scsipi_base.c revision 1.41 1 /* $NetBSD: scsipi_base.c,v 1.41 2001/05/14 20:35:28 bouyer Exp $ */
2
3 /*-
4 * Copyright (c) 1998, 1999, 2000 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Charles M. Hannum; by Jason R. Thorpe of the Numerical Aerospace
9 * Simulation Facility, NASA Ames Research Center.
10 *
11 * Redistribution and use in source and binary forms, with or without
12 * modification, are permitted provided that the following conditions
13 * are met:
14 * 1. Redistributions of source code must retain the above copyright
15 * notice, this list of conditions and the following disclaimer.
16 * 2. Redistributions in binary form must reproduce the above copyright
17 * notice, this list of conditions and the following disclaimer in the
18 * documentation and/or other materials provided with the distribution.
19 * 3. All advertising materials mentioning features or use of this software
20 * must display the following acknowledgement:
21 * This product includes software developed by the NetBSD
22 * Foundation, Inc. and its contributors.
23 * 4. Neither the name of The NetBSD Foundation nor the names of its
24 * contributors may be used to endorse or promote products derived
25 * from this software without specific prior written permission.
26 *
27 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 * POSSIBILITY OF SUCH DAMAGE.
38 */
39
40 #include "opt_scsi.h"
41
42 #include <sys/types.h>
43 #include <sys/param.h>
44 #include <sys/systm.h>
45 #include <sys/kernel.h>
46 #include <sys/buf.h>
47 #include <sys/uio.h>
48 #include <sys/malloc.h>
49 #include <sys/pool.h>
50 #include <sys/errno.h>
51 #include <sys/device.h>
52 #include <sys/proc.h>
53 #include <sys/kthread.h>
54
55 #include <dev/scsipi/scsipi_all.h>
56 #include <dev/scsipi/scsipi_disk.h>
57 #include <dev/scsipi/scsipiconf.h>
58 #include <dev/scsipi/scsipi_base.h>
59
60 #include <dev/scsipi/scsi_all.h>
61 #include <dev/scsipi/scsi_message.h>
62
63 int scsipi_complete __P((struct scsipi_xfer *));
64 void scsipi_request_sense __P((struct scsipi_xfer *));
65 int scsipi_enqueue __P((struct scsipi_xfer *));
66 void scsipi_run_queue __P((struct scsipi_channel *chan));
67
68 void scsipi_completion_thread __P((void *));
69
70 void scsipi_get_tag __P((struct scsipi_xfer *));
71 void scsipi_put_tag __P((struct scsipi_xfer *));
72
73 int scsipi_get_resource __P((struct scsipi_channel *));
74 void scsipi_put_resource __P((struct scsipi_channel *));
75 __inline int scsipi_grow_resources __P((struct scsipi_channel *));
76
77 void scsipi_async_event_max_openings __P((struct scsipi_channel *,
78 struct scsipi_max_openings *));
79 void scsipi_async_event_xfer_mode __P((struct scsipi_channel *,
80 struct scsipi_xfer_mode *));
81 void scsipi_async_event_channel_reset __P((struct scsipi_channel *));
82
83 struct pool scsipi_xfer_pool;
84
85 /*
86 * scsipi_init:
87 *
88 * Called when a scsibus or atapibus is attached to the system
89 * to initialize shared data structures.
90 */
91 void
92 scsipi_init()
93 {
94 static int scsipi_init_done;
95
96 if (scsipi_init_done)
97 return;
98 scsipi_init_done = 1;
99
100 /* Initialize the scsipi_xfer pool. */
101 pool_init(&scsipi_xfer_pool, sizeof(struct scsipi_xfer), 0,
102 0, 0, "scxspl", 0, NULL, NULL, M_DEVBUF);
103 }
104
105 /*
106 * scsipi_channel_init:
107 *
108 * Initialize a scsipi_channel when it is attached.
109 */
110 int
111 scsipi_channel_init(chan)
112 struct scsipi_channel *chan;
113 {
114 size_t nbytes;
115 int i;
116
117 /* Initialize shared data. */
118 scsipi_init();
119
120 /* Initialize the queues. */
121 TAILQ_INIT(&chan->chan_queue);
122 TAILQ_INIT(&chan->chan_complete);
123
124 nbytes = chan->chan_ntargets * sizeof(struct scsipi_periph **);
125 chan->chan_periphs = malloc(nbytes, M_DEVBUF, M_NOWAIT);
126 if (chan->chan_periphs == NULL)
127 return (ENOMEM);
128
129
130 nbytes = chan->chan_nluns * sizeof(struct scsipi_periph *);
131 for (i = 0; i < chan->chan_ntargets; i++) {
132 chan->chan_periphs[i] = malloc(nbytes, M_DEVBUF, M_NOWAIT);
133 if (chan->chan_periphs[i] == NULL) {
134 while (--i >= 0) {
135 free(chan->chan_periphs[i], M_DEVBUF);
136 }
137 return (ENOMEM);
138 }
139 memset(chan->chan_periphs[i], 0, nbytes);
140 }
141
142 /*
143 * Create the asynchronous completion thread.
144 */
145 kthread_create(scsipi_create_completion_thread, chan);
146 return (0);
147 }
148
149 /*
150 * scsipi_channel_shutdown:
151 *
152 * Shutdown a scsipi_channel.
153 */
154 void
155 scsipi_channel_shutdown(chan)
156 struct scsipi_channel *chan;
157 {
158
159 /*
160 * Shut down the completion thread.
161 */
162 chan->chan_flags |= SCSIPI_CHAN_SHUTDOWN;
163 wakeup(&chan->chan_complete);
164
165 /*
166 * Now wait for the thread to exit.
167 */
168 while (chan->chan_thread != NULL)
169 (void) tsleep(&chan->chan_thread, PRIBIO, "scshut", 0);
170 }
171
172 /*
173 * scsipi_insert_periph:
174 *
175 * Insert a periph into the channel.
176 */
177 void
178 scsipi_insert_periph(chan, periph)
179 struct scsipi_channel *chan;
180 struct scsipi_periph *periph;
181 {
182 int s;
183
184 s = splbio();
185 chan->chan_periphs[periph->periph_target][periph->periph_lun] = periph;
186 splx(s);
187 }
188
189 /*
190 * scsipi_remove_periph:
191 *
192 * Remove a periph from the channel.
193 */
194 void
195 scsipi_remove_periph(chan, periph)
196 struct scsipi_channel *chan;
197 struct scsipi_periph *periph;
198 {
199 int s;
200
201 s = splbio();
202 chan->chan_periphs[periph->periph_target][periph->periph_lun] = NULL;
203 splx(s);
204 }
205
206 /*
207 * scsipi_lookup_periph:
208 *
209 * Lookup a periph on the specified channel.
210 */
211 struct scsipi_periph *
212 scsipi_lookup_periph(chan, target, lun)
213 struct scsipi_channel *chan;
214 int target, lun;
215 {
216 struct scsipi_periph *periph;
217 int s;
218
219 if (target >= chan->chan_ntargets ||
220 lun >= chan->chan_nluns)
221 return (NULL);
222
223 s = splbio();
224 periph = chan->chan_periphs[target][lun];
225 splx(s);
226
227 return (periph);
228 }
229
230 /*
231 * scsipi_get_resource:
232 *
233 * Allocate a single xfer `resource' from the channel.
234 *
235 * NOTE: Must be called at splbio().
236 */
237 int
238 scsipi_get_resource(chan)
239 struct scsipi_channel *chan;
240 {
241 struct scsipi_adapter *adapt = chan->chan_adapter;
242
243 if (chan->chan_flags & SCSIPI_CHAN_OPENINGS) {
244 if (chan->chan_openings > 0) {
245 chan->chan_openings--;
246 return (1);
247 }
248 return (0);
249 }
250
251 if (adapt->adapt_openings > 0) {
252 adapt->adapt_openings--;
253 return (1);
254 }
255 return (0);
256 }
257
258 /*
259 * scsipi_grow_resources:
260 *
261 * Attempt to grow resources for a channel. If this succeeds,
262 * we allocate one for our caller.
263 *
264 * NOTE: Must be called at splbio().
265 */
266 __inline int
267 scsipi_grow_resources(chan)
268 struct scsipi_channel *chan;
269 {
270
271 if (chan->chan_flags & SCSIPI_CHAN_CANGROW) {
272 scsipi_adapter_request(chan, ADAPTER_REQ_GROW_RESOURCES, NULL);
273 return (scsipi_get_resource(chan));
274 }
275
276 return (0);
277 }
278
279 /*
280 * scsipi_put_resource:
281 *
282 * Free a single xfer `resource' to the channel.
283 *
284 * NOTE: Must be called at splbio().
285 */
286 void
287 scsipi_put_resource(chan)
288 struct scsipi_channel *chan;
289 {
290 struct scsipi_adapter *adapt = chan->chan_adapter;
291
292 if (chan->chan_flags & SCSIPI_CHAN_OPENINGS)
293 chan->chan_openings++;
294 else
295 adapt->adapt_openings++;
296 }
297
298 /*
299 * scsipi_get_tag:
300 *
301 * Get a tag ID for the specified xfer.
302 *
303 * NOTE: Must be called at splbio().
304 */
305 void
306 scsipi_get_tag(xs)
307 struct scsipi_xfer *xs;
308 {
309 struct scsipi_periph *periph = xs->xs_periph;
310 int word, bit, tag;
311
312 for (word = 0; word < PERIPH_NTAGWORDS; word++) {
313 bit = ffs(periph->periph_freetags[word]);
314 if (bit != 0)
315 break;
316 }
317 #ifdef DIAGNOSTIC
318 if (word == PERIPH_NTAGWORDS) {
319 scsipi_printaddr(periph);
320 printf("no free tags\n");
321 panic("scsipi_get_tag");
322 }
323 #endif
324
325 bit -= 1;
326 periph->periph_freetags[word] &= ~(1 << bit);
327 tag = (word << 5) | bit;
328
329 /* XXX Should eventually disallow this completely. */
330 if (tag >= periph->periph_openings) {
331 scsipi_printaddr(periph);
332 printf("WARNING: tag %d greater than available openings %d\n",
333 tag, periph->periph_openings);
334 }
335
336 xs->xs_tag_id = tag;
337 }
338
339 /*
340 * scsipi_put_tag:
341 *
342 * Put the tag ID for the specified xfer back into the pool.
