zs.c revision 1.50 1 1.50 wiz /* $NetBSD: zs.c,v 1.50 2004/02/13 11:36:18 wiz Exp $ */
2 1.1 eeh
3 1.1 eeh /*-
4 1.1 eeh * Copyright (c) 1996 The NetBSD Foundation, Inc.
5 1.1 eeh * All rights reserved.
6 1.1 eeh *
7 1.1 eeh * This code is derived from software contributed to The NetBSD Foundation
8 1.1 eeh * by Gordon W. Ross.
9 1.1 eeh *
10 1.1 eeh * Redistribution and use in source and binary forms, with or without
11 1.1 eeh * modification, are permitted provided that the following conditions
12 1.1 eeh * are met:
13 1.1 eeh * 1. Redistributions of source code must retain the above copyright
14 1.1 eeh * notice, this list of conditions and the following disclaimer.
15 1.1 eeh * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 eeh * notice, this list of conditions and the following disclaimer in the
17 1.1 eeh * documentation and/or other materials provided with the distribution.
18 1.1 eeh * 3. All advertising materials mentioning features or use of this software
19 1.1 eeh * must display the following acknowledgement:
20 1.1 eeh * This product includes software developed by the NetBSD
21 1.1 eeh * Foundation, Inc. and its contributors.
22 1.1 eeh * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.1 eeh * contributors may be used to endorse or promote products derived
24 1.1 eeh * from this software without specific prior written permission.
25 1.1 eeh *
26 1.1 eeh * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.1 eeh * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.1 eeh * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.1 eeh * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.1 eeh * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.1 eeh * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.1 eeh * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.1 eeh * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.1 eeh * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.1 eeh * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.1 eeh * POSSIBILITY OF SUCH DAMAGE.
37 1.1 eeh */
38 1.1 eeh
39 1.1 eeh /*
40 1.1 eeh * Zilog Z8530 Dual UART driver (machine-dependent part)
41 1.1 eeh *
42 1.1 eeh * Runs two serial lines per chip using slave drivers.
43 1.1 eeh * Plain tty/async lines use the zs_async slave.
44 1.1 eeh * Sun keyboard/mouse uses the zs_kbd/zs_ms slaves.
45 1.1 eeh */
46 1.47 lukem
47 1.47 lukem #include <sys/cdefs.h>
48 1.50 wiz __KERNEL_RCSID(0, "$NetBSD: zs.c,v 1.50 2004/02/13 11:36:18 wiz Exp $");
49 1.2 jonathan
50 1.2 jonathan #include "opt_ddb.h"
51 1.29 lukem #include "opt_kgdb.h"
52 1.1 eeh
53 1.1 eeh #include <sys/param.h>
54 1.1 eeh #include <sys/systm.h>
55 1.1 eeh #include <sys/conf.h>
56 1.1 eeh #include <sys/device.h>
57 1.1 eeh #include <sys/file.h>
58 1.1 eeh #include <sys/ioctl.h>
59 1.1 eeh #include <sys/kernel.h>
60 1.1 eeh #include <sys/proc.h>
61 1.1 eeh #include <sys/tty.h>
62 1.1 eeh #include <sys/time.h>
63 1.1 eeh #include <sys/syslog.h>
64 1.1 eeh
65 1.1 eeh #include <machine/autoconf.h>
66 1.1 eeh #include <machine/openfirm.h>
67 1.1 eeh #include <machine/cpu.h>
68 1.1 eeh #include <machine/eeprom.h>
69 1.1 eeh #include <machine/psl.h>
70 1.1 eeh #include <machine/z8530var.h>
71 1.1 eeh
72 1.1 eeh #include <dev/cons.h>
73 1.1 eeh #include <dev/ic/z8530reg.h>
74 1.26 eeh #include <dev/sun/kbd_ms_ttyvar.h>
75 1.16 mrg #include <ddb/db_output.h>
76 1.1 eeh
77 1.1 eeh #include <sparc64/dev/cons.h>
78 1.1 eeh
79 1.1 eeh #include "kbd.h" /* NKBD */
80 1.26 eeh #include "ms.h" /* NMS */
81 1.1 eeh #include "zs.h" /* NZS */
82 1.1 eeh
83 1.1 eeh /* Make life easier for the initialized arrays here. */
84 1.1 eeh #if NZS < 3
85 1.1 eeh #undef NZS
86 1.1 eeh #define NZS 3
87 1.1 eeh #endif
88 1.1 eeh
89 1.1 eeh /*
90 1.1 eeh * Some warts needed by z8530tty.c -
91 1.1 eeh * The default parity REALLY needs to be the same as the PROM uses,
92 1.1 eeh * or you can not see messages done with printf during boot-up...
93 1.1 eeh */
94 1.1 eeh int zs_def_cflag = (CREAD | CS8 | HUPCL);
95 1.1 eeh
96 1.1 eeh /*
97 1.1 eeh * The Sun provides a 4.9152 MHz clock to the ZS chips.
