firewire.c revision 1.43 1 /* $NetBSD: firewire.c,v 1.43 2013/10/12 16:49:00 christos Exp $ */
2 /*-
3 * Copyright (c) 2003 Hidetoshi Shimokawa
4 * Copyright (c) 1998-2002 Katsushi Kobayashi and Hidetoshi Shimokawa
5 * All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. All advertising materials mentioning features or use of this software
16 * must display the acknowledgement as bellow:
17 *
18 * This product includes software developed by K. Kobayashi and H. Shimokawa
19 *
20 * 4. The name of the author may not be used to endorse or promote products
21 * derived from this software without specific prior written permission.
22 *
23 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
24 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
25 * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
26 * DISCLAIMED. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT,
27 * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
28 * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
29 * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
31 * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
32 * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
33 * POSSIBILITY OF SUCH DAMAGE.
34 *
35 * $FreeBSD: src/sys/dev/firewire/firewire.c,v 1.110 2009/04/07 02:33:46 sbruno Exp $
36 *
37 */
38
39 #include <sys/cdefs.h>
40 __KERNEL_RCSID(0, "$NetBSD: firewire.c,v 1.43 2013/10/12 16:49:00 christos Exp $");
41
42 #include <sys/param.h>
43 #include <sys/bus.h>
44 #include <sys/callout.h>
45 #include <sys/condvar.h>
46 #include <sys/conf.h>
47 #include <sys/device.h>
48 #include <sys/errno.h>
49 #include <sys/kernel.h>
50 #include <sys/kthread.h>
51 #include <sys/malloc.h>
52 #include <sys/queue.h>
53 #include <sys/sysctl.h>
54 #include <sys/systm.h>
55
56 #include <dev/ieee1394/firewire.h>
57 #include <dev/ieee1394/firewirereg.h>
58 #include <dev/ieee1394/fwmem.h>
59 #include <dev/ieee1394/iec13213.h>
60 #include <dev/ieee1394/iec68113.h>
61
62 #include "locators.h"
63
64 struct crom_src_buf {
65 struct crom_src src;
66 struct crom_chunk root;
67 struct crom_chunk vendor;
68 struct crom_chunk hw;
69 };
70
71 int firewire_debug = 0, try_bmr = 1, hold_count = 0;
72 /*
73 * Setup sysctl(3) MIB, hw.ieee1394if.*
74 *
75 * TBD condition CTLFLAG_PERMANENT on being a module or not
76 */
77 SYSCTL_SETUP(sysctl_ieee1394if, "sysctl ieee1394if(4) subtree setup")
78 {
79 int rc, ieee1394if_node_num;
80 const struct sysctlnode *node;
81
82 if ((rc = sysctl_createv(clog, 0, NULL, NULL,
83 CTLFLAG_PERMANENT, CTLTYPE_NODE, "hw", NULL,
84 NULL, 0, NULL, 0, CTL_HW, CTL_EOL)) != 0) {
85 goto err;
86 }
87
88 if ((rc = sysctl_createv(clog, 0, NULL, &node,
89 CTLFLAG_PERMANENT, CTLTYPE_NODE, "ieee1394if",
90 SYSCTL_DESCR("ieee1394if controls"),
91 NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL)) != 0) {
92 goto err;
93 }
94 ieee1394if_node_num = node->sysctl_num;
95
96 /* ieee1394if try bus manager flag */
97 if ((rc = sysctl_createv(clog, 0, NULL, &node,
98 CTLFLAG_PERMANENT | CTLFLAG_READWRITE, CTLTYPE_INT,
99 "try_bmr", SYSCTL_DESCR("Try to be a bus manager"),
100 NULL, 0, &try_bmr,
101 0, CTL_HW, ieee1394if_node_num, CTL_CREATE, CTL_EOL)) != 0) {
102 goto err;
103 }
104
105 /* ieee1394if hold count */
106 if ((rc = sysctl_createv(clog, 0, NULL, &node,
107 CTLFLAG_PERMANENT | CTLFLAG_READWRITE, CTLTYPE_INT,
108 "hold_count", SYSCTL_DESCR("Number of count of "
109 "bus resets for removing lost device information"),
110 NULL, 0, &hold_count,
111 0, CTL_HW, ieee1394if_node_num, CTL_CREATE, CTL_EOL)) != 0) {
112 goto err;
113 }
114
115 /* ieee1394if driver debug flag */
116 if ((rc = sysctl_createv(clog, 0, NULL, &node,
117 CTLFLAG_PERMANENT | CTLFLAG_READWRITE, CTLTYPE_INT,
118 "ieee1394_debug", SYSCTL_DESCR("ieee1394if driver debug flag"),
119 NULL, 0, &firewire_debug,
120 0, CTL_HW, ieee1394if_node_num, CTL_CREATE, CTL_EOL)) != 0) {
121 goto err;
122 }
123
124 return;
125
126 err:
127 aprint_error("%s: sysctl_createv failed (rc = %d)\n", __func__, rc);
128 }
129
130 MALLOC_DEFINE(M_FW, "ieee1394", "IEEE1394");
131
132 #define FW_MAXASYRTY 4
133
134 #define FW_GENERATION_CHANGEABLE 2
135
136 static int firewirematch (device_t, cfdata_t, void *);
137 static void firewireattach (device_t, device_t, void *);
138 static int firewiredetach (device_t, int);
139 static int firewire_print (void *, const char *);
140
141 int firewire_resume (struct firewire_comm *);
142
143 static void fw_asystart(struct fw_xfer *);
144 static void firewire_xfer_timeout(struct firewire_comm *);
145 static void firewire_watchdog(void *);
146 static void fw_xferq_drain(struct fw_xferq *);
147 static void fw_reset_csr(struct firewire_comm *);
148 static void fw_init_crom(struct firewire_comm *);
149 static void fw_reset_crom(struct firewire_comm *);
150 static void fw_dump_hdr(struct fw_pkt *, const char *);
151 static void fw_tl_free(struct firewire_comm *, struct fw_xfer *);
152 static struct fw_xfer *fw_tl2xfer(struct firewire_comm *, int, int, int);
153 static void fw_phy_config(struct firewire_comm *, int, int);
154 static void fw_print_sid(uint32_t);
155 static void fw_bus_probe(struct firewire_comm *);
156 static int fw_explore_read_quads(struct fw_device *, int, uint32_t *, int);
157 static int fw_explore_csrblock(struct fw_device *, int, int);
158 static int fw_explore_node(struct fw_device *);
159 static union fw_self_id *fw_find_self_id(struct firewire_comm *, int);
160 static void fw_explore(struct firewire_comm *);
161 static void fw_bus_probe_thread(void *);
162 static void fw_attach_dev(struct firewire_comm *);
163 static int fw_get_tlabel(struct firewire_comm *, struct fw_xfer *);
164 static void fw_rcv_copy(struct fw_rcv_buf *);
165 static void fw_try_bmr_callback(struct fw_xfer *);
166 static void fw_try_bmr(void *);
167 static int fw_bmr(struct firewire_comm *);
168
169
170 CFATTACH_DECL_NEW(ieee1394if, sizeof(struct firewire_softc),
171 firewirematch, firewireattach, firewiredetach, NULL);
172
173
174 const char *fw_linkspeed[] = {
175 "S100", "S200", "S400", "S800",
176 "S1600", "S3200", "undef", "undef"
177 };
178
179 static const char *tcode_str[] = {
180 "WREQQ", "WREQB", "WRES", "undef",
181 "RREQQ", "RREQB", "RRESQ", "RRESB",
182 "CYCS", "LREQ", "STREAM", "LRES",
183 "undef", "undef", "PHY", "undef"
184 };
185
186 /* IEEE-1394a Table C-2 Gap count as a function of hops*/
187 #define MAX_GAPHOP 15
188 u_int gap_cnt[] = { 5, 5, 7, 8, 10, 13, 16, 18,
189 21, 24, 26, 29, 32, 35, 37, 40};
190
191
192 static int
193 firewirematch(device_t parent, cfdata_t cf, void *aux)
194 {
195
196 return 1; /* always match */
197 }
198
199 static void
200 firewireattach(device_t parent, device_t self, void *aux)
201 {
202 struct firewire_softc *sc = device_private(self);
203 struct firewire_comm *fc = device_private(parent);
204 struct fw_attach_args faa;
205 struct firewire_dev_list *devlist;
206
207 aprint_naive("\n");
208 aprint_normal(": IEEE1394 bus\n");
209
210 fc->bdev = sc->dev = self;
211 sc->fc = fc;
212 SLIST_INIT(&sc->devlist);
213
214 fc->status = FWBUSNOTREADY;
215
216 if (fc->nisodma > FWMAXNDMA)
217 fc->nisodma = FWMAXNDMA;
218
219 fc->crom_src_buf =
220 (struct crom_src_buf *)malloc(sizeof(struct crom_src_buf),
221 M_FW, M_NOWAIT | M_ZERO);
222 if (fc->crom_src_buf == NULL) {
223 aprint_error_dev(fc->bdev, "Malloc Failure crom src buff\n");
224 return;
225 }
226 fc->topology_map =
227 (struct fw_topology_map *)malloc(sizeof(struct fw_topology_map),
228 M_FW, M_NOWAIT | M_ZERO);
229 if (fc->topology_map == NULL) {
230 aprint_error_dev(fc->dev, "Malloc Failure topology map\n");
231 free(fc->crom_src_buf, M_FW);
232 return;
233 }
234 fc->speed_map =
235 (struct fw_speed_map *)malloc(sizeof(struct fw_speed_map),
236 M_FW, M_NOWAIT | M_ZERO);
237 if (fc->speed_map == NULL) {
238 aprint_error_dev(fc->dev, "Malloc Failure speed map\n");
239 free(fc->crom_src_buf, M_FW);
240 free(fc->topology_map, M_FW);
241 return;
242 }
243
244 mutex_init(&fc->tlabel_lock, MUTEX_DEFAULT, IPL_VM);
245 mutex_init(&fc->fc_mtx, MUTEX_DEFAULT, IPL_VM);
246 mutex_init(&fc->wait_lock, MUTEX_DEFAULT, IPL_VM);
247 cv_init(&fc->fc_cv, "ieee1394");
248
249 callout_init(&fc->timeout_callout, CALLOUT_MPSAFE);
250 callout_setfunc(&fc->timeout_callout, firewire_watchdog, fc);
251 callout_init(&fc->bmr_callout, CALLOUT_MPSAFE);
252 callout_setfunc(&fc->bmr_callout, fw_try_bmr, fc);
253 callout_init(&fc->busprobe_callout, CALLOUT_MPSAFE);
254 callout_setfunc(&fc->busprobe_callout, (void *)fw_bus_probe, fc);
255
256 callout_schedule(&fc->timeout_callout, hz);
257
258 /* Tell config we will have started a thread to scan the bus. */
259 config_pending_incr(self);
260
261 /* create thread */
262 if (kthread_create(PRI_NONE, KTHREAD_MPSAFE, NULL, fw_bus_probe_thread,
263 fc, &fc->probe_thread, "fw%dprobe", device_unit(fc->bdev))) {
264 aprint_error_dev(self, "kthread_create failed\n");
265 config_pending_decr(self);
266 }
267
268 devlist = malloc(sizeof(struct firewire_dev_list), M_DEVBUF, M_NOWAIT);
269 if (devlist == NULL) {
270 aprint_error_dev(self, "device list allocation failed\n");
271 return;
272 }
273
274 faa.name = "fwip";
275 faa.fc = fc;
276 faa.fwdev = NULL;
277 devlist->dev = config_found(sc->dev, &faa, firewire_print);
278 if (devlist->dev == NULL)
279 free(devlist, M_DEVBUF);
280 else
281 SLIST_INSERT_HEAD(&sc->devlist, devlist, link);
282
283 /* bus_reset */
284 fw_busreset(fc, FWBUSNOTREADY);
285 fc->ibr(fc);
286
287 if (!pmf_device_register(self, NULL, NULL))
288 aprint_error_dev(self, "couldn't establish power handler\n");
289
290 return;
291 }
292
293 static int
294 firewiredetach(device_t self, int flags)
295 {
296 struct firewire_softc *sc = device_private(self);
297 struct firewire_comm *fc;
298 struct fw_device *fwdev, *fwdev_next;
299 struct firewire_dev_list *devlist;
300 int err;
301
302 fc = sc->fc;
303 mutex_enter(&fc->wait_lock);
304 fc->status = FWBUSDETACH;
305 cv_signal(&fc->fc_cv);
306 while (fc->status != FWBUSDETACHOK) {
307 err = cv_timedwait_sig(&fc->fc_cv, &fc->wait_lock, hz * 60);
308 if (err == EWOULDBLOCK) {
309 aprint_error_dev(self,
310 "firewire probe thread didn't die\n");
311 break;
312 }
313 }
314 mutex_exit(&fc->wait_lock);
315
316
317 while ((devlist = SLIST_FIRST(&sc->devlist)) != NULL) {
318 if ((err = config_detach(devlist->dev, flags)) != 0)
319 return err;
320 SLIST_REMOVE(&sc->devlist, devlist, firewire_dev_list, link);
321 free(devlist, M_DEVBUF);
322 }
323
324 callout_stop(&fc->timeout_callout);
325 callout_stop(&fc->bmr_callout);
326 callout_stop(&fc->busprobe_callout);
327
328 /* XXX xfer_free and untimeout on all xfers */
329 for (fwdev = STAILQ_FIRST(&fc->devices); fwdev != NULL;
330 fwdev = fwdev_next) {
331 fwdev_next = STAILQ_NEXT(fwdev, link);
332 free(fwdev, M_FW);
333 }
334 free(fc->topology_map, M_FW);
335 free(fc->speed_map, M_FW);
336 free(fc->crom_src_buf, M_FW);
337
338 cv_destroy(&fc->fc_cv);
339 mutex_destroy(&fc->wait_lock);
340 mutex_destroy(&fc->fc_mtx);
341 mutex_destroy(&fc->tlabel_lock);
342 return 0;
343 }
344
345 static int
346 firewire_print(void *aux, const char *pnp)
347 {
348 struct fw_attach_args *fwa = (struct fw_attach_args *)aux;
349
350 if (pnp)
351 aprint_normal("%s at %s", fwa->name, pnp);
352
353 return UNCONF;
354 }
355
356 int
357 firewire_resume(struct firewire_comm *fc)
358 {
359
360 fc->status = FWBUSNOTREADY;
361 return 0;
362 }
363
364
365 /*
366 * Lookup fwdev by node id.
