1 // SPDX-License-Identifier: GPL-2.0 2 #include <errno.h> 3 #include <inttypes.h> 4 #include <limits.h> 5 #include "string2.h" 6 #include <sys/param.h> 7 #include <sys/types.h> 8 #include <byteswap.h> 9 #include <unistd.h> 10 #include <regex.h> 11 #include <stdio.h> 12 #include <stdlib.h> 13 #include <linux/compiler.h> 14 #include <linux/list.h> 15 #include <linux/kernel.h> 16 #include <linux/bitops.h> 17 #include <linux/string.h> 18 #include <linux/stringify.h> 19 #include <linux/zalloc.h> 20 #include <sys/stat.h> 21 #include <sys/utsname.h> 22 #include <linux/time64.h> 23 #include <dirent.h> 24 #ifdef HAVE_LIBBPF_SUPPORT 25 #include <bpf/libbpf.h> 26 #endif 27 #include <perf/cpumap.h> 28 #include <tools/libc_compat.h> // reallocarray 29 30 #include "dso.h" 31 #include "evlist.h" 32 #include "evsel.h" 33 #include "util/evsel_fprintf.h" 34 #include "header.h" 35 #include "memswap.h" 36 #include "trace-event.h" 37 #include "session.h" 38 #include "symbol.h" 39 #include "debug.h" 40 #include "cpumap.h" 41 #include "pmu.h" 42 #include "pmus.h" 43 #include "vdso.h" 44 #include "strbuf.h" 45 #include "build-id.h" 46 #include "data.h" 47 #include <api/fs/fs.h> 48 #include <api/io_dir.h> 49 #include "asm/bug.h" 50 #include "tool.h" 51 #include "../perf.h" 52 #include "time-utils.h" 53 #include "units.h" 54 #include "util/util.h" // perf_exe() 55 #include "cputopo.h" 56 #include "bpf-event.h" 57 #include "bpf-utils.h" 58 #include "clockid.h" 59 #include "cacheline.h" 60 61 #include <linux/ctype.h> 62 #include <internal/lib.h> 63 64 #ifdef HAVE_LIBTRACEEVENT 65 #include <event-parse.h> 66 #endif 67 68 /* 69 * nr_ids * sizeof(struct perf_sample_id) must not overflow 70 * size_t on 32-bit; the struct is ~104 bytes (32-bit) or 71 * ~184 bytes (64-bit), so 1<<24 (16M) keeps the product 72 * under 2 GB on 32-bit. 73 * 74 * This is a per-attribute cap only — the total across all 75 * attributes is not capped because legitimate high-core-count 76 * workloads (e.g. 5000 tracepoints × 4096 CPUs) can exceed 77 * a single-attribute limit. 78 */ 79 #define MAX_IDS_PER_ATTR (1 << 24) 80 /* 81 * Cap nr_attrs to prevent resource exhaustion from crafted 82 * files. 65536 is well beyond any real workload (perf stat 83 * typically uses < 100 events) but prevents u64-to-int 84 * truncation on the attr count. 85 */ 86 #define MAX_NR_ATTRS (1 << 16) 87 #define MAX_BPF_DATA_LEN (256 * 1024 * 1024) 88 #define MAX_BPF_PROGS 131072 89 #define MAX_CACHE_ENTRIES 32768 90 #define MAX_GROUP_DESC 32768 91 #define MAX_NUMA_NODES 4096 92 #define MAX_PMU_CAPS 512 93 #define MAX_PMU_MAPPINGS 4096 94 #define MAX_SCHED_DOMAINS 64 95 96 /* 97 * magic2 = "PERFILE2" 98 * must be a numerical value to let the endianness 99 * determine the memory layout. That way we are able 100 * to detect endianness when reading the perf.data file 101 * back. 102 * 103 * we check for legacy (PERFFILE) format. 104 */ 105 static const char *__perf_magic1 = "PERFFILE"; 106 static const u64 __perf_magic2 = 0x32454c4946524550ULL; 107 static const u64 __perf_magic2_sw = 0x50455246494c4532ULL; 108 109 #define PERF_MAGIC __perf_magic2 110 #define DNAME_LEN 16 111 112 const char perf_version_string[] = PERF_VERSION; 113 114 struct perf_file_attr { 115 struct perf_event_attr attr; 116 struct perf_file_section ids; 117 }; 118 119 void perf_header__set_feat(struct perf_header *header, int feat) 120 { 121 __set_bit(feat, header->adds_features); 122 } 123 124 void perf_header__clear_feat(struct perf_header *header, int feat) 125 { 126 __clear_bit(feat, header->adds_features); 127 } 128 129 bool perf_header__has_feat(const struct perf_header *header, int feat) 130 { 131 return test_bit(feat, header->adds_features); 132 } 133 134 static int __do_write_fd(struct feat_fd *ff, const void *buf, size_t size) 135 { 136 ssize_t ret = writen(ff->fd, buf, size); 137 138 if (ret != (ssize_t)size) 139 return ret < 0 ? (int)ret : -1; 140 return 0; 141 } 142 143 static int __do_write_buf(struct feat_fd *ff, const void *buf, size_t size) 144 { 145 /* struct perf_event_header::size is u16 */ 146 const size_t max_size = 0xffff - sizeof(struct perf_event_header); 147 size_t new_size = ff->size; 148 void *addr; 149 150 if (size + ff->offset > max_size) 151 return -E2BIG; 152 153 while (size > (new_size - ff->offset)) 154 new_size <<= 1; 155 new_size = min(max_size, new_size); 156 157 if (ff->size < new_size) { 158 addr = realloc(ff->buf, new_size); 159 if (!addr) 160 return -ENOMEM; 161 ff->buf = addr; 162 ff->size = new_size; 163 } 164 165 memcpy(ff->buf + ff->offset, buf, size); 166 ff->offset += size; 167 168 return 0; 169 } 170 171 /* Return: 0 if succeeded, -ERR if failed. */ 172 int do_write(struct feat_fd *ff, const void *buf, size_t size) 173 { 174 if (!ff->buf) 175 return __do_write_fd(ff, buf, size); 176 return __do_write_buf(ff, buf, size); 177 } 178 179 /* Return: 0 if succeeded, -ERR if failed. */ 180 static int do_write_bitmap(struct feat_fd *ff, unsigned long *set, u64 size) 181 { 182 size_t byte_size = BITS_TO_LONGS(size) * sizeof(unsigned long); 183 int i, ret; 184 185 ret = do_write(ff, &size, sizeof(size)); 186 if (ret < 0) 187 return ret; 188 189 /* 190 * The on-disk format uses u64 elements, but the in-memory bitmap 191 * uses unsigned long, which is only 4 bytes on 32-bit architectures. 192 * Copy with bounded size so the last element doesn't read past the 193 * bitmap allocation when BITS_TO_LONGS(size) is odd. 194 */ 195 for (i = 0; (u64) i < BITS_TO_U64(size); i++) { 196 u64 val = 0; 197 size_t off = i * sizeof(val); 198 199 memcpy(&val, (char *)set + off, min(sizeof(val), byte_size - off)); 200 ret = do_write(ff, &val, sizeof(val)); 201 if (ret < 0) 202 return ret; 203 } 204 205 return 0; 206 } 207 208 /* Return: 0 if succeeded, -ERR if failed. */ 209 int write_padded(struct feat_fd *ff, const void *bf, 210 size_t count, size_t count_aligned) 211 { 212 static const char zero_buf[NAME_ALIGN]; 213 int err = do_write(ff, bf, count); 214 215 if (!err) 216 err = do_write(ff, zero_buf, count_aligned - count); 217 218 return err; 219 } 220 221 #define string_size(str) \ 222 (PERF_ALIGN((strlen(str) + 1), NAME_ALIGN) + sizeof(u32)) 223 224 /* Return: 0 if succeeded, -ERR if failed. */ 225 static int do_write_string(struct feat_fd *ff, const char *str) 226 { 227 u32 len, olen; 228 int ret; 229 230 olen = strlen(str) + 1; 231 len = PERF_ALIGN(olen, NAME_ALIGN); 232 233 /* write len, incl. \0 */ 234 ret = do_write(ff, &len, sizeof(len)); 235 if (ret < 0) 236 return ret; 237 238 return write_padded(ff, str, olen, len); 239 } 240 241 static int __do_read_fd(struct feat_fd *ff, void *addr, ssize_t size) 242 { 243 ssize_t ret = readn(ff->fd, addr, size); 244 245 if (ret != size) 246 return ret < 0 ? (int)ret : -1; 247 ff->offset += size; 248 return 0; 249 } 250 251 static int __do_read_buf(struct feat_fd *ff, void *addr, ssize_t size) 252 { 253 memcpy(addr, ff->buf + ff->offset, size); 254 ff->offset += size; 255 256 return 0; 257 } 258 259 static int __do_read(struct feat_fd *ff, void *addr, ssize_t size) 260 { 261 /* 262 * Reject negative sizes, which on 32-bit can occur when a 263 * u32 >= 0x80000000 is passed as ssize_t. The cast to 264 * ssize_t is safe because perf_header__process_sections() 265 * validates that each section fits within the file size 266 * before any feature callback reaches here, and only 267 * feature sections (metadata like build IDs, topology, etc.) 268 * use this path — these cannot legitimately approach 2GB. 269 */ 270 if (size < 0 || size > (ssize_t)ff->size - ff->offset) 271 return -1; 272 273 if (!ff->buf) 274 return __do_read_fd(ff, addr, size); 275 return __do_read_buf(ff, addr, size); 276 } 277 278 static int do_read_u32(struct feat_fd *ff, u32 *addr) 279 { 280 int ret; 281 282 ret = __do_read(ff, addr, sizeof(*addr)); 283 if (ret) 284 return ret; 285 286 if (ff->ph->needs_swap) 287 *addr = bswap_32(*addr); 288 return 0; 289 } 290 291 static int do_read_u64(struct feat_fd *ff, u64 *addr) 292 { 293 int ret; 294 295 ret = __do_read(ff, addr, sizeof(*addr)); 296 if (ret) 297 return ret; 298 299 if (ff->ph->needs_swap) 300 *addr = bswap_64(*addr); 301 return 0; 302 } 303 304 static char *do_read_string(struct feat_fd *ff) 305 { 306 u32 len; 307 char *buf; 308 309 if (do_read_u32(ff, &len)) 310 return NULL; 311 312 /* At least the null terminator. */ 313 if (len < 1 || len > ff->size - ff->offset) { 314 pr_debug("do_read_string: invalid length %u (remaining %zu)\n", 315 len, (size_t)(ff->size - ff->offset)); 316 return NULL; 317 } 318 319 buf = malloc(len); 320 if (!buf) 321 return NULL; 322 323 if (!__do_read(ff, buf, len)) { 324 /* 325 * do_write_string() writes len including the null 326 * terminator, padded to NAME_ALIGN. Ensure the 327 * string is always null-terminated even if the file 328 * data has been tampered with. 329 */ 330 buf[len - 1] = '\0'; 331 return buf; 332 } 333 334 free(buf); 335 return NULL; 336 } 337 338 /* Return: 0 if succeeded, -ERR if failed. */ 339 static int do_read_bitmap(struct feat_fd *ff, unsigned long **pset, u64 *psize) 340 { 341 unsigned long *set; 342 u64 size, *p; 343 int i, ret; 344 345 ret = do_read_u64(ff, &size); 346 if (ret) 347 return ret; 348 349 /* Bitmap APIs use int for nbits; reject u64 values that truncate. */ 350 if (size > INT_MAX || 351 BITS_TO_U64(size) > (ff->size - ff->offset) / sizeof(u64)) { 352 pr_debug("do_read_bitmap: size %" PRIu64 " exceeds section bounds\n", size); 353 return -1; 354 } 355 356 /* 357 * bitmap_zalloc() allocates in unsigned long units, which are only 358 * 4 bytes on 32-bit architectures. The read loop below casts the 359 * buffer to u64 * and writes 8-byte elements, so allocate in u64 360 * units to ensure the buffer is large enough. 361 */ 362 set = calloc(BITS_TO_U64(size), sizeof(u64)); 363 if (!set) 364 return -ENOMEM; 365 366 p = (u64 *) set; 367 368 for (i = 0; (u64) i < BITS_TO_U64(size); i++) { 369 ret = do_read_u64(ff, p + i); 370 if (ret < 0) { 371 free(set); 372 return ret; 373 } 374 } 375 376 *pset = set; 377 *psize = size; 378 return 0; 379 } 380 381 static int write_tracing_data(struct feat_fd *ff, 382 struct evlist *evlist __maybe_unused) 383 { 384 if (WARN(ff->buf, "Error: calling %s in pipe-mode.\n", __func__)) 385 return -1; 386 387 #ifdef HAVE_LIBTRACEEVENT 388 return read_tracing_data(ff->fd, &evlist->core.entries); 389 #else 390 pr_err("ERROR: Trying to write tracing data without libtraceevent support.\n"); 391 return -1; 392 #endif 393 } 394 395 static int write_build_id(struct feat_fd *ff, 396 struct evlist *evlist __maybe_unused) 397 { 398 struct perf_session *session; 399 int err; 400 401 session = container_of(ff->ph, struct perf_session, header); 402 403 if (!perf_session__read_build_ids(session, true)) 404 return -1; 405 406 if (WARN(ff->buf, "Error: calling %s in pipe-mode.\n", __func__)) 407 return -1; 408 409 err = perf_session__write_buildid_table(session, ff); 410 if (err < 0) { 411 pr_debug("failed to write buildid table\n"); 412 return err; 413 } 414 415 return 0; 416 } 417 418 static int write_hostname(struct feat_fd *ff, 419 struct evlist *evlist __maybe_unused) 420 { 421 struct utsname uts; 422 int ret; 423 424 ret = uname(&uts); 425 if (ret < 0) 426 return -1; 427 428 return do_write_string(ff, uts.nodename); 429 } 430 431 static int write_osrelease(struct feat_fd *ff, 432 struct evlist *evlist __maybe_unused) 433 { 434 struct utsname uts; 435 const char *release = NULL; 436 437 if (evlist->session) 438 release = perf_env__os_release(perf_session__env(evlist->session)); 439 440 if (!release) { 441 int ret = uname(&uts); 442 443 if (ret < 0) 444 return -1; 445 release = uts.release; 446 } 447 return do_write_string(ff, release); 448 } 449 450 static int write_arch(struct feat_fd *ff, struct evlist *evlist) 451 { 452 struct utsname uts; 453 const char *arch = NULL; 454 455 if (evlist->session) 456 arch = perf_env__arch(perf_session__env(evlist->session)); 457 458 if (!arch) { 459 int ret = uname(&uts); 460 461 if (ret < 0) 462 return -1; 463 arch = uts.machine; 464 } 465 return do_write_string(ff, arch); 466 } 467 468 static int write_e_machine(struct feat_fd *ff, struct evlist *evlist) 469 { 470 /* e_machine expanded from 16 to 32-bits for alignment. */ 471 uint32_t e_flags; 472 uint32_t e_machine = perf_session__e_machine(evlist->session, &e_flags); 473 int ret; 474 475 ret = do_write(ff, &e_machine, sizeof(e_machine)); 476 if (ret) 477 return ret; 478 479 return do_write(ff, &e_flags, sizeof(e_flags)); 480 } 481 482 static int write_version(struct feat_fd *ff, 483 struct evlist *evlist __maybe_unused) 484 { 485 return do_write_string(ff, perf_version_string); 486 } 487 488 static int __write_cpudesc(struct feat_fd *ff, const char *cpuinfo_proc) 489 { 490 FILE *file; 491 char *buf = NULL; 492 char *s, *p; 493 const char *search = cpuinfo_proc; 494 size_t len = 0; 495 int ret = -1; 496 497 if (!search) 498 return -1; 499 500 file = fopen("/proc/cpuinfo", "r"); 501 if (!file) 502 return -1; 503 504 while (getline(&buf, &len, file) > 0) { 505 ret = strncmp(buf, search, strlen(search)); 506 if (!ret) 507 break; 508 } 509 510 if (ret) { 511 ret = -1; 512 goto done; 513 } 514 515 s = buf; 516 517 p = strchr(buf, ':'); 518 if (p && *(p+1) == ' ' && *(p+2)) 519 s = p + 2; 520 p = strchr(s, '\n'); 521 if (p) 522 *p = '\0'; 523 524 /* squash extra space characters (branding string) */ 525 p = s; 526 while (*p) { 527 if (isspace(*p)) { 528 char *r = p + 1; 529 char *q = skip_spaces(r); 530 *p = ' '; 531 if (q != (p+1)) 532 while ((*r++ = *q++)); 533 } 534 p++; 535 } 536 ret = do_write_string(ff, s); 537 done: 538 free(buf); 539 fclose(file); 540 return ret; 541 } 542 543 static int write_cpudesc(struct feat_fd *ff, 544 struct evlist *evlist __maybe_unused) 545 { 546 #if defined(__powerpc__) || defined(__hppa__) || defined(__sparc__) 547 #define CPUINFO_PROC { "cpu", } 548 #elif defined(__s390__) 549 #define CPUINFO_PROC { "vendor_id", } 550 #elif defined(__sh__) 551 #define CPUINFO_PROC { "cpu type", } 552 #elif defined(__alpha__) || defined(__mips__) 553 #define CPUINFO_PROC { "cpu model", } 554 #elif defined(__arm__) 555 #define CPUINFO_PROC { "model name", "Processor", } 556 #elif defined(__arc__) 557 #define CPUINFO_PROC { "Processor", } 558 #elif defined(__xtensa__) 559 #define CPUINFO_PROC { "core ID", } 560 #elif defined(__loongarch__) 561 #define CPUINFO_PROC { "Model Name", } 562 #else 563 #define CPUINFO_PROC { "model name", } 564 #endif 565 const char *cpuinfo_procs[] = CPUINFO_PROC; 566 #undef CPUINFO_PROC 567 unsigned int i; 568 569 for (i = 0; i < ARRAY_SIZE(cpuinfo_procs); i++) { 570 int ret; 571 ret = __write_cpudesc(ff, cpuinfo_procs[i]); 572 if (ret >= 0) 573 return ret; 574 } 575 return -1; 576 } 577 578 579 static int write_nrcpus(struct feat_fd *ff, 580 struct evlist *evlist __maybe_unused) 581 { 582 long nr; 583 u32 nrc, nra; 584 int ret; 585 586 nrc = cpu__max_present_cpu().cpu; 587 588 nr = sysconf(_SC_NPROCESSORS_ONLN); 589 if (nr < 0) 590 return -1; 591 592 nra = (u32)(nr & UINT_MAX); 593 594 ret = do_write(ff, &nrc, sizeof(nrc)); 595 if (ret < 0) 596 return ret; 597 598 return do_write(ff, &nra, sizeof(nra)); 599 } 600 601 static int write_event_desc(struct feat_fd *ff, 602 struct evlist *evlist) 603 { 604 struct evsel *evsel; 605 u32 nre, nri, sz; 606 int ret; 607 608 nre = evlist->core.nr_entries; 609 610 /* 611 * write number of events 612 */ 613 ret = do_write(ff, &nre, sizeof(nre)); 614 if (ret < 0) 615 return ret; 616 617 /* 618 * size of perf_event_attr struct 619 */ 620 sz = (u32)sizeof(evsel->core.attr); 621 ret = do_write(ff, &sz, sizeof(sz)); 622 if (ret < 0) 623 return ret; 624 625 evlist__for_each_entry(evlist, evsel) { 626 ret = do_write(ff, &evsel->core.attr, sz); 627 if (ret < 0) 628 return ret; 629 /* 630 * write number of unique id per event 631 * there is one id per instance of an event 632 * 633 * copy into an nri to be independent of the 634 * type of ids, 635 */ 636 nri = evsel->core.ids; 637 ret = do_write(ff, &nri, sizeof(nri)); 638 if (ret < 0) 639 return ret; 640 641 /* 642 * write event string as passed on cmdline 643 */ 644 ret = do_write_string(ff, evsel__name(evsel)); 645 if (ret < 0) 646 return ret; 647 /* 648 * write unique ids for this event 649 */ 650 ret = do_write(ff, evsel->core.id, evsel->core.ids * sizeof(u64)); 651 if (ret < 0) 652 return ret; 653 } 654 return 0; 655 } 656 657 static int write_cmdline(struct feat_fd *ff, 658 struct evlist *evlist __maybe_unused) 659 { 660 struct perf_env *env = &ff->ph->env; 661 char pbuf[MAXPATHLEN], *buf; 662 int i, ret, n; 663 664 /* actual path to perf binary */ 665 buf = perf_exe(pbuf, MAXPATHLEN); 666 667 /* account for binary path */ 668 n = env->nr_cmdline + 1; 669 670 ret = do_write(ff, &n, sizeof(n)); 671 if (ret < 0) 672 return ret; 673 674 ret = do_write_string(ff, buf); 675 if (ret < 0) 676 return ret; 677 678 for (i = 0 ; i < env->nr_cmdline; i++) { 679 ret = do_write_string(ff, env->cmdline_argv[i]); 680 if (ret < 0) 681 return ret; 682 } 683 return 0; 684 } 685 686 687 static int write_cpu_topology(struct feat_fd *ff, 688 struct evlist *evlist __maybe_unused) 689 { 690 struct perf_env *env = &ff->ph->env; 691 struct cpu_topology *tp; 692 u32 i; 693 int ret, j; 694 695 tp = cpu_topology__new(); 696 if (!tp) 697 return -1; 698 699 ret = do_write(ff, &tp->package_cpus_lists, sizeof(tp->package_cpus_lists)); 700 if (ret < 0) 701 goto done; 702 703 for (i = 0; i < tp->package_cpus_lists; i++) { 704 ret = do_write_string(ff, tp->package_cpus_list[i]); 705 if (ret < 0) 706 goto done; 707 } 708 ret = do_write(ff, &tp->core_cpus_lists, sizeof(tp->core_cpus_lists)); 709 if (ret < 0) 710 goto done; 711 712 for (i = 0; i < tp->core_cpus_lists; i++) { 713 ret = do_write_string(ff, tp->core_cpus_list[i]); 714 if (ret < 0) 715 break; 716 } 717 718 ret = perf_env__read_cpu_topology_map(env); 719 if (ret < 0) 720 goto done; 721 722 for (j = 0; j < env->nr_cpus_avail; j++) { 723 ret = do_write(ff, &env->cpu[j].core_id, 724 sizeof(env->cpu[j].core_id)); 725 if (ret < 0) 726 return ret; 727 ret = do_write(ff, &env->cpu[j].socket_id, 728 sizeof(env->cpu[j].socket_id)); 729 if (ret < 0) 730 return ret; 731 } 732 733 if (!tp->die_cpus_lists) 734 goto done; 735 736 ret = do_write(ff, &tp->die_cpus_lists, sizeof(tp->die_cpus_lists)); 737 if (ret < 0) 738 goto done; 739 740 for (i = 0; i < tp->die_cpus_lists; i++) { 741 ret = do_write_string(ff, tp->die_cpus_list[i]); 742 if (ret < 0) 743 goto done; 744 } 745 746 for (j = 0; j < env->nr_cpus_avail; j++) { 747 ret = do_write(ff, &env->cpu[j].die_id, 748 sizeof(env->cpu[j].die_id)); 749 if (ret < 0) 750 return ret; 751 } 752 753 done: 754 cpu_topology__delete(tp); 755 return ret; 756 } 757 758 759 760 static int write_total_mem(struct feat_fd *ff, 761 struct evlist *evlist __maybe_unused) 762 { 763 char *buf = NULL; 764 FILE *fp; 765 size_t len = 0; 766 int ret = -1, n; 767 uint64_t mem; 768 769 fp = fopen("/proc/meminfo", "r"); 770 if (!fp) 771 return -1; 772 773 while (getline(&buf, &len, fp) > 0) { 774 ret = strncmp(buf, "MemTotal:", 9); 775 if (!ret) 776 break; 777 } 778 if (!ret) { 779 n = sscanf(buf, "%*s %"PRIu64, &mem); 780 if (n == 1) 781 ret = do_write(ff, &mem, sizeof(mem)); 782 } else 783 ret = -1; 784 free(buf); 785 fclose(fp); 786 return ret; 787 } 788 789 static int write_numa_topology(struct feat_fd *ff, 790 struct evlist *evlist __maybe_unused) 791 { 792 struct numa_topology *tp; 793 int ret = -1; 794 u32 i; 795 796 tp = numa_topology__new(); 797 if (!tp) 798 return -ENOMEM; 799 800 ret = do_write(ff, &tp->nr, sizeof(u32)); 801 if (ret < 0) 802 goto err; 803 804 for (i = 0; i < tp->nr; i++) { 805 struct numa_topology_node *n = &tp->nodes[i]; 806 807 ret = do_write(ff, &n->node, sizeof(u32)); 808 if (ret < 0) 809 goto err; 810 811 ret = do_write(ff, &n->mem_total, sizeof(u64)); 812 if (ret) 813 goto err; 814 815 ret = do_write(ff, &n->mem_free, sizeof(u64)); 816 if (ret) 817 goto err; 818 819 ret = do_write_string(ff, n->cpus); 820 if (ret < 0) 821 goto err; 822 } 823 824 ret = 0; 825 826 err: 827 numa_topology__delete(tp); 828 return ret; 829 } 830 831 /* 832 * File format: 833 * 834 * struct pmu_mappings { 835 * u32 pmu_num; 836 * struct pmu_map { 837 * u32 type; 838 * char name[]; 839 * }[pmu_num]; 840 * }; 841 */ 842 843 static int write_pmu_mappings(struct feat_fd *ff, 844 struct evlist *evlist __maybe_unused) 845 { 846 struct perf_pmu *pmu = NULL; 847 u32 pmu_num = 0; 848 int ret; 849 850 /* 851 * Do a first pass to count number of pmu to avoid lseek so this 852 * works in pipe mode as well. 853 */ 854 while ((pmu = perf_pmus__scan(pmu))) 855 pmu_num++; 856 857 ret = do_write(ff, &pmu_num, sizeof(pmu_num)); 858 if (ret < 0) 859 return ret; 860 861 while ((pmu = perf_pmus__scan(pmu))) { 862 ret = do_write(ff, &pmu->type, sizeof(pmu->type)); 863 if (ret < 0) 864 return ret; 865 866 ret = do_write_string(ff, pmu->name); 867 if (ret < 0) 868 return ret; 869 } 870 871 return 0; 872 } 873 874 /* 875 * File format: 876 * 877 * struct group_descs { 878 * u32 nr_groups; 879 * struct group_desc { 880 * char name[]; 881 * u32 leader_idx; 882 * u32 nr_members; 883 * }[nr_groups]; 884 * }; 885 */ 886 static int write_group_desc(struct feat_fd *ff, 887 struct evlist *evlist) 888 { 889 u32 nr_groups = evlist__nr_groups(evlist); 890 struct evsel *evsel; 891 int ret; 892 893 ret = do_write(ff, &nr_groups, sizeof(nr_groups)); 894 if (ret < 0) 895 return ret; 896 897 evlist__for_each_entry(evlist, evsel) { 898 if (evsel__is_group_leader(evsel) && evsel->core.nr_members > 1) { 899 const char *name = evsel->group_name ?: "{anon_group}"; 900 u32 leader_idx = evsel->core.idx; 901 u32 nr_members = evsel->core.nr_members; 902 903 ret = do_write_string(ff, name); 904 if (ret < 0) 905 return ret; 906 907 ret = do_write(ff, &leader_idx, sizeof(leader_idx)); 908 if (ret < 0) 909 return ret; 910 911 ret = do_write(ff, &nr_members, sizeof(nr_members)); 912 if (ret < 0) 913 return ret; 914 } 915 } 916 return 0; 917 } 918 919 /* 920 * Return the CPU id as a raw string. 