au_icu.c revision 1.29 1 1.29 kiyohara /* $NetBSD: au_icu.c,v 1.29 2012/01/14 16:09:19 kiyohara Exp $ */
2 1.13 gdamore
3 1.13 gdamore /*-
4 1.13 gdamore * Copyright (c) 2006 Itronix Inc.
5 1.13 gdamore * All rights reserved.
6 1.13 gdamore *
7 1.13 gdamore * Written by Garrett D'Amore for Itronix Inc.
8 1.13 gdamore *
9 1.13 gdamore * Redistribution and use in source and binary forms, with or without
10 1.13 gdamore * modification, are permitted provided that the following conditions
11 1.13 gdamore * are met:
12 1.13 gdamore * 1. Redistributions of source code must retain the above copyright
13 1.13 gdamore * notice, this list of conditions and the following disclaimer.
14 1.13 gdamore * 2. Redistributions in binary form must reproduce the above copyright
15 1.13 gdamore * notice, this list of conditions and the following disclaimer in the
16 1.13 gdamore * documentation and/or other materials provided with the distribution.
17 1.13 gdamore * 3. The name of Itronix Inc. may not be used to endorse
18 1.13 gdamore * or promote products derived from this software without specific
19 1.13 gdamore * prior written permission.
20 1.13 gdamore *
21 1.13 gdamore * THIS SOFTWARE IS PROVIDED BY ITRONIX INC. ``AS IS'' AND
22 1.13 gdamore * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
23 1.13 gdamore * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
24 1.13 gdamore * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL ITRONIX INC. BE LIABLE FOR ANY
25 1.13 gdamore * DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES
26 1.13 gdamore * (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
27 1.13 gdamore * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND
28 1.13 gdamore * ON ANY THEORY OF LIABILITY, WHETHER IN
29 1.13 gdamore * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 1.13 gdamore * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
31 1.13 gdamore * POSSIBILITY OF SUCH DAMAGE.
32 1.13 gdamore */
33 1.1 simonb
34 1.1 simonb /*-
35 1.1 simonb * Copyright (c) 2001 The NetBSD Foundation, Inc.
36 1.1 simonb * All rights reserved.
37 1.1 simonb *
38 1.1 simonb * This code is derived from software contributed to The NetBSD Foundation
39 1.1 simonb * by Jason R. Thorpe.
40 1.1 simonb *
41 1.1 simonb * Redistribution and use in source and binary forms, with or without
42 1.1 simonb * modification, are permitted provided that the following conditions
43 1.1 simonb * are met:
44 1.1 simonb * 1. Redistributions of source code must retain the above copyright
45 1.1 simonb * notice, this list of conditions and the following disclaimer.
46 1.1 simonb * 2. Redistributions in binary form must reproduce the above copyright
47 1.1 simonb * notice, this list of conditions and the following disclaimer in the
48 1.1 simonb * documentation and/or other materials provided with the distribution.
49 1.1 simonb *
50 1.1 simonb * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
51 1.1 simonb * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
52 1.1 simonb * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
53 1.1 simonb * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
54 1.1 simonb * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
55 1.1 simonb * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
56 1.1 simonb * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
57 1.1 simonb * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
58 1.1 simonb * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
59 1.1 simonb * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
60 1.1 simonb * POSSIBILITY OF SUCH DAMAGE.
61 1.1 simonb */
62 1.1 simonb
63 1.1 simonb /*
64 1.1 simonb * Interrupt support for the Alchemy Semiconductor Au1x00 CPUs.
65 1.1 simonb *
66 1.1 simonb * The Alchemy Semiconductor Au1x00's interrupts are wired to two internal
67 1.1 simonb * interrupt controllers.
