header.c 72 KB

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  1. #include "util.h"
  2. #include <sys/types.h>
  3. #include <byteswap.h>
  4. #include <unistd.h>
  5. #include <stdio.h>
  6. #include <stdlib.h>
  7. #include <linux/list.h>
  8. #include <linux/kernel.h>
  9. #include <linux/bitops.h>
  10. #include <sys/utsname.h>
  11. #include "evlist.h"
  12. #include "evsel.h"
  13. #include "header.h"
  14. #include "../perf.h"
  15. #include "trace-event.h"
  16. #include "session.h"
  17. #include "symbol.h"
  18. #include "debug.h"
  19. #include "cpumap.h"
  20. #include "pmu.h"
  21. #include "vdso.h"
  22. #include "strbuf.h"
  23. #include "build-id.h"
  24. #include "data.h"
  25. #include <api/fs/fs.h>
  26. #include "asm/bug.h"
  27. /*
  28. * magic2 = "PERFILE2"
  29. * must be a numerical value to let the endianness
  30. * determine the memory layout. That way we are able
  31. * to detect endianness when reading the perf.data file
  32. * back.
  33. *
  34. * we check for legacy (PERFFILE) format.
  35. */
  36. static const char *__perf_magic1 = "PERFFILE";
  37. static const u64 __perf_magic2 = 0x32454c4946524550ULL;
  38. static const u64 __perf_magic2_sw = 0x50455246494c4532ULL;
  39. #define PERF_MAGIC __perf_magic2
  40. const char perf_version_string[] = PERF_VERSION;
  41. struct perf_file_attr {
  42. struct perf_event_attr attr;
  43. struct perf_file_section ids;
  44. };
  45. void perf_header__set_feat(struct perf_header *header, int feat)
  46. {
  47. set_bit(feat, header->adds_features);
  48. }
  49. void perf_header__clear_feat(struct perf_header *header, int feat)
  50. {
  51. clear_bit(feat, header->adds_features);
  52. }
  53. bool perf_header__has_feat(const struct perf_header *header, int feat)
  54. {
  55. return test_bit(feat, header->adds_features);
  56. }
  57. static int do_write(int fd, const void *buf, size_t size)
  58. {
  59. while (size) {
  60. int ret = write(fd, buf, size);
  61. if (ret < 0)
  62. return -errno;
  63. size -= ret;
  64. buf += ret;
  65. }
  66. return 0;
  67. }
  68. int write_padded(int fd, const void *bf, size_t count, size_t count_aligned)
  69. {
  70. static const char zero_buf[NAME_ALIGN];
  71. int err = do_write(fd, bf, count);
  72. if (!err)
  73. err = do_write(fd, zero_buf, count_aligned - count);
  74. return err;
  75. }
  76. #define string_size(str) \
  77. (PERF_ALIGN((strlen(str) + 1), NAME_ALIGN) + sizeof(u32))
  78. static int do_write_string(int fd, const char *str)
  79. {
  80. u32 len, olen;
  81. int ret;
  82. olen = strlen(str) + 1;
  83. len = PERF_ALIGN(olen, NAME_ALIGN);
  84. /* write len, incl. \0 */
  85. ret = do_write(fd, &len, sizeof(len));
  86. if (ret < 0)
  87. return ret;
  88. return write_padded(fd, str, olen, len);
  89. }
  90. static char *do_read_string(int fd, struct perf_header *ph)
  91. {
  92. ssize_t sz, ret;
  93. u32 len;
  94. char *buf;
  95. sz = readn(fd, &len, sizeof(len));
  96. if (sz < (ssize_t)sizeof(len))
  97. return NULL;
  98. if (ph->needs_swap)
  99. len = bswap_32(len);
  100. buf = malloc(len);
  101. if (!buf)
  102. return NULL;
  103. ret = readn(fd, buf, len);
  104. if (ret == (ssize_t)len) {
  105. /*
  106. * strings are padded by zeroes
  107. * thus the actual strlen of buf
  108. * may be less than len
  109. */
  110. return buf;
  111. }
  112. free(buf);
  113. return NULL;
  114. }
  115. static int write_tracing_data(int fd, struct perf_header *h __maybe_unused,
  116. struct perf_evlist *evlist)
  117. {
  118. return read_tracing_data(fd, &evlist->entries);
  119. }
  120. static int write_build_id(int fd, struct perf_header *h,
  121. struct perf_evlist *evlist __maybe_unused)
  122. {
  123. struct perf_session *session;
  124. int err;
  125. session = container_of(h, struct perf_session, header);
  126. if (!perf_session__read_build_ids(session, true))
  127. return -1;
  128. err = perf_session__write_buildid_table(session, fd);
  129. if (err < 0) {
  130. pr_debug("failed to write buildid table\n");
  131. return err;
  132. }
  133. perf_session__cache_build_ids(session);
  134. return 0;
  135. }
  136. static int write_hostname(int fd, struct perf_header *h __maybe_unused,
  137. struct perf_evlist *evlist __maybe_unused)
  138. {
  139. struct utsname uts;
  140. int ret;
  141. ret = uname(&uts);
  142. if (ret < 0)
  143. return -1;
  144. return do_write_string(fd, uts.nodename);
  145. }
  146. static int write_osrelease(int fd, struct perf_header *h __maybe_unused,
  147. struct perf_evlist *evlist __maybe_unused)
  148. {
  149. struct utsname uts;
  150. int ret;
  151. ret = uname(&uts);
  152. if (ret < 0)
  153. return -1;
  154. return do_write_string(fd, uts.release);
  155. }
  156. static int write_arch(int fd, struct perf_header *h __maybe_unused,
  157. struct perf_evlist *evlist __maybe_unused)
  158. {
  159. struct utsname uts;
  160. int ret;
  161. ret = uname(&uts);
  162. if (ret < 0)
  163. return -1;
  164. return do_write_string(fd, uts.machine);
  165. }
  166. static int write_version(int fd, struct perf_header *h __maybe_unused,
  167. struct perf_evlist *evlist __maybe_unused)
  168. {
  169. return do_write_string(fd, perf_version_string);
  170. }
  171. static int __write_cpudesc(int fd, const char *cpuinfo_proc)
  172. {
  173. FILE *file;
  174. char *buf = NULL;
  175. char *s, *p;
  176. const char *search = cpuinfo_proc;
  177. size_t len = 0;
  178. int ret = -1;
  179. if (!search)
  180. return -1;
  181. file = fopen("/proc/cpuinfo", "r");
  182. if (!file)
  183. return -1;
  184. while (getline(&buf, &len, file) > 0) {
  185. ret = strncmp(buf, search, strlen(search));
  186. if (!ret)
  187. break;
  188. }
  189. if (ret) {
  190. ret = -1;
  191. goto done;
  192. }
  193. s = buf;
  194. p = strchr(buf, ':');
  195. if (p && *(p+1) == ' ' && *(p+2))
  196. s = p + 2;
  197. p = strchr(s, '\n');
  198. if (p)
  199. *p = '\0';
  200. /* squash extra space characters (branding string) */
  201. p = s;
  202. while (*p) {
  203. if (isspace(*p)) {
  204. char *r = p + 1;
  205. char *q = r;
  206. *p = ' ';
  207. while (*q && isspace(*q))
  208. q++;
  209. if (q != (p+1))
  210. while ((*r++ = *q++));
  211. }
  212. p++;
  213. }
  214. ret = do_write_string(fd, s);
  215. done:
  216. free(buf);
  217. fclose(file);
  218. return ret;
  219. }
  220. static int write_cpudesc(int fd, struct perf_header *h __maybe_unused,
  221. struct perf_evlist *evlist __maybe_unused)
  222. {
  223. #ifndef CPUINFO_PROC
  224. #define CPUINFO_PROC {"model name", }
  225. #endif
  226. const char *cpuinfo_procs[] = CPUINFO_PROC;
  227. unsigned int i;
  228. for (i = 0; i < ARRAY_SIZE(cpuinfo_procs); i++) {
  229. int ret;
  230. ret = __write_cpudesc(fd, cpuinfo_procs[i]);
  231. if (ret >= 0)
  232. return ret;
  233. }
  234. return -1;
  235. }
  236. static int write_nrcpus(int fd, struct perf_header *h __maybe_unused,
  237. struct perf_evlist *evlist __maybe_unused)
  238. {
  239. long nr;
  240. u32 nrc, nra;
  241. int ret;
  242. nr = sysconf(_SC_NPROCESSORS_CONF);
  243. if (nr < 0)
  244. return -1;
  245. nrc = (u32)(nr & UINT_MAX);
  246. nr = sysconf(_SC_NPROCESSORS_ONLN);
  247. if (nr < 0)
  248. return -1;
  249. nra = (u32)(nr & UINT_MAX);
  250. ret = do_write(fd, &nrc, sizeof(nrc));
  251. if (ret < 0)
  252. return ret;
  253. return do_write(fd, &nra, sizeof(nra));
  254. }
  255. static int write_event_desc(int fd, struct perf_header *h __maybe_unused,
  256. struct perf_evlist *evlist)
  257. {
  258. struct perf_evsel *evsel;
  259. u32 nre, nri, sz;
  260. int ret;
  261. nre = evlist->nr_entries;
  262. /*
  263. * write number of events
  264. */
  265. ret = do_write(fd, &nre, sizeof(nre));
  266. if (ret < 0)
  267. return ret;
  268. /*
  269. * size of perf_event_attr struct
  270. */
  271. sz = (u32)sizeof(evsel->attr);
  272. ret = do_write(fd, &sz, sizeof(sz));
  273. if (ret < 0)
  274. return ret;
  275. evlist__for_each_entry(evlist, evsel) {
  276. ret = do_write(fd, &evsel->attr, sz);
  277. if (ret < 0)
  278. return ret;
  279. /*
  280. * write number of unique id per event
  281. * there is one id per instance of an event
  282. *
  283. * copy into an nri to be independent of the
  284. * type of ids,
  285. */
  286. nri = evsel->ids;
  287. ret = do_write(fd, &nri, sizeof(nri));
  288. if (ret < 0)
  289. return ret;
  290. /*
  291. * write event string as passed on cmdline
  292. */
  293. ret = do_write_string(fd, perf_evsel__name(evsel));
  294. if (ret < 0)
  295. return ret;
  296. /*
  297. * write unique ids for this event
  298. */
  299. ret = do_write(fd, evsel->id, evsel->ids * sizeof(u64));
  300. if (ret < 0)
  301. return ret;
  302. }
  303. return 0;
  304. }
  305. static int write_cmdline(int fd, struct perf_header *h __maybe_unused,
  306. struct perf_evlist *evlist __maybe_unused)
  307. {
  308. char buf[MAXPATHLEN];
  309. char proc[32];
  310. u32 n;
  311. int i, ret;
  312. /*
  313. * actual atual path to perf binary
  314. */
  315. sprintf(proc, "/proc/%d/exe", getpid());
  316. ret = readlink(proc, buf, sizeof(buf));
  317. if (ret <= 0)
  318. return -1;
  319. /* readlink() does not add null termination */
  320. buf[ret] = '\0';
  321. /* account for binary path */
  322. n = perf_env.nr_cmdline + 1;
  323. ret = do_write(fd, &n, sizeof(n));
  324. if (ret < 0)
  325. return ret;
  326. ret = do_write_string(fd, buf);
  327. if (ret < 0)
  328. return ret;
  329. for (i = 0 ; i < perf_env.nr_cmdline; i++) {
  330. ret = do_write_string(fd, perf_env.cmdline_argv[i]);
  331. if (ret < 0)
  332. return ret;
  333. }
  334. return 0;
  335. }
  336. #define CORE_SIB_FMT \
  337. "/sys/devices/system/cpu/cpu%d/topology/core_siblings_list"
  338. #define THRD_SIB_FMT \
  339. "/sys/devices/system/cpu/cpu%d/topology/thread_siblings_list"
  340. struct cpu_topo {
  341. u32 cpu_nr;
  342. u32 core_sib;
  343. u32 thread_sib;
  344. char **core_siblings;
  345. char **thread_siblings;
  346. };
  347. static int build_cpu_topo(struct cpu_topo *tp, int cpu)
  348. {
  349. FILE *fp;
  350. char filename[MAXPATHLEN];
  351. char *buf = NULL, *p;
  352. size_t len = 0;
  353. ssize_t sret;
  354. u32 i = 0;
  355. int ret = -1;
  356. sprintf(filename, CORE_SIB_FMT, cpu);
  357. fp = fopen(filename, "r");
  358. if (!fp)
  359. goto try_threads;
  360. sret = getline(&buf, &len, fp);
  361. fclose(fp);
  362. if (sret <= 0)
  363. goto try_threads;
  364. p = strchr(buf, '\n');
  365. if (p)
  366. *p = '\0';
  367. for (i = 0; i < tp->core_sib; i++) {
  368. if (!strcmp(buf, tp->core_siblings[i]))
  369. break;
  370. }
  371. if (i == tp->core_sib) {
  372. tp->core_siblings[i] = buf;
  373. tp->core_sib++;
  374. buf = NULL;
  375. len = 0;
  376. }
  377. ret = 0;
  378. try_threads:
  379. sprintf(filename, THRD_SIB_FMT, cpu);
  380. fp = fopen(filename, "r");
  381. if (!fp)
  382. goto done;
  383. if (getline(&buf, &len, fp) <= 0)
  384. goto done;
  385. p = strchr(buf, '\n');
  386. if (p)
  387. *p = '\0';
  388. for (i = 0; i < tp->thread_sib; i++) {
  389. if (!strcmp(buf, tp->thread_siblings[i]))
  390. break;
  391. }
  392. if (i == tp->thread_sib) {
  393. tp->thread_siblings[i] = buf;
  394. tp->thread_sib++;
  395. buf = NULL;
  396. }
  397. ret = 0;
  398. done:
  399. if(fp)
  400. fclose(fp);
  401. free(buf);
  402. return ret;
  403. }
  404. static void free_cpu_topo(struct cpu_topo *tp)
  405. {
  406. u32 i;
  407. if (!tp)
  408. return;
  409. for (i = 0 ; i < tp->core_sib; i++)
  410. zfree(&tp->core_siblings[i]);
  411. for (i = 0 ; i < tp->thread_sib; i++)
  412. zfree(&tp->thread_siblings[i]);
  413. free(tp);
  414. }
  415. static struct cpu_topo *build_cpu_topology(void)
  416. {
  417. struct cpu_topo *tp;
  418. void *addr;
