lcode.c 19 KB

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  1. /*
  2. ** $Id: lcode.c,v 1.38 2000/06/21 18:13:56 roberto Exp roberto $
  3. ** Code generator for Lua
  4. ** See Copyright Notice in lua.h
  5. */
  6. #include "stdlib.h"
  7. #define LUA_REENTRANT
  8. #include "lua.h"
  9. #include "lcode.h"
  10. #include "ldo.h"
  11. #include "llex.h"
  12. #include "lmem.h"
  13. #include "lobject.h"
  14. #include "lopcodes.h"
  15. #include "lparser.h"
  16. void luaK_error (LexState *ls, const char *msg) {
  17. luaX_error(ls, msg, ls->t.token);
  18. }
  19. /*
  20. ** Returns the the previous instruction, for optimizations.
  21. ** If there is a jump target between this and the current instruction,
  22. ** returns a dummy instruction to avoid wrong optimizations.
  23. */
  24. static Instruction previous_instruction (FuncState *fs) {
  25. if (fs->pc > fs->lasttarget) /* no jumps to current position? */
  26. return fs->f->code[fs->pc-1]; /* returns previous instruction */
  27. else
  28. return CREATE_0(OP_END); /* no optimizations after an `END' */
  29. }
  30. int luaK_jump (FuncState *fs) {
  31. int j = luaK_code1(fs, OP_JMP, NO_JUMP);
  32. if (j == fs->lasttarget) { /* possible jumps to this jump? */
  33. luaK_concat(fs, &j, fs->jlt); /* keep them on hold */
  34. fs->jlt = NO_JUMP;
  35. }
  36. return j;
  37. }
  38. static void luaK_fixjump (FuncState *fs, int pc, int dest) {
  39. Instruction *jmp = &fs->f->code[pc];
  40. if (dest == NO_JUMP)
  41. SETARG_S(*jmp, NO_JUMP); /* point to itself to represent end of list */
  42. else { /* jump is relative to position following jump instruction */
  43. int offset = dest-(pc+1);
  44. if (abs(offset) > MAXARG_S)
  45. luaK_error(fs->ls, "control structure too long");
  46. SETARG_S(*jmp, offset);
  47. }
  48. }
  49. static int luaK_getjump (FuncState *fs, int pc) {
  50. int offset = GETARG_S(fs->f->code[pc]);
  51. if (offset == NO_JUMP) /* point to itself represents end of list */
  52. return NO_JUMP; /* end of list */
  53. else
  54. return (pc+1)+offset; /* turn offset into absolute position */
  55. }
  56. /*
  57. ** returns current `pc' and marks it as a jump target (to avoid wrong
  58. ** optimizations with consecutive instructions not in the same basic block).
  59. ** discharge list of jumps to last target.
  60. */
  61. int luaK_getlabel (FuncState *fs) {
  62. if (fs->pc != fs->lasttarget) {
  63. int lasttarget = fs->lasttarget;
  64. fs->lasttarget = fs->pc;
  65. luaK_patchlist(fs, fs->jlt, lasttarget); /* discharge old list `jlt' */
  66. fs->jlt = NO_JUMP; /* nobody jumps to this new label (yet) */
  67. }
  68. return fs->pc;
  69. }
  70. void luaK_deltastack (FuncState *fs, int delta) {
  71. fs->stacklevel += delta;
  72. if (fs->stacklevel > fs->f->maxstacksize) {
  73. if (fs->stacklevel > MAXSTACK)
  74. luaK_error(fs->ls, "function or expression too complex");
  75. fs->f->maxstacksize = fs->stacklevel;
  76. }
  77. }
