kern_cpu.c revision 1.79 1 1.79 ad /* $NetBSD: kern_cpu.c,v 1.79 2019/12/02 23:22:43 ad Exp $ */
2 1.3 ad
3 1.3 ad /*-
4 1.79 ad * Copyright (c) 2007, 2008, 2009, 2010, 2012, 2019 The NetBSD Foundation, Inc.
5 1.3 ad * All rights reserved.
6 1.3 ad *
7 1.3 ad * This code is derived from software contributed to The NetBSD Foundation
8 1.3 ad * by Andrew Doran.
9 1.3 ad *
10 1.3 ad * Redistribution and use in source and binary forms, with or without
11 1.3 ad * modification, are permitted provided that the following conditions
12 1.3 ad * are met:
13 1.3 ad * 1. Redistributions of source code must retain the above copyright
14 1.3 ad * notice, this list of conditions and the following disclaimer.
15 1.3 ad * 2. Redistributions in binary form must reproduce the above copyright
16 1.3 ad * notice, this list of conditions and the following disclaimer in the
17 1.3 ad * documentation and/or other materials provided with the distribution.
18 1.3 ad *
19 1.3 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.3 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.3 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.3 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.3 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.3 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.3 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.3 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.3 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.3 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.3 ad * POSSIBILITY OF SUCH DAMAGE.
30 1.3 ad */
31 1.2 yamt
32 1.2 yamt /*-
33 1.2 yamt * Copyright (c)2007 YAMAMOTO Takashi,
34 1.2 yamt * All rights reserved.
35 1.2 yamt *
36 1.2 yamt * Redistribution and use in source and binary forms, with or without
37 1.2 yamt * modification, are permitted provided that the following conditions
38 1.2 yamt * are met:
39 1.2 yamt * 1. Redistributions of source code must retain the above copyright
40 1.2 yamt * notice, this list of conditions and the following disclaimer.
41 1.2 yamt * 2. Redistributions in binary form must reproduce the above copyright
42 1.2 yamt * notice, this list of conditions and the following disclaimer in the
43 1.2 yamt * documentation and/or other materials provided with the distribution.
44 1.2 yamt *
45 1.2 yamt * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
46 1.2 yamt * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
47 1.2 yamt * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
48 1.2 yamt * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
49 1.2 yamt * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
50 1.2 yamt * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
51 1.2 yamt * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
52 1.2 yamt * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
53 1.2 yamt * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
54 1.2 yamt * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
55 1.2 yamt * SUCH DAMAGE.
56 1.2 yamt */
57 1.2 yamt
58 1.2 yamt #include <sys/cdefs.h>
59 1.79 ad __KERNEL_RCSID(0, "$NetBSD: kern_cpu.c,v 1.79 2019/12/02 23:22:43 ad Exp $");
60 1.53 cegger
61 1.53 cegger #include "opt_cpu_ucode.h"
62 1.2 yamt
63 1.2 yamt #include <sys/param.h>
64 1.2 yamt #include <sys/systm.h>
65 1.2 yamt #include <sys/idle.h>
66 1.2 yamt #include <sys/sched.h>
67 1.8 ad #include <sys/intr.h>
68 1.3 ad #include <sys/conf.h>
69 1.3 ad #include <sys/cpu.h>
70 1.3 ad #include <sys/cpuio.h>
71 1.3 ad #include <sys/proc.h>
72 1.17 yamt #include <sys/percpu.h>
73 1.3 ad #include <sys/kernel.h>
74 1.3 ad #include <sys/kauth.h>
75 1.7 ad #include <sys/xcall.h>
76 1.7 ad #include <sys/pool.h>
77 1.21 ad #include <sys/kmem.h>
78 1.22 ad #include <sys/select.h>
79 1.23 ad #include <sys/namei.h>
80 1.27 ad #include <sys/callout.h>
81 1.60 drochner #include <sys/pcu.h>
82 1.3 ad
83 1.6 ad #include <uvm/uvm_extern.h>
84 1.6 ad
85 1.70 christos #include "ioconf.h"
86 1.70 christos
87 1.45 matt /*
88 1.52 jym * If the port has stated that cpu_data is the first thing in cpu_info,
89 1.52 jym * verify that the claim is true. This will prevent them from getting out
90 1.45 matt * of sync.
