builtin-kmem.c 17 KB

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  1. #include "builtin.h"
  2. #include "perf.h"
  3. #include "util/util.h"
  4. #include "util/cache.h"
  5. #include "util/symbol.h"
  6. #include "util/thread.h"
  7. #include "util/header.h"
  8. #include "util/session.h"
  9. #include "util/parse-options.h"
  10. #include "util/trace-event.h"
  11. #include "util/debug.h"
  12. #include <linux/rbtree.h>
  13. struct alloc_stat;
  14. typedef int (*sort_fn_t)(struct alloc_stat *, struct alloc_stat *);
  15. static char const *input_name = "perf.data";
  16. static int alloc_flag;
  17. static int caller_flag;
  18. static int alloc_lines = -1;
  19. static int caller_lines = -1;
  20. static bool raw_ip;
  21. static char default_sort_order[] = "frag,hit,bytes";
  22. static int *cpunode_map;
  23. static int max_cpu_num;
  24. struct alloc_stat {
  25. u64 call_site;
  26. u64 ptr;
  27. u64 bytes_req;
  28. u64 bytes_alloc;
  29. u32 hit;
  30. u32 pingpong;
  31. short alloc_cpu;
  32. struct rb_node node;
  33. };
  34. static struct rb_root root_alloc_stat;
  35. static struct rb_root root_alloc_sorted;
  36. static struct rb_root root_caller_stat;
  37. static struct rb_root root_caller_sorted;
  38. static unsigned long total_requested, total_allocated;
  39. static unsigned long nr_allocs, nr_cross_allocs;
  40. #define PATH_SYS_NODE "/sys/devices/system/node"
  41. static void init_cpunode_map(void)
  42. {
  43. FILE *fp;
  44. int i;
  45. fp = fopen("/sys/devices/system/cpu/kernel_max", "r");
  46. if (!fp) {
  47. max_cpu_num = 4096;
  48. return;
  49. }
  50. if (fscanf(fp, "%d", &max_cpu_num) < 1)
  51. die("Failed to read 'kernel_max' from sysfs");
  52. max_cpu_num++;
  53. cpunode_map = calloc(max_cpu_num, sizeof(int));
  54. if (!cpunode_map)
  55. die("calloc");
  56. for (i = 0; i < max_cpu_num; i++)
  57. cpunode_map[i] = -1;
  58. fclose(fp);
  59. }
  60. static void setup_cpunode_map(void)
  61. {
  62. struct dirent *dent1, *dent2;
  63. DIR *dir1, *dir2;
  64. unsigned int cpu, mem;
  65. char buf[PATH_MAX];
  66. init_cpunode_map();
  67. dir1 = opendir(PATH_SYS_NODE);
  68. if (!dir1)
  69. return;
  70. while (true) {
  71. dent1 = readdir(dir1);
  72. if (!dent1)
  73. break;
  74. if (sscanf(dent1->d_name, "node%u", &mem) < 1)
  75. continue;
  76. snprintf(buf, PATH_MAX, "%s/%s", PATH_SYS_NODE, dent1->d_name);
  77. dir2 = opendir(buf);
  78. if (!dir2)
  79. continue;
  80. while (true) {
  81. dent2 = readdir(dir2);
  82. if (!dent2)
  83. break;
  84. if (sscanf(dent2->d_name, "cpu%u", &cpu) < 1)
  85. continue;
  86. cpunode_map[cpu] = mem;
  87. }
  88. }
  89. }
  90. static void insert_alloc_stat(unsigned long call_site, unsigned long ptr,
  91. int bytes_req, int bytes_alloc, int cpu)
  92. {
  93. struct rb_node **node = &root_alloc_stat.rb_node;
  94. struct rb_node *parent = NULL;
  95. struct alloc_stat *data = NULL;
  96. while (*node) {
  97. parent = *node;
  98. data = rb_entry(*node, struct alloc_stat, node);
  99. if (ptr > data->ptr)
  100. node = &(*node)->rb_right;
  101. else if (ptr < data->ptr)
  102. node = &(*node)->rb_left;
  103. else
  104. break;
  105. }
  106. if (data && data->ptr == ptr) {
  107. data->hit++;
  108. data->bytes_req += bytes_req;
  109. data->bytes_alloc += bytes_req;
  110. } else {
  111. data = malloc(sizeof(*data));
  112. if (!data)
