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1 | /* | |
2 | * Copyright (c) 2012 Apple Inc. All rights reserved. | |
3 | * | |
4 | * @APPLE_OSREFERENCE_LICENSE_HEADER_START@ | |
5 | * | |
6 | * This file contains Original Code and/or Modifications of Original Code | |
7 | * as defined in and that are subject to the Apple Public Source License | |
8 | * Version 2.0 (the 'License'). You may not use this file except in | |
9 | * compliance with the License. The rights granted to you under the License | |
10 | * may not be used to create, or enable the creation or redistribution of, | |
11 | * unlawful or unlicensed copies of an Apple operating system, or to | |
12 | * circumvent, violate, or enable the circumvention or violation of, any | |
13 | * terms of an Apple operating system software license agreement. | |
14 | * | |
15 | * Please obtain a copy of the License at | |
16 | * http://www.opensource.apple.com/apsl/ and read it before using this file. | |
17 | * | |
18 | * The Original Code and all software distributed under the License are | |
19 | * distributed on an 'AS IS' basis, WITHOUT WARRANTY OF ANY KIND, EITHER | |
20 | * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES, | |
21 | * INCLUDING WITHOUT LIMITATION, ANY WARRANTIES OF MERCHANTABILITY, | |
22 | * FITNESS FOR A PARTICULAR PURPOSE, QUIET ENJOYMENT OR NON-INFRINGEMENT. | |
23 | * Please see the License for the specific language governing rights and | |
24 | * limitations under the License. | |
25 | * | |
26 | * @APPLE_OSREFERENCE_LICENSE_HEADER_END@ | |
27 | */ | |
28 | ||
29 | #include <mach/mach_types.h> | |
30 | #include <machine/machine_routines.h> | |
31 | #include <kern/processor.h> | |
32 | #include <kern/kalloc.h> | |
33 | #include <sys/errno.h> | |
34 | #include <kperf/buffer.h> | |
35 | #include <kern/thread.h> | |
36 | ||
37 | #include <kern/kpc.h> | |
38 | ||
39 | #include <kperf/kperf.h> | |
40 | #include <kperf/sample.h> | |
41 | #include <kperf/context.h> | |
42 | #include <kperf/action.h> | |
43 | ||
44 | #include <chud/chud_xnu.h> | |
45 | ||
46 | uint32_t kpc_actionid[KPC_MAX_COUNTERS]; | |
47 | ||
48 | #define COUNTERBUF_SIZE_PER_CPU (KPC_MAX_COUNTERS * sizeof(uint64_t)) | |
49 | #define COUNTERBUF_SIZE (machine_info.logical_cpu_max * \ | |
50 | COUNTERBUF_SIZE_PER_CPU) | |
51 | ||
52 | /* locks */ | |
53 | static lck_grp_attr_t *kpc_config_lckgrp_attr = NULL; | |
54 | static lck_grp_t *kpc_config_lckgrp = NULL; | |
55 | static lck_mtx_t kpc_config_lock; | |
56 | ||
57 | /* state specifying if all counters have been requested by kperf */ | |
58 | static boolean_t force_all_ctrs = FALSE; | |
59 | ||
60 | /* power manager */ | |
61 | static kpc_pm_handler_t kpc_pm_handler; | |
62 | static boolean_t kpc_pm_has_custom_config; | |
63 | static uint64_t kpc_pm_pmc_mask; | |
64 | ||
65 | void kpc_common_init(void); | |
66 | void | |
67 | kpc_common_init(void) | |
68 | { | |
69 | kpc_config_lckgrp_attr = lck_grp_attr_alloc_init(); | |
70 | kpc_config_lckgrp = lck_grp_alloc_init("kpc", kpc_config_lckgrp_attr); | |
71 | lck_mtx_init(&kpc_config_lock, kpc_config_lckgrp, LCK_ATTR_NULL); | |
72 | } | |
73 | ||
74 | boolean_t | |
75 | kpc_register_cpu(struct cpu_data *cpu_data) | |
76 | { | |
77 | assert(cpu_data); | |
78 | assert(cpu_data->cpu_kpc_buf[0] == NULL); | |
79 | assert(cpu_data->cpu_kpc_buf[1] == NULL); | |
