qla_isr.c 68 KB

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  1. /*
  2. * QLogic Fibre Channel HBA Driver
  3. * Copyright (c) 2003-2010 QLogic Corporation
  4. *
  5. * See LICENSE.qla2xxx for copyright and licensing details.
  6. */
  7. #include "qla_def.h"
  8. #include <linux/delay.h>
  9. #include <linux/slab.h>
  10. #include <scsi/scsi_tcq.h>
  11. #include <scsi/scsi_bsg_fc.h>
  12. #include <scsi/scsi_eh.h>
  13. static void qla2x00_mbx_completion(scsi_qla_host_t *, uint16_t);
  14. static void qla2x00_process_completed_request(struct scsi_qla_host *,
  15. struct req_que *, uint32_t);
  16. static void qla2x00_status_entry(scsi_qla_host_t *, struct rsp_que *, void *);
  17. static void qla2x00_status_cont_entry(struct rsp_que *, sts_cont_entry_t *);
  18. static void qla2x00_error_entry(scsi_qla_host_t *, struct rsp_que *,
  19. sts_entry_t *);
  20. /**
  21. * qla2100_intr_handler() - Process interrupts for the ISP2100 and ISP2200.
  22. * @irq:
  23. * @dev_id: SCSI driver HA context
  24. *
  25. * Called by system whenever the host adapter generates an interrupt.
  26. *
  27. * Returns handled flag.
  28. */
  29. irqreturn_t
  30. qla2100_intr_handler(int irq, void *dev_id)
  31. {
  32. scsi_qla_host_t *vha;
  33. struct qla_hw_data *ha;
  34. struct device_reg_2xxx __iomem *reg;
  35. int status;
  36. unsigned long iter;
  37. uint16_t hccr;
  38. uint16_t mb[4];
  39. struct rsp_que *rsp;
  40. unsigned long flags;
  41. rsp = (struct rsp_que *) dev_id;
  42. if (!rsp) {
  43. printk(KERN_INFO
  44. "%s(): NULL response queue pointer\n", __func__);
  45. return (IRQ_NONE);
  46. }
  47. ha = rsp->hw;
  48. reg = &ha->iobase->isp;
  49. status = 0;
  50. spin_lock_irqsave(&ha->hardware_lock, flags);
  51. vha = pci_get_drvdata(ha->pdev);
  52. for (iter = 50; iter--; ) {
  53. hccr = RD_REG_WORD(&reg->hccr);
  54. if (hccr & HCCR_RISC_PAUSE) {
  55. if (pci_channel_offline(ha->pdev))
  56. break;
  57. /*
  58. * Issue a "HARD" reset in order for the RISC interrupt
  59. * bit to be cleared. Schedule a big hammmer to get
  60. * out of the RISC PAUSED state.
  61. */
  62. WRT_REG_WORD(&reg->hccr, HCCR_RESET_RISC);
  63. RD_REG_WORD(&reg->hccr);
  64. ha->isp_ops->fw_dump(vha, 1);
  65. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  66. break;
  67. } else if ((RD_REG_WORD(&reg->istatus) & ISR_RISC_INT) == 0)
  68. break;
  69. if (RD_REG_WORD(&reg->semaphore) & BIT_0) {
  70. WRT_REG_WORD(&reg->hccr, HCCR_CLR_RISC_INT);
  71. RD_REG_WORD(&reg->hccr);
  72. /* Get mailbox data. */
  73. mb[0] = RD_MAILBOX_REG(ha, reg, 0);
  74. if (mb[0] > 0x3fff && mb[0] < 0x8000) {
  75. qla2x00_mbx_completion(vha, mb[0]);
  76. status |= MBX_INTERRUPT;
  77. } else if (mb[0] > 0x7fff && mb[0] < 0xc000) {
  78. mb[1] = RD_MAILBOX_REG(ha, reg, 1);
  79. mb[2] = RD_MAILBOX_REG(ha, reg, 2);
  80. mb[3] = RD_MAILBOX_REG(ha, reg, 3);
  81. qla2x00_async_event(vha, rsp, mb);
  82. } else {
  83. /*EMPTY*/
  84. DEBUG2(printk("scsi(%ld): Unrecognized "
  85. "interrupt type (%d).\n",
  86. vha->host_no, mb[0]));
  87. }
  88. /* Release mailbox registers. */
  89. WRT_REG_WORD(&reg->semaphore, 0);
  90. RD_REG_WORD(&reg->semaphore);
  91. } else {
  92. qla2x00_process_response_queue(rsp);
  93. WRT_REG_WORD(&reg->hccr, HCCR_CLR_RISC_INT);
  94. RD_REG_WORD(&reg->hccr);
  95. }
  96. }
  97. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  98. if (test_bit(MBX_INTR_WAIT, &ha->mbx_cmd_flags) &&
  99. (status & MBX_INTERRUPT) && ha->flags.mbox_int) {
  100. set_bit(MBX_INTERRUPT, &ha->mbx_cmd_flags);
  101. complete(&ha->mbx_intr_comp);
  102. }
  103. return (IRQ_HANDLED);
  104. }
  105. /**
  106. * qla2300_intr_handler() - Process interrupts for the ISP23xx and ISP63xx.
  107. * @irq:
  108. * @dev_id: SCSI driver HA context
  109. *
  110. * Called by system whenever the host adapter generates an interrupt.
  111. *
  112. * Returns handled flag.
  113. */
  114. irqreturn_t
  115. qla2300_intr_handler(int irq, void *dev_id)
  116. {
  117. scsi_qla_host_t *vha;
  118. struct device_reg_2xxx __iomem *reg;
  119. int status;
  120. unsigned long iter;
  121. uint32_t stat;
  122. uint16_t hccr;
  123. uint16_t mb[4];
  124. struct rsp_que *rsp;
  125. struct qla_hw_data *ha;
  126. unsigned long flags;
  127. rsp = (struct rsp_que *) dev_id;
  128. if (!rsp) {
  129. printk(KERN_INFO
  130. "%s(): NULL response queue pointer\n", __func__);
  131. return (IRQ_NONE);
  132. }
  133. ha = rsp->hw;
  134. reg = &ha->iobase->isp;
  135. status = 0;
  136. spin_lock_irqsave(&ha->hardware_lock, flags);
  137. vha = pci_get_drvdata(ha->pdev);
  138. for (iter = 50; iter--; ) {
  139. stat = RD_REG_DWORD(&reg->u.isp2300.host_status);
  140. if (stat & HSR_RISC_PAUSED) {
  141. if (unlikely(pci_channel_offline(ha->pdev)))
  142. break;
  143. hccr = RD_REG_WORD(&reg->hccr);
  144. if (hccr & (BIT_15 | BIT_13 | BIT_11 | BIT_8))
  145. qla_printk(KERN_INFO, ha, "Parity error -- "
  146. "HCCR=%x, Dumping firmware!\n", hccr);
  147. else
  148. qla_printk(KERN_INFO, ha, "RISC paused -- "
  149. "HCCR=%x, Dumping firmware!\n", hccr);
  150. /*
  151. * Issue a "HARD" reset in order for the RISC
  152. * interrupt bit to be cleared. Schedule a big
  153. * hammmer to get out of the RISC PAUSED state.
  154. */
  155. WRT_REG_WORD(&reg->hccr, HCCR_RESET_RISC);
  156. RD_REG_WORD(&reg->hccr);
  157. ha->isp_ops->fw_dump(vha, 1);
  158. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  159. break;
  160. } else if ((stat & HSR_RISC_INT) == 0)
  161. break;
  162. switch (stat & 0xff) {
  163. case 0x1:
  164. case 0x2:
  165. case 0x10:
  166. case 0x11:
  167. qla2x00_mbx_completion(vha, MSW(stat));
  168. status |= MBX_INTERRUPT;
  169. /* Release mailbox registers. */
  170. WRT_REG_WORD(&reg->semaphore, 0);
  171. break;
  172. case 0x12:
  173. mb[0] = MSW(stat);
  174. mb[1] = RD_MAILBOX_REG(ha, reg, 1);
  175. mb[2] = RD_MAILBOX_REG(ha, reg, 2);
  176. mb[3] = RD_MAILBOX_REG(ha, reg, 3);
  177. qla2x00_async_event(vha, rsp, mb);
  178. break;
  179. case 0x13:
  180. qla2x00_process_response_queue(rsp);
  181. break;
  182. case 0x15:
  183. mb[0] = MBA_CMPLT_1_16BIT;
  184. mb[1] = MSW(stat);
  185. qla2x00_async_event(vha, rsp, mb);
  186. break;
  187. case 0x16:
  188. mb[0] = MBA_SCSI_COMPLETION;
  189. mb[1] = MSW(stat);
  190. mb[2] = RD_MAILBOX_REG(ha, reg, 2);
  191. qla2x00_async_event(vha, rsp, mb);
  192. break;
  193. default:
  194. DEBUG2(printk("scsi(%ld): Unrecognized interrupt type "
  195. "(%d).\n",
  196. vha->host_no, stat & 0xff));
  197. break;
  198. }
  199. WRT_REG_WORD(&reg->hccr, HCCR_CLR_RISC_INT);
  200. RD_REG_WORD_RELAXED(&reg->hccr);
  201. }
  202. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  203. if (test_bit(MBX_INTR_WAIT, &ha->mbx_cmd_flags) &&
  204. (status & MBX_INTERRUPT) && ha->flags.mbox_int) {
  205. set_bit(MBX_INTERRUPT, &ha->mbx_cmd_flags);
  206. complete(&ha->mbx_intr_comp);
  207. }
  208. return (IRQ_HANDLED);
  209. }
  210. /**
  211. * qla2x00_mbx_completion() - Process mailbox command completions.
  212. * @ha: SCSI driver HA context
  213. * @mb0: Mailbox0 register
  214. */
  215. static void
  216. qla2x00_mbx_completion(scsi_qla_host_t *vha, uint16_t mb0)
  217. {
  218. uint16_t cnt;
  219. uint16_t __iomem *wptr;
  220. struct qla_hw_data *ha = vha->hw;
  221. struct device_reg_2xxx __iomem *reg = &ha->iobase->isp;
  222. /* Load return mailbox registers. */
  223. ha->flags.mbox_int = 1;
  224. ha->mailbox_out[0] = mb0;
  225. wptr = (uint16_t __iomem *)MAILBOX_REG(ha, reg, 1);
  226. for (cnt = 1; cnt < ha->mbx_count; cnt++) {
  227. if (IS_QLA2200(ha) && cnt == 8)
  228. wptr = (uint16_t __iomem *)MAILBOX_REG(ha, reg, 8);
  229. if (cnt == 4 || cnt == 5)
  230. ha->mailbox_out[cnt] = qla2x00_debounce_register(wptr);
  231. else
  232. ha->mailbox_out[cnt] = RD_REG_WORD(wptr);
  233. wptr++;
  234. }
  235. if (ha->mcp) {
  236. DEBUG3(printk("%s(%ld): Got mailbox completion. cmd=%x.\n",
  237. __func__, vha->host_no, ha->mcp->mb[0]));
  238. } else {
  239. DEBUG2_3(printk("%s(%ld): MBX pointer ERROR!\n",
  240. __func__, vha->host_no));
  241. }
  242. }
  243. static void
  244. qla81xx_idc_event(scsi_qla_host_t *vha, uint16_t aen, uint16_t descr)
  245. {
  246. static char *event[] =
  247. { "Complete", "Request Notification", "Time Extension" };
  248. int rval;
  249. struct device_reg_24xx __iomem *reg24 = &vha->hw->iobase->isp24;
  250. uint16_t __iomem *wptr;
  251. uint16_t cnt, timeout, mb[QLA_IDC_ACK_REGS];
  252. /* Seed data -- mailbox1 -> mailbox7. */
  253. wptr = (uint16_t __iomem *)&reg24->mailbox1;
  254. for (cnt = 0; cnt < QLA_IDC_ACK_REGS; cnt++, wptr++)
  255. mb[cnt] = RD_REG_WORD(wptr);
  256. DEBUG2(printk("scsi(%ld): Inter-Driver Commucation %s -- "
  257. "%04x %04x %04x %04x %04x %04x %04x.\n", vha->host_no,
  258. event[aen & 0xff],
  259. mb[0], mb[1], mb[2], mb[3], mb[4], mb[5], mb[6]));
  260. /* Acknowledgement needed? [Notify && non-zero timeout]. */
  261. timeout = (descr >> 8) & 0xf;
  262. if (aen != MBA_IDC_NOTIFY || !timeout)
  263. return;
  264. DEBUG2(printk("scsi(%ld): Inter-Driver Commucation %s -- "
  265. "ACK timeout=%d.\n", vha->host_no, event[aen & 0xff], timeout));
  266. rval = qla2x00_post_idc_ack_work(vha, mb);
  267. if (rval != QLA_SUCCESS)
  268. qla_printk(KERN_WARNING, vha->hw,
  269. "IDC failed to post ACK.\n");
  270. }
  271. /**
  272. * qla2x00_async_event() - Process aynchronous events.
