1 /*-
2 * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 *
4 * Copyright (c) 2000-2001 Jonathan Chen All rights reserved.
5 * Copyright (c) 2002-2004 M. Warner Losh <[email protected]>
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 */
29
30 /*-
31 * Copyright (c) 1998, 1999 and 2000
32 * HAYAKAWA Koichi. All rights reserved.
33 *
34 * Redistribution and use in source and binary forms, with or without
35 * modification, are permitted provided that the following conditions
36 * are met:
37 * 1. Redistributions of source code must retain the above copyright
38 * notice, this list of conditions and the following disclaimer.
39 * 2. Redistributions in binary form must reproduce the above copyright
40 * notice, this list of conditions and the following disclaimer in the
41 * documentation and/or other materials provided with the distribution.
42 * 3. All advertising materials mentioning features or use of this software
43 * must display the following acknowledgement:
44 * This product includes software developed by HAYAKAWA Koichi.
45 * 4. The name of the author may not be used to endorse or promote products
46 * derived from this software without specific prior written permission.
47 *
48 * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
49 * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
50 * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
51 * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
52 * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
53 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
54 * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
55 * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
56 * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
57 * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
58 */
59
60 /*
61 * Driver for PCI to CardBus Bridge chips
62 *
63 * References:
64 * TI Datasheets:
65 * http://www-s.ti.com/cgi-bin/sc/generic2.cgi?family=PCI+CARDBUS+CONTROLLERS
66 *
67 * Written by Jonathan Chen <[email protected]>
68 * The author would like to acknowledge:
69 * * HAYAKAWA Koichi: Author of the NetBSD code for the same thing
70 * * Warner Losh: Newbus/newcard guru and author of the pccard side of things
71 * * YAMAMOTO Shigeru: Author of another FreeBSD cardbus driver
72 * * David Cross: Author of the initial ugly hack for a specific cardbus card
73 */
74
75 #include <sys/cdefs.h>
76 __FBSDID("$FreeBSD$");
77
78 #include <sys/param.h>
79 #include <sys/bus.h>
80 #include <sys/condvar.h>
81 #include <sys/errno.h>
82 #include <sys/kernel.h>
83 #include <sys/module.h>
84 #include <sys/kthread.h>
85 #include <sys/lock.h>
86 #include <sys/malloc.h>
87 #include <sys/mutex.h>
88 #include <sys/proc.h>
89 #include <sys/rman.h>
90 #include <sys/sysctl.h>
91 #include <sys/systm.h>
92 #include <machine/bus.h>
93 #include <machine/resource.h>
94
95 #include <dev/pci/pcireg.h>
96 #include <dev/pci/pcivar.h>
97 #include <dev/pci/pcib_private.h>
98
99 #include <dev/pccard/pccardreg.h>
100 #include <dev/pccard/pccardvar.h>
101
102 #include <dev/exca/excareg.h>
103 #include <dev/exca/excavar.h>
104
105 #include <dev/pccbb/pccbbreg.h>
106 #include <dev/pccbb/pccbbvar.h>
107
108 #include "power_if.h"
109 #include "card_if.h"
110 #include "pcib_if.h"
111
112 #define DPRINTF(x) do { if (cbb_debug) printf x; } while (0)
113 #define DEVPRINTF(x) do { if (cbb_debug) device_printf x; } while (0)
114
115 #define PCI_MASK_CONFIG(DEV,REG,MASK,SIZE) \
116 pci_write_config(DEV, REG, pci_read_config(DEV, REG, SIZE) MASK, SIZE)
117 #define PCI_MASK2_CONFIG(DEV,REG,MASK1,MASK2,SIZE) \
118 pci_write_config(DEV, REG, ( \
119 pci_read_config(DEV, REG, SIZE) MASK1) MASK2, SIZE)
120
121 #define CBB_CARD_PRESENT(s) ((s & CBB_STATE_CD) == 0)
122
123 #define CBB_START_MEM 0x88000000
124 #define CBB_START_32_IO 0x1000
125 #define CBB_START_16_IO 0x100
126
127 devclass_t cbb_devclass;
128
129 /* sysctl vars */
130 static SYSCTL_NODE(_hw, OID_AUTO, cbb, CTLFLAG_RD | CTLFLAG_MPSAFE, 0,
131 "CBB parameters");
132
133 /* There's no way to say TUNEABLE_LONG to get the right types */
134 u_long cbb_start_mem = CBB_START_MEM;
135 SYSCTL_ULONG(_hw_cbb, OID_AUTO, start_memory, CTLFLAG_RWTUN,
136 &cbb_start_mem, CBB_START_MEM,
137 "Starting address for memory allocations");
138
139 u_long cbb_start_16_io = CBB_START_16_IO;
140 SYSCTL_ULONG(_hw_cbb, OID_AUTO, start_16_io, CTLFLAG_RWTUN,
141 &cbb_start_16_io, CBB_START_16_IO,
142 "Starting ioport for 16-bit cards");
143
144 u_long cbb_start_32_io = CBB_START_32_IO;
145 SYSCTL_ULONG(_hw_cbb, OID_AUTO, start_32_io, CTLFLAG_RWTUN,
146 &cbb_start_32_io, CBB_START_32_IO,
147 "Starting ioport for 32-bit cards");
148
149 int cbb_debug = 0;
150 SYSCTL_INT(_hw_cbb, OID_AUTO, debug, CTLFLAG_RWTUN, &cbb_debug, 0,
151 "Verbose cardbus bridge debugging");
152
153 static void cbb_insert(struct cbb_softc *sc);
154 static void cbb_removal(struct cbb_softc *sc);
155 static uint32_t cbb_detect_voltage(device_t brdev);
156 static int cbb_cardbus_reset_power(device_t brdev, device_t child, int on);
157 static int cbb_cardbus_io_open(device_t brdev, int win, uint32_t start,
158 uint32_t end);
159 static int cbb_cardbus_mem_open(device_t brdev, int win,
160 uint32_t start, uint32_t end);
161 static void cbb_cardbus_auto_open(struct cbb_softc *sc, int type);
162 static int cbb_cardbus_activate_resource(device_t brdev, device_t child,
163 int type, int rid, struct resource *res);
164 static int cbb_cardbus_deactivate_resource(device_t brdev,
165 device_t child, int type, int rid, struct resource *res);
166 static struct resource *cbb_cardbus_alloc_resource(device_t brdev,
167 device_t child, int type, int *rid, rman_res_t start,
168 rman_res_t end, rman_res_t count, u_int flags);
169 static int cbb_cardbus_release_resource(device_t brdev, device_t child,
170 int type, int rid, struct resource *res);
171 static int cbb_cardbus_power_enable_socket(device_t brdev,
172 device_t child);
173 static int cbb_cardbus_power_disable_socket(device_t brdev,
174 device_t child);
175 static int cbb_func_filt(void *arg);
176 static void cbb_func_intr(void *arg);
177
178 static void
cbb_remove_res(struct cbb_softc * sc,struct resource * res)179 cbb_remove_res(struct cbb_softc *sc, struct resource *res)
180 {
181 struct cbb_reslist *rle;
182
183 SLIST_FOREACH(rle, &sc->rl, link) {
184 if (rle->res == res) {
185 SLIST_REMOVE(&sc->rl, rle, cbb_reslist, link);
186 free(rle, M_DEVBUF);
187 return;
188 }
189 }
190 }
191
192 static struct resource *
cbb_find_res(struct cbb_softc * sc,int type,int rid)193 cbb_find_res(struct cbb_softc *sc, int type, int rid)
194 {
195 struct cbb_reslist *rle;
196
197 SLIST_FOREACH(rle, &sc->rl, link)
198 if (SYS_RES_MEMORY == rle->type && rid == rle->rid)
199 return (rle->res);
200 return (NULL);
201 }
202
203 static void
cbb_insert_res(struct cbb_softc * sc,struct resource * res,int type,int rid)204 cbb_insert_res(struct cbb_softc *sc, struct resource *res, int type,
205 int rid)
206 {
207 struct cbb_reslist *rle;
208
209 /*
210 * Need to record allocated resource so we can iterate through
211 * it later.
