qv.c revision 1.11.6.2 1 /* $NetBSD: qv.c,v 1.11.6.2 2004/09/18 14:42:12 skrll Exp $ */
2
3 /*-
4 * Copyright (c) 1988
5 * The Regents of the University of California. All rights reserved.
6 * (c) UNIX System Laboratories, Inc.
7 * All or some portions of this file are derived from material licensed
8 * to the University of California by American Telephone and Telegraph
9 * Co. or Unix System Laboratories, Inc. and are reproduced herein with
10 * the permission of UNIX System Laboratories, Inc.
11 *
12 * Redistribution and use in source and binary forms, with or without
13 * modification, are permitted provided that the following conditions
14 * are met:
15 * 1. Redistributions of source code must retain the above copyright
16 * notice, this list of conditions and the following disclaimer.
17 * 2. Redistributions in binary form must reproduce the above copyright
18 * notice, this list of conditions and the following disclaimer in the
19 * documentation and/or other materials provided with the distribution.
20 * 3. Neither the name of the University nor the names of its contributors
21 * may be used to endorse or promote products derived from this software
22 * without specific prior written permission.
23 *
24 * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 * SUCH DAMAGE.
35 *
36 * @(#)qv.c 7.2 (Berkeley) 1/21/94
37 */
38
39 /*
40 * derived from: @(#)qv.c 1.8 (ULTRIX) 8/21/85
41 */
42
43 /************************************************************************
44 * *
45 * Copyright (c) 1985 by *
46 * Digital Equipment Corporation, Maynard, MA *
47 * All rights reserved. *
48 * *
49 * This software is furnished under a license and may be used and *
50 * copied only in accordance with the terms of such license and *
51 * with the inclusion of the above copyright notice. This *
52 * software or any other copies thereof may not be provided or *
53 * otherwise made available to any other person. No title to and *
54 * ownership of the software is hereby transferred. *
55 * *
56 * This software is derived from software received from the *
57 * University of California, Berkeley, and from Bell *
58 * Laboratories. Use, duplication, or disclosure is subject to *
59 * restrictions under license agreements with University of *
60 * California and with AT&T. *
61 * *
62 * The information in this software is subject to change without *
63 * notice and should not be construed as a commitment by Digital *
64 * Equipment Corporation. *
65 * *
66 * Digital assumes no responsibility for the use or reliability *
67 * of its software on equipment which is not supplied by Digital. *
68 * *
69 ************************************************************************
70 *
71 * This driver provides glass tty functionality to the qvss. It is a strange
72 * device in that it supports three subchannels. The first being the asr,
73 * the second being a channel that intercepts the chars headed for the screen
74 * ( like a pseudo tty ) and the third being a source of mouse state changes.
75 * NOTE: the second is conditional on #ifdef CONS_HACK in this version
76 * of the driver, as it's a total crock.
77 *
78 * There may be one and only one qvss in the system. This restriction is based
79 * on the inability to map more than one at a time. This restriction will
80 * exist until the kernel has shared memory services. This driver therefore
81 * support a single unit. No attempt was made to have it service more.
82 *
83 * (this belongs in sccs - not here)
84 *
85 * 02 Aug 85 -- rjl
86 * Changed the names of the special setup routines so that the system
87 * can have a qvss or a qdss system console.
88 *
89 * 03 Jul 85 -- rjl
90 * Added a check for virtual mode in qvputc so that the driver
91 * doesn't crash while in a dump which is done in physical mode.
92 *
93 * 10 Apr 85 -- jg
94 * Well, our theory about keyboard handling was wrong; most of the
95 * keyboard is in autorepeat, down mode. These changes are to make
96 * the qvss work the same as the Vs100, which is not necessarily
97 * completely correct, as some chord usage may fail. But since we
98 * can't easily change the Vs100, we might as well propagate the
99 * problem to another device. There are also changes for screen and
100 * mouse accellaration.
101 *
102 * 27 Mar 85 -- rjl
103 * MicroVAX-II systems have interval timers that interrupt at ipl4.
104 * Everything else is higher and thus causes us to miss clock ticks. The
105 * problem isn't severe except in the case of a device like this one that
106 * generates lots of interrupts. We aren't willing to make this change to
107 * all device drivers but it seems acceptable in this case.
108 *
109 * 3 Dec 84 -- jg
110 * To continue the tradition of building a better mouse trap, this
111 * driver has been extended to form Vs100 style event queues. If the
112 * mouse device is open, the keyboard events are intercepted and put
113 * into the shared memory queue. Unfortunately, we are ending up with
114 * one of the longest Unix device drivers. Sigh....
115 *
116 * 20 Nov 84 -- rjl
117 * As a further complication this driver is required to function as the
118 * virtual system console. This code runs before and during auto-
119 * configuration and therefore is require to have a second path for setup.
120 * It is futher constrained to have a character output routine that
121 * is not dependant on the interrupt system.
122 *
123 */
124
125 #include <sys/cdefs.h>
126 __KERNEL_RCSID(0, "$NetBSD: qv.c,v 1.11.6.2 2004/09/18 14:42:12 skrll Exp $");
127
128 #include "qv.h"
129 #if NQV > 0
130
131 #include "../include/pte.h"
132
133 #include "sys/param.h"
134 #include "sys/conf.h"
135 #include "sys/user.h"
136 #include "qvioctl.h"
137 #include "sys/tty.h"
138 #include "sys/buf.h"
139 #include "sys/vm.h"
140 #include "sys/file.h"
141 #include "sys/uio.h"
142 #include "sys/kernel.h"
143 #include "sys/syslog.h"
144 #include "../include/cpu.h"
145 #include "../include/mtpr.h"
146 #include "ubareg.h"
147 #include "ubavar.h"
148
149 #define CONS_HACK
150
151 struct uba_device *qvinfo[NQV];
152
153 struct tty qv_tty[NQV*4];
154
155 #define nNQV NQV
156 int nqv = NQV*4;
157
158 /*
159 * Definition of the driver for the auto-configuration program.