91 1.45 matt */
92 1.45 matt #ifdef __HAVE_CPU_DATA_FIRST
93 1.45 matt CTASSERT(offsetof(struct cpu_info, ci_data) == 0);
94 1.45 matt #else
95 1.45 matt CTASSERT(offsetof(struct cpu_info, ci_data) != 0);
96 1.45 matt #endif
97 1.45 matt
98 1.76 uwe static void cpu_xc_online(struct cpu_info *, void *);
99 1.76 uwe static void cpu_xc_offline(struct cpu_info *, void *);
100 1.7 ad
101 1.3 ad dev_type_ioctl(cpuctl_ioctl);
102 1.3 ad
103 1.3 ad const struct cdevsw cpuctl_cdevsw = {
104 1.63 dholland .d_open = nullopen,
105 1.63 dholland .d_close = nullclose,
106 1.63 dholland .d_read = nullread,
107 1.63 dholland .d_write = nullwrite,
108 1.63 dholland .d_ioctl = cpuctl_ioctl,
109 1.63 dholland .d_stop = nullstop,
110 1.63 dholland .d_tty = notty,
111 1.63 dholland .d_poll = nopoll,
112 1.63 dholland .d_mmap = nommap,
113 1.63 dholland .d_kqfilter = nokqfilter,
114 1.66 dholland .d_discard = nodiscard,
115 1.63 dholland .d_flag = D_OTHER | D_MPSAFE
116 1.3 ad };
117 1.11 rmind
118 1.46 rmind kmutex_t cpu_lock __cacheline_aligned;
119 1.46 rmind int ncpu __read_mostly;
120 1.46 rmind int ncpuonline __read_mostly;
121 1.46 rmind bool mp_online __read_mostly;
122 1.79 ad static bool cpu_topology_present __read_mostly;
123 1.48 rmind
124 1.61 rmind /* An array of CPUs. There are ncpu entries. */
125 1.61 rmind struct cpu_info **cpu_infos __read_mostly;
126 1.61 rmind
127 1.55 rmind /* Note: set on mi_cpu_attach() and idle_loop(). */
128 1.55 rmind kcpuset_t * kcpuset_attached __read_mostly = NULL;
129 1.55 rmind kcpuset_t * kcpuset_running __read_mostly = NULL;
130 1.48 rmind
131 1.73 christos int (*compat_cpuctl_ioctl)(struct lwp *, u_long, void *) = (void *)enosys;
132 1.64 christos
133 1.64 christos static char cpu_model[128];
134 1.64 christos
135 1.55 rmind /*
136 1.55 rmind * mi_cpu_init: early initialisation of MI CPU related structures.
137 1.55 rmind *
138 1.55 rmind * Note: may not block and memory allocator is not yet available.
139 1.55 rmind */
140 1.55 rmind void
141 1.55 rmind mi_cpu_init(void)
142 1.55 rmind {
143 1.55 rmind
144 1.55 rmind mutex_init(&cpu_lock, MUTEX_DEFAULT, IPL_NONE);
145 1.55 rmind
146 1.55 rmind kcpuset_create(&kcpuset_attached, true);
147 1.55 rmind kcpuset_create(&kcpuset_running, true);
148 1.55 rmind kcpuset_set(kcpuset_running, 0);
149 1.55 rmind }
150 1.55 rmind
151 1.2 yamt int
152 1.2 yamt mi_cpu_attach(struct cpu_info *ci)
153 1.2 yamt {
154 1.2 yamt int error;
155 1.2 yamt
156 1.44 ad KASSERT(maxcpus > 0);
157 1.44 ad
158 1.5 rmind ci->ci_index = ncpu;
159 1.55 rmind kcpuset_set(kcpuset_attached, cpu_index(ci));
160 1.55 rmind
161 1.58 matt /*
162 1.58 matt * Create a convenience cpuset of just ourselves.