  273. * @ha: SCSI driver HA context
  274. * @mb: Mailbox registers (0 - 3)
  275. */
  276. void
  277. qla2x00_async_event(scsi_qla_host_t *vha, struct rsp_que *rsp, uint16_t *mb)
  278. {
  279. #define LS_UNKNOWN 2
  280. static char *link_speeds[] = { "1", "2", "?", "4", "8", "10" };
  281. char *link_speed;
  282. uint16_t handle_cnt;
  283. uint16_t cnt, mbx;
  284. uint32_t handles[5];
  285. struct qla_hw_data *ha = vha->hw;
  286. struct device_reg_2xxx __iomem *reg = &ha->iobase->isp;
  287. struct device_reg_24xx __iomem *reg24 = &ha->iobase->isp24;
  288. uint32_t rscn_entry, host_pid;
  289. uint8_t rscn_queue_index;
  290. unsigned long flags;
  291. /* Setup to process RIO completion. */
  292. handle_cnt = 0;
  293. if (IS_QLA8XXX_TYPE(ha))
  294. goto skip_rio;
  295. switch (mb[0]) {
  296. case MBA_SCSI_COMPLETION:
  297. handles[0] = le32_to_cpu((uint32_t)((mb[2] << 16) | mb[1]));
  298. handle_cnt = 1;
  299. break;
  300. case MBA_CMPLT_1_16BIT:
  301. handles[0] = mb[1];
  302. handle_cnt = 1;
  303. mb[0] = MBA_SCSI_COMPLETION;
  304. break;
  305. case MBA_CMPLT_2_16BIT:
  306. handles[0] = mb[1];
  307. handles[1] = mb[2];
  308. handle_cnt = 2;
  309. mb[0] = MBA_SCSI_COMPLETION;
  310. break;
  311. case MBA_CMPLT_3_16BIT:
  312. handles[0] = mb[1];
  313. handles[1] = mb[2];
  314. handles[2] = mb[3];
  315. handle_cnt = 3;
  316. mb[0] = MBA_SCSI_COMPLETION;
  317. break;
  318. case MBA_CMPLT_4_16BIT:
  319. handles[0] = mb[1];
  320. handles[1] = mb[2];
  321. handles[2] = mb[3];
  322. handles[3] = (uint32_t)RD_MAILBOX_REG(ha, reg, 6);
  323. handle_cnt = 4;
  324. mb[0] = MBA_SCSI_COMPLETION;
  325. break;
  326. case MBA_CMPLT_5_16BIT:
  327. handles[0] = mb[1];
  328. handles[1] = mb[2];
  329. handles[2] = mb[3];
  330. handles[3] = (uint32_t)RD_MAILBOX_REG(ha, reg, 6);
  331. handles[4] = (uint32_t)RD_MAILBOX_REG(ha, reg, 7);
  332. handle_cnt = 5;
  333. mb[0] = MBA_SCSI_COMPLETION;
  334. break;
  335. case MBA_CMPLT_2_32BIT:
  336. handles[0] = le32_to_cpu((uint32_t)((mb[2] << 16) | mb[1]));
  337. handles[1] = le32_to_cpu(
  338. ((uint32_t)(RD_MAILBOX_REG(ha, reg, 7) << 16)) |
  339. RD_MAILBOX_REG(ha, reg, 6));
  340. handle_cnt = 2;
  341. mb[0] = MBA_SCSI_COMPLETION;
  342. break;
  343. default:
  344. break;
  345. }
  346. skip_rio:
  347. switch (mb[0]) {
  348. case MBA_SCSI_COMPLETION: /* Fast Post */
  349. if (!vha->flags.online)
  350. break;
  351. for (cnt = 0; cnt < handle_cnt; cnt++)
  352. qla2x00_process_completed_request(vha, rsp->req,
  353. handles[cnt]);
  354. break;
  355. case MBA_RESET: /* Reset */
  356. DEBUG2(printk("scsi(%ld): Asynchronous RESET.\n",
  357. vha->host_no));
  358. set_bit(RESET_MARKER_NEEDED, &vha->dpc_flags);
  359. break;
  360. case MBA_SYSTEM_ERR: /* System Error */
  361. mbx = IS_QLA81XX(ha) ? RD_REG_WORD(&reg24->mailbox7) : 0;
  362. qla_printk(KERN_INFO, ha,
  363. "ISP System Error - mbx1=%xh mbx2=%xh mbx3=%xh "
  364. "mbx7=%xh.\n", mb[1], mb[2], mb[3], mbx);
  365. ha->isp_ops->fw_dump(vha, 1);
  366. if (IS_FWI2_CAPABLE(ha)) {
  367. if (mb[1] == 0 && mb[2] == 0) {
  368. qla_printk(KERN_ERR, ha,
  369. "Unrecoverable Hardware Error: adapter "
  370. "marked OFFLINE!\n");
  371. vha->flags.online = 0;
  372. } else {
  373. /* Check to see if MPI timeout occured */
  374. if ((mbx & MBX_3) && (ha->flags.port0))
  375. set_bit(MPI_RESET_NEEDED,
  376. &vha->dpc_flags);
  377. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  378. }
  379. } else if (mb[1] == 0) {
  380. qla_printk(KERN_INFO, ha,
  381. "Unrecoverable Hardware Error: adapter marked "
  382. "OFFLINE!\n");
  383. vha->flags.online = 0;
  384. } else
  385. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  386. break;
  387. case MBA_REQ_TRANSFER_ERR: /* Request Transfer Error */
  388. DEBUG2(printk("scsi(%ld): ISP Request Transfer Error (%x).\n",
  389. vha->host_no, mb[1]));
  390. qla_printk(KERN_WARNING, ha,
  391. "ISP Request Transfer Error (%x).\n", mb[1]);
  392. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  393. break;
  394. case MBA_RSP_TRANSFER_ERR: /* Response Transfer Error */
  395. DEBUG2(printk("scsi(%ld): ISP Response Transfer Error.\n",
  396. vha->host_no));
  397. qla_printk(KERN_WARNING, ha, "ISP Response Transfer Error.\n");
  398. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  399. break;
  400. case MBA_WAKEUP_THRES: /* Request Queue Wake-up */
  401. DEBUG2(printk("scsi(%ld): Asynchronous WAKEUP_THRES.\n",
  402. vha->host_no));
  403. break;
  404. case MBA_LIP_OCCURRED: /* Loop Initialization Procedure */
  405. DEBUG2(printk("scsi(%ld): LIP occurred (%x).\n", vha->host_no,
  406. mb[1]));
  407. qla_printk(KERN_INFO, ha, "LIP occurred (%x).\n", mb[1]);
  408. if (atomic_read(&vha->loop_state) != LOOP_DOWN) {
  409. atomic_set(&vha->loop_state, LOOP_DOWN);
  410. atomic_set(&vha->loop_down_timer, LOOP_DOWN_TIME);
  411. qla2x00_mark_all_devices_lost(vha, 1);
  412. }
  413. if (vha->vp_idx) {
  414. atomic_set(&vha->vp_state, VP_FAILED);
  415. fc_vport_set_state(vha->fc_vport, FC_VPORT_FAILED);
  416. }
  417. set_bit(REGISTER_FC4_NEEDED, &vha->dpc_flags);
  418. set_bit(REGISTER_FDMI_NEEDED, &vha->dpc_flags);
  419. vha->flags.management_server_logged_in = 0;
  420. qla2x00_post_aen_work(vha, FCH_EVT_LIP, mb[1]);
  421. break;
  422. case MBA_LOOP_UP: /* Loop Up Event */
  423. if (IS_QLA2100(ha) || IS_QLA2200(ha)) {
  424. link_speed = link_speeds[0];
  425. ha->link_data_rate = PORT_SPEED_1GB;
  426. } else {
  427. link_speed = link_speeds[LS_UNKNOWN];
  428. if (mb[1] < 5)
  429. link_speed = link_speeds[mb[1]];
  430. else if (mb[1] == 0x13)
  431. link_speed = link_speeds[5];
  432. ha->link_data_rate = mb[1];
  433. }
  434. DEBUG2(printk("scsi(%ld): Asynchronous LOOP UP (%s Gbps).\n",
  435. vha->host_no, link_speed));
  436. qla_printk(KERN_INFO, ha, "LOOP UP detected (%s Gbps).\n",
  437. link_speed);
  438. vha->flags.management_server_logged_in = 0;
  439. qla2x00_post_aen_work(vha, FCH_EVT_LINKUP, ha->link_data_rate);
  440. break;
  441. case MBA_LOOP_DOWN: /* Loop Down Event */
  442. mbx = IS_QLA81XX(ha) ? RD_REG_WORD(&reg24->mailbox4) : 0;
  443. DEBUG2(printk("scsi(%ld): Asynchronous LOOP DOWN "
  444. "(%x %x %x %x).\n", vha->host_no, mb[1], mb[2], mb[3],
  445. mbx));
  446. qla_printk(KERN_INFO, ha,
  447. "LOOP DOWN detected (%x %x %x %x).\n", mb[1], mb[2], mb[3],
  448. mbx);
  449. if (atomic_read(&vha->loop_state) != LOOP_DOWN) {
  450. atomic_set(&vha->loop_state, LOOP_DOWN);
  451. atomic_set(&vha->loop_down_timer, LOOP_DOWN_TIME);
  452. vha->device_flags |= DFLG_NO_CABLE;
  453. qla2x00_mark_all_devices_lost(vha, 1);
  454. }
  455. if (vha->vp_idx) {
  456. atomic_set(&vha->vp_state, VP_FAILED);
  457. fc_vport_set_state(vha->fc_vport, FC_VPORT_FAILED);
  458. }
  459. vha->flags.management_server_logged_in = 0;
  460. ha->link_data_rate = PORT_SPEED_UNKNOWN;
  461. qla2x00_post_aen_work(vha, FCH_EVT_LINKDOWN, 0);
  462. break;
  463. case MBA_LIP_RESET: /* LIP reset occurred */
  464. DEBUG2(printk("scsi(%ld): Asynchronous LIP RESET (%x).\n",
  465. vha->host_no, mb[1]));
  466. qla_printk(KERN_INFO, ha,
  467. "LIP reset occurred (%x).\n", mb[1]);
  468. if (atomic_read(&vha->loop_state) != LOOP_DOWN) {
  469. atomic_set(&vha->loop_state, LOOP_DOWN);
  470. atomic_set(&vha->loop_down_timer, LOOP_DOWN_TIME);
  471. qla2x00_mark_all_devices_lost(vha, 1);
  472. }
  473. if (vha->vp_idx) {
  474. atomic_set(&vha->vp_state, VP_FAILED);
  475. fc_vport_set_state(vha->fc_vport, FC_VPORT_FAILED);
  476. }
  477. set_bit(RESET_MARKER_NEEDED, &vha->dpc_flags);
  478. ha->operating_mode = LOOP;
  479. vha->flags.management_server_logged_in = 0;
  480. qla2x00_post_aen_work(vha, FCH_EVT_LIPRESET, mb[1]);
  481. break;
  482. /* case MBA_DCBX_COMPLETE: */
  483. case MBA_POINT_TO_POINT: /* Point-to-Point */
  484. if (IS_QLA2100(ha))
  485. break;
  486. if (IS_QLA8XXX_TYPE(ha)) {
  487. DEBUG2(printk("scsi(%ld): DCBX Completed -- %04x %04x "
  488. "%04x\n", vha->host_no, mb[1], mb[2], mb[3]));
  489. if (ha->notify_dcbx_comp)
  490. complete(&ha->dcbx_comp);
  491. } else
  492. DEBUG2(printk("scsi(%ld): Asynchronous P2P MODE "
  493. "received.\n", vha->host_no));
  494. /*
  495. * Until there's a transition from loop down to loop up, treat
  496. * this as loop down only.
  497. */
  498. if (atomic_read(&vha->loop_state) != LOOP_DOWN) {
  499. atomic_set(&vha->loop_state, LOOP_DOWN);
  500. if (!atomic_read(&vha->loop_down_timer))
  501. atomic_set(&vha->loop_down_timer,
  502. LOOP_DOWN_TIME);
  503. qla2x00_mark_all_devices_lost(vha, 1);
  504. }
  505. if (vha->vp_idx) {
  506. atomic_set(&vha->vp_state, VP_FAILED);
  507. fc_vport_set_state(vha->fc_vport, FC_VPORT_FAILED);
  508. }
  509. if (!(test_bit(ABORT_ISP_ACTIVE, &vha->dpc_flags)))
  510. set_bit(RESET_MARKER_NEEDED, &vha->dpc_flags);
  511. set_bit(REGISTER_FC4_NEEDED, &vha->dpc_flags);
  512. set_bit(REGISTER_FDMI_NEEDED, &vha->dpc_flags);
  513. ha->flags.gpsc_supported = 1;
  514. vha->flags.management_server_logged_in = 0;
  515. break;
  516. case MBA_CHG_IN_CONNECTION: /* Change in connection mode */
  517. if (IS_QLA2100(ha))
  518. break;
  519. DEBUG2(printk("scsi(%ld): Asynchronous Change In Connection "
  520. "received.\n",
  521. vha->host_no));
  522. qla_printk(KERN_INFO, ha,
  523. "Configuration change detected: value=%x.\n", mb[1]);
  524. if (atomic_read(&vha->loop_state) != LOOP_DOWN) {
  525. atomic_set(&vha->loop_state, LOOP_DOWN);
  526. if (!atomic_read(&vha->loop_down_timer))
  527. atomic_set(&vha->loop_down_timer,
  528. LOOP_DOWN_TIME);
  529. qla2x00_mark_all_devices_lost(vha, 1);
  530. }
  531. if (vha->vp_idx) {
  532. atomic_set(&vha->vp_state, VP_FAILED);
  533. fc_vport_set_state(vha->fc_vport, FC_VPORT_FAILED);
  534. }
  535. set_bit(LOOP_RESYNC_NEEDED, &vha->dpc_flags);
  536. set_bit(LOCAL_LOOP_UPDATE, &vha->dpc_flags);
  537. break;
  538. case MBA_PORT_UPDATE: /* Port database update */
  539. /*
  540. * Handle only global and vn-port update events
  541. *
  542. * Relevant inputs:
  543. * mb[1] = N_Port handle of changed port
  544. * OR 0xffff for global event
  545. * mb[2] = New login state
  546. * 7 = Port logged out
  547. * mb[3] = LSB is vp_idx, 0xff = all vps
  548. *
  549. * Skip processing if:
  550. * Event is global, vp_idx is NOT all vps,
  551. * vp_idx does not match
  552. * Event is not global, vp_idx does not match
  553. */
  554. if (IS_QLA2XXX_MIDTYPE(ha) &&
  555. ((mb[1] == 0xffff && (mb[3] & 0xff) != 0xff) ||
  556. (mb[1] != 0xffff)) && vha->vp_idx != (mb[3] & 0xff))
  557. break;
  558. /* Global event -- port logout or port unavailable. */
  559. if (mb[1] == 0xffff && mb[2] == 0x7) {
  560. DEBUG2(printk("scsi(%ld): Asynchronous PORT UPDATE.\n",
  561. vha->host_no));
  562. DEBUG(printk(KERN_INFO
  563. "scsi(%ld): Port unavailable %04x %04x %04x.\n",
  564. vha->host_no, mb[1], mb[2], mb[3]));
  565. if (atomic_read(&vha->loop_state) != LOOP_DOWN) {
  566. atomic_set(&vha->loop_state, LOOP_DOWN);
  567. atomic_set(&vha->loop_down_timer,
  568. LOOP_DOWN_TIME);
  569. vha->device_flags |= DFLG_NO_CABLE;
  570. qla2x00_mark_all_devices_lost(vha, 1);
  571. }
  572. if (vha->vp_idx) {
  573. atomic_set(&vha->vp_state, VP_FAILED);
  574. fc_vport_set_state(vha->fc_vport,
  575. FC_VPORT_FAILED);
  576. qla2x00_mark_all_devices_lost(vha, 1);
  577. }
  578. vha->flags.management_server_logged_in = 0;
  579. ha->link_data_rate = PORT_SPEED_UNKNOWN;
  580. break;
  581. }
  582. /*
  583. * If PORT UPDATE is global (received LIP_OCCURRED/LIP_RESET
  584. * event etc. earlier indicating loop is down) then process
  585. * it. Otherwise ignore it and Wait for RSCN to come in.