98 1.1 eeh */
99 1.1 eeh #define PCLK (9600 * 512) /* PCLK pin input clock rate */
100 1.1 eeh
101 1.10 eeh #define ZS_DELAY()
102 1.1 eeh
103 1.1 eeh /* The layout of this is hardware-dependent (padding, order). */
104 1.1 eeh struct zschan {
105 1.1 eeh volatile u_char zc_csr; /* ctrl,status, and indirect access */
106 1.1 eeh u_char zc_xxx0;
107 1.1 eeh volatile u_char zc_data; /* data */
108 1.1 eeh u_char zc_xxx1;
109 1.1 eeh };
110 1.1 eeh struct zsdevice {
111 1.1 eeh /* Yes, they are backwards. */
112 1.1 eeh struct zschan zs_chan_b;
113 1.1 eeh struct zschan zs_chan_a;
114 1.1 eeh };
115 1.1 eeh
116 1.20 eeh /* ZS channel used as the console device (if any) */
117 1.20 eeh void *zs_conschan_get, *zs_conschan_put;
118 1.20 eeh
119 1.1 eeh /* Saved PROM mappings */
120 1.1 eeh static struct zsdevice *zsaddr[NZS];
121 1.1 eeh
122 1.1 eeh static u_char zs_init_reg[16] = {
123 1.1 eeh 0, /* 0: CMD (reset, etc.) */
124 1.1 eeh 0, /* 1: No interrupts yet. */
125 1.1 eeh 0, /* 2: IVECT */
126 1.1 eeh ZSWR3_RX_8 | ZSWR3_RX_ENABLE,
127 1.1 eeh ZSWR4_CLK_X16 | ZSWR4_ONESB | ZSWR4_EVENP,
128 1.1 eeh ZSWR5_TX_8 | ZSWR5_TX_ENABLE,
129 1.1 eeh 0, /* 6: TXSYNC/SYNCLO */
130 1.1 eeh 0, /* 7: RXSYNC/SYNCHI */
131 1.1 eeh 0, /* 8: alias for data port */
132 1.1 eeh ZSWR9_MASTER_IE | ZSWR9_NO_VECTOR,
133 1.1 eeh 0, /*10: Misc. TX/RX control bits */
134 1.1 eeh ZSWR11_TXCLK_BAUD | ZSWR11_RXCLK_BAUD,
135 1.7 mycroft ((PCLK/32)/9600)-2, /*12: BAUDLO (default=9600) */
136 1.7 mycroft 0, /*13: BAUDHI (default=9600) */
137 1.1 eeh ZSWR14_BAUD_ENA | ZSWR14_BAUD_FROM_PCLK,
138 1.6 mycroft ZSWR15_BREAK_IE,
139 1.1 eeh };
140 1.1 eeh
141 1.20 eeh /* Console ops */
142 1.20 eeh static int zscngetc __P((dev_t));
143 1.20 eeh static void zscnputc __P((dev_t, int));
144 1.20 eeh static void zscnpollc __P((dev_t, int));
145 1.20 eeh
146 1.20 eeh struct consdev zs_consdev = {
147 1.20 eeh NULL,
148 1.20 eeh NULL,
149 1.20 eeh zscngetc,
150 1.20 eeh zscnputc,
151 1.20 eeh zscnpollc,
152 1.20 eeh NULL,
153 1.20 eeh };
154 1.1 eeh
155 1.1 eeh
156 1.1 eeh /****************************************************************
157 1.1 eeh * Autoconfig
158 1.1 eeh ****************************************************************/
159 1.1 eeh
160 1.1 eeh /* Definition of the driver for autoconfig. */
161 1.48 petrov static int zs_match_sbus __P((struct device *, struct cfdata *, void *));
162 1.48 petrov static void zs_attach_sbus __P((struct device *, struct device *, void *));
163 1.1 eeh
164 1.20 eeh static void zs_attach __P((struct zsc_softc *, struct zsdevice *, int));
165 1.1 eeh static int zs_print __P((void *, const char *name));
166 1.1 eeh
167 1.42 thorpej CFATTACH_DECL(zs, sizeof(struct zsc_softc),
168 1.48 petrov zs_match_sbus, zs_attach_sbus, NULL, NULL);
169 1.1 eeh
170 1.1 eeh extern struct cfdriver zs_cd;
171 1.12 eeh extern int stdinnode;
172 1.12 eeh extern int fbnode;
173 1.1 eeh
174 1.1 eeh /* Interrupt handlers. */
175 1.24 eeh int zscheckintr __P((void *));
176 1.1 eeh static int zshard __P((void *));
177 1.28 fvdl static void zssoft __P((void *));
178 1.1 eeh
179 1.1 eeh static int zs_get_speed __P((struct zs_chanstate *));
180 1.1 eeh
181 1.20 eeh /* Console device support */
182 1.20 eeh static int zs_console_flags __P((int, int, int));
183 1.20 eeh
184 1.20 eeh /* Power management hooks */
185 1.20 eeh int zs_enable __P((struct zs_chanstate *));
186 1.20 eeh void zs_disable __P((struct zs_chanstate *));
187 1.1 eeh
188 1.1 eeh /*
189 1.1 eeh * Is the zs chip present?
