aic94xx_task.c 16 KB

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  1. // SPDX-License-Identifier: GPL-2.0-only
  2. /*
  3. * Aic94xx SAS/SATA Tasks
  4. *
  5. * Copyright (C) 2005 Adaptec, Inc. All rights reserved.
  6. * Copyright (C) 2005 Luben Tuikov <[email protected]>
  7. */
  8. #include <linux/spinlock.h>
  9. #include "aic94xx.h"
  10. #include "aic94xx_sas.h"
  11. #include "aic94xx_hwi.h"
  12. static void asd_unbuild_ata_ascb(struct asd_ascb *a);
  13. static void asd_unbuild_smp_ascb(struct asd_ascb *a);
  14. static void asd_unbuild_ssp_ascb(struct asd_ascb *a);
  15. static void asd_can_dequeue(struct asd_ha_struct *asd_ha, int num)
  16. {
  17. unsigned long flags;
  18. spin_lock_irqsave(&asd_ha->seq.pend_q_lock, flags);
  19. asd_ha->seq.can_queue += num;
  20. spin_unlock_irqrestore(&asd_ha->seq.pend_q_lock, flags);
  21. }
  22. /* DMA_... to our direction translation.
  23. */
  24. static const u8 data_dir_flags[] = {
  25. [DMA_BIDIRECTIONAL] = DATA_DIR_BYRECIPIENT, /* UNSPECIFIED */
  26. [DMA_TO_DEVICE] = DATA_DIR_OUT, /* OUTBOUND */
  27. [DMA_FROM_DEVICE] = DATA_DIR_IN, /* INBOUND */
  28. [DMA_NONE] = DATA_DIR_NONE, /* NO TRANSFER */
  29. };
  30. static int asd_map_scatterlist(struct sas_task *task,
  31. struct sg_el *sg_arr,
  32. gfp_t gfp_flags)
  33. {
  34. struct asd_ascb *ascb = task->lldd_task;
  35. struct asd_ha_struct *asd_ha = ascb->ha;
  36. struct scatterlist *sc;
  37. int num_sg, res;
  38. if (task->data_dir == DMA_NONE)
  39. return 0;
  40. if (task->num_scatter == 0) {
  41. void *p = task->scatter;
  42. dma_addr_t dma = dma_map_single(&asd_ha->pcidev->dev, p,
  43. task->total_xfer_len,
  44. task->data_dir);
  45. if (dma_mapping_error(&asd_ha->pcidev->dev, dma))
  46. return -ENOMEM;
  47. sg_arr[0].bus_addr = cpu_to_le64((u64)dma);
  48. sg_arr[0].size = cpu_to_le32(task->total_xfer_len);
  49. sg_arr[0].flags |= ASD_SG_EL_LIST_EOL;
  50. return 0;
  51. }
  52. /* STP tasks come from libata which has already mapped
  53. * the SG list */
  54. if (sas_protocol_ata(task->task_proto))
  55. num_sg = task->num_scatter;
  56. else
  57. num_sg = dma_map_sg(&asd_ha->pcidev->dev, task->scatter,
  58. task->num_scatter, task->data_dir);
  59. if (num_sg == 0)
  60. return -ENOMEM;
  61. if (num_sg > 3) {
  62. int i;
  63. ascb->sg_arr = asd_alloc_coherent(asd_ha,
  64. num_sg*sizeof(struct sg_el),
  65. gfp_flags);
  66. if (!ascb->sg_arr) {
  67. res = -ENOMEM;
  68. goto err_unmap;
  69. }
  70. for_each_sg(task->scatter, sc, num_sg, i) {
  71. struct sg_el *sg =
  72. &((struct sg_el *)ascb->sg_arr->vaddr)[i];
  73. sg->bus_addr = cpu_to_le64((u64)sg_dma_address(sc));
  74. sg->size = cpu_to_le32((u32)sg_dma_len(sc));
