1 // SPDX-License-Identifier: GPL-2.0-only 2 /* 3 * Copyright (C) 2011, Red Hat Inc, Arnaldo Carvalho de Melo <acme@redhat.com> 4 * 5 * Parts came from builtin-{top,stat,record}.c, see those files for further 6 * copyright notes. 7 */ 8 #include <api/fs/fs.h> 9 #include <errno.h> 10 #include <inttypes.h> 11 #include <poll.h> 12 #include "cpumap.h" 13 #include "util/mmap.h" 14 #include "thread_map.h" 15 #include "target.h" 16 #include "dwarf-regs.h" 17 #include "evlist.h" 18 #include "evsel.h" 19 #include "record.h" 20 #include "debug.h" 21 #include "units.h" 22 #include "bpf_counter.h" 23 #include <internal/lib.h> // page_size 24 #include "affinity.h" 25 #include "../perf.h" 26 #include "asm/bug.h" 27 #include "bpf-event.h" 28 #include "util/event.h" 29 #include "util/string2.h" 30 #include "util/perf_api_probe.h" 31 #include "util/evsel_fprintf.h" 32 #include "util/pmu.h" 33 #include "util/sample.h" 34 #include "util/bpf-filter.h" 35 #include "util/stat.h" 36 #include "util/util.h" 37 #include "util/env.h" 38 #include "util/intel-tpebs.h" 39 #include "util/metricgroup.h" 40 #include "util/strbuf.h" 41 #include <signal.h> 42 #include <unistd.h> 43 #include <sched.h> 44 #include <stdlib.h> 45 46 #include "parse-events.h" 47 #include <subcmd/parse-options.h> 48 49 #include <fcntl.h> 50 #include <sys/ioctl.h> 51 #include <sys/mman.h> 52 #include <sys/prctl.h> 53 #include <sys/timerfd.h> 54 #include <sys/wait.h> 55 56 #include <linux/bitops.h> 57 #include <linux/hash.h> 58 #include <linux/log2.h> 59 #include <linux/err.h> 60 #include <linux/string.h> 61 #include <linux/time64.h> 62 #include <linux/zalloc.h> 63 #include <perf/evlist.h> 64 #include <perf/evsel.h> 65 #include <perf/cpumap.h> 66 #include <perf/mmap.h> 67 68 #include <internal/xyarray.h> 69 70 #ifdef LACKS_SIGQUEUE_PROTOTYPE 71 int sigqueue(pid_t pid, int sig, const union sigval value); 72 #endif 73 74 #define FD(e, x, y) (*(int *)xyarray__entry(e->core.fd, x, y)) 75 #define SID(e, x, y) xyarray__entry(e->core.sample_id, x, y) 76 77 void evlist__init(struct evlist *evlist, struct perf_cpu_map *cpus, 78 struct perf_thread_map *threads) 79 { 80 perf_evlist__init(&evlist->core); 81 perf_evlist__set_maps(&evlist->core, cpus, threads); 82 evlist->workload.pid = -1; 83 evlist->bkw_mmap_state = BKW_MMAP_NOTREADY; 84 evlist->ctl_fd.fd = -1; 85 evlist->ctl_fd.ack = -1; 86 evlist->ctl_fd.pos = -1; 87 evlist->nr_br_cntr = -1; 88 metricgroup__rblist_init(&evlist->metric_events); 89 INIT_LIST_HEAD(&evlist->deferred_samples); 90 } 91 92 struct evlist *evlist__new(void) 93 { 94 struct evlist *evlist = zalloc(sizeof(*evlist)); 95 96 if (evlist != NULL) 97 evlist__init(evlist, NULL, NULL); 98 99 return evlist; 100 } 101 102 struct evlist *evlist__new_default(const struct target *target, bool sample_callchains) 103 { 104 struct evlist *evlist = evlist__new(); 105 bool can_profile_kernel; 106 struct perf_pmu *pmu = NULL; 107 struct evsel *evsel; 108 char buf[256]; 109 int err; 110 111 if (!evlist) 112 return NULL; 113 114 can_profile_kernel = perf_event_paranoid_check(1); 115 116 if (EM_HOST == EM_S390 && sample_callchains) { 117 snprintf(buf, sizeof(buf), "software/%s/%s", 118 target__has_cpu(target) ? "cpu-clock" : "task-clock", 119 can_profile_kernel ? "P" : "Pu"); 120 err = parse_event(evlist, buf); 121 if (err) 122 goto out_err; 123 } else { 124 while ((pmu = perf_pmus__scan_core(pmu)) != NULL) { 125 snprintf(buf, sizeof(buf), "%s/cycles/%s", pmu->name, 126 can_profile_kernel ? "P" : "Pu"); 127 err = parse_event(evlist, buf); 128 if (err) 129 goto out_err; 130 } 131 } 132 133 /* If there is only 1 event a sample identifier isn't necessary. */ 134 if (evlist->core.nr_entries > 1) { 135 evlist__for_each_entry(evlist, evsel) 136 evsel__set_sample_id(evsel, /*can_sample_identifier=*/false); 137 } 138 139 return evlist; 140 out_err: 141 evlist__delete(evlist); 142 return NULL; 143 } 144 145 struct evlist *evlist__new_dummy(void) 146 { 147 struct evlist *evlist = evlist__new(); 148 149 if (evlist && evlist__add_dummy(evlist)) { 150 evlist__delete(evlist); 151 evlist = NULL; 152 } 153 154 return evlist; 155 } 156 157 /** 158 * evlist__set_id_pos - set the positions of event ids. 159 * @evlist: selected event list 160 * 161 * Events with compatible sample types all have the same id_pos 162 * and is_pos. For convenience, put a copy on evlist. 163 */ 164 void evlist__set_id_pos(struct evlist *evlist) 165 { 166 struct evsel *first = evlist__first(evlist); 167 168 evlist->id_pos = first->id_pos; 169 evlist->is_pos = first->is_pos; 170 } 171 172 static void evlist__update_id_pos(struct evlist *evlist) 173 { 174 struct evsel *evsel; 175 176 evlist__for_each_entry(evlist, evsel) 177 evsel__calc_id_pos(evsel); 178 179 evlist__set_id_pos(evlist); 180 } 181 182 static void evlist__purge(struct evlist *evlist) 183 { 184 struct evsel *pos, *n; 185 186 evlist__for_each_entry_safe(evlist, n, pos) { 187 list_del_init(&pos->core.node); 188 pos->evlist = NULL; 189 evsel__delete(pos); 190 } 191 192 evlist->core.nr_entries = 0; 193 } 194 195 void evlist__exit(struct evlist *evlist) 196 { 197 metricgroup__rblist_exit(&evlist->metric_events); 198 event_enable_timer__exit(&evlist->eet); 199 zfree(&evlist->mmap); 200 zfree(&evlist->overwrite_mmap); 201 perf_evlist__exit(&evlist->core); 202 } 203 204 void evlist__delete(struct evlist *evlist) 205 { 206 if (evlist == NULL) 207 return; 208 209 evlist__free_stats(evlist); 210 evlist__munmap(evlist); 211 evlist__close(evlist); 212 evlist__purge(evlist); 213 evlist__exit(evlist); 214 free(evlist); 215 } 216 217 void evlist__add(struct evlist *evlist, struct evsel *entry) 218 { 219 perf_evlist__add(&evlist->core, &entry->core); 220 entry->evlist = evlist; 221 entry->tracking = !entry->core.idx; 222 223 if (evlist->core.nr_entries == 1) 224 evlist__set_id_pos(evlist); 225 } 226 227 void evlist__remove(struct evlist *evlist, struct evsel *evsel) 228 { 229 evsel->evlist = NULL; 230 perf_evlist__remove(&evlist->core, &evsel->core); 231 } 232 233 void evlist__splice_list_tail(struct evlist *evlist, struct list_head *list) 234 { 235 while (!list_empty(list)) { 236 struct evsel *evsel, *temp, *leader = NULL; 237 238 __evlist__for_each_entry_safe(list, temp, evsel) { 239 list_del_init(&evsel->core.node); 240 evlist__add(evlist, evsel); 241 leader = evsel; 242 break; 243 } 244 245 __evlist__for_each_entry_safe(list, temp, evsel) { 246 if (evsel__has_leader(evsel, leader)) { 247 list_del_init(&evsel->core.node); 248 evlist__add(evlist, evsel); 249 } 250 } 251 } 252 } 253 254 int __evlist__set_tracepoints_handlers(struct evlist *evlist, 255 const struct evsel_str_handler *assocs, size_t nr_assocs) 256 { 257 size_t i; 258 int err; 259 260 for (i = 0; i < nr_assocs; i++) { 261 // Adding a handler for an event not in this evlist, just ignore it. 262 struct evsel *evsel = evlist__find_tracepoint_by_name(evlist, assocs[i].name); 263 if (evsel == NULL) 264 continue; 265 266 err = -EEXIST; 267 if (evsel->handler != NULL) 268 goto out; 269 evsel->handler = assocs[i].handler; 270 } 271 272 err = 0; 273 out: 274 return err; 275 } 276 277 static void evlist__set_leader(struct evlist *evlist) 278 { 279 perf_evlist__set_leader(&evlist->core); 280 } 281 282 static struct evsel *evlist__dummy_event(struct evlist *evlist) 283 { 284 struct perf_event_attr attr = { 285 .type = PERF_TYPE_SOFTWARE, 286 .config = PERF_COUNT_SW_DUMMY, 287 .size = sizeof(attr), /* to capture ABI version */ 288 /* Avoid frequency mode for dummy events to avoid associated timers. */ 289 .freq = 0, 290 .sample_period = 1, 291 }; 292 293 return evsel__new_idx(&attr, evlist->core.nr_entries); 294 } 295 296 int evlist__add_dummy(struct evlist *evlist) 297 { 298 struct evsel *evsel = evlist__dummy_event(evlist); 299 300 if (evsel == NULL) 301 return -ENOMEM; 302 303 evlist__add(evlist, evsel); 304 return 0; 305 } 306 307 struct evsel *evlist__add_aux_dummy(struct evlist *evlist, bool system_wide) 308 { 309 struct evsel *evsel = evlist__dummy_event(evlist); 310 311 if (!evsel) 312 return NULL; 313 314 evsel->core.attr.exclude_kernel = 1; 315 evsel->core.attr.exclude_guest = 1; 316 evsel->core.attr.exclude_hv = 1; 317 evsel->core.system_wide = system_wide; 318 evsel->no_aux_samples = true; 319 evsel->name = strdup("dummy:u"); 320 321 evlist__add(evlist, evsel); 322 return evsel; 323 } 324 325 #ifdef HAVE_LIBTRACEEVENT 326 struct evsel *evlist__add_sched_switch(struct evlist *evlist, bool system_wide) 327 { 328 struct evsel *evsel = evsel__newtp_idx("sched", "sched_switch", 0, 329 /*format=*/true); 330 331 if (IS_ERR(evsel)) 332 return evsel; 333 334 evsel__set_sample_bit(evsel, CPU); 335 evsel__set_sample_bit(evsel, TIME); 336 337 evsel->core.system_wide = system_wide; 338 evsel->no_aux_samples = true; 339 340 evlist__add(evlist, evsel); 341 return evsel; 342 } 343 #endif 344 345 struct evsel *evlist__find_tracepoint_by_name(struct evlist *evlist, const char *name) 346 { 347 