ltable.c 19 KB

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  1. /*
  2. ** $Id: ltable.c,v 2.116 2015/11/03 18:35:21 roberto Exp roberto $
  3. ** Lua tables (hash)
  4. ** See Copyright Notice in lua.h
  5. */
  6. #define ltable_c
  7. #define LUA_CORE
  8. #include "lprefix.h"
  9. /*
  10. ** Implementation of tables (aka arrays, objects, or hash tables).
  11. ** Tables keep its elements in two parts: an array part and a hash part.
  12. ** Non-negative integer keys are all candidates to be kept in the array
  13. ** part. The actual size of the array is the largest 'n' such that
  14. ** more than half the slots between 1 and n are in use.
  15. ** Hash uses a mix of chained scatter table with Brent's variation.
  16. ** A main invariant of these tables is that, if an element is not
  17. ** in its main position (i.e. the 'original' position that its hash gives
  18. ** to it), then the colliding element is in its own main position.
  19. ** Hence even when the load factor reaches 100%, performance remains good.
  20. */
  21. #include <math.h>
  22. #include <limits.h>
  23. #include "lua.h"
  24. #include "ldebug.h"
  25. #include "ldo.h"
  26. #include "lgc.h"
  27. #include "lmem.h"
  28. #include "lobject.h"
  29. #include "lstate.h"
  30. #include "lstring.h"
  31. #include "ltable.h"
  32. #include "lvm.h"
  33. /*
  34. ** Maximum size of array part (MAXASIZE) is 2^MAXABITS. MAXABITS is
  35. ** the largest integer such that MAXASIZE fits in an unsigned int.
  36. */
  37. #define MAXABITS cast_int(sizeof(int) * CHAR_BIT - 1)
  38. #define MAXASIZE (1u << MAXABITS)
  39. /*
  40. ** Maximum size of hash part is 2^MAXHBITS. MAXHBITS is the largest
  41. ** integer such that 2^MAXHBITS fits in a signed int. (Note that the
  42. ** maximum number of elements in a table, 2^MAXABITS + 2^MAXHBITS, still
  43. ** fits comfortably in an unsigned int.)
  44. */
  45. #define MAXHBITS (MAXABITS - 1)
  46. #define hashpow2(t,n) (gnode(t, lmod((n), sizenode(t))))
  47. #define hashstr(t,str) hashpow2(t, (str)->hash)
  48. #define hashboolean(t,p) hashpow2(t, p)
  49. #define hashint(t,i) hashpow2(t, i)
  50. /*
  51. ** for some types, it is better to avoid modulus by power of 2, as
  52. ** they tend to have many 2 factors.
  53. */
  54. #define hashmod(t,n) (gnode(t, ((n) % ((sizenode(t)-1)|1))))
  55. #define hashpointer(t,p) hashmod(t, point2uint(p))
  56. #define dummynode (&dummynode_)
  57. #define isdummy(n) ((n) == dummynode)
  58. static const Node dummynode_ = {
  59. {NILCONSTANT}, /* value */
  60. {{NILCONSTANT, 0}} /* key */
  61. };
  62. /*
  63. ** Hash for floating-point numbers.
  64. ** The main computation should be just
  65. ** n = frexp(n, &i); return (n * INT_MAX) + i
  66. ** but there are some numerical subtleties.
  67. ** In a two-complement representation, INT_MAX does not has an exact
  68. ** representation as a float, but INT_MIN does; because the absolute
  69. ** value of 'frexp' is smaller than 1 (unless 'n' is inf/NaN), the
  70. ** absolute value of the product 'frexp * -INT_MIN' is smaller or equal
  71. ** to INT_MAX. Next, the use of 'unsigned int' avoids overflows when
  72. ** adding 'i'; the use of '~u' (instead of '-u') avoids problems with
  73. ** INT_MIN.