  113. die("malloc");
  114. data->ptr = ptr;
  115. data->pingpong = 0;
  116. data->hit = 1;
  117. data->bytes_req = bytes_req;
  118. data->bytes_alloc = bytes_alloc;
  119. rb_link_node(&data->node, parent, node);
  120. rb_insert_color(&data->node, &root_alloc_stat);
  121. }
  122. data->call_site = call_site;
  123. data->alloc_cpu = cpu;
  124. }
  125. static void insert_caller_stat(unsigned long call_site,
  126. int bytes_req, int bytes_alloc)
  127. {
  128. struct rb_node **node = &root_caller_stat.rb_node;
  129. struct rb_node *parent = NULL;
  130. struct alloc_stat *data = NULL;
  131. while (*node) {
  132. parent = *node;
  133. data = rb_entry(*node, struct alloc_stat, node);
  134. if (call_site > data->call_site)
  135. node = &(*node)->rb_right;
  136. else if (call_site < data->call_site)
  137. node = &(*node)->rb_left;
  138. else
  139. break;
  140. }
  141. if (data && data->call_site == call_site) {
  142. data->hit++;
  143. data->bytes_req += bytes_req;
  144. data->bytes_alloc += bytes_req;
  145. } else {
  146. data = malloc(sizeof(*data));
  147. if (!data)
  148. die("malloc");
  149. data->call_site = call_site;
  150. data->pingpong = 0;
  151. data->hit = 1;
  152. data->bytes_req = bytes_req;
  153. data->bytes_alloc = bytes_alloc;
  154. rb_link_node(&data->node, parent, node);
  155. rb_insert_color(&data->node, &root_caller_stat);
  156. }
  157. }
  158. static void process_alloc_event(void *data,
  159. struct event *event,
  160. int cpu,
  161. u64 timestamp __used,
  162. struct thread *thread __used,
  163. int node)
  164. {
  165. unsigned long call_site;
  166. unsigned long ptr;
  167. int bytes_req;
  168. int bytes_alloc;
  169. int node1, node2;
  170. ptr = raw_field_value(event, "ptr", data);
  171. call_site = raw_field_value(event, "call_site", data);
  172. bytes_req = raw_field_value(event, "bytes_req", data);
  173. bytes_alloc = raw_field_value(event, "bytes_alloc", data);
  174. insert_alloc_stat(call_site, ptr, bytes_req, bytes_alloc, cpu);
  175. insert_caller_stat(call_site, bytes_req, bytes_alloc);
  176. total_requested += bytes_req;
  177. total_allocated += bytes_alloc;
  178. if (node) {
  179. node1 = cpunode_map[cpu];
  180. node2 = raw_field_value(event, "node", data);
  181. if (node1 != node2)
  182. nr_cross_allocs++;
  183. }
  184. nr_allocs++;
  185. }
  186. static int ptr_cmp(struct alloc_stat *, struct alloc_stat *);
  187. static int callsite_cmp(struct alloc_stat *, struct alloc_stat *);
  188. static struct alloc_stat *search_alloc_stat(unsigned long ptr,
  189. unsigned long call_site,
  190. struct rb_root *root,
  191. sort_fn_t sort_fn)
  192. {
  193. struct rb_node *node = root->rb_node;
  194. struct alloc_stat key = { .ptr = ptr, .call_site = call_site };
  195. while (node) {
  196. struct alloc_stat *data;
  197. int cmp;
  198. data = rb_entry(node, struct alloc_stat, node);
  199. cmp = sort_fn(&key, data);
  200. if (cmp < 0)
  201. node = node->rb_left;
  202. else if (cmp > 0)
  203. node = node->rb_right;
  204. else
  205. return data;
  206. }
  207. return NULL;
  208. }
  209. static void process_free_event(void *data,
  210. struct event *event,
  211. int cpu,
  212. u64 timestamp __used,
  213. struct thread *thread __used)
  214. {
  215. unsigned long ptr;
  216. struct alloc_stat *s_alloc, *s_caller;
  217. ptr = raw_field_value(event, "ptr", data);