struct evsel *evsel; 348 349 evlist__for_each_entry(evlist, evsel) { 350 if ((evsel->core.attr.type == PERF_TYPE_TRACEPOINT) && 351 (strcmp(evsel->name, name) == 0)) 352 return evsel; 353 } 354 355 return NULL; 356 } 357 358 #ifdef HAVE_LIBTRACEEVENT 359 int evlist__add_newtp(struct evlist *evlist, const char *sys, const char *name, void *handler) 360 { 361 struct evsel *evsel = evsel__newtp(sys, name); 362 363 if (IS_ERR(evsel)) 364 return -1; 365 366 evsel->handler = handler; 367 evlist__add(evlist, evsel); 368 return 0; 369 } 370 #endif 371 372 /* 373 * Should sched_setaffinity be used with evlist__for_each_cpu? Determine if 374 * migrating the thread will avoid possibly numerous IPIs. 375 */ 376 static bool evlist__use_affinity(struct evlist *evlist) 377 { 378 struct evsel *pos; 379 struct perf_cpu_map *used_cpus = NULL; 380 bool ret = false; 381 382 if (evlist->no_affinity || !evlist->core.user_requested_cpus || 383 cpu_map__is_dummy(evlist->core.user_requested_cpus)) 384 return false; 385 386 evlist__for_each_entry(evlist, pos) { 387 struct perf_cpu_map *intersect; 388 389 if (!perf_pmu__benefits_from_affinity(pos->pmu)) 390 continue; 391 392 if (evsel__is_dummy_event(pos)) { 393 /* 394 * The dummy event is opened on all CPUs so assume >1 395 * event with shared CPUs. 396 */ 397 ret = true; 398 break; 399 } 400 if (evsel__is_retire_lat(pos)) { 401 /* 402 * Retirement latency events are similar to tool ones in 403 * their implementation, and so don't require affinity. 404 */ 405 continue; 406 } 407 if (perf_cpu_map__is_empty(used_cpus)) { 408 /* First benefitting event, we want >1 on a common CPU. */ 409 used_cpus = perf_cpu_map__get(pos->core.cpus); 410 continue; 411 } 412 if ((pos->core.attr.read_format & PERF_FORMAT_GROUP) && 413 evsel__leader(pos) != pos) { 414 /* Skip members of the same sample group. */ 415 continue; 416 } 417 intersect = perf_cpu_map__intersect(used_cpus, pos->core.cpus); 418 if (!perf_cpu_map__is_empty(intersect)) { 419 /* >1 event with shared CPUs. */ 420 perf_cpu_map__put(intersect); 421 ret = true; 422 break; 423 } 424 perf_cpu_map__put(intersect); 425 perf_cpu_map__merge(&used_cpus, pos->core.cpus); 426 } 427 perf_cpu_map__put(used_cpus); 428 return ret; 429 } 430 431 void evlist_cpu_iterator__init(struct evlist_cpu_iterator *itr, struct evlist *evlist) 432 { 433 *itr = (struct evlist_cpu_iterator){ 434 .container = evlist, 435 .evsel = NULL, 436 .cpu_map_idx = 0, 437 .evlist_cpu_map_idx = 0, 438 .evlist_cpu_map_nr = perf_cpu_map__nr(evlist->core.all_cpus), 439 .cpu = (struct perf_cpu){ .cpu = -1}, 440 .affinity = NULL, 441 }; 442 443 if (evlist__empty(evlist)) { 444 /* Ensure the empty list doesn't iterate. */ 445 itr->evlist_cpu_map_idx = itr->evlist_cpu_map_nr; 446 return; 447 } 448 449 if (evlist__use_affinity(evlist)) { 450 if (affinity__setup(&itr->saved_affinity) == 0) 451 itr->affinity = &itr->saved_affinity; 452 } 453 itr->evsel = evlist__first(evlist); 454 itr->cpu = perf_cpu_map__cpu(evlist->core.all_cpus, 0); 455 if (itr->affinity) 456 affinity__set(itr->affinity, itr->cpu.cpu); 457 itr->cpu_map_idx = perf_cpu_map__idx(itr->evsel->core.cpus, itr->cpu); 458 /* 459 * If this CPU isn't in the evsel's cpu map then advance 460 * through the list. 461 */ 462 if (itr->cpu_map_idx == -1) 463 evlist_cpu_iterator__next(itr); 464 } 465 466 void evlist_cpu_iterator__exit(struct evlist_cpu_iterator *itr) 467 { 468 if (!itr->affinity) 469 return; 470 471 affinity__cleanup(itr->affinity); 472 itr->affinity = NULL; 473 } 474 475 void evlist_cpu_iterator__next(struct evlist_cpu_iterator *evlist_cpu_itr) 476 { 477 while (evlist_cpu_itr->evsel != evlist__last(evlist_cpu_itr->container)) { 478 evlist_cpu_itr->evsel = evsel__next(evlist_cpu_itr->evsel); 479 evlist_cpu_itr->cpu_map_idx = 480 perf_cpu_map__idx(evlist_cpu_itr->evsel->core.cpus, 481 evlist_cpu_itr->cpu); 482 if (evlist_cpu_itr->cpu_map_idx != -1) 483 return; 484 } 485 evlist_cpu_itr->evlist_cpu_map_idx++; 486 if (evlist_cpu_itr->evlist_cpu_map_idx < evlist_cpu_itr->evlist_cpu_map_nr) { 487 evlist_cpu_itr->evsel = evlist__first(evlist_cpu_itr->container); 488 evlist_cpu_itr->cpu = 489 perf_cpu_map__cpu(evlist_cpu_itr->container->core.all_cpus, 490 evlist_cpu_itr->evlist_cpu_map_idx); 491 if (evlist_cpu_itr->affinity) 492 affinity__set(evlist_cpu_itr->affinity, evlist_cpu_itr->cpu.cpu); 493 evlist_cpu_itr->cpu_map_idx = 494 perf_cpu_map__idx(evlist_cpu_itr->evsel->core.cpus, 495 evlist_cpu_itr->cpu); 496 /* 497 * If this CPU isn't in the evsel's cpu map then advance through 498 * the list. 499 */ 500 if (evlist_cpu_itr->cpu_map_idx == -1) 501 evlist_cpu_iterator__next(evlist_cpu_itr); 502 } else { 503 evlist_cpu_iterator__exit(evlist_cpu_itr); 504 } 505 } 506 507 static int evsel__strcmp(struct evsel *pos, char *evsel_name) 508 { 509 if (!evsel_name) 510 return 0; 511 if (evsel__is_dummy_event(pos)) 512 return 1; 513 return !evsel__name_is(pos, evsel_name); 514 } 515 516 static int evlist__is_enabled(struct evlist *evlist) 517 { 518 struct evsel *pos; 519 520 evlist__for_each_entry(evlist, pos) { 521 if (!evsel__is_group_leader(pos) || !pos->core.fd) 522 continue; 523 /* If at least one event is enabled, evlist is enabled. */ 524 if (!pos->disabled) 525 return true; 526 } 527 return false; 528 } 529 530 static void __evlist__disable(struct evlist *evlist, char *evsel_name, bool excl_dummy) 531 { 532 struct evsel *pos, *member; 533 struct evlist_cpu_iterator evlist_cpu_itr; 534 bool has_imm = false; 535 536 /* Disable 'immediate' events last */ 537 for (int imm = 0; imm <= 1; imm++) { 538 evlist__for_each_cpu(evlist_cpu_itr, evlist) { 539 pos = evlist_cpu_itr.evsel; 540 if (evsel__strcmp(pos, evsel_name)) 541 continue; 542 if (pos->disabled || !evsel__is_group_leader(pos) || !pos->core.fd) 543 continue; 544 if (excl_dummy && evsel__is_dummy_event(pos)) 545 continue; 546 if (pos->immediate) 547 has_imm = true; 548 if (pos->immediate != imm) 549 continue; 550 evsel__disable_cpu(pos, evlist_cpu_itr.cpu_map_idx); 551 } 552 if (!has_imm) 553 break; 554 } 555 556 evlist__for_each_entry(evlist, pos) { 557 if (evsel__strcmp(pos, evsel_name)) 558 continue; 559 if (!evsel__is_group_leader(pos) || !pos->core.fd) 560 continue; 561 if (excl_dummy && evsel__is_dummy_event(pos)) 562 continue; 563 pos->disabled = true; 564 565 for_each_group_member(member, pos) 566 member->disabled = true; 567 } 568 569 /* 570 * If we disabled only single event, we need to check 571 * the enabled state of the evlist manually. 572 */ 573 if (evsel_name) 574 evlist->enabled = evlist__is_enabled(evlist); 575 else 576 evlist->enabled = false; 577 } 578 579 void evlist__disable(struct evlist *evlist) 580 { 581 __evlist__disable(evlist, NULL, false); 582 } 583 584 void evlist__disable_non_dummy(struct evlist *evlist) 585 { 586 __evlist__disable(evlist, NULL, true); 587 } 588 589 void evlist__disable_evsel(struct evlist *evlist, char *evsel_name) 590 { 591 __evlist__disable(evlist, evsel_name, false); 592 } 593 594 static void __evlist__enable(struct evlist *evlist, char *evsel_name, bool excl_dummy) 595 { 596 struct evsel *pos, *member; 597 struct evlist_cpu_iterator evlist_cpu_itr; 598 599 evlist__for_each_cpu(evlist_cpu_itr, evlist) { 600 pos = evlist_cpu_itr.evsel; 601 if (evsel__strcmp(pos, evsel_name)) 602 continue; 603 if (!evsel__is_group_leader(pos) || !pos->core.fd) 604 continue; 605 if (excl_dummy && evsel__is_dummy_event(pos)) 606 continue; 607 evsel__enable_cpu(pos, evlist_cpu_itr.cpu_map_idx); 608 } 609 evlist__for_each_entry(evlist, pos) { 610 if (evsel__strcmp(pos, evsel_name)) 611 continue; 612 if (!evsel__is_group_leader(pos) || !pos->core.fd) 613 continue; 614 if (excl_dummy && evsel__is_dummy_event(pos)) 615 continue; 616 pos->disabled = false; 617 618 for_each_group_member(member, pos) 619 member->disabled = false; 620 } 621 622 /* 623 * Even single event sets the 'enabled' for evlist, 624 * so the toggle can work properly and toggle to 625 * 'disabled' state. 