zfcp_dbf.c 35 KB

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  1. /*
  2. * zfcp device driver
  3. *
  4. * Debug traces for zfcp.
  5. *
  6. * Copyright IBM Corporation 2002, 2009
  7. */
  8. #define KMSG_COMPONENT "zfcp"
  9. #define pr_fmt(fmt) KMSG_COMPONENT ": " fmt
  10. #include <linux/ctype.h>
  11. #include <linux/slab.h>
  12. #include <asm/debug.h>
  13. #include "zfcp_dbf.h"
  14. #include "zfcp_ext.h"
  15. #include "zfcp_fc.h"
  16. static u32 dbfsize = 4;
  17. module_param(dbfsize, uint, 0400);
  18. MODULE_PARM_DESC(dbfsize,
  19. "number of pages for each debug feature area (default 4)");
  20. static void zfcp_dbf_hexdump(debug_info_t *dbf, void *to, int to_len,
  21. int level, char *from, int from_len)
  22. {
  23. int offset;
  24. struct zfcp_dbf_dump *dump = to;
  25. int room = to_len - sizeof(*dump);
  26. for (offset = 0; offset < from_len; offset += dump->size) {
  27. memset(to, 0, to_len);
  28. strncpy(dump->tag, "dump", ZFCP_DBF_TAG_SIZE);
  29. dump->total_size = from_len;
  30. dump->offset = offset;
  31. dump->size = min(from_len - offset, room);
  32. memcpy(dump->data, from + offset, dump->size);
  33. debug_event(dbf, level, dump, dump->size + sizeof(*dump));
  34. }
  35. }
  36. static void zfcp_dbf_tag(char **p, const char *label, const char *tag)
  37. {
  38. int i;
  39. *p += sprintf(*p, "%-24s", label);
  40. for (i = 0; i < ZFCP_DBF_TAG_SIZE; i++)
  41. *p += sprintf(*p, "%c", tag[i]);
  42. *p += sprintf(*p, "\n");
  43. }
  44. static void zfcp_dbf_outs(char **buf, const char *s1, const char *s2)
  45. {
  46. *buf += sprintf(*buf, "%-24s%s\n", s1, s2);
  47. }
  48. static void zfcp_dbf_out(char **buf, const char *s, const char *format, ...)
  49. {
  50. va_list arg;
  51. *buf += sprintf(*buf, "%-24s", s);
  52. va_start(arg, format);
  53. *buf += vsprintf(*buf, format, arg);
  54. va_end(arg);
  55. *buf += sprintf(*buf, "\n");
  56. }
  57. static void zfcp_dbf_outd(char **p, const char *label, char *buffer,
  58. int buflen, int offset, int total_size)
  59. {
  60. if (!offset)
  61. *p += sprintf(*p, "%-24s ", label);
  62. while (buflen--) {
  63. if (offset > 0) {
  64. if ((offset % 32) == 0)
  65. *p += sprintf(*p, "\n%-24c ", ' ');
  66. else if ((offset % 4) == 0)
  67. *p += sprintf(*p, " ");
  68. }
  69. *p += sprintf(*p, "%02x", *buffer++);
  70. if (++offset == total_size) {
  71. *p += sprintf(*p, "\n");
  72. break;
  73. }
  74. }
  75. if (!total_size)
  76. *p += sprintf(*p, "\n");
  77. }
  78. static int zfcp_dbf_view_header(debug_info_t *id, struct debug_view *view,
  79. int area, debug_entry_t *entry, char *out_buf)
  80. {
  81. struct zfcp_dbf_dump *dump = (struct zfcp_dbf_dump *)DEBUG_DATA(entry);
  82. struct timespec t;
  83. char *p = out_buf;
  84. if (strncmp(dump->tag, "dump", ZFCP_DBF_TAG_SIZE) != 0) {
  85. stck_to_timespec(entry->id.stck, &t);
  86. zfcp_dbf_out(&p, "timestamp", "%011lu:%06lu",
  87. t.tv_sec, t.tv_nsec);
  88. zfcp_dbf_out(&p, "cpu", "%02i", entry->id.fields.cpuid);
  89. } else {
  90. zfcp_dbf_outd(&p, "", dump->data, dump->size, dump->offset,
  91. dump->total_size);
  92. if ((dump->offset + dump->size) == dump->total_size)
  93. p += sprintf(p, "\n");
  94. }
  95. return p - out_buf;
  96. }
  97. void _zfcp_dbf_hba_fsf_response(const char *tag2, int level,
  98. struct zfcp_fsf_req *fsf_req,
  99. struct zfcp_dbf *dbf)
  100. {
  101. struct fsf_qtcb *qtcb = fsf_req->qtcb;
  102. union fsf_prot_status_qual *prot_status_qual =
  103. &qtcb->prefix.prot_status_qual;
  104. union fsf_status_qual *fsf_status_qual = &qtcb->header.fsf_status_qual;
  105. struct scsi_cmnd *scsi_cmnd;
  106. struct zfcp_port *port;
  107. struct zfcp_unit *unit;
  108. struct zfcp_send_els *send_els;
  109. struct zfcp_dbf_hba_record *rec = &dbf->hba_buf;
  110. struct zfcp_dbf_hba_record_response *response = &rec->u.response;
  111. unsigned long flags;
  112. spin_lock_irqsave(&dbf->hba_lock, flags);
  113. memset(rec, 0, sizeof(*rec));
  114. strncpy(rec->tag, "resp", ZFCP_DBF_TAG_SIZE);
  115. strncpy(rec->tag2, tag2, ZFCP_DBF_TAG_SIZE);
  116. response->fsf_command = fsf_req->fsf_command;
  117. response->fsf_reqid = fsf_req->req_id;
  118. response->fsf_seqno = fsf_req->seq_no;
  119. response->fsf_issued = fsf_req->issued;
  120. response->fsf_prot_status = qtcb->prefix.prot_status;
  121. response->fsf_status = qtcb->header.fsf_status;
  122. memcpy(response->fsf_prot_status_qual,
  123. prot_status_qual, FSF_PROT_STATUS_QUAL_SIZE);
  124. memcpy(response->fsf_status_qual,
  125. fsf_status_qual, FSF_STATUS_QUALIFIER_SIZE);
  126. response->fsf_req_status = fsf_req->status;
  127. response->sbal_first = fsf_req->qdio_req.sbal_first;
  128. response->sbal_last = fsf_req->qdio_req.sbal_last;
  129. response->sbal_response = fsf_req->qdio_req.sbal_response;
  130. response->pool = fsf_req->pool != NULL;
  131. response->erp_action = (unsigned long)fsf_req->erp_action;
  132. switch (fsf_req->fsf_command) {
  133. case FSF_QTCB_FCP_CMND:
  134. if (fsf_req->status & ZFCP_STATUS_FSFREQ_TASK_MANAGEMENT)
  135. break;
  136. scsi_cmnd = (struct scsi_cmnd *)fsf_req->data;
  137. if (scsi_cmnd) {
  138. response->u.fcp.cmnd = (unsigned long)scsi_cmnd;
  139. response->u.fcp.data_dir =
  140. qtcb->bottom.io.data_direction;
  141. }
  142. break;
  143. case FSF_QTCB_OPEN_PORT_WITH_DID:
  144. case FSF_QTCB_CLOSE_PORT:
  145. case FSF_QTCB_CLOSE_PHYSICAL_PORT:
  146. port = (struct zfcp_port *)fsf_req->data;
  147. response->u.port.wwpn = port->wwpn;
  148. response->u.port.d_id = port->d_id;
  149. response->u.port.port_handle = qtcb->header.port_handle;
  150. break;
  151. case FSF_QTCB_OPEN_LUN:
  152. case FSF_QTCB_CLOSE_LUN:
  153. unit = (struct zfcp_unit *)fsf_req->data;
  154. port = unit->port;
  155. response->u.unit.wwpn = port->wwpn;
  156. response->u.unit.fcp_lun = unit->fcp_lun;
  157. response->u.unit.port_handle = qtcb->header.port_handle;
  158. response->u.unit.lun_handle = qtcb->header.lun_handle;
  159. break;
  160. case FSF_QTCB_SEND_ELS:
  161. send_els = (struct zfcp_send_els *)fsf_req->data;
  162. response->u.els.d_id = ntoh24(qtcb->bottom.support.d_id);
  163. break;
  164. case FSF_QTCB_ABORT_FCP_CMND:
  165. case FSF_QTCB_SEND_GENERIC:
  166. case FSF_QTCB_EXCHANGE_CONFIG_DATA:
  167. case FSF_QTCB_EXCHANGE_PORT_DATA:
  168. case FSF_QTCB_DOWNLOAD_CONTROL_FILE:
  169. case FSF_QTCB_UPLOAD_CONTROL_FILE:
  170. break;
  171. }
  172. debug_event(dbf->hba, level, rec, sizeof(*rec));
  173. /* have fcp channel microcode fixed to use as little as possible */
  174. if (fsf_req->fsf_command != FSF_QTCB_FCP_CMND) {
  175. /* adjust length skipping trailing zeros */
  176. char *buf = (char *)qtcb + qtcb->header.log_start;
  177. int len = qtcb->header.log_length;
  178. for (; len && !buf[len - 1]; len--);
  179. zfcp_dbf_hexdump(dbf->hba, rec, sizeof(*rec), level, buf,
  180. len);
  181. }
  182. spin_unlock_irqrestore(&dbf->hba_lock, flags);
  183. }
  184. void _zfcp_dbf_hba_fsf_unsol(const char *tag, int level, struct zfcp_dbf *dbf,
  185. struct fsf_status_read_buffer *status_buffer)
  186. {
  187. struct zfcp_dbf_hba_record *rec = &dbf->hba_buf;
  188. unsigned long flags;
  189. spin_lock_irqsave(&dbf->hba_lock, flags);
  190. memset(rec, 0, sizeof(*rec));
  191. strncpy(rec->tag, "stat", ZFCP_DBF_TAG_SIZE);
  192. strncpy(rec->tag2, tag, ZFCP_DBF_TAG_SIZE);
  193. rec->u.status.failed = atomic_read(&dbf->adapter->stat_miss);
  194. if (status_buffer != NULL) {
  195. rec->u.status.status_type = status_buffer->status_type;
  196. rec->u.status.status_subtype = status_buffer->status_subtype;
  197. memcpy(&rec->u.status.queue_designator,
  198. &status_buffer->queue_designator,
  199. sizeof(struct fsf_queue_designator));
  200. switch (status_buffer->status_type) {
  201. case FSF_STATUS_READ_SENSE_DATA_AVAIL:
  202. rec->u.status.payload_size =
  203. ZFCP_DBF_UNSOL_PAYLOAD_SENSE_DATA_AVAIL;
  204. break;
  205. case FSF_STATUS_READ_BIT_ERROR_THRESHOLD:
  206. rec->u.status.payload_size =
  207. ZFCP_DBF_UNSOL_PAYLOAD_BIT_ERROR_THRESHOLD;
  208. break;
  209. case FSF_STATUS_READ_LINK_DOWN:
  210. switch (status_buffer->status_subtype) {
  211. case FSF_STATUS_READ_SUB_NO_PHYSICAL_LINK:
  212. case FSF_STATUS_READ_SUB_FDISC_FAILED:
  213. rec->u.status.payload_size =
  214. sizeof(struct fsf_link_down_info);
  215. }
  216. break;
  217. case FSF_STATUS_READ_FEATURE_UPDATE_ALERT:
  218. rec->u.status.payload_size =
  219. ZFCP_DBF_UNSOL_PAYLOAD_FEATURE_UPDATE_ALERT;
  220. break;
  221. }
  222. memcpy(&rec->u.status.payload,
  223. &status_buffer->payload, rec->u.status.payload_size);
  224. }
  225. debug_event(dbf->hba, level, rec, sizeof(*rec));
  226. spin_unlock_irqrestore(&dbf->hba_lock, flags);
  227. }
  228. /**
  229. * zfcp_dbf_hba_qdio - trace event for QDIO related failure
  230. * @qdio: qdio structure affected by this QDIO related event
  231. * @qdio_error: as passed by qdio module
  232. * @sbal_index: first buffer with error condition, as passed by qdio module
  233. * @sbal_count: number of buffers affected, as passed by qdio module
  234. */
  235. void zfcp_dbf_hba_qdio(struct zfcp_dbf *dbf, unsigned int qdio_error,
  236. int sbal_index, int sbal_count)
  237. {
  238. struct zfcp_dbf_hba_record *r = &dbf->hba_buf;
  239. unsigned long flags;
  240. spin_lock_irqsave(&dbf->hba_lock, flags);
  241. memset(r, 0, sizeof(*r));
  242. strncpy(r->tag, "qdio", ZFCP_DBF_TAG_SIZE);
  243. r->u.qdio.qdio_error = qdio_error;
  244. r->u.qdio.sbal_index = sbal_index;
  245. r->u.qdio.sbal_count = sbal_count;
  246. debug_event(dbf->hba, 0, r, sizeof(*r));
  247. spin_unlock_irqrestore(&dbf->hba_lock, flags);
  248. }
  249. /**
  250. * zfcp_dbf_hba_berr - trace event for bit error threshold
  251. * @dbf: dbf structure affected by this QDIO related event
  252. * @req: fsf request
  253. */
  254. void zfcp_dbf_hba_berr(struct zfcp_dbf *dbf, struct zfcp_fsf_req *req)
  255. {
  256. struct zfcp_dbf_hba_record *r = &dbf->hba_buf;
  257. struct fsf_status_read_buffer *sr_buf = req->data;
