ser.c revision 1.24 1 1.24 chopps /* $NetBSD: ser.c,v 1.24 1994/12/01 17:25:35 chopps Exp $ */
2 1.23 cgd
3 1.1 mw /*
4 1.1 mw * Copyright (c) 1982, 1986, 1990 The Regents of the University of California.
5 1.1 mw * All rights reserved.
6 1.1 mw *
7 1.1 mw * Redistribution and use in source and binary forms, with or without
8 1.1 mw * modification, are permitted provided that the following conditions
9 1.1 mw * are met:
10 1.1 mw * 1. Redistributions of source code must retain the above copyright
11 1.1 mw * notice, this list of conditions and the following disclaimer.
12 1.1 mw * 2. Redistributions in binary form must reproduce the above copyright
13 1.1 mw * notice, this list of conditions and the following disclaimer in the
14 1.1 mw * documentation and/or other materials provided with the distribution.
15 1.1 mw * 3. All advertising materials mentioning features or use of this software
16 1.1 mw * must display the following acknowledgement:
17 1.1 mw * This product includes software developed by the University of
18 1.1 mw * California, Berkeley and its contributors.
19 1.1 mw * 4. Neither the name of the University nor the names of its contributors
20 1.1 mw * may be used to endorse or promote products derived from this software
21 1.1 mw * without specific prior written permission.
22 1.1 mw *
23 1.1 mw * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
24 1.1 mw * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
25 1.1 mw * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
26 1.1 mw * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
27 1.1 mw * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
28 1.1 mw * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
29 1.1 mw * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
30 1.1 mw * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
31 1.1 mw * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
32 1.1 mw * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
33 1.1 mw * SUCH DAMAGE.
34 1.1 mw *
35 1.4 mw * @(#)ser.c 7.12 (Berkeley) 6/27/91
36 1.15 chopps */
37 1.15 chopps /*
38 1.15 chopps * XXX This file needs major cleanup it will never ervice more than one
39 1.15 chopps * XXX unit.
40 1.1 mw */
41 1.1 mw
42 1.10 chopps #include <sys/param.h>
43 1.10 chopps #include <sys/systm.h>
44 1.10 chopps #include <sys/ioctl.h>
45 1.15 chopps #include <sys/device.h>
46 1.10 chopps #include <sys/tty.h>
47 1.10 chopps #include <sys/proc.h>
48 1.10 chopps #include <sys/conf.h>
49 1.10 chopps #include <sys/file.h>
50 1.10 chopps #include <sys/malloc.h>
51 1.10 chopps #include <sys/uio.h>
52 1.10 chopps #include <sys/kernel.h>
53 1.10 chopps #include <sys/syslog.h>
54 1.13 chopps #include <sys/queue.h>
55 1.15 chopps #include <machine/cpu.h>
56 1.15 chopps #include <amiga/amiga/device.h>
57 1.10 chopps #include <amiga/dev/serreg.h>
58 1.10 chopps #include <amiga/amiga/custom.h>
59 1.10 chopps #include <amiga/amiga/cia.h>
60 1.10 chopps #include <amiga/amiga/cc.h>
61 1.1 mw
62 1.14 chopps #include <dev/cons.h>
63 1.14 chopps
64 1.15 chopps #include "ser.h"
65 1.15 chopps #if NSER > 0
66 1.14 chopps
67 1.15 chopps void serattach __P((struct device *, struct device *, void *));
68 1.15 chopps int sermatch __P((struct device *, struct cfdata *, void *));
69 1.15 chopps
70 1.15 chopps struct cfdriver sercd = {
71 1.24 chopps NULL, "ser", (cfmatch_t)sermatch, serattach, DV_TTY,
72 1.15 chopps sizeof(struct device), NULL, 0 };
73 1.15 chopps
74 1.15 chopps #define SEROBUF_SIZE 32
75 1.15 chopps #define SERIBUF_SIZE 512
76 1.1 mw
77 1.22 chopps int serstart(), serparam(), serintr(), serhwiflow();
78 1.1 mw int ser_active;
79 1.1 mw int ser_hasfifo;
80 1.1 mw int nser = NSER;
81 1.1 mw #ifdef SERCONSOLE
82 1.1 mw int serconsole = SERCONSOLE;
83 1.1 mw #else
84 1.1 mw int serconsole = -1;
85 1.1 mw #endif
86 1.1 mw int serconsinit;
87 1.1 mw int serdefaultrate = TTYDEF_SPEED;
88 1.1 mw int sermajor;
89 1.14 chopps int serswflags;
90 1.14 chopps #define SWFLAGS(dev) (serswflags | (DIALOUT(dev) ? TIOCFLAG_SOFTCAR : 0))
91 1.14 chopps
92 1.5 mw struct vbl_node ser_vbl_node[NSER];
93 1.1 mw struct tty ser_cons;
94 1.3 mw struct tty *ser_tty[NSER];
95 1.1 mw
96 1.1 mw struct speedtab serspeedtab[] = {
97 1.1 mw 0, 0,
98 1.1 mw 50, SERBRD(50),
99 1.1 mw 75, SERBRD(75),
100 1.1 mw 110, SERBRD(110),
101 1.1 mw 134, SERBRD(134),
102 1.1 mw 150, SERBRD(150),
103 1.1 mw 200, SERBRD(200),
104 1.1 mw 300, SERBRD(300),
105 1.1 mw 600, SERBRD(600),
106 1.1 mw 1200, SERBRD(1200),
107 1.1 mw 1800, SERBRD(1800),
108 1.1 mw 2400, SERBRD(2400),
109 1.1 mw 4800, SERBRD(4800),
110 1.1 mw 9600, SERBRD(9600),
111 1.1 mw 19200, SERBRD(19200),
112 1.1 mw 38400, SERBRD(38400),
113 1.12 chopps 57600, SERBRD(57600),
114 1.12 chopps 76800, SERBRD(76800),
115 1.22 chopps 115200, SERBRD(115200),
116 1.1 mw -1, -1
117 1.1 mw };
118 1.1 mw
119 1.1 mw
120 1.14 chopps /*
121 1.14 chopps * Since this UART is not particularly bright (to put it nicely), we'll
122 1.14 chopps * have to do parity stuff on our own. This table contains the 8th bit
123 1.14 chopps * in 7bit character mode, for even parity. If you want odd parity,
124 1.14 chopps * flip the bit. (for generation of the table, see genpar.c)
125 1.14 chopps */
126 1.14 chopps
127 1.14 chopps u_char even_parity[] = {
128 1.14 chopps 0, 1, 1, 0, 1, 0, 0, 1, 1, 0, 0, 1, 0, 1, 1, 0,
129 1.14 chopps 1, 0, 0, 1, 0, 1, 1, 0, 0, 1, 1, 0, 1, 0, 0, 1,
130 1.14 chopps 1, 0, 0, 1, 0, 1, 1, 0, 0, 1, 1, 0, 1, 0, 0, 1,
131 1.14 chopps 0, 1, 1, 0, 1, 0, 0, 1, 1, 0, 0, 1, 0, 1, 1, 0,
132 1.14 chopps 1, 0, 0, 1, 0, 1, 1, 0, 0, 1, 1, 0, 1, 0, 0, 1,
133 1.14 chopps 0, 1, 1, 0, 1, 0, 0, 1, 1, 0, 0, 1, 0, 1, 1, 0,
134 1.14 chopps 0, 1, 1, 0, 1, 0, 0, 1, 1, 0, 0, 1, 0, 1, 1, 0,
135 1.14 chopps 1, 0, 0, 1, 0, 1, 1, 0, 0, 1, 1, 0, 1, 0, 0, 1,
136 1.1 mw };
137 1.1 mw
138 1.14 chopps /*
139 1.14 chopps * Since we don't get interrupts for changes on the modem control line,
140 1.14 chopps * we'll have to fake them by comparing current settings to the settings
141 1.14 chopps * we remembered on last invocation.
