lparser.c 36 KB

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  1. /*
  2. ** $Id: lparser.c,v 2.50 2006/11/22 11:02:03 roberto Exp roberto $
  3. ** Lua Parser
  4. ** See Copyright Notice in lua.h
  5. */
  6. #include <string.h>
  7. #define lparser_c
  8. #define LUA_CORE
  9. #include "lua.h"
  10. #include "lcode.h"
  11. #include "ldebug.h"
  12. #include "ldo.h"
  13. #include "lfunc.h"
  14. #include "llex.h"
  15. #include "lmem.h"
  16. #include "lobject.h"
  17. #include "lopcodes.h"
  18. #include "lparser.h"
  19. #include "lstate.h"
  20. #include "lstring.h"
  21. #include "ltable.h"
  22. #define hasmultret(k) ((k) == VCALL || (k) == VVARARG)
  23. #define getlocvar(fs, i) ((fs)->f->locvars[(fs)->actvar[i]])
  24. #define luaY_checklimit(fs,v,l,m) if ((v)>(l)) errorlimit(fs,l,m)
  25. /*
  26. ** nodes for block list (list of active blocks)
  27. */
  28. typedef struct BlockCnt {
  29. struct BlockCnt *previous; /* chain */
  30. int breaklist; /* list of jumps out of this loop */
  31. lu_byte nactvar; /* # active locals outside the breakable structure */
  32. lu_byte upval; /* true if some variable in the block is an upvalue */
  33. lu_byte isbreakable; /* true if `block' is a loop */
  34. } BlockCnt;
  35. /*
  36. ** prototypes for recursive non-terminal functions
  37. */
  38. static void chunk (LexState *ls);
  39. static void expr (LexState *ls, expdesc *v);
  40. static void anchor_token (LexState *ls) {
  41. if (ls->t.token == TK_NAME || ls->t.token == TK_STRING) {
  42. TString *ts = ls->t.seminfo.ts;
  43. luaX_newstring(ls, getstr(ts), ts->tsv.len);
  44. }
  45. }
  46. static void error_expected (LexState *ls, int token) {
  47. luaX_syntaxerror(ls,
  48. luaO_pushfstring(ls->L, "%s expected", luaX_token2str(ls, token)));
  49. }
  50. static void errorlimit (FuncState *fs, int limit, const char *what) {
  51. const char *msg;
  52. const char *where = (fs->f->linedefined == 0) ?
  53. "main function" :
  54. luaO_pushfstring(fs->L, "function at line %d", fs->f->linedefined);
  55. msg = luaO_pushfstring(fs->L, "too many %s in %s (limit is %d)",
  56. what, where, limit);
  57. luaX_lexerror(fs->ls, msg, fs->ls->t.token);
  58. }
  59. static int testnext (LexState *ls, int c) {
  60. if (ls->t.token == c) {
  61. luaX_next(ls);
  62. return 1;
  63. }
  64. else return 0;
  65. }
  66. static void check (LexState *ls, int c) {
  67. if (ls->t.token != c)
  68. error_expected(ls, c);
  69. }
  70. static void checknext (LexState *ls, int c) {
  71. check(ls, c);
  72. luaX_next(ls);
  73. }
  74. #define check_condition(ls,c,msg) { if (!(c)) luaX_syntaxerror(ls, msg); }
  75. static void check_match (LexState *ls, int what, int who, int where) {
  76. if (!testnext(ls, what)) {
  77. if (where == ls->linenumber)
  78. error_expected(ls, what);
  79. else {
  80. luaX_syntaxerror(ls, luaO_pushfstring(ls->L,
  81. "%s expected (to close %s at line %d)",
  82. luaX_token2str(ls, what), luaX_token2str(ls, who), where));
  83. }
  84. }
  85. }
  86. static TString *str_checkname (LexState *ls) {
  87. TString *ts;
  88. check(ls, TK_NAME);
  89. ts = ls->t.seminfo.ts;
  90. luaX_next(ls);
  91. return ts;
  92. }
  93. static void init_exp (expdesc *e, expkind k, int i) {
  94. e->f = e->t = NO_JUMP;
  95. e->k = k;
  96. e->u.s.info = i;
  97. }
  98. static void codestring (LexState *ls, expdesc *e, TString *s) {
  99. init_exp(e, VK, luaK_stringK(ls->fs, s));
  100. }
  101. static void checkname(LexState *ls, expdesc *e) {
  102. codestring(ls, e, str_checkname(ls));
  103. }
  104. static int registerlocalvar (LexState *ls, TString *varname) {
  105. FuncState *fs = ls->fs;
  106. Proto *f = fs->f;
  107. int oldsize = f->sizelocvars;
  108. luaM_growvector(ls->L, f->locvars, fs->nlocvars, f->sizelocvars,
  109. LocVar, SHRT_MAX, "local variables");
  110. while (oldsize < f->sizelocvars) f->locvars[oldsize++].varname = NULL;
  111. f->locvars[fs->nlocvars].varname = varname;
  112. luaC_objbarrier(ls->L, f, varname);
  113. return fs->nlocvars++;
  114. }
  115. #define new_localvarliteral(ls,v,n) \
  116. new_localvar(ls, luaX_newstring(ls, "" v, (sizeof(v)/sizeof(char))-1), n)
  117. static void new_localvar (LexState *ls, TString *name, int n) {
  118. FuncState *fs = ls->fs;
  119. luaY_checklimit(fs, fs->nactvar+n+1, LUAI_MAXVARS, "local variables");
  120. fs->actvar[fs->nactvar+n] = cast(unsigned short, registerlocalvar(ls, name));
  121. }
  122. static void adjustlocalvars (LexState *ls, int nvars) {
  123. FuncState *fs = ls->fs;
  124. fs->nactvar = cast_byte(fs->nactvar + nvars);
  125. for (; nvars; nvars--) {
  126. getlocvar(fs, fs->nactvar - nvars).startpc = fs->pc;
  127. }
  128. }
  129. static void removevars (LexState *ls, int tolevel) {
  130. FuncState *fs = ls->fs;
  131. while (fs->nactvar > tolevel)
  132. getlocvar(fs, --fs->nactvar).endpc = fs->pc;
  133. }
  134. static int indexupvalue (FuncState *fs, TString *name, expdesc *v) {
  135. int i;
  136. Proto *f = fs->f;
  137. int oldsize = f->sizeupvalues;
  138. for (i=0; i<f->nups; i++) {
  139. if (fs->upvalues[i].k == v->k && fs->upvalues[i].info == v->u.s.info) {
  140. lua_assert(f->upvalues[i] == name);
  141. return i;
  142. }
  143. }
  144. /* new one */
  145. luaY_checklimit(fs, f->nups + 1, LUAI_MAXUPVALUES, "upvalues");
  146. luaM_growvector(fs->L, f->upvalues, f->nups, f->sizeupvalues,
