xref: /freebsd/sys/dev/firewire/firewire.c (revision bfe691b2f75de2224c7ceb304ebcdef2b42d4179)
1 /*-
2  * Copyright (c) 2003 Hidetoshi Shimokawa
3  * Copyright (c) 1998-2002 Katsushi Kobayashi and Hidetoshi Shimokawa
4  * All rights reserved.
5  *
6  * Redistribution and use in source and binary forms, with or without
7  * modification, are permitted provided that the following conditions
8  * are met:
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  * 2. Redistributions in binary form must reproduce the above copyright
12  *    notice, this list of conditions and the following disclaimer in the
13  *    documentation and/or other materials provided with the distribution.
14  * 3. All advertising materials mentioning features or use of this software
15  *    must display the acknowledgement as bellow:
16  *
17  *    This product includes software developed by K. Kobayashi and H. Shimokawa
18  *
19  * 4. The name of the author may not be used to endorse or promote products
20  *    derived from this software without specific prior written permission.
21  *
22  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
23  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED
24  * WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
25  * DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT,
26  * INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
27  * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR
28  * SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
29  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT,
30  * STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN
31  * ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
32  * POSSIBILITY OF SUCH DAMAGE.
33  *
34  * $FreeBSD$
35  *
36  */
37 
38 #include <sys/param.h>
39 #include <sys/systm.h>
40 #include <sys/types.h>
41 
42 #include <sys/kernel.h>
43 #include <sys/module.h>
44 #include <sys/malloc.h>
45 #include <sys/conf.h>
46 #include <sys/sysctl.h>
47 
48 #if defined(__DragonFly__) || __FreeBSD_version < 500000
49 #include <machine/clock.h>	/* for DELAY() */
50 #endif
51 
52 #include <sys/bus.h>		/* used by smbus and newbus */
53 #include <machine/bus.h>
54 
55 #ifdef __DragonFly__
56 #include "firewire.h"
57 #include "firewirereg.h"
58 #include "fwmem.h"
59 #include "iec13213.h"
60 #include "iec68113.h"
61 #else
62 #include <dev/firewire/firewire.h>
63 #include <dev/firewire/firewirereg.h>
64 #include <dev/firewire/fwmem.h>
65 #include <dev/firewire/iec13213.h>
66 #include <dev/firewire/iec68113.h>
67 #endif
68 
69 struct crom_src_buf {
70 	struct crom_src	src;
71 	struct crom_chunk root;
72 	struct crom_chunk vendor;
73 	struct crom_chunk hw;
74 };
75 
76 int firewire_debug=0, try_bmr=1, hold_count=3;
77 SYSCTL_INT(_debug, OID_AUTO, firewire_debug, CTLFLAG_RW, &firewire_debug, 0,
78 	"FireWire driver debug flag");
79 SYSCTL_NODE(_hw, OID_AUTO, firewire, CTLFLAG_RD, 0, "FireWire Subsystem");
80 SYSCTL_INT(_hw_firewire, OID_AUTO, try_bmr, CTLFLAG_RW, &try_bmr, 0,
81 	"Try to be a bus manager");
82 SYSCTL_INT(_hw_firewire, OID_AUTO, hold_count, CTLFLAG_RW, &hold_count, 0,
83 	"Number of count of bus resets for removing lost device information");
84 
85 MALLOC_DEFINE(M_FW, "firewire", "FireWire");
86 MALLOC_DEFINE(M_FWXFER, "fw_xfer", "XFER/FireWire");
87 
88 #define FW_MAXASYRTY 4
89 
90 devclass_t firewire_devclass;
91 
92 static void firewire_identify	(driver_t *, device_t);
93 static int firewire_probe	(device_t);
94 static int firewire_attach      (device_t);
95 static int firewire_detach      (device_t);
96 static int firewire_resume      (device_t);
97 #if 0
98 static int firewire_shutdown    (device_t);
99 #endif
100 static device_t firewire_add_child   (device_t, int, const char *, int);
101 static void fw_try_bmr (void *);
102 static void fw_try_bmr_callback (struct fw_xfer *);
103 static void fw_asystart (struct fw_xfer *);
104 static int fw_get_tlabel (struct firewire_comm *, struct fw_xfer *);
105 static void fw_bus_probe (struct firewire_comm *);
106 static void fw_bus_explore (struct firewire_comm *);
107 static void fw_bus_explore_callback (struct fw_xfer *);
108 static void fw_attach_dev (struct firewire_comm *);
109 #ifdef FW_VMACCESS
110 static void fw_vmaccess (struct fw_xfer *);
111 #endif
112 struct fw_xfer *asyreqq (struct firewire_comm *, uint8_t, uint8_t, uint8_t,
113 	uint32_t, uint32_t, void (*)(struct fw_xfer *));
114 static int fw_bmr (struct firewire_comm *);
115 
116 static device_method_t firewire_methods[] = {
117 	/* Device interface */
118 	DEVMETHOD(device_identify,	firewire_identify),
119 	DEVMETHOD(device_probe,		firewire_probe),
120 	DEVMETHOD(device_attach,	firewire_attach),
121 	DEVMETHOD(device_detach,	firewire_detach),
122 	DEVMETHOD(device_suspend,	bus_generic_suspend),
123 	DEVMETHOD(device_resume,	firewire_resume),
124 	DEVMETHOD(device_shutdown,	bus_generic_shutdown),
125 
126 	/* Bus interface */
127 	DEVMETHOD(bus_add_child,	firewire_add_child),
128 	DEVMETHOD(bus_print_child,	bus_generic_print_child),
129 
130 	{ 0, 0 }
131 };
132 char *linkspeed[] = {
133 	"S100", "S200", "S400", "S800",
134 	"S1600", "S3200", "undef", "undef"
135 };
136 
137 static char *tcode_str[] = {
138 	"WREQQ", "WREQB", "WRES",   "undef",
139 	"RREQQ", "RREQB", "RRESQ",  "RRESB",
140 	"CYCS",  "LREQ",  "STREAM", "LRES",
141 	"undef", "undef", "PHY",    "undef"
142 };
143 
144 /* IEEE-1394a Table C-2 Gap count as a function of hops*/
145 #define MAX_GAPHOP 15
146 u_int gap_cnt[] = { 5,  5,  7,  8, 10, 13, 16, 18,
147 		   21, 24, 26, 29, 32, 35, 37, 40};
148 
149 static driver_t firewire_driver = {
150 	"firewire",
151 	firewire_methods,
152 	sizeof(struct firewire_softc),
153 };
154 
155 /*
156  * Lookup fwdev by node id.
157  */
158 struct fw_device *
159 fw_noderesolve_nodeid(struct firewire_comm *fc, int dst)
160 {
161 	struct fw_device *fwdev;
162 	int s;
163 
164 	s = splfw();
165 	STAILQ_FOREACH(fwdev, &fc->devices, link)
166 		if (fwdev->dst == dst && fwdev->status != FWDEVINVAL)
167 			break;
168 	splx(s);
169 
170 	return fwdev;
171 }
172 
173 /*
174  * Lookup fwdev by EUI64.
175  */
176 struct fw_device *
177 fw_noderesolve_eui64(struct firewire_comm *fc, struct fw_eui64 *eui)
178 {
179 	struct fw_device *fwdev;
180 	int s;
181 
182 	s = splfw();
183 	STAILQ_FOREACH(fwdev, &fc->devices, link)
184 		if (FW_EUI64_EQUAL(fwdev->eui, *eui))
185 			break;
186 	splx(s);
187 
188 	if(fwdev == NULL) return NULL;
189 	if(fwdev->status == FWDEVINVAL) return NULL;
190 	return fwdev;
191 }
192 
193 /*
194  * Async. request procedure for userland application.
195  */
196 int
197 fw_asyreq(struct firewire_comm *fc, int sub, struct fw_xfer *xfer)
198 {
199 	int err = 0;
200 	struct fw_xferq *xferq;
201 	int tl = 0, len;
202 	struct fw_pkt *fp;
203 	int tcode;
204 	struct tcode_info *info;
205 
206 	if(xfer == NULL) return EINVAL;
207 	if(xfer->hand == NULL){
208 		printf("hand == NULL\n");
209 		return EINVAL;
210 	}
211 	fp = &xfer->send.hdr;
212 
213 	tcode = fp->mode.common.tcode & 0xf;
214 	info = &fc->tcode[tcode];
215 	if (info->flag == 0) {
216 		printf("invalid tcode=%x\n", tcode);
217 		return EINVAL;
218 	}
219 	if (info->flag & FWTI_REQ)
220 		xferq = fc->atq;
221 	else
222 		xferq = fc->ats;
223 	len = info->hdr_len;
224 	if (xfer->send.pay_len > MAXREC(fc->maxrec)) {
225 		printf("send.pay_len > maxrec\n");
226 		return EINVAL;
227 	}
228 	if (info->flag & FWTI_BLOCK_STR)
229 		len = fp->mode.stream.len;
230 	else if (info->flag & FWTI_BLOCK_ASY)
231 		len = fp->mode.rresb.len;
232 	else
233 		len = 0;
234 	if (len != xfer->send.pay_len){
235 		printf("len(%d) != send.pay_len(%d) %s(%x)\n",
236 		    len, xfer->send.pay_len, tcode_str[tcode], tcode);
237 		return EINVAL;
238 	}
239 
240 	if(xferq->start == NULL){
241 		printf("xferq->start == NULL\n");
242 		return EINVAL;
243 	}
244 	if(!(xferq->queued < xferq->maxq)){
245 		device_printf(fc->bdev, "Discard a packet (queued=%d)\n",
246 			xferq->queued);
247 		return EINVAL;
248 	}
249 
250 	if (info->flag & FWTI_TLABEL) {
251 		if ((tl = fw_get_tlabel(fc, xfer)) == -1)
252 			return EAGAIN;
253 		fp->mode.hdr.tlrt = tl << 2;
254 	}
255 
256 	xfer->tl = tl;
257 	xfer->resp = 0;
258 	xfer->fc = fc;
259 	xfer->q = xferq;
260 
261 	fw_asystart(xfer);
262 	return err;
263 }
264 /*
265  * Wakeup blocked process.
266  */
267 void
268 fw_asy_callback(struct fw_xfer *xfer){
269 	wakeup(xfer);
270 	return;
271 }
272 /*
273  * Postpone to later retry.
274  */
275 void fw_asybusy(struct fw_xfer *xfer){
276 	printf("fw_asybusy\n");
277 /*
278 	xfer->ch =  timeout((timeout_t *)fw_asystart, (void *)xfer, 20000);
279 */
280 #if 0
281 	DELAY(20000);
282 #endif
283 	fw_asystart(xfer);
284 	return;
285 }
286 
287 /*
288  * Async. request with given xfer structure.
