lvm.c 58 KB

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  1. /*
  2. ** $Id: lvm.c $
  3. ** Lua virtual machine
  4. ** See Copyright Notice in lua.h
  5. */
  6. #define lvm_c
  7. #define LUA_CORE
  8. #include "lprefix.h"
  9. #include <float.h>
  10. #include <limits.h>
  11. #include <math.h>
  12. #include <stdio.h>
  13. #include <stdlib.h>
  14. #include <string.h>
  15. #include "lua.h"
  16. #include "ldebug.h"
  17. #include "ldo.h"
  18. #include "lfunc.h"
  19. #include "lgc.h"
  20. #include "lobject.h"
  21. #include "lopcodes.h"
  22. #include "lstate.h"
  23. #include "lstring.h"
  24. #include "ltable.h"
  25. #include "ltm.h"
  26. #include "lvm.h"
  27. /*
  28. ** By default, use jump tables in the main interpreter loop on gcc
  29. ** and compatible compilers.
  30. */
  31. #if !defined(LUA_USE_JUMPTABLE)
  32. #if defined(__GNUC__)
  33. #define LUA_USE_JUMPTABLE 1
  34. #else
  35. #define LUA_USE_JUMPTABLE 0
  36. #endif
  37. #endif
  38. /* limit for table tag-method chains (to avoid infinite loops) */
  39. #define MAXTAGLOOP 2000
  40. /*
  41. ** 'l_intfitsf' checks whether a given integer is in the range that
  42. ** can be converted to a float without rounding. Used in comparisons.
  43. */
  44. /* number of bits in the mantissa of a float */
  45. #define NBM (l_floatatt(MANT_DIG))
  46. /*
  47. ** Check whether some integers may not fit in a float, testing whether
  48. ** (maxinteger >> NBM) > 0. (That implies (1 << NBM) <= maxinteger.)
  49. ** (The shifts are done in parts, to avoid shifting by more than the size
  50. ** of an integer. In a worst case, NBM == 113 for long double and
  51. ** sizeof(long) == 32.)
  52. */
  53. #if ((((LUA_MAXINTEGER >> (NBM / 4)) >> (NBM / 4)) >> (NBM / 4)) \
  54. >> (NBM - (3 * (NBM / 4)))) > 0
  55. /* limit for integers that fit in a float */
  56. #define MAXINTFITSF ((lua_Unsigned)1 << NBM)
  57. /* check whether 'i' is in the interval [-MAXINTFITSF, MAXINTFITSF] */
  58. #define l_intfitsf(i) ((MAXINTFITSF + l_castS2U(i)) <= (2 * MAXINTFITSF))
  59. #else /* all integers fit in a float precisely */
  60. #define l_intfitsf(i) 1
  61. #endif
  62. /*
  63. ** Try to convert a value from string to a number value.
  64. ** If the value is not a string or is a string not representing
  65. ** a valid numeral (or if coercions from strings to numbers
  66. ** are disabled via macro 'cvt2num'), do not modify 'result'
  67. ** and return 0.
  68. */
  69. static int l_strton (const TValue *obj, TValue *result) {
  70. lua_assert(obj != result);
  71. if (!cvt2num(obj)) /* is object not a string? */
  72. return 0;
  73. else {
  74. TString *st = tsvalue(obj);
  75. return (luaO_str2num(getstr(st), result) == tsslen(st) + 1);
  76. }
  77. }
  78. /*
  79. ** Try to convert a value to a float. The float case is already handled
  80. ** by the macro 'tonumber'.
  81. */
  82. int luaV_tonumber_ (const TValue *obj, lua_Number *n) {
  83. TValue v;
  84. if (ttisinteger(obj)) {
  85. *n = cast_num(ivalue(obj));
  86. return 1;
  87. }
  88. else if (l_strton(obj, &v)) { /* string coercible to number? */
  89. *n = nvalue(&v); /* convert result of 'luaO_str2num' to a float */
  90. return 1;
  91. }
  92. else
  93. return 0; /* conversion failed */
  94. }
  95. /*
  96. ** try to convert a float to an integer, rounding according to 'mode'.
  97. */
  98. int luaV_flttointeger (lua_Number n, lua_Integer *p, F2Imod mode) {
  99. lua_Number f = l_floor(n);
  100. if (n != f) { /* not an integral value? */
  101. if (mode == F2Ieq) return 0; /* fails if mode demands integral value */
  102. else if (mode == F2Iceil) /* needs ceil? */
  103. f += 1; /* convert floor to ceil (remember: n != f) */
  104. }
  105. return lua_numbertointeger(f, p);
  106. }
  107. /*
  108. ** try to convert a value to an integer, rounding according to 'mode',
  109. ** without string coercion.
  110. ** ("Fast track" handled by macro 'tointegerns'.)
  111. */
  112. int luaV_tointegerns (const TValue *obj, lua_Integer *p, F2Imod mode) {
  113. if (ttisfloat(obj))
  114. return luaV_flttointeger(fltvalue(obj), p, mode);
  115. else if (ttisinteger(obj)) {
  116. *p = ivalue(obj);
  117. return 1;
  118. }
  119. else
  120. return 0;
  121. }
  122. /*
  123. ** try to convert a value to an integer.
  124. */
  125. int luaV_tointeger (const TValue *obj, lua_Integer *p, F2Imod mode) {
  126. TValue v;
  127. if (l_strton(obj, &v)) /* does 'obj' point to a numerical string? */
  128. obj = &v; /* change it to point to its corresponding number */
  129. return luaV_tointegerns(obj, p, mode);
  130. }
  131. /*
  132. ** Try to convert a 'for' limit to an integer, preserving the semantics
  133. ** of the loop. Return true if the loop must not run; otherwise, '*p'
  134. ** gets the integer limit.
  135. ** (The following explanation assumes a positive step; it is valid for
  136. ** negative steps mutatis mutandis.)
  137. ** If the limit is an integer or can be converted to an integer,
  138. ** rounding down, that is the limit.
  139. ** Otherwise, check whether the limit can be converted to a float. If
  140. ** the float is too large, clip it to LUA_MAXINTEGER. If the float
  141. ** is too negative, the loop should not run, because any initial
  142. ** integer value is greater than such limit; so, the function returns
  143. ** true to signal that. (For this latter case, no integer limit would be
  144. ** correct; even a limit of LUA_MININTEGER would run the loop once for
  145. ** an initial value equal to LUA_MININTEGER.)
  146. */
  147. static int forlimit (lua_State *L, lua_Integer init, const TValue *lim,
  148. lua_Integer *p, lua_Integer step) {
  149. if (!luaV_tointeger(lim, p, (step < 0 ? F2Iceil : F2Ifloor))) {
  150. /* not coercible to in integer */
  151. lua_Number flim; /* try to convert to float */
  152. if (!tonumber(lim, &flim)) /* cannot convert to float? */
  153. luaG_forerror(L, lim, "limit");
  154. /* else 'flim' is a float out of integer bounds */
  155. if (luai_numlt(0, flim)) { /* if it is positive, it is too large */
  156. if (step < 0) return 1; /* initial value must be less than it */
  157. *p = LUA_MAXINTEGER; /* truncate */
  158. }
  159. else { /* it is less than min integer */
  160. if (step > 0) return 1; /* initial value must be greater than it */
  161. *p = LUA_MININTEGER; /* truncate */
  162. }
  163. }
  164. return (step > 0 ? init > *p : init < *p); /* not to run? */
  165. }
  166. /*
  167. ** Prepare a numerical for loop (opcode OP_FORPREP).
  168. ** Before execution, stack is as follows:
  169. ** ra : initial value
  170. ** ra + 1 : limit
  171. ** ra + 2 : step
  172. ** Return true to skip the loop. Otherwise,
  173. ** after preparation, stack will be as follows:
  174. ** ra : loop counter (integer loops) or limit (float loops)
  175. ** ra + 1 : step
  176. ** ra + 2 : control variable
  177. */
  178. static int forprep (lua_State *L, StkId ra) {
  179. TValue *pinit = s2v(ra);
  180. TValue *plimit = s2v(ra + 1);
  181. TValue *pstep = s2v(ra + 2);
  182. if (ttisinteger(pinit) && ttisinteger(pstep)) { /* integer loop? */
  183. lua_Integer init = ivalue(pinit);
  184. lua_Integer step = ivalue(pstep);
  185. lua_Integer limit;
  186. if (step == 0)
  187. luaG_runerror(L, "'for' step is zero");
  188. if (forlimit(L, init, plimit, &limit, step))
  189. return 1; /* skip the loop */
  190. else { /* prepare loop counter */
  191. lua_Unsigned count;
  192. if (step > 0) { /* ascending loop? */
  193. count = l_castS2U(limit) - l_castS2U(init);
  194. if (step != 1) /* avoid division in the too common case */
  195. count /= l_castS2U(step);
  196. }
  197. else { /* step < 0; descending loop */
  198. count = l_castS2U(init) - l_castS2U(limit);
  199. /* 'step+1' avoids negating 'mininteger' */
  200. count /= l_castS2U(-(step + 1)) + 1u;
  201. }
  202. /* use 'chgivalue' for places that for sure had integers */
  203. chgivalue(s2v(ra), l_castU2S(count)); /* change init to count */
  204. setivalue(s2v(ra + 1), step); /* change limit to step */
  205. chgivalue(s2v(ra + 2), init); /* change step to init */
  206. }
  207. }
  208. else { /* try making all values floats */
  209. lua_Number init; lua_Number limit; lua_Number step;
  210. if (l_unlikely(!tonumber(plimit, &limit)))
  211. luaG_forerror(L, plimit, "limit");
  212. if (l_unlikely(!tonumber(pstep, &step)))
  213. luaG_forerror(L, pstep, "step");
  214. if (l_unlikely(!tonumber(pinit, &init)))
  215. luaG_forerror(L, pinit, "initial value");
  216. if (step == 0)
  217. luaG_runerror(L, "'for' step is zero");
  218. if (luai_numlt(0, step) ? luai_numlt(limit, init)
  219. : luai_numlt(init, limit))
  220. return 1; /* skip the loop */
  221. else {
  222. /* make sure all values are floats */
  223. setfltvalue(s2v(ra), limit);
  224. setfltvalue(s2v(ra + 1), step);
  225. setfltvalue(s2v(ra + 2), init); /* control variable */
  226. }
  227. }
  228. return 0;
  229. }
  230. /*
  231. ** Execute a step of a float numerical for loop, returning
  232. ** true iff the loop must continue. (The integer case is
  233. ** written online with opcode OP_FORLOOP, for performance.)