367 */
368 struct fw_device *
369 fw_noderesolve_nodeid(struct firewire_comm *fc, int dst)
370 {
371 struct fw_device *fwdev;
372
373 mutex_enter(&fc->fc_mtx);
374 STAILQ_FOREACH(fwdev, &fc->devices, link)
375 if (fwdev->dst == dst && fwdev->status != FWDEVINVAL)
376 break;
377 mutex_exit(&fc->fc_mtx);
378
379 return fwdev;
380 }
381
382 /*
383 * Lookup fwdev by EUI64.
384 */
385 struct fw_device *
386 fw_noderesolve_eui64(struct firewire_comm *fc, struct fw_eui64 *eui)
387 {
388 struct fw_device *fwdev;
389
390 mutex_enter(&fc->fc_mtx);
391 STAILQ_FOREACH(fwdev, &fc->devices, link)
392 if (FW_EUI64_EQUAL(fwdev->eui, *eui))
393 break;
394 mutex_exit(&fc->fc_mtx);
395
396 if (fwdev == NULL)
397 return NULL;
398 if (fwdev->status == FWDEVINVAL)
399 return NULL;
400 return fwdev;
401 }
402
403 /*
404 * Async. request procedure for userland application.
405 */
406 int
407 fw_asyreq(struct firewire_comm *fc, int sub, struct fw_xfer *xfer)
408 {
409 struct fw_xferq *xferq;
410 int len;
411 struct fw_pkt *fp;
412 int tcode;
413 const struct tcode_info *info;
414
415 if (xfer == NULL)
416 return EINVAL;
417 if (xfer->hand == NULL) {
418 aprint_error_dev(fc->bdev, "hand == NULL\n");
419 return EINVAL;
420 }
421 fp = &xfer->send.hdr;
422
423 tcode = fp->mode.common.tcode & 0xf;
424 info = &fc->tcode[tcode];
425 if (info->flag == 0) {
426 aprint_error_dev(fc->bdev, "invalid tcode=%x\n", tcode);
427 return EINVAL;
428 }
429
430 /* XXX allow bus explore packets only after bus rest */
431 if ((fc->status < FWBUSEXPLORE) &&
432 ((tcode != FWTCODE_RREQQ) || (fp->mode.rreqq.dest_hi != 0xffff) ||
433 (fp->mode.rreqq.dest_lo < 0xf0000000) ||
434 (fp->mode.rreqq.dest_lo >= 0xf0001000))) {
435 xfer->resp = EAGAIN;
436 xfer->flag = FWXF_BUSY;
437 return EAGAIN;
438 }
439
440 if (info->flag & FWTI_REQ)
441 xferq = fc->atq;
442 else
443 xferq = fc->ats;
444 len = info->hdr_len;
445 if (xfer->send.pay_len > MAXREC(fc->maxrec)) {
446 aprint_error_dev(fc->bdev, "send.pay_len > maxrec\n");
447 return EINVAL;
448 }
449 if (info->flag & FWTI_BLOCK_STR)
450 len = fp->mode.stream.len;
451 else if (info->flag & FWTI_BLOCK_ASY)
452 len = fp->mode.rresb.len;
453 else
454 len = 0;
455 if (len != xfer->send.pay_len) {
456 aprint_error_dev(fc->bdev,
457 "len(%d) != send.pay_len(%d) %s(%x)\n",
458 len, xfer->send.pay_len, tcode_str[tcode], tcode);
459 return EINVAL;
460 }
461
462 if (xferq->start == NULL) {
463 aprint_error_dev(fc->bdev, "xferq->start == NULL\n");
464 return EINVAL;
465 }
466 if (!(xferq->queued < xferq->maxq)) {
467 aprint_error_dev(fc->bdev, "Discard a packet (queued=%d)\n",
468 xferq->queued);
469 return EAGAIN;
470 }
471
472 xfer->tl = -1;
473 if (info->flag & FWTI_TLABEL)
474 if (fw_get_tlabel(fc, xfer) < 0)
475 return EAGAIN;
476
477 xfer->resp = 0;
478 xfer->fc = fc;
479 xfer->q = xferq;
480
481 fw_asystart(xfer);
482 return 0;
483 }
484
485 /*
486 * Wakeup blocked process.
487 */
488 void
489 fw_xferwake(struct fw_xfer *xfer)
490 {
491
492 mutex_enter(&xfer->fc->wait_lock);
493 xfer->flag |= FWXF_WAKE;
494 cv_signal(&xfer->cv);
495 mutex_exit(&xfer->fc->wait_lock);
496
497 return;
498 }
499
500 int
501 fw_xferwait(struct fw_xfer *xfer)
502 {
503 struct firewire_comm *fc = xfer->fc;
504 int err = 0;
505
506 mutex_enter(&fc->wait_lock);
507 while (!(xfer->flag & FWXF_WAKE))
508 err = cv_wait_sig(&xfer->cv, &fc->wait_lock);
509 mutex_exit(&fc->wait_lock);
510
511 return err;
512 }
513
514 void
515 fw_drain_txq(struct firewire_comm *fc)
516 {
517 struct fw_xfer *xfer;
518 STAILQ_HEAD(, fw_xfer) xfer_drain;
519 int i;
520
521 STAILQ_INIT(&xfer_drain);
522
523 mutex_enter(&fc->atq->q_mtx);
524 fw_xferq_drain(fc->atq);
525 mutex_exit(&fc->atq->q_mtx);
526 mutex_enter(&fc->ats->q_mtx);
527 fw_xferq_drain(fc->ats);
528 mutex_exit(&fc->ats->q_mtx);
529 for (i = 0; i < fc->nisodma; i++)
530 fw_xferq_drain(fc->it[i]);
531
532 mutex_enter(&fc->tlabel_lock);
533 for (i = 0; i < 0x40; i++)
534 while ((xfer = STAILQ_FIRST(&fc->tlabels[i])) != NULL) {
535 if (firewire_debug)
536 printf("tl=%d flag=%d\n", i, xfer->flag);
537 xfer->resp = EAGAIN;
538 STAILQ_REMOVE_HEAD(&fc->tlabels[i], tlabel);
539 STAILQ_INSERT_TAIL(&xfer_drain, xfer, tlabel);
540 }
541 mutex_exit(&fc->tlabel_lock);
542
543 STAILQ_FOREACH(xfer, &xfer_drain, tlabel)
544 xfer->hand(xfer);
545 }
546
547 /*
548 * Called after bus reset.
549 */
550 void
551 fw_busreset(struct firewire_comm *fc, uint32_t new_status)
552 {
553 struct firewire_softc *sc = device_private(fc->bdev);
554 struct firewire_dev_list *devlist;
555 struct firewire_dev_comm *fdc;
556 struct crom_src *src;
557 uint32_t *newrom;
558
559 if (fc->status == FWBUSMGRELECT)
560 callout_stop(&fc->bmr_callout);
561
562 fc->status = new_status;
563 fw_reset_csr(fc);
564
565 if (fc->status == FWBUSNOTREADY)
566 fw_init_crom(fc);
567
568 fw_reset_crom(fc);
569
570 /* How many safe this access? */
571 SLIST_FOREACH(devlist, &sc->devlist, link) {
572 fdc = device_private(devlist->dev);
573 if (fdc->post_busreset != NULL)
574 fdc->post_busreset(fdc);
575 }
576
577 /*
578 * If the old config rom needs to be overwritten,
579 * bump the businfo.generation indicator to
580 * indicate that we need to be reprobed
581 * See 1394a-2000 8.3.2.5.4 for more details.
582 * generation starts at 2 and rolls over at 0xF
583 * back to 2.
584 *
585 * A generation of 0 indicates a device
586 * that is not 1394a-2000 compliant.
587 * A generation of 1 indicates a device that
588 * does not change it's Bus Info Block or
589 * Configuration ROM.
