/src/zlib-1.2.11/inflate.c
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1 | | /* inflate.c -- zlib decompression |
2 | | * Copyright (C) 1995-2016 Mark Adler |
3 | | * For conditions of distribution and use, see copyright notice in zlib.h |
4 | | */ |
5 | | |
6 | | /* |
7 | | * Change history: |
8 | | * |
9 | | * 1.2.beta0 24 Nov 2002 |
10 | | * - First version -- complete rewrite of inflate to simplify code, avoid |
11 | | * creation of window when not needed, minimize use of window when it is |
12 | | * needed, make inffast.c even faster, implement gzip decoding, and to |
13 | | * improve code readability and style over the previous zlib inflate code |
14 | | * |
15 | | * 1.2.beta1 25 Nov 2002 |
16 | | * - Use pointers for available input and output checking in inffast.c |
17 | | * - Remove input and output counters in inffast.c |
18 | | * - Change inffast.c entry and loop from avail_in >= 7 to >= 6 |
19 | | * - Remove unnecessary second byte pull from length extra in inffast.c |
20 | | * - Unroll direct copy to three copies per loop in inffast.c |
21 | | * |
22 | | * 1.2.beta2 4 Dec 2002 |
23 | | * - Change external routine names to reduce potential conflicts |
24 | | * - Correct filename to inffixed.h for fixed tables in inflate.c |
25 | | * - Make hbuf[] unsigned char to match parameter type in inflate.c |
26 | | * - Change strm->next_out[-state->offset] to *(strm->next_out - state->offset) |
27 | | * to avoid negation problem on Alphas (64 bit) in inflate.c |
28 | | * |
29 | | * 1.2.beta3 22 Dec 2002 |
30 | | * - Add comments on state->bits assertion in inffast.c |
31 | | * - Add comments on op field in inftrees.h |
32 | | * - Fix bug in reuse of allocated window after inflateReset() |
33 | | * - Remove bit fields--back to byte structure for speed |
34 | | * - Remove distance extra == 0 check in inflate_fast()--only helps for lengths |
35 | | * - Change post-increments to pre-increments in inflate_fast(), PPC biased? |
36 | | * - Add compile time option, POSTINC, to use post-increments instead (Intel?) |
37 | | * - Make MATCH copy in inflate() much faster for when inflate_fast() not used |
38 | | * - Use local copies of stream next and avail values, as well as local bit |
39 | | * buffer and bit count in inflate()--for speed when inflate_fast() not used |
40 | | * |
41 | | * 1.2.beta4 1 Jan 2003 |
42 | | * - Split ptr - 257 statements in inflate_table() to avoid compiler warnings |
43 | | * - Move a comment on output buffer sizes from inffast.c to inflate.c |
44 | | * - Add comments in inffast.c to introduce the inflate_fast() routine |
45 | | * - Rearrange window copies in inflate_fast() for speed and simplification |
46 | | * - Unroll last copy for window match in inflate_fast() |
47 | | * - Use local copies of window variables in inflate_fast() for speed |
48 | | * - Pull out common wnext == 0 case for speed in inflate_fast() |
49 | | * - Make op and len in inflate_fast() unsigned for consistency |
50 | | * - Add FAR to lcode and dcode declarations in inflate_fast() |
51 | | * - Simplified bad distance check in inflate_fast() |
52 | | * - Added inflateBackInit(), inflateBack(), and inflateBackEnd() in new |
53 | | * source file infback.c to provide a call-back interface to inflate for |
54 | | * programs like gzip and unzip -- uses window as output buffer to avoid |
55 | | * window copying |
56 | | * |
57 | | * 1.2.beta5 1 Jan 2003 |
58 | | * - Improved inflateBack() interface to allow the caller to provide initial |
59 | | * input in strm. |
60 | | * - Fixed stored blocks bug in inflateBack() |
61 | | * |
62 | | * 1.2.beta6 4 Jan 2003 |
63 | | * - Added comments in inffast.c on effectiveness of POSTINC |
64 | | * - Typecasting all around to reduce compiler warnings |
65 | | * - Changed loops from while (1) or do {} while (1) to for (;;), again to |
