mvmebus.c revision 1.15 1 /* $NetBSD: mvmebus.c,v 1.15 2009/03/14 15:36:19 dsl Exp $ */
2
3 /*-
4 * Copyright (c) 2000, 2002 The NetBSD Foundation, Inc.
5 * All rights reserved.
6 *
7 * This code is derived from software contributed to The NetBSD Foundation
8 * by Steve C. Woodford.
9 *
10 * Redistribution and use in source and binary forms, with or without
11 * modification, are permitted provided that the following conditions
12 * are met:
13 * 1. Redistributions of source code must retain the above copyright
14 * notice, this list of conditions and the following disclaimer.
15 * 2. Redistributions in binary form must reproduce the above copyright
16 * notice, this list of conditions and the following disclaimer in the
17 * documentation and/or other materials provided with the distribution.
18 *
19 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 * POSSIBILITY OF SUCH DAMAGE.
30 */
31
32 #include <sys/cdefs.h>
33 __KERNEL_RCSID(0, "$NetBSD: mvmebus.c,v 1.15 2009/03/14 15:36:19 dsl Exp $");
34
35 #include <sys/param.h>
36 #include <sys/kernel.h>
37 #include <sys/systm.h>
38 #include <sys/device.h>
39 #include <sys/malloc.h>
40 #include <sys/kcore.h>
41
42 #include <sys/cpu.h>
43 #include <sys/bus.h>
44
45 #include <dev/vme/vmereg.h>
46 #include <dev/vme/vmevar.h>
47
48 #include <dev/mvme/mvmebus.h>
49
50 #ifdef DIAGNOSTIC
51 int mvmebus_dummy_dmamap_create(bus_dma_tag_t, bus_size_t, int, bus_size_t,
52 bus_size_t, int, bus_dmamap_t *);
53 void mvmebus_dummy_dmamap_destroy(bus_dma_tag_t, bus_dmamap_t);
54 int mvmebus_dummy_dmamem_alloc(bus_dma_tag_t, bus_size_t, bus_size_t,
55 bus_size_t, bus_dma_segment_t *, int, int *, int);
56 void mvmebus_dummy_dmamem_free(bus_dma_tag_t, bus_dma_segment_t *, int);
57 #endif
58
59 #ifdef DEBUG
60 static const char *mvmebus_mod_string(vme_addr_t, vme_size_t,
61 vme_am_t, vme_datasize_t);
62 #endif
63
64 static void mvmebus_offboard_ram(struct mvmebus_softc *);
65 static int mvmebus_dmamap_load_common(struct mvmebus_softc *, bus_dmamap_t);
66
67 vme_am_t _mvmebus_am_cap[] = {
68 MVMEBUS_AM_CAP_BLKD64 | MVMEBUS_AM_CAP_USER,
69 MVMEBUS_AM_CAP_DATA | MVMEBUS_AM_CAP_USER,
70 MVMEBUS_AM_CAP_PROG | MVMEBUS_AM_CAP_USER,
71 MVMEBUS_AM_CAP_BLK | MVMEBUS_AM_CAP_USER,
72 MVMEBUS_AM_CAP_BLKD64 | MVMEBUS_AM_CAP_SUPER,
73 MVMEBUS_AM_CAP_DATA | MVMEBUS_AM_CAP_SUPER,
74 MVMEBUS_AM_CAP_PROG | MVMEBUS_AM_CAP_SUPER,
75 MVMEBUS_AM_CAP_BLK | MVMEBUS_AM_CAP_SUPER
76 };
77
78 const char *mvmebus_irq_name[] = {
79 "vmeirq0", "vmeirq1", "vmeirq2", "vmeirq3",
80 "vmeirq4", "vmeirq5", "vmeirq6", "vmeirq7"
81 };
82
83 extern phys_ram_seg_t mem_clusters[0];
84 extern int mem_cluster_cnt;
85
86
87 static void
88 mvmebus_offboard_ram(struct mvmebus_softc *sc)
89 {
90 struct mvmebus_range *svr, *mvr;
91 vme_addr_t start, end, size;
92 int i;
93
94 /*
95 * If we have any offboard RAM (i.e. a VMEbus RAM board) then
96 * we need to record its details since it's effectively another
97 * VMEbus slave image as far as we're concerned.
98 * The chip-specific backend will have reserved sc->sc_slaves[0]
99 * for exactly this purpose.