  75. if (i == num_sg-1)
  76. sg->flags |= ASD_SG_EL_LIST_EOL;
  77. }
  78. for_each_sg(task->scatter, sc, 2, i) {
  79. sg_arr[i].bus_addr =
  80. cpu_to_le64((u64)sg_dma_address(sc));
  81. sg_arr[i].size = cpu_to_le32((u32)sg_dma_len(sc));
  82. }
  83. sg_arr[1].next_sg_offs = 2 * sizeof(*sg_arr);
  84. sg_arr[1].flags |= ASD_SG_EL_LIST_EOS;
  85. memset(&sg_arr[2], 0, sizeof(*sg_arr));
  86. sg_arr[2].bus_addr=cpu_to_le64((u64)ascb->sg_arr->dma_handle);
  87. } else {
  88. int i;
  89. for_each_sg(task->scatter, sc, num_sg, i) {
  90. sg_arr[i].bus_addr =
  91. cpu_to_le64((u64)sg_dma_address(sc));
  92. sg_arr[i].size = cpu_to_le32((u32)sg_dma_len(sc));
  93. }
  94. sg_arr[i-1].flags |= ASD_SG_EL_LIST_EOL;
  95. }
  96. return 0;
  97. err_unmap:
  98. if (sas_protocol_ata(task->task_proto))
  99. dma_unmap_sg(&asd_ha->pcidev->dev, task->scatter,
  100. task->num_scatter, task->data_dir);
  101. return res;
  102. }
  103. static void asd_unmap_scatterlist(struct asd_ascb *ascb)
  104. {
  105. struct asd_ha_struct *asd_ha = ascb->ha;
  106. struct sas_task *task = ascb->uldd_task;
  107. if (task->data_dir == DMA_NONE)
  108. return;
  109. if (task->num_scatter == 0) {
  110. dma_addr_t dma = (dma_addr_t)
  111. le64_to_cpu(ascb->scb->ssp_task.sg_element[0].bus_addr);
  112. dma_unmap_single(&ascb->ha->pcidev->dev, dma,
  113. task->total_xfer_len, task->data_dir);
  114. return;
  115. }
  116. asd_free_coherent(asd_ha, ascb->sg_arr);
  117. if (task->task_proto != SAS_PROTOCOL_STP)
  118. dma_unmap_sg(&asd_ha->pcidev->dev, task->scatter,
  119. task->num_scatter, task->data_dir);
  120. }
  121. /* ---------- Task complete tasklet ---------- */
  122. static void asd_get_response_tasklet(struct asd_ascb *ascb,
  123. struct done_list_struct *dl)
  124. {
  125. struct asd_ha_struct *asd_ha = ascb->ha;
  126. struct sas_task *task = ascb->uldd_task;
  127. struct task_status_struct *ts = &task->task_status;
  128. unsigned long flags;
  129. struct tc_resp_sb_struct {
  130. __le16 index_escb;
  131. u8 len_lsb;
  132. u8 flags;
  133. } __attribute__ ((packed)) *resp_sb = (void *) dl->status_block;
  134. /* int size = ((resp_sb->flags & 7) << 8) | resp_sb->len_lsb; */
  135. int edb_id = ((resp_sb->flags & 0x70) >> 4)-1;
  136. struct asd_ascb *escb;
  137. struct asd_dma_tok *edb;
  138. void *r;
  139. spin_lock_irqsave(&asd_ha->seq.tc_index_lock, flags);
  140. escb = asd_tc_index_find(&asd_ha->seq,
  141. (int)le16_to_cpu(resp_sb->index_escb));
  142. spin_unlock_irqrestore(&asd_ha->seq.tc_index_lock, flags);
  143. if (!escb) {
  144. ASD_DPRINTK("Uh-oh! No escb for this dl?!\n");
  145. return;
  146. }
  147. ts->buf_valid_size = 0;
