zs.c revision 1.2 1 1.1 glass /*
2 1.1 glass * Copyright (c) 1992, 1993
3 1.1 glass * The Regents of the University of California. All rights reserved.
4 1.1 glass *
5 1.1 glass * This software was developed by the Computer Systems Engineering group
6 1.1 glass * at Lawrence Berkeley Laboratory under DARPA contract BG 91-66 and
7 1.1 glass * contributed to Berkeley.
8 1.1 glass *
9 1.1 glass * All advertising materials mentioning features or use of this software
10 1.1 glass * must display the following acknowledgement:
11 1.1 glass * This product includes software developed by the University of
12 1.1 glass * California, Lawrence Berkeley Laboratory.
13 1.1 glass *
14 1.1 glass * Redistribution and use in source and binary forms, with or without
15 1.1 glass * modification, are permitted provided that the following conditions
16 1.1 glass * are met:
17 1.1 glass * 1. Redistributions of source code must retain the above copyright
18 1.1 glass * notice, this list of conditions and the following disclaimer.
19 1.1 glass * 2. Redistributions in binary form must reproduce the above copyright
20 1.1 glass * notice, this list of conditions and the following disclaimer in the
21 1.1 glass * documentation and/or other materials provided with the distribution.
22 1.1 glass * 3. All advertising materials mentioning features or use of this software
23 1.1 glass * must display the following acknowledgement:
24 1.1 glass * This product includes software developed by the University of
25 1.1 glass * California, Berkeley and its contributors.
26 1.1 glass * 4. Neither the name of the University nor the names of its contributors
27 1.1 glass * may be used to endorse or promote products derived from this software
28 1.1 glass * without specific prior written permission.
29 1.1 glass *
30 1.1 glass * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
31 1.1 glass * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
32 1.1 glass * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
33 1.1 glass * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
34 1.1 glass * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
35 1.1 glass * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
36 1.1 glass * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
37 1.1 glass * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
38 1.1 glass * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
39 1.1 glass * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
40 1.1 glass * SUCH DAMAGE.
41 1.1 glass *
42 1.1 glass * @(#)zs.c 8.1 (Berkeley) 7/19/93
43 1.1 glass *
44 1.1 glass * from: Header: zs.c,v 1.30 93/07/19 23:44:42 torek Exp
45 1.1 glass * from: Id: sparc/dev/zs.c,v 1.3 1993/10/13 02:36:44 deraadt Exp
46 1.2 glass * gwr: merged some of Adam's changes and fixed some bugs.
47 1.1 glass */
48 1.1 glass
49 1.1 glass /*
50 1.1 glass * Zilog Z8530 (ZSCC) driver.
51 1.1 glass *
52 1.1 glass * Runs two tty ports (ttya and ttyb) on zs0,
53 1.1 glass * and runs a keyboard and mouse on zs1.
54 1.1 glass *
55 1.1 glass * This driver knows far too much about chip to usage mappings.
56 1.1 glass */
57 1.1 glass #define NZS 2 /* XXX */
58 1.1 glass
59 1.1 glass #include <sys/systm.h>
60 1.1 glass #include <sys/param.h>
61 1.1 glass #include <sys/proc.h>
62 1.1 glass #include <sys/device.h>
63 1.1 glass #include <sys/conf.h>
64 1.1 glass #include <sys/file.h>
65 1.1 glass #include <sys/ioctl.h>
66 1.1 glass #include <sys/tty.h>
67 1.1 glass #include <sys/time.h>
68 1.1 glass #include <sys/kernel.h>
69 1.1 glass #include <sys/syslog.h>
70 1.1 glass #include <sys/conf.h>
71 1.1 glass
72 1.1 glass #include <machine/autoconf.h>
73 1.1 glass #include <machine/cpu.h>
74 1.1 glass #include <machine/obio.h>
75 1.1 glass
76 1.2 glass #include "cons.h"
77 1.1 glass #include "kbd.h"
78 1.1 glass #include "zsreg.h"
79 1.1 glass #include "zsvar.h"
80 1.1 glass
81 1.1 glass #ifdef KGDB
82 1.1 glass #include <machine/remote-sl.h>
83 1.1 glass #endif
84 1.1 glass
85 1.2 glass /* #define DEBUG 1 */
86 1.2 glass
87 1.1 glass #define ZSMAJOR 12 /* XXX */
88 1.1 glass
89 1.1 glass #define ZS_KBD 2 /* XXX */
90 1.1 glass #define ZS_MOUSE 3 /* XXX */
91 1.1 glass
92 1.2 glass /* The Sun3 provides a 4.9152 MHz clock to the ZS chips. */
93 1.2 glass #define PCLK (9600 * 512) /* PCLK pin input clock rate */
94 1.2 glass
95 1.2 glass /*
96 1.2 glass * Select software interrupt levels.
97 1.2 glass */
98 1.2 glass #define ZSSOFT_PRI 2 /* XXX - Want TTY_PRI */
99 1.2 glass #define ZSHARD_PRI 6 /* Wired on the CPU board... */
100 1.1 glass
101 1.1 glass /*
102 1.1 glass * Software state per found chip. This would be called `zs_softc',
103 1.1 glass * but the previous driver had a rather different zs_softc....
104 1.1 glass */
105 1.1 glass struct zsinfo {
106 1.1 glass struct device zi_dev; /* base device */
107 1.1 glass volatile struct zsdevice *zi_zs;/* chip registers */
108 1.1 glass struct zs_chanstate zi_cs[2]; /* channel A and B software state */
109 1.1 glass };
110 1.1 glass
111 1.1 glass struct tty *zs_tty[NZS * 2]; /* XXX should be dynamic */
112 1.1 glass
113 1.1 glass /* Definition of the driver for autoconfig. */
114 1.2 glass static int zsmatch(struct device *, struct cfdata *, void *);
115 1.2 glass static void zsattach(struct device *, struct device *, void *);
116 1.1 glass struct cfdriver zscd =
117 1.1 glass { NULL, "zs", zsmatch, zsattach, DV_TTY, sizeof(struct zsinfo) };
118 1.1 glass
119 1.1 glass /* Interrupt handlers. */
120 1.2 glass static int zshard(int);
121 1.2 glass static int zssoft(int);
122 1.1 glass
123 1.1 glass struct zs_chanstate *zslist;
124 1.1 glass
125 1.1 glass /* Routines called from other code. */
126 1.2 glass int zsopen(dev_t, int, int, struct proc *);
127 1.2 glass int zsclose(dev_t, int, int, struct proc *);
128 1.2 glass static void zsiopen(struct tty *);
129 1.2 glass static void zsiclose(struct tty *);
130 1.2 glass static void zsstart(struct tty *);
131 1.2 glass void zsstop(struct tty *, int);
132 1.2 glass static int zsparam(struct tty *, struct termios *);
133 1.1 glass
134 1.1 glass /* Routines purely local to this driver. */
135 1.2 glass static int zs_getspeed(volatile struct zschan *);
136 1.2 glass static void zs_reset(volatile struct zschan *, int, int);
137 1.2 glass static void zs_modem(struct zs_chanstate *, int);
138 1.2 glass static void zs_loadchannelregs(volatile struct zschan *, u_char *);
139 1.2 glass static void zs_delay(void);
140 1.2 glass static u_char zs_read(volatile struct zschan *, u_char);
141 1.2 glass static u_char zs_write(volatile struct zschan *, u_char, u_char);
142 1.1 glass
143 1.1 glass /* Console stuff. */
144 1.1 glass static struct tty *zs_ctty; /* console `struct tty *' */
145 1.1 glass static int zs_consin = -1, zs_consout = -1;
146 1.1 glass static int zscnputc(int); /* console putc function */
147 1.1 glass static volatile struct zschan *zs_conschan;
148 1.2 glass static struct tty *zs_checkcons(struct zsinfo *, int, struct zs_chanstate *);
149 1.1 glass
150 1.1 glass #ifdef KGDB
151 1.1 glass /* KGDB stuff. Must reboot to change zs_kgdbunit. */
152 1.1 glass extern int kgdb_dev, kgdb_rate;
153 1.1 glass static int zs_kgdb_savedspeed;
154 1.2 glass static void zs_checkkgdb(int, struct zs_chanstate *, struct tty *);
155 1.1 glass #endif
156 1.1 glass
157 1.1 glass static volatile struct zsdevice *zsaddr[NZS];
158 1.1 glass
159 1.1 glass /*
160 1.1 glass * Console keyboard L1-A processing is done in the hardware interrupt code,
161 1.1 glass * so we need to duplicate some of the console keyboard decode state. (We
162 1.1 glass * must not use the regular state as the hardware code keeps ahead of the
163 1.1 glass * software state: the software state tracks the most recent ring input but
164 1.1 glass * the hardware state tracks the most recent ZSCC input.) See also kbd.h.
165 1.1 glass */
166 1.1 glass static struct conk_state { /* console keyboard state */
167 1.1 glass char conk_id; /* true => ID coming up (console only) */
168 1.1 glass char conk_l1; /* true => L1 pressed (console only) */
169 1.1 glass } zsconk_state;
170 1.1 glass
171 1.1 glass int zshardscope;
172 1.1 glass int zsshortcuts; /* number of "shortcut" software interrupts */
173 1.1 glass
174 1.1 glass /*
175 1.1 glass * Match slave number to zs unit number, so that misconfiguration will
176 1.1 glass * not set up the keyboard as ttya, etc.