  147. TString *, MAX_INT, "upvalues");
  148. while (oldsize < f->sizeupvalues) f->upvalues[oldsize++] = NULL;
  149. f->upvalues[f->nups] = name;
  150. luaC_objbarrier(fs->L, f, name);
  151. lua_assert(v->k == VLOCAL || v->k == VUPVAL);
  152. fs->upvalues[f->nups].k = cast_byte(v->k);
  153. fs->upvalues[f->nups].info = cast_byte(v->u.s.info);
  154. return f->nups++;
  155. }
  156. static int searchvar (FuncState *fs, TString *n) {
  157. int i;
  158. for (i=fs->nactvar-1; i >= 0; i--) {
  159. if (n == getlocvar(fs, i).varname)
  160. return i;
  161. }
  162. return -1; /* not found */
  163. }
  164. static void markupval (FuncState *fs, int level) {
  165. BlockCnt *bl = fs->bl;
  166. while (bl && bl->nactvar > level) bl = bl->previous;
  167. if (bl) bl->upval = 1;
  168. }
  169. static int singlevaraux (FuncState *fs, TString *n, expdesc *var, int base) {
  170. if (fs == NULL) { /* no more levels? */
  171. init_exp(var, VGLOBAL, NO_REG); /* default is global variable */
  172. return VGLOBAL;
  173. }
  174. else {
  175. int v = searchvar(fs, n); /* look up at current level */
  176. if (v >= 0) {
  177. init_exp(var, VLOCAL, v);
  178. if (!base)
  179. markupval(fs, v); /* local will be used as an upval */
  180. return VLOCAL;
  181. }
  182. else { /* not found at current level; try upper one */
  183. if (singlevaraux(fs->prev, n, var, 0) == VGLOBAL)
  184. return VGLOBAL;
  185. var->u.s.info = indexupvalue(fs, n, var); /* else was LOCAL or UPVAL */
  186. var->k = VUPVAL; /* upvalue in this level */
  187. return VUPVAL;
  188. }
  189. }
  190. }
  191. static void singlevar (LexState *ls, expdesc *var) {
  192. TString *varname = str_checkname(ls);
  193. FuncState *fs = ls->fs;
  194. if (singlevaraux(fs, varname, var, 1) == VGLOBAL)
  195. var->u.s.info = luaK_stringK(fs, varname); /* info points to global name */
  196. }
  197. static void adjust_assign (LexState *ls, int nvars, int nexps, expdesc *e) {
  198. FuncState *fs = ls->fs;
  199. int extra = nvars - nexps;
  200. if (hasmultret(e->k)) {
  201. extra++; /* includes call itself */
  202. if (extra < 0) extra = 0;
  203. luaK_setreturns(fs, e, extra); /* last exp. provides the difference */
  204. if (extra > 1) luaK_reserveregs(fs, extra-1);
  205. }
  206. else {
  207. if (e->k != VVOID) luaK_exp2nextreg(fs, e); /* close last expression */
  208. if (extra > 0) {
  209. int reg = fs->freereg;
  210. luaK_reserveregs(fs, extra);
  211. luaK_nil(fs, reg, extra);
  212. }
  213. }
  214. }
  215. static void enterlevel (LexState *ls) {
  216. global_State *g = G(ls->L);
  217. ++g->nCcalls;
  218. luaY_checklimit(ls->fs, g->nCcalls, LUAI_MAXCCALLS, "syntax levels");
  219. }
  220. #define leavelevel(ls) (G((ls)->L)->nCcalls--)
  221. static void enterblock (FuncState *fs, BlockCnt *bl, lu_byte isbreakable) {
  222. bl->breaklist = NO_JUMP;
  223. bl->isbreakable = isbreakable;
  224. bl->nactvar = fs->nactvar;
  225. bl->upval = 0;
  226. bl->previous = fs->bl;
  227. fs->bl = bl;
  228. lua_assert(fs->freereg == fs->nactvar);
  229. }
  230. static void leaveblock (FuncState *fs) {
  231. BlockCnt *bl = fs->bl;
  232. fs->bl = bl->previous;
  233. removevars(fs->ls, bl->nactvar);
  234. if (bl->upval)
  235. luaK_codeABC(fs, OP_CLOSE, bl->nactvar, 0, 0);
  236. /* a block either controls scope or breaks (never both) */
  237. lua_assert(!bl->isbreakable || !bl->upval);
  238. lua_assert(bl->nactvar == fs->nactvar);
  239. fs->freereg = fs->nactvar; /* free registers */
  240. luaK_patchtohere(fs, bl->breaklist);
  241. }
  242. static void pushclosure (LexState *ls, FuncState *func, expdesc *v) {
  243. FuncState *fs = ls->fs->prev;
  244. Proto *f = fs->f;
  245. int oldsize = f->sizep;
  246. int i;
  247. luaM_growvector(ls->L, f->p, fs->np, f->sizep, Proto *,
  248. MAXARG_Bx, "constants");
  249. while (oldsize < f->sizep) f->p[oldsize++] = NULL;
  250. f->p[fs->np++] = func->f;
  251. luaC_objbarrier(ls->L, f, func->f);
  252. init_exp(v, VRELOCABLE, luaK_codeABx(fs, OP_CLOSURE, 0, fs->np-1));
  253. for (i=0; i<func->f->nups; i++) {
  254. OpCode o = (func->upvalues[i].k == VLOCAL) ? OP_MOVE : OP_GETUPVAL;
  255. luaK_codeABC(fs, o, 0, func->upvalues[i].info, 0);
  256. }
  257. }
  258. static void open_func (LexState *ls, FuncState *fs) {
  259. lua_State *L = ls->L;
  260. Proto *f;
  261. fs->prev = ls->fs; /* linked list of funcstates */
  262. fs->ls = ls;
  263. fs->L = L;
  264. ls->fs = fs;
  265. fs->pc = 0;
  266. fs->lasttarget = -1;
  267. fs->jpc = NO_JUMP;
  268. fs->freereg = 0;
  269. fs->nk = 0;
  270. fs->np = 0;
  271. fs->nlocvars = 0;
  272. fs->nactvar = 0;
  273. fs->bl = NULL;
  274. fs->h = luaH_new(L);
  275. /* anchor table of constants (to avoid being collected) */
  276. sethvalue2s(L, L->top, fs->h);
  277. incr_top(L);
  278. f = luaF_newproto(L);
  279. fs->f = f;
  280. f->source = ls->source;
  281. f->maxstacksize = 2; /* registers 0/1 are always valid */
  282. /* anchor prototype (to avoid being collected) */
  283. setptvalue2s(L, L->top, f);
  284. incr_top(L);
  285. }
  286. static void close_func (LexState *ls) {
  287. lua_State *L = ls->L;
  288. FuncState *fs = ls->fs;
  289. Proto *f = fs->f;
  290. removevars(ls, 0);
  291. luaK_ret(fs, 0, 0); /* final return */
  292. luaM_reallocvector(L, f->code, f->sizecode, fs->pc, Instruction);
  293. f->sizecode = fs->pc;
  294. luaM_reallocvector(L, f->lineinfo, f->sizelineinfo, fs->pc, int);