590 */
591 #define FW_MAX_GENERATION 0xF
592 newrom = malloc(CROMSIZE, M_FW, M_NOWAIT | M_ZERO);
593 src = &fc->crom_src_buf->src;
594 crom_load(src, newrom, CROMSIZE);
595 if (memcmp(newrom, fc->config_rom, CROMSIZE) != 0) {
596 if (src->businfo.generation++ > FW_MAX_GENERATION)
597 src->businfo.generation = FW_GENERATION_CHANGEABLE;
598 memcpy((void *)fc->config_rom, newrom, CROMSIZE);
599 }
600 free(newrom, M_FW);
601 }
602
603 /* Call once after reboot */
604 void
605 fw_init(struct firewire_comm *fc)
606 {
607 int i;
608
609 fc->arq->queued = 0;
610 fc->ars->queued = 0;
611 fc->atq->queued = 0;
612 fc->ats->queued = 0;
613
614 fc->arq->buf = NULL;
615 fc->ars->buf = NULL;
616 fc->atq->buf = NULL;
617 fc->ats->buf = NULL;
618
619 fc->arq->flag = 0;
620 fc->ars->flag = 0;
621 fc->atq->flag = 0;
622 fc->ats->flag = 0;
623
624 STAILQ_INIT(&fc->atq->q);
625 STAILQ_INIT(&fc->ats->q);
626 mutex_init(&fc->arq->q_mtx, MUTEX_DEFAULT, IPL_VM);
627 mutex_init(&fc->ars->q_mtx, MUTEX_DEFAULT, IPL_VM);
628 mutex_init(&fc->atq->q_mtx, MUTEX_DEFAULT, IPL_VM);
629 mutex_init(&fc->ats->q_mtx, MUTEX_DEFAULT, IPL_VM);
630
631 for (i = 0; i < fc->nisodma; i++) {
632 fc->it[i]->queued = 0;
633 fc->ir[i]->queued = 0;
634
635 fc->it[i]->start = NULL;
636 fc->ir[i]->start = NULL;
637
638 fc->it[i]->buf = NULL;
639 fc->ir[i]->buf = NULL;
640
641 fc->it[i]->flag = FWXFERQ_STREAM;
642 fc->ir[i]->flag = FWXFERQ_STREAM;
643
644 STAILQ_INIT(&fc->it[i]->q);
645 STAILQ_INIT(&fc->ir[i]->q);
646 }
647
648 fc->arq->maxq = FWMAXQUEUE;
649 fc->ars->maxq = FWMAXQUEUE;
650 fc->atq->maxq = FWMAXQUEUE;
651 fc->ats->maxq = FWMAXQUEUE;
652
653 for (i = 0; i < fc->nisodma; i++) {
654 fc->ir[i]->maxq = FWMAXQUEUE;
655 fc->it[i]->maxq = FWMAXQUEUE;
656 }
657
658 CSRARC(fc, TOPO_MAP) = 0x3f1 << 16;
659 CSRARC(fc, TOPO_MAP + 4) = 1;
660 CSRARC(fc, SPED_MAP) = 0x3f1 << 16;
661 CSRARC(fc, SPED_MAP + 4) = 1;
662
663 STAILQ_INIT(&fc->devices);
664
665 /* Initialize Async handlers */
666 STAILQ_INIT(&fc->binds);
667 for (i = 0; i < 0x40; i++)
668 STAILQ_INIT(&fc->tlabels[i]);
669
670 /* DV depend CSRs see blue book */
671 #if 0
672 CSRARC(fc, oMPR) = 0x3fff0001; /* # output channel = 1 */
673 CSRARC(fc, oPCR) = 0x8000007a;
674 for (i = 4; i < 0x7c/4; i+=4)
675 CSRARC(fc, i + oPCR) = 0x8000007a;
676
677 CSRARC(fc, iMPR) = 0x00ff0001; /* # input channel = 1 */
678 CSRARC(fc, iPCR) = 0x803f0000;
679 for (i = 4; i < 0x7c/4; i+=4)
680 CSRARC(fc, i + iPCR) = 0x0;
681 #endif
682
683 fc->crom_src_buf = NULL;
684 }
685
686 void
687 fw_destroy(struct firewire_comm *fc)
688 {
689 mutex_destroy(&fc->arq->q_mtx);
690 mutex_destroy(&fc->ars->q_mtx);
691 mutex_destroy(&fc->atq->q_mtx);
692 mutex_destroy(&fc->ats->q_mtx);
693 }
694
695 #define BIND_CMP(addr, fwb) \
696 (((addr) < (fwb)->start) ? -1 : ((fwb)->end < (addr)) ? 1 : 0)
697
698 /*
699 * To lookup bound process from IEEE1394 address.
700 */
701 struct fw_bind *
702 fw_bindlookup(struct firewire_comm *fc, uint16_t dest_hi, uint32_t dest_lo)
703 {
704 u_int64_t addr;
705 struct fw_bind *tfw, *r = NULL;
706
707 addr = ((u_int64_t)dest_hi << 32) | dest_lo;
708 mutex_enter(&fc->fc_mtx);
709 STAILQ_FOREACH(tfw, &fc->binds, fclist)
710 if (BIND_CMP(addr, tfw) == 0) {
711 r = tfw;
712 break;
713 }
714 mutex_exit(&fc->fc_mtx);
715 return r;
716 }
717
718 /*
719 * To bind IEEE1394 address block to process.
720 */
721 int
722 fw_bindadd(struct firewire_comm *fc, struct fw_bind *fwb)
723 {
724 struct fw_bind *tfw, *prev = NULL;
725 int r = 0;
726
727 if (fwb->start > fwb->end) {
728 aprint_error_dev(fc->bdev, "invalid range\n");
729 return EINVAL;
730 }
731
732 mutex_enter(&fc->fc_mtx);
733 STAILQ_FOREACH(tfw, &fc->binds, fclist) {
734 if (fwb->end < tfw->start)
735 break;
736 prev = tfw;
737 }
738 if (prev == NULL)
739 STAILQ_INSERT_HEAD(&fc->binds, fwb, fclist);
740 else if (prev->end < fwb->start)
741 STAILQ_INSERT_AFTER(&fc->binds, prev, fwb, fclist);
742 else {
743 aprint_error_dev(fc->bdev, "bind failed\n");
744 r = EBUSY;
745 }
746 mutex_exit(&fc->fc_mtx);
747 return r;
748 }
749
750 /*
751 * To free IEEE1394 address block.
752 */
753 int
754 fw_bindremove(struct firewire_comm *fc, struct fw_bind *fwb)
755 {
756 #if 0
757 struct fw_xfer *xfer, *next;
758 #endif
759 struct fw_bind *tfw;
760
761 mutex_enter(&fc->fc_mtx);
762 STAILQ_FOREACH(tfw, &fc->binds, fclist)
763 if (tfw == fwb) {
764 STAILQ_REMOVE(&fc->binds, fwb, fw_bind, fclist);
765 mutex_exit(&fc->fc_mtx);
766 goto found;
767 }
768
769 mutex_exit(&fc->fc_mtx);
770 aprint_error_dev(fc->bdev, "no such binding\n");
771 return 1;
772 found:
773 #if 0
774 /* shall we do this? */
775 for (xfer = STAILQ_FIRST(&fwb->xferlist); xfer != NULL; xfer = next) {
776 next = STAILQ_NEXT(xfer, link);
777 fw_xfer_free(xfer);
778 }
779 STAILQ_INIT(&fwb->xferlist);
780 #endif
781
782 return 0;
783 }
784
785 int
786 fw_xferlist_add(struct fw_xferlist *q, struct malloc_type *type, int slen,
787 int rlen, int n, struct firewire_comm *fc, void *sc,
788 void (*hand)(struct fw_xfer *))
789 {
790 struct fw_xfer *xfer;
791 int i;
792
793 for (i = 0; i < n; i++) {
794 xfer = fw_xfer_alloc_buf(type, slen, rlen);
795 if (xfer == NULL)
796 return n;
797 xfer->fc = fc;
798 xfer->sc = sc;
799 xfer->hand = hand;
800 STAILQ_INSERT_TAIL(q, xfer, link);
801 }
802 return n;
803 }
804
805 void
806 fw_xferlist_remove(struct fw_xferlist *q)
807 {
808 struct fw_xfer *xfer, *next;
809
810 for (xfer = STAILQ_FIRST(q); xfer != NULL; xfer = next) {
811 next = STAILQ_NEXT(xfer, link);
812 fw_xfer_free_buf(xfer);
813 }
814 STAILQ_INIT(q);
815 }
816
817 /*
818 * To allocate IEEE1394 XFER structure.
819 */
820 struct fw_xfer *
821 fw_xfer_alloc(struct malloc_type *type)
822 {
823 struct fw_xfer *xfer;
824
825 xfer = malloc(sizeof(struct fw_xfer), type, M_NOWAIT | M_ZERO);
826 if (xfer == NULL)
827 return xfer;
828
829 xfer->malloc = type;
830 cv_init(&xfer->cv, "fwxfer");
831
832 return xfer;
833 }
834
835 struct fw_xfer *
836 fw_xfer_alloc_buf(struct malloc_type *type, int send_len, int recv_len)
837 {
838 struct fw_xfer *xfer;
839
840 xfer = fw_xfer_alloc(type);
841 if (xfer == NULL)
842 return NULL;
843 xfer->send.pay_len = send_len;
844 xfer->recv.pay_len = recv_len;
845 if (send_len > 0) {
846 xfer->send.payload = malloc(send_len, type, M_NOWAIT | M_ZERO);
847 if (xfer->send.payload == NULL) {
848 fw_xfer_free(xfer);
849 return NULL;
850 }
851 }
852 if (recv_len > 0) {
853 xfer->recv.payload = malloc(recv_len, type, M_NOWAIT);
854 if (xfer->recv.payload == NULL) {
855 if (xfer->send.payload != NULL)
856 free(xfer->send.payload, type);
857 fw_xfer_free(xfer);
858 return NULL;
859 }
860 }
861 return xfer;
862 }
863
864 /*
865 * IEEE1394 XFER post process.
866 */
867 void
868 fw_xfer_done(struct fw_xfer *xfer)
869 {
870
871 if (xfer->hand == NULL) {
872 aprint_error_dev(xfer->fc->bdev, "hand == NULL\n");
873 return;
874 }
875
876 if (xfer->fc == NULL)
877 panic("fw_xfer_done: why xfer->fc is NULL?");
878
879 fw_tl_free(xfer->fc, xfer);
880 xfer->hand(xfer);
881 }
882
883 void
884 fw_xfer_unload(struct fw_xfer* xfer)
885 {
886
887 if (xfer == NULL)
888 return;
889 if (xfer->flag & FWXF_INQ) {
890 aprint_error_dev(xfer->fc->bdev, "fw_xfer_free FWXF_INQ\n");
891 mutex_enter(&xfer->q->q_mtx);
892 STAILQ_REMOVE(&xfer->q->q, xfer, fw_xfer, link);
893 #if 0
894 xfer->q->queued--;
895 #endif
896 mutex_exit(&xfer->q->q_mtx);
897 }
898 if (xfer->fc != NULL) {
899 #if 1
900 if (xfer->flag == FWXF_START)
901 /*
902 * This could happen if:
903 * 1. We call fwohci_arcv() before fwohci_txd().
904 * 2. firewire_watch() is called.
905 */
906 aprint_error_dev(xfer->fc->bdev,
907 "fw_xfer_free FWXF_START\n");
908 #endif
909 }
910 xfer->flag = FWXF_INIT;
911 xfer->resp = 0;
912 }
913
914 /*
915 * To free IEEE1394 XFER structure.