160 */
161 int qvprobe(), qvattach(), qvkint(), qvvint();
162 u_short qvstd[] = { 0 };
163 struct uba_driver qvdriver =
164 { qvprobe, 0, qvattach, 0, qvstd, "qv", qvinfo };
165
166 extern char qvmem[][512*VAX_NBPG];
167 extern struct pte QVmap[][512];
168
169 /*
170 * Local variables for the driver. Initialized for 15' screen
171 * so that it can be used during the boot process.
172 */
173
174 #define QVWAITPRI (PZERO+1)
175
176 #define QVKEYBOARD 0 /* minor 0, keyboard/glass tty */
177 #define QVPCONS 1 /* minor 1, console interceptor XXX */
178 #define QVMOUSECHAN 2 /* minor 2, mouse */
179 #define QVSPARE 3 /* unused */
180 #define QVCHAN(unit) ((unit) & 03)
181 /*
182 * v_putc is the switch that is used to redirect the console cnputc to the
183 * virtual console vputc. consops is used to redirect the console
184 * device to the qvss console.
185 */
186 extern (*v_putc)();
187 extern struct cdevsw *consops;
188 /*
189 * qv_def_scrn is used to select the appropriate tables. 0=15 inch 1=19 inch,
190 * 2 = uVAXII.
191 */
192 int qv_def_scrn = 2;
193
194 #define QVMAXEVQ 64 /* must be power of 2 */
195 #define EVROUND(x) ((x) & (QVMAXEVQ - 1))
196
197 /*
198 * Screen parameters 15 & 19 inch monitors. These determine the max size in
199 * pixel and character units for the display and cursor positions.
200 * Notice that the mouse defaults to original square algorithm, but X
201 * will change to its defaults once implemented.
202 */
203 struct qv_info *qv_scn;
204 struct qv_info qv_scn_defaults[] = {
205 {0, {0, 0}, 0, {0, 0}, 0, 0, 30, 80, 768, 480, 768-16, 480-16,
206 0, 0, 0, 0, 0, QVMAXEVQ, 0, 0, {0, 0}, {0, 0, 0, 0}, 2, 4},
207 {0, {0, 0}, 0, {0, 0}, 0, 0, 55, 120, 960, 864, 960-16, 864-16,
208 0, 0, 0, 0, 0, QVMAXEVQ, 0, 0, {0, 0}, {0, 0, 0, 0}, 2, 4},
209 {0, {0, 0}, 0, {0, 0}, 0, 0, 56, 120,1024, 864,1024-16, 864-16,
210 0, 0, 0, 0, 0, QVMAXEVQ, 0, 0, {0, 0}, {0, 0, 0, 0}, 2, 4}
211 };
212
213 /*
214 * Screen controller initialization parameters. The definations and use
215 * of these parameters can be found in the Motorola 68045 crtc specs. In
216 * essence they set the display parameters for the chip. The first set is
217 * for the 15" screen and the second is for the 19" separate sync. There
218 * is also a third set for a 19" composite sync monitor which we have not
219 * tested and which is not supported.
220 */
221 static short qv_crt_parms[][16] = {
222 { 31, 25, 27, 0142, 31, 13, 30, 31, 4, 15, 040, 0, 0, 0, 0, 0 },
223 /* VR100*/ { 39, 30, 32, 0262, 55, 5, 54, 54, 4, 15, 040, 0, 0, 0, 0, 0 },
224 /* VR260*/ { 39, 32, 33, 0264, 56, 5, 54, 54, 4, 15, 040, 0, 0, 0, 0, 0},
225 };
226
227 /*
228 * Screen parameters
229 */
230 struct qv_info *qv_scn;
231 int maxqvmem = 254*1024 - sizeof(struct qv_info) - QVMAXEVQ*sizeof(vsEvent);
232
233 /*
234 * Keyboard state
235 */
236 struct qv_keyboard {
237 int shift; /* state variables */
238 int cntrl;
239 int lock;
240 char last; /* last character */
241 } qv_keyboard;
242
243 short divdefaults[15] = { LK_DOWN, /* 0 doesn't exist */
244 LK_AUTODOWN, LK_AUTODOWN, LK_AUTODOWN, LK_DOWN,
245 LK_UPDOWN, LK_UPDOWN, LK_AUTODOWN, LK_AUTODOWN,
246 LK_AUTODOWN, LK_AUTODOWN, LK_AUTODOWN, LK_AUTODOWN,
247 LK_DOWN, LK_AUTODOWN };
248
249 short kbdinitstring[] = { /* reset any random keyboard stuff */
250 LK_AR_ENABLE, /* we want autorepeat by default */
251 LK_CL_ENABLE, /* keyclick */
252 0x84, /* keyclick volume */
253 LK_KBD_ENABLE, /* the keyboard itself */
254 LK_BELL_ENABLE, /* keyboard bell */
255 0x84, /* bell volume */
256 LK_LED_DISABLE, /* keyboard leds */
257 LED_ALL };
258 #define KBD_INIT_LENGTH sizeof(kbdinitstring)/sizeof(short)
259
260 #define TOY ((time.tv_sec * 100) + (time.tv_usec / 10000))
261
262 int qv_ipl_lo = 1; /* IPL low flag */
263 int mouseon = 0; /* mouse channel is enabled when 1*/
264 struct proc *qvrsel; /* process waiting for select */
265
266 int qvstart(), qvputc(), ttrstrt();
267
268 /*
269 * Keyboard translation and font tables
270 */
271 extern u_short q_key[], q_shift_key[], q_cursor[];
272 extern char *q_special[], q_font[];
273
274 dev_type_open(qvopen);
275 dev_type_close(qvclose);
276 dev_type_read(qvread);
277 dev_type_write(qvwrite);
278 dev_type_ioctl(qvioctl);
279 dev_type_stop(qvstop);
280 dev_type_poll(qvpoll);
281 dev_type_kqfilter(qvkqfilter);
282
283 const struct cdevsw qv_cdevsw = {
284 qvopen, qvclose, qvread, qvwrite, qvioctl,
285 qvstop, notty, qvpoll, nommap, qvkqfilter,
286 };
287
288 /*
289 * See if the qvss will interrupt.
