lparser.c 56 KB

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  1. /*
  2. ** $Id: lparser.c $
  3. ** Lua Parser
  4. ** See Copyright Notice in lua.h
  5. */
  6. #define lparser_c
  7. #define LUA_CORE
  8. #include "lprefix.h"
  9. #include <limits.h>
  10. #include <string.h>
  11. #include "lua.h"
  12. #include "lcode.h"
  13. #include "ldebug.h"
  14. #include "ldo.h"
  15. #include "lfunc.h"
  16. #include "llex.h"
  17. #include "lmem.h"
  18. #include "lobject.h"
  19. #include "lopcodes.h"
  20. #include "lparser.h"
  21. #include "lstate.h"
  22. #include "lstring.h"
  23. #include "ltable.h"
  24. /* maximum number of local variables per function (must be smaller
  25. than 250, due to the bytecode format) */
  26. #define MAXVARS 200
  27. #define hasmultret(k) ((k) == VCALL || (k) == VVARARG)
  28. /* because all strings are unified by the scanner, the parser
  29. can use pointer equality for string equality */
  30. #define eqstr(a,b) ((a) == (b))
  31. /*
  32. ** nodes for block list (list of active blocks)
  33. */
  34. typedef struct BlockCnt {
  35. struct BlockCnt *previous; /* chain */
  36. int firstlabel; /* index of first label in this block */
  37. int firstgoto; /* index of first pending goto in this block */
  38. lu_byte nactvar; /* # active locals outside the block */
  39. lu_byte upval; /* true if some variable in the block is an upvalue */
  40. lu_byte isloop; /* true if 'block' is a loop */
  41. lu_byte insidetbc; /* true if inside the scope of a to-be-closed var. */
  42. } BlockCnt;
  43. /*
  44. ** prototypes for recursive non-terminal functions
  45. */
  46. static void statement (LexState *ls);
  47. static void expr (LexState *ls, expdesc *v);
  48. static l_noret error_expected (LexState *ls, int token) {
  49. luaX_syntaxerror(ls,
  50. luaO_pushfstring(ls->L, "%s expected", luaX_token2str(ls, token)));
  51. }
  52. static l_noret errorlimit (FuncState *fs, int limit, const char *what) {
  53. lua_State *L = fs->ls->L;
  54. const char *msg;
  55. int line = fs->f->linedefined;
  56. const char *where = (line == 0)
  57. ? "main function"
  58. : luaO_pushfstring(L, "function at line %d", line);
  59. msg = luaO_pushfstring(L, "too many %s (limit is %d) in %s",
  60. what, limit, where);
  61. luaX_syntaxerror(fs->ls, msg);
  62. }
  63. void luaY_checklimit (FuncState *fs, int v, int l, const char *what) {
  64. if (l_unlikely(v > l)) errorlimit(fs, l, what);
  65. }
  66. /*
  67. ** Test whether next token is 'c'; if so, skip it.
  68. */
  69. static int testnext (LexState *ls, int c) {
  70. if (ls->t.token == c) {
  71. luaX_next(ls);
  72. return 1;
  73. }
  74. else return 0;
  75. }
  76. /*
  77. ** Check that next token is 'c'.
  78. */
  79. static void check (LexState *ls, int c) {
  80. if (ls->t.token != c)
  81. error_expected(ls, c);
  82. }
  83. /*
  84. ** Check that next token is 'c' and skip it.
  85. */
  86. static void checknext (LexState *ls, int c) {
  87. check(ls, c);
  88. luaX_next(ls);
  89. }
  90. #define check_condition(ls,c,msg) { if (!(c)) luaX_syntaxerror(ls, msg); }
  91. /*
  92. ** Check that next token is 'what' and skip it. In case of error,
  93. ** raise an error that the expected 'what' should match a 'who'
  94. ** in line 'where' (if that is not the current line).
  95. */
  96. static void check_match (LexState *ls, int what, int who, int where) {
  97. if (l_unlikely(!testnext(ls, what))) {
  98. if (where == ls->linenumber) /* all in the same line? */
  99. error_expected(ls, what); /* do not need a complex message */
  100. else {
  101. luaX_syntaxerror(ls, luaO_pushfstring(ls->L,
  102. "%s expected (to close %s at line %d)",
  103. luaX_token2str(ls, what), luaX_token2str(ls, who), where));
  104. }
  105. }
  106. }
  107. static TString *str_checkname (LexState *ls) {
  108. TString *ts;
  109. check(ls, TK_NAME);
  110. ts = ls->t.seminfo.ts;
  111. luaX_next(ls);
  112. return ts;
  113. }
  114. static void init_exp (expdesc *e, expkind k, int i) {
  115. e->f = e->t = NO_JUMP;
  116. e->k = k;
  117. e->u.info = i;
  118. }
  119. static void codestring (expdesc *e, TString *s) {
  120. e->f = e->t = NO_JUMP;
  121. e->k = VKSTR;
  122. e->u.strval = s;
  123. }
  124. static void codename (LexState *ls, expdesc *e) {
  125. codestring(e, str_checkname(ls));
  126. }
  127. /*
  128. ** Register a new local variable in the active 'Proto' (for debug
  129. ** information).
  130. */
  131. static short registerlocalvar (LexState *ls, FuncState *fs,
  132. TString *varname) {
  133. Proto *f = fs->f;
  134. int oldsize = f->sizelocvars;
  135. luaM_growvector(ls->L, f->locvars, fs->ndebugvars, f->sizelocvars,
  136. LocVar, SHRT_MAX, "local variables");
  137. while (oldsize < f->sizelocvars)
  138. f->locvars[oldsize++].varname = NULL;
  139. f->locvars[fs->ndebugvars].varname = varname;
  140. f->locvars[fs->ndebugvars].startpc = fs->pc;
  141. luaC_objbarrier(ls->L, f, varname);
  142. return fs->ndebugvars++;
  143. }
  144. /*
  145. ** Create a new local variable with the given 'name' and given 'kind'.
  146. ** Return its index in the function.
  147. */
  148. static int new_localvarkind (LexState *ls, TString *name, lu_byte kind) {
  149. lua_State *L = ls->L;
  150. FuncState *fs = ls->fs;
  151. Dyndata *dyd = ls->dyd;
  152. Vardesc *var;
  153. luaY_checklimit(fs, dyd->actvar.n + 1 - fs->firstlocal,
  154. MAXVARS, "local variables");
  155. luaM_growvector(L, dyd->actvar.arr, dyd->actvar.n + 1,
  156. dyd->actvar.size, Vardesc, SHRT_MAX, "local variables");
  157. var = &dyd->actvar.arr[dyd->actvar.n++];
  158. var->vd.kind = kind; /* default */
  159. var->vd.name = name;
  160. return dyd->actvar.n - 1 - fs->firstlocal;
  161. }
  162. /*
  163. ** Create a new local variable with the given 'name' and regular kind.
  164. */
  165. static int new_localvar (LexState *ls, TString *name) {
  166. return new_localvarkind(ls, name, VDKREG);
  167. }
  168. #define new_localvarliteral(ls,v) \
  169. new_localvar(ls, \
  170. luaX_newstring(ls, "" v, (sizeof(v)/sizeof(char)) - 1));
  171. /*
  172. ** Return the "variable description" (Vardesc) of a given variable.
  173. ** (Unless noted otherwise, all variables are referred to by their
  174. ** compiler indices.)
  175. */
  176. static Vardesc *getlocalvardesc (FuncState *fs, int vidx) {
  177. return &fs->ls->dyd->actvar.arr[fs->firstlocal + vidx];
  178. }
  179. /*
  180. ** Convert 'nvar', a compiler index level, to its corresponding
  181. ** register. For that, search for the highest variable below that level
  182. ** that is in a register and uses its register index ('ridx') plus one.
  183. */
  184. static lu_byte reglevel (FuncState *fs, int nvar) {
  185. while (nvar-- > 0) {
  186. Vardesc *vd = getlocalvardesc(fs, nvar); /* get previous variable */
  187. if (vd->vd.kind != RDKCTC) /* is in a register? */
  188. return cast_byte(vd->vd.ridx + 1);
  189. }
  190. return 0; /* no variables in registers */
  191. }
  192. /*
  193. ** Return the number of variables in the register stack for the given
  194. ** function.
  195. */
  196. lu_byte luaY_nvarstack (FuncState *fs) {
  197. return reglevel(fs, fs->nactvar);
  198. }
  199. /*
  200. ** Get the debug-information entry for current variable 'vidx'.
  201. */
  202. static LocVar *localdebuginfo (FuncState *fs, int vidx) {
  203. Vardesc *vd = getlocalvardesc(fs, vidx);
  204. if (vd->vd.kind == RDKCTC)
  205. return NULL; /* no debug info. for constants */
  206. else {
  207. int idx = vd->vd.pidx;
  208. lua_assert(idx < fs->ndebugvars);
  209. return &fs->f->locvars[idx];
  210. }
  211. }
  212. /*
  213. ** Create an expression representing variable 'vidx'
  214. */
  215. static void init_var (FuncState *fs, expdesc *e, int vidx) {
  216. e->f = e->t = NO_JUMP;
  217. e->k = VLOCAL;
  218. e->u.var.vidx = cast(unsigned short, vidx);
  219. e->u.var.ridx = getlocalvardesc(fs, vidx)->vd.ridx;
  220. }
  221. /*
  222. ** Raises an error if variable described by 'e' is read only
  223. */
  224. static void check_readonly (LexState *ls, expdesc *e) {
  225. FuncState *fs = ls->fs;
  226. TString *varname = NULL; /* to be set if variable is const */
  227. switch (e->k) {
  228. case VCONST: {
  229. varname = ls->dyd->actvar.arr[e->u.info].vd.name;
  230. break;
  231. }
  232. case VLOCAL: {
  233. Vardesc *vardesc = getlocalvardesc(fs, e->u.var.vidx);
  234. if (vardesc->vd.kind != VDKREG) /* not a regular variable? */
  235. varname = vardesc->vd.name;
  236. break;
  237. }
  238. case VUPVAL: {
  239. Upvaldesc *up = &fs->f->upvalues[e->u.info];
  240. if (up->kind != VDKREG)
  241. varname = up->name;
  242. break;
  243. }
  244. default:
  245. return; /* other cases cannot be read-only */
  246. }
  247. if (varname) {
  248. const char *msg = luaO_pushfstring(ls->L,
  249. "attempt to assign to const variable '%s'", getstr(varname));
  250. luaK_semerror(ls, msg); /* error */
  251. }
  252. }
  253. /*
  254. ** Start the scope for the last 'nvars' created variables.
