container.h 31 KB

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  1. /* Copyright (c) 2003-2004, Roger Dingledine
  2. * Copyright (c) 2004-2006, Roger Dingledine, Nick Mathewson.
  3. * Copyright (c) 2007-2016, The Tor Project, Inc. */
  4. /* See LICENSE for licensing information */
  5. #ifndef TOR_CONTAINER_H
  6. #define TOR_CONTAINER_H
  7. #include "util.h"
  8. #include "siphash.h"
  9. /** A resizeable list of pointers, with associated helpful functionality.
  10. *
  11. * The members of this struct are exposed only so that macros and inlines can
  12. * use them; all access to smartlist internals should go through the functions
  13. * and macros defined here.
  14. **/
  15. typedef struct smartlist_t {
  16. /** @{ */
  17. /** <b>list</b> has enough capacity to store exactly <b>capacity</b> elements
  18. * before it needs to be resized. Only the first <b>num_used</b> (\<=
  19. * capacity) elements point to valid data.
  20. */
  21. void **list;
  22. int num_used;
  23. int capacity;
  24. /** @} */
  25. } smartlist_t;
  26. MOCK_DECL(smartlist_t *, smartlist_new, (void));
  27. MOCK_DECL(void, smartlist_free, (smartlist_t *sl));
  28. void smartlist_clear(smartlist_t *sl);
  29. void smartlist_add(smartlist_t *sl, void *element);
  30. void smartlist_add_all(smartlist_t *sl, const smartlist_t *s2);
  31. void smartlist_remove(smartlist_t *sl, const void *element);
  32. void smartlist_remove_keeporder(smartlist_t *sl, const void *element);
  33. void *smartlist_pop_last(smartlist_t *sl);
  34. void smartlist_reverse(smartlist_t *sl);
  35. void smartlist_string_remove(smartlist_t *sl, const char *element);
  36. int smartlist_contains(const smartlist_t *sl, const void *element);
  37. int smartlist_contains_string(const smartlist_t *sl, const char *element);
  38. int smartlist_pos(const smartlist_t *sl, const void *element);
  39. int smartlist_string_pos(const smartlist_t *, const char *elt);
  40. int smartlist_contains_string_case(const smartlist_t *sl, const char *element);
  41. int smartlist_contains_int_as_string(const smartlist_t *sl, int num);
  42. int smartlist_strings_eq(const smartlist_t *sl1, const smartlist_t *sl2);
  43. int smartlist_contains_digest(const smartlist_t *sl, const char *element);
  44. int smartlist_ints_eq(const smartlist_t *sl1, const smartlist_t *sl2);
  45. int smartlist_overlap(const smartlist_t *sl1, const smartlist_t *sl2);
  46. void smartlist_intersect(smartlist_t *sl1, const smartlist_t *sl2);
  47. void smartlist_subtract(smartlist_t *sl1, const smartlist_t *sl2);
  48. /* smartlist_choose() is defined in crypto.[ch] */
  49. #ifdef DEBUG_SMARTLIST
  50. /** Return the number of items in sl.
  51. */
  52. static inline int smartlist_len(const smartlist_t *sl);
  53. static inline int smartlist_len(const smartlist_t *sl) {
  54. tor_assert(sl);
  55. return (sl)->num_used;
  56. }
  57. /** Return the <b>idx</b>th element of sl.