  78. void luaK_kstr (LexState *ls, int c) {
  79. luaK_code1(ls->fs, OP_PUSHSTRING, c);
  80. }
  81. static int number_constant (FuncState *fs, Number r) {
  82. /* check whether `r' has appeared within the last LOOKBACKNUMS entries */
  83. Proto *f = fs->f;
  84. int c = f->nknum;
  85. int lim = c < LOOKBACKNUMS ? 0 : c-LOOKBACKNUMS;
  86. while (--c >= lim)
  87. if (f->knum[c] == r) return c;
  88. /* not found; create a new entry */
  89. luaM_growvector(fs->L, f->knum, f->nknum, 1, Number,
  90. "constant table overflow", MAXARG_U);
  91. c = f->nknum++;
  92. f->knum[c] = r;
  93. return c;
  94. }
  95. void luaK_number (FuncState *fs, Number f) {
  96. if (f <= (Number)MAXARG_S && (Number)(int)f == f)
  97. luaK_code1(fs, OP_PUSHINT, (int)f); /* f has a short integer value */
  98. else
  99. luaK_code1(fs, OP_PUSHNUM, number_constant(fs, f));
  100. }
  101. void luaK_adjuststack (FuncState *fs, int n) {
  102. if (n > 0)
  103. luaK_code1(fs, OP_POP, n);
  104. else
  105. luaK_code1(fs, OP_PUSHNIL, -n);
  106. }
  107. int luaK_lastisopen (FuncState *fs) {
  108. /* check whether last instruction is an open function call */
  109. Instruction i = previous_instruction(fs);
  110. if (GET_OPCODE(i) == OP_CALL && GETARG_B(i) == MULT_RET)
  111. return 1;
  112. else return 0;
  113. }
  114. void luaK_setcallreturns (FuncState *fs, int nresults) {
  115. if (luaK_lastisopen(fs)) { /* expression is an open function call? */
  116. SETARG_B(fs->f->code[fs->pc-1], nresults); /* set number of results */
  117. luaK_deltastack(fs, nresults); /* push results */
  118. }
  119. }
  120. static int discharge (FuncState *fs, expdesc *var) {
  121. switch (var->k) {
  122. case VLOCAL:
  123. luaK_code1(fs, OP_GETLOCAL, var->u.index);
  124. break;
  125. case VGLOBAL:
  126. luaK_code1(fs, OP_GETGLOBAL, var->u.index);
  127. break;
  128. case VINDEXED:
  129. luaK_code0(fs, OP_GETTABLE);
  130. break;
  131. case VEXP:
  132. return 0; /* nothing to do */
  133. }
  134. var->k = VEXP;
  135. var->u.l.t = var->u.l.f = NO_JUMP;
  136. return 1;
  137. }
  138. static void discharge1 (FuncState *fs, expdesc *var) {
  139. discharge(fs, var);
  140. /* if it has jumps then it is already discharged */
  141. if (var->u.l.t == NO_JUMP && var->u.l.f == NO_JUMP)
  142. luaK_setcallreturns(fs, 1); /* call must return 1 value */
  143. }
  144. void luaK_storevar (LexState *ls, const expdesc *var) {
  145. FuncState *fs = ls->fs;
  146. switch (var->k) {
  147. case VLOCAL:
  148. luaK_code1(fs, OP_SETLOCAL, var->u.index);
  149. break;
  150. case VGLOBAL:
  151. luaK_code1(fs, OP_SETGLOBAL, var->u.index);
  152. break;
  153. case VINDEXED: /* table is at top-3; pop 3 elements after operation */
  154. luaK_code2(fs, OP_SETTABLE, 3, 3);
  155. break;
  156. default:
  157. LUA_INTERNALERROR(ls->L, "invalid var kind to store");
  158. }
  159. }
  160. static OpCode invertjump (OpCode op) {
  161. switch (op) {
  162. case OP_JMPNE: return OP_JMPEQ;
