zfcp_qdio.c 24 KB

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  1. /*
  2. * This file is part of the zfcp device driver for
  3. * FCP adapters for IBM System z9 and zSeries.
  4. *
  5. * (C) Copyright IBM Corp. 2002, 2006
  6. *
  7. * This program is free software; you can redistribute it and/or modify
  8. * it under the terms of the GNU General Public License as published by
  9. * the Free Software Foundation; either version 2, or (at your option)
  10. * any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA.
  20. */
  21. #include "zfcp_ext.h"
  22. static inline void zfcp_qdio_sbal_limit(struct zfcp_fsf_req *, int);
  23. static inline volatile struct qdio_buffer_element *zfcp_qdio_sbale_get
  24. (struct zfcp_qdio_queue *, int, int);
  25. static inline volatile struct qdio_buffer_element *zfcp_qdio_sbale_resp
  26. (struct zfcp_fsf_req *, int, int);
  27. static inline volatile struct qdio_buffer_element *zfcp_qdio_sbal_chain
  28. (struct zfcp_fsf_req *, unsigned long);
  29. static inline volatile struct qdio_buffer_element *zfcp_qdio_sbale_next
  30. (struct zfcp_fsf_req *, unsigned long);
  31. static inline int zfcp_qdio_sbals_zero(struct zfcp_qdio_queue *, int, int);
  32. static inline int zfcp_qdio_sbals_wipe(struct zfcp_fsf_req *);
  33. static inline void zfcp_qdio_sbale_fill
  34. (struct zfcp_fsf_req *, unsigned long, void *, int);
  35. static inline int zfcp_qdio_sbals_from_segment
  36. (struct zfcp_fsf_req *, unsigned long, void *, unsigned long);
  37. static inline int zfcp_qdio_sbals_from_buffer
  38. (struct zfcp_fsf_req *, unsigned long, void *, unsigned long, int);
  39. static qdio_handler_t zfcp_qdio_request_handler;
  40. static qdio_handler_t zfcp_qdio_response_handler;
  41. static int zfcp_qdio_handler_error_check(struct zfcp_adapter *,
  42. unsigned int, unsigned int, unsigned int, int, int);
  43. #define ZFCP_LOG_AREA ZFCP_LOG_AREA_QDIO
  44. /*
  45. * Allocates BUFFER memory to each of the pointers of the qdio_buffer_t
  46. * array in the adapter struct.
  47. * Cur_buf is the pointer array and count can be any number of required
  48. * buffers, the page-fitting arithmetic is done entirely within this funciton.
  49. *
  50. * returns: number of buffers allocated
  51. * locks: must only be called with zfcp_data.config_sema taken
  52. */
  53. static int
  54. zfcp_qdio_buffers_enqueue(struct qdio_buffer **cur_buf, int count)
  55. {
  56. int buf_pos;
  57. int qdio_buffers_per_page;
  58. int page_pos = 0;
  59. struct qdio_buffer *first_in_page = NULL;
  60. qdio_buffers_per_page = PAGE_SIZE / sizeof (struct qdio_buffer);
  61. ZFCP_LOG_TRACE("buffers_per_page=%d\n", qdio_buffers_per_page);
  62. for (buf_pos = 0; buf_pos < count; buf_pos++) {
  63. if (page_pos == 0) {
  64. cur_buf[buf_pos] = (struct qdio_buffer *)
  65. get_zeroed_page(GFP_KERNEL);
  66. if (cur_buf[buf_pos] == NULL) {
  67. ZFCP_LOG_INFO("error: allocation of "
  68. "QDIO buffer failed \n");
  69. goto out;
  70. }
  71. first_in_page = cur_buf[buf_pos];
  72. } else {
  73. cur_buf[buf_pos] = first_in_page + page_pos;
  74. }
  75. /* was initialised to zero */
  76. page_pos++;
  77. page_pos %= qdio_buffers_per_page;
  78. }
  79. out:
  80. return buf_pos;
  81. }
  82. /*
  83. * Frees BUFFER memory for each of the pointers of the struct qdio_buffer array
  84. * in the adapter struct cur_buf is the pointer array and count can be any
