slabinfo.c 32 KB

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  1. /*
  2. * Slabinfo: Tool to get reports about slabs
  3. *
  4. * (C) 2007 sgi, Christoph Lameter <clameter@sgi.com>
  5. *
  6. * Compile by:
  7. *
  8. * gcc -o slabinfo slabinfo.c
  9. */
  10. #include <stdio.h>
  11. #include <stdlib.h>
  12. #include <sys/types.h>
  13. #include <dirent.h>
  14. #include <strings.h>
  15. #include <string.h>
  16. #include <unistd.h>
  17. #include <stdarg.h>
  18. #include <getopt.h>
  19. #include <regex.h>
  20. #include <errno.h>
  21. #define MAX_SLABS 500
  22. #define MAX_ALIASES 500
  23. #define MAX_NODES 1024
  24. struct slabinfo {
  25. char *name;
  26. int alias;
  27. int refs;
  28. int aliases, align, cache_dma, cpu_slabs, destroy_by_rcu;
  29. int hwcache_align, object_size, objs_per_slab;
  30. int sanity_checks, slab_size, store_user, trace;
  31. int order, poison, reclaim_account, red_zone;
  32. unsigned long partial, objects, slabs;
  33. unsigned long alloc_fastpath, alloc_slowpath;
  34. unsigned long free_fastpath, free_slowpath;
  35. unsigned long free_frozen, free_add_partial, free_remove_partial;
  36. unsigned long alloc_from_partial, alloc_slab, free_slab, alloc_refill;
  37. unsigned long cpuslab_flush, deactivate_full, deactivate_empty;
  38. unsigned long deactivate_to_head, deactivate_to_tail;
  39. unsigned long deactivate_remote_frees;
  40. int numa[MAX_NODES];
  41. int numa_partial[MAX_NODES];
  42. } slabinfo[MAX_SLABS];
  43. struct aliasinfo {
  44. char *name;
  45. char *ref;
  46. struct slabinfo *slab;
  47. } aliasinfo[MAX_ALIASES];
  48. int slabs = 0;
  49. int actual_slabs = 0;
  50. int aliases = 0;
  51. int alias_targets = 0;
  52. int highest_node = 0;
  53. char buffer[4096];
  54. int show_empty = 0;
  55. int show_report = 0;
  56. int show_alias = 0;
  57. int show_slab = 0;
  58. int skip_zero = 1;
  59. int show_numa = 0;
  60. int show_track = 0;
  61. int show_first_alias = 0;
  62. int validate = 0;
  63. int shrink = 0;
  64. int show_inverted = 0;
  65. int show_single_ref = 0;
  66. int show_totals = 0;
  67. int sort_size = 0;
  68. int sort_active = 0;
  69. int set_debug = 0;
  70. int show_ops = 0;
  71. int show_activity = 0;
  72. /* Debug options */
  73. int sanity = 0;
  74. int redzone = 0;
  75. int poison = 0;
  76. int tracking = 0;
  77. int tracing = 0;
  78. int page_size;
  79. regex_t pattern;
  80. void fatal(const char *x, ...)
  81. {
  82. va_list ap;
  83. va_start(ap, x);
  84. vfprintf(stderr, x, ap);
  85. va_end(ap);
  86. exit(EXIT_FAILURE);
  87. }
  88. void usage(void)
  89. {
  90. printf("slabinfo 5/7/2007. (c) 2007 sgi. clameter@sgi.com\n\n"
  91. "slabinfo [-ahnpvtsz] [-d debugopts] [slab-regexp]\n"
  92. "-a|--aliases Show aliases\n"
  93. "-A|--activity Most active slabs first\n"
  94. "-d<options>|--debug=<options> Set/Clear Debug options\n"
  95. "-D|--display-active Switch line format to activity\n"
  96. "-e|--empty Show empty slabs\n"
  97. "-f|--first-alias Show first alias\n"
  98. "-h|--help Show usage information\n"
  99. "-i|--inverted Inverted list\n"
  100. "-l|--slabs Show slabs\n"
  101. "-n|--numa Show NUMA information\n"
  102. "-o|--ops Show kmem_cache_ops\n"
  103. "-s|--shrink Shrink slabs\n"
  104. "-r|--report Detailed report on single slabs\n"
  105. "-S|--Size Sort by size\n"
  106. "-t|--tracking Show alloc/free information\n"
  107. "-T|--Totals Show summary information\n"
  108. "-v|--validate Validate slabs\n"
  109. "-z|--zero Include empty slabs\n"
  110. "-1|--1ref Single reference\n"
  111. "\nValid debug options (FZPUT may be combined)\n"
  112. "a / A Switch on all debug options (=FZUP)\n"
  113. "- Switch off all debug options\n"
  114. "f / F Sanity Checks (SLAB_DEBUG_FREE)\n"
  115. "z / Z Redzoning\n"
  116. "p / P Poisoning\n"
  117. "u / U Tracking\n"
  118. "t / T Tracing\n"
  119. );
  120. }
  121. unsigned long read_obj(const char *name)
  122. {
  123. FILE *f = fopen(name, "r");
  124. if (!f)
  125. buffer[0] = 0;
  126. else {
  127. if (!fgets(buffer, sizeof(buffer), f))
  128. buffer[0] = 0;
  129. fclose(f);
  130. if (buffer[strlen(buffer)] == '\n')
  131. buffer[strlen(buffer)] = 0;
  132. }
  133. return strlen(buffer);
  134. }
  135. /*
  136. * Get the contents of an attribute
  137. */
  138. unsigned long get_obj(const char *name)
  139. {
  140. if (!read_obj(name))
  141. return 0;
  142. return atol(buffer);
  143. }
  144. unsigned long get_obj_and_str(const char *name, char **x)
  145. {
  146. unsigned long result = 0;
  147. char *p;
  148. *x = NULL;
  149. if (!read_obj(name)) {
  150. x = NULL;
  151. return 0;
  152. }
  153. result = strtoul(buffer, &p, 10);
  154. while (*p == ' ')
  155. p++;
  156. if (*p)
  157. *x = strdup(p);
  158. return result;