626 */ 627 evlist->enabled = true; 628 } 629 630 void evlist__enable(struct evlist *evlist) 631 { 632 __evlist__enable(evlist, NULL, false); 633 } 634 635 void evlist__enable_non_dummy(struct evlist *evlist) 636 { 637 __evlist__enable(evlist, NULL, true); 638 } 639 640 void evlist__enable_evsel(struct evlist *evlist, char *evsel_name) 641 { 642 __evlist__enable(evlist, evsel_name, false); 643 } 644 645 void evlist__toggle_enable(struct evlist *evlist) 646 { 647 (evlist->enabled ? evlist__disable : evlist__enable)(evlist); 648 } 649 650 int evlist__add_pollfd(struct evlist *evlist, int fd) 651 { 652 return perf_evlist__add_pollfd(&evlist->core, fd, NULL, POLLIN, fdarray_flag__default); 653 } 654 655 int evlist__filter_pollfd(struct evlist *evlist, short revents_and_mask) 656 { 657 return perf_evlist__filter_pollfd(&evlist->core, revents_and_mask); 658 } 659 660 #ifdef HAVE_EVENTFD_SUPPORT 661 int evlist__add_wakeup_eventfd(struct evlist *evlist, int fd) 662 { 663 return perf_evlist__add_pollfd(&evlist->core, fd, NULL, POLLIN, 664 fdarray_flag__nonfilterable | 665 fdarray_flag__non_perf_event); 666 } 667 #endif 668 669 int evlist__poll(struct evlist *evlist, int timeout) 670 { 671 return perf_evlist__poll(&evlist->core, timeout); 672 } 673 674 struct perf_sample_id *evlist__id2sid(struct evlist *evlist, u64 id) 675 { 676 struct hlist_head *head; 677 struct perf_sample_id *sid; 678 int hash; 679 680 hash = hash_64(id, PERF_EVLIST__HLIST_BITS); 681 head = &evlist->core.heads[hash]; 682 683 hlist_for_each_entry(sid, head, node) 684 if (sid->id == id) 685 return sid; 686 687 return NULL; 688 } 689 690 struct evsel *evlist__id2evsel(struct evlist *evlist, u64 id) 691 { 692 struct perf_sample_id *sid; 693 694 if (evlist->core.nr_entries == 1 || !id) 695 return evlist__first(evlist); 696 697 sid = evlist__id2sid(evlist, id); 698 if (sid) 699 return container_of(sid->evsel, struct evsel, core); 700 701 if (!evlist__sample_id_all(evlist)) 702 return evlist__first(evlist); 703 704 return NULL; 705 } 706 707 struct evsel *evlist__id2evsel_strict(struct evlist *evlist, u64 id) 708 { 709 struct perf_sample_id *sid; 710 711 if (!id) 712 return NULL; 713 714 sid = evlist__id2sid(evlist, id); 715 if (sid) 716 return container_of(sid->evsel, struct evsel, core); 717 718 return NULL; 719 } 720 721 static int evlist__event2id(struct evlist *evlist, union perf_event *event, u64 *id) 722 { 723 const __u64 *array = event->sample.array; 724 ssize_t n; 725 726 n = (event->header.size - sizeof(event->header)) >> 3; 727 728 if (event->header.type == PERF_RECORD_SAMPLE) { 729 if (evlist->id_pos >= n) 730 return -1; 731 *id = array[evlist->id_pos]; 732 } else { 733 if (evlist->is_pos > n) 734 return -1; 735 n -= evlist->is_pos; 736 *id = array[n]; 737 } 738 return 0; 739 } 740 741 struct evsel *evlist__event2evsel(struct evlist *evlist, union perf_event *event) 742 { 743 struct evsel *first = evlist__first(evlist); 744 struct hlist_head *head; 745 struct perf_sample_id *sid; 746 int hash; 747 u64 id; 748 749 if (evlist->core.nr_entries == 1) 750 return first; 751 752 if (!first->core.attr.sample_id_all && 753 event->header.type != PERF_RECORD_SAMPLE) 754 return first; 755 756 if (evlist__event2id(evlist, event, &id)) 757 return NULL; 758 759 /* Synthesized events have an id of zero */ 760 if (!id) 761 return first; 762 763 hash = hash_64(id, PERF_EVLIST__HLIST_BITS); 764 head = &evlist->core.heads[hash]; 765 766 hlist_for_each_entry(sid, head, node) { 767 if (sid->id == id) 768 return container_of(sid->evsel, struct evsel, core); 769 } 770 return NULL; 771 } 772 773 static int evlist__set_paused(struct evlist *evlist, bool value) 774 { 775 int i; 776 777 if (!evlist->overwrite_mmap) 778 return 0; 779 780 for (i = 0; i < evlist->core.nr_mmaps; i++) { 781 int fd = evlist->overwrite_mmap[i].core.fd; 782 int err; 783 784 if (fd < 0) 785 continue; 786 err = ioctl(fd, PERF_EVENT_IOC_PAUSE_OUTPUT, value ? 1 : 0); 787 if (err) 788 return err; 789 } 790 return 0; 791 } 792 793 static int evlist__pause(struct evlist *evlist) 794 { 795 return evlist__set_paused(evlist, true); 796 } 797 798 static int evlist__resume(struct evlist *evlist) 799 { 800 return evlist__set_paused(evlist, false); 801 } 802 803 static void evlist__munmap_nofree(struct evlist *evlist) 804 { 805 int i; 806 807 if (evlist->mmap) 808 for (i = 0; i < evlist->core.nr_mmaps; i++) 809 perf_mmap__munmap(&evlist->mmap[i].core); 810 811 if (evlist->overwrite_mmap) 812 for (i = 0; i < evlist->core.nr_mmaps; i++) 813 perf_mmap__munmap(&evlist->overwrite_mmap[i].core); 814 } 815 816 void evlist__munmap(struct evlist *evlist) 817 { 818 evlist__munmap_nofree(evlist); 819 zfree(&evlist->mmap); 820 zfree(&evlist->overwrite_mmap); 821 } 822 823 static void perf_mmap__unmap_cb(struct perf_mmap *map) 824 { 825 struct mmap *m = container_of(map, struct mmap, core); 826 827 mmap__munmap(m); 828 } 829 830 static struct mmap *evlist__alloc_mmap(struct evlist *evlist, 831 bool overwrite) 832 { 833 int i; 834 struct mmap *map = calloc(evlist->core.nr_mmaps, sizeof(struct mmap)); 835 836 if (!map) 837 return NULL; 838 839 for (i = 0; i < evlist->core.nr_mmaps; i++) { 840 struct perf_mmap *prev = i ? &map[i - 1].core : NULL; 841 842 /* 843 * When the perf_mmap() call is made we grab one refcount, plus 844 * one extra to let perf_mmap__consume() get the last 845 * events after all real references (perf_mmap__get()) are 846 * dropped. 847 * 848 * Each PERF_EVENT_IOC_SET_OUTPUT points to this mmap and 849 * thus does perf_mmap__get() on it. 850 */ 851 perf_mmap__init(&map[i].core, prev, overwrite, perf_mmap__unmap_cb); 852 } 853 854 return map; 855 } 856 857 static void 858 perf_evlist__mmap_cb_idx(struct perf_evlist *_evlist, 859 struct perf_evsel *_evsel, 860 struct perf_mmap_param *_mp, 861 int idx) 862 { 863 struct evlist *evlist = container_of(_evlist, struct evlist, core); 864 struct mmap_params *mp = container_of(_mp, struct mmap_params, core); 865 struct evsel *evsel = container_of(_evsel, struct evsel, core); 866 867 auxtrace_mmap_params__set_idx(&mp->auxtrace_mp, evlist, evsel, idx); 868 } 869 870 static struct perf_mmap* 871 perf_evlist__mmap_cb_get(struct perf_evlist *_evlist, bool overwrite, int idx) 872 { 873 struct evlist *evlist = container_of(_evlist, struct evlist, core); 874 struct mmap *maps; 875 876 maps = overwrite ? evlist->overwrite_mmap : evlist->mmap; 877 878 if (!maps) { 879 maps = evlist__alloc_mmap(evlist, overwrite); 880 if (!maps) 881 return NULL; 882 883 if (overwrite) { 884 evlist->overwrite_mmap = maps; 885 if (evlist->bkw_mmap_state == BKW_MMAP_NOTREADY) 886 evlist__toggle_bkw_mmap(evlist, BKW_MMAP_RUNNING); 887 } else { 888 evlist->mmap = maps; 889 } 890 } 891 892 return &maps[idx].core; 893 } 894 895 static int 896 perf_evlist__mmap_cb_mmap(struct perf_mmap *_map, struct perf_mmap_param *_mp, 897 int output, struct perf_cpu cpu) 898 { 899 struct mmap *map = container_of(_map, struct mmap, core); 900 struct mmap_params *mp = container_of(_mp, struct mmap_params, core); 901 902 return mmap__mmap(map, mp, output, cpu); 903 } 904 905 unsigned long perf_event_mlock_kb_in_pages(void) 906 { 907 unsigned long pages; 908 int max; 909 910 if (sysctl__read_int("kernel/perf_event_mlock_kb", &max) < 0) { 911 /* 912 * Pick a once upon a time good value, i.e. things look 913 * strange since we can't read a sysctl value, but lets not 914 * die yet... 915 */ 916 max = 512; 917 } else { 918 max -= (page_size / 1024); 919 } 920 921 pages = (max * 1024) / page_size; 922 if (!is_power_of_2(pages)) 923 pages = rounddown_pow_of_two(pages); 924 925 return pages; 926 } 927 928 size_t evlist__mmap_size(unsigned long pages) 929 { 930 if (pages == UINT_MAX) 931 pages = perf_event_mlock_kb_in_pages(); 932 else if (!is_power_of_2(pages)) 933 return 0; 934 935 return (pages + 1) * page_size; 936 } 937 938 static long parse_pages_arg(const char *str, unsigned long min, 939 unsigned long max) 940 { 941 unsigned long pages, val; 942 static struct parse_tag tags[] = { 943 { .tag = 'B', .mult = 1 }, 944 { .tag = 'K', .mult = 1 << 10 }, 945 { .tag = 'M', .mult = 1 << 20 }, 946 { .tag = 'G', .mult = 1 << 30 }, 947 { .tag = 0 }, 948 }; 949 950 if (str == NULL) 951 return -EINVAL; 952 953 val = parse_tag_value(str, tags); 954 if (val != (unsigned long) -1) { 955 /* we got file size value */ 956 pages = PERF_ALIGN(val, page_size) / page_size; 957 } else { 958 /* we got pages count value */ 959 char *eptr; 960 pages = strtoul(str, &eptr, 10); 961 if (*eptr != '\0') 962 return -EINVAL; 963 } 964 965 if (pages == 0 && min == 0) { 966 /* leave number of pages at 0 */ 967 } else if (!is_power_of_2(pages)) { 968 char buf[100]; 969 970 /* round pages up to next power of 2 */ 971 pages = roundup_pow_of_two(pages); 972 if (!pages) 973 return -EINVAL; 974 975 unit_number__scnprintf(buf, sizeof(buf), pages * page_size); 976 pr_info("rounding mmap pages size to %s (%lu pages)\n", 977 buf, pages); 978 } 979 980 if (pages > max) 981 return -EINVAL; 982 983 return pages; 984 } 985 986 int __evlist__parse_mmap_pages(unsigned int *mmap_pages, const char *str) 987 { 988 unsigned long max = UINT_MAX; 989 long pages; 990 991 if (max > SIZE_MAX / page_size) 992 max = SIZE_MAX / page_size; 993 994 pages = parse_pages_arg(str, 1, max); 995 if (pages < 0) { 996 pr_err("Invalid argument for --mmap_pages/-m\n"); 997 return -1; 998 } 999 1000 *mmap_pages = pages; 1001 return 0; 1002 } 1003 1004 int evlist__parse_mmap_pages(const struct option *opt, const char *str, int unset __maybe_unused) 1005 { 1006 return __evlist__parse_mmap_pages(opt->value, str); 1007 } 1008 1009 /** 1010 * evlist__mmap_ex - Create mmaps to receive events. 1011 * @evlist: list of events 1012 * @pages: map length in pages 1013 * @overwrite: overwrite older events? 