1 // SPDX-License-Identifier: GPL-2.0 2 #include <dirent.h> 3 #include <errno.h> 4 #include <inttypes.h> 5 #include <regex.h> 6 #include <stdlib.h> 7 #include <string.h> 8 #include "callchain.h" 9 #include "debug.h" 10 #include "dso.h" 11 #include "env.h" 12 #include "dwarf-regs.h" 13 #include "event.h" 14 #include "evsel.h" 15 #include "hist.h" 16 #include "machine.h" 17 #include "map.h" 18 #include "map_symbol.h" 19 #include "branch.h" 20 #include "mem-events.h" 21 #include "mem-info.h" 22 #include "path.h" 23 #include "srcline.h" 24 #include "symbol.h" 25 #include "synthetic-events.h" 26 #include "sort.h" 27 #include "strlist.h" 28 #include "target.h" 29 #include "thread.h" 30 #include "util.h" 31 #include "vdso.h" 32 #include <stdbool.h> 33 #include <sys/types.h> 34 #include <sys/stat.h> 35 #include <unistd.h> 36 #include "unwind.h" 37 #include "linux/hash.h" 38 #include "asm/bug.h" 39 #include "bpf-event.h" 40 #include <internal/lib.h> // page_size 41 #include "cgroup.h" 42 #include "arm64-frame-pointer-unwind-support.h" 43 #include <api/io_dir.h> 44 45 #include <linux/ctype.h> 46 #include <symbol/kallsyms.h> 47 #include <linux/mman.h> 48 #include <linux/string.h> 49 #include <linux/zalloc.h> 50 51 static struct dso *machine__kernel_dso(struct machine *machine) 52 { 53 return map__dso(machine->vmlinux_map); 54 } 55 56 static int machine__set_mmap_name(struct machine *machine) 57 { 58 if (machine__is_host(machine)) 59 machine->mmap_name = strdup("[kernel.kallsyms]"); 60 else if (machine__is_default_guest(machine)) 61 machine->mmap_name = strdup("[guest.kernel.kallsyms]"); 62 else if (asprintf(&machine->mmap_name, "[guest.kernel.kallsyms.%d]", 63 machine->pid) < 0) 64 machine->mmap_name = NULL; 65 66 return machine->mmap_name ? 0 : -ENOMEM; 67 } 68 69 static void thread__set_guest_comm(struct thread *thread, pid_t pid) 70 { 71 char comm[64]; 72 73 snprintf(comm, sizeof(comm), "[guest/%d]", pid); 74 thread__set_comm(thread, comm, 0); 75 } 76 77 int machine__init(struct machine *machine, const char *root_dir, pid_t pid) 78 { 79 int err = -ENOMEM; 80 81 memset(machine, 0, sizeof(*machine)); 82 RB_CLEAR_NODE(&machine->rb_node); 83 dsos__init(&machine->dsos); 84 threads__init(&machine->threads); 85 86 machine->kmaps = maps__new(machine); 87 if (machine->kmaps == NULL) 88 goto out; 89 90 machine->vdso_info = NULL; 91 machine->env = NULL; 92 93 machine->pid = pid; 94 95 machine->id_hdr_size = 0; 96 machine->kptr_restrict_warned = false; 97 machine->comm_exec = false; 98 machine->kernel_start = 0; 99 machine->vmlinux_map = NULL; 100 /* There is no initial context switch in, so we start at 1. */ 101 machine->parallelism = 1; 102 103 machine->root_dir = strdup(root_dir); 104 if (machine->root_dir == NULL) 105 goto out; 106 107 if (machine__set_mmap_name(machine)) 108 goto out; 109 110 if (pid != HOST_KERNEL_ID) { 111 struct thread *thread = machine__findnew_thread(machine, -1, 112 pid); 113 114 if (thread == NULL) 115 goto out; 116 117 thread__set_guest_comm(thread, pid); 118 thread__put(thread); 119 } 120 121 machine->current_tid = NULL; 122 err = 0; 123 124 out: 125 if (err) { 126 maps__zput(machine->kmaps); 127 zfree(&machine->root_dir); 128 zfree(&machine->mmap_name); 129 } 130 return err; 131 } 132 133 static struct machine *__machine__new_host(struct perf_env *host_env, bool kernel_maps) 134 { 135 struct machine *machine = malloc(sizeof(*machine)); 136 137 if (!machine) 138 return NULL; 139 140 if (machine__init(machine, "", HOST_KERNEL_ID) != 0) { 141 free(machine); 142 return NULL; 143 } 144 145 if (kernel_maps && machine__create_kernel_maps(machine) < 0) { 146 free(machine); 147 return NULL; 148 } 149 machine->env = host_env; 150 return machine; 151 } 152 153 struct machine *machine__new_host(struct perf_env *host_env) 154 { 155 return __machine__new_host(host_env, /*kernel_maps=*/true); 156 } 157 158 static int mmap_handler(const struct perf_tool *tool __maybe_unused, 159 union perf_event *event, 160 struct perf_sample *sample, 161 struct machine *machine) 162 { 163 return machine__process_mmap2_event(machine, event, sample); 164 } 165 166 static int machine__init_live(struct machine *machine, pid_t pid) 167 { 168 union perf_event event; 169 170 memset(&event, 0, sizeof(event)); 171 return perf_event__synthesize_mmap_events(NULL, &event, pid, pid, 172 mmap_handler, machine, true); 173 } 174 175 struct machine *machine__new_live(struct perf_env *host_env, bool kernel_maps, pid_t pid) 176 { 177 struct machine *machine = __machine__new_host(host_env, kernel_maps); 178 179 if (!machine) 180 return NULL; 181 182 if (machine__init_live(machine, pid)) { 183 machine__delete(machine); 184 return NULL; 185 } 186 return machine; 187 } 188 189 struct machine *machine__new_kallsyms(struct perf_env *host_env) 190 { 191 struct machine *machine = machine__new_host(host_env); 192 /* 193 * FIXME: 194 * 1) We should switch to machine__load_kallsyms(), i.e. not explicitly 195 * ask for not using the kcore parsing code, once this one is fixed 196 * to create a map per module. 197 */ 198 if (machine && machine__load_kallsyms(machine, "/proc/kallsyms") <= 0) { 199 machine__delete(machine); 200 machine = NULL; 201 } 202 203 return machine; 204 } 205 206 void machine__delete_threads(struct machine *machine) 207 { 208 threads__remove_all_threads(&machine->threads); 209 } 210 211 void machine__exit(struct machine *machine) 212 { 213 if (machine == NULL) 214 return; 215 216 machine__destroy_kernel_maps(machine); 217 maps__zput(machine->kmaps); 218 dsos__exit(&machine->dsos); 219 machine__exit_vdso(machine); 220 zfree(&machine->root_dir); 221 zfree(&machine->mmap_name); 222 zfree(&machine->current_tid); 223 zfree(&machine->kallsyms_filename); 224 225 threads__exit(&machine->threads); 226 } 227 228 void machine__delete(struct machine *machine) 229 { 230 if (machine) { 231 machine__exit(machine); 232 free(machine); 233 } 234 } 235 236 int machines__init(struct machines *machines) 237 { 238 int err = machine__init(&machines->host, "", HOST_KERNEL_ID); 239 240 machines->guests = RB_ROOT_CACHED; 241 return err; 242 } 243 244 void machines__exit(struct machines *machines) 245 { 246 machine__exit(&machines->host); 247 /* XXX exit guest */ 248 } 249 250 struct machine *machines__add(struct machines *machines, pid_t pid, 251 const char *root_dir) 252 { 253 struct rb_node **p = &machines->guests.rb_root.rb_node; 254 struct rb_node *parent = NULL; 255 struct machine *pos, *machine = malloc(sizeof(*machine)); 256 bool leftmost = true; 257 258 if (machine == NULL) 259 return NULL; 260 261 if (machine__init(machine, root_dir, pid) != 0) { 262 free(machine); 263 return NULL; 264 } 265 266 while (*p != NULL) { 267 parent = *p; 268 pos = rb_entry(parent, struct machine, rb_node); 269 if (pid < pos->pid) 270 p = &(*p)->rb_left; 271 else { 272 p = &(*p)->rb_right; 273 leftmost = false; 274 } 275 } 276 277 rb_link_node(&machine->rb_node, parent, p); 278 rb_insert_color_cached(&machine->rb_node, &machines->guests, leftmost); 279 280 machine->machines = machines; 281 282 return machine; 283 } 284 285 void machines__set_comm_exec(struct machines *machines, bool comm_exec) 286 { 287 struct rb_node *nd; 288 289 machines->host.comm_exec = comm_exec; 290 291 for (nd = rb_first_cached(&machines->guests); nd; nd = rb_next(nd)) { 292 struct machine *machine = rb_entry(nd, struct machine, rb_node); 293 294 machine->comm_exec = comm_exec; 295 } 296 } 297 298 struct machine *machines__find(struct machines *machines, pid_t pid) 299 { 300 struct rb_node **p = &machines->guests.rb_root.rb_node; 301 struct rb_node *parent = NULL; 302 struct machine *machine; 303 struct machine *default_machine = NULL; 304 305 if (pid == HOST_KERNEL_ID) 306 return &machines->host; 307 308 while (*p != NULL) { 309 parent = *p; 310 machine = rb_entry(parent, struct machine, rb_node); 311 if (pid < machine->pid) 312 p = &(*p)->rb_left; 313 else if (pid > machine->pid) 314 p = &(*p)->rb_right; 315 else 316 return machine; 317 if (!machine->pid) 318 default_machine = machine; 319 } 320 321 return default_machine; 322 } 323 324 struct machine *machines__findnew(struct machines *machines, pid_t pid) 325 { 326 char path[PATH_MAX]; 327 const char *root_dir = ""; 328 struct machine *machine = machines__find(machines, pid); 329 330 if (machine && (machine->pid == pid)) 331 goto out; 332 333 if ((pid != HOST_KERNEL_ID) && 334 (pid != DEFAULT_GUEST_KERNEL_ID) && 335 (symbol_conf.guestmount)) { 336 if (snprintf(path, sizeof(path), "%s/%d", 337 symbol_conf.guestmount, pid) >= (int)sizeof(path)) { 338 pr_err("Guest path too long for pid %d\n", pid); 339 machine = NULL; 340 goto out; 341 } 342 if (access(path, R_OK)) { 343 static struct strlist *seen; 344 345 if (!seen) 346 seen = strlist__new(NULL, NULL); 347 348 if (!seen || !strlist__has_entry(seen, path)) { 349 pr_err("Can't access file %s\n", path); 350 if (seen) 351 strlist__add(seen, path); 352 } 353 machine = NULL; 354 goto out; 355 } 356 root_dir = path; 357 } 358 359 machine = machines__add(machines, pid, root_dir); 360 out: 361 return machine; 362 } 363 364 struct machine *machines__find_guest(struct machines *machines, pid_t pid) 365 { 366 struct machine *machine = machines__find(machines, pid); 367 368 if (!machine) 369 machine = machines__findnew(machines, DEFAULT_GUEST_KERNEL_ID); 370 return machine; 371 } 372 373 /* 374 * A common case for KVM test programs is that the test program acts as the 375 * hypervisor, creating, running and destroying the virtual machine, and 376 * providing the guest object code from its own object code. In this case, 377 * the VM is not running an OS, but only the functions loaded into it by the 378 * hypervisor test program, and conveniently, loaded at the same virtual 379 * addresses. 380 * 381 * Normally to resolve addresses, MMAP events are needed to map addresses 382 * back to the object code and debug symbols for that object code. 383 * 384 * Currently, there is no way to get such mapping information from guests 385 * but, in the scenario described above, the guest has the same mappings 386 * as the hypervisor, so support for that scenario can be achieved. 387 * 388 * To support that, copy the host thread's maps to the guest thread's maps. 389 * Note, we do not discover the guest until we encounter a guest event, 390 * which works well because it is not until then that we know that the host 391 * thread's maps have been set up. 392 * 393 * This function returns the guest thread. Apart from keeping the data 394 * structures sane, using a thread belonging to the guest machine, instead 395 * of the host thread, allows it to have its own comm (refer 396 * thread__set_guest_comm()). 