66 | | * make compilers happy |
67 | | * - Changed type of window in inflateBackInit() to unsigned char * |
68 | | * |
69 | | * 1.2.beta7 27 Jan 2003 |
70 | | * - Changed many types to unsigned or unsigned short to avoid warnings |
71 | | * - Added inflateCopy() function |
72 | | * |
73 | | * 1.2.0 9 Mar 2003 |
74 | | * - Changed inflateBack() interface to provide separate opaque descriptors |
75 | | * for the in() and out() functions |
76 | | * - Changed inflateBack() argument and in_func typedef to swap the length |
77 | | * and buffer address return values for the input function |
78 | | * - Check next_in and next_out for Z_NULL on entry to inflate() |
79 | | * |
80 | | * The history for versions after 1.2.0 are in ChangeLog in zlib distribution. |
81 | | */ |
82 | | |
83 | | #include "zutil.h" |
84 | | #include "inftrees.h" |
85 | | #include "inflate.h" |
86 | | #include "inffast.h" |
87 | | |
88 | | #ifdef MAKEFIXED |
89 | | # ifndef BUILDFIXED |
90 | | # define BUILDFIXED |
91 | | # endif |
92 | | #endif |
93 | | |
94 | | /* function prototypes */ |
95 | | local int inflateStateCheck OF((z_streamp strm)); |
96 | | local void fixedtables OF((struct inflate_state FAR *state)); |
97 | | local int updatewindow OF((z_streamp strm, const unsigned char FAR *end, |
98 | | unsigned copy)); |
99 | | #ifdef BUILDFIXED |
100 | | void makefixed OF((void)); |
101 | | #endif |
102 | | local unsigned syncsearch OF((unsigned FAR *have, const unsigned char FAR *buf, |
103 | | unsigned len)); |
104 | | |
105 | | local int inflateStateCheck(strm) |
106 | | z_streamp strm; |
107 | 3.28M | { |
108 | 3.28M | struct inflate_state FAR *state; |
109 | 3.28M | if (strm == Z_NULL || |
110 | 3.28M | strm->zalloc == (alloc_func)0 || strm->zfree == (free_func)0) |
111 | 0 | return 1; |
112 | 3.28M | state = (struct inflate_state FAR *)strm->state; |
113 | 3.28M | if (state == Z_NULL || state->strm != strm || |
114 | 3.28M | state->mode < HEAD || state->mode > SYNC) |
115 | 0 | return 1; |
116 | 3.28M | return 0; |
117 | 3.28M | } |
118 | | |
119 | | int ZEXPORT inflateResetKeep(strm) |
120 | | z_streamp strm; |
121 | 436k | { |
122 | 436k | struct inflate_state FAR *state; |
123 | | |
124 | 436k | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
125 | 436k | state = (struct inflate_state FAR *)strm->state; |
126 | 436k | strm->total_in = strm->total_out = state->total = 0; |
127 | 436k | strm->msg = Z_NULL; |
128 | 436k | if (state->wrap) /* to support ill-conceived Java test suite */ |
129 | 124k | strm->adler = state->wrap & 1; |
130 | 436k | state->mode = HEAD; |
131 | 436k | state->last = 0; |
132 | 436k | state->havedict = 0; |
133 | 436k | state->dmax = 32768U; |
134 | 436k | state->head = Z_NULL; |
135 | 436k | state->hold = 0; |
136 | 436k | state->bits = 0; |
137 | 436k | state->lencode = state->distcode = state->next = state->codes; |
138 | 436k | state->sane = 1; |
139 | 436k | state->back = -1; |
140 | 436k | Tracev((stderr, "inflate: reset\n")); |
141 | 436k | return Z_OK; |
142 | 436k | } |
143 | | |
144 | | int ZEXPORT inflateReset(strm) |
145 | | z_streamp strm; |
146 | 436k | { |
147 | 436k | struct inflate_state FAR *state; |
148 | | |
149 | 436k | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
150 | 436k | state = (struct inflate_state FAR *)strm->state; |
151 | 436k | state->wsize = 0; |
152 | 436k | state->whave = 0; |
153 | 436k | state->wnext = 0; |
154 | 436k | return inflateResetKeep(strm); |
155 | 436k | } |
156 | | |
157 | | int ZEXPORT inflateReset2(strm, windowBits) |
158 | | z_streamp strm; |
159 | | int windowBits; |
160 | 436k | { |
161 | 436k | int wrap; |
162 | 436k | struct inflate_state FAR *state; |
163 | | |
164 | | /* get the state */ |
165 | 436k | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
166 | 436k | state = (struct inflate_state FAR *)strm->state; |