343 *
344 * NOTE: Must be called at splbio().
345 */
346 void
347 scsipi_put_tag(xs)
348 struct scsipi_xfer *xs;
349 {
350 struct scsipi_periph *periph = xs->xs_periph;
351 int word, bit;
352
353 word = xs->xs_tag_id >> 5;
354 bit = xs->xs_tag_id & 0x1f;
355
356 periph->periph_freetags[word] |= (1 << bit);
357 }
358
359 /*
360 * scsipi_get_xs:
361 *
362 * Allocate an xfer descriptor and associate it with the
363 * specified peripherial. If the peripherial has no more
364 * available command openings, we either block waiting for
365 * one to become available, or fail.
366 */
367 struct scsipi_xfer *
368 scsipi_get_xs(periph, flags)
369 struct scsipi_periph *periph;
370 int flags;
371 {
372 struct scsipi_xfer *xs;
373 int s;
374
375 SC_DEBUG(periph, SCSIPI_DB3, ("scsipi_get_xs\n"));
376
377 /*
378 * If we're cold, make sure we poll.
379 */
380 if (cold)
381 flags |= XS_CTL_NOSLEEP | XS_CTL_POLL;
382
383 #ifdef DIAGNOSTIC
384 /*
385 * URGENT commands can never be ASYNC.
386 */
387 if ((flags & (XS_CTL_URGENT|XS_CTL_ASYNC)) ==
388 (XS_CTL_URGENT|XS_CTL_ASYNC)) {
389 scsipi_printaddr(periph);
390 printf("URGENT and ASYNC\n");
391 panic("scsipi_get_xs");
392 }
393 #endif
394
395 s = splbio();
396 /*
397 * Wait for a command opening to become available. Rules:
398 *
399 * - All xfers must wait for an available opening.
400 * Exception: URGENT xfers can proceed when
401 * active == openings, because we use the opening
402 * of the command we're recovering for.
403 * - if the periph has sense pending, only URGENT & REQSENSE
404 * xfers may proceed.
405 *
406 * - If the periph is recovering, only URGENT xfers may
407 * proceed.
408 *
409 * - If the periph is currently executing a recovery
410 * command, URGENT commands must block, because only
411 * one recovery command can execute at a time.
412 */
413 for (;;) {
414 if (flags & XS_CTL_URGENT) {
415 if (periph->periph_active > periph->periph_openings)
416 goto wait_for_opening;
417 if (periph->periph_flags & PERIPH_SENSE) {
418 if ((flags & XS_CTL_REQSENSE) == 0)
419 goto wait_for_opening;
420 } else {
421 if ((periph->periph_flags &
422 PERIPH_RECOVERY_ACTIVE) != 0)
423 goto wait_for_opening;
424 periph->periph_flags |= PERIPH_RECOVERY_ACTIVE;
425 }
426 break;
427 }
428 if (periph->periph_active >= periph->periph_openings ||
429 (periph->periph_flags & PERIPH_RECOVERING) != 0)
430 goto wait_for_opening;
431 periph->periph_active++;
432 break;
433
434 wait_for_opening:
435 if (flags & XS_CTL_NOSLEEP) {
436 splx(s);
437 return (NULL);
438 }
439 SC_DEBUG(periph, SCSIPI_DB3, ("sleeping\n"));
440 periph->periph_flags |= PERIPH_WAITING;
441 (void) tsleep(periph, PRIBIO, "getxs", 0);
442 }
443 SC_DEBUG(periph, SCSIPI_DB3, ("calling pool_get\n"));
444 xs = pool_get(&scsipi_xfer_pool,
445 ((flags & XS_CTL_NOSLEEP) != 0 ? PR_NOWAIT : PR_WAITOK));
446 if (xs == NULL) {
447 if (flags & XS_CTL_URGENT) {
448 if ((flags & XS_CTL_REQSENSE) == 0)
449 periph->periph_flags &= ~PERIPH_RECOVERY_ACTIVE;
450 } else
451 periph->periph_active--;
452 scsipi_printaddr(periph);
453 printf("unable to allocate %sscsipi_xfer\n",
454 (flags & XS_CTL_URGENT) ? "URGENT " : "");
455 }
456 splx(s);
457
458 SC_DEBUG(periph, SCSIPI_DB3, ("returning\n"));
459
460 if (xs != NULL) {
461 callout_init(&xs->xs_callout);
462 memset(xs, 0, sizeof(*xs));
463 xs->xs_periph = periph;
464 xs->xs_control = flags;
465 xs->xs_status = 0;
466 s = splbio();
467 TAILQ_INSERT_TAIL(&periph->periph_xferq, xs, device_q);
468 splx(s);
469 }
470 return (xs);
471 }
472
473 /*
474 * scsipi_put_xs:
475 *
476 * Release an xfer descriptor, decreasing the outstanding command
477 * count for the peripherial. If there is a thread waiting for
478 * an opening, wake it up. If not, kick any queued I/O the
479 * peripherial may have.
480 *
481 * NOTE: Must be called at splbio().
482 */
483 void
484 scsipi_put_xs(xs)
485 struct scsipi_xfer *xs;
486 {
487 struct scsipi_periph *periph = xs->xs_periph;
488 int flags = xs->xs_control;
489
490 SC_DEBUG(periph, SCSIPI_DB3, ("scsipi_free_xs\n"));
491
492 TAILQ_REMOVE(&periph->periph_xferq, xs, device_q);
493 pool_put(&scsipi_xfer_pool, xs);
494
495 #ifdef DIAGNOSTIC
496 if ((periph->periph_flags & PERIPH_RECOVERY_ACTIVE) != 0 &&
497 periph->periph_active == 0) {
498 scsipi_printaddr(periph);
499 printf("recovery without a command to recovery for\n");
500 panic("scsipi_put_xs");
501 }
502 #endif
503
504 if (flags & XS_CTL_URGENT) {
505 if ((flags & XS_CTL_REQSENSE) == 0)
506 periph->periph_flags &= ~PERIPH_RECOVERY_ACTIVE;
507 } else
508 periph->periph_active--;
509 if (periph->periph_active == 0 &&
510 (periph->periph_flags & PERIPH_WAITDRAIN) != 0) {
511 periph->periph_flags &= ~PERIPH_WAITDRAIN;
512 wakeup(&periph->periph_active);
513 }
514
515 if (periph->periph_flags & PERIPH_WAITING) {
516 periph->periph_flags &= ~PERIPH_WAITING;
517 wakeup(periph);
518 } else {
519 if (periph->periph_switch->psw_start != NULL) {
520 SC_DEBUG(periph, SCSIPI_DB2,
521 ("calling private start()\n"));
522 (*periph->periph_switch->psw_start)(periph);
523 }
524 }
525 }
526
527 /*
528 * scsipi_channel_freeze:
529 *
530 * Freeze a channel's xfer queue.
531 */
532 void
533 scsipi_channel_freeze(chan, count)
534 struct scsipi_channel *chan;
535 int count;
536 {
537 int s;
538
539 s = splbio();
540 chan->chan_qfreeze += count;
541 splx(s);
542 }
543
544 /*
545 * scsipi_channel_thaw:
546 *
547 * Thaw a channel's xfer queue.
548 */
549 void
550 scsipi_channel_thaw(chan, count)
551 struct scsipi_channel *chan;
552 int count;
553 {
554 int s;
555
556 s = splbio();
557 chan->chan_qfreeze -= count;
558 /*
559 * Don't let the freeze count go negative.
560 *
561 * Presumably the adapter driver could keep track of this,
562 * but it might just be easier to do this here so as to allow
563 * multiple callers, including those outside the adapter driver.
564 */
565 if (chan->chan_qfreeze < 0) {
566 chan->chan_qfreeze = 0;
567 }
568 splx(s);
569 }
570
571 /*
572 * scsipi_channel_timed_thaw:
573 *
574 * Thaw a channel after some time has expired.
575 */
576 void
577 scsipi_channel_timed_thaw(arg)
578 void *arg;
579 {
580 struct scsipi_channel *chan = arg;
581
582 scsipi_channel_thaw(chan, 1);
583
584 /*
585 * Kick the channel's queue here. Note, we're running in
586 * interrupt context (softclock), so the adapter driver
587 * had better not sleep.
588 */
589 scsipi_run_queue(chan);
590 }
591
592 /*
593 * scsipi_periph_freeze:
594 *
595 * Freeze a device's xfer queue.
596 */
597 void
598 scsipi_periph_freeze(periph, count)
599 struct scsipi_periph *periph;
600 int count;
601 {
602 int s;
603
604 s = splbio();
605 periph->periph_qfreeze += count;
606 splx(s);
607 }
608
609 /*
610 * scsipi_periph_thaw:
611 *
612 * Thaw a device's xfer queue.
613 */
614 void
615 scsipi_periph_thaw(periph, count)
616 struct scsipi_periph *periph;
617 int count;
618 {
619 int s;
620
621 s = splbio();
622 periph->periph_qfreeze -= count;
623 if (periph->periph_qfreeze == 0 &&
624 (periph->periph_flags & PERIPH_WAITING) != 0)
625 wakeup(periph);
626 splx(s);
627 }
628
629 /*
630 * scsipi_periph_timed_thaw:
631 *
632 * Thaw a device after some time has expired.
633 */
634 void
635 scsipi_periph_timed_thaw(arg)
636 void *arg;
637 {
638 struct scsipi_periph *periph = arg;
639
640 callout_stop(&periph->periph_callout);
641 scsipi_periph_thaw(periph, 1);
642
643 /*
644 * Kick the channel's queue here. Note, we're running in
645 * interrupt context (softclock), so the adapter driver
646 * had better not sleep.
647 */
648 scsipi_run_queue(periph->periph_channel);
649 }
650
651 /*
652 * scsipi_wait_drain:
653 *
654 * Wait for a periph's pending xfers to drain.
