adb.c revision 1.15 1 1.15 scottr /* $NetBSD: adb.c,v 1.15 1997/06/16 06:35:26 scottr Exp $ */
2 1.1 briggs
3 1.1 briggs /*-
4 1.1 briggs * Copyright (C) 1994 Bradley A. Grantham
5 1.1 briggs * All rights reserved.
6 1.1 briggs *
7 1.1 briggs * Redistribution and use in source and binary forms, with or without
8 1.1 briggs * modification, are permitted provided that the following conditions
9 1.1 briggs * are met:
10 1.1 briggs * 1. Redistributions of source code must retain the above copyright
11 1.1 briggs * notice, this list of conditions and the following disclaimer.
12 1.1 briggs * 2. Redistributions in binary form must reproduce the above copyright
13 1.2 briggs e* notice, this list of conditions and the following disclaimer in the
14 1.1 briggs * documentation and/or other materials provided with the distribution.
15 1.1 briggs * 3. All advertising materials mentioning features or use of this software
16 1.1 briggs * must display the following acknowledgement:
17 1.1 briggs * This product includes software developed by Bradley A. Grantham.
18 1.1 briggs * 4. The name of the author may not be used to endorse or promote products
19 1.1 briggs * derived from this software without specific prior written permission.
20 1.1 briggs *
21 1.1 briggs * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
22 1.1 briggs * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
23 1.1 briggs * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
24 1.1 briggs * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
25 1.1 briggs * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
26 1.1 briggs * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
27 1.1 briggs * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
28 1.1 briggs * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
29 1.1 briggs * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE
30 1.1 briggs * OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
31 1.1 briggs */
32 1.1 briggs
33 1.1 briggs #include <sys/param.h>
34 1.1 briggs #include <sys/device.h>
35 1.1 briggs #include <sys/fcntl.h>
36 1.10 scottr #include <sys/poll.h>
37 1.1 briggs #include <sys/select.h>
38 1.1 briggs #include <sys/proc.h>
39 1.7 briggs #include <sys/signalvar.h>
40 1.1 briggs #include <sys/systm.h>
41 1.2 briggs
42 1.7 briggs #include <machine/autoconf.h>
43 1.2 briggs #include <machine/keyboard.h>
44 1.2 briggs
45 1.14 scottr #include <arch/mac68k/mac68k/macrom.h>
46 1.1 briggs #include "adbvar.h"
47 1.7 briggs #include "itevar.h"
48 1.1 briggs
49 1.1 briggs /*
50 1.2 briggs * Function declarations.
51 1.1 briggs */
52 1.13 scottr static int adbmatch __P((struct device *, struct cfdata *, void *));
53 1.7 briggs static void adbattach __P((struct device *, struct device *, void *));
54 1.1 briggs
55 1.2 briggs /*
56 1.2 briggs * Global variables.
57 1.2 briggs */
58 1.2 briggs int adb_polling = 0; /* Are we polling? (Debugger mode) */
59 1.1 briggs
60 1.1 briggs /*
61 1.2 briggs * Local variables.
