pic.c revision 1.70 1 1.70 jmcneill /* $NetBSD: pic.c,v 1.70 2021/03/27 12:15:09 jmcneill Exp $ */
2 1.2 matt /*-
3 1.2 matt * Copyright (c) 2008 The NetBSD Foundation, Inc.
4 1.2 matt * All rights reserved.
5 1.2 matt *
6 1.2 matt * This code is derived from software contributed to The NetBSD Foundation
7 1.2 matt * by Matt Thomas.
8 1.2 matt *
9 1.2 matt * Redistribution and use in source and binary forms, with or without
10 1.2 matt * modification, are permitted provided that the following conditions
11 1.2 matt * are met:
12 1.2 matt * 1. Redistributions of source code must retain the above copyright
13 1.2 matt * notice, this list of conditions and the following disclaimer.
14 1.2 matt * 2. Redistributions in binary form must reproduce the above copyright
15 1.2 matt * notice, this list of conditions and the following disclaimer in the
16 1.2 matt * documentation and/or other materials provided with the distribution.
17 1.2 matt *
18 1.2 matt * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
19 1.2 matt * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
20 1.2 matt * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
21 1.2 matt * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
22 1.2 matt * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
23 1.2 matt * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
24 1.2 matt * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
25 1.2 matt * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
26 1.2 matt * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
27 1.2 matt * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
28 1.2 matt * POSSIBILITY OF SUCH DAMAGE.
29 1.2 matt */
30 1.21 matt
31 1.21 matt #define _INTR_PRIVATE
32 1.21 matt #include "opt_ddb.h"
33 1.25 skrll #include "opt_multiprocessor.h"
34 1.21 matt
35 1.2 matt #include <sys/cdefs.h>
36 1.70 jmcneill __KERNEL_RCSID(0, "$NetBSD: pic.c,v 1.70 2021/03/27 12:15:09 jmcneill Exp $");
37 1.2 matt
38 1.2 matt #include <sys/param.h>
39 1.13 matt #include <sys/atomic.h>
40 1.13 matt #include <sys/cpu.h>
41 1.2 matt #include <sys/evcnt.h>
42 1.56 riastrad #include <sys/interrupt.h>
43 1.13 matt #include <sys/intr.h>
44 1.56 riastrad #include <sys/ipi.h>
45 1.13 matt #include <sys/kernel.h>
46 1.11 matt #include <sys/kmem.h>
47 1.35 skrll #include <sys/mutex.h>
48 1.35 skrll #include <sys/once.h>
49 1.13 matt #include <sys/xcall.h>
50 1.2 matt
51 1.2 matt #include <arm/armreg.h>
52 1.2 matt #include <arm/cpufunc.h>
53 1.42 ryo #include <arm/locore.h> /* for compat aarch64 */
54 1.2 matt
55 1.21 matt #ifdef DDB
56 1.21 matt #include <arm/db_machdep.h>
57 1.21 matt #endif
58 1.21 matt
59 1.2 matt #include <arm/pic/picvar.h>
60 1.2 matt
61 1.28 matt #if defined(__HAVE_PIC_PENDING_INTRS)
62 1.29 matt /*
63 1.29 matt * This implementation of pending interrupts on a MULTIPROCESSOR system makes
64 1.29 matt * the assumption that a PIC (pic_softc) shall only have all its interrupts
65 1.29 matt * come from the same CPU. In other words, interrupts from a single PIC will
66 1.29 matt * not be distributed among multiple CPUs.
67 1.29 matt */
68 1.70 jmcneill struct pic_pending {
69 1.70 jmcneill volatile uint32_t blocked_pics;
70 1.70 jmcneill volatile uint32_t pending_pics;
71 1.70 jmcneill volatile uint32_t pending_ipls;
72 1.70 jmcneill };
73 1.2 matt static uint32_t
74 1.2 matt pic_find_pending_irqs_by_ipl(struct pic_softc *, size_t, uint32_t, int);
75 1.2 matt static struct pic_softc *
76 1.70 jmcneill pic_list_find_pic_by_pending_ipl(struct pic_pending *, uint32_t);
77 1.70 jmcneill static void
78 1.70 jmcneill pic_deliver_irqs(struct pic_pending *, struct pic_softc *, int, void *);
79 1.2 matt static void
80 1.70 jmcneill pic_list_deliver_irqs(struct pic_pending *, register_t, int, void *);
81 1.29 matt
82 1.70 jmcneill #ifdef MULTIPROCESSOR
83 1.70 jmcneill percpu_t *pic_pending_percpu;
84 1.70 jmcneill static struct pic_pending *
85 1.70 jmcneill pic_pending_get(void)
86 1.70 jmcneill {
87 1.70 jmcneill return percpu_getref(pic_pending_percpu);
88 1.70 jmcneill }
89 1.70 jmcneill static void
90 1.70 jmcneill pic_pending_put(struct pic_pending *pend)
91 1.70 jmcneill {
92 1.70 jmcneill percpu_putref(pic_pending_percpu);
93 1.70 jmcneill }
94 1.70 jmcneill #else
95 1.70 jmcneill struct pic_pending pic_pending;
96 1.70 jmcneill #define pic_pending_get() (&pic_pending)
97 1.70 jmcneill #define pic_pending_put(pend) __nothing
98 1.70 jmcneill #endif /* MULTIPROCESSOR */
99 1.28 matt #endif /* __HAVE_PIC_PENDING_INTRS */
100 1.2 matt
101 1.2 matt struct pic_softc *pic_list[PIC_MAXPICS];
102 1.2 matt #if PIC_MAXPICS > 32
103 1.2 matt #error PIC_MAXPICS > 32 not supported
104 1.2 matt #endif
105 1.2 matt struct intrsource *pic_sources[PIC_MAXMAXSOURCES];
106 1.2 matt struct intrsource *pic__iplsources[PIC_MAXMAXSOURCES];
107 1.2 matt struct intrsource **pic_iplsource[NIPL] = {
108 1.2 matt [0 ... NIPL-1] = pic__iplsources,
109 1.2 matt };
110 1.2 matt size_t pic_ipl_offset[NIPL+1];
111 1.35 skrll
112 1.35 skrll static kmutex_t pic_lock;
113 1.51 skrll static size_t pic_sourcebase;
114 1.52 skrll static int pic_lastbase;
115 1.41 skrll static struct evcnt pic_deferral_ev =
116 1.2 matt EVCNT_INITIALIZER(EVCNT_TYPE_MISC, NULL, "deferred", "intr");
117 1.2 matt EVCNT_ATTACH_STATIC(pic_deferral_ev);
118 1.2 matt
119 1.35 skrll static int pic_init(void);
120 1.35 skrll
121 1.70 jmcneill #ifdef __HAVE_PIC_SET_PRIORITY
122 1.70 jmcneill void
123 1.70 jmcneill pic_set_priority(struct cpu_info *ci, int newipl)
124 1.70 jmcneill {
125 1.70 jmcneill register_t psw = DISABLE_INTERRUPT_SAVE();
126 1.70 jmcneill if (pic_list[0] != NULL)
127 1.70 jmcneill (pic_list[0]->pic_ops->pic_set_priority)(pic_list[0], newipl);
128 1.70 jmcneill ci->ci_cpl = newipl;
129 1.70 jmcneill if ((psw & I32_bit) == 0) {