  58. */
  59. static inline void *smartlist_get(const smartlist_t *sl, int idx);
  60. static inline void *smartlist_get(const smartlist_t *sl, int idx) {
  61. tor_assert(sl);
  62. tor_assert(idx>=0);
  63. tor_assert(sl->num_used > idx);
  64. return sl->list[idx];
  65. }
  66. static inline void smartlist_set(smartlist_t *sl, int idx, void *val) {
  67. tor_assert(sl);
  68. tor_assert(idx>=0);
  69. tor_assert(sl->num_used > idx);
  70. sl->list[idx] = val;
  71. }
  72. #else
  73. #define smartlist_len(sl) ((sl)->num_used)
  74. #define smartlist_get(sl, idx) ((sl)->list[idx])
  75. #define smartlist_set(sl, idx, val) ((sl)->list[idx] = (val))
  76. #endif
  77. /** Exchange the elements at indices <b>idx1</b> and <b>idx2</b> of the
  78. * smartlist <b>sl</b>. */
  79. static inline void smartlist_swap(smartlist_t *sl, int idx1, int idx2)
  80. {
  81. if (idx1 != idx2) {
  82. void *elt = smartlist_get(sl, idx1);
  83. smartlist_set(sl, idx1, smartlist_get(sl, idx2));
  84. smartlist_set(sl, idx2, elt);
  85. }
  86. }
  87. void smartlist_del(smartlist_t *sl, int idx);
  88. void smartlist_del_keeporder(smartlist_t *sl, int idx);
  89. void smartlist_insert(smartlist_t *sl, int idx, void *val);
  90. void smartlist_sort(smartlist_t *sl,
  91. int (*compare)(const void **a, const void **b));
  92. void *smartlist_get_most_frequent_(const smartlist_t *sl,
  93. int (*compare)(const void **a, const void **b),
  94. int *count_out);
  95. #define smartlist_get_most_frequent(sl, compare) \
  96. smartlist_get_most_frequent_((sl), (compare), NULL)
  97. void smartlist_uniq(smartlist_t *sl,
  98. int (*compare)(const void **a, const void **b),
  99. void (*free_fn)(void *elt));
  100. void smartlist_sort_strings(smartlist_t *sl);
  101. void smartlist_sort_digests(smartlist_t *sl);
  102. void smartlist_sort_digests256(smartlist_t *sl);
  103. void smartlist_sort_pointers(smartlist_t *sl);
  104. const char *smartlist_get_most_frequent_string(smartlist_t *sl);
  105. const char *smartlist_get_most_frequent_string_(smartlist_t *sl,
  106. int *count_out);
  107. const uint8_t *smartlist_get_most_frequent_digest256(smartlist_t *sl);
  108. void smartlist_uniq_strings(smartlist_t *sl);
  109. void smartlist_uniq_digests(smartlist_t *sl);
  110. void smartlist_uniq_digests256(smartlist_t *sl);
  111. void *smartlist_bsearch(smartlist_t *sl, const void *key,
  112. int (*compare)(const void *key, const void **member));
  113. int smartlist_bsearch_idx(const smartlist_t *sl, const void *key,
  114. int (*compare)(const void *key, const void **member),
  115. int *found_out);
  116. void smartlist_pqueue_add(smartlist_t *sl,
  117. int (*compare)(const void *a, const void *b),
  118. int idx_field_offset,
  119. void *item);
  120. void *smartlist_pqueue_pop(smartlist_t *sl,
  121. int (*compare)(const void *a, const void *b),
  122. int idx_field_offset);
  123. void smartlist_pqueue_remove(smartlist_t *sl,
  124. int (*compare)(const void *a, const void *b),
  125. int idx_field_offset,
  126. void *item);
  127. void smartlist_pqueue_assert_ok(smartlist_t *sl,
  128. int (*compare)(const void *a, const void *b),
  129. int idx_field_offset);
  130. #define SPLIT_SKIP_SPACE 0x01
  131. #define SPLIT_IGNORE_BLANK 0x02
  132. #define SPLIT_STRIP_SPACE 0x04
  133. int smartlist_split_string(smartlist_t *sl, const char *str, const char *sep,
  134. int flags, int max);
  135. char *smartlist_join_strings(smartlist_t *sl, const char *join, int terminate,
  136. size_t *len_out) ATTR_MALLOC;
  137. char *smartlist_join_strings2(smartlist_t *sl, const char *join,
  138. size_t join_len, int terminate, size_t *len_out)
  139. ATTR_MALLOC;
  140. /** Iterate over the items in a smartlist <b>sl</b>, in order. For each item,
  141. * assign it to a new local variable of type <b>type</b> named <b>var</b>, and
  142. * execute the statements inside the loop body. Inside the loop, the loop
  143. * index can be accessed as <b>var</b>_sl_idx and the length of the list can
  144. * be accessed as <b>var</b>_sl_len.
  145. *
  146. * NOTE: Do not change the length of the list while the loop is in progress,
  147. * unless you adjust the _sl_len variable correspondingly. See second example
  148. * below.
  149. *
  150. * Example use:
  151. * <pre>
  152. * smartlist_t *list = smartlist_split("A:B:C", ":", 0, 0);
  153. * SMARTLIST_FOREACH_BEGIN(list, char *, cp) {
  154. * printf("%d: %s\n", cp_sl_idx, cp);
  155. * tor_free(cp);
  156. * } SMARTLIST_FOREACH_END(cp);
  157. * smartlist_free(list);
  158. * </pre>
  159. *
  160. * Example use (advanced):
  161. * <pre>
  162. * SMARTLIST_FOREACH_BEGIN(list, char *, cp) {
  163. * if (!strcmp(cp, "junk")) {
  164. * tor_free(cp);
  165. * SMARTLIST_DEL_CURRENT(list, cp);
  166. * }
  167. * } SMARTLIST_FOREACH_END(cp);
  168. * </pre>
  169. */
  170. /* Note: these macros use token pasting, and reach into smartlist internals.