397 */ 398 static struct thread *findnew_guest_code(struct machine *machine, 399 struct machine *host_machine, 400 pid_t pid) 401 { 402 struct thread *host_thread; 403 struct thread *thread; 404 int err; 405 406 if (!machine) 407 return NULL; 408 409 thread = machine__findnew_thread(machine, -1, pid); 410 if (!thread) 411 return NULL; 412 413 /* Assume maps are set up if there are any */ 414 if (!maps__empty(thread__maps(thread))) 415 return thread; 416 417 host_thread = machine__find_thread(host_machine, -1, pid); 418 if (!host_thread) 419 goto out_err; 420 421 thread__set_guest_comm(thread, pid); 422 423 /* 424 * Guest code can be found in hypervisor process at the same address 425 * so copy host maps. 426 */ 427 err = maps__copy_from(thread__maps(thread), thread__maps(host_thread)); 428 thread__put(host_thread); 429 if (err) 430 goto out_err; 431 432 return thread; 433 434 out_err: 435 thread__zput(thread); 436 return NULL; 437 } 438 439 struct thread *machines__findnew_guest_code(struct machines *machines, pid_t pid) 440 { 441 struct machine *host_machine = machines__find(machines, HOST_KERNEL_ID); 442 struct machine *machine = machines__findnew(machines, pid); 443 444 return findnew_guest_code(machine, host_machine, pid); 445 } 446 447 struct thread *machine__findnew_guest_code(struct machine *machine, pid_t pid) 448 { 449 struct machines *machines = machine->machines; 450 struct machine *host_machine; 451 452 if (!machines) 453 return NULL; 454 455 host_machine = machines__find(machines, HOST_KERNEL_ID); 456 457 return findnew_guest_code(machine, host_machine, pid); 458 } 459 460 void machines__process_guests(struct machines *machines, 461 machine__process_t process, void *data) 462 { 463 struct rb_node *nd; 464 465 for (nd = rb_first_cached(&machines->guests); nd; nd = rb_next(nd)) { 466 struct machine *pos = rb_entry(nd, struct machine, rb_node); 467 process(pos, data); 468 } 469 } 470 471 void machines__set_id_hdr_size(struct machines *machines, u16 id_hdr_size) 472 { 473 struct rb_node *node; 474 struct machine *machine; 475 476 machines->host.id_hdr_size = id_hdr_size; 477 478 for (node = rb_first_cached(&machines->guests); node; 479 node = rb_next(node)) { 480 machine = rb_entry(node, struct machine, rb_node); 481 machine->id_hdr_size = id_hdr_size; 482 } 483 484 return; 485 } 486 487 static void machine__update_thread_pid(struct machine *machine, 488 struct thread *th, pid_t pid) 489 { 490 struct thread *leader; 491 492 if (pid == thread__pid(th) || pid == -1 || thread__pid(th) != -1) 493 return; 494 495 thread__set_pid(th, pid); 496 497 if (thread__pid(th) == thread__tid(th)) 498 return; 499 500 leader = machine__findnew_thread(machine, thread__pid(th), thread__pid(th)); 501 if (!leader) 502 goto out_err; 503 504 if (!thread__maps(leader)) 505 thread__set_maps(leader, maps__new(machine)); 506 507 if (!thread__maps(leader)) 508 goto out_err; 509 510 if (thread__maps(th) == thread__maps(leader)) 511 goto out_put; 512 513 if (thread__maps(th)) { 514 /* 515 * Maps are created from MMAP events which provide the pid and 516 * tid. Consequently there never should be any maps on a thread 517 * with an unknown pid. Just print an error if there are. 518 */ 519 if (!maps__empty(thread__maps(th))) 520 pr_err("Discarding thread maps for %d:%d\n", 521 thread__pid(th), thread__tid(th)); 522 maps__put(thread__maps(th)); 523 } 524 525 thread__set_maps(th, maps__get(thread__maps(leader))); 526 out_put: 527 thread__put(leader); 528 return; 529 out_err: 530 pr_err("Failed to join map groups for %d:%d\n", thread__pid(th), thread__tid(th)); 531 goto out_put; 532 } 533 534 /* 535 * Caller must eventually drop thread->refcnt returned with a successful 536 * lookup/new thread inserted. 537 */ 538 static struct thread *__machine__findnew_thread(struct machine *machine, 539 pid_t pid, 540 pid_t tid, 541 bool create) 542 { 543 struct thread *th = threads__find(&machine->threads, tid); 544 bool created; 545 546 if (th) { 547 machine__update_thread_pid(machine, th, pid); 548 return th; 549 } 550 if (!create) 551 return NULL; 552 553 th = threads__findnew(&machine->threads, pid, tid, &created); 554 if (created) { 555 /* 556 * We have to initialize maps separately after rb tree is 557 * updated. 558 * 559 * The reason is that we call machine__findnew_thread within 560 * thread__init_maps to find the thread leader and that would 561 * screwed the rb tree. 562 */ 563 if (thread__init_maps(th, machine)) { 564 pr_err("Thread init failed thread %d\n", pid); 565 threads__remove(&machine->threads, th); 566 thread__put(th); 567 return NULL; 568 } 569 } else 570 machine__update_thread_pid(machine, th, pid); 571 572 return th; 573 } 574 575 struct thread *machine__findnew_thread(struct machine *machine, pid_t pid, pid_t tid) 576 { 577 return __machine__findnew_thread(machine, pid, tid, /*create=*/true); 578 } 579 580 struct thread *machine__find_thread(struct machine *machine, pid_t pid, 581 pid_t tid) 582 { 583 return __machine__findnew_thread(machine, pid, tid, /*create=*/false); 584 } 585 586 /* 587 * Threads are identified by pid and tid, and the idle task has pid == tid == 0. 588 * So here a single thread is created for that, but actually there is a separate 589 * idle task per cpu, so there should be one 'struct thread' per cpu, but there 590 * is only 1. That causes problems for some tools, requiring workarounds. For 591 * example get_idle_thread() in builtin-sched.c, or thread_stack__per_cpu(). 592 */ 593 struct thread *machine__idle_thread(struct machine *machine) 594 { 595 struct thread *thread = machine__findnew_thread(machine, 0, 0); 596 597 if (!thread || thread__set_comm(thread, "swapper", 0) || 598 thread__set_namespaces(thread, 0, NULL)) 599 pr_err("problem inserting idle task for machine pid %d\n", machine->pid); 600 601 return thread; 602 } 603 604 struct comm *machine__thread_exec_comm(struct machine *machine, 605 struct thread *thread) 606 { 607 if (machine->comm_exec) 608 return thread__exec_comm(thread); 609 else 610 return thread__comm(thread); 611 } 612 613 int machine__process_comm_event(struct machine *machine, union perf_event *event, 614 struct perf_sample *sample) 615 { 616 struct thread *thread = machine__findnew_thread(machine, 617 event->comm.pid, 618 event->comm.tid); 619 bool exec = event->header.misc & PERF_RECORD_MISC_COMM_EXEC; 620 int err = 0; 621 622 if (exec) 623 machine->comm_exec = true; 624 625 if (dump_trace) 626 perf_event__fprintf_comm(event, stdout); 627 628 if (thread == NULL || 629 __thread__set_comm(thread, event->comm.comm, sample->time, exec)) { 630 dump_printf("problem processing PERF_RECORD_COMM, skipping event.\n"); 631 err = -1; 632 } 633 634 thread__put(thread); 635 636 return err; 637 } 638 639 int machine__process_namespaces_event(struct machine *machine __maybe_unused, 640 union perf_event *event, 641 struct perf_sample *sample __maybe_unused) 642 { 643 struct thread *thread = machine__findnew_thread(machine, 644 event->namespaces.pid, 645 event->namespaces.tid); 646 int err = 0; 647 648 WARN_ONCE(event->namespaces.nr_namespaces > NR_NAMESPACES, 649 "\nWARNING: kernel seems to support more namespaces than perf" 650 " tool.\nTry updating the perf tool..\n\n"); 651 652 WARN_ONCE(event->namespaces.nr_namespaces < NR_NAMESPACES, 653 "\nWARNING: perf tool seems to support more namespaces than" 654 " the kernel.\nTry updating the kernel..\n\n"); 655 656 if (dump_trace) 657 perf_event__fprintf_namespaces(event, stdout); 658 659 if (thread == NULL || 660 thread__set_namespaces(thread, sample->time, &event->namespaces)) { 661 dump_printf("problem processing PERF_RECORD_NAMESPACES, skipping event.\n"); 662 err = -1; 663 } 664 665 thread__put(thread); 666 667 return err; 668 } 669 670 int machine__process_cgroup_event(struct machine *machine, 671 union perf_event *event, 672 struct perf_sample *sample __maybe_unused) 673 { 674 struct cgroup *cgrp; 675 676 if (dump_trace) 677 perf_event__fprintf_cgroup(event, stdout); 678 679 cgrp = cgroup__findnew(machine->env, event->cgroup.id, event->cgroup.path); 680 if (cgrp == NULL) 681 return -ENOMEM; 682 683 return 0; 684 } 685 686 int machine__process_lost_event(struct machine *machine __maybe_unused, 687 union perf_event *event, struct perf_sample *sample __maybe_unused) 688 { 689 dump_printf(": id:%" PRI_lu64 ": lost:%" PRI_lu64 "\n", 690 event->lost.id, event->lost.lost); 691 return 0; 692 } 693 694 int machine__process_lost_samples_event(struct machine *machine __maybe_unused, 695 union perf_event *event, struct perf_sample *sample) 696 { 697 dump_printf(": id:%" PRIu64 ": lost samples :%" PRI_lu64 "%s\n", 698 sample->id, event->lost_samples.lost, 699 event->header.misc & PERF_RECORD_MISC_LOST_SAMPLES_BPF ? " (BPF)" : ""); 700 return 0; 701 } 702 703 int machine__process_aux_event(struct machine *machine __maybe_unused, 704 union perf_event *event) 705 { 706 if (dump_trace) 707 perf_event__fprintf_aux(event, stdout); 708 return 0; 709 } 710 711 int machine__process_itrace_start_event(struct machine *machine __maybe_unused, 712 union perf_event *event) 713 { 714 if (dump_trace) 715 perf_event__fprintf_itrace_start(event, stdout); 716 return 0; 717 } 718 719 int machine__process_aux_output_hw_id_event(struct machine *machine __maybe_unused, 720 union perf_event *event) 721 { 722 if (dump_trace) 723 perf_event__fprintf_aux_output_hw_id(event, stdout); 724 return 0; 725 } 726 727 int machine__process_switch_event(struct machine *machine __maybe_unused, 728 union perf_event *event) 729 { 730 bool out = event->header.misc & PERF_RECORD_MISC_SWITCH_OUT; 731 732 if (dump_trace) 733 perf_event__fprintf_switch(event, stdout); 734 machine->parallelism += out ? -1 : 1; 735 return 0; 736 } 737 738 static int machine__process_ksymbol_register(struct machine *machine, 739 union perf_event *event, 740 struct perf_sample *sample __maybe_unused) 741 { 742 struct symbol *sym; 743 struct dso *dso = NULL; 744 struct map *map; 745 int err = 0; 746 747 /* Ignore mapping symbols in ksymbol events - check early before any state mutation */ 748 if (is_ignored_kernel_symbol(event->ksymbol.name)) 749 return 0; 750 751 map = maps__find(machine__kernel_maps(machine), event->ksymbol.addr); 752 753 if (!map) { 754 dso = dso__new(event->ksymbol.name); 755 756 if (!dso) { 757 err = -ENOMEM; 758 goto out; 759 } 760 dso__set_kernel(dso, DSO_SPACE__KERNEL); 761 map = map__new2(0, dso); 762 if (!map) { 763 err = -ENOMEM; 764 goto out; 765 } 766 if (event->ksymbol.ksym_type == PERF_RECORD_KSYMBOL_TYPE_OOL) { 767 dso__set_binary_type(dso, DSO_BINARY_TYPE__OOL); 768 dso__data(dso)->file_size = event->ksymbol.len; 769 dso__set_loaded(dso); 770 } 771 772 map__set_start(map, event->ksymbol.addr); 773 map__set_end(map, map__start(map) + event->ksymbol.len); 774 err = maps__fixup_overlap_and_insert(machine__kernel_maps(machine), map); 775 if (err) { 776 err = -ENOMEM; 777 goto out; 778 } 779 780 dso__set_loaded(dso); 781 782 if (is_bpf_image(event->ksymbol.name)) { 783 dso__set_binary_type(dso, DSO_BINARY_TYPE__BPF_IMAGE); 784 dso__set_long_name(dso, "", false); 785 } 786 } else { 787 dso = dso__get(map__dso(map)); 788 } 789 790 sym = symbol__new(map__map_ip(map, map__start(map)), 791 event->ksymbol.len, 792 0, 0, event->ksymbol.name); 793 if (!sym) { 794 err = -ENOMEM; 795 goto out; 796 } 797 dso__insert_symbol(dso, sym); 798 out: 799 map__put(map); 800 dso__put(dso); 801 return err; 802 } 803 804 static int machine__process_ksymbol_unregister(struct machine *machine, 805 union perf_event *event, 806 struct perf_sample *sample __maybe_unused) 807 { 808 struct symbol *sym; 809 struct map *map; 810 811 /* Ignore mapping symbols in ksymbol events */ 812 if (is_ignored_kernel_symbol(event->ksymbol.name)) 813 return 0; 814 815 map = maps__find(machine__kernel_maps(machine), event->ksymbol.addr); 816 if (!map) 817 return 0; 818 819 if (!RC_CHK_EQUAL(map, machine->vmlinux_map)) 820 maps__remove(machine__kernel_maps(machine), map); 821 else { 822 struct dso *dso = map__dso(map); 823 824 sym = dso__find_symbol(dso, map__map_ip(map, map__start(map))); 825 if (sym) 826 dso__delete_symbol(dso, sym); 827 } 828 map__put(map); 829 return 0; 830 } 831 832 int machine__process_ksymbol(struct machine *machine __maybe_unused, 833 union perf_event *event, 834 struct perf_sample *sample) 835 { 836 if (dump_trace) 837 perf_event__fprintf_ksymbol(event, stdout); 838 839 if (event->header.size < offsetof(struct perf_record_ksymbol, name) + 2 || 840 !memchr(event->ksymbol.name, '\0', 841 event->header.size - offsetof(struct perf_record_ksymbol, name))) 842 return -EINVAL; 843 844 /* no need to process non-JIT BPF as it cannot get samples */ 845 if (event->ksymbol.len == 0) 846 return 0; 847 848 if (event->ksymbol.flags & PERF_RECORD_KSYMBOL_FLAGS_UNREGISTER) 849 return machine__process_ksymbol_unregister(machine, event, 850 sample); 851 return machine__process_ksymbol_register(machine, event, sample); 852 } 853 854 int machine__process_text_poke(struct machine *machine, union perf_event *event, 855 struct perf_sample *sample __maybe_unused) 856 { 857 struct map *map = maps__find(machine__kernel_maps(machine), event->text_poke.addr); 858 u8 cpumode = event->header.misc & PERF_RECORD_MISC_CPUMODE_MASK; 859 struct dso *dso = map ? map__dso(map) : NULL; 860 861 if (dump_trace) 862 perf_event__fprintf_text_poke(event, machine, stdout); 863 864 if (!event->text_poke.new_len) 865 goto out; 866 867 if (cpumode != PERF_RECORD_MISC_KERNEL) { 868 pr_debug("%s: unsupported