  234. */
  235. static int floatforloop (StkId ra) {
  236. lua_Number step = fltvalue(s2v(ra + 1));
  237. lua_Number limit = fltvalue(s2v(ra));
  238. lua_Number idx = fltvalue(s2v(ra + 2)); /* control variable */
  239. idx = luai_numadd(L, idx, step); /* increment index */
  240. if (luai_numlt(0, step) ? luai_numle(idx, limit)
  241. : luai_numle(limit, idx)) {
  242. chgfltvalue(s2v(ra + 2), idx); /* update control variable */
  243. return 1; /* jump back */
  244. }
  245. else
  246. return 0; /* finish the loop */
  247. }
  248. /*
  249. ** Finish the table access 'val = t[key]'.
  250. ** if 'slot' is NULL, 't' is not a table; otherwise, 'slot' points to
  251. ** t[k] entry (which must be empty).
  252. */
  253. void luaV_finishget (lua_State *L, const TValue *t, TValue *key, StkId val,
  254. const TValue *slot) {
  255. int loop; /* counter to avoid infinite loops */
  256. const TValue *tm; /* metamethod */
  257. for (loop = 0; loop < MAXTAGLOOP; loop++) {
  258. if (slot == NULL) { /* 't' is not a table? */
  259. lua_assert(!ttistable(t));
  260. tm = luaT_gettmbyobj(L, t, TM_INDEX);
  261. if (l_unlikely(notm(tm)))
  262. luaG_typeerror(L, t, "index"); /* no metamethod */
  263. /* else will try the metamethod */
  264. }
  265. else { /* 't' is a table */
  266. lua_assert(isempty(slot));
  267. tm = fasttm(L, hvalue(t)->metatable, TM_INDEX); /* table's metamethod */
  268. if (tm == NULL) { /* no metamethod? */
  269. setnilvalue(s2v(val)); /* result is nil */
  270. return;
  271. }
  272. /* else will try the metamethod */
  273. }
  274. if (ttisfunction(tm)) { /* is metamethod a function? */
  275. luaT_callTMres(L, tm, t, key, val); /* call it */
  276. return;
  277. }
  278. t = tm; /* else try to access 'tm[key]' */
  279. if (luaV_fastget(L, t, key, slot, luaH_get)) { /* fast track? */
  280. setobj2s(L, val, slot); /* done */
  281. return;
  282. }
  283. /* else repeat (tail call 'luaV_finishget') */
  284. }
  285. luaG_runerror(L, "'__index' chain too long; possible loop");
  286. }
  287. /*
  288. ** Finish a table assignment 't[key] = val'.
  289. ** If 'slot' is NULL, 't' is not a table. Otherwise, 'slot' points
  290. ** to the entry 't[key]', or to a value with an absent key if there
  291. ** is no such entry. (The value at 'slot' must be empty, otherwise
  292. ** 'luaV_fastget' would have done the job.)
  293. */
  294. void luaV_finishset (lua_State *L, const TValue *t, TValue *key,
  295. TValue *val, const TValue *slot) {
  296. int loop; /* counter to avoid infinite loops */
  297. for (loop = 0; loop < MAXTAGLOOP; loop++) {
  298. const TValue *tm; /* '__newindex' metamethod */
  299. if (slot != NULL) { /* is 't' a table? */
  300. Table *h = hvalue(t); /* save 't' table */
  301. lua_assert(isempty(slot)); /* slot must be empty */
  302. tm = fasttm(L, h->metatable, TM_NEWINDEX); /* get metamethod */
  303. if (tm == NULL) { /* no metamethod? */
  304. luaH_finishset(L, h, key, slot, val); /* set new value */
  305. invalidateTMcache(h);
  306. luaC_barrierback(L, obj2gco(h), val);
  307. return;
  308. }
  309. /* else will try the metamethod */
  310. }
  311. else { /* not a table; check metamethod */
  312. tm = luaT_gettmbyobj(L, t, TM_NEWINDEX);
  313. if (l_unlikely(notm(tm)))
  314. luaG_typeerror(L, t, "index");
  315. }
  316. /* try the metamethod */
  317. if (ttisfunction(tm)) {
  318. luaT_callTM(L, tm, t, key, val);
  319. return;
  320. }
  321. t = tm; /* else repeat assignment over 'tm' */
  322. if (luaV_fastget(L, t, key, slot, luaH_get)) {
  323. luaV_finishfastset(L, t, slot, val);
  324. return; /* done */
  325. }
  326. /* else 'return luaV_finishset(L, t, key, val, slot)' (loop) */
  327. }
  328. luaG_runerror(L, "'__newindex' chain too long; possible loop");
  329. }
  330. /*
  331. ** Compare two strings 'ts1' x 'ts2', returning an integer less-equal-
  332. ** -greater than zero if 'ts1' is less-equal-greater than 'ts2'.
  333. ** The code is a little tricky because it allows '\0' in the strings
  334. ** and it uses 'strcoll' (to respect locales) for each segment
  335. ** of the strings. Note that segments can compare equal but still
  336. ** have different lengths.
  337. */
  338. static int l_strcmp (const TString *ts1, const TString *ts2) {
  339. const char *s1 = getstr(ts1);
  340. size_t rl1 = tsslen(ts1); /* real length */
  341. const char *s2 = getstr(ts2);
  342. size_t rl2 = tsslen(ts2);
  343. for (;;) { /* for each segment */
  344. int temp = strcoll(s1, s2);
  345. if (temp != 0) /* not equal? */
  346. return temp; /* done */
  347. else { /* strings are equal up to a '\0' */
  348. size_t zl1 = strlen(s1); /* index of first '\0' in 's1' */
  349. size_t zl2 = strlen(s2); /* index of first '\0' in 's2' */
  350. if (zl2 == rl2) /* 's2' is finished? */
  351. return (zl1 == rl1) ? 0 : 1; /* check 's1' */
  352. else if (zl1 == rl1) /* 's1' is finished? */
  353. return -1; /* 's1' is less than 's2' ('s2' is not finished) */
  354. /* both strings longer than 'zl'; go on comparing after the '\0' */
  355. zl1++; zl2++;
  356. s1 += zl1; rl1 -= zl1; s2 += zl2; rl2 -= zl2;
  357. }
  358. }
  359. }
  360. /*
  361. ** Check whether integer 'i' is less than float 'f'. If 'i' has an
  362. ** exact representation as a float ('l_intfitsf'), compare numbers as
  363. ** floats. Otherwise, use the equivalence 'i < f <=> i < ceil(f)'.
  364. ** If 'ceil(f)' is out of integer range, either 'f' is greater than
  365. ** all integers or less than all integers.
  366. ** (The test with 'l_intfitsf' is only for performance; the else
  367. ** case is correct for all values, but it is slow due to the conversion
  368. ** from float to int.)
  369. ** When 'f' is NaN, comparisons must result in false.
  370. */
  371. l_sinline int LTintfloat (lua_Integer i, lua_Number f) {
  372. if (l_intfitsf(i))
  373. return luai_numlt(cast_num(i), f); /* compare them as floats */
  374. else { /* i < f <=> i < ceil(f) */
  375. lua_Integer fi;
  376. if (luaV_flttointeger(f, &fi, F2Iceil)) /* fi = ceil(f) */
  377. return i < fi; /* compare them as integers */
  378. else /* 'f' is either greater or less than all integers */
  379. return f > 0; /* greater? */
  380. }
  381. }
  382. /*
  383. ** Check whether integer 'i' is less than or equal to float 'f'.
  384. ** See comments on previous function.
  385. */
  386. l_sinline int LEintfloat (lua_Integer i, lua_Number f) {
  387. if (l_intfitsf(i))
  388. return luai_numle(cast_num(i), f); /* compare them as floats */
  389. else { /* i <= f <=> i <= floor(f) */
  390. lua_Integer fi;
  391. if (luaV_flttointeger(f, &fi, F2Ifloor)) /* fi = floor(f) */
  392. return i <= fi; /* compare them as integers */
  393. else /* 'f' is either greater or less than all integers */
  394. return f > 0; /* greater? */
  395. }
  396. }
  397. /*
  398. ** Check whether float 'f' is less than integer 'i'.
  399. ** See comments on previous function.
  400. */
  401. l_sinline int LTfloatint (lua_Number f, lua_Integer i) {
  402. if (l_intfitsf(i))
  403. return luai_numlt(f, cast_num(i)); /* compare them as floats */
  404. else { /* f < i <=> floor(f) < i */
  405. lua_Integer fi;
  406. if (luaV_flttointeger(f, &fi, F2Ifloor)) /* fi = floor(f) */
  407. return fi < i; /* compare them as integers */
  408. else /* 'f' is either greater or less than all integers */
  409. return f < 0; /* less? */
  410. }
  411. }
  412. /*
  413. ** Check whether float 'f' is less than or equal to integer 'i'.
  414. ** See comments on previous function.
  415. */
  416. l_sinline int LEfloatint (lua_Number f, lua_Integer i) {
  417. if (l_intfitsf(i))
  418. return luai_numle(f, cast_num(i)); /* compare them as floats */
  419. else { /* f <= i <=> ceil(f) <= i */
  420. lua_Integer fi;
  421. if (luaV_flttointeger(f, &fi, F2Iceil)) /* fi = ceil(f) */
  422. return fi <= i; /* compare them as integers */
  423. else /* 'f' is either greater or less than all integers */
  424. return f < 0; /* less? */
  425. }
  426. }
  427. /*
  428. ** Return 'l < r', for numbers.
