xref: /linux/tools/perf/builtin-stat.c (revision f4f346c3465949ebba80c6cc52cd8d2eeaa545fd)
1 // SPDX-License-Identifier: GPL-2.0-only
2 /*
3  * builtin-stat.c
4  *
5  * Builtin stat command: Give a precise performance counters summary
6  * overview about any workload, CPU or specific PID.
7  *
8  * Sample output:
9 
10    $ perf stat ./hackbench 10
11 
12   Time: 0.118
13 
14   Performance counter stats for './hackbench 10':
15 
16        1708.761321 task-clock                #   11.037 CPUs utilized
17             41,190 context-switches          #    0.024 M/sec
18              6,735 CPU-migrations            #    0.004 M/sec
19             17,318 page-faults               #    0.010 M/sec
20      5,205,202,243 cycles                    #    3.046 GHz
21      3,856,436,920 stalled-cycles-frontend   #   74.09% frontend cycles idle
22      1,600,790,871 stalled-cycles-backend    #   30.75% backend  cycles idle
23      2,603,501,247 instructions              #    0.50  insns per cycle
24                                              #    1.48  stalled cycles per insn
25        484,357,498 branches                  #  283.455 M/sec
26          6,388,934 branch-misses             #    1.32% of all branches
27 
28         0.154822978  seconds time elapsed
29 
30  *
31  * Copyright (C) 2008-2011, Red Hat Inc, Ingo Molnar <mingo@redhat.com>
32  *
33  * Improvements and fixes by:
34  *
35  *   Arjan van de Ven <arjan@linux.intel.com>
36  *   Yanmin Zhang <yanmin.zhang@intel.com>
37  *   Wu Fengguang <fengguang.wu@intel.com>
38  *   Mike Galbraith <efault@gmx.de>
39  *   Paul Mackerras <paulus@samba.org>
40  *   Jaswinder Singh Rajput <jaswinder@kernel.org>
41  */
42 
43 #include "builtin.h"
44 #include "util/cgroup.h"
45 #include <subcmd/parse-options.h>
46 #include "util/parse-events.h"
47 #include "util/pmus.h"
48 #include "util/pmu.h"
49 #include "util/tool_pmu.h"
50 #include "util/event.h"
51 #include "util/evlist.h"
52 #include "util/evsel.h"
53 #include "util/debug.h"
54 #include "util/color.h"
55 #include "util/stat.h"
56 #include "util/header.h"
57 #include "util/cpumap.h"
58 #include "util/thread_map.h"
59 #include "util/counts.h"
60 #include "util/topdown.h"
61 #include "util/session.h"
62 #include "util/tool.h"
63 #include "util/string2.h"
64 #include "util/metricgroup.h"
65 #include "util/synthetic-events.h"
66 #include "util/target.h"
67 #include "util/time-utils.h"
68 #include "util/top.h"
69 #include "util/affinity.h"
70 #include "util/pfm.h"
71 #include "util/bpf_counter.h"
72 #include "util/iostat.h"
73 #include "util/util.h"
74 #include "util/intel-tpebs.h"
75 #include "asm/bug.h"
76 
77 #include <linux/time64.h>
78 #include <linux/zalloc.h>
79 #include <api/fs/fs.h>
80 #include <errno.h>
81 #include <signal.h>
82 #include <stdlib.h>
83 #include <sys/prctl.h>
84 #include <inttypes.h>
85 #include <locale.h>
86 #include <math.h>
87 #include <sys/types.h>
88 #include <sys/stat.h>
89 #include <sys/wait.h>
90 #include <unistd.h>
91 #include <sys/time.h>
92 #include <sys/resource.h>
93 #include <linux/err.h>
94 
95 #include <linux/ctype.h>
96 #include <perf/evlist.h>
97 #include <internal/threadmap.h>
98 
99 #define DEFAULT_SEPARATOR	" "
100 #define FREEZE_ON_SMI_PATH	"bus/event_source/devices/cpu/freeze_on_smi"
101 
102 static void print_counters(struct timespec *ts, int argc, const char **argv);
103 
104 static struct evlist	*evsel_list;
105 static struct parse_events_option_args parse_events_option_args = {
106 	.evlistp = &evsel_list,
107 };
108 
109 static bool all_counters_use_bpf = true;
110 
111 static struct target target;
112 
113 static volatile sig_atomic_t	child_pid			= -1;
114 static int			detailed_run			=  0;
115 static bool			transaction_run;
116 static bool			topdown_run			= false;
117 static bool			smi_cost			= false;
118 static bool			smi_reset			= false;
119 static int			big_num_opt			=  -1;
120 static const char		*pre_cmd			= NULL;
121 static const char		*post_cmd			= NULL;
122 static bool			sync_run			= false;
123 static bool			forever				= false;
124 static bool			force_metric_only		= false;
125 static struct timespec		ref_time;
126 static bool			append_file;
127 static bool			interval_count;
128 static const char		*output_name;
129 static int			output_fd;
130 static char			*metrics;
131 
132 struct perf_stat {
133 	bool			 record;
134 	struct perf_data	 data;
135 	struct perf_session	*session;
136 	u64			 bytes_written;
137 	struct perf_tool	 tool;
138 	bool			 maps_allocated;
139 	struct perf_cpu_map	*cpus;
140 	struct perf_thread_map *threads;
141 	enum aggr_mode		 aggr_mode;
142 	u32			 aggr_level;
143 };
144 
145 static struct perf_stat		perf_stat;
146 #define STAT_RECORD		perf_stat.record
147 
148 static volatile sig_atomic_t done = 0;
149 
150 /* Options set from the command line. */
151 struct opt_aggr_mode {
152 	bool node, socket, die, cluster, cache, core, thread, no_aggr;
153 };
154 
155 /* Turn command line option into most generic aggregation mode setting. */
opt_aggr_mode_to_aggr_mode(struct opt_aggr_mode * opt_mode)156 static enum aggr_mode opt_aggr_mode_to_aggr_mode(struct opt_aggr_mode *opt_mode)
157 {
158 	enum aggr_mode mode = AGGR_GLOBAL;
159 
160 	if (opt_mode->node)
161 		mode = AGGR_NODE;
162 	if (opt_mode->socket)
163 		mode = AGGR_SOCKET;
164 	if (opt_mode->die)
165 		mode = AGGR_DIE;
166 	if (opt_mode->cluster)
167 		mode = AGGR_CLUSTER;
168 	if (opt_mode->cache)
169 		mode = AGGR_CACHE;
170 	if (opt_mode->core)
171 		mode = AGGR_CORE;
172 	if (opt_mode->thread)
173 		mode = AGGR_THREAD;
174 	if (opt_mode->no_aggr)
175 		mode = AGGR_NONE;
176 	return mode;
177 }
178 
evlist__check_cpu_maps(struct evlist * evlist)179 static void evlist__check_cpu_maps(struct evlist *evlist)
180 {
181 	struct evsel *evsel, *warned_leader = NULL;
182 
183 	evlist__for_each_entry(evlist, evsel) {
184 		struct evsel *leader = evsel__leader(evsel);
185 
186 		/* Check that leader matches cpus with each member. */
187 		if (leader == evsel)
188 			continue;
189 		if (perf_cpu_map__equal(leader->core.cpus, evsel->core.cpus))
190 			continue;
191 
192 		/* If there's mismatch disable the group and warn user. */
193 		if (warned_leader != leader) {
194 			char buf[200];
195 
196 			pr_warning("WARNING: grouped events cpus do not match.\n"
197 				"Events with CPUs not matching the leader will "
198 				"be removed from the group.\n");
199 			evsel__group_desc(leader, buf, sizeof(buf));
200 			pr_warning("  %s\n", buf);
201 			warned_leader = leader;
202 		}
203 		if (verbose > 0) {
204 			char buf[200];
205 
206 			cpu_map__snprint(leader->core.cpus, buf, sizeof(buf));
207 			pr_warning("     %s: %s\n", leader->name, buf);
208 			cpu_map__snprint(evsel->core.cpus, buf, sizeof(buf));
209 			pr_warning("     %s: %s\n", evsel->name, buf);
210 		}
211 
212 		evsel__remove_from_group(evsel, leader);
213 	}
214 }
215 
diff_timespec(struct timespec * r,struct timespec * a,struct timespec * b)216 static inline void diff_timespec(struct timespec *r, struct timespec *a,
217 				 struct timespec *b)
218 {
219 	r->tv_sec = a->tv_sec - b->tv_sec;
220 	if (a->tv_nsec < b->tv_nsec) {
221 		r->tv_nsec = a->tv_nsec + NSEC_PER_SEC - b->tv_nsec;
222 		r->tv_sec--;
223 	} else {
224 		r->tv_nsec = a->tv_nsec - b->tv_nsec ;
225 	}
226 }
227 
perf_stat__reset_stats(void)228 static void perf_stat__reset_stats(void)
229 {
230 	evlist__reset_stats(evsel_list);
231 	perf_stat__reset_shadow_stats();
232 }
233 
process_synthesized_event(const struct perf_tool * tool __maybe_unused,union perf_event * event,struct perf_sample * sample __maybe_unused,struct machine * machine __maybe_unused)234 static int process_synthesized_event(const struct perf_tool *tool __maybe_unused,
235 				     union perf_event *event,
236 				     struct perf_sample *sample __maybe_unused,
237 				     struct machine *machine __maybe_unused)
238 {
239 	if (perf_data__write(&perf_stat.data, event, event->header.size) < 0) {
240 		pr_err("failed to write perf data, error: %m\n");
241 		return -1;
242 	}
243 
244 	perf_stat.bytes_written += event->header.size;
245 	return 0;
246 }
247 
write_stat_round_event(u64 tm,u64 type)248 static int write_stat_round_event(u64 tm, u64 type)
249 {
250 	return perf_event__synthesize_stat_round(NULL, tm, type,
251 						 process_synthesized_event,
252 						 NULL);
253 }
254 
255 #define WRITE_STAT_ROUND_EVENT(time, interval) \
256 	write_stat_round_event(time, PERF_STAT_ROUND_TYPE__ ## interval)
257 
258 #define SID(e, x, y) xyarray__entry(e->core.sample_id, x, y)
259 
evsel__write_stat_event(struct evsel * counter,int cpu_map_idx,u32 thread,struct perf_counts_values * count)260 static int evsel__write_stat_event(struct evsel *counter, int cpu_map_idx, u32 thread,
261 				   struct perf_counts_values *count)
262 {
263 	struct perf_sample_id *sid = SID(counter, cpu_map_idx, thread);
264 	struct perf_cpu cpu = perf_cpu_map__cpu(evsel__cpus(counter), cpu_map_idx);
265 
266 	return perf_event__synthesize_stat(NULL, cpu, thread, sid->id, count,
267 					   process_synthesized_event, NULL);
268 }
269 
read_single_counter(struct evsel * counter,int cpu_map_idx,int thread)270 static int read_single_counter(struct evsel *counter, int cpu_map_idx, int thread)
271 {
272 	int err = evsel__read_counter(counter, cpu_map_idx, thread);
273 
274 	/*
275 	 * Reading user and system time will fail when the process
276 	 * terminates. Use the wait4 values in that case.
277 	 */
278 	if (err && cpu_map_idx == 0 &&
279 	    (evsel__tool_event(counter) == TOOL_PMU__EVENT_USER_TIME ||
280 	     evsel__tool_event(counter) == TOOL_PMU__EVENT_SYSTEM_TIME)) {
281 		u64 val, *start_time;
282 		struct perf_counts_values *count =
283 			perf_counts(counter->counts, cpu_map_idx, thread);
284 
285 		start_time = xyarray__entry(counter->start_times, cpu_map_idx, thread);
286 		if (evsel__tool_event(counter) == TOOL_PMU__EVENT_USER_TIME)
287 			val = ru_stats.ru_utime_usec_stat.mean;
288 		else
289 			val = ru_stats.ru_stime_usec_stat.mean;
290 		count->ena = count->run = *start_time + val;
291 		count->val = val;
292 		return 0;
293 	}
294 	return err;
295 }
296 
297 /*
298  * Read out the results of a single counter:
299  * do not aggregate counts across CPUs in system-wide mode
300  */
read_counter_cpu(struct evsel * counter,int cpu_map_idx)301 static int read_counter_cpu(struct evsel *counter, int cpu_map_idx)
302 {
303 	int nthreads = perf_thread_map__nr(evsel_list->core.threads);
304 	int thread;
305 
306 	if (!counter->supported)
307 		return -ENOENT;
308 
309 	for (thread = 0; thread < nthreads; thread++) {
310 		struct perf_counts_values *count;
311 
312 		count = perf_counts(counter->counts, cpu_map_idx, thread);
313 
314 		/*
315 		 * The leader's group read loads data into its group members
316 		 * (via evsel__read_counter()) and sets their count->loaded.