921 * 922 * Each architecture should provide a more precise id string that 923 * can be use to match the architecture's "mapfile". 924 */ 925 char * __weak get_cpuid_str(struct perf_cpu cpu __maybe_unused) 926 { 927 return NULL; 928 } 929 930 char *get_cpuid_allow_env_override(struct perf_cpu cpu) 931 { 932 char *cpuid; 933 static bool printed; 934 935 cpuid = getenv("PERF_CPUID"); 936 if (cpuid) 937 cpuid = strdup(cpuid); 938 if (!cpuid) 939 cpuid = get_cpuid_str(cpu); 940 if (!cpuid) 941 return NULL; 942 943 if (!printed) { 944 pr_debug("Using CPUID %s\n", cpuid); 945 printed = true; 946 } 947 return cpuid; 948 } 949 950 /* Return zero when the cpuid from the mapfile.csv matches the 951 * cpuid string generated on this platform. 952 * Otherwise return non-zero. 953 */ 954 int __weak strcmp_cpuid_str(const char *mapcpuid, const char *cpuid) 955 { 956 regex_t re; 957 regmatch_t pmatch[1]; 958 int match; 959 960 if (regcomp(&re, mapcpuid, REG_EXTENDED) != 0) { 961 /* Warn unable to generate match particular string. */ 962 pr_info("Invalid regular expression %s\n", mapcpuid); 963 return 1; 964 } 965 966 match = !regexec(&re, cpuid, 1, pmatch, 0); 967 regfree(&re); 968 if (match) { 969 size_t match_len = (pmatch[0].rm_eo - pmatch[0].rm_so); 970 971 /* Verify the entire string matched. */ 972 if (match_len == strlen(cpuid)) 973 return 0; 974 } 975 return 1; 976 } 977 978 /* 979 * default get_cpuid(): nothing gets recorded 980 * actual implementation must be in arch/$(SRCARCH)/util/header.c 981 */ 982 int __weak get_cpuid(char *buffer __maybe_unused, size_t sz __maybe_unused, 983 struct perf_cpu cpu __maybe_unused) 984 { 985 return ENOSYS; /* Not implemented */ 986 } 987 988 static int write_cpuid(struct feat_fd *ff, struct evlist *evlist) 989 { 990 struct perf_cpu cpu = perf_cpu_map__min(evlist->core.all_cpus); 991 char buffer[64]; 992 int ret; 993 994 ret = get_cpuid(buffer, sizeof(buffer), cpu); 995 if (ret) 996 return -1; 997 998 return do_write_string(ff, buffer); 999 } 1000 1001 static int write_branch_stack(struct feat_fd *ff __maybe_unused, 1002 struct evlist *evlist __maybe_unused) 1003 { 1004 return 0; 1005 } 1006 1007 static int write_auxtrace(struct feat_fd *ff, 1008 struct evlist *evlist __maybe_unused) 1009 { 1010 struct perf_session *session; 1011 int err; 1012 1013 if (WARN(ff->buf, "Error: calling %s in pipe-mode.\n", __func__)) 1014 return -1; 1015 1016 session = container_of(ff->ph, struct perf_session, header); 1017 1018 err = auxtrace_index__write(ff->fd, &session->auxtrace_index); 1019 if (err < 0) 1020 pr_err("Failed to write auxtrace index\n"); 1021 return err; 1022 } 1023 1024 static int write_clockid(struct feat_fd *ff, 1025 struct evlist *evlist __maybe_unused) 1026 { 1027 return do_write(ff, &ff->ph->env.clock.clockid_res_ns, 1028 sizeof(ff->ph->env.clock.clockid_res_ns)); 1029 } 1030 1031 static int write_clock_data(struct feat_fd *ff, 1032 struct evlist *evlist __maybe_unused) 1033 { 1034 u64 *data64; 1035 u32 data32; 1036 int ret; 1037 1038 /* version */ 1039 data32 = 1; 1040 1041 ret = do_write(ff, &data32, sizeof(data32)); 1042 if (ret < 0) 1043 return ret; 1044 1045 /* clockid */ 1046 data32 = ff->ph->env.clock.clockid; 1047 1048 ret = do_write(ff, &data32, sizeof(data32)); 1049 if (ret < 0) 1050 return ret; 1051 1052 /* TOD ref time */ 1053 data64 = &ff->ph->env.clock.tod_ns; 1054 1055 ret = do_write(ff, data64, sizeof(*data64)); 1056 if (ret < 0) 1057 return ret; 1058 1059 /* clockid ref time */ 1060 data64 = &ff->ph->env.clock.clockid_ns; 1061 1062 return do_write(ff, data64, sizeof(*data64)); 1063 } 1064 1065 static int write_hybrid_topology(struct feat_fd *ff, 1066 struct evlist *evlist __maybe_unused) 1067 { 1068 struct hybrid_topology *tp; 1069 int ret; 1070 u32 i; 1071 1072 tp = hybrid_topology__new(); 1073 if (!tp) 1074 return -ENOENT; 1075 1076 ret = do_write(ff, &tp->nr, sizeof(u32)); 1077 if (ret < 0) 1078 goto err; 1079 1080 for (i = 0; i < tp->nr; i++) { 1081 struct hybrid_topology_node *n = &tp->nodes[i]; 1082 1083 ret = do_write_string(ff, n->pmu_name); 1084 if (ret < 0) 1085 goto err; 1086 1087 ret = do_write_string(ff, n->cpus); 1088 if (ret < 0) 1089 goto err; 1090 } 1091 1092 ret = 0; 1093 1094 err: 1095 hybrid_topology__delete(tp); 1096 return ret; 1097 } 1098 1099 static int write_dir_format(struct feat_fd *ff, 1100 struct evlist *evlist __maybe_unused) 1101 { 1102 struct perf_session *session; 1103 struct perf_data *data; 1104 1105 session = container_of(ff->ph, struct perf_session, header); 1106 data = session->data; 1107 1108 if (WARN_ON(!perf_data__is_dir(data))) 1109 return -1; 1110 1111 return do_write(ff, &data->dir.version, sizeof(data->dir.version)); 1112 } 1113 1114 static int write_bpf_prog_info(struct feat_fd *ff __maybe_unused, 1115 struct evlist *evlist __maybe_unused) 1116 { 1117 #ifdef HAVE_LIBBPF_SUPPORT 1118 struct perf_env *env = &ff->ph->env; 1119 struct rb_root *root; 1120 struct rb_node *next; 1121 int ret = 0; 1122 1123 down_read(&env->bpf_progs.lock); 1124 1125 ret = do_write(ff, &env->bpf_progs.infos_cnt, 1126 sizeof(env->bpf_progs.infos_cnt)); 1127 if (ret < 0 || env->bpf_progs.infos_cnt == 0) 1128 goto out; 1129 1130 root = &env->bpf_progs.infos; 1131 next = rb_first(root); 1132 while (next) { 1133 struct bpf_prog_info_node *node; 1134 size_t len; 1135 1136 node = rb_entry(next, struct bpf_prog_info_node, rb_node); 1137 next = rb_next(&node->rb_node); 1138 len = sizeof(struct perf_bpil) + 1139 node->info_linear->data_len; 1140 1141 /* before writing to file, translate address to offset */ 1142 bpil_addr_to_offs(node->info_linear); 1143 ret = do_write(ff, node->info_linear, len); 1144 /* 1145 * translate back to address even when do_write() fails, 1146 * so that this function never changes the data. 1147 */ 1148 bpil_offs_to_addr(node->info_linear); 1149 if (ret < 0) 1150 goto out; 1151 } 1152 out: 1153 up_read(&env->bpf_progs.lock); 1154 return ret; 1155 #else 1156 pr_err("ERROR: Trying to write bpf_prog_info without libbpf support.\n"); 1157 return -1; 1158 #endif // HAVE_LIBBPF_SUPPORT 1159 } 1160 1161 static int write_bpf_btf(struct feat_fd *ff __maybe_unused, 1162 struct evlist *evlist __maybe_unused) 1163 { 1164 #ifdef HAVE_LIBBPF_SUPPORT 1165 struct perf_env *env = &ff->ph->env; 1166 struct rb_root *root; 1167 struct rb_node *next; 1168 int ret = 0; 1169 1170 down_read(&env->bpf_progs.lock); 1171 1172 ret = do_write(ff, &env->bpf_progs.btfs_cnt, 1173 sizeof(env->bpf_progs.btfs_cnt)); 1174 1175 if (ret < 0 || env->bpf_progs.btfs_cnt == 0) 1176 goto out; 1177 1178 root = &env->bpf_progs.btfs; 1179 next = rb_first(root); 1180 while (next) { 1181 struct btf_node *node; 1182 1183 node = rb_entry(next, struct btf_node, rb_node); 1184 next = rb_next(&node->rb_node); 1185 ret = do_write(ff, &node->id, 1186 sizeof(u32) * 2 + node->data_size); 1187 if (ret < 0) 1188 goto out; 1189 } 1190 out: 1191 up_read(&env->bpf_progs.lock); 1192 return ret; 1193 #else 1194 pr_err("ERROR: Trying to write btf data without libbpf support.\n"); 1195 return -1; 1196 #endif // HAVE_LIBBPF_SUPPORT 1197 } 1198 1199 static int cpu_cache_level__sort(const void *a, const void *b) 1200 { 1201 struct cpu_cache_level *cache_a = (struct cpu_cache_level *)a; 1202 struct cpu_cache_level *cache_b = (struct cpu_cache_level *)b; 1203 1204 return cache_a->level - cache_b->level; 1205 } 1206 1207 static bool cpu_cache_level__cmp(struct cpu_cache_level *a, struct cpu_cache_level *b) 1208 { 1209 if (a->level != b->level) 1210 return false; 1211 1212 if (a->line_size != b->line_size) 1213 return false; 1214 1215 if (a->sets != b->sets) 1216 return false; 1217 1218 if (a->ways != b->ways) 1219 return false; 1220 1221 if (strcmp(a->type, b->type)) 1222 return false; 1223 1224 if (strcmp(a->size, b->size)) 1225 return false; 1226 1227 if (strcmp(a->map, b->map)) 1228 return false; 1229 1230 return true; 1231 } 1232 1233 static int cpu_cache_level__read(struct cpu_cache_level *cache, u32 cpu, u16 level) 1234 { 1235 char path[PATH_MAX], file[PATH_MAX]; 1236 struct stat st; 1237 size_t len; 1238 1239 scnprintf(path, PATH_MAX, "devices/system/cpu/cpu%d/cache/index%d/", cpu, level); 1240 scnprintf(file, PATH_MAX, "%s/%s", sysfs__mountpoint(), path); 1241 1242 if (stat(file, &st)) 1243 return 1; 1244 1245 scnprintf(file, PATH_MAX, "%s/level", path); 1246 if (sysfs__read_int(file, (int *) &cache->level)) 1247 return -1; 1248 1249 scnprintf(file, PATH_MAX, "%s/coherency_line_size", path); 1250 if (sysfs__read_int(file, (int *) &cache->line_size)) 1251 return -1; 1252 1253 scnprintf(file, PATH_MAX, "%s/number_of_sets", path); 1254 if (sysfs__read_int(file, (int *) &cache->sets)) 1255 return -1; 1256 1257 scnprintf(file, PATH_MAX, "%s/ways_of_associativity", path); 1258 if (sysfs__read_int(file, (int *) &cache->ways)) 1259 return -1; 1260 1261 scnprintf(file, PATH_MAX, "%s/type", path); 1262 if (sysfs__read_str(file, &cache->type, &len)) 1263 return -1; 1264 1265 cache->type[len] = 0; 1266 cache->type = strim(cache->type); 1267 1268 scnprintf(file, PATH_MAX, "%s/size", path); 1269 if (sysfs__read_str(file, &cache->size, &len)) { 1270 zfree(&cache->type); 1271 return -1; 1272 } 1273 1274 cache->size[len] = 0; 1275 cache->size = strim(cache->size); 1276 1277 scnprintf(file, PATH_MAX, "%s/shared_cpu_list", path); 1278 if (sysfs__read_str(file, &cache->map, &len)) { 1279 zfree(&cache->size); 1280 zfree(&cache->type); 1281 return -1; 1282 } 1283 1284 cache->map[len] = 0; 1285 cache->map = strim(cache->map); 1286 return 0; 1287 } 1288 1289 static void cpu_cache_level__fprintf(FILE *out, struct cpu_cache_level *c) 1290 { 1291 fprintf(out, "L%d %-15s %8s [%s]\n", c->level, c->type, c->size, c->map); 1292 } 1293 1294 /* 1295 * Build caches levels for a particular CPU from the data in 1296 * /sys/devices/system/cpu/cpu<cpu>/cache/ 1297 * The cache level data is stored in caches[] from index at 1298 * *cntp. 1299 */ 1300 int build_caches_for_cpu(u32 cpu, struct cpu_cache_level caches[], u32 *cntp) 1301 { 1302 u16 level; 1303 1304 for (level = 0; level < MAX_CACHE_LVL; level++) { 1305 struct cpu_cache_level c; 1306 int err; 1307 u32 i; 1308 1309 err = cpu_cache_level__read(&c, cpu, level); 1310 if (err < 0) 1311 return err; 1312 1313 if (err == 1) 1314 break; 1315 1316 for (i = 0; i < *cntp; i++) { 1317 if (cpu_cache_level__cmp(&c, &caches[i])) 1318 break; 1319 } 1320 1321 if (i == *cntp) { 1322 caches[*cntp] = c; 1323 *cntp = *cntp + 1; 1324 } else 1325 cpu_cache_level__free(&c); 1326 } 1327 1328 return 0; 1329 } 1330 1331 static int build_caches(struct cpu_cache_level caches[], u32 *cntp) 1332 { 1333 u32 nr, cpu, cnt = 0; 1334 1335 nr = cpu__max_cpu().cpu; 1336 1337 for (cpu = 0; cpu < nr; cpu++) { 1338 int ret = build_caches_for_cpu(cpu, caches, &cnt); 1339 1340 if (ret) 1341 return ret; 1342 } 1343 *cntp = cnt; 1344 return 0; 1345 } 1346 1347 static int write_cache(struct feat_fd *ff, 1348 struct evlist *evlist __maybe_unused) 1349 { 1350 u32 max_caches = cpu__max_cpu().cpu * MAX_CACHE_LVL; 1351 struct cpu_cache_level caches[max_caches]; 1352 u32 cnt = 0, i, version = 1; 1353 int ret; 1354 1355 ret = build_caches(caches, &cnt); 1356 if (ret) 1357 goto out; 1358 1359 qsort(&caches, cnt, sizeof(struct cpu_cache_level), cpu_cache_level__sort); 1360 1361 ret = do_write(ff, &version, sizeof(u32)); 1362 if (ret < 0) 1363 goto out; 1364 1365 ret = do_write(ff, &cnt, sizeof(u32)); 1366 if (ret < 0) 1367 goto out; 1368 1369 for (i = 0; i < cnt; i++) { 1370 struct cpu_cache_level *c = &caches[i]; 1371 1372 #define _W(v) \ 1373 ret = do_write(ff, &c->v, sizeof(u32)); \ 1374 if (ret < 0) \ 1375 goto out; 1376 1377 _W(level) 1378 _W(line_size) 1379 _W(sets) 1380 _W(ways) 1381 #undef _W 1382 1383 #define _W(v) \ 1384 ret = do_write_string(ff, (const char *) c->v); \ 1385 if (ret < 0) \ 1386 goto out; 1387 1388 _W(type) 1389 _W(size) 1390 _W(map) 1391 #undef _W 1392 } 1393 1394 out: 1395 for (i = 0; i < cnt; i++) 1396 cpu_cache_level__free(&caches[i]); 1397 return ret; 1398 } 1399 1400 static int write_cln_size(struct feat_fd *ff, 1401 struct evlist *evlist __maybe_unused) 1402 { 1403 int cln_size = cacheline_size(); 1404 1405 if (!cln_size) 1406 cln_size = DEFAULT_CACHELINE_SIZE; 1407 1408 ff->ph->env.cln_size = cln_size; 1409 1410 return do_write(ff, &cln_size, sizeof(cln_size)); 1411 } 1412 1413 static int write_stat(struct feat_fd *ff __maybe_unused, 1414 struct evlist *evlist __maybe_unused) 1415 { 1416 return 0; 1417 } 1418 1419 static int write_sample_time(struct feat_fd *ff, 1420 struct evlist *evlist) 1421 { 1422 int ret; 1423 1424 ret = do_write(ff, &evlist->first_sample_time, 1425 sizeof(evlist->first_sample_time)); 1426 if (ret < 0) 1427 return ret; 1428 1429 return do_write(ff, &evlist->last_sample_time, 1430 sizeof(evlist->last_sample_time)); 1431 } 1432 1433 1434 static int memory_node__read(struct memory_node *n, unsigned long idx) 1435 { 1436 unsigned int phys, size = 0; 1437 char path[PATH_MAX]; 1438 struct io_dirent64 *ent; 1439 struct io_dir dir; 1440 1441 #define for_each_memory(mem, dir) \ 1442 while ((ent = io_dir__readdir(&dir)) != NULL) \ 1443 if (strcmp(ent->d_name, ".") && \ 1444 strcmp(ent->d_name, "..") && \ 1445 sscanf(ent->d_name, "memory%u", &mem) == 1) 1446 1447 scnprintf(path, PATH_MAX, 1448 "%s/devices/system/node/node%lu", 1449 sysfs__mountpoint(), idx); 1450 1451 io_dir__init(&dir, open(path, O_CLOEXEC | O_DIRECTORY | O_RDONLY)); 1452 if (dir.dirfd < 0) { 1453 pr_warning("failed: can't open memory sysfs data '%s'\n", path); 1454 return -1; 1455 } 1456 1457 for_each_memory(phys, dir) { 1458 size = max(phys, size); 1459 } 1460 1461 size++; 1462 1463 n->set = bitmap_zalloc(size); 1464 if (!n->set) { 1465 close(dir.dirfd); 1466 return -ENOMEM; 1467 } 1468 1469 n->node = idx; 1470 n->size = size; 1471 1472 io_dir__rewinddir(&dir); 1473 1474 for_each_memory(phys, dir) { 1475 __set_bit(phys, n->set); 1476 } 1477 1478 close(dir.dirfd); 1479 return 0; 1480 } 1481 1482 static void memory_node__delete_nodes(struct memory_node *nodesp, u64 cnt) 1483 { 1484 for (u64 i = 0; i < cnt; i++) 1485 bitmap_free(nodesp[i].set); 1486 1487 free(nodesp); 1488 } 1489 1490 static int memory_node__sort(const void *a, const void *b) 1491 { 1492 const struct memory_node *na = a; 1493 const struct memory_node *nb = b; 1494 1495 return na->node - nb->node; 1496 } 1497 1498 static int build_mem_topology(struct memory_node **nodesp, u64 *cntp) 1499 { 1500 char path[PATH_MAX]; 1501 struct io_dirent64 *ent; 1502 struct io_dir dir; 1503 int ret = 0; 1504 size_t cnt = 0, size = 0; 1505 struct memory_node *nodes = NULL; 1506 1507 scnprintf(path, PATH_MAX, "%s/devices/system/node/", 1508 sysfs__mountpoint()); 1509 1510 io_dir__init(&dir, open(path, O_CLOEXEC | O_DIRECTORY | O_RDONLY)); 1511 if (dir.dirfd < 0) { 1512 pr_debug2("%s: couldn't read %s, does this arch have topology information?\n", 1513 __func__, path); 1514 return -1; 1515 } 1516 1517 while (!ret && (ent = io_dir__readdir(&dir))) { 1518 unsigned int idx; 1519 int r; 1520 1521 if (!strcmp(ent->d_name, ".") || 1522 !strcmp(ent->d_name, "..")) 