212 */
213 rle = malloc(sizeof(struct cbb_reslist), M_DEVBUF, M_NOWAIT);
214 if (rle == NULL)
215 panic("cbb_cardbus_alloc_resource: can't record entry!");
216 rle->res = res;
217 rle->type = type;
218 rle->rid = rid;
219 SLIST_INSERT_HEAD(&sc->rl, rle, link);
220 }
221
222 static void
cbb_destroy_res(struct cbb_softc * sc)223 cbb_destroy_res(struct cbb_softc *sc)
224 {
225 struct cbb_reslist *rle;
226
227 while ((rle = SLIST_FIRST(&sc->rl)) != NULL) {
228 device_printf(sc->dev, "Danger Will Robinson: Resource "
229 "left allocated! This is a bug... "
230 "(rid=%x, type=%d, addr=%jx)\n", rle->rid, rle->type,
231 rman_get_start(rle->res));
232 SLIST_REMOVE_HEAD(&sc->rl, link);
233 free(rle, M_DEVBUF);
234 }
235 }
236
237 /*
238 * Disable function interrupts by telling the bridge to generate IRQ1
239 * interrupts. These interrupts aren't really generated by the chip, since
240 * IRQ1 is reserved. Some chipsets assert INTA# inappropriately during
241 * initialization, so this helps to work around the problem.
242 *
243 * XXX We can't do this workaround for all chipsets, because this
244 * XXX causes interference with the keyboard because somechipsets will
245 * XXX actually signal IRQ1 over their serial interrupt connections to
246 * XXX the south bridge. Disable it it for now.
247 */
248 void
cbb_disable_func_intr(struct cbb_softc * sc)249 cbb_disable_func_intr(struct cbb_softc *sc)
250 {
251 #if 0
252 uint8_t reg;
253
254 reg = (exca_getb(&sc->exca, EXCA_INTR) & ~EXCA_INTR_IRQ_MASK) |
255 EXCA_INTR_IRQ_RESERVED1;
256 exca_putb(&sc->exca, EXCA_INTR, reg);
257 #endif
258 }
259
260 /*
261 * Enable function interrupts. We turn on function interrupts when the card
262 * requests an interrupt. The PCMCIA standard says that we should set
263 * the lower 4 bits to 0 to route via PCI. Note: we call this for both
264 * CardBus and R2 (PC Card) cases, but it should have no effect on CardBus
265 * cards.
266 */
267 static void
cbb_enable_func_intr(struct cbb_softc * sc)268 cbb_enable_func_intr(struct cbb_softc *sc)
269 {
270 uint8_t reg;
271
272 reg = (exca_getb(&sc->exca, EXCA_INTR) & ~EXCA_INTR_IRQ_MASK) |
273 EXCA_INTR_IRQ_NONE;
274 PCI_MASK_CONFIG(sc->dev, CBBR_BRIDGECTRL,
275 & ~CBBM_BRIDGECTRL_INTR_IREQ_ISA_EN, 2);
276 exca_putb(&sc->exca, EXCA_INTR, reg);
277 }
278
279 int
cbb_detach(device_t brdev)280 cbb_detach(device_t brdev)
281 {
282 struct cbb_softc *sc = device_get_softc(brdev);
283 device_t *devlist;
284 int tmp, tries, error, numdevs;
285
286 /*
287 * Before we delete the children (which we have to do because
288 * attach doesn't check for children busses correctly), we have
289 * to detach the children. Even if we didn't need to delete the
290 * children, we have to detach them.
291 */
292 error = bus_generic_detach(brdev);
293 if (error != 0)
294 return (error);
295
296 /*
297 * Since the attach routine doesn't search for children before it
298 * attaches them to this device, we must delete them here in order
299 * for the kldload/unload case to work. If we failed to do that, then
300 * we'd get duplicate devices when cbb.ko was reloaded.
301 */
302 tries = 10;
303 do {
304 error = device_get_children(brdev, &devlist, &numdevs);
305 if (error == 0)
306 break;
307 /*
308 * Try hard to cope with low memory.
309 */
310 if (error == ENOMEM) {
311 pause("cbbnomem", 1);
312 continue;
313 }
314 } while (tries-- > 0);
315 for (tmp = 0; tmp < numdevs; tmp++)
316 device_delete_child(brdev, devlist[tmp]);
317 free(devlist, M_TEMP);
318
319 /* Turn off the interrupts */
320 cbb_set(sc, CBB_SOCKET_MASK, 0);
321
322 /* reset 16-bit pcmcia bus */
323 exca_clrb(&sc->exca, EXCA_INTR, EXCA_INTR_RESET);
324
325 /* turn off power */
326 cbb_power(brdev, CARD_OFF);
327
328 /* Ack the interrupt */
329 cbb_set(sc, CBB_SOCKET_EVENT, 0xffffffff);
330
331 /*
332 * Wait for the thread to die. kproc_exit will do a wakeup
333 * on the event thread's struct proc * so that we know it is
334 * safe to proceed. IF the thread is running, set the please
335 * die flag and wait for it to comply. Since the wakeup on
336 * the event thread happens only in kproc_exit, we don't
337 * need to loop here.
338 */
339 bus_teardown_intr(brdev, sc->irq_res, sc->intrhand);
340 mtx_lock(&sc->mtx);
341 sc->flags |= CBB_KTHREAD_DONE;
342 while (sc->flags & CBB_KTHREAD_RUNNING) {
343 DEVPRINTF((sc->dev, "Waiting for thread to die\n"));
344 wakeup(&sc->intrhand);
345 msleep(sc->event_thread, &sc->mtx, PWAIT, "cbbun", 0);
346 }
347 mtx_unlock(&sc->mtx);
348
349 bus_release_resource(brdev, SYS_RES_IRQ, 0, sc->irq_res);
350 bus_release_resource(brdev, SYS_RES_MEMORY, CBBR_SOCKBASE,
351 sc->base_res);
352 mtx_destroy(&sc->mtx);
353 return (0);
354 }
355
356 int
cbb_setup_intr(device_t dev,device_t child,struct resource * irq,int flags,driver_filter_t * filt,driver_intr_t * intr,void * arg,void ** cookiep)357 cbb_setup_intr(device_t dev, device_t child, struct resource *irq,
358 int flags, driver_filter_t *filt, driver_intr_t *intr, void *arg,
359 void **cookiep)
360 {
361 struct cbb_intrhand *ih;
362 struct cbb_softc *sc = device_get_softc(dev);
363 int err;
364
365 if (filt == NULL && intr == NULL)
366 return (EINVAL);
367 ih = malloc(sizeof(struct cbb_intrhand), M_DEVBUF, M_NOWAIT);
368 if (ih == NULL)
369 return (ENOMEM);
370 *cookiep = ih;
371 ih->filt = filt;
372 ih->intr = intr;
373 ih->arg = arg;
374 ih->sc = sc;
375 /*
376 * XXX need to turn on ISA interrupts, if we ever support them, but
377 * XXX for now that's all we need to do.