290 */
291
292 /*ARGSUSED*/
293 qvprobe(reg, ctlr)
294 caddr_t reg;
295 int ctlr;
296 {
297 register int br, cvec; /* these are ``value-result'' */
298 register struct qvdevice *qvaddr = (struct qvdevice *)reg;
299 static int tvec, ovec;
300
301 #ifdef lint
302 br = 0; cvec = br; br = cvec;
303 qvkint(0); qvvint(0);
304 #endif
305 /*
306 * Allocate the next two vectors
307 */
308 tvec = 0360;
309 ovec = cvec;
310 /*
311 * Turn on the keyboard and vertical interrupt vectors.
312 */
313 qvaddr->qv_intcsr = 0; /* init the interrupt controller */
314 qvaddr->qv_intcsr = 0x40; /* reset irr */
315 qvaddr->qv_intcsr = 0x80; /* specify individual vectors */
316 qvaddr->qv_intcsr = 0xc0; /* preset autoclear data */
317 qvaddr->qv_intdata = 0xff; /* all setup as autoclear */
318
319 qvaddr->qv_intcsr = 0xe0; /* preset vector address 1 */
320 qvaddr->qv_intdata = tvec; /* give it the keyboard vector */
321 qvaddr->qv_intcsr = 0x28; /* enable tx/rx interrupt */
322
323 qvaddr->qv_intcsr = 0xe1; /* preset vector address 2 */
324 qvaddr->qv_intdata = tvec+4; /* give it the vertical sysnc */
325 qvaddr->qv_intcsr = 0x29; /* enable */
326
327 qvaddr->qv_intcsr = 0xa1; /* arm the interrupt ctrl */
328
329 qvaddr->qv_uartcmd = 0x15; /* set mode pntr/enable rx/tx */
330 qvaddr->qv_uartmode = 0x17; /* noparity, 8-bit */
331 qvaddr->qv_uartmode = 0x07; /* 1 stop bit */
332 qvaddr->qv_uartstatus = 0x99; /* 4800 baud xmit/recv */
333 qvaddr->qv_uartintstatus = 2; /* enable recv interrupts */
334
335 qvaddr->qv_csr |= QV_INT_ENABLE | QV_CUR_MODE;
336
337 DELAY(10000);
338
339 qvaddr->qv_csr &= ~QV_INT_ENABLE;
340
341 /*
342 * If the qvss did interrupt it was the second vector not
343 * the first so we have to return the first so that they
344 * will be setup properly
345 */
346 if( ovec == cvec ) {
347 return 0;
348 } else
349 cvec -= 4;
350 return (sizeof (struct qvdevice));
351 }
352
353 /*
354 * Routine called to attach a qv.
355 */
356 qvattach(ui)
357 struct uba_device *ui;
358 {
359
360 /*
361 * If not the console then we have to setup the screen
362 */
363 if (v_putc != qvputc || ui->ui_unit != 0)
364 (void)qv_setup((struct qvdevice *)ui->ui_addr, ui->ui_unit, 1);
365 else
366 qv_scn->qvaddr = (struct qvdevice *)ui->ui_addr;
367 }
368
369
370 /*ARGSUSED*/
371 int
372 qvopen(dev, flag, mode, p)
373 dev_t dev;
374 int flag, mode;
375 struct proc *p;
376 {
377 register struct tty *tp;
378 register int unit, qv;
379 register struct qvdevice *qvaddr;
380 register struct uba_device *ui;
381 register struct qv_info *qp = qv_scn;
382
383 unit = minor(dev);
384 qv = unit >> 2;
385 if (unit >= nqv || (ui = qvinfo[qv])== 0 || ui->ui_alive == 0)
386 return (ENXIO);
387 if (QVCHAN(unit) == QVSPARE
388 #ifndef CONS_HACK
389 || QVCHAN(unit) == QVPCONS
390 #endif
391 )
392 return (ENODEV);
393 tp = &qv_tty[unit];
394 if (tp->t_state&TS_XCLUDE && u.u_uid!=0)
395 return (EBUSY);
396 qvaddr = (struct qvdevice *)ui->ui_addr;
397 qv_scn->qvaddr = qvaddr;
398 tp->t_addr = (caddr_t)qvaddr;
399 tp->t_oproc = qvstart;
400
401 if ((tp->t_state&TS_ISOPEN) == 0) {
402 ttychars(tp);
403 tp->t_state = TS_ISOPEN|TS_CARR_ON;
404 tp->t_ispeed = B9600;
405 tp->t_ospeed = B9600;
406 if( QVCHAN(unit) == QVKEYBOARD ) {
407 /* make sure keyboard is always back to default */
408 qvkbdreset();
409 qvaddr->qv_csr |= QV_INT_ENABLE;
410 tp->t_iflag = TTYDEF_IFLAG;
411 tp->t_oflag = TTYDEF_OFLAG;
412 tp->t_lflag = TTYDEF_LFLAG;
413 tp->t_cflag = TTYDEF_CFLAG;
414 }
415 /* XXX ?why? else
416 tp->t_flags = RAW;
417 */
418 }
419 /*
420 * Process line discipline specific open if its not the
421 * mouse channel. For the mouse we init the ring ptr's.
422 */
423 if( QVCHAN(unit) != QVMOUSECHAN )
424 return ((*tp->t_linesw->l_open)(dev, tp));
425 else {
426 mouseon = 1;
427 /* set up event queue for later */
428 qp->ibuff = (vsEvent *)qp - QVMAXEVQ;
429 qp->iqsize = QVMAXEVQ;
430 qp->ihead = qp->itail = 0;
431 return 0;
432 }
433
434 return (0);
435 }
436
437 /*
438 * Close a QVSS line.
439 */
440 /*ARGSUSED*/
441 int
442 qvclose(dev, flag, mode, p)
443 dev_t dev;
444 int flag, mode;
445 struct proc *p;
446 {
447 register struct tty *tp;
448 register unit;
449 register struct qvdevice *qvaddr;
450 int error;
451
452 unit = minor(dev);
453 tp = &qv_tty[unit];
454
455 /*
456 * If this is the keyboard unit (0) shutdown the
457 * interface.
458 */
459 qvaddr = (struct qvdevice *)tp->t_addr;
460 if (QVCHAN(unit) == QVKEYBOARD )
461 qvaddr->qv_csr &= ~QV_INT_ENABLE;
462
463 /*
464 * If unit is not the mouse channel call the line disc.