655 */
656 void
657 scsipi_wait_drain(periph)
658 struct scsipi_periph *periph;
659 {
660 int s;
661
662 s = splbio();
663 while (periph->periph_active != 0) {
664 periph->periph_flags |= PERIPH_WAITDRAIN;
665 (void) tsleep(&periph->periph_active, PRIBIO, "sxdrn", 0);
666 }
667 splx(s);
668 }
669
670 /*
671 * scsipi_kill_pending:
672 *
673 * Kill off all pending xfers for a periph.
674 *
675 * NOTE: Must be called at splbio().
676 */
677 void
678 scsipi_kill_pending(periph)
679 struct scsipi_periph *periph;
680 {
681
682 (*periph->periph_channel->chan_bustype->bustype_kill_pending)(periph);
683 #ifdef DIAGNOSTIC
684 if (TAILQ_FIRST(&periph->periph_xferq) != NULL)
685 panic("scsipi_kill_pending");
686 #endif
687 scsipi_wait_drain(periph);
688 }
689
690 /*
691 * scsipi_interpret_sense:
692 *
693 * Look at the returned sense and act on the error, determining
694 * the unix error number to pass back. (0 = report no error)
695 *
696 * NOTE: If we return ERESTART, we are expected to haved
697 * thawed the device!
698 *
699 * THIS IS THE DEFAULT ERROR HANDLER FOR SCSI DEVICES.
700 */
701 int
702 scsipi_interpret_sense(xs)
703 struct scsipi_xfer *xs;
704 {
705 struct scsipi_sense_data *sense;
706 struct scsipi_periph *periph = xs->xs_periph;
707 u_int8_t key;
708 u_int32_t info;
709 int error;
710 #ifndef SCSIVERBOSE
711 static char *error_mes[] = {
712 "soft error (corrected)",
713 "not ready", "medium error",
714 "non-media hardware failure", "illegal request",
715 "unit attention", "readonly device",
716 "no data found", "vendor unique",
717 "copy aborted", "command aborted",
718 "search returned equal", "volume overflow",
719 "verify miscompare", "unknown error key"
720 };
721 #endif
722
723 sense = &xs->sense.scsi_sense;
724 #ifdef SCSIPI_DEBUG
725 if (periph->periph_flags & SCSIPI_DB1) {
726 int count;
727 scsipi_printaddr(periph);
728 printf(" sense debug information:\n");
729 printf("\tcode 0x%x valid 0x%x\n",
730 sense->error_code & SSD_ERRCODE,
731 sense->error_code & SSD_ERRCODE_VALID ? 1 : 0);
732 printf("\tseg 0x%x key 0x%x ili 0x%x eom 0x%x fmark 0x%x\n",
733 sense->segment,
734 sense->flags & SSD_KEY,
735 sense->flags & SSD_ILI ? 1 : 0,
736 sense->flags & SSD_EOM ? 1 : 0,
737 sense->flags & SSD_FILEMARK ? 1 : 0);
738 printf("\ninfo: 0x%x 0x%x 0x%x 0x%x followed by %d "
739 "extra bytes\n",
740 sense->info[0],
741 sense->info[1],
742 sense->info[2],
743 sense->info[3],
744 sense->extra_len);
745 printf("\textra: ");
746 for (count = 0; count < ADD_BYTES_LIM(sense); count++)
747 printf("0x%x ", sense->cmd_spec_info[count]);
748 printf("\n");
749 }
750 #endif
751
752 /*
753 * If the periph has it's own error handler, call it first.
754 * If it returns a legit error value, return that, otherwise
755 * it wants us to continue with normal error processing.
756 */
757 if (periph->periph_switch->psw_error != NULL) {
758 SC_DEBUG(periph, SCSIPI_DB2,
759 ("calling private err_handler()\n"));
760 error = (*periph->periph_switch->psw_error)(xs);
761 if (error != EJUSTRETURN)
762 return (error);
763 }
764 /* otherwise use the default */
765 switch (sense->error_code & SSD_ERRCODE) {
766 /*
767 * If it's code 70, use the extended stuff and
768 * interpret the key
769 */
770 case 0x71: /* delayed error */
771 scsipi_printaddr(periph);
772 key = sense->flags & SSD_KEY;
773 printf(" DEFERRED ERROR, key = 0x%x\n", key);
774 /* FALLTHROUGH */
775 case 0x70:
776 if ((sense->error_code & SSD_ERRCODE_VALID) != 0)
777 info = _4btol(sense->info);
778 else
779 info = 0;
780 key = sense->flags & SSD_KEY;
781
782 switch (key) {
783 case SKEY_NO_SENSE:
784 case SKEY_RECOVERED_ERROR:
785 if (xs->resid == xs->datalen && xs->datalen) {
786 /*
787 * Why is this here?
788 */
789 xs->resid = 0; /* not short read */
790 }
791 case SKEY_EQUAL:
792 error = 0;
793 break;
794 case SKEY_NOT_READY:
795 if ((periph->periph_flags & PERIPH_REMOVABLE) != 0)
796 periph->periph_flags &= ~PERIPH_MEDIA_LOADED;
797 if ((xs->xs_control & XS_CTL_IGNORE_NOT_READY) != 0)
798 return (0);
799 if (sense->add_sense_code == 0x3A &&
800 sense->add_sense_code_qual == 0x00)
801 error = ENODEV; /* Medium not present */
802 else
803 error = EIO;
804 if ((xs->xs_control & XS_CTL_SILENT) != 0)
805 return (error);
806 break;
807 case SKEY_ILLEGAL_REQUEST:
808 if ((xs->xs_control &
809 XS_CTL_IGNORE_ILLEGAL_REQUEST) != 0)
810 return (0);
811 /*
812 * Handle the case where a device reports
813 * Logical Unit Not Supported during discovery.
814 */
815 if ((xs->xs_control & XS_CTL_DISCOVERY) != 0 &&
816 sense->add_sense_code == 0x25 &&
817 sense->add_sense_code_qual == 0x00)
818 return (EINVAL);
819 if ((xs->xs_control & XS_CTL_SILENT) != 0)
820 return (EIO);
821 error = EINVAL;
822 break;
823 case SKEY_UNIT_ATTENTION:
824 if (sense->add_sense_code == 0x29 &&
825 sense->add_sense_code_qual == 0x00) {
826 /* device or bus reset */
827 return (ERESTART);
828 }
829 if ((periph->periph_flags & PERIPH_REMOVABLE) != 0)
830 periph->periph_flags &= ~PERIPH_MEDIA_LOADED;
831 if ((xs->xs_control &
832 XS_CTL_IGNORE_MEDIA_CHANGE) != 0 ||
833 /* XXX Should reupload any transient state. */
834 (periph->periph_flags &
835 PERIPH_REMOVABLE) == 0) {
836 return (ERESTART);
837 }
838 if ((xs->xs_control & XS_CTL_SILENT) != 0)
839 return (EIO);
840 error = EIO;
841 break;
842 case SKEY_WRITE_PROTECT:
843 error = EROFS;
844 break;
845 case SKEY_BLANK_CHECK:
846 error = 0;
847 break;
848 case SKEY_ABORTED_COMMAND:
849 error = ERESTART;
850 break;
851 case SKEY_VOLUME_OVERFLOW:
852 error = ENOSPC;
853 break;
854 default:
855 error = EIO;
856 break;
857 }
858
859 #ifdef SCSIVERBOSE
860 if (key && (xs->xs_control & XS_CTL_SILENT) == 0)
861 scsipi_print_sense(xs, 0);
862 #else
863 if (key) {
864 scsipi_printaddr(periph);
865 printf("%s", error_mes[key - 1]);
866 if ((sense->error_code & SSD_ERRCODE_VALID) != 0) {
867 switch (key) {
868 case SKEY_NOT_READY:
869 case SKEY_ILLEGAL_REQUEST:
870 case SKEY_UNIT_ATTENTION:
871 case SKEY_WRITE_PROTECT:
872 break;
873 case SKEY_BLANK_CHECK:
874 printf(", requested size: %d (decimal)",
875 info);
876 break;
877 case SKEY_ABORTED_COMMAND:
878 if (xs->xs_retries)
879 printf(", retrying");
880 printf(", cmd 0x%x, info 0x%x",
881 xs->cmd->opcode, info);
882 break;
883 default:
884 printf(", info = %d (decimal)", info);
885 }
886 }
887 if (sense->extra_len != 0) {
888 int n;
889 printf(", data =");
890 for (n = 0; n < sense->extra_len; n++)
891 printf(" %02x",
892 sense->cmd_spec_info[n]);
893 }
894 printf("\n");
895 }
896 #endif
897 return (error);
898
899 /*
900 * Not code 70, just report it
901 */
902 default:
903 #if defined(SCSIDEBUG) || defined(DEBUG)
904 {
905 static char *uc = "undecodable sense error";
906 int i;
907 u_int8_t *cptr = (u_int8_t *) sense;
908 scsipi_printaddr(periph);
909 if (xs->cmd == &xs->cmdstore) {
910 printf("%s for opcode 0x%x, data=",
911 uc, xs->cmdstore.opcode);
912 } else {
913 printf("%s, data=", uc);
914 }
915 for (i = 0; i < sizeof (sense); i++)
916 printf(" 0x%02x", *(cptr++) & 0xff);
917 printf("\n");
918 }
919 #else
920
921 scsipi_printaddr(periph);
922 printf("Sense Error Code 0x%x",
923 sense->error_code & SSD_ERRCODE);
924 if ((sense->error_code & SSD_ERRCODE_VALID) != 0) {
925 struct scsipi_sense_data_unextended *usense =
926 (struct scsipi_sense_data_unextended *)sense;
927 printf(" at block no. %d (decimal)",
928 _3btol(usense->block));
929 }
930 printf("\n");
931 #endif
932 return (EIO);
933 }
934 }
935
936 /*
937 * scsipi_size:
938 *
939 * Find out from the device what its capacity is.
940 */
941 u_long
942 scsipi_size(periph, flags)
943 struct scsipi_periph *periph;
944 int flags;
945 {
946 struct scsipi_read_cap_data rdcap;
947 struct scsipi_read_capacity scsipi_cmd;
948
949 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
950 scsipi_cmd.opcode = READ_CAPACITY;
951
952 /*
953 * If the command works, interpret the result as a 4 byte
954 * number of blocks
955 */
956 if (scsipi_command(periph, (struct scsipi_generic *)&scsipi_cmd,
957 sizeof(scsipi_cmd), (u_char *)&rdcap, sizeof(rdcap),
958 SCSIPIRETRIES, 20000, NULL,
959 flags | XS_CTL_DATA_IN | XS_CTL_DATA_ONSTACK) != 0) {
960 scsipi_printaddr(periph);
961 printf("could not get size\n");
962 return (0);
963 }
964
965 return (_4btol(rdcap.addr) + 1);
966 }
967
968 /*
969 * scsipi_test_unit_ready:
970 *
971 * Issue a `test unit ready' request.