378 */
379 err = BUS_SETUP_INTR(device_get_parent(dev), child, irq, flags,
380 filt ? cbb_func_filt : NULL, intr ? cbb_func_intr : NULL, ih,
381 &ih->cookie);
382 if (err != 0) {
383 free(ih, M_DEVBUF);
384 return (err);
385 }
386 cbb_enable_func_intr(sc);
387 sc->cardok = 1;
388 return 0;
389 }
390
391 int
cbb_teardown_intr(device_t dev,device_t child,struct resource * irq,void * cookie)392 cbb_teardown_intr(device_t dev, device_t child, struct resource *irq,
393 void *cookie)
394 {
395 struct cbb_intrhand *ih;
396 int err;
397
398 /* XXX Need to do different things for ISA interrupts. */
399 ih = (struct cbb_intrhand *) cookie;
400 err = BUS_TEARDOWN_INTR(device_get_parent(dev), child, irq,
401 ih->cookie);
402 if (err != 0)
403 return (err);
404 free(ih, M_DEVBUF);
405 return (0);
406 }
407
408 void
cbb_driver_added(device_t brdev,driver_t * driver)409 cbb_driver_added(device_t brdev, driver_t *driver)
410 {
411 struct cbb_softc *sc = device_get_softc(brdev);
412 device_t *devlist;
413 device_t dev;
414 int tmp;
415 int numdevs;
416 int wake = 0;
417
418 DEVICE_IDENTIFY(driver, brdev);
419 tmp = device_get_children(brdev, &devlist, &numdevs);
420 if (tmp != 0) {
421 device_printf(brdev, "Cannot get children list, no reprobe\n");
422 return;
423 }
424 for (tmp = 0; tmp < numdevs; tmp++) {
425 dev = devlist[tmp];
426 if (device_get_state(dev) == DS_NOTPRESENT &&
427 device_probe_and_attach(dev) == 0)
428 wake++;
429 }
430 free(devlist, M_TEMP);
431
432 if (wake > 0)
433 wakeup(&sc->intrhand);
434 }
435
436 void
cbb_child_detached(device_t brdev,device_t child)437 cbb_child_detached(device_t brdev, device_t child)
438 {
439 struct cbb_softc *sc = device_get_softc(brdev);
440
441 /* I'm not sure we even need this */
442 if (child != sc->cbdev && child != sc->exca.pccarddev)
443 device_printf(brdev, "Unknown child detached: %s\n",
444 device_get_nameunit(child));
445 }
446
447 /************************************************************************/
448 /* Kthreads */
449 /************************************************************************/
450
451 void
cbb_event_thread(void * arg)452 cbb_event_thread(void *arg)
453 {
454 struct cbb_softc *sc = arg;
455 uint32_t status;
456 int err;
457 int not_a_card = 0;
458
459 /*
460 * We need to act as a power sequencer on startup. Delay 2s/channel
461 * to ensure the other channels have had a chance to come up. We likely
462 * should add a lock that's shared on a per-slot basis so that only
463 * one power event can happen per slot at a time.
464 */
465 pause("cbbstart", hz * device_get_unit(sc->dev) * 2);
466 mtx_lock(&sc->mtx);
467 sc->flags |= CBB_KTHREAD_RUNNING;
468 while ((sc->flags & CBB_KTHREAD_DONE) == 0) {
469 mtx_unlock(&sc->mtx);
470 status = cbb_get(sc, CBB_SOCKET_STATE);
471 DPRINTF(("Status is 0x%x\n", status));
472 if (!CBB_CARD_PRESENT(status)) {
473 not_a_card = 0; /* We know card type */
474 cbb_removal(sc);
475 } else if (status & CBB_STATE_NOT_A_CARD) {
476 /*
477 * Up to 10 times, try to rescan the card when we see
478 * NOT_A_CARD. 10 is somehwat arbitrary. When this
479 * pathology hits, there's a ~40% chance each try will
480 * fail. 10 tries takes about 5s and results in a
481 * 99.99% certainty of the results.
482 */
483 if (not_a_card++ < 10) {
484 DEVPRINTF((sc->dev,
485 "Not a card bit set, rescanning\n"));
486 cbb_setb(sc, CBB_SOCKET_FORCE, CBB_FORCE_CV_TEST);
487 } else {
488 device_printf(sc->dev,
489 "Can't determine card type\n");
490 }
491 } else {
492 not_a_card = 0; /* We know card type */
493 cbb_insert(sc);
494 }
495
496 /*
497 * First time through we need to tell mountroot that we're
498 * done.
499 */
500 if (sc->sc_root_token) {
501 root_mount_rel(sc->sc_root_token);
502 sc->sc_root_token = NULL;
503 }
504
505 /*
506 * Wait until it has been 250ms since the last time we
507 * get an interrupt. We handle the rest of the interrupt
508 * at the top of the loop. Although we clear the bit in the
509 * ISR, we signal sc->cv from the detach path after we've
510 * set the CBB_KTHREAD_DONE bit, so we can't do a simple
511 * 250ms sleep here.
512 *
513 * In our ISR, we turn off the card changed interrupt. Turn
514 * them back on here before we wait for them to happen. We
515 * turn them on/off so that we can tolerate a large latency
516 * between the time we signal cbb_event_thread and it gets
517 * a chance to run.
518 */
519 mtx_lock(&sc->mtx);
520 cbb_setb(sc, CBB_SOCKET_MASK, CBB_SOCKET_MASK_CD | CBB_SOCKET_MASK_CSTS);
521 msleep(&sc->intrhand, &sc->mtx, 0, "-", 0);
522 err = 0;
523 while (err != EWOULDBLOCK &&
524 (sc->flags & CBB_KTHREAD_DONE) == 0)
525 err = msleep(&sc->intrhand, &sc->mtx, 0, "-", hz / 5);
526 }
527 DEVPRINTF((sc->dev, "Thread terminating\n"));
528 sc->flags &= ~CBB_KTHREAD_RUNNING;
529 mtx_unlock(&sc->mtx);
530 kproc_exit(0);
531 }
532
533 /************************************************************************/
534 /* Insert/removal */
535 /************************************************************************/
536
537 static void
cbb_insert(struct cbb_softc * sc)538 cbb_insert(struct cbb_softc *sc)
539 {
540 uint32_t sockevent, sockstate;
541
542 sockevent = cbb_get(sc, CBB_SOCKET_EVENT);
543 sockstate = cbb_get(sc, CBB_SOCKET_STATE);
544
545 DEVPRINTF((sc->dev, "card inserted: event=0x%08x, state=%08x\n",
546 sockevent, sockstate));
547
548 if (sockstate & CBB_STATE_R2_CARD) {
549 if (device_is_attached(sc->exca.pccarddev)) {
550 sc->flags |= CBB_16BIT_CARD;
551 exca_insert(&sc->exca);
552 } else {
553 device_printf(sc->dev,
554 "16-bit card inserted, but no pccard bus.\n");
555 }
556 } else if (sockstate & CBB_STATE_CB_CARD) {
557 if (device_is_attached(sc->cbdev)) {
558 sc->flags &= ~CBB_16BIT_CARD;
559 CARD_ATTACH_CARD(sc->cbdev);
560 } else {
561 device_printf(sc->dev,
562 "CardBus card inserted, but no cardbus bus.\n");
563 }
564 } else {
565 /*
566 * We should power the card down, and try again a couple of
567 * times if this happens. XXX
568 */
569 device_printf(sc->dev, "Unsupported card type detected\n");
570 }
571 }
572
573 static void
cbb_removal(struct cbb_softc * sc)574 cbb_removal(struct cbb_softc *sc)
575 {
576 sc->cardok = 0;
577 if (sc->flags & CBB_16BIT_CARD) {
578 exca_removal(&sc->exca);
579 } else {
580 if (device_is_attached(sc->cbdev))
581 CARD_DETACH_CARD(sc->cbdev);
582 }
583 cbb_destroy_res(sc);
584 }
585
586 /************************************************************************/
587 /* Interrupt Handler */
588 /************************************************************************/
589
590 static int
cbb_func_filt(void * arg)591 cbb_func_filt(void *arg)
592 {
593 struct cbb_intrhand *ih = (struct cbb_intrhand *)arg;
594 struct cbb_softc *sc = ih->sc;
595
596 /*
597 * Make sure that the card is really there.
598 */
599 if (!sc->cardok)
600 return (FILTER_STRAY);
601 if (!CBB_CARD_PRESENT(cbb_get(sc, CBB_SOCKET_STATE))) {
602 sc->cardok = 0;
603 return (FILTER_HANDLED);
604 }
605
606 return ((*ih->filt)(ih->arg));
607 }
608
609 static void
cbb_func_intr(void * arg)610 cbb_func_intr(void *arg)
611 {
612 struct cbb_intrhand *ih = (struct cbb_intrhand *)arg;
613 struct cbb_softc *sc = ih->sc;
614
615 /*
616 * While this check may seem redundant, it helps close a race
617 * condition. If the card is ejected after the filter runs, but
618 * before this ISR can be scheduled, then we need to do the same
619 * filtering to prevent the card's ISR from being called. One could
620 * argue that the card's ISR should be able to cope, but experience
621 * has shown they can't always. This mitigates the problem by making
622 * the race quite a bit smaller. Properly written client ISRs should
623 * cope with the card going away in the middle of the ISR. We assume
624 * that drivers that are sophisticated enough to use filters don't
625 * need our protection. This also allows us to ensure they *ARE*
626 * called if their filter said they needed to be called.
