  909. __func__, data_bytes));
  910. cmd_pkt->byte_count = __constant_cpu_to_le32(0);
  911. return QLA_SUCCESS;
  912. }
  913. vha = sp->fcport->vha;
  914. ha = vha->hw;
  915. DEBUG18(printk(KERN_DEBUG
  916. "%s(%ld): Executing cmd sp %p, pid=%ld, prot_op=%u.\n", __func__,
  917. vha->host_no, sp, cmd->serial_number, scsi_get_prot_op(sp->cmd)));
  918. cmd_pkt->vp_index = sp->fcport->vp_idx;
  919. /* Set transfer direction */
  920. if (cmd->sc_data_direction == DMA_TO_DEVICE) {
  921. cmd_pkt->control_flags =
  922. __constant_cpu_to_le16(CF_WRITE_DATA);
  923. } else if (cmd->sc_data_direction == DMA_FROM_DEVICE) {
  924. cmd_pkt->control_flags =
  925. __constant_cpu_to_le16(CF_READ_DATA);
  926. }
  927. tot_prot_dsds = scsi_prot_sg_count(cmd);
  928. if (!tot_prot_dsds)
  929. bundling = 0;
  930. /* Allocate CRC context from global pool */
  931. crc_ctx_pkt = sp->ctx = dma_pool_alloc(ha->dl_dma_pool,
  932. GFP_ATOMIC, &crc_ctx_dma);
  933. if (!crc_ctx_pkt)
  934. goto crc_queuing_error;
  935. /* Zero out CTX area. */
  936. clr_ptr = (uint8_t *)crc_ctx_pkt;
  937. memset(clr_ptr, 0, sizeof(*crc_ctx_pkt));
  938. crc_ctx_pkt->crc_ctx_dma = crc_ctx_dma;
  939. sp->flags |= SRB_CRC_CTX_DMA_VALID;
  940. /* Set handle */
  941. crc_ctx_pkt->handle = cmd_pkt->handle;
  942. INIT_LIST_HEAD(&crc_ctx_pkt->dsd_list);
  943. qla24xx_set_t10dif_tags(cmd, (struct fw_dif_context *)
  944. &crc_ctx_pkt->ref_tag, tot_prot_dsds);
  945. cmd_pkt->crc_context_address[0] = cpu_to_le32(LSD(crc_ctx_dma));
  946. cmd_pkt->crc_context_address[1] = cpu_to_le32(MSD(crc_ctx_dma));
  947. cmd_pkt->crc_context_len = CRC_CONTEXT_LEN_FW;
  948. /* Determine SCSI command length -- align to 4 byte boundary */
  949. if (cmd->cmd_len > 16) {
  950. DEBUG18(printk(KERN_INFO "%s(): **** SCSI CMD > 16\n",
  951. __func__));
  952. additional_fcpcdb_len = cmd->cmd_len - 16;
  953. if ((cmd->cmd_len % 4) != 0) {
  954. /* SCSI cmd > 16 bytes must be multiple of 4 */
  955. goto crc_queuing_error;
  956. }
  957. fcp_cmnd_len = 12 + cmd->cmd_len + 4;
  958. } else {
  959. additional_fcpcdb_len = 0;
  960. fcp_cmnd_len = 12 + 16 + 4;
  961. }
  962. fcp_cmnd = &crc_ctx_pkt->fcp_cmnd;
  963. fcp_cmnd->additional_cdb_len = additional_fcpcdb_len;
  964. if (cmd->sc_data_direction == DMA_TO_DEVICE)
  965. fcp_cmnd->additional_cdb_len |= 1;
  966. else if (cmd->sc_data_direction == DMA_FROM_DEVICE)
  967. fcp_cmnd->additional_cdb_len |= 2;
  968. int_to_scsilun(sp->cmd->device->lun, &fcp_cmnd->lun);
  969. memcpy(fcp_cmnd->cdb, cmd->cmnd, cmd->cmd_len);
  970. cmd_pkt->fcp_cmnd_dseg_len = cpu_to_le16(fcp_cmnd_len);
  971. cmd_pkt->fcp_cmnd_dseg_address[0] = cpu_to_le32(
  972. LSD(crc_ctx_dma + CRC_CONTEXT_FCPCMND_OFF));
  973. cmd_pkt->fcp_cmnd_dseg_address[1] = cpu_to_le32(
  974. MSD(crc_ctx_dma + CRC_CONTEXT_FCPCMND_OFF));
  975. fcp_cmnd->task_attribute = 0;
  976. fcp_cmnd->task_managment = 0;
  977. cmd_pkt->fcp_rsp_dseg_len = 0; /* Let response come in status iocb */
  978. DEBUG18(printk(KERN_INFO "%s(%ld): Total SG(s) Entries %d, Data"
  979. "entries %d, data bytes %d, Protection entries %d\n",
  980. __func__, vha->host_no, tot_dsds, (tot_dsds-tot_prot_dsds),
  981. data_bytes, tot_prot_dsds));
  982. /* Compute dif len and adjust data len to incude protection */
  983. total_bytes = data_bytes;
  984. dif_bytes = 0;
  985. blk_size = cmd->device->sector_size;
  986. if (scsi_get_prot_type(cmd) == SCSI_PROT_DIF_TYPE1) {
  987. dif_bytes = (data_bytes / blk_size) * 8;
  988. total_bytes += dif_bytes;
  989. }
  990. if (!ql2xenablehba_err_chk)
  991. fw_prot_opts |= 0x10; /* Disable Guard tag checking */
