builtin-trace.c 91 KB

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  1. /*
  2. * builtin-trace.c
  3. *
  4. * Builtin 'trace' command:
  5. *
  6. * Display a continuously updated trace of any workload, CPU, specific PID,
  7. * system wide, etc. Default format is loosely strace like, but any other
  8. * event may be specified using --event.
  9. *
  10. * Copyright (C) 2012, 2013, 2014, 2015 Red Hat Inc, Arnaldo Carvalho de Melo <acme@redhat.com>
  11. *
  12. * Initially based on the 'trace' prototype by Thomas Gleixner:
  13. *
  14. * http://lwn.net/Articles/415728/ ("Announcing a new utility: 'trace'")
  15. *
  16. * Released under the GPL v2. (and only v2, not any later version)
  17. */
  18. #include <traceevent/event-parse.h>
  19. #include <api/fs/tracing_path.h>
  20. #include "builtin.h"
  21. #include "util/color.h"
  22. #include "util/debug.h"
  23. #include "util/evlist.h"
  24. #include <subcmd/exec-cmd.h>
  25. #include "util/machine.h"
  26. #include "util/session.h"
  27. #include "util/thread.h"
  28. #include <subcmd/parse-options.h>
  29. #include "util/strlist.h"
  30. #include "util/intlist.h"
  31. #include "util/thread_map.h"
  32. #include "util/stat.h"
  33. #include "trace-event.h"
  34. #include "util/parse-events.h"
  35. #include "util/bpf-loader.h"
  36. #include "callchain.h"
  37. #include "syscalltbl.h"
  38. #include <libaudit.h> /* FIXME: Still needed for audit_errno_to_name */
  39. #include <stdlib.h>
  40. #include <linux/futex.h>
  41. #include <linux/err.h>
  42. #include <linux/seccomp.h>
  43. #include <linux/filter.h>
  44. #include <linux/audit.h>
  45. #include <sys/ptrace.h>
  46. #include <linux/random.h>
  47. #include <linux/stringify.h>
  48. #ifndef O_CLOEXEC
  49. # define O_CLOEXEC 02000000
  50. #endif
  51. #ifndef MSG_CMSG_CLOEXEC
  52. # define MSG_CMSG_CLOEXEC 0x40000000
  53. #endif
  54. struct trace {
  55. struct perf_tool tool;
  56. struct syscalltbl *sctbl;
  57. struct {
  58. int max;
  59. struct syscall *table;
  60. struct {
  61. struct perf_evsel *sys_enter,
  62. *sys_exit;
  63. } events;
  64. } syscalls;
  65. struct record_opts opts;
  66. struct perf_evlist *evlist;
  67. struct machine *host;
  68. struct thread *current;
  69. u64 base_time;
  70. FILE *output;
  71. unsigned long nr_events;
  72. struct strlist *ev_qualifier;
  73. struct {
  74. size_t nr;
  75. int *entries;
  76. } ev_qualifier_ids;
  77. struct intlist *tid_list;
  78. struct intlist *pid_list;
  79. struct {
  80. size_t nr;
  81. pid_t *entries;
  82. } filter_pids;
  83. double duration_filter;
  84. double runtime_ms;
  85. struct {
  86. u64 vfs_getname,
  87. proc_getname;
  88. } stats;
  89. unsigned int max_stack;
  90. unsigned int min_stack;
  91. bool not_ev_qualifier;
  92. bool live;
  93. bool full_time;
  94. bool sched;
  95. bool multiple_threads;
  96. bool summary;
  97. bool summary_only;
  98. bool show_comm;
  99. bool show_tool_stats;
  100. bool trace_syscalls;
  101. bool kernel_syscallchains;
  102. bool force;
  103. bool vfs_getname;
  104. int trace_pgfaults;
  105. int open_id;
  106. };
  107. struct tp_field {
  108. int offset;
  109. union {
  110. u64 (*integer)(struct tp_field *field, struct perf_sample *sample);
  111. void *(*pointer)(struct tp_field *field, struct perf_sample *sample);
  112. };
  113. };
  114. #define TP_UINT_FIELD(bits) \
  115. static u64 tp_field__u##bits(struct tp_field *field, struct perf_sample *sample) \
  116. { \
  117. u##bits value; \
  118. memcpy(&value, sample->raw_data + field->offset, sizeof(value)); \
  119. return value; \
  120. }
  121. TP_UINT_FIELD(8);
  122. TP_UINT_FIELD(16);
  123. TP_UINT_FIELD(32);
  124. TP_UINT_FIELD(64);
  125. #define TP_UINT_FIELD__SWAPPED(bits) \
  126. static u64 tp_field__swapped_u##bits(struct tp_field *field, struct perf_sample *sample) \
  127. { \
  128. u##bits value; \
  129. memcpy(&value, sample->raw_data + field->offset, sizeof(value)); \
  130. return bswap_##bits(value);\
  131. }
  132. TP_UINT_FIELD__SWAPPED(16);
  133. TP_UINT_FIELD__SWAPPED(32);
  134. TP_UINT_FIELD__SWAPPED(64);
  135. static int tp_field__init_uint(struct tp_field *field,
  136. struct format_field *format_field,
  137. bool needs_swap)
  138. {
  139. field->offset = format_field->offset;
  140. switch (format_field->size) {
  141. case 1:
  142. field->integer = tp_field__u8;
  143. break;
  144. case 2:
  145. field->integer = needs_swap ? tp_field__swapped_u16 : tp_field__u16;
  146. break;
  147. case 4:
  148. field->integer = needs_swap ? tp_field__swapped_u32 : tp_field__u32;
  149. break;
  150. case 8:
  151. field->integer = needs_swap ? tp_field__swapped_u64 : tp_field__u64;
  152. break;
  153. default:
  154. return -1;
  155. }
  156. return 0;
  157. }
  158. static void *tp_field__ptr(struct tp_field *field, struct perf_sample *sample)
  159. {
  160. return sample->raw_data + field->offset;
  161. }
  162. static int tp_field__init_ptr(struct tp_field *field, struct format_field *format_field)
  163. {
  164. field->offset = format_field->offset;
  165. field->pointer = tp_field__ptr;
  166. return 0;
  167. }
  168. struct syscall_tp {
  169. struct tp_field id;
  170. union {
  171. struct tp_field args, ret;
  172. };
  173. };
  174. static int perf_evsel__init_tp_uint_field(struct perf_evsel *evsel,
  175. struct tp_field *field,
  176. const char *name)
  177. {
  178. struct format_field *format_field = perf_evsel__field(evsel, name);
  179. if (format_field == NULL)
  180. return -1;
  181. return tp_field__init_uint(field, format_field, evsel->needs_swap);
  182. }
  183. #define perf_evsel__init_sc_tp_uint_field(evsel, name) \
  184. ({ struct syscall_tp *sc = evsel->priv;\
  185. perf_evsel__init_tp_uint_field(evsel, &sc->name, #name); })
  186. static int perf_evsel__init_tp_ptr_field(struct perf_evsel *evsel,
  187. struct tp_field *field,
  188. const char *name)
  189. {
  190. struct format_field *format_field = perf_evsel__field(evsel, name);
  191. if (format_field == NULL)
  192. return -1;
  193. return tp_field__init_ptr(field, format_field);
  194. }
  195. #define perf_evsel__init_sc_tp_ptr_field(evsel, name) \
  196. ({ struct syscall_tp *sc = evsel->priv;\
  197. perf_evsel__init_tp_ptr_field(evsel, &sc->name, #name); })
  198. static void perf_evsel__delete_priv(struct perf_evsel *evsel)
  199. {
  200. zfree(&evsel->priv);
  201. perf_evsel__delete(evsel);
  202. }
  203. static int perf_evsel__init_syscall_tp(struct perf_evsel *evsel, void *handler)
  204. {
  205. evsel->priv = malloc(sizeof(struct syscall_tp));
  206. if (evsel->priv != NULL) {
  207. if (perf_evsel__init_sc_tp_uint_field(evsel, id))
  208. goto out_delete;
  209. evsel->handler = handler;
  210. return 0;
  211. }
  212. return -ENOMEM;
  213. out_delete:
  214. zfree(&evsel->priv);
  215. return -ENOENT;
  216. }
  217. static struct perf_evsel *perf_evsel__syscall_newtp(const char *direction, void *handler)
  218. {
  219. struct perf_evsel *evsel = perf_evsel__newtp("raw_syscalls", direction);
  220. /* older kernel (e.g., RHEL6) use syscalls:{enter,exit} */
  221. if (IS_ERR(evsel))
  222. evsel = perf_evsel__newtp("syscalls", direction);
  223. if (IS_ERR(evsel))
  224. return NULL;
  225. if (perf_evsel__init_syscall_tp(evsel, handler))
  226. goto out_delete;
  227. return evsel;
  228. out_delete:
  229. perf_evsel__delete_priv(evsel);
  230. return NULL;
  231. }
  232. #define perf_evsel__sc_tp_uint(evsel, name, sample) \
  233. ({ struct syscall_tp *fields = evsel->priv; \
  234. fields->name.integer(&fields->name, sample); })
  235. #define perf_evsel__sc_tp_ptr(evsel, name, sample) \
  236. ({ struct syscall_tp *fields = evsel->priv; \
  237. fields->name.pointer(&fields->name, sample); })
  238. struct syscall_arg {
  239. unsigned long val;
  240. struct thread *thread;
  241. struct trace *trace;
  242. void *parm;
  243. u8 idx;
  244. u8 mask;
  245. };
  246. struct strarray {
  247. int offset;
  248. int nr_entries;
  249. const char **entries;
  250. };
  251. #define DEFINE_STRARRAY(array) struct strarray strarray__##array = { \
  252. .nr_entries = ARRAY_SIZE(array), \
  253. .entries = array, \
  254. }
  255. #define DEFINE_STRARRAY_OFFSET(array, off) struct strarray strarray__##array = { \
  256. .offset = off, \
  257. .nr_entries = ARRAY_SIZE(array), \
  258. .entries = array, \
  259. }
  260. static size_t __syscall_arg__scnprintf_strarray(char *bf, size_t size,
  261. const char *intfmt,
  262. struct syscall_arg *arg)
  263. {
  264. struct strarray *sa = arg->parm;
  265. int idx = arg->val - sa->offset;
  266. if (idx < 0 || idx >= sa->nr_entries)
  267. return scnprintf(bf, size, intfmt, arg->val);
  268. return scnprintf(bf, size, "%s", sa->entries[idx]);
  269. }
  270. static size_t syscall_arg__scnprintf_strarray(char *bf, size_t size,
  271. struct syscall_arg *arg)
  272. {
  273. return __syscall_arg__scnprintf_strarray(bf, size, "%d", arg);
  274. }
  275. #define SCA_STRARRAY syscall_arg__scnprintf_strarray
  276. #if defined(__i386__) || defined(__x86_64__)
  277. /*
  278. * FIXME: Make this available to all arches as soon as the ioctl beautifier
  279. * gets rewritten to support all arches.
  280. */
  281. static size_t syscall_arg__scnprintf_strhexarray(char *bf, size_t size,
  282. struct syscall_arg *arg)
  283. {
  284. return __syscall_arg__scnprintf_strarray(bf, size, "%#x", arg);
  285. }
  286. #define SCA_STRHEXARRAY syscall_arg__scnprintf_strhexarray
  287. #endif /* defined(__i386__) || defined(__x86_64__) */
  288. static size_t syscall_arg__scnprintf_fd(char *bf, size_t size,
  289. struct syscall_arg *arg);
  290. #define SCA_FD syscall_arg__scnprintf_fd
  291. static size_t syscall_arg__scnprintf_fd_at(char *bf, size_t size,
  292. struct syscall_arg *arg)
  293. {
  294. int fd = arg->val;
  295. if (fd == AT_FDCWD)
  296. return scnprintf(bf, size, "CWD");
  297. return syscall_arg__scnprintf_fd(bf, size, arg);
  298. }
  299. #define SCA_FDAT syscall_arg__scnprintf_fd_at
  300. static size_t syscall_arg__scnprintf_close_fd(char *bf, size_t size,
  301. struct syscall_arg *arg);
  302. #define SCA_CLOSE_FD syscall_arg__scnprintf_close_fd
  303. static size_t syscall_arg__scnprintf_hex(char *bf, size_t size,
  304. struct syscall_arg *arg)
  305. {
  306. return scnprintf(bf, size, "%#lx", arg->val);
  307. }
  308. #define SCA_HEX syscall_arg__scnprintf_hex
  309. static size_t syscall_arg__scnprintf_int(char *bf, size_t size,
  310. struct syscall_arg *arg)
  311. {
  312. return scnprintf(bf, size, "%d", arg->val);
  313. }
  314. #define SCA_INT syscall_arg__scnprintf_int
