subr_cpu.c revision 1.7 1 1.7 mrg /* $NetBSD: subr_cpu.c,v 1.7 2020/01/12 09:29:18 mrg Exp $ */
2 1.1 ad
3 1.1 ad /*-
4 1.6 ad * Copyright (c) 2007, 2008, 2009, 2010, 2012, 2019, 2020
5 1.6 ad * The NetBSD Foundation, Inc.
6 1.1 ad * All rights reserved.
7 1.1 ad *
8 1.1 ad * This code is derived from software contributed to The NetBSD Foundation
9 1.1 ad * by Andrew Doran.
10 1.1 ad *
11 1.1 ad * Redistribution and use in source and binary forms, with or without
12 1.1 ad * modification, are permitted provided that the following conditions
13 1.1 ad * are met:
14 1.1 ad * 1. Redistributions of source code must retain the above copyright
15 1.1 ad * notice, this list of conditions and the following disclaimer.
16 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
17 1.1 ad * notice, this list of conditions and the following disclaimer in the
18 1.1 ad * documentation and/or other materials provided with the distribution.
19 1.1 ad *
20 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
21 1.1 ad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
22 1.1 ad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
23 1.1 ad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
24 1.1 ad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
25 1.1 ad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
26 1.1 ad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
27 1.1 ad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 1.1 ad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
29 1.1 ad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
30 1.1 ad * POSSIBILITY OF SUCH DAMAGE.
31 1.1 ad */
32 1.1 ad
33 1.1 ad /*-
34 1.1 ad * Copyright (c)2007 YAMAMOTO Takashi,
35 1.1 ad * All rights reserved.
36 1.1 ad *
37 1.1 ad * Redistribution and use in source and binary forms, with or without
38 1.1 ad * modification, are permitted provided that the following conditions
39 1.1 ad * are met:
40 1.1 ad * 1. Redistributions of source code must retain the above copyright
41 1.1 ad * notice, this list of conditions and the following disclaimer.
42 1.1 ad * 2. Redistributions in binary form must reproduce the above copyright
43 1.1 ad * notice, this list of conditions and the following disclaimer in the
44 1.1 ad * documentation and/or other materials provided with the distribution.
45 1.1 ad *
46 1.1 ad * THIS SOFTWARE IS PROVIDED BY THE AUTHOR AND CONTRIBUTORS ``AS IS'' AND
47 1.1 ad * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
48 1.1 ad * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
49 1.1 ad * ARE DISCLAIMED. IN NO EVENT SHALL THE AUTHOR OR CONTRIBUTORS BE LIABLE
50 1.1 ad * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
51 1.1 ad * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
52 1.1 ad * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
53 1.1 ad * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
54 1.1 ad * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
55 1.1 ad * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
56 1.1 ad * SUCH DAMAGE.
57 1.1 ad */
58 1.1 ad
59 1.1 ad /*
60 1.1 ad * CPU related routines shared with rump.
61 1.1 ad */
62 1.1 ad
63 1.1 ad #include <sys/cdefs.h>
64 1.7 mrg __KERNEL_RCSID(0, "$NetBSD: subr_cpu.c,v 1.7 2020/01/12 09:29:18 mrg Exp $");
65 1.1 ad
66 1.1 ad #include <sys/param.h>
67 1.1 ad #include <sys/systm.h>
68 1.1 ad #include <sys/sched.h>
69 1.1 ad #include <sys/conf.h>
70 1.1 ad #include <sys/cpu.h>
71 1.1 ad #include <sys/proc.h>
72 1.1 ad #include <sys/kernel.h>
73 1.1 ad #include <sys/kmem.h>
74 1.1 ad
75 1.5 ad static void cpu_topology_fake1(struct cpu_info *);
76 1.5 ad
77 1.1 ad kmutex_t cpu_lock __cacheline_aligned;
78 1.1 ad int ncpu __read_mostly;
79 1.1 ad int ncpuonline __read_mostly;
80 1.1 ad bool mp_online __read_mostly;
81 1.1 ad static bool cpu_topology_present __read_mostly;
82 1.6 ad static bool cpu_topology_haveslow __read_mostly;
83 1.1 ad int64_t cpu_counts[CPU_COUNT_MAX];
84 1.1 ad
85 1.1 ad /* An array of CPUs. There are ncpu entries. */
86 1.1 ad struct cpu_info **cpu_infos __read_mostly;
87 1.1 ad
88 1.1 ad /* Note: set on mi_cpu_attach() and idle_loop(). */
89 1.1 ad kcpuset_t * kcpuset_attached __read_mostly = NULL;
90 1.1 ad kcpuset_t * kcpuset_running __read_mostly = NULL;
91 1.1 ad
92 1.1 ad static char cpu_model[128];
93 1.1 ad
94 1.1 ad /*
95 1.1 ad * mi_cpu_init: early initialisation of MI CPU related structures.