317 		 */
318 		if (!perf_counts__is_loaded(counter->counts, cpu_map_idx, thread) &&
319 		    read_single_counter(counter, cpu_map_idx, thread)) {
320 			counter->counts->scaled = -1;
321 			perf_counts(counter->counts, cpu_map_idx, thread)->ena = 0;
322 			perf_counts(counter->counts, cpu_map_idx, thread)->run = 0;
323 			return -1;
324 		}
325 
326 		perf_counts__set_loaded(counter->counts, cpu_map_idx, thread, false);
327 
328 		if (STAT_RECORD) {
329 			if (evsel__write_stat_event(counter, cpu_map_idx, thread, count)) {
330 				pr_err("failed to write stat event\n");
331 				return -1;
332 			}
333 		}
334 
335 		if (verbose > 1) {
336 			fprintf(stat_config.output,
337 				"%s: %d: %" PRIu64 " %" PRIu64 " %" PRIu64 "\n",
338 					evsel__name(counter),
339 					perf_cpu_map__cpu(evsel__cpus(counter),
340 							  cpu_map_idx).cpu,
341 					count->val, count->ena, count->run);
342 		}
343 	}
344 
345 	return 0;
346 }
347 
read_affinity_counters(void)348 static int read_affinity_counters(void)
349 {
350 	struct evlist_cpu_iterator evlist_cpu_itr;
351 	struct affinity saved_affinity, *affinity;
352 
353 	if (all_counters_use_bpf)
354 		return 0;
355 
356 	if (!target__has_cpu(&target) || target__has_per_thread(&target))
357 		affinity = NULL;
358 	else if (affinity__setup(&saved_affinity) < 0)
359 		return -1;
360 	else
361 		affinity = &saved_affinity;
362 
363 	evlist__for_each_cpu(evlist_cpu_itr, evsel_list, affinity) {
364 		struct evsel *counter = evlist_cpu_itr.evsel;
365 
366 		if (evsel__is_bpf(counter))
367 			continue;
368 
369 		if (!counter->err)
370 			counter->err = read_counter_cpu(counter, evlist_cpu_itr.cpu_map_idx);
371 	}
372 	if (affinity)
373 		affinity__cleanup(&saved_affinity);
374 
375 	return 0;
376 }
377 
read_bpf_map_counters(void)378 static int read_bpf_map_counters(void)
379 {
380 	struct evsel *counter;
381 	int err;
382 
383 	evlist__for_each_entry(evsel_list, counter) {
384 		if (!evsel__is_bpf(counter))
385 			continue;
386 
387 		err = bpf_counter__read(counter);
388 		if (err)
389 			return err;
390 	}
391 	return 0;
392 }
393 
read_counters(void)394 static int read_counters(void)
395 {
396 	if (!stat_config.stop_read_counter) {
397 		if (read_bpf_map_counters() ||
398 		    read_affinity_counters())
399 			return -1;
400 	}
401 	return 0;
402 }
403 
process_counters(void)404 static void process_counters(void)
405 {
406 	struct evsel *counter;
407 
408 	evlist__for_each_entry(evsel_list, counter) {
409 		if (counter->err)
410 			pr_debug("failed to read counter %s\n", counter->name);
411 		if (counter->err == 0 && perf_stat_process_counter(&stat_config, counter))
412 			pr_warning("failed to process counter %s\n", counter->name);
413 		counter->err = 0;
414 	}
415 
416 	perf_stat_merge_counters(&stat_config, evsel_list);
417 	perf_stat_process_percore(&stat_config, evsel_list);
418 }
419 
process_interval(void)420 static void process_interval(void)
421 {
422 	struct timespec ts, rs;
423 
424 	clock_gettime(CLOCK_MONOTONIC, &ts);
425 	diff_timespec(&rs, &ts, &ref_time);
426 
427 	evlist__reset_aggr_stats(evsel_list);
428 
429 	if (read_counters() == 0)
430 		process_counters();
431 
432 	if (STAT_RECORD) {
433 		if (WRITE_STAT_ROUND_EVENT(rs.tv_sec * NSEC_PER_SEC + rs.tv_nsec, INTERVAL))
434 			pr_err("failed to write stat round event\n");
435 	}
436 
437 	init_stats(&walltime_nsecs_stats);
438 	update_stats(&walltime_nsecs_stats, stat_config.interval * 1000000ULL);
439 	print_counters(&rs, 0, NULL);
440 }
441 
handle_interval(unsigned int interval,int * times)442 static bool handle_interval(unsigned int interval, int *times)
443 {
444 	if (interval) {
445 		process_interval();
446 		if (interval_count && !(--(*times)))
447 			return true;
448 	}
449 	return false;
450 }
451 
enable_counters(void)452 static int enable_counters(void)
453 {
454 	struct evsel *evsel;
455 	int err;
456 
457 	evlist__for_each_entry(evsel_list, evsel) {
458 		if (!evsel__is_bpf(evsel))
459 			continue;
460 
461 		err = bpf_counter__enable(evsel);
462 		if (err)
463 			return err;
464 	}
465 
466 	if (!target__enable_on_exec(&target)) {
467 		if (!all_counters_use_bpf)
468 			evlist__enable(evsel_list);
469 	}
470 	return 0;
471 }
472 
disable_counters(void)473 static void disable_counters(void)
474 {
475 	struct evsel *counter;
476 
477 	/*
478 	 * If we don't have tracee (attaching to task or cpu), counters may
479 	 * still be running. To get accurate group ratios, we must stop groups
480 	 * from counting before reading their constituent counters.
481 	 */
482 	if (!target__none(&target)) {
483 		evlist__for_each_entry(evsel_list, counter)
484 			bpf_counter__disable(counter);
485 		if (!all_counters_use_bpf)
486 			evlist__disable(evsel_list);
487 	}
488 }
489 
490 static volatile sig_atomic_t workload_exec_errno;
491 
492 /*
493  * evlist__prepare_workload will send a SIGUSR1
494  * if the fork fails, since we asked by setting its
495  * want_signal to true.
496  */
workload_exec_failed_signal(int signo __maybe_unused,siginfo_t * info,void * ucontext __maybe_unused)497 static void workload_exec_failed_signal(int signo __maybe_unused, siginfo_t *info,
498 					void *ucontext __maybe_unused)
499 {
500 	workload_exec_errno = info->si_value.sival_int;
501 }
502 
evsel__should_store_id(struct evsel * counter)503 static bool evsel__should_store_id(struct evsel *counter)
504 {
505 	return STAT_RECORD || counter->core.attr.read_format & PERF_FORMAT_ID;
506 }
507 
is_target_alive(struct target * _target,struct perf_thread_map * threads)508 static bool is_target_alive(struct target *_target,
509 			    struct perf_thread_map *threads)
510 {
511 	struct stat st;
512 	int i;
513 
514 	if (!target__has_task(_target))
515 		return true;
516 
517 	for (i = 0; i < threads->nr; i++) {
518 		char path[PATH_MAX];
519 
520 		scnprintf(path, PATH_MAX, "%s/%d", procfs__mountpoint(),
521 			  threads->map[i].pid);
522 
523 		if (!stat(path, &st))
524 			return true;
525 	}
526 
527 	return false;
528 }
529 
process_evlist(struct evlist * evlist,unsigned int interval)530 static void process_evlist(struct evlist *evlist, unsigned int interval)
531 {
532 	enum evlist_ctl_cmd cmd = EVLIST_CTL_CMD_UNSUPPORTED;
533 
534 	if (evlist__ctlfd_process(evlist, &cmd) > 0) {
535 		switch (cmd) {
536 		case EVLIST_CTL_CMD_ENABLE:
537 			fallthrough;
538 		case EVLIST_CTL_CMD_DISABLE:
539 			if (interval)
540 				process_interval();
541 			break;
542 		case EVLIST_CTL_CMD_SNAPSHOT:
543 		case EVLIST_CTL_CMD_ACK:
544 		case EVLIST_CTL_CMD_UNSUPPORTED:
545 		case EVLIST_CTL_CMD_EVLIST:
546 		case EVLIST_CTL_CMD_STOP:
547 		case EVLIST_CTL_CMD_PING:
548 		default:
549 			break;
550 		}
551 	}
552 }
553 
compute_tts(struct timespec * time_start,struct timespec * time_stop,int * time_to_sleep)554 static void compute_tts(struct timespec *time_start, struct timespec *time_stop,
555 			int *time_to_sleep)
556 {
557 	int tts = *time_to_sleep;
558 	struct timespec time_diff;
559 
560 	diff_timespec(&time_diff, time_stop, time_start);
561 
562 	tts -= time_diff.tv_sec * MSEC_PER_SEC +
563 	       time_diff.tv_nsec / NSEC_PER_MSEC;
564 
565 	if (tts < 0)
566 		tts = 0;
567 
568 	*time_to_sleep = tts;
569 }
570 
dispatch_events(bool forks,int timeout,int interval,int * times)571 static int dispatch_events(bool forks, int timeout, int interval, int *times)
572 {
573 	int child_exited = 0, status = 0;
574 	int time_to_sleep, sleep_time;
575 	struct timespec time_start, time_stop;
576 
577 	if (interval)
578 		sleep_time = interval;
579 	else if (timeout)
580 		sleep_time = timeout;
581 	else
582 		sleep_time = 1000;
583 
584 	time_to_sleep = sleep_time;
585 
586 	while (!done) {
587 		if (forks)
588 			child_exited = waitpid(child_pid, &status, WNOHANG);
589 		else
590 			child_exited = !is_target_alive(&target, evsel_list->core.threads) ? 1 : 0;
591 
592 		if (child_exited)
593 			break;
594 
595 		clock_gettime(CLOCK_MONOTONIC, &time_start);
596 		if (!(evlist__poll(evsel_list, time_to_sleep) > 0)) { /* poll timeout or EINTR */
597 			if (timeout || handle_interval(interval, times))
598 				break;
599 			time_to_sleep = sleep_time;
600 		} else { /* fd revent */
601 			process_evlist(evsel_list, interval);
602 			clock_gettime(CLOCK_MONOTONIC, &time_stop);
603 			compute_tts(&time_start, &time_stop, &time_to_sleep);
604 		}
605 	}
606 
607 	return status;
608 }
609 
610 enum counter_recovery {
611 	COUNTER_SKIP,
612 	COUNTER_RETRY,
613 	COUNTER_FATAL,
614 };
615 
stat_handle_error(struct evsel * counter)616 static enum counter_recovery stat_handle_error(struct evsel *counter)
617 {
618 	char msg[BUFSIZ];
619 	/*
620 	 * PPC returns ENXIO for HW counters until 2.6.37
621 	 * (behavior changed with commit b0a873e).
622 	 */
623 	if (errno == EINVAL || errno == ENOSYS ||
624 	    errno == ENOENT || errno == ENXIO) {
625 		if (verbose > 0)
626 			ui__warning("%s event is not supported by the kernel.\n",
627 				    evsel__name(counter));
628 		counter->supported = false;
629 		/*
630 		 * errored is a sticky flag that means one of the counter's
631 		 * cpu event had a problem and needs to be reexamined.
632 		 */
633 		counter->errored = true;
634 
635 		if ((evsel__leader(counter) != counter) ||
636 		    !(counter->core.leader->nr_members > 1))
637 			return COUNTER_SKIP;
638 	} else if (evsel__fallback(counter, &target, errno, msg, sizeof(msg))) {
639 		if (verbose > 0)
640 			ui__warning("%s\n", msg);
641 		return COUNTER_RETRY;
642 	} else if (target__has_per_thread(&target) && errno != EOPNOTSUPP &&
643 		   evsel_list->core.threads &&
644 		   evsel_list->core.threads->err_thread != -1) {
645 		/*
646 		 * For global --per-thread case, skip current
647 		 * error thread.
648 		 */
649 		if (!thread_map__remove(evsel_list->core.threads,
650 					evsel_list->core.threads->err_thread)) {
651 			evsel_list->core.threads->err_thread = -1;
652 			return COUNTER_RETRY;
653 		}
654 	} else if (counter->skippable) {
655 		if (verbose > 0)
656 			ui__warning("skipping event %s that kernel failed to open .\n",
657 				    evsel__name(counter));
658 		counter->supported = false;
659 		counter->errored = true;
660 		return COUNTER_SKIP;
661 	}
662 
663 	if (errno == EOPNOTSUPP) {
664 		if (verbose > 0) {
665 			ui__warning("%s event is not supported by the kernel.\n",
666 				    evsel__name(counter));
667 		}
668 		counter->supported = false;
669 		counter->errored = true;
670 
671 		if ((evsel__leader(counter) != counter) ||
672 		    !(counter->core.leader->nr_members > 1))
673 			return COUNTER_SKIP;
674 	}
675 
676 	evsel__open_strerror(counter, &target, errno, msg, sizeof(msg));
677 	ui__error("%s\n", msg);
678 
679 	if (child_pid != -1)
680 		kill(child_pid, SIGTERM);
681 
682 	return COUNTER_FATAL;
683 }
684 
__run_perf_stat(int argc,const char ** argv,int run_idx)685 static int __run_perf_stat(int argc, const char **argv, int run_idx)
686 {
687 	int interval = stat_config.interval;
688 	int times = stat_config.times;
689 	int timeout = stat_config.timeout;
690 	char msg[BUFSIZ];
691 	unsigned long long t0, t1;
692 	struct evsel *counter;
693 	size_t l;
694 	int status = 0;
695 	const bool forks = (argc > 0);
696 	bool is_pipe = STAT_RECORD ? perf_stat.data.is_pipe : false;
697 	struct evlist_cpu_iterator evlist_cpu_itr;
698 	struct affinity saved_affinity, *affinity = NULL;
699 	int err;
700 	bool second_pass = false;
701 
702 	if (forks) {
703 		if (evlist__prepare_workload(evsel_list, &target, argv, is_pipe, workload_exec_failed_signal) < 0) {
704 			perror("failed to prepare workload");
705 			return -1;
706 		}
707 		child_pid = evsel_list->workload.pid;
708 	}
709 
710 	if (!cpu_map__is_dummy(evsel_list->core.user_requested_cpus)) {
711 		if (affinity__setup(&saved_affinity) < 0) {
712 			err = -1;
713 			goto err_out;
714 		}
715 		affinity = &saved_affinity;
716 	}
717 
718 	evlist__for_each_entry(evsel_list, counter) {
719 		counter->reset_group = false;
720 		if (bpf_counter__load(counter, &target)) {
721 			err = -1;
722 			goto err_out;
723 		}
724 		if (!(evsel__is_bperf(counter)))
725 			all_counters_use_bpf = false;
726 	}
727 
728 	evlist__reset_aggr_stats(evsel_list);
729 
730 	evlist__for_each_cpu(evlist_cpu_itr, evsel_list, affinity) {
731 		counter = evlist_cpu_itr.evsel;
732 
733 		/*
734 		 * bperf calls evsel__open_per_cpu() in bperf__load(), so
735 		 * no need to call it again here.
736 		 */
737 		if (target.use_bpf)
738 			break;
739 
740 		if (counter->reset_group || counter->errored)
741 			continue;
742 		if (evsel__is_bperf(counter))
743 			continue;
744 try_again:
745 		if (create_perf_stat_counter(counter, &stat_config, &target,
746 					     evlist_cpu_itr.cpu_map_idx) < 0) {
747 
748 			/*
749 			 * Weak group failed. We cannot just undo this here
750 			 * because earlier CPUs might be in group mode, and the kernel
751 			 * doesn't support mixing group and non group reads. Defer
752 			 * it to later.
753 			 * Don't close here because we're in the wrong affinity.
754 			 */
755 			if ((errno == EINVAL || errno == EBADF) &&
756 				evsel__leader(counter) != counter &&
757 				counter->weak_group) {
758 				evlist__reset_weak_group(evsel_list, counter, false);
759 				assert(counter->reset_group);
760 				second_pass = true;
761 				continue;
762 			}
763 
764 			switch (stat_handle_error(counter)) {
765 			case COUNTER_FATAL:
766 				err = -1;
767 				goto err_out;
768 			case COUNTER_RETRY:
769 				goto try_again;
770 			case COUNTER_SKIP:
771 				continue;
772 			default:
773 				break;
774 			}
775 
776 		}
777 		counter->supported = true;
778 	}
779 
780 	if (second_pass) {
781 		/*
782 		 * Now redo all the weak group after closing them,
783 		 * and also close errored counters.