142 1.14 chopps */
143 1.14 chopps
144 1.14 chopps u_char last_ciab_pra;
145 1.14 chopps
146 1.14 chopps extern struct tty *constty;
147 1.1 mw
148 1.1 mw #ifdef KGDB
149 1.10 chopps #include <machine/remote-sl.h>
150 1.1 mw
151 1.1 mw extern dev_t kgdb_dev;
152 1.1 mw extern int kgdb_rate;
153 1.1 mw extern int kgdb_debug_init;
154 1.1 mw #endif
155 1.1 mw
156 1.1 mw #ifdef DEBUG
157 1.1 mw long fifoin[17];
158 1.1 mw long fifoout[17];
159 1.1 mw long serintrcount[16];
160 1.1 mw long sermintcount[16];
161 1.1 mw #endif
162 1.1 mw
163 1.14 chopps void sermint __P((register int unit));
164 1.5 mw
165 1.5 mw int
166 1.15 chopps sermatch(pdp, cfp, auxp)
167 1.15 chopps struct device *pdp;
168 1.15 chopps struct cfdata *cfp;
169 1.15 chopps void *auxp;
170 1.15 chopps {
171 1.15 chopps if (matchname("ser", (char *)auxp) == 0 || cfp->cf_unit != 0)
172 1.15 chopps return(0);
173 1.15 chopps if (serconsole != 0 && amiga_realconfig == 0)
174 1.15 chopps return(0);
175 1.15 chopps return(1);
176 1.15 chopps }
177 1.15 chopps
178 1.15 chopps
179 1.15 chopps void
180 1.15 chopps serattach(pdp, dp, auxp)
181 1.15 chopps struct device *pdp, *dp;
182 1.15 chopps void *auxp;
183 1.1 mw {
184 1.15 chopps u_short ir;
185 1.14 chopps
186 1.14 chopps ir = custom.intenar;
187 1.15 chopps if (serconsole == 0)
188 1.14 chopps DELAY(100000);
189 1.14 chopps
190 1.15 chopps ser_active |= 1;
191 1.15 chopps ser_vbl_node[0].function = (void (*) (void *)) sermint;
192 1.15 chopps add_vbl_function(&ser_vbl_node[0], SER_VBL_PRIORITY, (void *) 0);
193 1.1 mw #ifdef KGDB
194 1.15 chopps if (kgdb_dev == makedev(sermajor, 0)) {
195 1.15 chopps if (serconsole == 0)
196 1.14 chopps kgdb_dev = NODEV; /* can't debug over console port */
197 1.14 chopps else {
198 1.15 chopps (void) serinit(0, kgdb_rate);
199 1.14 chopps serconsinit = 1; /* don't re-init in serputc */
200 1.14 chopps if (kgdb_debug_init == 0)
201 1.15 chopps printf(" kgdb enabled\n");
202 1.14 chopps else {
203 1.14 chopps /*
204 1.14 chopps * Print prefix of device name,
205 1.14 chopps * let kgdb_connect print the rest.
206 1.14 chopps */
207 1.15 chopps printf("ser0: ");
208 1.14 chopps kgdb_connect(1);
209 1.14 chopps }
210 1.14 chopps }
211 1.14 chopps }
212 1.5 mw #endif
213 1.14 chopps /*
214 1.14 chopps * Need to reset baud rate, etc. of next print so reset serconsinit.
215 1.14 chopps */
216 1.15 chopps if (0 == serconsole)
217 1.14 chopps serconsinit = 0;
218 1.15 chopps if (dp)
219 1.20 chopps printf(": input fifo %d output fifo %d\n", SERIBUF_SIZE,
220 1.15 chopps SEROBUF_SIZE);
221 1.1 mw }
222 1.1 mw
223 1.14 chopps
224 1.1 mw /* ARGSUSED */
225 1.5 mw int
226 1.1 mw seropen(dev, flag, mode, p)
227 1.14 chopps dev_t dev;
228 1.14 chopps int flag, mode;
229 1.14 chopps struct proc *p;
230 1.1 mw {
231 1.14 chopps struct tty *tp;
232 1.14 chopps int unit, error, s;
233 1.14 chopps
234 1.14 chopps error = 0;
235 1.14 chopps unit = SERUNIT(dev);
236 1.14 chopps
237 1.14 chopps if (unit >= NSER || (ser_active & (1 << unit)) == 0)
238 1.14 chopps return (ENXIO);
239 1.14 chopps
240 1.14 chopps s = spltty();
241 1.14 chopps
242 1.14 chopps if (ser_tty[unit])
243 1.14 chopps tp = ser_tty[unit];
244 1.14 chopps else
245 1.14 chopps tp = ser_tty[unit] = ttymalloc();
246 1.14 chopps
247 1.14 chopps tp->t_oproc = (void (*) (struct tty *)) serstart;
248 1.14 chopps tp->t_param = serparam;
249 1.14 chopps tp->t_dev = dev;
250 1.22 chopps tp->t_hwiflow = serhwiflow;
251 1.14 chopps
252 1.14 chopps if ((tp->t_state & TS_ISOPEN) == 0) {
253 1.14 chopps tp->t_state |= TS_WOPEN;
254 1.14 chopps ttychars(tp);
255 1.14 chopps if (tp->t_ispeed == 0) {
256 1.14 chopps /*
257 1.14 chopps * only when cleared do we reset to defaults.