1523 continue; 1524 1525 r = sscanf(ent->d_name, "node%u", &idx); 1526 if (r != 1) 1527 continue; 1528 1529 if (cnt >= size) { 1530 struct memory_node *new_nodes = 1531 reallocarray(nodes, cnt + 4, sizeof(*nodes)); 1532 1533 if (!new_nodes) { 1534 pr_err("Failed to write MEM_TOPOLOGY, size %zd nodes\n", size); 1535 ret = -ENOMEM; 1536 goto out; 1537 } 1538 nodes = new_nodes; 1539 size += 4; 1540 } 1541 ret = memory_node__read(&nodes[cnt], idx); 1542 if (!ret) 1543 cnt += 1; 1544 } 1545 out: 1546 close(dir.dirfd); 1547 if (!ret) { 1548 *cntp = cnt; 1549 *nodesp = nodes; 1550 qsort(nodes, cnt, sizeof(nodes[0]), memory_node__sort); 1551 } else 1552 memory_node__delete_nodes(nodes, cnt); 1553 1554 return ret; 1555 } 1556 1557 /* 1558 * The MEM_TOPOLOGY holds physical memory map for every 1559 * node in system. The format of data is as follows: 1560 * 1561 * 0 - version | for future changes 1562 * 8 - block_size_bytes | /sys/devices/system/memory/block_size_bytes 1563 * 16 - count | number of nodes 1564 * 1565 * For each node we store map of physical indexes for 1566 * each node: 1567 * 1568 * 32 - node id | node index 1569 * 40 - size | size of bitmap 1570 * 48 - bitmap | bitmap of memory indexes that belongs to node 1571 */ 1572 static int write_mem_topology(struct feat_fd *ff __maybe_unused, 1573 struct evlist *evlist __maybe_unused) 1574 { 1575 struct memory_node *nodes = NULL; 1576 u64 bsize, version = 1, i, nr = 0; 1577 int ret; 1578 1579 ret = sysfs__read_xll("devices/system/memory/block_size_bytes", 1580 (unsigned long long *) &bsize); 1581 if (ret) 1582 return ret; 1583 1584 ret = build_mem_topology(&nodes, &nr); 1585 if (ret) 1586 return ret; 1587 1588 ret = do_write(ff, &version, sizeof(version)); 1589 if (ret < 0) 1590 goto out; 1591 1592 ret = do_write(ff, &bsize, sizeof(bsize)); 1593 if (ret < 0) 1594 goto out; 1595 1596 ret = do_write(ff, &nr, sizeof(nr)); 1597 if (ret < 0) 1598 goto out; 1599 1600 for (i = 0; i < nr; i++) { 1601 struct memory_node *n = &nodes[i]; 1602 1603 #define _W(v) \ 1604 ret = do_write(ff, &n->v, sizeof(n->v)); \ 1605 if (ret < 0) \ 1606 goto out; 1607 1608 _W(node) 1609 _W(size) 1610 1611 #undef _W 1612 1613 ret = do_write_bitmap(ff, n->set, n->size); 1614 if (ret < 0) 1615 goto out; 1616 } 1617 1618 out: 1619 memory_node__delete_nodes(nodes, nr); 1620 return ret; 1621 } 1622 1623 static int write_compressed(struct feat_fd *ff __maybe_unused, 1624 struct evlist *evlist __maybe_unused) 1625 { 1626 int ret; 1627 1628 ret = do_write(ff, &(ff->ph->env.comp_ver), sizeof(ff->ph->env.comp_ver)); 1629 if (ret) 1630 return ret; 1631 1632 ret = do_write(ff, &(ff->ph->env.comp_type), sizeof(ff->ph->env.comp_type)); 1633 if (ret) 1634 return ret; 1635 1636 ret = do_write(ff, &(ff->ph->env.comp_level), sizeof(ff->ph->env.comp_level)); 1637 if (ret) 1638 return ret; 1639 1640 ret = do_write(ff, &(ff->ph->env.comp_ratio), sizeof(ff->ph->env.comp_ratio)); 1641 if (ret) 1642 return ret; 1643 1644 return do_write(ff, &(ff->ph->env.comp_mmap_len), sizeof(ff->ph->env.comp_mmap_len)); 1645 } 1646 1647 static int __write_pmu_caps(struct feat_fd *ff, struct perf_pmu *pmu, 1648 bool write_pmu) 1649 { 1650 struct perf_pmu_caps *caps = NULL; 1651 int ret; 1652 1653 ret = do_write(ff, &pmu->nr_caps, sizeof(pmu->nr_caps)); 1654 if (ret < 0) 1655 return ret; 1656 1657 list_for_each_entry(caps, &pmu->caps, list) { 1658 ret = do_write_string(ff, caps->name); 1659 if (ret < 0) 1660 return ret; 1661 1662 ret = do_write_string(ff, caps->value); 1663 if (ret < 0) 1664 return ret; 1665 } 1666 1667 if (write_pmu) { 1668 ret = do_write_string(ff, pmu->name); 1669 if (ret < 0) 1670 return ret; 1671 } 1672 1673 return ret; 1674 } 1675 1676 static int write_cpu_pmu_caps(struct feat_fd *ff, 1677 struct evlist *evlist __maybe_unused) 1678 { 1679 struct perf_pmu *cpu_pmu = perf_pmus__find_core_pmu(); 1680 int ret; 1681 1682 if (!cpu_pmu) 1683 return -ENOENT; 1684 1685 ret = perf_pmu__caps_parse(cpu_pmu); 1686 if (ret < 0) 1687 return ret; 1688 1689 return __write_pmu_caps(ff, cpu_pmu, false); 1690 } 1691 1692 static int write_pmu_caps(struct feat_fd *ff, 1693 struct evlist *evlist __maybe_unused) 1694 { 1695 struct perf_pmu *pmu = NULL; 1696 int nr_pmu = 0; 1697 int ret; 1698 1699 while ((pmu = perf_pmus__scan(pmu))) { 1700 if (!strcmp(pmu->name, "cpu")) { 1701 /* 1702 * The "cpu" PMU is special and covered by 1703 * HEADER_CPU_PMU_CAPS. Note, core PMUs are 1704 * counted/written here for ARM, s390 and Intel hybrid. 1705 */ 1706 continue; 1707 } 1708 if (perf_pmu__caps_parse(pmu) <= 0) 1709 continue; 1710 nr_pmu++; 1711 } 1712 1713 ret = do_write(ff, &nr_pmu, sizeof(nr_pmu)); 1714 if (ret < 0) 1715 return ret; 1716 1717 if (!nr_pmu) 1718 return 0; 1719 1720 /* 1721 * Note older perf tools assume core PMUs come first, this is a property 1722 * of perf_pmus__scan. 1723 */ 1724 pmu = NULL; 1725 while ((pmu = perf_pmus__scan(pmu))) { 1726 if (!strcmp(pmu->name, "cpu")) { 1727 /* Skip as above. */ 1728 continue; 1729 } 1730 if (perf_pmu__caps_parse(pmu) <= 0) 1731 continue; 1732 ret = __write_pmu_caps(ff, pmu, true); 1733 if (ret < 0) 1734 return ret; 1735 } 1736 return 0; 1737 } 1738 1739 struct cpu_domain_map **build_cpu_domain_map(u32 *schedstat_version, u32 *max_sched_domains, u32 nr) 1740 { 1741 char dname[DNAME_LEN], cpumask[MAX_NR_CPUS]; 1742 struct domain_info *domain_info; 1743 struct cpu_domain_map **cd_map; 1744 char cpulist[MAX_NR_CPUS]; 1745 char *line = NULL; 1746 u32 cpu, domain; 1747 u32 dcount = 0; 1748 size_t len; 1749 FILE *fp; 1750 1751 fp = fopen("/proc/schedstat", "r"); 1752 if (!fp) { 1753 pr_err("Failed to open /proc/schedstat\n"); 1754 return NULL; 1755 } 1756 1757 cd_map = zalloc(sizeof(*cd_map) * nr); 1758 if (!cd_map) 1759 goto out; 1760 1761 while (getline(&line, &len, fp) > 0) { 1762 int retval; 1763 1764 if (strncmp(line, "version", 7) == 0) { 1765 retval = sscanf(line, "version %d\n", schedstat_version); 1766 if (retval != 1) 1767 continue; 1768 1769 } else if (strncmp(line, "cpu", 3) == 0) { 1770 retval = sscanf(line, "cpu%u %*s", &cpu); 1771 if (retval == 1) { 1772 cd_map[cpu] = zalloc(sizeof(*cd_map[cpu])); 1773 if (!cd_map[cpu]) 1774 goto out_free_line; 1775 cd_map[cpu]->cpu = cpu; 1776 } else 1777 continue; 1778 1779 dcount = 0; 1780 } else if (strncmp(line, "domain", 6) == 0) { 1781 struct domain_info **temp_domains; 1782 1783 dcount++; 1784 temp_domains = realloc(cd_map[cpu]->domains, dcount * sizeof(domain_info)); 1785 if (!temp_domains) 1786 goto out_free_line; 1787 else 1788 cd_map[cpu]->domains = temp_domains; 1789 1790 domain_info = zalloc(sizeof(*domain_info)); 1791 if (!domain_info) 1792 goto out_free_line; 1793 1794 cd_map[cpu]->domains[dcount - 1] = domain_info; 1795 1796 if (*schedstat_version >= 17) { 1797 retval = sscanf(line, "domain%u %s %s %*s", &domain, dname, 1798 cpumask); 1799 if (retval != 3) 1800 continue; 1801 1802 domain_info->dname = strdup(dname); 1803 if (!domain_info->dname) 1804 goto out_free_line; 1805 } else { 1806 retval = sscanf(line, "domain%u %s %*s", &domain, cpumask); 1807 if (retval != 2) 1808 continue; 1809 } 1810 1811 domain_info->domain = domain; 1812 if (domain > *max_sched_domains) 1813 *max_sched_domains = domain; 1814 1815 domain_info->cpumask = strdup(cpumask); 1816 if (!domain_info->cpumask) 1817 goto out_free_line; 1818 1819 cpumask_to_cpulist(cpumask, cpulist); 1820 domain_info->cpulist = strdup(cpulist); 1821 if (!domain_info->cpulist) 1822 goto out_free_line; 1823 1824 cd_map[cpu]->nr_domains = dcount; 1825 } 1826 } 1827 1828 out_free_line: 1829 free(line); 1830 out: 1831 fclose(fp); 1832 return cd_map; 1833 } 1834 1835 static int write_cpu_domain_info(struct feat_fd *ff, 1836 struct evlist *evlist __maybe_unused) 1837 { 1838 u32 max_sched_domains = 0, schedstat_version = 0; 1839 struct cpu_domain_map **cd_map; 1840 u32 i, j, nr, ret; 1841 1842 nr = cpu__max_present_cpu().cpu; 1843 1844 cd_map = build_cpu_domain_map(&schedstat_version, &max_sched_domains, nr); 1845 if (!cd_map) 1846 return -1; 1847 1848 ret = do_write(ff, &schedstat_version, sizeof(u32)); 1849 if (ret < 0) 1850 goto out; 1851 1852 max_sched_domains += 1; 1853 ret = do_write(ff, &max_sched_domains, sizeof(u32)); 1854 if (ret < 0) 1855 goto out; 1856 1857 for (i = 0; i < nr; i++) { 1858 if (!cd_map[i]) 1859 continue; 1860 1861 ret = do_write(ff, &cd_map[i]->cpu, sizeof(u32)); 1862 if (ret < 0) 1863 goto out; 1864 1865 ret = do_write(ff, &cd_map[i]->nr_domains, sizeof(u32)); 1866 if (ret < 0) 1867 goto out; 1868 1869 for (j = 0; j < cd_map[i]->nr_domains; j++) { 1870 ret = do_write(ff, &cd_map[i]->domains[j]->domain, sizeof(u32)); 1871 if (ret < 0) 1872 goto out; 1873 if (schedstat_version >= 17) { 1874 ret = do_write_string(ff, cd_map[i]->domains[j]->dname); 1875 if (ret < 0) 1876 goto out; 1877 } 1878 1879 ret = do_write_string(ff, cd_map[i]->domains[j]->cpumask); 1880 if (ret < 0) 1881 goto out; 1882 1883 ret = do_write_string(ff, cd_map[i]->domains[j]->cpulist); 1884 if (ret < 0) 1885 goto out; 1886 } 1887 } 1888 1889 out: 1890 free_cpu_domain_info(cd_map, schedstat_version, nr); 1891 return ret; 1892 } 1893 1894 static void print_hostname(struct feat_fd *ff, FILE *fp) 1895 { 1896 fprintf(fp, "# hostname : %s\n", ff->ph->env.hostname); 1897 } 1898 1899 static void print_osrelease(struct feat_fd *ff, FILE *fp) 1900 { 1901 fprintf(fp, "# os release : %s\n", ff->ph->env.os_release); 1902 } 1903 1904 static void print_arch(struct feat_fd *ff, FILE *fp) 1905 { 1906 fprintf(fp, "# arch : %s\n", ff->ph->env.arch); 1907 } 1908 1909 static void print_e_machine(struct feat_fd *ff, FILE *fp) 1910 { 1911 fprintf(fp, "# e_machine : %u\n", ff->ph->env.e_machine); 1912 fprintf(fp, "# e_flags : %u\n", ff->ph->env.e_flags); 1913 } 1914 1915 static void print_cpudesc(struct feat_fd *ff, FILE *fp) 1916 { 1917 fprintf(fp, "# cpudesc : %s\n", ff->ph->env.cpu_desc); 1918 } 1919 1920 static void print_nrcpus(struct feat_fd *ff, FILE *fp) 1921 { 1922 fprintf(fp, "# nrcpus online : %u\n", ff->ph->env.nr_cpus_online); 1923 fprintf(fp, "# nrcpus avail : %u\n", ff->ph->env.nr_cpus_avail); 1924 } 1925 1926 static void print_version(struct feat_fd *ff, FILE *fp) 1927 { 1928 fprintf(fp, "# perf version : %s\n", ff->ph->env.version); 1929 } 1930 1931 static void print_cmdline(struct feat_fd *ff, FILE *fp) 1932 { 1933 int nr, i; 1934 1935 nr = ff->ph->env.nr_cmdline; 1936 1937 fprintf(fp, "# cmdline : "); 1938 1939 for (i = 0; i < nr; i++) { 1940 char *argv_i = strdup(ff->ph->env.cmdline_argv[i]); 1941 if (!argv_i) { 1942 fprintf(fp, "%s ", ff->ph->env.cmdline_argv[i]); 1943 } else { 1944 char *mem = argv_i; 1945 do { 1946 char *quote = strchr(argv_i, '\''); 1947 if (!quote) 1948 break; 1949 *quote++ = '\0'; 1950 fprintf(fp, "%s\\\'", argv_i); 1951 argv_i = quote; 1952 } while (1); 1953 fprintf(fp, "%s ", argv_i); 1954 free(mem); 1955 } 1956 } 1957 fputc('\n', fp); 1958 } 1959 1960 static void print_cpu_topology(struct feat_fd *ff, FILE *fp) 1961 { 1962 struct perf_header *ph = ff->ph; 1963 int cpu_nr = ph->env.nr_cpus_avail; 1964 int nr, i; 1965 char *str; 1966 1967 nr = ph->env.nr_sibling_cores; 1968 str = ph->env.sibling_cores; 1969 1970 for (i = 0; i < nr; i++) { 1971 fprintf(fp, "# sibling sockets : %s\n", str); 1972 str += strlen(str) + 1; 1973 } 1974 1975 if (ph->env.nr_sibling_dies) { 1976 nr = ph->env.nr_sibling_dies; 1977 str = ph->env.sibling_dies; 1978 1979 for (i = 0; i < nr; i++) { 1980 fprintf(fp, "# sibling dies : %s\n", str); 1981 str += strlen(str) + 1; 1982 } 1983 } 1984 1985 nr = ph->env.nr_sibling_threads; 1986 str = ph->env.sibling_threads; 1987 1988 for (i = 0; i < nr; i++) { 1989 fprintf(fp, "# sibling threads : %s\n", str); 1990 str += strlen(str) + 1; 1991 } 1992 1993 if (ph->env.nr_sibling_dies) { 1994 if (ph->env.cpu != NULL) { 1995 for (i = 0; i < cpu_nr; i++) 1996 fprintf(fp, "# CPU %d: Core ID %d, " 1997 "Die ID %d, Socket ID %d\n", 1998 i, ph->env.cpu[i].core_id, 1999 ph->env.cpu[i].die_id, 2000 ph->env.cpu[i].socket_id); 2001 } else 2002 fprintf(fp, "# Core ID, Die ID and Socket ID " 2003 "information is not available\n"); 2004 } else { 2005 if (ph->env.cpu != NULL) { 2006 for (i = 0; i < cpu_nr; i++) 2007 fprintf(fp, "# CPU %d: Core ID %d, " 2008 "Socket ID %d\n", 2009 i, ph->env.cpu[i].core_id, 2010 ph->env.cpu[i].socket_id); 2011 } else 2012 fprintf(fp, "# Core ID and Socket ID " 2013 "information is not available\n"); 2014 } 2015 } 2016 2017 static void print_clockid(struct feat_fd *ff, FILE *fp) 2018 { 2019 fprintf(fp, "# clockid frequency: %"PRIu64" MHz\n", 2020 ff->ph->env.clock.clockid_res_ns * 1000); 2021 } 2022 2023 static void print_clock_data(struct feat_fd *ff, FILE *fp) 2024 { 2025 struct timespec clockid_ns; 2026 char tstr[64], date[64]; 2027 struct timeval tod_ns; 2028 clockid_t clockid; 2029 struct tm ltime; 2030 u64 ref; 2031 2032 if (!ff->ph->env.clock.enabled) { 2033 fprintf(fp, "# reference time disabled\n"); 2034 return; 2035 } 2036 2037 /* Compute TOD time. */ 2038 ref = ff->ph->env.clock.tod_ns; 2039 tod_ns.tv_sec = ref / NSEC_PER_SEC; 2040 ref -= tod_ns.tv_sec * NSEC_PER_SEC; 2041 tod_ns.tv_usec = ref / NSEC_PER_USEC; 2042 2043 /* Compute clockid time. */ 2044 ref = ff->ph->env.clock.clockid_ns; 2045 clockid_ns.tv_sec = ref / NSEC_PER_SEC; 2046 ref -= clockid_ns.tv_sec * NSEC_PER_SEC; 2047 clockid_ns.tv_nsec = ref; 2048 2049 clockid = ff->ph->env.clock.clockid; 2050 2051 if (localtime_r(&tod_ns.tv_sec, <ime) == NULL) 2052 snprintf(tstr, sizeof(tstr), "<error>"); 2053 else { 2054 strftime(date, sizeof(date), "%F %T", <ime); 2055 scnprintf(tstr, sizeof(tstr), "%s.%06d", 2056 date, (int) tod_ns.tv_usec); 2057 } 2058 2059 fprintf(fp, "# clockid: %s (%u)\n", clockid_name(clockid), clockid); 2060 fprintf(fp, "# reference time: %s = %ld.%06d (TOD) = %ld.%09ld (%s)\n", 2061 tstr, (long) tod_ns.tv_sec, (int) tod_ns.tv_usec, 2062 (long) clockid_ns.tv_sec, clockid_ns.tv_nsec, 2063 clockid_name(clockid)); 2064 } 2065 2066 static void print_hybrid_topology(struct feat_fd *ff, FILE *fp) 2067 { 2068 int i; 2069 struct hybrid_node *n; 2070 2071 fprintf(fp, "# hybrid cpu system:\n"); 2072 for (i = 0; i < ff->ph->env.nr_hybrid_nodes; i++) { 2073 n = &ff->ph->env.hybrid_nodes[i]; 2074 fprintf(fp, "# %s cpu list : %s\n", n->pmu_name, n->cpus); 2075 } 2076 } 2077 2078 static void print_dir_format(struct feat_fd *ff, FILE *fp) 2079 { 2080 struct perf_session *session; 2081 struct perf_data *data; 2082 2083 session = container_of(ff->ph, struct perf_session, header); 2084 data = session->data; 2085 2086 fprintf(fp, "# directory data version : %"PRIu64"\n", data->dir.version); 2087 } 2088 2089 static void print_bpf_prog_info(struct feat_fd *ff __maybe_unused, FILE *fp) 2090 { 2091 #ifdef HAVE_LIBBPF_SUPPORT 2092 struct perf_env *env = &ff->ph->env; 2093 struct rb_root *root; 2094 struct rb_node *next; 2095 2096 down_read(&env->bpf_progs.lock); 2097 2098 root = &env->bpf_progs.infos; 2099 next = rb_first(root); 2100 2101 if (!next) 2102 fprintf(fp, "# bpf_prog_info empty\n"); 2103 2104 while (next) { 2105 struct bpf_prog_info_node *node; 2106 2107 node = rb_entry(next, struct bpf_prog_info_node, rb_node); 2108 next = rb_next(&node->rb_node); 2109 2110 __bpf_event__print_bpf_prog_info(node->info_linear, env, fp); 2111 } 2112 2113 up_read(&env->bpf_progs.lock); 2114 #else 2115 fprintf(fp, "# bpf_prog_info missing, no libbpf support\n"); 2116 #endif // HAVE_LIBBPF_SUPPORT 2117 } 2118 2119 static void print_bpf_btf(struct feat_fd *ff __maybe_unused, FILE *fp) 2120 { 2121 #ifdef HAVE_LIBBPF_SUPPORT 2122 struct perf_env *env = &ff->ph->env; 2123 struct rb_root *root; 2124 struct rb_node *next; 2125 2126 down_read(&env->bpf_progs.lock); 2127 2128 root = &env->bpf_progs.btfs; 2129 next = rb_first(root); 2130 2131 if (!next) 2132 printf("# btf info empty\n"); 2133 2134 while (next) { 2135 struct btf_node *node; 2136 2137 node = rb_entry(next, struct btf_node, rb_node); 2138 next = rb_next(&node->rb_node); 2139 fprintf(fp, "# btf info of id %u\n", node->id); 2140 } 2141 2142 up_read(&env->bpf_progs.lock); 2143 #else 2144 fprintf(fp, "# bpf btf data missing, no libbpf support\n"); 2145 #endif // HAVE_LIBBPF_SUPPORT 2146 } 2147 2148 static void free_event_desc(struct evsel *events) 2149 { 2150 struct evsel *evsel; 2151 2152 if (!events) 2153 return; 2154 2155 for (evsel = events; evsel->core.attr.size; evsel++) { 2156 zfree(&evsel->name); 2157 zfree(&evsel->core.id); 2158 } 2159 2160 free(events); 2161 } 2162 2163 static bool perf_attr_check(struct perf_event_attr *attr) 2164 { 2165 if (attr->__reserved_1 || attr->__reserved_2 || attr->__reserved_3) { 2166 pr_warning("Reserved bits are set unexpectedly. " 2167 "Please update perf tool.\n"); 2168 return false; 2169 } 2170 2171 if (attr->sample_type & ~(PERF_SAMPLE_MAX-1)) { 2172 pr_warning("Unknown sample type (0x%llx) is detected. " 2173 "Please update perf tool.\n", 2174 attr->sample_type); 2175 return false; 2176 } 2177 2178 if (attr->read_format & ~(PERF_FORMAT_MAX-1)) { 2179 pr_warning("Unknown read format (0x%llx) is detected. " 2180 "Please update perf tool.\n", 2181 attr->read_format); 2182 return false; 2183 } 2184 2185 if ((attr->sample_type & PERF_SAMPLE_BRANCH_STACK) && 2186 (attr->branch_sample_type & ~(PERF_SAMPLE_BRANCH_MAX-1))) { 2187 pr_warning("Unknown branch sample type (0x%llx) is detected. " 2188 "Please update perf tool.\n", 2189 attr->branch_sample_type); 2190 2191 return false; 2192 } 2193 2194 return true; 2195 } 2196 2197 static struct evsel *read_event_desc(struct feat_fd *ff) 2198 { 2199 struct evsel *evsel, *events = NULL; 2200 u64 *id; 2201 void *buf = NULL; 2202 u32 nre, sz, nr, i, j; 2203 size_t msz; 2204 2205 /* number of events */ 2206 if (do_read_u32(ff, &nre)) 2207 goto error; 2208 2209 /* Size of each of the nre attributes. */ 2210 if (do_read_u32(ff, &sz)) 2211 goto error; 2212 2213 /* 2214 * Require at least one event with an attr no smaller than the 2215 * first published struct, and reject sz values where 2216 * sz + sizeof(u32) would overflow size_t (possible on 32-bit) 2217 * or nre == UINT32_MAX where nre + 1 wraps to 0 in the calloc. 2218 * 2219 * The minimum section footprint per event is sz bytes for the 2220 * attr plus a u32 for the id count, check that nre events fit. 2221 */ 2222 if (!nre || sz < PERF_ATTR_SIZE_VER0 || 2223 sz > ff->size || (size_t)sz > SIZE_MAX - sizeof(u32) || 2224 nre == UINT32_MAX || 2225 nre > (ff->size - ff->offset) / (sz + sizeof(u32))) { 2226 pr_err("Invalid HEADER_EVENT_DESC: nre=%u sz=%u (min %d)\n", 2227 nre, sz, PERF_ATTR_SIZE_VER0); 2228 goto error; 2229 } 2230 2231 /* buffer to hold on file attr struct */ 2232 buf = malloc(sz); 2233 if (!buf) 2234 goto error; 2235 2236 /* the last event terminates with evsel->core.attr.size == 0: */ 2237 events = calloc(nre + 1, sizeof(*events)); 2238 if (!events) 2239 goto error; 2240 2241 msz = sizeof(evsel->core.attr); 2242 if (sz < msz) 2243 msz = sz; 2244 2245 for (i = 0, evsel = events; i < nre; evsel++, i++) { 2246 struct perf_event_attr *attr = buf; 2247 u32 attr_size; 2248 2249 evsel->core.idx = i; 2250 2251 /* 2252 * must read entire on-file attr struct to 2253 * sync up with layout. 2254 */ 2255 if (__do_read(ff, buf, sz)) 2256 goto error; 2257 2258 /* Reject before attr_swap to prevent OOB via bswap_safe() */ 2259 attr_size = ff->ph->needs_swap ? bswap_32(attr->size) : attr->size; 2260 /* ABI0: size == 0 means the producer didn't set it */ 2261 if (!attr_size) { 2262 attr_size = PERF_ATTR_SIZE_VER0; 2263 /* 2264 * Write back so free_event_desc() doesn't 2265 * treat this event as the end-of-array sentinel 2266 * (it iterates while attr.size != 0). 2267 * 2268 * Only for native — the swap path must NOT 2269 * write native-endian VER0 here because 2270 * perf_event__attr_swap() would re-swap it 2271 * to 0x40000000, defeating bswap_safe() bounds. 2272 * perf_event__attr_swap() has its own ABI0 2273 * fallback that sets VER0 after swapping. 