1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 *
4 * Copyright (c) 2000 Matthew Jacob
5 * Copyright (c) 2010 Spectra Logic Corporation
6 * All rights reserved.
7 *
8 * Redistribution and use in source and binary forms, with or without
9 * modification, are permitted provided that the following conditions
10 * are met:
11 * 1. Redistributions of source code must retain the above copyright
12 * notice, this list of conditions, and the following disclaimer,
13 * without modification, immediately at the beginning of the file.
14 * 2. The name of the author may not be used to endorse or promote products
15 * derived from this software without specific prior written permission.
16 *
17 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
18 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
19 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
20 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE FOR
21 * ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
22 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
23 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
24 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
25 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
26 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
27 * SUCH DAMAGE.
28 */
29
30 /**
31 * \file scsi_enc_ses.c
32 *
33 * Structures and routines specific && private to SES only
34 */
35
36 #include <sys/cdefs.h>
37 __FBSDID("$FreeBSD$");
38
39 #include <sys/param.h>
40
41 #include <sys/ctype.h>
42 #include <sys/errno.h>
43 #include <sys/kernel.h>
44 #include <sys/lock.h>
45 #include <sys/malloc.h>
46 #include <sys/mutex.h>
47 #include <sys/queue.h>
48 #include <sys/sbuf.h>
49 #include <sys/sx.h>
50 #include <sys/systm.h>
51 #include <sys/types.h>
52
53 #include <cam/cam.h>
54 #include <cam/cam_ccb.h>
55 #include <cam/cam_xpt_periph.h>
56 #include <cam/cam_periph.h>
57
58 #include <cam/scsi/scsi_message.h>
59 #include <cam/scsi/scsi_enc.h>
60 #include <cam/scsi/scsi_enc_internal.h>
61
62 /* SES Native Type Device Support */
63
64 /* SES Diagnostic Page Codes */
65 typedef enum {
66 SesSupportedPages = 0x0,
67 SesConfigPage = 0x1,
68 SesControlPage = 0x2,
69 SesStatusPage = SesControlPage,
70 SesHelpTxt = 0x3,
71 SesStringOut = 0x4,
72 SesStringIn = SesStringOut,
73 SesThresholdOut = 0x5,
74 SesThresholdIn = SesThresholdOut,
75 SesArrayControl = 0x6, /* Obsolete in SES v2 */
76 SesArrayStatus = SesArrayControl,
77 SesElementDescriptor = 0x7,
78 SesShortStatus = 0x8,
79 SesEnclosureBusy = 0x9,
80 SesAddlElementStatus = 0xa
81 } SesDiagPageCodes;
82
83 typedef struct ses_type {
84 const struct ses_elm_type_desc *hdr;
85 const char *text;
86 } ses_type_t;
87
88 typedef struct ses_comstat {
89 uint8_t comstatus;
90 uint8_t comstat[3];
91 } ses_comstat_t;
92
93 typedef union ses_addl_data {
94 struct ses_elm_sas_device_phy *sasdev_phys;
95 struct ses_elm_sas_expander_phy *sasexp_phys;
96 struct ses_elm_sas_port_phy *sasport_phys;
97 struct ses_fcobj_port *fc_ports;
98 } ses_add_data_t;
99
100 typedef struct ses_addl_status {
101 struct ses_elm_addlstatus_base_hdr *hdr;
102 union {
103 union ses_fcobj_hdr *fc;
104 union ses_elm_sas_hdr *sas;
105 struct ses_elm_ata_hdr *ata;
106 } proto_hdr;
107 union ses_addl_data proto_data; /* array sizes stored in header */
108 } ses_add_status_t;
109
110 typedef struct ses_element {
111 uint8_t eip; /* eip bit is set */
112 uint16_t descr_len; /* length of the descriptor */
113 char *descr; /* descriptor for this object */
114 struct ses_addl_status addl; /* additional status info */
115 } ses_element_t;
116
117 typedef struct ses_control_request {
118 int elm_idx;
119 ses_comstat_t elm_stat;
120 int result;
121 TAILQ_ENTRY(ses_control_request) links;
122 } ses_control_request_t;
123 TAILQ_HEAD(ses_control_reqlist, ses_control_request);
124 typedef struct ses_control_reqlist ses_control_reqlist_t;
125 enum {
126 SES_SETSTATUS_ENC_IDX = -1
127 };
128
129 static void
ses_terminate_control_requests(ses_control_reqlist_t * reqlist,int result)130 ses_terminate_control_requests(ses_control_reqlist_t *reqlist, int result)
131 {
132 ses_control_request_t *req;
133
134 while ((req = TAILQ_FIRST(reqlist)) != NULL) {
135 TAILQ_REMOVE(reqlist, req, links);
136 req->result = result;
137 wakeup(req);
138 }
139 }
140
141 enum ses_iter_index_values {
142 /**
143 * \brief Value of an initialized but invalid index
144 * in a ses_iterator object.
145 *
146 * This value is used for the individual_element_index of
147 * overal status elements and for all index types when
148 * an iterator is first initialized.
149 */
150 ITERATOR_INDEX_INVALID = -1,
151
152 /**
153 * \brief Value of an index in a ses_iterator object
154 * when the iterator has traversed past the last
155 * valid element..
156 */
157 ITERATOR_INDEX_END = INT_MAX
158 };
159
160 /**
161 * \brief Structure encapsulating all data necessary to traverse the
162 * elements of a SES configuration.
163 *
164 * The ses_iterator object simplifies the task of iterating through all
165 * elements detected via the SES configuration page by tracking the numerous
166 * element indexes that, instead of memoizing in the softc, we calculate
167 * on the fly during the traversal of the element objects. The various
168 * indexes are necessary due to the varying needs of matching objects in
169 * the different SES pages. Some pages (e.g. Status/Control) contain all
170 * elements, while others (e.g. Additional Element Status) only contain
171 * individual elements (no overal status elements) of particular types.
172 *
173 * To use an iterator, initialize it with ses_iter_init(), and then
174 * use ses_iter_next() to traverse the elements (including the first) in
175 * the configuration. Once an iterator is initiailized with ses_iter_init(),
176 * you may also seek to any particular element by either it's global or
177 * individual element index via the ses_iter_seek_to() function. You may
178 * also return an iterator to the position just before the first element
179 * (i.e. the same state as after an ses_iter_init()), with ses_iter_reset().
180 */
181 struct ses_iterator {
182 /**
183 * \brief Backlink to the overal software configuration structure.
184 *
185 * This is included for convenience so the iteration functions
186 * need only take a single, struct ses_iterator *, argument.
187 */
188 enc_softc_t *enc;
189
190 enc_cache_t *cache;
191
192 /**
193 * \brief Index of the type of the current element within the
194 * ses_cache's ses_types array.
195 */
196 int type_index;
197
198 /**
199 * \brief The position (0 based) of this element relative to all other
200 * elements of this type.
201 *
202 * This index resets to zero every time the iterator transitions
203 * to elements of a new type in the configuration.
204 */
205 int type_element_index;
206
207 /**
208 * \brief The position (0 based) of this element relative to all
209 * other individual status elements in the configuration.
210 *
211 * This index ranges from 0 through the number of individual
212 * elements in the configuration. When the iterator returns
213 * an overall status element, individual_element_index is
214 * set to ITERATOR_INDEX_INVALID, to indicate that it does
215 * not apply to the current element.
216 */
217 int individual_element_index;
218
219 /**
220 * \brief The position (0 based) of this element relative to
221 * all elements in the configration.
222 *
223 * This index is appropriate for indexing into enc->ses_elm_map.
224 */
225 int global_element_index;
226
227 /**
228 * \brief The last valid individual element index of this
229 * iterator.
230 *
231 * When an iterator traverses an overal status element, the
232 * individual element index is reset to ITERATOR_INDEX_INVALID
233 * to prevent unintential use of the individual_element_index
234 * field. The saved_individual_element_index allows the iterator
235 * to restore it's position in the individual elements upon
236 * reaching the next individual element.
237 */
238 int saved_individual_element_index;
239 };
240
241 typedef enum {
242 SES_UPDATE_NONE,
243 SES_UPDATE_PAGES,
244 SES_UPDATE_GETCONFIG,
245 SES_UPDATE_GETSTATUS,
246 SES_UPDATE_GETELMDESCS,
247 SES_UPDATE_GETELMADDLSTATUS,
248 SES_PROCESS_CONTROL_REQS,
249 SES_PUBLISH_PHYSPATHS,
250 SES_PUBLISH_CACHE,
251 SES_NUM_UPDATE_STATES
252 } ses_update_action;
253
254 static enc_softc_cleanup_t ses_softc_cleanup;
255
256 #define SCSZ 0x8000
257
258 static fsm_fill_handler_t ses_fill_rcv_diag_io;
259 static fsm_fill_handler_t ses_fill_control_request;
260 static fsm_done_handler_t ses_process_pages;
261 static fsm_done_handler_t ses_process_config;
262 static fsm_done_handler_t ses_process_status;
263 static fsm_done_handler_t ses_process_elm_descs;
264 static fsm_done_handler_t ses_process_elm_addlstatus;
265 static fsm_done_handler_t ses_process_control_request;
266 static fsm_done_handler_t ses_publish_physpaths;
267 static fsm_done_handler_t ses_publish_cache;
268
269 static struct enc_fsm_state enc_fsm_states[SES_NUM_UPDATE_STATES] =
270 {
271 { "SES_UPDATE_NONE", 0, 0, 0, NULL, NULL, NULL },
272 {
273 "SES_UPDATE_PAGES",
274 SesSupportedPages,
275 SCSZ,
276 60 * 1000,
277 ses_fill_rcv_diag_io,
278 ses_process_pages,
279 enc_error
280 },
281 {
282 "SES_UPDATE_GETCONFIG",
283 SesConfigPage,
284 SCSZ,
285 60 * 1000,
286 ses_fill_rcv_diag_io,
287 ses_process_config,
288 enc_error
289 },
290 {
291 "SES_UPDATE_GETSTATUS",
292 SesStatusPage,
293 SCSZ,
294 60 * 1000,
295 ses_fill_rcv_diag_io,
296 ses_process_status,
297 enc_error
298 },
299 {
300 "SES_UPDATE_GETELMDESCS",
301 SesElementDescriptor,
302 SCSZ,
303 60 * 1000,
304 ses_fill_rcv_diag_io,
305 ses_process_elm_descs,
306 enc_error
307 },
308 {
309 "SES_UPDATE_GETELMADDLSTATUS",
310 SesAddlElementStatus,
311 SCSZ,
312 60 * 1000,
313 ses_fill_rcv_diag_io,
314 ses_process_elm_addlstatus,
315 enc_error
316 },
317 {
318 "SES_PROCESS_CONTROL_REQS",
319 SesControlPage,
320 SCSZ,
321 60 * 1000,
322 ses_fill_control_request,
323 ses_process_control_request,
324 enc_error
325 },
326 {
327 "SES_PUBLISH_PHYSPATHS",
328 0,
329 0,
330 0,
331 NULL,
332 ses_publish_physpaths,
333 NULL
334 },
335 {
336 "SES_PUBLISH_CACHE",
337 0,
338 0,
339 0,
340 NULL,
341 ses_publish_cache,
342 NULL
343 }
344 };
345
346 typedef struct ses_cache {
347 /* Source for all the configuration data pointers */
348 const struct ses_cfg_page *cfg_page;
349
350 /* References into the config page. */
351 int ses_nsubencs;
352 const struct ses_enc_desc * const *subencs;
353 int ses_ntypes;
354 const ses_type_t *ses_types;
355
356 /* Source for all the status pointers */
357 const struct ses_status_page *status_page;
358
359 /* Source for all the object descriptor pointers */
360 const struct ses_elem_descr_page *elm_descs_page;
361
362 /* Source for all the additional object status pointers */
363 const struct ses_addl_elem_status_page *elm_addlstatus_page;
364
365 } ses_cache_t;
366
367 typedef struct ses_softc {
368 uint32_t ses_flags;
369 #define SES_FLAG_TIMEDCOMP 0x01
370 #define SES_FLAG_ADDLSTATUS 0x02
371 #define SES_FLAG_DESC 0x04
372
373 ses_control_reqlist_t ses_requests;
374 ses_control_reqlist_t ses_pending_requests;
375 } ses_softc_t;
376
377 /**
378 * \brief Reset a SES iterator to just before the first element
379 * in the configuration.
380 *
381 * \param iter The iterator object to reset.
382 *
383 * The indexes within a reset iterator are invalid and will only
384 * become valid upon completion of a ses_iter_seek_to() or a
385 * ses_iter_next().
386 */
387 static void
ses_iter_reset(struct ses_iterator * iter)388 ses_iter_reset(struct ses_iterator *iter)
389 {
390 /*
391 * Set our indexes to just before the first valid element
392 * of the first type (ITERATOR_INDEX_INVALID == -1). This
393 * simplifies the implementation of ses_iter_next().
394 */
395 iter->type_index = 0;
396 iter->type_element_index = ITERATOR_INDEX_INVALID;
397 iter->global_element_index = ITERATOR_INDEX_INVALID;
398 iter->individual_element_index = ITERATOR_INDEX_INVALID;
399 iter->saved_individual_element_index = ITERATOR_INDEX_INVALID;
400 }
401
402 /**
403 * \brief Initialize the storage of a SES iterator and reset it to
404 * the position just before the first element of the
405 * configuration.
406 *
407 * \param enc The SES softc for the SES instance whose configuration
408 * will be enumerated by this iterator.
409 * \param iter The iterator object to initialize.
410 */
411 static void
ses_iter_init(enc_softc_t * enc,enc_cache_t * cache,struct ses_iterator * iter)412 ses_iter_init(enc_softc_t *enc, enc_cache_t *cache, struct ses_iterator *iter)
413 {
414 iter->enc = enc;
415 iter->cache = cache;
416 ses_iter_reset(iter);
417 }
418
419 /**
420 * \brief Traverse the provided SES iterator to the next element
421 * within the configuraiton.
422 *
423 * \param iter The iterator to move.
424 *
425 * \return If a valid next element exists, a pointer to it's enc_element_t.
426 * Otherwise NULL.
427 */
428 static enc_element_t *
ses_iter_next(struct ses_iterator * iter)429 ses_iter_next(struct ses_iterator *iter)
430 {
431 ses_cache_t *ses_cache;
432 const ses_type_t *element_type;
433
434 ses_cache = iter->cache->private;
435
436 /*
437 * Note: Treat nelms as signed, so we will hit this case
438 * and immediately terminate the iteration if the
439 * configuration has 0 objects.
440 */
441 if (iter->global_element_index >= (int)iter->cache->nelms - 1) {
442
443 /* Elements exhausted. */
444 iter->type_index = ITERATOR_INDEX_END;
445 iter->type_element_index = ITERATOR_INDEX_END;
446 iter->global_element_index = ITERATOR_INDEX_END;
447 iter->individual_element_index = ITERATOR_INDEX_END;
448 iter->saved_individual_element_index = ITERATOR_INDEX_END;
449 return (NULL);
450 }
451
452 KASSERT((iter->type_index < ses_cache->ses_ntypes),
453 ("Corrupted element iterator. %d not less than %d",
454 iter->type_index, ses_cache->ses_ntypes));
455
456 element_type = &ses_cache->ses_types[iter->type_index];
457 iter->global_element_index++;
458 iter->type_element_index++;
459
460 /*
461 * There is an object for overal type status in addition
462 * to one for each allowed element, but only if the element
463 * count is non-zero.
