1 // SPDX-License-Identifier: GPL-2.0 2 /* 3 * builtin-record.c 4 * 5 * Builtin record command: Record the profile of a workload 6 * (or a CPU, or a PID) into the perf.data output file - for 7 * later analysis via perf report. 8 */ 9 #include "builtin.h" 10 11 #include "util/build-id.h" 12 #include <subcmd/parse-options.h> 13 #include <internal/xyarray.h> 14 #include "util/parse-events.h" 15 #include "util/config.h" 16 17 #include "util/callchain.h" 18 #include "util/cgroup.h" 19 #include "util/header.h" 20 #include "util/event.h" 21 #include "util/evlist.h" 22 #include "util/evsel.h" 23 #include "util/debug.h" 24 #include "util/mmap.h" 25 #include "util/mutex.h" 26 #include "util/target.h" 27 #include "util/session.h" 28 #include "util/tool.h" 29 #include "util/symbol.h" 30 #include "util/record.h" 31 #include "util/cpumap.h" 32 #include "util/thread_map.h" 33 #include "util/data.h" 34 #include "util/perf_regs.h" 35 #include "util/auxtrace.h" 36 #include "util/tsc.h" 37 #include "util/parse-branch-options.h" 38 #include "util/parse-regs-options.h" 39 #include "util/perf_api_probe.h" 40 #include "util/trigger.h" 41 #include "util/perf-hooks.h" 42 #include "util/cpu-set-sched.h" 43 #include "util/synthetic-events.h" 44 #include "util/time-utils.h" 45 #include "util/units.h" 46 #include "util/bpf-event.h" 47 #include "util/util.h" 48 #include "util/pfm.h" 49 #include "util/pmu.h" 50 #include "util/pmus.h" 51 #include "util/clockid.h" 52 #include "util/off_cpu.h" 53 #include "util/bpf-filter.h" 54 #include "asm/bug.h" 55 #include "perf.h" 56 #include "cputopo.h" 57 58 #include <errno.h> 59 #include <inttypes.h> 60 #include <locale.h> 61 #include <poll.h> 62 #include <pthread.h> 63 #include <unistd.h> 64 #ifndef HAVE_GETTID 65 #include <syscall.h> 66 #endif 67 #include <sched.h> 68 #include <signal.h> 69 #ifdef HAVE_EVENTFD_SUPPORT 70 #include <sys/eventfd.h> 71 #endif 72 #include <sys/mman.h> 73 #include <sys/wait.h> 74 #include <sys/types.h> 75 #include <sys/stat.h> 76 #include <fcntl.h> 77 #include <linux/err.h> 78 #include <linux/string.h> 79 #include <linux/time64.h> 80 #include <linux/zalloc.h> 81 #include <linux/bitmap.h> 82 #include <sys/time.h> 83 84 struct switch_output { 85 bool enabled; 86 bool signal; 87 unsigned long size; 88 unsigned long time; 89 const char *str; 90 bool set; 91 char **filenames; 92 int num_files; 93 int cur_file; 94 }; 95 96 struct thread_mask { 97 struct mmap_cpu_mask maps; 98 struct mmap_cpu_mask affinity; 99 }; 100 101 struct record_thread { 102 pid_t tid; 103 struct thread_mask *mask; 104 struct { 105 int msg[2]; 106 int ack[2]; 107 } pipes; 108 struct fdarray pollfd; 109 int ctlfd_pos; 110 int nr_mmaps; 111 struct mmap **maps; 112 struct mmap **overwrite_maps; 113 struct record *rec; 114 unsigned long long samples; 115 unsigned long waking; 116 u64 bytes_written; 117 u64 bytes_transferred; 118 u64 bytes_compressed; 119 }; 120 121 static __thread struct record_thread *thread; 122 123 enum thread_msg { 124 THREAD_MSG__UNDEFINED = 0, 125 THREAD_MSG__READY, 126 THREAD_MSG__MAX, 127 }; 128 129 static const char *thread_msg_tags[THREAD_MSG__MAX] = { 130 "UNDEFINED", "READY" 131 }; 132 133 enum thread_spec { 134 THREAD_SPEC__UNDEFINED = 0, 135 THREAD_SPEC__CPU, 136 THREAD_SPEC__CORE, 137 THREAD_SPEC__PACKAGE, 138 THREAD_SPEC__NUMA, 139 THREAD_SPEC__USER, 140 THREAD_SPEC__MAX, 141 }; 142 143 static const char *thread_spec_tags[THREAD_SPEC__MAX] = { 144 "undefined", "cpu", "core", "package", "numa", "user" 145 }; 146 147 struct pollfd_index_map { 148 int evlist_pollfd_index; 149 int thread_pollfd_index; 150 }; 151 152 struct record { 153 struct perf_tool tool; 154 struct record_opts opts; 155 u64 bytes_written; 156 u64 thread_bytes_written; 157 struct perf_data data; 158 struct auxtrace_record *itr; 159 struct evlist *evlist; 160 struct perf_session *session; 161 struct evlist *sb_evlist; 162 pthread_t thread_id; 163 int realtime_prio; 164 bool switch_output_event_set; 165 bool no_buildid; 166 bool no_buildid_set; 167 bool no_buildid_cache; 168 bool no_buildid_cache_set; 169 bool buildid_all; 170 bool buildid_mmap; 171 bool timestamp_filename; 172 bool timestamp_boundary; 173 bool off_cpu; 174 struct switch_output switch_output; 175 unsigned long long samples; 176 unsigned long output_max_size; /* = 0: unlimited */ 177 struct perf_debuginfod debuginfod; 178 int nr_threads; 179 struct thread_mask *thread_masks; 180 struct record_thread *thread_data; 181 struct pollfd_index_map *index_map; 182 size_t index_map_sz; 183 size_t index_map_cnt; 184 }; 185 186 static volatile int done; 187 188 static volatile int auxtrace_record__snapshot_started; 189 static DEFINE_TRIGGER(auxtrace_snapshot_trigger); 190 static DEFINE_TRIGGER(switch_output_trigger); 191 192 static const char *affinity_tags[PERF_AFFINITY_MAX] = { 193 "SYS", "NODE", "CPU" 194 }; 195 196 #ifndef HAVE_GETTID 197 static inline pid_t gettid(void) 198 { 199 return (pid_t)syscall(__NR_gettid); 200 } 201 #endif 202 203 static int record__threads_enabled(struct record *rec) 204 { 205 return rec->opts.threads_spec; 206 } 207 208 static bool switch_output_signal(struct record *rec) 209 { 210 return rec->switch_output.signal && 211 trigger_is_ready(&switch_output_trigger); 212 } 213 214 static bool switch_output_size(struct record *rec) 215 { 216 return rec->switch_output.size && 217 trigger_is_ready(&switch_output_trigger) && 218 (rec->bytes_written >= rec->switch_output.size); 219 } 220 221 static bool switch_output_time(struct record *rec) 222 { 223 return rec->switch_output.time && 224 trigger_is_ready(&switch_output_trigger); 225 } 226 227 static u64 record__bytes_written(struct record *rec) 228 { 229 return rec->bytes_written + rec->thread_bytes_written; 230 } 231 232 static bool record__output_max_size_exceeded(struct record *rec) 233 { 234 return rec->output_max_size && 235 (record__bytes_written(rec) >= rec->output_max_size); 236 } 237 238 static int record__write(struct record *rec, struct mmap *map __maybe_unused, 239 void *bf, size_t size) 240 { 241 struct perf_data_file *file = &rec->session->data->file; 242 243 if (map && map->file) 244 file = map->file; 245 246 if (perf_data_file__write(file, bf, size) < 0) { 247 pr_err("failed to write perf data, error: %m\n"); 248 return -1; 249 } 250 251 if (map && map->file) { 252 thread->bytes_written += size; 253 rec->thread_bytes_written += size; 254 } else { 255 rec->bytes_written += size; 256 } 257 258 if (record__output_max_size_exceeded(rec) && !done) { 259 fprintf(stderr, "[ perf record: perf size limit reached (%" PRIu64 " KB)," 260 " stopping session ]\n", 261 record__bytes_written(rec) >> 10); 262 done = 1; 263 } 264 265 if (switch_output_size(rec)) 266 trigger_hit(&switch_output_trigger); 267 268 return 0; 269 } 270 271 static int record__aio_enabled(struct record *rec); 272 static int record__comp_enabled(struct record *rec); 273 static ssize_t zstd_compress(struct perf_session *session, struct mmap *map, 274 void *dst, size_t dst_size, void *src, size_t src_size); 275 276 #ifdef HAVE_AIO_SUPPORT 277 static int record__aio_write(struct aiocb *cblock, int trace_fd, 278 void *buf, size_t size, off_t off) 279 { 280 int rc; 281 282 cblock->aio_fildes = trace_fd; 283 cblock->aio_buf = buf; 284 cblock->aio_nbytes = size; 285 cblock->aio_offset = off; 286 cblock->aio_sigevent.sigev_notify = SIGEV_NONE; 287 288 do { 289 rc = aio_write(cblock); 290 if (rc == 0) { 291 break; 292 } else if (errno != EAGAIN) { 293 cblock->aio_fildes = -1; 294 pr_err("failed to queue perf data, error: %m\n"); 295 break; 296 } 297 } while (1); 298 299 return rc; 300 } 301 302 static int record__aio_complete(struct mmap *md, struct aiocb *cblock) 303 { 304 void *rem_buf; 305 off_t rem_off; 306 size_t rem_size; 307 int rc, aio_errno; 308 ssize_t aio_ret, written; 309 310 aio_errno = aio_error(cblock); 311 if (aio_errno == EINPROGRESS) 312 return 0; 313 314 written = aio_ret = aio_return(cblock); 315 if (aio_ret < 0) { 316 if (aio_errno != EINTR) 317 pr_err("failed to write perf data, error: %m\n"); 318 written = 0; 319 } 320 321 rem_size = cblock->aio_nbytes - written; 322 323 if (rem_size == 0) { 324 cblock->aio_fildes = -1; 325 /* 326 * md->refcount is incremented in record__aio_pushfn() for 327 * every aio write request started in record__aio_push() so 328 * decrement it because the request is now complete. 329 */ 330 perf_mmap__put(&md->core); 331 rc = 1; 332 } else { 333 /* 334 * aio write request may require restart with the 335 * reminder if the kernel didn't write whole 336 * chunk at once. 337 */ 338 rem_off = cblock->aio_offset + written; 339 rem_buf = (void *)(cblock->aio_buf + written); 340 record__aio_write(cblock, cblock->aio_fildes, 341 rem_buf, rem_size, rem_off); 342 rc = 0; 343 } 344 345 return rc; 346 } 347 348 static int record__aio_sync(struct mmap *md, bool sync_all) 349 { 350 struct aiocb **aiocb = md->aio.aiocb; 351 struct aiocb *cblocks = md->aio.cblocks; 352 struct timespec timeout = { 0, 1000 * 1000 * 1 }; /* 1ms */ 353 int i, do_suspend; 354 355 do { 356 do_suspend = 0; 357 for (i = 0; i < md->aio.nr_cblocks; ++i) { 358 if (cblocks[i].aio_fildes == -1 || record__aio_complete(md, &cblocks[i])) { 359 if (sync_all) 360 aiocb[i] = NULL; 361 else 362 return i; 363 } else { 364 /* 365 * Started aio write is not complete yet 366 * so it has to be waited before the 367 * next allocation. 368 */ 369 aiocb[i] = &cblocks[i]; 370 do_suspend = 1; 371 } 372 } 373 if (!do_suspend) 374 return -1; 375 376 while (aio_suspend((const struct aiocb **)aiocb, md->aio.nr_cblocks, &timeout)) { 377 if (!(errno == EAGAIN || errno == EINTR)) 378 pr_err("failed to sync perf data, error: %m\n"); 379 } 380 } while (1); 381 } 382 383 struct record_aio { 384 struct record *rec; 385 void *data; 386 size_t size; 387 }; 388 389 static int record__aio_pushfn(struct mmap *map, void *to, void *buf, size_t size) 390 { 391 struct record_aio *aio = to; 392 393 /* 394 * map->core.base data pointed by buf is copied into free map->aio.data[] buffer 395 * to release space in the kernel buffer as fast as possible, calling 396 * perf_mmap__consume() from perf_mmap__push() function. 397 * 398 * That lets the kernel to proceed with storing more profiling data into 399 * the kernel buffer earlier than other per-cpu kernel buffers are handled. 400 * 401 * Coping can be done in two steps in case the chunk of profiling data 402 * crosses the upper bound of the kernel buffer. In this case we first move 403 * part of data from map->start till the upper bound and then the reminder 404 * from the beginning of the kernel buffer till the end of the data chunk. 405 */ 406 407 if (record__comp_enabled(aio->rec)) { 408 ssize_t compressed = zstd_compress(aio->rec->session, NULL, aio->data + aio->size, 409 mmap__mmap_len(map) - aio->size, 410 buf, size); 411 if (compressed < 0) 412 return (int)compressed; 413 414 size = compressed; 415 } else { 416 memcpy(aio->data + aio->size, buf, size); 417 } 418 419 if (!aio->size) { 420 /* 421 * Increment map->refcount to guard map->aio.data[] buffer 422 * from premature deallocation because map object can be 423 * released earlier than aio write request started on 424 * map->aio.data[] buffer is complete. 425 * 426 * perf_mmap__put() is done at record__aio_complete() 427 * after started aio request completion or at record__aio_push() 428 * if the request failed to start. 429 */ 430 perf_mmap__get(&map->core); 431 } 432 433 aio->size += size; 434 435 return size; 436 } 437 438 static int record__aio_push(struct record *rec, struct mmap *map, off_t *off) 439 { 440 int ret, idx; 441 int trace_fd = rec->session->data->file.fd; 442 struct record_aio aio = { .rec = rec, .size = 0 }; 443 444 /* 445 * Call record__aio_sync() to wait till map->aio.data[] buffer 446 * becomes available after previous aio write operation. 447 */ 448 449 idx = record__aio_sync(map, false); 450 aio.data = map->aio.data[idx]; 451 ret = perf_mmap__push(map, &aio, record__aio_pushfn); 452 if (ret != 0) /* ret > 0 - no data, ret < 0 - error */ 453 return ret; 454 455 rec->samples++; 456 ret = record__aio_write(&(map->aio.cblocks[idx]), trace_fd, aio.data, aio.size, *off); 457 if (!ret) { 458 *off += aio.size; 459 rec->bytes_written += aio.size; 460 if (switch_output_size(rec)) 461 trigger_hit(&switch_output_trigger); 462 } else { 463 /* 464 * Decrement map->refcount incremented in record__aio_pushfn() 465 * back if record__aio_write() operation failed to start, otherwise 466 * map->refcount is decremented in record__aio_complete() after 467 * aio write operation finishes successfully. 468 */ 469 perf_mmap__put(&map->core); 470 } 471 472 return ret; 473 } 474 475 static off_t record__aio_get_pos(int trace_fd) 476 { 477 return lseek(trace_fd, 0, SEEK_CUR); 478 } 479 480 static void record__aio_set_pos(int trace_fd, off_t pos) 481 { 482 lseek(trace_fd, pos, SEEK_SET); 483 } 484 485 static void record__aio_mmap_read_sync(struct record *rec) 486 { 487 int i; 488 struct evlist *evlist = rec->evlist; 489 struct mmap *maps = evlist->mmap; 490 491 if (!record__aio_enabled(rec)) 492 return; 493 494 for (i = 0; i < evlist->core.nr_mmaps; i++) { 495 struct mmap *map = &maps[i]; 496 497 if (map->core.base) 498 record__aio_sync(map, true); 499 } 500 } 501 502 static int nr_cblocks_default = 1; 503 static int nr_cblocks_max = 4; 504 505 static int record__aio_parse(const struct option *opt, 506 const char *str, 507 int unset) 508 { 509 struct record_opts *opts = (struct record_opts *)opt->value; 510 511 if (unset) { 512 opts->nr_cblocks = 0; 513 } else { 514 if (str) 515 opts->nr_cblocks = strtol(str, NULL, 0); 516 if (!opts->nr_cblocks) 517 opts->nr_cblocks = nr_cblocks_default; 518 } 519 520 return 0; 521 } 522 #else /* HAVE_AIO_SUPPORT */ 523 static int nr_cblocks_max = 0; 524 525 static int record__aio_push(struct record *rec __maybe_unused, struct mmap *map __maybe_unused, 526 off_t *off __maybe_unused) 527 { 528 return -1; 529 } 530 531 static off_t record__aio_get_pos(int trace_fd __maybe_unused) 532 { 533 return -1; 534 } 535 536 static void record__aio_set_pos(int trace_fd __maybe_unused, off_t pos __maybe_unused) 537 { 538 } 539 540 static void record__aio_mmap_read_sync(struct record *rec __maybe_unused) 541 { 542 } 543 #endif 544 545 static int record__aio_enabled(struct record *rec) 546 { 547 return rec->opts.nr_cblocks > 0; 548 } 549 550 #define MMAP_FLUSH_DEFAULT 1 551 static int record__mmap_flush_parse(const struct option *opt, 552 const char *str, 553 int unset) 554 { 555 int flush_max; 556 struct record_opts *opts = (struct record_opts *)opt->value; 557 static struct parse_tag tags[] = { 558 { .tag = 'B', .mult = 1 }, 559 { .tag = 'K', .mult = 1 << 10 }, 560 { .tag = 'M', .mult = 1 << 20 }, 561 { .tag = 'G', .mult = 1 << 30 }, 562 { .tag = 0 }, 563 }; 564 565 if (unset) 566 return 0; 567 568 if (str) { 569 opts->mmap_flush = parse_tag_value(str, tags); 570 if (opts->mmap_flush == (int)-1) 571 opts->mmap_flush = strtol(str, NULL, 0); 572 } 573 574 if (!opts->mmap_flush) 575 opts->mmap_flush = MMAP_FLUSH_DEFAULT; 576 577 flush_max = evlist__mmap_size(opts->mmap_pages); 578 flush_max /= 4; 579 if (opts->mmap_flush > flush_max) 580 opts->mmap_flush = flush_max; 581 582 return 0; 583 } 584 585 #ifdef HAVE_ZSTD_SUPPORT 586 static unsigned int comp_level_default = 1; 587 588 static int record__parse_comp_level(const struct option *opt, const char *str, int unset) 589 { 590 struct record_opts *opts = opt->value; 591 592 if (unset) { 593 opts->comp_level = 0; 594 } else { 595 if (str) 596 opts->comp_level = strtol(str, NULL, 0); 597 if (!opts->comp_level) 598 opts->comp_level = comp_level_default; 599 } 600 601 return 0; 602 } 603 #endif 604 static unsigned int comp_level_max = 22; 605 606 static int record__comp_enabled(struct record *rec) 607 { 608 return rec->opts.comp_level > 0; 609 } 610 611 static int process_synthesized_event(struct perf_tool *tool, 612 union perf_event *event, 613 struct perf_sample *sample __maybe_unused, 614 struct machine *machine __maybe_unused) 615 { 616 struct record *rec = container_of(tool, struct record, tool); 617 return record__write(rec, NULL, event, event->header.size); 618 } 619 620 static struct mutex synth_lock; 621 622 static int process_locked_synthesized_event(struct perf_tool *tool, 623 union perf_event *event, 624 struct perf_sample *sample __maybe_unused, 625 struct machine *machine __maybe_unused) 626 { 627 int ret; 628 629 mutex_lock(&synth_lock); 630 ret = process_synthesized_event(tool, event, sample, machine); 631 mutex_unlock(&synth_lock); 632 return ret; 633 } 634 635 static int record__pushfn(struct mmap *map, void *to, void *bf, size_t size) 636 { 637 struct record *rec = to; 638 639 if (record__comp_enabled(rec)) { 640 ssize_t compressed = zstd_compress(rec->session, map, map->data, 641 mmap__mmap_len(map), bf, size); 642 643 if (compressed < 0) 644 return (int)compressed; 645 646 size = compressed; 647 bf = map->data; 648 } 649 650 thread->samples++; 651 return record__write(rec, map, bf, size); 652 } 653 654 static volatile sig_atomic_t signr = -1; 655 static volatile sig_atomic_t child_finished; 656 #ifdef HAVE_EVENTFD_SUPPORT 657 static volatile sig_atomic_t done_fd = -1; 658 #endif 659 660 static void sig_handler(int sig) 661 { 662 if (sig == SIGCHLD) 663 child_finished = 1; 664 else 665 signr = sig; 666 667 done = 1; 668 #ifdef HAVE_EVENTFD_SUPPORT 669 if (done_fd >= 0) { 670 u64 tmp = 1; 671 int orig_errno = errno; 672 673 /* 674 * It is possible for this signal handler to run after done is 675 * checked in the main loop, but before the perf counter fds are 676 * polled. If this happens, the poll() will continue to wait 677 * even though done is set, and will only break out if either 678 * another signal is received, or the counters are ready for 679 * read. To ensure the poll() doesn't sleep when done is set, 680 * use an eventfd (done_fd) to wake up the poll(). 