190 1.1 eeh */
191 1.1 eeh static int
192 1.48 petrov zs_match_sbus(parent, cf, aux)
193 1.1 eeh struct device *parent;
194 1.1 eeh struct cfdata *cf;
195 1.1 eeh void *aux;
196 1.1 eeh {
197 1.1 eeh struct sbus_attach_args *sa = aux;
198 1.1 eeh
199 1.39 thorpej if (strcmp(cf->cf_name, sa->sa_name) != 0)
200 1.1 eeh return (0);
201 1.1 eeh
202 1.20 eeh return (1);
203 1.1 eeh }
204 1.1 eeh
205 1.1 eeh static void
206 1.48 petrov zs_attach_sbus(parent, self, aux)
207 1.1 eeh struct device *parent;
208 1.1 eeh struct device *self;
209 1.1 eeh void *aux;
210 1.1 eeh {
211 1.1 eeh struct zsc_softc *zsc = (void *) self;
212 1.1 eeh struct sbus_attach_args *sa = aux;
213 1.33 eeh bus_space_handle_t bh;
214 1.1 eeh int zs_unit = zsc->zsc_dev.dv_unit;
215 1.1 eeh
216 1.20 eeh if (sa->sa_nintr == 0) {
217 1.20 eeh printf(" no interrupt lines\n");
218 1.20 eeh return;
219 1.20 eeh }
220 1.1 eeh
221 1.33 eeh /* Use the mapping setup by the Sun PROM if possible. */
222 1.10 eeh if (zsaddr[zs_unit] == NULL) {
223 1.20 eeh /* Only map registers once. */
224 1.10 eeh if (sa->sa_npromvaddrs) {
225 1.10 eeh /*
226 1.10 eeh * We're converting from a 32-bit pointer to a 64-bit
227 1.10 eeh * pointer. Since the 32-bit entity is negative, but
228 1.10 eeh * the kernel is still mapped into the lower 4GB
229 1.10 eeh * range, this needs to be zero-extended.
230 1.10 eeh *
231 1.10 eeh * XXXXX If we map the kernel and devices into the
232 1.10 eeh * high 4GB range, this needs to be changed to
233 1.10 eeh * sign-extend the address.
234 1.10 eeh */
235 1.33 eeh sparc_promaddr_to_handle(sa->sa_bustag,
236 1.34 eeh sa->sa_promvaddrs[0], &bh);
237 1.33 eeh
238 1.10 eeh } else {
239 1.10 eeh
240 1.10 eeh if (sbus_bus_map(sa->sa_bustag, sa->sa_slot,
241 1.10 eeh sa->sa_offset,
242 1.10 eeh sa->sa_size,
243 1.10 eeh BUS_SPACE_MAP_LINEAR,
244 1.33 eeh &bh) != 0) {
245 1.10 eeh printf("%s @ sbus: cannot map registers\n",
246 1.10 eeh self->dv_xname);
247 1.10 eeh return;
248 1.10 eeh }
249 1.10 eeh }
250 1.33 eeh zsaddr[zs_unit] = (struct zsdevice *)
251 1.33 eeh bus_space_vaddr(sa->sa_bustag, bh);
252 1.10 eeh }
253 1.20 eeh zsc->zsc_bustag = sa->sa_bustag;
254 1.20 eeh zsc->zsc_dmatag = sa->sa_dmatag;
255 1.30 eeh zsc->zsc_promunit = PROM_getpropint(sa->sa_node, "slave", -2);
256 1.20 eeh zsc->zsc_node = sa->sa_node;
257 1.20 eeh zs_attach(zsc, zsaddr[zs_unit], sa->sa_pri);
258 1.1 eeh }
259 1.1 eeh
260 1.1 eeh /*
261 1.1 eeh * Attach a found zs.
262 1.1 eeh *
263 1.1 eeh * USE ROM PROPERTIES port-a-ignore-cd AND port-b-ignore-cd FOR
264 1.1 eeh * SOFT CARRIER, AND keyboard PROPERTY FOR KEYBOARD/MOUSE?
265 1.1 eeh */
266 1.1 eeh static void
267 1.20 eeh zs_attach(zsc, zsd, pri)
268 1.1 eeh struct zsc_softc *zsc;
269 1.20 eeh struct zsdevice *zsd;
270 1.1 eeh int pri;
271 1.1 eeh {
272 1.1 eeh struct zsc_attach_args zsc_args;
273 1.1 eeh struct zs_chanstate *cs;
274 1.24 eeh int s, channel, softpri = PIL_TTY;
275 1.20 eeh
276 1.20 eeh if (zsd == NULL) {
277 1.20 eeh printf("configuration incomplete\n");
278 1.20 eeh return;
279 1.20 eeh }
280 1.1 eeh
281 1.24 eeh printf(" softpri %d\n", softpri);
282 1.1 eeh
283 1.1 eeh /*
284 1.1 eeh * Initialize software state for each channel.