cpumode - ignoring\n", __func__); 869 goto out; 870 } 871 872 if (dso) { 873 u8 *new_bytes = event->text_poke.bytes + event->text_poke.old_len; 874 int ret; 875 876 /* 877 * Kernel maps might be changed when loading symbols so loading 878 * must be done prior to using kernel maps. 879 */ 880 map__load(map); 881 ret = dso__data_write_cache_addr(dso, map, machine, 882 event->text_poke.addr, 883 new_bytes, 884 event->text_poke.new_len); 885 if (ret != event->text_poke.new_len) 886 pr_debug("Failed to write kernel text poke at %#" PRI_lx64 "\n", 887 event->text_poke.addr); 888 } else { 889 pr_debug("Failed to find kernel text poke address map for %#" PRI_lx64 "\n", 890 event->text_poke.addr); 891 } 892 out: 893 map__put(map); 894 return 0; 895 } 896 897 static struct map *machine__addnew_module_map(struct machine *machine, u64 start, 898 const char *filename) 899 { 900 struct map *map = NULL; 901 struct kmod_path m; 902 struct dso *dso; 903 int err; 904 905 if (kmod_path__parse_name(&m, filename)) 906 return NULL; 907 908 dso = dsos__findnew_module_dso(&machine->dsos, machine, &m, filename); 909 if (dso == NULL) 910 goto out; 911 912 map = map__new2(start, dso); 913 if (map == NULL) 914 goto out; 915 916 err = maps__insert(machine__kernel_maps(machine), map); 917 /* If maps__insert failed, return NULL. */ 918 if (err) { 919 map__put(map); 920 map = NULL; 921 } 922 out: 923 /* put the dso here, corresponding to machine__findnew_module_dso */ 924 dso__put(dso); 925 zfree(&m.name); 926 return map; 927 } 928 929 size_t machines__fprintf_dsos(struct machines *machines, FILE *fp) 930 { 931 struct rb_node *nd; 932 size_t ret = dsos__fprintf(&machines->host.dsos, fp); 933 934 for (nd = rb_first_cached(&machines->guests); nd; nd = rb_next(nd)) { 935 struct machine *pos = rb_entry(nd, struct machine, rb_node); 936 ret += dsos__fprintf(&pos->dsos, fp); 937 } 938 939 return ret; 940 } 941 942 size_t machine__fprintf_dsos_buildid(struct machine *m, FILE *fp, 943 bool (skip)(struct dso *dso, int parm), int parm) 944 { 945 return dsos__fprintf_buildid(&m->dsos, fp, skip, parm); 946 } 947 948 size_t machines__fprintf_dsos_buildid(struct machines *machines, FILE *fp, 949 bool (skip)(struct dso *dso, int parm), int parm) 950 { 951 struct rb_node *nd; 952 size_t ret = machine__fprintf_dsos_buildid(&machines->host, fp, skip, parm); 953 954 for (nd = rb_first_cached(&machines->guests); nd; nd = rb_next(nd)) { 955 struct machine *pos = rb_entry(nd, struct machine, rb_node); 956 ret += machine__fprintf_dsos_buildid(pos, fp, skip, parm); 957 } 958 return ret; 959 } 960 961 struct machine_fprintf_cb_args { 962 FILE *fp; 963 size_t printed; 964 }; 965 966 static int machine_fprintf_cb(struct thread *thread, void *data) 967 { 968 struct machine_fprintf_cb_args *args = data; 969 970 /* TODO: handle fprintf errors. */ 971 args->printed += thread__fprintf(thread, args->fp); 972 return 0; 973 } 974 975 size_t machine__fprintf(struct machine *machine, FILE *fp) 976 { 977 struct machine_fprintf_cb_args args = { 978 .fp = fp, 979 .printed = 0, 980 }; 981 size_t ret = fprintf(fp, "Threads: %zu\n", threads__nr(&machine->threads)); 982 983 machine__for_each_thread(machine, machine_fprintf_cb, &args); 984 return ret + args.printed; 985 } 986 987 static struct dso *machine__get_kernel(struct machine *machine) 988 { 989 const char *vmlinux_name = machine->mmap_name; 990 struct dso *kernel; 991 992 if (machine__is_host(machine)) { 993 if (symbol_conf.vmlinux_name) 994 vmlinux_name = symbol_conf.vmlinux_name; 995 996 kernel = machine__findnew_kernel(machine, vmlinux_name, 997 "[kernel]", DSO_SPACE__KERNEL); 998 } else { 999 if (symbol_conf.default_guest_vmlinux_name) 1000 vmlinux_name = symbol_conf.default_guest_vmlinux_name; 1001 1002 kernel = machine__findnew_kernel(machine, vmlinux_name, 1003 "[guest.kernel]", 1004 DSO_SPACE__KERNEL_GUEST); 1005 } 1006 1007 if (kernel != NULL && (!dso__has_build_id(kernel))) 1008 dso__read_running_kernel_build_id(kernel, machine); 1009 1010 return kernel; 1011 } 1012 1013 void machine__get_kallsyms_filename(struct machine *machine, char *buf, 1014 size_t bufsz) 1015 { 1016 if (machine__is_default_guest(machine)) 1017 scnprintf(buf, bufsz, "%s", symbol_conf.default_guest_kallsyms); 1018 else 1019 scnprintf(buf, bufsz, "%s/proc/kallsyms", machine->root_dir); 1020 } 1021 1022 const char *ref_reloc_sym_names[] = {"_text", "_stext", NULL}; 1023 1024 /* Figure out the start address of kernel map from /proc/kallsyms. 1025 * Returns the name of the start symbol in *symbol_name. Pass in NULL as 1026 * symbol_name if it's not that important. 1027 */ 1028 static int machine__get_running_kernel_start(struct machine *machine, 1029 const char **symbol_name, 1030 u64 *start, u64 *end) 1031 { 1032 char filename[PATH_MAX]; 1033 int i, err = -1; 1034 const char *name; 1035 u64 addr = 0; 1036 1037 machine__get_kallsyms_filename(machine, filename, PATH_MAX); 1038 1039 if (symbol__restricted_filename(filename, "/proc/kallsyms")) 1040 return 0; 1041 1042 for (i = 0; (name = ref_reloc_sym_names[i]) != NULL; i++) { 1043 err = kallsyms__get_function_start(filename, name, &addr); 1044 if (!err) 1045 break; 1046 } 1047 1048 if (err) 1049 return -1; 1050 1051 if (symbol_name) 1052 *symbol_name = name; 1053 1054 *start = addr; 1055 1056 err = kallsyms__get_symbol_start(filename, "_edata", &addr); 1057 if (err) 1058 err = kallsyms__get_symbol_start(filename, "_etext", &addr); 1059 if (!err) 1060 *end = addr; 1061 1062 return 0; 1063 } 1064 1065 int machine__create_extra_kernel_map(struct machine *machine, 1066 struct dso *kernel, 1067 struct extra_kernel_map *xm) 1068 { 1069 struct kmap *kmap; 1070 struct map *map; 1071 int err; 1072 1073 map = map__new2(xm->start, kernel); 1074 if (!map) 1075 return -ENOMEM; 1076 1077 map__set_end(map, xm->end); 1078 map__set_pgoff(map, xm->pgoff); 1079 1080 kmap = map__kmap(map); 1081 1082 strlcpy(kmap->name, xm->name, KMAP_NAME_LEN); 1083 1084 err = maps__insert(machine__kernel_maps(machine), map); 1085 1086 if (!err) { 1087 pr_debug2("Added extra kernel map %s %" PRIx64 "-%" PRIx64 "\n", 1088 kmap->name, map__start(map), map__end(map)); 1089 } 1090 1091 map__put(map); 1092 1093 return err; 1094 } 1095 1096 static u64 find_entry_trampoline(struct dso *dso) 1097 { 1098 /* Duplicates are removed so lookup all aliases */ 1099 const char *syms[] = { 1100 "_entry_trampoline", 1101 "__entry_trampoline_start", 1102 "entry_SYSCALL_64_trampoline", 1103 }; 1104 struct symbol *sym = dso__first_symbol(dso); 1105 unsigned int i; 1106 1107 for (; sym; sym = dso__next_symbol(sym)) { 1108 if (symbol__binding(sym) != STB_GLOBAL) 1109 continue; 1110 for (i = 0; i < ARRAY_SIZE(syms); i++) { 1111 if (!strcmp(sym->name, syms[i])) 1112 return sym->start; 1113 } 1114 } 1115 1116 return 0; 1117 } 1118 1119 /* 1120 * These values can be used for kernels that do not have symbols for the entry 1121 * trampolines in kallsyms. 1122 */ 1123 #define X86_64_CPU_ENTRY_AREA_PER_CPU 0xfffffe0000000000ULL 1124 #define X86_64_CPU_ENTRY_AREA_SIZE 0x2c000 1125 #define X86_64_ENTRY_TRAMPOLINE 0x6000 1126 1127 struct machine__map_x86_64_entry_trampolines_args { 1128 struct maps *kmaps; 1129 bool found; 1130 }; 1131 1132 static int machine__map_x86_64_entry_trampolines_cb(struct map *map, void *data) 1133 { 1134 struct machine__map_x86_64_entry_trampolines_args *args = data; 1135 struct map *dest_map; 1136 struct kmap *kmap = __map__kmap(map); 1137 1138 if (!kmap || !is_entry_trampoline(kmap->name)) 1139 return 0; 1140 1141 dest_map = maps__find(args->kmaps, map__pgoff(map)); 1142 if (RC_CHK_ACCESS(dest_map) != RC_CHK_ACCESS(map)) 1143 map__set_pgoff(map, map__map_ip(dest_map, map__pgoff(map))); 1144 1145 map__put(dest_map); 1146 args->found = true; 1147 return 0; 1148 } 1149 1150 /* Map x86_64 PTI entry trampolines */ 1151 int machine__map_x86_64_entry_trampolines(struct machine *machine, 1152 struct dso *kernel) 1153 { 1154 struct machine__map_x86_64_entry_trampolines_args args = { 1155 .kmaps = machine__kernel_maps(machine), 1156 .found = false, 1157 }; 1158 int nr_cpus_avail, cpu; 1159 u64 pgoff; 1160 1161 /* 1162 * In the vmlinux case, pgoff is a virtual address which must now be 1163 * mapped to a vmlinux offset. 1164 */ 1165 maps__for_each_map(args.kmaps, machine__map_x86_64_entry_trampolines_cb, &args); 1166 1167 if (args.found || machine->trampolines_mapped) 1168 return 0; 1169 1170 pgoff = find_entry_trampoline(kernel); 1171 if (!pgoff) 1172 return 0; 1173 1174 nr_cpus_avail = machine__nr_cpus_avail(machine); 1175 1176 /* Add a 1 page map for each CPU's entry trampoline */ 1177 for (cpu = 0; cpu < nr_cpus_avail; cpu++) { 1178 u64 va = X86_64_CPU_ENTRY_AREA_PER_CPU + 1179 cpu * X86_64_CPU_ENTRY_AREA_SIZE + 1180 X86_64_ENTRY_TRAMPOLINE; 1181 struct extra_kernel_map xm = { 1182 .start = va, 1183 .end = va + page_size, 1184 .pgoff = pgoff, 1185 }; 1186 1187 strlcpy(xm.name, ENTRY_TRAMPOLINE_NAME, KMAP_NAME_LEN); 1188 1189 if (machine__create_extra_kernel_map(machine, kernel, &xm) < 0) 1190 return -1; 1191 } 1192 1193 machine->trampolines_mapped = nr_cpus_avail; 1194 1195 return 0; 1196 } 1197 1198 int __weak machine__create_extra_kernel_maps(struct machine *machine __maybe_unused, 1199 struct dso *kernel __maybe_unused) 1200 { 1201 return 0; 1202 } 1203 1204 static int 1205 __machine__create_kernel_maps(struct machine *machine, struct dso *kernel) 1206 { 1207 /* In case of renewal the kernel map, destroy previous one */ 1208 machine__destroy_kernel_maps(machine); 1209 1210 map__put(machine->vmlinux_map); 1211 machine->vmlinux_map = map__new2(0, kernel); 1212 if (machine->vmlinux_map == NULL) 1213 return -ENOMEM; 1214 1215 map__set_mapping_type(machine->vmlinux_map, MAPPING_TYPE__IDENTITY); 1216 return maps__insert(machine__kernel_maps(machine), machine->vmlinux_map); 1217 } 1218 1219 void machine__destroy_kernel_maps(struct machine *machine) 1220 { 1221 struct kmap *kmap; 1222 struct map *map = machine__kernel_map(machine); 1223 1224 if (map == NULL) 1225 return; 1226 1227 kmap = map__kmap(map); 1228 maps__remove(machine__kernel_maps(machine), map); 1229 if (kmap && kmap->ref_reloc_sym) { 1230 zfree((char **)&kmap->ref_reloc_sym->name); 1231 zfree(&kmap->ref_reloc_sym); 1232 } 1233 1234 map__zput(machine->vmlinux_map); 1235 } 1236 1237 int machines__create_guest_kernel_maps(struct machines *machines) 1238 { 1239 int ret = 0; 1240 struct dirent **namelist = NULL; 1241 int i, items = 0; 1242 char path[PATH_MAX]; 1243 pid_t pid; 1244 char *endp; 1245 1246 if (symbol_conf.default_guest_vmlinux_name || 1247 symbol_conf.default_guest_modules || 1248 symbol_conf.default_guest_kallsyms) { 1249 machines__create_kernel_maps(machines, DEFAULT_GUEST_KERNEL_ID); 1250 } 1251 1252 if (symbol_conf.guestmount) { 1253 items = scandir(symbol_conf.guestmount, &namelist, NULL, NULL); 1254 if (items <= 0) 1255 return -ENOENT; 1256 for (i = 0; i < items; i++) { 1257 if (!isdigit(namelist[i]->d_name[0])) { 1258 /* Filter out . and .. */ 1259 free(namelist[i]); 1260 continue; 1261 } 1262 errno = 0; 1263 pid = (pid_t)strtol(namelist[i]->d_name, &endp, 10); 1264 if ((*endp != '\0') || 1265 (endp == namelist[i]->d_name) || 1266 (errno == ERANGE)) { 1267 pr_debug("invalid directory (%s). Skipping.\n", 1268 namelist[i]->d_name); 1269 free(namelist[i]); 1270 continue; 1271 } 1272 if (snprintf(path, sizeof(path), "%s/%s/proc/kallsyms", 1273 symbol_conf.guestmount, 1274 namelist[i]->d_name) >= (int)sizeof(path)) { 1275 pr_debug("Guest kallsyms path too long for %s. Skipping.