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 19 #include <traceevent/event-parse.h> 20 #include <api/fs/tracing_path.h> 21 #include "builtin.h" 22 #include "util/cgroup.h" 23 #include "util/color.h" 24 #include "util/debug.h" 25 #include "util/env.h" 26 #include "util/event.h" 27 #include "util/evlist.h" 28 #include <subcmd/exec-cmd.h> 29 #include "util/machine.h" 30 #include "util/path.h" 31 #include "util/session.h" 32 #include "util/thread.h" 33 #include <subcmd/parse-options.h> 34 #include "util/strlist.h" 35 #include "util/intlist.h" 36 #include "util/thread_map.h" 37 #include "util/stat.h" 38 #include "trace/beauty/beauty.h" 39 #include "trace-event.h" 40 #include "util/parse-events.h" 41 #include "util/bpf-loader.h" 42 #include "callchain.h" 43 #include "print_binary.h" 44 #include "string2.h" 45 #include "syscalltbl.h" 46 #include "rb_resort.h" 47 48 #include <errno.h> 49 #include <inttypes.h> 50 #include <poll.h> 51 #include <signal.h> 52 #include <stdlib.h> 53 #include <string.h> 54 #include <linux/err.h> 55 #include <linux/filter.h> 56 #include <linux/kernel.h> 57 #include <linux/random.h> 58 #include <linux/stringify.h> 59 #include <linux/time64.h> 60 #include <fcntl.h> 61 62 #include "sane_ctype.h" 63 64 #ifndef O_CLOEXEC 65 # define O_CLOEXEC 02000000 66 #endif 67 68 #ifndef F_LINUX_SPECIFIC_BASE 69 # define F_LINUX_SPECIFIC_BASE 1024 70 #endif 71 72 struct trace { 73 struct perf_tool tool; 74 struct syscalltbl *sctbl; 75 struct { 76 int max; 77 struct syscall *table; 78 struct { 79 struct perf_evsel *sys_enter, 80 *sys_exit, 81 *augmented; 82 } events; 83 } syscalls; 84 struct record_opts opts; 85 struct perf_evlist *evlist; 86 struct machine *host; 87 struct thread *current; 88 struct cgroup *cgroup; 89 u64 base_time; 90 FILE *output; 91 unsigned long nr_events; 92 struct strlist *ev_qualifier; 93 struct { 94 size_t nr; 95 int *entries; 96 } ev_qualifier_ids; 97 struct { 98 size_t nr; 99 pid_t *entries; 100 } filter_pids; 101 double duration_filter; 102 double runtime_ms; 103 struct { 104 u64 vfs_getname, 105 proc_getname; 106 } stats; 107 unsigned int max_stack; 108 unsigned int min_stack; 109 bool not_ev_qualifier; 110 bool live; 111 bool full_time; 112 bool sched; 113 bool multiple_threads; 114 bool summary; 115 bool summary_only; 116 bool failure_only; 117 bool show_comm; 118 bool print_sample; 119 bool show_tool_stats; 120 bool trace_syscalls; 121 bool kernel_syscallchains; 122 bool force; 123 bool vfs_getname; 124 int trace_pgfaults; 125 }; 126 127 struct tp_field { 128 int offset; 129 union { 130 u64 (*integer)(struct tp_field *field, struct perf_sample *sample); 131 void *(*pointer)(struct tp_field *field, struct perf_sample *sample); 132 }; 133 }; 134 135 #define TP_UINT_FIELD(bits) \ 136 static u64 tp_field__u##bits(struct tp_field *field, struct perf_sample *sample) \ 137 { \ 138 u##bits value; \ 139 memcpy(&value, sample->raw_data + field->offset, sizeof(value)); \ 140 return value; \ 141 } 142 143 TP_UINT_FIELD(8); 144 TP_UINT_FIELD(16); 145 TP_UINT_FIELD(32); 146 TP_UINT_FIELD(64); 147 148 #define TP_UINT_FIELD__SWAPPED(bits) \ 149 static u64 tp_field__swapped_u##bits(struct tp_field *field, struct perf_sample *sample) \ 150 { \ 151 u##bits value; \ 152 memcpy(&value, sample->raw_data + field->offset, sizeof(value)); \ 153 return bswap_##bits(value);\ 154 } 155 156 TP_UINT_FIELD__SWAPPED(16); 157 TP_UINT_FIELD__SWAPPED(32); 158 TP_UINT_FIELD__SWAPPED(64); 159 160 static int __tp_field__init_uint(struct tp_field *field, int size, int offset, bool needs_swap) 161 { 162 field->offset = offset; 163 164 switch (size) { 165 case 1: 166 field->integer = tp_field__u8; 167 break; 168 case 2: 169 field->integer = needs_swap ? tp_field__swapped_u16 : tp_field__u16; 170 break; 171 case 4: 172 field->integer = needs_swap ? tp_field__swapped_u32 : tp_field__u32; 173 break; 174 case 8: 175 field->integer = needs_swap ? tp_field__swapped_u64 : tp_field__u64; 176 break; 177 default: 178 return -1; 179 } 180 181 return 0; 182 } 183 184 static int tp_field__init_uint(struct tp_field *field, struct tep_format_field *format_field, bool needs_swap) 185 { 186 return __tp_field__init_uint(field, format_field->size, format_field->offset, needs_swap); 187 } 188 189 static void *tp_field__ptr(struct tp_field *field, struct perf_sample *sample) 190 { 191 return sample->raw_data + field->offset; 192 } 193 194 static int __tp_field__init_ptr(struct tp_field *field, int offset) 195 { 196 field->offset = offset; 197 field->pointer = tp_field__ptr; 198 return 0; 199 } 200 201 static int tp_field__init_ptr(struct tp_field *field, struct tep_format_field *format_field) 202 { 203 return __tp_field__init_ptr(field, format_field->offset); 204 } 205 206 struct syscall_tp { 207 struct tp_field id; 208 union { 209 struct tp_field args, ret; 210 }; 211 }; 212 213 static int perf_evsel__init_tp_uint_field(struct perf_evsel *evsel, 214 struct tp_field *field, 215 const char *name) 216 { 217 struct tep_format_field *format_field = perf_evsel__field(evsel, name); 218 219 if (format_field == NULL) 220 return -1; 221 222 return tp_field__init_uint(field, format_field, evsel->needs_swap); 223 } 224 225 #define perf_evsel__init_sc_tp_uint_field(evsel, name) \ 226 ({ struct syscall_tp *sc = evsel->priv;\ 227 perf_evsel__init_tp_uint_field(evsel, &sc->name, #name); }) 228 229 static int perf_evsel__init_tp_ptr_field(struct perf_evsel *evsel, 230 struct tp_field *field, 231 const char *name) 232 { 233 struct tep_format_field *format_field = perf_evsel__field(evsel, name); 234 235 if (format_field == NULL) 236 return -1; 237 238 return tp_field__init_ptr(field, format_field); 239 } 240 241 #define perf_evsel__init_sc_tp_ptr_field(evsel, name) \ 242 ({ struct syscall_tp *sc = evsel->priv;\ 243 perf_evsel__init_tp_ptr_field(evsel, &sc->name, #name); }) 244 245 static void perf_evsel__delete_priv(struct perf_evsel *evsel) 246 { 247 zfree(&evsel->priv); 248 perf_evsel__delete(evsel); 249 } 250 251 static int perf_evsel__init_syscall_tp(struct perf_evsel *evsel) 252 { 253 struct syscall_tp *sc = evsel->priv = malloc(sizeof(struct syscall_tp)); 254 255 if (evsel->priv != NULL) { 256 if (perf_evsel__init_tp_uint_field(evsel, &sc->id, "__syscall_nr")) 257 goto out_delete; 258 return 0; 259 } 260 261 return -ENOMEM; 262 out_delete: 263 zfree(&evsel->priv); 264 return -ENOENT; 265 } 266 267 static int perf_evsel__init_augmented_syscall_tp(struct perf_evsel *evsel) 268 { 269 struct syscall_tp *sc = evsel->priv = malloc(sizeof(struct syscall_tp)); 270 271 if (evsel->priv != NULL) { /* field, sizeof_field, offsetof_field */ 272 if (__tp_field__init_uint(&sc->id, sizeof(long), sizeof(long long), evsel->needs_swap)) 273 goto out_delete; 274 275 return 0; 276 } 277 278 return -ENOMEM; 279 out_delete: 280 zfree(&evsel->priv); 281 return -EINVAL; 282 } 283 284 static int perf_evsel__init_augmented_syscall_tp_args(struct perf_evsel *evsel) 285 { 286 struct syscall_tp *sc = evsel->priv; 287 288 return __tp_field__init_ptr(&sc->args, sc->id.offset + sizeof(u64)); 289 } 290 291 static int perf_evsel__init_augmented_syscall_tp_ret(struct perf_evsel *evsel) 292 { 293 struct syscall_tp *sc = evsel->priv; 294 295 return __tp_field__init_uint(&sc->ret, sizeof(u64), sc->id.offset + sizeof(u64), evsel->needs_swap); 296 } 297 298 static int perf_evsel__init_raw_syscall_tp(struct perf_evsel *evsel, void *handler) 299 { 300 evsel->priv = malloc(sizeof(struct syscall_tp)); 301 if (evsel->priv != NULL) { 302 if (perf_evsel__init_sc_tp_uint_field(evsel, id)) 303 goto out_delete; 304 305 evsel->handler = handler; 306 return 0; 307 } 308 309 return -ENOMEM; 310 311 out_delete: 312 zfree(&evsel->priv); 313 return -ENOENT; 314 } 315 316 static struct perf_evsel *perf_evsel__raw_syscall_newtp(const char *direction, void *handler) 317 { 318 struct perf_evsel *evsel = perf_evsel__newtp("raw_syscalls", direction); 319 320 /* older kernel (e.g., RHEL6) use syscalls:{enter,exit} */ 321 if (IS_ERR(evsel)) 322 evsel = perf_evsel__newtp("syscalls", direction); 323 324 if (IS_ERR(evsel)) 325 return NULL; 326 327 if (perf_evsel__init_raw_syscall_tp(evsel, handler)) 328 goto out_delete; 329 330 return evsel; 331 332 out_delete: 333 perf_evsel__delete_priv(evsel); 334 return NULL; 335 } 336 337 #define perf_evsel__sc_tp_uint(evsel, name, sample) \ 338 ({ struct syscall_tp *fields = evsel->priv; \ 339 fields->name.integer(&fields->name, sample); }) 340 341 #define perf_evsel__sc_tp_ptr(evsel, name, sample) \ 342 ({ struct syscall_tp *fields = evsel->priv; \ 343 fields->name.pointer(&fields->name, sample); }) 344 345 size_t strarray__scnprintf(struct strarray *sa, char *bf, size_t size, const char *intfmt, int val) 346 { 347 int idx = val - sa->offset; 348 349 if (idx < 0 || idx >= sa->nr_entries || sa->entries[idx] == NULL) 350 return scnprintf(bf, size, intfmt, val); 351 352 return scnprintf(bf, size, "%s", sa->entries[idx]); 353 } 354 355 static size_t __syscall_arg__scnprintf_strarray(char *bf, size_t size, 356 const char *intfmt, 357 struct syscall_arg *arg) 358 { 359 return strarray__scnprintf(arg->parm, bf, size, intfmt, arg->val); 360 } 361 362 static size_t syscall_arg__scnprintf_strarray(char *bf, size_t size, 363 struct syscall_arg *arg) 364 { 365 return __syscall_arg__scnprintf_strarray(bf, size, "%d", arg); 366 } 367 368 #define SCA_STRARRAY syscall_arg__scnprintf_strarray 369 370 struct strarrays { 371 int nr_entries; 372 struct strarray **entries; 373 }; 374 375 #define DEFINE_STRARRAYS(array) struct strarrays strarrays__##array = { \ 376 .nr_entries = ARRAY_SIZE(array), \ 377 .entries = array, \ 378 } 379 380 size_t syscall_arg__scnprintf_strarrays(char *bf, size_t size, 381 struct syscall_arg *arg) 382 { 383 struct strarrays *sas = arg->parm; 384 int i; 385 386 for (i = 0; i < sas->nr_entries; ++i) { 387 struct strarray *sa = sas->entries[i]; 388 int idx = arg->val - sa->offset; 389 390 if (idx >= 0 && idx < sa->nr_entries) { 391 if (sa->entries[idx] == NULL) 392 break; 393 return scnprintf(bf, size, "%s", sa->entries[idx]); 394 } 395 } 396 397 return scnprintf(bf, size, "%d", arg->val); 398 } 399 400 #ifndef AT_FDCWD 401 #define AT_FDCWD -100 402 #endif 403 404 static size_t syscall_arg__scnprintf_fd_at(char *bf, size_t size, 405 struct syscall_arg *arg) 406 { 407 int fd = arg->val; 408 409 if (fd == AT_FDCWD) 410 return scnprintf(bf, size, "CWD"); 411 412 return syscall_arg__scnprintf_fd(bf, size, arg); 413 } 414 415 #define SCA_FDAT syscall_arg__scnprintf_fd_at 416 417 static size_t syscall_arg__scnprintf_close_fd(char *bf, size_t size, 418 struct syscall_arg *arg); 419 420 #define SCA_CLOSE_FD syscall_arg__scnprintf_close_fd 421 422 size_t syscall_arg__scnprintf_hex(char *bf, size_t size, struct syscall_arg *arg) 423 { 424 return scnprintf(bf, size, "%#lx", arg->val); 425 } 426 427 size_t syscall_arg__scnprintf_int(char *bf, size_t size, struct syscall_arg *arg) 428 { 429 return scnprintf(bf, size, "%d", arg->val); 430 } 431 432 size_t syscall_arg__scnprintf_long(char *bf, size_t size, struct syscall_arg *arg) 433 { 434 return scnprintf(bf, size, "%ld", arg->val); 435 } 436 437 static const char *bpf_cmd[] = { 438 "MAP_CREATE", "MAP_LOOKUP_ELEM", "MAP_UPDATE_ELEM", "MAP_DELETE_ELEM", 439 "MAP_GET_NEXT_KEY", "PROG_LOAD", 440 }; 441 static DEFINE_STRARRAY(bpf_cmd); 442 443 static const char *epoll_ctl_ops[] = { "ADD", "DEL", "MOD", }; 444 static DEFINE_STRARRAY_OFFSET(epoll_ctl_ops, 1); 445 446 static const char *itimers[] = { "REAL", "VIRTUAL", "PROF", }; 447 static DEFINE_STRARRAY(itimers); 448 449 static const char *keyctl_options[] = { 450 "GET_KEYRING_ID", "JOIN_SESSION_KEYRING", "UPDATE", "REVOKE", "CHOWN", 451 "SETPERM", "DESCRIBE", "CLEAR", "LINK", "UNLINK", "SEARCH", "READ", 452 "INSTANTIATE", "NEGATE", "SET_REQKEY_KEYRING", "SET_TIMEOUT", 453 "ASSUME_AUTHORITY", "GET_SECURITY", "SESSION_TO_PARENT", "REJECT", 454 "INSTANTIATE_IOV", "INVALIDATE", "GET_PERSISTENT", 455 }; 456 static DEFINE_STRARRAY(keyctl_options); 457 458 static const char *whences[] = { "SET", "CUR", "END", 459 #ifdef SEEK_DATA 460 "DATA", 461 #endif 462 #ifdef SEEK_HOLE 463 "HOLE", 464 #endif 465 }; 466 static DEFINE_STRARRAY(whences); 467 468 static const char *fcntl_cmds[] = { 469 "DUPFD", "GETFD", "SETFD", "GETFL", "SETFL", "GETLK", "SETLK", 470 "SETLKW", "SETOWN", "GETOWN", "SETSIG", "GETSIG", "GETLK64", 471 "SETLK64", "SETLKW64", "SETOWN_EX", "GETOWN_EX", 472 "GETOWNER_UIDS", 473 }; 474 static DEFINE_STRARRAY(fcntl_cmds); 475 476 static const char *fcntl_linux_specific_cmds[] = { 477 "SETLEASE", "GETLEASE", "NOTIFY", [5] = "CANCELLK", "DUPFD_CLOEXEC", 478 "SETPIPE_SZ", "GETPIPE_SZ", "ADD_SEALS", "GET_SEALS", 479 "GET_RW_HINT", "SET_RW_HINT", "GET_FILE_RW_HINT", "SET_FILE_RW_HINT", 480 }; 481 482 static DEFINE_STRARRAY_OFFSET(fcntl_linux_specific_cmds, F_LINUX_SPECIFIC_BASE); 483 484 static struct strarray *fcntl_cmds_arrays[] = { 485 &strarray__fcntl_cmds, 486 &strarray__fcntl_linux_specific_cmds, 487 }; 488 489 static DEFINE_STRARRAYS(fcntl_cmds_arrays); 490 491 static const char *rlimit_resources[] = { 492 "CPU", "FSIZE", "DATA", "STACK", "CORE", "RSS", "NPROC", "NOFILE", 493 "MEMLOCK", "AS", "LOCKS", "SIGPENDING", "MSGQUEUE", "NICE", "RTPRIO", 494 "RTTIME", 495 }; 496 static DEFINE_STRARRAY(rlimit_resources); 497 498 static const char *sighow[] = { "BLOCK", "UNBLOCK", "SETMASK", }; 499 static DEFINE_STRARRAY(sighow); 500 501 static const char *clockid[] = { 502 "REALTIME", "MONOTONIC", "PROCESS_CPUTIME_ID", "THREAD_CPUTIME_ID", 503 "MONOTONIC_RAW", "REALTIME_COARSE", "MONOTONIC_COARSE", "BOOTTIME", 504 "REALTIME_ALARM", "BOOTTIME_ALARM", "SGI_CYCLE", "TAI" 505 }; 506 static DEFINE_STRARRAY(clockid); 507 508 static size_t syscall_arg__scnprintf_access_mode(char *bf, size_t size, 509 struct syscall_arg *arg) 510 { 511 size_t printed = 0; 512 int mode = arg->val; 513 514 if (mode == F_OK) /* 0 */ 515 return scnprintf(bf, size, "F"); 516 #define P_MODE(n) \ 517 if (mode & n##_OK) { \ 518 printed += scnprintf(bf + printed, size - printed, "%s", #n); \ 519 mode &= ~n##_OK; \ 520 } 521 522 P_MODE(R); 523 P_MODE(W); 524 P_MODE(X); 525 #undef P_MODE 526 527 if (mode) 528 printed += scnprintf(bf + printed, size - printed, "|%#x", mode); 529 530 return printed; 531 } 532 533 #define SCA_ACCMODE syscall_arg__scnprintf_access_mode 534 535 static size_t syscall_arg__scnprintf_filename(char *bf, size_t size, 536 struct syscall_arg *arg); 537 538 #define SCA_FILENAME syscall_arg__scnprintf_filename 539 540 static size_t syscall_arg__scnprintf_pipe_flags(char *bf, size_t size, 541 struct syscall_arg *arg) 542 { 543 int printed = 0, flags = arg->val; 544 545 #define P_FLAG(n) \ 546 if (flags & O_##n) { \ 547 printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \ 548 flags &= ~O_##n; \ 549 } 550 551 P_FLAG(CLOEXEC); 552 P_FLAG(NONBLOCK); 553 #undef P_FLAG 554 555 if (flags) 556 printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags); 557 558 return printed; 559 } 560 561 #define SCA_PIPE_FLAGS syscall_arg__scnprintf_pipe_flags 562 563 #ifndef GRND_NONBLOCK 564 #define GRND_NONBLOCK 0x0001 565 #endif 566 #ifndef GRND_RANDOM 567 #define GRND_RANDOM 0x0002 568 #endif 569 570 static size_t syscall_arg__scnprintf_getrandom_flags(char *bf, size_t size, 571 struct syscall_arg *arg) 572 { 573 int printed = 0, flags = arg->val; 574 575 #define P_FLAG(n) \ 576 if (flags & GRND_##n) { \ 577 printed += scnprintf(bf + printed, size - printed, "%s%s", printed ? "|" : "", #n); \ 578 flags &= ~GRND_##n; \ 579 } 580 581 P_FLAG(RANDOM); 582 P_FLAG(NONBLOCK); 583 #undef P_FLAG 584 585 if (flags) 586 printed += scnprintf(bf + printed, size - printed, "%s%#x", printed ? "|" : "", flags); 587 588 return printed; 589 } 590 591 #define SCA_GETRANDOM_FLAGS syscall_arg__scnprintf_getrandom_flags 592 593 #define STRARRAY(name, array) \ 594 { .scnprintf = SCA_STRARRAY, \ 595 .parm = &strarray__##array, } 596 597 #include "trace/beauty/arch_errno_names.c" 598 #include "trace/beauty/eventfd.c" 599 #include "trace/beauty/futex_op.c" 600 #include "trace/beauty/futex_val3.c" 601 #include "trace/beauty/mmap.c" 602 #include "trace/beauty/mode_t.c" 603 #include "trace/beauty/msg_flags.c" 604 #include "trace/beauty/open_flags.c" 605 #include "trace/beauty/perf_event_open.c" 606 #include "trace/beauty/pid.c" 607 #include "trace/beauty/sched_policy.c" 608 #include "trace/beauty/seccomp.c" 609 #include "trace/beauty/signum.c" 610 #include "trace/beauty/socket_type.c" 611 #include "trace/beauty/waitid_options.c" 612 613 struct syscall_arg_fmt { 614 size_t (*scnprintf)(char *bf, size_t size, struct syscall_arg *arg); 615 void *parm; 616 const char *name; 617 bool show_zero; 618 }; 619 620 static struct syscall_fmt { 621 const char *name; 622 const char *alias; 623 struct syscall_arg_fmt arg[6]; 624 u8 nr_args; 625 bool errpid; 626 bool timeout; 627 bool hexret; 628 } syscall_fmts[] = { 629 { .name = "access", 630 .arg = { [1] = { .scnprintf = SCA_ACCMODE, /* mode */ }, }, }, 631 { .name = "bind", 632 .arg = { [1] = { .scnprintf = SCA_SOCKADDR, /* umyaddr */ }, }, }, 633 { .name = "bpf", 634 .arg = { [0] = STRARRAY(cmd, bpf_cmd), }, }, 635 { .name = "brk", .hexret = true, 636 .arg = { [0] = { .scnprintf = SCA_HEX, /* brk */ }, }, }, 637 { .name = "clock_gettime", 638 .arg = { [0] = STRARRAY(clk_id, clockid), }, }, 639 { .name = "clone", .errpid = true, .nr_args = 5, 640 .arg = { [0] = { .name = "flags", .scnprintf = SCA_CLONE_FLAGS, }, 641 [1] = { .name = "child_stack", .scnprintf = SCA_HEX, }, 642 [2] = { .name = "parent_tidptr", .scnprintf = SCA_HEX, }, 643 [3] = { .name = "child_tidptr", .scnprintf = SCA_HEX, }, 644 [4] = { .name = "tls", .scnprintf = SCA_HEX, }, }, }, 645 { .name = "close", 646 .arg = { [0] = { .scnprintf = SCA_CLOSE_FD, /* fd */ }, }, }, 647 { .name = "connect", 648 .arg = { [1] = { .scnprintf = SCA_SOCKADDR, /* servaddr */ }, }, }, 649 { .name = "epoll_ctl", 650 .arg = { [1] = STRARRAY(op, epoll_ctl_ops), }, }, 651 { .name = "eventfd2", 652 .arg = { [1] = { .scnprintf = SCA_EFD_FLAGS, /* flags */ }, }, }, 653 { .name = "fchmodat", 654 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fd */ }, }, }, 655 { .name = "fchownat", 656 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fd */ }, }, }, 657 { .name = "fcntl", 658 .arg = { [1] = { .scnprintf = SCA_FCNTL_CMD, /* cmd */ 659 .parm = &strarrays__fcntl_cmds_arrays, 660 .show_zero = true, }, 661 [2] = { .scnprintf = SCA_FCNTL_ARG, /* arg */ }, }, }, 662 { .name = "flock", 663 .arg = { [1] = { .scnprintf = SCA_FLOCK, /* cmd */ }, }, }, 664 { .name = "fstat", .alias = "newfstat", }, 665 { .name = "fstatat", .alias = "newfstatat", }, 666 { .name = "futex", 667 .arg = { [1] = { .scnprintf = SCA_FUTEX_OP, /* op */ }, 668 [5] = { .scnprintf = SCA_FUTEX_VAL3, /* val3 */ }, }, }, 669 { .name = "futimesat", 670 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fd */ }, }, }, 671 { .name = "getitimer", 672 .arg = { [0] = STRARRAY(which, itimers), }, }, 673 { .name = "getpid", .errpid = true, }, 674 { .name = "getpgid", .errpid = true, }, 675 { .name = "getppid", .errpid = true, }, 676 { .name = "getrandom", 677 .arg = { [2] = { .scnprintf = SCA_GETRANDOM_FLAGS, /* flags */ }, }, }, 678 { .name = "getrlimit", 679 .arg = { [0] = STRARRAY(resource, rlimit_resources), }, }, 680 { .name = "gettid", .errpid = true, }, 681 { .name = "ioctl", 682 .arg = { 683 #if defined(__i386__) || defined(__x86_64__) 684 /* 685 * FIXME: Make this available to all arches. 686 */ 687 [1] = { .scnprintf = SCA_IOCTL_CMD, /* cmd */ }, 688 [2] = { .scnprintf = SCA_HEX, /* arg */ }, }, }, 689 #else 690 [2] = { .scnprintf = SCA_HEX, /* arg */ }, }, }, 691 #endif 692 { .name = "kcmp", .nr_args = 5, 693 .arg = { [0] = { .name = "pid1", .scnprintf = SCA_PID, }, 694 [1] = { .name = "pid2", .scnprintf = SCA_PID, }, 695 [2] = { .name = "type", .scnprintf = SCA_KCMP_TYPE, }, 696 [3] = { .name = "idx1", .scnprintf = SCA_KCMP_IDX, }, 697 [4] = { .name = "idx2", .scnprintf = SCA_KCMP_IDX, }, }, }, 698 { .name = "keyctl", 699 .arg = { [0] = STRARRAY(option, keyctl_options), }, }, 700 { .name = "kill", 701 .arg = { [1] = { .scnprintf = SCA_SIGNUM, /* sig */ }, }, }, 702 { .name = "linkat", 703 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fd */ }, }, }, 704 { .name = "lseek", 705 .arg = { [2] = STRARRAY(whence, whences), }, }, 706 { .name = "lstat", .alias = "newlstat", }, 707 { .name = "madvise", 708 .arg = { [0] = { .scnprintf = SCA_HEX, /* start */ }, 709 [2] = { .scnprintf = SCA_MADV_BHV, /* behavior */ }, }, }, 710 { .name = "mkdirat", 711 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fd */ }, }, }, 712 { .name = "mknodat", 713 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fd */ }, }, }, 714 { .name = "mlock", 715 .arg = { [0] = { .scnprintf = SCA_HEX, /* addr */ }, }, }, 716 { .name = "mlockall", 717 .arg = { [0] = { .scnprintf = SCA_HEX, /* addr */ }, }, }, 718 { .name = "mmap", .hexret = true, 719 /* The standard mmap maps to old_mmap on s390x */ 720 #if defined(__s390x__) 721 .alias = "old_mmap", 722 #endif 723 .arg = { [0] = { .scnprintf = SCA_HEX, /* addr */ }, 724 [2] = { .scnprintf = SCA_MMAP_PROT, /* prot */ }, 725 [3] = { .scnprintf = SCA_MMAP_FLAGS, /* flags */ }, }, }, 726 { .name = "mprotect", 727 .arg = { [0] = { .scnprintf = SCA_HEX, /* start */ }, 728 [2] = { .scnprintf = SCA_MMAP_PROT, /* prot */ }, }, }, 729 { .name = "mq_unlink", 730 .arg = { [0] = { .scnprintf = SCA_FILENAME, /* u_name */ }, }, }, 731 { .name = "mremap", .hexret = true, 732 .arg = { [0] = { .scnprintf = SCA_HEX, /* addr */ }, 733 [3] = { .scnprintf = SCA_MREMAP_FLAGS, /* flags */ }, 734 [4] = { .scnprintf = SCA_HEX, /* new_addr */ }, }, }, 735 { .name = "munlock", 736 .arg = { [0] = { .scnprintf = SCA_HEX, /* addr */ }, }, }, 737 { .name = "munmap", 738 .arg = { [0] = { .scnprintf = SCA_HEX, /* addr */ }, }, }, 739 { .name = "name_to_handle_at", 740 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, }, }, 741 { .name = "newfstatat", 742 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, }, }, 743 { .name = "open", 744 .arg = { [1] = { .scnprintf = SCA_OPEN_FLAGS, /* flags */ }, }, }, 745 { .name = "open_by_handle_at", 746 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, 747 [2] = { .scnprintf = SCA_OPEN_FLAGS, /* flags */ }, }, }, 748 { .name = "openat", 749 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, 750 [2] = { .scnprintf = SCA_OPEN_FLAGS, /* flags */ }, }, }, 751 { .name = "perf_event_open", 752 .arg = { [2] = { .scnprintf = SCA_INT, /* cpu */ }, 753 [3] = { .scnprintf = SCA_FD, /* group_fd */ }, 754 [4] = { .scnprintf = SCA_PERF_FLAGS, /* flags */ }, }, }, 755 { .name = "pipe2", 756 .arg = { [1] = { .scnprintf = SCA_PIPE_FLAGS, /* flags */ }, }, }, 757 { .name = "pkey_alloc", 758 .arg = { [1] = { .scnprintf = SCA_PKEY_ALLOC_ACCESS_RIGHTS, /* access_rights */ }, }, }, 759 { .name = "pkey_free", 760 .arg = { [0] = { .scnprintf = SCA_INT, /* key */ }, }, }, 761 { .name = "pkey_mprotect", 762 .arg = { [0] = { .scnprintf = SCA_HEX, /* start */ }, 763 [2] = { .scnprintf = SCA_MMAP_PROT, /* prot */ }, 764 [3] = { .scnprintf = SCA_INT, /* pkey */ }, }, }, 765 { .name = "poll", .timeout = true, }, 766 { .name = "ppoll", .timeout = true, }, 767 { .name = "prctl", .alias = "arch_prctl", 768 .arg = { [0] = { .scnprintf = SCA_PRCTL_OPTION, /* option */ }, 769 [1] = { .scnprintf = SCA_PRCTL_ARG2, /* arg2 */ }, 770 [2] = { .scnprintf = SCA_PRCTL_ARG3, /* arg3 */ }, }, }, 771 { .name = "pread", .alias = "pread64", }, 772 { .name = "preadv", .alias = "pread", }, 773 { .name = "prlimit64", 774 .arg = { [1] = STRARRAY(resource, rlimit_resources), }, }, 775 { .name = "pwrite", .alias = "pwrite64", }, 776 { .name = "readlinkat", 777 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, }, }, 778 { .name = "recvfrom", 779 .arg = { [3] = { .scnprintf = SCA_MSG_FLAGS, /* flags */ }, }, }, 780 { .name = "recvmmsg", 781 .arg = { [3] = { .scnprintf = SCA_MSG_FLAGS, /* flags */ }, }, }, 782 { .name = "recvmsg", 783 .arg = { [2] = { .scnprintf = SCA_MSG_FLAGS, /* flags */ }, }, }, 784 { .name = "renameat", 785 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, }, }, 786 { .name = "rt_sigaction", 787 .arg = { [0] = { .scnprintf = SCA_SIGNUM, /* sig */ }, }, }, 788 { .name = "rt_sigprocmask", 789 .arg = { [0] = STRARRAY(how, sighow), }, }, 790 { .name = "rt_sigqueueinfo", 791 .arg = { [1] = { .scnprintf = SCA_SIGNUM, /* sig */ }, }, }, 792 { .name = "rt_tgsigqueueinfo", 793 .arg = { [2] = { .scnprintf = SCA_SIGNUM, /* sig */ }, }, }, 794 { .name = "sched_setscheduler", 795 .arg = { [1] = { .scnprintf = SCA_SCHED_POLICY, /* policy */ }, }, }, 796 { .name = "seccomp", 797 .arg = { [0] = { .scnprintf = SCA_SECCOMP_OP, /* op */ }, 798 [1] = { .scnprintf = SCA_SECCOMP_FLAGS, /* flags */ }, }, }, 799 { .name = "select", .timeout = true, }, 800 { .name = "sendmmsg", 801 .arg = { [3] = { .scnprintf = SCA_MSG_FLAGS, /* flags */ }, }, }, 802 { .name = "sendmsg", 803 .arg = { [2] = { .scnprintf = SCA_MSG_FLAGS, /* flags */ }, }, }, 804 { .name = "sendto", 805 .arg = { [3] = { .scnprintf = SCA_MSG_FLAGS, /* flags */ }, 806 [4] = { .scnprintf = SCA_SOCKADDR, /* addr */ }, }, }, 807 { .name = "set_tid_address", .errpid = true, }, 808 { .name = "setitimer", 809 .arg = { [0] = STRARRAY(which, itimers), }, }, 810 { .name = "setrlimit", 811 .arg = { [0] = STRARRAY(resource, rlimit_resources), }, }, 812 { .name = "socket", 813 .arg = { [0] = STRARRAY(family, socket_families), 814 [1] = { .scnprintf = SCA_SK_TYPE, /* type */ }, 815 [2] = { .scnprintf = SCA_SK_PROTO, /* protocol */ }, }, }, 816 { .name = "socketpair", 817 .arg = { [0] = STRARRAY(family, socket_families), 818 [1] = { .scnprintf = SCA_SK_TYPE, /* type */ }, 819 [2] = { .scnprintf = SCA_SK_PROTO, /* protocol */ }, }, }, 820 { .name = "stat", .alias = "newstat", }, 821 { .name = "statx", 822 .arg = { [0] = { .scnprintf = SCA_FDAT, /* fdat */ }, 823 [2] = { .scnprintf = SCA_STATX_FLAGS, /* flags */ } , 824 [3] = { .scnprintf = SCA_STATX_MASK, /* mask */ }, }, }, 825 { .name = "swapoff", 826 .arg = { [0] = { .scnprintf = SCA_FILENAME, /* specialfile */ }, }, }, 827 { .name = "swapon", 828 .arg = { [0] = { .scnprintf = SCA_FILENAME, /* specialfile */ }, }, }, 829 { .name = "symlinkat", 830 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, }, }, 831 { .name = "tgkill", 832 .arg = { [2] = { .scnprintf = SCA_SIGNUM, /* sig */ }, }, }, 833 { .name = "tkill", 834 .arg = { [1] = { .scnprintf = SCA_SIGNUM, /* sig */ }, }, }, 835 { .name = "umount2", .alias = "umount", }, 836 { .name = "uname", .alias = "newuname", }, 837 { .name = "unlinkat", 838 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dfd */ }, }, }, 839 { .name = "utimensat", 840 .arg = { [0] = { .scnprintf = SCA_FDAT, /* dirfd */ }, }, }, 841 { .name = "wait4", .errpid = true, 842 .arg = { [2] = { .scnprintf = SCA_WAITID_OPTIONS, /* options */ }, }, }, 843 { .name = "waitid", .errpid = true, 844 .arg = { [3] = { .scnprintf = SCA_WAITID_OPTIONS, /* options */ }, }, }, 845 }; 846 847 static int syscall_fmt__cmp(const void *name, const void *fmtp) 848 { 849 const struct syscall_fmt *fmt = fmtp; 850 return strcmp(name, fmt->name); 851 } 852 853 static struct syscall_fmt *syscall_fmt__find(const char *name) 854 { 855 const int nmemb = ARRAY_SIZE(syscall_fmts); 856 return bsearch(name, syscall_fmts, nmemb, sizeof(struct syscall_fmt), syscall_fmt__cmp); 857 } 858 859 /* 860 * is_exit: is this "exit" or "exit_group"? 