285 1.1 eeh */
286 1.1 eeh for (channel = 0; channel < 2; channel++) {
287 1.20 eeh struct zschan *zc;
288 1.26 eeh struct device *child;
289 1.20 eeh
290 1.1 eeh zsc_args.channel = channel;
291 1.1 eeh cs = &zsc->zsc_cs_store[channel];
292 1.1 eeh zsc->zsc_cs[channel] = cs;
293 1.1 eeh
294 1.46 pk simple_lock_init(&cs->cs_lock);
295 1.1 eeh cs->cs_channel = channel;
296 1.1 eeh cs->cs_private = NULL;
297 1.1 eeh cs->cs_ops = &zsops_null;
298 1.1 eeh cs->cs_brg_clk = PCLK / 16;
299 1.1 eeh
300 1.20 eeh zc = (channel == 0) ? &zsd->zs_chan_a : &zsd->zs_chan_b;
301 1.20 eeh
302 1.26 eeh zsc_args.consdev = NULL;
303 1.20 eeh zsc_args.hwflags = zs_console_flags(zsc->zsc_promunit,
304 1.20 eeh zsc->zsc_node,
305 1.20 eeh channel);
306 1.20 eeh
307 1.20 eeh if (zsc_args.hwflags & ZS_HWFLAG_CONSOLE) {
308 1.20 eeh zsc_args.hwflags |= ZS_HWFLAG_USE_CONSDEV;
309 1.20 eeh zsc_args.consdev = &zs_consdev;
310 1.11 eeh }
311 1.20 eeh
312 1.20 eeh if ((zsc_args.hwflags & ZS_HWFLAG_CONSOLE_INPUT) != 0) {
313 1.20 eeh zs_conschan_get = zc;
314 1.20 eeh }
315 1.20 eeh if ((zsc_args.hwflags & ZS_HWFLAG_CONSOLE_OUTPUT) != 0) {
316 1.20 eeh zs_conschan_put = zc;
317 1.20 eeh }
318 1.20 eeh
319 1.31 eeh /* Children need to set cn_dev, etc */
320 1.1 eeh cs->cs_reg_csr = &zc->zc_csr;
321 1.1 eeh cs->cs_reg_data = &zc->zc_data;
322 1.1 eeh
323 1.49 martin memcpy(cs->cs_creg, zs_init_reg, 16);
324 1.49 martin memcpy(cs->cs_preg, zs_init_reg, 16);
325 1.1 eeh
326 1.20 eeh /* XXX: Consult PROM properties for this?! */
327 1.20 eeh cs->cs_defspeed = zs_get_speed(cs);
328 1.1 eeh cs->cs_defcflag = zs_def_cflag;
329 1.1 eeh
330 1.1 eeh /* Make these correspond to cs_defcflag (-crtscts) */
331 1.1 eeh cs->cs_rr0_dcd = ZSRR0_DCD;
332 1.1 eeh cs->cs_rr0_cts = 0;
333 1.1 eeh cs->cs_wr5_dtr = ZSWR5_DTR | ZSWR5_RTS;
334 1.1 eeh cs->cs_wr5_rts = 0;
335 1.1 eeh
336 1.1 eeh /*
337 1.1 eeh * Clear the master interrupt enable.
338 1.1 eeh * The INTENA is common to both channels,
339 1.1 eeh * so just do it on the A channel.
340 1.1 eeh */
341 1.1 eeh if (channel == 0) {
342 1.1 eeh zs_write_reg(cs, 9, 0);
343 1.1 eeh }
344 1.1 eeh
345 1.1 eeh /*
346 1.1 eeh * Look for a child driver for this channel.
347 1.1 eeh * The child attach will setup the hardware.
348 1.1 eeh */
349 1.26 eeh if (!(child =
350 1.26 eeh config_found(&zsc->zsc_dev, (void *)&zsc_args, zs_print))) {
351 1.1 eeh /* No sub-driver. Just reset it. */
352 1.1 eeh u_char reset = (channel == 0) ?
353 1.1 eeh ZSWR9_A_RESET : ZSWR9_B_RESET;
354 1.1 eeh s = splzs();
355 1.1 eeh zs_write_reg(cs, 9, reset);
356 1.1 eeh splx(s);
357 1.26 eeh }
358 1.26 eeh #if (NKBD > 0) || (NMS > 0)
359 1.26 eeh /*
360 1.26 eeh * If this was a zstty it has a keyboard
361 1.26 eeh * property on it we need to attach the
362 1.26 eeh * sunkbd and sunms line disciplines.
363 1.26 eeh */
364 1.26 eeh if (child
365 1.39 thorpej && (!strcmp(child->dv_cfdata->cf_name, "zstty"))
366 1.30 eeh && (PROM_getproplen(zsc->zsc_node, "keyboard") == 0)) {
367 1.26 eeh struct kbd_ms_tty_attach_args kma;
368 1.26 eeh struct zstty_softc {
369 1.26 eeh /* The following are the only fields we need here */
370 1.26 eeh struct device zst_dev;
371 1.26 eeh struct tty *zst_tty;
372 1.26 eeh struct zs_chanstate *zst_cs;
373 1.26 eeh } *zst = (struct zstty_softc *)child;
374 1.26 eeh struct tty *tp;
375 1.26 eeh
376 1.26 eeh kma.kmta_tp = tp = zst->zst_tty;
377 1.26 eeh kma.kmta_dev = tp->t_dev;
378 1.26 eeh kma.kmta_consdev = zsc_args.consdev;
379 1.26 eeh
380 1.26 eeh /* Attach 'em if we got 'em. */
381 1.26 eeh #if (NKBD > 0)
382 1.26 eeh if (channel == 0) {
383 1.26 eeh kma.kmta_name = "keyboard";
384 1.26 eeh config_found(child, (void *)&kma, NULL);
385 1.26 eeh }
386 1.26 eeh #endif
387 1.26 eeh #if (NMS > 0)
388 1.26 eeh if (channel == 1) {
389 1.26 eeh kma.kmta_name = "mouse";
390 1.26 eeh config_found(child, (void *)&kma, NULL);
391 1.26 eeh }
392 1.26 eeh #endif
393 1.1 eeh }
394 1.26 eeh #endif
395 1.1 eeh }
396 1.1 eeh
397 1.1 eeh /*
398 1.1 eeh * Now safe to install interrupt handlers. Note the arguments
399 1.1 eeh * to the interrupt handlers aren't used. Note, we only do this
400 1.1 eeh * once since both SCCs interrupt at the same level and vector.