  586. */
  587. atomic_set(&vha->loop_down_timer, 0);
  588. if (atomic_read(&vha->loop_state) != LOOP_DOWN &&
  589. atomic_read(&vha->loop_state) != LOOP_DEAD) {
  590. DEBUG2(printk("scsi(%ld): Asynchronous PORT UPDATE "
  591. "ignored %04x/%04x/%04x.\n", vha->host_no, mb[1],
  592. mb[2], mb[3]));
  593. break;
  594. }
  595. DEBUG2(printk("scsi(%ld): Asynchronous PORT UPDATE.\n",
  596. vha->host_no));
  597. DEBUG(printk(KERN_INFO
  598. "scsi(%ld): Port database changed %04x %04x %04x.\n",
  599. vha->host_no, mb[1], mb[2], mb[3]));
  600. /*
  601. * Mark all devices as missing so we will login again.
  602. */
  603. atomic_set(&vha->loop_state, LOOP_UP);
  604. qla2x00_mark_all_devices_lost(vha, 1);
  605. vha->flags.rscn_queue_overflow = 1;
  606. set_bit(LOOP_RESYNC_NEEDED, &vha->dpc_flags);
  607. set_bit(LOCAL_LOOP_UPDATE, &vha->dpc_flags);
  608. break;
  609. case MBA_RSCN_UPDATE: /* State Change Registration */
  610. /* Check if the Vport has issued a SCR */
  611. if (vha->vp_idx && test_bit(VP_SCR_NEEDED, &vha->vp_flags))
  612. break;
  613. /* Only handle SCNs for our Vport index. */
  614. if (ha->flags.npiv_supported && vha->vp_idx != (mb[3] & 0xff))
  615. break;
  616. DEBUG2(printk("scsi(%ld): Asynchronous RSCR UPDATE.\n",
  617. vha->host_no));
  618. DEBUG(printk(KERN_INFO
  619. "scsi(%ld): RSCN database changed -- %04x %04x %04x.\n",
  620. vha->host_no, mb[1], mb[2], mb[3]));
  621. rscn_entry = ((mb[1] & 0xff) << 16) | mb[2];
  622. host_pid = (vha->d_id.b.domain << 16) | (vha->d_id.b.area << 8)
  623. | vha->d_id.b.al_pa;
  624. if (rscn_entry == host_pid) {
  625. DEBUG(printk(KERN_INFO
  626. "scsi(%ld): Ignoring RSCN update to local host "
  627. "port ID (%06x)\n",
  628. vha->host_no, host_pid));
  629. break;
  630. }
  631. /* Ignore reserved bits from RSCN-payload. */
  632. rscn_entry = ((mb[1] & 0x3ff) << 16) | mb[2];
  633. rscn_queue_index = vha->rscn_in_ptr + 1;
  634. if (rscn_queue_index == MAX_RSCN_COUNT)
  635. rscn_queue_index = 0;
  636. if (rscn_queue_index != vha->rscn_out_ptr) {
  637. vha->rscn_queue[vha->rscn_in_ptr] = rscn_entry;
  638. vha->rscn_in_ptr = rscn_queue_index;
  639. } else {
  640. vha->flags.rscn_queue_overflow = 1;
  641. }
  642. atomic_set(&vha->loop_state, LOOP_UPDATE);
  643. atomic_set(&vha->loop_down_timer, 0);
  644. vha->flags.management_server_logged_in = 0;
  645. set_bit(LOOP_RESYNC_NEEDED, &vha->dpc_flags);
  646. set_bit(RSCN_UPDATE, &vha->dpc_flags);
  647. qla2x00_post_aen_work(vha, FCH_EVT_RSCN, rscn_entry);
  648. break;
  649. /* case MBA_RIO_RESPONSE: */
  650. case MBA_ZIO_RESPONSE:
  651. DEBUG3(printk("scsi(%ld): [R|Z]IO update completion.\n",
  652. vha->host_no));
  653. if (IS_FWI2_CAPABLE(ha))
  654. qla24xx_process_response_queue(vha, rsp);
  655. else
  656. qla2x00_process_response_queue(rsp);
  657. break;
  658. case MBA_DISCARD_RND_FRAME:
  659. DEBUG2(printk("scsi(%ld): Discard RND Frame -- %04x %04x "
  660. "%04x.\n", vha->host_no, mb[1], mb[2], mb[3]));
  661. break;
  662. case MBA_TRACE_NOTIFICATION:
  663. DEBUG2(printk("scsi(%ld): Trace Notification -- %04x %04x.\n",
  664. vha->host_no, mb[1], mb[2]));
  665. break;
  666. case MBA_ISP84XX_ALERT:
  667. DEBUG2(printk("scsi(%ld): ISP84XX Alert Notification -- "
  668. "%04x %04x %04x\n", vha->host_no, mb[1], mb[2], mb[3]));
  669. spin_lock_irqsave(&ha->cs84xx->access_lock, flags);
  670. switch (mb[1]) {
  671. case A84_PANIC_RECOVERY:
  672. qla_printk(KERN_INFO, ha, "Alert 84XX: panic recovery "
  673. "%04x %04x\n", mb[2], mb[3]);
  674. break;
  675. case A84_OP_LOGIN_COMPLETE:
  676. ha->cs84xx->op_fw_version = mb[3] << 16 | mb[2];
  677. DEBUG2(qla_printk(KERN_INFO, ha, "Alert 84XX:"
  678. "firmware version %x\n", ha->cs84xx->op_fw_version));
  679. break;
  680. case A84_DIAG_LOGIN_COMPLETE:
  681. ha->cs84xx->diag_fw_version = mb[3] << 16 | mb[2];
  682. DEBUG2(qla_printk(KERN_INFO, ha, "Alert 84XX:"
  683. "diagnostic firmware version %x\n",
  684. ha->cs84xx->diag_fw_version));
  685. break;
  686. case A84_GOLD_LOGIN_COMPLETE:
  687. ha->cs84xx->diag_fw_version = mb[3] << 16 | mb[2];
  688. ha->cs84xx->fw_update = 1;
  689. DEBUG2(qla_printk(KERN_INFO, ha, "Alert 84XX: gold "
  690. "firmware version %x\n",
  691. ha->cs84xx->gold_fw_version));
  692. break;
  693. default:
  694. qla_printk(KERN_ERR, ha,
  695. "Alert 84xx: Invalid Alert %04x %04x %04x\n",
  696. mb[1], mb[2], mb[3]);
  697. }
  698. spin_unlock_irqrestore(&ha->cs84xx->access_lock, flags);
  699. break;
  700. case MBA_DCBX_START:
  701. DEBUG2(printk("scsi(%ld): DCBX Started -- %04x %04x %04x\n",
  702. vha->host_no, mb[1], mb[2], mb[3]));
  703. break;
  704. case MBA_DCBX_PARAM_UPDATE:
  705. DEBUG2(printk("scsi(%ld): DCBX Parameters Updated -- "
  706. "%04x %04x %04x\n", vha->host_no, mb[1], mb[2], mb[3]));
  707. break;
  708. case MBA_FCF_CONF_ERR:
  709. DEBUG2(printk("scsi(%ld): FCF Configuration Error -- "
  710. "%04x %04x %04x\n", vha->host_no, mb[1], mb[2], mb[3]));
  711. break;
  712. case MBA_IDC_COMPLETE:
  713. case MBA_IDC_NOTIFY:
  714. case MBA_IDC_TIME_EXT:
  715. qla81xx_idc_event(vha, mb[0], mb[1]);
  716. break;
  717. }
  718. if (!vha->vp_idx && ha->num_vhosts)
  719. qla2x00_alert_all_vps(rsp, mb);
  720. }
  721. /**
  722. * qla2x00_process_completed_request() - Process a Fast Post response.
  723. * @ha: SCSI driver HA context
  724. * @index: SRB index
  725. */
  726. static void
  727. qla2x00_process_completed_request(struct scsi_qla_host *vha,
  728. struct req_que *req, uint32_t index)
  729. {
  730. srb_t *sp;
  731. struct qla_hw_data *ha = vha->hw;
  732. /* Validate handle. */
  733. if (index >= MAX_OUTSTANDING_COMMANDS) {
  734. DEBUG2(printk("scsi(%ld): Invalid SCSI completion handle %d.\n",
  735. vha->host_no, index));
  736. qla_printk(KERN_WARNING, ha,
  737. "Invalid SCSI completion handle %d.\n", index);
  738. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  739. return;
  740. }
  741. sp = req->outstanding_cmds[index];
  742. if (sp) {
  743. /* Free outstanding command slot. */
  744. req->outstanding_cmds[index] = NULL;
  745. /* Save ISP completion status */
  746. sp->cmd->result = DID_OK << 16;
  747. qla2x00_sp_compl(ha, sp);
  748. } else {
  749. DEBUG2(printk("scsi(%ld) Req:%d: Invalid ISP SCSI completion"
  750. " handle(0x%x)\n", vha->host_no, req->id, index));
  751. qla_printk(KERN_WARNING, ha,
  752. "Invalid ISP SCSI completion handle\n");
  753. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  754. }
  755. }
  756. static srb_t *
  757. qla2x00_get_sp_from_handle(scsi_qla_host_t *vha, const char *func,
  758. struct req_que *req, void *iocb)
  759. {
  760. struct qla_hw_data *ha = vha->hw;
  761. sts_entry_t *pkt = iocb;
  762. srb_t *sp = NULL;
  763. uint16_t index;
  764. index = LSW(pkt->handle);
  765. if (index >= MAX_OUTSTANDING_COMMANDS) {
  766. qla_printk(KERN_WARNING, ha,
  767. "%s: Invalid completion handle (%x).\n", func, index);
  768. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  769. goto done;
  770. }
  771. sp = req->outstanding_cmds[index];
  772. if (!sp) {
  773. qla_printk(KERN_WARNING, ha,
  774. "%s: Invalid completion handle (%x) -- timed-out.\n", func,
  775. index);
  776. return sp;
  777. }
  778. if (sp->handle != index) {
  779. qla_printk(KERN_WARNING, ha,
  780. "%s: SRB handle (%x) mismatch %x.\n", func, sp->handle,
  781. index);
  782. return NULL;
  783. }
  784. req->outstanding_cmds[index] = NULL;
  785. done:
  786. return sp;
  787. }
  788. static void
  789. qla2x00_mbx_iocb_entry(scsi_qla_host_t *vha, struct req_que *req,
  790. struct mbx_entry *mbx)
  791. {
  792. const char func[] = "MBX-IOCB";
  793. const char *type;
  794. fc_port_t *fcport;
  795. srb_t *sp;
  796. struct srb_iocb *lio;
  797. struct srb_ctx *ctx;
  798. uint16_t *data;
  799. uint16_t status;
  800. sp = qla2x00_get_sp_from_handle(vha, func, req, mbx);
  801. if (!sp)
  802. return;
  803. ctx = sp->ctx;
  804. lio = ctx->u.iocb_cmd;
  805. type = ctx->name;
  806. fcport = sp->fcport;
  807. data = lio->u.logio.data;
  808. data[0] = MBS_COMMAND_ERROR;
  809. data[1] = lio->u.logio.flags & SRB_LOGIN_RETRIED ?