62 1.1 briggs */
63 1.2 briggs
64 1.2 briggs /* External keyboard translation matrix */
65 1.2 briggs extern unsigned char keyboard[128][3];
66 1.2 briggs
67 1.2 briggs /* Event queue definitions */
68 1.1 briggs #if !defined(ADB_MAX_EVENTS)
69 1.1 briggs #define ADB_MAX_EVENTS 200 /* Maximum events to be kept in queue */
70 1.2 briggs /* maybe should be higher for slower macs? */
71 1.2 briggs #endif /* !defined(ADB_MAX_EVENTS) */
72 1.1 briggs static adb_event_t adb_evq[ADB_MAX_EVENTS]; /* ADB event queue */
73 1.2 briggs static int adb_evq_tail = 0; /* event queue tail */
74 1.2 briggs static int adb_evq_len = 0; /* event queue length */
75 1.1 briggs
76 1.2 briggs /* ADB device state information */
77 1.1 briggs static int adb_isopen = 0; /* Are we queuing events for adb_read? */
78 1.1 briggs static struct selinfo adb_selinfo; /* select() info */
79 1.1 briggs static struct proc *adb_ioproc = NULL; /* process to wakeup */
80 1.1 briggs
81 1.2 briggs /* Key repeat parameters */
82 1.2 briggs static int adb_rptdelay = 20; /* ticks before auto-repeat */
83 1.2 briggs static int adb_rptinterval = 6; /* ticks between auto-repeat */
84 1.2 briggs static int adb_repeating = -1; /* key that is auto-repeating */
85 1.2 briggs static adb_event_t adb_rptevent;/* event to auto-repeat */
86 1.1 briggs
87 1.7 briggs /* Driver definition. -- This should probably be a bus... */
88 1.6 thorpej struct cfattach adb_ca = {
89 1.7 briggs sizeof(struct device), adbmatch, adbattach
90 1.6 thorpej };
91 1.6 thorpej
92 1.6 thorpej struct cfdriver adb_cd = {
93 1.6 thorpej NULL, "adb", DV_DULL
94 1.2 briggs };
95 1.7 briggs
96 1.7 briggs static int
97 1.13 scottr adbmatch(parent, cf, aux)
98 1.13 scottr struct device *parent;
99 1.13 scottr struct cfdata *cf;
100 1.13 scottr void *aux;
101 1.7 briggs {
102 1.7 briggs return 1;
103 1.7 briggs }
104 1.1 briggs
105 1.1 briggs static void
106 1.1 briggs adbattach(parent, dev, aux)
107 1.2 briggs struct device *parent, *dev;
108 1.2 briggs void *aux;
109 1.1 briggs {
110 1.12 christos printf(" (ADB event device)\n");
111 1.1 briggs }
112 1.1 briggs
113 1.2 briggs void
114 1.2 briggs adb_enqevent(event)
115 1.2 briggs adb_event_t *event;
116 1.1 briggs {
117 1.2 briggs int s;
118 1.1 briggs
119 1.10 scottr s = spladb();
120 1.10 scottr
121 1.10 scottr #ifdef DIAGNOSTIC
122 1.2 briggs if (adb_evq_tail < 0 || adb_evq_tail >= ADB_MAX_EVENTS)
123 1.1 briggs panic("adb: event queue tail is out of bounds");
124 1.1 briggs
125 1.2 briggs if (adb_evq_len < 0 || adb_evq_len > ADB_MAX_EVENTS)
126 1.1 briggs panic("adb: event queue len is out of bounds");
127 1.10 scottr #endif
128 1.1 briggs
129 1.2 briggs if (adb_evq_len == ADB_MAX_EVENTS) {
130 1.1 briggs splx(s);
131 1.2 briggs return; /* Oh, well... */
132 1.1 briggs }
133 1.1 briggs adb_evq[(adb_evq_len + adb_evq_tail) % ADB_MAX_EVENTS] =
134 1.2 briggs *event;
135 1.1 briggs adb_evq_len++;
136 1.1 briggs
137 1.1 briggs selwakeup(&adb_selinfo);
138 1.2 briggs if (adb_ioproc)
139 1.1 briggs psignal(adb_ioproc, SIGIO);
140 1.1 briggs
141 1.1 briggs splx(s);
142 1.1 briggs }
143 1.1 briggs
144 1.2 briggs void
145 1.2 briggs adb_handoff(event)
146 1.2 briggs adb_event_t *event;
147 1.1 briggs {
148 1.2 briggs if (adb_isopen && !adb_polling) {
149 1.1 briggs adb_enqevent(event);
150 1.2 briggs } else {
151 1.2 briggs if (event->def_addr == 2)
