lundump.c 10 KB

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  1. /*
  2. ** $Id: lundump.c $
  3. ** load precompiled Lua chunks
  4. ** See Copyright Notice in lua.h
  5. */
  6. #define lundump_c
  7. #define LUA_CORE
  8. #include "lprefix.h"
  9. #include <limits.h>
  10. #include <string.h>
  11. #include "lua.h"
  12. #include "ldebug.h"
  13. #include "ldo.h"
  14. #include "lfunc.h"
  15. #include "lmem.h"
  16. #include "lobject.h"
  17. #include "lstring.h"
  18. #include "ltable.h"
  19. #include "lundump.h"
  20. #include "lzio.h"
  21. #if !defined(luai_verifycode)
  22. #define luai_verifycode(L,f) /* empty */
  23. #endif
  24. typedef struct {
  25. lua_State *L;
  26. ZIO *Z;
  27. const char *name;
  28. Table *h; /* list for string reuse */
  29. size_t offset; /* current position relative to beginning of dump */
  30. lua_Integer nstr; /* number of strings in the list */
  31. lu_byte fixed; /* dump is fixed in memory */
  32. } LoadState;
  33. static l_noret error (LoadState *S, const char *why) {
  34. luaO_pushfstring(S->L, "%s: bad binary format (%s)", S->name, why);
  35. luaD_throw(S->L, LUA_ERRSYNTAX);
  36. }
  37. /*
  38. ** All high-level loads go through loadVector; you can change it to
  39. ** adapt to the endianness of the input
  40. */
  41. #define loadVector(S,b,n) loadBlock(S,b,(n)*sizeof((b)[0]))
  42. static void loadBlock (LoadState *S, void *b, size_t size) {
  43. if (luaZ_read(S->Z, b, size) != 0)
  44. error(S, "truncated chunk");
  45. S->offset += size;
  46. }
  47. static void loadAlign (LoadState *S, unsigned align) {
  48. unsigned padding = align - cast_uint(S->offset % align);
  49. if (padding < align) { /* apd == align means no padding */
  50. lua_Integer paddingContent;
  51. loadBlock(S, &paddingContent, padding);
  52. lua_assert(S->offset % align == 0);
  53. }
  54. }
  55. #define getaddr(S,n,t) cast(t *, getaddr_(S,(n) * sizeof(t)))
  56. static const void *getaddr_ (LoadState *S, size_t size) {
  57. const void *block = luaZ_getaddr(S->Z, size);
  58. S->offset += size;
  59. if (block == NULL)
  60. error(S, "truncated fixed buffer");
  61. return block;
  62. }
  63. #define loadVar(S,x) loadVector(S,&x,1)
  64. static lu_byte loadByte (LoadState *S) {
  65. int b = zgetc(S->Z);
  66. if (b == EOZ)
  67. error(S, "truncated chunk");
  68. S->offset++;
  69. return cast_byte(b);
  70. }
  71. static size_t loadVarint (LoadState *S, size_t limit) {
  72. size_t x = 0;
  73. int b;
  74. limit >>= 7;
  75. do {
  76. b = loadByte(S);
  77. if (x > limit)
  78. error(S, "integer overflow");
  79. x = (x << 7) | (b & 0x7f);
  80. } while ((b & 0x80) != 0);
  81. return x;
  82. }
  83. static size_t loadSize (LoadState *S) {
  84. return loadVarint(S, MAX_SIZE);
  85. }
  86. /*
  87. ** Read an non-negative int */
  88. static unsigned loadUint (LoadState *S) {
  89. return cast_uint(loadVarint(S, cast_sizet(INT_MAX)));
  90. }
  91. static int loadInt (LoadState *S) {
  92. return cast_int(loadVarint(S, cast_sizet(INT_MAX)));
  93. }
  94. static lua_Number loadNumber (LoadState *S) {
  95. lua_Number x;
  96. loadVar(S, x);
  97. return x;
  98. }
  99. static lua_Integer loadInteger (LoadState *S) {
  100. lua_Integer x;
  101. loadVar(S, x);
  102. return x;
  103. }
  104. /*
  105. ** Load a nullable string into slot 'sl' from prototype 'p'. The
  106. ** assignment to the slot and the barrier must be performed before any
  107. ** possible GC activity, to anchor the string. (Both 'loadVector' and
  108. ** 'luaH_setint' can call the GC.)