80 | assert(cpu_data->cpu_kpc_shadow == NULL); | |
81 | assert(cpu_data->cpu_kpc_reload == NULL); | |
82 | ||
83 | /* | |
84 | * Buffers allocated through kpc_counterbuf_alloc() are large enough to | |
85 | * store all PMCs values from all CPUs. This mimics the userspace API. | |
86 | * This does not suit well with the per-CPU kpc buffers, since: | |
87 | * 1. Buffers don't need to be this large. | |
88 | * 2. The actual number of CPUs is not known at this point. | |
89 | * | |
90 | * CPUs are asked to callout into kpc when being registered, we'll | |
91 | * allocate the memory here. | |
92 | */ | |
93 | ||
94 | if ((cpu_data->cpu_kpc_buf[0] = kalloc(COUNTERBUF_SIZE_PER_CPU)) == NULL) | |
95 | goto error; | |
96 | if ((cpu_data->cpu_kpc_buf[1] = kalloc(COUNTERBUF_SIZE_PER_CPU)) == NULL) | |
97 | goto error; | |
98 | if ((cpu_data->cpu_kpc_shadow = kalloc(COUNTERBUF_SIZE_PER_CPU)) == NULL) | |
99 | goto error; | |
100 | if ((cpu_data->cpu_kpc_reload = kalloc(COUNTERBUF_SIZE_PER_CPU)) == NULL) | |
101 | goto error; | |
102 | ||
103 | memset(cpu_data->cpu_kpc_buf[0], 0, COUNTERBUF_SIZE_PER_CPU); | |
104 | memset(cpu_data->cpu_kpc_buf[1], 0, COUNTERBUF_SIZE_PER_CPU); | |
105 | memset(cpu_data->cpu_kpc_shadow, 0, COUNTERBUF_SIZE_PER_CPU); | |
106 | memset(cpu_data->cpu_kpc_reload, 0, COUNTERBUF_SIZE_PER_CPU); | |
107 | ||
108 | /* success */ | |
109 | return TRUE; | |
110 | ||
111 | error: | |
112 | kfree(cpu_data->cpu_kpc_buf[0], COUNTERBUF_SIZE_PER_CPU); | |
113 | kfree(cpu_data->cpu_kpc_buf[1], COUNTERBUF_SIZE_PER_CPU); | |
114 | kfree(cpu_data->cpu_kpc_shadow, COUNTERBUF_SIZE_PER_CPU); | |
115 | kfree(cpu_data->cpu_kpc_reload, COUNTERBUF_SIZE_PER_CPU); | |
116 | ||
117 | return FALSE; | |
118 | } | |
119 | ||
120 | static void | |
121 | kpc_task_set_forced_all_ctrs(task_t task, boolean_t state) | |
122 | { | |
123 | assert(task); | |
124 | ||
125 | task_lock(task); | |
126 | if (state) | |
127 | task->t_chud |= TASK_KPC_FORCED_ALL_CTRS; | |
128 | else | |
129 | task->t_chud &= ~TASK_KPC_FORCED_ALL_CTRS; | |
130 | task_unlock(task); | |
131 | } | |
132 | ||
133 | static boolean_t | |
134 | kpc_task_get_forced_all_ctrs(task_t task) | |
135 | { | |
136 | assert(task); | |
137 | return task->t_chud & TASK_KPC_FORCED_ALL_CTRS ? TRUE : FALSE; | |
138 | } | |
139 | ||
140 | int | |
141 | kpc_force_all_ctrs(task_t task, int val) | |
142 | { | |
143 | boolean_t new_state = val ? TRUE : FALSE; | |
144 | boolean_t old_state = kpc_get_force_all_ctrs(); | |
145 | ||
146 | /* | |
147 | * Refuse to do the operation if the counters are already forced by | |
148 | * another task. | |
149 | */ | |
150 | if (kpc_get_force_all_ctrs() && !kpc_task_get_forced_all_ctrs(task)) | |
151 | return EACCES; | |
152 | ||
153 | /* nothing to do if the state is not changing */ | |
154 | if (old_state == new_state) | |
155 | return 0; | |
156 | ||
157 | /* notify the power manager */ | |
158 | if (kpc_pm_handler) | |
159 | kpc_pm_handler( new_state ? FALSE : TRUE ); | |
160 | ||
161 | /* update the task bits */ | |
162 | kpc_task_set_forced_all_ctrs(task, val); | |
163 | ||
164 | /* update the internal state */ | |
165 | force_all_ctrs = val; | |
166 | ||
167 | return 0; | |
168 | } | |
169 | ||
170 | int | |
171 | kpc_get_force_all_ctrs(void) | |
172 | { | |
173 | return force_all_ctrs; | |
174 | } | |
175 | ||