627 */
628 if (ih->filt == NULL) {
629 if (!sc->cardok)
630 return;
631 if (!CBB_CARD_PRESENT(cbb_get(sc, CBB_SOCKET_STATE))) {
632 sc->cardok = 0;
633 return;
634 }
635 }
636
637 ih->intr(ih->arg);
638 }
639
640 /************************************************************************/
641 /* Generic Power functions */
642 /************************************************************************/
643
644 static uint32_t
cbb_detect_voltage(device_t brdev)645 cbb_detect_voltage(device_t brdev)
646 {
647 struct cbb_softc *sc = device_get_softc(brdev);
648 uint32_t psr;
649 uint32_t vol = CARD_UKN_CARD;
650
651 psr = cbb_get(sc, CBB_SOCKET_STATE);
652
653 if (psr & CBB_STATE_5VCARD && psr & CBB_STATE_5VSOCK)
654 vol |= CARD_5V_CARD;
655 if (psr & CBB_STATE_3VCARD && psr & CBB_STATE_3VSOCK)
656 vol |= CARD_3V_CARD;
657 if (psr & CBB_STATE_XVCARD && psr & CBB_STATE_XVSOCK)
658 vol |= CARD_XV_CARD;
659 if (psr & CBB_STATE_YVCARD && psr & CBB_STATE_YVSOCK)
660 vol |= CARD_YV_CARD;
661
662 return (vol);
663 }
664
665 static uint8_t
cbb_o2micro_power_hack(struct cbb_softc * sc)666 cbb_o2micro_power_hack(struct cbb_softc *sc)
667 {
668 uint8_t reg;
669
670 /*
671 * Issue #2: INT# not qualified with IRQ Routing Bit. An
672 * unexpected PCI INT# may be generated during PC Card
673 * initialization even with the IRQ Routing Bit Set with some
674 * PC Cards.
675 *
676 * This is a two part issue. The first part is that some of
677 * our older controllers have an issue in which the slot's PCI
678 * INT# is NOT qualified by the IRQ routing bit (PCI reg. 3Eh
679 * bit 7). Regardless of the IRQ routing bit, if NO ISA IRQ
680 * is selected (ExCA register 03h bits 3:0, of the slot, are
681 * cleared) we will generate INT# if IREQ# is asserted. The
682 * second part is because some PC Cards prematurally assert
683 * IREQ# before the ExCA registers are fully programmed. This
684 * in turn asserts INT# because ExCA register 03h bits 3:0
685 * (ISA IRQ Select) are not yet programmed.
686 *
687 * The fix for this issue, which will work for any controller
688 * (old or new), is to set ExCA register 03h bits 3:0 = 0001b
689 * (select IRQ1), of the slot, before turning on slot power.
690 * Selecting IRQ1 will result in INT# NOT being asserted
691 * (because IRQ1 is selected), and IRQ1 won't be asserted
692 * because our controllers don't generate IRQ1.
693 *
694 * Other, non O2Micro controllers will generate irq 1 in some
695 * situations, so we can't do this hack for everybody. Reports of
696 * keyboard controller's interrupts being suppressed occurred when
697 * we did this.
698 */
699 reg = exca_getb(&sc->exca, EXCA_INTR);
700 exca_putb(&sc->exca, EXCA_INTR, (reg & 0xf0) | 1);
701 return (reg);
702 }
703
704 /*
705 * Restore the damage that cbb_o2micro_power_hack does to EXCA_INTR so
706 * we don't have an interrupt storm on power on. This has the effect of
707 * disabling card status change interrupts for the duration of poweron.
708 */
709 static void
cbb_o2micro_power_hack2(struct cbb_softc * sc,uint8_t reg)710 cbb_o2micro_power_hack2(struct cbb_softc *sc, uint8_t reg)
711 {
712 exca_putb(&sc->exca, EXCA_INTR, reg);
713 }
714
715 int
cbb_power(device_t brdev,int volts)716 cbb_power(device_t brdev, int volts)
717 {
718 uint32_t status, sock_ctrl, reg_ctrl, mask;
719 struct cbb_softc *sc = device_get_softc(brdev);
720 int cnt, sane;
721 int retval = 0;
722 int on = 0;
723 uint8_t reg = 0;
724
725 sock_ctrl = cbb_get(sc, CBB_SOCKET_CONTROL);
726
727 sock_ctrl &= ~CBB_SOCKET_CTRL_VCCMASK;
728 switch (volts & CARD_VCCMASK) {
729 case 5:
730 sock_ctrl |= CBB_SOCKET_CTRL_VCC_5V;
731 on++;
732 break;
733 case 3:
734 sock_ctrl |= CBB_SOCKET_CTRL_VCC_3V;
735 on++;
736 break;
737 case XV:
738 sock_ctrl |= CBB_SOCKET_CTRL_VCC_XV;
739 on++;
740 break;
741 case YV:
742 sock_ctrl |= CBB_SOCKET_CTRL_VCC_YV;
743 on++;
744 break;
745 case 0:
746 break;
747 default:
748 return (0); /* power NEVER changed */
749 }
750
751 /* VPP == VCC */
752 sock_ctrl &= ~CBB_SOCKET_CTRL_VPPMASK;
753 sock_ctrl |= ((sock_ctrl >> 4) & 0x07);
754
755 if (cbb_get(sc, CBB_SOCKET_CONTROL) == sock_ctrl)
756 return (1); /* no change necessary */
757 DEVPRINTF((sc->dev, "cbb_power: %dV\n", volts));
758 if (volts != 0 && sc->chipset == CB_O2MICRO)
759 reg = cbb_o2micro_power_hack(sc);
760
761 /*
762 * We have to mask the card change detect interrupt while we're
763 * messing with the power. It is allowed to bounce while we're
764 * messing with power as things settle down. In addition, we mask off
765 * the card's function interrupt by routing it via the ISA bus. This
766 * bit generally only affects 16-bit cards. Some bridges allow one to
767 * set another bit to have it also affect 32-bit cards. Since 32-bit
768 * cards are required to be better behaved, we don't bother to get
769 * into those bridge specific features.
770 *
771 * XXX I wonder if we need to enable the READY bit interrupt in the
772 * EXCA CSC register for 16-bit cards, and disable the CD bit?
773 */
774 mask = cbb_get(sc, CBB_SOCKET_MASK);
775 mask |= CBB_SOCKET_MASK_POWER;
776 mask &= ~CBB_SOCKET_MASK_CD;
777 cbb_set(sc, CBB_SOCKET_MASK, mask);
778 PCI_MASK_CONFIG(brdev, CBBR_BRIDGECTRL,
779 |CBBM_BRIDGECTRL_INTR_IREQ_ISA_EN, 2);
780 cbb_set(sc, CBB_SOCKET_CONTROL, sock_ctrl);
781 if (on) {
782 mtx_lock(&sc->mtx);
783 cnt = sc->powerintr;
784 /*
785 * We have a shortish timeout of 500ms here. Some bridges do
786 * not generate a POWER_CYCLE event for 16-bit cards. In
787 * those cases, we have to cope the best we can, and having
788 * only a short delay is better than the alternatives. Others
789 * raise the power cycle a smidge before it is really ready.
790 * We deal with those below.
791 */
792 sane = 10;
793 while (!(cbb_get(sc, CBB_SOCKET_STATE) & CBB_STATE_POWER_CYCLE) &&
794 cnt == sc->powerintr && sane-- > 0)
795 msleep(&sc->powerintr, &sc->mtx, 0, "-", hz / 20);
796 mtx_unlock(&sc->mtx);
797
798 /*
799 * Relax for 100ms. Some bridges appear to assert this signal
800 * right away, but before the card has stabilized. Other
801 * cards need need more time to cope up reliabily.
802 * Experiments with troublesome setups show this to be a
803 * "cheap" way to enhance reliabilty. We need not do this for
804 * "off" since we don't touch the card after we turn it off.
805 */
806 pause("cbbPwr", min(hz / 10, 1));
807
808 /*
809 * The TOPIC95B requires a little bit extra time to get its
810 * act together, so delay for an additional 100ms. Also as
811 * documented below, it doesn't seem to set the POWER_CYCLE
812 * bit, so don't whine if it never came on.