258 1.14 chopps */
259 1.14 chopps tp->t_iflag = TTYDEF_IFLAG;
260 1.14 chopps tp->t_oflag = TTYDEF_OFLAG;
261 1.14 chopps tp->t_cflag = TTYDEF_CFLAG;
262 1.14 chopps tp->t_lflag = TTYDEF_LFLAG;
263 1.14 chopps tp->t_ispeed = tp->t_ospeed = serdefaultrate;
264 1.14 chopps }
265 1.14 chopps /*
266 1.14 chopps * do these all the time
267 1.14 chopps */
268 1.14 chopps if (serswflags & TIOCFLAG_CLOCAL)
269 1.14 chopps tp->t_cflag |= CLOCAL;
270 1.14 chopps if (serswflags & TIOCFLAG_CRTSCTS)
271 1.14 chopps tp->t_cflag |= CRTSCTS;
272 1.14 chopps if (serswflags & TIOCFLAG_MDMBUF)
273 1.14 chopps tp->t_cflag |= MDMBUF;
274 1.14 chopps serparam(tp, &tp->t_termios);
275 1.14 chopps ttsetwater(tp);
276 1.14 chopps
277 1.14 chopps (void)sermctl(dev, TIOCM_DTR | TIOCM_RTS, DMSET);
278 1.14 chopps if ((SWFLAGS(dev) & TIOCFLAG_SOFTCAR) ||
279 1.14 chopps (sermctl(dev, 0, DMGET) & TIOCM_CD))
280 1.14 chopps tp->t_state |= TS_CARR_ON;
281 1.14 chopps else
282 1.14 chopps tp->t_state &= ~TS_CARR_ON;
283 1.14 chopps } else if (tp->t_state & TS_XCLUDE && p->p_ucred->cr_uid != 0) {
284 1.14 chopps splx(s);
285 1.14 chopps return(EBUSY);
286 1.14 chopps }
287 1.14 chopps
288 1.14 chopps /*
289 1.14 chopps * if NONBLOCK requested, ignore carrier
290 1.14 chopps */
291 1.14 chopps if (flag & O_NONBLOCK)
292 1.14 chopps goto done;
293 1.14 chopps
294 1.14 chopps /*
295 1.14 chopps * block waiting for carrier
296 1.14 chopps */
297 1.14 chopps while ((tp->t_state & TS_CARR_ON) == 0 && (tp->t_cflag & CLOCAL) == 0) {
298 1.14 chopps tp->t_state |= TS_WOPEN;
299 1.14 chopps error = ttysleep(tp, (caddr_t)&tp->t_rawq,
300 1.14 chopps TTIPRI | PCATCH, ttopen, 0);
301 1.14 chopps if (error) {
302 1.14 chopps splx(s);
303 1.14 chopps return(error);
304 1.14 chopps }
305 1.1 mw }
306 1.14 chopps done:
307 1.22 chopps /* This is a way to handle lost XON characters */
308 1.22 chopps if ((flag & O_TRUNC) && (tp->t_state & TS_TTSTOP)) {
309 1.22 chopps tp->t_state &= ~TS_TTSTOP;
310 1.22 chopps ttstart (tp);
311 1.22 chopps }
312 1.22 chopps
313 1.14 chopps splx(s);
314 1.14 chopps /*
315 1.14 chopps * Reset the tty pointer, as there could have been a dialout
316 1.14 chopps * use of the tty with a dialin open waiting.
317 1.14 chopps */
318 1.14 chopps tp->t_dev = dev;
319 1.14 chopps return((*linesw[tp->t_line].l_open)(dev, tp));
320 1.1 mw }
321 1.14 chopps
322 1.1 mw /*ARGSUSED*/
323 1.5 mw int
324 1.1 mw serclose(dev, flag, mode, p)
325 1.14 chopps dev_t dev;
326 1.14 chopps int flag, mode;
327 1.14 chopps struct proc *p;
328 1.14 chopps {
329 1.14 chopps struct tty *tp;
330 1.14 chopps int unit;
331 1.14 chopps
332 1.14 chopps unit = SERUNIT(dev);
333 1.14 chopps
334 1.14 chopps tp = ser_tty[unit];
335 1.14 chopps (*linesw[tp->t_line].l_close)(tp, flag);
336 1.14 chopps custom.adkcon = ADKCONF_UARTBRK; /* clear break */
337 1.1 mw #ifdef KGDB
338 1.14 chopps /*
339 1.14 chopps * do not disable interrupts if debugging
340 1.14 chopps */
341 1.14 chopps if (dev != kgdb_dev)
342 1.1 mw #endif
343 1.14 chopps custom.intena = INTF_RBF | INTF_TBE; /* disable interrups */
344 1.14 chopps custom.intreq = INTF_RBF | INTF_TBE; /* clear intr request */
345 1.14 chopps
346 1.14 chopps /*
347 1.14 chopps * If the device is closed, it's close, no matter whether we deal with
348 1.14 chopps * modem control signals nor not.
349 1.14 chopps */
350 1.1 mw #if 0
351 1.14 chopps if (tp->t_cflag & HUPCL || tp->t_state & TS_WOPEN ||
352 1.14 chopps (tp->t_state & TS_ISOPEN) == 0)
353 1.1 mw #endif
354 1.14 chopps (void) sermctl(dev, 0, DMSET);
355 1.14 chopps ttyclose(tp);
356 1.14 chopps #if not_yet
357 1.14 chopps if (tp != &ser_cons) {
358 1.14 chopps remove_vbl_function(&ser_vbl_node[unit]);
359 1.14 chopps ttyfree(tp);
360 1.14 chopps ser_tty[unit] = (struct tty *) NULL;
361 1.14 chopps }
362 1.3 mw #endif
363 1.14 chopps return (0);
364 1.1 mw }
365 1.14 chopps
366 1.5 mw int
367 1.1 mw serread(dev, uio, flag)
368 1.14 chopps dev_t dev;
369 1.14 chopps struct uio *uio;
370 1.14 chopps int flag;
371 1.1 mw {
372 1.14 chopps struct tty *tp;
373 1.14 chopps if ((tp = ser_tty[SERUNIT(dev)]) == NULL)
374 1.14 chopps return(ENXIO);
375 1.14 chopps return((*linesw[tp->t_line].l_read)(tp, uio, flag));
376 1.14 chopps }
377 1.1 mw
378 1.5 mw int
379 1.1 mw serwrite(dev, uio, flag)
380 1.14 chopps dev_t dev;
381 1.14 chopps struct uio *uio;
382 1.14 chopps int flag;
383 1.1 mw {
384 1.14 chopps struct tty *tp;
385 1.14 chopps
386 1.14 chopps if((tp = ser_tty[SERUNIT(dev)]) == NULL)
387 1.14 chopps return(ENXIO);
388 1.14 chopps return((*linesw[tp->t_line].l_write)(tp, uio, flag));
389 1.1 mw }
390 1.3 mw
391 1.3 mw
392 1.14 chopps /*
393 1.14 chopps * We don't do any processing of data here, so we store the raw code
394 1.14 chopps * obtained from the uart register. In theory, 110kBaud gives you
395 1.14 chopps * 11kcps, so 16k buffer should be more than enough, interrupt
396 1.14 chopps * latency of 1s should never happen, or something is seriously
397 1.14 chopps * wrong..