176 | boolean_t | |
177 | kpc_multiple_clients(void) | |
178 | { | |
179 | return kpc_pm_handler != NULL; | |
180 | } | |
181 | ||
182 | boolean_t | |
183 | kpc_controls_fixed_counters(void) | |
184 | { | |
185 | return !kpc_pm_handler || force_all_ctrs || !kpc_pm_has_custom_config; | |
186 | } | |
187 | ||
188 | boolean_t | |
189 | kpc_controls_counter(uint32_t ctr) | |
190 | { | |
191 | uint64_t pmc_mask = 0ULL; | |
192 | ||
193 | assert(ctr < (kpc_fixed_count() + kpc_configurable_count())); | |
194 | ||
195 | if (ctr < kpc_fixed_count()) | |
196 | return kpc_controls_fixed_counters(); | |
197 | ||
198 | /* | |
199 | * By default kpc manages all PMCs, but if the Power Manager registered | |
200 | * with custom_config=TRUE, the Power Manager manages its reserved PMCs. | |
201 | * However, kpc takes ownership back if a task acquired all PMCs via | |
202 | * force_all_ctrs. | |
203 | */ | |
204 | pmc_mask = (1ULL << (ctr - kpc_fixed_count())); | |
205 | if ((pmc_mask & kpc_pm_pmc_mask) && kpc_pm_has_custom_config && !force_all_ctrs) | |
206 | return FALSE; | |
207 | ||
208 | return TRUE; | |
209 | } | |
210 | ||
211 | uint32_t | |
212 | kpc_get_running(void) | |
213 | { | |
214 | uint64_t pmc_mask = 0; | |
215 | uint32_t cur_state = 0; | |
216 | ||
217 | if (kpc_is_running_fixed()) | |
218 | cur_state |= KPC_CLASS_FIXED_MASK; | |
219 | ||
220 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
221 | if (kpc_is_running_configurable(pmc_mask)) | |
222 | cur_state |= KPC_CLASS_CONFIGURABLE_MASK; | |
223 | ||
224 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
225 | if ((pmc_mask != 0) && kpc_is_running_configurable(pmc_mask)) | |
226 | cur_state |= KPC_CLASS_POWER_MASK; | |
227 | ||
228 | return cur_state; | |
229 | } | |
230 | ||
231 | /* may be called from an IPI */ | |
232 | int | |
233 | kpc_get_curcpu_counters(uint32_t classes, int *curcpu, uint64_t *buf) | |
234 | { | |
235 | int enabled=0, offset=0; | |
236 | uint64_t pmc_mask = 0ULL; | |
237 | ||
238 | assert(buf); | |
239 | ||
240 | enabled = ml_set_interrupts_enabled(FALSE); | |
241 | ||
242 | /* grab counters and CPU number as close as possible */ | |
243 | if (curcpu) | |
244 | *curcpu = current_processor()->cpu_id; | |
245 | ||
246 | if (classes & KPC_CLASS_FIXED_MASK) { | |
247 | kpc_get_fixed_counters(&buf[offset]); | |
248 | offset += kpc_get_counter_count(KPC_CLASS_FIXED_MASK); | |
249 | } | |
250 | ||
251 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
252 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
253 | kpc_get_configurable_counters(&buf[offset], pmc_mask); | |
254 | offset += kpc_popcount(pmc_mask); | |
255 | } | |
256 | ||
257 | if (classes & KPC_CLASS_POWER_MASK) { | |
258 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
259 | kpc_get_configurable_counters(&buf[offset], pmc_mask); | |
260 | offset += kpc_popcount(pmc_mask); | |
261 | } | |
262 | ||
263 | ml_set_interrupts_enabled(enabled); | |
264 | ||
265 | return offset; | |
266 | } | |
267 | ||
268 | /* generic counter reading function, public api */ | |
269 | int | |
270 | kpc_get_cpu_counters(boolean_t all_cpus, uint32_t classes, | |
271 | int *curcpu, uint64_t *buf) | |
272 | { | |
273 | assert(buf); | |
274 | ||
275 | /* | |
276 | * Unlike reading the current CPU counters, reading counters from all | |