  810. QLA_LOGIO_LOGIN_RETRIED : 0;
  811. if (mbx->entry_status) {
  812. DEBUG2(printk(KERN_WARNING
  813. "scsi(%ld:%x): Async-%s error entry - portid=%02x%02x%02x "
  814. "entry-status=%x status=%x state-flag=%x "
  815. "status-flags=%x.\n",
  816. fcport->vha->host_no, sp->handle, type,
  817. fcport->d_id.b.domain, fcport->d_id.b.area,
  818. fcport->d_id.b.al_pa, mbx->entry_status,
  819. le16_to_cpu(mbx->status), le16_to_cpu(mbx->state_flags),
  820. le16_to_cpu(mbx->status_flags)));
  821. DEBUG2(qla2x00_dump_buffer((uint8_t *)mbx, sizeof(*mbx)));
  822. goto logio_done;
  823. }
  824. status = le16_to_cpu(mbx->status);
  825. if (status == 0x30 && ctx->type == SRB_LOGIN_CMD &&
  826. le16_to_cpu(mbx->mb0) == MBS_COMMAND_COMPLETE)
  827. status = 0;
  828. if (!status && le16_to_cpu(mbx->mb0) == MBS_COMMAND_COMPLETE) {
  829. DEBUG2(printk(KERN_DEBUG
  830. "scsi(%ld:%x): Async-%s complete - portid=%02x%02x%02x "
  831. "mbx1=%x.\n",
  832. fcport->vha->host_no, sp->handle, type,
  833. fcport->d_id.b.domain, fcport->d_id.b.area,
  834. fcport->d_id.b.al_pa, le16_to_cpu(mbx->mb1)));
  835. data[0] = MBS_COMMAND_COMPLETE;
  836. if (ctx->type == SRB_LOGIN_CMD) {
  837. fcport->port_type = FCT_TARGET;
  838. if (le16_to_cpu(mbx->mb1) & BIT_0)
  839. fcport->port_type = FCT_INITIATOR;
  840. else if (le16_to_cpu(mbx->mb1) & BIT_1)
  841. fcport->flags |= FCF_FCP2_DEVICE;
  842. }
  843. goto logio_done;
  844. }
  845. data[0] = le16_to_cpu(mbx->mb0);
  846. switch (data[0]) {
  847. case MBS_PORT_ID_USED:
  848. data[1] = le16_to_cpu(mbx->mb1);
  849. break;
  850. case MBS_LOOP_ID_USED:
  851. break;
  852. default:
  853. data[0] = MBS_COMMAND_ERROR;
  854. break;
  855. }
  856. DEBUG2(printk(KERN_WARNING
  857. "scsi(%ld:%x): Async-%s failed - portid=%02x%02x%02x status=%x "
  858. "mb0=%x mb1=%x mb2=%x mb6=%x mb7=%x.\n",
  859. fcport->vha->host_no, sp->handle, type, fcport->d_id.b.domain,
  860. fcport->d_id.b.area, fcport->d_id.b.al_pa, status,
  861. le16_to_cpu(mbx->mb0), le16_to_cpu(mbx->mb1),
  862. le16_to_cpu(mbx->mb2), le16_to_cpu(mbx->mb6),
  863. le16_to_cpu(mbx->mb7)));
  864. logio_done:
  865. lio->done(sp);
  866. }
  867. static void
  868. qla2x00_ct_entry(scsi_qla_host_t *vha, struct req_que *req,
  869. sts_entry_t *pkt, int iocb_type)
  870. {
  871. const char func[] = "CT_IOCB";
  872. const char *type;
  873. struct qla_hw_data *ha = vha->hw;
  874. srb_t *sp;
  875. struct srb_ctx *sp_bsg;
  876. struct fc_bsg_job *bsg_job;
  877. uint16_t comp_status;
  878. sp = qla2x00_get_sp_from_handle(vha, func, req, pkt);
  879. if (!sp)
  880. return;
  881. sp_bsg = sp->ctx;
  882. bsg_job = sp_bsg->u.bsg_job;
  883. type = NULL;
  884. switch (sp_bsg->type) {
  885. case SRB_CT_CMD:
  886. type = "ct pass-through";
  887. break;
  888. default:
  889. qla_printk(KERN_WARNING, ha,
  890. "%s: Unrecognized SRB: (%p) type=%d.\n", func, sp,
  891. sp_bsg->type);
  892. return;
  893. }
  894. comp_status = le16_to_cpu(pkt->comp_status);
  895. /* return FC_CTELS_STATUS_OK and leave the decoding of the ELS/CT
  896. * fc payload to the caller
  897. */
  898. bsg_job->reply->reply_data.ctels_reply.status = FC_CTELS_STATUS_OK;
  899. bsg_job->reply_len = sizeof(struct fc_bsg_reply);
  900. if (comp_status != CS_COMPLETE) {
  901. if (comp_status == CS_DATA_UNDERRUN) {
  902. bsg_job->reply->result = DID_OK << 16;
  903. bsg_job->reply->reply_payload_rcv_len =
  904. le16_to_cpu(((sts_entry_t *)pkt)->rsp_info_len);
  905. DEBUG2(qla_printk(KERN_WARNING, ha,
  906. "scsi(%ld): CT pass-through-%s error "
  907. "comp_status-status=0x%x total_byte = 0x%x.\n",
  908. vha->host_no, type, comp_status,
  909. bsg_job->reply->reply_payload_rcv_len));
  910. } else {
  911. DEBUG2(qla_printk(KERN_WARNING, ha,
  912. "scsi(%ld): CT pass-through-%s error "
  913. "comp_status-status=0x%x.\n",
  914. vha->host_no, type, comp_status));
  915. bsg_job->reply->result = DID_ERROR << 16;
  916. bsg_job->reply->reply_payload_rcv_len = 0;
  917. }
  918. DEBUG2(qla2x00_dump_buffer((uint8_t *)pkt, sizeof(*pkt)));
  919. } else {
  920. bsg_job->reply->result = DID_OK << 16;;
  921. bsg_job->reply->reply_payload_rcv_len =
  922. bsg_job->reply_payload.payload_len;
  923. bsg_job->reply_len = 0;
  924. }
  925. dma_unmap_sg(&ha->pdev->dev, bsg_job->request_payload.sg_list,
  926. bsg_job->request_payload.sg_cnt, DMA_TO_DEVICE);
  927. dma_unmap_sg(&ha->pdev->dev, bsg_job->reply_payload.sg_list,
  928. bsg_job->reply_payload.sg_cnt, DMA_FROM_DEVICE);
  929. if (sp_bsg->type == SRB_ELS_CMD_HST || sp_bsg->type == SRB_CT_CMD)
  930. kfree(sp->fcport);
  931. kfree(sp->ctx);
  932. mempool_free(sp, ha->srb_mempool);
  933. bsg_job->job_done(bsg_job);
  934. }
  935. static void
  936. qla24xx_els_ct_entry(scsi_qla_host_t *vha, struct req_que *req,
  937. struct sts_entry_24xx *pkt, int iocb_type)
  938. {
  939. const char func[] = "ELS_CT_IOCB";
  940. const char *type;
  941. struct qla_hw_data *ha = vha->hw;
  942. srb_t *sp;
  943. struct srb_ctx *sp_bsg;
  944. struct fc_bsg_job *bsg_job;
  945. uint16_t comp_status;
  946. uint32_t fw_status[3];
  947. uint8_t* fw_sts_ptr;
  948. sp = qla2x00_get_sp_from_handle(vha, func, req, pkt);
  949. if (!sp)
  950. return;
  951. sp_bsg = sp->ctx;
  952. bsg_job = sp_bsg->u.bsg_job;
  953. type = NULL;
  954. switch (sp_bsg->type) {
  955. case SRB_ELS_CMD_RPT:
  956. case SRB_ELS_CMD_HST:
  957. type = "els";
  958. break;
  959. case SRB_CT_CMD:
  960. type = "ct pass-through";
  961. break;
  962. default:
  963. qla_printk(KERN_WARNING, ha,
  964. "%s: Unrecognized SRB: (%p) type=%d.\n", func, sp,
  965. sp_bsg->type);
  966. return;
  967. }
  968. comp_status = fw_status[0] = le16_to_cpu(pkt->comp_status);
  969. fw_status[1] = le16_to_cpu(((struct els_sts_entry_24xx*)pkt)->error_subcode_1);
  970. fw_status[2] = le16_to_cpu(((struct els_sts_entry_24xx*)pkt)->error_subcode_2);
  971. /* return FC_CTELS_STATUS_OK and leave the decoding of the ELS/CT
  972. * fc payload to the caller
  973. */
  974. bsg_job->reply->reply_data.ctels_reply.status = FC_CTELS_STATUS_OK;
  975. bsg_job->reply_len = sizeof(struct fc_bsg_reply) + sizeof(fw_status);
  976. if (comp_status != CS_COMPLETE) {
  977. if (comp_status == CS_DATA_UNDERRUN) {
  978. bsg_job->reply->result = DID_OK << 16;
  979. bsg_job->reply->reply_payload_rcv_len =
  980. le16_to_cpu(((struct els_sts_entry_24xx*)pkt)->total_byte_count);
  981. DEBUG2(qla_printk(KERN_WARNING, ha,
  982. "scsi(%ld:0x%x): ELS-CT pass-through-%s error comp_status-status=0x%x "
  983. "error subcode 1=0x%x error subcode 2=0x%x total_byte = 0x%x.\n",
  984. vha->host_no, sp->handle, type, comp_status, fw_status[1], fw_status[2],
  985. le16_to_cpu(((struct els_sts_entry_24xx*)pkt)->total_byte_count)));
  986. fw_sts_ptr = ((uint8_t*)bsg_job->req->sense) + sizeof(struct fc_bsg_reply);
  987. memcpy( fw_sts_ptr, fw_status, sizeof(fw_status));
  988. }
  989. else {
  990. DEBUG2(qla_printk(KERN_WARNING, ha,
  991. "scsi(%ld:0x%x): ELS-CT pass-through-%s error comp_status-status=0x%x "
  992. "error subcode 1=0x%x error subcode 2=0x%x.\n",
  993. vha->host_no, sp->handle, type, comp_status,
  994. le16_to_cpu(((struct els_sts_entry_24xx*)pkt)->error_subcode_1),
  995. le16_to_cpu(((struct els_sts_entry_24xx*)pkt)->error_subcode_2)));
  996. bsg_job->reply->result = DID_ERROR << 16;
  997. bsg_job->reply->reply_payload_rcv_len = 0;
  998. fw_sts_ptr = ((uint8_t*)bsg_job->req->sense) + sizeof(struct fc_bsg_reply);
  999. memcpy( fw_sts_ptr, fw_status, sizeof(fw_status));
  1000. }
  1001. DEBUG2(qla2x00_dump_buffer((uint8_t *)pkt, sizeof(*pkt)));
  1002. }
  1003. else {
  1004. bsg_job->reply->result = DID_OK << 16;;
  1005. bsg_job->reply->reply_payload_rcv_len = bsg_job->reply_payload.payload_len;
  1006. bsg_job->reply_len = 0;
  1007. }
  1008. dma_unmap_sg(&ha->pdev->dev,
  1009. bsg_job->request_payload.sg_list,
  1010. bsg_job->request_payload.sg_cnt, DMA_TO_DEVICE);
  1011. dma_unmap_sg(&ha->pdev->dev,
  1012. bsg_job->reply_payload.sg_list,
  1013. bsg_job->reply_payload.sg_cnt, DMA_FROM_DEVICE);
  1014. if ((sp_bsg->type == SRB_ELS_CMD_HST) ||
  1015. (sp_bsg->type == SRB_CT_CMD))
  1016. kfree(sp->fcport);
  1017. kfree(sp->ctx);
  1018. mempool_free(sp, ha->srb_mempool);
  1019. bsg_job->job_done(bsg_job);
  1020. }
  1021. static void
  1022. qla24xx_logio_entry(scsi_qla_host_t *vha, struct req_que *req,
  1023. struct logio_entry_24xx *logio)
  1024. {
  1025. const char func[] = "LOGIO-IOCB";
  1026. const char *type;
  1027. fc_port_t *fcport;
  1028. srb_t *sp;
  1029. struct srb_iocb *lio;
  1030. struct srb_ctx *ctx;
  1031. uint16_t *data;
  1032. uint32_t iop[2];
  1033. sp = qla2x00_get_sp_from_handle(vha, func, req, logio);
  1034. if (!sp)
  1035. return;
  1036. ctx = sp->ctx;
  1037. lio = ctx->u.iocb_cmd;
  1038. type = ctx->name;
  1039. fcport = sp->fcport;
  1040. data = lio->u.logio.data;
  1041. data[0] = MBS_COMMAND_ERROR;
  1042. data[1] = lio->u.logio.flags & SRB_LOGIN_RETRIED ?
  1043. QLA_LOGIO_LOGIN_RETRIED : 0;
  1044. if (logio->entry_status) {
  1045. DEBUG2(printk(KERN_WARNING
  1046. "scsi(%ld:%x): Async-%s error entry - "
  1047. "portid=%02x%02x%02x entry-status=%x.\n",
  1048. fcport->vha->host_no, sp->handle, type,
  1049. fcport->d_id.b.domain, fcport->d_id.b.area,
  1050. fcport->d_id.b.al_pa, logio->entry_status));
  1051. DEBUG2(qla2x00_dump_buffer((uint8_t *)logio, sizeof(*logio)));
  1052. goto logio_done;
  1053. }
  1054. if (le16_to_cpu(logio->comp_status) == CS_COMPLETE) {
  1055. DEBUG2(printk(KERN_DEBUG
  1056. "scsi(%ld:%x): Async-%s complete - portid=%02x%02x%02x "
  1057. "iop0=%x.\n",
  1058. fcport->vha->host_no, sp->handle, type,
  1059. fcport->d_id.b.domain, fcport->d_id.b.area,
  1060. fcport->d_id.b.al_pa,
  1061. le32_to_cpu(logio->io_parameter[0])));
  1062. data[0] = MBS_COMMAND_COMPLETE;
  1063. if (ctx->type != SRB_LOGIN_CMD)
  1064. goto logio_done;
  1065. iop[0] = le32_to_cpu(logio->io_parameter[0]);
  1066. if (iop[0] & BIT_4) {
  1067. fcport->port_type = FCT_TARGET;
  1068. if (iop[0] & BIT_8)
  1069. fcport->flags |= FCF_FCP2_DEVICE;
  1070. } else if (iop[0] & BIT_5)
  1071. fcport->port_type = FCT_INITIATOR;
  1072. if (logio->io_parameter[7] || logio->io_parameter[8])
  1073. fcport->supported_classes |= FC_COS_CLASS2;
  1074. if (logio->io_parameter[9] || logio->io_parameter[10])
  1075. fcport->supported_classes |= FC_COS_CLASS3;
  1076. goto logio_done;
  1077. }
  1078. iop[0] = le32_to_cpu(logio->io_parameter[0]);
  1079. iop[1] = le32_to_cpu(logio->io_parameter[1]);
  1080. switch (iop[0]) {
  1081. case LSC_SCODE_PORTID_USED:
  1082. data[0] = MBS_PORT_ID_USED;
  1083. data[1] = LSW(iop[1]);
  1084. break;
  1085. case LSC_SCODE_NPORT_USED:
  1086. data[0] = MBS_LOOP_ID_USED;
  1087. break;
  1088. default:
  1089. data[0] = MBS_COMMAND_ERROR;
  1090. break;
  1091. }
  1092. DEBUG2(printk(KERN_WARNING
  1093. "scsi(%ld:%x): Async-%s failed - portid=%02x%02x%02x comp=%x "
  1094. "iop0=%x iop1=%x.\n",
  1095. fcport->vha->host_no, sp->handle, type, fcport->d_id.b.domain,
  1096. fcport->d_id.b.area, fcport->d_id.b.al_pa,
  1097. le16_to_cpu(logio->comp_status),
  1098. le32_to_cpu(logio->io_parameter[0]),
  1099. le32_to_cpu(logio->io_parameter[1])));
  1100. logio_done:
  1101. lio->done(sp);
  1102. }
  1103. static void
  1104. qla24xx_tm_iocb_entry(scsi_qla_host_t *vha, struct req_que *req,
  1105. struct tsk_mgmt_entry *tsk)
  1106. {
  1107. const char func[] = "TMF-IOCB";
  1108. const char *type;
  1109. fc_port_t *fcport;
  1110. srb_t *sp;
  1111. struct srb_iocb *iocb;
  1112. struct srb_ctx *ctx;
  1113. struct sts_entry_24xx *sts = (struct sts_entry_24xx *)tsk;
  1114. int error = 1;
  1115. sp = qla2x00_get_sp_from_handle(vha, func, req, tsk);
  1116. if (!sp)
  1117. return;
  1118. ctx = sp->ctx;
  1119. iocb = ctx->u.iocb_cmd;
  1120. type = ctx->name;
  1121. fcport = sp->fcport;
  1122. if (sts->entry_status) {
  1123. DEBUG2(printk(KERN_WARNING
  1124. "scsi(%ld:%x): Async-%s error - entry-status(%x).\n",
  1125. fcport->vha->host_no, sp->handle, type,
  1126. sts->entry_status));
  1127. } else if (sts->comp_status != __constant_cpu_to_le16(CS_COMPLETE)) {
  1128. DEBUG2(printk(KERN_WARNING
  1129. "scsi(%ld:%x): Async-%s error - completion status(%x).\n",
  1130. fcport->vha->host_no, sp->handle, type,
  1131. sts->comp_status));
  1132. } else if (!(le16_to_cpu(sts->scsi_status) &
  1133. SS_RESPONSE_INFO_LEN_VALID)) {
  1134. DEBUG2(printk(KERN_WARNING
  1135. "scsi(%ld:%x): Async-%s error - no response info(%x).\n",
  1136. fcport->vha->host_no, sp->handle, type,
  1137. sts->scsi_status));
  1138. } else if (le32_to_cpu(sts->rsp_data_len) < 4) {
  1139. DEBUG2(printk(KERN_WARNING
  1140. "scsi(%ld:%x): Async-%s error - not enough response(%d).\n",
  1141. fcport->vha->host_no, sp->handle, type,
  1142. sts->rsp_data_len));
  1143. } else if (sts->data[3]) {
  1144. DEBUG2(printk(KERN_WARNING
  1145. "scsi(%ld:%x): Async-%s error - response(%x).\n",
  1146. fcport->vha->host_no, sp->handle, type,
  1147. sts->data[3]));
  1148. } else {
  1149. error = 0;
  1150. }
  1151. if (error) {
  1152. iocb->u.tmf.data = error;
  1153. DEBUG2(qla2x00_dump_buffer((uint8_t *)sts, sizeof(*sts)));
  1154. }
  1155. iocb->done(sp);
  1156. }
  1157. /**
  1158. * qla2x00_process_response_queue() - Process response queue entries.