289  */
290 static void
291 fw_asystart(struct fw_xfer *xfer)
292 {
293 	struct firewire_comm *fc = xfer->fc;
294 	int s;
295 #if 0 /* XXX allow bus explore packets only after bus rest */
296 	if (fc->status < FWBUSEXPLORE) {
297 		xfer->resp = EAGAIN;
298 		xfer->state = FWXF_BUSY;
299 		if (xfer->hand != NULL)
300 			xfer->hand(xfer);
301 		return;
302 	}
303 #endif
304 	microtime(&xfer->tv);
305 	s = splfw();
306 	xfer->state = FWXF_INQ;
307 	STAILQ_INSERT_TAIL(&xfer->q->q, xfer, link);
308 	xfer->q->queued ++;
309 	splx(s);
310 	/* XXX just queue for mbuf */
311 	if (xfer->mbuf == NULL)
312 		xfer->q->start(fc);
313 	return;
314 }
315 
316 static void
317 firewire_identify(driver_t *driver, device_t parent)
318 {
319 	BUS_ADD_CHILD(parent, 0, "firewire", -1);
320 }
321 
322 static int
323 firewire_probe(device_t dev)
324 {
325 	device_set_desc(dev, "IEEE1394(FireWire) bus");
326 	return (0);
327 }
328 
329 static void
330 firewire_xfer_timeout(struct firewire_comm *fc)
331 {
332 	struct fw_xfer *xfer;
333 	struct tlabel *tl;
334 	struct timeval tv;
335 	struct timeval split_timeout;
336 	int i, s;
337 
338 	split_timeout.tv_sec = 0;
339 	split_timeout.tv_usec = 200 * 1000;	 /* 200 msec */
340 
341 	microtime(&tv);
342 	timevalsub(&tv, &split_timeout);
343 
344 	s = splfw();
345 	for (i = 0; i < 0x40; i ++) {
346 		while ((tl = STAILQ_FIRST(&fc->tlabels[i])) != NULL) {
347 			xfer = tl->xfer;
348 			if (timevalcmp(&xfer->tv, &tv, >))
349 				/* the rests are newer than this */
350 				break;
351 			if (xfer->state == FWXF_START)
352 				/* not sent yet */
353 				break;
354 			device_printf(fc->bdev,
355 				"split transaction timeout dst=0x%x tl=0x%x state=%d\n",
356 				xfer->send.hdr.mode.hdr.dst, i, xfer->state);
357 			xfer->resp = ETIMEDOUT;
358 			fw_xfer_done(xfer);
359 		}
360 	}
361 	splx(s);
362 }
363 
364 #define WATCHDOC_HZ 10
365 static void
366 firewire_watchdog(void *arg)
367 {
368 	struct firewire_comm *fc;
369 	static int watchdoc_clock = 0;
370 
371 	fc = (struct firewire_comm *)arg;
372 
373 	/*
374 	 * At boot stage, the device interrupt is disabled and
375 	 * We encounter a timeout easily. To avoid this,
376 	 * ignore clock interrupt for a while.
377 	 */
378 	if (watchdoc_clock > WATCHDOC_HZ * 15) {
379 		firewire_xfer_timeout(fc);
380 		fc->timeout(fc);
381 	} else
382 		watchdoc_clock ++;
383 
384 	callout_reset(&fc->timeout_callout, hz / WATCHDOC_HZ,
385 			(void *)firewire_watchdog, (void *)fc);
386 }
387 
388 /*
389  * The attach routine.
390  */
391 static int
392 firewire_attach(device_t dev)
393 {
394 	int unit;
395 	struct firewire_softc *sc = device_get_softc(dev);
396 	device_t pa = device_get_parent(dev);
397 	struct firewire_comm *fc;
398 
399 	fc = (struct firewire_comm *)device_get_softc(pa);
400 	sc->fc = fc;
401 	fc->status = FWBUSNOTREADY;
402 
403 	unit = device_get_unit(dev);
404 	if( fc->nisodma > FWMAXNDMA) fc->nisodma = FWMAXNDMA;
405 
406 	fwdev_makedev(sc);
407 
408 	CALLOUT_INIT(&sc->fc->timeout_callout);
409 	CALLOUT_INIT(&sc->fc->bmr_callout);
410 	CALLOUT_INIT(&sc->fc->busprobe_callout);
411 
412 	callout_reset(&sc->fc->timeout_callout, hz,
413 			(void *)firewire_watchdog, (void *)sc->fc);
414 
415 	/* Locate our children */
416 	bus_generic_probe(dev);
417 
418 	/* launch attachement of the added children */
419 	bus_generic_attach(dev);
420 
421 	/* bus_reset */
422 	fc->ibr(fc);
423 
424 	return 0;
425 }
426 
427 /*
428  * Attach it as child.
429  */
430 static device_t
431 firewire_add_child(device_t dev, int order, const char *name, int unit)
432 {
433         device_t child;
434 	struct firewire_softc *sc;
435 
436 	sc = (struct firewire_softc *)device_get_softc(dev);
437 	child = device_add_child(dev, name, unit);
438 	if (child) {
439 		device_set_ivars(child, sc->fc);
440 		device_probe_and_attach(child);
441 	}
442 
443 	return child;
444 }
445 
446 static int
447 firewire_resume(device_t dev)
448 {
449 	struct firewire_softc *sc;
450 
451 	sc = (struct firewire_softc *)device_get_softc(dev);
452 	sc->fc->status = FWBUSNOTREADY;
453 
454 	bus_generic_resume(dev);
455 
456 	return(0);
457 }
458 
459 /*
460  * Dettach it.
461  */
462 static int
463 firewire_detach(device_t dev)
464 {
465 	struct firewire_softc *sc;
466 	struct csrdir *csrd, *next;
467 	struct fw_device *fwdev, *fwdev_next;
468 	int err;
469 
470 	sc = (struct firewire_softc *)device_get_softc(dev);
471 	if ((err = fwdev_destroydev(sc)) != 0)
472 		return err;
473 
474 	if ((err = bus_generic_detach(dev)) != 0)
475 		return err;
476 
477 	callout_stop(&sc->fc->timeout_callout);
478 	callout_stop(&sc->fc->bmr_callout);
479 	callout_stop(&sc->fc->busprobe_callout);
480 
481 	/* XXX xfree_free and untimeout on all xfers */
482 	for (fwdev = STAILQ_FIRST(&sc->fc->devices); fwdev != NULL;
483 							fwdev = fwdev_next) {
484 		fwdev_next = STAILQ_NEXT(fwdev, link);
485 		free(fwdev, M_FW);
486 	}
487 	for (csrd = SLIST_FIRST(&sc->fc->csrfree); csrd != NULL; csrd = next) {
488 		next = SLIST_NEXT(csrd, link);
489 		free(csrd, M_FW);
490 	}
491 	free(sc->fc->topology_map, M_FW);
492 	free(sc->fc->speed_map, M_FW);
493 	free(sc->fc->crom_src_buf, M_FW);
494 	return(0);
495 }
496 #if 0
497 static int
498 firewire_shutdown( device_t dev )
499 {
500 	return 0;
501 }
502 #endif
503 
504 
505 static void
506 fw_xferq_drain(struct fw_xferq *xferq)
507 {
508 	struct fw_xfer *xfer;
509 
510 	while ((xfer = STAILQ_FIRST(&xferq->q)) != NULL) {
511 		STAILQ_REMOVE_HEAD(&xferq->q, link);
512 		xferq->queued --;
513 		xfer->resp = EAGAIN;
514 		fw_xfer_done(xfer);
515 	}
516 }
517 
518 void
519 fw_drain_txq(struct firewire_comm *fc)
520 {
521 	int i;
522 
523 	fw_xferq_drain(fc->atq);
524 	fw_xferq_drain(fc->ats);
525 	for(i = 0; i < fc->nisodma; i++)
526 		fw_xferq_drain(fc->it[i]);
527 }
528 
529 static void
530 fw_reset_csr(struct firewire_comm *fc)
531 {
532 	int i;
533 
534 	CSRARC(fc, STATE_CLEAR)
535 			= 1 << 23 | 0 << 17 | 1 << 16 | 1 << 15 | 1 << 14 ;
536 	CSRARC(fc, STATE_SET) = CSRARC(fc, STATE_CLEAR);
537 	CSRARC(fc, NODE_IDS) = 0x3f;
538 
539 	CSRARC(fc, TOPO_MAP + 8) = 0;
540 	fc->irm = -1;
541 
542 	fc->max_node = -1;
543 
544 	for(i = 2; i < 0x100/4 - 2 ; i++){
545 		CSRARC(fc, SPED_MAP + i * 4) = 0;
546 	}
547 	CSRARC(fc, STATE_CLEAR) = 1 << 23 | 0 << 17 | 1 << 16 | 1 << 15 | 1 << 14 ;
548 	CSRARC(fc, STATE_SET) = CSRARC(fc, STATE_CLEAR);
549 	CSRARC(fc, RESET_START) = 0;
550 	CSRARC(fc, SPLIT_TIMEOUT_HI) = 0;
551 	CSRARC(fc, SPLIT_TIMEOUT_LO) = 800 << 19;
552 	CSRARC(fc, CYCLE_TIME) = 0x0;
553 	CSRARC(fc, BUS_TIME) = 0x0;
554 	CSRARC(fc, BUS_MGR_ID) = 0x3f;
555 	CSRARC(fc, BANDWIDTH_AV) = 4915;
556 	CSRARC(fc, CHANNELS_AV_HI) = 0xffffffff;
557 	CSRARC(fc, CHANNELS_AV_LO) = 0xffffffff;
558 	CSRARC(fc, IP_CHANNELS) = (1 << 31);
559 
560 	CSRARC(fc, CONF_ROM) = 0x04 << 24;
561 	CSRARC(fc, CONF_ROM + 4) = 0x31333934; /* means strings 1394 */
562 	CSRARC(fc, CONF_ROM + 8) = 1 << 31 | 1 << 30 | 1 << 29 |
563 				1 << 28 | 0xff << 16 | 0x09 << 8;
564 	CSRARC(fc, CONF_ROM + 0xc) = 0;
565 
566 /* DV depend CSRs see blue book */
567 	CSRARC(fc, oPCR) &= ~DV_BROADCAST_ON;
568 	CSRARC(fc, iPCR) &= ~DV_BROADCAST_ON;
569 
570 	CSRARC(fc, STATE_CLEAR) &= ~(1 << 23 | 1 << 15 | 1 << 14 );
571 	CSRARC(fc, STATE_SET) = CSRARC(fc, STATE_CLEAR);
572 }
573 
574 static void
575 fw_init_crom(struct firewire_comm *fc)
576 {
577 	struct crom_src *src;
578 
579 	fc->crom_src_buf = (struct crom_src_buf *)
580 		malloc(sizeof(struct crom_src_buf), M_FW, M_WAITOK | M_ZERO);
581 	if (fc->crom_src_buf == NULL)
582 		return;
583 
584 	src = &fc->crom_src_buf->src;
585 	bzero(src, sizeof(struct crom_src));
586 
587 	/* BUS info sample */
588 	src->hdr.info_len = 4;
589 
590 	src->businfo.bus_name = CSR_BUS_NAME_IEEE1394;
591 
592 	src->businfo.irmc = 1;
593 	src->businfo.cmc = 1;
594 	src->businfo.isc = 1;
595 	src->businfo.bmc = 1;
596 	src->businfo.pmc = 0;
597 	src->businfo.cyc_clk_acc = 100;
598 	src->businfo.max_rec = fc->maxrec;
599 	src->businfo.max_rom = MAXROM_4;
600 	src->businfo.generation = 1;
601 	src->businfo.link_spd = fc->speed;
602 
603 	src->businfo.eui64.hi = fc->eui.hi;
604 	src->businfo.eui64.lo = fc->eui.lo;
605 
606 	STAILQ_INIT(&src->chunk_list);
607 
608 	fc->crom_src = src;
609 	fc->crom_root = &fc->crom_src_buf->root;
610 }
611 
612 static void
613 fw_reset_crom(struct firewire_comm *fc)
614 {
615 	struct crom_src_buf *buf;
616 	struct crom_src *src;
617 	struct crom_chunk *root;
618 
619 	if (fc->crom_src_buf == NULL)
620 		fw_init_crom(fc);
621 
622 	buf =  fc->crom_src_buf;
623 	src = fc->crom_src;
624 	root = fc->crom_root;
625 
626 	STAILQ_INIT(&src->chunk_list);
627 
628 	bzero(root, sizeof(struct crom_chunk));
629 	crom_add_chunk(src, NULL, root, 0);
630 	crom_add_entry(root, CSRKEY_NCAP, 0x0083c0); /* XXX */
631 	/* private company_id */
632 	crom_add_entry(root, CSRKEY_VENDOR, CSRVAL_VENDOR_PRIVATE);
633 #ifdef __DragonFly__
634 	crom_add_simple_text(src, root, &buf->vendor, "DragonFly Project");
635 	crom_add_entry(root, CSRKEY_HW, __DragonFly_cc_version);
636 #else
637 	crom_add_simple_text(src, root, &buf->vendor, "FreeBSD Project");
638 	crom_add_entry(root, CSRKEY_HW, __FreeBSD_version);
639 #endif
640 	crom_add_simple_text(src, root, &buf->hw, hostname);
641 }
642 
643 /*
644  * Called after bus reset.