784 		 */
785 
786 		/* First close errored or weak retry */
787 		evlist__for_each_cpu(evlist_cpu_itr, evsel_list, affinity) {
788 			counter = evlist_cpu_itr.evsel;
789 
790 			if (!counter->reset_group && !counter->errored)
791 				continue;
792 
793 			perf_evsel__close_cpu(&counter->core, evlist_cpu_itr.cpu_map_idx);
794 		}
795 		/* Now reopen weak */
796 		evlist__for_each_cpu(evlist_cpu_itr, evsel_list, affinity) {
797 			counter = evlist_cpu_itr.evsel;
798 
799 			if (!counter->reset_group)
800 				continue;
801 try_again_reset:
802 			pr_debug2("reopening weak %s\n", evsel__name(counter));
803 			if (create_perf_stat_counter(counter, &stat_config, &target,
804 						     evlist_cpu_itr.cpu_map_idx) < 0) {
805 
806 				switch (stat_handle_error(counter)) {
807 				case COUNTER_FATAL:
808 					err = -1;
809 					goto err_out;
810 				case COUNTER_RETRY:
811 					goto try_again_reset;
812 				case COUNTER_SKIP:
813 					continue;
814 				default:
815 					break;
816 				}
817 			}
818 			counter->supported = true;
819 		}
820 	}
821 	affinity__cleanup(affinity);
822 	affinity = NULL;
823 
824 	evlist__for_each_entry(evsel_list, counter) {
825 		if (!counter->supported) {
826 			perf_evsel__free_fd(&counter->core);
827 			continue;
828 		}
829 
830 		l = strlen(counter->unit);
831 		if (l > stat_config.unit_width)
832 			stat_config.unit_width = l;
833 
834 		if (evsel__should_store_id(counter) &&
835 		    evsel__store_ids(counter, evsel_list)) {
836 			err = -1;
837 			goto err_out;
838 		}
839 	}
840 
841 	if (evlist__apply_filters(evsel_list, &counter, &target)) {
842 		pr_err("failed to set filter \"%s\" on event %s with %d (%s)\n",
843 			counter->filter, evsel__name(counter), errno,
844 			str_error_r(errno, msg, sizeof(msg)));
845 		return -1;
846 	}
847 
848 	if (STAT_RECORD) {
849 		int fd = perf_data__fd(&perf_stat.data);
850 
851 		if (is_pipe) {
852 			err = perf_header__write_pipe(perf_data__fd(&perf_stat.data));
853 		} else {
854 			err = perf_session__write_header(perf_stat.session, evsel_list,
855 							 fd, false);
856 		}
857 
858 		if (err < 0)
859 			goto err_out;
860 
861 		err = perf_event__synthesize_stat_events(&stat_config, NULL, evsel_list,
862 							 process_synthesized_event, is_pipe);
863 		if (err < 0)
864 			goto err_out;
865 
866 	}
867 
868 	if (target.initial_delay) {
869 		pr_info(EVLIST_DISABLED_MSG);
870 	} else {
871 		err = enable_counters();
872 		if (err) {
873 			err = -1;
874 			goto err_out;
875 		}
876 	}
877 
878 	/* Exec the command, if any */
879 	if (forks)
880 		evlist__start_workload(evsel_list);
881 
882 	if (target.initial_delay > 0) {
883 		usleep(target.initial_delay * USEC_PER_MSEC);
884 		err = enable_counters();
885 		if (err) {
886 			err = -1;
887 			goto err_out;
888 		}
889 
890 		pr_info(EVLIST_ENABLED_MSG);
891 	}
892 
893 	t0 = rdclock();
894 	clock_gettime(CLOCK_MONOTONIC, &ref_time);
895 
896 	if (forks) {
897 		if (interval || timeout || evlist__ctlfd_initialized(evsel_list))
898 			status = dispatch_events(forks, timeout, interval, &times);
899 		if (child_pid != -1) {
900 			if (timeout)
901 				kill(child_pid, SIGTERM);
902 			wait4(child_pid, &status, 0, &stat_config.ru_data);
903 		}
904 
905 		if (workload_exec_errno) {
906 			const char *emsg = str_error_r(workload_exec_errno, msg, sizeof(msg));
907 			pr_err("Workload failed: %s\n", emsg);
908 			err = -1;
909 			goto err_out;
910 		}
911 
912 		if (WIFSIGNALED(status))
913 			psignal(WTERMSIG(status), argv[0]);
914 	} else {
915 		status = dispatch_events(forks, timeout, interval, &times);
916 	}
917 
918 	disable_counters();
919 
920 	t1 = rdclock();
921 
922 	if (stat_config.walltime_run_table)
923 		stat_config.walltime_run[run_idx] = t1 - t0;
924 
925 	if (interval && stat_config.summary) {
926 		stat_config.interval = 0;
927 		stat_config.stop_read_counter = true;
928 		init_stats(&walltime_nsecs_stats);
929 		update_stats(&walltime_nsecs_stats, t1 - t0);
930 
931 		evlist__copy_prev_raw_counts(evsel_list);
932 		evlist__reset_prev_raw_counts(evsel_list);
933 		evlist__reset_aggr_stats(evsel_list);
934 	} else {
935 		update_stats(&walltime_nsecs_stats, t1 - t0);
936 		update_rusage_stats(&ru_stats, &stat_config.ru_data);
937 	}
938 
939 	/*
940 	 * Closing a group leader splits the group, and as we only disable
941 	 * group leaders, results in remaining events becoming enabled. To
942 	 * avoid arbitrary skew, we must read all counters before closing any
943 	 * group leaders.
944 	 */
945 	if (read_counters() == 0)
946 		process_counters();
947 
948 	/*
949 	 * We need to keep evsel_list alive, because it's processed
950 	 * later the evsel_list will be closed after.
951 	 */
952 	if (!STAT_RECORD)
953 		evlist__close(evsel_list);
954 
955 	return WEXITSTATUS(status);
956 
957 err_out:
958 	if (forks)
959 		evlist__cancel_workload(evsel_list);
960 
961 	affinity__cleanup(affinity);
962 	return err;
963 }
964 
965 /*
966  * Returns -1 for fatal errors which signifies to not continue
967  * when in repeat mode.
968  *
969  * Returns < -1 error codes when stat record is used. These
970  * result in the stat information being displayed, but writing
971  * to the file fails and is non fatal.
972  */
run_perf_stat(int argc,const char ** argv,int run_idx)973 static int run_perf_stat(int argc, const char **argv, int run_idx)
974 {
975 	int ret;
976 
977 	if (pre_cmd) {
978 		ret = system(pre_cmd);
979 		if (ret)
980 			return ret;
981 	}
982 
983 	if (sync_run)
984 		sync();
985 
986 	ret = __run_perf_stat(argc, argv, run_idx);
987 	if (ret)
988 		return ret;
989 
990 	if (post_cmd) {
991 		ret = system(post_cmd);
992 		if (ret)
993 			return ret;
994 	}
995 
996 	return ret;
997 }
998 
print_counters(struct timespec * ts,int argc,const char ** argv)999 static void print_counters(struct timespec *ts, int argc, const char **argv)
1000 {
1001 	/* Do not print anything if we record to the pipe. */
1002 	if (STAT_RECORD && perf_stat.data.is_pipe)
1003 		return;
1004 	if (quiet)
1005 		return;
1006 
1007 	evlist__print_counters(evsel_list, &stat_config, &target, ts, argc, argv);
1008 }
1009 
1010 static volatile sig_atomic_t signr = -1;
1011 
skip_signal(int signo)1012 static void skip_signal(int signo)
1013 {
1014 	if ((child_pid == -1) || stat_config.interval)
1015 		done = 1;
1016 
1017 	signr = signo;
1018 	/*
1019 	 * render child_pid harmless
1020 	 * won't send SIGTERM to a random
1021 	 * process in case of race condition
1022 	 * and fast PID recycling
1023 	 */
1024 	child_pid = -1;
1025 }
1026 
sig_atexit(void)1027 static void sig_atexit(void)
1028 {
1029 	sigset_t set, oset;
1030 
1031 	/*
1032 	 * avoid race condition with SIGCHLD handler
1033 	 * in skip_signal() which is modifying child_pid
1034 	 * goal is to avoid send SIGTERM to a random
1035 	 * process
1036 	 */
1037 	sigemptyset(&set);
1038 	sigaddset(&set, SIGCHLD);
1039 	sigprocmask(SIG_BLOCK, &set, &oset);
1040 
1041 	if (child_pid != -1)
1042 		kill(child_pid, SIGTERM);
1043 
1044 	sigprocmask(SIG_SETMASK, &oset, NULL);
1045 
1046 	if (signr == -1)
1047 		return;
1048 
1049 	signal(signr, SIG_DFL);
1050 	kill(getpid(), signr);
1051 }
1052 
stat__set_big_num(const struct option * opt __maybe_unused,const char * s __maybe_unused,int unset)1053 static int stat__set_big_num(const struct option *opt __maybe_unused,
1054 			     const char *s __maybe_unused, int unset)
1055 {
1056 	big_num_opt = unset ? 0 : 1;
1057 	perf_stat__set_big_num(!unset);
1058 	return 0;
1059 }
1060 
enable_metric_only(const struct option * opt __maybe_unused,const char * s __maybe_unused,int unset)1061 static int enable_metric_only(const struct option *opt __maybe_unused,
1062 			      const char *s __maybe_unused, int unset)
1063 {
1064 	force_metric_only = true;
1065 	stat_config.metric_only = !unset;
1066 	return 0;
1067 }
1068 
append_metric_groups(const struct option * opt __maybe_unused,const char * str,int unset __maybe_unused)1069 static int append_metric_groups(const struct option *opt __maybe_unused,
1070 			       const char *str,
1071 			       int unset __maybe_unused)
1072 {
1073 	if (metrics) {
1074 		char *tmp;
1075 
1076 		if (asprintf(&tmp, "%s,%s", metrics, str) < 0)
1077 			return -ENOMEM;
1078 		free(metrics);
1079 		metrics = tmp;
1080 	} else {
1081 		metrics = strdup(str);
1082 		if (!metrics)
1083 			return -ENOMEM;
1084 	}
1085 	return 0;
1086 }
1087 
parse_control_option(const struct option * opt,const char * str,int unset __maybe_unused)1088 static int parse_control_option(const struct option *opt,
1089 				const char *str,
1090 				int unset __maybe_unused)
1091 {
1092 	struct perf_stat_config *config = opt->value;
1093 
1094 	return evlist__parse_control(str, &config->ctl_fd, &config->ctl_fd_ack, &config->ctl_fd_close);
1095 }
1096 
parse_stat_cgroups(const struct option * opt,const char * str,int unset)1097 static int parse_stat_cgroups(const struct option *opt,
1098 			      const char *str, int unset)
1099 {
1100 	if (stat_config.cgroup_list) {
1101 		pr_err("--cgroup and --for-each-cgroup cannot be used together\n");
1102 		return -1;
1103 	}
1104 
1105 	return parse_cgroups(opt, str, unset);
1106 }
1107 
parse_cputype(const struct option * opt,const char * str,int unset __maybe_unused)1108 static int parse_cputype(const struct option *opt,
1109 			     const char *str,
1110 			     int unset __maybe_unused)
1111 {
1112 	const struct perf_pmu *pmu;
1113 	struct evlist *evlist = *(struct evlist **)opt->value;
1114 
1115 	if (!list_empty(&evlist->core.entries)) {
1116 		fprintf(stderr, "Must define cputype before events/metrics\n");
1117 		return -1;
1118 	}
1119 
1120 	pmu = perf_pmus__pmu_for_pmu_filter(str);
1121 	if (!pmu) {
1122 		fprintf(stderr, "--cputype %s is not supported!\n", str);
1123 		return -1;
1124 	}
1125 	parse_events_option_args.pmu_filter = pmu->name;
1126 
1127 	return 0;
1128 }
1129 
parse_cache_level(const struct option * opt,const char * str,int unset __maybe_unused)1130 static int parse_cache_level(const struct option *opt,
1131 			     const char *str,
1132 			     int unset __maybe_unused)
1133 {
1134 	int level;
1135 	struct opt_aggr_mode *opt_aggr_mode = (struct opt_aggr_mode *)opt->value;
1136 	u32 *aggr_level = (u32 *)opt->data;
1137 
1138 	/*
1139 	 * If no string is specified, aggregate based on the topology of
1140 	 * Last Level Cache (LLC). Since the LLC level can change from
1141 	 * architecture to architecture, set level greater than
1142 	 * MAX_CACHE_LVL which will be interpreted as LLC.
1143 	 */
1144 	if (str == NULL) {
1145 		level = MAX_CACHE_LVL + 1;
1146 		goto out;
1147 	}
1148 
1149 	/*
1150 	 * The format to specify cache level is LX or lX where X is the
1151 	 * cache level.
1152 	 */
1153 	if (strlen(str) != 2 || (str[0] != 'l' && str[0] != 'L')) {
1154 		pr_err("Cache level must be of form L[1-%d], or l[1-%d]\n",
1155 		       MAX_CACHE_LVL,
1156 		       MAX_CACHE_LVL);
1157 		return -EINVAL;
1158 	}
1159 
1160 	level = atoi(&str[1]);
1161 	if (level < 1) {
1162 		pr_err("Cache level must be of form L[1-%d], or l[1-%d]\n",
1163 		       MAX_CACHE_LVL,
1164 		       MAX_CACHE_LVL);
1165 		return -EINVAL;
1166 	}
1167 
1168 	if (level > MAX_CACHE_LVL) {
1169 		pr_err("perf only supports max cache level of %d.\n"
1170 		       "Consider increasing MAX_CACHE_LVL\n", MAX_CACHE_LVL);
1171 		return -EINVAL;
1172 	}
1173 out:
1174 	opt_aggr_mode->cache = true;
1175 	*aggr_level = level;
1176 	return 0;
1177 }
1178 
1179 /**
1180  * Calculate the cache instance ID from the map in
1181  * /sys/devices/system/cpu/cpuX/cache/indexY/shared_cpu_list
1182  * Cache instance ID is the first CPU reported in the shared_cpu_list file.
1183  */
cpu__get_cache_id_from_map(struct perf_cpu cpu,char * map)1184 static int cpu__get_cache_id_from_map(struct perf_cpu cpu, char *map)
1185 {
1186 	int id;
1187 	struct perf_cpu_map *cpu_map = perf_cpu_map__new(map);
1188 
1189 	/*
1190 	 * If the map contains no CPU, consider the current CPU to
1191 	 * be the first online CPU in the cache domain else use the
1192 	 * first online CPU of the cache domain as the ID.
1193 	 */
1194 	id = perf_cpu_map__min(cpu_map).cpu;
1195 	if (id == -1)
1196 		id = cpu.cpu;
1197 
1198 	/* Free the perf_cpu_map used to find the cache ID */
1199 	perf_cpu_map__put(cpu_map);
1200 
1201 	return id;
1202 }
1203 
1204 /**
1205  * cpu__get_cache_id - Returns 0 if successful in populating the
1206  * cache level and cache id. Cache level is read from
1207  * /sys/devices/system/cpu/cpuX/cache/indexY/level where as cache instance ID
1208  * is the first CPU reported by
1209  * /sys/devices/system/cpu/cpuX/cache/indexY/shared_cpu_list
1210  */
cpu__get_cache_details(struct perf_cpu cpu,struct perf_cache * cache)1211 static int cpu__get_cache_details(struct perf_cpu cpu, struct perf_cache *cache)
1212 {
1213 	int ret = 0;
1214 	u32 cache_level = stat_config.aggr_level;
1215 	struct cpu_cache_level caches[MAX_CACHE_LVL];
1216 	u32 i = 0, caches_cnt = 0;
1217 
1218 	cache->cache_lvl = (cache_level > MAX_CACHE_LVL) ? 0 : cache_level;
1219 	cache->cache = -1;
1220 
1221 	ret = build_caches_for_cpu(cpu.cpu, caches, &caches_cnt);
1222 	if (ret) {
1223 		/*
1224 		 * If caches_cnt is not 0, cpu_cache_level data
1225 		 * was allocated when building the topology.
1226 		 * Free the allocated data before returning.
1227 		 */
1228 		if (caches_cnt)
1229 			goto free_caches;
1230 
1231 		return ret;
1232 	}
1233 
1234 	if (!caches_cnt)
1235 		return -1;
1236 
1237 	/*
1238 	 * Save the data for the highest level if no
1239 	 * level was specified by the user.