96 1.1 ad *
97 1.1 ad * Note: may not block and memory allocator is not yet available.
98 1.1 ad */
99 1.1 ad void
100 1.1 ad mi_cpu_init(void)
101 1.1 ad {
102 1.4 ad struct cpu_info *ci;
103 1.1 ad
104 1.1 ad mutex_init(&cpu_lock, MUTEX_DEFAULT, IPL_NONE);
105 1.1 ad
106 1.1 ad kcpuset_create(&kcpuset_attached, true);
107 1.1 ad kcpuset_create(&kcpuset_running, true);
108 1.1 ad kcpuset_set(kcpuset_running, 0);
109 1.4 ad
110 1.4 ad ci = curcpu();
111 1.5 ad cpu_topology_fake1(ci);
112 1.1 ad }
113 1.1 ad
114 1.1 ad int
115 1.1 ad cpu_setmodel(const char *fmt, ...)
116 1.1 ad {
117 1.1 ad int len;
118 1.1 ad va_list ap;
119 1.1 ad
120 1.1 ad va_start(ap, fmt);
121 1.1 ad len = vsnprintf(cpu_model, sizeof(cpu_model), fmt, ap);
122 1.1 ad va_end(ap);
123 1.1 ad return len;
124 1.1 ad }
125 1.1 ad
126 1.1 ad const char *
127 1.1 ad cpu_getmodel(void)
128 1.1 ad {
129 1.1 ad return cpu_model;
130 1.1 ad }
131 1.1 ad
132 1.1 ad bool
133 1.1 ad cpu_softintr_p(void)
134 1.1 ad {
135 1.1 ad
136 1.1 ad return (curlwp->l_pflag & LP_INTR) != 0;
137 1.1 ad }
138 1.1 ad
139 1.1 ad /*
140 1.1 ad * Collect CPU topology information as each CPU is attached. This can be
141 1.1 ad * called early during boot, so we need to be careful what we do.
142 1.1 ad */
143 1.1 ad void
144 1.1 ad cpu_topology_set(struct cpu_info *ci, u_int package_id, u_int core_id,
145 1.6 ad u_int smt_id, u_int numa_id, bool slow)
146 1.1 ad {
147 1.1 ad enum cpu_rel rel;
148 1.1 ad
149 1.1 ad cpu_topology_present = true;
150 1.6 ad cpu_topology_haveslow |= slow;
151 1.1 ad ci->ci_package_id = package_id;
152 1.1 ad ci->ci_core_id = core_id;
153 1.1 ad ci->ci_smt_id = smt_id;
154 1.1 ad ci->ci_numa_id = numa_id;
155 1.7 mrg ci->ci_is_slow = slow;
156 1.1 ad for (rel = 0; rel < __arraycount(ci->ci_sibling); rel++) {
157 1.1 ad ci->ci_sibling[rel] = ci;
158 1.1 ad ci->ci_nsibling[rel] = 1;
159 1.1 ad }
160 1.1 ad }
161 1.1 ad
162 1.1 ad /*
163 1.1 ad * Link a CPU into the given circular list.