465 * otherwise clear the state flag, and put the keyboard into down/up.
466 */
467 if (QVCHAN(unit) != QVMOUSECHAN) {
468 (*tp->t_linesw->l_close)(tp, flag);
469 error = ttyclose(tp);
470 } else {
471 mouseon = 0;
472 qv_init( qvaddr );
473 error = 0;
474 }
475 tp->t_state = 0;
476 return (error);
477 }
478
479 int
480 qvread(dev, uio, flag)
481 dev_t dev;
482 struct uio *uio;
483 int flag;
484 {
485 register struct tty *tp;
486 int unit = minor( dev );
487
488 if (QVCHAN(unit) != QVMOUSECHAN) {
489 tp = &qv_tty[unit];
490 return ((*tp->t_linesw->l_read)(tp, uio));
491 }
492 return (ENXIO);
493 }
494
495 int
496 qvwrite(dev, uio, flag)
497 dev_t dev;
498 struct uio *uio;
499 int flag;
500 {
501 register struct tty *tp;
502 int unit = minor( dev );
503
504 /*
505 * If this is the mouse we simply fake the i/o, otherwise
506 * we let the line disp. handle it.
507 */
508 if (QVCHAN(unit) == QVMOUSECHAN) {
509 uio->uio_offset = uio->uio_resid;
510 uio->uio_resid = 0;
511 return 0;
512 }
513 tp = &qv_tty[unit];
514 return ((*tp->t_linesw->l_write)(tp, uio));
515 }
516
517 int
518 qvpoll(dev, events, p)
519 dev_t dev;
520 int events;
521 struct proc *p;
522 {
523 register struct tty *tp;
524 int unit = minor( dev );
525
526 /*
527 * XXX Should perform similar checks to deprecated `qvselect()'
528 */
529 tp = &qv_tty[unit];
530 return ((*tp->t_linesw->l_poll)(tp, events, p));
531 }
532
533 /*
534 * XXX Is qvselect() even useful now?
535 * This driver looks to have suffered some serious bit-rot...
536 */
537
538 /*
539 * Mouse activity select routine
540 */
541 qvselect(dev, rw)
542 dev_t dev;
543 {
544 register int s = spl5();
545 register struct qv_info *qp = qv_scn;
546
547 if( QVCHAN(minor(dev)) == QVMOUSECHAN )
548 switch(rw) {
549 case FREAD: /* if events okay */
550 if(qp->ihead != qp->itail) {
551 splx(s);
552 return(1);
553 }
554 qvrsel = u.u_procp;
555 splx(s);
556 return(0);
557 default: /* can never write */
558 splx(s);
559 return(0);
560 }
561 else {
562 splx(s);
563 return( ttselect(dev, rw) );
564 }
565 /*NOTREACHED*/
566 }
567
568 /*
569 * QVSS keyboard interrupt.
570 */
571 qvkint(qv)
572 int qv;
573 {
574 struct tty *tp;
575 register c;
576 struct uba_device *ui;
577 register int key;
578 register int i;
579
580 ui = qvinfo[qv];
581 if (ui == 0 || ui->ui_alive == 0)
582 return;
583 tp = &qv_tty[qv<<2];
584 /*
585 * Get a character from the keyboard.
586 */
587 key = ((struct qvdevice *)ui->ui_addr)->qv_uartdata & 0xff;
588 if( mouseon == 0) {
589 /*
590 * Check for various keyboard errors
591 */
592 if( key == LK_POWER_ERROR || key == LK_KDOWN_ERROR ||
593 key == LK_INPUT_ERROR || key == LK_OUTPUT_ERROR) {
594 log(LOG_ERR,
595 "qv%d: Keyboard error, code = %x\n",qv,key);
596 return;
597 }
598 if( key < LK_LOWEST ) return;
599 /*
600 * See if its a state change key
601 */
602 switch ( key ) {
603 case LOCK:
604 qv_keyboard.lock ^= 0xffff; /* toggle */
605 if( qv_keyboard.lock )
606 qv_key_out( LK_LED_ENABLE );
607 else
608 qv_key_out( LK_LED_DISABLE );
609 qv_key_out( LED_3 );
610 return;
611 case SHIFT:
612 qv_keyboard.shift ^= 0xffff;
613 return;
614 case CNTRL:
615 qv_keyboard.cntrl ^= 0xffff;
616 return;
617 case ALLUP:
618 qv_keyboard.cntrl = qv_keyboard.shift = 0;
619 return;
620 case REPEAT:
621 c = qv_keyboard.last;
622 break;
623 default:
624 /*
625 * Test for control characters. If set, see if the character
626 * is elligible to become a control character.
627 */
628 if( qv_keyboard.cntrl ) {
629 c = q_key[ key ];
630 if( c >= ' ' && c <= '~' )
631 c &= 0x1f;
632 } else if( qv_keyboard.lock || qv_keyboard.shift )
633 c = q_shift_key[ key ];
634 else
635 c = q_key[ key ];
636 break;
637 }
638
639 qv_keyboard.last = c;
640
641 /*
642 * Check for special function keys
643 */
644 if( c & 0x80 ) {
645 register char *string;
646 string = q_special[ c & 0x7f ];
647 while( *string )
648 (*tp->t_linesw->l_rint)(*string++, tp);
649 } else
650 (*tp->t_linesw->l_rint)(c, tp);
651 } else {
652 /*
653 * Mouse channel is open put it into the event queue
654 * instead.
655 */
656 register struct qv_info *qp = qv_scn;
657 register vsEvent *vep;
658
659 if ((i = EVROUND(qp->itail+1)) == qp->ihead)
660 return;
661 vep = &qp->ibuff[qp->itail];
662 vep->vse_direction = VSE_KBTRAW;
663 vep->vse_type = VSE_BUTTON;
664 vep->vse_device = VSE_DKB;
665 vep->vse_x = qp->mouse.x;
666 vep->vse_y = qp->mouse.y;
667 vep->vse_time = TOY;
668 vep->vse_key = key;
669 qp->itail = i;
670 if(qvrsel) {
671 selwakeup(qvrsel,0);
672 qvrsel = 0;
673 }
674 }
675 }
676
677 /*
678 * Ioctl for QVSS.