972 */
973 int
974 scsipi_test_unit_ready(periph, flags)
975 struct scsipi_periph *periph;
976 int flags;
977 {
978 struct scsipi_test_unit_ready scsipi_cmd;
979
980 /* some ATAPI drives don't support TEST_UNIT_READY. Sigh */
981 if (periph->periph_quirks & PQUIRK_NOTUR)
982 return (0);
983
984 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
985 scsipi_cmd.opcode = TEST_UNIT_READY;
986
987 return (scsipi_command(periph,
988 (struct scsipi_generic *)&scsipi_cmd, sizeof(scsipi_cmd),
989 0, 0, SCSIPIRETRIES, 10000, NULL, flags));
990 }
991
992 /*
993 * scsipi_inquire:
994 *
995 * Ask the device about itself.
996 */
997 int
998 scsipi_inquire(periph, inqbuf, flags)
999 struct scsipi_periph *periph;
1000 struct scsipi_inquiry_data *inqbuf;
1001 int flags;
1002 {
1003 struct scsipi_inquiry scsipi_cmd;
1004
1005 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1006 scsipi_cmd.opcode = INQUIRY;
1007 scsipi_cmd.length = sizeof(struct scsipi_inquiry_data);
1008
1009 return (scsipi_command(periph,
1010 (struct scsipi_generic *) &scsipi_cmd, sizeof(scsipi_cmd),
1011 (u_char *) inqbuf, sizeof(struct scsipi_inquiry_data),
1012 SCSIPIRETRIES, 10000, NULL, XS_CTL_DATA_IN | flags));
1013 }
1014
1015 /*
1016 * scsipi_prevent:
1017 *
1018 * Prevent or allow the user to remove the media
1019 */
1020 int
1021 scsipi_prevent(periph, type, flags)
1022 struct scsipi_periph *periph;
1023 int type, flags;
1024 {
1025 struct scsipi_prevent scsipi_cmd;
1026
1027 if (periph->periph_quirks & PQUIRK_NODOORLOCK)
1028 return (0);
1029
1030 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1031 scsipi_cmd.opcode = PREVENT_ALLOW;
1032 scsipi_cmd.how = type;
1033
1034 return (scsipi_command(periph,
1035 (struct scsipi_generic *) &scsipi_cmd, sizeof(scsipi_cmd),
1036 0, 0, SCSIPIRETRIES, 5000, NULL, flags));
1037 }
1038
1039 /*
1040 * scsipi_start:
1041 *
1042 * Send a START UNIT.
1043 */
1044 int
1045 scsipi_start(periph, type, flags)
1046 struct scsipi_periph *periph;
1047 int type, flags;
1048 {
1049 struct scsipi_start_stop scsipi_cmd;
1050
1051 if (periph->periph_quirks & PQUIRK_NOSTARTUNIT)
1052 return 0;
1053
1054 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1055 scsipi_cmd.opcode = START_STOP;
1056 scsipi_cmd.byte2 = 0x00;
1057 scsipi_cmd.how = type;
1058
1059 return (scsipi_command(periph,
1060 (struct scsipi_generic *) &scsipi_cmd, sizeof(scsipi_cmd),
1061 0, 0, SCSIPIRETRIES, (type & SSS_START) ? 60000 : 10000,
1062 NULL, flags));
1063 }
1064
1065 /*
1066 * scsipi_mode_sense, scsipi_mode_sense_big:
1067 * get a sense page from a device
1068 */
1069
1070 int
1071 scsipi_mode_sense(periph, byte2, page, data, len, flags, retries, timeout)
1072 struct scsipi_periph *periph;
1073 int byte2, page, len, flags, retries, timeout;
1074 struct scsipi_mode_header *data;
1075 {
1076 struct scsipi_mode_sense scsipi_cmd;
1077 int error;
1078
1079 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1080 scsipi_cmd.opcode = MODE_SENSE;
1081 scsipi_cmd.byte2 = byte2;
1082 scsipi_cmd.page = page;
1083 if (scsipi_periph_bustype(periph) == SCSIPI_BUSTYPE_ATAPI)
1084 _lto2b(len, scsipi_cmd.u_len.atapi.length);
1085 else
1086 scsipi_cmd.u_len.scsi.length = len & 0xff;
1087 error = scsipi_command(periph, (struct scsipi_generic *)&scsipi_cmd,
1088 sizeof(scsipi_cmd), (void *)data, len, retries, timeout, NULL,
1089 flags | XS_CTL_DATA_IN);
1090 SC_DEBUG(periph, SCSIPI_DB2,
1091 ("scsipi_mode_sense: error=%d\n", error));
1092 return (error);
1093 }
1094
1095 int
1096 scsipi_mode_sense_big(periph, byte2, page, data, len, flags, retries, timeout)
1097 struct scsipi_periph *periph;
1098 int byte2, page, len, flags, retries, timeout;
1099 struct scsipi_mode_header_big *data;
1100 {
1101 struct scsipi_mode_sense_big scsipi_cmd;
1102 int error;
1103
1104 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1105 scsipi_cmd.opcode = MODE_SENSE_BIG;
1106 scsipi_cmd.byte2 = byte2;
1107 scsipi_cmd.page = page;
1108 _lto2b(len, scsipi_cmd.length);
1109 error = scsipi_command(periph, (struct scsipi_generic *)&scsipi_cmd,
1110 sizeof(scsipi_cmd), (void *)data, len, retries, timeout, NULL,
1111 flags | XS_CTL_DATA_IN);
1112 SC_DEBUG(periph, SCSIPI_DB2,
1113 ("scsipi_mode_sense_big: error=%d\n", error));
1114 return (error);
1115 }
1116
1117 int
1118 scsipi_mode_select(periph, byte2, data, len, flags, retries, timeout)
1119 struct scsipi_periph *periph;
1120 int byte2, len, flags, retries, timeout;
1121 struct scsipi_mode_header *data;
1122 {
1123 struct scsipi_mode_select scsipi_cmd;
1124 int error;
1125
1126 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1127 scsipi_cmd.opcode = MODE_SELECT;
1128 scsipi_cmd.byte2 = byte2;
1129 if (scsipi_periph_bustype(periph) == SCSIPI_BUSTYPE_ATAPI)
1130 _lto2b(len, scsipi_cmd.u_len.atapi.length);
1131 else
1132 scsipi_cmd.u_len.scsi.length = len & 0xff;
1133 error = scsipi_command(periph, (struct scsipi_generic *)&scsipi_cmd,
1134 sizeof(scsipi_cmd), (void *)data, len, retries, timeout, NULL,
1135 flags | XS_CTL_DATA_OUT);
1136 SC_DEBUG(periph, SCSIPI_DB2,
1137 ("scsipi_mode_select: error=%d\n", error));
1138 return (error);
1139 }
1140
1141 int
1142 scsipi_mode_select_big(periph, byte2, data, len, flags, retries, timeout)
1143 struct scsipi_periph *periph;
1144 int byte2, len, flags, retries, timeout;
1145 struct scsipi_mode_header_big *data;
1146 {
1147 struct scsipi_mode_select_big scsipi_cmd;
1148 int error;
1149
1150 bzero(&scsipi_cmd, sizeof(scsipi_cmd));
1151 scsipi_cmd.opcode = MODE_SELECT_BIG;
1152 scsipi_cmd.byte2 = byte2;
1153 _lto2b(len, scsipi_cmd.length);
1154 error = scsipi_command(periph, (struct scsipi_generic *)&scsipi_cmd,
1155 sizeof(scsipi_cmd), (void *)data, len, retries, timeout, NULL,
1156 flags | XS_CTL_DATA_OUT);
1157 SC_DEBUG(periph, SCSIPI_DB2,
1158 ("scsipi_mode_select: error=%d\n", error));
1159 return (error);
1160 }
1161
1162 /*
1163 * scsipi_done:
1164 *
1165 * This routine is called by an adapter's interrupt handler when
1166 * an xfer is completed.
1167 */
1168 void
1169 scsipi_done(xs)
1170 struct scsipi_xfer *xs;
1171 {
1172 struct scsipi_periph *periph = xs->xs_periph;
1173 struct scsipi_channel *chan = periph->periph_channel;
1174 int s, freezecnt;
1175
1176 SC_DEBUG(periph, SCSIPI_DB2, ("scsipi_done\n"));
1177 #ifdef SCSIPI_DEBUG
1178 if (periph->periph_dbflags & SCSIPI_DB1)
1179 show_scsipi_cmd(xs);
1180 #endif
1181
1182 s = splbio();
1183 /*
1184 * The resource this command was using is now free.
1185 */
1186 scsipi_put_resource(chan);
1187 xs->xs_periph->periph_sent--;
1188
1189 /*
1190 * If the command was tagged, free the tag.
1191 */
1192 if (XS_CTL_TAGTYPE(xs) != 0)
1193 scsipi_put_tag(xs);
1194 else
1195 periph->periph_flags &= ~PERIPH_UNTAG;
1196
1197 /* Mark the command as `done'. */
1198 xs->xs_status |= XS_STS_DONE;
1199
1200 #ifdef DIAGNOSTIC
1201 if ((xs->xs_control & (XS_CTL_ASYNC|XS_CTL_POLL)) ==
1202 (XS_CTL_ASYNC|XS_CTL_POLL))
1203 panic("scsipi_done: ASYNC and POLL");
1204 #endif
1205
1206 /*
1207 * If the xfer had an error of any sort, freeze the
1208 * periph's queue. Freeze it again if we were requested
1209 * to do so in the xfer.
1210 */
1211 freezecnt = 0;
1212 if (xs->error != XS_NOERROR)
1213 freezecnt++;
1214 if (xs->xs_control & XS_CTL_FREEZE_PERIPH)
1215 freezecnt++;
1216 if (freezecnt != 0)
1217 scsipi_periph_freeze(periph, freezecnt);
1218
1219 /*
1220 * record the xfer with a pending sense, in case a SCSI reset is
1221 * received before the thread is waked up.