  315. static size_t syscall_arg__scnprintf_flock(char *bf, size_t size,
  316. struct syscall_arg *arg)
  317. {
  318. int printed = 0, op = arg->val;
  319. if (op == 0)
  320. return scnprintf(bf, size, "NONE");
  321. #define P_CMD(cmd) \
  322. if ((op & LOCK_##cmd) == LOCK_##cmd) { \
  323. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #cmd); \
  324. op &= ~LOCK_##cmd; \
  325. }
  326. P_CMD(SH);
  327. P_CMD(EX);
  328. P_CMD(NB);
  329. P_CMD(UN);
  330. P_CMD(MAND);
  331. P_CMD(RW);
  332. P_CMD(READ);
  333. P_CMD(WRITE);
  334. #undef P_OP
  335. if (op)
  336. printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", op);
  337. return printed;
  338. }
  339. #define SCA_FLOCK syscall_arg__scnprintf_flock
  340. static size_t syscall_arg__scnprintf_futex_op(char *bf, size_t size, struct syscall_arg *arg)
  341. {
  342. enum syscall_futex_args {
  343. SCF_UADDR = (1 << 0),
  344. SCF_OP = (1 << 1),
  345. SCF_VAL = (1 << 2),
  346. SCF_TIMEOUT = (1 << 3),
  347. SCF_UADDR2 = (1 << 4),
  348. SCF_VAL3 = (1 << 5),
  349. };
  350. int op = arg->val;
  351. int cmd = op & FUTEX_CMD_MASK;
  352. size_t printed = 0;
  353. switch (cmd) {
  354. #define P_FUTEX_OP(n) case FUTEX_##n: printed = scnprintf(bf, size, #n);
  355. P_FUTEX_OP(WAIT); arg->mask |= SCF_VAL3|SCF_UADDR2; break;
  356. P_FUTEX_OP(WAKE); arg->mask |= SCF_VAL3|SCF_UADDR2|SCF_TIMEOUT; break;
  357. P_FUTEX_OP(FD); arg->mask |= SCF_VAL3|SCF_UADDR2|SCF_TIMEOUT; break;
  358. P_FUTEX_OP(REQUEUE); arg->mask |= SCF_VAL3|SCF_TIMEOUT; break;
  359. P_FUTEX_OP(CMP_REQUEUE); arg->mask |= SCF_TIMEOUT; break;
  360. P_FUTEX_OP(CMP_REQUEUE_PI); arg->mask |= SCF_TIMEOUT; break;
  361. P_FUTEX_OP(WAKE_OP); break;
  362. P_FUTEX_OP(LOCK_PI); arg->mask |= SCF_VAL3|SCF_UADDR2|SCF_TIMEOUT; break;
  363. P_FUTEX_OP(UNLOCK_PI); arg->mask |= SCF_VAL3|SCF_UADDR2|SCF_TIMEOUT; break;
  364. P_FUTEX_OP(TRYLOCK_PI); arg->mask |= SCF_VAL3|SCF_UADDR2; break;
  365. P_FUTEX_OP(WAIT_BITSET); arg->mask |= SCF_UADDR2; break;
  366. P_FUTEX_OP(WAKE_BITSET); arg->mask |= SCF_UADDR2; break;
  367. P_FUTEX_OP(WAIT_REQUEUE_PI); break;
  368. default: printed = scnprintf(bf, size, "%#x", cmd); break;
  369. }
  370. if (op & FUTEX_PRIVATE_FLAG)
  371. printed += scnprintf(bf + printed, size - printed, "|PRIV");
  372. if (op & FUTEX_CLOCK_REALTIME)
  373. printed += scnprintf(bf + printed, size - printed, "|CLKRT");
  374. return printed;
  375. }
  376. #define SCA_FUTEX_OP syscall_arg__scnprintf_futex_op
  377. static const char *bpf_cmd[] = {
  378. "MAP_CREATE", "MAP_LOOKUP_ELEM", "MAP_UPDATE_ELEM", "MAP_DELETE_ELEM",
  379. "MAP_GET_NEXT_KEY", "PROG_LOAD",
  380. };
  381. static DEFINE_STRARRAY(bpf_cmd);
  382. static const char *epoll_ctl_ops[] = { "ADD", "DEL", "MOD", };
  383. static DEFINE_STRARRAY_OFFSET(epoll_ctl_ops, 1);
  384. static const char *itimers[] = { "REAL", "VIRTUAL", "PROF", };
  385. static DEFINE_STRARRAY(itimers);
  386. static const char *keyctl_options[] = {
  387. "GET_KEYRING_ID", "JOIN_SESSION_KEYRING", "UPDATE", "REVOKE", "CHOWN",
  388. "SETPERM", "DESCRIBE", "CLEAR", "LINK", "UNLINK", "SEARCH", "READ",
  389. "INSTANTIATE", "NEGATE", "SET_REQKEY_KEYRING", "SET_TIMEOUT",
  390. "ASSUME_AUTHORITY", "GET_SECURITY", "SESSION_TO_PARENT", "REJECT",
  391. "INSTANTIATE_IOV", "INVALIDATE", "GET_PERSISTENT",
  392. };
  393. static DEFINE_STRARRAY(keyctl_options);
  394. static const char *whences[] = { "SET", "CUR", "END",
  395. #ifdef SEEK_DATA
  396. "DATA",
  397. #endif
  398. #ifdef SEEK_HOLE
  399. "HOLE",
  400. #endif
  401. };
  402. static DEFINE_STRARRAY(whences);
  403. static const char *fcntl_cmds[] = {
  404. "DUPFD", "GETFD", "SETFD", "GETFL", "SETFL", "GETLK", "SETLK",
  405. "SETLKW", "SETOWN", "GETOWN", "SETSIG", "GETSIG", "F_GETLK64",
  406. "F_SETLK64", "F_SETLKW64", "F_SETOWN_EX", "F_GETOWN_EX",
  407. "F_GETOWNER_UIDS",
  408. };
  409. static DEFINE_STRARRAY(fcntl_cmds);
  410. static const char *rlimit_resources[] = {
  411. "CPU", "FSIZE", "DATA", "STACK", "CORE", "RSS", "NPROC", "NOFILE",
  412. "MEMLOCK", "AS", "LOCKS", "SIGPENDING", "MSGQUEUE", "NICE", "RTPRIO",
  413. "RTTIME",
  414. };
  415. static DEFINE_STRARRAY(rlimit_resources);
  416. static const char *sighow[] = { "BLOCK", "UNBLOCK", "SETMASK", };
  417. static DEFINE_STRARRAY(sighow);
  418. static const char *clockid[] = {
  419. "REALTIME", "MONOTONIC", "PROCESS_CPUTIME_ID", "THREAD_CPUTIME_ID",
  420. "MONOTONIC_RAW", "REALTIME_COARSE", "MONOTONIC_COARSE", "BOOTTIME",
  421. "REALTIME_ALARM", "BOOTTIME_ALARM", "SGI_CYCLE", "TAI"
  422. };
  423. static DEFINE_STRARRAY(clockid);
  424. static const char *socket_families[] = {
  425. "UNSPEC", "LOCAL", "INET", "AX25", "IPX", "APPLETALK", "NETROM",
  426. "BRIDGE", "ATMPVC", "X25", "INET6", "ROSE", "DECnet", "NETBEUI",
  427. "SECURITY", "KEY", "NETLINK", "PACKET", "ASH", "ECONET", "ATMSVC",
  428. "RDS", "SNA", "IRDA", "PPPOX", "WANPIPE", "LLC", "IB", "CAN", "TIPC",
  429. "BLUETOOTH", "IUCV", "RXRPC", "ISDN", "PHONET", "IEEE802154", "CAIF",
  430. "ALG", "NFC", "VSOCK",
  431. };
  432. static DEFINE_STRARRAY(socket_families);
  433. #ifndef MSG_PROBE
  434. #define MSG_PROBE 0x10
  435. #endif
  436. #ifndef MSG_WAITFORONE
  437. #define MSG_WAITFORONE 0x10000
  438. #endif
  439. #ifndef MSG_SENDPAGE_NOTLAST
  440. #define MSG_SENDPAGE_NOTLAST 0x20000
  441. #endif
  442. #ifndef MSG_FASTOPEN
  443. #define MSG_FASTOPEN 0x20000000
  444. #endif
  445. static size_t syscall_arg__scnprintf_msg_flags(char *bf, size_t size,
  446. struct syscall_arg *arg)
  447. {
  448. int printed = 0, flags = arg->val;
  449. if (flags == 0)
  450. return scnprintf(bf, size, "NONE");
  451. #define P_MSG_FLAG(n) \
  452. if (flags & MSG_##n) { \
  453. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \
  454. flags &= ~MSG_##n; \
  455. }
  456. P_MSG_FLAG(OOB);
  457. P_MSG_FLAG(PEEK);
  458. P_MSG_FLAG(DONTROUTE);
  459. P_MSG_FLAG(TRYHARD);
  460. P_MSG_FLAG(CTRUNC);
  461. P_MSG_FLAG(PROBE);
  462. P_MSG_FLAG(TRUNC);
  463. P_MSG_FLAG(DONTWAIT);
  464. P_MSG_FLAG(EOR);
  465. P_MSG_FLAG(WAITALL);
  466. P_MSG_FLAG(FIN);
  467. P_MSG_FLAG(SYN);
  468. P_MSG_FLAG(CONFIRM);
  469. P_MSG_FLAG(RST);
  470. P_MSG_FLAG(ERRQUEUE);
  471. P_MSG_FLAG(NOSIGNAL);
  472. P_MSG_FLAG(MORE);
  473. P_MSG_FLAG(WAITFORONE);
  474. P_MSG_FLAG(SENDPAGE_NOTLAST);
  475. P_MSG_FLAG(FASTOPEN);
  476. P_MSG_FLAG(CMSG_CLOEXEC);
  477. #undef P_MSG_FLAG
  478. if (flags)
  479. printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags);
  480. return printed;
  481. }
  482. #define SCA_MSG_FLAGS syscall_arg__scnprintf_msg_flags
  483. static size_t syscall_arg__scnprintf_access_mode(char *bf, size_t size,
  484. struct syscall_arg *arg)
  485. {
  486. size_t printed = 0;
  487. int mode = arg->val;
  488. if (mode == F_OK) /* 0 */
  489. return scnprintf(bf, size, "F");
  490. #define P_MODE(n) \
  491. if (mode & n##_OK) { \
  492. printed += scnprintf(bf + printed, size - printed, "%s", #n); \
  493. mode &= ~n##_OK; \
  494. }
  495. P_MODE(R);
  496. P_MODE(W);
  497. P_MODE(X);
  498. #undef P_MODE
  499. if (mode)
  500. printed += scnprintf(bf + printed, size - printed, "|%#x", mode);
  501. return printed;
  502. }
  503. #define SCA_ACCMODE syscall_arg__scnprintf_access_mode
  504. static size_t syscall_arg__scnprintf_filename(char *bf, size_t size,
  505. struct syscall_arg *arg);
  506. #define SCA_FILENAME syscall_arg__scnprintf_filename
  507. static size_t syscall_arg__scnprintf_open_flags(char *bf, size_t size,
  508. struct syscall_arg *arg)
  509. {
  510. int printed = 0, flags = arg->val;
  511. if (!(flags & O_CREAT))
  512. arg->mask |= 1 << (arg->idx + 1); /* Mask the mode parm */
  513. if (flags == 0)
  514. return scnprintf(bf, size, "RDONLY");
  515. #define P_FLAG(n) \
  516. if (flags & O_##n) { \
  517. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \
  518. flags &= ~O_##n; \
  519. }
  520. P_FLAG(APPEND);
  521. P_FLAG(ASYNC);
  522. P_FLAG(CLOEXEC);
  523. P_FLAG(CREAT);
  524. P_FLAG(DIRECT);
  525. P_FLAG(DIRECTORY);
  526. P_FLAG(EXCL);
  527. P_FLAG(LARGEFILE);
  528. P_FLAG(NOATIME);
  529. P_FLAG(NOCTTY);
  530. #ifdef O_NONBLOCK
  531. P_FLAG(NONBLOCK);
  532. #elif O_NDELAY
  533. P_FLAG(NDELAY);
  534. #endif
  535. #ifdef O_PATH
  536. P_FLAG(PATH);
  537. #endif
  538. P_FLAG(RDWR);
  539. #ifdef O_DSYNC
  540. if ((flags & O_SYNC) == O_SYNC)
  541. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", "SYNC");
  542. else {
  543. P_FLAG(DSYNC);
  544. }
  545. #else
  546. P_FLAG(SYNC);
  547. #endif
  548. P_FLAG(TRUNC);
  549. P_FLAG(WRONLY);
  550. #undef P_FLAG
  551. if (flags)
  552. printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags);
  553. return printed;
  554. }
  555. #define SCA_OPEN_FLAGS syscall_arg__scnprintf_open_flags
  556. static size_t syscall_arg__scnprintf_pipe_flags(char *bf, size_t size,
  557. struct syscall_arg *arg)
  558. {
  559. int printed = 0, flags = arg->val;
  560. #define P_FLAG(n) \
  561. if (flags & O_##n) { \
  562. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \
  563. flags &= ~O_##n; \
  564. }
  565. P_FLAG(CLOEXEC);
  566. P_FLAG(NONBLOCK);
  567. #undef P_FLAG
  568. if (flags)
  569. printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags);
  570. return printed;
  571. }
  572. #define SCA_PIPE_FLAGS syscall_arg__scnprintf_pipe_flags
  573. static size_t syscall_arg__scnprintf_signum(char *bf, size_t size, struct syscall_arg *arg)
  574. {
  575. int sig = arg->val;
  576. switch (sig) {
  577. #define P_SIGNUM(n) case SIG##n: return scnprintf(bf, size, #n)
  578. P_SIGNUM(HUP);
  579. P_SIGNUM(INT);
  580. P_SIGNUM(QUIT);
  581. P_SIGNUM(ILL);
  582. P_SIGNUM(TRAP);
  583. P_SIGNUM(ABRT);
  584. P_SIGNUM(BUS);
  585. P_SIGNUM(FPE);
  586. P_SIGNUM(KILL);
  587. P_SIGNUM(USR1);
  588. P_SIGNUM(SEGV);
  589. P_SIGNUM(USR2);
  590. P_SIGNUM(PIPE);
  591. P_SIGNUM(ALRM);
  592. P_SIGNUM(TERM);
  593. P_SIGNUM(CHLD);
  594. P_SIGNUM(CONT);
  595. P_SIGNUM(STOP);
  596. P_SIGNUM(TSTP);
  597. P_SIGNUM(TTIN);
  598. P_SIGNUM(TTOU);
  599. P_SIGNUM(URG);
  600. P_SIGNUM(XCPU);
  601. P_SIGNUM(XFSZ);
  602. P_SIGNUM(VTALRM);
  603. P_SIGNUM(PROF);
  604. P_SIGNUM(WINCH);
  605. P_SIGNUM(IO);
  606. P_SIGNUM(PWR);
  607. P_SIGNUM(SYS);
  608. #ifdef SIGEMT
  609. P_SIGNUM(EMT);
  610. #endif
  611. #ifdef SIGSTKFLT
  612. P_SIGNUM(STKFLT);
  613. #endif
  614. #ifdef SIGSWI
  615. P_SIGNUM(SWI);
  616. #endif
  617. default: break;
  618. }
  619. return scnprintf(bf, size, "%#x", sig);
  620. }
  621. #define SCA_SIGNUM syscall_arg__scnprintf_signum
  622. #if defined(__i386__) || defined(__x86_64__)
  623. /*
  624. * FIXME: Make this available to all arches.