  295. f->sizelineinfo = fs->pc;
  296. luaM_reallocvector(L, f->k, f->sizek, fs->nk, TValue);
  297. f->sizek = fs->nk;
  298. luaM_reallocvector(L, f->p, f->sizep, fs->np, Proto *);
  299. f->sizep = fs->np;
  300. luaM_reallocvector(L, f->locvars, f->sizelocvars, fs->nlocvars, LocVar);
  301. f->sizelocvars = fs->nlocvars;
  302. luaM_reallocvector(L, f->upvalues, f->sizeupvalues, f->nups, TString *);
  303. f->sizeupvalues = f->nups;
  304. lua_assert(luaG_checkcode(f));
  305. lua_assert(fs->bl == NULL);
  306. ls->fs = fs->prev;
  307. L->top -= 2; /* remove table and prototype from the stack */
  308. /* last token read was anchored in defunct function; must reanchor it */
  309. if (fs) anchor_token(ls);
  310. }
  311. Proto *luaY_parser (lua_State *L, ZIO *z, Mbuffer *buff, const char *name) {
  312. struct LexState lexstate;
  313. struct FuncState funcstate;
  314. TString *tname = luaS_new(L, name);
  315. setsvalue2s(L, L->top, tname); /* protect name */
  316. incr_top(L);
  317. lexstate.buff = buff;
  318. luaX_setinput(L, &lexstate, z, tname);
  319. open_func(&lexstate, &funcstate);
  320. funcstate.f->is_vararg = VARARG_ISVARARG; /* main func. is always vararg */
  321. luaX_next(&lexstate); /* read first token */
  322. chunk(&lexstate);
  323. check(&lexstate, TK_EOS);
  324. close_func(&lexstate);
  325. L->top--;
  326. lua_assert(funcstate.prev == NULL);
  327. lua_assert(funcstate.f->nups == 0);
  328. lua_assert(lexstate.fs == NULL);
  329. return funcstate.f;
  330. }
  331. /*============================================================*/
  332. /* GRAMMAR RULES */
  333. /*============================================================*/
  334. static void field (LexState *ls, expdesc *v) {
  335. /* field -> ['.' | ':'] NAME */
  336. FuncState *fs = ls->fs;
  337. expdesc key;
  338. luaK_exp2anyreg(fs, v);
  339. luaX_next(ls); /* skip the dot or colon */
  340. checkname(ls, &key);
  341. luaK_indexed(fs, v, &key);
  342. }
  343. static void yindex (LexState *ls, expdesc *v) {
  344. /* index -> '[' expr ']' */
  345. luaX_next(ls); /* skip the '[' */
  346. expr(ls, v);
  347. luaK_exp2val(ls->fs, v);
  348. checknext(ls, ']');
  349. }
  350. /*
  351. ** {======================================================================
  352. ** Rules for Constructors
  353. ** =======================================================================
  354. */
  355. struct ConsControl {
  356. expdesc v; /* last list item read */
  357. expdesc *t; /* table descriptor */
  358. int nh; /* total number of `record' elements */
  359. int na; /* total number of array elements */
  360. int tostore; /* number of array elements pending to be stored */
  361. };
  362. static void recfield (LexState *ls, struct ConsControl *cc) {
  363. /* recfield -> (NAME | `['exp1`]') = exp1 */
  364. FuncState *fs = ls->fs;
  365. int reg = ls->fs->freereg;
  366. expdesc key, val;
  367. int rkkey;
  368. if (ls->t.token == TK_NAME) {
  369. luaY_checklimit(fs, cc->nh, MAX_INT, "items in a constructor");
  370. checkname(ls, &key);
  371. }
  372. else /* ls->t.token == '[' */
  373. yindex(ls, &key);
  374. cc->nh++;
  375. checknext(ls, '=');
  376. rkkey = luaK_exp2RK(fs, &key);
  377. expr(ls, &val);
  378. luaK_codeABC(fs, OP_SETTABLE, cc->t->u.s.info, rkkey, luaK_exp2RK(fs, &val));
  379. fs->freereg = reg; /* free registers */
  380. }
  381. static void closelistfield (FuncState *fs, struct ConsControl *cc) {
  382. if (cc->v.k == VVOID) return; /* there is no list item */
  383. luaK_exp2nextreg(fs, &cc->v);
  384. cc->v.k = VVOID;
  385. if (cc->tostore == LFIELDS_PER_FLUSH) {
  386. luaK_setlist(fs, cc->t->u.s.info, cc->na, cc->tostore); /* flush */
  387. cc->tostore = 0; /* no more items pending */
  388. }
  389. }
  390. static void lastlistfield (FuncState *fs, struct ConsControl *cc) {
  391. if (cc->tostore == 0) return;
  392. if (hasmultret(cc->v.k)) {
  393. luaK_setmultret(fs, &cc->v);
  394. luaK_setlist(fs, cc->t->u.s.info, cc->na, LUA_MULTRET);
  395. cc->na--; /* do not count last expression (unknown number of elements) */
  396. }
  397. else {
  398. if (cc->v.k != VVOID)
  399. luaK_exp2nextreg(fs, &cc->v);
  400. luaK_setlist(fs, cc->t->u.s.info, cc->na, cc->tostore);
  401. }
  402. }
  403. static void listfield (LexState *ls, struct ConsControl *cc) {
  404. expr(ls, &cc->v);
  405. luaY_checklimit(ls->fs, cc->na, MAX_INT, "items in a constructor");
  406. cc->na++;
  407. cc->tostore++;
  408. }
  409. static void constructor (LexState *ls, expdesc *t) {
  410. /* constructor -> ?? */
  411. FuncState *fs = ls->fs;
  412. int line = ls->linenumber;
  413. int pc = luaK_codeABC(fs, OP_NEWTABLE, 0, 0, 0);
  414. struct ConsControl cc;
  415. cc.na = cc.nh = cc.tostore = 0;
  416. cc.t = t;
  417. init_exp(t, VRELOCABLE, pc);
  418. init_exp(&cc.v, VVOID, 0); /* no value (yet) */
  419. luaK_exp2nextreg(ls->fs, t); /* fix it at stack top (for gc) */
  420. checknext(ls, '{');
  421. do {
  422. lua_assert(cc.v.k == VVOID || cc.tostore > 0);
  423. if (ls->t.token == '}') break;
  424. closelistfield(fs, &cc);
  425. switch(ls->t.token) {
  426. case TK_NAME: { /* may be listfields or recfields */
  427. luaX_lookahead(ls);
  428. if (ls->lookahead.token != '=') /* expression? */
  429. listfield(ls, &cc);
  430. else
  431. recfield(ls, &cc);
  432. break;
  433. }