679 */
680 /*ARGSUSED*/
681 int
682 qvioctl(dev, cmd, data, flag, p)
683 dev_t dev;
684 u_long cmd;
685 register caddr_t data;
686 int flag;
687 struct proc *p;
688 {
689 register struct tty *tp;
690 register int unit = minor(dev);
691 register struct qv_info *qp = qv_scn;
692 register struct qv_kpcmd *qk;
693 register unsigned char *cp;
694 int error;
695
696 /*
697 * Check for and process qvss specific ioctl's
698 */
699 switch( cmd ) {
700 case QIOCGINFO: /* return screen info */
701 bcopy((caddr_t)qp, data, sizeof (struct qv_info));
702 break;
703
704 case QIOCSMSTATE: /* set mouse state */
705 qp->mouse = *((vsCursor *)data);
706 qv_pos_cur( qp->mouse.x, qp->mouse.y );
707 break;
708
709 case QIOCINIT: /* init screen */
710 qv_init( qp->qvaddr );
711 break;
712
713 case QIOCKPCMD:
714 qk = (struct qv_kpcmd *)data;
715 if(qk->nbytes == 0) qk->cmd |= 0200;
716 if(mouseon == 0) qk->cmd |= 1; /* no mode changes */
717 qv_key_out(qk->cmd);
718 cp = &qk->par[0];
719 while(qk->nbytes-- > 0) { /* terminate parameters */
720 if(qk->nbytes <= 0) *cp |= 0200;
721 qv_key_out(*cp++);
722 }
723 break;
724 case QIOCADDR: /* get struct addr */
725 *(struct qv_info **) data = qp;
726 break;
727 default: /* not ours ?? */
728 tp = &qv_tty[unit];
729 error = (*tp->t_linesw->l_ioctl)(tp, cmd, data, flag);
730 if (error != EPASSTHROUGH)
731 return (error);
732 return ttioctl(tp, cmd, data, flag);
733 break;
734 }
735 return (0);
736 }
737 /*
738 * Initialize the screen and the scanmap
739 */
740 qv_init(qvaddr)
741 struct qvdevice *qvaddr;
742 {
743 register short *scanline;
744 register int i;
745 register short scan;
746 register char *ptr;
747 register struct qv_info *qp = qv_scn;
748
749 /*
750 * Clear the bit map
751 */
752 for( i=0 , ptr = qp->bitmap ; i<240 ; i += 2 , ptr += 2048)
753 bzero( ptr, 2048 );
754 /*
755 * Reinitialize the scanmap
756 */
757 scan = qvaddr->qv_csr & QV_MEM_BANK;
758 scanline = qp->scanmap;
759 for(i = 0 ; i < qp->max_y ; i++ )
760 *scanline++ = scan++;
761
762 /*
763 * Home the cursor
764 */
765 qp->row = qp->col = 0;
766
767 /*
768 * Reset the cursor to the default type.
769 */
770 for( i=0 ; i<16 ; i++ )
771 qp->cursorbits[i] = q_cursor[i];
772 qvaddr->qv_csr |= QV_CUR_MODE;
773 /*
774 * Reset keyboard to default state.
775 */
776 qvkbdreset();
777 }
778
779 qvreset()
780 {
781 }
782 qvkbdreset()
783 {
784 register int i;
785 qv_key_out(LK_DEFAULTS);
786 for( i=1 ; i < 15 ; i++ )
787 qv_key_out( divdefaults[i] | (i<<3));
788 for (i = 0; i < KBD_INIT_LENGTH; i++)
789 qv_key_out(kbdinitstring[i]);
790 }
791
792 #define abs(x) (((x) > 0) ? (x) : (-(x)))
793 /*
794 * QVSS vertical sync interrupt
795 */
796 qvvint(qv)
797 int qv;
798 {
799 extern int selwait;
800 register struct qvdevice *qvaddr;
801 struct uba_device *ui;
802 register struct qv_info *qp = qv_scn;
803 int unit;
804 struct tty *tp0;
805 int i;
806 register int j;
807 /*
808 * Mouse state info
809 */
810 static ushort omouse = 0, nmouse = 0;
811 static char omx=0, omy=0, mx=0, my=0, om_switch=0, m_switch=0;
812 register int dx, dy;
813
814 /*
815 * Test and set the qv_ipl_lo flag. If the result is not zero then
816 * someone else must have already gotten here.
817 */
818 if( --qv_ipl_lo )
819 return;
820 (void)spl4();
821 ui = qvinfo[qv];
822 unit = qv<<2;
823 qvaddr = (struct qvdevice *)ui->ui_addr;
824 tp0 = &qv_tty[QVCHAN(unit) + QVMOUSECHAN];
825 /*
826 * See if the mouse has moved.