68 1.1 simonb */
69 1.7 lukem
70 1.7 lukem #include <sys/cdefs.h>
71 1.29 kiyohara __KERNEL_RCSID(0, "$NetBSD: au_icu.c,v 1.29 2012/01/14 16:09:19 kiyohara Exp $");
72 1.1 simonb
73 1.1 simonb #include "opt_ddb.h"
74 1.26 matt #define __INTR_PRIVATE
75 1.1 simonb
76 1.1 simonb #include <sys/param.h>
77 1.28 matt #include <sys/bus.h>
78 1.28 matt #include <sys/device.h>
79 1.28 matt #include <sys/intr.h>
80 1.28 matt #include <sys/kernel.h>
81 1.1 simonb #include <sys/malloc.h>
82 1.1 simonb #include <sys/systm.h>
83 1.1 simonb
84 1.1 simonb #include <mips/locore.h>
85 1.1 simonb #include <mips/alchemy/include/aureg.h>
86 1.1 simonb #include <mips/alchemy/include/auvar.h>
87 1.1 simonb
88 1.14 gdamore #define REGVAL(x) *((volatile uint32_t *)(MIPS_PHYS_TO_KSEG1((x))))
89 1.1 simonb
90 1.1 simonb /*
91 1.1 simonb * This is a mask of bits to clear in the SR when we go to a
92 1.1 simonb * given hardware interrupt priority level.
93 1.1 simonb */
94 1.1 simonb
95 1.26 matt static const struct ipl_sr_map alchemy_ipl_sr_map = {
96 1.26 matt .sr_bits = {
97 1.26 matt [IPL_NONE] = 0,
98 1.26 matt [IPL_SOFTCLOCK] = MIPS_SOFT_INT_MASK_0,
99 1.26 matt [IPL_SOFTBIO] = MIPS_SOFT_INT_MASK_0,
100 1.26 matt [IPL_SOFTNET] = MIPS_SOFT_INT_MASK,
101 1.26 matt [IPL_SOFTSERIAL] = MIPS_SOFT_INT_MASK,
102 1.29 kiyohara [IPL_VM] = MIPS_SOFT_INT_MASK |
103 1.29 kiyohara MIPS_INT_MASK_0 |
104 1.29 kiyohara MIPS_INT_MASK_1 |
105 1.29 kiyohara MIPS_INT_MASK_2 |
106 1.29 kiyohara MIPS_INT_MASK_3,
107 1.26 matt [IPL_SCHED] = MIPS_INT_MASK,
108 1.29 kiyohara [IPL_DDB] = MIPS_INT_MASK,
109 1.26 matt [IPL_HIGH] = MIPS_INT_MASK,
110 1.26 matt },
111 1.1 simonb };
112 1.1 simonb
113 1.1 simonb #define NIRQS 64
114 1.1 simonb
115 1.13 gdamore struct au_icu_intrhead {
116 1.1 simonb struct evcnt intr_count;
117 1.1 simonb int intr_refcnt;
118 1.1 simonb };
119 1.13 gdamore struct au_icu_intrhead au_icu_intrtab[NIRQS];
120 1.1 simonb
121 1.1 simonb #define NINTRS 4 /* MIPS INT0 - INT3 */
122 1.1 simonb
123 1.14 gdamore struct au_intrhand {
124 1.14 gdamore LIST_ENTRY(au_intrhand) ih_q;
125 1.14 gdamore int (*ih_func)(void *);
126 1.14 gdamore void *ih_arg;
127 1.14 gdamore int ih_irq;
128 1.19 gdamore int ih_mask;
129 1.14 gdamore };
130 1.14 gdamore
131 1.13 gdamore struct au_cpuintr {
132 1.14 gdamore LIST_HEAD(, au_intrhand) cintr_list;
133 1.1 simonb struct evcnt cintr_count;
134 1.1 simonb };
135 1.1 simonb
136 1.13 gdamore struct au_cpuintr au_cpuintrs[NINTRS];
137 1.26 matt const char * const au_cpuintrnames[NINTRS] = {
138 1.1 simonb "icu 0, req 0",
139 1.1 simonb "icu 0, req 1",
140 1.1 simonb "icu 1, req 0",
141 1.1 simonb "icu 1, req 1",
142 1.1 simonb };
143 1.1 simonb
144 1.13 gdamore static bus_addr_t ic0_base, ic1_base;
145 1.13 gdamore
146 1.1 simonb void