277 | * CPUs is architecture dependent. This allows kpc to make the most of | |
278 | * the platform if memory mapped registers is supported. | |
279 | */ | |
280 | if (all_cpus) | |
281 | return kpc_get_all_cpus_counters(classes, curcpu, buf); | |
282 | else | |
283 | return kpc_get_curcpu_counters(classes, curcpu, buf); | |
284 | } | |
285 | ||
286 | int | |
287 | kpc_get_shadow_counters(boolean_t all_cpus, uint32_t classes, | |
288 | int *curcpu, uint64_t *buf) | |
289 | { | |
290 | int curcpu_id = current_processor()->cpu_id; | |
291 | uint32_t cfg_count = kpc_configurable_count(), offset = 0; | |
292 | uint64_t pmc_mask = 0ULL; | |
293 | boolean_t enabled; | |
294 | ||
295 | assert(buf); | |
296 | ||
297 | enabled = ml_set_interrupts_enabled(FALSE); | |
298 | ||
299 | curcpu_id = current_processor()->cpu_id; | |
300 | if (curcpu) | |
301 | *curcpu = curcpu_id; | |
302 | ||
303 | for (int cpu = 0; cpu < machine_info.logical_cpu_max; ++cpu) { | |
304 | /* filter if the caller did not request all cpus */ | |
305 | if (!all_cpus && (cpu != curcpu_id)) | |
306 | continue; | |
307 | ||
308 | if (classes & KPC_CLASS_FIXED_MASK) { | |
309 | uint32_t count = kpc_get_counter_count(KPC_CLASS_FIXED_MASK); | |
310 | memcpy(&buf[offset], &FIXED_SHADOW_CPU(cpu, 0), count * sizeof(uint64_t)); | |
311 | offset += count; | |
312 | } | |
313 | ||
314 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
315 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
316 | ||
317 | for (uint32_t cfg_ctr = 0; cfg_ctr < cfg_count; ++cfg_ctr) | |
318 | if ((1ULL << cfg_ctr) & pmc_mask) | |
319 | buf[offset++] = CONFIGURABLE_SHADOW_CPU(cpu, cfg_ctr); | |
320 | } | |
321 | ||
322 | if (classes & KPC_CLASS_POWER_MASK) { | |
323 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
324 | ||
325 | for (uint32_t cfg_ctr = 0; cfg_ctr < cfg_count; ++cfg_ctr) | |
326 | if ((1ULL << cfg_ctr) & pmc_mask) | |
327 | buf[offset++] = CONFIGURABLE_SHADOW_CPU(cpu, cfg_ctr); | |
328 | } | |
329 | } | |
330 | ||
331 | ml_set_interrupts_enabled(enabled); | |
332 | ||
333 | return offset; | |
334 | } | |
335 | ||
336 | uint32_t | |
337 | kpc_get_counter_count(uint32_t classes) | |
338 | { | |
339 | uint32_t count = 0; | |
340 | ||
341 | if (classes & KPC_CLASS_FIXED_MASK) | |
342 | count += kpc_fixed_count(); | |
343 | ||
344 | if (classes & (KPC_CLASS_CONFIGURABLE_MASK | KPC_CLASS_POWER_MASK)) { | |
345 | uint64_t pmc_msk = kpc_get_configurable_pmc_mask(classes); | |
346 | uint32_t pmc_cnt = kpc_popcount(pmc_msk); | |
347 | count += pmc_cnt; | |
348 | } | |
349 | ||
350 | return count; | |
351 | } | |
352 | ||
353 | uint32_t | |
354 | kpc_get_config_count(uint32_t classes) | |
355 | { | |
356 | uint32_t count = 0; | |
357 | ||
358 | if (classes & KPC_CLASS_FIXED_MASK) | |
359 | count += kpc_fixed_config_count(); | |
360 | ||
361 | if (classes & (KPC_CLASS_CONFIGURABLE_MASK | KPC_CLASS_POWER_MASK)) { | |
362 | uint64_t pmc_mask = kpc_get_configurable_pmc_mask(classes); | |
363 | count += kpc_configurable_config_count(pmc_mask); | |
364 | } | |
365 | ||
366 | if ((classes & KPC_CLASS_RAWPMU_MASK) && !kpc_multiple_clients()) | |
367 | count += kpc_rawpmu_config_count(); | |
368 | ||
369 | return count; | |
370 | } | |
371 | ||
372 | int | |
373 | kpc_get_config(uint32_t classes, kpc_config_t *current_config) | |
374 | { | |
375 | uint32_t count = 0; | |
376 | ||
