xref: /netbsd-src/sys/arch/sparc64/dev/sbus.c (revision 6a493d6bc668897c91594964a732d38505b70cbb)
1 /*	$NetBSD: sbus.c,v 1.93 2012/01/30 04:25:15 mrg Exp $ */
2 
3 /*
4  * Copyright (c) 1999-2002 Eduardo Horvath
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. The name of the author may not be used to endorse or promote products
16  *    derived from this software without specific prior written permission.
17  *
18  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
19  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
20  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
21  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
22  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
23  * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
24  * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
25  * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
26  * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
27  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
28  * SUCH DAMAGE.
29  */
30 
31 
32 /*
33  * Sbus stuff.
34  */
35 
36 #include <sys/cdefs.h>
37 __KERNEL_RCSID(0, "$NetBSD: sbus.c,v 1.93 2012/01/30 04:25:15 mrg Exp $");
38 
39 #include "opt_ddb.h"
40 
41 #include <sys/param.h>
42 #include <sys/extent.h>
43 #include <sys/malloc.h>
44 #include <sys/systm.h>
45 #include <sys/device.h>
46 #include <sys/reboot.h>
47 
48 #include <sys/bus.h>
49 #include <machine/openfirm.h>
50 
51 #include <sparc64/dev/iommureg.h>
52 #include <sparc64/dev/iommuvar.h>
53 #include <sparc64/dev/sbusreg.h>
54 #include <dev/sbus/sbusvar.h>
55 
56 #include <uvm/uvm_extern.h>
57 
58 #include <machine/autoconf.h>
59 #include <machine/cpu.h>
60 #include <machine/sparc64.h>
61 
62 #ifdef DEBUG
63 #define SDB_DVMA	0x1
64 #define SDB_INTR	0x2
65 int sbus_debug = 0;
66 #define DPRINTF(l, s)   do { if (sbus_debug & l) printf s; } while (0)
67 #else
68 #define DPRINTF(l, s)
69 #endif
70 
71 void sbusreset(int);
72 
73 static bus_dma_tag_t sbus_alloc_dmatag(struct sbus_softc *);
74 static int sbus_get_intr(struct sbus_softc *, int, struct openprom_intr **,
75 	int *, int);
76 static int sbus_overtemp(void *);
77 static int _sbus_bus_map(
78 		bus_space_tag_t,
79 		bus_addr_t,		/*offset*/
80 		bus_size_t,		/*size*/
81 		int,			/*flags*/
82 		vaddr_t,		/* XXX unused -- compat w/sparc */
83 		bus_space_handle_t *);
84 static void *sbus_intr_establish(
85 		bus_space_tag_t,
86 		int,			/*`device class' priority*/
87 		int,			/*Sbus interrupt level*/
88 		int (*)(void *),	/*handler*/
89 		void *,			/*handler arg*/
90 		void (*)(void));	/*optional fast trap*/
91 
92 
93 /* autoconfiguration driver */
94 int	sbus_match(device_t, cfdata_t, void *);
95 void	sbus_attach(device_t, device_t, void *);
96 
97 
98 CFATTACH_DECL_NEW(sbus, sizeof(struct sbus_softc),
99     sbus_match, sbus_attach, NULL, NULL);
100 
101 extern struct cfdriver sbus_cd;
102 
103 /*
104  * DVMA routines
105  */
106 static int sbus_dmamap_create(bus_dma_tag_t, bus_size_t, int, bus_size_t,
107 	bus_size_t, int, bus_dmamap_t *);
108 
109 /*
110  * Child devices receive the Sbus interrupt level in their attach
111  * arguments. We translate these to CPU IPLs using the following
112  * tables. Note: obio bus interrupt levels are identical to the
113  * processor IPL.
114  *
115  * The second set of tables is used when the Sbus interrupt level
116  * cannot be had from the PROM as an `interrupt' property. We then
117  * fall back on the `intr' property which contains the CPU IPL.
118  */
119 
120 /*
121  * This value is or'ed into the attach args' interrupt level cookie
122  * if the interrupt level comes from an `intr' property, i.e. it is
123  * not an Sbus interrupt level.