  109. */
  110. static void loadString (LoadState *S, Proto *p, TString **sl) {
  111. lua_State *L = S->L;
  112. TString *ts;
  113. TValue sv;
  114. size_t size = loadSize(S);
  115. if (size == 0) { /* no string? */
  116. lua_assert(*sl == NULL); /* must be prefilled */
  117. return;
  118. }
  119. else if (size == 1) { /* previously saved string? */
  120. lua_Integer idx = cast(lua_Integer, loadSize(S)); /* get its index */
  121. TValue stv;
  122. luaH_getint(S->h, idx, &stv); /* get its value */
  123. *sl = ts = tsvalue(&stv);
  124. luaC_objbarrier(L, p, ts);
  125. return; /* do not save it again */
  126. }
  127. else if ((size -= 2) <= LUAI_MAXSHORTLEN) { /* short string? */
  128. char buff[LUAI_MAXSHORTLEN + 1]; /* extra space for '\0' */
  129. loadVector(S, buff, size + 1); /* load string into buffer */
  130. *sl = ts = luaS_newlstr(L, buff, size); /* create string */
  131. luaC_objbarrier(L, p, ts);
  132. }
  133. else if (S->fixed) { /* for a fixed buffer, use a fixed string */
  134. const char *s = getaddr(S, size + 1, char); /* get content address */
  135. *sl = ts = luaS_newextlstr(L, s, size, NULL, NULL);
  136. luaC_objbarrier(L, p, ts);
  137. }
  138. else { /* create internal copy */
  139. *sl = ts = luaS_createlngstrobj(L, size); /* create string */
  140. luaC_objbarrier(L, p, ts);
  141. loadVector(S, getlngstr(ts), size + 1); /* load directly in final place */
  142. }
  143. /* add string to list of saved strings */
  144. S->nstr++;
  145. setsvalue(L, &sv, ts);
  146. luaH_setint(L, S->h, S->nstr, &sv);
  147. luaC_objbarrierback(L, obj2gco(S->h), ts);
  148. }
  149. static void loadCode (LoadState *S, Proto *f) {
  150. unsigned n = loadUint(S);
  151. loadAlign(S, sizeof(f->code[0]));
  152. if (S->fixed) {
  153. f->code = getaddr(S, n, Instruction);
  154. f->sizecode = cast_int(n);
  155. }
  156. else {
  157. f->code = luaM_newvectorchecked(S->L, n, Instruction);
  158. f->sizecode = cast_int(n);
  159. loadVector(S, f->code, n);
  160. }
  161. }
  162. static void loadFunction(LoadState *S, Proto *f);
  163. static void loadConstants (LoadState *S, Proto *f) {
  164. unsigned i;
  165. unsigned n = loadUint(S);
  166. f->k = luaM_newvectorchecked(S->L, n, TValue);
  167. f->sizek = cast_int(n);
  168. for (i = 0; i < n; i++)
  169. setnilvalue(&f->k[i]);
  170. for (i = 0; i < n; i++) {
  171. TValue *o = &f->k[i];
  172. int t = loadByte(S);
  173. switch (t) {
  174. case LUA_VNIL:
  175. setnilvalue(o);
  176. break;
  177. case LUA_VFALSE:
  178. setbfvalue(o);
  179. break;
  180. case LUA_VTRUE:
  181. setbtvalue(o);
  182. break;
  183. case LUA_VNUMFLT:
  184. setfltvalue(o, loadNumber(S));
  185. break;
  186. case LUA_VNUMINT:
  187. setivalue(o, loadInteger(S));
  188. break;
  189. case LUA_VSHRSTR:
  190. case LUA_VLNGSTR: {
  191. lua_assert(f->source == NULL);
  192. loadString(S, f, &f->source); /* use 'source' to anchor string */
  193. if (f->source == NULL)
  194. error(S, "bad format for constant string");
  195. setsvalue2n(S->L, o, f->source); /* save it in the right place */
  196. f->source = NULL;
  197. break;
  198. }
  199. default: lua_assert(0);
  200. }
  201. }
  202. }
  203. static void loadProtos (LoadState *S, Proto *f) {
  204. unsigned i;
  205. unsigned n = loadUint(S);
  206. f->p = luaM_newvectorchecked(S->L, n, Proto *);
  207. f->sizep = cast_int(n);
  208. for (i = 0; i < n; i++)
  209. f->p[i] = NULL;
  210. for (i = 0; i < n; i++) {
  211. f->p[i] = luaF_newproto(S->L);
  212. luaC_objbarrier(S->L, f, f->p[i]);
  213. loadFunction(S, f->p[i]);
  214. }
  215. }
  216. /*
  217. ** Load the upvalues for a function. The names must be filled first,
  218. ** because the filling of the other fields can raise read errors and
  219. ** the creation of the error message can call an emergency collection;
  220. ** in that case all prototypes must be consistent for the GC.