  1159. * @ha: SCSI driver HA context
  1160. */
  1161. void
  1162. qla2x00_process_response_queue(struct rsp_que *rsp)
  1163. {
  1164. struct scsi_qla_host *vha;
  1165. struct qla_hw_data *ha = rsp->hw;
  1166. struct device_reg_2xxx __iomem *reg = &ha->iobase->isp;
  1167. sts_entry_t *pkt;
  1168. uint16_t handle_cnt;
  1169. uint16_t cnt;
  1170. vha = pci_get_drvdata(ha->pdev);
  1171. if (!vha->flags.online)
  1172. return;
  1173. while (rsp->ring_ptr->signature != RESPONSE_PROCESSED) {
  1174. pkt = (sts_entry_t *)rsp->ring_ptr;
  1175. rsp->ring_index++;
  1176. if (rsp->ring_index == rsp->length) {
  1177. rsp->ring_index = 0;
  1178. rsp->ring_ptr = rsp->ring;
  1179. } else {
  1180. rsp->ring_ptr++;
  1181. }
  1182. if (pkt->entry_status != 0) {
  1183. DEBUG3(printk(KERN_INFO
  1184. "scsi(%ld): Process error entry.\n", vha->host_no));
  1185. qla2x00_error_entry(vha, rsp, pkt);
  1186. ((response_t *)pkt)->signature = RESPONSE_PROCESSED;
  1187. wmb();
  1188. continue;
  1189. }
  1190. switch (pkt->entry_type) {
  1191. case STATUS_TYPE:
  1192. qla2x00_status_entry(vha, rsp, pkt);
  1193. break;
  1194. case STATUS_TYPE_21:
  1195. handle_cnt = ((sts21_entry_t *)pkt)->handle_count;
  1196. for (cnt = 0; cnt < handle_cnt; cnt++) {
  1197. qla2x00_process_completed_request(vha, rsp->req,
  1198. ((sts21_entry_t *)pkt)->handle[cnt]);
  1199. }
  1200. break;
  1201. case STATUS_TYPE_22:
  1202. handle_cnt = ((sts22_entry_t *)pkt)->handle_count;
  1203. for (cnt = 0; cnt < handle_cnt; cnt++) {
  1204. qla2x00_process_completed_request(vha, rsp->req,
  1205. ((sts22_entry_t *)pkt)->handle[cnt]);
  1206. }
  1207. break;
  1208. case STATUS_CONT_TYPE:
  1209. qla2x00_status_cont_entry(rsp, (sts_cont_entry_t *)pkt);
  1210. break;
  1211. case MBX_IOCB_TYPE:
  1212. qla2x00_mbx_iocb_entry(vha, rsp->req,
  1213. (struct mbx_entry *)pkt);
  1214. break;
  1215. case CT_IOCB_TYPE:
  1216. qla2x00_ct_entry(vha, rsp->req, pkt, CT_IOCB_TYPE);
  1217. break;
  1218. default:
  1219. /* Type Not Supported. */
  1220. DEBUG4(printk(KERN_WARNING
  1221. "scsi(%ld): Received unknown response pkt type %x "
  1222. "entry status=%x.\n",
  1223. vha->host_no, pkt->entry_type, pkt->entry_status));
  1224. break;
  1225. }
  1226. ((response_t *)pkt)->signature = RESPONSE_PROCESSED;
  1227. wmb();
  1228. }
  1229. /* Adjust ring index */
  1230. WRT_REG_WORD(ISP_RSP_Q_OUT(ha, reg), rsp->ring_index);
  1231. }
  1232. static inline void
  1233. qla2x00_handle_sense(srb_t *sp, uint8_t *sense_data, uint32_t par_sense_len,
  1234. uint32_t sense_len, struct rsp_que *rsp)
  1235. {
  1236. struct scsi_cmnd *cp = sp->cmd;
  1237. if (sense_len >= SCSI_SENSE_BUFFERSIZE)
  1238. sense_len = SCSI_SENSE_BUFFERSIZE;
  1239. sp->request_sense_length = sense_len;
  1240. sp->request_sense_ptr = cp->sense_buffer;
  1241. if (sp->request_sense_length > par_sense_len)
  1242. sense_len = par_sense_len;
  1243. memcpy(cp->sense_buffer, sense_data, sense_len);
  1244. sp->request_sense_ptr += sense_len;
  1245. sp->request_sense_length -= sense_len;
  1246. if (sp->request_sense_length != 0)
  1247. rsp->status_srb = sp;
  1248. DEBUG5(printk("%s(): Check condition Sense data, scsi(%ld:%d:%d:%d) "
  1249. "cmd=%p\n", __func__, sp->fcport->vha->host_no,
  1250. cp->device->channel, cp->device->id, cp->device->lun, cp));
  1251. if (sense_len)
  1252. DEBUG5(qla2x00_dump_buffer(cp->sense_buffer, sense_len));
  1253. }
  1254. struct scsi_dif_tuple {
  1255. __be16 guard; /* Checksum */
  1256. __be16 app_tag; /* APPL identifer */
  1257. __be32 ref_tag; /* Target LBA or indirect LBA */
  1258. };
  1259. /*
  1260. * Checks the guard or meta-data for the type of error
  1261. * detected by the HBA. In case of errors, we set the
  1262. * ASC/ASCQ fields in the sense buffer with ILLEGAL_REQUEST
  1263. * to indicate to the kernel that the HBA detected error.
  1264. */
  1265. static inline void
  1266. qla2x00_handle_dif_error(srb_t *sp, struct sts_entry_24xx *sts24)
  1267. {
  1268. struct scsi_cmnd *cmd = sp->cmd;
  1269. struct scsi_dif_tuple *ep =
  1270. (struct scsi_dif_tuple *)&sts24->data[20];
  1271. struct scsi_dif_tuple *ap =
  1272. (struct scsi_dif_tuple *)&sts24->data[12];
  1273. uint32_t e_ref_tag, a_ref_tag;
  1274. uint16_t e_app_tag, a_app_tag;
  1275. uint16_t e_guard, a_guard;
  1276. e_ref_tag = be32_to_cpu(ep->ref_tag);
  1277. a_ref_tag = be32_to_cpu(ap->ref_tag);
  1278. e_app_tag = be16_to_cpu(ep->app_tag);
  1279. a_app_tag = be16_to_cpu(ap->app_tag);
  1280. e_guard = be16_to_cpu(ep->guard);
  1281. a_guard = be16_to_cpu(ap->guard);
  1282. DEBUG18(printk(KERN_DEBUG
  1283. "%s(): iocb(s) %p Returned STATUS\n", __func__, sts24));
  1284. DEBUG18(printk(KERN_ERR "DIF ERROR in cmd 0x%x lba 0x%llx act ref"
  1285. " tag=0x%x, exp ref_tag=0x%x, act app tag=0x%x, exp app"
  1286. " tag=0x%x, act guard=0x%x, exp guard=0x%x\n",
  1287. cmd->cmnd[0], (u64)scsi_get_lba(cmd), a_ref_tag, e_ref_tag,
  1288. a_app_tag, e_app_tag, a_guard, e_guard));
  1289. /* check guard */
  1290. if (e_guard != a_guard) {
  1291. scsi_build_sense_buffer(1, cmd->sense_buffer, ILLEGAL_REQUEST,
  1292. 0x10, 0x1);
  1293. set_driver_byte(cmd, DRIVER_SENSE);
  1294. set_host_byte(cmd, DID_ABORT);
  1295. cmd->result |= SAM_STAT_CHECK_CONDITION << 1;
  1296. return;
  1297. }
  1298. /* check appl tag */
  1299. if (e_app_tag != a_app_tag) {
  1300. scsi_build_sense_buffer(1, cmd->sense_buffer, ILLEGAL_REQUEST,
  1301. 0x10, 0x2);
  1302. set_driver_byte(cmd, DRIVER_SENSE);
  1303. set_host_byte(cmd, DID_ABORT);
  1304. cmd->result |= SAM_STAT_CHECK_CONDITION << 1;
  1305. return;
  1306. }
  1307. /* check ref tag */
  1308. if (e_ref_tag != a_ref_tag) {
  1309. scsi_build_sense_buffer(1, cmd->sense_buffer, ILLEGAL_REQUEST,
  1310. 0x10, 0x3);
  1311. set_driver_byte(cmd, DRIVER_SENSE);
  1312. set_host_byte(cmd, DID_ABORT);
  1313. cmd->result |= SAM_STAT_CHECK_CONDITION << 1;
  1314. return;
  1315. }
  1316. }
  1317. /**
  1318. * qla2x00_status_entry() - Process a Status IOCB entry.