  419. u32 nr, i;
  420. size_t sz;
  421. long ncpus;
  422. int ret = -1;
  423. ncpus = sysconf(_SC_NPROCESSORS_CONF);
  424. if (ncpus < 0)
  425. return NULL;
  426. nr = (u32)(ncpus & UINT_MAX);
  427. sz = nr * sizeof(char *);
  428. addr = calloc(1, sizeof(*tp) + 2 * sz);
  429. if (!addr)
  430. return NULL;
  431. tp = addr;
  432. tp->cpu_nr = nr;
  433. addr += sizeof(*tp);
  434. tp->core_siblings = addr;
  435. addr += sz;
  436. tp->thread_siblings = addr;
  437. for (i = 0; i < nr; i++) {
  438. ret = build_cpu_topo(tp, i);
  439. if (ret < 0)
  440. break;
  441. }
  442. if (ret) {
  443. free_cpu_topo(tp);
  444. tp = NULL;
  445. }
  446. return tp;
  447. }
  448. static int write_cpu_topology(int fd, struct perf_header *h __maybe_unused,
  449. struct perf_evlist *evlist __maybe_unused)
  450. {
  451. struct cpu_topo *tp;
  452. u32 i;
  453. int ret, j;
  454. tp = build_cpu_topology();
  455. if (!tp)
  456. return -1;
  457. ret = do_write(fd, &tp->core_sib, sizeof(tp->core_sib));
  458. if (ret < 0)
  459. goto done;
  460. for (i = 0; i < tp->core_sib; i++) {
  461. ret = do_write_string(fd, tp->core_siblings[i]);
  462. if (ret < 0)
  463. goto done;
  464. }
  465. ret = do_write(fd, &tp->thread_sib, sizeof(tp->thread_sib));
  466. if (ret < 0)
  467. goto done;
  468. for (i = 0; i < tp->thread_sib; i++) {
  469. ret = do_write_string(fd, tp->thread_siblings[i]);
  470. if (ret < 0)
  471. break;
  472. }
  473. ret = perf_env__read_cpu_topology_map(&perf_env);
  474. if (ret < 0)
  475. goto done;
  476. for (j = 0; j < perf_env.nr_cpus_avail; j++) {
  477. ret = do_write(fd, &perf_env.cpu[j].core_id,
  478. sizeof(perf_env.cpu[j].core_id));
  479. if (ret < 0)
  480. return ret;
  481. ret = do_write(fd, &perf_env.cpu[j].socket_id,
  482. sizeof(perf_env.cpu[j].socket_id));
  483. if (ret < 0)
  484. return ret;
  485. }
  486. done:
  487. free_cpu_topo(tp);
  488. return ret;
  489. }
  490. static int write_total_mem(int fd, struct perf_header *h __maybe_unused,
  491. struct perf_evlist *evlist __maybe_unused)
  492. {
  493. char *buf = NULL;
  494. FILE *fp;
  495. size_t len = 0;
  496. int ret = -1, n;
  497. uint64_t mem;
  498. fp = fopen("/proc/meminfo", "r");
  499. if (!fp)
  500. return -1;
  501. while (getline(&buf, &len, fp) > 0) {
  502. ret = strncmp(buf, "MemTotal:", 9);
  503. if (!ret)
  504. break;
  505. }
  506. if (!ret) {
  507. n = sscanf(buf, "%*s %"PRIu64, &mem);
  508. if (n == 1)
  509. ret = do_write(fd, &mem, sizeof(mem));
  510. } else
  511. ret = -1;
  512. free(buf);
  513. fclose(fp);
  514. return ret;
  515. }
  516. static int write_topo_node(int fd, int node)
  517. {
  518. char str[MAXPATHLEN];
  519. char field[32];
  520. char *buf = NULL, *p;
  521. size_t len = 0;
  522. FILE *fp;
  523. u64 mem_total, mem_free, mem;
  524. int ret = -1;
  525. sprintf(str, "/sys/devices/system/node/node%d/meminfo", node);
  526. fp = fopen(str, "r");
  527. if (!fp)
  528. return -1;
  529. while (getline(&buf, &len, fp) > 0) {
  530. /* skip over invalid lines */
  531. if (!strchr(buf, ':'))
  532. continue;
  533. if (sscanf(buf, "%*s %*d %31s %"PRIu64, field, &mem) != 2)
  534. goto done;
  535. if (!strcmp(field, "MemTotal:"))
  536. mem_total = mem;
  537. if (!strcmp(field, "MemFree:"))
  538. mem_free = mem;
  539. }
  540. fclose(fp);
  541. fp = NULL;
  542. ret = do_write(fd, &mem_total, sizeof(u64));
  543. if (ret)
  544. goto done;
  545. ret = do_write(fd, &mem_free, sizeof(u64));
  546. if (ret)
  547. goto done;
  548. ret = -1;
  549. sprintf(str, "/sys/devices/system/node/node%d/cpulist", node);
  550. fp = fopen(str, "r");
  551. if (!fp)
  552. goto done;
  553. if (getline(&buf, &len, fp) <= 0)
  554. goto done;
  555. p = strchr(buf, '\n');
  556. if (p)
  557. *p = '\0';
  558. ret = do_write_string(fd, buf);
  559. done:
  560. free(buf);
  561. if (fp)
  562. fclose(fp);
  563. return ret;
  564. }
  565. static int write_numa_topology(int fd, struct perf_header *h __maybe_unused,
  566. struct perf_evlist *evlist __maybe_unused)
  567. {
  568. char *buf = NULL;
  569. size_t len = 0;
  570. FILE *fp;
  571. struct cpu_map *node_map = NULL;
  572. char *c;
  573. u32 nr, i, j;
  574. int ret = -1;
  575. fp = fopen("/sys/devices/system/node/online", "r");
  576. if (!fp)
  577. return -1;
  578. if (getline(&buf, &len, fp) <= 0)
  579. goto done;
  580. c = strchr(buf, '\n');
  581. if (c)
  582. *c = '\0';
  583. node_map = cpu_map__new(buf);
  584. if (!node_map)
  585. goto done;
  586. nr = (u32)node_map->nr;
  587. ret = do_write(fd, &nr, sizeof(nr));
  588. if (ret < 0)
  589. goto done;
  590. for (i = 0; i < nr; i++) {
  591. j = (u32)node_map->map[i];
  592. ret = do_write(fd, &j, sizeof(j));
  593. if (ret < 0)
  594. break;
  595. ret = write_topo_node(fd, i);
  596. if (ret < 0)
  597. break;
  598. }
  599. done:
  600. free(buf);
  601. fclose(fp);
  602. cpu_map__put(node_map);
  603. return ret;
  604. }
  605. /*
  606. * File format:
  607. *
  608. * struct pmu_mappings {
  609. * u32 pmu_num;
  610. * struct pmu_map {
  611. * u32 type;
  612. * char name[];
  613. * }[pmu_num];
  614. * };
  615. */
  616. static int write_pmu_mappings(int fd, struct perf_header *h __maybe_unused,
  617. struct perf_evlist *evlist __maybe_unused)
  618. {
  619. struct perf_pmu *pmu = NULL;
  620. off_t offset = lseek(fd, 0, SEEK_CUR);
  621. __u32 pmu_num = 0;
  622. int ret;
  623. /* write real pmu_num later */
  624. ret = do_write(fd, &pmu_num, sizeof(pmu_num));
  625. if (ret < 0)
  626. return ret;
  627. while ((pmu = perf_pmu__scan(pmu))) {
  628. if (!pmu->name)
  629. continue;
  630. pmu_num++;
  631. ret = do_write(fd, &pmu->type, sizeof(pmu->type));
  632. if (ret < 0)
  633. return ret;
  634. ret = do_write_string(fd, pmu->name);
  635. if (ret < 0)
  636. return ret;
  637. }
  638. if (pwrite(fd, &pmu_num, sizeof(pmu_num), offset) != sizeof(pmu_num)) {
  639. /* discard all */
  640. lseek(fd, offset, SEEK_SET);
  641. return -1;
  642. }
  643. return 0;
  644. }
  645. /*
  646. * File format:
  647. *
  648. * struct group_descs {
  649. * u32 nr_groups;
  650. * struct group_desc {
  651. * char name[];
  652. * u32 leader_idx;
  653. * u32 nr_members;
  654. * }[nr_groups];
  655. * };
  656. */
  657. static int write_group_desc(int fd, struct perf_header *h __maybe_unused,
  658. struct perf_evlist *evlist)
  659. {
  660. u32 nr_groups = evlist->nr_groups;
  661. struct perf_evsel *evsel;
  662. int ret;
  663. ret = do_write(fd, &nr_groups, sizeof(nr_groups));
  664. if (ret < 0)
  665. return ret;
  666. evlist__for_each_entry(evlist, evsel) {
  667. if (perf_evsel__is_group_leader(evsel) &&
  668. evsel->nr_members > 1) {
  669. const char *name = evsel->group_name ?: "{anon_group}";
  670. u32 leader_idx = evsel->idx;
  671. u32 nr_members = evsel->nr_members;
  672. ret = do_write_string(fd, name);
  673. if (ret < 0)
  674. return ret;
  675. ret = do_write(fd, &leader_idx, sizeof(leader_idx));
  676. if (ret < 0)
  677. return ret;
  678. ret = do_write(fd, &nr_members, sizeof(nr_members));
  679. if (ret < 0)
  680. return ret;
  681. }
  682. }
  683. return 0;
  684. }
  685. /*
  686. * default get_cpuid(): nothing gets recorded
  687. * actual implementation must be in arch/$(ARCH)/util/header.c
  688. */
  689. int __weak get_cpuid(char *buffer __maybe_unused, size_t sz __maybe_unused)
  690. {
  691. return -1;
  692. }
  693. static int write_cpuid(int fd, struct perf_header *h __maybe_unused,
  694. struct perf_evlist *evlist __maybe_unused)
  695. {
  696. char buffer[64];
  697. int ret;
  698. ret = get_cpuid(buffer, sizeof(buffer));
  699. if (!ret)
  700. goto write_it;
  701. return -1;
  702. write_it:
  703. return do_write_string(fd, buffer);
  704. }
  705. static int write_branch_stack(int fd __maybe_unused,
  706. struct perf_header *h __maybe_unused,
  707. struct perf_evlist *evlist __maybe_unused)
  708. {
  709. return 0;
  710. }
  711. static int write_auxtrace(int fd, struct perf_header *h,
  712. struct perf_evlist *evlist __maybe_unused)
  713. {
  714. struct perf_session *session;
  715. int err;
  716. session = container_of(h, struct perf_session, header);
  717. err = auxtrace_index__write(fd, &session->auxtrace_index);
  718. if (err < 0)
  719. pr_err("Failed to write auxtrace index\n");
  720. return err;
  721. }
  722. static int cpu_cache_level__sort(const void *a, const void *b)
  723. {
  724. struct cpu_cache_level *cache_a = (struct cpu_cache_level *)a;
  725. struct cpu_cache_level *cache_b = (struct cpu_cache_level *)b;
  726. return cache_a->level - cache_b->level;
  727. }
  728. static bool cpu_cache_level__cmp(struct cpu_cache_level *a, struct cpu_cache_level *b)
  729. {
  730. if (a->level != b->level)
  731. return false;
  732. if (a->line_size != b->line_size)
  733. return false;
  734. if (a->sets != b->sets)
  735. return false;
  736. if (a->ways != b->ways)
  737. return false;
  738. if (strcmp(a->type, b->type))
  739. return false;
  740. if (strcmp(a->size, b->size))
  741. return false;
  742. if (strcmp(a->map, b->map))
  743. return false;
  744. return true;
  745. }
  746. static int cpu_cache_level__read(struct cpu_cache_level *cache, u32 cpu, u16 level)
  747. {
  748. char path[PATH_MAX], file[PATH_MAX];
  749. struct stat st;
  750. size_t len;
  751. scnprintf(path, PATH_MAX, "devices/system/cpu/cpu%d/cache/index%d/", cpu, level);
  752. scnprintf(file, PATH_MAX, "%s/%s", sysfs__mountpoint(), path);
  753. if (stat(file, &st))
  754. return 1;
  755. scnprintf(file, PATH_MAX, "%s/level", path);
  756. if (sysfs__read_int(file, (int *) &cache->level))
  757. return -1;
  758. scnprintf(file, PATH_MAX, "%s/coherency_line_size", path);
  759. if (sysfs__read_int(file, (int *) &cache->line_size))
  760. return -1;
  761. scnprintf(file, PATH_MAX, "%s/number_of_sets", path);
  762. if (sysfs__read_int(file, (int *) &cache->sets))
  763. return -1;
  764. scnprintf(file, PATH_MAX, "%s/ways_of_associativity", path);
  765. if (sysfs__read_int(file, (int *) &cache->ways))
  766. return -1;
  767. scnprintf(file, PATH_MAX, "%s/type", path);
  768. if (sysfs__read_str(file, &cache->type, &len))
  769. return -1;
  770. cache->type[len] = 0;
  771. cache->type = rtrim(cache->type);
  772. scnprintf(file, PATH_MAX, "%s/size", path);
  773. if (sysfs__read_str(file, &cache->size, &len)) {
  774. free(cache->type);
  775. return -1;
  776. }
  777. cache->size[len] = 0;
  778. cache->size = rtrim(cache->size);
  779. scnprintf(file, PATH_MAX, "%s/shared_cpu_list", path);
  780. if (sysfs__read_str(file, &cache->map, &len)) {
  781. free(cache->map);
  782. free(cache->type);
  783. return -1;
  784. }
  785. cache->map[len] = 0;
  786. cache->map = rtrim(cache->map);
  787. return 0;
  788. }
  789. static void cpu_cache_level__fprintf(FILE *out, struct cpu_cache_level *c)
  790. {
  791. fprintf(out, "L%d %-15s %8s [%s]\n", c->level, c->type, c->size, c->map);
  792. }
  793. static int build_caches(struct cpu_cache_level caches[], u32 size, u32 *cntp)
  794. {
  795. u32 i, cnt = 0;
  796. long ncpus;
  797. u32 nr, cpu;
  798. u16 level;
  799. ncpus = sysconf(_SC_NPROCESSORS_CONF);
  800. if (ncpus < 0)
  801. return -1;
  802. nr = (u32)(ncpus & UINT_MAX);
  803. for (cpu = 0; cpu < nr; cpu++) {
  804. for (level = 0; level < 10; level++) {
  805. struct cpu_cache_level c;
  806. int err;
  807. err = cpu_cache_level__read(&c, cpu, level);
  808. if (err < 0)
  809. return err;
  810. if (err == 1)
  811. break;
  812. for (i = 0; i < cnt; i++) {
  813. if (cpu_cache_level__cmp(&c, &caches[i]))
  814. break;
  815. }
  816. if (i == cnt)
  817. caches[cnt++] = c;
  818. else
  819. cpu_cache_level__free(&c);
  820. if (WARN_ONCE(cnt == size, "way too many cpu caches.."))