  74. */
  75. #if !defined(l_hashfloat)
  76. static int l_hashfloat (lua_Number n) {
  77. int i;
  78. lua_Integer ni;
  79. n = l_mathop(frexp)(n, &i) * -cast_num(INT_MIN);
  80. if (!lua_numbertointeger(n, &ni)) { /* is 'n' inf/-inf/NaN? */
  81. lua_assert(luai_numisnan(n) || l_mathop(fabs)(n) == cast_num(HUGE_VAL));
  82. return 0;
  83. }
  84. else { /* normal case */
  85. unsigned int u = cast(unsigned int, i) + cast(unsigned int, ni);
  86. return cast_int(u <= cast(unsigned int, INT_MAX) ? u : ~u);
  87. }
  88. }
  89. #endif
  90. /*
  91. ** returns the 'main' position of an element in a table (that is, the index
  92. ** of its hash value)
  93. */
  94. static Node *mainposition (const Table *t, const TValue *key) {
  95. switch (ttype(key)) {
  96. case LUA_TNUMINT:
  97. return hashint(t, ivalue(key));
  98. case LUA_TNUMFLT:
  99. return hashmod(t, l_hashfloat(fltvalue(key)));
  100. case LUA_TSHRSTR:
  101. return hashstr(t, tsvalue(key));
  102. case LUA_TLNGSTR:
  103. return hashpow2(t, luaS_hashlongstr(tsvalue(key)));
  104. case LUA_TBOOLEAN:
  105. return hashboolean(t, bvalue(key));
  106. case LUA_TLIGHTUSERDATA:
  107. return hashpointer(t, pvalue(key));
  108. case LUA_TLCF:
  109. return hashpointer(t, fvalue(key));
  110. default:
  111. lua_assert(!ttisdeadkey(key));
  112. return hashpointer(t, gcvalue(key));
  113. }
  114. }
  115. /*
  116. ** returns the index for 'key' if 'key' is an appropriate key to live in
  117. ** the array part of the table, 0 otherwise.
  118. */
  119. static unsigned int arrayindex (const TValue *key) {
  120. if (ttisinteger(key)) {
  121. lua_Integer k = ivalue(key);
  122. if (0 < k && (lua_Unsigned)k <= MAXASIZE)
  123. return cast(unsigned int, k); /* 'key' is an appropriate array index */
  124. }
  125. return 0; /* 'key' did not match some condition */
  126. }
  127. /*
  128. ** returns the index of a 'key' for table traversals. First goes all
  129. ** elements in the array part, then elements in the hash part. The
  130. ** beginning of a traversal is signaled by 0.
  131. */
  132. static unsigned int findindex (lua_State *L, Table *t, StkId key) {
  133. unsigned int i;
  134. if (ttisnil(key)) return 0; /* first iteration */
  135. i = arrayindex(key);
  136. if (i != 0 && i <= t->sizearray) /* is 'key' inside array part? */
  137. return i; /* yes; that's the index */
  138. else {
  139. int nx;
  140. Node *n = mainposition(t, key);
  141. for (;;) { /* check whether 'key' is somewhere in the chain */
  142. /* key may be dead already, but it is ok to use it in 'next' */
  143. if (luaV_rawequalobj(gkey(n), key) ||
  144. (ttisdeadkey(gkey(n)) && iscollectable(key) &&
  145. deadvalue(gkey(n)) == gcvalue(key))) {
  146. i = cast_int(n - gnode(t, 0)); /* key index in hash table */
  147. /* hash elements are numbered after array ones */
  148. return (i + 1) + t->sizearray;
  149. }
  150. nx = gnext(n);
  151. if (nx == 0)
  152. luaG_runerror(L, "invalid key to 'next'"); /* key not found */
  153. else n += nx;
  154. }
  155. }
  156. }
  157. int luaH_next (lua_State *L, Table *t, StkId key) {
  158. unsigned int i = findindex(L, t, key); /* find original element */
  159. for (; i < t->sizearray; i++) { /* try first array part */
  160. if (!ttisnil(&t->array[i])) { /* a non-nil value? */
  161. setivalue(key, i + 1);
  162. setobj2s(L, key+1, &t->array[i]);
  163. return 1;
  164. }
  165. }
  166. for (i -= t->sizearray; cast_int(i) < sizenode(t); i++) { /* hash part */
  167. if (!ttisnil(gval(gnode(t, i)))) { /* a non-nil value? */
  168. setobj2s(L, key, gkey(gnode(t, i)));
  169. setobj2s(L, key+1, gval(gnode(t, i)));
  170. return 1;
  171. }
  172. }
  173. return 0; /* no more elements */
  174. }
  175. /*
  176. ** {=============================================================
  177. ** Rehash
  178. ** ==============================================================
  179. */
  180. /*
  181. ** Compute the optimal size for the array part of table 't'. 'nums' is a
  182. ** "count array" where 'nums[i]' is the number of integers in the table
  183. ** between 2^(i - 1) + 1 and 2^i. 'pna' enters with the total number of
  184. ** integer keys in the table and leaves with the number of keys that
  185. ** will go to the array part; return the optimal size.