177 1.1 glass */
178 1.1 glass static int
179 1.1 glass zsmatch(struct device *parent, struct cfdata *cf, void *aux)
180 1.1 glass {
181 1.2 glass struct obio_cf_loc *obio_loc;
182 1.2 glass caddr_t zs_addr;
183 1.1 glass
184 1.2 glass obio_loc = (struct obio_cf_loc *) CFDATA_LOC(cf);
185 1.2 glass zs_addr = (caddr_t) obio_loc->obio_addr;
186 1.2 glass return !obio_probe_byte(zs_addr);
187 1.1 glass }
188 1.1 glass
189 1.1 glass /*
190 1.1 glass * Attach a found zs.
191 1.1 glass *
192 1.1 glass * USE ROM PROPERTIES port-a-ignore-cd AND port-b-ignore-cd FOR
193 1.1 glass * SOFT CARRIER, AND keyboard PROPERTY FOR KEYBOARD/MOUSE?
194 1.1 glass */
195 1.1 glass static void
196 1.1 glass zsattach(struct device *parent, struct device *dev, void *aux)
197 1.1 glass {
198 1.2 glass struct obio_cf_loc *obio_loc = OBIO_LOC(dev);
199 1.1 glass register int zs = dev->dv_unit, unit;
200 1.1 glass register struct zsinfo *zi;
201 1.1 glass register struct zs_chanstate *cs;
202 1.1 glass register volatile struct zsdevice *addr;
203 1.1 glass register struct tty *tp, *ctp;
204 1.2 glass int softcar;
205 1.2 glass static int didintr;
206 1.2 glass caddr_t obio_addr;
207 1.2 glass
208 1.2 glass obio_addr = (caddr_t)obio_loc->obio_addr;
209 1.2 glass obio_print(obio_addr, ZSSOFT_PRI);
210 1.2 glass printf(" hwpri %d\n", ZSHARD_PRI);
211 1.1 glass
212 1.2 glass addr = (struct zsdevice *)
213 1.2 glass obio_alloc(obio_addr, OBIO_ZS_SIZE, OBIO_WRITE);
214 1.1 glass
215 1.1 glass if (!didintr) {
216 1.2 glass didintr = 1;
217 1.2 glass isr_add(ZSSOFT_PRI, zssoft, 0);
218 1.2 glass isr_add(ZSHARD_PRI, zshard, 0);
219 1.1 glass }
220 1.2 glass
221 1.1 glass zi = (struct zsinfo *)dev;
222 1.1 glass zi->zi_zs = addr;
223 1.1 glass unit = zs * 2;
224 1.1 glass cs = zi->zi_cs;
225 1.1 glass
226 1.1 glass if(!zs_tty[unit])
227 1.1 glass zs_tty[unit] = ttymalloc();
228 1.1 glass tp = zs_tty[unit];
229 1.1 glass if(!zs_tty[unit+1])
230 1.1 glass zs_tty[unit+1] = ttymalloc();
231 1.2 glass
232 1.1 glass if (unit == 0) {
233 1.1 glass softcar = 0;
234 1.1 glass } else
235 1.1 glass softcar = dev->dv_cfdata->cf_flags;
236 1.1 glass
237 1.1 glass /* link into interrupt list with order (A,B) (B=A+1) */
238 1.1 glass cs[0].cs_next = &cs[1];
239 1.1 glass cs[1].cs_next = zslist;
240 1.1 glass zslist = cs;
241 1.1 glass
242 1.1 glass cs->cs_unit = unit;
243 1.2 glass cs->cs_zc = &addr->zs_chan[CHAN_A];
244 1.2 glass cs->cs_speed = zs_getspeed(cs->cs_zc);
245 1.2 glass #ifdef DEBUG
246 1.2 glass printf("zs%d speed %d ", cs->cs_unit, cs->cs_speed);
247 1.2 glass #endif
248 1.1 glass cs->cs_softcar = softcar & 1;
249 1.2 glass #if 0
250 1.2 glass /* XXX - Drop carrier here? -gwr */
251 1.2 glass zs_modem(cs, cs->cs_softcar ? 1 : 0);
252 1.2 glass #endif
253 1.1 glass tp->t_dev = makedev(ZSMAJOR, unit);
254 1.1 glass tp->t_oproc = zsstart;
255 1.1 glass tp->t_param = zsparam;
256 1.1 glass /*tp->t_stop = zsstop;*/
257 1.1 glass if ((ctp = zs_checkcons(zi, unit, cs)) != NULL)
258 1.1 glass tp = ctp;
259 1.1 glass cs->cs_ttyp = tp;
260 1.1 glass #ifdef KGDB
261 1.1 glass if (ctp == NULL)
262 1.1 glass zs_checkkgdb(unit, cs, tp);
263 1.1 glass #endif
264 1.1 glass if (unit == ZS_KBD) {
265 1.1 glass /*
266 1.1 glass * Keyboard: tell /dev/kbd driver how to talk to us.
267 1.1 glass */
268 1.1 glass tp->t_ispeed = tp->t_ospeed = cs->cs_speed;
269 1.1 glass tp->t_cflag = CS8;
270 1.1 glass kbd_serial(tp, zsiopen, zsiclose);
271 1.1 glass cs->cs_conk = 1; /* do L1-A processing */
272 1.1 glass }
273 1.1 glass unit++;
274 1.1 glass cs++;
275 1.1 glass tp = zs_tty[unit];
276 1.2 glass
277 1.1 glass cs->cs_unit = unit;
278 1.2 glass cs->cs_zc = &addr->zs_chan[CHAN_B];
279 1.2 glass cs->cs_speed = zs_getspeed(cs->cs_zc);
280 1.2 glass #ifdef DEBUG
281 1.2 glass printf("zs%d speed %d\n", cs->cs_unit, cs->cs_speed);
282 1.2 glass #endif
283 1.1 glass cs->cs_softcar = softcar & 2;
284 1.2 glass #if 0
285 1.2 glass /* XXX - Drop carrier here? -gwr */
286 1.2 glass zs_modem(cs, cs->cs_softcar ? 1 : 0);
287 1.2 glass #endif
288 1.1 glass tp->t_dev = makedev(ZSMAJOR, unit);
289 1.1 glass tp->t_oproc = zsstart;
290 1.1 glass tp->t_param = zsparam;
291 1.1 glass /*tp->t_stop = zsstop;*/
292 1.1 glass if ((ctp = zs_checkcons(zi, unit, cs)) != NULL)
293 1.1 glass tp = ctp;
294 1.1 glass cs->cs_ttyp = tp;
295 1.1 glass #ifdef KGDB
296 1.1 glass if (ctp == NULL)
297 1.1 glass zs_checkkgdb(unit, cs, tp);
298 1.1 glass #endif
299 1.1 glass if (unit == ZS_MOUSE) {
300 1.1 glass /*
301 1.1 glass * Mouse: tell /dev/mouse driver how to talk to us.
302 1.1 glass */
303 1.1 glass tp->t_ispeed = tp->t_ospeed = cs->cs_speed;
304 1.1 glass tp->t_cflag = CS8;
305 1.1 glass ms_serial(tp, zsiopen, zsiclose);
306 1.1 glass }
307 1.1 glass }
308 1.1 glass
309 1.1 glass /*
310 1.1 glass * Put a channel in a known state. Interrupts may be left disabled
311 1.1 glass * or enabled, as desired.
