builtin-stat.c 51.1 KB
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/*
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 * builtin-stat.c
 *
 * Builtin stat command: Give a precise performance counters summary
 * overview about any workload, CPU or specific PID.
 *
 * Sample output:
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   $ perf stat ./hackbench 10
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  Time: 0.118
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  Performance counter stats for './hackbench 10':
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       1708.761321 task-clock                #   11.037 CPUs utilized
            41,190 context-switches          #    0.024 M/sec
             6,735 CPU-migrations            #    0.004 M/sec
            17,318 page-faults               #    0.010 M/sec
     5,205,202,243 cycles                    #    3.046 GHz
     3,856,436,920 stalled-cycles-frontend   #   74.09% frontend cycles idle
     1,600,790,871 stalled-cycles-backend    #   30.75% backend  cycles idle
     2,603,501,247 instructions              #    0.50  insns per cycle
                                             #    1.48  stalled cycles per insn
       484,357,498 branches                  #  283.455 M/sec
         6,388,934 branch-misses             #    1.32% of all branches

        0.154822978  seconds time elapsed
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 *
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 * Copyright (C) 2008-2011, Red Hat Inc, Ingo Molnar <mingo@redhat.com>
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 *
 * Improvements and fixes by:
 *
 *   Arjan van de Ven <arjan@linux.intel.com>
 *   Yanmin Zhang <yanmin.zhang@intel.com>
 *   Wu Fengguang <fengguang.wu@intel.com>
 *   Mike Galbraith <efault@gmx.de>
 *   Paul Mackerras <paulus@samba.org>
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 *   Jaswinder Singh Rajput <jaswinder@kernel.org>
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 *
 * Released under the GPL v2. (and only v2, not any later version)
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 */

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#include "perf.h"
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#include "builtin.h"
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#include "util/cgroup.h"
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#include "util/util.h"
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#include <subcmd/parse-options.h>
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#include "util/parse-events.h"
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#include "util/pmu.h"
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#include "util/event.h"
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#include "util/evlist.h"
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#include "util/evsel.h"
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#include "util/debug.h"
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#include "util/color.h"
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#include "util/stat.h"
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#include "util/header.h"
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#include "util/cpumap.h"
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#include "util/thread.h"
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#include "util/thread_map.h"
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#include "util/counts.h"
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#include "util/session.h"
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#include "util/tool.h"
#include "asm/bug.h"
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#include <stdlib.h>
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#include <sys/prctl.h>
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#include <locale.h>
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#define DEFAULT_SEPARATOR	" "
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#define CNTR_NOT_SUPPORTED	"<not supported>"
#define CNTR_NOT_COUNTED	"<not counted>"
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static void print_counters(struct timespec *ts, int argc, const char **argv);
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/* Default events used for perf stat -T */
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static const char *transaction_attrs = {
	"task-clock,"
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	"{"
	"instructions,"
	"cycles,"
	"cpu/cycles-t/,"
	"cpu/tx-start/,"
	"cpu/el-start/,"
	"cpu/cycles-ct/"
	"}"
};

/* More limited version when the CPU does not have all events. */
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static const char * transaction_limited_attrs = {
	"task-clock,"
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	"{"
	"instructions,"
	"cycles,"
	"cpu/cycles-t/,"
	"cpu/tx-start/"
	"}"
};

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static struct perf_evlist	*evsel_list;
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static struct target target = {
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	.uid	= UINT_MAX,
};
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typedef int (*aggr_get_id_t)(struct cpu_map *m, int cpu);

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static int			run_count			=  1;
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static bool			no_inherit			= false;
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static volatile pid_t		child_pid			= -1;
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static bool			null_run			=  false;
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static int			detailed_run			=  0;
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static bool			transaction_run;
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static bool			big_num				=  true;
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static int			big_num_opt			=  -1;
static const char		*csv_sep			= NULL;
static bool			csv_output			= false;
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static bool			group				= false;
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static const char		*pre_cmd			= NULL;
static const char		*post_cmd			= NULL;
static bool			sync_run			= false;
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static unsigned int		initial_delay			= 0;
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static unsigned int		unit_width			= 4; /* strlen("unit") */
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static bool			forever				= false;
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static struct timespec		ref_time;
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static struct cpu_map		*aggr_map;
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static aggr_get_id_t		aggr_get_id;
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static bool			append_file;
static const char		*output_name;
static int			output_fd;
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struct perf_stat {
	bool			 record;
	struct perf_data_file	 file;
	struct perf_session	*session;
	u64			 bytes_written;
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	struct perf_tool	 tool;
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	bool			 maps_allocated;
	struct cpu_map		*cpus;
	struct thread_map	*threads;
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	enum aggr_mode		 aggr_mode;
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};

static struct perf_stat		perf_stat;
#define STAT_RECORD		perf_stat.record

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static volatile int done = 0;

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static struct perf_stat_config stat_config = {
	.aggr_mode	= AGGR_GLOBAL,
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	.scale		= true,
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};

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static inline void diff_timespec(struct timespec *r, struct timespec *a,
				 struct timespec *b)
{
	r->tv_sec = a->tv_sec - b->tv_sec;
	if (a->tv_nsec < b->tv_nsec) {
		r->tv_nsec = a->tv_nsec + 1000000000L - b->tv_nsec;
		r->tv_sec--;
	} else {
		r->tv_nsec = a->tv_nsec - b->tv_nsec ;
	}
}

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static void perf_stat__reset_stats(void)
{
	perf_evlist__reset_stats(evsel_list);
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	perf_stat__reset_shadow_stats();
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}

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static int create_perf_stat_counter(struct perf_evsel *evsel)
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{
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	struct perf_event_attr *attr = &evsel->attr;
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	if (stat_config.scale)
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		attr->read_format = PERF_FORMAT_TOTAL_TIME_ENABLED |
				    PERF_FORMAT_TOTAL_TIME_RUNNING;
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	attr->inherit = !no_inherit;

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	/*
	 * Some events get initialized with sample_(period/type) set,
	 * like tracepoints. Clear it up for counting.
	 */
	attr->sample_period = 0;
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	/*
	 * But set sample_type to PERF_SAMPLE_IDENTIFIER, which should be harmless
	 * while avoiding that older tools show confusing messages.
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	 *
	 * However for pipe sessions we need to keep it zero,
	 * because script's perf_evsel__check_attr is triggered
	 * by attr->sample_type != 0, and we can't run it on
	 * stat sessions.
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	 */
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	if (!(STAT_RECORD && perf_stat.file.is_pipe))
		attr->sample_type = PERF_SAMPLE_IDENTIFIER;
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	/*
	 * Disabling all counters initially, they will be enabled
	 * either manually by us or by kernel via enable_on_exec
	 * set later.
	 */
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	if (perf_evsel__is_group_leader(evsel)) {
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		attr->disabled = 1;

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		/*
		 * In case of initial_delay we enable tracee
		 * events manually.
		 */
		if (target__none(&target) && !initial_delay)
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			attr->enable_on_exec = 1;
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	}
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	if (target__has_cpu(&target))
		return perf_evsel__open_per_cpu(evsel, perf_evsel__cpus(evsel));

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	return perf_evsel__open_per_thread(evsel, evsel_list->threads);
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}

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/*
 * Does the counter have nsecs as a unit?
 */
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static inline int nsec_counter(struct perf_evsel *evsel)
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{
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	if (perf_evsel__match(evsel, SOFTWARE, SW_CPU_CLOCK) ||
	    perf_evsel__match(evsel, SOFTWARE, SW_TASK_CLOCK))
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		return 1;

	return 0;
}

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static int process_synthesized_event(struct perf_tool *tool __maybe_unused,
				     union perf_event *event,
				     struct perf_sample *sample __maybe_unused,
				     struct machine *machine __maybe_unused)
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{
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	if (perf_data_file__write(&perf_stat.file, event, event->header.size) < 0) {
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		pr_err("failed to write perf data, error: %m\n");
		return -1;
	}

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	perf_stat.bytes_written += event->header.size;
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	return 0;
}

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static int write_stat_round_event(u64 tm, u64 type)
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{
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	return perf_event__synthesize_stat_round(NULL, tm, type,
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						 process_synthesized_event,
						 NULL);
}

#define WRITE_STAT_ROUND_EVENT(time, interval) \
	write_stat_round_event(time, PERF_STAT_ROUND_TYPE__ ## interval)