  429. */
  430. l_sinline int LTnum (const TValue *l, const TValue *r) {
  431. lua_assert(ttisnumber(l) && ttisnumber(r));
  432. if (ttisinteger(l)) {
  433. lua_Integer li = ivalue(l);
  434. if (ttisinteger(r))
  435. return li < ivalue(r); /* both are integers */
  436. else /* 'l' is int and 'r' is float */
  437. return LTintfloat(li, fltvalue(r)); /* l < r ? */
  438. }
  439. else {
  440. lua_Number lf = fltvalue(l); /* 'l' must be float */
  441. if (ttisfloat(r))
  442. return luai_numlt(lf, fltvalue(r)); /* both are float */
  443. else /* 'l' is float and 'r' is int */
  444. return LTfloatint(lf, ivalue(r));
  445. }
  446. }
  447. /*
  448. ** Return 'l <= r', for numbers.
  449. */
  450. l_sinline int LEnum (const TValue *l, const TValue *r) {
  451. lua_assert(ttisnumber(l) && ttisnumber(r));
  452. if (ttisinteger(l)) {
  453. lua_Integer li = ivalue(l);
  454. if (ttisinteger(r))
  455. return li <= ivalue(r); /* both are integers */
  456. else /* 'l' is int and 'r' is float */
  457. return LEintfloat(li, fltvalue(r)); /* l <= r ? */
  458. }
  459. else {
  460. lua_Number lf = fltvalue(l); /* 'l' must be float */
  461. if (ttisfloat(r))
  462. return luai_numle(lf, fltvalue(r)); /* both are float */
  463. else /* 'l' is float and 'r' is int */
  464. return LEfloatint(lf, ivalue(r));
  465. }
  466. }
  467. /*
  468. ** return 'l < r' for non-numbers.
  469. */
  470. static int lessthanothers (lua_State *L, const TValue *l, const TValue *r) {
  471. lua_assert(!ttisnumber(l) || !ttisnumber(r));
  472. if (ttisstring(l) && ttisstring(r)) /* both are strings? */
  473. return l_strcmp(tsvalue(l), tsvalue(r)) < 0;
  474. else
  475. return luaT_callorderTM(L, l, r, TM_LT);
  476. }
  477. /*
  478. ** Main operation less than; return 'l < r'.
  479. */
  480. int luaV_lessthan (lua_State *L, const TValue *l, const TValue *r) {
  481. if (ttisnumber(l) && ttisnumber(r)) /* both operands are numbers? */
  482. return LTnum(l, r);
  483. else return lessthanothers(L, l, r);
  484. }
  485. /*
  486. ** return 'l <= r' for non-numbers.
  487. */
  488. static int lessequalothers (lua_State *L, const TValue *l, const TValue *r) {
  489. lua_assert(!ttisnumber(l) || !ttisnumber(r));
  490. if (ttisstring(l) && ttisstring(r)) /* both are strings? */
  491. return l_strcmp(tsvalue(l), tsvalue(r)) <= 0;
  492. else
  493. return luaT_callorderTM(L, l, r, TM_LE);
  494. }
  495. /*
  496. ** Main operation less than or equal to; return 'l <= r'.
  497. */
  498. int luaV_lessequal (lua_State *L, const TValue *l, const TValue *r) {
  499. if (ttisnumber(l) && ttisnumber(r)) /* both operands are numbers? */
  500. return LEnum(l, r);
  501. else return lessequalothers(L, l, r);
  502. }
  503. /*
  504. ** Main operation for equality of Lua values; return 't1 == t2'.
  505. ** L == NULL means raw equality (no metamethods)
  506. */
  507. int luaV_equalobj (lua_State *L, const TValue *t1, const TValue *t2) {
  508. const TValue *tm;
  509. if (ttypetag(t1) != ttypetag(t2)) { /* not the same variant? */
  510. if (ttype(t1) != ttype(t2) || ttype(t1) != LUA_TNUMBER)
  511. return 0; /* only numbers can be equal with different variants */
  512. else { /* two numbers with different variants */
  513. /* One of them is an integer. If the other does not have an
  514. integer value, they cannot be equal; otherwise, compare their
  515. integer values. */
  516. lua_Integer i1, i2;
  517. return (luaV_tointegerns(t1, &i1, F2Ieq) &&
  518. luaV_tointegerns(t2, &i2, F2Ieq) &&
  519. i1 == i2);
  520. }
  521. }
  522. /* values have same type and same variant */
  523. switch (ttypetag(t1)) {
  524. case LUA_VNIL: case LUA_VFALSE: case LUA_VTRUE: return 1;
  525. case LUA_VNUMINT: return (ivalue(t1) == ivalue(t2));
  526. case LUA_VNUMFLT: return luai_numeq(fltvalue(t1), fltvalue(t2));
  527. case LUA_VLIGHTUSERDATA: return pvalue(t1) == pvalue(t2);
  528. case LUA_VLCF: return fvalue(t1) == fvalue(t2);
  529. case LUA_VSHRSTR: return eqshrstr(tsvalue(t1), tsvalue(t2));
  530. case LUA_VLNGSTR: return luaS_eqlngstr(tsvalue(t1), tsvalue(t2));
  531. case LUA_VUSERDATA: {
  532. if (uvalue(t1) == uvalue(t2)) return 1;
  533. else if (L == NULL) return 0;
  534. tm = fasttm(L, uvalue(t1)->metatable, TM_EQ);
  535. if (tm == NULL)
  536. tm = fasttm(L, uvalue(t2)->metatable, TM_EQ);
  537. break; /* will try TM */
  538. }
  539. case LUA_VTABLE: {
  540. if (hvalue(t1) == hvalue(t2)) return 1;
  541. else if (L == NULL) return 0;
  542. tm = fasttm(L, hvalue(t1)->metatable, TM_EQ);
  543. if (tm == NULL)
  544. tm = fasttm(L, hvalue(t2)->metatable, TM_EQ);
  545. break; /* will try TM */
  546. }
  547. default:
  548. return gcvalue(t1) == gcvalue(t2);
  549. }
  550. if (tm == NULL) /* no TM? */
  551. return 0; /* objects are different */
  552. else {
  553. luaT_callTMres(L, tm, t1, t2, L->top.p); /* call TM */
  554. return !l_isfalse(s2v(L->top.p));
  555. }
  556. }
  557. /* macro used by 'luaV_concat' to ensure that element at 'o' is a string */
  558. #define tostring(L,o) \
  559. (ttisstring(o) || (cvt2str(o) && (luaO_tostring(L, o), 1)))
  560. #define isemptystr(o) (ttisshrstring(o) && tsvalue(o)->shrlen == 0)
  561. /* copy strings in stack from top - n up to top - 1 to buffer */
  562. static void copy2buff (StkId top, int n, char *buff) {
  563. size_t tl = 0; /* size already copied */
  564. do {
  565. TString *st = tsvalue(s2v(top - n));
  566. size_t l = tsslen(st); /* length of string being copied */
  567. memcpy(buff + tl, getstr(st), l * sizeof(char));
  568. tl += l;
  569. } while (--n > 0);
  570. }
  571. /*
  572. ** Main operation for concatenation: concat 'total' values in the stack,
  573. ** from 'L->top.p - total' up to 'L->top.p - 1'.
  574. */
  575. void luaV_concat (lua_State *L, int total) {
  576. if (total == 1)
  577. return; /* "all" values already concatenated */
  578. do {
  579. StkId top = L->top.p;
  580. int n = 2; /* number of elements handled in this pass (at least 2) */
  581. if (!(ttisstring(s2v(top - 2)) || cvt2str(s2v(top - 2))) ||
  582. !tostring(L, s2v(top - 1)))
  583. luaT_tryconcatTM(L); /* may invalidate 'top' */
  584. else if (isemptystr(s2v(top - 1))) /* second operand is empty? */
  585. cast_void(tostring(L, s2v(top - 2))); /* result is first operand */
  586. else if (isemptystr(s2v(top - 2))) { /* first operand is empty string? */
  587. setobjs2s(L, top - 2, top - 1); /* result is second op. */
  588. }
  589. else {
  590. /* at least two non-empty string values; get as many as possible */
  591. size_t tl = tsslen(tsvalue(s2v(top - 1)));
  592. TString *ts;
  593. /* collect total length and number of strings */
  594. for (n = 1; n < total && tostring(L, s2v(top - n - 1)); n++) {
  595. size_t l = tsslen(tsvalue(s2v(top - n - 1)));
  596. if (l_unlikely(l >= (MAX_SIZE/sizeof(char)) - tl)) {
  597. L->top.p = top - total; /* pop strings to avoid wasting stack */
  598. luaG_runerror(L, "string length overflow");
  599. }
  600. tl += l;
  601. }
  602. if (tl <= LUAI_MAXSHORTLEN) { /* is result a short string? */
  603. char buff[LUAI_MAXSHORTLEN];
  604. copy2buff(top, n, buff); /* copy strings to buffer */
  605. ts = luaS_newlstr(L, buff, tl);
  606. }
  607. else { /* long string; copy strings directly to final result */
  608. ts = luaS_createlngstrobj(L, tl);
  609. copy2buff(top, n, getlngstr(ts));
  610. }
  611. setsvalue2s(L, top - n, ts); /* create result */
  612. }
  613. total -= n - 1; /* got 'n' strings to create one new */
  614. L->top.p -= n - 1; /* popped 'n' strings and pushed one */
  615. } while (total > 1); /* repeat until only 1 result left */
  616. }
  617. /*
  618. ** Main operation 'ra = #rb'.
  619. */
  620. void luaV_objlen (lua_State *L, StkId ra, const TValue *rb) {
  621. const TValue *tm;
  622. switch (ttypetag(rb)) {
  623. case LUA_VTABLE: {
  624. Table *h = hvalue(rb);
  625. tm = fasttm(L, h->metatable, TM_LEN);
  626. if (tm) break; /* metamethod? break switch to call it */
  627. setivalue(s2v(ra), luaH_getn(h)); /* else primitive len */
  628. return;
  629. }
  630. case LUA_VSHRSTR: {
  631. setivalue(s2v(ra), tsvalue(rb)->shrlen);
  632. return;
  633. }
  634. case LUA_VLNGSTR: {
  635. setivalue(s2v(ra), tsvalue(rb)->u.lnglen);
  636. return;
  637. }
  638. default: { /* try metamethod */
  639. tm = luaT_gettmbyobj(L, rb, TM_LEN);
  640. if (l_unlikely(notm(tm))) /* no metamethod? */
  641. luaG_typeerror(L, rb, "get length of");
  642. break;
  643. }
  644. }
  645. luaT_callTMres(L, tm, rb, rb, ra);
  646. }
  647. /*
  648. ** Integer division; return 'm // n', that is, floor(m/n).