  625. */
  626. #define TCGETS 0x5401
  627. static const char *tioctls[] = {
  628. "TCGETS", "TCSETS", "TCSETSW", "TCSETSF", "TCGETA", "TCSETA", "TCSETAW",
  629. "TCSETAF", "TCSBRK", "TCXONC", "TCFLSH", "TIOCEXCL", "TIOCNXCL",
  630. "TIOCSCTTY", "TIOCGPGRP", "TIOCSPGRP", "TIOCOUTQ", "TIOCSTI",
  631. "TIOCGWINSZ", "TIOCSWINSZ", "TIOCMGET", "TIOCMBIS", "TIOCMBIC",
  632. "TIOCMSET", "TIOCGSOFTCAR", "TIOCSSOFTCAR", "FIONREAD", "TIOCLINUX",
  633. "TIOCCONS", "TIOCGSERIAL", "TIOCSSERIAL", "TIOCPKT", "FIONBIO",
  634. "TIOCNOTTY", "TIOCSETD", "TIOCGETD", "TCSBRKP", [0x27] = "TIOCSBRK",
  635. "TIOCCBRK", "TIOCGSID", "TCGETS2", "TCSETS2", "TCSETSW2", "TCSETSF2",
  636. "TIOCGRS485", "TIOCSRS485", "TIOCGPTN", "TIOCSPTLCK",
  637. "TIOCGDEV||TCGETX", "TCSETX", "TCSETXF", "TCSETXW", "TIOCSIG",
  638. "TIOCVHANGUP", "TIOCGPKT", "TIOCGPTLCK", "TIOCGEXCL",
  639. [0x50] = "FIONCLEX", "FIOCLEX", "FIOASYNC", "TIOCSERCONFIG",
  640. "TIOCSERGWILD", "TIOCSERSWILD", "TIOCGLCKTRMIOS", "TIOCSLCKTRMIOS",
  641. "TIOCSERGSTRUCT", "TIOCSERGETLSR", "TIOCSERGETMULTI", "TIOCSERSETMULTI",
  642. "TIOCMIWAIT", "TIOCGICOUNT", [0x60] = "FIOQSIZE",
  643. };
  644. static DEFINE_STRARRAY_OFFSET(tioctls, 0x5401);
  645. #endif /* defined(__i386__) || defined(__x86_64__) */
  646. #ifndef SECCOMP_SET_MODE_STRICT
  647. #define SECCOMP_SET_MODE_STRICT 0
  648. #endif
  649. #ifndef SECCOMP_SET_MODE_FILTER
  650. #define SECCOMP_SET_MODE_FILTER 1
  651. #endif
  652. static size_t syscall_arg__scnprintf_seccomp_op(char *bf, size_t size, struct syscall_arg *arg)
  653. {
  654. int op = arg->val;
  655. size_t printed = 0;
  656. switch (op) {
  657. #define P_SECCOMP_SET_MODE_OP(n) case SECCOMP_SET_MODE_##n: printed = scnprintf(bf, size, #n); break
  658. P_SECCOMP_SET_MODE_OP(STRICT);
  659. P_SECCOMP_SET_MODE_OP(FILTER);
  660. #undef P_SECCOMP_SET_MODE_OP
  661. default: printed = scnprintf(bf, size, "%#x", op); break;
  662. }
  663. return printed;
  664. }
  665. #define SCA_SECCOMP_OP syscall_arg__scnprintf_seccomp_op
  666. #ifndef SECCOMP_FILTER_FLAG_TSYNC
  667. #define SECCOMP_FILTER_FLAG_TSYNC 1
  668. #endif
  669. static size_t syscall_arg__scnprintf_seccomp_flags(char *bf, size_t size,
  670. struct syscall_arg *arg)
  671. {
  672. int printed = 0, flags = arg->val;
  673. #define P_FLAG(n) \
  674. if (flags & SECCOMP_FILTER_FLAG_##n) { \
  675. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \
  676. flags &= ~SECCOMP_FILTER_FLAG_##n; \
  677. }
  678. P_FLAG(TSYNC);
  679. #undef P_FLAG
  680. if (flags)
  681. printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags);
  682. return printed;
  683. }
  684. #define SCA_SECCOMP_FLAGS syscall_arg__scnprintf_seccomp_flags
  685. #ifndef GRND_NONBLOCK
  686. #define GRND_NONBLOCK 0x0001
  687. #endif
  688. #ifndef GRND_RANDOM
  689. #define GRND_RANDOM 0x0002
  690. #endif
  691. static size_t syscall_arg__scnprintf_getrandom_flags(char *bf, size_t size,
  692. struct syscall_arg *arg)
  693. {
  694. int printed = 0, flags = arg->val;
  695. #define P_FLAG(n) \
  696. if (flags & GRND_##n) { \
  697. printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \
  698. flags &= ~GRND_##n; \
  699. }
  700. P_FLAG(RANDOM);
  701. P_FLAG(NONBLOCK);
  702. #undef P_FLAG
  703. if (flags)
  704. printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags);
  705. return printed;
  706. }
  707. #define SCA_GETRANDOM_FLAGS syscall_arg__scnprintf_getrandom_flags
  708. #define STRARRAY(arg, name, array) \
  709. .arg_scnprintf = { [arg] = SCA_STRARRAY, }, \
  710. .arg_parm = { [arg] = &strarray__##array, }
  711. #include "trace/beauty/eventfd.c"
  712. #include "trace/beauty/pid.c"
  713. #include "trace/beauty/mmap.c"
  714. #include "trace/beauty/mode_t.c"
  715. #include "trace/beauty/perf_event_open.c"
  716. #include "trace/beauty/sched_policy.c"
  717. #include "trace/beauty/socket_type.c"
  718. #include "trace/beauty/waitid_options.c"
  719. static struct syscall_fmt {
  720. const char *name;
  721. const char *alias;
  722. size_t (*arg_scnprintf[6])(char *bf, size_t size, struct syscall_arg *arg);
  723. void *arg_parm[6];
  724. bool errmsg;
  725. bool errpid;
  726. bool timeout;
  727. bool hexret;
  728. } syscall_fmts[] = {
  729. { .name = "access", .errmsg = true,
  730. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */
  731. [1] = SCA_ACCMODE, /* mode */ }, },
  732. { .name = "arch_prctl", .errmsg = true, .alias = "prctl", },
  733. { .name = "bpf", .errmsg = true, STRARRAY(0, cmd, bpf_cmd), },
  734. { .name = "brk", .hexret = true,
  735. .arg_scnprintf = { [0] = SCA_HEX, /* brk */ }, },
  736. { .name = "chdir", .errmsg = true,
  737. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  738. { .name = "chmod", .errmsg = true,
  739. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  740. { .name = "chroot", .errmsg = true,
  741. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  742. { .name = "clock_gettime", .errmsg = true, STRARRAY(0, clk_id, clockid), },
  743. { .name = "clone", .errpid = true, },
  744. { .name = "close", .errmsg = true,
  745. .arg_scnprintf = { [0] = SCA_CLOSE_FD, /* fd */ }, },
  746. { .name = "connect", .errmsg = true, },
  747. { .name = "creat", .errmsg = true,
  748. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  749. { .name = "dup", .errmsg = true,
  750. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  751. { .name = "dup2", .errmsg = true,
  752. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  753. { .name = "dup3", .errmsg = true,
  754. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  755. { .name = "epoll_ctl", .errmsg = true, STRARRAY(1, op, epoll_ctl_ops), },
  756. { .name = "eventfd2", .errmsg = true,
  757. .arg_scnprintf = { [1] = SCA_EFD_FLAGS, /* flags */ }, },
  758. { .name = "faccessat", .errmsg = true,
  759. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  760. [1] = SCA_FILENAME, /* filename */ }, },
  761. { .name = "fadvise64", .errmsg = true,
  762. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  763. { .name = "fallocate", .errmsg = true,
  764. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  765. { .name = "fchdir", .errmsg = true,
  766. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  767. { .name = "fchmod", .errmsg = true,
  768. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  769. { .name = "fchmodat", .errmsg = true,
  770. .arg_scnprintf = { [0] = SCA_FDAT, /* fd */
  771. [1] = SCA_FILENAME, /* filename */ }, },
  772. { .name = "fchown", .errmsg = true,
  773. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  774. { .name = "fchownat", .errmsg = true,
  775. .arg_scnprintf = { [0] = SCA_FDAT, /* fd */
  776. [1] = SCA_FILENAME, /* filename */ }, },
  777. { .name = "fcntl", .errmsg = true,
  778. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  779. [1] = SCA_STRARRAY, /* cmd */ },
  780. .arg_parm = { [1] = &strarray__fcntl_cmds, /* cmd */ }, },
  781. { .name = "fdatasync", .errmsg = true,
  782. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  783. { .name = "flock", .errmsg = true,
  784. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  785. [1] = SCA_FLOCK, /* cmd */ }, },
  786. { .name = "fsetxattr", .errmsg = true,
  787. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  788. { .name = "fstat", .errmsg = true, .alias = "newfstat",
  789. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  790. { .name = "fstatat", .errmsg = true, .alias = "newfstatat",
  791. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  792. [1] = SCA_FILENAME, /* filename */ }, },
  793. { .name = "fstatfs", .errmsg = true,
  794. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  795. { .name = "fsync", .errmsg = true,
  796. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  797. { .name = "ftruncate", .errmsg = true,
  798. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  799. { .name = "futex", .errmsg = true,
  800. .arg_scnprintf = { [1] = SCA_FUTEX_OP, /* op */ }, },
  801. { .name = "futimesat", .errmsg = true,
  802. .arg_scnprintf = { [0] = SCA_FDAT, /* fd */
  803. [1] = SCA_FILENAME, /* filename */ }, },
  804. { .name = "getdents", .errmsg = true,
  805. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  806. { .name = "getdents64", .errmsg = true,
  807. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  808. { .name = "getitimer", .errmsg = true, STRARRAY(0, which, itimers), },
  809. { .name = "getpid", .errpid = true, },
  810. { .name = "getpgid", .errpid = true, },
  811. { .name = "getppid", .errpid = true, },
  812. { .name = "getrandom", .errmsg = true,
  813. .arg_scnprintf = { [2] = SCA_GETRANDOM_FLAGS, /* flags */ }, },
  814. { .name = "getrlimit", .errmsg = true, STRARRAY(0, resource, rlimit_resources), },
  815. { .name = "getxattr", .errmsg = true,
  816. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  817. { .name = "inotify_add_watch", .errmsg = true,
  818. .arg_scnprintf = { [1] = SCA_FILENAME, /* pathname */ }, },
  819. { .name = "ioctl", .errmsg = true,
  820. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  821. #if defined(__i386__) || defined(__x86_64__)
  822. /*
  823. * FIXME: Make this available to all arches.
  824. */
  825. [1] = SCA_STRHEXARRAY, /* cmd */
  826. [2] = SCA_HEX, /* arg */ },
  827. .arg_parm = { [1] = &strarray__tioctls, /* cmd */ }, },
  828. #else
  829. [2] = SCA_HEX, /* arg */ }, },
  830. #endif
  831. { .name = "keyctl", .errmsg = true, STRARRAY(0, option, keyctl_options), },
  832. { .name = "kill", .errmsg = true,
  833. .arg_scnprintf = { [1] = SCA_SIGNUM, /* sig */ }, },
  834. { .name = "lchown", .errmsg = true,
  835. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  836. { .name = "lgetxattr", .errmsg = true,
  837. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  838. { .name = "linkat", .errmsg = true,
  839. .arg_scnprintf = { [0] = SCA_FDAT, /* fd */ }, },
  840. { .name = "listxattr", .errmsg = true,
  841. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  842. { .name = "llistxattr", .errmsg = true,
  843. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  844. { .name = "lremovexattr", .errmsg = true,
  845. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  846. { .name = "lseek", .errmsg = true,
  847. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  848. [2] = SCA_STRARRAY, /* whence */ },
  849. .arg_parm = { [2] = &strarray__whences, /* whence */ }, },
  850. { .name = "lsetxattr", .errmsg = true,
  851. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  852. { .name = "lstat", .errmsg = true, .alias = "newlstat",
  853. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  854. { .name = "lsxattr", .errmsg = true,
  855. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  856. { .name = "madvise", .errmsg = true,
  857. .arg_scnprintf = { [0] = SCA_HEX, /* start */
  858. [2] = SCA_MADV_BHV, /* behavior */ }, },
  859. { .name = "mkdir", .errmsg = true,
  860. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  861. { .name = "mkdirat", .errmsg = true,
  862. .arg_scnprintf = { [0] = SCA_FDAT, /* fd */
  863. [1] = SCA_FILENAME, /* pathname */ }, },
  864. { .name = "mknod", .errmsg = true,
  865. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  866. { .name = "mknodat", .errmsg = true,
  867. .arg_scnprintf = { [0] = SCA_FDAT, /* fd */
  868. [1] = SCA_FILENAME, /* filename */ }, },
  869. { .name = "mlock", .errmsg = true,
  870. .arg_scnprintf = { [0] = SCA_HEX, /* addr */ }, },
  871. { .name = "mlockall", .errmsg = true,
  872. .arg_scnprintf = { [0] = SCA_HEX, /* addr */ }, },
  873. { .name = "mmap", .hexret = true,
  874. .arg_scnprintf = { [0] = SCA_HEX, /* addr */
  875. [2] = SCA_MMAP_PROT, /* prot */
  876. [3] = SCA_MMAP_FLAGS, /* flags */
  877. [4] = SCA_FD, /* fd */ }, },
  878. { .name = "mprotect", .errmsg = true,
  879. .arg_scnprintf = { [0] = SCA_HEX, /* start */
  880. [2] = SCA_MMAP_PROT, /* prot */ }, },
  881. { .name = "mq_unlink", .errmsg = true,
  882. .arg_scnprintf = { [0] = SCA_FILENAME, /* u_name */ }, },
  883. { .name = "mremap", .hexret = true,
  884. .arg_scnprintf = { [0] = SCA_HEX, /* addr */
  885. [3] = SCA_MREMAP_FLAGS, /* flags */
  886. [4] = SCA_HEX, /* new_addr */ }, },
  887. { .name = "munlock", .errmsg = true,
  888. .arg_scnprintf = { [0] = SCA_HEX, /* addr */ }, },
  889. { .name = "munmap", .errmsg = true,
  890. .arg_scnprintf = { [0] = SCA_HEX, /* addr */ }, },
  891. { .name = "name_to_handle_at", .errmsg = true,
  892. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */ }, },
  893. { .name = "newfstatat", .errmsg = true,
  894. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  895. [1] = SCA_FILENAME, /* filename */ }, },
  896. { .name = "open", .errmsg = true,
  897. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */
  898. [1] = SCA_OPEN_FLAGS, /* flags */ }, },
  899. { .name = "open_by_handle_at", .errmsg = true,
  900. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  901. [2] = SCA_OPEN_FLAGS, /* flags */ }, },
  902. { .name = "openat", .errmsg = true,
  903. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  904. [1] = SCA_FILENAME, /* filename */
  905. [2] = SCA_OPEN_FLAGS, /* flags */ }, },
  906. { .name = "perf_event_open", .errmsg = true,
  907. .arg_scnprintf = { [1] = SCA_INT, /* pid */
  908. [2] = SCA_INT, /* cpu */
  909. [3] = SCA_FD, /* group_fd */
  910. [4] = SCA_PERF_FLAGS, /* flags */ }, },
  911. { .name = "pipe2", .errmsg = true,
  912. .arg_scnprintf = { [1] = SCA_PIPE_FLAGS, /* flags */ }, },
  913. { .name = "poll", .errmsg = true, .timeout = true, },
  914. { .name = "ppoll", .errmsg = true, .timeout = true, },
  915. { .name = "pread", .errmsg = true, .alias = "pread64",
  916. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  917. { .name = "preadv", .errmsg = true, .alias = "pread",
  918. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  919. { .name = "prlimit64", .errmsg = true, STRARRAY(1, resource, rlimit_resources), },
  920. { .name = "pwrite", .errmsg = true, .alias = "pwrite64",
  921. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  922. { .name = "pwritev", .errmsg = true,
  923. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  924. { .name = "read", .errmsg = true,
  925. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  926. { .name = "readlink", .errmsg = true,
  927. .arg_scnprintf = { [0] = SCA_FILENAME, /* path */ }, },
  928. { .name = "readlinkat", .errmsg = true,
  929. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  930. [1] = SCA_FILENAME, /* pathname */ }, },
  931. { .name = "readv", .errmsg = true,
  932. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  933. { .name = "recvfrom", .errmsg = true,
  934. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  935. [3] = SCA_MSG_FLAGS, /* flags */ }, },
  936. { .name = "recvmmsg", .errmsg = true,
  937. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  938. [3] = SCA_MSG_FLAGS, /* flags */ }, },
  939. { .name = "recvmsg", .errmsg = true,
  940. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  941. [2] = SCA_MSG_FLAGS, /* flags */ }, },
  942. { .name = "removexattr", .errmsg = true,
  943. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  944. { .name = "renameat", .errmsg = true,
  945. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */ }, },
  946. { .name = "rmdir", .errmsg = true,
  947. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  948. { .name = "rt_sigaction", .errmsg = true,
  949. .arg_scnprintf = { [0] = SCA_SIGNUM, /* sig */ }, },
  950. { .name = "rt_sigprocmask", .errmsg = true, STRARRAY(0, how, sighow), },
  951. { .name = "rt_sigqueueinfo", .errmsg = true,
  952. .arg_scnprintf = { [1] = SCA_SIGNUM, /* sig */ }, },
  953. { .name = "rt_tgsigqueueinfo", .errmsg = true,
  954. .arg_scnprintf = { [2] = SCA_SIGNUM, /* sig */ }, },
  955. { .name = "sched_setscheduler", .errmsg = true,
  956. .arg_scnprintf = { [1] = SCA_SCHED_POLICY, /* policy */ }, },
  957. { .name = "seccomp", .errmsg = true,
  958. .arg_scnprintf = { [0] = SCA_SECCOMP_OP, /* op */
  959. [1] = SCA_SECCOMP_FLAGS, /* flags */ }, },
  960. { .name = "select", .errmsg = true, .timeout = true, },
  961. { .name = "sendmmsg", .errmsg = true,
  962. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  963. [3] = SCA_MSG_FLAGS, /* flags */ }, },
  964. { .name = "sendmsg", .errmsg = true,
  965. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  966. [2] = SCA_MSG_FLAGS, /* flags */ }, },
  967. { .name = "sendto", .errmsg = true,
  968. .arg_scnprintf = { [0] = SCA_FD, /* fd */
  969. [3] = SCA_MSG_FLAGS, /* flags */ }, },
  970. { .name = "set_tid_address", .errpid = true, },
  971. { .name = "setitimer", .errmsg = true, STRARRAY(0, which, itimers), },
  972. { .name = "setpgid", .errmsg = true, },
  973. { .name = "setrlimit", .errmsg = true, STRARRAY(0, resource, rlimit_resources), },
  974. { .name = "setxattr", .errmsg = true,
  975. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  976. { .name = "shutdown", .errmsg = true,
  977. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  978. { .name = "socket", .errmsg = true,
  979. .arg_scnprintf = { [0] = SCA_STRARRAY, /* family */
  980. [1] = SCA_SK_TYPE, /* type */ },
  981. .arg_parm = { [0] = &strarray__socket_families, /* family */ }, },
  982. { .name = "socketpair", .errmsg = true,
  983. .arg_scnprintf = { [0] = SCA_STRARRAY, /* family */
  984. [1] = SCA_SK_TYPE, /* type */ },
  985. .arg_parm = { [0] = &strarray__socket_families, /* family */ }, },
  986. { .name = "stat", .errmsg = true, .alias = "newstat",
  987. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  988. { .name = "statfs", .errmsg = true,
  989. .arg_scnprintf = { [0] = SCA_FILENAME, /* pathname */ }, },
  990. { .name = "swapoff", .errmsg = true,
  991. .arg_scnprintf = { [0] = SCA_FILENAME, /* specialfile */ }, },
  992. { .name = "swapon", .errmsg = true,
  993. .arg_scnprintf = { [0] = SCA_FILENAME, /* specialfile */ }, },
  994. { .name = "symlinkat", .errmsg = true,
  995. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */ }, },
  996. { .name = "tgkill", .errmsg = true,
  997. .arg_scnprintf = { [2] = SCA_SIGNUM, /* sig */ }, },
  998. { .name = "tkill", .errmsg = true,
  999. .arg_scnprintf = { [1] = SCA_SIGNUM, /* sig */ }, },
  1000. { .name = "truncate", .errmsg = true,
  1001. .arg_scnprintf = { [0] = SCA_FILENAME, /* path */ }, },
  1002. { .name = "uname", .errmsg = true, .alias = "newuname", },
  1003. { .name = "unlinkat", .errmsg = true,
  1004. .arg_scnprintf = { [0] = SCA_FDAT, /* dfd */
  1005. [1] = SCA_FILENAME, /* pathname */ }, },
  1006. { .name = "utime", .errmsg = true,
  1007. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  1008. { .name = "utimensat", .errmsg = true,
  1009. .arg_scnprintf = { [0] = SCA_FDAT, /* dirfd */
  1010. [1] = SCA_FILENAME, /* filename */ }, },
  1011. { .name = "utimes", .errmsg = true,
  1012. .arg_scnprintf = { [0] = SCA_FILENAME, /* filename */ }, },
  1013. { .name = "vmsplice", .errmsg = true,
  1014. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  1015. { .name = "wait4", .errpid = true,
  1016. .arg_scnprintf = { [2] = SCA_WAITID_OPTIONS, /* options */ }, },
  1017. { .name = "waitid", .errpid = true,
  1018. .arg_scnprintf = { [3] = SCA_WAITID_OPTIONS, /* options */ }, },
  1019. { .name = "write", .errmsg = true,
  1020. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  1021. { .name = "writev", .errmsg = true,
  1022. .arg_scnprintf = { [0] = SCA_FD, /* fd */ }, },
  1023. };
  1024. static int syscall_fmt__cmp(const void *name, const void *fmtp)
  1025. {
  1026. const struct syscall_fmt *fmt = fmtp;
  1027. return strcmp(name, fmt->name);
  1028. }
  1029. static struct syscall_fmt *syscall_fmt__find(const char *name)
  1030. {
  1031. const int nmemb = ARRAY_SIZE(syscall_fmts);
  1032. return bsearch(name, syscall_fmts, nmemb, sizeof(struct syscall_fmt), syscall_fmt__cmp);
  1033. }
  1034. struct syscall {
  1035. struct event_format *tp_format;
  1036. int nr_args;
  1037. struct format_field *args;
  1038. const char *name;
  1039. bool is_exit;
  1040. struct syscall_fmt *fmt;
  1041. size_t (**arg_scnprintf)(char *bf, size_t size, struct syscall_arg *arg);
  1042. void **arg_parm;
  1043. };
  1044. static size_t fprintf_duration(unsigned long t, FILE *fp)
  1045. {
  1046. double duration = (double)t / NSEC_PER_MSEC;
  1047. size_t printed = fprintf(fp, "(");
  1048. if (duration >= 1.0)
  1049. printed += color_fprintf(fp, PERF_COLOR_RED, "%6.3f ms", duration);
  1050. else if (duration >= 0.01)
  1051. printed += color_fprintf(fp, PERF_COLOR_YELLOW, "%6.3f ms", duration);
  1052. else
  1053. printed += color_fprintf(fp, PERF_COLOR_NORMAL, "%6.3f ms", duration);
  1054. return printed + fprintf(fp, "): ");
  1055. }
  1056. /**
  1057. * filename.ptr: The filename char pointer that will be vfs_getname'd
  1058. * filename.entry_str_pos: Where to insert the string translated from
  1059. * filename.ptr by the vfs_getname tracepoint/kprobe.