124  */
125 #define SBUS_INTR_COMPAT	0x80000000
126 
127 
128 /*
129  * Print the location of some sbus-attached device (called just
130  * before attaching that device).  If `sbus' is not NULL, the
131  * device was found but not configured; print the sbus as well.
132  * Return UNCONF (config_find ignores this if the device was configured).
133  */
134 int
135 sbus_print(void *args, const char *busname)
136 {
137 	struct sbus_attach_args *sa = args;
138 	int i;
139 
140 	if (busname)
141 		aprint_normal("%s at %s", sa->sa_name, busname);
142 	aprint_normal(" slot %ld offset 0x%lx", (long)sa->sa_slot,
143 	       (u_long)sa->sa_offset);
144 	for (i = 0; i < sa->sa_nintr; i++) {
145 		struct openprom_intr *sbi = &sa->sa_intr[i];
146 
147 		aprint_normal(" vector %lx ipl %ld",
148 		       (u_long)sbi->oi_vec,
149 		       (long)INTLEV(sbi->oi_pri));
150 	}
151 	return (UNCONF);
152 }
153 
154 int
155 sbus_match(device_t parent, cfdata_t cf, void *aux)
156 {
157 	struct mainbus_attach_args *ma = aux;
158 
159 	return (strcmp(cf->cf_name, ma->ma_name) == 0);
160 }
161 
162 /*
163  * Attach an Sbus.
164  */
165 void
166 sbus_attach(device_t parent, device_t self, void *aux)
167 {
168 	struct sbus_softc *sc = device_private(self);
169 	struct mainbus_attach_args *ma = aux;
170 	struct intrhand *ih;
171 	int ipl;
172 	char *name;
173 	int node = ma->ma_node;
174 	int node0, error;
175 	bus_space_tag_t sbt;
176 	struct sbus_attach_args sa;
177 
178 	sc->sc_dev = self;
179 	sc->sc_bustag = ma->ma_bustag;
180 	sc->sc_dmatag = ma->ma_dmatag;
181 	sc->sc_ign = ma->ma_interrupts[0] & INTMAP_IGN;
182 
183 	/* XXXX Use sysio PROM mappings for interrupt vector regs. */
184 	sparc_promaddr_to_handle(sc->sc_bustag,	ma->ma_address[0], &sc->sc_bh);
185 	sc->sc_sysio = (struct sysioreg *)bus_space_vaddr(sc->sc_bustag,
186 		sc->sc_bh);
187 
188 #ifdef _LP64
189 	/*
190 	 * 32-bit kernels use virtual addresses for bus space operations
191 	 * so we may as well use the prom VA.
192 	 *
193 	 * 64-bit kernels use physical addresses for bus space operations
194 	 * so mapping this in again will reduce TLB thrashing.
195 	 */
196 	if (bus_space_map(sc->sc_bustag, ma->ma_reg[0].ur_paddr,
197 		ma->ma_reg[0].ur_len, 0, &sc->sc_bh) != 0) {
198 		aprint_error_dev(self, "cannot map registers\n");
199 		return;
200 	}
201 #endif
202 
203 	/*
204 	 * Record clock frequency for synchronous SCSI.
205 	 * IS THIS THE CORRECT DEFAULT??
206 	 */
207 	sc->sc_clockfreq = prom_getpropint(node, "clock-frequency",
208 		25*1000*1000);
209 	printf(": clock = %s MHz\n", clockfreq(sc->sc_clockfreq));
210 
211 	sbt = bus_space_tag_alloc(sc->sc_bustag, sc);
212 	sbt->type = SBUS_BUS_SPACE;
213 	sbt->sparc_bus_map = _sbus_bus_map;
214 	sbt->sparc_intr_establish = sbus_intr_establish;
215 
216 	sc->sc_dmatag = sbus_alloc_dmatag(sc);
217 
218 	/*
219 	 * Get the SBus burst transfer size if burst transfers are supported
220 	 */
221 	sc->sc_burst = prom_getpropint(node, "burst-sizes", 0);
222 
223 	/*
224 	 * Collect address translations from the OBP.