  159. }
  160. void set_obj(struct slabinfo *s, const char *name, int n)
  161. {
  162. char x[100];
  163. FILE *f;
  164. snprintf(x, 100, "%s/%s", s->name, name);
  165. f = fopen(x, "w");
  166. if (!f)
  167. fatal("Cannot write to %s\n", x);
  168. fprintf(f, "%d\n", n);
  169. fclose(f);
  170. }
  171. unsigned long read_slab_obj(struct slabinfo *s, const char *name)
  172. {
  173. char x[100];
  174. FILE *f;
  175. size_t l;
  176. snprintf(x, 100, "%s/%s", s->name, name);
  177. f = fopen(x, "r");
  178. if (!f) {
  179. buffer[0] = 0;
  180. l = 0;
  181. } else {
  182. l = fread(buffer, 1, sizeof(buffer), f);
  183. buffer[l] = 0;
  184. fclose(f);
  185. }
  186. return l;
  187. }
  188. /*
  189. * Put a size string together
  190. */
  191. int store_size(char *buffer, unsigned long value)
  192. {
  193. unsigned long divisor = 1;
  194. char trailer = 0;
  195. int n;
  196. if (value > 1000000000UL) {
  197. divisor = 100000000UL;
  198. trailer = 'G';
  199. } else if (value > 1000000UL) {
  200. divisor = 100000UL;
  201. trailer = 'M';
  202. } else if (value > 1000UL) {
  203. divisor = 100;
  204. trailer = 'K';
  205. }
  206. value /= divisor;
  207. n = sprintf(buffer, "%ld",value);
  208. if (trailer) {
  209. buffer[n] = trailer;
  210. n++;
  211. buffer[n] = 0;
  212. }
  213. if (divisor != 1) {
  214. memmove(buffer + n - 2, buffer + n - 3, 4);
  215. buffer[n-2] = '.';
  216. n++;
  217. }
  218. return n;
  219. }
  220. void decode_numa_list(int *numa, char *t)
  221. {
  222. int node;
  223. int nr;
  224. memset(numa, 0, MAX_NODES * sizeof(int));
  225. if (!t)
  226. return;
  227. while (*t == 'N') {
  228. t++;
  229. node = strtoul(t, &t, 10);
  230. if (*t == '=') {
  231. t++;
  232. nr = strtoul(t, &t, 10);
  233. numa[node] = nr;
  234. if (node > highest_node)
  235. highest_node = node;
  236. }
  237. while (*t == ' ')
  238. t++;
  239. }
  240. }
  241. void slab_validate(struct slabinfo *s)
  242. {
  243. if (strcmp(s->name, "*") == 0)
  244. return;
  245. set_obj(s, "validate", 1);
  246. }
  247. void slab_shrink(struct slabinfo *s)
  248. {
  249. if (strcmp(s->name, "*") == 0)
  250. return;
  251. set_obj(s, "shrink", 1);
  252. }
  253. int line = 0;
  254. void first_line(void)
  255. {
  256. if (show_activity)
  257. printf("Name Objects Alloc Free %%Fast\n");
  258. else
  259. printf("Name Objects Objsize Space "
  260. "Slabs/Part/Cpu O/S O %%Fr %%Ef Flg\n");
  261. }
  262. /*
  263. * Find the shortest alias of a slab
  264. */
  265. struct aliasinfo *find_one_alias(struct slabinfo *find)
  266. {
  267. struct aliasinfo *a;
  268. struct aliasinfo *best = NULL;
  269. for(a = aliasinfo;a < aliasinfo + aliases; a++) {
  270. if (a->slab == find &&
  271. (!best || strlen(best->name) < strlen(a->name))) {
  272. best = a;
  273. if (strncmp(a->name,"kmall", 5) == 0)
  274. return best;
  275. }
  276. }
  277. return best;
  278. }
  279. unsigned long slab_size(struct slabinfo *s)
  280. {
  281. return s->slabs * (page_size << s->order);
  282. }
  283. unsigned long slab_activity(struct slabinfo *s)
  284. {
  285. return s->alloc_fastpath + s->free_fastpath +
  286. s->alloc_slowpath + s->free_slowpath;
  287. }
  288. void slab_numa(struct slabinfo *s, int mode)
  289. {
  290. int node;
  291. if (strcmp(s->name, "*") == 0)
  292. return;
  293. if (!highest_node) {
  294. printf("\n%s: No NUMA information available.\n", s->name);
  295. return;
  296. }
  297. if (skip_zero && !s->slabs)
  298. return;
  299. if (!line) {
  300. printf("\n%-21s:", mode ? "NUMA nodes" : "Slab");
  301. for(node = 0; node <= highest_node; node++)
  302. printf(" %4d", node);
  303. printf("\n----------------------");
  304. for(node = 0; node <= highest_node; node++)
  305. printf("-----");
  306. printf("\n");
  307. }
  308. printf("%-21s ", mode ? "All slabs" : s->name);
  309. for(node = 0; node <= highest_node; node++) {
  310. char b[20];
  311. store_size(b, s->numa[node]);
  312. printf(" %4s", b);
  313. }
  314. printf("\n");
  315. if (mode) {
  316. printf("%-21s ", "Partial slabs");
  317. for(node = 0; node <= highest_node; node++) {
  318. char b[20];
  319. store_size(b, s->numa_partial[node]);
  320. printf(" %4s", b);
  321. }
  322. printf("\n");
  323. }
  324. line++;
  325. }
  326. void show_tracking(struct slabinfo *s)
  327. {
  328. printf("\n%s: Kernel object allocation\n", s->name);
  329. printf("-----------------------------------------------------------------------\n");
  330. if (read_slab_obj(s, "alloc_calls"))
  331. printf(buffer);
  332. else
  333. printf("No Data\n");
  334. printf("\n%s: Kernel object freeing\n", s->name);
  335. printf("------------------------------------------------------------------------\n");