  821. goto out;
  822. }
  823. }
  824. out:
  825. *cntp = cnt;
  826. return 0;
  827. }
  828. #define MAX_CACHES 2000
  829. static int write_cache(int fd, struct perf_header *h __maybe_unused,
  830. struct perf_evlist *evlist __maybe_unused)
  831. {
  832. struct cpu_cache_level caches[MAX_CACHES];
  833. u32 cnt = 0, i, version = 1;
  834. int ret;
  835. ret = build_caches(caches, MAX_CACHES, &cnt);
  836. if (ret)
  837. goto out;
  838. qsort(&caches, cnt, sizeof(struct cpu_cache_level), cpu_cache_level__sort);
  839. ret = do_write(fd, &version, sizeof(u32));
  840. if (ret < 0)
  841. goto out;
  842. ret = do_write(fd, &cnt, sizeof(u32));
  843. if (ret < 0)
  844. goto out;
  845. for (i = 0; i < cnt; i++) {
  846. struct cpu_cache_level *c = &caches[i];
  847. #define _W(v) \
  848. ret = do_write(fd, &c->v, sizeof(u32)); \
  849. if (ret < 0) \
  850. goto out;
  851. _W(level)
  852. _W(line_size)
  853. _W(sets)
  854. _W(ways)
  855. #undef _W
  856. #define _W(v) \
  857. ret = do_write_string(fd, (const char *) c->v); \
  858. if (ret < 0) \
  859. goto out;
  860. _W(type)
  861. _W(size)
  862. _W(map)
  863. #undef _W
  864. }
  865. out:
  866. for (i = 0; i < cnt; i++)
  867. cpu_cache_level__free(&caches[i]);
  868. return ret;
  869. }
  870. static int write_stat(int fd __maybe_unused,
  871. struct perf_header *h __maybe_unused,
  872. struct perf_evlist *evlist __maybe_unused)
  873. {
  874. return 0;
  875. }
  876. static void print_hostname(struct perf_header *ph, int fd __maybe_unused,
  877. FILE *fp)
  878. {
  879. fprintf(fp, "# hostname : %s\n", ph->env.hostname);
  880. }
  881. static void print_osrelease(struct perf_header *ph, int fd __maybe_unused,
  882. FILE *fp)
  883. {
  884. fprintf(fp, "# os release : %s\n", ph->env.os_release);
  885. }
  886. static void print_arch(struct perf_header *ph, int fd __maybe_unused, FILE *fp)
  887. {
  888. fprintf(fp, "# arch : %s\n", ph->env.arch);
  889. }
  890. static void print_cpudesc(struct perf_header *ph, int fd __maybe_unused,
  891. FILE *fp)
  892. {
  893. fprintf(fp, "# cpudesc : %s\n", ph->env.cpu_desc);
  894. }
  895. static void print_nrcpus(struct perf_header *ph, int fd __maybe_unused,
  896. FILE *fp)
  897. {
  898. fprintf(fp, "# nrcpus online : %u\n", ph->env.nr_cpus_online);
  899. fprintf(fp, "# nrcpus avail : %u\n", ph->env.nr_cpus_avail);
  900. }
  901. static void print_version(struct perf_header *ph, int fd __maybe_unused,
  902. FILE *fp)
  903. {
  904. fprintf(fp, "# perf version : %s\n", ph->env.version);
  905. }
  906. static void print_cmdline(struct perf_header *ph, int fd __maybe_unused,
  907. FILE *fp)
  908. {
  909. int nr, i;
  910. nr = ph->env.nr_cmdline;
  911. fprintf(fp, "# cmdline : ");
  912. for (i = 0; i < nr; i++)
  913. fprintf(fp, "%s ", ph->env.cmdline_argv[i]);
  914. fputc('\n', fp);
  915. }
  916. static void print_cpu_topology(struct perf_header *ph, int fd __maybe_unused,
  917. FILE *fp)
  918. {
  919. int nr, i;
  920. char *str;
  921. int cpu_nr = ph->env.nr_cpus_online;
  922. nr = ph->env.nr_sibling_cores;
  923. str = ph->env.sibling_cores;
  924. for (i = 0; i < nr; i++) {
  925. fprintf(fp, "# sibling cores : %s\n", str);
  926. str += strlen(str) + 1;
  927. }
  928. nr = ph->env.nr_sibling_threads;
  929. str = ph->env.sibling_threads;
  930. for (i = 0; i < nr; i++) {
  931. fprintf(fp, "# sibling threads : %s\n", str);
  932. str += strlen(str) + 1;
  933. }
  934. if (ph->env.cpu != NULL) {
  935. for (i = 0; i < cpu_nr; i++)
  936. fprintf(fp, "# CPU %d: Core ID %d, Socket ID %d\n", i,
  937. ph->env.cpu[i].core_id, ph->env.cpu[i].socket_id);
  938. } else
  939. fprintf(fp, "# Core ID and Socket ID information is not available\n");
  940. }
  941. static void free_event_desc(struct perf_evsel *events)
  942. {
  943. struct perf_evsel *evsel;
  944. if (!events)
  945. return;
  946. for (evsel = events; evsel->attr.size; evsel++) {
  947. zfree(&evsel->name);
  948. zfree(&evsel->id);
  949. }
  950. free(events);
  951. }
  952. static struct perf_evsel *
  953. read_event_desc(struct perf_header *ph, int fd)
  954. {
  955. struct perf_evsel *evsel, *events = NULL;
  956. u64 *id;
  957. void *buf = NULL;
  958. u32 nre, sz, nr, i, j;
  959. ssize_t ret;
  960. size_t msz;
  961. /* number of events */
  962. ret = readn(fd, &nre, sizeof(nre));
  963. if (ret != (ssize_t)sizeof(nre))
  964. goto error;
  965. if (ph->needs_swap)
  966. nre = bswap_32(nre);
  967. ret = readn(fd, &sz, sizeof(sz));
  968. if (ret != (ssize_t)sizeof(sz))
  969. goto error;
  970. if (ph->needs_swap)
  971. sz = bswap_32(sz);
  972. /* buffer to hold on file attr struct */
  973. buf = malloc(sz);
  974. if (!buf)
  975. goto error;
  976. /* the last event terminates with evsel->attr.size == 0: */
  977. events = calloc(nre + 1, sizeof(*events));
  978. if (!events)
  979. goto error;
  980. msz = sizeof(evsel->attr);
  981. if (sz < msz)
  982. msz = sz;
  983. for (i = 0, evsel = events; i < nre; evsel++, i++) {
  984. evsel->idx = i;
  985. /*
  986. * must read entire on-file attr struct to
  987. * sync up with layout.
  988. */
  989. ret = readn(fd, buf, sz);
  990. if (ret != (ssize_t)sz)
  991. goto error;
  992. if (ph->needs_swap)
  993. perf_event__attr_swap(buf);
  994. memcpy(&evsel->attr, buf, msz);
  995. ret = readn(fd, &nr, sizeof(nr));
  996. if (ret != (ssize_t)sizeof(nr))
  997. goto error;
  998. if (ph->needs_swap) {
  999. nr = bswap_32(nr);
  1000. evsel->needs_swap = true;
  1001. }
  1002. evsel->name = do_read_string(fd, ph);
  1003. if (!nr)
  1004. continue;
  1005. id = calloc(nr, sizeof(*id));
  1006. if (!id)
  1007. goto error;
  1008. evsel->ids = nr;
  1009. evsel->id = id;
  1010. for (j = 0 ; j < nr; j++) {
  1011. ret = readn(fd, id, sizeof(*id));
  1012. if (ret != (ssize_t)sizeof(*id))
  1013. goto error;
  1014. if (ph->needs_swap)
  1015. *id = bswap_64(*id);
  1016. id++;
  1017. }
  1018. }
  1019. out:
  1020. free(buf);
  1021. return events;
  1022. error:
  1023. free_event_desc(events);
  1024. events = NULL;
  1025. goto out;
  1026. }
  1027. static int __desc_attr__fprintf(FILE *fp, const char *name, const char *val,
  1028. void *priv __attribute__((unused)))
  1029. {
  1030. return fprintf(fp, ", %s = %s", name, val);
  1031. }
  1032. static void print_event_desc(struct perf_header *ph, int fd, FILE *fp)
  1033. {
  1034. struct perf_evsel *evsel, *events = read_event_desc(ph, fd);
  1035. u32 j;
  1036. u64 *id;
  1037. if (!events) {
  1038. fprintf(fp, "# event desc: not available or unable to read\n");
  1039. return;
  1040. }
  1041. for (evsel = events; evsel->attr.size; evsel++) {
  1042. fprintf(fp, "# event : name = %s, ", evsel->name);
  1043. if (evsel->ids) {
  1044. fprintf(fp, ", id = {");
  1045. for (j = 0, id = evsel->id; j < evsel->ids; j++, id++) {
  1046. if (j)
  1047. fputc(',', fp);
  1048. fprintf(fp, " %"PRIu64, *id);
  1049. }
  1050. fprintf(fp, " }");
  1051. }
  1052. perf_event_attr__fprintf(fp, &evsel->attr, __desc_attr__fprintf, NULL);
  1053. fputc('\n', fp);
  1054. }
  1055. free_event_desc(events);
  1056. }
  1057. static void print_total_mem(struct perf_header *ph, int fd __maybe_unused,
  1058. FILE *fp)
  1059. {
  1060. fprintf(fp, "# total memory : %Lu kB\n", ph->env.total_mem);
  1061. }
  1062. static void print_numa_topology(struct perf_header *ph, int fd __maybe_unused,
  1063. FILE *fp)
  1064. {
  1065. int i;
  1066. struct numa_node *n;
  1067. for (i = 0; i < ph->env.nr_numa_nodes; i++) {
  1068. n = &ph->env.numa_nodes[i];
  1069. fprintf(fp, "# node%u meminfo : total = %"PRIu64" kB,"
  1070. " free = %"PRIu64" kB\n",
  1071. n->node, n->mem_total, n->mem_free);
  1072. fprintf(fp, "# node%u cpu list : ", n->node);
  1073. cpu_map__fprintf(n->map, fp);
  1074. }
  1075. }
  1076. static void print_cpuid(struct perf_header *ph, int fd __maybe_unused, FILE *fp)
  1077. {
  1078. fprintf(fp, "# cpuid : %s\n", ph->env.cpuid);
  1079. }
  1080. static void print_branch_stack(struct perf_header *ph __maybe_unused,
  1081. int fd __maybe_unused, FILE *fp)
  1082. {
  1083. fprintf(fp, "# contains samples with branch stack\n");
  1084. }
  1085. static void print_auxtrace(struct perf_header *ph __maybe_unused,
  1086. int fd __maybe_unused, FILE *fp)
  1087. {
  1088. fprintf(fp, "# contains AUX area data (e.g. instruction trace)\n");
  1089. }
  1090. static void print_stat(struct perf_header *ph __maybe_unused,
  1091. int fd __maybe_unused, FILE *fp)
  1092. {
  1093. fprintf(fp, "# contains stat data\n");
  1094. }
  1095. static void print_cache(struct perf_header *ph __maybe_unused,
  1096. int fd __maybe_unused, FILE *fp __maybe_unused)
  1097. {
  1098. int i;
  1099. fprintf(fp, "# CPU cache info:\n");
  1100. for (i = 0; i < ph->env.caches_cnt; i++) {
  1101. fprintf(fp, "# ");
  1102. cpu_cache_level__fprintf(fp, &ph->env.caches[i]);
  1103. }
  1104. }
  1105. static void print_pmu_mappings(struct perf_header *ph, int fd __maybe_unused,
  1106. FILE *fp)
  1107. {
  1108. const char *delimiter = "# pmu mappings: ";
  1109. char *str, *tmp;
  1110. u32 pmu_num;
  1111. u32 type;
  1112. pmu_num = ph->env.nr_pmu_mappings;
  1113. if (!pmu_num) {
  1114. fprintf(fp, "# pmu mappings: not available\n");
  1115. return;
  1116. }
  1117. str = ph->env.pmu_mappings;
  1118. while (pmu_num) {
  1119. type = strtoul(str, &tmp, 0);
  1120. if (*tmp != ':')
  1121. goto error;
  1122. str = tmp + 1;
  1123. fprintf(fp, "%s%s = %" PRIu32, delimiter, str, type);
  1124. delimiter = ", ";
  1125. str += strlen(str) + 1;
  1126. pmu_num--;
  1127. }
  1128. fprintf(fp, "\n");
  1129. if (!pmu_num)
  1130. return;
  1131. error:
  1132. fprintf(fp, "# pmu mappings: unable to read\n");
  1133. }
  1134. static void print_group_desc(struct perf_header *ph, int fd __maybe_unused,
  1135. FILE *fp)
  1136. {
  1137. struct perf_session *session;
  1138. struct perf_evsel *evsel;
  1139. u32 nr = 0;
  1140. session = container_of(ph, struct perf_session, header);
  1141. evlist__for_each_entry(session->evlist, evsel) {
  1142. if (perf_evsel__is_group_leader(evsel) &&
  1143. evsel->nr_members > 1) {
  1144. fprintf(fp, "# group: %s{%s", evsel->group_name ?: "",
  1145. perf_evsel__name(evsel));
  1146. nr = evsel->nr_members - 1;
  1147. } else if (nr) {
  1148. fprintf(fp, ",%s", perf_evsel__name(evsel));
  1149. if (--nr == 0)
  1150. fprintf(fp, "}\n");
  1151. }
  1152. }
  1153. }
  1154. static int __event_process_build_id(struct build_id_event *bev,
  1155. char *filename,
  1156. struct perf_session *session)
  1157. {
  1158. int err = -1;
  1159. struct machine *machine;
  1160. u16 cpumode;
  1161. struct dso *dso;
  1162. enum dso_kernel_type dso_type;
  1163. machine = perf_session__findnew_machine(session, bev->pid);
  1164. if (!machine)
  1165. goto out;
  1166. cpumode = bev->header.misc & PERF_RECORD_MISC_CPUMODE_MASK;
  1167. switch (cpumode) {
  1168. case PERF_RECORD_MISC_KERNEL:
  1169. dso_type = DSO_TYPE_KERNEL;
  1170. break;
  1171. case PERF_RECORD_MISC_GUEST_KERNEL:
  1172. dso_type = DSO_TYPE_GUEST_KERNEL;
  1173. break;
  1174. case PERF_RECORD_MISC_USER:
  1175. case PERF_RECORD_MISC_GUEST_USER:
  1176. dso_type = DSO_TYPE_USER;
  1177. break;
  1178. default:
  1179. goto out;
  1180. }
  1181. dso = machine__findnew_dso(machine, filename);
  1182. if (dso != NULL) {
  1183. char sbuild_id[SBUILD_ID_SIZE];
  1184. dso__set_build_id(dso, &bev->build_id);
  1185. if (!is_kernel_module(filename, cpumode))
  1186. dso->kernel = dso_type;
  1187. build_id__sprintf(dso->build_id, sizeof(dso->build_id),
  1188. sbuild_id);
  1189. pr_debug("build id event received for %s: %s\n",
  1190. dso->long_name, sbuild_id);
  1191. dso__put(dso);
  1192. }
  1193. err = 0;
  1194. out:
  1195. return err;
  1196. }
  1197. static int perf_header__read_build_ids_abi_quirk(struct perf_header *header,
  1198. int input, u64 offset, u64 size)
  1199. {
  1200. struct perf_session *session = container_of(header, struct perf_session, header);
  1201. struct {
  1202. struct perf_event_header header;
  1203. u8 build_id[PERF_ALIGN(BUILD_ID_SIZE, sizeof(u64))];
  1204. char filename[0];
  1205. } old_bev;
  1206. struct build_id_event bev;
  1207. char filename[PATH_MAX];
  1208. u64 limit = offset + size;
  1209. while (offset < limit) {
  1210. ssize_t len;
  1211. if (readn(input, &old_bev, sizeof(old_bev)) != sizeof(old_bev))
  1212. return -1;
  1213. if (header->needs_swap)
  1214. perf_event_header__bswap(&old_bev.header);
  1215. len = old_bev.header.size - sizeof(old_bev);
  1216. if (readn(input, filename, len) != len)
  1217. return -1;
  1218. bev.header = old_bev.header;
  1219. /*
  1220. * As the pid is the missing value, we need to fill
  1221. * it properly. The header.misc value give us nice hint.
  1222. */
  1223. bev.pid = HOST_KERNEL_ID;
  1224. if (bev.header.misc == PERF_RECORD_MISC_GUEST_USER ||
  1225. bev.header.misc == PERF_RECORD_MISC_GUEST_KERNEL)
  1226. bev.pid = DEFAULT_GUEST_KERNEL_ID;
  1227. memcpy(bev.build_id, old_bev.build_id, sizeof(bev.build_id));
  1228. __event_process_build_id(&bev, filename, session);
  1229. offset += bev.header.size;
  1230. }
  1231. return 0;
  1232. }
  1233. static int perf_header__read_build_ids(struct perf_header *header,
  1234. int input, u64 offset, u64 size)
  1235. {
  1236. struct perf_session *session = container_of(header, struct perf_session, header);
  1237. struct build_id_event bev;
  1238. char filename[PATH_MAX];
  1239. u64 limit = offset + size, orig_offset = offset;
  1240. int err = -1;
  1241. while (offset < limit) {
  1242. ssize_t len;
  1243. if (readn(input, &bev, sizeof(bev)) != sizeof(bev))
  1244. goto out;
  1245. if (header->needs_swap)
  1246. perf_event_header__bswap(&bev.header);
  1247. len = bev.header.size - sizeof(bev);
  1248. if (readn(input, filename, len) != len)
  1249. goto out;
  1250. /*
  1251. * The a1645ce1 changeset:
  1252. *
  1253. * "perf: 'perf kvm' tool for monitoring guest performance from host"
  1254. *
  1255. * Added a field to struct build_id_event that broke the file
  1256. * format.
  1257. *
  1258. * Since the kernel build-id is the first entry, process the
  1259. * table using the old format if the well known
  1260. * '[kernel.kallsyms]' string for the kernel build-id has the
  1261. * first 4 characters chopped off (where the pid_t sits).
  1262. */
  1263. if (memcmp(filename, "nel.kallsyms]", 13) == 0) {
  1264. if (lseek(input, orig_offset, SEEK_SET) == (off_t)-1)
  1265. return -1;
  1266. return perf_header__read_build_ids_abi_quirk(header, input, offset, size);
  1267. }
  1268. __event_process_build_id(&bev, filename, session);
  1269. offset += bev.header.size;
  1270. }
  1271. err = 0;
  1272. out:
  1273. return err;
  1274. }
  1275. static int process_tracing_data(struct perf_file_section *section __maybe_unused,
  1276. struct perf_header *ph __maybe_unused,
  1277. int fd, void *data)
  1278. {
  1279. ssize_t ret = trace_report(fd, data, false);
  1280. return ret < 0 ? -1 : 0;
  1281. }
  1282. static int process_build_id(struct perf_file_section *section,
  1283. struct perf_header *ph, int fd,
  1284. void *data __maybe_unused)
  1285. {
  1286. if (perf_header__read_build_ids(ph, fd, section->offset, section->size))
  1287. pr_debug("Failed to read buildids, continuing...\n");
  1288. return 0;
  1289. }
  1290. static int process_hostname(struct perf_file_section *section __maybe_unused,
  1291. struct perf_header *ph, int fd,
  1292. void *data __maybe_unused)
  1293. {
  1294. ph->env.hostname = do_read_string(fd, ph);
  1295. return ph->env.hostname ? 0 : -ENOMEM;
  1296. }
  1297. static int process_osrelease(struct perf_file_section *section __maybe_unused,
  1298. struct perf_header *ph, int fd,
  1299. void *data __maybe_unused)
  1300. {
  1301. ph->env.os_release = do_read_string(fd, ph);
  1302. return ph->env.os_release ? 0 : -ENOMEM;
  1303. }
  1304. static int process_version(struct perf_file_section *section __maybe_unused,
  1305. struct perf_header *ph, int fd,
  1306. void *data __maybe_unused)
  1307. {
  1308. ph->env.version = do_read_string(fd, ph);
  1309. return ph->env.version ? 0 : -ENOMEM;
  1310. }
  1311. static int process_arch(struct perf_file_section *section __maybe_unused,
  1312. struct perf_header *ph, int fd,
  1313. void *data __maybe_unused)
  1314. {
  1315. ph->env.arch = do_read_string(fd, ph);
  1316. return ph->env.arch ? 0 : -ENOMEM;
  1317. }
  1318. static int process_nrcpus(struct perf_file_section *section __maybe_unused,
  1319. struct perf_header *ph, int fd,
  1320. void *data __maybe_unused)
  1321. {
  1322. ssize_t ret;
  1323. u32 nr;
  1324. ret = readn(fd, &nr, sizeof(nr));
  1325. if (ret != sizeof(nr))
  1326. return -1;
  1327. if (ph->needs_swap)
  1328. nr = bswap_32(nr);
  1329. ph->env.nr_cpus_avail = nr;
  1330. ret = readn(fd, &nr, sizeof(nr));
  1331. if (ret != sizeof(nr))
  1332. return -1;
  1333. if (ph->needs_swap)
  1334. nr = bswap_32(nr);
  1335. ph->env.nr_cpus_online = nr;
  1336. return 0;
  1337. }
  1338. static int process_cpudesc(struct perf_file_section *section __maybe_unused,
  1339. struct perf_header *ph, int fd,
  1340. void *data __maybe_unused)
  1341. {
  1342. ph->env.cpu_desc = do_read_string(fd, ph);
  1343. return ph->env.cpu_desc ? 0 : -ENOMEM;
  1344. }
  1345. static int process_cpuid(struct perf_file_section *section __maybe_unused,
  1346. struct perf_header *ph, int fd,
  1347. void *data __maybe_unused)
  1348. {
  1349. ph->env.cpuid = do_read_string(fd, ph);
  1350. return ph->env.cpuid ? 0 : -ENOMEM;
  1351. }
  1352. static int process_total_mem(struct perf_file_section *section __maybe_unused,
  1353. struct perf_header *ph, int fd,
  1354. void *data __maybe_unused)
  1355. {
  1356. uint64_t mem;
  1357. ssize_t ret;
  1358. ret = readn(fd, &mem, sizeof(mem));
  1359. if (ret != sizeof(mem))
  1360. return -1;
  1361. if (ph->needs_swap)
  1362. mem = bswap_64(mem);
  1363. ph->env.total_mem = mem;
  1364. return 0;
  1365. }
  1366. static struct perf_evsel *
  1367. perf_evlist__find_by_index(struct perf_evlist *evlist, int idx)
  1368. {
  1369. struct perf_evsel *evsel;
  1370. evlist__for_each_entry(evlist, evsel) {
  1371. if (evsel->idx == idx)
  1372. return evsel;
  1373. }
  1374. return NULL;
  1375. }
  1376. static void
  1377. perf_evlist__set_event_name(struct perf_evlist *evlist,
  1378. struct perf_evsel *event)
  1379. {
  1380. struct perf_evsel *evsel;
  1381. if (!event->name)
  1382. return;
  1383. evsel = perf_evlist__find_by_index(evlist, event->idx);
  1384. if (!evsel)
  1385. return;
  1386. if (evsel->name)
  1387. return;
  1388. evsel->name = strdup(event->name);
  1389. }
  1390. static int
  1391. process_event_desc(struct perf_file_section *section __maybe_unused,
  1392. struct perf_header *header, int fd,
  1393. void *data __maybe_unused)
  1394. {
  1395. struct perf_session *session;
  1396. struct perf_evsel *evsel, *events = read_event_desc(header, fd);
  1397. if (!events)
  1398. return 0;
  1399. session = container_of(header, struct perf_session, header);
  1400. for (evsel = events; evsel->attr.size; evsel++)
  1401. perf_evlist__set_event_name(session->evlist, evsel);
  1402. free_event_desc(events);
  1403. return 0;
  1404. }
  1405. static int process_cmdline(struct perf_file_section *section,
  1406. struct perf_header *ph, int fd,
  1407. void *data __maybe_unused)
  1408. {
  1409. ssize_t ret;
  1410. char *str, *cmdline = NULL, **argv = NULL;
  1411. u32 nr, i, len = 0;
  1412. ret = readn(fd, &nr, sizeof(nr));
  1413. if (ret != sizeof(nr))
  1414. return -1;
  1415. if (ph->needs_swap)
  1416. nr = bswap_32(nr);
  1417. ph->env.nr_cmdline = nr;
  1418. cmdline = zalloc(section->size + nr + 1);
  1419. if (!cmdline)
  1420. return -1;
  1421. argv = zalloc(sizeof(char *) * (nr + 1));
  1422. if (!argv)
  1423. goto error;
  1424. for (i = 0; i < nr; i++) {
  1425. str = do_read_string(fd, ph);
  1426. if (!str)
  1427. goto error;
  1428. argv[i] = cmdline + len;
  1429. memcpy(argv[i], str, strlen(str) + 1);
  1430. len += strlen(str) + 1;
  1431. free(str);
  1432. }
  1433. ph->env.cmdline = cmdline;
  1434. ph->env.cmdline_argv = (const char **) argv;
  1435. return 0;
  1436. error:
  1437. free(argv);
  1438. free(cmdline);
  1439. return -1;
  1440. }
  1441. static int process_cpu_topology(struct perf_file_section *section,
  1442. struct perf_header *ph, int fd,
  1443. void *data __maybe_unused)
  1444. {
  1445. ssize_t ret;
  1446. u32 nr, i;
  1447. char *str;
  1448. struct strbuf sb;
  1449. int cpu_nr = ph->env.nr_cpus_online;
  1450. u64 size = 0;
  1451. ph->env.cpu = calloc(cpu_nr, sizeof(*ph->env.cpu));
  1452. if (!ph->env.cpu)
  1453. return -1;
  1454. ret = readn(fd, &nr, sizeof(nr));
  1455. if (ret != sizeof(nr))
  1456. goto free_cpu;
  1457. if (ph->needs_swap)
  1458. nr = bswap_32(nr);
  1459. ph->env.nr_sibling_cores = nr;
  1460. size += sizeof(u32);
  1461. if (strbuf_init(&sb, 128) < 0)
  1462. goto free_cpu;
  1463. for (i = 0; i < nr; i++) {
  1464. str = do_read_string(fd, ph);
  1465. if (!str)
  1466. goto error;
  1467. /* include a NULL character at the end */
  1468. if (strbuf_add(&sb, str, strlen(str) + 1) < 0)
  1469. goto error;
  1470. size += string_size(str);
  1471. free(str);
  1472. }
  1473. ph->env.sibling_cores = strbuf_detach(&sb, NULL);
  1474. ret = readn(fd, &nr, sizeof(nr));
  1475. if (ret != sizeof(nr))
  1476. return -1;
  1477. if (ph->needs_swap)
  1478. nr = bswap_32(nr);
  1479. ph->env.nr_sibling_threads = nr;
  1480. size += sizeof(u32);
  1481. for (i = 0; i < nr; i++) {
  1482. str = do_read_string(fd, ph);
  1483. if (!str)
  1484. goto error;
  1485. /* include a NULL character at the end */
  1486. if (strbuf_add(&sb, str, strlen(str) + 1) < 0)
  1487. goto error;
  1488. size += string_size(str);
  1489. free(str);
  1490. }
  1491. ph->env.sibling_threads = strbuf_detach(&sb, NULL);
  1492. /*
  1493. * The header may be from old perf,
  1494. * which doesn't include core id and socket id information.