681 */ 682 if (write(done_fd, &tmp, sizeof(tmp)) < 0) 683 pr_err("failed to signal wakeup fd, error: %m\n"); 684 685 errno = orig_errno; 686 } 687 #endif // HAVE_EVENTFD_SUPPORT 688 } 689 690 static void sigsegv_handler(int sig) 691 { 692 perf_hooks__recover(); 693 sighandler_dump_stack(sig); 694 } 695 696 static void record__sig_exit(void) 697 { 698 if (signr == -1) 699 return; 700 701 signal(signr, SIG_DFL); 702 raise(signr); 703 } 704 705 #ifdef HAVE_AUXTRACE_SUPPORT 706 707 static int record__process_auxtrace(struct perf_tool *tool, 708 struct mmap *map, 709 union perf_event *event, void *data1, 710 size_t len1, void *data2, size_t len2) 711 { 712 struct record *rec = container_of(tool, struct record, tool); 713 struct perf_data *data = &rec->data; 714 size_t padding; 715 u8 pad[8] = {0}; 716 717 if (!perf_data__is_pipe(data) && perf_data__is_single_file(data)) { 718 off_t file_offset; 719 int fd = perf_data__fd(data); 720 int err; 721 722 file_offset = lseek(fd, 0, SEEK_CUR); 723 if (file_offset == -1) 724 return -1; 725 err = auxtrace_index__auxtrace_event(&rec->session->auxtrace_index, 726 event, file_offset); 727 if (err) 728 return err; 729 } 730 731 /* event.auxtrace.size includes padding, see __auxtrace_mmap__read() */ 732 padding = (len1 + len2) & 7; 733 if (padding) 734 padding = 8 - padding; 735 736 record__write(rec, map, event, event->header.size); 737 record__write(rec, map, data1, len1); 738 if (len2) 739 record__write(rec, map, data2, len2); 740 record__write(rec, map, &pad, padding); 741 742 return 0; 743 } 744 745 static int record__auxtrace_mmap_read(struct record *rec, 746 struct mmap *map) 747 { 748 int ret; 749 750 ret = auxtrace_mmap__read(map, rec->itr, &rec->tool, 751 record__process_auxtrace); 752 if (ret < 0) 753 return ret; 754 755 if (ret) 756 rec->samples++; 757 758 return 0; 759 } 760 761 static int record__auxtrace_mmap_read_snapshot(struct record *rec, 762 struct mmap *map) 763 { 764 int ret; 765 766 ret = auxtrace_mmap__read_snapshot(map, rec->itr, &rec->tool, 767 record__process_auxtrace, 768 rec->opts.auxtrace_snapshot_size); 769 if (ret < 0) 770 return ret; 771 772 if (ret) 773 rec->samples++; 774 775 return 0; 776 } 777 778 static int record__auxtrace_read_snapshot_all(struct record *rec) 779 { 780 int i; 781 int rc = 0; 782 783 for (i = 0; i < rec->evlist->core.nr_mmaps; i++) { 784 struct mmap *map = &rec->evlist->mmap[i]; 785 786 if (!map->auxtrace_mmap.base) 787 continue; 788 789 if (record__auxtrace_mmap_read_snapshot(rec, map) != 0) { 790 rc = -1; 791 goto out; 792 } 793 } 794 out: 795 return rc; 796 } 797 798 static void record__read_auxtrace_snapshot(struct record *rec, bool on_exit) 799 { 800 pr_debug("Recording AUX area tracing snapshot\n"); 801 if (record__auxtrace_read_snapshot_all(rec) < 0) { 802 trigger_error(&auxtrace_snapshot_trigger); 803 } else { 804 if (auxtrace_record__snapshot_finish(rec->itr, on_exit)) 805 trigger_error(&auxtrace_snapshot_trigger); 806 else 807 trigger_ready(&auxtrace_snapshot_trigger); 808 } 809 } 810 811 static int record__auxtrace_snapshot_exit(struct record *rec) 812 { 813 if (trigger_is_error(&auxtrace_snapshot_trigger)) 814 return 0; 815 816 if (!auxtrace_record__snapshot_started && 817 auxtrace_record__snapshot_start(rec->itr)) 818 return -1; 819 820 record__read_auxtrace_snapshot(rec, true); 821 if (trigger_is_error(&auxtrace_snapshot_trigger)) 822 return -1; 823 824 return 0; 825 } 826 827 static int record__auxtrace_init(struct record *rec) 828 { 829 int err; 830 831 if ((rec->opts.auxtrace_snapshot_opts || rec->opts.auxtrace_sample_opts) 832 && record__threads_enabled(rec)) { 833 pr_err("AUX area tracing options are not available in parallel streaming mode.\n"); 834 return -EINVAL; 835 } 836 837 if (!rec->itr) { 838 rec->itr = auxtrace_record__init(rec->evlist, &err); 839 if (err) 840 return err; 841 } 842 843 err = auxtrace_parse_snapshot_options(rec->itr, &rec->opts, 844 rec->opts.auxtrace_snapshot_opts); 845 if (err) 846 return err; 847 848 err = auxtrace_parse_sample_options(rec->itr, rec->evlist, &rec->opts, 849 rec->opts.auxtrace_sample_opts); 850 if (err) 851 return err; 852 853 auxtrace_regroup_aux_output(rec->evlist); 854 855 return auxtrace_parse_filters(rec->evlist); 856 } 857 858 #else 859 860 static inline 861 int record__auxtrace_mmap_read(struct record *rec __maybe_unused, 862 struct mmap *map __maybe_unused) 863 { 864 return 0; 865 } 866 867 static inline 868 void record__read_auxtrace_snapshot(struct record *rec __maybe_unused, 869 bool on_exit __maybe_unused) 870 { 871 } 872 873 static inline 874 int auxtrace_record__snapshot_start(struct auxtrace_record *itr __maybe_unused) 875 { 876 return 0; 877 } 878 879 static inline 880 int record__auxtrace_snapshot_exit(struct record *rec __maybe_unused) 881 { 882 return 0; 883 } 884 885 static int record__auxtrace_init(struct record *rec __maybe_unused) 886 { 887 return 0; 888 } 889 890 #endif 891 892 static int record__config_text_poke(struct evlist *evlist) 893 { 894 struct evsel *evsel; 895 896 /* Nothing to do if text poke is already configured */ 897 evlist__for_each_entry(evlist, evsel) { 898 if (evsel->core.attr.text_poke) 899 return 0; 900 } 901 902 evsel = evlist__add_dummy_on_all_cpus(evlist); 903 if (!evsel) 904 return -ENOMEM; 905 906 evsel->core.attr.text_poke = 1; 907 evsel->core.attr.ksymbol = 1; 908 evsel->immediate = true; 909 evsel__set_sample_bit(evsel, TIME); 910 911 return 0; 912 } 913 914 static int record__config_off_cpu(struct record *rec) 915 { 916 return off_cpu_prepare(rec->evlist, &rec->opts.target, &rec->opts); 917 } 918 919 static bool record__tracking_system_wide(struct record *rec) 920 { 921 struct evlist *evlist = rec->evlist; 922 struct evsel *evsel; 923 924 /* 925 * If non-dummy evsel exists, system_wide sideband is need to 926 * help parse sample information. 927 * For example, PERF_EVENT_MMAP event to help parse symbol, 928 * and PERF_EVENT_COMM event to help parse task executable name. 929 */ 930 evlist__for_each_entry(evlist, evsel) { 931 if (!evsel__is_dummy_event(evsel)) 932 return true; 933 } 934 935 return false; 936 } 937 938 static int record__config_tracking_events(struct record *rec) 939 { 940 struct record_opts *opts = &rec->opts; 941 struct evlist *evlist = rec->evlist; 942 bool system_wide = false; 943 struct evsel *evsel; 944 945 /* 946 * For initial_delay, system wide or a hybrid system, we need to add 947 * tracking event so that we can track PERF_RECORD_MMAP to cover the 948 * delay of waiting or event synthesis. 949 */ 950 if (opts->target.initial_delay || target__has_cpu(&opts->target) || 951 perf_pmus__num_core_pmus() > 1) { 952 953 /* 954 * User space tasks can migrate between CPUs, so when tracing 955 * selected CPUs, sideband for all CPUs is still needed. 956 */ 957 if (!!opts->target.cpu_list && record__tracking_system_wide(rec)) 958 system_wide = true; 959 960 evsel = evlist__findnew_tracking_event(evlist, system_wide); 961 if (!evsel) 962 return -ENOMEM; 963 964 /* 965 * Enable the tracking event when the process is forked for 966 * initial_delay, immediately for system wide. 967 */ 968 if (opts->target.initial_delay && !evsel->immediate && 969 !target__has_cpu(&opts->target)) 970 evsel->core.attr.enable_on_exec = 1; 971 else 972 evsel->immediate = 1; 973 } 974 975 return 0; 976 } 977 978 static bool record__kcore_readable(struct machine *machine) 979 { 980 char kcore[PATH_MAX]; 981 int fd; 982 983 scnprintf(kcore, sizeof(kcore), "%s/proc/kcore", machine->root_dir); 984 985 fd = open(kcore, O_RDONLY); 986 if (fd < 0) 987 return false; 988 989 close(fd); 990 991 return true; 992 } 993 994 static int record__kcore_copy(struct machine *machine, struct perf_data *data) 995 { 996 char from_dir[PATH_MAX]; 997 char kcore_dir[PATH_MAX]; 998 int ret; 999 1000 snprintf(from_dir, sizeof(from_dir), "%s/proc", machine->root_dir); 1001 1002 ret = perf_data__make_kcore_dir(data, kcore_dir, sizeof(kcore_dir)); 1003 if (ret) 1004 return ret; 1005 1006 return kcore_copy(from_dir, kcore_dir); 1007 } 1008 1009 static void record__thread_data_init_pipes(struct record_thread *thread_data) 1010 { 1011 thread_data->pipes.msg[0] = -1; 1012 thread_data->pipes.msg[1] = -1; 1013 thread_data->pipes.ack[0] = -1; 1014 thread_data->pipes.ack[1] = -1; 1015 } 1016 1017 static int record__thread_data_open_pipes(struct record_thread *thread_data) 1018 { 1019 if (pipe(thread_data->pipes.msg)) 1020 return -EINVAL; 1021 1022 if (pipe(thread_data->pipes.ack)) { 1023 close(thread_data->pipes.msg[0]); 1024 thread_data->pipes.msg[0] = -1; 1025 close(thread_data->pipes.msg[1]); 1026 thread_data->pipes.msg[1] = -1; 1027 return -EINVAL; 1028 } 1029 1030 pr_debug2("thread_data[%p]: msg=[%d,%d], ack=[%d,%d]\n", thread_data, 1031 thread_data->pipes.msg[0], thread_data->pipes.msg[1], 1032 thread_data->pipes.ack[0], thread_data->pipes.ack[1]); 1033 1034 return 0; 1035 } 1036 1037 static void record__thread_data_close_pipes(struct record_thread *thread_data) 1038 { 1039 if (thread_data->pipes.msg[0] != -1) { 1040 close(thread_data->pipes.msg[0]); 1041 thread_data->pipes.msg[0] = -1; 1042 } 1043 if (thread_data->pipes.msg[1] != -1) { 1044 close(thread_data->pipes.msg[1]); 1045 thread_data->pipes.msg[1] = -1; 1046 } 1047 if (thread_data->pipes.ack[0] != -1) { 1048 close(thread_data->pipes.ack[0]); 1049 thread_data->pipes.ack[0] = -1; 1050 } 1051 if (thread_data->pipes.ack[1] != -1) { 1052 close(thread_data->pipes.ack[1]); 1053 thread_data->pipes.ack[1] = -1; 1054 } 1055 } 1056 1057 static bool evlist__per_thread(struct evlist *evlist) 1058 { 1059 return cpu_map__is_dummy(evlist->core.user_requested_cpus); 1060 } 1061 1062 static int record__thread_data_init_maps(struct record_thread *thread_data, struct evlist *evlist) 1063 { 1064 int m, tm, nr_mmaps = evlist->core.nr_mmaps; 1065 struct mmap *mmap = evlist->mmap; 1066 struct mmap *overwrite_mmap = evlist->overwrite_mmap; 1067 struct perf_cpu_map *cpus = evlist->core.all_cpus; 1068 bool per_thread = evlist__per_thread(evlist); 1069 1070 if (per_thread) 1071 thread_data->nr_mmaps = nr_mmaps; 1072 else 1073 thread_data->nr_mmaps = bitmap_weight(thread_data->mask->maps.bits, 1074 thread_data->mask->maps.nbits); 1075 if (mmap) { 1076 thread_data->maps = zalloc(thread_data->nr_mmaps * sizeof(struct mmap *)); 1077 if (!thread_data->maps) 1078 return -ENOMEM; 1079 } 1080 if (overwrite_mmap) { 1081 thread_data->overwrite_maps = zalloc(thread_data->nr_mmaps * sizeof(struct mmap *)); 1082 if (!thread_data->overwrite_maps) { 1083 zfree(&thread_data->maps); 1084 return -ENOMEM; 1085 } 1086 } 1087 pr_debug2("thread_data[%p]: nr_mmaps=%d, maps=%p, ow_maps=%p\n", thread_data, 1088 thread_data->nr_mmaps, thread_data->maps, thread_data->overwrite_maps); 1089 1090 for (m = 0, tm = 0; m < nr_mmaps && tm < thread_data->nr_mmaps; m++) { 1091 if (per_thread || 1092 test_bit(perf_cpu_map__cpu(cpus, m).cpu, thread_data->mask->maps.bits)) { 1093 if (thread_data->maps) { 1094 thread_data->maps[tm] = &mmap[m]; 1095 pr_debug2("thread_data[%p]: cpu%d: maps[%d] -> mmap[%d]\n", 1096 thread_data, perf_cpu_map__cpu(cpus, m).cpu, tm, m); 1097 } 1098 if (thread_data->overwrite_maps) { 1099 thread_data->overwrite_maps[tm] = &overwrite_mmap[m]; 1100 pr_debug2("thread_data[%p]: cpu%d: ow_maps[%d] -> ow_mmap[%d]\n", 1101 thread_data, perf_cpu_map__cpu(cpus, m).cpu, tm, m); 1102 } 1103 tm++; 1104 } 1105 } 1106 1107 return 0; 1108 } 1109 1110 static int record__thread_data_init_pollfd(struct record_thread *thread_data, struct evlist *evlist) 1111 { 1112 int f, tm, pos; 1113 struct mmap *map, *overwrite_map; 1114 1115 fdarray__init(&thread_data->pollfd, 64); 1116 1117 for (tm = 0; tm < thread_data->nr_mmaps; tm++) { 1118 map = thread_data->maps ? thread_data->maps[tm] : NULL; 1119 overwrite_map = thread_data->overwrite_maps ? 1120 thread_data->overwrite_maps[tm] : NULL; 1121 1122 for (f = 0; f < evlist->core.pollfd.nr; f++) { 1123 void *ptr = evlist->core.pollfd.priv[f].ptr; 1124 1125 if ((map && ptr == map) || (overwrite_map && ptr == overwrite_map)) { 1126 pos = fdarray__dup_entry_from(&thread_data->pollfd, f, 1127 &evlist->core.pollfd); 1128 if (pos < 0) 1129 return pos; 1130 pr_debug2("thread_data[%p]: pollfd[%d] <- event_fd=%d\n", 1131 thread_data, pos, evlist->core.pollfd.entries[f].fd); 1132 } 1133 } 1134 } 1135 1136 return 0; 1137 } 1138 1139 static void record__free_thread_data(struct record *rec) 1140 { 1141 int t; 1142 struct record_thread *thread_data = rec->thread_data; 1143 1144 if (thread_data == NULL) 1145 return; 1146 1147 for (t = 0; t < rec->nr_threads; t++) { 1148 record__thread_data_close_pipes(&thread_data[t]); 1149 zfree(&thread_data[t].maps); 1150 zfree(&thread_data[t].overwrite_maps); 1151 fdarray__exit(&thread_data[t].pollfd); 1152 } 1153 1154 zfree(&rec->thread_data); 1155 } 1156 1157 static int record__map_thread_evlist_pollfd_indexes(struct record *rec, 1158 int evlist_pollfd_index, 1159 int thread_pollfd_index) 1160 { 1161 size_t x = rec->index_map_cnt; 1162 1163 if (realloc_array_as_needed(rec->index_map, rec->index_map_sz, x, NULL)) 1164 return -ENOMEM; 1165 rec->index_map[x].evlist_pollfd_index = evlist_pollfd_index; 1166 rec->index_map[x].thread_pollfd_index = thread_pollfd_index; 1167 rec->index_map_cnt += 1; 1168 return 0; 1169 } 1170 1171 static int record__update_evlist_pollfd_from_thread(struct record *rec, 1172 struct evlist *evlist, 1173 struct record_thread *thread_data) 1174 { 1175 struct pollfd *e_entries = evlist->core.pollfd.entries; 1176 struct pollfd *t_entries = thread_data->pollfd.entries; 1177 int err = 0; 1178 size_t i; 1179 1180 for (i = 0; i < rec->index_map_cnt; i++) { 1181 int e_pos = rec->index_map[i].evlist_pollfd_index; 1182 int t_pos = rec->index_map[i].thread_pollfd_index; 1183 1184 if (e_entries[e_pos].fd != t_entries[t_pos].fd || 1185 e_entries[e_pos].events != t_entries[t_pos].events) { 1186 pr_err("Thread and evlist pollfd index mismatch\n"); 1187 err = -EINVAL; 1188 continue; 1189 } 1190 e_entries[e_pos].revents = t_entries[t_pos].revents; 1191 } 1192 return err; 1193 } 1194 1195 static int record__dup_non_perf_events(struct record *rec, 1196 struct evlist *evlist, 1197 struct record_thread *thread_data) 1198 { 1199 struct fdarray *fda = &evlist->core.pollfd; 1200 int i, ret; 1201 1202 for (i = 0; i < fda->nr; i++) { 1203 if (!