1222 */
1223 if (xs->error == XS_BUSY && xs->status == SCSI_CHECK) {
1224 periph->periph_flags |= PERIPH_SENSE;
1225 periph->periph_xscheck = xs;
1226 }
1227
1228 /*
1229 * If this was an xfer that was not to complete asynchrnously,
1230 * let the requesting thread perform error checking/handling
1231 * in its context.
1232 */
1233 if ((xs->xs_control & XS_CTL_ASYNC) == 0) {
1234 splx(s);
1235 /*
1236 * If it's a polling job, just return, to unwind the
1237 * call graph. We don't need to restart the queue,
1238 * because pollings jobs are treated specially, and
1239 * are really only used during crash dumps anyway
1240 * (XXX or during boot-time autconfiguration of
1241 * ATAPI devices).
1242 */
1243 if (xs->xs_control & XS_CTL_POLL)
1244 return;
1245 wakeup(xs);
1246 goto out;
1247 }
1248
1249 /*
1250 * Catch the extremely common case of I/O completing
1251 * without error; no use in taking a context switch
1252 * if we can handle it in interrupt context.
1253 */
1254 if (xs->error == XS_NOERROR) {
1255 splx(s);
1256 (void) scsipi_complete(xs);
1257 goto out;
1258 }
1259
1260 /*
1261 * There is an error on this xfer. Put it on the channel's
1262 * completion queue, and wake up the completion thread.
1263 */
1264 TAILQ_INSERT_TAIL(&chan->chan_complete, xs, channel_q);
1265 splx(s);
1266 wakeup(&chan->chan_complete);
1267
1268 out:
1269 /*
1270 * If there are more xfers on the channel's queue, attempt to
1271 * run them.
1272 */
1273 scsipi_run_queue(chan);
1274 }
1275
1276 /*
1277 * scsipi_complete:
1278 *
1279 * Completion of a scsipi_xfer. This is the guts of scsipi_done().
1280 *
1281 * NOTE: This routine MUST be called with valid thread context
1282 * except for the case where the following two conditions are
1283 * true:
1284 *
1285 * xs->error == XS_NOERROR
1286 * XS_CTL_ASYNC is set in xs->xs_control
1287 *
1288 * The semantics of this routine can be tricky, so here is an
1289 * explanation:
1290 *
1291 * 0 Xfer completed successfully.
1292 *
1293 * ERESTART Xfer had an error, but was restarted.
1294 *
1295 * anything else Xfer had an error, return value is Unix
1296 * errno.
1297 *
1298 * If the return value is anything but ERESTART:
1299 *
1300 * - If XS_CTL_ASYNC is set, `xs' has been freed back to
1301 * the pool.
1302 * - If there is a buf associated with the xfer,
1303 * it has been biodone()'d.
1304 */
1305 int
1306 scsipi_complete(xs)
1307 struct scsipi_xfer *xs;
1308 {
1309 struct scsipi_periph *periph = xs->xs_periph;
1310 struct scsipi_channel *chan = periph->periph_channel;
1311 struct buf *bp;
1312 int error, s;
1313
1314 #ifdef DIAGNOSTIC
1315 if ((xs->xs_control & XS_CTL_ASYNC) != 0 && xs->bp == NULL)
1316 panic("scsipi_complete: XS_CTL_ASYNC but no buf");
1317 #endif
1318 /*
1319 * If command terminated with a CHECK CONDITION, we need to issue a
1320 * REQUEST_SENSE command. Once the REQUEST_SENSE has been processed
1321 * we'll have the real status.
1322 * Must be processed at splbio() to avoid missing a SCSI bus reset
1323 * for this command.
1324 */
1325 s = splbio();
1326 if (xs->error == XS_BUSY && xs->status == SCSI_CHECK) {
1327 /* request sense for a request sense ? */
1328 if (xs->xs_control & XS_CTL_REQSENSE) {
1329 scsipi_printaddr(periph);
1330 /* XXX maybe we should reset the device ? */
1331 /* we've been frozen because xs->error != XS_NOERROR */
1332 scsipi_periph_thaw(periph, 1);
1333 splx(s);
1334 return EINVAL;
1335 }
1336 scsipi_request_sense(xs);
1337 }
1338 splx(s);
1339 /*
1340 * If it's a user level request, bypass all usual completion
1341 * processing, let the user work it out..
1342 */
1343 if ((xs->xs_control & XS_CTL_USERCMD) != 0) {
1344 SC_DEBUG(periph, SCSIPI_DB3, ("calling user done()\n"));
1345 if (xs->error != XS_NOERROR)
1346 scsipi_periph_thaw(periph, 1);
1347 scsipi_user_done(xs);
1348 SC_DEBUG(periph, SCSIPI_DB3, ("returned from user done()\n "));
1349 return 0;
1350 }
1351
1352
1353 switch (xs->error) {
1354 case XS_NOERROR:
1355 error = 0;
1356 break;
1357
1358 case XS_SENSE:
1359 case XS_SHORTSENSE:
1360 error = (*chan->chan_bustype->bustype_interpret_sense)(xs);
1361 break;
1362
1363 case XS_RESOURCE_SHORTAGE:
1364 /*
1365 * XXX Should freeze channel's queue.
1366 */
1367 scsipi_printaddr(periph);
1368 printf("adapter resource shortage\n");
1369 /* FALLTHROUGH */
1370
1371 case XS_BUSY:
1372 if (xs->error == XS_BUSY && xs->status == SCSI_QUEUE_FULL) {
1373 struct scsipi_max_openings mo;
1374
1375 /*
1376 * We set the openings to active - 1, assuming that
1377 * the command that got us here is the first one that
1378 * can't fit into the device's queue. If that's not
1379 * the case, I guess we'll find out soon enough.
1380 */
1381 mo.mo_target = periph->periph_target;
1382 mo.mo_lun = periph->periph_lun;
1383 mo.mo_openings = periph->periph_active - 1;
1384 #ifdef DIAGNOSTIC
1385 if (mo.mo_openings < 0) {
1386 scsipi_printaddr(periph);
1387 printf("QUEUE FULL resulted in < 0 openings\n");
1388 panic("scsipi_done");
1389 }
1390 #endif
1391 if (mo.mo_openings == 0) {
1392 scsipi_printaddr(periph);
1393 printf("QUEUE FULL resulted in 0 openings\n");
1394 mo.mo_openings = 1;
1395 }
1396 scsipi_async_event(chan, ASYNC_EVENT_MAX_OPENINGS, &mo);
1397 error = ERESTART;
1398 } else if (xs->xs_retries != 0) {
1399 xs->xs_retries--;
1400 /*
1401 * Wait one second, and try again.
1402 */
1403 if (xs->xs_control & XS_CTL_POLL)
1404 delay(1000000);
1405 else {
1406 scsipi_periph_freeze(periph, 1);
1407 callout_reset(&periph->periph_callout,
1408 hz, scsipi_periph_timed_thaw, periph);
1409 }
1410 error = ERESTART;
1411 } else
1412 error = EBUSY;
1413 break;
1414
1415 case XS_REQUEUE:
1416 error = ERESTART;
1417 break;
1418
1419 case XS_TIMEOUT:
1420 if (xs->xs_retries != 0) {
1421 xs->xs_retries--;
1422 error = ERESTART;
1423 } else
1424 error = EIO;
1425 break;
1426
1427 case XS_SELTIMEOUT:
1428 /* XXX Disable device? */
1429 error = EIO;
1430 break;
1431
1432 case XS_RESET:
1433 if (xs->xs_control & XS_CTL_REQSENSE) {
1434 /*
1435 * request sense interrupted by reset: signal it
1436 * with EINTR return code.
1437 */
1438 error = EINTR;
1439 } else {
1440 if (xs->xs_retries != 0) {
1441 xs->xs_retries--;
1442 error = ERESTART;
1443 } else
1444 error = EIO;
1445 }
1446 break;
1447
1448 default:
1449 scsipi_printaddr(periph);
1450 printf("invalid return code from adapter: %d\n", xs->error);
1451 error = EIO;
1452 break;
1453 }
1454
1455 s = splbio();
1456 if (error == ERESTART) {
1457 /*
1458 * If we get here, the periph has been thawed and frozen
1459 * again if we had to issue recovery commands. Alternatively,
1460 * it may have been frozen again and in a timed thaw. In
1461 * any case, we thaw the periph once we re-enqueue the
1462 * command. Once the periph is fully thawed, it will begin
1463 * operation again.
1464 */
1465 xs->error = XS_NOERROR;
1466 xs->status = SCSI_OK;
1467 xs->xs_status &= ~XS_STS_DONE;
1468 xs->xs_requeuecnt++;
1469 error = scsipi_enqueue(xs);
1470 if (error == 0) {
1471 scsipi_periph_thaw(periph, 1);
1472 splx(s);
1473 return (ERESTART);
1474 }
1475 }
1476
1477 /*
1478 * scsipi_done() freezes the queue if not XS_NOERROR.
1479 * Thaw it here.
1480 */
1481 if (xs->error != XS_NOERROR)
1482 scsipi_periph_thaw(periph, 1);
1483
1484
1485 if (periph->periph_switch->psw_done)
1486 periph->periph_switch->psw_done(xs);
1487 if ((bp = xs->bp) != NULL) {
1488 if (error) {
1489 bp->b_error = error;
1490 bp->b_flags |= B_ERROR;
1491 bp->b_resid = bp->b_bcount;
1492 } else {
1493 bp->b_error = 0;
1494 bp->b_resid = xs->resid;
1495 }
1496 biodone(bp);
1497 }
1498
1499 if (xs->xs_control & XS_CTL_ASYNC)
1500 scsipi_put_xs(xs);
1501 splx(s);
1502
1503 return (error);
1504 }
1505
1506 /*
1507 * Issue a request sense for the given scsipi_xfer. Called when the xfer
1508 * returns with a CHECK_CONDITION status. Must be called in valid thread
1509 * context and at splbio().
