agp.c revision 1.14.10.1 1 /* $NetBSD: agp.c,v 1.14.10.1 2003/01/26 10:23:20 jmc Exp $ */
2
3 /*-
4 * Copyright (c) 2000 Doug Rabson
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 *
16 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
17 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
18 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
19 * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
20 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
21 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
22 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
23 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
24 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
25 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
26 * SUCH DAMAGE.
27 *
28 * $FreeBSD: src/sys/pci/agp.c,v 1.12 2001/05/19 01:28:07 alfred Exp $
29 */
30
31 /*
32 * Copyright (c) 2001 Wasabi Systems, Inc.
33 * All rights reserved.
34 *
35 * Written by Frank van der Linden for Wasabi Systems, Inc.
36 *
37 * Redistribution and use in source and binary forms, with or without
38 * modification, are permitted provided that the following conditions
39 * are met:
40 * 1. Redistributions of source code must retain the above copyright
41 * notice, this list of conditions and the following disclaimer.
42 * 2. Redistributions in binary form must reproduce the above copyright
43 * notice, this list of conditions and the following disclaimer in the
44 * documentation and/or other materials provided with the distribution.
45 * 3. All advertising materials mentioning features or use of this software
46 * must display the following acknowledgement:
47 * This product includes software developed for the NetBSD Project by
48 * Wasabi Systems, Inc.
49 * 4. The name of Wasabi Systems, Inc. may not be used to endorse
50 * or promote products derived from this software without specific prior
51 * written permission.
52 *
53 * THIS SOFTWARE IS PROVIDED BY WASABI SYSTEMS, INC. ``AS IS'' AND
54 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
55 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
56 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL WASABI SYSTEMS, INC
57 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
58 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
59 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
60 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
61 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
62 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
63 * POSSIBILITY OF SUCH DAMAGE.
64 */
65
66
67 #include <sys/cdefs.h>
68 __KERNEL_RCSID(0, "$NetBSD: agp.c,v 1.14.10.1 2003/01/26 10:23:20 jmc Exp $");
69
70 #include <sys/param.h>
71 #include <sys/systm.h>
72 #include <sys/malloc.h>
73 #include <sys/kernel.h>
74 #include <sys/device.h>
75 #include <sys/conf.h>
76 #include <sys/ioctl.h>
77 #include <sys/fcntl.h>
78 #include <sys/agpio.h>
79 #include <sys/proc.h>
80
81 #include <uvm/uvm_extern.h>
82
83 #include <dev/pci/pcireg.h>
84 #include <dev/pci/pcivar.h>
85 #include <dev/pci/agpvar.h>
86 #include <dev/pci/agpreg.h>
87 #include <dev/pci/pcidevs.h>
88
89 #include <machine/bus.h>
90
91 /* Helper functions for implementing chipset mini drivers. */
92 /* XXXfvdl get rid of this one. */
93
94 extern struct cfdriver agp_cd;
95 cdev_decl(agp);
96
97 int agpmatch(struct device *, struct cfdata *, void *);
98 void agpattach(struct device *, struct device *, void *);
99
100 struct cfattach agp_ca = {
101 sizeof(struct agp_softc), agpmatch, agpattach
102 };
103
104 static int agp_info_user(struct agp_softc *, agp_info *);
105 static int agp_setup_user(struct agp_softc *, agp_setup *);
106 static int agp_allocate_user(struct agp_softc *, agp_allocate *);
107 static int agp_deallocate_user(struct agp_softc *, int);
108 static int agp_bind_user(struct agp_softc *, agp_bind *);
109 static int agp_unbind_user(struct agp_softc *, agp_unbind *);
110 static int agpdev_match(struct pci_attach_args *);
111
112 #include "agp_ali.h"
113 #include "agp_amd.h"
114 #include "agp_i810.h"