  163. case OP_JMPEQ: return OP_JMPNE;
  164. case OP_JMPLT: return OP_JMPGE;
  165. case OP_JMPLE: return OP_JMPGT;
  166. case OP_JMPGT: return OP_JMPLE;
  167. case OP_JMPGE: return OP_JMPLT;
  168. case OP_JMPT: case OP_JMPONT: return OP_JMPF;
  169. case OP_JMPF: case OP_JMPONF: return OP_JMPT;
  170. default:
  171. LUA_INTERNALERROR(NULL, "invalid jump instruction");
  172. return OP_END; /* to avoid warnings */
  173. }
  174. }
  175. static void luaK_patchlistaux (FuncState *fs, int list, int target,
  176. OpCode special, int special_target) {
  177. Instruction *code = fs->f->code;
  178. while (list != NO_JUMP) {
  179. int next = luaK_getjump(fs, list);
  180. Instruction *i = &code[list];
  181. OpCode op = GET_OPCODE(*i);
  182. if (op == special) /* this `op' already has a value */
  183. luaK_fixjump(fs, list, special_target);
  184. else {
  185. luaK_fixjump(fs, list, target); /* do the patch */
  186. if (op == OP_JMPONT) /* remove eventual values */
  187. SET_OPCODE(*i, OP_JMPT);
  188. else if (op == OP_JMPONF)
  189. SET_OPCODE(*i, OP_JMPF);
  190. }
  191. list = next;
  192. }
  193. }
  194. void luaK_patchlist (FuncState *fs, int list, int target) {
  195. if (target == fs->lasttarget) /* same target that list `jlt'? */
  196. luaK_concat(fs, &fs->jlt, list); /* delay fixing */
  197. else
  198. luaK_patchlistaux(fs, list, target, OP_END, 0);
  199. }
  200. static int need_value (FuncState *fs, int list, OpCode hasvalue) {
  201. /* check whether list has a jump without a value */
  202. for (; list != NO_JUMP; list = luaK_getjump(fs, list))
  203. if (GET_OPCODE(fs->f->code[list]) != hasvalue) return 1;
  204. return 0; /* not found */
  205. }
  206. void luaK_concat (FuncState *fs, int *l1, int l2) {
  207. if (*l1 == NO_JUMP)
  208. *l1 = l2;
  209. else {
  210. int list = *l1;
  211. for (;;) { /* traverse `l1' */
  212. int next = luaK_getjump(fs, list);
  213. if (next == NO_JUMP) { /* end of list? */
  214. luaK_fixjump(fs, list, l2);
  215. return;
  216. }
  217. list = next;
  218. }
  219. }
  220. }
  221. static void luaK_testgo (FuncState *fs, expdesc *v, int invert, OpCode jump) {
  222. int prevpos; /* position of last instruction */
  223. Instruction *previous;
  224. int *golist, *exitlist;
  225. if (!invert) {
  226. golist = &v->u.l.f; /* go if false */
  227. exitlist = &v->u.l.t; /* exit if true */
  228. }
  229. else {
  230. golist = &v->u.l.t; /* go if true */
  231. exitlist = &v->u.l.f; /* exit if false */
  232. }
  233. discharge1(fs, v);
  234. prevpos = fs->pc-1;
  235. previous = &fs->f->code[prevpos];
  236. LUA_ASSERT(L, *previous==previous_instruction(fs), "no jump allowed here");
  237. if (!ISJUMP(GET_OPCODE(*previous)))
  238. prevpos = luaK_code1(fs, jump, NO_JUMP);
  239. else { /* last instruction is already a jump */
  240. if (invert)
  241. SET_OPCODE(*previous, invertjump(GET_OPCODE(*previous)));
  242. }