1014 * @auxtrace_pages - auxtrace map length in pages 1015 * @auxtrace_overwrite - overwrite older auxtrace data? 1016 * 1017 * If @overwrite is %false the user needs to signal event consumption using 1018 * perf_mmap__write_tail(). Using evlist__mmap_read() does this 1019 * automatically. 1020 * 1021 * Similarly, if @auxtrace_overwrite is %false the user needs to signal data 1022 * consumption using auxtrace_mmap__write_tail(). 1023 * 1024 * Return: %0 on success, negative error code otherwise. 1025 */ 1026 int evlist__mmap_ex(struct evlist *evlist, unsigned int pages, 1027 unsigned int auxtrace_pages, 1028 bool auxtrace_overwrite, int nr_cblocks, int affinity, int flush, 1029 int comp_level) 1030 { 1031 /* 1032 * Delay setting mp.prot: set it before calling perf_mmap__mmap. 1033 * Its value is decided by evsel's write_backward. 1034 * So &mp should not be passed through const pointer. 1035 */ 1036 struct mmap_params mp = { 1037 .nr_cblocks = nr_cblocks, 1038 .affinity = affinity, 1039 .flush = flush, 1040 .comp_level = comp_level 1041 }; 1042 struct perf_evlist_mmap_ops ops = { 1043 .idx = perf_evlist__mmap_cb_idx, 1044 .get = perf_evlist__mmap_cb_get, 1045 .mmap = perf_evlist__mmap_cb_mmap, 1046 }; 1047 1048 evlist->core.mmap_len = evlist__mmap_size(pages); 1049 pr_debug("mmap size %zuB\n", evlist->core.mmap_len); 1050 1051 auxtrace_mmap_params__init(&mp.auxtrace_mp, evlist->core.mmap_len, 1052 auxtrace_pages, auxtrace_overwrite); 1053 1054 return perf_evlist__mmap_ops(&evlist->core, &ops, &mp.core); 1055 } 1056 1057 int evlist__mmap(struct evlist *evlist, unsigned int pages) 1058 { 1059 return evlist__mmap_ex(evlist, pages, 0, false, 0, PERF_AFFINITY_SYS, 1, 0); 1060 } 1061 1062 int evlist__create_maps(struct evlist *evlist, struct target *target) 1063 { 1064 bool all_threads = (target->per_thread && target->system_wide); 1065 struct perf_cpu_map *cpus; 1066 struct perf_thread_map *threads; 1067 1068 /* 1069 * If specify '-a' and '--per-thread' to perf record, perf record 1070 * will override '--per-thread'. target->per_thread = false and 1071 * target->system_wide = true. 1072 * 1073 * If specify '--per-thread' only to perf record, 1074 * target->per_thread = true and target->system_wide = false. 1075 * 1076 * So target->per_thread && target->system_wide is false. 1077 * For perf record, thread_map__new_str doesn't call 1078 * thread_map__new_all_cpus. That will keep perf record's 1079 * current behavior. 1080 * 1081 * For perf stat, it allows the case that target->per_thread and 1082 * target->system_wide are all true. It means to collect system-wide 1083 * per-thread data. thread_map__new_str will call 1084 * thread_map__new_all_cpus to enumerate all threads. 1085 */ 1086 threads = thread_map__new_str(target->pid, target->tid, all_threads); 1087 1088 if (!threads) 1089 return -1; 1090 1091 if (target__uses_dummy_map(target) && !evlist__has_bpf_output(evlist)) 1092 cpus = perf_cpu_map__new_any_cpu(); 1093 else 1094 cpus = perf_cpu_map__new(target->cpu_list); 1095 1096 if (!cpus) 1097 goto out_delete_threads; 1098 1099 evlist->core.has_user_cpus = !!target->cpu_list; 1100 1101 perf_evlist__set_maps(&evlist->core, cpus, threads); 1102 1103 /* as evlist now has references, put count here */ 1104 perf_cpu_map__put(cpus); 1105 perf_thread_map__put(threads); 1106 1107 return 0; 1108 1109 out_delete_threads: 1110 perf_thread_map__put(threads); 1111 return -1; 1112 } 1113 1114 int evlist__apply_filters(struct evlist *evlist, struct evsel **err_evsel, 1115 struct target *target) 1116 { 1117 struct evsel *evsel; 1118 int err = 0; 1119 1120 evlist__for_each_entry(evlist, evsel) { 1121 /* 1122 * filters only work for tracepoint event, which doesn't have cpu limit. 1123 * So evlist and evsel should always be same. 1124 */ 1125 if (evsel->filter) { 1126 err = perf_evsel__apply_filter(&evsel->core, evsel->filter); 1127 if (err) { 1128 *err_evsel = evsel; 1129 break; 1130 } 1131 } 1132 1133 /* 1134 * non-tracepoint events can have BPF filters. 1135 */ 1136 if (!list_empty(&evsel->bpf_filters)) { 1137 err = perf_bpf_filter__prepare(evsel, target); 1138 if (err) { 1139 *err_evsel = evsel; 1140 break; 1141 } 1142 } 1143 } 1144 1145 return err; 1146 } 1147 1148 int evlist__set_tp_filter(struct evlist *evlist, const char *filter) 1149 { 1150 struct evsel *evsel; 1151 int err = 0; 1152 1153 if (filter == NULL) 1154 return -1; 1155 1156 evlist__for_each_entry(evlist, evsel) { 1157 if (evsel->core.attr.type != PERF_TYPE_TRACEPOINT) 1158 continue; 1159 1160 err = evsel__set_filter(evsel, filter); 1161 if (err) 1162 break; 1163 } 1164 1165 return err; 1166 } 1167 1168 int evlist__append_tp_filter(struct evlist *evlist, const char *filter) 1169 { 1170 struct evsel *evsel; 1171 int err = 0; 1172 1173 if (filter == NULL) 1174 return -1; 1175 1176 evlist__for_each_entry(evlist, evsel) { 1177 if (evsel->core.attr.type != PERF_TYPE_TRACEPOINT) 1178 continue; 1179 1180 err = evsel__append_tp_filter(evsel, filter); 1181 if (err) 1182 break; 1183 } 1184 1185 return err; 1186 } 1187 1188 char *asprintf__tp_filter_pids(size_t npids, pid_t *pids) 1189 { 1190 char *filter; 1191 size_t i; 1192 1193 for (i = 0; i < npids; ++i) { 1194 if (i == 0) { 1195 if (asprintf(&filter, "common_pid != %d", pids[i]) < 0) 1196 return NULL; 1197 } else { 1198 char *tmp; 1199 1200 if (asprintf(&tmp, "%s && common_pid != %d", filter, pids[i]) < 0) 1201 goto out_free; 1202 1203 free(filter); 1204 filter = tmp; 1205 } 1206 } 1207 1208 return filter; 1209 out_free: 1210 free(filter); 1211 return NULL; 1212 } 1213 1214 int evlist__set_tp_filter_pids(struct evlist *evlist, size_t npids, pid_t *pids) 1215 { 1216 char *filter = asprintf__tp_filter_pids(npids, pids); 1217 int ret = evlist__set_tp_filter(evlist, filter); 1218 1219 free(filter); 1220 return ret; 1221 } 1222 1223 int evlist__append_tp_filter_pids(struct evlist *evlist, size_t npids, pid_t *pids) 1224 { 1225 char *filter = asprintf__tp_filter_pids(npids, pids); 1226 int ret = evlist__append_tp_filter(evlist, filter); 1227 1228 free(filter); 1229 return ret; 1230 } 1231 1232 int evlist__append_tp_filter_pid(struct evlist *evlist, pid_t pid) 1233 { 1234 return evlist__append_tp_filter_pids(evlist, 1, &pid); 1235 } 1236 1237 bool evlist__valid_sample_type(struct evlist *evlist) 1238 { 1239 struct evsel *pos; 1240 1241 if (evlist->core.nr_entries == 1) 1242 return true; 1243 1244 if (evlist->id_pos < 0 || evlist->is_pos < 0) 1245 return false; 1246 1247 evlist__for_each_entry(evlist, pos) { 1248 if (pos->id_pos != evlist->id_pos || 1249 pos->is_pos != evlist->is_pos) 1250 return false; 1251 } 1252 1253 return true; 1254 } 1255 1256 u64 __evlist__combined_sample_type(struct evlist *evlist) 1257 { 1258 struct evsel *evsel; 1259 1260 if (evlist->combined_sample_type) 1261 return evlist->combined_sample_type; 1262 1263 evlist__for_each_entry(evlist, evsel) 1264 evlist->combined_sample_type |= evsel->core.attr.sample_type; 1265 1266 return evlist->combined_sample_type; 1267 } 1268 1269 u64 evlist__combined_sample_type(struct evlist *evlist) 1270 { 1271 evlist->combined_sample_type = 0; 1272 return __evlist__combined_sample_type(evlist); 1273 } 1274 1275 u64 evlist__combined_branch_type(struct evlist *evlist) 1276 { 1277 struct evsel *evsel; 1278 u64 branch_type = 0; 1279 1280 evlist__for_each_entry(evlist, evsel) 1281 branch_type |= evsel->core.attr.branch_sample_type; 1282 return branch_type; 1283 } 1284 1285 static struct evsel * 1286 evlist__find_dup_event_from_prev(struct evlist *evlist, struct evsel *event) 1287 { 1288 struct evsel *pos; 1289 1290 evlist__for_each_entry(evlist, pos) { 1291 if (event == pos) 1292 break; 1293 if ((pos->core.attr.branch_sample_type & PERF_SAMPLE_BRANCH_COUNTERS) && 1294 !strcmp(pos->name, event->name)) 1295 return pos; 1296 } 1297 return NULL; 1298 } 1299 1300 #define MAX_NR_ABBR_NAME (26 * 11) 1301 1302 /* 1303 * The abbr name is from A to Z9. If the number of event 1304 * which requires the branch counter > MAX_NR_ABBR_NAME, 1305 * return NA. 1306 */ 1307 static void evlist__new_abbr_name(char *name) 1308 { 1309 static int idx; 1310 int i = idx / 26; 1311 1312 if (idx >= MAX_NR_ABBR_NAME) { 1313 name[0] = 'N'; 1314 name[1] = 'A'; 1315 name[2] = '\0'; 1316 return; 1317 } 1318 1319 name[0] = 'A' + (idx % 26); 1320 1321 if (!i) 1322 name[1] = '\0'; 1323 else { 1324 name[1] = '0' + i - 1; 1325 name[2] = '\0'; 1326 } 1327 1328 idx++; 1329 } 1330 1331 void evlist__update_br_cntr(struct evlist *evlist) 1332 { 1333 struct evsel *evsel, *dup; 1334 int i = 0; 1335 1336 evlist__for_each_entry(evlist, evsel) { 1337 if (evsel->core.attr.branch_sample_type & PERF_SAMPLE_BRANCH_COUNTERS) { 1338 evsel->br_cntr_idx = i++; 1339 evsel__leader(evsel)->br_cntr_nr++; 1340 1341 dup = evlist__find_dup_event_from_prev(evlist, evsel); 1342 if (dup) 1343 memcpy(evsel->abbr_name, dup->abbr_name, 3 * sizeof(char)); 1344 else 1345 evlist__new_abbr_name(evsel->abbr_name); 1346 } 1347 } 1348 evlist->nr_br_cntr = i; 1349 } 1350 1351 bool evlist__valid_read_format(struct evlist *evlist) 1352 { 1353 struct evsel *first = evlist__first(evlist), *pos = first; 1354 u64 read_format = first->core.attr.read_format; 1355 u64 sample_type = first->core.attr.sample_type; 1356 1357 evlist__for_each_entry(evlist, pos) { 1358 if (read_format != pos->core.attr.read_format) { 1359 pr_debug("Read format differs %#" PRIx64 " vs %#" PRIx64 "\n", 1360 read_format, (u64)pos->core.attr.read_format); 1361 } 1362 } 1363 1364 /* PERF_SAMPLE_READ implies PERF_FORMAT_ID. */ 1365 if ((sample_type & PERF_SAMPLE_READ) && 1366 !