2274 */ 2275 if (!ff->ph->needs_swap) 2276 attr->size = attr_size; 2277 } 2278 if (attr_size < PERF_ATTR_SIZE_VER0 || attr_size > sz) { 2279 pr_err("Event %d attr.size (%u) invalid (min: %d, max: %u)\n", 2280 i, attr_size, PERF_ATTR_SIZE_VER0, sz); 2281 goto error; 2282 } 2283 2284 if (ff->ph->needs_swap) 2285 perf_event__attr_swap(buf); 2286 2287 memcpy(&evsel->core.attr, buf, msz); 2288 2289 if (!perf_attr_check(&evsel->core.attr)) 2290 goto error; 2291 2292 if (do_read_u32(ff, &nr)) 2293 goto error; 2294 2295 if (ff->ph->needs_swap) 2296 evsel->needs_swap = true; 2297 2298 evsel->name = do_read_string(ff); 2299 if (!evsel->name) 2300 goto error; 2301 2302 if (!nr) 2303 continue; 2304 2305 /* Prevent oversized allocation from crafted nr */ 2306 if (nr > (ff->size - ff->offset) / sizeof(*id)) { 2307 pr_err("Event %d: id count %u exceeds remaining section\n", i, nr); 2308 goto error; 2309 } 2310 2311 id = calloc(nr, sizeof(*id)); 2312 if (!id) 2313 goto error; 2314 evsel->core.ids = nr; 2315 evsel->core.id = id; 2316 2317 for (j = 0 ; j < nr; j++) { 2318 if (do_read_u64(ff, id)) 2319 goto error; 2320 id++; 2321 } 2322 } 2323 out: 2324 free(buf); 2325 return events; 2326 error: 2327 free_event_desc(events); 2328 events = NULL; 2329 goto out; 2330 } 2331 2332 static int __desc_attr__fprintf(FILE *fp, const char *name, const char *val, 2333 void *priv __maybe_unused) 2334 { 2335 return fprintf(fp, ", %s = %s", name, val); 2336 } 2337 2338 static void print_event_desc(struct feat_fd *ff, FILE *fp) 2339 { 2340 struct evsel *evsel, *events; 2341 u32 j; 2342 u64 *id; 2343 2344 if (ff->events) 2345 events = ff->events; 2346 else 2347 events = read_event_desc(ff); 2348 2349 if (!events) { 2350 fprintf(fp, "# event desc: not available or unable to read\n"); 2351 return; 2352 } 2353 2354 for (evsel = events; evsel->core.attr.size; evsel++) { 2355 fprintf(fp, "# event : name = %s, ", evsel->name); 2356 2357 if (evsel->core.ids) { 2358 fprintf(fp, ", id = {"); 2359 for (j = 0, id = evsel->core.id; j < evsel->core.ids; j++, id++) { 2360 if (j) 2361 fputc(',', fp); 2362 fprintf(fp, " %"PRIu64, *id); 2363 } 2364 fprintf(fp, " }"); 2365 } 2366 2367 perf_event_attr__fprintf(fp, &evsel->core.attr, __desc_attr__fprintf, NULL); 2368 2369 fputc('\n', fp); 2370 } 2371 2372 free_event_desc(events); 2373 ff->events = NULL; 2374 } 2375 2376 static void print_total_mem(struct feat_fd *ff, FILE *fp) 2377 { 2378 fprintf(fp, "# total memory : %llu kB\n", ff->ph->env.total_mem); 2379 } 2380 2381 static void print_numa_topology(struct feat_fd *ff, FILE *fp) 2382 { 2383 int i; 2384 struct numa_node *n; 2385 2386 for (i = 0; i < ff->ph->env.nr_numa_nodes; i++) { 2387 n = &ff->ph->env.numa_nodes[i]; 2388 2389 fprintf(fp, "# node%u meminfo : total = %"PRIu64" kB," 2390 " free = %"PRIu64" kB\n", 2391 n->node, n->mem_total, n->mem_free); 2392 2393 fprintf(fp, "# node%u cpu list : ", n->node); 2394 cpu_map__fprintf(n->map, fp); 2395 } 2396 } 2397 2398 static void print_cpuid(struct feat_fd *ff, FILE *fp) 2399 { 2400 fprintf(fp, "# cpuid : %s\n", ff->ph->env.cpuid); 2401 } 2402 2403 static void print_branch_stack(struct feat_fd *ff __maybe_unused, FILE *fp) 2404 { 2405 fprintf(fp, "# contains samples with branch stack\n"); 2406 } 2407 2408 static void print_auxtrace(struct feat_fd *ff __maybe_unused, FILE *fp) 2409 { 2410 fprintf(fp, "# contains AUX area data (e.g. instruction trace)\n"); 2411 } 2412 2413 static void print_stat(struct feat_fd *ff __maybe_unused, FILE *fp) 2414 { 2415 fprintf(fp, "# contains stat data\n"); 2416 } 2417 2418 static void print_cache(struct feat_fd *ff, FILE *fp __maybe_unused) 2419 { 2420 int i; 2421 2422 fprintf(fp, "# CPU cache info:\n"); 2423 for (i = 0; i < ff->ph->env.caches_cnt; i++) { 2424 fprintf(fp, "# "); 2425 cpu_cache_level__fprintf(fp, &ff->ph->env.caches[i]); 2426 } 2427 } 2428 2429 static void print_cln_size(struct feat_fd *ff, FILE *fp) 2430 { 2431 fprintf(fp, "# cacheline size: %u\n", ff->ph->env.cln_size); 2432 } 2433 2434 static void print_compressed(struct feat_fd *ff, FILE *fp) 2435 { 2436 fprintf(fp, "# compressed : %s, level = %d, ratio = %d\n", 2437 ff->ph->env.comp_type == PERF_COMP_ZSTD ? "Zstd" : "Unknown", 2438 ff->ph->env.comp_level, ff->ph->env.comp_ratio); 2439 } 2440 2441 static void __print_pmu_caps(FILE *fp, int nr_caps, char **caps, char *pmu_name) 2442 { 2443 const char *delimiter = ""; 2444 int i; 2445 2446 if (!nr_caps) { 2447 fprintf(fp, "# %s pmu capabilities: not available\n", pmu_name); 2448 return; 2449 } 2450 2451 fprintf(fp, "# %s pmu capabilities: ", pmu_name); 2452 for (i = 0; i < nr_caps; i++) { 2453 fprintf(fp, "%s%s", delimiter, caps[i]); 2454 delimiter = ", "; 2455 } 2456 2457 fprintf(fp, "\n"); 2458 } 2459 2460 static void print_cpu_pmu_caps(struct feat_fd *ff, FILE *fp) 2461 { 2462 __print_pmu_caps(fp, ff->ph->env.nr_cpu_pmu_caps, 2463 ff->ph->env.cpu_pmu_caps, (char *)"cpu"); 2464 } 2465 2466 static void print_pmu_caps(struct feat_fd *ff, FILE *fp) 2467 { 2468 struct perf_env *env = &ff->ph->env; 2469 uint16_t e_machine = perf_env__e_machine(env, /*e_flags=*/NULL); 2470 2471 for (int i = 0; i < env->nr_pmus_with_caps; i++) { 2472 struct pmu_caps *pmu_caps = &env->pmu_caps[i]; 2473 2474 __print_pmu_caps(fp, pmu_caps->nr_caps, pmu_caps->caps, 2475 pmu_caps->pmu_name); 2476 } 2477 2478 if ((e_machine == EM_X86_64 || e_machine == EM_386) && 2479 perf_env__has_pmu_mapping(env, "ibs_op")) { 2480 char *max_precise = perf_env__find_pmu_cap(env, "cpu", "max_precise"); 2481 2482 if (max_precise != NULL && atoi(max_precise) == 0) 2483 fprintf(fp, "# AMD systems uses ibs_op// PMU for some precise events, e.g.: cycles:p, see the 'perf list' man page for further details.\n"); 2484 } 2485 } 2486 2487 static void print_pmu_mappings(struct feat_fd *ff, FILE *fp) 2488 { 2489 struct perf_env *env = &ff->ph->env; 2490 const char *delimiter = "# pmu mappings: "; 2491 char *str, *tmp; 2492 u32 pmu_num; 2493 u32 type; 2494 2495 pmu_num = env->nr_pmu_mappings; 2496 if (!pmu_num) { 2497 fprintf(fp, "# pmu mappings: not available\n"); 2498 return; 2499 } 2500 2501 str = env->pmu_mappings; 2502 2503 while (pmu_num) { 2504 type = strtoul(str, &tmp, 0); 2505 if (*tmp != ':') 2506 goto error; 2507 2508 str = tmp + 1; 2509 fprintf(fp, "%s%s = %" PRIu32, delimiter, str, type); 2510 2511 delimiter = ", "; 2512 str += strlen(str) + 1; 2513 pmu_num--; 2514 } 2515 2516 fprintf(fp, "\n"); 2517 2518 if (!pmu_num) 2519 return; 2520 error: 2521 fprintf(fp, "# pmu mappings: unable to read\n"); 2522 } 2523 2524 static void print_group_desc(struct feat_fd *ff, FILE *fp) 2525 { 2526 struct perf_session *session; 2527 struct evsel *evsel; 2528 u32 nr = 0; 2529 2530 session = container_of(ff->ph, struct perf_session, header); 2531 2532 evlist__for_each_entry(session->evlist, evsel) { 2533 if (evsel__is_group_leader(evsel) && evsel->core.nr_members > 1) { 2534 fprintf(fp, "# group: %s{%s", evsel->group_name ?: "", evsel__name(evsel)); 2535 2536 nr = evsel->core.nr_members - 1; 2537 } else if (nr) { 2538 fprintf(fp, ",%s", evsel__name(evsel)); 2539 2540 if (--nr == 0) 2541 fprintf(fp, "}\n"); 2542 } 2543 } 2544 } 2545 2546 static void print_sample_time(struct feat_fd *ff, FILE *fp) 2547 { 2548 struct perf_session *session; 2549 char time_buf[32]; 2550 double d; 2551 2552 session = container_of(ff->ph, struct perf_session, header); 2553 2554 timestamp__scnprintf_usec(session->evlist->first_sample_time, 2555 time_buf, sizeof(time_buf)); 2556 fprintf(fp, "# time of first sample : %s\n", time_buf); 2557 2558 timestamp__scnprintf_usec(session->evlist->last_sample_time, 2559 time_buf, sizeof(time_buf)); 2560 fprintf(fp, "# time of last sample : %s\n", time_buf); 2561 2562 d = (double)(session->evlist->last_sample_time - 2563 session->evlist->first_sample_time) / NSEC_PER_MSEC; 2564 2565 fprintf(fp, "# sample duration : %10.3f ms\n", d); 2566 } 2567 2568 static void memory_node__fprintf(struct memory_node *n, 2569 unsigned long long bsize, FILE *fp) 2570 { 2571 char buf_map[100], buf_size[50]; 2572 unsigned long long size; 2573 2574 size = bsize * bitmap_weight(n->set, n->size); 2575 unit_number__scnprintf(buf_size, 50, size); 2576 2577 bitmap_scnprintf(n->set, n->size, buf_map, 100); 2578 fprintf(fp, "# %3" PRIu64 " [%s]: %s\n", n->node, buf_size, buf_map); 2579 } 2580 2581 static void print_mem_topology(struct feat_fd *ff, FILE *fp) 2582 { 2583 struct perf_env *env = &ff->ph->env; 2584 struct memory_node *nodes; 2585 int i, nr; 2586 2587 nodes = env->memory_nodes; 2588 nr = env->nr_memory_nodes; 2589 2590 fprintf(fp, "# memory nodes (nr %d, block size 0x%llx):\n", 2591 nr, env->memory_bsize); 2592 2593 for (i = 0; i < nr; i++) { 2594 memory_node__fprintf(&nodes[i], env->memory_bsize, fp); 2595 } 2596 } 2597 2598 static void print_cpu_domain_info(struct feat_fd *ff, FILE *fp) 2599 { 2600 struct cpu_domain_map **cd_map = ff->ph->env.cpu_domain; 2601 u32 nr = ff->ph->env.nr_cpus_avail; 2602 struct domain_info *d_info; 2603 u32 i, j; 2604 2605 fprintf(fp, "# schedstat version : %u\n", ff->ph->env.schedstat_version); 2606 fprintf(fp, "# Maximum sched domains : %u\n", ff->ph->env.max_sched_domains); 2607 2608 for (i = 0; i < nr; i++) { 2609 if (!cd_map[i]) 2610 continue; 2611 2612 fprintf(fp, "# cpu : %u\n", cd_map[i]->cpu); 2613 fprintf(fp, "# nr_domains : %u\n", cd_map[i]->nr_domains); 2614 2615 for (j = 0; j < cd_map[i]->nr_domains; j++) { 2616 d_info = cd_map[i]->domains[j]; 2617 if (!d_info) 2618 continue; 2619 2620 fprintf(fp, "# Domain : %u\n", d_info->domain); 2621 2622 if (ff->ph->env.schedstat_version >= 17) 2623 fprintf(fp, "# Domain name : %s\n", d_info->dname); 2624 2625 fprintf(fp, "# Domain cpu map : %s\n", d_info->cpumask); 2626 fprintf(fp, "# Domain cpu list : %s\n", d_info->cpulist); 2627 } 2628 } 2629 } 2630 2631 static int __event_process_build_id(struct perf_record_header_build_id *bev, 2632 char *filename, 2633 struct perf_session *session) 2634 { 2635 int err = -1; 2636 struct machine *machine; 2637 u16 cpumode; 2638 struct dso *dso; 2639 enum dso_space_type dso_space; 2640 2641 machine = perf_session__findnew_machine(session, bev->pid); 2642 if (!machine) 2643 goto out; 2644 2645 cpumode = bev->header.misc & PERF_RECORD_MISC_CPUMODE_MASK; 2646 2647 switch (cpumode) { 2648 case PERF_RECORD_MISC_KERNEL: 2649 dso_space = DSO_SPACE__KERNEL; 2650 break; 2651 case PERF_RECORD_MISC_GUEST_KERNEL: 2652 dso_space = DSO_SPACE__KERNEL_GUEST; 2653 break; 2654 case PERF_RECORD_MISC_USER: 2655 case PERF_RECORD_MISC_GUEST_USER: 2656 dso_space = DSO_SPACE__USER; 2657 break; 2658 default: 2659 goto out; 2660 } 2661 2662 dso = machine__findnew_dso(machine, filename); 2663 if (dso != NULL) { 2664 char sbuild_id[SBUILD_ID_SIZE]; 2665 struct build_id bid; 2666 size_t size = BUILD_ID_SIZE; 2667 2668 if (bev->header.misc & PERF_RECORD_MISC_BUILD_ID_SIZE) 2669 size = bev->size; 2670 2671 build_id__init(&bid, bev->data, size); 2672 dso__set_build_id(dso, &bid); 2673 dso__set_header_build_id(dso, true); 2674 2675 if (dso_space != DSO_SPACE__USER) { 2676 struct kmod_path m = { .name = NULL, }; 2677 2678 if (!kmod_path__parse_name(&m, filename) && m.kmod) 2679 dso__set_module_info(dso, &m, machine); 2680 2681 dso__set_kernel(dso, dso_space); 2682 free(m.name); 2683 } 2684 2685 build_id__snprintf(dso__bid(dso), sbuild_id, sizeof(sbuild_id)); 2686 pr_debug("build id event received for %s: %s [%zu]\n", 2687 dso__long_name(dso), sbuild_id, size); 2688 dso__put(dso); 2689 } 2690 2691 err = 0; 2692 out: 2693 return err; 2694 } 2695 2696 static int perf_header__read_build_ids_abi_quirk(struct perf_header *header, 2697 int input, u64 offset, u64 size) 2698 { 2699 struct perf_session *session = container_of(header, struct perf_session, header); 2700 struct { 2701 struct perf_event_header header; 2702 u8 build_id[PERF_ALIGN(BUILD_ID_SIZE, sizeof(u64))]; 2703 char filename[0]; 2704 } old_bev; 2705 struct perf_record_header_build_id bev; 2706 char filename[PATH_MAX]; 2707 u64 limit; 2708 2709 /* Prevent offset + size from wrapping past ULLONG_MAX */ 2710 if (size > ULLONG_MAX - offset) 2711 return -1; 2712 2713 limit = offset + size; 2714 2715 while (offset < limit) { 2716 ssize_t len; 2717 2718 if (readn(input, &old_bev, sizeof(old_bev)) != sizeof(old_bev)) 2719 return -1; 2720 2721 if (header->needs_swap) 2722 perf_event_header__bswap(&old_bev.header); 2723 2724 /* size == 0 loops forever; size > remaining reads past section */ 2725 if (old_bev.header.size == 0 || old_bev.header.size > limit - offset) 2726 return -1; 2727 2728 len = old_bev.header.size - sizeof(old_bev); 2729 if (len < 0 || len >= PATH_MAX) { 2730 pr_warning("invalid build_id filename length %zd\n", len); 2731 return -1; 2732 } 2733 2734 if (readn(input, filename, len) != len) 2735 return -1; 2736 /* 2737 * The file data may lack a null terminator, which could 2738 * indicate a corrupt or crafted perf.data file. Ensure 2739 * filename is always a valid C string before passing it 2740 * to functions like machine__findnew_dso(). 2741 */ 2742 filename[len] = '\0'; 2743 2744 bev.header = old_bev.header; 2745 2746 /* 2747 * As the pid is the missing value, we need to fill 2748 * it properly. The header.misc value give us nice hint. 2749 */ 2750 bev.pid = HOST_KERNEL_ID; 2751 if (bev.header.misc == PERF_RECORD_MISC_GUEST_USER || 2752 bev.header.misc == PERF_RECORD_MISC_GUEST_KERNEL) 2753 bev.pid = DEFAULT_GUEST_KERNEL_ID; 2754 2755 memcpy(bev.build_id, old_bev.build_id, sizeof(bev.build_id)); 2756 __event_process_build_id(&bev, filename, session); 2757 2758 offset += bev.header.size; 2759 } 2760 2761 return 0; 2762 } 2763 2764 static int perf_header__read_build_ids(struct perf_header *header, 2765 int input, u64 offset, u64 size) 2766 { 2767 struct perf_session *session = container_of(header, struct perf_session, header); 2768 struct perf_record_header_build_id bev; 2769 char filename[PATH_MAX]; 2770 u64 limit, orig_offset = offset; 2771 int err = -1; 2772 2773 /* Prevent offset + size from wrapping past ULLONG_MAX */ 2774 if (size > ULLONG_MAX - offset) 2775 return -1; 2776 2777 limit = offset + size; 2778 2779 while (offset < limit) { 2780 ssize_t len; 2781 2782 if (readn(input, &bev, sizeof(bev)) != sizeof(bev)) 2783 goto out; 2784 2785 if (header->needs_swap) { 2786 perf_event_header__bswap(&bev.header); 2787 bev.pid = bswap_32(bev.pid); 2788 } 2789 2790 /* 2791 * size == 0 would loop forever (offset never advances); 2792 * size > remaining would read past the section boundary. 2793 */ 2794 if (bev.header.size == 0 || bev.header.size > limit - offset) 2795 goto out; 2796 2797 len = bev.header.size - sizeof(bev); 2798 if (len < 0 || len >= PATH_MAX) { 2799 pr_warning("invalid build_id filename length %zd\n", len); 2800 goto out; 2801 } 2802 2803 if (readn(input, filename, len) != len) 2804 goto out; 2805 /* 2806 * The file data may lack a null terminator, which could 2807 * indicate a corrupt or crafted perf.data file. Ensure 2808 * filename is always a valid C string before passing it 2809 * to functions like machine__findnew_dso(). 2810 */ 2811 filename[len] = '\0'; 2812 /* 2813 * The a1645ce1 changeset: 2814 * 2815 * "perf: 'perf kvm' tool for monitoring guest performance from host" 2816 * 2817 * Added a field to struct perf_record_header_build_id that broke the file 2818 * format. 2819 * 2820 * Since the kernel build-id is the first entry, process the 2821 * table using the old format if the well known 2822 * '[kernel.kallsyms]' string for the kernel build-id has the 2823 * first 4 characters chopped off (where the pid_t sits). 2824 */ 2825 /* Guard short filenames against memcmp reading past the buffer */ 2826 if (len >= (ssize_t)sizeof("nel.kallsyms]") - 1 && 2827 memcmp(filename, "nel.kallsyms]", sizeof("nel.kallsyms]") - 1) == 0) { 2828 if (lseek(input, orig_offset, SEEK_SET) == (off_t)-1) 2829 return -1; 2830 return perf_header__read_build_ids_abi_quirk(header, input, offset, size); 2831 } 2832 2833 __event_process_build_id(&bev, filename, session); 2834 2835 offset += bev.header.size; 2836 } 2837 err = 0; 2838 out: 2839 return err; 2840 } 2841 2842 /* Macro for features that simply need to read and store a string. */ 2843 #define FEAT_PROCESS_STR_FUN(__feat, __feat_env) \ 2844 static int process_##__feat(struct feat_fd *ff, void *data __maybe_unused) \ 2845 {\ 2846 free(ff->ph->env.__feat_env); \ 2847 ff->ph->env.__feat_env = do_read_string(ff); \ 2848 return ff->ph->env.__feat_env ? 0 : -ENOMEM; \ 2849 } 2850 2851 FEAT_PROCESS_STR_FUN(hostname, hostname); 2852 FEAT_PROCESS_STR_FUN(osrelease, os_release); 2853 FEAT_PROCESS_STR_FUN(version, version); 2854 FEAT_PROCESS_STR_FUN(cpudesc, cpu_desc); 2855 FEAT_PROCESS_STR_FUN(cpuid, cpuid); 2856 2857 static int process_arch(struct feat_fd *ff, void *data __maybe_unused) 2858 { 2859 free(ff->ph->env.arch); 2860 ff->ph->env.arch = do_read_string(ff); 2861 if (!ff->ph->env.arch) 2862 return -ENOMEM; 2863 return 0; 2864 } 2865 2866 static int process_e_machine(struct feat_fd *ff, void *data __maybe_unused) 2867 { 2868 int ret; 2869 2870 ret = do_read_u32(ff, &ff->ph->env.e_machine); 2871 if (ret) 2872 return ret; 2873 2874 return do_read_u32(ff, &ff->ph->env.e_flags); 2875 } 2876 2877 static int process_tracing_data(struct feat_fd *ff __maybe_unused, void *data __maybe_unused) 2878 { 2879 #ifdef HAVE_LIBTRACEEVENT 2880 ssize_t ret = trace_report(ff->fd, data, false); 2881 2882 return ret < 0 ? -1 : 0; 2883 #else 2884 /* Not an error — the feature is simply unsupported in this build */ 2885 pr_debug("Tracing data present but libtraceevent not available, skipping.\n"); 2886 return 0; 2887 #endif 2888 } 2889 2890 static int process_build_id(struct feat_fd *ff, void *data __maybe_unused) 2891 { 2892 /* lseek fails in pipe mode — fall back to ff->offset */ 2893 off_t offset = lseek(ff->fd, 0, SEEK_CUR); 2894 2895 if (offset == (off_t)-1) 2896 offset = ff->offset; 2897 2898 if (perf_header__read_build_ids(ff->ph, ff->fd, offset, ff->size)) 2899 pr_debug("Failed to read buildids, continuing...\n"); 2900 return 0; 2901 } 2902 2903 static int process_nrcpus(struct feat_fd *ff, void *data __maybe_unused) 2904 { 2905 struct perf_env *env = &ff->ph->env; 2906 int ret; 2907 u32 nr_cpus_avail, nr_cpus_online; 2908 2909 ret = do_read_u32(ff, &nr_cpus_avail); 2910 if (ret) 2911 return ret; 2912 2913 ret = do_read_u32(ff, &nr_cpus_online); 2914 if (ret) 2915 return ret; 2916 2917 /* 2918 * Cap at 1M CPUs — generous for any real system but prevents 2919 * stack overflow from VLA allocations sized by nr_cpus_avail 2920 * (e.g. DECLARE_BITMAP in builtin-c2c.c node_entry()). 2921 */ 2922 if (nr_cpus_avail > (1U << 20)) { 2923 pr_err("Invalid HEADER_NRCPUS: nr_cpus_avail (%u) exceeds maximum (%u)\n", 2924 nr_cpus_avail, 1U << 20); 2925 return -1; 2926 } 2927 2928 if (nr_cpus_online > nr_cpus_avail) { 2929 pr_err("Invalid HEADER_NRCPUS: nr_cpus_online (%u) > nr_cpus_avail (%u)\n", 2930 nr_cpus_online, nr_cpus_avail); 2931 return -1; 2932 } 2933 2934 env->nr_cpus_avail = (int)nr_cpus_avail; 2935 env->nr_cpus_online = (int)nr_cpus_online; 2936 return 0; 2937 } 2938 2939 static int process_total_mem(struct feat_fd *ff, void *data __maybe_unused) 2940 { 2941 struct perf_env *env = &ff->ph->env; 2942 u64 total_mem; 2943 int ret; 2944 2945 ret = do_read_u64(ff, &total_mem); 2946 if (ret) 2947 return -1; 2948 env->total_mem = (unsigned long long)total_mem; 2949 return 0; 2950 } 2951 2952 static struct evsel *evlist__find_by_index(struct evlist *evlist, int idx) 2953 { 2954 struct evsel *evsel; 2955 2956 evlist__for_each_entry(evlist, evsel) { 2957 if (evsel->core.idx == idx) 2958 return evsel; 2959 } 2960 2961 return NULL; 2962 } 2963 2964 static void evlist__set_event_name(struct evlist *evlist, struct evsel *event) 2965 { 2966 struct evsel *evsel; 2967 2968 if (!event->name) 2969 return; 2970 2971 evsel = evlist__find_by_index(evlist, event->core.idx); 2972 if (!evsel) 2973 return; 2974 2975 if (evsel->name) 2976 return; 2977 2978 evsel->name = strdup(event->name); 2979 } 2980 2981 static int 2982 process_event_desc(struct feat_fd *ff, void *data __maybe_unused) 2983 { 2984 struct perf_session *session; 2985 struct evsel *evsel, *events = read_event_desc(ff); 2986 2987 if (!events) 2988 return 0; 2989 2990 session = container_of(ff->ph, struct perf_session, header); 2991 2992 if (session->data->is_pipe) { 2993 /* Save events for reading later by print_event_desc, 2994 * since they can't be read again in pipe mode. */ 2995 ff->events = events; 2996 } 2997 2998 for (evsel = events; evsel->core.attr.size; evsel++) 2999 evlist__set_event_name(session->evlist, evsel); 3000 3001 if (!session->data->is_pipe) 3002 free_event_desc(events); 3003 3004 return 0; 3005 } 3006 3007 /* 3008 * Some arbitrary max for the number of command line arguments, 3009 * Wildcards can expand and end up with tons of command line args. 3010 */ 3011 #define MAX_CMDLINE_NR 1048576 3012 3013 static int process_cmdline(struct feat_fd *ff, void *data __maybe_unused) 3014 { 3015 struct perf_env *env = &ff->ph->env; 3016 char *str, *cmdline = NULL, **argv = NULL; 3017 u32 nr, i, len = 0; 3018 3019 if (do_read_u32(ff, &nr)) 3020 return -1; 3021 3022 if (nr > MAX_CMDLINE_NR) 3023 return -1; 3024 3025 env->nr_cmdline = nr; 3026 3027 cmdline = zalloc(ff->size + nr + 1); 3028 if (!cmdline) 3029 return -1; 3030 3031 argv = calloc(nr + 1, sizeof(char *)); 3032 if (!argv) 3033 goto error; 3034 3035 for (i = 0; i < nr; i++) { 3036 str = do_read_string(ff); 3037 if (!str) 3038 goto error; 3039 3040 argv[i] = cmdline + len; 3041 memcpy(argv[i], str, strlen(str) + 1); 3042 len += strlen(str) + 1; 3043 free(str); 3044 } 3045 env->cmdline = cmdline; 3046 env->cmdline_argv = (const char **) argv; 3047 return 0; 3048 3049 error: 3050 free(argv); 3051 free(cmdline); 3052 return -1; 3053 } 3054 3055 static int process_cpu_topology(struct feat_fd *ff, void *data __maybe_unused) 3056 { 3057 u32 nr, i; 3058 char *str = NULL; 3059 struct strbuf sb; 3060 struct perf_env *env = &ff->ph->env; 3061 int cpu_nr = env->nr_cpus_avail; 3062 u64 size = 0; 3063 3064 if (cpu_nr == 0) { 3065 pr_err("Invalid HEADER_CPU_TOPOLOGY: missing HEADER_NRCPUS\n"); 3066 return -1; 3067 } 3068 3069 env->cpu = calloc(cpu_nr, sizeof(*env->cpu)); 3070 if (!env->cpu) 3071 return -1; 3072 3073 if (do_read_u32(ff, &nr)) 3074 goto free_cpu; 3075 3076 if (nr > (u32)cpu_nr) { 3077 pr_err("Invalid HEADER_CPU_TOPOLOGY: nr_sibling_cores (%u) > nr_cpus_avail (%d)\n", 3078 nr, cpu_nr); 3079 goto free_cpu; 3080 } 3081 3082 env->nr_sibling_cores = nr; 3083 size += sizeof(u32); 3084 if (strbuf_init(&sb, 128) < 0) 3085 goto free_cpu; 3086 3087 for (i = 0; i < nr; i++) { 3088 str = do_read_string(ff); 3089 if (!str) 3090 goto error; 3091 3092 /* include a NULL character at the end */ 3093 if (strbuf_add(&sb, str, strlen(str) + 1) < 0) 3094 goto error; 3095 size += string_size(str); 3096 zfree(&str); 3097 } 3098 env->sibling_cores = strbuf_detach(&sb, NULL); 3099 3100 if (do_read_u32(ff, &nr)) 3101 goto free_cpu; 3102 3103 if (nr > (u32)cpu_nr) { 3104 pr_err("Invalid HEADER_CPU_TOPOLOGY: nr_sibling_threads (%u) > nr_cpus_avail (%d)\n", 3105 nr, cpu_nr); 3106 goto free_cpu; 3107 } 3108 3109 env->nr_sibling_threads = nr; 3110 size += sizeof(u32); 3111 3112 for (i = 0; i < nr; i++) { 3113 str = do_read_string(ff); 3114 if (!str) 3115 goto error; 3116 3117 /* include a NULL character at the end */ 3118 if (strbuf_add(&sb, str, strlen(str) + 1) < 0) 3119 goto error; 3120 size += string_size(str); 3121 zfree(&str); 3122 } 3123 env->sibling_threads = strbuf_detach(&sb, NULL); 3124 3125 /* 3126 * The header may be from old perf, 3127 * which doesn't include core id and socket id information. 