  85. * number of buffers in the array that should be freed starting from buffer 0
  86. *
  87. * locks: must only be called with zfcp_data.config_sema taken
  88. */
  89. static void
  90. zfcp_qdio_buffers_dequeue(struct qdio_buffer **cur_buf, int count)
  91. {
  92. int buf_pos;
  93. int qdio_buffers_per_page;
  94. qdio_buffers_per_page = PAGE_SIZE / sizeof (struct qdio_buffer);
  95. ZFCP_LOG_TRACE("buffers_per_page=%d\n", qdio_buffers_per_page);
  96. for (buf_pos = 0; buf_pos < count; buf_pos += qdio_buffers_per_page)
  97. free_page((unsigned long) cur_buf[buf_pos]);
  98. return;
  99. }
  100. /* locks: must only be called with zfcp_data.config_sema taken */
  101. int
  102. zfcp_qdio_allocate_queues(struct zfcp_adapter *adapter)
  103. {
  104. int buffer_count;
  105. int retval = 0;
  106. buffer_count =
  107. zfcp_qdio_buffers_enqueue(&(adapter->request_queue.buffer[0]),
  108. QDIO_MAX_BUFFERS_PER_Q);
  109. if (buffer_count < QDIO_MAX_BUFFERS_PER_Q) {
  110. ZFCP_LOG_DEBUG("only %d QDIO buffers allocated for request "
  111. "queue\n", buffer_count);
  112. zfcp_qdio_buffers_dequeue(&(adapter->request_queue.buffer[0]),
  113. buffer_count);
  114. retval = -ENOMEM;
  115. goto out;
  116. }
  117. buffer_count =
  118. zfcp_qdio_buffers_enqueue(&(adapter->response_queue.buffer[0]),
  119. QDIO_MAX_BUFFERS_PER_Q);
  120. if (buffer_count < QDIO_MAX_BUFFERS_PER_Q) {
  121. ZFCP_LOG_DEBUG("only %d QDIO buffers allocated for response "
  122. "queue", buffer_count);
  123. zfcp_qdio_buffers_dequeue(&(adapter->response_queue.buffer[0]),
  124. buffer_count);
  125. ZFCP_LOG_TRACE("freeing request_queue buffers\n");
  126. zfcp_qdio_buffers_dequeue(&(adapter->request_queue.buffer[0]),
  127. QDIO_MAX_BUFFERS_PER_Q);
  128. retval = -ENOMEM;
  129. goto out;
  130. }
  131. out:
  132. return retval;
  133. }
  134. /* locks: must only be called with zfcp_data.config_sema taken */
  135. void
  136. zfcp_qdio_free_queues(struct zfcp_adapter *adapter)
  137. {
  138. ZFCP_LOG_TRACE("freeing request_queue buffers\n");
  139. zfcp_qdio_buffers_dequeue(&(adapter->request_queue.buffer[0]),
  140. QDIO_MAX_BUFFERS_PER_Q);
  141. ZFCP_LOG_TRACE("freeing response_queue buffers\n");
  142. zfcp_qdio_buffers_dequeue(&(adapter->response_queue.buffer[0]),
  143. QDIO_MAX_BUFFERS_PER_Q);
  144. }
  145. int
  146. zfcp_qdio_allocate(struct zfcp_adapter *adapter)
  147. {
  148. struct qdio_initialize *init_data;
  149. init_data = &adapter->qdio_init_data;
  150. init_data->cdev = adapter->ccw_device;
  151. init_data->q_format = QDIO_SCSI_QFMT;
  152. memcpy(init_data->adapter_name, zfcp_get_busid_by_adapter(adapter), 8);
  153. ASCEBC(init_data->adapter_name, 8);
  154. init_data->qib_param_field_format = 0;
  155. init_data->qib_param_field = NULL;
  156. init_data->input_slib_elements = NULL;
  157. init_data->output_slib_elements = NULL;
  158. init_data->min_input_threshold = ZFCP_MIN_INPUT_THRESHOLD;
  159. init_data->max_input_threshold = ZFCP_MAX_INPUT_THRESHOLD;
  160. init_data->min_output_threshold = ZFCP_MIN_OUTPUT_THRESHOLD;
  161. init_data->max_output_threshold = ZFCP_MAX_OUTPUT_THRESHOLD;
  162. init_data->no_input_qs = 1;
  163. init_data->no_output_qs = 1;
  164. init_data->input_handler = zfcp_qdio_response_handler;
  165. init_data->output_handler = zfcp_qdio_request_handler;
  166. init_data->int_parm = (unsigned long) adapter;
  167. init_data->flags = QDIO_INBOUND_0COPY_SBALS |
