xref: /dragonfly/sys/dev/misc/kbd/atkbdc.c (revision 984263bc)
1 /*-
2  * Copyright (c) 1996-1999
3  * Kazutaka YOKOTA (yokota@zodiac.mech.utsunomiya-u.ac.jp)
4  * All rights reserved.
5  *
6  * Redistribution and use in source and binary forms, with or without
7  * modification, are permitted provided that the following conditions
8  * are met:
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  * 2. Redistributions in binary form must reproduce the above copyright
12  *    notice, this list of conditions and the following disclaimer in the
13  *    documentation and/or other materials provided with the distribution.
14  * 3. The name of the author may not be used to endorse or promote
15  *    products derived from this software without specific prior written
16  *    permission.
17  *
18  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
19  * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
20  * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
21  * ARE DISCLAIMED.  IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
22  * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
23  * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
24  * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
25  * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
26  * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
27  * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
28  * SUCH DAMAGE.
29  *
30  * $FreeBSD: src/sys/dev/kbd/atkbdc.c,v 1.5.2.2 2002/03/31 11:02:02 murray Exp $
31  * from kbdio.c,v 1.13 1998/09/25 11:55:46 yokota Exp
32  */
33 
34 #include "atkbdc.h"
35 #include "opt_kbd.h"
36 
37 #include <sys/param.h>
38 #include <sys/systm.h>
39 #include <sys/bus.h>
40 #include <sys/malloc.h>
41 #include <sys/syslog.h>
42 #include <machine/bus_pio.h>
43 #include <machine/bus.h>
44 #include <machine/resource.h>
45 #include <sys/rman.h>
46 
47 #include <machine/clock.h>
48 
49 #include <dev/kbd/atkbdcreg.h>
50 
51 #include <isa/isareg.h>
52 
53 /* constants */
54 
55 #define MAXKBDC		MAX(NATKBDC, 1)		/* XXX */
56 
57 /* macros */
58 
59 #ifndef MAX
60 #define MAX(x, y)	((x) > (y) ? (x) : (y))
61 #endif
62 
63 #define kbdcp(p)	((atkbdc_softc_t *)(p))
64 #define nextq(i)	(((i) + 1) % KBDQ_BUFSIZE)
65 #define availq(q)	((q)->head != (q)->tail)
66 #if KBDIO_DEBUG >= 2
67 #define emptyq(q)	((q)->tail = (q)->head = (q)->qcount = 0)
68 #else
69 #define emptyq(q)	((q)->tail = (q)->head = 0)
70 #endif
71 
72 #define read_data(k)	(bus_space_read_1((k)->iot, (k)->ioh0, 0))
73 #define read_status(k)	(bus_space_read_1((k)->iot, (k)->ioh1, 0))
74 #define write_data(k, d)	\
75 			(bus_space_write_1((k)->iot, (k)->ioh0, 0, (d)))
76 #define write_command(k, d)	\
77 			(bus_space_write_1((k)->iot, (k)->ioh1, 0, (d)))
78 
79 /* local variables */
80 
81 /*
82  * We always need at least one copy of the kbdc_softc struct for the
83  * low-level console.  As the low-level console accesses the keyboard
84  * controller before kbdc, and all other devices, is probed, we
85  * statically allocate one entry. XXX
86  */
87 static atkbdc_softc_t default_kbdc;
88 static atkbdc_softc_t *atkbdc_softc[MAXKBDC] = { &default_kbdc };
89 
90 static int verbose = KBDIO_DEBUG;
91 
92 /* function prototypes */
93 
94 static int atkbdc_setup(atkbdc_softc_t *sc, bus_space_tag_t tag,
95 			bus_space_handle_t h0, bus_space_handle_t h1);
96 static int addq(kqueue *q, int c);
97 static int removeq(kqueue *q);
98 static int wait_while_controller_busy(atkbdc_softc_t *kbdc);
99 static int wait_for_data(atkbdc_softc_t *kbdc);
100 static int wait_for_kbd_data(atkbdc_softc_t *kbdc);
101 static int wait_for_kbd_ack(atkbdc_softc_t *kbdc);
102 static int wait_for_aux_data(atkbdc_softc_t *kbdc);
103 static int wait_for_aux_ack(atkbdc_softc_t *kbdc);
104 
105 atkbdc_softc_t
106 *atkbdc_get_softc(int unit)
107 {
108 	atkbdc_softc_t *sc;
109 
110 	if (unit >= sizeof(atkbdc_softc)/sizeof(atkbdc_softc[0]))