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#define SID(e, x, y) xyarray__entry(e->sample_id, x, y)

static int
perf_evsel__write_stat_event(struct perf_evsel *counter, u32 cpu, u32 thread,
			     struct perf_counts_values *count)
{
	struct perf_sample_id *sid = SID(counter, cpu, thread);

	return perf_event__synthesize_stat(NULL, cpu, thread, sid->id, count,
					   process_synthesized_event, NULL);
}

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/*
 * Read out the results of a single counter:
 * do not aggregate counts across CPUs in system-wide mode
 */
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static int read_counter(struct perf_evsel *counter)
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{
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	int nthreads = thread_map__nr(evsel_list->threads);
	int ncpus = perf_evsel__nr_cpus(counter);
	int cpu, thread;
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	if (!counter->supported)
		return -ENOENT;

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	if (counter->system_wide)
		nthreads = 1;

	for (thread = 0; thread < nthreads; thread++) {
		for (cpu = 0; cpu < ncpus; cpu++) {
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			struct perf_counts_values *count;

			count = perf_counts(counter->counts, cpu, thread);
			if (perf_evsel__read(counter, cpu, thread, count))
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				return -1;
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			if (STAT_RECORD) {
				if (perf_evsel__write_stat_event(counter, cpu, thread, count)) {
					pr_err("failed to write stat event\n");
					return -1;
				}
			}
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		}
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	}
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	return 0;
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}

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static void read_counters(bool close_counters)
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{
	struct perf_evsel *counter;

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	evlist__for_each(evsel_list, counter) {
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		if (read_counter(counter))
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			pr_debug("failed to read counter %s\n", counter->name);
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		if (perf_stat_process_counter(&stat_config, counter))
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			pr_warning("failed to process counter %s\n", counter->name);
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		if (close_counters) {
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			perf_evsel__close_fd(counter, perf_evsel__nr_cpus(counter),
					     thread_map__nr(evsel_list->threads));
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		}
	}
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}

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static void process_interval(void)
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{
	struct timespec ts, rs;

	read_counters(false);
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	clock_gettime(CLOCK_MONOTONIC, &ts);
	diff_timespec(&rs, &ts, &ref_time);

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	if (STAT_RECORD) {
		if (WRITE_STAT_ROUND_EVENT(rs.tv_sec * NSECS_PER_SEC + rs.tv_nsec, INTERVAL))
			pr_err("failed to write stat round event\n");
	}

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	print_counters(&rs, 0, NULL);
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}

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static void enable_counters(void)
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{
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	if (initial_delay)
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		usleep(initial_delay * 1000);
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	/*
	 * We need to enable counters only if:
	 * - we don't have tracee (attaching to task or cpu)
	 * - we have initial delay configured
	 */
	if (!target__none(&target) || initial_delay)
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		perf_evlist__enable(evsel_list);
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}

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static volatile int workload_exec_errno;
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/*
 * perf_evlist__prepare_workload will send a SIGUSR1
 * if the fork fails, since we asked by setting its
 * want_signal to true.
 */
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static void workload_exec_failed_signal(int signo __maybe_unused, siginfo_t *info,
					void *ucontext __maybe_unused)
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{
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	workload_exec_errno = info->si_value.sival_int;
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}

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static bool has_unit(struct perf_evsel *counter)
{
	return counter->unit && *counter->unit;
}

static bool has_scale(struct perf_evsel *counter)
{
	return counter->scale != 1;
}

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static int perf_stat_synthesize_config(bool is_pipe)
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{
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	struct perf_evsel *counter;
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	int err;

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	if (is_pipe) {
		err = perf_event__synthesize_attrs(NULL, perf_stat.session,
						   process_synthesized_event);
		if (err < 0) {
			pr_err("Couldn't synthesize attrs.\n");
			return err;
		}
	}

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	/*
	 * Synthesize other events stuff not carried within
	 * attr event - unit, scale, name
	 */
	evlist__for_each(evsel_list, counter) {
		if (!counter->supported)
			continue;

		/*
		 * Synthesize unit and scale only if it's defined.
		 */
		if (has_unit(counter)) {
			err = perf_event__synthesize_event_update_unit(NULL, counter, process_synthesized_event);
			if (err < 0) {
				pr_err("Couldn't synthesize evsel unit.\n");
				return err;
			}
		}

		if (has_scale(counter)) {
			err = perf_event__synthesize_event_update_scale(NULL, counter, process_synthesized_event);
			if (err < 0) {
				pr_err("Couldn't synthesize evsel scale.\n");
				return err;
			}
		}

		if (counter->own_cpus) {
			err = perf_event__synthesize_event_update_cpus(NULL, counter, process_synthesized_event);
			if (err < 0) {
				pr_err("Couldn't synthesize evsel scale.\n");
				return err;
			}
		}

		/*
		 * Name is needed only for pipe output,
		 * perf.data carries event names.
		 */
		if (is_pipe) {
			err = perf_event__synthesize_event_update_name(NULL, counter, process_synthesized_event);
			if (err < 0) {
				pr_err("Couldn't synthesize evsel name.\n");
				return err;
			}
		}
	}

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	err = perf_event__synthesize_thread_map2(NULL, evsel_list->threads,
						process_synthesized_event,
						NULL);
	if (err < 0) {
		pr_err("Couldn't synthesize thread map.\n");
		return err;
	}

	err = perf_event__synthesize_cpu_map(NULL, evsel_list->cpus,
					     process_synthesized_event, NULL);
	if (err < 0) {
		pr_err("Couldn't synthesize thread map.\n");
		return err;
	}

	err = perf_event__synthesize_stat_config(NULL, &stat_config,
						 process_synthesized_event, NULL);
	if (err < 0) {
		pr_err("Couldn't synthesize config.\n");
		return err;
	}

	return 0;
}

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#define FD(e, x, y) (*(int *)xyarray__entry(e->fd, x, y))

static int __store_counter_ids(struct perf_evsel *counter,
			       struct cpu_map *cpus,
			       struct thread_map *threads)
{
	int cpu, thread;

	for (cpu = 0; cpu < cpus->nr; cpu++) {
		for (thread = 0; thread < threads->nr; thread++) {
			int fd = FD(counter, cpu, thread);

			if (perf_evlist__id_add_fd(evsel_list, counter,
						   cpu, thread, fd) < 0)
				return -1;
		}
	}

	return 0;
}

static int store_counter_ids(struct perf_evsel *counter)
{
	struct cpu_map *cpus = counter->cpus;
	struct thread_map *threads = counter->threads;

	if (perf_evsel__alloc_id(counter, cpus->nr, threads->nr))
		return -ENOMEM;

	return __store_counter_ids(counter, cpus, threads);
}

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static int __run_perf_stat(int argc, const char **argv)
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{
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	int interval = stat_config.interval;
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	char msg[512];
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	unsigned long long t0, t1;
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	struct perf_evsel *counter;
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	struct timespec ts;
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	size_t l;
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	int status = 0;
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	const bool forks = (argc > 0);
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	bool is_pipe = STAT_RECORD ? perf_stat.file.is_pipe : false;
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	if (interval) {
		ts.tv_sec  = interval / 1000;
		ts.tv_nsec = (interval % 1000) * 1000000;
	} else {
		ts.tv_sec  = 1;
		ts.tv_nsec = 0;
	}

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	if (forks) {
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		if (perf_evlist__prepare_workload(evsel_list, &target, argv, is_pipe,
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						  workload_exec_failed_signal) < 0) {
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			perror("failed to prepare workload");
			return -1;
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		}
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		child_pid = evsel_list->workload.pid;
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	}

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	if (group)
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		perf_evlist__set_leader(evsel_list);
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	evlist__for_each(evsel_list, counter) {
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		if (create_perf_stat_counter(counter) < 0) {
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			/*
			 * PPC returns ENXIO for HW counters until 2.6.37
			 * (behavior changed with commit b0a873e).
			 */
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			if (errno == EINVAL || errno == ENOSYS ||
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			    errno == ENOENT || errno == EOPNOTSUPP ||
			    errno == ENXIO) {
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				if (verbose)
					ui__warning("%s event is not supported by the kernel.\n",
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						    perf_evsel__name(counter));
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				counter->supported = false;
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				if ((counter->leader != counter) ||
				    !(counter->leader->nr_members > 1))
					continue;
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			}
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			perf_evsel__open_strerror(counter, &target,
						  errno, msg, sizeof(msg));
			ui__error("%s\n", msg);