  258. struct fsf_bit_error_payload *err = &sr_buf->payload.bit_error;
  259. unsigned long flags;
  260. spin_lock_irqsave(&dbf->hba_lock, flags);
  261. memset(r, 0, sizeof(*r));
  262. strncpy(r->tag, "berr", ZFCP_DBF_TAG_SIZE);
  263. memcpy(&r->u.berr, err, sizeof(struct fsf_bit_error_payload));
  264. debug_event(dbf->hba, 0, r, sizeof(*r));
  265. spin_unlock_irqrestore(&dbf->hba_lock, flags);
  266. }
  267. static void zfcp_dbf_hba_view_response(char **p,
  268. struct zfcp_dbf_hba_record_response *r)
  269. {
  270. struct timespec t;
  271. zfcp_dbf_out(p, "fsf_command", "0x%08x", r->fsf_command);
  272. zfcp_dbf_out(p, "fsf_reqid", "0x%0Lx", r->fsf_reqid);
  273. zfcp_dbf_out(p, "fsf_seqno", "0x%08x", r->fsf_seqno);
  274. stck_to_timespec(r->fsf_issued, &t);
  275. zfcp_dbf_out(p, "fsf_issued", "%011lu:%06lu", t.tv_sec, t.tv_nsec);
  276. zfcp_dbf_out(p, "fsf_prot_status", "0x%08x", r->fsf_prot_status);
  277. zfcp_dbf_out(p, "fsf_status", "0x%08x", r->fsf_status);
  278. zfcp_dbf_outd(p, "fsf_prot_status_qual", r->fsf_prot_status_qual,
  279. FSF_PROT_STATUS_QUAL_SIZE, 0, FSF_PROT_STATUS_QUAL_SIZE);
  280. zfcp_dbf_outd(p, "fsf_status_qual", r->fsf_status_qual,
  281. FSF_STATUS_QUALIFIER_SIZE, 0, FSF_STATUS_QUALIFIER_SIZE);
  282. zfcp_dbf_out(p, "fsf_req_status", "0x%08x", r->fsf_req_status);
  283. zfcp_dbf_out(p, "sbal_first", "0x%02x", r->sbal_first);
  284. zfcp_dbf_out(p, "sbal_last", "0x%02x", r->sbal_last);
  285. zfcp_dbf_out(p, "sbal_response", "0x%02x", r->sbal_response);
  286. zfcp_dbf_out(p, "pool", "0x%02x", r->pool);
  287. switch (r->fsf_command) {
  288. case FSF_QTCB_FCP_CMND:
  289. if (r->fsf_req_status & ZFCP_STATUS_FSFREQ_TASK_MANAGEMENT)
  290. break;
  291. zfcp_dbf_out(p, "data_direction", "0x%04x", r->u.fcp.data_dir);
  292. zfcp_dbf_out(p, "scsi_cmnd", "0x%0Lx", r->u.fcp.cmnd);
  293. *p += sprintf(*p, "\n");
  294. break;
  295. case FSF_QTCB_OPEN_PORT_WITH_DID:
  296. case FSF_QTCB_CLOSE_PORT:
  297. case FSF_QTCB_CLOSE_PHYSICAL_PORT:
  298. zfcp_dbf_out(p, "wwpn", "0x%016Lx", r->u.port.wwpn);
  299. zfcp_dbf_out(p, "d_id", "0x%06x", r->u.port.d_id);
  300. zfcp_dbf_out(p, "port_handle", "0x%08x", r->u.port.port_handle);
  301. break;
  302. case FSF_QTCB_OPEN_LUN:
  303. case FSF_QTCB_CLOSE_LUN:
  304. zfcp_dbf_out(p, "wwpn", "0x%016Lx", r->u.unit.wwpn);
  305. zfcp_dbf_out(p, "fcp_lun", "0x%016Lx", r->u.unit.fcp_lun);
  306. zfcp_dbf_out(p, "port_handle", "0x%08x", r->u.unit.port_handle);
  307. zfcp_dbf_out(p, "lun_handle", "0x%08x", r->u.unit.lun_handle);
  308. break;
  309. case FSF_QTCB_SEND_ELS:
  310. zfcp_dbf_out(p, "d_id", "0x%06x", r->u.els.d_id);
  311. break;
  312. case FSF_QTCB_ABORT_FCP_CMND:
  313. case FSF_QTCB_SEND_GENERIC:
  314. case FSF_QTCB_EXCHANGE_CONFIG_DATA:
  315. case FSF_QTCB_EXCHANGE_PORT_DATA:
  316. case FSF_QTCB_DOWNLOAD_CONTROL_FILE:
  317. case FSF_QTCB_UPLOAD_CONTROL_FILE:
  318. break;
  319. }
  320. }
  321. static void zfcp_dbf_hba_view_status(char **p,
  322. struct zfcp_dbf_hba_record_status *r)
  323. {
  324. zfcp_dbf_out(p, "failed", "0x%02x", r->failed);
  325. zfcp_dbf_out(p, "status_type", "0x%08x", r->status_type);
  326. zfcp_dbf_out(p, "status_subtype", "0x%08x", r->status_subtype);
  327. zfcp_dbf_outd(p, "queue_designator", (char *)&r->queue_designator,
  328. sizeof(struct fsf_queue_designator), 0,
  329. sizeof(struct fsf_queue_designator));
  330. zfcp_dbf_outd(p, "payload", (char *)&r->payload, r->payload_size, 0,
  331. r->payload_size);
  332. }
  333. static void zfcp_dbf_hba_view_qdio(char **p, struct zfcp_dbf_hba_record_qdio *r)
  334. {
  335. zfcp_dbf_out(p, "qdio_error", "0x%08x", r->qdio_error);
  336. zfcp_dbf_out(p, "sbal_index", "0x%02x", r->sbal_index);
  337. zfcp_dbf_out(p, "sbal_count", "0x%02x", r->sbal_count);
  338. }
  339. static void zfcp_dbf_hba_view_berr(char **p, struct fsf_bit_error_payload *r)
  340. {
  341. zfcp_dbf_out(p, "link_failures", "%d", r->link_failure_error_count);
  342. zfcp_dbf_out(p, "loss_of_sync_err", "%d", r->loss_of_sync_error_count);
  343. zfcp_dbf_out(p, "loss_of_sig_err", "%d", r->loss_of_signal_error_count);
  344. zfcp_dbf_out(p, "prim_seq_err", "%d",
  345. r->primitive_sequence_error_count);
  346. zfcp_dbf_out(p, "inval_trans_word_err", "%d",
  347. r->invalid_transmission_word_error_count);
  348. zfcp_dbf_out(p, "CRC_errors", "%d", r->crc_error_count);
  349. zfcp_dbf_out(p, "prim_seq_event_to", "%d",
  350. r->primitive_sequence_event_timeout_count);
  351. zfcp_dbf_out(p, "elast_buf_overrun_err", "%d",
  352. r->elastic_buffer_overrun_error_count);
  353. zfcp_dbf_out(p, "adv_rec_buf2buf_cred", "%d",
  354. r->advertised_receive_b2b_credit);
  355. zfcp_dbf_out(p, "curr_rec_buf2buf_cred", "%d",
  356. r->current_receive_b2b_credit);
  357. zfcp_dbf_out(p, "adv_trans_buf2buf_cred", "%d",
  358. r->advertised_transmit_b2b_credit);
  359. zfcp_dbf_out(p, "curr_trans_buf2buf_cred", "%d",
  360. r->current_transmit_b2b_credit);
  361. }
  362. static int zfcp_dbf_hba_view_format(debug_info_t *id, struct debug_view *view,