  218. s_alloc = search_alloc_stat(ptr, 0, &root_alloc_stat, ptr_cmp);
  219. if (!s_alloc)
  220. return;
  221. if (cpu != s_alloc->alloc_cpu) {
  222. s_alloc->pingpong++;
  223. s_caller = search_alloc_stat(0, s_alloc->call_site,
  224. &root_caller_stat, callsite_cmp);
  225. assert(s_caller);
  226. s_caller->pingpong++;
  227. }
  228. s_alloc->alloc_cpu = -1;
  229. }
  230. static void
  231. process_raw_event(event_t *raw_event __used, void *data,
  232. int cpu, u64 timestamp, struct thread *thread)
  233. {
  234. struct event *event;
  235. int type;
  236. type = trace_parse_common_type(data);
  237. event = trace_find_event(type);
  238. if (!strcmp(event->name, "kmalloc") ||
  239. !strcmp(event->name, "kmem_cache_alloc")) {
  240. process_alloc_event(data, event, cpu, timestamp, thread, 0);
  241. return;
  242. }
  243. if (!strcmp(event->name, "kmalloc_node") ||
  244. !strcmp(event->name, "kmem_cache_alloc_node")) {
  245. process_alloc_event(data, event, cpu, timestamp, thread, 1);
  246. return;
  247. }
  248. if (!strcmp(event->name, "kfree") ||
  249. !strcmp(event->name, "kmem_cache_free")) {
  250. process_free_event(data, event, cpu, timestamp, thread);
  251. return;
  252. }
  253. }
  254. static int process_sample_event(event_t *event, struct perf_session *session)
  255. {
  256. struct sample_data data;
  257. struct thread *thread;
  258. memset(&data, 0, sizeof(data));
  259. data.time = -1;
  260. data.cpu = -1;
  261. data.period = 1;
  262. event__parse_sample(event, session->sample_type, &data);
  263. dump_printf("(IP, %d): %d/%d: %p period: %Ld\n",
  264. event->header.misc,
  265. data.pid, data.tid,
  266. (void *)(long)data.ip,
  267. (long long)data.period);
  268. thread = perf_session__findnew(session, event->ip.pid);
  269. if (thread == NULL) {
  270. pr_debug("problem processing %d event, skipping it.\n",
  271. event->header.type);
  272. return -1;
  273. }
  274. dump_printf(" ... thread: %s:%d\n", thread->comm, thread->pid);
  275. process_raw_event(event, data.raw_data, data.cpu,
  276. data.time, thread);
  277. return 0;
  278. }
  279. static struct perf_event_ops event_ops = {
  280. .sample = process_sample_event,
  281. .comm = event__process_comm,
  282. };
  283. static double fragmentation(unsigned long n_req, unsigned long n_alloc)
  284. {
  285. if (n_alloc == 0)
  286. return 0.0;
  287. else
  288. return 100.0 - (100.0 * n_req / n_alloc);
  289. }
  290. static void __print_result(struct rb_root *root, struct perf_session *session,
  291. int n_lines, int is_caller)
  292. {
  293. struct rb_node *next;
  294. printf("%.102s\n", graph_dotted_line);
  295. printf(" %-34s |", is_caller ? "Callsite": "Alloc Ptr");
  296. printf(" Total_alloc/Per | Total_req/Per | Hit | Ping-pong | Frag\n");
  297. printf("%.102s\n", graph_dotted_line);
  298. next = rb_first(root);
  299. while (next && n_lines--) {
  300. struct alloc_stat *data = rb_entry(next, struct alloc_stat,
  301. node);
  302. struct symbol *sym = NULL;
  303. char buf[BUFSIZ];
  304. u64 addr;
  305. if (is_caller) {
  306. addr = data->call_site;
  307. if (!raw_ip)
  308. sym = map_groups__find_function(&session->kmaps, session, addr, NULL);
  309. } else
  310. addr = data->ptr;
  311. if (sym != NULL)
  312. snprintf(buf, sizeof(buf), "%s+%Lx", sym->name,
  313. addr - sym->start);
  314. else
  315. snprintf(buf, sizeof(buf), "%#Lx", addr);