  336. if (read_slab_obj(s, "free_calls"))
  337. printf(buffer);
  338. else
  339. printf("No Data\n");
  340. }
  341. void ops(struct slabinfo *s)
  342. {
  343. if (strcmp(s->name, "*") == 0)
  344. return;
  345. if (read_slab_obj(s, "ops")) {
  346. printf("\n%s: kmem_cache operations\n", s->name);
  347. printf("--------------------------------------------\n");
  348. printf(buffer);
  349. } else
  350. printf("\n%s has no kmem_cache operations\n", s->name);
  351. }
  352. const char *onoff(int x)
  353. {
  354. if (x)
  355. return "On ";
  356. return "Off";
  357. }
  358. void slab_stats(struct slabinfo *s)
  359. {
  360. unsigned long total_alloc;
  361. unsigned long total_free;
  362. unsigned long total;
  363. if (!s->alloc_slab)
  364. return;
  365. total_alloc = s->alloc_fastpath + s->alloc_slowpath;
  366. total_free = s->free_fastpath + s->free_slowpath;
  367. if (!total_alloc)
  368. return;
  369. printf("\n");
  370. printf("Slab Perf Counter Alloc Free %%Al %%Fr\n");
  371. printf("--------------------------------------------------\n");
  372. printf("Fastpath %8lu %8lu %3lu %3lu\n",
  373. s->alloc_fastpath, s->free_fastpath,
  374. s->alloc_fastpath * 100 / total_alloc,
  375. s->free_fastpath * 100 / total_free);
  376. printf("Slowpath %8lu %8lu %3lu %3lu\n",
  377. total_alloc - s->alloc_fastpath, s->free_slowpath,
  378. (total_alloc - s->alloc_fastpath) * 100 / total_alloc,
  379. s->free_slowpath * 100 / total_free);
  380. printf("Page Alloc %8lu %8lu %3lu %3lu\n",
  381. s->alloc_slab, s->free_slab,
  382. s->alloc_slab * 100 / total_alloc,
  383. s->free_slab * 100 / total_free);
  384. printf("Add partial %8lu %8lu %3lu %3lu\n",
  385. s->deactivate_to_head + s->deactivate_to_tail,
  386. s->free_add_partial,
  387. (s->deactivate_to_head + s->deactivate_to_tail) * 100 / total_alloc,
  388. s->free_add_partial * 100 / total_free);
  389. printf("Remove partial %8lu %8lu %3lu %3lu\n",
  390. s->alloc_from_partial, s->free_remove_partial,
  391. s->alloc_from_partial * 100 / total_alloc,
  392. s->free_remove_partial * 100 / total_free);
  393. printf("RemoteObj/SlabFrozen %8lu %8lu %3lu %3lu\n",
  394. s->deactivate_remote_frees, s->free_frozen,
  395. s->deactivate_remote_frees * 100 / total_alloc,
  396. s->free_frozen * 100 / total_free);
  397. printf("Total %8lu %8lu\n\n", total_alloc, total_free);
  398. if (s->cpuslab_flush)
  399. printf("Flushes %8lu\n", s->cpuslab_flush);
  400. if (s->alloc_refill)
  401. printf("Refill %8lu\n", s->alloc_refill);
  402. total = s->deactivate_full + s->deactivate_empty +
  403. s->deactivate_to_head + s->deactivate_to_tail;
  404. if (total)
  405. printf("Deactivate Full=%lu(%lu%%) Empty=%lu(%lu%%) "
  406. "ToHead=%lu(%lu%%) ToTail=%lu(%lu%%)\n",
  407. s->deactivate_full, (s->deactivate_full * 100) / total,
  408. s->deactivate_empty, (s->deactivate_empty * 100) / total,
  409. s->deactivate_to_head, (s->deactivate_to_head * 100) / total,
  410. s->deactivate_to_tail, (s->deactivate_to_tail * 100) / total);
  411. }
  412. void report(struct slabinfo *s)
  413. {
  414. if (strcmp(s->name, "*") == 0)
  415. return;
  416. printf("\nSlabcache: %-20s Aliases: %2d Order : %2d Objects: %lu\n",
  417. s->name, s->aliases, s->order, s->objects);
  418. if (s->hwcache_align)
  419. printf("** Hardware cacheline aligned\n");
  420. if (s->cache_dma)
  421. printf("** Memory is allocated in a special DMA zone\n");
  422. if (s->destroy_by_rcu)
  423. printf("** Slabs are destroyed via RCU\n");
  424. if (s->reclaim_account)
  425. printf("** Reclaim accounting active\n");
  426. printf("\nSizes (bytes) Slabs Debug Memory\n");
  427. printf("------------------------------------------------------------------------\n");
  428. printf("Object : %7d Total : %7ld Sanity Checks : %s Total: %7ld\n",
  429. s->object_size, s->slabs, onoff(s->sanity_checks),
  430. s->slabs * (page_size << s->order));
  431. printf("SlabObj: %7d Full : %7ld Redzoning : %s Used : %7ld\n",
  432. s->slab_size, s->slabs - s->partial - s->cpu_slabs,
  433. onoff(s->red_zone), s->objects * s->object_size);
  434. printf("SlabSiz: %7d Partial: %7ld Poisoning : %s Loss : %7ld\n",
  435. page_size << s->order, s->partial, onoff(s->poison),
  436. s->slabs * (page_size << s->order) - s->objects * s->object_size);
  437. printf("Loss : %7d CpuSlab: %7d Tracking : %s Lalig: %7ld\n",
  438. s->slab_size - s->object_size, s->cpu_slabs, onoff(s->store_user),
  439. (s->slab_size - s->object_size) * s->objects);
  440. printf("Align : %7d Objects: %7d Tracing : %s Lpadd: %7ld\n",
  441. s->align, s->objs_per_slab, onoff(s->trace),
  442. ((page_size << s->order) - s->objs_per_slab * s->slab_size) *
  443. s->slabs);
  444. ops(s);
  445. show_tracking(s);
  446. slab_numa(s, 1);
  447. slab_stats(s);
  448. }