312 1.1 glass */
313 1.1 glass static void
314 1.1 glass zs_reset(zc, inten, speed)
315 1.1 glass volatile struct zschan *zc;
316 1.1 glass int inten, speed;
317 1.1 glass {
318 1.1 glass int tconst;
319 1.1 glass static u_char reg[16] = {
320 1.1 glass 0,
321 1.1 glass 0,
322 1.1 glass 0,
323 1.1 glass ZSWR3_RX_8 | ZSWR3_RX_ENABLE,
324 1.1 glass ZSWR4_CLK_X16 | ZSWR4_ONESB | ZSWR4_EVENP,
325 1.1 glass ZSWR5_TX_8 | ZSWR5_TX_ENABLE,
326 1.1 glass 0,
327 1.1 glass 0,
328 1.1 glass 0,
329 1.1 glass 0,
330 1.1 glass ZSWR10_NRZ,
331 1.1 glass ZSWR11_TXCLK_BAUD | ZSWR11_RXCLK_BAUD,
332 1.1 glass 0,
333 1.1 glass 0,
334 1.1 glass ZSWR14_BAUD_FROM_PCLK | ZSWR14_BAUD_ENA,
335 1.1 glass ZSWR15_BREAK_IE | ZSWR15_DCD_IE,
336 1.1 glass };
337 1.1 glass
338 1.1 glass reg[9] = inten ? ZSWR9_MASTER_IE | ZSWR9_NO_VECTOR : ZSWR9_NO_VECTOR;
339 1.1 glass tconst = BPS_TO_TCONST(PCLK / 16, speed);
340 1.1 glass reg[12] = tconst;
341 1.1 glass reg[13] = tconst >> 8;
342 1.1 glass zs_loadchannelregs(zc, reg);
343 1.1 glass }
344 1.1 glass
345 1.2 glass
346 1.2 glass /* This is only called when the EEPROM says the console is ttyA or ttyB */
347 1.2 glass int
348 1.2 glass zscnprobe(struct consdev *cn)
349 1.2 glass {
350 1.2 glass int maj, unit = minor(cn->cn_dev);
351 1.2 glass
352 1.2 glass /* locate the major number */
353 1.2 glass for (maj = 0; maj < nchrdev; maj++)
354 1.2 glass if (cdevsw[maj].d_open == zsopen)
355 1.2 glass break;
356 1.2 glass if (maj >= nchrdev) {
357 1.2 glass cn->cn_pri = CN_DEAD;
358 1.2 glass return 0;
359 1.2 glass }
360 1.2 glass
361 1.2 glass /* initialize required fields */
362 1.2 glass #if 0 /* XXX - Not yet. */
363 1.2 glass cn->cn_dev = makedev(maj, unit);
364 1.2 glass cn->cn_pri = CN_REMOTE;
365 1.2 glass #else
366 1.2 glass cn->cn_pri = CN_DEAD;
367 1.2 glass /* XXX - See below... */
368 1.2 glass #endif
369 1.2 glass return (0);
370 1.2 glass }
371 1.2 glass
372 1.2 glass /* Attach as console. Also set zs_conschan */
373 1.2 glass int
374 1.2 glass zscninit(struct consdev *cn)
375 1.2 glass {
376 1.2 glass int unit = minor(cn->cn_dev);
377 1.2 glass
378 1.2 glass /* XXX - We need a way to find a VA for the device. */
379 1.2 glass /* zs_conschan = zsaddr[unit]; */
380 1.2 glass }
381 1.2 glass
382 1.2 glass
383 1.1 glass #if 0
384 1.1 glass /*
385 1.1 glass * Declare the given tty (which is in fact &cons) as a console input
386 1.1 glass * or output. This happens before the zs chip is attached; the hookup
387 1.1 glass * is finished later, in zs_setcons() below.
388 1.1 glass *
389 1.1 glass * This is used only for ports a and b. The console keyboard is decoded
390 1.1 glass * independently (we always send unit-2 input to /dev/kbd, which will
391 1.1 glass * direct it to /dev/console if appropriate).
392 1.1 glass */
393 1.1 glass void
394 1.1 glass zsconsole(tp, unit, out, fnstop)
395 1.1 glass register struct tty *tp;
396 1.1 glass register int unit;
397 1.1 glass int out;
398 1.1 glass void (**fnstop) __P((struct tty *, int));
399 1.1 glass {
400 1.1 glass extern int (*v_putc)();
401 1.1 glass int zs;
402 1.1 glass volatile struct zsdevice *addr;
403 1.1 glass
404 1.1 glass if (unit >= ZS_KBD)
405 1.1 glass panic("zsconsole");
406 1.1 glass if (out) {
407 1.1 glass zs_consout = unit;
408 1.1 glass zs = unit >> 1;
409 1.1 glass if ((addr = zsaddr[zs]) == NULL)
410 1.2 glass addr = zsaddr[zs] = findzs(zs);
411 1.1 glass zs_conschan = (unit & 1) == 0 ? &addr->zs_chan[CHAN_A] :
412 1.1 glass &addr->zs_chan[CHAN_B];
413 1.1 glass v_putc = zscnputc;
414 1.1 glass } else
415 1.1 glass zs_consin = unit;
416 1.1 glass if(fnstop)
417 1.1 glass *fnstop = &zsstop;
418 1.1 glass zs_ctty = tp;
419 1.1 glass }
420 1.1 glass #endif
421 1.1 glass
422 1.2 glass /*
423 1.2 glass * Polled console input putchar.
424 1.2 glass */
425 1.2 glass int
426 1.2 glass zscngetc()
427 1.2 glass {
428 1.2 glass register volatile struct zschan *zc = zs_conschan;
429 1.2 glass register int s, c;
430 1.2 glass
431 1.2 glass if (zc == NULL)
432 1.2 glass return (0);
433 1.2 glass
434 1.2 glass s = splhigh();
435 1.2 glass while ((zc->zc_csr & ZSRR0_RX_READY) == 0)
436 1.2 glass zs_delay();
437 1.2 glass c = zc->zc_data;
438 1.2 glass splx(s);
439 1.2 glass return (c);
440 1.2 glass }
441 1.1 glass
442 1.1 glass /*
443 1.1 glass * Polled console output putchar.
444 1.1 glass */
445 1.2 glass int
446 1.1 glass zscnputc(c)
447 1.1 glass int c;
448 1.1 glass {
449 1.1 glass register volatile struct zschan *zc = zs_conschan;
450 1.1 glass register int s;
451 1.1 glass
452 1.2 glass if (zc == NULL)
453 1.2 glass return (0);
454 1.2 glass
455 1.1 glass if (c == '\n')
456 1.1 glass zscnputc('\r');
457 1.1 glass s = splhigh();
458 1.1 glass while ((zc->zc_csr & ZSRR0_TX_READY) == 0)
459 1.2 glass zs_delay();
460 1.1 glass zc->zc_data = c;
461 1.1 glass splx(s);
462 1.1 glass }
463 1.2 glass
464 1.1 glass /*
465 1.1 glass * Set up the given unit as console input, output, both, or neither, as
466 1.1 glass * needed. Return console tty if it is to receive console input.
467 1.1 glass */
468 1.1 glass static struct tty *
469 1.1 glass zs_checkcons(struct zsinfo *zi, int unit, struct zs_chanstate *cs)
470 1.1 glass {
471 1.1 glass register struct tty *tp;
472 1.1 glass char *i, *o;
473 1.1 glass
474 1.1 glass if ((tp = zs_ctty) == NULL)
475 1.1 glass return (0);
476 1.1 glass i = zs_consin == unit ? "input" : NULL;
477 1.1 glass o = zs_consout == unit ? "output" : NULL;
478 1.1 glass if (i == NULL && o == NULL)
479 1.1 glass return (0);
480 1.1 glass
481 1.1 glass /* rewire the minor device (gack) */
482 1.1 glass tp->t_dev = makedev(major(tp->t_dev), unit);
483 1.1 glass
484 1.1 glass /*
485 1.1 glass * Rewire input and/or output. Note that baud rate reflects
486 1.1 glass * input settings, not output settings, but we can do no better
487 1.1 glass * if the console is split across two ports.
488 1.1 glass *
489 1.1 glass * XXX split consoles don't work anyway -- this needs to be
490 1.1 glass * thrown away and redone
491 1.1 glass */
492 1.1 glass if (i) {
493 1.1 glass tp->t_param = zsparam;
494 1.1 glass tp->t_ispeed = tp->t_ospeed = cs->cs_speed;
495 1.1 glass tp->t_cflag = CS8;
496 1.1 glass ttsetwater(tp);
497 1.1 glass }
498 1.1 glass if (o) {
499 1.1 glass tp->t_oproc = zsstart;
500 1.1 glass /*tp->t_stop = zsstop;*/
501 1.1 glass }
502 1.1 glass printf("%s%c: console %s\n",
503 1.1 glass zi->zi_dev.dv_xname, (unit & 1) + 'a', i ? (o ? "i/o" : i) : o);
504 1.1 glass cs->cs_consio = 1;
505 1.1 glass cs->cs_brkabort = 1;
506 1.1 glass return (tp);
507 1.1 glass }
508 1.1 glass
509 1.1 glass #ifdef KGDB
510 1.1 glass /*
511 1.1 glass * The kgdb zs port, if any, was altered at boot time (see zs_kgdb_init).
512 1.1 glass * Pick up the current speed and character size and restore the original
513 1.1 glass * speed.
514 1.1 glass */
515 1.1 glass static void
516 1.1 glass zs_checkkgdb(int unit, struct zs_chanstate *cs, struct tty *tp)
517 1.1 glass {
518 1.1 glass
519 1.1 glass if (kgdb_dev == makedev(ZSMAJOR, unit)) {
520 1.1 glass tp->t_ispeed = tp->t_ospeed = kgdb_rate;
521 1.1 glass tp->t_cflag = CS8;
522 1.1 glass cs->cs_kgdb = 1;
523 1.1 glass cs->cs_speed = zs_kgdb_savedspeed;
524 1.1 glass (void) zsparam(tp, &tp->t_termios);
525 1.1 glass }
526 1.1 glass }
527 1.1 glass #endif
528 1.1 glass
529 1.1 glass /*
530 1.1 glass * Compute the current baud rate given a ZSCC channel.
531 1.1 glass */
532 1.1 glass static int
533 1.1 glass zs_getspeed(zc)
534 1.1 glass register volatile struct zschan *zc;
535 1.1 glass {
536 1.1 glass register int tconst;
537 1.1 glass
538 1.1 glass tconst = ZS_READ(zc, 12);
539 1.1 glass tconst |= ZS_READ(zc, 13) << 8;
540 1.1 glass return (TCONST_TO_BPS(PCLK / 16, tconst));
541 1.1 glass }
542 1.1 glass
543 1.1 glass
544 1.1 glass /*
545 1.1 glass * Do an internal open.