\n", 1276 namelist[i]->d_name); 1277 free(namelist[i]); 1278 continue; 1279 } 1280 if (access(path, R_OK)) { 1281 pr_debug("Can't access file %s\n", path); 1282 free(namelist[i]); 1283 continue; 1284 } 1285 machines__create_kernel_maps(machines, pid); 1286 free(namelist[i]); 1287 } 1288 free(namelist); 1289 } 1290 1291 return ret; 1292 } 1293 1294 void machines__destroy_kernel_maps(struct machines *machines) 1295 { 1296 struct rb_node *next = rb_first_cached(&machines->guests); 1297 1298 machine__destroy_kernel_maps(&machines->host); 1299 1300 while (next) { 1301 struct machine *pos = rb_entry(next, struct machine, rb_node); 1302 1303 next = rb_next(&pos->rb_node); 1304 rb_erase_cached(&pos->rb_node, &machines->guests); 1305 machine__delete(pos); 1306 } 1307 } 1308 1309 int machines__create_kernel_maps(struct machines *machines, pid_t pid) 1310 { 1311 struct machine *machine = machines__findnew(machines, pid); 1312 1313 if (machine == NULL) 1314 return -1; 1315 1316 return machine__create_kernel_maps(machine); 1317 } 1318 1319 int machine__load_kallsyms(struct machine *machine, const char *filename) 1320 { 1321 struct map *map = machine__kernel_map(machine); 1322 struct dso *dso = map__dso(map); 1323 int ret = __dso__load_kallsyms(dso, filename, map, true); 1324 1325 if (ret > 0) { 1326 dso__set_loaded(dso); 1327 /* 1328 * Since /proc/kallsyms will have multiple sessions for the 1329 * kernel, with modules between them, fixup the end of all 1330 * sections. 1331 */ 1332 maps__fixup_end(machine__kernel_maps(machine)); 1333 } 1334 1335 return ret; 1336 } 1337 1338 int machine__load_vmlinux_path(struct machine *machine) 1339 { 1340 struct map *map = machine__kernel_map(machine); 1341 struct dso *dso = map__dso(map); 1342 int ret = dso__load_vmlinux_path(dso, map); 1343 1344 if (ret > 0) 1345 dso__set_loaded(dso); 1346 1347 return ret; 1348 } 1349 1350 static char *get_kernel_version(const char *root_dir) 1351 { 1352 char version[PATH_MAX]; 1353 FILE *file; 1354 char *name, *tmp; 1355 const char *prefix = "Linux version "; 1356 1357 snprintf(version, sizeof(version), "%s/proc/version", root_dir); 1358 file = fopen(version, "r"); 1359 if (!file) 1360 return NULL; 1361 1362 tmp = fgets(version, sizeof(version), file); 1363 fclose(file); 1364 if (!tmp) 1365 return NULL; 1366 1367 name = strstr(version, prefix); 1368 if (!name) 1369 return NULL; 1370 name += strlen(prefix); 1371 tmp = strchr(name, ' '); 1372 if (tmp) 1373 *tmp = '\0'; 1374 1375 return strdup(name); 1376 } 1377 1378 static bool is_kmod_dso(struct dso *dso) 1379 { 1380 return dso__symtab_type(dso) == DSO_BINARY_TYPE__SYSTEM_PATH_KMODULE || 1381 dso__symtab_type(dso) == DSO_BINARY_TYPE__GUEST_KMODULE; 1382 } 1383 1384 static int maps__set_module_path(struct maps *maps, const char *path, struct kmod_path *m) 1385 { 1386 char *long_name; 1387 struct dso *dso; 1388 struct map *map = maps__find_by_name(maps, m->name); 1389 1390 if (map == NULL) 1391 return 0; 1392 1393 long_name = strdup(path); 1394 if (long_name == NULL) { 1395 map__put(map); 1396 return -ENOMEM; 1397 } 1398 1399 dso = map__dso(map); 1400 dso__set_long_name(dso, long_name, true); 1401 dso__kernel_module_get_build_id(dso, ""); 1402 1403 /* 1404 * Full name could reveal us kmod compression, so 1405 * we need to update the symtab_type if needed. 1406 */ 1407 if (m->comp && is_kmod_dso(dso)) { 1408 dso__set_symtab_type(dso, dso__symtab_type(dso)+1); 1409 dso__set_comp(dso, m->comp); 1410 } 1411 map__put(map); 1412 return 0; 1413 } 1414 1415 static int maps__set_modules_path_dir(struct maps *maps, char *path, size_t path_size, int depth) 1416 { 1417 struct io_dirent64 *dent; 1418 struct io_dir iod; 1419 size_t root_len = strlen(path); 1420 int ret = 0; 1421 1422 io_dir__init(&iod, open(path, O_CLOEXEC | O_DIRECTORY | O_RDONLY)); 1423 if (iod.dirfd < 0) { 1424 pr_debug("%s: cannot open %s dir\n", __func__, path); 1425 return -1; 1426 } 1427 /* Bounds check, should never happen. */ 1428 if (root_len >= path_size) { 1429 ret = -1; 1430 goto out; 1431 } 1432 path[root_len++] = '/'; 1433 while ((dent = io_dir__readdir(&iod)) != NULL) { 1434 if (io_dir__is_dir(&iod, dent)) { 1435 if (!strcmp(dent->d_name, ".") || 1436 !strcmp(dent->d_name, "..")) 1437 continue; 1438 1439 /* Do not follow top-level source and build symlinks */ 1440 if (depth == 0) { 1441 if (!strcmp(dent->d_name, "source") || 1442 !strcmp(dent->d_name, "build")) 1443 continue; 1444 } 1445 1446 /* Bounds check, should never happen. */ 1447 if (root_len + strlen(dent->d_name) >= path_size) 1448 continue; 1449 1450 strcpy(path + root_len, dent->d_name); 1451 ret = maps__set_modules_path_dir(maps, path, path_size, depth + 1); 1452 if (ret < 0) 1453 goto out; 1454 } else { 1455 struct kmod_path m; 1456 1457 ret = kmod_path__parse_name(&m, dent->d_name); 1458 if (ret) 1459 goto out; 1460 1461 if (m.kmod) { 1462 /* Bounds check, should never happen. */ 1463 if (root_len + strlen(dent->d_name) < path_size) { 1464 strcpy(path + root_len, dent->d_name); 1465 ret = maps__set_module_path(maps, path, &m); 1466 1467 } 1468 } 1469 zfree(&m.name); 1470 1471 if (ret) 1472 goto out; 1473 } 1474 } 1475 1476 out: 1477 close(iod.dirfd); 1478 return ret; 1479 } 1480 1481 static int machine__set_modules_path(struct machine *machine) 1482 { 1483 char *version; 1484 char modules_path[PATH_MAX]; 1485 1486 version = get_kernel_version(machine->root_dir); 1487 if (!version) 1488 return -1; 1489 1490 snprintf(modules_path, sizeof(modules_path), "%s/lib/modules/%s", 1491 machine->root_dir, version); 1492 free(version); 1493 1494 return maps__set_modules_path_dir(machine__kernel_maps(machine), 1495 modules_path, sizeof(modules_path), 0); 1496 } 1497 int __weak arch__fix_module_text_start(u64 *start __maybe_unused, 1498 u64 *size __maybe_unused, 1499 const char *name __maybe_unused) 1500 { 1501 return 0; 1502 } 1503 1504 static int machine__create_module(void *arg, const char *name, u64 start, 1505 u64 size) 1506 { 1507 struct machine *machine = arg; 1508 struct map *map; 1509 1510 if (arch__fix_module_text_start(&start, &size, name) < 0) 1511 return -1; 1512 1513 map = machine__addnew_module_map(machine, start, name); 1514 if (map == NULL) 1515 return -1; 1516 map__set_end(map, start + size); 1517 1518 dso__kernel_module_get_build_id(map__dso(map), machine->root_dir); 1519 map__put(map); 1520 return 0; 1521 } 1522 1523 static int machine__create_modules(struct machine *machine) 1524 { 1525 const char *modules; 1526 char path[PATH_MAX]; 1527 1528 if (machine__is_default_guest(machine)) { 1529 modules = symbol_conf.default_guest_modules; 1530 } else { 1531 snprintf(path, PATH_MAX, "%s/proc/modules", machine->root_dir); 1532 modules = path; 1533 } 1534 1535 if (symbol__restricted_filename(modules, "/proc/modules")) 1536 return -1; 1537 1538 if (modules__parse(modules, machine, machine__create_module)) 1539 return -1; 1540 1541 if (!machine__set_modules_path(machine)) 1542 return 0; 1543 1544 pr_debug("Problems setting modules path maps, continuing anyway...\n"); 1545 1546 return 0; 1547 } 1548 1549 static void machine__set_kernel_mmap(struct machine *machine, 1550 u64 start, u64 end) 1551 { 1552 map__set_start(machine->vmlinux_map, start); 1553 map__set_end(machine->vmlinux_map, end); 1554 /* 1555 * Be a bit paranoid here, some perf.data file came with 1556 * a zero sized synthesized MMAP event for the kernel. 1557 */ 1558 if (start == 0 && end == 0) 1559 map__set_end(machine->vmlinux_map, ~0ULL); 1560 } 1561 1562 struct kernel_mmap_mutation_ctx { 1563 u64 start; 1564 u64 end; 1565 }; 1566 1567 static int kernel_mmap_mutate_cb(struct map *map, void *data) 1568 { 1569 struct kernel_mmap_mutation_ctx *ctx = data; 1570 1571 map__set_start(map, ctx->start); 1572 map__set_end(map, ctx->end); 1573 if (ctx->start == 0 && ctx->end == 0) 1574 map__set_end(map, ~0ULL); 1575 return 0; 1576 } 1577 1578 static int machine__update_kernel_mmap(struct machine *machine, 1579 u64 start, u64 end) 1580 { 1581 struct kernel_mmap_mutation_ctx ctx = { .start = start, .end = end }; 1582 1583 return maps__mutate_mapping(machine__kernel_maps(machine), 1584 machine->vmlinux_map, 1585 kernel_mmap_mutate_cb, &ctx); 1586 } 1587 1588 int machine__create_kernel_maps(struct machine *machine) 1589 { 1590 struct dso *kernel = machine__get_kernel(machine); 1591 const char *name = NULL; 1592 u64 start = 0, end = ~0ULL; 1593 int ret; 1594 1595 if (kernel == NULL) 1596 return -1; 1597 1598 ret = __machine__create_kernel_maps(machine, kernel); 1599 if (ret < 0) 1600 goto out_put; 1601 1602 if (symbol_conf.use_modules && machine__create_modules(machine) < 0) { 1603 if (machine__is_host(machine)) 1604 pr_debug("Problems creating module maps, " 1605 "continuing anyway...\n"); 1606 else 1607 pr_debug("Problems creating module maps for guest %d, " 1608 "continuing anyway...\n", machine->pid); 1609 } 1610 1611 if (!machine__get_running_kernel_start(machine, &name, &start, &end)) { 1612 if (name && 1613 map__set_kallsyms_ref_reloc_sym(machine->vmlinux_map, name, start)) { 1614 machine__destroy_kernel_maps(machine); 1615 ret = -1; 1616 goto out_put; 1617 } 1618 1619 /* 1620 * we have a real start address now, so re-order the kmaps 1621 * assume it's the last in the kmaps 1622 */ 1623 ret = machine__update_kernel_mmap(machine, start, end); 1624 if (ret < 0) 1625 goto out_put; 1626 } 1627 1628 if (machine__create_extra_kernel_maps(machine, kernel)) 1629 pr_debug("Problems creating extra kernel maps, continuing anyway...\n"); 1630 1631 if (end == ~0ULL) { 1632 /* update end address of the kernel map using adjacent module address */ 1633 struct map *next = maps__find_next_entry(machine__kernel_maps(machine), 1634 machine__kernel_map(machine)); 1635 1636 if (next) { 1637 machine__set_kernel_mmap(machine, start, map__start(next)); 1638 map__put(next); 1639 } 1640 } 1641 1642 maps__fixup_end(machine__kernel_maps(machine)); 1643 1644 out_put: 1645 dso__put(kernel); 1646 return ret; 1647 } 1648 1649 static int machine__uses_kcore_cb(struct dso *dso, void *data __maybe_unused) 1650 { 1651 return dso__is_kcore(dso) ? 1 : 0; 1652 } 1653 1654 static bool machine__uses_kcore(struct machine *machine) 1655 { 1656 return dsos__for_each_dso(&machine->dsos, machine__uses_kcore_cb, NULL) != 0 ? true : false; 1657 } 1658 1659 static bool machine__is(struct machine *machine, uint16_t e_machine) 1660 { 1661 if (!machine) 1662 return false; 1663 1664 if (!machine->env) { 1665 if (machine__is_host(machine)) 1666 return e_machine == EM_HOST; 1667 return false; 1668 } 1669 1670 return perf_env__e_machine(machine->env, NULL) == e_machine; 1671 } 1672 1673 static bool perf_event__is_extra_kernel_mmap(struct machine *machine, 1674 struct extra_kernel_map *xm) 1675 { 1676 return machine__is(machine, EM_X86_64) && 1677 is_entry_trampoline(xm->name); 1678 } 1679 1680 static int machine__process_extra_kernel_map(struct machine *machine, 1681 struct extra_kernel_map *xm) 1682 { 1683 struct dso *kernel = machine__kernel_dso(machine); 1684 1685 if (kernel == NULL) 1686 return -1; 1687 1688 return machine__create_extra_kernel_map(machine, kernel, xm); 1689 } 1690 1691 static int machine__process_kernel_mmap_event(struct machine *machine, 1692 struct extra_kernel_map *xm, 1693 struct build_id *bid) 1694 { 1695 enum dso_space_type dso_space; 1696 bool is_kernel_mmap; 1697 const char *mmap_name = machine->mmap_name; 1698 1699 /* If we have maps from kcore then we do not need or want any others */ 1700 if (machine__uses_kcore(machine)) 1701 return 0; 1702 1703 if (machine__is_host(machine)) 1704 dso_space = DSO_SPACE__KERNEL; 1705 else 1706 dso_space = DSO_SPACE__KERNEL_GUEST; 1707 1708 is_kernel_mmap = memcmp(xm->name, mmap_name, strlen(mmap_name) - 1) == 0; 1709 if (!is_kernel_mmap && !machine__is_host(machine)) { 1710 /* 1711 * If the event was recorded inside the guest and injected into 1712 * the host perf.data file, then it will match a host mmap_name, 1713 * so try that - see machine__set_mmap_name(). 1714 */ 1715 mmap_name = "[kernel.kallsyms]"; 1716 is_kernel_mmap = memcmp(xm->name, mmap_name, strlen(mmap_name) - 1) == 0; 1717 } 1718 if (xm->name[0] == '/' || 1719 (!is_kernel_mmap && xm->name[0] == '[')) { 1720 struct map *map = machine__addnew_module_map(machine, xm->start, xm->name); 1721 1722 if (map == NULL) 1723 goto out_problem; 1724 1725 map__set_end(map, map__start(map) + xm->end - xm->start); 1726 1727 if (build_id__is_defined(bid)) 1728 dso__set_build_id(map__dso(map), bid); 1729 1730 map__put(map); 1731 } else if (is_kernel_mmap) { 1732 const char *symbol_name = xm->name + strlen(mmap_name); 1733 /* 1734 * Should be there already, from the build-id table in 1735 * the header. 