  148. edb = asd_ha->seq.edb_arr[edb_id + escb->edb_index];
  149. r = edb->vaddr;
  150. if (task->task_proto == SAS_PROTOCOL_SSP) {
  151. struct ssp_response_iu *iu =
  152. r + 16 + sizeof(struct ssp_frame_hdr);
  153. ts->residual = le32_to_cpu(*(__le32 *)r);
  154. sas_ssp_task_response(&asd_ha->pcidev->dev, task, iu);
  155. } else {
  156. struct ata_task_resp *resp = (void *) &ts->buf[0];
  157. ts->residual = le32_to_cpu(*(__le32 *)r);
  158. if (SAS_STATUS_BUF_SIZE >= sizeof(*resp)) {
  159. resp->frame_len = le16_to_cpu(*(__le16 *)(r+6));
  160. memcpy(&resp->ending_fis[0], r+16, ATA_RESP_FIS_SIZE);
  161. ts->buf_valid_size = sizeof(*resp);
  162. }
  163. }
  164. asd_invalidate_edb(escb, edb_id);
  165. }
  166. static void asd_task_tasklet_complete(struct asd_ascb *ascb,
  167. struct done_list_struct *dl)
  168. {
  169. struct sas_task *task = ascb->uldd_task;
  170. struct task_status_struct *ts = &task->task_status;
  171. unsigned long flags;
  172. u8 opcode = dl->opcode;
  173. asd_can_dequeue(ascb->ha, 1);
  174. Again:
  175. switch (opcode) {
  176. case TC_NO_ERROR:
  177. ts->resp = SAS_TASK_COMPLETE;
  178. ts->stat = SAS_SAM_STAT_GOOD;
  179. break;
  180. case TC_UNDERRUN:
  181. ts->resp = SAS_TASK_COMPLETE;
  182. ts->stat = SAS_DATA_UNDERRUN;
  183. ts->residual = le32_to_cpu(*(__le32 *)dl->status_block);
  184. break;
  185. case TC_OVERRUN:
  186. ts->resp = SAS_TASK_COMPLETE;
  187. ts->stat = SAS_DATA_OVERRUN;
  188. ts->residual = 0;
  189. break;
  190. case TC_SSP_RESP:
  191. case TC_ATA_RESP:
  192. ts->resp = SAS_TASK_COMPLETE;
  193. ts->stat = SAS_PROTO_RESPONSE;
  194. asd_get_response_tasklet(ascb, dl);
  195. break;
  196. case TF_OPEN_REJECT:
  197. ts->resp = SAS_TASK_UNDELIVERED;
  198. ts->stat = SAS_OPEN_REJECT;
  199. if (dl->status_block[1] & 2)
  200. ts->open_rej_reason = 1 + dl->status_block[2];
  201. else if (dl->status_block[1] & 1)
  202. ts->open_rej_reason = (dl->status_block[2] >> 4)+10;
  203. else
  204. ts->open_rej_reason = SAS_OREJ_UNKNOWN;
  205. break;
  206. case TF_OPEN_TO:
  207. ts->resp = SAS_TASK_UNDELIVERED;
  208. ts->stat = SAS_OPEN_TO;
  209. break;
  210. case TF_PHY_DOWN:
  211. case TU_PHY_DOWN:
  212. ts->resp = SAS_TASK_UNDELIVERED;
  213. ts->stat = SAS_PHY_DOWN;
  214. break;
  215. case TI_PHY_DOWN:
  216. ts->resp = SAS_TASK_COMPLETE;
  217. ts->stat = SAS_PHY_DOWN;
  218. break;
  219. case TI_BREAK:
  220. case TI_PROTO_ERR:
  221. case TI_NAK:
  222. case TI_ACK_NAK_TO:
  223. case TF_SMP_XMIT_RCV_ERR:
  224. case TC_ATA_R_ERR_RECV:
  225. ts->resp = SAS_TASK_COMPLETE;
  226. ts->stat = SAS_INTERRUPTED;
  227. break;
  228. case TF_BREAK:
  229. case TU_BREAK:
  230. case TU_ACK_NAK_TO:
  231. case TF_SMPRSP_TO:
  232. ts->resp = SAS_TASK_UNDELIVERED;
  233. ts->stat = SAS_DEV_NO_RESPONSE;
  234. break;
  235. case TF_NAK_RECV:
  236. ts->resp = SAS_TASK_COMPLETE;
  237. ts->stat = SAS_NAK_R_ERR;
  238. break;
  239. case TA_I_T_NEXUS_LOSS:
  240. opcode = dl->status_block[0];
  241. goto Again;
  242. case TF_INV_CONN_HANDLE:
  243. ts->resp = SAS_TASK_UNDELIVERED;
  244. ts->stat = SAS_DEVICE_UNKNOWN;
  245. break;
  246. case TF_REQUESTED_N_PENDING:
  247. ts->resp = SAS_TASK_UNDELIVERED;
  248. ts->stat = SAS_PENDING;
  249. break;
  250. case TC_TASK_CLEARED:
  251. case TA_ON_REQ:
  252. ts->resp = SAS_TASK_COMPLETE;
  253. ts->stat = SAS_ABORTED_TASK;
  254. break;
  255. case TF_NO_SMP_CONN:
  256. case TF_TMF_NO_CTX:
  257. case TF_TMF_NO_TAG:
  258. case TF_TMF_TAG_FREE:
  259. case TF_TMF_TASK_DONE:
  260. case TF_TMF_NO_CONN_HANDLE:
  261. case TF_IRTT_TO:
  262. case TF_IU_SHORT:
  263. case TF_DATA_OFFS_ERR:
  264. ts->resp = SAS_TASK_UNDELIVERED;
  265. ts->stat = SAS_DEV_NO_RESPONSE;
  266. break;
  267. case TC_LINK_ADM_RESP:
  268. case TC_CONTROL_PHY:
  269. case TC_RESUME:
  270. case TC_PARTIAL_SG_LIST:
  271. default:
  272. ASD_DPRINTK("%s: dl opcode: 0x%x?\n", __func__, opcode);
  273. break;
  274. }
  275. switch (task->task_proto) {
  276. case SAS_PROTOCOL_SATA:
  277. case SAS_PROTOCOL_STP:
  278. asd_unbuild_ata_ascb(ascb);
  279. break;
  280. case SAS_PROTOCOL_SMP:
  281. asd_unbuild_smp_ascb(ascb);
  282. break;
  283. case SAS_PROTOCOL_SSP:
  284. asd_unbuild_ssp_ascb(ascb);
  285. break;
  286. default:
  287. break;
  288. }
  289. spin_lock_irqsave(&task->task_state_lock, flags);
  290. task->task_state_flags &= ~SAS_TASK_STATE_PENDING;
  291. task->task_state_flags |= SAS_TASK_STATE_DONE;
  292. if (unlikely((task->task_state_flags & SAS_TASK_STATE_ABORTED))) {
  293. struct completion *completion = ascb->completion;
  294. spin_unlock_irqrestore(&task->task_state_lock, flags);
  295. ASD_DPRINTK("task 0x%p done with opcode 0x%x resp 0x%x "
  296. "stat 0x%x but aborted by upper layer!\n",
  297. task, opcode, ts->resp, ts->stat);
  298. if (completion)
  299. complete(completion);
  300. } else {
  301. spin_unlock_irqrestore(&task->task_state_lock, flags);
  302. task->lldd_task = NULL;
  303. asd_ascb_free(ascb);
  304. mb();
  305. task->task_done(task);
  306. }
  307. }
  308. /* ---------- ATA ---------- */
  309. static int asd_build_ata_ascb(struct asd_ascb *ascb, struct sas_task *task,
  310. gfp_t gfp_flags)
  311. {
  312. struct domain_device *dev = task->dev;
  313. struct scb *scb;
  314. u8 flags;
  315. int res = 0;
  316. scb = ascb->scb;