  171. * This can make them a little daunting. Here's the approximate unpacking of
  172. * the above examples, for entertainment value:
  173. *
  174. * <pre>
  175. * smartlist_t *list = smartlist_split("A:B:C", ":", 0, 0);
  176. * {
  177. * int cp_sl_idx, cp_sl_len = smartlist_len(list);
  178. * char *cp;
  179. * for (cp_sl_idx = 0; cp_sl_idx < cp_sl_len; ++cp_sl_idx) {
  180. * cp = smartlist_get(list, cp_sl_idx);
  181. * printf("%d: %s\n", cp_sl_idx, cp);
  182. * tor_free(cp);
  183. * }
  184. * }
  185. * smartlist_free(list);
  186. * </pre>
  187. *
  188. * <pre>
  189. * {
  190. * int cp_sl_idx, cp_sl_len = smartlist_len(list);
  191. * char *cp;
  192. * for (cp_sl_idx = 0; cp_sl_idx < cp_sl_len; ++cp_sl_idx) {
  193. * cp = smartlist_get(list, cp_sl_idx);
  194. * if (!strcmp(cp, "junk")) {
  195. * tor_free(cp);
  196. * smartlist_del(list, cp_sl_idx);
  197. * --cp_sl_idx;
  198. * --cp_sl_len;
  199. * }
  200. * }
  201. * }
  202. * </pre>
  203. */
  204. #define SMARTLIST_FOREACH_BEGIN(sl, type, var) \
  205. STMT_BEGIN \
  206. int var ## _sl_idx, var ## _sl_len=(sl)->num_used; \
  207. type var; \
  208. for (var ## _sl_idx = 0; var ## _sl_idx < var ## _sl_len; \
  209. ++var ## _sl_idx) { \
  210. var = (sl)->list[var ## _sl_idx];
  211. #define SMARTLIST_FOREACH_END(var) \
  212. var = NULL; \
  213. } STMT_END
  214. /**
  215. * An alias for SMARTLIST_FOREACH_BEGIN and SMARTLIST_FOREACH_END, using
  216. * <b>cmd</b> as the loop body. This wrapper is here for convenience with
  217. * very short loops.
  218. *
  219. * By convention, we do not use this for loops which nest, or for loops over
  220. * 10 lines or so. Use SMARTLIST_FOREACH_{BEGIN,END} for those.
  221. */
  222. #define SMARTLIST_FOREACH(sl, type, var, cmd) \
  223. SMARTLIST_FOREACH_BEGIN(sl,type,var) { \
  224. cmd; \
  225. } SMARTLIST_FOREACH_END(var)
  226. /** Helper: While in a SMARTLIST_FOREACH loop over the list <b>sl</b> indexed
  227. * with the variable <b>var</b>, remove the current element in a way that
  228. * won't confuse the loop. */
  229. #define SMARTLIST_DEL_CURRENT(sl, var) \
  230. STMT_BEGIN \
  231. smartlist_del(sl, var ## _sl_idx); \
  232. --var ## _sl_idx; \
  233. --var ## _sl_len; \
  234. STMT_END
  235. /** Helper: While in a SMARTLIST_FOREACH loop over the list <b>sl</b> indexed
  236. * with the variable <b>var</b>, remove the current element in a way that
  237. * won't confuse the loop. */
  238. #define SMARTLIST_DEL_CURRENT_KEEPORDER(sl, var) \
  239. STMT_BEGIN \
  240. smartlist_del_keeporder(sl, var ## _sl_idx); \
  241. --var ## _sl_idx; \
  242. --var ## _sl_len; \
  243. STMT_END
  244. /** Helper: While in a SMARTLIST_FOREACH loop over the list <b>sl</b> indexed
  245. * with the variable <b>var</b>, replace the current element with <b>val</b>.
  246. * Does not deallocate the current value of <b>var</b>.
  247. */
  248. #define SMARTLIST_REPLACE_CURRENT(sl, var, val) \
  249. STMT_BEGIN \
  250. smartlist_set(sl, var ## _sl_idx, val); \
  251. STMT_END
  252. /* Helper: Given two lists of items, possibly of different types, such that
  253. * both lists are sorted on some common field (as determined by a comparison
  254. * expression <b>cmpexpr</b>), and such that one list (<b>sl1</b>) has no
  255. * duplicates on the common field, loop through the lists in lockstep, and
  256. * execute <b>unmatched_var2</b> on items in var2 that do not appear in
  257. * var1.