130 1.70 jmcneill ENABLE_INTERRUPT();
131 1.70 jmcneill }
132 1.70 jmcneill }
133 1.70 jmcneill #endif
134 1.70 jmcneill
135 1.13 matt #ifdef MULTIPROCESSOR
136 1.13 matt int
137 1.34 matt pic_ipi_ast(void *arg)
138 1.34 matt {
139 1.34 matt setsoftast(curcpu());
140 1.34 matt return 1;
141 1.34 matt }
142 1.34 matt
143 1.34 matt int
144 1.13 matt pic_ipi_nop(void *arg)
145 1.13 matt {
146 1.13 matt /* do nothing */
147 1.13 matt return 1;
148 1.13 matt }
149 1.13 matt
150 1.13 matt int
151 1.13 matt pic_ipi_xcall(void *arg)
152 1.13 matt {
153 1.13 matt xc_ipi_handler();
154 1.13 matt return 1;
155 1.13 matt }
156 1.13 matt
157 1.22 rmind int
158 1.22 rmind pic_ipi_generic(void *arg)
159 1.22 rmind {
160 1.22 rmind ipi_cpu_handler();
161 1.22 rmind return 1;
162 1.22 rmind }
163 1.22 rmind
164 1.21 matt #ifdef DDB
165 1.21 matt int
166 1.21 matt pic_ipi_ddb(void *arg)
167 1.21 matt {
168 1.23 skrll // printf("%s: %s: tf=%p\n", __func__, curcpu()->ci_cpuname, arg);
169 1.21 matt kdb_trap(-1, arg);
170 1.21 matt return 1;
171 1.21 matt }
172 1.39 nisimura #endif /* DDB */
173 1.34 matt
174 1.34 matt #ifdef __HAVE_PREEMPTION
175 1.34 matt int
176 1.34 matt pic_ipi_kpreempt(void *arg)
177 1.34 matt {
178 1.70 jmcneill atomic_or_uint(&curcpu()->ci_astpending, __BIT(1));
179 1.34 matt return 1;
180 1.34 matt }
181 1.39 nisimura #endif /* __HAVE_PREEMPTION */
182 1.21 matt
183 1.13 matt void
184 1.13 matt intr_cpu_init(struct cpu_info *ci)
185 1.13 matt {
186 1.13 matt for (size_t slot = 0; slot < PIC_MAXPICS; slot++) {
187 1.13 matt struct pic_softc * const pic = pic_list[slot];
188 1.13 matt if (pic != NULL && pic->pic_ops->pic_cpu_init != NULL) {
189 1.13 matt (*pic->pic_ops->pic_cpu_init)(pic, ci);
190 1.13 matt }
191 1.13 matt }
192 1.13 matt }
193 1.13 matt
194 1.13 matt typedef void (*pic_ipi_send_func_t)(struct pic_softc *, u_long);
195 1.13 matt
196 1.13 matt void
197 1.13 matt intr_ipi_send(const kcpuset_t *kcp, u_long ipi)
198 1.13 matt {
199 1.32 matt struct cpu_info * const ci = curcpu();
200 1.13 matt KASSERT(ipi < NIPI);
201 1.61 jmcneill KASSERT(kcp == NULL || kcpuset_countset(kcp) == 1);
202 1.29 matt bool __diagused sent_p = false;
203 1.29 matt for (size_t slot = 0; slot < PIC_MAXPICS; slot++) {
204 1.29 matt struct pic_softc * const pic = pic_list[slot];
205 1.29 matt if (pic == NULL || pic->pic_cpus == NULL)
206 1.29 matt continue;
207 1.30 matt if (kcp == NULL || kcpuset_intersecting_p(kcp, pic->pic_cpus)) {
208 1.60 skrll /*
209 1.60 skrll * Never send to ourself.
210 1.60 skrll *
211 1.60 skrll * This test uses pointer comparison for systems
212 1.60 skrll * that have a pic per cpu, e.g. RPI[23]. GIC sets
213 1.60 skrll * pic_cpus to kcpuset_running and handles "not for
214 1.60 skrll * self" internally.
215 1.60 skrll */
216 1.32 matt if (pic->pic_cpus == ci->ci_kcpuset)
217 1.32 matt continue;
218 1.32 matt
219 1.29 matt (*pic->pic_ops->pic_ipi_send)(pic, kcp, ipi);
220 1.60 skrll
221 1.59 skrll /*
222 1.59 skrll * If we were targeting a single CPU or this pic
223 1.59 skrll * handles all cpus, we're done.
224 1.59 skrll */
225 1.29 matt if (kcp != NULL || pic->pic_cpus == kcpuset_running)
226 1.29 matt return;
227 1.29 matt sent_p = true;
228 1.29 matt }
229 1.29 matt }
230 1.58 skrll KASSERTMSG(cold || sent_p || ncpu <= 1, "cold %d sent_p %d ncpu %d",
231 1.58 skrll cold, sent_p, ncpu);
232 1.13 matt }
233 1.13 matt #endif /* MULTIPROCESSOR */
234 1.13 matt
235 1.13 matt #ifdef __HAVE_PIC_FAST_SOFTINTS
236 1.13 matt int
237 1.13 matt pic_handle_softint(void *arg)
238 1.13 matt {
239 1.13 matt void softint_switch(lwp_t *, int);
240 1.41 skrll struct cpu_info * const ci = curcpu();
241 1.13 matt const size_t softint = (size_t) arg;
242 1.13 matt int s = splhigh();
243 1.13 matt ci->ci_intr_depth--; // don't count these as interrupts
244 1.13 matt softint_switch(ci->ci_softlwps[softint], s);
245 1.13 matt ci->ci_intr_depth++;
246 1.13 matt splx(s);
247 1.13 matt return 1;
248 1.11 matt }
249 1.11 matt #endif
250 1.2 matt
251 1.2 matt int
252 1.2 matt pic_handle_intr(void *arg)
253 1.2 matt {
254 1.2 matt struct pic_softc * const pic = arg;
255 1.2 matt int rv;
256 1.2 matt
257 1.2 matt rv = (*pic->pic_ops->pic_find_pending_irqs)(pic);
258 1.2 matt
259 1.2 matt return rv > 0;
260 1.2 matt }
261 1.2 matt
262 1.28 matt #if defined(__HAVE_PIC_PENDING_INTRS)
263 1.2 matt void
264 1.2 matt pic_mark_pending_source(struct pic_softc *pic, struct intrsource *is)
265 1.2 matt {
266 1.2 matt const uint32_t ipl_mask = __BIT(is->is_ipl);
267 1.2 matt
268 1.4 matt atomic_or_32(&pic->pic_pending_irqs[is->is_irq >> 5],
269 1.4 matt __BIT(is->is_irq & 0x1f));
270 1.2 matt
271 1.4 matt atomic_or_32(&pic->pic_pending_ipls, ipl_mask);
272 1.70 jmcneill struct pic_pending *pend = pic_pending_get();
273 1.70 jmcneill atomic_or_32(&pend->pending_ipls, ipl_mask);
274 1.70 jmcneill atomic_or_32(&pend->pending_pics, __BIT(pic->pic_id));
275 1.70 jmcneill pic_pending_put(pend);
276 1.2 matt }
277 1.2 matt
278 1.2 matt void
279 1.2 matt pic_mark_pending(struct pic_softc *pic, int irq)
280 1.2 matt {
281 1.2 matt struct intrsource * const is = pic->pic_sources[irq];
282 1.2 matt
283 1.2 matt KASSERT(irq < pic->pic_maxsources);
284 1.2 matt KASSERT(is != NULL);
285 1.2 matt
286 1.2 matt pic_mark_pending_source(pic, is);
287 1.2 matt }
288 1.2 matt
289 1.2 matt uint32_t
290 1.2 matt pic_mark_pending_sources(struct pic_softc *pic, size_t irq_base,
291 1.2 matt uint32_t pending)
292 1.2 matt {
293 1.2 matt struct intrsource ** const isbase = &pic->pic_sources[irq_base];
294 1.2 matt struct intrsource *is;
295 1.4 matt volatile uint32_t *ipending = &pic->pic_pending_irqs[irq_base >> 5];
296 1.2 matt uint32_t ipl_mask = 0;
297 1.2 matt
298 1.66 jmcneill if (pending == 0)
299 1.66 jmcneill return ipl_mask;