225 	 */
226 	error = prom_getprop(node, "ranges", sizeof(struct openprom_range),
227 			 &sbt->nranges, &sbt->ranges);
228 	if (error)
229 		panic("%s: error getting ranges property", device_xname(self));
230 
231 	/* initialize the IOMMU */
232 
233 	/* punch in our copies */
234 	sc->sc_is.is_bustag = sc->sc_bustag;
235 	bus_space_subregion(sc->sc_bustag, sc->sc_bh,
236 		(vaddr_t)&((struct sysioreg *)NULL)->sys_iommu,
237 		sizeof (struct iommureg), &sc->sc_is.is_iommu);
238 
239 	/* initialize our strbuf_ctl */
240 	sc->sc_is.is_sb[0] = &sc->sc_sb;
241 	sc->sc_sb.sb_is = &sc->sc_is;
242 	bus_space_subregion(sc->sc_bustag, sc->sc_bh,
243 		(vaddr_t)&((struct sysioreg *)NULL)->sys_strbuf,
244 		sizeof (struct iommu_strbuf), &sc->sc_sb.sb_sb);
245 	/* Point sb_flush to our flush buffer. */
246 	sc->sc_sb.sb_flush = &sc->sc_flush;
247 
248 	/* give us a nice name.. */
249 	name = (char *)malloc(32, M_DEVBUF, M_NOWAIT);
250 	if (name == 0)
251 		panic("couldn't malloc iommu name");
252 	snprintf(name, 32, "%s dvma", device_xname(self));
253 
254 	iommu_init(name, &sc->sc_is, 0, -1);
255 
256 	/* Enable the over temp intr */
257 	ih = (struct intrhand *)
258 		malloc(sizeof(struct intrhand), M_DEVBUF, M_NOWAIT);
259 	ih->ih_map = &sc->sc_sysio->therm_int_map;
260 	ih->ih_clr = NULL; /* &sc->sc_sysio->therm_clr_int; */
261 	ih->ih_fun = sbus_overtemp;
262 	ipl = 1;
263 	ih->ih_pil = ipl;
264 	ih->ih_number = INTVEC(*(ih->ih_map));
265 	ih->ih_pending = 0;
266 	intr_establish(ipl, true, ih);
267 	*(ih->ih_map) |= INTMAP_V|(CPU_UPAID << INTMAP_TID_SHIFT);
268 
269 	/*
270 	 * Note: the stupid SBUS IOMMU ignores the high bits of an address, so a
271 	 * NULL DMA pointer will be translated by the first page of the IOTSB.
272 	 * To avoid bugs we'll alloc and ignore the first entry in the IOTSB.
273 	 */
274 	{
275 		u_long dummy;
276 
277 		if (extent_alloc_subregion(sc->sc_is.is_dvmamap,
278 		    sc->sc_is.is_dvmabase, sc->sc_is.is_dvmabase + PAGE_SIZE,
279 		    PAGE_SIZE, PAGE_SIZE, 0, EX_NOWAIT|EX_BOUNDZERO,
280 		    (u_long *)&dummy) != 0)
281 			panic("sbus iommu: can't toss first dvma page");
282 	}
283 
284 	/*
285 	 * Loop through ROM children, fixing any relative addresses
286 	 * and then configuring each device.