1510 */
1511
1512 void
1513 scsipi_request_sense(xs)
1514 struct scsipi_xfer *xs;
1515 {
1516 struct scsipi_periph *periph = xs->xs_periph;
1517 int flags, error;
1518 struct scsipi_sense cmd;
1519
1520 periph->periph_flags |= PERIPH_SENSE;
1521
1522 /* if command was polling, request sense will too */
1523 flags = xs->xs_control & XS_CTL_POLL;
1524 /* Polling commands can't sleep */
1525 if (flags)
1526 flags |= XS_CTL_NOSLEEP;
1527
1528 flags |= XS_CTL_REQSENSE | XS_CTL_URGENT | XS_CTL_DATA_IN |
1529 XS_CTL_THAW_PERIPH | XS_CTL_FREEZE_PERIPH;
1530
1531 bzero(&cmd, sizeof(cmd));
1532 cmd.opcode = REQUEST_SENSE;
1533 cmd.length = sizeof(struct scsipi_sense_data);
1534
1535 error = scsipi_command(periph,
1536 (struct scsipi_generic *) &cmd, sizeof(cmd),
1537 (u_char*)&xs->sense.scsi_sense, sizeof(struct scsipi_sense_data),
1538 0, 1000, NULL, flags);
1539 periph->periph_flags &= ~PERIPH_SENSE;
1540 periph->periph_xscheck = NULL;
1541 switch(error) {
1542 case 0:
1543 /* we have a valid sense */
1544 xs->error = XS_SENSE;
1545 return;
1546 case EINTR:
1547 /* REQUEST_SENSE interrupted by bus reset. */
1548 xs->error = XS_RESET;
1549 return;
1550 case EIO:
1551 /* request sense coudn't be performed */
1552 /*
1553 * XXX this isn't quite rigth but we don't have anything
1554 * better for now
1555 */
1556 xs->error = XS_DRIVER_STUFFUP;
1557 return;
1558 default:
1559 /* Notify that request sense failed. */
1560 xs->error = XS_DRIVER_STUFFUP;
1561 scsipi_printaddr(periph);
1562 printf("request sense failed with error %d\n", error);
1563 return;
1564 }
1565 }
1566
1567 /*
1568 * scsipi_enqueue:
1569 *
1570 * Enqueue an xfer on a channel.
1571 */
1572 int
1573 scsipi_enqueue(xs)
1574 struct scsipi_xfer *xs;
1575 {
1576 struct scsipi_channel *chan = xs->xs_periph->periph_channel;
1577 struct scsipi_xfer *qxs;
1578 int s;
1579
1580 s = splbio();
1581
1582 /*
1583 * If the xfer is to be polled, and there are already jobs on
1584 * the queue, we can't proceed.
1585 */
1586 if ((xs->xs_control & XS_CTL_POLL) != 0 &&
1587 TAILQ_FIRST(&chan->chan_queue) != NULL) {
1588 splx(s);
1589 xs->error = XS_DRIVER_STUFFUP;
1590 return (EAGAIN);
1591 }
1592
1593 /*
1594 * If we have an URGENT xfer, it's an error recovery command
1595 * and it should just go on the head of the channel's queue.
1596 */
1597 if (xs->xs_control & XS_CTL_URGENT) {
1598 TAILQ_INSERT_HEAD(&chan->chan_queue, xs, channel_q);
1599 goto out;
1600 }
1601
1602 /*
1603 * If this xfer has already been on the queue before, we
1604 * need to reinsert it in the correct order. That order is:
1605 *
1606 * Immediately before the first xfer for this periph
1607 * with a requeuecnt less than xs->xs_requeuecnt.
1608 *
1609 * Failing that, at the end of the queue. (We'll end up
1610 * there naturally.)
1611 */
1612 if (xs->xs_requeuecnt != 0) {
1613 for (qxs = TAILQ_FIRST(&chan->chan_queue); qxs != NULL;
1614 qxs = TAILQ_NEXT(qxs, channel_q)) {
1615 if (qxs->xs_periph == xs->xs_periph &&
1616 qxs->xs_requeuecnt < xs->xs_requeuecnt)
1617 break;
1618 }
1619 if (qxs != NULL) {
1620 TAILQ_INSERT_AFTER(&chan->chan_queue, qxs, xs,
1621 channel_q);
1622 goto out;
1623 }
1624 }
1625 TAILQ_INSERT_TAIL(&chan->chan_queue, xs, channel_q);
1626 out:
1627 if (xs->xs_control & XS_CTL_THAW_PERIPH)
1628 scsipi_periph_thaw(xs->xs_periph, 1);
1629 splx(s);
1630 return (0);
1631 }
1632
1633 /*
1634 * scsipi_run_queue:
1635 *
1636 * Start as many xfers as possible running on the channel.
1637 */
1638 void
1639 scsipi_run_queue(chan)
1640 struct scsipi_channel *chan;
1641 {
1642 struct scsipi_xfer *xs;
1643 struct scsipi_periph *periph;
1644 int s;
1645
1646 for (;;) {
1647 s = splbio();
1648
1649 /*
1650 * If the channel is frozen, we can't do any work right
1651 * now.
1652 */
1653 if (chan->chan_qfreeze != 0) {
1654 splx(s);
1655 return;
1656 }
1657
1658 /*
1659 * Look for work to do, and make sure we can do it.
1660 */
1661 for (xs = TAILQ_FIRST(&chan->chan_queue); xs != NULL;
1662 xs = TAILQ_NEXT(xs, channel_q)) {
1663 periph = xs->xs_periph;
1664
1665 if ((periph->periph_sent >= periph->periph_openings) ||
1666 periph->periph_qfreeze != 0 ||
1667 (periph->periph_flags & PERIPH_UNTAG) != 0)
1668 continue;
1669
1670 if ((periph->periph_flags &
1671 (PERIPH_RECOVERING | PERIPH_SENSE)) != 0 &&
1672 (xs->xs_control & XS_CTL_URGENT) == 0)
1673 continue;
1674
1675 /*
1676 * We can issue this xfer!
1677 */
1678 goto got_one;
1679 }
1680
1681 /*
1682 * Can't find any work to do right now.
1683 */
1684 splx(s);
1685 return;
1686
1687 got_one:
1688 /*
1689 * Have an xfer to run. Allocate a resource from
1690 * the adapter to run it. If we can't allocate that
1691 * resource, we don't dequeue the xfer.
1692 */
1693 if (scsipi_get_resource(chan) == 0) {
1694 /*
1695 * Adapter is out of resources. If the adapter
1696 * supports it, attempt to grow them.
1697 */
1698 if (scsipi_grow_resources(chan) == 0) {
1699 /*
1700 * Wasn't able to grow resources,
1701 * nothing more we can do.
1702 */
1703 if (xs->xs_control & XS_CTL_POLL) {
1704 scsipi_printaddr(xs->xs_periph);
1705 printf("polling command but no "
1706 "adapter resources");
1707 /* We'll panic shortly... */
1708 }
1709 splx(s);
1710
1711 /*
1712 * XXX: We should be able to note that
1713 * XXX: that resources are needed here!
1714 */
1715 return;
1716 }
1717 /*
1718 * scsipi_grow_resources() allocated the resource
1719 * for us.
1720 */
1721 }
1722
1723 /*
1724 * We have a resource to run this xfer, do it!
1725 */
1726 TAILQ_REMOVE(&chan->chan_queue, xs, channel_q);
1727
1728 /*
1729 * If the command is to be tagged, allocate a tag ID
1730 * for it.
1731 */
1732 if (XS_CTL_TAGTYPE(xs) != 0)
1733 scsipi_get_tag(xs);
1734 else
1735 periph->periph_flags |= PERIPH_UNTAG;
1736 periph->periph_sent++;
1737 splx(s);
1738
1739 scsipi_adapter_request(chan, ADAPTER_REQ_RUN_XFER, xs);
1740 }
1741 #ifdef DIAGNOSTIC
1742 panic("scsipi_run_queue: impossible");
1743 #endif
1744 }
1745
1746 /*
1747 * scsipi_execute_xs:
1748 *
1749 * Begin execution of an xfer, waiting for it to complete, if necessary.
1750 */
1751 int
1752 scsipi_execute_xs(xs)
1753 struct scsipi_xfer *xs;
1754 {
1755 struct scsipi_periph *periph = xs->xs_periph;
1756 struct scsipi_channel *chan = periph->periph_channel;
1757 int async, poll, retries, error, s;
1758
1759 xs->xs_status &= ~XS_STS_DONE;
1760 xs->error = XS_NOERROR;
1761 xs->resid = xs->datalen;
1762 xs->status = SCSI_OK;
1763
1764 #ifdef SCSIPI_DEBUG
1765 if (xs->xs_periph->periph_dbflags & SCSIPI_DB3) {
1766 printf("scsipi_execute_xs: ");
1767 show_scsipi_xs(xs);
1768 printf("\n");
1769 }
1770 #endif
1771
1772 /*
1773 * Deal with command tagging:
1774 *
1775 * - If the device's current operating mode doesn't
1776 * include tagged queueing, clear the tag mask.
1777 *
1778 * - If the device's current operating mode *does*
1779 * include tagged queueing, set the tag_type in
1780 * the xfer to the appropriate byte for the tag
1781 * message.
1782 */
1783 if ((PERIPH_XFER_MODE(periph) & PERIPH_CAP_TQING) == 0 ||
1784 (xs->xs_control & XS_CTL_REQSENSE)) {
1785 xs->xs_control &= ~XS_CTL_TAGMASK;
1786 xs->xs_tag_type = 0;
1787 } else {
1788 /*
1789 * If the request doesn't specify a tag, give Head
1790 * tags to URGENT operations and Ordered tags to
1791 * everything else.