(fda->priv[i].flags & fdarray_flag__non_perf_event)) 1204 continue; 1205 ret = fdarray__dup_entry_from(&thread_data->pollfd, i, fda); 1206 if (ret < 0) { 1207 pr_err("Failed to duplicate descriptor in main thread pollfd\n"); 1208 return ret; 1209 } 1210 pr_debug2("thread_data[%p]: pollfd[%d] <- non_perf_event fd=%d\n", 1211 thread_data, ret, fda->entries[i].fd); 1212 ret = record__map_thread_evlist_pollfd_indexes(rec, i, ret); 1213 if (ret < 0) { 1214 pr_err("Failed to map thread and evlist pollfd indexes\n"); 1215 return ret; 1216 } 1217 } 1218 return 0; 1219 } 1220 1221 static int record__alloc_thread_data(struct record *rec, struct evlist *evlist) 1222 { 1223 int t, ret; 1224 struct record_thread *thread_data; 1225 1226 rec->thread_data = zalloc(rec->nr_threads * sizeof(*(rec->thread_data))); 1227 if (!rec->thread_data) { 1228 pr_err("Failed to allocate thread data\n"); 1229 return -ENOMEM; 1230 } 1231 thread_data = rec->thread_data; 1232 1233 for (t = 0; t < rec->nr_threads; t++) 1234 record__thread_data_init_pipes(&thread_data[t]); 1235 1236 for (t = 0; t < rec->nr_threads; t++) { 1237 thread_data[t].rec = rec; 1238 thread_data[t].mask = &rec->thread_masks[t]; 1239 ret = record__thread_data_init_maps(&thread_data[t], evlist); 1240 if (ret) { 1241 pr_err("Failed to initialize thread[%d] maps\n", t); 1242 goto out_free; 1243 } 1244 ret = record__thread_data_init_pollfd(&thread_data[t], evlist); 1245 if (ret) { 1246 pr_err("Failed to initialize thread[%d] pollfd\n", t); 1247 goto out_free; 1248 } 1249 if (t) { 1250 thread_data[t].tid = -1; 1251 ret = record__thread_data_open_pipes(&thread_data[t]); 1252 if (ret) { 1253 pr_err("Failed to open thread[%d] communication pipes\n", t); 1254 goto out_free; 1255 } 1256 ret = fdarray__add(&thread_data[t].pollfd, thread_data[t].pipes.msg[0], 1257 POLLIN | POLLERR | POLLHUP, fdarray_flag__nonfilterable); 1258 if (ret < 0) { 1259 pr_err("Failed to add descriptor to thread[%d] pollfd\n", t); 1260 goto out_free; 1261 } 1262 thread_data[t].ctlfd_pos = ret; 1263 pr_debug2("thread_data[%p]: pollfd[%d] <- ctl_fd=%d\n", 1264 thread_data, thread_data[t].ctlfd_pos, 1265 thread_data[t].pipes.msg[0]); 1266 } else { 1267 thread_data[t].tid = gettid(); 1268 1269 ret = record__dup_non_perf_events(rec, evlist, &thread_data[t]); 1270 if (ret < 0) 1271 goto out_free; 1272 1273 thread_data[t].ctlfd_pos = -1; /* Not used */ 1274 } 1275 } 1276 1277 return 0; 1278 1279 out_free: 1280 record__free_thread_data(rec); 1281 1282 return ret; 1283 } 1284 1285 static int record__mmap_evlist(struct record *rec, 1286 struct evlist *evlist) 1287 { 1288 int i, ret; 1289 struct record_opts *opts = &rec->opts; 1290 bool auxtrace_overwrite = opts->auxtrace_snapshot_mode || 1291 opts->auxtrace_sample_mode; 1292 char msg[512]; 1293 1294 if (opts->affinity != PERF_AFFINITY_SYS) 1295 cpu__setup_cpunode_map(); 1296 1297 if (evlist__mmap_ex(evlist, opts->mmap_pages, 1298 opts->auxtrace_mmap_pages, 1299 auxtrace_overwrite, 1300 opts->nr_cblocks, opts->affinity, 1301 opts->mmap_flush, opts->comp_level) < 0) { 1302 if (errno == EPERM) { 1303 pr_err("Permission error mapping pages.\n" 1304 "Consider increasing " 1305 "/proc/sys/kernel/perf_event_mlock_kb,\n" 1306 "or try again with a smaller value of -m/--mmap_pages.\n" 1307 "(current value: %u,%u)\n", 1308 opts->mmap_pages, opts->auxtrace_mmap_pages); 1309 return -errno; 1310 } else { 1311 pr_err("failed to mmap with %d (%s)\n", errno, 1312 str_error_r(errno, msg, sizeof(msg))); 1313 if (errno) 1314 return -errno; 1315 else 1316 return -EINVAL; 1317 } 1318 } 1319 1320 if (evlist__initialize_ctlfd(evlist, opts->ctl_fd, opts->ctl_fd_ack)) 1321 return -1; 1322 1323 ret = record__alloc_thread_data(rec, evlist); 1324 if (ret) 1325 return ret; 1326 1327 if (record__threads_enabled(rec)) { 1328 ret = perf_data__create_dir(&rec->data, evlist->core.nr_mmaps); 1329 if (ret) { 1330 pr_err("Failed to create data directory: %s\n", strerror(-ret)); 1331 return ret; 1332 } 1333 for (i = 0; i < evlist->core.nr_mmaps; i++) { 1334 if (evlist->mmap) 1335 evlist->mmap[i].file = &rec->data.dir.files[i]; 1336 if (evlist->overwrite_mmap) 1337 evlist->overwrite_mmap[i].file = &rec->data.dir.files[i]; 1338 } 1339 } 1340 1341 return 0; 1342 } 1343 1344 static int record__mmap(struct record *rec) 1345 { 1346 return record__mmap_evlist(rec, rec->evlist); 1347 } 1348 1349 static int record__open(struct record *rec) 1350 { 1351 char msg[BUFSIZ]; 1352 struct evsel *pos; 1353 struct evlist *evlist = rec->evlist; 1354 struct perf_session *session = rec->session; 1355 struct record_opts *opts = &rec->opts; 1356 int rc = 0; 1357 1358 evlist__config(evlist, opts, &callchain_param); 1359 1360 evlist__for_each_entry(evlist, pos) { 1361 try_again: 1362 if (evsel__open(pos, pos->core.cpus, pos->core.threads) < 0) { 1363 if (evsel__fallback(pos, errno, msg, sizeof(msg))) { 1364 if (verbose > 0) 1365 ui__warning("%s\n", msg); 1366 goto try_again; 1367 } 1368 if ((errno == EINVAL || errno == EBADF) && 1369 pos->core.leader != &pos->core && 1370 pos->weak_group) { 1371 pos = evlist__reset_weak_group(evlist, pos, true); 1372 goto try_again; 1373 } 1374 rc = -errno; 1375 evsel__open_strerror(pos, &opts->target, errno, msg, sizeof(msg)); 1376 ui__error("%s\n", msg); 1377 goto out; 1378 } 1379 1380 pos->supported = true; 1381 } 1382 1383 if (symbol_conf.kptr_restrict && !evlist__exclude_kernel(evlist)) { 1384 pr_warning( 1385 "WARNING: Kernel address maps (/proc/{kallsyms,modules}) are restricted,\n" 1386 "check /proc/sys/kernel/kptr_restrict and /proc/sys/kernel/perf_event_paranoid.\n\n" 1387 "Samples in kernel functions may not be resolved if a suitable vmlinux\n" 1388 "file is not found in the buildid cache or in the vmlinux path.\n\n" 1389 "Samples in kernel modules won't be resolved at all.\n\n" 1390 "If some relocation was applied (e.g. kexec) symbols may be misresolved\n" 1391 "even with a suitable vmlinux or kallsyms file.\n\n"); 1392 } 1393 1394 if (evlist__apply_filters(evlist, &pos)) { 1395 pr_err("failed to set filter \"%s\" on event %s with %d (%s)\n", 1396 pos->filter ?: "BPF", evsel__name(pos), errno, 1397 str_error_r(errno, msg, sizeof(msg))); 1398 rc = -1; 1399 goto out; 1400 } 1401 1402 rc = record__mmap(rec); 1403 if (rc) 1404 goto out; 1405 1406 session->evlist = evlist; 1407 perf_session__set_id_hdr_size(session); 1408 out: 1409 return rc; 1410 } 1411 1412 static void set_timestamp_boundary(struct record *rec, u64 sample_time) 1413 { 1414 if (rec->evlist->first_sample_time == 0) 1415 rec->evlist->first_sample_time = sample_time; 1416 1417 if (sample_time) 1418 rec->evlist->last_sample_time = sample_time; 1419 } 1420 1421 static int process_sample_event(struct perf_tool *tool, 1422 union perf_event *event, 1423 struct perf_sample *sample, 1424 struct evsel *evsel, 1425 struct machine *machine) 1426 { 1427 struct record *rec = container_of(tool, struct record, tool); 1428 1429 set_timestamp_boundary(rec, sample->time); 1430 1431 if (rec->buildid_all) 1432 return 0; 1433 1434 rec->samples++; 1435 return build_id__mark_dso_hit(tool, event, sample, evsel, machine); 1436 } 1437 1438 static int process_buildids(struct record *rec) 1439 { 1440 struct perf_session *session = rec->session; 1441 1442 if (perf_data__size(&rec->data) == 0) 1443 return 0; 1444 1445 /* 1446 * During this process, it'll load kernel map and replace the 1447 * dso->long_name to a real pathname it found. In this case 1448 * we prefer the vmlinux path like 1449 * /lib/modules/3.16.4/build/vmlinux 1450 * 1451 * rather than build-id path (in debug directory). 1452 * $HOME/.debug/.build-id/f0/6e17aa50adf4d00b88925e03775de107611551 1453 */ 1454 symbol_conf.ignore_vmlinux_buildid = true; 1455 1456 /* 1457 * If --buildid-all is given, it marks all DSO regardless of hits, 1458 * so no need to process samples. But if timestamp_boundary is enabled, 1459 * it still needs to walk on all samples to get the timestamps of 1460 * first/last samples. 1461 */ 1462 if (rec->buildid_all && !rec->timestamp_boundary) 1463 rec->tool.sample = NULL; 1464 1465 return perf_session__process_events(session); 1466 } 1467 1468 static void perf_event__synthesize_guest_os(struct machine *machine, void *data) 1469 { 1470 int err; 1471 struct perf_tool *tool = data; 1472 /* 1473 *As for guest kernel when processing subcommand record&report, 1474 *we arrange module mmap prior to guest kernel mmap and trigger 1475 *a preload dso because default guest module symbols are loaded 1476 *from guest kallsyms instead of /lib/modules/XXX/XXX. This 1477 *method is used to avoid symbol missing when the first addr is 1478 *in module instead of in guest kernel. 1479 */ 1480 err = perf_event__synthesize_modules(tool, process_synthesized_event, 1481 machine); 1482 if (err < 0) 1483 pr_err("Couldn't record guest kernel [%d]'s reference" 1484 " relocation symbol.\n", machine->pid); 1485 1486 /* 1487 * We use _stext for guest kernel because guest kernel's /proc/kallsyms 1488 * have no _text sometimes. 1489 */ 1490 err = perf_event__synthesize_kernel_mmap(tool, process_synthesized_event, 1491 machine); 1492 if (err < 0) 1493 pr_err("Couldn't record guest kernel [%d]'s reference" 1494 " relocation symbol.\n", machine->pid); 1495 } 1496 1497 static struct perf_event_header finished_round_event = { 1498 .size = sizeof(struct perf_event_header), 1499 .type = PERF_RECORD_FINISHED_ROUND, 1500 }; 1501 1502 static struct perf_event_header finished_init_event = { 1503 .size = sizeof(struct perf_event_header), 1504 .type = PERF_RECORD_FINISHED_INIT, 1505 }; 1506 1507 static void record__adjust_affinity(struct record *rec, struct mmap *map) 1508 { 1509 if (rec->opts.affinity != PERF_AFFINITY_SYS && 1510 !bitmap_equal(thread->mask->affinity.bits, map->affinity_mask.bits, 1511 thread->mask->affinity.nbits)) { 1512 bitmap_zero(thread->mask->affinity.bits, thread->mask->affinity.nbits); 1513 bitmap_or(thread->mask->affinity.bits, thread->mask->affinity.bits, 1514 map->affinity_mask.bits, thread->mask->affinity.nbits); 1515 sched_setaffinity(0, MMAP_CPU_MASK_BYTES(&thread->mask->affinity), 1516 (cpu_set_t *)thread->mask->affinity.bits); 1517 if (verbose == 2) { 1518 pr_debug("threads[%d]: running on cpu%d: ", thread->tid, sched_getcpu()); 1519 mmap_cpu_mask__scnprintf(&thread->mask->affinity, "affinity"); 1520 } 1521 } 1522 } 1523 1524 static size_t process_comp_header(void *record, size_t increment) 1525 { 1526 struct perf_record_compressed *event = record; 1527 size_t size = sizeof(*event); 1528 1529 if (increment) { 1530 event->header.size += increment; 1531 return increment; 1532 } 1533 1534 event->header.type = PERF_RECORD_COMPRESSED; 1535 event->header.size = size; 1536 1537 return size; 1538 } 1539 1540 static ssize_t zstd_compress(struct perf_session *session, struct mmap *map, 1541 void *dst, size_t dst_size, void *src, size_t src_size) 1542 { 1543 ssize_t compressed; 1544 size_t max_record_size = PERF_SAMPLE_MAX_SIZE - sizeof(struct perf_record_compressed) - 1; 1545 struct zstd_data *zstd_data = &session->zstd_data; 1546 1547 if (map && map->file) 1548 zstd_data = &map->zstd_data; 1549 1550 compressed = zstd_compress_stream_to_records(zstd_data, dst, dst_size, src, src_size, 1551 max_record_size, process_comp_header); 1552 if (compressed < 0) 1553 return compressed; 1554 1555 if (map && map->file) { 1556 thread->bytes_transferred += src_size; 1557 thread->bytes_compressed += compressed; 1558 } else { 1559 session->bytes_transferred += src_size; 1560 session->bytes_compressed += compressed; 1561 } 1562 1563 return compressed; 1564 } 1565 1566 static int record__mmap_read_evlist(struct record *rec, struct evlist *evlist, 1567 bool overwrite, bool synch) 1568 { 1569 u64 bytes_written = rec->bytes_written; 1570 int i; 1571 int rc = 0; 1572 int nr_mmaps; 1573 struct mmap **maps; 1574 int trace_fd = rec->data.file.fd; 1575 off_t off = 0; 1576 1577 if (!evlist) 1578 return 0; 1579 1580 nr_mmaps = thread->nr_mmaps; 1581 maps = overwrite ? thread->overwrite_maps : thread->maps; 1582 1583 if (!maps) 1584 return 0; 1585 1586 if (overwrite && evlist->bkw_mmap_state != BKW_MMAP_DATA_PENDING) 1587 return 0; 1588 1589 if (record__aio_enabled(rec)) 1590 off = record__aio_get_pos(trace_fd); 1591 1592 for (i = 0; i < nr_mmaps; i++) { 1593 u64 flush = 0; 1594 struct mmap *map = maps[i]; 1595 1596 if (map->core.base) { 1597 record__adjust_affinity(rec, map); 1598 if (synch) { 1599 flush = map->core.flush; 1600 map->core.flush = 1; 1601 } 1602 if (!record__aio_enabled(rec)) { 1603 if (perf_mmap__push(map, rec, record__pushfn) < 0) { 1604 if (synch) 1605 map->core.flush = flush; 1606 rc = -1; 1607 goto out; 1608 } 1609 } else { 1610 if (record__aio_push(rec, map, &off) < 0) { 1611 record__aio_set_pos(trace_fd, off); 1612 if (synch) 1613 map->core.flush = flush; 1614 rc = -1; 1615 goto out; 1616 } 1617 } 1618 if (synch) 1619 map->core.flush = flush; 1620 } 1621 1622 if (map->auxtrace_mmap.base && !rec->opts.auxtrace_snapshot_mode && 1623 !rec->opts.auxtrace_sample_mode && 1624 record__auxtrace_mmap_read(rec, map) != 0) { 1625 rc = -1; 1626 goto out; 1627 } 1628 } 1629 1630 if (record__aio_enabled(rec)) 1631 record__aio_set_pos(trace_fd, off); 1632 1633 /* 1634 * Mark the round finished in case we wrote 1635 * at least one event. 1636 * 1637 * No need for round events in directory mode, 1638 * because per-cpu maps and files have data 1639 * sorted by kernel. 1640 */ 1641 if (!record__threads_enabled(rec) && bytes_written != rec->bytes_written) 1642 rc = record__write(rec, NULL, &finished_round_event, sizeof(finished_round_event)); 1643 1644 if (overwrite) 1645 evlist__toggle_bkw_mmap(evlist, BKW_MMAP_EMPTY); 1646 out: 1647 return rc; 1648 } 1649 1650 static int record__mmap_read_all(struct record *rec, bool synch) 1651 { 1652 int err; 1653 1654 err = record__mmap_read_evlist(rec, rec->evlist, false, synch); 1655 if (err) 1656 return err; 1657 1658 return record__mmap_read_evlist(rec, rec->evlist, true, synch); 1659 } 1660 1661 static void record__thread_munmap_filtered(struct fdarray *fda, int fd, 1662 void *arg __maybe_unused) 1663 { 1664 struct perf_mmap *map = fda->priv[fd].ptr; 1665 1666 if (map) 1667 perf_mmap__put(map); 1668 } 1669 1670 static void *record__thread(void *arg) 1671 { 1672 enum thread_msg msg = THREAD_MSG__READY; 1673 bool terminate = false; 1674 struct fdarray *pollfd; 1675 int err, ctlfd_pos; 1676 1677 thread = arg; 1678 thread->tid = gettid(); 1679 1680 err = write(thread->pipes.ack[1], &msg, sizeof(msg)); 1681 if (err == -1) 1682 pr_warning("threads[%d]: failed to notify on start: %s\n", 1683 thread->tid, strerror(errno)); 1684 1685 pr_debug("threads[%d]: started on cpu%d\n", thread->tid, sched_getcpu()); 1686 1687 pollfd = &thread->pollfd; 1688 ctlfd_pos = thread->ctlfd_pos; 1689 1690 for (;;) { 1691 unsigned long long hits = thread->samples; 1692 1693 if (record__mmap_read_all(thread->rec, false) < 0 || terminate) 1694 break; 1695 1696 if (hits == thread->samples) { 1697 1698 err = fdarray__poll(pollfd, -1); 1699 /* 1700 * Propagate error, only if there's any. Ignore positive 1701 * number of returned events and interrupt error. 