  1495. */
  1496. if (section->size <= size) {
  1497. zfree(&ph->env.cpu);
  1498. return 0;
  1499. }
  1500. for (i = 0; i < (u32)cpu_nr; i++) {
  1501. ret = readn(fd, &nr, sizeof(nr));
  1502. if (ret != sizeof(nr))
  1503. goto free_cpu;
  1504. if (ph->needs_swap)
  1505. nr = bswap_32(nr);
  1506. ph->env.cpu[i].core_id = nr;
  1507. ret = readn(fd, &nr, sizeof(nr));
  1508. if (ret != sizeof(nr))
  1509. goto free_cpu;
  1510. if (ph->needs_swap)
  1511. nr = bswap_32(nr);
  1512. if (nr > (u32)cpu_nr) {
  1513. pr_debug("socket_id number is too big."
  1514. "You may need to upgrade the perf tool.\n");
  1515. goto free_cpu;
  1516. }
  1517. ph->env.cpu[i].socket_id = nr;
  1518. }
  1519. return 0;
  1520. error:
  1521. strbuf_release(&sb);
  1522. free_cpu:
  1523. zfree(&ph->env.cpu);
  1524. return -1;
  1525. }
  1526. static int process_numa_topology(struct perf_file_section *section __maybe_unused,
  1527. struct perf_header *ph, int fd,
  1528. void *data __maybe_unused)
  1529. {
  1530. struct numa_node *nodes, *n;
  1531. ssize_t ret;
  1532. u32 nr, i;
  1533. char *str;
  1534. /* nr nodes */
  1535. ret = readn(fd, &nr, sizeof(nr));
  1536. if (ret != sizeof(nr))
  1537. return -1;
  1538. if (ph->needs_swap)
  1539. nr = bswap_32(nr);
  1540. nodes = zalloc(sizeof(*nodes) * nr);
  1541. if (!nodes)
  1542. return -ENOMEM;
  1543. for (i = 0; i < nr; i++) {
  1544. n = &nodes[i];
  1545. /* node number */
  1546. ret = readn(fd, &n->node, sizeof(u32));
  1547. if (ret != sizeof(n->node))
  1548. goto error;
  1549. ret = readn(fd, &n->mem_total, sizeof(u64));
  1550. if (ret != sizeof(u64))
  1551. goto error;
  1552. ret = readn(fd, &n->mem_free, sizeof(u64));
  1553. if (ret != sizeof(u64))
  1554. goto error;
  1555. if (ph->needs_swap) {
  1556. n->node = bswap_32(n->node);
  1557. n->mem_total = bswap_64(n->mem_total);
  1558. n->mem_free = bswap_64(n->mem_free);
  1559. }
  1560. str = do_read_string(fd, ph);
  1561. if (!str)
  1562. goto error;
  1563. n->map = cpu_map__new(str);
  1564. if (!n->map)
  1565. goto error;
  1566. free(str);
  1567. }
  1568. ph->env.nr_numa_nodes = nr;
  1569. ph->env.numa_nodes = nodes;
  1570. return 0;
  1571. error:
  1572. free(nodes);
  1573. return -1;
  1574. }
  1575. static int process_pmu_mappings(struct perf_file_section *section __maybe_unused,
  1576. struct perf_header *ph, int fd,
  1577. void *data __maybe_unused)
  1578. {
  1579. ssize_t ret;
  1580. char *name;
  1581. u32 pmu_num;
  1582. u32 type;
  1583. struct strbuf sb;
  1584. ret = readn(fd, &pmu_num, sizeof(pmu_num));
  1585. if (ret != sizeof(pmu_num))
  1586. return -1;
  1587. if (ph->needs_swap)
  1588. pmu_num = bswap_32(pmu_num);
  1589. if (!pmu_num) {
  1590. pr_debug("pmu mappings not available\n");
  1591. return 0;
  1592. }
  1593. ph->env.nr_pmu_mappings = pmu_num;
  1594. if (strbuf_init(&sb, 128) < 0)
  1595. return -1;
  1596. while (pmu_num) {
  1597. if (readn(fd, &type, sizeof(type)) != sizeof(type))
  1598. goto error;
  1599. if (ph->needs_swap)
  1600. type = bswap_32(type);
  1601. name = do_read_string(fd, ph);
  1602. if (!name)
  1603. goto error;
  1604. if (strbuf_addf(&sb, "%u:%s", type, name) < 0)
  1605. goto error;
  1606. /* include a NULL character at the end */
  1607. if (strbuf_add(&sb, "", 1) < 0)
  1608. goto error;
  1609. if (!strcmp(name, "msr"))
  1610. ph->env.msr_pmu_type = type;
  1611. free(name);
  1612. pmu_num--;
  1613. }
  1614. ph->env.pmu_mappings = strbuf_detach(&sb, NULL);
  1615. return 0;
  1616. error:
  1617. strbuf_release(&sb);
  1618. return -1;
  1619. }
  1620. static int process_group_desc(struct perf_file_section *section __maybe_unused,
  1621. struct perf_header *ph, int fd,
  1622. void *data __maybe_unused)
  1623. {
  1624. size_t ret = -1;
  1625. u32 i, nr, nr_groups;
  1626. struct perf_session *session;
  1627. struct perf_evsel *evsel, *leader = NULL;
  1628. struct group_desc {
  1629. char *name;
  1630. u32 leader_idx;
  1631. u32 nr_members;
  1632. } *desc;
  1633. if (readn(fd, &nr_groups, sizeof(nr_groups)) != sizeof(nr_groups))
  1634. return -1;
  1635. if (ph->needs_swap)
  1636. nr_groups = bswap_32(nr_groups);
  1637. ph->env.nr_groups = nr_groups;
  1638. if (!nr_groups) {
  1639. pr_debug("group desc not available\n");
  1640. return 0;
  1641. }
  1642. desc = calloc(nr_groups, sizeof(*desc));
  1643. if (!desc)
  1644. return -1;
  1645. for (i = 0; i < nr_groups; i++) {
  1646. desc[i].name = do_read_string(fd, ph);
  1647. if (!desc[i].name)
  1648. goto out_free;
  1649. if (readn(fd, &desc[i].leader_idx, sizeof(u32)) != sizeof(u32))
  1650. goto out_free;
  1651. if (readn(fd, &desc[i].nr_members, sizeof(u32)) != sizeof(u32))
  1652. goto out_free;
  1653. if (ph->needs_swap) {
  1654. desc[i].leader_idx = bswap_32(desc[i].leader_idx);
  1655. desc[i].nr_members = bswap_32(desc[i].nr_members);
  1656. }
  1657. }
  1658. /*
  1659. * Rebuild group relationship based on the group_desc
  1660. */
  1661. session = container_of(ph, struct perf_session, header);
  1662. session->evlist->nr_groups = nr_groups;
  1663. i = nr = 0;
  1664. evlist__for_each_entry(session->evlist, evsel) {
  1665. if (evsel->idx == (int) desc[i].leader_idx) {
  1666. evsel->leader = evsel;
  1667. /* {anon_group} is a dummy name */
  1668. if (strcmp(desc[i].name, "{anon_group}")) {
  1669. evsel->group_name = desc[i].name;
  1670. desc[i].name = NULL;
  1671. }
  1672. evsel->nr_members = desc[i].nr_members;
  1673. if (i >= nr_groups || nr > 0) {
  1674. pr_debug("invalid group desc\n");
  1675. goto out_free;
  1676. }
  1677. leader = evsel;
  1678. nr = evsel->nr_members - 1;
  1679. i++;
  1680. } else if (nr) {
  1681. /* This is a group member */
  1682. evsel->leader = leader;
  1683. nr--;
  1684. }
  1685. }
  1686. if (i != nr_groups || nr != 0) {
  1687. pr_debug("invalid group desc\n");
  1688. goto out_free;
  1689. }
  1690. ret = 0;
  1691. out_free:
  1692. for (i = 0; i < nr_groups; i++)
  1693. zfree(&desc[i].name);
  1694. free(desc);
  1695. return ret;
  1696. }
  1697. static int process_auxtrace(struct perf_file_section *section,
  1698. struct perf_header *ph, int fd,
  1699. void *data __maybe_unused)
  1700. {
  1701. struct perf_session *session;
  1702. int err;
  1703. session = container_of(ph, struct perf_session, header);
  1704. err = auxtrace_index__process(fd, section->size, session,
  1705. ph->needs_swap);
  1706. if (err < 0)
  1707. pr_err("Failed to process auxtrace index\n");
  1708. return err;
  1709. }
  1710. static int process_cache(struct perf_file_section *section __maybe_unused,
  1711. struct perf_header *ph __maybe_unused, int fd __maybe_unused,
  1712. void *data __maybe_unused)
  1713. {
  1714. struct cpu_cache_level *caches;
  1715. u32 cnt, i, version;
  1716. if (readn(fd, &version, sizeof(version)) != sizeof(version))
  1717. return -1;
  1718. if (ph->needs_swap)
  1719. version = bswap_32(version);
  1720. if (version != 1)
  1721. return -1;
  1722. if (readn(fd, &cnt, sizeof(cnt)) != sizeof(cnt))
  1723. return -1;
  1724. if (ph->needs_swap)
  1725. cnt = bswap_32(cnt);
  1726. caches = zalloc(sizeof(*caches) * cnt);
  1727. if (!caches)
  1728. return -1;
  1729. for (i = 0; i < cnt; i++) {
  1730. struct cpu_cache_level c;
  1731. #define _R(v) \
  1732. if (readn(fd, &c.v, sizeof(u32)) != sizeof(u32))\
  1733. goto out_free_caches; \
  1734. if (ph->needs_swap) \
  1735. c.v = bswap_32(c.v); \
  1736. _R(level)
  1737. _R(line_size)
  1738. _R(sets)
  1739. _R(ways)
  1740. #undef _R
  1741. #define _R(v) \
  1742. c.v = do_read_string(fd, ph); \
  1743. if (!c.v) \
  1744. goto out_free_caches;
  1745. _R(type)
  1746. _R(size)
  1747. _R(map)
  1748. #undef _R
  1749. caches[i] = c;
  1750. }
  1751. ph->env.caches = caches;
  1752. ph->env.caches_cnt = cnt;
  1753. return 0;
  1754. out_free_caches:
  1755. free(caches);
  1756. return -1;
  1757. }
  1758. struct feature_ops {
  1759. int (*write)(int fd, struct perf_header *h, struct perf_evlist *evlist);
  1760. void (*print)(struct perf_header *h, int fd, FILE *fp);
  1761. int (*process)(struct perf_file_section *section,
  1762. struct perf_header *h, int fd, void *data);
  1763. const char *name;
  1764. bool full_only;
  1765. };
  1766. #define FEAT_OPA(n, func) \
  1767. [n] = { .name = #n, .write = write_##func, .print = print_##func }
  1768. #define FEAT_OPP(n, func) \
  1769. [n] = { .name = #n, .write = write_##func, .print = print_##func, \
  1770. .process = process_##func }
  1771. #define FEAT_OPF(n, func) \
  1772. [n] = { .name = #n, .write = write_##func, .print = print_##func, \
  1773. .process = process_##func, .full_only = true }
  1774. /* feature_ops not implemented: */
  1775. #define print_tracing_data NULL
  1776. #define print_build_id NULL
  1777. static const struct feature_ops feat_ops[HEADER_LAST_FEATURE] = {
  1778. FEAT_OPP(HEADER_TRACING_DATA, tracing_data),
  1779. FEAT_OPP(HEADER_BUILD_ID, build_id),
  1780. FEAT_OPP(HEADER_HOSTNAME, hostname),
  1781. FEAT_OPP(HEADER_OSRELEASE, osrelease),
  1782. FEAT_OPP(HEADER_VERSION, version),
  1783. FEAT_OPP(HEADER_ARCH, arch),
  1784. FEAT_OPP(HEADER_NRCPUS, nrcpus),
  1785. FEAT_OPP(HEADER_CPUDESC, cpudesc),
  1786. FEAT_OPP(HEADER_CPUID, cpuid),
  1787. FEAT_OPP(HEADER_TOTAL_MEM, total_mem),
  1788. FEAT_OPP(HEADER_EVENT_DESC, event_desc),
  1789. FEAT_OPP(HEADER_CMDLINE, cmdline),
  1790. FEAT_OPF(HEADER_CPU_TOPOLOGY, cpu_topology),
  1791. FEAT_OPF(HEADER_NUMA_TOPOLOGY, numa_topology),
  1792. FEAT_OPA(HEADER_BRANCH_STACK, branch_stack),
  1793. FEAT_OPP(HEADER_PMU_MAPPINGS, pmu_mappings),