546 1.1 glass */
547 1.1 glass static void
548 1.1 glass zsiopen(struct tty *tp)
549 1.1 glass {
550 1.1 glass
551 1.1 glass (void) zsparam(tp, &tp->t_termios);
552 1.1 glass ttsetwater(tp);
553 1.1 glass tp->t_state = TS_ISOPEN | TS_CARR_ON;
554 1.1 glass }
555 1.1 glass
556 1.1 glass /*
557 1.1 glass * Do an internal close. Eventually we should shut off the chip when both
558 1.1 glass * ports on it are closed.
559 1.1 glass */
560 1.1 glass static void
561 1.1 glass zsiclose(struct tty *tp)
562 1.1 glass {
563 1.1 glass
564 1.1 glass ttylclose(tp, 0); /* ??? */
565 1.1 glass ttyclose(tp); /* ??? */
566 1.1 glass tp->t_state = 0;
567 1.1 glass }
568 1.1 glass
569 1.1 glass
570 1.1 glass /*
571 1.1 glass * Open a zs serial port. This interface may not be used to open
572 1.1 glass * the keyboard and mouse ports. (XXX)
573 1.1 glass */
574 1.1 glass int
575 1.1 glass zsopen(dev_t dev, int flags, int mode, struct proc *p)
576 1.1 glass {
577 1.1 glass register struct tty *tp;
578 1.1 glass register struct zs_chanstate *cs;
579 1.1 glass struct zsinfo *zi;
580 1.1 glass int unit = minor(dev), zs = unit >> 1, error, s;
581 1.1 glass
582 1.2 glass #ifdef DEBUG
583 1.1 glass printf("zs_open\n");
584 1.2 glass #endif
585 1.1 glass if (zs >= zscd.cd_ndevs || (zi = zscd.cd_devs[zs]) == NULL ||
586 1.1 glass unit == ZS_KBD || unit == ZS_MOUSE)
587 1.1 glass return (ENXIO);
588 1.1 glass cs = &zi->zi_cs[unit & 1];
589 1.2 glass /* Prevent simultaneous use by console? */
590 1.1 glass if (cs->cs_consio)
591 1.1 glass return (ENXIO); /* ??? */
592 1.1 glass tp = cs->cs_ttyp;
593 1.1 glass s = spltty();
594 1.1 glass if ((tp->t_state & TS_ISOPEN) == 0) {
595 1.1 glass ttychars(tp);
596 1.1 glass if (tp->t_ispeed == 0) {
597 1.1 glass tp->t_iflag = TTYDEF_IFLAG;
598 1.1 glass tp->t_oflag = TTYDEF_OFLAG;
599 1.1 glass tp->t_cflag = TTYDEF_CFLAG;
600 1.1 glass tp->t_lflag = TTYDEF_LFLAG;
601 1.1 glass tp->t_ispeed = tp->t_ospeed = cs->cs_speed;
602 1.1 glass }
603 1.1 glass (void) zsparam(tp, &tp->t_termios);
604 1.1 glass ttsetwater(tp);
605 1.1 glass } else if (tp->t_state & TS_XCLUDE && p->p_ucred->cr_uid != 0) {
606 1.1 glass splx(s);
607 1.1 glass return (EBUSY);
608 1.1 glass }
609 1.1 glass error = 0;
610 1.1 glass for (;;) {
611 1.1 glass /* loop, turning on the device, until carrier present */
612 1.1 glass zs_modem(cs, 1);
613 1.2 glass /* May never get status intr if carrier already on. -gwr */
614 1.2 glass if (cs->cs_zc->zc_csr & ZSRR0_DCD)
615 1.2 glass tp->t_state |= TS_CARR_ON;
616 1.1 glass if (cs->cs_softcar)
617 1.1 glass tp->t_state |= TS_CARR_ON;
618 1.1 glass if (flags & O_NONBLOCK || tp->t_cflag & CLOCAL ||
619 1.1 glass tp->t_state & TS_CARR_ON)
620 1.1 glass break;
621 1.1 glass tp->t_state |= TS_WOPEN;
622 1.1 glass if (error = ttysleep(tp, (caddr_t)&tp->t_rawq, TTIPRI | PCATCH,
623 1.1 glass ttopen, 0))
624 1.1 glass break;
625 1.1 glass }
626 1.1 glass splx(s);
627 1.1 glass if (error == 0)
628 1.1 glass error = linesw[tp->t_line].l_open(dev, tp);
629 1.1 glass if (error)
630 1.1 glass zs_modem(cs, 0);
631 1.1 glass return (error);
632 1.1 glass }
633 1.1 glass
634 1.1 glass /*
635 1.1 glass * Close a zs serial port.
636 1.1 glass */
637 1.1 glass int
638 1.1 glass zsclose(dev_t dev, int flags, int mode, struct proc *p)
639 1.1 glass {
640 1.1 glass register struct zs_chanstate *cs;
641 1.1 glass register struct tty *tp;
642 1.1 glass struct zsinfo *zi;
643 1.1 glass int unit = minor(dev), s;
644 1.1 glass
645 1.1 glass zi = zscd.cd_devs[unit >> 1];
646 1.1 glass cs = &zi->zi_cs[unit & 1];
647 1.1 glass tp = cs->cs_ttyp;
648 1.1 glass linesw[tp->t_line].l_close(tp, flags);
649 1.1 glass if (tp->t_cflag & HUPCL || tp->t_state & TS_WOPEN ||
650 1.1 glass (tp->t_state & TS_ISOPEN) == 0) {
651 1.1 glass zs_modem(cs, 0);
652 1.1 glass /* hold low for 1 second */
653 1.1 glass (void) tsleep((caddr_t)cs, TTIPRI, ttclos, hz);
654 1.1 glass }
655 1.1 glass ttyclose(tp);
656 1.1 glass #ifdef KGDB
657 1.1 glass /* Reset the speed if we're doing kgdb on this port */
658 1.1 glass if (cs->cs_kgdb) {
659 1.1 glass tp->t_ispeed = tp->t_ospeed = kgdb_rate;
660 1.1 glass (void) zsparam(tp, &tp->t_termios);
661 1.1 glass }
662 1.1 glass #endif
663 1.1 glass return (0);
664 1.1 glass }
665 1.1 glass
666 1.1 glass /*
667 1.1 glass * Read/write zs serial port.
668 1.1 glass */
669 1.1 glass int
670 1.1 glass zsread(dev_t dev, struct uio *uio, int flags)
671 1.1 glass {
672 1.1 glass register struct tty *tp = zs_tty[minor(dev)];
673 1.1 glass
674 1.1 glass return (linesw[tp->t_line].l_read(tp, uio, flags));
675 1.1 glass }
676 1.1 glass
677 1.1 glass int
678 1.1 glass zswrite(dev_t dev, struct uio *uio, int flags)
679 1.1 glass {
680 1.1 glass register struct tty *tp = zs_tty[minor(dev)];
681 1.1 glass
682 1.1 glass return (linesw[tp->t_line].l_write(tp, uio, flags));
683 1.1 glass }
684 1.1 glass
685 1.1 glass /*
686 1.1 glass * ZS hardware interrupt. Scan all ZS channels. NB: we know here that
687 1.1 glass * channels are kept in (A,B) pairs.
688 1.1 glass *
689 1.1 glass * Do just a little, then get out; set a software interrupt if more
690 1.1 glass * work is needed.
691 1.1 glass *
692 1.1 glass * We deliberately ignore the vectoring Zilog gives us, and match up
693 1.1 glass * only the number of `reset interrupt under service' operations, not
694 1.1 glass * the order.