  255. */
  256. static void adjustlocalvars (LexState *ls, int nvars) {
  257. FuncState *fs = ls->fs;
  258. int reglevel = luaY_nvarstack(fs);
  259. int i;
  260. for (i = 0; i < nvars; i++) {
  261. int vidx = fs->nactvar++;
  262. Vardesc *var = getlocalvardesc(fs, vidx);
  263. var->vd.ridx = cast_byte(reglevel++);
  264. var->vd.pidx = registerlocalvar(ls, fs, var->vd.name);
  265. }
  266. }
  267. /*
  268. ** Close the scope for all variables up to level 'tolevel'.
  269. ** (debug info.)
  270. */
  271. static void removevars (FuncState *fs, int tolevel) {
  272. fs->ls->dyd->actvar.n -= (fs->nactvar - tolevel);
  273. while (fs->nactvar > tolevel) {
  274. LocVar *var = localdebuginfo(fs, --fs->nactvar);
  275. if (var) /* does it have debug information? */
  276. var->endpc = fs->pc;
  277. }
  278. }
  279. /*
  280. ** Search the upvalues of the function 'fs' for one
  281. ** with the given 'name'.
  282. */
  283. static int searchupvalue (FuncState *fs, TString *name) {
  284. int i;
  285. Upvaldesc *up = fs->f->upvalues;
  286. for (i = 0; i < fs->nups; i++) {
  287. if (eqstr(up[i].name, name)) return i;
  288. }
  289. return -1; /* not found */
  290. }
  291. static Upvaldesc *allocupvalue (FuncState *fs) {
  292. Proto *f = fs->f;
  293. int oldsize = f->sizeupvalues;
  294. luaY_checklimit(fs, fs->nups + 1, MAXUPVAL, "upvalues");
  295. luaM_growvector(fs->ls->L, f->upvalues, fs->nups, f->sizeupvalues,
  296. Upvaldesc, MAXUPVAL, "upvalues");
  297. while (oldsize < f->sizeupvalues)
  298. f->upvalues[oldsize++].name = NULL;
  299. return &f->upvalues[fs->nups++];
  300. }
  301. static int newupvalue (FuncState *fs, TString *name, expdesc *v) {
  302. Upvaldesc *up = allocupvalue(fs);
  303. FuncState *prev = fs->prev;
  304. if (v->k == VLOCAL) {
  305. up->instack = 1;
  306. up->idx = v->u.var.ridx;
  307. up->kind = getlocalvardesc(prev, v->u.var.vidx)->vd.kind;
  308. lua_assert(eqstr(name, getlocalvardesc(prev, v->u.var.vidx)->vd.name));
  309. }
  310. else {
  311. up->instack = 0;
  312. up->idx = cast_byte(v->u.info);
  313. up->kind = prev->f->upvalues[v->u.info].kind;
  314. lua_assert(eqstr(name, prev->f->upvalues[v->u.info].name));
  315. }
  316. up->name = name;
  317. luaC_objbarrier(fs->ls->L, fs->f, name);
  318. return fs->nups - 1;
  319. }
  320. /*
  321. ** Look for an active local variable with the name 'n' in the
  322. ** function 'fs'. If found, initialize 'var' with it and return
  323. ** its expression kind; otherwise return -1.
  324. */
  325. static int searchvar (FuncState *fs, TString *n, expdesc *var) {
  326. int i;
  327. for (i = cast_int(fs->nactvar) - 1; i >= 0; i--) {
  328. Vardesc *vd = getlocalvardesc(fs, i);
  329. if (eqstr(n, vd->vd.name)) { /* found? */
  330. if (vd->vd.kind == RDKCTC) /* compile-time constant? */
  331. init_exp(var, VCONST, fs->firstlocal + i);
  332. else /* real variable */
  333. init_var(fs, var, i);
  334. return var->k;
  335. }
  336. }
  337. return -1; /* not found */
  338. }
  339. /*
  340. ** Mark block where variable at given level was defined
  341. ** (to emit close instructions later).
  342. */
  343. static void markupval (FuncState *fs, int level) {
  344. BlockCnt *bl = fs->bl;
  345. while (bl->nactvar > level)
  346. bl = bl->previous;
  347. bl->upval = 1;
  348. fs->needclose = 1;
  349. }
  350. /*
  351. ** Mark that current block has a to-be-closed variable.
  352. */
  353. static void marktobeclosed (FuncState *fs) {
  354. BlockCnt *bl = fs->bl;
  355. bl->upval = 1;
  356. bl->insidetbc = 1;
  357. fs->needclose = 1;
  358. }
  359. /*
  360. ** Find a variable with the given name 'n'. If it is an upvalue, add
  361. ** this upvalue into all intermediate functions. If it is a global, set
  362. ** 'var' as 'void' as a flag.
  363. */
  364. static void singlevaraux (FuncState *fs, TString *n, expdesc *var, int base) {
  365. if (fs == NULL) /* no more levels? */
  366. init_exp(var, VVOID, 0); /* default is global */
  367. else {
  368. int v = searchvar(fs, n, var); /* look up locals at current level */
  369. if (v >= 0) { /* found? */
  370. if (v == VLOCAL && !base)
  371. markupval(fs, var->u.var.vidx); /* local will be used as an upval */
  372. }
  373. else { /* not found as local at current level; try upvalues */
  374. int idx = searchupvalue(fs, n); /* try existing upvalues */
  375. if (idx < 0) { /* not found? */
  376. singlevaraux(fs->prev, n, var, 0); /* try upper levels */
  377. if (var->k == VLOCAL || var->k == VUPVAL) /* local or upvalue? */
  378. idx = newupvalue(fs, n, var); /* will be a new upvalue */
  379. else /* it is a global or a constant */
  380. return; /* don't need to do anything at this level */
  381. }
  382. init_exp(var, VUPVAL, idx); /* new or old upvalue */
  383. }
  384. }
  385. }
  386. /*
  387. ** Find a variable with the given name 'n', handling global variables
  388. ** too.
  389. */
  390. static void singlevar (LexState *ls, expdesc *var) {
  391. TString *varname = str_checkname(ls);
  392. FuncState *fs = ls->fs;
  393. singlevaraux(fs, varname, var, 1);
  394. if (var->k == VVOID) { /* global name? */
  395. expdesc key;
  396. singlevaraux(fs, ls->envn, var, 1); /* get environment variable */
  397. lua_assert(var->k != VVOID); /* this one must exist */
  398. luaK_exp2anyregup(fs, var); /* but could be a constant */
  399. codestring(&key, varname); /* key is variable name */
  400. luaK_indexed(fs, var, &key); /* env[varname] */
  401. }
  402. }
  403. /*
  404. ** Adjust the number of results from an expression list 'e' with 'nexps'
  405. ** expressions to 'nvars' values.
  406. */
  407. static void adjust_assign (LexState *ls, int nvars, int nexps, expdesc *e) {
  408. FuncState *fs = ls->fs;
  409. int needed = nvars - nexps; /* extra values needed */
  410. if (hasmultret(e->k)) { /* last expression has multiple returns? */
  411. int extra = needed + 1; /* discount last expression itself */
  412. if (extra < 0)
  413. extra = 0;
  414. luaK_setreturns(fs, e, extra); /* last exp. provides the difference */
  415. }
  416. else {
  417. if (e->k != VVOID) /* at least one expression? */
  418. luaK_exp2nextreg(fs, e); /* close last expression */
  419. if (needed > 0) /* missing values? */
  420. luaK_nil(fs, fs->freereg, needed); /* complete with nils */
  421. }
  422. if (needed > 0)
  423. luaK_reserveregs(fs, needed); /* registers for extra values */
  424. else /* adding 'needed' is actually a subtraction */
  425. fs->freereg = cast_byte(fs->freereg + needed); /* remove extra values */
  426. }
  427. #define enterlevel(ls) luaE_incCstack(ls->L)
  428. #define leavelevel(ls) ((ls)->L->nCcalls--)
  429. /*
  430. ** Generates an error that a goto jumps into the scope of some
  431. ** local variable.
  432. */
  433. static l_noret jumpscopeerror (LexState *ls, Labeldesc *gt) {
  434. TString *tsname = getlocalvardesc(ls->fs, gt->nactvar)->vd.name;
  435. const char *varname = getstr(tsname);
  436. const char *msg = "<goto %s> at line %d jumps into the scope of local '%s'";
  437. msg = luaO_pushfstring(ls->L, msg, getstr(gt->name), gt->line, varname);
  438. luaK_semerror(ls, msg); /* raise the error */
  439. }
  440. /*
  441. ** Closes the goto at index 'g' to given 'label' and removes it
  442. ** from the list of pending gotos.
  443. ** If it jumps into the scope of some variable, raises an error.
  444. ** The goto needs a CLOSE if it jumps out of a block with upvalues,
  445. ** or out of the scope of some variable and the block has upvalues
  446. ** (signaled by parameter 'bup').