1736 */ 1737 struct dso *kernel = dsos__find_kernel_dso(&machine->dsos); 1738 1739 if (kernel == NULL) 1740 kernel = machine__findnew_dso(machine, machine->mmap_name); 1741 if (kernel == NULL) 1742 goto out_problem; 1743 1744 dso__set_kernel(kernel, dso_space); 1745 if (__machine__create_kernel_maps(machine, kernel) < 0) { 1746 dso__put(kernel); 1747 goto out_problem; 1748 } 1749 1750 if (strstr(dso__long_name(kernel), "vmlinux")) 1751 dso__set_short_name(kernel, "[kernel.vmlinux]", false); 1752 1753 if (machine__update_kernel_mmap(machine, xm->start, xm->end) < 0) { 1754 dso__put(kernel); 1755 goto out_problem; 1756 } 1757 1758 if (build_id__is_defined(bid)) 1759 dso__set_build_id(kernel, bid); 1760 1761 /* 1762 * Avoid using a zero address (kptr_restrict) for the ref reloc 1763 * symbol. Effectively having zero here means that at record 1764 * time /proc/sys/kernel/kptr_restrict was non zero. 1765 */ 1766 if (xm->pgoff != 0) { 1767 map__set_kallsyms_ref_reloc_sym(machine->vmlinux_map, 1768 symbol_name, 1769 xm->pgoff); 1770 } 1771 1772 if (machine__is_default_guest(machine)) { 1773 /* 1774 * preload dso of guest kernel and modules 1775 */ 1776 dso__load(kernel, machine__kernel_map(machine)); 1777 } 1778 dso__put(kernel); 1779 } else if (perf_event__is_extra_kernel_mmap(machine, xm)) { 1780 return machine__process_extra_kernel_map(machine, xm); 1781 } 1782 return 0; 1783 out_problem: 1784 return -1; 1785 } 1786 1787 int machine__process_mmap2_event(struct machine *machine, 1788 union perf_event *event, 1789 struct perf_sample *sample) 1790 { 1791 struct thread *thread; 1792 struct map *map; 1793 struct dso_id dso_id = dso_id_empty; 1794 int ret = 0; 1795 1796 if (dump_trace) 1797 perf_event__fprintf_mmap2(event, stdout); 1798 1799 if (event->header.misc & PERF_RECORD_MISC_MMAP_BUILD_ID) { 1800 build_id__init(&dso_id.build_id, event->mmap2.build_id, event->mmap2.build_id_size); 1801 } else { 1802 dso_id.maj = event->mmap2.maj; 1803 dso_id.min = event->mmap2.min; 1804 dso_id.ino = event->mmap2.ino; 1805 dso_id.ino_generation = event->mmap2.ino_generation; 1806 dso_id.mmap2_valid = true; 1807 dso_id.mmap2_ino_generation_valid = true; 1808 } 1809 1810 if (sample->cpumode == PERF_RECORD_MISC_GUEST_KERNEL || 1811 sample->cpumode == PERF_RECORD_MISC_KERNEL) { 1812 struct extra_kernel_map xm = { 1813 .start = event->mmap2.start, 1814 .end = event->mmap2.start + event->mmap2.len, 1815 .pgoff = event->mmap2.pgoff, 1816 }; 1817 1818 strlcpy(xm.name, event->mmap2.filename, KMAP_NAME_LEN); 1819 ret = machine__process_kernel_mmap_event(machine, &xm, &dso_id.build_id); 1820 if (ret < 0) 1821 goto out_problem; 1822 return 0; 1823 } 1824 1825 thread = machine__findnew_thread(machine, event->mmap2.pid, 1826 event->mmap2.tid); 1827 if (thread == NULL) 1828 goto out_problem; 1829 1830 map = map__new(machine, event->mmap2.start, 1831 event->mmap2.len, event->mmap2.pgoff, 1832 &dso_id, event->mmap2.prot, 1833 event->mmap2.flags, 1834 event->mmap2.filename, thread); 1835 1836 if (map == NULL) 1837 goto out_problem_map; 1838 1839 ret = thread__insert_map(thread, map); 1840 if (ret) 1841 goto out_problem_insert; 1842 1843 thread__put(thread); 1844 map__put(map); 1845 return 0; 1846 1847 out_problem_insert: 1848 map__put(map); 1849 out_problem_map: 1850 thread__put(thread); 1851 out_problem: 1852 dump_printf("problem processing PERF_RECORD_MMAP2, skipping event.\n"); 1853 return 0; 1854 } 1855 1856 int machine__process_mmap_event(struct machine *machine, union perf_event *event, 1857 struct perf_sample *sample) 1858 { 1859 struct thread *thread; 1860 struct map *map; 1861 u32 prot = 0; 1862 int ret = 0; 1863 1864 if (dump_trace) 1865 perf_event__fprintf_mmap(event, stdout); 1866 1867 if (sample->cpumode == PERF_RECORD_MISC_GUEST_KERNEL || 1868 sample->cpumode == PERF_RECORD_MISC_KERNEL) { 1869 struct extra_kernel_map xm = { 1870 .start = event->mmap.start, 1871 .end = event->mmap.start + event->mmap.len, 1872 .pgoff = event->mmap.pgoff, 1873 }; 1874 1875 strlcpy(xm.name, event->mmap.filename, KMAP_NAME_LEN); 1876 ret = machine__process_kernel_mmap_event(machine, &xm, NULL); 1877 if (ret < 0) 1878 goto out_problem; 1879 return 0; 1880 } 1881 1882 thread = machine__findnew_thread(machine, event->mmap.pid, 1883 event->mmap.tid); 1884 if (thread == NULL) 1885 goto out_problem; 1886 1887 if (!(event->header.misc & PERF_RECORD_MISC_MMAP_DATA)) 1888 prot = PROT_EXEC; 1889 1890 map = map__new(machine, event->mmap.start, 1891 event->mmap.len, event->mmap.pgoff, 1892 &dso_id_empty, prot, /*flags=*/0, event->mmap.filename, thread); 1893 1894 if (map == NULL) 1895 goto out_problem_map; 1896 1897 ret = thread__insert_map(thread, map); 1898 if (ret) 1899 goto out_problem_insert; 1900 1901 thread__put(thread); 1902 map__put(map); 1903 return 0; 1904 1905 out_problem_insert: 1906 map__put(map); 1907 out_problem_map: 1908 thread__put(thread); 1909 out_problem: 1910 dump_printf("problem processing PERF_RECORD_MMAP, skipping event.\n"); 1911 return 0; 1912 } 1913 1914 void machine__remove_thread(struct machine *machine, struct thread *th) 1915 { 1916 return threads__remove(&machine->threads, th); 1917 } 1918 1919 int machine__process_fork_event(struct machine *machine, union perf_event *event, 1920 struct perf_sample *sample) 1921 { 1922 struct thread *thread = machine__find_thread(machine, 1923 event->fork.pid, 1924 event->fork.tid); 1925 struct thread *parent = machine__findnew_thread(machine, 1926 event->fork.ppid, 1927 event->fork.ptid); 1928 bool do_maps_clone = true; 1929 int err = 0; 1930 1931 if (dump_trace) 1932 perf_event__fprintf_task(event, stdout); 1933 1934 /* 1935 * There may be an existing thread that is not actually the parent, 1936 * either because we are processing events out of order, or because the 1937 * (fork) event that would have removed the thread was lost. Assume the 1938 * latter case and continue on as best we can. 1939 */ 1940 if (parent != NULL && 1941 thread__pid(parent) != (pid_t)event->fork.ppid) { 1942 dump_printf("removing erroneous parent thread %d/%d\n", 1943 thread__pid(parent), thread__tid(parent)); 1944 machine__remove_thread(machine, parent); 1945 thread__put(parent); 1946 parent = machine__findnew_thread(machine, event->fork.ppid, 1947 event->fork.ptid); 1948 } 1949 1950 /* if a thread currently exists for the thread id remove it */ 1951 if (thread != NULL) { 1952 machine__remove_thread(machine, thread); 1953 thread__put(thread); 1954 } 1955 1956 thread = machine__findnew_thread(machine, event->fork.pid, 1957 event->fork.tid); 1958 /* 1959 * When synthesizing FORK events, we are trying to create thread 1960 * objects for the already running tasks on the machine. 1961 * 1962 * Normally, for a kernel FORK event, we want to clone the parent's 1963 * maps because that is what the kernel just did. 1964 * 1965 * But when synthesizing, this should not be done. If we do, we end up 1966 * with overlapping maps as we process the synthesized MMAP2 events that 1967 * get delivered shortly thereafter. 1968 * 1969 * Use the FORK event misc flags in an internal way to signal this 1970 * situation, so we can elide the map clone when appropriate. 1971 */ 1972 if (event->fork.header.misc & PERF_RECORD_MISC_FORK_EXEC) 1973 do_maps_clone = false; 1974 1975 if (thread == NULL || parent == NULL || 1976 thread__fork(thread, parent, sample->time, do_maps_clone) < 0) { 1977 dump_printf("problem processing PERF_RECORD_FORK, skipping event.\n"); 1978 err = -1; 1979 } 1980 thread__put(thread); 1981 thread__put(parent); 1982 1983 return err; 1984 } 1985 1986 int machine__process_exit_event(struct machine *machine, union perf_event *event, 1987 struct perf_sample *sample __maybe_unused) 1988 { 1989 struct thread *thread = machine__find_thread(machine, 1990 event->fork.pid, 1991 event->fork.tid); 1992 1993 if (dump_trace) 1994 perf_event__fprintf_task(event, stdout); 1995 1996 /* There is no context switch out before exit, so we decrement here. */ 1997 machine->parallelism--; 1998 if (thread != NULL) { 1999 if (symbol_conf.keep_exited_threads) 2000 thread__set_exited(thread, /*exited=*/true); 2001 else 2002 machine__remove_thread(machine, thread); 2003 } 2004 thread__put(thread); 2005 return 0; 2006 } 2007 2008 int machine__process_event(struct machine *machine, union perf_event *event, 2009 struct perf_sample *sample) 2010 { 2011 int ret; 2012 2013 switch (event->header.type) { 2014 case PERF_RECORD_COMM: 2015 ret = machine__process_comm_event(machine, event, sample); break; 2016 case PERF_RECORD_MMAP: 2017 ret = machine__process_mmap_event(machine, event, sample); break; 2018 case PERF_RECORD_NAMESPACES: 2019 ret = machine__process_namespaces_event(machine, event, sample); break; 2020 case PERF_RECORD_CGROUP: 2021 ret = machine__process_cgroup_event(machine, event, sample); break; 2022 case PERF_RECORD_MMAP2: 2023 ret = machine__process_mmap2_event(machine, event, sample); break; 2024 case PERF_RECORD_FORK: 2025 ret = machine__process_fork_event(machine, event, sample); break; 2026 case PERF_RECORD_EXIT: 2027 ret = machine__process_exit_event(machine, event, sample); break; 2028 case PERF_RECORD_LOST: 2029 ret = machine__process_lost_event(machine, event, sample); break; 2030 case PERF_RECORD_AUX: 2031 ret = machine__process_aux_event(machine, event); break; 2032 case PERF_RECORD_ITRACE_START: 2033 ret = machine__process_itrace_start_event(machine, event); break; 2034 case PERF_RECORD_LOST_SAMPLES: 2035 ret = machine__process_lost_samples_event(machine, event, sample); break; 2036 case PERF_RECORD_SWITCH: 2037 case PERF_RECORD_SWITCH_CPU_WIDE: 2038 ret = machine__process_switch_event(machine, event); break; 2039 case PERF_RECORD_KSYMBOL: 2040 ret = machine__process_ksymbol(machine, event, sample); break; 2041 case PERF_RECORD_BPF_EVENT: 2042 ret = machine__process_bpf(machine, event, sample); break; 2043 case PERF_RECORD_TEXT_POKE: 2044 ret = machine__process_text_poke(machine, event, sample); break; 2045 case PERF_RECORD_AUX_OUTPUT_HW_ID: 2046 ret = machine__process_aux_output_hw_id_event(machine, event); break; 2047 default: 2048 ret = -1; 2049 break; 2050 } 2051 2052 return ret; 2053 } 2054 2055 static bool symbol__match_regex(struct symbol *sym, regex_t *regex) 2056 { 2057 return regexec(regex, sym->name, 0, NULL, 0) == 0; 2058 } 2059 2060 static void ip__resolve_ams(struct thread *thread, 2061 struct addr_map_symbol *ams, 2062 u64 ip) 2063 { 2064 struct addr_location al; 2065 2066 addr_location__init(&al); 2067 /* 2068 * We cannot use the header.misc hint to determine whether a 2069 * branch stack address is user, kernel, guest, hypervisor. 2070 * Branches may straddle the kernel/user/hypervisor boundaries. 