  992. if (!bundling) {
  993. cur_dsd = (uint32_t *) &crc_ctx_pkt->u.nobundling.data_address;
  994. } else {
  995. /*
  996. * Configure Bundling if we need to fetch interlaving
  997. * protection PCI accesses
  998. */
  999. fw_prot_opts |= PO_ENABLE_DIF_BUNDLING;
  1000. crc_ctx_pkt->u.bundling.dif_byte_count = cpu_to_le32(dif_bytes);
  1001. crc_ctx_pkt->u.bundling.dseg_count = cpu_to_le16(tot_dsds -
  1002. tot_prot_dsds);
  1003. cur_dsd = (uint32_t *) &crc_ctx_pkt->u.bundling.data_address;
  1004. }
  1005. /* Finish the common fields of CRC pkt */
  1006. crc_ctx_pkt->blk_size = cpu_to_le16(blk_size);
  1007. crc_ctx_pkt->prot_opts = cpu_to_le16(fw_prot_opts);
  1008. crc_ctx_pkt->byte_count = cpu_to_le32(data_bytes);
  1009. crc_ctx_pkt->guard_seed = __constant_cpu_to_le16(0);
  1010. /* Fibre channel byte count */
  1011. cmd_pkt->byte_count = cpu_to_le32(total_bytes);
  1012. fcp_dl = (uint32_t *)(crc_ctx_pkt->fcp_cmnd.cdb + 16 +
  1013. additional_fcpcdb_len);
  1014. *fcp_dl = htonl(total_bytes);
  1015. DEBUG18(printk(KERN_INFO "%s(%ld): dif bytes = 0x%x (%d), total bytes"
  1016. " = 0x%x (%d), dat block size =0x%x (%d)\n", __func__,
  1017. vha->host_no, dif_bytes, dif_bytes, total_bytes, total_bytes,
  1018. crc_ctx_pkt->blk_size, crc_ctx_pkt->blk_size));
  1019. /* Walks data segments */
  1020. cmd_pkt->control_flags |=
  1021. __constant_cpu_to_le16(CF_DATA_SEG_DESCR_ENABLE);
  1022. if (qla24xx_walk_and_build_sglist(ha, sp, cur_dsd,
  1023. (tot_dsds - tot_prot_dsds)))
  1024. goto crc_queuing_error;
  1025. if (bundling && tot_prot_dsds) {
  1026. /* Walks dif segments */
  1027. cur_seg = scsi_prot_sglist(cmd);
  1028. cmd_pkt->control_flags |=
  1029. __constant_cpu_to_le16(CF_DIF_SEG_DESCR_ENABLE);
  1030. cur_dsd = (uint32_t *) &crc_ctx_pkt->u.bundling.dif_address;
  1031. if (qla24xx_walk_and_build_prot_sglist(ha, sp, cur_dsd,
  1032. tot_prot_dsds))
  1033. goto crc_queuing_error;
  1034. }
  1035. return QLA_SUCCESS;
  1036. crc_queuing_error:
  1037. DEBUG18(qla_printk(KERN_INFO, ha,
  1038. "CMD sent FAILED crc_q error:sp = %p\n", sp));
  1039. /* Cleanup will be performed by the caller */
  1040. return QLA_FUNCTION_FAILED;
  1041. }
  1042. /**
  1043. * qla24xx_start_scsi() - Send a SCSI command to the ISP
  1044. * @sp: command to send to the ISP
  1045. *
  1046. * Returns non-zero if a failure occurred, else zero.
  1047. */
  1048. int
  1049. qla24xx_start_scsi(srb_t *sp)
  1050. {
  1051. int ret, nseg;
  1052. unsigned long flags;
  1053. uint32_t *clr_ptr;
  1054. uint32_t index;
  1055. uint32_t handle;
  1056. struct cmd_type_7 *cmd_pkt;
  1057. uint16_t cnt;
  1058. uint16_t req_cnt;
  1059. uint16_t tot_dsds;
  1060. struct req_que *req = NULL;
  1061. struct rsp_que *rsp = NULL;
  1062. struct scsi_cmnd *cmd = sp->cmd;
  1063. struct scsi_qla_host *vha = sp->fcport->vha;
  1064. struct qla_hw_data *ha = vha->hw;
  1065. /* Setup device pointers. */
  1066. ret = 0;
  1067. qla25xx_set_que(sp, &rsp);
  1068. req = vha->req;
  1069. /* So we know we haven't pci_map'ed anything yet */
  1070. tot_dsds = 0;
  1071. /* Send marker if required */
  1072. if (vha->marker_needed != 0) {
  1073. if (qla2x00_marker(vha, req, rsp, 0, 0, MK_SYNC_ALL)
  1074. != QLA_SUCCESS)
  1075. return QLA_FUNCTION_FAILED;
  1076. vha->marker_needed = 0;
  1077. }
  1078. /* Acquire ring specific lock */
  1079. spin_lock_irqsave(&ha->hardware_lock, flags);
  1080. /* Check for room in outstanding command list. */
  1081. handle = req->current_outstanding_cmd;
  1082. for (index = 1; index < MAX_OUTSTANDING_COMMANDS; index++) {
  1083. handle++;