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			if (child_pid != -1)
				kill(child_pid, SIGTERM);
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			return -1;
		}
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		counter->supported = true;
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		l = strlen(counter->unit);
		if (l > unit_width)
			unit_width = l;
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		if (STAT_RECORD && store_counter_ids(counter))
			return -1;
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	}
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	if (perf_evlist__apply_filters(evsel_list, &counter)) {
		error("failed to set filter \"%s\" on event %s with %d (%s)\n",
			counter->filter, perf_evsel__name(counter), errno,
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			strerror_r(errno, msg, sizeof(msg)));
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		return -1;
	}

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	if (STAT_RECORD) {
		int err, fd = perf_data_file__fd(&perf_stat.file);

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		if (is_pipe) {
			err = perf_header__write_pipe(perf_data_file__fd(&perf_stat.file));
		} else {
			err = perf_session__write_header(perf_stat.session, evsel_list,
							 fd, false);
		}

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		if (err < 0)
			return err;
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		err = perf_stat_synthesize_config(is_pipe);
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		if (err < 0)
			return err;
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	}

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	/*
	 * Enable counters and exec the command:
	 */
	t0 = rdclock();
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	clock_gettime(CLOCK_MONOTONIC, &ref_time);
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	if (forks) {
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		perf_evlist__start_workload(evsel_list);
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		enable_counters();
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		if (interval) {
			while (!waitpid(child_pid, &status, WNOHANG)) {
				nanosleep(&ts, NULL);
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				process_interval();
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			}
		}
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		wait(&status);
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		if (workload_exec_errno) {
			const char *emsg = strerror_r(workload_exec_errno, msg, sizeof(msg));
			pr_err("Workload failed: %s\n", emsg);
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			return -1;
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		}
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		if (WIFSIGNALED(status))
			psignal(WTERMSIG(status), argv[0]);
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	} else {
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		enable_counters();
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		while (!done) {
			nanosleep(&ts, NULL);
			if (interval)
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				process_interval();
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		}
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	}
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	t1 = rdclock();

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	update_stats(&walltime_nsecs_stats, t1 - t0);
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	read_counters(true);
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	return WEXITSTATUS(status);
}

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static int run_perf_stat(int argc, const char **argv)
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{
	int ret;

	if (pre_cmd) {
		ret = system(pre_cmd);
		if (ret)
			return ret;
	}

	if (sync_run)
		sync();

	ret = __run_perf_stat(argc, argv);
	if (ret)
		return ret;

	if (post_cmd) {
		ret = system(post_cmd);
		if (ret)
			return ret;
	}

	return ret;
}

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static void print_running(u64 run, u64 ena)
{
	if (csv_output) {
665
		fprintf(stat_config.output, "%s%" PRIu64 "%s%.2f",
666 667 668 669 670
					csv_sep,
					run,
					csv_sep,
					ena ? 100.0 * run / ena : 100.0);
	} else if (run != ena) {
671
		fprintf(stat_config.output, "  (%.2f%%)", 100.0 * run / ena);
672 673 674
	}
}

675 676
static void print_noise_pct(double total, double avg)
{
677
	double pct = rel_stddev_stats(total, avg);
678

679
	if (csv_output)
680
		fprintf(stat_config.output, "%s%.2f%%", csv_sep, pct);
681
	else if (pct)
682
		fprintf(stat_config.output, "  ( +-%6.2f%% )", pct);
683 684
}

685
static void print_noise(struct perf_evsel *evsel, double avg)
686
{
687
	struct perf_stat_evsel *ps;
688

689 690 691
	if (run_count == 1)
		return;

692
	ps = evsel->priv;
693
	print_noise_pct(stddev_stats(&ps->res_stats[0]), avg);
694 695
}

696
static void aggr_printout(struct perf_evsel *evsel, int id, int nr)
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Ingo Molnar 已提交
697
{
698
	switch (stat_config.aggr_mode) {
699
	case AGGR_CORE:
700
		fprintf(stat_config.output, "S%d-C%*d%s%*d%s",
701 702 703 704 705 706 707 708
			cpu_map__id_to_socket(id),
			csv_output ? 0 : -8,
			cpu_map__id_to_cpu(id),
			csv_sep,
			csv_output ? 0 : 4,
			nr,
			csv_sep);
		break;
709
	case AGGR_SOCKET:
710
		fprintf(stat_config.output, "S%*d%s%*d%s",
711
			csv_output ? 0 : -5,
712
			id,
713 714 715 716
			csv_sep,
			csv_output ? 0 : 4,
			nr,
			csv_sep);
717 718
			break;
	case AGGR_NONE:
719
		fprintf(stat_config.output, "CPU%*d%s",
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			csv_output ? 0 : -4,
721
			perf_evsel__cpus(evsel)->map[id], csv_sep);
722
		break;
723
	case AGGR_THREAD:
724
		fprintf(stat_config.output, "%*s-%*d%s",
725 726 727 728 729 730
			csv_output ? 0 : 16,
			thread_map__comm(evsel->threads, id),
			csv_output ? 0 : -8,
			thread_map__pid(evsel->threads, id),
			csv_sep);
		break;
731
	case AGGR_GLOBAL:
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	case AGGR_UNSET:
733 734 735 736 737
	default:
		break;
	}
}

738 739 740
struct outstate {
	FILE *fh;
	bool newline;
741
	const char *prefix;
742 743 744 745 746 747 748 749 750 751 752 753 754 755
};

#define METRIC_LEN  35

static void new_line_std(void *ctx)
{
	struct outstate *os = ctx;

	os->newline = true;
}

static void do_new_line_std(struct outstate *os)
{
	fputc('\n', os->fh);
756
	fputs(os->prefix, os->fh);
757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791
	if (stat_config.aggr_mode == AGGR_NONE)
		fprintf(os->fh, "        ");
	if (stat_config.aggr_mode == AGGR_CORE)
		fprintf(os->fh, "                  ");
	if (stat_config.aggr_mode == AGGR_SOCKET)
		fprintf(os->fh, "            ");
	fprintf(os->fh, "                                                 ");
}

static void print_metric_std(void *ctx, const char *color, const char *fmt,
			     const char *unit, double val)
{
	struct outstate *os = ctx;
	FILE *out = os->fh;
	int n;
	bool newline = os->newline;

	os->newline = false;

	if (unit == NULL || fmt == NULL) {
		fprintf(out, "%-*s", METRIC_LEN, "");
		return;
	}

	if (newline)
		do_new_line_std(os);

	n = fprintf(out, " # ");
	if (color)
		n += color_fprintf(out, color, fmt, val);
	else
		n += fprintf(out, fmt, val);
	fprintf(out, " %-*s", METRIC_LEN - n - 1, unit);
}

792
static void nsec_printout(int id, int nr, struct perf_evsel *evsel, double avg)
793
{
794
	FILE *output = stat_config.output;
795
	double msecs = avg / 1e6;
796
	const char *fmt_v, *fmt_n;
797
	char name[25];
798

799 800 801
	fmt_v = csv_output ? "%.6f%s" : "%18.6f%s";
	fmt_n = csv_output ? "%s" : "%-25s";

802
	aggr_printout(evsel, id, nr);
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804 805
	scnprintf(name, sizeof(name), "%s%s",
		  perf_evsel__name(evsel), csv_output ? "" : " (msec)");
806 807 808 809 810 811 812 813 814

	fprintf(output, fmt_v, msecs, csv_sep);

	if (csv_output)
		fprintf(output, "%s%s", evsel->unit, csv_sep);
	else
		fprintf(output, "%-*s%s", unit_width, evsel->unit, csv_sep);

	fprintf(output, fmt_n, name);
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815

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816
	if (evsel->cgrp)
817
		fprintf(output, "%s%s", csv_sep, evsel->cgrp->name);
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818 819
}

820 821
static void abs_printout(int id, int nr, struct perf_evsel *evsel, double avg)
{
822
	FILE *output = stat_config.output;
823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847
	double sc =  evsel->scale;
	const char *fmt;

	if (csv_output) {
		fmt = sc != 1.0 ?  "%.2f%s" : "%.0f%s";
	} else {
		if (big_num)
			fmt = sc != 1.0 ? "%'18.2f%s" : "%'18.0f%s";
		else
			fmt = sc != 1.0 ? "%18.2f%s" : "%18.0f%s";
	}

	aggr_printout(evsel, id, nr);

	fprintf(output, fmt, avg, csv_sep);

	if (evsel->unit)
		fprintf(output, "%-*s%s",
			csv_output ? 0 : unit_width,
			evsel->unit, csv_sep);

	fprintf(output, "%-*s", csv_output ? 0 : 25, perf_evsel__name(evsel));

	if (evsel->cgrp)
		fprintf(output, "%s%s", csv_sep, evsel->cgrp->name);
848
}
849