  434. case '[': { /* constructor_item -> recfield */
  435. recfield(ls, &cc);
  436. break;
  437. }
  438. default: { /* constructor_part -> listfield */
  439. listfield(ls, &cc);
  440. break;
  441. }
  442. }
  443. } while (testnext(ls, ',') || testnext(ls, ';'));
  444. check_match(ls, '}', '{', line);
  445. lastlistfield(fs, &cc);
  446. SETARG_B(fs->f->code[pc], luaO_int2fb(cc.na)); /* set initial array size */
  447. SETARG_C(fs->f->code[pc], luaO_int2fb(cc.nh)); /* set initial table size */
  448. }
  449. /* }====================================================================== */
  450. static void parlist (LexState *ls) {
  451. /* parlist -> [ param { `,' param } ] */
  452. FuncState *fs = ls->fs;
  453. Proto *f = fs->f;
  454. int nparams = 0;
  455. f->is_vararg = 0;
  456. if (ls->t.token != ')') { /* is `parlist' not empty? */
  457. do {
  458. switch (ls->t.token) {
  459. case TK_NAME: { /* param -> NAME */
  460. new_localvar(ls, str_checkname(ls), nparams++);
  461. break;
  462. }
  463. case TK_DOTS: { /* param -> `...' */
  464. luaX_next(ls);
  465. #if defined(LUA_COMPAT_VARARG)
  466. /* use `arg' as default name */
  467. new_localvarliteral(ls, "arg", nparams++);
  468. f->is_vararg = VARARG_HASARG | VARARG_NEEDSARG;
  469. #endif
  470. f->is_vararg |= VARARG_ISVARARG;
  471. break;
  472. }
  473. default: luaX_syntaxerror(ls, "<name> or " LUA_QL("...") " expected");
  474. }
  475. } while (!f->is_vararg && testnext(ls, ','));
  476. }
  477. adjustlocalvars(ls, nparams);
  478. f->numparams = cast_byte(fs->nactvar - (f->is_vararg & VARARG_HASARG));
  479. luaK_reserveregs(fs, fs->nactvar); /* reserve register for parameters */
  480. }
  481. static void body (LexState *ls, expdesc *e, int needself, int line) {
  482. /* body -> `(' parlist `)' chunk END */
  483. FuncState new_fs;
  484. open_func(ls, &new_fs);
  485. new_fs.f->linedefined = line;
  486. checknext(ls, '(');
  487. if (needself) {
  488. new_localvarliteral(ls, "self", 0);
  489. adjustlocalvars(ls, 1);
  490. }
  491. parlist(ls);
  492. checknext(ls, ')');
  493. chunk(ls);
  494. new_fs.f->lastlinedefined = ls->linenumber;
  495. check_match(ls, TK_END, TK_FUNCTION, line);
  496. pushclosure(ls, &new_fs, e);
  497. close_func(ls);
  498. }
  499. static int explist1 (LexState *ls, expdesc *v) {
  500. /* explist1 -> expr { `,' expr } */
  501. int n = 1; /* at least one expression */
  502. expr(ls, v);
  503. while (testnext(ls, ',')) {
  504. luaK_exp2nextreg(ls->fs, v);
  505. expr(ls, v);
  506. n++;
  507. }
  508. return n;
  509. }
  510. static void funcargs (LexState *ls, expdesc *f) {
  511. FuncState *fs = ls->fs;
  512. expdesc args;
  513. int base, nparams;
  514. int line = ls->linenumber;
  515. switch (ls->t.token) {
  516. case '(': { /* funcargs -> `(' [ explist1 ] `)' */
  517. if (line != ls->lastline)
  518. luaX_syntaxerror(ls,"ambiguous syntax (function call x new statement)");
  519. luaX_next(ls);
  520. if (ls->t.token == ')') /* arg list is empty? */
  521. args.k = VVOID;
  522. else {
  523. explist1(ls, &args);
  524. luaK_setmultret(fs, &args);
  525. }
  526. check_match(ls, ')', '(', line);
  527. break;
  528. }
  529. case '{': { /* funcargs -> constructor */
  530. constructor(ls, &args);
  531. break;
  532. }
  533. case TK_STRING: { /* funcargs -> STRING */
  534. codestring(ls, &args, ls->t.seminfo.ts);
  535. luaX_next(ls); /* must use `seminfo' before `next' */
  536. break;
  537. }
  538. default: {
  539. luaX_syntaxerror(ls, "function arguments expected");
  540. return;
  541. }
  542. }
  543. lua_assert(f->k == VNONRELOC);
  544. base = f->u.s.info; /* base register for call */
  545. if (hasmultret(args.k))
  546. nparams = LUA_MULTRET; /* open call */
  547. else {
  548. if (args.k != VVOID)
  549. luaK_exp2nextreg(fs, &args); /* close last argument */
  550. nparams = fs->freereg - (base+1);
  551. }
  552. init_exp(f, VCALL, luaK_codeABC(fs, OP_CALL, base, nparams+1, 2));
  553. luaK_fixline(fs, line);
  554. fs->freereg = base+1; /* call remove function and arguments and leaves
  555. (unless changed) one result */
  556. }
  557. /*
  558. ** {======================================================================
  559. ** Expression parsing
  560. ** =======================================================================
  561. */
  562. static void prefixexp (LexState *ls, expdesc *v) {
  563. /* prefixexp -> NAME | '(' expr ')' */
  564. switch (ls->t.token) {
  565. case '(': {
  566. int line = ls->linenumber;
  567. luaX_next(ls);
  568. expr(ls, v);
  569. check_match(ls, ')', '(', line);
  570. luaK_dischargevars(ls->fs, v);
  571. return;
  572. }
  573. case TK_NAME: {
  574. singlevar(ls, v);
  575. return;
  576. }
  577. default: {
  578. luaX_syntaxerror(ls, "unexpected symbol");
  579. return;
  580. }
  581. }
  582. }
  583. static void primaryexp (LexState *ls, expdesc *v) {
  584. /* primaryexp ->
  585. prefixexp { `.' NAME | `[' exp `]' | `:' NAME funcargs | funcargs } */
  586. FuncState *fs = ls->fs;
  587. prefixexp(ls, v);
  588. for (;;) {
  589. switch (ls->t.token) {
  590. case '.': { /* field */
  591. field(ls, v);
  592. break;
  593. }
  594. case '[': { /* `[' exp1 `]' */
  595. expdesc key;
  596. luaK_exp2anyreg(fs, v);
  597. yindex(ls, &key);
  598. luaK_indexed(fs, v, &key);
  599. break;
  600. }
  601. case ':': { /* `:' NAME funcargs */