377 | assert(current_config); | |
378 | ||
379 | if (classes & KPC_CLASS_FIXED_MASK) { | |
380 | kpc_get_fixed_config(¤t_config[count]); | |
381 | count += kpc_get_config_count(KPC_CLASS_FIXED_MASK); | |
382 | } | |
383 | ||
384 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
385 | uint64_t pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
386 | kpc_get_configurable_config(¤t_config[count], pmc_mask); | |
387 | count += kpc_get_config_count(KPC_CLASS_CONFIGURABLE_MASK); | |
388 | } | |
389 | ||
390 | if (classes & KPC_CLASS_POWER_MASK) { | |
391 | uint64_t pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
392 | kpc_get_configurable_config(¤t_config[count], pmc_mask); | |
393 | count += kpc_get_config_count(KPC_CLASS_POWER_MASK); | |
394 | } | |
395 | ||
396 | if (classes & KPC_CLASS_RAWPMU_MASK) | |
397 | { | |
398 | // Client shouldn't ask for config words that aren't available. | |
399 | // Most likely, they'd misinterpret the returned buffer if we | |
400 | // allowed this. | |
401 | if( kpc_multiple_clients() ) | |
402 | { | |
403 | return EPERM; | |
404 | } | |
405 | kpc_get_rawpmu_config(¤t_config[count]); | |
406 | count += kpc_get_config_count(KPC_CLASS_RAWPMU_MASK); | |
407 | } | |
408 | ||
409 | return 0; | |
410 | } | |
411 | ||
412 | int | |
413 | kpc_set_config(uint32_t classes, kpc_config_t *configv) | |
414 | { | |
415 | int ret = 0; | |
416 | struct kpc_config_remote mp_config = { | |
417 | .classes = classes, .configv = configv, | |
418 | .pmc_mask = kpc_get_configurable_pmc_mask(classes) | |
419 | }; | |
420 | ||
421 | assert(configv); | |
422 | ||
423 | /* don't allow RAWPMU configuration when sharing counters */ | |
424 | if ((classes & KPC_CLASS_RAWPMU_MASK) && kpc_multiple_clients()) { | |
425 | return EPERM; | |
426 | } | |
427 | ||
428 | /* no clients have the right to modify both classes */ | |
429 | if ((classes & (KPC_CLASS_CONFIGURABLE_MASK)) && | |
430 | (classes & (KPC_CLASS_POWER_MASK))) | |
431 | { | |
432 | return EPERM; | |
433 | } | |
434 | ||
435 | lck_mtx_lock(&kpc_config_lock); | |
436 | ||
437 | /* translate the power class for the machine layer */ | |
438 | if (classes & KPC_CLASS_POWER_MASK) | |
439 | mp_config.classes |= KPC_CLASS_CONFIGURABLE_MASK; | |
440 | ||
441 | ret = kpc_set_config_arch( &mp_config ); | |
442 | ||
443 | lck_mtx_unlock(&kpc_config_lock); | |
444 | ||
445 | return ret; | |
446 | } | |
447 | ||
448 | /* allocate a buffer large enough for all possible counters */ | |
449 | uint64_t * | |
450 | kpc_counterbuf_alloc(void) | |
451 | { | |
452 | uint64_t *buf = NULL; | |
453 | ||
454 | buf = kalloc(COUNTERBUF_SIZE); | |
455 | if (buf) { | |
456 | bzero(buf, COUNTERBUF_SIZE); | |
457 | } | |
458 | ||
459 | return buf; | |
460 | } | |
461 | ||
462 | void | |
463 | kpc_counterbuf_free(uint64_t *buf) | |
464 | { | |
465 | if (buf) { | |
466 | kfree(buf, COUNTERBUF_SIZE); | |
467 | } | |
468 | } | |
469 | ||
470 | void | |
471 | kpc_sample_kperf(uint32_t actionid) | |
472 | { | |
473 | struct kperf_sample sbuf; | |
474 | struct kperf_context ctx; | |
475 | task_t task = NULL; | |
476 | int r; | |
477 | ||
478 | BUF_DATA1(PERF_KPC_HNDLR | DBG_FUNC_START, 0); | |
479 | ||
480 | ctx.cur_pid = 0; | |
481 | ctx.cur_thread = current_thread(); | |
482 | ||
483 | task = chudxnu_task_for_thread(ctx.cur_thread); | |
484 | if (task) | |