  649. ** C division truncates its result (rounds towards zero).
  650. ** 'floor(q) == trunc(q)' when 'q >= 0' or when 'q' is integer,
  651. ** otherwise 'floor(q) == trunc(q) - 1'.
  652. */
  653. lua_Integer luaV_idiv (lua_State *L, lua_Integer m, lua_Integer n) {
  654. if (l_unlikely(l_castS2U(n) + 1u <= 1u)) { /* special cases: -1 or 0 */
  655. if (n == 0)
  656. luaG_runerror(L, "attempt to divide by zero");
  657. return intop(-, 0, m); /* n==-1; avoid overflow with 0x80000...//-1 */
  658. }
  659. else {
  660. lua_Integer q = m / n; /* perform C division */
  661. if ((m ^ n) < 0 && m % n != 0) /* 'm/n' would be negative non-integer? */
  662. q -= 1; /* correct result for different rounding */
  663. return q;
  664. }
  665. }
  666. /*
  667. ** Integer modulus; return 'm % n'. (Assume that C '%' with
  668. ** negative operands follows C99 behavior. See previous comment
  669. ** about luaV_idiv.)
  670. */
  671. lua_Integer luaV_mod (lua_State *L, lua_Integer m, lua_Integer n) {
  672. if (l_unlikely(l_castS2U(n) + 1u <= 1u)) { /* special cases: -1 or 0 */
  673. if (n == 0)
  674. luaG_runerror(L, "attempt to perform 'n%%0'");
  675. return 0; /* m % -1 == 0; avoid overflow with 0x80000...%-1 */
  676. }
  677. else {
  678. lua_Integer r = m % n;
  679. if (r != 0 && (r ^ n) < 0) /* 'm/n' would be non-integer negative? */
  680. r += n; /* correct result for different rounding */
  681. return r;
  682. }
  683. }
  684. /*
  685. ** Float modulus
  686. */
  687. lua_Number luaV_modf (lua_State *L, lua_Number m, lua_Number n) {
  688. lua_Number r;
  689. luai_nummod(L, m, n, r);
  690. return r;
  691. }
  692. /* number of bits in an integer */
  693. #define NBITS cast_int(sizeof(lua_Integer) * CHAR_BIT)
  694. /*
  695. ** Shift left operation. (Shift right just negates 'y'.)
  696. */
  697. lua_Integer luaV_shiftl (lua_Integer x, lua_Integer y) {
  698. if (y < 0) { /* shift right? */
  699. if (y <= -NBITS) return 0;
  700. else return intop(>>, x, -y);
  701. }
  702. else { /* shift left */
  703. if (y >= NBITS) return 0;
  704. else return intop(<<, x, y);
  705. }
  706. }
  707. /*
  708. ** create a new Lua closure, push it in the stack, and initialize
  709. ** its upvalues.
  710. */
  711. static void pushclosure (lua_State *L, Proto *p, UpVal **encup, StkId base,
  712. StkId ra) {
  713. int nup = p->sizeupvalues;
  714. Upvaldesc *uv = p->upvalues;
  715. int i;
  716. LClosure *ncl = luaF_newLclosure(L, nup);
  717. ncl->p = p;
  718. setclLvalue2s(L, ra, ncl); /* anchor new closure in stack */
  719. for (i = 0; i < nup; i++) { /* fill in its upvalues */
  720. if (uv[i].instack) /* upvalue refers to local variable? */
  721. ncl->upvals[i] = luaF_findupval(L, base + uv[i].idx);
  722. else /* get upvalue from enclosing function */
  723. ncl->upvals[i] = encup[uv[i].idx];
  724. luaC_objbarrier(L, ncl, ncl->upvals[i]);
  725. }
  726. }
  727. /*
  728. ** finish execution of an opcode interrupted by a yield
  729. */
  730. void luaV_finishOp (lua_State *L) {
  731. CallInfo *ci = L->ci;
  732. StkId base = ci->func.p + 1;
  733. Instruction inst = *(ci->u.l.savedpc - 1); /* interrupted instruction */
  734. OpCode op = GET_OPCODE(inst);
  735. switch (op) { /* finish its execution */
  736. case OP_MMBIN: case OP_MMBINI: case OP_MMBINK: {
  737. setobjs2s(L, base + GETARG_A(*(ci->u.l.savedpc - 2)), --L->top.p);
  738. break;
  739. }
  740. case OP_UNM: case OP_BNOT: case OP_LEN:
  741. case OP_GETTABUP: case OP_GETTABLE: case OP_GETI:
  742. case OP_GETFIELD: case OP_SELF: {
  743. setobjs2s(L, base + GETARG_A(inst), --L->top.p);
  744. break;
  745. }
  746. case OP_LT: case OP_LE:
  747. case OP_LTI: case OP_LEI:
  748. case OP_GTI: case OP_GEI:
  749. case OP_EQ: { /* note that 'OP_EQI'/'OP_EQK' cannot yield */
  750. int res = !l_isfalse(s2v(L->top.p - 1));
  751. L->top.p--;
  752. #if defined(LUA_COMPAT_LT_LE)
  753. if (ci->callstatus & CIST_LEQ) { /* "<=" using "<" instead? */
  754. ci->callstatus ^= CIST_LEQ; /* clear mark */
  755. res = !res; /* negate result */
  756. }
  757. #endif
  758. lua_assert(GET_OPCODE(*ci->u.l.savedpc) == OP_JMP);
  759. if (res != GETARG_k(inst)) /* condition failed? */
  760. ci->u.l.savedpc++; /* skip jump instruction */
  761. break;
  762. }
  763. case OP_CONCAT: {
  764. StkId top = L->top.p - 1; /* top when 'luaT_tryconcatTM' was called */
  765. int a = GETARG_A(inst); /* first element to concatenate */
  766. int total = cast_int(top - 1 - (base + a)); /* yet to concatenate */
  767. setobjs2s(L, top - 2, top); /* put TM result in proper position */
  768. L->top.p = top - 1; /* top is one after last element (at top-2) */
  769. luaV_concat(L, total); /* concat them (may yield again) */
  770. break;
  771. }
  772. case OP_CLOSE: { /* yielded closing variables */
  773. ci->u.l.savedpc--; /* repeat instruction to close other vars. */
  774. break;
  775. }
  776. case OP_RETURN: { /* yielded closing variables */
  777. StkId ra = base + GETARG_A(inst);
  778. /* adjust top to signal correct number of returns, in case the
  779. return is "up to top" ('isIT') */
  780. L->top.p = ra + ci->u2.nres;
  781. /* repeat instruction to close other vars. and complete the return */
  782. ci->u.l.savedpc--;
  783. break;
  784. }
  785. default: {
  786. /* only these other opcodes can yield */
  787. lua_assert(op == OP_TFORCALL || op == OP_CALL ||
  788. op == OP_TAILCALL || op == OP_SETTABUP || op == OP_SETTABLE ||
  789. op == OP_SETI || op == OP_SETFIELD);
  790. break;
  791. }
  792. }
  793. }
  794. /*
  795. ** {==================================================================
  796. ** Macros for arithmetic/bitwise/comparison opcodes in 'luaV_execute'
  797. ** ===================================================================
  798. */
  799. #define l_addi(L,a,b) intop(+, a, b)
  800. #define l_subi(L,a,b) intop(-, a, b)
  801. #define l_muli(L,a,b) intop(*, a, b)
  802. #define l_band(a,b) intop(&, a, b)
  803. #define l_bor(a,b) intop(|, a, b)
  804. #define l_bxor(a,b) intop(^, a, b)
  805. #define l_lti(a,b) (a < b)
  806. #define l_lei(a,b) (a <= b)
  807. #define l_gti(a,b) (a > b)
  808. #define l_gei(a,b) (a >= b)
  809. /*
  810. ** Arithmetic operations with immediate operands. 'iop' is the integer
  811. ** operation, 'fop' is the float operation.
  812. */
  813. #define op_arithI(L,iop,fop) { \
  814. StkId ra = RA(i); \
  815. TValue *v1 = vRB(i); \
  816. int imm = GETARG_sC(i); \
  817. if (ttisinteger(v1)) { \
  818. lua_Integer iv1 = ivalue(v1); \
  819. pc++; setivalue(s2v(ra), iop(L, iv1, imm)); \
  820. } \
  821. else if (ttisfloat(v1)) { \
  822. lua_Number nb = fltvalue(v1); \
  823. lua_Number fimm = cast_num(imm); \
  824. pc++; setfltvalue(s2v(ra), fop(L, nb, fimm)); \
  825. }}
  826. /*
  827. ** Auxiliary function for arithmetic operations over floats and others
  828. ** with two register operands.
  829. */
  830. #define op_arithf_aux(L,v1,v2,fop) { \
  831. lua_Number n1; lua_Number n2; \
  832. if (tonumberns(v1, n1) && tonumberns(v2, n2)) { \
  833. pc++; setfltvalue(s2v(ra), fop(L, n1, n2)); \
  834. }}
  835. /*
  836. ** Arithmetic operations over floats and others with register operands.
  837. */
  838. #define op_arithf(L,fop) { \
  839. StkId ra = RA(i); \
  840. TValue *v1 = vRB(i); \
  841. TValue *v2 = vRC(i); \
  842. op_arithf_aux(L, v1, v2, fop); }
  843. /*
  844. ** Arithmetic operations with K operands for floats.
  845. */
  846. #define op_arithfK(L,fop) { \
  847. StkId ra = RA(i); \
  848. TValue *v1 = vRB(i); \
  849. TValue *v2 = KC(i); lua_assert(ttisnumber(v2)); \
  850. op_arithf_aux(L, v1, v2, fop); }
  851. /*
  852. ** Arithmetic operations over integers and floats.