861 * is_open: is this "open" or "openat"? To associate the fd returned in sys_exit with the pathname in sys_enter. 862 * args_size: sum of the sizes of the syscall arguments, anything after that is augmented stuff: pathname for openat, etc. 863 */ 864 struct syscall { 865 struct tep_event_format *tp_format; 866 int nr_args; 867 int args_size; 868 bool is_exit; 869 bool is_open; 870 struct tep_format_field *args; 871 const char *name; 872 struct syscall_fmt *fmt; 873 struct syscall_arg_fmt *arg_fmt; 874 }; 875 876 /* 877 * We need to have this 'calculated' boolean because in some cases we really 878 * don't know what is the duration of a syscall, for instance, when we start 879 * a session and some threads are waiting for a syscall to finish, say 'poll', 880 * in which case all we can do is to print "( ? ) for duration and for the 881 * start timestamp. 882 */ 883 static size_t fprintf_duration(unsigned long t, bool calculated, FILE *fp) 884 { 885 double duration = (double)t / NSEC_PER_MSEC; 886 size_t printed = fprintf(fp, "("); 887 888 if (!calculated) 889 printed += fprintf(fp, " "); 890 else if (duration >= 1.0) 891 printed += color_fprintf(fp, PERF_COLOR_RED, "%6.3f ms", duration); 892 else if (duration >= 0.01) 893 printed += color_fprintf(fp, PERF_COLOR_YELLOW, "%6.3f ms", duration); 894 else 895 printed += color_fprintf(fp, PERF_COLOR_NORMAL, "%6.3f ms", duration); 896 return printed + fprintf(fp, "): "); 897 } 898 899 /** 900 * filename.ptr: The filename char pointer that will be vfs_getname'd 901 * filename.entry_str_pos: Where to insert the string translated from 902 * filename.ptr by the vfs_getname tracepoint/kprobe. 903 * ret_scnprintf: syscall args may set this to a different syscall return 904 * formatter, for instance, fcntl may return fds, file flags, etc. 905 */ 906 struct thread_trace { 907 u64 entry_time; 908 bool entry_pending; 909 unsigned long nr_events; 910 unsigned long pfmaj, pfmin; 911 char *entry_str; 912 double runtime_ms; 913 size_t (*ret_scnprintf)(char *bf, size_t size, struct syscall_arg *arg); 914 struct { 915 unsigned long ptr; 916 short int entry_str_pos; 917 bool pending_open; 918 unsigned int namelen; 919 char *name; 920 } filename; 921 struct { 922 int max; 923 char **table; 924 } paths; 925 926 struct intlist *syscall_stats; 927 }; 928 929 static struct thread_trace *thread_trace__new(void) 930 { 931 struct thread_trace *ttrace = zalloc(sizeof(struct thread_trace)); 932 933 if (ttrace) 934 ttrace->paths.max = -1; 935 936 ttrace->syscall_stats = intlist__new(NULL); 937 938 return ttrace; 939 } 940 941 static struct thread_trace *thread__trace(struct thread *thread, FILE *fp) 942 { 943 struct thread_trace *ttrace; 944 945 if (thread == NULL) 946 goto fail; 947 948 if (thread__priv(thread) == NULL) 949 thread__set_priv(thread, thread_trace__new()); 950 951 if (thread__priv(thread) == NULL) 952 goto fail; 953 954 ttrace = thread__priv(thread); 955 ++ttrace->nr_events; 956 957 return ttrace; 958 fail: 959 color_fprintf(fp, PERF_COLOR_RED, 960 "WARNING: not enough memory, dropping samples!\n"); 961 return NULL; 962 } 963 964 965 void syscall_arg__set_ret_scnprintf(struct syscall_arg *arg, 966 size_t (*ret_scnprintf)(char *bf, size_t size, struct syscall_arg *arg)) 967 { 968 struct thread_trace *ttrace = thread__priv(arg->thread); 969 970 ttrace->ret_scnprintf = ret_scnprintf; 971 } 972 973 #define TRACE_PFMAJ (1 << 0) 974 #define TRACE_PFMIN (1 << 1) 975 976 static const size_t trace__entry_str_size = 2048; 977 978 static int trace__set_fd_pathname(struct thread *thread, int fd, const char *pathname) 979 { 980 struct thread_trace *ttrace = thread__priv(thread); 981 982 if (fd > ttrace->paths.max) { 983 char **npath = realloc(ttrace->paths.table, (fd + 1) * sizeof(char *)); 984 985 if (npath == NULL) 986 return -1; 987 988 if (ttrace->paths.max != -1) { 989 memset(npath + ttrace->paths.max + 1, 0, 990 (fd - ttrace->paths.max) * sizeof(char *)); 991 } else { 992 memset(npath, 0, (fd + 1) * sizeof(char *)); 993 } 994 995 ttrace->paths.table = npath; 996 ttrace->paths.max = fd; 997 } 998 999 ttrace->paths.table[fd] = strdup(pathname); 1000 1001 return ttrace->paths.table[fd] != NULL ? 0 : -1; 1002 } 1003 1004 static int thread__read_fd_path(struct thread *thread, int fd) 1005 { 1006 char linkname[PATH_MAX], pathname[PATH_MAX]; 1007 struct stat st; 1008 int ret; 1009 1010 if (thread->pid_ == thread->tid) { 1011 scnprintf(linkname, sizeof(linkname), 1012 "/proc/%d/fd/%d", thread->pid_, fd); 1013 } else { 1014 scnprintf(linkname, sizeof(linkname), 1015 "/proc/%d/task/%d/fd/%d", thread->pid_, thread->tid, fd); 1016 } 1017 1018 if (lstat(linkname, &st) < 0 || st.st_size + 1 > (off_t)sizeof(pathname)) 1019 return -1; 1020 1021 ret = readlink(linkname, pathname, sizeof(pathname)); 1022 1023 if (ret < 0 || ret > st.st_size) 1024 return -1; 1025 1026 pathname[ret] = '\0'; 1027 return trace__set_fd_pathname(thread, fd, pathname); 1028 } 1029 1030 static const char *thread__fd_path(struct thread *thread, int fd, 1031 struct trace *trace) 1032 { 1033 struct thread_trace *ttrace = thread__priv(thread); 1034 1035 if (ttrace == NULL) 1036 return NULL; 1037 1038 if (fd < 0) 1039 return NULL; 1040 1041 if ((fd > ttrace->paths.max || ttrace->paths.table[fd] == NULL)) { 1042 if (!trace->live) 1043 return NULL; 1044 ++trace->stats.proc_getname; 1045 if (thread__read_fd_path(thread, fd)) 1046 return NULL; 1047 } 1048 1049 return ttrace->paths.table[fd]; 1050 } 1051 1052 size_t syscall_arg__scnprintf_fd(char *bf, size_t size, struct syscall_arg *arg) 1053 { 1054 int fd = arg->val; 1055 size_t printed = scnprintf(bf, size, "%d", fd); 1056 const char *path = thread__fd_path(arg->thread, fd, arg->trace); 1057 1058 if (path) 1059 printed += scnprintf(bf + printed, size - printed, "<%s>", path); 1060 1061 return printed; 1062 } 1063 1064 size_t pid__scnprintf_fd(struct trace *trace, pid_t pid, int fd, char *bf, size_t size) 1065 { 1066 size_t printed = scnprintf(bf, size, "%d", fd); 1067 struct thread *thread = machine__find_thread(trace->host, pid, pid); 1068 1069 if (thread) { 1070 const char *path = thread__fd_path(thread, fd, trace); 1071 1072 if (path) 1073 printed += scnprintf(bf + printed, size - printed, "<%s>", path); 1074 1075 thread__put(thread); 1076 } 1077 1078 return printed; 1079 } 1080 1081 static size_t syscall_arg__scnprintf_close_fd(char *bf, size_t size, 1082 struct syscall_arg *arg) 1083 { 1084 int fd = arg->val; 1085 size_t printed = syscall_arg__scnprintf_fd(bf, size, arg); 1086 struct thread_trace *ttrace = thread__priv(arg->thread); 1087 1088 if (ttrace && fd >= 0 && fd <= ttrace->paths.max) 1089 zfree(&ttrace->paths.table[fd]); 1090 1091 return printed; 1092 } 1093 1094 static void thread__set_filename_pos(struct thread *thread, const char *bf, 1095 unsigned long ptr) 1096 { 1097 struct thread_trace *ttrace = thread__priv(thread); 1098 1099 ttrace->filename.ptr = ptr; 1100 ttrace->filename.entry_str_pos = bf - ttrace->entry_str; 1101 } 1102 1103 static size_t syscall_arg__scnprintf_augmented_string(struct syscall_arg *arg, char *bf, size_t size) 1104 { 1105 struct augmented_arg *augmented_arg = arg->augmented.args; 1106 1107 return scnprintf(bf, size, "%.*s", augmented_arg->size, augmented_arg->value); 1108 } 1109 1110 static size_t syscall_arg__scnprintf_filename(char *bf, size_t size, 1111 struct syscall_arg *arg) 1112 { 1113 unsigned long ptr = arg->val; 1114 1115 if (arg->augmented.args) 1116 return syscall_arg__scnprintf_augmented_string(arg, bf, size); 1117 1118 if (!arg->trace->vfs_getname) 1119 return scnprintf(bf, size, "%#x", ptr); 1120 1121 thread__set_filename_pos(arg->thread, bf, ptr); 1122 return 0; 1123 } 1124 1125 static bool trace__filter_duration(struct trace *trace, double t) 1126 { 1127 return t < (trace->duration_filter * NSEC_PER_MSEC); 1128 } 1129 1130 static size_t __trace__fprintf_tstamp(struct trace *trace, u64 tstamp, FILE *fp) 1131 { 1132 double ts = (double)(tstamp - trace->base_time) / NSEC_PER_MSEC; 1133 1134 return fprintf(fp, "%10.3f ", ts); 1135 } 1136 1137 /* 1138 * We're handling tstamp=0 as an undefined tstamp, i.e. like when we are 1139 * using ttrace->entry_time for a thread that receives a sys_exit without 1140 * first having received a sys_enter ("poll" issued before tracing session 1141 * starts, lost sys_enter exit due to ring buffer overflow). 1142 */ 1143 static size_t trace__fprintf_tstamp(struct trace *trace, u64 tstamp, FILE *fp) 1144 { 1145 if (tstamp > 0) 1146 return __trace__fprintf_tstamp(trace, tstamp, fp); 1147 1148 return fprintf(fp, " ? "); 1149 } 1150 1151 static bool done = false; 1152 static bool interrupted = false; 1153 1154 static void sig_handler(int sig) 1155 { 1156 done = true; 1157 interrupted = sig == SIGINT; 1158 } 1159 1160 static size_t trace__fprintf_comm_tid(struct trace *trace, struct thread *thread, FILE *fp) 1161 { 1162 size_t printed = 0; 1163 1164 if (trace->multiple_threads) { 1165 if (trace->show_comm) 1166 printed += fprintf(fp, "%.14s/", thread__comm_str(thread)); 1167 printed += fprintf(fp, "%d ", thread->tid); 1168 } 1169 1170 return printed; 1171 } 1172 1173 static size_t trace__fprintf_entry_head(struct trace *trace, struct thread *thread, 1174 u64 duration, bool duration_calculated, u64 tstamp, FILE *fp) 1175 { 1176 size_t printed = trace__fprintf_tstamp(trace, tstamp, fp); 1177 printed += fprintf_duration(duration, duration_calculated, fp); 1178 return printed + trace__fprintf_comm_tid(trace, thread, fp); 1179 } 1180 1181 static int trace__process_event(struct trace *trace, struct machine *machine, 1182 union perf_event *event, struct perf_sample *sample) 1183 { 1184 int ret = 0; 1185 1186 switch (event->header.type) { 1187 case PERF_RECORD_LOST: 1188 color_fprintf(trace->output, PERF_COLOR_RED, 1189 "LOST %" PRIu64 " events!\n", event->lost.lost); 1190 ret = machine__process_lost_event(machine, event, sample); 1191 break; 1192 default: 1193 ret = machine__process_event(machine, event, sample); 1194 break; 1195 } 1196 1197 return ret; 1198 } 1199 1200 static int trace__tool_process(struct perf_tool *tool, 1201 union perf_event *event, 1202 struct perf_sample *sample, 1203 struct machine *machine) 1204 { 1205 struct trace *trace = container_of(tool, struct trace, tool); 1206 return trace__process_event(trace, machine, event, sample); 1207 } 1208 1209 static char *trace__machine__resolve_kernel_addr(void *vmachine, unsigned long long *addrp, char **modp) 1210 { 1211 struct machine *machine = vmachine; 1212 1213 if (machine->kptr_restrict_warned) 1214 return NULL; 1215 1216 if (symbol_conf.kptr_restrict) { 1217 pr_warning("Kernel address maps (/proc/{kallsyms,modules}) are restricted.\n\n" 1218 "Check /proc/sys/kernel/kptr_restrict.\n\n" 1219 "Kernel samples will not be resolved.\n"); 1220 machine->kptr_restrict_warned = true; 1221 return NULL; 1222 } 1223 1224 return machine__resolve_kernel_addr(vmachine, addrp, modp); 1225 } 1226 1227 static int trace__symbols_init(struct trace *trace, struct perf_evlist *evlist) 1228 { 1229 int err = symbol__init(NULL); 1230 1231 if (err) 1232 return err; 1233 1234 trace->host = machine__new_host(); 1235 if (trace->host == NULL) 1236 return -ENOMEM; 1237 1238 err = trace_event__register_resolver(trace->host, trace__machine__resolve_kernel_addr); 1239 if (err < 0) 1240 goto out; 1241 1242 err = __machine__synthesize_threads(trace->host, &trace->tool, &trace->opts.target, 1243 evlist->threads, trace__tool_process, false, 1244 trace->opts.proc_map_timeout, 1); 1245 out: 1246 if (err) 1247 symbol__exit(); 1248 1249 return err; 1250 } 1251 1252 static void trace__symbols__exit(struct trace *trace) 1253 { 1254 machine__exit(trace->host); 1255 trace->host = NULL; 1256 1257 symbol__exit(); 1258 } 1259 1260 static int syscall__alloc_arg_fmts(struct syscall *sc, int nr_args) 1261 { 1262 int idx; 1263 1264 if (nr_args == 6 && sc->fmt && sc->fmt->nr_args != 0) 1265 nr_args = sc->fmt->nr_args; 1266 1267 sc->arg_fmt = calloc(nr_args, sizeof(*sc->arg_fmt)); 1268 if (sc->arg_fmt == NULL) 1269 return -1; 1270 1271 for (idx = 0; idx < nr_args; ++idx) { 1272 if (sc->fmt) 1273 sc->arg_fmt[idx] = sc->fmt->arg[idx]; 1274 } 1275 1276 sc->nr_args = nr_args; 1277 return 0; 1278 } 1279 1280 static int syscall__set_arg_fmts(struct syscall *sc) 1281 { 1282 struct tep_format_field *field, *last_field = NULL; 1283 int idx = 0, len; 1284 1285 for (field = sc->args; field; field = field->next, ++idx) { 1286 last_field = field; 1287 1288 if (sc->fmt && sc->fmt->arg[idx].scnprintf) 1289 continue; 1290 1291 if (strcmp(field->type, "const char *") == 0 && 1292 (strcmp(field->name, "filename") == 0 || 1293 strcmp(field->name, "path") == 0 || 1294 strcmp(field->name, "pathname") == 0)) 1295 sc->arg_fmt[idx].scnprintf = SCA_FILENAME; 1296 else if (field->flags & TEP_FIELD_IS_POINTER) 1297 sc->arg_fmt[idx].scnprintf = syscall_arg__scnprintf_hex; 1298 else if (strcmp(field->type, "pid_t") == 0) 1299 sc->arg_fmt[idx].scnprintf = SCA_PID; 1300 else if (strcmp(field->type, "umode_t") == 0) 1301 sc->arg_fmt[idx].scnprintf = SCA_MODE_T; 1302 else if ((strcmp(field->type, "int") == 0 || 1303 strcmp(field->type, "unsigned int") == 0 || 1304 strcmp(field->type, "long") == 0) && 1305 (len = strlen(field->name)) >= 2 && 1306 strcmp(field->name + len - 2, "fd") == 0) { 1307 /* 1308 * /sys/kernel/tracing/events/syscalls/sys_enter* 1309 * egrep 'field:.