  363. char *out_buf, const char *in_buf)
  364. {
  365. struct zfcp_dbf_hba_record *r = (struct zfcp_dbf_hba_record *)in_buf;
  366. char *p = out_buf;
  367. if (strncmp(r->tag, "dump", ZFCP_DBF_TAG_SIZE) == 0)
  368. return 0;
  369. zfcp_dbf_tag(&p, "tag", r->tag);
  370. if (isalpha(r->tag2[0]))
  371. zfcp_dbf_tag(&p, "tag2", r->tag2);
  372. if (strncmp(r->tag, "resp", ZFCP_DBF_TAG_SIZE) == 0)
  373. zfcp_dbf_hba_view_response(&p, &r->u.response);
  374. else if (strncmp(r->tag, "stat", ZFCP_DBF_TAG_SIZE) == 0)
  375. zfcp_dbf_hba_view_status(&p, &r->u.status);
  376. else if (strncmp(r->tag, "qdio", ZFCP_DBF_TAG_SIZE) == 0)
  377. zfcp_dbf_hba_view_qdio(&p, &r->u.qdio);
  378. else if (strncmp(r->tag, "berr", ZFCP_DBF_TAG_SIZE) == 0)
  379. zfcp_dbf_hba_view_berr(&p, &r->u.berr);
  380. if (strncmp(r->tag, "resp", ZFCP_DBF_TAG_SIZE) != 0)
  381. p += sprintf(p, "\n");
  382. return p - out_buf;
  383. }
  384. static struct debug_view zfcp_dbf_hba_view = {
  385. .name = "structured",
  386. .header_proc = zfcp_dbf_view_header,
  387. .format_proc = zfcp_dbf_hba_view_format,
  388. };
  389. static const char *zfcp_dbf_rec_tags[] = {
  390. [ZFCP_REC_DBF_ID_THREAD] = "thread",
  391. [ZFCP_REC_DBF_ID_TARGET] = "target",
  392. [ZFCP_REC_DBF_ID_TRIGGER] = "trigger",
  393. [ZFCP_REC_DBF_ID_ACTION] = "action",
  394. };
  395. static int zfcp_dbf_rec_view_format(debug_info_t *id, struct debug_view *view,
  396. char *buf, const char *_rec)
  397. {
  398. struct zfcp_dbf_rec_record *r = (struct zfcp_dbf_rec_record *)_rec;
  399. char *p = buf;
  400. char hint[ZFCP_DBF_ID_SIZE + 1];
  401. memcpy(hint, r->id2, ZFCP_DBF_ID_SIZE);
  402. hint[ZFCP_DBF_ID_SIZE] = 0;
  403. zfcp_dbf_outs(&p, "tag", zfcp_dbf_rec_tags[r->id]);
  404. zfcp_dbf_outs(&p, "hint", hint);
  405. switch (r->id) {
  406. case ZFCP_REC_DBF_ID_THREAD:
  407. zfcp_dbf_out(&p, "total", "%d", r->u.thread.total);
  408. zfcp_dbf_out(&p, "ready", "%d", r->u.thread.ready);
  409. zfcp_dbf_out(&p, "running", "%d", r->u.thread.running);
  410. break;
  411. case ZFCP_REC_DBF_ID_TARGET:
  412. zfcp_dbf_out(&p, "reference", "0x%016Lx", r->u.target.ref);
  413. zfcp_dbf_out(&p, "status", "0x%08x", r->u.target.status);
  414. zfcp_dbf_out(&p, "erp_count", "%d", r->u.target.erp_count);
  415. zfcp_dbf_out(&p, "d_id", "0x%06x", r->u.target.d_id);
  416. zfcp_dbf_out(&p, "wwpn", "0x%016Lx", r->u.target.wwpn);
  417. zfcp_dbf_out(&p, "fcp_lun", "0x%016Lx", r->u.target.fcp_lun);
  418. break;
  419. case ZFCP_REC_DBF_ID_TRIGGER:
  420. zfcp_dbf_out(&p, "reference", "0x%016Lx", r->u.trigger.ref);
  421. zfcp_dbf_out(&p, "erp_action", "0x%016Lx", r->u.trigger.action);
  422. zfcp_dbf_out(&p, "requested", "%d", r->u.trigger.want);
  423. zfcp_dbf_out(&p, "executed", "%d", r->u.trigger.need);
  424. zfcp_dbf_out(&p, "wwpn", "0x%016Lx", r->u.trigger.wwpn);
  425. zfcp_dbf_out(&p, "fcp_lun", "0x%016Lx", r->u.trigger.fcp_lun);
  426. zfcp_dbf_out(&p, "adapter_status", "0x%08x", r->u.trigger.as);
  427. zfcp_dbf_out(&p, "port_status", "0x%08x", r->u.trigger.ps);
  428. zfcp_dbf_out(&p, "lun_status", "0x%08x", r->u.trigger.ls);
  429. break;
  430. case ZFCP_REC_DBF_ID_ACTION:
  431. zfcp_dbf_out(&p, "erp_action", "0x%016Lx", r->u.action.action);
  432. zfcp_dbf_out(&p, "fsf_req", "0x%016Lx", r->u.action.fsf_req);
  433. zfcp_dbf_out(&p, "status", "0x%08Lx", r->u.action.status);
  434. zfcp_dbf_out(&p, "step", "0x%08Lx", r->u.action.step);
  435. break;
  436. }
  437. p += sprintf(p, "\n");
  438. return p - buf;
  439. }
  440. static struct debug_view zfcp_dbf_rec_view = {
  441. .name = "structured",
  442. .header_proc = zfcp_dbf_view_header,
  443. .format_proc = zfcp_dbf_rec_view_format,
  444. };
  445. /**
  446. * zfcp_dbf_rec_thread - trace event related to recovery thread operation
  447. * @id2: identifier for event
  448. * @dbf: reference to dbf structure
  449. * This function assumes that the caller is holding erp_lock.
  450. */
  451. void zfcp_dbf_rec_thread(char *id2, struct zfcp_dbf *dbf)
  452. {
  453. struct zfcp_adapter *adapter = dbf->adapter;
  454. struct zfcp_dbf_rec_record *r = &dbf->rec_buf;
  455. unsigned long flags = 0;
  456. struct list_head *entry;
  457. unsigned ready = 0, running = 0, total;
  458. list_for_each(entry, &adapter->erp_ready_head)
  459. ready++;
  460. list_for_each(entry, &adapter->erp_running_head)
  461. running++;
  462. total = adapter->erp_total_count;
  463. spin_lock_irqsave(&dbf->rec_lock, flags);
  464. memset(r, 0, sizeof(*r));
  465. r->id = ZFCP_REC_DBF_ID_THREAD;
  466. memcpy(r->id2, id2, ZFCP_DBF_ID_SIZE);
  467. r->u.thread.total = total;
  468. r->u.thread.ready = ready;
  469. r->u.thread.running = running;
  470. debug_event(dbf->rec, 6, r, sizeof(*r));
  471. spin_unlock_irqrestore(&dbf->rec_lock, flags);
  472. }
  473. /**
  474. * zfcp_dbf_rec_thread - trace event related to recovery thread operation
  475. * @id2: identifier for event
  476. * @adapter: adapter
  477. * This function assumes that the caller does not hold erp_lock.
