cardbus.c revision 1.63 1 /* $NetBSD: cardbus.c,v 1.63 2005/08/25 22:33:18 drochner Exp $ */
2
3 /*
4 * Copyright (c) 1997, 1998, 1999 and 2000
5 * HAYAKAWA Koichi. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. All advertising materials mentioning features or use of this software
16 * must display the following acknowledgement:
17 * This product includes software developed by HAYAKAWA Koichi.
18 * 4. The name of the author may not be used to endorse or promote products
19 * derived from this software without specific prior written permission.
20 *
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
35 #include <sys/cdefs.h>
36 __KERNEL_RCSID(0, "$NetBSD: cardbus.c,v 1.63 2005/08/25 22:33:18 drochner Exp $");
37
38 #include "opt_cardbus.h"
39
40 #include <sys/param.h>
41 #include <sys/systm.h>
42 #include <sys/device.h>
43 #include <sys/malloc.h>
44 #include <sys/kernel.h>
45 #include <sys/syslog.h>
46 #include <sys/proc.h>
47 #include <sys/reboot.h> /* for AB_* needed by bootverbose */
48
49 #include <machine/bus.h>
50
51 #include <dev/cardbus/cardbusvar.h>
52 #include <dev/pci/pcidevs.h>
53
54 #include <dev/cardbus/cardbus_exrom.h>
55
56 #include <dev/pci/pcivar.h> /* XXX */
57 #include <dev/pci/pcireg.h> /* XXX */
58
59 #include <dev/pcmcia/pcmciareg.h>
60
61 #include "locators.h"
62
63 #if defined CARDBUS_DEBUG
64 #define STATIC
65 #define DPRINTF(a) printf a
66 #else
67 #define STATIC static
68 #define DPRINTF(a)
69 #endif
70
71
72 STATIC void cardbusattach(struct device *, struct device *, void *);
73 STATIC int cardbusmatch(struct device *, struct cfdata *, void *);
74 int cardbus_rescan(struct device *, const char *, const int *);
75 void cardbus_childdetached(struct device *, struct device *);
76 static int cardbusprint(void *, const char *);
77
78 typedef void (*tuple_decode_func)(u_int8_t*, int, void*);
79
80 static int decode_tuples(u_int8_t *, int, tuple_decode_func, void*);
81 #ifdef CARDBUS_DEBUG
82 static void print_tuple(u_int8_t*, int, void*);
83 #endif
84
85 static int cardbus_read_tuples(struct cardbus_attach_args *,
86 cardbusreg_t, u_int8_t *, size_t);
87
88 static void enable_function(struct cardbus_softc *, int, int);
89 static void disable_function(struct cardbus_softc *, int);
90
91 CFATTACH_DECL2(cardbus, sizeof(struct cardbus_softc),
92 cardbusmatch, cardbusattach, NULL, NULL,
93 cardbus_rescan, cardbus_childdetached);
94
95 #ifndef __NetBSD_Version__
96 struct cfdriver cardbus_cd = {
97 NULL, "cardbus", DV_DULL
98 };
99 #endif
100
101
102 STATIC int
103 cardbusmatch(struct device *parent, struct cfdata *cf, void *aux)
104 {
105 struct cbslot_attach_args *cba = aux;
106
107 if (strcmp(cba->cba_busname, cf->cf_name)) {
108 DPRINTF(("cardbusmatch: busname differs %s <=> %s\n",
109 cba->cba_busname, cf->cf_name));
110 return (0);
111 }
112
113 return (1);
114 }
115
116 STATIC void
117 cardbusattach(struct device *parent, struct device *self, void *aux)
118 {
119 struct cardbus_softc *sc = (void *)self;
120 struct cbslot_attach_args *cba = aux;
121
122 sc->sc_bus = cba->cba_bus;
123 sc->sc_device = 0;
124 sc->sc_intrline = cba->cba_intrline;
125 sc->sc_cacheline = cba->cba_cacheline;
126 sc->sc_lattimer = cba->cba_lattimer;
127
128 printf(": bus %d device %d", sc->sc_bus, sc->sc_device);
129 if (bootverbose)
130 printf(" cacheline 0x%x, lattimer 0x%x", sc->sc_cacheline,