*fd;' .../format|sed -r 's/.*field:([a-z ]+) [a-z_]*fd.+/\1/g'|sort|uniq -c 1310 * 65 int 1311 * 23 unsigned int 1312 * 7 unsigned long 1313 */ 1314 sc->arg_fmt[idx].scnprintf = SCA_FD; 1315 } 1316 } 1317 1318 if (last_field) 1319 sc->args_size = last_field->offset + last_field->size; 1320 1321 return 0; 1322 } 1323 1324 static int trace__read_syscall_info(struct trace *trace, int id) 1325 { 1326 char tp_name[128]; 1327 struct syscall *sc; 1328 const char *name = syscalltbl__name(trace->sctbl, id); 1329 1330 if (name == NULL) 1331 return -1; 1332 1333 if (id > trace->syscalls.max) { 1334 struct syscall *nsyscalls = realloc(trace->syscalls.table, (id + 1) * sizeof(*sc)); 1335 1336 if (nsyscalls == NULL) 1337 return -1; 1338 1339 if (trace->syscalls.max != -1) { 1340 memset(nsyscalls + trace->syscalls.max + 1, 0, 1341 (id - trace->syscalls.max) * sizeof(*sc)); 1342 } else { 1343 memset(nsyscalls, 0, (id + 1) * sizeof(*sc)); 1344 } 1345 1346 trace->syscalls.table = nsyscalls; 1347 trace->syscalls.max = id; 1348 } 1349 1350 sc = trace->syscalls.table + id; 1351 sc->name = name; 1352 1353 sc->fmt = syscall_fmt__find(sc->name); 1354 1355 snprintf(tp_name, sizeof(tp_name), "sys_enter_%s", sc->name); 1356 sc->tp_format = trace_event__tp_format("syscalls", tp_name); 1357 1358 if (IS_ERR(sc->tp_format) && sc->fmt && sc->fmt->alias) { 1359 snprintf(tp_name, sizeof(tp_name), "sys_enter_%s", sc->fmt->alias); 1360 sc->tp_format = trace_event__tp_format("syscalls", tp_name); 1361 } 1362 1363 if (syscall__alloc_arg_fmts(sc, IS_ERR(sc->tp_format) ? 6 : sc->tp_format->format.nr_fields)) 1364 return -1; 1365 1366 if (IS_ERR(sc->tp_format)) 1367 return -1; 1368 1369 sc->args = sc->tp_format->format.fields; 1370 /* 1371 * We need to check and discard the first variable '__syscall_nr' 1372 * or 'nr' that mean the syscall number. It is needless here. 1373 * So drop '__syscall_nr' or 'nr' field but does not exist on older kernels. 1374 */ 1375 if (sc->args && (!strcmp(sc->args->name, "__syscall_nr") || !strcmp(sc->args->name, "nr"))) { 1376 sc->args = sc->args->next; 1377 --sc->nr_args; 1378 } 1379 1380 sc->is_exit = !strcmp(name, "exit_group") || !strcmp(name, "exit"); 1381 sc->is_open = !strcmp(name, "open") || !strcmp(name, "openat"); 1382 1383 return syscall__set_arg_fmts(sc); 1384 } 1385 1386 static int trace__validate_ev_qualifier(struct trace *trace) 1387 { 1388 int err = 0, i; 1389 size_t nr_allocated; 1390 struct str_node *pos; 1391 1392 trace->ev_qualifier_ids.nr = strlist__nr_entries(trace->ev_qualifier); 1393 trace->ev_qualifier_ids.entries = malloc(trace->ev_qualifier_ids.nr * 1394 sizeof(trace->ev_qualifier_ids.entries[0])); 1395 1396 if (trace->ev_qualifier_ids.entries == NULL) { 1397 fputs("Error:\tNot enough memory for allocating events qualifier ids\n", 1398 trace->output); 1399 err = -EINVAL; 1400 goto out; 1401 } 1402 1403 nr_allocated = trace->ev_qualifier_ids.nr; 1404 i = 0; 1405 1406 strlist__for_each_entry(pos, trace->ev_qualifier) { 1407 const char *sc = pos->s; 1408 int id = syscalltbl__id(trace->sctbl, sc), match_next = -1; 1409 1410 if (id < 0) { 1411 id = syscalltbl__strglobmatch_first(trace->sctbl, sc, &match_next); 1412 if (id >= 0) 1413 goto matches; 1414 1415 if (err == 0) { 1416 fputs("Error:\tInvalid syscall ", trace->output); 1417 err = -EINVAL; 1418 } else { 1419 fputs(", ", trace->output); 1420 } 1421 1422 fputs(sc, trace->output); 1423 } 1424 matches: 1425 trace->ev_qualifier_ids.entries[i++] = id; 1426 if (match_next == -1) 1427 continue; 1428 1429 while (1) { 1430 id = syscalltbl__strglobmatch_next(trace->sctbl, sc, &match_next); 1431 if (id < 0) 1432 break; 1433 if (nr_allocated == trace->ev_qualifier_ids.nr) { 1434 void *entries; 1435 1436 nr_allocated += 8; 1437 entries = realloc(trace->ev_qualifier_ids.entries, 1438 nr_allocated * sizeof(trace->ev_qualifier_ids.entries[0])); 1439 if (entries == NULL) { 1440 err = -ENOMEM; 1441 fputs("\nError:\t Not enough memory for parsing\n", trace->output); 1442 goto out_free; 1443 } 1444 trace->ev_qualifier_ids.entries = entries; 1445 } 1446 trace->ev_qualifier_ids.nr++; 1447 trace->ev_qualifier_ids.entries[i++] = id; 1448 } 1449 } 1450 1451 if (err < 0) { 1452 fputs("\nHint:\ttry 'perf list syscalls:sys_enter_*'" 1453 "\nHint:\tand: 'man syscalls'\n", trace->output); 1454 out_free: 1455 zfree(&trace->ev_qualifier_ids.entries); 1456 trace->ev_qualifier_ids.nr = 0; 1457 } 1458 out: 1459 return err; 1460 } 1461 1462 /* 1463 * args is to be interpreted as a series of longs but we need to handle 1464 * 8-byte unaligned accesses. args points to raw_data within the event 1465 * and raw_data is guaranteed to be 8-byte unaligned because it is 1466 * preceded by raw_size which is a u32. So we need to copy args to a temp 1467 * variable to read it. Most notably this avoids extended load instructions 1468 * on unaligned addresses 1469 */ 1470 unsigned long syscall_arg__val(struct syscall_arg *arg, u8 idx) 1471 { 1472 unsigned long val; 1473 unsigned char *p = arg->args + sizeof(unsigned long) * idx; 1474 1475 memcpy(&val, p, sizeof(val)); 1476 return val; 1477 } 1478 1479 static size_t syscall__scnprintf_name(struct syscall *sc, char *bf, size_t size, 1480 struct syscall_arg *arg) 1481 { 1482 if (sc->arg_fmt && sc->arg_fmt[arg->idx].name) 1483 return scnprintf(bf, size, "%s: ", sc->arg_fmt[arg->idx].name); 1484 1485 return scnprintf(bf, size, "arg%d: ", arg->idx); 1486 } 1487 1488 static size_t syscall__scnprintf_val(struct syscall *sc, char *bf, size_t size, 1489 struct syscall_arg *arg, unsigned long val) 1490 { 1491 if (sc->arg_fmt && sc->arg_fmt[arg->idx].scnprintf) { 1492 arg->val = val; 1493 if (sc->arg_fmt[arg->idx].parm) 1494 arg->parm = sc->arg_fmt[arg->idx].parm; 1495 return sc->arg_fmt[arg->idx].scnprintf(bf, size, arg); 1496 } 1497 return scnprintf(bf, size, "%ld", val); 1498 } 1499 1500 static size_t syscall__scnprintf_args(struct syscall *sc, char *bf, size_t size, 1501 unsigned char *args, void *augmented_args, int augmented_args_size, 1502 struct trace *trace, struct thread *thread) 1503 { 1504 size_t printed = 0; 1505 unsigned long val; 1506 u8 bit = 1; 1507 struct syscall_arg arg = { 1508 .args = args, 1509 .augmented = { 1510 .size = augmented_args_size, 1511 .args = augmented_args, 1512 }, 1513 .idx = 0, 1514 .mask = 0, 1515 .trace = trace, 1516 .thread = thread, 1517 }; 1518 struct thread_trace *ttrace = thread__priv(thread); 1519 1520 /* 1521 * Things like fcntl will set this in its 'cmd' formatter to pick the 1522 * right formatter for the return value (an fd? file flags?), which is 1523 * not needed for syscalls that always return a given type, say an fd. 1524 */ 1525 ttrace->ret_scnprintf = NULL; 1526 1527 if (sc->args != NULL) { 1528 struct tep_format_field *field; 1529 1530 for (field = sc->args; field; 1531 field = field->next, ++arg.idx, bit <<= 1) { 1532 if (arg.mask & bit) 1533 continue; 1534 1535 val = syscall_arg__val(&arg, arg.idx); 1536 1537 /* 1538 * Suppress this argument if its value is zero and 1539 * and we don't have a string associated in an 1540 * strarray for it. 1541 */ 1542 if (val == 0 && 1543 !(sc->arg_fmt && 1544 (sc->arg_fmt[arg.idx].show_zero || 1545 sc->arg_fmt[arg.idx].scnprintf == SCA_STRARRAY || 1546 sc->arg_fmt[arg.idx].scnprintf == SCA_STRARRAYS) && 1547 sc->arg_fmt[arg.idx].parm)) 1548 continue; 1549 1550 printed += scnprintf(bf + printed, size - printed, 1551 "%s%s: ", printed ? ", " : "", field->name); 1552 printed += syscall__scnprintf_val(sc, bf + printed, size - printed, &arg, val); 1553 } 1554 } else if (IS_ERR(sc->tp_format)) { 1555 /* 1556 * If we managed to read the tracepoint /format file, then we 1557 * may end up not having any args, like with gettid(), so only 1558 * print the raw args when we didn't manage to read it. 1559 */ 1560 while (arg.idx < sc->nr_args) { 1561 if (arg.mask & bit) 1562 goto next_arg; 1563 val = syscall_arg__val(&arg, arg.idx); 1564 if (printed) 1565 printed += scnprintf(bf + printed, size - printed, ", "); 1566 printed += syscall__scnprintf_name(sc, bf + printed, size - printed, &arg); 1567 printed += syscall__scnprintf_val(sc, bf + printed, size - printed, &arg, val); 1568 next_arg: 1569 ++arg.idx; 1570 bit <<= 1; 1571 } 1572 } 1573 1574 return printed; 1575 } 1576 1577 typedef int (*tracepoint_handler)(struct trace *trace, struct perf_evsel *evsel, 1578 union perf_event *event, 1579 struct perf_sample *sample); 1580 1581 static struct syscall *trace__syscall_info(struct trace *trace, 1582 struct perf_evsel *evsel, int id) 1583 { 1584 1585 if (id < 0) { 1586 1587 /* 1588 * XXX: Noticed on x86_64, reproduced as far back as 3.0.36, haven't tried 1589 * before that, leaving at a higher verbosity level till that is 1590 * explained. Reproduced with plain ftrace with: 1591 * 1592 * echo 1 > /t/events/raw_syscalls/sys_exit/enable 1593 * grep "NR -1 " /t/trace_pipe 1594 * 1595 * After generating some load on the machine. 1596 */ 1597 if (verbose > 1) { 1598 static u64 n; 1599 fprintf(trace->output, "Invalid syscall %d id, skipping (%s, %" PRIu64 ") ...\n", 1600 id, perf_evsel__name(evsel), ++n); 1601 } 1602 return NULL; 1603 } 1604 1605 if ((id > trace->syscalls.max || trace->syscalls.table[id].name == NULL) && 1606 trace__read_syscall_info(trace, id)) 1607 goto out_cant_read; 1608 1609 if ((id > trace->syscalls.max || trace->syscalls.table[id].name == NULL)) 1610 goto out_cant_read; 1611 1612 return &trace->syscalls.table[id]; 1613 1614 out_cant_read: 1615 if (verbose > 0) { 1616 fprintf(trace->output, "Problems reading syscall %d", id); 1617 if (id <= trace->syscalls.max && trace->syscalls.table[id].name != NULL) 1618 fprintf(trace->output, "(%s)", trace->syscalls.table[id].name); 1619 fputs(" information\n", trace->output); 1620 } 1621 return NULL; 1622 } 1623 1624 static void thread__update_stats(struct thread_trace *ttrace, 1625 int id, struct perf_sample *sample) 1626 { 1627 struct int_node *inode; 1628 struct stats *stats; 1629 u64 duration = 0; 1630 1631 inode = intlist__findnew(ttrace->syscall_stats, id); 1632 if (inode == NULL) 1633 return; 1634 1635 stats = inode->priv; 1636 if (stats == NULL) { 1637 stats = malloc(sizeof(struct stats)); 1638 if (stats == NULL) 1639 return; 1640 init_stats(stats); 1641 inode->priv = stats; 1642 } 1643 1644 if (ttrace->entry_time && sample->time > ttrace->entry_time) 1645 duration = sample->time - ttrace->entry_time; 1646 1647 update_stats(stats, duration); 1648 } 1649 1650 static int trace__printf_interrupted_entry(struct trace *trace) 1651 { 1652 struct thread_trace *ttrace; 1653 size_t printed; 1654 1655 if (trace->failure_only || trace->current == NULL) 1656 return 0; 1657 1658 ttrace = thread__priv(trace->current); 1659 1660 if (!ttrace->entry_pending) 1661 return 0; 1662 1663 printed = trace__fprintf_entry_head(trace, trace->current, 0, false, ttrace->entry_time, trace->output); 1664 printed += fprintf(trace->output, "%-70s) ...\n", ttrace->entry_str); 1665 ttrace->entry_pending = false; 1666 1667 return printed; 1668 } 1669 1670 static int trace__fprintf_sample(struct trace *trace, struct perf_evsel *evsel, 1671 struct perf_sample *sample, struct thread *thread) 1672 { 1673 int printed = 0; 1674 1675 if (trace->print_sample) { 1676 double ts = (double)sample->time / NSEC_PER_MSEC; 1677 1678 printed += fprintf(trace->output, "%22s %10.3f %s %d/%d [%d]\n", 1679 perf_evsel__name(evsel), ts, 1680 thread__comm_str(thread), 1681 sample->pid, sample->tid, sample->cpu); 1682 } 1683 1684 return printed; 1685 } 1686 1687 static void *syscall__augmented_args(struct syscall *sc, struct perf_sample *sample, int *augmented_args_size) 1688 { 1689 void *augmented_args = NULL; 1690 1691 *augmented_args_size = sample->raw_size - sc->args_size; 1692 if (*augmented_args_size > 0) 1693 augmented_args = sample->raw_data + sc->args_size; 1694 1695 return augmented_args; 1696 } 1697 1698 static int trace__sys_enter(struct trace *trace, struct perf_evsel *evsel, 1699 union perf_event *event __maybe_unused, 1700 struct perf_sample *sample) 1701 { 1702 char *msg; 1703 void *args; 1704 size_t printed = 0; 1705 struct thread *thread; 1706 int id = perf_evsel__sc_tp_uint(evsel, id, sample), err = -1; 1707 int augmented_args_size = 0; 1708 void *augmented_args = NULL; 1709 struct syscall *sc = trace__syscall_info(trace, evsel, id); 1710 struct thread_trace *ttrace; 1711 1712 if (sc == NULL) 1713 return -1; 1714 1715 thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 1716 ttrace = thread__trace(thread, trace->output); 1717 if (ttrace == NULL) 1718 goto out_put; 1719 1720 trace__fprintf_sample(trace, evsel, sample, thread); 1721 1722 args = perf_evsel__sc_tp_ptr(evsel, args, sample); 1723 1724 if (ttrace->entry_str == NULL) { 1725 ttrace->entry_str = malloc(trace__entry_str_size); 1726 if (!ttrace->entry_str) 1727 goto out_put; 1728 } 1729 1730 if (!(trace->duration_filter || trace->summary_only || trace->min_stack)) 1731 trace__printf_interrupted_entry(trace); 1732 /* 1733 * If this is raw_syscalls.sys_enter, then it always comes with the 6 possible 1734 * arguments, even if the syscall being handled, say "openat", uses only 4 arguments 1735 * this breaks syscall__augmented_args() check for augmented args, as we calculate 1736 * syscall->args_size using each syscalls:sys_enter_NAME tracefs format file, 1737 * so when handling, say the openat syscall, we end up getting 6 args for the 1738 * raw_syscalls:sys_enter event, when we expected just 4, we end up mistakenly 1739 * thinking that the extra 2 u64 args are the augmented filename, so just check 1740 * here and avoid using augmented syscalls when the evsel is the raw_syscalls one. 1741 */ 1742 if (evsel != trace->syscalls.events.sys_enter) 1743 augmented_args = syscall__augmented_args(sc, sample, &augmented_args_size); 1744 ttrace->entry_time = sample->time; 1745 msg = ttrace->entry_str; 1746 printed += scnprintf(msg + printed, trace__entry_str_size - printed, "%s(", sc->name); 1747 1748 printed += syscall__scnprintf_args(sc, msg + printed, trace__entry_str_size - printed, 1749 args, augmented_args, augmented_args_size, trace, thread); 1750 1751 if (sc->is_exit) { 1752 if (!