164 1.1 ad */
165 1.1 ad static void
166 1.1 ad cpu_topology_link(struct cpu_info *ci, struct cpu_info *ci2, enum cpu_rel rel)
167 1.1 ad {
168 1.1 ad struct cpu_info *ci3;
169 1.1 ad
170 1.1 ad /* Walk to the end of the existing circular list and append. */
171 1.1 ad for (ci3 = ci2;; ci3 = ci3->ci_sibling[rel]) {
172 1.1 ad ci3->ci_nsibling[rel]++;
173 1.1 ad if (ci3->ci_sibling[rel] == ci2) {
174 1.1 ad break;
175 1.1 ad }
176 1.1 ad }
177 1.1 ad ci->ci_sibling[rel] = ci2;
178 1.1 ad ci3->ci_sibling[rel] = ci;
179 1.1 ad ci->ci_nsibling[rel] = ci3->ci_nsibling[rel];
180 1.1 ad }
181 1.1 ad
182 1.1 ad /*
183 1.1 ad * Print out the topology lists.
184 1.1 ad */
185 1.1 ad static void
186 1.1 ad cpu_topology_dump(void)
187 1.1 ad {
188 1.6 ad #ifdef DEBUG
189 1.1 ad CPU_INFO_ITERATOR cii;
190 1.1 ad struct cpu_info *ci, *ci2;
191 1.6 ad const char *names[] = { "core", "pkg", "1st" };
192 1.1 ad enum cpu_rel rel;
193 1.1 ad int i;
194 1.1 ad
195 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
196 1.1 ad for (rel = 0; rel < __arraycount(ci->ci_sibling); rel++) {
197 1.1 ad printf("%s has %d %s siblings:", cpu_name(ci),
198 1.1 ad ci->ci_nsibling[rel], names[rel]);
199 1.1 ad ci2 = ci->ci_sibling[rel];
200 1.1 ad i = 0;
201 1.1 ad do {
202 1.1 ad printf(" %s", cpu_name(ci2));
203 1.1 ad ci2 = ci2->ci_sibling[rel];
204 1.1 ad } while (++i < 64 && ci2 != ci->ci_sibling[rel]);
205 1.1 ad if (i == 64) {
206 1.1 ad printf(" GAVE UP");
207 1.1 ad }
208 1.1 ad printf("\n");
209 1.1 ad }
210 1.1 ad }
211 1.1 ad #endif /* DEBUG */
212 1.1 ad }
213 1.1 ad
214 1.1 ad /*
215 1.1 ad * Fake up topology info if we have none, or if what we got was bogus.
216 1.5 ad * Used early in boot, and by cpu_topology_fake().
217 1.5 ad */
218 1.5 ad static void
219 1.5 ad cpu_topology_fake1(struct cpu_info *ci)
220 1.5 ad {
221 1.5 ad enum cpu_rel rel;
222 1.5 ad
223 1.5 ad for (rel = 0; rel < __arraycount(ci->ci_sibling); rel++) {
224 1.5 ad ci->ci_sibling[rel] = ci;
225 1.5 ad ci->ci_nsibling[rel] = 1;
226 1.5 ad }
227 1.5 ad if (!cpu_topology_present) {
228 1.5 ad ci->ci_package_id = cpu_index(ci);
229 1.5 ad }
230 1.6 ad ci->ci_schedstate.spc_flags |=
231 1.6 ad (SPCF_CORE1ST | SPCF_PACKAGE1ST | SPCF_1STCLASS);
232 1.5 ad }
233 1.5 ad
234 1.5 ad /*
235 1.5 ad * Fake up topology info if we have none, or if what we got was bogus.
236 1.1 ad * Don't override ci_package_id, etc, if cpu_topology_present is set.
237 1.1 ad * MD code also uses these.
238 1.1 ad */
239 1.1 ad static void
240 1.1 ad cpu_topology_fake(void)
241 1.1 ad {
242 1.1 ad CPU_INFO_ITERATOR cii;
243 1.1 ad struct cpu_info *ci;
244 1.1 ad
245 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
246 1.5 ad cpu_topology_fake1(ci);
247 1.1 ad }
248 1.1 ad cpu_topology_dump();
249 1.6 ad }
250 1.1 ad
251 1.1 ad /*
252 1.1 ad * Fix up basic CPU topology info. Right now that means attach each CPU to
253 1.1 ad * circular lists of its siblings in the same core, and in the same package.