827 */
828 if( omouse != (nmouse = qvaddr->qv_mouse) ) {
829 omouse = nmouse;
830 mx = nmouse & 0xff;
831 my = nmouse >> 8;
832 dy = my - omy; omy = my;
833 dx = mx - omx; omx = mx;
834 if( dy < 50 && dy > -50 && dx < 50 && dx > -50 ) {
835 register vsEvent *vep;
836 if( qp->mscale < 0 ) { /* Ray Lanza's original */
837 if( dy < 0 )
838 dy = -( dy * dy );
839 else
840 dy *= dy;
841 if( dx < 0 )
842 dx = -( dx * dx );
843 else
844 dx *= dx;
845 }
846 else { /* Vs100 style, see WGA spec */
847 int thresh = qp->mthreshold;
848 int scale = qp->mscale;
849 if( abs(dx) > thresh ) {
850 if ( dx < 0 )
851 dx = (dx + thresh)*scale - thresh;
852 else
853 dx = (dx - thresh)*scale + thresh;
854 }
855 if( abs(dy) > thresh ) {
856 if ( dy < 0 )
857 dy = (dy + thresh)*scale - thresh;
858 else
859 dy = (dy - thresh)*scale + thresh;
860 }
861 }
862 qp->mouse.x += dx;
863 qp->mouse.y -= dy;
864 if( qp->mouse.x < 0 )
865 qp->mouse.x = 0;
866 if( qp->mouse.y < 0 )
867 qp->mouse.y = 0;
868 if( qp->mouse.x > qp->max_cur_x )
869 qp->mouse.x = qp->max_cur_x;
870 if( qp->mouse.y > qp->max_cur_y )
871 qp->mouse.y = qp->max_cur_y;
872 if( tp0->t_state & TS_ISOPEN )
873 qv_pos_cur( qp->mouse.x, qp->mouse.y );
874 if (qp->mouse.y < qp->mbox.bottom &&
875 qp->mouse.y >= qp->mbox.top &&
876 qp->mouse.x < qp->mbox.right &&
877 qp->mouse.x >= qp->mbox.left) goto switches;
878 qp->mbox.bottom = 0; /* trash box */
879 if (EVROUND(qp->itail+1) == qp->ihead)
880 goto switches;
881 i = EVROUND(qp->itail - 1);
882 if ((qp->itail != qp->ihead) && (i != qp->ihead)) {
883 vep = & qp->ibuff[i];
884 if(vep->vse_type == VSE_MMOTION) {
885 vep->vse_x = qp->mouse.x;
886 vep->vse_y = qp->mouse.y;
887 goto switches;
888 }
889 }
890 /* put event into queue and do select */
891 vep = & qp->ibuff[qp->itail];
892 vep->vse_type = VSE_MMOTION;
893 vep->vse_time = TOY;
894 vep->vse_x = qp->mouse.x;
895 vep->vse_y = qp->mouse.y;
896 qp->itail = EVROUND(qp->itail+1);
897 }
898 }
899 /*
900 * See if mouse switches have changed.
901 */
902 switches:if( om_switch != ( m_switch = (qvaddr->qv_csr & QV_MOUSE_ANY) >> 8 ) ) {
903 qp->mswitches = ~m_switch & 0x7;
904 for (j = 0; j < 3; j++) { /* check each switch */
905 register vsEvent *vep;
906 if ( ((om_switch>>j) & 1) == ((m_switch>>j) & 1) )
907 continue;
908 /* check for room in the queue */
909 if ((i = EVROUND(qp->itail+1)) == qp->ihead) return;
910 /* put event into queue and do select */
911 vep = &qp->ibuff[qp->itail];
912 vep->vse_type = VSE_BUTTON;
913 vep->vse_key = 2 - j;
914 vep->vse_direction = VSE_KBTDOWN;
915 if ( (m_switch >> j) & 1)
916 vep->vse_direction = VSE_KBTUP;
917 vep->vse_device = VSE_MOUSE;
918 vep->vse_time = TOY;
919 vep->vse_x = qp->mouse.x;
920 vep->vse_y = qp->mouse.y;
921 }
922 qp->itail = i;
923 om_switch = m_switch;
924 qp->mswitches = m_switch;
925 }
926 /* if we have proc waiting, and event has happened, wake him up */
927 if(qvrsel && (qp->ihead != qp->itail)) {
928 selwakeup(qvrsel,0);
929 qvrsel = 0;
930 }
931 /*
932 * Okay we can take another hit now
933 */
934 qv_ipl_lo = 1;
935 }
936
937 /*
938 * Start transmission
939 */
940 qvstart(tp)
941 register struct tty *tp;
942 {
943 register int unit, c;
944 register struct tty *tp0;
945 int s;
946
947 unit = minor(tp->t_dev);
948 #ifdef CONS_HACK
949 tp0 = &qv_tty[(unit&0xfc)+QVPCONS];
950 #endif
951 unit = QVCHAN(unit);
952
953 s = spl5();
954 /*
955 * If it's currently active, or delaying, no need to do anything.
956 */
957 if (tp->t_state&(TS_TIMEOUT|TS_BUSY|TS_TTSTOP))
958 goto out;
959 /*
960 * Display chars until the queue is empty, if the second subchannel
961 * is open direct them there. Drop characters from subchannels other
962 * than 0 on the floor.
963 */
964
965 while( tp->t_outq.c_cc ) {
966 c = getc(&tp->t_outq);
967 if (unit == QVKEYBOARD)
968 #ifdef CONS_HACK
969 if( tp0->t_state & TS_ISOPEN ){
970 (*linesw[tp0->t_line].l_rint)(c, tp0);
971 } else
972 #endif
973 qvputchar( c & 0xff );
974 }
975 /*
976 * Position the cursor to the next character location.
977 */
978 qv_pos_cur( qv_scn->col*8, qv_scn->row*15 );
979
980 /*
981 * If there are sleepers, and output has drained below low
982 * water mark, wake up the sleepers.
983 */
984 if ( tp->t_outq.c_cc<= tp->t_lowat ) {
985 if (tp->t_state&TS_ASLEEP){
986 tp->t_state &= ~TS_ASLEEP;
987 wakeup((caddr_t)&tp->t_outq);
988 }
989 }
990 tp->t_state &= ~TS_BUSY;
991 out:
992 splx(s);
993 }
994
995 /*
996 * Stop output on a line, e.g. for ^S/^Q or output flush.
997 */
998 /*ARGSUSED*/
999 void
1000 qvstop(tp, flag)
1001 register struct tty *tp;
1002 int flag;
1003 {
1004 register int s;
1005
1006 /*
1007 * Block input/output interrupts while messing with state.
1008 */
1009 s = spl5();
1010 if (tp->t_state & TS_BUSY) {
1011 if ((tp->t_state&TS_TTSTOP)==0) {
1012 tp->t_state |= TS_FLUSH;
1013 } else
1014 tp->t_state &= ~TS_BUSY;
1015 }
1016 splx(s);
1017 }
1018
1019 qvputc(c)
1020 char c;
1021 {
1022 qvputchar(c);
1023 if (c == '\n')
1024 qvputchar('\r');
1025 }
1026
1027 /*
1028 * Routine to display a character on the screen. The model used is a
1029 * glass tty. It is assummed that the user will only use this emulation
1030 * during system boot and that the screen will be eventually controlled
1031 * by a window manager.