  602. expdesc key;
  603. luaX_next(ls);
  604. checkname(ls, &key);
  605. luaK_self(fs, v, &key);
  606. funcargs(ls, v);
  607. break;
  608. }
  609. case '(': case TK_STRING: case '{': { /* funcargs */
  610. luaK_exp2nextreg(fs, v);
  611. funcargs(ls, v);
  612. break;
  613. }
  614. default: return;
  615. }
  616. }
  617. }
  618. static void simpleexp (LexState *ls, expdesc *v) {
  619. /* simpleexp -> NUMBER | STRING | NIL | TRUE | FALSE | ... |
  620. constructor | FUNCTION body | primaryexp */
  621. switch (ls->t.token) {
  622. case TK_NUMBER: {
  623. init_exp(v, VKNUM, 0);
  624. v->u.nval = ls->t.seminfo.r;
  625. break;
  626. }
  627. case TK_STRING: {
  628. codestring(ls, v, ls->t.seminfo.ts);
  629. break;
  630. }
  631. case TK_NIL: {
  632. init_exp(v, VNIL, 0);
  633. break;
  634. }
  635. case TK_TRUE: {
  636. init_exp(v, VTRUE, 0);
  637. break;
  638. }
  639. case TK_FALSE: {
  640. init_exp(v, VFALSE, 0);
  641. break;
  642. }
  643. case TK_DOTS: { /* vararg */
  644. FuncState *fs = ls->fs;
  645. check_condition(ls, fs->f->is_vararg,
  646. "cannot use " LUA_QL("...") " outside a vararg function");
  647. fs->f->is_vararg &= ~VARARG_NEEDSARG; /* don't need 'arg' */
  648. init_exp(v, VVARARG, luaK_codeABC(fs, OP_VARARG, 0, 1, 0));
  649. break;
  650. }
  651. case '{': { /* constructor */
  652. constructor(ls, v);
  653. return;
  654. }
  655. case TK_FUNCTION: {
  656. luaX_next(ls);
  657. body(ls, v, 0, ls->linenumber);
  658. return;
  659. }
  660. default: {
  661. primaryexp(ls, v);
  662. return;
  663. }
  664. }
  665. luaX_next(ls);
  666. }
  667. static UnOpr getunopr (int op) {
  668. switch (op) {
  669. case TK_NOT: return OPR_NOT;
  670. case '-': return OPR_MINUS;
  671. case '#': return OPR_LEN;
  672. default: return OPR_NOUNOPR;
  673. }
  674. }
  675. static BinOpr getbinopr (int op) {
  676. switch (op) {
  677. case '+': return OPR_ADD;
  678. case '-': return OPR_SUB;
  679. case '*': return OPR_MUL;
  680. case '/': return OPR_DIV;
  681. case '%': return OPR_MOD;
  682. case '^': return OPR_POW;
  683. case TK_CONCAT: return OPR_CONCAT;
  684. case TK_NE: return OPR_NE;
  685. case TK_EQ: return OPR_EQ;
  686. case '<': return OPR_LT;
  687. case TK_LE: return OPR_LE;
  688. case '>': return OPR_GT;
  689. case TK_GE: return OPR_GE;
  690. case TK_AND: return OPR_AND;
  691. case TK_OR: return OPR_OR;
  692. default: return OPR_NOBINOPR;
  693. }
  694. }
  695. static const struct {
  696. lu_byte left; /* left priority for each binary operator */
  697. lu_byte right; /* right priority */
  698. } priority[] = { /* ORDER OPR */
  699. {6, 6}, {6, 6}, {7, 7}, {7, 7}, {7, 7}, /* `+' `-' `*' `/' `%' */
  700. {10, 9}, {5, 4}, /* power and concat (right associative) */
  701. {3, 3}, {3, 3}, /* equality and inequality */
  702. {3, 3}, {3, 3}, {3, 3}, {3, 3}, /* order */
  703. {2, 2}, {1, 1} /* logical (and/or) */
  704. };
  705. #define UNARY_PRIORITY 8 /* priority for unary operators */
  706. /*
  707. ** subexpr -> (simpleexp | unop subexpr) { binop subexpr }
  708. ** where `binop' is any binary operator with a priority higher than `limit'
  709. */
  710. static BinOpr subexpr (LexState *ls, expdesc *v, unsigned int limit) {
  711. BinOpr op;
  712. UnOpr uop;
  713. enterlevel(ls);
  714. uop = getunopr(ls->t.token);
  715. if (uop != OPR_NOUNOPR) {
  716. luaX_next(ls);
  717. subexpr(ls, v, UNARY_PRIORITY);
  718. luaK_prefix(ls->fs, uop, v);
  719. }
  720. else simpleexp(ls, v);
  721. /* expand while operators have priorities higher than `limit' */
  722. op = getbinopr(ls->t.token);
  723. while (op != OPR_NOBINOPR && priority[op].left > limit) {
  724. expdesc v2;
  725. BinOpr nextop;
  726. luaX_next(ls);
  727. luaK_infix(ls->fs, op, v);
  728. /* read sub-expression with higher priority */
  729. nextop = subexpr(ls, &v2, priority[op].right);
  730. luaK_posfix(ls->fs, op, v, &v2);
  731. op = nextop;
  732. }
  733. leavelevel(ls);
  734. return op; /* return first untreated operator */
  735. }
  736. static void expr (LexState *ls, expdesc *v) {
  737. subexpr(ls, v, 0);
  738. }
  739. /* }==================================================================== */
  740. /*
  741. ** {======================================================================
  742. ** Rules for Statements
  743. ** =======================================================================
  744. */
  745. static int block_follow (int token) {
  746. switch (token) {
  747. case TK_ELSE: case TK_ELSEIF: case TK_END:
  748. case TK_UNTIL: case TK_EOS:
  749. return 1;
  750. default: return 0;
  751. }
  752. }
  753. static void block (LexState *ls) {
  754. /* block -> chunk */
  755. FuncState *fs = ls->fs;
  756. BlockCnt bl;
  757. enterblock(fs, &bl, 0);
  758. chunk(ls);
  759. lua_assert(bl.breaklist == NO_JUMP);
  760. leaveblock(fs);
  761. }
  762. /*
  763. ** structure to chain all variables in the left-hand side of an
  764. ** assignment
  765. */
  766. struct LHS_assign {
  767. struct LHS_assign *prev;
  768. expdesc v; /* variable (global, local, upvalue, or indexed) */
  769. };
  770. /*
  771. ** check whether, in an assignment to a local variable, the local variable
  772. ** is needed in a previous assignment (to a table). If so, save original
  773. ** local value in a safe place and use this safe copy in the previous
  774. ** assignment.