111 		return NULL;
112 	sc = atkbdc_softc[unit];
113 	if (sc == NULL) {
114 		sc = atkbdc_softc[unit]
115 		   = malloc(sizeof(*sc), M_DEVBUF, M_NOWAIT);
116 		if (sc == NULL)
117 			return NULL;
118 		bzero(sc, sizeof(*sc));
119 	}
120 	return sc;
121 }
122 
123 int
124 atkbdc_probe_unit(int unit, struct resource *port0, struct resource *port1)
125 {
126 	if (rman_get_start(port0) <= 0)
127 		return ENXIO;
128 	if (rman_get_start(port1) <= 0)
129 		return ENXIO;
130 	return 0;
131 }
132 
133 int
134 atkbdc_attach_unit(int unit, atkbdc_softc_t *sc, struct resource *port0,
135 		   struct resource *port1)
136 {
137 	return atkbdc_setup(sc, rman_get_bustag(port0),
138 			    rman_get_bushandle(port0),
139 			    rman_get_bushandle(port1));
140 }
141 
142 /* the backdoor to the keyboard controller! XXX */
143 int
144 atkbdc_configure(void)
145 {
146 	bus_space_tag_t tag;
147 	bus_space_handle_t h0;
148 	bus_space_handle_t h1;
149 	int port0;
150 	int port1;
151 
152 	port0 = IO_KBD;
153 	resource_int_value("atkbdc", 0, "port", &port0);
154 	port1 = IO_KBD + KBD_STATUS_PORT;
155 #if 0
156 	resource_int_value("atkbdc", 0, "port", &port0);
157 #endif
158 
159 	/* XXX: tag should be passed from the caller */
160 #if defined(__i386__)
161 	tag = I386_BUS_SPACE_IO;
162 #elif defined(__alpha__)
163 	tag = ALPHA_BUS_SPACE_IO;
164 #endif
165 
166 #if notyet
167 	bus_space_map(tag, port0, IO_KBDSIZE, 0, &h0);
168 	bus_space_map(tag, port1, IO_KBDSIZE, 0, &h1);
169 #else
170 	h0 = (bus_space_handle_t)port0;
171 	h1 = (bus_space_handle_t)port1;
172 #endif
173 	return atkbdc_setup(atkbdc_softc[0], tag, h0, h1);
174 }
175 
176 static int
177 atkbdc_setup(atkbdc_softc_t *sc, bus_space_tag_t tag, bus_space_handle_t h0,
178 	     bus_space_handle_t h1)
179 {
180 	if (sc->ioh0 == 0) {	/* XXX */
181 	    sc->command_byte = -1;
182 	    sc->command_mask = 0;
183 	    sc->lock = FALSE;
184 	    sc->kbd.head = sc->kbd.tail = 0;
185 	    sc->aux.head = sc->aux.tail = 0;
186 #if KBDIO_DEBUG >= 2
187 	    sc->kbd.call_count = 0;
188 	    sc->kbd.qcount = sc->kbd.max_qcount = 0;
189 	    sc->aux.call_count = 0;
190 	    sc->aux.qcount = sc->aux.max_qcount = 0;
191 #endif
192 	}
193 	sc->iot = tag;
194 	sc->ioh0 = h0;
195 	sc->ioh1 = h1;
196 	return 0;
197 }
198 
199 /* open a keyboard controller */
200 KBDC
201 atkbdc_open(int unit)
202 {
203     if (unit <= 0)
204 	unit = 0;
205     if (unit >= MAXKBDC)
206 	return NULL;
207     if ((atkbdc_softc[unit]->port0 != NULL)
208 	|| (atkbdc_softc[unit]->ioh0 != 0))		/* XXX */
209 	return (KBDC)atkbdc_softc[unit];
210     return NULL;
211 }
212 
213 /*
214  * I/O access arbitration in `kbdio'
215  *
216  * The `kbdio' module uses a simplistic convention to arbitrate
217  * I/O access to the controller/keyboard/mouse. The convention requires
218  * close cooperation of the calling device driver.
219  *
220  * The device drivers which utilize the `kbdio' module are assumed to
221  * have the following set of routines.
222  *    a. An interrupt handler (the bottom half of the driver).
223  *    b. Timeout routines which may briefly poll the keyboard controller.
224  *    c. Routines outside interrupt context (the top half of the driver).
225  * They should follow the rules below:
226  *    1. The interrupt handler may assume that it always has full access
227  *       to the controller/keyboard/mouse.
228  *    2. The other routines must issue `spltty()' if they wish to
229  *       prevent the interrupt handler from accessing
230  *       the controller/keyboard/mouse.
231  *    3. The timeout routines and the top half routines of the device driver
232  *       arbitrate I/O access by observing the lock flag in `kbdio'.
233  *       The flag is manipulated via `kbdc_lock()'; when one wants to
234  *       perform I/O, call `kbdc_lock(kbdc, TRUE)' and proceed only if
235  *       the call returns with TRUE. Otherwise the caller must back off.