  1794. FEAT_OPP(HEADER_GROUP_DESC, group_desc),
  1795. FEAT_OPP(HEADER_AUXTRACE, auxtrace),
  1796. FEAT_OPA(HEADER_STAT, stat),
  1797. FEAT_OPF(HEADER_CACHE, cache),
  1798. };
  1799. struct header_print_data {
  1800. FILE *fp;
  1801. bool full; /* extended list of headers */
  1802. };
  1803. static int perf_file_section__fprintf_info(struct perf_file_section *section,
  1804. struct perf_header *ph,
  1805. int feat, int fd, void *data)
  1806. {
  1807. struct header_print_data *hd = data;
  1808. if (lseek(fd, section->offset, SEEK_SET) == (off_t)-1) {
  1809. pr_debug("Failed to lseek to %" PRIu64 " offset for feature "
  1810. "%d, continuing...\n", section->offset, feat);
  1811. return 0;
  1812. }
  1813. if (feat >= HEADER_LAST_FEATURE) {
  1814. pr_warning("unknown feature %d\n", feat);
  1815. return 0;
  1816. }
  1817. if (!feat_ops[feat].print)
  1818. return 0;
  1819. if (!feat_ops[feat].full_only || hd->full)
  1820. feat_ops[feat].print(ph, fd, hd->fp);
  1821. else
  1822. fprintf(hd->fp, "# %s info available, use -I to display\n",
  1823. feat_ops[feat].name);
  1824. return 0;
  1825. }
  1826. int perf_header__fprintf_info(struct perf_session *session, FILE *fp, bool full)
  1827. {
  1828. struct header_print_data hd;
  1829. struct perf_header *header = &session->header;
  1830. int fd = perf_data_file__fd(session->file);
  1831. struct stat st;
  1832. int ret, bit;
  1833. hd.fp = fp;
  1834. hd.full = full;
  1835. ret = fstat(fd, &st);
  1836. if (ret == -1)
  1837. return -1;
  1838. fprintf(fp, "# captured on: %s", ctime(&st.st_ctime));
  1839. perf_header__process_sections(header, fd, &hd,
  1840. perf_file_section__fprintf_info);
  1841. fprintf(fp, "# missing features: ");
  1842. for_each_clear_bit(bit, header->adds_features, HEADER_LAST_FEATURE) {
  1843. if (bit)
  1844. fprintf(fp, "%s ", feat_ops[bit].name);
  1845. }
  1846. fprintf(fp, "\n");
  1847. return 0;
  1848. }
  1849. static int do_write_feat(int fd, struct perf_header *h, int type,
  1850. struct perf_file_section **p,
  1851. struct perf_evlist *evlist)
  1852. {
  1853. int err;
  1854. int ret = 0;
  1855. if (perf_header__has_feat(h, type)) {
  1856. if (!feat_ops[type].write)
  1857. return -1;
  1858. (*p)->offset = lseek(fd, 0, SEEK_CUR);
  1859. err = feat_ops[type].write(fd, h, evlist);
  1860. if (err < 0) {
  1861. pr_debug("failed to write feature %s\n", feat_ops[type].name);
  1862. /* undo anything written */
  1863. lseek(fd, (*p)->offset, SEEK_SET);
  1864. return -1;
  1865. }
  1866. (*p)->size = lseek(fd, 0, SEEK_CUR) - (*p)->offset;
  1867. (*p)++;
  1868. }
  1869. return ret;
  1870. }
  1871. static int perf_header__adds_write(struct perf_header *header,
  1872. struct perf_evlist *evlist, int fd)
  1873. {
  1874. int nr_sections;
  1875. struct perf_file_section *feat_sec, *p;
  1876. int sec_size;
  1877. u64 sec_start;
  1878. int feat;
  1879. int err;
  1880. nr_sections = bitmap_weight(header->adds_features, HEADER_FEAT_BITS);
  1881. if (!nr_sections)
  1882. return 0;
  1883. feat_sec = p = calloc(nr_sections, sizeof(*feat_sec));
  1884. if (feat_sec == NULL)
  1885. return -ENOMEM;
  1886. sec_size = sizeof(*feat_sec) * nr_sections;
  1887. sec_start = header->feat_offset;
  1888. lseek(fd, sec_start + sec_size, SEEK_SET);
  1889. for_each_set_bit(feat, header->adds_features, HEADER_FEAT_BITS) {
  1890. if (do_write_feat(fd, header, feat, &p, evlist))
  1891. perf_header__clear_feat(header, feat);
  1892. }
  1893. lseek(fd, sec_start, SEEK_SET);
  1894. /*
  1895. * may write more than needed due to dropped feature, but
  1896. * this is okay, reader will skip the mising entries
  1897. */
  1898. err = do_write(fd, feat_sec, sec_size);
  1899. if (err < 0)
  1900. pr_debug("failed to write feature section\n");
  1901. free(feat_sec);
  1902. return err;
  1903. }
  1904. int perf_header__write_pipe(int fd)
  1905. {
  1906. struct perf_pipe_file_header f_header;
  1907. int err;
  1908. f_header = (struct perf_pipe_file_header){
  1909. .magic = PERF_MAGIC,
  1910. .size = sizeof(f_header),
  1911. };
  1912. err = do_write(fd, &f_header, sizeof(f_header));
  1913. if (err < 0) {
  1914. pr_debug("failed to write perf pipe header\n");
  1915. return err;
  1916. }
  1917. return 0;
  1918. }
  1919. int perf_session__write_header(struct perf_session *session,
  1920. struct perf_evlist *evlist,
  1921. int fd, bool at_exit)
  1922. {
  1923. struct perf_file_header f_header;
  1924. struct perf_file_attr f_attr;
  1925. struct perf_header *header = &session->header;
  1926. struct perf_evsel *evsel;
  1927. u64 attr_offset;
  1928. int err;
  1929. lseek(fd, sizeof(f_header), SEEK_SET);
  1930. evlist__for_each_entry(session->evlist, evsel) {
  1931. evsel->id_offset = lseek(fd, 0, SEEK_CUR);
  1932. err = do_write(fd, evsel->id, evsel->ids * sizeof(u64));
  1933. if (err < 0) {
  1934. pr_debug("failed to write perf header\n");
  1935. return err;
  1936. }
  1937. }
  1938. attr_offset = lseek(fd, 0, SEEK_CUR);
  1939. evlist__for_each_entry(evlist, evsel) {
  1940. f_attr = (struct perf_file_attr){
  1941. .attr = evsel->attr,
  1942. .ids = {
  1943. .offset = evsel->id_offset,
  1944. .size = evsel->ids * sizeof(u64),
  1945. }
  1946. };
  1947. err = do_write(fd, &f_attr, sizeof(f_attr));
  1948. if (err < 0) {
  1949. pr_debug("failed to write perf header attribute\n");
  1950. return err;
  1951. }
  1952. }
  1953. if (!header->data_offset)
  1954. header->data_offset = lseek(fd, 0, SEEK_CUR);
  1955. header->feat_offset = header->data_offset + header->data_size;
  1956. if (at_exit) {
  1957. err = perf_header__adds_write(header, evlist, fd);
  1958. if (err < 0)
  1959. return err;
  1960. }
  1961. f_header = (struct perf_file_header){
  1962. .magic = PERF_MAGIC,
  1963. .size = sizeof(f_header),
  1964. .attr_size = sizeof(f_attr),
  1965. .attrs = {
  1966. .offset = attr_offset,
  1967. .size = evlist->nr_entries * sizeof(f_attr),
  1968. },
  1969. .data = {
  1970. .offset = header->data_offset,
  1971. .size = header->data_size,
  1972. },
  1973. /* event_types is ignored, store zeros */
  1974. };
  1975. memcpy(&f_header.adds_features, &header->adds_features, sizeof(header->adds_features));
  1976. lseek(fd, 0, SEEK_SET);
  1977. err = do_write(fd, &f_header, sizeof(f_header));
  1978. if (err < 0) {
  1979. pr_debug("failed to write perf header\n");
  1980. return err;
  1981. }
  1982. lseek(fd, header->data_offset + header->data_size, SEEK_SET);
  1983. return 0;
  1984. }
  1985. static int perf_header__getbuffer64(struct perf_header *header,
  1986. int fd, void *buf, size_t size)
  1987. {
  1988. if (readn(fd, buf, size) <= 0)
  1989. return -1;
  1990. if (header->needs_swap)
  1991. mem_bswap_64(buf, size);
  1992. return 0;
  1993. }
  1994. int perf_header__process_sections(struct perf_header *header, int fd,
  1995. void *data,
  1996. int (*process)(struct perf_file_section *section,
  1997. struct perf_header *ph,
  1998. int feat, int fd, void *data))
  1999. {
  2000. struct perf_file_section *feat_sec, *sec;
  2001. int nr_sections;
  2002. int sec_size;
  2003. int feat;
  2004. int err;
  2005. nr_sections = bitmap_weight(header->adds_features, HEADER_FEAT_BITS);
  2006. if (!nr_sections)
  2007. return 0;
  2008. feat_sec = sec = calloc(nr_sections, sizeof(*feat_sec));
  2009. if (!feat_sec)
  2010. return -1;
  2011. sec_size = sizeof(*feat_sec) * nr_sections;
  2012. lseek(fd, header->feat_offset, SEEK_SET);
  2013. err = perf_header__getbuffer64(header, fd, feat_sec, sec_size);
  2014. if (err < 0)
  2015. goto out_free;
  2016. for_each_set_bit(feat, header->adds_features, HEADER_LAST_FEATURE) {
  2017. err = process(sec++, header, feat, fd, data);
  2018. if (err < 0)
  2019. goto out_free;
  2020. }
  2021. err = 0;
  2022. out_free:
  2023. free(feat_sec);
  2024. return err;
  2025. }
  2026. static const int attr_file_abi_sizes[] = {
  2027. [0] = PERF_ATTR_SIZE_VER0,
  2028. [1] = PERF_ATTR_SIZE_VER1,
  2029. [2] = PERF_ATTR_SIZE_VER2,
  2030. [3] = PERF_ATTR_SIZE_VER3,
  2031. [4] = PERF_ATTR_SIZE_VER4,
  2032. 0,
  2033. };
  2034. /*
  2035. * In the legacy file format, the magic number is not used to encode endianness.
  2036. * hdr_sz was used to encode endianness. But given that hdr_sz can vary based
  2037. * on ABI revisions, we need to try all combinations for all endianness to
  2038. * detect the endianness.
  2039. */
  2040. static int try_all_file_abis(uint64_t hdr_sz, struct perf_header *ph)
  2041. {
  2042. uint64_t ref_size, attr_size;
  2043. int i;
  2044. for (i = 0 ; attr_file_abi_sizes[i]; i++) {
  2045. ref_size = attr_file_abi_sizes[i]
  2046. + sizeof(struct perf_file_section);
  2047. if (hdr_sz != ref_size) {
  2048. attr_size = bswap_64(hdr_sz);
  2049. if (attr_size != ref_size)
  2050. continue;
  2051. ph->needs_swap = true;
  2052. }
  2053. pr_debug("ABI%d perf.data file detected, need_swap=%d\n",
  2054. i,
  2055. ph->needs_swap);
  2056. return 0;
  2057. }
  2058. /* could not determine endianness */
  2059. return -1;
  2060. }
  2061. #define PERF_PIPE_HDR_VER0 16
  2062. static const size_t attr_pipe_abi_sizes[] = {
  2063. [0] = PERF_PIPE_HDR_VER0,
  2064. 0,
  2065. };
  2066. /*
  2067. * In the legacy pipe format, there is an implicit assumption that endiannesss
  2068. * between host recording the samples, and host parsing the samples is the
  2069. * same. This is not always the case given that the pipe output may always be
  2070. * redirected into a file and analyzed on a different machine with possibly a
  2071. * different endianness and perf_event ABI revsions in the perf tool itself.