  258. *
  259. * WARNING: It isn't safe to add remove elements from either list while the
  260. * loop is in progress.
  261. *
  262. * Example use:
  263. * SMARTLIST_FOREACH_JOIN(routerstatus_list, routerstatus_t *, rs,
  264. * routerinfo_list, routerinfo_t *, ri,
  265. * tor_memcmp(rs->identity_digest, ri->identity_digest, 20),
  266. * log_info(LD_GENERAL,"No match for %s", ri->nickname)) {
  267. * log_info(LD_GENERAL, "%s matches routerstatus %p", ri->nickname, rs);
  268. * } SMARTLIST_FOREACH_JOIN_END(rs, ri);
  269. **/
  270. /* The example above unpacks (approximately) to:
  271. * int rs_sl_idx = 0, rs_sl_len = smartlist_len(routerstatus_list);
  272. * int ri_sl_idx, ri_sl_len = smartlist_len(routerinfo_list);
  273. * int rs_ri_cmp;
  274. * routerstatus_t *rs;
  275. * routerinfo_t *ri;
  276. * for (; ri_sl_idx < ri_sl_len; ++ri_sl_idx) {
  277. * ri = smartlist_get(routerinfo_list, ri_sl_idx);
  278. * while (rs_sl_idx < rs_sl_len) {
  279. * rs = smartlist_get(routerstatus_list, rs_sl_idx);
  280. * rs_ri_cmp = tor_memcmp(rs->identity_digest, ri->identity_digest, 20);
  281. * if (rs_ri_cmp > 0) {
  282. * break;
  283. * } else if (rs_ri_cmp == 0) {
  284. * goto matched_ri;
  285. * } else {
  286. * ++rs_sl_idx;
  287. * }
  288. * }
  289. * log_info(LD_GENERAL,"No match for %s", ri->nickname);
  290. * continue;
  291. * matched_ri: {
  292. * log_info(LD_GENERAL,"%s matches with routerstatus %p",ri->nickname,rs);
  293. * }
  294. * }
  295. */
  296. #define SMARTLIST_FOREACH_JOIN(sl1, type1, var1, sl2, type2, var2, \
  297. cmpexpr, unmatched_var2) \
  298. STMT_BEGIN \
  299. int var1 ## _sl_idx = 0, var1 ## _sl_len=(sl1)->num_used; \
  300. int var2 ## _sl_idx = 0, var2 ## _sl_len=(sl2)->num_used; \
  301. int var1 ## _ ## var2 ## _cmp; \
  302. type1 var1; \
  303. type2 var2; \
  304. for (; var2##_sl_idx < var2##_sl_len; ++var2##_sl_idx) { \
  305. var2 = (sl2)->list[var2##_sl_idx]; \
  306. while (var1##_sl_idx < var1##_sl_len) { \
  307. var1 = (sl1)->list[var1##_sl_idx]; \
  308. var1##_##var2##_cmp = (cmpexpr); \
  309. if (var1##_##var2##_cmp > 0) { \
  310. break; \
  311. } else if (var1##_##var2##_cmp == 0) { \
  312. goto matched_##var2; \
  313. } else { \
  314. ++var1##_sl_idx; \
  315. } \
  316. } \
  317. /* Ran out of v1, or no match for var2. */ \
  318. unmatched_var2; \
  319. continue; \
  320. matched_##var2: ; \
  321. #define SMARTLIST_FOREACH_JOIN_END(var1, var2) \
  322. } \
  323. STMT_END
  324. #define DECLARE_MAP_FNS(maptype, keytype, prefix) \
  325. typedef struct maptype maptype; \
  326. typedef struct prefix##entry_t *prefix##iter_t; \
  327. MOCK_DECL(maptype*, prefix##new, (void)); \
  328. void* prefix##set(maptype *map, keytype key, void *val); \
  329. void* prefix##get(const maptype *map, keytype key); \
  330. void* prefix##remove(maptype *map, keytype key); \
  331. MOCK_DECL(void, prefix##free, (maptype *map, void (*free_val)(void*))); \
  332. int prefix##isempty(const maptype *map); \
  333. int prefix##size(const maptype *map); \
  334. prefix##iter_t *prefix##iter_init(maptype *map); \
  335. prefix##iter_t *prefix##iter_next(maptype *map, prefix##iter_t *iter); \
  336. prefix##iter_t *prefix##iter_next_rmv(maptype *map, prefix##iter_t *iter); \
  337. void prefix##iter_get(prefix##iter_t *iter, keytype *keyp, void **valp); \
  338. int prefix##iter_done(prefix##iter_t *iter); \
  339. void prefix##assert_ok(const maptype *map)
  340. /* Map from const char * to void *. Implemented with a hash table. */
  341. DECLARE_MAP_FNS(strmap_t, const char *, strmap_);
  342. /* Map from const char[DIGEST_LEN] to void *. Implemented with a hash table. */
  343. DECLARE_MAP_FNS(digestmap_t, const char *, digestmap_);
  344. /* Map from const uint8_t[DIGEST256_LEN] to void *. Implemented with a hash
  345. * table. */
  346. DECLARE_MAP_FNS(digest256map_t, const uint8_t *, digest256map_);
  347. #undef DECLARE_MAP_FNS
  348. /** Iterates over the key-value pairs in a map <b>map</b> in order.