2071 * Thus, we have to try consecutively until we find a match 2072 * or else, the symbol is unknown 2073 */ 2074 thread__find_cpumode_addr_location(thread, ip, /*symbols=*/true, &al); 2075 2076 ams->addr = ip; 2077 ams->al_addr = al.addr; 2078 ams->al_level = al.level; 2079 ams->ms.thread = thread__get(al.thread); 2080 ams->ms.sym = al.sym; 2081 ams->ms.map = map__get(al.map); 2082 ams->phys_addr = 0; 2083 ams->data_page_size = 0; 2084 addr_location__exit(&al); 2085 } 2086 2087 static void ip__resolve_data(struct thread *thread, 2088 u8 m, struct addr_map_symbol *ams, 2089 u64 addr, u64 phys_addr, u64 daddr_page_size) 2090 { 2091 struct addr_location al; 2092 2093 addr_location__init(&al); 2094 2095 thread__find_symbol(thread, m, addr, &al); 2096 2097 ams->addr = addr; 2098 ams->al_addr = al.addr; 2099 ams->al_level = al.level; 2100 ams->ms.thread = thread__get(al.thread); 2101 ams->ms.sym = al.sym; 2102 ams->ms.map = map__get(al.map); 2103 ams->phys_addr = phys_addr; 2104 ams->data_page_size = daddr_page_size; 2105 addr_location__exit(&al); 2106 } 2107 2108 struct mem_info *sample__resolve_mem(struct perf_sample *sample, 2109 struct addr_location *al) 2110 { 2111 struct mem_info *mi = mem_info__new(); 2112 2113 if (!mi) 2114 return NULL; 2115 2116 ip__resolve_ams(al->thread, mem_info__iaddr(mi), sample->ip); 2117 ip__resolve_data(al->thread, al->cpumode, mem_info__daddr(mi), 2118 sample->addr, sample->phys_addr, 2119 sample->data_page_size); 2120 mem_info__data_src(mi)->val = sample->data_src; 2121 2122 return mi; 2123 } 2124 2125 static char *callchain_srcline(struct map_symbol *ms, u64 ip) 2126 { 2127 struct map *map = ms->map; 2128 char *srcline = NULL; 2129 struct dso *dso; 2130 2131 if (!map || callchain_param.key == CCKEY_FUNCTION) 2132 return srcline; 2133 2134 dso = map__dso(map); 2135 srcline = srcline__tree_find(dso__srclines(dso), ip); 2136 if (!srcline) { 2137 bool show_sym = false; 2138 bool show_addr = callchain_param.key == CCKEY_ADDRESS; 2139 2140 srcline = get_srcline(dso, map__rip_2objdump(map, ip), 2141 ms->sym, show_sym, show_addr, ip); 2142 srcline__tree_insert(dso__srclines(dso), ip, srcline); 2143 } 2144 2145 return srcline; 2146 } 2147 2148 struct iterations { 2149 int nr_loop_iter; 2150 u64 cycles; 2151 }; 2152 2153 static int append_inlines(struct callchain_cursor *cursor, struct map_symbol *ms, u64 ip, 2154 bool branch, struct branch_flags *flags, int nr_loop_iter, 2155 u64 iter_cycles, u64 branch_from) 2156 { 2157 struct symbol *sym = ms->sym; 2158 struct map *map = ms->map; 2159 struct inline_node *inline_node; 2160 struct inline_list *ilist; 2161 struct dso *dso; 2162 u64 addr; 2163 int ret = 1; 2164 struct map_symbol ilist_ms; 2165 bool first = true; 2166 2167 if (!symbol_conf.inline_name || !map || !sym) 2168 return ret; 2169 2170 addr = map__dso_map_ip(map, ip); 2171 addr = map__rip_2objdump(map, addr); 2172 dso = map__dso(map); 2173 2174 inline_node = inlines__tree_find(dso__inlined_nodes(dso), addr); 2175 if (!inline_node) { 2176 inline_node = dso__parse_addr_inlines(dso, addr, sym); 2177 if (!inline_node) 2178 return ret; 2179 inlines__tree_insert(dso__inlined_nodes(dso), inline_node); 2180 } 2181 2182 ilist_ms = (struct map_symbol) { 2183 .thread = thread__get(ms->thread), 2184 .map = map__get(map), 2185 }; 2186 list_for_each_entry(ilist, &inline_node->val, list) { 2187 ilist_ms.sym = ilist->symbol; 2188 if (first) { 2189 ret = callchain_cursor_append(cursor, ip, &ilist_ms, 2190 branch, flags, nr_loop_iter, 2191 iter_cycles, branch_from, ilist->srcline); 2192 } else { 2193 ret = callchain_cursor_append(cursor, ip, &ilist_ms, false, 2194 NULL, 0, 0, 0, ilist->srcline); 2195 } 2196 first = false; 2197 2198 if (ret != 0) 2199 return ret; 2200 } 2201 map_symbol__exit(&ilist_ms); 2202 2203 return ret; 2204 } 2205 2206 static int add_callchain_ip(struct thread *thread, 2207 struct callchain_cursor *cursor, 2208 struct symbol **parent, 2209 struct addr_location *root_al, 2210 u8 *cpumode, 2211 u64 ip, 2212 bool branch, 2213 struct branch_flags *flags, 2214 struct iterations *iter, 2215 u64 branch_from, 2216 bool symbols) 2217 { 2218 struct map_symbol ms = {}; 2219 struct addr_location al; 2220 int nr_loop_iter = 0, err = 0; 2221 u64 iter_cycles = 0; 2222 const char *srcline = NULL; 2223 2224 addr_location__init(&al); 2225 al.filtered = 0; 2226 al.sym = NULL; 2227 al.srcline = NULL; 2228 if (!cpumode) { 2229 thread__find_cpumode_addr_location(thread, ip, symbols, &al); 2230 } else { 2231 if (ip >= PERF_CONTEXT_MAX) { 2232 switch (ip) { 2233 case PERF_CONTEXT_HV: 2234 *cpumode = PERF_RECORD_MISC_HYPERVISOR; 2235 break; 2236 case PERF_CONTEXT_KERNEL: 2237 *cpumode = PERF_RECORD_MISC_KERNEL; 2238 break; 2239 case PERF_CONTEXT_USER: 2240 case PERF_CONTEXT_USER_DEFERRED: 2241 *cpumode = PERF_RECORD_MISC_USER; 2242 break; 2243 default: 2244 pr_debug("invalid callchain context: " 2245 "%"PRId64"\n", (s64) ip); 2246 /* 2247 * It seems the callchain is corrupted. 2248 * Discard all. 2249 */ 2250 callchain_cursor_reset(cursor); 2251 err = 1; 2252 goto out; 2253 } 2254 goto out; 2255 } 2256 if (symbols) 2257 thread__find_symbol(thread, *cpumode, ip, &al); 2258 else 2259 thread__find_map(thread, *cpumode, ip, &al); 2260 } 2261 2262 if (al.sym != NULL) { 2263 if (perf_hpp_list.parent && !*parent && 2264 symbol__match_regex(al.sym, &parent_regex)) 2265 *parent = al.sym; 2266 else if (have_ignore_callees && root_al && 2267 symbol__match_regex(al.sym, &ignore_callees_regex)) { 2268 /* Treat this symbol as the root, 2269 forgetting its callees. */ 2270 addr_location__copy(root_al, &al); 2271 callchain_cursor_reset(cursor); 2272 } 2273 } 2274 2275 if (symbol_conf.hide_unresolved && al.sym == NULL) 2276 goto out; 2277 2278 if (iter) { 2279 nr_loop_iter = iter->nr_loop_iter; 2280 iter_cycles = iter->cycles; 2281 } 2282 2283 ms.thread = thread__get(al.thread); 2284 ms.map = map__get(al.map); 2285 ms.sym = al.sym; 2286 2287 if (append_inlines(cursor, &ms, ip, branch, flags, nr_loop_iter, 2288 iter_cycles, branch_from) == 0) 2289 goto out; 2290 2291 srcline = callchain_srcline(&ms, al.addr); 2292 err = callchain_cursor_append(cursor, ip, &ms, 2293 branch, flags, nr_loop_iter, 2294 iter_cycles, branch_from, srcline); 2295 out: 2296 addr_location__exit(&al); 2297 map_symbol__exit(&ms); 2298 return err; 2299 } 2300 2301 struct branch_info *sample__resolve_bstack(struct perf_sample *sample, 2302 struct addr_location *al) 2303 { 2304 unsigned int i; 2305 const struct branch_stack *bs = sample->branch_stack; 2306 struct branch_entry *entries = perf_sample__branch_entries(sample); 2307 u64 *branch_stack_cntr = sample->branch_stack_cntr; 2308 struct branch_info *bi = calloc(bs->nr, sizeof(struct branch_info)); 2309 2310 if (!bi) 2311 return NULL; 2312 2313 for (i = 0; i < bs->nr; i++) { 2314 ip__resolve_ams(al->thread, &bi[i].to, entries[i].to); 2315 ip__resolve_ams(al->thread, &bi[i].from, entries[i].from); 2316 bi[i].flags = entries[i].flags; 2317 if (branch_stack_cntr) 2318 bi[i].branch_stack_cntr = branch_stack_cntr[i]; 2319 } 2320 return bi; 2321 } 2322 2323 static void save_iterations(struct iterations *iter, 2324 struct branch_entry *be, int nr) 2325 { 2326 int i; 2327 2328 iter->nr_loop_iter++; 2329 iter->cycles = 0; 2330 2331 for (i = 0; i < nr; i++) 2332 iter->cycles += be[i].flags.cycles; 2333 } 2334 2335 #define CHASHSZ 127 2336 #define CHASHBITS 7 2337 #define NO_ENTRY 0xff 2338 2339 #define PERF_MAX_BRANCH_DEPTH 127 2340 2341 /* Remove loops. */ 2342 static int remove_loops(struct branch_entry *l, int nr, 2343 struct iterations *iter) 2344 { 2345 int i, j, off; 2346 unsigned char chash[CHASHSZ]; 2347 2348 memset(chash, NO_ENTRY, sizeof(chash)); 2349 2350 BUG_ON(PERF_MAX_BRANCH_DEPTH > 255); 2351 2352 for (i = 0; i < nr; i++) { 2353 int h = hash_64(l[i].from, CHASHBITS) % CHASHSZ; 2354 2355 /* no collision handling for now */ 2356 if (chash[h] == NO_ENTRY) { 2357 chash[h] = i; 2358 } else if (l[chash[h]].from == l[i].from) { 2359 bool is_loop = true; 2360 /* check if it is a real loop */ 2361 off = 0; 2362 for (j = chash[h]; j < i && i + off < nr; j++, off++) 2363 if (l[j].from != l[i + off].from) { 2364 is_loop = false; 2365 break; 2366 } 2367 if (is_loop) { 2368 j = nr - (i + off); 2369 if (j > 0) { 2370 save_iterations(iter + i + off, 2371 l + i, off); 2372 2373 memmove(iter + i, iter + i + off, 2374 j * sizeof(*iter)); 2375 2376 memmove(l + i, l + i + off, 2377 j * sizeof(*l)); 2378 } 2379 2380 nr -= off; 2381 } 2382 } 2383 } 2384 return nr; 2385 } 2386 2387 static int lbr_callchain_add_kernel_ip(struct thread *thread, 2388 struct callchain_cursor *cursor, 2389 struct perf_sample *sample, 2390 struct symbol **parent, 2391 struct addr_location *root_al, 2392 u64 branch_from, 2393 bool callee, int end, 2394 bool symbols) 2395 { 2396 struct ip_callchain *chain = sample->callchain; 2397 u8 cpumode = PERF_RECORD_MISC_USER; 2398 int err, i; 2399 2400 if (callee) { 2401 for (i = 0; i < end + 1; i++) { 2402 err = add_callchain_ip(thread, cursor, parent, 2403 root_al, &cpumode, chain->ips[i], 2404 false, NULL, NULL, branch_from, 2405 symbols); 2406 if (err) 2407 return err; 2408 } 2409 return 0; 2410 } 2411 2412 for (i = end; i >= 0; i--) { 2413 err = add_callchain_ip(thread, cursor, parent, 2414 root_al, &cpumode, chain->ips[i], 2415 false, NULL, NULL, branch_from, 2416 symbols); 2417 if (err) 2418 return err; 2419 } 2420 2421 return 0; 2422 } 2423 2424 static void save_lbr_cursor_node(struct thread *thread, 2425 struct callchain_cursor *cursor, 2426 int idx) 2427 { 2428 struct lbr_stitch *lbr_stitch = thread__lbr_stitch(thread); 2429 2430 if (!lbr_stitch) 2431 return; 2432 2433 if (cursor->pos == cursor->nr) { 2434 lbr_stitch->prev_lbr_cursor[idx].valid = false; 2435 return; 2436 } 2437 2438 if (!cursor->curr) 2439 cursor->curr = cursor->first; 2440 else 2441 cursor->curr = cursor->curr->next; 2442 2443 map_symbol__exit(&lbr_stitch->prev_lbr_cursor[idx].ms); 2444 memcpy(&lbr_stitch->prev_lbr_cursor[idx], cursor->curr, 2445 sizeof(struct callchain_cursor_node)); 2446 lbr_stitch->prev_lbr_cursor[idx].ms.thread = thread__get(cursor->curr->ms.thread); 2447 lbr_stitch->prev_lbr_cursor[idx].ms.map = map__get(cursor->curr->ms.map); 2448 2449 lbr_stitch->prev_lbr_cursor[idx].valid = true; 2450 cursor->pos++; 2451 } 2452 2453 static int lbr_callchain_add_lbr_ip(struct thread *thread, 2454 struct callchain_cursor *cursor, 2455 struct perf_sample *sample, 2456 struct symbol **parent, 2457 struct addr_location *root_al, 2458 u64 *branch_from, 2459 bool callee, 2460 bool symbols) 2461 { 2462 struct branch_stack *lbr_stack = sample->branch_stack; 2463 struct branch_entry *entries = perf_sample__branch_entries(sample); 2464 u8 cpumode = PERF_RECORD_MISC_USER; 2465 int lbr_nr = lbr_stack->nr; 2466 struct branch_flags *flags; 2467 int err, i; 2468 u64 ip; 2469 2470 /* 2471 * The curr and pos are not used in writing session. They are cleared 2472 * in callchain_cursor_commit() when the writing session is closed. 2473 * Using curr and pos to track the current cursor node. 2474 */ 2475 if (thread__lbr_stitch(thread)) { 2476 cursor->curr = NULL; 2477 cursor->pos = cursor->nr; 2478 if (cursor->nr) { 2479 cursor->curr = cursor->first; 2480 for (i = 0; i < (int)(cursor->nr - 1); i++) 2481 cursor->curr = cursor->curr->next; 2482 } 2483 } 2484 2485 if (callee) { 2486 /* 2487 * Set the (first) leaf function's IP to sample->ip (the 2488 * location of the sample) but if not recorded use entries.to 2489 */ 2490 if (sample->ip) 2491 ip = sample->ip; 2492 else 2493 ip = entries[0].to; 2494 flags = &entries[0].flags; 2495 *branch_from = entries[0].from; 2496 err = add_callchain_ip(thread, cursor, parent, 2497 root_al, &cpumode, ip, 2498 true, flags, NULL, 2499 *branch_from, symbols); 2500 if (err) 2501 return err; 2502 2503 /* 2504 * The number of cursor node increases. 2505 * Move the current cursor node. 2506 * But does not need to save current cursor node for entry 0. 2507 * It's impossible to stitch the whole LBRs of previous sample. 