  317. if (unlikely(task->ata_task.device_control_reg_update))
  318. scb->header.opcode = CONTROL_ATA_DEV;
  319. else if (dev->sata_dev.class == ATA_DEV_ATAPI)
  320. scb->header.opcode = INITIATE_ATAPI_TASK;
  321. else
  322. scb->header.opcode = INITIATE_ATA_TASK;
  323. scb->ata_task.proto_conn_rate = (1 << 5); /* STP */
  324. if (dev->port->oob_mode == SAS_OOB_MODE)
  325. scb->ata_task.proto_conn_rate |= dev->linkrate;
  326. scb->ata_task.total_xfer_len = cpu_to_le32(task->total_xfer_len);
  327. scb->ata_task.fis = task->ata_task.fis;
  328. if (likely(!task->ata_task.device_control_reg_update))
  329. scb->ata_task.fis.flags |= 0x80; /* C=1: update ATA cmd reg */
  330. scb->ata_task.fis.flags &= 0xF0; /* PM_PORT field shall be 0 */
  331. if (dev->sata_dev.class == ATA_DEV_ATAPI)
  332. memcpy(scb->ata_task.atapi_packet, task->ata_task.atapi_packet,
  333. 16);
  334. scb->ata_task.sister_scb = cpu_to_le16(0xFFFF);
  335. scb->ata_task.conn_handle = cpu_to_le16(
  336. (u16)(unsigned long)dev->lldd_dev);
  337. if (likely(!task->ata_task.device_control_reg_update)) {
  338. flags = 0;
  339. if (task->ata_task.dma_xfer)
  340. flags |= DATA_XFER_MODE_DMA;
  341. if (task->ata_task.use_ncq &&
  342. dev->sata_dev.class != ATA_DEV_ATAPI)
  343. flags |= ATA_Q_TYPE_NCQ;
  344. flags |= data_dir_flags[task->data_dir];
  345. scb->ata_task.ata_flags = flags;
  346. scb->ata_task.retry_count = task->ata_task.retry_count;
  347. flags = 0;
  348. if (task->ata_task.set_affil_pol)
  349. flags |= SET_AFFIL_POLICY;
  350. if (task->ata_task.stp_affil_pol)
  351. flags |= STP_AFFIL_POLICY;
  352. scb->ata_task.flags = flags;
  353. }
  354. ascb->tasklet_complete = asd_task_tasklet_complete;
  355. if (likely(!task->ata_task.device_control_reg_update))
  356. res = asd_map_scatterlist(task, scb->ata_task.sg_element,
  357. gfp_flags);
  358. return res;
  359. }
  360. static void asd_unbuild_ata_ascb(struct asd_ascb *a)
  361. {
  362. asd_unmap_scatterlist(a);
  363. }
  364. /* ---------- SMP ---------- */
  365. static int asd_build_smp_ascb(struct asd_ascb *ascb, struct sas_task *task,
  366. gfp_t gfp_flags)
  367. {
  368. struct asd_ha_struct *asd_ha = ascb->ha;
  369. struct domain_device *dev = task->dev;
  370. struct scb *scb;
  371. dma_map_sg(&asd_ha->pcidev->dev, &task->smp_task.smp_req, 1,
  372. DMA_TO_DEVICE);
  373. dma_map_sg(&asd_ha->pcidev->dev, &task->smp_task.smp_resp, 1,
  374. DMA_FROM_DEVICE);
  375. scb = ascb->scb;
  376. scb->header.opcode = INITIATE_SMP_TASK;
  377. scb->smp_task.proto_conn_rate = dev->linkrate;
  378. scb->smp_task.smp_req.bus_addr =
  379. cpu_to_le64((u64)sg_dma_address(&task->smp_task.smp_req));
  380. scb->smp_task.smp_req.size =