300 1.66 jmcneill
301 1.2 matt KASSERT((irq_base & 31) == 0);
302 1.41 skrll
303 1.2 matt (*pic->pic_ops->pic_block_irqs)(pic, irq_base, pending);
304 1.2 matt
305 1.4 matt atomic_or_32(ipending, pending);
306 1.40 skrll while (pending != 0) {
307 1.2 matt int n = ffs(pending);
308 1.2 matt if (n-- == 0)
309 1.2 matt break;
310 1.2 matt is = isbase[n];
311 1.2 matt KASSERT(is != NULL);
312 1.2 matt KASSERT(irq_base <= is->is_irq && is->is_irq < irq_base + 32);
313 1.2 matt pending &= ~__BIT(n);
314 1.2 matt ipl_mask |= __BIT(is->is_ipl);
315 1.2 matt }
316 1.2 matt
317 1.4 matt atomic_or_32(&pic->pic_pending_ipls, ipl_mask);
318 1.70 jmcneill struct pic_pending *pend = pic_pending_get();
319 1.70 jmcneill atomic_or_32(&pend->pending_ipls, ipl_mask);
320 1.70 jmcneill atomic_or_32(&pend->pending_pics, __BIT(pic->pic_id));
321 1.70 jmcneill pic_pending_put(pend);
322 1.2 matt return ipl_mask;
323 1.2 matt }
324 1.2 matt
325 1.2 matt uint32_t
326 1.2 matt pic_find_pending_irqs_by_ipl(struct pic_softc *pic, size_t irq_base,
327 1.2 matt uint32_t pending, int ipl)
328 1.2 matt {
329 1.2 matt uint32_t ipl_irq_mask = 0;
330 1.2 matt uint32_t irq_mask;
331 1.2 matt
332 1.2 matt for (;;) {
333 1.2 matt int irq = ffs(pending);
334 1.2 matt if (irq-- == 0)
335 1.2 matt return ipl_irq_mask;
336 1.2 matt
337 1.2 matt irq_mask = __BIT(irq);
338 1.8 bsh #if 1
339 1.10 skrll KASSERTMSG(pic->pic_sources[irq_base + irq] != NULL,
340 1.10 skrll "%s: irq_base %zu irq %d\n", __func__, irq_base, irq);
341 1.8 bsh #else
342 1.8 bsh if (pic->pic_sources[irq_base + irq] == NULL) {
343 1.8 bsh aprint_error("stray interrupt? irq_base=%zu irq=%d\n",
344 1.8 bsh irq_base, irq);
345 1.8 bsh } else
346 1.8 bsh #endif
347 1.2 matt if (pic->pic_sources[irq_base + irq]->is_ipl == ipl)
348 1.2 matt ipl_irq_mask |= irq_mask;
349 1.2 matt
350 1.2 matt pending &= ~irq_mask;
351 1.2 matt }
352 1.2 matt }
353 1.28 matt #endif /* __HAVE_PIC_PENDING_INTRS */
354 1.2 matt
355 1.2 matt void
356 1.2 matt pic_dispatch(struct intrsource *is, void *frame)
357 1.2 matt {
358 1.20 matt int (*func)(void *) = is->is_func;
359 1.20 matt void *arg = is->is_arg;
360 1.2 matt
361 1.20 matt if (__predict_false(arg == NULL)) {
362 1.20 matt if (__predict_false(frame == NULL)) {
363 1.20 matt pic_deferral_ev.ev_count++;
364 1.20 matt return;
365 1.20 matt }
366 1.20 matt arg = frame;
367 1.2 matt }
368 1.13 matt
369 1.20 matt #ifdef MULTIPROCESSOR
370 1.20 matt if (!is->is_mpsafe) {
371 1.20 matt KERNEL_LOCK(1, NULL);
372 1.21 matt const u_int ci_blcnt __diagused = curcpu()->ci_biglock_count;
373 1.21 matt const u_int l_blcnt __diagused = curlwp->l_blcnt;
374 1.20 matt (void)(*func)(arg);
375 1.21 matt KASSERT(ci_blcnt == curcpu()->ci_biglock_count);
376 1.21 matt KASSERT(l_blcnt == curlwp->l_blcnt);
377 1.20 matt KERNEL_UNLOCK_ONE(NULL);
378 1.20 matt } else
379 1.20 matt #endif
380 1.20 matt (void)(*func)(arg);
381 1.20 matt
382 1.13 matt struct pic_percpu * const pcpu = percpu_getref(is->is_pic->pic_percpu);
383 1.13 matt KASSERT(pcpu->pcpu_magic == PICPERCPU_MAGIC);
384 1.13 matt pcpu->pcpu_evs[is->is_irq].ev_count++;
385 1.13 matt percpu_putref(is->is_pic->pic_percpu);
386 1.2 matt }
387 1.2 matt
388 1.28 matt #if defined(__HAVE_PIC_PENDING_INTRS)
389 1.2 matt void
390 1.70 jmcneill pic_deliver_irqs(struct pic_pending *pend, struct pic_softc *pic, int ipl,
391 1.29 matt void *frame)
392 1.2 matt {
393 1.2 matt const uint32_t ipl_mask = __BIT(ipl);
394 1.2 matt struct intrsource *is;
395 1.4 matt volatile uint32_t *ipending = pic->pic_pending_irqs;
396 1.4 matt volatile uint32_t *iblocked = pic->pic_blocked_irqs;
397 1.2 matt size_t irq_base;
398 1.2 matt #if PIC_MAXSOURCES > 32
399 1.2 matt size_t irq_count;
400 1.6 kiyohara int poi = 0; /* Possibility of interrupting */
401 1.2 matt #endif
402 1.2 matt uint32_t pending_irqs;
403 1.2 matt uint32_t blocked_irqs;
404 1.2 matt int irq;
405 1.19 martin bool progress __diagused = false;
406 1.29 matt
407 1.2 matt KASSERT(pic->pic_pending_ipls & ipl_mask);
408 1.2 matt
409 1.2 matt irq_base = 0;
410 1.2 matt #if PIC_MAXSOURCES > 32
411 1.2 matt irq_count = 0;
412 1.2 matt #endif
413 1.2 matt
414 1.2 matt for (;;) {
415 1.2 matt pending_irqs = pic_find_pending_irqs_by_ipl(pic, irq_base,
416 1.2 matt *ipending, ipl);
417 1.2 matt KASSERT((pending_irqs & *ipending) == pending_irqs);
418 1.2 matt KASSERT((pending_irqs & ~(*ipending)) == 0);
419 1.2 matt if (pending_irqs == 0) {
420 1.2 matt #if PIC_MAXSOURCES > 32
421 1.2 matt irq_count += 32;
422 1.6 kiyohara if (__predict_true(irq_count >= pic->pic_maxsources)) {
423 1.6 kiyohara if (!poi)
424 1.6 kiyohara /*Interrupt at this level was handled.*/
425 1.6 kiyohara break;
426 1.6 kiyohara irq_base = 0;
427 1.6 kiyohara irq_count = 0;
428 1.6 kiyohara poi = 0;
429 1.2 matt ipending = pic->pic_pending_irqs;
430 1.2 matt iblocked = pic->pic_blocked_irqs;
431 1.6 kiyohara } else {
432 1.6 kiyohara irq_base += 32;
433 1.6 kiyohara ipending++;
434 1.6 kiyohara iblocked++;
435 1.6 kiyohara KASSERT(irq_base <= pic->pic_maxsources);
436 1.2 matt }
437 1.2 matt continue;
438 1.2 matt #else
439 1.2 matt break;
440 1.2 matt #endif
441 1.2 matt }
442 1.2 matt progress = true;
443 1.5 kiyohara blocked_irqs = 0;
444 1.2 matt do {
445 1.2 matt irq = ffs(pending_irqs) - 1;
446 1.2 matt KASSERT(irq >= 0);
447 1.2 matt
448 1.4 matt atomic_and_32(ipending, ~__BIT(irq));
449 1.2 matt is = pic->pic_sources[irq_base + irq];
450 1.2 matt if (is != NULL) {
451 1.62 jmcneill ENABLE_INTERRUPT();
452 1.2 matt pic_dispatch(is, frame);
453 1.62 jmcneill DISABLE_INTERRUPT();
454 1.6 kiyohara #if PIC_MAXSOURCES > 32
455 1.6 kiyohara /*
456 1.6 kiyohara * There is a possibility of interrupting
457 1.62 jmcneill * from ENABLE_INTERRUPT() to
458 1.62 jmcneill * DISABLE_INTERRUPT().