1702 */ 1703 if (err > 0 || (err < 0 && errno == EINTR)) 1704 err = 0; 1705 thread->waking++; 1706 1707 if (fdarray__filter(pollfd, POLLERR | POLLHUP, 1708 record__thread_munmap_filtered, NULL) == 0) 1709 break; 1710 } 1711 1712 if (pollfd->entries[ctlfd_pos].revents & POLLHUP) { 1713 terminate = true; 1714 close(thread->pipes.msg[0]); 1715 thread->pipes.msg[0] = -1; 1716 pollfd->entries[ctlfd_pos].fd = -1; 1717 pollfd->entries[ctlfd_pos].events = 0; 1718 } 1719 1720 pollfd->entries[ctlfd_pos].revents = 0; 1721 } 1722 record__mmap_read_all(thread->rec, true); 1723 1724 err = write(thread->pipes.ack[1], &msg, sizeof(msg)); 1725 if (err == -1) 1726 pr_warning("threads[%d]: failed to notify on termination: %s\n", 1727 thread->tid, strerror(errno)); 1728 1729 return NULL; 1730 } 1731 1732 static void record__init_features(struct record *rec) 1733 { 1734 struct perf_session *session = rec->session; 1735 int feat; 1736 1737 for (feat = HEADER_FIRST_FEATURE; feat < HEADER_LAST_FEATURE; feat++) 1738 perf_header__set_feat(&session->header, feat); 1739 1740 if (rec->no_buildid) 1741 perf_header__clear_feat(&session->header, HEADER_BUILD_ID); 1742 1743 #ifdef HAVE_LIBTRACEEVENT 1744 if (!have_tracepoints(&rec->evlist->core.entries)) 1745 perf_header__clear_feat(&session->header, HEADER_TRACING_DATA); 1746 #endif 1747 1748 if (!rec->opts.branch_stack) 1749 perf_header__clear_feat(&session->header, HEADER_BRANCH_STACK); 1750 1751 if (!rec->opts.full_auxtrace) 1752 perf_header__clear_feat(&session->header, HEADER_AUXTRACE); 1753 1754 if (!(rec->opts.use_clockid && rec->opts.clockid_res_ns)) 1755 perf_header__clear_feat(&session->header, HEADER_CLOCKID); 1756 1757 if (!rec->opts.use_clockid) 1758 perf_header__clear_feat(&session->header, HEADER_CLOCK_DATA); 1759 1760 if (!record__threads_enabled(rec)) 1761 perf_header__clear_feat(&session->header, HEADER_DIR_FORMAT); 1762 1763 if (!record__comp_enabled(rec)) 1764 perf_header__clear_feat(&session->header, HEADER_COMPRESSED); 1765 1766 perf_header__clear_feat(&session->header, HEADER_STAT); 1767 } 1768 1769 static void 1770 record__finish_output(struct record *rec) 1771 { 1772 int i; 1773 struct perf_data *data = &rec->data; 1774 int fd = perf_data__fd(data); 1775 1776 if (data->is_pipe) 1777 return; 1778 1779 rec->session->header.data_size += rec->bytes_written; 1780 data->file.size = lseek(perf_data__fd(data), 0, SEEK_CUR); 1781 if (record__threads_enabled(rec)) { 1782 for (i = 0; i < data->dir.nr; i++) 1783 data->dir.files[i].size = lseek(data->dir.files[i].fd, 0, SEEK_CUR); 1784 } 1785 1786 if (!rec->no_buildid) { 1787 process_buildids(rec); 1788 1789 if (rec->buildid_all) 1790 dsos__hit_all(rec->session); 1791 } 1792 perf_session__write_header(rec->session, rec->evlist, fd, true); 1793 1794 return; 1795 } 1796 1797 static int record__synthesize_workload(struct record *rec, bool tail) 1798 { 1799 int err; 1800 struct perf_thread_map *thread_map; 1801 bool needs_mmap = rec->opts.synth & PERF_SYNTH_MMAP; 1802 1803 if (rec->opts.tail_synthesize != tail) 1804 return 0; 1805 1806 thread_map = thread_map__new_by_tid(rec->evlist->workload.pid); 1807 if (thread_map == NULL) 1808 return -1; 1809 1810 err = perf_event__synthesize_thread_map(&rec->tool, thread_map, 1811 process_synthesized_event, 1812 &rec->session->machines.host, 1813 needs_mmap, 1814 rec->opts.sample_address); 1815 perf_thread_map__put(thread_map); 1816 return err; 1817 } 1818 1819 static int write_finished_init(struct record *rec, bool tail) 1820 { 1821 if (rec->opts.tail_synthesize != tail) 1822 return 0; 1823 1824 return record__write(rec, NULL, &finished_init_event, sizeof(finished_init_event)); 1825 } 1826 1827 static int record__synthesize(struct record *rec, bool tail); 1828 1829 static int 1830 record__switch_output(struct record *rec, bool at_exit) 1831 { 1832 struct perf_data *data = &rec->data; 1833 int fd, err; 1834 char *new_filename; 1835 1836 /* Same Size: "2015122520103046"*/ 1837 char timestamp[] = "InvalidTimestamp"; 1838 1839 record__aio_mmap_read_sync(rec); 1840 1841 write_finished_init(rec, true); 1842 1843 record__synthesize(rec, true); 1844 if (target__none(&rec->opts.target)) 1845 record__synthesize_workload(rec, true); 1846 1847 rec->samples = 0; 1848 record__finish_output(rec); 1849 err = fetch_current_timestamp(timestamp, sizeof(timestamp)); 1850 if (err) { 1851 pr_err("Failed to get current timestamp\n"); 1852 return -EINVAL; 1853 } 1854 1855 fd = perf_data__switch(data, timestamp, 1856 rec->session->header.data_offset, 1857 at_exit, &new_filename); 1858 if (fd >= 0 && !at_exit) { 1859 rec->bytes_written = 0; 1860 rec->session->header.data_size = 0; 1861 } 1862 1863 if (!quiet) 1864 fprintf(stderr, "[ perf record: Dump %s.%s ]\n", 1865 data->path, timestamp); 1866 1867 if (rec->switch_output.num_files) { 1868 int n = rec->switch_output.cur_file + 1; 1869 1870 if (n >= rec->switch_output.num_files) 1871 n = 0; 1872 rec->switch_output.cur_file = n; 1873 if (rec->switch_output.filenames[n]) { 1874 remove(rec->switch_output.filenames[n]); 1875 zfree(&rec->switch_output.filenames[n]); 1876 } 1877 rec->switch_output.filenames[n] = new_filename; 1878 } else { 1879 free(new_filename); 1880 } 1881 1882 /* Output tracking events */ 1883 if (!at_exit) { 1884 record__synthesize(rec, false); 1885 1886 /* 1887 * In 'perf record --switch-output' without -a, 1888 * record__synthesize() in record__switch_output() won't 1889 * generate tracking events because there's no thread_map 1890 * in evlist. Which causes newly created perf.data doesn't 1891 * contain map and comm information. 1892 * Create a fake thread_map and directly call 1893 * perf_event__synthesize_thread_map() for those events. 1894 */ 1895 if (target__none(&rec->opts.target)) 1896 record__synthesize_workload(rec, false); 1897 write_finished_init(rec, false); 1898 } 1899 return fd; 1900 } 1901 1902 static void __record__save_lost_samples(struct record *rec, struct evsel *evsel, 1903 struct perf_record_lost_samples *lost, 1904 int cpu_idx, int thread_idx, u64 lost_count, 1905 u16 misc_flag) 1906 { 1907 struct perf_sample_id *sid; 1908 struct perf_sample sample = {}; 1909 int id_hdr_size; 1910 1911 lost->lost = lost_count; 1912 if (evsel->core.ids) { 1913 sid = xyarray__entry(evsel->core.sample_id, cpu_idx, thread_idx); 1914 sample.id = sid->id; 1915 } 1916 1917 id_hdr_size = perf_event__synthesize_id_sample((void *)(lost + 1), 1918 evsel->core.attr.sample_type, &sample); 1919 lost->header.size = sizeof(*lost) + id_hdr_size; 1920 lost->header.misc = misc_flag; 1921 record__write(rec, NULL, lost, lost->header.size); 1922 } 1923 1924 static void record__read_lost_samples(struct record *rec) 1925 { 1926 struct perf_session *session = rec->session; 1927 struct perf_record_lost_samples *lost; 1928 struct evsel *evsel; 1929 1930 /* there was an error during record__open */ 1931 if (session->evlist == NULL) 1932 return; 1933 1934 lost = zalloc(PERF_SAMPLE_MAX_SIZE); 1935 if (lost == NULL) { 1936 pr_debug("Memory allocation failed\n"); 1937 return; 1938 } 1939 1940 lost->header.type = PERF_RECORD_LOST_SAMPLES; 1941 1942 evlist__for_each_entry(session->evlist, evsel) { 1943 struct xyarray *xy = evsel->core.sample_id; 1944 u64 lost_count; 1945 1946 if (xy == NULL || evsel->core.fd == NULL) 1947 continue; 1948 if (xyarray__max_x(evsel->core.fd) != xyarray__max_x(xy) || 1949 xyarray__max_y(evsel->core.fd) != xyarray__max_y(xy)) { 1950 pr_debug("Unmatched FD vs. sample ID: skip reading LOST count\n"); 1951 continue; 1952 } 1953 1954 for (int x = 0; x < xyarray__max_x(xy); x++) { 1955 for (int y = 0; y < xyarray__max_y(xy); y++) { 1956 struct perf_counts_values count; 1957 1958 if (perf_evsel__read(&evsel->core, x, y, &count) < 0) { 1959 pr_debug("read LOST count failed\n"); 1960 goto out; 1961 } 1962 1963 if (count.lost) { 1964 __record__save_lost_samples(rec, evsel, lost, 1965 x, y, count.lost, 0); 1966 } 1967 } 1968 } 1969 1970 lost_count = perf_bpf_filter__lost_count(evsel); 1971 if (lost_count) 1972 __record__save_lost_samples(rec, evsel, lost, 0, 0, lost_count, 1973 PERF_RECORD_MISC_LOST_SAMPLES_BPF); 1974 } 1975 out: 1976 free(lost); 1977 } 1978 1979 static volatile sig_atomic_t workload_exec_errno; 1980 1981 /* 1982 * evlist__prepare_workload will send a SIGUSR1 1983 * if the fork fails, since we asked by setting its 1984 * want_signal to true. 1985 */ 1986 static void workload_exec_failed_signal(int signo __maybe_unused, 1987 siginfo_t *info, 1988 void *ucontext __maybe_unused) 1989 { 1990 workload_exec_errno = info->si_value.sival_int; 1991 done = 1; 1992 child_finished = 1; 1993 } 1994 1995 static void snapshot_sig_handler(int sig); 1996 static void alarm_sig_handler(int sig); 1997 1998 static const struct perf_event_mmap_page *evlist__pick_pc(struct evlist *evlist) 1999 { 2000 if (evlist) { 2001 if (evlist->mmap && evlist->mmap[0].core.base) 2002 return evlist->mmap[0].core.base; 2003 if (evlist->overwrite_mmap && evlist->overwrite_mmap[0].core.base) 2004 return evlist->overwrite_mmap[0].core.base; 2005 } 2006 return NULL; 2007 } 2008 2009 static const struct perf_event_mmap_page *record__pick_pc(struct record *rec) 2010 { 2011 const struct perf_event_mmap_page *pc = evlist__pick_pc(rec->evlist); 2012 if (pc) 2013 return pc; 2014 return NULL; 2015 } 2016 2017 static int record__synthesize(struct record *rec, bool tail) 2018 { 2019 struct perf_session *session = rec->session; 2020 struct machine *machine = &session->machines.host; 2021 struct perf_data *data = &rec->data; 2022 struct record_opts *opts = &rec->opts; 2023 struct perf_tool *tool = &rec->tool; 2024 int err = 0; 2025 event_op f = process_synthesized_event; 2026 2027 if (rec->opts.tail_synthesize != tail) 2028 return 0; 2029 2030 if (data->is_pipe) { 2031 err = perf_event__synthesize_for_pipe(tool, session, data, 2032 process_synthesized_event); 2033 if (err < 0) 2034 goto out; 2035 2036 rec->bytes_written += err; 2037 } 2038 2039 err = perf_event__synth_time_conv(record__pick_pc(rec), tool, 2040 process_synthesized_event, machine); 2041 if (err) 2042 goto out; 2043 2044 /* Synthesize id_index before auxtrace_info */ 2045 err = perf_event__synthesize_id_index(tool, 2046 process_synthesized_event, 2047 session->evlist, machine); 2048 if (err) 2049 goto out; 2050 2051 if (rec->opts.full_auxtrace) { 2052 err = perf_event__synthesize_auxtrace_info(rec->itr, tool, 2053 session, process_synthesized_event); 2054 if (err) 2055 goto out; 2056 } 2057 2058 if (!evlist__exclude_kernel(rec->evlist)) { 2059 err = perf_event__synthesize_kernel_mmap(tool, process_synthesized_event, 2060 machine); 2061 WARN_ONCE(err < 0, "Couldn't record kernel reference relocation symbol\n" 2062 "Symbol resolution may be skewed if relocation was used (e.g. kexec).\n" 2063 "Check /proc/kallsyms permission or run as root.\n"); 2064 2065 err = perf_event__synthesize_modules(tool, process_synthesized_event, 2066 machine); 2067 WARN_ONCE(err < 0, "Couldn't record kernel module information.\n" 2068 "Symbol resolution may be skewed if relocation was used (e.g. kexec).\n" 2069 "Check /proc/modules permission or run as root.\n"); 2070 } 2071 2072 if (perf_guest) { 2073 machines__process_guests(&session->machines, 2074 perf_event__synthesize_guest_os, tool); 2075 } 2076 2077 err = perf_event__synthesize_extra_attr(&rec->tool, 2078 rec->evlist, 2079 process_synthesized_event, 2080 data->is_pipe); 2081 if (err) 2082 goto out; 2083 2084 err = perf_event__synthesize_thread_map2(&rec->tool, rec->evlist->core.threads, 2085 process_synthesized_event, 2086 NULL); 2087 if (err < 0) { 2088 pr_err("Couldn't synthesize thread map.\n"); 2089 return err; 2090 } 2091 2092 err = perf_event__synthesize_cpu_map(&rec->tool, rec->evlist->core.all_cpus, 2093 process_synthesized_event, NULL); 2094 if (err < 0) { 2095 pr_err("Couldn't synthesize cpu map.\n"); 2096 return err; 2097 } 2098 2099 err = perf_event__synthesize_bpf_events(session, process_synthesized_event, 2100 machine, opts); 2101 if (err < 0) { 2102 pr_warning("Couldn't synthesize bpf events.\n"); 2103 err = 0; 2104 } 2105 2106 if (rec->opts.synth & PERF_SYNTH_CGROUP) { 2107 err = perf_event__synthesize_cgroups(tool, process_synthesized_event, 2108 machine); 2109 if (err < 0) { 2110 pr_warning("Couldn't synthesize cgroup events.\n"); 2111 err = 0; 2112 } 2113 } 2114 2115 if (rec->opts.nr_threads_synthesize > 1) { 2116 mutex_init(&synth_lock); 2117 perf_set_multithreaded(); 2118 f = process_locked_synthesized_event; 2119 } 2120 2121 if (rec->opts.synth & PERF_SYNTH_TASK) { 2122 bool needs_mmap = rec->opts.synth & PERF_SYNTH_MMAP; 2123 2124 err = __machine__synthesize_threads(machine, tool, &opts->target, 2125 rec->evlist->core.threads, 2126 f, needs_mmap, opts->sample_address, 2127 rec->opts.nr_threads_synthesize); 2128 } 2129 2130 if (rec->opts.nr_threads_synthesize > 1) { 2131 perf_set_singlethreaded(); 2132 mutex_destroy(&synth_lock); 2133 } 2134 2135 out: 2136 return err; 2137 } 2138 2139 static int record__process_signal_event(union perf_event *event __maybe_unused, void *data) 2140 { 2141 struct record *rec = data; 2142 pthread_kill(rec->thread_id, SIGUSR2); 2143 return 0; 2144 } 2145 2146 static int record__setup_sb_evlist(struct record *rec) 2147 { 2148 struct record_opts *opts = &rec->opts; 2149 2150 if (rec->sb_evlist != NULL) { 2151 /* 2152 * We get here if --switch-output-event populated the 2153 * sb_evlist, so associate a callback that will send a SIGUSR2 2154 * to the main thread. 2155 */ 2156 evlist__set_cb(rec->sb_evlist, record__process_signal_event, rec); 2157 rec->thread_id = pthread_self(); 2158 } 2159 #ifdef HAVE_LIBBPF_SUPPORT 2160 if (!opts->no_bpf_event) { 2161 if (rec->sb_evlist == NULL) { 2162 rec->sb_evlist = evlist__new(); 2163 2164 if (rec->sb_evlist == NULL) { 2165 pr_err("Couldn't create side band evlist.\n."); 2166 return -1; 2167 } 2168 } 2169 2170 if (evlist__add_bpf_sb_event(rec->sb_evlist, &rec->session->header.env)) { 2171 pr_err("Couldn't ask for PERF_RECORD_BPF_EVENT side band events.\n."); 2172 return -1; 2173 } 2174 } 2175 #endif 2176 if (evlist__start_sb_thread(rec->sb_evlist, &rec->opts.target)) { 2177 pr_debug("Couldn't start the BPF side band thread:\nBPF programs starting from now on won't be annotatable\n"); 2178 opts->no_bpf_event = true; 2179 } 2180 2181 return 0; 2182 } 2183 2184 static int record__init_clock(struct record *rec) 2185 { 2186 struct perf_session *session = rec->session; 2187 struct timespec ref_clockid; 2188 struct timeval ref_tod; 2189 u64 ref; 2190 2191 if (!rec->opts.use_clockid) 2192 return 0; 2193 2194 if (rec->opts.use_clockid && rec->opts.clockid_res_ns) 2195 session->header.env.clock.clockid_res_ns = rec->opts.clockid_res_ns; 2196 2197 session->header.env.clock.clockid = rec->opts.clockid; 2198 2199 if (gettimeofday(&ref_tod, NULL) != 0) { 2200 pr_err("gettimeofday failed, cannot set reference time.\n"); 2201 return -1; 2202 } 2203 2204 if (clock_gettime(rec->opts.clockid, &ref_clockid)) { 2205 pr_err("clock_gettime failed, cannot set reference time.