163 1.58 matt */
164 1.58 matt kcpuset_create(&ci->ci_data.cpu_kcpuset, true);
165 1.58 matt kcpuset_set(ci->ci_data.cpu_kcpuset, cpu_index(ci));
166 1.58 matt
167 1.30 ad TAILQ_INIT(&ci->ci_data.cpu_ld_locks);
168 1.30 ad __cpu_simple_lock_init(&ci->ci_data.cpu_ld_lock);
169 1.5 rmind
170 1.43 mrg /* This is useful for eg, per-cpu evcnt */
171 1.43 mrg snprintf(ci->ci_data.cpu_name, sizeof(ci->ci_data.cpu_name), "cpu%d",
172 1.44 ad cpu_index(ci));
173 1.43 mrg
174 1.47 matt if (__predict_false(cpu_infos == NULL)) {
175 1.62 mlelstv size_t ci_bufsize = (maxcpus + 1) * sizeof(struct cpu_info *);
176 1.62 mlelstv cpu_infos = kmem_zalloc(ci_bufsize, KM_SLEEP);
177 1.47 matt }
178 1.47 matt cpu_infos[cpu_index(ci)] = ci;
179 1.47 matt
180 1.2 yamt sched_cpuattach(ci);
181 1.2 yamt
182 1.2 yamt error = create_idle_lwp(ci);
183 1.2 yamt if (error != 0) {
184 1.2 yamt /* XXX revert sched_cpuattach */
185 1.2 yamt return error;
186 1.2 yamt }
187 1.2 yamt
188 1.13 ad if (ci == curcpu())
189 1.78 ad ci->ci_onproc = curlwp;
190 1.13 ad else
191 1.78 ad ci->ci_onproc = ci->ci_data.cpu_idlelwp;
192 1.13 ad
193 1.17 yamt percpu_init_cpu(ci);
194 1.8 ad softint_init(ci);
195 1.27 ad callout_init_cpu(ci);
196 1.7 ad xc_init_cpu(ci);
197 1.14 ad pool_cache_cpu_init(ci);
198 1.22 ad selsysinit(ci);
199 1.23 ad cache_cpu_init(ci);
200 1.7 ad TAILQ_INIT(&ci->ci_data.cpu_biodone);
201 1.2 yamt ncpu++;
202 1.9 ad ncpuonline++;
203 1.2 yamt
204 1.2 yamt return 0;
205 1.2 yamt }
206 1.3 ad
207 1.3 ad void
208 1.69 uebayasi cpuctlattach(int dummy __unused)
209 1.3 ad {
210 1.3 ad
211 1.44 ad KASSERT(cpu_infos != NULL);
212 1.3 ad }
213 1.3 ad
214 1.3 ad int
215 1.3 ad cpuctl_ioctl(dev_t dev, u_long cmd, void *data, int flag, lwp_t *l)
216 1.3 ad {
217 1.3 ad CPU_INFO_ITERATOR cii;
218 1.3 ad cpustate_t *cs;
219 1.3 ad struct cpu_info *ci;
220 1.3 ad int error, i;
221 1.3 ad u_int id;
222 1.3 ad
223 1.3 ad error = 0;
224 1.3 ad
225 1.3 ad mutex_enter(&cpu_lock);
226 1.3 ad switch (cmd) {
227 1.3 ad case IOC_CPU_SETSTATE:
228 1.56 joerg cs = data;
229 1.20 elad error = kauth_authorize_system(l->l_cred,
230 1.20 elad KAUTH_SYSTEM_CPU, KAUTH_REQ_SYSTEM_CPU_SETSTATE, cs, NULL,
231 1.20 elad NULL);
232 1.3 ad if (error != 0)
233 1.3 ad break;
234 1.44 ad if (cs->cs_id >= maxcpus ||
235 1.36 ad (ci = cpu_lookup(cs->cs_id)) == NULL) {
236 1.3 ad error = ESRCH;
237 1.3 ad break;
238 1.3 ad }
239 1.56 joerg cpu_setintr(ci, cs->cs_intr);
240 1.37 rmind error = cpu_setstate(ci, cs->cs_online);
241 1.3 ad break;
242 1.3 ad
243 1.3 ad case IOC_CPU_GETSTATE:
244 1.56 joerg cs = data;
245 1.3 ad id = cs->cs_id;
246 1.10 ad memset(cs, 0, sizeof(*cs));
247 1.3 ad cs->cs_id = id;
248 1.44 ad if (cs->cs_id >= maxcpus ||
249 1.36 ad (ci = cpu_lookup(id)) == NULL) {
250 1.3 ad error = ESRCH;
251 1.3 ad break;
252 1.3 ad }
253 1.3 ad if ((ci->ci_schedstate.spc_flags & SPCF_OFFLINE) != 0)
254 1.3 ad cs->cs_online = false;
255 1.3 ad else
256 1.3 ad cs->cs_online = true;
257 1.42 ad if ((ci->ci_schedstate.spc_flags & SPCF_NOINTR) != 0)
258 1.42 ad cs->cs_intr = false;
259 1.42 ad else
260 1.42 ad cs->cs_intr = true;
261 1.42 ad cs->cs_lastmod = (int32_t)ci->ci_schedstate.spc_lastmod;
262 1.42 ad cs->cs_lastmodhi = (int32_t)