  449. void slabcache(struct slabinfo *s)
  450. {
  451. char size_str[20];
  452. char dist_str[40];
  453. char flags[20];
  454. char *p = flags;
  455. if (strcmp(s->name, "*") == 0)
  456. return;
  457. if (actual_slabs == 1) {
  458. report(s);
  459. return;
  460. }
  461. if (skip_zero && !show_empty && !s->slabs)
  462. return;
  463. if (show_empty && s->slabs)
  464. return;
  465. store_size(size_str, slab_size(s));
  466. snprintf(dist_str, 40, "%lu/%lu/%d", s->slabs, s->partial, s->cpu_slabs);
  467. if (!line++)
  468. first_line();
  469. if (s->aliases)
  470. *p++ = '*';
  471. if (s->cache_dma)
  472. *p++ = 'd';
  473. if (s->hwcache_align)
  474. *p++ = 'A';
  475. if (s->poison)
  476. *p++ = 'P';
  477. if (s->reclaim_account)
  478. *p++ = 'a';
  479. if (s->red_zone)
  480. *p++ = 'Z';
  481. if (s->sanity_checks)
  482. *p++ = 'F';
  483. if (s->store_user)
  484. *p++ = 'U';
  485. if (s->trace)
  486. *p++ = 'T';
  487. *p = 0;
  488. if (show_activity) {
  489. unsigned long total_alloc;
  490. unsigned long total_free;
  491. total_alloc = s->alloc_fastpath + s->alloc_slowpath;
  492. total_free = s->free_fastpath + s->free_slowpath;
  493. printf("%-21s %8ld %8ld %8ld %3ld %3ld \n",
  494. s->name, s->objects,
  495. total_alloc, total_free,
  496. total_alloc ? (s->alloc_fastpath * 100 / total_alloc) : 0,
  497. total_free ? (s->free_fastpath * 100 / total_free) : 0);
  498. }
  499. else
  500. printf("%-21s %8ld %7d %8s %14s %4d %1d %3ld %3ld %s\n",
  501. s->name, s->objects, s->object_size, size_str, dist_str,
  502. s->objs_per_slab, s->order,
  503. s->slabs ? (s->partial * 100) / s->slabs : 100,
  504. s->slabs ? (s->objects * s->object_size * 100) /
  505. (s->slabs * (page_size << s->order)) : 100,
  506. flags);
  507. }
  508. /*
  509. * Analyze debug options. Return false if something is amiss.
  510. */
  511. int debug_opt_scan(char *opt)
  512. {
  513. if (!opt || !opt[0] || strcmp(opt, "-") == 0)
  514. return 1;
  515. if (strcasecmp(opt, "a") == 0) {
  516. sanity = 1;
  517. poison = 1;
  518. redzone = 1;
  519. tracking = 1;
  520. return 1;
  521. }
  522. for ( ; *opt; opt++)
  523. switch (*opt) {
  524. case 'F' : case 'f':
  525. if (sanity)
  526. return 0;
  527. sanity = 1;
  528. break;
  529. case 'P' : case 'p':
  530. if (poison)
  531. return 0;
  532. poison = 1;
  533. break;
  534. case 'Z' : case 'z':
  535. if (redzone)
  536. return 0;
  537. redzone = 1;
  538. break;
  539. case 'U' : case 'u':
  540. if (tracking)
  541. return 0;
  542. tracking = 1;
  543. break;
  544. case 'T' : case 't':
  545. if (tracing)
  546. return 0;
  547. tracing = 1;
  548. break;
  549. default:
  550. return 0;
  551. }
  552. return 1;
  553. }
  554. int slab_empty(struct slabinfo *s)
  555. {
  556. if (s->objects > 0)
  557. return 0;
  558. /*
  559. * We may still have slabs even if there are no objects. Shrinking will
  560. * remove them.
  561. */
  562. if (s->slabs != 0)
  563. set_obj(s, "shrink", 1);
  564. return 1;
  565. }
  566. void slab_debug(struct slabinfo *s)
  567. {
  568. if (strcmp(s->name, "*") == 0)
  569. return;
  570. if (sanity && !s->sanity_checks) {
  571. set_obj(s, "sanity", 1);
  572. }
  573. if (!sanity && s->sanity_checks) {
  574. if (slab_empty(s))
  575. set_obj(s, "sanity", 0);
  576. else
  577. fprintf(stderr, "%s not empty cannot disable sanity checks\n", s->name);
  578. }
  579. if (redzone && !s->red_zone) {
  580. if (slab_empty(s))
  581. set_obj(s, "red_zone", 1);
  582. else
  583. fprintf(stderr, "%s not empty cannot enable redzoning\n", s->name);
  584. }
  585. if (!redzone && s->red_zone) {
  586. if (slab_empty(s))
  587. set_obj(s, "red_zone", 0);
  588. else
  589. fprintf(stderr, "%s not empty cannot disable redzoning\n", s->name);
  590. }
  591. if (poison && !s->poison) {
  592. if (slab_empty(s))
  593. set_obj(s, "poison", 1);
  594. else
  595. fprintf(stderr, "%s not empty cannot enable poisoning\n", s->name);
  596. }
  597. if (!poison && s->poison) {
  598. if (slab_empty(s))
  599. set_obj(s, "poison", 0);
  600. else
  601. fprintf(stderr, "%s not empty cannot disable poisoning\n", s->name);
  602. }
  603. if (tracking && !s->store_user) {
  604. if (slab_empty(s))
  605. set_obj(s, "store_user", 1);
  606. else
  607. fprintf(stderr, "%s not empty cannot enable tracking\n", s->name);
  608. }
  609. if (!tracking && s->store_user) {
  610. if (slab_empty(s))
  611. set_obj(s, "store_user", 0);
  612. else
  613. fprintf(stderr, "%s not empty cannot disable tracking\n", s->name);
  614. }
  615. if (tracing && !s->trace) {
  616. if (slabs == 1)
  617. set_obj(s, "trace", 1);
  618. else
  619. fprintf(stderr, "%s can only enable trace for one slab at a time\n", s->name);
  620. }
  621. if (!tracing && s->trace)
