sa11x0_ost.c revision 1.19 1 1.19 peter /* $NetBSD: sa11x0_ost.c,v 1.19 2006/09/24 15:36:34 peter Exp $ */
2 1.1 rjs
3 1.1 rjs /*
4 1.1 rjs * Copyright (c) 1997 Mark Brinicombe.
5 1.1 rjs * Copyright (c) 1997 Causality Limited.
6 1.1 rjs * All rights reserved.
7 1.1 rjs *
8 1.1 rjs * This code is derived from software contributed to The NetBSD Foundation
9 1.1 rjs * by IWAMOTO Toshihiro and Ichiro FUKUHARA.
10 1.1 rjs *
11 1.1 rjs * Redistribution and use in source and binary forms, with or without
12 1.1 rjs * modification, are permitted provided that the following conditions
13 1.1 rjs * are met:
14 1.1 rjs * 1. Redistributions of source code must retain the above copyright
15 1.1 rjs * notice, this list of conditions and the following disclaimer.
16 1.1 rjs * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 rjs * notice, this list of conditions and the following disclaimer in the
18 1.1 rjs * documentation and/or other materials provided with the distribution.
19 1.1 rjs * 3. All advertising materials mentioning features or use of this software
20 1.1 rjs * must display the following acknowledgement:
21 1.1 rjs * This product includes software developed by the NetBSD
22 1.1 rjs * Foundation, Inc. and its contributors.
23 1.1 rjs * 4. Neither the name of The NetBSD Foundation nor the names of its
24 1.1 rjs * contributors may be used to endorse or promote products derived
25 1.1 rjs * from this software without specific prior written permission.
26 1.1 rjs *
27 1.1 rjs * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
28 1.1 rjs * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
29 1.1 rjs * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
30 1.1 rjs * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
31 1.1 rjs * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
32 1.1 rjs * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
33 1.1 rjs * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
34 1.1 rjs * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
35 1.1 rjs * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
36 1.1 rjs * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
37 1.1 rjs * POSSIBILITY OF SUCH DAMAGE.
38 1.1 rjs */
39 1.11 lukem
40 1.11 lukem #include <sys/cdefs.h>
41 1.19 peter __KERNEL_RCSID(0, "$NetBSD: sa11x0_ost.c,v 1.19 2006/09/24 15:36:34 peter Exp $");
42 1.1 rjs
43 1.1 rjs #include <sys/types.h>
44 1.1 rjs #include <sys/param.h>
45 1.1 rjs #include <sys/systm.h>
46 1.1 rjs #include <sys/kernel.h>
47 1.1 rjs #include <sys/time.h>
48 1.19 peter #include <sys/timetc.h>
49 1.1 rjs #include <sys/device.h>
50 1.1 rjs
51 1.1 rjs #include <machine/bus.h>
52 1.2 matt #include <machine/intr.h>
53 1.4 thorpej
54 1.4 thorpej #include <arm/cpufunc.h>
55 1.4 thorpej
56 1.3 thorpej #include <arm/arm32/katelib.h>
57 1.4 thorpej
58 1.1 rjs #include <arm/sa11x0/sa11x0_reg.h>
59 1.1 rjs #include <arm/sa11x0/sa11x0_var.h>
60 1.1 rjs #include <arm/sa11x0/sa11x0_ostreg.h>
61 1.1 rjs
62 1.1 rjs static int saost_match(struct device *, struct cfdata *, void *);
63 1.1 rjs static void saost_attach(struct device *, struct device *, void *);
64 1.1 rjs
65 1.19 peter #ifdef __HAVE_TIMECOUNTER
66 1.19 peter static void saost_tc_init(void);
67 1.19 peter #endif /* __HAVE_TIMECOUNTER */
68 1.19 peter
69 1.19 peter static uint32_t gettick(void);
70 1.1 rjs static int clockintr(void *);
71 1.1 rjs static int statintr(void *);
72 1.1 rjs void rtcinit(void);
73 1.1 rjs
74 1.1 rjs struct saost_softc {
75 1.1 rjs struct device sc_dev;
76 1.1 rjs bus_addr_t sc_baseaddr;
77 1.1 rjs bus_space_tag_t sc_iot;
78 1.1 rjs bus_space_handle_t sc_ioh;
79 1.1 rjs
80 1.16 peter uint32_t sc_clock_count;
81 1.16 peter uint32_t sc_statclock_count;
82 1.16 peter uint32_t sc_statclock_step;
83 1.1 rjs };
84 1.1 rjs
85 1.1 rjs static struct saost_softc *saost_sc = NULL;
86 1.1 rjs