  1060. */
  1061. struct thread_trace {
  1062. u64 entry_time;
  1063. u64 exit_time;
  1064. bool entry_pending;
  1065. unsigned long nr_events;
  1066. unsigned long pfmaj, pfmin;
  1067. char *entry_str;
  1068. double runtime_ms;
  1069. struct {
  1070. unsigned long ptr;
  1071. short int entry_str_pos;
  1072. bool pending_open;
  1073. unsigned int namelen;
  1074. char *name;
  1075. } filename;
  1076. struct {
  1077. int max;
  1078. char **table;
  1079. } paths;
  1080. struct intlist *syscall_stats;
  1081. };
  1082. static struct thread_trace *thread_trace__new(void)
  1083. {
  1084. struct thread_trace *ttrace = zalloc(sizeof(struct thread_trace));
  1085. if (ttrace)
  1086. ttrace->paths.max = -1;
  1087. ttrace->syscall_stats = intlist__new(NULL);
  1088. return ttrace;
  1089. }
  1090. static struct thread_trace *thread__trace(struct thread *thread, FILE *fp)
  1091. {
  1092. struct thread_trace *ttrace;
  1093. if (thread == NULL)
  1094. goto fail;
  1095. if (thread__priv(thread) == NULL)
  1096. thread__set_priv(thread, thread_trace__new());
  1097. if (thread__priv(thread) == NULL)
  1098. goto fail;
  1099. ttrace = thread__priv(thread);
  1100. ++ttrace->nr_events;
  1101. return ttrace;
  1102. fail:
  1103. color_fprintf(fp, PERF_COLOR_RED,
  1104. "WARNING: not enough memory, dropping samples!\n");
  1105. return NULL;
  1106. }
  1107. #define TRACE_PFMAJ (1 << 0)
  1108. #define TRACE_PFMIN (1 << 1)
  1109. static const size_t trace__entry_str_size = 2048;
  1110. static int trace__set_fd_pathname(struct thread *thread, int fd, const char *pathname)
  1111. {
  1112. struct thread_trace *ttrace = thread__priv(thread);
  1113. if (fd > ttrace->paths.max) {
  1114. char **npath = realloc(ttrace->paths.table, (fd + 1) * sizeof(char *));
  1115. if (npath == NULL)
  1116. return -1;
  1117. if (ttrace->paths.max != -1) {
  1118. memset(npath + ttrace->paths.max + 1, 0,
  1119. (fd - ttrace->paths.max) * sizeof(char *));
  1120. } else {
  1121. memset(npath, 0, (fd + 1) * sizeof(char *));
  1122. }
  1123. ttrace->paths.table = npath;
  1124. ttrace->paths.max = fd;
  1125. }
  1126. ttrace->paths.table[fd] = strdup(pathname);
  1127. return ttrace->paths.table[fd] != NULL ? 0 : -1;
  1128. }
  1129. static int thread__read_fd_path(struct thread *thread, int fd)
  1130. {
  1131. char linkname[PATH_MAX], pathname[PATH_MAX];
  1132. struct stat st;
  1133. int ret;
  1134. if (thread->pid_ == thread->tid) {
  1135. scnprintf(linkname, sizeof(linkname),
  1136. "/proc/%d/fd/%d", thread->pid_, fd);
  1137. } else {
  1138. scnprintf(linkname, sizeof(linkname),
  1139. "/proc/%d/task/%d/fd/%d", thread->pid_, thread->tid, fd);
  1140. }
  1141. if (lstat(linkname, &st) < 0 || st.st_size + 1 > (off_t)sizeof(pathname))
  1142. return -1;
  1143. ret = readlink(linkname, pathname, sizeof(pathname));
  1144. if (ret < 0 || ret > st.st_size)
  1145. return -1;
  1146. pathname[ret] = '\0';
  1147. return trace__set_fd_pathname(thread, fd, pathname);
  1148. }
  1149. static const char *thread__fd_path(struct thread *thread, int fd,
  1150. struct trace *trace)
  1151. {
  1152. struct thread_trace *ttrace = thread__priv(thread);
  1153. if (ttrace == NULL)
  1154. return NULL;
  1155. if (fd < 0)
  1156. return NULL;
  1157. if ((fd > ttrace->paths.max || ttrace->paths.table[fd] == NULL)) {
  1158. if (!trace->live)
  1159. return NULL;
  1160. ++trace->stats.proc_getname;
  1161. if (thread__read_fd_path(thread, fd))
  1162. return NULL;
  1163. }
  1164. return ttrace->paths.table[fd];
  1165. }
  1166. static size_t syscall_arg__scnprintf_fd(char *bf, size_t size,
  1167. struct syscall_arg *arg)
  1168. {
  1169. int fd = arg->val;
  1170. size_t printed = scnprintf(bf, size, "%d", fd);
  1171. const char *path = thread__fd_path(arg->thread, fd, arg->trace);
  1172. if (path)
  1173. printed += scnprintf(bf + printed, size - printed, "<%s>", path);
  1174. return printed;
  1175. }
  1176. static size_t syscall_arg__scnprintf_close_fd(char *bf, size_t size,
  1177. struct syscall_arg *arg)
  1178. {
  1179. int fd = arg->val;
  1180. size_t printed = syscall_arg__scnprintf_fd(bf, size, arg);
  1181. struct thread_trace *ttrace = thread__priv(arg->thread);
  1182. if (ttrace && fd >= 0 && fd <= ttrace->paths.max)
  1183. zfree(&ttrace->paths.table[fd]);
  1184. return printed;
  1185. }
  1186. static void thread__set_filename_pos(struct thread *thread, const char *bf,
  1187. unsigned long ptr)
  1188. {
  1189. struct thread_trace *ttrace = thread__priv(thread);
  1190. ttrace->filename.ptr = ptr;
  1191. ttrace->filename.entry_str_pos = bf - ttrace->entry_str;
  1192. }
  1193. static size_t syscall_arg__scnprintf_filename(char *bf, size_t size,
  1194. struct syscall_arg *arg)
  1195. {
  1196. unsigned long ptr = arg->val;
  1197. if (!arg->trace->vfs_getname)
  1198. return scnprintf(bf, size, "%#x", ptr);
  1199. thread__set_filename_pos(arg->thread, bf, ptr);
  1200. return 0;
  1201. }
  1202. static bool trace__filter_duration(struct trace *trace, double t)
  1203. {
  1204. return t < (trace->duration_filter * NSEC_PER_MSEC);
  1205. }
  1206. static size_t trace__fprintf_tstamp(struct trace *trace, u64 tstamp, FILE *fp)
  1207. {
  1208. double ts = (double)(tstamp - trace->base_time) / NSEC_PER_MSEC;
  1209. return fprintf(fp, "%10.3f ", ts);
  1210. }
  1211. static bool done = false;
  1212. static bool interrupted = false;
  1213. static void sig_handler(int sig)
  1214. {
  1215. done = true;
  1216. interrupted = sig == SIGINT;
  1217. }
  1218. static size_t trace__fprintf_entry_head(struct trace *trace, struct thread *thread,
  1219. u64 duration, u64 tstamp, FILE *fp)
  1220. {
  1221. size_t printed = trace__fprintf_tstamp(trace, tstamp, fp);
  1222. printed += fprintf_duration(duration, fp);
  1223. if (trace->multiple_threads) {
  1224. if (trace->show_comm)
  1225. printed += fprintf(fp, "%.14s/", thread__comm_str(thread));
  1226. printed += fprintf(fp, "%d ", thread->tid);
  1227. }
  1228. return printed;
  1229. }
  1230. static int trace__process_event(struct trace *trace, struct machine *machine,
  1231. union perf_event *event, struct perf_sample *sample)
  1232. {
  1233. int ret = 0;
  1234. switch (event->header.type) {
  1235. case PERF_RECORD_LOST:
  1236. color_fprintf(trace->output, PERF_COLOR_RED,
  1237. "LOST %" PRIu64 " events!\n", event->lost.lost);
  1238. ret = machine__process_lost_event(machine, event, sample);
  1239. break;
  1240. default:
  1241. ret = machine__process_event(machine, event, sample);
  1242. break;
  1243. }
  1244. return ret;
  1245. }
  1246. static int trace__tool_process(struct perf_tool *tool,
  1247. union perf_event *event,
  1248. struct perf_sample *sample,
  1249. struct machine *machine)
  1250. {
  1251. struct trace *trace = container_of(tool, struct trace, tool);
  1252. return trace__process_event(trace, machine, event, sample);
  1253. }
  1254. static int trace__symbols_init(struct trace *trace, struct perf_evlist *evlist)
  1255. {
  1256. int err = symbol__init(NULL);
  1257. if (err)
  1258. return err;
  1259. trace->host = machine__new_host();
  1260. if (trace->host == NULL)
  1261. return -ENOMEM;
  1262. if (trace_event__register_resolver(trace->host, machine__resolve_kernel_addr) < 0)
  1263. return -errno;
  1264. err = __machine__synthesize_threads(trace->host, &trace->tool, &trace->opts.target,
  1265. evlist->threads, trace__tool_process, false,
  1266. trace->opts.proc_map_timeout);
  1267. if (err)
  1268. symbol__exit();
  1269. return err;
  1270. }
  1271. static int syscall__set_arg_fmts(struct syscall *sc)
  1272. {
  1273. struct format_field *field;
  1274. int idx = 0;
  1275. sc->arg_scnprintf = calloc(sc->nr_args, sizeof(void *));
  1276. if (sc->arg_scnprintf == NULL)
  1277. return -1;
  1278. if (sc->fmt)
  1279. sc->arg_parm = sc->fmt->arg_parm;
  1280. for (field = sc->args; field; field = field->next) {
  1281. if (sc->fmt && sc->fmt->arg_scnprintf[idx])
  1282. sc->arg_scnprintf[idx] = sc->fmt->arg_scnprintf[idx];
  1283. else if (field->flags & FIELD_IS_POINTER)
  1284. sc->arg_scnprintf[idx] = syscall_arg__scnprintf_hex;
  1285. else if (strcmp(field->type, "pid_t") == 0)
  1286. sc->arg_scnprintf[idx] = SCA_PID;
  1287. else if (strcmp(field->type, "umode_t") == 0)
  1288. sc->arg_scnprintf[idx] = SCA_MODE_T;
  1289. ++idx;
  1290. }
  1291. return 0;
  1292. }
  1293. static int trace__read_syscall_info(struct trace *trace, int id)
  1294. {
  1295. char tp_name[128];
  1296. struct syscall *sc;
  1297. const char *name = syscalltbl__name(trace->sctbl, id);
  1298. if (name == NULL)
  1299. return -1;
  1300. if (id > trace->syscalls.max) {
  1301. struct syscall *nsyscalls = realloc(trace->syscalls.table, (id + 1) * sizeof(*sc));
  1302. if (nsyscalls == NULL)
  1303. return -1;
  1304. if (trace->syscalls.max != -1) {
  1305. memset(nsyscalls + trace->syscalls.max + 1, 0,
  1306. (id - trace->syscalls.max) * sizeof(*sc));
  1307. } else {
  1308. memset(nsyscalls, 0, (id + 1) * sizeof(*sc));
  1309. }
  1310. trace->syscalls.table = nsyscalls;
  1311. trace->syscalls.max = id;
  1312. }
  1313. sc = trace->syscalls.table + id;
  1314. sc->name = name;
  1315. sc->fmt = syscall_fmt__find(sc->name);
  1316. snprintf(tp_name, sizeof(tp_name), "sys_enter_%s", sc->name);
  1317. sc->tp_format = trace_event__tp_format("syscalls", tp_name);
  1318. if (IS_ERR(sc->tp_format) && sc->fmt && sc->fmt->alias) {
  1319. snprintf(tp_name, sizeof(tp_name), "sys_enter_%s", sc->fmt->alias);
  1320. sc->tp_format = trace_event__tp_format("syscalls", tp_name);
  1321. }
  1322. if (IS_ERR(sc->tp_format))
  1323. return -1;
  1324. sc->args = sc->tp_format->format.fields;
  1325. sc->nr_args = sc->tp_format->format.nr_fields;
  1326. /*
  1327. * We need to check and discard the first variable '__syscall_nr'
  1328. * or 'nr' that mean the syscall number. It is needless here.
  1329. * So drop '__syscall_nr' or 'nr' field but does not exist on older kernels.