3128 */ 3129 if (ff->size <= size) { 3130 zfree(&env->cpu); 3131 return 0; 3132 } 3133 3134 for (i = 0; i < (u32)cpu_nr; i++) { 3135 if (do_read_u32(ff, &nr)) 3136 goto free_cpu; 3137 3138 env->cpu[i].core_id = nr; 3139 size += sizeof(u32); 3140 3141 if (do_read_u32(ff, &nr)) 3142 goto free_cpu; 3143 3144 env->cpu[i].socket_id = nr; 3145 size += sizeof(u32); 3146 } 3147 3148 /* 3149 * The header may be from old perf, 3150 * which doesn't include die information. 3151 */ 3152 if (ff->size <= size) 3153 return 0; 3154 3155 if (do_read_u32(ff, &nr)) 3156 goto free_cpu; 3157 3158 if (nr > (u32)cpu_nr) { 3159 pr_err("Invalid HEADER_CPU_TOPOLOGY: nr_sibling_dies (%u) > nr_cpus_avail (%d)\n", 3160 nr, cpu_nr); 3161 goto free_cpu; 3162 } 3163 3164 env->nr_sibling_dies = nr; 3165 size += sizeof(u32); 3166 3167 for (i = 0; i < nr; i++) { 3168 str = do_read_string(ff); 3169 if (!str) 3170 goto error; 3171 3172 /* include a NULL character at the end */ 3173 if (strbuf_add(&sb, str, strlen(str) + 1) < 0) 3174 goto error; 3175 size += string_size(str); 3176 zfree(&str); 3177 } 3178 env->sibling_dies = strbuf_detach(&sb, NULL); 3179 3180 for (i = 0; i < (u32)cpu_nr; i++) { 3181 if (do_read_u32(ff, &nr)) 3182 goto free_cpu; 3183 3184 env->cpu[i].die_id = nr; 3185 } 3186 3187 return 0; 3188 3189 error: 3190 strbuf_release(&sb); 3191 zfree(&str); 3192 free_cpu: 3193 zfree(&env->cpu); 3194 return -1; 3195 } 3196 3197 static int process_numa_topology(struct feat_fd *ff, void *data __maybe_unused) 3198 { 3199 struct perf_env *env = &ff->ph->env; 3200 struct numa_node *nodes, *n; 3201 u32 nr, i; 3202 char *str; 3203 3204 /* nr nodes */ 3205 if (do_read_u32(ff, &nr)) 3206 return -1; 3207 3208 if (nr > MAX_NUMA_NODES) { 3209 pr_err("Invalid HEADER_NUMA_TOPOLOGY: nr_nodes (%u) > %u\n", 3210 nr, MAX_NUMA_NODES); 3211 return -1; 3212 } 3213 3214 if (ff->size < sizeof(u32) + nr * (sizeof(u32) + 2 * sizeof(u64))) { 3215 pr_err("Invalid HEADER_NUMA_TOPOLOGY: section too small (%zu) for %u nodes\n", 3216 ff->size, nr); 3217 return -1; 3218 } 3219 3220 nodes = calloc(nr, sizeof(*nodes)); 3221 if (!nodes) 3222 return -ENOMEM; 3223 3224 for (i = 0; i < nr; i++) { 3225 n = &nodes[i]; 3226 3227 /* node number */ 3228 if (do_read_u32(ff, &n->node)) 3229 goto error; 3230 3231 if (do_read_u64(ff, &n->mem_total)) 3232 goto error; 3233 3234 if (do_read_u64(ff, &n->mem_free)) 3235 goto error; 3236 3237 str = do_read_string(ff); 3238 if (!str) 3239 goto error; 3240 3241 n->map = perf_cpu_map__new(str); 3242 free(str); 3243 if (!n->map) 3244 goto error; 3245 } 3246 env->nr_numa_nodes = nr; 3247 env->numa_nodes = nodes; 3248 return 0; 3249 3250 error: 3251 free(nodes); 3252 return -1; 3253 } 3254 3255 static int process_pmu_mappings(struct feat_fd *ff, void *data __maybe_unused) 3256 { 3257 struct perf_env *env = &ff->ph->env; 3258 char *name; 3259 u32 pmu_num; 3260 u32 type; 3261 struct strbuf sb; 3262 3263 if (do_read_u32(ff, &pmu_num)) 3264 return -1; 3265 3266 if (!pmu_num) { 3267 pr_debug("pmu mappings not available\n"); 3268 return 0; 3269 } 3270 3271 if (pmu_num > MAX_PMU_MAPPINGS) { 3272 pr_err("Invalid HEADER_PMU_MAPPINGS: pmu_num (%u) > %u\n", 3273 pmu_num, MAX_PMU_MAPPINGS); 3274 return -1; 3275 } 3276 3277 if (ff->size < sizeof(u32) + pmu_num * 2 * sizeof(u32)) { 3278 pr_err("Invalid HEADER_PMU_MAPPINGS: section too small (%zu) for %u PMUs\n", 3279 ff->size, pmu_num); 3280 return -1; 3281 } 3282 3283 env->nr_pmu_mappings = pmu_num; 3284 if (strbuf_init(&sb, 128) < 0) 3285 return -1; 3286 3287 while (pmu_num) { 3288 if (do_read_u32(ff, &type)) 3289 goto error; 3290 3291 name = do_read_string(ff); 3292 if (!name) 3293 goto error; 3294 3295 if (strbuf_addf(&sb, "%u:%s", type, name) < 0) 3296 goto error; 3297 /* include a NULL character at the end */ 3298 if (strbuf_add(&sb, "", 1) < 0) 3299 goto error; 3300 3301 if (!strcmp(name, "msr")) 3302 env->msr_pmu_type = type; 3303 3304 free(name); 3305 pmu_num--; 3306 } 3307 /* AMD may set it by evlist__has_amd_ibs() from perf_session__new() */ 3308 free(env->pmu_mappings); 3309 env->pmu_mappings = strbuf_detach(&sb, NULL); 3310 return 0; 3311 3312 error: 3313 strbuf_release(&sb); 3314 return -1; 3315 } 3316 3317 static int process_group_desc(struct feat_fd *ff, void *data __maybe_unused) 3318 { 3319 struct perf_env *env = &ff->ph->env; 3320 size_t ret = -1; 3321 u32 i, nr, nr_groups; 3322 struct perf_session *session; 3323 struct evsel *evsel, *leader = NULL; 3324 struct group_desc { 3325 char *name; 3326 u32 leader_idx; 3327 u32 nr_members; 3328 } *desc; 3329 3330 if (do_read_u32(ff, &nr_groups)) 3331 return -1; 3332 3333 if (!nr_groups) { 3334 pr_debug("group desc not available\n"); 3335 return 0; 3336 } 3337 3338 if (nr_groups > MAX_GROUP_DESC) { 3339 pr_err("Invalid HEADER_GROUP_DESC: nr_groups (%u) > %u\n", 3340 nr_groups, MAX_GROUP_DESC); 3341 return -1; 3342 } 3343 3344 if (ff->size < sizeof(u32) + nr_groups * 3 * sizeof(u32)) { 3345 pr_err("Invalid HEADER_GROUP_DESC: section too small (%zu) for %u groups\n", 3346 ff->size, nr_groups); 3347 return -1; 3348 } 3349 3350 env->nr_groups = nr_groups; 3351 3352 desc = calloc(nr_groups, sizeof(*desc)); 3353 if (!desc) 3354 return -1; 3355 3356 for (i = 0; i < nr_groups; i++) { 3357 desc[i].name = do_read_string(ff); 3358 if (!desc[i].name) 3359 goto out_free; 3360 3361 if (do_read_u32(ff, &desc[i].leader_idx)) 3362 goto out_free; 3363 3364 if (do_read_u32(ff, &desc[i].nr_members)) 3365 goto out_free; 3366 } 3367 3368 /* 3369 * Rebuild group relationship based on the group_desc 3370 */ 3371 session = container_of(ff->ph, struct perf_session, header); 3372 3373 i = nr = 0; 3374 evlist__for_each_entry(session->evlist, evsel) { 3375 if (i < nr_groups && evsel->core.idx == (int) desc[i].leader_idx) { 3376 evsel__set_leader(evsel, evsel); 3377 /* {anon_group} is a dummy name */ 3378 if (strcmp(desc[i].name, "{anon_group}")) { 3379 evsel->group_name = desc[i].name; 3380 desc[i].name = NULL; 3381 } 3382 evsel->core.nr_members = desc[i].nr_members; 3383 3384 if (i >= nr_groups || nr > 0) { 3385 pr_debug("invalid group desc\n"); 3386 goto out_free; 3387 } 3388 3389 leader = evsel; 3390 nr = evsel->core.nr_members - 1; 3391 i++; 3392 } else if (nr) { 3393 /* This is a group member */ 3394 evsel__set_leader(evsel, leader); 3395 3396 nr--; 3397 } 3398 } 3399 3400 if (i != nr_groups || nr != 0) { 3401 pr_debug("invalid group desc\n"); 3402 goto out_free; 3403 } 3404 3405 ret = 0; 3406 out_free: 3407 for (i = 0; i < nr_groups; i++) 3408 zfree(&desc[i].name); 3409 free(desc); 3410 3411 return ret; 3412 } 3413 3414 static int process_auxtrace(struct feat_fd *ff, void *data __maybe_unused) 3415 { 3416 struct perf_session *session; 3417 int err; 3418 3419 session = container_of(ff->ph, struct perf_session, header); 3420 3421 err = auxtrace_index__process(ff->fd, ff->size, session, 3422 ff->ph->needs_swap); 3423 if (err < 0) 3424 pr_err("Failed to process auxtrace index\n"); 3425 return err; 3426 } 3427 3428 static int process_cache(struct feat_fd *ff, void *data __maybe_unused) 3429 { 3430 struct perf_env *env = &ff->ph->env; 3431 struct cpu_cache_level *caches; 3432 u32 cnt, i, version; 3433 3434 if (do_read_u32(ff, &version)) 3435 return -1; 3436 3437 if (version != 1) 3438 return -1; 3439 3440 if (do_read_u32(ff, &cnt)) 3441 return -1; 3442 3443 if (cnt > MAX_CACHE_ENTRIES) { 3444 pr_err("Invalid HEADER_CACHE: cnt (%u) > %u\n", 3445 cnt, MAX_CACHE_ENTRIES); 3446 return -1; 3447 } 3448 3449 if (ff->size < 2 * sizeof(u32) + cnt * 7 * sizeof(u32)) { 3450 pr_err("Invalid HEADER_CACHE: section too small (%zu) for %u entries\n", 3451 ff->size, cnt); 3452 return -1; 3453 } 3454 3455 caches = calloc(cnt, sizeof(*caches)); 3456 if (!caches) 3457 return -1; 3458 3459 for (i = 0; i < cnt; i++) { 3460 struct cpu_cache_level *c = &caches[i]; 3461 3462 #define _R(v) \ 3463 if (do_read_u32(ff, &c->v)) \ 3464 goto out_free_caches; \ 3465 3466 _R(level) 3467 _R(line_size) 3468 _R(sets) 3469 _R(ways) 3470 #undef _R 3471 3472 #define _R(v) \ 3473 c->v = do_read_string(ff); \ 3474 if (!c->v) \ 3475 goto out_free_caches; \ 3476 3477 _R(type) 3478 _R(size) 3479 _R(map) 3480 #undef _R 3481 } 3482 3483 env->caches = caches; 3484 env->caches_cnt = cnt; 3485 return 0; 3486 out_free_caches: 3487 for (i = 0; i < cnt; i++) { 3488 free(caches[i].type); 3489 free(caches[i].size); 3490 free(caches[i].map); 3491 } 3492 free(caches); 3493 return -1; 3494 } 3495 3496 static int process_cln_size(struct feat_fd *ff, void *data __maybe_unused) 3497 { 3498 struct perf_env *env = &ff->ph->env; 3499 3500 if (do_read_u32(ff, &env->cln_size)) 3501 return -1; 3502 3503 return 0; 3504 } 3505 3506 static int process_sample_time(struct feat_fd *ff, void *data __maybe_unused) 3507 { 3508 struct perf_session *session; 3509 u64 first_sample_time, last_sample_time; 3510 int ret; 3511 3512 session = container_of(ff->ph, struct perf_session, header); 3513 3514 ret = do_read_u64(ff, &first_sample_time); 3515 if (ret) 3516 return -1; 3517 3518 ret = do_read_u64(ff, &last_sample_time); 3519 if (ret) 3520 return -1; 3521 3522 session->evlist->first_sample_time = first_sample_time; 3523 session->evlist->last_sample_time = last_sample_time; 3524 return 0; 3525 } 3526 3527 static int process_mem_topology(struct feat_fd *ff, 3528 void *data __maybe_unused) 3529 { 3530 struct perf_env *env = &ff->ph->env; 3531 struct memory_node *nodes; 3532 u64 version, i, nr, bsize; 3533 int ret = -1; 3534 3535 if (do_read_u64(ff, &version)) 3536 return -1; 3537 3538 if (version != 1) 3539 return -1; 3540 3541 if (do_read_u64(ff, &bsize)) 3542 return -1; 3543 3544 if (do_read_u64(ff, &nr)) 3545 return -1; 3546 3547 if (nr > MAX_NUMA_NODES) { 3548 pr_err("Invalid HEADER_MEM_TOPOLOGY: nr_nodes (%llu) > %u\n", 3549 (unsigned long long)nr, MAX_NUMA_NODES); 3550 return -1; 3551 } 3552 3553 /* Per node: node_id(u64) + mem_size(u64) + bitmap_nr_bits(u64) */ 3554 if (ff->size < 3 * sizeof(u64) + nr * 3 * sizeof(u64)) { 3555 pr_err("Invalid HEADER_MEM_TOPOLOGY: section too small (%zu) for %llu nodes\n", 3556 ff->size, (unsigned long long)nr); 3557 return -1; 3558 } 3559 3560 nodes = calloc(nr, sizeof(*nodes)); 3561 if (!nodes) 3562 return -1; 3563 3564 for (i = 0; i < nr; i++) { 3565 struct memory_node n; 3566 3567 #define _R(v) \ 3568 if (do_read_u64(ff, &n.v)) \ 3569 goto out; \ 3570 3571 _R(node) 3572 _R(size) 3573 3574 #undef _R 3575 3576 if (do_read_bitmap(ff, &n.set, &n.size)) 3577 goto out; 3578 3579 nodes[i] = n; 3580 } 3581 3582 env->memory_bsize = bsize; 3583 env->memory_nodes = nodes; 3584 env->nr_memory_nodes = nr; 3585 ret = 0; 3586 3587 out: 3588 if (ret) 3589 memory_node__delete_nodes(nodes, nr); 3590 return ret; 3591 } 3592 3593 static int process_clockid(struct feat_fd *ff, 3594 void *data __maybe_unused) 3595 { 3596 struct perf_env *env = &ff->ph->env; 3597 3598 if (do_read_u64(ff, &env->clock.clockid_res_ns)) 3599 return -1; 3600 3601 return 0; 3602 } 3603 3604 static int process_clock_data(struct feat_fd *ff, 3605 void *_data __maybe_unused) 3606 { 3607 struct perf_env *env = &ff->ph->env; 3608 u32 data32; 3609 u64 data64; 3610 3611 /* version */ 3612 if (do_read_u32(ff, &data32)) 3613 return -1; 3614 3615 if (data32 != 1) 3616 return -1; 3617 3618 /* clockid */ 3619 if (do_read_u32(ff, &data32)) 3620 return -1; 3621 3622 env->clock.clockid = data32; 3623 3624 /* TOD ref time */ 3625 if (do_read_u64(ff, &data64)) 3626 return -1; 3627 3628 env->clock.tod_ns = data64; 3629 3630 /* clockid ref time */ 3631 if (do_read_u64(ff, &data64)) 3632 return -1; 3633 3634 env->clock.clockid_ns = data64; 3635 env->clock.enabled = true; 3636 return 0; 3637 } 3638 3639 static int process_hybrid_topology(struct feat_fd *ff, 3640 void *data __maybe_unused) 3641 { 3642 struct perf_env *env = &ff->ph->env; 3643 struct hybrid_node *nodes, *n; 3644 u32 nr, i; 3645 3646 /* nr nodes */ 3647 if (do_read_u32(ff, &nr)) 3648 return -1; 3649 3650 if (nr > MAX_PMU_MAPPINGS) { 3651 pr_err("Invalid HEADER_HYBRID_TOPOLOGY: nr_nodes (%u) > %u\n", 3652 nr, MAX_PMU_MAPPINGS); 3653 return -1; 3654 } 3655 3656 if (ff->size < sizeof(u32) + nr * 2 * sizeof(u32)) { 3657 pr_err("Invalid HEADER_HYBRID_TOPOLOGY: section too small (%zu) for %u nodes\n", 3658 ff->size, nr); 3659 return -1; 3660 } 3661 3662 nodes = calloc(nr, sizeof(*nodes)); 3663 if (!nodes) 3664 return -ENOMEM; 3665 3666 for (i = 0; i < nr; i++) { 3667 n = &nodes[i]; 3668 3669 n->pmu_name = do_read_string(ff); 3670 if (!n->pmu_name) 3671 goto error; 3672 3673 n->cpus = do_read_string(ff); 3674 if (!n->cpus) 3675 goto error; 3676 } 3677 3678 env->nr_hybrid_nodes = nr; 3679 env->hybrid_nodes = nodes; 3680 return 0; 3681 3682 error: 3683 for (i = 0; i < nr; i++) { 3684 free(nodes[i].pmu_name); 3685 free(nodes[i].cpus); 3686 } 3687 3688 free(nodes); 3689 return -1; 3690 } 3691 3692 static int process_dir_format(struct feat_fd *ff, 3693 void *_data __maybe_unused) 3694 { 3695 struct perf_session *session; 3696 struct perf_data *data; 3697 3698 session = container_of(ff->ph, struct perf_session, header); 3699 data = session->data; 3700 3701 if (WARN_ON(!perf_data__is_dir(data))) 3702 return -1; 3703 3704 return do_read_u64(ff, &data->dir.version); 3705 } 3706 3707 static int process_bpf_prog_info(struct feat_fd *ff __maybe_unused, void *data __maybe_unused) 3708 { 3709 #ifdef HAVE_LIBBPF_SUPPORT 3710 struct bpf_prog_info_node *info_node; 3711 struct perf_env *env = &ff->ph->env; 3712 struct perf_bpil *info_linear; 3713 u32 count, i; 3714 int err = -1; 3715 3716 if (ff->ph->needs_swap) { 3717 pr_warning("interpreting bpf_prog_info from systems with endianness is not yet supported\n"); 3718 return 0; 3719 } 3720 3721 if (do_read_u32(ff, &count)) 3722 return -1; 3723 3724 if (count > MAX_BPF_PROGS) { 3725 pr_err("Invalid HEADER_BPF_PROG_INFO: count (%u) > %u\n", 3726 count, MAX_BPF_PROGS); 3727 return -1; 3728 } 3729 3730 if (ff->size < sizeof(u32) + count * (2 * sizeof(u32) + sizeof(u64))) { 3731 pr_err("Invalid HEADER_BPF_PROG_INFO: section too small (%zu) for %u entries\n", 3732 ff->size, count); 3733 return -1; 3734 } 3735 3736 down_write(&env->bpf_progs.lock); 3737 3738 for (i = 0; i < count; ++i) { 3739 u32 info_len, data_len; 3740 3741 info_linear = NULL; 3742 info_node = NULL; 3743 if (do_read_u32(ff, &info_len)) 3744 goto out; 3745 if (do_read_u32(ff, &data_len)) 3746 goto out; 3747 3748 if (info_len > sizeof(struct bpf_prog_info)) { 3749 pr_warning("detected invalid bpf_prog_info\n"); 3750 goto out; 3751 } 3752 3753 if (data_len > MAX_BPF_DATA_LEN) { 3754 pr_warning("Invalid HEADER_BPF_PROG_INFO: data_len (%u) too large\n", 3755 data_len); 3756 goto out; 3757 } 3758 3759 info_linear = malloc(sizeof(struct perf_bpil) + 3760 data_len); 3761 if (!info_linear) 3762 goto out; 3763 info_linear->info_len = sizeof(struct bpf_prog_info); 3764 info_linear->data_len = data_len; 3765 if (do_read_u64(ff, (u64 *)(&info_linear->arrays))) 3766 goto out; 3767 if (__do_read(ff, &info_linear->info, info_len)) 3768 goto out; 3769 if (info_len < sizeof(struct bpf_prog_info)) 3770 memset(((void *)(&info_linear->info)) + info_len, 0, 3771 sizeof(struct bpf_prog_info) - info_len); 3772 3773 if (__do_read(ff, info_linear->data, data_len)) 3774 goto out; 3775 3776 info_node = malloc(sizeof(struct bpf_prog_info_node)); 3777 if (!info_node) 3778 goto out; 3779 3780 /* after reading from file, translate offset to address */ 3781 bpil_offs_to_addr(info_linear); 3782 info_node->info_linear = info_linear; 3783 info_node->metadata = NULL; 3784 if (!__perf_env__insert_bpf_prog_info(env, info_node)) { 3785 free(info_linear); 3786 free(info_node); 3787 } 3788 } 3789 3790 up_write(&env->bpf_progs.lock); 3791 return 0; 3792 out: 3793 free(info_linear); 3794 free(info_node); 3795 up_write(&env->bpf_progs.lock); 3796 return err; 3797 #else 3798 /* Not an error — the feature is simply unsupported in this build */ 3799 pr_debug("BPF prog info present but libbpf not available, skipping.\n"); 3800 return 0; 3801 #endif // HAVE_LIBBPF_SUPPORT 3802 } 3803 3804 static int process_bpf_btf(struct feat_fd *ff __maybe_unused, void *data __maybe_unused) 3805 { 3806 #ifdef HAVE_LIBBPF_SUPPORT 3807 struct perf_env *env = &ff->ph->env; 3808 struct btf_node *node = NULL; 3809 u32 count, i; 3810 int err = -1; 3811 3812 if (ff->ph->needs_swap) { 3813 pr_warning("interpreting btf from systems with endianness is not yet supported\n"); 3814 return 0; 3815 } 3816 3817 if (do_read_u32(ff, &count)) 3818 return -1; 3819 3820 if (count > MAX_BPF_PROGS) { 3821 pr_err("bpf btf count %u too large (max %u)\n", count, MAX_BPF_PROGS); 3822 return -1; 3823 } 3824 3825 if (ff->size < sizeof(u32) + count * 2 * sizeof(u32)) { 3826 pr_err("Invalid HEADER_BPF_BTF: section too small (%zu) for %u entries\n", 3827 ff->size, count); 3828 return -1; 3829 } 3830 3831 down_write(&env->bpf_progs.lock); 3832 3833 for (i = 0; i < count; ++i) { 3834 u32 id, data_size; 3835 3836 if (do_read_u32(ff, &id)) 3837 goto out; 3838 if (do_read_u32(ff, &data_size)) 3839 goto out; 3840 3841 if (data_size > MAX_BPF_DATA_LEN) { 3842 pr_err("bpf btf data size %u too large (max %u)\n", 3843 data_size, MAX_BPF_DATA_LEN); 3844 goto out; 3845 } 3846 3847 node = malloc(sizeof(struct btf_node) + data_size); 3848 if (!node) 3849 goto out; 3850 3851 node->id = id; 3852 node->data_size = data_size; 3853 3854 if (__do_read(ff, node->data, data_size)) 3855 goto out; 3856 3857 if (!