263 1.42 ad (ci->ci_schedstate.spc_lastmod >> 32);
264 1.42 ad cs->cs_intrcnt = cpu_intr_count(ci) + 1;
265 1.51 jdc cs->cs_hwid = ci->ci_cpuid;
266 1.3 ad break;
267 1.3 ad
268 1.3 ad case IOC_CPU_MAPID:
269 1.3 ad i = 0;
270 1.3 ad for (CPU_INFO_FOREACH(cii, ci)) {
271 1.3 ad if (i++ == *(int *)data)
272 1.3 ad break;
273 1.3 ad }
274 1.3 ad if (ci == NULL)
275 1.3 ad error = ESRCH;
276 1.3 ad else
277 1.38 rmind *(int *)data = cpu_index(ci);
278 1.3 ad break;
279 1.3 ad
280 1.3 ad case IOC_CPU_GETCOUNT:
281 1.3 ad *(int *)data = ncpu;
282 1.3 ad break;
283 1.3 ad
284 1.53 cegger #ifdef CPU_UCODE
285 1.53 cegger case IOC_CPU_UCODE_GET_VERSION:
286 1.57 drochner error = cpu_ucode_get_version((struct cpu_ucode_version *)data);
287 1.57 drochner break;
288 1.57 drochner
289 1.53 cegger case IOC_CPU_UCODE_APPLY:
290 1.53 cegger error = kauth_authorize_machdep(l->l_cred,
291 1.53 cegger KAUTH_MACHDEP_CPU_UCODE_APPLY,
292 1.53 cegger NULL, NULL, NULL, NULL);
293 1.53 cegger if (error != 0)
294 1.53 cegger break;
295 1.57 drochner error = cpu_ucode_apply((const struct cpu_ucode *)data);
296 1.57 drochner break;
297 1.59 drochner #endif
298 1.53 cegger
299 1.3 ad default:
300 1.73 christos error = (*compat_cpuctl_ioctl)(l, cmd, data);
301 1.3 ad break;
302 1.3 ad }
303 1.3 ad mutex_exit(&cpu_lock);
304 1.3 ad
305 1.3 ad return error;
306 1.3 ad }
307 1.3 ad
308 1.3 ad struct cpu_info *
309 1.36 ad cpu_lookup(u_int idx)
310 1.16 yamt {
311 1.44 ad struct cpu_info *ci;
312 1.44 ad
313 1.75 skrll /*
314 1.75 skrll * cpu_infos is a NULL terminated array of MAXCPUS + 1 entries,
315 1.75 skrll * so an index of MAXCPUS here is ok. See mi_cpu_attach.
316 1.75 skrll */
317 1.75 skrll KASSERT(idx <= maxcpus);
318 1.44 ad
319 1.44 ad if (__predict_false(cpu_infos == NULL)) {
320 1.44 ad KASSERT(idx == 0);
321 1.44 ad return curcpu();
322 1.44 ad }
323 1.16 yamt
324 1.44 ad ci = cpu_infos[idx];
325 1.16 yamt KASSERT(ci == NULL || cpu_index(ci) == idx);
326 1.75 skrll KASSERTMSG(idx < maxcpus || ci == NULL, "idx %d ci %p", idx, ci);
327 1.16 yamt
328 1.16 yamt return ci;
329 1.16 yamt }
330 1.16 yamt
331 1.7 ad static void
332 1.76 uwe cpu_xc_offline(struct cpu_info *ci, void *unused)
333 1.7 ad {
334 1.11 rmind struct schedstate_percpu *spc, *mspc = NULL;
335 1.37 rmind struct cpu_info *target_ci;
336 1.11 rmind struct lwp *l;
337 1.11 rmind CPU_INFO_ITERATOR cii;
338 1.7 ad int s;
339 1.7 ad
340 1.37 rmind /*
341 1.42 ad * Thread that made the cross call (separate context) holds
342 1.42 ad * cpu_lock on our behalf.
343 1.37 rmind */
344 1.11 rmind spc = &ci->ci_schedstate;
345 1.7 ad s = splsched();
346 1.7 ad spc->spc_flags |= SPCF_OFFLINE;
347 1.7 ad splx(s);
348 1.11 rmind
349 1.42 ad /* Take the first available CPU for the migration. */
350 1.37 rmind for (CPU_INFO_FOREACH(cii, target_ci)) {
351 1.37 rmind mspc = &target_ci->ci_schedstate;
352 1.11 rmind if ((mspc->spc_flags & SPCF_OFFLINE) == 0)
353 1.11 rmind break;
354 1.11 rmind }
355 1.37 rmind KASSERT(target_ci != NULL);
356 1.11 rmind
357 1.11 rmind /*
358 1.37 rmind * Migrate all non-bound threads to the other CPU. Note that this
359 1.37 rmind * runs from the xcall thread, thus handling of LSONPROC is not needed.