  775. */
  776. static void check_conflict (LexState *ls, struct LHS_assign *lh, expdesc *v) {
  777. FuncState *fs = ls->fs;
  778. int extra = fs->freereg; /* eventual position to save local variable */
  779. int conflict = 0;
  780. for (; lh; lh = lh->prev) {
  781. if (lh->v.k == VINDEXED) {
  782. if (lh->v.u.s.info == v->u.s.info) { /* conflict? */
  783. conflict = 1;
  784. lh->v.u.s.info = extra; /* previous assignment will use safe copy */
  785. }
  786. if (lh->v.u.s.aux == v->u.s.info) { /* conflict? */
  787. conflict = 1;
  788. lh->v.u.s.aux = extra; /* previous assignment will use safe copy */
  789. }
  790. }
  791. }
  792. if (conflict) {
  793. luaK_codeABC(fs, OP_MOVE, fs->freereg, v->u.s.info, 0); /* make copy */
  794. luaK_reserveregs(fs, 1);
  795. }
  796. }
  797. static void assignment (LexState *ls, struct LHS_assign *lh, int nvars) {
  798. expdesc e;
  799. check_condition(ls, VLOCAL <= lh->v.k && lh->v.k <= VINDEXED,
  800. "syntax error");
  801. if (testnext(ls, ',')) { /* assignment -> `,' primaryexp assignment */
  802. struct LHS_assign nv;
  803. nv.prev = lh;
  804. primaryexp(ls, &nv.v);
  805. if (nv.v.k == VLOCAL)
  806. check_conflict(ls, lh, &nv.v);
  807. assignment(ls, &nv, nvars+1);
  808. }
  809. else { /* assignment -> `=' explist1 */
  810. int nexps;
  811. checknext(ls, '=');
  812. nexps = explist1(ls, &e);
  813. if (nexps != nvars) {
  814. adjust_assign(ls, nvars, nexps, &e);
  815. if (nexps > nvars)
  816. ls->fs->freereg -= nexps - nvars; /* remove extra values */
  817. }
  818. else {
  819. luaK_setoneret(ls->fs, &e); /* close last expression */
  820. luaK_storevar(ls->fs, &lh->v, &e);
  821. return; /* avoid default */
  822. }
  823. }
  824. init_exp(&e, VNONRELOC, ls->fs->freereg-1); /* default assignment */
  825. luaK_storevar(ls->fs, &lh->v, &e);
  826. }
  827. static int cond (LexState *ls) {
  828. /* cond -> exp */
  829. expdesc v;
  830. expr(ls, &v); /* read condition */
  831. if (v.k == VNIL) v.k = VFALSE; /* `falses' are all equal here */
  832. luaK_goiftrue(ls->fs, &v);
  833. return v.f;
  834. }
  835. static void breakstat (LexState *ls) {
  836. FuncState *fs = ls->fs;
  837. BlockCnt *bl = fs->bl;
  838. int upval = 0;
  839. while (bl && !bl->isbreakable) {
  840. upval |= bl->upval;
  841. bl = bl->previous;
  842. }
  843. if (!bl)
  844. luaX_syntaxerror(ls, "no loop to break");
  845. if (upval)
  846. luaK_codeABC(fs, OP_CLOSE, bl->nactvar, 0, 0);
  847. luaK_concat(fs, &bl->breaklist, luaK_jump(fs));
  848. }
  849. static void whilestat (LexState *ls, int line) {
  850. /* whilestat -> WHILE cond DO block END */
  851. FuncState *fs = ls->fs;
  852. int whileinit;
  853. int condexit;
  854. BlockCnt bl;
  855. luaX_next(ls); /* skip WHILE */
  856. whileinit = luaK_getlabel(fs);
  857. condexit = cond(ls);
  858. enterblock(fs, &bl, 1);
  859. checknext(ls, TK_DO);
  860. block(ls);
  861. luaK_patchlist(fs, luaK_jump(fs), whileinit);
  862. check_match(ls, TK_END, TK_WHILE, line);
  863. leaveblock(fs);
  864. luaK_patchtohere(fs, condexit); /* false conditions finish the loop */
  865. }
  866. static void repeatstat (LexState *ls, int line) {
  867. /* repeatstat -> REPEAT block UNTIL cond */
  868. int condexit;
  869. FuncState *fs = ls->fs;
  870. int repeat_init = luaK_getlabel(fs);
  871. BlockCnt bl1, bl2;
  872. enterblock(fs, &bl1, 1); /* loop block */
  873. enterblock(fs, &bl2, 0); /* scope block */
  874. luaX_next(ls); /* skip REPEAT */
  875. chunk(ls);
  876. check_match(ls, TK_UNTIL, TK_REPEAT, line);
  877. condexit = cond(ls); /* read condition (inside scope block) */
  878. if (!bl2.upval) { /* no upvalues? */
  879. leaveblock(fs); /* finish scope */
  880. luaK_patchlist(ls->fs, condexit, repeat_init); /* close the loop */
  881. }
  882. else { /* complete semantics when there are upvalues */
  883. breakstat(ls); /* if condition then break */
  884. luaK_patchtohere(ls->fs, condexit); /* else... */
  885. leaveblock(fs); /* finish scope... */
  886. luaK_patchlist(ls->fs, luaK_jump(fs), repeat_init); /* and repeat */
  887. }
  888. leaveblock(fs); /* finish loop */
  889. }
  890. static int exp1 (LexState *ls) {
  891. expdesc e;
  892. int k;
  893. expr(ls, &e);
  894. k = e.k;
  895. luaK_exp2nextreg(ls->fs, &e);
  896. return k;
  897. }
  898. static void forbody (LexState *ls, int base, int line, int nvars, int isnum) {
  899. /* forbody -> DO block */
  900. BlockCnt bl;
  901. FuncState *fs = ls->fs;
  902. int prep, endfor;
  903. adjustlocalvars(ls, 3); /* control variables */
  904. checknext(ls, TK_DO);
  905. prep = isnum ? luaK_codeAsBx(fs, OP_FORPREP, base, NO_JUMP) : luaK_jump(fs);
  906. enterblock(fs, &bl, 0); /* scope for declared variables */
  907. adjustlocalvars(ls, nvars);
  908. luaK_reserveregs(fs, nvars);
  909. block(ls);
  910. leaveblock(fs); /* end of scope for declared variables */
  911. luaK_patchtohere(fs, prep);