1032 *
1033 */
1034 qvputchar( c )
1035 register char c;
1036 {
1037
1038 register char *b_row, *f_row;
1039 register int i;
1040 register short *scanline;
1041 register int ote = 128;
1042 register struct qv_info *qp = qv_scn;
1043
1044 /*
1045 * This routine may be called in physical mode by the dump code
1046 * so we check and punt if that's the case.
1047 */
1048 if( (mfpr(MAPEN) & 1) == 0 )
1049 return;
1050
1051 c &= 0x7f;
1052
1053 switch ( c ) {
1054 case '\t': /* tab */
1055 for( i = 8 - (qp->col & 0x7) ; i > 0 ; i-- )
1056 qvputchar( ' ' );
1057 break;
1058
1059 case '\r': /* return */
1060 qp->col = 0;
1061 break;
1062
1063 case '\010': /* backspace */
1064 if( --qp->col < 0 )
1065 qp->col = 0;
1066 break;
1067
1068 case '\n': /* linefeed */
1069 if( qp->row+1 >= qp->max_row )
1070 qvscroll();
1071 else
1072 qp->row++;
1073 /*
1074 * Position the cursor to the next character location.
1075 */
1076 qv_pos_cur( qp->col*8, qp->row*15 );
1077 break;
1078
1079 case '\007': /* bell */
1080 /*
1081 * We don't do anything to the keyboard until after
1082 * autoconfigure.
1083 */
1084 if( qp->qvaddr )
1085 qv_key_out( LK_RING_BELL );
1086 return;
1087
1088 default:
1089 if( c >= ' ' && c <= '~' ) {
1090 scanline = qp->scanmap;
1091 b_row = qp->bitmap+(scanline[qp->row*15]&0x3ff)*128+qp->col;
1092 i = c - ' ';
1093 if( i < 0 || i > 95 )
1094 i = 0;
1095 else
1096 i *= 15;
1097 f_row = (char *)((int)q_font + i);
1098
1099 /* for( i=0 ; i<15 ; i++ , b_row += 128, f_row++ )
1100 *b_row = *f_row;*/
1101 /* inline expansion for speed */
1102 *b_row = *f_row++; b_row += ote;
1103 *b_row = *f_row++; b_row += ote;
1104 *b_row = *f_row++; b_row += ote;
1105 *b_row = *f_row++; b_row += ote;
1106 *b_row = *f_row++; b_row += ote;
1107 *b_row = *f_row++; b_row += ote;
1108 *b_row = *f_row++; b_row += ote;
1109 *b_row = *f_row++; b_row += ote;
1110 *b_row = *f_row++; b_row += ote;
1111 *b_row = *f_row++; b_row += ote;
1112 *b_row = *f_row++; b_row += ote;
1113 *b_row = *f_row++; b_row += ote;
1114 *b_row = *f_row++; b_row += ote;
1115 *b_row = *f_row++; b_row += ote;
1116 *b_row = *f_row++; b_row += ote;
1117
1118 if( ++qp->col >= qp->max_col ) {
1119 qp->col = 0 ;
1120 if( qp->row+1 >= qp->max_row )
1121 qvscroll();
1122 else
1123 qp->row++;
1124 }
1125 }
1126 break;
1127 }
1128 }
1129
1130 /*
1131 * Position the cursor to a particular spot.
1132 */
1133 qv_pos_cur( x, y)
1134 register int x,y;
1135 {
1136 register struct qvdevice *qvaddr;
1137 register struct qv_info *qp = qv_scn;
1138 register index;
1139
1140 if( qvaddr = qp->qvaddr ) {
1141 if( y < 0 || y > qp->max_cur_y )
1142 y = qp->max_cur_y;
1143 if( x < 0 || x > qp->max_cur_x )
1144 x = qp->max_cur_x;
1145 qp->cursor.x = x; /* keep track of real cursor*/
1146 qp->cursor.y = y; /* position, indep. of mouse*/
1147
1148 qvaddr->qv_crtaddr = 10; /* select cursor start reg */
1149 qvaddr->qv_crtdata = y & 0xf;
1150 qvaddr->qv_crtaddr = 11; /* select cursor end reg */
1151 qvaddr->qv_crtdata = y & 0xf;
1152 qvaddr->qv_crtaddr = 14; /* select cursor y pos. */
1153 qvaddr->qv_crtdata = y >> 4;
1154 qvaddr->qv_xcur = x; /* pos x axis */
1155 /*
1156 * If the mouse is being used then we change the mode of
1157 * cursor display based on the pixels under the cursor
1158 */
1159 if( mouseon ) {
1160 index = y*128 + x/8;
1161 if( qp->bitmap[ index ] && qp->bitmap[ index+128 ] )
1162 qvaddr->qv_csr &= ~QV_CUR_MODE;
1163 else
1164 qvaddr->qv_csr |= QV_CUR_MODE;
1165 }
1166 }
1167 }
1168 /*
1169 * Scroll the bitmap by moving the scanline map words. This could
1170 * be done by moving the bitmap but it's much too slow for a full screen.
1171 * The only drawback is that the scanline map must be reset when the user
1172 * wants to do graphics.
1173 */
1174 qvscroll()
1175 {
1176 short tmpscanlines[15];
1177 register char *b_row;
1178 register short *scanline;
1179 register struct qv_info *qp = qv_scn;
1180
1181 /*
1182 * If the mouse is on we don't scroll so that the bit map
1183 * remains sane.
1184 */
1185 if( mouseon ) {
1186 qp->row = 0;
1187 return;
1188 }
1189 /*
1190 * Save the first 15 scanlines so that we can put them at
1191 * the bottom when done.
1192 */
1193 bcopy((caddr_t)qp->scanmap, (caddr_t)tmpscanlines, sizeof tmpscanlines);
1194
1195 /*
1196 * Clear the wrapping line so that it won't flash on the bottom
1197 * of the screen.