(read_format & PERF_FORMAT_ID)) { 1367 return false; 1368 } 1369 1370 return true; 1371 } 1372 1373 u16 evlist__id_hdr_size(struct evlist *evlist) 1374 { 1375 struct evsel *first = evlist__first(evlist); 1376 1377 return first->core.attr.sample_id_all ? evsel__id_hdr_size(first) : 0; 1378 } 1379 1380 bool evlist__valid_sample_id_all(struct evlist *evlist) 1381 { 1382 struct evsel *first = evlist__first(evlist), *pos = first; 1383 1384 evlist__for_each_entry_continue(evlist, pos) { 1385 if (first->core.attr.sample_id_all != pos->core.attr.sample_id_all) 1386 return false; 1387 } 1388 1389 return true; 1390 } 1391 1392 bool evlist__sample_id_all(struct evlist *evlist) 1393 { 1394 struct evsel *first = evlist__first(evlist); 1395 return first->core.attr.sample_id_all; 1396 } 1397 1398 void evlist__set_selected(struct evlist *evlist, struct evsel *evsel) 1399 { 1400 evlist->selected = evsel; 1401 } 1402 1403 void evlist__close(struct evlist *evlist) 1404 { 1405 struct evsel *evsel; 1406 struct evlist_cpu_iterator evlist_cpu_itr; 1407 1408 evlist__for_each_cpu(evlist_cpu_itr, evlist) { 1409 if (evlist_cpu_itr.cpu_map_idx == 0 && evsel__is_retire_lat(evlist_cpu_itr.evsel)) 1410 evsel__tpebs_close(evlist_cpu_itr.evsel); 1411 perf_evsel__close_cpu(&evlist_cpu_itr.evsel->core, 1412 evlist_cpu_itr.cpu_map_idx); 1413 } 1414 1415 evlist__for_each_entry_reverse(evlist, evsel) { 1416 perf_evsel__free_fd(&evsel->core); 1417 perf_evsel__free_id(&evsel->core); 1418 } 1419 perf_evlist__reset_id_hash(&evlist->core); 1420 } 1421 1422 static int evlist__create_syswide_maps(struct evlist *evlist) 1423 { 1424 struct perf_cpu_map *cpus; 1425 struct perf_thread_map *threads; 1426 1427 /* 1428 * Try reading /sys/devices/system/cpu/online to get 1429 * an all cpus map. 1430 * 1431 * FIXME: -ENOMEM is the best we can do here, the cpu_map 1432 * code needs an overhaul to properly forward the 1433 * error, and we may not want to do that fallback to a 1434 * default cpu identity map :-\ 1435 */ 1436 cpus = perf_cpu_map__new_online_cpus(); 1437 if (!cpus) 1438 return -ENOMEM; 1439 1440 threads = perf_thread_map__new_dummy(); 1441 if (!threads) { 1442 perf_cpu_map__put(cpus); 1443 return -ENOMEM; 1444 } 1445 1446 perf_evlist__set_maps(&evlist->core, cpus, threads); 1447 perf_thread_map__put(threads); 1448 perf_cpu_map__put(cpus); 1449 return 0; 1450 } 1451 1452 int evlist__open(struct evlist *evlist) 1453 { 1454 struct evsel *evsel; 1455 int err; 1456 1457 /* 1458 * Default: one fd per CPU, all threads, aka systemwide 1459 * as sys_perf_event_open(cpu = -1, thread = -1) is EINVAL 1460 */ 1461 if (evlist->core.threads == NULL && evlist->core.user_requested_cpus == NULL) { 1462 err = evlist__create_syswide_maps(evlist); 1463 if (err < 0) 1464 goto out_err; 1465 } 1466 1467 evlist__update_id_pos(evlist); 1468 1469 evlist__for_each_entry(evlist, evsel) { 1470 err = evsel__open(evsel, evsel->core.cpus, evsel->core.threads); 1471 if (err < 0) 1472 goto out_err; 1473 } 1474 1475 return 0; 1476 out_err: 1477 evlist__close(evlist); 1478 errno = -err; 1479 return err; 1480 } 1481 1482 int evlist__prepare_workload(struct evlist *evlist, struct target *target, const char *argv[], 1483 bool pipe_output, void (*exec_error)(int signo, siginfo_t *info, void *ucontext)) 1484 { 1485 int child_ready_pipe[2], go_pipe[2]; 1486 char bf; 1487 1488 evlist->workload.cork_fd = -1; 1489 1490 if (pipe(child_ready_pipe) < 0) { 1491 perror("failed to create 'ready' pipe"); 1492 return -1; 1493 } 1494 1495 if (pipe(go_pipe) < 0) { 1496 perror("failed to create 'go' pipe"); 1497 goto out_close_ready_pipe; 1498 } 1499 1500 evlist->workload.pid = fork(); 1501 if (evlist->workload.pid < 0) { 1502 perror("failed to fork"); 1503 goto out_close_pipes; 1504 } 1505 1506 if (!evlist->workload.pid) { 1507 int ret; 1508 1509 if (pipe_output) 1510 dup2(2, 1); 1511 1512 signal(SIGTERM, SIG_DFL); 1513 1514 close(child_ready_pipe[0]); 1515 close(go_pipe[1]); 1516 fcntl(go_pipe[0], F_SETFD, FD_CLOEXEC); 1517 1518 /* 1519 * Change the name of this process not to confuse --exclude-perf users 1520 * that sees 'perf' in the window up to the execvp() and thinks that 1521 * perf samples are not being excluded. 1522 */ 1523 prctl(PR_SET_NAME, "perf-exec"); 1524 1525 /* 1526 * Tell the parent we're ready to go 1527 */ 1528 close(child_ready_pipe[1]); 1529 1530 /* 1531 * Wait until the parent tells us to go. 1532 */ 1533 ret = read(go_pipe[0], &bf, 1); 1534 /* 1535 * The parent will ask for the execvp() to be performed by 1536 * writing exactly one byte, in workload.cork_fd, usually via 1537 * evlist__start_workload(). 1538 * 1539 * For cancelling the workload without actually running it, 1540 * the parent will just close workload.cork_fd, without writing 1541 * anything, i.e. read will return zero and we just exit() 1542 * here (See evlist__cancel_workload()). 1543 */ 1544 if (ret != 1) { 1545 if (ret == -1) 1546 perror("unable to read pipe"); 1547 exit(ret); 1548 } 1549 1550 execvp(argv[0], (char **)argv); 1551 1552 if (exec_error) { 1553 union sigval val; 1554 1555 val.sival_int = errno; 1556 if (sigqueue(getppid(), SIGUSR1, val)) 1557 perror(argv[0]); 1558 } else 1559 perror(argv[0]); 1560 exit(-1); 1561 } 1562 1563 if (exec_error) { 1564 struct sigaction act = { 1565 .sa_flags = SA_SIGINFO, 1566 .sa_sigaction = exec_error, 1567 }; 1568 sigaction(SIGUSR1, &act, NULL); 1569 } 1570 1571 if (target__none(target)) { 1572 if (evlist->core.threads == NULL) { 1573 fprintf(stderr, "FATAL: evlist->threads need to be set at this point (%s:%d).\n", 1574 __func__, __LINE__); 1575 goto out_close_pipes; 1576 } 1577 perf_thread_map__set_pid(evlist->core.threads, 0, evlist->workload.pid); 1578 } 1579 1580 close(child_ready_pipe[1]); 1581 close(go_pipe[0]); 1582 /* 1583 * wait for child to settle 1584 */ 1585 if (read(child_ready_pipe[0], &bf, 1) == -1) { 1586 perror("unable to read pipe"); 1587 goto out_close_pipes; 1588 } 1589 1590 fcntl(go_pipe[1], F_SETFD, FD_CLOEXEC); 1591 evlist->workload.cork_fd = go_pipe[1]; 1592 close(child_ready_pipe[0]); 1593 return 0; 1594 1595 out_close_pipes: 1596 close(go_pipe[0]); 1597 close(go_pipe[1]); 1598 out_close_ready_pipe: 1599 close(child_ready_pipe[0]); 1600 close(child_ready_pipe[1]); 1601 return -1; 1602 } 1603 1604 int evlist__start_workload(struct evlist *evlist) 1605 { 1606 if (evlist->workload.cork_fd >= 0) { 1607 char bf = 0; 1608 int ret; 1609 /* 1610 * Remove the cork, let it rip! 1611 */ 1612 ret = write(evlist->workload.cork_fd, &bf, 1); 1613 if (ret < 0) 1614 perror("unable to write to pipe"); 1615 1616 close(evlist->workload.cork_fd); 1617 evlist->workload.cork_fd = -1; 1618 return ret; 1619 } 1620 1621 return 0; 1622 } 1623 1624 void evlist__cancel_workload(struct evlist *evlist) 1625 { 1626 int status; 1627 1628 if (evlist->workload.cork_fd >= 0) { 1629 close(evlist->workload.cork_fd); 1630 evlist->workload.cork_fd = -1; 1631 waitpid(evlist->workload.pid, &status, WNOHANG); 1632 } 1633 } 1634 1635 int evlist__parse_sample(struct evlist *evlist, union perf_event *event, struct perf_sample *sample) 1636 { 1637 struct evsel *evsel = evlist__event2evsel(evlist, event); 1638 int ret; 1639 1640 if (!evsel) { 1641 /* Ensure the sample is okay for perf_sample__exit. */ 1642 perf_sample__init(sample, /*all=*/false); 1643 return -EFAULT; 1644 } 1645 ret = evsel__parse_sample(evsel, event, sample); 1646 if (ret) 1647 return ret; 1648 if (perf_guest && sample->id) { 1649 struct perf_sample_id *sid = evlist__id2sid(evlist, sample->id); 1650 1651 if (sid) { 1652 sample->machine_pid = sid->machine_pid; 1653 sample->vcpu = sid->vcpu.cpu; 1654 } 1655 } 1656 return 0; 1657 } 1658 1659 int evlist__parse_sample_timestamp(struct evlist *evlist, union perf_event *event, u64 *timestamp) 1660 { 1661 struct evsel *evsel = evlist__event2evsel(evlist, event); 1662 1663 if (!evsel) 1664 return -EFAULT; 1665 return evsel__parse_sample_timestamp(evsel, event, timestamp); 1666 } 1667 1668 int evlist__strerror_open(struct evlist *evlist, int err, char *buf, size_t size) 1669 { 1670 int printed, value; 1671 1672 switch (err) { 1673 case EACCES: 1674 case EPERM: 1675 errno = err; 1676 printed = scnprintf(buf, size, 1677 "Error:\t%m.