  186. */
  187. static unsigned int computesizes (unsigned int nums[], unsigned int *pna) {
  188. int i;
  189. unsigned int twotoi; /* 2^i (candidate for optimal size) */
  190. unsigned int a = 0; /* number of elements smaller than 2^i */
  191. unsigned int na = 0; /* number of elements to go to array part */
  192. unsigned int optimal = 0; /* optimal size for array part */
  193. /* loop while keys can fill more than half of total size */
  194. for (i = 0, twotoi = 1; *pna > twotoi / 2; i++, twotoi *= 2) {
  195. if (nums[i] > 0) {
  196. a += nums[i];
  197. if (a > twotoi/2) { /* more than half elements present? */
  198. optimal = twotoi; /* optimal size (till now) */
  199. na = a; /* all elements up to 'optimal' will go to array part */
  200. }
  201. }
  202. }
  203. lua_assert((optimal == 0 || optimal / 2 < na) && na <= optimal);
  204. *pna = na;
  205. return optimal;
  206. }
  207. static int countint (const TValue *key, unsigned int *nums) {
  208. unsigned int k = arrayindex(key);
  209. if (k != 0) { /* is 'key' an appropriate array index? */
  210. nums[luaO_ceillog2(k)]++; /* count as such */
  211. return 1;
  212. }
  213. else
  214. return 0;
  215. }
  216. /*
  217. ** Count keys in array part of table 't': Fill 'nums[i]' with
  218. ** number of keys that will go into corresponding slice and return
  219. ** total number of non-nil keys.
  220. */
  221. static unsigned int numusearray (const Table *t, unsigned int *nums) {
  222. int lg;
  223. unsigned int ttlg; /* 2^lg */
  224. unsigned int ause = 0; /* summation of 'nums' */
  225. unsigned int i = 1; /* count to traverse all array keys */
  226. /* traverse each slice */
  227. for (lg = 0, ttlg = 1; lg <= MAXABITS; lg++, ttlg *= 2) {
  228. unsigned int lc = 0; /* counter */
  229. unsigned int lim = ttlg;
  230. if (lim > t->sizearray) {
  231. lim = t->sizearray; /* adjust upper limit */
  232. if (i > lim)
  233. break; /* no more elements to count */
  234. }
  235. /* count elements in range (2^(lg - 1), 2^lg] */
  236. for (; i <= lim; i++) {
  237. if (!ttisnil(&t->array[i-1]))
  238. lc++;
  239. }
  240. nums[lg] += lc;
  241. ause += lc;
  242. }
  243. return ause;
  244. }
  245. static int numusehash (const Table *t, unsigned int *nums, unsigned int *pna) {
  246. int totaluse = 0; /* total number of elements */
  247. int ause = 0; /* elements added to 'nums' (can go to array part) */
  248. int i = sizenode(t);
  249. while (i--) {
  250. Node *n = &t->node[i];
  251. if (!ttisnil(gval(n))) {
  252. ause += countint(gkey(n), nums);
  253. totaluse++;
  254. }
  255. }
  256. *pna += ause;
  257. return totaluse;
  258. }
  259. static void setarrayvector (lua_State *L, Table *t, unsigned int size) {
  260. unsigned int i;
  261. luaM_reallocvector(L, t->array, t->sizearray, size, TValue);
  262. for (i=t->sizearray; i<size; i++)
  263. setnilvalue(&t->array[i]);
  264. t->sizearray = size;
  265. }
  266. static void setnodevector (lua_State *L, Table *t, unsigned int size) {
  267. int lsize;
  268. if (size == 0) { /* no elements to hash part? */
  269. t->node = cast(Node *, dummynode); /* use common 'dummynode' */
  270. lsize = 0;
  271. }
  272. else {
  273. int i;
  274. lsize = luaO_ceillog2(size);
  275. if (lsize > MAXHBITS)
  276. luaG_runerror(L, "table overflow");
  277. size = twoto(lsize);
  278. t->node = luaM_newvector(L, size, Node);
  279. for (i = 0; i < (int)size; i++) {
  280. Node *n = gnode(t, i);
  281. gnext(n) = 0;
  282. setnilvalue(wgkey(n));
  283. setnilvalue(gval(n));
  284. }
  285. }
  286. t->lsizenode = cast_byte(lsize);
  287. t->lastfree = gnode(t, size); /* all positions are free */