  622. set_obj(s, "trace", 1);
  623. }
  624. void totals(void)
  625. {
  626. struct slabinfo *s;
  627. int used_slabs = 0;
  628. char b1[20], b2[20], b3[20], b4[20];
  629. unsigned long long max = 1ULL << 63;
  630. /* Object size */
  631. unsigned long long min_objsize = max, max_objsize = 0, avg_objsize;
  632. /* Number of partial slabs in a slabcache */
  633. unsigned long long min_partial = max, max_partial = 0,
  634. avg_partial, total_partial = 0;
  635. /* Number of slabs in a slab cache */
  636. unsigned long long min_slabs = max, max_slabs = 0,
  637. avg_slabs, total_slabs = 0;
  638. /* Size of the whole slab */
  639. unsigned long long min_size = max, max_size = 0,
  640. avg_size, total_size = 0;
  641. /* Bytes used for object storage in a slab */
  642. unsigned long long min_used = max, max_used = 0,
  643. avg_used, total_used = 0;
  644. /* Waste: Bytes used for alignment and padding */
  645. unsigned long long min_waste = max, max_waste = 0,
  646. avg_waste, total_waste = 0;
  647. /* Number of objects in a slab */
  648. unsigned long long min_objects = max, max_objects = 0,
  649. avg_objects, total_objects = 0;
  650. /* Waste per object */
  651. unsigned long long min_objwaste = max,
  652. max_objwaste = 0, avg_objwaste,
  653. total_objwaste = 0;
  654. /* Memory per object */
  655. unsigned long long min_memobj = max,
  656. max_memobj = 0, avg_memobj,
  657. total_objsize = 0;
  658. /* Percentage of partial slabs per slab */
  659. unsigned long min_ppart = 100, max_ppart = 0,
  660. avg_ppart, total_ppart = 0;
  661. /* Number of objects in partial slabs */
  662. unsigned long min_partobj = max, max_partobj = 0,
  663. avg_partobj, total_partobj = 0;
  664. /* Percentage of partial objects of all objects in a slab */
  665. unsigned long min_ppartobj = 100, max_ppartobj = 0,
  666. avg_ppartobj, total_ppartobj = 0;
  667. for (s = slabinfo; s < slabinfo + slabs; s++) {
  668. unsigned long long size;
  669. unsigned long used;
  670. unsigned long long wasted;
  671. unsigned long long objwaste;
  672. long long objects_in_partial_slabs;
  673. unsigned long percentage_partial_slabs;
  674. unsigned long percentage_partial_objs;
  675. if (!s->slabs || !s->objects)
  676. continue;
  677. used_slabs++;
  678. size = slab_size(s);
  679. used = s->objects * s->object_size;
  680. wasted = size - used;
  681. objwaste = s->slab_size - s->object_size;
  682. objects_in_partial_slabs = s->objects -
  683. (s->slabs - s->partial - s ->cpu_slabs) *
  684. s->objs_per_slab;
  685. if (objects_in_partial_slabs < 0)
  686. objects_in_partial_slabs = 0;
  687. percentage_partial_slabs = s->partial * 100 / s->slabs;
  688. if (percentage_partial_slabs > 100)
  689. percentage_partial_slabs = 100;
  690. percentage_partial_objs = objects_in_partial_slabs * 100
  691. / s->objects;
  692. if (percentage_partial_objs > 100)
  693. percentage_partial_objs = 100;
  694. if (s->object_size < min_objsize)
  695. min_objsize = s->object_size;
  696. if (s->partial < min_partial)
  697. min_partial = s->partial;
  698. if (s->slabs < min_slabs)
  699. min_slabs = s->slabs;
  700. if (size < min_size)
  701. min_size = size;
  702. if (wasted < min_waste)
  703. min_waste = wasted;
  704. if (objwaste < min_objwaste)
  705. min_objwaste = objwaste;
  706. if (s->objects < min_objects)
  707. min_objects = s->objects;
  708. if (used < min_used)
  709. min_used = used;
  710. if (objects_in_partial_slabs < min_partobj)
  711. min_partobj = objects_in_partial_slabs;
  712. if (percentage_partial_slabs < min_ppart)
  713. min_ppart = percentage_partial_slabs;
  714. if (percentage_partial_objs < min_ppartobj)
  715. min_ppartobj = percentage_partial_objs;
  716. if (s->slab_size < min_memobj)
  717. min_memobj = s->slab_size;
  718. if (s->object_size > max_objsize)
  719. max_objsize = s->object_size;
  720. if (s->partial > max_partial)
  721. max_partial = s->partial;
  722. if (s->slabs > max_slabs)
  723. max_slabs = s->slabs;
  724. if (size > max_size)
  725. max_size = size;
  726. if (wasted > max_waste)
  727. max_waste = wasted;
  728. if (objwaste > max_objwaste)
  729. max_objwaste = objwaste;
  730. if (s->objects > max_objects)
  731. max_objects = s->objects;
  732. if (used > max_used)
  733. max_used = used;
  734. if (objects_in_partial_slabs > max_partobj)
  735. max_partobj = objects_in_partial_slabs;
  736. if (percentage_partial_slabs > max_ppart)
  737. max_ppart = percentage_partial_slabs;
  738. if (percentage_partial_objs > max_ppartobj)
  739. max_ppartobj = percentage_partial_objs;
  740. if (s->slab_size > max_memobj)
  741. max_memobj = s->slab_size;
  742. total_partial += s->partial;
  743. total_slabs += s->slabs;
  744. total_size += size;
  745. total_waste += wasted;