401 1.1 eeh */
402 1.44 pk bus_intr_establish(zsc->zsc_bustag, pri, IPL_SERIAL, zshard, zsc);
403 1.24 eeh if (!(zsc->zsc_softintr = softintr_establish(softpri, zssoft, zsc)))
404 1.40 provos panic("zsattach: could not establish soft interrupt");
405 1.1 eeh
406 1.21 cgd evcnt_attach_dynamic(&zsc->zsc_intrcnt, EVCNT_TYPE_INTR, NULL,
407 1.21 cgd zsc->zsc_dev.dv_xname, "intr");
408 1.1 eeh
409 1.24 eeh
410 1.1 eeh /*
411 1.1 eeh * Set the master interrupt enable and interrupt vector.
412 1.1 eeh * (common to both channels, do it on A)
413 1.1 eeh */
414 1.1 eeh cs = zsc->zsc_cs[0];
415 1.1 eeh s = splhigh();
416 1.1 eeh /* interrupt vector */
417 1.1 eeh zs_write_reg(cs, 2, zs_init_reg[2]);
418 1.1 eeh /* master interrupt control (enable) */
419 1.1 eeh zs_write_reg(cs, 9, zs_init_reg[9]);
420 1.1 eeh splx(s);
421 1.1 eeh
422 1.1 eeh }
423 1.1 eeh
424 1.1 eeh static int
425 1.1 eeh zs_print(aux, name)
426 1.1 eeh void *aux;
427 1.1 eeh const char *name;
428 1.1 eeh {
429 1.1 eeh struct zsc_attach_args *args = aux;
430 1.1 eeh
431 1.1 eeh if (name != NULL)
432 1.45 thorpej aprint_normal("%s: ", name);
433 1.1 eeh
434 1.1 eeh if (args->channel != -1)
435 1.45 thorpej aprint_normal(" channel %d", args->channel);
436 1.1 eeh
437 1.1 eeh return (UNCONF);
438 1.1 eeh }
439 1.1 eeh
440 1.24 eeh /* Deprecate this? */
441 1.1 eeh static volatile int zssoftpending;
442 1.1 eeh
443 1.1 eeh static int
444 1.1 eeh zshard(arg)
445 1.1 eeh void *arg;
446 1.1 eeh {
447 1.24 eeh struct zsc_softc *zsc = (struct zsc_softc *)arg;
448 1.24 eeh int rr3, rval;
449 1.24 eeh
450 1.24 eeh rval = 0;
451 1.24 eeh while ((rr3 = zsc_intr_hard(zsc))) {
452 1.24 eeh /* Count up the interrupts. */
453 1.24 eeh rval |= rr3;
454 1.24 eeh zsc->zsc_intrcnt.ev_count++;
455 1.24 eeh }
456 1.24 eeh if (((zsc->zsc_cs[0] && zsc->zsc_cs[0]->cs_softreq) ||
457 1.24 eeh (zsc->zsc_cs[1] && zsc->zsc_cs[1]->cs_softreq)) &&
458 1.24 eeh zsc->zsc_softintr) {
459 1.24 eeh zssoftpending = PIL_TTY;
460 1.24 eeh softintr_schedule(zsc->zsc_softintr);
461 1.24 eeh }
462 1.24 eeh return (rval);
463 1.24 eeh }
464 1.24 eeh
465 1.24 eeh int
466 1.24 eeh zscheckintr(arg)
467 1.24 eeh void *arg;
468 1.24 eeh {
469 1.20 eeh struct zsc_softc *zsc;
470 1.24 eeh int unit, rval;
471 1.1 eeh
472 1.24 eeh rval = 0;
473 1.1 eeh for (unit = 0; unit < zs_cd.cd_ndevs; unit++) {
474 1.20 eeh
475 1.1 eeh zsc = zs_cd.cd_devs[unit];
476 1.1 eeh if (zsc == NULL)
477 1.1 eeh continue;
478 1.24 eeh rval = (zshard((void *)zsc) || rval);
479 1.1 eeh }
480 1.1 eeh return (rval);
481 1.1 eeh }
482 1.1 eeh
483 1.24 eeh
484 1.1 eeh /*
485 1.24 eeh * We need this only for TTY_DEBUG purposes.
486 1.1 eeh */
487 1.28 fvdl static void
488 1.1 eeh zssoft(arg)
489 1.1 eeh void *arg;
490 1.1 eeh {
491 1.24 eeh struct zsc_softc *zsc = (struct zsc_softc *)arg;
492 1.24 eeh int s;
493 1.1 eeh
494 1.1 eeh /* Make sure we call the tty layer at spltty. */
495 1.1 eeh s = spltty();
496 1.24 eeh zssoftpending = 0;
497 1.24 eeh (void)zsc_intr_soft(zsc);
498 1.13 eeh #ifdef TTY_DEBUG
499 1.24 eeh {
500 1.24 eeh struct zstty_softc *zst0 = zsc->zsc_cs[0]->cs_private;
501 1.24 eeh struct zstty_softc *zst1 = zsc->zsc_cs[1]->cs_private;
502 1.24 eeh if (zst0->zst_overflows || zst1->zst_overflows ) {
503 1.24 eeh struct trapframe *frame = (struct trapframe *)arg;
504 1.24 eeh
505 1.24 eeh printf("zs silo overflow from %p\n",
506 1.24 eeh (long)frame->tf_pc);
507 1.13 eeh }
508 1.24 eeh }
509 1.13 eeh #endif
510 1.1 eeh splx(s);
511 1.1 eeh }
512 1.1 eeh
513 1.1 eeh
514 1.1 eeh /*
515 1.1 eeh * Compute the current baud rate given a ZS channel.