  2072. */
  2073. static int try_all_pipe_abis(uint64_t hdr_sz, struct perf_header *ph)
  2074. {
  2075. u64 attr_size;
  2076. int i;
  2077. for (i = 0 ; attr_pipe_abi_sizes[i]; i++) {
  2078. if (hdr_sz != attr_pipe_abi_sizes[i]) {
  2079. attr_size = bswap_64(hdr_sz);
  2080. if (attr_size != hdr_sz)
  2081. continue;
  2082. ph->needs_swap = true;
  2083. }
  2084. pr_debug("Pipe ABI%d perf.data file detected\n", i);
  2085. return 0;
  2086. }
  2087. return -1;
  2088. }
  2089. bool is_perf_magic(u64 magic)
  2090. {
  2091. if (!memcmp(&magic, __perf_magic1, sizeof(magic))
  2092. || magic == __perf_magic2
  2093. || magic == __perf_magic2_sw)
  2094. return true;
  2095. return false;
  2096. }
  2097. static int check_magic_endian(u64 magic, uint64_t hdr_sz,
  2098. bool is_pipe, struct perf_header *ph)
  2099. {
  2100. int ret;
  2101. /* check for legacy format */
  2102. ret = memcmp(&magic, __perf_magic1, sizeof(magic));
  2103. if (ret == 0) {
  2104. ph->version = PERF_HEADER_VERSION_1;
  2105. pr_debug("legacy perf.data format\n");
  2106. if (is_pipe)
  2107. return try_all_pipe_abis(hdr_sz, ph);
  2108. return try_all_file_abis(hdr_sz, ph);
  2109. }
  2110. /*
  2111. * the new magic number serves two purposes:
  2112. * - unique number to identify actual perf.data files
  2113. * - encode endianness of file
  2114. */
  2115. ph->version = PERF_HEADER_VERSION_2;
  2116. /* check magic number with one endianness */
  2117. if (magic == __perf_magic2)
  2118. return 0;
  2119. /* check magic number with opposite endianness */
  2120. if (magic != __perf_magic2_sw)
  2121. return -1;
  2122. ph->needs_swap = true;
  2123. return 0;
  2124. }
  2125. int perf_file_header__read(struct perf_file_header *header,
  2126. struct perf_header *ph, int fd)
  2127. {
  2128. ssize_t ret;
  2129. lseek(fd, 0, SEEK_SET);
  2130. ret = readn(fd, header, sizeof(*header));
  2131. if (ret <= 0)
  2132. return -1;
  2133. if (check_magic_endian(header->magic,
  2134. header->attr_size, false, ph) < 0) {
  2135. pr_debug("magic/endian check failed\n");
  2136. return -1;
  2137. }
  2138. if (ph->needs_swap) {
  2139. mem_bswap_64(header, offsetof(struct perf_file_header,
  2140. adds_features));
  2141. }
  2142. if (header->size != sizeof(*header)) {
  2143. /* Support the previous format */
  2144. if (header->size == offsetof(typeof(*header), adds_features))
  2145. bitmap_zero(header->adds_features, HEADER_FEAT_BITS);
  2146. else
  2147. return -1;
  2148. } else if (ph->needs_swap) {
  2149. /*
  2150. * feature bitmap is declared as an array of unsigned longs --
  2151. * not good since its size can differ between the host that
  2152. * generated the data file and the host analyzing the file.
  2153. *
  2154. * We need to handle endianness, but we don't know the size of
  2155. * the unsigned long where the file was generated. Take a best
  2156. * guess at determining it: try 64-bit swap first (ie., file
  2157. * created on a 64-bit host), and check if the hostname feature
  2158. * bit is set (this feature bit is forced on as of fbe96f2).
  2159. * If the bit is not, undo the 64-bit swap and try a 32-bit
  2160. * swap. If the hostname bit is still not set (e.g., older data
  2161. * file), punt and fallback to the original behavior --
  2162. * clearing all feature bits and setting buildid.
  2163. */
  2164. mem_bswap_64(&header->adds_features,
  2165. BITS_TO_U64(HEADER_FEAT_BITS));
  2166. if (!test_bit(HEADER_HOSTNAME, header->adds_features)) {
  2167. /* unswap as u64 */
  2168. mem_bswap_64(&header->adds_features,
  2169. BITS_TO_U64(HEADER_FEAT_BITS));
  2170. /* unswap as u32 */
  2171. mem_bswap_32(&header->adds_features,
  2172. BITS_TO_U32(HEADER_FEAT_BITS));
  2173. }
  2174. if (!test_bit(HEADER_HOSTNAME, header->adds_features)) {
  2175. bitmap_zero(header->adds_features, HEADER_FEAT_BITS);
  2176. set_bit(HEADER_BUILD_ID, header->adds_features);
  2177. }
  2178. }
  2179. memcpy(&ph->adds_features, &header->adds_features,
  2180. sizeof(ph->adds_features));
  2181. ph->data_offset = header->data.offset;
  2182. ph->data_size = header->data.size;
  2183. ph->feat_offset = header->data.offset + header->data.size;
  2184. return 0;
  2185. }
  2186. static int perf_file_section__process(struct perf_file_section *section,
  2187. struct perf_header *ph,
  2188. int feat, int fd, void *data)
  2189. {
  2190. if (lseek(fd, section->offset, SEEK_SET) == (off_t)-1) {
  2191. pr_debug("Failed to lseek to %" PRIu64 " offset for feature "
  2192. "%d, continuing...\n", section->offset, feat);
  2193. return 0;
  2194. }
  2195. if (feat >= HEADER_LAST_FEATURE) {
  2196. pr_debug("unknown feature %d, continuing...\n", feat);
  2197. return 0;
  2198. }
  2199. if (!feat_ops[feat].process)
  2200. return 0;
  2201. return feat_ops[feat].process(section, ph, fd, data);
  2202. }
  2203. static int perf_file_header__read_pipe(struct perf_pipe_file_header *header,
  2204. struct perf_header *ph, int fd,
  2205. bool repipe)
  2206. {
  2207. ssize_t ret;
  2208. ret = readn(fd, header, sizeof(*header));
  2209. if (ret <= 0)
  2210. return -1;
  2211. if (check_magic_endian(header->magic, header->size, true, ph) < 0) {
  2212. pr_debug("endian/magic failed\n");
  2213. return -1;
  2214. }
  2215. if (ph->needs_swap)
  2216. header->size = bswap_64(header->size);
  2217. if (repipe && do_write(STDOUT_FILENO, header, sizeof(*header)) < 0)
  2218. return -1;
  2219. return 0;
  2220. }
  2221. static int perf_header__read_pipe(struct perf_session *session)
  2222. {
  2223. struct perf_header *header = &session->header;
  2224. struct perf_pipe_file_header f_header;
  2225. if (perf_file_header__read_pipe(&f_header, header,
  2226. perf_data_file__fd(session->file),
  2227. session->repipe) < 0) {
  2228. pr_debug("incompatible file format\n");
  2229. return -EINVAL;
  2230. }
  2231. return 0;
  2232. }
  2233. static int read_attr(int fd, struct perf_header *ph,
  2234. struct perf_file_attr *f_attr)
  2235. {
  2236. struct perf_event_attr *attr = &f_attr->attr;
  2237. size_t sz, left;
  2238. size_t our_sz = sizeof(f_attr->attr);
  2239. ssize_t ret;
  2240. memset(f_attr, 0, sizeof(*f_attr));
  2241. /* read minimal guaranteed structure */
  2242. ret = readn(fd, attr, PERF_ATTR_SIZE_VER0);
  2243. if (ret <= 0) {
  2244. pr_debug("cannot read %d bytes of header attr\n",
  2245. PERF_ATTR_SIZE_VER0);
  2246. return -1;
  2247. }
  2248. /* on file perf_event_attr size */
  2249. sz = attr->size;
  2250. if (ph->needs_swap)
  2251. sz = bswap_32(sz);
  2252. if (sz == 0) {
  2253. /* assume ABI0 */
  2254. sz = PERF_ATTR_SIZE_VER0;
  2255. } else if (sz > our_sz) {
  2256. pr_debug("file uses a more recent and unsupported ABI"
  2257. " (%zu bytes extra)\n", sz - our_sz);
  2258. return -1;
  2259. }
  2260. /* what we have not yet read and that we know about */
  2261. left = sz - PERF_ATTR_SIZE_VER0;
  2262. if (left) {
  2263. void *ptr = attr;
  2264. ptr += PERF_ATTR_SIZE_VER0;
  2265. ret = readn(fd, ptr, left);
  2266. }
  2267. /* read perf_file_section, ids are read in caller */
  2268. ret = readn(fd, &f_attr->ids, sizeof(f_attr->ids));
  2269. return ret <= 0 ? -1 : 0;
  2270. }
  2271. static int perf_evsel__prepare_tracepoint_event(struct perf_evsel *evsel,
  2272. struct pevent *pevent)
  2273. {
  2274. struct event_format *event;
  2275. char bf[128];
  2276. /* already prepared */
  2277. if (evsel->tp_format)
  2278. return 0;
  2279. if (pevent == NULL) {
  2280. pr_debug("broken or missing trace data\n");
  2281. return -1;
  2282. }
  2283. event = pevent_find_event(pevent, evsel->attr.config);
  2284. if (event == NULL)
  2285. return -1;
  2286. if (!evsel->name) {
  2287. snprintf(bf, sizeof(bf), "%s:%s", event->system, event->name);
  2288. evsel->name = strdup(bf);
  2289. if (evsel->name == NULL)
  2290. return -1;
  2291. }
  2292. evsel->tp_format = event;
  2293. return 0;
  2294. }
  2295. static int perf_evlist__prepare_tracepoint_events(struct perf_evlist *evlist,
  2296. struct pevent *pevent)
  2297. {
  2298. struct perf_evsel *pos;
  2299. evlist__for_each_entry(evlist, pos) {
  2300. if (pos->attr.type == PERF_TYPE_TRACEPOINT &&
  2301. perf_evsel__prepare_tracepoint_event(pos, pevent))
  2302. return -1;
  2303. }
  2304. return 0;
  2305. }
  2306. int perf_session__read_header(struct perf_session *session)
  2307. {
  2308. struct perf_data_file *file = session->file;
  2309. struct perf_header *header = &session->header;
  2310. struct perf_file_header f_header;
  2311. struct perf_file_attr f_attr;
  2312. u64 f_id;
  2313. int nr_attrs, nr_ids, i, j;
  2314. int fd = perf_data_file__fd(file);
  2315. session->evlist = perf_evlist__new();
  2316. if (session->evlist == NULL)
  2317. return -ENOMEM;
  2318. session->evlist->env = &header->env;
  2319. session->machines.host.env = &header->env;
  2320. if (perf_data_file__is_pipe(file))
  2321. return perf_header__read_pipe(session);
  2322. if (perf_file_header__read(&f_header, header, fd) < 0)
  2323. return -EINVAL;
  2324. /*
  2325. * Sanity check that perf.data was written cleanly; data size is
  2326. * initialized to 0 and updated only if the on_exit function is run.
  2327. * If data size is still 0 then the file contains only partial
  2328. * information. Just warn user and process it as much as it can.
  2329. */
  2330. if (f_header.data.size == 0) {
  2331. pr_warning("WARNING: The %s file's data size field is 0 which is unexpected.\n"
  2332. "Was the 'perf record' command properly terminated?\n",
  2333. file->path);
  2334. }
  2335. nr_attrs = f_header.attrs.size / f_header.attr_size;
  2336. lseek(fd, f_header.attrs.offset, SEEK_SET);
  2337. for (i = 0; i < nr_attrs; i++) {
  2338. struct perf_evsel *evsel;
  2339. off_t tmp;
  2340. if (read_attr(fd, header, &f_attr) < 0)
  2341. goto out_errno;
  2342. if (header->needs_swap) {
  2343. f_attr.ids.size = bswap_64(f_attr.ids.size);
  2344. f_attr.ids.offset = bswap_64(f_attr.ids.offset);
  2345. perf_event__attr_swap(&f_attr.attr);
  2346. }
  2347. tmp = lseek(fd, 0, SEEK_CUR);
  2348. evsel = perf_evsel__new(&f_attr.attr);
  2349. if (evsel == NULL)
  2350. goto out_delete_evlist;
  2351. evsel->needs_swap = header->needs_swap;
  2352. /*
  2353. * Do it before so that if perf_evsel__alloc_id fails, this
  2354. * entry gets purged too at perf_evlist__delete().
  2355. */
  2356. perf_evlist__add(session->evlist, evsel);
  2357. nr_ids = f_attr.ids.size / sizeof(u64);
  2358. /*
  2359. * We don't have the cpu and thread maps on the header, so
  2360. * for allocating the perf_sample_id table we fake 1 cpu and
  2361. * hattr->ids threads.