  746. total_objects += s->objects;
  747. total_used += used;
  748. total_partobj += objects_in_partial_slabs;
  749. total_ppart += percentage_partial_slabs;
  750. total_ppartobj += percentage_partial_objs;
  751. total_objwaste += s->objects * objwaste;
  752. total_objsize += s->objects * s->slab_size;
  753. }
  754. if (!total_objects) {
  755. printf("No objects\n");
  756. return;
  757. }
  758. if (!used_slabs) {
  759. printf("No slabs\n");
  760. return;
  761. }
  762. /* Per slab averages */
  763. avg_partial = total_partial / used_slabs;
  764. avg_slabs = total_slabs / used_slabs;
  765. avg_size = total_size / used_slabs;
  766. avg_waste = total_waste / used_slabs;
  767. avg_objects = total_objects / used_slabs;
  768. avg_used = total_used / used_slabs;
  769. avg_partobj = total_partobj / used_slabs;
  770. avg_ppart = total_ppart / used_slabs;
  771. avg_ppartobj = total_ppartobj / used_slabs;
  772. /* Per object object sizes */
  773. avg_objsize = total_used / total_objects;
  774. avg_objwaste = total_objwaste / total_objects;
  775. avg_partobj = total_partobj * 100 / total_objects;
  776. avg_memobj = total_objsize / total_objects;
  777. printf("Slabcache Totals\n");
  778. printf("----------------\n");
  779. printf("Slabcaches : %3d Aliases : %3d->%-3d Active: %3d\n",
  780. slabs, aliases, alias_targets, used_slabs);
  781. store_size(b1, total_size);store_size(b2, total_waste);
  782. store_size(b3, total_waste * 100 / total_used);
  783. printf("Memory used: %6s # Loss : %6s MRatio:%6s%%\n", b1, b2, b3);
  784. store_size(b1, total_objects);store_size(b2, total_partobj);
  785. store_size(b3, total_partobj * 100 / total_objects);
  786. printf("# Objects : %6s # PartObj: %6s ORatio:%6s%%\n", b1, b2, b3);
  787. printf("\n");
  788. printf("Per Cache Average Min Max Total\n");
  789. printf("---------------------------------------------------------\n");
  790. store_size(b1, avg_objects);store_size(b2, min_objects);
  791. store_size(b3, max_objects);store_size(b4, total_objects);
  792. printf("#Objects %10s %10s %10s %10s\n",
  793. b1, b2, b3, b4);
  794. store_size(b1, avg_slabs);store_size(b2, min_slabs);
  795. store_size(b3, max_slabs);store_size(b4, total_slabs);
  796. printf("#Slabs %10s %10s %10s %10s\n",
  797. b1, b2, b3, b4);
  798. store_size(b1, avg_partial);store_size(b2, min_partial);
  799. store_size(b3, max_partial);store_size(b4, total_partial);
  800. printf("#PartSlab %10s %10s %10s %10s\n",
  801. b1, b2, b3, b4);
  802. store_size(b1, avg_ppart);store_size(b2, min_ppart);
  803. store_size(b3, max_ppart);
  804. store_size(b4, total_partial * 100 / total_slabs);
  805. printf("%%PartSlab%10s%% %10s%% %10s%% %10s%%\n",
  806. b1, b2, b3, b4);
  807. store_size(b1, avg_partobj);store_size(b2, min_partobj);
  808. store_size(b3, max_partobj);
  809. store_size(b4, total_partobj);
  810. printf("PartObjs %10s %10s %10s %10s\n",
  811. b1, b2, b3, b4);
  812. store_size(b1, avg_ppartobj);store_size(b2, min_ppartobj);
  813. store_size(b3, max_ppartobj);
  814. store_size(b4, total_partobj * 100 / total_objects);
  815. printf("%% PartObj%10s%% %10s%% %10s%% %10s%%\n",
  816. b1, b2, b3, b4);
  817. store_size(b1, avg_size);store_size(b2, min_size);
  818. store_size(b3, max_size);store_size(b4, total_size);
  819. printf("Memory %10s %10s %10s %10s\n",
  820. b1, b2, b3, b4);
  821. store_size(b1, avg_used);store_size(b2, min_used);
  822. store_size(b3, max_used);store_size(b4, total_used);
  823. printf("Used %10s %10s %10s %10s\n",
  824. b1, b2, b3, b4);
  825. store_size(b1, avg_waste);store_size(b2, min_waste);
  826. store_size(b3, max_waste);store_size(b4, total_waste);
  827. printf("Loss %10s %10s %10s %10s\n",
  828. b1, b2, b3, b4);
  829. printf("\n");
  830. printf("Per Object Average Min Max\n");
  831. printf("---------------------------------------------\n");
  832. store_size(b1, avg_memobj);store_size(b2, min_memobj);
  833. store_size(b3, max_memobj);
  834. printf("Memory %10s %10s %10s\n",
  835. b1, b2, b3);
  836. store_size(b1, avg_objsize);store_size(b2, min_objsize);
  837. store_size(b3, max_objsize);
  838. printf("User %10s %10s %10s\n",
  839. b1, b2, b3);
  840. store_size(b1, avg_objwaste);store_size(b2, min_objwaste);
  841. store_size(b3, max_objwaste);
  842. printf("Loss %10s %10s %10s\n",
  843. b1, b2, b3);
  844. }
  845. void sort_slabs(void)
  846. {
  847. struct slabinfo *s1,*s2;
  848. for (s1 = slabinfo; s1 < slabinfo + slabs; s1++) {
  849. for (s2 = s1 + 1; s2 < slabinfo + slabs; s2++) {
  850. int result;
  851. if (sort_size)
  852. result = slab_size(s1) < slab_size(s2);
  853. else if (sort_active)
  854. result = slab_activity(s1) < slab_activity(s2);
  855. else
  856. result = strcasecmp(s1->name, s2->name);
  857. if (show_inverted)