236  *       Call `kbdc_lock(kbdc, FALSE)' when necessary I/O operaion
237  *       is finished. This mechanism does not prevent the interrupt
238  *       handler from being invoked at any time and carrying out I/O.
239  *       Therefore, `spltty()' must be strategically placed in the device
240  *       driver code. Also note that the timeout routine may interrupt
241  *       `kbdc_lock()' called by the top half of the driver, but this
242  *       interruption is OK so long as the timeout routine observes
243  *       rule 4 below.
244  *    4. The interrupt and timeout routines should not extend I/O operation
245  *       across more than one interrupt or timeout; they must complete any
246  *       necessary I/O operation within one invocation of the routine.
247  *       This means that if the timeout routine acquires the lock flag,
248  *       it must reset the flag to FALSE before it returns.
249  */
250 
251 /* set/reset polling lock */
252 int
253 kbdc_lock(KBDC p, int lock)
254 {
255     int prevlock;
256 
257     prevlock = kbdcp(p)->lock;
258     kbdcp(p)->lock = lock;
259 
260     return (prevlock != lock);
261 }
262 
263 /* check if any data is waiting to be processed */
264 int
265 kbdc_data_ready(KBDC p)
266 {
267     return (availq(&kbdcp(p)->kbd) || availq(&kbdcp(p)->aux)
268 	|| (read_status(kbdcp(p)) & KBDS_ANY_BUFFER_FULL));
269 }
270 
271 /* queuing functions */
272 
273 static int
274 addq(kqueue *q, int c)
275 {
276     if (nextq(q->tail) != q->head) {
277 	q->q[q->tail] = c;
278 	q->tail = nextq(q->tail);
279 #if KBDIO_DEBUG >= 2
280         ++q->call_count;
281         ++q->qcount;
282 	if (q->qcount > q->max_qcount)
283             q->max_qcount = q->qcount;
284 #endif
285 	return TRUE;
286     }
287     return FALSE;
288 }
289 
290 static int
291 removeq(kqueue *q)
292 {
293     int c;
294 
295     if (q->tail != q->head) {
296 	c = q->q[q->head];
297 	q->head = nextq(q->head);
298 #if KBDIO_DEBUG >= 2
299         --q->qcount;
300 #endif
301 	return c;
302     }
303     return -1;
304 }
305 
306 /*
307  * device I/O routines
308  */
309 static int
310 wait_while_controller_busy(struct atkbdc_softc *kbdc)
311 {
312     /* CPU will stay inside the loop for 100msec at most */
313     int retry = 5000;
314     int f;
315 
316     while ((f = read_status(kbdc)) & KBDS_INPUT_BUFFER_FULL) {
317 	if ((f & KBDS_BUFFER_FULL) == KBDS_KBD_BUFFER_FULL) {
318 	    DELAY(KBDD_DELAYTIME);
319 	    addq(&kbdc->kbd, read_data(kbdc));
320 	} else if ((f & KBDS_BUFFER_FULL) == KBDS_AUX_BUFFER_FULL) {
321 	    DELAY(KBDD_DELAYTIME);
322 	    addq(&kbdc->aux, read_data(kbdc));
323 	}
324         DELAY(KBDC_DELAYTIME);
325         if (--retry < 0)
326     	    return FALSE;
327     }
328     return TRUE;
329 }
330 
331 /*
332  * wait for any data; whether it's from the controller,
333  * the keyboard, or the aux device.
334  */
335 static int
336 wait_for_data(struct atkbdc_softc *kbdc)
337 {
338     /* CPU will stay inside the loop for 200msec at most */
339     int retry = 10000;
340     int f;
341 
342     while ((f = read_status(kbdc) & KBDS_ANY_BUFFER_FULL) == 0) {
343         DELAY(KBDC_DELAYTIME);
344         if (--retry < 0)
345     	    return 0;
346     }
347     DELAY(KBDD_DELAYTIME);
348     return f;
349 }
350 
351 /* wait for data from the keyboard */
352 static int
353 wait_for_kbd_data(struct atkbdc_softc *kbdc)
354 {
355     /* CPU will stay inside the loop for 200msec at most */
356     int retry = 10000;
357     int f;
358 
359     while ((f = read_status(kbdc) & KBDS_BUFFER_FULL)
360 	    != KBDS_KBD_BUFFER_FULL) {
361         if (f == KBDS_AUX_BUFFER_FULL) {
362 	    DELAY(KBDD_DELAYTIME);
363 	    addq(&kbdc->aux, read_data(kbdc));
364 	}
365         DELAY(KBDC_DELAYTIME);
366         if (--retry < 0)
367     	    return 0;
368     }
369     DELAY(KBDD_DELAYTIME);
370     return f;
371 }
372 
373 /*
374  * wait for an ACK(FAh), RESEND(FEh), or RESET_FAIL(FCh) from the keyboard.