464 */
465 if (iter->type_element_index > element_type->hdr->etype_maxelt) {
466
467 /*
468 * We've exhausted the elements of this type.
469 * This next element belongs to the next type.
470 */
471 iter->type_index++;
472 iter->type_element_index = 0;
473 iter->individual_element_index = ITERATOR_INDEX_INVALID;
474 }
475
476 if (iter->type_element_index > 0) {
477 iter->individual_element_index =
478 ++iter->saved_individual_element_index;
479 }
480
481 return (&iter->cache->elm_map[iter->global_element_index]);
482 }
483
484 /**
485 * Element index types tracked by a SES iterator.
486 */
487 typedef enum {
488 /**
489 * Index relative to all elements (overall and individual)
490 * in the system.
491 */
492 SES_ELEM_INDEX_GLOBAL,
493
494 /**
495 * \brief Index relative to all individual elements in the system.
496 *
497 * This index counts only individual elements, skipping overall
498 * status elements. This is the index space of the additional
499 * element status page (page 0xa).
500 */
501 SES_ELEM_INDEX_INDIVIDUAL
502 } ses_elem_index_type_t;
503
504 /**
505 * \brief Move the provided iterator forwards or backwards to the object
506 * having the give index.
507 *
508 * \param iter The iterator on which to perform the seek.
509 * \param element_index The index of the element to find.
510 * \param index_type The type (global or individual) of element_index.
511 *
512 * \return If the element is found, a pointer to it's enc_element_t.
513 * Otherwise NULL.
514 */
515 static enc_element_t *
ses_iter_seek_to(struct ses_iterator * iter,int element_index,ses_elem_index_type_t index_type)516 ses_iter_seek_to(struct ses_iterator *iter, int element_index,
517 ses_elem_index_type_t index_type)
518 {
519 enc_element_t *element;
520 int *cur_index;
521
522 if (index_type == SES_ELEM_INDEX_GLOBAL)
523 cur_index = &iter->global_element_index;
524 else
525 cur_index = &iter->individual_element_index;
526
527 if (*cur_index == element_index) {
528 /* Already there. */
529 return (&iter->cache->elm_map[iter->global_element_index]);
530 }
531
532 ses_iter_reset(iter);
533 while ((element = ses_iter_next(iter)) != NULL
534 && *cur_index != element_index)
535 ;
536
537 if (*cur_index != element_index)
538 return (NULL);
539
540 return (element);
541 }
542
543 #if 0
544 static int ses_encode(enc_softc_t *, uint8_t *, int, int,
545 struct ses_comstat *);
546 #endif
547 static int ses_set_timed_completion(enc_softc_t *, uint8_t);
548 #if 0
549 static int ses_putstatus(enc_softc_t *, int, struct ses_comstat *);
550 #endif
551
552 static void ses_poll_status(enc_softc_t *);
553 static void ses_print_addl_data(enc_softc_t *, enc_element_t *);
554
555 /*=========================== SES cleanup routines ===========================*/
556
557 static void
ses_cache_free_elm_addlstatus(enc_softc_t * enc,enc_cache_t * cache)558 ses_cache_free_elm_addlstatus(enc_softc_t *enc, enc_cache_t *cache)
559 {
560 ses_cache_t *ses_cache;
561 ses_cache_t *other_ses_cache;
562 enc_element_t *cur_elm;
563 enc_element_t *last_elm;
564
565 ENC_DLOG(enc, "%s: enter\n", __func__);
566 ses_cache = cache->private;
567 if (ses_cache->elm_addlstatus_page == NULL)
568 return;
569
570 for (cur_elm = cache->elm_map,
571 last_elm = &cache->elm_map[cache->nelms];
572 cur_elm != last_elm; cur_elm++) {
573 ses_element_t *elmpriv;
574
575 elmpriv = cur_elm->elm_private;
576
577 /* Clear references to the additional status page. */
578 bzero(&elmpriv->addl, sizeof(elmpriv->addl));
579 }
580
581 other_ses_cache = enc_other_cache(enc, cache)->private;
582 if (other_ses_cache->elm_addlstatus_page
583 != ses_cache->elm_addlstatus_page)
584 ENC_FREE(ses_cache->elm_addlstatus_page);
585 ses_cache->elm_addlstatus_page = NULL;
586 }
587
588 static void
ses_cache_free_elm_descs(enc_softc_t * enc,enc_cache_t * cache)589 ses_cache_free_elm_descs(enc_softc_t *enc, enc_cache_t *cache)
590 {
591 ses_cache_t *ses_cache;
592 ses_cache_t *other_ses_cache;
593 enc_element_t *cur_elm;
594 enc_element_t *last_elm;
595
596 ENC_DLOG(enc, "%s: enter\n", __func__);
597 ses_cache = cache->private;
598 if (ses_cache->elm_descs_page == NULL)
599 return;
600
601 for (cur_elm = cache->elm_map,
602 last_elm = &cache->elm_map[cache->nelms];
603 cur_elm != last_elm; cur_elm++) {
604 ses_element_t *elmpriv;
605
606 elmpriv = cur_elm->elm_private;
607 elmpriv->descr_len = 0;
608 elmpriv->descr = NULL;
609 }
610
611 other_ses_cache = enc_other_cache(enc, cache)->private;
612 if (other_ses_cache->elm_descs_page
613 != ses_cache->elm_descs_page)
614 ENC_FREE(ses_cache->elm_descs_page);
615 ses_cache->elm_descs_page = NULL;
616 }
617
618 static void
ses_cache_free_status(enc_softc_t * enc,enc_cache_t * cache)619 ses_cache_free_status(enc_softc_t *enc, enc_cache_t *cache)
620 {
621 ses_cache_t *ses_cache;
622 ses_cache_t *other_ses_cache;
623
624 ENC_DLOG(enc, "%s: enter\n", __func__);
625 ses_cache = cache->private;
626 if (ses_cache->status_page == NULL)
627 return;
628
629 other_ses_cache = enc_other_cache(enc, cache)->private;
630 if (other_ses_cache->status_page != ses_cache->status_page)
631 ENC_FREE(ses_cache->status_page);
632 ses_cache->status_page = NULL;
633 }
634
635 static void
ses_cache_free_elm_map(enc_softc_t * enc,enc_cache_t * cache)636 ses_cache_free_elm_map(enc_softc_t *enc, enc_cache_t *cache)
637 {
638 enc_element_t *cur_elm;
639 enc_element_t *last_elm;
640
641 ENC_DLOG(enc, "%s: enter\n", __func__);
642 if (cache->elm_map == NULL)
643 return;
644
645 ses_cache_free_elm_descs(enc, cache);
646 ses_cache_free_elm_addlstatus(enc, cache);
647 for (cur_elm = cache->elm_map,
648 last_elm = &cache->elm_map[cache->nelms];
649 cur_elm != last_elm; cur_elm++) {
650
651 ENC_FREE_AND_NULL(cur_elm->elm_private);
652 }
653 ENC_FREE_AND_NULL(cache->elm_map);
654 cache->nelms = 0;
655 ENC_DLOG(enc, "%s: exit\n", __func__);
656 }
657
658 static void
ses_cache_free(enc_softc_t * enc,enc_cache_t * cache)659 ses_cache_free(enc_softc_t *enc, enc_cache_t *cache)
660 {
661 ses_cache_t *other_ses_cache;
662 ses_cache_t *ses_cache;
663
664 ENC_DLOG(enc, "%s: enter\n", __func__);
665 ses_cache_free_elm_addlstatus(enc, cache);
666 ses_cache_free_status(enc, cache);
667 ses_cache_free_elm_map(enc, cache);
668
669 ses_cache = cache->private;
670 ses_cache->ses_ntypes = 0;
671
672 other_ses_cache = enc_other_cache(enc, cache)->private;
673 if (other_ses_cache->subencs != ses_cache->subencs)
674 ENC_FREE(ses_cache->subencs);
675 ses_cache->subencs = NULL;
676
677 if (other_ses_cache->ses_types != ses_cache->ses_types)
678 ENC_FREE(ses_cache->ses_types);
679 ses_cache->ses_types = NULL;
680
681 if (other_ses_cache->cfg_page != ses_cache->cfg_page)
682 ENC_FREE(ses_cache->cfg_page);
683 ses_cache->cfg_page = NULL;
684
685 ENC_DLOG(enc, "%s: exit\n", __func__);
686 }
687
688 static void
ses_cache_clone(enc_softc_t * enc,enc_cache_t * src,enc_cache_t * dst)689 ses_cache_clone(enc_softc_t *enc, enc_cache_t *src, enc_cache_t *dst)
690 {
691 ses_cache_t *dst_ses_cache;
692 ses_cache_t *src_ses_cache;
693 enc_element_t *src_elm;
694 enc_element_t *dst_elm;
695 enc_element_t *last_elm;
696
697 ses_cache_free(enc, dst);
698 src_ses_cache = src->private;
699 dst_ses_cache = dst->private;
700
701 /*
702 * The cloned enclosure cache and ses specific cache are
703 * mostly identical to the source.
704 */
705 *dst = *src;
706 *dst_ses_cache = *src_ses_cache;
707
708 /*
709 * But the ses cache storage is still independent. Restore
710 * the pointer that was clobbered by the structure copy above.
711 */
712 dst->private = dst_ses_cache;
713
714 /*
715 * The element map is independent even though it starts out
716 * pointing to the same constant page data.
717 */
718 dst->elm_map = malloc(dst->nelms * sizeof(enc_element_t),
719 M_SCSIENC, M_WAITOK);
720 memcpy(dst->elm_map, src->elm_map, dst->nelms * sizeof(enc_element_t));
721 for (dst_elm = dst->elm_map, src_elm = src->elm_map,
722 last_elm = &src->elm_map[src->nelms];
723 src_elm != last_elm; src_elm++, dst_elm++) {
724
725 dst_elm->elm_private = malloc(sizeof(ses_element_t),
726 M_SCSIENC, M_WAITOK);
727 memcpy(dst_elm->elm_private, src_elm->elm_private,
728 sizeof(ses_element_t));
729 }
730 }
731
732 /* Structure accessors. These are strongly typed to avoid errors. */
733
734 int
ses_elm_sas_descr_type(union ses_elm_sas_hdr * obj)735 ses_elm_sas_descr_type(union ses_elm_sas_hdr *obj)
736 {
737 return ((obj)->base_hdr.byte1 >> 6);
738 }
739 int
ses_elm_addlstatus_proto(struct ses_elm_addlstatus_base_hdr * hdr)740 ses_elm_addlstatus_proto(struct ses_elm_addlstatus_base_hdr *hdr)
741 {
742 return ((hdr)->byte0 & 0xf);
743 }
744 int
ses_elm_addlstatus_eip(struct ses_elm_addlstatus_base_hdr * hdr)745 ses_elm_addlstatus_eip(struct ses_elm_addlstatus_base_hdr *hdr)
746 {
747 return ((hdr)->byte0 >> 4) & 0x1;
748 }
749 int
ses_elm_addlstatus_invalid(struct ses_elm_addlstatus_base_hdr * hdr)750 ses_elm_addlstatus_invalid(struct ses_elm_addlstatus_base_hdr *hdr)
751 {
752 return ((hdr)->byte0 >> 7);
753 }
754 int
ses_elm_sas_type0_not_all_phys(union ses_elm_sas_hdr * hdr)755 ses_elm_sas_type0_not_all_phys(union ses_elm_sas_hdr *hdr)
756 {
757 return ((hdr)->type0_noneip.byte1 & 0x1);
758 }
759 int
ses_elm_sas_dev_phy_sata_dev(struct ses_elm_sas_device_phy * phy)760 ses_elm_sas_dev_phy_sata_dev(struct ses_elm_sas_device_phy *phy)
761 {
762 return ((phy)->target_ports & 0x1);
763 }
764 int
ses_elm_sas_dev_phy_sata_port(struct ses_elm_sas_device_phy * phy)765 ses_elm_sas_dev_phy_sata_port(struct ses_elm_sas_device_phy *phy)
766 {
767 return ((phy)->target_ports >> 7);
768 }
769 int
ses_elm_sas_dev_phy_dev_type(struct ses_elm_sas_device_phy * phy)770 ses_elm_sas_dev_phy_dev_type(struct ses_elm_sas_device_phy *phy)
771 {
772 return (((phy)->byte0 >> 4) & 0x7);
773 }
774
775 /**
776 * \brief Verify that the cached configuration data in our softc
777 * is valid for processing the page data corresponding to
778 * the provided page header.
779 *
780 * \param ses_cache The SES cache to validate.
781 * \param gen_code The 4 byte generation code from a SES diagnostic
782 * page header.
783 *
784 * \return non-zero if true, 0 if false.
785 */
786 static int
ses_config_cache_valid(ses_cache_t * ses_cache,const uint8_t * gen_code)787 ses_config_cache_valid(ses_cache_t *ses_cache, const uint8_t *gen_code)
788 {
789 uint32_t cache_gc;
790 uint32_t cur_gc;
791
792 if (ses_cache->cfg_page == NULL)
793 return (0);
794
795 cache_gc = scsi_4btoul(ses_cache->cfg_page->hdr.gen_code);
796 cur_gc = scsi_4btoul(gen_code);
797 return (cache_gc == cur_gc);
798 }
799
800 /**
801 * Function signature for consumers of the ses_devids_iter() interface.
802 */
803 typedef void ses_devid_callback_t(enc_softc_t *, enc_element_t *,
804 struct scsi_vpd_id_descriptor *, void *);
805
806 /**
807 * \brief Iterate over and create vpd device id records from the
808 * additional element status data for elm, passing that data
809 * to the provided callback.
810 *
811 * \param enc SES instance containing elm
812 * \param elm Element for which to extract device ID data.
813 * \param callback The callback function to invoke on each generated
814 * device id descriptor for elm.
815 * \param callback_arg Argument passed through to callback on each invocation.
816 */
817 static void
ses_devids_iter(enc_softc_t * enc,enc_element_t * elm,ses_devid_callback_t * callback,void * callback_arg)818 ses_devids_iter(enc_softc_t *enc, enc_element_t *elm,
819 ses_devid_callback_t *callback, void *callback_arg)
820 {
821 ses_element_t *elmpriv;
822 struct ses_addl_status *addl;
823 u_int i;
824 size_t devid_record_size;
825
826 elmpriv = elm->elm_private;
827 addl = &(elmpriv->addl);
828
829 devid_record_size = SVPD_DEVICE_ID_DESC_HDR_LEN
830 + sizeof(struct scsi_vpd_id_naa_ieee_reg);
831 for (i = 0; i < addl->proto_hdr.sas->base_hdr.num_phys; i++) {
832 uint8_t devid_buf[devid_record_size];
833 struct scsi_vpd_id_descriptor *devid;
834 uint8_t *phy_addr;
835
836 devid = (struct scsi_vpd_id_descriptor *)devid_buf;
837 phy_addr = addl->proto_data.sasdev_phys[i].phy_addr;
838 devid->proto_codeset = (SCSI_PROTO_SAS << SVPD_ID_PROTO_SHIFT)
839 | SVPD_ID_CODESET_BINARY;
840 devid->id_type = SVPD_ID_PIV
841 | SVPD_ID_ASSOC_PORT
842 | SVPD_ID_TYPE_NAA;
843 devid->reserved = 0;
844 devid->length = sizeof(struct scsi_vpd_id_naa_ieee_reg);
845 memcpy(devid->identifier, phy_addr, devid->length);
846
847 callback(enc, elm, devid, callback_arg);
848 }
849 }
850
851 /**
852 * Function signature for consumers of the ses_paths_iter() interface.