459 1.6 kiyohara */
460 1.6 kiyohara poi = 1;
461 1.6 kiyohara #endif
462 1.5 kiyohara blocked_irqs |= __BIT(irq);
463 1.2 matt } else {
464 1.2 matt KASSERT(0);
465 1.2 matt }
466 1.2 matt pending_irqs = pic_find_pending_irqs_by_ipl(pic,
467 1.2 matt irq_base, *ipending, ipl);
468 1.2 matt } while (pending_irqs);
469 1.2 matt if (blocked_irqs) {
470 1.4 matt atomic_or_32(iblocked, blocked_irqs);
471 1.70 jmcneill atomic_or_32(&pend->blocked_pics, __BIT(pic->pic_id));
472 1.2 matt }
473 1.2 matt }
474 1.2 matt
475 1.2 matt KASSERT(progress);
476 1.2 matt /*
477 1.2 matt * Since interrupts are disabled, we don't have to be too careful
478 1.2 matt * about these.
479 1.2 matt */
480 1.4 matt if (atomic_and_32_nv(&pic->pic_pending_ipls, ~ipl_mask) == 0)
481 1.70 jmcneill atomic_and_32(&pend->pending_pics, ~__BIT(pic->pic_id));
482 1.2 matt }
483 1.2 matt
484 1.70 jmcneill static void
485 1.70 jmcneill pic_list_unblock_irqs(struct pic_pending *pend)
486 1.2 matt {
487 1.70 jmcneill uint32_t blocked_pics = pend->blocked_pics;
488 1.29 matt
489 1.70 jmcneill pend->blocked_pics = 0;
490 1.2 matt
491 1.2 matt for (;;) {
492 1.2 matt struct pic_softc *pic;
493 1.2 matt #if PIC_MAXSOURCES > 32
494 1.4 matt volatile uint32_t *iblocked;
495 1.4 matt uint32_t blocked;
496 1.2 matt size_t irq_base;
497 1.2 matt #endif
498 1.2 matt
499 1.4 matt int pic_id = ffs(blocked_pics);
500 1.2 matt if (pic_id-- == 0)
501 1.2 matt return;
502 1.2 matt
503 1.2 matt pic = pic_list[pic_id];
504 1.2 matt KASSERT(pic != NULL);
505 1.2 matt #if PIC_MAXSOURCES > 32
506 1.2 matt for (irq_base = 0, iblocked = pic->pic_blocked_irqs;
507 1.2 matt irq_base < pic->pic_maxsources;
508 1.2 matt irq_base += 32, iblocked++) {
509 1.4 matt if ((blocked = *iblocked) != 0) {
510 1.2 matt (*pic->pic_ops->pic_unblock_irqs)(pic,
511 1.4 matt irq_base, blocked);
512 1.4 matt atomic_and_32(iblocked, ~blocked);
513 1.2 matt }
514 1.2 matt }
515 1.2 matt #else
516 1.2 matt KASSERT(pic->pic_blocked_irqs[0] != 0);
517 1.2 matt (*pic->pic_ops->pic_unblock_irqs)(pic,
518 1.2 matt 0, pic->pic_blocked_irqs[0]);
519 1.4 matt pic->pic_blocked_irqs[0] = 0;
520 1.2 matt #endif
521 1.4 matt blocked_pics &= ~__BIT(pic_id);
522 1.2 matt }
523 1.2 matt }
524 1.2 matt
525 1.2 matt struct pic_softc *
526 1.70 jmcneill pic_list_find_pic_by_pending_ipl(struct pic_pending *pend, uint32_t ipl_mask)
527 1.2 matt {
528 1.70 jmcneill uint32_t pending_pics = pend->pending_pics;
529 1.2 matt struct pic_softc *pic;
530 1.2 matt
531 1.2 matt for (;;) {
532 1.4 matt int pic_id = ffs(pending_pics);
533 1.2 matt if (pic_id-- == 0)
534 1.2 matt return NULL;
535 1.2 matt
536 1.2 matt pic = pic_list[pic_id];
537 1.2 matt KASSERT(pic != NULL);
538 1.2 matt if (pic->pic_pending_ipls & ipl_mask)
539 1.2 matt return pic;
540 1.4 matt pending_pics &= ~__BIT(pic_id);
541 1.2 matt }
542 1.2 matt }
543 1.2 matt
544 1.2 matt void
545 1.70 jmcneill pic_list_deliver_irqs(struct pic_pending *pend, register_t psw, int ipl,
546 1.29 matt void *frame)
547 1.2 matt {
548 1.2 matt const uint32_t ipl_mask = __BIT(ipl);
549 1.2 matt struct pic_softc *pic;
550 1.2 matt
551 1.70 jmcneill while ((pic = pic_list_find_pic_by_pending_ipl(pend, ipl_mask)) != NULL) {
552 1.70 jmcneill pic_deliver_irqs(pend, pic, ipl, frame);
553 1.2 matt KASSERT((pic->pic_pending_ipls & ipl_mask) == 0);
554 1.2 matt }
555 1.70 jmcneill atomic_and_32(&pend->pending_ipls, ~ipl_mask);
556 1.2 matt }
557 1.28 matt #endif /* __HAVE_PIC_PENDING_INTRS */
558 1.2 matt
559 1.2 matt void
560 1.2 matt pic_do_pending_ints(register_t psw, int newipl, void *frame)
561 1.2 matt {
562 1.2 matt struct cpu_info * const ci = curcpu();
563 1.13 matt if (__predict_false(newipl == IPL_HIGH)) {
564 1.13 matt KASSERTMSG(ci->ci_cpl == IPL_HIGH, "cpl %d", ci->ci_cpl);
565 1.2 matt return;
566 1.13 matt }
567 1.28 matt #if defined(__HAVE_PIC_PENDING_INTRS)
568 1.70 jmcneill struct pic_pending *pend = pic_pending_get();
569 1.70 jmcneill while ((pend->pending_ipls & ~__BIT(newipl)) > __BIT(newipl)) {
570 1.70 jmcneill KASSERT(pend->pending_ipls < __BIT(NIPL));
571 1.2 matt for (;;) {
572 1.70 jmcneill int ipl = 31 - __builtin_clz(pend->pending_ipls);
573 1.2 matt KASSERT(ipl < NIPL);
574 1.2 matt if (ipl <= newipl)
575 1.2 matt break;
576 1.2 matt
577 1.69 jmcneill pic_set_priority(ci, ipl);
578 1.70 jmcneill pic_list_deliver_irqs(pend, psw, ipl, frame);
579 1.70 jmcneill pic_list_unblock_irqs(pend);
580 1.2 matt }
581 1.2 matt }
582 1.70 jmcneill pic_pending_put(pend);
583 1.28 matt #endif /* __HAVE_PIC_PENDING_INTRS */