100 */
101 svr = sc->sc_slaves;
102 if (mem_cluster_cnt < 2) {
103 svr->vr_am = MVMEBUS_AM_DISABLED;
104 return;
105 }
106
107 start = mem_clusters[1].start;
108 size = mem_clusters[1].size - 1;
109 end = start + size;
110
111 /*
112 * Figure out which VMEbus master image the RAM is
113 * visible through. This will tell us the address
114 * modifier and datasizes it uses, as well as allowing
115 * us to calculate its `real' VMEbus address.
116 *
117 * XXX FIXME: This is broken if the RAM is mapped through
118 * a translated address space. For example, on mvme167 it's
119 * perfectly legal to set up the following A32 mapping:
120 *
121 * vr_locaddr == 0x80000000
122 * vr_vmestart == 0x10000000
123 * vr_vmeend == 0x10ffffff
124 *
125 * In this case, RAM at VMEbus address 0x10800000 will appear at local
126 * address 0x80800000, but we need to set the slave vr_vmestart to
127 * 0x10800000.
128 */
129 for (i = 0, mvr = sc->sc_masters; i < sc->sc_nmasters; i++, mvr++) {
130 vme_addr_t vstart = mvr->vr_locstart + mvr->vr_vmestart;
131
132 if (start >= vstart &&
133 end <= vstart + (mvr->vr_vmeend - mvr->vr_vmestart))
134 break;
135 }
136 if (i == sc->sc_nmasters) {
137 svr->vr_am = MVMEBUS_AM_DISABLED;
138 #ifdef DEBUG
139 printf("%s: No VMEbus master mapping for offboard RAM!\n",
140 device_xname(&sc->sc_dev));
141 #endif
142 return;
143 }
144
145 svr->vr_locstart = start;
146 svr->vr_vmestart = start & mvr->vr_mask;
147 svr->vr_vmeend = svr->vr_vmestart + size;
148 svr->vr_datasize = mvr->vr_datasize;
149 svr->vr_mask = mvr->vr_mask;
150 svr->vr_am = mvr->vr_am & VME_AM_ADRSIZEMASK;
151 svr->vr_am |= MVMEBUS_AM_CAP_DATA | MVMEBUS_AM_CAP_PROG |
152 MVMEBUS_AM_CAP_SUPER | MVMEBUS_AM_CAP_USER;
153 }
154
155 void
156 mvmebus_attach(struct mvmebus_softc *sc)
157 {
158 struct vmebus_attach_args vaa;
159 int i;
160
161 /* Zap the IRQ reference counts */
162 for (i = 0; i < 8; i++)
163 sc->sc_irqref[i] = 0;
164
165 /* If there's offboard RAM, get its VMEbus slave attributes */
166 mvmebus_offboard_ram(sc);
167
168 #ifdef DEBUG
169 for (i = 0; i < sc->sc_nmasters; i++) {
170 struct mvmebus_range *vr = &sc->sc_masters[i];
171 if (vr->vr_am == MVMEBUS_AM_DISABLED) {
172 printf("%s: Master#%d: disabled\n",
173 device_xname(&sc->sc_dev), i);
174 continue;
175 }
176 printf("%s: Master#%d: 0x%08lx -> %s\n",
177 device_xname(&sc->sc_dev), i,
178 vr->vr_locstart + (vr->vr_vmestart & vr->vr_mask),
179 mvmebus_mod_string(vr->vr_vmestart,
180 (vr->vr_vmeend - vr->vr_vmestart) + 1,
181 vr->vr_am, vr->vr_datasize));
182 }
183
184 for (i = 0; i < sc->sc_nslaves; i++) {
185 struct mvmebus_range *vr = &sc->sc_slaves[i];
186 if (vr->vr_am == MVMEBUS_AM_DISABLED) {
187 printf("%s: Slave#%d: disabled\n",
188 device_xname(&sc->sc_dev), i);
189 continue;
190 }
191 printf("%s: Slave#%d: 0x%08lx -> %s\n",
192 device_xname(&sc->sc_dev), i, vr->vr_locstart,