695 1.1 glass */
696 1.1 glass /* ARGSUSED */
697 1.1 glass int
698 1.1 glass zshard(int intrarg)
699 1.1 glass {
700 1.1 glass register struct zs_chanstate *a;
701 1.1 glass #define b (a + 1)
702 1.1 glass register volatile struct zschan *zc;
703 1.1 glass register int rr3, intflags = 0, v, i;
704 1.1 glass static int zsrint(struct zs_chanstate *, volatile struct zschan *);
705 1.1 glass static int zsxint(struct zs_chanstate *, volatile struct zschan *);
706 1.1 glass static int zssint(struct zs_chanstate *, volatile struct zschan *);
707 1.2 glass #ifdef DEBUG
708 1.1 glass printf("zshard\n");
709 1.2 glass #endif
710 1.1 glass
711 1.1 glass for (a = zslist; a != NULL; a = b->cs_next) {
712 1.1 glass rr3 = ZS_READ(a->cs_zc, 3);
713 1.1 glass if (rr3 & (ZSRR3_IP_A_RX|ZSRR3_IP_A_TX|ZSRR3_IP_A_STAT)) {
714 1.1 glass intflags |= 2;
715 1.1 glass zc = a->cs_zc;
716 1.1 glass i = a->cs_rbput;
717 1.1 glass if (rr3 & ZSRR3_IP_A_RX && (v = zsrint(a, zc)) != 0) {
718 1.1 glass a->cs_rbuf[i++ & ZLRB_RING_MASK] = v;
719 1.1 glass intflags |= 1;
720 1.1 glass }
721 1.1 glass if (rr3 & ZSRR3_IP_A_TX && (v = zsxint(a, zc)) != 0) {
722 1.1 glass a->cs_rbuf[i++ & ZLRB_RING_MASK] = v;
723 1.1 glass intflags |= 1;
724 1.1 glass }
725 1.1 glass if (rr3 & ZSRR3_IP_A_STAT && (v = zssint(a, zc)) != 0) {
726 1.1 glass a->cs_rbuf[i++ & ZLRB_RING_MASK] = v;
727 1.1 glass intflags |= 1;
728 1.1 glass }
729 1.1 glass a->cs_rbput = i;
730 1.1 glass }
731 1.1 glass if (rr3 & (ZSRR3_IP_B_RX|ZSRR3_IP_B_TX|ZSRR3_IP_B_STAT)) {
732 1.1 glass intflags |= 2;
733 1.1 glass zc = b->cs_zc;
734 1.1 glass i = b->cs_rbput;
735 1.1 glass if (rr3 & ZSRR3_IP_B_RX && (v = zsrint(b, zc)) != 0) {
736 1.1 glass b->cs_rbuf[i++ & ZLRB_RING_MASK] = v;
737 1.1 glass intflags |= 1;
738 1.1 glass }
739 1.1 glass if (rr3 & ZSRR3_IP_B_TX && (v = zsxint(b, zc)) != 0) {
740 1.1 glass b->cs_rbuf[i++ & ZLRB_RING_MASK] = v;
741 1.1 glass intflags |= 1;
742 1.1 glass }
743 1.1 glass if (rr3 & ZSRR3_IP_B_STAT && (v = zssint(b, zc)) != 0) {
744 1.1 glass b->cs_rbuf[i++ & ZLRB_RING_MASK] = v;
745 1.1 glass intflags |= 1;
746 1.1 glass }
747 1.1 glass b->cs_rbput = i;
748 1.1 glass }
749 1.1 glass }
750 1.1 glass #undef b
751 1.1 glass if (intflags & 1) {
752 1.2 glass isr_soft_request(ZSSOFT_PRI);
753 1.1 glass }
754 1.1 glass return (intflags & 2);
755 1.1 glass }
756 1.1 glass
757 1.1 glass static int
758 1.1 glass zsrint(register struct zs_chanstate *cs, register volatile struct zschan *zc)
759 1.1 glass {
760 1.1 glass register int c = zc->zc_data;
761 1.1 glass
762 1.1 glass if (cs->cs_conk) {
763 1.1 glass register struct conk_state *conk = &zsconk_state;
764 1.1 glass
765 1.1 glass /*
766 1.1 glass * Check here for console abort function, so that we
767 1.1 glass * can abort even when interrupts are locking up the
768 1.1 glass * machine.
769 1.1 glass */
770 1.1 glass if (c == KBD_RESET) {
771 1.1 glass conk->conk_id = 1; /* ignore next byte */
772 1.1 glass conk->conk_l1 = 0;
773 1.1 glass } else if (conk->conk_id)
774 1.1 glass conk->conk_id = 0; /* stop ignoring bytes */
775 1.1 glass else if (c == KBD_L1)
776 1.1 glass conk->conk_l1 = 1; /* L1 went down */
777 1.1 glass else if (c == (KBD_L1|KBD_UP))
778 1.1 glass conk->conk_l1 = 0; /* L1 went up */
779 1.1 glass else if (c == KBD_A && conk->conk_l1) {
780 1.1 glass zsabort();
781 1.1 glass conk->conk_l1 = 0; /* we never see the up */
782 1.1 glass goto clearit; /* eat the A after L1-A */
783 1.1 glass }
784 1.1 glass }
785 1.1 glass #ifdef KGDB
786 1.1 glass if (c == FRAME_START && cs->cs_kgdb &&
787 1.1 glass (cs->cs_ttyp->t_state & TS_ISOPEN) == 0) {
788 1.1 glass zskgdb(cs->cs_unit);
789 1.1 glass goto clearit;
790 1.1 glass }
791 1.1 glass #endif
792 1.1 glass /* compose receive character and status */
793 1.1 glass c <<= 8;
794 1.1 glass c |= ZS_READ(zc, 1);
795 1.1 glass
796 1.1 glass /* clear receive error & interrupt condition */
797 1.1 glass zc->zc_csr = ZSWR0_RESET_ERRORS;
798 1.1 glass zc->zc_csr = ZSWR0_CLR_INTR;
799 1.1 glass
800 1.1 glass return (ZRING_MAKE(ZRING_RINT, c));
801 1.1 glass
802 1.1 glass clearit:
803 1.1 glass zc->zc_csr = ZSWR0_RESET_ERRORS;
804 1.1 glass zc->zc_csr = ZSWR0_CLR_INTR;
805 1.1 glass return (0);
806 1.1 glass }
807 1.1 glass
808 1.1 glass static int
809 1.1 glass zsxint(register struct zs_chanstate *cs, register volatile struct zschan *zc)
810 1.1 glass {
811 1.1 glass register int i = cs->cs_tbc;
812 1.1 glass
813 1.1 glass if (i == 0) {
814 1.1 glass zc->zc_csr = ZSWR0_RESET_TXINT;
815 1.1 glass zc->zc_csr = ZSWR0_CLR_INTR;
816 1.1 glass return (ZRING_MAKE(ZRING_XINT, 0));
817 1.1 glass }
818 1.1 glass cs->cs_tbc = i - 1;
819 1.1 glass zc->zc_data = *cs->cs_tba++;
820 1.1 glass zc->zc_csr = ZSWR0_CLR_INTR;
821 1.1 glass return (0);
822 1.1 glass }
823 1.1 glass
824 1.1 glass static int
825 1.1 glass zssint(register struct zs_chanstate *cs, register volatile struct zschan *zc)
826 1.1 glass {
827 1.1 glass register int rr0;
828 1.1 glass
829 1.1 glass rr0 = zc->zc_csr;
830 1.1 glass zc->zc_csr = ZSWR0_RESET_STATUS;
831 1.1 glass zc->zc_csr = ZSWR0_CLR_INTR;
832 1.1 glass /*
833 1.1 glass * The chip's hardware flow control is, as noted in zsreg.h,
834 1.1 glass * busted---if the DCD line goes low the chip shuts off the
835 1.1 glass * receiver (!). If we want hardware CTS flow control but do
836 1.1 glass * not have it, and carrier is now on, turn HFC on; if we have
837 1.1 glass * HFC now but carrier has gone low, turn it off.
838 1.1 glass */
839 1.1 glass if (rr0 & ZSRR0_DCD) {
840 1.1 glass if (cs->cs_ttyp->t_cflag & CCTS_OFLOW &&
841 1.1 glass (cs->cs_creg[3] & ZSWR3_HFC) == 0) {
842 1.1 glass cs->cs_creg[3] |= ZSWR3_HFC;
843 1.1 glass ZS_WRITE(zc, 3, cs->cs_creg[3]);
844 1.1 glass }
845 1.1 glass } else {
846 1.1 glass if (cs->cs_creg[3] & ZSWR3_HFC) {
847 1.1 glass cs->cs_creg[3] &= ~ZSWR3_HFC;
848 1.1 glass ZS_WRITE(zc, 3, cs->cs_creg[3]);
849 1.1 glass }
850 1.1 glass }
851 1.1 glass if ((rr0 & ZSRR0_BREAK) && cs->cs_brkabort) {
852 1.1 glass zsabort();
853 1.1 glass return (0);
854 1.1 glass }
855 1.1 glass return (ZRING_MAKE(ZRING_SINT, rr0));
856 1.1 glass }
857 1.1 glass
858 1.1 glass zsabort()
859 1.1 glass {
860 1.1 glass
861 1.1 glass printf("stopping on keyboard abort\n");
862 1.2 glass sun3_stop();
863 1.1 glass }
864 1.1 glass
865 1.1 glass #ifdef KGDB
866 1.1 glass /*
867 1.1 glass * KGDB framing character received: enter kernel debugger. This probably
868 1.1 glass * should time out after a few seconds to avoid hanging on spurious input.
869 1.1 glass */
870 1.1 glass zskgdb(int unit)
871 1.1 glass {
872 1.1 glass
873 1.1 glass printf("zs%d%c: kgdb interrupt\n", unit >> 1, (unit & 1) + 'a');
874 1.1 glass kgdb_connect(1);
875 1.1 glass }
876 1.1 glass #endif
877 1.1 glass
878 1.1 glass /*
879 1.1 glass * Print out a ring or fifo overrun error message.
880 1.1 glass */
881 1.1 glass static void
882 1.1 glass zsoverrun(int unit, long *ptime, char *what)
883 1.1 glass {
884 1.1 glass
885 1.1 glass if (*ptime != time.tv_sec) {
886 1.1 glass *ptime = time.tv_sec;
887 1.1 glass log(LOG_WARNING, "zs%d%c: %s overrun\n", unit >> 1,
888 1.1 glass (unit & 1) + 'a', what);
889 1.1 glass }
890 1.1 glass }
891 1.1 glass
892 1.1 glass /*
893 1.1 glass * ZS software interrupt. Scan all channels for deferred interrupts.