152 1.1 briggs ite_intr(event);
153 1.1 briggs }
154 1.1 briggs }
155 1.1 briggs
156 1.1 briggs
157 1.2 briggs void
158 1.2 briggs adb_autorepeat(keyp)
159 1.2 briggs void *keyp;
160 1.1 briggs {
161 1.2 briggs int key = (int) keyp;
162 1.1 briggs
163 1.1 briggs adb_rptevent.bytes[0] |= 0x80;
164 1.1 briggs microtime(&adb_rptevent.timestamp);
165 1.1 briggs adb_handoff(&adb_rptevent); /* do key up */
166 1.1 briggs
167 1.1 briggs adb_rptevent.bytes[0] &= 0x7f;
168 1.1 briggs microtime(&adb_rptevent.timestamp);
169 1.1 briggs adb_handoff(&adb_rptevent); /* do key down */
170 1.2 briggs
171 1.2 briggs if (adb_repeating == key) {
172 1.1 briggs timeout(adb_autorepeat, keyp, adb_rptinterval);
173 1.1 briggs }
174 1.1 briggs }
175 1.1 briggs
176 1.1 briggs
177 1.2 briggs void
178 1.2 briggs adb_dokeyupdown(event)
179 1.2 briggs adb_event_t *event;
180 1.1 briggs {
181 1.2 briggs int adb_key;
182 1.1 briggs
183 1.2 briggs if (event->def_addr == 2) {
184 1.1 briggs adb_key = event->u.k.key & 0x7f;
185 1.2 briggs if (!(event->u.k.key & 0x80) &&
186 1.2 briggs keyboard[event->u.k.key & 0x7f][0] != 0) {
187 1.1 briggs /* ignore shift & control */
188 1.2 briggs if (adb_repeating != -1) {
189 1.1 briggs untimeout(adb_autorepeat,
190 1.2 briggs (void *) adb_rptevent.u.k.key);
191 1.1 briggs }
192 1.1 briggs adb_rptevent = *event;
193 1.1 briggs adb_repeating = adb_key;
194 1.1 briggs timeout(adb_autorepeat,
195 1.2 briggs (void *) adb_key, adb_rptdelay);
196 1.2 briggs } else {
197 1.2 briggs if (adb_repeating != -1) {
198 1.1 briggs adb_repeating = -1;
199 1.1 briggs untimeout(adb_autorepeat,
200 1.2 briggs (void *) adb_rptevent.u.k.key);
201 1.1 briggs }
202 1.1 briggs adb_rptevent = *event;
203 1.1 briggs }
204 1.1 briggs }
205 1.1 briggs adb_handoff(event);
206 1.1 briggs }
207 1.1 briggs
208 1.2 briggs static adb_ms_buttons = 0;
209 1.1 briggs
210 1.2 briggs void
211 1.2 briggs adb_keymaybemouse(event)
212 1.2 briggs adb_event_t *event;
213 1.1 briggs {
214 1.2 briggs static int optionkey_down = 0;
215 1.1 briggs adb_event_t new_event;
216 1.2 briggs
217 1.2 briggs if (event->u.k.key == ADBK_KEYDOWN(ADBK_OPTION)) {
218 1.1 briggs optionkey_down = 1;
219 1.2 briggs } else if (event->u.k.key == ADBK_KEYUP(ADBK_OPTION)) {
220 1.2 briggs /* key up */
221 1.1 briggs optionkey_down = 0;
222 1.2 briggs if (adb_ms_buttons & 0xfe) {
223 1.1 briggs adb_ms_buttons &= 1;
224 1.1 briggs new_event.def_addr = ADBADDR_MS;
225 1.1 briggs new_event.u.m.buttons = adb_ms_buttons;
226 1.1 briggs new_event.u.m.dx = new_event.u.m.dy = 0;
227 1.1 briggs microtime(&new_event.timestamp);
228 1.1 briggs adb_dokeyupdown(&new_event);
229 1.1 briggs }
230 1.2 briggs } else if (optionkey_down) {
231 1.2 briggs if (event->u.k.key == ADBK_KEYDOWN(ADBK_LEFT)) {
232 1.1 briggs adb_ms_buttons |= 2; /* middle down */
233 1.1 briggs new_event.def_addr = ADBADDR_MS;
234 1.1 briggs new_event.u.m.buttons = adb_ms_buttons;
235 1.1 briggs new_event.u.m.dx = new_event.u.m.dy = 0;
236 1.1 briggs microtime(&new_event.timestamp);
237 1.1 briggs adb_dokeyupdown(&new_event);
238 1.2 briggs } else if (event->u.k.key == ADBK_KEYUP(ADBK_LEFT)) {
239 1.1 briggs adb_ms_buttons &= ~2; /* middle up */
240 1.1 briggs new_event.def_addr = ADBADDR_MS;
241 1.1 briggs new_event.u.m.buttons = adb_ms_buttons;
242 1.1 briggs new_event.u.m.dx = new_event.u.m.dy = 0;