115 #include "agp_intel.h"
116 #include "agp_sis.h"
117 #include "agp_via.h"
118
119 const struct agp_product {
120 uint32_t ap_vendor;
121 uint32_t ap_product;
122 int (*ap_match)(const struct pci_attach_args *);
123 int (*ap_attach)(struct device *, struct device *, void *);
124 } agp_products[] = {
125 #if NAGP_ALI > 0
126 { PCI_VENDOR_ALI, -1,
127 NULL, agp_ali_attach },
128 #endif
129
130 #if NAGP_AMD > 0
131 { PCI_VENDOR_AMD, -1,
132 agp_amd_match, agp_amd_attach },
133 #endif
134
135 #if NAGP_I810 > 0
136 { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82810_MCH,
137 NULL, agp_i810_attach },
138 { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82810_DC100_MCH,
139 NULL, agp_i810_attach },
140 { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82810E_MCH,
141 NULL, agp_i810_attach },
142 { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82815_FULL_HUB,
143 NULL, agp_i810_attach },
144 { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82840_HB,
145 NULL, agp_i810_attach },
146 #if 0
147 /* XXX needs somewhat different driver */
148 { PCI_VENDOR_INTEL, PCI_PRODUCT_INTEL_82830MP_IO_1,
149 NULL, agp_i810_attach },
150 #endif
151 #endif
152
153 #if NAGP_INTEL > 0
154 { PCI_VENDOR_INTEL, -1,
155 NULL, agp_intel_attach },
156 #endif
157
158 #if NAGP_SIS > 0
159 { PCI_VENDOR_SIS, -1,
160 NULL, agp_sis_attach },
161 #endif
162
163 #if NAGP_VIA > 0
164 { PCI_VENDOR_VIATECH, -1,
165 NULL, agp_via_attach },
166 #endif
167
168 { 0, 0,
169 NULL, NULL },
170 };
171
172 static const struct agp_product *
173 agp_lookup(const struct pci_attach_args *pa)
174 {
175 const struct agp_product *ap;
176
177 /* First find the vendor. */
178 for (ap = agp_products; ap->ap_attach != NULL; ap++) {
179 if (PCI_VENDOR(pa->pa_id) == ap->ap_vendor)
180 break;
181 }
182
183 if (ap->ap_attach == NULL)
184 return (NULL);
185
186 /* Now find the product within the vendor's domain. */
187 for (; ap->ap_attach != NULL; ap++) {
188 if (PCI_VENDOR(pa->pa_id) != ap->ap_vendor) {
189 /* Ran out of this vendor's section of the table. */
190 return (NULL);
191 }
192 if (ap->ap_product == PCI_PRODUCT(pa->pa_id)) {
193 /* Exact match. */
194 break;
195 }
196 if (ap->ap_product == (uint32_t) -1) {
197 /* Wildcard match. */
198 break;
199 }
200 }
201
202 if (ap->ap_attach == NULL)
203 return (NULL);
204
205 /* Now let the product-specific driver filter the match. */
206 if (ap->ap_match != NULL && (*ap->ap_match)(pa) == 0)
207 return (NULL);
208
209 return (ap);
210 }
211
212 int
213 agpmatch(struct device *parent, struct cfdata *match, void *aux)
214 {
215 struct agpbus_attach_args *apa = aux;
216 struct pci_attach_args *pa = &apa->apa_pci_args;
217
218 if (strcmp(apa->apa_busname, "agp") != 0)
219 return (0);
220
221 if (agp_lookup(pa) == NULL)
222 return (0);
223
224 return (1);
225 }
226
227 static int agp_max[][2] = {
228 {0, 0},
229 {32, 4},
230 {64, 28},
231 {128, 96},
232 {256, 204},
233 {512, 440},
234 {1024, 942},
235 {2048, 1920},
236 {4096, 3932}
237 };
238 #define agp_max_size (sizeof(agp_max) / sizeof(agp_max[0]))
239
240 void
241 agpattach(struct device *parent, struct device *self, void *aux)
242 {
243 struct agpbus_attach_args *apa = aux;
244 struct pci_attach_args *pa = &apa->apa_pci_args;
245 struct agp_softc *sc = (void *)self;
246 const struct agp_product *ap;
247 int memsize, i, ret;
248
249 ap = agp_lookup(pa);
250 if (ap == NULL) {
251 printf("\n");
252 panic("agpattach: impossible");
253 }
254
255 sc->as_dmat = pa->pa_dmat;
256 sc->as_pc = pa->pa_pc;
257 sc->as_tag = pa->pa_tag;
258 sc->as_id = pa->pa_id;
259
260 /*
261 * Work out an upper bound for agp memory allocation. This
262 * uses a heurisitc table from the Linux driver.
263 */
264 memsize = ptoa(physmem) >> 20;
265 for (i = 0; i < agp_max_size; i++) {
266 if (memsize <= agp_max[i][0])
267 break;
268 }
269 if (i == agp_max_size)
270 i = agp_max_size - 1;
271 sc->as_maxmem = agp_max[i][1] << 20U;
272
273 /*
274 * The lock is used to prevent re-entry to
275 * agp_generic_bind_memory() since that function can sleep.