131 sc->sc_lattimer);
132 printf("\n");
133
134 sc->sc_iot = cba->cba_iot; /* CardBus I/O space tag */
135 sc->sc_memt = cba->cba_memt; /* CardBus MEM space tag */
136 sc->sc_dmat = cba->cba_dmat; /* DMA tag */
137 sc->sc_cc = cba->cba_cc;
138 sc->sc_cf = cba->cba_cf;
139
140 #if rbus
141 sc->sc_rbus_iot = cba->cba_rbus_iot;
142 sc->sc_rbus_memt = cba->cba_rbus_memt;
143 #endif
144 }
145
146 static int
147 cardbus_read_tuples(struct cardbus_attach_args *ca, cardbusreg_t cis_ptr,
148 u_int8_t *tuples, size_t len)
149 {
150 struct cardbus_softc *sc = ca->ca_ct->ct_sc;
151 cardbus_chipset_tag_t cc = ca->ca_ct->ct_cc;
152 cardbus_function_tag_t cf = ca->ca_ct->ct_cf;
153 cardbustag_t tag = ca->ca_tag;
154 cardbusreg_t command;
155 bus_space_tag_t bar_tag;
156 bus_space_handle_t bar_memh;
157 bus_size_t bar_size;
158 bus_addr_t bar_addr;
159 cardbusreg_t reg;
160 int found = 0;
161 int cardbus_space = cis_ptr & CARDBUS_CIS_ASIMASK;
162 int i, j;
163
164 memset(tuples, 0, len);
165
166 cis_ptr = cis_ptr & CARDBUS_CIS_ADDRMASK;
167
168 switch (cardbus_space) {
169 case CARDBUS_CIS_ASI_TUPLE:
170 DPRINTF(("%s: reading CIS data from configuration space\n",
171 sc->sc_dev.dv_xname));
172 for (i = cis_ptr, j = 0; i < 0xff; i += 4) {
173 u_int32_t e = (*cf->cardbus_conf_read)(cc, tag, i);
174 tuples[j] = 0xff & e;
175 e >>= 8;
176 tuples[j + 1] = 0xff & e;
177 e >>= 8;
178 tuples[j + 2] = 0xff & e;
179 e >>= 8;
180 tuples[j + 3] = 0xff & e;
181 j += 4;
182 }
183 found++;
184 break;
185
186 case CARDBUS_CIS_ASI_BAR0:
187 case CARDBUS_CIS_ASI_BAR1:
188 case CARDBUS_CIS_ASI_BAR2:
189 case CARDBUS_CIS_ASI_BAR3:
190 case CARDBUS_CIS_ASI_BAR4:
191 case CARDBUS_CIS_ASI_BAR5:
192 case CARDBUS_CIS_ASI_ROM:
193 if (cardbus_space == CARDBUS_CIS_ASI_ROM) {
194 reg = CARDBUS_ROM_REG;
195 DPRINTF(("%s: reading CIS data from ROM\n",
196 sc->sc_dev.dv_xname));
197 } else {
198 reg = CARDBUS_BASE0_REG + (cardbus_space - 1) * 4;
199 DPRINTF(("%s: reading CIS data from BAR%d\n",
200 sc->sc_dev.dv_xname, cardbus_space - 1));
201 }
202
203 /*
204 * XXX zero register so mapreg_map doesn't get confused by old
205 * contents.
206 */
207 cardbus_conf_write(cc, cf, tag, reg, 0);
208 if (Cardbus_mapreg_map(ca->ca_ct, reg,
209 CARDBUS_MAPREG_TYPE_MEM | PCI_MAPREG_MEM_TYPE_32BIT,
210 0, &bar_tag, &bar_memh, &bar_addr, &bar_size)) {
211 printf("%s: failed to map memory\n",
212 sc->sc_dev.dv_xname);
213 return (1);
214 }
215
216 if (cardbus_space == CARDBUS_CIS_ASI_ROM) {
217 cardbusreg_t exrom;
218 int save;
219 struct cardbus_rom_image_head rom_image;
220 struct cardbus_rom_image *p;
221
222 save = splhigh();
223 /* enable rom address decoder */
224 exrom = cardbus_conf_read(cc, cf, tag, reg);
225 cardbus_conf_write(cc, cf, tag, reg, exrom | 1);
226
227 command = cardbus_conf_read(cc, cf, tag,
228 CARDBUS_COMMAND_STATUS_REG);
229 cardbus_conf_write(cc, cf, tag,
230 CARDBUS_COMMAND_STATUS_REG,
231 command | CARDBUS_COMMAND_MEM_ENABLE);
232
233 if (cardbus_read_exrom(ca->ca_memt, bar_memh,
234 &rom_image))
235 goto out;
236
237 SIMPLEQ_FOREACH(p, &rom_image, next) {
238 if (p->rom_image ==
239 CARDBUS_CIS_ASI_ROM_IMAGE(cis_ptr)) {
240 bus_space_read_region_1(p->romt,
241 p->romh, CARDBUS_CIS_ADDR(cis_ptr),
242 tuples, MIN(p->image_size, len));
243 found++;
244 break;
245 }
246 }
247 while ((p = SIMPLEQ_FIRST(&rom_image)) != NULL) {
248 SIMPLEQ_REMOVE_HEAD(&rom_image, next);