287 	 * `specials' is an array of device names that are treated
288 	 * specially:
289 	 */
290 	node0 = OF_child(node);
291 	for (node = node0; node; node = OF_peer(node)) {
292 		char *name1 = prom_getpropstring(node, "name");
293 
294 		if (sbus_setup_attach_args(sc, sbt, sc->sc_dmatag,
295 					   node, &sa) != 0) {
296 			printf("sbus_attach: %s: incomplete\n", name1);
297 			continue;
298 		}
299 		(void) config_found(self, &sa, sbus_print);
300 		sbus_destroy_attach_args(&sa);
301 	}
302 }
303 
304 int
305 sbus_setup_attach_args(struct sbus_softc *sc, bus_space_tag_t bustag,
306 	bus_dma_tag_t dmatag, int node, struct sbus_attach_args	*sa)
307 {
308 	/*struct	openprom_addr sbusreg;*/
309 	/*int	base;*/
310 	int	error;
311 	int n;
312 
313 	memset(sa, 0, sizeof(struct sbus_attach_args));
314 	n = 0;
315 	error = prom_getprop(node, "name", 1, &n, &sa->sa_name);
316 	if (error != 0)
317 		return (error);
318 	KASSERT(sa->sa_name[n-1] == '\0');
319 
320 	sa->sa_bustag = bustag;
321 	sa->sa_dmatag = dmatag;
322 	sa->sa_node = node;
323 	sa->sa_frequency = sc->sc_clockfreq;
324 
325 	error = prom_getprop(node, "reg", sizeof(struct openprom_addr),
326 			 &sa->sa_nreg, &sa->sa_reg);
327 	if (error != 0) {
328 		char buf[32];
329 		if (error != ENOENT ||
330 		    !node_has_property(node, "device_type") ||
331 		    strcmp(prom_getpropstringA(node, "device_type", buf, sizeof buf),
332 			   "hierarchical") != 0)
333 			return (error);
334 	}
335 	for (n = 0; n < sa->sa_nreg; n++) {
336 		/* Convert to relative addressing, if necessary */
337 		uint32_t base = sa->sa_reg[n].oa_base;
338 		if (SBUS_ABS(base)) {
339 			sa->sa_reg[n].oa_space = SBUS_ABS_TO_SLOT(base);
340 			sa->sa_reg[n].oa_base = SBUS_ABS_TO_OFFSET(base);
341 		}
342 	}
343 
344 	if ((error = sbus_get_intr(sc, node, &sa->sa_intr, &sa->sa_nintr,
345 	    sa->sa_slot)) != 0)
346 		return (error);
347 
348 	error = prom_getprop(node, "address", sizeof(uint32_t),
349 			 &sa->sa_npromvaddrs, &sa->sa_promvaddrs);
350 	if (error != 0 && error != ENOENT)
351 		return (error);
352 
353 	return (0);
354 }
355 
356 void
357 sbus_destroy_attach_args(struct sbus_attach_args *sa)
358 {
359 	if (sa->sa_name != NULL)
360 		free(sa->sa_name, M_DEVBUF);
361 
362 	if (sa->sa_nreg != 0)
363 		free(sa->sa_reg, M_DEVBUF);
364 
365 	if (sa->sa_intr)
366 		free(sa->sa_intr, M_DEVBUF);
367 
368 	if (sa->sa_promvaddrs)
369 		free((void *)sa->sa_promvaddrs, M_DEVBUF);
370 
371 	memset(sa, 0, sizeof(struct sbus_attach_args)); /*DEBUG*/
372 }
373 
374 
375 int
376 _sbus_bus_map(bus_space_tag_t t, bus_addr_t addr, bus_size_t size, int flags,
377 	vaddr_t v, bus_space_handle_t *hp)
378 {
379 	int error;
380 
381 	if (t->ranges != NULL) {
382 		if ((error = bus_space_translate_address_generic(
383 				t->ranges, t->nranges, &addr)) != 0)
384 			return (error);
385 	}
386 
387 	return (bus_space_map(t->parent, addr, size, flags, hp));
388 }
389 
390 
391 bus_addr_t
392 sbus_bus_addr(bus_space_tag_t t, u_int btype, u_int offset)
393 {
394 	int slot = btype;
395 	struct openprom_range *rp;
396 	int i;
397 
398 	for (i = 0; i < t->nranges; i++) {
399 		rp = &t->ranges[i];
400 		if (rp->or_child_space != slot)
401 			continue;
402 
403 		return BUS_ADDR(rp->or_parent_space,
404 				rp->or_parent_base + offset);
405 	}
406 
407 	return (0);
408 }
409 
410 
411 /*
412  * Handle an overtemp situation.
413  *
414  * SPARCs have temperature sensors which generate interrupts
415  * if the machine's temperature exceeds a certain threshold.
416  * This handles the interrupt and powers off the machine.
417  * The same needs to be done to PCI controller drivers.
418  */
419 int
420 sbus_overtemp(void *arg)
421 {
422 	/* Should try a clean shutdown first */
423 	printf("DANGER: OVER TEMPERATURE detected\nShutting down...\n");
424 	delay(20);
425 	cpu_reboot(RB_POWERDOWN|RB_HALT, NULL);
426 }
427 
428 /*
429  * Get interrupt attributes for an Sbus device.
430  */
431 int
432 sbus_get_intr(struct sbus_softc *sc, int node, struct openprom_intr **ipp,
433 	int *np, int slot)
434 {
435 	int *ipl;
436 	int n, i;
437 	char buf[32];
438 
439 	/*
440 	 * The `interrupts' property contains the Sbus interrupt level.