193 mvmebus_mod_string(vr->vr_vmestart,
194 (vr->vr_vmeend - vr->vr_vmestart) + 1,
195 vr->vr_am, vr->vr_datasize));
196 }
197 #endif
198
199 sc->sc_vct.cookie = sc;
200 sc->sc_vct.vct_probe = mvmebus_probe;
201 sc->sc_vct.vct_map = mvmebus_map;
202 sc->sc_vct.vct_unmap = mvmebus_unmap;
203 sc->sc_vct.vct_int_map = mvmebus_intmap;
204 sc->sc_vct.vct_int_evcnt = mvmebus_intr_evcnt;
205 sc->sc_vct.vct_int_establish = mvmebus_intr_establish;
206 sc->sc_vct.vct_int_disestablish = mvmebus_intr_disestablish;
207 sc->sc_vct.vct_dmamap_create = mvmebus_dmamap_create;
208 sc->sc_vct.vct_dmamap_destroy = mvmebus_dmamap_destroy;
209 sc->sc_vct.vct_dmamem_alloc = mvmebus_dmamem_alloc;
210 sc->sc_vct.vct_dmamem_free = mvmebus_dmamem_free;
211
212 sc->sc_mvmedmat._cookie = sc;
213 sc->sc_mvmedmat._dmamap_load = mvmebus_dmamap_load;
214 sc->sc_mvmedmat._dmamap_load_mbuf = mvmebus_dmamap_load_mbuf;
215 sc->sc_mvmedmat._dmamap_load_uio = mvmebus_dmamap_load_uio;
216 sc->sc_mvmedmat._dmamap_load_raw = mvmebus_dmamap_load_raw;
217 sc->sc_mvmedmat._dmamap_unload = mvmebus_dmamap_unload;
218 sc->sc_mvmedmat._dmamap_sync = mvmebus_dmamap_sync;
219 sc->sc_mvmedmat._dmamem_map = mvmebus_dmamem_map;
220 sc->sc_mvmedmat._dmamem_unmap = mvmebus_dmamem_unmap;
221 sc->sc_mvmedmat._dmamem_mmap = mvmebus_dmamem_mmap;
222
223 #ifdef DIAGNOSTIC
224 sc->sc_mvmedmat._dmamap_create = mvmebus_dummy_dmamap_create;
225 sc->sc_mvmedmat._dmamap_destroy = mvmebus_dummy_dmamap_destroy;
226 sc->sc_mvmedmat._dmamem_alloc = mvmebus_dummy_dmamem_alloc;
227 sc->sc_mvmedmat._dmamem_free = mvmebus_dummy_dmamem_free;
228 #else
229 sc->sc_mvmedmat._dmamap_create = NULL;
230 sc->sc_mvmedmat._dmamap_destroy = NULL;
231 sc->sc_mvmedmat._dmamem_alloc = NULL;
232 sc->sc_mvmedmat._dmamem_free = NULL;
233 #endif
234
235 vaa.va_vct = &sc->sc_vct;
236 vaa.va_bdt = &sc->sc_mvmedmat;
237 vaa.va_slaveconfig = NULL;
238
239 config_found(&sc->sc_dev, &vaa, 0);
240 }
241
242 int
243 mvmebus_map(void *vsc, vme_addr_t vmeaddr, vme_size_t len, vme_am_t am, vme_datasize_t datasize, vme_swap_t swap, bus_space_tag_t *tag, bus_space_handle_t *handle, vme_mapresc_t *resc)
244 {
245 struct mvmebus_softc *sc;
246 struct mvmebus_mapresc *mr;
247 struct mvmebus_range *vr;
248 vme_addr_t end;
249 vme_am_t cap, as;
250 paddr_t paddr;
251 int rv, i;
252
253 sc = vsc;
254 end = (vmeaddr + len) - 1;
255 paddr = 0;
256 vr = sc->sc_masters;
257 cap = MVMEBUS_AM2CAP(am);
258 as = am & VME_AM_ADRSIZEMASK;
259
260 for (i = 0; i < sc->sc_nmasters && paddr == 0; i++, vr++) {
261 if (vr->vr_am == MVMEBUS_AM_DISABLED)
262 continue;
263
264 if (cap == (vr->vr_am & cap) &&
265 as == (vr->vr_am & VME_AM_ADRSIZEMASK) &&
266 datasize <= vr->vr_datasize &&
267 vmeaddr >= vr->vr_vmestart && end < vr->vr_vmeend)
268 paddr = vr->vr_locstart + (vmeaddr & vr->vr_mask);
269 }