375  * queue anything else.
376  */
377 static int
378 wait_for_kbd_ack(struct atkbdc_softc *kbdc)
379 {
380     /* CPU will stay inside the loop for 200msec at most */
381     int retry = 10000;
382     int f;
383     int b;
384 
385     while (retry-- > 0) {
386         if ((f = read_status(kbdc)) & KBDS_ANY_BUFFER_FULL) {
387 	    DELAY(KBDD_DELAYTIME);
388             b = read_data(kbdc);
389 	    if ((f & KBDS_BUFFER_FULL) == KBDS_KBD_BUFFER_FULL) {
390 		if ((b == KBD_ACK) || (b == KBD_RESEND)
391 		    || (b == KBD_RESET_FAIL))
392 		    return b;
393 		addq(&kbdc->kbd, b);
394 	    } else if ((f & KBDS_BUFFER_FULL) == KBDS_AUX_BUFFER_FULL) {
395 		addq(&kbdc->aux, b);
396 	    }
397 	}
398         DELAY(KBDC_DELAYTIME);
399     }
400     return -1;
401 }
402 
403 /* wait for data from the aux device */
404 static int
405 wait_for_aux_data(struct atkbdc_softc *kbdc)
406 {
407     /* CPU will stay inside the loop for 200msec at most */
408     int retry = 10000;
409     int f;
410 
411     while ((f = read_status(kbdc) & KBDS_BUFFER_FULL)
412 	    != KBDS_AUX_BUFFER_FULL) {
413         if (f == KBDS_KBD_BUFFER_FULL) {
414 	    DELAY(KBDD_DELAYTIME);
415 	    addq(&kbdc->kbd, read_data(kbdc));
416 	}
417         DELAY(KBDC_DELAYTIME);
418         if (--retry < 0)
419     	    return 0;
420     }
421     DELAY(KBDD_DELAYTIME);
422     return f;
423 }
424 
425 /*
426  * wait for an ACK(FAh), RESEND(FEh), or RESET_FAIL(FCh) from the aux device.
427  * queue anything else.
428  */
429 static int
430 wait_for_aux_ack(struct atkbdc_softc *kbdc)
431 {
432     /* CPU will stay inside the loop for 200msec at most */
433     int retry = 10000;
434     int f;
435     int b;
436 
437     while (retry-- > 0) {
438         if ((f = read_status(kbdc)) & KBDS_ANY_BUFFER_FULL) {
439 	    DELAY(KBDD_DELAYTIME);
440             b = read_data(kbdc);
441 	    if ((f & KBDS_BUFFER_FULL) == KBDS_AUX_BUFFER_FULL) {
442 		if ((b == PSM_ACK) || (b == PSM_RESEND)
443 		    || (b == PSM_RESET_FAIL))
444 		    return b;
445 		addq(&kbdc->aux, b);
446 	    } else if ((f & KBDS_BUFFER_FULL) == KBDS_KBD_BUFFER_FULL) {
447 		addq(&kbdc->kbd, b);
448 	    }
449 	}
450         DELAY(KBDC_DELAYTIME);
451     }
452     return -1;
453 }
454 
455 /* write a one byte command to the controller */
456 int
457 write_controller_command(KBDC p, int c)
458 {
459     if (!wait_while_controller_busy(kbdcp(p)))
460 	return FALSE;
461     write_command(kbdcp(p), c);
462     return TRUE;
463 }
464 
465 /* write a one byte data to the controller */
466 int
467 write_controller_data(KBDC p, int c)
468 {
469     if (!wait_while_controller_busy(kbdcp(p)))
470 	return FALSE;
471     write_data(kbdcp(p), c);
472     return TRUE;
473 }
474 
475 /* write a one byte keyboard command */
476 int
477 write_kbd_command(KBDC p, int c)
478 {
479     if (!wait_while_controller_busy(kbdcp(p)))
480 	return FALSE;
481     write_data(kbdcp(p), c);
482     return TRUE;
483 }
484 
485 /* write a one byte auxiliary device command */
486 int
487 write_aux_command(KBDC p, int c)
488 {
489     if (!write_controller_command(p, KBDC_WRITE_TO_AUX))
490 	return FALSE;
491     return write_controller_data(p, c);
492 }
493 
494 /* send a command to the keyboard and wait for ACK */
495 int
496 send_kbd_command(KBDC p, int c)
497 {
498     int retry = KBD_MAXRETRY;
499     int res = -1;
500 
501     while (retry-- > 0) {
502 	if (!write_kbd_command(p, c))
503 	    continue;
504         res = wait_for_kbd_ack(kbdcp(p));
505         if (res == KBD_ACK)
506     	    break;
507     }
508     return res;
509 }
510 
511 /* send a command to the auxiliary device and wait for ACK */
512 int
513 send_aux_command(KBDC p, int c)
514 {
515     int retry = KBD_MAXRETRY;
516     int res = -1;
517 
518     while (retry-- > 0) {
519 	if (!write_aux_command(p, c))
520 	    continue;
521 	/*
522 	 * FIXME: XXX
523 	 * The aux device may have already sent one or two bytes of
524 	 * status data, when a command is received. It will immediately
525 	 * stop data transmission, thus, leaving an incomplete data
526 	 * packet in our buffer. We have to discard any unprocessed
527 	 * data in order to remove such packets. Well, we may remove
528 	 * unprocessed, but necessary data byte as well...