516 1.1 eeh */
517 1.1 eeh static int
518 1.1 eeh zs_get_speed(cs)
519 1.1 eeh struct zs_chanstate *cs;
520 1.1 eeh {
521 1.1 eeh int tconst;
522 1.1 eeh
523 1.1 eeh tconst = zs_read_reg(cs, 12);
524 1.1 eeh tconst |= zs_read_reg(cs, 13) << 8;
525 1.1 eeh return (TCONST_TO_BPS(cs->cs_brg_clk, tconst));
526 1.1 eeh }
527 1.1 eeh
528 1.1 eeh /*
529 1.1 eeh * MD functions for setting the baud rate and control modes.
530 1.1 eeh */
531 1.1 eeh int
532 1.1 eeh zs_set_speed(cs, bps)
533 1.1 eeh struct zs_chanstate *cs;
534 1.1 eeh int bps; /* bits per second */
535 1.1 eeh {
536 1.1 eeh int tconst, real_bps;
537 1.1 eeh
538 1.1 eeh if (bps == 0)
539 1.1 eeh return (0);
540 1.1 eeh
541 1.1 eeh #ifdef DIAGNOSTIC
542 1.1 eeh if (cs->cs_brg_clk == 0)
543 1.1 eeh panic("zs_set_speed");
544 1.1 eeh #endif
545 1.1 eeh
546 1.1 eeh tconst = BPS_TO_TCONST(cs->cs_brg_clk, bps);
547 1.1 eeh if (tconst < 0)
548 1.1 eeh return (EINVAL);
549 1.1 eeh
550 1.1 eeh /* Convert back to make sure we can do it. */
551 1.1 eeh real_bps = TCONST_TO_BPS(cs->cs_brg_clk, tconst);
552 1.1 eeh
553 1.1 eeh /* XXX - Allow some tolerance here? */
554 1.1 eeh if (real_bps != bps)
555 1.1 eeh return (EINVAL);
556 1.1 eeh
557 1.1 eeh cs->cs_preg[12] = tconst;
558 1.1 eeh cs->cs_preg[13] = tconst >> 8;
559 1.1 eeh
560 1.1 eeh /* Caller will stuff the pending registers. */
561 1.1 eeh return (0);
562 1.1 eeh }
563 1.1 eeh
564 1.1 eeh int
565 1.1 eeh zs_set_modes(cs, cflag)
566 1.1 eeh struct zs_chanstate *cs;
567 1.1 eeh int cflag; /* bits per second */
568 1.1 eeh {
569 1.1 eeh int s;
570 1.1 eeh
571 1.1 eeh /*
572 1.1 eeh * Output hardware flow control on the chip is horrendous:
573 1.1 eeh * if carrier detect drops, the receiver is disabled, and if
574 1.1 eeh * CTS drops, the transmitter is stoped IN MID CHARACTER!
575 1.1 eeh * Therefore, NEVER set the HFC bit, and instead use the
576 1.1 eeh * status interrupt to detect CTS changes.
577 1.1 eeh */
578 1.1 eeh s = splzs();
579 1.9 wrstuden cs->cs_rr0_pps = 0;
580 1.9 wrstuden if ((cflag & (CLOCAL | MDMBUF)) != 0) {
581 1.1 eeh cs->cs_rr0_dcd = 0;
582 1.9 wrstuden if ((cflag & MDMBUF) == 0)
583 1.9 wrstuden cs->cs_rr0_pps = ZSRR0_DCD;
584 1.9 wrstuden } else
585 1.1 eeh cs->cs_rr0_dcd = ZSRR0_DCD;
586 1.1 eeh if ((cflag & CRTSCTS) != 0) {
587 1.1 eeh cs->cs_wr5_dtr = ZSWR5_DTR;
588 1.1 eeh cs->cs_wr5_rts = ZSWR5_RTS;
589 1.1 eeh cs->cs_rr0_cts = ZSRR0_CTS;
590 1.1 eeh } else if ((cflag & CDTRCTS) != 0) {
591 1.1 eeh cs->cs_wr5_dtr = 0;
592 1.1 eeh cs->cs_wr5_rts = ZSWR5_DTR;
593 1.1 eeh cs->cs_rr0_cts = ZSRR0_CTS;
594 1.1 eeh } else if ((cflag & MDMBUF) != 0) {
595 1.1 eeh cs->cs_wr5_dtr = 0;
596 1.1 eeh cs->cs_wr5_rts = ZSWR5_DTR;
597 1.1 eeh cs->cs_rr0_cts = ZSRR0_DCD;
598 1.1 eeh } else {
599 1.1 eeh cs->cs_wr5_dtr = ZSWR5_DTR | ZSWR5_RTS;
600 1.1 eeh cs->cs_wr5_rts = 0;
601 1.1 eeh cs->cs_rr0_cts = 0;
602 1.1 eeh }
603 1.1 eeh splx(s);
604 1.1 eeh
605 1.1 eeh /* Caller will stuff the pending registers. */
606 1.1 eeh return (0);
607 1.1 eeh }
608 1.1 eeh
609 1.1 eeh
610 1.1 eeh /*
611 1.1 eeh * Read or write the chip with suitable delays.