  2362. */
  2363. if (perf_evsel__alloc_id(evsel, 1, nr_ids))
  2364. goto out_delete_evlist;
  2365. lseek(fd, f_attr.ids.offset, SEEK_SET);
  2366. for (j = 0; j < nr_ids; j++) {
  2367. if (perf_header__getbuffer64(header, fd, &f_id, sizeof(f_id)))
  2368. goto out_errno;
  2369. perf_evlist__id_add(session->evlist, evsel, 0, j, f_id);
  2370. }
  2371. lseek(fd, tmp, SEEK_SET);
  2372. }
  2373. symbol_conf.nr_events = nr_attrs;
  2374. perf_header__process_sections(header, fd, &session->tevent,
  2375. perf_file_section__process);
  2376. if (perf_evlist__prepare_tracepoint_events(session->evlist,
  2377. session->tevent.pevent))
  2378. goto out_delete_evlist;
  2379. return 0;
  2380. out_errno:
  2381. return -errno;
  2382. out_delete_evlist:
  2383. perf_evlist__delete(session->evlist);
  2384. session->evlist = NULL;
  2385. return -ENOMEM;
  2386. }
  2387. int perf_event__synthesize_attr(struct perf_tool *tool,
  2388. struct perf_event_attr *attr, u32 ids, u64 *id,
  2389. perf_event__handler_t process)
  2390. {
  2391. union perf_event *ev;
  2392. size_t size;
  2393. int err;
  2394. size = sizeof(struct perf_event_attr);
  2395. size = PERF_ALIGN(size, sizeof(u64));
  2396. size += sizeof(struct perf_event_header);
  2397. size += ids * sizeof(u64);
  2398. ev = malloc(size);
  2399. if (ev == NULL)
  2400. return -ENOMEM;
  2401. ev->attr.attr = *attr;
  2402. memcpy(ev->attr.id, id, ids * sizeof(u64));
  2403. ev->attr.header.type = PERF_RECORD_HEADER_ATTR;
  2404. ev->attr.header.size = (u16)size;
  2405. if (ev->attr.header.size == size)
  2406. err = process(tool, ev, NULL, NULL);
  2407. else
  2408. err = -E2BIG;
  2409. free(ev);
  2410. return err;
  2411. }
  2412. static struct event_update_event *
  2413. event_update_event__new(size_t size, u64 type, u64 id)
  2414. {
  2415. struct event_update_event *ev;
  2416. size += sizeof(*ev);
  2417. size = PERF_ALIGN(size, sizeof(u64));
  2418. ev = zalloc(size);
  2419. if (ev) {
  2420. ev->header.type = PERF_RECORD_EVENT_UPDATE;
  2421. ev->header.size = (u16)size;
  2422. ev->type = type;
  2423. ev->id = id;
  2424. }
  2425. return ev;
  2426. }
  2427. int
  2428. perf_event__synthesize_event_update_unit(struct perf_tool *tool,
  2429. struct perf_evsel *evsel,
  2430. perf_event__handler_t process)
  2431. {
  2432. struct event_update_event *ev;
  2433. size_t size = strlen(evsel->unit);
  2434. int err;
  2435. ev = event_update_event__new(size + 1, PERF_EVENT_UPDATE__UNIT, evsel->id[0]);
  2436. if (ev == NULL)
  2437. return -ENOMEM;
  2438. strncpy(ev->data, evsel->unit, size);
  2439. err = process(tool, (union perf_event *)ev, NULL, NULL);
  2440. free(ev);
  2441. return err;
  2442. }
  2443. int
  2444. perf_event__synthesize_event_update_scale(struct perf_tool *tool,
  2445. struct perf_evsel *evsel,
  2446. perf_event__handler_t process)
  2447. {
  2448. struct event_update_event *ev;
  2449. struct event_update_event_scale *ev_data;
  2450. int err;
  2451. ev = event_update_event__new(sizeof(*ev_data), PERF_EVENT_UPDATE__SCALE, evsel->id[0]);
  2452. if (ev == NULL)
  2453. return -ENOMEM;
  2454. ev_data = (struct event_update_event_scale *) ev->data;
  2455. ev_data->scale = evsel->scale;
  2456. err = process(tool, (union perf_event*) ev, NULL, NULL);
  2457. free(ev);
  2458. return err;
  2459. }
  2460. int
  2461. perf_event__synthesize_event_update_name(struct perf_tool *tool,
  2462. struct perf_evsel *evsel,
  2463. perf_event__handler_t process)
  2464. {
  2465. struct event_update_event *ev;
  2466. size_t len = strlen(evsel->name);
  2467. int err;
  2468. ev = event_update_event__new(len + 1, PERF_EVENT_UPDATE__NAME, evsel->id[0]);
  2469. if (ev == NULL)
  2470. return -ENOMEM;
  2471. strncpy(ev->data, evsel->name, len);
  2472. err = process(tool, (union perf_event*) ev, NULL, NULL);
  2473. free(ev);
  2474. return err;
  2475. }
  2476. int
  2477. perf_event__synthesize_event_update_cpus(struct perf_tool *tool,
  2478. struct perf_evsel *evsel,
  2479. perf_event__handler_t process)
  2480. {
  2481. size_t size = sizeof(struct event_update_event);
  2482. struct event_update_event *ev;
  2483. int max, err;
  2484. u16 type;
  2485. if (!evsel->own_cpus)
  2486. return 0;
  2487. ev = cpu_map_data__alloc(evsel->own_cpus, &size, &type, &max);
  2488. if (!ev)
  2489. return -ENOMEM;
  2490. ev->header.type = PERF_RECORD_EVENT_UPDATE;
  2491. ev->header.size = (u16)size;
  2492. ev->type = PERF_EVENT_UPDATE__CPUS;
  2493. ev->id = evsel->id[0];
  2494. cpu_map_data__synthesize((struct cpu_map_data *) ev->data,
  2495. evsel->own_cpus,
  2496. type, max);
  2497. err = process(tool, (union perf_event*) ev, NULL, NULL);
  2498. free(ev);
  2499. return err;
  2500. }
  2501. size_t perf_event__fprintf_event_update(union perf_event *event, FILE *fp)
  2502. {
  2503. struct event_update_event *ev = &event->event_update;
  2504. struct event_update_event_scale *ev_scale;
  2505. struct event_update_event_cpus *ev_cpus;
  2506. struct cpu_map *map;
  2507. size_t ret;
  2508. ret = fprintf(fp, "\n... id: %" PRIu64 "\n", ev->id);
  2509. switch (ev->type) {
  2510. case PERF_EVENT_UPDATE__SCALE:
  2511. ev_scale = (struct event_update_event_scale *) ev->data;
  2512. ret += fprintf(fp, "... scale: %f\n", ev_scale->scale);
  2513. break;
  2514. case PERF_EVENT_UPDATE__UNIT:
  2515. ret += fprintf(fp, "... unit: %s\n", ev->data);
  2516. break;
  2517. case PERF_EVENT_UPDATE__NAME:
  2518. ret += fprintf(fp, "... name: %s\n", ev->data);
  2519. break;
  2520. case PERF_EVENT_UPDATE__CPUS:
  2521. ev_cpus = (struct event_update_event_cpus *) ev->data;
  2522. ret += fprintf(fp, "... ");
  2523. map = cpu_map__new_data(&ev_cpus->cpus);
  2524. if (map)
  2525. ret += cpu_map__fprintf(map, fp);
  2526. else
  2527. ret += fprintf(fp, "failed to get cpus\n");
  2528. break;
  2529. default:
  2530. ret += fprintf(fp, "... unknown type\n");
  2531. break;
  2532. }
  2533. return ret;
  2534. }
  2535. int perf_event__synthesize_attrs(struct perf_tool *tool,
  2536. struct perf_session *session,
  2537. perf_event__handler_t process)
  2538. {
  2539. struct perf_evsel *evsel;
  2540. int err = 0;
  2541. evlist__for_each_entry(session->evlist, evsel) {
  2542. err = perf_event__synthesize_attr(tool, &evsel->attr, evsel->ids,
  2543. evsel->id, process);
  2544. if (err) {
  2545. pr_debug("failed to create perf header attribute\n");
  2546. return err;
  2547. }
  2548. }
  2549. return err;
  2550. }
  2551. int perf_event__process_attr(struct perf_tool *tool __maybe_unused,
  2552. union perf_event *event,
  2553. struct perf_evlist **pevlist)
  2554. {
  2555. u32 i, ids, n_ids;
  2556. struct perf_evsel *evsel;
  2557. struct perf_evlist *evlist = *pevlist;
  2558. if (evlist == NULL) {
  2559. *pevlist = evlist = perf_evlist__new();
  2560. if (evlist == NULL)
  2561. return -ENOMEM;
  2562. }
  2563. evsel = perf_evsel__new(&event->attr.attr);
  2564. if (evsel == NULL)
  2565. return -ENOMEM;
  2566. perf_evlist__add(evlist, evsel);
  2567. ids = event->header.size;
  2568. ids -= (void *)&event->attr.id - (void *)event;
  2569. n_ids = ids / sizeof(u64);
  2570. /*
  2571. * We don't have the cpu and thread maps on the header, so
  2572. * for allocating the perf_sample_id table we fake 1 cpu and
  2573. * hattr->ids threads.
  2574. */
  2575. if (perf_evsel__alloc_id(evsel, 1, n_ids))
  2576. return -ENOMEM;
  2577. for (i = 0; i < n_ids; i++) {
  2578. perf_evlist__id_add(evlist, evsel, 0, i, event->attr.id[i]);
  2579. }
  2580. symbol_conf.nr_events = evlist->nr_entries;
  2581. return 0;
  2582. }
  2583. int perf_event__process_event_update(struct perf_tool *tool __maybe_unused,
  2584. union perf_event *event,
  2585. struct perf_evlist **pevlist)
  2586. {
  2587. struct event_update_event *ev = &event->event_update;
  2588. struct event_update_event_scale *ev_scale;
  2589. struct event_update_event_cpus *ev_cpus;
  2590. struct perf_evlist *evlist;
  2591. struct perf_evsel *evsel;
  2592. struct cpu_map *map;
  2593. if (!pevlist || *pevlist == NULL)
  2594. return -EINVAL;
  2595. evlist = *pevlist;
  2596. evsel = perf_evlist__id2evsel(evlist, ev->id);
  2597. if (evsel == NULL)
  2598. return -EINVAL;
  2599. switch (ev->type) {
  2600. case PERF_EVENT_UPDATE__UNIT:
  2601. evsel->unit = strdup(ev->data);
  2602. break;
  2603. case PERF_EVENT_UPDATE__NAME:
  2604. evsel->name = strdup(ev->data);
  2605. break;
  2606. case PERF_EVENT_UPDATE__SCALE:
  2607. ev_scale = (struct event_update_event_scale *) ev->data;
  2608. evsel->scale = ev_scale->scale;
  2609. case PERF_EVENT_UPDATE__CPUS:
  2610. ev_cpus = (struct event_update_event_cpus *) ev->data;
  2611. map = cpu_map__new_data(&ev_cpus->cpus);
  2612. if (map)
  2613. evsel->own_cpus = map;
  2614. else
  2615. pr_err("failed to get event_update cpus\n");
  2616. default:
  2617. break;
  2618. }
  2619. return 0;
  2620. }
  2621. int perf_event__synthesize_tracing_data(struct perf_tool *tool, int fd,
  2622. struct perf_evlist *evlist,
  2623. perf_event__handler_t process)
  2624. {
  2625. union perf_event ev;
  2626. struct tracing_data *tdata;
  2627. ssize_t size = 0, aligned_size = 0, padding;
  2628. int err __maybe_unused = 0;
  2629. /*
  2630. * We are going to store the size of the data followed
  2631. * by the data contents. Since the fd descriptor is a pipe,
  2632. * we cannot seek back to store the size of the data once
  2633. * we know it. Instead we:
  2634. *
  2635. * - write the tracing data to the temp file
  2636. * - get/write the data size to pipe
  2637. * - write the tracing data from the temp file
  2638. * to the pipe
  2639. */
  2640. tdata = tracing_data_get(&evlist->entries, fd, true);
  2641. if (!tdata)
  2642. return -1;
  2643. memset(&ev, 0, sizeof(ev));
  2644. ev.tracing_data.header.type = PERF_RECORD_HEADER_TRACING_DATA;
  2645. size = tdata->size;
  2646. aligned_size = PERF_ALIGN(size, sizeof(u64));
  2647. padding = aligned_size - size;
  2648. ev.tracing_data.header.size = sizeof(ev.tracing_data);
  2649. ev.tracing_data.size = aligned_size;
  2650. process(tool, &ev, NULL, NULL);
  2651. /*
  2652. * The put function will copy all the tracing data
  2653. * stored in temp file to the pipe.
  2654. */
  2655. tracing_data_put(tdata);
  2656. write_padded(fd, NULL, 0, padding);
  2657. return aligned_size;
  2658. }
  2659. int perf_event__process_tracing_data(struct perf_tool *tool __maybe_unused,
  2660. union perf_event *event,
  2661. struct perf_session *session)
  2662. {
  2663. ssize_t size_read, padding, size = event->tracing_data.size;
  2664. int fd = perf_data_file__fd(session->file);
  2665. off_t offset = lseek(fd, 0, SEEK_CUR);
  2666. char buf[BUFSIZ];
  2667. /* setup for reading amidst mmap */
  2668. lseek(fd, offset + sizeof(struct tracing_data_event),
  2669. SEEK_SET);
  2670. size_read = trace_report(fd, &session->tevent,
  2671. session->repipe);
  2672. padding = PERF_ALIGN(size_read, sizeof(u64)) - size_read;
  2673. if (readn(fd, buf, padding) < 0) {
  2674. pr_err("%s: reading input file", __func__);
  2675. return -1;
  2676. }
  2677. if (session->repipe) {
  2678. int retw = write(STDOUT_FILENO, buf, padding);
  2679. if (retw <= 0 || retw != padding) {
  2680. pr_err("%s: repiping tracing data padding", __func__);
  2681. return -1;
  2682. }
  2683. }
  2684. if (size_read + padding != size) {
  2685. pr_err("%s: tracing data size mismatch", __func__);
  2686. return -1;
  2687. }
  2688. perf_evlist__prepare_tracepoint_events(session->evlist,
  2689. session->tevent.pevent);
  2690. return size_read + padding;
  2691. }
  2692. int perf_event__synthesize_build_id(struct perf_tool *tool,
  2693. struct dso *pos, u16 misc,
  2694. perf_event__handler_t process,
  2695. struct machine *machine)
  2696. {
  2697. union perf_event ev;
  2698. size_t len;
  2699. int err = 0;
  2700. if (!pos->hit)
  2701. return err;
  2702. memset(&ev, 0, sizeof(ev));
  2703. len = pos->long_name_len + 1;
  2704. len = PERF_ALIGN(len, NAME_ALIGN);
  2705. memcpy(&ev.build_id.build_id, pos->build_id, sizeof(pos->build_id));
  2706. ev.build_id.header.type = PERF_RECORD_HEADER_BUILD_ID;
  2707. ev.build_id.header.misc = misc;
  2708. ev.build_id.pid = machine->pid;
  2709. ev.build_id.header.size = sizeof(ev.build_id) + len;
  2710. memcpy(&ev.build_id.filename, pos->long_name, pos->long_name_len);
  2711. err = process(tool, &ev, NULL, machine);
  2712. return err;
  2713. }
  2714. int perf_event__process_build_id(struct perf_tool *tool __maybe_unused,
  2715. union perf_event *event,
  2716. struct perf_session *session)
  2717. {
  2718. __event_process_build_id(&event->build_id,
  2719. event->build_id.filename,
  2720. session);
  2721. return 0;
  2722. }