249 free(p, M_DEVBUF);
250 }
251 out:
252 exrom = cardbus_conf_read(cc, cf, tag, reg);
253 cardbus_conf_write(cc, cf, tag, reg, exrom & ~1);
254 splx(save);
255 } else {
256 command = cardbus_conf_read(cc, cf, tag,
257 CARDBUS_COMMAND_STATUS_REG);
258 cardbus_conf_write(cc, cf, tag,
259 CARDBUS_COMMAND_STATUS_REG,
260 command | CARDBUS_COMMAND_MEM_ENABLE);
261 /* XXX byte order? */
262 bus_space_read_region_1(ca->ca_memt, bar_memh,
263 cis_ptr, tuples, MIN(bar_size, len));
264 found++;
265 }
266 command = cardbus_conf_read(cc, cf, tag,
267 CARDBUS_COMMAND_STATUS_REG);
268 cardbus_conf_write(cc, cf, tag, CARDBUS_COMMAND_STATUS_REG,
269 command & ~CARDBUS_COMMAND_MEM_ENABLE);
270 cardbus_conf_write(cc, cf, tag, reg, 0);
271
272 Cardbus_mapreg_unmap(ca->ca_ct, reg, bar_tag, bar_memh,
273 bar_size);
274 break;
275
276 #ifdef DIAGNOSTIC
277 default:
278 panic("%s: bad CIS space (%d)", sc->sc_dev.dv_xname,
279 cardbus_space);
280 #endif
281 }
282 return (!found);
283 }
284
285 static void
286 parse_tuple(u_int8_t *tuple, int len, void *data)
287 {
288 struct cardbus_cis_info *cis = data;
289 char *p;
290 int i, bar_index;
291
292 switch (tuple[0]) {
293 case PCMCIA_CISTPL_MANFID:
294 if (tuple[1] != 5) {
295 DPRINTF(("%s: wrong length manufacturer id (%d)\n",
296 __func__, tuple[1]));
297 break;
298 }
299 cis->manufacturer = tuple[2] | (tuple[3] << 8);
300 cis->product = tuple[4] | (tuple[5] << 8);
301 break;
302
303 case PCMCIA_CISTPL_VERS_1:
304 memcpy(cis->cis1_info_buf, tuple + 2, tuple[1]);
305 i = 0;
306 p = cis->cis1_info_buf + 2;
307 while (i <
308 sizeof(cis->cis1_info) / sizeof(cis->cis1_info[0])) {
309 cis->cis1_info[i++] = p;
310 while (*p != '\0' && *p != '\xff')
311 p++;
312 if (*p == '\xff')
313 break;
314 p++;
315 }
316 break;
317
318 case PCMCIA_CISTPL_BAR:
319 if (tuple[1] != 6) {
320 DPRINTF(("%s: BAR with short length (%d)\n",
321 __func__, tuple[1]));
322 break;
323 }
324 bar_index = tuple[2] & 7;
325 if (bar_index == 0) {
326 DPRINTF(("%s: invalid ASI in BAR tuple\n", __func__));
327 break;
328 }
329 bar_index--;
330 cis->bar[bar_index].flags = tuple[2];
331 cis->bar[bar_index].size =
332 (tuple[4] << 0) |
333 (tuple[5] << 8) |
334 (tuple[6] << 16) |
335 (tuple[7] << 24);
336 break;
337
338 case PCMCIA_CISTPL_FUNCID:
339 cis->funcid = tuple[2];
340 break;
341
342 case PCMCIA_CISTPL_FUNCE:
343 switch (cis->funcid) {
344 case PCMCIA_FUNCTION_SERIAL:
345 if (tuple[1] >= 2 &&
346 /* XXX PCMCIA_TPLFE_TYPE_SERIAL_??? */
347 tuple[2] == 0) {
348 cis->funce.serial.uart_type = tuple[3] & 0x1f;
349 cis->funce.serial.uart_present = 1;
350 }
351 break;
352
353 case PCMCIA_FUNCTION_NETWORK:
354 if (tuple[1] >= 8 &&
355 tuple[2] == PCMCIA_TPLFE_TYPE_LAN_NID) {
356 if (tuple[3] >
357 sizeof(cis->funce.network.netid)) {
358 DPRINTF(("%s: unknown network id type "
359 "(len = %d)\n",
360 __func__, tuple[3]));
361 } else {
362 cis->funce.network.netid_present = 1;
363 memcpy(cis->funce.network.netid,
364 tuple + 4, tuple[3]);
365 }
366 }
367 break;
368 }
369 break;
370 }
371 }
372
373 /*
374 * int cardbus_attach_card(struct cardbus_softc *sc)
375 *
376 * This function attaches the card on the slot: turns on power,
377 * reads and analyses tuple, sets configuration index.
378 *
379 * This function returns the number of recognised device functions.
380 * If no functions are recognised, return 0.