  316. printf(" %-34s |", buf);
  317. printf(" %9llu/%-5lu | %9llu/%-5lu | %6lu | %8lu | %6.3f%%\n",
  318. (unsigned long long)data->bytes_alloc,
  319. (unsigned long)data->bytes_alloc / data->hit,
  320. (unsigned long long)data->bytes_req,
  321. (unsigned long)data->bytes_req / data->hit,
  322. (unsigned long)data->hit,
  323. (unsigned long)data->pingpong,
  324. fragmentation(data->bytes_req, data->bytes_alloc));
  325. next = rb_next(next);
  326. }
  327. if (n_lines == -1)
  328. printf(" ... | ... | ... | ... | ... | ... \n");
  329. printf("%.102s\n", graph_dotted_line);
  330. }
  331. static void print_summary(void)
  332. {
  333. printf("\nSUMMARY\n=======\n");
  334. printf("Total bytes requested: %lu\n", total_requested);
  335. printf("Total bytes allocated: %lu\n", total_allocated);
  336. printf("Total bytes wasted on internal fragmentation: %lu\n",
  337. total_allocated - total_requested);
  338. printf("Internal fragmentation: %f%%\n",
  339. fragmentation(total_requested, total_allocated));
  340. printf("Cross CPU allocations: %lu/%lu\n", nr_cross_allocs, nr_allocs);
  341. }
  342. static void print_result(struct perf_session *session)
  343. {
  344. if (caller_flag)
  345. __print_result(&root_caller_sorted, session, caller_lines, 1);
  346. if (alloc_flag)
  347. __print_result(&root_alloc_sorted, session, alloc_lines, 0);
  348. print_summary();
  349. }
  350. struct sort_dimension {
  351. const char name[20];
  352. sort_fn_t cmp;
  353. struct list_head list;
  354. };
  355. static LIST_HEAD(caller_sort);
  356. static LIST_HEAD(alloc_sort);
  357. static void sort_insert(struct rb_root *root, struct alloc_stat *data,
  358. struct list_head *sort_list)
  359. {
  360. struct rb_node **new = &(root->rb_node);
  361. struct rb_node *parent = NULL;
  362. struct sort_dimension *sort;
  363. while (*new) {
  364. struct alloc_stat *this;
  365. int cmp = 0;
  366. this = rb_entry(*new, struct alloc_stat, node);
  367. parent = *new;
  368. list_for_each_entry(sort, sort_list, list) {
  369. cmp = sort->cmp(data, this);
  370. if (cmp)
  371. break;
  372. }
  373. if (cmp > 0)
  374. new = &((*new)->rb_left);
  375. else
  376. new = &((*new)->rb_right);
  377. }
  378. rb_link_node(&data->node, parent, new);
  379. rb_insert_color(&data->node, root);
  380. }
  381. static void __sort_result(struct rb_root *root, struct rb_root *root_sorted,
  382. struct list_head *sort_list)
  383. {
  384. struct rb_node *node;
  385. struct alloc_stat *data;
  386. for (;;) {
  387. node = rb_first(root);
  388. if (!node)
  389. break;
  390. rb_erase(node, root);
  391. data = rb_entry(node, struct alloc_stat, node);
  392. sort_insert(root_sorted, data, sort_list);
  393. }
  394. }
  395. static void sort_result(void)
  396. {
  397. __sort_result(&root_alloc_stat, &root_alloc_sorted, &alloc_sort);
  398. __sort_result(&root_caller_stat, &root_caller_sorted, &caller_sort);
  399. }
  400. static int __cmd_kmem(void)
  401. {
  402. int err = -EINVAL;
  403. struct perf_session *session = perf_session__new(input_name, O_RDONLY, 0);
  404. if (session == NULL)
  405. return -ENOMEM;
  406. if (!perf_session__has_traces(session, "kmem record"))
  407. goto out_delete;
  408. setup_pager();
  409. err = perf_session__process_events(session, &event_ops);
  410. if (err != 0)
  411. goto out_delete;
  412. sort_result();