850
static void printout(int id, int nr, struct perf_evsel *counter, double uval,
851
		     char *prefix, u64 run, u64 ena, double noise)
852
{
853
	struct perf_stat_output_ctx out;
854 855 856 857
	struct outstate os = {
		.fh = stat_config.output,
		.prefix = prefix ? prefix : ""
	};
858 859
	print_metric_t pm = print_metric_std;
	void (*nl)(void *);
860

861
	nl = new_line_std;
862

863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886
	if (run == 0 || ena == 0) {
		aggr_printout(counter, id, nr);

		fprintf(stat_config.output, "%*s%s",
			csv_output ? 0 : 18,
			counter->supported ? CNTR_NOT_COUNTED : CNTR_NOT_SUPPORTED,
			csv_sep);

		fprintf(stat_config.output, "%-*s%s",
			csv_output ? 0 : unit_width,
			counter->unit, csv_sep);

		fprintf(stat_config.output, "%*s",
			csv_output ? 0 : -25,
			perf_evsel__name(counter));

		if (counter->cgrp)
			fprintf(stat_config.output, "%s%s",
				csv_sep, counter->cgrp->name);

		print_running(run, ena);
		return;
	}

887 888 889 890
	if (nsec_counter(counter))
		nsec_printout(id, nr, counter, uval);
	else
		abs_printout(id, nr, counter, uval);
891

892 893 894 895
	out.print_metric = pm;
	out.new_line = nl;
	out.ctx = &os;

896
	if (!csv_output)
897 898 899 900
		perf_stat__print_shadow_stats(counter, uval,
				stat_config.aggr_mode == AGGR_GLOBAL ? 0 :
				cpu_map__id_to_cpu(id),
				&out);
901 902 903

	print_noise(counter, noise);
	print_running(run, ena);
904 905
}

906
static void print_aggr(char *prefix)
907
{
908
	FILE *output = stat_config.output;
909
	struct perf_evsel *counter;
910
	int cpu, s, s2, id, nr;
911
	double uval;
912 913
	u64 ena, run, val;

914
	if (!(aggr_map || aggr_get_id))
915 916
		return;

917 918
	for (s = 0; s < aggr_map->nr; s++) {
		id = aggr_map->map[s];
919
		evlist__for_each(evsel_list, counter) {
920 921 922
			val = ena = run = 0;
			nr = 0;
			for (cpu = 0; cpu < perf_evsel__nr_cpus(counter); cpu++) {
923
				s2 = aggr_get_id(perf_evsel__cpus(counter), cpu);
924
				if (s2 != id)
925
					continue;
926 927 928
				val += perf_counts(counter->counts, cpu, 0)->val;
				ena += perf_counts(counter->counts, cpu, 0)->ena;
				run += perf_counts(counter->counts, cpu, 0)->run;
929 930 931 932 933
				nr++;
			}
			if (prefix)
				fprintf(output, "%s", prefix);

934
			uval = val * counter->scale;
935
			printout(id, nr, counter, uval, prefix, run, ena, 1.0);
936 937 938 939 940
			fputc('\n', output);
		}
	}
}

941 942
static void print_aggr_thread(struct perf_evsel *counter, char *prefix)
{
943
	FILE *output = stat_config.output;
944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961
	int nthreads = thread_map__nr(counter->threads);
	int ncpus = cpu_map__nr(counter->cpus);
	int cpu, thread;
	double uval;

	for (thread = 0; thread < nthreads; thread++) {
		u64 ena = 0, run = 0, val = 0;

		for (cpu = 0; cpu < ncpus; cpu++) {
			val += perf_counts(counter->counts, cpu, thread)->val;
			ena += perf_counts(counter->counts, cpu, thread)->ena;
			run += perf_counts(counter->counts, cpu, thread)->run;
		}

		if (prefix)
			fprintf(output, "%s", prefix);

		uval = val * counter->scale;
962
		printout(thread, 0, counter, uval, prefix, run, ena, 1.0);
963 964 965 966
		fputc('\n', output);
	}
}

967 968
/*
 * Print out the results of a single counter:
969
 * aggregated counts in system-wide mode
970
 */
971
static void print_counter_aggr(struct perf_evsel *counter, char *prefix)
972
{
973
	FILE *output = stat_config.output;
974
	struct perf_stat_evsel *ps = counter->priv;
975
	double avg = avg_stats(&ps->res_stats[0]);
976
	double uval;
977 978 979 980
	double avg_enabled, avg_running;

	avg_enabled = avg_stats(&ps->res_stats[1]);
	avg_running = avg_stats(&ps->res_stats[2]);
981

982 983 984
	if (prefix)
		fprintf(output, "%s", prefix);

985
	uval = avg * counter->scale;
986
	printout(-1, 0, counter, uval, prefix, avg_running, avg_enabled, avg);
987
	fprintf(output, "\n");
988 989
}

990 991 992 993
/*
 * Print out the results of a single counter:
 * does not use aggregated count in system-wide
 */
994
static void print_counter(struct perf_evsel *counter, char *prefix)
995
{
996
	FILE *output = stat_config.output;
997
	u64 ena, run, val;
998
	double uval;
999 1000
	int cpu;

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	for (cpu = 0; cpu < perf_evsel__nr_cpus(counter); cpu++) {
1002 1003 1004
		val = perf_counts(counter->counts, cpu, 0)->val;
		ena = perf_counts(counter->counts, cpu, 0)->ena;
		run = perf_counts(counter->counts, cpu, 0)->run;
1005 1006 1007 1008

		if (prefix)
			fprintf(output, "%s", prefix);

1009
		uval = val * counter->scale;
1010
		printout(cpu, 0, counter, uval, prefix, run, ena, 1.0);
1011

1012
		fputc('\n', output);
1013 1014 1015
	}
}

1016 1017
static void print_interval(char *prefix, struct timespec *ts)
{
1018
	FILE *output = stat_config.output;
1019 1020 1021 1022 1023
	static int num_print_interval;

	sprintf(prefix, "%6lu.%09lu%s", ts->tv_sec, ts->tv_nsec, csv_sep);

	if (num_print_interval == 0 && !csv_output) {
1024
		switch (stat_config.aggr_mode) {
1025 1026 1027 1028 1029 1030 1031 1032 1033
		case AGGR_SOCKET:
			fprintf(output, "#           time socket cpus             counts %*s events\n", unit_width, "unit");
			break;
		case AGGR_CORE:
			fprintf(output, "#           time core         cpus             counts %*s events\n", unit_width, "unit");
			break;
		case AGGR_NONE:
			fprintf(output, "#           time CPU                counts %*s events\n", unit_width, "unit");
			break;
1034 1035 1036
		case AGGR_THREAD:
			fprintf(output, "#           time             comm-pid                  counts %*s events\n", unit_width, "unit");
			break;
1037 1038 1039
		case AGGR_GLOBAL:
		default:
			fprintf(output, "#           time             counts %*s events\n", unit_width, "unit");
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		case AGGR_UNSET:
			break;
1042 1043 1044 1045 1046 1047 1048 1049
		}
	}

	if (++num_print_interval == 25)
		num_print_interval = 0;
}

static void print_header(int argc, const char **argv)
1050
{
1051
	FILE *output = stat_config.output;
1052
	int i;
1053

1054 1055
	fflush(stdout);

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	if (!csv_output) {
1057 1058
		fprintf(output, "\n");
		fprintf(output, " Performance counter stats for ");
1059 1060 1061 1062
		if (target.system_wide)
			fprintf(output, "\'system wide");
		else if (target.cpu_list)
			fprintf(output, "\'CPU(s) %s", target.cpu_list);
1063
		else if (!target__has_task(&target)) {
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1064 1065
			fprintf(output, "\'%s", argv ? argv[0] : "pipe");
			for (i = 1; argv && (i < argc); i++)
1066
				fprintf(output, " %s", argv[i]);
1067 1068
		} else if (target.pid)
			fprintf(output, "process id \'%s", target.pid);
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1069
		else
1070
			fprintf(output, "thread id \'%s", target.tid);
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1071