584 1.33 jmcneill #ifdef __HAVE_PREEMPTION
585 1.70 jmcneill if (newipl == IPL_NONE && (ci->ci_astpending & __BIT(1))) {
586 1.69 jmcneill pic_set_priority(ci, IPL_SCHED);
587 1.27 matt kpreempt(0);
588 1.27 matt }
589 1.27 matt #endif
590 1.2 matt if (ci->ci_cpl != newipl)
591 1.69 jmcneill pic_set_priority(ci, newipl);
592 1.13 matt }
593 1.13 matt
594 1.13 matt static void
595 1.13 matt pic_percpu_allocate(void *v0, void *v1, struct cpu_info *ci)
596 1.13 matt {
597 1.13 matt struct pic_percpu * const pcpu = v0;
598 1.13 matt struct pic_softc * const pic = v1;
599 1.13 matt
600 1.13 matt pcpu->pcpu_evs = kmem_zalloc(pic->pic_maxsources * sizeof(pcpu->pcpu_evs[0]),
601 1.13 matt KM_SLEEP);
602 1.13 matt KASSERT(pcpu->pcpu_evs != NULL);
603 1.13 matt
604 1.13 matt #define PCPU_NAMELEN 32
605 1.14 matt #ifdef DIAGNOSTIC
606 1.13 matt const size_t namelen = strlen(pic->pic_name) + 4 + strlen(ci->ci_data.cpu_name);
607 1.14 matt #endif
608 1.13 matt
609 1.13 matt KASSERT(namelen < PCPU_NAMELEN);
610 1.13 matt pcpu->pcpu_name = kmem_alloc(PCPU_NAMELEN, KM_SLEEP);
611 1.13 matt #ifdef MULTIPROCESSOR
612 1.13 matt snprintf(pcpu->pcpu_name, PCPU_NAMELEN,
613 1.13 matt "%s (%s)", pic->pic_name, ci->ci_data.cpu_name);
614 1.13 matt #else
615 1.13 matt strlcpy(pcpu->pcpu_name, pic->pic_name, PCPU_NAMELEN);
616 1.13 matt #endif
617 1.13 matt pcpu->pcpu_magic = PICPERCPU_MAGIC;
618 1.13 matt #if 0
619 1.13 matt printf("%s: %s %s: <%s>\n",
620 1.13 matt __func__, ci->ci_data.cpu_name, pic->pic_name,
621 1.13 matt pcpu->pcpu_name);
622 1.2 matt #endif
623 1.2 matt }
624 1.2 matt
625 1.35 skrll static int
626 1.35 skrll pic_init(void)
627 1.35 skrll {
628 1.35 skrll
629 1.35 skrll mutex_init(&pic_lock, MUTEX_DEFAULT, IPL_HIGH);
630 1.35 skrll
631 1.35 skrll return 0;
632 1.35 skrll }
633 1.35 skrll
634 1.52 skrll int
635 1.2 matt pic_add(struct pic_softc *pic, int irqbase)
636 1.2 matt {
637 1.2 matt int slot, maybe_slot = -1;
638 1.35 skrll size_t sourcebase;
639 1.35 skrll static ONCE_DECL(pic_once);
640 1.35 skrll
641 1.35 skrll RUN_ONCE(&pic_once, pic_init);
642 1.2 matt
643 1.13 matt KASSERT(strlen(pic->pic_name) > 0);
644 1.13 matt
645 1.70 jmcneill #if defined(__HAVE_PIC_PENDING_INTRS) && defined(MULTIPROCESSOR)
646 1.70 jmcneill if (__predict_false(pic_pending_percpu == NULL))
647 1.70 jmcneill pic_pending_percpu = percpu_alloc(sizeof(struct pic_pending));
648 1.70 jmcneill #endif /* __HAVE_PIC_PENDING_INTRS && MULTIPROCESSOR */
649 1.70 jmcneill
650 1.35 skrll mutex_enter(&pic_lock);
651 1.52 skrll if (irqbase == PIC_IRQBASE_ALLOC) {
652 1.52 skrll irqbase = pic_lastbase;
653 1.52 skrll }
654 1.2 matt for (slot = 0; slot < PIC_MAXPICS; slot++) {
655 1.2 matt struct pic_softc * const xpic = pic_list[slot];
656 1.2 matt if (xpic == NULL) {
657 1.2 matt if (maybe_slot < 0)
658 1.2 matt maybe_slot = slot;
659 1.2 matt if (irqbase < 0)
660 1.2 matt break;
661 1.2 matt continue;
662 1.2 matt }
663 1.2 matt if (irqbase < 0 || xpic->pic_irqbase < 0)
664 1.2 matt continue;
665 1.2 matt if (irqbase >= xpic->pic_irqbase + xpic->pic_maxsources)
666 1.2 matt continue;
667 1.2 matt if (irqbase + pic->pic_maxsources <= xpic->pic_irqbase)
668 1.2 matt continue;
669 1.2 matt panic("pic_add: pic %s (%zu sources @ irq %u) conflicts"
670 1.2 matt " with pic %s (%zu sources @ irq %u)",
671 1.2 matt pic->pic_name, pic->pic_maxsources, irqbase,
672 1.2 matt xpic->pic_name, xpic->pic_maxsources, xpic->pic_irqbase);
673 1.2 matt }
674 1.2 matt slot = maybe_slot;
675 1.2 matt #if 0
676 1.2 matt printf("%s: pic_sourcebase=%zu pic_maxsources=%zu\n",
677 1.2 matt pic->pic_name, pic_sourcebase, pic->pic_maxsources);
678 1.2 matt #endif
679 1.17 matt KASSERTMSG(pic->pic_maxsources <= PIC_MAXSOURCES, "%zu",
680 1.17 matt pic->pic_maxsources);
681 1.2 matt KASSERT(pic_sourcebase + pic->pic_maxsources <= PIC_MAXMAXSOURCES);
682 1.35 skrll sourcebase = pic_sourcebase;
683 1.35 skrll pic_sourcebase += pic->pic_maxsources;
684 1.52 skrll if (pic_lastbase < irqbase + pic->pic_maxsources)
685 1.52 skrll pic_lastbase = irqbase + pic->pic_maxsources;
686 1.35 skrll mutex_exit(&pic_lock);
687 1.2 matt
688 1.13 matt /*
689 1.13 matt * Allocate a pointer to each cpu's evcnts and then, for each cpu,
690 1.13 matt * allocate its evcnts and then attach an evcnt for each pin.
691 1.13 matt * We can't allocate the evcnt structures directly since
692 1.41 skrll * percpu will move the contents of percpu memory around and
693 1.13 matt * corrupt the pointers in the evcnts themselves. Remember, any
694 1.13 matt * problem can be solved with sufficient indirection.