1198 */
1199 scanline = qp->scanmap;
1200 b_row = qp->bitmap+(*scanline&0x3ff)*128;
1201 bzero( b_row, 1920 );
1202
1203 /*
1204 * Now move the scanlines down
1205 */
1206 bcopy((caddr_t)(qp->scanmap+15), (caddr_t)qp->scanmap,
1207 (qp->row * 15) * sizeof (short) );
1208
1209 /*
1210 * Now put the other lines back
1211 */
1212 bcopy((caddr_t)tmpscanlines, (caddr_t)(qp->scanmap+(qp->row * 15)),
1213 sizeof (tmpscanlines) );
1214
1215 }
1216
1217 /*
1218 * Output to the keyboard. This routine status polls the transmitter on the
1219 * keyboard to output a code. The timer is to avoid hanging on a bad device.
1220 */
1221 qv_key_out(c)
1222 u_short c;
1223 {
1224 int timer = 30000;
1225 register struct qv_info *qp = qv_scn;
1226
1227 if (qp->qvaddr) {
1228 while ((qp->qvaddr->qv_uartstatus & 0x4) == 0 && timer--)
1229 ;
1230 qp->qvaddr->qv_uartdata = c;
1231 }
1232 }
1233 /*
1234 * Virtual console initialization. This routine sets up the qvss so that it can
1235 * be used as the system console. It is invoked before autoconfig and has to do
1236 * everything necessary to allow the device to serve as the system console.
1237 * In this case it must map the q-bus and device areas and initialize the qvss
1238 * screen.
1239 */
1240 qvcons_init()
1241 {
1242 struct percpu *pcpu; /* pointer to percpu structure */
1243 register struct qbus *qb;
1244 struct qvdevice *qvaddr; /* device pointer */
1245 short *devptr; /* virtual device space */
1246 extern cnputc(); /* standard serial console putc */
1247 #define QVSSCSR 017200
1248
1249 /*
1250 * If secondary console already configured,
1251 * don't override the previous one.
1252 */
1253 if (v_putc != cnputc)
1254 return 0;
1255 /*
1256 * find the percpu entry that matches this machine.
1257 */
1258 for( pcpu = percpu ; pcpu && pcpu->pc_cputype != cpu ; pcpu++ )
1259 ;
1260 if( pcpu == NULL )
1261 return 0;
1262 if (pcpu->pc_io->io_type != IO_QBUS)
1263 return 0;
1264
1265 /*
1266 * Found an entry for this CPU. Because this device is Microvax specific
1267 * we assume that there is a single q-bus and don't have to worry about
1268 * multiple adapters.
1269 *
1270 * Map the device registers.
1271 */
1272 qb = (struct qbus *)pcpu->pc_io->io_details;
1273 ioaccess(qb->qb_iopage, UMEMmap[0] + qb->qb_memsize, UBAIOPAGES * VAX_NBPG);
1274
1275 /*
1276 * See if the qvss is there.
1277 */
1278 devptr = (short *)((char *)umem[0] + (qb->qb_memsize * VAX_NBPG));
1279 qvaddr = (struct qvdevice *)((u_int)devptr + ubdevreg(QVSSCSR));
1280 if (badaddr((caddr_t)qvaddr, sizeof(short)))
1281 return 0;
1282 /*
1283 * Okay the device is there lets set it up
1284 */
1285 if (!qv_setup(qvaddr, 0, 0))
1286 return 0;
1287 v_putc = qvputc;
1288 consops = &qv_cdevsw;
1289 return 1;
1290 }
1291 /*
1292 * Do the board specific setup
1293 */
1294 qv_setup(qvaddr, unit, probed)
1295 struct qvdevice *qvaddr;
1296 int unit;
1297 int probed;
1298 {
1299 caddr_t qvssmem; /* pointer to the display mem */
1300 register i; /* simple index */
1301 register struct qv_info *qp;
1302 register int *pte;
1303 struct percpu *pcpu; /* pointer to percpu structure */
1304 register struct qbus *qb;
1305
1306 /*
1307 * find the percpu entry that matches this machine.
1308 */
1309 for( pcpu = percpu ; pcpu && pcpu->pc_cputype != cpu ; pcpu++ )
1310 ;
1311 if( pcpu == NULL )
1312 return(0);
1313
1314 /*
1315 * Found an entry for this CPU. Because this device is Microvax specific
1316 * we assume that there is a single q-bus and don't have to worry about
1317 * multiple adapters.
1318 *
1319 * Map the device memory.
1320 */
1321 qb = (struct qbus *)pcpu->pc_io->io_details;
1322
1323 i = (u_int)(qvaddr->qv_csr & QV_MEM_BANK) << 7;
1324 ioaccess(qb->qb_maddr + i, QVmap[unit], 512 * VAX_NBPG);
1325 qvssmem = qvmem[unit];
1326 pte = (int *)(QVmap[unit]);
1327 for (i=0; i < 512; i++, pte++)
1328 *pte = (*pte & ~PG_PROT) | PG_UW | PG_V;
1329
1330 qv_scn = (struct qv_info *)((u_int)qvssmem + 251*1024);
1331 qp = qv_scn;
1332 if( (qvaddr->qv_csr & QV_19INCH) && qv_def_scrn == 0)
1333 qv_def_scrn = 1;
1334 *qv_scn = qv_scn_defaults[ qv_def_scrn ];
1335 if (probed)
1336 qp->qvaddr = qvaddr;
1337 qp->bitmap = qvssmem;
1338 qp->scanmap = (short *)((u_int)qvssmem + 254*1024);
1339 qp->cursorbits = (short *)((u_int)qvssmem + 256*1024-32);
1340 /* set up event queue for later */
1341 qp->ibuff = (vsEvent *)qp - QVMAXEVQ;
1342 qp->iqsize = QVMAXEVQ;
1343 qp->ihead = qp->itail = 0;
1344
1345 /*
1346 * Setup the crt controller chip.
1347 */
1348 for( i=0 ; i<16 ; i++ ) {
1349 qvaddr->qv_crtaddr = i;
1350 qvaddr->qv_crtdata = qv_crt_parms[ qv_def_scrn ][ i ];
1351 }
1352 /*
1353 * Setup the display.
1354 */
1355 qv_init( qvaddr );
1356
1357 /*
1358 * Turn on the video
1359 */
1360 qvaddr->qv_csr |= QV_VIDEO_ENA ;
1361 return 1;
1362 }
1363 #endif
1364