builtin-stat.c 13 KB

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  1. /*
  2. * builtin-stat.c
  3. *
  4. * Builtin stat command: Give a precise performance counters summary
  5. * overview about any workload, CPU or specific PID.
  6. *
  7. * Sample output:
  8. $ perf stat ~/hackbench 10
  9. Time: 0.104
  10. Performance counter stats for '/home/mingo/hackbench':
  11. 1255.538611 task clock ticks # 10.143 CPU utilization factor
  12. 54011 context switches # 0.043 M/sec
  13. 385 CPU migrations # 0.000 M/sec
  14. 17755 pagefaults # 0.014 M/sec
  15. 3808323185 CPU cycles # 3033.219 M/sec
  16. 1575111190 instructions # 1254.530 M/sec
  17. 17367895 cache references # 13.833 M/sec
  18. 7674421 cache misses # 6.112 M/sec
  19. Wall-clock time elapsed: 123.786620 msecs
  20. *
  21. * Copyright (C) 2008, Red Hat Inc, Ingo Molnar <mingo@redhat.com>
  22. *
  23. * Improvements and fixes by:
  24. *
  25. * Arjan van de Ven <arjan@linux.intel.com>
  26. * Yanmin Zhang <yanmin.zhang@intel.com>
  27. * Wu Fengguang <fengguang.wu@intel.com>
  28. * Mike Galbraith <efault@gmx.de>
  29. * Paul Mackerras <paulus@samba.org>
  30. * Jaswinder Singh Rajput <jaswinder@kernel.org>
  31. *
  32. * Released under the GPL v2. (and only v2, not any later version)
  33. */
  34. #include "perf.h"
  35. #include "builtin.h"
  36. #include "util/util.h"
  37. #include "util/parse-options.h"
  38. #include "util/parse-events.h"
  39. #include "util/event.h"
  40. #include "util/debug.h"
  41. #include "util/header.h"
  42. #include "util/cpumap.h"
  43. #include <sys/prctl.h>
  44. #include <math.h>
  45. static struct perf_event_attr default_attrs[] = {
  46. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_TASK_CLOCK },
  47. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_CONTEXT_SWITCHES },
  48. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_CPU_MIGRATIONS },
  49. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_PAGE_FAULTS },
  50. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CPU_CYCLES },
  51. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_INSTRUCTIONS },
  52. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_BRANCH_INSTRUCTIONS },
  53. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_BRANCH_MISSES },
  54. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CACHE_REFERENCES },
  55. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CACHE_MISSES },
  56. };
  57. static int system_wide = 0;
  58. static unsigned int nr_cpus = 0;
  59. static int run_idx = 0;
  60. static int run_count = 1;
  61. static int inherit = 1;
  62. static int scale = 1;
  63. static pid_t target_pid = -1;
  64. static pid_t child_pid = -1;
  65. static int null_run = 0;
  66. static int fd[MAX_NR_CPUS][MAX_COUNTERS];
  67. static int event_scaled[MAX_COUNTERS];
  68. static volatile int done = 0;
  69. struct stats
  70. {
  71. double n, mean, M2;
  72. };
  73. static void update_stats(struct stats *stats, u64 val)
  74. {
  75. double delta;
  76. stats->n++;
  77. delta = val - stats->mean;
  78. stats->mean += delta / stats->n;
  79. stats->M2 += delta*(val - stats->mean);
  80. }
  81. static double avg_stats(struct stats *stats)
  82. {
  83. return stats->mean;
  84. }
  85. /*
  86. * http://en.wikipedia.org/wiki/Algorithms_for_calculating_variance
  87. *
  88. * (\Sum n_i^2) - ((\Sum n_i)^2)/n
  89. * s^2 = -------------------------------
  90. * n - 1
  91. *
  92. * http://en.wikipedia.org/wiki/Stddev
  93. *
  94. * The std dev of the mean is related to the std dev by:
  95. *
  96. * s
  97. * s_mean = -------
  98. * sqrt(n)
  99. *
  100. */
  101. static double stddev_stats(struct stats *stats)
  102. {
  103. double variance = stats->M2 / (stats->n - 1);
  104. double variance_mean = variance / stats->n;
  105. return sqrt(variance_mean);
  106. }
  107. struct stats event_res_stats[MAX_COUNTERS][3];
  108. struct stats runtime_nsecs_stats;
  109. struct stats walltime_nsecs_stats;
  110. struct stats runtime_cycles_stats;