276 */
277 lockinit(&sc->as_lock, PZERO|PCATCH, "agplk", 0, 0);
278
279 TAILQ_INIT(&sc->as_memory);
280
281 ret = (*ap->ap_attach)(parent, self, pa);
282 if (ret == 0)
283 printf(": aperture at 0x%lx, size 0x%lx\n",
284 (unsigned long)sc->as_apaddr,
285 (unsigned long)AGP_GET_APERTURE(sc));
286 else
287 sc->as_chipc = NULL;
288 }
289 int
290 agp_map_aperture(struct pci_attach_args *pa, struct agp_softc *sc)
291 {
292 /*
293 * Find and the aperture. Don't map it (yet), this would
294 * eat KVA.
295 */
296 if (pci_mapreg_info(pa->pa_pc, pa->pa_tag, AGP_APBASE,
297 PCI_MAPREG_TYPE_MEM, &sc->as_apaddr, &sc->as_apsize,
298 &sc->as_apflags) != 0)
299 return ENXIO;
300
301 sc->as_apt = pa->pa_memt;
302
303 return 0;
304 }
305
306 struct agp_gatt *
307 agp_alloc_gatt(struct agp_softc *sc)
308 {
309 u_int32_t apsize = AGP_GET_APERTURE(sc);
310 u_int32_t entries = apsize >> AGP_PAGE_SHIFT;
311 struct agp_gatt *gatt;
312 int dummyseg;
313
314 gatt = malloc(sizeof(struct agp_gatt), M_AGP, M_NOWAIT);
315 if (!gatt)
316 return NULL;
317 gatt->ag_entries = entries;
318
319 if (agp_alloc_dmamem(sc->as_dmat, entries * sizeof(u_int32_t),
320 0, &gatt->ag_dmamap, (caddr_t *)&gatt->ag_virtual,
321 &gatt->ag_physical, &gatt->ag_dmaseg, 1, &dummyseg) != 0)
322 return NULL;
323
324 gatt->ag_size = entries * sizeof(u_int32_t);
325 memset(gatt->ag_virtual, 0, gatt->ag_size);
326 agp_flush_cache();
327
328 return gatt;
329 }
330
331 void
332 agp_free_gatt(struct agp_softc *sc, struct agp_gatt *gatt)
333 {
334 agp_free_dmamem(sc->as_dmat, gatt->ag_size, gatt->ag_dmamap,
335 (caddr_t)gatt->ag_virtual, &gatt->ag_dmaseg, 1);
336 free(gatt, M_AGP);
337 }
338
339
340 int
341 agp_generic_detach(struct agp_softc *sc)
342 {
343 lockmgr(&sc->as_lock, LK_DRAIN, 0);
344 agp_flush_cache();
345 return 0;
346 }
347
348 static int
349 agpdev_match(struct pci_attach_args *pa)
350 {
351 if (PCI_CLASS(pa->pa_class) == PCI_CLASS_DISPLAY &&
352 PCI_SUBCLASS(pa->pa_class) == PCI_SUBCLASS_DISPLAY_VGA)
353 return 1;
354
355 return 0;
356 }
357
358 int
359 agp_generic_enable(struct agp_softc *sc, u_int32_t mode)
360 {
361 struct pci_attach_args pa;
362 pcireg_t tstatus, mstatus;
363 pcireg_t command;
364 int rq, sba, fw, rate, capoff;
365
366 if (pci_find_device(&pa, agpdev_match) == 0 ||
367 pci_get_capability(pa.pa_pc, pa.pa_tag, PCI_CAP_AGP,
368 &capoff, NULL) == 0) {
369 printf("%s: can't find display\n", sc->as_dev.dv_xname);
370 return ENXIO;
371 }
372
373 tstatus = pci_conf_read(sc->as_pc, sc->as_tag,
374 sc->as_capoff + AGP_STATUS);
375 mstatus = pci_conf_read(pa.pa_pc, pa.pa_tag,
376 capoff + AGP_STATUS);
377
378 /* Set RQ to the min of mode, tstatus and mstatus */
379 rq = AGP_MODE_GET_RQ(mode);
380 if (AGP_MODE_GET_RQ(tstatus) < rq)
381 rq = AGP_MODE_GET_RQ(tstatus);
382 if (AGP_MODE_GET_RQ(mstatus) < rq)
383 rq = AGP_MODE_GET_RQ(mstatus);
384
385 /* Set SBA if all three can deal with SBA */
386 sba = (AGP_MODE_GET_SBA(tstatus)
387 & AGP_MODE_GET_SBA(mstatus)
388 & AGP_MODE_GET_SBA(mode));
389
390 /* Similar for FW */
391 fw = (AGP_MODE_GET_FW(tstatus)