  413. print_result(session);
  414. out_delete:
  415. perf_session__delete(session);
  416. return err;
  417. }
  418. static const char * const kmem_usage[] = {
  419. "perf kmem [<options>] {record|stat}",
  420. NULL
  421. };
  422. static int ptr_cmp(struct alloc_stat *l, struct alloc_stat *r)
  423. {
  424. if (l->ptr < r->ptr)
  425. return -1;
  426. else if (l->ptr > r->ptr)
  427. return 1;
  428. return 0;
  429. }
  430. static struct sort_dimension ptr_sort_dimension = {
  431. .name = "ptr",
  432. .cmp = ptr_cmp,
  433. };
  434. static int callsite_cmp(struct alloc_stat *l, struct alloc_stat *r)
  435. {
  436. if (l->call_site < r->call_site)
  437. return -1;
  438. else if (l->call_site > r->call_site)
  439. return 1;
  440. return 0;
  441. }
  442. static struct sort_dimension callsite_sort_dimension = {
  443. .name = "callsite",
  444. .cmp = callsite_cmp,
  445. };
  446. static int hit_cmp(struct alloc_stat *l, struct alloc_stat *r)
  447. {
  448. if (l->hit < r->hit)
  449. return -1;
  450. else if (l->hit > r->hit)
  451. return 1;
  452. return 0;
  453. }
  454. static struct sort_dimension hit_sort_dimension = {
  455. .name = "hit",
  456. .cmp = hit_cmp,
  457. };
  458. static int bytes_cmp(struct alloc_stat *l, struct alloc_stat *r)
  459. {
  460. if (l->bytes_alloc < r->bytes_alloc)
  461. return -1;
  462. else if (l->bytes_alloc > r->bytes_alloc)
  463. return 1;
  464. return 0;
  465. }
  466. static struct sort_dimension bytes_sort_dimension = {
  467. .name = "bytes",
  468. .cmp = bytes_cmp,
  469. };
  470. static int frag_cmp(struct alloc_stat *l, struct alloc_stat *r)
  471. {
  472. double x, y;
  473. x = fragmentation(l->bytes_req, l->bytes_alloc);
  474. y = fragmentation(r->bytes_req, r->bytes_alloc);
  475. if (x < y)
  476. return -1;
  477. else if (x > y)
  478. return 1;
  479. return 0;
  480. }
  481. static struct sort_dimension frag_sort_dimension = {
  482. .name = "frag",
  483. .cmp = frag_cmp,
  484. };
  485. static int pingpong_cmp(struct alloc_stat *l, struct alloc_stat *r)
  486. {
  487. if (l->pingpong < r->pingpong)
  488. return -1;
  489. else if (l->pingpong > r->pingpong)
  490. return 1;
  491. return 0;
  492. }
  493. static struct sort_dimension pingpong_sort_dimension = {
  494. .name = "pingpong",
  495. .cmp = pingpong_cmp,
  496. };
  497. static struct sort_dimension *avail_sorts[] = {
  498. &ptr_sort_dimension,
  499. &callsite_sort_dimension,
  500. &hit_sort_dimension,
  501. &bytes_sort_dimension,
  502. &frag_sort_dimension,
  503. &pingpong_sort_dimension,
  504. };
  505. #define NUM_AVAIL_SORTS \
  506. (int)(sizeof(avail_sorts) / sizeof(struct sort_dimension *))
  507. static int sort_dimension__add(const char *tok, struct list_head *list)
  508. {
  509. struct sort_dimension *sort;
  510. int i;
  511. for (i = 0; i < NUM_AVAIL_SORTS; i++) {
  512. if (!strcmp(avail_sorts[i]->name, tok)) {
  513. sort = malloc(sizeof(*sort));
  514. if (!sort)
  515. die("malloc");
  516. memcpy(sort, avail_sorts[i], sizeof(*sort));
  517. list_add_tail(&sort->list, list);
  518. return 0;
  519. }
  520. }
  521. return -1;
  522. }
  523. static int setup_sorting(struct list_head *sort_list, const char *arg)
  524. {
  525. char *tok;
  526. char *str = strdup(arg);
  527. if (!str)
  528. die("strdup");
  529. while (true) {
  530. tok = strsep(&str, ",");
  531. if (!tok)