  912. endfor = (isnum) ? luaK_codeAsBx(fs, OP_FORLOOP, base, NO_JUMP) :
  913. luaK_codeABC(fs, OP_TFORLOOP, base, 0, nvars);
  914. luaK_fixline(fs, line); /* pretend that `OP_FOR' starts the loop */
  915. luaK_patchlist(fs, (isnum ? endfor : luaK_jump(fs)), prep + 1);
  916. }
  917. static void fornum (LexState *ls, TString *varname, int line) {
  918. /* fornum -> NAME = exp1,exp1[,exp1] forbody */
  919. FuncState *fs = ls->fs;
  920. int base = fs->freereg;
  921. new_localvarliteral(ls, "(for index)", 0);
  922. new_localvarliteral(ls, "(for limit)", 1);
  923. new_localvarliteral(ls, "(for step)", 2);
  924. new_localvar(ls, varname, 3);
  925. checknext(ls, '=');
  926. exp1(ls); /* initial value */
  927. checknext(ls, ',');
  928. exp1(ls); /* limit */
  929. if (testnext(ls, ','))
  930. exp1(ls); /* optional step */
  931. else { /* default step = 1 */
  932. luaK_codeABx(fs, OP_LOADK, fs->freereg, luaK_numberK(fs, 1));
  933. luaK_reserveregs(fs, 1);
  934. }
  935. forbody(ls, base, line, 1, 1);
  936. }
  937. static void forlist (LexState *ls, TString *indexname) {
  938. /* forlist -> NAME {,NAME} IN explist1 forbody */
  939. FuncState *fs = ls->fs;
  940. expdesc e;
  941. int nvars = 0;
  942. int line;
  943. int base = fs->freereg;
  944. /* create control variables */
  945. new_localvarliteral(ls, "(for generator)", nvars++);
  946. new_localvarliteral(ls, "(for state)", nvars++);
  947. new_localvarliteral(ls, "(for control)", nvars++);
  948. /* create declared variables */
  949. new_localvar(ls, indexname, nvars++);
  950. while (testnext(ls, ','))
  951. new_localvar(ls, str_checkname(ls), nvars++);
  952. checknext(ls, TK_IN);
  953. line = ls->linenumber;
  954. adjust_assign(ls, 3, explist1(ls, &e), &e);
  955. luaK_checkstack(fs, 3); /* extra space to call generator */
  956. forbody(ls, base, line, nvars - 3, 0);
  957. }
  958. static void forstat (LexState *ls, int line) {
  959. /* forstat -> FOR (fornum | forlist) END */
  960. FuncState *fs = ls->fs;
  961. TString *varname;
  962. BlockCnt bl;
  963. enterblock(fs, &bl, 1); /* scope for loop and control variables */
  964. luaX_next(ls); /* skip `for' */
  965. varname = str_checkname(ls); /* first variable name */
  966. switch (ls->t.token) {
  967. case '=': fornum(ls, varname, line); break;
  968. case ',': case TK_IN: forlist(ls, varname); break;
  969. default: luaX_syntaxerror(ls, LUA_QL("=") " or " LUA_QL("in") " expected");
  970. }
  971. check_match(ls, TK_END, TK_FOR, line);
  972. leaveblock(fs); /* loop scope (`break' jumps to this point) */
  973. }
  974. static int test_then_block (LexState *ls) {
  975. /* test_then_block -> [IF | ELSEIF] cond THEN block */
  976. int condexit;
  977. luaX_next(ls); /* skip IF or ELSEIF */
  978. condexit = cond(ls);
  979. checknext(ls, TK_THEN);
  980. block(ls); /* `then' part */
  981. return condexit;
  982. }
  983. static void ifstat (LexState *ls, int line) {
  984. /* ifstat -> IF cond THEN block {ELSEIF cond THEN block} [ELSE block] END */
  985. FuncState *fs = ls->fs;
  986. int flist;
  987. int escapelist = NO_JUMP;
  988. flist = test_then_block(ls); /* IF cond THEN block */
  989. while (ls->t.token == TK_ELSEIF) {
  990. luaK_concat(fs, &escapelist, luaK_jump(fs));
  991. luaK_patchtohere(fs, flist);
  992. flist = test_then_block(ls); /* ELSEIF cond THEN block */
  993. }
  994. if (ls->t.token == TK_ELSE) {
  995. luaK_concat(fs, &escapelist, luaK_jump(fs));
  996. luaK_patchtohere(fs, flist);
  997. luaX_next(ls); /* skip ELSE (after patch, for correct line info) */
  998. block(ls); /* `else' part */
  999. }
  1000. else
  1001. luaK_concat(fs, &escapelist, flist);
  1002. luaK_patchtohere(fs, escapelist);
  1003. check_match(ls, TK_END, TK_IF, line);
  1004. }
  1005. static void localfunc (LexState *ls) {
  1006. expdesc v, b;
  1007. FuncState *fs = ls->fs;
  1008. new_localvar(ls, str_checkname(ls), 0);
  1009. init_exp(&v, VLOCAL, fs->freereg);
  1010. luaK_reserveregs(fs, 1);
  1011. adjustlocalvars(ls, 1);
  1012. body(ls, &b, 0, ls->linenumber);
  1013. luaK_storevar(fs, &v, &b);
  1014. /* debug information will only see the variable after this point! */
  1015. getlocvar(fs, fs->nactvar - 1).startpc = fs->pc;
  1016. }
  1017. static void localstat (LexState *ls) {
  1018. /* stat -> LOCAL NAME {`,' NAME} [`=' explist1] */
  1019. int nvars = 0;
  1020. int nexps;
  1021. expdesc e;
  1022. do {
  1023. new_localvar(ls, str_checkname(ls), nvars++);
  1024. } while (testnext(ls, ','));
  1025. if (testnext(ls, '='))
  1026. nexps = explist1(ls, &e);
  1027. else {
  1028. e.k = VVOID;
  1029. nexps = 0;
  1030. }
  1031. adjust_assign(ls, nvars, nexps, &e);
  1032. adjustlocalvars(ls, nvars);
  1033. }
  1034. static int funcname (LexState *ls, expdesc *v) {
  1035. /* funcname -> NAME {field} [`:' NAME] */
  1036. int needself = 0;
  1037. singlevar(ls, v);
  1038. while (ls->t.token == '.')