645  */
646 void
647 fw_busreset(struct firewire_comm *fc)
648 {
649 	struct firewire_dev_comm *fdc;
650 	struct crom_src *src;
651 	device_t *devlistp;
652 	void *newrom;
653 	int i, devcnt;
654 
655 	switch(fc->status){
656 	case FWBUSMGRELECT:
657 		callout_stop(&fc->bmr_callout);
658 		break;
659 	default:
660 		break;
661 	}
662 	fc->status = FWBUSRESET;
663 	fw_reset_csr(fc);
664 	fw_reset_crom(fc);
665 
666 	if (device_get_children(fc->bdev, &devlistp, &devcnt) == 0) {
667 		for( i = 0 ; i < devcnt ; i++)
668 			if (device_get_state(devlistp[i]) >= DS_ATTACHED)  {
669 				fdc = device_get_softc(devlistp[i]);
670 				if (fdc->post_busreset != NULL)
671 					fdc->post_busreset(fdc);
672 			}
673 		free(devlistp, M_TEMP);
674 	}
675 
676 	newrom = malloc(CROMSIZE, M_FW, M_NOWAIT | M_ZERO);
677 	src = &fc->crom_src_buf->src;
678 	crom_load(src, (uint32_t *)newrom, CROMSIZE);
679 	if (bcmp(newrom, fc->config_rom, CROMSIZE) != 0) {
680 		/* bump generation and reload */
681 		src->businfo.generation ++;
682 		/* generation must be between 0x2 and 0xF */
683 		if (src->businfo.generation < 2)
684 			src->businfo.generation ++;
685 		crom_load(src, (uint32_t *)newrom, CROMSIZE);
686 		bcopy(newrom, (void *)fc->config_rom, CROMSIZE);
687 	}
688 	free(newrom, M_FW);
689 }
690 
691 /* Call once after reboot */
692 void fw_init(struct firewire_comm *fc)
693 {
694 	int i;
695 	struct csrdir *csrd;
696 #ifdef FW_VMACCESS
697 	struct fw_xfer *xfer;
698 	struct fw_bind *fwb;
699 #endif
700 
701 	fc->arq->queued = 0;
702 	fc->ars->queued = 0;
703 	fc->atq->queued = 0;
704 	fc->ats->queued = 0;
705 
706 	fc->arq->buf = NULL;
707 	fc->ars->buf = NULL;
708 	fc->atq->buf = NULL;
709 	fc->ats->buf = NULL;
710 
711 	fc->arq->flag = 0;
712 	fc->ars->flag = 0;
713 	fc->atq->flag = 0;
714 	fc->ats->flag = 0;
715 
716 	STAILQ_INIT(&fc->atq->q);
717 	STAILQ_INIT(&fc->ats->q);
718 
719 	for( i = 0 ; i < fc->nisodma ; i ++ ){
720 		fc->it[i]->queued = 0;
721 		fc->ir[i]->queued = 0;
722 
723 		fc->it[i]->start = NULL;
724 		fc->ir[i]->start = NULL;
725 
726 		fc->it[i]->buf = NULL;
727 		fc->ir[i]->buf = NULL;
728 
729 		fc->it[i]->flag = FWXFERQ_STREAM;
730 		fc->ir[i]->flag = FWXFERQ_STREAM;
731 
732 		STAILQ_INIT(&fc->it[i]->q);
733 		STAILQ_INIT(&fc->ir[i]->q);
734 
735 		STAILQ_INIT(&fc->it[i]->binds);
736 		STAILQ_INIT(&fc->ir[i]->binds);
737 	}
738 
739 	fc->arq->maxq = FWMAXQUEUE;
740 	fc->ars->maxq = FWMAXQUEUE;
741 	fc->atq->maxq = FWMAXQUEUE;
742 	fc->ats->maxq = FWMAXQUEUE;
743 
744 	for( i = 0 ; i < fc->nisodma ; i++){
745 		fc->ir[i]->maxq = FWMAXQUEUE;
746 		fc->it[i]->maxq = FWMAXQUEUE;
747 	}
748 /* Initialize csr registers */
749 	fc->topology_map = (struct fw_topology_map *)malloc(
750 				sizeof(struct fw_topology_map),
751 				M_FW, M_NOWAIT | M_ZERO);
752 	fc->speed_map = (struct fw_speed_map *)malloc(
753 				sizeof(struct fw_speed_map),
754 				M_FW, M_NOWAIT | M_ZERO);
755 	CSRARC(fc, TOPO_MAP) = 0x3f1 << 16;
756 	CSRARC(fc, TOPO_MAP + 4) = 1;
757 	CSRARC(fc, SPED_MAP) = 0x3f1 << 16;
758 	CSRARC(fc, SPED_MAP + 4) = 1;
759 
760 	STAILQ_INIT(&fc->devices);
761 
762 /* Initialize csr ROM work space */
763 	SLIST_INIT(&fc->ongocsr);
764 	SLIST_INIT(&fc->csrfree);
765 	for( i = 0 ; i < FWMAXCSRDIR ; i++){
766 		csrd = (struct csrdir *) malloc(sizeof(struct csrdir), M_FW,M_NOWAIT);
767 		if(csrd == NULL) break;
768 		SLIST_INSERT_HEAD(&fc->csrfree, csrd, link);
769 	}
770 
771 /* Initialize Async handlers */
772 	STAILQ_INIT(&fc->binds);
773 	for( i = 0 ; i < 0x40 ; i++){
774 		STAILQ_INIT(&fc->tlabels[i]);
775 	}
776 
777 /* DV depend CSRs see blue book */
778 #if 0
779 	CSRARC(fc, oMPR) = 0x3fff0001; /* # output channel = 1 */
780 	CSRARC(fc, oPCR) = 0x8000007a;
781 	for(i = 4 ; i < 0x7c/4 ; i+=4){
782 		CSRARC(fc, i + oPCR) = 0x8000007a;
783 	}
784 
785 	CSRARC(fc, iMPR) = 0x00ff0001; /* # input channel = 1 */
786 	CSRARC(fc, iPCR) = 0x803f0000;
787 	for(i = 4 ; i < 0x7c/4 ; i+=4){
788 		CSRARC(fc, i + iPCR) = 0x0;
789 	}
790 #endif
791 
792 	fc->crom_src_buf = NULL;
793 
794 #ifdef FW_VMACCESS
795 	xfer = fw_xfer_alloc();
796 	if(xfer == NULL) return;
797 
798 	fwb = (struct fw_bind *)malloc(sizeof (struct fw_bind), M_FW, M_NOWAIT);
799 	if(fwb == NULL){
800 		fw_xfer_free(xfer);
801 		return;
802 	}
803 	xfer->hand = fw_vmaccess;
804 	xfer->fc = fc;
805 	xfer->sc = NULL;
806 
807 	fwb->start_hi = 0x2;
808 	fwb->start_lo = 0;
809 	fwb->addrlen = 0xffffffff;
810 	fwb->xfer = xfer;
811 	fw_bindadd(fc, fwb);
812 #endif
813 }
814 
815 #define BIND_CMP(addr, fwb) (((addr) < (fwb)->start)?-1:\
816     ((fwb)->end < (addr))?1:0)
817 
818 /*
819  * To lookup bound process from IEEE1394 address.
820  */
821 struct fw_bind *
822 fw_bindlookup(struct firewire_comm *fc, uint16_t dest_hi, uint32_t dest_lo)
823 {
824 	u_int64_t addr;
825 	struct fw_bind *tfw;
826 
827 	addr = ((u_int64_t)dest_hi << 32) | dest_lo;
828 	STAILQ_FOREACH(tfw, &fc->binds, fclist)
829 		if (tfw->act_type != FWACT_NULL && BIND_CMP(addr, tfw) == 0)
830 			return(tfw);
831 	return(NULL);
832 }
833 
834 /*
835  * To bind IEEE1394 address block to process.
836  */
837 int
838 fw_bindadd(struct firewire_comm *fc, struct fw_bind *fwb)
839 {
840 	struct fw_bind *tfw, *prev = NULL;
841 
842 	if (fwb->start > fwb->end) {
843 		printf("%s: invalid range\n", __func__);
844 		return EINVAL;
845 	}
846 
847 	STAILQ_FOREACH(tfw, &fc->binds, fclist) {
848 		if (fwb->end < tfw->start)
849 			break;
850 		prev = tfw;
851 	}
852 	if (prev == NULL) {
853 		STAILQ_INSERT_HEAD(&fc->binds, fwb, fclist);
854 		goto out;
855 	}
856 	if (prev->end < fwb->start) {
857 		STAILQ_INSERT_AFTER(&fc->binds, prev, fwb, fclist);
858 		goto out;
859 	}
860 
861 	printf("%s: bind failed\n", __func__);
862 	return (EBUSY);
863 
864 out:
865 	if (fwb->act_type == FWACT_CH)
866 		STAILQ_INSERT_HEAD(&fc->ir[fwb->sub]->binds, fwb, chlist);
867 	return (0);
868 }
869 
870 /*
871  * To free IEEE1394 address block.
872  */
873 int
874 fw_bindremove(struct firewire_comm *fc, struct fw_bind *fwb)
875 {
876 #if 0
877 	struct fw_xfer *xfer, *next;
878 #endif
879 	struct fw_bind *tfw;
880 	int s;
881 
882 	s = splfw();
883 	STAILQ_FOREACH(tfw, &fc->binds, fclist)
884 		if (tfw == fwb) {
885 			STAILQ_REMOVE(&fc->binds, fwb, fw_bind, fclist);
886 			goto found;
887 		}
888 
889 	printf("%s: no such binding\n", __func__);
890 	splx(s);
891 	return (1);
892 found:
893 #if 0
894 	/* shall we do this? */
895 	for (xfer = STAILQ_FIRST(&fwb->xferlist); xfer != NULL; xfer = next) {
896 		next = STAILQ_NEXT(xfer, link);
897 		fw_xfer_free(xfer);
898 	}
899 	STAILQ_INIT(&fwb->xferlist);
900 #endif
901 
902 	splx(s);
903 	return 0;
904 }
905 
906 /*
907  * To free transaction label.