360 1.11 rmind */
361 1.28 ad mutex_enter(proc_lock);
362 1.11 rmind LIST_FOREACH(l, &alllwp, l_list) {
363 1.37 rmind struct cpu_info *mci;
364 1.37 rmind
365 1.35 yamt lwp_lock(l);
366 1.37 rmind if (l->l_cpu != ci || (l->l_pflag & (LP_BOUND | LP_INTR))) {
367 1.35 yamt lwp_unlock(l);
368 1.37 rmind continue;
369 1.11 rmind }
370 1.49 rmind /* Regular case - no affinity. */
371 1.49 rmind if (l->l_affinity == NULL) {
372 1.37 rmind lwp_migrate(l, target_ci);
373 1.37 rmind continue;
374 1.37 rmind }
375 1.49 rmind /* Affinity is set, find an online CPU in the set. */
376 1.37 rmind for (CPU_INFO_FOREACH(cii, mci)) {
377 1.37 rmind mspc = &mci->ci_schedstate;
378 1.37 rmind if ((mspc->spc_flags & SPCF_OFFLINE) == 0 &&
379 1.48 rmind kcpuset_isset(l->l_affinity, cpu_index(mci)))
380 1.37 rmind break;
381 1.37 rmind }
382 1.37 rmind if (mci == NULL) {
383 1.37 rmind lwp_unlock(l);
384 1.37 rmind mutex_exit(proc_lock);
385 1.37 rmind goto fail;
386 1.37 rmind }
387 1.37 rmind lwp_migrate(l, mci);
388 1.11 rmind }
389 1.28 ad mutex_exit(proc_lock);
390 1.19 joerg
391 1.60 drochner #if PCU_UNIT_COUNT > 0
392 1.60 drochner pcu_save_all_on_cpu();
393 1.60 drochner #endif
394 1.60 drochner
395 1.19 joerg #ifdef __HAVE_MD_CPU_OFFLINE
396 1.19 joerg cpu_offline_md();
397 1.19 joerg #endif
398 1.37 rmind return;
399 1.37 rmind fail:
400 1.37 rmind /* Just unset the SPCF_OFFLINE flag, caller will check */
401 1.37 rmind s = splsched();
402 1.37 rmind spc->spc_flags &= ~SPCF_OFFLINE;
403 1.37 rmind splx(s);
404 1.7 ad }
405 1.7 ad
406 1.7 ad static void
407 1.76 uwe cpu_xc_online(struct cpu_info *ci, void *unused)
408 1.7 ad {
409 1.11 rmind struct schedstate_percpu *spc;
410 1.7 ad int s;
411 1.7 ad
412 1.11 rmind spc = &ci->ci_schedstate;
413 1.7 ad s = splsched();
414 1.7 ad spc->spc_flags &= ~SPCF_OFFLINE;
415 1.7 ad splx(s);
416 1.7 ad }
417 1.7 ad
418 1.3 ad int
419 1.37 rmind cpu_setstate(struct cpu_info *ci, bool online)
420 1.3 ad {
421 1.3 ad struct schedstate_percpu *spc;
422 1.3 ad CPU_INFO_ITERATOR cii;
423 1.3 ad struct cpu_info *ci2;
424 1.7 ad uint64_t where;
425 1.7 ad xcfunc_t func;
426 1.3 ad int nonline;
427 1.3 ad
428 1.3 ad spc = &ci->ci_schedstate;
429 1.3 ad
430 1.3 ad KASSERT(mutex_owned(&cpu_lock));
431 1.3 ad
432 1.3 ad if (online) {
433 1.3 ad if ((spc->spc_flags & SPCF_OFFLINE) == 0)
434 1.3 ad return 0;
435 1.7 ad func = (xcfunc_t)cpu_xc_online;
436 1.3 ad } else {
437 1.3 ad if ((spc->spc_flags & SPCF_OFFLINE) != 0)
438 1.3 ad return 0;
439 1.3 ad nonline = 0;
440 1.33 ad /*
441 1.33 ad * Ensure that at least one CPU within the processor set
442 1.33 ad * stays online. Revisit this later.
443 1.33 ad */
444 1.3 ad for (CPU_INFO_FOREACH(cii, ci2)) {
445 1.33 ad if ((ci2->ci_schedstate.spc_flags & SPCF_OFFLINE) != 0)
446 1.33 ad continue;
447 1.33 ad if (ci2->ci_schedstate.spc_psid != spc->spc_psid)
448 1.33 ad continue;
449 1.33 ad nonline++;
450 1.3 ad }
451 1.3 ad if (nonline == 1)
452 1.3 ad return EBUSY;
453 1.7 ad func = (xcfunc_t)cpu_xc_offline;
454 1.3 ad }
455 1.3 ad
456 1.11 rmind where = xc_unicast(0, func, ci, NULL, ci);
457 1.7 ad xc_wait(where);
458 1.11 rmind if (online) {
459 1.11 rmind KASSERT((spc->spc_flags & SPCF_OFFLINE) == 0);
460 1.71 maxv ncpuonline++;
461 1.71 maxv } else {
462 1.71 maxv if ((spc->spc_flags & SPCF_OFFLINE) == 0) {
463 1.71 maxv /* If was not set offline, then it is busy */
464 1.71 maxv return EBUSY;
465 1.71 maxv }
466 1.71 maxv ncpuonline--;
467 1.11 rmind }
468 1.37 rmind
469 1.7 ad spc->spc_lastmod = time_second;
470 1.3 ad return 0;
471 1.3 ad }
472 1.39 ad
473 1.64 christos int
474 1.64 christos cpu_setmodel(const char *fmt, ...)