  168. QDIO_OUTBOUND_0COPY_SBALS | QDIO_USE_OUTBOUND_PCIS;
  169. init_data->input_sbal_addr_array =
  170. (void **) (adapter->response_queue.buffer);
  171. init_data->output_sbal_addr_array =
  172. (void **) (adapter->request_queue.buffer);
  173. return qdio_allocate(init_data);
  174. }
  175. /*
  176. * function: zfcp_qdio_handler_error_check
  177. *
  178. * purpose: called by the response handler to determine error condition
  179. *
  180. * returns: error flag
  181. *
  182. */
  183. static inline int
  184. zfcp_qdio_handler_error_check(struct zfcp_adapter *adapter, unsigned int status,
  185. unsigned int qdio_error, unsigned int siga_error,
  186. int first_element, int elements_processed)
  187. {
  188. int retval = 0;
  189. if (unlikely(status & QDIO_STATUS_LOOK_FOR_ERROR)) {
  190. retval = -EIO;
  191. ZFCP_LOG_INFO("QDIO problem occurred (status=0x%x, "
  192. "qdio_error=0x%x, siga_error=0x%x)\n",
  193. status, qdio_error, siga_error);
  194. zfcp_hba_dbf_event_qdio(adapter, status, qdio_error, siga_error,
  195. first_element, elements_processed);
  196. /*
  197. * Restarting IO on the failed adapter from scratch.
  198. * Since we have been using this adapter, it is save to assume
  199. * that it is not failed but recoverable. The card seems to
  200. * report link-up events by self-initiated queue shutdown.
  201. * That is why we need to clear the the link-down flag
  202. * which is set again in case we have missed by a mile.
  203. */
  204. zfcp_erp_adapter_reopen(
  205. adapter,
  206. ZFCP_STATUS_ADAPTER_LINK_UNPLUGGED |
  207. ZFCP_STATUS_COMMON_ERP_FAILED);
  208. }
  209. return retval;
  210. }
  211. /*
  212. * function: zfcp_qdio_request_handler
  213. *
  214. * purpose: is called by QDIO layer for completed SBALs in request queue
  215. *
  216. * returns: (void)
  217. */
  218. static void
  219. zfcp_qdio_request_handler(struct ccw_device *ccw_device,
  220. unsigned int status,
  221. unsigned int qdio_error,
  222. unsigned int siga_error,
  223. unsigned int queue_number,
  224. int first_element,
  225. int elements_processed,
  226. unsigned long int_parm)
  227. {
  228. struct zfcp_adapter *adapter;
  229. struct zfcp_qdio_queue *queue;
  230. adapter = (struct zfcp_adapter *) int_parm;
  231. queue = &adapter->request_queue;
  232. ZFCP_LOG_DEBUG("adapter %s, first=%d, elements_processed=%d\n",
  233. zfcp_get_busid_by_adapter(adapter),
  234. first_element, elements_processed);
  235. if (unlikely(zfcp_qdio_handler_error_check(adapter, status, qdio_error,
  236. siga_error, first_element,
  237. elements_processed)))
  238. goto out;
  239. /*
  240. * we stored address of struct zfcp_adapter data structure
  241. * associated with irq in int_parm
  242. */
  243. /* cleanup all SBALs being program-owned now */
  244. zfcp_qdio_zero_sbals(queue->buffer, first_element, elements_processed);
  245. /* increase free space in outbound queue */
  246. atomic_add(elements_processed, &queue->free_count);
  247. ZFCP_LOG_DEBUG("free_count=%d\n", atomic_read(&queue->free_count));
  248. wake_up(&adapter->request_wq);
  249. ZFCP_LOG_DEBUG("elements_processed=%d, free count=%d\n",
  250. elements_processed, atomic_read(&queue->free_count));
  251. out:
  252. return;
  253. }
  254. /**
  255. * zfcp_qdio_reqid_check - checks for valid reqids or unsolicited status
  256. */
  257. static int zfcp_qdio_reqid_check(struct zfcp_adapter *adapter,