853 */
854 typedef void ses_path_callback_t(enc_softc_t *, enc_element_t *,
855 struct cam_path *, void *);
856
857 /**
858 * Argument package passed through ses_devids_iter() by
859 * ses_paths_iter() to ses_path_iter_devid_callback().
860 */
861 typedef struct ses_path_iter_args {
862 ses_path_callback_t *callback;
863 void *callback_arg;
864 } ses_path_iter_args_t;
865
866 /**
867 * ses_devids_iter() callback function used by ses_paths_iter()
868 * to map device ids to peripheral driver instances.
869 *
870 * \param enc SES instance containing elm
871 * \param elm Element on which device ID matching is active.
872 * \param periph A device ID corresponding to elm.
873 * \param arg Argument passed through to callback on each invocation.
874 */
875 static void
ses_path_iter_devid_callback(enc_softc_t * enc,enc_element_t * elem,struct scsi_vpd_id_descriptor * devid,void * arg)876 ses_path_iter_devid_callback(enc_softc_t *enc, enc_element_t *elem,
877 struct scsi_vpd_id_descriptor *devid,
878 void *arg)
879 {
880 struct ccb_dev_match cdm;
881 struct dev_match_pattern match_pattern;
882 struct dev_match_result match_result;
883 struct device_match_result *device_match;
884 struct device_match_pattern *device_pattern;
885 ses_path_iter_args_t *args;
886 struct cam_path *path;
887
888 args = (ses_path_iter_args_t *)arg;
889 match_pattern.type = DEV_MATCH_DEVICE;
890 device_pattern = &match_pattern.pattern.device_pattern;
891 device_pattern->flags = DEV_MATCH_DEVID;
892 device_pattern->data.devid_pat.id_len =
893 offsetof(struct scsi_vpd_id_descriptor, identifier)
894 + devid->length;
895 memcpy(device_pattern->data.devid_pat.id, devid,
896 device_pattern->data.devid_pat.id_len);
897
898 memset(&cdm, 0, sizeof(cdm));
899 if (xpt_create_path(&cdm.ccb_h.path, /*periph*/NULL,
900 CAM_XPT_PATH_ID,
901 CAM_TARGET_WILDCARD,
902 CAM_LUN_WILDCARD) != CAM_REQ_CMP)
903 return;
904
905 cdm.ccb_h.func_code = XPT_DEV_MATCH;
906 cdm.num_patterns = 1;
907 cdm.patterns = &match_pattern;
908 cdm.pattern_buf_len = sizeof(match_pattern);
909 cdm.match_buf_len = sizeof(match_result);
910 cdm.matches = &match_result;
911
912 do {
913 xpt_action((union ccb *)&cdm);
914
915 if ((cdm.ccb_h.status & CAM_STATUS_MASK) != CAM_REQ_CMP ||
916 (cdm.status != CAM_DEV_MATCH_LAST &&
917 cdm.status != CAM_DEV_MATCH_MORE) ||
918 cdm.num_matches == 0)
919 break;
920
921 device_match = &match_result.result.device_result;
922 if (xpt_create_path(&path, /*periph*/NULL,
923 device_match->path_id,
924 device_match->target_id,
925 device_match->target_lun) == CAM_REQ_CMP) {
926
927 args->callback(enc, elem, path, args->callback_arg);
928
929 xpt_free_path(path);
930 }
931 } while (cdm.status == CAM_DEV_MATCH_MORE);
932
933 xpt_free_path(cdm.ccb_h.path);
934 }
935
936 /**
937 * \brief Iterate over and find the matching periph objects for the
938 * specified element.
939 *
940 * \param enc SES instance containing elm
941 * \param elm Element for which to perform periph object matching.
942 * \param callback The callback function to invoke with each matching
943 * periph object.
944 * \param callback_arg Argument passed through to callback on each invocation.
945 */
946 static void
ses_paths_iter(enc_softc_t * enc,enc_element_t * elm,ses_path_callback_t * callback,void * callback_arg)947 ses_paths_iter(enc_softc_t *enc, enc_element_t *elm,
948 ses_path_callback_t *callback, void *callback_arg)
949 {
950 ses_element_t *elmpriv;
951 struct ses_addl_status *addl;
952
953 elmpriv = elm->elm_private;
954 addl = &(elmpriv->addl);
955
956 if (addl->hdr == NULL)
957 return;
958
959 if (addl->proto_hdr.sas != NULL &&
960 addl->proto_data.sasdev_phys != NULL) {
961 ses_path_iter_args_t args;
962
963 args.callback = callback;
964 args.callback_arg = callback_arg;
965 ses_devids_iter(enc, elm, ses_path_iter_devid_callback, &args);
966 } else if (addl->proto_hdr.ata != NULL) {
967 struct cam_path *path;
968 struct ccb_getdev cgd;
969
970 if (xpt_create_path(&path, /*periph*/NULL,
971 scsi_4btoul(addl->proto_hdr.ata->bus),
972 scsi_4btoul(addl->proto_hdr.ata->target), 0)
973 != CAM_REQ_CMP)
974 return;
975
976 xpt_setup_ccb(&cgd.ccb_h, path, CAM_PRIORITY_NORMAL);
977 cgd.ccb_h.func_code = XPT_GDEV_TYPE;
978 xpt_action((union ccb *)&cgd);
979 if (cgd.ccb_h.status == CAM_REQ_CMP)
980 callback(enc, elm, path, callback_arg);
981
982 xpt_free_path(path);
983 }
984 }
985
986 /**
987 * ses_paths_iter() callback function used by ses_get_elmdevname()
988 * to record periph driver instance strings corresponding to a SES
989 * element.
990 *
991 * \param enc SES instance containing elm
992 * \param elm Element on which periph matching is active.
993 * \param periph A periph instance that matches elm.
994 * \param arg Argument passed through to callback on each invocation.
995 */
996 static void
ses_elmdevname_callback(enc_softc_t * enc,enc_element_t * elem,struct cam_path * path,void * arg)997 ses_elmdevname_callback(enc_softc_t *enc, enc_element_t *elem,
998 struct cam_path *path, void *arg)
999 {
1000 struct sbuf *sb;
1001
1002 sb = (struct sbuf *)arg;
1003 cam_periph_list(path, sb);
1004 }
1005
1006 /**
1007 * Argument package passed through ses_paths_iter() to
1008 * ses_getcampath_callback.
1009 */
1010 typedef struct ses_setphyspath_callback_args {
1011 struct sbuf *physpath;
1012 int num_set;
1013 } ses_setphyspath_callback_args_t;
1014
1015 /**
1016 * \brief ses_paths_iter() callback to set the physical path on the
1017 * CAM EDT entries corresponding to a given SES element.
1018 *
1019 * \param enc SES instance containing elm
1020 * \param elm Element on which periph matching is active.
1021 * \param periph A periph instance that matches elm.
1022 * \param arg Argument passed through to callback on each invocation.
1023 */
1024 static void
ses_setphyspath_callback(enc_softc_t * enc,enc_element_t * elm,struct cam_path * path,void * arg)1025 ses_setphyspath_callback(enc_softc_t *enc, enc_element_t *elm,
1026 struct cam_path *path, void *arg)
1027 {
1028 struct ccb_dev_advinfo cdai;
1029 ses_setphyspath_callback_args_t *args;
1030 char *old_physpath;
1031
1032 args = (ses_setphyspath_callback_args_t *)arg;
1033 old_physpath = malloc(MAXPATHLEN, M_SCSIENC, M_WAITOK|M_ZERO);
1034 xpt_path_lock(path);
1035 xpt_setup_ccb(&cdai.ccb_h, path, CAM_PRIORITY_NORMAL);
1036 cdai.ccb_h.func_code = XPT_DEV_ADVINFO;
1037 cdai.buftype = CDAI_TYPE_PHYS_PATH;
1038 cdai.flags = CDAI_FLAG_NONE;
1039 cdai.bufsiz = MAXPATHLEN;
1040 cdai.buf = old_physpath;
1041 xpt_action((union ccb *)&cdai);
1042 if ((cdai.ccb_h.status & CAM_DEV_QFRZN) != 0)
1043 cam_release_devq(cdai.ccb_h.path, 0, 0, 0, FALSE);
1044
1045 if (strcmp(old_physpath, sbuf_data(args->physpath)) != 0) {
1046
1047 xpt_setup_ccb(&cdai.ccb_h, path, CAM_PRIORITY_NORMAL);
1048 cdai.ccb_h.func_code = XPT_DEV_ADVINFO;
1049 cdai.buftype = CDAI_TYPE_PHYS_PATH;
1050 cdai.flags = CDAI_FLAG_STORE;
1051 cdai.bufsiz = sbuf_len(args->physpath);
1052 cdai.buf = sbuf_data(args->physpath);
1053 xpt_action((union ccb *)&cdai);
1054 if ((cdai.ccb_h.status & CAM_DEV_QFRZN) != 0)
1055 cam_release_devq(cdai.ccb_h.path, 0, 0, 0, FALSE);
1056 if (cdai.ccb_h.status == CAM_REQ_CMP)
1057 args->num_set++;
1058 }
1059 xpt_path_unlock(path);
1060 free(old_physpath, M_SCSIENC);
1061 }
1062
1063 /**
1064 * \brief Set a device's physical path string in CAM XPT.
1065 *
1066 * \param enc SES instance containing elm
1067 * \param elm Element to publish physical path string for
1068 * \param iter Iterator whose state corresponds to elm
1069 *
1070 * \return 0 on success, errno otherwise.
1071 */
1072 static int
ses_set_physpath(enc_softc_t * enc,enc_element_t * elm,struct ses_iterator * iter)1073 ses_set_physpath(enc_softc_t *enc, enc_element_t *elm,
1074 struct ses_iterator *iter)
1075 {
1076 struct ccb_dev_advinfo cdai;
1077 ses_setphyspath_callback_args_t args;
1078 int i, ret;
1079 struct sbuf sb;
1080 struct scsi_vpd_id_descriptor *idd;
1081 uint8_t *devid;
1082 ses_element_t *elmpriv;
1083 const char *c;
1084
1085 ret = EIO;
1086 devid = NULL;
1087
1088 elmpriv = elm->elm_private;
1089 if (elmpriv->addl.hdr == NULL)
1090 goto out;
1091
1092 /*
1093 * Assemble the components of the physical path starting with
1094 * the device ID of the enclosure itself.
1095 */
1096 xpt_setup_ccb(&cdai.ccb_h, enc->periph->path, CAM_PRIORITY_NORMAL);
1097 cdai.ccb_h.func_code = XPT_DEV_ADVINFO;
1098 cdai.flags = CDAI_FLAG_NONE;
1099 cdai.buftype = CDAI_TYPE_SCSI_DEVID;
1100 cdai.bufsiz = CAM_SCSI_DEVID_MAXLEN;
1101 cdai.buf = devid = malloc(cdai.bufsiz, M_SCSIENC, M_WAITOK|M_ZERO);
1102 cam_periph_lock(enc->periph);
1103 xpt_action((union ccb *)&cdai);
1104 if ((cdai.ccb_h.status & CAM_DEV_QFRZN) != 0)
1105 cam_release_devq(cdai.ccb_h.path, 0, 0, 0, FALSE);
1106 cam_periph_unlock(enc->periph);
1107 if (cdai.ccb_h.status != CAM_REQ_CMP)
1108 goto out;
1109
1110 idd = scsi_get_devid((struct scsi_vpd_device_id *)cdai.buf,
1111 cdai.provsiz, scsi_devid_is_naa_ieee_reg);
1112 if (idd == NULL)
1113 goto out;
1114
1115 if (sbuf_new(&sb, NULL, 128, SBUF_AUTOEXTEND) == NULL) {
1116 ret = ENOMEM;
1117 goto out;
1118 }
1119 /* Next, generate the physical path string */
1120 sbuf_printf(&sb, "id1,enc@n%jx/type@%x/slot@%x",
1121 scsi_8btou64(idd->identifier), iter->type_index,
1122 iter->type_element_index);
1123 /* Append the element descriptor if one exists */
1124 if (elmpriv->descr != NULL && elmpriv->descr_len > 0) {
1125 sbuf_cat(&sb, "/elmdesc@");
1126 for (i = 0, c = elmpriv->descr; i < elmpriv->descr_len;
1127 i++, c++) {
1128 if (!isprint(*c) || isspace(*c) || *c == '/')
1129 sbuf_putc(&sb, '_');
1130 else
1131 sbuf_putc(&sb, *c);
1132 }
1133 }
1134 sbuf_finish(&sb);
1135
1136 /*
1137 * Set this physical path on any CAM devices with a device ID
1138 * descriptor that matches one created from the SES additional
1139 * status data for this element.
1140 */
1141 args.physpath= &sb;
1142 args.num_set = 0;
1143 ses_paths_iter(enc, elm, ses_setphyspath_callback, &args);
1144 sbuf_delete(&sb);
1145
1146 ret = args.num_set == 0 ? ENOENT : 0;
1147
1148 out:
1149 if (devid != NULL)
1150 ENC_FREE(devid);
1151 return (ret);
1152 }
1153
1154 /**
1155 * \brief Helper to set the CDB fields appropriately.
1156 *
1157 * \param cdb Buffer containing the cdb.
1158 * \param pagenum SES diagnostic page to query for.
1159 * \param dir Direction of query.
1160 */
1161 static void
ses_page_cdb(char * cdb,int bufsiz,SesDiagPageCodes pagenum,int dir)1162 ses_page_cdb(char *cdb, int bufsiz, SesDiagPageCodes pagenum, int dir)
1163 {
1164
1165 /* Ref: SPC-4 r25 Section 6.20 Table 223 */
1166 if (dir == CAM_DIR_IN) {
1167 cdb[0] = RECEIVE_DIAGNOSTIC;
1168 cdb[1] = 1; /* Set page code valid bit */
1169 cdb[2] = pagenum;
1170 } else {
1171 cdb[0] = SEND_DIAGNOSTIC;
1172 cdb[1] = 0x10;
1173 cdb[2] = pagenum;
1174 }
1175 cdb[3] = bufsiz >> 8; /* high bits */
1176 cdb[4] = bufsiz & 0xff; /* low bits */
1177 cdb[5] = 0;
1178 }
1179
1180 /**
1181 * \brief Discover whether this instance supports timed completion of a
1182 * RECEIVE DIAGNOSTIC RESULTS command requesting the Enclosure Status
1183 * page, and store the result in the softc, updating if necessary.
1184 *
1185 * \param enc SES instance to query and update.
1186 * \param tc_en Value of timed completion to set (see \return).
1187 *
1188 * \return 1 if timed completion enabled, 0 otherwise.
1189 */
1190 static int
ses_set_timed_completion(enc_softc_t * enc,uint8_t tc_en)1191 ses_set_timed_completion(enc_softc_t *enc, uint8_t tc_en)
1192 {
1193 union ccb *ccb;
1194 struct cam_periph *periph;
1195 struct ses_mgmt_mode_page *mgmt;
1196 uint8_t *mode_buf;
1197 size_t mode_buf_len;
1198 ses_softc_t *ses;
1199
1200 periph = enc->periph;
1201 ses = enc->enc_private;
1202 ccb = cam_periph_getccb(periph, CAM_PRIORITY_NORMAL);
1203
1204 mode_buf_len = sizeof(struct ses_mgmt_mode_page);
1205 mode_buf = ENC_MALLOCZ(mode_buf_len);
1206 if (mode_buf == NULL)
1207 goto out;
1208
1209 scsi_mode_sense(&ccb->csio, /*retries*/4, NULL, MSG_SIMPLE_Q_TAG,
1210 /*dbd*/FALSE, SMS_PAGE_CTRL_CURRENT, SES_MGMT_MODE_PAGE_CODE,
1211 mode_buf, mode_buf_len, SSD_FULL_SIZE, /*timeout*/60 * 1000);
1212
1213 /*
1214 * Ignore illegal request errors, as they are quite common and we
1215 * will print something out in that case anyway.