  447. */
  448. static void closegoto (LexState *ls, int g, Labeldesc *label, int bup) {
  449. int i;
  450. FuncState *fs = ls->fs;
  451. Labellist *gl = &ls->dyd->gt; /* list of gotos */
  452. Labeldesc *gt = &gl->arr[g]; /* goto to be resolved */
  453. lua_assert(eqstr(gt->name, label->name));
  454. if (l_unlikely(gt->nactvar < label->nactvar)) /* enter some scope? */
  455. jumpscopeerror(ls, gt);
  456. if (gt->close ||
  457. (label->nactvar < gt->nactvar && bup)) { /* needs close? */
  458. lu_byte stklevel = reglevel(fs, label->nactvar);
  459. /* move jump to CLOSE position */
  460. fs->f->code[gt->pc + 1] = fs->f->code[gt->pc];
  461. /* put CLOSE instruction at original position */
  462. fs->f->code[gt->pc] = CREATE_ABCk(OP_CLOSE, stklevel, 0, 0, 0);
  463. gt->pc++; /* must point to jump instruction */
  464. }
  465. luaK_patchlist(ls->fs, gt->pc, label->pc); /* goto jumps to label */
  466. for (i = g; i < gl->n - 1; i++) /* remove goto from pending list */
  467. gl->arr[i] = gl->arr[i + 1];
  468. gl->n--;
  469. }
  470. /*
  471. ** Search for an active label with the given name, starting at
  472. ** index 'ilb' (so that it can searh for all labels in current block
  473. ** or all labels in current function).
  474. */
  475. static Labeldesc *findlabel (LexState *ls, TString *name, int ilb) {
  476. Dyndata *dyd = ls->dyd;
  477. for (; ilb < dyd->label.n; ilb++) {
  478. Labeldesc *lb = &dyd->label.arr[ilb];
  479. if (eqstr(lb->name, name)) /* correct label? */
  480. return lb;
  481. }
  482. return NULL; /* label not found */
  483. }
  484. /*
  485. ** Adds a new label/goto in the corresponding list.
  486. */
  487. static int newlabelentry (LexState *ls, Labellist *l, TString *name,
  488. int line, int pc) {
  489. int n = l->n;
  490. luaM_growvector(ls->L, l->arr, n, l->size,
  491. Labeldesc, SHRT_MAX, "labels/gotos");
  492. l->arr[n].name = name;
  493. l->arr[n].line = line;
  494. l->arr[n].nactvar = ls->fs->nactvar;
  495. l->arr[n].close = 0;
  496. l->arr[n].pc = pc;
  497. l->n = n + 1;
  498. return n;
  499. }
  500. /*
  501. ** Create an entry for the goto and the code for it. As it is not known
  502. ** at this point whether the goto may need a CLOSE, the code has a jump
  503. ** followed by an CLOSE. (As the CLOSE comes after the jump, it is a
  504. ** dead instruction; it works as a placeholder.) When the goto is closed
  505. ** against a label, if it needs a CLOSE, the two instructions swap
  506. ** positions, so that the CLOSE comes before the jump.
  507. */
  508. static int newgotoentry (LexState *ls, TString *name, int line) {
  509. FuncState *fs = ls->fs;
  510. int pc = luaK_jump(fs); /* create jump */
  511. luaK_codeABC(fs, OP_CLOSE, 0, 1, 0); /* spaceholder, marked as dead */
  512. return newlabelentry(ls, &ls->dyd->gt, name, line, pc);
  513. }
  514. /*
  515. ** Create a new label with the given 'name' at the given 'line'.
  516. ** 'last' tells whether label is the last non-op statement in its
  517. ** block. Solves all pending gotos to this new label and adds
  518. ** a close instruction if necessary.
  519. ** Returns true iff it added a close instruction.
  520. */
  521. static void createlabel (LexState *ls, TString *name, int line, int last) {
  522. FuncState *fs = ls->fs;
  523. Labellist *ll = &ls->dyd->label;
  524. int l = newlabelentry(ls, ll, name, line, luaK_getlabel(fs));
  525. if (last) { /* label is last no-op statement in the block? */
  526. /* assume that locals are already out of scope */
  527. ll->arr[l].nactvar = fs->bl->nactvar;
  528. }
  529. }
  530. /*
  531. ** Traverse the pending goto's of the finishing block checking whether
  532. ** each match some label of that block. Those that do not match are
  533. ** "exported" to the outer block, to be solved there. In particular,
  534. ** its 'nactvar' is updated with the level of the inner block,
  535. ** as the variables of the inner block are now out of scope.
  536. */
  537. static void solvegotos (FuncState *fs, BlockCnt *bl) {
  538. LexState *ls = fs->ls;
  539. Labellist *gl = &ls->dyd->gt;
  540. int outlevel = reglevel(fs, bl->nactvar); /* level outside the block */
  541. int igt = bl->firstgoto; /* first goto in the finishing block */
  542. while (igt < gl->n) { /* for each pending goto */
  543. Labeldesc *gt = &gl->arr[igt];
  544. /* search for a matching label in the current block */
  545. Labeldesc *lb = findlabel(ls, gt->name, bl->firstlabel);
  546. if (lb != NULL) /* found a match? */
  547. closegoto(ls, igt, lb, bl->upval); /* close and remove goto */
  548. else { /* adjust 'goto' for outer block */
  549. /* block has variables to be closed and goto escapes the scope of
  550. some variable? */
  551. if (bl->upval && reglevel(fs, gt->nactvar) > outlevel)
  552. gt->close = 1; /* jump may need a close */
  553. gt->nactvar = bl->nactvar; /* correct level for outer block */
  554. igt++; /* go to next goto */
  555. }
  556. }
  557. ls->dyd->label.n = bl->firstlabel; /* remove local labels */
  558. }
  559. static void enterblock (FuncState *fs, BlockCnt *bl, lu_byte isloop) {
  560. bl->isloop = isloop;
  561. bl->nactvar = fs->nactvar;
  562. bl->firstlabel = fs->ls->dyd->label.n;
  563. bl->firstgoto = fs->ls->dyd->gt.n;
  564. bl->upval = 0;
  565. bl->insidetbc = (fs->bl != NULL && fs->bl->insidetbc);
  566. bl->previous = fs->bl;
  567. fs->bl = bl;
  568. lua_assert(fs->freereg == luaY_nvarstack(fs));
  569. }
  570. /*
  571. ** generates an error for an undefined 'goto'.
  572. */
  573. static l_noret undefgoto (LexState *ls, Labeldesc *gt) {
  574. const char *msg;
  575. if (eqstr(gt->name, luaS_newliteral(ls->L, "break"))) {
  576. msg = "break outside loop at line %d";
  577. msg = luaO_pushfstring(ls->L, msg, gt->line);
  578. }
  579. else {
  580. msg = "no visible label '%s' for <goto> at line %d";
  581. msg = luaO_pushfstring(ls->L, msg, getstr(gt->name), gt->line);
  582. }
  583. luaK_semerror(ls, msg);
  584. }
  585. static void leaveblock (FuncState *fs) {
  586. BlockCnt *bl = fs->bl;
  587. LexState *ls = fs->ls;
  588. lu_byte stklevel = reglevel(fs, bl->nactvar); /* level outside block */
  589. if (bl->previous && bl->upval) /* need a 'close'? */
  590. luaK_codeABC(fs, OP_CLOSE, stklevel, 0, 0);
  591. fs->freereg = stklevel; /* free registers */
  592. removevars(fs, bl->nactvar); /* remove block locals */
  593. lua_assert(bl->nactvar == fs->nactvar); /* back to level on entry */
  594. if (bl->isloop) /* has to fix pending breaks? */
  595. createlabel(ls, luaS_newliteral(ls->L, "break"), 0, 0);
  596. solvegotos(fs, bl);
  597. if (bl->previous == NULL) { /* was it the last block? */
  598. if (bl->firstgoto < ls->dyd->gt.n) /* still pending gotos? */
  599. undefgoto(ls, &ls->dyd->gt.arr[bl->firstgoto]); /* error */
  600. }
  601. fs->bl = bl->previous; /* current block now is previous one */
  602. }
  603. /*
  604. ** adds a new prototype into list of prototypes
  605. */
  606. static Proto *addprototype (LexState *ls) {
  607. Proto *clp;
  608. lua_State *L = ls->L;
  609. FuncState *fs = ls->fs;
  610. Proto *f = fs->f; /* prototype of current function */
  611. if (fs->np >= f->sizep) {
  612. int oldsize = f->sizep;
  613. luaM_growvector(L, f->p, fs->np, f->sizep, Proto *, MAXARG_Bx, "functions");
  614. while (oldsize < f->sizep)
  615. f->p[oldsize++] = NULL;
  616. }
  617. f->p[fs->np++] = clp = luaF_newproto(L);
  618. luaC_objbarrier(L, f, clp);
  619. return clp;
  620. }
  621. /*
  622. ** codes instruction to create new closure in parent function.
  623. ** The OP_CLOSURE instruction uses the last available register,
  624. ** so that, if it invokes the GC, the GC knows which registers
  625. ** are in use at that time.