  258. unsigned long req_id)
  259. {
  260. struct zfcp_fsf_req *fsf_req;
  261. unsigned long flags;
  262. debug_long_event(adapter->erp_dbf, 4, req_id);
  263. spin_lock_irqsave(&adapter->req_list_lock, flags);
  264. fsf_req = zfcp_reqlist_ismember(adapter, req_id);
  265. if (!fsf_req) {
  266. spin_unlock_irqrestore(&adapter->req_list_lock, flags);
  267. ZFCP_LOG_NORMAL("error: unknown request id (%ld).\n", req_id);
  268. zfcp_erp_adapter_reopen(adapter, 0);
  269. return -EINVAL;
  270. }
  271. zfcp_reqlist_remove(adapter, req_id);
  272. atomic_dec(&adapter->reqs_active);
  273. spin_unlock_irqrestore(&adapter->req_list_lock, flags);
  274. /* finish the FSF request */
  275. zfcp_fsf_req_complete(fsf_req);
  276. return 0;
  277. }
  278. /*
  279. * function: zfcp_qdio_response_handler
  280. *
  281. * purpose: is called by QDIO layer for completed SBALs in response queue
  282. *
  283. * returns: (void)
  284. */
  285. static void
  286. zfcp_qdio_response_handler(struct ccw_device *ccw_device,
  287. unsigned int status,
  288. unsigned int qdio_error,
  289. unsigned int siga_error,
  290. unsigned int queue_number,
  291. int first_element,
  292. int elements_processed,
  293. unsigned long int_parm)
  294. {
  295. struct zfcp_adapter *adapter;
  296. struct zfcp_qdio_queue *queue;
  297. int buffer_index;
  298. int i;
  299. struct qdio_buffer *buffer;
  300. int retval = 0;
  301. u8 count;
  302. u8 start;
  303. volatile struct qdio_buffer_element *buffere = NULL;
  304. int buffere_index;
  305. adapter = (struct zfcp_adapter *) int_parm;
  306. queue = &adapter->response_queue;
  307. if (unlikely(zfcp_qdio_handler_error_check(adapter, status, qdio_error,
  308. siga_error, first_element,
  309. elements_processed)))
  310. goto out;
  311. /*
  312. * we stored address of struct zfcp_adapter data structure
  313. * associated with irq in int_parm
  314. */
  315. buffere = &(queue->buffer[first_element]->element[0]);
  316. ZFCP_LOG_DEBUG("first BUFFERE flags=0x%x\n", buffere->flags);
  317. /*
  318. * go through all SBALs from input queue currently
  319. * returned by QDIO layer
  320. */
  321. for (i = 0; i < elements_processed; i++) {
  322. buffer_index = first_element + i;
  323. buffer_index %= QDIO_MAX_BUFFERS_PER_Q;
  324. buffer = queue->buffer[buffer_index];
  325. /* go through all SBALEs of SBAL */
  326. for (buffere_index = 0;
  327. buffere_index < QDIO_MAX_ELEMENTS_PER_BUFFER;
  328. buffere_index++) {
  329. /* look for QDIO request identifiers in SB */
  330. buffere = &buffer->element[buffere_index];
  331. retval = zfcp_qdio_reqid_check(adapter,
  332. (unsigned long) buffere->addr);
  333. if (retval) {
  334. ZFCP_LOG_NORMAL("bug: unexpected inbound "
  335. "packet on adapter %s "
  336. "(reqid=0x%lx, "
  337. "first_element=%d, "
  338. "elements_processed=%d)\n",
  339. zfcp_get_busid_by_adapter(adapter),
  340. (unsigned long) buffere->addr,
  341. first_element,
  342. elements_processed);
  343. ZFCP_LOG_NORMAL("hex dump of inbound buffer "
  344. "at address %p "
  345. "(buffer_index=%d, "
  346. "buffere_index=%d)\n", buffer,
  347. buffer_index, buffere_index);
  348. ZFCP_HEX_DUMP(ZFCP_LOG_LEVEL_NORMAL,
  349. (char *) buffer, SBAL_SIZE);
  350. }
  351. /*
  352. * A single used SBALE per inbound SBALE has been
  353. * implemented by QDIO so far. Hope they will
  354. * do some optimisation. Will need to change to
  355. * unlikely() then.