  1319. * @ha: SCSI driver HA context
  1320. * @pkt: Entry pointer
  1321. */
  1322. static void
  1323. qla2x00_status_entry(scsi_qla_host_t *vha, struct rsp_que *rsp, void *pkt)
  1324. {
  1325. srb_t *sp;
  1326. fc_port_t *fcport;
  1327. struct scsi_cmnd *cp;
  1328. sts_entry_t *sts;
  1329. struct sts_entry_24xx *sts24;
  1330. uint16_t comp_status;
  1331. uint16_t scsi_status;
  1332. uint16_t ox_id;
  1333. uint8_t lscsi_status;
  1334. int32_t resid;
  1335. uint32_t sense_len, par_sense_len, rsp_info_len, resid_len,
  1336. fw_resid_len;
  1337. uint8_t *rsp_info, *sense_data;
  1338. struct qla_hw_data *ha = vha->hw;
  1339. uint32_t handle;
  1340. uint16_t que;
  1341. struct req_que *req;
  1342. int logit = 1;
  1343. sts = (sts_entry_t *) pkt;
  1344. sts24 = (struct sts_entry_24xx *) pkt;
  1345. if (IS_FWI2_CAPABLE(ha)) {
  1346. comp_status = le16_to_cpu(sts24->comp_status);
  1347. scsi_status = le16_to_cpu(sts24->scsi_status) & SS_MASK;
  1348. } else {
  1349. comp_status = le16_to_cpu(sts->comp_status);
  1350. scsi_status = le16_to_cpu(sts->scsi_status) & SS_MASK;
  1351. }
  1352. handle = (uint32_t) LSW(sts->handle);
  1353. que = MSW(sts->handle);
  1354. req = ha->req_q_map[que];
  1355. /* Fast path completion. */
  1356. if (comp_status == CS_COMPLETE && scsi_status == 0) {
  1357. qla2x00_process_completed_request(vha, req, handle);
  1358. return;
  1359. }
  1360. /* Validate handle. */
  1361. if (handle < MAX_OUTSTANDING_COMMANDS) {
  1362. sp = req->outstanding_cmds[handle];
  1363. req->outstanding_cmds[handle] = NULL;
  1364. } else
  1365. sp = NULL;
  1366. if (sp == NULL) {
  1367. qla_printk(KERN_WARNING, ha,
  1368. "scsi(%ld): Invalid status handle (0x%x).\n", vha->host_no,
  1369. sts->handle);
  1370. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  1371. qla2xxx_wake_dpc(vha);
  1372. return;
  1373. }
  1374. cp = sp->cmd;
  1375. if (cp == NULL) {
  1376. qla_printk(KERN_WARNING, ha,
  1377. "scsi(%ld): Command already returned (0x%x/%p).\n",
  1378. vha->host_no, sts->handle, sp);
  1379. return;
  1380. }
  1381. lscsi_status = scsi_status & STATUS_MASK;
  1382. fcport = sp->fcport;
  1383. ox_id = 0;
  1384. sense_len = par_sense_len = rsp_info_len = resid_len =
  1385. fw_resid_len = 0;
  1386. if (IS_FWI2_CAPABLE(ha)) {
  1387. if (scsi_status & SS_SENSE_LEN_VALID)
  1388. sense_len = le32_to_cpu(sts24->sense_len);
  1389. if (scsi_status & SS_RESPONSE_INFO_LEN_VALID)
  1390. rsp_info_len = le32_to_cpu(sts24->rsp_data_len);
  1391. if (scsi_status & (SS_RESIDUAL_UNDER | SS_RESIDUAL_OVER))
  1392. resid_len = le32_to_cpu(sts24->rsp_residual_count);
  1393. if (comp_status == CS_DATA_UNDERRUN)
  1394. fw_resid_len = le32_to_cpu(sts24->residual_len);
  1395. rsp_info = sts24->data;
  1396. sense_data = sts24->data;
  1397. host_to_fcp_swap(sts24->data, sizeof(sts24->data));
  1398. ox_id = le16_to_cpu(sts24->ox_id);
  1399. par_sense_len = sizeof(sts24->data);
  1400. } else {
  1401. if (scsi_status & SS_SENSE_LEN_VALID)
  1402. sense_len = le16_to_cpu(sts->req_sense_length);
  1403. if (scsi_status & SS_RESPONSE_INFO_LEN_VALID)
  1404. rsp_info_len = le16_to_cpu(sts->rsp_info_len);
  1405. resid_len = le32_to_cpu(sts->residual_length);
  1406. rsp_info = sts->rsp_info;
  1407. sense_data = sts->req_sense_data;
  1408. par_sense_len = sizeof(sts->req_sense_data);
  1409. }
  1410. /* Check for any FCP transport errors. */
  1411. if (scsi_status & SS_RESPONSE_INFO_LEN_VALID) {
  1412. /* Sense data lies beyond any FCP RESPONSE data. */
  1413. if (IS_FWI2_CAPABLE(ha)) {
  1414. sense_data += rsp_info_len;
  1415. par_sense_len -= rsp_info_len;
  1416. }
  1417. if (rsp_info_len > 3 && rsp_info[3]) {
  1418. DEBUG2(qla_printk(KERN_INFO, ha,
  1419. "scsi(%ld:%d:%d): FCP I/O protocol failure "
  1420. "(0x%x/0x%x).\n", vha->host_no, cp->device->id,
  1421. cp->device->lun, rsp_info_len, rsp_info[3]));
  1422. cp->result = DID_BUS_BUSY << 16;
  1423. goto out;
  1424. }
  1425. }
  1426. /* Check for overrun. */
  1427. if (IS_FWI2_CAPABLE(ha) && comp_status == CS_COMPLETE &&
  1428. scsi_status & SS_RESIDUAL_OVER)
  1429. comp_status = CS_DATA_OVERRUN;
  1430. /*
  1431. * Based on Host and scsi status generate status code for Linux
  1432. */
  1433. switch (comp_status) {
  1434. case CS_COMPLETE:
  1435. case CS_QUEUE_FULL:
  1436. if (scsi_status == 0) {
  1437. cp->result = DID_OK << 16;
  1438. break;
  1439. }
  1440. if (scsi_status & (SS_RESIDUAL_UNDER | SS_RESIDUAL_OVER)) {
  1441. resid = resid_len;
  1442. scsi_set_resid(cp, resid);
  1443. if (!lscsi_status &&
  1444. ((unsigned)(scsi_bufflen(cp) - resid) <
  1445. cp->underflow)) {
  1446. qla_printk(KERN_INFO, ha,
  1447. "scsi(%ld:%d:%d): Mid-layer underflow "
  1448. "detected (0x%x of 0x%x bytes).\n",
  1449. vha->host_no, cp->device->id,
  1450. cp->device->lun, resid, scsi_bufflen(cp));
  1451. cp->result = DID_ERROR << 16;
  1452. break;
  1453. }
  1454. }
  1455. cp->result = DID_OK << 16 | lscsi_status;
  1456. if (lscsi_status == SAM_STAT_TASK_SET_FULL) {
  1457. DEBUG2(qla_printk(KERN_INFO, ha,
  1458. "scsi(%ld:%d:%d) QUEUE FULL detected.\n",
  1459. vha->host_no, cp->device->id, cp->device->lun));
  1460. break;
  1461. }
  1462. logit = 0;
  1463. if (lscsi_status != SS_CHECK_CONDITION)
  1464. break;
  1465. memset(cp->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
  1466. if (!(scsi_status & SS_SENSE_LEN_VALID))
  1467. break;
  1468. qla2x00_handle_sense(sp, sense_data, par_sense_len, sense_len,
  1469. rsp);
  1470. break;
  1471. case CS_DATA_UNDERRUN:
  1472. /* Use F/W calculated residual length. */
  1473. resid = IS_FWI2_CAPABLE(ha) ? fw_resid_len : resid_len;
  1474. scsi_set_resid(cp, resid);
  1475. if (scsi_status & SS_RESIDUAL_UNDER) {
  1476. if (IS_FWI2_CAPABLE(ha) && fw_resid_len != resid_len) {
  1477. DEBUG2(qla_printk(KERN_INFO, ha,
  1478. "scsi(%ld:%d:%d) Dropped frame(s) detected "
  1479. "(0x%x of 0x%x bytes).\n", vha->host_no,
  1480. cp->device->id, cp->device->lun, resid,
  1481. scsi_bufflen(cp)));
  1482. cp->result = DID_ERROR << 16 | lscsi_status;
  1483. break;
  1484. }
  1485. if (!lscsi_status &&
  1486. ((unsigned)(scsi_bufflen(cp) - resid) <
  1487. cp->underflow)) {
  1488. qla_printk(KERN_INFO, ha,
  1489. "scsi(%ld:%d:%d): Mid-layer underflow "
  1490. "detected (0x%x of 0x%x bytes).\n",
  1491. vha->host_no, cp->device->id,
  1492. cp->device->lun, resid, scsi_bufflen(cp));
  1493. cp->result = DID_ERROR << 16;
  1494. break;
  1495. }
  1496. } else {
  1497. DEBUG2(qla_printk(KERN_INFO, ha,
  1498. "scsi(%ld:%d:%d) Dropped frame(s) detected (0x%x "
  1499. "of 0x%x bytes).\n", vha->host_no, cp->device->id,
  1500. cp->device->lun, resid, scsi_bufflen(cp)));
  1501. cp->result = DID_ERROR << 16 | lscsi_status;
  1502. goto check_scsi_status;
  1503. }
  1504. cp->result = DID_OK << 16 | lscsi_status;
  1505. logit = 0;
  1506. check_scsi_status:
  1507. /*
  1508. * Check to see if SCSI Status is non zero. If so report SCSI
  1509. * Status.
  1510. */
  1511. if (lscsi_status != 0) {
  1512. if (lscsi_status == SAM_STAT_TASK_SET_FULL) {
  1513. DEBUG2(qla_printk(KERN_INFO, ha,
  1514. "scsi(%ld:%d:%d) QUEUE FULL detected.\n",
  1515. vha->host_no, cp->device->id,
  1516. cp->device->lun));
  1517. logit = 1;
  1518. break;
  1519. }
  1520. if (lscsi_status != SS_CHECK_CONDITION)
  1521. break;
  1522. memset(cp->sense_buffer, 0, SCSI_SENSE_BUFFERSIZE);
  1523. if (!(scsi_status & SS_SENSE_LEN_VALID))
  1524. break;
  1525. qla2x00_handle_sense(sp, sense_data, par_sense_len,
  1526. sense_len, rsp);
  1527. }
  1528. break;
  1529. case CS_PORT_LOGGED_OUT:
  1530. case CS_PORT_CONFIG_CHG:
  1531. case CS_PORT_BUSY:
  1532. case CS_INCOMPLETE:
  1533. case CS_PORT_UNAVAILABLE:
  1534. case CS_TIMEOUT:
  1535. case CS_RESET:
  1536. /*
  1537. * We are going to have the fc class block the rport
  1538. * while we try to recover so instruct the mid layer
  1539. * to requeue until the class decides how to handle this.
  1540. */
  1541. cp->result = DID_TRANSPORT_DISRUPTED << 16;
  1542. if (comp_status == CS_TIMEOUT) {
  1543. if (IS_FWI2_CAPABLE(ha))
  1544. break;
  1545. else if ((le16_to_cpu(sts->status_flags) &
  1546. SF_LOGOUT_SENT) == 0)
  1547. break;
  1548. }
  1549. DEBUG2(qla_printk(KERN_INFO, ha,
  1550. "scsi(%ld:%d:%d) Port down status: port-state=0x%x\n",
  1551. vha->host_no, cp->device->id, cp->device->lun,
  1552. atomic_read(&fcport->state)));
  1553. if (atomic_read(&fcport->state) == FCS_ONLINE)
  1554. qla2x00_mark_device_lost(fcport->vha, fcport, 1, 1);
  1555. break;
  1556. case CS_ABORTED:
  1557. cp->result = DID_RESET << 16;
  1558. break;
  1559. case CS_DIF_ERROR:
  1560. qla2x00_handle_dif_error(sp, sts24);
  1561. break;
  1562. default:
  1563. cp->result = DID_ERROR << 16;
  1564. break;
  1565. }
  1566. out:
  1567. if (logit)
  1568. DEBUG2(qla_printk(KERN_INFO, ha,
  1569. "scsi(%ld:%d:%d) FCP command status: 0x%x-0x%x (0x%x) "
  1570. "oxid=0x%x cdb=%02x%02x%02x len=0x%x "
  1571. "rsp_info=0x%x resid=0x%x fw_resid=0x%x\n", vha->host_no,
  1572. cp->device->id, cp->device->lun, comp_status, scsi_status,
  1573. cp->result, ox_id, cp->cmnd[0],
  1574. cp->cmnd[1], cp->cmnd[2], scsi_bufflen(cp), rsp_info_len,
  1575. resid_len, fw_resid_len));
  1576. if (rsp->status_srb == NULL)
  1577. qla2x00_sp_compl(ha, sp);
  1578. }
  1579. /**
  1580. * qla2x00_status_cont_entry() - Process a Status Continuations entry.
  1581. * @ha: SCSI driver HA context
  1582. * @pkt: Entry pointer
  1583. *
  1584. * Extended sense data.
  1585. */
  1586. static void
  1587. qla2x00_status_cont_entry(struct rsp_que *rsp, sts_cont_entry_t *pkt)
  1588. {
  1589. uint8_t sense_sz = 0;
  1590. struct qla_hw_data *ha = rsp->hw;
  1591. srb_t *sp = rsp->status_srb;
  1592. struct scsi_cmnd *cp;
  1593. if (sp != NULL && sp->request_sense_length != 0) {
  1594. cp = sp->cmd;
  1595. if (cp == NULL) {
  1596. DEBUG2(printk("%s(): Cmd already returned back to OS "
  1597. "sp=%p.\n", __func__, sp));
  1598. qla_printk(KERN_INFO, ha,
  1599. "cmd is NULL: already returned to OS (sp=%p)\n",
  1600. sp);
  1601. rsp->status_srb = NULL;
  1602. return;
  1603. }
  1604. if (sp->request_sense_length > sizeof(pkt->data)) {
  1605. sense_sz = sizeof(pkt->data);
  1606. } else {
  1607. sense_sz = sp->request_sense_length;
  1608. }
  1609. /* Move sense data. */
  1610. if (IS_FWI2_CAPABLE(ha))
  1611. host_to_fcp_swap(pkt->data, sizeof(pkt->data));
  1612. memcpy(sp->request_sense_ptr, pkt->data, sense_sz);
  1613. DEBUG5(qla2x00_dump_buffer(sp->request_sense_ptr, sense_sz));
  1614. sp->request_sense_ptr += sense_sz;
  1615. sp->request_sense_length -= sense_sz;
  1616. /* Place command on done queue. */
  1617. if (sp->request_sense_length == 0) {
  1618. rsp->status_srb = NULL;
  1619. qla2x00_sp_compl(ha, sp);
  1620. }
  1621. }
  1622. }
  1623. /**
  1624. * qla2x00_error_entry() - Process an error entry.
  1625. * @ha: SCSI driver HA context
  1626. * @pkt: Entry pointer
  1627. */
  1628. static void
  1629. qla2x00_error_entry(scsi_qla_host_t *vha, struct rsp_que *rsp, sts_entry_t *pkt)
  1630. {
  1631. srb_t *sp;
  1632. struct qla_hw_data *ha = vha->hw;
  1633. uint32_t handle = LSW(pkt->handle);
  1634. uint16_t que = MSW(pkt->handle);
  1635. struct req_que *req = ha->req_q_map[que];
  1636. #if defined(QL_DEBUG_LEVEL_2)
  1637. if (pkt->entry_status & RF_INV_E_ORDER)
  1638. qla_printk(KERN_ERR, ha, "%s: Invalid Entry Order\n", __func__);
  1639. else if (pkt->entry_status & RF_INV_E_COUNT)
  1640. qla_printk(KERN_ERR, ha, "%s: Invalid Entry Count\n", __func__);
  1641. else if (pkt->entry_status & RF_INV_E_PARAM)
  1642. qla_printk(KERN_ERR, ha,
  1643. "%s: Invalid Entry Parameter\n", __func__);
  1644. else if (pkt->entry_status & RF_INV_E_TYPE)
  1645. qla_printk(KERN_ERR, ha, "%s: Invalid Entry Type\n", __func__);
  1646. else if (pkt->entry_status & RF_BUSY)
  1647. qla_printk(KERN_ERR, ha, "%s: Busy\n", __func__);
  1648. else
  1649. qla_printk(KERN_ERR, ha, "%s: UNKNOWN flag error\n", __func__);
  1650. #endif
  1651. /* Validate handle. */
  1652. if (handle < MAX_OUTSTANDING_COMMANDS)
  1653. sp = req->outstanding_cmds[handle];
  1654. else
  1655. sp = NULL;
  1656. if (sp) {
  1657. /* Free outstanding command slot. */
  1658. req->outstanding_cmds[handle] = NULL;
  1659. /* Bad payload or header */
  1660. if (pkt->entry_status &
  1661. (RF_INV_E_ORDER | RF_INV_E_COUNT |
  1662. RF_INV_E_PARAM | RF_INV_E_TYPE)) {
  1663. sp->cmd->result = DID_ERROR << 16;
  1664. } else if (pkt->entry_status & RF_BUSY) {
  1665. sp->cmd->result = DID_BUS_BUSY << 16;
  1666. } else {
  1667. sp->cmd->result = DID_ERROR << 16;
  1668. }
  1669. qla2x00_sp_compl(ha, sp);
  1670. } else if (pkt->entry_type == COMMAND_A64_TYPE || pkt->entry_type ==
  1671. COMMAND_TYPE || pkt->entry_type == COMMAND_TYPE_7) {
  1672. DEBUG2(printk("scsi(%ld): Error entry - invalid handle\n",
  1673. vha->host_no));
  1674. qla_printk(KERN_WARNING, ha,
  1675. "Error entry - invalid handle\n");
  1676. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  1677. qla2xxx_wake_dpc(vha);
  1678. }
  1679. }
  1680. /**
  1681. * qla24xx_mbx_completion() - Process mailbox command completions.