__perf_env__insert_btf(env, node)) 3858 free(node); 3859 node = NULL; 3860 } 3861 3862 err = 0; 3863 out: 3864 up_write(&env->bpf_progs.lock); 3865 free(node); 3866 return err; 3867 #else 3868 /* Not an error — the feature is simply unsupported in this build */ 3869 pr_debug("BTF data present but libbpf not available, skipping.\n"); 3870 return 0; 3871 #endif // HAVE_LIBBPF_SUPPORT 3872 } 3873 3874 static int process_compressed(struct feat_fd *ff, 3875 void *data __maybe_unused) 3876 { 3877 struct perf_env *env = &ff->ph->env; 3878 3879 if (do_read_u32(ff, &(env->comp_ver))) 3880 return -1; 3881 3882 if (do_read_u32(ff, &(env->comp_type))) 3883 return -1; 3884 3885 if (do_read_u32(ff, &(env->comp_level))) 3886 return -1; 3887 3888 if (do_read_u32(ff, &(env->comp_ratio))) 3889 return -1; 3890 3891 if (do_read_u32(ff, &(env->comp_mmap_len))) 3892 return -1; 3893 3894 /* 3895 * FIXME: perf.data should record the recording system's page 3896 * size — it affects mmap buffer alignment, sample addresses, 3897 * and data_page_size/code_page_size interpretation. Without 3898 * it we assume 4K (the smallest Linux page size) as a safe 3899 * minimum alignment for comp_mmap_len validation. 3900 * 3901 * No upper-bound cap: perf_session__process_compressed_event() 3902 * checks decomp_len + sizeof(struct decomp) against SIZE_MAX 3903 * before allocating, which handles 32-bit safety. 3904 */ 3905 if (env->comp_mmap_len < 4096 || env->comp_mmap_len % 4096) { 3906 pr_err("Invalid HEADER_COMPRESSED: comp_mmap_len (%u) must be a 4K-aligned value >= 4096\n", 3907 env->comp_mmap_len); 3908 return -1; 3909 } 3910 3911 return 0; 3912 } 3913 3914 static int __process_pmu_caps(struct feat_fd *ff, int *nr_caps, 3915 char ***caps, unsigned int *max_branches, 3916 unsigned int *br_cntr_nr, 3917 unsigned int *br_cntr_width) 3918 { 3919 char *name, *value, *ptr; 3920 u32 nr_pmu_caps, i; 3921 3922 *nr_caps = 0; 3923 *caps = NULL; 3924 3925 if (do_read_u32(ff, &nr_pmu_caps)) 3926 return -1; 3927 3928 if (!nr_pmu_caps) 3929 return 0; 3930 3931 if (nr_pmu_caps > MAX_PMU_CAPS) { 3932 pr_err("Invalid pmu caps: nr_pmu_caps (%u) > %u\n", 3933 nr_pmu_caps, MAX_PMU_CAPS); 3934 return -1; 3935 } 3936 3937 *caps = calloc(nr_pmu_caps, sizeof(char *)); 3938 if (!*caps) 3939 return -1; 3940 3941 for (i = 0; i < nr_pmu_caps; i++) { 3942 name = do_read_string(ff); 3943 if (!name) 3944 goto error; 3945 3946 value = do_read_string(ff); 3947 if (!value) 3948 goto free_name; 3949 3950 if (asprintf(&ptr, "%s=%s", name, value) < 0) 3951 goto free_value; 3952 3953 (*caps)[i] = ptr; 3954 3955 if (!strcmp(name, "branches")) 3956 *max_branches = atoi(value); 3957 3958 if (!strcmp(name, "branch_counter_nr")) 3959 *br_cntr_nr = atoi(value); 3960 3961 if (!strcmp(name, "branch_counter_width")) 3962 *br_cntr_width = atoi(value); 3963 3964 free(value); 3965 free(name); 3966 } 3967 *nr_caps = nr_pmu_caps; 3968 return 0; 3969 3970 free_value: 3971 free(value); 3972 free_name: 3973 free(name); 3974 error: 3975 for (; i > 0; i--) 3976 free((*caps)[i - 1]); 3977 free(*caps); 3978 *caps = NULL; 3979 *nr_caps = 0; 3980 return -1; 3981 } 3982 3983 static int process_cpu_pmu_caps(struct feat_fd *ff, 3984 void *data __maybe_unused) 3985 { 3986 struct perf_env *env = &ff->ph->env; 3987 int ret = __process_pmu_caps(ff, &env->nr_cpu_pmu_caps, 3988 &env->cpu_pmu_caps, 3989 &env->max_branches, 3990 &env->br_cntr_nr, 3991 &env->br_cntr_width); 3992 3993 if (!ret && !env->cpu_pmu_caps) 3994 pr_debug("cpu pmu capabilities not available\n"); 3995 return ret; 3996 } 3997 3998 static int process_pmu_caps(struct feat_fd *ff, void *data __maybe_unused) 3999 { 4000 struct perf_env *env = &ff->ph->env; 4001 struct pmu_caps *pmu_caps; 4002 u32 nr_pmu, i; 4003 int ret; 4004 int j; 4005 4006 if (do_read_u32(ff, &nr_pmu)) 4007 return -1; 4008 4009 if (!nr_pmu) { 4010 pr_debug("pmu capabilities not available\n"); 4011 return 0; 4012 } 4013 4014 if (nr_pmu > MAX_PMU_MAPPINGS) { 4015 pr_err("Invalid HEADER_PMU_CAPS: nr_pmu (%u) > %u\n", 4016 nr_pmu, MAX_PMU_MAPPINGS); 4017 return -1; 4018 } 4019 4020 if (ff->size < sizeof(u32) + nr_pmu * sizeof(u32)) { 4021 pr_err("Invalid HEADER_PMU_CAPS: section too small (%zu) for %u PMUs\n", 4022 ff->size, nr_pmu); 4023 return -1; 4024 } 4025 4026 pmu_caps = calloc(nr_pmu, sizeof(*pmu_caps)); 4027 if (!pmu_caps) 4028 return -ENOMEM; 4029 4030 for (i = 0; i < nr_pmu; i++) { 4031 ret = __process_pmu_caps(ff, &pmu_caps[i].nr_caps, 4032 &pmu_caps[i].caps, 4033 &pmu_caps[i].max_branches, 4034 &pmu_caps[i].br_cntr_nr, 4035 &pmu_caps[i].br_cntr_width); 4036 if (ret) 4037 goto err; 4038 4039 pmu_caps[i].pmu_name = do_read_string(ff); 4040 if (!pmu_caps[i].pmu_name) { 4041 ret = -1; 4042 goto err; 4043 } 4044 if (!pmu_caps[i].nr_caps) { 4045 pr_debug("%s pmu capabilities not available\n", 4046 pmu_caps[i].pmu_name); 4047 } 4048 } 4049 4050 env->nr_pmus_with_caps = nr_pmu; 4051 env->pmu_caps = pmu_caps; 4052 return 0; 4053 4054 err: 4055 for (i = 0; i < nr_pmu; i++) { 4056 for (j = 0; j < pmu_caps[i].nr_caps; j++) 4057 free(pmu_caps[i].caps[j]); 4058 free(pmu_caps[i].caps); 4059 free(pmu_caps[i].pmu_name); 4060 } 4061 4062 free(pmu_caps); 4063 return ret; 4064 } 4065 4066 static int process_cpu_domain_info(struct feat_fd *ff, void *data __maybe_unused) 4067 { 4068 u32 schedstat_version, max_sched_domains, cpu, domain, nr_domains; 4069 struct perf_env *env = &ff->ph->env; 4070 char *dname, *cpumask, *cpulist; 4071 struct cpu_domain_map **cd_map; 4072 struct domain_info *d_info; 4073 u32 nra, nr, i, j; 4074 int ret; 4075 4076 nra = env->nr_cpus_avail; 4077 nr = env->nr_cpus_online; 4078 4079 if (nra == 0 || nr == 0) { 4080 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: missing HEADER_NRCPUS\n"); 4081 return -1; 4082 } 4083 4084 if (ff->size < 2 * sizeof(u32) + nr * 2 * sizeof(u32)) { 4085 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: section too small (%zu) for %u CPUs\n", 4086 (size_t)ff->size, nr); 4087 return -1; 4088 } 4089 4090 cd_map = calloc(nra, sizeof(*cd_map)); 4091 if (!cd_map) 4092 return -1; 4093 4094 env->cpu_domain = cd_map; 4095 4096 ret = do_read_u32(ff, &schedstat_version); 4097 if (ret) 4098 return ret; 4099 4100 env->schedstat_version = schedstat_version; 4101 4102 ret = do_read_u32(ff, &max_sched_domains); 4103 if (ret) 4104 return ret; 4105 4106 /* 4107 * Sanity check: real systems have at most ~10 sched domain levels 4108 * (SMT, CLS, MC, PKG + NUMA hops). Reject obviously bogus values 4109 * from malformed perf.data files before they cause excessive 4110 * allocation in the per-CPU loop. 4111 */ 4112 if (max_sched_domains > MAX_SCHED_DOMAINS) { 4113 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: max_sched_domains %u > %u\n", 4114 max_sched_domains, MAX_SCHED_DOMAINS); 4115 return -1; 4116 } 4117 4118 env->max_sched_domains = max_sched_domains; 4119 4120 for (i = 0; i < nr; i++) { 4121 if (do_read_u32(ff, &cpu)) 4122 return -1; 4123 4124 if (cpu >= nra) { 4125 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: cpu %d >= nr_cpus_avail (%d)\n", cpu, nra); 4126 return -1; 4127 } 4128 4129 if (cd_map[cpu]) { 4130 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: duplicate cpu %u\n", cpu); 4131 return -1; 4132 } 4133 4134 cd_map[cpu] = zalloc(sizeof(*cd_map[cpu])); 4135 if (!cd_map[cpu]) 4136 return -1; 4137 4138 cd_map[cpu]->cpu = cpu; 4139 4140 if (do_read_u32(ff, &nr_domains)) 4141 return -1; 4142 4143 if (nr_domains > max_sched_domains) { 4144 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: nr_domains %u > max_sched_domains (%u)\n", 4145 nr_domains, max_sched_domains); 4146 return -1; 4147 } 4148 4149 cd_map[cpu]->nr_domains = nr_domains; 4150 4151 cd_map[cpu]->domains = calloc(max_sched_domains, sizeof(*d_info)); 4152 if (!cd_map[cpu]->domains) 4153 return -1; 4154 4155 for (j = 0; j < nr_domains; j++) { 4156 if (do_read_u32(ff, &domain)) 4157 return -1; 4158 4159 if (domain >= max_sched_domains) { 4160 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: domain %d >= max_sched_domains (%d)\n", 4161 domain, max_sched_domains); 4162 return -1; 4163 } 4164 4165 d_info = zalloc(sizeof(*d_info)); 4166 if (!d_info) 4167 return -1; 4168 4169 if (cd_map[cpu]->domains[domain]) { 4170 pr_err("Invalid HEADER_CPU_DOMAIN_INFO: duplicate domain %u for cpu %u\n", 4171 domain, cpu); 4172 free(d_info); 4173 return -1; 4174 } 4175 4176 cd_map[cpu]->domains[domain] = d_info; 4177 d_info->domain = domain; 4178 4179 if (schedstat_version >= 17) { 4180 dname = do_read_string(ff); 4181 if (!dname) 4182 return -1; 4183 4184 d_info->dname = dname; 4185 } 4186 4187 cpumask = do_read_string(ff); 4188 if (!cpumask) 4189 return -1; 4190 4191 d_info->cpumask = cpumask; 4192 4193 cpulist = do_read_string(ff); 4194 if (!cpulist) 4195 return -1; 4196 4197 d_info->cpulist = cpulist; 4198 } 4199 } 4200 4201 return ret; 4202 } 4203 4204 #define FEAT_OPR(n, func, __full_only) \ 4205 [HEADER_##n] = { \ 4206 .name = __stringify(n), \ 4207 .write = write_##func, \ 4208 .print = print_##func, \ 4209 .full_only = __full_only, \ 4210 .process = process_##func, \ 4211 .synthesize = true \ 4212 } 4213 4214 #define FEAT_OPN(n, func, __full_only) \ 4215 [HEADER_##n] = { \ 4216 .name = __stringify(n), \ 4217 .write = write_##func, \ 4218 .print = print_##func, \ 4219 .full_only = __full_only, \ 4220 .process = process_##func \ 4221 } 4222 4223 /* feature_ops not implemented: */ 4224 #define print_tracing_data NULL 4225 #define print_build_id NULL 4226 4227 #define process_branch_stack NULL 4228 #define process_stat NULL 4229 4230 // Only used in util/synthetic-events.c 4231 const struct perf_header_feature_ops feat_ops[HEADER_LAST_FEATURE]; 4232 4233 const struct perf_header_feature_ops feat_ops[HEADER_LAST_FEATURE] = { 4234 FEAT_OPN(TRACING_DATA, tracing_data, false), 4235 FEAT_OPN(BUILD_ID, build_id, false), 4236 FEAT_OPR(HOSTNAME, hostname, false), 4237 FEAT_OPR(OSRELEASE, osrelease, false), 4238 FEAT_OPR(VERSION, version, false), 4239 FEAT_OPR(ARCH, arch, false), 4240 FEAT_OPR(NRCPUS, nrcpus, false), 4241 FEAT_OPR(CPUDESC, cpudesc, false), 4242 FEAT_OPR(CPUID, cpuid, false), 4243 FEAT_OPR(TOTAL_MEM, total_mem, false), 4244 FEAT_OPR(EVENT_DESC, event_desc, false), 4245 FEAT_OPR(CMDLINE, cmdline, false), 4246 FEAT_OPR(CPU_TOPOLOGY, cpu_topology, true), 4247 FEAT_OPR(NUMA_TOPOLOGY, numa_topology, true), 4248 FEAT_OPN(BRANCH_STACK, branch_stack, false), 4249 FEAT_OPR(PMU_MAPPINGS, pmu_mappings, false), 4250 FEAT_OPR(GROUP_DESC, group_desc, false), 4251 FEAT_OPN(AUXTRACE, auxtrace, false), 4252 FEAT_OPN(STAT, stat, false), 4253 FEAT_OPN(CACHE, cache, true), 4254 FEAT_OPR(SAMPLE_TIME, sample_time, false), 4255 FEAT_OPR(MEM_TOPOLOGY, mem_topology, true), 4256 FEAT_OPR(CLOCKID, clockid, false), 4257 FEAT_OPN(DIR_FORMAT, dir_format, false), 4258 FEAT_OPR(BPF_PROG_INFO, bpf_prog_info, false), 4259 FEAT_OPR(BPF_BTF, bpf_btf, false), 4260 FEAT_OPR(COMPRESSED, compressed, false), 4261 FEAT_OPR(CPU_PMU_CAPS, cpu_pmu_caps, false), 4262 FEAT_OPR(CLOCK_DATA, clock_data, false), 4263 FEAT_OPN(HYBRID_TOPOLOGY, hybrid_topology, true), 4264 FEAT_OPR(PMU_CAPS, pmu_caps, false), 4265 FEAT_OPR(CPU_DOMAIN_INFO, cpu_domain_info, true), 4266 FEAT_OPR(E_MACHINE, e_machine, false), 4267 FEAT_OPR(CLN_SIZE, cln_size, false), 4268 }; 4269 4270 struct header_print_data { 4271 FILE *fp; 4272 bool full; /* extended list of headers */ 4273 }; 4274 4275 const char *header_feat__name(unsigned int id) 4276 { 4277 if (id < HEADER_LAST_FEATURE) 4278 return feat_ops[id].name ?: "INVALID"; 4279 return "INVALID"; 4280 } 4281 4282 static int perf_file_section__fprintf_info(struct perf_file_section *section, 4283 struct perf_header *ph, 4284 int feat, int fd, void *data) 4285 { 4286 struct header_print_data *hd = data; 4287 struct feat_fd ff; 4288 4289 if (lseek(fd, section->offset, SEEK_SET) == (off_t)-1) { 4290 pr_debug("Failed to lseek to %" PRIu64 " offset for feature %s (%d), continuing...\n", 4291 section->offset, header_feat__name(feat), feat); 4292 return 0; 4293 } 4294 if (feat >= ph->last_feat) { 4295 pr_warning("unknown feature %d\n", feat); 4296 return 0; 4297 } 4298 if (!feat_ops[feat].print) 4299 return 0; 4300 4301 ff = (struct feat_fd) { 4302 .fd = fd, 4303 .ph = ph, 4304 .size = section->size, 4305 }; 4306 4307 if (!feat_ops[feat].full_only || hd->full) 4308 feat_ops[feat].print(&ff, hd->fp); 4309 else 4310 fprintf(hd->fp, "# %s info available, use -I to display\n", 4311 feat_ops[feat].name); 4312 4313 return 0; 4314 } 4315 4316 int perf_header__fprintf_info(struct perf_session *session, FILE *fp, bool full) 4317 { 4318 struct header_print_data hd; 4319 struct perf_header *header = &session->header; 4320 int fd = perf_data__fd(session->data); 4321 struct stat st; 4322 time_t stctime; 4323 int ret, bit; 4324 4325 hd.fp = fp; 4326 hd.full = full; 4327 4328 ret = fstat(fd, &st); 4329 if (ret == -1) 4330 return -1; 4331 4332 stctime = st.st_mtime; 4333 fprintf(fp, "# captured on : %s", ctime(&stctime)); 4334 4335 fprintf(fp, "# header version : %u\n", header->version); 4336 fprintf(fp, "# data offset : %" PRIu64 "\n", header->data_offset); 4337 fprintf(fp, "# data size : %" PRIu64 "\n", header->data_size); 4338 fprintf(fp, "# feat offset : %" PRIu64 "\n", header->feat_offset); 4339 4340 perf_header__process_sections(header, fd, &hd, 4341 perf_file_section__fprintf_info); 4342 4343 if (session->data->is_pipe) 4344 return 0; 4345 4346 fprintf(fp, "# missing features: "); 4347 for_each_clear_bit(bit, header->adds_features, header->last_feat) { 4348 if (bit) 4349 fprintf(fp, "%s ", feat_ops[bit].name); 4350 } 4351 4352 fprintf(fp, "\n"); 4353 return 0; 4354 } 4355 4356 struct header_fw { 4357 struct feat_writer fw; 4358 struct feat_fd *ff; 4359 }; 4360 4361 static int feat_writer_cb(struct feat_writer *fw, void *buf, size_t sz) 4362 { 4363 struct header_fw *h = container_of(fw, struct header_fw, fw); 4364 4365 return do_write(h->ff, buf, sz); 4366 } 4367 4368 static int do_write_feat(struct feat_fd *ff, int type, 4369 struct perf_file_section **p, 4370 struct evlist *evlist, 4371 struct feat_copier *fc) 4372 { 4373 int err; 4374 int ret = 0; 4375 4376 if (perf_header__has_feat(ff->ph, type)) { 4377 if (!feat_ops[type].write) 4378 return -1; 4379 4380 if (WARN(ff->buf, "Error: calling %s in pipe-mode.\n", __func__)) 4381 return -1; 4382 4383 (*p)->offset = lseek(ff->fd, 0, SEEK_CUR); 4384 4385 /* 4386 * Hook to let perf inject copy features sections from the input 4387 * file. 4388 */ 4389 if (fc && fc->copy) { 4390 struct header_fw h = { 4391 .fw.write = feat_writer_cb, 4392 .ff = ff, 4393 }; 4394 4395 /* ->copy() returns 0 if the feature was not copied */ 4396 err = fc->copy(fc, type, &h.fw); 4397 } else { 4398 err = 0; 4399 } 4400 if (!err) 4401 err = feat_ops[type].write(ff, evlist); 4402 if (err < 0) { 4403 pr_debug("failed to write feature %s\n", feat_ops[type].name); 4404 4405 /* undo anything written */ 4406 lseek(ff->fd, (*p)->offset, SEEK_SET); 4407 4408 return -1; 4409 } 4410 (*p)->size = lseek(ff->fd, 0, SEEK_CUR) - (*p)->offset; 4411 (*p)++; 4412 } 4413 return ret; 4414 } 4415 4416 static int perf_header__adds_write(struct perf_header *header, 4417 struct evlist *evlist, int fd, 4418 struct feat_copier *fc) 4419 { 4420 int nr_sections; 4421 struct feat_fd ff = { 4422 .fd = fd, 4423 .ph = header, 4424 }; 4425 struct perf_file_section *feat_sec, *p; 4426 int sec_size; 4427 u64 sec_start; 4428 int feat; 4429 int err; 4430 4431 nr_sections = bitmap_weight(header->adds_features, HEADER_FEAT_BITS); 4432 if (!nr_sections) 4433 return 0; 4434 4435 feat_sec = p = calloc(nr_sections, sizeof(*feat_sec)); 4436 if (feat_sec == NULL) 4437 return -ENOMEM; 4438 4439 sec_size = sizeof(*feat_sec) * nr_sections; 4440 4441 sec_start = header->feat_offset; 4442 lseek(fd, sec_start + sec_size, SEEK_SET); 4443 4444 for_each_set_bit(feat, header->adds_features, HEADER_FEAT_BITS) { 4445 if (do_write_feat(&ff, feat, &p, evlist, fc)) 4446 perf_header__clear_feat(header, feat); 4447 } 4448 4449 lseek(fd, sec_start, SEEK_SET); 4450 /* 4451 * may write more than needed due to dropped feature, but 4452 * this is okay, reader will skip the missing entries 4453 */ 4454 err = do_write(&ff, feat_sec, sec_size); 4455 if (err < 0) 4456 pr_debug("failed to write feature section\n"); 4457 free(ff.buf); /* TODO: added to silence clang-tidy. */ 4458 free(feat_sec); 4459 return err; 4460 } 4461 4462 int perf_header__write_pipe(int fd) 4463 { 4464 struct perf_pipe_file_header f_header; 4465 struct feat_fd ff = { 4466 .fd = fd, 4467 }; 4468 int err; 4469 4470 f_header = (struct perf_pipe_file_header){ 4471 .magic = PERF_MAGIC, 4472 .size = sizeof(f_header), 4473 }; 4474 4475 err = do_write(&ff, &f_header, sizeof(f_header)); 4476 if (err < 0) { 4477 pr_debug("failed to write perf pipe header\n"); 4478 return err; 4479 } 4480 free(ff.buf); 4481 return 0; 4482 } 4483 4484 static int perf_session__do_write_header(struct perf_session *session, 4485 struct evlist *evlist, 4486 int fd, bool at_exit, 4487 struct feat_copier *fc, 4488 bool write_attrs_after_data) 4489 { 4490 struct perf_file_header f_header; 4491 struct perf_header *header = &session->header; 4492 struct evsel *evsel; 4493 struct feat_fd ff = { 4494 .ph = header, 4495 .fd = fd, 4496 }; 4497 u64 attr_offset = sizeof(f_header), attr_size = 0; 4498 int err; 4499 4500 if (write_attrs_after_data && at_exit) { 4501 /* 4502 * Write features at the end of the file first so that 4503 * attributes may come after them. 4504 */ 4505 if (!header->data_offset && header->data_size) { 4506 pr_err("File contains data but offset unknown\n"); 4507 err = -1; 4508 goto err_out; 4509 } 4510 header->feat_offset = header->data_offset + header->data_size; 4511 err = perf_header__adds_write(header, evlist, fd, fc); 4512 if (err < 0) 4513 goto err_out; 4514 attr_offset = lseek(fd, 0, SEEK_CUR); 4515 } else { 4516 lseek(fd, attr_offset, SEEK_SET); 4517 } 4518 4519 evlist__for_each_entry(session->evlist, evsel) { 4520 evsel->id_offset = attr_offset; 4521 /* Avoid writing at the end of the file until the session is exiting. */ 4522 if (!write_attrs_after_data || at_exit) { 4523 err = do_write(&ff, evsel->core.id, evsel->core.ids * sizeof(u64)); 4524 if (err < 0) { 4525 pr_debug("failed to write perf header\n"); 4526 goto err_out; 4527 } 4528 } 4529 attr_offset += evsel->core.ids * sizeof(u64); 4530 } 4531 4532 evlist__for_each_entry(evlist, evsel) { 4533 if (evsel->core.attr.size < sizeof(evsel->core.attr)) { 4534 /* 4535 * We are likely in "perf inject" and have read 4536 * from an older file. Update attr size so that 4537 * reader gets the right offset to the ids. 4538 */ 4539 evsel->core.attr.size = sizeof(evsel->core.attr); 4540 } 4541 /* Avoid writing at the end of the file until the session is exiting. */ 4542 if (!write_attrs_after_data || at_exit) { 4543 struct perf_file_attr f_attr = { 4544 .attr = evsel->core.attr, 4545 .ids = { 4546 .offset = evsel->id_offset, 4547 .size = evsel->core.ids * sizeof(u64), 4548 } 4549 }; 4550 err = do_write(&ff, &f_attr, sizeof(f_attr)); 4551 if (err < 0) { 4552 pr_debug("failed to write perf header attribute\n"); 4553 goto err_out; 4554 } 4555 } 4556 attr_size += sizeof(struct