254 1.1 ad */
255 1.1 ad void
256 1.1 ad cpu_topology_init(void)
257 1.1 ad {
258 1.1 ad CPU_INFO_ITERATOR cii, cii2;
259 1.1 ad struct cpu_info *ci, *ci2, *ci3;
260 1.6 ad u_int minsmt, mincore;
261 1.1 ad
262 1.1 ad if (!cpu_topology_present) {
263 1.1 ad cpu_topology_fake();
264 1.1 ad return;
265 1.1 ad }
266 1.1 ad
267 1.1 ad /* Find siblings in same core and package. */
268 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
269 1.6 ad ci->ci_schedstate.spc_flags &=
270 1.6 ad ~(SPCF_CORE1ST | SPCF_PACKAGE1ST | SPCF_1STCLASS);
271 1.1 ad for (CPU_INFO_FOREACH(cii2, ci2)) {
272 1.1 ad /* Avoid bad things happening. */
273 1.1 ad if (ci2->ci_package_id == ci->ci_package_id &&
274 1.1 ad ci2->ci_core_id == ci->ci_core_id &&
275 1.1 ad ci2->ci_smt_id == ci->ci_smt_id &&
276 1.1 ad ci2 != ci) {
277 1.1 ad printf("cpu_topology_init: info bogus, "
278 1.1 ad "faking it\n");
279 1.1 ad cpu_topology_fake();
280 1.1 ad return;
281 1.1 ad }
282 1.1 ad if (ci2 == ci ||
283 1.1 ad ci2->ci_package_id != ci->ci_package_id) {
284 1.1 ad continue;
285 1.1 ad }
286 1.1 ad /* Find CPUs in the same core. */
287 1.1 ad if (ci->ci_nsibling[CPUREL_CORE] == 1 &&
288 1.1 ad ci->ci_core_id == ci2->ci_core_id) {
289 1.1 ad cpu_topology_link(ci, ci2, CPUREL_CORE);
290 1.1 ad }
291 1.1 ad /* Find CPUs in the same package. */
292 1.1 ad if (ci->ci_nsibling[CPUREL_PACKAGE] == 1) {
293 1.1 ad cpu_topology_link(ci, ci2, CPUREL_PACKAGE);
294 1.1 ad }
295 1.1 ad if (ci->ci_nsibling[CPUREL_CORE] > 1 &&
296 1.1 ad ci->ci_nsibling[CPUREL_PACKAGE] > 1) {
297 1.1 ad break;
298 1.1 ad }
299 1.1 ad }
300 1.1 ad }
301 1.1 ad
302 1.6 ad /* Identify lowest numbered SMT in each core. */
303 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
304 1.6 ad ci2 = ci3 = ci;
305 1.6 ad minsmt = ci->ci_smt_id;
306 1.6 ad do {
307 1.6 ad if (ci2->ci_smt_id < minsmt) {
308 1.6 ad ci3 = ci2;
309 1.6 ad minsmt = ci2->ci_smt_id;
310 1.1 ad }
311 1.6 ad ci2 = ci2->ci_sibling[CPUREL_CORE];
312 1.6 ad } while (ci2 != ci);
313 1.6 ad ci3->ci_schedstate.spc_flags |= SPCF_CORE1ST;
314 1.1 ad }
315 1.1 ad
316 1.6 ad /* Identify lowest numbered SMT in each package. */
317 1.6 ad ci3 = NULL;
318 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
319 1.6 ad if ((ci->ci_schedstate.spc_flags & SPCF_CORE1ST) == 0) {
320 1.6 ad continue;
321 1.1 ad }
322 1.1 ad ci2 = ci3 = ci;
323 1.6 ad mincore = ci->ci_core_id;
324 1.1 ad do {
325 1.6 ad if ((ci2->ci_schedstate.spc_flags &
326 1.6 ad SPCF_CORE1ST) != 0 &&
327 1.6 ad ci2->ci_core_id < mincore) {
328 1.1 ad ci3 = ci2;
329 1.6 ad mincore = ci2->ci_core_id;
330 1.1 ad }
331 1.6 ad ci2 = ci2->ci_sibling[CPUREL_PACKAGE];