\n" 1678 "Hint:\tCheck /proc/sys/kernel/perf_event_paranoid setting."); 1679 1680 value = perf_event_paranoid(); 1681 1682 printed += scnprintf(buf + printed, size - printed, "\nHint:\t"); 1683 1684 if (value >= 2) { 1685 printed += scnprintf(buf + printed, size - printed, 1686 "For your workloads it needs to be <= 1\nHint:\t"); 1687 } 1688 printed += scnprintf(buf + printed, size - printed, 1689 "For system wide tracing it needs to be set to -1.\n"); 1690 1691 printed += scnprintf(buf + printed, size - printed, 1692 "Hint:\tTry: 'sudo sh -c \"echo -1 > /proc/sys/kernel/perf_event_paranoid\"'\n" 1693 "Hint:\tThe current value is %d.", value); 1694 break; 1695 case EINVAL: { 1696 struct evsel *first = evlist__first(evlist); 1697 int max_freq; 1698 1699 if (sysctl__read_int("kernel/perf_event_max_sample_rate", &max_freq) < 0) 1700 goto out_default; 1701 1702 if (first->core.attr.sample_freq < (u64)max_freq) 1703 goto out_default; 1704 1705 errno = err; 1706 printed = scnprintf(buf, size, 1707 "Error:\t%m.\n" 1708 "Hint:\tCheck /proc/sys/kernel/perf_event_max_sample_rate.\n" 1709 "Hint:\tThe current value is %d and %" PRIu64 " is being requested.", 1710 max_freq, first->core.attr.sample_freq); 1711 break; 1712 } 1713 default: 1714 out_default: 1715 errno = err; 1716 scnprintf(buf, size, "%m"); 1717 break; 1718 } 1719 1720 return 0; 1721 } 1722 1723 int evlist__strerror_mmap(struct evlist *evlist, int err, char *buf, size_t size) 1724 { 1725 int pages_attempted = evlist->core.mmap_len / 1024, pages_max_per_user, printed = 0; 1726 1727 switch (err) { 1728 case EPERM: 1729 sysctl__read_int("kernel/perf_event_mlock_kb", &pages_max_per_user); 1730 errno = err; 1731 printed += scnprintf(buf + printed, size - printed, 1732 "Error:\t%m.\n" 1733 "Hint:\tCheck /proc/sys/kernel/perf_event_mlock_kb (%d kB) setting.\n" 1734 "Hint:\tTried using %zd kB.\n", 1735 pages_max_per_user, pages_attempted); 1736 1737 if (pages_attempted >= pages_max_per_user) { 1738 printed += scnprintf(buf + printed, size - printed, 1739 "Hint:\tTry 'sudo sh -c \"echo %d > /proc/sys/kernel/perf_event_mlock_kb\"', or\n", 1740 pages_max_per_user + pages_attempted); 1741 } 1742 1743 printed += scnprintf(buf + printed, size - printed, 1744 "Hint:\tTry using a smaller -m/--mmap-pages value."); 1745 break; 1746 default: 1747 errno = err; 1748 scnprintf(buf, size, "%m"); 1749 break; 1750 } 1751 1752 return 0; 1753 } 1754 1755 void evlist__to_front(struct evlist *evlist, struct evsel *move_evsel) 1756 { 1757 struct evsel *evsel, *n; 1758 LIST_HEAD(move); 1759 1760 if (move_evsel == evlist__first(evlist)) 1761 return; 1762 1763 evlist__for_each_entry_safe(evlist, n, evsel) { 1764 if (evsel__leader(evsel) == evsel__leader(move_evsel)) 1765 list_move_tail(&evsel->core.node, &move); 1766 } 1767 1768 list_splice(&move, &evlist->core.entries); 1769 } 1770 1771 struct evsel *evlist__get_tracking_event(struct evlist *evlist) 1772 { 1773 struct evsel *evsel; 1774 1775 evlist__for_each_entry(evlist, evsel) { 1776 if (evsel->tracking) 1777 return evsel; 1778 } 1779 1780 return evlist__first(evlist); 1781 } 1782 1783 void evlist__set_tracking_event(struct evlist *evlist, struct evsel *tracking_evsel) 1784 { 1785 struct evsel *evsel; 1786 1787 if (tracking_evsel->tracking) 1788 return; 1789 1790 evlist__for_each_entry(evlist, evsel) { 1791 if (evsel != tracking_evsel) 1792 evsel->tracking = false; 1793 } 1794 1795 tracking_evsel->tracking = true; 1796 } 1797 1798 struct evsel *evlist__findnew_tracking_event(struct evlist *evlist, bool system_wide) 1799 { 1800 struct evsel *evsel; 1801 1802 evsel = evlist__get_tracking_event(evlist); 1803 if (!evsel__is_dummy_event(evsel)) { 1804 evsel = evlist__add_aux_dummy(evlist, system_wide); 1805 if (!evsel) 1806 return NULL; 1807 1808 evlist__set_tracking_event(evlist, evsel); 1809 } else if (system_wide) { 1810 perf_evlist__go_system_wide(&evlist->core, &evsel->core); 1811 } 1812 1813 return evsel; 1814 } 1815 1816 struct evsel *evlist__find_evsel_by_str(struct evlist *evlist, const char *str) 1817 { 1818 struct evsel *evsel; 1819 1820 evlist__for_each_entry(evlist, evsel) { 1821 if (!evsel->name) 1822 continue; 1823 if (evsel__name_is(evsel, str)) 1824 return evsel; 1825 } 1826 1827 return NULL; 1828 } 1829 1830 void evlist__toggle_bkw_mmap(struct evlist *evlist, enum bkw_mmap_state state) 1831 { 1832 enum bkw_mmap_state old_state = evlist->bkw_mmap_state; 1833 enum action { 1834 NONE, 1835 PAUSE, 1836 RESUME, 1837 } action = NONE; 1838 1839 if (!evlist->overwrite_mmap) 1840 return; 1841 1842 switch (old_state) { 1843 case BKW_MMAP_NOTREADY: { 1844 if (state != BKW_MMAP_RUNNING) 1845 goto state_err; 1846 break; 1847 } 1848 case BKW_MMAP_RUNNING: { 1849 if (state != BKW_MMAP_DATA_PENDING) 1850 goto state_err; 1851 action = PAUSE; 1852 break; 1853 } 1854 case BKW_MMAP_DATA_PENDING: { 1855 if (state != BKW_MMAP_EMPTY) 1856 goto state_err; 1857 break; 1858 } 1859 case BKW_MMAP_EMPTY: { 1860 if (state != BKW_MMAP_RUNNING) 1861 goto state_err; 1862 action = RESUME; 1863 break; 1864 } 1865 default: 1866 WARN_ONCE(1, "Shouldn't get there\n"); 1867 } 1868 1869 evlist->bkw_mmap_state = state; 1870 1871 switch (action) { 1872 case PAUSE: 1873 evlist__pause(evlist); 1874 break; 1875 case RESUME: 1876 evlist__resume(evlist); 1877 break; 1878 case NONE: 1879 default: 1880 break; 1881 } 1882 1883 state_err: 1884 return; 1885 } 1886 1887 bool evlist__exclude_kernel(struct evlist *evlist) 1888 { 1889 struct evsel *evsel; 1890 1891 evlist__for_each_entry(evlist, evsel) { 1892 if (!evsel->core.attr.exclude_kernel) 1893 return false; 1894 } 1895 1896 return true; 1897 } 1898 1899 /* 1900 * Events in data file are not collect in groups, but we still want 1901 * the group display. Set the artificial group and set the leader's 1902 * forced_leader flag to notify the display code. 1903 */ 1904 void evlist__force_leader(struct evlist *evlist) 1905 { 1906 if (evlist__nr_groups(evlist) == 0) { 1907 struct evsel *leader = evlist__first(evlist); 1908 1909 evlist__set_leader(evlist); 1910 leader->forced_leader = true; 1911 } 1912 } 1913 1914 struct evsel *evlist__reset_weak_group(struct evlist *evsel_list, struct evsel *evsel, bool close) 1915 { 1916 struct evsel *c2, *leader; 1917 bool is_open = true; 1918 1919 leader = evsel__leader(evsel); 1920 1921 pr_debug("Weak group for %s/%d failed\n", 1922 leader->name, leader->core.nr_members); 1923 1924 /* 1925 * for_each_group_member doesn't work here because it doesn't 1926 * include the first entry. 1927 */ 1928 evlist__for_each_entry(evsel_list, c2) { 1929 if (c2 == evsel) 1930 is_open = false; 1931 if (evsel__has_leader(c2, leader)) { 1932 if (is_open && close) 1933 perf_evsel__close(&c2->core); 1934 /* 1935 * We want to close all members of the group and reopen 1936 * them. Some events, like Intel topdown, require being 1937 * in a group and so keep these in the group. 1938 */ 1939 evsel__remove_from_group(c2, leader); 1940 1941 /* 1942 * Set this for all former members of the group 1943 * to indicate they get reopened. 1944 */ 1945 c2->reset_group = true; 1946 } 1947 } 1948 /* Reset the leader count if all entries were removed. */ 1949 if (leader->core.nr_members == 1) 1950 leader->core.nr_members = 0; 1951 return leader; 1952 } 1953 1954 static int evlist__parse_control_fifo(const char *str, int *ctl_fd, int *ctl_fd_ack, bool *ctl_fd_close) 1955 { 1956 char *s, *p; 1957 int ret = 0, fd; 1958 1959 if (strncmp(str, "fifo:", 5)) 1960 return -EINVAL; 1961 1962 str += 5; 1963 if (!*str || *str == ',') 1964 return -EINVAL; 1965 1966 s = strdup(str); 1967 if (!s) 1968 return -ENOMEM; 1969 1970 p = strchr(s, ','); 1971 if (p) 1972 *p = '\0'; 1973 1974 /* 1975 * O_RDWR avoids POLLHUPs which is necessary to allow the other 1976 * end of a FIFO to be repeatedly opened and closed. 1977 */ 1978 fd = open(s, O_RDWR | O_NONBLOCK | O_CLOEXEC); 1979 if (fd < 0) { 1980 ret = -errno; 1981 pr_err("Failed to open '%s': %m\n", s); 1982 goto out_free; 1983 } 1984 *ctl_fd = fd; 1985 *ctl_fd_close = true; 1986 1987 if (p && *++p) { 1988 /* O_RDWR | O_NONBLOCK means the other end need not be open */ 1989 fd = open(p, O_RDWR | O_NONBLOCK | O_CLOEXEC); 1990 if (fd < 0) { 1991 pr_err("Failed to open '%s': %m\n", p); 1992 ret = -errno; 1993 goto out_free; 1994 } 1995 *ctl_fd_ack = fd; 1996 } 1997 1998 out_free: 1999 free(s); 2000 return ret; 2001 } 2002 2003 int evlist__parse_control(const char *str, int *ctl_fd, int *ctl_fd_ack, bool *ctl_fd_close) 2004 { 2005 const char *comma = NULL; 2006 char *endptr = NULL; 2007 2008 *ctl_fd_close = false; 2009 2010 if (strncmp(str, "fd:", 3)) 2011 return evlist__parse_control_fifo(str, ctl_fd, ctl_fd_ack, ctl_fd_close); 2012 2013 *ctl_fd = strtoul(&str[3], &endptr, 0); 2014 if (endptr == &str[3]) 2015 return -EINVAL; 2016 2017 comma = strchr(str, ','); 2018 if (comma) { 2019 if (endptr != comma) 2020 return -EINVAL; 2021 2022 *ctl_fd_ack = strtoul(comma + 1, &endptr, 0); 2023 if (endptr == comma + 1 || *endptr != '\0') 2024 return -EINVAL; 2025 } 2026 2027 return 0; 2028 } 2029 2030 void evlist__close_control(int ctl_fd, int ctl_fd_ack, bool *ctl_fd_close) 2031 { 2032 if (*ctl_fd_close) { 2033 *ctl_fd_close = false; 2034 close(ctl_fd); 2035 if (ctl_fd_ack >= 0) 2036 close(ctl_fd_ack); 2037 } 2038 } 2039 2040 int evlist__initialize_ctlfd(struct evlist *evlist, int fd, int ack) 2041 { 2042 if (fd == -1) { 2043 pr_debug("Control descriptor is not initialized\n"); 2044 return 0; 2045 } 2046 2047 evlist->ctl_fd.pos = perf_evlist__add_pollfd(&evlist->core, fd, NULL, POLLIN, 2048 fdarray_flag__nonfilterable | 2049 fdarray_flag__non_perf_event); 2050 if (evlist->ctl_fd.pos < 0) { 2051 evlist->ctl_fd.pos = -1; 2052 pr_err("Failed to add ctl fd entry: %m\n"); 2053 return -1; 2054 } 2055 2056 evlist->ctl_fd.fd = fd; 2057 evlist->ctl_fd.ack = ack; 2058 2059 return 0; 2060 } 2061 2062 bool evlist__ctlfd_initialized(struct evlist *evlist) 2063 { 2064 return evlist->ctl_fd.pos >= 0; 2065 } 2066 2067 int evlist__finalize_ctlfd(struct evlist *evlist) 2068 { 2069 struct pollfd *entries = evlist->core.pollfd.entries; 2070 2071 if (!evlist__ctlfd_initialized(evlist)) 2072 return 0; 2073 2074 entries[evlist->ctl_fd.pos].fd = -1; 2075 entries[evlist->ctl_fd.pos].events = 0; 2076 entries[evlist->ctl_fd.pos].revents = 0; 2077 2078 evlist->ctl_fd.pos = -1; 2079 evlist->ctl_fd.ack = -1; 2080 evlist->ctl_fd.fd = -1; 2081 2082 return 0; 2083 } 2084 2085 static int evlist__ctlfd_recv(struct evlist *evlist, enum evlist_ctl_cmd *cmd, 2086 char *cmd_data, size_t data_size) 2087 { 2088 int err; 2089 char c; 2090 size_t bytes_read = 0; 2091 2092 *cmd = EVLIST_CTL_CMD_UNSUPPORTED; 2093 memset(cmd_data, 0, data_size); 2094 data_size--; 2095 2096 do { 2097 err = read(evlist->ctl_fd.fd, &c, 1); 2098 if (err > 0) { 2099 if (c == '\n' || c == '\0') 2100 break; 2101 cmd_data[bytes_read++] = c; 2102 if (bytes_read == data_size) 2103 break; 2104 continue; 2105 } else if (err == -1) { 2106 if (errno == EINTR) 2107 continue; 2108 if (errno == EAGAIN || errno == EWOULDBLOCK) 2109 err = 0; 2110 else 2111 pr_err("Failed to read from ctlfd %d: %m\n", evlist->ctl_fd.fd); 2112 } 2113 break; 2114 } while (1); 2115 2116 pr_debug("Message from ctl_fd: \"%s%s\"\n", cmd_data, 2117 bytes_read == data_size ? "" : c == '\n' ? "\\n" : "\\0"); 2118 2119 if (bytes_read > 0) { 2120 if (!strncmp(cmd_data, EVLIST_CTL_CMD_ENABLE_TAG, 2121 (sizeof(EVLIST_CTL_CMD_ENABLE_TAG)-1))) { 2122 *cmd = EVLIST_CTL_CMD_ENABLE; 2123 } else if (!strncmp(cmd_data, EVLIST_CTL_CMD_DISABLE_TAG, 2124 (sizeof(EVLIST_CTL_CMD_DISABLE_TAG)-1))) { 2125 *cmd = EVLIST_CTL_CMD_DISABLE; 2126 } else if (!strncmp(cmd_data, EVLIST_CTL_CMD_SNAPSHOT_TAG, 2127 (sizeof(EVLIST_CTL_CMD_SNAPSHOT_TAG)-1))) { 2128 *cmd = EVLIST_CTL_CMD_SNAPSHOT; 2129 pr_debug("is snapshot\n"); 2130 } else if (!strncmp(cmd_data, EVLIST_CTL_CMD_EVLIST_TAG, 2131 (sizeof(EVLIST_CTL_CMD_EVLIST_TAG)-1))) { 2132 *cmd = EVLIST_CTL_CMD_EVLIST; 2133 } else if (!strncmp(cmd_data, EVLIST_CTL_CMD_STOP_TAG, 2134 (sizeof(EVLIST_CTL_CMD_STOP_TAG)-1))) { 2135 *cmd = EVLIST_CTL_CMD_STOP; 2136 } else if (!strncmp(cmd_data, EVLIST_CTL_CMD_PING_TAG, 2137 (sizeof(EVLIST_CTL_CMD_PING_TAG)-1))) { 2138 *cmd = EVLIST_CTL_CMD_PING; 2139 } 2140 } 2141 2142 return bytes_read ? (int)bytes_read : err; 2143 } 2144 2145 int evlist__ctlfd_ack(struct evlist *evlist) 2146 { 2147 int err; 2148 2149 if (evlist->ctl_fd.ack == -1) 2150 return 0; 2151 2152 err = write(evlist->ctl_fd.ack, EVLIST_CTL_CMD_ACK_TAG, 2153 sizeof(EVLIST_CTL_CMD_ACK_TAG)); 2154 if (err == -1) 2155 pr_err("failed to write to ctl_ack_fd %d: %m\n", evlist->ctl_fd.ack); 2156 2157 return err; 2158 } 2159 2160 static int get_cmd_arg(char *cmd_data, size_t cmd_size, char **arg) 2161 { 2162 char *data = cmd_data + cmd_size; 2163 2164 /* no argument */ 2165 if (!*data) 2166 return 0; 2167 2168 /* there's argument */ 2169 if (*data == ' ') { 2170 *arg = data + 1; 2171 return 1; 2172 } 2173 2174 /* malformed */ 2175 return -1; 2176 } 2177 2178 static int evlist__ctlfd_enable(struct evlist *evlist, char *cmd_data, bool enable) 2179 { 2180 struct evsel *evsel; 2181 char *name; 2182 int err; 2183 2184 err = get_cmd_arg(cmd_data, 2185 enable ? sizeof(EVLIST_CTL_CMD_ENABLE_TAG) - 1 : 2186 sizeof(EVLIST_CTL_CMD_DISABLE_TAG) - 1, 2187 &name); 2188 if (err < 0) { 2189 pr_info("failed: wrong command\n"); 2190 return -1; 2191 } 2192 2193 if (err) { 2194 evsel = evlist__find_evsel_by_str(evlist, name); 2195 if (evsel) { 2196 if (enable) 2197 evlist__enable_evsel(evlist, name); 2198 else 2199 evlist__disable_evsel(evlist, name); 2200 pr_info("Event %s %s\n", evsel->name, 2201 enable ? "enabled" : "disabled"); 2202 } else { 2203 pr_info("failed: can't find '%s' event\n", name); 2204 } 2205 } else { 2206 if (enable) { 2207 evlist__enable(evlist); 2208 pr_info(EVLIST_ENABLED_MSG); 2209 } else { 2210 evlist__disable(evlist); 2211 pr_info(EVLIST_DISABLED_MSG); 2212 } 2213 } 2214 2215 return 0; 2216 } 2217 2218 static int evlist__ctlfd_list(struct evlist *evlist, char *cmd_data) 2219 { 2220 struct perf_attr_details details = { .verbose = false, }; 2221 struct evsel *evsel; 2222 char *arg; 2223 int err; 2224 2225 err = get_cmd_arg(cmd_data, 2226 sizeof(EVLIST_CTL_CMD_EVLIST_TAG) - 1, 2227 &arg); 2228 if (err < 0) { 2229 pr_info("failed: wrong command\n"); 2230 return -1; 2231 } 2232 2233 if (err) { 2234 if (!strcmp(arg, "-v")) { 2235 details.verbose = true; 2236 } else if (!strcmp(arg, "-g")) { 2237 details.event_group = true; 2238 } else if (!strcmp(arg, "-F")) { 2239 details.freq = true; 2240 } else { 2241 pr_info("failed: wrong command\n"); 2242 return -1; 2243 } 2244 } 2245 2246 evlist__for_each_entry(evlist, evsel) 2247 evsel__fprintf(evsel, &details, stderr); 2248 2249 return 0; 2250 } 2251 2252 int evlist__ctlfd_process(struct evlist *evlist, enum evlist_ctl_cmd *cmd) 2253 { 2254 int err = 0; 2255 char cmd_data[EVLIST_CTL_CMD_MAX_LEN]; 2256 int ctlfd_pos = evlist->ctl_fd.pos; 2257 struct pollfd *entries = evlist->core.pollfd.entries; 2258 2259 if (!evlist__ctlfd_initialized(evlist) || !entries[ctlfd_pos].revents) 2260 return 0; 2261 2262 if (entries[ctlfd_pos].revents & POLLIN) { 2263 err = evlist__ctlfd_recv(evlist, cmd, cmd_data, 2264 EVLIST_CTL_CMD_MAX_LEN); 2265 if (err > 0) { 2266 switch (*cmd) { 2267 case EVLIST_CTL_CMD_ENABLE: 2268 case EVLIST_CTL_CMD_DISABLE: 2269 err = evlist__ctlfd_enable(evlist, cmd_data, 2270 *cmd == EVLIST_CTL_CMD_ENABLE); 2271 break; 2272 case EVLIST_CTL_CMD_EVLIST: 2273 err = evlist__ctlfd_list(evlist, cmd_data); 2274 break; 2275 case EVLIST_CTL_CMD_SNAPSHOT: 2276 case EVLIST_CTL_CMD_STOP: 2277 case EVLIST_CTL_CMD_PING: 2278 break; 2279 case EVLIST_CTL_CMD_ACK: 2280 case EVLIST_CTL_CMD_UNSUPPORTED: 2281 default: 2282 pr_debug("ctlfd: unsupported %d\n", *cmd); 2283 break; 2284 } 2285 if (!(*cmd == EVLIST_CTL_CMD_ACK || *cmd == EVLIST_CTL_CMD_UNSUPPORTED || 2286 *cmd == EVLIST_CTL_CMD_SNAPSHOT)) 2287 evlist__ctlfd_ack(evlist); 2288 } 2289 } 2290 2291 if (entries[ctlfd_pos].revents & (POLLHUP | POLLERR)) 2292 evlist__finalize_ctlfd(evlist); 2293 else 2294 entries[ctlfd_pos].revents = 0; 2295 2296 return err; 2297 } 2298 2299 /** 2300 * struct event_enable_time - perf record -D/--delay single time range. 2301 * @start: start of time range to enable events in milliseconds 2302 * @end: end of time range to enable events in milliseconds 2303 * 2304 * N.B. this structure is also accessed as an array of int. 2305 */ 2306 struct event_enable_time { 2307 int start; 2308 int end; 2309 }; 2310 2311 static int parse_event_enable_time(const char *str, struct event_enable_time *range, bool first) 2312 { 2313 const char *fmt = first ? "%u - %u %n" : " , %u - %u %n"; 2314 int ret, start, end, n; 2315 2316 ret = sscanf(str, fmt, &start, &end, &n); 2317 if (ret != 2 || end <= start) 2318 return -EINVAL; 2319 if (range) { 2320 range->start = start; 2321 range->end = end; 2322 } 2323 return n; 2324 } 2325 2326 static ssize_t parse_event_enable_times(const char *str, struct event_enable_time *range) 2327 { 2328 int incr = !!range; 2329 bool first = true; 2330 ssize_t ret, cnt; 2331 2332 for (cnt = 0; *str; cnt++) { 2333 ret = parse_event_enable_time(str, range, first); 2334 if (ret < 0) 2335 return ret; 2336 /* Check no overlap */ 2337 if (!first && range && range->start <= range[-1].end) 2338 return -EINVAL; 2339 str += ret; 2340 range += incr; 2341 first = false; 2342 } 2343 return cnt; 2344 } 2345 2346 /** 2347 * struct event_enable_timer - control structure for perf record -D/--delay. 2348 * @evlist: event list 2349 * @times: time ranges that events are enabled (N.B. this is also accessed as an 2350 * array of int) 2351 * @times_cnt: number of time ranges 2352 * @timerfd: timer file descriptor 2353 * @pollfd_pos: position in @evlist array of file descriptors to poll (fdarray) 2354 * @times_step: current position in (int *)@times)[], 2355 * refer event_enable_timer__process() 2356 * 2357 * Note, this structure is only used when there are time ranges, not when there 2358 * is only an initial delay. 