perf_file_attr); 4557 } 4558 4559 if (!header->data_offset) { 4560 if (write_attrs_after_data) 4561 header->data_offset = sizeof(f_header); 4562 else 4563 header->data_offset = attr_offset + attr_size; 4564 } 4565 header->feat_offset = header->data_offset + header->data_size; 4566 4567 if (!write_attrs_after_data && at_exit) { 4568 /* Write features now feat_offset is known. */ 4569 err = perf_header__adds_write(header, evlist, fd, fc); 4570 if (err < 0) 4571 goto err_out; 4572 } 4573 4574 f_header = (struct perf_file_header){ 4575 .magic = PERF_MAGIC, 4576 .size = sizeof(f_header), 4577 .attr_size = sizeof(struct perf_file_attr), 4578 .attrs = { 4579 .offset = attr_offset, 4580 .size = attr_size, 4581 }, 4582 .data = { 4583 .offset = header->data_offset, 4584 .size = header->data_size, 4585 }, 4586 /* event_types is ignored, store zeros */ 4587 }; 4588 4589 memcpy(&f_header.adds_features, &header->adds_features, sizeof(header->adds_features)); 4590 4591 lseek(fd, 0, SEEK_SET); 4592 err = do_write(&ff, &f_header, sizeof(f_header)); 4593 if (err < 0) { 4594 pr_debug("failed to write perf header\n"); 4595 goto err_out; 4596 } else { 4597 lseek(fd, 0, SEEK_END); 4598 err = 0; 4599 } 4600 err_out: 4601 free(ff.buf); 4602 return err; 4603 } 4604 4605 int perf_session__write_header(struct perf_session *session, 4606 struct evlist *evlist, 4607 int fd, bool at_exit) 4608 { 4609 return perf_session__do_write_header(session, evlist, fd, at_exit, /*fc=*/NULL, 4610 /*write_attrs_after_data=*/false); 4611 } 4612 4613 size_t perf_session__data_offset(const struct evlist *evlist) 4614 { 4615 struct evsel *evsel; 4616 size_t data_offset; 4617 4618 data_offset = sizeof(struct perf_file_header); 4619 evlist__for_each_entry(evlist, evsel) { 4620 data_offset += evsel->core.ids * sizeof(u64); 4621 } 4622 data_offset += evlist->core.nr_entries * sizeof(struct perf_file_attr); 4623 4624 return data_offset; 4625 } 4626 4627 int perf_session__inject_header(struct perf_session *session, 4628 struct evlist *evlist, 4629 int fd, 4630 struct feat_copier *fc, 4631 bool write_attrs_after_data) 4632 { 4633 return perf_session__do_write_header(session, evlist, fd, true, fc, 4634 write_attrs_after_data); 4635 } 4636 4637 static int perf_header__getbuffer64(struct perf_header *header, 4638 int fd, void *buf, size_t size) 4639 { 4640 ssize_t n = readn(fd, buf, size); 4641 4642 if (n <= 0) { 4643 if (n == 0) 4644 errno = EIO; 4645 return -1; 4646 } 4647 4648 if (header->needs_swap) 4649 mem_bswap_64(buf, size); 4650 4651 return 0; 4652 } 4653 4654 int perf_header__process_sections(struct perf_header *header, int fd, 4655 void *data, 4656 int (*process)(struct perf_file_section *section, 4657 struct perf_header *ph, 4658 int feat, int fd, void *data)) 4659 { 4660 struct perf_file_section *feat_sec, *sec; 4661 int nr_sections; 4662 int sec_size; 4663 int feat; 4664 int err; 4665 struct stat st; 4666 4667 nr_sections = bitmap_weight(header->adds_features, HEADER_FEAT_BITS); 4668 if (!nr_sections) 4669 return 0; 4670 4671 feat_sec = sec = calloc(nr_sections, sizeof(*feat_sec)); 4672 if (!feat_sec) 4673 return -1; 4674 4675 sec_size = sizeof(*feat_sec) * nr_sections; 4676 4677 lseek(fd, header->feat_offset, SEEK_SET); 4678 4679 err = perf_header__getbuffer64(header, fd, feat_sec, sec_size); 4680 if (err < 0) 4681 goto out_free; 4682 4683 if (fstat(fd, &st) < 0) { 4684 pr_err("Failed to stat the perf data file\n"); 4685 err = -1; 4686 goto out_free; 4687 } 4688 4689 for_each_set_bit(feat, header->adds_features, header->last_feat) { 4690 /* 4691 * FIXME: block devices have st_size == 0, so we skip 4692 * bounds checking entirely. Historically perf never 4693 * prevented using a block device as input, but it 4694 * probably should — there's no valid use case for it 4695 * and it bypasses all file-size validation. 4696 */ 4697 if (S_ISREG(st.st_mode) && 4698 (sec->offset > (u64)st.st_size || 4699 sec->size > (u64)st.st_size - sec->offset)) { 4700 pr_err("Feature %s (%d) section extends past EOF (offset=%" PRIu64 ", size=%" PRIu64 ", file=%" PRIu64 ")\n", 4701 header_feat__name(feat), feat, 4702 sec->offset, sec->size, (u64)st.st_size); 4703 err = -1; 4704 goto out_free; 4705 } 4706 err = process(sec++, header, feat, fd, data); 4707 if (err < 0) 4708 goto out_free; 4709 } 4710 err = 0; 4711 out_free: 4712 free(feat_sec); 4713 return err; 4714 } 4715 4716 static const int attr_file_abi_sizes[] = { 4717 [0] = PERF_ATTR_SIZE_VER0, 4718 [1] = PERF_ATTR_SIZE_VER1, 4719 [2] = PERF_ATTR_SIZE_VER2, 4720 [3] = PERF_ATTR_SIZE_VER3, 4721 [4] = PERF_ATTR_SIZE_VER4, 4722 0, 4723 }; 4724 4725 /* 4726 * In the legacy file format, the magic number is not used to encode endianness. 4727 * hdr_sz was used to encode endianness. But given that hdr_sz can vary based 4728 * on ABI revisions, we need to try all combinations for all endianness to 4729 * detect the endianness. 4730 */ 4731 static int try_all_file_abis(uint64_t hdr_sz, struct perf_header *ph) 4732 { 4733 uint64_t ref_size, attr_size; 4734 int i; 4735 4736 for (i = 0 ; attr_file_abi_sizes[i]; i++) { 4737 ref_size = attr_file_abi_sizes[i] 4738 + sizeof(struct perf_file_section); 4739 if (hdr_sz != ref_size) { 4740 attr_size = bswap_64(hdr_sz); 4741 if (attr_size != ref_size) 4742 continue; 4743 4744 ph->needs_swap = true; 4745 } 4746 pr_debug("ABI%d perf.data file detected, need_swap=%d\n", 4747 i, 4748 ph->needs_swap); 4749 return 0; 4750 } 4751 /* could not determine endianness */ 4752 return -1; 4753 } 4754 4755 #define PERF_PIPE_HDR_VER0 16 4756 4757 static const size_t attr_pipe_abi_sizes[] = { 4758 [0] = PERF_PIPE_HDR_VER0, 4759 0, 4760 }; 4761 4762 /* 4763 * In the legacy pipe format, there is an implicit assumption that endianness 4764 * between host recording the samples, and host parsing the samples is the 4765 * same. This is not always the case given that the pipe output may always be 4766 * redirected into a file and analyzed on a different machine with possibly a 4767 * different endianness and perf_event ABI revisions in the perf tool itself. 4768 */ 4769 static int try_all_pipe_abis(uint64_t hdr_sz, struct perf_header *ph) 4770 { 4771 u64 attr_size; 4772 int i; 4773 4774 for (i = 0 ; attr_pipe_abi_sizes[i]; i++) { 4775 if (hdr_sz != attr_pipe_abi_sizes[i]) { 4776 attr_size = bswap_64(hdr_sz); 4777 if (attr_size != hdr_sz) 4778 continue; 4779 4780 ph->needs_swap = true; 4781 } 4782 pr_debug("Pipe ABI%d perf.data file detected\n", i); 4783 return 0; 4784 } 4785 return -1; 4786 } 4787 4788 bool is_perf_magic(u64 magic) 4789 { 4790 if (!memcmp(&magic, __perf_magic1, sizeof(magic)) 4791 || magic == __perf_magic2 4792 || magic == __perf_magic2_sw) 4793 return true; 4794 4795 return false; 4796 } 4797 4798 static int check_magic_endian(u64 magic, uint64_t hdr_sz, 4799 bool is_pipe, struct perf_header *ph) 4800 { 4801 int ret; 4802 4803 /* check for legacy format */ 4804 ret = memcmp(&magic, __perf_magic1, sizeof(magic)); 4805 if (ret == 0) { 4806 ph->version = PERF_HEADER_VERSION_1; 4807 pr_debug("legacy perf.data format\n"); 4808 if (is_pipe) 4809 return try_all_pipe_abis(hdr_sz, ph); 4810 4811 return try_all_file_abis(hdr_sz, ph); 4812 } 4813 /* 4814 * the new magic number serves two purposes: 4815 * - unique number to identify actual perf.data files 4816 * - encode endianness of file 4817 */ 4818 ph->version = PERF_HEADER_VERSION_2; 4819 4820 /* check magic number with one endianness */ 4821 if (magic == __perf_magic2) 4822 return 0; 4823 4824 /* check magic number with opposite endianness */ 4825 if (magic != __perf_magic2_sw) 4826 return -1; 4827 4828 ph->needs_swap = true; 4829 4830 return 0; 4831 } 4832 4833 int perf_file_header__read(struct perf_file_header *header, 4834 struct perf_header *ph, int fd) 4835 { 4836 ssize_t ret; 4837 4838 lseek(fd, 0, SEEK_SET); 4839 4840 ret = readn(fd, header, sizeof(*header)); 4841 if (ret <= 0) 4842 return -1; 4843 4844 if (check_magic_endian(header->magic, 4845 header->attr_size, false, ph) < 0) { 4846 pr_debug("magic/endian check failed\n"); 4847 return -1; 4848 } 4849 4850 if (ph->needs_swap) { 4851 mem_bswap_64(header, offsetof(struct perf_file_header, 4852 adds_features)); 4853 } 4854 4855 if (header->size > header->attrs.offset) { 4856 pr_err("Perf file header corrupt: header overlaps attrs\n"); 4857 return -1; 4858 } 4859 4860 if (header->size > header->data.offset) { 4861 pr_err("Perf file header corrupt: header overlaps data\n"); 4862 return -1; 4863 } 4864 4865 if ((header->attrs.offset <= header->data.offset && 4866 header->attrs.offset + header->attrs.size > header->data.offset) || 4867 (header->attrs.offset > header->data.offset && 4868 header->data.offset + header->data.size > header->attrs.offset)) { 4869 pr_err("Perf file header corrupt: Attributes and data overlap\n"); 4870 return -1; 4871 } 4872 4873 if (header->size != sizeof(*header)) { 4874 /* Support the previous format */ 4875 if (header->size == offsetof(typeof(*header), adds_features)) 4876 bitmap_zero(header->adds_features, HEADER_FEAT_BITS); 4877 else 4878 return -1; 4879 } else if (ph->needs_swap) { 4880 /* 4881 * feature bitmap is declared as an array of unsigned longs -- 4882 * not good since its size can differ between the host that 4883 * generated the data file and the host analyzing the file. 4884 * 4885 * We need to handle endianness, but we don't know the size of 4886 * the unsigned long where the file was generated. Take a best 4887 * guess at determining it: try 64-bit swap first (ie., file 4888 * created on a 64-bit host), and check if the hostname feature 4889 * bit is set (this feature bit is forced on as of fbe96f2). 4890 * If the bit is not, undo the 64-bit swap and try a 32-bit 4891 * swap. If the hostname bit is still not set (e.g., older data 4892 * file), punt and fallback to the original behavior -- 4893 * clearing all feature bits and setting buildid. 4894 */ 4895 mem_bswap_64(&header->adds_features, 4896 BITS_TO_U64(HEADER_FEAT_BITS)); 4897 4898 if (!test_bit(HEADER_HOSTNAME, header->adds_features)) { 4899 /* unswap as u64 */ 4900 mem_bswap_64(&header->adds_features, 4901 BITS_TO_U64(HEADER_FEAT_BITS)); 4902 4903 /* unswap as u32 */ 4904 mem_bswap_32(&header->adds_features, 4905 BITS_TO_U32(HEADER_FEAT_BITS)); 4906 } 4907 4908 if (!test_bit(HEADER_HOSTNAME, header->adds_features)) { 4909 bitmap_zero(header->adds_features, HEADER_FEAT_BITS); 4910 __set_bit(HEADER_BUILD_ID, header->adds_features); 4911 } 4912 } 4913 4914 memcpy(&ph->adds_features, &header->adds_features, 4915 sizeof(ph->adds_features)); 4916 4917 ph->data_offset = header->data.offset; 4918 ph->data_size = header->data.size; 4919 ph->feat_offset = header->data.offset + header->data.size; 4920 ph->last_feat = HEADER_LAST_FEATURE; 4921 return 0; 4922 } 4923 4924 static int perf_file_section__process(struct perf_file_section *section, 4925 struct perf_header *ph, 4926 int feat, int fd, void *data) 4927 { 4928 struct feat_fd fdd = { 4929 .fd = fd, 4930 .ph = ph, 4931 .size = section->size, 4932 .offset = 0, 4933 }; 4934 4935 if (lseek(fd, section->offset, SEEK_SET) == (off_t)-1) { 4936 pr_debug("Failed to lseek to %" PRIu64 " offset for feature %s (%d), continuing...\n", 4937 section->offset, header_feat__name(feat), feat); 4938 return 0; 4939 } 4940 4941 if (feat >= HEADER_LAST_FEATURE) { 4942 pr_debug("unknown feature %d, continuing...\n", feat); 4943 return 0; 4944 } 4945 4946 if (!feat_ops[feat].process) 4947 return 0; 4948 4949 return feat_ops[feat].process(&fdd, data); 4950 } 4951 4952 static int perf_file_header__read_pipe(struct perf_pipe_file_header *header, 4953 struct perf_header *ph, 4954 struct perf_data *data) 4955 { 4956 ssize_t ret; 4957 4958 ret = perf_data__read(data, header, sizeof(*header)); 4959 if (ret <= 0) 4960 return -1; 4961 4962 if (check_magic_endian(header->magic, header->size, true, ph) < 0) { 4963 pr_debug("endian/magic failed\n"); 4964 return -1; 4965 } 4966 4967 if (ph->needs_swap) 4968 header->size = bswap_64(header->size); 4969 4970 /* The last feature is written out as a 0 sized event and will update this value. */ 4971 ph->last_feat = 0; 4972 return 0; 4973 } 4974 4975 static int perf_header__read_pipe(struct perf_session *session) 4976 { 4977 struct perf_header *header = &session->header; 4978 struct perf_pipe_file_header f_header; 4979 4980 if (perf_file_header__read_pipe(&f_header, header, session->data) < 0) { 4981 pr_debug("incompatible file format\n"); 4982 return -EINVAL; 4983 } 4984 4985 return f_header.size == sizeof(f_header) ? 0 : -1; 4986 } 4987 4988 static int read_attr(int fd, struct perf_header *ph, 4989 struct perf_file_attr *f_attr) 4990 { 4991 struct perf_event_attr *attr = &f_attr->attr; 4992 size_t sz, left; 4993 size_t our_sz = sizeof(f_attr->attr); 4994 ssize_t ret; 4995 4996 memset(f_attr, 0, sizeof(*f_attr)); 4997 4998 /* read minimal guaranteed structure */ 4999 ret = readn(fd, attr, PERF_ATTR_SIZE_VER0); 5000 if (ret <= 0) { 5001 pr_debug("cannot read %d bytes of header attr\n", 5002 PERF_ATTR_SIZE_VER0); 5003 if (ret == 0) 5004 errno = EIO; 5005 return -1; 5006 } 5007 5008 /* on file perf_event_attr size */ 5009 sz = attr->size; 5010 5011 if (ph->needs_swap) 5012 sz = bswap_32(sz); 5013 5014 if (sz == 0) { 5015 /* assume ABI0 */ 5016 sz = PERF_ATTR_SIZE_VER0; 5017 } else if (sz < PERF_ATTR_SIZE_VER0) { 5018 pr_debug("bad attr size %zu, expected at least %d\n", 5019 sz, PERF_ATTR_SIZE_VER0); 5020 errno = EINVAL; 5021 return -1; 5022 } else if (sz > our_sz) { 5023 pr_debug("file uses a more recent and unsupported ABI" 5024 " (%zu bytes extra)\n", sz - our_sz); 5025 errno = EINVAL; 5026 return -1; 5027 } 5028 /* what we have not yet read and that we know about */ 5029 left = sz - PERF_ATTR_SIZE_VER0; 5030 if (left) { 5031 void *ptr = attr; 5032 ptr += PERF_ATTR_SIZE_VER0; 5033 5034 ret = readn(fd, ptr, left); 5035 if (ret <= 0) { 5036 if (ret == 0) 5037 errno = EIO; 5038 return -1; 5039 } 5040 } 5041 /* read perf_file_section, ids are read in caller */ 5042 ret = readn(fd, &f_attr->ids, sizeof(f_attr->ids)); 5043 if (ret <= 0) { 5044 if (ret == 0) 5045 errno = EIO; 5046 return -1; 5047 } 5048 5049 return 0; 5050 } 5051 5052 #ifdef HAVE_LIBTRACEEVENT 5053 static int evsel__prepare_tracepoint_event(struct evsel *evsel, struct tep_handle *pevent) 5054 { 5055 struct tep_event *event; 5056 char bf[128]; 5057 5058 /* already prepared */ 5059 if (evsel->tp_format) 5060 return 0; 5061 5062 if (pevent == NULL) { 5063 pr_debug("broken or missing trace data\n"); 5064 return -1; 5065 } 5066 5067 event = tep_find_event(pevent, evsel->core.attr.config); 5068 if (event == NULL) { 5069 pr_debug("cannot find event format for %d\n", (int)evsel->core.attr.config); 5070 return -1; 5071 } 5072 5073 if (!evsel->name) { 5074 snprintf(bf, sizeof(bf), "%s:%s", event->system, event->name); 5075 evsel->name = strdup(bf); 5076 if (evsel->name == NULL) 5077 return -1; 5078 } 5079 5080 evsel->tp_format = event; 5081 return 0; 5082 } 5083 5084 static int evlist__prepare_tracepoint_events(struct evlist *evlist, struct tep_handle *pevent) 5085 { 5086 struct evsel *pos; 5087 5088 evlist__for_each_entry(evlist, pos) { 5089 if (pos->core.attr.type == PERF_TYPE_TRACEPOINT && 5090 evsel__prepare_tracepoint_event(pos, pevent)) 5091 return -1; 5092 } 5093 5094 return 0; 5095 } 5096 #endif 5097 5098 int perf_session__read_header(struct perf_session *session) 5099 { 5100 struct perf_data *data = session->data; 5101 struct perf_header *header = &session->header; 5102 struct perf_file_header f_header; 5103 struct perf_file_attr f_attr; 5104 u64 f_id; 5105 struct stat input_stat; 5106 int nr_attrs, nr_ids, i, j, err = -ENOMEM; 5107 int fd = perf_data__fd(data); 5108 5109 session->evlist = evlist__new(); 5110 if (session->evlist == NULL) 5111 return -ENOMEM; 5112 5113 session->evlist->session = session; 5114 session->machines.host.env = &header->env; 5115 5116 /* 5117 * We can read 'pipe' data event from regular file, 5118 * check for the pipe header regardless of source. 5119 */ 5120 err = perf_header__read_pipe(session); 5121 if (!err || perf_data__is_pipe(data)) { 5122 data->is_pipe = true; 5123 return err; 5124 } 5125 5126 err = -ENOMEM; 5127 if (perf_file_header__read(&f_header, header, fd) < 0) 5128 return -EINVAL; 5129 5130 if (header->needs_swap && data->in_place_update) { 5131 pr_err("In-place update not supported when byte-swapping is required\n"); 5132 return -EINVAL; 5133 } 5134 5135 /* 5136 * Sanity check that perf.data was written cleanly; data size is 5137 * initialized to 0 and updated only if the on_exit function is run. 5138 * If data size is still 0 then the file contains only partial 5139 * information. Just warn user and process it as much as it can. 5140 */ 5141 if (f_header.data.size == 0) { 5142 pr_warning("WARNING: The %s file's data size field is 0 which is unexpected.\n" 5143 "Was the 'perf record' command properly terminated?\n", 5144 data->file.path); 5145 } 5146 5147 if (f_header.attr_size == 0) { 5148 pr_err("ERROR: The %s file's attr size field is 0 which is unexpected.\n" 5149 "Was the 'perf record' command properly terminated?\n", 5150 data->file.path); 5151 return -EINVAL; 5152 } 5153 5154 if (fstat(fd, &input_stat) < 0) 5155 return -errno; 5156 5157 /* Check before assigning to int to avoid u64-to-int truncation */ 5158 if (f_header.attrs.size / f_header.attr_size > MAX_NR_ATTRS) { 5159 pr_err("Too many attributes: %" PRIu64 " (max %d)\n", 5160 f_header.attrs.size / f_header.attr_size, MAX_NR_ATTRS); 5161 return -EINVAL; 5162 } 5163 nr_attrs = f_header.attrs.size / f_header.attr_size; 5164 lseek(fd, f_header.attrs.offset, SEEK_SET); 5165 5166 for (i = 0; i < nr_attrs; i++) { 5167 struct evsel *evsel; 5168 off_t tmp; 5169 5170 if (read_attr(fd, header, &f_attr) < 0) 5171 goto out_errno; 5172 5173 if (header->needs_swap) { 5174 f_attr.ids.size = bswap_64(f_attr.ids.size); 5175 f_attr.ids.offset = bswap_64(f_attr.ids.offset); 5176 perf_event__attr_swap(&f_attr.attr); 5177 } 5178 5179 /* 5180 * Validate ids section: must be aligned to u64, and 5181 * the count must fit in an int to avoid truncation in 5182 * nr_ids and size_t overflow in perf_evsel__alloc_id() 5183 * on 32-bit architectures. 5184 */ 5185 if (f_attr.ids.size % sizeof(u64)) { 5186 pr_err("Invalid ids section size %" PRIu64 " for attr %d, not aligned to u64\n", 5187 f_attr.ids.size, i); 5188 err = -EINVAL; 5189 goto out_delete_evlist; 5190 } 5191 5192 /* 5193 * Cap the ID count to avoid int truncation of nr_ids 5194 * on 64-bit and size_t overflow in the allocation 5195 * paths (nr_ids * sizeof(u64), nr_ids * 5196 * sizeof(struct perf_sample_id)) on 32-bit. 5197 */ 5198 if (f_attr.ids.size / sizeof(u64) > MAX_IDS_PER_ATTR) { 5199 pr_err("Invalid ids section size %" PRIu64 " for attr %d, too many IDs\n", 5200 f_attr.ids.size, i); 5201 err = -EINVAL; 5202 goto out_delete_evlist; 5203 } 5204 5205 /* 5206 * FIXME: see perf_header__process_sections() — block 5207 * devices bypass this check because st_size is 0. 5208 */ 5209 if (S_ISREG(input_stat.st_mode) && 5210 (f_attr.ids.offset > (u64)input_stat.st_size || 5211 f_attr.ids.size > (u64)input_stat.st_size - f_attr.ids.offset)) { 5212 pr_err("Invalid ids section for attr %d: offset=%" PRIu64 " size=%" PRIu64 " exceeds file size %" PRIu64 "\n", 5213 i, f_attr.ids.offset, f_attr.ids.size, (u64)input_stat.st_size); 5214 err = -EINVAL; 5215 goto out_delete_evlist; 5216 } 5217 5218 tmp = lseek(fd, 0, SEEK_CUR); 5219 evsel = evsel__new(&f_attr.attr); 5220 5221 if (evsel == NULL) 5222 goto out_delete_evlist; 5223 5224 evsel->needs_swap = header->needs_swap; 5225 /* 5226 * Do it before so that if perf_evsel__alloc_id fails, this 5227 * entry gets purged too at evlist__delete(). 