(trace->duration_filter || trace->summary_only || trace->failure_only || trace->min_stack)) { 1753 trace__fprintf_entry_head(trace, thread, 0, false, ttrace->entry_time, trace->output); 1754 fprintf(trace->output, "%-70s)\n", ttrace->entry_str); 1755 } 1756 } else { 1757 ttrace->entry_pending = true; 1758 /* See trace__vfs_getname & trace__sys_exit */ 1759 ttrace->filename.pending_open = false; 1760 } 1761 1762 if (trace->current != thread) { 1763 thread__put(trace->current); 1764 trace->current = thread__get(thread); 1765 } 1766 err = 0; 1767 out_put: 1768 thread__put(thread); 1769 return err; 1770 } 1771 1772 static int trace__fprintf_sys_enter(struct trace *trace, struct perf_evsel *evsel, 1773 struct perf_sample *sample) 1774 { 1775 struct thread_trace *ttrace; 1776 struct thread *thread; 1777 int id = perf_evsel__sc_tp_uint(evsel, id, sample), err = -1; 1778 struct syscall *sc = trace__syscall_info(trace, evsel, id); 1779 char msg[1024]; 1780 void *args, *augmented_args = NULL; 1781 int augmented_args_size; 1782 1783 if (sc == NULL) 1784 return -1; 1785 1786 thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 1787 ttrace = thread__trace(thread, trace->output); 1788 /* 1789 * We need to get ttrace just to make sure it is there when syscall__scnprintf_args() 1790 * and the rest of the beautifiers accessing it via struct syscall_arg touches it. 1791 */ 1792 if (ttrace == NULL) 1793 goto out_put; 1794 1795 args = perf_evsel__sc_tp_ptr(evsel, args, sample); 1796 augmented_args = syscall__augmented_args(sc, sample, &augmented_args_size); 1797 syscall__scnprintf_args(sc, msg, sizeof(msg), args, augmented_args, augmented_args_size, trace, thread); 1798 fprintf(trace->output, "%s", msg); 1799 err = 0; 1800 out_put: 1801 thread__put(thread); 1802 return err; 1803 } 1804 1805 static int trace__resolve_callchain(struct trace *trace, struct perf_evsel *evsel, 1806 struct perf_sample *sample, 1807 struct callchain_cursor *cursor) 1808 { 1809 struct addr_location al; 1810 int max_stack = evsel->attr.sample_max_stack ? 1811 evsel->attr.sample_max_stack : 1812 trace->max_stack; 1813 1814 if (machine__resolve(trace->host, &al, sample) < 0 || 1815 thread__resolve_callchain(al.thread, cursor, evsel, sample, NULL, NULL, max_stack)) 1816 return -1; 1817 1818 return 0; 1819 } 1820 1821 static int trace__fprintf_callchain(struct trace *trace, struct perf_sample *sample) 1822 { 1823 /* TODO: user-configurable print_opts */ 1824 const unsigned int print_opts = EVSEL__PRINT_SYM | 1825 EVSEL__PRINT_DSO | 1826 EVSEL__PRINT_UNKNOWN_AS_ADDR; 1827 1828 return sample__fprintf_callchain(sample, 38, print_opts, &callchain_cursor, trace->output); 1829 } 1830 1831 static const char *errno_to_name(struct perf_evsel *evsel, int err) 1832 { 1833 struct perf_env *env = perf_evsel__env(evsel); 1834 const char *arch_name = perf_env__arch(env); 1835 1836 return arch_syscalls__strerrno(arch_name, err); 1837 } 1838 1839 static int trace__sys_exit(struct trace *trace, struct perf_evsel *evsel, 1840 union perf_event *event __maybe_unused, 1841 struct perf_sample *sample) 1842 { 1843 long ret; 1844 u64 duration = 0; 1845 bool duration_calculated = false; 1846 struct thread *thread; 1847 int id = perf_evsel__sc_tp_uint(evsel, id, sample), err = -1, callchain_ret = 0; 1848 struct syscall *sc = trace__syscall_info(trace, evsel, id); 1849 struct thread_trace *ttrace; 1850 1851 if (sc == NULL) 1852 return -1; 1853 1854 thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 1855 ttrace = thread__trace(thread, trace->output); 1856 if (ttrace == NULL) 1857 goto out_put; 1858 1859 trace__fprintf_sample(trace, evsel, sample, thread); 1860 1861 if (trace->summary) 1862 thread__update_stats(ttrace, id, sample); 1863 1864 ret = perf_evsel__sc_tp_uint(evsel, ret, sample); 1865 1866 if (sc->is_open && ret >= 0 && ttrace->filename.pending_open) { 1867 trace__set_fd_pathname(thread, ret, ttrace->filename.name); 1868 ttrace->filename.pending_open = false; 1869 ++trace->stats.vfs_getname; 1870 } 1871 1872 if (ttrace->entry_time) { 1873 duration = sample->time - ttrace->entry_time; 1874 if (trace__filter_duration(trace, duration)) 1875 goto out; 1876 duration_calculated = true; 1877 } else if (trace->duration_filter) 1878 goto out; 1879 1880 if (sample->callchain) { 1881 callchain_ret = trace__resolve_callchain(trace, evsel, sample, &callchain_cursor); 1882 if (callchain_ret == 0) { 1883 if (callchain_cursor.nr < trace->min_stack) 1884 goto out; 1885 callchain_ret = 1; 1886 } 1887 } 1888 1889 if (trace->summary_only || (ret >= 0 && trace->failure_only)) 1890 goto out; 1891 1892 trace__fprintf_entry_head(trace, thread, duration, duration_calculated, ttrace->entry_time, trace->output); 1893 1894 if (ttrace->entry_pending) { 1895 fprintf(trace->output, "%-70s", ttrace->entry_str); 1896 } else { 1897 fprintf(trace->output, " ... ["); 1898 color_fprintf(trace->output, PERF_COLOR_YELLOW, "continued"); 1899 fprintf(trace->output, "]: %s()", sc->name); 1900 } 1901 1902 if (sc->fmt == NULL) { 1903 if (ret < 0) 1904 goto errno_print; 1905 signed_print: 1906 fprintf(trace->output, ") = %ld", ret); 1907 } else if (ret < 0) { 1908 errno_print: { 1909 char bf[STRERR_BUFSIZE]; 1910 const char *emsg = str_error_r(-ret, bf, sizeof(bf)), 1911 *e = errno_to_name(evsel, -ret); 1912 1913 fprintf(trace->output, ") = -1 %s %s", e, emsg); 1914 } 1915 } else if (ret == 0 && sc->fmt->timeout) 1916 fprintf(trace->output, ") = 0 Timeout"); 1917 else if (ttrace->ret_scnprintf) { 1918 char bf[1024]; 1919 struct syscall_arg arg = { 1920 .val = ret, 1921 .thread = thread, 1922 .trace = trace, 1923 }; 1924 ttrace->ret_scnprintf(bf, sizeof(bf), &arg); 1925 ttrace->ret_scnprintf = NULL; 1926 fprintf(trace->output, ") = %s", bf); 1927 } else if (sc->fmt->hexret) 1928 fprintf(trace->output, ") = %#lx", ret); 1929 else if (sc->fmt->errpid) { 1930 struct thread *child = machine__find_thread(trace->host, ret, ret); 1931 1932 if (child != NULL) { 1933 fprintf(trace->output, ") = %ld", ret); 1934 if (child->comm_set) 1935 fprintf(trace->output, " (%s)", thread__comm_str(child)); 1936 thread__put(child); 1937 } 1938 } else 1939 goto signed_print; 1940 1941 fputc('\n', trace->output); 1942 1943 if (callchain_ret > 0) 1944 trace__fprintf_callchain(trace, sample); 1945 else if (callchain_ret < 0) 1946 pr_err("Problem processing %s callchain, skipping...\n", perf_evsel__name(evsel)); 1947 out: 1948 ttrace->entry_pending = false; 1949 err = 0; 1950 out_put: 1951 thread__put(thread); 1952 return err; 1953 } 1954 1955 static int trace__vfs_getname(struct trace *trace, struct perf_evsel *evsel, 1956 union perf_event *event __maybe_unused, 1957 struct perf_sample *sample) 1958 { 1959 struct thread *thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 1960 struct thread_trace *ttrace; 1961 size_t filename_len, entry_str_len, to_move; 1962 ssize_t remaining_space; 1963 char *pos; 1964 const char *filename = perf_evsel__rawptr(evsel, sample, "pathname"); 1965 1966 if (!thread) 1967 goto out; 1968 1969 ttrace = thread__priv(thread); 1970 if (!ttrace) 1971 goto out_put; 1972 1973 filename_len = strlen(filename); 1974 if (filename_len == 0) 1975 goto out_put; 1976 1977 if (ttrace->filename.namelen < filename_len) { 1978 char *f = realloc(ttrace->filename.name, filename_len + 1); 1979 1980 if (f == NULL) 1981 goto out_put; 1982 1983 ttrace->filename.namelen = filename_len; 1984 ttrace->filename.name = f; 1985 } 1986 1987 strcpy(ttrace->filename.name, filename); 1988 ttrace->filename.pending_open = true; 1989 1990 if (!ttrace->filename.ptr) 1991 goto out_put; 1992 1993 entry_str_len = strlen(ttrace->entry_str); 1994 remaining_space = trace__entry_str_size - entry_str_len - 1; /* \0 */ 1995 if (remaining_space <= 0) 1996 goto out_put; 1997 1998 if (filename_len > (size_t)remaining_space) { 1999 filename += filename_len - remaining_space; 2000 filename_len = remaining_space; 2001 } 2002 2003 to_move = entry_str_len - ttrace->filename.entry_str_pos + 1; /* \0 */ 2004 pos = ttrace->entry_str + ttrace->filename.entry_str_pos; 2005 memmove(pos + filename_len, pos, to_move); 2006 memcpy(pos, filename, filename_len); 2007 2008 ttrace->filename.ptr = 0; 2009 ttrace->filename.entry_str_pos = 0; 2010 out_put: 2011 thread__put(thread); 2012 out: 2013 return 0; 2014 } 2015 2016 static int trace__sched_stat_runtime(struct trace *trace, struct perf_evsel *evsel, 2017 union perf_event *event __maybe_unused, 2018 struct perf_sample *sample) 2019 { 2020 u64 runtime = perf_evsel__intval(evsel, sample, "runtime"); 2021 double runtime_ms = (double)runtime / NSEC_PER_MSEC; 2022 struct thread *thread = machine__findnew_thread(trace->host, 2023 sample->pid, 2024 sample->tid); 2025 struct thread_trace *ttrace = thread__trace(thread, trace->output); 2026 2027 if (ttrace == NULL) 2028 goto out_dump; 2029 2030 ttrace->runtime_ms += runtime_ms; 2031 trace->runtime_ms += runtime_ms; 2032 out_put: 2033 thread__put(thread); 2034 return 0; 2035 2036 out_dump: 2037 fprintf(trace->output, "%s: comm=%s,pid=%u,runtime=%" PRIu64 ",vruntime=%" PRIu64 ")\n", 2038 evsel->name, 2039 perf_evsel__strval(evsel, sample, "comm"), 2040 (pid_t)perf_evsel__intval(evsel, sample, "pid"), 2041 runtime, 2042 perf_evsel__intval(evsel, sample, "vruntime")); 2043 goto out_put; 2044 } 2045 2046 static int bpf_output__printer(enum binary_printer_ops op, 2047 unsigned int val, void *extra __maybe_unused, FILE *fp) 2048 { 2049 unsigned char ch = (unsigned char)val; 2050 2051 switch (op) { 2052 case BINARY_PRINT_CHAR_DATA: 2053 return fprintf(fp, "%c", isprint(ch) ? ch : '.'); 2054 case BINARY_PRINT_DATA_BEGIN: 2055 case BINARY_PRINT_LINE_BEGIN: 2056 case BINARY_PRINT_ADDR: 2057 case BINARY_PRINT_NUM_DATA: 2058 case BINARY_PRINT_NUM_PAD: 2059 case BINARY_PRINT_SEP: 2060 case BINARY_PRINT_CHAR_PAD: 2061 case BINARY_PRINT_LINE_END: 2062 case BINARY_PRINT_DATA_END: 2063 default: 2064 break; 2065 } 2066 2067 return 0; 2068 } 2069 2070 static void bpf_output__fprintf(struct trace *trace, 2071 struct perf_sample *sample) 2072 { 2073 binary__fprintf(sample->raw_data, sample->raw_size, 8, 2074 bpf_output__printer, NULL, trace->output); 2075 } 2076 2077 static int trace__event_handler(struct trace *trace, struct perf_evsel *evsel, 2078 union perf_event *event __maybe_unused, 2079 struct perf_sample *sample) 2080 { 2081 struct thread *thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 2082 int callchain_ret = 0; 2083 2084 if (sample->callchain) { 2085 callchain_ret = trace__resolve_callchain(trace, evsel, sample, &callchain_cursor); 2086 if (callchain_ret == 0) { 2087 if (callchain_cursor.nr < trace->min_stack) 2088 goto out; 2089 callchain_ret = 1; 2090 } 2091 } 2092 2093 trace__printf_interrupted_entry(trace); 2094 trace__fprintf_tstamp(trace, sample->time, trace->output); 2095 2096 if (trace->trace_syscalls) 2097 fprintf(trace->output, "( ): "); 2098 2099 if (thread) 2100 trace__fprintf_comm_tid(trace, thread, trace->output); 2101 2102 if (evsel == trace->syscalls.events.augmented) { 2103 int id = perf_evsel__sc_tp_uint(evsel, id, sample); 2104 struct syscall *sc = trace__syscall_info(trace, evsel, id); 2105 2106 if (sc) { 2107 fprintf(trace->output, "%s(", sc->name); 2108 trace__fprintf_sys_enter(trace, evsel, sample); 2109 fputc(')', trace->output); 2110 goto newline; 2111 } 2112 2113 /* 2114 * XXX: Not having the associated syscall info or not finding/adding 2115 * the thread should never happen, but if it does... 2116 * fall thru and print it as a bpf_output event. 2117 */ 2118 } 2119 2120 fprintf(trace->output, "%s:", evsel->name); 2121 2122 if (perf_evsel__is_bpf_output(evsel)) { 2123 bpf_output__fprintf(trace, sample); 2124 } else if (evsel->tp_format) { 2125 if (strncmp(evsel->tp_format->name, "sys_enter_", 10) || 2126 trace__fprintf_sys_enter(trace, evsel, sample)) { 2127 event_format__fprintf(evsel->tp_format, sample->cpu, 2128 sample->raw_data, sample->raw_size, 2129 trace->output); 2130 } 2131 } 2132 2133 newline: 2134 fprintf(trace->output, "\n"); 2135 2136 if (callchain_ret > 0) 2137 trace__fprintf_callchain(trace, sample); 2138 else if (callchain_ret < 0) 2139 pr_err("Problem processing %s callchain, skipping...