695 1.13 matt */
696 1.53 riastrad pic->pic_percpu = percpu_create(sizeof(struct pic_percpu),
697 1.53 riastrad pic_percpu_allocate, NULL, pic);
698 1.13 matt
699 1.35 skrll pic->pic_sources = &pic_sources[sourcebase];
700 1.2 matt pic->pic_irqbase = irqbase;
701 1.2 matt pic->pic_id = slot;
702 1.13 matt #ifdef __HAVE_PIC_SET_PRIORITY
703 1.13 matt KASSERT((slot == 0) == (pic->pic_ops->pic_set_priority != NULL));
704 1.13 matt #endif
705 1.13 matt #ifdef MULTIPROCESSOR
706 1.29 matt KASSERT((pic->pic_cpus != NULL) == (pic->pic_ops->pic_ipi_send != NULL));
707 1.13 matt #endif
708 1.2 matt pic_list[slot] = pic;
709 1.57 skrll
710 1.52 skrll return irqbase;
711 1.2 matt }
712 1.2 matt
713 1.2 matt int
714 1.2 matt pic_alloc_irq(struct pic_softc *pic)
715 1.2 matt {
716 1.2 matt int irq;
717 1.2 matt
718 1.2 matt for (irq = 0; irq < pic->pic_maxsources; irq++) {
719 1.2 matt if (pic->pic_sources[irq] == NULL)
720 1.2 matt return irq;
721 1.2 matt }
722 1.2 matt
723 1.2 matt return -1;
724 1.2 matt }
725 1.2 matt
726 1.13 matt static void
727 1.13 matt pic_percpu_evcnt_attach(void *v0, void *v1, struct cpu_info *ci)
728 1.13 matt {
729 1.13 matt struct pic_percpu * const pcpu = v0;
730 1.13 matt struct intrsource * const is = v1;
731 1.13 matt
732 1.13 matt KASSERT(pcpu->pcpu_magic == PICPERCPU_MAGIC);
733 1.13 matt evcnt_attach_dynamic(&pcpu->pcpu_evs[is->is_irq], EVCNT_TYPE_INTR, NULL,
734 1.13 matt pcpu->pcpu_name, is->is_source);
735 1.13 matt }
736 1.13 matt
737 1.2 matt void *
738 1.2 matt pic_establish_intr(struct pic_softc *pic, int irq, int ipl, int type,
739 1.48 jmcneill int (*func)(void *), void *arg, const char *xname)
740 1.2 matt {
741 1.2 matt struct intrsource *is;
742 1.2 matt int off, nipl;
743 1.2 matt
744 1.2 matt if (pic->pic_sources[irq]) {
745 1.2 matt printf("pic_establish_intr: pic %s irq %d already present\n",
746 1.2 matt pic->pic_name, irq);
747 1.2 matt return NULL;
748 1.2 matt }
749 1.2 matt
750 1.11 matt is = kmem_zalloc(sizeof(*is), KM_SLEEP);
751 1.2 matt is->is_pic = pic;
752 1.2 matt is->is_irq = irq;
753 1.2 matt is->is_ipl = ipl;
754 1.21 matt is->is_type = type & 0xff;
755 1.2 matt is->is_func = func;
756 1.2 matt is->is_arg = arg;
757 1.20 matt #ifdef MULTIPROCESSOR
758 1.24 skrll is->is_mpsafe = (type & IST_MPSAFE) || ipl != IPL_VM;
759 1.20 matt #endif
760 1.13 matt
761 1.2 matt if (pic->pic_ops->pic_source_name)
762 1.2 matt (*pic->pic_ops->pic_source_name)(pic, irq, is->is_source,
763 1.2 matt sizeof(is->is_source));
764 1.2 matt else
765 1.2 matt snprintf(is->is_source, sizeof(is->is_source), "irq %d", irq);
766 1.2 matt
767 1.13 matt /*
768 1.13 matt * Now attach the per-cpu evcnts.
769 1.13 matt */
770 1.13 matt percpu_foreach(pic->pic_percpu, pic_percpu_evcnt_attach, is);
771 1.2 matt
772 1.2 matt pic->pic_sources[irq] = is;
773 1.2 matt
774 1.2 matt /*
775 1.2 matt * First try to use an existing slot which is empty.
776 1.2 matt */
777 1.2 matt for (off = pic_ipl_offset[ipl]; off < pic_ipl_offset[ipl+1]; off++) {
778 1.2 matt if (pic__iplsources[off] == NULL) {
779 1.2 matt is->is_iplidx = off - pic_ipl_offset[ipl];
780 1.2 matt pic__iplsources[off] = is;
781 1.36 mlelstv goto unblock;
782 1.2 matt }
783 1.2 matt }
784 1.2 matt
785 1.2 matt /*
786 1.2 matt * Move up all the sources by one.
787 1.2 matt */
788 1.2 matt if (ipl < NIPL) {
789 1.2 matt off = pic_ipl_offset[ipl+1];
790 1.2 matt memmove(&pic__iplsources[off+1], &pic__iplsources[off],
791 1.2 matt sizeof(pic__iplsources[0]) * (pic_ipl_offset[NIPL] - off));
792 1.2 matt }
793 1.2 matt
794 1.2 matt /*
795 1.2 matt * Advance the offset of all IPLs higher than this. Include an
796 1.2 matt * extra one as well. Thus the number of sources per ipl is
797 1.2 matt * pic_ipl_offset[ipl+1] - pic_ipl_offset[ipl].
798 1.2 matt */
799 1.2 matt for (nipl = ipl + 1; nipl <= NIPL; nipl++)
800 1.2 matt pic_ipl_offset[nipl]++;
801 1.2 matt
802 1.2 matt /*
803 1.2 matt * Insert into the previously made position at the end of this IPL's
804 1.2 matt * sources.
805 1.2 matt */
806 1.2 matt off = pic_ipl_offset[ipl + 1] - 1;
807 1.2 matt is->is_iplidx = off - pic_ipl_offset[ipl];
808 1.2 matt pic__iplsources[off] = is;
809 1.2 matt
810 1.2 matt (*pic->pic_ops->pic_establish_irq)(pic, is);
811 1.2 matt
812 1.36 mlelstv unblock:
813 1.2 matt (*pic->pic_ops->pic_unblock_irqs)(pic, is->is_irq & ~0x1f,
814 1.2 matt __BIT(is->is_irq & 0x1f));
815 1.41 skrll
816 1.48 jmcneill if (xname) {
817 1.48 jmcneill if (is->is_xname == NULL)
818 1.48 jmcneill is->is_xname = kmem_zalloc(INTRDEVNAMEBUF, KM_SLEEP);
819 1.48 jmcneill if (is->is_xname[0] != '\0')
820 1.48 jmcneill strlcat(is->is_xname, ", ", INTRDEVNAMEBUF);
821 1.48 jmcneill strlcat(is->is_xname, xname, INTRDEVNAMEBUF);
822 1.48 jmcneill }
823 1.48 jmcneill
824 1.2 matt /* We're done. */
825 1.2 matt return is;
826 1.2 matt }
827 1.2 matt
828 1.13 matt static void
829 1.13 matt pic_percpu_evcnt_deattach(void *v0, void *v1, struct cpu_info *ci)
830 1.13 matt {
831 1.13 matt struct pic_percpu * const pcpu = v0;
832 1.13 matt struct intrsource * const is = v1;
833 1.13 matt
834 1.13 matt KASSERT(pcpu->pcpu_magic == PICPERCPU_MAGIC);
835 1.13 matt evcnt_detach(&pcpu->pcpu_evs[is->is_irq]);
836 1.13 matt }
837 1.13 matt
838 1.2 matt void
839 1.2 matt pic_disestablish_source(struct intrsource *is)
840 1.2 matt {
841 1.2 matt struct pic_softc * const pic = is->is_pic;
842 1.2 matt const int irq = is->is_irq;
843 1.2 matt
844 1.13 matt KASSERT(is == pic->pic_sources[irq]);
845 1.13 matt
846 1.15 msaitoh (*pic->pic_ops->pic_block_irqs)(pic, irq & ~0x1f, __BIT(irq & 0x1f));
847 1.2 matt pic->pic_sources[irq] = NULL;
848 1.2 matt pic__iplsources[pic_ipl_offset[is->is_ipl] + is->is_iplidx] = NULL;
849 1.48 jmcneill if (is->is_xname != NULL) {
850 1.48 jmcneill kmem_free(is->is_xname, INTRDEVNAMEBUF);
851 1.48 jmcneill is->is_xname = NULL;
852 1.48 jmcneill }
853 1.13 matt /*
854 1.13 matt * Now detach the per-cpu evcnts.