5228 */ 5229 evlist__add(session->evlist, evsel); 5230 5231 nr_ids = f_attr.ids.size / sizeof(u64); 5232 /* 5233 * We don't have the cpu and thread maps on the header, so 5234 * for allocating the perf_sample_id table we fake 1 cpu and 5235 * hattr->ids threads. 5236 */ 5237 if (perf_evsel__alloc_id(&evsel->core, 1, nr_ids)) 5238 goto out_delete_evlist; 5239 5240 lseek(fd, f_attr.ids.offset, SEEK_SET); 5241 5242 for (j = 0; j < nr_ids; j++) { 5243 if (perf_header__getbuffer64(header, fd, &f_id, sizeof(f_id))) 5244 goto out_errno; 5245 5246 perf_evlist__id_add(&session->evlist->core, &evsel->core, 0, j, f_id); 5247 } 5248 5249 lseek(fd, tmp, SEEK_SET); 5250 } 5251 5252 /* 5253 * Skip feature section processing for truncated files 5254 * (data.size == 0 means recording was interrupted). The 5255 * section table is unreliable in that case, and the event 5256 * data can still be processed without the feature headers. 5257 * Clear the bitmap so has_feat() returns false and tools 5258 * use their "feature not present" fallbacks instead of 5259 * accessing uninitialized env fields. 5260 */ 5261 if (f_header.data.size == 0) { 5262 bitmap_zero(header->adds_features, HEADER_FEAT_BITS); 5263 } else { 5264 #ifdef HAVE_LIBTRACEEVENT 5265 err = perf_header__process_sections(header, fd, &session->tevent, 5266 perf_file_section__process); 5267 if (err < 0) 5268 goto out_delete_evlist; 5269 5270 if (evlist__prepare_tracepoint_events(session->evlist, 5271 session->tevent.pevent)) { 5272 err = -ENOMEM; 5273 goto out_delete_evlist; 5274 } 5275 #else 5276 err = perf_header__process_sections(header, fd, NULL, 5277 perf_file_section__process); 5278 if (err < 0) 5279 goto out_delete_evlist; 5280 #endif 5281 } 5282 5283 /* 5284 * Without nr_cpus_avail the sample CPU bounds check in 5285 * perf_session__deliver_event() is bypassed, allowing crafted 5286 * CPU IDs to reach downstream consumers that index fixed-size 5287 * arrays (timechart, kwork, sched — all sized MAX_NR_CPUS). 5288 * 5289 * This can happen with truncated files (interrupted recording 5290 * loses all feature sections), very old files that predate 5291 * HEADER_NRCPUS, or crafted files that omit it. Fall back to 5292 * MAX_NR_CPUS so the bounds check is still effective — any 5293 * CPU ID below that limit is safe for all downstream arrays. 5294 */ 5295 if (header->env.nr_cpus_avail == 0) { 5296 header->env.nr_cpus_avail = MAX_NR_CPUS; 5297 pr_warning("WARNING: perf.data is missing HEADER_NRCPUS, using MAX_NR_CPUS (%d) as CPU bound\n", 5298 MAX_NR_CPUS); 5299 } 5300 5301 return 0; 5302 out_errno: 5303 return -errno; 5304 5305 out_delete_evlist: 5306 evlist__delete(session->evlist); 5307 session->evlist = NULL; 5308 return err; 5309 } 5310 5311 int perf_event__process_feature(const struct perf_tool *tool __maybe_unused, 5312 struct perf_session *session, 5313 union perf_event *event) 5314 { 5315 struct feat_fd ff = { .fd = 0 }; 5316 struct perf_record_header_feature *fe = (struct perf_record_header_feature *)event; 5317 struct perf_header *header = &session->header; 5318 int type = fe->header.type; 5319 int feat = (int)fe->feat_id; 5320 int ret = 0; 5321 bool print = dump_trace; 5322 bool last_feature_mark = false; 5323 5324 if (type < 0 || type >= PERF_RECORD_HEADER_MAX) { 5325 pr_warning("invalid record type %d in pipe-mode\n", type); 5326 return 0; 5327 } 5328 if (feat == HEADER_RESERVED) { 5329 pr_warning("invalid reserved record type in pipe-mode\n"); 5330 return -1; 5331 } 5332 if (feat < 0 || feat == INT_MAX) { 5333 pr_warning("invalid value for feature type %x\n", feat); 5334 return -1; 5335 } 5336 if (feat >= header->last_feat) { 5337 if (event->header.size == sizeof(*fe)) { 5338 /* 5339 * Either an unexpected zero size feature or the 5340 * HEADER_LAST_FEATURE mark. 5341 */ 5342 if (feat > header->last_feat) 5343 header->last_feat = min(feat, HEADER_LAST_FEATURE); 5344 last_feature_mark = true; 5345 } else { 5346 /* 5347 * A feature but beyond what is known as in 5348 * bounds. Assume the last feature is 1 beyond this 5349 * feature. 5350 */ 5351 session->header.last_feat = min(feat + 1, HEADER_LAST_FEATURE); 5352 } 5353 } 5354 if (feat >= HEADER_LAST_FEATURE) { 5355 if (!last_feature_mark) { 5356 pr_warning("unknown feature %d for data file version (%s) in this version of perf (%s)\n", 5357 feat, header->env.version, perf_version_string); 5358 } 5359 return 0; 5360 } 5361 if (event->header.size < sizeof(*fe)) { 5362 pr_warning("feature header size too small\n"); 5363 return -1; 5364 } 5365 ff.buf = (void *)fe->data; 5366 ff.size = event->header.size - sizeof(*fe); 5367 ff.ph = header; 5368 5369 if (feat_ops[feat].process && feat_ops[feat].process(&ff, NULL)) { 5370 // Processing failed, ignore when this is the last feature mark. 5371 if (!last_feature_mark) 5372 ret = -1; 5373 goto out; 5374 } 5375 5376 if (session->tool->show_feat_hdr) { 5377 if (!feat_ops[feat].full_only || 5378 session->tool->show_feat_hdr >= SHOW_FEAT_HEADER_FULL_INFO) { 5379 print = true; 5380 } else { 5381 fprintf(stdout, "# %s info available, use -I to display\n", 5382 feat_ops[feat].name); 5383 } 5384 } 5385 5386 if (dump_trace) 5387 printf(", "); 5388 5389 if (print) { 5390 if (feat_ops[feat].print) 5391 feat_ops[feat].print(&ff, stdout); 5392 else 5393 printf("# %s", feat_ops[feat].name); 5394 } 5395 5396 out: 5397 free_event_desc(ff.events); 5398 return ret; 5399 } 5400 5401 size_t perf_event__fprintf_event_update(union perf_event *event, FILE *fp) 5402 { 5403 struct perf_record_event_update *ev = &event->event_update; 5404 struct perf_cpu_map *map; 5405 size_t ret; 5406 5407 ret = fprintf(fp, "\n... id: %" PRI_lu64 "\n", ev->id); 5408 5409 switch (ev->type) { 5410 case PERF_EVENT_UPDATE__SCALE: 5411 if (event->header.size < offsetof(struct perf_record_event_update, scale) + 5412 sizeof(ev->scale)) { 5413 ret += fprintf(fp, "... scale: (truncated)\n"); 5414 break; 5415 } 5416 ret += fprintf(fp, "... scale: %f\n", ev->scale.scale); 5417 break; 5418 case PERF_EVENT_UPDATE__UNIT: 5419 case PERF_EVENT_UPDATE__NAME: { 5420 size_t str_off = offsetof(struct perf_record_event_update, unit); 5421 size_t max_len = event->header.size > str_off ? 5422 event->header.size - str_off : 0; 5423 5424 if (max_len == 0 || strnlen(ev->unit, max_len) == max_len) { 5425 ret += fprintf(fp, "... %s: (unterminated)\n", 5426 ev->type == PERF_EVENT_UPDATE__UNIT ? "unit" : "name"); 5427 break; 5428 } 5429 ret += fprintf(fp, "... %s: %s\n", 5430 ev->type == PERF_EVENT_UPDATE__UNIT ? "unit" : "name", 5431 ev->unit); 5432 break; 5433 } 5434 case PERF_EVENT_UPDATE__CPUS: { 5435 size_t cpus_off = offsetof(struct perf_record_event_update, cpus); 5436 u32 cpus_payload; 5437 5438 if (event->header.size < cpus_off + sizeof(__u16) + 5439 sizeof(struct perf_record_range_cpu_map)) { 5440 ret += fprintf(fp, "... cpus: (truncated)\n"); 5441 break; 5442 } 5443 5444 /* 5445 * Validate nr against payload — this function may be 5446 * called from the stub handler (dump_trace path) which 5447 * bypasses perf_event__process_event_update() validation. 5448 */ 5449 cpus_payload = event->header.size - cpus_off; 5450 if (ev->cpus.cpus.type == PERF_CPU_MAP__CPUS) { 5451 if (cpus_payload < offsetof(struct perf_record_cpu_map_data, cpus_data.cpu) || 5452 ev->cpus.cpus.cpus_data.nr > 5453 (cpus_payload - offsetof(struct perf_record_cpu_map_data, cpus_data.cpu)) / 5454 sizeof(ev->cpus.cpus.cpus_data.cpu[0])) { 5455 ret += fprintf(fp, "... cpus: nr %u exceeds payload\n", 5456 ev->cpus.cpus.cpus_data.nr); 5457 break; 5458 } 5459 } else if (ev->cpus.cpus.type == PERF_CPU_MAP__MASK) { 5460 if (ev->cpus.cpus.mask32_data.long_size == 4) { 5461 if (cpus_payload < offsetof(struct perf_record_cpu_map_data, mask32_data.mask) || 5462 ev->cpus.cpus.mask32_data.nr > 5463 (cpus_payload - offsetof(struct perf_record_cpu_map_data, mask32_data.mask)) / 5464 sizeof(ev->cpus.cpus.mask32_data.mask[0])) { 5465 ret += fprintf(fp, "... cpus: mask nr %u exceeds payload\n", 5466 ev->cpus.cpus.mask32_data.nr); 5467 break; 5468 } 5469 } else if (ev->cpus.cpus.mask64_data.long_size == 8) { 5470 if (cpus_payload < offsetof(struct perf_record_cpu_map_data, mask64_data.mask) || 5471 ev->cpus.cpus.mask64_data.nr > 5472 (cpus_payload - offsetof(struct perf_record_cpu_map_data, mask64_data.mask)) / 5473 sizeof(ev->cpus.cpus.mask64_data.mask[0])) { 5474 ret += fprintf(fp, "... cpus: mask nr %u exceeds payload\n", 5475 ev->cpus.cpus.mask64_data.nr); 5476 break; 5477 } 5478 } 5479 } 5480 5481 ret += fprintf(fp, "... "); 5482 5483 map = cpu_map__new_data(&ev->cpus.cpus); 5484 if (map) { 5485 ret += cpu_map__fprintf(map, fp); 5486 perf_cpu_map__put(map); 5487 } else 5488 ret += fprintf(fp, "failed to get cpus\n"); 5489 break; 5490 } 5491 default: 5492 ret += fprintf(fp, "... unknown type\n"); 5493 break; 5494 } 5495 5496 return ret; 5497 } 5498 5499 size_t perf_event__fprintf_attr(union perf_event *event, FILE *fp) 5500 { 5501 return perf_event_attr__fprintf(fp, &event->attr.attr, __desc_attr__fprintf, NULL); 5502 } 5503 5504 int perf_event__process_attr(const struct perf_tool *tool __maybe_unused, 5505 union perf_event *event, 5506 struct evlist **pevlist) 5507 { 5508 struct perf_event_attr attr; 5509 u32 i, n_ids, raw_attr_size; 5510 u64 *ids; 5511 size_t attr_size, copy_size; 5512 struct evsel *evsel; 5513 struct evlist *evlist = *pevlist; 5514 5515 /* 5516 * HEADER_ATTR event layout (pipe/inject mode): 5517 * 5518 * [header (8 bytes)] [attr (attr_size bytes)] [id0 id1 ... idN] 5519 * |<------------------ header.size --------------------------->| 5520 * 5521 * attr_size varies across perf versions: VER0 = 64 bytes, 5522 * current sizeof(struct perf_event_attr) = larger. A newer 5523 * producer may emit a larger attr than we understand. 5524 * 5525 * attr.size == 0 (ABI0) means the producer didn't set it 5526 * (e.g., bench/inject-buildid, older perf). Treat as VER0. 5527 * 5528 * Require 8-byte alignment so the u64 ID array is aligned 5529 * and attr.size fits cleanly within the payload. 5530 * 5531 * Read attr.size once — the event may be on a shared mmap 5532 * and re-reading could yield a different value. 5533 */ 5534 raw_attr_size = event->attr.attr.size; 5535 if (event->header.size < sizeof(event->header) + PERF_ATTR_SIZE_VER0 || 5536 (raw_attr_size && (raw_attr_size < PERF_ATTR_SIZE_VER0 || 5537 raw_attr_size % sizeof(u64) || 5538 raw_attr_size > event->header.size - sizeof(event->header)))) { 5539 pr_err("PERF_RECORD_HEADER_ATTR: invalid attr.size %u (event size %u, min %d)\n", 5540 raw_attr_size, event->header.size, PERF_ATTR_SIZE_VER0); 5541 return -EINVAL; 5542 } 5543 5544 if (dump_trace) 5545 perf_event__fprintf_attr(event, stdout); 5546 5547 if (evlist == NULL) { 5548 *pevlist = evlist = evlist__new(); 5549 if (evlist == NULL) 5550 return -ENOMEM; 5551 } 5552 5553 /* 5554 * attr_size = footprint of the attr in the event — determines 5555 * where the ID array starts. For ABI0, assume VER0 (64 bytes). 5556 * 5557 * copy_size = how much we copy into our local struct, capped at 5558 * sizeof(attr) so a newer producer's larger attr doesn't 5559 * overflow. Fields beyond copy_size are zeroed. 5560 * 5561 * Do NOT write attr_size back to the event — native-endian 5562 * files use MAP_SHARED (read-only), writing would SIGSEGV. 5563 * The swap path handles ABI0 in perf_event__attr_swap() 5564 * which writes to the writable MAP_PRIVATE copy instead. 5565 */ 5566 attr_size = raw_attr_size ?: PERF_ATTR_SIZE_VER0; 5567 copy_size = min(attr_size, sizeof(attr)); 5568 memcpy(&attr, &event->attr.attr, copy_size); 5569 if (copy_size < sizeof(attr)) 5570 memset((void *)&attr + copy_size, 0, sizeof(attr) - copy_size); 5571 5572 /* 5573 * Normalize ABI0: the swap path sets attr.size = VER0 on the 5574 * event, but the native path leaves it as 0. Set it on the 5575 * local copy so perf inject re-synthesizes with consistent 5576 * layout regardless of endianness. 5577 */ 5578 attr.size = attr_size; 5579 5580 evsel = evsel__new(&attr); 5581 if (evsel == NULL) 5582 return -ENOMEM; 5583 5584 evlist__add(evlist, evsel); 5585 5586 /* 5587 * IDs occupy the remainder after header + attr. Use attr_size 5588 * (not copy_size) — even if the producer's attr is larger than 5589 * our struct, the IDs start after attr_size bytes in the event. 5590 * Validation above guarantees attr_size <= payload size. 5591 */ 5592 n_ids = event->header.size - sizeof(event->header) - attr_size; 5593 n_ids = n_ids / sizeof(u64); 5594 /* 5595 * We don't have the cpu and thread maps on the header, so 5596 * for allocating the perf_sample_id table we fake 1 cpu and 5597 * hattr->ids threads. 5598 */ 5599 if (perf_evsel__alloc_id(&evsel->core, 1, n_ids)) 5600 return -ENOMEM; 5601 5602 /* 5603 * Locate IDs at attr_size bytes past the attr start in the 5604 * event. Cannot use perf_record_header_attr_id() — that 5605 * macro reads event->attr.attr.size, which is 0 for ABI0 5606 * on the native-endian path (no swap handler to fix it up). 5607 */ 5608 ids = (void *)&event->attr.attr + attr_size; 5609 for (i = 0; i < n_ids; i++) { 5610 perf_evlist__id_add(&evlist->core, &evsel->core, 0, i, ids[i]); 5611 } 5612 5613 return 0; 5614 } 5615 5616 int perf_event__process_event_update(const struct perf_tool *tool __maybe_unused, 5617 union perf_event *event, 5618 struct evlist **pevlist) 5619 { 5620 struct perf_record_event_update *ev = &event->event_update; 5621 struct evlist *evlist; 5622 struct evsel *evsel; 5623 struct perf_cpu_map *map; 5624 5625 /* 5626 * Validate payload before dump_trace or processing — both 5627 * paths access variant-specific fields without further checks. 5628 */ 5629 if (ev->type == PERF_EVENT_UPDATE__UNIT || 5630 ev->type == PERF_EVENT_UPDATE__NAME) { 5631 size_t str_off = offsetof(struct perf_record_event_update, unit); 5632 size_t max_len = event->header.size > str_off ? 5633 event->header.size - str_off : 0; 5634 5635 if (max_len == 0 || strnlen(ev->unit, max_len) == max_len) { 5636 pr_warning("WARNING: PERF_RECORD_EVENT_UPDATE: %s not null-terminated, skipping\n", 5637 ev->type == PERF_EVENT_UPDATE__UNIT ? "unit" : "name"); 5638 return 0; 5639 } 5640 } else if (ev->type == PERF_EVENT_UPDATE__SCALE) { 5641 if (event->header.size < offsetof(struct perf_record_event_update, scale) + 5642 sizeof(ev->scale)) { 5643 pr_warning("WARNING: PERF_RECORD_EVENT_UPDATE: SCALE payload too small, skipping\n"); 5644 return 0; 5645 } 5646 } else if (ev->type == PERF_EVENT_UPDATE__CPUS) { 5647 size_t cpus_off = offsetof(struct perf_record_event_update, cpus); 5648 size_t min_cpus = sizeof(__u16) + 5649 sizeof(struct perf_record_range_cpu_map); 5650 u32 cpus_payload; 5651 5652 if (event->header.size < cpus_off + min_cpus) { 5653 pr_warning("WARNING: PERF_RECORD_EVENT_UPDATE: CPUS payload too small, skipping\n"); 5654 return 0; 5655 } 5656 5657 /* 5658 * Validate per-variant nr against the remaining 5659 * payload on the native path — the swap path clamps 5660 * nr in perf_event__event_update_swap(), but native 5661 * events are read-only and cannot be clamped in place. 5662 * cpu_map__new_data() trusts nr for allocation and 5663 * iteration, so unchecked values cause OOB reads. 5664 */ 5665 cpus_payload = event->header.size - cpus_off; 5666 switch (ev->cpus.cpus.type) { 5667 case PERF_CPU_MAP__CPUS: 5668 if (ev->cpus.cpus.cpus_data.nr > 5669 (cpus_payload - offsetof(struct perf_record_cpu_map_data, cpus_data.cpu)) / 5670 sizeof(ev->cpus.cpus.cpus_data.cpu[0])) { 5671 pr_warning("WARNING: EVENT_UPDATE CPUS: nr %u exceeds payload, skipping\n", 5672 ev->cpus.cpus.cpus_data.nr); 5673 return 0; 5674 } 5675 break; 5676 case PERF_CPU_MAP__MASK: 5677 if (ev->cpus.cpus.mask32_data.long_size == 4) { 5678 if (cpus_payload < offsetof(struct perf_record_cpu_map_data, mask32_data.mask) || 5679 ev->cpus.cpus.mask32_data.nr > 5680 (cpus_payload - offsetof(struct perf_record_cpu_map_data, mask32_data.mask)) / 5681 sizeof(ev->cpus.cpus.mask32_data.mask[0])) { 5682 pr_warning("WARNING: EVENT_UPDATE MASK: nr %u exceeds payload, skipping\n", 5683 ev->cpus.cpus.mask32_data.nr); 5684 return 0; 5685 } 5686 } else if (ev->cpus.cpus.mask64_data.long_size == 8) { 5687 if (cpus_payload < offsetof(struct perf_record_cpu_map_data, mask64_data.mask) || 5688 ev->cpus.cpus.mask64_data.nr > 5689 (cpus_payload - offsetof(struct perf_record_cpu_map_data, mask64_data.mask)) / 5690 sizeof(ev->cpus.cpus.mask64_data.mask[0])) { 5691 pr_warning("WARNING: EVENT_UPDATE MASK: nr %u exceeds payload, skipping\n", 5692 ev->cpus.cpus.mask64_data.nr); 5693 return 0; 5694 } 5695 } 5696 break; 5697 default: 5698 break; 5699 } 5700 } 5701 5702 if (dump_trace) 5703 perf_event__fprintf_event_update(event, stdout); 5704 5705 if (!pevlist || *pevlist == NULL) 5706 return -EINVAL; 5707 5708 evlist = *pevlist; 5709 5710 evsel = evlist__id2evsel(evlist, ev->id); 5711 if (evsel == NULL) 5712 return -EINVAL; 5713 5714 switch (ev->type) { 5715 case PERF_EVENT_UPDATE__UNIT: 5716 free((char *)evsel->unit); 5717 evsel->unit = strdup(ev->unit); 5718 break; 5719 case PERF_EVENT_UPDATE__NAME: 5720 free(evsel->name); 5721 evsel->name = strdup(ev->name); 5722 break; 5723 case PERF_EVENT_UPDATE__SCALE: 5724 evsel->scale = ev->scale.scale; 5725 break; 5726 case PERF_EVENT_UPDATE__CPUS: 5727 map = cpu_map__new_data(&ev->cpus.cpus); 5728 if (map) { 5729 perf_cpu_map__put(evsel->core.pmu_cpus); 5730 evsel->core.pmu_cpus = map; 5731 } else 5732 pr_err("failed to get event_update cpus\n"); 5733 break; 5734 default: 5735 break; 5736 } 5737 5738 return 0; 5739 } 5740 5741 #ifdef HAVE_LIBTRACEEVENT 5742 int perf_event__process_tracing_data(const struct perf_tool *tool __maybe_unused, 5743 struct perf_session *session, 5744 union perf_event *event) 5745 { 5746 ssize_t size_read, padding, size = event->tracing_data.size; 5747 int fd = perf_data__fd(session->data); 5748 char buf[BUFSIZ]; 5749 5750 /* 5751 * The pipe fd is already in proper place and in any case 5752 * we can't move it, and we'd screw the case where we read 5753 * 'pipe' data from regular file. The trace_report reads 5754 * data from 'fd' so we need to set it directly behind the 5755 * event, where the tracing data starts. 5756 */ 5757 if (!perf_data__is_pipe(session->data)) { 5758 off_t offset = lseek(fd, 0, SEEK_CUR); 5759 5760 /* setup for reading amidst mmap */ 5761 lseek(fd, offset + sizeof(struct perf_record_header_tracing_data), 5762 SEEK_SET); 5763 } 5764 5765 size_read = trace_report(fd, &session->tevent, session->trace_event_repipe); 5766 padding = PERF_ALIGN(size_read, sizeof(u64)) - size_read; 5767 5768 if (readn(fd, buf, padding) < 0) { 5769 pr_err("%s: reading input file", __func__); 5770 return -1; 5771 } 5772 if (session->trace_event_repipe) { 5773 int retw = write(STDOUT_FILENO, buf, padding); 5774 if (retw <= 0 || retw != padding) { 5775 pr_err("%s: repiping tracing data padding", __func__); 5776 return -1; 5777 } 5778 } 5779 5780 if (size_read + padding != size) { 5781 pr_err("%s: tracing data size mismatch", __func__); 5782 return -1; 5783 } 5784 5785 evlist__prepare_tracepoint_events(session->evlist, session->tevent.pevent); 5786 5787 return size_read + padding; 5788 } 5789 #endif 5790 5791 int perf_event__process_build_id(const struct perf_tool *tool __maybe_unused, 5792 struct perf_session *session, 5793 union perf_event *event) 5794 { 5795 __event_process_build_id(&event->build_id, 5796 event->build_id.filename, 5797 session); 5798 return 0; 5799 } 5800