  478. */
  479. void zfcp_dbf_rec_thread_lock(char *id2, struct zfcp_dbf *dbf)
  480. {
  481. struct zfcp_adapter *adapter = dbf->adapter;
  482. unsigned long flags;
  483. read_lock_irqsave(&adapter->erp_lock, flags);
  484. zfcp_dbf_rec_thread(id2, dbf);
  485. read_unlock_irqrestore(&adapter->erp_lock, flags);
  486. }
  487. static void zfcp_dbf_rec_target(char *id2, void *ref, struct zfcp_dbf *dbf,
  488. atomic_t *status, atomic_t *erp_count, u64 wwpn,
  489. u32 d_id, u64 fcp_lun)
  490. {
  491. struct zfcp_dbf_rec_record *r = &dbf->rec_buf;
  492. unsigned long flags;
  493. spin_lock_irqsave(&dbf->rec_lock, flags);
  494. memset(r, 0, sizeof(*r));
  495. r->id = ZFCP_REC_DBF_ID_TARGET;
  496. memcpy(r->id2, id2, ZFCP_DBF_ID_SIZE);
  497. r->u.target.ref = (unsigned long)ref;
  498. r->u.target.status = atomic_read(status);
  499. r->u.target.wwpn = wwpn;
  500. r->u.target.d_id = d_id;
  501. r->u.target.fcp_lun = fcp_lun;
  502. r->u.target.erp_count = atomic_read(erp_count);
  503. debug_event(dbf->rec, 3, r, sizeof(*r));
  504. spin_unlock_irqrestore(&dbf->rec_lock, flags);
  505. }
  506. /**
  507. * zfcp_dbf_rec_adapter - trace event for adapter state change
  508. * @id: identifier for trigger of state change
  509. * @ref: additional reference (e.g. request)
  510. * @dbf: reference to dbf structure
  511. */
  512. void zfcp_dbf_rec_adapter(char *id, void *ref, struct zfcp_dbf *dbf)
  513. {
  514. struct zfcp_adapter *adapter = dbf->adapter;
  515. zfcp_dbf_rec_target(id, ref, dbf, &adapter->status,
  516. &adapter->erp_counter, 0, 0,
  517. ZFCP_DBF_INVALID_LUN);
  518. }
  519. /**
  520. * zfcp_dbf_rec_port - trace event for port state change
  521. * @id: identifier for trigger of state change
  522. * @ref: additional reference (e.g. request)
  523. * @port: port
  524. */
  525. void zfcp_dbf_rec_port(char *id, void *ref, struct zfcp_port *port)
  526. {
  527. struct zfcp_dbf *dbf = port->adapter->dbf;
  528. zfcp_dbf_rec_target(id, ref, dbf, &port->status,
  529. &port->erp_counter, port->wwpn, port->d_id,
  530. ZFCP_DBF_INVALID_LUN);
  531. }
  532. /**
  533. * zfcp_dbf_rec_lun - trace event for LUN state change
  534. * @id: identifier for trigger of state change
  535. * @ref: additional reference (e.g. request)
  536. * @sdev: SCSI device
  537. */
  538. void zfcp_dbf_rec_lun(char *id, void *ref, struct scsi_device *sdev)
  539. {
  540. struct zfcp_scsi_dev *zfcp_sdev = sdev_to_zfcp(sdev);
  541. struct zfcp_port *port = zfcp_sdev->port;
  542. struct zfcp_dbf *dbf = port->adapter->dbf;
  543. zfcp_dbf_rec_target(id, ref, dbf, &zfcp_sdev->status,
  544. &zfcp_sdev->erp_counter, port->wwpn, port->d_id,
  545. zfcp_scsi_dev_lun(sdev));
  546. }
  547. /**
  548. * zfcp_dbf_rec_trigger - trace event for triggered error recovery
  549. * @id2: identifier for error recovery trigger
  550. * @ref: additional reference (e.g. request)
  551. * @want: originally requested error recovery action
  552. * @need: error recovery action actually initiated
  553. * @action: address of error recovery action struct
  554. * @adapter: adapter
  555. * @port: port
  556. * @sdev: SCSI device
  557. */
  558. void zfcp_dbf_rec_trigger(char *id2, void *ref, u8 want, u8 need, void *action,
  559. struct zfcp_adapter *adapter, struct zfcp_port *port,
  560. struct scsi_device *sdev)
  561. {
  562. struct zfcp_dbf *dbf = adapter->dbf;
  563. struct zfcp_dbf_rec_record *r = &dbf->rec_buf;
  564. unsigned long flags;
  565. spin_lock_irqsave(&dbf->rec_lock, flags);
  566. memset(r, 0, sizeof(*r));
  567. r->id = ZFCP_REC_DBF_ID_TRIGGER;
  568. memcpy(r->id2, id2, ZFCP_DBF_ID_SIZE);
  569. r->u.trigger.ref = (unsigned long)ref;
  570. r->u.trigger.want = want;
  571. r->u.trigger.need = need;
  572. r->u.trigger.action = (unsigned long)action;
  573. r->u.trigger.as = atomic_read(&adapter->status);
  574. if (port) {
  575. r->u.trigger.ps = atomic_read(&port->status);
  576. r->u.trigger.wwpn = port->wwpn;
  577. }
  578. if (sdev)
  579. r->u.trigger.ls = atomic_read(&sdev_to_zfcp(sdev)->status);
  580. r->u.trigger.fcp_lun = sdev ? zfcp_scsi_dev_lun(sdev) :
  581. ZFCP_DBF_INVALID_LUN;
  582. debug_event(dbf->rec, action ? 1 : 4, r, sizeof(*r));
  583. spin_unlock_irqrestore(&dbf->rec_lock, flags);
  584. }
  585. /**
  586. * zfcp_dbf_rec_action - trace event showing progress of recovery action
  587. * @id2: identifier
  588. * @erp_action: error recovery action struct pointer
  589. */
  590. void zfcp_dbf_rec_action(char *id2, struct zfcp_erp_action *erp_action)
  591. {
  592. struct zfcp_dbf *dbf = erp_action->adapter->dbf;
  593. struct zfcp_dbf_rec_record *r = &dbf->rec_buf;
  594. unsigned long flags;
  595. spin_lock_irqsave(&dbf->rec_lock, flags);
  596. memset(r, 0, sizeof(*r));
  597. r->id = ZFCP_REC_DBF_ID_ACTION;
  598. memcpy(r->id2, id2, ZFCP_DBF_ID_SIZE);
  599. r->u.action.action = (unsigned long)erp_action;
  600. r->u.action.status = erp_action->status;
  601. r->u.action.step = erp_action->step;
  602. r->u.action.fsf_req = erp_action->fsf_req_id;