392 & AGP_MODE_GET_FW(mstatus)
393 & AGP_MODE_GET_FW(mode));
394
395 /* Figure out the max rate */
396 rate = (AGP_MODE_GET_RATE(tstatus)
397 & AGP_MODE_GET_RATE(mstatus)
398 & AGP_MODE_GET_RATE(mode));
399 if (rate & AGP_MODE_RATE_4x)
400 rate = AGP_MODE_RATE_4x;
401 else if (rate & AGP_MODE_RATE_2x)
402 rate = AGP_MODE_RATE_2x;
403 else
404 rate = AGP_MODE_RATE_1x;
405
406 /* Construct the new mode word and tell the hardware */
407 command = AGP_MODE_SET_RQ(0, rq);
408 command = AGP_MODE_SET_SBA(command, sba);
409 command = AGP_MODE_SET_FW(command, fw);
410 command = AGP_MODE_SET_RATE(command, rate);
411 command = AGP_MODE_SET_AGP(command, 1);
412 pci_conf_write(sc->as_pc, sc->as_tag,
413 sc->as_capoff + AGP_COMMAND, command);
414 pci_conf_write(pa.pa_pc, pa.pa_tag, capoff + AGP_COMMAND, command);
415
416 return 0;
417 }
418
419 struct agp_memory *
420 agp_generic_alloc_memory(struct agp_softc *sc, int type, vsize_t size)
421 {
422 struct agp_memory *mem;
423
424 if ((size & (AGP_PAGE_SIZE - 1)) != 0)
425 return 0;
426
427 if (sc->as_allocated + size > sc->as_maxmem)
428 return 0;
429
430 if (type != 0) {
431 printf("agp_generic_alloc_memory: unsupported type %d\n",
432 type);
433 return 0;
434 }
435
436 mem = malloc(sizeof *mem, M_AGP, M_WAITOK);
437 if (mem == NULL)
438 return NULL;
439
440 if (bus_dmamap_create(sc->as_dmat, size, size / PAGE_SIZE + 1,
441 size, 0, BUS_DMA_NOWAIT, &mem->am_dmamap) != 0) {
442 free(mem, M_AGP);
443 return NULL;
444 }
445
446 mem->am_id = sc->as_nextid++;
447 mem->am_size = size;
448 mem->am_type = 0;
449 mem->am_physical = 0;
450 mem->am_offset = 0;
451 mem->am_is_bound = 0;
452 TAILQ_INSERT_TAIL(&sc->as_memory, mem, am_link);
453 sc->as_allocated += size;
454
455 return mem;
456 }
457
458 int
459 agp_generic_free_memory(struct agp_softc *sc, struct agp_memory *mem)
460 {
461 if (mem->am_is_bound)
462 return EBUSY;
463
464 sc->as_allocated -= mem->am_size;
465 TAILQ_REMOVE(&sc->as_memory, mem, am_link);
466 bus_dmamap_destroy(sc->as_dmat, mem->am_dmamap);
467 free(mem, M_AGP);
468 return 0;
469 }
470
471 int
472 agp_generic_bind_memory(struct agp_softc *sc, struct agp_memory *mem,
473 off_t offset)
474 {
475 off_t i, k;
476 bus_size_t done, j;
477 int error;
478 bus_dma_segment_t *segs, *seg;
479 bus_addr_t pa;
480 int contigpages, nseg;
481
482 lockmgr(&sc->as_lock, LK_EXCLUSIVE, 0);
483
484 if (mem->am_is_bound) {
485 printf("%s: memory already bound\n", sc->as_dev.dv_xname);
486 lockmgr(&sc->as_lock, LK_RELEASE, 0);
487 return EINVAL;
488 }
489
490 if (offset < 0
491 || (offset & (AGP_PAGE_SIZE - 1)) != 0
492 || offset + mem->am_size > AGP_GET_APERTURE(sc)) {
493 printf("%s: binding memory at bad offset %#lx\n",
494 sc->as_dev.dv_xname, (unsigned long) offset);
495 lockmgr(&sc->as_lock, LK_RELEASE, 0);
496 return EINVAL;
497 }
498
499 /*
500 * XXXfvdl
501 * The memory here needs to be directly accessable from the
502 * AGP video card, so it should be allocated using bus_dma.
503 * However, it need not be contiguous, since individual pages
504 * are translated using the GATT.