332 1.6 ad } while (ci2 != ci);
333 1.6 ad
334 1.6 ad if ((ci3->ci_schedstate.spc_flags & SPCF_PACKAGE1ST) != 0) {
335 1.6 ad /* Already identified - nothing more to do. */
336 1.6 ad continue;
337 1.6 ad }
338 1.6 ad ci3->ci_schedstate.spc_flags |= SPCF_PACKAGE1ST;
339 1.6 ad
340 1.6 ad /* Walk through all CPUs in package and point to first. */
341 1.6 ad ci2 = ci;
342 1.6 ad do {
343 1.6 ad ci2->ci_sibling[CPUREL_PACKAGE1ST] = ci3;
344 1.6 ad ci2 = ci2->ci_sibling[CPUREL_PACKAGE];
345 1.1 ad } while (ci2 != ci);
346 1.1 ad
347 1.6 ad /* Now look for somebody else to link to. */
348 1.6 ad for (CPU_INFO_FOREACH(cii2, ci2)) {
349 1.6 ad if ((ci2->ci_schedstate.spc_flags & SPCF_PACKAGE1ST)
350 1.6 ad != 0 && ci2 != ci3) {
351 1.6 ad cpu_topology_link(ci3, ci2, CPUREL_PACKAGE1ST);
352 1.6 ad break;
353 1.6 ad }
354 1.6 ad }
355 1.6 ad }
356 1.6 ad
357 1.6 ad /* Walk through all packages, starting with value of ci3 from above. */
358 1.6 ad KASSERT(ci3 != NULL);
359 1.6 ad ci = ci3;
360 1.6 ad do {
361 1.6 ad /* Walk through CPUs in the package and copy in PACKAGE1ST. */
362 1.1 ad ci2 = ci;
363 1.1 ad do {
364 1.6 ad ci2->ci_sibling[CPUREL_PACKAGE1ST] =
365 1.6 ad ci->ci_sibling[CPUREL_PACKAGE1ST];
366 1.6 ad ci2->ci_nsibling[CPUREL_PACKAGE1ST] =
367 1.6 ad ci->ci_nsibling[CPUREL_PACKAGE1ST];
368 1.6 ad ci2 = ci2->ci_sibling[CPUREL_PACKAGE];
369 1.1 ad } while (ci2 != ci);
370 1.6 ad ci = ci->ci_sibling[CPUREL_PACKAGE1ST];
371 1.6 ad } while (ci != ci3);
372 1.6 ad
373 1.6 ad if (cpu_topology_haveslow) {
374 1.6 ad /*
375 1.6 ad * For assymmetric systems where some CPUs are slower than
376 1.6 ad * others, mark first class CPUs for the scheduler. This
377 1.6 ad * conflicts with SMT right now so whinge if observed.
378 1.6 ad */
379 1.6 ad if (curcpu()->ci_nsibling[CPUREL_CORE] == 1) {
380 1.6 ad printf("cpu_topology_init: asymmetric & SMT??\n");
381 1.6 ad }
382 1.6 ad for (CPU_INFO_FOREACH(cii, ci)) {
383 1.6 ad if (!ci->ci_is_slow) {
384 1.6 ad ci->ci_schedstate.spc_flags |= SPCF_1STCLASS;
385 1.6 ad }
386 1.6 ad }
387 1.6 ad } else {
388 1.6 ad /*
389 1.6 ad * For any other configuration mark the 1st CPU in each
390 1.6 ad * core as a first class CPU.
391 1.6 ad */
392 1.6 ad for (CPU_INFO_FOREACH(cii, ci)) {
393 1.6 ad if ((ci->ci_schedstate.spc_flags & SPCF_CORE1ST) != 0) {
394 1.6 ad ci->ci_schedstate.spc_flags |= SPCF_1STCLASS;
395 1.6 ad }
396 1.6 ad }
397 1.1 ad }
398 1.6 ad
399 1.6 ad cpu_topology_dump();
400 1.1 ad }
401 1.1 ad
402 1.1 ad /*
403 1.1 ad * Adjust one count, for a counter that's NOT updated from interrupt
404 1.1 ad * context. Hardly worth making an inline due to preemption stuff.