  288. }
  289. void luaH_resize (lua_State *L, Table *t, unsigned int nasize,
  290. unsigned int nhsize) {
  291. unsigned int i;
  292. int j;
  293. unsigned int oldasize = t->sizearray;
  294. int oldhsize = t->lsizenode;
  295. Node *nold = t->node; /* save old hash ... */
  296. if (nasize > oldasize) /* array part must grow? */
  297. setarrayvector(L, t, nasize);
  298. /* create new hash part with appropriate size */
  299. setnodevector(L, t, nhsize);
  300. if (nasize < oldasize) { /* array part must shrink? */
  301. t->sizearray = nasize;
  302. /* re-insert elements from vanishing slice */
  303. for (i=nasize; i<oldasize; i++) {
  304. if (!ttisnil(&t->array[i]))
  305. luaH_setint(L, t, i + 1, &t->array[i]);
  306. }
  307. /* shrink array */
  308. luaM_reallocvector(L, t->array, oldasize, nasize, TValue);
  309. }
  310. /* re-insert elements from hash part */
  311. for (j = twoto(oldhsize) - 1; j >= 0; j--) {
  312. Node *old = nold + j;
  313. if (!ttisnil(gval(old))) {
  314. /* doesn't need barrier/invalidate cache, as entry was
  315. already present in the table */
  316. setobjt2t(L, luaH_set(L, t, gkey(old)), gval(old));
  317. }
  318. }
  319. if (!isdummy(nold))
  320. luaM_freearray(L, nold, cast(size_t, twoto(oldhsize))); /* free old hash */
  321. }
  322. void luaH_resizearray (lua_State *L, Table *t, unsigned int nasize) {
  323. int nsize = isdummy(t->node) ? 0 : sizenode(t);
  324. luaH_resize(L, t, nasize, nsize);
  325. }
  326. /*
  327. ** nums[i] = number of keys 'k' where 2^(i - 1) < k <= 2^i
  328. */
  329. static void rehash (lua_State *L, Table *t, const TValue *ek) {
  330. unsigned int asize; /* optimal size for array part */
  331. unsigned int na; /* number of keys in the array part */
  332. unsigned int nums[MAXABITS + 1];
  333. int i;
  334. int totaluse;
  335. for (i = 0; i <= MAXABITS; i++) nums[i] = 0; /* reset counts */
  336. na = numusearray(t, nums); /* count keys in array part */
  337. totaluse = na; /* all those keys are integer keys */
  338. totaluse += numusehash(t, nums, &na); /* count keys in hash part */
  339. /* count extra key */
  340. na += countint(ek, nums);
  341. totaluse++;
  342. /* compute new size for array part */
  343. asize = computesizes(nums, &na);
  344. /* resize the table to new computed sizes */
  345. luaH_resize(L, t, asize, totaluse - na);
  346. }
  347. /*
  348. ** }=============================================================
  349. */
  350. Table *luaH_new (lua_State *L) {
  351. GCObject *o = luaC_newobj(L, LUA_TTABLE, sizeof(Table));
  352. Table *t = gco2t(o);
  353. t->metatable = NULL;
  354. t->flags = cast_byte(~0);
  355. t->array = NULL;
  356. t->sizearray = 0;
  357. setnodevector(L, t, 0);
  358. return t;
  359. }
  360. void luaH_free (lua_State *L, Table *t) {
  361. if (!isdummy(t->node))
  362. luaM_freearray(L, t->node, cast(size_t, sizenode(t)));
  363. luaM_freearray(L, t->array, t->sizearray);
  364. luaM_free(L, t);
  365. }
  366. static Node *getfreepos (Table *t) {
  367. while (t->lastfree > t->node) {
  368. t->lastfree--;
  369. if (ttisnil(gkey(t->lastfree)))
  370. return t->lastfree;
  371. }
  372. return NULL; /* could not find a free place */
  373. }
  374. /*
  375. ** inserts a new key into a hash table; first, check whether key's main
  376. ** position is free. If not, check whether colliding node is in its main
  377. ** position or not: if it is not, move colliding node to an empty place and
  378. ** put new key in its main position; otherwise (colliding node is in its main
  379. ** position), new key goes to an empty position.