\n"); 2206 return -1; 2207 } 2208 2209 ref = (u64) ref_tod.tv_sec * NSEC_PER_SEC + 2210 (u64) ref_tod.tv_usec * NSEC_PER_USEC; 2211 2212 session->header.env.clock.tod_ns = ref; 2213 2214 ref = (u64) ref_clockid.tv_sec * NSEC_PER_SEC + 2215 (u64) ref_clockid.tv_nsec; 2216 2217 session->header.env.clock.clockid_ns = ref; 2218 return 0; 2219 } 2220 2221 static void hit_auxtrace_snapshot_trigger(struct record *rec) 2222 { 2223 if (trigger_is_ready(&auxtrace_snapshot_trigger)) { 2224 trigger_hit(&auxtrace_snapshot_trigger); 2225 auxtrace_record__snapshot_started = 1; 2226 if (auxtrace_record__snapshot_start(rec->itr)) 2227 trigger_error(&auxtrace_snapshot_trigger); 2228 } 2229 } 2230 2231 static void record__uniquify_name(struct record *rec) 2232 { 2233 struct evsel *pos; 2234 struct evlist *evlist = rec->evlist; 2235 char *new_name; 2236 int ret; 2237 2238 if (perf_pmus__num_core_pmus() == 1) 2239 return; 2240 2241 evlist__for_each_entry(evlist, pos) { 2242 if (!evsel__is_hybrid(pos)) 2243 continue; 2244 2245 if (strchr(pos->name, '/')) 2246 continue; 2247 2248 ret = asprintf(&new_name, "%s/%s/", 2249 pos->pmu_name, pos->name); 2250 if (ret) { 2251 free(pos->name); 2252 pos->name = new_name; 2253 } 2254 } 2255 } 2256 2257 static int record__terminate_thread(struct record_thread *thread_data) 2258 { 2259 int err; 2260 enum thread_msg ack = THREAD_MSG__UNDEFINED; 2261 pid_t tid = thread_data->tid; 2262 2263 close(thread_data->pipes.msg[1]); 2264 thread_data->pipes.msg[1] = -1; 2265 err = read(thread_data->pipes.ack[0], &ack, sizeof(ack)); 2266 if (err > 0) 2267 pr_debug2("threads[%d]: sent %s\n", tid, thread_msg_tags[ack]); 2268 else 2269 pr_warning("threads[%d]: failed to receive termination notification from %d\n", 2270 thread->tid, tid); 2271 2272 return 0; 2273 } 2274 2275 static int record__start_threads(struct record *rec) 2276 { 2277 int t, tt, err, ret = 0, nr_threads = rec->nr_threads; 2278 struct record_thread *thread_data = rec->thread_data; 2279 sigset_t full, mask; 2280 pthread_t handle; 2281 pthread_attr_t attrs; 2282 2283 thread = &thread_data[0]; 2284 2285 if (!record__threads_enabled(rec)) 2286 return 0; 2287 2288 sigfillset(&full); 2289 if (sigprocmask(SIG_SETMASK, &full, &mask)) { 2290 pr_err("Failed to block signals on threads start: %s\n", strerror(errno)); 2291 return -1; 2292 } 2293 2294 pthread_attr_init(&attrs); 2295 pthread_attr_setdetachstate(&attrs, PTHREAD_CREATE_DETACHED); 2296 2297 for (t = 1; t < nr_threads; t++) { 2298 enum thread_msg msg = THREAD_MSG__UNDEFINED; 2299 2300 #ifdef HAVE_PTHREAD_ATTR_SETAFFINITY_NP 2301 pthread_attr_setaffinity_np(&attrs, 2302 MMAP_CPU_MASK_BYTES(&(thread_data[t].mask->affinity)), 2303 (cpu_set_t *)(thread_data[t].mask->affinity.bits)); 2304 #endif 2305 if (pthread_create(&handle, &attrs, record__thread, &thread_data[t])) { 2306 for (tt = 1; tt < t; tt++) 2307 record__terminate_thread(&thread_data[t]); 2308 pr_err("Failed to start threads: %s\n", strerror(errno)); 2309 ret = -1; 2310 goto out_err; 2311 } 2312 2313 err = read(thread_data[t].pipes.ack[0], &msg, sizeof(msg)); 2314 if (err > 0) 2315 pr_debug2("threads[%d]: sent %s\n", rec->thread_data[t].tid, 2316 thread_msg_tags[msg]); 2317 else 2318 pr_warning("threads[%d]: failed to receive start notification from %d\n", 2319 thread->tid, rec->thread_data[t].tid); 2320 } 2321 2322 sched_setaffinity(0, MMAP_CPU_MASK_BYTES(&thread->mask->affinity), 2323 (cpu_set_t *)thread->mask->affinity.bits); 2324 2325 pr_debug("threads[%d]: started on cpu%d\n", thread->tid, sched_getcpu()); 2326 2327 out_err: 2328 pthread_attr_destroy(&attrs); 2329 2330 if (sigprocmask(SIG_SETMASK, &mask, NULL)) { 2331 pr_err("Failed to unblock signals on threads start: %s\n", strerror(errno)); 2332 ret = -1; 2333 } 2334 2335 return ret; 2336 } 2337 2338 static int record__stop_threads(struct record *rec) 2339 { 2340 int t; 2341 struct record_thread *thread_data = rec->thread_data; 2342 2343 for (t = 1; t < rec->nr_threads; t++) 2344 record__terminate_thread(&thread_data[t]); 2345 2346 for (t = 0; t < rec->nr_threads; t++) { 2347 rec->samples += thread_data[t].samples; 2348 if (!record__threads_enabled(rec)) 2349 continue; 2350 rec->session->bytes_transferred += thread_data[t].bytes_transferred; 2351 rec->session->bytes_compressed += thread_data[t].bytes_compressed; 2352 pr_debug("threads[%d]: samples=%lld, wakes=%ld, ", thread_data[t].tid, 2353 thread_data[t].samples, thread_data[t].waking); 2354 if (thread_data[t].bytes_transferred && thread_data[t].bytes_compressed) 2355 pr_debug("transferred=%" PRIu64 ", compressed=%" PRIu64 "\n", 2356 thread_data[t].bytes_transferred, thread_data[t].bytes_compressed); 2357 else 2358 pr_debug("written=%" PRIu64 "\n", thread_data[t].bytes_written); 2359 } 2360 2361 return 0; 2362 } 2363 2364 static unsigned long record__waking(struct record *rec) 2365 { 2366 int t; 2367 unsigned long waking = 0; 2368 struct record_thread *thread_data = rec->thread_data; 2369 2370 for (t = 0; t < rec->nr_threads; t++) 2371 waking += thread_data[t].waking; 2372 2373 return waking; 2374 } 2375 2376 static int __cmd_record(struct record *rec, int argc, const char **argv) 2377 { 2378 int err; 2379 int status = 0; 2380 const bool forks = argc > 0; 2381 struct perf_tool *tool = &rec->tool; 2382 struct record_opts *opts = &rec->opts; 2383 struct perf_data *data = &rec->data; 2384 struct perf_session *session; 2385 bool disabled = false, draining = false; 2386 int fd; 2387 float ratio = 0; 2388 enum evlist_ctl_cmd cmd = EVLIST_CTL_CMD_UNSUPPORTED; 2389 2390 atexit(record__sig_exit); 2391 signal(SIGCHLD, sig_handler); 2392 signal(SIGINT, sig_handler); 2393 signal(SIGTERM, sig_handler); 2394 signal(SIGSEGV, sigsegv_handler); 2395 2396 if (rec->opts.record_namespaces) 2397 tool->namespace_events = true; 2398 2399 if (rec->opts.record_cgroup) { 2400 #ifdef HAVE_FILE_HANDLE 2401 tool->cgroup_events = true; 2402 #else 2403 pr_err("cgroup tracking is not supported\n"); 2404 return -1; 2405 #endif 2406 } 2407 2408 if (rec->opts.auxtrace_snapshot_mode || rec->switch_output.enabled) { 2409 signal(SIGUSR2, snapshot_sig_handler); 2410 if (rec->opts.auxtrace_snapshot_mode) 2411 trigger_on(&auxtrace_snapshot_trigger); 2412 if (rec->switch_output.enabled) 2413 trigger_on(&switch_output_trigger); 2414 } else { 2415 signal(SIGUSR2, SIG_IGN); 2416 } 2417 2418 session = perf_session__new(data, tool); 2419 if (IS_ERR(session)) { 2420 pr_err("Perf session creation failed.\n"); 2421 return PTR_ERR(session); 2422 } 2423 2424 if (record__threads_enabled(rec)) { 2425 if (perf_data__is_pipe(&rec->data)) { 2426 pr_err("Parallel trace streaming is not available in pipe mode.\n"); 2427 return -1; 2428 } 2429 if (rec->opts.full_auxtrace) { 2430 pr_err("Parallel trace streaming is not available in AUX area tracing mode.\n"); 2431 return -1; 2432 } 2433 } 2434 2435 fd = perf_data__fd(data); 2436 rec->session = session; 2437 2438 if (zstd_init(&session->zstd_data, rec->opts.comp_level) < 0) { 2439 pr_err("Compression initialization failed.\n"); 2440 return -1; 2441 } 2442 #ifdef HAVE_EVENTFD_SUPPORT 2443 done_fd = eventfd(0, EFD_NONBLOCK); 2444 if (done_fd < 0) { 2445 pr_err("Failed to create wakeup eventfd, error: %m\n"); 2446 status = -1; 2447 goto out_delete_session; 2448 } 2449 err = evlist__add_wakeup_eventfd(rec->evlist, done_fd); 2450 if (err < 0) { 2451 pr_err("Failed to add wakeup eventfd to poll list\n"); 2452 status = err; 2453 goto out_delete_session; 2454 } 2455 #endif // HAVE_EVENTFD_SUPPORT 2456 2457 session->header.env.comp_type = PERF_COMP_ZSTD; 2458 session->header.env.comp_level = rec->opts.comp_level; 2459 2460 if (rec->opts.kcore && 2461 !record__kcore_readable(&session->machines.host)) { 2462 pr_err("ERROR: kcore is not readable.\n"); 2463 return -1; 2464 } 2465 2466 if (record__init_clock(rec)) 2467 return -1; 2468 2469 record__init_features(rec); 2470 2471 if (forks) { 2472 err = evlist__prepare_workload(rec->evlist, &opts->target, argv, data->is_pipe, 2473 workload_exec_failed_signal); 2474 if (err < 0) { 2475 pr_err("Couldn't run the workload!\n"); 2476 status = err; 2477 goto out_delete_session; 2478 } 2479 } 2480 2481 /* 2482 * If we have just single event and are sending data 2483 * through pipe, we need to force the ids allocation, 2484 * because we synthesize event name through the pipe 2485 * and need the id for that. 2486 */ 2487 if (data->is_pipe && rec->evlist->core.nr_entries == 1) 2488 rec->opts.sample_id = true; 2489 2490 record__uniquify_name(rec); 2491 2492 /* Debug message used by test scripts */ 2493 pr_debug3("perf record opening and mmapping events\n"); 2494 if (record__open(rec) != 0) { 2495 err = -1; 2496 goto out_free_threads; 2497 } 2498 /* Debug message used by test scripts */ 2499 pr_debug3("perf record done opening and mmapping events\n"); 2500 session->header.env.comp_mmap_len = session->evlist->core.mmap_len; 2501 2502 if (rec->opts.kcore) { 2503 err = record__kcore_copy(&session->machines.host, data); 2504 if (err) { 2505 pr_err("ERROR: Failed to copy kcore\n"); 2506 goto out_free_threads; 2507 } 2508 } 2509 2510 /* 2511 * Normally perf_session__new would do this, but it doesn't have the 2512 * evlist. 2513 */ 2514 if (rec->tool.ordered_events && !evlist__sample_id_all(rec->evlist)) { 2515 pr_warning("WARNING: No sample_id_all support, falling back to unordered processing\n"); 2516 rec->tool.ordered_events = false; 2517 } 2518 2519 if (evlist__nr_groups(rec->evlist) == 0) 2520 perf_header__clear_feat(&session->header, HEADER_GROUP_DESC); 2521 2522 if (data->is_pipe) { 2523 err = perf_header__write_pipe(fd); 2524 if (err < 0) 2525 goto out_free_threads; 2526 } else { 2527 err = perf_session__write_header(session, rec->evlist, fd, false); 2528 if (err < 0) 2529 goto out_free_threads; 2530 } 2531 2532 err = -1; 2533 if (!rec->no_buildid 2534 && !perf_header__has_feat(&session->header, HEADER_BUILD_ID)) { 2535 pr_err("Couldn't generate buildids. " 2536 "Use --no-buildid to profile anyway.\n"); 2537 goto out_free_threads; 2538 } 2539 2540 err = record__setup_sb_evlist(rec); 2541 if (err) 2542 goto out_free_threads; 2543 2544 err = record__synthesize(rec, false); 2545 if (err < 0) 2546 goto out_free_threads; 2547 2548 if (rec->realtime_prio) { 2549 struct sched_param param; 2550 2551 param.sched_priority = rec->realtime_prio; 2552 if (sched_setscheduler(0, SCHED_FIFO, ¶m)) { 2553 pr_err("Could not set realtime priority.\n"); 2554 err = -1; 2555 goto out_free_threads; 2556 } 2557 } 2558 2559 if (record__start_threads(rec)) 2560 goto out_free_threads; 2561 2562 /* 2563 * When perf is starting the traced process, all the events 2564 * (apart from group members) have enable_on_exec=1 set, 2565 * so don't spoil it by prematurely enabling them. 2566 */ 2567 if (!target__none(&opts->target) && !opts->target.initial_delay) 2568 evlist__enable(rec->evlist); 2569 2570 /* 2571 * Let the child rip 2572 */ 2573 if (forks) { 2574 struct machine *machine = &session->machines.host; 2575 union perf_event *event; 2576 pid_t tgid; 2577 2578 event = malloc(sizeof(event->comm) + machine->id_hdr_size); 2579 if (event == NULL) { 2580 err = -ENOMEM; 2581 goto out_child; 2582 } 2583 2584 /* 2585 * Some H/W events are generated before COMM event 2586 * which is emitted during exec(), so perf script 2587 * cannot see a correct process name for those events. 2588 * Synthesize COMM event to prevent it. 2589 */ 2590 tgid = perf_event__synthesize_comm(tool, event, 2591 rec->evlist->workload.pid, 2592 process_synthesized_event, 2593 machine); 2594 free(event); 2595 2596 if (tgid == -1) 2597 goto out_child; 2598 2599 event = malloc(sizeof(event->namespaces) + 2600 (NR_NAMESPACES * sizeof(struct perf_ns_link_info)) + 2601 machine->id_hdr_size); 2602 if (event == NULL) { 2603 err = -ENOMEM; 2604 goto out_child; 2605 } 2606 2607 /* 2608 * Synthesize NAMESPACES event for the command specified. 2609 */ 2610 perf_event__synthesize_namespaces(tool, event, 2611 rec->evlist->workload.pid, 2612 tgid, process_synthesized_event, 2613 machine); 2614 free(event); 2615 2616 evlist__start_workload(rec->evlist); 2617 } 2618 2619 if (opts->target.initial_delay) { 2620 pr_info(EVLIST_DISABLED_MSG); 2621 if (opts->target.initial_delay > 0) { 2622 usleep(opts->target.initial_delay * USEC_PER_MSEC); 2623 evlist__enable(rec->evlist); 2624 pr_info(EVLIST_ENABLED_MSG); 2625 } 2626 } 2627 2628 err = event_enable_timer__start(rec->evlist->eet); 2629 if (err) 2630 goto out_child; 2631 2632 /* Debug message used by test scripts */ 2633 pr_debug3("perf record has started\n"); 2634 fflush(stderr); 2635 2636 trigger_ready(&auxtrace_snapshot_trigger); 2637 trigger_ready(&switch_output_trigger); 2638 perf_hooks__invoke_record_start(); 2639 2640 /* 2641 * Must write FINISHED_INIT so it will be seen after all other 2642 * synthesized user events, but before any regular events. 2643 */ 2644 err = write_finished_init(rec, false); 2645 if (err < 0) 2646 goto out_child; 2647 2648 for (;;) { 2649 unsigned long long hits = thread->samples; 2650 2651 /* 2652 * rec->evlist->bkw_mmap_state is possible to be 2653 * BKW_MMAP_EMPTY here: when done == true and 2654 * hits != rec->samples in previous round. 2655 * 2656 * evlist__toggle_bkw_mmap ensure we never 2657 * convert BKW_MMAP_EMPTY to BKW_MMAP_DATA_PENDING. 2658 */ 2659 if (trigger_is_hit(&switch_output_trigger) || done || draining) 2660 evlist__toggle_bkw_mmap(rec->evlist, BKW_MMAP_DATA_PENDING); 2661 2662 if (record__mmap_read_all(rec, false) < 0) { 2663 trigger_error(&auxtrace_snapshot_trigger); 2664 trigger_error(&switch_output_trigger); 2665 err = -1; 2666 goto out_child; 2667 } 2668 2669 if (auxtrace_record__snapshot_started) { 2670 auxtrace_record__snapshot_started = 0; 2671 if (!trigger_is_error(&auxtrace_snapshot_trigger)) 2672 record__read_auxtrace_snapshot(rec, false); 2673 if (trigger_is_error(&auxtrace_snapshot_trigger)) { 2674 pr_err("AUX area tracing snapshot failed\n"); 2675 err = -1; 2676 goto out_child; 2677 } 2678 } 2679 2680 if (trigger_is_hit(&switch_output_trigger)) { 2681 /* 2682 * If switch_output_trigger is hit, the data in 2683 * overwritable ring buffer should have been collected, 2684 * so bkw_mmap_state should be set to BKW_MMAP_EMPTY. 2685 * 2686 * If SIGUSR2 raise after or during record__mmap_read_all(), 2687 * record__mmap_read_all() didn't collect data from 2688 * overwritable ring buffer. Read again. 2689 */ 2690 if (rec->evlist->bkw_mmap_state == BKW_MMAP_RUNNING) 2691 continue; 2692 trigger_ready(&switch_output_trigger); 2693 2694 /* 2695 * Reenable events in overwrite ring buffer after 2696 * record__mmap_read_all(): we should have collected 2697 * data from it. 2698 */ 2699 evlist__toggle_bkw_mmap(rec->evlist, BKW_MMAP_RUNNING); 2700 2701 if (!quiet) 2702 fprintf(stderr, "[ perf record: dump data: Woken up %ld times ]\n", 2703 record__waking(rec)); 2704 thread->waking = 0; 2705 fd = record__switch_output(rec, false); 2706 if (fd < 0) { 2707 pr_err("Failed to switch to new file\n"); 2708 trigger_error(&switch_output_trigger); 2709 err = fd; 2710 goto out_child; 2711 } 2712 2713 /* re-arm the alarm */ 2714 if (rec->switch_output.time) 2715 alarm(rec->switch_output.time); 2716 } 2717 2718 if (hits == thread->samples) { 2719 if (done || draining) 2720 break; 2721 err = fdarray__poll(&thread->pollfd, -1); 2722 /* 2723 * Propagate error, only if there's any. Ignore positive 2724 * number of returned events and interrupt error. 2725 */ 2726 if (err > 0 || (err < 0 && errno == EINTR)) 2727 err = 0; 2728 thread->waking++; 2729 2730 if (fdarray__filter(&thread->pollfd, POLLERR | POLLHUP, 2731 record__thread_munmap_filtered, NULL) == 0) 2732 draining = true; 2733 2734 err = record__update_evlist_pollfd_from_thread(rec, rec->evlist, thread); 2735 if (err) 2736 goto out_child; 2737 } 2738 2739 if (evlist__ctlfd_process(rec->evlist, &cmd) > 0) { 2740 switch (cmd) { 2741 case EVLIST_CTL_CMD_SNAPSHOT: 2742 hit_auxtrace_snapshot_trigger(rec); 2743 evlist__ctlfd_ack(rec->evlist); 2744 break; 2745 case EVLIST_CTL_CMD_STOP: 2746 done = 1; 2747 break; 2748 case EVLIST_CTL_CMD_ACK: 2749 case EVLIST_CTL_CMD_UNSUPPORTED: 2750 case EVLIST_CTL_CMD_ENABLE: 2751 case EVLIST_CTL_CMD_DISABLE: 2752 case EVLIST_CTL_CMD_EVLIST: 2753 case EVLIST_CTL_CMD_PING: 2754 default: 2755 break; 2756 } 2757 } 2758 2759 err = event_enable_timer__process(rec->evlist->eet); 2760 if (err < 0) 2761 goto out_child; 2762 if (err) { 2763 err = 0; 2764 done = 1; 2765 } 2766 2767 /* 2768 * When perf is starting the traced process, at the end events 2769 * die with the process and we wait for that. Thus no need to 2770 * disable events in this case. 2771 */ 2772 if (done && !disabled && !target__none(&opts->target)) { 2773 trigger_off(&auxtrace_snapshot_trigger); 2774 evlist__disable(rec->evlist); 2775 disabled = true; 2776 } 2777 } 2778 2779 trigger_off(&auxtrace_snapshot_trigger); 2780 trigger_off(&switch_output_trigger); 2781 2782 if (opts->auxtrace_snapshot_on_exit) 2783 record__auxtrace_snapshot_exit(rec); 2784 2785 if (forks && workload_exec_errno) { 2786 char msg[STRERR_BUFSIZE], strevsels[2048]; 2787 const char *emsg = str_error_r(workload_exec_errno, msg, sizeof(msg)); 2788 2789 evlist__scnprintf_evsels(rec->evlist, sizeof(strevsels), strevsels); 2790 2791 pr_err("Failed to collect '%s' for the '%s' workload: %s\n", 2792 strevsels, argv[0], emsg); 2793 err = -1; 2794 goto out_child; 2795 } 2796 2797 if (!quiet) 2798 fprintf(stderr, "[ perf record: Woken up %ld times to write data ]\n", 2799 record__waking(rec)); 2800 2801 write_finished_init(rec, true); 2802 2803 if (target__none(&rec->opts.target)) 2804 record__synthesize_workload(rec, true); 2805 2806 out_child: 2807 record__stop_threads(rec); 2808 record__mmap_read_all(rec, true); 2809 out_free_threads: 2810 record__free_thread_data(rec); 2811 evlist__finalize_ctlfd(rec->evlist); 2812 record__aio_mmap_read_sync(rec); 2813 2814 if (rec->session->bytes_transferred && rec->session->bytes_compressed) { 2815 ratio = (float)rec->session->bytes_transferred/(float)rec->session->bytes_compressed; 2816 session->header.env.comp_ratio = ratio + 0.5; 2817 } 2818 2819 if (forks) { 2820 int exit_status; 2821 2822 if (!child_finished) 2823 kill(rec->evlist->workload.pid, SIGTERM); 2824 2825 wait(&exit_status); 2826 2827 if (err < 0) 2828 status = err; 2829 else if (WIFEXITED(exit_status)) 2830 status = WEXITSTATUS(exit_status); 2831 else if (WIFSIGNALED(exit_status)) 2832 signr = WTERMSIG(exit_status); 2833 } else 2834 status = err; 2835 2836 if (rec->off_cpu) 2837 rec->bytes_written += off_cpu_write(rec->session); 2838 2839 record__read_lost_samples(rec); 2840 record__synthesize(rec, true); 2841 /* this will be recalculated during process_buildids() */ 2842 rec->samples = 0; 2843 2844 if (!err) { 2845 if (!rec->timestamp_filename) { 2846 record__finish_output(rec); 2847 } else { 2848 fd = record__switch_output(rec, true); 2849 if (fd < 0) { 2850 status = fd; 2851 goto out_delete_session; 2852 } 2853 } 2854 } 2855 2856 perf_hooks__invoke_record_end(); 2857 2858 if (!err && !quiet) { 2859 char samples[128]; 2860 const char *postfix = rec->timestamp_filename ? 