1216 */
1217 cam_periph_runccb(ccb, enc_error, ENC_CFLAGS,
1218 ENC_FLAGS|SF_QUIET_IR, NULL);
1219 if (ccb->ccb_h.status != CAM_REQ_CMP) {
1220 ENC_VLOG(enc, "Timed Completion Unsupported\n");
1221 goto release;
1222 }
1223
1224 /* Skip the mode select if the desired value is already set */
1225 mgmt = (struct ses_mgmt_mode_page *)mode_buf;
1226 if ((mgmt->byte5 & SES_MGMT_TIMED_COMP_EN) == tc_en)
1227 goto done;
1228
1229 /* Value is not what we wanted, set it */
1230 if (tc_en)
1231 mgmt->byte5 |= SES_MGMT_TIMED_COMP_EN;
1232 else
1233 mgmt->byte5 &= ~SES_MGMT_TIMED_COMP_EN;
1234 /* SES2r20: a completion time of zero means as long as possible */
1235 bzero(&mgmt->max_comp_time, sizeof(mgmt->max_comp_time));
1236
1237 scsi_mode_select(&ccb->csio, 5, NULL, MSG_SIMPLE_Q_TAG,
1238 /*page_fmt*/FALSE, /*save_pages*/TRUE, mode_buf, mode_buf_len,
1239 SSD_FULL_SIZE, /*timeout*/60 * 1000);
1240
1241 cam_periph_runccb(ccb, enc_error, ENC_CFLAGS, ENC_FLAGS, NULL);
1242 if (ccb->ccb_h.status != CAM_REQ_CMP) {
1243 ENC_VLOG(enc, "Timed Completion Set Failed\n");
1244 goto release;
1245 }
1246
1247 done:
1248 if ((mgmt->byte5 & SES_MGMT_TIMED_COMP_EN) != 0) {
1249 ENC_LOG(enc, "Timed Completion Enabled\n");
1250 ses->ses_flags |= SES_FLAG_TIMEDCOMP;
1251 } else {
1252 ENC_LOG(enc, "Timed Completion Disabled\n");
1253 ses->ses_flags &= ~SES_FLAG_TIMEDCOMP;
1254 }
1255 release:
1256 ENC_FREE(mode_buf);
1257 xpt_release_ccb(ccb);
1258 out:
1259 return (ses->ses_flags & SES_FLAG_TIMEDCOMP);
1260 }
1261
1262 /**
1263 * \brief Process the list of supported pages and update flags.
1264 *
1265 * \param enc SES device to query.
1266 * \param buf Buffer containing the config page.
1267 * \param xfer_len Length of the config page in the buffer.
1268 *
1269 * \return 0 on success, errno otherwise.
1270 */
1271 static int
ses_process_pages(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1272 ses_process_pages(enc_softc_t *enc, struct enc_fsm_state *state,
1273 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1274 {
1275 ses_softc_t *ses;
1276 struct scsi_diag_page *page;
1277 int err, i, length;
1278
1279 CAM_DEBUG(enc->periph->path, CAM_DEBUG_SUBTRACE,
1280 ("entering %s(%p, %d)\n", __func__, bufp, xfer_len));
1281 ses = enc->enc_private;
1282 err = -1;
1283
1284 if (error != 0) {
1285 err = error;
1286 goto out;
1287 }
1288 if (xfer_len < sizeof(*page)) {
1289 ENC_VLOG(enc, "Unable to parse Diag Pages List Header\n");
1290 err = EIO;
1291 goto out;
1292 }
1293 page = (struct scsi_diag_page *)*bufp;
1294 length = scsi_2btoul(page->length);
1295 if (length + offsetof(struct scsi_diag_page, params) > xfer_len) {
1296 ENC_VLOG(enc, "Diag Pages List Too Long\n");
1297 goto out;
1298 }
1299 ENC_DLOG(enc, "%s: page length %d, xfer_len %d\n",
1300 __func__, length, xfer_len);
1301
1302 err = 0;
1303 for (i = 0; i < length; i++) {
1304 if (page->params[i] == SesElementDescriptor)
1305 ses->ses_flags |= SES_FLAG_DESC;
1306 else if (page->params[i] == SesAddlElementStatus)
1307 ses->ses_flags |= SES_FLAG_ADDLSTATUS;
1308 }
1309
1310 out:
1311 ENC_DLOG(enc, "%s: exiting with err %d\n", __func__, err);
1312 return (err);
1313 }
1314
1315 /**
1316 * \brief Process the config page and update associated structures.
1317 *
1318 * \param enc SES device to query.
1319 * \param buf Buffer containing the config page.
1320 * \param xfer_len Length of the config page in the buffer.
1321 *
1322 * \return 0 on success, errno otherwise.
1323 */
1324 static int
ses_process_config(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1325 ses_process_config(enc_softc_t *enc, struct enc_fsm_state *state,
1326 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1327 {
1328 struct ses_iterator iter;
1329 ses_softc_t *ses;
1330 enc_cache_t *enc_cache;
1331 ses_cache_t *ses_cache;
1332 uint8_t *buf;
1333 int length;
1334 int err;
1335 int nelm;
1336 int ntype;
1337 struct ses_cfg_page *cfg_page;
1338 struct ses_enc_desc *buf_subenc;
1339 const struct ses_enc_desc **subencs;
1340 const struct ses_enc_desc **cur_subenc;
1341 const struct ses_enc_desc **last_subenc;
1342 ses_type_t *ses_types;
1343 ses_type_t *sestype;
1344 const struct ses_elm_type_desc *cur_buf_type;
1345 const struct ses_elm_type_desc *last_buf_type;
1346 uint8_t *last_valid_byte;
1347 enc_element_t *element;
1348 const char *type_text;
1349
1350 CAM_DEBUG(enc->periph->path, CAM_DEBUG_SUBTRACE,
1351 ("entering %s(%p, %d)\n", __func__, bufp, xfer_len));
1352 ses = enc->enc_private;
1353 enc_cache = &enc->enc_daemon_cache;
1354 ses_cache = enc_cache->private;
1355 buf = *bufp;
1356 err = -1;
1357
1358 if (error != 0) {
1359 err = error;
1360 goto out;
1361 }
1362 if (xfer_len < sizeof(cfg_page->hdr)) {
1363 ENC_VLOG(enc, "Unable to parse SES Config Header\n");
1364 err = EIO;
1365 goto out;
1366 }
1367
1368 cfg_page = (struct ses_cfg_page *)buf;
1369 length = ses_page_length(&cfg_page->hdr);
1370 if (length > xfer_len) {
1371 ENC_VLOG(enc, "Enclosure Config Page Too Long\n");
1372 goto out;
1373 }
1374 last_valid_byte = &buf[length - 1];
1375
1376 ENC_DLOG(enc, "%s: total page length %d, xfer_len %d\n",
1377 __func__, length, xfer_len);
1378
1379 err = 0;
1380 if (ses_config_cache_valid(ses_cache, cfg_page->hdr.gen_code)) {
1381
1382 /* Our cache is still valid. Proceed to fetching status. */
1383 goto out;
1384 }
1385
1386 /* Cache is no longer valid. Free old data to make way for new. */
1387 ses_cache_free(enc, enc_cache);
1388 ENC_VLOG(enc, "Generation Code 0x%x has %d SubEnclosures\n",
1389 scsi_4btoul(cfg_page->hdr.gen_code),
1390 ses_cfg_page_get_num_subenc(cfg_page));
1391
1392 /* Take ownership of the buffer. */
1393 ses_cache->cfg_page = cfg_page;
1394 *bufp = NULL;
1395
1396 /*
1397 * Now waltz through all the subenclosures summing the number of
1398 * types available in each.
1399 */
1400 subencs = malloc(ses_cfg_page_get_num_subenc(cfg_page)
1401 * sizeof(*subencs), M_SCSIENC, M_WAITOK|M_ZERO);
1402 /*
1403 * Sub-enclosure data is const after construction (i.e. when
1404 * accessed via our cache object.
1405 *
1406 * The cast here is not required in C++ but C99 is not so
1407 * sophisticated (see C99 6.5.16.1(1)).
1408 */
1409 ses_cache->ses_nsubencs = ses_cfg_page_get_num_subenc(cfg_page);
1410 ses_cache->subencs = subencs;
1411
1412 buf_subenc = cfg_page->subencs;
1413 cur_subenc = subencs;
1414 last_subenc = &subencs[ses_cache->ses_nsubencs - 1];
1415 ntype = 0;
1416 while (cur_subenc <= last_subenc) {
1417
1418 if (!ses_enc_desc_is_complete(buf_subenc, last_valid_byte)) {
1419 ENC_VLOG(enc, "Enclosure %d Beyond End of "
1420 "Descriptors\n", cur_subenc - subencs);
1421 err = EIO;
1422 goto out;
1423 }
1424
1425 ENC_VLOG(enc, " SubEnclosure ID %d, %d Types With this ID, "
1426 "Descriptor Length %d, offset %d\n", buf_subenc->subenc_id,
1427 buf_subenc->num_types, buf_subenc->length,
1428 &buf_subenc->byte0 - buf);
1429 ENC_VLOG(enc, "WWN: %jx\n",
1430 (uintmax_t)scsi_8btou64(buf_subenc->logical_id));
1431
1432 ntype += buf_subenc->num_types;
1433 *cur_subenc = buf_subenc;
1434 cur_subenc++;
1435 buf_subenc = ses_enc_desc_next(buf_subenc);
1436 }
1437
1438 /* Process the type headers. */
1439 ses_types = malloc(ntype * sizeof(*ses_types),
1440 M_SCSIENC, M_WAITOK|M_ZERO);
1441 /*
1442 * Type data is const after construction (i.e. when accessed via
1443 * our cache object.
1444 */
1445 ses_cache->ses_ntypes = ntype;
1446 ses_cache->ses_types = ses_types;
1447
1448 cur_buf_type = (const struct ses_elm_type_desc *)
1449 (&(*last_subenc)->length + (*last_subenc)->length + 1);
1450 last_buf_type = cur_buf_type + ntype - 1;
1451 type_text = (const uint8_t *)(last_buf_type + 1);
1452 nelm = 0;
1453 sestype = ses_types;
1454 while (cur_buf_type <= last_buf_type) {
1455 if (&cur_buf_type->etype_txt_len > last_valid_byte) {
1456 ENC_VLOG(enc, "Runt Enclosure Type Header %d\n",
1457 sestype - ses_types);
1458 err = EIO;
1459 goto out;
1460 }
1461 sestype->hdr = cur_buf_type;
1462 sestype->text = type_text;
1463 type_text += cur_buf_type->etype_txt_len;
1464 ENC_VLOG(enc, " Type Desc[%d]: Type 0x%x, MaxElt %d, In Subenc "
1465 "%d, Text Length %d: %.*s\n", sestype - ses_types,
1466 sestype->hdr->etype_elm_type, sestype->hdr->etype_maxelt,
1467 sestype->hdr->etype_subenc, sestype->hdr->etype_txt_len,
1468 sestype->hdr->etype_txt_len, sestype->text);
1469
1470 nelm += sestype->hdr->etype_maxelt
1471 + /*overall status element*/1;
1472 sestype++;
1473 cur_buf_type++;
1474 }
1475
1476 /* Create the object map. */
1477 enc_cache->elm_map = malloc(nelm * sizeof(enc_element_t),
1478 M_SCSIENC, M_WAITOK|M_ZERO);
1479 enc_cache->nelms = nelm;
1480
1481 ses_iter_init(enc, enc_cache, &iter);
1482 while ((element = ses_iter_next(&iter)) != NULL) {
1483 const struct ses_elm_type_desc *thdr;
1484
1485 ENC_DLOG(enc, "%s: checking obj %d(%d,%d)\n", __func__,
1486 iter.global_element_index, iter.type_index, nelm,
1487 iter.type_element_index);
1488 thdr = ses_cache->ses_types[iter.type_index].hdr;
1489 element->elm_idx = iter.global_element_index;
1490 element->elm_type = thdr->etype_elm_type;
1491 element->subenclosure = thdr->etype_subenc;
1492 element->type_elm_idx = iter.type_element_index;
1493 element->elm_private = malloc(sizeof(ses_element_t),
1494 M_SCSIENC, M_WAITOK|M_ZERO);
1495 ENC_DLOG(enc, "%s: creating elmpriv %d(%d,%d) subenc %d "
1496 "type 0x%x\n", __func__, iter.global_element_index,
1497 iter.type_index, iter.type_element_index,
1498 thdr->etype_subenc, thdr->etype_elm_type);
1499 }
1500
1501 err = 0;
1502
1503 out:
1504 if (err)
1505 ses_cache_free(enc, enc_cache);
1506 else {
1507 ses_poll_status(enc);
1508 enc_update_request(enc, SES_PUBLISH_CACHE);
1509 }
1510 ENC_DLOG(enc, "%s: exiting with err %d\n", __func__, err);
1511 return (err);
1512 }
1513
1514 /**
1515 * \brief Update the status page and associated structures.
1516 *
1517 * \param enc SES softc to update for.
1518 * \param buf Buffer containing the status page.
1519 * \param bufsz Amount of data in the buffer.
1520 *
1521 * \return 0 on success, errno otherwise.
1522 */
1523 static int
ses_process_status(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1524 ses_process_status(enc_softc_t *enc, struct enc_fsm_state *state,
1525 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1526 {
1527 struct ses_iterator iter;
1528 enc_element_t *element;
1529 ses_softc_t *ses;
1530 enc_cache_t *enc_cache;
1531 ses_cache_t *ses_cache;
1532 uint8_t *buf;
1533 int err = -1;
1534 int length;
1535 struct ses_status_page *page;
1536 union ses_status_element *cur_stat;
1537 union ses_status_element *last_stat;
1538
1539 ses = enc->enc_private;
1540 enc_cache = &enc->enc_daemon_cache;
1541 ses_cache = enc_cache->private;
1542 buf = *bufp;
1543
1544 ENC_DLOG(enc, "%s: enter (%p, %p, %d)\n", __func__, enc, buf, xfer_len);
1545 page = (struct ses_status_page *)buf;
1546 length = ses_page_length(&page->hdr);
1547
1548 if (error != 0) {
1549 err = error;
1550 goto out;
1551 }
1552 /*
1553 * Make sure the length fits in the buffer.
1554 *
1555 * XXX all this means is that the page is larger than the space
1556 * we allocated. Since we use a statically sized buffer, this
1557 * could happen... Need to use dynamic discovery of the size.