  1084. if (handle == MAX_OUTSTANDING_COMMANDS)
  1085. handle = 1;
  1086. if (!req->outstanding_cmds[handle])
  1087. break;
  1088. }
  1089. if (index == MAX_OUTSTANDING_COMMANDS)
  1090. goto queuing_error;
  1091. /* Map the sg table so we have an accurate count of sg entries needed */
  1092. if (scsi_sg_count(cmd)) {
  1093. nseg = dma_map_sg(&ha->pdev->dev, scsi_sglist(cmd),
  1094. scsi_sg_count(cmd), cmd->sc_data_direction);
  1095. if (unlikely(!nseg))
  1096. goto queuing_error;
  1097. } else
  1098. nseg = 0;
  1099. tot_dsds = nseg;
  1100. req_cnt = qla24xx_calc_iocbs(tot_dsds);
  1101. if (req->cnt < (req_cnt + 2)) {
  1102. cnt = RD_REG_DWORD_RELAXED(req->req_q_out);
  1103. if (req->ring_index < cnt)
  1104. req->cnt = cnt - req->ring_index;
  1105. else
  1106. req->cnt = req->length -
  1107. (req->ring_index - cnt);
  1108. }
  1109. if (req->cnt < (req_cnt + 2))
  1110. goto queuing_error;
  1111. /* Build command packet. */
  1112. req->current_outstanding_cmd = handle;
  1113. req->outstanding_cmds[handle] = sp;
  1114. sp->handle = handle;
  1115. sp->cmd->host_scribble = (unsigned char *)(unsigned long)handle;
  1116. req->cnt -= req_cnt;
  1117. cmd_pkt = (struct cmd_type_7 *)req->ring_ptr;
  1118. cmd_pkt->handle = MAKE_HANDLE(req->id, handle);
  1119. /* Zero out remaining portion of packet. */
  1120. /* tagged queuing modifier -- default is TSK_SIMPLE (0). */
  1121. clr_ptr = (uint32_t *)cmd_pkt + 2;
  1122. memset(clr_ptr, 0, REQUEST_ENTRY_SIZE - 8);
  1123. cmd_pkt->dseg_count = cpu_to_le16(tot_dsds);
  1124. /* Set NPORT-ID and LUN number*/
  1125. cmd_pkt->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1126. cmd_pkt->port_id[0] = sp->fcport->d_id.b.al_pa;
  1127. cmd_pkt->port_id[1] = sp->fcport->d_id.b.area;
  1128. cmd_pkt->port_id[2] = sp->fcport->d_id.b.domain;
  1129. cmd_pkt->vp_index = sp->fcport->vp_idx;
  1130. int_to_scsilun(sp->cmd->device->lun, &cmd_pkt->lun);
  1131. host_to_fcp_swap((uint8_t *)&cmd_pkt->lun, sizeof(cmd_pkt->lun));
  1132. /* Load SCSI command packet. */
  1133. memcpy(cmd_pkt->fcp_cdb, cmd->cmnd, cmd->cmd_len);
  1134. host_to_fcp_swap(cmd_pkt->fcp_cdb, sizeof(cmd_pkt->fcp_cdb));
  1135. cmd_pkt->byte_count = cpu_to_le32((uint32_t)scsi_bufflen(cmd));
  1136. /* Build IOCB segments */
  1137. qla24xx_build_scsi_iocbs(sp, cmd_pkt, tot_dsds);
  1138. /* Set total data segment count. */
  1139. cmd_pkt->entry_count = (uint8_t)req_cnt;
  1140. /* Specify response queue number where completion should happen */
  1141. cmd_pkt->entry_status = (uint8_t) rsp->id;
  1142. wmb();
  1143. /* Adjust ring index. */
  1144. req->ring_index++;
  1145. if (req->ring_index == req->length) {
  1146. req->ring_index = 0;
  1147. req->ring_ptr = req->ring;
  1148. } else
  1149. req->ring_ptr++;
  1150. sp->flags |= SRB_DMA_VALID;
  1151. /* Set chip new ring index. */
  1152. WRT_REG_DWORD(req->req_q_in, req->ring_index);
  1153. RD_REG_DWORD_RELAXED(&ha->iobase->isp24.hccr);
  1154. /* Manage unprocessed RIO/ZIO commands in response queue. */
  1155. if (vha->flags.process_response_queue &&
  1156. rsp->ring_ptr->signature != RESPONSE_PROCESSED)
  1157. qla24xx_process_response_queue(vha, rsp);
  1158. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1159. return QLA_SUCCESS;
  1160. queuing_error:
  1161. if (tot_dsds)
  1162. scsi_dma_unmap(cmd);
  1163. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1164. return QLA_FUNCTION_FAILED;
  1165. }
  1166. /**
  1167. * qla24xx_dif_start_scsi() - Send a SCSI command to the ISP
  1168. * @sp: command to send to the ISP
  1169. *
  1170. * Returns non-zero if a failure occurred, else zero.