2861 ".<timestamp>" : ""; 2862 2863 if (rec->samples && !rec->opts.full_auxtrace) 2864 scnprintf(samples, sizeof(samples), 2865 " (%" PRIu64 " samples)", rec->samples); 2866 else 2867 samples[0] = '\0'; 2868 2869 fprintf(stderr, "[ perf record: Captured and wrote %.3f MB %s%s%s", 2870 perf_data__size(data) / 1024.0 / 1024.0, 2871 data->path, postfix, samples); 2872 if (ratio) { 2873 fprintf(stderr, ", compressed (original %.3f MB, ratio is %.3f)", 2874 rec->session->bytes_transferred / 1024.0 / 1024.0, 2875 ratio); 2876 } 2877 fprintf(stderr, " ]\n"); 2878 } 2879 2880 out_delete_session: 2881 #ifdef HAVE_EVENTFD_SUPPORT 2882 if (done_fd >= 0) { 2883 fd = done_fd; 2884 done_fd = -1; 2885 2886 close(fd); 2887 } 2888 #endif 2889 zstd_fini(&session->zstd_data); 2890 perf_session__delete(session); 2891 2892 if (!opts->no_bpf_event) 2893 evlist__stop_sb_thread(rec->sb_evlist); 2894 return status; 2895 } 2896 2897 static void callchain_debug(struct callchain_param *callchain) 2898 { 2899 static const char *str[CALLCHAIN_MAX] = { "NONE", "FP", "DWARF", "LBR" }; 2900 2901 pr_debug("callchain: type %s\n", str[callchain->record_mode]); 2902 2903 if (callchain->record_mode == CALLCHAIN_DWARF) 2904 pr_debug("callchain: stack dump size %d\n", 2905 callchain->dump_size); 2906 } 2907 2908 int record_opts__parse_callchain(struct record_opts *record, 2909 struct callchain_param *callchain, 2910 const char *arg, bool unset) 2911 { 2912 int ret; 2913 callchain->enabled = !unset; 2914 2915 /* --no-call-graph */ 2916 if (unset) { 2917 callchain->record_mode = CALLCHAIN_NONE; 2918 pr_debug("callchain: disabled\n"); 2919 return 0; 2920 } 2921 2922 ret = parse_callchain_record_opt(arg, callchain); 2923 if (!ret) { 2924 /* Enable data address sampling for DWARF unwind. */ 2925 if (callchain->record_mode == CALLCHAIN_DWARF) 2926 record->sample_address = true; 2927 callchain_debug(callchain); 2928 } 2929 2930 return ret; 2931 } 2932 2933 int record_parse_callchain_opt(const struct option *opt, 2934 const char *arg, 2935 int unset) 2936 { 2937 return record_opts__parse_callchain(opt->value, &callchain_param, arg, unset); 2938 } 2939 2940 int record_callchain_opt(const struct option *opt, 2941 const char *arg __maybe_unused, 2942 int unset __maybe_unused) 2943 { 2944 struct callchain_param *callchain = opt->value; 2945 2946 callchain->enabled = true; 2947 2948 if (callchain->record_mode == CALLCHAIN_NONE) 2949 callchain->record_mode = CALLCHAIN_FP; 2950 2951 callchain_debug(callchain); 2952 return 0; 2953 } 2954 2955 static int perf_record_config(const char *var, const char *value, void *cb) 2956 { 2957 struct record *rec = cb; 2958 2959 if (!strcmp(var, "record.build-id")) { 2960 if (!strcmp(value, "cache")) 2961 rec->no_buildid_cache = false; 2962 else if (!strcmp(value, "no-cache")) 2963 rec->no_buildid_cache = true; 2964 else if (!strcmp(value, "skip")) 2965 rec->no_buildid = true; 2966 else if (!strcmp(value, "mmap")) 2967 rec->buildid_mmap = true; 2968 else 2969 return -1; 2970 return 0; 2971 } 2972 if (!strcmp(var, "record.call-graph")) { 2973 var = "call-graph.record-mode"; 2974 return perf_default_config(var, value, cb); 2975 } 2976 #ifdef HAVE_AIO_SUPPORT 2977 if (!strcmp(var, "record.aio")) { 2978 rec->opts.nr_cblocks = strtol(value, NULL, 0); 2979 if (!rec->opts.nr_cblocks) 2980 rec->opts.nr_cblocks = nr_cblocks_default; 2981 } 2982 #endif 2983 if (!strcmp(var, "record.debuginfod")) { 2984 rec->debuginfod.urls = strdup(value); 2985 if (!rec->debuginfod.urls) 2986 return -ENOMEM; 2987 rec->debuginfod.set = true; 2988 } 2989 2990 return 0; 2991 } 2992 2993 static int record__parse_event_enable_time(const struct option *opt, const char *str, int unset) 2994 { 2995 struct record *rec = (struct record *)opt->value; 2996 2997 return evlist__parse_event_enable_time(rec->evlist, &rec->opts, str, unset); 2998 } 2999 3000 static int record__parse_affinity(const struct option *opt, const char *str, int unset) 3001 { 3002 struct record_opts *opts = (struct record_opts *)opt->value; 3003 3004 if (unset || !str) 3005 return 0; 3006 3007 if (!strcasecmp(str, "node")) 3008 opts->affinity = PERF_AFFINITY_NODE; 3009 else if (!strcasecmp(str, "cpu")) 3010 opts->affinity = PERF_AFFINITY_CPU; 3011 3012 return 0; 3013 } 3014 3015 static int record__mmap_cpu_mask_alloc(struct mmap_cpu_mask *mask, int nr_bits) 3016 { 3017 mask->nbits = nr_bits; 3018 mask->bits = bitmap_zalloc(mask->nbits); 3019 if (!mask->bits) 3020 return -ENOMEM; 3021 3022 return 0; 3023 } 3024 3025 static void record__mmap_cpu_mask_free(struct mmap_cpu_mask *mask) 3026 { 3027 bitmap_free(mask->bits); 3028 mask->nbits = 0; 3029 } 3030 3031 static int record__thread_mask_alloc(struct thread_mask *mask, int nr_bits) 3032 { 3033 int ret; 3034 3035 ret = record__mmap_cpu_mask_alloc(&mask->maps, nr_bits); 3036 if (ret) { 3037 mask->affinity.bits = NULL; 3038 return ret; 3039 } 3040 3041 ret = record__mmap_cpu_mask_alloc(&mask->affinity, nr_bits); 3042 if (ret) { 3043 record__mmap_cpu_mask_free(&mask->maps); 3044 mask->maps.bits = NULL; 3045 } 3046 3047 return ret; 3048 } 3049 3050 static void record__thread_mask_free(struct thread_mask *mask) 3051 { 3052 record__mmap_cpu_mask_free(&mask->maps); 3053 record__mmap_cpu_mask_free(&mask->affinity); 3054 } 3055 3056 static int record__parse_threads(const struct option *opt, const char *str, int unset) 3057 { 3058 int s; 3059 struct record_opts *opts = opt->value; 3060 3061 if (unset || !str || !strlen(str)) { 3062 opts->threads_spec = THREAD_SPEC__CPU; 3063 } else { 3064 for (s = 1; s < THREAD_SPEC__MAX; s++) { 3065 if (s == THREAD_SPEC__USER) { 3066 opts->threads_user_spec = strdup(str); 3067 if (!opts->threads_user_spec) 3068 return -ENOMEM; 3069 opts->threads_spec = THREAD_SPEC__USER; 3070 break; 3071 } 3072 if (!strncasecmp(str, thread_spec_tags[s], strlen(thread_spec_tags[s]))) { 3073 opts->threads_spec = s; 3074 break; 3075 } 3076 } 3077 } 3078 3079 if (opts->threads_spec == THREAD_SPEC__USER) 3080 pr_debug("threads_spec: %s\n", opts->threads_user_spec); 3081 else 3082 pr_debug("threads_spec: %s\n", thread_spec_tags[opts->threads_spec]); 3083 3084 return 0; 3085 } 3086 3087 static int parse_output_max_size(const struct option *opt, 3088 const char *str, int unset) 3089 { 3090 unsigned long *s = (unsigned long *)opt->value; 3091 static struct parse_tag tags_size[] = { 3092 { .tag = 'B', .mult = 1 }, 3093 { .tag = 'K', .mult = 1 << 10 }, 3094 { .tag = 'M', .mult = 1 << 20 }, 3095 { .tag = 'G', .mult = 1 << 30 }, 3096 { .tag = 0 }, 3097 }; 3098 unsigned long val; 3099 3100 if (unset) { 3101 *s = 0; 3102 return 0; 3103 } 3104 3105 val = parse_tag_value(str, tags_size); 3106 if (val != (unsigned long) -1) { 3107 *s = val; 3108 return 0; 3109 } 3110 3111 return -1; 3112 } 3113 3114 static int record__parse_mmap_pages(const struct option *opt, 3115 const char *str, 3116 int unset __maybe_unused) 3117 { 3118 struct record_opts *opts = opt->value; 3119 char *s, *p; 3120 unsigned int mmap_pages; 3121 int ret; 3122 3123 if (!str) 3124 return -EINVAL; 3125 3126 s = strdup(str); 3127 if (!s) 3128 return -ENOMEM; 3129 3130 p = strchr(s, ','); 3131 if (p) 3132 *p = '\0'; 3133 3134 if (*s) { 3135 ret = __evlist__parse_mmap_pages(&mmap_pages, s); 3136 if (ret) 3137 goto out_free; 3138 opts->mmap_pages = mmap_pages; 3139 } 3140 3141 if (!p) { 3142 ret = 0; 3143 goto out_free; 3144 } 3145 3146 ret = __evlist__parse_mmap_pages(&mmap_pages, p + 1); 3147 if (ret) 3148 goto out_free; 3149 3150 opts->auxtrace_mmap_pages = mmap_pages; 3151 3152 out_free: 3153 free(s); 3154 return ret; 3155 } 3156 3157 void __weak arch__add_leaf_frame_record_opts(struct record_opts *opts __maybe_unused) 3158 { 3159 } 3160 3161 static int parse_control_option(const struct option *opt, 3162 const char *str, 3163 int unset __maybe_unused) 3164 { 3165 struct record_opts *opts = opt->value; 3166 3167 return evlist__parse_control(str, &opts->ctl_fd, &opts->ctl_fd_ack, &opts->ctl_fd_close); 3168 } 3169 3170 static void switch_output_size_warn(struct record *rec) 3171 { 3172 u64 wakeup_size = evlist__mmap_size(rec->opts.mmap_pages); 3173 struct switch_output *s = &rec->switch_output; 3174 3175 wakeup_size /= 2; 3176 3177 if (s->size < wakeup_size) { 3178 char buf[100]; 3179 3180 unit_number__scnprintf(buf, sizeof(buf), wakeup_size); 3181 pr_warning("WARNING: switch-output data size lower than " 3182 "wakeup kernel buffer size (%s) " 3183 "expect bigger perf.data sizes\n", buf); 3184 } 3185 } 3186 3187 static int switch_output_setup(struct record *rec) 3188 { 3189 struct switch_output *s = &rec->switch_output; 3190 static struct parse_tag tags_size[] = { 3191 { .tag = 'B', .mult = 1 }, 3192 { .tag = 'K', .mult = 1 << 10 }, 3193 { .tag = 'M', .mult = 1 << 20 }, 3194 { .tag = 'G', .mult = 1 << 30 }, 3195 { .tag = 0 }, 3196 }; 3197 static struct parse_tag tags_time[] = { 3198 { .tag = 's', .mult = 1 }, 3199 { .tag = 'm', .mult = 60 }, 3200 { .tag = 'h', .mult = 60*60 }, 3201 { .tag = 'd', .mult = 60*60*24 }, 3202 { .tag = 0 }, 3203 }; 3204 unsigned long val; 3205 3206 /* 3207 * If we're using --switch-output-events, then we imply its 3208 * --switch-output=signal, as we'll send a SIGUSR2 from the side band 3209 * thread to its parent. 3210 */ 3211 if (rec->switch_output_event_set) { 3212 if (record__threads_enabled(rec)) { 3213 pr_warning("WARNING: --switch-output-event option is not available in parallel streaming mode.\n"); 3214 return 0; 3215 } 3216 goto do_signal; 3217 } 3218 3219 if (!s->set) 3220 return 0; 3221 3222 if (record__threads_enabled(rec)) { 3223 pr_warning("WARNING: --switch-output option is not available in parallel streaming mode.\n"); 3224 return 0; 3225 } 3226 3227 if (!strcmp(s->str, "signal")) { 3228 do_signal: 3229 s->signal = true; 3230 pr_debug("switch-output with SIGUSR2 signal\n"); 3231 goto enabled; 3232 } 3233 3234 val = parse_tag_value(s->str, tags_size); 3235 if (val != (unsigned long) -1) { 3236 s->size = val; 3237 pr_debug("switch-output with %s size threshold\n", s->str); 3238 goto enabled; 3239 } 3240 3241 val = parse_tag_value(s->str, tags_time); 3242 if (val != (unsigned long) -1) { 3243 s->time = val; 3244 pr_debug("switch-output with %s time threshold (%lu seconds)\n", 3245 s->str, s->time); 3246 goto enabled; 3247 } 3248 3249 return -1; 3250 3251 enabled: 3252 rec->timestamp_filename = true; 3253 s->enabled = true; 3254 3255 if (s->size && !rec->opts.no_buffering) 3256 switch_output_size_warn(rec); 3257 3258 return 0; 3259 } 3260 3261 static const char * const __record_usage[] = { 3262 "perf record [<options>] [<command>]", 3263 "perf record [<options>] -- <command> [<options>]", 3264 NULL 3265 }; 3266 const char * const *record_usage = __record_usage; 3267 3268 static int build_id__process_mmap(struct perf_tool *tool, union perf_event *event, 3269 struct perf_sample *sample, struct machine *machine) 3270 { 3271 /* 3272 * We already have the kernel maps, put in place via perf_session__create_kernel_maps() 3273 * no need to add them twice. 3274 */ 3275 if (!(event->header.misc & PERF_RECORD_MISC_USER)) 3276 return 0; 3277 return perf_event__process_mmap(tool, event, sample, machine); 3278 } 3279 3280 static int build_id__process_mmap2(struct perf_tool *tool, union perf_event *event, 3281 struct perf_sample *sample, struct machine *machine) 3282 { 3283 /* 3284 * We already have the kernel maps, put in place via perf_session__create_kernel_maps() 3285 * no need to add them twice. 3286 */ 3287 if (!(event->header.misc & PERF_RECORD_MISC_USER)) 3288 return 0; 3289 3290 return perf_event__process_mmap2(tool, event, sample, machine); 3291 } 3292 3293 static int process_timestamp_boundary(struct perf_tool *tool, 3294 union perf_event *event __maybe_unused, 3295 struct perf_sample *sample, 3296 struct machine *machine __maybe_unused) 3297 { 3298 struct record *rec = container_of(tool, struct record, tool); 3299 3300 set_timestamp_boundary(rec, sample->time); 3301 return 0; 3302 } 3303 3304 static int parse_record_synth_option(const struct option *opt, 3305 const char *str, 3306 int unset __maybe_unused) 3307 { 3308 struct record_opts *opts = opt->value; 3309 char *p = strdup(str); 3310 3311 if (p == NULL) 3312 return -1; 3313 3314 opts->synth = parse_synth_opt(p); 3315 free(p); 3316 3317 if (opts->synth < 0) { 3318 pr_err("Invalid synth option: %s\n", str); 3319 return -1; 3320 } 3321 return 0; 3322 } 3323 3324 /* 3325 * XXX Ideally would be local to cmd_record() and passed to a record__new 3326 * because we need to have access to it in record__exit, that is called 3327 * after cmd_record() exits, but since record_options need to be accessible to 3328 * builtin-script, leave it here. 3329 * 3330 * At least we don't ouch it in all the other functions here directly. 