1792 */
1793 if (XS_CTL_TAGTYPE(xs) == 0) {
1794 if (xs->xs_control & XS_CTL_URGENT)
1795 xs->xs_control |= XS_CTL_HEAD_TAG;
1796 else
1797 xs->xs_control |= XS_CTL_ORDERED_TAG;
1798 }
1799
1800 switch (XS_CTL_TAGTYPE(xs)) {
1801 case XS_CTL_ORDERED_TAG:
1802 xs->xs_tag_type = MSG_ORDERED_Q_TAG;
1803 break;
1804
1805 case XS_CTL_SIMPLE_TAG:
1806 xs->xs_tag_type = MSG_SIMPLE_Q_TAG;
1807 break;
1808
1809 case XS_CTL_HEAD_TAG:
1810 xs->xs_tag_type = MSG_HEAD_OF_Q_TAG;
1811 break;
1812
1813 default:
1814 scsipi_printaddr(periph);
1815 printf("invalid tag mask 0x%08x\n",
1816 XS_CTL_TAGTYPE(xs));
1817 panic("scsipi_execute_xs");
1818 }
1819 }
1820
1821 /*
1822 * If we don't yet have a completion thread, or we are to poll for
1823 * completion, clear the ASYNC flag.
1824 */
1825 if (chan->chan_thread == NULL || (xs->xs_control & XS_CTL_POLL) != 0)
1826 xs->xs_control &= ~XS_CTL_ASYNC;
1827
1828 async = (xs->xs_control & XS_CTL_ASYNC);
1829 poll = (xs->xs_control & XS_CTL_POLL);
1830 retries = xs->xs_retries; /* for polling commands */
1831
1832 #ifdef DIAGNOSTIC
1833 if (async != 0 && xs->bp == NULL)
1834 panic("scsipi_execute_xs: XS_CTL_ASYNC but no buf");
1835 #endif
1836
1837 /*
1838 * Enqueue the transfer. If we're not polling for completion, this
1839 * should ALWAYS return `no error'.
1840 */
1841 try_again:
1842 error = scsipi_enqueue(xs);
1843 if (error) {
1844 if (poll == 0) {
1845 scsipi_printaddr(periph);
1846 printf("not polling, but enqueue failed with %d\n",
1847 error);
1848 panic("scsipi_execute_xs");
1849 }
1850
1851 scsipi_printaddr(periph);
1852 printf("failed to enqueue polling command");
1853 if (retries != 0) {
1854 printf(", retrying...\n");
1855 delay(1000000);
1856 retries--;
1857 goto try_again;
1858 }
1859 printf("\n");
1860 goto free_xs;
1861 }
1862
1863 restarted:
1864 scsipi_run_queue(chan);
1865
1866 /*
1867 * The xfer is enqueued, and possibly running. If it's to be
1868 * completed asynchronously, just return now.
1869 */
1870 if (async)
1871 return (EJUSTRETURN);
1872
1873 /*
1874 * Not an asynchronous command; wait for it to complete.
1875 */
1876 s = splbio();
1877 while ((xs->xs_status & XS_STS_DONE) == 0) {
1878 if (poll) {
1879 scsipi_printaddr(periph);
1880 printf("polling command not done\n");
1881 panic("scsipi_execute_xs");
1882 }
1883 (void) tsleep(xs, PRIBIO, "xscmd", 0);
1884 }
1885 splx(s);
1886
1887 /*
1888 * Command is complete. scsipi_done() has awakened us to perform
1889 * the error handling.
1890 */
1891 error = scsipi_complete(xs);
1892 if (error == ERESTART)
1893 goto restarted;
1894
1895 /*
1896 * Command completed successfully or fatal error occurred. Fall
1897 * into....
1898 */
1899 free_xs:
1900 s = splbio();
1901 scsipi_put_xs(xs);
1902 splx(s);
1903
1904 /*
1905 * Kick the queue, keep it running in case it stopped for some
1906 * reason.
1907 */
1908 scsipi_run_queue(chan);
1909
1910 return (error);
1911 }
1912
1913 /*
1914 * scsipi_completion_thread:
1915 *
1916 * This is the completion thread. We wait for errors on
1917 * asynchronous xfers, and perform the error handling
1918 * function, restarting the command, if necessary.
1919 */
1920 void
1921 scsipi_completion_thread(arg)
1922 void *arg;
1923 {
1924 struct scsipi_channel *chan = arg;
1925 struct scsipi_xfer *xs;
1926 int s;
1927
1928 for (;;) {
1929 s = splbio();
1930 xs = TAILQ_FIRST(&chan->chan_complete);
1931 if (xs == NULL &&
1932 (chan->chan_flags & SCSIPI_CHAN_SHUTDOWN) == 0) {
1933 (void) tsleep(&chan->chan_complete, PRIBIO,
1934 "sccomp", 0);
1935 splx(s);
1936 continue;
1937 }
1938 if (chan->chan_flags & SCSIPI_CHAN_SHUTDOWN) {
1939 splx(s);
1940 break;
1941 }
1942 TAILQ_REMOVE(&chan->chan_complete, xs, channel_q);
1943 splx(s);
1944
1945 /*
1946 * Have an xfer with an error; process it.
1947 */
1948 (void) scsipi_complete(xs);
1949
1950 /*
1951 * Kick the queue; keep it running if it was stopped
1952 * for some reason.
1953 */
1954 scsipi_run_queue(chan);
1955 }
1956
1957 chan->chan_thread = NULL;
1958
1959 /* In case parent is waiting for us to exit. */
1960 wakeup(&chan->chan_thread);
1961
1962 kthread_exit(0);
1963 }
1964
1965 /*
1966 * scsipi_create_completion_thread:
1967 *
1968 * Callback to actually create the completion thread.
1969 */
1970 void
1971 scsipi_create_completion_thread(arg)
1972 void *arg;
1973 {
1974 struct scsipi_channel *chan = arg;
1975 struct scsipi_adapter *adapt = chan->chan_adapter;
1976
1977 if (kthread_create1(scsipi_completion_thread, chan,
1978 &chan->chan_thread, "%s:%d", adapt->adapt_dev->dv_xname,
1979 chan->chan_channel)) {
1980 printf("%s: unable to create completion thread for "
1981 "channel %d\n", adapt->adapt_dev->dv_xname,
1982 chan->chan_channel);
1983 panic("scsipi_create_completion_thread");
1984 }
1985 }
1986
1987 /*
1988 * scsipi_async_event:
1989 *
1990 * Handle an asynchronous event from an adapter.
1991 */
1992 void
1993 scsipi_async_event(chan, event, arg)
1994 struct scsipi_channel *chan;
1995 scsipi_async_event_t event;
1996 void *arg;
1997 {
1998 int s;
1999
2000 s = splbio();
2001 switch (event) {
2002 case ASYNC_EVENT_MAX_OPENINGS:
2003 scsipi_async_event_max_openings(chan,
2004 (struct scsipi_max_openings *)arg);
2005 break;
2006
2007 case ASYNC_EVENT_XFER_MODE:
2008 scsipi_async_event_xfer_mode(chan,
2009 (struct scsipi_xfer_mode *)arg);
2010 break;
2011 case ASYNC_EVENT_RESET:
2012 scsipi_async_event_channel_reset(chan);
2013 break;
2014 }
2015 splx(s);
2016 }
2017
2018 /*
2019 * scsipi_print_xfer_mode:
2020 *
2021 * Print a periph's capabilities.
2022 */
2023 void
2024 scsipi_print_xfer_mode(periph)
2025 struct scsipi_periph *periph;
2026 {
2027 int period, freq, speed, mbs;
2028
2029 if ((periph->periph_flags & PERIPH_MODE_VALID) == 0)
2030 return;
2031
2032 printf("%s: ", periph->periph_dev->dv_xname);
2033 if (periph->periph_mode & PERIPH_CAP_SYNC) {
2034 period = scsipi_sync_factor_to_period(periph->periph_period);
2035 printf("Sync (%d.%dns offset %d)",
2036 period / 10, period % 10, periph->periph_offset);
2037 } else
2038 printf("Async");
2039
2040 if (periph->periph_mode & PERIPH_CAP_WIDE32)
2041 printf(", 32-bit");
2042 else if (periph->periph_mode & PERIPH_CAP_WIDE16)
2043 printf(", 16-bit");
2044 else
2045 printf(", 8-bit");
2046
2047 if (periph->periph_mode & PERIPH_CAP_SYNC) {
2048 freq = scsipi_sync_factor_to_freq(periph->periph_period);
2049 speed = freq;
2050 if (periph->periph_mode & PERIPH_CAP_WIDE32)
2051 speed *= 4;
2052 else if (periph->periph_mode & PERIPH_CAP_WIDE16)
2053 speed *= 2;
2054 mbs = speed / 1000;
2055 if (mbs > 0)
2056 printf(" (%d.%03dMB/s)", mbs, speed % 1000);
2057 else
2058 printf(" (%dKB/s)", speed % 1000);
2059 }
2060
2061 printf(" transfers");
2062
2063 if (periph->periph_mode & PERIPH_CAP_TQING)
2064 printf(", tagged queueing");
2065
2066 printf("\n");
2067 }
2068
2069 /*
2070 * scsipi_async_event_max_openings:
2071 *
2072 * Update the maximum number of outstanding commands a
2073 * device may have.
2074 */
2075 void
2076 scsipi_async_event_max_openings(chan, mo)
2077 struct scsipi_channel *chan;
2078 struct scsipi_max_openings *mo;
2079 {
2080 struct scsipi_periph *periph;
2081 int minlun, maxlun;
2082
2083 if (mo->mo_lun == -1) {
2084 /*
2085 * Wildcarded; apply it to all LUNs.
2086 */
2087 minlun = 0;
2088 maxlun = chan->chan_nluns - 1;
2089 } else
2090 minlun = maxlun = mo->mo_lun;
2091
2092 for (; minlun <= maxlun; minlun++) {
2093 periph = scsipi_lookup_periph(chan, mo->mo_target, minlun);
2094 if (periph == NULL)
2095 continue;
2096
2097 if (mo->mo_openings < periph->periph_openings)
2098 periph->periph_openings = mo->mo_openings;
2099 else if (mo->mo_openings > periph->periph_openings &&
2100 (periph->periph_flags & PERIPH_GROW_OPENINGS) != 0)
2101 periph->periph_openings = mo->mo_openings;
2102 }
2103 }
2104
2105 /*
2106 * scsipi_async_event_xfer_mode:
2107 *
2108 * Update the xfer mode for all periphs sharing the
2109 * specified I_T Nexus.