2359 */ 2360 struct event_enable_timer { 2361 struct evlist *evlist; 2362 struct event_enable_time *times; 2363 size_t times_cnt; 2364 int timerfd; 2365 int pollfd_pos; 2366 size_t times_step; 2367 }; 2368 2369 static int str_to_delay(const char *str) 2370 { 2371 char *endptr; 2372 long d; 2373 2374 d = strtol(str, &endptr, 10); 2375 if (*endptr || d > INT_MAX || d < -1) 2376 return 0; 2377 return d; 2378 } 2379 2380 int evlist__parse_event_enable_time(struct evlist *evlist, struct record_opts *opts, 2381 const char *str, int unset) 2382 { 2383 enum fdarray_flags flags = fdarray_flag__nonfilterable | fdarray_flag__non_perf_event; 2384 struct event_enable_timer *eet; 2385 ssize_t times_cnt; 2386 ssize_t ret; 2387 int err; 2388 2389 if (unset) 2390 return 0; 2391 2392 opts->target.initial_delay = str_to_delay(str); 2393 if (opts->target.initial_delay) 2394 return 0; 2395 2396 ret = parse_event_enable_times(str, NULL); 2397 if (ret < 0) 2398 return ret; 2399 2400 times_cnt = ret; 2401 if (times_cnt == 0) 2402 return -EINVAL; 2403 2404 eet = zalloc(sizeof(*eet)); 2405 if (!eet) 2406 return -ENOMEM; 2407 2408 eet->times = calloc(times_cnt, sizeof(*eet->times)); 2409 if (!eet->times) { 2410 err = -ENOMEM; 2411 goto free_eet; 2412 } 2413 2414 if (parse_event_enable_times(str, eet->times) != times_cnt) { 2415 err = -EINVAL; 2416 goto free_eet_times; 2417 } 2418 2419 eet->times_cnt = times_cnt; 2420 2421 eet->timerfd = timerfd_create(CLOCK_MONOTONIC, TFD_CLOEXEC); 2422 if (eet->timerfd == -1) { 2423 err = -errno; 2424 pr_err("timerfd_create failed: %m\n"); 2425 goto free_eet_times; 2426 } 2427 2428 eet->pollfd_pos = perf_evlist__add_pollfd(&evlist->core, eet->timerfd, NULL, POLLIN, flags); 2429 if (eet->pollfd_pos < 0) { 2430 err = eet->pollfd_pos; 2431 goto close_timerfd; 2432 } 2433 2434 eet->evlist = evlist; 2435 evlist->eet = eet; 2436 opts->target.initial_delay = eet->times[0].start; 2437 2438 return 0; 2439 2440 close_timerfd: 2441 close(eet->timerfd); 2442 free_eet_times: 2443 zfree(&eet->times); 2444 free_eet: 2445 free(eet); 2446 return err; 2447 } 2448 2449 static int event_enable_timer__set_timer(struct event_enable_timer *eet, int ms) 2450 { 2451 struct itimerspec its = { 2452 .it_value.tv_sec = ms / MSEC_PER_SEC, 2453 .it_value.tv_nsec = (ms % MSEC_PER_SEC) * NSEC_PER_MSEC, 2454 }; 2455 int err = 0; 2456 2457 if (timerfd_settime(eet->timerfd, 0, &its, NULL) < 0) { 2458 err = -errno; 2459 pr_err("timerfd_settime failed: %m\n"); 2460 } 2461 return err; 2462 } 2463 2464 int event_enable_timer__start(struct event_enable_timer *eet) 2465 { 2466 int ms; 2467 2468 if (!eet) 2469 return 0; 2470 2471 ms = eet->times[0].end - eet->times[0].start; 2472 eet->times_step = 1; 2473 2474 return event_enable_timer__set_timer(eet, ms); 2475 } 2476 2477 int event_enable_timer__process(struct event_enable_timer *eet) 2478 { 2479 struct pollfd *entries; 2480 short revents; 2481 2482 if (!eet) 2483 return 0; 2484 2485 entries = eet->evlist->core.pollfd.entries; 2486 revents = entries[eet->pollfd_pos].revents; 2487 entries[eet->pollfd_pos].revents = 0; 2488 2489 if (revents & POLLIN) { 2490 size_t step = eet->times_step; 2491 size_t pos = step / 2; 2492 2493 if (step & 1) { 2494 evlist__disable_non_dummy(eet->evlist); 2495 pr_info(EVLIST_DISABLED_MSG); 2496 if (pos >= eet->times_cnt - 1) { 2497 /* Disarm timer */ 2498 event_enable_timer__set_timer(eet, 0); 2499 return 1; /* Stop */ 2500 } 2501 } else { 2502 evlist__enable_non_dummy(eet->evlist); 2503 pr_info(EVLIST_ENABLED_MSG); 2504 } 2505 2506 step += 1; 2507 pos = step / 2; 2508 2509 if (pos < eet->times_cnt) { 2510 int *times = (int *)eet->times; /* Accessing 'times' as array of int */ 2511 int ms = times[step] - times[step - 1]; 2512 2513 eet->times_step = step; 2514 return event_enable_timer__set_timer(eet, ms); 2515 } 2516 } 2517 2518 return 0; 2519 } 2520 2521 void event_enable_timer__exit(struct event_enable_timer **ep) 2522 { 2523 if (!ep || !*ep) 2524 return; 2525 zfree(&(*ep)->times); 2526 zfree(ep); 2527 } 2528 2529 struct evsel *evlist__find_evsel(struct evlist *evlist, int idx) 2530 { 2531 struct evsel *evsel; 2532 2533 evlist__for_each_entry(evlist, evsel) { 2534 if (evsel->core.idx == idx) 2535 return evsel; 2536 } 2537 return NULL; 2538 } 2539 2540 void evlist__format_evsels(struct evlist *evlist, struct strbuf *sb, size_t max_length) 2541 { 2542 struct evsel *evsel, *leader = NULL; 2543 bool first = true; 2544 2545 evlist__for_each_entry(evlist, evsel) { 2546 struct evsel *new_leader = evsel__leader(evsel); 2547 2548 if (evsel__is_dummy_event(evsel)) 2549 continue; 2550 2551 if (leader != new_leader && leader && leader->core.nr_members > 1) 2552 strbuf_addch(sb, '}'); 2553 2554 if (!first) 2555 strbuf_addch(sb, ','); 2556 2557 if (sb->len > max_length) { 2558 strbuf_addstr(sb, "..."); 2559 return; 2560 } 2561 if (leader != new_leader && new_leader->core.nr_members > 1) 2562 strbuf_addch(sb, '{'); 2563 2564 strbuf_addstr(sb, evsel__name(evsel)); 2565 first = false; 2566 leader = new_leader; 2567 } 2568 if (leader && leader->core.nr_members > 1) 2569 strbuf_addch(sb, '}'); 2570 } 2571 2572 void evlist__check_mem_load_aux(struct evlist *evlist) 2573 { 2574 struct evsel *leader, *evsel, *pos; 2575 2576 /* 2577 * For some platforms, the 'mem-loads' event is required to use 2578 * together with 'mem-loads-aux' within a group and 'mem-loads-aux' 2579 * must be the group leader. Now we disable this group before reporting 2580 * because 'mem-loads-aux' is just an auxiliary event. It doesn't carry 2581 * any valid memory load information. 2582 */ 2583 evlist__for_each_entry(evlist, evsel) { 2584 leader = evsel__leader(evsel); 2585 if (leader == evsel) 2586 continue; 2587 2588 if (leader->name && strstr(leader->name, "mem-loads-aux")) { 2589 for_each_group_evsel(pos, leader) { 2590 evsel__set_leader(pos, pos); 2591 pos->core.nr_members = 0; 2592 } 2593 } 2594 } 2595 } 2596 2597 /** 2598 * evlist__warn_user_requested_cpus() - Check each evsel against requested CPUs 2599 * and warn if the user CPU list is inapplicable for the event's PMU's 2600 * CPUs. Not core PMUs list a CPU in sysfs, but this may be overwritten by a 2601 * user requested CPU and so any online CPU is applicable. Core PMUs handle 2602 * events on the CPUs in their list and otherwise the event isn't supported. 2603 * @evlist: The list of events being checked. 2604 * @cpu_list: The user provided list of CPUs. 2605 */ 2606 void evlist__warn_user_requested_cpus(struct evlist *evlist, const char *cpu_list) 2607 { 2608 struct perf_cpu_map *user_requested_cpus; 2609 struct evsel *pos; 2610 2611 if (!cpu_list) 2612 return; 2613 2614 user_requested_cpus = perf_cpu_map__new(cpu_list); 2615 if (!user_requested_cpus) 2616 return; 2617 2618 evlist__for_each_entry(evlist, pos) { 2619 evsel__warn_user_requested_cpus(pos, user_requested_cpus); 2620 } 2621 perf_cpu_map__put(user_requested_cpus); 2622 } 2623 2624 /* Should uniquify be disabled for the evlist? */ 2625 static bool evlist__disable_uniquify(const struct evlist *evlist) 2626 { 2627 struct evsel *counter; 2628 struct perf_pmu *last_pmu = NULL; 2629 bool first = true; 2630 2631 evlist__for_each_entry(evlist, counter) { 2632 /* If PMUs vary then uniquify can be useful. */ 2633 if (!first && counter->pmu != last_pmu) 2634 return false; 2635 first = false; 2636 if (counter->pmu) { 2637 /* Allow uniquify for uncore PMUs. */ 2638 if (!counter->pmu->is_core) 2639 return false; 2640 /* Keep hybrid event names uniquified for clarity. */ 2641 if (perf_pmus__num_core_pmus() > 1) 2642 return false; 2643 } 2644 last_pmu = counter->pmu; 2645 } 2646 return true; 2647 } 2648 2649 static bool evlist__set_needs_uniquify(struct evlist *evlist, const struct perf_stat_config *config) 2650 { 2651 struct evsel *counter; 2652 bool needs_uniquify = false; 2653 2654 if (evlist__disable_uniquify(evlist)) { 2655 evlist__for_each_entry(evlist, counter) 2656 counter->uniquified_name = true; 2657 return false; 2658 } 2659 2660 evlist__for_each_entry(evlist, counter) { 2661 if (evsel__set_needs_uniquify(counter, config)) 2662 needs_uniquify = true; 2663 } 2664 return needs_uniquify; 2665 } 2666 2667 void evlist__uniquify_evsel_names(struct evlist *evlist, const struct perf_stat_config *config) 2668 { 2669 if (evlist__set_needs_uniquify(evlist, config)) { 2670 struct evsel *pos; 2671 2672 evlist__for_each_entry(evlist, pos) 2673 evsel__uniquify_counter(pos); 2674 } 2675 } 2676 2677 bool evlist__has_bpf_output(struct evlist *evlist) 2678 { 2679 struct evsel *evsel; 2680 2681 evlist__for_each_entry(evlist, evsel) { 2682 if (evsel__is_bpf_output(evsel)) 2683 return true; 2684 } 2685 2686 return false; 2687 } 2688 2689 bool evlist__needs_bpf_sb_event(struct evlist *evlist) 2690 { 2691 struct evsel *evsel; 2692 2693 evlist__for_each_entry(evlist, evsel) { 2694 if (evsel__is_dummy_event(evsel)) 2695 continue; 2696 if (!evsel->core.attr.exclude_kernel) 2697 return true; 2698 } 2699 2700 return false; 2701 } 2702