  243. luaK_concat(fs, exitlist, prevpos); /* insert last jump in `exitlist' */
  244. luaK_patchlist(fs, *golist, luaK_getlabel(fs));
  245. *golist = NO_JUMP;
  246. }
  247. void luaK_goiftrue (FuncState *fs, expdesc *v, int keepvalue) {
  248. luaK_testgo(fs, v, 1, keepvalue ? OP_JMPONF : OP_JMPF);
  249. }
  250. static void luaK_goiffalse (FuncState *fs, expdesc *v, int keepvalue) {
  251. luaK_testgo(fs, v, 0, keepvalue ? OP_JMPONT : OP_JMPT);
  252. }
  253. static int code_label (FuncState *fs, OpCode op, int arg) {
  254. luaK_getlabel(fs); /* those instructions may be jump targets */
  255. return luaK_code1(fs, op, arg);
  256. }
  257. void luaK_tostack (LexState *ls, expdesc *v, int onlyone) {
  258. FuncState *fs = ls->fs;
  259. if (!discharge(fs, v)) { /* `v' is an expression? */
  260. OpCode previous = GET_OPCODE(fs->f->code[fs->pc-1]);
  261. if (!ISJUMP(previous) && v->u.l.f == NO_JUMP && v->u.l.t == NO_JUMP) {
  262. /* expression has no jumps */
  263. if (onlyone)
  264. luaK_setcallreturns(fs, 1); /* call must return 1 value */
  265. }
  266. else { /* expression has jumps */
  267. int final; /* position after whole expression */
  268. int j = NO_JUMP; /* eventual jump over values */
  269. int p_nil = NO_JUMP; /* position of an eventual PUSHNIL */
  270. int p_1 = NO_JUMP; /* position of an eventual PUSHINT */
  271. if (ISJUMP(previous) || need_value(fs, v->u.l.f, OP_JMPONF)
  272. || need_value(fs, v->u.l.t, OP_JMPONT)) {
  273. /* expression needs values */
  274. if (ISJUMP(previous))
  275. luaK_concat(fs, &v->u.l.t, fs->pc-1); /* put `previous' in t. list */
  276. else {
  277. j = code_label(fs, OP_JMP, NO_JUMP); /* to jump over both pushes */
  278. luaK_deltastack(fs, -1); /* next PUSHes may be skipped */
  279. }
  280. p_nil = code_label(fs, OP_PUSHNILJMP, 0);
  281. luaK_deltastack(fs, -1); /* next PUSH is skipped */
  282. p_1 = code_label(fs, OP_PUSHINT, 1);
  283. luaK_patchlist(fs, j, luaK_getlabel(fs));
  284. }
  285. final = luaK_getlabel(fs);
  286. luaK_patchlistaux(fs, v->u.l.f, p_nil, OP_JMPONF, final);
  287. luaK_patchlistaux(fs, v->u.l.t, p_1, OP_JMPONT, final);
  288. v->u.l.f = v->u.l.t = NO_JUMP;
  289. }
  290. }
  291. }
  292. void luaK_prefix (LexState *ls, int op, expdesc *v) {
  293. FuncState *fs = ls->fs;
  294. if (op == '-') {
  295. luaK_tostack(ls, v, 1);
  296. luaK_code0(fs, OP_MINUS);
  297. }
  298. else { /* op == NOT */
  299. Instruction *previous;
  300. discharge1(fs, v);
  301. previous = &fs->f->code[fs->pc-1];
  302. if (ISJUMP(GET_OPCODE(*previous)))
  303. SET_OPCODE(*previous, invertjump(GET_OPCODE(*previous)));
  304. else
  305. luaK_code0(fs, OP_NOT);
  306. /* interchange true and false lists */
  307. { int temp = v->u.l.f; v->u.l.f = v->u.l.t; v->u.l.t = temp; }
  308. }
  309. }
  310. void luaK_infix (LexState *ls, int op, expdesc *v) {
  311. FuncState *fs = ls->fs;
  312. if (op == TK_AND)
  313. luaK_goiftrue(fs, v, 1);
  314. else if (op == TK_OR)
  315. luaK_goiffalse(fs, v, 1);