  626. */
  627. static void codeclosure (LexState *ls, expdesc *v) {
  628. FuncState *fs = ls->fs->prev;
  629. init_exp(v, VRELOC, luaK_codeABx(fs, OP_CLOSURE, 0, fs->np - 1));
  630. luaK_exp2nextreg(fs, v); /* fix it at the last register */
  631. }
  632. static void open_func (LexState *ls, FuncState *fs, BlockCnt *bl) {
  633. lua_State *L = ls->L;
  634. Proto *f = fs->f;
  635. fs->prev = ls->fs; /* linked list of funcstates */
  636. fs->ls = ls;
  637. ls->fs = fs;
  638. fs->pc = 0;
  639. fs->previousline = f->linedefined;
  640. fs->iwthabs = 0;
  641. fs->lasttarget = 0;
  642. fs->freereg = 0;
  643. fs->nk = 0;
  644. fs->nabslineinfo = 0;
  645. fs->np = 0;
  646. fs->nups = 0;
  647. fs->ndebugvars = 0;
  648. fs->nactvar = 0;
  649. fs->needclose = 0;
  650. fs->firstlocal = ls->dyd->actvar.n;
  651. fs->firstlabel = ls->dyd->label.n;
  652. fs->bl = NULL;
  653. f->source = ls->source;
  654. luaC_objbarrier(L, f, f->source);
  655. f->maxstacksize = 2; /* registers 0/1 are always valid */
  656. fs->kcache = luaH_new(L); /* create table for function */
  657. sethvalue2s(L, L->top.p, fs->kcache); /* anchor it */
  658. luaD_inctop(L);
  659. enterblock(fs, bl, 0);
  660. }
  661. static void close_func (LexState *ls) {
  662. lua_State *L = ls->L;
  663. FuncState *fs = ls->fs;
  664. Proto *f = fs->f;
  665. luaK_ret(fs, luaY_nvarstack(fs), 0); /* final return */
  666. leaveblock(fs);
  667. lua_assert(fs->bl == NULL);
  668. luaK_finish(fs);
  669. luaM_shrinkvector(L, f->code, f->sizecode, fs->pc, Instruction);
  670. luaM_shrinkvector(L, f->lineinfo, f->sizelineinfo, fs->pc, ls_byte);
  671. luaM_shrinkvector(L, f->abslineinfo, f->sizeabslineinfo,
  672. fs->nabslineinfo, AbsLineInfo);
  673. luaM_shrinkvector(L, f->k, f->sizek, fs->nk, TValue);
  674. luaM_shrinkvector(L, f->p, f->sizep, fs->np, Proto *);
  675. luaM_shrinkvector(L, f->locvars, f->sizelocvars, fs->ndebugvars, LocVar);
  676. luaM_shrinkvector(L, f->upvalues, f->sizeupvalues, fs->nups, Upvaldesc);
  677. ls->fs = fs->prev;
  678. L->top.p--; /* pop kcache table */
  679. luaC_checkGC(L);
  680. }
  681. /*============================================================*/
  682. /* GRAMMAR RULES */
  683. /*============================================================*/
  684. /*
  685. ** check whether current token is in the follow set of a block.
  686. ** 'until' closes syntactical blocks, but do not close scope,
  687. ** so it is handled in separate.
  688. */
  689. static int block_follow (LexState *ls, int withuntil) {
  690. switch (ls->t.token) {
  691. case TK_ELSE: case TK_ELSEIF:
  692. case TK_END: case TK_EOS:
  693. return 1;
  694. case TK_UNTIL: return withuntil;
  695. default: return 0;
  696. }
  697. }
  698. static void statlist (LexState *ls) {
  699. /* statlist -> { stat [';'] } */
  700. while (!block_follow(ls, 1)) {
  701. if (ls->t.token == TK_RETURN) {
  702. statement(ls);
  703. return; /* 'return' must be last statement */
  704. }
  705. statement(ls);
  706. }
  707. }
  708. static void fieldsel (LexState *ls, expdesc *v) {
  709. /* fieldsel -> ['.' | ':'] NAME */
  710. FuncState *fs = ls->fs;
  711. expdesc key;
  712. luaK_exp2anyregup(fs, v);
  713. luaX_next(ls); /* skip the dot or colon */
  714. codename(ls, &key);
  715. luaK_indexed(fs, v, &key);
  716. }
  717. static void yindex (LexState *ls, expdesc *v) {
  718. /* index -> '[' expr ']' */
  719. luaX_next(ls); /* skip the '[' */
  720. expr(ls, v);
  721. luaK_exp2val(ls->fs, v);
  722. checknext(ls, ']');
  723. }
  724. /*
  725. ** {======================================================================
  726. ** Rules for Constructors
  727. ** =======================================================================
  728. */
  729. typedef struct ConsControl {
  730. expdesc v; /* last list item read */
  731. expdesc *t; /* table descriptor */
  732. int nh; /* total number of 'record' elements */
  733. int na; /* number of array elements already stored */
  734. int tostore; /* number of array elements pending to be stored */
  735. int maxtostore; /* maximum number of pending elements */
  736. } ConsControl;
  737. static void recfield (LexState *ls, ConsControl *cc) {
  738. /* recfield -> (NAME | '['exp']') = exp */
  739. FuncState *fs = ls->fs;
  740. lu_byte reg = ls->fs->freereg;
  741. expdesc tab, key, val;
  742. if (ls->t.token == TK_NAME) {
  743. luaY_checklimit(fs, cc->nh, INT_MAX / 2, "items in a constructor");
  744. codename(ls, &key);
  745. }
  746. else /* ls->t.token == '[' */
  747. yindex(ls, &key);
  748. cc->nh++;
  749. checknext(ls, '=');
  750. tab = *cc->t;
  751. luaK_indexed(fs, &tab, &key);
  752. expr(ls, &val);
  753. luaK_storevar(fs, &tab, &val);
  754. fs->freereg = reg; /* free registers */
  755. }
  756. static void closelistfield (FuncState *fs, ConsControl *cc) {
  757. if (cc->v.k == VVOID) return; /* there is no list item */
  758. luaK_exp2nextreg(fs, &cc->v);
  759. cc->v.k = VVOID;
  760. if (cc->tostore >= cc->maxtostore) {
  761. luaK_setlist(fs, cc->t->u.info, cc->na, cc->tostore); /* flush */
  762. cc->na += cc->tostore;
  763. cc->tostore = 0; /* no more items pending */
  764. }
  765. }
  766. static void lastlistfield (FuncState *fs, ConsControl *cc) {
  767. if (cc->tostore == 0) return;
  768. if (hasmultret(cc->v.k)) {
  769. luaK_setmultret(fs, &cc->v);
  770. luaK_setlist(fs, cc->t->u.info, cc->na, LUA_MULTRET);
  771. cc->na--; /* do not count last expression (unknown number of elements) */
  772. }
  773. else {
  774. if (cc->v.k != VVOID)
  775. luaK_exp2nextreg(fs, &cc->v);
  776. luaK_setlist(fs, cc->t->u.info, cc->na, cc->tostore);
  777. }
  778. cc->na += cc->tostore;
  779. }
  780. static void listfield (LexState *ls, ConsControl *cc) {
  781. /* listfield -> exp */
  782. expr(ls, &cc->v);
  783. cc->tostore++;
  784. }
  785. static void field (LexState *ls, ConsControl *cc) {
  786. /* field -> listfield | recfield */
  787. switch(ls->t.token) {
  788. case TK_NAME: { /* may be 'listfield' or 'recfield' */
  789. if (luaX_lookahead(ls) != '=') /* expression? */
  790. listfield(ls, cc);
  791. else
  792. recfield(ls, cc);
  793. break;
  794. }
  795. case '[': {
  796. recfield(ls, cc);
  797. break;
  798. }
  799. default: {
  800. listfield(ls, cc);
  801. break;
  802. }
  803. }
  804. }
  805. /*
  806. ** Compute a limit for how many registers a constructor can use before
  807. ** emitting a 'SETLIST' instruction, based on how many registers are
  808. ** available.