916 */
917 void
918 fw_xfer_free(struct fw_xfer* xfer)
919 {
920
921 if (xfer == NULL) {
922 aprint_error("fw_xfer_free: xfer == NULL\n");
923 return;
924 }
925 fw_xfer_unload(xfer);
926 cv_destroy(&xfer->cv);
927 free(xfer, xfer->malloc);
928 }
929
930 void
931 fw_xfer_free_buf(struct fw_xfer* xfer)
932 {
933
934 if (xfer == NULL) {
935 aprint_error("fw_xfer_free_buf: xfer == NULL\n");
936 return;
937 }
938 fw_xfer_unload(xfer);
939 if (xfer->send.payload != NULL) {
940 free(xfer->send.payload, xfer->malloc);
941 }
942 if (xfer->recv.payload != NULL) {
943 free(xfer->recv.payload, xfer->malloc);
944 }
945 cv_destroy(&xfer->cv);
946 free(xfer, xfer->malloc);
947 }
948
949 void
950 fw_asy_callback_free(struct fw_xfer *xfer)
951 {
952
953 #if 0
954 printf("asyreq done flag=%d resp=%d\n", xfer->flag, xfer->resp);
955 #endif
956 fw_xfer_free(xfer);
957 }
958
959 /*
960 * To receive self ID.
961 */
962 void
963 fw_sidrcv(struct firewire_comm* fc, uint32_t *sid, u_int len)
964 {
965 uint32_t *p;
966 union fw_self_id *self_id;
967 u_int i, j, node, c_port = 0, i_branch = 0;
968
969 fc->sid_cnt = len / (sizeof(uint32_t) * 2);
970 fc->max_node = fc->nodeid & 0x3f;
971 CSRARC(fc, NODE_IDS) = ((uint32_t)fc->nodeid) << 16;
972 fc->status = FWBUSCYMELECT;
973 fc->topology_map->crc_len = 2;
974 fc->topology_map->generation++;
975 fc->topology_map->self_id_count = 0;
976 fc->topology_map->node_count = 0;
977 fc->speed_map->generation++;
978 fc->speed_map->crc_len = 1 + (64*64 + 3) / 4;
979 self_id = fc->topology_map->self_id;
980 for (i = 0; i < fc->sid_cnt; i++) {
981 if (sid[1] != ~sid[0]) {
982 aprint_error_dev(fc->bdev,
983 "ERROR invalid self-id packet\n");
984 sid += 2;
985 continue;
986 }
987 *self_id = *((union fw_self_id *)sid);
988 fc->topology_map->crc_len++;
989 if (self_id->p0.sequel == 0) {
990 fc->topology_map->node_count++;
991 c_port = 0;
992 if (firewire_debug)
993 fw_print_sid(sid[0]);
994 node = self_id->p0.phy_id;
995 if (fc->max_node < node)
996 fc->max_node = self_id->p0.phy_id;
997 /* XXX I'm not sure this is the right speed_map */
998 fc->speed_map->speed[node][node] =
999 self_id->p0.phy_speed;
1000 for (j = 0; j < node; j++)
1001 fc->speed_map->speed[j][node] =
1002 fc->speed_map->speed[node][j] =
1003 min(fc->speed_map->speed[j][j],
1004 self_id->p0.phy_speed);
1005 if ((fc->irm == -1 || self_id->p0.phy_id > fc->irm) &&
1006 (self_id->p0.link_active && self_id->p0.contender))
1007 fc->irm = self_id->p0.phy_id;
1008 if (self_id->p0.port0 >= 0x2)
1009 c_port++;
1010 if (self_id->p0.port1 >= 0x2)
1011 c_port++;
1012 if (self_id->p0.port2 >= 0x2)
1013 c_port++;
1014 }
1015 if (c_port > 2)
1016 i_branch += (c_port - 2);
1017 sid += 2;
1018 self_id++;
1019 fc->topology_map->self_id_count++;
1020 }
1021 /* CRC */
1022 fc->topology_map->crc =
1023 fw_crc16((uint32_t *)&fc->topology_map->generation,
1024 fc->topology_map->crc_len * 4);
1025 fc->speed_map->crc = fw_crc16((uint32_t *)&fc->speed_map->generation,
1026 fc->speed_map->crc_len * 4);
1027 /* byteswap and copy to CSR */
1028 p = (uint32_t *)fc->topology_map;
1029 for (i = 0; i <= fc->topology_map->crc_len; i++)
1030 CSRARC(fc, TOPO_MAP + i * 4) = htonl(*p++);
1031 p = (uint32_t *)fc->speed_map;
1032 CSRARC(fc, SPED_MAP) = htonl(*p++);
1033 CSRARC(fc, SPED_MAP + 4) = htonl(*p++);
1034 /* don't byte-swap uint8_t array */
1035 memcpy(&CSRARC(fc, SPED_MAP + 8), p, (fc->speed_map->crc_len - 1) * 4);
1036
1037 fc->max_hop = fc->max_node - i_branch;
1038 aprint_normal_dev(fc->bdev, "%d nodes, maxhop <= %d %s irm(%d)%s\n",
1039 fc->max_node + 1, fc->max_hop,
1040 (fc->irm == -1) ? "Not IRM capable" : "cable IRM",
1041 fc->irm,
1042 (fc->irm == fc->nodeid) ? " (me)" : "");
1043
1044 if (try_bmr && (fc->irm != -1) && (CSRARC(fc, BUS_MGR_ID) == 0x3f)) {
1045 if (fc->irm == fc->nodeid) {
1046 fc->status = FWBUSMGRDONE;
1047 CSRARC(fc, BUS_MGR_ID) = fc->set_bmr(fc, fc->irm);
1048 fw_bmr(fc);
1049 } else {
1050 fc->status = FWBUSMGRELECT;
1051 callout_schedule(&fc->bmr_callout, hz/8);
1052 }
1053 } else
1054 fc->status = FWBUSMGRDONE;
1055
1056 callout_schedule(&fc->busprobe_callout, hz/4);
1057 }
1058
1059 /*
1060 * Generic packet receiving process.
1061 */
1062 void
1063 fw_rcv(struct fw_rcv_buf *rb)
1064 {
1065 struct fw_pkt *fp, *resfp;
1066 struct fw_bind *bind;
1067 int tcode;
1068 int i, len, oldstate;
1069 #if 0
1070 {
1071 uint32_t *qld;
1072 int i;
1073 qld = (uint32_t *)buf;
1074 printf("spd %d len:%d\n", spd, len);
1075 for (i = 0; i <= len && i < 32; i+= 4) {
1076 printf("0x%08x ", ntohl(qld[i/4]));
1077 if ((i % 16) == 15) printf("\n");
1078 }
1079 if ((i % 16) != 15) printf("\n");
1080 }
1081 #endif
1082 fp = (struct fw_pkt *)rb->vec[0].iov_base;
1083 tcode = fp->mode.common.tcode;
1084 switch (tcode) {
1085 case FWTCODE_WRES:
1086 case FWTCODE_RRESQ:
1087 case FWTCODE_RRESB:
1088 case FWTCODE_LRES:
1089 rb->xfer = fw_tl2xfer(rb->fc, fp->mode.hdr.src,
1090 fp->mode.hdr.tlrt >> 2, tcode);
1091 if (rb->xfer == NULL) {
1092 aprint_error_dev(rb->fc->bdev, "unknown response"
1093 " %s(%x) src=0x%x tl=0x%x rt=%d data=0x%x\n",
1094 tcode_str[tcode], tcode,
1095 fp->mode.hdr.src,
1096 fp->mode.hdr.tlrt >> 2,
1097 fp->mode.hdr.tlrt & 3,
1098 fp->mode.rresq.data);
1099 #if 0
1100 printf("try ad-hoc work around!!\n");
1101 rb->xfer = fw_tl2xfer(rb->fc, fp->mode.hdr.src,
1102 (fp->mode.hdr.tlrt >> 2) ^ 3);
1103 if (rb->xfer == NULL) {
1104 printf("no use...\n");
1105 return;
1106 }
1107 #else
1108 return;
1109 #endif
1110 }
1111 fw_rcv_copy(rb);
1112 if (rb->xfer->recv.hdr.mode.wres.rtcode != RESP_CMP)
1113 rb->xfer->resp = EIO;
1114 else
1115 rb->xfer->resp = 0;
1116 /* make sure the packet is drained in AT queue */
1117 oldstate = rb->xfer->flag;
1118 rb->xfer->flag = FWXF_RCVD;
1119 switch (oldstate) {
1120 case FWXF_SENT:
1121 fw_xfer_done(rb->xfer);
1122 break;
1123 case FWXF_START:
1124 #if 0
1125 if (firewire_debug)
1126 printf("not sent yet tl=%x\n", rb->xfer->tl);
1127 #endif
1128 break;
1129 default:
1130 aprint_error_dev(rb->fc->bdev,
1131 "unexpected flag 0x%02x\n", rb->xfer->flag);
1132 }
1133 return;
1134 case FWTCODE_WREQQ:
1135 case FWTCODE_WREQB:
1136 case FWTCODE_RREQQ:
1137 case FWTCODE_RREQB:
1138 case FWTCODE_LREQ:
1139 bind = fw_bindlookup(rb->fc, fp->mode.rreqq.dest_hi,
1140 fp->mode.rreqq.dest_lo);
1141 if (bind == NULL) {
1142 #if 1
1143 aprint_error_dev(rb->fc->bdev, "Unknown service addr"
1144 " 0x%04x:0x%08x %s(%x) src=0x%x data=%x\n",
1145 fp->mode.wreqq.dest_hi, fp->mode.wreqq.dest_lo,
1146 tcode_str[tcode], tcode,
1147 fp->mode.hdr.src, ntohl(fp->mode.wreqq.data));
1148 #endif
1149 if (rb->fc->status == FWBUSINIT) {
1150 aprint_error_dev(rb->fc->bdev,
1151 "cannot respond(bus reset)!\n");
1152 return;
1153 }
1154 rb->xfer = fw_xfer_alloc(M_FW);
1155 if (rb->xfer == NULL)
1156 return;
1157 rb->xfer->send.spd = rb->spd;
1158 rb->xfer->send.pay_len = 0;
1159 resfp = &rb->xfer->send.hdr;
1160 switch (tcode) {
1161 case FWTCODE_WREQQ:
1162 case FWTCODE_WREQB:
1163 resfp->mode.hdr.tcode = FWTCODE_WRES;
1164 break;
1165 case FWTCODE_RREQQ:
1166 resfp->mode.hdr.tcode = FWTCODE_RRESQ;
1167 break;
1168 case FWTCODE_RREQB:
1169 resfp->mode.hdr.tcode = FWTCODE_RRESB;
1170 break;
1171 case FWTCODE_LREQ:
1172 resfp->mode.hdr.tcode = FWTCODE_LRES;
1173 break;
1174 }
1175 resfp->mode.hdr.dst = fp->mode.hdr.src;
1176 resfp->mode.hdr.tlrt = fp->mode.hdr.tlrt;
1177 resfp->mode.hdr.pri = fp->mode.hdr.pri;
1178 resfp->mode.rresb.rtcode = RESP_ADDRESS_ERROR;
1179 resfp->mode.rresb.extcode = 0;
1180 resfp->mode.rresb.len = 0;
1181 /*
1182 rb->xfer->hand = fw_xferwake;
1183 */
1184 rb->xfer->hand = fw_xfer_free;
1185 if (fw_asyreq(rb->fc, -1, rb->xfer)) {
1186 fw_xfer_free(rb->xfer);
1187 return;
1188 }
1189 return;
1190 }
1191 len = 0;
1192 for (i = 0; i < rb->nvec; i++)
1193 len += rb->vec[i].iov_len;
1194 mutex_enter(&bind->fwb_mtx);
1195 rb->xfer = STAILQ_FIRST(&bind->xferlist);
1196 if (rb->xfer == NULL) {
1197 mutex_exit(&bind->fwb_mtx);
1198 #if 1
1199 aprint_error_dev(rb->fc->bdev,
1200 "Discard a packet for this bind.\n");
1201 #endif
1202 return;
1203 }
1204 STAILQ_REMOVE_HEAD(&bind->xferlist, link);
1205 mutex_exit(&bind->fwb_mtx);
1206 fw_rcv_copy(rb);
1207 rb->xfer->hand(rb->xfer);
1208 return;
1209
1210 default:
1211 aprint_error_dev(rb->fc->bdev, "unknow tcode %d\n", tcode);
1212 break;
1213 }
1214 }
1215
1216 /*
1217 * CRC16 check-sum for IEEE1394 register blocks.