  853. */
  854. #define op_arith_aux(L,v1,v2,iop,fop) { \
  855. StkId ra = RA(i); \
  856. if (ttisinteger(v1) && ttisinteger(v2)) { \
  857. lua_Integer i1 = ivalue(v1); lua_Integer i2 = ivalue(v2); \
  858. pc++; setivalue(s2v(ra), iop(L, i1, i2)); \
  859. } \
  860. else op_arithf_aux(L, v1, v2, fop); }
  861. /*
  862. ** Arithmetic operations with register operands.
  863. */
  864. #define op_arith(L,iop,fop) { \
  865. TValue *v1 = vRB(i); \
  866. TValue *v2 = vRC(i); \
  867. op_arith_aux(L, v1, v2, iop, fop); }
  868. /*
  869. ** Arithmetic operations with K operands.
  870. */
  871. #define op_arithK(L,iop,fop) { \
  872. TValue *v1 = vRB(i); \
  873. TValue *v2 = KC(i); lua_assert(ttisnumber(v2)); \
  874. op_arith_aux(L, v1, v2, iop, fop); }
  875. /*
  876. ** Bitwise operations with constant operand.
  877. */
  878. #define op_bitwiseK(L,op) { \
  879. StkId ra = RA(i); \
  880. TValue *v1 = vRB(i); \
  881. TValue *v2 = KC(i); \
  882. lua_Integer i1; \
  883. lua_Integer i2 = ivalue(v2); \
  884. if (tointegerns(v1, &i1)) { \
  885. pc++; setivalue(s2v(ra), op(i1, i2)); \
  886. }}
  887. /*
  888. ** Bitwise operations with register operands.
  889. */
  890. #define op_bitwise(L,op) { \
  891. StkId ra = RA(i); \
  892. TValue *v1 = vRB(i); \
  893. TValue *v2 = vRC(i); \
  894. lua_Integer i1; lua_Integer i2; \
  895. if (tointegerns(v1, &i1) && tointegerns(v2, &i2)) { \
  896. pc++; setivalue(s2v(ra), op(i1, i2)); \
  897. }}
  898. /*
  899. ** Order operations with register operands. 'opn' actually works
  900. ** for all numbers, but the fast track improves performance for
  901. ** integers.
  902. */
  903. #define op_order(L,opi,opn,other) { \
  904. StkId ra = RA(i); \
  905. int cond; \
  906. TValue *rb = vRB(i); \
  907. if (ttisinteger(s2v(ra)) && ttisinteger(rb)) { \
  908. lua_Integer ia = ivalue(s2v(ra)); \
  909. lua_Integer ib = ivalue(rb); \
  910. cond = opi(ia, ib); \
  911. } \
  912. else if (ttisnumber(s2v(ra)) && ttisnumber(rb)) \
  913. cond = opn(s2v(ra), rb); \
  914. else \
  915. Protect(cond = other(L, s2v(ra), rb)); \
  916. docondjump(); }
  917. /*
  918. ** Order operations with immediate operand. (Immediate operand is
  919. ** always small enough to have an exact representation as a float.)
  920. */
  921. #define op_orderI(L,opi,opf,inv,tm) { \
  922. StkId ra = RA(i); \
  923. int cond; \
  924. int im = GETARG_sB(i); \
  925. if (ttisinteger(s2v(ra))) \
  926. cond = opi(ivalue(s2v(ra)), im); \
  927. else if (ttisfloat(s2v(ra))) { \
  928. lua_Number fa = fltvalue(s2v(ra)); \
  929. lua_Number fim = cast_num(im); \
  930. cond = opf(fa, fim); \
  931. } \
  932. else { \
  933. int isf = GETARG_C(i); \
  934. Protect(cond = luaT_callorderiTM(L, s2v(ra), im, inv, isf, tm)); \
  935. } \
  936. docondjump(); }
  937. /* }================================================================== */
  938. /*
  939. ** {==================================================================
  940. ** Function 'luaV_execute': main interpreter loop
  941. ** ===================================================================
  942. */
  943. /*
  944. ** some macros for common tasks in 'luaV_execute'
  945. */
  946. #define RA(i) (base+GETARG_A(i))
  947. #define RB(i) (base+GETARG_B(i))
  948. #define vRB(i) s2v(RB(i))
  949. #define KB(i) (k+GETARG_B(i))
  950. #define RC(i) (base+GETARG_C(i))
  951. #define vRC(i) s2v(RC(i))
  952. #define KC(i) (k+GETARG_C(i))
  953. #define RKC(i) ((TESTARG_k(i)) ? k + GETARG_C(i) : s2v(base + GETARG_C(i)))
  954. #define updatetrap(ci) (trap = ci->u.l.trap)
  955. #define updatebase(ci) (base = ci->func.p + 1)
  956. #define updatestack(ci) \
  957. { if (l_unlikely(trap)) { updatebase(ci); ra = RA(i); } }
  958. /*
  959. ** Execute a jump instruction. The 'updatetrap' allows signals to stop
  960. ** tight loops. (Without it, the local copy of 'trap' could never change.)
  961. */
  962. #define dojump(ci,i,e) { pc += GETARG_sJ(i) + e; updatetrap(ci); }
  963. /* for test instructions, execute the jump instruction that follows it */
  964. #define donextjump(ci) { Instruction ni = *pc; dojump(ci, ni, 1); }
  965. /*
  966. ** do a conditional jump: skip next instruction if 'cond' is not what
  967. ** was expected (parameter 'k'), else do next instruction, which must
  968. ** be a jump.
  969. */
  970. #define docondjump() if (cond != GETARG_k(i)) pc++; else donextjump(ci);
  971. /*
  972. ** Correct global 'pc'.
  973. */
  974. #define savepc(L) (ci->u.l.savedpc = pc)
  975. /*
  976. ** Whenever code can raise errors, the global 'pc' and the global
  977. ** 'top' must be correct to report occasional errors.
  978. */
  979. #define savestate(L,ci) (savepc(L), L->top.p = ci->top.p)
  980. /*
  981. ** Protect code that, in general, can raise errors, reallocate the
  982. ** stack, and change the hooks.
  983. */
  984. #define Protect(exp) (savestate(L,ci), (exp), updatetrap(ci))
  985. /* special version that does not change the top */
  986. #define ProtectNT(exp) (savepc(L), (exp), updatetrap(ci))
  987. /*
  988. ** Protect code that can only raise errors. (That is, it cannot change
  989. ** the stack or hooks.)
  990. */
  991. #define halfProtect(exp) (savestate(L,ci), (exp))
  992. /* 'c' is the limit of live values in the stack */
  993. #define checkGC(L,c) \
  994. { luaC_condGC(L, (savepc(L), L->top.p = (c)), \
  995. updatetrap(ci)); \
  996. luai_threadyield(L); }
  997. /* fetch an instruction and prepare its execution */
  998. #define vmfetch() { \
  999. if (l_unlikely(trap)) { /* stack reallocation or hooks? */ \
  1000. trap = luaG_traceexec(L, pc); /* handle hooks */ \
  1001. updatebase(ci); /* correct stack */ \
  1002. } \
  1003. i = *(pc++); \
  1004. }
  1005. #define vmdispatch(o) switch(o)
  1006. #define vmcase(l) case l:
  1007. #define vmbreak break
  1008. void luaV_execute (lua_State *L, CallInfo *ci) {
  1009. LClosure *cl;
  1010. TValue *k;
  1011. StkId base;
  1012. const Instruction *pc;
  1013. int trap;
  1014. #if LUA_USE_JUMPTABLE
  1015. #include "ljumptab.h"
  1016. #endif
  1017. startfunc:
  1018. trap = L->hookmask;
  1019. returning: /* trap already set */
  1020. cl = ci_func(ci);
  1021. k = cl->p->k;
  1022. pc = ci->u.l.savedpc;
  1023. if (l_unlikely(trap))
  1024. trap = luaG_tracecall(L);
  1025. base = ci->func.p + 1;
  1026. /* main loop of interpreter */
  1027. for (;;) {
  1028. Instruction i; /* instruction being executed */
  1029. vmfetch();
  1030. #if 0
  1031. /* low-level line tracing for debugging Lua */
  1032. printf("line: %d\n", luaG_getfuncline(cl->p, pcRel(pc, cl->p)));
  1033. #endif
  1034. lua_assert(base == ci->func.p + 1);
  1035. lua_assert(base <= L->top.p && L->top.p <= L->stack_last.p);
  1036. /* invalidate top for instructions not expecting it */
  1037. lua_assert(isIT(i) || (cast_void(L->top.p = base), 1));
  1038. vmdispatch (GET_OPCODE(i)) {
  1039. vmcase(OP_MOVE) {
  1040. StkId ra = RA(i);
  1041. setobjs2s(L, ra, RB(i));
  1042. vmbreak;
  1043. }
  1044. vmcase(OP_LOADI) {
  1045. StkId ra = RA(i);
  1046. lua_Integer b = GETARG_sBx(i);
  1047. setivalue(s2v(ra), b);
  1048. vmbreak;
  1049. }
  1050. vmcase(OP_LOADF) {
  1051. StkId ra = RA(i);
  1052. int b = GETARG_sBx(i);
  1053. setfltvalue(s2v(ra), cast_num(b));
  1054. vmbreak;
  1055. }
  1056. vmcase(OP_LOADK) {
  1057. StkId ra = RA(i);
  1058. TValue *rb = k + GETARG_Bx(i);