908  */
909 static void
910 fw_tl_free(struct firewire_comm *fc, struct fw_xfer *xfer)
911 {
912 	struct tlabel *tl;
913 	int s = splfw();
914 
915 	for( tl = STAILQ_FIRST(&fc->tlabels[xfer->tl]); tl != NULL;
916 		tl = STAILQ_NEXT(tl, link)){
917 		if(tl->xfer == xfer){
918 			STAILQ_REMOVE(&fc->tlabels[xfer->tl], tl, tlabel, link);
919 			free(tl, M_FW);
920 			splx(s);
921 			return;
922 		}
923 	}
924 	splx(s);
925 	return;
926 }
927 
928 /*
929  * To obtain XFER structure by transaction label.
930  */
931 static struct fw_xfer *
932 fw_tl2xfer(struct firewire_comm *fc, int node, int tlabel)
933 {
934 	struct fw_xfer *xfer;
935 	struct tlabel *tl;
936 	int s = splfw();
937 
938 	for( tl = STAILQ_FIRST(&fc->tlabels[tlabel]); tl != NULL;
939 		tl = STAILQ_NEXT(tl, link)){
940 		if(tl->xfer->send.hdr.mode.hdr.dst == node){
941 			xfer = tl->xfer;
942 			splx(s);
943 			if (firewire_debug > 2)
944 				printf("fw_tl2xfer: found tl=%d\n", tlabel);
945 			return(xfer);
946 		}
947 	}
948 	if (firewire_debug > 1)
949 		printf("fw_tl2xfer: not found tl=%d\n", tlabel);
950 	splx(s);
951 	return(NULL);
952 }
953 
954 /*
955  * To allocate IEEE1394 XFER structure.
956  */
957 struct fw_xfer *
958 fw_xfer_alloc(struct malloc_type *type)
959 {
960 	struct fw_xfer *xfer;
961 
962 	xfer = malloc(sizeof(struct fw_xfer), type, M_NOWAIT | M_ZERO);
963 	if (xfer == NULL)
964 		return xfer;
965 
966 	xfer->malloc = type;
967 
968 	return xfer;
969 }
970 
971 struct fw_xfer *
972 fw_xfer_alloc_buf(struct malloc_type *type, int send_len, int recv_len)
973 {
974 	struct fw_xfer *xfer;
975 
976 	xfer = fw_xfer_alloc(type);
977 	if (xfer == NULL)
978 		return(NULL);
979 	xfer->send.pay_len = send_len;
980 	xfer->recv.pay_len = recv_len;
981 	if (send_len > 0) {
982 		xfer->send.payload = malloc(send_len, type, M_NOWAIT | M_ZERO);
983 		if (xfer->send.payload == NULL) {
984 			fw_xfer_free(xfer);
985 			return(NULL);
986 		}
987 	}
988 	if (recv_len > 0) {
989 		xfer->recv.payload = malloc(recv_len, type, M_NOWAIT);
990 		if (xfer->recv.payload == NULL) {
991 			if (xfer->send.payload != NULL)
992 				free(xfer->send.payload, type);
993 			fw_xfer_free(xfer);
994 			return(NULL);
995 		}
996 	}
997 	return(xfer);
998 }
999 
1000 /*
1001  * IEEE1394 XFER post process.
1002  */
1003 void
1004 fw_xfer_done(struct fw_xfer *xfer)
1005 {
1006 	if (xfer->hand == NULL) {
1007 		printf("hand == NULL\n");
1008 		return;
1009 	}
1010 
1011 	if (xfer->fc == NULL)
1012 		panic("fw_xfer_done: why xfer->fc is NULL?");
1013 
1014 	fw_tl_free(xfer->fc, xfer);
1015 	xfer->hand(xfer);
1016 }
1017 
1018 void
1019 fw_xfer_unload(struct fw_xfer* xfer)
1020 {
1021 	int s;
1022 
1023 	if(xfer == NULL ) return;
1024 	if(xfer->state == FWXF_INQ){
1025 		printf("fw_xfer_free FWXF_INQ\n");
1026 		s = splfw();
1027 		STAILQ_REMOVE(&xfer->q->q, xfer, fw_xfer, link);
1028 		xfer->q->queued --;
1029 		splx(s);
1030 	}
1031 	if (xfer->fc != NULL) {
1032 #if 1
1033 		if(xfer->state == FWXF_START)
1034 			/*
1035 			 * This could happen if:
1036 			 *  1. We call fwohci_arcv() before fwohci_txd().
1037 			 *  2. firewire_watch() is called.
1038 			 */
1039 			printf("fw_xfer_free FWXF_START\n");
1040 #endif
1041 	}
1042 	xfer->state = FWXF_INIT;
1043 	xfer->resp = 0;
1044 }
1045 /*
1046  * To free IEEE1394 XFER structure.
1047  */
1048 void
1049 fw_xfer_free_buf( struct fw_xfer* xfer)
1050 {
1051 	if (xfer == NULL) {
1052 		printf("%s: xfer == NULL\n", __func__);
1053 		return;
1054 	}
1055 	fw_xfer_unload(xfer);
1056 	if(xfer->send.payload != NULL){
1057 		free(xfer->send.payload, xfer->malloc);
1058 	}
1059 	if(xfer->recv.payload != NULL){
1060 		free(xfer->recv.payload, xfer->malloc);
1061 	}
1062 	free(xfer, xfer->malloc);
1063 }
1064 
1065 void
1066 fw_xfer_free( struct fw_xfer* xfer)
1067 {
1068 	if (xfer == NULL) {
1069 		printf("%s: xfer == NULL\n", __func__);
1070 		return;
1071 	}
1072 	fw_xfer_unload(xfer);
1073 	free(xfer, xfer->malloc);
1074 }
1075 
1076 void
1077 fw_asy_callback_free(struct fw_xfer *xfer)
1078 {
1079 #if 0
1080 	printf("asyreq done state=%d resp=%d\n",
1081 				xfer->state, xfer->resp);
1082 #endif
1083 	fw_xfer_free(xfer);
1084 }
1085 
1086 /*
1087  * To configure PHY.
1088  */
1089 static void
1090 fw_phy_config(struct firewire_comm *fc, int root_node, int gap_count)
1091 {
1092 	struct fw_xfer *xfer;
1093 	struct fw_pkt *fp;
1094 
1095 	fc->status = FWBUSPHYCONF;
1096 
1097 	xfer = fw_xfer_alloc(M_FWXFER);
1098 	if (xfer == NULL)
1099 		return;
1100 	xfer->fc = fc;
1101 	xfer->hand = fw_asy_callback_free;
1102 
1103 	fp = &xfer->send.hdr;
1104 	fp->mode.ld[1] = 0;
1105 	if (root_node >= 0)
1106 		fp->mode.ld[1] |= (root_node & 0x3f) << 24 | 1 << 23;
1107 	if (gap_count >= 0)
1108 		fp->mode.ld[1] |= 1 << 22 | (gap_count & 0x3f) << 16;
1109 	fp->mode.ld[2] = ~fp->mode.ld[1];
1110 /* XXX Dangerous, how to pass PHY packet to device driver */
1111 	fp->mode.common.tcode |= FWTCODE_PHY;
1112 
1113 	if (firewire_debug)
1114 		printf("send phy_config root_node=%d gap_count=%d\n",
1115 						root_node, gap_count);
1116 	fw_asyreq(fc, -1, xfer);
1117 }
1118 
1119 #if 0
1120 /*
1121  * Dump self ID.
1122  */
1123 static void
1124 fw_print_sid(uint32_t sid)
1125 {
1126 	union fw_self_id *s;
1127 	s = (union fw_self_id *) &sid;
1128 	printf("node:%d link:%d gap:%d spd:%d del:%d con:%d pwr:%d"
1129 		" p0:%d p1:%d p2:%d i:%d m:%d\n",
1130 		s->p0.phy_id, s->p0.link_active, s->p0.gap_count,
1131 		s->p0.phy_speed, s->p0.phy_delay, s->p0.contender,
1132 		s->p0.power_class, s->p0.port0, s->p0.port1,
1133 		s->p0.port2, s->p0.initiated_reset, s->p0.more_packets);
1134 }
1135 #endif
1136 
1137 /*
1138  * To receive self ID.
1139  */
1140 void fw_sidrcv(struct firewire_comm* fc, uint32_t *sid, u_int len)
1141 {
1142 	uint32_t *p;
1143 	union fw_self_id *self_id;
1144 	u_int i, j, node, c_port = 0, i_branch = 0;
1145 
1146 	fc->sid_cnt = len /(sizeof(uint32_t) * 2);
1147 	fc->status = FWBUSINIT;
1148 	fc->max_node = fc->nodeid & 0x3f;
1149 	CSRARC(fc, NODE_IDS) = ((uint32_t)fc->nodeid) << 16;
1150 	fc->status = FWBUSCYMELECT;
1151 	fc->topology_map->crc_len = 2;
1152 	fc->topology_map->generation ++;
1153 	fc->topology_map->self_id_count = 0;
1154 	fc->topology_map->node_count = 0;
1155 	fc->speed_map->generation ++;
1156 	fc->speed_map->crc_len = 1 + (64*64 + 3) / 4;
1157 	self_id = &fc->topology_map->self_id[0];
1158 	for(i = 0; i < fc->sid_cnt; i ++){
1159 		if (sid[1] != ~sid[0]) {
1160 			printf("fw_sidrcv: invalid self-id packet\n");
1161 			sid += 2;
1162 			continue;
1163 		}
1164 		*self_id = *((union fw_self_id *)sid);
1165 		fc->topology_map->crc_len++;
1166 		if(self_id->p0.sequel == 0){
1167 			fc->topology_map->node_count ++;
1168 			c_port = 0;
1169 #if 0
1170 			fw_print_sid(sid[0]);
1171 #endif
1172 			node = self_id->p0.phy_id;
1173 			if(fc->max_node < node){
1174 				fc->max_node = self_id->p0.phy_id;
1175 			}
1176 			/* XXX I'm not sure this is the right speed_map */
1177 			fc->speed_map->speed[node][node]
1178 					= self_id->p0.phy_speed;
1179 			for (j = 0; j < node; j ++) {
1180 				fc->speed_map->speed[j][node]
1181 					= fc->speed_map->speed[node][j]
1182 					= min(fc->speed_map->speed[j][j],
1183 							self_id->p0.phy_speed);
1184 			}
1185 			if ((fc->irm == -1 || self_id->p0.phy_id > fc->irm) &&
1186 			  (self_id->p0.link_active && self_id->p0.contender)) {
1187 				fc->irm = self_id->p0.phy_id;
1188 			}
1189 			if(self_id->p0.port0 >= 0x2){
1190 				c_port++;
1191 			}
1192 			if(self_id->p0.port1 >= 0x2){
1193 				c_port++;
1194 			}
1195 			if(self_id->p0.port2 >= 0x2){
1196 				c_port++;
1197 			}
1198 		}
1199 		if(c_port > 2){
1200 			i_branch += (c_port - 2);
1201 		}
1202 		sid += 2;
1203 		self_id++;
1204 		fc->topology_map->self_id_count ++;
1205 	}
1206 	device_printf(fc->bdev, "%d nodes", fc->max_node + 1);
1207 	/* CRC */
1208 	fc->topology_map->crc = fw_crc16(
1209 			(uint32_t *)&fc->topology_map->generation,
1210 			fc->topology_map->crc_len * 4);
1211 	fc->speed_map->crc = fw_crc16(
1212 			(uint32_t *)&fc->speed_map->generation,
1213 			fc->speed_map->crc_len * 4);
1214 	/* byteswap and copy to CSR */
1215 	p = (uint32_t *)fc->topology_map;
1216 	for (i = 0; i <= fc->topology_map->crc_len; i++)
1217 		CSRARC(fc, TOPO_MAP + i * 4) = htonl(*p++);
1218 	p = (uint32_t *)fc->speed_map;
1219 	CSRARC(fc, SPED_MAP) = htonl(*p++);
1220 	CSRARC(fc, SPED_MAP + 4) = htonl(*p++);
1221 	/* don't byte-swap uint8_t array */
1222 	bcopy(p, &CSRARC(fc, SPED_MAP + 8), (fc->speed_map->crc_len - 1)*4);
1223 
1224 	fc->max_hop = fc->max_node - i_branch;
1225 	printf(", maxhop <= %d", fc->max_hop);
1226 
1227 	if(fc->irm == -1 ){
1228 		printf(", Not found IRM capable node");
1229 	}else{
1230 		printf(", cable IRM = %d", fc->irm);
1231 		if (fc->irm == fc->nodeid)
1232 			printf(" (me)");
1233 	}
1234 	printf("\n");
1235 
1236 	if (try_bmr && (fc->irm != -1) && (CSRARC(fc, BUS_MGR_ID) == 0x3f)) {
1237 		if (fc->irm == fc->nodeid) {
1238 			fc->status = FWBUSMGRDONE;
1239 			CSRARC(fc, BUS_MGR_ID) = fc->set_bmr(fc, fc->irm);
1240 			fw_bmr(fc);
1241 		} else {
1242 			fc->status = FWBUSMGRELECT;
1243 			callout_reset(&fc->bmr_callout, hz/8,
1244 				(void *)fw_try_bmr, (void *)fc);
1245 		}
1246 	} else
1247 		fc->status = FWBUSMGRDONE;
1248 
1249 	callout_reset(&fc->busprobe_callout, hz/4,
1250 			(void *)fw_bus_probe, (void *)fc);
1251 }
1252 
1253 /*
1254  * To probe devices on the IEEE1394 bus.