612 1.1 eeh */
613 1.1 eeh
614 1.1 eeh u_char
615 1.1 eeh zs_read_reg(cs, reg)
616 1.1 eeh struct zs_chanstate *cs;
617 1.1 eeh u_char reg;
618 1.1 eeh {
619 1.1 eeh u_char val;
620 1.1 eeh
621 1.1 eeh *cs->cs_reg_csr = reg;
622 1.1 eeh ZS_DELAY();
623 1.1 eeh val = *cs->cs_reg_csr;
624 1.1 eeh ZS_DELAY();
625 1.1 eeh return (val);
626 1.1 eeh }
627 1.1 eeh
628 1.1 eeh void
629 1.1 eeh zs_write_reg(cs, reg, val)
630 1.1 eeh struct zs_chanstate *cs;
631 1.1 eeh u_char reg, val;
632 1.1 eeh {
633 1.1 eeh *cs->cs_reg_csr = reg;
634 1.1 eeh ZS_DELAY();
635 1.1 eeh *cs->cs_reg_csr = val;
636 1.1 eeh ZS_DELAY();
637 1.1 eeh }
638 1.1 eeh
639 1.1 eeh u_char
640 1.1 eeh zs_read_csr(cs)
641 1.1 eeh struct zs_chanstate *cs;
642 1.1 eeh {
643 1.20 eeh u_char val;
644 1.1 eeh
645 1.1 eeh val = *cs->cs_reg_csr;
646 1.1 eeh ZS_DELAY();
647 1.1 eeh return (val);
648 1.1 eeh }
649 1.1 eeh
650 1.1 eeh void zs_write_csr(cs, val)
651 1.1 eeh struct zs_chanstate *cs;
652 1.1 eeh u_char val;
653 1.1 eeh {
654 1.1 eeh *cs->cs_reg_csr = val;
655 1.1 eeh ZS_DELAY();
656 1.1 eeh }
657 1.1 eeh
658 1.1 eeh u_char zs_read_data(cs)
659 1.1 eeh struct zs_chanstate *cs;
660 1.1 eeh {
661 1.20 eeh u_char val;
662 1.1 eeh
663 1.1 eeh val = *cs->cs_reg_data;
664 1.1 eeh ZS_DELAY();
665 1.1 eeh return (val);
666 1.1 eeh }
667 1.1 eeh
668 1.1 eeh void zs_write_data(cs, val)
669 1.1 eeh struct zs_chanstate *cs;
670 1.1 eeh u_char val;
671 1.1 eeh {
672 1.1 eeh *cs->cs_reg_data = val;
673 1.1 eeh ZS_DELAY();
674 1.1 eeh }
675 1.1 eeh
676 1.1 eeh /****************************************************************
677 1.1 eeh * Console support functions (Sun specific!)
678 1.1 eeh * Note: this code is allowed to know about the layout of
679 1.1 eeh * the chip registers, and uses that to keep things simple.
680 1.1 eeh * XXX - I think I like the mvme167 code better. -gwr
681 1.1 eeh ****************************************************************/
682 1.1 eeh
683 1.1 eeh extern void Debugger __P((void));
684 1.1 eeh
685 1.1 eeh /*
686 1.1 eeh * Handle user request to enter kernel debugger.
687 1.1 eeh */
688 1.1 eeh void
689 1.1 eeh zs_abort(cs)
690 1.1 eeh struct zs_chanstate *cs;
691 1.1 eeh {
692 1.20 eeh volatile struct zschan *zc = zs_conschan_get;
693 1.1 eeh int rr0;
694 1.1 eeh
695 1.1 eeh /* Wait for end of break to avoid PROM abort. */
696 1.1 eeh /* XXX - Limit the wait? */
697 1.1 eeh do {
698 1.1 eeh rr0 = zc->zc_csr;
699 1.1 eeh ZS_DELAY();
700 1.1 eeh } while (rr0 & ZSRR0_BREAK);
701 1.1 eeh
702 1.1 eeh #if defined(KGDB)
703 1.1 eeh zskgdb(cs);
704 1.1 eeh #elif defined(DDB)
705 1.12 eeh {
706 1.12 eeh extern int db_active;
707 1.12 eeh
708 1.12 eeh if (!db_active)
709 1.12 eeh Debugger();
710 1.12 eeh else
711 1.12 eeh /* Debugger is probably hozed */
712 1.12 eeh callrom();
713 1.12 eeh }
714 1.1 eeh #else
715 1.1 eeh printf("stopping on keyboard abort\n");
716 1.1 eeh callrom();
717 1.1 eeh #endif
718 1.1 eeh }
719 1.1 eeh
720 1.20 eeh
721 1.1 eeh /*
722 1.1 eeh * Polled input char.
723 1.1 eeh */
724 1.1 eeh int
725 1.1 eeh zs_getc(arg)
726 1.1 eeh void *arg;
727 1.1 eeh {
728 1.20 eeh volatile struct zschan *zc = arg;
729 1.20 eeh int s, c, rr0;
730 1.1 eeh
731 1.1 eeh s = splhigh();
732 1.1 eeh /* Wait for a character to arrive. */
733 1.1 eeh do {
734 1.1 eeh rr0 = zc->zc_csr;
735 1.1 eeh ZS_DELAY();
736 1.1 eeh } while ((rr0 & ZSRR0_RX_READY) == 0);
737 1.1 eeh
738 1.1 eeh c = zc->zc_data;
739 1.1 eeh ZS_DELAY();
740 1.1 eeh splx(s);
741 1.1 eeh
742 1.1 eeh /*
743 1.1 eeh * This is used by the kd driver to read scan codes,
744 1.1 eeh * so don't translate '\r' ==> '\n' here...