505 *
506 * Using a large chunk of contiguous memory may get in the way
507 * of other subsystems that may need one, so we try to be friendly
508 * and ask for allocation in chunks of a minimum of 8 pages
509 * of contiguous memory on average, falling back to 4, 2 and 1
510 * if really needed. Larger chunks are preferred, since allocating
511 * a bus_dma_segment per page would be overkill.
512 */
513
514 for (contigpages = 8; contigpages > 0; contigpages >>= 1) {
515 nseg = (mem->am_size / (contigpages * PAGE_SIZE)) + 1;
516 segs = malloc(nseg * sizeof *segs, M_AGP, M_WAITOK);
517 if (segs == NULL) {
518 lockmgr(&sc->as_lock, LK_RELEASE, 0);
519 return ENOMEM;
520 }
521 if (bus_dmamem_alloc(sc->as_dmat, mem->am_size, PAGE_SIZE, 0,
522 segs, nseg, &mem->am_nseg,
523 BUS_DMA_WAITOK) != 0) {
524 free(segs, M_AGP);
525 continue;
526 }
527 if (bus_dmamem_map(sc->as_dmat, segs, mem->am_nseg,
528 mem->am_size, &mem->am_virtual, BUS_DMA_WAITOK) != 0) {
529 bus_dmamem_free(sc->as_dmat, segs, mem->am_nseg);
530 free(segs, M_AGP);
531 continue;
532 }
533 if (bus_dmamap_load(sc->as_dmat, mem->am_dmamap,
534 mem->am_virtual, mem->am_size, NULL, BUS_DMA_WAITOK) != 0) {
535 bus_dmamem_unmap(sc->as_dmat, mem->am_virtual,
536 mem->am_size);
537 bus_dmamem_free(sc->as_dmat, segs, mem->am_nseg);
538 free(segs, M_AGP);
539 continue;
540 }
541 mem->am_dmaseg = segs;
542 break;
543 }
544
545 if (contigpages == 0) {
546 lockmgr(&sc->as_lock, LK_RELEASE, 0);
547 return ENOMEM;
548 }
549
550
551 /*
552 * Bind the individual pages and flush the chipset's
553 * TLB.
554 */
555 done = 0;
556 for (i = 0; i < mem->am_dmamap->dm_nsegs; i++) {
557 seg = &mem->am_dmamap->dm_segs[i];
558 /*
559 * Install entries in the GATT, making sure that if
560 * AGP_PAGE_SIZE < PAGE_SIZE and mem->am_size is not
561 * aligned to PAGE_SIZE, we don't modify too many GATT
562 * entries.
563 */
564 for (j = 0; j < seg->ds_len && (done + j) < mem->am_size;
565 j += AGP_PAGE_SIZE) {
566 pa = seg->ds_addr + j;
567 AGP_DPF("binding offset %#lx to pa %#lx\n",
568 (unsigned long)(offset + done + j),
569 (unsigned long)pa);
570 error = AGP_BIND_PAGE(sc, offset + done + j, pa);
571 if (error) {
572 /*
573 * Bail out. Reverse all the mappings
574 * and unwire the pages.
575 */
576 for (k = 0; k < done + j; k += AGP_PAGE_SIZE)
577 AGP_UNBIND_PAGE(sc, offset + k);
578
579 bus_dmamap_unload(sc->as_dmat, mem->am_dmamap);
580 bus_dmamem_unmap(sc->as_dmat, mem->am_virtual,
581 mem->am_size);
582 bus_dmamem_free(sc->as_dmat, mem->am_dmaseg,
583 mem->am_nseg);
584 free(mem->am_dmaseg, M_AGP);
585 lockmgr(&sc->as_lock, LK_RELEASE, 0);
586 return error;
587 }
588 }
589 done += seg->ds_len;
590 }
591
592 /*
593 * Flush the cpu cache since we are providing a new mapping
594 * for these pages.
595 */
596 agp_flush_cache();
597
598 /*
599 * Make sure the chipset gets the new mappings.
600 */
601 AGP_FLUSH_TLB(sc);
602
603 mem->am_offset = offset;
604 mem->am_is_bound = 1;
605
606 lockmgr(&sc->as_lock, LK_RELEASE, 0);
607
608 return 0;
609 }
610
611 int
612 agp_generic_unbind_memory(struct agp_softc *sc, struct agp_memory *mem)
613 {
614 int i;
615
616 lockmgr(&sc->as_lock, LK_EXCLUSIVE, 0);
617
618 if (!mem->am_is_bound) {
619 printf("%s: memory is not bound\n", sc->as_dev.dv_xname);
620 lockmgr(&sc->as_lock, LK_RELEASE, 0);
621 return EINVAL;
622 }
623
624
625 /*
626 * Unbind the individual pages and flush the chipset's
627 * TLB. Unwire the pages so they can be swapped.