  1059. setobj2s(L, ra, rb);
  1060. vmbreak;
  1061. }
  1062. vmcase(OP_LOADKX) {
  1063. StkId ra = RA(i);
  1064. TValue *rb;
  1065. rb = k + GETARG_Ax(*pc); pc++;
  1066. setobj2s(L, ra, rb);
  1067. vmbreak;
  1068. }
  1069. vmcase(OP_LOADFALSE) {
  1070. StkId ra = RA(i);
  1071. setbfvalue(s2v(ra));
  1072. vmbreak;
  1073. }
  1074. vmcase(OP_LFALSESKIP) {
  1075. StkId ra = RA(i);
  1076. setbfvalue(s2v(ra));
  1077. pc++; /* skip next instruction */
  1078. vmbreak;
  1079. }
  1080. vmcase(OP_LOADTRUE) {
  1081. StkId ra = RA(i);
  1082. setbtvalue(s2v(ra));
  1083. vmbreak;
  1084. }
  1085. vmcase(OP_LOADNIL) {
  1086. StkId ra = RA(i);
  1087. int b = GETARG_B(i);
  1088. do {
  1089. setnilvalue(s2v(ra++));
  1090. } while (b--);
  1091. vmbreak;
  1092. }
  1093. vmcase(OP_GETUPVAL) {
  1094. StkId ra = RA(i);
  1095. int b = GETARG_B(i);
  1096. setobj2s(L, ra, cl->upvals[b]->v.p);
  1097. vmbreak;
  1098. }
  1099. vmcase(OP_SETUPVAL) {
  1100. StkId ra = RA(i);
  1101. UpVal *uv = cl->upvals[GETARG_B(i)];
  1102. setobj(L, uv->v.p, s2v(ra));
  1103. luaC_barrier(L, uv, s2v(ra));
  1104. vmbreak;
  1105. }
  1106. vmcase(OP_GETTABUP) {
  1107. StkId ra = RA(i);
  1108. const TValue *slot;
  1109. TValue *upval = cl->upvals[GETARG_B(i)]->v.p;
  1110. TValue *rc = KC(i);
  1111. TString *key = tsvalue(rc); /* key must be a short string */
  1112. if (luaV_fastget(L, upval, key, slot, luaH_getshortstr)) {
  1113. setobj2s(L, ra, slot);
  1114. }
  1115. else
  1116. Protect(luaV_finishget(L, upval, rc, ra, slot));
  1117. vmbreak;
  1118. }
  1119. vmcase(OP_GETTABLE) {
  1120. StkId ra = RA(i);
  1121. const TValue *slot;
  1122. TValue *rb = vRB(i);
  1123. TValue *rc = vRC(i);
  1124. lua_Unsigned n;
  1125. if (ttisinteger(rc) /* fast track for integers? */
  1126. ? (cast_void(n = ivalue(rc)), luaV_fastgeti(L, rb, n, slot))
  1127. : luaV_fastget(L, rb, rc, slot, luaH_get)) {
  1128. setobj2s(L, ra, slot);
  1129. }
  1130. else
  1131. Protect(luaV_finishget(L, rb, rc, ra, slot));
  1132. vmbreak;
  1133. }
  1134. vmcase(OP_GETI) {
  1135. StkId ra = RA(i);
  1136. const TValue *slot;
  1137. TValue *rb = vRB(i);
  1138. int c = GETARG_C(i);
  1139. if (luaV_fastgeti(L, rb, c, slot)) {
  1140. setobj2s(L, ra, slot);
  1141. }
  1142. else {
  1143. TValue key;
  1144. setivalue(&key, c);
  1145. Protect(luaV_finishget(L, rb, &key, ra, slot));
  1146. }
  1147. vmbreak;
  1148. }
  1149. vmcase(OP_GETFIELD) {
  1150. StkId ra = RA(i);
  1151. const TValue *slot;
  1152. TValue *rb = vRB(i);
  1153. TValue *rc = KC(i);
  1154. TString *key = tsvalue(rc); /* key must be a short string */
  1155. if (luaV_fastget(L, rb, key, slot, luaH_getshortstr)) {
  1156. setobj2s(L, ra, slot);
  1157. }
  1158. else
  1159. Protect(luaV_finishget(L, rb, rc, ra, slot));
  1160. vmbreak;
  1161. }
  1162. vmcase(OP_SETTABUP) {
  1163. const TValue *slot;
  1164. TValue *upval = cl->upvals[GETARG_A(i)]->v.p;
  1165. TValue *rb = KB(i);
  1166. TValue *rc = RKC(i);
  1167. TString *key = tsvalue(rb); /* key must be a short string */
  1168. if (luaV_fastget(L, upval, key, slot, luaH_getshortstr)) {
  1169. luaV_finishfastset(L, upval, slot, rc);
  1170. }
  1171. else
  1172. Protect(luaV_finishset(L, upval, rb, rc, slot));
  1173. vmbreak;
  1174. }
  1175. vmcase(OP_SETTABLE) {
  1176. StkId ra = RA(i);
  1177. const TValue *slot;
  1178. TValue *rb = vRB(i); /* key (table is in 'ra') */
  1179. TValue *rc = RKC(i); /* value */
  1180. lua_Unsigned n;
  1181. if (ttisinteger(rb) /* fast track for integers? */
  1182. ? (cast_void(n = ivalue(rb)), luaV_fastgeti(L, s2v(ra), n, slot))
  1183. : luaV_fastget(L, s2v(ra), rb, slot, luaH_get)) {
  1184. luaV_finishfastset(L, s2v(ra), slot, rc);
  1185. }
  1186. else
  1187. Protect(luaV_finishset(L, s2v(ra), rb, rc, slot));
  1188. vmbreak;
  1189. }
  1190. vmcase(OP_SETI) {
  1191. StkId ra = RA(i);
  1192. const TValue *slot;
  1193. int c = GETARG_B(i);
  1194. TValue *rc = RKC(i);
  1195. if (luaV_fastgeti(L, s2v(ra), c, slot)) {
  1196. luaV_finishfastset(L, s2v(ra), slot, rc);
  1197. }
  1198. else {
  1199. TValue key;
  1200. setivalue(&key, c);
  1201. Protect(luaV_finishset(L, s2v(ra), &key, rc, slot));
  1202. }
  1203. vmbreak;
  1204. }
  1205. vmcase(OP_SETFIELD) {
  1206. StkId ra = RA(i);
  1207. const TValue *slot;
  1208. TValue *rb = KB(i);
  1209. TValue *rc = RKC(i);
  1210. TString *key = tsvalue(rb); /* key must be a short string */
  1211. if (luaV_fastget(L, s2v(ra), key, slot, luaH_getshortstr)) {
  1212. luaV_finishfastset(L, s2v(ra), slot, rc);
  1213. }
  1214. else
  1215. Protect(luaV_finishset(L, s2v(ra), rb, rc, slot));
  1216. vmbreak;
  1217. }
  1218. vmcase(OP_NEWTABLE) {
  1219. StkId ra = RA(i);
  1220. int b = GETARG_B(i); /* log2(hash size) + 1 */
  1221. int c = GETARG_C(i); /* array size */
  1222. Table *t;
  1223. if (b > 0)
  1224. b = 1 << (b - 1); /* size is 2^(b - 1) */
  1225. lua_assert((!TESTARG_k(i)) == (GETARG_Ax(*pc) == 0));
  1226. if (TESTARG_k(i)) /* non-zero extra argument? */
  1227. c += GETARG_Ax(*pc) * (MAXARG_C + 1); /* add it to size */
  1228. pc++; /* skip extra argument */
  1229. L->top.p = ra + 1; /* correct top in case of emergency GC */
  1230. t = luaH_new(L); /* memory allocation */
  1231. sethvalue2s(L, ra, t);
  1232. if (b != 0 || c != 0)
  1233. luaH_resize(L, t, c, b); /* idem */
  1234. checkGC(L, ra + 1);
  1235. vmbreak;
  1236. }
  1237. vmcase(OP_SELF) {
  1238. StkId ra = RA(i);
  1239. const TValue *slot;
  1240. TValue *rb = vRB(i);
  1241. TValue *rc = RKC(i);
  1242. TString *key = tsvalue(rc); /* key must be a string */
  1243. setobj2s(L, ra + 1, rb);
  1244. if (luaV_fastget(L, rb, key, slot, luaH_getstr)) {
  1245. setobj2s(L, ra, slot);
  1246. }
  1247. else
  1248. Protect(luaV_finishget(L, rb, rc, ra, slot));
  1249. vmbreak;
  1250. }
  1251. vmcase(OP_ADDI) {
  1252. op_arithI(L, l_addi, luai_numadd);
  1253. vmbreak;
  1254. }
  1255. vmcase(OP_ADDK) {
  1256. op_arithK(L, l_addi, luai_numadd);
  1257. vmbreak;
  1258. }
  1259. vmcase(OP_SUBK) {
  1260. op_arithK(L, l_subi, luai_numsub);
  1261. vmbreak;
  1262. }
  1263. vmcase(OP_MULK) {
  1264. op_arithK(L, l_muli, luai_nummul);
  1265. vmbreak;
  1266. }
  1267. vmcase(OP_MODK) {
  1268. savestate(L, ci); /* in case of division by 0 */
  1269. op_arithK(L, luaV_mod, luaV_modf);
  1270. vmbreak;
  1271. }
  1272. vmcase(OP_POWK) {
  1273. op_arithfK(L, luai_numpow);
  1274. vmbreak;
  1275. }
  1276. vmcase(OP_DIVK) {
  1277. op_arithfK(L, luai_numdiv);
  1278. vmbreak;
  1279. }
  1280. vmcase(OP_IDIVK) {
  1281. savestate(L, ci); /* in case of division by 0 */
  1282. op_arithK(L, luaV_idiv, luai_numidiv);
  1283. vmbreak;
  1284. }
  1285. vmcase(OP_BANDK) {
  1286. op_bitwiseK(L, l_band);
  1287. vmbreak;
  1288. }
  1289. vmcase(OP_BORK) {
  1290. op_bitwiseK(L, l_bor);
  1291. vmbreak;
  1292. }
  1293. vmcase(OP_BXORK) {
  1294. op_bitwiseK(L, l_bxor);
  1295. vmbreak;
  1296. }
  1297. vmcase(OP_SHRI) {
  1298. StkId ra = RA(i);
  1299. TValue *rb = vRB(i);
  1300. int ic = GETARG_sC(i);
  1301. lua_Integer ib;
  1302. if (tointegerns(rb, &ib)) {
  1303. pc++; setivalue(s2v(ra), luaV_shiftl(ib, -ic));
  1304. }
  1305. vmbreak;
  1306. }
  1307. vmcase(OP_SHLI) {
  1308. StkId ra = RA(i);
  1309. TValue *rb = vRB(i);
  1310. int ic = GETARG_sC(i);
  1311. lua_Integer ib;