405 1.1 ad */
406 1.1 ad void
407 1.1 ad cpu_count(enum cpu_count idx, int64_t delta)
408 1.1 ad {
409 1.1 ad lwp_t *l = curlwp;
410 1.1 ad KPREEMPT_DISABLE(l);
411 1.1 ad l->l_cpu->ci_counts[idx] += delta;
412 1.1 ad KPREEMPT_ENABLE(l);
413 1.1 ad }
414 1.1 ad
415 1.1 ad /*
416 1.1 ad * Fetch fresh sum total for all counts. Expensive - don't call often.
417 1.1 ad */
418 1.1 ad void
419 1.1 ad cpu_count_sync_all(void)
420 1.1 ad {
421 1.1 ad CPU_INFO_ITERATOR cii;
422 1.1 ad struct cpu_info *ci;
423 1.1 ad int64_t sum[CPU_COUNT_MAX], *ptr;
424 1.1 ad enum cpu_count i;
425 1.1 ad int s;
426 1.1 ad
427 1.1 ad KASSERT(sizeof(ci->ci_counts) == sizeof(cpu_counts));
428 1.1 ad
429 1.1 ad if (__predict_true(mp_online)) {
430 1.1 ad memset(sum, 0, sizeof(sum));
431 1.1 ad /*
432 1.1 ad * We want this to be reasonably quick, so any value we get
433 1.1 ad * isn't totally out of whack, so don't let the current LWP
434 1.1 ad * get preempted.
435 1.1 ad */
436 1.1 ad s = splvm();
437 1.1 ad curcpu()->ci_counts[CPU_COUNT_SYNC_ALL]++;
438 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
439 1.1 ad ptr = ci->ci_counts;
440 1.1 ad for (i = 0; i < CPU_COUNT_MAX; i += 8) {
441 1.1 ad sum[i+0] += ptr[i+0];
442 1.1 ad sum[i+1] += ptr[i+1];
443 1.1 ad sum[i+2] += ptr[i+2];
444 1.1 ad sum[i+3] += ptr[i+3];
445 1.1 ad sum[i+4] += ptr[i+4];
446 1.1 ad sum[i+5] += ptr[i+5];
447 1.1 ad sum[i+6] += ptr[i+6];
448 1.1 ad sum[i+7] += ptr[i+7];
449 1.1 ad }
450 1.1 ad KASSERT(i == CPU_COUNT_MAX);
451 1.1 ad }
452 1.1 ad memcpy(cpu_counts, sum, sizeof(cpu_counts));
453 1.1 ad splx(s);
454 1.1 ad } else {
455 1.1 ad memcpy(cpu_counts, curcpu()->ci_counts, sizeof(cpu_counts));
456 1.1 ad }
457 1.1 ad }
458 1.1 ad
459 1.1 ad /*
460 1.1 ad * Fetch a fresh sum total for one single count. Expensive - don't call often.
461 1.1 ad */
462 1.1 ad int64_t
463 1.1 ad cpu_count_sync(enum cpu_count count)
464 1.1 ad {
465 1.1 ad CPU_INFO_ITERATOR cii;
466 1.1 ad struct cpu_info *ci;
467 1.1 ad int64_t sum;
468 1.1 ad int s;
469 1.1 ad
470 1.1 ad if (__predict_true(mp_online)) {
471 1.1 ad s = splvm();
472 1.1 ad curcpu()->ci_counts[CPU_COUNT_SYNC_ONE]++;
473 1.1 ad sum = 0;
474 1.1 ad for (CPU_INFO_FOREACH(cii, ci)) {
475 1.1 ad sum += ci->ci_counts[count];
476 1.1 ad }
477 1.1 ad splx(s);
478 1.1 ad } else {
479 1.1 ad /* XXX Early boot, iterator might not be available. */
480 1.1 ad sum = curcpu()->ci_counts[count];
481 1.1 ad }
482 1.1 ad return cpu_counts[count] = sum;
483 1.1 ad }
484