1072
		fprintf(output, "\'");
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1073
		if (run_count > 1)
1074 1075
			fprintf(output, " (%d runs)", run_count);
		fprintf(output, ":\n\n");
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1076
	}
1077 1078 1079 1080
}

static void print_footer(void)
{
1081 1082
	FILE *output = stat_config.output;

1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096
	if (!null_run)
		fprintf(output, "\n");
	fprintf(output, " %17.9f seconds time elapsed",
			avg_stats(&walltime_nsecs_stats)/1e9);
	if (run_count > 1) {
		fprintf(output, "                                        ");
		print_noise_pct(stddev_stats(&walltime_nsecs_stats),
				avg_stats(&walltime_nsecs_stats));
	}
	fprintf(output, "\n\n");
}

static void print_counters(struct timespec *ts, int argc, const char **argv)
{
1097
	int interval = stat_config.interval;
1098 1099 1100
	struct perf_evsel *counter;
	char buf[64], *prefix = NULL;

1101 1102 1103 1104
	/* Do not print anything if we record to the pipe. */
	if (STAT_RECORD && perf_stat.file.is_pipe)
		return;

1105 1106 1107 1108
	if (interval)
		print_interval(prefix = buf, ts);
	else
		print_header(argc, argv);
1109

1110
	switch (stat_config.aggr_mode) {
1111
	case AGGR_CORE:
1112
	case AGGR_SOCKET:
1113
		print_aggr(prefix);
1114
		break;
1115 1116 1117 1118
	case AGGR_THREAD:
		evlist__for_each(evsel_list, counter)
			print_aggr_thread(counter, prefix);
		break;
1119
	case AGGR_GLOBAL:
1120
		evlist__for_each(evsel_list, counter)
1121
			print_counter_aggr(counter, prefix);
1122 1123
		break;
	case AGGR_NONE:
1124
		evlist__for_each(evsel_list, counter)
1125
			print_counter(counter, prefix);
1126
		break;
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	case AGGR_UNSET:
1128 1129
	default:
		break;
1130
	}
1131

1132 1133 1134
	if (!interval && !csv_output)
		print_footer();

1135
	fflush(stat_config.output);
1136 1137
}

1138 1139
static volatile int signr = -1;

1140
static void skip_signal(int signo)
1141
{
1142
	if ((child_pid == -1) || stat_config.interval)
1143 1144
		done = 1;

1145
	signr = signo;
1146 1147 1148 1149 1150 1151 1152
	/*
	 * render child_pid harmless
	 * won't send SIGTERM to a random
	 * process in case of race condition
	 * and fast PID recycling
	 */
	child_pid = -1;
1153 1154 1155 1156
}

static void sig_atexit(void)
{
1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168
	sigset_t set, oset;

	/*
	 * avoid race condition with SIGCHLD handler
	 * in skip_signal() which is modifying child_pid
	 * goal is to avoid send SIGTERM to a random
	 * process
	 */
	sigemptyset(&set);
	sigaddset(&set, SIGCHLD);
	sigprocmask(SIG_BLOCK, &set, &oset);

1169 1170 1171
	if (child_pid != -1)
		kill(child_pid, SIGTERM);

1172 1173
	sigprocmask(SIG_SETMASK, &oset, NULL);

1174 1175 1176 1177 1178
	if (signr == -1)
		return;

	signal(signr, SIG_DFL);
	kill(getpid(), signr);
1179 1180
}

1181 1182
static int stat__set_big_num(const struct option *opt __maybe_unused,
			     const char *s __maybe_unused, int unset)
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{
	big_num_opt = unset ? 0 : 1;
	return 0;
}

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static const struct option stat_options[] = {
	OPT_BOOLEAN('T', "transaction", &transaction_run,
		    "hardware transaction statistics"),
	OPT_CALLBACK('e', "event", &evsel_list, "event",
		     "event selector. use 'perf list' to list available events",
		     parse_events_option),
	OPT_CALLBACK(0, "filter", &evsel_list, "filter",
		     "event filter", parse_filter),
	OPT_BOOLEAN('i', "no-inherit", &no_inherit,
		    "child tasks do not inherit counters"),
	OPT_STRING('p', "pid", &target.pid, "pid",
		   "stat events on existing process id"),
	OPT_STRING('t', "tid", &target.tid, "tid",
		   "stat events on existing thread id"),
	OPT_BOOLEAN('a', "all-cpus", &target.system_wide,
		    "system-wide collection from all CPUs"),
	OPT_BOOLEAN('g', "group", &group,
		    "put the counters into a counter group"),
	OPT_BOOLEAN('c', "scale", &stat_config.scale, "scale/normalize counters"),
	OPT_INCR('v', "verbose", &verbose,
		    "be more verbose (show counter open errors, etc)"),
	OPT_INTEGER('r', "repeat", &run_count,
		    "repeat command and print average + stddev (max: 100, forever: 0)"),
	OPT_BOOLEAN('n', "null", &null_run,
		    "null run - dont start any counters"),
	OPT_INCR('d', "detailed", &detailed_run,
		    "detailed run - start a lot of events"),
	OPT_BOOLEAN('S', "sync", &sync_run,
		    "call sync() before starting a run"),
	OPT_CALLBACK_NOOPT('B', "big-num", NULL, NULL,
			   "print large numbers with thousands\' separators",
			   stat__set_big_num),
	OPT_STRING('C', "cpu", &target.cpu_list, "cpu",
		    "list of cpus to monitor in system-wide"),
	OPT_SET_UINT('A', "no-aggr", &stat_config.aggr_mode,
		    "disable CPU count aggregation", AGGR_NONE),
	OPT_STRING('x', "field-separator", &csv_sep, "separator",
		   "print counts with custom separator"),
	OPT_CALLBACK('G', "cgroup", &evsel_list, "name",
		     "monitor event in cgroup name only", parse_cgroups),
	OPT_STRING('o', "output", &output_name, "file", "output file name"),
	OPT_BOOLEAN(0, "append", &append_file, "append to the output file"),
	OPT_INTEGER(0, "log-fd", &output_fd,
		    "log output to fd, instead of stderr"),
	OPT_STRING(0, "pre", &pre_cmd, "command",
			"command to run prior to the measured command"),
	OPT_STRING(0, "post", &post_cmd, "command",
			"command to run after to the measured command"),
	OPT_UINTEGER('I', "interval-print", &stat_config.interval,
		    "print counts at regular interval in ms (>= 10)"),
	OPT_SET_UINT(0, "per-socket", &stat_config.aggr_mode,
		     "aggregate counts per processor socket", AGGR_SOCKET),
	OPT_SET_UINT(0, "per-core", &stat_config.aggr_mode,
		     "aggregate counts per physical processor core", AGGR_CORE),
	OPT_SET_UINT(0, "per-thread", &stat_config.aggr_mode,
		     "aggregate counts per thread", AGGR_THREAD),
	OPT_UINTEGER('D', "delay", &initial_delay,
		     "ms to wait before starting measurement after program start"),
	OPT_END()
};

1249 1250 1251 1252 1253 1254 1255 1256 1257 1258
static int perf_stat__get_socket(struct cpu_map *map, int cpu)
{
	return cpu_map__get_socket(map, cpu, NULL);
}

static int perf_stat__get_core(struct cpu_map *map, int cpu)
{
	return cpu_map__get_core(map, cpu, NULL);
}

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static int cpu_map__get_max(struct cpu_map *map)
{
	int i, max = -1;

	for (i = 0; i < map->nr; i++) {
		if (map->map[i] > max)
			max = map->map[i];
	}

	return max;
}

static struct cpu_map *cpus_aggr_map;

static int perf_stat__get_aggr(aggr_get_id_t get_id, struct cpu_map *map, int idx)
{
	int cpu;

	if (idx >= map->nr)
		return -1;

	cpu = map->map[idx];

	if (cpus_aggr_map->map[cpu] == -1)
		cpus_aggr_map->map[cpu] = get_id(map, idx);

	return cpus_aggr_map->map[cpu];
}

static int perf_stat__get_socket_cached(struct cpu_map *map, int idx)
{
	return perf_stat__get_aggr(perf_stat__get_socket, map, idx);
}

static int perf_stat__get_core_cached(struct cpu_map *map, int idx)
{
	return perf_stat__get_aggr(perf_stat__get_core, map, idx);
}

1298 1299
static int perf_stat_init_aggr_mode(void)
{
1300 1301
	int nr;