  356. */
  357. if (likely(buffere->flags & SBAL_FLAGS_LAST_ENTRY))
  358. break;
  359. };
  360. if (unlikely(!(buffere->flags & SBAL_FLAGS_LAST_ENTRY))) {
  361. ZFCP_LOG_NORMAL("bug: End of inbound data "
  362. "not marked!\n");
  363. }
  364. }
  365. /*
  366. * put range of SBALs back to response queue
  367. * (including SBALs which have already been free before)
  368. */
  369. count = atomic_read(&queue->free_count) + elements_processed;
  370. start = queue->free_index;
  371. ZFCP_LOG_TRACE("calling do_QDIO on adapter %s (flags=0x%x, "
  372. "queue_no=%i, index_in_queue=%i, count=%i, "
  373. "buffers=0x%lx\n",
  374. zfcp_get_busid_by_adapter(adapter),
  375. QDIO_FLAG_SYNC_INPUT | QDIO_FLAG_UNDER_INTERRUPT,
  376. 0, start, count, (unsigned long) &queue->buffer[start]);
  377. retval = do_QDIO(ccw_device,
  378. QDIO_FLAG_SYNC_INPUT | QDIO_FLAG_UNDER_INTERRUPT,
  379. 0, start, count, NULL);
  380. if (unlikely(retval)) {
  381. atomic_set(&queue->free_count, count);
  382. ZFCP_LOG_DEBUG("clearing of inbound data regions failed, "
  383. "queues may be down "
  384. "(count=%d, start=%d, retval=%d)\n",
  385. count, start, retval);
  386. } else {
  387. queue->free_index += count;
  388. queue->free_index %= QDIO_MAX_BUFFERS_PER_Q;
  389. atomic_set(&queue->free_count, 0);
  390. ZFCP_LOG_TRACE("%i buffers enqueued to response "
  391. "queue at position %i\n", count, start);
  392. }
  393. out:
  394. return;
  395. }
  396. /**
  397. * zfcp_qdio_sbale_get - return pointer to SBALE of qdio_queue
  398. * @queue: queue from which SBALE should be returned
  399. * @sbal: specifies number of SBAL in queue
  400. * @sbale: specifes number of SBALE in SBAL
  401. */
  402. static inline volatile struct qdio_buffer_element *
  403. zfcp_qdio_sbale_get(struct zfcp_qdio_queue *queue, int sbal, int sbale)
  404. {
  405. return &queue->buffer[sbal]->element[sbale];
  406. }
  407. /**
  408. * zfcp_qdio_sbale_req - return pointer to SBALE of request_queue for
  409. * a struct zfcp_fsf_req
  410. */
  411. inline volatile struct qdio_buffer_element *
  412. zfcp_qdio_sbale_req(struct zfcp_fsf_req *fsf_req, int sbal, int sbale)
  413. {
  414. return zfcp_qdio_sbale_get(&fsf_req->adapter->request_queue,
  415. sbal, sbale);
  416. }
  417. /**
  418. * zfcp_qdio_sbale_resp - return pointer to SBALE of response_queue for
  419. * a struct zfcp_fsf_req
  420. */
  421. static inline volatile struct qdio_buffer_element *
  422. zfcp_qdio_sbale_resp(struct zfcp_fsf_req *fsf_req, int sbal, int sbale)
  423. {
  424. return zfcp_qdio_sbale_get(&fsf_req->adapter->response_queue,
  425. sbal, sbale);
  426. }
  427. /**
  428. * zfcp_qdio_sbale_curr - return current SBALE on request_queue for
  429. * a struct zfcp_fsf_req
  430. */
  431. inline volatile struct qdio_buffer_element *
  432. zfcp_qdio_sbale_curr(struct zfcp_fsf_req *fsf_req)
  433. {
  434. return zfcp_qdio_sbale_req(fsf_req, fsf_req->sbal_curr,
  435. fsf_req->sbale_curr);
  436. }
  437. /**
  438. * zfcp_qdio_sbal_limit - determine maximum number of SBALs that can be used
  439. * on the request_queue for a struct zfcp_fsf_req
  440. * @fsf_req: the number of the last SBAL that can be used is stored herein
  441. * @max_sbals: used to pass an upper limit for the number of SBALs
  442. *
  443. * Note: We can assume at least one free SBAL in the request_queue when called.