  349. * <b>prefix</b> is as for DECLARE_MAP_FNS (i.e., strmap_ or digestmap_).
  350. * The map's keys and values are of type keytype and valtype respectively;
  351. * each iteration assigns them to keyvar and valvar.
  352. *
  353. * Example use:
  354. * MAP_FOREACH(digestmap_, m, const char *, k, routerinfo_t *, r) {
  355. * // use k and r
  356. * } MAP_FOREACH_END.
  357. */
  358. /* Unpacks to, approximately:
  359. * {
  360. * digestmap_iter_t *k_iter;
  361. * for (k_iter = digestmap_iter_init(m); !digestmap_iter_done(k_iter);
  362. * k_iter = digestmap_iter_next(m, k_iter)) {
  363. * const char *k;
  364. * void *r_voidp;
  365. * routerinfo_t *r;
  366. * digestmap_iter_get(k_iter, &k, &r_voidp);
  367. * r = r_voidp;
  368. * // use k and r
  369. * }
  370. * }
  371. */
  372. #define MAP_FOREACH(prefix, map, keytype, keyvar, valtype, valvar) \
  373. STMT_BEGIN \
  374. prefix##iter_t *keyvar##_iter; \
  375. for (keyvar##_iter = prefix##iter_init(map); \
  376. !prefix##iter_done(keyvar##_iter); \
  377. keyvar##_iter = prefix##iter_next(map, keyvar##_iter)) { \
  378. keytype keyvar; \
  379. void *valvar##_voidp; \
  380. valtype valvar; \
  381. prefix##iter_get(keyvar##_iter, &keyvar, &valvar##_voidp); \
  382. valvar = valvar##_voidp;
  383. /** As MAP_FOREACH, except allows members to be removed from the map
  384. * during the iteration via MAP_DEL_CURRENT. Example use:
  385. *
  386. * Example use:
  387. * MAP_FOREACH(digestmap_, m, const char *, k, routerinfo_t *, r) {
  388. * if (is_very_old(r))
  389. * MAP_DEL_CURRENT(k);
  390. * } MAP_FOREACH_END.
  391. **/
  392. /* Unpacks to, approximately:
  393. * {
  394. * digestmap_iter_t *k_iter;
  395. * int k_del=0;
  396. * for (k_iter = digestmap_iter_init(m); !digestmap_iter_done(k_iter);
  397. * k_iter = k_del ? digestmap_iter_next(m, k_iter)
  398. * : digestmap_iter_next_rmv(m, k_iter)) {
  399. * const char *k;
  400. * void *r_voidp;
  401. * routerinfo_t *r;
  402. * k_del=0;
  403. * digestmap_iter_get(k_iter, &k, &r_voidp);
  404. * r = r_voidp;
  405. * if (is_very_old(r)) {
  406. * k_del = 1;
  407. * }
  408. * }
  409. * }
  410. */
  411. #define MAP_FOREACH_MODIFY(prefix, map, keytype, keyvar, valtype, valvar) \
  412. STMT_BEGIN \
  413. prefix##iter_t *keyvar##_iter; \
  414. int keyvar##_del=0; \
  415. for (keyvar##_iter = prefix##iter_init(map); \
  416. !prefix##iter_done(keyvar##_iter); \
  417. keyvar##_iter = keyvar##_del ? \
  418. prefix##iter_next_rmv(map, keyvar##_iter) : \
  419. prefix##iter_next(map, keyvar##_iter)) { \
  420. keytype keyvar; \
  421. void *valvar##_voidp; \
  422. valtype valvar; \
  423. keyvar##_del=0; \
  424. prefix##iter_get(keyvar##_iter, &keyvar, &valvar##_voidp); \
  425. valvar = valvar##_voidp;
  426. /** Used with MAP_FOREACH_MODIFY to remove the currently-iterated-upon
  427. * member of the map. */
  428. #define MAP_DEL_CURRENT(keyvar) \
  429. STMT_BEGIN \
  430. keyvar##_del = 1; \
  431. STMT_END
  432. /** Used to end a MAP_FOREACH() block. */
  433. #define MAP_FOREACH_END } STMT_END ;
  434. /** As MAP_FOREACH, but does not require declaration of prefix or keytype.