628 */
629 for (i = 0; i < mem->am_size; i += AGP_PAGE_SIZE)
630 AGP_UNBIND_PAGE(sc, mem->am_offset + i);
631
632 agp_flush_cache();
633 AGP_FLUSH_TLB(sc);
634
635 bus_dmamap_unload(sc->as_dmat, mem->am_dmamap);
636 bus_dmamem_unmap(sc->as_dmat, mem->am_virtual, mem->am_size);
637 bus_dmamem_free(sc->as_dmat, mem->am_dmaseg, mem->am_nseg);
638
639 free(mem->am_dmaseg, M_AGP);
640
641 mem->am_offset = 0;
642 mem->am_is_bound = 0;
643
644 lockmgr(&sc->as_lock, LK_RELEASE, 0);
645
646 return 0;
647 }
648
649 /* Helper functions for implementing user/kernel api */
650
651 static int
652 agp_acquire_helper(struct agp_softc *sc, enum agp_acquire_state state)
653 {
654 if (sc->as_state != AGP_ACQUIRE_FREE)
655 return EBUSY;
656 sc->as_state = state;
657
658 return 0;
659 }
660
661 static int
662 agp_release_helper(struct agp_softc *sc, enum agp_acquire_state state)
663 {
664 struct agp_memory *mem;
665
666 if (sc->as_state == AGP_ACQUIRE_FREE)
667 return 0;
668
669 if (sc->as_state != state)
670 return EBUSY;
671
672 /*
673 * Clear out outstanding aperture mappings.
674 * (should not be necessary, done by caller)
675 */
676 TAILQ_FOREACH(mem, &sc->as_memory, am_link) {
677 if (mem->am_is_bound) {
678 printf("agp_release_helper: mem %d is bound\n",
679 mem->am_id);
680 AGP_UNBIND_MEMORY(sc, mem);
681 }
682 }
683
684 sc->as_state = AGP_ACQUIRE_FREE;
685 return 0;
686 }
687
688 static struct agp_memory *
689 agp_find_memory(struct agp_softc *sc, int id)
690 {
691 struct agp_memory *mem;
692
693 AGP_DPF("searching for memory block %d\n", id);
694 TAILQ_FOREACH(mem, &sc->as_memory, am_link) {
695 AGP_DPF("considering memory block %d\n", mem->am_id);
696 if (mem->am_id == id)
697 return mem;
698 }
699 return 0;
700 }
701
702 /* Implementation of the userland ioctl api */
703
704 static int
705 agp_info_user(struct agp_softc *sc, agp_info *info)
706 {
707 memset(info, 0, sizeof *info);
708 info->bridge_id = sc->as_id;
709 if (sc->as_capoff != 0)
710 info->agp_mode = pci_conf_read(sc->as_pc, sc->as_tag,
711 sc->as_capoff + AGP_STATUS);
712 else
713 info->agp_mode = 0; /* i810 doesn't have real AGP */
714 info->aper_base = sc->as_apaddr;
715 info->aper_size = AGP_GET_APERTURE(sc) >> 20;
716 info->pg_total = info->pg_system = sc->as_maxmem >> AGP_PAGE_SHIFT;
717 info->pg_used = sc->as_allocated >> AGP_PAGE_SHIFT;
718
719 return 0;
720 }
721
722 static int
723 agp_setup_user(struct agp_softc *sc, agp_setup *setup)
724 {
725 return AGP_ENABLE(sc, setup->agp_mode);
726 }
727
728 static int
729 agp_allocate_user(struct agp_softc *sc, agp_allocate *alloc)
730 {
731 struct agp_memory *mem;
732
733 mem = AGP_ALLOC_MEMORY(sc,
734 alloc->type,
735 alloc->pg_count << AGP_PAGE_SHIFT);
736 if (mem) {
737 alloc->key = mem->am_id;
738 alloc->physical = mem->am_physical;
739 return 0;
740 } else {
741 return ENOMEM;
742 }
743 }
744
745 static int
746 agp_deallocate_user(struct agp_softc *sc, int id)
747 {
748 struct agp_memory *mem = agp_find_memory(sc, id);
749
750 if (mem) {
751 AGP_FREE_MEMORY(sc, mem);
752 return 0;
753 } else {
754 return ENOENT;
755 }
756 }
757
758 static int
759 agp_bind_user(struct agp_softc *sc, agp_bind *bind)
760 {
761 struct agp_memory *mem = agp_find_memory(sc, bind->key);
