perf stat: Add support to measure SMI cost
Implementing a new --smi-cost mode in perf stat to measure SMI cost. During the measurement, the /sys/device/cpu/freeze_on_smi will be set. The measurement can be done with one counter (unhalted core cycles), and two free running MSR counters (IA32_APERF and SMI_COUNT). In practice, the percentages of SMI core cycles should be more useful than absolute value. So the output will be the percentage of SMI core cycles and SMI#. metric_only will be set by default. SMI cycles% = (aperf - unhalted core cycles) / aperf Here is an example output. Performance counter stats for 'sudo echo ': SMI cycles% SMI# 0.1% 1 0.010858678 seconds time elapsed Users who wants to get the actual value can apply additional --no-metric-only. Signed-off-by: Kan Liang <Kan.liang@intel.com> Acked-by: Jiri Olsa <jolsa@kernel.org> Cc: Andi Kleen <ak@linux.intel.com> Cc: Kan Liang <kan.liang@intel.com> Cc: Peter Zijlstra <peterz@infradead.org> Cc: Robert Elliott <elliott@hpe.com> Cc: Stephane Eranian <eranian@google.com> Cc: Thomas Gleixner <tglx@linutronix.de> Link: http://lkml.kernel.org/r/1495825538-5230-3-git-send-email-kan.liang@intel.com Signed-off-by: Arnaldo Carvalho de Melo <acme@redhat.com>
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@ -239,6 +239,20 @@ taskset.
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--no-merge::
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Do not merge results from same PMUs.
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--smi-cost::
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Measure SMI cost if msr/aperf/ and msr/smi/ events are supported.
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During the measurement, the /sys/device/cpu/freeze_on_smi will be set to
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freeze core counters on SMI.
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The aperf counter will not be effected by the setting.
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The cost of SMI can be measured by (aperf - unhalted core cycles).
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In practice, the percentages of SMI cycles is very useful for performance
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oriented analysis. --metric_only will be applied by default.
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The output is SMI cycles%, equals to (aperf - unhalted core cycles) / aperf
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Users who wants to get the actual value can apply --no-metric-only.
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EXAMPLES
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--------
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@ -86,6 +86,7 @@
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#define DEFAULT_SEPARATOR " "
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#define CNTR_NOT_SUPPORTED "<not supported>"
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#define CNTR_NOT_COUNTED "<not counted>"
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#define FREEZE_ON_SMI_PATH "devices/cpu/freeze_on_smi"
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static void print_counters(struct timespec *ts, int argc, const char **argv);
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@ -122,6 +123,14 @@ static const char * topdown_attrs[] = {
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NULL,
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};
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static const char *smi_cost_attrs = {
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"{"
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"msr/aperf/,"
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"msr/smi/,"
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"cycles"
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"}"
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};
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static struct perf_evlist *evsel_list;
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static struct target target = {
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@ -137,6 +146,8 @@ 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 topdown_run = false;
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static bool smi_cost = false;
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static bool smi_reset = false;
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static bool big_num = true;
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static int big_num_opt = -1;
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static const char *csv_sep = NULL;
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@ -1782,6 +1793,8 @@ static const struct option stat_options[] = {
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"Only print computed metrics. No raw values", enable_metric_only),
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OPT_BOOLEAN(0, "topdown", &topdown_run,
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"measure topdown level 1 statistics"),
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OPT_BOOLEAN(0, "smi-cost", &smi_cost,
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"measure SMI cost"),
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OPT_END()
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};
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@ -2160,6 +2173,39 @@ static int add_default_attributes(void)
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return 0;
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}
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if (smi_cost) {
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int smi;
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if (sysfs__read_int(FREEZE_ON_SMI_PATH, &smi) < 0) {
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fprintf(stderr, "freeze_on_smi is not supported.\n");
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return -1;
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}
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if (!smi) {
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if (sysfs__write_int(FREEZE_ON_SMI_PATH, 1) < 0) {
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fprintf(stderr, "Failed to set freeze_on_smi.\n");
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return -1;
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}
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smi_reset = true;
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}
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if (pmu_have_event("msr", "aperf") &&
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pmu_have_event("msr", "smi")) {
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if (!force_metric_only)
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metric_only = true;
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err = parse_events(evsel_list, smi_cost_attrs, NULL);
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} else {
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fprintf(stderr, "To measure SMI cost, it needs "
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"msr/aperf/, msr/smi/ and cpu/cycles/ support\n");
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return -1;
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}
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if (err) {
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fprintf(stderr, "Cannot set up SMI cost events\n");
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return -1;
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}
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return 0;
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}
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if (topdown_run) {
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char *str = NULL;
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bool warn = false;
