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 <sys/prctl.h>
  40. #include <math.h>
  41. static struct perf_counter_attr default_attrs[] = {
  42. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_TASK_CLOCK },
  43. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_CONTEXT_SWITCHES},
  44. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_CPU_MIGRATIONS },
  45. { .type = PERF_TYPE_SOFTWARE, .config = PERF_COUNT_SW_PAGE_FAULTS },
  46. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CPU_CYCLES },
  47. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_INSTRUCTIONS },
  48. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CACHE_REFERENCES},
  49. { .type = PERF_TYPE_HARDWARE, .config = PERF_COUNT_HW_CACHE_MISSES },
  50. };
  51. #define MAX_RUN 100
  52. static int system_wide = 0;
  53. static int verbose = 0;
  54. static int nr_cpus = 0;
  55. static int run_idx = 0;
  56. static int run_count = 1;
  57. static int inherit = 1;
  58. static int scale = 1;
  59. static int target_pid = -1;
  60. static int null_run = 0;
  61. static int fd[MAX_NR_CPUS][MAX_COUNTERS];
  62. static u64 runtime_nsecs[MAX_RUN];
  63. static u64 walltime_nsecs[MAX_RUN];
  64. static u64 runtime_cycles[MAX_RUN];
  65. static u64 event_res[MAX_RUN][MAX_COUNTERS][3];
  66. static u64 event_scaled[MAX_RUN][MAX_COUNTERS];
  67. static u64 event_res_avg[MAX_COUNTERS][3];
  68. static u64 event_res_noise[MAX_COUNTERS][3];
  69. static u64 event_scaled_avg[MAX_COUNTERS];
  70. static u64 runtime_nsecs_avg;
  71. static u64 runtime_nsecs_noise;
  72. static u64 walltime_nsecs_avg;
  73. static u64 walltime_nsecs_noise;
  74. static u64 runtime_cycles_avg;
  75. static u64 runtime_cycles_noise;
  76. #define ERR_PERF_OPEN \
  77. "Error: counter %d, sys_perf_counter_open() syscall returned with %d (%s)\n"
  78. static void create_perf_stat_counter(int counter, int pid)
  79. {
  80. struct perf_counter_attr *attr = attrs + counter;
  81. if (scale)
  82. attr->read_format = PERF_FORMAT_TOTAL_TIME_ENABLED |
  83. PERF_FORMAT_TOTAL_TIME_RUNNING;
  84. if (system_wide) {
  85. int cpu;
  86. for (cpu = 0; cpu < nr_cpus; cpu++) {
  87. fd[cpu][counter] = sys_perf_counter_open(attr, -1, cpu, -1, 0);
  88. if (fd[cpu][counter] < 0 && verbose)
  89. fprintf(stderr, ERR_PERF_OPEN, counter,
  90. fd[cpu][counter], strerror(errno));
  91. }
  92. } else {
  93. attr->inherit = inherit;
  94. attr->disabled = 1;
  95. attr->enable_on_exec = 1;
  96. fd[0][counter] = sys_perf_counter_open(attr, pid, -1, -1, 0);
  97. if (fd[0][counter] < 0 && verbose)
  98. fprintf(stderr, ERR_PERF_OPEN, counter,
  99. fd[0][counter], strerror(errno));
  100. }
  101. }
  102. /*
  103. * Does the counter have nsecs as a unit?