381 */
382 int
383 cardbus_attach_card(struct cardbus_softc *sc)
384 {
385 cardbus_chipset_tag_t cc;
386 cardbus_function_tag_t cf;
387 int cdstatus;
388 static int wildcard[] = {
389 CARDBUSCF_DEV_DEFAULT, CARDBUSCF_FUNCTION_DEFAULT
390 };
391
392 cc = sc->sc_cc;
393 cf = sc->sc_cf;
394
395 DPRINTF(("cardbus_attach_card: cb%d start\n", sc->sc_dev.dv_unit));
396
397 /* inspect initial voltage */
398 if ((cdstatus = (*cf->cardbus_ctrl)(cc, CARDBUS_CD)) == 0) {
399 DPRINTF(("cardbusattach: no CardBus card on cb%d\n",
400 sc->sc_dev.dv_unit));
401 return (0);
402 }
403
404 cardbus_rescan(&sc->sc_dev, "cardbus", wildcard);
405 return (1); /* XXX */
406 }
407
408 int
409 cardbus_rescan(struct device *self, const char *ifattr, const int *locators)
410 {
411 struct cardbus_softc *sc = (struct cardbus_softc *)self;
412 cardbus_chipset_tag_t cc;
413 cardbus_function_tag_t cf;
414 cardbustag_t tag;
415 cardbusreg_t id, class, cis_ptr;
416 cardbusreg_t bhlc;
417 u_int8_t tuple[2048];
418 int cdstatus;
419 int function, nfunction;
420 struct device *csc;
421 cardbus_devfunc_t ct;
422
423 cc = sc->sc_cc;
424 cf = sc->sc_cf;
425
426 /* XXX what a nonsense */
427 if (locators[CARDBUSCF_DEV] != CARDBUSCF_DEV_DEFAULT &&
428 locators[CARDBUSCF_DEV] != sc->sc_device)
429 return (0);
430
431 /* inspect initial voltage */
432 if ((cdstatus = (*cf->cardbus_ctrl)(cc, CARDBUS_CD)) == 0) {
433 DPRINTF(("cardbusattach: no CardBus card on cb%d\n",
434 sc->sc_dev.dv_unit));
435 return (0);
436 }
437
438 /*
439 * XXX use fake function 8 to keep power on during whole
440 * configuration.
441 */
442 enable_function(sc, cdstatus, 8);
443 function = 0;
444
445 tag = cardbus_make_tag(cc, cf, sc->sc_bus, sc->sc_device, function);
446
447 /*
448 * Wait until power comes up. Maxmum 500 ms.
449 */
450 {
451 int i;
452
453 for (i = 0; i < 5; ++i) {
454 id = cardbus_conf_read(cc, cf, tag, CARDBUS_ID_REG);
455 if (id != 0xffffffff && id != 0) {
456 break;
457 }
458 if (cold) { /* before kernel thread invoked */
459 delay(100 * 1000);
460 } else { /* thread context */
461 if (tsleep((void *)sc, PCATCH, "cardbus",
462 hz / 10) != EWOULDBLOCK) {
463 break;
464 }
465 }
466 }
467 if (i == 5) {
468 return (EIO);
469 }
470 }
471
472 bhlc = cardbus_conf_read(cc, cf, tag, CARDBUS_BHLC_REG);
473 DPRINTF(("%s bhlc 0x%08x -> ", sc->sc_dev.dv_xname, bhlc));
474 nfunction = CARDBUS_HDRTYPE_MULTIFN(bhlc) ? 8 : 1;
475
476 for (function = 0; function < nfunction; function++) {
477 struct cardbus_attach_args ca;
478 int locs[CARDBUSCF_NLOCS];
479
480 if (locators[CARDBUSCF_FUNCTION] !=
481 CARDBUSCF_FUNCTION_DEFAULT &&
482 locators[CARDBUSCF_FUNCTION] != function)
483 continue;
484
485 if (sc->sc_funcs[function])
486 continue;
487
488 tag = cardbus_make_tag(cc, cf, sc->sc_bus, sc->sc_device,
489 function);
490
491 id = cardbus_conf_read(cc, cf, tag, CARDBUS_ID_REG);
492 class = cardbus_conf_read(cc, cf, tag, CARDBUS_CLASS_REG);
493 cis_ptr = cardbus_conf_read(cc, cf, tag, CARDBUS_CIS_REG);
494
495 /* Invalid vendor ID value? */
496 if (CARDBUS_VENDOR(id) == PCI_VENDOR_INVALID) {
497 continue;
498 }
499
500 DPRINTF(("cardbus_attach_card: "
501 "Vendor 0x%x, Product 0x%x, CIS 0x%x\n",
502 CARDBUS_VENDOR(id), CARDBUS_PRODUCT(id), cis_ptr));
503
504 enable_function(sc, cdstatus, function);
505
506 /* clean up every BAR */
507 cardbus_conf_write(cc, cf, tag, CARDBUS_BASE0_REG, 0);
508 cardbus_conf_write(cc, cf, tag, CARDBUS_BASE1_REG, 0);
509 cardbus_conf_write(cc, cf, tag, CARDBUS_BASE2_REG, 0);
510 cardbus_conf_write(cc, cf, tag, CARDBUS_BASE3_REG, 0);
511 cardbus_conf_write(cc, cf, tag, CARDBUS_BASE4_REG, 0);
512 cardbus_conf_write(cc, cf, tag, CARDBUS_BASE5_REG, 0);
513 cardbus_conf_write(cc, cf, tag, CARDBUS_ROM_REG, 0);