270 if (paddr == 0)
271 return (ENOMEM);
272
273 rv = bus_space_map(sc->sc_bust, paddr, len, 0, handle);
274 if (rv != 0)
275 return (rv);
276
277 /* Allocate space for the resource tag */
278 if ((mr = malloc(sizeof(*mr), M_DEVBUF, M_NOWAIT)) == NULL) {
279 bus_space_unmap(sc->sc_bust, *handle, len);
280 return (ENOMEM);
281 }
282
283 /* Record the range's details */
284 mr->mr_am = am;
285 mr->mr_datasize = datasize;
286 mr->mr_addr = vmeaddr;
287 mr->mr_size = len;
288 mr->mr_handle = *handle;
289 mr->mr_range = i;
290
291 *tag = sc->sc_bust;
292 *resc = (vme_mapresc_t *) mr;
293
294 return (0);
295 }
296
297 /* ARGSUSED */
298 void
299 mvmebus_unmap(void *vsc, vme_mapresc_t resc)
300 {
301 struct mvmebus_softc *sc = vsc;
302 struct mvmebus_mapresc *mr = (struct mvmebus_mapresc *) resc;
303
304 bus_space_unmap(sc->sc_bust, mr->mr_handle, mr->mr_size);
305
306 free(mr, M_DEVBUF);
307 }
308
309 int
310 mvmebus_probe(vsc, vmeaddr, len, am, datasize, callback, arg)
311 void *vsc;
312 vme_addr_t vmeaddr;
313 vme_size_t len;
314 vme_am_t am;
315 vme_datasize_t datasize;
316 int (*callback)(void *, bus_space_tag_t, bus_space_handle_t);
317 void *arg;
318 {
319 bus_space_tag_t tag;
320 bus_space_handle_t handle;
321 vme_mapresc_t resc;
322 vme_size_t offs;
323 int rv;
324
325 /* Get a temporary mapping to the VMEbus range */
326 rv = mvmebus_map(vsc, vmeaddr, len, am, datasize, 0,
327 &tag, &handle, &resc);
328 if (rv)
329 return (rv);
330
331 if (callback)
332 rv = (*callback) (arg, tag, handle);
333 else
334 for (offs = 0; offs < len && rv == 0;) {
335 switch (datasize) {
336 case VME_D8:
337 rv = bus_space_peek_1(tag, handle, offs, NULL);
338 offs += 1;
339 break;
340
341 case VME_D16:
342 rv = bus_space_peek_2(tag, handle, offs, NULL);
343 offs += 2;
344 break;
345
346 case VME_D32:
347 rv = bus_space_peek_4(tag, handle, offs, NULL);
348 offs += 4;
349 break;
350 }
351 }
352
353 mvmebus_unmap(vsc, resc);
354
355 return (rv);
356 }
357
358 /* ARGSUSED */
359 int
360 mvmebus_intmap(vsc, level, vector, handlep)
361 void *vsc;
362 int level, vector;
363 vme_intr_handle_t *handlep;
364 {
365
366 if (level < 1 || level > 7 || vector < 0x80 || vector > 0xff)
367 return (EINVAL);
368
369 /* This is rather gross */
370 *handlep = (void *) (int) ((level << 8) | vector);
371 return (0);
372 }
373
374 /* ARGSUSED */
375 const struct evcnt *
376 mvmebus_intr_evcnt(void *vsc, vme_intr_handle_t handle)
377 {
378 struct mvmebus_softc *sc = vsc;
379
380 return (&sc->sc_evcnt[(((int) handle) >> 8) - 1]);
381 }
382
383 void *
384 mvmebus_intr_establish(vsc, handle, prior, func, arg)
385 void *vsc;
386 vme_intr_handle_t handle;
387 int prior;
388 int (*func)(void *);
389 void *arg;
390 {
391 struct mvmebus_softc *sc;
392 int level, vector, first;
393
394 sc = vsc;
395
396 /* Extract the interrupt's level and vector */