813 */
814 if (sc->chipset == CB_TOPIC95)
815 pause("cbb95B", hz / 10);
816 else if (sane <= 0)
817 device_printf(sc->dev, "power timeout, doom?\n");
818 }
819
820 /*
821 * After the power is good, we can turn off the power interrupt.
822 * However, the PC Card standard says that we must delay turning the
823 * CD bit back on for a bit to allow for bouncyness on power down
824 * (recall that we don't wait above for a power down, since we don't
825 * get an interrupt for that). We're called either from the suspend
826 * code in which case we don't want to turn card change on again, or
827 * we're called from the card insertion code, in which case the cbb
828 * thread will turn it on for us before it waits to be woken by a
829 * change event.
830 *
831 * NB: Topic95B doesn't set the power cycle bit. we assume that
832 * both it and the TOPIC95 behave the same.
833 */
834 cbb_clrb(sc, CBB_SOCKET_MASK, CBB_SOCKET_MASK_POWER);
835 status = cbb_get(sc, CBB_SOCKET_STATE);
836 if (on && sc->chipset != CB_TOPIC95) {
837 if ((status & CBB_STATE_POWER_CYCLE) == 0)
838 device_printf(sc->dev, "Power not on?\n");
839 }
840 if (status & CBB_STATE_BAD_VCC_REQ) {
841 device_printf(sc->dev, "Bad Vcc requested\n");
842 /*
843 * Turn off the power, and try again. Retrigger other
844 * active interrupts via force register. From NetBSD
845 * PR 36652, coded by me to description there.
846 */
847 sock_ctrl &= ~CBB_SOCKET_CTRL_VCCMASK;
848 sock_ctrl &= ~CBB_SOCKET_CTRL_VPPMASK;
849 cbb_set(sc, CBB_SOCKET_CONTROL, sock_ctrl);
850 status &= ~CBB_STATE_BAD_VCC_REQ;
851 status &= ~CBB_STATE_DATA_LOST;
852 status |= CBB_FORCE_CV_TEST;
853 cbb_set(sc, CBB_SOCKET_FORCE, status);
854 goto done;
855 }
856 if (sc->chipset == CB_TOPIC97) {
857 reg_ctrl = pci_read_config(sc->dev, TOPIC_REG_CTRL, 4);
858 reg_ctrl &= ~TOPIC97_REG_CTRL_TESTMODE;
859 if (on)
860 reg_ctrl |= TOPIC97_REG_CTRL_CLKRUN_ENA;
861 else
862 reg_ctrl &= ~TOPIC97_REG_CTRL_CLKRUN_ENA;
863 pci_write_config(sc->dev, TOPIC_REG_CTRL, reg_ctrl, 4);
864 }
865 retval = 1;
866 done:;
867 if (volts != 0 && sc->chipset == CB_O2MICRO)
868 cbb_o2micro_power_hack2(sc, reg);
869 return (retval);
870 }
871
872 static int
cbb_current_voltage(device_t brdev)873 cbb_current_voltage(device_t brdev)
874 {
875 struct cbb_softc *sc = device_get_softc(brdev);
876 uint32_t ctrl;
877
878 ctrl = cbb_get(sc, CBB_SOCKET_CONTROL);
879 switch (ctrl & CBB_SOCKET_CTRL_VCCMASK) {
880 case CBB_SOCKET_CTRL_VCC_5V:
881 return CARD_5V_CARD;
882 case CBB_SOCKET_CTRL_VCC_3V:
883 return CARD_3V_CARD;
884 case CBB_SOCKET_CTRL_VCC_XV:
885 return CARD_XV_CARD;
886 case CBB_SOCKET_CTRL_VCC_YV:
887 return CARD_YV_CARD;
888 }
889 return 0;
890 }
891
892 /*
893 * detect the voltage for the card, and set it. Since the power
894 * used is the square of the voltage, lower voltages is a big win
895 * and what Windows does (and what Microsoft prefers). The MS paper
896 * also talks about preferring the CIS entry as well, but that has
897 * to be done elsewhere. We also optimize power sequencing here
898 * and don't change things if we're already powered up at a supported
899 * voltage.
900 *
901 * In addition, we power up with OE disabled. We'll set it later
902 * in the power up sequence.
903 */
904 static int
cbb_do_power(device_t brdev)905 cbb_do_power(device_t brdev)
906 {
907 struct cbb_softc *sc = device_get_softc(brdev);
908 uint32_t voltage, curpwr;
909 uint32_t status;
910
911 /* Don't enable OE (output enable) until power stable */
912 exca_clrb(&sc->exca, EXCA_PWRCTL, EXCA_PWRCTL_OE);
913
914 voltage = cbb_detect_voltage(brdev);
915 curpwr = cbb_current_voltage(brdev);
916 status = cbb_get(sc, CBB_SOCKET_STATE);
917 if ((status & CBB_STATE_POWER_CYCLE) && (voltage & curpwr))
918 return 0;
919 /* Prefer lowest voltage supported */
920 cbb_power(brdev, CARD_OFF);
921 if (voltage & CARD_YV_CARD)
922 cbb_power(brdev, CARD_VCC(YV));
923 else if (voltage & CARD_XV_CARD)
924 cbb_power(brdev, CARD_VCC(XV));
925 else if (voltage & CARD_3V_CARD)
926 cbb_power(brdev, CARD_VCC(3));
927 else if (voltage & CARD_5V_CARD)
928 cbb_power(brdev, CARD_VCC(5));
929 else {
930 device_printf(brdev, "Unknown card voltage\n");
931 return (ENXIO);
932 }
933 return (0);
934 }
935
936 /************************************************************************/
937 /* CardBus power functions */
938 /************************************************************************/
939
940 static int
cbb_cardbus_reset_power(device_t brdev,device_t child,int on)941 cbb_cardbus_reset_power(device_t brdev, device_t child, int on)
942 {
943 struct cbb_softc *sc = device_get_softc(brdev);
944 uint32_t b, h;
945 int delay, count, zero_seen, func;
946
947 /*
948 * Asserting reset for 20ms is necessary for most bridges. For some
949 * reason, the Ricoh RF5C47x bridges need it asserted for 400ms. The
950 * root cause of this is unknown, and NetBSD does the same thing.
951 */
952 delay = sc->chipset == CB_RF5C47X ? 400 : 20;
953 PCI_MASK_CONFIG(brdev, CBBR_BRIDGECTRL, |CBBM_BRIDGECTRL_RESET, 2);
954 pause("cbbP3", hz * delay / 1000);
955
956 /*
957 * If a card exists and we're turning it on, take it out of reset.
958 * After clearing reset, wait up to 1.1s for the first configuration
959 * register (vendor/product) configuration register of device 0.0 to
960 * become != 0xffffffff. The PCMCIA PC Card Host System Specification
961 * says that when powering up the card, the PCI Spec v2.1 must be
962 * followed. In PCI spec v2.2 Table 4-6, Trhfa (Reset High to first
963 * Config Access) is at most 2^25 clocks, or just over 1s. Section
964 * 2.2.1 states any card not ready to participate in bus transactions
965 * must tristate its outputs. Therefore, any access to its
966 * configuration registers must be ignored. In that state, the config
967 * reg will read 0xffffffff. Section 6.2.1 states a vendor id of
968 * 0xffff is invalid, so this can never match a real card. Print a
969 * warning if it never returns a real id. The PCMCIA PC Card
970 * Electrical Spec Section 5.2.7.1 implies only device 0 is present on
971 * a cardbus bus, so that's the only register we check here.
972 */
973 if (on && CBB_CARD_PRESENT(cbb_get(sc, CBB_SOCKET_STATE))) {
974 PCI_MASK_CONFIG(brdev, CBBR_BRIDGECTRL,
975 &~CBBM_BRIDGECTRL_RESET, 2);
976 b = pcib_get_bus(child);
977 count = 1100 / 20;
978 do {
979 pause("cbbP4", hz * 2 / 100);
980 } while (PCIB_READ_CONFIG(brdev, b, 0, 0, PCIR_DEVVENDOR, 4) ==
981 0xfffffffful && --count >= 0);
982 if (count < 0)
983 device_printf(brdev, "Warning: Bus reset timeout\n");
984
985 /*
986 * Some cards (so far just an atheros card I have) seem to
987 * come out of reset in a funky state. They report they are
988 * multi-function cards, but have nonsense for some of the
989 * higher functions. So if the card claims to be MFDEV, and
990 * any of the higher functions' ID is 0, then we've hit the
991 * bug and we'll try again.