  858. result = -result;
  859. if (result > 0) {
  860. struct slabinfo t;
  861. memcpy(&t, s1, sizeof(struct slabinfo));
  862. memcpy(s1, s2, sizeof(struct slabinfo));
  863. memcpy(s2, &t, sizeof(struct slabinfo));
  864. }
  865. }
  866. }
  867. }
  868. void sort_aliases(void)
  869. {
  870. struct aliasinfo *a1,*a2;
  871. for (a1 = aliasinfo; a1 < aliasinfo + aliases; a1++) {
  872. for (a2 = a1 + 1; a2 < aliasinfo + aliases; a2++) {
  873. char *n1, *n2;
  874. n1 = a1->name;
  875. n2 = a2->name;
  876. if (show_alias && !show_inverted) {
  877. n1 = a1->ref;
  878. n2 = a2->ref;
  879. }
  880. if (strcasecmp(n1, n2) > 0) {
  881. struct aliasinfo t;
  882. memcpy(&t, a1, sizeof(struct aliasinfo));
  883. memcpy(a1, a2, sizeof(struct aliasinfo));
  884. memcpy(a2, &t, sizeof(struct aliasinfo));
  885. }
  886. }
  887. }
  888. }
  889. void link_slabs(void)
  890. {
  891. struct aliasinfo *a;
  892. struct slabinfo *s;
  893. for (a = aliasinfo; a < aliasinfo + aliases; a++) {
  894. for (s = slabinfo; s < slabinfo + slabs; s++)
  895. if (strcmp(a->ref, s->name) == 0) {
  896. a->slab = s;
  897. s->refs++;
  898. break;
  899. }
  900. if (s == slabinfo + slabs)
  901. fatal("Unresolved alias %s\n", a->ref);
  902. }
  903. }
  904. void alias(void)
  905. {
  906. struct aliasinfo *a;
  907. char *active = NULL;
  908. sort_aliases();
  909. link_slabs();
  910. for(a = aliasinfo; a < aliasinfo + aliases; a++) {
  911. if (!show_single_ref && a->slab->refs == 1)
  912. continue;
  913. if (!show_inverted) {
  914. if (active) {
  915. if (strcmp(a->slab->name, active) == 0) {
  916. printf(" %s", a->name);
  917. continue;
  918. }
  919. }
  920. printf("\n%-12s <- %s", a->slab->name, a->name);
  921. active = a->slab->name;
  922. }
  923. else
  924. printf("%-20s -> %s\n", a->name, a->slab->name);
  925. }
  926. if (active)
  927. printf("\n");
  928. }
  929. void rename_slabs(void)
  930. {
  931. struct slabinfo *s;
  932. struct aliasinfo *a;
  933. for (s = slabinfo; s < slabinfo + slabs; s++) {
  934. if (*s->name != ':')
  935. continue;
  936. if (s->refs > 1 && !show_first_alias)
  937. continue;
  938. a = find_one_alias(s);
  939. if (a)
  940. s->name = a->name;
  941. else {
  942. s->name = "*";
  943. actual_slabs--;
  944. }
  945. }
  946. }
  947. int slab_mismatch(char *slab)
  948. {
  949. return regexec(&pattern, slab, 0, NULL, 0);
  950. }
  951. void read_slab_dir(void)
  952. {
  953. DIR *dir;
  954. struct dirent *de;
  955. struct slabinfo *slab = slabinfo;
  956. struct aliasinfo *alias = aliasinfo;
  957. char *p;
  958. char *t;
  959. int count;
  960. if (chdir("/sys/kernel/slab") && chdir("/sys/slab"))
  961. fatal("SYSFS support for SLUB not active\n");
  962. dir = opendir(".");
  963. while ((de = readdir(dir))) {
  964. if (de->d_name[0] == '.' ||
  965. (de->d_name[0] != ':' && slab_mismatch(de->d_name)))
  966. continue;
  967. switch (de->d_type) {
  968. case DT_LNK:
  969. alias->name = strdup(de->d_name);
  970. count = readlink(de->d_name, buffer, sizeof(buffer));
  971. if (count < 0)
  972. fatal("Cannot read symlink %s\n", de->d_name);
  973. buffer[count] = 0;
  974. p = buffer + count;
  975. while (p > buffer && p[-1] != '/')
  976. p--;
  977. alias->ref = strdup(p);
  978. alias++;
  979. break;
  980. case DT_DIR:
  981. if (chdir(de->d_name))
  982. fatal("Unable to access slab %s\n", slab->name);
  983. slab->name = strdup(de->d_name);
  984. slab->alias = 0;
  985. slab->refs = 0;
  986. slab->aliases = get_obj("aliases");
  987. slab->align = get_obj("align");
  988. slab->cache_dma = get_obj("cache_dma");
  989. slab->cpu_slabs = get_obj("cpu_slabs");
  990. slab->destroy_by_rcu = get_obj("destroy_by_rcu");
  991. slab->hwcache_align = get_obj("hwcache_align");
  992. slab->object_size = get_obj("object_size");
  993. slab->objects = get_obj("objects");
  994. slab->objs_per_slab = get_obj("objs_per_slab");
  995. slab->order = get_obj("order");
  996. slab->partial = get_obj("partial");
  997. slab->partial = get_obj_and_str("partial", &t);
  998. decode_numa_list(slab->numa_partial, t);
  999. free(t);
  1000. slab->poison = get_obj("poison");
  1001. slab->reclaim_account = get_obj("reclaim_account");
  1002. slab->red_zone = get_obj("red_zone");
  1003. slab->sanity_checks = get_obj("sanity_checks");
  1004. slab->slab_size = get_obj("slab_size");
  1005. slab->slabs = get_obj_and_str("slabs", &t);
  1006. decode_numa_list(slab->numa, t);
  1007. free(t);
  1008. slab->store_user = get_obj("store_user");
  1009. slab->trace = get_obj("trace");
  1010. slab->alloc_fastpath = get_obj("alloc_fastpath");
  1011. slab->alloc_slowpath = get_obj("alloc_slowpath");
  1012. slab->free_fastpath = get_obj("free_fastpath");
  1013. slab->free_slowpath = get_obj("free_slowpath");