894 1.1 glass */
895 1.1 glass int
896 1.1 glass zssoft(int arg)
897 1.1 glass {
898 1.1 glass register struct zs_chanstate *cs;
899 1.1 glass register volatile struct zschan *zc;
900 1.1 glass register struct linesw *line;
901 1.1 glass register struct tty *tp;
902 1.1 glass register int get, n, c, cc, unit, s;
903 1.1 glass
904 1.2 glass #ifdef DEBUG
905 1.1 glass printf("zssoft\n");
906 1.2 glass #endif
907 1.2 glass
908 1.2 glass isr_soft_clear(ZSSOFT_PRI);
909 1.2 glass
910 1.1 glass for (cs = zslist; cs != NULL; cs = cs->cs_next) {
911 1.1 glass get = cs->cs_rbget;
912 1.1 glass again:
913 1.1 glass n = cs->cs_rbput; /* atomic */
914 1.1 glass if (get == n) /* nothing more on this line */
915 1.1 glass continue;
916 1.1 glass unit = cs->cs_unit; /* set up to handle interrupts */
917 1.1 glass zc = cs->cs_zc;
918 1.1 glass tp = cs->cs_ttyp;
919 1.1 glass line = &linesw[tp->t_line];
920 1.1 glass /*
921 1.1 glass * Compute the number of interrupts in the receive ring.
922 1.1 glass * If the count is overlarge, we lost some events, and
923 1.1 glass * must advance to the first valid one. It may get
924 1.1 glass * overwritten if more data are arriving, but this is
925 1.1 glass * too expensive to check and gains nothing (we already
926 1.1 glass * lost out; all we can do at this point is trade one
927 1.1 glass * kind of loss for another).
928 1.1 glass */
929 1.1 glass n -= get;
930 1.1 glass if (n > ZLRB_RING_SIZE) {
931 1.1 glass zsoverrun(unit, &cs->cs_rotime, "ring");
932 1.1 glass get += n - ZLRB_RING_SIZE;
933 1.1 glass n = ZLRB_RING_SIZE;
934 1.1 glass }
935 1.1 glass while (--n >= 0) {
936 1.1 glass /* race to keep ahead of incoming interrupts */
937 1.1 glass c = cs->cs_rbuf[get++ & ZLRB_RING_MASK];
938 1.1 glass switch (ZRING_TYPE(c)) {
939 1.1 glass
940 1.1 glass case ZRING_RINT:
941 1.1 glass c = ZRING_VALUE(c);
942 1.1 glass if (c & ZSRR1_DO)
943 1.1 glass zsoverrun(unit, &cs->cs_fotime, "fifo");
944 1.1 glass cc = c >> 8;
945 1.1 glass if (c & ZSRR1_FE)
946 1.1 glass cc |= TTY_FE;
947 1.1 glass if (c & ZSRR1_PE)
948 1.1 glass cc |= TTY_PE;
949 1.1 glass /*
950 1.1 glass * this should be done through
951 1.1 glass * bstreams XXX gag choke
952 1.1 glass */
953 1.1 glass if (unit == ZS_KBD)
954 1.1 glass kbd_rint(cc);
955 1.1 glass else if (unit == ZS_MOUSE)
956 1.1 glass ms_rint(cc);
957 1.1 glass else
958 1.1 glass line->l_rint(cc, tp);
959 1.1 glass break;
960 1.1 glass
961 1.1 glass case ZRING_XINT:
962 1.1 glass /*
963 1.1 glass * Transmit done: change registers and resume,
964 1.1 glass * or clear BUSY.
965 1.1 glass */
966 1.1 glass if (cs->cs_heldchange) {
967 1.1 glass s = splzs();
968 1.1 glass c = zc->zc_csr;
969 1.1 glass if ((c & ZSRR0_DCD) == 0)
970 1.1 glass cs->cs_preg[3] &= ~ZSWR3_HFC;
971 1.1 glass bcopy((caddr_t)cs->cs_preg,
972 1.1 glass (caddr_t)cs->cs_creg, 16);
973 1.1 glass zs_loadchannelregs(zc, cs->cs_creg);
974 1.1 glass splx(s);
975 1.1 glass cs->cs_heldchange = 0;
976 1.1 glass if (cs->cs_heldtbc &&
977 1.1 glass (tp->t_state & TS_TTSTOP) == 0) {
978 1.1 glass cs->cs_tbc = cs->cs_heldtbc - 1;
979 1.1 glass zc->zc_data = *cs->cs_tba++;
980 1.1 glass goto again;
981 1.1 glass }
982 1.1 glass }
983 1.1 glass tp->t_state &= ~TS_BUSY;
984 1.1 glass if (tp->t_state & TS_FLUSH)
985 1.1 glass tp->t_state &= ~TS_FLUSH;
986 1.1 glass else
987 1.1 glass ndflush(&tp->t_outq,
988 1.1 glass (u_char *)cs->cs_tba - tp->t_outq.c_cf);
989 1.1 glass line->l_start(tp);
990 1.1 glass break;
991 1.1 glass
992 1.1 glass case ZRING_SINT:
993 1.1 glass /*
994 1.1 glass * Status line change. HFC bit is run in
995 1.1 glass * hardware interrupt, to avoid locking
996 1.1 glass * at splzs here.
997 1.1 glass */
998 1.1 glass c = ZRING_VALUE(c);
999 1.1 glass if ((c ^ cs->cs_rr0) & ZSRR0_DCD) {
1000 1.1 glass cc = (c & ZSRR0_DCD) != 0;
1001 1.1 glass if (line->l_modem(tp, cc) == 0)
1002 1.1 glass zs_modem(cs, cc);
1003 1.1 glass }
1004 1.1 glass cs->cs_rr0 = c;
1005 1.1 glass break;
1006 1.1 glass
1007 1.1 glass default:
1008 1.1 glass log(LOG_ERR, "zs%d%c: bad ZRING_TYPE (%x)\n",
1009 1.1 glass unit >> 1, (unit & 1) + 'a', c);
1010 1.1 glass break;
1011 1.1 glass }
1012 1.1 glass }
1013 1.1 glass cs->cs_rbget = get;
1014 1.1 glass goto again;
1015 1.1 glass }
1016 1.1 glass return (1);
1017 1.1 glass }
1018 1.1 glass
1019 1.1 glass int
1020 1.1 glass zsioctl(dev_t dev, int cmd, caddr_t data, int flag, struct proc *p)
1021 1.1 glass {
1022 1.1 glass int unit = minor(dev);
1023 1.1 glass struct zsinfo *zi = zscd.cd_devs[unit >> 1];
1024 1.1 glass register struct tty *tp = zi->zi_cs[unit & 1].cs_ttyp;
1025 1.1 glass register int error;
1026 1.1 glass
1027 1.2 glass error = linesw[tp->t_line].l_ioctl(tp, cmd, data, flag, p);
1028 1.1 glass if (error >= 0)
1029 1.1 glass return (error);
1030 1.2 glass error = ttioctl(tp, cmd, data, flag, p);
1031 1.1 glass if (error >= 0)
1032 1.1 glass return (error);
1033 1.1 glass
1034 1.1 glass switch (cmd) {
1035 1.1 glass
1036 1.1 glass case TIOCSBRK:
1037 1.1 glass /* FINISH ME ... need implicit TIOCCBRK in zsclose as well */
1038 1.1 glass
1039 1.1 glass case TIOCCBRK:
1040 1.1 glass
1041 1.1 glass case TIOCSDTR:
1042 1.1 glass
1043 1.1 glass case TIOCCDTR:
1044 1.1 glass
1045 1.1 glass case TIOCMSET:
1046 1.1 glass
1047 1.1 glass case TIOCMBIS:
1048 1.1 glass
1049 1.1 glass case TIOCMBIC:
1050 1.1 glass
1051 1.1 glass case TIOCMGET:
1052 1.1 glass
1053 1.1 glass default:
1054 1.1 glass return (ENOTTY);
1055 1.1 glass }
1056 1.1 glass return (0);
1057 1.1 glass }
1058 1.1 glass
1059 1.1 glass /*
1060 1.1 glass * Start or restart transmission.
1061 1.1 glass */
1062 1.1 glass static void
1063 1.1 glass zsstart(register struct tty *tp)
1064 1.1 glass {
1065 1.1 glass register struct zs_chanstate *cs;
1066 1.1 glass register int s, nch;
1067 1.1 glass int unit = minor(tp->t_dev);
1068 1.1 glass struct zsinfo *zi = zscd.cd_devs[unit >> 1];
1069 1.1 glass
1070 1.1 glass cs = &zi->zi_cs[unit & 1];
1071 1.1 glass s = spltty();
1072 1.1 glass
1073 1.2 glass #ifdef DEBUG
1074 1.2 glass printf("zsstart\n");
1075 1.2 glass #endif
1076 1.2 glass
1077 1.1 glass /*
1078 1.1 glass * If currently active or delaying, no need to do anything.