514
515 /* set initial latency and cacheline size */
516 bhlc = cardbus_conf_read(cc, cf, tag, CARDBUS_BHLC_REG);
517 DPRINTF(("%s func%d bhlc 0x%08x -> ", sc->sc_dev.dv_xname,
518 function, bhlc));
519 bhlc &= ~((CARDBUS_LATTIMER_MASK << CARDBUS_LATTIMER_SHIFT) |
520 (CARDBUS_CACHELINE_MASK << CARDBUS_CACHELINE_SHIFT));
521 bhlc |= (sc->sc_cacheline & CARDBUS_CACHELINE_MASK) <<
522 CARDBUS_CACHELINE_SHIFT;
523 bhlc |= (sc->sc_lattimer & CARDBUS_LATTIMER_MASK) <<
524 CARDBUS_LATTIMER_SHIFT;
525
526 cardbus_conf_write(cc, cf, tag, CARDBUS_BHLC_REG, bhlc);
527 bhlc = cardbus_conf_read(cc, cf, tag, CARDBUS_BHLC_REG);
528 DPRINTF(("0x%08x\n", bhlc));
529
530 if (CARDBUS_LATTIMER(bhlc) < 0x10) {
531 bhlc &= ~(CARDBUS_LATTIMER_MASK <<
532 CARDBUS_LATTIMER_SHIFT);
533 bhlc |= (0x10 << CARDBUS_LATTIMER_SHIFT);
534 cardbus_conf_write(cc, cf, tag,
535 CARDBUS_BHLC_REG, bhlc);
536 }
537
538 /*
539 * We need to allocate the ct here, since we might
540 * need it when reading the CIS
541 */
542 if ((ct = malloc(sizeof(struct cardbus_devfunc),
543 M_DEVBUF, M_NOWAIT)) == NULL) {
544 panic("no room for cardbus_tag");
545 }
546
547 ct->ct_cc = sc->sc_cc;
548 ct->ct_cf = sc->sc_cf;
549 ct->ct_bus = sc->sc_bus;
550 ct->ct_dev = sc->sc_device;
551 ct->ct_func = function;
552 ct->ct_sc = sc;
553 sc->sc_funcs[function] = ct;
554
555 memset(&ca, 0, sizeof(ca));
556
557 ca.ca_ct = ct;
558
559 ca.ca_iot = sc->sc_iot;
560 ca.ca_memt = sc->sc_memt;
561 ca.ca_dmat = sc->sc_dmat;
562
563 #if rbus
564 ca.ca_rbus_iot = sc->sc_rbus_iot;
565 ca.ca_rbus_memt= sc->sc_rbus_memt;
566 #endif
567
568 ca.ca_tag = tag;
569 ca.ca_bus = sc->sc_bus;
570 ca.ca_device = sc->sc_device; /* always 0 */
571 ca.ca_function = function;
572 ca.ca_id = id;
573 ca.ca_class = class;
574
575 ca.ca_intrline = sc->sc_intrline;
576
577 if (cis_ptr != 0) {
578 if (cardbus_read_tuples(&ca, cis_ptr,
579 tuple, sizeof(tuple))) {
580 printf("cardbus_attach_card: "
581 "failed to read CIS\n");
582 } else {
583 #ifdef CARDBUS_DEBUG
584 decode_tuples(tuple, sizeof(tuple),
585 print_tuple, NULL);
586 #endif
587 decode_tuples(tuple, sizeof(tuple),
588 parse_tuple, &ca.ca_cis);
589 }
590 }
591
592 locs[CARDBUSCF_DEV] = sc->sc_device; /* always 0 */
593 locs[CARDBUSCF_FUNCTION] = function;
594
595 if ((csc = config_found_sm_loc((void *)sc, "cardbus", locs,
596 &ca, cardbusprint, config_stdsubmatch)) == NULL) {
597 /* do not match */
598 disable_function(sc, function);
599 sc->sc_funcs[function] = NULL;
600 free(ct, M_DEVBUF);
601 } else {
602 /* found */
603 ct->ct_device = csc;
604 }
605 }
606 /*
607 * XXX power down pseudo function 8 (this will power down the card
608 * if no functions were attached).
609 */
610 disable_function(sc, 8);
611
612 return (0);
613 }
614
615 static int
616 cardbusprint(void *aux, const char *pnp)
617 {
618 struct cardbus_attach_args *ca = aux;
619 char devinfo[256];
620 int i;
621
622 if (pnp) {
623 pci_devinfo(ca->ca_id, ca->ca_class, 1, devinfo,
624 sizeof(devinfo));
625 for (i = 0; i < 4; i++) {
626 if (ca->ca_cis.cis1_info[i] == NULL)
627 break;
628 if (i)
629 aprint_normal(", ");
630 aprint_normal("%s", ca->ca_cis.cis1_info[i]);
631 }
632 aprint_verbose("%s(manufacturer 0x%x, product 0x%x)",
633 i ? " " : "",
634 ca->ca_cis.manufacturer, ca->ca_cis.product);
635 aprint_normal(" %s at %s", devinfo, pnp);
636 }
637 aprint_normal(" dev %d function %d", ca->ca_device, ca->ca_function);
638
639 return (UNCONF);
640 }
641
642 /*
643 * void cardbus_detach_card(struct cardbus_softc *sc)
644 *
645 * This function detaches the card on the slot: detach device data
646 * structure and turns off the power.
647 *
648 * This function must not be called under interrupt context.