  111. struct stats runtime_branches_stats;
  112. #define MATCH_EVENT(t, c, counter) \
  113. (attrs[counter].type == PERF_TYPE_##t && \
  114. attrs[counter].config == PERF_COUNT_##c)
  115. #define ERR_PERF_OPEN \
  116. "Error: counter %d, sys_perf_event_open() syscall returned with %d (%s)\n"
  117. static void create_perf_stat_counter(int counter, int pid)
  118. {
  119. struct perf_event_attr *attr = attrs + counter;
  120. if (scale)
  121. attr->read_format = PERF_FORMAT_TOTAL_TIME_ENABLED |
  122. PERF_FORMAT_TOTAL_TIME_RUNNING;
  123. if (system_wide) {
  124. unsigned int cpu;
  125. for (cpu = 0; cpu < nr_cpus; cpu++) {
  126. fd[cpu][counter] = sys_perf_event_open(attr, -1, cpumap[cpu], -1, 0);
  127. if (fd[cpu][counter] < 0 && verbose)
  128. fprintf(stderr, ERR_PERF_OPEN, counter,
  129. fd[cpu][counter], strerror(errno));
  130. }
  131. } else {
  132. attr->inherit = inherit;
  133. if (target_pid == -1) {
  134. attr->disabled = 1;
  135. attr->enable_on_exec = 1;
  136. }
  137. fd[0][counter] = sys_perf_event_open(attr, pid, -1, -1, 0);
  138. if (fd[0][counter] < 0 && verbose)
  139. fprintf(stderr, ERR_PERF_OPEN, counter,
  140. fd[0][counter], strerror(errno));
  141. }
  142. }
  143. /*
  144. * Does the counter have nsecs as a unit?
  145. */
  146. static inline int nsec_counter(int counter)
  147. {
  148. if (MATCH_EVENT(SOFTWARE, SW_CPU_CLOCK, counter) ||
  149. MATCH_EVENT(SOFTWARE, SW_TASK_CLOCK, counter))
  150. return 1;
  151. return 0;
  152. }
  153. /*
  154. * Read out the results of a single counter:
  155. */
  156. static void read_counter(int counter)
  157. {
  158. u64 count[3], single_count[3];
  159. unsigned int cpu;
  160. size_t res, nv;
  161. int scaled;
  162. int i;
  163. count[0] = count[1] = count[2] = 0;
  164. nv = scale ? 3 : 1;
  165. for (cpu = 0; cpu < nr_cpus; cpu++) {
  166. if (fd[cpu][counter] < 0)
  167. continue;
  168. res = read(fd[cpu][counter], single_count, nv * sizeof(u64));
  169. assert(res == nv * sizeof(u64));
  170. close(fd[cpu][counter]);
  171. fd[cpu][counter] = -1;
  172. count[0] += single_count[0];
  173. if (scale) {
  174. count[1] += single_count[1];
  175. count[2] += single_count[2];
  176. }
  177. }
  178. scaled = 0;
  179. if (scale) {
  180. if (count[2] == 0) {
  181. event_scaled[counter] = -1;
  182. count[0] = 0;
  183. return;
  184. }
  185. if (count[2] < count[1]) {
  186. event_scaled[counter] = 1;
  187. count[0] = (unsigned long long)
  188. ((double)count[0] * count[1] / count[2] + 0.5);
  189. }
  190. }
  191. for (i = 0; i < 3; i++)
  192. update_stats(&event_res_stats[counter][i], count[i]);
  193. if (verbose) {
  194. fprintf(stderr, "%s: %Ld %Ld %Ld\n", event_name(counter),
  195. count[0], count[1], count[2]);
  196. }
  197. /*
  198. * Save the full runtime - to allow normalization during printout:
  199. */
  200. if (MATCH_EVENT(SOFTWARE, SW_TASK_CLOCK, counter))
  201. update_stats(&runtime_nsecs_stats, count[0]);
  202. if (MATCH_EVENT(HARDWARE, HW_CPU_CYCLES, counter))
  203. update_stats(&runtime_cycles_stats, count[0]);
  204. if (MATCH_EVENT(HARDWARE, HW_BRANCH_INSTRUCTIONS, counter))
  205. update_stats(&runtime_branches_stats, count[0]);
  206. }
  207. static int run_perf_stat(int argc __used, const char **argv)
  208. {
  209. unsigned long long t0, t1;
  210. int status = 0;
  211. int counter;
  212. int pid;
  213. int child_ready_pipe[2], go_pipe[2];
  214. const bool forks = (argc > 0);
  215. char buf;
  216. if (!system_wide)
  217. nr_cpus = 1;
  218. if (forks && (pipe(child_ready_pipe) < 0 || pipe(go_pipe) < 0)) {
  219. perror("failed to create pipes");
  220. exit(1);
  221. }
  222. if (forks) {
  223. if ((child_pid = fork()) < 0)
  224. perror("failed to fork");
  225. if (!child_pid) {
  226. close(child_ready_pipe[0]);
  227. close(go_pipe[1]);
  228. fcntl(go_pipe[0], F_SETFD, FD_CLOEXEC);
  229. /*
  230. * Do a dummy execvp to get the PLT entry resolved,
  231. * so we avoid the resolver overhead on the real
  232. * execvp call.