1255  */
1256 static void
1257 fw_bus_probe(struct firewire_comm *fc)
1258 {
1259 	int s;
1260 	struct fw_device *fwdev;
1261 
1262 	s = splfw();
1263 	fc->status = FWBUSEXPLORE;
1264 
1265 	/* Invalidate all devices, just after bus reset. */
1266 	STAILQ_FOREACH(fwdev, &fc->devices, link)
1267 		if (fwdev->status != FWDEVINVAL) {
1268 			fwdev->status = FWDEVINVAL;
1269 			fwdev->rcnt = 0;
1270 		}
1271 
1272 	fc->ongonode = 0;
1273 	fc->ongoaddr = CSRROMOFF;
1274 	fc->ongodev = NULL;
1275 	fc->ongoeui.hi = 0xffffffff; fc->ongoeui.lo = 0xffffffff;
1276 	fw_bus_explore(fc);
1277 	splx(s);
1278 }
1279 
1280 /*
1281  * Find the self_id packet for a node, ignoring sequels.
1282  */
1283 static union fw_self_id *
1284 fw_find_self_id(struct firewire_comm *fc, int node)
1285 {
1286 	uint32_t i;
1287 	union fw_self_id *s;
1288 
1289 	for (i = 0; i < fc->topology_map->self_id_count; i++) {
1290 		s = &fc->topology_map->self_id[i];
1291 		if (s->p0.sequel)
1292 			continue;
1293 		if (s->p0.phy_id == node)
1294 			return s;
1295 	}
1296 	return 0;
1297 }
1298 
1299 /*
1300  * To collect device informations on the IEEE1394 bus.
1301  */
1302 static void
1303 fw_bus_explore(struct firewire_comm *fc )
1304 {
1305 	int err = 0;
1306 	struct fw_device *fwdev, *pfwdev, *tfwdev;
1307 	uint32_t addr;
1308 	struct fw_xfer *xfer;
1309 	struct fw_pkt *fp;
1310 	union fw_self_id *fwsid;
1311 
1312 	if(fc->status != FWBUSEXPLORE)
1313 		return;
1314 
1315 loop:
1316 	if(fc->ongonode == fc->nodeid) fc->ongonode++;
1317 
1318 	if(fc->ongonode > fc->max_node) goto done;
1319 	if(fc->ongonode >= 0x3f) goto done;
1320 
1321 	/* check link */
1322 	/* XXX we need to check phy_id first */
1323 	fwsid = fw_find_self_id(fc, fc->ongonode);
1324 	if (!fwsid || !fwsid->p0.link_active) {
1325 		if (firewire_debug)
1326 			printf("node%d: link down\n", fc->ongonode);
1327 		fc->ongonode++;
1328 		goto loop;
1329 	}
1330 
1331 	if(fc->ongoaddr <= CSRROMOFF &&
1332 		fc->ongoeui.hi == 0xffffffff &&
1333 		fc->ongoeui.lo == 0xffffffff ){
1334 		fc->ongoaddr = CSRROMOFF;
1335 		addr = 0xf0000000 | fc->ongoaddr;
1336 	}else if(fc->ongoeui.hi == 0xffffffff ){
1337 		fc->ongoaddr = CSRROMOFF + 0xc;
1338 		addr = 0xf0000000 | fc->ongoaddr;
1339 	}else if(fc->ongoeui.lo == 0xffffffff ){
1340 		fc->ongoaddr = CSRROMOFF + 0x10;
1341 		addr = 0xf0000000 | fc->ongoaddr;
1342 	}else if(fc->ongodev == NULL){
1343 		STAILQ_FOREACH(fwdev, &fc->devices, link)
1344 			if (FW_EUI64_EQUAL(fwdev->eui, fc->ongoeui))
1345 				break;
1346 		if(fwdev != NULL){
1347 			fwdev->dst = fc->ongonode;
1348 			fwdev->status = FWDEVINIT;
1349 			fc->ongodev = fwdev;
1350 			fc->ongoaddr = CSRROMOFF;
1351 			addr = 0xf0000000 | fc->ongoaddr;
1352 			goto dorequest;
1353 		}
1354 		fwdev = malloc(sizeof(struct fw_device), M_FW,
1355 							M_NOWAIT | M_ZERO);
1356 		if(fwdev == NULL)
1357 			return;
1358 		fwdev->fc = fc;
1359 		fwdev->rommax = 0;
1360 		fwdev->dst = fc->ongonode;
1361 		fwdev->eui.hi = fc->ongoeui.hi; fwdev->eui.lo = fc->ongoeui.lo;
1362 		fwdev->status = FWDEVINIT;
1363 		fwdev->speed = fc->speed_map->speed[fc->nodeid][fc->ongonode];
1364 
1365 		pfwdev = NULL;
1366 		STAILQ_FOREACH(tfwdev, &fc->devices, link) {
1367 			if (tfwdev->eui.hi > fwdev->eui.hi ||
1368 					(tfwdev->eui.hi == fwdev->eui.hi &&
1369 					tfwdev->eui.lo > fwdev->eui.lo))
1370 				break;
1371 			pfwdev = tfwdev;
1372 		}
1373 		if (pfwdev == NULL)
1374 			STAILQ_INSERT_HEAD(&fc->devices, fwdev, link);
1375 		else
1376 			STAILQ_INSERT_AFTER(&fc->devices, pfwdev, fwdev, link);
1377 
1378 		device_printf(fc->bdev, "New %s device ID:%08x%08x\n",
1379 			linkspeed[fwdev->speed],
1380 			fc->ongoeui.hi, fc->ongoeui.lo);
1381 
1382 		fc->ongodev = fwdev;
1383 		fc->ongoaddr = CSRROMOFF;
1384 		addr = 0xf0000000 | fc->ongoaddr;
1385 	}else{
1386 		addr = 0xf0000000 | fc->ongoaddr;
1387 	}
1388 dorequest:
1389 #if 0
1390 	xfer = asyreqq(fc, FWSPD_S100, 0, 0,
1391 		((FWLOCALBUS | fc->ongonode) << 16) | 0xffff , addr,
1392 		fw_bus_explore_callback);
1393 	if(xfer == NULL) goto done;
1394 #else
1395 	xfer = fw_xfer_alloc(M_FWXFER);
1396 	if(xfer == NULL){
1397 		goto done;
1398 	}
1399 	xfer->send.spd = 0;
1400 	fp = &xfer->send.hdr;
1401 	fp->mode.rreqq.dest_hi = 0xffff;
1402 	fp->mode.rreqq.tlrt = 0;
1403 	fp->mode.rreqq.tcode = FWTCODE_RREQQ;
1404 	fp->mode.rreqq.pri = 0;
1405 	fp->mode.rreqq.src = 0;
1406 	fp->mode.rreqq.dst = FWLOCALBUS | fc->ongonode;
1407 	fp->mode.rreqq.dest_lo = addr;
1408 	xfer->hand = fw_bus_explore_callback;
1409 
1410 	if (firewire_debug)
1411 		printf("node%d: explore addr=0x%x\n",
1412 				fc->ongonode, fc->ongoaddr);
1413 	err = fw_asyreq(fc, -1, xfer);
1414 	if(err){
1415 		fw_xfer_free( xfer);
1416 		return;
1417 	}
1418 #endif
1419 	return;
1420 done:
1421 	/* fw_attach_devs */
1422 	fc->status = FWBUSEXPDONE;
1423 	if (firewire_debug)
1424 		printf("bus_explore done\n");
1425 	fw_attach_dev(fc);
1426 	return;
1427 
1428 }
1429 
1430 /* Portable Async. request read quad */
1431 struct fw_xfer *
1432 asyreqq(struct firewire_comm *fc, uint8_t spd, uint8_t tl, uint8_t rt,
1433 	uint32_t addr_hi, uint32_t addr_lo,
1434 	void (*hand) (struct fw_xfer*))
1435 {
1436 	struct fw_xfer *xfer;
1437 	struct fw_pkt *fp;
1438 	int err;
1439 
1440 	xfer = fw_xfer_alloc(M_FWXFER);
1441 	if (xfer == NULL)
1442 		return NULL;
1443 
1444 	xfer->send.spd = spd; /* XXX:min(spd, fc->spd) */
1445 	fp = &xfer->send.hdr;
1446 	fp->mode.rreqq.dest_hi = addr_hi & 0xffff;
1447 	if(tl & FWP_TL_VALID){
1448 		fp->mode.rreqq.tlrt = (tl & 0x3f) << 2;
1449 	}else{
1450 		fp->mode.rreqq.tlrt = 0;
1451 	}
1452 	fp->mode.rreqq.tlrt |= rt & 0x3;
1453 	fp->mode.rreqq.tcode = FWTCODE_RREQQ;
1454 	fp->mode.rreqq.pri = 0;
1455 	fp->mode.rreqq.src = 0;
1456 	fp->mode.rreqq.dst = addr_hi >> 16;
1457 	fp->mode.rreqq.dest_lo = addr_lo;
1458 	xfer->hand = hand;
1459 
1460 	err = fw_asyreq(fc, -1, xfer);
1461 	if(err){
1462 		fw_xfer_free( xfer);
1463 		return NULL;
1464 	}
1465 	return xfer;
1466 }
1467 
1468 /*
1469  * Callback for the IEEE1394 bus information collection.