147 1.1 simonb au_intr_init(void)
148 1.1 simonb {
149 1.26 matt ipl_sr_map = alchemy_ipl_sr_map;
150 1.1 simonb
151 1.26 matt for (size_t i = 0; i < NINTRS; i++) {
152 1.13 gdamore LIST_INIT(&au_cpuintrs[i].cintr_list);
153 1.13 gdamore evcnt_attach_dynamic(&au_cpuintrs[i].cintr_count,
154 1.13 gdamore EVCNT_TYPE_INTR, NULL, "mips", au_cpuintrnames[i]);
155 1.1 simonb }
156 1.1 simonb
157 1.26 matt struct au_chipdep * const chip = au_chipdep();
158 1.13 gdamore KASSERT(chip != NULL);
159 1.13 gdamore
160 1.13 gdamore ic0_base = chip->icus[0];
161 1.13 gdamore ic1_base = chip->icus[1];
162 1.13 gdamore
163 1.26 matt for (size_t i = 0; i < NIRQS; i++) {
164 1.13 gdamore au_icu_intrtab[i].intr_refcnt = 0;
165 1.13 gdamore evcnt_attach_dynamic(&au_icu_intrtab[i].intr_count,
166 1.13 gdamore EVCNT_TYPE_INTR, NULL, chip->name, chip->irqnames[i]);
167 1.1 simonb }
168 1.19 gdamore
169 1.19 gdamore /* start with all interrupts masked */
170 1.19 gdamore REGVAL(ic0_base + IC_MASK_CLEAR) = 0xffffffff;
171 1.19 gdamore REGVAL(ic0_base + IC_WAKEUP_CLEAR) = 0xffffffff;
172 1.19 gdamore REGVAL(ic0_base + IC_SOURCE_SET) = 0xffffffff;
173 1.19 gdamore REGVAL(ic0_base + IC_RISING_EDGE) = 0xffffffff;
174 1.19 gdamore REGVAL(ic0_base + IC_FALLING_EDGE) = 0xffffffff;
175 1.19 gdamore REGVAL(ic0_base + IC_TEST_BIT) = 0;
176 1.19 gdamore
177 1.19 gdamore REGVAL(ic1_base + IC_MASK_CLEAR) = 0xffffffff;
178 1.19 gdamore REGVAL(ic1_base + IC_WAKEUP_CLEAR) = 0xffffffff;
179 1.19 gdamore REGVAL(ic1_base + IC_SOURCE_SET) = 0xffffffff;
180 1.19 gdamore REGVAL(ic1_base + IC_RISING_EDGE) = 0xffffffff;
181 1.19 gdamore REGVAL(ic1_base + IC_FALLING_EDGE) = 0xffffffff;
182 1.19 gdamore REGVAL(ic1_base + IC_TEST_BIT) = 0;
183 1.1 simonb }
184 1.1 simonb
185 1.1 simonb void *
186 1.1 simonb au_intr_establish(int irq, int req, int level, int type,
187 1.1 simonb int (*func)(void *), void *arg)
188 1.1 simonb {
189 1.14 gdamore struct au_intrhand *ih;
190 1.13 gdamore uint32_t icu_base;
191 1.13 gdamore int cpu_int, s;
192 1.13 gdamore struct au_chipdep *chip;
193 1.13 gdamore
194 1.13 gdamore chip = au_chipdep();
195 1.13 gdamore KASSERT(chip != NULL);
196 1.1 simonb
197 1.1 simonb if (irq >= NIRQS)
198 1.3 provos panic("au_intr_establish: bogus IRQ %d", irq);
199 1.1 simonb if (req > 1)
200 1.3 provos panic("au_intr_establish: bogus request %d", req);
201 1.1 simonb
202 1.1 simonb ih = malloc(sizeof(*ih), M_DEVBUF, M_NOWAIT);
203 1.1 simonb if (ih == NULL)
204 1.1 simonb return (NULL);
205 1.1 simonb
206 1.1 simonb ih->ih_func = func;
207 1.1 simonb ih->ih_arg = arg;
208 1.1 simonb ih->ih_irq = irq;
209 1.19 gdamore ih->ih_mask = (1 << (irq & 31));
210 1.1 simonb
211 1.1 simonb s = splhigh();
212 1.1 simonb
213 1.1 simonb /*
214 1.1 simonb * First, link it into the tables.