3331 * 3332 * Just say no to tons of global variables, sigh. 3333 */ 3334 static struct record record = { 3335 .opts = { 3336 .sample_time = true, 3337 .mmap_pages = UINT_MAX, 3338 .user_freq = UINT_MAX, 3339 .user_interval = ULLONG_MAX, 3340 .freq = 4000, 3341 .target = { 3342 .uses_mmap = true, 3343 .default_per_cpu = true, 3344 }, 3345 .mmap_flush = MMAP_FLUSH_DEFAULT, 3346 .nr_threads_synthesize = 1, 3347 .ctl_fd = -1, 3348 .ctl_fd_ack = -1, 3349 .synth = PERF_SYNTH_ALL, 3350 }, 3351 .tool = { 3352 .sample = process_sample_event, 3353 .fork = perf_event__process_fork, 3354 .exit = perf_event__process_exit, 3355 .comm = perf_event__process_comm, 3356 .namespaces = perf_event__process_namespaces, 3357 .mmap = build_id__process_mmap, 3358 .mmap2 = build_id__process_mmap2, 3359 .itrace_start = process_timestamp_boundary, 3360 .aux = process_timestamp_boundary, 3361 .ordered_events = true, 3362 }, 3363 }; 3364 3365 const char record_callchain_help[] = CALLCHAIN_RECORD_HELP 3366 "\n\t\t\t\tDefault: fp"; 3367 3368 static bool dry_run; 3369 3370 static struct parse_events_option_args parse_events_option_args = { 3371 .evlistp = &record.evlist, 3372 }; 3373 3374 static struct parse_events_option_args switch_output_parse_events_option_args = { 3375 .evlistp = &record.sb_evlist, 3376 }; 3377 3378 /* 3379 * XXX Will stay a global variable till we fix builtin-script.c to stop messing 3380 * with it and switch to use the library functions in perf_evlist that came 3381 * from builtin-record.c, i.e. use record_opts, 3382 * evlist__prepare_workload, etc instead of fork+exec'in 'perf record', 3383 * using pipes, etc. 3384 */ 3385 static struct option __record_options[] = { 3386 OPT_CALLBACK('e', "event", &parse_events_option_args, "event", 3387 "event selector. use 'perf list' to list available events", 3388 parse_events_option), 3389 OPT_CALLBACK(0, "filter", &record.evlist, "filter", 3390 "event filter", parse_filter), 3391 OPT_CALLBACK_NOOPT(0, "exclude-perf", &record.evlist, 3392 NULL, "don't record events from perf itself", 3393 exclude_perf), 3394 OPT_STRING('p', "pid", &record.opts.target.pid, "pid", 3395 "record events on existing process id"), 3396 OPT_STRING('t', "tid", &record.opts.target.tid, "tid", 3397 "record events on existing thread id"), 3398 OPT_INTEGER('r', "realtime", &record.realtime_prio, 3399 "collect data with this RT SCHED_FIFO priority"), 3400 OPT_BOOLEAN(0, "no-buffering", &record.opts.no_buffering, 3401 "collect data without buffering"), 3402 OPT_BOOLEAN('R', "raw-samples", &record.opts.raw_samples, 3403 "collect raw sample records from all opened counters"), 3404 OPT_BOOLEAN('a', "all-cpus", &record.opts.target.system_wide, 3405 "system-wide collection from all CPUs"), 3406 OPT_STRING('C', "cpu", &record.opts.target.cpu_list, "cpu", 3407 "list of cpus to monitor"), 3408 OPT_U64('c', "count", &record.opts.user_interval, "event period to sample"), 3409 OPT_STRING('o', "output", &record.data.path, "file", 3410 "output file name"), 3411 OPT_BOOLEAN_SET('i', "no-inherit", &record.opts.no_inherit, 3412 &record.opts.no_inherit_set, 3413 "child tasks do not inherit counters"), 3414 OPT_BOOLEAN(0, "tail-synthesize", &record.opts.tail_synthesize, 3415 "synthesize non-sample events at the end of output"), 3416 OPT_BOOLEAN(0, "overwrite", &record.opts.overwrite, "use overwrite mode"), 3417 OPT_BOOLEAN(0, "no-bpf-event", &record.opts.no_bpf_event, "do not record bpf events"), 3418 OPT_BOOLEAN(0, "strict-freq", &record.opts.strict_freq, 3419 "Fail if the specified frequency can't be used"), 3420 OPT_CALLBACK('F', "freq", &record.opts, "freq or 'max'", 3421 "profile at this frequency", 3422 record__parse_freq), 3423 OPT_CALLBACK('m', "mmap-pages", &record.opts, "pages[,pages]", 3424 "number of mmap data pages and AUX area tracing mmap pages", 3425 record__parse_mmap_pages), 3426 OPT_CALLBACK(0, "mmap-flush", &record.opts, "number", 3427 "Minimal number of bytes that is extracted from mmap data pages (default: 1)", 3428 record__mmap_flush_parse), 3429 OPT_CALLBACK_NOOPT('g', NULL, &callchain_param, 3430 NULL, "enables call-graph recording" , 3431 &record_callchain_opt), 3432 OPT_CALLBACK(0, "call-graph", &record.opts, 3433 "record_mode[,record_size]", record_callchain_help, 3434 &record_parse_callchain_opt), 3435 OPT_INCR('v', "verbose", &verbose, 3436 "be more verbose (show counter open errors, etc)"), 3437 OPT_BOOLEAN('q', "quiet", &quiet, "don't print any warnings or messages"), 3438 OPT_BOOLEAN('s', "stat", &record.opts.inherit_stat, 3439 "per thread counts"), 3440 OPT_BOOLEAN('d', "data", &record.opts.sample_address, "Record the sample addresses"), 3441 OPT_BOOLEAN(0, "phys-data", &record.opts.sample_phys_addr, 3442 "Record the sample physical addresses"), 3443 OPT_BOOLEAN(0, "data-page-size", &record.opts.sample_data_page_size, 3444 "Record the sampled data address data page size"), 3445 OPT_BOOLEAN(0, "code-page-size", &record.opts.sample_code_page_size, 3446 "Record the sampled code address (ip) page size"), 3447 OPT_BOOLEAN(0, "sample-cpu", &record.opts.sample_cpu, "Record the sample cpu"), 3448 OPT_BOOLEAN(0, "sample-identifier", &record.opts.sample_identifier, 3449 "Record the sample identifier"), 3450 OPT_BOOLEAN_SET('T', "timestamp", &record.opts.sample_time, 3451 &record.opts.sample_time_set, 3452 "Record the sample timestamps"), 3453 OPT_BOOLEAN_SET('P', "period", &record.opts.period, &record.opts.period_set, 3454 "Record the sample period"), 3455 OPT_BOOLEAN('n', "no-samples", &record.opts.no_samples, 3456 "don't sample"), 3457 OPT_BOOLEAN_SET('N', "no-buildid-cache", &record.no_buildid_cache, 3458 &record.no_buildid_cache_set, 3459 "do not update the buildid cache"), 3460 OPT_BOOLEAN_SET('B', "no-buildid", &record.no_buildid, 3461 &record.no_buildid_set, 3462 "do not collect buildids in perf.data"), 3463 OPT_CALLBACK('G', "cgroup", &record.evlist, "name", 3464 "monitor event in cgroup name only", 3465 parse_cgroups), 3466 OPT_CALLBACK('D', "delay", &record, "ms", 3467 "ms to wait before starting measurement after program start (-1: start with events disabled), " 3468 "or ranges of time to enable events e.g. '-D 10-20,30-40'", 3469 record__parse_event_enable_time), 3470 OPT_BOOLEAN(0, "kcore", &record.opts.kcore, "copy /proc/kcore"), 3471 OPT_STRING('u', "uid", &record.opts.target.uid_str, "user", 3472 "user to profile"), 3473 3474 OPT_CALLBACK_NOOPT('b', "branch-any", &record.opts.branch_stack, 3475 "branch any", "sample any taken branches", 3476 parse_branch_stack), 3477 3478 OPT_CALLBACK('j', "branch-filter", &record.opts.branch_stack, 3479 "branch filter mask", "branch stack filter modes", 3480 parse_branch_stack), 3481 OPT_BOOLEAN('W', "weight", &record.opts.sample_weight, 3482 "sample by weight (on special events only)"), 3483 OPT_BOOLEAN(0, "transaction", &record.opts.sample_transaction, 3484 "sample transaction flags (special events only)"), 3485 OPT_BOOLEAN(0, "per-thread", &record.opts.target.per_thread, 3486 "use per-thread mmaps"), 3487 OPT_CALLBACK_OPTARG('I', "intr-regs", &record.opts.sample_intr_regs, NULL, "any register", 3488 "sample selected machine registers on interrupt," 3489 " use '-I?' to list register names", parse_intr_regs), 3490 OPT_CALLBACK_OPTARG(0, "user-regs", &record.opts.sample_user_regs, NULL, "any register", 3491 "sample selected machine registers on interrupt," 3492 " use '--user-regs=?' to list register names", parse_user_regs), 3493 OPT_BOOLEAN(0, "running-time", &record.opts.running_time, 3494 "Record running/enabled time of read (:S) events"), 3495 OPT_CALLBACK('k', "clockid", &record.opts, 3496 "clockid", "clockid to use for events, see clock_gettime()", 3497 parse_clockid), 3498 OPT_STRING_OPTARG('S', "snapshot", &record.opts.auxtrace_snapshot_opts, 3499 "opts", "AUX area tracing Snapshot Mode", ""), 3500 OPT_STRING_OPTARG(0, "aux-sample", &record.opts.auxtrace_sample_opts, 3501 "opts", "sample AUX area", ""), 3502 OPT_UINTEGER(0, "proc-map-timeout", &proc_map_timeout, 3503 "per thread proc mmap processing timeout in ms"), 3504 OPT_BOOLEAN(0, "namespaces", &record.opts.record_namespaces, 3505 "Record namespaces events"), 3506 OPT_BOOLEAN(0, "all-cgroups", &record.opts.record_cgroup, 3507 "Record cgroup events"), 3508 OPT_BOOLEAN_SET(0, "switch-events", &record.opts.record_switch_events, 3509 &record.opts.record_switch_events_set, 3510 "Record context switch events"), 3511 OPT_BOOLEAN_FLAG(0, "all-kernel", &record.opts.all_kernel, 3512 "Configure all used events to run in kernel space.", 3513 PARSE_OPT_EXCLUSIVE), 3514 OPT_BOOLEAN_FLAG(0, "all-user", &record.opts.all_user, 3515 "Configure all used events to run in user space.", 3516 PARSE_OPT_EXCLUSIVE), 3517 OPT_BOOLEAN(0, "kernel-callchains", &record.opts.kernel_callchains, 3518 "collect kernel callchains"), 3519 OPT_BOOLEAN(0, "user-callchains", &record.opts.user_callchains, 3520 "collect user callchains"), 3521 OPT_STRING(0, "vmlinux", &symbol_conf.vmlinux_name, 3522 "file", "vmlinux pathname"), 3523 OPT_BOOLEAN(0, "buildid-all", &record.buildid_all, 3524 "Record build-id of all DSOs regardless of hits"), 3525 OPT_BOOLEAN(0, "buildid-mmap", &record.buildid_mmap, 3526 "Record build-id in map events"), 3527 OPT_BOOLEAN(0, "timestamp-filename", &record.timestamp_filename, 3528 "append timestamp to output filename"), 3529 OPT_BOOLEAN(0, "timestamp-boundary", &record.timestamp_boundary, 3530 "Record timestamp boundary (time of first/last samples)"), 3531 OPT_STRING_OPTARG_SET(0, "switch-output", &record.switch_output.str, 3532 &record.switch_output.set, "signal or size[BKMG] or time[smhd]", 3533 "Switch output when receiving SIGUSR2 (signal) or cross a size or time threshold", 3534 "signal"), 3535 OPT_CALLBACK_SET(0, "switch-output-event", &switch_output_parse_events_option_args, 3536 &record.switch_output_event_set, "switch output event", 3537 "switch output event selector. use 'perf list' to list available events", 3538 parse_events_option_new_evlist), 3539 OPT_INTEGER(0, "switch-max-files", &record.switch_output.num_files, 3540 "Limit number of switch output generated files"), 3541 OPT_BOOLEAN(0, "dry-run", &dry_run, 3542 "Parse options then exit"), 3543 #ifdef HAVE_AIO_SUPPORT 3544 OPT_CALLBACK_OPTARG(0, "aio", &record.opts, 3545 &nr_cblocks_default, "n", "Use <n> control blocks in asynchronous trace writing mode (default: 1, max: 4)", 3546 record__aio_parse), 3547 #endif 3548 OPT_CALLBACK(0, "affinity", &record.opts, "node|cpu", 3549 "Set affinity mask of trace reading thread to NUMA node cpu mask or cpu of processed mmap buffer", 3550 record__parse_affinity), 3551 #ifdef HAVE_ZSTD_SUPPORT 3552 OPT_CALLBACK_OPTARG('z', "compression-level", &record.opts, &comp_level_default, "n", 3553 "Compress records using specified level (default: 1 - fastest compression, 22 - greatest compression)", 3554 record__parse_comp_level), 3555 #endif 3556 OPT_CALLBACK(0, "max-size", &record.output_max_size, 3557 "size", "Limit the maximum size of the output file", parse_output_max_size), 3558 OPT_UINTEGER(0, "num-thread-synthesize", 3559 &record.opts.nr_threads_synthesize, 3560 "number of threads to run for event synthesis"), 3561 #ifdef HAVE_LIBPFM 3562 OPT_CALLBACK(0, "pfm-events", &record.evlist, "event", 3563 "libpfm4 event selector. use 'perf list' to list available events", 3564 parse_libpfm_events_option), 3565 #endif 3566 OPT_CALLBACK(0, "control", &record.opts, "fd:ctl-fd[,ack-fd] or fifo:ctl-fifo[,ack-fifo]", 3567 "Listen on ctl-fd descriptor for command to control measurement ('enable': enable events, 'disable': disable events,\n" 3568 "\t\t\t 'snapshot': AUX area tracing snapshot).\n" 3569 "\t\t\t Optionally send control command completion ('ack\\n') to ack-fd descriptor.\n" 3570 "\t\t\t Alternatively, ctl-fifo / ack-fifo will be opened and used as ctl-fd / ack-fd.", 3571 parse_control_option), 3572 OPT_CALLBACK(0, "synth", &record.opts, "no|all|task|mmap|cgroup", 3573 "Fine-tune event synthesis: default=all", parse_record_synth_option), 3574 OPT_STRING_OPTARG_SET(0, "debuginfod", &record.debuginfod.urls, 3575 &record.debuginfod.set, "debuginfod urls", 3576 "Enable debuginfod data retrieval from DEBUGINFOD_URLS or specified urls", 3577 "system"), 3578 OPT_CALLBACK_OPTARG(0, "threads", &record.opts, NULL, "spec", 3579 "write collected trace data into several data files using parallel threads", 3580 record__parse_threads), 3581 OPT_BOOLEAN(0, "off-cpu", &record.off_cpu, "Enable off-cpu analysis"), 3582 OPT_END() 3583 }; 3584 3585 struct option *record_options = __record_options; 3586 3587 static int record__mmap_cpu_mask_init(struct mmap_cpu_mask *mask, struct perf_cpu_map *cpus) 3588 { 3589 struct perf_cpu cpu; 3590 int idx; 3591 3592 if (cpu_map__is_dummy(cpus)) 3593 return 0; 3594 3595 perf_cpu_map__for_each_cpu(cpu, idx, cpus) { 3596 if (cpu.cpu == -1) 3597 continue; 3598 /* Return ENODEV is input cpu is greater than max cpu */ 3599 if ((unsigned long)cpu.cpu > mask->nbits) 3600 return -ENODEV; 3601 __set_bit(cpu.cpu, mask->bits); 3602 } 3603 3604 return 0; 3605 } 3606 3607 static int record__mmap_cpu_mask_init_spec(struct mmap_cpu_mask *mask, const char *mask_spec) 3608 { 3609 struct perf_cpu_map *cpus; 3610 3611 cpus = perf_cpu_map__new(mask_spec); 3612 if (!cpus) 3613 return -ENOMEM; 3614 3615 bitmap_zero(mask->bits, mask->nbits); 3616 if (record__mmap_cpu_mask_init(mask, cpus)) 3617 return -ENODEV; 3618 3619 perf_cpu_map__put(cpus); 3620 3621 return 0; 3622 } 3623 3624 static void record__free_thread_masks(struct record *rec, int nr_threads) 3625 { 3626 int t; 3627 3628 if (rec->thread_masks) 3629 for (t = 0; t < nr_threads; t++) 3630 record__thread_mask_free(&rec->thread_masks[t]); 3631 3632 zfree(&rec->thread_masks); 3633 } 3634 3635 static int record__alloc_thread_masks(struct record *rec, int nr_threads, int nr_bits) 3636 { 3637 int t, ret; 3638 3639 rec->thread_masks = zalloc(nr_threads * sizeof(*(rec->thread_masks))); 3640 if (!rec->thread_masks) { 3641 pr_err("Failed to allocate thread masks\n"); 3642 return -ENOMEM; 3643 } 3644 3645 for (t = 0; t < nr_threads; t++) { 3646 ret = record__thread_mask_alloc(&rec->thread_masks[t], nr_bits); 3647 if (ret) { 3648 pr_err("Failed to allocate thread masks[%d]\n", t); 3649 goto out_free; 3650 } 3651 } 3652 3653 return 0; 3654 3655 out_free: 3656 record__free_thread_masks(rec, nr_threads); 3657 3658 return ret; 3659 } 3660 3661 static int record__init_thread_cpu_masks(struct record *rec, struct perf_cpu_map *cpus) 3662 { 3663 int t, ret, nr_cpus = perf_cpu_map__nr(cpus); 3664 3665 ret = record__alloc_thread_masks(rec, nr_cpus, cpu__max_cpu().cpu); 3666 if (ret) 3667 return ret; 3668 3669 rec->nr_threads = nr_cpus; 3670 pr_debug("nr_threads: %d\n", rec->nr_threads); 3671 3672 for (t = 0; t < rec->nr_threads; t++) { 3673 __set_bit(perf_cpu_map__cpu(cpus, t).cpu, rec->thread_masks[t].maps.bits); 3674 __set_bit(perf_cpu_map__cpu(cpus, t).cpu, rec->thread_masks[t].affinity.bits); 3675 if (verbose > 0) { 3676 pr_debug("thread_masks[%d]: ", t); 3677 mmap_cpu_mask__scnprintf(&rec->thread_masks[t].maps, "maps"); 3678 pr_debug("thread_masks[%d]: ", t); 3679 mmap_cpu_mask__scnprintf(&rec->thread_masks[t].affinity, "affinity"); 3680 } 3681 } 3682 3683 return 0; 3684 } 3685 3686 static int record__init_thread_masks_spec(struct record *rec, struct perf_cpu_map *cpus, 3687 const char **maps_spec, const char **affinity_spec, 3688 u32 nr_spec) 3689 { 3690 u32 s; 3691 int ret = 0, t = 0; 3692 struct mmap_cpu_mask cpus_mask; 3693 struct thread_mask thread_mask, full_mask, *thread_masks; 3694 3695 ret = record__mmap_cpu_mask_alloc(&cpus_mask, cpu__max_cpu().cpu); 3696 if (ret) { 3697 pr_err("Failed to allocate CPUs mask\n"); 3698 return ret; 3699 } 3700 3701 ret = record__mmap_cpu_mask_init(&cpus_mask, cpus); 3702 if (ret) { 3703 pr_err("Failed to init cpu mask\n"); 3704 goto out_free_cpu_mask; 3705 } 3706 3707 ret = record__thread_mask_alloc(&full_mask, cpu__max_cpu().cpu); 3708 if (ret) { 3709 pr_err("Failed to allocate full mask\n"); 3710 goto out_free_cpu_mask; 3711 } 3712 3713 ret = record__thread_mask_alloc(&thread_mask, cpu__max_cpu().cpu); 3714 if (ret) { 3715 pr_err("Failed to allocate thread mask\n"); 3716 goto out_free_full_and_cpu_masks; 3717 } 3718 3719 for (s = 0; s < nr_spec; s++) { 3720 ret = record__mmap_cpu_mask_init_spec(&thread_mask.maps, maps_spec[s]); 3721 if (ret) { 3722 pr_err("Failed to initialize maps thread mask\n"); 3723 goto out_free; 3724 } 3725 ret = record__mmap_cpu_mask_init_spec(&thread_mask.affinity, affinity_spec[s]); 3726 if (ret) { 3727 pr_err("Failed to initialize affinity thread mask\n"); 3728 goto out_free; 3729 } 3730 3731 /* ignore invalid CPUs but do not allow empty masks */ 3732 if (!bitmap_and(thread_mask.maps.bits, thread_mask.maps.bits, 3733 cpus_mask.bits, thread_mask.maps.nbits)) { 3734 pr_err("Empty maps mask: %s\n", maps_spec[s]); 3735 ret = -EINVAL; 3736 goto out_free; 3737 } 3738 if (!bitmap_and(thread_mask.affinity.bits, thread_mask.affinity.bits, 3739 cpus_mask.bits, thread_mask.affinity.nbits)) { 3740 pr_err("Empty affinity mask: %s\n", affinity_spec[s]); 3741 ret = -EINVAL; 3742 goto out_free; 3743 } 3744 3745 /* do not allow intersection with other masks (full_mask) */ 3746 if (bitmap_intersects(thread_mask.maps.bits, full_mask.maps.bits, 3747 thread_mask.maps.nbits)) { 3748 pr_err("Intersecting maps mask: %s\n", maps_spec[s]); 3749 ret = -EINVAL; 3750 goto out_free; 3751 } 3752 if (bitmap_intersects(thread_mask.affinity.bits, full_mask.affinity.bits, 3753 thread_mask.affinity.nbits)) { 3754 pr_err("Intersecting affinity mask: %s\n", affinity_spec[s]); 3755 ret = -EINVAL; 3756 goto out_free; 3757 } 3758 3759 bitmap_or(full_mask.maps.bits, full_mask.maps.bits, 3760 thread_mask.maps.bits, full_mask.maps.nbits); 3761 bitmap_or(full_mask.affinity.bits, full_mask.affinity.bits, 3762 thread_mask.affinity.bits, full_mask.maps.nbits); 3763 3764 thread_masks = realloc(rec->thread_masks, (t + 1) * sizeof(struct thread_mask)); 3765 if (!thread_masks) { 3766 pr_err("Failed to reallocate thread masks\n"); 3767 ret = -ENOMEM; 3768 goto out_free; 3769 } 3770 rec->thread_masks = thread_masks; 3771 rec->thread_masks[t] = thread_mask; 3772 if (verbose > 0) { 3773 pr_debug("thread_masks[%d]: ", t); 3774 mmap_cpu_mask__scnprintf(&rec->thread_masks[t].maps, "maps"); 3775 pr_debug("thread_masks[%d]: ", t); 3776 mmap_cpu_mask__scnprintf(&rec->thread_masks[t].affinity, "affinity"); 3777 } 3778 t++; 3779 ret = record__thread_mask_alloc(&thread_mask, cpu__max_cpu().cpu); 3780 if (ret) { 3781 pr_err("Failed to allocate thread mask\n"); 3782 goto out_free_full_and_cpu_masks; 3783 } 3784 } 3785 rec->nr_threads = t; 3786 pr_debug("nr_threads: %d\n", rec->nr_threads); 3787 if (!rec->nr_threads) 3788 ret = -EINVAL; 3789 3790 out_free: 3791 record__thread_mask_free(&thread_mask); 3792 out_free_full_and_cpu_masks: 3793 record__thread_mask_free(&full_mask); 3794 out_free_cpu_mask: 3795 record__mmap_cpu_mask_free(&cpus_mask); 3796 3797 return ret; 3798 } 3799 3800 static int record__init_thread_core_masks(struct record *rec, struct perf_cpu_map *cpus) 3801 { 3802 int ret; 3803 struct cpu_topology *topo; 3804 3805 topo = cpu_topology__new(); 3806 if (!topo) { 3807 pr_err("Failed to allocate CPU topology\n"); 3808 return -ENOMEM; 3809 } 3810 3811 ret = record__init_thread_masks_spec(rec, cpus, topo->core_cpus_list, 3812 topo->core_cpus_list, topo->core_cpus_lists); 3813 cpu_topology__delete(topo); 3814 3815 return ret; 3816 } 3817 3818 static int record__init_thread_package_masks(struct record *rec, struct perf_cpu_map *cpus) 3819 { 3820 int ret; 3821 struct cpu_topology *topo; 3822 3823 topo = cpu_topology__new(); 3824 if (!topo) { 3825 pr_err("Failed to allocate CPU topology\n"); 3826 return -ENOMEM; 3827 } 3828 3829 ret = record__init_thread_masks_spec(rec, cpus, topo->package_cpus_list, 3830 topo->package_cpus_list, topo->package_cpus_lists); 3831 cpu_topology__delete(topo); 3832 3833 return ret; 3834 } 3835 3836 static int record__init_thread_numa_masks(struct record *rec, struct perf_cpu_map *cpus) 3837 { 3838 u32 s; 3839 int ret; 3840 const char **spec; 3841 struct numa_topology *topo; 3842 3843 topo = numa_topology__new(); 3844 if (!topo) { 3845 pr_err("Failed to allocate NUMA topology\n"); 3846 return -ENOMEM; 3847 } 3848 3849 spec = zalloc(topo->nr * sizeof(char *)); 3850 if (!spec) { 3851 pr_err("Failed to allocate NUMA spec\n"); 3852 ret = -ENOMEM; 3853 goto out_delete_topo; 3854 } 3855 for (s = 0; s < topo->nr; s++) 3856 spec[s] = topo->nodes[s].cpus; 3857 3858 ret = record__init_thread_masks_spec(rec, cpus, spec, spec, topo->nr); 3859 3860 zfree(&spec); 3861 3862 out_delete_topo: 3863 numa_topology__delete(topo); 3864 3865 return ret; 3866 } 3867 3868 static int record__init_thread_user_masks(struct record *rec, struct perf_cpu_map *cpus) 3869 { 3870 int t, ret; 3871 u32 s, nr_spec = 0; 3872 char **maps_spec = NULL, **affinity_spec = NULL, **tmp_spec; 3873 char *user_spec, *spec, *spec_ptr, *mask, *mask_ptr, *dup_mask = NULL; 3874 3875 for (t = 0, user_spec = (char *)rec->opts.threads_user_spec; ; t++, user_spec = NULL) { 3876 spec = strtok_r(user_spec, ":", &spec_ptr); 3877 if (spec == NULL) 3878 break; 3879 pr_debug2("threads_spec[%d]: %s\n", t, spec); 3880 mask = strtok_r(spec, "/", &mask_ptr); 3881 if (mask == NULL) 3882 break; 3883 pr_debug2(" maps mask: %s\n", mask); 3884 tmp_spec = realloc(maps_spec, (nr_spec + 1) * sizeof(char *)); 3885 if (!tmp_spec) { 3886 pr_err("Failed to reallocate maps spec\n"); 3887 ret = -ENOMEM; 3888 goto out_free; 3889 } 3890 maps_spec = tmp_spec; 3891 maps_spec[nr_spec] = dup_mask = strdup(mask); 3892 if (!maps_spec[nr_spec]) { 3893 pr_err("Failed to allocate maps spec[%d]\n", nr_spec); 3894 ret = -ENOMEM; 3895 goto out_free; 3896 } 3897 mask = strtok_r(NULL, "/", &mask_ptr); 3898 if (mask == NULL) { 3899 pr_err("Invalid thread maps or affinity specs\n"); 3900 ret = -EINVAL; 3901 goto out_free; 3902 } 3903 pr_debug2(" affinity mask: %s\n", mask); 3904 tmp_spec = realloc(affinity_spec, (nr_spec + 1) * sizeof(char *)); 3905 if (!tmp_spec) { 3906 pr_err("Failed to reallocate affinity spec\n"); 3907 ret = -ENOMEM; 3908 goto out_free; 3909 } 3910 affinity_spec = tmp_spec; 3911 affinity_spec[nr_spec] = strdup(mask); 3912 if (!affinity_spec[nr_spec]) { 3913 pr_err("Failed to allocate affinity spec[%d]\n", nr_spec); 3914 ret = -ENOMEM; 3915 goto out_free; 3916 } 3917 dup_mask = NULL; 3918 nr_spec++; 3919 } 3920 3921 ret = record__init_thread_masks_spec(rec, cpus, (const char **)maps_spec, 3922 (const char **)affinity_spec, nr_spec); 3923 3924 out_free: 3925 free(dup_mask); 3926 for (s = 0; s < nr_spec; s++) { 3927 if (maps_spec) 3928 free(maps_spec[s]); 3929 if (affinity_spec) 3930 free(affinity_spec[s]); 3931 } 3932 free(affinity_spec); 3933 free(maps_spec); 3934 3935 return ret; 3936 } 3937 3938 static int record__init_thread_default_masks(struct record *rec, struct perf_cpu_map *cpus) 3939 { 3940 int ret; 3941 3942 ret = record__alloc_thread_masks(rec, 1, cpu__max_cpu().cpu); 3943 if (ret) 3944 return ret; 3945 3946 if (record__mmap_cpu_mask_init(&rec->thread_masks->maps, cpus)) 3947 return -ENODEV; 3948 3949 rec->nr_threads = 1; 3950 3951 return 0; 3952 } 3953 3954 static int record__init_thread_masks(struct record *rec) 3955 { 3956 int ret = 0; 3957 struct perf_cpu_map *cpus = rec->evlist->core.all_cpus; 3958 3959 if (!record__threads_enabled(rec)) 3960 return record__init_thread_default_masks(rec, cpus); 3961 3962 if (evlist__per_thread(rec->evlist)) { 3963 pr_err("--per-thread option is mutually exclusive to parallel streaming mode.\n"); 3964 return -EINVAL; 3965 } 3966 3967 switch (rec->opts.threads_spec) { 3968 case THREAD_SPEC__CPU: 3969 ret = record__init_thread_cpu_masks(rec, cpus); 3970 break; 3971 case THREAD_SPEC__CORE: 3972 ret = record__init_thread_core_masks(rec, cpus); 3973 break; 3974 case THREAD_SPEC__PACKAGE: 3975 ret = record__init_thread_package_masks(rec, cpus); 3976 break; 3977 case THREAD_SPEC__NUMA: 3978 ret = record__init_thread_numa_masks(rec, cpus); 3979 break; 3980 case THREAD_SPEC__USER: 3981 ret = record__init_thread_user_masks(rec, cpus); 3982 break; 3983 default: 3984 break; 3985 } 3986 3987 return ret; 3988 } 3989 3990 int cmd_record(int argc, const char **argv) 3991 { 3992 int err; 3993 struct record *rec = &record; 3994 char errbuf[BUFSIZ]; 3995 3996 setlocale(LC_ALL, ""); 3997 3998 #ifndef HAVE_BPF_SKEL 3999 # define set_nobuild(s, l, m, c) set_option_nobuild(record_options, s, l, m, c) 4000 set_nobuild('\0', "off-cpu", "no BUILD_BPF_SKEL=1", true); 4001 # undef set_nobuild 4002 #endif 4003 4004 /* Disable eager loading of kernel symbols that adds overhead to perf record. */ 4005 symbol_conf.lazy_load_kernel_maps = true; 4006 rec->opts.affinity = PERF_AFFINITY_SYS; 4007 4008 rec->evlist = evlist__new(); 4009 if (rec->evlist == NULL) 4010 return -ENOMEM; 4011 4012 err = perf_config(perf_record_config, rec); 4013 if (err) 4014 return err; 4015 4016 argc = parse_options(argc, argv, record_options, record_usage, 4017 PARSE_OPT_STOP_AT_NON_OPTION); 4018 if (quiet) 4019 perf_quiet_option(); 4020 4021 err = symbol__validate_sym_arguments(); 4022 if (err) 4023 return err; 4024 4025 perf_debuginfod_setup(&record.debuginfod); 4026 4027 /* Make system wide (-a) the default target. */ 4028 if (!argc && target__none(&rec->opts.target)) 4029 rec->opts.target.system_wide = true; 4030 4031 if (nr_cgroups && !rec->opts.target.system_wide) { 4032 usage_with_options_msg(record_usage, record_options, 4033 "cgroup monitoring only available in system-wide mode"); 4034 4035 } 4036 4037 if (rec->buildid_mmap) { 4038 if (!perf_can_record_build_id()) { 4039 pr_err("Failed: no support to record build id in mmap events, update your kernel.\n"); 4040 err = -EINVAL; 4041 goto out_opts; 4042 } 4043 pr_debug("Enabling build id in mmap2 events.\n"); 4044 /* Enable mmap build id synthesizing. */ 4045 symbol_conf.buildid_mmap2 = true; 4046 /* Enable perf_event_attr::build_id bit. */ 4047 rec->opts.build_id = true; 4048 /* Disable build id cache. */ 4049 rec->no_buildid = true; 4050 } 4051 4052 if (rec->opts.record_cgroup && !perf_can_record_cgroup()) { 4053 pr_err("Kernel has no cgroup sampling support.\n"); 4054 err = -EINVAL; 4055 goto out_opts; 4056 } 4057 4058 if (rec->opts.kcore) 4059 rec->opts.text_poke = true; 4060 4061 if (rec->opts.kcore || record__threads_enabled(rec)) 4062 rec->data.is_dir = true; 4063 4064 if (record__threads_enabled(rec)) { 4065 if (rec->opts.affinity != PERF_AFFINITY_SYS) { 4066 pr_err("--affinity option is mutually exclusive to parallel streaming mode.\n"); 4067 goto out_opts; 4068 } 4069 if (record__aio_enabled(rec)) { 4070 pr_err("Asynchronous streaming mode (--aio) is mutually exclusive to parallel streaming mode.\n"); 4071 goto out_opts; 4072 } 4073 } 4074 4075 if (rec->opts.comp_level != 0) { 4076 pr_debug("Compression enabled, disabling build id collection at the end of the session.\n"); 4077 rec->no_buildid = true; 4078 } 4079 4080 if (rec->opts.record_switch_events && 4081 !perf_can_record_switch_events()) { 4082 ui__error("kernel does not support recording context switch events\n"); 4083 parse_options_usage(record_usage, record_options, "switch-events", 0); 4084 err = -EINVAL; 4085 goto out_opts; 4086 } 4087 4088 if (switch_output_setup(rec)) { 4089 parse_options_usage(record_usage, record_options, "switch-output", 0); 4090 err = -EINVAL; 4091 goto out_opts; 4092 } 4093 4094 if (rec->switch_output.time) { 4095 signal(SIGALRM, alarm_sig_handler); 4096 alarm(rec->switch_output.time); 4097 } 4098 4099 if (rec->switch_output.num_files) { 4100 rec->switch_output.filenames = calloc(sizeof(char *), 4101 rec->switch_output.num_files); 4102 if (!rec->switch_output.filenames) { 4103 err = -EINVAL; 4104 goto out_opts; 4105 } 4106 } 4107 4108 if (rec->timestamp_filename && record__threads_enabled(rec)) { 4109 rec->timestamp_filename = false; 4110 pr_warning("WARNING: --timestamp-filename option is not available in parallel streaming mode.\n"); 4111 } 4112 4113 /* 4114 * Allow aliases to facilitate the lookup of symbols for address 4115 * filters. Refer to auxtrace_parse_filters(). 4116 */ 4117 symbol_conf.allow_aliases = true; 4118 4119 symbol__init(NULL); 4120 4121 err = record__auxtrace_init(rec); 4122 if (err) 4123 goto out; 4124 4125 if (dry_run) 4126 goto out; 4127 4128 err = -ENOMEM; 4129 4130 if (rec->no_buildid_cache || rec->no_buildid) { 4131 disable_buildid_cache(); 4132 } else if (rec->switch_output.enabled) { 4133 /* 4134 * In 'perf record --switch-output', disable buildid 4135 * generation by default to reduce data file switching 4136 * overhead. Still generate buildid if they are required 4137 * explicitly using 4138 * 4139 * perf record --switch-output --no-no-buildid \ 4140 * --no-no-buildid-cache 4141 * 4142 * Following code equals to: 4143 * 4144 * if ((rec->no_buildid || !rec->no_buildid_set) && 4145 * (rec->no_buildid_cache || !rec->no_buildid_cache_set)) 4146 * disable_buildid_cache(); 4147 */ 4148 bool disable = true; 4149 4150 if (rec->no_buildid_set && !rec->no_buildid) 4151 disable = false; 4152 if (rec->no_buildid_cache_set && !rec->no_buildid_cache) 4153 disable = false; 4154 if (disable) { 4155 rec->no_buildid = true; 4156 rec->no_buildid_cache = true; 4157 disable_buildid_cache(); 4158 } 4159 } 4160 4161 if (record.opts.overwrite) 4162 record.opts.tail_synthesize = true; 4163 4164 if (rec->evlist->core.nr_entries == 0) { 4165 bool can_profile_kernel = perf_event_paranoid_check(1); 4166 4167 err = parse_event(rec->evlist, can_profile_kernel ? "cycles:P" : "cycles:Pu"); 4168 if (err) 4169 goto out; 4170 } 4171 4172 if (rec->opts.target.tid && !rec->opts.no_inherit_set) 4173 rec->opts.no_inherit = true; 4174 4175 err = target__validate(&rec->opts.target); 4176 if (err) { 4177 target__strerror(&rec->opts.target, err, errbuf, BUFSIZ); 4178 ui__warning("%s\n", errbuf); 4179 } 4180 4181 err = target__parse_uid(&rec->opts.target); 4182 if (err) { 4183 int saved_errno = errno; 4184 4185 target__strerror(&rec->opts.target, err, errbuf, BUFSIZ); 4186 ui__error("%s", errbuf); 4187 4188 err = -saved_errno; 4189 goto out; 4190 } 4191 4192 /* Enable ignoring missing threads when -u/-p option is defined. */ 4193 rec->opts.ignore_missing_thread = rec->opts.target.uid != UINT_MAX || rec->opts.target.pid; 4194 4195 evlist__warn_user_requested_cpus(rec->evlist, rec->opts.target.cpu_list); 4196 4197 if (callchain_param.enabled && callchain_param.record_mode == CALLCHAIN_FP) 4198 arch__add_leaf_frame_record_opts(&rec->opts); 4199 4200 err = -ENOMEM; 4201 if (evlist__create_maps(rec->evlist, &rec->opts.target) < 0) { 4202 if (rec->opts.target.pid != NULL) { 4203 pr_err("Couldn't create thread/CPU maps: %s\n", 4204 errno == ENOENT ? "No such process" : str_error_r(errno, errbuf, sizeof(errbuf))); 4205 goto out; 4206 } 4207 else 4208 usage_with_options(record_usage, record_options); 4209 } 4210 4211 err = auxtrace_record__options(rec->itr, rec->evlist, &rec->opts); 4212 if (err) 4213 goto out; 4214 4215 /* 4216 * We take all buildids when the file contains 4217 * AUX area tracing data because we do not decode the 4218 * trace because it would take too long. 4219 */ 4220 if (rec->opts.full_auxtrace) 4221 rec->buildid_all = true; 4222 4223 if (rec->opts.text_poke) { 4224 err = record__config_text_poke(rec->evlist); 4225 if (err) { 4226 pr_err("record__config_text_poke failed, error %d\n", err); 4227 goto out; 4228 } 4229 } 4230 4231 if (rec->off_cpu) { 4232 err = record__config_off_cpu(rec); 4233 if (err) { 4234 pr_err("record__config_off_cpu failed, error %d\n", err); 4235 goto out; 4236 } 4237 } 4238 4239 if (record_opts__config(&rec->opts)) { 4240 err = -EINVAL; 4241 goto out; 4242 } 4243 4244 err = record__config_tracking_events(rec); 4245 if (err) { 4246 pr_err("record__config_tracking_events failed, error %d\n", err); 4247 goto out; 4248 } 4249 4250 err = record__init_thread_masks(rec); 4251 if (err) { 4252 pr_err("Failed to initialize parallel data streaming masks\n"); 4253 goto out; 4254 } 4255 4256 if (rec->opts.nr_cblocks > nr_cblocks_max) 4257 rec->opts.nr_cblocks = nr_cblocks_max; 4258 pr_debug("nr_cblocks: %d\n", rec->opts.nr_cblocks); 4259 4260 pr_debug("affinity: %s\n", affinity_tags[rec->opts.affinity]); 4261 pr_debug("mmap flush: %d\n", rec->opts.mmap_flush); 4262 4263 if (rec->opts.comp_level > comp_level_max) 4264 rec->opts.comp_level = comp_level_max; 4265 pr_debug("comp level: %d\n", rec->opts.comp_level); 4266 4267 err = __cmd_record(&record, argc, argv); 4268 out: 4269 evlist__delete(rec->evlist); 4270 symbol__exit(); 4271 auxtrace_record__free(rec->itr); 4272 out_opts: 4273 record__free_thread_masks(rec, rec->nr_threads); 4274 rec->nr_threads = 0; 4275 evlist__close_control(rec->opts.ctl_fd, rec->opts.ctl_fd_ack, &rec->opts.ctl_fd_close); 4276 return err; 4277 } 4278 4279 static void snapshot_sig_handler(int sig __maybe_unused) 4280 { 4281 struct record *rec = &record; 4282 4283 hit_auxtrace_snapshot_trigger(rec); 4284 4285 if (switch_output_signal(rec)) 4286 trigger_hit(&switch_output_trigger); 4287 } 4288 4289 static void alarm_sig_handler(int sig __maybe_unused) 4290 { 4291 struct record *rec = &record; 4292 4293 if (switch_output_time(rec)) 4294 trigger_hit(&switch_output_trigger); 4295 } 4296