992 */
993 h = PCIB_READ_CONFIG(brdev, b, 0, 0, PCIR_HDRTYPE, 1);
994 if ((h & PCIM_MFDEV) == 0)
995 return 0;
996 zero_seen = 0;
997 for (func = 1; func < 8; func++) {
998 h = PCIB_READ_CONFIG(brdev, b, 0, func,
999 PCIR_DEVVENDOR, 4);
1000 if (h == 0)
1001 zero_seen++;
1002 }
1003 if (!zero_seen)
1004 return 0;
1005 return (EINVAL);
1006 }
1007 return 0;
1008 }
1009
1010 static int
cbb_cardbus_power_disable_socket(device_t brdev,device_t child)1011 cbb_cardbus_power_disable_socket(device_t brdev, device_t child)
1012 {
1013 cbb_power(brdev, CARD_OFF);
1014 cbb_cardbus_reset_power(brdev, child, 0);
1015 return (0);
1016 }
1017
1018 static int
cbb_cardbus_power_enable_socket(device_t brdev,device_t child)1019 cbb_cardbus_power_enable_socket(device_t brdev, device_t child)
1020 {
1021 struct cbb_softc *sc = device_get_softc(brdev);
1022 int err, count;
1023
1024 if (!CBB_CARD_PRESENT(cbb_get(sc, CBB_SOCKET_STATE)))
1025 return (ENODEV);
1026
1027 count = 10;
1028 do {
1029 err = cbb_do_power(brdev);
1030 if (err)
1031 return (err);
1032 err = cbb_cardbus_reset_power(brdev, child, 1);
1033 if (err) {
1034 device_printf(brdev, "Reset failed, trying again.\n");
1035 cbb_cardbus_power_disable_socket(brdev, child);
1036 pause("cbbErr1", hz / 10); /* wait 100ms */
1037 }
1038 } while (err != 0 && count-- > 0);
1039 return (0);
1040 }
1041
1042 /************************************************************************/
1043 /* CardBus Resource */
1044 /************************************************************************/
1045
1046 static void
cbb_activate_window(device_t brdev,int type)1047 cbb_activate_window(device_t brdev, int type)
1048 {
1049
1050 PCI_ENABLE_IO(device_get_parent(brdev), brdev, type);
1051 }
1052
1053 static int
cbb_cardbus_io_open(device_t brdev,int win,uint32_t start,uint32_t end)1054 cbb_cardbus_io_open(device_t brdev, int win, uint32_t start, uint32_t end)
1055 {
1056 int basereg;
1057 int limitreg;
1058
1059 if ((win < 0) || (win > 1)) {
1060 DEVPRINTF((brdev,
1061 "cbb_cardbus_io_open: window out of range %d\n", win));
1062 return (EINVAL);
1063 }
1064
1065 basereg = win * 8 + CBBR_IOBASE0;
1066 limitreg = win * 8 + CBBR_IOLIMIT0;
1067
1068 pci_write_config(brdev, basereg, start, 4);
1069 pci_write_config(brdev, limitreg, end, 4);
1070 cbb_activate_window(brdev, SYS_RES_IOPORT);
1071 return (0);
1072 }
1073
1074 static int
cbb_cardbus_mem_open(device_t brdev,int win,uint32_t start,uint32_t end)1075 cbb_cardbus_mem_open(device_t brdev, int win, uint32_t start, uint32_t end)
1076 {
1077 int basereg;
1078 int limitreg;
1079
1080 if ((win < 0) || (win > 1)) {
1081 DEVPRINTF((brdev,
1082 "cbb_cardbus_mem_open: window out of range %d\n", win));
1083 return (EINVAL);
1084 }
1085
1086 basereg = win * 8 + CBBR_MEMBASE0;
1087 limitreg = win * 8 + CBBR_MEMLIMIT0;
1088
1089 pci_write_config(brdev, basereg, start, 4);
1090 pci_write_config(brdev, limitreg, end, 4);
1091 cbb_activate_window(brdev, SYS_RES_MEMORY);
1092 return (0);
1093 }
1094
1095 #define START_NONE 0xffffffff
1096 #define END_NONE 0
1097
1098 static void
cbb_cardbus_auto_open(struct cbb_softc * sc,int type)1099 cbb_cardbus_auto_open(struct cbb_softc *sc, int type)
1100 {
1101 uint32_t starts[2];
1102 uint32_t ends[2];
1103 struct cbb_reslist *rle;
1104 int align, i;
1105 uint32_t reg;
1106
1107 starts[0] = starts[1] = START_NONE;
1108 ends[0] = ends[1] = END_NONE;
1109
1110 if (type == SYS_RES_MEMORY)
1111 align = CBB_MEMALIGN;
1112 else if (type == SYS_RES_IOPORT)
1113 align = CBB_IOALIGN;
1114 else
1115 align = 1;
1116
1117 SLIST_FOREACH(rle, &sc->rl, link) {
1118 if (rle->type != type)
1119 continue;
1120 if (rle->res == NULL)
1121 continue;
1122 if (!(rman_get_flags(rle->res) & RF_ACTIVE))
1123 continue;
1124 if (rman_get_flags(rle->res) & RF_PREFETCHABLE)
1125 i = 1;
1126 else
1127 i = 0;
1128 if (rman_get_start(rle->res) < starts[i])
1129 starts[i] = rman_get_start(rle->res);
1130 if (rman_get_end(rle->res) > ends[i])
1131 ends[i] = rman_get_end(rle->res);
1132 }
1133 for (i = 0; i < 2; i++) {
1134 if (starts[i] == START_NONE)
1135 continue;
1136 starts[i] &= ~(align - 1);
1137 ends[i] = roundup2(ends[i], align) - 1;
1138 }
1139 if (starts[0] != START_NONE && starts[1] != START_NONE) {
1140 if (starts[0] < starts[1]) {
1141 if (ends[0] > starts[1]) {
1142 device_printf(sc->dev, "Overlapping ranges"
1143 " for prefetch and non-prefetch memory\n");
1144 return;
1145 }
1146 } else {
1147 if (ends[1] > starts[0]) {
1148 device_printf(sc->dev, "Overlapping ranges"
1149 " for prefetch and non-prefetch memory\n");
1150 return;
1151 }
1152 }
1153 }
1154
1155 if (type == SYS_RES_MEMORY) {
1156 cbb_cardbus_mem_open(sc->dev, 0, starts[0], ends[0]);
1157 cbb_cardbus_mem_open(sc->dev, 1, starts[1], ends[1]);
1158 reg = pci_read_config(sc->dev, CBBR_BRIDGECTRL, 2);
1159 reg &= ~(CBBM_BRIDGECTRL_PREFETCH_0 |
1160 CBBM_BRIDGECTRL_PREFETCH_1);
1161 if (starts[1] != START_NONE)
1162 reg |= CBBM_BRIDGECTRL_PREFETCH_1;
1163 pci_write_config(sc->dev, CBBR_BRIDGECTRL, reg, 2);
1164 if (bootverbose) {
1165 device_printf(sc->dev, "Opening memory:\n");
1166 if (starts[0] != START_NONE)
1167 device_printf(sc->dev, "Normal: %#x-%#x\n",
1168 starts[0], ends[0]);
1169 if (starts[1] != START_NONE)
1170 device_printf(sc->dev, "Prefetch: %#x-%#x\n",
1171 starts[1], ends[1]);
1172 }
1173 } else if (type == SYS_RES_IOPORT) {
1174 cbb_cardbus_io_open(sc->dev, 0, starts[0], ends[0]);
1175 cbb_cardbus_io_open(sc->dev, 1, starts[1], ends[1]);
1176 if (bootverbose && starts[0] != START_NONE)
1177 device_printf(sc->dev, "Opening I/O: %#x-%#x\n",
1178 starts[0], ends[0]);
1179 }
1180 }
1181
1182 static int
cbb_cardbus_activate_resource(device_t brdev,device_t child,int type,int rid,struct resource * res)1183 cbb_cardbus_activate_resource(device_t brdev, device_t child, int type,
1184 int rid, struct resource *res)
1185 {
1186 int ret;
1187
1188 ret = BUS_ACTIVATE_RESOURCE(device_get_parent(brdev), child,
1189 type, rid, res);
1190 if (ret != 0)
1191 return (ret);
1192 cbb_cardbus_auto_open(device_get_softc(brdev), type);
1193 return (0);
1194 }
1195
1196 static int
cbb_cardbus_deactivate_resource(device_t brdev,device_t child,int type,int rid,struct resource * res)1197 cbb_cardbus_deactivate_resource(device_t brdev, device_t child, int type,
1198 int rid, struct resource *res)
1199 {
1200 int ret;
1201
1202 ret = BUS_DEACTIVATE_RESOURCE(device_get_parent(brdev), child,