1240 	 */
1241 	if (cache_level > MAX_CACHE_LVL) {
1242 		int max_level_index = 0;
1243 
1244 		for (i = 1; i < caches_cnt; ++i) {
1245 			if (caches[i].level > caches[max_level_index].level)
1246 				max_level_index = i;
1247 		}
1248 
1249 		cache->cache_lvl = caches[max_level_index].level;
1250 		cache->cache = cpu__get_cache_id_from_map(cpu, caches[max_level_index].map);
1251 
1252 		/* Reset i to 0 to free entire caches[] */
1253 		i = 0;
1254 		goto free_caches;
1255 	}
1256 
1257 	for (i = 0; i < caches_cnt; ++i) {
1258 		if (caches[i].level == cache_level) {
1259 			cache->cache_lvl = cache_level;
1260 			cache->cache = cpu__get_cache_id_from_map(cpu, caches[i].map);
1261 		}
1262 
1263 		cpu_cache_level__free(&caches[i]);
1264 	}
1265 
1266 free_caches:
1267 	/*
1268 	 * Free all the allocated cpu_cache_level data.
1269 	 */
1270 	while (i < caches_cnt)
1271 		cpu_cache_level__free(&caches[i++]);
1272 
1273 	return ret;
1274 }
1275 
1276 /**
1277  * aggr_cpu_id__cache - Create an aggr_cpu_id with cache instache ID, cache
1278  * level, die and socket populated with the cache instache ID, cache level,
1279  * die and socket for cpu. The function signature is compatible with
1280  * aggr_cpu_id_get_t.
1281  */
aggr_cpu_id__cache(struct perf_cpu cpu,void * data)1282 static struct aggr_cpu_id aggr_cpu_id__cache(struct perf_cpu cpu, void *data)
1283 {
1284 	int ret;
1285 	struct aggr_cpu_id id;
1286 	struct perf_cache cache;
1287 
1288 	id = aggr_cpu_id__die(cpu, data);
1289 	if (aggr_cpu_id__is_empty(&id))
1290 		return id;
1291 
1292 	ret = cpu__get_cache_details(cpu, &cache);
1293 	if (ret)
1294 		return id;
1295 
1296 	id.cache_lvl = cache.cache_lvl;
1297 	id.cache = cache.cache;
1298 	return id;
1299 }
1300 
1301 static const char *const aggr_mode__string[] = {
1302 	[AGGR_CORE] = "core",
1303 	[AGGR_CACHE] = "cache",
1304 	[AGGR_CLUSTER] = "cluster",
1305 	[AGGR_DIE] = "die",
1306 	[AGGR_GLOBAL] = "global",
1307 	[AGGR_NODE] = "node",
1308 	[AGGR_NONE] = "none",
1309 	[AGGR_SOCKET] = "socket",
1310 	[AGGR_THREAD] = "thread",
1311 	[AGGR_UNSET] = "unset",
1312 };
1313 
perf_stat__get_socket(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1314 static struct aggr_cpu_id perf_stat__get_socket(struct perf_stat_config *config __maybe_unused,
1315 						struct perf_cpu cpu)
1316 {
1317 	return aggr_cpu_id__socket(cpu, /*data=*/NULL);
1318 }
1319 
perf_stat__get_die(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1320 static struct aggr_cpu_id perf_stat__get_die(struct perf_stat_config *config __maybe_unused,
1321 					     struct perf_cpu cpu)
1322 {
1323 	return aggr_cpu_id__die(cpu, /*data=*/NULL);
1324 }
1325 
perf_stat__get_cache_id(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1326 static struct aggr_cpu_id perf_stat__get_cache_id(struct perf_stat_config *config __maybe_unused,
1327 						  struct perf_cpu cpu)
1328 {
1329 	return aggr_cpu_id__cache(cpu, /*data=*/NULL);
1330 }
1331 
perf_stat__get_cluster(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1332 static struct aggr_cpu_id perf_stat__get_cluster(struct perf_stat_config *config __maybe_unused,
1333 						 struct perf_cpu cpu)
1334 {
1335 	return aggr_cpu_id__cluster(cpu, /*data=*/NULL);
1336 }
1337 
perf_stat__get_core(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1338 static struct aggr_cpu_id perf_stat__get_core(struct perf_stat_config *config __maybe_unused,
1339 					      struct perf_cpu cpu)
1340 {
1341 	return aggr_cpu_id__core(cpu, /*data=*/NULL);
1342 }
1343 
perf_stat__get_node(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1344 static struct aggr_cpu_id perf_stat__get_node(struct perf_stat_config *config __maybe_unused,
1345 					      struct perf_cpu cpu)
1346 {
1347 	return aggr_cpu_id__node(cpu, /*data=*/NULL);
1348 }
1349 
perf_stat__get_global(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1350 static struct aggr_cpu_id perf_stat__get_global(struct perf_stat_config *config __maybe_unused,
1351 						struct perf_cpu cpu)
1352 {
1353 	return aggr_cpu_id__global(cpu, /*data=*/NULL);
1354 }
1355 
perf_stat__get_cpu(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1356 static struct aggr_cpu_id perf_stat__get_cpu(struct perf_stat_config *config __maybe_unused,
1357 					     struct perf_cpu cpu)
1358 {
1359 	return aggr_cpu_id__cpu(cpu, /*data=*/NULL);
1360 }
1361 
perf_stat__get_aggr(struct perf_stat_config * config,aggr_get_id_t get_id,struct perf_cpu cpu)1362 static struct aggr_cpu_id perf_stat__get_aggr(struct perf_stat_config *config,
1363 					      aggr_get_id_t get_id, struct perf_cpu cpu)
1364 {
1365 	struct aggr_cpu_id id;
1366 
1367 	/* per-process mode - should use global aggr mode */
1368 	if (cpu.cpu == -1 || cpu.cpu >= config->cpus_aggr_map->nr)
1369 		return get_id(config, cpu);
1370 
1371 	if (aggr_cpu_id__is_empty(&config->cpus_aggr_map->map[cpu.cpu]))
1372 		config->cpus_aggr_map->map[cpu.cpu] = get_id(config, cpu);
1373 
1374 	id = config->cpus_aggr_map->map[cpu.cpu];
1375 	return id;
1376 }
1377 
perf_stat__get_socket_cached(struct perf_stat_config * config,struct perf_cpu cpu)1378 static struct aggr_cpu_id perf_stat__get_socket_cached(struct perf_stat_config *config,
1379 						       struct perf_cpu cpu)
1380 {
1381 	return perf_stat__get_aggr(config, perf_stat__get_socket, cpu);
1382 }
1383 
perf_stat__get_die_cached(struct perf_stat_config * config,struct perf_cpu cpu)1384 static struct aggr_cpu_id perf_stat__get_die_cached(struct perf_stat_config *config,
1385 						    struct perf_cpu cpu)
1386 {
1387 	return perf_stat__get_aggr(config, perf_stat__get_die, cpu);
1388 }
1389 
perf_stat__get_cluster_cached(struct perf_stat_config * config,struct perf_cpu cpu)1390 static struct aggr_cpu_id perf_stat__get_cluster_cached(struct perf_stat_config *config,
1391 							struct perf_cpu cpu)
1392 {
1393 	return perf_stat__get_aggr(config, perf_stat__get_cluster, cpu);
1394 }
1395 
perf_stat__get_cache_id_cached(struct perf_stat_config * config,struct perf_cpu cpu)1396 static struct aggr_cpu_id perf_stat__get_cache_id_cached(struct perf_stat_config *config,
1397 							 struct perf_cpu cpu)
1398 {
1399 	return perf_stat__get_aggr(config, perf_stat__get_cache_id, cpu);
1400 }
1401 
perf_stat__get_core_cached(struct perf_stat_config * config,struct perf_cpu cpu)1402 static struct aggr_cpu_id perf_stat__get_core_cached(struct perf_stat_config *config,
1403 						     struct perf_cpu cpu)
1404 {
1405 	return perf_stat__get_aggr(config, perf_stat__get_core, cpu);
1406 }
1407 
perf_stat__get_node_cached(struct perf_stat_config * config,struct perf_cpu cpu)1408 static struct aggr_cpu_id perf_stat__get_node_cached(struct perf_stat_config *config,
1409 						     struct perf_cpu cpu)
1410 {
1411 	return perf_stat__get_aggr(config, perf_stat__get_node, cpu);
1412 }
1413 
perf_stat__get_global_cached(struct perf_stat_config * config,struct perf_cpu cpu)1414 static struct aggr_cpu_id perf_stat__get_global_cached(struct perf_stat_config *config,
1415 						       struct perf_cpu cpu)
1416 {
1417 	return perf_stat__get_aggr(config, perf_stat__get_global, cpu);
1418 }
1419 
perf_stat__get_cpu_cached(struct perf_stat_config * config,struct perf_cpu cpu)1420 static struct aggr_cpu_id perf_stat__get_cpu_cached(struct perf_stat_config *config,
1421 						    struct perf_cpu cpu)
1422 {
1423 	return perf_stat__get_aggr(config, perf_stat__get_cpu, cpu);
1424 }
1425 
aggr_mode__get_aggr(enum aggr_mode aggr_mode)1426 static aggr_cpu_id_get_t aggr_mode__get_aggr(enum aggr_mode aggr_mode)
1427 {
1428 	switch (aggr_mode) {
1429 	case AGGR_SOCKET:
1430 		return aggr_cpu_id__socket;
1431 	case AGGR_DIE:
1432 		return aggr_cpu_id__die;
1433 	case AGGR_CLUSTER:
1434 		return aggr_cpu_id__cluster;
1435 	case AGGR_CACHE:
1436 		return aggr_cpu_id__cache;
1437 	case AGGR_CORE:
1438 		return aggr_cpu_id__core;
1439 	case AGGR_NODE:
1440 		return aggr_cpu_id__node;
1441 	case AGGR_NONE:
1442 		return aggr_cpu_id__cpu;
1443 	case AGGR_GLOBAL:
1444 		return aggr_cpu_id__global;
1445 	case AGGR_THREAD:
1446 	case AGGR_UNSET:
1447 	case AGGR_MAX:
1448 	default:
1449 		return NULL;
1450 	}
1451 }
1452 
aggr_mode__get_id(enum aggr_mode aggr_mode)1453 static aggr_get_id_t aggr_mode__get_id(enum aggr_mode aggr_mode)
1454 {
1455 	switch (aggr_mode) {
1456 	case AGGR_SOCKET:
1457 		return perf_stat__get_socket_cached;
1458 	case AGGR_DIE:
1459 		return perf_stat__get_die_cached;
1460 	case AGGR_CLUSTER:
1461 		return perf_stat__get_cluster_cached;
1462 	case AGGR_CACHE:
1463 		return perf_stat__get_cache_id_cached;
1464 	case AGGR_CORE:
1465 		return perf_stat__get_core_cached;
1466 	case AGGR_NODE:
1467 		return perf_stat__get_node_cached;
1468 	case AGGR_NONE:
1469 		return perf_stat__get_cpu_cached;
1470 	case AGGR_GLOBAL:
1471 		return perf_stat__get_global_cached;
1472 	case AGGR_THREAD:
1473 	case AGGR_UNSET:
1474 	case AGGR_MAX:
1475 	default:
1476 		return NULL;
1477 	}
1478 }
1479 
perf_stat_init_aggr_mode(void)1480 static int perf_stat_init_aggr_mode(void)
1481 {
1482 	int nr;
1483 	aggr_cpu_id_get_t get_id = aggr_mode__get_aggr(stat_config.aggr_mode);
1484 
1485 	if (get_id) {
1486 		bool needs_sort = stat_config.aggr_mode != AGGR_NONE;
1487 		stat_config.aggr_map = cpu_aggr_map__new(evsel_list->core.user_requested_cpus,
1488 							 get_id, /*data=*/NULL, needs_sort);
1489 		if (!stat_config.aggr_map) {
1490 			pr_err("cannot build %s map\n", aggr_mode__string[stat_config.aggr_mode]);
1491 			return -1;
1492 		}
1493 		stat_config.aggr_get_id = aggr_mode__get_id(stat_config.aggr_mode);
1494 	}
1495 
1496 	if (stat_config.aggr_mode == AGGR_THREAD) {
1497 		nr = perf_thread_map__nr(evsel_list->core.threads);
1498 		stat_config.aggr_map = cpu_aggr_map__empty_new(nr);
1499 		if (stat_config.aggr_map == NULL)
1500 			return -ENOMEM;
1501 
1502 		for (int s = 0; s < nr; s++) {
1503 			struct aggr_cpu_id id = aggr_cpu_id__empty();
1504 
1505 			id.thread_idx = s;
1506 			stat_config.aggr_map->map[s] = id;
1507 		}
1508 		return 0;
1509 	}
1510 
1511 	/*
1512 	 * The evsel_list->cpus is the base we operate on,
1513 	 * taking the highest cpu number to be the size of
1514 	 * the aggregation translate cpumap.
1515 	 */
1516 	nr = perf_cpu_map__max(evsel_list->core.all_cpus).cpu + 1;
1517 	stat_config.cpus_aggr_map = cpu_aggr_map__empty_new(nr);
1518 	return stat_config.cpus_aggr_map ? 0 : -ENOMEM;
1519 }
1520 
cpu_aggr_map__delete(struct cpu_aggr_map * map)1521 static void cpu_aggr_map__delete(struct cpu_aggr_map *map)
1522 {
1523 	free(map);
1524 }
1525 
perf_stat__exit_aggr_mode(void)1526 static void perf_stat__exit_aggr_mode(void)
1527 {
1528 	cpu_aggr_map__delete(stat_config.aggr_map);
1529 	cpu_aggr_map__delete(stat_config.cpus_aggr_map);
1530 	stat_config.aggr_map = NULL;
1531 	stat_config.cpus_aggr_map = NULL;
1532 }
1533 
perf_env__get_socket_aggr_by_cpu(struct perf_cpu cpu,void * data)1534 static struct aggr_cpu_id perf_env__get_socket_aggr_by_cpu(struct perf_cpu cpu, void *data)
1535 {
1536 	struct perf_env *env = data;
1537 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1538 
1539 	if (cpu.cpu != -1)
1540 		id.socket = env->cpu[cpu.cpu].socket_id;
1541 
1542 	return id;
1543 }
1544 
perf_env__get_die_aggr_by_cpu(struct perf_cpu cpu,void * data)1545 static struct aggr_cpu_id perf_env__get_die_aggr_by_cpu(struct perf_cpu cpu, void *data)
1546 {
1547 	struct perf_env *env = data;
1548 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1549 
1550 	if (cpu.cpu != -1) {
1551 		/*
1552 		 * die_id is relative to socket, so start
1553 		 * with the socket ID and then add die to
1554 		 * make a unique ID.