529 	 */
530 	emptyq(&kbdcp(p)->aux);
531         res = wait_for_aux_ack(kbdcp(p));
532         if (res == PSM_ACK)
533     	    break;
534     }
535     return res;
536 }
537 
538 /* send a command and a data to the keyboard, wait for ACKs */
539 int
540 send_kbd_command_and_data(KBDC p, int c, int d)
541 {
542     int retry;
543     int res = -1;
544 
545     for (retry = KBD_MAXRETRY; retry > 0; --retry) {
546 	if (!write_kbd_command(p, c))
547 	    continue;
548         res = wait_for_kbd_ack(kbdcp(p));
549         if (res == KBD_ACK)
550     	    break;
551         else if (res != KBD_RESEND)
552     	    return res;
553     }
554     if (retry <= 0)
555 	return res;
556 
557     for (retry = KBD_MAXRETRY, res = -1; retry > 0; --retry) {
558 	if (!write_kbd_command(p, d))
559 	    continue;
560         res = wait_for_kbd_ack(kbdcp(p));
561         if (res != KBD_RESEND)
562     	    break;
563     }
564     return res;
565 }
566 
567 /* send a command and a data to the auxiliary device, wait for ACKs */
568 int
569 send_aux_command_and_data(KBDC p, int c, int d)
570 {
571     int retry;
572     int res = -1;
573 
574     for (retry = KBD_MAXRETRY; retry > 0; --retry) {
575 	if (!write_aux_command(p, c))
576 	    continue;
577 	emptyq(&kbdcp(p)->aux);
578         res = wait_for_aux_ack(kbdcp(p));
579         if (res == PSM_ACK)
580     	    break;
581         else if (res != PSM_RESEND)
582     	    return res;
583     }
584     if (retry <= 0)
585 	return res;
586 
587     for (retry = KBD_MAXRETRY, res = -1; retry > 0; --retry) {
588 	if (!write_aux_command(p, d))
589 	    continue;
590         res = wait_for_aux_ack(kbdcp(p));
591         if (res != PSM_RESEND)
592     	    break;
593     }
594     return res;
595 }
596 
597 /*
598  * read one byte from any source; whether from the controller,
599  * the keyboard, or the aux device
600  */
601 int
602 read_controller_data(KBDC p)
603 {
604     if (availq(&kbdcp(p)->kbd))
605         return removeq(&kbdcp(p)->kbd);
606     if (availq(&kbdcp(p)->aux))
607         return removeq(&kbdcp(p)->aux);
608     if (!wait_for_data(kbdcp(p)))
609         return -1;		/* timeout */
610     return read_data(kbdcp(p));
611 }
612 
613 #if KBDIO_DEBUG >= 2
614 static int call = 0;
615 #endif
616 
617 /* read one byte from the keyboard */
618 int
619 read_kbd_data(KBDC p)
620 {
621 #if KBDIO_DEBUG >= 2
622     if (++call > 2000) {
623 	call = 0;
624 	log(LOG_DEBUG, "kbdc: kbd q: %d calls, max %d chars, "
625 			     "aux q: %d calls, max %d chars\n",
626 		       kbdcp(p)->kbd.call_count, kbdcp(p)->kbd.max_qcount,
627 		       kbdcp(p)->aux.call_count, kbdcp(p)->aux.max_qcount);
628     }
629 #endif
630 
631     if (availq(&kbdcp(p)->kbd))
632         return removeq(&kbdcp(p)->kbd);
633     if (!wait_for_kbd_data(kbdcp(p)))
634         return -1;		/* timeout */
635     return read_data(kbdcp(p));
636 }
637 
638 /* read one byte from the keyboard, but return immediately if
639  * no data is waiting
640  */
641 int
642 read_kbd_data_no_wait(KBDC p)
643 {
644     int f;
645 
646 #if KBDIO_DEBUG >= 2
647     if (++call > 2000) {
648 	call = 0;
649 	log(LOG_DEBUG, "kbdc: kbd q: %d calls, max %d chars, "
650 			     "aux q: %d calls, max %d chars\n",
651 		       kbdcp(p)->kbd.call_count, kbdcp(p)->kbd.max_qcount,
652 		       kbdcp(p)->aux.call_count, kbdcp(p)->aux.max_qcount);
653     }
654 #endif
655 
656     if (availq(&kbdcp(p)->kbd))
657         return removeq(&kbdcp(p)->kbd);
658     f = read_status(kbdcp(p)) & KBDS_BUFFER_FULL;
659     if (f == KBDS_AUX_BUFFER_FULL) {