441 	 */
442 	ipl = NULL;
443 	if (prom_getprop(node, "interrupts", sizeof(int), np, &ipl) == 0) {
444 		struct openprom_intr *ip;
445 		int pri;
446 
447 		/* Default to interrupt level 2 -- otherwise unused */
448 		pri = INTLEVENCODE(2);
449 
450 		/* Change format to an `struct sbus_intr' array */
451 		ip = malloc(*np * sizeof(struct openprom_intr), M_DEVBUF,
452 		    M_NOWAIT);
453 		if (ip == NULL)
454 			return (ENOMEM);
455 
456 		/*
457 		 * Now things get ugly.  We need to take this value which is
458 		 * the interrupt vector number and encode the IPL into it
459 		 * somehow. Luckily, the interrupt vector has lots of free
460 		 * space and we can easily stuff the IPL in there for a while.
461 		 */
462 		prom_getpropstringA(node, "device_type", buf, sizeof buf);
463 		if (buf[0] == '\0')
464 			prom_getpropstringA(node, "name", buf, sizeof buf);
465 
466 		for (i = 0; intrmap[i].in_class; i++)
467 			if (strcmp(intrmap[i].in_class, buf) == 0) {
468 				pri = INTLEVENCODE(intrmap[i].in_lev);
469 				break;
470 			}
471 
472 		/*
473 		 * Sbus card devices need the slot number encoded into
474 		 * the vector as this is generally not done.
475 		 */
476 		if ((ipl[0] & INTMAP_OBIO) == 0)
477 			pri |= slot << 3;
478 
479 		for (n = 0; n < *np; n++) {
480 			/*
481 			 * We encode vector and priority into sbi_pri so we
482 			 * can pass them as a unit.  This will go away if
483 			 * sbus_establish ever takes an sbus_intr instead
484 			 * of an integer level.
485 			 * Stuff the real vector in sbi_vec.
486 			 */
487 
488 			ip[n].oi_pri = pri|ipl[n];
489 			ip[n].oi_vec = ipl[n];
490 		}
491 		free(ipl, M_DEVBUF);
492 		*ipp = ip;
493 	}
494 
495 	return (0);
496 }
497 
498 
499 /*
500  * Install an interrupt handler for an Sbus device.
501  */
502 void *
503 sbus_intr_establish(bus_space_tag_t t, int pri, int level,
504 	int (*handler)(void *), void *arg, void (*fastvec)(void))
505 {
506 	struct sbus_softc *sc = t->cookie;
507 	struct intrhand *ih;
508 	int ipl;
509 	long vec = pri;
510 
511 	ih = (struct intrhand *)
512 		malloc(sizeof(struct intrhand), M_DEVBUF, M_NOWAIT);
513 	if (ih == NULL)
514 		return (NULL);
515 
516 	if ((vec & SBUS_INTR_COMPAT) != 0)
517 		ipl = vec & ~SBUS_INTR_COMPAT;
518 	else {
519 		/* Decode and remove IPL */
520 		ipl = INTLEV(vec);
521 		vec = INTVEC(vec);
522 		DPRINTF(SDB_INTR,
523 		    ("\nsbus: intr[%ld]%lx: %lx\nHunting for IRQ...\n",
524 		    (long)ipl, (long)vec, (u_long)intrlev[vec]));
525 		if ((vec & INTMAP_OBIO) == 0) {
526 			/* We're in an SBUS slot */
527 			/* Register the map and clear intr registers */
528 
529 			int slot = INTSLOT(pri);
530 
531 			ih->ih_map = &(&sc->sc_sysio->sbus_slot0_int)[slot];
532 			ih->ih_clr = &sc->sc_sysio->sbus0_clr_int[vec];
533 #ifdef DEBUG
534 			if (sbus_debug & SDB_INTR) {
535 				int64_t imap = *ih->ih_map;
536 
537 				printf("SBUS %lx IRQ as %llx in slot %d\n",