  381. cpu_to_le32((u32)sg_dma_len(&task->smp_task.smp_req)-4);
  382. scb->smp_task.smp_resp.bus_addr =
  383. cpu_to_le64((u64)sg_dma_address(&task->smp_task.smp_resp));
  384. scb->smp_task.smp_resp.size =
  385. cpu_to_le32((u32)sg_dma_len(&task->smp_task.smp_resp)-4);
  386. scb->smp_task.sister_scb = cpu_to_le16(0xFFFF);
  387. scb->smp_task.conn_handle = cpu_to_le16((u16)
  388. (unsigned long)dev->lldd_dev);
  389. ascb->tasklet_complete = asd_task_tasklet_complete;
  390. return 0;
  391. }
  392. static void asd_unbuild_smp_ascb(struct asd_ascb *a)
  393. {
  394. struct sas_task *task = a->uldd_task;
  395. BUG_ON(!task);
  396. dma_unmap_sg(&a->ha->pcidev->dev, &task->smp_task.smp_req, 1,
  397. DMA_TO_DEVICE);
  398. dma_unmap_sg(&a->ha->pcidev->dev, &task->smp_task.smp_resp, 1,
  399. DMA_FROM_DEVICE);
  400. }
  401. /* ---------- SSP ---------- */
  402. static int asd_build_ssp_ascb(struct asd_ascb *ascb, struct sas_task *task,
  403. gfp_t gfp_flags)
  404. {
  405. struct domain_device *dev = task->dev;
  406. struct scb *scb;
  407. int res = 0;
  408. scb = ascb->scb;
  409. scb->header.opcode = INITIATE_SSP_TASK;
  410. scb->ssp_task.proto_conn_rate = (1 << 4); /* SSP */
  411. scb->ssp_task.proto_conn_rate |= dev->linkrate;
  412. scb->ssp_task.total_xfer_len = cpu_to_le32(task->total_xfer_len);
  413. scb->ssp_task.ssp_frame.frame_type = SSP_DATA;
  414. memcpy(scb->ssp_task.ssp_frame.hashed_dest_addr, dev->hashed_sas_addr,
  415. HASHED_SAS_ADDR_SIZE);
  416. memcpy(scb->ssp_task.ssp_frame.hashed_src_addr,
  417. dev->port->ha->hashed_sas_addr, HASHED_SAS_ADDR_SIZE);
  418. scb->ssp_task.ssp_frame.tptt = cpu_to_be16(0xFFFF);
  419. memcpy(scb->ssp_task.ssp_cmd.lun, task->ssp_task.LUN, 8);
  420. if (task->ssp_task.enable_first_burst)
  421. scb->ssp_task.ssp_cmd.efb_prio_attr |= EFB_MASK;
  422. scb->ssp_task.ssp_cmd.efb_prio_attr |= (task->ssp_task.task_prio << 3);
  423. scb->ssp_task.ssp_cmd.efb_prio_attr |= (task->ssp_task.task_attr & 7);
  424. memcpy(scb->ssp_task.ssp_cmd.cdb, task->ssp_task.cmd->cmnd,
  425. task->ssp_task.cmd->cmd_len);
  426. scb->ssp_task.sister_scb = cpu_to_le16(0xFFFF);
  427. scb->ssp_task.conn_handle = cpu_to_le16(
  428. (u16)(unsigned long)dev->lldd_dev);
  429. scb->ssp_task.data_dir = data_dir_flags[task->data_dir];
  430. scb->ssp_task.retry_count = scb->ssp_task.retry_count;
  431. ascb->tasklet_complete = asd_task_tasklet_complete;
  432. res = asd_map_scatterlist(task, scb->ssp_task.sg_element, gfp_flags);
  433. return res;
  434. }
  435. static void asd_unbuild_ssp_ascb(struct asd_ascb *a)
  436. {
  437. asd_unmap_scatterlist(a);
  438. }
  439. /* ---------- Execute Task ---------- */