  809. */
  810. static int maxtostore (FuncState *fs) {
  811. int numfreeregs = MAX_FSTACK - fs->freereg;
  812. if (numfreeregs >= 160) /* "lots" of registers? */
  813. return numfreeregs / 5; /* use up to 1/5 of them */
  814. else if (numfreeregs >= 80) /* still "enough" registers? */
  815. return 10; /* one 'SETLIST' instruction for each 10 values */
  816. else /* save registers for potential more nesting */
  817. return 1;
  818. }
  819. static void constructor (LexState *ls, expdesc *t) {
  820. /* constructor -> '{' [ field { sep field } [sep] ] '}'
  821. sep -> ',' | ';' */
  822. FuncState *fs = ls->fs;
  823. int line = ls->linenumber;
  824. int pc = luaK_codevABCk(fs, OP_NEWTABLE, 0, 0, 0, 0);
  825. ConsControl cc;
  826. luaK_code(fs, 0); /* space for extra arg. */
  827. cc.na = cc.nh = cc.tostore = 0;
  828. cc.t = t;
  829. init_exp(t, VNONRELOC, fs->freereg); /* table will be at stack top */
  830. luaK_reserveregs(fs, 1);
  831. init_exp(&cc.v, VVOID, 0); /* no value (yet) */
  832. checknext(ls, '{');
  833. cc.maxtostore = maxtostore(fs);
  834. do {
  835. lua_assert(cc.v.k == VVOID || cc.tostore > 0);
  836. if (ls->t.token == '}') break;
  837. closelistfield(fs, &cc);
  838. field(ls, &cc);
  839. } while (testnext(ls, ',') || testnext(ls, ';'));
  840. check_match(ls, '}', '{', line);
  841. lastlistfield(fs, &cc);
  842. luaK_settablesize(fs, pc, t->u.info, cc.na, cc.nh);
  843. }
  844. /* }====================================================================== */
  845. static void setvararg (FuncState *fs, int nparams) {
  846. fs->f->flag |= PF_ISVARARG;
  847. luaK_codeABC(fs, OP_VARARGPREP, nparams, 0, 0);
  848. }
  849. static void parlist (LexState *ls) {
  850. /* parlist -> [ {NAME ','} (NAME | '...') ] */
  851. FuncState *fs = ls->fs;
  852. Proto *f = fs->f;
  853. int nparams = 0;
  854. int isvararg = 0;
  855. if (ls->t.token != ')') { /* is 'parlist' not empty? */
  856. do {
  857. switch (ls->t.token) {
  858. case TK_NAME: {
  859. new_localvar(ls, str_checkname(ls));
  860. nparams++;
  861. break;
  862. }
  863. case TK_DOTS: {
  864. luaX_next(ls);
  865. isvararg = 1;
  866. break;
  867. }
  868. default: luaX_syntaxerror(ls, "<name> or '...' expected");
  869. }
  870. } while (!isvararg && testnext(ls, ','));
  871. }
  872. adjustlocalvars(ls, nparams);
  873. f->numparams = cast_byte(fs->nactvar);
  874. if (isvararg)
  875. setvararg(fs, f->numparams); /* declared vararg */
  876. luaK_reserveregs(fs, fs->nactvar); /* reserve registers for parameters */
  877. }
  878. static void body (LexState *ls, expdesc *e, int ismethod, int line) {
  879. /* body -> '(' parlist ')' block END */
  880. FuncState new_fs;
  881. BlockCnt bl;
  882. new_fs.f = addprototype(ls);
  883. new_fs.f->linedefined = line;
  884. open_func(ls, &new_fs, &bl);
  885. checknext(ls, '(');
  886. if (ismethod) {
  887. new_localvarliteral(ls, "self"); /* create 'self' parameter */
  888. adjustlocalvars(ls, 1);
  889. }
  890. parlist(ls);
  891. checknext(ls, ')');
  892. statlist(ls);
  893. new_fs.f->lastlinedefined = ls->linenumber;
  894. check_match(ls, TK_END, TK_FUNCTION, line);
  895. codeclosure(ls, e);
  896. close_func(ls);
  897. }
  898. static int explist (LexState *ls, expdesc *v) {
  899. /* explist -> expr { ',' expr } */
  900. int n = 1; /* at least one expression */
  901. expr(ls, v);
  902. while (testnext(ls, ',')) {
  903. luaK_exp2nextreg(ls->fs, v);
  904. expr(ls, v);
  905. n++;
  906. }
  907. return n;
  908. }
  909. static void funcargs (LexState *ls, expdesc *f) {
  910. FuncState *fs = ls->fs;
  911. expdesc args;
  912. int base, nparams;
  913. int line = ls->linenumber;
  914. switch (ls->t.token) {
  915. case '(': { /* funcargs -> '(' [ explist ] ')' */
  916. luaX_next(ls);
  917. if (ls->t.token == ')') /* arg list is empty? */
  918. args.k = VVOID;
  919. else {
  920. explist(ls, &args);
  921. if (hasmultret(args.k))
  922. luaK_setmultret(fs, &args);
  923. }
  924. check_match(ls, ')', '(', line);
  925. break;
  926. }
  927. case '{': { /* funcargs -> constructor */
  928. constructor(ls, &args);
  929. break;
  930. }
  931. case TK_STRING: { /* funcargs -> STRING */
  932. codestring(&args, ls->t.seminfo.ts);
  933. luaX_next(ls); /* must use 'seminfo' before 'next' */
  934. break;
  935. }
  936. default: {
  937. luaX_syntaxerror(ls, "function arguments expected");
  938. }
  939. }
  940. lua_assert(f->k == VNONRELOC);
  941. base = f->u.info; /* base register for call */
  942. if (hasmultret(args.k))
  943. nparams = LUA_MULTRET; /* open call */
  944. else {
  945. if (args.k != VVOID)
  946. luaK_exp2nextreg(fs, &args); /* close last argument */
  947. nparams = fs->freereg - (base+1);
  948. }
  949. init_exp(f, VCALL, luaK_codeABC(fs, OP_CALL, base, nparams+1, 2));
  950. luaK_fixline(fs, line);
  951. /* call removes function and arguments and leaves one result (unless
  952. changed later) */
  953. fs->freereg = cast_byte(base + 1);
  954. }
  955. /*
  956. ** {======================================================================
  957. ** Expression parsing
  958. ** =======================================================================
  959. */
  960. static void primaryexp (LexState *ls, expdesc *v) {
  961. /* primaryexp -> NAME | '(' expr ')' */
  962. switch (ls->t.token) {
  963. case '(': {
  964. int line = ls->linenumber;
  965. luaX_next(ls);
  966. expr(ls, v);
  967. check_match(ls, ')', '(', line);
  968. luaK_dischargevars(ls->fs, v);
  969. return;
  970. }
  971. case TK_NAME: {
  972. singlevar(ls, v);
  973. return;
  974. }
  975. default: {
  976. luaX_syntaxerror(ls, "unexpected symbol");
  977. }
  978. }
  979. }
  980. static void suffixedexp (LexState *ls, expdesc *v) {
  981. /* suffixedexp ->
  982. primaryexp { '.' NAME | '[' exp ']' | ':' NAME funcargs | funcargs } */
  983. FuncState *fs = ls->fs;
  984. primaryexp(ls, v);
  985. for (;;) {
  986. switch (ls->t.token) {
  987. case '.': { /* fieldsel */
  988. fieldsel(ls, v);
  989. break;
  990. }
  991. case '[': { /* '[' exp ']' */
  992. expdesc key;
  993. luaK_exp2anyregup(fs, v);
  994. yindex(ls, &key);
  995. luaK_indexed(fs, v, &key);
  996. break;
  997. }
  998. case ':': { /* ':' NAME funcargs */
  999. expdesc key;
  1000. luaX_next(ls);
  1001. codename(ls, &key);
  1002. luaK_self(fs, v, &key);
  1003. funcargs(ls, v);
  1004. break;
  1005. }
  1006. case '(': case TK_STRING: case '{': { /* funcargs */
  1007. luaK_exp2nextreg(fs, v);
  1008. funcargs(ls, v);
  1009. break;
  1010. }
  1011. default: return;
  1012. }
  1013. }
  1014. }
  1015. static void simpleexp (LexState *ls, expdesc *v) {
  1016. /* simpleexp -> FLT | INT | STRING | NIL | TRUE | FALSE | ... |
  1017. constructor | FUNCTION body | suffixedexp */
  1018. switch (ls->t.token) {
  1019. case TK_FLT: {
  1020. init_exp(v, VKFLT, 0);
  1021. v->u.nval = ls->t.seminfo.r;
  1022. break;
  1023. }
  1024. case TK_INT: {
  1025. init_exp(v, VKINT, 0);
  1026. v->u.ival = ls->t.seminfo.i;
  1027. break;
  1028. }
  1029. case TK_STRING: {
  1030. codestring(v, ls->t.seminfo.ts);
  1031. break;
  1032. }
  1033. case TK_NIL: {
  1034. init_exp(v, VNIL, 0);
  1035. break;
  1036. }
  1037. case TK_TRUE: {
  1038. init_exp(v, VTRUE, 0);
  1039. break;
  1040. }
  1041. case TK_FALSE: {
  1042. init_exp(v, VFALSE, 0);
  1043. break;
  1044. }
  1045. case TK_DOTS: { /* vararg */
  1046. FuncState *fs = ls->fs;
  1047. check_condition(ls, fs->f->flag & PF_ISVARARG,
  1048. "cannot use '...' outside a vararg function");
  1049. init_exp(v, VVARARG, luaK_codeABC(fs, OP_VARARG, 0, 0, 1));
  1050. break;
  1051. }
  1052. case '{': { /* constructor */
  1053. constructor(ls, v);
  1054. return;
  1055. }
  1056. case TK_FUNCTION: {
  1057. luaX_next(ls);
  1058. body(ls, v, 0, ls->linenumber);
  1059. return;
  1060. }
  1061. default: {
  1062. suffixedexp(ls, v);
  1063. return;
  1064. }
  1065. }
  1066. luaX_next(ls);
  1067. }
  1068. static UnOpr getunopr (int op) {
  1069. switch (op) {
  1070. case TK_NOT: return OPR_NOT;
  1071. case '-': return OPR_MINUS;
  1072. case '~': return OPR_BNOT;
  1073. case '#': return OPR_LEN;
  1074. default: return OPR_NOUNOPR;
  1075. }
  1076. }
  1077. static BinOpr getbinopr (int op) {
  1078. switch (op) {
  1079. case '+': return OPR_ADD;
  1080. case '-': return OPR_SUB;
  1081. case '*': return OPR_MUL;
  1082. case '%': return OPR_MOD;
  1083. case '^': return OPR_POW;
  1084. case '/': return OPR_DIV;
  1085. case TK_IDIV: return OPR_IDIV;
  1086. case '&': return OPR_BAND;
  1087. case '|': return OPR_BOR;
  1088. case '~': return OPR_BXOR;
  1089. case TK_SHL: return OPR_SHL;
  1090. case TK_SHR: return OPR_SHR;
  1091. case TK_CONCAT: return OPR_CONCAT;
  1092. case TK_NE: return OPR_NE;
  1093. case TK_EQ: return OPR_EQ;
  1094. case '<': return OPR_LT;
  1095. case TK_LE: return OPR_LE;
  1096. case '>': return OPR_GT;
  1097. case TK_GE: return OPR_GE;
  1098. case TK_AND: return OPR_AND;
  1099. case TK_OR: return OPR_OR;
  1100. default: return OPR_NOBINOPR;
  1101. }
  1102. }
  1103. /*
  1104. ** Priority table for binary operators.