167 | | |
168 | | /* extract wrap request from windowBits parameter */ |
169 | 436k | if (windowBits < 0) { |
170 | 311k | wrap = 0; |
171 | 311k | windowBits = -windowBits; |
172 | 311k | } |
173 | 124k | else { |
174 | 124k | wrap = (windowBits >> 4) + 5; |
175 | 124k | #ifdef GUNZIP |
176 | 124k | if (windowBits < 48) |
177 | 124k | windowBits &= 15; |
178 | 124k | #endif |
179 | 124k | } |
180 | | |
181 | | /* set number of window bits, free window if different */ |
182 | 436k | if (windowBits && (windowBits < 8 || windowBits > 15)) |
183 | 0 | return Z_STREAM_ERROR; |
184 | 436k | if (state->window != Z_NULL && state->wbits != (unsigned)windowBits) { |
185 | 0 | ZFREE(strm, state->window); |
186 | 0 | state->window = Z_NULL; |
187 | 0 | } |
188 | | |
189 | | /* update state and reset the rest of it */ |
190 | 436k | state->wrap = wrap; |
191 | 436k | state->wbits = (unsigned)windowBits; |
192 | 436k | return inflateReset(strm); |
193 | 436k | } |
194 | | |
195 | | int ZEXPORT inflateInit2_(strm, windowBits, version, stream_size) |
196 | | z_streamp strm; |
197 | | int windowBits; |
198 | | const char *version; |
199 | | int stream_size; |
200 | 436k | { |
201 | 436k | int ret; |
202 | 436k | struct inflate_state FAR *state; |
203 | | |
204 | 436k | if (version == Z_NULL || version[0] != ZLIB_VERSION[0] || |
205 | 436k | stream_size != (int)(sizeof(z_stream))) |
206 | 0 | return Z_VERSION_ERROR; |
207 | 436k | if (strm == Z_NULL) return Z_STREAM_ERROR; |
208 | 436k | strm->msg = Z_NULL; /* in case we return an error */ |
209 | 436k | if (strm->zalloc == (alloc_func)0) { |
210 | | #ifdef Z_SOLO |
211 | | return Z_STREAM_ERROR; |
212 | | #else |
213 | 436k | strm->zalloc = zcalloc; |
214 | 436k | strm->opaque = (voidpf)0; |
215 | 436k | #endif |
216 | 436k | } |
217 | 436k | if (strm->zfree == (free_func)0) |
218 | | #ifdef Z_SOLO |
219 | | return Z_STREAM_ERROR; |
220 | | #else |
221 | 436k | strm->zfree = zcfree; |
222 | 436k | #endif |
223 | 436k | state = (struct inflate_state FAR *) |
224 | 436k | ZALLOC(strm, 1, sizeof(struct inflate_state)); |
225 | 436k | if (state == Z_NULL) return Z_MEM_ERROR; |
226 | 436k | Tracev((stderr, "inflate: allocated\n")); |
227 | 436k | strm->state = (struct internal_state FAR *)state; |
228 | 436k | state->strm = strm; |
229 | 436k | state->window = Z_NULL; |
230 | 436k | state->mode = HEAD; /* to pass state test in inflateReset2() */ |
231 | 436k | ret = inflateReset2(strm, windowBits); |
232 | 436k | if (ret != Z_OK) { |
233 | 0 | ZFREE(strm, state); |
234 | 0 | strm->state = Z_NULL; |
235 | 0 | } |
236 | 436k | return ret; |
237 | 436k | } |
238 | | |
239 | | int ZEXPORT inflateInit_(strm, version, stream_size) |
240 | | z_streamp strm; |
241 | | const char *version; |
242 | | int stream_size; |
243 | 24.0k | { |
244 | 24.0k | return inflateInit2_(strm, DEF_WBITS, version, stream_size); |
245 | 24.0k | } |
246 | | |
247 | | int ZEXPORT inflatePrime(strm, bits, value) |
248 | | z_streamp strm; |
249 | | int bits; |
250 | | int value; |
251 | 0 | { |
252 | 0 | struct inflate_state FAR *state; |
253 | |
|
254 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
255 | 0 | state = (struct inflate_state FAR *)strm->state; |
256 | 0 | if (bits < 0) { |
257 | 0 | state->hold = 0; |
258 | 0 | state->bits = 0; |
259 | 0 | return Z_OK; |
260 | 0 | } |
261 | 0 | if (bits > 16 || state->bits + (uInt)bits > 32) return Z_STREAM_ERROR; |
262 | 0 | value &= (1L << bits) - 1; |
263 | 0 | state->hold += (unsigned)value << state->bits; |
264 | 0 | state->bits += (uInt)bits; |
265 | 0 | return Z_OK; |
266 | 0 | } |
267 | | |
268 | | /* |
269 | | Return state with length and distance decoding tables and index sizes set to |
270 | | fixed code decoding. Normally this returns fixed tables from inffixed.h. |