745 1.1 eeh */
746 1.1 eeh return (c);
747 1.1 eeh }
748 1.1 eeh
749 1.1 eeh /*
750 1.1 eeh * Polled output char.
751 1.1 eeh */
752 1.1 eeh void
753 1.1 eeh zs_putc(arg, c)
754 1.1 eeh void *arg;
755 1.1 eeh int c;
756 1.1 eeh {
757 1.20 eeh volatile struct zschan *zc = arg;
758 1.20 eeh int s, rr0;
759 1.1 eeh
760 1.1 eeh s = splhigh();
761 1.1 eeh
762 1.1 eeh /* Wait for transmitter to become ready. */
763 1.1 eeh do {
764 1.1 eeh rr0 = zc->zc_csr;
765 1.1 eeh ZS_DELAY();
766 1.1 eeh } while ((rr0 & ZSRR0_TX_READY) == 0);
767 1.1 eeh
768 1.1 eeh /*
769 1.1 eeh * Send the next character.
770 1.1 eeh * Now you'd think that this could be followed by a ZS_DELAY()
771 1.1 eeh * just like all the other chip accesses, but it turns out that
772 1.1 eeh * the `transmit-ready' interrupt isn't de-asserted until
773 1.1 eeh * some period of time after the register write completes
774 1.1 eeh * (more than a couple instructions). So to avoid stray
775 1.50 wiz * interrupts we put in the 2us delay regardless of CPU model.
776 1.1 eeh */
777 1.1 eeh zc->zc_data = c;
778 1.1 eeh delay(2);
779 1.1 eeh
780 1.1 eeh splx(s);
781 1.1 eeh }
782 1.1 eeh
783 1.1 eeh /*****************************************************************/
784 1.1 eeh
785 1.1 eeh
786 1.20 eeh
787 1.1 eeh
788 1.1 eeh /*
789 1.1 eeh * Polled console input putchar.
790 1.1 eeh */
791 1.1 eeh static int
792 1.1 eeh zscngetc(dev)
793 1.1 eeh dev_t dev;
794 1.1 eeh {
795 1.20 eeh return (zs_getc(zs_conschan_get));
796 1.1 eeh }
797 1.1 eeh
798 1.1 eeh /*
799 1.1 eeh * Polled console output putchar.
800 1.1 eeh */
801 1.1 eeh static void
802 1.1 eeh zscnputc(dev, c)
803 1.1 eeh dev_t dev;
804 1.1 eeh int c;
805 1.1 eeh {
806 1.20 eeh zs_putc(zs_conschan_put, c);
807 1.5 eeh }
808 1.5 eeh
809 1.5 eeh int swallow_zsintrs;
810 1.5 eeh
811 1.5 eeh static void
812 1.5 eeh zscnpollc(dev, on)
813 1.5 eeh dev_t dev;
814 1.5 eeh int on;
815 1.5 eeh {
816 1.5 eeh /*
817 1.5 eeh * Need to tell zs driver to acknowledge all interrupts or we get
818 1.5 eeh * annoying spurious interrupt messages. This is because mucking
819 1.5 eeh * with spl() levels during polling does not prevent interrupts from
820 1.5 eeh * being generated.
821 1.5 eeh */
822 1.5 eeh
823 1.5 eeh if (on) swallow_zsintrs++;
824 1.5 eeh else swallow_zsintrs--;
825 1.1 eeh }
826 1.20 eeh
827 1.20 eeh int
828 1.20 eeh zs_console_flags(promunit, node, channel)
829 1.20 eeh int promunit;
830 1.20 eeh int node;
831 1.20 eeh int channel;
832 1.20 eeh {
833 1.20 eeh int cookie, flags = 0;
834 1.37 petrov u_int options;
835 1.20 eeh char buf[255];
836 1.20 eeh
837 1.20 eeh /*
838 1.20 eeh * We'll just to the OBP grovelling down here since that's
839 1.20 eeh * the only type of firmware we support.
840 1.20 eeh */
841 1.37 petrov options = OF_finddevice("/options");
842 1.20 eeh
843 1.20 eeh /* Default to channel 0 if there are no explicit prom args */
844 1.20 eeh cookie = 0;
845 1.20 eeh if (node == OF_instance_to_package(OF_stdin())) {
846 1.37 petrov if (OF_getprop(options, "input-device", buf, sizeof(buf)) != -1) {
847 1.20 eeh
848 1.20 eeh if (!strcmp("ttyb", buf))
849 1.20 eeh cookie = 1;
850 1.20 eeh }
851 1.20 eeh
852 1.20 eeh if (channel == cookie)
853 1.20 eeh flags |= ZS_HWFLAG_CONSOLE_INPUT;
854 1.20 eeh }
855 1.20 eeh
856 1.20 eeh if (node == OF_instance_to_package(OF_stdout())) {
857 1.37 petrov if (OF_getprop(options, "output-device", buf, sizeof(buf)) != -1) {
858 1.20 eeh
859 1.20 eeh if (!strcmp("ttyb", buf))
860 1.20 eeh cookie = 1;
861 1.20 eeh }
862 1.20 eeh
863 1.20 eeh if (channel == cookie)
864 1.20 eeh flags |= ZS_HWFLAG_CONSOLE_OUTPUT;
865 1.20 eeh }
866 1.20 eeh
867 1.20 eeh return (flags);
868 1.20 eeh }
869 1.20 eeh
870