1558 */
1559 if (length > xfer_len) {
1560 ENC_VLOG(enc, "Enclosure Status Page Too Long\n");
1561 goto out;
1562 }
1563
1564 /* Check for simple enclosure reporting short enclosure status. */
1565 if (length >= 4 && page->hdr.page_code == SesShortStatus) {
1566 ENC_DLOG(enc, "Got Short Enclosure Status page\n");
1567 ses->ses_flags &= ~(SES_FLAG_ADDLSTATUS | SES_FLAG_DESC);
1568 ses_cache_free(enc, enc_cache);
1569 enc_cache->enc_status = page->hdr.page_specific_flags;
1570 enc_update_request(enc, SES_PUBLISH_CACHE);
1571 err = 0;
1572 goto out;
1573 }
1574
1575 /* Make sure the length contains at least one header and status */
1576 if (length < (sizeof(*page) + sizeof(*page->elements))) {
1577 ENC_VLOG(enc, "Enclosure Status Page Too Short\n");
1578 goto out;
1579 }
1580
1581 if (!ses_config_cache_valid(ses_cache, page->hdr.gen_code)) {
1582 ENC_DLOG(enc, "%s: Generation count change detected\n",
1583 __func__);
1584 enc_update_request(enc, SES_UPDATE_GETCONFIG);
1585 goto out;
1586 }
1587
1588 ses_cache_free_status(enc, enc_cache);
1589 ses_cache->status_page = page;
1590 *bufp = NULL;
1591
1592 enc_cache->enc_status = page->hdr.page_specific_flags;
1593
1594 /*
1595 * Read in individual element status. The element order
1596 * matches the order reported in the config page (i.e. the
1597 * order of an unfiltered iteration of the config objects)..
1598 */
1599 ses_iter_init(enc, enc_cache, &iter);
1600 cur_stat = page->elements;
1601 last_stat = (union ses_status_element *)
1602 &buf[length - sizeof(*last_stat)];
1603 ENC_DLOG(enc, "%s: total page length %d, xfer_len %d\n",
1604 __func__, length, xfer_len);
1605 while (cur_stat <= last_stat
1606 && (element = ses_iter_next(&iter)) != NULL) {
1607
1608 ENC_DLOG(enc, "%s: obj %d(%d,%d) off=0x%tx status=%jx\n",
1609 __func__, iter.global_element_index, iter.type_index,
1610 iter.type_element_index, (uint8_t *)cur_stat - buf,
1611 scsi_4btoul(cur_stat->bytes));
1612
1613 memcpy(&element->encstat, cur_stat, sizeof(element->encstat));
1614 element->svalid = 1;
1615 cur_stat++;
1616 }
1617
1618 if (ses_iter_next(&iter) != NULL) {
1619 ENC_VLOG(enc, "Status page, length insufficient for "
1620 "expected number of objects\n");
1621 } else {
1622 if (cur_stat <= last_stat)
1623 ENC_VLOG(enc, "Status page, exhausted objects before "
1624 "exhausing page\n");
1625 enc_update_request(enc, SES_PUBLISH_CACHE);
1626 err = 0;
1627 }
1628 out:
1629 ENC_DLOG(enc, "%s: exiting with error %d\n", __func__, err);
1630 return (err);
1631 }
1632
1633 typedef enum {
1634 /**
1635 * The enclosure should not provide additional element
1636 * status for this element type in page 0x0A.
1637 *
1638 * \note This status is returned for any types not
1639 * listed SES3r02. Further types added in a
1640 * future specification will be incorrectly
1641 * classified.
1642 */
1643 TYPE_ADDLSTATUS_NONE,
1644
1645 /**
1646 * The element type provides additional element status
1647 * in page 0x0A.
1648 */
1649 TYPE_ADDLSTATUS_MANDATORY,
1650
1651 /**
1652 * The element type may provide additional element status
1653 * in page 0x0A, but i
1654 */
1655 TYPE_ADDLSTATUS_OPTIONAL
1656 } ses_addlstatus_avail_t;
1657
1658 /**
1659 * \brief Check to see whether a given type (as obtained via type headers) is
1660 * supported by the additional status command.
1661 *
1662 * \param enc SES softc to check.
1663 * \param typidx Type index to check for.
1664 *
1665 * \return An enumeration indicating if additional status is mandatory,
1666 * optional, or not required for this type.
1667 */
1668 static ses_addlstatus_avail_t
ses_typehasaddlstatus(enc_softc_t * enc,uint8_t typidx)1669 ses_typehasaddlstatus(enc_softc_t *enc, uint8_t typidx)
1670 {
1671 enc_cache_t *enc_cache;
1672 ses_cache_t *ses_cache;
1673
1674 enc_cache = &enc->enc_daemon_cache;
1675 ses_cache = enc_cache->private;
1676 switch(ses_cache->ses_types[typidx].hdr->etype_elm_type) {
1677 case ELMTYP_DEVICE:
1678 case ELMTYP_ARRAY_DEV:
1679 case ELMTYP_SAS_EXP:
1680 return (TYPE_ADDLSTATUS_MANDATORY);
1681 case ELMTYP_SCSI_INI:
1682 case ELMTYP_SCSI_TGT:
1683 case ELMTYP_ESCC:
1684 return (TYPE_ADDLSTATUS_OPTIONAL);
1685 default:
1686 /* No additional status information available. */
1687 break;
1688 }
1689 return (TYPE_ADDLSTATUS_NONE);
1690 }
1691
1692 static int ses_get_elm_addlstatus_fc(enc_softc_t *, enc_cache_t *,
1693 uint8_t *, int);
1694 static int ses_get_elm_addlstatus_sas(enc_softc_t *, enc_cache_t *, uint8_t *,
1695 int, int, int, int);
1696 static int ses_get_elm_addlstatus_ata(enc_softc_t *, enc_cache_t *, uint8_t *,
1697 int, int, int, int);
1698
1699 /**
1700 * \brief Parse the additional status element data for each object.
1701 *
1702 * \param enc The SES softc to update.
1703 * \param buf The buffer containing the additional status
1704 * element response.
1705 * \param xfer_len Size of the buffer.
1706 *
1707 * \return 0 on success, errno otherwise.
1708 */
1709 static int
ses_process_elm_addlstatus(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1710 ses_process_elm_addlstatus(enc_softc_t *enc, struct enc_fsm_state *state,
1711 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1712 {
1713 struct ses_iterator iter, titer;
1714 int eip;
1715 int err;
1716 int length;
1717 int offset;
1718 enc_cache_t *enc_cache;
1719 ses_cache_t *ses_cache;
1720 uint8_t *buf;
1721 ses_element_t *elmpriv;
1722 const struct ses_page_hdr *hdr;
1723 enc_element_t *element, *telement;
1724
1725 enc_cache = &enc->enc_daemon_cache;
1726 ses_cache = enc_cache->private;
1727 buf = *bufp;
1728 err = -1;
1729
1730 if (error != 0) {
1731 err = error;
1732 goto out;
1733 }
1734 ses_cache_free_elm_addlstatus(enc, enc_cache);
1735 ses_cache->elm_addlstatus_page =
1736 (struct ses_addl_elem_status_page *)buf;
1737 *bufp = NULL;
1738
1739 /*
1740 * The objects appear in the same order here as in Enclosure Status,
1741 * which itself is ordered by the Type Descriptors from the Config
1742 * page. However, it is necessary to skip elements that are not
1743 * supported by this page when counting them.
1744 */
1745 hdr = &ses_cache->elm_addlstatus_page->hdr;
1746 length = ses_page_length(hdr);
1747 ENC_DLOG(enc, "Additional Element Status Page Length 0x%x\n", length);
1748 /* Make sure the length includes at least one header. */
1749 if (length < sizeof(*hdr)+sizeof(struct ses_elm_addlstatus_base_hdr)) {
1750 ENC_VLOG(enc, "Runt Additional Element Status Page\n");
1751 goto out;
1752 }
1753 if (length > xfer_len) {
1754 ENC_VLOG(enc, "Additional Element Status Page Too Long\n");
1755 goto out;
1756 }
1757
1758 if (!ses_config_cache_valid(ses_cache, hdr->gen_code)) {
1759 ENC_DLOG(enc, "%s: Generation count change detected\n",
1760 __func__);
1761 enc_update_request(enc, SES_UPDATE_GETCONFIG);
1762 goto out;
1763 }
1764
1765 offset = sizeof(struct ses_page_hdr);
1766 ses_iter_init(enc, enc_cache, &iter);
1767 while (offset < length
1768 && (element = ses_iter_next(&iter)) != NULL) {
1769 struct ses_elm_addlstatus_base_hdr *elm_hdr;
1770 int proto_info_len;
1771 ses_addlstatus_avail_t status_type;
1772
1773 /*
1774 * Additional element status is only provided for
1775 * individual elements (i.e. overal status elements
1776 * are excluded) and those of the types specified
1777 * in the SES spec.
1778 */
1779 status_type = ses_typehasaddlstatus(enc, iter.type_index);
1780 if (iter.individual_element_index == ITERATOR_INDEX_INVALID
1781 || status_type == TYPE_ADDLSTATUS_NONE)
1782 continue;
1783
1784 elm_hdr = (struct ses_elm_addlstatus_base_hdr *)&buf[offset];
1785 eip = ses_elm_addlstatus_eip(elm_hdr);
1786 if (eip) {
1787 struct ses_elm_addlstatus_eip_hdr *eip_hdr;
1788 int expected_index, index;
1789 ses_elem_index_type_t index_type;
1790
1791 eip_hdr = (struct ses_elm_addlstatus_eip_hdr *)elm_hdr;
1792 if (eip_hdr->byte2 & SES_ADDL_EIP_EIIOE) {
1793 index_type = SES_ELEM_INDEX_GLOBAL;
1794 expected_index = iter.global_element_index;
1795 } else {
1796 index_type = SES_ELEM_INDEX_INDIVIDUAL;
1797 expected_index = iter.individual_element_index;
1798 }
1799 if (eip_hdr->element_index < expected_index) {
1800 ENC_VLOG(enc, "%s: provided %selement index "
1801 "%d is lower then expected %d\n",
1802 __func__, (eip_hdr->byte2 &
1803 SES_ADDL_EIP_EIIOE) ? "global " : "",
1804 eip_hdr->element_index, expected_index);
1805 goto badindex;
1806 }
1807 titer = iter;
1808 telement = ses_iter_seek_to(&titer,
1809 eip_hdr->element_index, index_type);
1810 if (telement == NULL) {
1811 ENC_VLOG(enc, "%s: provided %selement index "
1812 "%d does not exist\n", __func__,
1813 (eip_hdr->byte2 & SES_ADDL_EIP_EIIOE) ?
1814 "global " : "", eip_hdr->element_index);
1815 goto badindex;
1816 }
1817 if (ses_typehasaddlstatus(enc, titer.type_index) ==
1818 TYPE_ADDLSTATUS_NONE) {
1819 ENC_VLOG(enc, "%s: provided %selement index "
1820 "%d can't have additional status\n",
1821 __func__,
1822 (eip_hdr->byte2 & SES_ADDL_EIP_EIIOE) ?
1823 "global " : "", eip_hdr->element_index);
1824 badindex:
1825 /*
1826 * If we expected mandatory element, we may
1827 * guess it was just a wrong index and we may
1828 * use the status. If element was optional,
1829 * then we have no idea where status belongs.
1830 */
1831 if (status_type == TYPE_ADDLSTATUS_OPTIONAL)
1832 break;
1833 } else {
1834 iter = titer;
1835 element = telement;
1836 }
1837
1838 if (eip_hdr->byte2 & SES_ADDL_EIP_EIIOE)
1839 index = iter.global_element_index;
1840 else
1841 index = iter.individual_element_index;
1842 if (index > expected_index
1843 && status_type == TYPE_ADDLSTATUS_MANDATORY) {
1844 ENC_VLOG(enc, "%s: provided %s element"
1845 "index %d skips mandatory status "
1846 " element at index %d\n",
1847 __func__, (eip_hdr->byte2 &
1848 SES_ADDL_EIP_EIIOE) ? "global " : "",
1849 index, expected_index);
1850 }
1851 }
1852 elmpriv = element->elm_private;
1853 ENC_DLOG(enc, "%s: global element index=%d, type index=%d "
1854 "type element index=%d, offset=0x%x, "
1855 "byte0=0x%x, length=0x%x\n", __func__,
1856 iter.global_element_index, iter.type_index,
1857 iter.type_element_index, offset, elm_hdr->byte0,
1858 elm_hdr->length);
1859
1860 /* Skip to after the length field */
1861 offset += sizeof(struct ses_elm_addlstatus_base_hdr);
1862
1863 /* Make sure the descriptor is within bounds */
1864 if ((offset + elm_hdr->length) > length) {
1865 ENC_VLOG(enc, "Element %d Beyond End "
1866 "of Additional Element Status Descriptors\n",
1867 iter.global_element_index);
1868 break;
1869 }
1870
1871 /* Skip elements marked as invalid. */
1872 if (ses_elm_addlstatus_invalid(elm_hdr)) {
1873 offset += elm_hdr->length;
1874 continue;
1875 }
1876 elmpriv->addl.hdr = elm_hdr;
1877
1878 /* Advance to the protocol data, skipping eip bytes if needed */
1879 offset += (eip * SES_EIP_HDR_EXTRA_LEN);
1880 proto_info_len = elm_hdr->length
1881 - (eip * SES_EIP_HDR_EXTRA_LEN);
1882
1883 /* Errors in this block are ignored as they are non-fatal */
1884 switch(ses_elm_addlstatus_proto(elm_hdr)) {
1885 case SPSP_PROTO_FC:
1886 if (elm_hdr->length == 0)
1887 break;
1888 ses_get_elm_addlstatus_fc(enc, enc_cache,
1889 &buf[offset], proto_info_len);
1890 break;
1891 case SPSP_PROTO_SAS:
1892 if (elm_hdr->length <= 2)
1893 break;
1894 ses_get_elm_addlstatus_sas(enc, enc_cache,
1895 &buf[offset],
1896 proto_info_len,
1897 eip, iter.type_index,
1898 iter.global_element_index);
1899 break;
1900 case SPSP_PROTO_ATA:
1901 ses_get_elm_addlstatus_ata(enc, enc_cache,
1902 &buf[offset],
1903 proto_info_len,
1904 eip, iter.type_index,
1905 iter.global_element_index);
1906 break;
1907 default:
1908 ENC_VLOG(enc, "Element %d: Unknown Additional Element "
1909 "Protocol 0x%x\n", iter.global_element_index,
1910 ses_elm_addlstatus_proto(elm_hdr));
1911 break;
1912 }
1913
1914 offset += proto_info_len;
1915 }
1916 err = 0;
1917 out:
1918 if (err)
1919 ses_cache_free_elm_addlstatus(enc, enc_cache);
1920 enc_update_request(enc, SES_PUBLISH_PHYSPATHS);
1921 enc_update_request(enc, SES_PUBLISH_CACHE);
1922 return (err);
1923 }
1924
1925 static int
ses_process_control_request(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1926 ses_process_control_request(enc_softc_t *enc, struct enc_fsm_state *state,
1927 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1928 {
1929 ses_softc_t *ses;
1930
1931 ses = enc->enc_private;
1932 /*
1933 * Possible errors:
1934 * o Generation count wrong.
1935 * o Some SCSI status error.
1936 */
1937 ses_terminate_control_requests(&ses->ses_pending_requests, error);
1938 ses_poll_status(enc);
1939 return (0);
1940 }
1941
1942 static int
ses_publish_physpaths(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1943 ses_publish_physpaths(enc_softc_t *enc, struct enc_fsm_state *state,
1944 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1945 {
1946 struct ses_iterator iter;
1947 enc_cache_t *enc_cache;
1948 enc_element_t *element;
1949
1950 enc_cache = &enc->enc_daemon_cache;
1951
1952 ses_iter_init(enc, enc_cache, &iter);
1953 while ((element = ses_iter_next(&iter)) != NULL) {
1954 /*
1955 * ses_set_physpath() returns success if we changed
1956 * the physpath of any element. This allows us to
1957 * only announce devices once regardless of how
1958 * many times we process additional element status.