  435. * Example use:
  436. * DIGESTMAP_FOREACH(m, k, routerinfo_t *, r) {
  437. * // use k and r
  438. * } DIGESTMAP_FOREACH_END.
  439. */
  440. #define DIGESTMAP_FOREACH(map, keyvar, valtype, valvar) \
  441. MAP_FOREACH(digestmap_, map, const char *, keyvar, valtype, valvar)
  442. /** As MAP_FOREACH_MODIFY, but does not require declaration of prefix or
  443. * keytype.
  444. * Example use:
  445. * DIGESTMAP_FOREACH_MODIFY(m, k, routerinfo_t *, r) {
  446. * if (is_very_old(r))
  447. * MAP_DEL_CURRENT(k);
  448. * } DIGESTMAP_FOREACH_END.
  449. */
  450. #define DIGESTMAP_FOREACH_MODIFY(map, keyvar, valtype, valvar) \
  451. MAP_FOREACH_MODIFY(digestmap_, map, const char *, keyvar, valtype, valvar)
  452. /** Used to end a DIGESTMAP_FOREACH() block. */
  453. #define DIGESTMAP_FOREACH_END MAP_FOREACH_END
  454. #define DIGEST256MAP_FOREACH(map, keyvar, valtype, valvar) \
  455. MAP_FOREACH(digest256map_, map, const uint8_t *, keyvar, valtype, valvar)
  456. #define DIGEST256MAP_FOREACH_MODIFY(map, keyvar, valtype, valvar) \
  457. MAP_FOREACH_MODIFY(digest256map_, map, const uint8_t *, \
  458. keyvar, valtype, valvar)
  459. #define DIGEST256MAP_FOREACH_END MAP_FOREACH_END
  460. #define STRMAP_FOREACH(map, keyvar, valtype, valvar) \
  461. MAP_FOREACH(strmap_, map, const char *, keyvar, valtype, valvar)
  462. #define STRMAP_FOREACH_MODIFY(map, keyvar, valtype, valvar) \
  463. MAP_FOREACH_MODIFY(strmap_, map, const char *, keyvar, valtype, valvar)
  464. #define STRMAP_FOREACH_END MAP_FOREACH_END
  465. void* strmap_set_lc(strmap_t *map, const char *key, void *val);
  466. void* strmap_get_lc(const strmap_t *map, const char *key);
  467. void* strmap_remove_lc(strmap_t *map, const char *key);
  468. #define DECLARE_TYPED_DIGESTMAP_FNS(prefix, maptype, valtype) \
  469. typedef struct maptype maptype; \
  470. typedef struct prefix##iter_t *prefix##iter_t; \
  471. ATTR_UNUSED static inline maptype* \
  472. prefix##new(void) \
  473. { \
  474. return (maptype*)digestmap_new(); \
  475. } \
  476. ATTR_UNUSED static inline digestmap_t* \
  477. prefix##to_digestmap(maptype *map) \
  478. { \
  479. return (digestmap_t*)map; \
  480. } \
  481. ATTR_UNUSED static inline valtype* \
  482. prefix##get(maptype *map, const char *key) \
  483. { \
  484. return (valtype*)digestmap_get((digestmap_t*)map, key); \
  485. } \
  486. ATTR_UNUSED static inline valtype* \
  487. prefix##set(maptype *map, const char *key, valtype *val) \
  488. { \
  489. return (valtype*)digestmap_set((digestmap_t*)map, key, val); \
  490. } \
  491. ATTR_UNUSED static inline valtype* \
  492. prefix##remove(maptype *map, const char *key) \
  493. { \
  494. return (valtype*)digestmap_remove((digestmap_t*)map, key); \
  495. } \
  496. ATTR_UNUSED static inline void \
  497. prefix##f##ree(maptype *map, void (*free_val)(void*)) \
  498. { \
  499. digestmap_free((digestmap_t*)map, free_val); \
  500. } \
  501. ATTR_UNUSED static inline int \
  502. prefix##isempty(maptype *map) \
  503. { \
  504. return digestmap_isempty((digestmap_t*)map); \
  505. } \
  506. ATTR_UNUSED static inline int \
  507. prefix##size(maptype *map) \
  508. { \
  509. return digestmap_size((digestmap_t*)map); \
  510. } \
  511. ATTR_UNUSED static inline \
  512. prefix##iter_t *prefix##iter_init(maptype *map) \
  513. { \
  514. return (prefix##iter_t*) digestmap_iter_init((digestmap_t*)map); \