2508 */ 2509 if (thread__lbr_stitch(thread) && (cursor->pos != cursor->nr)) { 2510 if (!cursor->curr) 2511 cursor->curr = cursor->first; 2512 else 2513 cursor->curr = cursor->curr->next; 2514 cursor->pos++; 2515 } 2516 2517 /* Add LBR ip from entries.from one by one. */ 2518 for (i = 0; i < lbr_nr; i++) { 2519 ip = entries[i].from; 2520 flags = &entries[i].flags; 2521 err = add_callchain_ip(thread, cursor, parent, 2522 root_al, &cpumode, ip, 2523 true, flags, NULL, 2524 *branch_from, symbols); 2525 if (err) 2526 return err; 2527 save_lbr_cursor_node(thread, cursor, i); 2528 } 2529 return 0; 2530 } 2531 2532 /* Add LBR ip from entries.from one by one. */ 2533 for (i = lbr_nr - 1; i >= 0; i--) { 2534 ip = entries[i].from; 2535 flags = &entries[i].flags; 2536 err = add_callchain_ip(thread, cursor, parent, 2537 root_al, &cpumode, ip, 2538 true, flags, NULL, 2539 *branch_from, symbols); 2540 if (err) 2541 return err; 2542 save_lbr_cursor_node(thread, cursor, i); 2543 } 2544 2545 if (lbr_nr > 0) { 2546 /* 2547 * Set the (first) leaf function's IP to sample->ip (the 2548 * location of the sample) but if not recorded use entries.to 2549 */ 2550 if (sample->ip) 2551 ip = sample->ip; 2552 else 2553 ip = entries[0].to; 2554 flags = &entries[0].flags; 2555 *branch_from = entries[0].from; 2556 err = add_callchain_ip(thread, cursor, parent, 2557 root_al, &cpumode, ip, 2558 true, flags, NULL, 2559 *branch_from, symbols); 2560 if (err) 2561 return err; 2562 } 2563 2564 return 0; 2565 } 2566 2567 static int lbr_callchain_add_stitched_lbr_ip(struct thread *thread, 2568 struct callchain_cursor *cursor) 2569 { 2570 struct lbr_stitch *lbr_stitch = thread__lbr_stitch(thread); 2571 struct callchain_cursor_node *cnode; 2572 struct stitch_list *stitch_node; 2573 int err; 2574 2575 list_for_each_entry(stitch_node, &lbr_stitch->lists, node) { 2576 cnode = &stitch_node->cursor; 2577 2578 err = callchain_cursor_append(cursor, cnode->ip, 2579 &cnode->ms, 2580 cnode->branch, 2581 &cnode->branch_flags, 2582 cnode->nr_loop_iter, 2583 cnode->iter_cycles, 2584 cnode->branch_from, 2585 cnode->srcline); 2586 if (err) 2587 return err; 2588 } 2589 return 0; 2590 } 2591 2592 static struct stitch_list *get_stitch_node(struct thread *thread) 2593 { 2594 struct lbr_stitch *lbr_stitch = thread__lbr_stitch(thread); 2595 struct stitch_list *stitch_node; 2596 2597 if (!list_empty(&lbr_stitch->free_lists)) { 2598 stitch_node = list_first_entry(&lbr_stitch->free_lists, 2599 struct stitch_list, node); 2600 list_del(&stitch_node->node); 2601 2602 return stitch_node; 2603 } 2604 2605 return malloc(sizeof(struct stitch_list)); 2606 } 2607 2608 static bool has_stitched_lbr(struct thread *thread, 2609 struct perf_sample *cur, 2610 struct perf_sample *prev, 2611 unsigned int max_lbr, 2612 bool callee) 2613 { 2614 struct branch_stack *cur_stack = cur->branch_stack; 2615 struct branch_entry *cur_entries = perf_sample__branch_entries(cur); 2616 struct branch_stack *prev_stack = prev->branch_stack; 2617 struct branch_entry *prev_entries = perf_sample__branch_entries(prev); 2618 struct lbr_stitch *lbr_stitch = thread__lbr_stitch(thread); 2619 int i, j, nr_identical_branches = 0; 2620 struct stitch_list *stitch_node; 2621 u64 cur_base, distance; 2622 2623 if (!cur_stack || !prev_stack) 2624 return false; 2625 2626 /* Find the physical index of the base-of-stack for current sample. */ 2627 cur_base = max_lbr - cur_stack->nr + cur_stack->hw_idx + 1; 2628 2629 distance = (prev_stack->hw_idx > cur_base) ? (prev_stack->hw_idx - cur_base) : 2630 (max_lbr + prev_stack->hw_idx - cur_base); 2631 /* Previous sample has shorter stack. Nothing can be stitched. */ 2632 if (distance + 1 > prev_stack->nr) 2633 return false; 2634 2635 /* 2636 * Check if there are identical LBRs between two samples. 2637 * Identical LBRs must have same from, to and flags values. Also, 2638 * they have to be saved in the same LBR registers (same physical 2639 * index). 2640 * 2641 * Starts from the base-of-stack of current sample. 2642 */ 2643 for (i = distance, j = cur_stack->nr - 1; (i >= 0) && (j >= 0); i--, j--) { 2644 if ((prev_entries[i].from != cur_entries[j].from) || 2645 (prev_entries[i].to != cur_entries[j].to) || 2646 (prev_entries[i].flags.value != cur_entries[j].flags.value)) 2647 break; 2648 nr_identical_branches++; 2649 } 2650 2651 if (!nr_identical_branches) 2652 return false; 2653 2654 /* 2655 * Save the LBRs between the base-of-stack of previous sample 2656 * and the base-of-stack of current sample into lbr_stitch->lists. 2657 * These LBRs will be stitched later. 2658 */ 2659 for (i = prev_stack->nr - 1; i > (int)distance; i--) { 2660 2661 if (!lbr_stitch->prev_lbr_cursor[i].valid) 2662 continue; 2663 2664 stitch_node = get_stitch_node(thread); 2665 if (!stitch_node) 2666 return false; 2667 2668 memcpy(&stitch_node->cursor, &lbr_stitch->prev_lbr_cursor[i], 2669 sizeof(struct callchain_cursor_node)); 2670 2671 stitch_node->cursor.ms.thread = 2672 thread__get(lbr_stitch->prev_lbr_cursor[i].ms.thread); 2673 stitch_node->cursor.ms.map = map__get(lbr_stitch->prev_lbr_cursor[i].ms.map); 2674 2675 if (callee) 2676 list_add(&stitch_node->node, &lbr_stitch->lists); 2677 else 2678 list_add_tail(&stitch_node->node, &lbr_stitch->lists); 2679 } 2680 2681 return true; 2682 } 2683 2684 static bool alloc_lbr_stitch(struct thread *thread, unsigned int max_lbr) 2685 { 2686 if (thread__lbr_stitch(thread)) 2687 return true; 2688 2689 thread__set_lbr_stitch(thread, zalloc(sizeof(struct lbr_stitch))); 2690 if (!thread__lbr_stitch(thread)) 2691 goto err; 2692 2693 thread__lbr_stitch(thread)->prev_lbr_cursor = 2694 calloc(max_lbr + 1, sizeof(struct callchain_cursor_node)); 2695 if (!thread__lbr_stitch(thread)->prev_lbr_cursor) 2696 goto free_lbr_stitch; 2697 2698 thread__lbr_stitch(thread)->prev_lbr_cursor_size = max_lbr + 1; 2699 2700 INIT_LIST_HEAD(&thread__lbr_stitch(thread)->lists); 2701 INIT_LIST_HEAD(&thread__lbr_stitch(thread)->free_lists); 2702 2703 return true; 2704 2705 free_lbr_stitch: 2706 free(thread__lbr_stitch(thread)); 2707 thread__set_lbr_stitch(thread, NULL); 2708 err: 2709 pr_warning("Failed to allocate space for stitched LBRs. Disable LBR stitch\n"); 2710 thread__set_lbr_stitch_enable(thread, false); 2711 return false; 2712 } 2713 2714 /* 2715 * Resolve LBR callstack chain sample 2716 * Return: 2717 * 1 on success get LBR callchain information 2718 * 0 no available LBR callchain information, should try fp 2719 * negative error code on other errors. 2720 */ 2721 static int resolve_lbr_callchain_sample(struct thread *thread, 2722 struct callchain_cursor *cursor, 2723 struct perf_sample *sample, 2724 struct symbol **parent, 2725 struct addr_location *root_al, 2726 int max_stack, 2727 unsigned int max_lbr, 2728 bool symbols) 2729 { 2730 bool callee = (callchain_param.order == ORDER_CALLEE); 2731 struct ip_callchain *chain = sample->callchain; 2732 int chain_nr = min(max_stack, (int)chain->nr), i; 2733 struct lbr_stitch *lbr_stitch; 2734 bool stitched_lbr = false; 2735 u64 branch_from = 0; 2736 int err; 2737 2738 for (i = 0; i < chain_nr; i++) { 2739 if (chain->ips[i] == PERF_CONTEXT_USER) 2740 break; 2741 } 2742 2743 /* LBR only affects the user callchain */ 2744 if (i == chain_nr) 2745 return 0; 2746 2747 if (thread__lbr_stitch_enable(thread) && !sample->no_hw_idx && 2748 (max_lbr > 0) && alloc_lbr_stitch(thread, max_lbr)) { 2749 lbr_stitch = thread__lbr_stitch(thread); 2750 2751 stitched_lbr = has_stitched_lbr(thread, sample, 2752 &lbr_stitch->prev_sample, 2753 max_lbr, callee); 2754 2755 if (!stitched_lbr && !list_empty(&lbr_stitch->lists)) { 2756 struct stitch_list *stitch_node; 2757 2758 list_for_each_entry(stitch_node, &lbr_stitch->lists, node) 2759 map_symbol__exit(&stitch_node->cursor.ms); 2760 2761 list_splice_init(&lbr_stitch->lists, &lbr_stitch->free_lists); 2762 } 2763 memcpy(&lbr_stitch->prev_sample, sample, sizeof(*sample)); 2764 } 2765 2766 if (callee) { 2767 /* Add kernel ip */ 2768 err = lbr_callchain_add_kernel_ip(thread, cursor, sample, 2769 parent, root_al, branch_from, 2770 true, i, symbols); 2771 if (err) 2772 goto error; 2773 2774 err = lbr_callchain_add_lbr_ip(thread, cursor, sample, parent, 2775 root_al, &branch_from, true, symbols); 2776 if (err) 2777 goto error; 2778 2779 if (stitched_lbr) { 2780 err = lbr_callchain_add_stitched_lbr_ip(thread, cursor); 2781 if (err) 2782 goto error; 2783 } 2784 2785 } else { 2786 if (stitched_lbr) { 2787 err = lbr_callchain_add_stitched_lbr_ip(thread, cursor); 2788 if (err) 2789 goto error; 2790 } 2791 err = lbr_callchain_add_lbr_ip(thread, cursor, sample, parent, 2792 root_al, &branch_from, false, symbols); 2793 if (err) 2794 goto error; 2795 2796 /* Add kernel ip */ 2797 err = lbr_callchain_add_kernel_ip(thread, cursor, sample, 2798 parent, root_al, branch_from, 2799 false, i, symbols); 2800 if (err) 2801 goto error; 2802 } 2803 return 1; 2804 2805 error: 2806 return (err < 0) ? err : 0; 2807 } 2808 2809 static int find_prev_cpumode(struct ip_callchain *chain, struct thread *thread, 2810 struct callchain_cursor *cursor, 2811 struct symbol **parent, 2812 struct addr_location *root_al, 2813 u8 *cpumode, int ent, bool symbols) 2814 { 2815 int err = 0; 2816 2817 while (--ent >= 0) { 2818 u64 ip = chain->ips[ent]; 2819 2820 if (ip >= PERF_CONTEXT_MAX) { 2821 err = add_callchain_ip(thread, cursor, parent, 2822 root_al, cpumode, ip, 2823 false, NULL, NULL, 0, symbols); 2824 break; 2825 } 2826 } 2827 return err; 2828 } 2829 2830 static u64 get_leaf_frame_caller(struct perf_sample *sample, 2831 struct thread *thread, int usr_idx) 2832 { 2833 if (thread__e_machine(thread, /*machine=*/NULL, /*e_flags=*/NULL) == EM_AARCH64) 2834 return get_leaf_frame_caller_aarch64(sample, thread, usr_idx); 2835 else 2836 return 0; 2837 } 2838 2839 static int thread__resolve_callchain_sample(struct thread *thread, 2840 struct callchain_cursor *cursor, 2841 struct perf_sample *sample, 2842 struct symbol **parent, 2843 struct addr_location *root_al, 2844 int max_stack, 2845 bool symbols) 2846 { 2847 struct evsel *evsel = sample->evsel; 2848 struct branch_stack *branch = sample->branch_stack; 2849 struct branch_entry *entries = perf_sample__branch_entries(sample); 2850 struct ip_callchain *chain = sample->callchain; 2851 int chain_nr = 0; 2852 u8 cpumode = PERF_RECORD_MISC_USER; 2853 int i, j, err, nr_entries, usr_idx; 2854 int skip_idx = -1; 2855 int first_call = 0; 2856 u64 leaf_frame_caller; 2857 2858 if (chain) 2859 chain_nr = chain->nr; 2860 2861 if (evsel__has_branch_callstack(evsel)) { 2862 struct perf_env *env = evsel__env(evsel); 2863 2864 err = resolve_lbr_callchain_sample(thread, cursor, sample, parent, 2865 root_al, max_stack, 2866 !env ? 0 : env->max_branches, 2867 symbols); 2868 if (err) 2869 return (err < 0) ? err : 0; 2870 } 2871 2872 /* 2873 * Based on DWARF debug information, some architectures skip 2874 * a callchain entry saved by the kernel. 2875 */ 2876 skip_idx = arch_skip_callchain_idx(thread, chain); 2877 2878 /* 2879 * Add branches to call stack for easier browsing. This gives 2880 * more context for a sample than just the callers. 2881 * 2882 * This uses individual histograms of paths compared to the 2883 * aggregated histograms the normal LBR mode uses. 2884 * 2885 * Limitations for now: 2886 * - No extra filters 2887 * - No annotations (should annotate somehow) 2888 */ 2889 2890 if (branch && callchain_param.branch_callstack) { 2891 int nr = min(max_stack, (int)branch->nr); 2892 struct branch_entry be[nr]; 2893 struct iterations iter[nr]; 2894 2895 if (branch->nr > PERF_MAX_BRANCH_DEPTH) { 2896 pr_warning("corrupted branch chain. skipping...\n"); 2897 goto check_calls; 2898 } 2899 2900 for (i = 0; i < nr; i++) { 2901 if (callchain_param.order == ORDER_CALLEE) { 2902 be[i] = entries[i]; 2903 2904 if (chain == NULL) 2905 continue; 2906 2907 /* 2908 * Check for overlap into the callchain. 2909 * The return address is one off compared to 2910 * the branch entry. To adjust for this 2911 * assume the calling instruction is not longer 2912 * than 8 bytes. 2913 */ 2914 if (i == skip_idx || 2915 chain->ips[first_call] >= PERF_CONTEXT_MAX) 2916 first_call++; 2917 else if (be[i].from < chain->ips[first_call] && 2918 be[i].from >= chain->ips[first_call] - 8) 2919 first_call++; 2920 } else 2921 be[i] = entries[branch->nr - i - 1]; 2922 } 2923 2924 memset(iter, 0, sizeof(struct iterations) * nr); 2925 nr = remove_loops(be, nr, iter); 2926 2927 for (i = 0; i < nr; i++) { 2928 err = add_callchain_ip(thread, cursor, parent, 2929 root_al, 2930 NULL, be[i].to, 2931 true, &be[i].flags, 2932 NULL, be[i].from, symbols); 2933 2934 if (!err) { 2935 err = add_callchain_ip(thread, cursor, parent, root_al, 2936 NULL, be[i].from, 2937 true, &be[i].flags, 2938 &iter[i], 0, symbols); 2939 } 2940 if (err == -EINVAL) 2941 break; 2942 if (err) 2943 return err; 2944 } 2945 2946 if (chain_nr == 0) 2947 return 0; 2948 2949 chain_nr -= nr; 2950 } 2951 2952 check_calls: 2953 if (chain && callchain_param.order != ORDER_CALLEE) { 2954 err = find_prev_cpumode(chain, thread, cursor, parent, root_al, 2955 &cpumode, chain->nr - first_call, symbols); 2956 if (err) 2957 return (err < 0) ? err : 0; 2958 } 2959 for (i = first_call, nr_entries = 0; 2960 i < chain_nr && nr_entries < max_stack; i++) { 2961 u64 ip; 2962 2963 if (callchain_param.order == ORDER_CALLEE) 2964 j = i; 2965 else 2966 j = chain->nr - i - 1; 2967 2968 #ifdef HAVE_SKIP_CALLCHAIN_IDX 2969 if (j == skip_idx) 2970 continue; 2971 #endif 2972 ip = chain->ips[j]; 2973 if (ip < PERF_CONTEXT_MAX) 2974 ++nr_entries; 2975 else if (callchain_param.order != ORDER_CALLEE) { 2976 err = find_prev_cpumode(chain, thread, cursor, parent, 2977 root_al, &cpumode, j, symbols); 2978 if (err) 2979 return (err < 0) ? err : 0; 2980 continue; 2981 } 2982 2983 /* 2984 * PERF_CONTEXT_USER allows us to locate where the user stack ends. 2985 * Depending on callchain_param.order and the position of PERF_CONTEXT_USER, 2986 * the index will be different in order to add the missing frame 2987 * at the right place. 