475 1.64 christos {
476 1.64 christos int len;
477 1.64 christos va_list ap;
478 1.64 christos
479 1.64 christos va_start(ap, fmt);
480 1.65 macallan len = vsnprintf(cpu_model, sizeof(cpu_model), fmt, ap);
481 1.64 christos va_end(ap);
482 1.64 christos return len;
483 1.64 christos }
484 1.64 christos
485 1.64 christos const char *
486 1.64 christos cpu_getmodel(void)
487 1.64 christos {
488 1.64 christos return cpu_model;
489 1.64 christos }
490 1.64 christos
491 1.42 ad #ifdef __HAVE_INTR_CONTROL
492 1.42 ad static void
493 1.76 uwe cpu_xc_intr(struct cpu_info *ci, void *unused)
494 1.42 ad {
495 1.42 ad struct schedstate_percpu *spc;
496 1.42 ad int s;
497 1.42 ad
498 1.42 ad spc = &ci->ci_schedstate;
499 1.42 ad s = splsched();
500 1.42 ad spc->spc_flags &= ~SPCF_NOINTR;
501 1.42 ad splx(s);
502 1.42 ad }
503 1.42 ad
504 1.42 ad static void
505 1.76 uwe cpu_xc_nointr(struct cpu_info *ci, void *unused)
506 1.42 ad {
507 1.42 ad struct schedstate_percpu *spc;
508 1.42 ad int s;
509 1.42 ad
510 1.42 ad spc = &ci->ci_schedstate;
511 1.42 ad s = splsched();
512 1.42 ad spc->spc_flags |= SPCF_NOINTR;
513 1.42 ad splx(s);
514 1.42 ad }
515 1.42 ad
516 1.42 ad int
517 1.42 ad cpu_setintr(struct cpu_info *ci, bool intr)
518 1.42 ad {
519 1.42 ad struct schedstate_percpu *spc;
520 1.42 ad CPU_INFO_ITERATOR cii;
521 1.42 ad struct cpu_info *ci2;
522 1.42 ad uint64_t where;
523 1.42 ad xcfunc_t func;
524 1.42 ad int nintr;
525 1.42 ad
526 1.42 ad spc = &ci->ci_schedstate;
527 1.42 ad
528 1.42 ad KASSERT(mutex_owned(&cpu_lock));
529 1.42 ad
530 1.42 ad if (intr) {
531 1.42 ad if ((spc->spc_flags & SPCF_NOINTR) == 0)
532 1.42 ad return 0;
533 1.42 ad func = (xcfunc_t)cpu_xc_intr;
534 1.42 ad } else {
535 1.42 ad if ((spc->spc_flags & SPCF_NOINTR) != 0)
536 1.42 ad return 0;
537 1.42 ad /*
538 1.42 ad * Ensure that at least one CPU within the system
539 1.42 ad * is handing device interrupts.