1555 		 */
1556 		id.socket = env->cpu[cpu.cpu].socket_id;
1557 		id.die = env->cpu[cpu.cpu].die_id;
1558 	}
1559 
1560 	return id;
1561 }
1562 
perf_env__get_cache_id_for_cpu(struct perf_cpu cpu,struct perf_env * env,u32 cache_level,struct aggr_cpu_id * id)1563 static void perf_env__get_cache_id_for_cpu(struct perf_cpu cpu, struct perf_env *env,
1564 					   u32 cache_level, struct aggr_cpu_id *id)
1565 {
1566 	int i;
1567 	int caches_cnt = env->caches_cnt;
1568 	struct cpu_cache_level *caches = env->caches;
1569 
1570 	id->cache_lvl = (cache_level > MAX_CACHE_LVL) ? 0 : cache_level;
1571 	id->cache = -1;
1572 
1573 	if (!caches_cnt)
1574 		return;
1575 
1576 	for (i = caches_cnt - 1; i > -1; --i) {
1577 		struct perf_cpu_map *cpu_map;
1578 		int map_contains_cpu;
1579 
1580 		/*
1581 		 * If user has not specified a level, find the fist level with
1582 		 * the cpu in the map. Since building the map is expensive, do
1583 		 * this only if levels match.
1584 		 */
1585 		if (cache_level <= MAX_CACHE_LVL && caches[i].level != cache_level)
1586 			continue;
1587 
1588 		cpu_map = perf_cpu_map__new(caches[i].map);
1589 		map_contains_cpu = perf_cpu_map__idx(cpu_map, cpu);
1590 		perf_cpu_map__put(cpu_map);
1591 
1592 		if (map_contains_cpu != -1) {
1593 			id->cache_lvl = caches[i].level;
1594 			id->cache = cpu__get_cache_id_from_map(cpu, caches[i].map);
1595 			return;
1596 		}
1597 	}
1598 }
1599 
perf_env__get_cache_aggr_by_cpu(struct perf_cpu cpu,void * data)1600 static struct aggr_cpu_id perf_env__get_cache_aggr_by_cpu(struct perf_cpu cpu,
1601 							  void *data)
1602 {
1603 	struct perf_env *env = data;
1604 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1605 
1606 	if (cpu.cpu != -1) {
1607 		u32 cache_level = (perf_stat.aggr_level) ?: stat_config.aggr_level;
1608 
1609 		id.socket = env->cpu[cpu.cpu].socket_id;
1610 		id.die = env->cpu[cpu.cpu].die_id;
1611 		perf_env__get_cache_id_for_cpu(cpu, env, cache_level, &id);
1612 	}
1613 
1614 	return id;
1615 }
1616 
perf_env__get_cluster_aggr_by_cpu(struct perf_cpu cpu,void * data)1617 static struct aggr_cpu_id perf_env__get_cluster_aggr_by_cpu(struct perf_cpu cpu,
1618 							    void *data)
1619 {
1620 	struct perf_env *env = data;
1621 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1622 
1623 	if (cpu.cpu != -1) {
1624 		id.socket = env->cpu[cpu.cpu].socket_id;
1625 		id.die = env->cpu[cpu.cpu].die_id;
1626 		id.cluster = env->cpu[cpu.cpu].cluster_id;
1627 	}
1628 
1629 	return id;
1630 }
1631 
perf_env__get_core_aggr_by_cpu(struct perf_cpu cpu,void * data)1632 static struct aggr_cpu_id perf_env__get_core_aggr_by_cpu(struct perf_cpu cpu, void *data)
1633 {
1634 	struct perf_env *env = data;
1635 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1636 
1637 	if (cpu.cpu != -1) {
1638 		/*
1639 		 * core_id is relative to socket, die and cluster, we need a
1640 		 * global id. So we set socket, die id, cluster id and core id.
1641 		 */
1642 		id.socket = env->cpu[cpu.cpu].socket_id;
1643 		id.die = env->cpu[cpu.cpu].die_id;
1644 		id.cluster = env->cpu[cpu.cpu].cluster_id;
1645 		id.core = env->cpu[cpu.cpu].core_id;
1646 	}
1647 
1648 	return id;
1649 }
1650 
perf_env__get_cpu_aggr_by_cpu(struct perf_cpu cpu,void * data)1651 static struct aggr_cpu_id perf_env__get_cpu_aggr_by_cpu(struct perf_cpu cpu, void *data)
1652 {
1653 	struct perf_env *env = data;
1654 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1655 
1656 	if (cpu.cpu != -1) {
1657 		/*
1658 		 * core_id is relative to socket and die,
1659 		 * we need a global id. So we set
1660 		 * socket, die id and core id
1661 		 */
1662 		id.socket = env->cpu[cpu.cpu].socket_id;
1663 		id.die = env->cpu[cpu.cpu].die_id;
1664 		id.core = env->cpu[cpu.cpu].core_id;
1665 		id.cpu = cpu;
1666 	}
1667 
1668 	return id;
1669 }
1670 
perf_env__get_node_aggr_by_cpu(struct perf_cpu cpu,void * data)1671 static struct aggr_cpu_id perf_env__get_node_aggr_by_cpu(struct perf_cpu cpu, void *data)
1672 {
1673 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1674 
1675 	id.node = perf_env__numa_node(data, cpu);
1676 	return id;
1677 }
1678 
perf_env__get_global_aggr_by_cpu(struct perf_cpu cpu __maybe_unused,void * data __maybe_unused)1679 static struct aggr_cpu_id perf_env__get_global_aggr_by_cpu(struct perf_cpu cpu __maybe_unused,
1680 							   void *data __maybe_unused)
1681 {
1682 	struct aggr_cpu_id id = aggr_cpu_id__empty();
1683 
1684 	/* it always aggregates to the cpu 0 */
1685 	id.cpu = (struct perf_cpu){ .cpu = 0 };
1686 	return id;
1687 }
1688 
perf_stat__get_socket_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1689 static struct aggr_cpu_id perf_stat__get_socket_file(struct perf_stat_config *config __maybe_unused,
1690 						     struct perf_cpu cpu)
1691 {
1692 	return perf_env__get_socket_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1693 }
perf_stat__get_die_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1694 static struct aggr_cpu_id perf_stat__get_die_file(struct perf_stat_config *config __maybe_unused,
1695 						  struct perf_cpu cpu)
1696 {
1697 	return perf_env__get_die_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1698 }
1699 
perf_stat__get_cluster_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1700 static struct aggr_cpu_id perf_stat__get_cluster_file(struct perf_stat_config *config __maybe_unused,
1701 						      struct perf_cpu cpu)
1702 {
1703 	return perf_env__get_cluster_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1704 }
1705 
perf_stat__get_cache_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1706 static struct aggr_cpu_id perf_stat__get_cache_file(struct perf_stat_config *config __maybe_unused,
1707 						    struct perf_cpu cpu)
1708 {
1709 	return perf_env__get_cache_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1710 }
1711 
perf_stat__get_core_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1712 static struct aggr_cpu_id perf_stat__get_core_file(struct perf_stat_config *config __maybe_unused,
1713 						   struct perf_cpu cpu)
1714 {
1715 	return perf_env__get_core_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1716 }
1717 
perf_stat__get_cpu_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1718 static struct aggr_cpu_id perf_stat__get_cpu_file(struct perf_stat_config *config __maybe_unused,
1719 						  struct perf_cpu cpu)
1720 {
1721 	return perf_env__get_cpu_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1722 }
1723 
perf_stat__get_node_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1724 static struct aggr_cpu_id perf_stat__get_node_file(struct perf_stat_config *config __maybe_unused,
1725 						   struct perf_cpu cpu)
1726 {
1727 	return perf_env__get_node_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1728 }
1729 
perf_stat__get_global_file(struct perf_stat_config * config __maybe_unused,struct perf_cpu cpu)1730 static struct aggr_cpu_id perf_stat__get_global_file(struct perf_stat_config *config __maybe_unused,
1731 						     struct perf_cpu cpu)
1732 {
1733 	return perf_env__get_global_aggr_by_cpu(cpu, perf_session__env(perf_stat.session));
1734 }
1735 
aggr_mode__get_aggr_file(enum aggr_mode aggr_mode)1736 static aggr_cpu_id_get_t aggr_mode__get_aggr_file(enum aggr_mode aggr_mode)
1737 {
1738 	switch (aggr_mode) {
1739 	case AGGR_SOCKET:
1740 		return perf_env__get_socket_aggr_by_cpu;
1741 	case AGGR_DIE:
1742 		return perf_env__get_die_aggr_by_cpu;
1743 	case AGGR_CLUSTER:
1744 		return perf_env__get_cluster_aggr_by_cpu;
1745 	case AGGR_CACHE:
1746 		return perf_env__get_cache_aggr_by_cpu;
1747 	case AGGR_CORE:
1748 		return perf_env__get_core_aggr_by_cpu;
1749 	case AGGR_NODE:
1750 		return perf_env__get_node_aggr_by_cpu;
1751 	case AGGR_GLOBAL:
1752 		return perf_env__get_global_aggr_by_cpu;
1753 	case AGGR_NONE:
1754 		return perf_env__get_cpu_aggr_by_cpu;
1755 	case AGGR_THREAD:
1756 	case AGGR_UNSET:
1757 	case AGGR_MAX:
1758 	default:
1759 		return NULL;
1760 	}
1761 }
1762 
aggr_mode__get_id_file(enum aggr_mode aggr_mode)1763 static aggr_get_id_t aggr_mode__get_id_file(enum aggr_mode aggr_mode)
1764 {
1765 	switch (aggr_mode) {
1766 	case AGGR_SOCKET:
1767 		return perf_stat__get_socket_file;
1768 	case AGGR_DIE:
1769 		return perf_stat__get_die_file;
1770 	case AGGR_CLUSTER:
1771 		return perf_stat__get_cluster_file;
1772 	case AGGR_CACHE:
1773 		return perf_stat__get_cache_file;
1774 	case AGGR_CORE:
1775 		return perf_stat__get_core_file;
1776 	case AGGR_NODE:
1777 		return perf_stat__get_node_file;
1778 	case AGGR_GLOBAL:
1779 		return perf_stat__get_global_file;
1780 	case AGGR_NONE:
1781 		return perf_stat__get_cpu_file;
1782 	case AGGR_THREAD:
1783 	case AGGR_UNSET:
1784 	case AGGR_MAX:
1785 	default:
1786 		return NULL;
1787 	}
1788 }
1789 
perf_stat_init_aggr_mode_file(struct perf_stat * st)1790 static int perf_stat_init_aggr_mode_file(struct perf_stat *st)
1791 {
1792 	struct perf_env *env = perf_session__env(st->session);
1793 	aggr_cpu_id_get_t get_id = aggr_mode__get_aggr_file(stat_config.aggr_mode);
1794 	bool needs_sort = stat_config.aggr_mode != AGGR_NONE;
1795 
1796 	if (stat_config.aggr_mode == AGGR_THREAD) {
1797 		int nr = perf_thread_map__nr(evsel_list->core.threads);
1798 
1799 		stat_config.aggr_map = cpu_aggr_map__empty_new(nr);
1800 		if (stat_config.aggr_map == NULL)
1801 			return -ENOMEM;
1802 
1803 		for (int s = 0; s < nr; s++) {
1804 			struct aggr_cpu_id id = aggr_cpu_id__empty();
1805 
1806 			id.thread_idx = s;
1807 			stat_config.aggr_map->map[s] = id;
1808 		}
1809 		return 0;
1810 	}
1811 
1812 	if (!get_id)
1813 		return 0;
1814 
1815 	stat_config.aggr_map = cpu_aggr_map__new(evsel_list->core.user_requested_cpus,
1816 						 get_id, env, needs_sort);
1817 	if (!stat_config.aggr_map) {
1818 		pr_err("cannot build %s map\n", aggr_mode__string[stat_config.aggr_mode]);
1819 		return -1;
1820 	}
1821 	stat_config.aggr_get_id = aggr_mode__get_id_file(stat_config.aggr_mode);
1822 	return 0;
1823 }
1824 
1825 /*
1826  * Add default events, if there were no attributes specified or
1827  * if -d/--detailed, -d -d or -d -d -d is used:
1828  */
add_default_events(void)1829 static int add_default_events(void)
1830 {
1831 	const char *pmu = parse_events_option_args.pmu_filter ?: "all";
1832 	struct parse_events_error err;
1833 	struct evlist *evlist = evlist__new();
1834 	struct evsel *evsel;
1835 	int ret = 0;
1836 
1837 	if (!evlist)
1838 		return -ENOMEM;
1839 
1840 	parse_events_error__init(&err);
1841 
1842 	/* Set attrs if no event is selected and !null_run: */
1843 	if (stat_config.null_run)
1844 		goto out;
1845 
1846 	if (transaction_run) {
1847 		/* Handle -T as -M transaction. Once platform specific metrics
1848 		 * support has been added to the json files, all architectures
1849 		 * will use this approach. To determine transaction support
1850 		 * on an architecture test for such a metric name.
1851 		 */
1852 		if (!metricgroup__has_metric_or_groups(pmu, "transaction")) {
1853 			pr_err("Missing transaction metrics\n");
1854 			ret = -1;
1855 			goto out;
1856 		}
1857 		ret = metricgroup__parse_groups(evlist, pmu, "transaction",
1858 						stat_config.metric_no_group,
1859 						stat_config.metric_no_merge,
1860 						stat_config.metric_no_threshold,
1861 						stat_config.user_requested_cpu_list,
1862 						stat_config.system_wide,
1863 						stat_config.hardware_aware_grouping);
1864 		goto out;
1865 	}
1866 
1867 	if (smi_cost) {
1868 		int smi;
1869 
1870 		if (sysfs__read_int(FREEZE_ON_SMI_PATH, &smi) < 0) {
1871 			pr_err("freeze_on_smi is not supported.\n");
1872 			ret = -1;
1873 			goto out;
1874 		}
1875 
1876 		if (!smi) {
1877 			if (sysfs__write_int(FREEZE_ON_SMI_PATH, 1) < 0) {
1878 				pr_err("Failed to set freeze_on_smi.\n");
1879 				ret = -1;
1880 				goto out;
1881 			}
1882 			smi_reset = true;
1883 		}
1884 
1885 		if (!metricgroup__has_metric_or_groups(pmu, "smi")) {
1886 			pr_err("Missing smi metrics\n");
1887 			ret = -1;
1888 			goto out;
1889 		}
1890 
1891 		if (!force_metric_only)
1892 			stat_config.metric_only = true;
1893 
1894 		ret = metricgroup__parse_groups(evlist, pmu, "smi",
1895 						stat_config.metric_no_group,
1896 						stat_config.metric_no_merge,
1897 						stat_config.metric_no_threshold,
1898 						stat_config.user_requested_cpu_list,
1899 						stat_config.system_wide,
1900 						stat_config.hardware_aware_grouping);
1901 		goto out;
1902 	}
1903 
1904 	if (topdown_run) {
1905 		unsigned int max_level = metricgroups__topdown_max_level();
1906 		char str[] = "TopdownL1";
1907 
1908 		if (!force_metric_only)
1909 			stat_config.metric_only = true;
1910 
1911 		if (!max_level) {
1912 			pr_err("Topdown requested but the topdown metric groups aren't present.\n"
1913 				"(See perf list the metric groups have names like TopdownL1)\n");
1914 			ret = -1;
1915 			goto out;
1916 		}
1917 		if (stat_config.topdown_level > max_level) {
1918 			pr_err("Invalid top-down metrics level. The max level is %u.\n", max_level);
1919 			ret = -1;
1920 			goto out;
1921 		} else if (!stat_config.topdown_level) {
1922 			stat_config.topdown_level = 1;
1923 		}
1924 		if (!stat_config.interval && !stat_config.metric_only) {
1925 			fprintf(stat_config.output,
1926 				"Topdown accuracy may decrease when measuring long periods.\n"
1927 				"Please print the result regularly, e.g. -I1000\n");
1928 		}
1929 		str[8] = stat_config.topdown_level + '0';
1930 		if (metricgroup__parse_groups(evlist,
1931 						pmu, str,
1932 						/*metric_no_group=*/false,
1933 						/*metric_no_merge=*/false,
1934 						/*metric_no_threshold=*/true,
1935 						stat_config.user_requested_cpu_list,
1936 						stat_config.system_wide,
1937 						stat_config.hardware_aware_grouping) < 0) {
1938 			ret = -1;
1939 			goto out;
1940 		}
1941 	}
1942 
1943 	if (!stat_config.topdown_level)
1944 		stat_config.topdown_level = 1;
1945 
1946 	if (!evlist->core.nr_entries && !evsel_list->core.nr_entries) {
1947 		/* No events so add defaults. */
1948 		if (target__has_cpu(&target))
1949 			ret = parse_events(evlist, "cpu-clock", &err);
1950 		else
1951 			ret = parse_events(evlist, "task-clock", &err);
1952 		if (ret)
1953 			goto out;
1954 
1955 		ret = parse_events(evlist,
1956 				"context-switches,"
1957 				"cpu-migrations,"
1958 				"page-faults,"
1959 				"instructions,"
1960 				"cycles,"
1961 				"stalled-cycles-frontend,"
1962 				"stalled-cycles-backend,"
1963 				"branches,"
1964 				"branch-misses",
1965 				&err);
1966 		if (ret)
1967 			goto out;
1968 
1969 		/*
1970 		 * Add TopdownL1 metrics if they exist. To minimize
1971 		 * multiplexing, don't request threshold computation.