  603. debug_event(dbf->rec, 5, r, sizeof(*r));
  604. spin_unlock_irqrestore(&dbf->rec_lock, flags);
  605. }
  606. /**
  607. * zfcp_dbf_san_ct_request - trace event for issued CT request
  608. * @fsf_req: request containing issued CT data
  609. * @d_id: destination id where ct request is sent to
  610. */
  611. void zfcp_dbf_san_ct_request(struct zfcp_fsf_req *fsf_req, u32 d_id)
  612. {
  613. struct zfcp_fsf_ct_els *ct = (struct zfcp_fsf_ct_els *)fsf_req->data;
  614. struct zfcp_adapter *adapter = fsf_req->adapter;
  615. struct zfcp_dbf *dbf = adapter->dbf;
  616. struct fc_ct_hdr *hdr = sg_virt(ct->req);
  617. struct zfcp_dbf_san_record *r = &dbf->san_buf;
  618. struct zfcp_dbf_san_record_ct_request *oct = &r->u.ct_req;
  619. int level = 3;
  620. unsigned long flags;
  621. spin_lock_irqsave(&dbf->san_lock, flags);
  622. memset(r, 0, sizeof(*r));
  623. strncpy(r->tag, "octc", ZFCP_DBF_TAG_SIZE);
  624. r->fsf_reqid = fsf_req->req_id;
  625. r->fsf_seqno = fsf_req->seq_no;
  626. oct->d_id = d_id;
  627. oct->cmd_req_code = hdr->ct_cmd;
  628. oct->revision = hdr->ct_rev;
  629. oct->gs_type = hdr->ct_fs_type;
  630. oct->gs_subtype = hdr->ct_fs_subtype;
  631. oct->options = hdr->ct_options;
  632. oct->max_res_size = hdr->ct_mr_size;
  633. oct->len = min((int)ct->req->length - (int)sizeof(struct fc_ct_hdr),
  634. ZFCP_DBF_SAN_MAX_PAYLOAD);
  635. debug_event(dbf->san, level, r, sizeof(*r));
  636. zfcp_dbf_hexdump(dbf->san, r, sizeof(*r), level,
  637. (void *)hdr + sizeof(struct fc_ct_hdr), oct->len);
  638. spin_unlock_irqrestore(&dbf->san_lock, flags);
  639. }
  640. /**
  641. * zfcp_dbf_san_ct_response - trace event for completion of CT request
  642. * @fsf_req: request containing CT response
  643. */
  644. void zfcp_dbf_san_ct_response(struct zfcp_fsf_req *fsf_req)
  645. {
  646. struct zfcp_fsf_ct_els *ct = (struct zfcp_fsf_ct_els *)fsf_req->data;
  647. struct zfcp_adapter *adapter = fsf_req->adapter;
  648. struct fc_ct_hdr *hdr = sg_virt(ct->resp);
  649. struct zfcp_dbf *dbf = adapter->dbf;
  650. struct zfcp_dbf_san_record *r = &dbf->san_buf;
  651. struct zfcp_dbf_san_record_ct_response *rct = &r->u.ct_resp;
  652. int level = 3;
  653. unsigned long flags;
  654. spin_lock_irqsave(&dbf->san_lock, flags);
  655. memset(r, 0, sizeof(*r));
  656. strncpy(r->tag, "rctc", ZFCP_DBF_TAG_SIZE);
  657. r->fsf_reqid = fsf_req->req_id;
  658. r->fsf_seqno = fsf_req->seq_no;
  659. rct->cmd_rsp_code = hdr->ct_cmd;
  660. rct->revision = hdr->ct_rev;
  661. rct->reason_code = hdr->ct_reason;
  662. rct->expl = hdr->ct_explan;
  663. rct->vendor_unique = hdr->ct_vendor;
  664. rct->max_res_size = hdr->ct_mr_size;
  665. rct->len = min((int)ct->resp->length - (int)sizeof(struct fc_ct_hdr),
  666. ZFCP_DBF_SAN_MAX_PAYLOAD);
  667. debug_event(dbf->san, level, r, sizeof(*r));
  668. zfcp_dbf_hexdump(dbf->san, r, sizeof(*r), level,
  669. (void *)hdr + sizeof(struct fc_ct_hdr), rct->len);
  670. spin_unlock_irqrestore(&dbf->san_lock, flags);
  671. }
  672. static void zfcp_dbf_san_els(const char *tag, int level,
  673. struct zfcp_fsf_req *fsf_req, u32 d_id,
  674. void *buffer, int buflen)
  675. {
  676. struct zfcp_adapter *adapter = fsf_req->adapter;
  677. struct zfcp_dbf *dbf = adapter->dbf;
  678. struct zfcp_dbf_san_record *rec = &dbf->san_buf;
  679. unsigned long flags;
  680. spin_lock_irqsave(&dbf->san_lock, flags);
  681. memset(rec, 0, sizeof(*rec));
  682. strncpy(rec->tag, tag, ZFCP_DBF_TAG_SIZE);
  683. rec->fsf_reqid = fsf_req->req_id;
  684. rec->fsf_seqno = fsf_req->seq_no;
  685. rec->u.els.d_id = d_id;
  686. debug_event(dbf->san, level, rec, sizeof(*rec));
  687. zfcp_dbf_hexdump(dbf->san, rec, sizeof(*rec), level,
  688. buffer, min(buflen, ZFCP_DBF_SAN_MAX_PAYLOAD));
  689. spin_unlock_irqrestore(&dbf->san_lock, flags);
  690. }
  691. /**
  692. * zfcp_dbf_san_els_request - trace event for issued ELS
  693. * @fsf_req: request containing issued ELS
  694. */
  695. void zfcp_dbf_san_els_request(struct zfcp_fsf_req *fsf_req)
  696. {
  697. struct zfcp_fsf_ct_els *els = (struct zfcp_fsf_ct_els *)fsf_req->data;
  698. u32 d_id = ntoh24(fsf_req->qtcb->bottom.support.d_id);
  699. zfcp_dbf_san_els("oels", 2, fsf_req, d_id,
  700. sg_virt(els->req), els->req->length);
  701. }
  702. /**
  703. * zfcp_dbf_san_els_response - trace event for completed ELS
  704. * @fsf_req: request containing ELS response
  705. */
  706. void zfcp_dbf_san_els_response(struct zfcp_fsf_req *fsf_req)
  707. {
  708. struct zfcp_fsf_ct_els *els = (struct zfcp_fsf_ct_els *)fsf_req->data;
  709. u32 d_id = ntoh24(fsf_req->qtcb->bottom.support.d_id);
  710. zfcp_dbf_san_els("rels", 2, fsf_req, d_id,
  711. sg_virt(els->resp), els->resp->length);
  712. }
  713. /**
  714. * zfcp_dbf_san_incoming_els - trace event for incomig ELS
  715. * @fsf_req: request containing unsolicited status buffer with incoming ELS
  716. */
  717. void zfcp_dbf_san_incoming_els(struct zfcp_fsf_req *fsf_req)
  718. {
  719. struct fsf_status_read_buffer *buf =
  720. (struct fsf_status_read_buffer *)fsf_req->data;