1079 1.1 glass */
1080 1.1 glass if (tp->t_state & (TS_TIMEOUT | TS_BUSY | TS_TTSTOP))
1081 1.1 glass goto out;
1082 1.1 glass
1083 1.1 glass /*
1084 1.1 glass * If there are sleepers, and output has drained below low
1085 1.1 glass * water mark, awaken.
1086 1.1 glass */
1087 1.1 glass if (tp->t_outq.c_cc <= tp->t_lowat) {
1088 1.1 glass if (tp->t_state & TS_ASLEEP) {
1089 1.1 glass tp->t_state &= ~TS_ASLEEP;
1090 1.1 glass wakeup((caddr_t)&tp->t_outq);
1091 1.1 glass }
1092 1.1 glass selwakeup(&tp->t_wsel);
1093 1.1 glass }
1094 1.1 glass
1095 1.1 glass nch = ndqb(&tp->t_outq, 0); /* XXX */
1096 1.1 glass if (nch) {
1097 1.1 glass register char *p = tp->t_outq.c_cf;
1098 1.1 glass
1099 1.1 glass /* mark busy, enable tx done interrupts, & send first byte */
1100 1.1 glass tp->t_state |= TS_BUSY;
1101 1.1 glass (void) splzs();
1102 1.1 glass cs->cs_preg[1] |= ZSWR1_TIE;
1103 1.1 glass cs->cs_creg[1] |= ZSWR1_TIE;
1104 1.1 glass ZS_WRITE(cs->cs_zc, 1, cs->cs_creg[1]);
1105 1.1 glass cs->cs_zc->zc_data = *p;
1106 1.1 glass cs->cs_tba = p + 1;
1107 1.1 glass cs->cs_tbc = nch - 1;
1108 1.1 glass } else {
1109 1.1 glass /*
1110 1.1 glass * Nothing to send, turn off transmit done interrupts.
1111 1.1 glass * This is useful if something is doing polled output.
1112 1.1 glass */
1113 1.1 glass (void) splzs();
1114 1.1 glass cs->cs_preg[1] &= ~ZSWR1_TIE;
1115 1.1 glass cs->cs_creg[1] &= ~ZSWR1_TIE;
1116 1.1 glass ZS_WRITE(cs->cs_zc, 1, cs->cs_creg[1]);
1117 1.1 glass }
1118 1.1 glass out:
1119 1.1 glass splx(s);
1120 1.1 glass }
1121 1.1 glass
1122 1.1 glass /*
1123 1.1 glass * Stop output, e.g., for ^S or output flush.
1124 1.1 glass */
1125 1.1 glass void
1126 1.1 glass zsstop(register struct tty *tp, int flag)
1127 1.1 glass {
1128 1.1 glass register struct zs_chanstate *cs;
1129 1.1 glass register int s, unit = minor(tp->t_dev);
1130 1.1 glass struct zsinfo *zi = zscd.cd_devs[unit >> 1];
1131 1.1 glass
1132 1.1 glass cs = &zi->zi_cs[unit & 1];
1133 1.1 glass s = splzs();
1134 1.1 glass if (tp->t_state & TS_BUSY) {
1135 1.1 glass /*
1136 1.1 glass * Device is transmitting; must stop it.
1137 1.1 glass */
1138 1.1 glass cs->cs_tbc = 0;
1139 1.1 glass if ((tp->t_state & TS_TTSTOP) == 0)
1140 1.1 glass tp->t_state |= TS_FLUSH;
1141 1.1 glass }
1142 1.1 glass splx(s);
1143 1.1 glass }
1144 1.1 glass
1145 1.1 glass /*
1146 1.1 glass * Set ZS tty parameters from termios.
1147 1.1 glass *
1148 1.1 glass * This routine makes use of the fact that only registers
1149 1.1 glass * 1, 3, 4, 5, 9, 10, 11, 12, 13, 14, and 15 are written.
1150 1.1 glass */
1151 1.1 glass static int
1152 1.1 glass zsparam(register struct tty *tp, register struct termios *t)
1153 1.1 glass {
1154 1.1 glass int unit = minor(tp->t_dev);
1155 1.1 glass struct zsinfo *zi = zscd.cd_devs[unit >> 1];
1156 1.1 glass register struct zs_chanstate *cs = &zi->zi_cs[unit & 1];
1157 1.1 glass register int tmp, tmp5, cflag, s;
1158 1.1 glass
1159 1.1 glass /*
1160 1.1 glass * Because PCLK is only run at 4.9 MHz, the fastest we
1161 1.1 glass * can go is 51200 baud (this corresponds to TC=1).
1162 1.1 glass * This is somewhat unfortunate as there is no real
1163 1.1 glass * reason we should not be able to handle higher rates.
1164 1.1 glass */
1165 1.1 glass tmp = t->c_ospeed;
1166 1.1 glass if (tmp < 0 || (t->c_ispeed && t->c_ispeed != tmp))
1167 1.1 glass return (EINVAL);
1168 1.1 glass if (tmp == 0) {
1169 1.1 glass /* stty 0 => drop DTR and RTS */
1170 1.1 glass zs_modem(cs, 0);
1171 1.1 glass return (0);
1172 1.1 glass }
1173 1.1 glass tmp = BPS_TO_TCONST(PCLK / 16, tmp);
1174 1.1 glass if (tmp < 2)
1175 1.1 glass return (EINVAL);
1176 1.1 glass
1177 1.1 glass cflag = t->c_cflag;
1178 1.1 glass tp->t_ispeed = tp->t_ospeed = TCONST_TO_BPS(PCLK / 16, tmp);
1179 1.1 glass tp->t_cflag = cflag;
1180 1.1 glass
1181 1.1 glass /*
1182 1.1 glass * Block interrupts so that state will not
1183 1.1 glass * be altered until we are done setting it up.
1184 1.1 glass */
1185 1.1 glass s = splzs();
1186 1.1 glass cs->cs_preg[12] = tmp;
1187 1.1 glass cs->cs_preg[13] = tmp >> 8;
1188 1.1 glass cs->cs_preg[1] = ZSWR1_RIE | ZSWR1_TIE | ZSWR1_SIE;
1189 1.1 glass switch (cflag & CSIZE) {
1190 1.1 glass case CS5:
1191 1.1 glass tmp = ZSWR3_RX_5;
1192 1.1 glass tmp5 = ZSWR5_TX_5;
1193 1.1 glass break;
1194 1.1 glass case CS6:
1195 1.1 glass tmp = ZSWR3_RX_6;
1196 1.1 glass tmp5 = ZSWR5_TX_6;
1197 1.1 glass break;
1198 1.1 glass case CS7:
1199 1.1 glass tmp = ZSWR3_RX_7;
1200 1.1 glass tmp5 = ZSWR5_TX_7;
1201 1.1 glass break;
1202 1.1 glass case CS8:
1203 1.1 glass default:
1204 1.1 glass tmp = ZSWR3_RX_8;
1205 1.1 glass tmp5 = ZSWR5_TX_8;
1206 1.1 glass break;
1207 1.1 glass }
1208 1.1 glass
1209 1.1 glass /*
1210 1.1 glass * Output hardware flow control on the chip is horrendous: if
1211 1.1 glass * carrier detect drops, the receiver is disabled. Hence we
1212 1.1 glass * can only do this when the carrier is on.
1213 1.1 glass */
1214 1.1 glass if (cflag & CCTS_OFLOW && cs->cs_zc->zc_csr & ZSRR0_DCD)
1215 1.1 glass tmp |= ZSWR3_HFC | ZSWR3_RX_ENABLE;
1216 1.1 glass else
1217 1.1 glass tmp |= ZSWR3_RX_ENABLE;
1218 1.1 glass cs->cs_preg[3] = tmp;
1219 1.1 glass cs->cs_preg[5] = tmp5 | ZSWR5_TX_ENABLE | ZSWR5_DTR | ZSWR5_RTS;
1220 1.1 glass
1221 1.1 glass tmp = ZSWR4_CLK_X16 | (cflag & CSTOPB ? ZSWR4_TWOSB : ZSWR4_ONESB);
1222 1.1 glass if ((cflag & PARODD) == 0)
1223 1.1 glass tmp |= ZSWR4_EVENP;
1224 1.1 glass if (cflag & PARENB)
1225 1.1 glass tmp |= ZSWR4_PARENB;
1226 1.1 glass cs->cs_preg[4] = tmp;
1227 1.1 glass cs->cs_preg[9] = ZSWR9_MASTER_IE | ZSWR9_NO_VECTOR;
1228 1.1 glass cs->cs_preg[10] = ZSWR10_NRZ;
1229 1.1 glass cs->cs_preg[11] = ZSWR11_TXCLK_BAUD | ZSWR11_RXCLK_BAUD;
1230 1.1 glass cs->cs_preg[14] = ZSWR14_BAUD_FROM_PCLK | ZSWR14_BAUD_ENA;
1231 1.1 glass cs->cs_preg[15] = ZSWR15_BREAK_IE | ZSWR15_DCD_IE;
1232 1.1 glass
1233 1.1 glass /*
1234 1.1 glass * If nothing is being transmitted, set up new current values,
1235 1.1 glass * else mark them as pending.