485 | ctx.cur_pid = chudxnu_pid_for_task(task); | |
486 | ||
487 | ctx.trigger_type = TRIGGER_TYPE_PMI; | |
488 | ctx.trigger_id = 0; | |
489 | ||
490 | r = kperf_sample(&sbuf, &ctx, actionid, SAMPLE_FLAG_PEND_USER); | |
491 | ||
492 | BUF_INFO1(PERF_KPC_HNDLR | DBG_FUNC_END, r); | |
493 | } | |
494 | ||
495 | ||
496 | int | |
497 | kpc_set_period(uint32_t classes, uint64_t *val) | |
498 | { | |
499 | struct kpc_config_remote mp_config = { | |
500 | .classes = classes, .configv = val, | |
501 | .pmc_mask = kpc_get_configurable_pmc_mask(classes) | |
502 | }; | |
503 | ||
504 | assert(val); | |
505 | ||
506 | /* no clients have the right to modify both classes */ | |
507 | if ((classes & (KPC_CLASS_CONFIGURABLE_MASK)) && | |
508 | (classes & (KPC_CLASS_POWER_MASK))) | |
509 | { | |
510 | return EPERM; | |
511 | } | |
512 | ||
513 | lck_mtx_lock(&kpc_config_lock); | |
514 | ||
515 | #ifdef FIXED_COUNTER_SHADOW | |
516 | if ((classes & KPC_CLASS_FIXED_MASK) && !kpc_controls_fixed_counters()) { | |
517 | lck_mtx_unlock(&kpc_config_lock); | |
518 | return EPERM; | |
519 | } | |
520 | # else | |
521 | if (classes & KPC_CLASS_FIXED_MASK) { | |
522 | lck_mtx_unlock(&kpc_config_lock); | |
523 | return EINVAL; | |
524 | } | |
525 | #endif | |
526 | ||
527 | /* translate the power class for the machine layer */ | |
528 | if (classes & KPC_CLASS_POWER_MASK) | |
529 | mp_config.classes |= KPC_CLASS_CONFIGURABLE_MASK; | |
530 | ||
531 | kprintf("setting period %u\n", classes); | |
532 | kpc_set_period_arch( &mp_config ); | |
533 | ||
534 | lck_mtx_unlock(&kpc_config_lock); | |
535 | ||
536 | return 0; | |
537 | } | |
538 | ||
539 | int | |
540 | kpc_get_period(uint32_t classes, uint64_t *val) | |
541 | { | |
542 | uint32_t count = 0 ; | |
543 | uint64_t pmc_mask = 0ULL; | |
544 | ||
545 | assert(val); | |
546 | ||
547 | lck_mtx_lock(&kpc_config_lock); | |
548 | ||
549 | if (classes & KPC_CLASS_FIXED_MASK) { | |
550 | /* convert reload values to periods */ | |
551 | count = kpc_get_counter_count(KPC_CLASS_FIXED_MASK); | |
552 | for (uint32_t i = 0; i < count; ++i) | |
553 | *val++ = kpc_fixed_max() - FIXED_RELOAD(i); | |
554 | } | |
555 | ||
556 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
557 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
558 | ||
559 | /* convert reload values to periods */ | |
560 | count = kpc_configurable_count(); | |
561 | for (uint32_t i = 0; i < count; ++i) | |
562 | if ((1ULL << i) & pmc_mask) | |
563 | *val++ = kpc_configurable_max() - CONFIGURABLE_RELOAD(i); | |
564 | } | |
565 | ||
566 | if (classes & KPC_CLASS_POWER_MASK) { | |
567 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
568 | ||
569 | /* convert reload values to periods */ | |
570 | count = kpc_configurable_count(); | |
571 | for (uint32_t i = 0; i < count; ++i) | |
572 | if ((1ULL << i) & pmc_mask) | |
573 | *val++ = kpc_configurable_max() - CONFIGURABLE_RELOAD(i); | |
574 | } | |
575 | ||
576 | lck_mtx_unlock(&kpc_config_lock); | |
577 | ||
578 | return 0; | |
579 | } | |
580 | ||
581 | int | |
582 | kpc_set_actionid(uint32_t classes, uint32_t *val) | |
583 | { | |
584 | uint32_t count = 0; | |
585 | uint64_t pmc_mask = 0ULL; | |
586 | ||
587 | assert(val); | |
588 | ||
589 | /* NOTE: what happens if a pmi occurs while actionids are being | |
590 | * set is undefined. */ | |
591 | lck_mtx_lock(&kpc_config_lock); | |