649 */
650 void
651 cardbus_detach_card(struct cardbus_softc *sc)
652 {
653 int f;
654 struct cardbus_devfunc *ct;
655
656 for (f = 0; f < 8; f++) {
657 ct = sc->sc_funcs[f];
658 if (!ct)
659 continue;
660
661 DPRINTF(("%s: detaching %s\n", sc->sc_dev.dv_xname,
662 ct->ct_device->dv_xname));
663 /* call device detach function */
664
665 if (config_detach(ct->ct_device, 0) != 0) {
666 printf("%s: cannot detach dev %s, function %d\n",
667 sc->sc_dev.dv_xname, ct->ct_device->dv_xname,
668 ct->ct_func);
669 }
670 }
671
672 sc->sc_poweron_func = 0;
673 (*sc->sc_cf->cardbus_power)(sc->sc_cc,
674 CARDBUS_VCC_0V | CARDBUS_VPP_0V);
675 }
676
677 void
678 cardbus_childdetached(struct device *self, struct device *child)
679 {
680 struct cardbus_softc *sc = (struct cardbus_softc *)self;
681 struct cardbus_devfunc *ct;
682
683 ct = sc->sc_funcs[child->dv_locators[CARDBUSCF_FUNCTION]];
684 KASSERT(ct->ct_device == child);
685
686 sc->sc_poweron_func &= ~(1 << ct->ct_func);
687 sc->sc_funcs[ct->ct_func] = NULL;
688 free(ct, M_DEVBUF);
689 }
690
691 /*
692 * void *cardbus_intr_establish(cc, cf, irq, level, func, arg)
693 * Interrupt handler of pccard.
694 * args:
695 * cardbus_chipset_tag_t *cc
696 * int irq:
697 */
698 void *
699 cardbus_intr_establish(cardbus_chipset_tag_t cc, cardbus_function_tag_t cf,
700 cardbus_intr_handle_t irq, int level, int (*func)(void *), void *arg)
701 {
702
703 DPRINTF(("- cardbus_intr_establish: irq %d\n", irq));
704 return ((*cf->cardbus_intr_establish)(cc, irq, level, func, arg));
705 }
706
707 /*
708 * void cardbus_intr_disestablish(cc, cf, handler)
709 * Interrupt handler of pccard.
710 * args:
711 * cardbus_chipset_tag_t *cc
712 */
713 void
714 cardbus_intr_disestablish(cardbus_chipset_tag_t cc, cardbus_function_tag_t cf,
715 void *handler)
716 {
717
718 DPRINTF(("- pccard_intr_disestablish\n"));
719 (*cf->cardbus_intr_disestablish)(cc, handler);
720 }
721
722 /*
723 * XXX this should be merged with cardbus_function_{enable,disable},
724 * but we don't have a ct when these functions are called.
725 */
726 static void
727 enable_function(struct cardbus_softc *sc, int cdstatus, int function)
728 {
729
730 if (sc->sc_poweron_func == 0) {
731 /* switch to 3V and/or wait for power to stabilize */
732 if (cdstatus & CARDBUS_3V_CARD) {
733 /*
734 * sc_poweron_func must be substituted before
735 * entering sleep, in order to avoid turn on
736 * power twice.
737 */
738 sc->sc_poweron_func |= (1 << function);
739 (*sc->sc_cf->cardbus_power)(sc->sc_cc, CARDBUS_VCC_3V);
740 } else {
741 /* No cards other than 3.3V cards. */
742 return;
743 }
744 (*sc->sc_cf->cardbus_ctrl)(sc->sc_cc, CARDBUS_RESET);
745 }
746 sc->sc_poweron_func |= (1 << function);
747 }
748
749 static void
750 disable_function(struct cardbus_softc *sc, int function)
751 {
752
753 sc->sc_poweron_func &= ~(1 << function);
754 if (sc->sc_poweron_func == 0) {
755 /* power-off because no functions are enabled */
756 (*sc->sc_cf->cardbus_power)(sc->sc_cc, CARDBUS_VCC_0V);
757 }
758 }
759
760 /*
761 * int cardbus_function_enable(struct cardbus_softc *sc, int func)
762 *
763 * This function enables a function on a card. When no power is
764 * applied on the card, power will be applied on it.
765 */
766 int
767 cardbus_function_enable(struct cardbus_softc *sc, int func)
768 {
769 cardbus_chipset_tag_t cc = sc->sc_cc;
770 cardbus_function_tag_t cf = sc->sc_cf;
771 cardbusreg_t command;
772 cardbustag_t tag;
773
774 DPRINTF(("entering cardbus_function_enable... "));
775
776 /* entering critical area */
777
778 /* XXX: sc_vold should be used */
779 enable_function(sc, CARDBUS_3V_CARD, func);
780
781 /* exiting critical area */
782
783 tag = cardbus_make_tag(cc, cf, sc->sc_bus, sc->sc_device, func);
784
785 command = cardbus_conf_read(cc, cf, tag, CARDBUS_COMMAND_STATUS_REG);
786 command |= (CARDBUS_COMMAND_MEM_ENABLE | CARDBUS_COMMAND_IO_ENABLE |
787 CARDBUS_COMMAND_MASTER_ENABLE); /* XXX: good guess needed */
788
789 cardbus_conf_write(cc, cf, tag, CARDBUS_COMMAND_STATUS_REG, command);
790
791 cardbus_free_tag(cc, cf, tag);
792
793 DPRINTF(("%x\n", sc->sc_poweron_func));
794
795 return (0);
796 }
797
798 /*
799 * int cardbus_function_disable(struct cardbus_softc *, int func)
800 *
801 * This function disable a function on a card. When no functions are
802 * enabled, it turns off the power.