398 1.14 chopps */
399 1.14 chopps
400 1.3 mw static u_short serbuf[SERIBUF_SIZE];
401 1.3 mw static u_short *sbrpt = serbuf;
402 1.3 mw static u_short *sbwpt = serbuf;
403 1.22 chopps static u_short sbcnt;
404 1.18 chopps static u_short sbovfl;
405 1.3 mw
406 1.14 chopps /*
407 1.14 chopps * This is a replacement for the lack of a hardware fifo. 32k should be
408 1.14 chopps * enough (there's only one unit anyway, so this is not going to
409 1.14 chopps * accumulate).
410 1.14 chopps */
411 1.3 mw void
412 1.14 chopps ser_fastint()
413 1.3 mw {
414 1.14 chopps /*
415 1.14 chopps * We're at RBE-level, which is higher than VBL-level which is used
416 1.14 chopps * to periodically transmit contents of this buffer up one layer,
417 1.14 chopps * so no spl-raising is necessary.
418 1.14 chopps */
419 1.14 chopps register u_short ints, code;
420 1.14 chopps
421 1.14 chopps ints = custom.intreqr & INTF_RBF;
422 1.14 chopps if (ints == 0)
423 1.14 chopps return;
424 1.14 chopps
425 1.14 chopps /*
426 1.14 chopps * clear interrupt
427 1.14 chopps */
428 1.14 chopps custom.intreq = ints;
429 1.14 chopps
430 1.14 chopps /*
431 1.14 chopps * this register contains both data and status bits!
432 1.14 chopps */
433 1.14 chopps code = custom.serdatr;
434 1.14 chopps
435 1.14 chopps /*
436 1.14 chopps * check for buffer overflow.
437 1.14 chopps */
438 1.22 chopps if (sbcnt == SERIBUF_SIZE) {
439 1.18 chopps ++sbovfl;
440 1.14 chopps return;
441 1.14 chopps }
442 1.14 chopps /*
443 1.14 chopps * store in buffer
444 1.14 chopps */
445 1.14 chopps *sbwpt++ = code;
446 1.14 chopps if (sbwpt == serbuf + SERIBUF_SIZE)
447 1.14 chopps sbwpt = serbuf;
448 1.22 chopps ++sbcnt;
449 1.22 chopps if (sbcnt > SERIBUF_SIZE - 4)
450 1.22 chopps CLRRTS(ciab.pra); /* drop RTS if buffer almost full */
451 1.3 mw }
452 1.3 mw
453 1.3 mw
454 1.3 mw int
455 1.14 chopps serintr(unit)
456 1.14 chopps int unit;
457 1.1 mw {
458 1.18 chopps int s1, s2, ovfl;
459 1.22 chopps struct tty *tp = ser_tty[unit];
460 1.1 mw
461 1.14 chopps /*
462 1.14 chopps * Make sure we're not interrupted by another
463 1.14 chopps * vbl, but allow level5 ints
464 1.14 chopps */
465 1.14 chopps s1 = spltty();
466 1.1 mw
467 1.14 chopps /*
468 1.14 chopps * pass along any acumulated information
469 1.14 chopps */
470 1.22 chopps while (sbcnt > 0 && (tp->t_state & TS_TBLOCK) == 0) {
471 1.14 chopps /*
472 1.14 chopps * no collision with ser_fastint()
473 1.14 chopps */
474 1.22 chopps sereint(unit, *sbrpt++);
475 1.14 chopps
476 1.18 chopps ovfl = 0;
477 1.14 chopps /* lock against ser_fastint() */
478 1.14 chopps s2 = spl5();
479 1.22 chopps sbcnt--;
480 1.14 chopps if (sbrpt == serbuf + SERIBUF_SIZE)
481 1.14 chopps sbrpt = serbuf;
482 1.18 chopps if (sbovfl != 0) {
483 1.18 chopps ovfl = sbovfl;
484 1.18 chopps sbovfl = 0;
485 1.18 chopps }
486 1.14 chopps splx(s2);
487 1.18 chopps if (ovfl != 0)
488 1.21 chopps log(LOG_WARNING, "ser0: %d ring buffer overflows.\n",
489 1.21 chopps ovfl);
490 1.14 chopps }
491 1.22 chopps if (sbcnt == 0 && (tp->t_state & TS_TBLOCK) == 0)
492 1.22 chopps SETRTS(ciab.pra); /* start accepting data again */
493 1.14 chopps splx(s1);
494 1.1 mw }
495 1.1 mw
496 1.5 mw int
497 1.15 chopps sereint(unit, stat)
498 1.14 chopps int unit, stat;
499 1.1 mw {
500 1.14 chopps struct tty *tp;
501 1.14 chopps u_char ch;
502 1.14 chopps int c;
503 1.14 chopps
504 1.14 chopps tp = ser_tty[unit];
505 1.14 chopps ch = stat & 0xff;
506 1.14 chopps c = ch;
507 1.14 chopps
508 1.14 chopps if ((tp->t_state & TS_ISOPEN) == 0) {
509 1.1 mw #ifdef KGDB
510 1.14 chopps /* we don't care about parity errors */
511 1.14 chopps if (kgdb_dev == makedev(sermajor, unit) && c == FRAME_END)
512 1.14 chopps kgdb_connect(0); /* trap into kgdb */
513 1.1 mw #endif
514 1.14 chopps return;
515 1.14 chopps }
516 1.14 chopps
517 1.14 chopps /*
518 1.14 chopps * Check for break and (if enabled) parity error.