660         DELAY(KBDD_DELAYTIME);
661         addq(&kbdcp(p)->aux, read_data(kbdcp(p)));
662         f = read_status(kbdcp(p)) & KBDS_BUFFER_FULL;
663     }
664     if (f == KBDS_KBD_BUFFER_FULL) {
665         DELAY(KBDD_DELAYTIME);
666         return read_data(kbdcp(p));
667     }
668     return -1;		/* no data */
669 }
670 
671 /* read one byte from the aux device */
672 int
673 read_aux_data(KBDC p)
674 {
675     if (availq(&kbdcp(p)->aux))
676         return removeq(&kbdcp(p)->aux);
677     if (!wait_for_aux_data(kbdcp(p)))
678         return -1;		/* timeout */
679     return read_data(kbdcp(p));
680 }
681 
682 /* read one byte from the aux device, but return immediately if
683  * no data is waiting
684  */
685 int
686 read_aux_data_no_wait(KBDC p)
687 {
688     int f;
689 
690     if (availq(&kbdcp(p)->aux))
691         return removeq(&kbdcp(p)->aux);
692     f = read_status(kbdcp(p)) & KBDS_BUFFER_FULL;
693     if (f == KBDS_KBD_BUFFER_FULL) {
694         DELAY(KBDD_DELAYTIME);
695         addq(&kbdcp(p)->kbd, read_data(kbdcp(p)));
696         f = read_status(kbdcp(p)) & KBDS_BUFFER_FULL;
697     }
698     if (f == KBDS_AUX_BUFFER_FULL) {
699         DELAY(KBDD_DELAYTIME);
700         return read_data(kbdcp(p));
701     }
702     return -1;		/* no data */
703 }
704 
705 /* discard data from the keyboard */
706 void
707 empty_kbd_buffer(KBDC p, int wait)
708 {
709     int t;
710     int b;
711     int f;
712 #if KBDIO_DEBUG >= 2
713     int c1 = 0;
714     int c2 = 0;
715 #endif
716     int delta = 2;
717 
718     for (t = wait; t > 0; ) {
719         if ((f = read_status(kbdcp(p))) & KBDS_ANY_BUFFER_FULL) {
720 	    DELAY(KBDD_DELAYTIME);
721             b = read_data(kbdcp(p));
722 	    if ((f & KBDS_BUFFER_FULL) == KBDS_AUX_BUFFER_FULL) {
723 		addq(&kbdcp(p)->aux, b);
724 #if KBDIO_DEBUG >= 2
725 		++c2;
726             } else {
727 		++c1;
728 #endif
729 	    }
730 	    t = wait;
731 	} else {
732 	    t -= delta;
733 	}
734         DELAY(delta*1000);
735     }
736 #if KBDIO_DEBUG >= 2
737     if ((c1 > 0) || (c2 > 0))
738         log(LOG_DEBUG, "kbdc: %d:%d char read (empty_kbd_buffer)\n", c1, c2);
739 #endif
740 
741     emptyq(&kbdcp(p)->kbd);
742 }
743 
744 /* discard data from the aux device */
745 void
746 empty_aux_buffer(KBDC p, int wait)
747 {
748     int t;
749     int b;
750     int f;
751 #if KBDIO_DEBUG >= 2
752     int c1 = 0;
753     int c2 = 0;
754 #endif
755     int delta = 2;
756 
757     for (t = wait; t > 0; ) {
758         if ((f = read_status(kbdcp(p))) & KBDS_ANY_BUFFER_FULL) {
759 	    DELAY(KBDD_DELAYTIME);
760             b = read_data(kbdcp(p));
761 	    if ((f & KBDS_BUFFER_FULL) == KBDS_KBD_BUFFER_FULL) {
762 		addq(&kbdcp(p)->kbd, b);
763 #if KBDIO_DEBUG >= 2
764 		++c1;
765             } else {
766 		++c2;
767 #endif
768 	    }
769 	    t = wait;
770 	} else {
771 	    t -= delta;
772 	}
773 	DELAY(delta*1000);
774     }
775 #if KBDIO_DEBUG >= 2
776     if ((c1 > 0) || (c2 > 0))
777         log(LOG_DEBUG, "kbdc: %d:%d char read (empty_aux_buffer)\n", c1, c2);
778 #endif
779 
780     emptyq(&kbdcp(p)->aux);
781 }
782 
783 /* discard any data from the keyboard or the aux device */
784 void
785 empty_both_buffers(KBDC p, int wait)
786 {
787     int t;
788     int f;
789 #if KBDIO_DEBUG >= 2
790     int c1 = 0;
791     int c2 = 0;
792 #endif
793     int delta = 2;
794 
795     for (t = wait; t > 0; ) {
796         if ((f = read_status(kbdcp(p))) & KBDS_ANY_BUFFER_FULL) {
797 	    DELAY(KBDD_DELAYTIME);
798             (void)read_data(kbdcp(p));