  316. else
  317. luaK_tostack(ls, v, 1); /* all other binary operators need a value */
  318. }
  319. void luaK_posfix (LexState *ls, int op, expdesc *v1, expdesc *v2) {
  320. FuncState *fs = ls->fs;
  321. if (op == TK_AND) {
  322. LUA_ASSERT(ls->L, v1->u.l.t == NO_JUMP, "list must be closed");
  323. discharge1(fs, v2);
  324. v1->u.l.t = v2->u.l.t;
  325. luaK_concat(fs, &v1->u.l.f, v2->u.l.f);
  326. }
  327. else if (op == TK_OR) {
  328. LUA_ASSERT(ls->L, v1->u.l.f == NO_JUMP, "list must be closed");
  329. discharge1(fs, v2);
  330. v1->u.l.f = v2->u.l.f;
  331. luaK_concat(fs, &v1->u.l.t, v2->u.l.t);
  332. }
  333. else {
  334. luaK_tostack(ls, v2, 1); /* `v2' must be a value */
  335. switch (op) {
  336. case '+': luaK_code0(fs, OP_ADD); break;
  337. case '-': luaK_code0(fs, OP_SUB); break;
  338. case '*': luaK_code0(fs, OP_MULT); break;
  339. case '/': luaK_code0(fs, OP_DIV); break;
  340. case '^': luaK_code0(fs, OP_POW); break;
  341. case TK_CONCAT: luaK_code1(fs, OP_CONCAT, 2); break;
  342. case TK_EQ: luaK_code1(fs, OP_JMPEQ, NO_JUMP); break;
  343. case TK_NE: luaK_code1(fs, OP_JMPNE, NO_JUMP); break;
  344. case '>': luaK_code1(fs, OP_JMPGT, NO_JUMP); break;
  345. case '<': luaK_code1(fs, OP_JMPLT, NO_JUMP); break;
  346. case TK_GE: luaK_code1(fs, OP_JMPGE, NO_JUMP); break;
  347. case TK_LE: luaK_code1(fs, OP_JMPLE, NO_JUMP); break;
  348. }
  349. }
  350. }
  351. int luaK_code0 (FuncState *fs, OpCode o) {
  352. return luaK_code2(fs, o, 0, 0);
  353. }
  354. int luaK_code1 (FuncState *fs, OpCode o, int arg1) {
  355. return luaK_code2(fs, o, arg1, 0);
  356. }
  357. #define VD 100 /* flag for variable delta */
  358. int luaK_code2 (FuncState *fs, OpCode o, int arg1, int arg2) {
  359. Instruction i = previous_instruction(fs);
  360. int delta = luaK_opproperties[o].delta;
  361. int optm = 0; /* 1 when there is an optimization */
  362. switch (o) {
  363. case OP_CLOSURE: {
  364. delta = -arg2+1;
  365. break;
  366. }
  367. case OP_SETTABLE: {
  368. delta = -arg2;
  369. break;
  370. }
  371. case OP_SETLIST: {
  372. if (arg2 == 0) return NO_JUMP; /* nothing to do */
  373. delta = -arg2;
  374. break;
  375. }
  376. case OP_SETMAP: {
  377. if (arg1 == 0) return NO_JUMP; /* nothing to do */
  378. delta = -2*arg1;
  379. break;
  380. }
  381. case OP_RETURN: {
  382. if (GET_OPCODE(i) == OP_CALL && GETARG_B(i) == MULT_RET) {
  383. SET_OPCODE(i, OP_TAILCALL);
  384. SETARG_B(i, arg1);
  385. optm = 1;
  386. }
  387. break;
  388. }
  389. case OP_PUSHNIL: {
  390. if (arg1 == 0) return NO_JUMP; /* nothing to do */
  391. delta = arg1;
  392. switch(GET_OPCODE(i)) {
  393. case OP_PUSHNIL: SETARG_U(i, GETARG_U(i)+arg1); optm = 1; break;
  394. default: break;
  395. }
  396. break;
  397. }
  398. case OP_POP: {
  399. if (arg1 == 0) return NO_JUMP; /* nothing to do */
  400. delta = -arg1;
  401. switch(GET_OPCODE(i)) {
  402. case OP_SETTABLE: SETARG_B(i, GETARG_B(i)+arg1); optm = 1; break;