  1171. */
  1172. int
  1173. qla24xx_dif_start_scsi(srb_t *sp)
  1174. {
  1175. int nseg;
  1176. unsigned long flags;
  1177. uint32_t *clr_ptr;
  1178. uint32_t index;
  1179. uint32_t handle;
  1180. uint16_t cnt;
  1181. uint16_t req_cnt = 0;
  1182. uint16_t tot_dsds;
  1183. uint16_t tot_prot_dsds;
  1184. uint16_t fw_prot_opts = 0;
  1185. struct req_que *req = NULL;
  1186. struct rsp_que *rsp = NULL;
  1187. struct scsi_cmnd *cmd = sp->cmd;
  1188. struct scsi_qla_host *vha = sp->fcport->vha;
  1189. struct qla_hw_data *ha = vha->hw;
  1190. struct cmd_type_crc_2 *cmd_pkt;
  1191. uint32_t status = 0;
  1192. #define QDSS_GOT_Q_SPACE BIT_0
  1193. /* Only process protection in this routine */
  1194. if (scsi_get_prot_op(cmd) == SCSI_PROT_NORMAL)
  1195. return qla24xx_start_scsi(sp);
  1196. /* Setup device pointers. */
  1197. qla25xx_set_que(sp, &rsp);
  1198. req = vha->req;
  1199. /* So we know we haven't pci_map'ed anything yet */
  1200. tot_dsds = 0;
  1201. /* Send marker if required */
  1202. if (vha->marker_needed != 0) {
  1203. if (qla2x00_marker(vha, req, rsp, 0, 0, MK_SYNC_ALL) !=
  1204. QLA_SUCCESS)
  1205. return QLA_FUNCTION_FAILED;
  1206. vha->marker_needed = 0;
  1207. }
  1208. /* Acquire ring specific lock */
  1209. spin_lock_irqsave(&ha->hardware_lock, flags);
  1210. /* Check for room in outstanding command list. */
  1211. handle = req->current_outstanding_cmd;
  1212. for (index = 1; index < MAX_OUTSTANDING_COMMANDS; index++) {
  1213. handle++;
  1214. if (handle == MAX_OUTSTANDING_COMMANDS)
  1215. handle = 1;
  1216. if (!req->outstanding_cmds[handle])
  1217. break;
  1218. }
  1219. if (index == MAX_OUTSTANDING_COMMANDS)
  1220. goto queuing_error;
  1221. /* Compute number of required data segments */
  1222. /* Map the sg table so we have an accurate count of sg entries needed */
  1223. if (scsi_sg_count(cmd)) {
  1224. nseg = dma_map_sg(&ha->pdev->dev, scsi_sglist(cmd),
  1225. scsi_sg_count(cmd), cmd->sc_data_direction);
  1226. if (unlikely(!nseg))
  1227. goto queuing_error;
  1228. else
  1229. sp->flags |= SRB_DMA_VALID;
  1230. } else
  1231. nseg = 0;
  1232. /* number of required data segments */
  1233. tot_dsds = nseg;
  1234. /* Compute number of required protection segments */
  1235. if (qla24xx_configure_prot_mode(sp, &fw_prot_opts)) {
  1236. nseg = dma_map_sg(&ha->pdev->dev, scsi_prot_sglist(cmd),
  1237. scsi_prot_sg_count(cmd), cmd->sc_data_direction);
  1238. if (unlikely(!nseg))
  1239. goto queuing_error;
  1240. else
  1241. sp->flags |= SRB_CRC_PROT_DMA_VALID;
  1242. } else {
  1243. nseg = 0;
  1244. }
  1245. req_cnt = 1;
  1246. /* Total Data and protection sg segment(s) */
  1247. tot_prot_dsds = nseg;
  1248. tot_dsds += nseg;
  1249. if (req->cnt < (req_cnt + 2)) {
  1250. cnt = RD_REG_DWORD_RELAXED(req->req_q_out);
  1251. if (req->ring_index < cnt)
  1252. req->cnt = cnt - req->ring_index;
  1253. else
  1254. req->cnt = req->length -
  1255. (req->ring_index - cnt);
  1256. }
  1257. if (req->cnt < (req_cnt + 2))
  1258. goto queuing_error;
  1259. status |= QDSS_GOT_Q_SPACE;
  1260. /* Build header part of command packet (excluding the OPCODE). */
  1261. req->current_outstanding_cmd = handle;
  1262. req->outstanding_cmds[handle] = sp;
  1263. sp->cmd->host_scribble = (unsigned char *)(unsigned long)handle;
  1264. req->cnt -= req_cnt;
  1265. /* Fill-in common area */
  1266. cmd_pkt = (struct cmd_type_crc_2 *)req->ring_ptr;
  1267. cmd_pkt->handle = MAKE_HANDLE(req->id, handle);
  1268. clr_ptr = (uint32_t *)cmd_pkt + 2;
  1269. memset(clr_ptr, 0, REQUEST_ENTRY_SIZE - 8);
  1270. /* Set NPORT-ID and LUN number*/
  1271. cmd_pkt->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1272. cmd_pkt->port_id[0] = sp->fcport->d_id.b.al_pa;
  1273. cmd_pkt->port_id[1] = sp->fcport->d_id.b.area;
  1274. cmd_pkt->port_id[2] = sp->fcport->d_id.b.domain;
  1275. int_to_scsilun(sp->cmd->device->lun, &cmd_pkt->lun);
  1276. host_to_fcp_swap((uint8_t *)&cmd_pkt->lun, sizeof(cmd_pkt->lun));