2988 */ 2989 2990 usr_idx = callchain_param.order == ORDER_CALLEE ? j-2 : j-1; 2991 2992 if (usr_idx >= 0 && chain->ips[usr_idx] == PERF_CONTEXT_USER) { 2993 2994 leaf_frame_caller = get_leaf_frame_caller(sample, thread, usr_idx); 2995 2996 /* 2997 * check if leaf_frame_Caller != ip to not add the same 2998 * value twice. 2999 */ 3000 3001 if (leaf_frame_caller && leaf_frame_caller != ip) { 3002 3003 err = add_callchain_ip(thread, cursor, parent, 3004 root_al, &cpumode, leaf_frame_caller, 3005 false, NULL, NULL, 0, symbols); 3006 if (err) 3007 return (err < 0) ? err : 0; 3008 } 3009 } 3010 3011 err = add_callchain_ip(thread, cursor, parent, 3012 root_al, &cpumode, ip, 3013 false, NULL, NULL, 0, symbols); 3014 3015 if (err) 3016 return (err < 0) ? err : 0; 3017 } 3018 3019 return 0; 3020 } 3021 3022 static int unwind_entry(struct unwind_entry *entry, void *arg) 3023 { 3024 struct callchain_cursor *cursor = arg; 3025 const char *srcline = NULL; 3026 u64 addr = entry->ip; 3027 3028 if (symbol_conf.hide_unresolved && entry->ms.sym == NULL) 3029 return 0; 3030 3031 if (append_inlines(cursor, &entry->ms, entry->ip, /*branch=*/false, /*branch_flags=*/NULL, 3032 /*nr_loop_iter=*/0, /*iter_cycles=*/0, /*branch_from=*/0) == 0) 3033 return 0; 3034 3035 /* 3036 * Convert entry->ip from a virtual address to an offset in 3037 * its corresponding binary. 3038 */ 3039 if (entry->ms.map) 3040 addr = map__dso_map_ip(entry->ms.map, entry->ip); 3041 3042 srcline = callchain_srcline(&entry->ms, addr); 3043 return callchain_cursor_append(cursor, entry->ip, &entry->ms, 3044 false, NULL, 0, 0, 0, srcline); 3045 } 3046 3047 static int thread__resolve_callchain_unwind(struct thread *thread, 3048 struct callchain_cursor *cursor, 3049 struct perf_sample *sample, 3050 int max_stack, bool symbols) 3051 { 3052 struct evsel *evsel = sample->evsel; 3053 3054 /* Can we do dwarf post unwind? */ 3055 if (!((evsel->core.attr.sample_type & PERF_SAMPLE_REGS_USER) && 3056 (evsel->core.attr.sample_type & PERF_SAMPLE_STACK_USER))) 3057 return 0; 3058 3059 /* Bail out if nothing was captured. */ 3060 if (!sample->user_regs || !sample->user_regs->regs || 3061 !sample->user_stack.size) 3062 return 0; 3063 3064 if (!symbols) 3065 pr_debug("Not resolving symbols with an unwinder isn't currently supported\n"); 3066 3067 return unwind__get_entries(unwind_entry, cursor, 3068 thread, sample, max_stack, false); 3069 } 3070 3071 int __thread__resolve_callchain(struct thread *thread, 3072 struct callchain_cursor *cursor, 3073 struct perf_sample *sample, 3074 struct symbol **parent, 3075 struct addr_location *root_al, 3076 int max_stack, 3077 bool symbols) 3078 { 3079 int ret = 0; 3080 3081 if (cursor == NULL) 3082 return -ENOMEM; 3083 3084 callchain_cursor_reset(cursor); 3085 3086 if (callchain_param.order == ORDER_CALLEE) { 3087 ret = thread__resolve_callchain_sample(thread, cursor, 3088 sample, 3089 parent, root_al, 3090 max_stack, symbols); 3091 if (ret) 3092 return ret; 3093 ret = thread__resolve_callchain_unwind(thread, cursor, 3094 sample, 3095 max_stack, symbols); 3096 } else { 3097 ret = thread__resolve_callchain_unwind(thread, cursor, 3098 sample, 3099 max_stack, symbols); 3100 if (ret) 3101 return ret; 3102 ret = thread__resolve_callchain_sample(thread, cursor, 3103 sample, 3104 parent, root_al, 3105 max_stack, symbols); 3106 } 3107 3108 return ret; 3109 } 3110 3111 int machine__for_each_thread(struct machine *machine, 3112 int (*fn)(struct thread *thread, void *p), 3113 void *priv) 3114 { 3115 return threads__for_each_thread(&machine->threads, fn, priv); 3116 } 3117 3118 int machines__for_each_thread(struct machines *machines, 3119 int (*fn)(struct thread *thread, void *p), 3120 void *priv) 3121 { 3122 struct rb_node *nd; 3123 int rc = 0; 3124 3125 rc = machine__for_each_thread(&machines->host, fn, priv); 3126 if (rc != 0) 3127 return rc; 3128 3129 for (nd = rb_first_cached(&machines->guests); nd; nd = rb_next(nd)) { 3130 struct machine *machine = rb_entry(nd, struct machine, rb_node); 3131 3132 rc = machine__for_each_thread(machine, fn, priv); 3133 if (rc != 0) 3134 return rc; 3135 } 3136 return rc; 3137 } 3138 3139 3140 static int thread_list_cb(struct thread *thread, void *data) 3141 { 3142 struct list_head *list = data; 3143 struct thread_list *entry = malloc(sizeof(*entry)); 3144 3145 if (!entry) 3146 return -ENOMEM; 3147 3148 entry->thread = thread__get(thread); 3149 list_add_tail(&entry->list, list); 3150 return 0; 3151 } 3152 3153 int machine__thread_list(struct machine *machine, struct list_head *list) 3154 { 3155 return machine__for_each_thread(machine, thread_list_cb, list); 3156 } 3157 3158 void thread_list__delete(struct list_head *list) 3159 { 3160 struct thread_list *pos, *next; 3161 3162 list_for_each_entry_safe(pos, next, list, list) { 3163 thread__zput(pos->thread); 3164 list_del(&pos->list); 3165 free(pos); 3166 } 3167 } 3168 3169 pid_t machine__get_current_tid(struct machine *machine, int cpu) 3170 { 3171 if (cpu < 0 || (size_t)cpu >= machine->current_tid_sz) 3172 return -1; 3173 3174 return machine->current_tid[cpu]; 3175 } 3176 3177 int machine__set_current_tid(struct machine *machine, int cpu, pid_t pid, 3178 pid_t tid) 3179 { 3180 struct thread *thread; 3181 const pid_t init_val = -1; 3182 3183 if (cpu < 0) 3184 return -EINVAL; 3185 3186 if (realloc_array_as_needed(machine->current_tid, 3187 machine->current_tid_sz, 3188 (unsigned int)cpu, 3189 &init_val)) 3190 return -ENOMEM; 3191 3192 machine->current_tid[cpu] = tid; 3193 3194 thread = machine__findnew_thread(machine, pid, tid); 3195 if (!thread) 3196 return -ENOMEM; 3197 3198 thread__set_cpu(thread, cpu); 3199 thread__put(thread); 3200 3201 return 0; 3202 } 3203 3204 int machine__nr_cpus_avail(struct machine *machine) 3205 { 3206 return machine ? perf_env__nr_cpus_avail(machine->env) : 0; 3207 } 3208 3209 int machine__get_kernel_start(struct machine *machine) 3210 { 3211 struct map *map = machine__kernel_map(machine); 3212 int err = 0; 3213 3214 /* 3215 * The only addresses above 2^63 are kernel addresses of a 64-bit 3216 * kernel. Note that addresses are unsigned so that on a 32-bit system 3217 * all addresses including kernel addresses are less than 2^32. In 3218 * that case (32-bit system), if the kernel mapping is unknown, all 3219 * addresses will be assumed to be in user space - see 3220 * machine__kernel_ip(). 3221 */ 3222 machine->kernel_start = 1ULL << 63; 3223 if (map) { 3224 err = map__load(map); 3225 /* 3226 * On x86_64, PTI entry trampolines are less than the 3227 * start of kernel text, but still above 2^63. So leave 3228 * kernel_start = 1ULL << 63 for x86_64. 3229 */ 3230 if (!err && !machine__is(machine, EM_X86_64)) 3231 machine->kernel_start = map__start(map); 3232 } 3233 return err; 3234 } 3235 3236 u8 machine__addr_cpumode(struct machine *machine, u8 cpumode, u64 addr) 3237 { 3238 u8 addr_cpumode = cpumode; 3239 bool kernel_ip; 3240 3241 if (!machine->single_address_space) 3242 goto out; 3243 3244 kernel_ip = machine__kernel_ip(machine, addr); 3245 switch (cpumode) { 3246 case PERF_RECORD_MISC_KERNEL: 3247 case PERF_RECORD_MISC_USER: 3248 addr_cpumode = kernel_ip ? PERF_RECORD_MISC_KERNEL : 3249 PERF_RECORD_MISC_USER; 3250 break; 3251 case PERF_RECORD_MISC_GUEST_KERNEL: 3252 case PERF_RECORD_MISC_GUEST_USER: 3253 addr_cpumode = kernel_ip ? PERF_RECORD_MISC_GUEST_KERNEL : 3254 PERF_RECORD_MISC_GUEST_USER; 3255 break; 3256 default: 3257 break; 3258 } 3259 out: 3260 return addr_cpumode; 3261 } 3262 3263 struct dso *machine__findnew_dso_id(struct machine *machine, const char *filename, 3264 const struct dso_id *id) 3265 { 3266 return dsos__findnew_id(&machine->dsos, filename, id); 3267 } 3268 3269 struct dso *machine__findnew_dso(struct machine *machine, const char *filename) 3270 { 3271 return machine__findnew_dso_id(machine, filename, &dso_id_empty); 3272 } 3273 3274 char *machine__resolve_kernel_addr(void *vmachine, unsigned long long *addrp, char **modp) 3275 { 3276 struct machine *machine = vmachine; 3277 struct map *map; 3278 struct symbol *sym = machine__find_kernel_symbol(machine, *addrp, &map); 3279 3280 if (sym == NULL) 3281 return NULL; 3282 3283 *modp = __map__is_kmodule(map) ? (char *)dso__short_name(map__dso(map)) : NULL; 3284 *addrp = map__unmap_ip(map, sym->start); 3285 return sym->name; 3286 } 3287 3288 struct machine__for_each_dso_cb_args { 3289 struct machine *machine; 3290 machine__dso_t fn; 3291 void *priv; 3292 }; 3293 3294 static int machine__for_each_dso_cb(struct dso *dso, void *data) 3295 { 3296 struct machine__for_each_dso_cb_args *args = data; 3297 3298 return args->fn(dso, args->machine, args->priv); 3299 } 3300 3301 int machine__for_each_dso(struct machine *machine, machine__dso_t fn, void *priv) 3302 { 3303 struct machine__for_each_dso_cb_args args = { 3304 .machine = machine, 3305 .fn = fn, 3306 .priv = priv, 3307 }; 3308 3309 return dsos__for_each_dso(&machine->dsos, machine__for_each_dso_cb, &args); 3310 } 3311 3312 int machine__for_each_kernel_map(struct machine *machine, machine__map_t fn, void *priv) 3313 { 3314 struct maps *maps = machine__kernel_maps(machine); 3315 3316 return maps__for_each_map(maps, fn, priv); 3317 } 3318 3319 bool machine__is_lock_function(struct machine *machine, u64 addr) 3320 { 3321 if (!machine->sched.text_start) { 3322 struct map *kmap; 3323 struct symbol *sym = machine__find_kernel_symbol_by_name(machine, "__sched_text_start", &kmap); 3324 3325 if (!sym) { 3326 /* to avoid retry */ 3327 machine->sched.text_start = 1; 3328 return false; 3329 } 3330 3331 machine->sched.text_start = map__unmap_ip(kmap, sym->start); 3332 3333 /* should not fail from here */ 3334 sym = machine__find_kernel_symbol_by_name(machine, "__sched_text_end", &kmap); 3335 machine->sched.text_end = map__unmap_ip(kmap, sym->start); 3336 3337 sym = machine__find_kernel_symbol_by_name(machine, "__lock_text_start", &kmap); 3338 machine->lock.text_start = map__unmap_ip(kmap, sym->start); 3339 3340 sym = machine__find_kernel_symbol_by_name(machine, "__lock_text_end", &kmap); 3341 machine->lock.text_end = map__unmap_ip(kmap, sym->start); 3342 3343 sym = machine__find_kernel_symbol_by_name(machine, "__traceiter_contention_begin", &kmap); 3344 if (sym) { 3345 machine->traceiter.text_start = map__unmap_ip(kmap, sym->start); 3346 machine->traceiter.text_end = map__unmap_ip(kmap, sym->end); 3347 } 3348 sym = machine__find_kernel_symbol_by_name(machine, "trace_contention_begin", &kmap); 3349 if (sym) { 3350 machine->trace.text_start = map__unmap_ip(kmap, sym->start); 3351 machine->trace.text_end = map__unmap_ip(kmap, sym->end); 3352 } 3353 } 3354 3355 /* failed to get kernel symbols */ 3356 if (machine->sched.text_start == 1) 3357 return false; 3358 3359 /* mutex and rwsem functions are in sched text section */ 3360 if (machine->sched.text_start <= addr && addr < machine->sched.text_end) 3361 return true; 3362 3363 /* spinlock functions are in lock text section */ 3364 if (machine->lock.text_start <= addr && addr < machine->lock.text_end) 3365 return true; 3366 3367 /* traceiter functions currently don't have their own section 3368 * but we consider them lock functions 3369 */ 3370 if (machine->traceiter.text_start != 0) { 3371 if (machine->traceiter.text_start <= addr && addr < machine->traceiter.text_end) 3372 return true; 3373 } 3374 3375 if (machine->trace.text_start != 0) { 3376 if (machine->trace.text_start <= addr && addr < machine->trace.text_end) 3377 return true; 3378 } 3379 3380 return false; 3381 } 3382 3383 int machine__hit_all_dsos(struct machine *machine) 3384 { 3385 return dsos__hit_all(&machine->dsos); 3386 } 3387