  1105. */
  1106. static const struct {
  1107. lu_byte left; /* left priority for each binary operator */
  1108. lu_byte right; /* right priority */
  1109. } priority[] = { /* ORDER OPR */
  1110. {10, 10}, {10, 10}, /* '+' '-' */
  1111. {11, 11}, {11, 11}, /* '*' '%' */
  1112. {14, 13}, /* '^' (right associative) */
  1113. {11, 11}, {11, 11}, /* '/' '//' */
  1114. {6, 6}, {4, 4}, {5, 5}, /* '&' '|' '~' */
  1115. {7, 7}, {7, 7}, /* '<<' '>>' */
  1116. {9, 8}, /* '..' (right associative) */
  1117. {3, 3}, {3, 3}, {3, 3}, /* ==, <, <= */
  1118. {3, 3}, {3, 3}, {3, 3}, /* ~=, >, >= */
  1119. {2, 2}, {1, 1} /* and, or */
  1120. };
  1121. #define UNARY_PRIORITY 12 /* priority for unary operators */
  1122. /*
  1123. ** subexpr -> (simpleexp | unop subexpr) { binop subexpr }
  1124. ** where 'binop' is any binary operator with a priority higher than 'limit'
  1125. */
  1126. static BinOpr subexpr (LexState *ls, expdesc *v, int limit) {
  1127. BinOpr op;
  1128. UnOpr uop;
  1129. enterlevel(ls);
  1130. uop = getunopr(ls->t.token);
  1131. if (uop != OPR_NOUNOPR) { /* prefix (unary) operator? */
  1132. int line = ls->linenumber;
  1133. luaX_next(ls); /* skip operator */
  1134. subexpr(ls, v, UNARY_PRIORITY);
  1135. luaK_prefix(ls->fs, uop, v, line);
  1136. }
  1137. else simpleexp(ls, v);
  1138. /* expand while operators have priorities higher than 'limit' */
  1139. op = getbinopr(ls->t.token);
  1140. while (op != OPR_NOBINOPR && priority[op].left > limit) {
  1141. expdesc v2;
  1142. BinOpr nextop;
  1143. int line = ls->linenumber;
  1144. luaX_next(ls); /* skip operator */
  1145. luaK_infix(ls->fs, op, v);
  1146. /* read sub-expression with higher priority */
  1147. nextop = subexpr(ls, &v2, priority[op].right);
  1148. luaK_posfix(ls->fs, op, v, &v2, line);
  1149. op = nextop;
  1150. }
  1151. leavelevel(ls);
  1152. return op; /* return first untreated operator */
  1153. }
  1154. static void expr (LexState *ls, expdesc *v) {
  1155. subexpr(ls, v, 0);
  1156. }
  1157. /* }==================================================================== */
  1158. /*
  1159. ** {======================================================================
  1160. ** Rules for Statements
  1161. ** =======================================================================
  1162. */
  1163. static void block (LexState *ls) {
  1164. /* block -> statlist */
  1165. FuncState *fs = ls->fs;
  1166. BlockCnt bl;
  1167. enterblock(fs, &bl, 0);
  1168. statlist(ls);
  1169. leaveblock(fs);
  1170. }
  1171. /*
  1172. ** structure to chain all variables in the left-hand side of an
  1173. ** assignment
  1174. */
  1175. struct LHS_assign {
  1176. struct LHS_assign *prev;
  1177. expdesc v; /* variable (global, local, upvalue, or indexed) */
  1178. };
  1179. /*
  1180. ** check whether, in an assignment to an upvalue/local variable, the
  1181. ** upvalue/local variable is begin used in a previous assignment to a
  1182. ** table. If so, save original upvalue/local value in a safe place and
  1183. ** use this safe copy in the previous assignment.
  1184. */
  1185. static void check_conflict (LexState *ls, struct LHS_assign *lh, expdesc *v) {
  1186. FuncState *fs = ls->fs;
  1187. lu_byte extra = fs->freereg; /* eventual position to save local variable */
  1188. int conflict = 0;
  1189. for (; lh; lh = lh->prev) { /* check all previous assignments */
  1190. if (vkisindexed(lh->v.k)) { /* assignment to table field? */
  1191. if (lh->v.k == VINDEXUP) { /* is table an upvalue? */
  1192. if (v->k == VUPVAL && lh->v.u.ind.t == v->u.info) {
  1193. conflict = 1; /* table is the upvalue being assigned now */
  1194. lh->v.k = VINDEXSTR;
  1195. lh->v.u.ind.t = extra; /* assignment will use safe copy */
  1196. }
  1197. }
  1198. else { /* table is a register */
  1199. if (v->k == VLOCAL && lh->v.u.ind.t == v->u.var.ridx) {
  1200. conflict = 1; /* table is the local being assigned now */
  1201. lh->v.u.ind.t = extra; /* assignment will use safe copy */
  1202. }
  1203. /* is index the local being assigned? */
  1204. if (lh->v.k == VINDEXED && v->k == VLOCAL &&
  1205. lh->v.u.ind.idx == v->u.var.ridx) {
  1206. conflict = 1;
  1207. lh->v.u.ind.idx = extra; /* previous assignment will use safe copy */
  1208. }
  1209. }
  1210. }
  1211. }
  1212. if (conflict) {
  1213. /* copy upvalue/local value to a temporary (in position 'extra') */
  1214. if (v->k == VLOCAL)
  1215. luaK_codeABC(fs, OP_MOVE, extra, v->u.var.ridx, 0);
  1216. else
  1217. luaK_codeABC(fs, OP_GETUPVAL, extra, v->u.info, 0);
  1218. luaK_reserveregs(fs, 1);
  1219. }
  1220. }
  1221. /*
  1222. ** Parse and compile a multiple assignment. The first "variable"
  1223. ** (a 'suffixedexp') was already read by the caller.
  1224. **
  1225. ** assignment -> suffixedexp restassign
  1226. ** restassign -> ',' suffixedexp restassign | '=' explist
  1227. */
  1228. static void restassign (LexState *ls, struct LHS_assign *lh, int nvars) {
  1229. expdesc e;
  1230. check_condition(ls, vkisvar(lh->v.k), "syntax error");
  1231. check_readonly(ls, &lh->v);
  1232. if (testnext(ls, ',')) { /* restassign -> ',' suffixedexp restassign */
  1233. struct LHS_assign nv;
  1234. nv.prev = lh;
  1235. suffixedexp(ls, &nv.v);
  1236. if (!vkisindexed(nv.v.k))
  1237. check_conflict(ls, lh, &nv.v);
  1238. enterlevel(ls); /* control recursion depth */
  1239. restassign(ls, &nv, nvars+1);
  1240. leavelevel(ls);
  1241. }
  1242. else { /* restassign -> '=' explist */
  1243. int nexps;
  1244. checknext(ls, '=');
  1245. nexps = explist(ls, &e);
  1246. if (nexps != nvars)
  1247. adjust_assign(ls, nvars, nexps, &e);
  1248. else {
  1249. luaK_setoneret(ls->fs, &e); /* close last expression */
  1250. luaK_storevar(ls->fs, &lh->v, &e);
  1251. return; /* avoid default */
  1252. }
  1253. }
  1254. init_exp(&e, VNONRELOC, ls->fs->freereg-1); /* default assignment */
  1255. luaK_storevar(ls->fs, &lh->v, &e);
  1256. }
  1257. static int cond (LexState *ls) {
  1258. /* cond -> exp */
  1259. expdesc v;
  1260. expr(ls, &v); /* read condition */
  1261. if (v.k == VNIL) v.k = VFALSE; /* 'falses' are all equal here */
  1262. luaK_goiftrue(ls->fs, &v);
  1263. return v.f;
  1264. }
  1265. static void gotostat (LexState *ls, int line) {
  1266. TString *name = str_checkname(ls); /* label's name */
  1267. newgotoentry(ls, name, line);
  1268. }
  1269. /*
  1270. ** Break statement. Semantically equivalent to "goto break".
  1271. */
  1272. static void breakstat (LexState *ls, int line) {
  1273. luaX_next(ls); /* skip break */
  1274. newgotoentry(ls, luaS_newliteral(ls->L, "break"), line);
  1275. }
  1276. /*
  1277. ** Check whether there is already a label with the given 'name' at
  1278. ** current function.
  1279. */
  1280. static void checkrepeated (LexState *ls, TString *name) {
  1281. Labeldesc *lb = findlabel(ls, name, ls->fs->firstlabel);
  1282. if (l_unlikely(lb != NULL)) { /* already defined? */
  1283. const char *msg = "label '%s' already defined on line %d";
  1284. msg = luaO_pushfstring(ls->L, msg, getstr(name), lb->line);
  1285. luaK_semerror(ls, msg); /* error */
  1286. }
  1287. }
  1288. static void labelstat (LexState *ls, TString *name, int line) {
  1289. /* label -> '::' NAME '::' */
  1290. checknext(ls, TK_DBCOLON); /* skip double colon */
  1291. while (ls->t.token == ';' || ls->t.token == TK_DBCOLON)
  1292. statement(ls); /* skip other no-op statements */
  1293. checkrepeated(ls, name); /* check for repeated labels */
  1294. createlabel(ls, name, line, block_follow(ls, 0));
  1295. }
  1296. static void whilestat (LexState *ls, int line) {
  1297. /* whilestat -> WHILE cond DO block END */
  1298. FuncState *fs = ls->fs;
  1299. int whileinit;
  1300. int condexit;
  1301. BlockCnt bl;
  1302. luaX_next(ls); /* skip WHILE */
  1303. whileinit = luaK_getlabel(fs);
  1304. condexit = cond(ls);
  1305. enterblock(fs, &bl, 1);
  1306. checknext(ls, TK_DO);
  1307. block(ls);
  1308. luaK_jumpto(fs, whileinit);
  1309. check_match(ls, TK_END, TK_WHILE, line);
  1310. leaveblock(fs);
  1311. luaK_patchtohere(fs, condexit); /* false conditions finish the loop */
  1312. }
  1313. static void repeatstat (LexState *ls, int line) {
  1314. /* repeatstat -> REPEAT block UNTIL cond */
  1315. int condexit;
  1316. FuncState *fs = ls->fs;
  1317. int repeat_init = luaK_getlabel(fs);
  1318. BlockCnt bl1, bl2;
  1319. enterblock(fs, &bl1, 1); /* loop block */
  1320. enterblock(fs, &bl2, 0); /* scope block */
  1321. luaX_next(ls); /* skip REPEAT */
  1322. statlist(ls);
  1323. check_match(ls, TK_UNTIL, TK_REPEAT, line);
  1324. condexit = cond(ls); /* read condition (inside scope block) */
  1325. leaveblock(fs); /* finish scope */
  1326. if (bl2.upval) { /* upvalues? */
  1327. int exit = luaK_jump(fs); /* normal exit must jump over fix */
  1328. luaK_patchtohere(fs, condexit); /* repetition must close upvalues */
  1329. luaK_codeABC(fs, OP_CLOSE, reglevel(fs, bl2.nactvar), 0, 0);
  1330. condexit = luaK_jump(fs); /* repeat after closing upvalues */
  1331. luaK_patchtohere(fs, exit); /* normal exit comes to here */
  1332. }
  1333. luaK_patchlist(fs, condexit, repeat_init); /* close the loop */
  1334. leaveblock(fs); /* finish loop */
  1335. }
  1336. /*
  1337. ** Read an expression and generate code to put its results in next
  1338. ** stack slot.