803 */
804 int
805 cardbus_function_disable(struct cardbus_softc *sc, int func)
806 {
807
808 DPRINTF(("entering cardbus_function_disable... "));
809
810 disable_function(sc, func);
811
812 return (0);
813 }
814
815 /*
816 * int cardbus_get_capability(cardbus_chipset_tag_t cc,
817 * cardbus_function_tag_t cf, cardbustag_t tag, int capid, int *offset,
818 * cardbusreg_t *value)
819 *
820 * Find the specified PCI capability.
821 */
822 int
823 cardbus_get_capability(cardbus_chipset_tag_t cc, cardbus_function_tag_t cf,
824 cardbustag_t tag, int capid, int *offset, cardbusreg_t *value)
825 {
826 cardbusreg_t reg;
827 unsigned int ofs;
828
829 reg = cardbus_conf_read(cc, cf, tag, PCI_COMMAND_STATUS_REG);
830 if (!(reg & PCI_STATUS_CAPLIST_SUPPORT))
831 return (0);
832
833 ofs = PCI_CAPLIST_PTR(cardbus_conf_read(cc, cf, tag,
834 PCI_CAPLISTPTR_REG));
835 while (ofs != 0) {
836 #ifdef DIAGNOSTIC
837 if ((ofs & 3) || (ofs < 0x40))
838 panic("cardbus_get_capability");
839 #endif
840 reg = cardbus_conf_read(cc, cf, tag, ofs);
841 if (PCI_CAPLIST_CAP(reg) == capid) {
842 if (offset)
843 *offset = ofs;
844 if (value)
845 *value = reg;
846 return (1);
847 }
848 ofs = PCI_CAPLIST_NEXT(reg);
849 }
850
851 return (0);
852 }
853
854 /*
855 * below this line, there are some functions for decoding tuples.
856 * They should go out from this file.
857 */
858
859 static u_int8_t *
860 decode_tuple(u_int8_t *, u_int8_t *, tuple_decode_func, void *);
861
862 static int
863 decode_tuples(u_int8_t *tuple, int buflen, tuple_decode_func func, void *data)
864 {
865 u_int8_t *tp = tuple;
866
867 if (PCMCIA_CISTPL_LINKTARGET != *tuple) {
868 DPRINTF(("WRONG TUPLE: 0x%x\n", *tuple));
869 return (0);
870 }
871
872 while ((tp = decode_tuple(tp, tuple + buflen, func, data)) != NULL)
873 ;
874
875 return (1);
876 }
877
878 static u_int8_t *
879 decode_tuple(u_int8_t *tuple, u_int8_t *end,
880 tuple_decode_func func, void *data)
881 {
882 u_int8_t type;
883 u_int8_t len;
884
885 type = tuple[0];
886 switch (type) {
887 case PCMCIA_CISTPL_NULL:
888 case PCMCIA_CISTPL_END:
889 len = 1;
890 break;
891 default:
892 if (tuple + 2 > end)
893 return (NULL);
894 len = tuple[1] + 2;
895 break;
896 }
897
898 if (tuple + len > end)
899 return (NULL);
900
901 (*func)(tuple, len, data);
902
903 if (type == PCMCIA_CISTPL_END || tuple + len == end)
904 return (NULL);
905
906 return (tuple + len);
907 }
908
909 /*
910 * XXX: this is another reason why this code should be shared with PCI.
911 */
912 int
913 cardbus_powerstate(cardbus_devfunc_t ct, pcitag_t tag, const int *newstate,
914 int *oldstate)
915 {
916 cardbus_chipset_tag_t cc = ct->ct_cc;
917 cardbus_function_tag_t cf = ct->ct_cf;
918
919 int offset;
920 pcireg_t value, cap, now;
921
922 if (!cardbus_get_capability(cc, cf, tag, PCI_CAP_PWRMGMT, &offset,
923 &value))
924 return EOPNOTSUPP;
925
926 cap = value >> 16;
927 value = cardbus_conf_read(cc, cf, tag, offset + PCI_PMCSR);
928 now = value & PCI_PMCSR_STATE_MASK;
929 value &= ~PCI_PMCSR_STATE_MASK;
930 if (oldstate) {
931 switch (now) {
932 case PCI_PMCSR_STATE_D0:
933 *oldstate = PCI_PWR_D0;
934 break;
935 case PCI_PMCSR_STATE_D1:
936 *oldstate = PCI_PWR_D1;
937 break;
938 case PCI_PMCSR_STATE_D2:
939 *oldstate = PCI_PWR_D2;
940 break;
941 case PCI_PMCSR_STATE_D3:
942 *oldstate = PCI_PWR_D3;
943 break;
944 default:
945 return EINVAL;
946 }
947 }
948 if (newstate == NULL)
949 return 0;
950 switch (*newstate) {
951 case PCI_PWR_D0:
952 if (now == PCI_PMCSR_STATE_D0)
953 return 0;
954 value |= PCI_PMCSR_STATE_D0;