243 1.1 briggs microtime(&new_event.timestamp);
244 1.1 briggs adb_dokeyupdown(&new_event);
245 1.2 briggs } else if (event->u.k.key == ADBK_KEYDOWN(ADBK_RIGHT)) {
246 1.1 briggs adb_ms_buttons |= 4; /* right down */
247 1.1 briggs new_event.def_addr = ADBADDR_MS;
248 1.1 briggs new_event.u.m.buttons = adb_ms_buttons;
249 1.1 briggs new_event.u.m.dx = new_event.u.m.dy = 0;
250 1.1 briggs microtime(&new_event.timestamp);
251 1.1 briggs adb_dokeyupdown(&new_event);
252 1.2 briggs } else if (event->u.k.key == ADBK_KEYUP(ADBK_RIGHT)) {
253 1.1 briggs adb_ms_buttons &= ~4; /* right up */
254 1.1 briggs new_event.def_addr = ADBADDR_MS;
255 1.1 briggs new_event.u.m.buttons = adb_ms_buttons;
256 1.1 briggs new_event.u.m.dx = new_event.u.m.dy = 0;
257 1.1 briggs microtime(&new_event.timestamp);
258 1.1 briggs adb_dokeyupdown(&new_event);
259 1.2 briggs } else if (ADBK_MODIFIER(event->u.k.key)) {
260 1.2 briggs /* ctrl, shift, cmd */
261 1.1 briggs adb_dokeyupdown(event);
262 1.3 briggs } else if (!(event->u.k.key & 0x80)) {
263 1.2 briggs /* key down */
264 1.1 briggs new_event = *event;
265 1.1 briggs
266 1.2 briggs /* send option-down */
267 1.2 briggs new_event.u.k.key = ADBK_KEYDOWN(ADBK_OPTION);
268 1.1 briggs new_event.bytes[0] = new_event.u.k.key;
269 1.1 briggs microtime(&new_event.timestamp);
270 1.1 briggs adb_dokeyupdown(&new_event);
271 1.1 briggs
272 1.2 briggs /* send key-down */
273 1.2 briggs new_event.u.k.key = event->bytes[0];
274 1.1 briggs new_event.bytes[0] = new_event.u.k.key;
275 1.1 briggs microtime(&new_event.timestamp);
276 1.1 briggs adb_dokeyupdown(&new_event);
277 1.1 briggs
278 1.2 briggs /* send key-up */
279 1.3 briggs new_event.u.k.key =
280 1.3 briggs ADBK_KEYUP(ADBK_KEYVAL(event->bytes[0]));
281 1.1 briggs microtime(&new_event.timestamp);
282 1.1 briggs new_event.bytes[0] = new_event.u.k.key;
283 1.3 briggs adb_dokeyupdown(&new_event);
284 1.1 briggs
285 1.2 briggs /* send option-up */
286 1.3 briggs new_event.u.k.key = ADBK_KEYUP(ADBK_OPTION);
287 1.1 briggs new_event.bytes[0] = new_event.u.k.key;
288 1.1 briggs microtime(&new_event.timestamp);
289 1.1 briggs adb_dokeyupdown(&new_event);
290 1.2 briggs } else {
291 1.2 briggs /* option-keyup -- do nothing. */
292 1.1 briggs }
293 1.2 briggs } else {
294 1.1 briggs adb_dokeyupdown(event);
295 1.1 briggs }
296 1.1 briggs }
297 1.1 briggs
298 1.1 briggs
299 1.2 briggs void
300 1.2 briggs adb_processevent(event)
301 1.2 briggs adb_event_t *event;
302 1.1 briggs {
303 1.1 briggs adb_event_t new_event;
304 1.5 briggs int i, button_bit, max_byte, mask, buttons;
305 1.1 briggs
306 1.1 briggs new_event = *event;
307 1.5 briggs buttons = 0;
308 1.1 briggs
309 1.2 briggs switch (event->def_addr) {
310 1.2 briggs case ADBADDR_KBD:
311 1.2 briggs new_event.u.k.key = event->bytes[0];
312 1.2 briggs new_event.bytes[1] = 0xff;
313 1.2 briggs adb_keymaybemouse(&new_event);
314 1.2 briggs if (event->bytes[1] != 0xff) {
315 1.2 briggs new_event.u.k.key = event->bytes[1];
316 1.2 briggs new_event.bytes[0] = event->bytes[1];
317 1.1 briggs new_event.bytes[1] = 0xff;
318 1.1 briggs adb_keymaybemouse(&new_event);
319 1.2 briggs }
320 1.2 briggs break;
321 1.2 briggs case ADBADDR_MS:
322 1.4 briggs /*
323 1.4 briggs * This should handle both plain ol' Apple mice and mice
324 1.4 briggs * that claim to support the Extended Apple Mouse Protocol.