519 1.14 chopps */
520 1.14 chopps if ((stat & 0x1ff) == 0)
521 1.14 chopps c |= TTY_FE;
522 1.14 chopps else if ((tp->t_cflag & PARENB) &&
523 1.14 chopps (((ch >> 7) + even_parity[ch & 0x7f]
524 1.14 chopps + !!(tp->t_cflag & PARODD)) & 1))
525 1.14 chopps c |= TTY_PE;
526 1.14 chopps
527 1.14 chopps if (stat & SERDATRF_OVRUN)
528 1.15 chopps log(LOG_WARNING, "ser0: silo overflow\n");
529 1.1 mw
530 1.14 chopps (*linesw[tp->t_line].l_rint)(c, tp);
531 1.14 chopps }
532 1.14 chopps
533 1.14 chopps /*
534 1.14 chopps * This interrupt is periodically invoked in the vertical blank
535 1.14 chopps * interrupt. It's used to keep track of the modem control lines
536 1.14 chopps * and (new with the fast_int code) to move accumulated data
537 1.14 chopps * up into the tty layer.
538 1.14 chopps */
539 1.3 mw void
540 1.14 chopps sermint(unit)
541 1.14 chopps int unit;
542 1.1 mw {
543 1.14 chopps struct tty *tp;
544 1.14 chopps u_char stat, last, istat;
545 1.14 chopps
546 1.14 chopps tp = ser_tty[unit];
547 1.14 chopps if (!tp)
548 1.14 chopps return;
549 1.14 chopps
550 1.14 chopps if ((tp->t_state & (TS_ISOPEN | TS_WOPEN)) == 0) {
551 1.14 chopps sbrpt = sbwpt = serbuf;
552 1.14 chopps return;
553 1.14 chopps }
554 1.14 chopps /*
555 1.14 chopps * empty buffer
556 1.14 chopps */
557 1.14 chopps serintr(unit);
558 1.14 chopps
559 1.14 chopps stat = ciab.pra;
560 1.14 chopps last = last_ciab_pra;
561 1.14 chopps last_ciab_pra = stat;
562 1.14 chopps
563 1.14 chopps /*
564 1.14 chopps * check whether any interesting signal changed state
565 1.14 chopps */
566 1.14 chopps istat = stat ^ last;
567 1.1 mw
568 1.14 chopps if ((istat & CIAB_PRA_CD) &&
569 1.14 chopps (SWFLAGS(tp->t_dev) & TIOCFLAG_SOFTCAR) == 0) {
570 1.14 chopps if (ISDCD(stat))
571 1.14 chopps (*linesw[tp->t_line].l_modem)(tp, 1);
572 1.14 chopps else if ((*linesw[tp->t_line].l_modem)(tp, 0) == 0) {
573 1.14 chopps CLRDTR(stat);
574 1.14 chopps CLRRTS(stat);
575 1.14 chopps ciab.pra = stat;
576 1.14 chopps last_ciab_pra = stat;
577 1.14 chopps }
578 1.14 chopps }
579 1.14 chopps if ((istat & CIAB_PRA_CTS) && (tp->t_state & TS_ISOPEN) &&
580 1.14 chopps (tp->t_cflag & CRTSCTS)) {
581 1.5 mw #if 0
582 1.14 chopps /* the line is up and we want to do rts/cts flow control */
583 1.14 chopps if (ISCTS(stat)) {
584 1.14 chopps tp->t_state &= ~TS_TTSTOP;
585 1.14 chopps ttstart(tp);
586 1.14 chopps /* cause tbe-int if we were stuck there */
587 1.14 chopps custom.intreq = INTF_SETCLR | INTF_TBE;
588 1.14 chopps } else
589 1.14 chopps tp->t_state |= TS_TTSTOP;
590 1.5 mw #else
591 1.14 chopps /* do this on hardware level, not with tty driver */
592 1.14 chopps if (ISCTS(stat)) {
593 1.14 chopps tp->t_state &= ~TS_TTSTOP;
594 1.14 chopps /* cause TBE interrupt */
595 1.14 chopps custom.intreq = INTF_SETCLR | INTF_TBE;
596 1.14 chopps }
597 1.14 chopps #endif
598 1.5 mw }
599 1.1 mw }
600 1.1 mw
601 1.5 mw int
602 1.8 chopps serioctl(dev, cmd, data, flag, p)
603 1.24 chopps dev_t dev;
604 1.24 chopps u_long cmd;
605 1.8 chopps caddr_t data;
606 1.24 chopps int flag;
607 1.8 chopps struct proc *p;
608 1.1 mw {
609 1.14 chopps register struct tty *tp;
610 1.14 chopps register int unit = SERUNIT(dev);
611 1.14 chopps register int error;
612 1.14 chopps
613 1.14 chopps tp = ser_tty[unit];
614 1.14 chopps if (!tp)
615 1.14 chopps return ENXIO;
616 1.14 chopps
617 1.14 chopps error = (*linesw[tp->t_line].l_ioctl)(tp, cmd, data, flag, p);
618 1.14 chopps if (error >= 0)
619 1.14 chopps return(error);
620 1.14 chopps
621 1.14 chopps error = ttioctl(tp, cmd, data, flag, p);
622 1.14 chopps if (error >= 0)
623 1.14 chopps return(error);
624 1.14 chopps
625 1.14 chopps switch (cmd) {
626 1.14 chopps case TIOCSBRK:
627 1.14 chopps custom.adkcon = ADKCONF_SETCLR | ADKCONF_UARTBRK;
628 1.14 chopps break;
629 1.14 chopps
630 1.14 chopps case TIOCCBRK:
631 1.14 chopps custom.adkcon = ADKCONF_UARTBRK;
632 1.14 chopps break;
633 1.14 chopps
634 1.14 chopps case TIOCSDTR:
635 1.14 chopps (void) sermctl(dev, TIOCM_DTR | TIOCM_RTS, DMBIS);
636 1.14 chopps break;
637 1.14 chopps
638 1.14 chopps case TIOCCDTR:
639 1.14 chopps (void) sermctl(dev, TIOCM_DTR | TIOCM_RTS, DMBIC);
640 1.14 chopps break;
641 1.14 chopps
642 1.14 chopps case TIOCMSET:
643 1.14 chopps (void) sermctl(dev, *(int *) data, DMSET);
644 1.14 chopps break;
645 1.14 chopps
646 1.14 chopps case TIOCMBIS:
647 1.14 chopps (void) sermctl(dev, *(int *) data, DMBIS);
648 1.14 chopps break;
649 1.14 chopps
650 1.14 chopps case TIOCMBIC:
651 1.14 chopps (void) sermctl(dev, *(int *) data, DMBIC);
652 1.14 chopps break;
653 1.14 chopps
654 1.14 chopps case TIOCMGET:
655 1.14 chopps *(int *)data = sermctl(dev, 0, DMGET);
656 1.14 chopps break;
657 1.14 chopps case TIOCGFLAGS:
658 1.14 chopps *(int *)data = SWFLAGS(dev);
659 1.14 chopps break;
660 1.14 chopps case TIOCSFLAGS:
661 1.14 chopps error = suser(p->p_ucred, &p->p_acflag);
662 1.14 chopps if (error != 0)
663 1.14 chopps return(EPERM);
664 1.14 chopps
665 1.14 chopps serswflags = *(int *)data;
666 1.14 chopps serswflags &= /* only allow valid flags */
667 1.14 chopps (TIOCFLAG_SOFTCAR | TIOCFLAG_CLOCAL | TIOCFLAG_CRTSCTS);
668 1.14 chopps break;
669 1.14 chopps default:
670 1.14 chopps return(ENOTTY);
671 1.14 chopps }
672 1.1 mw
673 1.14 chopps return(0);
674 1.1 mw }
675 1.1 mw
676 1.5 mw int
677 1.1 mw serparam(tp, t)
678 1.14 chopps struct tty *tp;
679 1.14 chopps struct termios *t;
680 1.1 mw {
681 1.14 chopps int cfcr, cflag, unit, ospeed;
682 1.14 chopps
683 1.14 chopps cflag = t->c_cflag;
684 1.14 chopps unit = SERUNIT(tp->t_dev);
685 1.14 chopps ospeed = ttspeedtab(t->c_ospeed, serspeedtab);
686 1.14 chopps
687 1.14 chopps if (ospeed < 0 || (t->c_ispeed && t->c_ispeed != t->c_ospeed))
688 1.14 chopps return(EINVAL);
689 1.14 chopps
690 1.14 chopps /*
691 1.14 chopps * copy to tty
692 1.14 chopps */
693 1.14 chopps tp->t_ispeed = t->c_ispeed;
694 1.14 chopps tp->t_ospeed = t->c_ospeed;
695 1.14 chopps tp->t_cflag = cflag;
696 1.14 chopps
697 1.14 chopps /*
698 1.14 chopps * enable interrupts
699 1.14 chopps */
700 1.14 chopps custom.intena = INTF_SETCLR | INTF_RBF | INTF_TBE;
701 1.14 chopps last_ciab_pra = ciab.pra;
702 1.14 chopps
703 1.14 chopps if (ospeed == 0)
704 1.14 chopps (void)sermctl(tp->t_dev, 0, DMSET); /* hang up line */
705 1.14 chopps else {
706 1.14 chopps /*
707 1.14 chopps * (re)enable DTR
708 1.14 chopps * and set baud rate. (8 bit mode)
709 1.14 chopps */
710 1.14 chopps (void)sermctl(tp->t_dev, TIOCM_DTR | TIOCM_RTS, DMSET);
711 1.14 chopps custom.serper = (0 << 15) | ospeed;
712 1.14 chopps }
713 1.14 chopps return(0);
714 1.1 mw }
715 1.3 mw
716 1.22 chopps int serhwiflow(tp, flag)
717 1.22 chopps struct tty *tp;
718 1.22 chopps int flag;
719 1.22 chopps {
720 1.22 chopps #if 0
721 1.22 chopps printf ("serhwiflow %d\n", flag);
722 1.22 chopps #endif
723 1.22 chopps if (flag)
724 1.22 chopps CLRRTS(ciab.pra);
725 1.22 chopps else
726 1.22 chopps SETRTS(ciab.pra);
727 1.22 chopps return 1;
728 1.22 chopps }
729 1.3 mw
730 1.3 mw static void
731 1.14 chopps ser_putchar(tp, c)
732 1.14 chopps struct tty *tp;
733 1.14 chopps u_short c;
734 1.14 chopps {
735 1.14 chopps if ((tp->t_cflag & CSIZE) == CS7 || (tp->t_cflag & PARENB))
736 1.14 chopps c &= 0x7f;
737 1.14 chopps
738 1.14 chopps /*
739 1.14 chopps * handle parity if necessary
740 1.14 chopps */
741 1.14 chopps if (tp->t_cflag & PARENB) {
742 1.14 chopps if (even_parity[c])
743 1.14 chopps c |= 0x80;
744 1.14 chopps if (tp->t_cflag & PARODD)
745 1.14 chopps c ^= 0x80;
746 1.14 chopps }
747 1.14 chopps /*
748 1.14 chopps * add stop bit(s)
749 1.14 chopps */
750 1.14 chopps if (tp->t_cflag & CSTOPB)
751 1.14 chopps c |= 0x300;
752 1.14 chopps else
753 1.14 chopps c |= 0x100;
754 1.14 chopps
755 1.14 chopps custom.serdat = c;
756 1.3 mw }
757 1.3 mw
758 1.3 mw
759 1.3 mw static u_char ser_outbuf[SEROBUF_SIZE];
760 1.14 chopps static u_char *sob_ptr = ser_outbuf, *sob_end = ser_outbuf;
761 1.14 chopps
762 1.3 mw void
763 1.14 chopps ser_outintr()
764 1.3 mw {
765 1.14 chopps struct tty *tp = ser_tty[0];
766 1.14 chopps u_short c;
767 1.14 chopps int s;
768 1.14 chopps
769 1.14 chopps tp = ser_tty[0];
770 1.14 chopps s = spltty();
771 1.14 chopps
772 1.14 chopps if (tp == 0)
773 1.14 chopps goto out;
774 1.14 chopps
775 1.14 chopps if ((custom.intreqr & INTF_TBE) == 0)
776 1.14 chopps goto out;
777 1.14 chopps
778 1.14 chopps /*
779 1.14 chopps * clear interrupt
780 1.14 chopps */
781 1.14 chopps custom.intreq = INTF_TBE;
782 1.14 chopps
783 1.14 chopps if (sob_ptr == sob_end) {
784 1.14 chopps tp->t_state &= ~(TS_BUSY | TS_FLUSH);
785 1.14 chopps if (tp->t_line)
786 1.14 chopps (*linesw[tp->t_line].l_start)(tp);
787 1.14 chopps else
788 1.14 chopps serstart(tp);
789 1.14 chopps goto out;
790 1.14 chopps }
791 1.14 chopps
792 1.14 chopps /*
793 1.14 chopps * Do hardware flow control here. if the CTS line goes down, don't
794 1.14 chopps * transmit anything. That way, we'll be restarted by the periodic
795 1.14 chopps * interrupt when CTS comes back up.