  1039. field(ls, v);
  1040. if (ls->t.token == ':') {
  1041. needself = 1;
  1042. field(ls, v);
  1043. }
  1044. return needself;
  1045. }
  1046. static void funcstat (LexState *ls, int line) {
  1047. /* funcstat -> FUNCTION funcname body */
  1048. int needself;
  1049. expdesc v, b;
  1050. luaX_next(ls); /* skip FUNCTION */
  1051. needself = funcname(ls, &v);
  1052. body(ls, &b, needself, line);
  1053. luaK_storevar(ls->fs, &v, &b);
  1054. luaK_fixline(ls->fs, line); /* definition `happens' in the first line */
  1055. }
  1056. static void exprstat (LexState *ls) {
  1057. /* stat -> func | assignment */
  1058. FuncState *fs = ls->fs;
  1059. struct LHS_assign v;
  1060. primaryexp(ls, &v.v);
  1061. if (v.v.k == VCALL) /* stat -> func */
  1062. SETARG_C(getcode(fs, &v.v), 1); /* call statement uses no results */
  1063. else { /* stat -> assignment */
  1064. v.prev = NULL;
  1065. assignment(ls, &v, 1);
  1066. }
  1067. }
  1068. static void retstat (LexState *ls) {
  1069. /* stat -> RETURN explist */
  1070. FuncState *fs = ls->fs;
  1071. expdesc e;
  1072. int first, nret; /* registers with returned values */
  1073. luaX_next(ls); /* skip RETURN */
  1074. if (block_follow(ls->t.token) || ls->t.token == ';')
  1075. first = nret = 0; /* return no values */
  1076. else {
  1077. nret = explist1(ls, &e); /* optional return values */
  1078. if (hasmultret(e.k)) {
  1079. luaK_setmultret(fs, &e);
  1080. if (e.k == VCALL && nret == 1) { /* tail call? */
  1081. SET_OPCODE(getcode(fs,&e), OP_TAILCALL);
  1082. lua_assert(GETARG_A(getcode(fs,&e)) == fs->nactvar);
  1083. }
  1084. first = fs->nactvar;
  1085. nret = LUA_MULTRET; /* return all values */
  1086. }
  1087. else {
  1088. if (nret == 1) /* only one single value? */
  1089. first = luaK_exp2anyreg(fs, &e);
  1090. else {
  1091. luaK_exp2nextreg(fs, &e); /* values must go to the `stack' */
  1092. first = fs->nactvar; /* return all `active' values */
  1093. lua_assert(nret == fs->freereg - first);
  1094. }
  1095. }
  1096. }
  1097. luaK_ret(fs, first, nret);
  1098. }
  1099. static int statement (LexState *ls) {
  1100. int line = ls->linenumber; /* may be needed for error messages */
  1101. switch (ls->t.token) {
  1102. case TK_IF: { /* stat -> ifstat */
  1103. ifstat(ls, line);
  1104. return 0;
  1105. }
  1106. case TK_WHILE: { /* stat -> whilestat */
  1107. whilestat(ls, line);
  1108. return 0;
  1109. }
  1110. case TK_DO: { /* stat -> DO block END */
  1111. luaX_next(ls); /* skip DO */
  1112. block(ls);
  1113. check_match(ls, TK_END, TK_DO, line);
  1114. return 0;
  1115. }
  1116. case TK_FOR: { /* stat -> forstat */
  1117. forstat(ls, line);
  1118. return 0;
  1119. }
  1120. case TK_REPEAT: { /* stat -> repeatstat */
  1121. repeatstat(ls, line);
  1122. return 0;
  1123. }
  1124. case TK_FUNCTION: {
  1125. funcstat(ls, line); /* stat -> funcstat */
  1126. return 0;
  1127. }
  1128. case TK_LOCAL: { /* stat -> localstat */
  1129. luaX_next(ls); /* skip LOCAL */
  1130. if (testnext(ls, TK_FUNCTION)) /* local function? */
  1131. localfunc(ls);
  1132. else
  1133. localstat(ls);
  1134. return 0;
  1135. }
  1136. case TK_RETURN: { /* stat -> retstat */
  1137. retstat(ls);
  1138. return 1; /* must be last statement */
  1139. }
  1140. case TK_BREAK: { /* stat -> breakstat */
  1141. luaX_next(ls); /* skip BREAK */
  1142. breakstat(ls);
  1143. return 1; /* must be last statement */
  1144. }
  1145. default: {
  1146. exprstat(ls);
  1147. return 0; /* to avoid warnings */
  1148. }
  1149. }
  1150. }
  1151. static void chunk (LexState *ls) {
  1152. /* chunk -> { stat [`;'] } */
  1153. int islast = 0;
  1154. enterlevel(ls);
  1155. while (!islast && !block_follow(ls->t.token)) {
  1156. islast = statement(ls);
  1157. testnext(ls, ';');
  1158. lua_assert(ls->fs->f->maxstacksize >= ls->fs->freereg &&
  1159. ls->fs->freereg >= ls->fs->nactvar);
  1160. ls->fs->freereg = ls->fs->nactvar; /* free registers */
  1161. }
  1162. leavelevel(ls);
  1163. }
  1164. /* }====================================================================== */