1218 */
1219 uint16_t
1220 fw_crc16(uint32_t *ptr, uint32_t len)
1221 {
1222 uint32_t i, sum, crc = 0;
1223 int shift;
1224
1225 len = (len + 3) & ~3;
1226 for (i = 0; i < len; i+= 4) {
1227 for (shift = 28; shift >= 0; shift -= 4) {
1228 sum = ((crc >> 12) ^ (ptr[i/4] >> shift)) & 0xf;
1229 crc = (crc << 4) ^ (sum << 12) ^ (sum << 5) ^ sum;
1230 }
1231 crc &= 0xffff;
1232 }
1233 return (uint16_t)crc;
1234 }
1235
1236 int
1237 fw_open_isodma(struct firewire_comm *fc, int tx)
1238 {
1239 struct fw_xferq **xferqa;
1240 struct fw_xferq *xferq;
1241 int i;
1242
1243 if (tx)
1244 xferqa = fc->it;
1245 else
1246 xferqa = fc->ir;
1247
1248 mutex_enter(&fc->fc_mtx);
1249 for (i = 0; i < fc->nisodma; i++) {
1250 xferq = xferqa[i];
1251 if (!(xferq->flag & FWXFERQ_OPEN)) {
1252 xferq->flag |= FWXFERQ_OPEN;
1253 break;
1254 }
1255 }
1256 if (i == fc->nisodma) {
1257 aprint_error_dev(fc->bdev, "no free dma channel (tx=%d)\n", tx);
1258 i = -1;
1259 }
1260 mutex_exit(&fc->fc_mtx);
1261 return i;
1262 }
1263
1264 /*
1265 * Async. request with given xfer structure.
1266 */
1267 static void
1268 fw_asystart(struct fw_xfer *xfer)
1269 {
1270 struct firewire_comm *fc = xfer->fc;
1271
1272 /* Protect from interrupt/timeout */
1273 mutex_enter(&xfer->q->q_mtx);
1274 xfer->flag = FWXF_INQ;
1275 STAILQ_INSERT_TAIL(&xfer->q->q, xfer, link);
1276 #if 0
1277 xfer->q->queued++;
1278 #endif
1279 mutex_exit(&xfer->q->q_mtx);
1280 /* XXX just queue for mbuf */
1281 if (xfer->mbuf == NULL)
1282 xfer->q->start(fc);
1283 return;
1284 }
1285
1286 static void
1287 firewire_xfer_timeout(struct firewire_comm *fc)
1288 {
1289 struct fw_xfer *xfer;
1290 struct timeval tv;
1291 struct timeval split_timeout;
1292 STAILQ_HEAD(, fw_xfer) xfer_timeout;
1293 int i;
1294
1295 split_timeout.tv_sec = 0;
1296 split_timeout.tv_usec = 200 * 1000; /* 200 msec */
1297
1298 microtime(&tv);
1299 timersub(&tv, &split_timeout, &tv);
1300 STAILQ_INIT(&xfer_timeout);
1301
1302 mutex_enter(&fc->tlabel_lock);
1303 for (i = 0; i < 0x40; i++) {
1304 while ((xfer = STAILQ_FIRST(&fc->tlabels[i])) != NULL) {
1305 if ((xfer->flag & FWXF_SENT) == 0)
1306 /* not sent yet */
1307 break;
1308 if (timercmp(&xfer->tv, &tv, >))
1309 /* the rests are newer than this */
1310 break;
1311 aprint_error_dev(fc->bdev,
1312 "split transaction timeout: tl=0x%x flag=0x%02x\n",
1313 i, xfer->flag);
1314 fw_dump_hdr(&xfer->send.hdr, "send");
1315 xfer->resp = ETIMEDOUT;
1316 STAILQ_REMOVE_HEAD(&fc->tlabels[i], tlabel);
1317 STAILQ_INSERT_TAIL(&xfer_timeout, xfer, tlabel);
1318 }
1319 }
1320 mutex_exit(&fc->tlabel_lock);
1321 fc->timeout(fc);
1322
1323 STAILQ_FOREACH(xfer, &xfer_timeout, tlabel)
1324 xfer->hand(xfer);
1325 }
1326
1327 #define WATCHDOG_HZ 10
1328 static void
1329 firewire_watchdog(void *arg)
1330 {
1331 struct firewire_comm *fc;
1332 static int watchdog_clock = 0;
1333
1334 fc = (struct firewire_comm *)arg;
1335
1336 /*
1337 * At boot stage, the device interrupt is disabled and
1338 * We encounter a timeout easily. To avoid this,
1339 * ignore clock interrupt for a while.
1340 */
1341 if (watchdog_clock > WATCHDOG_HZ * 15)
1342 firewire_xfer_timeout(fc);
1343 else
1344 watchdog_clock++;
1345
1346 callout_schedule(&fc->timeout_callout, hz / WATCHDOG_HZ);
1347 }
1348
1349 static void
1350 fw_xferq_drain(struct fw_xferq *xferq)
1351 {
1352 struct fw_xfer *xfer;
1353
1354 while ((xfer = STAILQ_FIRST(&xferq->q)) != NULL) {
1355 STAILQ_REMOVE_HEAD(&xferq->q, link);
1356 #if 0
1357 xferq->queued--;
1358 #endif
1359 xfer->resp = EAGAIN;
1360 xfer->flag = FWXF_SENTERR;
1361 fw_xfer_done(xfer);
1362 }
1363 }
1364
1365 static void
1366 fw_reset_csr(struct firewire_comm *fc)
1367 {
1368 int i;
1369
1370 CSRARC(fc, STATE_CLEAR) =
1371 1 << 23 | 0 << 17 | 1 << 16 | 1 << 15 | 1 << 14;
1372 CSRARC(fc, STATE_SET) = CSRARC(fc, STATE_CLEAR);
1373 CSRARC(fc, NODE_IDS) = 0x3f;
1374
1375 CSRARC(fc, TOPO_MAP + 8) = 0;
1376 fc->irm = -1;
1377
1378 fc->max_node = -1;
1379
1380 for (i = 2; i < 0x100/4 - 2; i++)
1381 CSRARC(fc, SPED_MAP + i * 4) = 0;
1382 CSRARC(fc, STATE_CLEAR) =
1383 1 << 23 | 0 << 17 | 1 << 16 | 1 << 15 | 1 << 14;
1384 CSRARC(fc, STATE_SET) = CSRARC(fc, STATE_CLEAR);
1385 CSRARC(fc, RESET_START) = 0;
1386 CSRARC(fc, SPLIT_TIMEOUT_HI) = 0;
1387 CSRARC(fc, SPLIT_TIMEOUT_LO) = 800 << 19;
1388 CSRARC(fc, CYCLE_TIME) = 0x0;
1389 CSRARC(fc, BUS_TIME) = 0x0;
1390 CSRARC(fc, BUS_MGR_ID) = 0x3f;
1391 CSRARC(fc, BANDWIDTH_AV) = 4915;
1392 CSRARC(fc, CHANNELS_AV_HI) = 0xffffffff;
1393 CSRARC(fc, CHANNELS_AV_LO) = 0xffffffff;
1394 CSRARC(fc, IP_CHANNELS) = (1 << 31);
1395
1396 CSRARC(fc, CONF_ROM) = 0x04 << 24;
1397 CSRARC(fc, CONF_ROM + 4) = 0x31333934; /* means strings 1394 */
1398 CSRARC(fc, CONF_ROM + 8) =
1399 1 << 31 | 1 << 30 | 1 << 29 | 1 << 28 | 0xff << 16 | 0x09 << 8;
1400 CSRARC(fc, CONF_ROM + 0xc) = 0;
1401
1402 /* DV depend CSRs see blue book */
1403 CSRARC(fc, oPCR) &= ~DV_BROADCAST_ON;
1404 CSRARC(fc, iPCR) &= ~DV_BROADCAST_ON;
1405
1406 CSRARC(fc, STATE_CLEAR) &= ~(1 << 23 | 1 << 15 | 1 << 14);
1407 CSRARC(fc, STATE_SET) = CSRARC(fc, STATE_CLEAR);
1408 }
1409
1410 static void
1411 fw_init_crom(struct firewire_comm *fc)
1412 {
1413 struct crom_src *src;
1414
1415 src = &fc->crom_src_buf->src;
1416 memset(src, 0, sizeof(struct crom_src));
1417
1418 /* BUS info sample */
1419 src->hdr.info_len = 4;
1420
1421 src->businfo.bus_name = CSR_BUS_NAME_IEEE1394;
1422
1423 src->businfo.irmc = 1;
1424 src->businfo.cmc = 1;
1425 src->businfo.isc = 1;
1426 src->businfo.bmc = 1;
1427 src->businfo.pmc = 0;
1428 src->businfo.cyc_clk_acc = 100;
1429 src->businfo.max_rec = fc->maxrec;
1430 src->businfo.max_rom = MAXROM_4;
1431 src->businfo.generation = FW_GENERATION_CHANGEABLE;
1432 src->businfo.link_spd = fc->speed;
1433
1434 src->businfo.eui64.hi = fc->eui.hi;
1435 src->businfo.eui64.lo = fc->eui.lo;
1436
1437 STAILQ_INIT(&src->chunk_list);
1438
1439 fc->crom_src = src;
1440 fc->crom_root = &fc->crom_src_buf->root;
1441 }
1442
1443 static void
1444 fw_reset_crom(struct firewire_comm *fc)
1445 {
1446 struct crom_src_buf *buf;
1447 struct crom_src *src;
1448 struct crom_chunk *root;
1449
1450 buf = fc->crom_src_buf;
1451 src = fc->crom_src;
1452 root = fc->crom_root;
1453
1454 STAILQ_INIT(&src->chunk_list);
1455
1456 memset(root, 0, sizeof(struct crom_chunk));
1457 crom_add_chunk(src, NULL, root, 0);
1458 crom_add_entry(root, CSRKEY_NCAP, 0x0083c0); /* XXX */
1459 /* private company_id */
1460 crom_add_entry(root, CSRKEY_VENDOR, CSRVAL_VENDOR_PRIVATE);
1461 crom_add_simple_text(src, root, &buf->vendor, PROJECT_STR);
1462 crom_add_entry(root, CSRKEY_HW, __NetBSD_Version__);
1463 crom_add_simple_text(src, root, &buf->hw, hostname);
1464 }
1465
1466 /*
1467 * dump packet header
1468 */
1469 static void
1470 fw_dump_hdr(struct fw_pkt *fp, const char *prefix)
1471 {
1472
1473 printf("%s: dst=0x%02x tl=0x%02x rt=%d tcode=0x%x pri=0x%x "
1474 "src=0x%03x\n", prefix,
1475 fp->mode.hdr.dst & 0x3f,
1476 fp->mode.hdr.tlrt >> 2, fp->mode.hdr.tlrt & 3,
1477 fp->mode.hdr.tcode, fp->mode.hdr.pri,
1478 fp->mode.hdr.src);
1479 }
1480
1481 /*
1482 * To free transaction label.