1203 type, rid, res);
1204 if (ret != 0)
1205 return (ret);
1206 cbb_cardbus_auto_open(device_get_softc(brdev), type);
1207 return (0);
1208 }
1209
1210 static struct resource *
cbb_cardbus_alloc_resource(device_t brdev,device_t child,int type,int * rid,rman_res_t start,rman_res_t end,rman_res_t count,u_int flags)1211 cbb_cardbus_alloc_resource(device_t brdev, device_t child, int type,
1212 int *rid, rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
1213 {
1214 struct cbb_softc *sc = device_get_softc(brdev);
1215 int tmp;
1216 struct resource *res;
1217 rman_res_t align;
1218
1219 switch (type) {
1220 case SYS_RES_IRQ:
1221 tmp = rman_get_start(sc->irq_res);
1222 if (start > tmp || end < tmp || count != 1) {
1223 device_printf(child, "requested interrupt %jd-%jd,"
1224 "count = %jd not supported by cbb\n",
1225 start, end, count);
1226 return (NULL);
1227 }
1228 start = end = tmp;
1229 flags |= RF_SHAREABLE;
1230 break;
1231 case SYS_RES_IOPORT:
1232 if (start <= cbb_start_32_io)
1233 start = cbb_start_32_io;
1234 if (end < start)
1235 end = start;
1236 if (count > (1 << RF_ALIGNMENT(flags)))
1237 flags = (flags & ~RF_ALIGNMENT_MASK) |
1238 rman_make_alignment_flags(count);
1239 break;
1240 case SYS_RES_MEMORY:
1241 if (start <= cbb_start_mem)
1242 start = cbb_start_mem;
1243 if (end < start)
1244 end = start;
1245 if (count < CBB_MEMALIGN)
1246 align = CBB_MEMALIGN;
1247 else
1248 align = count;
1249 if (align > (1 << RF_ALIGNMENT(flags)))
1250 flags = (flags & ~RF_ALIGNMENT_MASK) |
1251 rman_make_alignment_flags(align);
1252 break;
1253 }
1254 res = BUS_ALLOC_RESOURCE(device_get_parent(brdev), child, type, rid,
1255 start, end, count, flags & ~RF_ACTIVE);
1256 if (res == NULL) {
1257 printf("cbb alloc res fail type %d rid %x\n", type, *rid);
1258 return (NULL);
1259 }
1260 cbb_insert_res(sc, res, type, *rid);
1261 if (flags & RF_ACTIVE)
1262 if (bus_activate_resource(child, type, *rid, res) != 0) {
1263 bus_release_resource(child, type, *rid, res);
1264 return (NULL);
1265 }
1266
1267 return (res);
1268 }
1269
1270 static int
cbb_cardbus_release_resource(device_t brdev,device_t child,int type,int rid,struct resource * res)1271 cbb_cardbus_release_resource(device_t brdev, device_t child, int type,
1272 int rid, struct resource *res)
1273 {
1274 struct cbb_softc *sc = device_get_softc(brdev);
1275 int error;
1276
1277 if (rman_get_flags(res) & RF_ACTIVE) {
1278 error = bus_deactivate_resource(child, type, rid, res);
1279 if (error != 0)
1280 return (error);
1281 }
1282 cbb_remove_res(sc, res);
1283 return (BUS_RELEASE_RESOURCE(device_get_parent(brdev), child,
1284 type, rid, res));
1285 }
1286
1287 /************************************************************************/
1288 /* PC Card Power Functions */
1289 /************************************************************************/
1290
1291 static int
cbb_pcic_power_enable_socket(device_t brdev,device_t child)1292 cbb_pcic_power_enable_socket(device_t brdev, device_t child)
1293 {
1294 struct cbb_softc *sc = device_get_softc(brdev);
1295 int err;
1296
1297 DPRINTF(("cbb_pcic_socket_enable:\n"));
1298
1299 /* power down/up the socket to reset */
1300 err = cbb_do_power(brdev);
1301 if (err)
1302 return (err);
1303 exca_reset(&sc->exca, child);
1304
1305 return (0);
1306 }
1307
1308 static int
cbb_pcic_power_disable_socket(device_t brdev,device_t child)1309 cbb_pcic_power_disable_socket(device_t brdev, device_t child)
1310 {
1311 struct cbb_softc *sc = device_get_softc(brdev);
1312
1313 DPRINTF(("cbb_pcic_socket_disable\n"));
1314
1315 /* Turn off the card's interrupt and leave it in reset, wait 10ms */
1316 exca_putb(&sc->exca, EXCA_INTR, 0);
1317 pause("cbbP1", hz / 100);
1318
1319 /* power down the socket */
1320 cbb_power(brdev, CARD_OFF);
1321 exca_putb(&sc->exca, EXCA_PWRCTL, 0);
1322
1323 /* wait 300ms until power fails (Tpf). */
1324 pause("cbbP2", hz * 300 / 1000);
1325
1326 /* enable CSC interrupts */
1327 exca_putb(&sc->exca, EXCA_INTR, EXCA_INTR_ENABLE);
1328 return (0);
1329 }
1330
1331 /************************************************************************/
1332 /* POWER methods */
1333 /************************************************************************/
1334
1335 int
cbb_power_enable_socket(device_t brdev,device_t child)1336 cbb_power_enable_socket(device_t brdev, device_t child)
1337 {
1338 struct cbb_softc *sc = device_get_softc(brdev);
1339
1340 if (sc->flags & CBB_16BIT_CARD)
1341 return (cbb_pcic_power_enable_socket(brdev, child));
1342 return (cbb_cardbus_power_enable_socket(brdev, child));
1343 }
1344
1345 int
cbb_power_disable_socket(device_t brdev,device_t child)1346 cbb_power_disable_socket(device_t brdev, device_t child)
1347 {
1348 struct cbb_softc *sc = device_get_softc(brdev);
1349 if (sc->flags & CBB_16BIT_CARD)
1350 return (cbb_pcic_power_disable_socket(brdev, child));
1351 return (cbb_cardbus_power_disable_socket(brdev, child));
1352 }
1353
1354 static int
cbb_pcic_activate_resource(device_t brdev,device_t child,int type,int rid,struct resource * res)1355 cbb_pcic_activate_resource(device_t brdev, device_t child, int type, int rid,
1356 struct resource *res)
1357 {
1358 struct cbb_softc *sc = device_get_softc(brdev);
1359 int error;
1360
1361 error = exca_activate_resource(&sc->exca, child, type, rid, res);
1362 if (error == 0)
1363 cbb_activate_window(brdev, type);
1364 return (error);
1365 }
1366
1367 static int
cbb_pcic_deactivate_resource(device_t brdev,device_t child,int type,int rid,struct resource * res)1368 cbb_pcic_deactivate_resource(device_t brdev, device_t child, int type,
1369 int rid, struct resource *res)
1370 {
1371 struct cbb_softc *sc = device_get_softc(brdev);
1372 return (exca_deactivate_resource(&sc->exca, child, type, rid, res));
1373 }
1374
1375 static struct resource *
cbb_pcic_alloc_resource(device_t brdev,device_t child,int type,int * rid,rman_res_t start,rman_res_t end,rman_res_t count,u_int flags)1376 cbb_pcic_alloc_resource(device_t brdev, device_t child, int type, int *rid,
1377 rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
1378 {
1379 struct resource *res = NULL;
1380 struct cbb_softc *sc = device_get_softc(brdev);
1381 int align;
1382 int tmp;
1383
1384 switch (type) {
1385 case SYS_RES_MEMORY:
1386 if (start < cbb_start_mem)
1387 start = cbb_start_mem;
1388 if (end < start)
1389 end = start;
1390 if (count < CBB_MEMALIGN)
1391 align = CBB_MEMALIGN;
1392 else
1393 align = count;