  380. */
  381. TValue *luaH_newkey (lua_State *L, Table *t, const TValue *key) {
  382. Node *mp;
  383. TValue aux;
  384. if (ttisnil(key)) luaG_runerror(L, "table index is nil");
  385. else if (ttisfloat(key)) {
  386. lua_Integer k;
  387. if (luaV_tointeger(key, &k, 0)) { /* index is int? */
  388. setivalue(&aux, k);
  389. key = &aux; /* insert it as an integer */
  390. }
  391. else if (luai_numisnan(fltvalue(key)))
  392. luaG_runerror(L, "table index is NaN");
  393. }
  394. mp = mainposition(t, key);
  395. if (!ttisnil(gval(mp)) || isdummy(mp)) { /* main position is taken? */
  396. Node *othern;
  397. Node *f = getfreepos(t); /* get a free place */
  398. if (f == NULL) { /* cannot find a free place? */
  399. rehash(L, t, key); /* grow table */
  400. /* whatever called 'newkey' takes care of TM cache */
  401. return luaH_set(L, t, key); /* insert key into grown table */
  402. }
  403. lua_assert(!isdummy(f));
  404. othern = mainposition(t, gkey(mp));
  405. if (othern != mp) { /* is colliding node out of its main position? */
  406. /* yes; move colliding node into free position */
  407. while (othern + gnext(othern) != mp) /* find previous */
  408. othern += gnext(othern);
  409. gnext(othern) = cast_int(f - othern); /* rechain to point to 'f' */
  410. *f = *mp; /* copy colliding node into free pos. (mp->next also goes) */
  411. if (gnext(mp) != 0) {
  412. gnext(f) += cast_int(mp - f); /* correct 'next' */
  413. gnext(mp) = 0; /* now 'mp' is free */
  414. }
  415. setnilvalue(gval(mp));
  416. }
  417. else { /* colliding node is in its own main position */
  418. /* new node will go into free position */
  419. if (gnext(mp) != 0)
  420. gnext(f) = cast_int((mp + gnext(mp)) - f); /* chain new position */
  421. else lua_assert(gnext(f) == 0);
  422. gnext(mp) = cast_int(f - mp);
  423. mp = f;
  424. }
  425. }
  426. setnodekey(L, &mp->i_key, key);
  427. luaC_barrierback(L, t, key);
  428. lua_assert(ttisnil(gval(mp)));
  429. return gval(mp);
  430. }
  431. /*
  432. ** search function for integers
  433. */
  434. const TValue *luaH_getint (Table *t, lua_Integer key) {
  435. /* (1 <= key && key <= t->sizearray) */
  436. if (l_castS2U(key) - 1 < t->sizearray)
  437. return &t->array[key - 1];
  438. else {
  439. Node *n = hashint(t, key);
  440. for (;;) { /* check whether 'key' is somewhere in the chain */
  441. if (ttisinteger(gkey(n)) && ivalue(gkey(n)) == key)
  442. return gval(n); /* that's it */
  443. else {
  444. int nx = gnext(n);
  445. if (nx == 0) break;
  446. n += nx;
  447. }
  448. }
  449. return luaO_nilobject;
  450. }
  451. }
  452. /*
  453. ** search function for short strings
  454. */
  455. const TValue *luaH_getshortstr (Table *t, TString *key) {
  456. Node *n = hashstr(t, key);
  457. lua_assert(key->tt == LUA_TSHRSTR);
  458. for (;;) { /* check whether 'key' is somewhere in the chain */
  459. const TValue *k = gkey(n);
  460. if (ttisshrstring(k) && eqshrstr(tsvalue(k), key))
  461. return gval(n); /* that's it */
  462. else {
  463. int nx = gnext(n);
  464. if (nx == 0)
  465. return luaO_nilobject; /* not found */
  466. n += nx;
  467. }
  468. }
  469. }
  470. /*
  471. ** "Generic" get version. (Not that generic: not valid for integers,
  472. ** which may be in array part, nor for floats with integral values.)