1972 		 */
1973 		if (metricgroup__has_metric_or_groups(pmu, "Default")) {
1974 			struct evlist *metric_evlist = evlist__new();
1975 
1976 			if (!metric_evlist) {
1977 				ret = -ENOMEM;
1978 				goto out;
1979 			}
1980 			if (metricgroup__parse_groups(metric_evlist, pmu, "Default",
1981 							/*metric_no_group=*/false,
1982 							/*metric_no_merge=*/false,
1983 							/*metric_no_threshold=*/true,
1984 							stat_config.user_requested_cpu_list,
1985 							stat_config.system_wide,
1986 							stat_config.hardware_aware_grouping) < 0) {
1987 				ret = -1;
1988 				goto out;
1989 			}
1990 
1991 			evlist__for_each_entry(metric_evlist, evsel)
1992 				evsel->default_metricgroup = true;
1993 
1994 			evlist__splice_list_tail(evlist, &metric_evlist->core.entries);
1995 			metricgroup__copy_metric_events(evlist, /*cgrp=*/NULL,
1996 							&evlist->metric_events,
1997 							&metric_evlist->metric_events);
1998 			evlist__delete(metric_evlist);
1999 		}
2000 	}
2001 
2002 	/* Detailed events get appended to the event list: */
2003 
2004 	if (!ret && detailed_run >=  1) {
2005 		/*
2006 		 * Detailed stats (-d), covering the L1 and last level data
2007 		 * caches:
2008 		 */
2009 		ret = parse_events(evlist,
2010 				"L1-dcache-loads,"
2011 				"L1-dcache-load-misses,"
2012 				"LLC-loads,"
2013 				"LLC-load-misses",
2014 				&err);
2015 	}
2016 	if (!ret && detailed_run >=  2) {
2017 		/*
2018 		 * Very detailed stats (-d -d), covering the instruction cache
2019 		 * and the TLB caches:
2020 		 */
2021 		ret = parse_events(evlist,
2022 				"L1-icache-loads,"
2023 				"L1-icache-load-misses,"
2024 				"dTLB-loads,"
2025 				"dTLB-load-misses,"
2026 				"iTLB-loads,"
2027 				"iTLB-load-misses",
2028 				&err);
2029 	}
2030 	if (!ret && detailed_run >=  3) {
2031 		/*
2032 		 * Very, very detailed stats (-d -d -d), adding prefetch events:
2033 		 */
2034 		ret = parse_events(evlist,
2035 				"L1-dcache-prefetches,"
2036 				"L1-dcache-prefetch-misses",
2037 				&err);
2038 	}
2039 out:
2040 	if (!ret) {
2041 		evlist__for_each_entry(evlist, evsel) {
2042 			/*
2043 			 * Make at least one event non-skippable so fatal errors are visible.
2044 			 * 'cycles' always used to be default and non-skippable, so use that.
2045 			 */
2046 			if (strcmp("cycles", evsel__name(evsel)))
2047 				evsel->skippable = true;
2048 		}
2049 	}
2050 	parse_events_error__exit(&err);
2051 	evlist__splice_list_tail(evsel_list, &evlist->core.entries);
2052 	metricgroup__copy_metric_events(evsel_list, /*cgrp=*/NULL,
2053 					&evsel_list->metric_events,
2054 					&evlist->metric_events);
2055 	evlist__delete(evlist);
2056 	return ret;
2057 }
2058 
2059 static const char * const stat_record_usage[] = {
2060 	"perf stat record [<options>]",
2061 	NULL,
2062 };
2063 
init_features(struct perf_session * session)2064 static void init_features(struct perf_session *session)
2065 {
2066 	int feat;
2067 
2068 	for (feat = HEADER_FIRST_FEATURE; feat < HEADER_LAST_FEATURE; feat++)
2069 		perf_header__set_feat(&session->header, feat);
2070 
2071 	perf_header__clear_feat(&session->header, HEADER_DIR_FORMAT);
2072 	perf_header__clear_feat(&session->header, HEADER_BUILD_ID);
2073 	perf_header__clear_feat(&session->header, HEADER_TRACING_DATA);
2074 	perf_header__clear_feat(&session->header, HEADER_BRANCH_STACK);
2075 	perf_header__clear_feat(&session->header, HEADER_AUXTRACE);
2076 }
2077 
__cmd_record(const struct option stat_options[],struct opt_aggr_mode * opt_mode,int argc,const char ** argv)2078 static int __cmd_record(const struct option stat_options[], struct opt_aggr_mode *opt_mode,
2079 			int argc, const char **argv)
2080 {
2081 	struct perf_session *session;
2082 	struct perf_data *data = &perf_stat.data;
2083 
2084 	argc = parse_options(argc, argv, stat_options, stat_record_usage,
2085 			     PARSE_OPT_STOP_AT_NON_OPTION);
2086 	stat_config.aggr_mode = opt_aggr_mode_to_aggr_mode(opt_mode);
2087 
2088 	if (output_name)
2089 		data->path = output_name;
2090 
2091 	if (stat_config.run_count != 1 || forever) {
2092 		pr_err("Cannot use -r option with perf stat record.\n");
2093 		return -1;
2094 	}
2095 
2096 	session = perf_session__new(data, NULL);
2097 	if (IS_ERR(session)) {
2098 		pr_err("Perf session creation failed\n");
2099 		return PTR_ERR(session);
2100 	}
2101 
2102 	init_features(session);
2103 
2104 	session->evlist   = evsel_list;
2105 	perf_stat.session = session;
2106 	perf_stat.record  = true;
2107 	return argc;
2108 }
2109 
process_stat_round_event(struct perf_session * session,union perf_event * event)2110 static int process_stat_round_event(struct perf_session *session,
2111 				    union perf_event *event)
2112 {
2113 	struct perf_record_stat_round *stat_round = &event->stat_round;
2114 	struct timespec tsh, *ts = NULL;
2115 	struct perf_env *env = perf_session__env(session);
2116 	const char **argv = env->cmdline_argv;
2117 	int argc = env->nr_cmdline;
2118 
2119 	process_counters();
2120 
2121 	if (stat_round->type == PERF_STAT_ROUND_TYPE__FINAL)
2122 		update_stats(&walltime_nsecs_stats, stat_round->time);
2123 
2124 	if (stat_config.interval && stat_round->time) {
2125 		tsh.tv_sec  = stat_round->time / NSEC_PER_SEC;
2126 		tsh.tv_nsec = stat_round->time % NSEC_PER_SEC;
2127 		ts = &tsh;
2128 	}
2129 
2130 	print_counters(ts, argc, argv);
2131 	return 0;
2132 }
2133 
2134 static
process_stat_config_event(struct perf_session * session,union perf_event * event)2135 int process_stat_config_event(struct perf_session *session,
2136 			      union perf_event *event)
2137 {
2138 	const struct perf_tool *tool = session->tool;
2139 	struct perf_stat *st = container_of(tool, struct perf_stat, tool);
2140 
2141 	perf_event__read_stat_config(&stat_config, &event->stat_config);
2142 
2143 	if (perf_cpu_map__is_empty(st->cpus)) {
2144 		if (st->aggr_mode != AGGR_UNSET)
2145 			pr_warning("warning: processing task data, aggregation mode not set\n");
2146 	} else if (st->aggr_mode != AGGR_UNSET) {
2147 		stat_config.aggr_mode = st->aggr_mode;
2148 	}
2149 
2150 	if (perf_stat.data.is_pipe)
2151 		perf_stat_init_aggr_mode();
2152 	else
2153 		perf_stat_init_aggr_mode_file(st);
2154 
2155 	if (stat_config.aggr_map) {
2156 		int nr_aggr = stat_config.aggr_map->nr;
2157 
2158 		if (evlist__alloc_aggr_stats(session->evlist, nr_aggr) < 0) {
2159 			pr_err("cannot allocate aggr counts\n");
2160 			return -1;
2161 		}
2162 	}
2163 	return 0;
2164 }
2165 
set_maps(struct perf_stat * st)2166 static int set_maps(struct perf_stat *st)
2167 {
2168 	if (!st->cpus || !st->threads)
2169 		return 0;
2170 
2171 	if (WARN_ONCE(st->maps_allocated, "stats double allocation\n"))
2172 		return -EINVAL;
2173 
2174 	perf_evlist__set_maps(&evsel_list->core, st->cpus, st->threads);
2175 
2176 	if (evlist__alloc_stats(&stat_config, evsel_list, /*alloc_raw=*/true))
2177 		return -ENOMEM;
2178 
2179 	st->maps_allocated = true;
2180 	return 0;
2181 }
2182 
2183 static
process_thread_map_event(struct perf_session * session,union perf_event * event)2184 int process_thread_map_event(struct perf_session *session,
2185 			     union perf_event *event)
2186 {
2187 	const struct perf_tool *tool = session->tool;
2188 	struct perf_stat *st = container_of(tool, struct perf_stat, tool);
2189 
2190 	if (st->threads) {
2191 		pr_warning("Extra thread map event, ignoring.\n");
2192 		return 0;
2193 	}
2194 
2195 	st->threads = thread_map__new_event(&event->thread_map);
2196 	if (!st->threads)
2197 		return -ENOMEM;
2198 
2199 	return set_maps(st);
2200 }
2201 
2202 static
process_cpu_map_event(struct perf_session * session,union perf_event * event)2203 int process_cpu_map_event(struct perf_session *session,
2204 			  union perf_event *event)
2205 {
2206 	const struct perf_tool *tool = session->tool;
2207 	struct perf_stat *st = container_of(tool, struct perf_stat, tool);
2208 	struct perf_cpu_map *cpus;
2209 
2210 	if (st->cpus) {
2211 		pr_warning("Extra cpu map event, ignoring.\n");
2212 		return 0;
2213 	}
2214 
2215 	cpus = cpu_map__new_data(&event->cpu_map.data);
2216 	if (!cpus)
2217 		return -ENOMEM;
2218 
2219 	st->cpus = cpus;
2220 	return set_maps(st);
2221 }
2222 
2223 static const char * const stat_report_usage[] = {
2224 	"perf stat report [<options>]",
2225 	NULL,
2226 };
2227 
2228 static struct perf_stat perf_stat = {
2229 	.aggr_mode	= AGGR_UNSET,
2230 	.aggr_level	= 0,
2231 };
2232 
__cmd_report(int argc,const char ** argv)2233 static int __cmd_report(int argc, const char **argv)
2234 {
2235 	struct perf_session *session;
2236 	const struct option options[] = {
2237 	OPT_STRING('i', "input", &input_name, "file", "input file name"),
2238 	OPT_SET_UINT(0, "per-socket", &perf_stat.aggr_mode,
2239 		     "aggregate counts per processor socket", AGGR_SOCKET),
2240 	OPT_SET_UINT(0, "per-die", &perf_stat.aggr_mode,
2241 		     "aggregate counts per processor die", AGGR_DIE),
2242 	OPT_SET_UINT(0, "per-cluster", &perf_stat.aggr_mode,
2243 		     "aggregate counts perf processor cluster", AGGR_CLUSTER),
2244 	OPT_CALLBACK_OPTARG(0, "per-cache", &perf_stat.aggr_mode, &perf_stat.aggr_level,
2245 			    "cache level",
2246 			    "aggregate count at this cache level (Default: LLC)",
2247 			    parse_cache_level),
2248 	OPT_SET_UINT(0, "per-core", &perf_stat.aggr_mode,
2249 		     "aggregate counts per physical processor core", AGGR_CORE),
2250 	OPT_SET_UINT(0, "per-node", &perf_stat.aggr_mode,
2251 		     "aggregate counts per numa node", AGGR_NODE),
2252 	OPT_SET_UINT('A', "no-aggr", &perf_stat.aggr_mode,
2253 		     "disable CPU count aggregation", AGGR_NONE),
2254 	OPT_END()
2255 	};
2256 	struct stat st;
2257 	int ret;
2258 
2259 	argc = parse_options(argc, argv, options, stat_report_usage, 0);
2260 
2261 	if (!input_name || !strlen(input_name)) {
2262 		if (!fstat(STDIN_FILENO, &st) && S_ISFIFO(st.st_mode))
2263 			input_name = "-";
2264 		else
2265 			input_name = "perf.data";
2266 	}
2267 
2268 	perf_stat.data.path = input_name;
2269 	perf_stat.data.mode = PERF_DATA_MODE_READ;
2270 
2271 	perf_tool__init(&perf_stat.tool, /*ordered_events=*/false);
2272 	perf_stat.tool.attr		= perf_event__process_attr;
2273 	perf_stat.tool.event_update	= perf_event__process_event_update;
2274 	perf_stat.tool.thread_map	= process_thread_map_event;
2275 	perf_stat.tool.cpu_map		= process_cpu_map_event;
2276 	perf_stat.tool.stat_config	= process_stat_config_event;
2277 	perf_stat.tool.stat		= perf_event__process_stat_event;
2278 	perf_stat.tool.stat_round	= process_stat_round_event;
2279 
2280 	session = perf_session__new(&perf_stat.data, &perf_stat.tool);
2281 	if (IS_ERR(session))
2282 		return PTR_ERR(session);
2283 
2284 	perf_stat.session  = session;
2285 	stat_config.output = stderr;
2286 	evlist__delete(evsel_list);
2287 	evsel_list         = session->evlist;
2288 
2289 	ret = perf_session__process_events(session);
2290 	if (ret)
2291 		return ret;
2292 
2293 	perf_session__delete(session);
2294 	return 0;
2295 }
2296 
setup_system_wide(int forks)2297 static void setup_system_wide(int forks)
2298 {
2299 	/*
2300 	 * Make system wide (-a) the default target if
2301 	 * no target was specified and one of following
2302 	 * conditions is met:
2303 	 *
2304 	 *   - there's no workload specified
2305 	 *   - there is workload specified but all requested
2306 	 *     events are system wide events
2307 	 */
2308 	if (!target__none(&target))
2309 		return;
2310 
2311 	if (!forks)
2312 		target.system_wide = true;
2313 	else {
2314 		struct evsel *counter;
2315 
2316 		evlist__for_each_entry(evsel_list, counter) {
2317 			if (!counter->core.requires_cpu &&
2318 			    !evsel__name_is(counter, "duration_time")) {
2319 				return;
2320 			}
2321 		}
2322 
2323 		if (evsel_list->core.nr_entries)
2324 			target.system_wide = true;
2325 	}
2326 }