540 1.42 ad */
541 1.42 ad nintr = 0;
542 1.42 ad for (CPU_INFO_FOREACH(cii, ci2)) {
543 1.42 ad if ((ci2->ci_schedstate.spc_flags & SPCF_NOINTR) != 0)
544 1.42 ad continue;
545 1.42 ad if (ci2 == ci)
546 1.42 ad continue;
547 1.42 ad nintr++;
548 1.42 ad }
549 1.42 ad if (nintr == 0)
550 1.42 ad return EBUSY;
551 1.42 ad func = (xcfunc_t)cpu_xc_nointr;
552 1.42 ad }
553 1.42 ad
554 1.42 ad where = xc_unicast(0, func, ci, NULL, ci);
555 1.42 ad xc_wait(where);
556 1.42 ad if (intr) {
557 1.42 ad KASSERT((spc->spc_flags & SPCF_NOINTR) == 0);
558 1.42 ad } else if ((spc->spc_flags & SPCF_NOINTR) == 0) {
559 1.42 ad /* If was not set offline, then it is busy */
560 1.42 ad return EBUSY;
561 1.42 ad }
562 1.42 ad
563 1.42 ad /* Direct interrupts away from the CPU and record the change. */
564 1.42 ad cpu_intr_redistribute();
565 1.42 ad spc->spc_lastmod = time_second;
566 1.42 ad return 0;
567 1.42 ad }
568 1.42 ad #else /* __HAVE_INTR_CONTROL */
569 1.42 ad int
570 1.42 ad cpu_setintr(struct cpu_info *ci, bool intr)
571 1.42 ad {
572 1.42 ad
573 1.42 ad return EOPNOTSUPP;
574 1.42 ad }
575 1.42 ad
576 1.42 ad u_int
577 1.42 ad cpu_intr_count(struct cpu_info *ci)
578 1.42 ad {
579 1.42 ad
580 1.42 ad return 0; /* 0 == "don't know" */
581 1.42 ad }
582 1.42 ad #endif /* __HAVE_INTR_CONTROL */
583 1.42 ad
584 1.39 ad bool
585 1.39 ad cpu_softintr_p(void)
586 1.39 ad {
587 1.39 ad
588 1.39 ad return (curlwp->l_pflag & LP_INTR) != 0;
589 1.39 ad }
590 1.53 cegger
591 1.79 ad /*
592 1.79 ad * Collect CPU topology information as each CPU is attached. This can be
593 1.79 ad * called early during boot, so we need to be careful what we do.
594 1.79 ad */
595 1.79 ad void
596 1.79 ad cpu_topology_set(struct cpu_info *ci, int package_id, int core_id, int smt_id)
597 1.79 ad {
598 1.79 ad
599 1.79 ad cpu_topology_present = true;
600 1.79 ad ci->ci_package_id = package_id;
601 1.79 ad ci->ci_core_id = core_id;
602 1.79 ad ci->ci_smt_id = smt_id;
603 1.79 ad ci->ci_package_cpus = ci;
604 1.79 ad ci->ci_npackage_cpus = 1;
605 1.79 ad ci->ci_core_cpus = ci;
606 1.79 ad ci->ci_ncore_cpus = 1;
607 1.79 ad }
608 1.79 ad
609 1.79 ad /*
610 1.79 ad * Fake up toplogy info if we have none, or if what we got was bogus.
611 1.79 ad */
612 1.79 ad static void
613 1.79 ad cpu_topology_fake(void)
614 1.79 ad {
615 1.79 ad CPU_INFO_ITERATOR cii;
616 1.79 ad struct cpu_info *ci;
617 1.79 ad
618 1.79 ad for (CPU_INFO_FOREACH(cii, ci)) {
619 1.79 ad ci->ci_package_id = cpu_index(ci);
620 1.79 ad ci->ci_core_id = 0;
621 1.79 ad ci->ci_smt_id = 0;
622 1.79 ad ci->ci_ncore_cpus = 1;
623 1.79 ad ci->ci_core_cpus = ci;
624 1.79 ad ci->ci_package_cpus = ci;
625 1.79 ad ci->ci_npackage_cpus = 1;
626 1.79 ad }
627 1.79 ad }
628 1.79 ad
629 1.79 ad /*
630 1.79 ad * Fix up basic CPU topology info. Right now that means attach each CPU to
631 1.79 ad * circular lists of its siblings in the same core, and in the same package.
632 1.79 ad */
633 1.79 ad void
634 1.79 ad cpu_topology_init(void)
635 1.79 ad {
636 1.79 ad CPU_INFO_ITERATOR cii, cii2;
637 1.79 ad struct cpu_info *ci, *ci2, *ci3;
638 1.79 ad
639 1.79 ad if (!cpu_topology_present) {
640 1.79 ad cpu_topology_fake();
641 1.79 ad return;
642 1.79 ad }
643 1.79 ad
644 1.79 ad for (CPU_INFO_FOREACH(cii, ci)) {
645 1.79 ad ci->ci_ncore_cpus = 1;
646 1.79 ad ci->ci_core_cpus = ci;
647 1.79 ad ci->ci_package_cpus = ci;
648 1.79 ad ci->ci_npackage_cpus = 1;
649 1.79 ad }
650 1.79 ad
651 1.79 ad for (CPU_INFO_FOREACH(cii, ci)) {
652 1.79 ad for (CPU_INFO_FOREACH(cii2, ci2)) {
653 1.79 ad /* Avoid bad things happening. */
654 1.79 ad if (ci2->ci_package_id == ci->ci_package_id &&
655 1.79 ad ci2->ci_core_id == ci->ci_core_id &&
656 1.79 ad ci2->ci_smt_id == ci->ci_smt_id &&
657 1.79 ad ci2 != ci) {
658 1.79 ad printf("cpu_topology_init: info bogus, "
659 1.79 ad "faking it\n");
660 1.79 ad cpu_topology_fake();
661 1.79 ad return;
662 1.79 ad }
663 1.79 ad if (ci2 == ci ||
664 1.79 ad ci2->ci_package_id != ci->ci_package_id) {
665 1.79 ad continue;
666 1.79 ad }
667 1.79 ad /*
668 1.79 ad * Find CPUs in the same core. Walk to the end of
669 1.79 ad * the existing circular list and append.