  473. */
  474. static const TValue *getgeneric (Table *t, const TValue *key) {
  475. Node *n = mainposition(t, key);
  476. for (;;) { /* check whether 'key' is somewhere in the chain */
  477. if (luaV_rawequalobj(gkey(n), key))
  478. return gval(n); /* that's it */
  479. else {
  480. int nx = gnext(n);
  481. if (nx == 0)
  482. return luaO_nilobject; /* not found */
  483. n += nx;
  484. }
  485. }
  486. }
  487. const TValue *luaH_getstr (Table *t, TString *key) {
  488. if (key->tt == LUA_TSHRSTR)
  489. return luaH_getshortstr(t, key);
  490. else { /* for long strings, use generic case */
  491. TValue ko;
  492. setsvalue(cast(lua_State *, NULL), &ko, key);
  493. return getgeneric(t, &ko);
  494. }
  495. }
  496. /*
  497. ** main search function
  498. */
  499. const TValue *luaH_get (Table *t, const TValue *key) {
  500. switch (ttype(key)) {
  501. case LUA_TSHRSTR: return luaH_getshortstr(t, tsvalue(key));
  502. case LUA_TNUMINT: return luaH_getint(t, ivalue(key));
  503. case LUA_TNIL: return luaO_nilobject;
  504. case LUA_TNUMFLT: {
  505. lua_Integer k;
  506. if (luaV_tointeger(key, &k, 0)) /* index is int? */
  507. return luaH_getint(t, k); /* use specialized version */
  508. /* else... */
  509. } /* FALLTHROUGH */
  510. default:
  511. return getgeneric(t, key);
  512. }
  513. }
  514. /*
  515. ** beware: when using this function you probably need to check a GC
  516. ** barrier and invalidate the TM cache.
  517. */
  518. TValue *luaH_set (lua_State *L, Table *t, const TValue *key) {
  519. const TValue *p = luaH_get(t, key);
  520. if (p != luaO_nilobject)
  521. return cast(TValue *, p);
  522. else return luaH_newkey(L, t, key);
  523. }
  524. void luaH_setint (lua_State *L, Table *t, lua_Integer key, TValue *value) {
  525. const TValue *p = luaH_getint(t, key);
  526. TValue *cell;
  527. if (p != luaO_nilobject)
  528. cell = cast(TValue *, p);
  529. else {
  530. TValue k;
  531. setivalue(&k, key);
  532. cell = luaH_newkey(L, t, &k);
  533. }
  534. setobj2t(L, cell, value);
  535. }
  536. static int unbound_search (Table *t, unsigned int j) {
  537. unsigned int i = j; /* i is zero or a present index */
  538. j++;
  539. /* find 'i' and 'j' such that i is present and j is not */
  540. while (!ttisnil(luaH_getint(t, j))) {
  541. i = j;
  542. if (j > cast(unsigned int, MAX_INT)/2) { /* overflow? */
  543. /* table was built with bad purposes: resort to linear search */
  544. i = 1;
  545. while (!ttisnil(luaH_getint(t, i))) i++;
  546. return i - 1;
  547. }
  548. j *= 2;
  549. }
  550. /* now do a binary search between them */
  551. while (j - i > 1) {
  552. unsigned int m = (i+j)/2;
  553. if (ttisnil(luaH_getint(t, m))) j = m;
  554. else i = m;
  555. }
  556. return i;
  557. }
  558. /*
  559. ** Try to find a boundary in table 't'. A 'boundary' is an integer index
  560. ** such that t[i] is non-nil and t[i+1] is nil (and 0 if t[1] is nil).
  561. */
  562. int luaH_getn (Table *t) {
  563. unsigned int j = t->sizearray;
  564. if (j > 0 && ttisnil(&t->array[j - 1])) {
  565. /* there is a boundary in the array part: (binary) search for it */
  566. unsigned int i = 0;
  567. while (j - i > 1) {
  568. unsigned int m = (i+j)/2;
  569. if (ttisnil(&t->array[m - 1])) j = m;
  570. else i = m;
  571. }
  572. return i;
  573. }
  574. /* else must find a boundary in hash part */
  575. else if (isdummy(t->node)) /* hash part is empty? */
  576. return j; /* that is easy... */
  577. else return unbound_search(t, j);
  578. }
  579. #if defined(LUA_DEBUG)
  580. Node *luaH_mainposition (const Table *t, const TValue *key) {
  581. return mainposition(t, key);
  582. }
  583. int luaH_isdummy (Node *n) { return isdummy(n); }
  584. #endif