215 1.1 simonb * XXX do we want a separate list (really, should only be one item, not
216 1.9 wiz * a list anyway) per irq, not per CPU interrupt?
217 1.1 simonb */
218 1.20 gdamore cpu_int = (irq < 32 ? 0 : 2) + req;
219 1.13 gdamore LIST_INSERT_HEAD(&au_cpuintrs[cpu_int].cintr_list, ih, ih_q);
220 1.1 simonb
221 1.1 simonb /*
222 1.1 simonb * Now enable it.
223 1.1 simonb */
224 1.13 gdamore if (au_icu_intrtab[irq].intr_refcnt++ == 0) {
225 1.13 gdamore icu_base = (irq < 32) ? ic0_base : ic1_base;
226 1.1 simonb
227 1.1 simonb irq &= 31; /* throw away high bit if set */
228 1.1 simonb irq = 1 << irq; /* only used as a mask from here on */
229 1.1 simonb
230 1.13 gdamore /* XXX Only level interrupts for now */
231 1.1 simonb switch (type) {
232 1.1 simonb case IST_NONE:
233 1.1 simonb case IST_PULSE:
234 1.1 simonb case IST_EDGE:
235 1.1 simonb panic("unsupported irq type %d", type);
236 1.5 hpeyerl /* NOTREACHED */
237 1.1 simonb case IST_LEVEL:
238 1.5 hpeyerl case IST_LEVEL_HIGH:
239 1.1 simonb REGVAL(icu_base + IC_CONFIG2_SET) = irq;
240 1.1 simonb REGVAL(icu_base + IC_CONFIG1_CLEAR) = irq;
241 1.1 simonb REGVAL(icu_base + IC_CONFIG0_SET) = irq;
242 1.5 hpeyerl break;
243 1.5 hpeyerl case IST_LEVEL_LOW:
244 1.5 hpeyerl REGVAL(icu_base + IC_CONFIG2_SET) = irq;
245 1.5 hpeyerl REGVAL(icu_base + IC_CONFIG1_SET) = irq;
246 1.5 hpeyerl REGVAL(icu_base + IC_CONFIG0_CLEAR) = irq;
247 1.5 hpeyerl break;
248 1.1 simonb }
249 1.18 gdamore wbflush();
250 1.1 simonb
251 1.1 simonb /* XXX handle GPIO interrupts - not done at all yet */
252 1.10 he if (cpu_int & 0x1)
253 1.1 simonb REGVAL(icu_base + IC_ASSIGN_REQUEST_CLEAR) = irq;
254 1.1 simonb else
255 1.1 simonb REGVAL(icu_base + IC_ASSIGN_REQUEST_SET) = irq;
256 1.1 simonb
257 1.1 simonb /* Associate interrupt with peripheral */
258 1.1 simonb REGVAL(icu_base + IC_SOURCE_SET) = irq;
259 1.1 simonb
260 1.1 simonb /* Actually enable the interrupt */
261 1.1 simonb REGVAL(icu_base + IC_MASK_SET) = irq;
262 1.1 simonb
263 1.1 simonb /* And allow the interrupt to interrupt idle */
264 1.1 simonb REGVAL(icu_base + IC_WAKEUP_SET) = irq;
265 1.18 gdamore
266 1.18 gdamore wbflush();
267 1.1 simonb }
268 1.1 simonb splx(s);
269 1.1 simonb
270 1.1 simonb return (ih);
271 1.1 simonb }
272 1.1 simonb
273 1.1 simonb void
274 1.1 simonb au_intr_disestablish(void *cookie)
275 1.1 simonb {
276 1.14 gdamore struct au_intrhand *ih = cookie;
277 1.1 simonb uint32_t icu_base;
278 1.1 simonb int irq, s;
279 1.1 simonb
280 1.1 simonb irq = ih->ih_irq;
281 1.1 simonb
282 1.1 simonb s = splhigh();
283 1.1 simonb
284 1.1 simonb /*
285 1.1 simonb * First, remove it from the table.