  1277. /* Total Data and protection segment(s) */
  1278. cmd_pkt->dseg_count = cpu_to_le16(tot_dsds);
  1279. /* Build IOCB segments and adjust for data protection segments */
  1280. if (qla24xx_build_scsi_crc_2_iocbs(sp, (struct cmd_type_crc_2 *)
  1281. req->ring_ptr, tot_dsds, tot_prot_dsds, fw_prot_opts) !=
  1282. QLA_SUCCESS)
  1283. goto queuing_error;
  1284. cmd_pkt->entry_count = (uint8_t)req_cnt;
  1285. /* Specify response queue number where completion should happen */
  1286. cmd_pkt->entry_status = (uint8_t) rsp->id;
  1287. cmd_pkt->timeout = __constant_cpu_to_le16(0);
  1288. wmb();
  1289. /* Adjust ring index. */
  1290. req->ring_index++;
  1291. if (req->ring_index == req->length) {
  1292. req->ring_index = 0;
  1293. req->ring_ptr = req->ring;
  1294. } else
  1295. req->ring_ptr++;
  1296. /* Set chip new ring index. */
  1297. WRT_REG_DWORD(req->req_q_in, req->ring_index);
  1298. RD_REG_DWORD_RELAXED(&ha->iobase->isp24.hccr);
  1299. /* Manage unprocessed RIO/ZIO commands in response queue. */
  1300. if (vha->flags.process_response_queue &&
  1301. rsp->ring_ptr->signature != RESPONSE_PROCESSED)
  1302. qla24xx_process_response_queue(vha, rsp);
  1303. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1304. return QLA_SUCCESS;
  1305. queuing_error:
  1306. if (status & QDSS_GOT_Q_SPACE) {
  1307. req->outstanding_cmds[handle] = NULL;
  1308. req->cnt += req_cnt;
  1309. }
  1310. /* Cleanup will be performed by the caller (queuecommand) */
  1311. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1312. DEBUG18(qla_printk(KERN_INFO, ha,
  1313. "CMD sent FAILED SCSI prot_op:%02x\n", scsi_get_prot_op(cmd)));
  1314. return QLA_FUNCTION_FAILED;
  1315. }
  1316. static void qla25xx_set_que(srb_t *sp, struct rsp_que **rsp)
  1317. {
  1318. struct scsi_cmnd *cmd = sp->cmd;
  1319. struct qla_hw_data *ha = sp->fcport->vha->hw;
  1320. int affinity = cmd->request->cpu;
  1321. if (ha->flags.cpu_affinity_enabled && affinity >= 0 &&
  1322. affinity < ha->max_rsp_queues - 1)
  1323. *rsp = ha->rsp_q_map[affinity + 1];
  1324. else
  1325. *rsp = ha->rsp_q_map[0];
  1326. }
  1327. /* Generic Control-SRB manipulation functions. */
  1328. static void *
  1329. qla2x00_alloc_iocbs(srb_t *sp)
  1330. {
  1331. scsi_qla_host_t *vha = sp->fcport->vha;
  1332. struct qla_hw_data *ha = vha->hw;
  1333. struct req_que *req = ha->req_q_map[0];
  1334. device_reg_t __iomem *reg = ISP_QUE_REG(ha, req->id);
  1335. uint32_t index, handle;
  1336. request_t *pkt;
  1337. uint16_t cnt, req_cnt;
  1338. pkt = NULL;
  1339. req_cnt = 1;
  1340. /* Check for room in outstanding command list. */
  1341. handle = req->current_outstanding_cmd;
  1342. for (index = 1; index < MAX_OUTSTANDING_COMMANDS; index++) {
  1343. handle++;
  1344. if (handle == MAX_OUTSTANDING_COMMANDS)
  1345. handle = 1;
  1346. if (!req->outstanding_cmds[handle])
  1347. break;
  1348. }
  1349. if (index == MAX_OUTSTANDING_COMMANDS)
  1350. goto queuing_error;
  1351. /* Check for room on request queue. */
  1352. if (req->cnt < req_cnt) {
  1353. if (ha->mqenable)
  1354. cnt = RD_REG_DWORD(&reg->isp25mq.req_q_out);
  1355. else if (IS_FWI2_CAPABLE(ha))
  1356. cnt = RD_REG_DWORD(&reg->isp24.req_q_out);
  1357. else
  1358. cnt = qla2x00_debounce_register(
  1359. ISP_REQ_Q_OUT(ha, &reg->isp));
  1360. if (req->ring_index < cnt)
  1361. req->cnt = cnt - req->ring_index;
  1362. else
  1363. req->cnt = req->length -
  1364. (req->ring_index - cnt);
  1365. }
  1366. if (req->cnt < req_cnt)
  1367. goto queuing_error;
  1368. /* Prep packet */
  1369. req->current_outstanding_cmd = handle;
  1370. req->outstanding_cmds[handle] = sp;
  1371. req->cnt -= req_cnt;
  1372. pkt = req->ring_ptr;
  1373. memset(pkt, 0, REQUEST_ENTRY_SIZE);
  1374. pkt->entry_count = req_cnt;
  1375. pkt->handle = handle;
  1376. sp->handle = handle;
  1377. queuing_error:
  1378. return pkt;
  1379. }
  1380. static void
  1381. qla2x00_start_iocbs(srb_t *sp)