397 level = ((int) handle) >> 8;
398 vector = ((int) handle) & 0xff;
399
400 #ifdef DIAGNOSTIC
401 if (vector < 0 || vector > 0xff) {
402 printf("%s: Illegal vector offset: 0x%x\n",
403 device_xname(&sc->sc_dev), vector);
404 panic("mvmebus_intr_establish");
405 }
406 if (level < 1 || level > 7) {
407 printf("%s: Illegal interrupt level: %d\n",
408 device_xname(&sc->sc_dev), level);
409 panic("mvmebus_intr_establish");
410 }
411 #endif
412
413 first = (sc->sc_irqref[level]++ == 0);
414
415 (*sc->sc_intr_establish)(sc->sc_chip, prior, level, vector, first,
416 func, arg, &sc->sc_evcnt[level - 1]);
417
418 return ((void *) handle);
419 }
420
421 void
422 mvmebus_intr_disestablish(void *vsc, vme_intr_handle_t handle)
423 {
424 struct mvmebus_softc *sc;
425 int level, vector, last;
426
427 sc = vsc;
428
429 /* Extract the interrupt's level and vector */
430 level = ((int) handle) >> 8;
431 vector = ((int) handle) & 0xff;
432
433 #ifdef DIAGNOSTIC
434 if (vector < 0 || vector > 0xff) {
435 printf("%s: Illegal vector offset: 0x%x\n",
436 device_xname(&sc->sc_dev), vector);
437 panic("mvmebus_intr_disestablish");
438 }
439 if (level < 1 || level > 7) {
440 printf("%s: Illegal interrupt level: %d\n",
441 device_xname(&sc->sc_dev), level);
442 panic("mvmebus_intr_disestablish");
443 }
444 if (sc->sc_irqref[level] == 0) {
445 printf("%s: VMEirq#%d: Reference count already zero!\n",
446 device_xname(&sc->sc_dev), level);
447 panic("mvmebus_intr_disestablish");
448 }
449 #endif
450
451 last = (--(sc->sc_irqref[level]) == 0);
452
453 (*sc->sc_intr_disestablish)(sc->sc_chip, level, vector, last,
454 &sc->sc_evcnt[level - 1]);
455 }
456
457 #ifdef DIAGNOSTIC
458 /* ARGSUSED */
459 int
460 mvmebus_dummy_dmamap_create(bus_dma_tag_t t, bus_size_t size, int nsegs, bus_size_t maxsegsz, bus_size_t boundary, int flags, bus_dmamap_t *dmamp)
461 {
462
463 panic("Must use vme_dmamap_create() in place of bus_dmamap_create()");
464 return (0); /* Shutup the compiler */
465 }
466
467 /* ARGSUSED */
468 void
469 mvmebus_dummy_dmamap_destroy(bus_dma_tag_t t, bus_dmamap_t map)
470 {
471
472 panic("Must use vme_dmamap_destroy() in place of bus_dmamap_destroy()");
473 }
474 #endif
475
476 /* ARGSUSED */
477 int
478 mvmebus_dmamap_create(vsc, len, am, datasize, swap, nsegs,
479 segsz, bound, flags, mapp)
480 void *vsc;
481 vme_size_t len;
482 vme_am_t am;
483 vme_datasize_t datasize;
484 vme_swap_t swap;
485 int nsegs;
486 vme_size_t segsz;
487 vme_addr_t bound;
488 int flags;
489 bus_dmamap_t *mapp;
490 {
491 struct mvmebus_softc *sc = vsc;
492 struct mvmebus_dmamap *vmap;
493 struct mvmebus_range *vr;
494 vme_am_t cap, as;
495 int i, rv;
496
497 cap = MVMEBUS_AM2CAP(am);
498 as = am & VME_AM_ADRSIZEMASK;
499
500 /*
501 * Verify that we even stand a chance of satisfying
502 * the VMEbus address space and datasize requested.