  104. */
  105. static inline int nsec_counter(int counter)
  106. {
  107. if (attrs[counter].type != PERF_TYPE_SOFTWARE)
  108. return 0;
  109. if (attrs[counter].config == PERF_COUNT_SW_CPU_CLOCK)
  110. return 1;
  111. if (attrs[counter].config == PERF_COUNT_SW_TASK_CLOCK)
  112. return 1;
  113. return 0;
  114. }
  115. /*
  116. * Read out the results of a single counter:
  117. */
  118. static void read_counter(int counter)
  119. {
  120. u64 *count, single_count[3];
  121. ssize_t res;
  122. int cpu, nv;
  123. int scaled;
  124. count = event_res[run_idx][counter];
  125. count[0] = count[1] = count[2] = 0;
  126. nv = scale ? 3 : 1;
  127. for (cpu = 0; cpu < nr_cpus; cpu++) {
  128. if (fd[cpu][counter] < 0)
  129. continue;
  130. res = read(fd[cpu][counter], single_count, nv * sizeof(u64));
  131. assert(res == nv * sizeof(u64));
  132. close(fd[cpu][counter]);
  133. fd[cpu][counter] = -1;
  134. count[0] += single_count[0];
  135. if (scale) {
  136. count[1] += single_count[1];
  137. count[2] += single_count[2];
  138. }
  139. }
  140. scaled = 0;
  141. if (scale) {
  142. if (count[2] == 0) {
  143. event_scaled[run_idx][counter] = -1;
  144. count[0] = 0;
  145. return;
  146. }
  147. if (count[2] < count[1]) {
  148. event_scaled[run_idx][counter] = 1;
  149. count[0] = (unsigned long long)
  150. ((double)count[0] * count[1] / count[2] + 0.5);
  151. }
  152. }
  153. /*
  154. * Save the full runtime - to allow normalization during printout:
  155. */
  156. if (attrs[counter].type == PERF_TYPE_SOFTWARE &&
  157. attrs[counter].config == PERF_COUNT_SW_TASK_CLOCK)
  158. runtime_nsecs[run_idx] = count[0];
  159. if (attrs[counter].type == PERF_TYPE_HARDWARE &&
  160. attrs[counter].config == PERF_COUNT_HW_CPU_CYCLES)
  161. runtime_cycles[run_idx] = count[0];
  162. }
  163. static int run_perf_stat(int argc, const char **argv)
  164. {
  165. unsigned long long t0, t1;
  166. int status = 0;
  167. int counter;
  168. int pid;
  169. int child_ready_pipe[2], go_pipe[2];
  170. char buf;
  171. if (!system_wide)
  172. nr_cpus = 1;
  173. if (pipe(child_ready_pipe) < 0 || pipe(go_pipe) < 0) {
  174. perror("failed to create pipes");
  175. exit(1);
  176. }
  177. if ((pid = fork()) < 0)
  178. perror("failed to fork");
  179. if (!pid) {
  180. close(child_ready_pipe[0]);
  181. close(go_pipe[1]);
  182. fcntl(go_pipe[0], F_SETFD, FD_CLOEXEC);
  183. /*
  184. * Do a dummy execvp to get the PLT entry resolved,
  185. * so we avoid the resolver overhead on the real
  186. * execvp call.
  187. */
  188. execvp("", (char **)argv);
  189. /*
  190. * Tell the parent we're ready to go
  191. */
  192. close(child_ready_pipe[1]);
  193. /*
  194. * Wait until the parent tells us to go.
  195. */
  196. read(go_pipe[0], &buf, 1);
  197. execvp(argv[0], (char **)argv);
  198. perror(argv[0]);
  199. exit(-1);
  200. }
  201. /*
  202. * Wait for the child to be ready to exec.
  203. */
  204. close(child_ready_pipe[1]);
  205. close(go_pipe[0]);
  206. read(child_ready_pipe[0], &buf, 1);
  207. close(child_ready_pipe[0]);
  208. for (counter = 0; counter < nr_counters; counter++)
  209. create_perf_stat_counter(counter, pid);
  210. /*
  211. * Enable counters and exec the command:
  212. */
  213. t0 = rdclock();
  214. close(go_pipe[1]);
  215. wait(&status);
  216. t1 = rdclock();
  217. walltime_nsecs[run_idx] = t1 - t0;
  218. for (counter = 0; counter < nr_counters; counter++)
  219. read_counter(counter);
  220. return WEXITSTATUS(status);
  221. }
  222. static void print_noise(u64 *count, u64 *noise)
  223. {
  224. if (run_count > 1)
  225. fprintf(stderr, " ( +- %7.3f%% )",
  226. (double)noise[0]/(count[0]+1)*100.0);
  227. }
  228. static void nsec_printout(int counter, u64 *count, u64 *noise)
  229. {
  230. double msecs = (double)count[0] / 1000000;