1483 */
1484 static void
1485 fw_tl_free(struct firewire_comm *fc, struct fw_xfer *xfer)
1486 {
1487 struct fw_xfer *txfer;
1488
1489 if (xfer->tl < 0)
1490 return;
1491
1492 mutex_enter(&fc->tlabel_lock);
1493 #if 1 /* make sure the label is allocated */
1494 STAILQ_FOREACH(txfer, &fc->tlabels[xfer->tl], tlabel)
1495 if (txfer == xfer)
1496 break;
1497 if (txfer == NULL) {
1498 mutex_exit(&fc->tlabel_lock);
1499 aprint_error_dev(fc->bdev,
1500 "the xfer is not in the queue (tlabel=%d, flag=0x%x)\n",
1501 xfer->tl, xfer->flag);
1502 fw_dump_hdr(&xfer->send.hdr, "send");
1503 fw_dump_hdr(&xfer->recv.hdr, "recv");
1504 KASSERT(FALSE);
1505 return;
1506 }
1507 #endif
1508
1509 STAILQ_REMOVE(&fc->tlabels[xfer->tl], xfer, fw_xfer, tlabel);
1510 mutex_exit(&fc->tlabel_lock);
1511 return;
1512 }
1513
1514 /*
1515 * To obtain XFER structure by transaction label.
1516 */
1517 static struct fw_xfer *
1518 fw_tl2xfer(struct firewire_comm *fc, int node, int tlabel, int tcode)
1519 {
1520 struct fw_xfer *xfer;
1521 int req;
1522
1523 mutex_enter(&fc->tlabel_lock);
1524 STAILQ_FOREACH(xfer, &fc->tlabels[tlabel], tlabel)
1525 if (xfer->send.hdr.mode.hdr.dst == node) {
1526 mutex_exit(&fc->tlabel_lock);
1527 KASSERT(xfer->tl == tlabel);
1528 /* extra sanity check */
1529 req = xfer->send.hdr.mode.hdr.tcode;
1530 if (xfer->fc->tcode[req].valid_res != tcode) {
1531 aprint_error_dev(fc->bdev,
1532 "invalid response tcode (0x%x for 0x%x)\n",
1533 tcode, req);
1534 return NULL;
1535 }
1536
1537 if (firewire_debug > 2)
1538 printf("fw_tl2xfer: found tl=%d\n", tlabel);
1539 return xfer;
1540 }
1541 mutex_exit(&fc->tlabel_lock);
1542 if (firewire_debug > 1)
1543 printf("fw_tl2xfer: not found tl=%d\n", tlabel);
1544 return NULL;
1545 }
1546
1547 /*
1548 * To configure PHY.
1549 */
1550 static void
1551 fw_phy_config(struct firewire_comm *fc, int root_node, int gap_count)
1552 {
1553 struct fw_xfer *xfer;
1554 struct fw_pkt *fp;
1555
1556 fc->status = FWBUSPHYCONF;
1557
1558 xfer = fw_xfer_alloc(M_FW);
1559 if (xfer == NULL)
1560 return;
1561 xfer->fc = fc;
1562 xfer->hand = fw_asy_callback_free;
1563
1564 fp = &xfer->send.hdr;
1565 fp->mode.ld[1] = 0;
1566 if (root_node >= 0)
1567 fp->mode.ld[1] |= (root_node & 0x3f) << 24 | 1 << 23;
1568 if (gap_count >= 0)
1569 fp->mode.ld[1] |= 1 << 22 | (gap_count & 0x3f) << 16;
1570 fp->mode.ld[2] = ~fp->mode.ld[1];
1571 /* XXX Dangerous, how to pass PHY packet to device driver */
1572 fp->mode.common.tcode |= FWTCODE_PHY;
1573
1574 if (firewire_debug)
1575 printf("root_node=%d gap_count=%d\n", root_node, gap_count);
1576 fw_asyreq(fc, -1, xfer);
1577 }
1578
1579 /*
1580 * Dump self ID.
1581 */
1582 static void
1583 fw_print_sid(uint32_t sid)
1584 {
1585 union fw_self_id *s;
1586
1587 s = (union fw_self_id *) &sid;
1588 if (s->p0.sequel) {
1589 if (s->p1.sequence_num == FW_SELF_ID_PAGE0)
1590 printf("node:%d p3:%d p4:%d p5:%d p6:%d p7:%d"
1591 "p8:%d p9:%d p10:%d\n",
1592 s->p1.phy_id, s->p1.port3, s->p1.port4,
1593 s->p1.port5, s->p1.port6, s->p1.port7,
1594 s->p1.port8, s->p1.port9, s->p1.port10);
1595 else if (s->p2.sequence_num == FW_SELF_ID_PAGE1)
1596 printf("node:%d p11:%d p12:%d p13:%d p14:%d p15:%d\n",
1597 s->p2.phy_id, s->p2.port11, s->p2.port12,
1598 s->p2.port13, s->p2.port14, s->p2.port15);
1599 else
1600 printf("node:%d Unknown Self ID Page number %d\n",
1601 s->p1.phy_id, s->p1.sequence_num);
1602 } else
1603 printf("node:%d link:%d gap:%d spd:%d con:%d pwr:%d"
1604 " p0:%d p1:%d p2:%d i:%d m:%d\n",
1605 s->p0.phy_id, s->p0.link_active, s->p0.gap_count,
1606 s->p0.phy_speed, s->p0.contender,
1607 s->p0.power_class, s->p0.port0, s->p0.port1,
1608 s->p0.port2, s->p0.initiated_reset, s->p0.more_packets);
1609 }
1610
1611 /*
1612 * To probe devices on the IEEE1394 bus.
1613 */
1614 static void
1615 fw_bus_probe(struct firewire_comm *fc)
1616 {
1617 struct fw_device *fwdev;
1618
1619 mutex_enter(&fc->wait_lock);
1620 fc->status = FWBUSEXPLORE;
1621
1622 /* Invalidate all devices, just after bus reset. */
1623 if (firewire_debug)
1624 printf("iterate and invalidate all nodes\n");
1625 mutex_enter(&fc->fc_mtx);
1626 STAILQ_FOREACH(fwdev, &fc->devices, link)
1627 if (fwdev->status != FWDEVINVAL) {
1628 fwdev->status = FWDEVINVAL;
1629 fwdev->rcnt = 0;
1630 if (firewire_debug)
1631 printf("Invalidate Dev ID: %08x%08x\n",
1632 fwdev->eui.hi, fwdev->eui.lo);
1633 } else
1634 if (firewire_debug)
1635 printf("Dev ID: %08x%08x already invalid\n",
1636 fwdev->eui.hi, fwdev->eui.lo);
1637 mutex_exit(&fc->fc_mtx);
1638
1639 cv_signal(&fc->fc_cv);
1640 mutex_exit(&fc->wait_lock);
1641 }
1642
1643 static int
1644 fw_explore_read_quads(struct fw_device *fwdev, int offset, uint32_t *quad,
1645 int length)
1646 {
1647 struct fw_xfer *xfer;
1648 uint32_t tmp;
1649 int i, error;
1650
1651 for (i = 0; i < length; i++, offset += sizeof(uint32_t)) {
1652 xfer = fwmem_read_quad(fwdev, NULL, -1, 0xffff,
1653 0xf0000000 | offset, (void *)&tmp, fw_xferwake);
1654 if (xfer == NULL)
1655 return -1;
1656 fw_xferwait(xfer);
1657
1658 if (xfer->resp == 0)
1659 quad[i] = ntohl(tmp);
1660
1661 error = xfer->resp;
1662 fw_xfer_free(xfer);
1663 if (error)
1664 return error;
1665 }
1666 return 0;
1667 }
1668
1669
1670 static int
1671 fw_explore_csrblock(struct fw_device *fwdev, int offset, int recur)
1672 {
1673 int err, i, off;
1674 struct csrdirectory *dir;
1675 struct csrreg *reg;
1676
1677
1678 dir = (struct csrdirectory *)&fwdev->csrrom[offset/sizeof(uint32_t)];
1679 err = fw_explore_read_quads(fwdev, CSRROMOFF + offset, (uint32_t *)dir,
1680 1);
1681 if (err)
1682 return -1;
1683
1684 offset += sizeof(uint32_t);
1685 reg = (struct csrreg *)&fwdev->csrrom[offset / sizeof(uint32_t)];
1686 err = fw_explore_read_quads(fwdev, CSRROMOFF + offset, (uint32_t *)reg,
1687 dir->crc_len);
1688 if (err)
1689 return -1;
1690
1691 /* XXX check CRC */
1692
1693 off = CSRROMOFF + offset + sizeof(uint32_t) * (dir->crc_len - 1);
1694 if (fwdev->rommax < off)
1695 fwdev->rommax = off;
1696
1697 if (recur == 0)
1698 return 0;
1699
1700 for (i = 0; i < dir->crc_len; i++, offset += sizeof(uint32_t)) {
1701 if ((reg[i].key & CSRTYPE_MASK) == CSRTYPE_D)
1702 recur = 1;
1703 else if ((reg[i].key & CSRTYPE_MASK) == CSRTYPE_L)
1704 recur = 0;
1705 else
1706 continue;
1707
1708 off = offset + reg[i].val * sizeof(uint32_t);
1709 if (off > CROMSIZE) {
1710 aprint_error_dev(fwdev->fc->bdev, "invalid offset %d\n",
1711 off);
1712 return -1;
1713 }
1714 err = fw_explore_csrblock(fwdev, off, recur);
1715 if (err)
1716 return -1;
1717 }
1718 return 0;
1719 }
1720
1721 static int
1722 fw_explore_node(struct fw_device *dfwdev)
1723 {
1724 struct firewire_comm *fc;
1725 struct fw_device *fwdev, *pfwdev, *tfwdev;
1726 struct csrhdr *hdr;
1727 struct bus_info *binfo;
1728 uint32_t *csr, speed_test = 0;
1729 int err, node;
1730
1731 fc = dfwdev->fc;
1732 csr = dfwdev->csrrom;
1733 node = dfwdev->dst;
1734
1735 /* First quad */
1736 err = fw_explore_read_quads(dfwdev, CSRROMOFF, csr, 1);
1737 if (err) {
1738 aprint_error_dev(fc->bdev,
1739 "node%d: explore_read_quads failure\n", node);
1740 dfwdev->status = FWDEVINVAL;
1741 return -1;
1742 }
1743 hdr = (struct csrhdr *)csr;
1744 if (hdr->info_len != 4) {
1745 if (firewire_debug)
1746 printf("node%d: wrong bus info len(%d)\n",
1747 node, hdr->info_len);
1748 dfwdev->status = FWDEVINVAL;
1749 return -1;
1750 }
1751
1752 /* bus info */
1753 err = fw_explore_read_quads(dfwdev, CSRROMOFF + 0x04, &csr[1], 4);
1754 if (err) {
1755 aprint_error_dev(fc->bdev, "node%d: error reading 0x04\n",
1756 node);
1757 dfwdev->status = FWDEVINVAL;
1758 return -1;
1759 }
1760 binfo = (struct bus_info *)&csr[1];
1761 if (binfo->bus_name != CSR_BUS_NAME_IEEE1394) {
1762 aprint_error_dev(fc->bdev, "node%d: invalid bus name 0x%08x\n",
1763 node, binfo->bus_name);
1764 dfwdev->status = FWDEVINVAL;
1765 return -1;
1766 }
1767 if (firewire_debug)
1768 printf("node(%d) BUS INFO BLOCK:\n"
1769 "irmc(%d) cmc(%d) isc(%d) bmc(%d) pmc(%d) "
1770 "cyc_clk_acc(%d) max_rec(%d) max_rom(%d) "
1771 "generation(%d) link_spd(%d)\n",
1772 node, binfo->irmc, binfo->cmc, binfo->isc,
1773 binfo->bmc, binfo->pmc, binfo->cyc_clk_acc,
1774 binfo->max_rec, binfo->max_rom,
1775 binfo->generation, binfo->link_spd);
1776
1777 mutex_enter(&fc->fc_mtx);
1778 STAILQ_FOREACH(fwdev, &fc->devices, link)
1779 if (FW_EUI64_EQUAL(fwdev->eui, binfo->eui64))
1780 break;
1781 mutex_exit(&fc->fc_mtx);
1782 if (fwdev == NULL) {
1783 /* new device */
1784 fwdev =
1785 malloc(sizeof(struct fw_device), M_FW, M_NOWAIT | M_ZERO);
1786 if (fwdev == NULL) {
1787 if (firewire_debug)
1788 printf("node%d: no memory\n", node);
1789 return -1;
1790 }
1791 fwdev->fc = fc;
1792 fwdev->eui = binfo->eui64;
1793 fwdev->dst = dfwdev->dst;
1794 fwdev->maxrec = dfwdev->maxrec;
1795 fwdev->status = FWDEVNEW;
1796 /*
1797 * Pre-1394a-2000 didn't have link_spd in
1798 * the Bus Info block, so try and use the
1799 * speed map value.