1236 1.1 glass */
1237 1.1 glass if (cs->cs_heldchange == 0) {
1238 1.1 glass if (cs->cs_ttyp->t_state & TS_BUSY) {
1239 1.1 glass cs->cs_heldtbc = cs->cs_tbc;
1240 1.1 glass cs->cs_tbc = 0;
1241 1.1 glass cs->cs_heldchange = 1;
1242 1.1 glass } else {
1243 1.1 glass bcopy((caddr_t)cs->cs_preg, (caddr_t)cs->cs_creg, 16);
1244 1.1 glass zs_loadchannelregs(cs->cs_zc, cs->cs_creg);
1245 1.1 glass }
1246 1.1 glass }
1247 1.1 glass splx(s);
1248 1.1 glass return (0);
1249 1.1 glass }
1250 1.1 glass
1251 1.1 glass /*
1252 1.1 glass * Raise or lower modem control (DTR/RTS) signals. If a character is
1253 1.1 glass * in transmission, the change is deferred.
1254 1.1 glass */
1255 1.1 glass static void
1256 1.1 glass zs_modem(struct zs_chanstate *cs, int onoff)
1257 1.1 glass {
1258 1.1 glass int s, bis, and;
1259 1.1 glass
1260 1.1 glass if (onoff) {
1261 1.1 glass bis = ZSWR5_DTR | ZSWR5_RTS;
1262 1.1 glass and = ~0;
1263 1.1 glass } else {
1264 1.1 glass bis = 0;
1265 1.1 glass and = ~(ZSWR5_DTR | ZSWR5_RTS);
1266 1.1 glass }
1267 1.1 glass s = splzs();
1268 1.1 glass cs->cs_preg[5] = (cs->cs_preg[5] | bis) & and;
1269 1.1 glass if (cs->cs_heldchange == 0) {
1270 1.1 glass if (cs->cs_ttyp->t_state & TS_BUSY) {
1271 1.1 glass cs->cs_heldtbc = cs->cs_tbc;
1272 1.1 glass cs->cs_tbc = 0;
1273 1.1 glass cs->cs_heldchange = 1;
1274 1.1 glass } else {
1275 1.1 glass cs->cs_creg[5] = (cs->cs_creg[5] | bis) & and;
1276 1.1 glass ZS_WRITE(cs->cs_zc, 5, cs->cs_creg[5]);
1277 1.1 glass }
1278 1.1 glass }
1279 1.1 glass splx(s);
1280 1.1 glass }
1281 1.1 glass
1282 1.1 glass /*
1283 1.1 glass * Write the given register set to the given zs channel in the proper order.
1284 1.1 glass * The channel must not be transmitting at the time. The receiver will
1285 1.1 glass * be disabled for the time it takes to write all the registers.
1286 1.1 glass */
1287 1.1 glass static void
1288 1.1 glass zs_loadchannelregs(volatile struct zschan *zc, u_char *reg)
1289 1.1 glass {
1290 1.1 glass int i;
1291 1.1 glass
1292 1.1 glass zc->zc_csr = ZSM_RESET_ERR; /* reset error condition */
1293 1.1 glass i = zc->zc_data; /* drain fifo */
1294 1.1 glass i = zc->zc_data;
1295 1.1 glass i = zc->zc_data;
1296 1.1 glass ZS_WRITE(zc, 4, reg[4]);
1297 1.1 glass ZS_WRITE(zc, 10, reg[10]);
1298 1.1 glass ZS_WRITE(zc, 3, reg[3] & ~ZSWR3_RX_ENABLE);
1299 1.1 glass ZS_WRITE(zc, 5, reg[5] & ~ZSWR5_TX_ENABLE);
1300 1.1 glass ZS_WRITE(zc, 1, reg[1]);
1301 1.1 glass ZS_WRITE(zc, 9, reg[9]);
1302 1.1 glass ZS_WRITE(zc, 11, reg[11]);
1303 1.1 glass ZS_WRITE(zc, 12, reg[12]);
1304 1.1 glass ZS_WRITE(zc, 13, reg[13]);
1305 1.1 glass ZS_WRITE(zc, 14, reg[14]);
1306 1.1 glass ZS_WRITE(zc, 15, reg[15]);
1307 1.1 glass ZS_WRITE(zc, 3, reg[3]);
1308 1.1 glass ZS_WRITE(zc, 5, reg[5]);
1309 1.1 glass }
1310 1.1 glass
1311 1.2 glass /* XXX - Tune this... -gwr */
1312 1.2 glass int cpuspeed = 50;
1313 1.2 glass
1314 1.2 glass static void
1315 1.2 glass zs_delay()
1316 1.2 glass {
1317 1.2 glass int n = cpuspeed;
1318 1.2 glass while (n--) {
1319 1.2 glass nullop(); /* foil optimizer */
1320 1.2 glass }
1321 1.2 glass }
1322 1.2 glass
1323 1.2 glass static u_char
1324 1.2 glass zs_read(zc, reg)
1325 1.2 glass volatile struct zschan *zc;
1326 1.2 glass u_char reg;
1327 1.2 glass {
1328 1.2 glass u_char val;
1329 1.2 glass
1330 1.2 glass zc->zc_csr = reg;
1331 1.2 glass zs_delay();
1332 1.2 glass val = zc->zc_csr;
1333 1.2 glass zs_delay();
1334 1.2 glass return val;
1335 1.2 glass }
1336 1.2 glass
1337 1.2 glass static u_char
1338 1.2 glass zs_write(zc, reg, val)
1339 1.2 glass volatile struct zschan *zc;
1340 1.2 glass u_char reg, val;
1341 1.2 glass {
1342 1.2 glass zc->zc_csr = reg;
1343 1.2 glass zs_delay();
1344 1.2 glass zc->zc_csr = val;
1345 1.2 glass zs_delay();
1346 1.2 glass return val;
1347 1.2 glass }
1348 1.2 glass
1349 1.1 glass #ifdef KGDB
1350 1.1 glass /*
1351 1.1 glass * Get a character from the given kgdb channel. Called at splhigh().
1352 1.1 glass */
1353 1.1 glass static int
1354 1.1 glass zs_kgdb_getc(void *arg)
1355 1.1 glass {
1356 1.1 glass register volatile struct zschan *zc = (volatile struct zschan *)arg;
1357 1.1 glass
1358 1.1 glass while ((zc->zc_csr & ZSRR0_RX_READY) == 0)
1359 1.1 glass continue;
1360 1.1 glass return (zc->zc_data);
1361 1.1 glass }
1362 1.1 glass
1363 1.1 glass /*
1364 1.1 glass * Put a character to the given kgdb channel. Called at splhigh().
1365 1.1 glass */
1366 1.1 glass static void
1367 1.1 glass zs_kgdb_putc(void *arg, int c)
1368 1.1 glass {
1369 1.1 glass register volatile struct zschan *zc = (volatile struct zschan *)arg;
1370 1.1 glass
1371 1.1 glass while ((zc->zc_csr & ZSRR0_TX_READY) == 0)
1372 1.1 glass continue;
1373 1.1 glass zc->zc_data = c;
1374 1.1 glass }
1375 1.1 glass
1376 1.1 glass /*
1377 1.1 glass * Set up for kgdb; called at boot time before configuration.
1378 1.1 glass * KGDB interrupts will be enabled later when zs0 is configured.
1379 1.1 glass */
1380 1.1 glass void
1381 1.1 glass zs_kgdb_init()
1382 1.1 glass {
1383 1.1 glass volatile struct zsdevice *addr;
1384 1.1 glass volatile struct zschan *zc;
1385 1.1 glass int unit, zs;
1386 1.1 glass
1387 1.1 glass if (major(kgdb_dev) != ZSMAJOR)
1388 1.1 glass return;
1389 1.1 glass unit = minor(kgdb_dev);
1390 1.1 glass /*
1391 1.1 glass * Unit must be 0 or 1 (zs0).
1392 1.1 glass */
1393 1.1 glass if ((unsigned)unit >= ZS_KBD) {
1394 1.1 glass printf("zs_kgdb_init: bad minor dev %d\n", unit);
1395 1.1 glass return;
1396 1.1 glass }
1397 1.1 glass zs = unit >> 1;
1398 1.1 glass if ((addr = zsaddr[zs]) == NULL)
1399 1.1 glass addr = zsaddr[zs] = findzs(zs);
1400 1.1 glass unit &= 1;
1401 1.1 glass zc = unit == 0 ? &addr->zs_chan[CHAN_A] : &addr->zs_chan[CHAN_B];
1402 1.1 glass zs_kgdb_savedspeed = zs_getspeed(zc);
1403 1.1 glass printf("zs_kgdb_init: attaching zs%d%c at %d baud\n",
1404 1.1 glass zs, unit + 'a', kgdb_rate);
1405 1.1 glass zs_reset(zc, 1, kgdb_rate);
1406 1.1 glass kgdb_attach(zs_kgdb_getc, zs_kgdb_putc, (void *)zc);
1407 1.1 glass }
1408 1.1 glass #endif /* KGDB */
1409