670 1.79 ad */
671 1.79 ad if (ci->ci_ncore_cpus == 1 &&
672 1.79 ad ci->ci_core_id == ci2->ci_core_id) {
673 1.79 ad for (ci3 = ci2;; ci3 = ci3->ci_core_cpus) {
674 1.79 ad ci3->ci_ncore_cpus++;
675 1.79 ad if (ci3->ci_core_cpus == ci2) {
676 1.79 ad break;
677 1.79 ad }
678 1.79 ad }
679 1.79 ad ci->ci_core_cpus = ci2;
680 1.79 ad ci3->ci_core_cpus = ci;
681 1.79 ad ci->ci_ncore_cpus = ci3->ci_ncore_cpus;
682 1.79 ad }
683 1.79 ad /* Same, but for package. */
684 1.79 ad if (ci->ci_npackage_cpus == 1) {
685 1.79 ad for (ci3 = ci2;; ci3 = ci3->ci_package_cpus) {
686 1.79 ad ci3->ci_npackage_cpus++;
687 1.79 ad if (ci3->ci_package_cpus == ci2) {
688 1.79 ad break;
689 1.79 ad }
690 1.79 ad }
691 1.79 ad ci->ci_package_cpus = ci2;
692 1.79 ad ci3->ci_package_cpus = ci;
693 1.79 ad ci->ci_npackage_cpus = ci3->ci_npackage_cpus;
694 1.79 ad }
695 1.79 ad if (ci->ci_ncore_cpus > 1 && ci->ci_npackage_cpus > 1) {
696 1.79 ad break;
697 1.79 ad }
698 1.79 ad }
699 1.79 ad }
700 1.79 ad }
701 1.79 ad
702 1.53 cegger #ifdef CPU_UCODE
703 1.53 cegger int
704 1.53 cegger cpu_ucode_load(struct cpu_ucode_softc *sc, const char *fwname)
705 1.53 cegger {
706 1.53 cegger firmware_handle_t fwh;
707 1.53 cegger int error;
708 1.53 cegger
709 1.53 cegger if (sc->sc_blob != NULL) {
710 1.67 ozaki firmware_free(sc->sc_blob, sc->sc_blobsize);
711 1.53 cegger sc->sc_blob = NULL;
712 1.53 cegger sc->sc_blobsize = 0;
713 1.53 cegger }
714 1.53 cegger
715 1.57 drochner error = cpu_ucode_md_open(&fwh, sc->loader_version, fwname);
716 1.53 cegger if (error != 0) {
717 1.77 mrg #ifdef DEBUG
718 1.77 mrg printf("ucode: firmware_open(%s) failed: %i\n", fwname, error);
719 1.77 mrg #endif
720 1.53 cegger goto err0;
721 1.53 cegger }
722 1.53 cegger
723 1.53 cegger sc->sc_blobsize = firmware_get_size(fwh);
724 1.74 msaitoh if (sc->sc_blobsize == 0) {
725 1.74 msaitoh error = EFTYPE;
726 1.74 msaitoh firmware_close(fwh);
727 1.74 msaitoh goto err0;
728 1.74 msaitoh }
729 1.53 cegger sc->sc_blob = firmware_malloc(sc->sc_blobsize);
730 1.53 cegger if (sc->sc_blob == NULL) {
731 1.53 cegger error = ENOMEM;
732 1.53 cegger firmware_close(fwh);
733 1.53 cegger goto err0;
734 1.53 cegger }
735 1.53 cegger
736 1.53 cegger error = firmware_read(fwh, 0, sc->sc_blob, sc->sc_blobsize);
737 1.53 cegger firmware_close(fwh);
738 1.53 cegger if (error != 0)
739 1.53 cegger goto err1;
740 1.53 cegger
741 1.53 cegger return 0;
742 1.53 cegger
743 1.53 cegger err1:
744 1.67 ozaki firmware_free(sc->sc_blob, sc->sc_blobsize);
745 1.53 cegger sc->sc_blob = NULL;
746 1.53 cegger sc->sc_blobsize = 0;
747 1.53 cegger err0:
748 1.53 cegger return error;
749 1.53 cegger }
750 1.53 cegger #endif
751