  515. } \
  516. ATTR_UNUSED static inline \
  517. prefix##iter_t *prefix##iter_next(maptype *map, prefix##iter_t *iter) \
  518. { \
  519. return (prefix##iter_t*) digestmap_iter_next( \
  520. (digestmap_t*)map, (digestmap_iter_t*)iter); \
  521. } \
  522. ATTR_UNUSED static inline prefix##iter_t* \
  523. prefix##iter_next_rmv(maptype *map, prefix##iter_t *iter) \
  524. { \
  525. return (prefix##iter_t*) digestmap_iter_next_rmv( \
  526. (digestmap_t*)map, (digestmap_iter_t*)iter); \
  527. } \
  528. ATTR_UNUSED static inline void \
  529. prefix##iter_get(prefix##iter_t *iter, \
  530. const char **keyp, \
  531. valtype **valp) \
  532. { \
  533. void *v; \
  534. digestmap_iter_get((digestmap_iter_t*) iter, keyp, &v); \
  535. *valp = v; \
  536. } \
  537. ATTR_UNUSED static inline int \
  538. prefix##iter_done(prefix##iter_t *iter) \
  539. { \
  540. return digestmap_iter_done((digestmap_iter_t*)iter); \
  541. }
  542. #if SIZEOF_INT == 4
  543. #define BITARRAY_SHIFT 5
  544. #elif SIZEOF_INT == 8
  545. #define BITARRAY_SHIFT 6
  546. #else
  547. #error "int is neither 4 nor 8 bytes. I can't deal with that."
  548. #endif
  549. #define BITARRAY_MASK ((1u<<BITARRAY_SHIFT)-1)
  550. /** A random-access array of one-bit-wide elements. */
  551. typedef unsigned int bitarray_t;
  552. /** Create a new bit array that can hold <b>n_bits</b> bits. */
  553. static inline bitarray_t *
  554. bitarray_init_zero(unsigned int n_bits)
  555. {
  556. /* round up to the next int. */
  557. size_t sz = (n_bits+BITARRAY_MASK) >> BITARRAY_SHIFT;
  558. return tor_calloc(sz, sizeof(unsigned int));
  559. }
  560. /** Expand <b>ba</b> from holding <b>n_bits_old</b> to <b>n_bits_new</b>,
  561. * clearing all new bits. Returns a possibly changed pointer to the
  562. * bitarray. */
  563. static inline bitarray_t *
  564. bitarray_expand(bitarray_t *ba,
  565. unsigned int n_bits_old, unsigned int n_bits_new)
  566. {
  567. size_t sz_old = (n_bits_old+BITARRAY_MASK) >> BITARRAY_SHIFT;
  568. size_t sz_new = (n_bits_new+BITARRAY_MASK) >> BITARRAY_SHIFT;
  569. char *ptr;
  570. if (sz_new <= sz_old)
  571. return ba;
  572. ptr = tor_reallocarray(ba, sz_new, sizeof(unsigned int));
  573. /* This memset does nothing to the older excess bytes. But they were
  574. * already set to 0 by bitarry_init_zero. */
  575. memset(ptr+sz_old*sizeof(unsigned int), 0,
  576. (sz_new-sz_old)*sizeof(unsigned int));
  577. return (bitarray_t*) ptr;
  578. }
  579. /** Free the bit array <b>ba</b>. */
  580. static inline void
  581. bitarray_free(bitarray_t *ba)
  582. {
  583. tor_free(ba);
  584. }
  585. /** Set the <b>bit</b>th bit in <b>b</b> to 1. */
  586. static inline void
  587. bitarray_set(bitarray_t *b, int bit)
  588. {
  589. b[bit >> BITARRAY_SHIFT] |= (1u << (bit & BITARRAY_MASK));
  590. }
  591. /** Set the <b>bit</b>th bit in <b>b</b> to 0. */
  592. static inline void
  593. bitarray_clear(bitarray_t *b, int bit)
  594. {
  595. b[bit >> BITARRAY_SHIFT] &= ~ (1u << (bit & BITARRAY_MASK));
  596. }
  597. /** Return true iff <b>bit</b>th bit in <b>b</b> is nonzero. NOTE: does
  598. * not necessarily return 1 on true. */
  599. static inline unsigned int
  600. bitarray_is_set(bitarray_t *b, int bit)
  601. {
  602. return b[bit >> BITARRAY_SHIFT] & (1u << (bit & BITARRAY_MASK));
  603. }