  532. break;
  533. if (sort_dimension__add(tok, sort_list) < 0) {
  534. error("Unknown --sort key: '%s'", tok);
  535. return -1;
  536. }
  537. }
  538. free(str);
  539. return 0;
  540. }
  541. static int parse_sort_opt(const struct option *opt __used,
  542. const char *arg, int unset __used)
  543. {
  544. if (!arg)
  545. return -1;
  546. if (caller_flag > alloc_flag)
  547. return setup_sorting(&caller_sort, arg);
  548. else
  549. return setup_sorting(&alloc_sort, arg);
  550. return 0;
  551. }
  552. static int parse_caller_opt(const struct option *opt __used,
  553. const char *arg __used, int unset __used)
  554. {
  555. caller_flag = (alloc_flag + 1);
  556. return 0;
  557. }
  558. static int parse_alloc_opt(const struct option *opt __used,
  559. const char *arg __used, int unset __used)
  560. {
  561. alloc_flag = (caller_flag + 1);
  562. return 0;
  563. }
  564. static int parse_line_opt(const struct option *opt __used,
  565. const char *arg, int unset __used)
  566. {
  567. int lines;
  568. if (!arg)
  569. return -1;
  570. lines = strtoul(arg, NULL, 10);
  571. if (caller_flag > alloc_flag)
  572. caller_lines = lines;
  573. else
  574. alloc_lines = lines;
  575. return 0;
  576. }
  577. static const struct option kmem_options[] = {
  578. OPT_STRING('i', "input", &input_name, "file",
  579. "input file name"),
  580. OPT_CALLBACK_NOOPT(0, "caller", NULL, NULL,
  581. "show per-callsite statistics",
  582. parse_caller_opt),
  583. OPT_CALLBACK_NOOPT(0, "alloc", NULL, NULL,
  584. "show per-allocation statistics",
  585. parse_alloc_opt),
  586. OPT_CALLBACK('s', "sort", NULL, "key[,key2...]",
  587. "sort by keys: ptr, call_site, bytes, hit, pingpong, frag",
  588. parse_sort_opt),
  589. OPT_CALLBACK('l', "line", NULL, "num",
  590. "show n lines",
  591. parse_line_opt),
  592. OPT_BOOLEAN(0, "raw-ip", &raw_ip, "show raw ip instead of symbol"),
  593. OPT_END()
  594. };
  595. static const char *record_args[] = {
  596. "record",
  597. "-a",
  598. "-R",
  599. "-M",
  600. "-f",
  601. "-c", "1",
  602. "-e", "kmem:kmalloc",
  603. "-e", "kmem:kmalloc_node",
  604. "-e", "kmem:kfree",
  605. "-e", "kmem:kmem_cache_alloc",
  606. "-e", "kmem:kmem_cache_alloc_node",
  607. "-e", "kmem:kmem_cache_free",
  608. };
  609. static int __cmd_record(int argc, const char **argv)
  610. {
  611. unsigned int rec_argc, i, j;
  612. const char **rec_argv;
  613. rec_argc = ARRAY_SIZE(record_args) + argc - 1;
  614. rec_argv = calloc(rec_argc + 1, sizeof(char *));
  615. for (i = 0; i < ARRAY_SIZE(record_args); i++)
  616. rec_argv[i] = strdup(record_args[i]);
  617. for (j = 1; j < (unsigned int)argc; j++, i++)
  618. rec_argv[i] = argv[j];
  619. return cmd_record(i, rec_argv, NULL);
  620. }
  621. int cmd_kmem(int argc, const char **argv, const char *prefix __used)
  622. {
  623. argc = parse_options(argc, argv, kmem_options, kmem_usage, 0);
  624. if (!argc)
  625. usage_with_options(kmem_usage, kmem_options);
  626. symbol__init();
  627. if (!strncmp(argv[0], "rec", 3)) {
  628. return __cmd_record(argc, argv);
  629. } else if (!strcmp(argv[0], "stat")) {
  630. setup_cpunode_map();
  631. if (list_empty(&caller_sort))
  632. setup_sorting(&caller_sort, default_sort_order);
  633. if (list_empty(&alloc_sort))
  634. setup_sorting(&alloc_sort, default_sort_order);
  635. return __cmd_kmem();
  636. }
  637. return 0;
  638. }