325 1.4 briggs */
326 1.4 briggs max_byte = event->byte_count;
327 1.4 briggs button_bit = 1;
328 1.8 briggs switch (event->hand_id) {
329 1.8 briggs case ADBMS_USPEED:
330 1.8 briggs /* MicroSpeed mouse */
331 1.8 briggs if (max_byte == 4)
332 1.9 briggs buttons = (~event->bytes[2]) & 0xff;
333 1.15 scottr else
334 1.15 scottr buttons = (event->bytes[0] & 0x80) ? 0 : 1;
335 1.15 scottr break;
336 1.15 scottr case ADBMS_MSA3:
337 1.15 scottr /* Mouse Systems A3 mouse */
338 1.15 scottr if (max_byte == 3)
339 1.15 scottr buttons = (~event->bytes[2]) & 0x07;
340 1.4 briggs else
341 1.8 briggs buttons = (event->bytes[0] & 0x80) ? 0 : 1;
342 1.8 briggs break;
343 1.8 briggs default:
344 1.8 briggs /* Classic Mouse Protocol (up to 2 buttons) */
345 1.8 briggs for (i = 0; i < 2; i++, button_bit <<= 1)
346 1.8 briggs /* 0 when button down */
347 1.8 briggs if (!(event->bytes[i] & 0x80))
348 1.8 briggs buttons |= button_bit;
349 1.8 briggs else
350 1.8 briggs buttons &= ~button_bit;
351 1.8 briggs /* Extended Protocol (up to 6 more buttons) */
352 1.8 briggs for (mask = 0x80; i < max_byte;
353 1.8 briggs i += (mask == 0x80), button_bit <<= 1) {
354 1.8 briggs /* 0 when button down */
355 1.8 briggs if (!(event->bytes[i] & mask))
356 1.8 briggs buttons |= button_bit;
357 1.8 briggs else
358 1.8 briggs buttons &= ~button_bit;
359 1.8 briggs mask = ((mask >> 4) & 0xf)
360 1.8 briggs | ((mask & 0xf) << 4);
361 1.8 briggs }
362 1.8 briggs break;
363 1.4 briggs }
364 1.5 briggs new_event.u.m.buttons = adb_ms_buttons | buttons;
365 1.2 briggs new_event.u.m.dx = ((signed int) (event->bytes[1] & 0x3f)) -
366 1.2 briggs ((event->bytes[1] & 0x40) ? 64 : 0);
367 1.2 briggs new_event.u.m.dy = ((signed int) (event->bytes[0] & 0x3f)) -
368 1.2 briggs ((event->bytes[0] & 0x40) ? 64 : 0);
369 1.2 briggs adb_dokeyupdown(&new_event);
370 1.2 briggs break;
371 1.2 briggs default: /* God only knows. */
372 1.2 briggs adb_dokeyupdown(event);
373 1.1 briggs }
374 1.1 briggs }
375 1.1 briggs
376 1.1 briggs
377 1.2 briggs int
378 1.2 briggs adbopen(dev, flag, mode, p)
379 1.2 briggs dev_t dev;
380 1.2 briggs int flag, mode;
381 1.2 briggs struct proc *p;
382 1.1 briggs {
383 1.1 briggs register int unit;
384 1.1 briggs int error = 0;
385 1.1 briggs int s;
386 1.2 briggs
387 1.1 briggs unit = minor(dev);
388 1.2 briggs if (unit != 0)
389 1.2 briggs return (ENXIO);
390 1.2 briggs
391 1.10 scottr s = spladb();
392 1.2 briggs if (adb_isopen) {
393 1.1 briggs splx(s);
394 1.2 briggs return (EBUSY);
395 1.1 briggs }
396 1.1 briggs adb_evq_tail = 0;
397 1.1 briggs adb_evq_len = 0;