1302
	switch (stat_config.aggr_mode) {
1303 1304 1305 1306 1307
	case AGGR_SOCKET:
		if (cpu_map__build_socket_map(evsel_list->cpus, &aggr_map)) {
			perror("cannot build socket map");
			return -1;
		}
1308
		aggr_get_id = perf_stat__get_socket_cached;
1309
		break;
1310 1311 1312 1313 1314
	case AGGR_CORE:
		if (cpu_map__build_core_map(evsel_list->cpus, &aggr_map)) {
			perror("cannot build core map");
			return -1;
		}
1315
		aggr_get_id = perf_stat__get_core_cached;
1316
		break;
1317 1318
	case AGGR_NONE:
	case AGGR_GLOBAL:
1319
	case AGGR_THREAD:
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	case AGGR_UNSET:
1321 1322 1323
	default:
		break;
	}
1324 1325 1326 1327 1328 1329 1330 1331 1332

	/*
	 * The evsel_list->cpus is the base we operate on,
	 * taking the highest cpu number to be the size of
	 * the aggregation translate cpumap.
	 */
	nr = cpu_map__get_max(evsel_list->cpus);
	cpus_aggr_map = cpu_map__empty_new(nr + 1);
	return cpus_aggr_map ? 0 : -ENOMEM;
1333 1334
}

1335 1336 1337 1338 1339 1340 1341 1342
static void perf_stat__exit_aggr_mode(void)
{
	cpu_map__put(aggr_map);
	cpu_map__put(cpus_aggr_map);
	aggr_map = NULL;
	cpus_aggr_map = NULL;
}

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static inline int perf_env__get_cpu(struct perf_env *env, struct cpu_map *map, int idx)
{
	int cpu;

	if (idx > map->nr)
		return -1;

	cpu = map->map[idx];

	if (cpu >= env->nr_cpus_online)
		return -1;

	return cpu;
}

static int perf_env__get_socket(struct cpu_map *map, int idx, void *data)
{
	struct perf_env *env = data;
	int cpu = perf_env__get_cpu(env, map, idx);

	return cpu == -1 ? -1 : env->cpu[cpu].socket_id;
}

static int perf_env__get_core(struct cpu_map *map, int idx, void *data)
{
	struct perf_env *env = data;
	int core = -1, cpu = perf_env__get_cpu(env, map, idx);

	if (cpu != -1) {
		int socket_id = env->cpu[cpu].socket_id;

		/*
		 * Encode socket in upper 16 bits
		 * core_id is relative to socket, and
		 * we need a global id. So we combine
		 * socket + core id.
		 */
		core = (socket_id << 16) | (env->cpu[cpu].core_id & 0xffff);
	}

	return core;
}

static int perf_env__build_socket_map(struct perf_env *env, struct cpu_map *cpus,
				      struct cpu_map **sockp)
{
	return cpu_map__build_map(cpus, sockp, perf_env__get_socket, env);
}

static int perf_env__build_core_map(struct perf_env *env, struct cpu_map *cpus,
				    struct cpu_map **corep)
{
	return cpu_map__build_map(cpus, corep, perf_env__get_core, env);
}

static int perf_stat__get_socket_file(struct cpu_map *map, int idx)
{
	return perf_env__get_socket(map, idx, &perf_stat.session->header.env);
}

static int perf_stat__get_core_file(struct cpu_map *map, int idx)
{
	return perf_env__get_core(map, idx, &perf_stat.session->header.env);
}

static int perf_stat_init_aggr_mode_file(struct perf_stat *st)
{
	struct perf_env *env = &st->session->header.env;

	switch (stat_config.aggr_mode) {
	case AGGR_SOCKET:
		if (perf_env__build_socket_map(env, evsel_list->cpus, &aggr_map)) {
			perror("cannot build socket map");
			return -1;
		}
		aggr_get_id = perf_stat__get_socket_file;
		break;
	case AGGR_CORE:
		if (perf_env__build_core_map(env, evsel_list->cpus, &aggr_map)) {
			perror("cannot build core map");
			return -1;
		}
		aggr_get_id = perf_stat__get_core_file;
		break;
	case AGGR_NONE:
	case AGGR_GLOBAL:
	case AGGR_THREAD:
	case AGGR_UNSET:
	default:
		break;
	}

	return 0;
}

1438 1439 1440 1441 1442 1443
/*
 * Add default attributes, if there were no attributes specified or
 * if -d/--detailed, -d -d or -d -d -d is used:
 */
static int add_default_attributes(void)
{
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	struct perf_event_attr default_attrs[] = {

  { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_TASK_CLOCK		},
  { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_CONTEXT_SWITCHES	},
  { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_CPU_MIGRATIONS		},
  { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_PAGE_FAULTS		},

  { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CPU_CYCLES		},
  { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_STALLED_CYCLES_FRONTEND	},
  { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_STALLED_CYCLES_BACKEND	},
  { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_INSTRUCTIONS		},
  { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_BRANCH_INSTRUCTIONS	},
  { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_BRANCH_MISSES		},

};

/*
 * Detailed stats (-d), covering the L1 and last level data caches:
 */
	struct perf_event_attr detailed_attrs[] = {

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_L1D		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_ACCESS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_L1D		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_MISS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_LL			<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_ACCESS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_LL			<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_MISS	<< 16)				},
};

/*
 * Very detailed stats (-d -d), covering the instruction cache and the TLB caches:
 */
	struct perf_event_attr very_detailed_attrs[] = {

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_L1I		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_ACCESS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_L1I		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_MISS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_DTLB		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_ACCESS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_DTLB		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_MISS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_ITLB		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_ACCESS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_ITLB		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_READ		<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_MISS	<< 16)				},

};

/*
 * Very, very detailed stats (-d -d -d), adding prefetch events:
 */
	struct perf_event_attr very_very_detailed_attrs[] = {

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_L1D		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_PREFETCH	<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_ACCESS	<< 16)				},

  { .type = PERF_TYPE_HW_CACHE,
    .config =
	 PERF_COUNT_HW_CACHE_L1D		<<  0  |
	(PERF_COUNT_HW_CACHE_OP_PREFETCH	<<  8) |
	(PERF_COUNT_HW_CACHE_RESULT_MISS	<< 16)				},
};

1551 1552 1553 1554
	/* Set attrs if no event is selected and !null_run: */
	if (null_run)
		return 0;

1555 1556 1557 1558
	if (transaction_run) {
		int err;
		if (pmu_have_event("cpu", "cycles-ct") &&
		    pmu_have_event("cpu", "el-start"))
1559
			err = parse_events(evsel_list, transaction_attrs, NULL);
1560
		else
1561 1562
			err = parse_events(evsel_list, transaction_limited_attrs, NULL);
		if (err) {
1563 1564 1565 1566 1567 1568
			fprintf(stderr, "Cannot set up transaction events\n");
			return -1;
		}
		return 0;
	}

1569
	if (!evsel_list->nr_entries) {
1570
		if (perf_evlist__add_default_attrs(evsel_list, default_attrs) < 0)
1571
			return -1;
1572 1573 1574 1575 1576 1577 1578 1579
	}

	/* Detailed events get appended to the event list: */

	if (detailed_run <  1)
		return 0;

	/* Append detailed run extra attributes: */
1580
	if (perf_evlist__add_default_attrs(evsel_list, detailed_attrs) < 0)
1581
		return -1;
1582 1583 1584 1585 1586

	if (detailed_run < 2)
		return 0;

	/* Append very detailed run extra attributes: */
1587
	if (perf_evlist__add_default_attrs(evsel_list, very_detailed_attrs) < 0)
1588
		return -1;
1589 1590 1591 1592 1593

	if (detailed_run < 3)
		return 0;

	/* Append very, very detailed run extra attributes: */
1594
	return perf_evlist__add_default_attrs(evsel_list, very_very_detailed_attrs);
1595 1596
}

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static const char * const stat_record_usage[] = {
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	"perf stat record [<options>]",
	NULL,
};

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static void init_features(struct perf_session *session)
{
	int feat;

	for (feat = HEADER_FIRST_FEATURE; feat < HEADER_LAST_FEATURE; feat++)
		perf_header__set_feat(&session->header, feat);

	perf_header__clear_feat(&session->header, HEADER_BUILD_ID);
	perf_header__clear_feat(&session->header, HEADER_TRACING_DATA);
	perf_header__clear_feat(&session->header, HEADER_BRANCH_STACK);
	perf_header__clear_feat(&session->header, HEADER_AUXTRACE);
}