796 1.14 chopps */
797 1.14 chopps if (ISCTS(ciab.pra))
798 1.14 chopps ser_putchar(tp, *sob_ptr++);
799 1.22 chopps else
800 1.22 chopps CLRCTS(last_ciab_pra); /* Remember that CTS is off */
801 1.5 mw out:
802 1.14 chopps splx(s);
803 1.3 mw }
804 1.14 chopps
805 1.5 mw int
806 1.1 mw serstart(tp)
807 1.14 chopps struct tty *tp;
808 1.1 mw {
809 1.14 chopps int cc, s, unit, hiwat;
810 1.14 chopps
811 1.14 chopps hiwat = 0;
812 1.14 chopps
813 1.14 chopps if ((tp->t_state & TS_ISOPEN) == 0)
814 1.14 chopps return;
815 1.14 chopps
816 1.14 chopps unit = SERUNIT(tp->t_dev);
817 1.1 mw
818 1.14 chopps s = spltty();
819 1.14 chopps if (tp->t_state & (TS_TIMEOUT | TS_TTSTOP))
820 1.14 chopps goto out;
821 1.14 chopps
822 1.14 chopps cc = tp->t_outq.c_cc;
823 1.14 chopps if (cc <= tp->t_lowat) {
824 1.14 chopps if (tp->t_state & TS_ASLEEP) {
825 1.14 chopps tp->t_state &= ~TS_ASLEEP;
826 1.14 chopps wakeup((caddr_t) & tp->t_outq);
827 1.14 chopps }
828 1.14 chopps selwakeup(&tp->t_wsel);
829 1.14 chopps }
830 1.14 chopps if (cc == 0 || (tp->t_state & TS_BUSY))
831 1.14 chopps goto out;
832 1.14 chopps
833 1.14 chopps /*
834 1.14 chopps * We only do bulk transfers if using CTSRTS flow control, not for
835 1.14 chopps * (probably sloooow) ixon/ixoff devices.
836 1.14 chopps */
837 1.14 chopps if ((tp->t_cflag & CRTSCTS) == 0)
838 1.14 chopps cc = 1;
839 1.14 chopps
840 1.14 chopps /*
841 1.14 chopps * Limit the amount of output we do in one burst
842 1.14 chopps * to prevent hogging the CPU.
843 1.14 chopps */
844 1.14 chopps if (cc > SEROBUF_SIZE) {
845 1.14 chopps hiwat++;
846 1.14 chopps cc = SEROBUF_SIZE;
847 1.14 chopps }
848 1.14 chopps cc = q_to_b(&tp->t_outq, ser_outbuf, cc);
849 1.14 chopps if (cc > 0) {
850 1.14 chopps tp->t_state |= TS_BUSY;
851 1.14 chopps
852 1.14 chopps sob_ptr = ser_outbuf;
853 1.14 chopps sob_end = ser_outbuf + cc;
854 1.14 chopps
855 1.14 chopps /*
856 1.14 chopps * Get first character out, then have TBE-interrupts blow out
857 1.14 chopps * further characters, until buffer is empty, and TS_BUSY gets
858 1.14 chopps * cleared.
859 1.14 chopps */
860 1.14 chopps ser_putchar(tp, *sob_ptr++);
861 1.14 chopps }
862 1.14 chopps out:
863 1.14 chopps splx(s);
864 1.1 mw }
865 1.14 chopps
866 1.1 mw /*
867 1.1 mw * Stop output on a line.
868 1.1 mw */
869 1.1 mw /*ARGSUSED*/
870 1.5 mw int
871 1.1 mw serstop(tp, flag)
872 1.14 chopps struct tty *tp;
873 1.1 mw {
874 1.14 chopps int s;
875 1.1 mw
876 1.14 chopps s = spltty();
877 1.14 chopps if (tp->t_state & TS_BUSY) {
878 1.14 chopps if ((tp->t_state & TS_TTSTOP) == 0)
879 1.14 chopps tp->t_state |= TS_FLUSH;
880 1.14 chopps }
881 1.14 chopps splx(s);
882 1.1 mw }
883 1.14 chopps
884 1.5 mw int
885 1.1 mw sermctl(dev, bits, how)
886 1.14 chopps dev_t dev;
887 1.14 chopps int bits, how;
888 1.1 mw {
889 1.14 chopps int unit, s;
890 1.14 chopps u_char ub;
891 1.14 chopps
892 1.14 chopps unit = SERUNIT(dev);
893 1.14 chopps
894 1.14 chopps /*
895 1.14 chopps * convert TIOCM* mask into CIA mask
896 1.14 chopps * which is active low
897 1.14 chopps */
898 1.14 chopps if (how != DMGET) {
899 1.14 chopps ub = 0;
900 1.14 chopps if (bits & TIOCM_DTR)
901 1.14 chopps ub |= CIAB_PRA_DTR;
902 1.14 chopps if (bits & TIOCM_RTS)
903 1.14 chopps ub |= CIAB_PRA_RTS;
904 1.14 chopps if (bits & TIOCM_CTS)
905 1.14 chopps ub |= CIAB_PRA_CTS;
906 1.14 chopps if (bits & TIOCM_CD)
907 1.14 chopps ub |= CIAB_PRA_CD;
908 1.14 chopps if (bits & TIOCM_RI)
909 1.14 chopps ub |= CIAB_PRA_SEL; /* collision with /dev/par ! */
910 1.14 chopps if (bits & TIOCM_DSR)
911 1.14 chopps ub |= CIAB_PRA_DSR;
912 1.14 chopps }
913 1.14 chopps s = spltty();
914 1.14 chopps switch (how) {
915 1.14 chopps case DMSET:
916 1.14 chopps /* invert and set */
917 1.14 chopps ciab.pra = ~ub;
918 1.14 chopps break;
919 1.14 chopps
920 1.14 chopps case DMBIC:
921 1.14 chopps ciab.pra |= ub;
922 1.14 chopps ub = ~ciab.pra;
923 1.14 chopps break;
924 1.14 chopps
925 1.14 chopps case DMBIS:
926 1.14 chopps ciab.pra &= ~ub;
927 1.14 chopps ub = ~ciab.pra;
928 1.14 chopps break;
929 1.14 chopps
930 1.14 chopps case DMGET:
931 1.14 chopps ub = ~ciab.pra;
932 1.14 chopps break;
933 1.14 chopps }
934 1.14 chopps (void)splx(s);
935 1.14 chopps
936 1.14 chopps bits = 0;