  1330. */
  1331. if (sc->args && (!strcmp(sc->args->name, "__syscall_nr") || !strcmp(sc->args->name, "nr"))) {
  1332. sc->args = sc->args->next;
  1333. --sc->nr_args;
  1334. }
  1335. sc->is_exit = !strcmp(name, "exit_group") || !strcmp(name, "exit");
  1336. return syscall__set_arg_fmts(sc);
  1337. }
  1338. static int trace__validate_ev_qualifier(struct trace *trace)
  1339. {
  1340. int err = 0, i;
  1341. struct str_node *pos;
  1342. trace->ev_qualifier_ids.nr = strlist__nr_entries(trace->ev_qualifier);
  1343. trace->ev_qualifier_ids.entries = malloc(trace->ev_qualifier_ids.nr *
  1344. sizeof(trace->ev_qualifier_ids.entries[0]));
  1345. if (trace->ev_qualifier_ids.entries == NULL) {
  1346. fputs("Error:\tNot enough memory for allocating events qualifier ids\n",
  1347. trace->output);
  1348. err = -EINVAL;
  1349. goto out;
  1350. }
  1351. i = 0;
  1352. strlist__for_each(pos, trace->ev_qualifier) {
  1353. const char *sc = pos->s;
  1354. int id = syscalltbl__id(trace->sctbl, sc);
  1355. if (id < 0) {
  1356. if (err == 0) {
  1357. fputs("Error:\tInvalid syscall ", trace->output);
  1358. err = -EINVAL;
  1359. } else {
  1360. fputs(", ", trace->output);
  1361. }
  1362. fputs(sc, trace->output);
  1363. }
  1364. trace->ev_qualifier_ids.entries[i++] = id;
  1365. }
  1366. if (err < 0) {
  1367. fputs("\nHint:\ttry 'perf list syscalls:sys_enter_*'"
  1368. "\nHint:\tand: 'man syscalls'\n", trace->output);
  1369. zfree(&trace->ev_qualifier_ids.entries);
  1370. trace->ev_qualifier_ids.nr = 0;
  1371. }
  1372. out:
  1373. return err;
  1374. }
  1375. /*
  1376. * args is to be interpreted as a series of longs but we need to handle
  1377. * 8-byte unaligned accesses. args points to raw_data within the event
  1378. * and raw_data is guaranteed to be 8-byte unaligned because it is
  1379. * preceded by raw_size which is a u32. So we need to copy args to a temp
  1380. * variable to read it. Most notably this avoids extended load instructions
  1381. * on unaligned addresses
  1382. */
  1383. static size_t syscall__scnprintf_args(struct syscall *sc, char *bf, size_t size,
  1384. unsigned char *args, struct trace *trace,
  1385. struct thread *thread)
  1386. {
  1387. size_t printed = 0;
  1388. unsigned char *p;
  1389. unsigned long val;
  1390. if (sc->args != NULL) {
  1391. struct format_field *field;
  1392. u8 bit = 1;
  1393. struct syscall_arg arg = {
  1394. .idx = 0,
  1395. .mask = 0,
  1396. .trace = trace,
  1397. .thread = thread,
  1398. };
  1399. for (field = sc->args; field;
  1400. field = field->next, ++arg.idx, bit <<= 1) {
  1401. if (arg.mask & bit)
  1402. continue;
  1403. /* special care for unaligned accesses */
  1404. p = args + sizeof(unsigned long) * arg.idx;
  1405. memcpy(&val, p, sizeof(val));
  1406. /*
  1407. * Suppress this argument if its value is zero and
  1408. * and we don't have a string associated in an
  1409. * strarray for it.
  1410. */
  1411. if (val == 0 &&
  1412. !(sc->arg_scnprintf &&
  1413. sc->arg_scnprintf[arg.idx] == SCA_STRARRAY &&
  1414. sc->arg_parm[arg.idx]))
  1415. continue;
  1416. printed += scnprintf(bf + printed, size - printed,
  1417. "%s%s: ", printed ? ", " : "", field->name);
  1418. if (sc->arg_scnprintf && sc->arg_scnprintf[arg.idx]) {
  1419. arg.val = val;
  1420. if (sc->arg_parm)
  1421. arg.parm = sc->arg_parm[arg.idx];
  1422. printed += sc->arg_scnprintf[arg.idx](bf + printed,
  1423. size - printed, &arg);
  1424. } else {
  1425. printed += scnprintf(bf + printed, size - printed,
  1426. "%ld", val);
  1427. }
  1428. }
  1429. } else {
  1430. int i = 0;
  1431. while (i < 6) {
  1432. /* special care for unaligned accesses */
  1433. p = args + sizeof(unsigned long) * i;
  1434. memcpy(&val, p, sizeof(val));
  1435. printed += scnprintf(bf + printed, size - printed,
  1436. "%sarg%d: %ld",
  1437. printed ? ", " : "", i, val);
  1438. ++i;
  1439. }
  1440. }
  1441. return printed;
  1442. }
  1443. typedef int (*tracepoint_handler)(struct trace *trace, struct perf_evsel *evsel,
  1444. union perf_event *event,
  1445. struct perf_sample *sample);
  1446. static struct syscall *trace__syscall_info(struct trace *trace,
  1447. struct perf_evsel *evsel, int id)
  1448. {
  1449. if (id < 0) {
  1450. /*
  1451. * XXX: Noticed on x86_64, reproduced as far back as 3.0.36, haven't tried
  1452. * before that, leaving at a higher verbosity level till that is
  1453. * explained. Reproduced with plain ftrace with:
  1454. *
  1455. * echo 1 > /t/events/raw_syscalls/sys_exit/enable
  1456. * grep "NR -1 " /t/trace_pipe
  1457. *
  1458. * After generating some load on the machine.
  1459. */
  1460. if (verbose > 1) {
  1461. static u64 n;
  1462. fprintf(trace->output, "Invalid syscall %d id, skipping (%s, %" PRIu64 ") ...\n",
  1463. id, perf_evsel__name(evsel), ++n);
  1464. }
  1465. return NULL;
  1466. }
  1467. if ((id > trace->syscalls.max || trace->syscalls.table[id].name == NULL) &&
  1468. trace__read_syscall_info(trace, id))
  1469. goto out_cant_read;
  1470. if ((id > trace->syscalls.max || trace->syscalls.table[id].name == NULL))
  1471. goto out_cant_read;
  1472. return &trace->syscalls.table[id];
  1473. out_cant_read:
  1474. if (verbose) {
  1475. fprintf(trace->output, "Problems reading syscall %d", id);
  1476. if (id <= trace->syscalls.max && trace->syscalls.table[id].name != NULL)
  1477. fprintf(trace->output, "(%s)", trace->syscalls.table[id].name);
  1478. fputs(" information\n", trace->output);
  1479. }
  1480. return NULL;
  1481. }
  1482. static void thread__update_stats(struct thread_trace *ttrace,
  1483. int id, struct perf_sample *sample)
  1484. {
  1485. struct int_node *inode;
  1486. struct stats *stats;
  1487. u64 duration = 0;
  1488. inode = intlist__findnew(ttrace->syscall_stats, id);
  1489. if (inode == NULL)
  1490. return;
  1491. stats = inode->priv;
  1492. if (stats == NULL) {
  1493. stats = malloc(sizeof(struct stats));
  1494. if (stats == NULL)
  1495. return;
  1496. init_stats(stats);
  1497. inode->priv = stats;
  1498. }
  1499. if (ttrace->entry_time && sample->time > ttrace->entry_time)
  1500. duration = sample->time - ttrace->entry_time;
  1501. update_stats(stats, duration);
  1502. }
  1503. static int trace__printf_interrupted_entry(struct trace *trace, struct perf_sample *sample)
  1504. {
  1505. struct thread_trace *ttrace;
  1506. u64 duration;
  1507. size_t printed;
  1508. if (trace->current == NULL)
  1509. return 0;
  1510. ttrace = thread__priv(trace->current);
  1511. if (!ttrace->entry_pending)
  1512. return 0;
  1513. duration = sample->time - ttrace->entry_time;
  1514. printed = trace__fprintf_entry_head(trace, trace->current, duration, sample->time, trace->output);
  1515. printed += fprintf(trace->output, "%-70s) ...\n", ttrace->entry_str);
  1516. ttrace->entry_pending = false;
  1517. return printed;
  1518. }
  1519. static int trace__sys_enter(struct trace *trace, struct perf_evsel *evsel,
  1520. union perf_event *event __maybe_unused,
  1521. struct perf_sample *sample)
  1522. {
  1523. char *msg;
  1524. void *args;
  1525. size_t printed = 0;
  1526. struct thread *thread;
  1527. int id = perf_evsel__sc_tp_uint(evsel, id, sample), err = -1;
  1528. struct syscall *sc = trace__syscall_info(trace, evsel, id);
  1529. struct thread_trace *ttrace;
  1530. if (sc == NULL)
  1531. return -1;
  1532. thread = machine__findnew_thread(trace->host, sample->pid, sample->tid);
  1533. ttrace = thread__trace(thread, trace->output);
  1534. if (ttrace == NULL)
  1535. goto out_put;
  1536. args = perf_evsel__sc_tp_ptr(evsel, args, sample);
  1537. if (ttrace->entry_str == NULL) {
  1538. ttrace->entry_str = malloc(trace__entry_str_size);
  1539. if (!ttrace->entry_str)
  1540. goto out_put;
  1541. }
  1542. if (!(trace->duration_filter || trace->summary_only || trace->min_stack))
  1543. trace__printf_interrupted_entry(trace, sample);
  1544. ttrace->entry_time = sample->time;
  1545. msg = ttrace->entry_str;
  1546. printed += scnprintf(msg + printed, trace__entry_str_size - printed, "%s(", sc->name);
  1547. printed += syscall__scnprintf_args(sc, msg + printed, trace__entry_str_size - printed,
  1548. args, trace, thread);
  1549. if (sc->is_exit) {
  1550. if (!(trace->duration_filter || trace->summary_only || trace->min_stack)) {
  1551. trace__fprintf_entry_head(trace, thread, 1, sample->time, trace->output);
  1552. fprintf(trace->output, "%-70s\n", ttrace->entry_str);
  1553. }
  1554. } else {
  1555. ttrace->entry_pending = true;
  1556. /* See trace__vfs_getname & trace__sys_exit */
  1557. ttrace->filename.pending_open = false;
  1558. }
  1559. if (trace->current != thread) {
  1560. thread__put(trace->current);
  1561. trace->current = thread__get(thread);
  1562. }
  1563. err = 0;
  1564. out_put:
  1565. thread__put(thread);
  1566. return err;
  1567. }
  1568. static int trace__resolve_callchain(struct trace *trace, struct perf_evsel *evsel,
  1569. struct perf_sample *sample,
  1570. struct callchain_cursor *cursor)
  1571. {
  1572. struct addr_location al;
  1573. if (machine__resolve(trace->host, &al, sample) < 0 ||
  1574. thread__resolve_callchain(al.thread, cursor, evsel, sample, NULL, NULL, trace->max_stack))
  1575. return -1;
  1576. return 0;
  1577. }
  1578. static int trace__fprintf_callchain(struct trace *trace, struct perf_sample *sample)
  1579. {
  1580. /* TODO: user-configurable print_opts */
  1581. const unsigned int print_opts = EVSEL__PRINT_SYM |
  1582. EVSEL__PRINT_DSO |
  1583. EVSEL__PRINT_UNKNOWN_AS_ADDR;
  1584. return sample__fprintf_callchain(sample, 38, print_opts, &callchain_cursor, trace->output);
  1585. }
  1586. static int trace__sys_exit(struct trace *trace, struct perf_evsel *evsel,
  1587. union perf_event *event __maybe_unused,
  1588. struct perf_sample *sample)
  1589. {
  1590. long ret;
  1591. u64 duration = 0;
  1592. struct thread *thread;
  1593. int id = perf_evsel__sc_tp_uint(evsel, id, sample), err = -1, callchain_ret = 0;
  1594. struct syscall *sc = trace__syscall_info(trace, evsel, id);
  1595. struct thread_trace *ttrace;
  1596. if (sc == NULL)
  1597. return -1;
  1598. thread = machine__findnew_thread(trace->host, sample->pid, sample->tid);
  1599. ttrace = thread__trace(thread, trace->output);
  1600. if (ttrace == NULL)
  1601. goto out_put;
  1602. if (trace->summary)
  1603. thread__update_stats(ttrace, id, sample);
  1604. ret = perf_evsel__sc_tp_uint(evsel, ret, sample);
  1605. if (id == trace->open_id && ret >= 0 && ttrace->filename.pending_open) {
  1606. trace__set_fd_pathname(thread, ret, ttrace->filename.name);
  1607. ttrace->filename.pending_open = false;
  1608. ++trace->stats.vfs_getname;
  1609. }
  1610. ttrace->exit_time = sample->time;
  1611. if (ttrace->entry_time) {
  1612. duration = sample->time - ttrace->entry_time;
  1613. if (trace__filter_duration(trace, duration))
  1614. goto out;
  1615. } else if (trace->duration_filter)
  1616. goto out;
  1617. if (sample->callchain) {
  1618. callchain_ret = trace__resolve_callchain(trace, evsel, sample, &callchain_cursor);
  1619. if (callchain_ret == 0) {
  1620. if (callchain_cursor.nr < trace->min_stack)
  1621. goto out;
  1622. callchain_ret = 1;
  1623. }
  1624. }
  1625. if (trace->summary_only)
  1626. goto out;
  1627. trace__fprintf_entry_head(trace, thread, duration, sample->time, trace->output);
  1628. if (ttrace->entry_pending) {
  1629. fprintf(trace->output, "%-70s", ttrace->entry_str);
  1630. } else {
  1631. fprintf(trace->output, " ... [");
  1632. color_fprintf(trace->output, PERF_COLOR_YELLOW, "continued");
  1633. fprintf(trace->output, "]: %s()", sc->name);
  1634. }
  1635. if (sc->fmt == NULL) {
  1636. signed_print:
  1637. fprintf(trace->output, ") = %ld", ret);
  1638. } else if (ret < 0 && (sc->fmt->errmsg || sc->fmt->errpid)) {
  1639. char bf[STRERR_BUFSIZE];
  1640. const char *emsg = strerror_r(-ret, bf, sizeof(bf)),
  1641. *e = audit_errno_to_name(-ret);
  1642. fprintf(trace->output, ") = -1 %s %s", e, emsg);
  1643. } else if (ret == 0 && sc->fmt->timeout)
  1644. fprintf(trace->output, ") = 0 Timeout");
  1645. else if (sc->fmt->hexret)
  1646. fprintf(trace->output, ") = %#lx", ret);
  1647. else if (sc->fmt->errpid) {
  1648. struct thread *child = machine__find_thread(trace->host, ret, ret);
  1649. if (child != NULL) {
  1650. fprintf(trace->output, ") = %ld", ret);
  1651. if (child->comm_set)
  1652. fprintf(trace->output, " (%s)", thread__comm_str(child));
  1653. thread__put(child);
  1654. }
  1655. } else
  1656. goto signed_print;
  1657. fputc('\n', trace->output);
  1658. if (callchain_ret > 0)
  1659. trace__fprintf_callchain(trace, sample);
  1660. else if (callchain_ret < 0)
  1661. pr_err("Problem processing %s callchain, skipping...\n", perf_evsel__name(evsel));
  1662. out:
  1663. ttrace->entry_pending = false;
  1664. err = 0;
  1665. out_put:
  1666. thread__put(thread);
  1667. return err;
  1668. }
  1669. static int trace__vfs_getname(struct trace *trace, struct perf_evsel *evsel,
  1670. union perf_event *event __maybe_unused,
  1671. struct perf_sample *sample)
  1672. {
  1673. struct thread *thread = machine__findnew_thread(trace->host, sample->pid, sample->tid);
  1674. struct thread_trace *ttrace;
  1675. size_t filename_len, entry_str_len, to_move;
  1676. ssize_t remaining_space;
  1677. char *pos;
  1678. const char *filename = perf_evsel__rawptr(evsel, sample, "pathname");
  1679. if (!thread)
  1680. goto out;
  1681. ttrace = thread__priv(thread);
  1682. if (!ttrace)
  1683. goto out;
  1684. filename_len = strlen(filename);
  1685. if (ttrace->filename.namelen < filename_len) {
  1686. char *f = realloc(ttrace->filename.name, filename_len + 1);
  1687. if (f == NULL)
  1688. goto out;
  1689. ttrace->filename.namelen = filename_len;
  1690. ttrace->filename.name = f;
  1691. }
  1692. strcpy(ttrace->filename.name, filename);
  1693. ttrace->filename.pending_open = true;
  1694. if (!ttrace->filename.ptr)
  1695. goto out;
  1696. entry_str_len = strlen(ttrace->entry_str);
  1697. remaining_space = trace__entry_str_size - entry_str_len - 1; /* \0 */
  1698. if (remaining_space <= 0)
  1699. goto out;
  1700. if (filename_len > (size_t)remaining_space) {
  1701. filename += filename_len - remaining_space;
  1702. filename_len = remaining_space;
  1703. }
  1704. to_move = entry_str_len - ttrace->filename.entry_str_pos + 1; /* \0 */
  1705. pos = ttrace->entry_str + ttrace->filename.entry_str_pos;
  1706. memmove(pos + filename_len, pos, to_move);
  1707. memcpy(pos, filename, filename_len);
  1708. ttrace->filename.ptr = 0;
  1709. ttrace->filename.entry_str_pos = 0;
  1710. out:
  1711. return 0;
  1712. }
  1713. static int trace__sched_stat_runtime(struct trace *trace, struct perf_evsel *evsel,
  1714. union perf_event *event __maybe_unused,
  1715. struct perf_sample *sample)
  1716. {
  1717. u64 runtime = perf_evsel__intval(evsel, sample, "runtime");
  1718. double runtime_ms = (double)runtime / NSEC_PER_MSEC;
  1719. struct thread *thread = machine__findnew_thread(trace->host,
  1720. sample->pid,
  1721. sample->tid);
  1722. struct thread_trace *ttrace = thread__trace(thread, trace->output);
  1723. if (ttrace == NULL)
  1724. goto out_dump;
  1725. ttrace->runtime_ms += runtime_ms;
  1726. trace->runtime_ms += runtime_ms;
  1727. thread__put(thread);
  1728. return 0;
  1729. out_dump:
  1730. fprintf(trace->output, "%s: comm=%s,pid=%u,runtime=%" PRIu64 ",vruntime=%" PRIu64 ")\n",
  1731. evsel->name,
  1732. perf_evsel__strval(evsel, sample, "comm"),
  1733. (pid_t)perf_evsel__intval(evsel, sample, "pid"),
  1734. runtime,
  1735. perf_evsel__intval(evsel, sample, "vruntime"));
  1736. thread__put(thread);
  1737. return 0;
  1738. }
  1739. static void bpf_output__printer(enum binary_printer_ops op,
  1740. unsigned int val, void *extra)
  1741. {
  1742. FILE *output = extra;
  1743. unsigned char ch = (unsigned char)val;
  1744. switch (op) {
  1745. case BINARY_PRINT_CHAR_DATA:
  1746. fprintf(output, "%c", isprint(ch) ? ch : '.');
  1747. break;
  1748. case BINARY_PRINT_DATA_BEGIN:
  1749. case BINARY_PRINT_LINE_BEGIN:
  1750. case BINARY_PRINT_ADDR:
  1751. case BINARY_PRINT_NUM_DATA:
  1752. case BINARY_PRINT_NUM_PAD:
  1753. case BINARY_PRINT_SEP:
  1754. case BINARY_PRINT_CHAR_PAD:
  1755. case BINARY_PRINT_LINE_END:
  1756. case BINARY_PRINT_DATA_END:
  1757. default:
  1758. break;
  1759. }
  1760. }
  1761. static void bpf_output__fprintf(struct trace *trace,
  1762. struct perf_sample *sample)
  1763. {
  1764. print_binary(sample->raw_data, sample->raw_size, 8,
  1765. bpf_output__printer, trace->output);
  1766. }
  1767. static int trace__event_handler(struct trace *trace, struct perf_evsel *evsel,
  1768. union perf_event *event __maybe_unused,
  1769. struct perf_sample *sample)
  1770. {
  1771. int callchain_ret = 0;
  1772. if (sample->callchain) {
  1773. callchain_ret = trace__resolve_callchain(trace, evsel, sample, &callchain_cursor);
  1774. if (callchain_ret == 0) {
  1775. if (callchain_cursor.nr < trace->min_stack)
  1776. goto out;
  1777. callchain_ret = 1;
  1778. }
  1779. }
  1780. trace__printf_interrupted_entry(trace, sample);
  1781. trace__fprintf_tstamp(trace, sample->time, trace->output);
  1782. if (trace->trace_syscalls)
  1783. fprintf(trace->output, "( ): ");
  1784. fprintf(trace->output, "%s:", evsel->name);
  1785. if (perf_evsel__is_bpf_output(evsel)) {
  1786. bpf_output__fprintf(trace, sample);
  1787. } else if (evsel->tp_format) {
  1788. event_format__fprintf(evsel->tp_format, sample->cpu,
  1789. sample->raw_data, sample->raw_size,
  1790. trace->output);
  1791. }
  1792. fprintf(trace->output, ")\n");
  1793. if (callchain_ret > 0)
  1794. trace__fprintf_callchain(trace, sample);
  1795. else if (callchain_ret < 0)
  1796. pr_err("Problem processing %s callchain, skipping...\n", perf_evsel__name(evsel));
  1797. out:
  1798. return 0;
  1799. }
  1800. static void print_location(FILE *f, struct perf_sample *sample,
  1801. struct addr_location *al,
  1802. bool print_dso, bool print_sym)
  1803. {
  1804. if ((verbose || print_dso) && al->map)
  1805. fprintf(f, "%s@", al->map->dso->long_name);
  1806. if ((verbose || print_sym) && al->sym)
  1807. fprintf(f, "%s+0x%" PRIx64, al->sym->name,
  1808. al->addr - al->sym->start);
  1809. else if (al->map)
  1810. fprintf(f, "0x%" PRIx64, al->addr);
  1811. else
  1812. fprintf(f, "0x%" PRIx64, sample->addr);
  1813. }
  1814. static int trace__pgfault(struct trace *trace,
  1815. struct perf_evsel *evsel,
  1816. union perf_event *event __maybe_unused,
  1817. struct perf_sample *sample)
  1818. {
  1819. struct thread *thread;
  1820. struct addr_location al;
  1821. char map_type = 'd';
  1822. struct thread_trace *ttrace;
  1823. int err = -1;
  1824. int callchain_ret = 0;
  1825. thread = machine__findnew_thread(trace->host, sample->pid, sample->tid);
  1826. if (sample->callchain) {
  1827. callchain_ret = trace__resolve_callchain(trace, evsel, sample, &callchain_cursor);
  1828. if (callchain_ret == 0) {
  1829. if (callchain_cursor.nr < trace->min_stack)
  1830. goto out_put;
  1831. callchain_ret = 1;
  1832. }
  1833. }
  1834. ttrace = thread__trace(thread, trace->output);
  1835. if (ttrace == NULL)
  1836. goto out_put;
  1837. if (evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MAJ)
  1838. ttrace->pfmaj++;
  1839. else
  1840. ttrace->pfmin++;
  1841. if (trace->summary_only)
  1842. goto out;
  1843. thread__find_addr_location(thread, sample->cpumode, MAP__FUNCTION,
  1844. sample->ip, &al);
  1845. trace__fprintf_entry_head(trace, thread, 0, sample->time, trace->output);
  1846. fprintf(trace->output, "%sfault [",
  1847. evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MAJ ?
  1848. "maj" : "min");
  1849. print_location(trace->output, sample, &al, false, true);
  1850. fprintf(trace->output, "] => ");
  1851. thread__find_addr_location(thread, sample->cpumode, MAP__VARIABLE,
  1852. sample->addr, &al);
  1853. if (!al.map) {
  1854. thread__find_addr_location(thread, sample->cpumode,
  1855. MAP__FUNCTION, sample->addr, &al);
  1856. if (al.map)
  1857. map_type = 'x';
  1858. else
  1859. map_type = '?';
  1860. }
  1861. print_location(trace->output, sample, &al, true, false);
  1862. fprintf(trace->output, " (%c%c)\n", map_type, al.level);
  1863. if (callchain_ret > 0)
  1864. trace__fprintf_callchain(trace, sample);
  1865. else if (callchain_ret < 0)
  1866. pr_err("Problem processing %s callchain, skipping...\n", perf_evsel__name(evsel));
  1867. out:
  1868. err = 0;
  1869. out_put:
  1870. thread__put(thread);
  1871. return err;
  1872. }
  1873. static bool skip_sample(struct trace *trace, struct perf_sample *sample)
  1874. {
  1875. if ((trace->pid_list && intlist__find(trace->pid_list, sample->pid)) ||
  1876. (trace->tid_list && intlist__find(trace->tid_list, sample->tid)))
  1877. return false;
  1878. if (trace->pid_list || trace->tid_list)
  1879. return true;
  1880. return false;
  1881. }
  1882. static void trace__set_base_time(struct trace *trace,
  1883. struct perf_evsel *evsel,
  1884. struct perf_sample *sample)
  1885. {
  1886. /*
  1887. * BPF events were not setting PERF_SAMPLE_TIME, so be more robust
  1888. * and don't use sample->time unconditionally, we may end up having
  1889. * some other event in the future without PERF_SAMPLE_TIME for good
  1890. * reason, i.e. we may not be interested in its timestamps, just in
  1891. * it taking place, picking some piece of information when it
  1892. * appears in our event stream (vfs_getname comes to mind).
  1893. */
  1894. if (trace->base_time == 0 && !trace->full_time &&
  1895. (evsel->attr.sample_type & PERF_SAMPLE_TIME))
  1896. trace->base_time = sample->time;
  1897. }
  1898. static int trace__process_sample(struct perf_tool *tool,
  1899. union perf_event *event,
  1900. struct perf_sample *sample,
  1901. struct perf_evsel *evsel,
  1902. struct machine *machine __maybe_unused)
  1903. {
  1904. struct trace *trace = container_of(tool, struct trace, tool);
  1905. int err = 0;
  1906. tracepoint_handler handler = evsel->handler;
  1907. if (skip_sample(trace, sample))
  1908. return 0;
  1909. trace__set_base_time(trace, evsel, sample);
  1910. if (handler) {
  1911. ++trace->nr_events;
  1912. handler(trace, evsel, event, sample);
  1913. }
  1914. return err;
  1915. }
  1916. static int parse_target_str(struct trace *trace)
  1917. {
  1918. if (trace->opts.target.pid) {
  1919. trace->pid_list = intlist__new(trace->opts.target.pid);
  1920. if (trace->pid_list == NULL) {
  1921. pr_err("Error parsing process id string\n");
  1922. return -EINVAL;
  1923. }
  1924. }
  1925. if (trace->opts.target.tid) {
  1926. trace->tid_list = intlist__new(trace->opts.target.tid);
  1927. if (trace->tid_list == NULL) {
  1928. pr_err("Error parsing thread id string\n");
  1929. return -EINVAL;
  1930. }
  1931. }
  1932. return 0;
  1933. }
  1934. static int trace__record(struct trace *trace, int argc, const char **argv)
  1935. {
  1936. unsigned int rec_argc, i, j;
  1937. const char **rec_argv;
  1938. const char * const record_args[] = {
  1939. "record",
  1940. "-R",
  1941. "-m", "1024",
  1942. "-c", "1",
  1943. };
  1944. const char * const sc_args[] = { "-e", };
  1945. unsigned int sc_args_nr = ARRAY_SIZE(sc_args);
  1946. const char * const majpf_args[] = { "-e", "major-faults" };
  1947. unsigned int majpf_args_nr = ARRAY_SIZE(majpf_args);
  1948. const char * const minpf_args[] = { "-e", "minor-faults" };
  1949. unsigned int minpf_args_nr = ARRAY_SIZE(minpf_args);
  1950. /* +1 is for the event string below */
  1951. rec_argc = ARRAY_SIZE(record_args) + sc_args_nr + 1 +
  1952. majpf_args_nr + minpf_args_nr + argc;
  1953. rec_argv = calloc(rec_argc + 1, sizeof(char *));
  1954. if (rec_argv == NULL)
  1955. return -ENOMEM;
  1956. j = 0;
  1957. for (i = 0; i < ARRAY_SIZE(record_args); i++)
  1958. rec_argv[j++] = record_args[i];
  1959. if (trace->trace_syscalls) {
  1960. for (i = 0; i < sc_args_nr; i++)
  1961. rec_argv[j++] = sc_args[i];
  1962. /* event string may be different for older kernels - e.g., RHEL6 */
  1963. if (is_valid_tracepoint("raw_syscalls:sys_enter"))
  1964. rec_argv[j++] = "raw_syscalls:sys_enter,raw_syscalls:sys_exit";
  1965. else if (is_valid_tracepoint("syscalls:sys_enter"))
  1966. rec_argv[j++] = "syscalls:sys_enter,syscalls:sys_exit";
  1967. else {
  1968. pr_err("Neither raw_syscalls nor syscalls events exist.\n");
  1969. return -1;
  1970. }
  1971. }
  1972. if (trace->trace_pgfaults & TRACE_PFMAJ)
  1973. for (i = 0; i < majpf_args_nr; i++)
  1974. rec_argv[j++] = majpf_args[i];
  1975. if (trace->trace_pgfaults & TRACE_PFMIN)
  1976. for (i = 0; i < minpf_args_nr; i++)
  1977. rec_argv[j++] = minpf_args[i];
  1978. for (i = 0; i < (unsigned int)argc; i++)
  1979. rec_argv[j++] = argv[i];
  1980. return cmd_record(j, rec_argv, NULL);
  1981. }
  1982. static size_t trace__fprintf_thread_summary(struct trace *trace, FILE *fp);
  1983. static bool perf_evlist__add_vfs_getname(struct perf_evlist *evlist)
  1984. {
  1985. struct perf_evsel *evsel = perf_evsel__newtp("probe", "vfs_getname");
  1986. if (IS_ERR(evsel))
  1987. return false;
  1988. if (perf_evsel__field(evsel, "pathname") == NULL) {
  1989. perf_evsel__delete(evsel);
  1990. return false;
  1991. }
  1992. evsel->handler = trace__vfs_getname;
  1993. perf_evlist__add(evlist, evsel);
  1994. return true;
  1995. }
  1996. static struct perf_evsel *perf_evsel__new_pgfault(u64 config)
  1997. {
  1998. struct perf_evsel *evsel;
  1999. struct perf_event_attr attr = {
  2000. .type = PERF_TYPE_SOFTWARE,
  2001. .mmap_data = 1,
  2002. };
  2003. attr.config = config;
  2004. attr.sample_period = 1;
  2005. event_attr_init(&attr);
  2006. evsel = perf_evsel__new(&attr);
  2007. if (evsel)
  2008. evsel->handler = trace__pgfault;
  2009. return evsel;
  2010. }
  2011. static void trace__handle_event(struct trace *trace, union perf_event *event, struct perf_sample *sample)
  2012. {
  2013. const u32 type = event->header.type;
  2014. struct perf_evsel *evsel;
  2015. if (type != PERF_RECORD_SAMPLE) {
  2016. trace__process_event(trace, trace->host, event, sample);
  2017. return;
  2018. }
  2019. evsel = perf_evlist__id2evsel(trace->evlist, sample->id);
  2020. if (evsel == NULL) {
  2021. fprintf(trace->output, "Unknown tp ID %" PRIu64 ", skipping...\n", sample->id);
  2022. return;
  2023. }
  2024. trace__set_base_time(trace, evsel, sample);
  2025. if (evsel->attr.type == PERF_TYPE_TRACEPOINT &&
  2026. sample->raw_data == NULL) {
  2027. fprintf(trace->output, "%s sample with no payload for tid: %d, cpu %d, raw_size=%d, skipping...\n",
  2028. perf_evsel__name(evsel), sample->tid,
  2029. sample->cpu, sample->raw_size);
  2030. } else {
  2031. tracepoint_handler handler = evsel->handler;
  2032. handler(trace, evsel, event, sample);
  2033. }
  2034. }
  2035. static int trace__add_syscall_newtp(struct trace *trace)
  2036. {
  2037. int ret = -1;
  2038. struct perf_evlist *evlist = trace->evlist;
  2039. struct perf_evsel *sys_enter, *sys_exit;
  2040. sys_enter = perf_evsel__syscall_newtp("sys_enter", trace__sys_enter);
  2041. if (sys_enter == NULL)
  2042. goto out;
  2043. if (perf_evsel__init_sc_tp_ptr_field(sys_enter, args))
  2044. goto out_delete_sys_enter;
  2045. sys_exit = perf_evsel__syscall_newtp("sys_exit", trace__sys_exit);
  2046. if (sys_exit == NULL)
  2047. goto out_delete_sys_enter;
  2048. if (perf_evsel__init_sc_tp_uint_field(sys_exit, ret))
  2049. goto out_delete_sys_exit;
  2050. perf_evlist__add(evlist, sys_enter);
  2051. perf_evlist__add(evlist, sys_exit);
  2052. if (callchain_param.enabled && !trace->kernel_syscallchains) {
  2053. /*
  2054. * We're interested only in the user space callchain
  2055. * leading to the syscall, allow overriding that for
  2056. * debugging reasons using --kernel_syscall_callchains
  2057. */
  2058. sys_exit->attr.exclude_callchain_kernel = 1;
  2059. }
  2060. trace->syscalls.events.sys_enter = sys_enter;
  2061. trace->syscalls.events.sys_exit = sys_exit;
  2062. ret = 0;
  2063. out:
  2064. return ret;
  2065. out_delete_sys_exit:
  2066. perf_evsel__delete_priv(sys_exit);
  2067. out_delete_sys_enter:
  2068. perf_evsel__delete_priv(sys_enter);
  2069. goto out;
  2070. }
  2071. static int trace__set_ev_qualifier_filter(struct trace *trace)
  2072. {
  2073. int err = -1;
  2074. char *filter = asprintf_expr_inout_ints("id", !trace->not_ev_qualifier,
  2075. trace->ev_qualifier_ids.nr,
  2076. trace->ev_qualifier_ids.entries);
  2077. if (filter == NULL)
  2078. goto out_enomem;
  2079. if (!perf_evsel__append_filter(trace->syscalls.events.sys_enter, "&&", filter))
  2080. err = perf_evsel__append_filter(trace->syscalls.events.sys_exit, "&&", filter);
  2081. free(filter);
  2082. out:
  2083. return err;
  2084. out_enomem:
  2085. errno = ENOMEM;
  2086. goto out;
  2087. }
  2088. static int trace__run(struct trace *trace, int argc, const char **argv)
  2089. {
  2090. struct perf_evlist *evlist = trace->evlist;
  2091. struct perf_evsel *evsel, *pgfault_maj = NULL, *pgfault_min = NULL;
  2092. int err = -1, i;
  2093. unsigned long before;
  2094. const bool forks = argc > 0;
  2095. bool draining = false;
  2096. trace->live = true;