799 #if KBDIO_DEBUG >= 2
800 	    if ((f & KBDS_BUFFER_FULL) == KBDS_KBD_BUFFER_FULL)
801 		++c1;
802             else
803 		++c2;
804 #endif
805 	    t = wait;
806 	} else {
807 	    t -= delta;
808 	}
809 	DELAY(delta*1000);
810     }
811 #if KBDIO_DEBUG >= 2
812     if ((c1 > 0) || (c2 > 0))
813         log(LOG_DEBUG, "kbdc: %d:%d char read (empty_both_buffers)\n", c1, c2);
814 #endif
815 
816     emptyq(&kbdcp(p)->kbd);
817     emptyq(&kbdcp(p)->aux);
818 }
819 
820 /* keyboard and mouse device control */
821 
822 /* NOTE: enable the keyboard port but disable the keyboard
823  * interrupt before calling "reset_kbd()".
824  */
825 int
826 reset_kbd(KBDC p)
827 {
828     int retry = KBD_MAXRETRY;
829     int again = KBD_MAXWAIT;
830     int c = KBD_RESEND;		/* keep the compiler happy */
831 
832     while (retry-- > 0) {
833         empty_both_buffers(p, 10);
834         if (!write_kbd_command(p, KBDC_RESET_KBD))
835 	    continue;
836 	emptyq(&kbdcp(p)->kbd);
837         c = read_controller_data(p);
838 	if (verbose || bootverbose)
839             log(LOG_DEBUG, "kbdc: RESET_KBD return code:%04x\n", c);
840         if (c == KBD_ACK)	/* keyboard has agreed to reset itself... */
841     	    break;
842     }
843     if (retry < 0)
844         return FALSE;
845 
846     while (again-- > 0) {
847         /* wait awhile, well, in fact we must wait quite loooooooooooong */
848         DELAY(KBD_RESETDELAY*1000);
849         c = read_controller_data(p);	/* RESET_DONE/RESET_FAIL */
850         if (c != -1) 	/* wait again if the controller is not ready */
851     	    break;
852     }
853     if (verbose || bootverbose)
854         log(LOG_DEBUG, "kbdc: RESET_KBD status:%04x\n", c);
855     if (c != KBD_RESET_DONE)
856         return FALSE;
857     return TRUE;
858 }
859 
860 /* NOTE: enable the aux port but disable the aux interrupt
861  * before calling `reset_aux_dev()'.
862  */
863 int
864 reset_aux_dev(KBDC p)
865 {
866     int retry = KBD_MAXRETRY;
867     int again = KBD_MAXWAIT;
868     int c = PSM_RESEND;		/* keep the compiler happy */
869 
870     while (retry-- > 0) {
871         empty_both_buffers(p, 10);
872         if (!write_aux_command(p, PSMC_RESET_DEV))
873 	    continue;
874 	emptyq(&kbdcp(p)->aux);
875 	/* NOTE: Compaq Armada laptops require extra delay here. XXX */
876 	for (again = KBD_MAXWAIT; again > 0; --again) {
877             DELAY(KBD_RESETDELAY*1000);
878             c = read_aux_data_no_wait(p);
879 	    if (c != -1)
880 		break;
881 	}
882         if (verbose || bootverbose)
883             log(LOG_DEBUG, "kbdc: RESET_AUX return code:%04x\n", c);
884         if (c == PSM_ACK)	/* aux dev is about to reset... */
885     	    break;
886     }
887     if (retry < 0)
888         return FALSE;
889 
890     for (again = KBD_MAXWAIT; again > 0; --again) {
891         /* wait awhile, well, quite looooooooooooong */
892         DELAY(KBD_RESETDELAY*1000);
893         c = read_aux_data_no_wait(p);	/* RESET_DONE/RESET_FAIL */
894         if (c != -1) 	/* wait again if the controller is not ready */
895     	    break;
896     }
897     if (verbose || bootverbose)
898         log(LOG_DEBUG, "kbdc: RESET_AUX status:%04x\n", c);
899     if (c != PSM_RESET_DONE)	/* reset status */
900         return FALSE;
901 
902     c = read_aux_data(p);	/* device ID */
903     if (verbose || bootverbose)
904         log(LOG_DEBUG, "kbdc: RESET_AUX ID:%04x\n", c);
905     /* NOTE: we could check the device ID now, but leave it later... */
906     return TRUE;
907 }
908 
909 /* controller diagnostics and setup */