1394 if (align > (1 << RF_ALIGNMENT(flags)))
1395 flags = (flags & ~RF_ALIGNMENT_MASK) |
1396 rman_make_alignment_flags(align);
1397 break;
1398 case SYS_RES_IOPORT:
1399 if (start < cbb_start_16_io)
1400 start = cbb_start_16_io;
1401 if (end < start)
1402 end = start;
1403 break;
1404 case SYS_RES_IRQ:
1405 tmp = rman_get_start(sc->irq_res);
1406 if (start > tmp || end < tmp || count != 1) {
1407 device_printf(child, "requested interrupt %jd-%jd,"
1408 "count = %jd not supported by cbb\n",
1409 start, end, count);
1410 return (NULL);
1411 }
1412 flags |= RF_SHAREABLE;
1413 start = end = rman_get_start(sc->irq_res);
1414 break;
1415 }
1416 res = BUS_ALLOC_RESOURCE(device_get_parent(brdev), child, type, rid,
1417 start, end, count, flags & ~RF_ACTIVE);
1418 if (res == NULL)
1419 return (NULL);
1420 cbb_insert_res(sc, res, type, *rid);
1421 if (flags & RF_ACTIVE) {
1422 if (bus_activate_resource(child, type, *rid, res) != 0) {
1423 bus_release_resource(child, type, *rid, res);
1424 return (NULL);
1425 }
1426 }
1427
1428 return (res);
1429 }
1430
1431 static int
cbb_pcic_release_resource(device_t brdev,device_t child,int type,int rid,struct resource * res)1432 cbb_pcic_release_resource(device_t brdev, device_t child, int type,
1433 int rid, struct resource *res)
1434 {
1435 struct cbb_softc *sc = device_get_softc(brdev);
1436 int error;
1437
1438 if (rman_get_flags(res) & RF_ACTIVE) {
1439 error = bus_deactivate_resource(child, type, rid, res);
1440 if (error != 0)
1441 return (error);
1442 }
1443 cbb_remove_res(sc, res);
1444 return (BUS_RELEASE_RESOURCE(device_get_parent(brdev), child,
1445 type, rid, res));
1446 }
1447
1448 /************************************************************************/
1449 /* PC Card methods */
1450 /************************************************************************/
1451
1452 int
cbb_pcic_set_res_flags(device_t brdev,device_t child,int type,int rid,u_long flags)1453 cbb_pcic_set_res_flags(device_t brdev, device_t child, int type, int rid,
1454 u_long flags)
1455 {
1456 struct cbb_softc *sc = device_get_softc(brdev);
1457 struct resource *res;
1458
1459 if (type != SYS_RES_MEMORY)
1460 return (EINVAL);
1461 res = cbb_find_res(sc, type, rid);
1462 if (res == NULL) {
1463 device_printf(brdev,
1464 "set_res_flags: specified rid not found\n");
1465 return (ENOENT);
1466 }
1467 return (exca_mem_set_flags(&sc->exca, res, flags));
1468 }
1469
1470 int
cbb_pcic_set_memory_offset(device_t brdev,device_t child,int rid,uint32_t cardaddr,uint32_t * deltap)1471 cbb_pcic_set_memory_offset(device_t brdev, device_t child, int rid,
1472 uint32_t cardaddr, uint32_t *deltap)
1473 {
1474 struct cbb_softc *sc = device_get_softc(brdev);
1475 struct resource *res;
1476
1477 res = cbb_find_res(sc, SYS_RES_MEMORY, rid);
1478 if (res == NULL) {
1479 device_printf(brdev,
1480 "set_memory_offset: specified rid not found\n");
1481 return (ENOENT);
1482 }
1483 return (exca_mem_set_offset(&sc->exca, res, cardaddr, deltap));
1484 }
1485
1486 /************************************************************************/
1487 /* BUS Methods */
1488 /************************************************************************/
1489
1490 int
cbb_activate_resource(device_t brdev,device_t child,int type,int rid,struct resource * r)1491 cbb_activate_resource(device_t brdev, device_t child, int type, int rid,
1492 struct resource *r)
1493 {
1494 struct cbb_softc *sc = device_get_softc(brdev);
1495
1496 if (sc->flags & CBB_16BIT_CARD)
1497 return (cbb_pcic_activate_resource(brdev, child, type, rid, r));
1498 else
1499 return (cbb_cardbus_activate_resource(brdev, child, type, rid,
1500 r));
1501 }
1502
1503 int
cbb_deactivate_resource(device_t brdev,device_t child,int type,int rid,struct resource * r)1504 cbb_deactivate_resource(device_t brdev, device_t child, int type,
1505 int rid, struct resource *r)
1506 {
1507 struct cbb_softc *sc = device_get_softc(brdev);
1508
1509 if (sc->flags & CBB_16BIT_CARD)
1510 return (cbb_pcic_deactivate_resource(brdev, child, type,
1511 rid, r));
1512 else
1513 return (cbb_cardbus_deactivate_resource(brdev, child, type,
1514 rid, r));
1515 }
1516
1517 struct resource *
cbb_alloc_resource(device_t brdev,device_t child,int type,int * rid,rman_res_t start,rman_res_t end,rman_res_t count,u_int flags)1518 cbb_alloc_resource(device_t brdev, device_t child, int type, int *rid,
1519 rman_res_t start, rman_res_t end, rman_res_t count, u_int flags)
1520 {
1521 struct cbb_softc *sc = device_get_softc(brdev);
1522
1523 if (sc->flags & CBB_16BIT_CARD)
1524 return (cbb_pcic_alloc_resource(brdev, child, type, rid,
1525 start, end, count, flags));
1526 else
1527 return (cbb_cardbus_alloc_resource(brdev, child, type, rid,
1528 start, end, count, flags));
1529 }
1530
1531 int
cbb_release_resource(device_t brdev,device_t child,int type,int rid,struct resource * r)1532 cbb_release_resource(device_t brdev, device_t child, int type, int rid,
1533 struct resource *r)
1534 {
1535 struct cbb_softc *sc = device_get_softc(brdev);
1536
1537 if (sc->flags & CBB_16BIT_CARD)
1538 return (cbb_pcic_release_resource(brdev, child, type,
1539 rid, r));
1540 else
1541 return (cbb_cardbus_release_resource(brdev, child, type,
1542 rid, r));
1543 }
1544
1545 int
cbb_read_ivar(device_t brdev,device_t child,int which,uintptr_t * result)1546 cbb_read_ivar(device_t brdev, device_t child, int which, uintptr_t *result)
1547 {
1548 struct cbb_softc *sc = device_get_softc(brdev);
1549
1550 switch (which) {
1551 case PCIB_IVAR_DOMAIN:
1552 *result = sc->domain;
1553 return (0);
1554 case PCIB_IVAR_BUS:
1555 *result = sc->bus.sec;
1556 return (0);
1557 case EXCA_IVAR_SLOT:
1558 *result = 0;
1559 return (0);
1560 }
1561 return (ENOENT);
1562 }
1563
1564 int
cbb_write_ivar(device_t brdev,device_t child,int which,uintptr_t value)1565 cbb_write_ivar(device_t brdev, device_t child, int which, uintptr_t value)
1566 {
1567
1568 switch (which) {
1569 case PCIB_IVAR_DOMAIN:
1570 return (EINVAL);
1571 case PCIB_IVAR_BUS:
1572 return (EINVAL);
1573 case EXCA_IVAR_SLOT:
1574 return (EINVAL);
1575 }
1576 return (ENOENT);
1577 }
1578
1579 int
cbb_child_present(device_t parent,device_t child)1580 cbb_child_present(device_t parent, device_t child)
1581 {
1582 struct cbb_softc *sc = (struct cbb_softc *)device_get_softc(parent);
1583 uint32_t sockstate;
1584
1585 sockstate = cbb_get(sc, CBB_SOCKET_STATE);
1586 return (CBB_CARD_PRESENT(sockstate) && sc->cardok);
1587 }
1588