855 1.13 matt */
856 1.13 matt percpu_foreach(pic->pic_percpu, pic_percpu_evcnt_deattach, is);
857 1.2 matt
858 1.11 matt kmem_free(is, sizeof(*is));
859 1.2 matt }
860 1.2 matt
861 1.2 matt void *
862 1.2 matt intr_establish(int irq, int ipl, int type, int (*func)(void *), void *arg)
863 1.2 matt {
864 1.48 jmcneill return intr_establish_xname(irq, ipl, type, func, arg, NULL);
865 1.48 jmcneill }
866 1.48 jmcneill
867 1.48 jmcneill void *
868 1.48 jmcneill intr_establish_xname(int irq, int ipl, int type, int (*func)(void *), void *arg,
869 1.48 jmcneill const char *xname)
870 1.48 jmcneill {
871 1.11 matt KASSERT(!cpu_intr_p());
872 1.11 matt KASSERT(!cpu_softintr_p());
873 1.11 matt
874 1.13 matt for (size_t slot = 0; slot < PIC_MAXPICS; slot++) {
875 1.2 matt struct pic_softc * const pic = pic_list[slot];
876 1.2 matt if (pic == NULL || pic->pic_irqbase < 0)
877 1.2 matt continue;
878 1.2 matt if (pic->pic_irqbase <= irq
879 1.2 matt && irq < pic->pic_irqbase + pic->pic_maxsources) {
880 1.2 matt return pic_establish_intr(pic, irq - pic->pic_irqbase,
881 1.48 jmcneill ipl, type, func, arg, xname);
882 1.2 matt }
883 1.2 matt }
884 1.2 matt
885 1.2 matt return NULL;
886 1.2 matt }
887 1.2 matt
888 1.2 matt void
889 1.2 matt intr_disestablish(void *ih)
890 1.2 matt {
891 1.2 matt struct intrsource * const is = ih;
892 1.13 matt
893 1.13 matt KASSERT(!cpu_intr_p());
894 1.13 matt KASSERT(!cpu_softintr_p());
895 1.13 matt
896 1.2 matt pic_disestablish_source(is);
897 1.2 matt }
898 1.44 jmcneill
899 1.49 jmcneill void
900 1.49 jmcneill intr_mask(void *ih)
901 1.49 jmcneill {
902 1.49 jmcneill struct intrsource * const is = ih;
903 1.49 jmcneill struct pic_softc * const pic = is->is_pic;
904 1.49 jmcneill const int irq = is->is_irq;
905 1.49 jmcneill
906 1.50 jmcneill if (atomic_inc_32_nv(&is->is_mask_count) == 1)
907 1.50 jmcneill (*pic->pic_ops->pic_block_irqs)(pic, irq & ~0x1f, __BIT(irq & 0x1f));
908 1.49 jmcneill }
909 1.49 jmcneill
910 1.49 jmcneill void
911 1.49 jmcneill intr_unmask(void *ih)
912 1.49 jmcneill {
913 1.49 jmcneill struct intrsource * const is = ih;
914 1.49 jmcneill struct pic_softc * const pic = is->is_pic;
915 1.49 jmcneill const int irq = is->is_irq;
916 1.49 jmcneill
917 1.50 jmcneill if (atomic_dec_32_nv(&is->is_mask_count) == 0)
918 1.50 jmcneill (*pic->pic_ops->pic_unblock_irqs)(pic, irq & ~0x1f, __BIT(irq & 0x1f));
919 1.49 jmcneill }
920 1.49 jmcneill
921 1.45 jmcneill const char *
922 1.45 jmcneill intr_string(intr_handle_t irq, char *buf, size_t len)
923 1.45 jmcneill {
924 1.45 jmcneill for (size_t slot = 0; slot < PIC_MAXPICS; slot++) {
925 1.45 jmcneill struct pic_softc * const pic = pic_list[slot];
926 1.45 jmcneill if (pic == NULL || pic->pic_irqbase < 0)
927 1.45 jmcneill continue;
928 1.45 jmcneill if (pic->pic_irqbase <= irq
929 1.45 jmcneill && irq < pic->pic_irqbase + pic->pic_maxsources) {
930 1.45 jmcneill struct intrsource * const is = pic->pic_sources[irq - pic->pic_irqbase];
931 1.45 jmcneill snprintf(buf, len, "%s %s", pic->pic_name, is->is_source);
932 1.45 jmcneill return buf;
933 1.45 jmcneill }
934 1.45 jmcneill }
935 1.45 jmcneill
936 1.45 jmcneill return NULL;
937 1.45 jmcneill }
938 1.45 jmcneill
939 1.46 jmcneill static struct intrsource *
940 1.46 jmcneill intr_get_source(const char *intrid)
941 1.46 jmcneill {
942 1.46 jmcneill struct intrsource *is;
943 1.46 jmcneill intrid_t buf;
944 1.46 jmcneill size_t slot;
945 1.46 jmcneill int irq;
946 1.46 jmcneill
947 1.46 jmcneill KASSERT(mutex_owned(&cpu_lock));
948 1.46 jmcneill
949 1.46 jmcneill for (slot = 0; slot < PIC_MAXPICS; slot++) {
950 1.46 jmcneill struct pic_softc * const pic = pic_list[slot];
951 1.46 jmcneill if (pic == NULL || pic->pic_irqbase < 0)
952 1.46 jmcneill continue;
953 1.46 jmcneill for (irq = 0; irq < pic->pic_maxsources; irq++) {
954 1.47 jmcneill is = pic->pic_sources[irq];
955 1.46 jmcneill if (is == NULL || is->is_source[0] == '\0')
956 1.46 jmcneill continue;
957 1.46 jmcneill
958 1.46 jmcneill snprintf(buf, sizeof(buf), "%s %s", pic->pic_name, is->is_source);
959 1.46 jmcneill if (strcmp(buf, intrid) == 0)
960 1.46 jmcneill return is;
961 1.46 jmcneill }
962 1.46 jmcneill }
963 1.46 jmcneill
964 1.46 jmcneill return NULL;
965 1.46 jmcneill }
966 1.46 jmcneill
967 1.46 jmcneill struct intrids_handler *
968 1.46 jmcneill interrupt_construct_intrids(const kcpuset_t *cpuset)
969 1.46 jmcneill {
970 1.46 jmcneill struct intrids_handler *iih;
971 1.46 jmcneill struct intrsource *is;
972 1.46 jmcneill int count, irq, n;
973 1.46 jmcneill size_t slot;
974 1.46 jmcneill
975 1.46 jmcneill if (kcpuset_iszero(cpuset))
976 1.46 jmcneill return NULL;
977 1.46 jmcneill
978 1.46 jmcneill count = 0;
979 1.46 jmcneill for (slot = 0; slot < PIC_MAXPICS; slot++) {
980 1.46 jmcneill struct pic_softc * const pic = pic_list[slot];
981 1.46 jmcneill if (pic != NULL && pic->pic_irqbase >= 0) {
982 1.46 jmcneill for (irq = 0; irq < pic->pic_maxsources; irq++) {
983 1.47 jmcneill is = pic->pic_sources[irq];
984 1.46 jmcneill if (is && is->is_source[0] != '\0')
985 1.46 jmcneill count++;
986 1.46 jmcneill }
987 1.46 jmcneill }
988 1.46 jmcneill }
989 1.46 jmcneill
990 1.46 jmcneill iih = kmem_zalloc(sizeof(int) + sizeof(intrid_t) * count, KM_SLEEP);
991 1.46 jmcneill iih->iih_nids = count;
992 1.46 jmcneill
993 1.46 jmcneill for (n = 0, slot = 0; n < count && slot < PIC_MAXPICS; slot++) {
994 1.46 jmcneill struct pic_softc * const pic = pic_list[slot];
995 1.46 jmcneill if (pic == NULL || pic->pic_irqbase < 0)
996 1.46 jmcneill continue;
997 1.46 jmcneill for (irq = 0; irq < pic->pic_maxsources; irq++) {
998 1.47 jmcneill is = pic->pic_sources[irq];