  721. int length = (int)buf->length -
  722. (int)((void *)&buf->payload - (void *)buf);
  723. zfcp_dbf_san_els("iels", 1, fsf_req, ntoh24(buf->d_id),
  724. (void *)buf->payload.data, length);
  725. }
  726. static int zfcp_dbf_san_view_format(debug_info_t *id, struct debug_view *view,
  727. char *out_buf, const char *in_buf)
  728. {
  729. struct zfcp_dbf_san_record *r = (struct zfcp_dbf_san_record *)in_buf;
  730. char *p = out_buf;
  731. if (strncmp(r->tag, "dump", ZFCP_DBF_TAG_SIZE) == 0)
  732. return 0;
  733. zfcp_dbf_tag(&p, "tag", r->tag);
  734. zfcp_dbf_out(&p, "fsf_reqid", "0x%0Lx", r->fsf_reqid);
  735. zfcp_dbf_out(&p, "fsf_seqno", "0x%08x", r->fsf_seqno);
  736. if (strncmp(r->tag, "octc", ZFCP_DBF_TAG_SIZE) == 0) {
  737. struct zfcp_dbf_san_record_ct_request *ct = &r->u.ct_req;
  738. zfcp_dbf_out(&p, "d_id", "0x%06x", ct->d_id);
  739. zfcp_dbf_out(&p, "cmd_req_code", "0x%04x", ct->cmd_req_code);
  740. zfcp_dbf_out(&p, "revision", "0x%02x", ct->revision);
  741. zfcp_dbf_out(&p, "gs_type", "0x%02x", ct->gs_type);
  742. zfcp_dbf_out(&p, "gs_subtype", "0x%02x", ct->gs_subtype);
  743. zfcp_dbf_out(&p, "options", "0x%02x", ct->options);
  744. zfcp_dbf_out(&p, "max_res_size", "0x%04x", ct->max_res_size);
  745. } else if (strncmp(r->tag, "rctc", ZFCP_DBF_TAG_SIZE) == 0) {
  746. struct zfcp_dbf_san_record_ct_response *ct = &r->u.ct_resp;
  747. zfcp_dbf_out(&p, "cmd_rsp_code", "0x%04x", ct->cmd_rsp_code);
  748. zfcp_dbf_out(&p, "revision", "0x%02x", ct->revision);
  749. zfcp_dbf_out(&p, "reason_code", "0x%02x", ct->reason_code);
  750. zfcp_dbf_out(&p, "reason_code_expl", "0x%02x", ct->expl);
  751. zfcp_dbf_out(&p, "vendor_unique", "0x%02x", ct->vendor_unique);
  752. zfcp_dbf_out(&p, "max_res_size", "0x%04x", ct->max_res_size);
  753. } else if (strncmp(r->tag, "oels", ZFCP_DBF_TAG_SIZE) == 0 ||
  754. strncmp(r->tag, "rels", ZFCP_DBF_TAG_SIZE) == 0 ||
  755. strncmp(r->tag, "iels", ZFCP_DBF_TAG_SIZE) == 0) {
  756. struct zfcp_dbf_san_record_els *els = &r->u.els;
  757. zfcp_dbf_out(&p, "d_id", "0x%06x", els->d_id);
  758. }
  759. return p - out_buf;
  760. }
  761. static struct debug_view zfcp_dbf_san_view = {
  762. .name = "structured",
  763. .header_proc = zfcp_dbf_view_header,
  764. .format_proc = zfcp_dbf_san_view_format,
  765. };
  766. void _zfcp_dbf_scsi(const char *tag, const char *tag2, int level,
  767. struct zfcp_dbf *dbf, struct scsi_cmnd *scsi_cmnd,
  768. struct zfcp_fsf_req *fsf_req, unsigned long old_req_id)
  769. {
  770. struct zfcp_dbf_scsi_record *rec = &dbf->scsi_buf;
  771. struct zfcp_dbf_dump *dump = (struct zfcp_dbf_dump *)rec;
  772. unsigned long flags;
  773. struct fcp_resp_with_ext *fcp_rsp;
  774. struct fcp_resp_rsp_info *fcp_rsp_info = NULL;
  775. char *fcp_sns_info = NULL;
  776. int offset = 0, buflen = 0;
  777. spin_lock_irqsave(&dbf->scsi_lock, flags);
  778. do {
  779. memset(rec, 0, sizeof(*rec));
  780. if (offset == 0) {
  781. strncpy(rec->tag, tag, ZFCP_DBF_TAG_SIZE);
  782. strncpy(rec->tag2, tag2, ZFCP_DBF_TAG_SIZE);
  783. if (scsi_cmnd != NULL) {
  784. if (scsi_cmnd->device) {
  785. rec->scsi_id = scsi_cmnd->device->id;
  786. rec->scsi_lun = scsi_cmnd->device->lun;
  787. }
  788. rec->scsi_result = scsi_cmnd->result;
  789. rec->scsi_cmnd = (unsigned long)scsi_cmnd;
  790. memcpy(rec->scsi_opcode, scsi_cmnd->cmnd,
  791. min((int)scsi_cmnd->cmd_len,
  792. ZFCP_DBF_SCSI_OPCODE));
  793. rec->scsi_retries = scsi_cmnd->retries;
  794. rec->scsi_allowed = scsi_cmnd->allowed;
  795. }
  796. if (fsf_req != NULL) {
  797. fcp_rsp = (struct fcp_resp_with_ext *)
  798. &(fsf_req->qtcb->bottom.io.fcp_rsp);
  799. fcp_rsp_info = (struct fcp_resp_rsp_info *)
  800. &fcp_rsp[1];
  801. fcp_sns_info = (char *) &fcp_rsp[1];
  802. if (fcp_rsp->resp.fr_flags & FCP_RSP_LEN_VAL)
  803. fcp_sns_info += fcp_rsp->ext.fr_sns_len;
  804. rec->rsp_validity = fcp_rsp->resp.fr_flags;
  805. rec->rsp_scsi_status = fcp_rsp->resp.fr_status;
  806. rec->rsp_resid = fcp_rsp->ext.fr_resid;
  807. if (fcp_rsp->resp.fr_flags & FCP_RSP_LEN_VAL)
  808. rec->rsp_code = fcp_rsp_info->rsp_code;
  809. if (fcp_rsp->resp.fr_flags & FCP_SNS_LEN_VAL) {
  810. buflen = min(fcp_rsp->ext.fr_sns_len,
  811. (u32)ZFCP_DBF_SCSI_MAX_FCP_SNS_INFO);
  812. rec->sns_info_len = buflen;
  813. memcpy(rec->sns_info, fcp_sns_info,
  814. min(buflen,
  815. ZFCP_DBF_SCSI_FCP_SNS_INFO));
  816. offset += min(buflen,
  817. ZFCP_DBF_SCSI_FCP_SNS_INFO);
  818. }
  819. rec->fsf_reqid = fsf_req->req_id;
  820. rec->fsf_seqno = fsf_req->seq_no;
  821. rec->fsf_issued = fsf_req->issued;
  822. }
  823. rec->old_fsf_reqid = old_req_id;
  824. } else {
  825. strncpy(dump->tag, "dump", ZFCP_DBF_TAG_SIZE);
  826. dump->total_size = buflen;
  827. dump->offset = offset;
  828. dump->size = min(buflen - offset,
  829. (int)sizeof(struct
  830. zfcp_dbf_scsi_record) -
  831. (int)sizeof(struct zfcp_dbf_dump));
  832. memcpy(dump->data, fcp_sns_info + offset, dump->size);
  833. offset += dump->size;
  834. }
  835. debug_event(dbf->scsi, level, rec, sizeof(*rec));
  836. } while (offset < buflen);