  1382. {
  1383. struct qla_hw_data *ha = sp->fcport->vha->hw;
  1384. struct req_que *req = ha->req_q_map[0];
  1385. device_reg_t __iomem *reg = ISP_QUE_REG(ha, req->id);
  1386. struct device_reg_2xxx __iomem *ioreg = &ha->iobase->isp;
  1387. if (IS_QLA82XX(ha)) {
  1388. qla82xx_start_iocbs(sp);
  1389. } else {
  1390. /* Adjust ring index. */
  1391. req->ring_index++;
  1392. if (req->ring_index == req->length) {
  1393. req->ring_index = 0;
  1394. req->ring_ptr = req->ring;
  1395. } else
  1396. req->ring_ptr++;
  1397. /* Set chip new ring index. */
  1398. if (ha->mqenable) {
  1399. WRT_REG_DWORD(&reg->isp25mq.req_q_in, req->ring_index);
  1400. RD_REG_DWORD(&ioreg->hccr);
  1401. } else if (IS_QLA82XX(ha)) {
  1402. qla82xx_start_iocbs(sp);
  1403. } else if (IS_FWI2_CAPABLE(ha)) {
  1404. WRT_REG_DWORD(&reg->isp24.req_q_in, req->ring_index);
  1405. RD_REG_DWORD_RELAXED(&reg->isp24.req_q_in);
  1406. } else {
  1407. WRT_REG_WORD(ISP_REQ_Q_IN(ha, &reg->isp),
  1408. req->ring_index);
  1409. RD_REG_WORD_RELAXED(ISP_REQ_Q_IN(ha, &reg->isp));
  1410. }
  1411. }
  1412. }
  1413. static void
  1414. qla24xx_login_iocb(srb_t *sp, struct logio_entry_24xx *logio)
  1415. {
  1416. struct srb_ctx *ctx = sp->ctx;
  1417. struct srb_iocb *lio = ctx->u.iocb_cmd;
  1418. logio->entry_type = LOGINOUT_PORT_IOCB_TYPE;
  1419. logio->control_flags = cpu_to_le16(LCF_COMMAND_PLOGI);
  1420. if (lio->u.logio.flags & SRB_LOGIN_COND_PLOGI)
  1421. logio->control_flags |= cpu_to_le16(LCF_COND_PLOGI);
  1422. if (lio->u.logio.flags & SRB_LOGIN_SKIP_PRLI)
  1423. logio->control_flags |= cpu_to_le16(LCF_SKIP_PRLI);
  1424. logio->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1425. logio->port_id[0] = sp->fcport->d_id.b.al_pa;
  1426. logio->port_id[1] = sp->fcport->d_id.b.area;
  1427. logio->port_id[2] = sp->fcport->d_id.b.domain;
  1428. logio->vp_index = sp->fcport->vp_idx;
  1429. }
  1430. static void
  1431. qla2x00_login_iocb(srb_t *sp, struct mbx_entry *mbx)
  1432. {
  1433. struct qla_hw_data *ha = sp->fcport->vha->hw;
  1434. struct srb_ctx *ctx = sp->ctx;
  1435. struct srb_iocb *lio = ctx->u.iocb_cmd;
  1436. uint16_t opts;
  1437. mbx->entry_type = MBX_IOCB_TYPE;;
  1438. SET_TARGET_ID(ha, mbx->loop_id, sp->fcport->loop_id);
  1439. mbx->mb0 = cpu_to_le16(MBC_LOGIN_FABRIC_PORT);
  1440. opts = lio->u.logio.flags & SRB_LOGIN_COND_PLOGI ? BIT_0 : 0;
  1441. opts |= lio->u.logio.flags & SRB_LOGIN_SKIP_PRLI ? BIT_1 : 0;
  1442. if (HAS_EXTENDED_IDS(ha)) {
  1443. mbx->mb1 = cpu_to_le16(sp->fcport->loop_id);
  1444. mbx->mb10 = cpu_to_le16(opts);
  1445. } else {
  1446. mbx->mb1 = cpu_to_le16((sp->fcport->loop_id << 8) | opts);
  1447. }
  1448. mbx->mb2 = cpu_to_le16(sp->fcport->d_id.b.domain);
  1449. mbx->mb3 = cpu_to_le16(sp->fcport->d_id.b.area << 8 |
  1450. sp->fcport->d_id.b.al_pa);
  1451. mbx->mb9 = cpu_to_le16(sp->fcport->vp_idx);
  1452. }
  1453. static void
  1454. qla24xx_logout_iocb(srb_t *sp, struct logio_entry_24xx *logio)
  1455. {
  1456. logio->entry_type = LOGINOUT_PORT_IOCB_TYPE;
  1457. logio->control_flags =
  1458. cpu_to_le16(LCF_COMMAND_LOGO|LCF_IMPL_LOGO);
  1459. logio->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1460. logio->port_id[0] = sp->fcport->d_id.b.al_pa;
  1461. logio->port_id[1] = sp->fcport->d_id.b.area;
  1462. logio->port_id[2] = sp->fcport->d_id.b.domain;
  1463. logio->vp_index = sp->fcport->vp_idx;
  1464. }
  1465. static void
  1466. qla2x00_logout_iocb(srb_t *sp, struct mbx_entry *mbx)
  1467. {
  1468. struct qla_hw_data *ha = sp->fcport->vha->hw;
  1469. mbx->entry_type = MBX_IOCB_TYPE;;
  1470. SET_TARGET_ID(ha, mbx->loop_id, sp->fcport->loop_id);
  1471. mbx->mb0 = cpu_to_le16(MBC_LOGOUT_FABRIC_PORT);
  1472. mbx->mb1 = HAS_EXTENDED_IDS(ha) ?
  1473. cpu_to_le16(sp->fcport->loop_id):
  1474. cpu_to_le16(sp->fcport->loop_id << 8);
  1475. mbx->mb2 = cpu_to_le16(sp->fcport->d_id.b.domain);
  1476. mbx->mb3 = cpu_to_le16(sp->fcport->d_id.b.area << 8 |
  1477. sp->fcport->d_id.b.al_pa);