271 | | If BUILDFIXED is defined, then instead this routine builds the tables the |
272 | | first time it's called, and returns those tables the first time and |
273 | | thereafter. This reduces the size of the code by about 2K bytes, in |
274 | | exchange for a little execution time. However, BUILDFIXED should not be |
275 | | used for threaded applications, since the rewriting of the tables and virgin |
276 | | may not be thread-safe. |
277 | | */ |
278 | | local void fixedtables(state) |
279 | | struct inflate_state FAR *state; |
280 | 364k | { |
281 | | #ifdef BUILDFIXED |
282 | | static int virgin = 1; |
283 | | static code *lenfix, *distfix; |
284 | | static code fixed[544]; |
285 | | |
286 | | /* build fixed huffman tables if first call (may not be thread safe) */ |
287 | | if (virgin) { |
288 | | unsigned sym, bits; |
289 | | static code *next; |
290 | | |
291 | | /* literal/length table */ |
292 | | sym = 0; |
293 | | while (sym < 144) state->lens[sym++] = 8; |
294 | | while (sym < 256) state->lens[sym++] = 9; |
295 | | while (sym < 280) state->lens[sym++] = 7; |
296 | | while (sym < 288) state->lens[sym++] = 8; |
297 | | next = fixed; |
298 | | lenfix = next; |
299 | | bits = 9; |
300 | | inflate_table(LENS, state->lens, 288, &(next), &(bits), state->work); |
301 | | |
302 | | /* distance table */ |
303 | | sym = 0; |
304 | | while (sym < 32) state->lens[sym++] = 5; |
305 | | distfix = next; |
306 | | bits = 5; |
307 | | inflate_table(DISTS, state->lens, 32, &(next), &(bits), state->work); |
308 | | |
309 | | /* do this just once */ |
310 | | virgin = 0; |
311 | | } |
312 | | #else /* !BUILDFIXED */ |
313 | 364k | # include "inffixed.h" |
314 | 364k | #endif /* BUILDFIXED */ |
315 | 364k | state->lencode = lenfix; |
316 | 364k | state->lenbits = 9; |
317 | 364k | state->distcode = distfix; |
318 | 364k | state->distbits = 5; |
319 | 364k | } |
320 | | |
321 | | #ifdef MAKEFIXED |
322 | | #include <stdio.h> |
323 | | |
324 | | /* |
325 | | Write out the inffixed.h that is #include'd above. Defining MAKEFIXED also |
326 | | defines BUILDFIXED, so the tables are built on the fly. makefixed() writes |
327 | | those tables to stdout, which would be piped to inffixed.h. A small program |
328 | | can simply call makefixed to do this: |
329 | | |
330 | | void makefixed(void); |
331 | | |
332 | | int main(void) |
333 | | { |
334 | | makefixed(); |
335 | | return 0; |
336 | | } |
337 | | |
338 | | Then that can be linked with zlib built with MAKEFIXED defined and run: |
339 | | |
340 | | a.out > inffixed.h |
341 | | */ |
342 | | void makefixed() |
343 | | { |
344 | | unsigned low, size; |
345 | | struct inflate_state state; |
346 | | |
347 | | fixedtables(&state); |
348 | | puts(" /* inffixed.h -- table for decoding fixed codes"); |
349 | | puts(" * Generated automatically by makefixed()."); |
350 | | puts(" */"); |
351 | | puts(""); |
352 | | puts(" /* WARNING: this file should *not* be used by applications."); |
353 | | puts(" It is part of the implementation of this library and is"); |
354 | | puts(" subject to change. Applications should only use zlib.h."); |
355 | | puts(" */"); |
356 | | puts(""); |
357 | | size = 1U << 9; |
358 | | printf(" static const code lenfix[%u] = {", size); |
359 | | low = 0; |
360 | | for (;;) { |
361 | | if ((low % 7) == 0) printf("\n "); |
362 | | printf("{%u,%u,%d}", (low & 127) == 99 ? 64 : state.lencode[low].op, |
363 | | state.lencode[low].bits, state.lencode[low].val); |
364 | | if (++low == size) break; |
365 | | putchar(','); |
366 | | } |
367 | | puts("\n };"); |
368 | | size = 1U << 5; |
369 | | printf("\n static const code distfix[%u] = {", size); |
370 | | low = 0; |
371 | | for (;;) { |
372 | | if ((low % 6) == 0) printf("\n "); |
373 | | printf("{%u,%u,%d}", state.distcode[low].op, state.distcode[low].bits, |
374 | | state.distcode[low].val); |