  231. fprintf(stderr, " %14.6f %-24s", msecs, event_name(counter));
  232. if (attrs[counter].type == PERF_TYPE_SOFTWARE &&
  233. attrs[counter].config == PERF_COUNT_SW_TASK_CLOCK) {
  234. if (walltime_nsecs_avg)
  235. fprintf(stderr, " # %10.3f CPUs ",
  236. (double)count[0] / (double)walltime_nsecs_avg);
  237. }
  238. print_noise(count, noise);
  239. }
  240. static void abs_printout(int counter, u64 *count, u64 *noise)
  241. {
  242. fprintf(stderr, " %14Ld %-24s", count[0], event_name(counter));
  243. if (runtime_cycles_avg &&
  244. attrs[counter].type == PERF_TYPE_HARDWARE &&
  245. attrs[counter].config == PERF_COUNT_HW_INSTRUCTIONS) {
  246. fprintf(stderr, " # %10.3f IPC ",
  247. (double)count[0] / (double)runtime_cycles_avg);
  248. } else {
  249. if (runtime_nsecs_avg) {
  250. fprintf(stderr, " # %10.3f M/sec",
  251. (double)count[0]/runtime_nsecs_avg*1000.0);
  252. }
  253. }
  254. print_noise(count, noise);
  255. }
  256. /*
  257. * Print out the results of a single counter:
  258. */
  259. static void print_counter(int counter)
  260. {
  261. u64 *count, *noise;
  262. int scaled;
  263. count = event_res_avg[counter];
  264. noise = event_res_noise[counter];
  265. scaled = event_scaled_avg[counter];
  266. if (scaled == -1) {
  267. fprintf(stderr, " %14s %-24s\n",
  268. "<not counted>", event_name(counter));
  269. return;
  270. }
  271. if (nsec_counter(counter))
  272. nsec_printout(counter, count, noise);
  273. else
  274. abs_printout(counter, count, noise);
  275. if (scaled)
  276. fprintf(stderr, " (scaled from %.2f%%)",
  277. (double) count[2] / count[1] * 100);
  278. fprintf(stderr, "\n");
  279. }
  280. /*
  281. * normalize_noise noise values down to stddev:
  282. */
  283. static void normalize_noise(u64 *val)
  284. {
  285. double res;
  286. res = (double)*val / (run_count * sqrt((double)run_count));
  287. *val = (u64)res;
  288. }
  289. static void update_avg(const char *name, int idx, u64 *avg, u64 *val)
  290. {
  291. *avg += *val;
  292. if (verbose > 1)
  293. fprintf(stderr, "debug: %20s[%d]: %Ld\n", name, idx, *val);
  294. }
  295. /*
  296. * Calculate the averages and noises:
  297. */
  298. static void calc_avg(void)
  299. {
  300. int i, j;
  301. if (verbose > 1)
  302. fprintf(stderr, "\n");
  303. for (i = 0; i < run_count; i++) {
  304. update_avg("runtime", 0, &runtime_nsecs_avg, runtime_nsecs + i);
  305. update_avg("walltime", 0, &walltime_nsecs_avg, walltime_nsecs + i);
  306. update_avg("runtime_cycles", 0, &runtime_cycles_avg, runtime_cycles + i);
  307. for (j = 0; j < nr_counters; j++) {
  308. update_avg("counter/0", j,
  309. event_res_avg[j]+0, event_res[i][j]+0);
  310. update_avg("counter/1", j,
  311. event_res_avg[j]+1, event_res[i][j]+1);
  312. update_avg("counter/2", j,
  313. event_res_avg[j]+2, event_res[i][j]+2);
  314. if (event_scaled[i][j] != -1)
  315. update_avg("scaled", j,
  316. event_scaled_avg + j, event_scaled[i]+j);
  317. else
  318. event_scaled_avg[j] = -1;
  319. }
  320. }
  321. runtime_nsecs_avg /= run_count;
  322. walltime_nsecs_avg /= run_count;
  323. runtime_cycles_avg /= run_count;
  324. for (j = 0; j < nr_counters; j++) {
  325. event_res_avg[j][0] /= run_count;
  326. event_res_avg[j][1] /= run_count;
  327. event_res_avg[j][2] /= run_count;
  328. }
  329. for (i = 0; i < run_count; i++) {
  330. runtime_nsecs_noise +=
  331. abs((s64)(runtime_nsecs[i] - runtime_nsecs_avg));
  332. walltime_nsecs_noise +=
  333. abs((s64)(walltime_nsecs[i] - walltime_nsecs_avg));
  334. runtime_cycles_noise +=
  335. abs((s64)(runtime_cycles[i] - runtime_cycles_avg));
  336. for (j = 0; j < nr_counters; j++) {
  337. event_res_noise[j][0] +=
  338. abs((s64)(event_res[i][j][0] - event_res_avg[j][0]));
  339. event_res_noise[j][1] +=
  340. abs((s64)(event_res[i][j][1] - event_res_avg[j][1]));
  341. event_res_noise[j][2] +=