  1682. * @ha: SCSI driver HA context
  1683. * @mb0: Mailbox0 register
  1684. */
  1685. static void
  1686. qla24xx_mbx_completion(scsi_qla_host_t *vha, uint16_t mb0)
  1687. {
  1688. uint16_t cnt;
  1689. uint16_t __iomem *wptr;
  1690. struct qla_hw_data *ha = vha->hw;
  1691. struct device_reg_24xx __iomem *reg = &ha->iobase->isp24;
  1692. /* Load return mailbox registers. */
  1693. ha->flags.mbox_int = 1;
  1694. ha->mailbox_out[0] = mb0;
  1695. wptr = (uint16_t __iomem *)&reg->mailbox1;
  1696. for (cnt = 1; cnt < ha->mbx_count; cnt++) {
  1697. ha->mailbox_out[cnt] = RD_REG_WORD(wptr);
  1698. wptr++;
  1699. }
  1700. if (ha->mcp) {
  1701. DEBUG3(printk("%s(%ld): Got mailbox completion. cmd=%x.\n",
  1702. __func__, vha->host_no, ha->mcp->mb[0]));
  1703. } else {
  1704. DEBUG2_3(printk("%s(%ld): MBX pointer ERROR!\n",
  1705. __func__, vha->host_no));
  1706. }
  1707. }
  1708. /**
  1709. * qla24xx_process_response_queue() - Process response queue entries.
  1710. * @ha: SCSI driver HA context
  1711. */
  1712. void qla24xx_process_response_queue(struct scsi_qla_host *vha,
  1713. struct rsp_que *rsp)
  1714. {
  1715. struct sts_entry_24xx *pkt;
  1716. struct qla_hw_data *ha = vha->hw;
  1717. if (!vha->flags.online)
  1718. return;
  1719. while (rsp->ring_ptr->signature != RESPONSE_PROCESSED) {
  1720. pkt = (struct sts_entry_24xx *)rsp->ring_ptr;
  1721. rsp->ring_index++;
  1722. if (rsp->ring_index == rsp->length) {
  1723. rsp->ring_index = 0;
  1724. rsp->ring_ptr = rsp->ring;
  1725. } else {
  1726. rsp->ring_ptr++;
  1727. }
  1728. if (pkt->entry_status != 0) {
  1729. DEBUG3(printk(KERN_INFO
  1730. "scsi(%ld): Process error entry.\n", vha->host_no));
  1731. qla2x00_error_entry(vha, rsp, (sts_entry_t *) pkt);
  1732. ((response_t *)pkt)->signature = RESPONSE_PROCESSED;
  1733. wmb();
  1734. continue;
  1735. }
  1736. switch (pkt->entry_type) {
  1737. case STATUS_TYPE:
  1738. qla2x00_status_entry(vha, rsp, pkt);
  1739. break;
  1740. case STATUS_CONT_TYPE:
  1741. qla2x00_status_cont_entry(rsp, (sts_cont_entry_t *)pkt);
  1742. break;
  1743. case VP_RPT_ID_IOCB_TYPE:
  1744. qla24xx_report_id_acquisition(vha,
  1745. (struct vp_rpt_id_entry_24xx *)pkt);
  1746. break;
  1747. case LOGINOUT_PORT_IOCB_TYPE:
  1748. qla24xx_logio_entry(vha, rsp->req,
  1749. (struct logio_entry_24xx *)pkt);
  1750. break;
  1751. case TSK_MGMT_IOCB_TYPE:
  1752. qla24xx_tm_iocb_entry(vha, rsp->req,
  1753. (struct tsk_mgmt_entry *)pkt);
  1754. break;
  1755. case CT_IOCB_TYPE:
  1756. qla24xx_els_ct_entry(vha, rsp->req, pkt, CT_IOCB_TYPE);
  1757. clear_bit(MBX_INTERRUPT, &vha->hw->mbx_cmd_flags);
  1758. break;
  1759. case ELS_IOCB_TYPE:
  1760. qla24xx_els_ct_entry(vha, rsp->req, pkt, ELS_IOCB_TYPE);
  1761. break;
  1762. default:
  1763. /* Type Not Supported. */
  1764. DEBUG4(printk(KERN_WARNING
  1765. "scsi(%ld): Received unknown response pkt type %x "
  1766. "entry status=%x.\n",
  1767. vha->host_no, pkt->entry_type, pkt->entry_status));
  1768. break;
  1769. }
  1770. ((response_t *)pkt)->signature = RESPONSE_PROCESSED;
  1771. wmb();
  1772. }
  1773. /* Adjust ring index */
  1774. if (IS_QLA82XX(ha)) {
  1775. struct device_reg_82xx __iomem *reg = &ha->iobase->isp82;
  1776. WRT_REG_DWORD(&reg->rsp_q_out[0], rsp->ring_index);
  1777. } else
  1778. WRT_REG_DWORD(rsp->rsp_q_out, rsp->ring_index);
  1779. }
  1780. static void
  1781. qla2xxx_check_risc_status(scsi_qla_host_t *vha)
  1782. {
  1783. int rval;
  1784. uint32_t cnt;
  1785. struct qla_hw_data *ha = vha->hw;
  1786. struct device_reg_24xx __iomem *reg = &ha->iobase->isp24;
  1787. if (!IS_QLA25XX(ha) && !IS_QLA81XX(ha))
  1788. return;
  1789. rval = QLA_SUCCESS;
  1790. WRT_REG_DWORD(&reg->iobase_addr, 0x7C00);
  1791. RD_REG_DWORD(&reg->iobase_addr);
  1792. WRT_REG_DWORD(&reg->iobase_window, 0x0001);
  1793. for (cnt = 10000; (RD_REG_DWORD(&reg->iobase_window) & BIT_0) == 0 &&
  1794. rval == QLA_SUCCESS; cnt--) {
  1795. if (cnt) {
  1796. WRT_REG_DWORD(&reg->iobase_window, 0x0001);
  1797. udelay(10);
  1798. } else
  1799. rval = QLA_FUNCTION_TIMEOUT;
  1800. }
  1801. if (rval == QLA_SUCCESS)
  1802. goto next_test;
  1803. WRT_REG_DWORD(&reg->iobase_window, 0x0003);
  1804. for (cnt = 100; (RD_REG_DWORD(&reg->iobase_window) & BIT_0) == 0 &&
  1805. rval == QLA_SUCCESS; cnt--) {
  1806. if (cnt) {
  1807. WRT_REG_DWORD(&reg->iobase_window, 0x0003);
  1808. udelay(10);
  1809. } else
  1810. rval = QLA_FUNCTION_TIMEOUT;
  1811. }
  1812. if (rval != QLA_SUCCESS)
  1813. goto done;
  1814. next_test:
  1815. if (RD_REG_DWORD(&reg->iobase_c8) & BIT_3)
  1816. qla_printk(KERN_INFO, ha, "Additional code -- 0x55AA.\n");
  1817. done:
  1818. WRT_REG_DWORD(&reg->iobase_window, 0x0000);
  1819. RD_REG_DWORD(&reg->iobase_window);
  1820. }
  1821. /**
  1822. * qla24xx_intr_handler() - Process interrupts for the ISP23xx and ISP63xx.
  1823. * @irq:
  1824. * @dev_id: SCSI driver HA context
  1825. *
  1826. * Called by system whenever the host adapter generates an interrupt.
  1827. *
  1828. * Returns handled flag.
  1829. */
  1830. irqreturn_t
  1831. qla24xx_intr_handler(int irq, void *dev_id)
  1832. {
  1833. scsi_qla_host_t *vha;
  1834. struct qla_hw_data *ha;
  1835. struct device_reg_24xx __iomem *reg;
  1836. int status;
  1837. unsigned long iter;
  1838. uint32_t stat;
  1839. uint32_t hccr;
  1840. uint16_t mb[4];
  1841. struct rsp_que *rsp;
  1842. unsigned long flags;
  1843. rsp = (struct rsp_que *) dev_id;
  1844. if (!rsp) {
  1845. printk(KERN_INFO
  1846. "%s(): NULL response queue pointer\n", __func__);
  1847. return IRQ_NONE;
  1848. }
  1849. ha = rsp->hw;
  1850. reg = &ha->iobase->isp24;
  1851. status = 0;
  1852. if (unlikely(pci_channel_offline(ha->pdev)))
  1853. return IRQ_HANDLED;
  1854. spin_lock_irqsave(&ha->hardware_lock, flags);
  1855. vha = pci_get_drvdata(ha->pdev);
  1856. for (iter = 50; iter--; ) {
  1857. stat = RD_REG_DWORD(&reg->host_status);
  1858. if (stat & HSRX_RISC_PAUSED) {
  1859. if (unlikely(pci_channel_offline(ha->pdev)))
  1860. break;
  1861. hccr = RD_REG_DWORD(&reg->hccr);
  1862. qla_printk(KERN_INFO, ha, "RISC paused -- HCCR=%x, "
  1863. "Dumping firmware!\n", hccr);
  1864. qla2xxx_check_risc_status(vha);
  1865. ha->isp_ops->fw_dump(vha, 1);
  1866. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  1867. break;
  1868. } else if ((stat & HSRX_RISC_INT) == 0)
  1869. break;
  1870. switch (stat & 0xff) {
  1871. case 0x1:
  1872. case 0x2:
  1873. case 0x10:
  1874. case 0x11:
  1875. qla24xx_mbx_completion(vha, MSW(stat));
  1876. status |= MBX_INTERRUPT;
  1877. break;
  1878. case 0x12:
  1879. mb[0] = MSW(stat);
  1880. mb[1] = RD_REG_WORD(&reg->mailbox1);
  1881. mb[2] = RD_REG_WORD(&reg->mailbox2);
  1882. mb[3] = RD_REG_WORD(&reg->mailbox3);
  1883. qla2x00_async_event(vha, rsp, mb);
  1884. break;
  1885. case 0x13:
  1886. case 0x14:
  1887. qla24xx_process_response_queue(vha, rsp);
  1888. break;
  1889. default:
  1890. DEBUG2(printk("scsi(%ld): Unrecognized interrupt type "
  1891. "(%d).\n",
  1892. vha->host_no, stat & 0xff));
  1893. break;
  1894. }
  1895. WRT_REG_DWORD(&reg->hccr, HCCRX_CLR_RISC_INT);
  1896. RD_REG_DWORD_RELAXED(&reg->hccr);
  1897. }
  1898. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1899. if (test_bit(MBX_INTR_WAIT, &ha->mbx_cmd_flags) &&
  1900. (status & MBX_INTERRUPT) && ha->flags.mbox_int) {
  1901. set_bit(MBX_INTERRUPT, &ha->mbx_cmd_flags);
  1902. complete(&ha->mbx_intr_comp);
  1903. }
  1904. return IRQ_HANDLED;
  1905. }
  1906. static irqreturn_t
  1907. qla24xx_msix_rsp_q(int irq, void *dev_id)
  1908. {
  1909. struct qla_hw_data *ha;
  1910. struct rsp_que *rsp;
  1911. struct device_reg_24xx __iomem *reg;
  1912. struct scsi_qla_host *vha;
  1913. unsigned long flags;
  1914. rsp = (struct rsp_que *) dev_id;
  1915. if (!rsp) {
  1916. printk(KERN_INFO
  1917. "%s(): NULL response queue pointer\n", __func__);
  1918. return IRQ_NONE;
  1919. }
  1920. ha = rsp->hw;
  1921. reg = &ha->iobase->isp24;
  1922. spin_lock_irqsave(&ha->hardware_lock, flags);
  1923. vha = pci_get_drvdata(ha->pdev);
  1924. qla24xx_process_response_queue(vha, rsp);
  1925. if (!ha->flags.disable_msix_handshake) {
  1926. WRT_REG_DWORD(&reg->hccr, HCCRX_CLR_RISC_INT);
  1927. RD_REG_DWORD_RELAXED(&reg->hccr);
  1928. }
  1929. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1930. return IRQ_HANDLED;
  1931. }
  1932. static irqreturn_t
  1933. qla25xx_msix_rsp_q(int irq, void *dev_id)
  1934. {
  1935. struct qla_hw_data *ha;
  1936. struct rsp_que *rsp;
  1937. struct device_reg_24xx __iomem *reg;
  1938. unsigned long flags;
  1939. rsp = (struct rsp_que *) dev_id;
  1940. if (!rsp) {
  1941. printk(KERN_INFO
  1942. "%s(): NULL response queue pointer\n", __func__);
  1943. return IRQ_NONE;
  1944. }
  1945. ha = rsp->hw;
  1946. /* Clear the interrupt, if enabled, for this response queue */
  1947. if (rsp->options & ~BIT_6) {
  1948. reg = &ha->iobase->isp24;
  1949. spin_lock_irqsave(&ha->hardware_lock, flags);
  1950. WRT_REG_DWORD(&reg->hccr, HCCRX_CLR_RISC_INT);
  1951. RD_REG_DWORD_RELAXED(&reg->hccr);
  1952. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  1953. }
  1954. queue_work_on((int) (rsp->id - 1), ha->wq, &rsp->q_work);
  1955. return IRQ_HANDLED;
  1956. }
  1957. static irqreturn_t
  1958. qla24xx_msix_default(int irq, void *dev_id)
  1959. {
  1960. scsi_qla_host_t *vha;
  1961. struct qla_hw_data *ha;
  1962. struct rsp_que *rsp;