592 | ||
593 | if (classes & KPC_CLASS_FIXED_MASK) { | |
594 | count = kpc_get_counter_count(KPC_CLASS_FIXED_MASK); | |
595 | memcpy(&FIXED_ACTIONID(0), val, count*sizeof(uint32_t)); | |
596 | val += count; | |
597 | } | |
598 | ||
599 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
600 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
601 | ||
602 | count = kpc_configurable_count(); | |
603 | for (uint32_t i = 0; i < count; ++i) | |
604 | if ((1ULL << i) & pmc_mask) | |
605 | CONFIGURABLE_ACTIONID(i) = *val++; | |
606 | } | |
607 | ||
608 | if (classes & KPC_CLASS_POWER_MASK) { | |
609 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
610 | ||
611 | count = kpc_configurable_count(); | |
612 | for (uint32_t i = 0; i < count; ++i) | |
613 | if ((1ULL << i) & pmc_mask) | |
614 | CONFIGURABLE_ACTIONID(i) = *val++; | |
615 | } | |
616 | ||
617 | lck_mtx_unlock(&kpc_config_lock); | |
618 | ||
619 | return 0; | |
620 | } | |
621 | ||
622 | int kpc_get_actionid(uint32_t classes, uint32_t *val) | |
623 | { | |
624 | uint32_t count = 0; | |
625 | uint64_t pmc_mask = 0ULL; | |
626 | ||
627 | assert(val); | |
628 | ||
629 | lck_mtx_lock(&kpc_config_lock); | |
630 | ||
631 | if (classes & KPC_CLASS_FIXED_MASK) { | |
632 | count = kpc_get_counter_count(KPC_CLASS_FIXED_MASK); | |
633 | memcpy(val, &FIXED_ACTIONID(0), count*sizeof(uint32_t)); | |
634 | val += count; | |
635 | } | |
636 | ||
637 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
638 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_CONFIGURABLE_MASK); | |
639 | ||
640 | count = kpc_configurable_count(); | |
641 | for (uint32_t i = 0; i < count; ++i) | |
642 | if ((1ULL << i) & pmc_mask) | |
643 | *val++ = CONFIGURABLE_ACTIONID(i); | |
644 | } | |
645 | ||
646 | if (classes & KPC_CLASS_POWER_MASK) { | |
647 | pmc_mask = kpc_get_configurable_pmc_mask(KPC_CLASS_POWER_MASK); | |
648 | ||
649 | count = kpc_configurable_count(); | |
650 | for (uint32_t i = 0; i < count; ++i) | |
651 | if ((1ULL << i) & pmc_mask) | |
652 | *val++ = CONFIGURABLE_ACTIONID(i); | |
653 | } | |
654 | ||
655 | lck_mtx_unlock(&kpc_config_lock); | |
656 | ||
657 | return 0; | |
658 | ||
659 | } | |
660 | ||
661 | int | |
662 | kpc_set_running(uint32_t classes) | |
663 | { | |
664 | uint32_t all_cfg_classes = KPC_CLASS_CONFIGURABLE_MASK | KPC_CLASS_POWER_MASK; | |
665 | struct kpc_running_remote mp_config = { | |
666 | .classes = classes, .cfg_target_mask= 0ULL, .cfg_state_mask = 0ULL | |
667 | }; | |
668 | ||
669 | /* target all available PMCs */ | |
670 | mp_config.cfg_target_mask = kpc_get_configurable_pmc_mask(all_cfg_classes); | |
671 | ||
672 | /* translate the power class for the machine layer */ | |
673 | if (classes & KPC_CLASS_POWER_MASK) | |
674 | mp_config.classes |= KPC_CLASS_CONFIGURABLE_MASK; | |
675 | ||
676 | /* generate the state of each configurable PMCs */ | |
677 | mp_config.cfg_state_mask = kpc_get_configurable_pmc_mask(classes); | |
678 | ||
679 | return kpc_set_running_arch(&mp_config); | |
680 | } | |
681 | ||
682 | boolean_t | |
683 | kpc_register_pm_handler(kpc_pm_handler_t handler) | |
684 | { | |
685 | return kpc_reserve_pm_counters(0x38, handler, TRUE); | |
686 | } | |
687 | ||
688 | boolean_t | |
689 | kpc_reserve_pm_counters(uint64_t pmc_mask, kpc_pm_handler_t handler, | |
690 | boolean_t custom_config) | |