87 1.1 rjs #define TIMER_FREQUENCY 3686400 /* 3.6864MHz */
88 1.1 rjs #define TICKS_PER_MICROSECOND (TIMER_FREQUENCY/1000000)
89 1.1 rjs
90 1.1 rjs #ifndef STATHZ
91 1.1 rjs #define STATHZ 64
92 1.1 rjs #endif
93 1.1 rjs
94 1.9 thorpej CFATTACH_DECL(saost, sizeof(struct saost_softc),
95 1.9 thorpej saost_match, saost_attach, NULL, NULL);
96 1.1 rjs
97 1.1 rjs static int
98 1.15 peter saost_match(struct device *parent, struct cfdata *match, void *aux)
99 1.1 rjs {
100 1.18 peter
101 1.18 peter return 1;
102 1.1 rjs }
103 1.1 rjs
104 1.1 rjs void
105 1.15 peter saost_attach(struct device *parent, struct device *self, void *aux)
106 1.1 rjs {
107 1.1 rjs struct saost_softc *sc = (struct saost_softc*)self;
108 1.1 rjs struct sa11x0_attach_args *sa = aux;
109 1.1 rjs
110 1.1 rjs printf("\n");
111 1.1 rjs
112 1.1 rjs sc->sc_iot = sa->sa_iot;
113 1.1 rjs sc->sc_baseaddr = sa->sa_addr;
114 1.1 rjs
115 1.1 rjs saost_sc = sc;
116 1.1 rjs
117 1.18 peter if (bus_space_map(sa->sa_iot, sa->sa_addr, sa->sa_size, 0,
118 1.18 peter &sc->sc_ioh))
119 1.7 provos panic("%s: Cannot map registers", self->dv_xname);
120 1.1 rjs
121 1.1 rjs /* disable all channel and clear interrupt status */
122 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_IR, 0);
123 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_SR, 0xf);
124 1.1 rjs
125 1.1 rjs printf("%s: SA-11x0 OS Timer\n", sc->sc_dev.dv_xname);
126 1.1 rjs }
127 1.1 rjs
128 1.1 rjs static int
129 1.15 peter clockintr(void *arg)
130 1.1 rjs {
131 1.1 rjs struct clockframe *frame = arg;
132 1.16 peter uint32_t oscr, nextmatch, oldmatch;
133 1.1 rjs int s;
134 1.1 rjs
135 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh,
136 1.1 rjs SAOST_SR, 1);
137 1.1 rjs
138 1.1 rjs /* schedule next clock intr */
139 1.1 rjs oldmatch = saost_sc->sc_clock_count;
140 1.1 rjs nextmatch = oldmatch + TIMER_FREQUENCY / hz;
141 1.1 rjs
142 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_MR0,
143 1.1 rjs nextmatch);
144 1.1 rjs oscr = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh,
145 1.1 rjs SAOST_CR);
146 1.1 rjs
147 1.1 rjs if ((nextmatch > oldmatch &&
148 1.1 rjs (oscr > nextmatch || oscr < oldmatch)) ||
149 1.1 rjs (nextmatch < oldmatch && oscr > nextmatch && oscr < oldmatch)) {
150 1.1 rjs /*
151 1.1 rjs * we couldn't set the matching register in time.
152 1.1 rjs * just set it to some value so that next interrupt happens.
153 1.18 peter * XXX is it possible to compensate lost interrupts?
154 1.1 rjs */
155 1.1 rjs
156 1.1 rjs s = splhigh();
157 1.1 rjs oscr = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh,
158 1.1 rjs SAOST_CR);
159 1.1 rjs nextmatch = oscr + 10;
160 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh,
161 1.1 rjs SAOST_MR0, nextmatch);
162 1.1 rjs splx(s);
163 1.1 rjs }
164 1.1 rjs
165 1.1 rjs saost_sc->sc_clock_count = nextmatch;
166 1.1 rjs hardclock(frame);
167 1.1 rjs
168 1.18 peter return 1;
169 1.1 rjs }
170 1.1 rjs
171 1.1 rjs static int
172 1.15 peter statintr(void *arg)
173 1.1 rjs {
174 1.1 rjs struct clockframe *frame = arg;
175 1.16 peter uint32_t oscr, nextmatch, oldmatch;
176 1.1 rjs int s;
177 1.1 rjs
178 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh,
179 1.1 rjs SAOST_SR, 2);
180 1.1 rjs
181 1.1 rjs /* schedule next clock intr */
182 1.1 rjs oldmatch = saost_sc->sc_statclock_count;
183 1.1 rjs nextmatch = oldmatch + saost_sc->sc_statclock_step;
184 1.1 rjs
185 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_MR1,
186 1.1 rjs nextmatch);
187 1.1 rjs oscr = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh,
188 1.1 rjs SAOST_CR);
189 1.1 rjs
190 1.1 rjs if ((nextmatch > oldmatch &&
191 1.1 rjs (oscr > nextmatch || oscr < oldmatch)) ||
192 1.1 rjs (nextmatch < oldmatch && oscr > nextmatch && oscr < oldmatch)) {
193 1.1 rjs /*
194 1.1 rjs * we couldn't set the matching register in time.