503 */
504 for (i = 0, vr = sc->sc_slaves; i < sc->sc_nslaves; i++, vr++) {
505 if (vr->vr_am == MVMEBUS_AM_DISABLED)
506 continue;
507
508 if (as == (vr->vr_am & VME_AM_ADRSIZEMASK) &&
509 cap == (vr->vr_am & cap) && datasize <= vr->vr_datasize &&
510 len <= (vr->vr_vmeend - vr->vr_vmestart))
511 break;
512 }
513
514 if (i == sc->sc_nslaves)
515 return (EINVAL);
516
517 if ((vmap = malloc(sizeof(*vmap), M_DMAMAP,
518 (flags & BUS_DMA_NOWAIT) ? M_NOWAIT : M_WAITOK)) == NULL)
519 return (ENOMEM);
520
521
522 rv = bus_dmamap_create(sc->sc_dmat, len, nsegs, segsz,
523 bound, flags, mapp);
524 if (rv != 0) {
525 free(vmap, M_DMAMAP);
526 return (rv);
527 }
528
529 vmap->vm_am = am;
530 vmap->vm_datasize = datasize;
531 vmap->vm_swap = swap;
532 vmap->vm_slave = vr;
533
534 (*mapp)->_dm_cookie = vmap;
535
536 return (0);
537 }
538
539 void
540 mvmebus_dmamap_destroy(void *vsc, bus_dmamap_t map)
541 {
542 struct mvmebus_softc *sc = vsc;
543
544 free(map->_dm_cookie, M_DMAMAP);
545 bus_dmamap_destroy(sc->sc_dmat, map);
546 }
547
548 static int
549 mvmebus_dmamap_load_common(struct mvmebus_softc *sc, bus_dmamap_t map)
550 {
551 struct mvmebus_dmamap *vmap = map->_dm_cookie;
552 struct mvmebus_range *vr = vmap->vm_slave;
553 bus_dma_segment_t *ds;
554 vme_am_t cap, am;
555 int i;
556
557 cap = MVMEBUS_AM2CAP(vmap->vm_am);
558 am = vmap->vm_am & VME_AM_ADRSIZEMASK;
559
560 /*
561 * Traverse the list of segments which make up this map, and
562 * convert the CPU-relative addresses therein to VMEbus addresses.
563 */
564 for (ds = &map->dm_segs[0]; ds < &map->dm_segs[map->dm_nsegs]; ds++) {
565 /*
566 * First, see if this map's slave image can access the
567 * segment, otherwise we have to waste time scanning all
568 * the slave images.
569 */
570 vr = vmap->vm_slave;
571 if (am == (vr->vr_am & VME_AM_ADRSIZEMASK) &&
572 cap == (vr->vr_am & cap) &&
573 vmap->vm_datasize <= vr->vr_datasize &&
574 ds->_ds_cpuaddr >= vr->vr_locstart &&
575 ds->ds_len <= (vr->vr_vmeend - vr->vr_vmestart))
576 goto found;
577
578 for (i = 0, vr = sc->sc_slaves; i < sc->sc_nslaves; i++, vr++) {
579 if (vr->vr_am == MVMEBUS_AM_DISABLED)
580 continue;
581
582 /*
583 * Filter out any slave images which don't have the
584 * same VMEbus address modifier and datasize as
585 * this DMA map, and those which don't cover the
586 * physical address region containing the segment.
587 */
588 if (vr != vmap->vm_slave &&
589 am == (vr->vr_am & VME_AM_ADRSIZEMASK) &&
590 cap == (vr->vr_am & cap) &&
591 vmap->vm_datasize <= vr->vr_datasize &&
592 ds->_ds_cpuaddr >= vr->vr_locstart &&
593 ds->ds_len <= (vr->vr_vmeend - vr->vr_vmestart))
594 break;
595 }
596
597 /*
598 * Did we find an applicable slave image which covers this
599 * segment?
600 */
601 if (i == sc->sc_nslaves) {
602 /*
603 * XXX TODO:
604 *
605 * Bounce this segment via a bounce buffer allocated
606 * from this DMA map.