1959 */
1960 if (ses_set_physpath(enc, element, &iter) == 0)
1961 ses_print_addl_data(enc, element);
1962 }
1963
1964 return (0);
1965 }
1966
1967 static int
ses_publish_cache(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1968 ses_publish_cache(enc_softc_t *enc, struct enc_fsm_state *state,
1969 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1970 {
1971
1972 sx_xlock(&enc->enc_cache_lock);
1973 ses_cache_clone(enc, /*src*/&enc->enc_daemon_cache,
1974 /*dst*/&enc->enc_cache);
1975 sx_xunlock(&enc->enc_cache_lock);
1976
1977 return (0);
1978 }
1979
1980 /**
1981 * \brief Parse the descriptors for each object.
1982 *
1983 * \param enc The SES softc to update.
1984 * \param buf The buffer containing the descriptor list response.
1985 * \param xfer_len Size of the buffer.
1986 *
1987 * \return 0 on success, errno otherwise.
1988 */
1989 static int
ses_process_elm_descs(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t ** bufp,int error,int xfer_len)1990 ses_process_elm_descs(enc_softc_t *enc, struct enc_fsm_state *state,
1991 union ccb *ccb, uint8_t **bufp, int error, int xfer_len)
1992 {
1993 ses_softc_t *ses;
1994 struct ses_iterator iter;
1995 enc_element_t *element;
1996 int err;
1997 int offset;
1998 u_long length, plength;
1999 enc_cache_t *enc_cache;
2000 ses_cache_t *ses_cache;
2001 uint8_t *buf;
2002 ses_element_t *elmpriv;
2003 const struct ses_page_hdr *phdr;
2004 const struct ses_elm_desc_hdr *hdr;
2005
2006 ses = enc->enc_private;
2007 enc_cache = &enc->enc_daemon_cache;
2008 ses_cache = enc_cache->private;
2009 buf = *bufp;
2010 err = -1;
2011
2012 if (error != 0) {
2013 err = error;
2014 goto out;
2015 }
2016 ses_cache_free_elm_descs(enc, enc_cache);
2017 ses_cache->elm_descs_page = (struct ses_elem_descr_page *)buf;
2018 *bufp = NULL;
2019
2020 phdr = &ses_cache->elm_descs_page->hdr;
2021 plength = ses_page_length(phdr);
2022 if (xfer_len < sizeof(struct ses_page_hdr)) {
2023 ENC_VLOG(enc, "Runt Element Descriptor Page\n");
2024 goto out;
2025 }
2026 if (plength > xfer_len) {
2027 ENC_VLOG(enc, "Element Descriptor Page Too Long\n");
2028 goto out;
2029 }
2030
2031 if (!ses_config_cache_valid(ses_cache, phdr->gen_code)) {
2032 ENC_VLOG(enc, "%s: Generation count change detected\n",
2033 __func__);
2034 enc_update_request(enc, SES_UPDATE_GETCONFIG);
2035 goto out;
2036 }
2037
2038 offset = sizeof(struct ses_page_hdr);
2039
2040 ses_iter_init(enc, enc_cache, &iter);
2041 while (offset < plength
2042 && (element = ses_iter_next(&iter)) != NULL) {
2043
2044 if ((offset + sizeof(struct ses_elm_desc_hdr)) > plength) {
2045 ENC_VLOG(enc, "Element %d Descriptor Header Past "
2046 "End of Buffer\n", iter.global_element_index);
2047 goto out;
2048 }
2049 hdr = (struct ses_elm_desc_hdr *)&buf[offset];
2050 length = scsi_2btoul(hdr->length);
2051 ENC_DLOG(enc, "%s: obj %d(%d,%d) length=%d off=%d\n", __func__,
2052 iter.global_element_index, iter.type_index,
2053 iter.type_element_index, length, offset);
2054 if ((offset + sizeof(*hdr) + length) > plength) {
2055 ENC_VLOG(enc, "Element%d Descriptor Past "
2056 "End of Buffer\n", iter.global_element_index);
2057 goto out;
2058 }
2059 offset += sizeof(*hdr);
2060
2061 if (length > 0) {
2062 elmpriv = element->elm_private;
2063 elmpriv->descr_len = length;
2064 elmpriv->descr = &buf[offset];
2065 }
2066
2067 /* skip over the descriptor itself */
2068 offset += length;
2069 }
2070
2071 err = 0;
2072 out:
2073 if (err == 0) {
2074 if (ses->ses_flags & SES_FLAG_ADDLSTATUS)
2075 enc_update_request(enc, SES_UPDATE_GETELMADDLSTATUS);
2076 }
2077 enc_update_request(enc, SES_PUBLISH_CACHE);
2078 return (err);
2079 }
2080
2081 static int
ses_fill_rcv_diag_io(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t * buf)2082 ses_fill_rcv_diag_io(enc_softc_t *enc, struct enc_fsm_state *state,
2083 union ccb *ccb, uint8_t *buf)
2084 {
2085
2086 if (enc->enc_type == ENC_SEMB_SES) {
2087 semb_receive_diagnostic_results(&ccb->ataio, /*retries*/5,
2088 NULL, MSG_SIMPLE_Q_TAG, /*pcv*/1,
2089 state->page_code, buf, state->buf_size,
2090 state->timeout);
2091 } else {
2092 scsi_receive_diagnostic_results(&ccb->csio, /*retries*/5,
2093 NULL, MSG_SIMPLE_Q_TAG, /*pcv*/1,
2094 state->page_code, buf, state->buf_size,
2095 SSD_FULL_SIZE, state->timeout);
2096 }
2097 return (0);
2098 }
2099
2100 /**
2101 * \brief Encode the object status into the response buffer, which is
2102 * expected to contain the current enclosure status. This function
2103 * turns off all the 'select' bits for the objects except for the
2104 * object specified, then sends it back to the enclosure.
2105 *
2106 * \param enc SES enclosure the change is being applied to.
2107 * \param buf Buffer containing the current enclosure status response.
2108 * \param amt Length of the response in the buffer.
2109 * \param req The control request to be applied to buf.
2110 *
2111 * \return 0 on success, errno otherwise.
2112 */
2113 static int
ses_encode(enc_softc_t * enc,uint8_t * buf,int amt,ses_control_request_t * req)2114 ses_encode(enc_softc_t *enc, uint8_t *buf, int amt, ses_control_request_t *req)
2115 {
2116 struct ses_iterator iter;
2117 enc_element_t *element;
2118 int offset;
2119 struct ses_control_page_hdr *hdr;
2120
2121 ses_iter_init(enc, &enc->enc_cache, &iter);
2122 hdr = (struct ses_control_page_hdr *)buf;
2123 if (req->elm_idx == -1) {
2124 /* for enclosure status, at least 2 bytes are needed */
2125 if (amt < 2)
2126 return EIO;
2127 hdr->control_flags =
2128 req->elm_stat.comstatus & SES_SET_STATUS_MASK;
2129 ENC_DLOG(enc, "Set EncStat %x\n", hdr->control_flags);
2130 return (0);
2131 }
2132
2133 element = ses_iter_seek_to(&iter, req->elm_idx, SES_ELEM_INDEX_GLOBAL);
2134 if (element == NULL)
2135 return (ENXIO);
2136
2137 /*
2138 * Seek to the type set that corresponds to the requested object.
2139 * The +1 is for the overall status element for the type.
2140 */
2141 offset = sizeof(struct ses_control_page_hdr)
2142 + (iter.global_element_index * sizeof(struct ses_comstat));
2143
2144 /* Check for buffer overflow. */
2145 if (offset + sizeof(struct ses_comstat) > amt)
2146 return (EIO);
2147
2148 /* Set the status. */
2149 memcpy(&buf[offset], &req->elm_stat, sizeof(struct ses_comstat));
2150
2151 ENC_DLOG(enc, "Set Type 0x%x Obj 0x%x (offset %d) with %x %x %x %x\n",
2152 iter.type_index, iter.global_element_index, offset,
2153 req->elm_stat.comstatus, req->elm_stat.comstat[0],
2154 req->elm_stat.comstat[1], req->elm_stat.comstat[2]);
2155
2156 return (0);
2157 }
2158
2159 static int
ses_fill_control_request(enc_softc_t * enc,struct enc_fsm_state * state,union ccb * ccb,uint8_t * buf)2160 ses_fill_control_request(enc_softc_t *enc, struct enc_fsm_state *state,
2161 union ccb *ccb, uint8_t *buf)
2162 {
2163 ses_softc_t *ses;
2164 enc_cache_t *enc_cache;
2165 ses_cache_t *ses_cache;
2166 struct ses_control_page_hdr *hdr;
2167 ses_control_request_t *req;
2168 size_t plength;
2169 size_t offset;
2170
2171 ses = enc->enc_private;
2172 enc_cache = &enc->enc_daemon_cache;
2173 ses_cache = enc_cache->private;
2174 hdr = (struct ses_control_page_hdr *)buf;
2175
2176 if (ses_cache->status_page == NULL) {
2177 ses_terminate_control_requests(&ses->ses_requests, EIO);
2178 return (EIO);
2179 }
2180
2181 plength = ses_page_length(&ses_cache->status_page->hdr);
2182 memcpy(buf, ses_cache->status_page, plength);
2183
2184 /* Disable the select bits in all status entries. */
2185 offset = sizeof(struct ses_control_page_hdr);
2186 for (offset = sizeof(struct ses_control_page_hdr);
2187 offset < plength; offset += sizeof(struct ses_comstat)) {
2188 buf[offset] &= ~SESCTL_CSEL;
2189 }
2190
2191 /* And make sure the INVOP bit is clear. */
2192 hdr->control_flags &= ~SES_ENCSTAT_INVOP;
2193
2194 /* Apply incoming requests. */
2195 while ((req = TAILQ_FIRST(&ses->ses_requests)) != NULL) {
2196
2197 TAILQ_REMOVE(&ses->ses_requests, req, links);
2198 req->result = ses_encode(enc, buf, plength, req);
2199 if (req->result != 0) {
2200 wakeup(req);
2201 continue;
2202 }
2203 TAILQ_INSERT_TAIL(&ses->ses_pending_requests, req, links);
2204 }
2205
2206 if (TAILQ_EMPTY(&ses->ses_pending_requests) != 0)
2207 return (ENOENT);
2208
2209 /* Fill out the ccb */
2210 if (enc->enc_type == ENC_SEMB_SES) {
2211 semb_send_diagnostic(&ccb->ataio, /*retries*/5, NULL,
2212 MSG_SIMPLE_Q_TAG,
2213 buf, ses_page_length(&ses_cache->status_page->hdr),
2214 state->timeout);
2215 } else {
2216 scsi_send_diagnostic(&ccb->csio, /*retries*/5, NULL,
2217 MSG_SIMPLE_Q_TAG, /*unit_offline*/0,
2218 /*device_offline*/0, /*self_test*/0,
2219 /*page_format*/1, /*self_test_code*/0,
2220 buf, ses_page_length(&ses_cache->status_page->hdr),
2221 SSD_FULL_SIZE, state->timeout);
2222 }
2223 return (0);
2224 }
2225
2226 static int
ses_get_elm_addlstatus_fc(enc_softc_t * enc,enc_cache_t * enc_cache,uint8_t * buf,int bufsiz)2227 ses_get_elm_addlstatus_fc(enc_softc_t *enc, enc_cache_t *enc_cache,
2228 uint8_t *buf, int bufsiz)
2229 {
2230 ENC_VLOG(enc, "FC Device Support Stubbed in Additional Status Page\n");
2231 return (ENODEV);
2232 }
2233
2234 #define SES_PRINT_PORTS(p, type) do { \
2235 if (((p) & SES_SASOBJ_DEV_PHY_PROTOMASK) != 0) { \
2236 sbuf_printf(sbp, " %s (", type); \
2237 if ((p) & SES_SASOBJ_DEV_PHY_SMP) \
2238 sbuf_printf(sbp, " SMP"); \
2239 if ((p) & SES_SASOBJ_DEV_PHY_STP) \
2240 sbuf_printf(sbp, " STP"); \
2241 if ((p) & SES_SASOBJ_DEV_PHY_SSP) \
2242 sbuf_printf(sbp, " SSP"); \
2243 sbuf_printf(sbp, " )"); \
2244 } \
2245 } while(0)
2246
2247 /**
2248 * \brief Print the additional element status data for this object, for SAS
2249 * type 0 objects. See SES2 r20 Section 6.1.13.3.2.
2250 *
2251 * \param sesname SES device name associated with the object.
2252 * \param sbp Sbuf to print to.
2253 * \param obj The object to print the data for.
2254 */
2255 static void
ses_print_addl_data_sas_type0(char * sesname,struct sbuf * sbp,enc_element_t * obj)2256 ses_print_addl_data_sas_type0(char *sesname, struct sbuf *sbp,
2257 enc_element_t *obj)
2258 {
2259 int i;
2260 ses_element_t *elmpriv;
2261 struct ses_addl_status *addl;
2262 struct ses_elm_sas_device_phy *phy;
2263
2264 elmpriv = obj->elm_private;
2265 addl = &(elmpriv->addl);
2266 sbuf_printf(sbp, ", SAS Slot: %d%s phys",
2267 addl->proto_hdr.sas->base_hdr.num_phys,
2268 ses_elm_sas_type0_not_all_phys(addl->proto_hdr.sas) ? "+" : "");
2269 if (ses_elm_addlstatus_eip(addl->hdr))
2270 sbuf_printf(sbp, " at slot %d",
2271 addl->proto_hdr.sas->type0_eip.dev_slot_num);
2272 sbuf_printf(sbp, "\n");
2273 if (addl->proto_data.sasdev_phys == NULL)
2274 return;
2275 for (i = 0;i < addl->proto_hdr.sas->base_hdr.num_phys;i++) {
2276 phy = &addl->proto_data.sasdev_phys[i];
2277 sbuf_printf(sbp, "%s: phy %d:", sesname, i);
2278 if (ses_elm_sas_dev_phy_sata_dev(phy))
2279 /* Spec says all other fields are specific values */
2280 sbuf_printf(sbp, " SATA device\n");
2281 else {
2282 sbuf_printf(sbp, " SAS device type %d phy %d",
2283 ses_elm_sas_dev_phy_dev_type(phy), phy->phy_id);
2284 SES_PRINT_PORTS(phy->initiator_ports, "Initiator");
2285 SES_PRINT_PORTS(phy->target_ports, "Target");
2286 sbuf_printf(sbp, "\n");
2287 }
2288 sbuf_printf(sbp, "%s: phy %d: parent %jx addr %jx\n",
2289 sesname, i,
2290 (uintmax_t)scsi_8btou64(phy->parent_addr),
2291 (uintmax_t)scsi_8btou64(phy->phy_addr));
2292 }
2293 }
2294 #undef SES_PRINT_PORTS
2295
2296 /**
2297 * \brief Print the additional element status data for this object, for SAS
2298 * type 1 objects. See SES2 r20 Sections 6.1.13.3.3 and 6.1.13.3.4.
2299 *
2300 * \param sesname SES device name associated with the object.
2301 * \param sbp Sbuf to print to.