195 1.1 rjs * just set it to some value so that next interrupt happens.
196 1.18 peter * XXX is it possible to compensate lost interrupts?
197 1.1 rjs */
198 1.1 rjs
199 1.1 rjs s = splhigh();
200 1.1 rjs oscr = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh,
201 1.1 rjs SAOST_CR);
202 1.1 rjs nextmatch = oscr + 10;
203 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh,
204 1.1 rjs SAOST_MR1, nextmatch);
205 1.1 rjs splx(s);
206 1.1 rjs }
207 1.1 rjs
208 1.1 rjs saost_sc->sc_statclock_count = nextmatch;
209 1.1 rjs statclock(frame);
210 1.1 rjs
211 1.18 peter return 1;
212 1.1 rjs }
213 1.1 rjs
214 1.1 rjs
215 1.1 rjs void
216 1.15 peter setstatclockrate(int schz)
217 1.1 rjs {
218 1.16 peter uint32_t count;
219 1.1 rjs
220 1.12 uwe saost_sc->sc_statclock_step = TIMER_FREQUENCY / schz;
221 1.1 rjs count = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_CR);
222 1.1 rjs count += saost_sc->sc_statclock_step;
223 1.1 rjs saost_sc->sc_statclock_count = count;
224 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh,
225 1.1 rjs SAOST_MR1, count);
226 1.1 rjs }
227 1.1 rjs
228 1.1 rjs void
229 1.15 peter cpu_initclocks(void)
230 1.1 rjs {
231 1.1 rjs stathz = STATHZ;
232 1.1 rjs profhz = stathz;
233 1.1 rjs saost_sc->sc_statclock_step = TIMER_FREQUENCY / stathz;
234 1.1 rjs
235 1.17 peter printf("clock: hz=%d stathz=%d\n", hz, stathz);
236 1.1 rjs
237 1.1 rjs /* Use the channels 0 and 1 for hardclock and statclock, respectively */
238 1.1 rjs saost_sc->sc_clock_count = TIMER_FREQUENCY / hz;
239 1.1 rjs saost_sc->sc_statclock_count = TIMER_FREQUENCY / stathz;
240 1.1 rjs
241 1.6 rjs sa11x0_intr_establish(0, 26, 1, IPL_CLOCK, clockintr, 0);
242 1.6 rjs sa11x0_intr_establish(0, 27, 1, IPL_CLOCK, statintr, 0);
243 1.6 rjs
244 1.6 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_SR, 0xf);
245 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_IR, 3);
246 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_MR0,
247 1.1 rjs saost_sc->sc_clock_count);
248 1.1 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_MR1,
249 1.1 rjs saost_sc->sc_statclock_count);
250 1.1 rjs
251 1.6 rjs /* Zero the counter value */
252 1.6 rjs bus_space_write_4(saost_sc->sc_iot, saost_sc->sc_ioh, SAOST_CR, 0);
253 1.19 peter
254 1.19 peter #ifdef __HAVE_TIMECOUNTER
255 1.19 peter saost_tc_init();
256 1.19 peter #endif /* __HAVE_TIMECOUNTER */
257 1.19 peter }
258 1.19 peter
259 1.19 peter #ifdef __HAVE_TIMECOUNTER
260 1.19 peter static u_int
261 1.19 peter saost_tc_get_timecount(struct timecounter *tc)
262 1.19 peter {
263 1.19 peter return (u_int)gettick();
264 1.19 peter }
265 1.19 peter
266 1.19 peter static void
267 1.19 peter saost_tc_init(void)
268 1.19 peter {
269 1.19 peter static struct timecounter saost_tc = {
270 1.19 peter .tc_get_timecount = saost_tc_get_timecount,
271 1.19 peter .tc_frequency = TIMER_FREQUENCY,
272 1.19 peter .tc_counter_mask = ~0,
273 1.19 peter .tc_name = "saost_count",
274 1.19 peter .tc_quality = 100,
275 1.19 peter };