  440. static int asd_can_queue(struct asd_ha_struct *asd_ha, int num)
  441. {
  442. int res = 0;
  443. unsigned long flags;
  444. spin_lock_irqsave(&asd_ha->seq.pend_q_lock, flags);
  445. if ((asd_ha->seq.can_queue - num) < 0)
  446. res = -SAS_QUEUE_FULL;
  447. else
  448. asd_ha->seq.can_queue -= num;
  449. spin_unlock_irqrestore(&asd_ha->seq.pend_q_lock, flags);
  450. return res;
  451. }
  452. int asd_execute_task(struct sas_task *task, gfp_t gfp_flags)
  453. {
  454. int res = 0;
  455. LIST_HEAD(alist);
  456. struct sas_task *t = task;
  457. struct asd_ascb *ascb = NULL, *a;
  458. struct asd_ha_struct *asd_ha = task->dev->port->ha->lldd_ha;
  459. res = asd_can_queue(asd_ha, 1);
  460. if (res)
  461. return res;
  462. res = 1;
  463. ascb = asd_ascb_alloc_list(asd_ha, &res, gfp_flags);
  464. if (res) {
  465. res = -ENOMEM;
  466. goto out_err;
  467. }
  468. __list_add(&alist, ascb->list.prev, &ascb->list);
  469. list_for_each_entry(a, &alist, list) {
  470. a->uldd_task = t;
  471. t->lldd_task = a;
  472. break;
  473. }
  474. list_for_each_entry(a, &alist, list) {
  475. t = a->uldd_task;
  476. a->uldd_timer = 1;
  477. if (t->task_proto & SAS_PROTOCOL_STP)
  478. t->task_proto = SAS_PROTOCOL_STP;
  479. switch (t->task_proto) {
  480. case SAS_PROTOCOL_SATA:
  481. case SAS_PROTOCOL_STP:
  482. res = asd_build_ata_ascb(a, t, gfp_flags);
  483. break;
  484. case SAS_PROTOCOL_SMP:
  485. res = asd_build_smp_ascb(a, t, gfp_flags);
  486. break;
  487. case SAS_PROTOCOL_SSP:
  488. res = asd_build_ssp_ascb(a, t, gfp_flags);
  489. break;
  490. default:
  491. asd_printk("unknown sas_task proto: 0x%x\n",
  492. t->task_proto);
  493. res = -ENOMEM;
  494. break;
  495. }
  496. if (res)
  497. goto out_err_unmap;
  498. }
  499. list_del_init(&alist);
  500. res = asd_post_ascb_list(asd_ha, ascb, 1);
  501. if (unlikely(res)) {
  502. a = NULL;
  503. __list_add(&alist, ascb->list.prev, &ascb->list);
  504. goto out_err_unmap;
  505. }
  506. return 0;
  507. out_err_unmap:
  508. {
  509. struct asd_ascb *b = a;
  510. list_for_each_entry(a, &alist, list) {
  511. if (a == b)
  512. break;
  513. t = a->uldd_task;
  514. switch (t->task_proto) {
  515. case SAS_PROTOCOL_SATA:
  516. case SAS_PROTOCOL_STP:
  517. asd_unbuild_ata_ascb(a);
  518. break;
  519. case SAS_PROTOCOL_SMP:
  520. asd_unbuild_smp_ascb(a);
  521. break;
  522. case SAS_PROTOCOL_SSP:
  523. asd_unbuild_ssp_ascb(a);
  524. break;
  525. default:
  526. break;
  527. }
  528. t->lldd_task = NULL;
  529. }
  530. }
  531. list_del_init(&alist);
  532. out_err:
  533. if (ascb)
  534. asd_ascb_free_list(ascb);
  535. asd_can_dequeue(asd_ha, 1);
  536. return res;
  537. }