  2097. if (trace->trace_syscalls && trace__add_syscall_newtp(trace))
  2098. goto out_error_raw_syscalls;
  2099. if (trace->trace_syscalls)
  2100. trace->vfs_getname = perf_evlist__add_vfs_getname(evlist);
  2101. if ((trace->trace_pgfaults & TRACE_PFMAJ)) {
  2102. pgfault_maj = perf_evsel__new_pgfault(PERF_COUNT_SW_PAGE_FAULTS_MAJ);
  2103. if (pgfault_maj == NULL)
  2104. goto out_error_mem;
  2105. perf_evlist__add(evlist, pgfault_maj);
  2106. }
  2107. if ((trace->trace_pgfaults & TRACE_PFMIN)) {
  2108. pgfault_min = perf_evsel__new_pgfault(PERF_COUNT_SW_PAGE_FAULTS_MIN);
  2109. if (pgfault_min == NULL)
  2110. goto out_error_mem;
  2111. perf_evlist__add(evlist, pgfault_min);
  2112. }
  2113. if (trace->sched &&
  2114. perf_evlist__add_newtp(evlist, "sched", "sched_stat_runtime",
  2115. trace__sched_stat_runtime))
  2116. goto out_error_sched_stat_runtime;
  2117. err = perf_evlist__create_maps(evlist, &trace->opts.target);
  2118. if (err < 0) {
  2119. fprintf(trace->output, "Problems parsing the target to trace, check your options!\n");
  2120. goto out_delete_evlist;
  2121. }
  2122. err = trace__symbols_init(trace, evlist);
  2123. if (err < 0) {
  2124. fprintf(trace->output, "Problems initializing symbol libraries!\n");
  2125. goto out_delete_evlist;
  2126. }
  2127. perf_evlist__config(evlist, &trace->opts, NULL);
  2128. if (callchain_param.enabled) {
  2129. bool use_identifier = false;
  2130. if (trace->syscalls.events.sys_exit) {
  2131. perf_evsel__config_callchain(trace->syscalls.events.sys_exit,
  2132. &trace->opts, &callchain_param);
  2133. use_identifier = true;
  2134. }
  2135. if (pgfault_maj) {
  2136. perf_evsel__config_callchain(pgfault_maj, &trace->opts, &callchain_param);
  2137. use_identifier = true;
  2138. }
  2139. if (pgfault_min) {
  2140. perf_evsel__config_callchain(pgfault_min, &trace->opts, &callchain_param);
  2141. use_identifier = true;
  2142. }
  2143. if (use_identifier) {
  2144. /*
  2145. * Now we have evsels with different sample_ids, use
  2146. * PERF_SAMPLE_IDENTIFIER to map from sample to evsel
  2147. * from a fixed position in each ring buffer record.
  2148. *
  2149. * As of this the changeset introducing this comment, this
  2150. * isn't strictly needed, as the fields that can come before
  2151. * PERF_SAMPLE_ID are all used, but we'll probably disable
  2152. * some of those for things like copying the payload of
  2153. * pointer syscall arguments, and for vfs_getname we don't
  2154. * need PERF_SAMPLE_ADDR and PERF_SAMPLE_IP, so do this
  2155. * here as a warning we need to use PERF_SAMPLE_IDENTIFIER.
  2156. */
  2157. perf_evlist__set_sample_bit(evlist, IDENTIFIER);
  2158. perf_evlist__reset_sample_bit(evlist, ID);
  2159. }
  2160. }
  2161. signal(SIGCHLD, sig_handler);
  2162. signal(SIGINT, sig_handler);
  2163. if (forks) {
  2164. err = perf_evlist__prepare_workload(evlist, &trace->opts.target,
  2165. argv, false, NULL);
  2166. if (err < 0) {
  2167. fprintf(trace->output, "Couldn't run the workload!\n");
  2168. goto out_delete_evlist;
  2169. }
  2170. }
  2171. err = perf_evlist__open(evlist);
  2172. if (err < 0)
  2173. goto out_error_open;
  2174. err = bpf__apply_obj_config();
  2175. if (err) {
  2176. char errbuf[BUFSIZ];
  2177. bpf__strerror_apply_obj_config(err, errbuf, sizeof(errbuf));
  2178. pr_err("ERROR: Apply config to BPF failed: %s\n",
  2179. errbuf);
  2180. goto out_error_open;
  2181. }
  2182. /*
  2183. * Better not use !target__has_task() here because we need to cover the
  2184. * case where no threads were specified in the command line, but a
  2185. * workload was, and in that case we will fill in the thread_map when
  2186. * we fork the workload in perf_evlist__prepare_workload.
  2187. */
  2188. if (trace->filter_pids.nr > 0)
  2189. err = perf_evlist__set_filter_pids(evlist, trace->filter_pids.nr, trace->filter_pids.entries);
  2190. else if (thread_map__pid(evlist->threads, 0) == -1)
  2191. err = perf_evlist__set_filter_pid(evlist, getpid());
  2192. if (err < 0)
  2193. goto out_error_mem;
  2194. if (trace->ev_qualifier_ids.nr > 0) {
  2195. err = trace__set_ev_qualifier_filter(trace);
  2196. if (err < 0)
  2197. goto out_errno;
  2198. pr_debug("event qualifier tracepoint filter: %s\n",
  2199. trace->syscalls.events.sys_exit->filter);
  2200. }
  2201. err = perf_evlist__apply_filters(evlist, &evsel);
  2202. if (err < 0)
  2203. goto out_error_apply_filters;
  2204. err = perf_evlist__mmap(evlist, trace->opts.mmap_pages, false);
  2205. if (err < 0)
  2206. goto out_error_mmap;
  2207. if (!target__none(&trace->opts.target))
  2208. perf_evlist__enable(evlist);
  2209. if (forks)
  2210. perf_evlist__start_workload(evlist);
  2211. trace->multiple_threads = thread_map__pid(evlist->threads, 0) == -1 ||
  2212. evlist->threads->nr > 1 ||
  2213. perf_evlist__first(evlist)->attr.inherit;
  2214. again:
  2215. before = trace->nr_events;
  2216. for (i = 0; i < evlist->nr_mmaps; i++) {
  2217. union perf_event *event;
  2218. while ((event = perf_evlist__mmap_read(evlist, i)) != NULL) {
  2219. struct perf_sample sample;
  2220. ++trace->nr_events;
  2221. err = perf_evlist__parse_sample(evlist, event, &sample);
  2222. if (err) {
  2223. fprintf(trace->output, "Can't parse sample, err = %d, skipping...\n", err);
  2224. goto next_event;
  2225. }
  2226. trace__handle_event(trace, event, &sample);
  2227. next_event:
  2228. perf_evlist__mmap_consume(evlist, i);
  2229. if (interrupted)
  2230. goto out_disable;
  2231. if (done && !draining) {
  2232. perf_evlist__disable(evlist);
  2233. draining = true;
  2234. }
  2235. }
  2236. }
  2237. if (trace->nr_events == before) {
  2238. int timeout = done ? 100 : -1;
  2239. if (!draining && perf_evlist__poll(evlist, timeout) > 0) {
  2240. if (perf_evlist__filter_pollfd(evlist, POLLERR | POLLHUP) == 0)
  2241. draining = true;
  2242. goto again;
  2243. }
  2244. } else {
  2245. goto again;
  2246. }
  2247. out_disable:
  2248. thread__zput(trace->current);
  2249. perf_evlist__disable(evlist);
  2250. if (!err) {
  2251. if (trace->summary)
  2252. trace__fprintf_thread_summary(trace, trace->output);
  2253. if (trace->show_tool_stats) {
  2254. fprintf(trace->output, "Stats:\n "
  2255. " vfs_getname : %" PRIu64 "\n"
  2256. " proc_getname: %" PRIu64 "\n",
  2257. trace->stats.vfs_getname,
  2258. trace->stats.proc_getname);
  2259. }
  2260. }
  2261. out_delete_evlist:
  2262. perf_evlist__delete(evlist);
  2263. trace->evlist = NULL;
  2264. trace->live = false;
  2265. return err;
  2266. {
  2267. char errbuf[BUFSIZ];
  2268. out_error_sched_stat_runtime:
  2269. tracing_path__strerror_open_tp(errno, errbuf, sizeof(errbuf), "sched", "sched_stat_runtime");
  2270. goto out_error;
  2271. out_error_raw_syscalls:
  2272. tracing_path__strerror_open_tp(errno, errbuf, sizeof(errbuf), "raw_syscalls", "sys_(enter|exit)");
  2273. goto out_error;
  2274. out_error_mmap:
  2275. perf_evlist__strerror_mmap(evlist, errno, errbuf, sizeof(errbuf));
  2276. goto out_error;
  2277. out_error_open:
  2278. perf_evlist__strerror_open(evlist, errno, errbuf, sizeof(errbuf));
  2279. out_error:
  2280. fprintf(trace->output, "%s\n", errbuf);
  2281. goto out_delete_evlist;
  2282. out_error_apply_filters:
  2283. fprintf(trace->output,
  2284. "Failed to set filter \"%s\" on event %s with %d (%s)\n",
  2285. evsel->filter, perf_evsel__name(evsel), errno,
  2286. strerror_r(errno, errbuf, sizeof(errbuf)));
  2287. goto out_delete_evlist;
  2288. }
  2289. out_error_mem:
  2290. fprintf(trace->output, "Not enough memory to run!\n");
  2291. goto out_delete_evlist;
  2292. out_errno:
  2293. fprintf(trace->output, "errno=%d,%s\n", errno, strerror(errno));
  2294. goto out_delete_evlist;
  2295. }
  2296. static int trace__replay(struct trace *trace)
  2297. {
  2298. const struct perf_evsel_str_handler handlers[] = {
  2299. { "probe:vfs_getname", trace__vfs_getname, },
  2300. };
  2301. struct perf_data_file file = {
  2302. .path = input_name,
  2303. .mode = PERF_DATA_MODE_READ,
  2304. .force = trace->force,
  2305. };
  2306. struct perf_session *session;
  2307. struct perf_evsel *evsel;
  2308. int err = -1;
  2309. trace->tool.sample = trace__process_sample;
  2310. trace->tool.mmap = perf_event__process_mmap;
  2311. trace->tool.mmap2 = perf_event__process_mmap2;
  2312. trace->tool.comm = perf_event__process_comm;
  2313. trace->tool.exit = perf_event__process_exit;
  2314. trace->tool.fork = perf_event__process_fork;
  2315. trace->tool.attr = perf_event__process_attr;
  2316. trace->tool.tracing_data = perf_event__process_tracing_data;
  2317. trace->tool.build_id = perf_event__process_build_id;
  2318. trace->tool.ordered_events = true;
  2319. trace->tool.ordering_requires_timestamps = true;
  2320. /* add tid to output */
  2321. trace->multiple_threads = true;
  2322. session = perf_session__new(&file, false, &trace->tool);
  2323. if (session == NULL)
  2324. return -1;
  2325. if (symbol__init(&session->header.env) < 0)
  2326. goto out;
  2327. trace->host = &session->machines.host;
  2328. err = perf_session__set_tracepoints_handlers(session, handlers);
  2329. if (err)
  2330. goto out;
  2331. evsel = perf_evlist__find_tracepoint_by_name(session->evlist,
  2332. "raw_syscalls:sys_enter");
  2333. /* older kernels have syscalls tp versus raw_syscalls */
  2334. if (evsel == NULL)
  2335. evsel = perf_evlist__find_tracepoint_by_name(session->evlist,
  2336. "syscalls:sys_enter");
  2337. if (evsel &&
  2338. (perf_evsel__init_syscall_tp(evsel, trace__sys_enter) < 0 ||
  2339. perf_evsel__init_sc_tp_ptr_field(evsel, args))) {
  2340. pr_err("Error during initialize raw_syscalls:sys_enter event\n");
  2341. goto out;
  2342. }
  2343. evsel = perf_evlist__find_tracepoint_by_name(session->evlist,
  2344. "raw_syscalls:sys_exit");
  2345. if (evsel == NULL)
  2346. evsel = perf_evlist__find_tracepoint_by_name(session->evlist,
  2347. "syscalls:sys_exit");
  2348. if (evsel &&
  2349. (perf_evsel__init_syscall_tp(evsel, trace__sys_exit) < 0 ||
  2350. perf_evsel__init_sc_tp_uint_field(evsel, ret))) {
  2351. pr_err("Error during initialize raw_syscalls:sys_exit event\n");
  2352. goto out;
  2353. }
  2354. evlist__for_each(session->evlist, evsel) {
  2355. if (evsel->attr.type == PERF_TYPE_SOFTWARE &&
  2356. (evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MAJ ||
  2357. evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MIN ||
  2358. evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS))
  2359. evsel->handler = trace__pgfault;
  2360. }
  2361. err = parse_target_str(trace);
  2362. if (err != 0)
  2363. goto out;
  2364. setup_pager();
  2365. err = perf_session__process_events(session);
  2366. if (err)
  2367. pr_err("Failed to process events, error %d", err);
  2368. else if (trace->summary)
  2369. trace__fprintf_thread_summary(trace, trace->output);
  2370. out:
  2371. perf_session__delete(session);
  2372. return err;
  2373. }
  2374. static size_t trace__fprintf_threads_header(FILE *fp)
  2375. {
  2376. size_t printed;
  2377. printed = fprintf(fp, "\n Summary of events:\n\n");
  2378. return printed;
  2379. }
  2380. static size_t thread__dump_stats(struct thread_trace *ttrace,
  2381. struct trace *trace, FILE *fp)
  2382. {
  2383. struct stats *stats;
  2384. size_t printed = 0;
  2385. struct syscall *sc;
  2386. struct int_node *inode = intlist__first(ttrace->syscall_stats);
  2387. if (inode == NULL)
  2388. return 0;
  2389. printed += fprintf(fp, "\n");
  2390. printed += fprintf(fp, " syscall calls total min avg max stddev\n");
  2391. printed += fprintf(fp, " (msec) (msec) (msec) (msec) (%%)\n");
  2392. printed += fprintf(fp, " --------------- -------- --------- --------- --------- --------- ------\n");
  2393. /* each int_node is a syscall */
  2394. while (inode) {
  2395. stats = inode->priv;
  2396. if (stats) {
  2397. double min = (double)(stats->min) / NSEC_PER_MSEC;
  2398. double max = (double)(stats->max) / NSEC_PER_MSEC;
  2399. double avg = avg_stats(stats);
  2400. double pct;
  2401. u64 n = (u64) stats->n;
  2402. pct = avg ? 100.0 * stddev_stats(stats)/avg : 0.0;
  2403. avg /= NSEC_PER_MSEC;
  2404. sc = &trace->syscalls.table[inode->i];
  2405. printed += fprintf(fp, " %-15s", sc->name);
  2406. printed += fprintf(fp, " %8" PRIu64 " %9.3f %9.3f %9.3f",
  2407. n, avg * n, min, avg);
  2408. printed += fprintf(fp, " %9.3f %9.2f%%\n", max, pct);
  2409. }
  2410. inode = intlist__next(inode);
  2411. }
  2412. printed += fprintf(fp, "\n\n");
  2413. return printed;
  2414. }
  2415. /* struct used to pass data to per-thread function */
  2416. struct summary_data {
  2417. FILE *fp;
  2418. struct trace *trace;
  2419. size_t printed;
  2420. };
  2421. static int trace__fprintf_one_thread(struct thread *thread, void *priv)
  2422. {
  2423. struct summary_data *data = priv;
  2424. FILE *fp = data->fp;
  2425. size_t printed = data->printed;
  2426. struct trace *trace = data->trace;
  2427. struct thread_trace *ttrace = thread__priv(thread);
  2428. double ratio;
  2429. if (ttrace == NULL)
  2430. return 0;
  2431. ratio = (double)ttrace->nr_events / trace->nr_events * 100.0;
  2432. printed += fprintf(fp, " %s (%d), ", thread__comm_str(thread), thread->tid);
  2433. printed += fprintf(fp, "%lu events, ", ttrace->nr_events);
  2434. printed += fprintf(fp, "%.1f%%", ratio);
  2435. if (ttrace->pfmaj)
  2436. printed += fprintf(fp, ", %lu majfaults", ttrace->pfmaj);
  2437. if (ttrace->pfmin)
  2438. printed += fprintf(fp, ", %lu minfaults", ttrace->pfmin);
  2439. printed += fprintf(fp, ", %.3f msec\n", ttrace->runtime_ms);
  2440. printed += thread__dump_stats(ttrace, trace, fp);
  2441. data->printed += printed;
  2442. return 0;
  2443. }
  2444. static size_t trace__fprintf_thread_summary(struct trace *trace, FILE *fp)
  2445. {
  2446. struct summary_data data = {
  2447. .fp = fp,
  2448. .trace = trace
  2449. };
  2450. data.printed = trace__fprintf_threads_header(fp);
  2451. machine__for_each_thread(trace->host, trace__fprintf_one_thread, &data);
  2452. return data.printed;
  2453. }
  2454. static int trace__set_duration(const struct option *opt, const char *str,
  2455. int unset __maybe_unused)
  2456. {
  2457. struct trace *trace = opt->value;
  2458. trace->duration_filter = atof(str);
  2459. return 0;
  2460. }
  2461. static int trace__set_filter_pids(const struct option *opt, const char *str,
  2462. int unset __maybe_unused)
  2463. {
  2464. int ret = -1;
  2465. size_t i;
  2466. struct trace *trace = opt->value;
  2467. /*
  2468. * FIXME: introduce a intarray class, plain parse csv and create a
  2469. * { int nr, int entries[] } struct...