2327 
2328 #ifdef HAVE_ARCH_X86_64_SUPPORT
parse_tpebs_mode(const struct option * opt,const char * str,int unset __maybe_unused)2329 static int parse_tpebs_mode(const struct option *opt, const char *str,
2330 			    int unset __maybe_unused)
2331 {
2332 	enum tpebs_mode *mode = opt->value;
2333 
2334 	if (!strcasecmp("mean", str)) {
2335 		*mode = TPEBS_MODE__MEAN;
2336 		return 0;
2337 	}
2338 	if (!strcasecmp("min", str)) {
2339 		*mode = TPEBS_MODE__MIN;
2340 		return 0;
2341 	}
2342 	if (!strcasecmp("max", str)) {
2343 		*mode = TPEBS_MODE__MAX;
2344 		return 0;
2345 	}
2346 	if (!strcasecmp("last", str)) {
2347 		*mode = TPEBS_MODE__LAST;
2348 		return 0;
2349 	}
2350 	return -1;
2351 }
2352 #endif // HAVE_ARCH_X86_64_SUPPORT
2353 
cmd_stat(int argc,const char ** argv)2354 int cmd_stat(int argc, const char **argv)
2355 {
2356 	struct opt_aggr_mode opt_mode = {};
2357 	struct option stat_options[] = {
2358 		OPT_BOOLEAN('T', "transaction", &transaction_run,
2359 			"hardware transaction statistics"),
2360 		OPT_CALLBACK('e', "event", &parse_events_option_args, "event",
2361 			"event selector. use 'perf list' to list available events",
2362 			parse_events_option),
2363 		OPT_CALLBACK(0, "filter", &evsel_list, "filter",
2364 			"event filter", parse_filter),
2365 		OPT_BOOLEAN('i', "no-inherit", &stat_config.no_inherit,
2366 			"child tasks do not inherit counters"),
2367 		OPT_STRING('p', "pid", &target.pid, "pid",
2368 			"stat events on existing process id"),
2369 		OPT_STRING('t', "tid", &target.tid, "tid",
2370 			"stat events on existing thread id"),
2371 #ifdef HAVE_BPF_SKEL
2372 		OPT_STRING('b', "bpf-prog", &target.bpf_str, "bpf-prog-id",
2373 			"stat events on existing bpf program id"),
2374 		OPT_BOOLEAN(0, "bpf-counters", &target.use_bpf,
2375 			"use bpf program to count events"),
2376 		OPT_STRING(0, "bpf-attr-map", &target.attr_map, "attr-map-path",
2377 			"path to perf_event_attr map"),
2378 #endif
2379 		OPT_BOOLEAN('a', "all-cpus", &target.system_wide,
2380 			"system-wide collection from all CPUs"),
2381 		OPT_BOOLEAN(0, "scale", &stat_config.scale,
2382 			"Use --no-scale to disable counter scaling for multiplexing"),
2383 		OPT_INCR('v', "verbose", &verbose,
2384 			"be more verbose (show counter open errors, etc)"),
2385 		OPT_INTEGER('r', "repeat", &stat_config.run_count,
2386 			"repeat command and print average + stddev (max: 100, forever: 0)"),
2387 		OPT_BOOLEAN(0, "table", &stat_config.walltime_run_table,
2388 			"display details about each run (only with -r option)"),
2389 		OPT_BOOLEAN('n', "null", &stat_config.null_run,
2390 			"null run - dont start any counters"),
2391 		OPT_INCR('d', "detailed", &detailed_run,
2392 			"detailed run - start a lot of events"),
2393 		OPT_BOOLEAN('S', "sync", &sync_run,
2394 			"call sync() before starting a run"),
2395 		OPT_CALLBACK_NOOPT('B', "big-num", NULL, NULL,
2396 				"print large numbers with thousands\' separators",
2397 				stat__set_big_num),
2398 		OPT_STRING('C', "cpu", &target.cpu_list, "cpu",
2399 			"list of cpus to monitor in system-wide"),
2400 		OPT_BOOLEAN('A', "no-aggr", &opt_mode.no_aggr,
2401 			"disable aggregation across CPUs or PMUs"),
2402 		OPT_BOOLEAN(0, "no-merge", &opt_mode.no_aggr,
2403 			"disable aggregation the same as -A or -no-aggr"),
2404 		OPT_BOOLEAN(0, "hybrid-merge", &stat_config.hybrid_merge,
2405 			"Merge identical named hybrid events"),
2406 		OPT_STRING('x', "field-separator", &stat_config.csv_sep, "separator",
2407 			"print counts with custom separator"),
2408 		OPT_BOOLEAN('j', "json-output", &stat_config.json_output,
2409 			"print counts in JSON format"),
2410 		OPT_CALLBACK('G', "cgroup", &evsel_list, "name",
2411 			"monitor event in cgroup name only", parse_stat_cgroups),
2412 		OPT_STRING(0, "for-each-cgroup", &stat_config.cgroup_list, "name",
2413 			"expand events for each cgroup"),
2414 		OPT_STRING('o', "output", &output_name, "file", "output file name"),
2415 		OPT_BOOLEAN(0, "append", &append_file, "append to the output file"),
2416 		OPT_INTEGER(0, "log-fd", &output_fd,
2417 			"log output to fd, instead of stderr"),
2418 		OPT_STRING(0, "pre", &pre_cmd, "command",
2419 			"command to run prior to the measured command"),
2420 		OPT_STRING(0, "post", &post_cmd, "command",
2421 			"command to run after to the measured command"),
2422 		OPT_UINTEGER('I', "interval-print", &stat_config.interval,
2423 			"print counts at regular interval in ms "
2424 			"(overhead is possible for values <= 100ms)"),
2425 		OPT_INTEGER(0, "interval-count", &stat_config.times,
2426 			"print counts for fixed number of times"),
2427 		OPT_BOOLEAN(0, "interval-clear", &stat_config.interval_clear,
2428 			"clear screen in between new interval"),
2429 		OPT_UINTEGER(0, "timeout", &stat_config.timeout,
2430 			"stop workload and print counts after a timeout period in ms (>= 10ms)"),
2431 		OPT_BOOLEAN(0, "per-socket", &opt_mode.socket,
2432 			"aggregate counts per processor socket"),
2433 		OPT_BOOLEAN(0, "per-die", &opt_mode.die, "aggregate counts per processor die"),
2434 		OPT_BOOLEAN(0, "per-cluster", &opt_mode.cluster,
2435 			"aggregate counts per processor cluster"),
2436 		OPT_CALLBACK_OPTARG(0, "per-cache", &opt_mode, &stat_config.aggr_level,
2437 				"cache level", "aggregate count at this cache level (Default: LLC)",
2438 				parse_cache_level),
2439 		OPT_BOOLEAN(0, "per-core", &opt_mode.core,
2440 			"aggregate counts per physical processor core"),
2441 		OPT_BOOLEAN(0, "per-thread", &opt_mode.thread, "aggregate counts per thread"),
2442 		OPT_BOOLEAN(0, "per-node", &opt_mode.node, "aggregate counts per numa node"),
2443 		OPT_INTEGER('D', "delay", &target.initial_delay,
2444 			"ms to wait before starting measurement after program start (-1: start with events disabled)"),
2445 		OPT_CALLBACK_NOOPT(0, "metric-only", &stat_config.metric_only, NULL,
2446 				"Only print computed metrics. No raw values", enable_metric_only),
2447 		OPT_BOOLEAN(0, "metric-no-group", &stat_config.metric_no_group,
2448 			"don't group metric events, impacts multiplexing"),
2449 		OPT_BOOLEAN(0, "metric-no-merge", &stat_config.metric_no_merge,
2450 			"don't try to share events between metrics in a group"),
2451 		OPT_BOOLEAN(0, "metric-no-threshold", &stat_config.metric_no_threshold,
2452 			"disable adding events for the metric threshold calculation"),
2453 		OPT_BOOLEAN(0, "topdown", &topdown_run,
2454 			"measure top-down statistics"),
2455 #ifdef HAVE_ARCH_X86_64_SUPPORT
2456 		OPT_BOOLEAN(0, "record-tpebs", &tpebs_recording,
2457 			"enable recording for tpebs when retire_latency required"),
2458 		OPT_CALLBACK(0, "tpebs-mode", &tpebs_mode, "tpebs-mode",
2459 			"Mode of TPEBS recording: mean, min or max",
2460 			parse_tpebs_mode),
2461 #endif
2462 		OPT_UINTEGER(0, "td-level", &stat_config.topdown_level,
2463 			"Set the metrics level for the top-down statistics (0: max level)"),
2464 		OPT_BOOLEAN(0, "smi-cost", &smi_cost,
2465 			"measure SMI cost"),
2466 		OPT_CALLBACK('M', "metrics", &evsel_list, "metric/metric group list",
2467 			"monitor specified metrics or metric groups (separated by ,)",
2468 			append_metric_groups),
2469 		OPT_BOOLEAN_FLAG(0, "all-kernel", &stat_config.all_kernel,
2470 				"Configure all used events to run in kernel space.",
2471 				PARSE_OPT_EXCLUSIVE),
2472 		OPT_BOOLEAN_FLAG(0, "all-user", &stat_config.all_user,
2473 				"Configure all used events to run in user space.",
2474 				PARSE_OPT_EXCLUSIVE),
2475 		OPT_BOOLEAN(0, "percore-show-thread", &stat_config.percore_show_thread,
2476 			"Use with 'percore' event qualifier to show the event "
2477 			"counts of one hardware thread by sum up total hardware "
2478 			"threads of same physical core"),
2479 		OPT_BOOLEAN(0, "summary", &stat_config.summary,
2480 			"print summary for interval mode"),
2481 		OPT_BOOLEAN(0, "no-csv-summary", &stat_config.no_csv_summary,
2482 			"don't print 'summary' for CSV summary output"),
2483 		OPT_BOOLEAN(0, "quiet", &quiet,
2484 			"don't print any output, messages or warnings (useful with record)"),
2485 		OPT_CALLBACK(0, "cputype", &evsel_list, "hybrid cpu type",
2486 			"Only enable events on applying cpu with this type "
2487 			"for hybrid platform (e.g. core or atom)",
2488 			parse_cputype),
2489 #ifdef HAVE_LIBPFM
2490 		OPT_CALLBACK(0, "pfm-events", &evsel_list, "event",
2491 			"libpfm4 event selector. use 'perf list' to list available events",
2492 			parse_libpfm_events_option),
2493 #endif
2494 		OPT_CALLBACK(0, "control", &stat_config, "fd:ctl-fd[,ack-fd] or fifo:ctl-fifo[,ack-fifo]",
2495 			"Listen on ctl-fd descriptor for command to control measurement ('enable': enable events, 'disable': disable events).\n"
2496 			"\t\t\t  Optionally send control command completion ('ack\\n') to ack-fd descriptor.\n"
2497 			"\t\t\t  Alternatively, ctl-fifo / ack-fifo will be opened and used as ctl-fd / ack-fd.",
2498 			parse_control_option),
2499 		OPT_CALLBACK_OPTARG(0, "iostat", &evsel_list, &stat_config, "default",
2500 				"measure I/O performance metrics provided by arch/platform",
2501 				iostat_parse),
2502 		OPT_END()
2503 	};
2504 	const char * const stat_usage[] = {
2505 		"perf stat [<options>] [<command>]",
2506 		NULL
2507 	};
2508 	int status = -EINVAL, run_idx, err;
2509 	const char *mode;
2510 	FILE *output = stderr;
2511 	unsigned int interval, timeout;
2512 	const char * const stat_subcommands[] = { "record", "report" };
2513 	char errbuf[BUFSIZ];
2514 
2515 	setlocale(LC_ALL, "");
2516 
2517 	evsel_list = evlist__new();
2518 	if (evsel_list == NULL)
2519 		return -ENOMEM;
2520 
2521 	parse_events__shrink_config_terms();
2522 
2523 	/* String-parsing callback-based options would segfault when negated */
2524 	set_option_flag(stat_options, 'e', "event", PARSE_OPT_NONEG);
2525 	set_option_flag(stat_options, 'M', "metrics", PARSE_OPT_NONEG);
2526 	set_option_flag(stat_options, 'G', "cgroup", PARSE_OPT_NONEG);
2527 
2528 	argc = parse_options_subcommand(argc, argv, stat_options, stat_subcommands,
2529 					(const char **) stat_usage,
2530 					PARSE_OPT_STOP_AT_NON_OPTION);
2531 
2532 	stat_config.aggr_mode = opt_aggr_mode_to_aggr_mode(&opt_mode);
2533 
2534 	if (stat_config.csv_sep) {
2535 		stat_config.csv_output = true;
2536 		if (!strcmp(stat_config.csv_sep, "\\t"))
2537 			stat_config.csv_sep = "\t";
2538 	} else
2539 		stat_config.csv_sep = DEFAULT_SEPARATOR;
2540 
2541 	if (argc && strlen(argv[0]) > 2 && strstarts("record", argv[0])) {
2542 		argc = __cmd_record(stat_options, &opt_mode, argc, argv);
2543 		if (argc < 0)
2544 			return -1;
2545 	} else if (argc && strlen(argv[0]) > 2 && strstarts("report", argv[0]))
2546 		return __cmd_report(argc, argv);
2547 
2548 	interval = stat_config.interval;
2549 	timeout = stat_config.timeout;
2550 
2551 	/*
2552 	 * For record command the -o is already taken care of.
2553 	 */
2554 	if (!STAT_RECORD && output_name && strcmp(output_name, "-"))
2555 		output = NULL;
2556 
2557 	if (output_name && output_fd) {
2558 		fprintf(stderr, "cannot use both --output and --log-fd\n");
2559 		parse_options_usage(stat_usage, stat_options, "o", 1);
2560 		parse_options_usage(NULL, stat_options, "log-fd", 0);
2561 		goto out;
2562 	}
2563 
2564 	if (stat_config.metric_only && stat_config.aggr_mode == AGGR_THREAD) {
2565 		fprintf(stderr, "--metric-only is not supported with --per-thread\n");
2566 		goto out;
2567 	}
2568 
2569 	if (stat_config.metric_only && stat_config.run_count > 1) {
2570 		fprintf(stderr, "--metric-only is not supported with -r\n");
2571 		goto out;
2572 	}
2573 
2574 	if (stat_config.csv_output || (stat_config.metric_only && stat_config.json_output)) {
2575 		/*
2576 		 * Current CSV and metric-only JSON output doesn't display the
2577 		 * metric threshold so don't compute it.