1470  */
1471 static void
1472 fw_bus_explore_callback(struct fw_xfer *xfer)
1473 {
1474 	struct firewire_comm *fc;
1475 	struct fw_pkt *sfp,*rfp;
1476 	struct csrhdr *chdr;
1477 	struct csrdir *csrd;
1478 	struct csrreg *csrreg;
1479 	uint32_t offset;
1480 
1481 
1482 	if(xfer == NULL) {
1483 		printf("xfer == NULL\n");
1484 		return;
1485 	}
1486 	fc = xfer->fc;
1487 
1488 	if (firewire_debug)
1489 		printf("node%d: callback addr=0x%x\n",
1490 			fc->ongonode, fc->ongoaddr);
1491 
1492 	if(xfer->resp != 0){
1493 		device_printf(fc->bdev,
1494 		    "bus_explore node=%d addr=0x%x resp=%d\n",
1495 		    fc->ongonode, fc->ongoaddr, xfer->resp);
1496 		goto errnode;
1497 	}
1498 
1499 	sfp = &xfer->send.hdr;
1500 	rfp = &xfer->recv.hdr;
1501 #if 0
1502 	{
1503 		uint32_t *qld;
1504 		int i;
1505 		qld = (uint32_t *)xfer->recv.buf;
1506 		printf("len:%d\n", xfer->recv.len);
1507 		for( i = 0 ; i <= xfer->recv.len && i < 32; i+= 4){
1508 			printf("0x%08x ", rfp->mode.ld[i/4]);
1509 			if((i % 16) == 15) printf("\n");
1510 		}
1511 		if((i % 16) != 15) printf("\n");
1512 	}
1513 #endif
1514 	if(fc->ongodev == NULL){
1515 		if(sfp->mode.rreqq.dest_lo == (0xf0000000 | CSRROMOFF)){
1516 			rfp->mode.rresq.data = ntohl(rfp->mode.rresq.data);
1517 			chdr = (struct csrhdr *)(&rfp->mode.rresq.data);
1518 /* If CSR is minimal confinguration, more investigation is not needed. */
1519 			if(chdr->info_len == 1){
1520 				if (firewire_debug)
1521 					printf("node%d: minimal config\n",
1522 								fc->ongonode);
1523 				goto nextnode;
1524 			}else{
1525 				fc->ongoaddr = CSRROMOFF + 0xc;
1526 			}
1527 		}else if(sfp->mode.rreqq.dest_lo == (0xf0000000 |(CSRROMOFF + 0xc))){
1528 			fc->ongoeui.hi = ntohl(rfp->mode.rresq.data);
1529 			fc->ongoaddr = CSRROMOFF + 0x10;
1530 		}else if(sfp->mode.rreqq.dest_lo == (0xf0000000 |(CSRROMOFF + 0x10))){
1531 			fc->ongoeui.lo = ntohl(rfp->mode.rresq.data);
1532 			if (fc->ongoeui.hi == 0 && fc->ongoeui.lo == 0) {
1533 				if (firewire_debug)
1534 					printf("node%d: eui64 is zero.\n",
1535 							fc->ongonode);
1536 				goto nextnode;
1537 			}
1538 			fc->ongoaddr = CSRROMOFF;
1539 		}
1540 	}else{
1541 		if (fc->ongoaddr == CSRROMOFF &&
1542 		    fc->ongodev->csrrom[0] == ntohl(rfp->mode.rresq.data)) {
1543 			fc->ongodev->status = FWDEVATTACHED;
1544 			goto nextnode;
1545 		}
1546 		fc->ongodev->csrrom[(fc->ongoaddr - CSRROMOFF)/4] = ntohl(rfp->mode.rresq.data);
1547 		if(fc->ongoaddr > fc->ongodev->rommax){
1548 			fc->ongodev->rommax = fc->ongoaddr;
1549 		}
1550 		csrd = SLIST_FIRST(&fc->ongocsr);
1551 		if((csrd = SLIST_FIRST(&fc->ongocsr)) == NULL){
1552 			chdr = (struct csrhdr *)(fc->ongodev->csrrom);
1553 			offset = CSRROMOFF;
1554 		}else{
1555 			chdr = (struct csrhdr *)&fc->ongodev->csrrom[(csrd->off - CSRROMOFF)/4];
1556 			offset = csrd->off;
1557 		}
1558 		if(fc->ongoaddr > (CSRROMOFF + 0x14) && fc->ongoaddr != offset){
1559 			csrreg = (struct csrreg *)&fc->ongodev->csrrom[(fc->ongoaddr - CSRROMOFF)/4];
1560 			if( csrreg->key == 0x81 || csrreg->key == 0xd1){
1561 				csrd = SLIST_FIRST(&fc->csrfree);
1562 				if(csrd == NULL){
1563 					goto nextnode;
1564 				}else{
1565 					csrd->ongoaddr = fc->ongoaddr;
1566 					fc->ongoaddr += csrreg->val * 4;
1567 					csrd->off = fc->ongoaddr;
1568 					SLIST_REMOVE_HEAD(&fc->csrfree, link);
1569 					SLIST_INSERT_HEAD(&fc->ongocsr, csrd, link);
1570 					goto nextaddr;
1571 				}
1572 			}
1573 		}
1574 		fc->ongoaddr += 4;
1575 		if(((fc->ongoaddr - offset)/4 > chdr->crc_len) &&
1576 				(fc->ongodev->rommax < 0x414)){
1577 			if(fc->ongodev->rommax <= 0x414){
1578 				csrd = SLIST_FIRST(&fc->csrfree);
1579 				if(csrd == NULL) goto nextnode;
1580 				csrd->off = fc->ongoaddr;
1581 				csrd->ongoaddr = fc->ongoaddr;
1582 				SLIST_REMOVE_HEAD(&fc->csrfree, link);
1583 				SLIST_INSERT_HEAD(&fc->ongocsr, csrd, link);
1584 			}
1585 			goto nextaddr;
1586 		}
1587 
1588 		while(((fc->ongoaddr - offset)/4 > chdr->crc_len)){
1589 			if(csrd == NULL){
1590 				goto nextnode;
1591 			};
1592 			fc->ongoaddr = csrd->ongoaddr + 4;
1593 			SLIST_REMOVE_HEAD(&fc->ongocsr, link);
1594 			SLIST_INSERT_HEAD(&fc->csrfree, csrd, link);
1595 			csrd = SLIST_FIRST(&fc->ongocsr);
1596 			if((csrd = SLIST_FIRST(&fc->ongocsr)) == NULL){
1597 				chdr = (struct csrhdr *)(fc->ongodev->csrrom);
1598 				offset = CSRROMOFF;
1599 			}else{
1600 				chdr = (struct csrhdr *)&(fc->ongodev->csrrom[(csrd->off - CSRROMOFF)/4]);
1601 				offset = csrd->off;
1602 			}
1603 		}
1604 		if((fc->ongoaddr - CSRROMOFF) > CSRROMSIZE){
1605 			goto nextnode;
1606 		}
1607 	}
1608 nextaddr:
1609 	fw_xfer_free( xfer);
1610 	fw_bus_explore(fc);
1611 	return;
1612 errnode:
1613 	if (fc->ongodev != NULL) {
1614 		fc->ongodev->status = FWDEVINVAL;
1615 		/* Invalidate ROM */
1616 		fc->ongodev->csrrom[0] = 0;
1617 	}
1618 nextnode:
1619 	fw_xfer_free( xfer);
1620 	fc->ongonode++;
1621 /* housekeeping work space */
1622 	fc->ongoaddr = CSRROMOFF;
1623 	fc->ongodev = NULL;
1624 	fc->ongoeui.hi = 0xffffffff; fc->ongoeui.lo = 0xffffffff;
1625 	while((csrd = SLIST_FIRST(&fc->ongocsr)) != NULL){
1626 		SLIST_REMOVE_HEAD(&fc->ongocsr, link);
1627 		SLIST_INSERT_HEAD(&fc->csrfree, csrd, link);
1628 	}
1629 	fw_bus_explore(fc);
1630 	return;
1631 }
1632 
1633 /*
1634  * To attach sub-devices layer onto IEEE1394 bus.
1635  */
1636 static void
1637 fw_attach_dev(struct firewire_comm *fc)
1638 {
1639 	struct fw_device *fwdev, *next;
1640 	int i, err;
1641 	device_t *devlistp;
1642 	int devcnt;
1643 	struct firewire_dev_comm *fdc;
1644 
1645 	for (fwdev = STAILQ_FIRST(&fc->devices); fwdev != NULL; fwdev = next) {
1646 		next = STAILQ_NEXT(fwdev, link);
1647 		if (fwdev->status == FWDEVINIT) {
1648 			fwdev->status = FWDEVATTACHED;
1649 		} else if (fwdev->status == FWDEVINVAL) {
1650 			fwdev->rcnt ++;
1651 			if (fwdev->rcnt > hold_count) {
1652 				/*
1653 				 * Remove devices which have not been seen
1654 				 * for a while.
1655 				 */
1656 				STAILQ_REMOVE(&fc->devices, fwdev, fw_device,
1657 				    link);
1658 				free(fwdev, M_FW);
1659 			}
1660 		}
1661 	}
1662 
1663 	err = device_get_children(fc->bdev, &devlistp, &devcnt);
1664 	if( err != 0 )
1665 		return;
1666 	for( i = 0 ; i < devcnt ; i++){
1667 		if (device_get_state(devlistp[i]) >= DS_ATTACHED)  {
1668 			fdc = device_get_softc(devlistp[i]);
1669 			if (fdc->post_explore != NULL)
1670 				fdc->post_explore(fdc);
1671 		}
1672 	}
1673 	free(devlistp, M_TEMP);
1674 
1675 	return;
1676 }
1677 
1678 /*
1679  * To allocate unique transaction label.
1680  */
1681 static int
1682 fw_get_tlabel(struct firewire_comm *fc, struct fw_xfer *xfer)
1683 {
1684 	u_int i;
1685 	struct tlabel *tl, *tmptl;
1686 	int s;
1687 	static uint32_t label = 0;
1688 
1689 	s = splfw();
1690 	for( i = 0 ; i < 0x40 ; i ++){
1691 		label = (label + 1) & 0x3f;
1692 		for(tmptl = STAILQ_FIRST(&fc->tlabels[label]);
1693 			tmptl != NULL; tmptl = STAILQ_NEXT(tmptl, link)){
1694 			if (tmptl->xfer->send.hdr.mode.hdr.dst ==
1695 			    xfer->send.hdr.mode.hdr.dst)
1696 				break;
1697 		}
1698 		if(tmptl == NULL) {
1699 			tl = malloc(sizeof(struct tlabel),M_FW,M_NOWAIT);
1700 			if (tl == NULL) {
1701 				splx(s);
1702 				return (-1);
1703 			}
1704 			tl->xfer = xfer;
1705 			STAILQ_INSERT_TAIL(&fc->tlabels[label], tl, link);
1706 			splx(s);
1707 			if (firewire_debug > 1)
1708 				printf("fw_get_tlabel: dst=%d tl=%d\n",
1709 				    xfer->send.hdr.mode.hdr.dst, label);
1710 			return(label);
1711 		}
1712 	}
1713 	splx(s);
1714 
1715 	if (firewire_debug > 1)
1716 		printf("fw_get_tlabel: no free tlabel\n");
1717 	return(-1);
1718 }
1719 
1720 static void
1721 fw_rcv_copy(struct fw_rcv_buf *rb)
1722 {
1723 	struct fw_pkt *pkt;
1724 	u_char *p;
1725 	struct tcode_info *tinfo;
1726 	u_int res, i, len, plen;
1727 
1728 	rb->xfer->recv.spd -= rb->spd;
1729 
1730 	pkt = (struct fw_pkt *)rb->vec->iov_base;
1731 	tinfo = &rb->fc->tcode[pkt->mode.hdr.tcode];
1732 
1733 	/* Copy header */
1734 	p = (u_char *)&rb->xfer->recv.hdr;
1735 	bcopy(rb->vec->iov_base, p, tinfo->hdr_len);
1736 	rb->vec->iov_base = (u_char *)rb->vec->iov_base + tinfo->hdr_len;
1737 	rb->vec->iov_len -= tinfo->hdr_len;
1738 
1739 	/* Copy payload */
1740 	p = (u_char *)rb->xfer->recv.payload;
1741 	res = rb->xfer->recv.pay_len;
1742 
1743 	/* special handling for RRESQ */
1744 	if (pkt->mode.hdr.tcode == FWTCODE_RRESQ &&
1745 	    p != NULL && res >= sizeof(uint32_t)) {
1746 		*(uint32_t *)p = pkt->mode.rresq.data;
1747 		rb->xfer->recv.pay_len = sizeof(uint32_t);
1748 		return;
1749 	}
1750 
1751 	if ((tinfo->flag & FWTI_BLOCK_ASY) == 0)
1752 		return;
1753 
1754 	plen = pkt->mode.rresb.len;
1755 
1756 	for (i = 0; i < rb->nvec; i++, rb->vec++) {
1757 		len = MIN(rb->vec->iov_len, plen);
1758 		if (res < len) {
1759 			printf("rcv buffer(%d) is %d bytes short.\n",
1760 			    rb->xfer->recv.pay_len, len - res);
1761 			len = res;
1762 		}
1763 		bcopy(rb->vec->iov_base, p, len);
1764 		p += len;
1765 		res -= len;
1766 		plen -= len;
1767 		if (res == 0 || plen == 0)
1768 			break;
1769 	}
1770 	rb->xfer->recv.pay_len -= res;
1771 
1772 }
1773 
1774 /*
1775  * Generic packet receiving process.