2110 */
2111 void
2112 scsipi_async_event_xfer_mode(chan, xm)
2113 struct scsipi_channel *chan;
2114 struct scsipi_xfer_mode *xm;
2115 {
2116 struct scsipi_periph *periph;
2117 int lun, announce, mode, period, offset;
2118
2119 for (lun = 0; lun < chan->chan_nluns; lun++) {
2120 periph = scsipi_lookup_periph(chan, xm->xm_target, lun);
2121 if (periph == NULL)
2122 continue;
2123 announce = 0;
2124
2125 /*
2126 * Clamp the xfer mode down to this periph's capabilities.
2127 */
2128 mode = xm->xm_mode & periph->periph_cap;
2129 if (mode & PERIPH_CAP_SYNC) {
2130 period = xm->xm_period;
2131 offset = xm->xm_offset;
2132 } else {
2133 period = 0;
2134 offset = 0;
2135 }
2136
2137 /*
2138 * If we do not have a valid xfer mode yet, or the parameters
2139 * are different, announce them.
2140 */
2141 if ((periph->periph_flags & PERIPH_MODE_VALID) == 0 ||
2142 periph->periph_mode != mode ||
2143 periph->periph_period != period ||
2144 periph->periph_offset != offset)
2145 announce = 1;
2146
2147 periph->periph_mode = mode;
2148 periph->periph_period = period;
2149 periph->periph_offset = offset;
2150 periph->periph_flags |= PERIPH_MODE_VALID;
2151
2152 if (announce)
2153 scsipi_print_xfer_mode(periph);
2154 }
2155 }
2156
2157 /*
2158 * scsipi_set_xfer_mode:
2159 *
2160 * Set the xfer mode for the specified I_T Nexus.
2161 */
2162 void
2163 scsipi_set_xfer_mode(chan, target, immed)
2164 struct scsipi_channel *chan;
2165 int target, immed;
2166 {
2167 struct scsipi_xfer_mode xm;
2168 struct scsipi_periph *itperiph;
2169 int lun, s;
2170
2171 /*
2172 * Go to the minimal xfer mode.
2173 */
2174 xm.xm_target = target;
2175 xm.xm_mode = 0;
2176 xm.xm_period = 0; /* ignored */
2177 xm.xm_offset = 0; /* ignored */
2178
2179 /*
2180 * Find the first LUN we know about on this I_T Nexus.
2181 */
2182 for (lun = 0; lun < chan->chan_nluns; lun++) {
2183 itperiph = scsipi_lookup_periph(chan, target, lun);
2184 if (itperiph != NULL)
2185 break;
2186 }
2187 if (itperiph != NULL)
2188 xm.xm_mode = itperiph->periph_cap;
2189
2190 /*
2191 * Now issue the request to the adapter.
2192 */
2193 s = splbio();
2194 scsipi_adapter_request(chan, ADAPTER_REQ_SET_XFER_MODE, &xm);
2195 splx(s);
2196
2197 /*
2198 * If we want this to happen immediately, issue a dummy command,
2199 * since most adapters can't really negotiate unless they're
2200 * executing a job.
2201 */
2202 if (immed != 0 && itperiph != NULL) {
2203 (void) scsipi_test_unit_ready(itperiph,
2204 XS_CTL_DISCOVERY | XS_CTL_IGNORE_ILLEGAL_REQUEST |
2205 XS_CTL_IGNORE_NOT_READY |
2206 XS_CTL_IGNORE_MEDIA_CHANGE);
2207 }
2208 }
2209
2210 /*
2211 * scsipi_channel_reset:
2212 *
2213 * handle scsi bus reset
2214 * called at splbio
2215 */
2216 void
2217 scsipi_async_event_channel_reset(chan)
2218 struct scsipi_channel *chan;
2219 {
2220 struct scsipi_xfer *xs, *xs_next;
2221 struct scsipi_periph *periph;
2222 int target, lun;
2223
2224 /*
2225 * Channel has been reset. Also mark as reset pending REQUEST_SENSE
2226 * commands; as the sense is not available any more.
2227 * can't call scsipi_done() from here, as the command has not been
2228 * sent to the adapter yet (this would corrupt accounting).
2229 */
2230
2231 for (xs = TAILQ_FIRST(&chan->chan_queue); xs != NULL; xs = xs_next) {
2232 xs_next = TAILQ_NEXT(xs, channel_q);
2233 if (xs->xs_control & XS_CTL_REQSENSE) {
2234 TAILQ_REMOVE(&chan->chan_queue, xs, channel_q);
2235 xs->error = XS_RESET;
2236 if ((xs->xs_control & XS_CTL_ASYNC) != 0)
2237 TAILQ_INSERT_TAIL(&chan->chan_complete, xs,
2238 channel_q);
2239 }
2240 }
2241 wakeup(&chan->chan_complete);
2242 /* Catch xs with pending sense which may not have a REQSENSE xs yet */
2243 for (target = 0; target < chan->chan_ntargets; target++) {
2244 if (target == chan->chan_id)
2245 continue;
2246 for (lun = 0; lun < chan->chan_nluns; lun++) {
2247 periph = chan->chan_periphs[target][lun];
2248 if (periph) {
2249 xs = periph->periph_xscheck;
2250 if (xs)
2251 xs->error = XS_RESET;
2252 }
2253 }
2254 }
2255 }
2256
2257
2258 /*
2259 * scsipi_adapter_addref:
2260 *
2261 * Add a reference to the adapter pointed to by the provided
2262 * link, enabling the adapter if necessary.
2263 */
2264 int
2265 scsipi_adapter_addref(adapt)
2266 struct scsipi_adapter *adapt;
2267 {
2268 int s, error = 0;
2269
2270 s = splbio();
2271 if (adapt->adapt_refcnt++ == 0 && adapt->adapt_enable != NULL) {
2272 error = (*adapt->adapt_enable)(adapt->adapt_dev, 1);
2273 if (error)
2274 adapt->adapt_refcnt--;
2275 }
2276 splx(s);
2277 return (error);
2278 }
2279
2280 /*
2281 * scsipi_adapter_delref:
2282 *
2283 * Delete a reference to the adapter pointed to by the provided
2284 * link, disabling the adapter if possible.
2285 */
2286 void
2287 scsipi_adapter_delref(adapt)
2288 struct scsipi_adapter *adapt;
2289 {
2290 int s;
2291
2292 s = splbio();
2293 if (adapt->adapt_refcnt-- == 1 && adapt->adapt_enable != NULL)
2294 (void) (*adapt->adapt_enable)(adapt->adapt_dev, 0);
2295 splx(s);
2296 }
2297
2298 struct scsipi_syncparam {
2299 int ss_factor;
2300 int ss_period; /* ns * 10 */
2301 } scsipi_syncparams[] = {
2302 { 0x0a, 250 },
2303 { 0x0b, 303 },
2304 { 0x0c, 500 },
2305 };
2306 const int scsipi_nsyncparams =
2307 sizeof(scsipi_syncparams) / sizeof(scsipi_syncparams[0]);
2308
2309 int
2310 scsipi_sync_period_to_factor(period)
2311 int period; /* ns * 10 */
2312 {
2313 int i;
2314
2315 for (i = 0; i < scsipi_nsyncparams; i++) {
2316 if (period <= scsipi_syncparams[i].ss_period)
2317 return (scsipi_syncparams[i].ss_factor);
2318 }
2319
2320 return ((period / 10) / 4);
2321 }
2322
2323 int
2324 scsipi_sync_factor_to_period(factor)
2325 int factor;
2326 {
2327 int i;
2328
2329 for (i = 0; i < scsipi_nsyncparams; i++) {
2330 if (factor == scsipi_syncparams[i].ss_factor)
2331 return (scsipi_syncparams[i].ss_period);
2332 }
2333
2334 return ((factor * 4) * 10);
2335 }
2336
2337 int
2338 scsipi_sync_factor_to_freq(factor)
2339 int factor;
2340 {
2341 int i;
2342
2343 for (i = 0; i < scsipi_nsyncparams; i++) {
2344 if (factor == scsipi_syncparams[i].ss_factor)
2345 return (10000000 / scsipi_syncparams[i].ss_period);
2346 }
2347
2348 return (10000000 / ((factor * 4) * 10));
2349 }
2350
2351 #ifdef SCSIPI_DEBUG
2352 /*
2353 * Given a scsipi_xfer, dump the request, in all it's glory
2354 */
2355 void
2356 show_scsipi_xs(xs)
2357 struct scsipi_xfer *xs;
2358 {
2359
2360 printf("xs(%p): ", xs);
2361 printf("xs_control(0x%08x)", xs->xs_control);
2362 printf("xs_status(0x%08x)", xs->xs_status);
2363 printf("periph(%p)", xs->xs_periph);
2364 printf("retr(0x%x)", xs->xs_retries);
2365 printf("timo(0x%x)", xs->timeout);
2366 printf("cmd(%p)", xs->cmd);
2367 printf("len(0x%x)", xs->cmdlen);
2368 printf("data(%p)", xs->data);
2369 printf("len(0x%x)", xs->datalen);
2370 printf("res(0x%x)", xs->resid);
2371 printf("err(0x%x)", xs->error);
2372 printf("bp(%p)", xs->bp);
2373 show_scsipi_cmd(xs);
2374 }
2375
2376 void
2377 show_scsipi_cmd(xs)
2378 struct scsipi_xfer *xs;
2379 {
2380 u_char *b = (u_char *) xs->cmd;
2381 int i = 0;
2382
2383 scsipi_printaddr(xs->xs_periph);
2384 printf(" command: ");
2385
2386 if ((xs->xs_control & XS_CTL_RESET) == 0) {
2387 while (i < xs->cmdlen) {
2388 if (i)
2389 printf(",");
2390 printf("0x%x", b[i++]);
2391 }
2392 printf("-[%d bytes]\n", xs->datalen);
2393 if (xs->datalen)
2394 show_mem(xs->data, min(64, xs->datalen));
2395 } else
2396 printf("-RESET-\n");
2397 }
2398
2399 void
2400 show_mem(address, num)
2401 u_char *address;
2402 int num;
2403 {
2404 int x;
2405
2406 printf("------------------------------");
2407 for (x = 0; x < num; x++) {
2408 if ((x % 16) == 0)
2409 printf("\n%03d: ", x);
2410 printf("%02x ", *address++);
2411 }
2412 printf("\n------------------------------\n");
2413 }
2414 #endif /* SCSIPI_DEBUG */
2415