  444. */
  445. static inline void
  446. zfcp_qdio_sbal_limit(struct zfcp_fsf_req *fsf_req, int max_sbals)
  447. {
  448. int count = atomic_read(&fsf_req->adapter->request_queue.free_count);
  449. count = min(count, max_sbals);
  450. fsf_req->sbal_last = fsf_req->sbal_first;
  451. fsf_req->sbal_last += (count - 1);
  452. fsf_req->sbal_last %= QDIO_MAX_BUFFERS_PER_Q;
  453. }
  454. /**
  455. * zfcp_qdio_sbal_chain - chain SBALs if more than one SBAL is needed for a
  456. * request
  457. * @fsf_req: zfcp_fsf_req to be processed
  458. * @sbtype: SBAL flags which have to be set in first SBALE of new SBAL
  459. *
  460. * This function changes sbal_curr, sbale_curr, sbal_number of fsf_req.
  461. */
  462. static inline volatile struct qdio_buffer_element *
  463. zfcp_qdio_sbal_chain(struct zfcp_fsf_req *fsf_req, unsigned long sbtype)
  464. {
  465. volatile struct qdio_buffer_element *sbale;
  466. /* set last entry flag in current SBALE of current SBAL */
  467. sbale = zfcp_qdio_sbale_curr(fsf_req);
  468. sbale->flags |= SBAL_FLAGS_LAST_ENTRY;
  469. /* don't exceed last allowed SBAL */
  470. if (fsf_req->sbal_curr == fsf_req->sbal_last)
  471. return NULL;
  472. /* set chaining flag in first SBALE of current SBAL */
  473. sbale = zfcp_qdio_sbale_req(fsf_req, fsf_req->sbal_curr, 0);
  474. sbale->flags |= SBAL_FLAGS0_MORE_SBALS;
  475. /* calculate index of next SBAL */
  476. fsf_req->sbal_curr++;
  477. fsf_req->sbal_curr %= QDIO_MAX_BUFFERS_PER_Q;
  478. /* keep this requests number of SBALs up-to-date */
  479. fsf_req->sbal_number++;
  480. /* start at first SBALE of new SBAL */
  481. fsf_req->sbale_curr = 0;
  482. /* set storage-block type for new SBAL */
  483. sbale = zfcp_qdio_sbale_curr(fsf_req);
  484. sbale->flags |= sbtype;
  485. return sbale;
  486. }
  487. /**
  488. * zfcp_qdio_sbale_next - switch to next SBALE, chain SBALs if needed
  489. */
  490. static inline volatile struct qdio_buffer_element *
  491. zfcp_qdio_sbale_next(struct zfcp_fsf_req *fsf_req, unsigned long sbtype)
  492. {
  493. if (fsf_req->sbale_curr == ZFCP_LAST_SBALE_PER_SBAL)
  494. return zfcp_qdio_sbal_chain(fsf_req, sbtype);
  495. fsf_req->sbale_curr++;
  496. return zfcp_qdio_sbale_curr(fsf_req);
  497. }
  498. /**
  499. * zfcp_qdio_sbals_zero - initialize SBALs between first and last in queue
  500. * with zero from
  501. */
  502. static inline int
  503. zfcp_qdio_sbals_zero(struct zfcp_qdio_queue *queue, int first, int last)
  504. {
  505. struct qdio_buffer **buf = queue->buffer;
  506. int curr = first;
  507. int count = 0;
  508. for(;;) {
  509. curr %= QDIO_MAX_BUFFERS_PER_Q;
  510. count++;
  511. memset(buf[curr], 0, sizeof(struct qdio_buffer));
  512. if (curr == last)
  513. break;
  514. curr++;
  515. }
  516. return count;
  517. }
  518. /**
  519. * zfcp_qdio_sbals_wipe - reset all changes in SBALs for an fsf_req
  520. */
  521. static inline int
  522. zfcp_qdio_sbals_wipe(struct zfcp_fsf_req *fsf_req)
  523. {
  524. return zfcp_qdio_sbals_zero(&fsf_req->adapter->request_queue,
  525. fsf_req->sbal_first, fsf_req->sbal_curr);
  526. }