  1014. slab->free_frozen= get_obj("free_frozen");
  1015. slab->free_add_partial = get_obj("free_add_partial");
  1016. slab->free_remove_partial = get_obj("free_remove_partial");
  1017. slab->alloc_from_partial = get_obj("alloc_from_partial");
  1018. slab->alloc_slab = get_obj("alloc_slab");
  1019. slab->alloc_refill = get_obj("alloc_refill");
  1020. slab->free_slab = get_obj("free_slab");
  1021. slab->cpuslab_flush = get_obj("cpuslab_flush");
  1022. slab->deactivate_full = get_obj("deactivate_full");
  1023. slab->deactivate_empty = get_obj("deactivate_empty");
  1024. slab->deactivate_to_head = get_obj("deactivate_to_head");
  1025. slab->deactivate_to_tail = get_obj("deactivate_to_tail");
  1026. slab->deactivate_remote_frees = get_obj("deactivate_remote_frees");
  1027. chdir("..");
  1028. if (slab->name[0] == ':')
  1029. alias_targets++;
  1030. slab++;
  1031. break;
  1032. default :
  1033. fatal("Unknown file type %lx\n", de->d_type);
  1034. }
  1035. }
  1036. closedir(dir);
  1037. slabs = slab - slabinfo;
  1038. actual_slabs = slabs;
  1039. aliases = alias - aliasinfo;
  1040. if (slabs > MAX_SLABS)
  1041. fatal("Too many slabs\n");
  1042. if (aliases > MAX_ALIASES)
  1043. fatal("Too many aliases\n");
  1044. }
  1045. void output_slabs(void)
  1046. {
  1047. struct slabinfo *slab;
  1048. for (slab = slabinfo; slab < slabinfo + slabs; slab++) {
  1049. if (slab->alias)
  1050. continue;
  1051. if (show_numa)
  1052. slab_numa(slab, 0);
  1053. else if (show_track)
  1054. show_tracking(slab);
  1055. else if (validate)
  1056. slab_validate(slab);
  1057. else if (shrink)
  1058. slab_shrink(slab);
  1059. else if (set_debug)
  1060. slab_debug(slab);
  1061. else if (show_ops)
  1062. ops(slab);
  1063. else if (show_slab)
  1064. slabcache(slab);
  1065. else if (show_report)
  1066. report(slab);
  1067. }
  1068. }
  1069. struct option opts[] = {
  1070. { "aliases", 0, NULL, 'a' },
  1071. { "activity", 0, NULL, 'A' },
  1072. { "debug", 2, NULL, 'd' },
  1073. { "display-activity", 0, NULL, 'D' },
  1074. { "empty", 0, NULL, 'e' },
  1075. { "first-alias", 0, NULL, 'f' },
  1076. { "help", 0, NULL, 'h' },
  1077. { "inverted", 0, NULL, 'i'},
  1078. { "numa", 0, NULL, 'n' },
  1079. { "ops", 0, NULL, 'o' },
  1080. { "report", 0, NULL, 'r' },
  1081. { "shrink", 0, NULL, 's' },
  1082. { "slabs", 0, NULL, 'l' },
  1083. { "track", 0, NULL, 't'},
  1084. { "validate", 0, NULL, 'v' },
  1085. { "zero", 0, NULL, 'z' },
  1086. { "1ref", 0, NULL, '1'},
  1087. { NULL, 0, NULL, 0 }
  1088. };
  1089. int main(int argc, char *argv[])
  1090. {
  1091. int c;
  1092. int err;
  1093. char *pattern_source;
  1094. page_size = getpagesize();
  1095. while ((c = getopt_long(argc, argv, "aAd::Defhil1noprstvzTS",
  1096. opts, NULL)) != -1)
  1097. switch (c) {
  1098. case '1':
  1099. show_single_ref = 1;
  1100. break;
  1101. case 'a':
  1102. show_alias = 1;
  1103. break;
  1104. case 'A':
  1105. sort_active = 1;
  1106. break;
  1107. case 'd':
  1108. set_debug = 1;
  1109. if (!debug_opt_scan(optarg))
  1110. fatal("Invalid debug option '%s'\n", optarg);
  1111. break;
  1112. case 'D':
  1113. show_activity = 1;
  1114. break;
  1115. case 'e':
  1116. show_empty = 1;
  1117. break;
  1118. case 'f':
  1119. show_first_alias = 1;
  1120. break;
  1121. case 'h':
  1122. usage();
  1123. return 0;
  1124. case 'i':
  1125. show_inverted = 1;
  1126. break;
  1127. case 'n':
  1128. show_numa = 1;
  1129. break;
  1130. case 'o':
  1131. show_ops = 1;
  1132. break;
  1133. case 'r':
  1134. show_report = 1;
  1135. break;
  1136. case 's':
  1137. shrink = 1;
  1138. break;
  1139. case 'l':
  1140. show_slab = 1;
  1141. break;
  1142. case 't':
  1143. show_track = 1;
  1144. break;
  1145. case 'v':
  1146. validate = 1;
  1147. break;
  1148. case 'z':
  1149. skip_zero = 0;
  1150. break;
  1151. case 'T':
  1152. show_totals = 1;
  1153. break;
  1154. case 'S':
  1155. sort_size = 1;
  1156. break;
  1157. default:
  1158. fatal("%s: Invalid option '%c'\n", argv[0], optopt);
  1159. }
  1160. if (!show_slab && !show_alias && !show_track && !show_report
  1161. && !validate && !shrink && !set_debug && !show_ops)
  1162. show_slab = 1;
  1163. if (argc > optind)
  1164. pattern_source = argv[optind];
  1165. else
  1166. pattern_source = ".*";
  1167. err = regcomp(&pattern, pattern_source, REG_ICASE|REG_NOSUB);
  1168. if (err)
  1169. fatal("%s: Invalid pattern '%s' code %d\n",
  1170. argv[0], pattern_source, err);
  1171. read_slab_dir();
  1172. if (show_alias)
  1173. alias();
  1174. else
  1175. if (show_totals)
  1176. totals();
  1177. else {
  1178. link_slabs();
  1179. rename_slabs();
  1180. sort_slabs();
  1181. output_slabs();
  1182. }
  1183. return 0;
  1184. }