607 */
608 printf("mvmebus_dmamap_load_common: bounce needed!\n");
609 return (EINVAL);
610 }
611
612 found:
613 /*
614 * Generate the VMEbus address of this segment
615 */
616 ds->ds_addr = (ds->_ds_cpuaddr - vr->vr_locstart) +
617 vr->vr_vmestart;
618 }
619
620 return (0);
621 }
622
623 int
624 mvmebus_dmamap_load(bus_dma_tag_t t, bus_dmamap_t map, void *buf, bus_size_t buflen, struct proc *p, int flags)
625 {
626 struct mvmebus_softc *sc = t->_cookie;
627 int rv;
628
629 rv = bus_dmamap_load(sc->sc_dmat, map, buf, buflen, p, flags);
630 if (rv != 0)
631 return rv;
632
633 return mvmebus_dmamap_load_common(sc, map);
634 }
635
636 int
637 mvmebus_dmamap_load_mbuf(bus_dma_tag_t t, bus_dmamap_t map, struct mbuf *chain, int flags)
638 {
639 struct mvmebus_softc *sc = t->_cookie;
640 int rv;
641
642 rv = bus_dmamap_load_mbuf(sc->sc_dmat, map, chain, flags);
643 if (rv != 0)
644 return rv;
645
646 return mvmebus_dmamap_load_common(sc, map);
647 }
648
649 int
650 mvmebus_dmamap_load_uio(bus_dma_tag_t t, bus_dmamap_t map, struct uio *uio, int flags)
651 {
652 struct mvmebus_softc *sc = t->_cookie;
653 int rv;
654
655 rv = bus_dmamap_load_uio(sc->sc_dmat, map, uio, flags);
656 if (rv != 0)
657 return rv;
658
659 return mvmebus_dmamap_load_common(sc, map);
660 }
661
662 int
663 mvmebus_dmamap_load_raw(bus_dma_tag_t t, bus_dmamap_t map, bus_dma_segment_t *segs, int nsegs, bus_size_t size, int flags)
664 {
665 struct mvmebus_softc *sc = t->_cookie;
666 int rv;
667
668 /*
669 * mvmebus_dmamem_alloc() will ensure that the physical memory
670 * backing these segments is 100% accessible in at least one
671 * of the board's VMEbus slave images.
672 */
673 rv = bus_dmamap_load_raw(sc->sc_dmat, map, segs, nsegs, size, flags);
674 if (rv != 0)
675 return rv;
676
677 return mvmebus_dmamap_load_common(sc, map);
678 }
679
680 void
681 mvmebus_dmamap_unload(bus_dma_tag_t t, bus_dmamap_t map)
682 {
683 struct mvmebus_softc *sc = t->_cookie;
684
685 /* XXX Deal with bounce buffers */
686
687 bus_dmamap_unload(sc->sc_dmat, map);
688 }
689
690 void
691 mvmebus_dmamap_sync(bus_dma_tag_t t, bus_dmamap_t map, bus_addr_t offset, bus_size_t len, int ops)
692 {
693 struct mvmebus_softc *sc = t->_cookie;
694
695 /* XXX Bounce buffers */
696
697 bus_dmamap_sync(sc->sc_dmat, map, offset, len, ops);
698 }
699
700 #ifdef DIAGNOSTIC
701 /* ARGSUSED */
702 int
703 mvmebus_dummy_dmamem_alloc(bus_dma_tag_t t, bus_size_t size, bus_size_t align, bus_size_t boundary, bus_dma_segment_t *segs, int nsegs, int *rsegs, int flags)
704 {
705
706 panic("Must use vme_dmamem_alloc() in place of bus_dmamem_alloc()");
707 }
708
709 /* ARGSUSED */
710 void
711 mvmebus_dummy_dmamem_free(bus_dma_tag_t t, bus_dma_segment_t *segs, int nsegs)
712 {
713
714 panic("Must use vme_dmamem_free() in place of bus_dmamem_free()");
715 }
716 #endif
717
718 /* ARGSUSED */
719 int
720 mvmebus_dmamem_alloc(void *vsc, vme_size_t len, vme_am_t am, vme_datasize_t datasize, vme_swap_t swap, bus_dma_segment_t *segs, int nsegs, int *rsegs, int flags)
721 {
722 extern paddr_t avail_start;
723 struct mvmebus_softc *sc = vsc;
724 struct mvmebus_range *vr;
725 bus_addr_t low, high;
726 bus_size_t bound;
727 vme_am_t cap;
728 int i;
729
730 cap = MVMEBUS_AM2CAP(am);
731 am &= VME_AM_ADRSIZEMASK;
732
733 /*
734 * Find a slave mapping in the requested VMEbus address space.
735 */
736 for (i = 0, vr = sc->sc_slaves; i < sc->sc_nslaves; i++, vr++) {
737 if (vr->vr_am == MVMEBUS_AM_DISABLED)
738 continue;
739
740 if (i == 0 && (flags & BUS_DMA_ONBOARD_RAM) != 0)
741 continue;
742
743 if (am == (vr->vr_am & VME_AM_ADRSIZEMASK) &&
744 cap == (vr->vr_am & cap) && datasize <= vr->vr_datasize &&
745 len <= (vr->vr_vmeend - vr->vr_vmestart))
746 break;
747 }
748 if (i == sc->sc_nslaves)
749 return (EINVAL);
750
751 /*
752 * Set up the constraints so we can allocate physical memory which
753 * is visible in the requested address space
754 */
755 low = max(vr->vr_locstart, avail_start);
756 high = vr->vr_locstart + (vr->vr_vmeend - vr->vr_vmestart) + 1;
757 bound = (bus_size_t) vr->vr_mask + 1;
758
759 /*
760 * Allocate physical memory.