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@ -2742,6 +2788,9 @@ int cmd_stat(int argc, const char **argv)
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perf_stat__exit_aggr_mode();
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perf_evlist__free_stats(evsel_list);
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out:
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if (smi_cost && smi_reset)
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sysfs__write_int(FREEZE_ON_SMI_PATH, 0);
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perf_evlist__delete(evsel_list);
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return status;
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}
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@ -44,6 +44,8 @@ static struct stats runtime_topdown_slots_issued[NUM_CTX][MAX_NR_CPUS];
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static struct stats runtime_topdown_slots_retired[NUM_CTX][MAX_NR_CPUS];
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static struct stats runtime_topdown_fetch_bubbles[NUM_CTX][MAX_NR_CPUS];
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static struct stats runtime_topdown_recovery_bubbles[NUM_CTX][MAX_NR_CPUS];
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static struct stats runtime_smi_num_stats[NUM_CTX][MAX_NR_CPUS];
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static struct stats runtime_aperf_stats[NUM_CTX][MAX_NR_CPUS];
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static struct rblist runtime_saved_values;
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static bool have_frontend_stalled;
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@ -157,6 +159,8 @@ void perf_stat__reset_shadow_stats(void)
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memset(runtime_topdown_slots_issued, 0, sizeof(runtime_topdown_slots_issued));
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memset(runtime_topdown_fetch_bubbles, 0, sizeof(runtime_topdown_fetch_bubbles));
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memset(runtime_topdown_recovery_bubbles, 0, sizeof(runtime_topdown_recovery_bubbles));
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memset(runtime_smi_num_stats, 0, sizeof(runtime_smi_num_stats));
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memset(runtime_aperf_stats, 0, sizeof(runtime_aperf_stats));
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next = rb_first(&runtime_saved_values.entries);
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while (next) {
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@ -217,6 +221,10 @@ void perf_stat__update_shadow_stats(struct perf_evsel *counter, u64 *count,
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update_stats(&runtime_dtlb_cache_stats[ctx][cpu], count[0]);
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else if (perf_evsel__match(counter, HW_CACHE, HW_CACHE_ITLB))
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update_stats(&runtime_itlb_cache_stats[ctx][cpu], count[0]);
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else if (perf_stat_evsel__is(counter, SMI_NUM))
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update_stats(&runtime_smi_num_stats[ctx][cpu], count[0]);
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else if (perf_stat_evsel__is(counter, APERF))
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update_stats(&runtime_aperf_stats[ctx][cpu], count[0]);
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if (counter->collect_stat) {
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struct saved_value *v = saved_value_lookup(counter, cpu, ctx,
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@ -592,6 +600,29 @@ static double td_be_bound(int ctx, int cpu)
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return sanitize_val(1.0 - sum);
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}
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static void print_smi_cost(int cpu, struct perf_evsel *evsel,
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struct perf_stat_output_ctx *out)
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{
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double smi_num, aperf, cycles, cost = 0.0;
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int ctx = evsel_context(evsel);
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const char *color = NULL;
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smi_num = avg_stats(&runtime_smi_num_stats[ctx][cpu]);
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aperf = avg_stats(&runtime_aperf_stats[ctx][cpu]);
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cycles = avg_stats(&runtime_cycles_stats[ctx][cpu]);
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if ((cycles == 0) || (aperf == 0))
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return;
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if (smi_num)
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cost = (aperf - cycles) / aperf * 100.00;
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if (cost > 10)
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color = PERF_COLOR_RED;
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out->print_metric(out->ctx, color, "%8.1f%%", "SMI cycles%", cost);
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out->print_metric(out->ctx, NULL, "%4.0f", "SMI#", smi_num);
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}
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void perf_stat__print_shadow_stats(struct perf_evsel *evsel,
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double avg, int cpu,
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struct perf_stat_output_ctx *out)
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@ -825,6 +856,8 @@ void perf_stat__print_shadow_stats(struct perf_evsel *evsel,
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}
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snprintf(unit_buf, sizeof(unit_buf), "%c/sec", unit);
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print_metric(ctxp, NULL, "%8.3f", unit_buf, ratio);
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} else if (perf_stat_evsel__is(evsel, SMI_NUM)) {
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print_smi_cost(cpu, evsel, out);
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} else {
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print_metric(ctxp, NULL, NULL, NULL, 0);
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}
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@ -86,6 +86,8 @@ static const char *id_str[PERF_STAT_EVSEL_ID__MAX] = {
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ID(TOPDOWN_SLOTS_RETIRED, topdown-slots-retired),
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ID(TOPDOWN_FETCH_BUBBLES, topdown-fetch-bubbles),
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ID(TOPDOWN_RECOVERY_BUBBLES, topdown-recovery-bubbles),
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ID(SMI_NUM, msr/smi/),
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ID(APERF, msr/aperf/),
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};
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#undef ID
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@ -22,6 +22,8 @@ enum perf_stat_evsel_id {
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PERF_STAT_EVSEL_ID__TOPDOWN_SLOTS_RETIRED,
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PERF_STAT_EVSEL_ID__TOPDOWN_FETCH_BUBBLES,
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PERF_STAT_EVSEL_ID__TOPDOWN_RECOVERY_BUBBLES,
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PERF_STAT_EVSEL_ID__SMI_NUM,
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PERF_STAT_EVSEL_ID__APERF,
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PERF_STAT_EVSEL_ID__MAX,
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};
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