  1478. mbx->mb9 = cpu_to_le16(sp->fcport->vp_idx);
  1479. /* Implicit: mbx->mbx10 = 0. */
  1480. }
  1481. static void
  1482. qla24xx_adisc_iocb(srb_t *sp, struct logio_entry_24xx *logio)
  1483. {
  1484. logio->entry_type = LOGINOUT_PORT_IOCB_TYPE;
  1485. logio->control_flags = cpu_to_le16(LCF_COMMAND_ADISC);
  1486. logio->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1487. logio->vp_index = sp->fcport->vp_idx;
  1488. }
  1489. static void
  1490. qla2x00_adisc_iocb(srb_t *sp, struct mbx_entry *mbx)
  1491. {
  1492. struct qla_hw_data *ha = sp->fcport->vha->hw;
  1493. mbx->entry_type = MBX_IOCB_TYPE;
  1494. SET_TARGET_ID(ha, mbx->loop_id, sp->fcport->loop_id);
  1495. mbx->mb0 = cpu_to_le16(MBC_GET_PORT_DATABASE);
  1496. if (HAS_EXTENDED_IDS(ha)) {
  1497. mbx->mb1 = cpu_to_le16(sp->fcport->loop_id);
  1498. mbx->mb10 = cpu_to_le16(BIT_0);
  1499. } else {
  1500. mbx->mb1 = cpu_to_le16((sp->fcport->loop_id << 8) | BIT_0);
  1501. }
  1502. mbx->mb2 = cpu_to_le16(MSW(ha->async_pd_dma));
  1503. mbx->mb3 = cpu_to_le16(LSW(ha->async_pd_dma));
  1504. mbx->mb6 = cpu_to_le16(MSW(MSD(ha->async_pd_dma)));
  1505. mbx->mb7 = cpu_to_le16(LSW(MSD(ha->async_pd_dma)));
  1506. mbx->mb9 = cpu_to_le16(sp->fcport->vp_idx);
  1507. }
  1508. static void
  1509. qla24xx_tm_iocb(srb_t *sp, struct tsk_mgmt_entry *tsk)
  1510. {
  1511. uint32_t flags;
  1512. unsigned int lun;
  1513. struct fc_port *fcport = sp->fcport;
  1514. scsi_qla_host_t *vha = fcport->vha;
  1515. struct qla_hw_data *ha = vha->hw;
  1516. struct srb_ctx *ctx = sp->ctx;
  1517. struct srb_iocb *iocb = ctx->u.iocb_cmd;
  1518. struct req_que *req = vha->req;
  1519. flags = iocb->u.tmf.flags;
  1520. lun = iocb->u.tmf.lun;
  1521. tsk->entry_type = TSK_MGMT_IOCB_TYPE;
  1522. tsk->entry_count = 1;
  1523. tsk->handle = MAKE_HANDLE(req->id, tsk->handle);
  1524. tsk->nport_handle = cpu_to_le16(fcport->loop_id);
  1525. tsk->timeout = cpu_to_le16(ha->r_a_tov / 10 * 2);
  1526. tsk->control_flags = cpu_to_le32(flags);
  1527. tsk->port_id[0] = fcport->d_id.b.al_pa;
  1528. tsk->port_id[1] = fcport->d_id.b.area;
  1529. tsk->port_id[2] = fcport->d_id.b.domain;
  1530. tsk->vp_index = fcport->vp_idx;
  1531. if (flags == TCF_LUN_RESET) {
  1532. int_to_scsilun(lun, &tsk->lun);
  1533. host_to_fcp_swap((uint8_t *)&tsk->lun,
  1534. sizeof(tsk->lun));
  1535. }
  1536. }
  1537. static void
  1538. qla24xx_marker_iocb(srb_t *sp, struct mrk_entry_24xx *mrk)
  1539. {
  1540. uint16_t lun;
  1541. uint8_t modif;
  1542. struct fc_port *fcport = sp->fcport;
  1543. scsi_qla_host_t *vha = fcport->vha;
  1544. struct srb_ctx *ctx = sp->ctx;
  1545. struct srb_iocb *iocb = ctx->u.iocb_cmd;
  1546. struct req_que *req = vha->req;
  1547. lun = iocb->u.marker.lun;
  1548. modif = iocb->u.marker.modif;
  1549. mrk->entry_type = MARKER_TYPE;
  1550. mrk->modifier = modif;
  1551. if (modif != MK_SYNC_ALL) {
  1552. mrk->nport_handle = cpu_to_le16(fcport->loop_id);
  1553. mrk->lun[1] = LSB(lun);
  1554. mrk->lun[2] = MSB(lun);
  1555. host_to_fcp_swap(mrk->lun, sizeof(mrk->lun));
  1556. mrk->vp_index = vha->vp_idx;
  1557. mrk->handle = MAKE_HANDLE(req->id, mrk->handle);
  1558. }
  1559. }
  1560. static void
  1561. qla24xx_els_iocb(srb_t *sp, struct els_entry_24xx *els_iocb)
  1562. {
  1563. struct fc_bsg_job *bsg_job = ((struct srb_ctx *)sp->ctx)->u.bsg_job;
  1564. els_iocb->entry_type = ELS_IOCB_TYPE;
  1565. els_iocb->entry_count = 1;
  1566. els_iocb->sys_define = 0;
  1567. els_iocb->entry_status = 0;
  1568. els_iocb->handle = sp->handle;
  1569. els_iocb->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1570. els_iocb->tx_dsd_count = __constant_cpu_to_le16(bsg_job->request_payload.sg_cnt);
  1571. els_iocb->vp_index = sp->fcport->vp_idx;
  1572. els_iocb->sof_type = EST_SOFI3;
  1573. els_iocb->rx_dsd_count = __constant_cpu_to_le16(bsg_job->reply_payload.sg_cnt);
  1574. els_iocb->opcode =
  1575. (((struct srb_ctx *)sp->ctx)->type == SRB_ELS_CMD_RPT) ?