  403. default: break;
  404. }
  405. break;
  406. }
  407. case OP_GETTABLE: {
  408. switch(GET_OPCODE(i)) {
  409. case OP_PUSHSTRING: /* `t.x' */
  410. SET_OPCODE(i, OP_GETDOTTED);
  411. optm = 1;
  412. break;
  413. case OP_GETLOCAL: /* `t[i]' */
  414. SET_OPCODE(i, OP_GETINDEXED);
  415. optm = 1;
  416. break;
  417. default: break;
  418. }
  419. break;
  420. }
  421. case OP_ADD: {
  422. switch(GET_OPCODE(i)) {
  423. case OP_PUSHINT: SET_OPCODE(i, OP_ADDI); optm = 1; break; /* `a+k' */
  424. default: break;
  425. }
  426. break;
  427. }
  428. case OP_SUB: {
  429. switch(GET_OPCODE(i)) {
  430. case OP_PUSHINT: /* `a-k' */
  431. i = CREATE_S(OP_ADDI, -GETARG_S(i));
  432. optm = 1;
  433. break;
  434. default: break;
  435. }
  436. break;
  437. }
  438. case OP_CONCAT: {
  439. delta = -arg1+1;
  440. switch(GET_OPCODE(i)) {
  441. case OP_CONCAT: /* `a..b..c' */
  442. SETARG_U(i, GETARG_U(i)+1);
  443. optm = 1;
  444. break;
  445. default: break;
  446. }
  447. break;
  448. }
  449. case OP_MINUS: {
  450. switch(GET_OPCODE(i)) {
  451. case OP_PUSHINT: /* `-k' */
  452. SETARG_S(i, -GETARG_S(i));
  453. optm = 1;
  454. break;
  455. case OP_PUSHNUM: /* `-k' */
  456. SET_OPCODE(i, OP_PUSHNEGNUM);
  457. optm = 1;
  458. break;
  459. default: break;
  460. }
  461. break;
  462. }
  463. case OP_JMPNE: {
  464. if (i == CREATE_U(OP_PUSHNIL, 1)) { /* `a~=nil' */
  465. i = CREATE_S(OP_JMPT, NO_JUMP);
  466. optm = 1;
  467. }
  468. break;
  469. }
  470. case OP_JMPEQ: {
  471. if (i == CREATE_U(OP_PUSHNIL, 1)) { /* `a==nil' */
  472. i = CREATE_0(OP_NOT);
  473. delta = -1; /* just undo effect of previous PUSHNIL */
  474. optm = 1;
  475. }
  476. break;
  477. }
  478. case OP_JMPT:
  479. case OP_JMPONT: {
  480. switch (GET_OPCODE(i)) {
  481. case OP_NOT: {
  482. i = CREATE_S(OP_JMPF, NO_JUMP);
  483. optm = 1;
  484. break;
  485. }
  486. case OP_PUSHINT: {
  487. if (o == OP_JMPT) { /* JMPONT must keep original integer value */
  488. i = CREATE_S(OP_JMP, NO_JUMP);
  489. optm = 1;
  490. }
  491. break;
  492. }
  493. case OP_PUSHNIL: {
  494. if (GETARG_U(i) == 1) {
  495. fs->pc--; /* erase previous instruction */
  496. luaK_deltastack(fs, -1); /* correct stack */
  497. return NO_JUMP;
  498. }
  499. break;
  500. }
  501. default: break;
  502. }
  503. break;
  504. }
  505. case OP_JMPF:
  506. case OP_JMPONF: {
  507. switch (GET_OPCODE(i)) {
  508. case OP_NOT: {
  509. i = CREATE_S(OP_JMPT, NO_JUMP);
  510. optm = 1;
  511. break;
  512. }
  513. case OP_PUSHINT: { /* `while 1 do ...' */
  514. fs->pc--; /* erase previous instruction */
  515. luaK_deltastack(fs, -1); /* correct stack */
  516. return NO_JUMP;
  517. }
  518. case OP_PUSHNIL: { /* `repeat ... until nil' */
  519. if (GETARG_U(i) == 1) {
  520. i = CREATE_S(OP_JMP, NO_JUMP);
  521. optm = 1;
  522. }
  523. break;
  524. }
  525. default: break;
  526. }
  527. break;
  528. }
  529. case OP_GETDOTTED:
  530. case OP_GETINDEXED:
  531. case OP_TAILCALL:
  532. case OP_ADDI: {
  533. LUA_INTERNALERROR(L, "instruction used only for optimizations");
  534. break;
  535. }
  536. default: {
  537. LUA_ASSERT(L, delta != VD, "invalid delta");
  538. break;
  539. }
  540. }
  541. luaK_deltastack(fs, delta);
  542. if (optm) { /* optimize: put instruction in place of last one */
  543. fs->f->code[fs->pc-1] = i; /* change previous instruction */
  544. return fs->pc-1; /* do not generate new instruction */
  545. }
  546. /* else build new instruction */
  547. switch ((enum Mode)luaK_opproperties[o].mode) {
  548. case iO: i = CREATE_0(o); break;
  549. case iU: i = CREATE_U(o, arg1); break;
  550. case iS: i = CREATE_S(o, arg1); break;
  551. case iAB: i = CREATE_AB(o, arg1, arg2); break;
  552. }
  553. if (fs->f->debug) {
  554. LexState *ls = fs->ls;
  555. luaX_checklimit(ls, ls->lastline, MAXARG_U, "lines in a chunk");
  556. luaM_growvector(fs->L, fs->f->lines, fs->pc, 1, int, "??", MAXARG_U);
  557. fs->f->lines[fs->pc] = ls->lastline;
  558. }
  559. /* put new instruction in code array */
  560. luaM_growvector(fs->L, fs->f->code, fs->pc, 1, Instruction,
  561. "code size overflow", MAX_INT);
  562. fs->f->code[fs->pc] = i;
  563. return fs->pc++;
  564. }
  565. const struct OpProperties luaK_opproperties[NUM_OPCODES] = {
  566. {iO, 0}, /* OP_END */
  567. {iU, 0}, /* OP_RETURN */
  568. {iAB, 0}, /* OP_CALL */
  569. {iAB, 0}, /* OP_TAILCALL */
  570. {iU, VD}, /* OP_PUSHNIL */
  571. {iU, VD}, /* OP_POP */
  572. {iS, 1}, /* OP_PUSHINT */
  573. {iU, 1}, /* OP_PUSHSTRING */
  574. {iU, 1}, /* OP_PUSHNUM */
  575. {iU, 1}, /* OP_PUSHNEGNUM */
  576. {iU, 1}, /* OP_PUSHUPVALUE */
  577. {iU, 1}, /* OP_GETLOCAL */
  578. {iU, 1}, /* OP_GETGLOBAL */
  579. {iO, -1}, /* OP_GETTABLE */
  580. {iU, 0}, /* OP_GETDOTTED */
  581. {iU, 0}, /* OP_GETINDEXED */
  582. {iU, 1}, /* OP_PUSHSELF */
  583. {iU, 1}, /* OP_CREATETABLE */
  584. {iU, -1}, /* OP_SETLOCAL */
  585. {iU, -1}, /* OP_SETGLOBAL */
  586. {iAB, VD}, /* OP_SETTABLE */
  587. {iAB, VD}, /* OP_SETLIST */
  588. {iU, VD}, /* OP_SETMAP */
  589. {iO, -1}, /* OP_ADD */
  590. {iS, 0}, /* OP_ADDI */
  591. {iO, -1}, /* OP_SUB */
  592. {iO, -1}, /* OP_MULT */
  593. {iO, -1}, /* OP_DIV */
  594. {iO, -1}, /* OP_POW */
  595. {iU, VD}, /* OP_CONCAT */
  596. {iO, 0}, /* OP_MINUS */
  597. {iO, 0}, /* OP_NOT */
  598. {iS, -2}, /* OP_JMPNE */
  599. {iS, -2}, /* OP_JMPEQ */
  600. {iS, -2}, /* OP_JMPLT */
  601. {iS, -2}, /* OP_JMPLE */
  602. {iS, -2}, /* OP_JMPGT */
  603. {iS, -2}, /* OP_JMPGE */
  604. {iS, -1}, /* OP_JMPT */
  605. {iS, -1}, /* OP_JMPF */
  606. {iS, -1}, /* OP_JMPONT */
  607. {iS, -1}, /* OP_JMPONF */
  608. {iS, 0}, /* OP_JMP */
  609. {iO, 1}, /* OP_PUSHNILJMP */
  610. {iS, 0}, /* OP_FORPREP */
  611. {iS, -3}, /* OP_FORLOOP */
  612. {iS, 3}, /* OP_LFORPREP */
  613. {iS, -4}, /* OP_LFORLOOP */
  614. {iAB, VD} /* OP_CLOSURE */
  615. };