762
763 if (!mem)
764 return ENOENT;
765
766 return AGP_BIND_MEMORY(sc, mem, bind->pg_start << AGP_PAGE_SHIFT);
767 }
768
769 static int
770 agp_unbind_user(struct agp_softc *sc, agp_unbind *unbind)
771 {
772 struct agp_memory *mem = agp_find_memory(sc, unbind->key);
773
774 if (!mem)
775 return ENOENT;
776
777 return AGP_UNBIND_MEMORY(sc, mem);
778 }
779
780 int
781 agpopen(dev_t dev, int oflags, int devtype, struct proc *p)
782 {
783 struct agp_softc *sc = device_lookup(&agp_cd, AGPUNIT(dev));
784
785 if (sc == NULL)
786 return ENXIO;
787
788 if (sc->as_chipc == NULL)
789 return ENXIO;
790
791 if (!sc->as_isopen)
792 sc->as_isopen = 1;
793 else
794 return EBUSY;
795
796 return 0;
797 }
798
799 int
800 agpclose(dev_t dev, int fflag, int devtype, struct proc *p)
801 {
802 struct agp_softc *sc = device_lookup(&agp_cd, AGPUNIT(dev));
803 struct agp_memory *mem;
804
805 /*
806 * Clear the GATT and force release on last close
807 */
808 if (sc->as_state == AGP_ACQUIRE_USER) {
809 while ((mem = TAILQ_FIRST(&sc->as_memory))) {
810 if (mem->am_is_bound) {
811 printf("agpclose: mem %d is bound\n",
812 mem->am_id);
813 AGP_UNBIND_MEMORY(sc, mem);
814 }
815 /*
816 * XXX it is not documented, but if the protocol allows
817 * allocate->acquire->bind, it would be possible that
818 * memory ranges are allocated by the kernel here,
819 * which we shouldn't free. We'd have to keep track of
820 * the memory range's owner.
821 * The kernel API is unsed yet, so we get away with
822 * freeing all.
823 */
824 AGP_FREE_MEMORY(sc, mem);
825 }
826 agp_release_helper(sc, AGP_ACQUIRE_USER);
827 }
828 sc->as_isopen = 0;
829
830 return 0;
831 }
832
833 int
834 agpioctl(dev_t dev, u_long cmd, caddr_t data, int fflag, struct proc *p)
835 {
836 struct agp_softc *sc = device_lookup(&agp_cd, AGPUNIT(dev));
837
838 if (sc == NULL)
839 return ENODEV;
840
841 if ((fflag & FWRITE) == 0 && cmd != AGPIOC_INFO)
842 return EPERM;
843
844 switch (cmd) {
845 case AGPIOC_INFO:
846 return agp_info_user(sc, (agp_info *) data);
847
848 case AGPIOC_ACQUIRE:
849 return agp_acquire_helper(sc, AGP_ACQUIRE_USER);
850
851 case AGPIOC_RELEASE:
852 return agp_release_helper(sc, AGP_ACQUIRE_USER);
853
854 case AGPIOC_SETUP:
855 return agp_setup_user(sc, (agp_setup *)data);
856
857 case AGPIOC_ALLOCATE:
858 return agp_allocate_user(sc, (agp_allocate *)data);
859
860 case AGPIOC_DEALLOCATE:
861 return agp_deallocate_user(sc, *(int *) data);
862
863 case AGPIOC_BIND:
864 return agp_bind_user(sc, (agp_bind *)data);
865
866 case AGPIOC_UNBIND:
867 return agp_unbind_user(sc, (agp_unbind *)data);
868
869 }
870
871 return EINVAL;
872 }
873
874 paddr_t
875 agpmmap(dev_t dev, off_t offset, int prot)
876 {
877 struct agp_softc *sc = device_lookup(&agp_cd, AGPUNIT(dev));
878
879 if (offset > AGP_GET_APERTURE(sc))
880 return -1;
881
882 return (bus_space_mmap(sc->as_apt, sc->as_apaddr, offset, prot,
883 BUS_SPACE_MAP_LINEAR));
884 }
885
886 /* Implementation of the kernel api */
887
888 void *
889 agp_find_device(int unit)
890 {
891 return device_lookup(&agp_cd, unit);
892 }
893
894 enum agp_acquire_state
895 agp_state(void *devcookie)
896 {
897 struct agp_softc *sc = devcookie;
898 return sc->as_state;
899 }
900
901 void