1800 * 1394a-2000 compliant devices only use
1801 * the Bus Info Block link spd value, so
1802 * ignore the speed map alltogether. SWB
1803 */
1804 if (binfo->link_spd == FWSPD_S100 /* 0 */) {
1805 aprint_normal_dev(fc->bdev,
1806 "Pre 1394a-2000 detected\n");
1807 fwdev->speed = fc->speed_map->speed[fc->nodeid][node];
1808 } else
1809 fwdev->speed = binfo->link_spd;
1810 /*
1811 * Test this speed with a read to the CSRROM.
1812 * If it fails, slow down the speed and retry.
1813 */
1814 while (fwdev->speed > FWSPD_S100 /* 0 */) {
1815 err = fw_explore_read_quads(fwdev, CSRROMOFF,
1816 &speed_test, 1);
1817 if (err) {
1818 aprint_error_dev(fc->bdev, "fwdev->speed(%s)"
1819 " decremented due to negotiation\n",
1820 fw_linkspeed[fwdev->speed]);
1821 fwdev->speed--;
1822 } else
1823 break;
1824 }
1825 /*
1826 * If the fwdev is not found in the
1827 * fc->devices TAILQ, then we will add it.
1828 */
1829 pfwdev = NULL;
1830 mutex_enter(&fc->fc_mtx);
1831 STAILQ_FOREACH(tfwdev, &fc->devices, link) {
1832 if (tfwdev->eui.hi > fwdev->eui.hi ||
1833 (tfwdev->eui.hi == fwdev->eui.hi &&
1834 tfwdev->eui.lo > fwdev->eui.lo))
1835 break;
1836 pfwdev = tfwdev;
1837 }
1838 if (pfwdev == NULL)
1839 STAILQ_INSERT_HEAD(&fc->devices, fwdev, link);
1840 else
1841 STAILQ_INSERT_AFTER(&fc->devices, pfwdev, fwdev, link);
1842 mutex_exit(&fc->fc_mtx);
1843
1844 aprint_normal_dev(fc->bdev, "New %s device ID:%08x%08x\n",
1845 fw_linkspeed[fwdev->speed], fwdev->eui.hi, fwdev->eui.lo);
1846 } else {
1847 fwdev->dst = node;
1848 fwdev->status = FWDEVINIT;
1849 /* unchanged ? */
1850 if (memcmp(csr, fwdev->csrrom, sizeof(uint32_t) * 5) == 0) {
1851 if (firewire_debug)
1852 printf("node%d: crom unchanged\n", node);
1853 return 0;
1854 }
1855 }
1856
1857 memset(fwdev->csrrom, 0, CROMSIZE);
1858
1859 /* copy first quad and bus info block */
1860 memcpy(fwdev->csrrom, csr, sizeof(uint32_t) * 5);
1861 fwdev->rommax = CSRROMOFF + sizeof(uint32_t) * 4;
1862
1863 err = fw_explore_csrblock(fwdev, 0x14, 1); /* root directory */
1864
1865 if (err) {
1866 if (firewire_debug)
1867 printf("explore csrblock failed err(%d)\n", err);
1868 fwdev->status = FWDEVINVAL;
1869 fwdev->csrrom[0] = 0;
1870 }
1871 return err;
1872 }
1873
1874 /*
1875 * Find the self_id packet for a node, ignoring sequels.
1876 */
1877 static union fw_self_id *
1878 fw_find_self_id(struct firewire_comm *fc, int node)
1879 {
1880 uint32_t i;
1881 union fw_self_id *s;
1882
1883 for (i = 0; i < fc->topology_map->self_id_count; i++) {
1884 s = &fc->topology_map->self_id[i];
1885 if (s->p0.sequel)
1886 continue;
1887 if (s->p0.phy_id == node)
1888 return s;
1889 }
1890 return 0;
1891 }
1892
1893 static void
1894 fw_explore(struct firewire_comm *fc)
1895 {
1896 struct fw_device *dfwdev;
1897 union fw_self_id *fwsid;
1898 int node, err, i, todo, todo2, trys;
1899 char nodes[63];
1900
1901 todo = 0;
1902 dfwdev = malloc(sizeof(*dfwdev), M_TEMP, M_NOWAIT);
1903 if (dfwdev == NULL)
1904 return;
1905 /* setup dummy fwdev */
1906 dfwdev->fc = fc;
1907 dfwdev->speed = 0;
1908 dfwdev->maxrec = 8; /* 512 */
1909 dfwdev->status = FWDEVINIT;
1910
1911 for (node = 0; node <= fc->max_node; node++) {
1912 /* We don't probe myself and linkdown nodes */
1913 if (node == fc->nodeid) {
1914 if (firewire_debug)
1915 printf("found myself node(%d) fc->nodeid(%d)"
1916 " fc->max_node(%d)\n",
1917 node, fc->nodeid, fc->max_node);
1918 continue;
1919 } else if (firewire_debug)
1920 printf("node(%d) fc->max_node(%d) found\n",
1921 node, fc->max_node);
1922 fwsid = fw_find_self_id(fc, node);
1923 if (!fwsid || !fwsid->p0.link_active) {
1924 if (firewire_debug)
1925 printf("node%d: link down\n", node);
1926 continue;
1927 }
1928 nodes[todo++] = node;
1929 }
1930
1931 for (trys = 0; todo > 0 && trys < 3; trys++) {
1932 todo2 = 0;
1933 for (i = 0; i < todo; i++) {
1934 dfwdev->dst = nodes[i];
1935 err = fw_explore_node(dfwdev);
1936 if (err)
1937 nodes[todo2++] = nodes[i];
1938 if (firewire_debug)
1939 printf("node %d, err = %d\n", nodes[i], err);
1940 }
1941 todo = todo2;
1942 }
1943 free(dfwdev, M_TEMP);
1944 }
1945
1946 static void
1947 fw_bus_probe_thread(void *arg)
1948 {
1949 struct firewire_comm *fc = (struct firewire_comm *)arg;
1950
1951 /*
1952 * Tell config we've scanned the bus.
1953 *
1954 * XXX This is not right -- we haven't actually scanned it. We
1955 * probably ought to call this after the first bus exploration.
1956 *
1957 * bool once = false;
1958 * ...
1959 * fw_attach_dev(fc);
1960 * if (!once) {
1961 * config_pending_decr();
1962 * once = true;
1963 * }
1964 */
1965 config_pending_decr(fc->bdev);
1966
1967 mutex_enter(&fc->wait_lock);
1968 while (fc->status != FWBUSDETACH) {
1969 if (fc->status == FWBUSEXPLORE) {
1970 mutex_exit(&fc->wait_lock);
1971 fw_explore(fc);
1972 fc->status = FWBUSEXPDONE;
1973 if (firewire_debug)
1974 printf("bus_explore done\n");
1975 fw_attach_dev(fc);
1976 mutex_enter(&fc->wait_lock);
1977 }
1978 cv_wait_sig(&fc->fc_cv, &fc->wait_lock);
1979 }
1980 fc->status = FWBUSDETACHOK;
1981 cv_signal(&fc->fc_cv);
1982 mutex_exit(&fc->wait_lock);
1983 kthread_exit(0);
1984
1985 /* NOTREACHED */
1986 }
1987
1988 static const char *
1989 fw_get_devclass(struct fw_device *fwdev)
1990 {
1991 struct crom_context cc;
1992 struct csrreg *reg;
1993
1994 crom_init_context(&cc, fwdev->csrrom);
1995 reg = crom_search_key(&cc, CSRKEY_VER);
1996 if (reg == NULL)
1997 return "null";
1998
1999 switch (reg->val) {
2000 case CSR_PROTAVC:
2001 return "av/c";
2002 case CSR_PROTCAL:
2003 return "cal";
2004 case CSR_PROTEHS:
2005 return "ehs";
2006 case CSR_PROTHAVI:
2007 return "havi";
2008 case CSR_PROTCAM104:
2009 return "cam104";
2010 case CSR_PROTCAM120:
2011 return "cam120";
2012 case CSR_PROTCAM130:
2013 return "cam130";
2014 case CSR_PROTDPP:
2015 return "printer";
2016 case CSR_PROTIICP:
2017 return "iicp";
2018 case CSRVAL_T10SBP2:
2019 return "sbp";
2020 default:
2021 if (firewire_debug)
2022 printf("%s: reg->val 0x%x\n",
2023 __func__, reg->val);
2024 return "sbp";
2025 }
2026 }
2027
2028 /*
2029 * To attach sub-devices layer onto IEEE1394 bus.