\n", perf_evsel__name(evsel)); 2140 thread__put(thread); 2141 out: 2142 return 0; 2143 } 2144 2145 static void print_location(FILE *f, struct perf_sample *sample, 2146 struct addr_location *al, 2147 bool print_dso, bool print_sym) 2148 { 2149 2150 if ((verbose > 0 || print_dso) && al->map) 2151 fprintf(f, "%s@", al->map->dso->long_name); 2152 2153 if ((verbose > 0 || print_sym) && al->sym) 2154 fprintf(f, "%s+0x%" PRIx64, al->sym->name, 2155 al->addr - al->sym->start); 2156 else if (al->map) 2157 fprintf(f, "0x%" PRIx64, al->addr); 2158 else 2159 fprintf(f, "0x%" PRIx64, sample->addr); 2160 } 2161 2162 static int trace__pgfault(struct trace *trace, 2163 struct perf_evsel *evsel, 2164 union perf_event *event __maybe_unused, 2165 struct perf_sample *sample) 2166 { 2167 struct thread *thread; 2168 struct addr_location al; 2169 char map_type = 'd'; 2170 struct thread_trace *ttrace; 2171 int err = -1; 2172 int callchain_ret = 0; 2173 2174 thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 2175 2176 if (sample->callchain) { 2177 callchain_ret = trace__resolve_callchain(trace, evsel, sample, &callchain_cursor); 2178 if (callchain_ret == 0) { 2179 if (callchain_cursor.nr < trace->min_stack) 2180 goto out_put; 2181 callchain_ret = 1; 2182 } 2183 } 2184 2185 ttrace = thread__trace(thread, trace->output); 2186 if (ttrace == NULL) 2187 goto out_put; 2188 2189 if (evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MAJ) 2190 ttrace->pfmaj++; 2191 else 2192 ttrace->pfmin++; 2193 2194 if (trace->summary_only) 2195 goto out; 2196 2197 thread__find_symbol(thread, sample->cpumode, sample->ip, &al); 2198 2199 trace__fprintf_entry_head(trace, thread, 0, true, sample->time, trace->output); 2200 2201 fprintf(trace->output, "%sfault [", 2202 evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MAJ ? 2203 "maj" : "min"); 2204 2205 print_location(trace->output, sample, &al, false, true); 2206 2207 fprintf(trace->output, "] => "); 2208 2209 thread__find_symbol(thread, sample->cpumode, sample->addr, &al); 2210 2211 if (!al.map) { 2212 thread__find_symbol(thread, sample->cpumode, sample->addr, &al); 2213 2214 if (al.map) 2215 map_type = 'x'; 2216 else 2217 map_type = '?'; 2218 } 2219 2220 print_location(trace->output, sample, &al, true, false); 2221 2222 fprintf(trace->output, " (%c%c)\n", map_type, al.level); 2223 2224 if (callchain_ret > 0) 2225 trace__fprintf_callchain(trace, sample); 2226 else if (callchain_ret < 0) 2227 pr_err("Problem processing %s callchain, skipping...\n", perf_evsel__name(evsel)); 2228 out: 2229 err = 0; 2230 out_put: 2231 thread__put(thread); 2232 return err; 2233 } 2234 2235 static void trace__set_base_time(struct trace *trace, 2236 struct perf_evsel *evsel, 2237 struct perf_sample *sample) 2238 { 2239 /* 2240 * BPF events were not setting PERF_SAMPLE_TIME, so be more robust 2241 * and don't use sample->time unconditionally, we may end up having 2242 * some other event in the future without PERF_SAMPLE_TIME for good 2243 * reason, i.e. we may not be interested in its timestamps, just in 2244 * it taking place, picking some piece of information when it 2245 * appears in our event stream (vfs_getname comes to mind). 2246 */ 2247 if (trace->base_time == 0 && !trace->full_time && 2248 (evsel->attr.sample_type & PERF_SAMPLE_TIME)) 2249 trace->base_time = sample->time; 2250 } 2251 2252 static int trace__process_sample(struct perf_tool *tool, 2253 union perf_event *event, 2254 struct perf_sample *sample, 2255 struct perf_evsel *evsel, 2256 struct machine *machine __maybe_unused) 2257 { 2258 struct trace *trace = container_of(tool, struct trace, tool); 2259 struct thread *thread; 2260 int err = 0; 2261 2262 tracepoint_handler handler = evsel->handler; 2263 2264 thread = machine__findnew_thread(trace->host, sample->pid, sample->tid); 2265 if (thread && thread__is_filtered(thread)) 2266 goto out; 2267 2268 trace__set_base_time(trace, evsel, sample); 2269 2270 if (handler) { 2271 ++trace->nr_events; 2272 handler(trace, evsel, event, sample); 2273 } 2274 out: 2275 thread__put(thread); 2276 return err; 2277 } 2278 2279 static int trace__record(struct trace *trace, int argc, const char **argv) 2280 { 2281 unsigned int rec_argc, i, j; 2282 const char **rec_argv; 2283 const char * const record_args[] = { 2284 "record", 2285 "-R", 2286 "-m", "1024", 2287 "-c", "1", 2288 }; 2289 2290 const char * const sc_args[] = { "-e", }; 2291 unsigned int sc_args_nr = ARRAY_SIZE(sc_args); 2292 const char * const majpf_args[] = { "-e", "major-faults" }; 2293 unsigned int majpf_args_nr = ARRAY_SIZE(majpf_args); 2294 const char * const minpf_args[] = { "-e", "minor-faults" }; 2295 unsigned int minpf_args_nr = ARRAY_SIZE(minpf_args); 2296 2297 /* +1 is for the event string below */ 2298 rec_argc = ARRAY_SIZE(record_args) + sc_args_nr + 1 + 2299 majpf_args_nr + minpf_args_nr + argc; 2300 rec_argv = calloc(rec_argc + 1, sizeof(char *)); 2301 2302 if (rec_argv == NULL) 2303 return -ENOMEM; 2304 2305 j = 0; 2306 for (i = 0; i < ARRAY_SIZE(record_args); i++) 2307 rec_argv[j++] = record_args[i]; 2308 2309 if (trace->trace_syscalls) { 2310 for (i = 0; i < sc_args_nr; i++) 2311 rec_argv[j++] = sc_args[i]; 2312 2313 /* event string may be different for older kernels - e.g., RHEL6 */ 2314 if (is_valid_tracepoint("raw_syscalls:sys_enter")) 2315 rec_argv[j++] = "raw_syscalls:sys_enter,raw_syscalls:sys_exit"; 2316 else if (is_valid_tracepoint("syscalls:sys_enter")) 2317 rec_argv[j++] = "syscalls:sys_enter,syscalls:sys_exit"; 2318 else { 2319 pr_err("Neither raw_syscalls nor syscalls events exist.\n"); 2320 free(rec_argv); 2321 return -1; 2322 } 2323 } 2324 2325 if (trace->trace_pgfaults & TRACE_PFMAJ) 2326 for (i = 0; i < majpf_args_nr; i++) 2327 rec_argv[j++] = majpf_args[i]; 2328 2329 if (trace->trace_pgfaults & TRACE_PFMIN) 2330 for (i = 0; i < minpf_args_nr; i++) 2331 rec_argv[j++] = minpf_args[i]; 2332 2333 for (i = 0; i < (unsigned int)argc; i++) 2334 rec_argv[j++] = argv[i]; 2335 2336 return cmd_record(j, rec_argv); 2337 } 2338 2339 static size_t trace__fprintf_thread_summary(struct trace *trace, FILE *fp); 2340 2341 static bool perf_evlist__add_vfs_getname(struct perf_evlist *evlist) 2342 { 2343 struct perf_evsel *evsel = perf_evsel__newtp("probe", "vfs_getname"); 2344 2345 if (IS_ERR(evsel)) 2346 return false; 2347 2348 if (perf_evsel__field(evsel, "pathname") == NULL) { 2349 perf_evsel__delete(evsel); 2350 return false; 2351 } 2352 2353 evsel->handler = trace__vfs_getname; 2354 perf_evlist__add(evlist, evsel); 2355 return true; 2356 } 2357 2358 static struct perf_evsel *perf_evsel__new_pgfault(u64 config) 2359 { 2360 struct perf_evsel *evsel; 2361 struct perf_event_attr attr = { 2362 .type = PERF_TYPE_SOFTWARE, 2363 .mmap_data = 1, 2364 }; 2365 2366 attr.config = config; 2367 attr.sample_period = 1; 2368 2369 event_attr_init(&attr); 2370 2371 evsel = perf_evsel__new(&attr); 2372 if (evsel) 2373 evsel->handler = trace__pgfault; 2374 2375 return evsel; 2376 } 2377 2378 static void trace__handle_event(struct trace *trace, union perf_event *event, struct perf_sample *sample) 2379 { 2380 const u32 type = event->header.type; 2381 struct perf_evsel *evsel; 2382 2383 if (type != PERF_RECORD_SAMPLE) { 2384 trace__process_event(trace, trace->host, event, sample); 2385 return; 2386 } 2387 2388 evsel = perf_evlist__id2evsel(trace->evlist, sample->id); 2389 if (evsel == NULL) { 2390 fprintf(trace->output, "Unknown tp ID %" PRIu64 ", skipping...\n", sample->id); 2391 return; 2392 } 2393 2394 trace__set_base_time(trace, evsel, sample); 2395 2396 if (evsel->attr.type == PERF_TYPE_TRACEPOINT && 2397 sample->raw_data == NULL) { 2398 fprintf(trace->output, "%s sample with no payload for tid: %d, cpu %d, raw_size=%d, skipping...\n", 2399 perf_evsel__name(evsel), sample->tid, 2400 sample->cpu, sample->raw_size); 2401 } else { 2402 tracepoint_handler handler = evsel->handler; 2403 handler(trace, evsel, event, sample); 2404 } 2405 } 2406 2407 static int trace__add_syscall_newtp(struct trace *trace) 2408 { 2409 int ret = -1; 2410 struct perf_evlist *evlist = trace->evlist; 2411 struct perf_evsel *sys_enter, *sys_exit; 2412 2413 sys_enter = perf_evsel__raw_syscall_newtp("sys_enter", trace__sys_enter); 2414 if (sys_enter == NULL) 2415 goto out; 2416 2417 if (perf_evsel__init_sc_tp_ptr_field(sys_enter, args)) 2418 goto out_delete_sys_enter; 2419 2420 sys_exit = perf_evsel__raw_syscall_newtp("sys_exit", trace__sys_exit); 2421 if (sys_exit == NULL) 2422 goto out_delete_sys_enter; 2423 2424 if (perf_evsel__init_sc_tp_uint_field(sys_exit, ret)) 2425 goto out_delete_sys_exit; 2426 2427 perf_evsel__config_callchain(sys_enter, &trace->opts, &callchain_param); 2428 perf_evsel__config_callchain(sys_exit, &trace->opts, &callchain_param); 2429 2430 perf_evlist__add(evlist, sys_enter); 2431 perf_evlist__add(evlist, sys_exit); 2432 2433 if (callchain_param.enabled && !trace->kernel_syscallchains) { 2434 /* 2435 * We're interested only in the user space callchain 2436 * leading to the syscall, allow overriding that for 2437 * debugging reasons using --kernel_syscall_callchains 2438 */ 2439 sys_exit->attr.exclude_callchain_kernel = 1; 2440 } 2441 2442 trace->syscalls.events.sys_enter = sys_enter; 2443 trace->syscalls.events.sys_exit = sys_exit; 2444 2445 ret = 0; 2446 out: 2447 return ret; 2448 2449 out_delete_sys_exit: 2450 perf_evsel__delete_priv(sys_exit); 2451 out_delete_sys_enter: 2452 perf_evsel__delete_priv(sys_enter); 2453 goto out; 2454 } 2455 2456 static int trace__set_ev_qualifier_filter(struct trace *trace) 2457 { 2458 int err = -1; 2459 struct perf_evsel *sys_exit; 2460 char *filter = asprintf_expr_inout_ints("id", !trace->not_ev_qualifier, 2461 trace->ev_qualifier_ids.nr, 2462 trace->ev_qualifier_ids.entries); 2463 2464 if (filter == NULL) 2465 goto out_enomem; 2466 2467 if (!perf_evsel__append_tp_filter(trace->syscalls.events.sys_enter, 2468 filter)) { 2469 sys_exit = trace->syscalls.events.sys_exit; 2470 err = perf_evsel__append_tp_filter(sys_exit, filter); 2471 } 2472 2473 free(filter); 2474 out: 2475 return err; 2476 out_enomem: 2477 errno = ENOMEM; 2478 goto out; 2479 } 2480 2481 static int trace__set_filter_loop_pids(struct trace *trace) 2482 { 2483 unsigned int nr = 1; 2484 pid_t pids[32] = { 2485 getpid(), 2486 }; 2487 struct thread *thread = machine__find_thread(trace->host, pids[0], pids[0]); 2488 2489 while (thread && nr < ARRAY_SIZE(pids)) { 2490 struct thread *parent = machine__find_thread(trace->host, thread->ppid, thread->ppid); 2491 2492 if (parent == NULL) 2493 break; 2494 2495 if (!strcmp(thread__comm_str(parent), "sshd")) { 2496 pids[nr++] = parent->tid; 2497 break; 2498 } 2499 thread = parent; 2500 } 2501 2502 return perf_evlist__set_filter_pids(trace->evlist, nr, pids); 2503 } 2504 2505 static int trace__run(struct trace *trace, int argc, const char **argv) 2506 { 2507 struct perf_evlist *evlist = trace->evlist; 2508 struct perf_evsel *evsel, *pgfault_maj = NULL, *pgfault_min = NULL; 2509 int err = -1, i; 2510 unsigned long before; 2511 const bool forks = argc > 0; 2512 bool draining = false; 2513 2514 trace->live = true; 2515 2516 if (trace->trace_syscalls && trace__add_syscall_newtp(trace)) 2517 goto out_error_raw_syscalls; 2518 2519 if (trace->trace_syscalls) 2520 trace->vfs_getname = perf_evlist__add_vfs_getname(evlist); 2521 2522 if ((trace->trace_pgfaults & TRACE_PFMAJ)) { 2523 pgfault_maj = perf_evsel__new_pgfault(PERF_COUNT_SW_PAGE_FAULTS_MAJ); 2524 if (pgfault_maj == NULL) 2525 goto out_error_mem; 2526 perf_evsel__config_callchain(pgfault_maj, &trace->opts, &callchain_param); 2527 perf_evlist__add(evlist, pgfault_maj); 2528 } 2529 2530 if ((trace->trace_pgfaults & TRACE_PFMIN)) { 2531 pgfault_min = perf_evsel__new_pgfault(PERF_COUNT_SW_PAGE_FAULTS_MIN); 2532 if (pgfault_min == NULL) 2533 goto out_error_mem; 2534 perf_evsel__config_callchain(pgfault_min, &trace->opts, &callchain_param); 2535 perf_evlist__add(evlist, pgfault_min); 2536 } 2537 2538 if (trace->sched && 2539 perf_evlist__add_newtp(evlist, "sched", "sched_stat_runtime", 2540 trace__sched_stat_runtime)) 2541 goto out_error_sched_stat_runtime; 2542 2543 /* 2544 * If a global cgroup was set, apply it to all the events without an 2545 * explicit cgroup. I.e.: 2546 * 2547 * trace -G A -e sched:*switch 2548 * 2549 * Will set all raw_syscalls:sys_{enter,exit}, pgfault, vfs_getname, etc 2550 * _and_ sched:sched_switch to the 'A' cgroup, while: 2551 * 2552 * trace -e sched:*switch -G A 2553 * 2554 * will only set the sched:sched_switch event to the 'A' cgroup, all the 2555 * other events (raw_syscalls:sys_{enter,exit}, etc are left "without" 2556 * a cgroup (on the root cgroup, sys wide, etc). 2557 * 2558 * Multiple cgroups: 2559 * 2560 * trace -G A -e sched:*switch -G B 2561 * 2562 * the syscall ones go to the 'A' cgroup, the sched:sched_switch goes 2563 * to the 'B' cgroup. 2564 * 2565 * evlist__set_default_cgroup() grabs a reference of the passed cgroup 2566 * only for the evsels still without a cgroup, i.e. evsel->cgroup == NULL. 2567 */ 2568 if (trace->cgroup) 2569 evlist__set_default_cgroup(trace->evlist, trace->cgroup); 2570 2571 err = perf_evlist__create_maps(evlist, &trace->opts.target); 2572 if (err < 0) { 2573 fprintf(trace->output, "Problems parsing the target to trace, check your options!\n"); 2574 goto out_delete_evlist; 2575 } 2576 2577 err = trace__symbols_init(trace, evlist); 2578 if (err < 0) { 2579 fprintf(trace->output, "Problems initializing symbol libraries!\n"); 2580 goto out_delete_evlist; 2581 } 2582 2583 perf_evlist__config(evlist, &trace->opts, &callchain_param); 2584 2585 signal(SIGCHLD, sig_handler); 2586 signal(SIGINT, sig_handler); 2587 2588 if (forks) { 2589 err = perf_evlist__prepare_workload(evlist, &trace->opts.target, 2590 argv, false, NULL); 2591 if (err < 0) { 2592 fprintf(trace->output, "Couldn't run the workload!\n"); 2593 goto out_delete_evlist; 2594 } 2595 } 2596 2597 err = perf_evlist__open(evlist); 2598 if (err < 0) 2599 goto out_error_open; 2600 2601 err = bpf__apply_obj_config(); 2602 if (err) { 2603 char errbuf[BUFSIZ]; 2604 2605 bpf__strerror_apply_obj_config(err, errbuf, sizeof(errbuf)); 2606 pr_err("ERROR: Apply config to BPF failed: %s\n", 2607 errbuf); 2608 goto out_error_open; 2609 } 2610 2611 /* 2612 * Better not use !target__has_task() here because we need to cover the 2613 * case where no threads were specified in the command line, but a 2614 * workload was, and in that case we will fill in the thread_map when 2615 * we fork the workload in perf_evlist__prepare_workload. 