937 1.14 chopps if (ub & CIAB_PRA_DTR)
938 1.14 chopps bits |= TIOCM_DTR;
939 1.14 chopps if (ub & CIAB_PRA_RTS)
940 1.14 chopps bits |= TIOCM_RTS;
941 1.14 chopps if (ub & CIAB_PRA_CTS)
942 1.14 chopps bits |= TIOCM_CTS;
943 1.14 chopps if (ub & CIAB_PRA_CD)
944 1.14 chopps bits |= TIOCM_CD;
945 1.14 chopps if (ub & CIAB_PRA_SEL)
946 1.14 chopps bits |= TIOCM_RI;
947 1.14 chopps if (ub & CIAB_PRA_DSR)
948 1.14 chopps bits |= TIOCM_DSR;
949 1.14 chopps
950 1.14 chopps return(bits);
951 1.1 mw }
952 1.1 mw
953 1.1 mw /*
954 1.1 mw * Following are all routines needed for SER to act as console
955 1.1 mw */
956 1.14 chopps int
957 1.1 mw sercnprobe(cp)
958 1.1 mw struct consdev *cp;
959 1.1 mw {
960 1.14 chopps int unit = CONUNIT;
961 1.14 chopps
962 1.14 chopps /* locate the major number */
963 1.14 chopps for (sermajor = 0; sermajor < nchrdev; sermajor++)
964 1.14 chopps if (cdevsw[sermajor].d_open == (void *)seropen)
965 1.14 chopps break;
966 1.14 chopps
967 1.14 chopps
968 1.14 chopps unit = CONUNIT; /* XXX: ick */
969 1.14 chopps
970 1.14 chopps /*
971 1.14 chopps * initialize required fields
972 1.14 chopps */
973 1.14 chopps cp->cn_dev = makedev(sermajor, unit);
974 1.14 chopps if (serconsole == unit)
975 1.14 chopps cp->cn_pri = CN_REMOTE;
976 1.14 chopps else
977 1.14 chopps cp->cn_pri = CN_NORMAL;
978 1.1 mw #ifdef KGDB
979 1.14 chopps if (major(kgdb_dev) == 1) /* XXX */
980 1.14 chopps kgdb_dev = makedev(sermajor, minor(kgdb_dev));
981 1.1 mw #endif
982 1.1 mw }
983 1.1 mw
984 1.1 mw sercninit(cp)
985 1.1 mw struct consdev *cp;
986 1.1 mw {
987 1.14 chopps int unit;
988 1.1 mw
989 1.14 chopps unit = SERUNIT(cp->cn_dev);
990 1.14 chopps
991 1.14 chopps serinit(unit, serdefaultrate);
992 1.14 chopps serconsole = unit;
993 1.14 chopps serconsinit = 1;
994 1.1 mw }
995 1.1 mw
996 1.1 mw serinit(unit, rate)
997 1.1 mw int unit, rate;
998 1.1 mw {
999 1.14 chopps int s;
1000 1.1 mw
1001 1.14 chopps s = splhigh();
1002 1.14 chopps /*
1003 1.14 chopps * might want to fiddle with the CIA later ???
1004 1.14 chopps */
1005 1.14 chopps custom.serper = ttspeedtab(rate, serspeedtab);
1006 1.14 chopps splx(s);
1007 1.1 mw }
1008 1.1 mw
1009 1.1 mw sercngetc(dev)
1010 1.1 mw {
1011 1.14 chopps u_short stat;
1012 1.14 chopps int c, s;
1013 1.1 mw
1014 1.14 chopps s = splhigh();
1015 1.14 chopps /*
1016 1.14 chopps * poll
1017 1.14 chopps */
1018 1.14 chopps while (((stat = custom.serdatr & 0xffff) & SERDATRF_RBF) == 0)
1019 1.14 chopps ;
1020 1.14 chopps c = stat & 0xff;
1021 1.14 chopps /*
1022 1.14 chopps * clear interrupt
1023 1.14 chopps */
1024 1.14 chopps custom.intreq = INTF_RBF;
1025 1.14 chopps splx(s);
1026 1.14 chopps return(c);
1027 1.1 mw }
1028 1.1 mw
1029 1.1 mw /*
1030 1.1 mw * Console kernel output character routine.
1031 1.1 mw */
1032 1.1 mw sercnputc(dev, c)
1033 1.14 chopps dev_t dev;
1034 1.14 chopps int c;
1035 1.1 mw {
1036 1.14 chopps register int timo;
1037 1.14 chopps short stat;
1038 1.14 chopps int s;
1039 1.14 chopps
1040 1.14 chopps s = splhigh();
1041 1.1 mw
1042 1.14 chopps if (serconsinit == 0) {
1043 1.14 chopps (void)serinit(SERUNIT(dev), serdefaultrate);
1044 1.14 chopps serconsinit = 1;
1045 1.14 chopps }
1046 1.14 chopps
1047 1.14 chopps /*
1048 1.14 chopps * wait for any pending transmission to finish
1049 1.14 chopps */
1050 1.14 chopps timo = 50000;
1051 1.14 chopps while (!(custom.serdatr & SERDATRF_TBE) && --timo);
1052 1.14 chopps
1053 1.14 chopps /*
1054 1.14 chopps * transmit char.
1055 1.14 chopps */
1056 1.14 chopps custom.serdat = (c & 0xff) | 0x100;
1057 1.14 chopps
1058 1.14 chopps /*
1059 1.14 chopps * wait for this transmission to complete
1060 1.14 chopps */
1061 1.14 chopps timo = 1500000;
1062 1.14 chopps while (!(custom.serdatr & SERDATRF_TBE) && --timo)
1063 1.14 chopps ;
1064 1.14 chopps
1065 1.14 chopps /*
1066 1.14 chopps * Wait for the device (my vt100..) to process the data, since we
1067 1.14 chopps * don't do flow-control with cnputc
1068 1.14 chopps */
1069 1.14 chopps for (timo = 0; timo < 30000; timo++)
1070 1.14 chopps ;
1071 1.14 chopps
1072 1.14 chopps /*
1073 1.14 chopps * clear any interrupts generated by this transmission
1074 1.14 chopps */
1075 1.14 chopps custom.intreq = INTF_TBE;
1076 1.14 chopps splx(s);
1077 1.1 mw }
1078 1.1 mw #endif
1079