955 break;
956 case PCI_PWR_D1:
957 if (now == PCI_PMCSR_STATE_D1)
958 return 0;
959 if (now == PCI_PMCSR_STATE_D2 || now == PCI_PMCSR_STATE_D3)
960 return EINVAL;
961 if (!(cap & PCI_PMCR_D1SUPP))
962 return EOPNOTSUPP;
963 value |= PCI_PMCSR_STATE_D1;
964 break;
965 case PCI_PWR_D2:
966 if (now == PCI_PMCSR_STATE_D2)
967 return 0;
968 if (now == PCI_PMCSR_STATE_D3)
969 return EINVAL;
970 if (!(cap & PCI_PMCR_D2SUPP))
971 return EOPNOTSUPP;
972 value |= PCI_PMCSR_STATE_D2;
973 break;
974 case PCI_PWR_D3:
975 if (now == PCI_PMCSR_STATE_D3)
976 return 0;
977 value |= PCI_PMCSR_STATE_D3;
978 break;
979 default:
980 return EINVAL;
981 }
982 cardbus_conf_write(cc, cf, tag, offset + PCI_PMCSR, value);
983 DELAY(1000);
984
985 return 0;
986 }
987
988 int
989 cardbus_setpowerstate(const char *dvname, cardbus_devfunc_t ct, pcitag_t tag,
990 int newpwr)
991 {
992 int oldpwr, error;
993
994 if ((error = cardbus_powerstate(ct, tag, &newpwr, &oldpwr)) != 0)
995 return error;
996
997 if (oldpwr == newpwr)
998 return 0;
999
1000 if (oldpwr > newpwr) {
1001 printf("%s: sleeping to power state D%d\n", dvname, oldpwr);
1002 return 0;
1003 }
1004
1005 /* oldpwr < newpwr */
1006 switch (oldpwr) {
1007 case PCI_PWR_D3:
1008 /*
1009 * XXX: This is because none of the devices do
1010 * the necessary song and dance for now to wakeup
1011 * Once this
1012 */
1013 printf("%s: cannot wake up from power state D%d\n",
1014 dvname, oldpwr);
1015 return EINVAL;
1016 default:
1017 printf("%s: waking up from power state D%d\n",
1018 dvname, oldpwr);
1019 return 0;
1020 }
1021 }
1022
1023
1024 #ifdef CARDBUS_DEBUG
1025 static const char *tuple_name(int);
1026 static const char *tuple_names[] = {
1027 "TPL_NULL", "TPL_DEVICE", "Reserved", "Reserved", /* 0-3 */
1028 "CONFIG_CB", "CFTABLE_ENTRY_CB", "Reserved", "BAR", /* 4-7 */
1029 "Reserved", "Reserved", "Reserved", "Reserved", /* 8-B */
1030 "Reserved", "Reserved", "Reserved", "Reserved", /* C-F */
1031 "CHECKSUM", "LONGLINK_A", "LONGLINK_C", "LINKTARGET", /* 10-13 */
1032 "NO_LINK", "VERS_1", "ALTSTR", "DEVICE_A",
1033 "JEDEC_C", "JEDEC_A", "CONFIG", "CFTABLE_ENTRY",
1034 "DEVICE_OC", "DEVICE_OA", "DEVICE_GEO", "DEVICE_GEO_A",
1035 "MANFID", "FUNCID", "FUNCE", "SWIL", /* 20-23 */
1036 "Reserved", "Reserved", "Reserved", "Reserved", /* 24-27 */
1037 "Reserved", "Reserved", "Reserved", "Reserved", /* 28-2B */
1038 "Reserved", "Reserved", "Reserved", "Reserved", /* 2C-2F */
1039 "Reserved", "Reserved", "Reserved", "Reserved", /* 30-33 */
1040 "Reserved", "Reserved", "Reserved", "Reserved", /* 34-37 */
1041 "Reserved", "Reserved", "Reserved", "Reserved", /* 38-3B */
1042 "Reserved", "Reserved", "Reserved", "Reserved", /* 3C-3F */
1043 "VERS_2", "FORMAT", "GEOMETRY", "BYTEORDER",
1044 "DATE", "BATTERY", "ORG"
1045 };
1046 #define NAME_LEN(x) (sizeof x / sizeof(x[0]))
1047
1048 static const char *
1049 tuple_name(int type)
1050 {
1051
1052 if (0 <= type && type < NAME_LEN(tuple_names)) {
1053 return (tuple_names[type]);
1054 } else if (type == 0xff) {
1055 return ("END");
1056 } else {
1057 return ("Reserved");
1058 }
1059 }
1060
1061 static void
1062 print_tuple(u_int8_t *tuple, int len, void *data)
1063 {
1064 int i;
1065
1066 printf("tuple: %s len %d\n", tuple_name(tuple[0]), len);
1067
1068 for (i = 0; i < len; ++i) {
1069 if (i % 16 == 0) {
1070 printf(" 0x%2x:", i);
1071 }
1072 printf(" %x", tuple[i]);
1073 if (i % 16 == 15) {
1074 printf("\n");
1075 }
1076 }
1077 if (i % 16 != 0) {
1078 printf("\n");
1079 }
1080 }
1081 #endif
1082