2616 */ 2617 if (trace->filter_pids.nr > 0) 2618 err = perf_evlist__set_filter_pids(evlist, trace->filter_pids.nr, trace->filter_pids.entries); 2619 else if (thread_map__pid(evlist->threads, 0) == -1) 2620 err = trace__set_filter_loop_pids(trace); 2621 2622 if (err < 0) 2623 goto out_error_mem; 2624 2625 if (trace->ev_qualifier_ids.nr > 0) { 2626 err = trace__set_ev_qualifier_filter(trace); 2627 if (err < 0) 2628 goto out_errno; 2629 2630 pr_debug("event qualifier tracepoint filter: %s\n", 2631 trace->syscalls.events.sys_exit->filter); 2632 } 2633 2634 err = perf_evlist__apply_filters(evlist, &evsel); 2635 if (err < 0) 2636 goto out_error_apply_filters; 2637 2638 err = perf_evlist__mmap(evlist, trace->opts.mmap_pages); 2639 if (err < 0) 2640 goto out_error_mmap; 2641 2642 if (!target__none(&trace->opts.target) && !trace->opts.initial_delay) 2643 perf_evlist__enable(evlist); 2644 2645 if (forks) 2646 perf_evlist__start_workload(evlist); 2647 2648 if (trace->opts.initial_delay) { 2649 usleep(trace->opts.initial_delay * 1000); 2650 perf_evlist__enable(evlist); 2651 } 2652 2653 trace->multiple_threads = thread_map__pid(evlist->threads, 0) == -1 || 2654 evlist->threads->nr > 1 || 2655 perf_evlist__first(evlist)->attr.inherit; 2656 2657 /* 2658 * Now that we already used evsel->attr to ask the kernel to setup the 2659 * events, lets reuse evsel->attr.sample_max_stack as the limit in 2660 * trace__resolve_callchain(), allowing per-event max-stack settings 2661 * to override an explicitely set --max-stack global setting. 2662 */ 2663 evlist__for_each_entry(evlist, evsel) { 2664 if (evsel__has_callchain(evsel) && 2665 evsel->attr.sample_max_stack == 0) 2666 evsel->attr.sample_max_stack = trace->max_stack; 2667 } 2668 again: 2669 before = trace->nr_events; 2670 2671 for (i = 0; i < evlist->nr_mmaps; i++) { 2672 union perf_event *event; 2673 struct perf_mmap *md; 2674 2675 md = &evlist->mmap[i]; 2676 if (perf_mmap__read_init(md) < 0) 2677 continue; 2678 2679 while ((event = perf_mmap__read_event(md)) != NULL) { 2680 struct perf_sample sample; 2681 2682 ++trace->nr_events; 2683 2684 err = perf_evlist__parse_sample(evlist, event, &sample); 2685 if (err) { 2686 fprintf(trace->output, "Can't parse sample, err = %d, skipping...\n", err); 2687 goto next_event; 2688 } 2689 2690 trace__handle_event(trace, event, &sample); 2691 next_event: 2692 perf_mmap__consume(md); 2693 2694 if (interrupted) 2695 goto out_disable; 2696 2697 if (done && !draining) { 2698 perf_evlist__disable(evlist); 2699 draining = true; 2700 } 2701 } 2702 perf_mmap__read_done(md); 2703 } 2704 2705 if (trace->nr_events == before) { 2706 int timeout = done ? 100 : -1; 2707 2708 if (!draining && perf_evlist__poll(evlist, timeout) > 0) { 2709 if (perf_evlist__filter_pollfd(evlist, POLLERR | POLLHUP) == 0) 2710 draining = true; 2711 2712 goto again; 2713 } 2714 } else { 2715 goto again; 2716 } 2717 2718 out_disable: 2719 thread__zput(trace->current); 2720 2721 perf_evlist__disable(evlist); 2722 2723 if (!err) { 2724 if (trace->summary) 2725 trace__fprintf_thread_summary(trace, trace->output); 2726 2727 if (trace->show_tool_stats) { 2728 fprintf(trace->output, "Stats:\n " 2729 " vfs_getname : %" PRIu64 "\n" 2730 " proc_getname: %" PRIu64 "\n", 2731 trace->stats.vfs_getname, 2732 trace->stats.proc_getname); 2733 } 2734 } 2735 2736 out_delete_evlist: 2737 trace__symbols__exit(trace); 2738 2739 perf_evlist__delete(evlist); 2740 cgroup__put(trace->cgroup); 2741 trace->evlist = NULL; 2742 trace->live = false; 2743 return err; 2744 { 2745 char errbuf[BUFSIZ]; 2746 2747 out_error_sched_stat_runtime: 2748 tracing_path__strerror_open_tp(errno, errbuf, sizeof(errbuf), "sched", "sched_stat_runtime"); 2749 goto out_error; 2750 2751 out_error_raw_syscalls: 2752 tracing_path__strerror_open_tp(errno, errbuf, sizeof(errbuf), "raw_syscalls", "sys_(enter|exit)"); 2753 goto out_error; 2754 2755 out_error_mmap: 2756 perf_evlist__strerror_mmap(evlist, errno, errbuf, sizeof(errbuf)); 2757 goto out_error; 2758 2759 out_error_open: 2760 perf_evlist__strerror_open(evlist, errno, errbuf, sizeof(errbuf)); 2761 2762 out_error: 2763 fprintf(trace->output, "%s\n", errbuf); 2764 goto out_delete_evlist; 2765 2766 out_error_apply_filters: 2767 fprintf(trace->output, 2768 "Failed to set filter \"%s\" on event %s with %d (%s)\n", 2769 evsel->filter, perf_evsel__name(evsel), errno, 2770 str_error_r(errno, errbuf, sizeof(errbuf))); 2771 goto out_delete_evlist; 2772 } 2773 out_error_mem: 2774 fprintf(trace->output, "Not enough memory to run!\n"); 2775 goto out_delete_evlist; 2776 2777 out_errno: 2778 fprintf(trace->output, "errno=%d,%s\n", errno, strerror(errno)); 2779 goto out_delete_evlist; 2780 } 2781 2782 static int trace__replay(struct trace *trace) 2783 { 2784 const struct perf_evsel_str_handler handlers[] = { 2785 { "probe:vfs_getname", trace__vfs_getname, }, 2786 }; 2787 struct perf_data data = { 2788 .file = { 2789 .path = input_name, 2790 }, 2791 .mode = PERF_DATA_MODE_READ, 2792 .force = trace->force, 2793 }; 2794 struct perf_session *session; 2795 struct perf_evsel *evsel; 2796 int err = -1; 2797 2798 trace->tool.sample = trace__process_sample; 2799 trace->tool.mmap = perf_event__process_mmap; 2800 trace->tool.mmap2 = perf_event__process_mmap2; 2801 trace->tool.comm = perf_event__process_comm; 2802 trace->tool.exit = perf_event__process_exit; 2803 trace->tool.fork = perf_event__process_fork; 2804 trace->tool.attr = perf_event__process_attr; 2805 trace->tool.tracing_data = perf_event__process_tracing_data; 2806 trace->tool.build_id = perf_event__process_build_id; 2807 trace->tool.namespaces = perf_event__process_namespaces; 2808 2809 trace->tool.ordered_events = true; 2810 trace->tool.ordering_requires_timestamps = true; 2811 2812 /* add tid to output */ 2813 trace->multiple_threads = true; 2814 2815 session = perf_session__new(&data, false, &trace->tool); 2816 if (session == NULL) 2817 return -1; 2818 2819 if (trace->opts.target.pid) 2820 symbol_conf.pid_list_str = strdup(trace->opts.target.pid); 2821 2822 if (trace->opts.target.tid) 2823 symbol_conf.tid_list_str = strdup(trace->opts.target.tid); 2824 2825 if (symbol__init(&session->header.env) < 0) 2826 goto out; 2827 2828 trace->host = &session->machines.host; 2829 2830 err = perf_session__set_tracepoints_handlers(session, handlers); 2831 if (err) 2832 goto out; 2833 2834 evsel = perf_evlist__find_tracepoint_by_name(session->evlist, 2835 "raw_syscalls:sys_enter"); 2836 /* older kernels have syscalls tp versus raw_syscalls */ 2837 if (evsel == NULL) 2838 evsel = perf_evlist__find_tracepoint_by_name(session->evlist, 2839 "syscalls:sys_enter"); 2840 2841 if (evsel && 2842 (perf_evsel__init_raw_syscall_tp(evsel, trace__sys_enter) < 0 || 2843 perf_evsel__init_sc_tp_ptr_field(evsel, args))) { 2844 pr_err("Error during initialize raw_syscalls:sys_enter event\n"); 2845 goto out; 2846 } 2847 2848 evsel = perf_evlist__find_tracepoint_by_name(session->evlist, 2849 "raw_syscalls:sys_exit"); 2850 if (evsel == NULL) 2851 evsel = perf_evlist__find_tracepoint_by_name(session->evlist, 2852 "syscalls:sys_exit"); 2853 if (evsel && 2854 (perf_evsel__init_raw_syscall_tp(evsel, trace__sys_exit) < 0 || 2855 perf_evsel__init_sc_tp_uint_field(evsel, ret))) { 2856 pr_err("Error during initialize raw_syscalls:sys_exit event\n"); 2857 goto out; 2858 } 2859 2860 evlist__for_each_entry(session->evlist, evsel) { 2861 if (evsel->attr.type == PERF_TYPE_SOFTWARE && 2862 (evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MAJ || 2863 evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS_MIN || 2864 evsel->attr.config == PERF_COUNT_SW_PAGE_FAULTS)) 2865 evsel->handler = trace__pgfault; 2866 } 2867 2868 setup_pager(); 2869 2870 err = perf_session__process_events(session); 2871 if (err) 2872 pr_err("Failed to process events, error %d", err); 2873 2874 else if (trace->summary) 2875 trace__fprintf_thread_summary(trace, trace->output); 2876 2877 out: 2878 perf_session__delete(session); 2879 2880 return err; 2881 } 2882 2883 static size_t trace__fprintf_threads_header(FILE *fp) 2884 { 2885 size_t printed; 2886 2887 printed = fprintf(fp, "\n Summary of events:\n\n"); 2888 2889 return printed; 2890 } 2891 2892 DEFINE_RESORT_RB(syscall_stats, a->msecs > b->msecs, 2893 struct stats *stats; 2894 double msecs; 2895 int syscall; 2896 ) 2897 { 2898 struct int_node *source = rb_entry(nd, struct int_node, rb_node); 2899 struct stats *stats = source->priv; 2900 2901 entry->syscall = source->i; 2902 entry->stats = stats; 2903 entry->msecs = stats ? (u64)stats->n * (avg_stats(stats) / NSEC_PER_MSEC) : 0; 2904 } 2905 2906 static size_t thread__dump_stats(struct thread_trace *ttrace, 2907 struct trace *trace, FILE *fp) 2908 { 2909 size_t printed = 0; 2910 struct syscall *sc; 2911 struct rb_node *nd; 2912 DECLARE_RESORT_RB_INTLIST(syscall_stats, ttrace->syscall_stats); 2913 2914 if (syscall_stats == NULL) 2915 return 0; 2916 2917 printed += fprintf(fp, "\n"); 2918 2919 printed += fprintf(fp, " syscall calls total min avg max stddev\n"); 2920 printed += fprintf(fp, " (msec) (msec) (msec) (msec) (%%)\n"); 2921 printed += fprintf(fp, " --------------- -------- --------- --------- --------- --------- ------\n"); 2922 2923 resort_rb__for_each_entry(nd, syscall_stats) { 2924 struct stats *stats = syscall_stats_entry->stats; 2925 if (stats) { 2926 double min = (double)(stats->min) / NSEC_PER_MSEC; 2927 double max = (double)(stats->max) / NSEC_PER_MSEC; 2928 double avg = avg_stats(stats); 2929 double pct; 2930 u64 n = (u64) stats->n; 2931 2932 pct = avg ? 100.0 * stddev_stats(stats)/avg : 0.0; 2933 avg /= NSEC_PER_MSEC; 2934 2935 sc = &trace->syscalls.table[syscall_stats_entry->syscall]; 2936 printed += fprintf(fp, " %-15s", sc->name); 2937 printed += fprintf(fp, " %8" PRIu64 " %9.3f %9.3f %9.3f", 2938 n, syscall_stats_entry->msecs, min, avg); 2939 printed += fprintf(fp, " %9.3f %9.2f%%\n", max, pct); 2940 } 2941 } 2942 2943 resort_rb__delete(syscall_stats); 2944 printed += fprintf(fp, "\n\n"); 2945 2946 return printed; 2947 } 2948 2949 static size_t trace__fprintf_thread(FILE *fp, struct thread *thread, struct trace *trace) 2950 { 2951 size_t printed = 0; 2952 struct thread_trace *ttrace = thread__priv(thread); 2953 double ratio; 2954 2955 if (ttrace == NULL) 2956 return 0; 2957 2958 ratio = (double)ttrace->nr_events / trace->nr_events * 100.0; 2959 2960 printed += fprintf(fp, " %s (%d), ", thread__comm_str(thread), thread->tid); 2961 printed += fprintf(fp, "%lu events, ", ttrace->nr_events); 2962 printed += fprintf(fp, "%.1f%%", ratio); 2963 if (ttrace->pfmaj) 2964 printed += fprintf(fp, ", %lu majfaults", ttrace->pfmaj); 2965 if (ttrace->pfmin) 2966 printed += fprintf(fp, ", %lu minfaults", ttrace->pfmin); 2967 if (trace->sched) 2968 printed += fprintf(fp, ", %.3f msec\n", ttrace->runtime_ms); 2969 else if (fputc('\n', fp) != EOF) 2970 ++printed; 2971 2972 printed += thread__dump_stats(ttrace, trace, fp); 2973 2974 return printed; 2975 } 2976 2977 static unsigned long thread__nr_events(struct thread_trace *ttrace) 2978 { 2979 return ttrace ? ttrace->nr_events : 0; 2980 } 2981 2982 DEFINE_RESORT_RB(threads, (thread__nr_events(a->thread->priv) < thread__nr_events(b->thread->priv)), 2983 struct thread *thread; 2984 ) 2985 { 2986 entry->thread = rb_entry(nd, struct thread, rb_node); 2987 } 2988 2989 static size_t trace__fprintf_thread_summary(struct trace *trace, FILE *fp) 2990 { 2991 size_t printed = trace__fprintf_threads_header(fp); 2992 struct rb_node *nd; 2993 int i; 2994 2995 for (i = 0; i < THREADS__TABLE_SIZE; i++) { 2996 DECLARE_RESORT_RB_MACHINE_THREADS(threads, trace->host, i); 2997 2998 if (threads == NULL) { 2999 fprintf(fp, "%s", "Error sorting output by nr_events!\n"); 3000 return 0; 3001 } 3002 3003 resort_rb__for_each_entry(nd, threads) 3004 printed += trace__fprintf_thread(fp, threads_entry->thread, trace); 3005 3006 resort_rb__delete(threads); 3007 } 3008 return printed; 3009 } 3010 3011 static int trace__set_duration(const struct option *opt, const char *str, 3012 int unset __maybe_unused) 3013 { 3014 struct trace *trace = opt->value; 3015 3016 trace->duration_filter = atof(str); 3017 return 0; 3018 } 3019 3020 static int trace__set_filter_pids(const struct option *opt, const char *str, 3021 int unset __maybe_unused) 3022 { 3023 int ret = -1; 3024 size_t i; 3025 struct trace *trace = opt->value; 3026 /* 3027 * FIXME: introduce a intarray class, plain parse csv and create a 3028 * { int nr, int entries[] } struct... 