286 1.1 simonb */
287 1.1 simonb LIST_REMOVE(ih, ih_q);
288 1.1 simonb
289 1.1 simonb /*
290 1.1 simonb * Now, disable it, if there is nothing remaining on the
291 1.1 simonb * list.
292 1.1 simonb */
293 1.13 gdamore if (au_icu_intrtab[irq].intr_refcnt-- == 1) {
294 1.13 gdamore icu_base = (irq < 32) ? ic0_base : ic1_base;
295 1.1 simonb
296 1.1 simonb irq &= 31; /* throw away high bit if set */
297 1.1 simonb irq = 1 << irq; /* only used as a mask from here on */
298 1.1 simonb
299 1.1 simonb REGVAL(icu_base + IC_CONFIG2_CLEAR) = irq;
300 1.1 simonb REGVAL(icu_base + IC_CONFIG1_CLEAR) = irq;
301 1.1 simonb REGVAL(icu_base + IC_CONFIG0_CLEAR) = irq;
302 1.1 simonb
303 1.15 gdamore /* disable with MASK_CLEAR and WAKEUP_CLEAR */
304 1.15 gdamore REGVAL(icu_base + IC_MASK_CLEAR) = irq;
305 1.15 gdamore REGVAL(icu_base + IC_WAKEUP_CLEAR) = irq;
306 1.18 gdamore wbflush();
307 1.1 simonb }
308 1.1 simonb
309 1.1 simonb splx(s);
310 1.1 simonb
311 1.1 simonb free(ih, M_DEVBUF);
312 1.1 simonb }
313 1.1 simonb
314 1.1 simonb void
315 1.26 matt au_iointr(int ipl, vaddr_t pc, uint32_t ipending)
316 1.1 simonb {
317 1.14 gdamore struct au_intrhand *ih;
318 1.1 simonb int level;
319 1.17 simonb uint32_t icu_base, irqstat, irqmask;
320 1.17 simonb
321 1.19 gdamore icu_base = irqstat = 0;
322 1.1 simonb
323 1.1 simonb for (level = 3; level >= 0; level--) {
324 1.1 simonb if ((ipending & (MIPS_INT_MASK_0 << level)) == 0)
325 1.1 simonb continue;
326 1.1 simonb
327 1.1 simonb /*
328 1.1 simonb * XXX the following may well be slow to execute.
329 1.1 simonb * investigate and possibly speed up.
330 1.1 simonb *
331 1.1 simonb * is something like:
332 1.1 simonb *
333 1.17 simonb * irqstat = REGVAL(
334 1.1 simonb * (level & 4 == 0) ? IC0_BASE ? IC1_BASE +
335 1.1 simonb * (level & 2 == 0) ? IC_REQUEST0_INT : IC_REQUEST1_INT);
336 1.1 simonb *
337 1.1 simonb * be any better?