276 1.19 peter
277 1.19 peter tc_init(&saost_tc);
278 1.1 rjs }
279 1.19 peter #endif /* __HAVE_TIMECOUNTER */
280 1.1 rjs
281 1.19 peter static uint32_t
282 1.15 peter gettick(void)
283 1.1 rjs {
284 1.1 rjs int counter;
285 1.1 rjs u_int savedints;
286 1.1 rjs savedints = disable_interrupts(I32_bit);
287 1.1 rjs
288 1.1 rjs counter = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh,
289 1.1 rjs SAOST_CR);
290 1.1 rjs
291 1.1 rjs restore_interrupts(savedints);
292 1.1 rjs return counter;
293 1.1 rjs }
294 1.1 rjs
295 1.19 peter #ifndef __HAVE_TIMECOUNTER
296 1.1 rjs void
297 1.15 peter microtime(struct timeval *tvp)
298 1.1 rjs {
299 1.5 rjs int s, tm, deltatm;
300 1.1 rjs static struct timeval lasttime;
301 1.1 rjs
302 1.18 peter if (saost_sc == NULL) {
303 1.5 rjs tvp->tv_sec = 0;
304 1.5 rjs tvp->tv_usec = 0;
305 1.5 rjs return;
306 1.5 rjs }
307 1.5 rjs
308 1.5 rjs s = splhigh();
309 1.1 rjs tm = bus_space_read_4(saost_sc->sc_iot, saost_sc->sc_ioh,
310 1.1 rjs SAOST_CR);
311 1.1 rjs
312 1.1 rjs deltatm = saost_sc->sc_clock_count - tm;
313 1.1 rjs
314 1.10 bsh #ifdef OST_DEBUG
315 1.1 rjs printf("deltatm = %d\n",deltatm);
316 1.1 rjs #endif
317 1.1 rjs
318 1.1 rjs *tvp = time;
319 1.1 rjs tvp->tv_usec++; /* XXX */
320 1.1 rjs while (tvp->tv_usec >= 1000000) {
321 1.1 rjs tvp->tv_sec++;
322 1.1 rjs tvp->tv_usec -= 1000000;
323 1.1 rjs }
324 1.1 rjs
325 1.1 rjs if (tvp->tv_sec == lasttime.tv_sec &&
326 1.1 rjs tvp->tv_usec <= lasttime.tv_usec &&
327 1.1 rjs (tvp->tv_usec = lasttime.tv_usec + 1) >= 1000000)
328 1.1 rjs {
329 1.1 rjs tvp->tv_sec++;
330 1.1 rjs tvp->tv_usec -= 1000000;
331 1.1 rjs }
332 1.1 rjs lasttime = *tvp;
333 1.1 rjs splx(s);
334 1.1 rjs }
335 1.19 peter #endif /* !__HAVE_TIMECOUNTER */
336 1.1 rjs
337 1.1 rjs void
338 1.15 peter delay(u_int usecs)
339 1.1 rjs {
340 1.16 peter uint32_t xtick, otick, delta;
341 1.1 rjs int j, csec, usec;
342 1.1 rjs
343 1.1 rjs csec = usecs / 10000;
344 1.1 rjs usec = usecs % 10000;
345 1.1 rjs
346 1.1 rjs usecs = (TIMER_FREQUENCY / 100) * csec
347 1.1 rjs + (TIMER_FREQUENCY / 100) * usec / 10000;
348 1.1 rjs
349 1.18 peter if (!saost_sc) {
350 1.1 rjs /* clock isn't initialized yet */
351 1.18 peter for (; usecs > 0; usecs--)
352 1.18 peter for (j = 100; j > 0; j--)
353 1.18 peter continue;
354 1.1 rjs return;
355 1.1 rjs }
356 1.1 rjs
357 1.1 rjs otick = gettick();
358 1.1 rjs
359 1.1 rjs while (1) {
360 1.18 peter for (j = 100; j > 0; j--)
361 1.18 peter continue;
362 1.12 uwe xtick = gettick();
363 1.12 uwe delta = xtick - otick;
364 1.1 rjs if (delta > usecs)
365 1.1 rjs break;
366 1.1 rjs usecs -= delta;
367 1.12 uwe otick = xtick;
368 1.1 rjs }
369 1.1 rjs }
370 1.1 rjs
371 1.19 peter #ifndef __HAVE_GENERIC_TODR
372 1.1 rjs void
373 1.15 peter resettodr(void)
374 1.1 rjs {
375 1.1 rjs }
376 1.1 rjs
377 1.1 rjs void
378 1.15 peter inittodr(time_t base)
379 1.1 rjs {
380 1.1 rjs time.tv_sec = base;
381 1.1 rjs time.tv_usec = 0;
382 1.1 rjs }
383 1.19 peter #endif /* !__HAVE_GENERIC_TODR */
384