2302 * \param obj The object to print the data for.
2303 */
2304 static void
ses_print_addl_data_sas_type1(char * sesname,struct sbuf * sbp,enc_element_t * obj)2305 ses_print_addl_data_sas_type1(char *sesname, struct sbuf *sbp,
2306 enc_element_t *obj)
2307 {
2308 int i, num_phys;
2309 ses_element_t *elmpriv;
2310 struct ses_addl_status *addl;
2311 struct ses_elm_sas_expander_phy *exp_phy;
2312 struct ses_elm_sas_port_phy *port_phy;
2313
2314 elmpriv = obj->elm_private;
2315 addl = &(elmpriv->addl);
2316 sbuf_printf(sbp, ", SAS ");
2317 if (obj->elm_type == ELMTYP_SAS_EXP) {
2318 num_phys = addl->proto_hdr.sas->base_hdr.num_phys;
2319 sbuf_printf(sbp, "Expander: %d phys", num_phys);
2320 if (addl->proto_data.sasexp_phys == NULL)
2321 return;
2322 for (i = 0;i < num_phys;i++) {
2323 exp_phy = &addl->proto_data.sasexp_phys[i];
2324 sbuf_printf(sbp, "%s: phy %d: connector %d other %d\n",
2325 sesname, i, exp_phy->connector_index,
2326 exp_phy->other_index);
2327 }
2328 } else {
2329 num_phys = addl->proto_hdr.sas->base_hdr.num_phys;
2330 sbuf_printf(sbp, "Port: %d phys", num_phys);
2331 if (addl->proto_data.sasport_phys == NULL)
2332 return;
2333 for (i = 0;i < num_phys;i++) {
2334 port_phy = &addl->proto_data.sasport_phys[i];
2335 sbuf_printf(sbp,
2336 "%s: phy %d: id %d connector %d other %d\n",
2337 sesname, i, port_phy->phy_id,
2338 port_phy->connector_index, port_phy->other_index);
2339 sbuf_printf(sbp, "%s: phy %d: addr %jx\n", sesname, i,
2340 (uintmax_t)scsi_8btou64(port_phy->phy_addr));
2341 }
2342 }
2343 }
2344
2345 /**
2346 * \brief Print the additional element status data for this object, for
2347 * ATA objects.
2348 *
2349 * \param sbp Sbuf to print to.
2350 * \param obj The object to print the data for.
2351 */
2352 static void
ses_print_addl_data_ata(struct sbuf * sbp,enc_element_t * obj)2353 ses_print_addl_data_ata(struct sbuf *sbp, enc_element_t *obj)
2354 {
2355 ses_element_t *elmpriv = obj->elm_private;
2356 struct ses_addl_status *addl = &elmpriv->addl;
2357 struct ses_elm_ata_hdr *ata = addl->proto_hdr.ata;
2358
2359 sbuf_printf(sbp, ", SATA Slot: scbus%d target %d\n",
2360 scsi_4btoul(ata->bus), scsi_4btoul(ata->target));
2361 }
2362
2363 /**
2364 * \brief Print the additional element status data for this object.
2365 *
2366 * \param enc SES softc associated with the object.
2367 * \param obj The object to print the data for.
2368 */
2369 static void
ses_print_addl_data(enc_softc_t * enc,enc_element_t * obj)2370 ses_print_addl_data(enc_softc_t *enc, enc_element_t *obj)
2371 {
2372 ses_element_t *elmpriv;
2373 struct ses_addl_status *addl;
2374 struct sbuf sesname, name, out;
2375
2376 elmpriv = obj->elm_private;
2377 if (elmpriv == NULL)
2378 return;
2379
2380 addl = &(elmpriv->addl);
2381 if (addl->hdr == NULL)
2382 return;
2383
2384 sbuf_new(&sesname, NULL, 16, SBUF_AUTOEXTEND);
2385 sbuf_new(&name, NULL, 16, SBUF_AUTOEXTEND);
2386 sbuf_new(&out, NULL, 512, SBUF_AUTOEXTEND);
2387 ses_paths_iter(enc, obj, ses_elmdevname_callback, &name);
2388 if (sbuf_len(&name) == 0)
2389 sbuf_printf(&name, "(none)");
2390 sbuf_finish(&name);
2391 sbuf_printf(&sesname, "%s%d", enc->periph->periph_name,
2392 enc->periph->unit_number);
2393 sbuf_finish(&sesname);
2394 sbuf_printf(&out, "%s: %s in ", sbuf_data(&sesname), sbuf_data(&name));
2395 if (elmpriv->descr != NULL)
2396 sbuf_printf(&out, "'%s'", elmpriv->descr);
2397 else {
2398 if (obj->elm_type <= ELMTYP_LAST)
2399 sbuf_cat(&out, elm_type_names[obj->elm_type]);
2400 else
2401 sbuf_printf(&out, "<Type 0x%02x>", obj->elm_type);
2402 sbuf_printf(&out, " %d", obj->type_elm_idx);
2403 if (obj->subenclosure != 0)
2404 sbuf_printf(&out, " of subenc %d", obj->subenclosure);
2405 }
2406 switch(ses_elm_addlstatus_proto(addl->hdr)) {
2407 case SPSP_PROTO_FC:
2408 goto noaddl; /* stubbed for now */
2409 case SPSP_PROTO_SAS:
2410 if (addl->proto_hdr.sas == NULL)
2411 goto noaddl;
2412 switch(ses_elm_sas_descr_type(addl->proto_hdr.sas)) {
2413 case SES_SASOBJ_TYPE_SLOT:
2414 ses_print_addl_data_sas_type0(sbuf_data(&sesname),
2415 &out, obj);
2416 break;
2417 case SES_SASOBJ_TYPE_OTHER:
2418 ses_print_addl_data_sas_type1(sbuf_data(&sesname),
2419 &out, obj);
2420 break;
2421 default:
2422 goto noaddl;
2423 }
2424 break;
2425 case SPSP_PROTO_ATA:
2426 if (addl->proto_hdr.ata == NULL)
2427 goto noaddl;
2428 ses_print_addl_data_ata(&out, obj);
2429 break;
2430 default:
2431 noaddl:
2432 sbuf_cat(&out, "\n");
2433 break;
2434 }
2435 sbuf_finish(&out);
2436 printf("%s", sbuf_data(&out));
2437 sbuf_delete(&out);
2438 sbuf_delete(&name);
2439 sbuf_delete(&sesname);
2440 }
2441
2442 /**
2443 * \brief Update the softc with the additional element status data for this
2444 * object, for SAS type 0 objects.
2445 *
2446 * \param enc SES softc to be updated.
2447 * \param buf The additional element status response buffer.
2448 * \param bufsiz Size of the response buffer.
2449 * \param eip The EIP bit value.
2450 * \param nobj Number of objects attached to the SES softc.
2451 *
2452 * \return 0 on success, errno otherwise.
2453 */
2454 static int
ses_get_elm_addlstatus_sas_type0(enc_softc_t * enc,enc_cache_t * enc_cache,uint8_t * buf,int bufsiz,int eip,int nobj)2455 ses_get_elm_addlstatus_sas_type0(enc_softc_t *enc, enc_cache_t *enc_cache,
2456 uint8_t *buf, int bufsiz, int eip, int nobj)
2457 {
2458 int err, offset, physz;
2459 enc_element_t *obj;
2460 ses_element_t *elmpriv;
2461 struct ses_addl_status *addl;
2462
2463 err = offset = 0;
2464
2465 /* basic object setup */
2466 obj = &(enc_cache->elm_map[nobj]);
2467 elmpriv = obj->elm_private;
2468 addl = &(elmpriv->addl);
2469
2470 addl->proto_hdr.sas = (union ses_elm_sas_hdr *)&buf[offset];
2471
2472 /* Don't assume this object has any phys */
2473 bzero(&addl->proto_data, sizeof(addl->proto_data));
2474 if (addl->proto_hdr.sas->base_hdr.num_phys == 0)
2475 goto out;
2476
2477 /* Skip forward to the phy list */
2478 if (eip)
2479 offset += sizeof(struct ses_elm_sas_type0_eip_hdr);
2480 else
2481 offset += sizeof(struct ses_elm_sas_type0_base_hdr);
2482
2483 /* Make sure the phy list fits in the buffer */
2484 physz = addl->proto_hdr.sas->base_hdr.num_phys;
2485 physz *= sizeof(struct ses_elm_sas_device_phy);
2486 if (physz > (bufsiz - offset + 4)) {
2487 ENC_VLOG(enc, "Element %d Device Phy List Beyond End Of Buffer\n",
2488 nobj);
2489 err = EIO;
2490 goto out;
2491 }
2492
2493 /* Point to the phy list */
2494 addl->proto_data.sasdev_phys =
2495 (struct ses_elm_sas_device_phy *)&buf[offset];
2496
2497 out:
2498 return (err);
2499 }
2500
2501 /**
2502 * \brief Update the softc with the additional element status data for this
2503 * object, for SAS type 1 objects.
2504 *
2505 * \param enc SES softc to be updated.
2506 * \param buf The additional element status response buffer.
2507 * \param bufsiz Size of the response buffer.
2508 * \param eip The EIP bit value.
2509 * \param nobj Number of objects attached to the SES softc.
2510 *
2511 * \return 0 on success, errno otherwise.
2512 */
2513 static int
ses_get_elm_addlstatus_sas_type1(enc_softc_t * enc,enc_cache_t * enc_cache,uint8_t * buf,int bufsiz,int eip,int nobj)2514 ses_get_elm_addlstatus_sas_type1(enc_softc_t *enc, enc_cache_t *enc_cache,
2515 uint8_t *buf, int bufsiz, int eip, int nobj)
2516 {
2517 int err, offset, physz;
2518 enc_element_t *obj;
2519 ses_element_t *elmpriv;
2520 struct ses_addl_status *addl;
2521
2522 err = offset = 0;
2523
2524 /* basic object setup */
2525 obj = &(enc_cache->elm_map[nobj]);
2526 elmpriv = obj->elm_private;
2527 addl = &(elmpriv->addl);
2528
2529 addl->proto_hdr.sas = (union ses_elm_sas_hdr *)&buf[offset];
2530
2531 /* Don't assume this object has any phys */
2532 bzero(&addl->proto_data, sizeof(addl->proto_data));
2533 if (addl->proto_hdr.sas->base_hdr.num_phys == 0)
2534 goto out;
2535
2536 /* Process expanders differently from other type1 cases */
2537 if (obj->elm_type == ELMTYP_SAS_EXP) {
2538 offset += sizeof(struct ses_elm_sas_type1_expander_hdr);
2539 physz = addl->proto_hdr.sas->base_hdr.num_phys *
2540 sizeof(struct ses_elm_sas_expander_phy);
2541 if (physz > (bufsiz - offset)) {
2542 ENC_VLOG(enc, "Element %d: Expander Phy List Beyond "
2543 "End Of Buffer\n", nobj);
2544 err = EIO;
2545 goto out;
2546 }
2547 addl->proto_data.sasexp_phys =
2548 (struct ses_elm_sas_expander_phy *)&buf[offset];
2549 } else {
2550 offset += sizeof(struct ses_elm_sas_type1_nonexpander_hdr);
2551 physz = addl->proto_hdr.sas->base_hdr.num_phys *
2552 sizeof(struct ses_elm_sas_port_phy);
2553 if (physz > (bufsiz - offset + 4)) {
2554 ENC_VLOG(enc, "Element %d: Port Phy List Beyond End "
2555 "Of Buffer\n", nobj);
2556 err = EIO;
2557 goto out;
2558 }
2559 addl->proto_data.sasport_phys =
2560 (struct ses_elm_sas_port_phy *)&buf[offset];
2561 }
2562
2563 out:
2564 return (err);
2565 }
2566
2567 /**
2568 * \brief Update the softc with the additional element status data for this
2569 * object, for SAS objects.
2570 *
2571 * \param enc SES softc to be updated.
2572 * \param buf The additional element status response buffer.
2573 * \param bufsiz Size of the response buffer.
2574 * \param eip The EIP bit value.
2575 * \param tidx Type index for this object.
2576 * \param nobj Number of objects attached to the SES softc.
2577 *
2578 * \return 0 on success, errno otherwise.
2579 */
2580 static int
ses_get_elm_addlstatus_sas(enc_softc_t * enc,enc_cache_t * enc_cache,uint8_t * buf,int bufsiz,int eip,int tidx,int nobj)2581 ses_get_elm_addlstatus_sas(enc_softc_t *enc, enc_cache_t *enc_cache,
2582 uint8_t *buf, int bufsiz, int eip, int tidx,
2583 int nobj)
2584 {
2585 int dtype, err;
2586 ses_cache_t *ses_cache;
2587 union ses_elm_sas_hdr *hdr;
2588
2589 /* Need to be able to read the descriptor type! */
2590 if (bufsiz < sizeof(union ses_elm_sas_hdr)) {
2591 err = EIO;
2592 goto out;
2593 }
2594
2595 ses_cache = enc_cache->private;
2596
2597 hdr = (union ses_elm_sas_hdr *)buf;
2598 dtype = ses_elm_sas_descr_type(hdr);
2599 switch(dtype) {
2600 case SES_SASOBJ_TYPE_SLOT:
2601 switch(ses_cache->ses_types[tidx].hdr->etype_elm_type) {
2602 case ELMTYP_DEVICE:
2603 case ELMTYP_ARRAY_DEV:
2604 break;
2605 default:
2606 ENC_VLOG(enc, "Element %d has Additional Status type 0, "
2607 "invalid for SES element type 0x%x\n", nobj,
2608 ses_cache->ses_types[tidx].hdr->etype_elm_type);
2609 err = ENODEV;
2610 goto out;
2611 }
2612 err = ses_get_elm_addlstatus_sas_type0(enc, enc_cache,
2613 buf, bufsiz, eip,
2614 nobj);
2615 break;
2616 case SES_SASOBJ_TYPE_OTHER:
2617 switch(ses_cache->ses_types[tidx].hdr->etype_elm_type) {
2618 case ELMTYP_SAS_EXP:
2619 case ELMTYP_SCSI_INI:
2620 case ELMTYP_SCSI_TGT:
2621 case ELMTYP_ESCC:
2622 break;
2623 default:
2624 ENC_VLOG(enc, "Element %d has Additional Status type 1, "
2625 "invalid for SES element type 0x%x\n", nobj,
2626 ses_cache->ses_types[tidx].hdr->etype_elm_type);
2627 err = ENODEV;
2628 goto out;
2629 }
2630 err = ses_get_elm_addlstatus_sas_type1(enc, enc_cache, buf,
2631 bufsiz, eip, nobj);
2632 break;
2633 default:
2634 ENC_VLOG(enc, "Element %d of type 0x%x has Additional Status "
2635 "of unknown type 0x%x\n", nobj,
2636 ses_cache->ses_types[tidx].hdr->etype_elm_type, dtype);
2637 err = ENODEV;
2638 break;
2639 }
2640
2641 out:
2642 return (err);
2643 }
2644
2645 /**
2646 * \brief Update the softc with the additional element status data for this
2647 * object, for ATA objects.
2648 *
2649 * \param enc SES softc to be updated.
2650 * \param buf The additional element status response buffer.
2651 * \param bufsiz Size of the response buffer.
2652 * \param eip The EIP bit value.
2653 * \param tidx Type index for this object.
2654 * \param nobj Number of objects attached to the SES softc.
2655 *
2656 * \return 0 on success, errno otherwise.