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static int __cmd_record(int argc, const char **argv)
{
	struct perf_session *session;
	struct perf_data_file *file = &perf_stat.file;

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	argc = parse_options(argc, argv, stat_options, stat_record_usage,
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			     PARSE_OPT_STOP_AT_NON_OPTION);

	if (output_name)
		file->path = output_name;

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	if (run_count != 1 || forever) {
		pr_err("Cannot use -r option with perf stat record.\n");
		return -1;
	}

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	session = perf_session__new(file, false, NULL);
	if (session == NULL) {
		pr_err("Perf session creation failed.\n");
		return -1;
	}

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	init_features(session);

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	session->evlist   = evsel_list;
	perf_stat.session = session;
	perf_stat.record  = true;
	return argc;
}

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static int process_stat_round_event(struct perf_tool *tool __maybe_unused,
				    union perf_event *event,
				    struct perf_session *session)
{
	struct stat_round_event *round = &event->stat_round;
	struct perf_evsel *counter;
	struct timespec tsh, *ts = NULL;
	const char **argv = session->header.env.cmdline_argv;
	int argc = session->header.env.nr_cmdline;

	evlist__for_each(evsel_list, counter)
		perf_stat_process_counter(&stat_config, counter);

	if (round->type == PERF_STAT_ROUND_TYPE__FINAL)
		update_stats(&walltime_nsecs_stats, round->time);

	if (stat_config.interval && round->time) {
		tsh.tv_sec  = round->time / NSECS_PER_SEC;
		tsh.tv_nsec = round->time % NSECS_PER_SEC;
		ts = &tsh;
	}

	print_counters(ts, argc, argv);
	return 0;
}

1671 1672 1673 1674 1675
static
int process_stat_config_event(struct perf_tool *tool __maybe_unused,
			      union perf_event *event,
			      struct perf_session *session __maybe_unused)
{
1676 1677
	struct perf_stat *st = container_of(tool, struct perf_stat, tool);

1678
	perf_event__read_stat_config(&stat_config, &event->stat_config);
1679

1680 1681 1682 1683 1684 1685 1686 1687 1688
	if (cpu_map__empty(st->cpus)) {
		if (st->aggr_mode != AGGR_UNSET)
			pr_warning("warning: processing task data, aggregation mode not set\n");
		return 0;
	}

	if (st->aggr_mode != AGGR_UNSET)
		stat_config.aggr_mode = st->aggr_mode;

1689 1690 1691 1692 1693
	if (perf_stat.file.is_pipe)
		perf_stat_init_aggr_mode();
	else
		perf_stat_init_aggr_mode_file(st);

1694 1695 1696
	return 0;
}

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static int set_maps(struct perf_stat *st)
{
	if (!st->cpus || !st->threads)
		return 0;

	if (WARN_ONCE(st->maps_allocated, "stats double allocation\n"))
		return -EINVAL;

	perf_evlist__set_maps(evsel_list, st->cpus, st->threads);

	if (perf_evlist__alloc_stats(evsel_list, true))
		return -ENOMEM;

	st->maps_allocated = true;
	return 0;
}

static
int process_thread_map_event(struct perf_tool *tool __maybe_unused,
			     union perf_event *event,
			     struct perf_session *session __maybe_unused)
{
	struct perf_stat *st = container_of(tool, struct perf_stat, tool);

	if (st->threads) {
		pr_warning("Extra thread map event, ignoring.\n");
		return 0;
	}

	st->threads = thread_map__new_event(&event->thread_map);
	if (!st->threads)
		return -ENOMEM;

	return set_maps(st);
}

static
int process_cpu_map_event(struct perf_tool *tool __maybe_unused,
			  union perf_event *event,
			  struct perf_session *session __maybe_unused)
{
	struct perf_stat *st = container_of(tool, struct perf_stat, tool);
	struct cpu_map *cpus;

	if (st->cpus) {
		pr_warning("Extra cpu map event, ignoring.\n");
		return 0;
	}

	cpus = cpu_map__new_data(&event->cpu_map.data);
	if (!cpus)
		return -ENOMEM;

	st->cpus = cpus;
	return set_maps(st);
}

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static const char * const stat_report_usage[] = {
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	"perf stat report [<options>]",
	NULL,
};

static struct perf_stat perf_stat = {
	.tool = {
		.attr		= perf_event__process_attr,
1762
		.event_update	= perf_event__process_event_update,
1763 1764
		.thread_map	= process_thread_map_event,
		.cpu_map	= process_cpu_map_event,
1765
		.stat_config	= process_stat_config_event,
1766 1767
		.stat		= perf_event__process_stat_event,
		.stat_round	= process_stat_round_event,
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	},
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	.aggr_mode = AGGR_UNSET,
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};

static int __cmd_report(int argc, const char **argv)
{
	struct perf_session *session;
	const struct option options[] = {
	OPT_STRING('i', "input", &input_name, "file", "input file name"),
1777 1778 1779 1780 1781 1782
	OPT_SET_UINT(0, "per-socket", &perf_stat.aggr_mode,
		     "aggregate counts per processor socket", AGGR_SOCKET),
	OPT_SET_UINT(0, "per-core", &perf_stat.aggr_mode,
		     "aggregate counts per physical processor core", AGGR_CORE),
	OPT_SET_UINT('A', "no-aggr", &perf_stat.aggr_mode,
		     "disable CPU count aggregation", AGGR_NONE),
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	OPT_END()
	};
	struct stat st;
	int ret;

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	argc = parse_options(argc, argv, options, stat_report_usage, 0);
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	if (!input_name || !strlen(input_name)) {
		if (!fstat(STDIN_FILENO, &st) && S_ISFIFO(st.st_mode))
			input_name = "-";
		else
			input_name = "perf.data";
	}

	perf_stat.file.path = input_name;
	perf_stat.file.mode = PERF_DATA_MODE_READ;

	session = perf_session__new(&perf_stat.file, false, &perf_stat.tool);
	if (session == NULL)
		return -1;

	perf_stat.session  = session;
	stat_config.output = stderr;
	evsel_list         = session->evlist;

	ret = perf_session__process_events(session);
	if (ret)
		return ret;

	perf_session__delete(session);
	return 0;
}

1816
int cmd_stat(int argc, const char **argv, const char *prefix __maybe_unused)
1817
{
1818 1819 1820 1821
	const char * const stat_usage[] = {
		"perf stat [<options>] [<command>]",
		NULL
	};
1822
	int status = -EINVAL, run_idx;
1823
	const char *mode;
1824
	FILE *output = stderr;
1825
	unsigned int interval;
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	const char * const stat_subcommands[] = { "record", "report" };
1827

1828 1829
	setlocale(LC_ALL, "");

1830
	evsel_list = perf_evlist__new();
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	if (evsel_list == NULL)
		return -ENOMEM;

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	argc = parse_options_subcommand(argc, argv, stat_options, stat_subcommands,
					(const char **) stat_usage,
					PARSE_OPT_STOP_AT_NON_OPTION);

1838 1839 1840 1841 1842 1843 1844
	if (csv_sep) {
		csv_output = true;
		if (!strcmp(csv_sep, "\\t"))
			csv_sep = "\t";
	} else
		csv_sep = DEFAULT_SEPARATOR;

J
Jiri Olsa 已提交
1845 1846 1847 1848
	if (argc && !strncmp(argv[0], "rec", 3)) {
		argc = __cmd_record(argc, argv);
		if (argc < 0)
			return -1;
J
Jiri Olsa 已提交
1849 1850
	} else if (argc && !strncmp(argv[0], "rep", 3))
		return __cmd_report(argc, argv);
S
Stephane Eranian 已提交
1851

1852 1853
	interval = stat_config.interval;

J
Jiri Olsa 已提交
1854 1855 1856 1857
	/*
	 * For record command the -o is already taken care of.
	 */
	if (!STAT_RECORD && output_name && strcmp(output_name, "-"))
1858 1859
		output = NULL;

1860 1861
	if (output_name && output_fd) {
		fprintf(stderr, "cannot use both --output and --log-fd\n");
J
Jiri Olsa 已提交
1862 1863
		parse_options_usage(stat_usage, stat_options, "o", 1);
		parse_options_usage(NULL, stat_options, "log-fd", 0);
1864
		goto out;
1865
	}
1866 1867 1868

	if (output_fd < 0) {
		fprintf(stderr, "argument to --log-fd must be a > 0\n");
J
Jiri Olsa 已提交
1869
		parse_options_usage(stat_usage, stat_options, "log-fd", 0);
1870
		goto out;
1871 1872
	}