1776  */
1777 void
1778 fw_rcv(struct fw_rcv_buf *rb)
1779 {
1780 	struct fw_pkt *fp, *resfp;
1781 	struct fw_bind *bind;
1782 	int tcode, s;
1783 	int i, len, oldstate;
1784 #if 0
1785 	{
1786 		uint32_t *qld;
1787 		int i;
1788 		qld = (uint32_t *)buf;
1789 		printf("spd %d len:%d\n", spd, len);
1790 		for( i = 0 ; i <= len && i < 32; i+= 4){
1791 			printf("0x%08x ", ntohl(qld[i/4]));
1792 			if((i % 16) == 15) printf("\n");
1793 		}
1794 		if((i % 16) != 15) printf("\n");
1795 	}
1796 #endif
1797 	fp = (struct fw_pkt *)rb->vec[0].iov_base;
1798 	tcode = fp->mode.common.tcode;
1799 	switch (tcode) {
1800 	case FWTCODE_WRES:
1801 	case FWTCODE_RRESQ:
1802 	case FWTCODE_RRESB:
1803 	case FWTCODE_LRES:
1804 		rb->xfer = fw_tl2xfer(rb->fc, fp->mode.hdr.src,
1805 					fp->mode.hdr.tlrt >> 2);
1806 		if(rb->xfer == NULL) {
1807 			printf("fw_rcv: unknown response "
1808 			    "%s(%x) src=0x%x tl=0x%x rt=%d data=0x%x\n",
1809 			    tcode_str[tcode], tcode,
1810 			    fp->mode.hdr.src,
1811 			    fp->mode.hdr.tlrt >> 2,
1812 			    fp->mode.hdr.tlrt & 3,
1813 			    fp->mode.rresq.data);
1814 #if 1
1815 			printf("try ad-hoc work around!!\n");
1816 			rb->xfer = fw_tl2xfer(rb->fc, fp->mode.hdr.src,
1817 					(fp->mode.hdr.tlrt >> 2)^3);
1818 			if (rb->xfer == NULL) {
1819 				printf("no use...\n");
1820 				goto err;
1821 			}
1822 #else
1823 			goto err;
1824 #endif
1825 		}
1826 		fw_rcv_copy(rb);
1827 		if (rb->xfer->recv.hdr.mode.wres.rtcode != RESP_CMP)
1828 			rb->xfer->resp = EIO;
1829 		else
1830 			rb->xfer->resp = 0;
1831 		/* make sure the packet is drained in AT queue */
1832 		oldstate = rb->xfer->state;
1833 		rb->xfer->state = FWXF_RCVD;
1834 		switch (oldstate) {
1835 		case FWXF_SENT:
1836 			fw_xfer_done(rb->xfer);
1837 			break;
1838 		case FWXF_START:
1839 #if 0
1840 			if (firewire_debug)
1841 				printf("not sent yet tl=%x\n", rb->xfer->tl);
1842 #endif
1843 			break;
1844 		default:
1845 			printf("unexpected state %d\n", rb->xfer->state);
1846 		}
1847 		return;
1848 	case FWTCODE_WREQQ:
1849 	case FWTCODE_WREQB:
1850 	case FWTCODE_RREQQ:
1851 	case FWTCODE_RREQB:
1852 	case FWTCODE_LREQ:
1853 		bind = fw_bindlookup(rb->fc, fp->mode.rreqq.dest_hi,
1854 			fp->mode.rreqq.dest_lo);
1855 		if(bind == NULL){
1856 			printf("Unknown service addr 0x%04x:0x%08x %s(%x)"
1857 #if defined(__DragonFly__) || __FreeBSD_version < 500000
1858 			    " src=0x%x data=%lx\n",
1859 #else
1860 			    " src=0x%x data=%x\n",
1861 #endif
1862 			    fp->mode.wreqq.dest_hi, fp->mode.wreqq.dest_lo,
1863 			    tcode_str[tcode], tcode,
1864 			    fp->mode.hdr.src, ntohl(fp->mode.wreqq.data));
1865 			if (rb->fc->status == FWBUSRESET) {
1866 				printf("fw_rcv: cannot respond(bus reset)!\n");
1867 				goto err;
1868 			}
1869 			rb->xfer = fw_xfer_alloc(M_FWXFER);
1870 			if(rb->xfer == NULL){
1871 				return;
1872 			}
1873 			rb->xfer->send.spd = rb->spd;
1874 			rb->xfer->send.pay_len = 0;
1875 			resfp = &rb->xfer->send.hdr;
1876 			switch (tcode) {
1877 			case FWTCODE_WREQQ:
1878 			case FWTCODE_WREQB:
1879 				resfp->mode.hdr.tcode = FWTCODE_WRES;
1880 				break;
1881 			case FWTCODE_RREQQ:
1882 				resfp->mode.hdr.tcode = FWTCODE_RRESQ;
1883 				break;
1884 			case FWTCODE_RREQB:
1885 				resfp->mode.hdr.tcode = FWTCODE_RRESB;
1886 				break;
1887 			case FWTCODE_LREQ:
1888 				resfp->mode.hdr.tcode = FWTCODE_LRES;
1889 				break;
1890 			}
1891 			resfp->mode.hdr.dst = fp->mode.hdr.src;
1892 			resfp->mode.hdr.tlrt = fp->mode.hdr.tlrt;
1893 			resfp->mode.hdr.pri = fp->mode.hdr.pri;
1894 			resfp->mode.rresb.rtcode = RESP_ADDRESS_ERROR;
1895 			resfp->mode.rresb.extcode = 0;
1896 			resfp->mode.rresb.len = 0;
1897 /*
1898 			rb->xfer->hand = fw_asy_callback;
1899 */
1900 			rb->xfer->hand = fw_xfer_free;
1901 			if(fw_asyreq(rb->fc, -1, rb->xfer)){
1902 				fw_xfer_free(rb->xfer);
1903 				return;
1904 			}
1905 			goto err;
1906 		}
1907 		len = 0;
1908 		for (i = 0; i < rb->nvec; i ++)
1909 			len += rb->vec[i].iov_len;
1910 		switch(bind->act_type){
1911 		case FWACT_XFER:
1912 			/* splfw()?? */
1913 			rb->xfer = STAILQ_FIRST(&bind->xferlist);
1914 			if (rb->xfer == NULL) {
1915 				printf("Discard a packet for this bind.\n");
1916 				goto err;
1917 			}
1918 			STAILQ_REMOVE_HEAD(&bind->xferlist, link);
1919 			fw_rcv_copy(rb);
1920 			rb->xfer->hand(rb->xfer);
1921 			return;
1922 			break;
1923 		case FWACT_CH:
1924 			if(rb->fc->ir[bind->sub]->queued >=
1925 				rb->fc->ir[bind->sub]->maxq){
1926 				device_printf(rb->fc->bdev,
1927 					"Discard a packet %x %d\n",
1928 					bind->sub,
1929 					rb->fc->ir[bind->sub]->queued);
1930 				goto err;
1931 			}
1932 			rb->xfer = STAILQ_FIRST(&bind->xferlist);
1933 			if (rb->xfer == NULL) {
1934 				printf("Discard packet for this bind\n");
1935 				goto err;
1936 			}
1937 			STAILQ_REMOVE_HEAD(&bind->xferlist, link);
1938 			fw_rcv_copy(rb);
1939 			s = splfw();
1940 			rb->fc->ir[bind->sub]->queued++;
1941 			STAILQ_INSERT_TAIL(&rb->fc->ir[bind->sub]->q,
1942 			    rb->xfer, link);
1943 			splx(s);
1944 
1945 			wakeup((caddr_t)rb->fc->ir[bind->sub]);
1946 
1947 			return;
1948 			break;
1949 		default:
1950 			goto err;
1951 			break;
1952 		}
1953 		break;
1954 #if 0 /* shouldn't happen ?? or for GASP */
1955 	case FWTCODE_STREAM:
1956 	{
1957 		struct fw_xferq *xferq;
1958 
1959 		xferq = rb->fc->ir[sub];
1960 #if 0
1961 		printf("stream rcv dma %d len %d off %d spd %d\n",
1962 			sub, len, off, spd);
1963 #endif
1964 		if(xferq->queued >= xferq->maxq) {
1965 			printf("receive queue is full\n");
1966 			goto err;
1967 		}
1968 		/* XXX get xfer from xfer queue, we don't need copy for
1969 			per packet mode */
1970 		rb->xfer = fw_xfer_alloc_buf(M_FWXFER, 0, /* XXX */
1971 						vec[0].iov_len);
1972 		if (rb->xfer == NULL) goto err;
1973 		fw_rcv_copy(rb)
1974 		s = splfw();
1975 		xferq->queued++;
1976 		STAILQ_INSERT_TAIL(&xferq->q, rb->xfer, link);
1977 		splx(s);
1978 		sc = device_get_softc(rb->fc->bdev);
1979 #if defined(__DragonFly__) || __FreeBSD_version < 500000
1980 		if (&xferq->rsel.si_pid != 0)
1981 #else
1982 		if (SEL_WAITING(&xferq->rsel))
1983 #endif
1984 			selwakeuppri(&xferq->rsel, FWPRI);
1985 		if (xferq->flag & FWXFERQ_WAKEUP) {
1986 			xferq->flag &= ~FWXFERQ_WAKEUP;
1987 			wakeup((caddr_t)xferq);
1988 		}
1989 		if (xferq->flag & FWXFERQ_HANDLER) {
1990 			xferq->hand(xferq);
1991 		}
1992 		return;
1993 		break;
1994 	}
1995 #endif
1996 	default:
1997 		printf("fw_rcv: unknow tcode %d\n", tcode);
1998 		break;
1999 	}
2000 err:
2001 	return;
2002 }
2003 
2004 /*
2005  * Post process for Bus Manager election process.