2578 		 */
2579 		stat_config.metric_no_threshold = true;
2580 	}
2581 
2582 	if (stat_config.walltime_run_table && stat_config.run_count <= 1) {
2583 		fprintf(stderr, "--table is only supported with -r\n");
2584 		parse_options_usage(stat_usage, stat_options, "r", 1);
2585 		parse_options_usage(NULL, stat_options, "table", 0);
2586 		goto out;
2587 	}
2588 
2589 	if (output_fd < 0) {
2590 		fprintf(stderr, "argument to --log-fd must be a > 0\n");
2591 		parse_options_usage(stat_usage, stat_options, "log-fd", 0);
2592 		goto out;
2593 	}
2594 
2595 	if (!output && !quiet) {
2596 		struct timespec tm;
2597 		mode = append_file ? "a" : "w";
2598 
2599 		output = fopen(output_name, mode);
2600 		if (!output) {
2601 			perror("failed to create output file");
2602 			return -1;
2603 		}
2604 		if (!stat_config.json_output) {
2605 			clock_gettime(CLOCK_REALTIME, &tm);
2606 			fprintf(output, "# started on %s\n", ctime(&tm.tv_sec));
2607 		}
2608 	} else if (output_fd > 0) {
2609 		mode = append_file ? "a" : "w";
2610 		output = fdopen(output_fd, mode);
2611 		if (!output) {
2612 			perror("Failed opening logfd");
2613 			return -errno;
2614 		}
2615 	}
2616 
2617 	if (stat_config.interval_clear && !isatty(fileno(output))) {
2618 		fprintf(stderr, "--interval-clear does not work with output\n");
2619 		parse_options_usage(stat_usage, stat_options, "o", 1);
2620 		parse_options_usage(NULL, stat_options, "log-fd", 0);
2621 		parse_options_usage(NULL, stat_options, "interval-clear", 0);
2622 		return -1;
2623 	}
2624 
2625 	stat_config.output = output;
2626 
2627 	/*
2628 	 * let the spreadsheet do the pretty-printing
2629 	 */
2630 	if (stat_config.csv_output) {
2631 		/* User explicitly passed -B? */
2632 		if (big_num_opt == 1) {
2633 			fprintf(stderr, "-B option not supported with -x\n");
2634 			parse_options_usage(stat_usage, stat_options, "B", 1);
2635 			parse_options_usage(NULL, stat_options, "x", 1);
2636 			goto out;
2637 		} else /* Nope, so disable big number formatting */
2638 			stat_config.big_num = false;
2639 	} else if (big_num_opt == 0) /* User passed --no-big-num */
2640 		stat_config.big_num = false;
2641 
2642 	target.inherit = !stat_config.no_inherit;
2643 	err = target__validate(&target);
2644 	if (err) {
2645 		target__strerror(&target, err, errbuf, BUFSIZ);
2646 		pr_warning("%s\n", errbuf);
2647 	}
2648 
2649 	setup_system_wide(argc);
2650 
2651 	/*
2652 	 * Display user/system times only for single
2653 	 * run and when there's specified tracee.
2654 	 */
2655 	if ((stat_config.run_count == 1) && target__none(&target))
2656 		stat_config.ru_display = true;
2657 
2658 	if (stat_config.run_count < 0) {
2659 		pr_err("Run count must be a positive number\n");
2660 		parse_options_usage(stat_usage, stat_options, "r", 1);
2661 		goto out;
2662 	} else if (stat_config.run_count == 0) {
2663 		forever = true;
2664 		stat_config.run_count = 1;
2665 	}
2666 
2667 	if (stat_config.walltime_run_table) {
2668 		stat_config.walltime_run = zalloc(stat_config.run_count * sizeof(stat_config.walltime_run[0]));
2669 		if (!stat_config.walltime_run) {
2670 			pr_err("failed to setup -r option");
2671 			goto out;
2672 		}
2673 	}
2674 
2675 	if ((stat_config.aggr_mode == AGGR_THREAD) &&
2676 		!target__has_task(&target)) {
2677 		if (!target.system_wide || target.cpu_list) {
2678 			fprintf(stderr, "The --per-thread option is only "
2679 				"available when monitoring via -p -t -a "
2680 				"options or only --per-thread.\n");
2681 			parse_options_usage(NULL, stat_options, "p", 1);
2682 			parse_options_usage(NULL, stat_options, "t", 1);
2683 			goto out;
2684 		}
2685 	}
2686 
2687 	/*
2688 	 * no_aggr, cgroup are for system-wide only
2689 	 * --per-thread is aggregated per thread, we dont mix it with cpu mode
2690 	 */
2691 	if (((stat_config.aggr_mode != AGGR_GLOBAL &&
2692 	      stat_config.aggr_mode != AGGR_THREAD) ||
2693 	     (nr_cgroups || stat_config.cgroup_list)) &&
2694 	    !target__has_cpu(&target)) {
2695 		fprintf(stderr, "both cgroup and no-aggregation "
2696 			"modes only available in system-wide mode\n");
2697 
2698 		parse_options_usage(stat_usage, stat_options, "G", 1);
2699 		parse_options_usage(NULL, stat_options, "A", 1);
2700 		parse_options_usage(NULL, stat_options, "a", 1);
2701 		parse_options_usage(NULL, stat_options, "for-each-cgroup", 0);
2702 		goto out;
2703 	}
2704 
2705 	if (stat_config.iostat_run) {
2706 		status = iostat_prepare(evsel_list, &stat_config);
2707 		if (status)
2708 			goto out;
2709 		if (iostat_mode == IOSTAT_LIST) {
2710 			iostat_list(evsel_list, &stat_config);
2711 			goto out;
2712 		} else if (verbose > 0)
2713 			iostat_list(evsel_list, &stat_config);
2714 		if (iostat_mode == IOSTAT_RUN && !target__has_cpu(&target))
2715 			target.system_wide = true;
2716 	}
2717 
2718 	if ((stat_config.aggr_mode == AGGR_THREAD) && (target.system_wide))
2719 		target.per_thread = true;
2720 
2721 	stat_config.system_wide = target.system_wide;
2722 	if (target.cpu_list) {
2723 		stat_config.user_requested_cpu_list = strdup(target.cpu_list);
2724 		if (!stat_config.user_requested_cpu_list) {
2725 			status = -ENOMEM;
2726 			goto out;
2727 		}
2728 	}
2729 
2730 	/*
2731 	 * Metric parsing needs to be delayed as metrics may optimize events
2732 	 * knowing the target is system-wide.
2733 	 */
2734 	if (metrics) {
2735 		const char *pmu = parse_events_option_args.pmu_filter ?: "all";
2736 		int ret = metricgroup__parse_groups(evsel_list, pmu, metrics,
2737 						stat_config.metric_no_group,
2738 						stat_config.metric_no_merge,
2739 						stat_config.metric_no_threshold,
2740 						stat_config.user_requested_cpu_list,
2741 						stat_config.system_wide,
2742 						stat_config.hardware_aware_grouping);
2743 
2744 		zfree(&metrics);
2745 		if (ret) {
2746 			status = ret;
2747 			goto out;
2748 		}
2749 	}
2750 
2751 	if (add_default_events())
2752 		goto out;
2753 
2754 	if (stat_config.cgroup_list) {
2755 		if (nr_cgroups > 0) {
2756 			pr_err("--cgroup and --for-each-cgroup cannot be used together\n");
2757 			parse_options_usage(stat_usage, stat_options, "G", 1);
2758 			parse_options_usage(NULL, stat_options, "for-each-cgroup", 0);
2759 			goto out;
2760 		}
2761 
2762 		if (evlist__expand_cgroup(evsel_list, stat_config.cgroup_list, true) < 0) {
2763 			parse_options_usage(stat_usage, stat_options,
2764 					    "for-each-cgroup", 0);
2765 			goto out;
2766 		}
2767 	}
2768 
2769 	evlist__warn_user_requested_cpus(evsel_list, target.cpu_list);
2770 
2771 	if (evlist__create_maps(evsel_list, &target) < 0) {
2772 		if (target__has_task(&target)) {
2773 			pr_err("Problems finding threads of monitor\n");
2774 			parse_options_usage(stat_usage, stat_options, "p", 1);
2775 			parse_options_usage(NULL, stat_options, "t", 1);
2776 		} else if (target__has_cpu(&target)) {
2777 			perror("failed to parse CPUs map");
2778 			parse_options_usage(stat_usage, stat_options, "C", 1);
2779 			parse_options_usage(NULL, stat_options, "a", 1);
2780 		}
2781 		goto out;
2782 	}
2783 
2784 	evlist__check_cpu_maps(evsel_list);
2785 
2786 	/*
2787 	 * Initialize thread_map with comm names,
2788 	 * so we could print it out on output.
2789 	 */
2790 	if (stat_config.aggr_mode == AGGR_THREAD) {
2791 		thread_map__read_comms(evsel_list->core.threads);
2792 	}
2793 
2794 	if (stat_config.aggr_mode == AGGR_NODE)
2795 		cpu__setup_cpunode_map();
2796 
2797 	if (stat_config.times && interval)
2798 		interval_count = true;
2799 	else if (stat_config.times && !interval) {
2800 		pr_err("interval-count option should be used together with "
2801 				"interval-print.\n");
2802 		parse_options_usage(stat_usage, stat_options, "interval-count", 0);
2803 		parse_options_usage(stat_usage, stat_options, "I", 1);
2804 		goto out;
2805 	}
2806 
2807 	if (timeout && timeout < 100) {
2808 		if (timeout < 10) {
2809 			pr_err("timeout must be >= 10ms.\n");
2810 			parse_options_usage(stat_usage, stat_options, "timeout", 0);
2811 			goto out;
2812 		} else
2813 			pr_warning("timeout < 100ms. "
2814 				   "The overhead percentage could be high in some cases. "
2815 				   "Please proceed with caution.\n");
2816 	}
2817 	if (timeout && interval) {
2818 		pr_err("timeout option is not supported with interval-print.\n");
2819 		parse_options_usage(stat_usage, stat_options, "timeout", 0);
2820 		parse_options_usage(stat_usage, stat_options, "I", 1);
2821 		goto out;
2822 	}
2823 
2824 	if (perf_stat_init_aggr_mode())
2825 		goto out;
2826 
2827 	if (evlist__alloc_stats(&stat_config, evsel_list, interval))
2828 		goto out;
2829 
2830 	/*
2831 	 * Set sample_type to PERF_SAMPLE_IDENTIFIER, which should be harmless
2832 	 * while avoiding that older tools show confusing messages.
2833 	 *
2834 	 * However for pipe sessions we need to keep it zero,
2835 	 * because script's perf_evsel__check_attr is triggered
2836 	 * by attr->sample_type != 0, and we can't run it on
2837 	 * stat sessions.
2838 	 */
2839 	stat_config.identifier = !(STAT_RECORD && perf_stat.data.is_pipe);
2840 
2841 	/*
2842 	 * We dont want to block the signals - that would cause
2843 	 * child tasks to inherit that and Ctrl-C would not work.
2844 	 * What we want is for Ctrl-C to work in the exec()-ed
2845 	 * task, but being ignored by perf stat itself:
2846 	 */
2847 	atexit(sig_atexit);
2848 	if (!forever)
2849 		signal(SIGINT,  skip_signal);
2850 	signal(SIGCHLD, skip_signal);
2851 	signal(SIGALRM, skip_signal);
2852 	signal(SIGABRT, skip_signal);
2853 
2854 	if (evlist__initialize_ctlfd(evsel_list, stat_config.ctl_fd, stat_config.ctl_fd_ack))
2855 		goto out;
2856 
2857 	/* Enable ignoring missing threads when -p option is defined. */
2858 	evlist__first(evsel_list)->ignore_missing_thread = target.pid;
2859 	status = 0;
2860 	for (run_idx = 0; forever || run_idx < stat_config.run_count; run_idx++) {
2861 		if (stat_config.run_count != 1 && verbose > 0)
2862 			fprintf(output, "[ perf stat: executing run #%d ... ]\n",
2863 				run_idx + 1);
2864 
2865 		if (run_idx != 0)
2866 			evlist__reset_prev_raw_counts(evsel_list);
2867 
2868 		status = run_perf_stat(argc, argv, run_idx);
2869 		if (status == -1)
2870 			break;
2871 
2872 		if (forever && !interval) {
2873 			print_counters(NULL, argc, argv);
2874 			perf_stat__reset_stats();
2875 		}
2876 	}
2877 
2878 	if (!forever && status != -1 && (!interval || stat_config.summary)) {
2879 		if (stat_config.run_count > 1)
2880 			evlist__copy_res_stats(&stat_config, evsel_list);
2881 		print_counters(NULL, argc, argv);
2882 	}
2883 
2884 	evlist__finalize_ctlfd(evsel_list);
2885 
2886 	if (STAT_RECORD) {
2887 		/*
2888 		 * We synthesize the kernel mmap record just so that older tools
2889 		 * don't emit warnings about not being able to resolve symbols
2890 		 * due to /proc/sys/kernel/kptr_restrict settings and instead provide
2891 		 * a saner message about no samples being in the perf.data file.
2892 		 *
2893 		 * This also serves to suppress a warning about f_header.data.size == 0
2894 		 * in header.c at the moment 'perf stat record' gets introduced, which
2895 		 * is not really needed once we start adding the stat specific PERF_RECORD_
2896 		 * records, but the need to suppress the kptr_restrict messages in older
2897 		 * tools remain  -acme
2898 		 */
2899 		int fd = perf_data__fd(&perf_stat.data);
2900 
2901 		err = perf_event__synthesize_kernel_mmap((void *)&perf_stat,
2902 							 process_synthesized_event,
2903 							 &perf_stat.session->machines.host);
2904 		if (err) {
2905 			pr_warning("Couldn't synthesize the kernel mmap record, harmless, "
2906 				   "older tools may produce warnings about this file\n.");
2907 		}
2908 
2909 		if (!interval) {
2910 			if (WRITE_STAT_ROUND_EVENT(walltime_nsecs_stats.max, FINAL))
2911 				pr_err("failed to write stat round event\n");
2912 		}
2913 
2914 		if (!perf_stat.data.is_pipe) {
2915 			perf_stat.session->header.data_size += perf_stat.bytes_written;
2916 			perf_session__write_header(perf_stat.session, evsel_list, fd, true);
2917 		}
2918 
2919 		evlist__close(evsel_list);
2920 		perf_session__delete(perf_stat.session);
2921 	}
2922 
2923 	perf_stat__exit_aggr_mode();
2924 	evlist__free_stats(evsel_list);
2925 out:
2926 	if (stat_config.iostat_run)
2927 		iostat_release(evsel_list);
2928 
2929 	zfree(&stat_config.walltime_run);
2930 	zfree(&stat_config.user_requested_cpu_list);
2931 
2932 	if (smi_cost && smi_reset)
2933 		sysfs__write_int(FREEZE_ON_SMI_PATH, 0);
2934 
2935 	evlist__delete(evsel_list);
2936 
2937 	evlist__close_control(stat_config.ctl_fd, stat_config.ctl_fd_ack, &stat_config.ctl_fd_close);
2938 
2939 	return status;
2940 }
2941