902 agp_get_info(void *devcookie, struct agp_info *info)
903 {
904 struct agp_softc *sc = devcookie;
905
906 info->ai_mode = pci_conf_read(sc->as_pc, sc->as_tag,
907 sc->as_capoff + AGP_STATUS);
908 info->ai_aperture_base = sc->as_apaddr;
909 info->ai_aperture_size = sc->as_apsize; /* XXXfvdl inconsistent */
910 info->ai_memory_allowed = sc->as_maxmem;
911 info->ai_memory_used = sc->as_allocated;
912 }
913
914 int
915 agp_acquire(void *dev)
916 {
917 return agp_acquire_helper(dev, AGP_ACQUIRE_KERNEL);
918 }
919
920 int
921 agp_release(void *dev)
922 {
923 return agp_release_helper(dev, AGP_ACQUIRE_KERNEL);
924 }
925
926 int
927 agp_enable(void *dev, u_int32_t mode)
928 {
929 struct agp_softc *sc = dev;
930
931 return AGP_ENABLE(sc, mode);
932 }
933
934 void *agp_alloc_memory(void *dev, int type, vsize_t bytes)
935 {
936 struct agp_softc *sc = dev;
937
938 return (void *)AGP_ALLOC_MEMORY(sc, type, bytes);
939 }
940
941 void agp_free_memory(void *dev, void *handle)
942 {
943 struct agp_softc *sc = dev;
944 struct agp_memory *mem = (struct agp_memory *) handle;
945 AGP_FREE_MEMORY(sc, mem);
946 }
947
948 int agp_bind_memory(void *dev, void *handle, off_t offset)
949 {
950 struct agp_softc *sc = dev;
951 struct agp_memory *mem = (struct agp_memory *) handle;
952
953 return AGP_BIND_MEMORY(sc, mem, offset);
954 }
955
956 int agp_unbind_memory(void *dev, void *handle)
957 {
958 struct agp_softc *sc = dev;
959 struct agp_memory *mem = (struct agp_memory *) handle;
960
961 return AGP_UNBIND_MEMORY(sc, mem);
962 }
963
964 void agp_memory_info(void *dev, void *handle, struct agp_memory_info *mi)
965 {
966 struct agp_memory *mem = (struct agp_memory *) handle;
967
968 mi->ami_size = mem->am_size;
969 mi->ami_physical = mem->am_physical;
970 mi->ami_offset = mem->am_offset;
971 mi->ami_is_bound = mem->am_is_bound;
972 }
973
974 int
975 agp_alloc_dmamem(bus_dma_tag_t tag, size_t size, int flags,
976 bus_dmamap_t *mapp, caddr_t *vaddr, bus_addr_t *baddr,
977 bus_dma_segment_t *seg, int nseg, int *rseg)
978
979 {
980 int error, level = 0;
981
982 if ((error = bus_dmamem_alloc(tag, size, PAGE_SIZE, 0,
983 seg, nseg, rseg, BUS_DMA_NOWAIT)) != 0)
984 goto out;
985 level++;
986
987 if ((error = bus_dmamem_map(tag, seg, *rseg, size, vaddr,
988 BUS_DMA_NOWAIT | flags)) != 0)
989 goto out;
990 level++;
991
992 if ((error = bus_dmamap_create(tag, size, *rseg, size, 0,
993 BUS_DMA_NOWAIT, mapp)) != 0)
994 goto out;
995 level++;
996
997 if ((error = bus_dmamap_load(tag, *mapp, *vaddr, size, NULL,
998 BUS_DMA_NOWAIT)) != 0)
999 goto out;
1000
1001 *baddr = (*mapp)->dm_segs[0].ds_addr;
1002
1003 return 0;
1004 out:
1005 switch (level) {
1006 case 3:
1007 bus_dmamap_destroy(tag, *mapp);
1008 /* FALLTHROUGH */
1009 case 2:
1010 bus_dmamem_unmap(tag, *vaddr, size);
1011 /* FALLTHROUGH */
1012 case 1:
1013 bus_dmamem_free(tag, seg, *rseg);
1014 break;
1015 default:
1016 break;
1017 }
1018
1019 return error;
1020 }
1021
1022 void
1023 agp_free_dmamem(bus_dma_tag_t tag, size_t size, bus_dmamap_t map,
1024 caddr_t vaddr, bus_dma_segment_t *seg, int nseg)
1025 {
1026
1027 bus_dmamap_unload(tag, map);
1028 bus_dmamap_destroy(tag, map);
1029 bus_dmamem_unmap(tag, vaddr, size);
1030 bus_dmamem_free(tag, seg, nseg);
1031 }
1032