  233. */
  234. execvp("", (char **)argv);
  235. /*
  236. * Tell the parent we're ready to go
  237. */
  238. close(child_ready_pipe[1]);
  239. /*
  240. * Wait until the parent tells us to go.
  241. */
  242. if (read(go_pipe[0], &buf, 1) == -1)
  243. perror("unable to read pipe");
  244. execvp(argv[0], (char **)argv);
  245. perror(argv[0]);
  246. exit(-1);
  247. }
  248. /*
  249. * Wait for the child to be ready to exec.
  250. */
  251. close(child_ready_pipe[1]);
  252. close(go_pipe[0]);
  253. if (read(child_ready_pipe[0], &buf, 1) == -1)
  254. perror("unable to read pipe");
  255. close(child_ready_pipe[0]);
  256. }
  257. if (target_pid == -1)
  258. pid = child_pid;
  259. else
  260. pid = target_pid;
  261. for (counter = 0; counter < nr_counters; counter++)
  262. create_perf_stat_counter(counter, pid);
  263. /*
  264. * Enable counters and exec the command:
  265. */
  266. t0 = rdclock();
  267. if (forks) {
  268. close(go_pipe[1]);
  269. wait(&status);
  270. } else {
  271. while(!done) sleep(1);
  272. }
  273. t1 = rdclock();
  274. update_stats(&walltime_nsecs_stats, t1 - t0);
  275. for (counter = 0; counter < nr_counters; counter++)
  276. read_counter(counter);
  277. return WEXITSTATUS(status);
  278. }
  279. static void print_noise(int counter, double avg)
  280. {
  281. if (run_count == 1)
  282. return;
  283. fprintf(stderr, " ( +- %7.3f%% )",
  284. 100 * stddev_stats(&event_res_stats[counter][0]) / avg);
  285. }
  286. static void nsec_printout(int counter, double avg)
  287. {
  288. double msecs = avg / 1e6;
  289. fprintf(stderr, " %14.6f %-24s", msecs, event_name(counter));
  290. if (MATCH_EVENT(SOFTWARE, SW_TASK_CLOCK, counter)) {
  291. fprintf(stderr, " # %10.3f CPUs ",
  292. avg / avg_stats(&walltime_nsecs_stats));
  293. }
  294. }
  295. static void abs_printout(int counter, double avg)
  296. {
  297. double total, ratio = 0.0;
  298. fprintf(stderr, " %14.0f %-24s", avg, event_name(counter));
  299. if (MATCH_EVENT(HARDWARE, HW_INSTRUCTIONS, counter)) {
  300. total = avg_stats(&runtime_cycles_stats);
  301. if (total)
  302. ratio = avg / total;
  303. fprintf(stderr, " # %10.3f IPC ", ratio);
  304. } else if (MATCH_EVENT(HARDWARE, HW_BRANCH_MISSES, counter) &&
  305. runtime_branches_stats.n != 0) {
  306. total = avg_stats(&runtime_branches_stats);
  307. if (total)
  308. ratio = avg * 100 / total;
  309. fprintf(stderr, " # %10.3f %% ", ratio);
  310. } else if (runtime_nsecs_stats.n != 0) {
  311. total = avg_stats(&runtime_nsecs_stats);
  312. if (total)
  313. ratio = 1000.0 * avg / total;
  314. fprintf(stderr, " # %10.3f M/sec", ratio);
  315. }
  316. }
  317. /*
  318. * Print out the results of a single counter:
  319. */
  320. static void print_counter(int counter)
  321. {
  322. double avg = avg_stats(&event_res_stats[counter][0]);
  323. int scaled = event_scaled[counter];
  324. if (scaled == -1) {
  325. fprintf(stderr, " %14s %-24s\n",
  326. "<not counted>", event_name(counter));
  327. return;
  328. }
  329. if (nsec_counter(counter))
  330. nsec_printout(counter, avg);
  331. else
  332. abs_printout(counter, avg);
  333. print_noise(counter, avg);
  334. if (scaled) {
  335. double avg_enabled, avg_running;
  336. avg_enabled = avg_stats(&event_res_stats[counter][1]);
  337. avg_running = avg_stats(&event_res_stats[counter][2]);
  338. fprintf(stderr, " (scaled from %.2f%%)",
  339. 100 * avg_running / avg_enabled);
  340. }
  341. fprintf(stderr, "\n");
  342. }
  343. static void print_stat(int argc, const char **argv)
  344. {
  345. int i, counter;
  346. fflush(stdout);