2006  */
2007 static void
2008 fw_try_bmr_callback(struct fw_xfer *xfer)
2009 {
2010 	struct firewire_comm *fc;
2011 	int bmr;
2012 
2013 	if (xfer == NULL)
2014 		return;
2015 	fc = xfer->fc;
2016 	if (xfer->resp != 0)
2017 		goto error;
2018 	if (xfer->recv.payload == NULL)
2019 		goto error;
2020 	if (xfer->recv.hdr.mode.lres.rtcode != FWRCODE_COMPLETE)
2021 		goto error;
2022 
2023 	bmr = ntohl(xfer->recv.payload[0]);
2024 	if (bmr == 0x3f)
2025 		bmr = fc->nodeid;
2026 
2027 	CSRARC(fc, BUS_MGR_ID) = fc->set_bmr(fc, bmr & 0x3f);
2028 	fw_xfer_free_buf(xfer);
2029 	fw_bmr(fc);
2030 	return;
2031 
2032 error:
2033 	device_printf(fc->bdev, "bus manager election failed\n");
2034 	fw_xfer_free_buf(xfer);
2035 }
2036 
2037 
2038 /*
2039  * To candidate Bus Manager election process.
2040  */
2041 static void
2042 fw_try_bmr(void *arg)
2043 {
2044 	struct fw_xfer *xfer;
2045 	struct firewire_comm *fc = (struct firewire_comm *)arg;
2046 	struct fw_pkt *fp;
2047 	int err = 0;
2048 
2049 	xfer = fw_xfer_alloc_buf(M_FWXFER, 8, 4);
2050 	if(xfer == NULL){
2051 		return;
2052 	}
2053 	xfer->send.spd = 0;
2054 	fc->status = FWBUSMGRELECT;
2055 
2056 	fp = &xfer->send.hdr;
2057 	fp->mode.lreq.dest_hi = 0xffff;
2058 	fp->mode.lreq.tlrt = 0;
2059 	fp->mode.lreq.tcode = FWTCODE_LREQ;
2060 	fp->mode.lreq.pri = 0;
2061 	fp->mode.lreq.src = 0;
2062 	fp->mode.lreq.len = 8;
2063 	fp->mode.lreq.extcode = EXTCODE_CMP_SWAP;
2064 	fp->mode.lreq.dst = FWLOCALBUS | fc->irm;
2065 	fp->mode.lreq.dest_lo = 0xf0000000 | BUS_MGR_ID;
2066 	xfer->send.payload[0] = htonl(0x3f);
2067 	xfer->send.payload[1] = htonl(fc->nodeid);
2068 	xfer->hand = fw_try_bmr_callback;
2069 
2070 	err = fw_asyreq(fc, -1, xfer);
2071 	if(err){
2072 		fw_xfer_free_buf(xfer);
2073 		return;
2074 	}
2075 	return;
2076 }
2077 
2078 #ifdef FW_VMACCESS
2079 /*
2080  * Software implementation for physical memory block access.
2081  * XXX:Too slow, usef for debug purpose only.
2082  */
2083 static void
2084 fw_vmaccess(struct fw_xfer *xfer){
2085 	struct fw_pkt *rfp, *sfp = NULL;
2086 	uint32_t *ld = (uint32_t *)xfer->recv.buf;
2087 
2088 	printf("vmaccess spd:%2x len:%03x data:%08x %08x %08x %08x\n",
2089 			xfer->spd, xfer->recv.len, ntohl(ld[0]), ntohl(ld[1]), ntohl(ld[2]), ntohl(ld[3]));
2090 	printf("vmaccess          data:%08x %08x %08x %08x\n", ntohl(ld[4]), ntohl(ld[5]), ntohl(ld[6]), ntohl(ld[7]));
2091 	if(xfer->resp != 0){
2092 		fw_xfer_free( xfer);
2093 		return;
2094 	}
2095 	if(xfer->recv.buf == NULL){
2096 		fw_xfer_free( xfer);
2097 		return;
2098 	}
2099 	rfp = (struct fw_pkt *)xfer->recv.buf;
2100 	switch(rfp->mode.hdr.tcode){
2101 		/* XXX need fix for 64bit arch */
2102 		case FWTCODE_WREQB:
2103 			xfer->send.buf = malloc(12, M_FW, M_NOWAIT);
2104 			xfer->send.len = 12;
2105 			sfp = (struct fw_pkt *)xfer->send.buf;
2106 			bcopy(rfp->mode.wreqb.payload,
2107 				(caddr_t)ntohl(rfp->mode.wreqb.dest_lo), ntohs(rfp->mode.wreqb.len));
2108 			sfp->mode.wres.tcode = FWTCODE_WRES;
2109 			sfp->mode.wres.rtcode = 0;
2110 			break;
2111 		case FWTCODE_WREQQ:
2112 			xfer->send.buf = malloc(12, M_FW, M_NOWAIT);
2113 			xfer->send.len = 12;
2114 			sfp->mode.wres.tcode = FWTCODE_WRES;
2115 			*((uint32_t *)(ntohl(rfp->mode.wreqb.dest_lo))) = rfp->mode.wreqq.data;
2116 			sfp->mode.wres.rtcode = 0;
2117 			break;
2118 		case FWTCODE_RREQB:
2119 			xfer->send.buf = malloc(16 + rfp->mode.rreqb.len, M_FW, M_NOWAIT);
2120 			xfer->send.len = 16 + ntohs(rfp->mode.rreqb.len);
2121 			sfp = (struct fw_pkt *)xfer->send.buf;
2122 			bcopy((caddr_t)ntohl(rfp->mode.rreqb.dest_lo),
2123 				sfp->mode.rresb.payload, (uint16_t)ntohs(rfp->mode.rreqb.len));
2124 			sfp->mode.rresb.tcode = FWTCODE_RRESB;
2125 			sfp->mode.rresb.len = rfp->mode.rreqb.len;
2126 			sfp->mode.rresb.rtcode = 0;
2127 			sfp->mode.rresb.extcode = 0;
2128 			break;
2129 		case FWTCODE_RREQQ:
2130 			xfer->send.buf = malloc(16, M_FW, M_NOWAIT);
2131 			xfer->send.len = 16;
2132 			sfp = (struct fw_pkt *)xfer->send.buf;
2133 			sfp->mode.rresq.data = *(uint32_t *)(ntohl(rfp->mode.rreqq.dest_lo));
2134 			sfp->mode.wres.tcode = FWTCODE_RRESQ;
2135 			sfp->mode.rresb.rtcode = 0;
2136 			break;
2137 		default:
2138 			fw_xfer_free( xfer);
2139 			return;
2140 	}
2141 	sfp->mode.hdr.dst = rfp->mode.hdr.src;
2142 	xfer->dst = ntohs(rfp->mode.hdr.src);
2143 	xfer->hand = fw_xfer_free;
2144 
2145 	sfp->mode.hdr.tlrt = rfp->mode.hdr.tlrt;
2146 	sfp->mode.hdr.pri = 0;
2147 
2148 	fw_asyreq(xfer->fc, -1, xfer);
2149 /**/
2150 	return;
2151 }
2152 #endif
2153 
2154 /*
2155  * CRC16 check-sum for IEEE1394 register blocks.
2156  */
2157 uint16_t
2158 fw_crc16(uint32_t *ptr, uint32_t len){
2159 	uint32_t i, sum, crc = 0;
2160 	int shift;
2161 	len = (len + 3) & ~3;
2162 	for(i = 0 ; i < len ; i+= 4){
2163 		for( shift = 28 ; shift >= 0 ; shift -= 4){
2164 			sum = ((crc >> 12) ^ (ptr[i/4] >> shift)) & 0xf;
2165 			crc = (crc << 4) ^ ( sum << 12 ) ^ ( sum << 5) ^ sum;
2166 		}
2167 		crc &= 0xffff;
2168 	}
2169 	return((uint16_t) crc);
2170 }
2171 
2172 static int
2173 fw_bmr(struct firewire_comm *fc)
2174 {
2175 	struct fw_device fwdev;
2176 	union fw_self_id *self_id;
2177 	int cmstr;
2178 	uint32_t quad;
2179 
2180 	/* Check to see if the current root node is cycle master capable */
2181 	self_id = fw_find_self_id(fc, fc->max_node);
2182 	if (fc->max_node > 0) {
2183 		/* XXX check cmc bit of businfo block rather than contender */
2184 		if (self_id->p0.link_active && self_id->p0.contender)
2185 			cmstr = fc->max_node;
2186 		else {
2187 			device_printf(fc->bdev,
2188 				"root node is not cycle master capable\n");
2189 			/* XXX shall we be the cycle master? */
2190 			cmstr = fc->nodeid;
2191 			/* XXX need bus reset */
2192 		}
2193 	} else
2194 		cmstr = -1;
2195 
2196 	device_printf(fc->bdev, "bus manager %d ", CSRARC(fc, BUS_MGR_ID));
2197 	if(CSRARC(fc, BUS_MGR_ID) != fc->nodeid) {
2198 		/* We are not the bus manager */
2199 		printf("\n");
2200 		return(0);
2201 	}
2202 	printf("(me)\n");
2203 
2204 	/* Optimize gapcount */
2205 	if(fc->max_hop <= MAX_GAPHOP )
2206 		fw_phy_config(fc, cmstr, gap_cnt[fc->max_hop]);
2207 	/* If we are the cycle master, nothing to do */
2208 	if (cmstr == fc->nodeid || cmstr == -1)
2209 		return 0;
2210 	/* Bus probe has not finished, make dummy fwdev for cmstr */
2211 	bzero(&fwdev, sizeof(fwdev));
2212 	fwdev.fc = fc;
2213 	fwdev.dst = cmstr;
2214 	fwdev.speed = 0;
2215 	fwdev.maxrec = 8; /* 512 */
2216 	fwdev.status = FWDEVINIT;
2217 	/* Set cmstr bit on the cycle master */
2218 	quad = htonl(1 << 8);
2219 	fwmem_write_quad(&fwdev, NULL, 0/*spd*/,
2220 		0xffff, 0xf0000000 | STATE_SET, &quad, fw_asy_callback_free);
2221 
2222 	return 0;
2223 }
2224 
2225 static int
2226 fw_modevent(module_t mode, int type, void *data)
2227 {
2228 	int err = 0;
2229 #if defined(__FreeBSD__) && __FreeBSD_version >= 500000
2230 	static eventhandler_tag fwdev_ehtag = NULL;
2231 #endif
2232 
2233 	switch (type) {
2234 	case MOD_LOAD:
2235 #if defined(__FreeBSD__) && __FreeBSD_version >= 500000
2236 		fwdev_ehtag = EVENTHANDLER_REGISTER(dev_clone,
2237 						fwdev_clone, 0, 1000);
2238 #endif
2239 		break;
2240 	case MOD_UNLOAD:
2241 #if defined(__FreeBSD__) && __FreeBSD_version >= 500000
2242 		if (fwdev_ehtag != NULL)
2243 			EVENTHANDLER_DEREGISTER(dev_clone, fwdev_ehtag);
2244 #endif
2245 		break;
2246 	case MOD_SHUTDOWN:
2247 		break;
2248 	default:
2249 		return (EOPNOTSUPP);
2250 	}
2251 	return (err);
2252 }
2253 
2254 
2255 #ifdef __DragonFly__
2256 DECLARE_DUMMY_MODULE(firewire);
2257 #endif
2258 DRIVER_MODULE(firewire,fwohci,firewire_driver,firewire_devclass,fw_modevent,0);
2259 MODULE_VERSION(firewire, 1);
2260