  1312. if (tointegerns(rb, &ib)) {
  1313. pc++; setivalue(s2v(ra), luaV_shiftl(ic, ib));
  1314. }
  1315. vmbreak;
  1316. }
  1317. vmcase(OP_ADD) {
  1318. op_arith(L, l_addi, luai_numadd);
  1319. vmbreak;
  1320. }
  1321. vmcase(OP_SUB) {
  1322. op_arith(L, l_subi, luai_numsub);
  1323. vmbreak;
  1324. }
  1325. vmcase(OP_MUL) {
  1326. op_arith(L, l_muli, luai_nummul);
  1327. vmbreak;
  1328. }
  1329. vmcase(OP_MOD) {
  1330. savestate(L, ci); /* in case of division by 0 */
  1331. op_arith(L, luaV_mod, luaV_modf);
  1332. vmbreak;
  1333. }
  1334. vmcase(OP_POW) {
  1335. op_arithf(L, luai_numpow);
  1336. vmbreak;
  1337. }
  1338. vmcase(OP_DIV) { /* float division (always with floats) */
  1339. op_arithf(L, luai_numdiv);
  1340. vmbreak;
  1341. }
  1342. vmcase(OP_IDIV) { /* floor division */
  1343. savestate(L, ci); /* in case of division by 0 */
  1344. op_arith(L, luaV_idiv, luai_numidiv);
  1345. vmbreak;
  1346. }
  1347. vmcase(OP_BAND) {
  1348. op_bitwise(L, l_band);
  1349. vmbreak;
  1350. }
  1351. vmcase(OP_BOR) {
  1352. op_bitwise(L, l_bor);
  1353. vmbreak;
  1354. }
  1355. vmcase(OP_BXOR) {
  1356. op_bitwise(L, l_bxor);
  1357. vmbreak;
  1358. }
  1359. vmcase(OP_SHR) {
  1360. op_bitwise(L, luaV_shiftr);
  1361. vmbreak;
  1362. }
  1363. vmcase(OP_SHL) {
  1364. op_bitwise(L, luaV_shiftl);
  1365. vmbreak;
  1366. }
  1367. vmcase(OP_MMBIN) {
  1368. StkId ra = RA(i);
  1369. Instruction pi = *(pc - 2); /* original arith. expression */
  1370. TValue *rb = vRB(i);
  1371. TMS tm = (TMS)GETARG_C(i);
  1372. StkId result = RA(pi);
  1373. lua_assert(OP_ADD <= GET_OPCODE(pi) && GET_OPCODE(pi) <= OP_SHR);
  1374. Protect(luaT_trybinTM(L, s2v(ra), rb, result, tm));
  1375. vmbreak;
  1376. }
  1377. vmcase(OP_MMBINI) {
  1378. StkId ra = RA(i);
  1379. Instruction pi = *(pc - 2); /* original arith. expression */
  1380. int imm = GETARG_sB(i);
  1381. TMS tm = (TMS)GETARG_C(i);
  1382. int flip = GETARG_k(i);
  1383. StkId result = RA(pi);
  1384. Protect(luaT_trybiniTM(L, s2v(ra), imm, flip, result, tm));
  1385. vmbreak;
  1386. }
  1387. vmcase(OP_MMBINK) {
  1388. StkId ra = RA(i);
  1389. Instruction pi = *(pc - 2); /* original arith. expression */
  1390. TValue *imm = KB(i);
  1391. TMS tm = (TMS)GETARG_C(i);
  1392. int flip = GETARG_k(i);
  1393. StkId result = RA(pi);
  1394. Protect(luaT_trybinassocTM(L, s2v(ra), imm, flip, result, tm));
  1395. vmbreak;
  1396. }
  1397. vmcase(OP_UNM) {
  1398. StkId ra = RA(i);
  1399. TValue *rb = vRB(i);
  1400. lua_Number nb;
  1401. if (ttisinteger(rb)) {
  1402. lua_Integer ib = ivalue(rb);
  1403. setivalue(s2v(ra), intop(-, 0, ib));
  1404. }
  1405. else if (tonumberns(rb, nb)) {
  1406. setfltvalue(s2v(ra), luai_numunm(L, nb));
  1407. }
  1408. else
  1409. Protect(luaT_trybinTM(L, rb, rb, ra, TM_UNM));
  1410. vmbreak;
  1411. }
  1412. vmcase(OP_BNOT) {
  1413. StkId ra = RA(i);
  1414. TValue *rb = vRB(i);
  1415. lua_Integer ib;
  1416. if (tointegerns(rb, &ib)) {
  1417. setivalue(s2v(ra), intop(^, ~l_castS2U(0), ib));
  1418. }
  1419. else
  1420. Protect(luaT_trybinTM(L, rb, rb, ra, TM_BNOT));
  1421. vmbreak;
  1422. }
  1423. vmcase(OP_NOT) {
  1424. StkId ra = RA(i);
  1425. TValue *rb = vRB(i);
  1426. if (l_isfalse(rb))
  1427. setbtvalue(s2v(ra));
  1428. else
  1429. setbfvalue(s2v(ra));
  1430. vmbreak;
  1431. }
  1432. vmcase(OP_LEN) {
  1433. StkId ra = RA(i);
  1434. Protect(luaV_objlen(L, ra, vRB(i)));
  1435. vmbreak;
  1436. }
  1437. vmcase(OP_CONCAT) {
  1438. StkId ra = RA(i);
  1439. int n = GETARG_B(i); /* number of elements to concatenate */
  1440. L->top.p = ra + n; /* mark the end of concat operands */
  1441. ProtectNT(luaV_concat(L, n));
  1442. checkGC(L, L->top.p); /* 'luaV_concat' ensures correct top */
  1443. vmbreak;
  1444. }
  1445. vmcase(OP_CLOSE) {
  1446. StkId ra = RA(i);
  1447. Protect(luaF_close(L, ra, LUA_OK, 1));
  1448. vmbreak;
  1449. }
  1450. vmcase(OP_TBC) {
  1451. StkId ra = RA(i);
  1452. /* create new to-be-closed upvalue */
  1453. halfProtect(luaF_newtbcupval(L, ra));
  1454. vmbreak;
  1455. }
  1456. vmcase(OP_JMP) {
  1457. dojump(ci, i, 0);
  1458. vmbreak;
  1459. }
  1460. vmcase(OP_EQ) {
  1461. StkId ra = RA(i);
  1462. int cond;
  1463. TValue *rb = vRB(i);
  1464. Protect(cond = luaV_equalobj(L, s2v(ra), rb));
  1465. docondjump();
  1466. vmbreak;
  1467. }
  1468. vmcase(OP_LT) {
  1469. op_order(L, l_lti, LTnum, lessthanothers);
  1470. vmbreak;
  1471. }
  1472. vmcase(OP_LE) {
  1473. op_order(L, l_lei, LEnum, lessequalothers);
  1474. vmbreak;
  1475. }
  1476. vmcase(OP_EQK) {
  1477. StkId ra = RA(i);
  1478. TValue *rb = KB(i);
  1479. /* basic types do not use '__eq'; we can use raw equality */
  1480. int cond = luaV_rawequalobj(s2v(ra), rb);
  1481. docondjump();
  1482. vmbreak;
  1483. }
  1484. vmcase(OP_EQI) {
  1485. StkId ra = RA(i);
  1486. int cond;
  1487. int im = GETARG_sB(i);
  1488. if (ttisinteger(s2v(ra)))
  1489. cond = (ivalue(s2v(ra)) == im);
  1490. else if (ttisfloat(s2v(ra)))
  1491. cond = luai_numeq(fltvalue(s2v(ra)), cast_num(im));
  1492. else
  1493. cond = 0; /* other types cannot be equal to a number */
  1494. docondjump();
  1495. vmbreak;
  1496. }
  1497. vmcase(OP_LTI) {
  1498. op_orderI(L, l_lti, luai_numlt, 0, TM_LT);
  1499. vmbreak;
  1500. }
  1501. vmcase(OP_LEI) {
  1502. op_orderI(L, l_lei, luai_numle, 0, TM_LE);
  1503. vmbreak;
  1504. }
  1505. vmcase(OP_GTI) {
  1506. op_orderI(L, l_gti, luai_numgt, 1, TM_LT);
  1507. vmbreak;
  1508. }
  1509. vmcase(OP_GEI) {
  1510. op_orderI(L, l_gei, luai_numge, 1, TM_LE);
  1511. vmbreak;
  1512. }
  1513. vmcase(OP_TEST) {
  1514. StkId ra = RA(i);
  1515. int cond = !l_isfalse(s2v(ra));
  1516. docondjump();
  1517. vmbreak;
  1518. }
  1519. vmcase(OP_TESTSET) {
  1520. StkId ra = RA(i);
  1521. TValue *rb = vRB(i);
  1522. if (l_isfalse(rb) == GETARG_k(i))
  1523. pc++;
  1524. else {
  1525. setobj2s(L, ra, rb);
  1526. donextjump(ci);
  1527. }
  1528. vmbreak;
  1529. }
  1530. vmcase(OP_CALL) {
  1531. StkId ra = RA(i);
  1532. CallInfo *newci;
  1533. int b = GETARG_B(i);
  1534. int nresults = GETARG_C(i) - 1;
  1535. if (b != 0) /* fixed number of arguments? */
  1536. L->top.p = ra + b; /* top signals number of arguments */
  1537. /* else previous instruction set top */
  1538. savepc(L); /* in case of errors */
  1539. if ((newci = luaD_precall(L, ra, nresults)) == NULL)
  1540. updatetrap(ci); /* C call; nothing else to be done */
  1541. else { /* Lua call: run function in this same C frame */
  1542. ci = newci;
  1543. goto startfunc;
  1544. }
  1545. vmbreak;
  1546. }
  1547. vmcase(OP_TAILCALL) {
  1548. StkId ra = RA(i);
  1549. int b = GETARG_B(i); /* number of arguments + 1 (function) */
  1550. int n; /* number of results when calling a C function */
  1551. int nparams1 = GETARG_C(i);
  1552. /* delta is virtual 'func' - real 'func' (vararg functions) */
  1553. int delta = (nparams1) ? ci->u.l.nextraargs + nparams1 : 0;
  1554. if (b != 0)
  1555. L->top.p = ra + b;
  1556. else /* previous instruction set top */
  1557. b = cast_int(L->top.p - ra);
  1558. savepc(ci); /* several calls here can raise errors */
  1559. if (TESTARG_k(i)) {
  1560. luaF_closeupval(L, base); /* close upvalues from current call */
  1561. lua_assert(L->tbclist.p < base); /* no pending tbc variables */
  1562. lua_assert(base == ci->func.p + 1);
  1563. }