  837. spin_unlock_irqrestore(&dbf->scsi_lock, flags);
  838. }
  839. static int zfcp_dbf_scsi_view_format(debug_info_t *id, struct debug_view *view,
  840. char *out_buf, const char *in_buf)
  841. {
  842. struct zfcp_dbf_scsi_record *r = (struct zfcp_dbf_scsi_record *)in_buf;
  843. struct timespec t;
  844. char *p = out_buf;
  845. if (strncmp(r->tag, "dump", ZFCP_DBF_TAG_SIZE) == 0)
  846. return 0;
  847. zfcp_dbf_tag(&p, "tag", r->tag);
  848. zfcp_dbf_tag(&p, "tag2", r->tag2);
  849. zfcp_dbf_out(&p, "scsi_id", "0x%08x", r->scsi_id);
  850. zfcp_dbf_out(&p, "scsi_lun", "0x%08x", r->scsi_lun);
  851. zfcp_dbf_out(&p, "scsi_result", "0x%08x", r->scsi_result);
  852. zfcp_dbf_out(&p, "scsi_cmnd", "0x%0Lx", r->scsi_cmnd);
  853. zfcp_dbf_outd(&p, "scsi_opcode", r->scsi_opcode, ZFCP_DBF_SCSI_OPCODE,
  854. 0, ZFCP_DBF_SCSI_OPCODE);
  855. zfcp_dbf_out(&p, "scsi_retries", "0x%02x", r->scsi_retries);
  856. zfcp_dbf_out(&p, "scsi_allowed", "0x%02x", r->scsi_allowed);
  857. if (strncmp(r->tag, "abrt", ZFCP_DBF_TAG_SIZE) == 0)
  858. zfcp_dbf_out(&p, "old_fsf_reqid", "0x%0Lx", r->old_fsf_reqid);
  859. zfcp_dbf_out(&p, "fsf_reqid", "0x%0Lx", r->fsf_reqid);
  860. zfcp_dbf_out(&p, "fsf_seqno", "0x%08x", r->fsf_seqno);
  861. stck_to_timespec(r->fsf_issued, &t);
  862. zfcp_dbf_out(&p, "fsf_issued", "%011lu:%06lu", t.tv_sec, t.tv_nsec);
  863. if (strncmp(r->tag, "rslt", ZFCP_DBF_TAG_SIZE) == 0) {
  864. zfcp_dbf_out(&p, "fcp_rsp_validity", "0x%02x", r->rsp_validity);
  865. zfcp_dbf_out(&p, "fcp_rsp_scsi_status", "0x%02x",
  866. r->rsp_scsi_status);
  867. zfcp_dbf_out(&p, "fcp_rsp_resid", "0x%08x", r->rsp_resid);
  868. zfcp_dbf_out(&p, "fcp_rsp_code", "0x%08x", r->rsp_code);
  869. zfcp_dbf_out(&p, "fcp_sns_info_len", "0x%08x", r->sns_info_len);
  870. zfcp_dbf_outd(&p, "fcp_sns_info", r->sns_info,
  871. min((int)r->sns_info_len,
  872. ZFCP_DBF_SCSI_FCP_SNS_INFO), 0,
  873. r->sns_info_len);
  874. }
  875. p += sprintf(p, "\n");
  876. return p - out_buf;
  877. }
  878. static struct debug_view zfcp_dbf_scsi_view = {
  879. .name = "structured",
  880. .header_proc = zfcp_dbf_view_header,
  881. .format_proc = zfcp_dbf_scsi_view_format,
  882. };
  883. static debug_info_t *zfcp_dbf_reg(const char *name, int level,
  884. struct debug_view *view, int size)
  885. {
  886. struct debug_info *d;
  887. d = debug_register(name, dbfsize, level, size);
  888. if (!d)
  889. return NULL;
  890. debug_register_view(d, &debug_hex_ascii_view);
  891. debug_register_view(d, view);
  892. debug_set_level(d, level);
  893. return d;
  894. }
  895. /**
  896. * zfcp_adapter_debug_register - registers debug feature for an adapter
  897. * @adapter: pointer to adapter for which debug features should be registered
  898. * return: -ENOMEM on error, 0 otherwise
  899. */
  900. int zfcp_dbf_adapter_register(struct zfcp_adapter *adapter)
  901. {
  902. char dbf_name[DEBUG_MAX_NAME_LEN];
  903. struct zfcp_dbf *dbf;
  904. dbf = kzalloc(sizeof(struct zfcp_dbf), GFP_KERNEL);
  905. if (!dbf)
  906. return -ENOMEM;
  907. dbf->adapter = adapter;
  908. spin_lock_init(&dbf->hba_lock);
  909. spin_lock_init(&dbf->san_lock);
  910. spin_lock_init(&dbf->scsi_lock);
  911. spin_lock_init(&dbf->rec_lock);
  912. /* debug feature area which records recovery activity */
  913. sprintf(dbf_name, "zfcp_%s_rec", dev_name(&adapter->ccw_device->dev));
  914. dbf->rec = zfcp_dbf_reg(dbf_name, 3, &zfcp_dbf_rec_view,
  915. sizeof(struct zfcp_dbf_rec_record));
  916. if (!dbf->rec)
  917. goto err_out;
  918. /* debug feature area which records HBA (FSF and QDIO) conditions */
  919. sprintf(dbf_name, "zfcp_%s_hba", dev_name(&adapter->ccw_device->dev));
  920. dbf->hba = zfcp_dbf_reg(dbf_name, 3, &zfcp_dbf_hba_view,
  921. sizeof(struct zfcp_dbf_hba_record));
  922. if (!dbf->hba)
  923. goto err_out;
  924. /* debug feature area which records SAN command failures and recovery */
  925. sprintf(dbf_name, "zfcp_%s_san", dev_name(&adapter->ccw_device->dev));
  926. dbf->san = zfcp_dbf_reg(dbf_name, 6, &zfcp_dbf_san_view,
  927. sizeof(struct zfcp_dbf_san_record));
  928. if (!dbf->san)
  929. goto err_out;
  930. /* debug feature area which records SCSI command failures and recovery */
  931. sprintf(dbf_name, "zfcp_%s_scsi", dev_name(&adapter->ccw_device->dev));
  932. dbf->scsi = zfcp_dbf_reg(dbf_name, 3, &zfcp_dbf_scsi_view,
  933. sizeof(struct zfcp_dbf_scsi_record));
  934. if (!dbf->scsi)
  935. goto err_out;
  936. adapter->dbf = dbf;
  937. return 0;
  938. err_out:
  939. zfcp_dbf_adapter_unregister(dbf);
  940. return -ENOMEM;
  941. }
  942. /**
  943. * zfcp_adapter_debug_unregister - unregisters debug feature for an adapter
  944. * @dbf: pointer to dbf for which debug features should be unregistered
  945. */
  946. void zfcp_dbf_adapter_unregister(struct zfcp_dbf *dbf)
  947. {
  948. if (!dbf)
  949. return;
  950. debug_unregister(dbf->scsi);
  951. debug_unregister(dbf->san);
  952. debug_unregister(dbf->hba);
  953. debug_unregister(dbf->rec);
  954. dbf->adapter->dbf = NULL;
  955. kfree(dbf);
  956. }