538 				       (long)vec, (long long)imap, slot);
539 				printf("\tmap addr %p clr addr %p\n",
540 				    ih->ih_map, ih->ih_clr);
541 			}
542 #endif
543 			/* Enable the interrupt */
544 			vec |= INTMAP_V | sc->sc_ign |
545 				(CPU_UPAID << INTMAP_TID_SHIFT);
546 			*(ih->ih_map) = vec;
547 		} else {
548 			int64_t *intrptr = &sc->sc_sysio->scsi_int_map;
549 			int64_t imap = 0;
550 			int i;
551 
552 			/* Insert IGN */
553 			vec |= sc->sc_ign;
554 			for (i = 0; &intrptr[i] <=
555 			    (int64_t *)&sc->sc_sysio->reserved_int_map &&
556 			    INTVEC(imap = intrptr[i]) != INTVEC(vec); i++)
557 				;
558 			if (INTVEC(imap) == INTVEC(vec)) {
559 				DPRINTF(SDB_INTR,
560 				    ("OBIO %lx IRQ as %lx in slot %d\n",
561 				    vec, (long)imap, i));
562 				/* Register the map and clear intr registers */
563 				ih->ih_map = &intrptr[i];
564 				intrptr = (int64_t *)&sc->sc_sysio->scsi_clr_int;
565 				ih->ih_clr = &intrptr[i];
566 				/* Enable the interrupt */
567 				imap |= INTMAP_V
568 				    |(CPU_UPAID << INTMAP_TID_SHIFT);
569 				/* XXXX */
570 				*(ih->ih_map) = imap;
571 			} else
572 				panic("IRQ not found!");
573 		}
574 	}
575 #ifdef DEBUG
576 	if (sbus_debug & SDB_INTR) { long i; for (i = 0; i < 400000000; i++); }
577 #endif
578 
579 	ih->ih_fun = handler;
580 	ih->ih_arg = arg;
581 	ih->ih_number = vec;
582 	ih->ih_ivec = 0;
583 	ih->ih_pil = ipl;
584 	ih->ih_pending = 0;
585 
586 	intr_establish(ipl, level != IPL_VM, ih);
587 	return (ih);
588 }
589 
590 static bus_dma_tag_t
591 sbus_alloc_dmatag(struct sbus_softc *sc)
592 {
593 	bus_dma_tag_t sdt, psdt = sc->sc_dmatag;
594 
595 	sdt = (bus_dma_tag_t)
596 		malloc(sizeof(struct sparc_bus_dma_tag), M_DEVBUF, M_NOWAIT);
597 	if (sdt == NULL)
598 		/* Panic? */
599 		return (psdt);
600 
601 	sdt->_cookie = sc;
602 	sdt->_parent = psdt;
603 #define PCOPY(x)	sdt->x = psdt->x
604 	sdt->_dmamap_create = sbus_dmamap_create;
605 	PCOPY(_dmamap_destroy);
606 	sdt->_dmamap_load = iommu_dvmamap_load;
607 	PCOPY(_dmamap_load_mbuf);
608 	PCOPY(_dmamap_load_uio);
609 	sdt->_dmamap_load_raw = iommu_dvmamap_load_raw;
610 	sdt->_dmamap_unload = iommu_dvmamap_unload;
611 	sdt->_dmamap_sync = iommu_dvmamap_sync;
612 	sdt->_dmamem_alloc = iommu_dvmamem_alloc;
613 	sdt->_dmamem_free = iommu_dvmamem_free;
614 	sdt->_dmamem_map = iommu_dvmamem_map;
615 	sdt->_dmamem_unmap = iommu_dvmamem_unmap;
616 	PCOPY(_dmamem_mmap);
617 #undef	PCOPY
618 	sc->sc_dmatag = sdt;
619 	return (sdt);
620 }
621 
622 static int
623 sbus_dmamap_create(bus_dma_tag_t t, bus_size_t size, int nsegments,
624 	bus_size_t maxsegsz, bus_size_t boundary, int flags,
625 	bus_dmamap_t *dmamp)
626 {
627 	struct sbus_softc *sc = t->_cookie;
628 	int error;
629 
630 	error = bus_dmamap_create(t->_parent, size, nsegments, maxsegsz,
631 				  boundary, flags, dmamp);
632 	if (error == 0)
633 		(*dmamp)->_dm_cookie = &sc->sc_sb;
634 	return error;
635 }
636