  527. /**
  528. * zfcp_qdio_sbale_fill - set address and lenght in current SBALE
  529. * on request_queue
  530. */
  531. static inline void
  532. zfcp_qdio_sbale_fill(struct zfcp_fsf_req *fsf_req, unsigned long sbtype,
  533. void *addr, int length)
  534. {
  535. volatile struct qdio_buffer_element *sbale;
  536. sbale = zfcp_qdio_sbale_curr(fsf_req);
  537. sbale->addr = addr;
  538. sbale->length = length;
  539. }
  540. /**
  541. * zfcp_qdio_sbals_from_segment - map memory segment to SBALE(s)
  542. * @fsf_req: request to be processed
  543. * @sbtype: SBALE flags
  544. * @start_addr: address of memory segment
  545. * @total_length: length of memory segment
  546. *
  547. * Alignment and length of the segment determine how many SBALEs are needed
  548. * for the memory segment.
  549. */
  550. static inline int
  551. zfcp_qdio_sbals_from_segment(struct zfcp_fsf_req *fsf_req, unsigned long sbtype,
  552. void *start_addr, unsigned long total_length)
  553. {
  554. unsigned long remaining, length;
  555. void *addr;
  556. /* split segment up heeding page boundaries */
  557. for (addr = start_addr, remaining = total_length; remaining > 0;
  558. addr += length, remaining -= length) {
  559. /* get next free SBALE for new piece */
  560. if (NULL == zfcp_qdio_sbale_next(fsf_req, sbtype)) {
  561. /* no SBALE left, clean up and leave */
  562. zfcp_qdio_sbals_wipe(fsf_req);
  563. return -EINVAL;
  564. }
  565. /* calculate length of new piece */
  566. length = min(remaining,
  567. (PAGE_SIZE - ((unsigned long) addr &
  568. (PAGE_SIZE - 1))));
  569. /* fill current SBALE with calculated piece */
  570. zfcp_qdio_sbale_fill(fsf_req, sbtype, addr, length);
  571. }
  572. return total_length;
  573. }
  574. /**
  575. * zfcp_qdio_sbals_from_sg - fill SBALs from scatter-gather list
  576. * @fsf_req: request to be processed
  577. * @sbtype: SBALE flags
  578. * @sg: scatter-gather list
  579. * @sg_count: number of elements in scatter-gather list
  580. * @max_sbals: upper bound for number of SBALs to be used
  581. */
  582. inline int
  583. zfcp_qdio_sbals_from_sg(struct zfcp_fsf_req *fsf_req, unsigned long sbtype,
  584. struct scatterlist *sg, int sg_count, int max_sbals)
  585. {
  586. int sg_index;
  587. struct scatterlist *sg_segment;
  588. int retval;
  589. volatile struct qdio_buffer_element *sbale;
  590. int bytes = 0;
  591. /* figure out last allowed SBAL */
  592. zfcp_qdio_sbal_limit(fsf_req, max_sbals);
  593. /* set storage-block type for current SBAL */
  594. sbale = zfcp_qdio_sbale_req(fsf_req, fsf_req->sbal_curr, 0);
  595. sbale->flags |= sbtype;
  596. /* process all segements of scatter-gather list */
  597. for (sg_index = 0, sg_segment = sg, bytes = 0;
  598. sg_index < sg_count;
  599. sg_index++, sg_segment++) {
  600. retval = zfcp_qdio_sbals_from_segment(
  601. fsf_req,
  602. sbtype,
  603. zfcp_sg_to_address(sg_segment),
  604. sg_segment->length);
  605. if (retval < 0) {
  606. bytes = retval;
  607. goto out;
  608. } else
  609. bytes += retval;
  610. }
  611. /* assume that no other SBALEs are to follow in the same SBAL */