691 | { | |
692 | uint64_t all_mask = (1ULL << kpc_configurable_count()) - 1; | |
693 | uint64_t req_mask = 0ULL; | |
694 | ||
695 | /* pre-condition */ | |
696 | assert(handler != NULL); | |
697 | assert(kpc_pm_handler == NULL); | |
698 | ||
699 | /* check number of counters requested */ | |
700 | req_mask = (pmc_mask & all_mask); | |
701 | assert(kpc_popcount(req_mask) <= kpc_configurable_count()); | |
702 | ||
703 | /* save the power manager states */ | |
704 | kpc_pm_has_custom_config = custom_config; | |
705 | kpc_pm_pmc_mask = req_mask; | |
706 | kpc_pm_handler = handler; | |
707 | ||
708 | printf("kpc: pm registered pmc_mask=%llx custom_config=%d\n", | |
709 | req_mask, custom_config); | |
710 | ||
711 | /* post-condition */ | |
712 | { | |
713 | uint32_t cfg_count = kpc_get_counter_count(KPC_CLASS_CONFIGURABLE_MASK); | |
714 | uint32_t pwr_count = kpc_popcount(kpc_pm_pmc_mask); | |
715 | #pragma unused(cfg_count, pwr_count) | |
716 | assert((cfg_count + pwr_count) == kpc_configurable_count()); | |
717 | } | |
718 | ||
719 | return force_all_ctrs ? FALSE : TRUE; | |
720 | } | |
721 | ||
722 | void | |
723 | kpc_release_pm_counters(void) | |
724 | { | |
725 | /* pre-condition */ | |
726 | assert(kpc_pm_handler != NULL); | |
727 | ||
728 | /* release the counters */ | |
729 | kpc_pm_has_custom_config = FALSE; | |
730 | kpc_pm_pmc_mask = 0ULL; | |
731 | kpc_pm_handler = NULL; | |
732 | ||
733 | printf("kpc: pm released counters\n"); | |
734 | ||
735 | /* post-condition */ | |
736 | assert(kpc_get_counter_count(KPC_CLASS_CONFIGURABLE_MASK) == kpc_configurable_count()); | |
737 | } | |
738 | ||
739 | uint8_t | |
740 | kpc_popcount(uint64_t value) | |
741 | { | |
742 | return __builtin_popcountll(value); | |
743 | } | |
744 | ||
745 | uint64_t | |
746 | kpc_get_configurable_pmc_mask(uint32_t classes) | |
747 | { | |
748 | uint32_t configurable_count = kpc_configurable_count(); | |
749 | uint64_t cfg_mask = 0ULL, pwr_mask = 0ULL, all_cfg_pmcs_mask = 0ULL; | |
750 | ||
751 | /* not configurable classes or no configurable counters */ | |
752 | if (((classes & (KPC_CLASS_CONFIGURABLE_MASK | KPC_CLASS_POWER_MASK)) == 0) || | |
753 | (configurable_count == 0)) | |
754 | { | |
755 | goto exit; | |
756 | } | |
757 | ||
758 | assert(configurable_count < 64); | |
759 | all_cfg_pmcs_mask = (1ULL << configurable_count) - 1; | |
760 | ||
761 | if (classes & KPC_CLASS_CONFIGURABLE_MASK) { | |
762 | if (force_all_ctrs == TRUE) | |
763 | cfg_mask |= all_cfg_pmcs_mask; | |
764 | else | |
765 | cfg_mask |= (~kpc_pm_pmc_mask) & all_cfg_pmcs_mask; | |
766 | } | |
767 | ||
768 | /* | |
769 | * The power class exists iff: | |
770 | * - No tasks acquired all PMCs | |
771 | * - PM registered and uses kpc to interact with PMCs | |
772 | */ | |
773 | if ((force_all_ctrs == FALSE) && | |
774 | (kpc_pm_handler != NULL) && | |
775 | (kpc_pm_has_custom_config == FALSE) && | |
776 | (classes & KPC_CLASS_POWER_MASK)) | |
777 | { | |
778 | pwr_mask |= kpc_pm_pmc_mask & all_cfg_pmcs_mask; | |
779 | } | |
780 | ||
781 | exit: | |
782 | /* post-conditions */ | |
783 | assert( ((cfg_mask | pwr_mask) & (~all_cfg_pmcs_mask)) == 0 ); | |
784 | assert( kpc_popcount(cfg_mask | pwr_mask) <= kpc_configurable_count() ); | |
785 | assert( (cfg_mask & pwr_mask) == 0ULL ); | |
786 | ||
787 | return cfg_mask | pwr_mask; | |
788 | } | |
789 |