  2470. */
  2471. struct intlist *list = intlist__new(str);
  2472. if (list == NULL)
  2473. return -1;
  2474. i = trace->filter_pids.nr = intlist__nr_entries(list) + 1;
  2475. trace->filter_pids.entries = calloc(i, sizeof(pid_t));
  2476. if (trace->filter_pids.entries == NULL)
  2477. goto out;
  2478. trace->filter_pids.entries[0] = getpid();
  2479. for (i = 1; i < trace->filter_pids.nr; ++i)
  2480. trace->filter_pids.entries[i] = intlist__entry(list, i - 1)->i;
  2481. intlist__delete(list);
  2482. ret = 0;
  2483. out:
  2484. return ret;
  2485. }
  2486. static int trace__open_output(struct trace *trace, const char *filename)
  2487. {
  2488. struct stat st;
  2489. if (!stat(filename, &st) && st.st_size) {
  2490. char oldname[PATH_MAX];
  2491. scnprintf(oldname, sizeof(oldname), "%s.old", filename);
  2492. unlink(oldname);
  2493. rename(filename, oldname);
  2494. }
  2495. trace->output = fopen(filename, "w");
  2496. return trace->output == NULL ? -errno : 0;
  2497. }
  2498. static int parse_pagefaults(const struct option *opt, const char *str,
  2499. int unset __maybe_unused)
  2500. {
  2501. int *trace_pgfaults = opt->value;
  2502. if (strcmp(str, "all") == 0)
  2503. *trace_pgfaults |= TRACE_PFMAJ | TRACE_PFMIN;
  2504. else if (strcmp(str, "maj") == 0)
  2505. *trace_pgfaults |= TRACE_PFMAJ;
  2506. else if (strcmp(str, "min") == 0)
  2507. *trace_pgfaults |= TRACE_PFMIN;
  2508. else
  2509. return -1;
  2510. return 0;
  2511. }
  2512. static void evlist__set_evsel_handler(struct perf_evlist *evlist, void *handler)
  2513. {
  2514. struct perf_evsel *evsel;
  2515. evlist__for_each(evlist, evsel)
  2516. evsel->handler = handler;
  2517. }
  2518. int cmd_trace(int argc, const char **argv, const char *prefix __maybe_unused)
  2519. {
  2520. const char *trace_usage[] = {
  2521. "perf trace [<options>] [<command>]",
  2522. "perf trace [<options>] -- <command> [<options>]",
  2523. "perf trace record [<options>] [<command>]",
  2524. "perf trace record [<options>] -- <command> [<options>]",
  2525. NULL
  2526. };
  2527. struct trace trace = {
  2528. .syscalls = {
  2529. . max = -1,
  2530. },
  2531. .opts = {
  2532. .target = {
  2533. .uid = UINT_MAX,
  2534. .uses_mmap = true,
  2535. },
  2536. .user_freq = UINT_MAX,
  2537. .user_interval = ULLONG_MAX,
  2538. .no_buffering = true,
  2539. .mmap_pages = UINT_MAX,
  2540. .proc_map_timeout = 500,
  2541. },
  2542. .output = stderr,
  2543. .show_comm = true,
  2544. .trace_syscalls = true,
  2545. .kernel_syscallchains = false,
  2546. .max_stack = UINT_MAX,
  2547. };
  2548. const char *output_name = NULL;
  2549. const char *ev_qualifier_str = NULL;
  2550. const struct option trace_options[] = {
  2551. OPT_CALLBACK(0, "event", &trace.evlist, "event",
  2552. "event selector. use 'perf list' to list available events",
  2553. parse_events_option),
  2554. OPT_BOOLEAN(0, "comm", &trace.show_comm,
  2555. "show the thread COMM next to its id"),
  2556. OPT_BOOLEAN(0, "tool_stats", &trace.show_tool_stats, "show tool stats"),
  2557. OPT_STRING('e', "expr", &ev_qualifier_str, "expr", "list of syscalls to trace"),
  2558. OPT_STRING('o', "output", &output_name, "file", "output file name"),
  2559. OPT_STRING('i', "input", &input_name, "file", "Analyze events in file"),
  2560. OPT_STRING('p', "pid", &trace.opts.target.pid, "pid",
  2561. "trace events on existing process id"),
  2562. OPT_STRING('t', "tid", &trace.opts.target.tid, "tid",
  2563. "trace events on existing thread id"),
  2564. OPT_CALLBACK(0, "filter-pids", &trace, "CSV list of pids",
  2565. "pids to filter (by the kernel)", trace__set_filter_pids),
  2566. OPT_BOOLEAN('a', "all-cpus", &trace.opts.target.system_wide,
  2567. "system-wide collection from all CPUs"),
  2568. OPT_STRING('C', "cpu", &trace.opts.target.cpu_list, "cpu",
  2569. "list of cpus to monitor"),
  2570. OPT_BOOLEAN(0, "no-inherit", &trace.opts.no_inherit,
  2571. "child tasks do not inherit counters"),
  2572. OPT_CALLBACK('m', "mmap-pages", &trace.opts.mmap_pages, "pages",
  2573. "number of mmap data pages",
  2574. perf_evlist__parse_mmap_pages),
  2575. OPT_STRING('u', "uid", &trace.opts.target.uid_str, "user",
  2576. "user to profile"),
  2577. OPT_CALLBACK(0, "duration", &trace, "float",
  2578. "show only events with duration > N.M ms",
  2579. trace__set_duration),
  2580. OPT_BOOLEAN(0, "sched", &trace.sched, "show blocking scheduler events"),
  2581. OPT_INCR('v', "verbose", &verbose, "be more verbose"),
  2582. OPT_BOOLEAN('T', "time", &trace.full_time,
  2583. "Show full timestamp, not time relative to first start"),
  2584. OPT_BOOLEAN('s', "summary", &trace.summary_only,
  2585. "Show only syscall summary with statistics"),
  2586. OPT_BOOLEAN('S', "with-summary", &trace.summary,
  2587. "Show all syscalls and summary with statistics"),
  2588. OPT_CALLBACK_DEFAULT('F', "pf", &trace.trace_pgfaults, "all|maj|min",
  2589. "Trace pagefaults", parse_pagefaults, "maj"),
  2590. OPT_BOOLEAN(0, "syscalls", &trace.trace_syscalls, "Trace syscalls"),
  2591. OPT_BOOLEAN('f', "force", &trace.force, "don't complain, do it"),
  2592. OPT_CALLBACK(0, "call-graph", &trace.opts,
  2593. "record_mode[,record_size]", record_callchain_help,
  2594. &record_parse_callchain_opt),
  2595. OPT_BOOLEAN(0, "kernel-syscall-graph", &trace.kernel_syscallchains,
  2596. "Show the kernel callchains on the syscall exit path"),
  2597. OPT_UINTEGER(0, "min-stack", &trace.min_stack,
  2598. "Set the minimum stack depth when parsing the callchain, "
  2599. "anything below the specified depth will be ignored."),
  2600. OPT_UINTEGER(0, "max-stack", &trace.max_stack,
  2601. "Set the maximum stack depth when parsing the callchain, "
  2602. "anything beyond the specified depth will be ignored. "
  2603. "Default: " __stringify(PERF_MAX_STACK_DEPTH)),
  2604. OPT_UINTEGER(0, "proc-map-timeout", &trace.opts.proc_map_timeout,
  2605. "per thread proc mmap processing timeout in ms"),
  2606. OPT_END()
  2607. };
  2608. bool __maybe_unused max_stack_user_set = true;
  2609. bool mmap_pages_user_set = true;
  2610. const char * const trace_subcommands[] = { "record", NULL };
  2611. int err;
  2612. char bf[BUFSIZ];
  2613. signal(SIGSEGV, sighandler_dump_stack);
  2614. signal(SIGFPE, sighandler_dump_stack);
  2615. trace.evlist = perf_evlist__new();
  2616. trace.sctbl = syscalltbl__new();
  2617. if (trace.evlist == NULL || trace.sctbl == NULL) {
  2618. pr_err("Not enough memory to run!\n");
  2619. err = -ENOMEM;
  2620. goto out;
  2621. }
  2622. argc = parse_options_subcommand(argc, argv, trace_options, trace_subcommands,
  2623. trace_usage, PARSE_OPT_STOP_AT_NON_OPTION);
  2624. err = bpf__setup_stdout(trace.evlist);
  2625. if (err) {
  2626. bpf__strerror_setup_stdout(trace.evlist, err, bf, sizeof(bf));
  2627. pr_err("ERROR: Setup BPF stdout failed: %s\n", bf);
  2628. goto out;
  2629. }
  2630. err = -1;
  2631. if (trace.trace_pgfaults) {
  2632. trace.opts.sample_address = true;
  2633. trace.opts.sample_time = true;
  2634. }
  2635. if (trace.opts.mmap_pages == UINT_MAX)
  2636. mmap_pages_user_set = false;
  2637. if (trace.max_stack == UINT_MAX) {
  2638. trace.max_stack = PERF_MAX_STACK_DEPTH;
  2639. max_stack_user_set = false;
  2640. }
  2641. #ifdef HAVE_DWARF_UNWIND_SUPPORT
  2642. if ((trace.min_stack || max_stack_user_set) && !callchain_param.enabled)
  2643. record_opts__parse_callchain(&trace.opts, &callchain_param, "dwarf", false);
  2644. #endif
  2645. if (callchain_param.enabled) {
  2646. if (!mmap_pages_user_set && geteuid() == 0)
  2647. trace.opts.mmap_pages = perf_event_mlock_kb_in_pages() * 4;
  2648. symbol_conf.use_callchain = true;
  2649. }
  2650. if (trace.evlist->nr_entries > 0)
  2651. evlist__set_evsel_handler(trace.evlist, trace__event_handler);
  2652. if ((argc >= 1) && (strcmp(argv[0], "record") == 0))
  2653. return trace__record(&trace, argc-1, &argv[1]);
  2654. /* summary_only implies summary option, but don't overwrite summary if set */
  2655. if (trace.summary_only)
  2656. trace.summary = trace.summary_only;
  2657. if (!trace.trace_syscalls && !trace.trace_pgfaults &&
  2658. trace.evlist->nr_entries == 0 /* Was --events used? */) {
  2659. pr_err("Please specify something to trace.\n");
  2660. return -1;
  2661. }
  2662. if (!trace.trace_syscalls && ev_qualifier_str) {
  2663. pr_err("The -e option can't be used with --no-syscalls.\n");
  2664. goto out;
  2665. }
  2666. if (output_name != NULL) {
  2667. err = trace__open_output(&trace, output_name);
  2668. if (err < 0) {
  2669. perror("failed to create output file");
  2670. goto out;
  2671. }
  2672. }
  2673. trace.open_id = syscalltbl__id(trace.sctbl, "open");
  2674. if (ev_qualifier_str != NULL) {
  2675. const char *s = ev_qualifier_str;
  2676. struct strlist_config slist_config = {
  2677. .dirname = system_path(STRACE_GROUPS_DIR),
  2678. };
  2679. trace.not_ev_qualifier = *s == '!';
  2680. if (trace.not_ev_qualifier)
  2681. ++s;
  2682. trace.ev_qualifier = strlist__new(s, &slist_config);
  2683. if (trace.ev_qualifier == NULL) {
  2684. fputs("Not enough memory to parse event qualifier",
  2685. trace.output);
  2686. err = -ENOMEM;
  2687. goto out_close;
  2688. }
  2689. err = trace__validate_ev_qualifier(&trace);
  2690. if (err)
  2691. goto out_close;
  2692. }
  2693. err = target__validate(&trace.opts.target);
  2694. if (err) {
  2695. target__strerror(&trace.opts.target, err, bf, sizeof(bf));
  2696. fprintf(trace.output, "%s", bf);
  2697. goto out_close;
  2698. }
  2699. err = target__parse_uid(&trace.opts.target);
  2700. if (err) {
  2701. target__strerror(&trace.opts.target, err, bf, sizeof(bf));
  2702. fprintf(trace.output, "%s", bf);
  2703. goto out_close;
  2704. }
  2705. if (!argc && target__none(&trace.opts.target))
  2706. trace.opts.target.system_wide = true;
  2707. if (input_name)
  2708. err = trace__replay(&trace);
  2709. else
  2710. err = trace__run(&trace, argc, argv);
  2711. out_close:
  2712. if (output_name != NULL)
  2713. fclose(trace.output);
  2714. out:
  2715. return err;
  2716. }