2030 */
2031 static void
2032 fw_attach_dev(struct firewire_comm *fc)
2033 {
2034 struct firewire_softc *sc = device_private(fc->bdev);
2035 struct firewire_dev_list *devlist, *elm;
2036 struct fw_device *fwdev, *next;
2037 struct firewire_dev_comm *fdc;
2038 struct fw_attach_args fwa;
2039 int locs[IEEE1394IFCF_NLOCS];
2040
2041 fwa.name = "null";
2042 fwa.fc = fc;
2043
2044 mutex_enter(&fc->fc_mtx);
2045 for (fwdev = STAILQ_FIRST(&fc->devices); fwdev != NULL; fwdev = next) {
2046 next = STAILQ_NEXT(fwdev, link);
2047 mutex_exit(&fc->fc_mtx);
2048 switch (fwdev->status) {
2049 case FWDEVNEW:
2050 devlist = malloc(sizeof(struct firewire_dev_list),
2051 M_DEVBUF, M_NOWAIT);
2052 if (devlist == NULL) {
2053 aprint_error_dev(fc->bdev,
2054 "memory allocation failed\n");
2055 break;
2056 }
2057
2058 locs[IEEE1394IFCF_EUIHI] = fwdev->eui.hi;
2059 locs[IEEE1394IFCF_EUILO] = fwdev->eui.lo;
2060
2061 fwa.name = fw_get_devclass(fwdev);
2062 fwa.fwdev = fwdev;
2063 fwdev->dev = config_found_sm_loc(sc->dev, "ieee1394if",
2064 locs, &fwa, firewire_print, config_stdsubmatch);
2065 if (fwdev->dev == NULL) {
2066 free(devlist, M_DEVBUF);
2067 break;
2068 }
2069
2070 devlist->fwdev = fwdev;
2071 devlist->dev = fwdev->dev;
2072
2073 mutex_enter(&fc->fc_mtx);
2074 if (SLIST_EMPTY(&sc->devlist))
2075 SLIST_INSERT_HEAD(&sc->devlist, devlist, link);
2076 else {
2077 for (elm = SLIST_FIRST(&sc->devlist);
2078 SLIST_NEXT(elm, link) != NULL;
2079 elm = SLIST_NEXT(elm, link));
2080 SLIST_INSERT_AFTER(elm, devlist, link);
2081 }
2082 mutex_exit(&fc->fc_mtx);
2083
2084 /* FALLTHROUGH */
2085
2086 case FWDEVINIT:
2087 case FWDEVATTACHED:
2088 fwdev->status = FWDEVATTACHED;
2089 break;
2090
2091 case FWDEVINVAL:
2092 fwdev->rcnt++;
2093 if (firewire_debug)
2094 printf("fwdev->rcnt(%d), hold_count(%d)\n",
2095 fwdev->rcnt, hold_count);
2096 break;
2097
2098 default:
2099 /* XXX */
2100 break;
2101 }
2102 mutex_enter(&fc->fc_mtx);
2103 }
2104 mutex_exit(&fc->fc_mtx);
2105
2106 SLIST_FOREACH(devlist, &sc->devlist, link) {
2107 fdc = device_private(devlist->dev);
2108 if (fdc->post_explore != NULL)
2109 fdc->post_explore(fdc);
2110 }
2111
2112 for (fwdev = STAILQ_FIRST(&fc->devices); fwdev != NULL; fwdev = next) {
2113 next = STAILQ_NEXT(fwdev, link);
2114 if (fwdev->rcnt > 0 && fwdev->rcnt > hold_count) {
2115 /*
2116 * Remove devices which have not been seen
2117 * for a while.
2118 */
2119 SLIST_FOREACH(devlist, &sc->devlist, link)
2120 if (devlist->fwdev == fwdev)
2121 break;
2122
2123 if (devlist == NULL)
2124 continue;
2125
2126 if (devlist->fwdev != fwdev)
2127 panic("already detached");
2128
2129 SLIST_REMOVE(&sc->devlist, devlist, firewire_dev_list,
2130 link);
2131 free(devlist, M_DEVBUF);
2132
2133 if (config_detach(fwdev->dev, DETACH_FORCE) != 0)
2134 return;
2135
2136 STAILQ_REMOVE(&fc->devices, fwdev, fw_device, link);
2137 free(fwdev, M_FW);
2138 }
2139 }
2140
2141 return;
2142 }
2143
2144 /*
2145 * To allocate unique transaction label.
2146 */
2147 static int
2148 fw_get_tlabel(struct firewire_comm *fc, struct fw_xfer *xfer)
2149 {
2150 u_int dst, new_tlabel;
2151 struct fw_xfer *txfer;
2152
2153 dst = xfer->send.hdr.mode.hdr.dst & 0x3f;
2154 mutex_enter(&fc->tlabel_lock);
2155 new_tlabel = (fc->last_tlabel[dst] + 1) & 0x3f;
2156 STAILQ_FOREACH(txfer, &fc->tlabels[new_tlabel], tlabel)
2157 if ((txfer->send.hdr.mode.hdr.dst & 0x3f) == dst)
2158 break;
2159 if (txfer == NULL) {
2160 fc->last_tlabel[dst] = new_tlabel;
2161 STAILQ_INSERT_TAIL(&fc->tlabels[new_tlabel], xfer, tlabel);
2162 mutex_exit(&fc->tlabel_lock);
2163 xfer->tl = new_tlabel;
2164 xfer->send.hdr.mode.hdr.tlrt = new_tlabel << 2;
2165 if (firewire_debug > 1)
2166 printf("fw_get_tlabel: dst=%d tl=%d\n",
2167 dst, new_tlabel);
2168 return new_tlabel;
2169 }
2170 mutex_exit(&fc->tlabel_lock);
2171
2172 if (firewire_debug > 1)
2173 printf("fw_get_tlabel: no free tlabel\n");
2174 return -1;
2175 }
2176
2177 static void
2178 fw_rcv_copy(struct fw_rcv_buf *rb)
2179 {
2180 struct fw_pkt *pkt;
2181 u_char *p;
2182 const struct tcode_info *tinfo;
2183 u_int res, i, len, plen;
2184
2185 rb->xfer->recv.spd = rb->spd;
2186
2187 pkt = (struct fw_pkt *)rb->vec->iov_base;
2188 tinfo = &rb->fc->tcode[pkt->mode.hdr.tcode];
2189
2190 /* Copy header */
2191 p = (u_char *)&rb->xfer->recv.hdr;
2192 memcpy(p, rb->vec->iov_base, tinfo->hdr_len);
2193 rb->vec->iov_base = (u_char *)rb->vec->iov_base + tinfo->hdr_len;
2194 rb->vec->iov_len -= tinfo->hdr_len;
2195
2196 /* Copy payload */
2197 p = (u_char *)rb->xfer->recv.payload;
2198 res = rb->xfer->recv.pay_len;
2199
2200 /* special handling for RRESQ */
2201 if (pkt->mode.hdr.tcode == FWTCODE_RRESQ &&
2202 p != NULL && res >= sizeof(uint32_t)) {
2203 *(uint32_t *)p = pkt->mode.rresq.data;
2204 rb->xfer->recv.pay_len = sizeof(uint32_t);
2205 return;
2206 }
2207
2208 if ((tinfo->flag & FWTI_BLOCK_ASY) == 0)
2209 return;
2210
2211 plen = pkt->mode.rresb.len;
2212
2213 for (i = 0; i < rb->nvec; i++, rb->vec++) {
2214 len = MIN(rb->vec->iov_len, plen);
2215 if (res < len) {
2216 aprint_error_dev(rb->fc->bdev,
2217 "rcv buffer(%d) is %d bytes short.\n",
2218 rb->xfer->recv.pay_len, len - res);
2219 len = res;
2220 }
2221 if (p) {
2222 memcpy(p, rb->vec->iov_base, len);
2223 p += len;
2224 }
2225 res -= len;
2226 plen -= len;
2227 if (res == 0 || plen == 0)
2228 break;
2229 }
2230 rb->xfer->recv.pay_len -= res;
2231
2232 }
2233
2234 /*
2235 * Post process for Bus Manager election process.
2236 */
2237 static void
2238 fw_try_bmr_callback(struct fw_xfer *xfer)
2239 {
2240 struct firewire_comm *fc;
2241 int bmr;
2242
2243 if (xfer == NULL)
2244 return;
2245 fc = xfer->fc;
2246 if (xfer->resp != 0)
2247 goto error;
2248 if (xfer->recv.payload == NULL)
2249 goto error;
2250 if (xfer->recv.hdr.mode.lres.rtcode != FWRCODE_COMPLETE)
2251 goto error;
2252
2253 bmr = ntohl(xfer->recv.payload[0]);
2254 if (bmr == 0x3f)
2255 bmr = fc->nodeid;
2256
2257 CSRARC(fc, BUS_MGR_ID) = fc->set_bmr(fc, bmr & 0x3f);
2258 fw_xfer_free_buf(xfer);
2259 fw_bmr(fc);
2260 return;
2261
2262 error:
2263 aprint_error_dev(fc->bdev, "bus manager election failed\n");
2264 fw_xfer_free_buf(xfer);
2265 }
2266
2267
2268 /*
2269 * To candidate Bus Manager election process.
2270 */
2271 static void
2272 fw_try_bmr(void *arg)
2273 {
2274 struct fw_xfer *xfer;
2275 struct firewire_comm *fc = (struct firewire_comm *)arg;
2276 struct fw_pkt *fp;
2277 int err = 0;
2278
2279 xfer = fw_xfer_alloc_buf(M_FW, 8, 4);
2280 if (xfer == NULL)
2281 return;
2282 xfer->send.spd = 0;
2283 fc->status = FWBUSMGRELECT;
2284
2285 fp = &xfer->send.hdr;
2286 fp->mode.lreq.dest_hi = 0xffff;
2287 fp->mode.lreq.tlrt = 0;
2288 fp->mode.lreq.tcode = FWTCODE_LREQ;
2289 fp->mode.lreq.pri = 0;
2290 fp->mode.lreq.src = 0;
2291 fp->mode.lreq.len = 8;
2292 fp->mode.lreq.extcode = EXTCODE_CMP_SWAP;
2293 fp->mode.lreq.dst = FWLOCALBUS | fc->irm;
2294 fp->mode.lreq.dest_lo = 0xf0000000 | BUS_MGR_ID;
2295 xfer->send.payload[0] = htonl(0x3f);
2296 xfer->send.payload[1] = htonl(fc->nodeid);
2297 xfer->hand = fw_try_bmr_callback;
2298
2299 err = fw_asyreq(fc, -1, xfer);
2300 if (err) {
2301 fw_xfer_free_buf(xfer);
2302 return;
2303 }
2304 return;
2305 }
2306
2307 /*
2308 * Find the root node, if it is not
2309 * Cycle Master Capable, then we should
2310 * override this and become the Cycle
2311 * Master
2312 */
2313 static int
2314 fw_bmr(struct firewire_comm *fc)
2315 {
2316 struct fw_device fwdev;
2317 union fw_self_id *self_id;
2318 int cmstr;
2319 uint32_t quad;
2320
2321 /* Check to see if the current root node is cycle master capable */
2322 self_id = fw_find_self_id(fc, fc->max_node);
2323 if (fc->max_node > 0) {
2324 /* XXX check cmc bit of businfo block rather than contender */
2325 if (self_id->p0.link_active && self_id->p0.contender)
2326 cmstr = fc->max_node;
2327 else {
2328 aprint_normal_dev(fc->bdev,
2329 "root node is not cycle master capable\n");
2330 /* XXX shall we be the cycle master? */
2331 cmstr = fc->nodeid;
2332 /* XXX need bus reset */
2333 }
2334 } else
2335 cmstr = -1;
2336
2337 aprint_normal_dev(fc->bdev, "bus manager %d%s\n",
2338 CSRARC(fc, BUS_MGR_ID),
2339 (CSRARC(fc, BUS_MGR_ID) != fc->nodeid) ? " (me)" : "");
2340 if (CSRARC(fc, BUS_MGR_ID) != fc->nodeid)
2341 /* We are not the bus manager */
2342 return 0;
2343
2344 /* Optimize gapcount */
2345 if (fc->max_hop <= MAX_GAPHOP)
2346 fw_phy_config(fc, cmstr, gap_cnt[fc->max_hop]);
2347 /* If we are the cycle master, nothing to do */
2348 if (cmstr == fc->nodeid || cmstr == -1)
2349 return 0;
2350 /* Bus probe has not finished, make dummy fwdev for cmstr */
2351 memset(&fwdev, 0, sizeof(fwdev));
2352 fwdev.fc = fc;
2353 fwdev.dst = cmstr;
2354 fwdev.speed = 0;
2355 fwdev.maxrec = 8; /* 512 */
2356 fwdev.status = FWDEVINIT;
2357 /* Set cmstr bit on the cycle master */
2358 quad = htonl(1 << 8);
2359 fwmem_write_quad(&fwdev, NULL, 0/*spd*/, 0xffff, 0xf0000000 | STATE_SET,
2360 &quad, fw_asy_callback_free);
2361
2362 return 0;
2363 }
2364