3029 */ 3030 struct intlist *list = intlist__new(str); 3031 3032 if (list == NULL) 3033 return -1; 3034 3035 i = trace->filter_pids.nr = intlist__nr_entries(list) + 1; 3036 trace->filter_pids.entries = calloc(i, sizeof(pid_t)); 3037 3038 if (trace->filter_pids.entries == NULL) 3039 goto out; 3040 3041 trace->filter_pids.entries[0] = getpid(); 3042 3043 for (i = 1; i < trace->filter_pids.nr; ++i) 3044 trace->filter_pids.entries[i] = intlist__entry(list, i - 1)->i; 3045 3046 intlist__delete(list); 3047 ret = 0; 3048 out: 3049 return ret; 3050 } 3051 3052 static int trace__open_output(struct trace *trace, const char *filename) 3053 { 3054 struct stat st; 3055 3056 if (!stat(filename, &st) && st.st_size) { 3057 char oldname[PATH_MAX]; 3058 3059 scnprintf(oldname, sizeof(oldname), "%s.old", filename); 3060 unlink(oldname); 3061 rename(filename, oldname); 3062 } 3063 3064 trace->output = fopen(filename, "w"); 3065 3066 return trace->output == NULL ? -errno : 0; 3067 } 3068 3069 static int parse_pagefaults(const struct option *opt, const char *str, 3070 int unset __maybe_unused) 3071 { 3072 int *trace_pgfaults = opt->value; 3073 3074 if (strcmp(str, "all") == 0) 3075 *trace_pgfaults |= TRACE_PFMAJ | TRACE_PFMIN; 3076 else if (strcmp(str, "maj") == 0) 3077 *trace_pgfaults |= TRACE_PFMAJ; 3078 else if (strcmp(str, "min") == 0) 3079 *trace_pgfaults |= TRACE_PFMIN; 3080 else 3081 return -1; 3082 3083 return 0; 3084 } 3085 3086 static void evlist__set_evsel_handler(struct perf_evlist *evlist, void *handler) 3087 { 3088 struct perf_evsel *evsel; 3089 3090 evlist__for_each_entry(evlist, evsel) 3091 evsel->handler = handler; 3092 } 3093 3094 static int evlist__set_syscall_tp_fields(struct perf_evlist *evlist) 3095 { 3096 struct perf_evsel *evsel; 3097 3098 evlist__for_each_entry(evlist, evsel) { 3099 if (evsel->priv || !evsel->tp_format) 3100 continue; 3101 3102 if (strcmp(evsel->tp_format->system, "syscalls")) 3103 continue; 3104 3105 if (perf_evsel__init_syscall_tp(evsel)) 3106 return -1; 3107 3108 if (!strncmp(evsel->tp_format->name, "sys_enter_", 10)) { 3109 struct syscall_tp *sc = evsel->priv; 3110 3111 if (__tp_field__init_ptr(&sc->args, sc->id.offset + sizeof(u64))) 3112 return -1; 3113 } else if (!strncmp(evsel->tp_format->name, "sys_exit_", 9)) { 3114 struct syscall_tp *sc = evsel->priv; 3115 3116 if (__tp_field__init_uint(&sc->ret, sizeof(u64), sc->id.offset + sizeof(u64), evsel->needs_swap)) 3117 return -1; 3118 } 3119 } 3120 3121 return 0; 3122 } 3123 3124 /* 3125 * XXX: Hackish, just splitting the combined -e+--event (syscalls 3126 * (raw_syscalls:{sys_{enter,exit}} + events (tracepoints, HW, SW, etc) to use 3127 * existing facilities unchanged (trace->ev_qualifier + parse_options()). 3128 * 3129 * It'd be better to introduce a parse_options() variant that would return a 3130 * list with the terms it didn't match to an event... 3131 */ 3132 static int trace__parse_events_option(const struct option *opt, const char *str, 3133 int unset __maybe_unused) 3134 { 3135 struct trace *trace = (struct trace *)opt->value; 3136 const char *s = str; 3137 char *sep = NULL, *lists[2] = { NULL, NULL, }; 3138 int len = strlen(str) + 1, err = -1, list, idx; 3139 char *strace_groups_dir = system_path(STRACE_GROUPS_DIR); 3140 char group_name[PATH_MAX]; 3141 3142 if (strace_groups_dir == NULL) 3143 return -1; 3144 3145 if (*s == '!') { 3146 ++s; 3147 trace->not_ev_qualifier = true; 3148 } 3149 3150 while (1) { 3151 if ((sep = strchr(s, ',')) != NULL) 3152 *sep = '\0'; 3153 3154 list = 0; 3155 if (syscalltbl__id(trace->sctbl, s) >= 0 || 3156 syscalltbl__strglobmatch_first(trace->sctbl, s, &idx) >= 0) { 3157 list = 1; 3158 } else { 3159 path__join(group_name, sizeof(group_name), strace_groups_dir, s); 3160 if (access(group_name, R_OK) == 0) 3161 list = 1; 3162 } 3163 3164 if (lists[list]) { 3165 sprintf(lists[list] + strlen(lists[list]), ",%s", s); 3166 } else { 3167 lists[list] = malloc(len); 3168 if (lists[list] == NULL) 3169 goto out; 3170 strcpy(lists[list], s); 3171 } 3172 3173 if (!sep) 3174 break; 3175 3176 *sep = ','; 3177 s = sep + 1; 3178 } 3179 3180 if (lists[1] != NULL) { 3181 struct strlist_config slist_config = { 3182 .dirname = strace_groups_dir, 3183 }; 3184 3185 trace->ev_qualifier = strlist__new(lists[1], &slist_config); 3186 if (trace->ev_qualifier == NULL) { 3187 fputs("Not enough memory to parse event qualifier", trace->output); 3188 goto out; 3189 } 3190 3191 if (trace__validate_ev_qualifier(trace)) 3192 goto out; 3193 trace->trace_syscalls = true; 3194 } 3195 3196 err = 0; 3197 3198 if (lists[0]) { 3199 struct option o = OPT_CALLBACK('e', "event", &trace->evlist, "event", 3200 "event selector. use 'perf list' to list available events", 3201 parse_events_option); 3202 err = parse_events_option(&o, lists[0], 0); 3203 } 3204 out: 3205 if (sep) 3206 *sep = ','; 3207 3208 return err; 3209 } 3210 3211 static int trace__parse_cgroups(const struct option *opt, const char *str, int unset) 3212 { 3213 struct trace *trace = opt->value; 3214 3215 if (!list_empty(&trace->evlist->entries)) 3216 return parse_cgroups(opt, str, unset); 3217 3218 trace->cgroup = evlist__findnew_cgroup(trace->evlist, str); 3219 3220 return 0; 3221 } 3222 3223 int cmd_trace(int argc, const char **argv) 3224 { 3225 const char *trace_usage[] = { 3226 "perf trace [<options>] [<command>]", 3227 "perf trace [<options>] -- <command> [<options>]", 3228 "perf trace record [<options>] [<command>]", 3229 "perf trace record [<options>] -- <command> [<options>]", 3230 NULL 3231 }; 3232 struct trace trace = { 3233 .syscalls = { 3234 . max = -1, 3235 }, 3236 .opts = { 3237 .target = { 3238 .uid = UINT_MAX, 3239 .uses_mmap = true, 3240 }, 3241 .user_freq = UINT_MAX, 3242 .user_interval = ULLONG_MAX, 3243 .no_buffering = true, 3244 .mmap_pages = UINT_MAX, 3245 .proc_map_timeout = 500, 3246 }, 3247 .output = stderr, 3248 .show_comm = true, 3249 .trace_syscalls = false, 3250 .kernel_syscallchains = false, 3251 .max_stack = UINT_MAX, 3252 }; 3253 const char *output_name = NULL; 3254 const struct option trace_options[] = { 3255 OPT_CALLBACK('e', "event", &trace, "event", 3256 "event/syscall selector. use 'perf list' to list available events", 3257 trace__parse_events_option), 3258 OPT_BOOLEAN(0, "comm", &trace.show_comm, 3259 "show the thread COMM next to its id"), 3260 OPT_BOOLEAN(0, "tool_stats", &trace.show_tool_stats, "show tool stats"), 3261 OPT_CALLBACK(0, "expr", &trace, "expr", "list of syscalls/events to trace", 3262 trace__parse_events_option), 3263 OPT_STRING('o', "output", &output_name, "file", "output file name"), 3264 OPT_STRING('i', "input", &input_name, "file", "Analyze events in file"), 3265 OPT_STRING('p', "pid", &trace.opts.target.pid, "pid", 3266 "trace events on existing process id"), 3267 OPT_STRING('t', "tid", &trace.opts.target.tid, "tid", 3268 "trace events on existing thread id"), 3269 OPT_CALLBACK(0, "filter-pids", &trace, "CSV list of pids", 3270 "pids to filter (by the kernel)", trace__set_filter_pids), 3271 OPT_BOOLEAN('a', "all-cpus", &trace.opts.target.system_wide, 3272 "system-wide collection from all CPUs"), 3273 OPT_STRING('C', "cpu", &trace.opts.target.cpu_list, "cpu", 3274 "list of cpus to monitor"), 3275 OPT_BOOLEAN(0, "no-inherit", &trace.opts.no_inherit, 3276 "child tasks do not inherit counters"), 3277 OPT_CALLBACK('m', "mmap-pages", &trace.opts.mmap_pages, "pages", 3278 "number of mmap data pages", 3279 perf_evlist__parse_mmap_pages), 3280 OPT_STRING('u', "uid", &trace.opts.target.uid_str, "user", 3281 "user to profile"), 3282 OPT_CALLBACK(0, "duration", &trace, "float", 3283 "show only events with duration > N.M ms", 3284 trace__set_duration), 3285 OPT_BOOLEAN(0, "sched", &trace.sched, "show blocking scheduler events"), 3286 OPT_INCR('v', "verbose", &verbose, "be more verbose"), 3287 OPT_BOOLEAN('T', "time", &trace.full_time, 3288 "Show full timestamp, not time relative to first start"), 3289 OPT_BOOLEAN(0, "failure", &trace.failure_only, 3290 "Show only syscalls that failed"), 3291 OPT_BOOLEAN('s', "summary", &trace.summary_only, 3292 "Show only syscall summary with statistics"), 3293 OPT_BOOLEAN('S', "with-summary", &trace.summary, 3294 "Show all syscalls and summary with statistics"), 3295 OPT_CALLBACK_DEFAULT('F', "pf", &trace.trace_pgfaults, "all|maj|min", 3296 "Trace pagefaults", parse_pagefaults, "maj"), 3297 OPT_BOOLEAN(0, "syscalls", &trace.trace_syscalls, "Trace syscalls"), 3298 OPT_BOOLEAN('f', "force", &trace.force, "don't complain, do it"), 3299 OPT_CALLBACK(0, "call-graph", &trace.opts, 3300 "record_mode[,record_size]", record_callchain_help, 3301 &record_parse_callchain_opt), 3302 OPT_BOOLEAN(0, "kernel-syscall-graph", &trace.kernel_syscallchains, 3303 "Show the kernel callchains on the syscall exit path"), 3304 OPT_UINTEGER(0, "min-stack", &trace.min_stack, 3305 "Set the minimum stack depth when parsing the callchain, " 3306 "anything below the specified depth will be ignored."), 3307 OPT_UINTEGER(0, "max-stack", &trace.max_stack, 3308 "Set the maximum stack depth when parsing the callchain, " 3309 "anything beyond the specified depth will be ignored. " 3310 "Default: kernel.perf_event_max_stack or " __stringify(PERF_MAX_STACK_DEPTH)), 3311 OPT_BOOLEAN(0, "print-sample", &trace.print_sample, 3312 "print the PERF_RECORD_SAMPLE PERF_SAMPLE_ info, for debugging"), 3313 OPT_UINTEGER(0, "proc-map-timeout", &trace.opts.proc_map_timeout, 3314 "per thread proc mmap processing timeout in ms"), 3315 OPT_CALLBACK('G', "cgroup", &trace, "name", "monitor event in cgroup name only", 3316 trace__parse_cgroups), 3317 OPT_UINTEGER('D', "delay", &trace.opts.initial_delay, 3318 "ms to wait before starting measurement after program " 3319 "start"), 3320 OPT_END() 3321 }; 3322 bool __maybe_unused max_stack_user_set = true; 3323 bool mmap_pages_user_set = true; 3324 struct perf_evsel *evsel; 3325 const char * const trace_subcommands[] = { "record", NULL }; 3326 int err = -1; 3327 char bf[BUFSIZ]; 3328 3329 signal(SIGSEGV, sighandler_dump_stack); 3330 signal(SIGFPE, sighandler_dump_stack); 3331 3332 trace.evlist = perf_evlist__new(); 3333 trace.sctbl = syscalltbl__new(); 3334 3335 if (trace.evlist == NULL || trace.sctbl == NULL) { 3336 pr_err("Not enough memory to run!\n"); 3337 err = -ENOMEM; 3338 goto out; 3339 } 3340 3341 argc = parse_options_subcommand(argc, argv, trace_options, trace_subcommands, 3342 trace_usage, PARSE_OPT_STOP_AT_NON_OPTION); 3343 3344 if ((nr_cgroups || trace.cgroup) && !trace.opts.target.system_wide) { 3345 usage_with_options_msg(trace_usage, trace_options, 3346 "cgroup monitoring only available in system-wide mode"); 3347 } 3348 3349 evsel = bpf__setup_output_event(trace.evlist, "__augmented_syscalls__"); 3350 if (IS_ERR(evsel)) { 3351 bpf__strerror_setup_output_event(trace.evlist, PTR_ERR(evsel), bf, sizeof(bf)); 3352 pr_err("ERROR: Setup trace syscalls enter failed: %s\n", bf); 3353 goto out; 3354 } 3355 3356 if (evsel) 3357 trace.syscalls.events.augmented = evsel; 3358 3359 err = bpf__setup_stdout(trace.evlist); 3360 if (err) { 3361 bpf__strerror_setup_stdout(trace.evlist, err, bf, sizeof(bf)); 3362 pr_err("ERROR: Setup BPF stdout failed: %s\n", bf); 3363 goto out; 3364 } 3365 3366 err = -1; 3367 3368 if (trace.trace_pgfaults) { 3369 trace.opts.sample_address = true; 3370 trace.opts.sample_time = true; 3371 } 3372 3373 if (trace.opts.mmap_pages == UINT_MAX) 3374 mmap_pages_user_set = false; 3375 3376 if (trace.max_stack == UINT_MAX) { 3377 trace.max_stack = input_name ? PERF_MAX_STACK_DEPTH : sysctl__max_stack(); 3378 max_stack_user_set = false; 3379 } 3380 3381 #ifdef HAVE_DWARF_UNWIND_SUPPORT 3382 if ((trace.min_stack || max_stack_user_set) && !callchain_param.enabled) { 3383 record_opts__parse_callchain(&trace.opts, &callchain_param, "dwarf", false); 3384 } 3385 #endif 3386 3387 if (callchain_param.enabled) { 3388 if (!mmap_pages_user_set && geteuid() == 0) 3389 trace.opts.mmap_pages = perf_event_mlock_kb_in_pages() * 4; 3390 3391 symbol_conf.use_callchain = true; 3392 } 3393 3394 if (trace.evlist->nr_entries > 0) { 3395 evlist__set_evsel_handler(trace.evlist, trace__event_handler); 3396 if (evlist__set_syscall_tp_fields(trace.evlist)) { 3397 perror("failed to set syscalls:* tracepoint fields"); 3398 goto out; 3399 } 3400 } 3401 3402 /* 3403 * If we are augmenting syscalls, then combine what we put in the 3404 * __augmented_syscalls__ BPF map with what is in the 3405 * syscalls:sys_exit_FOO tracepoints, i.e. just like we do without BPF, 3406 * combining raw_syscalls:sys_enter with raw_syscalls:sys_exit. 3407 * 3408 * We'll switch to look at two BPF maps, one for sys_enter and the 3409 * other for sys_exit when we start augmenting the sys_exit paths with 3410 * buffers that are being copied from kernel to userspace, think 'read' 3411 * syscall. 3412 */ 3413 if (trace.syscalls.events.augmented) { 3414 evsel = trace.syscalls.events.augmented; 3415 3416 if (perf_evsel__init_augmented_syscall_tp(evsel) || 3417 perf_evsel__init_augmented_syscall_tp_args(evsel)) 3418 goto out; 3419 evsel->handler = trace__sys_enter; 3420 3421 evlist__for_each_entry(trace.evlist, evsel) { 3422 if (strstarts(perf_evsel__name(evsel), "syscalls:sys_exit_")) { 3423 perf_evsel__init_augmented_syscall_tp(evsel); 3424 perf_evsel__init_augmented_syscall_tp_ret(evsel); 3425 evsel->handler = trace__sys_exit; 3426 } 3427 } 3428 } 3429 3430 if ((argc >= 1) && (strcmp(argv[0], "record") == 0)) 3431 return trace__record(&trace, argc-1, &argv[1]); 3432 3433 /* summary_only implies summary option, but don't overwrite summary if set */ 3434 if (trace.summary_only) 3435 trace.summary = trace.summary_only; 3436 3437 if (!trace.trace_syscalls && !trace.trace_pgfaults && 3438 trace.evlist->nr_entries == 0 /* Was --events used? */) { 3439 trace.trace_syscalls = true; 3440 } 3441 3442 if (output_name != NULL) { 3443 err = trace__open_output(&trace, output_name); 3444 if (err < 0) { 3445 perror("failed to create output file"); 3446 goto out; 3447 } 3448 } 3449 3450 err = target__validate(&trace.opts.target); 3451 if (err) { 3452 target__strerror(&trace.opts.target, err, bf, sizeof(bf)); 3453 fprintf(trace.output, "%s", bf); 3454 goto out_close; 3455 } 3456 3457 err = target__parse_uid(&trace.opts.target); 3458 if (err) { 3459 target__strerror(&trace.opts.target, err, bf, sizeof(bf)); 3460 fprintf(trace.output, "%s", bf); 3461 goto out_close; 3462 } 3463 3464 if (!argc && target__none(&trace.opts.target)) 3465 trace.opts.target.system_wide = true; 3466 3467 if (input_name) 3468 err = trace__replay(&trace); 3469 else 3470 err = trace__run(&trace, argc, argv); 3471 3472 out_close: 3473 if (output_name != NULL) 3474 fclose(trace.output); 3475 out: 3476 return err; 3477 } 3478