761 *
762 * Note: This fills in the segments with CPU-relative physical
763 * addresses. A further call to bus_dmamap_load_raw() (with a
764 * DMA map which specifies the same VMEbus address space and
765 * constraints as the call to here) must be made. The segments
766 * of the DMA map will then contain VMEbus-relative physical
767 * addresses of the memory allocated here.
768 */
769 return _bus_dmamem_alloc_common(sc->sc_dmat, low, high,
770 len, 0, bound, segs, nsegs, rsegs, flags);
771 }
772
773 void
774 mvmebus_dmamem_free(void *vsc, bus_dma_segment_t *segs, int nsegs)
775 {
776 struct mvmebus_softc *sc = vsc;
777
778 bus_dmamem_free(sc->sc_dmat, segs, nsegs);
779 }
780
781 int
782 mvmebus_dmamem_map(bus_dma_tag_t t, bus_dma_segment_t *segs, int nsegs, size_t size, void **kvap, int flags)
783 {
784 struct mvmebus_softc *sc = t->_cookie;
785
786 return bus_dmamem_map(sc->sc_dmat, segs, nsegs, size, kvap, flags);
787 }
788
789 void
790 mvmebus_dmamem_unmap(bus_dma_tag_t t, void *kva, size_t size)
791 {
792 struct mvmebus_softc *sc = t->_cookie;
793
794 bus_dmamem_unmap(sc->sc_dmat, kva, size);
795 }
796
797 paddr_t
798 mvmebus_dmamem_mmap(bus_dma_tag_t t, bus_dma_segment_t *segs, int nsegs, off_t offset, int prot, int flags)
799 {
800 struct mvmebus_softc *sc = t->_cookie;
801
802 return bus_dmamem_mmap(sc->sc_dmat, segs, nsegs, offset, prot, flags);
803 }
804
805 #ifdef DEBUG
806 static const char *
807 mvmebus_mod_string(vme_addr_t addr, vme_size_t len, vme_am_t am, vme_datasize_t ds)
808 {
809 static const char *mode[] = {"BLT64)", "DATA)", "PROG)", "BLT32)"};
810 static const char *dsiz[] = {"(", "(D8,", "(D16,", "(D16-D8,",
811 "(D32,", "(D32,D8,", "(D32-D16,", "(D32-D8,"};
812 static const char *adrfmt[] = { "A32:%08x-%08x ", "USR:%08x-%08x ",
813 "A16:%04x-%04x ", "A24:%06x-%06x " };
814 static char mstring[40];
815
816 snprintf(mstring, sizeof(mstring),
817 adrfmt[(am & VME_AM_ADRSIZEMASK) >> VME_AM_ADRSIZESHIFT],
818 addr, addr + len - 1);
819 strlcat(mstring, dsiz[ds & 0x7], sizeof(mstring));
820
821 if (MVMEBUS_AM_HAS_CAP(am)) {
822 if (am & MVMEBUS_AM_CAP_DATA)
823 strlcat(mstring, "D", sizeof(mstring));
824 if (am & MVMEBUS_AM_CAP_PROG)
825 strlcat(mstring, "P", sizeof(mstring));
826 if (am & MVMEBUS_AM_CAP_USER)
827 strlcat(mstring, "U", sizeof(mstring));
828 if (am & MVMEBUS_AM_CAP_SUPER)
829 strlcat(mstring, "S", sizeof(mstring));
830 if (am & MVMEBUS_AM_CAP_BLK)
831 strlcat(mstring, "B", sizeof(mstring));
832 if (am & MVMEBUS_AM_CAP_BLKD64)
833 strlcat(mstring, "6", sizeof(mstring));
834 strlcat(mstring, ")", sizeof(mstring));
835 } else {
836 strlcat(mstring, ((am & VME_AM_PRIVMASK) == VME_AM_USER) ?
837 "USER," : "SUPER,", sizeof(mstring));
838 strlcat(mstring, mode[am & VME_AM_MODEMASK], sizeof(mstring));
839 }
840
841 return (mstring);
842 }
843 #endif
844