  612. sbale = zfcp_qdio_sbale_curr(fsf_req);
  613. sbale->flags |= SBAL_FLAGS_LAST_ENTRY;
  614. out:
  615. return bytes;
  616. }
  617. /**
  618. * zfcp_qdio_sbals_from_buffer - fill SBALs from buffer
  619. * @fsf_req: request to be processed
  620. * @sbtype: SBALE flags
  621. * @buffer: data buffer
  622. * @length: length of buffer
  623. * @max_sbals: upper bound for number of SBALs to be used
  624. */
  625. static inline int
  626. zfcp_qdio_sbals_from_buffer(struct zfcp_fsf_req *fsf_req, unsigned long sbtype,
  627. void *buffer, unsigned long length, int max_sbals)
  628. {
  629. struct scatterlist sg_segment;
  630. zfcp_address_to_sg(buffer, &sg_segment);
  631. sg_segment.length = length;
  632. return zfcp_qdio_sbals_from_sg(fsf_req, sbtype, &sg_segment, 1,
  633. max_sbals);
  634. }
  635. /**
  636. * zfcp_qdio_sbals_from_scsicmnd - fill SBALs from scsi command
  637. * @fsf_req: request to be processed
  638. * @sbtype: SBALE flags
  639. * @scsi_cmnd: either scatter-gather list or buffer contained herein is used
  640. * to fill SBALs
  641. */
  642. inline int
  643. zfcp_qdio_sbals_from_scsicmnd(struct zfcp_fsf_req *fsf_req,
  644. unsigned long sbtype, struct scsi_cmnd *scsi_cmnd)
  645. {
  646. if (scsi_cmnd->use_sg) {
  647. return zfcp_qdio_sbals_from_sg(fsf_req, sbtype,
  648. (struct scatterlist *)
  649. scsi_cmnd->request_buffer,
  650. scsi_cmnd->use_sg,
  651. ZFCP_MAX_SBALS_PER_REQ);
  652. } else {
  653. return zfcp_qdio_sbals_from_buffer(fsf_req, sbtype,
  654. scsi_cmnd->request_buffer,
  655. scsi_cmnd->request_bufflen,
  656. ZFCP_MAX_SBALS_PER_REQ);
  657. }
  658. }
  659. /**
  660. * zfcp_qdio_determine_pci - set PCI flag in first SBALE on qdio queue if needed
  661. */
  662. int
  663. zfcp_qdio_determine_pci(struct zfcp_qdio_queue *req_queue,
  664. struct zfcp_fsf_req *fsf_req)
  665. {
  666. int new_distance_from_int;
  667. int pci_pos;
  668. volatile struct qdio_buffer_element *sbale;
  669. new_distance_from_int = req_queue->distance_from_int +
  670. fsf_req->sbal_number;
  671. if (unlikely(new_distance_from_int >= ZFCP_QDIO_PCI_INTERVAL)) {
  672. new_distance_from_int %= ZFCP_QDIO_PCI_INTERVAL;
  673. pci_pos = fsf_req->sbal_first;
  674. pci_pos += fsf_req->sbal_number;
  675. pci_pos -= new_distance_from_int;
  676. pci_pos -= 1;
  677. pci_pos %= QDIO_MAX_BUFFERS_PER_Q;
  678. sbale = zfcp_qdio_sbale_req(fsf_req, pci_pos, 0);
  679. sbale->flags |= SBAL_FLAGS0_PCI;
  680. }
  681. return new_distance_from_int;
  682. }
  683. /*
  684. * function: zfcp_zero_sbals
  685. *
  686. * purpose: zeros specified range of SBALs
  687. *
  688. * returns:
  689. */
  690. void
  691. zfcp_qdio_zero_sbals(struct qdio_buffer *buf[], int first, int clean_count)
  692. {
  693. int cur_pos;
  694. int index;
  695. for (cur_pos = first; cur_pos < (first + clean_count); cur_pos++) {
  696. index = cur_pos % QDIO_MAX_BUFFERS_PER_Q;
  697. memset(buf[index], 0, sizeof (struct qdio_buffer));
  698. ZFCP_LOG_TRACE("zeroing BUFFER %d at address %p\n",
  699. index, buf[index]);
  700. }
  701. }
  702. #undef ZFCP_LOG_AREA