  347. fprintf(stderr, "\n");
  348. fprintf(stderr, " Performance counter stats for ");
  349. if(target_pid == -1) {
  350. fprintf(stderr, "\'%s", argv[0]);
  351. for (i = 1; i < argc; i++)
  352. fprintf(stderr, " %s", argv[i]);
  353. }else
  354. fprintf(stderr, "task pid \'%d", target_pid);
  355. fprintf(stderr, "\'");
  356. if (run_count > 1)
  357. fprintf(stderr, " (%d runs)", run_count);
  358. fprintf(stderr, ":\n\n");
  359. for (counter = 0; counter < nr_counters; counter++)
  360. print_counter(counter);
  361. fprintf(stderr, "\n");
  362. fprintf(stderr, " %14.9f seconds time elapsed",
  363. avg_stats(&walltime_nsecs_stats)/1e9);
  364. if (run_count > 1) {
  365. fprintf(stderr, " ( +- %7.3f%% )",
  366. 100*stddev_stats(&walltime_nsecs_stats) /
  367. avg_stats(&walltime_nsecs_stats));
  368. }
  369. fprintf(stderr, "\n\n");
  370. }
  371. static volatile int signr = -1;
  372. static void skip_signal(int signo)
  373. {
  374. if(child_pid == -1)
  375. done = 1;
  376. signr = signo;
  377. }
  378. static void sig_atexit(void)
  379. {
  380. if (child_pid != -1)
  381. kill(child_pid, SIGTERM);
  382. if (signr == -1)
  383. return;
  384. signal(signr, SIG_DFL);
  385. kill(getpid(), signr);
  386. }
  387. static const char * const stat_usage[] = {
  388. "perf stat [<options>] [<command>]",
  389. NULL
  390. };
  391. static const struct option options[] = {
  392. OPT_CALLBACK('e', "event", NULL, "event",
  393. "event selector. use 'perf list' to list available events",
  394. parse_events),
  395. OPT_BOOLEAN('i', "inherit", &inherit,
  396. "child tasks inherit counters"),
  397. OPT_INTEGER('p', "pid", &target_pid,
  398. "stat events on existing pid"),
  399. OPT_BOOLEAN('a', "all-cpus", &system_wide,
  400. "system-wide collection from all CPUs"),
  401. OPT_BOOLEAN('c', "scale", &scale,
  402. "scale/normalize counters"),
  403. OPT_BOOLEAN('v', "verbose", &verbose,
  404. "be more verbose (show counter open errors, etc)"),
  405. OPT_INTEGER('r', "repeat", &run_count,
  406. "repeat command and print average + stddev (max: 100)"),
  407. OPT_BOOLEAN('n', "null", &null_run,
  408. "null run - dont start any counters"),
  409. OPT_END()
  410. };
  411. int cmd_stat(int argc, const char **argv, const char *prefix __used)
  412. {
  413. int status;
  414. argc = parse_options(argc, argv, options, stat_usage,
  415. PARSE_OPT_STOP_AT_NON_OPTION);
  416. if (!argc && target_pid == -1)
  417. usage_with_options(stat_usage, options);
  418. if (run_count <= 0)
  419. usage_with_options(stat_usage, options);
  420. /* Set attrs and nr_counters if no event is selected and !null_run */
  421. if (!null_run && !nr_counters) {
  422. memcpy(attrs, default_attrs, sizeof(default_attrs));
  423. nr_counters = ARRAY_SIZE(default_attrs);
  424. }
  425. if (system_wide)
  426. nr_cpus = read_cpu_map();
  427. else
  428. nr_cpus = 1;
  429. /*
  430. * We dont want to block the signals - that would cause
  431. * child tasks to inherit that and Ctrl-C would not work.
  432. * What we want is for Ctrl-C to work in the exec()-ed
  433. * task, but being ignored by perf stat itself:
  434. */
  435. atexit(sig_atexit);
  436. signal(SIGINT, skip_signal);
  437. signal(SIGALRM, skip_signal);
  438. signal(SIGABRT, skip_signal);
  439. status = 0;
  440. for (run_idx = 0; run_idx < run_count; run_idx++) {
  441. if (run_count != 1 && verbose)
  442. fprintf(stderr, "[ perf stat: executing run #%d ... ]\n", run_idx + 1);
  443. status = run_perf_stat(argc, argv);
  444. }
  445. print_stat(argc, argv);
  446. return status;
  447. }