  221. */
  222. static void loadUpvalues (LoadState *S, Proto *f) {
  223. unsigned i;
  224. unsigned n = loadUint(S);
  225. f->upvalues = luaM_newvectorchecked(S->L, n, Upvaldesc);
  226. f->sizeupvalues = cast_int(n);
  227. for (i = 0; i < n; i++) /* make array valid for GC */
  228. f->upvalues[i].name = NULL;
  229. for (i = 0; i < n; i++) { /* following calls can raise errors */
  230. f->upvalues[i].instack = loadByte(S);
  231. f->upvalues[i].idx = loadByte(S);
  232. f->upvalues[i].kind = loadByte(S);
  233. }
  234. }
  235. static void loadDebug (LoadState *S, Proto *f) {
  236. unsigned i;
  237. unsigned n = loadUint(S);
  238. if (S->fixed) {
  239. f->lineinfo = getaddr(S, n, ls_byte);
  240. f->sizelineinfo = cast_int(n);
  241. }
  242. else {
  243. f->lineinfo = luaM_newvectorchecked(S->L, n, ls_byte);
  244. f->sizelineinfo = cast_int(n);
  245. loadVector(S, f->lineinfo, n);
  246. }
  247. n = loadUint(S);
  248. if (n > 0) {
  249. loadAlign(S, sizeof(int));
  250. if (S->fixed) {
  251. f->abslineinfo = getaddr(S, n, AbsLineInfo);
  252. f->sizeabslineinfo = cast_int(n);
  253. }
  254. else {
  255. f->abslineinfo = luaM_newvectorchecked(S->L, n, AbsLineInfo);
  256. f->sizeabslineinfo = cast_int(n);
  257. loadVector(S, f->abslineinfo, n);
  258. }
  259. }
  260. n = loadUint(S);
  261. f->locvars = luaM_newvectorchecked(S->L, n, LocVar);
  262. f->sizelocvars = cast_int(n);
  263. for (i = 0; i < n; i++)
  264. f->locvars[i].varname = NULL;
  265. for (i = 0; i < n; i++) {
  266. loadString(S, f, &f->locvars[i].varname);
  267. f->locvars[i].startpc = loadInt(S);
  268. f->locvars[i].endpc = loadInt(S);
  269. }
  270. n = loadUint(S);
  271. if (n != 0) /* does it have debug information? */
  272. n = cast_uint(f->sizeupvalues); /* must be this many */
  273. for (i = 0; i < n; i++)
  274. loadString(S, f, &f->upvalues[i].name);
  275. }
  276. static void loadFunction (LoadState *S, Proto *f) {
  277. f->linedefined = loadInt(S);
  278. f->lastlinedefined = loadInt(S);
  279. f->numparams = loadByte(S);
  280. f->flag = loadByte(S) & PF_ISVARARG; /* get only the meaningful flags */
  281. if (S->fixed)
  282. f->flag |= PF_FIXED; /* signal that code is fixed */
  283. f->maxstacksize = loadByte(S);
  284. loadCode(S, f);
  285. loadConstants(S, f);
  286. loadUpvalues(S, f);
  287. loadProtos(S, f);
  288. loadString(S, f, &f->source);
  289. loadDebug(S, f);
  290. }
  291. static void checkliteral (LoadState *S, const char *s, const char *msg) {
  292. char buff[sizeof(LUA_SIGNATURE) + sizeof(LUAC_DATA)]; /* larger than both */
  293. size_t len = strlen(s);
  294. loadVector(S, buff, len);
  295. if (memcmp(s, buff, len) != 0)
  296. error(S, msg);
  297. }
  298. static void fchecksize (LoadState *S, size_t size, const char *tname) {
  299. if (loadByte(S) != size)
  300. error(S, luaO_pushfstring(S->L, "%s size mismatch", tname));
  301. }
  302. #define checksize(S,t) fchecksize(S,sizeof(t),#t)
  303. static void checkHeader (LoadState *S) {
  304. /* skip 1st char (already read and checked) */
  305. checkliteral(S, &LUA_SIGNATURE[1], "not a binary chunk");
  306. if (loadByte(S) != LUAC_VERSION)
  307. error(S, "version mismatch");
  308. if (loadByte(S) != LUAC_FORMAT)
  309. error(S, "format mismatch");
  310. checkliteral(S, LUAC_DATA, "corrupted chunk");
  311. checksize(S, Instruction);
  312. checksize(S, lua_Integer);
  313. checksize(S, lua_Number);
  314. if (loadInteger(S) != LUAC_INT)
  315. error(S, "integer format mismatch");
  316. if (loadNumber(S) != LUAC_NUM)
  317. error(S, "float format mismatch");
  318. }
  319. /*
  320. ** Load precompiled chunk.
  321. */
  322. LClosure *luaU_undump (lua_State *L, ZIO *Z, const char *name, int fixed) {
  323. LoadState S;
  324. LClosure *cl;
  325. if (*name == '@' || *name == '=')
  326. S.name = name + 1;
  327. else if (*name == LUA_SIGNATURE[0])
  328. S.name = "binary string";
  329. else
  330. S.name = name;
  331. S.L = L;
  332. S.Z = Z;
  333. S.fixed = cast_byte(fixed);
  334. S.offset = 1; /* fist byte was already read */
  335. checkHeader(&S);
  336. cl = luaF_newLclosure(L, loadByte(&S));
  337. setclLvalue2s(L, L->top.p, cl);
  338. luaD_inctop(L);
  339. S.h = luaH_new(L); /* create list of saved strings */
  340. S.nstr = 0;
  341. sethvalue2s(L, L->top.p, S.h); /* anchor it */
  342. luaD_inctop(L);
  343. cl->p = luaF_newproto(L);
  344. luaC_objbarrier(L, cl, cl->p);
  345. loadFunction(&S, cl->p);
  346. lua_assert(cl->nupvalues == cl->p->sizeupvalues);
  347. luai_verifycode(L, cl->p);
  348. L->top.p--; /* pop table */
  349. return cl;
  350. }