  1576. bsg_job->request->rqst_data.r_els.els_code :
  1577. bsg_job->request->rqst_data.h_els.command_code;
  1578. els_iocb->port_id[0] = sp->fcport->d_id.b.al_pa;
  1579. els_iocb->port_id[1] = sp->fcport->d_id.b.area;
  1580. els_iocb->port_id[2] = sp->fcport->d_id.b.domain;
  1581. els_iocb->control_flags = 0;
  1582. els_iocb->rx_byte_count =
  1583. cpu_to_le32(bsg_job->reply_payload.payload_len);
  1584. els_iocb->tx_byte_count =
  1585. cpu_to_le32(bsg_job->request_payload.payload_len);
  1586. els_iocb->tx_address[0] = cpu_to_le32(LSD(sg_dma_address
  1587. (bsg_job->request_payload.sg_list)));
  1588. els_iocb->tx_address[1] = cpu_to_le32(MSD(sg_dma_address
  1589. (bsg_job->request_payload.sg_list)));
  1590. els_iocb->tx_len = cpu_to_le32(sg_dma_len
  1591. (bsg_job->request_payload.sg_list));
  1592. els_iocb->rx_address[0] = cpu_to_le32(LSD(sg_dma_address
  1593. (bsg_job->reply_payload.sg_list)));
  1594. els_iocb->rx_address[1] = cpu_to_le32(MSD(sg_dma_address
  1595. (bsg_job->reply_payload.sg_list)));
  1596. els_iocb->rx_len = cpu_to_le32(sg_dma_len
  1597. (bsg_job->reply_payload.sg_list));
  1598. }
  1599. static void
  1600. qla24xx_ct_iocb(srb_t *sp, struct ct_entry_24xx *ct_iocb)
  1601. {
  1602. uint16_t avail_dsds;
  1603. uint32_t *cur_dsd;
  1604. struct scatterlist *sg;
  1605. int index;
  1606. uint16_t tot_dsds;
  1607. scsi_qla_host_t *vha = sp->fcport->vha;
  1608. struct fc_bsg_job *bsg_job = ((struct srb_ctx *)sp->ctx)->u.bsg_job;
  1609. int loop_iterartion = 0;
  1610. int cont_iocb_prsnt = 0;
  1611. int entry_count = 1;
  1612. ct_iocb->entry_type = CT_IOCB_TYPE;
  1613. ct_iocb->entry_status = 0;
  1614. ct_iocb->sys_define = 0;
  1615. ct_iocb->handle = sp->handle;
  1616. ct_iocb->nport_handle = cpu_to_le16(sp->fcport->loop_id);
  1617. ct_iocb->vp_index = sp->fcport->vp_idx;
  1618. ct_iocb->comp_status = __constant_cpu_to_le16(0);
  1619. ct_iocb->cmd_dsd_count =
  1620. __constant_cpu_to_le16(bsg_job->request_payload.sg_cnt);
  1621. ct_iocb->timeout = 0;
  1622. ct_iocb->rsp_dsd_count =
  1623. __constant_cpu_to_le16(bsg_job->reply_payload.sg_cnt);
  1624. ct_iocb->rsp_byte_count =
  1625. cpu_to_le32(bsg_job->reply_payload.payload_len);
  1626. ct_iocb->cmd_byte_count =
  1627. cpu_to_le32(bsg_job->request_payload.payload_len);
  1628. ct_iocb->dseg_0_address[0] = cpu_to_le32(LSD(sg_dma_address
  1629. (bsg_job->request_payload.sg_list)));
  1630. ct_iocb->dseg_0_address[1] = cpu_to_le32(MSD(sg_dma_address
  1631. (bsg_job->request_payload.sg_list)));
  1632. ct_iocb->dseg_0_len = cpu_to_le32(sg_dma_len
  1633. (bsg_job->request_payload.sg_list));
  1634. avail_dsds = 1;
  1635. cur_dsd = (uint32_t *)ct_iocb->dseg_1_address;
  1636. index = 0;
  1637. tot_dsds = bsg_job->reply_payload.sg_cnt;
  1638. for_each_sg(bsg_job->reply_payload.sg_list, sg, tot_dsds, index) {
  1639. dma_addr_t sle_dma;
  1640. cont_a64_entry_t *cont_pkt;
  1641. /* Allocate additional continuation packets? */
  1642. if (avail_dsds == 0) {
  1643. /*
  1644. * Five DSDs are available in the Cont.
  1645. * Type 1 IOCB.
  1646. */
  1647. cont_pkt = qla2x00_prep_cont_type1_iocb(vha);
  1648. cur_dsd = (uint32_t *) cont_pkt->dseg_0_address;
  1649. avail_dsds = 5;
  1650. cont_iocb_prsnt = 1;
  1651. entry_count++;
  1652. }
  1653. sle_dma = sg_dma_address(sg);
  1654. *cur_dsd++ = cpu_to_le32(LSD(sle_dma));
  1655. *cur_dsd++ = cpu_to_le32(MSD(sle_dma));
  1656. *cur_dsd++ = cpu_to_le32(sg_dma_len(sg));
  1657. loop_iterartion++;
  1658. avail_dsds--;
  1659. }
  1660. ct_iocb->entry_count = entry_count;
  1661. }
  1662. int
  1663. qla2x00_start_sp(srb_t *sp)
  1664. {
  1665. int rval;
  1666. struct qla_hw_data *ha = sp->fcport->vha->hw;
  1667. void *pkt;
  1668. struct srb_ctx *ctx = sp->ctx;
  1669. unsigned long flags;
  1670. rval = QLA_FUNCTION_FAILED;
  1671. spin_lock_irqsave(&ha->hardware_lock, flags);
  1672. pkt = qla2x00_alloc_iocbs(sp);
  1673. if (!pkt)
  1674. goto done;
  1675. rval = QLA_SUCCESS;
  1676. switch (ctx->type) {
  1677. case SRB_LOGIN_CMD:
  1678. IS_FWI2_CAPABLE(ha) ?
  1679. qla24xx_login_iocb(sp, pkt) :
  1680. qla2x00_login_iocb(sp, pkt);
  1681. break;
  1682. case SRB_LOGOUT_CMD:
  1683. IS_FWI2_CAPABLE(ha) ?
  1684. qla24xx_logout_iocb(sp, pkt) :
  1685. qla2x00_logout_iocb(sp, pkt);
  1686. break;
  1687. case SRB_ELS_CMD_RPT:
  1688. case SRB_ELS_CMD_HST:
  1689. qla24xx_els_iocb(sp, pkt);
  1690. break;
  1691. case SRB_CT_CMD:
  1692. qla24xx_ct_iocb(sp, pkt);
  1693. break;
  1694. case SRB_ADISC_CMD:
  1695. IS_FWI2_CAPABLE(ha) ?
  1696. qla24xx_adisc_iocb(sp, pkt) :
  1697. qla2x00_adisc_iocb(sp, pkt);
  1698. break;
  1699. case SRB_TM_CMD:
  1700. qla24xx_tm_iocb(sp, pkt);
  1701. break;
  1702. case SRB_MARKER_CMD:
  1703. qla24xx_marker_iocb(sp, pkt);
  1704. break;
  1705. default:
  1706. break;
  1707. }
  1708. wmb();
  1709. qla2x00_start_iocbs(sp);
  1710. done:
  1711. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1712. return rval;
  1713. }