  1339. **
  1340. */
  1341. static void exp1 (LexState *ls) {
  1342. expdesc e;
  1343. expr(ls, &e);
  1344. luaK_exp2nextreg(ls->fs, &e);
  1345. lua_assert(e.k == VNONRELOC);
  1346. }
  1347. /*
  1348. ** Fix for instruction at position 'pc' to jump to 'dest'.
  1349. ** (Jump addresses are relative in Lua). 'back' true means
  1350. ** a back jump.
  1351. */
  1352. static void fixforjump (FuncState *fs, int pc, int dest, int back) {
  1353. Instruction *jmp = &fs->f->code[pc];
  1354. int offset = dest - (pc + 1);
  1355. if (back)
  1356. offset = -offset;
  1357. if (l_unlikely(offset > MAXARG_Bx))
  1358. luaX_syntaxerror(fs->ls, "control structure too long");
  1359. SETARG_Bx(*jmp, offset);
  1360. }
  1361. /*
  1362. ** Generate code for a 'for' loop.
  1363. */
  1364. static void forbody (LexState *ls, int base, int line, int nvars, int isgen) {
  1365. /* forbody -> DO block */
  1366. static const OpCode forprep[2] = {OP_FORPREP, OP_TFORPREP};
  1367. static const OpCode forloop[2] = {OP_FORLOOP, OP_TFORLOOP};
  1368. BlockCnt bl;
  1369. FuncState *fs = ls->fs;
  1370. int prep, endfor;
  1371. checknext(ls, TK_DO);
  1372. prep = luaK_codeABx(fs, forprep[isgen], base, 0);
  1373. fs->freereg--; /* both 'forprep' remove one register from the stack */
  1374. enterblock(fs, &bl, 0); /* scope for declared variables */
  1375. adjustlocalvars(ls, nvars);
  1376. luaK_reserveregs(fs, nvars);
  1377. block(ls);
  1378. leaveblock(fs); /* end of scope for declared variables */
  1379. fixforjump(fs, prep, luaK_getlabel(fs), 0);
  1380. if (isgen) { /* generic for? */
  1381. luaK_codeABC(fs, OP_TFORCALL, base, 0, nvars);
  1382. luaK_fixline(fs, line);
  1383. }
  1384. endfor = luaK_codeABx(fs, forloop[isgen], base, 0);
  1385. fixforjump(fs, endfor, prep + 1, 1);
  1386. luaK_fixline(fs, line);
  1387. }
  1388. static void fornum (LexState *ls, TString *varname, int line) {
  1389. /* fornum -> NAME = exp,exp[,exp] forbody */
  1390. FuncState *fs = ls->fs;
  1391. int base = fs->freereg;
  1392. new_localvarliteral(ls, "(for state)");
  1393. new_localvarliteral(ls, "(for state)");
  1394. new_localvarkind(ls, varname, RDKCONST); /* control variable */
  1395. checknext(ls, '=');
  1396. exp1(ls); /* initial value */
  1397. checknext(ls, ',');
  1398. exp1(ls); /* limit */
  1399. if (testnext(ls, ','))
  1400. exp1(ls); /* optional step */
  1401. else { /* default step = 1 */
  1402. luaK_int(fs, fs->freereg, 1);
  1403. luaK_reserveregs(fs, 1);
  1404. }
  1405. adjustlocalvars(ls, 2); /* start scope for internal variables */
  1406. forbody(ls, base, line, 1, 0);
  1407. }
  1408. static void forlist (LexState *ls, TString *indexname) {
  1409. /* forlist -> NAME {,NAME} IN explist forbody */
  1410. FuncState *fs = ls->fs;
  1411. expdesc e;
  1412. int nvars = 4; /* function, state, closing, control */
  1413. int line;
  1414. int base = fs->freereg;
  1415. /* create internal variables */
  1416. new_localvarliteral(ls, "(for state)"); /* iterator function */
  1417. new_localvarliteral(ls, "(for state)"); /* state */
  1418. new_localvarliteral(ls, "(for state)"); /* closing var. (after swap) */
  1419. new_localvarkind(ls, indexname, RDKCONST); /* control variable */
  1420. /* other declared variables */
  1421. while (testnext(ls, ',')) {
  1422. new_localvar(ls, str_checkname(ls));
  1423. nvars++;
  1424. }
  1425. checknext(ls, TK_IN);
  1426. line = ls->linenumber;
  1427. adjust_assign(ls, 4, explist(ls, &e), &e);
  1428. adjustlocalvars(ls, 3); /* start scope for internal variables */
  1429. marktobeclosed(fs); /* last internal var. must be closed */
  1430. luaK_checkstack(fs, 2); /* extra space to call iterator */
  1431. forbody(ls, base, line, nvars - 3, 1);
  1432. }
  1433. static void forstat (LexState *ls, int line) {
  1434. /* forstat -> FOR (fornum | forlist) END */
  1435. FuncState *fs = ls->fs;
  1436. TString *varname;
  1437. BlockCnt bl;
  1438. enterblock(fs, &bl, 1); /* scope for loop and control variables */
  1439. luaX_next(ls); /* skip 'for' */
  1440. varname = str_checkname(ls); /* first variable name */
  1441. switch (ls->t.token) {
  1442. case '=': fornum(ls, varname, line); break;
  1443. case ',': case TK_IN: forlist(ls, varname); break;
  1444. default: luaX_syntaxerror(ls, "'=' or 'in' expected");
  1445. }
  1446. check_match(ls, TK_END, TK_FOR, line);
  1447. leaveblock(fs); /* loop scope ('break' jumps to this point) */
  1448. }
  1449. static void test_then_block (LexState *ls, int *escapelist) {
  1450. /* test_then_block -> [IF | ELSEIF] cond THEN block */
  1451. FuncState *fs = ls->fs;
  1452. int condtrue;
  1453. luaX_next(ls); /* skip IF or ELSEIF */
  1454. condtrue = cond(ls); /* read condition */
  1455. checknext(ls, TK_THEN);
  1456. block(ls); /* 'then' part */
  1457. if (ls->t.token == TK_ELSE ||
  1458. ls->t.token == TK_ELSEIF) /* followed by 'else'/'elseif'? */
  1459. luaK_concat(fs, escapelist, luaK_jump(fs)); /* must jump over it */
  1460. luaK_patchtohere(fs, condtrue);
  1461. }
  1462. static void ifstat (LexState *ls, int line) {
  1463. /* ifstat -> IF cond THEN block {ELSEIF cond THEN block} [ELSE block] END */
  1464. FuncState *fs = ls->fs;
  1465. int escapelist = NO_JUMP; /* exit list for finished parts */
  1466. test_then_block(ls, &escapelist); /* IF cond THEN block */
  1467. while (ls->t.token == TK_ELSEIF)
  1468. test_then_block(ls, &escapelist); /* ELSEIF cond THEN block */
  1469. if (testnext(ls, TK_ELSE))
  1470. block(ls); /* 'else' part */
  1471. check_match(ls, TK_END, TK_IF, line);
  1472. luaK_patchtohere(fs, escapelist); /* patch escape list to 'if' end */
  1473. }
  1474. static void localfunc (LexState *ls) {
  1475. expdesc b;
  1476. FuncState *fs = ls->fs;
  1477. int fvar = fs->nactvar; /* function's variable index */
  1478. new_localvar(ls, str_checkname(ls)); /* new local variable */
  1479. adjustlocalvars(ls, 1); /* enter its scope */
  1480. body(ls, &b, 0, ls->linenumber); /* function created in next register */
  1481. /* debug information will only see the variable after this point! */
  1482. localdebuginfo(fs, fvar)->startpc = fs->pc;
  1483. }
  1484. static lu_byte getlocalattribute (LexState *ls) {
  1485. /* ATTRIB -> ['<' Name '>'] */
  1486. if (testnext(ls, '<')) {
  1487. TString *ts = str_checkname(ls);
  1488. const char *attr = getstr(ts);
  1489. checknext(ls, '>');
  1490. if (strcmp(attr, "const") == 0)
  1491. return RDKCONST; /* read-only variable */
  1492. else if (strcmp(attr, "close") == 0)
  1493. return RDKTOCLOSE; /* to-be-closed variable */
  1494. else
  1495. luaK_semerror(ls,
  1496. luaO_pushfstring(ls->L, "unknown attribute '%s'", attr));
  1497. }
  1498. return VDKREG; /* regular variable */
  1499. }
  1500. static void checktoclose (FuncState *fs, int level) {
  1501. if (level != -1) { /* is there a to-be-closed variable? */
  1502. marktobeclosed(fs);
  1503. luaK_codeABC(fs, OP_TBC, reglevel(fs, level), 0, 0);
  1504. }
  1505. }
  1506. static void localstat (LexState *ls) {
  1507. /* stat -> LOCAL NAME ATTRIB { ',' NAME ATTRIB } ['=' explist] */
  1508. FuncState *fs = ls->fs;
  1509. int toclose = -1; /* index of to-be-closed variable (if any) */
  1510. Vardesc *var; /* last variable */
  1511. int vidx; /* index of last variable */
  1512. int nvars = 0;
  1513. int nexps;
  1514. expdesc e;
  1515. do {
  1516. TString *vname = str_checkname(ls);
  1517. lu_byte kind = getlocalattribute(ls);
  1518. vidx = new_localvarkind(ls, vname, kind);
  1519. if (kind == RDKTOCLOSE) { /* to-be-closed? */
  1520. if (toclose != -1) /* one already present? */
  1521. luaK_semerror(ls, "multiple to-be-closed variables in local list");
  1522. toclose = fs->nactvar + nvars;
  1523. }
  1524. nvars++;
  1525. } while (testnext(ls, ','));
  1526. if (testnext(ls, '='))
  1527. nexps = explist(ls, &e);
  1528. else {
  1529. e.k = VVOID;
  1530. nexps = 0;
  1531. }
  1532. var = getlocalvardesc(fs, vidx); /* get last variable */
  1533. if (nvars == nexps && /* no adjustments? */
  1534. var->vd.kind == RDKCONST && /* last variable is const? */
  1535. luaK_exp2const(fs, &e, &var->k)) { /* compile-time constant? */
  1536. var->vd.kind = RDKCTC; /* variable is a compile-time constant */
  1537. adjustlocalvars(ls, nvars - 1); /* exclude last variable */
  1538. fs->nactvar++; /* but count it */
  1539. }
  1540. else {
  1541. adjust_assign(ls, nvars, nexps, &e);
  1542. adjustlocalvars(ls, nvars);
  1543. }
  1544. checktoclose(fs, toclose);
  1545. }
  1546. static int funcname (LexState *ls, expdesc *v) {
  1547. /* funcname -> NAME {fieldsel} [':' NAME] */
  1548. int ismethod = 0;
  1549. singlevar(ls, v);
  1550. while (ls->t.token == '.')