  604. /** A set of digests, implemented as a Bloom filter. */
  605. typedef struct {
  606. int mask; /**< One less than the number of bits in <b>ba</b>; always one less
  607. * than a power of two. */
  608. bitarray_t *ba; /**< A bit array to implement the Bloom filter. */
  609. } digestset_t;
  610. #define BIT(n) ((n) & set->mask)
  611. /** Add the digest <b>digest</b> to <b>set</b>. */
  612. static inline void
  613. digestset_add(digestset_t *set, const char *digest)
  614. {
  615. const uint64_t x = siphash24g(digest, 20);
  616. const uint32_t d1 = (uint32_t) x;
  617. const uint32_t d2 = (uint32_t)( (x>>16) + x);
  618. const uint32_t d3 = (uint32_t)( (x>>32) + x);
  619. const uint32_t d4 = (uint32_t)( (x>>48) + x);
  620. bitarray_set(set->ba, BIT(d1));
  621. bitarray_set(set->ba, BIT(d2));
  622. bitarray_set(set->ba, BIT(d3));
  623. bitarray_set(set->ba, BIT(d4));
  624. }
  625. /** If <b>digest</b> is in <b>set</b>, return nonzero. Otherwise,
  626. * <em>probably</em> return zero. */
  627. static inline int
  628. digestset_contains(const digestset_t *set, const char *digest)
  629. {
  630. const uint64_t x = siphash24g(digest, 20);
  631. const uint32_t d1 = (uint32_t) x;
  632. const uint32_t d2 = (uint32_t)( (x>>16) + x);
  633. const uint32_t d3 = (uint32_t)( (x>>32) + x);
  634. const uint32_t d4 = (uint32_t)( (x>>48) + x);
  635. return bitarray_is_set(set->ba, BIT(d1)) &&
  636. bitarray_is_set(set->ba, BIT(d2)) &&
  637. bitarray_is_set(set->ba, BIT(d3)) &&
  638. bitarray_is_set(set->ba, BIT(d4));
  639. }
  640. #undef BIT
  641. digestset_t *digestset_new(int max_elements);
  642. void digestset_free(digestset_t* set);
  643. /* These functions, given an <b>array</b> of <b>n_elements</b>, return the
  644. * <b>nth</b> lowest element. <b>nth</b>=0 gives the lowest element;
  645. * <b>n_elements</b>-1 gives the highest; and (<b>n_elements</b>-1) / 2 gives
  646. * the median. As a side effect, the elements of <b>array</b> are sorted. */
  647. int find_nth_int(int *array, int n_elements, int nth);
  648. time_t find_nth_time(time_t *array, int n_elements, int nth);
  649. double find_nth_double(double *array, int n_elements, int nth);
  650. int32_t find_nth_int32(int32_t *array, int n_elements, int nth);
  651. uint32_t find_nth_uint32(uint32_t *array, int n_elements, int nth);
  652. long find_nth_long(long *array, int n_elements, int nth);
  653. static inline int
  654. median_int(int *array, int n_elements)
  655. {
  656. return find_nth_int(array, n_elements, (n_elements-1)/2);
  657. }
  658. static inline time_t
  659. median_time(time_t *array, int n_elements)
  660. {
  661. return find_nth_time(array, n_elements, (n_elements-1)/2);
  662. }
  663. static inline double
  664. median_double(double *array, int n_elements)
  665. {
  666. return find_nth_double(array, n_elements, (n_elements-1)/2);
  667. }
  668. static inline uint32_t
  669. median_uint32(uint32_t *array, int n_elements)
  670. {
  671. return find_nth_uint32(array, n_elements, (n_elements-1)/2);
  672. }
  673. static inline int32_t
  674. median_int32(int32_t *array, int n_elements)
  675. {
  676. return find_nth_int32(array, n_elements, (n_elements-1)/2);
  677. }
  678. static inline uint32_t
  679. third_quartile_uint32(uint32_t *array, int n_elements)
  680. {
  681. return find_nth_uint32(array, n_elements, (n_elements*3)/4);
  682. }
  683. #endif