1873 1874 1875 1876 1877 1878 1879
	if (!output) {
		struct timespec tm;
		mode = append_file ? "a" : "w";

		output = fopen(output_name, mode);
		if (!output) {
			perror("failed to create output file");
1880
			return -1;
1881 1882 1883
		}
		clock_gettime(CLOCK_REALTIME, &tm);
		fprintf(output, "# started on %s\n", ctime(&tm.tv_sec));
1884
	} else if (output_fd > 0) {
1885 1886 1887 1888 1889 1890
		mode = append_file ? "a" : "w";
		output = fdopen(output_fd, mode);
		if (!output) {
			perror("Failed opening logfd");
			return -errno;
		}
1891 1892
	}

1893 1894
	stat_config.output = output;

S
Stephane Eranian 已提交
1895 1896 1897 1898
	/*
	 * let the spreadsheet do the pretty-printing
	 */
	if (csv_output) {
J
Jim Cromie 已提交
1899
		/* User explicitly passed -B? */
S
Stephane Eranian 已提交
1900 1901
		if (big_num_opt == 1) {
			fprintf(stderr, "-B option not supported with -x\n");
J
Jiri Olsa 已提交
1902 1903
			parse_options_usage(stat_usage, stat_options, "B", 1);
			parse_options_usage(NULL, stat_options, "x", 1);
1904
			goto out;
S
Stephane Eranian 已提交
1905 1906 1907 1908 1909
		} else /* Nope, so disable big number formatting */
			big_num = false;
	} else if (big_num_opt == 0) /* User passed --no-big-num */
		big_num = false;

1910
	if (!argc && target__none(&target))
J
Jiri Olsa 已提交
1911
		usage_with_options(stat_usage, stat_options);
1912

1913
	if (run_count < 0) {
1914
		pr_err("Run count must be a positive number\n");
J
Jiri Olsa 已提交
1915
		parse_options_usage(stat_usage, stat_options, "r", 1);
1916
		goto out;
1917 1918 1919 1920
	} else if (run_count == 0) {
		forever = true;
		run_count = 1;
	}
1921

1922
	if ((stat_config.aggr_mode == AGGR_THREAD) && !target__has_task(&target)) {
1923 1924
		fprintf(stderr, "The --per-thread option is only available "
			"when monitoring via -p -t options.\n");
J
Jiri Olsa 已提交
1925 1926
		parse_options_usage(NULL, stat_options, "p", 1);
		parse_options_usage(NULL, stat_options, "t", 1);
1927 1928 1929 1930 1931 1932 1933
		goto out;
	}

	/*
	 * no_aggr, cgroup are for system-wide only
	 * --per-thread is aggregated per thread, we dont mix it with cpu mode
	 */
1934 1935
	if (((stat_config.aggr_mode != AGGR_GLOBAL &&
	      stat_config.aggr_mode != AGGR_THREAD) || nr_cgroups) &&
1936
	    !target__has_cpu(&target)) {
S
Stephane Eranian 已提交
1937 1938 1939
		fprintf(stderr, "both cgroup and no-aggregation "
			"modes only available in system-wide mode\n");

J
Jiri Olsa 已提交
1940 1941 1942
		parse_options_usage(stat_usage, stat_options, "G", 1);
		parse_options_usage(NULL, stat_options, "A", 1);
		parse_options_usage(NULL, stat_options, "a", 1);
1943
		goto out;
1944 1945
	}

1946 1947
	if (add_default_attributes())
		goto out;
1948

1949
	target__validate(&target);
1950

1951
	if (perf_evlist__create_maps(evsel_list, &target) < 0) {
1952
		if (target__has_task(&target)) {
1953
			pr_err("Problems finding threads of monitor\n");
J
Jiri Olsa 已提交
1954 1955
			parse_options_usage(stat_usage, stat_options, "p", 1);
			parse_options_usage(NULL, stat_options, "t", 1);
1956
		} else if (target__has_cpu(&target)) {
1957
			perror("failed to parse CPUs map");
J
Jiri Olsa 已提交
1958 1959
			parse_options_usage(stat_usage, stat_options, "C", 1);
			parse_options_usage(NULL, stat_options, "a", 1);
1960 1961
		}
		goto out;
1962
	}
1963 1964 1965 1966 1967

	/*
	 * Initialize thread_map with comm names,
	 * so we could print it out on output.
	 */
1968
	if (stat_config.aggr_mode == AGGR_THREAD)
1969 1970
		thread_map__read_comms(evsel_list->threads);

1971
	if (interval && interval < 100) {
1972 1973
		if (interval < 10) {
			pr_err("print interval must be >= 10ms\n");
J
Jiri Olsa 已提交
1974
			parse_options_usage(stat_usage, stat_options, "I", 1);
1975 1976 1977 1978 1979
			goto out;
		} else
			pr_warning("print interval < 100ms. "
				   "The overhead percentage could be high in some cases. "
				   "Please proceed with caution.\n");
1980
	}
1981

1982
	if (perf_evlist__alloc_stats(evsel_list, interval))
1983
		goto out;
1984

1985
	if (perf_stat_init_aggr_mode())
1986
		goto out;
1987

I
Ingo Molnar 已提交
1988 1989 1990 1991 1992 1993
	/*
	 * We dont want to block the signals - that would cause
	 * child tasks to inherit that and Ctrl-C would not work.
	 * What we want is for Ctrl-C to work in the exec()-ed
	 * task, but being ignored by perf stat itself:
	 */
1994
	atexit(sig_atexit);
1995 1996
	if (!forever)
		signal(SIGINT,  skip_signal);
1997
	signal(SIGCHLD, skip_signal);
I
Ingo Molnar 已提交
1998 1999 2000
	signal(SIGALRM, skip_signal);
	signal(SIGABRT, skip_signal);

2001
	status = 0;
2002
	for (run_idx = 0; forever || run_idx < run_count; run_idx++) {
2003
		if (run_count != 1 && verbose)
2004 2005
			fprintf(output, "[ perf stat: executing run #%d ... ]\n",
				run_idx + 1);
I
Ingo Molnar 已提交
2006

2007
		status = run_perf_stat(argc, argv);
2008
		if (forever && status != -1) {
2009
			print_counters(NULL, argc, argv);
2010
			perf_stat__reset_stats();
2011
		}
2012 2013
	}

2014
	if (!forever && status != -1 && !interval)
2015
		print_counters(NULL, argc, argv);
2016

J
Jiri Olsa 已提交
2017 2018 2019 2020 2021 2022 2023 2024
	if (STAT_RECORD) {
		/*
		 * We synthesize the kernel mmap record just so that older tools
		 * don't emit warnings about not being able to resolve symbols
		 * due to /proc/sys/kernel/kptr_restrict settings and instear provide
		 * a saner message about no samples being in the perf.data file.
		 *
		 * This also serves to suppress a warning about f_header.data.size == 0
2025 2026 2027 2028
		 * in header.c at the moment 'perf stat record' gets introduced, which
		 * is not really needed once we start adding the stat specific PERF_RECORD_
		 * records, but the need to suppress the kptr_restrict messages in older
		 * tools remain  -acme
J
Jiri Olsa 已提交
2029 2030 2031 2032 2033 2034 2035 2036 2037 2038
		 */
		int fd = perf_data_file__fd(&perf_stat.file);
		int err = perf_event__synthesize_kernel_mmap((void *)&perf_stat,
							     process_synthesized_event,
							     &perf_stat.session->machines.host);
		if (err) {
			pr_warning("Couldn't synthesize the kernel mmap record, harmless, "
				   "older tools may produce warnings about this file\n.");
		}

2039 2040 2041 2042 2043
		if (!interval) {
			if (WRITE_STAT_ROUND_EVENT(walltime_nsecs_stats.max, FINAL))
				pr_err("failed to write stat round event\n");
		}

2044 2045 2046 2047
		if (!perf_stat.file.is_pipe) {
			perf_stat.session->header.data_size += perf_stat.bytes_written;
			perf_session__write_header(perf_stat.session, evsel_list, fd, true);
		}
J
Jiri Olsa 已提交
2048 2049 2050 2051

		perf_session__delete(perf_stat.session);
	}

2052
	perf_stat__exit_aggr_mode();
2053
	perf_evlist__free_stats(evsel_list);
2054 2055
out:
	perf_evlist__delete(evsel_list);
2056
	return status;
2057
}