  1963. struct device_reg_24xx __iomem *reg;
  1964. int status;
  1965. uint32_t stat;
  1966. uint32_t hccr;
  1967. uint16_t mb[4];
  1968. unsigned long flags;
  1969. rsp = (struct rsp_que *) dev_id;
  1970. if (!rsp) {
  1971. DEBUG(printk(
  1972. "%s(): NULL response queue pointer\n", __func__));
  1973. return IRQ_NONE;
  1974. }
  1975. ha = rsp->hw;
  1976. reg = &ha->iobase->isp24;
  1977. status = 0;
  1978. spin_lock_irqsave(&ha->hardware_lock, flags);
  1979. vha = pci_get_drvdata(ha->pdev);
  1980. do {
  1981. stat = RD_REG_DWORD(&reg->host_status);
  1982. if (stat & HSRX_RISC_PAUSED) {
  1983. if (unlikely(pci_channel_offline(ha->pdev)))
  1984. break;
  1985. hccr = RD_REG_DWORD(&reg->hccr);
  1986. qla_printk(KERN_INFO, ha, "RISC paused -- HCCR=%x, "
  1987. "Dumping firmware!\n", hccr);
  1988. qla2xxx_check_risc_status(vha);
  1989. ha->isp_ops->fw_dump(vha, 1);
  1990. set_bit(ISP_ABORT_NEEDED, &vha->dpc_flags);
  1991. break;
  1992. } else if ((stat & HSRX_RISC_INT) == 0)
  1993. break;
  1994. switch (stat & 0xff) {
  1995. case 0x1:
  1996. case 0x2:
  1997. case 0x10:
  1998. case 0x11:
  1999. qla24xx_mbx_completion(vha, MSW(stat));
  2000. status |= MBX_INTERRUPT;
  2001. break;
  2002. case 0x12:
  2003. mb[0] = MSW(stat);
  2004. mb[1] = RD_REG_WORD(&reg->mailbox1);
  2005. mb[2] = RD_REG_WORD(&reg->mailbox2);
  2006. mb[3] = RD_REG_WORD(&reg->mailbox3);
  2007. qla2x00_async_event(vha, rsp, mb);
  2008. break;
  2009. case 0x13:
  2010. case 0x14:
  2011. qla24xx_process_response_queue(vha, rsp);
  2012. break;
  2013. default:
  2014. DEBUG2(printk("scsi(%ld): Unrecognized interrupt type "
  2015. "(%d).\n",
  2016. vha->host_no, stat & 0xff));
  2017. break;
  2018. }
  2019. WRT_REG_DWORD(&reg->hccr, HCCRX_CLR_RISC_INT);
  2020. } while (0);
  2021. spin_unlock_irqrestore(&ha->hardware_lock, flags);
  2022. if (test_bit(MBX_INTR_WAIT, &ha->mbx_cmd_flags) &&
  2023. (status & MBX_INTERRUPT) && ha->flags.mbox_int) {
  2024. set_bit(MBX_INTERRUPT, &ha->mbx_cmd_flags);
  2025. complete(&ha->mbx_intr_comp);
  2026. }
  2027. return IRQ_HANDLED;
  2028. }
  2029. /* Interrupt handling helpers. */
  2030. struct qla_init_msix_entry {
  2031. const char *name;
  2032. irq_handler_t handler;
  2033. };
  2034. static struct qla_init_msix_entry msix_entries[3] = {
  2035. { "qla2xxx (default)", qla24xx_msix_default },
  2036. { "qla2xxx (rsp_q)", qla24xx_msix_rsp_q },
  2037. { "qla2xxx (multiq)", qla25xx_msix_rsp_q },
  2038. };
  2039. static struct qla_init_msix_entry qla82xx_msix_entries[2] = {
  2040. { "qla2xxx (default)", qla82xx_msix_default },
  2041. { "qla2xxx (rsp_q)", qla82xx_msix_rsp_q },
  2042. };
  2043. static void
  2044. qla24xx_disable_msix(struct qla_hw_data *ha)
  2045. {
  2046. int i;
  2047. struct qla_msix_entry *qentry;
  2048. for (i = 0; i < ha->msix_count; i++) {
  2049. qentry = &ha->msix_entries[i];
  2050. if (qentry->have_irq)
  2051. free_irq(qentry->vector, qentry->rsp);
  2052. }
  2053. pci_disable_msix(ha->pdev);
  2054. kfree(ha->msix_entries);
  2055. ha->msix_entries = NULL;
  2056. ha->flags.msix_enabled = 0;
  2057. }
  2058. static int
  2059. qla24xx_enable_msix(struct qla_hw_data *ha, struct rsp_que *rsp)
  2060. {
  2061. #define MIN_MSIX_COUNT 2
  2062. int i, ret;
  2063. struct msix_entry *entries;
  2064. struct qla_msix_entry *qentry;
  2065. entries = kzalloc(sizeof(struct msix_entry) * ha->msix_count,
  2066. GFP_KERNEL);
  2067. if (!entries)
  2068. return -ENOMEM;
  2069. for (i = 0; i < ha->msix_count; i++)
  2070. entries[i].entry = i;
  2071. ret = pci_enable_msix(ha->pdev, entries, ha->msix_count);
  2072. if (ret) {
  2073. if (ret < MIN_MSIX_COUNT)
  2074. goto msix_failed;
  2075. qla_printk(KERN_WARNING, ha,
  2076. "MSI-X: Failed to enable support -- %d/%d\n"
  2077. " Retry with %d vectors\n", ha->msix_count, ret, ret);
  2078. ha->msix_count = ret;
  2079. ret = pci_enable_msix(ha->pdev, entries, ha->msix_count);
  2080. if (ret) {
  2081. msix_failed:
  2082. qla_printk(KERN_WARNING, ha, "MSI-X: Failed to enable"
  2083. " support, giving up -- %d/%d\n",
  2084. ha->msix_count, ret);
  2085. goto msix_out;
  2086. }
  2087. ha->max_rsp_queues = ha->msix_count - 1;
  2088. }
  2089. ha->msix_entries = kzalloc(sizeof(struct qla_msix_entry) *
  2090. ha->msix_count, GFP_KERNEL);
  2091. if (!ha->msix_entries) {
  2092. ret = -ENOMEM;
  2093. goto msix_out;
  2094. }
  2095. ha->flags.msix_enabled = 1;
  2096. for (i = 0; i < ha->msix_count; i++) {
  2097. qentry = &ha->msix_entries[i];
  2098. qentry->vector = entries[i].vector;
  2099. qentry->entry = entries[i].entry;
  2100. qentry->have_irq = 0;
  2101. qentry->rsp = NULL;
  2102. }
  2103. /* Enable MSI-X vectors for the base queue */
  2104. for (i = 0; i < 2; i++) {
  2105. qentry = &ha->msix_entries[i];
  2106. if (IS_QLA82XX(ha)) {
  2107. ret = request_irq(qentry->vector,
  2108. qla82xx_msix_entries[i].handler,
  2109. 0, qla82xx_msix_entries[i].name, rsp);
  2110. } else {
  2111. ret = request_irq(qentry->vector,
  2112. msix_entries[i].handler,
  2113. 0, msix_entries[i].name, rsp);
  2114. }
  2115. if (ret) {
  2116. qla_printk(KERN_WARNING, ha,
  2117. "MSI-X: Unable to register handler -- %x/%d.\n",
  2118. qentry->vector, ret);
  2119. qla24xx_disable_msix(ha);
  2120. ha->mqenable = 0;
  2121. goto msix_out;
  2122. }
  2123. qentry->have_irq = 1;
  2124. qentry->rsp = rsp;
  2125. rsp->msix = qentry;
  2126. }
  2127. /* Enable MSI-X vector for response queue update for queue 0 */
  2128. if (ha->mqiobase && (ha->max_rsp_queues > 1 || ha->max_req_queues > 1))
  2129. ha->mqenable = 1;
  2130. msix_out:
  2131. kfree(entries);
  2132. return ret;
  2133. }
  2134. int
  2135. qla2x00_request_irqs(struct qla_hw_data *ha, struct rsp_que *rsp)
  2136. {
  2137. int ret;
  2138. device_reg_t __iomem *reg = ha->iobase;
  2139. /* If possible, enable MSI-X. */
  2140. if (!IS_QLA2432(ha) && !IS_QLA2532(ha) &&
  2141. !IS_QLA8432(ha) && !IS_QLA8XXX_TYPE(ha))
  2142. goto skip_msi;
  2143. if (ha->pdev->subsystem_vendor == PCI_VENDOR_ID_HP &&
  2144. (ha->pdev->subsystem_device == 0x7040 ||
  2145. ha->pdev->subsystem_device == 0x7041 ||
  2146. ha->pdev->subsystem_device == 0x1705)) {
  2147. DEBUG2(qla_printk(KERN_WARNING, ha,
  2148. "MSI-X: Unsupported ISP2432 SSVID/SSDID (0x%X,0x%X).\n",
  2149. ha->pdev->subsystem_vendor,
  2150. ha->pdev->subsystem_device));
  2151. goto skip_msi;
  2152. }
  2153. if (IS_QLA2432(ha) && (ha->pdev->revision < QLA_MSIX_CHIP_REV_24XX ||
  2154. !QLA_MSIX_FW_MODE_1(ha->fw_attributes))) {
  2155. DEBUG2(qla_printk(KERN_WARNING, ha,
  2156. "MSI-X: Unsupported ISP2432 (0x%X, 0x%X).\n",
  2157. ha->pdev->revision, ha->fw_attributes));
  2158. goto skip_msix;
  2159. }
  2160. ret = qla24xx_enable_msix(ha, rsp);
  2161. if (!ret) {
  2162. DEBUG2(qla_printk(KERN_INFO, ha,
  2163. "MSI-X: Enabled (0x%X, 0x%X).\n", ha->chip_revision,
  2164. ha->fw_attributes));
  2165. goto clear_risc_ints;
  2166. }
  2167. qla_printk(KERN_WARNING, ha,
  2168. "MSI-X: Falling back-to MSI mode -- %d.\n", ret);
  2169. skip_msix:
  2170. if (!IS_QLA24XX(ha) && !IS_QLA2532(ha) && !IS_QLA8432(ha) &&
  2171. !IS_QLA8001(ha))
  2172. goto skip_msi;
  2173. ret = pci_enable_msi(ha->pdev);
  2174. if (!ret) {
  2175. DEBUG2(qla_printk(KERN_INFO, ha, "MSI: Enabled.\n"));
  2176. ha->flags.msi_enabled = 1;
  2177. } else
  2178. qla_printk(KERN_WARNING, ha,
  2179. "MSI-X: Falling back-to INTa mode -- %d.\n", ret);
  2180. skip_msi:
  2181. ret = request_irq(ha->pdev->irq, ha->isp_ops->intr_handler,
  2182. ha->flags.msi_enabled ? 0 : IRQF_SHARED,
  2183. QLA2XXX_DRIVER_NAME, rsp);
  2184. if (ret) {
  2185. qla_printk(KERN_WARNING, ha,
  2186. "Failed to reserve interrupt %d already in use.\n",
  2187. ha->pdev->irq);
  2188. goto fail;
  2189. }
  2190. clear_risc_ints:
  2191. /*
  2192. * FIXME: Noted that 8014s were being dropped during NK testing.
  2193. * Timing deltas during MSI-X/INTa transitions?
  2194. */
  2195. if (IS_QLA81XX(ha) || IS_QLA82XX(ha))
  2196. goto fail;
  2197. spin_lock_irq(&ha->hardware_lock);
  2198. if (IS_FWI2_CAPABLE(ha)) {
  2199. WRT_REG_DWORD(&reg->isp24.hccr, HCCRX_CLR_HOST_INT);
  2200. WRT_REG_DWORD(&reg->isp24.hccr, HCCRX_CLR_RISC_INT);
  2201. } else {
  2202. WRT_REG_WORD(&reg->isp.semaphore, 0);
  2203. WRT_REG_WORD(&reg->isp.hccr, HCCR_CLR_RISC_INT);
  2204. WRT_REG_WORD(&reg->isp.hccr, HCCR_CLR_HOST_INT);
  2205. }
  2206. spin_unlock_irq(&ha->hardware_lock);
  2207. fail:
  2208. return ret;
  2209. }
  2210. void
  2211. qla2x00_free_irqs(scsi_qla_host_t *vha)
  2212. {
  2213. struct qla_hw_data *ha = vha->hw;
  2214. struct rsp_que *rsp = ha->rsp_q_map[0];
  2215. if (ha->flags.msix_enabled)
  2216. qla24xx_disable_msix(ha);
  2217. else if (ha->flags.msi_enabled) {
  2218. free_irq(ha->pdev->irq, rsp);
  2219. pci_disable_msi(ha->pdev);
  2220. } else
  2221. free_irq(ha->pdev->irq, rsp);
  2222. }
  2223. int qla25xx_request_irq(struct rsp_que *rsp)
  2224. {
  2225. struct qla_hw_data *ha = rsp->hw;
  2226. struct qla_init_msix_entry *intr = &msix_entries[2];
  2227. struct qla_msix_entry *msix = rsp->msix;
  2228. int ret;
  2229. ret = request_irq(msix->vector, intr->handler, 0, intr->name, rsp);
  2230. if (ret) {
  2231. qla_printk(KERN_WARNING, ha,
  2232. "MSI-X: Unable to register handler -- %x/%d.\n",
  2233. msix->vector, ret);
  2234. return ret;
  2235. }
  2236. msix->have_irq = 1;
  2237. msix->rsp = rsp;
  2238. return ret;
  2239. }