398 1.1 briggs adb_isopen = 1;
399 1.1 briggs adb_ioproc = p;
400 1.10 scottr splx(s);
401 1.1 briggs
402 1.1 briggs return (error);
403 1.1 briggs }
404 1.1 briggs
405 1.1 briggs
406 1.2 briggs int
407 1.2 briggs adbclose(dev, flag, mode, p)
408 1.2 briggs dev_t dev;
409 1.2 briggs int flag, mode;
410 1.2 briggs struct proc *p;
411 1.1 briggs {
412 1.10 scottr int s = spladb();
413 1.10 scottr
414 1.1 briggs adb_isopen = 0;
415 1.1 briggs adb_ioproc = NULL;
416 1.10 scottr splx(s);
417 1.10 scottr
418 1.1 briggs return (0);
419 1.1 briggs }
420 1.1 briggs
421 1.1 briggs
422 1.2 briggs int
423 1.2 briggs adbread(dev, uio, flag)
424 1.2 briggs dev_t dev;
425 1.2 briggs struct uio *uio;
426 1.2 briggs int flag;
427 1.1 briggs {
428 1.1 briggs int s, error;
429 1.1 briggs int willfit;
430 1.1 briggs int total;
431 1.1 briggs int firstmove;
432 1.1 briggs int moremove;
433 1.1 briggs
434 1.1 briggs if (uio->uio_resid < sizeof(adb_event_t))
435 1.1 briggs return (EMSGSIZE); /* close enough. */
436 1.1 briggs
437 1.10 scottr s = spladb();
438 1.2 briggs if (adb_evq_len == 0) {
439 1.2 briggs splx(s);
440 1.2 briggs return (0);
441 1.1 briggs }
442 1.1 briggs willfit = howmany(uio->uio_resid, sizeof(adb_event_t));
443 1.1 briggs total = (adb_evq_len < willfit) ? adb_evq_len : willfit;
444 1.1 briggs
445 1.1 briggs firstmove = (adb_evq_tail + total > ADB_MAX_EVENTS)
446 1.2 briggs ? (ADB_MAX_EVENTS - adb_evq_tail) : total;
447 1.2 briggs
448 1.2 briggs error = uiomove((caddr_t) & adb_evq[adb_evq_tail],
449 1.2 briggs firstmove * sizeof(adb_event_t), uio);
450 1.2 briggs if (error) {
451 1.1 briggs splx(s);
452 1.2 briggs return (error);
453 1.1 briggs }
454 1.1 briggs moremove = total - firstmove;
455 1.1 briggs
456 1.2 briggs if (moremove > 0) {
457 1.2 briggs error = uiomove((caddr_t) & adb_evq[0],
458 1.2 briggs moremove * sizeof(adb_event_t), uio);
459 1.2 briggs if (error) {
460 1.1 briggs splx(s);
461 1.2 briggs return (error);
462 1.1 briggs }
463 1.1 briggs }
464 1.1 briggs adb_evq_tail = (adb_evq_tail + total) % ADB_MAX_EVENTS;
465 1.1 briggs adb_evq_len -= total;
466 1.1 briggs splx(s);
467 1.1 briggs return (0);
468 1.1 briggs }
469 1.1 briggs
470 1.2 briggs
471 1.2 briggs int
472 1.2 briggs adbwrite(dev, uio, flag)
473 1.2 briggs dev_t dev;
474 1.2 briggs struct uio *uio;
475 1.2 briggs int flag;
476 1.1 briggs {
477 1.1 briggs return 0;
478 1.1 briggs }
479 1.1 briggs
480 1.1 briggs
481 1.2 briggs int
482 1.2 briggs adbioctl(dev, cmd, data, flag, p)
483 1.2 briggs dev_t dev;
484 1.2 briggs int cmd;
485 1.2 briggs caddr_t data;