  1551. fieldsel(ls, v);
  1552. if (ls->t.token == ':') {
  1553. ismethod = 1;
  1554. fieldsel(ls, v);
  1555. }
  1556. return ismethod;
  1557. }
  1558. static void funcstat (LexState *ls, int line) {
  1559. /* funcstat -> FUNCTION funcname body */
  1560. int ismethod;
  1561. expdesc v, b;
  1562. luaX_next(ls); /* skip FUNCTION */
  1563. ismethod = funcname(ls, &v);
  1564. body(ls, &b, ismethod, line);
  1565. check_readonly(ls, &v);
  1566. luaK_storevar(ls->fs, &v, &b);
  1567. luaK_fixline(ls->fs, line); /* definition "happens" in the first line */
  1568. }
  1569. static void exprstat (LexState *ls) {
  1570. /* stat -> func | assignment */
  1571. FuncState *fs = ls->fs;
  1572. struct LHS_assign v;
  1573. suffixedexp(ls, &v.v);
  1574. if (ls->t.token == '=' || ls->t.token == ',') { /* stat -> assignment ? */
  1575. v.prev = NULL;
  1576. restassign(ls, &v, 1);
  1577. }
  1578. else { /* stat -> func */
  1579. Instruction *inst;
  1580. check_condition(ls, v.v.k == VCALL, "syntax error");
  1581. inst = &getinstruction(fs, &v.v);
  1582. SETARG_C(*inst, 1); /* call statement uses no results */
  1583. }
  1584. }
  1585. static void retstat (LexState *ls) {
  1586. /* stat -> RETURN [explist] [';'] */
  1587. FuncState *fs = ls->fs;
  1588. expdesc e;
  1589. int nret; /* number of values being returned */
  1590. int first = luaY_nvarstack(fs); /* first slot to be returned */
  1591. if (block_follow(ls, 1) || ls->t.token == ';')
  1592. nret = 0; /* return no values */
  1593. else {
  1594. nret = explist(ls, &e); /* optional return values */
  1595. if (hasmultret(e.k)) {
  1596. luaK_setmultret(fs, &e);
  1597. if (e.k == VCALL && nret == 1 && !fs->bl->insidetbc) { /* tail call? */
  1598. SET_OPCODE(getinstruction(fs,&e), OP_TAILCALL);
  1599. lua_assert(GETARG_A(getinstruction(fs,&e)) == luaY_nvarstack(fs));
  1600. }
  1601. nret = LUA_MULTRET; /* return all values */
  1602. }
  1603. else {
  1604. if (nret == 1) /* only one single value? */
  1605. first = luaK_exp2anyreg(fs, &e); /* can use original slot */
  1606. else { /* values must go to the top of the stack */
  1607. luaK_exp2nextreg(fs, &e);
  1608. lua_assert(nret == fs->freereg - first);
  1609. }
  1610. }
  1611. }
  1612. luaK_ret(fs, first, nret);
  1613. testnext(ls, ';'); /* skip optional semicolon */
  1614. }
  1615. static void statement (LexState *ls) {
  1616. int line = ls->linenumber; /* may be needed for error messages */
  1617. enterlevel(ls);
  1618. switch (ls->t.token) {
  1619. case ';': { /* stat -> ';' (empty statement) */
  1620. luaX_next(ls); /* skip ';' */
  1621. break;
  1622. }
  1623. case TK_IF: { /* stat -> ifstat */
  1624. ifstat(ls, line);
  1625. break;
  1626. }
  1627. case TK_WHILE: { /* stat -> whilestat */
  1628. whilestat(ls, line);
  1629. break;
  1630. }
  1631. case TK_DO: { /* stat -> DO block END */
  1632. luaX_next(ls); /* skip DO */
  1633. block(ls);
  1634. check_match(ls, TK_END, TK_DO, line);
  1635. break;
  1636. }
  1637. case TK_FOR: { /* stat -> forstat */
  1638. forstat(ls, line);
  1639. break;
  1640. }
  1641. case TK_REPEAT: { /* stat -> repeatstat */
  1642. repeatstat(ls, line);
  1643. break;
  1644. }
  1645. case TK_FUNCTION: { /* stat -> funcstat */
  1646. funcstat(ls, line);
  1647. break;
  1648. }
  1649. case TK_LOCAL: { /* stat -> localstat */
  1650. luaX_next(ls); /* skip LOCAL */
  1651. if (testnext(ls, TK_FUNCTION)) /* local function? */
  1652. localfunc(ls);
  1653. else
  1654. localstat(ls);
  1655. break;
  1656. }
  1657. case TK_DBCOLON: { /* stat -> label */
  1658. luaX_next(ls); /* skip double colon */
  1659. labelstat(ls, str_checkname(ls), line);
  1660. break;
  1661. }
  1662. case TK_RETURN: { /* stat -> retstat */
  1663. luaX_next(ls); /* skip RETURN */
  1664. retstat(ls);
  1665. break;
  1666. }
  1667. case TK_BREAK: { /* stat -> breakstat */
  1668. breakstat(ls, line);
  1669. break;
  1670. }
  1671. case TK_GOTO: { /* stat -> 'goto' NAME */
  1672. luaX_next(ls); /* skip 'goto' */
  1673. gotostat(ls, line);
  1674. break;
  1675. }
  1676. default: { /* stat -> func | assignment */
  1677. exprstat(ls);
  1678. break;
  1679. }
  1680. }
  1681. lua_assert(ls->fs->f->maxstacksize >= ls->fs->freereg &&
  1682. ls->fs->freereg >= luaY_nvarstack(ls->fs));
  1683. ls->fs->freereg = luaY_nvarstack(ls->fs); /* free registers */
  1684. leavelevel(ls);
  1685. }
  1686. /* }====================================================================== */
  1687. /*
  1688. ** compiles the main function, which is a regular vararg function with an
  1689. ** upvalue named LUA_ENV
  1690. */
  1691. static void mainfunc (LexState *ls, FuncState *fs) {
  1692. BlockCnt bl;
  1693. Upvaldesc *env;
  1694. open_func(ls, fs, &bl);
  1695. setvararg(fs, 0); /* main function is always declared vararg */
  1696. env = allocupvalue(fs); /* ...set environment upvalue */
  1697. env->instack = 1;
  1698. env->idx = 0;
  1699. env->kind = VDKREG;
  1700. env->name = ls->envn;
  1701. luaC_objbarrier(ls->L, fs->f, env->name);
  1702. luaX_next(ls); /* read first token */
  1703. statlist(ls); /* parse main body */
  1704. check(ls, TK_EOS);
  1705. close_func(ls);
  1706. }
  1707. LClosure *luaY_parser (lua_State *L, ZIO *z, Mbuffer *buff,
  1708. Dyndata *dyd, const char *name, int firstchar) {
  1709. LexState lexstate;
  1710. FuncState funcstate;
  1711. LClosure *cl = luaF_newLclosure(L, 1); /* create main closure */
  1712. setclLvalue2s(L, L->top.p, cl); /* anchor it (to avoid being collected) */
  1713. luaD_inctop(L);
  1714. lexstate.h = luaH_new(L); /* create table for scanner */
  1715. sethvalue2s(L, L->top.p, lexstate.h); /* anchor it */
  1716. luaD_inctop(L);
  1717. funcstate.f = cl->p = luaF_newproto(L);
  1718. luaC_objbarrier(L, cl, cl->p);
  1719. funcstate.f->source = luaS_new(L, name); /* create and anchor TString */
  1720. luaC_objbarrier(L, funcstate.f, funcstate.f->source);
  1721. lexstate.buff = buff;
  1722. lexstate.dyd = dyd;
  1723. dyd->actvar.n = dyd->gt.n = dyd->label.n = 0;
  1724. luaX_setinput(L, &lexstate, z, funcstate.f->source, firstchar);
  1725. mainfunc(&lexstate, &funcstate);
  1726. lua_assert(!funcstate.prev && funcstate.nups == 1 && !lexstate.fs);
  1727. /* all scopes should be correctly finished */
  1728. lua_assert(dyd->actvar.n == 0 && dyd->gt.n == 0 && dyd->label.n == 0);
  1729. L->top.p--; /* remove scanner's table */
  1730. return cl; /* closure is on the stack, too */
  1731. }