  342. abs((s64)(event_res[i][j][2] - event_res_avg[j][2]));
  343. }
  344. }
  345. normalize_noise(&runtime_nsecs_noise);
  346. normalize_noise(&walltime_nsecs_noise);
  347. normalize_noise(&runtime_cycles_noise);
  348. for (j = 0; j < nr_counters; j++) {
  349. normalize_noise(&event_res_noise[j][0]);
  350. normalize_noise(&event_res_noise[j][1]);
  351. normalize_noise(&event_res_noise[j][2]);
  352. }
  353. }
  354. static void print_stat(int argc, const char **argv)
  355. {
  356. int i, counter;
  357. calc_avg();
  358. fflush(stdout);
  359. fprintf(stderr, "\n");
  360. fprintf(stderr, " Performance counter stats for \'%s", argv[0]);
  361. for (i = 1; i < argc; i++)
  362. fprintf(stderr, " %s", argv[i]);
  363. fprintf(stderr, "\'");
  364. if (run_count > 1)
  365. fprintf(stderr, " (%d runs)", run_count);
  366. fprintf(stderr, ":\n\n");
  367. for (counter = 0; counter < nr_counters; counter++)
  368. print_counter(counter);
  369. fprintf(stderr, "\n");
  370. fprintf(stderr, " %14.9f seconds time elapsed",
  371. (double)walltime_nsecs_avg/1e9);
  372. if (run_count > 1) {
  373. fprintf(stderr, " ( +- %7.3f%% )",
  374. 100.0*(double)walltime_nsecs_noise/(double)walltime_nsecs_avg);
  375. }
  376. fprintf(stderr, "\n\n");
  377. }
  378. static volatile int signr = -1;
  379. static void skip_signal(int signo)
  380. {
  381. signr = signo;
  382. }
  383. static void sig_atexit(void)
  384. {
  385. if (signr == -1)
  386. return;
  387. signal(signr, SIG_DFL);
  388. kill(getpid(), signr);
  389. }
  390. static const char * const stat_usage[] = {
  391. "perf stat [<options>] <command>",
  392. NULL
  393. };
  394. static const struct option options[] = {
  395. OPT_CALLBACK('e', "event", NULL, "event",
  396. "event selector. use 'perf list' to list available events",
  397. parse_events),
  398. OPT_BOOLEAN('i', "inherit", &inherit,
  399. "child tasks inherit counters"),
  400. OPT_INTEGER('p', "pid", &target_pid,
  401. "stat events on existing pid"),
  402. OPT_BOOLEAN('a', "all-cpus", &system_wide,
  403. "system-wide collection from all CPUs"),
  404. OPT_BOOLEAN('S', "scale", &scale,
  405. "scale/normalize counters"),
  406. OPT_BOOLEAN('v', "verbose", &verbose,
  407. "be more verbose (show counter open errors, etc)"),
  408. OPT_INTEGER('r', "repeat", &run_count,
  409. "repeat command and print average + stddev (max: 100)"),
  410. OPT_BOOLEAN('n', "null", &null_run,
  411. "null run - dont start any counters"),
  412. OPT_END()
  413. };
  414. int cmd_stat(int argc, const char **argv, const char *prefix)
  415. {
  416. int status;
  417. argc = parse_options(argc, argv, options, stat_usage, 0);
  418. if (!argc)
  419. usage_with_options(stat_usage, options);
  420. if (run_count <= 0 || run_count > MAX_RUN)
  421. usage_with_options(stat_usage, options);
  422. /* Set attrs and nr_counters if no event is selected and !null_run */
  423. if (!null_run && !nr_counters) {
  424. memcpy(attrs, default_attrs, sizeof(default_attrs));
  425. nr_counters = ARRAY_SIZE(default_attrs);
  426. }
  427. nr_cpus = sysconf(_SC_NPROCESSORS_ONLN);
  428. assert(nr_cpus <= MAX_NR_CPUS);
  429. assert(nr_cpus >= 0);
  430. /*
  431. * We dont want to block the signals - that would cause
  432. * child tasks to inherit that and Ctrl-C would not work.
  433. * What we want is for Ctrl-C to work in the exec()-ed
  434. * task, but being ignored by perf stat itself:
  435. */
  436. atexit(sig_atexit);
  437. signal(SIGINT, skip_signal);
  438. signal(SIGALRM, skip_signal);
  439. signal(SIGABRT, skip_signal);
  440. status = 0;
  441. for (run_idx = 0; run_idx < run_count; run_idx++) {
  442. if (run_count != 1 && verbose)
  443. fprintf(stderr, "[ perf stat: executing run #%d ... ]\n", run_idx + 1);
  444. status = run_perf_stat(argc, argv);
  445. }
  446. print_stat(argc, argv);
  447. return status;
  448. }