910 
911 int
912 test_controller(KBDC p)
913 {
914     int retry = KBD_MAXRETRY;
915     int again = KBD_MAXWAIT;
916     int c = KBD_DIAG_FAIL;
917 
918     while (retry-- > 0) {
919         empty_both_buffers(p, 10);
920         if (write_controller_command(p, KBDC_DIAGNOSE))
921     	    break;
922     }
923     if (retry < 0)
924         return FALSE;
925 
926     emptyq(&kbdcp(p)->kbd);
927     while (again-- > 0) {
928         /* wait awhile */
929         DELAY(KBD_RESETDELAY*1000);
930         c = read_controller_data(p);	/* DIAG_DONE/DIAG_FAIL */
931         if (c != -1) 	/* wait again if the controller is not ready */
932     	    break;
933     }
934     if (verbose || bootverbose)
935         log(LOG_DEBUG, "kbdc: DIAGNOSE status:%04x\n", c);
936     return (c == KBD_DIAG_DONE);
937 }
938 
939 int
940 test_kbd_port(KBDC p)
941 {
942     int retry = KBD_MAXRETRY;
943     int again = KBD_MAXWAIT;
944     int c = -1;
945 
946     while (retry-- > 0) {
947         empty_both_buffers(p, 10);
948         if (write_controller_command(p, KBDC_TEST_KBD_PORT))
949     	    break;
950     }
951     if (retry < 0)
952         return FALSE;
953 
954     emptyq(&kbdcp(p)->kbd);
955     while (again-- > 0) {
956         c = read_controller_data(p);
957         if (c != -1) 	/* try again if the controller is not ready */
958     	    break;
959     }
960     if (verbose || bootverbose)
961         log(LOG_DEBUG, "kbdc: TEST_KBD_PORT status:%04x\n", c);
962     return c;
963 }
964 
965 int
966 test_aux_port(KBDC p)
967 {
968     int retry = KBD_MAXRETRY;
969     int again = KBD_MAXWAIT;
970     int c = -1;
971 
972     while (retry-- > 0) {
973         empty_both_buffers(p, 10);
974         if (write_controller_command(p, KBDC_TEST_AUX_PORT))
975     	    break;
976     }
977     if (retry < 0)
978         return FALSE;
979 
980     emptyq(&kbdcp(p)->kbd);
981     while (again-- > 0) {
982         c = read_controller_data(p);
983         if (c != -1) 	/* try again if the controller is not ready */
984     	    break;
985     }
986     if (verbose || bootverbose)
987         log(LOG_DEBUG, "kbdc: TEST_AUX_PORT status:%04x\n", c);
988     return c;
989 }
990 
991 int
992 kbdc_get_device_mask(KBDC p)
993 {
994     return kbdcp(p)->command_mask;
995 }
996 
997 void
998 kbdc_set_device_mask(KBDC p, int mask)
999 {
1000     kbdcp(p)->command_mask =
1001 	mask & (KBD_KBD_CONTROL_BITS | KBD_AUX_CONTROL_BITS);
1002 }
1003 
1004 int
1005 get_controller_command_byte(KBDC p)
1006 {
1007     if (kbdcp(p)->command_byte != -1)
1008 	return kbdcp(p)->command_byte;
1009     if (!write_controller_command(p, KBDC_GET_COMMAND_BYTE))
1010 	return -1;
1011     emptyq(&kbdcp(p)->kbd);
1012     kbdcp(p)->command_byte = read_controller_data(p);
1013     return kbdcp(p)->command_byte;
1014 }
1015 
1016 int
1017 set_controller_command_byte(KBDC p, int mask, int command)
1018 {
1019     if (get_controller_command_byte(p) == -1)
1020 	return FALSE;
1021 
1022     command = (kbdcp(p)->command_byte & ~mask) | (command & mask);
1023     if (command & KBD_DISABLE_KBD_PORT) {
1024 	if (!write_controller_command(p, KBDC_DISABLE_KBD_PORT))
1025 	    return FALSE;
1026     }
1027     if (!write_controller_command(p, KBDC_SET_COMMAND_BYTE))
1028 	return FALSE;
1029     if (!write_controller_data(p, command))
1030 	return FALSE;
1031     kbdcp(p)->command_byte = command;
1032 
1033     if (verbose)
1034         log(LOG_DEBUG, "kbdc: new command byte:%04x (set_controller...)\n",
1035 	    command);
1036 
1037     return TRUE;
1038 }
1039