  1564. if ((n = luaD_pretailcall(L, ci, ra, b, delta)) < 0) /* Lua function? */
  1565. goto startfunc; /* execute the callee */
  1566. else { /* C function? */
  1567. ci->func.p -= delta; /* restore 'func' (if vararg) */
  1568. luaD_poscall(L, ci, n); /* finish caller */
  1569. updatetrap(ci); /* 'luaD_poscall' can change hooks */
  1570. goto ret; /* caller returns after the tail call */
  1571. }
  1572. }
  1573. vmcase(OP_RETURN) {
  1574. StkId ra = RA(i);
  1575. int n = GETARG_B(i) - 1; /* number of results */
  1576. int nparams1 = GETARG_C(i);
  1577. if (n < 0) /* not fixed? */
  1578. n = cast_int(L->top.p - ra); /* get what is available */
  1579. savepc(ci);
  1580. if (TESTARG_k(i)) { /* may there be open upvalues? */
  1581. ci->u2.nres = n; /* save number of returns */
  1582. if (L->top.p < ci->top.p)
  1583. L->top.p = ci->top.p;
  1584. luaF_close(L, base, CLOSEKTOP, 1);
  1585. updatetrap(ci);
  1586. updatestack(ci);
  1587. }
  1588. if (nparams1) /* vararg function? */
  1589. ci->func.p -= ci->u.l.nextraargs + nparams1;
  1590. L->top.p = ra + n; /* set call for 'luaD_poscall' */
  1591. luaD_poscall(L, ci, n);
  1592. updatetrap(ci); /* 'luaD_poscall' can change hooks */
  1593. goto ret;
  1594. }
  1595. vmcase(OP_RETURN0) {
  1596. if (l_unlikely(L->hookmask)) {
  1597. StkId ra = RA(i);
  1598. L->top.p = ra;
  1599. savepc(ci);
  1600. luaD_poscall(L, ci, 0); /* no hurry... */
  1601. trap = 1;
  1602. }
  1603. else { /* do the 'poscall' here */
  1604. int nres;
  1605. L->ci = ci->previous; /* back to caller */
  1606. L->top.p = base - 1;
  1607. for (nres = ci->nresults; l_unlikely(nres > 0); nres--)
  1608. setnilvalue(s2v(L->top.p++)); /* all results are nil */
  1609. }
  1610. goto ret;
  1611. }
  1612. vmcase(OP_RETURN1) {
  1613. if (l_unlikely(L->hookmask)) {
  1614. StkId ra = RA(i);
  1615. L->top.p = ra + 1;
  1616. savepc(ci);
  1617. luaD_poscall(L, ci, 1); /* no hurry... */
  1618. trap = 1;
  1619. }
  1620. else { /* do the 'poscall' here */
  1621. int nres = ci->nresults;
  1622. L->ci = ci->previous; /* back to caller */
  1623. if (nres == 0)
  1624. L->top.p = base - 1; /* asked for no results */
  1625. else {
  1626. StkId ra = RA(i);
  1627. setobjs2s(L, base - 1, ra); /* at least this result */
  1628. L->top.p = base;
  1629. for (; l_unlikely(nres > 1); nres--)
  1630. setnilvalue(s2v(L->top.p++)); /* complete missing results */
  1631. }
  1632. }
  1633. ret: /* return from a Lua function */
  1634. if (ci->callstatus & CIST_FRESH)
  1635. return; /* end this frame */
  1636. else {
  1637. ci = ci->previous;
  1638. goto returning; /* continue running caller in this frame */
  1639. }
  1640. }
  1641. vmcase(OP_FORLOOP) {
  1642. StkId ra = RA(i);
  1643. if (ttisinteger(s2v(ra + 1))) { /* integer loop? */
  1644. lua_Unsigned count = l_castS2U(ivalue(s2v(ra)));
  1645. if (count > 0) { /* still more iterations? */
  1646. lua_Integer step = ivalue(s2v(ra + 1));
  1647. lua_Integer idx = ivalue(s2v(ra + 2)); /* control variable */
  1648. chgivalue(s2v(ra), count - 1); /* update counter */
  1649. idx = intop(+, idx, step); /* add step to index */
  1650. chgivalue(s2v(ra + 2), idx); /* update control variable */
  1651. pc -= GETARG_Bx(i); /* jump back */
  1652. }
  1653. }
  1654. else if (floatforloop(ra)) /* float loop */
  1655. pc -= GETARG_Bx(i); /* jump back */
  1656. updatetrap(ci); /* allows a signal to break the loop */
  1657. vmbreak;
  1658. }
  1659. vmcase(OP_FORPREP) {
  1660. StkId ra = RA(i);
  1661. savestate(L, ci); /* in case of errors */
  1662. if (forprep(L, ra))
  1663. pc += GETARG_Bx(i) + 1; /* skip the loop */
  1664. vmbreak;
  1665. }
  1666. vmcase(OP_TFORPREP) {
  1667. /* before: 'ra' has the iterator function, 'ra + 1' has the state,
  1668. 'ra + 2' has the initial value for the control variable, and
  1669. 'ra + 3' has the closing variable. This opcode then swaps the
  1670. control and the closing variables and marks the closing variable
  1671. as to-be-closed.
  1672. */
  1673. StkId ra = RA(i);
  1674. TValue temp; /* to swap control and closing variables */
  1675. setobj(L, &temp, s2v(ra + 3));
  1676. setobjs2s(L, ra + 3, ra + 2);
  1677. setobj2s(L, ra + 2, &temp);
  1678. /* create to-be-closed upvalue (if closing var. is not nil) */
  1679. halfProtect(luaF_newtbcupval(L, ra + 2));
  1680. pc += GETARG_Bx(i); /* go to end of the loop */
  1681. i = *(pc++); /* fetch next instruction */
  1682. lua_assert(GET_OPCODE(i) == OP_TFORCALL && ra == RA(i));
  1683. goto l_tforcall;
  1684. }
  1685. vmcase(OP_TFORCALL) {
  1686. l_tforcall: {
  1687. /* 'ra' has the iterator function, 'ra + 1' has the state,
  1688. 'ra + 2' has the closing variable, and 'ra + 3' has the control
  1689. variable. The call will use the stack starting at 'ra + 3',
  1690. so that it preserves the first three values, and the first
  1691. return will be the new value for the control variable.
  1692. */
  1693. StkId ra = RA(i);
  1694. setobjs2s(L, ra + 5, ra + 3); /* copy the control variable */
  1695. setobjs2s(L, ra + 4, ra + 1); /* copy state */
  1696. setobjs2s(L, ra + 3, ra); /* copy function */
  1697. L->top.p = ra + 3 + 3;
  1698. ProtectNT(luaD_call(L, ra + 3, GETARG_C(i))); /* do the call */
  1699. updatestack(ci); /* stack may have changed */
  1700. i = *(pc++); /* go to next instruction */
  1701. lua_assert(GET_OPCODE(i) == OP_TFORLOOP && ra == RA(i));
  1702. goto l_tforloop;
  1703. }}
  1704. vmcase(OP_TFORLOOP) {
  1705. l_tforloop: {
  1706. StkId ra = RA(i);
  1707. if (!ttisnil(s2v(ra + 3))) /* continue loop? */
  1708. pc -= GETARG_Bx(i); /* jump back */
  1709. vmbreak;
  1710. }}
  1711. vmcase(OP_SETLIST) {
  1712. StkId ra = RA(i);
  1713. int n = GETARG_B(i);
  1714. unsigned int last = GETARG_C(i);
  1715. Table *h = hvalue(s2v(ra));
  1716. if (n == 0)
  1717. n = cast_int(L->top.p - ra) - 1; /* get up to the top */
  1718. else
  1719. L->top.p = ci->top.p; /* correct top in case of emergency GC */
  1720. last += n;
  1721. if (TESTARG_k(i)) {
  1722. last += GETARG_Ax(*pc) * (MAXARG_C + 1);
  1723. pc++;
  1724. }
  1725. if (last > luaH_realasize(h)) /* needs more space? */
  1726. luaH_resizearray(L, h, last); /* preallocate it at once */
  1727. for (; n > 0; n--) {
  1728. TValue *val = s2v(ra + n);
  1729. setobj2t(L, &h->array[last - 1], val);
  1730. last--;
  1731. luaC_barrierback(L, obj2gco(h), val);
  1732. }
  1733. vmbreak;
  1734. }
  1735. vmcase(OP_CLOSURE) {
  1736. StkId ra = RA(i);
  1737. Proto *p = cl->p->p[GETARG_Bx(i)];
  1738. halfProtect(pushclosure(L, p, cl->upvals, base, ra));
  1739. checkGC(L, ra + 1);
  1740. vmbreak;
  1741. }
  1742. vmcase(OP_VARARG) {
  1743. StkId ra = RA(i);
  1744. int n = GETARG_C(i) - 1; /* required results */
  1745. Protect(luaT_getvarargs(L, ci, ra, n));
  1746. vmbreak;
  1747. }
  1748. vmcase(OP_VARARGPREP) {
  1749. ProtectNT(luaT_adjustvarargs(L, GETARG_A(i), ci, cl->p));
  1750. if (l_unlikely(trap)) { /* previous "Protect" updated trap */
  1751. luaD_hookcall(L, ci);
  1752. L->oldpc = 1; /* next opcode will be seen as a "new" line */
  1753. }
  1754. updatebase(ci); /* function has new base after adjustment */
  1755. vmbreak;
  1756. }
  1757. vmcase(OP_EXTRAARG) {
  1758. lua_assert(0);
  1759. vmbreak;
  1760. }
  1761. }
  1762. }
  1763. }
  1764. /* }================================================================== */