999 1.46 jmcneill if (is == NULL || is->is_source[0] == '\0')
1000 1.46 jmcneill continue;
1001 1.46 jmcneill
1002 1.46 jmcneill snprintf(iih->iih_intrids[n++], sizeof(intrid_t), "%s %s",
1003 1.46 jmcneill pic->pic_name, is->is_source);
1004 1.46 jmcneill }
1005 1.46 jmcneill }
1006 1.46 jmcneill
1007 1.46 jmcneill return iih;
1008 1.46 jmcneill }
1009 1.46 jmcneill
1010 1.46 jmcneill void
1011 1.46 jmcneill interrupt_destruct_intrids(struct intrids_handler *iih)
1012 1.46 jmcneill {
1013 1.46 jmcneill if (iih == NULL)
1014 1.46 jmcneill return;
1015 1.46 jmcneill
1016 1.46 jmcneill kmem_free(iih, sizeof(int) + sizeof(intrid_t) * iih->iih_nids);
1017 1.46 jmcneill }
1018 1.46 jmcneill
1019 1.46 jmcneill void
1020 1.46 jmcneill interrupt_get_available(kcpuset_t *cpuset)
1021 1.46 jmcneill {
1022 1.46 jmcneill CPU_INFO_ITERATOR cii;
1023 1.46 jmcneill struct cpu_info *ci;
1024 1.46 jmcneill
1025 1.46 jmcneill kcpuset_zero(cpuset);
1026 1.46 jmcneill
1027 1.46 jmcneill mutex_enter(&cpu_lock);
1028 1.46 jmcneill for (CPU_INFO_FOREACH(cii, ci)) {
1029 1.46 jmcneill if ((ci->ci_schedstate.spc_flags & SPCF_NOINTR) == 0)
1030 1.46 jmcneill kcpuset_set(cpuset, cpu_index(ci));
1031 1.46 jmcneill }
1032 1.46 jmcneill mutex_exit(&cpu_lock);
1033 1.46 jmcneill }
1034 1.46 jmcneill
1035 1.46 jmcneill void
1036 1.46 jmcneill interrupt_get_devname(const char *intrid, char *buf, size_t len)
1037 1.46 jmcneill {
1038 1.48 jmcneill struct intrsource *is;
1039 1.48 jmcneill
1040 1.48 jmcneill mutex_enter(&cpu_lock);
1041 1.48 jmcneill is = intr_get_source(intrid);
1042 1.48 jmcneill if (is == NULL || is->is_xname == NULL)
1043 1.48 jmcneill buf[0] = '\0';
1044 1.48 jmcneill else
1045 1.48 jmcneill strlcpy(buf, is->is_xname, len);
1046 1.48 jmcneill mutex_exit(&cpu_lock);
1047 1.46 jmcneill }
1048 1.46 jmcneill
1049 1.46 jmcneill struct interrupt_get_count_arg {
1050 1.46 jmcneill struct intrsource *is;
1051 1.46 jmcneill uint64_t count;
1052 1.46 jmcneill u_int cpu_idx;
1053 1.46 jmcneill };
1054 1.46 jmcneill
1055 1.46 jmcneill static void
1056 1.46 jmcneill interrupt_get_count_cb(void *v0, void *v1, struct cpu_info *ci)
1057 1.46 jmcneill {
1058 1.46 jmcneill struct pic_percpu * const pcpu = v0;
1059 1.46 jmcneill struct interrupt_get_count_arg * const arg = v1;
1060 1.46 jmcneill
1061 1.46 jmcneill if (arg->cpu_idx != cpu_index(ci))
1062 1.46 jmcneill return;
1063 1.46 jmcneill
1064 1.46 jmcneill arg->count = pcpu->pcpu_evs[arg->is->is_irq].ev_count;
1065 1.46 jmcneill }
1066 1.46 jmcneill
1067 1.46 jmcneill uint64_t
1068 1.46 jmcneill interrupt_get_count(const char *intrid, u_int cpu_idx)
1069 1.46 jmcneill {
1070 1.46 jmcneill struct interrupt_get_count_arg arg;
1071 1.46 jmcneill struct intrsource *is;
1072 1.46 jmcneill uint64_t count;
1073 1.46 jmcneill
1074 1.46 jmcneill count = 0;
1075 1.46 jmcneill
1076 1.46 jmcneill mutex_enter(&cpu_lock);
1077 1.46 jmcneill is = intr_get_source(intrid);
1078 1.46 jmcneill if (is != NULL && is->is_pic != NULL) {
1079 1.46 jmcneill arg.is = is;
1080 1.46 jmcneill arg.count = 0;
1081 1.46 jmcneill arg.cpu_idx = cpu_idx;
1082 1.46 jmcneill percpu_foreach(is->is_pic->pic_percpu, interrupt_get_count_cb, &arg);
1083 1.46 jmcneill count = arg.count;
1084 1.46 jmcneill }
1085 1.46 jmcneill mutex_exit(&cpu_lock);
1086 1.46 jmcneill
1087 1.46 jmcneill return count;
1088 1.46 jmcneill }
1089 1.46 jmcneill
1090 1.44 jmcneill #ifdef MULTIPROCESSOR
1091 1.46 jmcneill void
1092 1.46 jmcneill interrupt_get_assigned(const char *intrid, kcpuset_t *cpuset)
1093 1.46 jmcneill {
1094 1.46 jmcneill struct intrsource *is;
1095 1.46 jmcneill struct pic_softc *pic;
1096 1.46 jmcneill
1097 1.46 jmcneill kcpuset_zero(cpuset);
1098 1.46 jmcneill
1099 1.46 jmcneill mutex_enter(&cpu_lock);
1100 1.46 jmcneill is = intr_get_source(intrid);
1101 1.46 jmcneill if (is != NULL) {
1102 1.46 jmcneill pic = is->is_pic;
1103 1.46 jmcneill if (pic && pic->pic_ops->pic_get_affinity)
1104 1.46 jmcneill pic->pic_ops->pic_get_affinity(pic, is->is_irq, cpuset);
1105 1.46 jmcneill }
1106 1.46 jmcneill mutex_exit(&cpu_lock);
1107 1.46 jmcneill }
1108 1.46 jmcneill
1109 1.46 jmcneill int
1110 1.46 jmcneill interrupt_distribute_handler(const char *intrid, const kcpuset_t *newset,
1111 1.46 jmcneill kcpuset_t *oldset)
1112 1.46 jmcneill {
1113 1.46 jmcneill struct intrsource *is;
1114 1.46 jmcneill int error;
1115 1.46 jmcneill
1116 1.46 jmcneill mutex_enter(&cpu_lock);
1117 1.46 jmcneill is = intr_get_source(intrid);
1118 1.46 jmcneill if (is == NULL) {
1119 1.46 jmcneill error = ENOENT;
1120 1.46 jmcneill } else {
1121 1.46 jmcneill error = interrupt_distribute(is, newset, oldset);
1122 1.46 jmcneill }
1123 1.46 jmcneill mutex_exit(&cpu_lock);
1124 1.46 jmcneill
1125 1.46 jmcneill return error;
1126 1.46 jmcneill }
1127 1.46 jmcneill
1128 1.44 jmcneill int
1129 1.44 jmcneill interrupt_distribute(void *ih, const kcpuset_t *newset, kcpuset_t *oldset)
1130 1.44 jmcneill {
1131 1.44 jmcneill struct intrsource * const is = ih;
1132 1.44 jmcneill struct pic_softc * const pic = is->is_pic;
1133 1.44 jmcneill
1134 1.44 jmcneill if (pic == NULL)
1135 1.44 jmcneill return EOPNOTSUPP;
1136 1.44 jmcneill if (pic->pic_ops->pic_set_affinity == NULL ||
1137 1.44 jmcneill pic->pic_ops->pic_get_affinity == NULL)
1138 1.44 jmcneill return EOPNOTSUPP;
1139 1.44 jmcneill
1140 1.44 jmcneill if (!is->is_mpsafe)
1141 1.44 jmcneill return EINVAL;
1142 1.44 jmcneill
1143 1.44 jmcneill if (oldset != NULL)
1144 1.44 jmcneill pic->pic_ops->pic_get_affinity(pic, is->is_irq, oldset);
1145 1.44 jmcneill
1146 1.44 jmcneill return pic->pic_ops->pic_set_affinity(pic, is->is_irq, newset);
1147 1.44 jmcneill }
1148 1.44 jmcneill #endif
1149