486 1.2 briggs int flag;
487 1.2 briggs struct proc *p;
488 1.2 briggs {
489 1.2 briggs switch (cmd) {
490 1.2 briggs case ADBIOC_DEVSINFO: {
491 1.2 briggs adb_devinfo_t *di;
492 1.2 briggs ADBDataBlock adbdata;
493 1.2 briggs int totaldevs;
494 1.2 briggs int adbaddr;
495 1.2 briggs int i;
496 1.2 briggs
497 1.2 briggs di = (void *) data;
498 1.2 briggs
499 1.2 briggs /* Initialize to no devices */
500 1.2 briggs for (i = 0; i < 16; i++)
501 1.2 briggs di->dev[i].addr = -1;
502 1.2 briggs
503 1.2 briggs totaldevs = CountADBs();
504 1.2 briggs for (i = 1; i <= totaldevs; i++) {
505 1.2 briggs adbaddr = GetIndADB(&adbdata, i);
506 1.2 briggs di->dev[adbaddr].addr = adbaddr;
507 1.2 briggs di->dev[adbaddr].default_addr = adbdata.origADBAddr;
508 1.2 briggs di->dev[adbaddr].handler_id = adbdata.devType;
509 1.1 briggs }
510 1.1 briggs
511 1.2 briggs /* Must call ADB Manager to get devices now */
512 1.2 briggs break;
513 1.2 briggs }
514 1.2 briggs
515 1.2 briggs case ADBIOC_GETREPEAT:{
516 1.2 briggs adb_rptinfo_t *ri;
517 1.1 briggs
518 1.2 briggs ri = (void *) data;
519 1.2 briggs ri->delay_ticks = adb_rptdelay;
520 1.2 briggs ri->interval_ticks = adb_rptinterval;
521 1.2 briggs break;
522 1.2 briggs }
523 1.1 briggs
524 1.2 briggs case ADBIOC_SETREPEAT:{
525 1.2 briggs adb_rptinfo_t *ri;
526 1.1 briggs
527 1.2 briggs ri = (void *) data;
528 1.2 briggs adb_rptdelay = ri->delay_ticks;
529 1.2 briggs adb_rptinterval = ri->interval_ticks;
530 1.2 briggs break;
531 1.2 briggs }
532 1.1 briggs
533 1.2 briggs case ADBIOC_RESET:
534 1.2 briggs adb_init();
535 1.2 briggs break;
536 1.1 briggs
537 1.2 briggs case ADBIOC_LISTENCMD:{
538 1.2 briggs adb_listencmd_t *lc;
539 1.1 briggs
540 1.2 briggs lc = (void *) data;
541 1.2 briggs }
542 1.1 briggs
543 1.2 briggs default:
544 1.2 briggs return (EINVAL);
545 1.1 briggs }
546 1.2 briggs return (0);
547 1.1 briggs }
548 1.1 briggs
549 1.1 briggs
550 1.2 briggs int
551 1.10 scottr adbpoll(dev, events, p)
552 1.10 scottr dev_t dev;
553 1.10 scottr int events;
554 1.10 scottr struct proc *p;
555 1.10 scottr {
556 1.10 scottr int s, revents;
557 1.10 scottr
558 1.10 scottr revents = events & (POLLOUT | POLLWRNORM);
559 1.10 scottr
560 1.10 scottr if ((events & (POLLIN | POLLRDNORM)) == 0)
561 1.10 scottr return (revents);
562 1.10 scottr
563 1.10 scottr s = spladb();
564 1.10 scottr if (adb_evq_len > 0)
565 1.10 scottr revents |= events & (POLLIN | POLLRDNORM);
566 1.10 scottr else
567 1.2 briggs selrecord(p, &adb_selinfo);
568 1.10 scottr splx(s);
569 1.2 briggs
570 1.10 scottr return (revents);
571 1.1 briggs }
572