338 1.1 simonb *
339 1.1 simonb */
340 1.1 simonb switch (level) {
341 1.1 simonb case 0:
342 1.13 gdamore icu_base = ic0_base;
343 1.15 gdamore irqstat = REGVAL(icu_base + IC_REQUEST0_INT);
344 1.1 simonb break;
345 1.1 simonb case 1:
346 1.13 gdamore icu_base = ic0_base;
347 1.15 gdamore irqstat = REGVAL(icu_base + IC_REQUEST1_INT);
348 1.1 simonb break;
349 1.1 simonb case 2:
350 1.13 gdamore icu_base = ic1_base;
351 1.15 gdamore irqstat = REGVAL(icu_base + IC_REQUEST0_INT);
352 1.1 simonb break;
353 1.1 simonb case 3:
354 1.13 gdamore icu_base = ic1_base;
355 1.15 gdamore irqstat = REGVAL(icu_base + IC_REQUEST1_INT);
356 1.1 simonb break;
357 1.1 simonb }
358 1.15 gdamore irqmask = REGVAL(icu_base + IC_MASK_READ);
359 1.13 gdamore au_cpuintrs[level].cintr_count.ev_count++;
360 1.13 gdamore LIST_FOREACH(ih, &au_cpuintrs[level].cintr_list, ih_q) {
361 1.19 gdamore int mask = ih->ih_mask;
362 1.15 gdamore
363 1.19 gdamore if (mask & irqmask & irqstat) {
364 1.13 gdamore au_icu_intrtab[ih->ih_irq].intr_count.ev_count++;
365 1.1 simonb (*ih->ih_func)(ih->ih_arg);
366 1.1 simonb
367 1.19 gdamore if (REGVAL(icu_base + IC_MASK_READ) & mask) {
368 1.19 gdamore REGVAL(icu_base + IC_MASK_CLEAR) = mask;
369 1.19 gdamore REGVAL(icu_base + IC_MASK_SET) = mask;
370 1.18 gdamore wbflush();
371 1.16 gdamore }
372 1.1 simonb }
373 1.1 simonb }
374 1.1 simonb }
375 1.1 simonb }
376 1.15 gdamore
377 1.15 gdamore /*
378 1.15 gdamore * Some devices (e.g. PCMCIA) want to be able to mask interrupts at
379 1.15 gdamore * the ICU, and leave them masked off until some later time
380 1.15 gdamore * (e.g. reenabled by a soft interrupt).
381 1.15 gdamore */
382 1.15 gdamore
383 1.15 gdamore void
384 1.15 gdamore au_intr_enable(int irq)
385 1.15 gdamore {
386 1.15 gdamore int s;
387 1.15 gdamore uint32_t icu_base, mask;
388 1.15 gdamore
389 1.15 gdamore if (irq >= NIRQS)
390 1.15 gdamore panic("au_intr_enable: bogus IRQ %d", irq);
391 1.15 gdamore
392 1.15 gdamore icu_base = (irq < 32) ? ic0_base : ic1_base;
393 1.15 gdamore mask = irq & 31;
394 1.15 gdamore mask = 1 << mask;
395 1.15 gdamore
396 1.15 gdamore s = splhigh();
397 1.15 gdamore /* only enable the interrupt if we have a handler */
398 1.18 gdamore if (au_icu_intrtab[irq].intr_refcnt) {
399 1.15 gdamore REGVAL(icu_base + IC_MASK_SET) = mask;
400 1.18 gdamore REGVAL(icu_base + IC_WAKEUP_SET) = mask;
401 1.18 gdamore wbflush();
402 1.18 gdamore }
403 1.15 gdamore splx(s);
404 1.15 gdamore }
405 1.15 gdamore
406 1.15 gdamore void
407 1.15 gdamore au_intr_disable(int irq)
408 1.15 gdamore {
409 1.15 gdamore int s;
410 1.15 gdamore uint32_t icu_base, mask;
411 1.15 gdamore
412 1.18 gdamore if (irq >= NIRQS)
413 1.18 gdamore panic("au_intr_disable: bogus IRQ %d", irq);
414 1.18 gdamore
415 1.15 gdamore icu_base = (irq < 32) ? ic0_base : ic1_base;
416 1.15 gdamore mask = irq & 31;
417 1.15 gdamore mask = 1 << mask;
418 1.15 gdamore
419 1.15 gdamore s = splhigh();
420 1.15 gdamore REGVAL(icu_base + IC_MASK_CLEAR) = mask;
421 1.18 gdamore REGVAL(icu_base + IC_WAKEUP_CLEAR) = mask;
422 1.18 gdamore wbflush();
423 1.15 gdamore splx(s);
424 1.15 gdamore }
425