2657 */
2658 static int
ses_get_elm_addlstatus_ata(enc_softc_t * enc,enc_cache_t * enc_cache,uint8_t * buf,int bufsiz,int eip,int tidx,int nobj)2659 ses_get_elm_addlstatus_ata(enc_softc_t *enc, enc_cache_t *enc_cache,
2660 uint8_t *buf, int bufsiz, int eip, int tidx,
2661 int nobj)
2662 {
2663 int err;
2664 ses_cache_t *ses_cache;
2665
2666 if (bufsiz < sizeof(struct ses_elm_ata_hdr)) {
2667 err = EIO;
2668 goto out;
2669 }
2670
2671 ses_cache = enc_cache->private;
2672 switch(ses_cache->ses_types[tidx].hdr->etype_elm_type) {
2673 case ELMTYP_DEVICE:
2674 case ELMTYP_ARRAY_DEV:
2675 break;
2676 default:
2677 ENC_VLOG(enc, "Element %d has Additional Status, "
2678 "invalid for SES element type 0x%x\n", nobj,
2679 ses_cache->ses_types[tidx].hdr->etype_elm_type);
2680 err = ENODEV;
2681 goto out;
2682 }
2683
2684 ((ses_element_t *)enc_cache->elm_map[nobj].elm_private)
2685 ->addl.proto_hdr.ata = (struct ses_elm_ata_hdr *)buf;
2686 err = 0;
2687
2688 out:
2689 return (err);
2690 }
2691
2692 static void
ses_softc_invalidate(enc_softc_t * enc)2693 ses_softc_invalidate(enc_softc_t *enc)
2694 {
2695 ses_softc_t *ses;
2696
2697 ses = enc->enc_private;
2698 ses_terminate_control_requests(&ses->ses_requests, ENXIO);
2699 }
2700
2701 static void
ses_softc_cleanup(enc_softc_t * enc)2702 ses_softc_cleanup(enc_softc_t *enc)
2703 {
2704
2705 ses_cache_free(enc, &enc->enc_cache);
2706 ses_cache_free(enc, &enc->enc_daemon_cache);
2707 ENC_FREE_AND_NULL(enc->enc_private);
2708 ENC_FREE_AND_NULL(enc->enc_cache.private);
2709 ENC_FREE_AND_NULL(enc->enc_daemon_cache.private);
2710 }
2711
2712 static int
ses_init_enc(enc_softc_t * enc)2713 ses_init_enc(enc_softc_t *enc)
2714 {
2715 return (0);
2716 }
2717
2718 static int
ses_get_enc_status(enc_softc_t * enc,int slpflag)2719 ses_get_enc_status(enc_softc_t *enc, int slpflag)
2720 {
2721 /* Automatically updated, caller checks enc_cache->encstat itself */
2722 return (0);
2723 }
2724
2725 static int
ses_set_enc_status(enc_softc_t * enc,uint8_t encstat,int slpflag)2726 ses_set_enc_status(enc_softc_t *enc, uint8_t encstat, int slpflag)
2727 {
2728 ses_control_request_t req;
2729 ses_softc_t *ses;
2730
2731 ses = enc->enc_private;
2732 req.elm_idx = SES_SETSTATUS_ENC_IDX;
2733 req.elm_stat.comstatus = encstat & 0xf;
2734
2735 TAILQ_INSERT_TAIL(&ses->ses_requests, &req, links);
2736 enc_update_request(enc, SES_PROCESS_CONTROL_REQS);
2737 cam_periph_sleep(enc->periph, &req, PUSER, "encstat", 0);
2738
2739 return (req.result);
2740 }
2741
2742 static int
ses_get_elm_status(enc_softc_t * enc,encioc_elm_status_t * elms,int slpflag)2743 ses_get_elm_status(enc_softc_t *enc, encioc_elm_status_t *elms, int slpflag)
2744 {
2745 unsigned int i = elms->elm_idx;
2746
2747 memcpy(elms->cstat, &enc->enc_cache.elm_map[i].encstat, 4);
2748 return (0);
2749 }
2750
2751 static int
ses_set_elm_status(enc_softc_t * enc,encioc_elm_status_t * elms,int slpflag)2752 ses_set_elm_status(enc_softc_t *enc, encioc_elm_status_t *elms, int slpflag)
2753 {
2754 ses_control_request_t req;
2755 ses_softc_t *ses;
2756
2757 /* If this is clear, we don't do diddly. */
2758 if ((elms->cstat[0] & SESCTL_CSEL) == 0)
2759 return (0);
2760
2761 ses = enc->enc_private;
2762 req.elm_idx = elms->elm_idx;
2763 memcpy(&req.elm_stat, elms->cstat, sizeof(req.elm_stat));
2764
2765 TAILQ_INSERT_TAIL(&ses->ses_requests, &req, links);
2766 enc_update_request(enc, SES_PROCESS_CONTROL_REQS);
2767 cam_periph_sleep(enc->periph, &req, PUSER, "encstat", 0);
2768
2769 return (req.result);
2770 }
2771
2772 static int
ses_get_elm_desc(enc_softc_t * enc,encioc_elm_desc_t * elmd)2773 ses_get_elm_desc(enc_softc_t *enc, encioc_elm_desc_t *elmd)
2774 {
2775 int i = (int)elmd->elm_idx;
2776 ses_element_t *elmpriv;
2777
2778 /* Assume caller has already checked obj_id validity */
2779 elmpriv = enc->enc_cache.elm_map[i].elm_private;
2780 /* object might not have a descriptor */
2781 if (elmpriv == NULL || elmpriv->descr == NULL) {
2782 elmd->elm_desc_len = 0;
2783 return (0);
2784 }
2785 if (elmd->elm_desc_len > elmpriv->descr_len)
2786 elmd->elm_desc_len = elmpriv->descr_len;
2787 copyout(elmpriv->descr, elmd->elm_desc_str, elmd->elm_desc_len);
2788 return (0);
2789 }
2790
2791 /**
2792 * \brief Respond to ENCIOC_GETELMDEVNAME, providing a device name for the
2793 * given object id if one is available.
2794 *
2795 * \param enc SES softc to examine.
2796 * \param objdn ioctl structure to read/write device name info.
2797 *
2798 * \return 0 on success, errno otherwise.
2799 */
2800 static int
ses_get_elm_devnames(enc_softc_t * enc,encioc_elm_devnames_t * elmdn)2801 ses_get_elm_devnames(enc_softc_t *enc, encioc_elm_devnames_t *elmdn)
2802 {
2803 struct sbuf sb;
2804 int len;
2805
2806 len = elmdn->elm_names_size;
2807 if (len < 0)
2808 return (EINVAL);
2809
2810 cam_periph_unlock(enc->periph);
2811 sbuf_new(&sb, NULL, len, SBUF_FIXEDLEN);
2812 ses_paths_iter(enc, &enc->enc_cache.elm_map[elmdn->elm_idx],
2813 ses_elmdevname_callback, &sb);
2814 sbuf_finish(&sb);
2815 elmdn->elm_names_len = sbuf_len(&sb);
2816 copyout(sbuf_data(&sb), elmdn->elm_devnames, elmdn->elm_names_len + 1);
2817 sbuf_delete(&sb);
2818 cam_periph_lock(enc->periph);
2819 return (elmdn->elm_names_len > 0 ? 0 : ENODEV);
2820 }
2821
2822 /**
2823 * \brief Send a string to the primary subenclosure using the String Out
2824 * SES diagnostic page.
2825 *
2826 * \param enc SES enclosure to run the command on.
2827 * \param sstr SES string structure to operate on
2828 * \param ioc Ioctl being performed
2829 *
2830 * \return 0 on success, errno otherwise.
2831 */
2832 static int
ses_handle_string(enc_softc_t * enc,encioc_string_t * sstr,int ioc)2833 ses_handle_string(enc_softc_t *enc, encioc_string_t *sstr, int ioc)
2834 {
2835 ses_softc_t *ses;
2836 enc_cache_t *enc_cache;
2837 ses_cache_t *ses_cache;
2838 const struct ses_enc_desc *enc_desc;
2839 int amt, payload, ret;
2840 char cdb[6];
2841 char str[32];
2842 char vendor[9];
2843 char product[17];
2844 char rev[5];
2845 uint8_t *buf;
2846 size_t size, rsize;
2847
2848 ses = enc->enc_private;
2849 enc_cache = &enc->enc_daemon_cache;
2850 ses_cache = enc_cache->private;
2851
2852 /* Implement SES2r20 6.1.6 */
2853 if (sstr->bufsiz > 0xffff)
2854 return (EINVAL); /* buffer size too large */
2855
2856 switch (ioc) {
2857 case ENCIOC_SETSTRING:
2858 payload = sstr->bufsiz + 4; /* header for SEND DIAGNOSTIC */
2859 amt = 0 - payload;
2860 buf = ENC_MALLOC(payload);
2861 if (buf == NULL)
2862 return (ENOMEM);
2863 ses_page_cdb(cdb, payload, 0, CAM_DIR_OUT);
2864 /* Construct the page request */
2865 buf[0] = SesStringOut;
2866 buf[1] = 0;
2867 buf[2] = sstr->bufsiz >> 8;
2868 buf[3] = sstr->bufsiz & 0xff;
2869 memcpy(&buf[4], sstr->buf, sstr->bufsiz);
2870 break;
2871 case ENCIOC_GETSTRING:
2872 payload = sstr->bufsiz;
2873 amt = payload;
2874 ses_page_cdb(cdb, payload, SesStringIn, CAM_DIR_IN);
2875 buf = sstr->buf;
2876 break;
2877 case ENCIOC_GETENCNAME:
2878 if (ses_cache->ses_nsubencs < 1)
2879 return (ENODEV);
2880 enc_desc = ses_cache->subencs[0];
2881 cam_strvis(vendor, enc_desc->vendor_id,
2882 sizeof(enc_desc->vendor_id), sizeof(vendor));
2883 cam_strvis(product, enc_desc->product_id,
2884 sizeof(enc_desc->product_id), sizeof(product));
2885 cam_strvis(rev, enc_desc->product_rev,
2886 sizeof(enc_desc->product_rev), sizeof(rev));
2887 rsize = snprintf(str, sizeof(str), "%s %s %s",
2888 vendor, product, rev) + 1;
2889 if (rsize > sizeof(str))
2890 rsize = sizeof(str);
2891 copyout(&rsize, &sstr->bufsiz, sizeof(rsize));
2892 size = rsize;
2893 if (size > sstr->bufsiz)
2894 size = sstr->bufsiz;
2895 copyout(str, sstr->buf, size);
2896 return (size == rsize ? 0 : ENOMEM);
2897 case ENCIOC_GETENCID:
2898 if (ses_cache->ses_nsubencs < 1)
2899 return (ENODEV);
2900 enc_desc = ses_cache->subencs[0];
2901 rsize = snprintf(str, sizeof(str), "%16jx",
2902 scsi_8btou64(enc_desc->logical_id)) + 1;
2903 if (rsize > sizeof(str))
2904 rsize = sizeof(str);
2905 copyout(&rsize, &sstr->bufsiz, sizeof(rsize));
2906 size = rsize;
2907 if (size > sstr->bufsiz)
2908 size = sstr->bufsiz;
2909 copyout(str, sstr->buf, size);
2910 return (size == rsize ? 0 : ENOMEM);
2911 default:
2912 return (EINVAL);
2913 }
2914 ret = enc_runcmd(enc, cdb, 6, buf, &amt);
2915 if (ioc == ENCIOC_SETSTRING)
2916 ENC_FREE(buf);
2917 return (ret);
2918 }
2919
2920 /**
2921 * \invariant Called with cam_periph mutex held.
2922 */
2923 static void
ses_poll_status(enc_softc_t * enc)2924 ses_poll_status(enc_softc_t *enc)
2925 {
2926 ses_softc_t *ses;
2927
2928 ses = enc->enc_private;
2929 enc_update_request(enc, SES_UPDATE_GETSTATUS);
2930 if (ses->ses_flags & SES_FLAG_DESC)
2931 enc_update_request(enc, SES_UPDATE_GETELMDESCS);
2932 if (ses->ses_flags & SES_FLAG_ADDLSTATUS)
2933 enc_update_request(enc, SES_UPDATE_GETELMADDLSTATUS);
2934 }
2935
2936 /**
2937 * \brief Notification received when CAM detects a new device in the
2938 * SCSI domain in which this SEP resides.
2939 *
2940 * \param enc SES enclosure instance.
2941 */
2942 static void
ses_device_found(enc_softc_t * enc)2943 ses_device_found(enc_softc_t *enc)
2944 {
2945 ses_poll_status(enc);
2946 enc_update_request(enc, SES_PUBLISH_PHYSPATHS);
2947 }
2948
2949 static struct enc_vec ses_enc_vec =
2950 {
2951 .softc_invalidate = ses_softc_invalidate,
2952 .softc_cleanup = ses_softc_cleanup,
2953 .init_enc = ses_init_enc,
2954 .get_enc_status = ses_get_enc_status,
2955 .set_enc_status = ses_set_enc_status,
2956 .get_elm_status = ses_get_elm_status,
2957 .set_elm_status = ses_set_elm_status,
2958 .get_elm_desc = ses_get_elm_desc,
2959 .get_elm_devnames = ses_get_elm_devnames,
2960 .handle_string = ses_handle_string,
2961 .device_found = ses_device_found,
2962 .poll_status = ses_poll_status
2963 };
2964
2965 /**
2966 * \brief Initialize a new SES instance.
2967 *
2968 * \param enc SES softc structure to set up the instance in.
2969 * \param doinit Do the initialization (see main driver).
2970 *
2971 * \return 0 on success, errno otherwise.
2972 */
2973 int
ses_softc_init(enc_softc_t * enc)2974 ses_softc_init(enc_softc_t *enc)
2975 {
2976 ses_softc_t *ses_softc;
2977
2978 CAM_DEBUG(enc->periph->path, CAM_DEBUG_SUBTRACE,
2979 ("entering enc_softc_init(%p)\n", enc));
2980
2981 enc->enc_vec = ses_enc_vec;
2982 enc->enc_fsm_states = enc_fsm_states;
2983
2984 if (enc->enc_private == NULL)
2985 enc->enc_private = ENC_MALLOCZ(sizeof(ses_softc_t));
2986 if (enc->enc_cache.private == NULL)
2987 enc->enc_cache.private = ENC_MALLOCZ(sizeof(ses_cache_t));
2988 if (enc->enc_daemon_cache.private == NULL)
2989 enc->enc_daemon_cache.private =
2990 ENC_MALLOCZ(sizeof(ses_cache_t));
2991
2992 if (enc->enc_private == NULL
2993 || enc->enc_cache.private == NULL
2994 || enc->enc_daemon_cache.private == NULL) {
2995 ENC_FREE_AND_NULL(enc->enc_private);
2996 ENC_FREE_AND_NULL(enc->enc_cache.private);
2997 ENC_FREE_AND_NULL(enc->enc_daemon_cache.private);
2998 return (ENOMEM);
2999 }
3000
3001 ses_softc = enc->enc_private;
3002 TAILQ_INIT(&ses_softc->ses_requests);
3003 TAILQ_INIT(&ses_softc->ses_pending_requests);
3004
3005 enc_update_request(enc, SES_UPDATE_PAGES);
3006
3007 // XXX: Move this to the FSM so it doesn't hang init
3008 if (0) (void) ses_set_timed_completion(enc, 1);
3009
3010 return (0);
3011 }
3012
3013