375 | | if (++low == size) break; |
376 | | putchar(','); |
377 | | } |
378 | | puts("\n };"); |
379 | | } |
380 | | #endif /* MAKEFIXED */ |
381 | | |
382 | | /* |
383 | | Update the window with the last wsize (normally 32K) bytes written before |
384 | | returning. If window does not exist yet, create it. This is only called |
385 | | when a window is already in use, or when output has been written during this |
386 | | inflate call, but the end of the deflate stream has not been reached yet. |
387 | | It is also called to create a window for dictionary data when a dictionary |
388 | | is loaded. |
389 | | |
390 | | Providing output buffers larger than 32K to inflate() should provide a speed |
391 | | advantage, since only the last 32K of output is copied to the sliding window |
392 | | upon return from inflate(), and since all distances after the first 32K of |
393 | | output will fall in the output data, making match copies simpler and faster. |
394 | | The advantage may be dependent on the size of the processor's data caches. |
395 | | */ |
396 | | local int updatewindow(strm, end, copy) |
397 | | z_streamp strm; |
398 | | const Bytef *end; |
399 | | unsigned copy; |
400 | 1.38M | { |
401 | 1.38M | struct inflate_state FAR *state; |
402 | 1.38M | unsigned dist; |
403 | | |
404 | 1.38M | state = (struct inflate_state FAR *)strm->state; |
405 | | |
406 | | /* if it hasn't been done already, allocate space for the window */ |
407 | 1.38M | if (state->window == Z_NULL) { |
408 | 294k | state->window = (unsigned char FAR *) |
409 | 294k | ZALLOC(strm, 1U << state->wbits, |
410 | 294k | sizeof(unsigned char)); |
411 | 294k | if (state->window == Z_NULL) return 1; |
412 | 294k | } |
413 | | |
414 | | /* if window not in use yet, initialize */ |
415 | 1.38M | if (state->wsize == 0) { |
416 | 294k | state->wsize = 1U << state->wbits; |
417 | 294k | state->wnext = 0; |
418 | 294k | state->whave = 0; |
419 | 294k | } |
420 | | |
421 | | /* copy state->wsize or less output bytes into the circular window */ |
422 | 1.38M | if (copy >= state->wsize) { |
423 | 99.2k | zmemcpy(state->window, end - state->wsize, state->wsize); |
424 | 99.2k | state->wnext = 0; |
425 | 99.2k | state->whave = state->wsize; |
426 | 99.2k | } |
427 | 1.28M | else { |
428 | 1.28M | dist = state->wsize - state->wnext; |
429 | 1.28M | if (dist > copy) dist = copy; |
430 | 1.28M | zmemcpy(state->window + state->wnext, end - copy, dist); |
431 | 1.28M | copy -= dist; |
432 | 1.28M | if (copy) { |
433 | 154k | zmemcpy(state->window, end - copy, copy); |
434 | 154k | state->wnext = copy; |
435 | 154k | state->whave = state->wsize; |
436 | 154k | } |
437 | 1.13M | else { |
438 | 1.13M | state->wnext += dist; |
439 | 1.13M | if (state->wnext == state->wsize) state->wnext = 0; |
440 | 1.13M | if (state->whave < state->wsize) state->whave += dist; |
441 | 1.13M | } |
442 | 1.28M | } |
443 | 1.38M | return 0; |
444 | 1.38M | } |
445 | | |
446 | | /* Macros for inflate(): */ |
447 | | |
448 | | /* check function to use adler32() for zlib or crc32() for gzip */ |
449 | | #ifdef GUNZIP |
450 | | # define UPDATE(check, buf, len) \ |
451 | 613k | (state->flags ? crc32(check, buf, len) : adler32(check, buf, len)) |
452 | | #else |
453 | | # define UPDATE(check, buf, len) adler32(check, buf, len) |
454 | | #endif |
455 | | |
456 | | /* check macros for header crc */ |
457 | | #ifdef GUNZIP |
458 | | # define CRC2(check, word) \ |
459 | 4.41k | do { \ |
460 | 4.41k | hbuf[0] = (unsigned char)(word); \ |
461 | 4.41k | hbuf[1] = (unsigned char)((word) >> 8); \ |
462 | 4.41k | check = crc32(check, hbuf, 2); \ |
463 | 4.41k | } while (0) |
464 | | |
465 | | # define CRC4(check, word) \ |
466 | 115 | do { \ |
467 | 115 | hbuf[0] = (unsigned char)(word); \ |
468 | 115 | hbuf[1] = (unsigned char)((word) >> 8); \ |
469 | 115 | hbuf[2] = (unsigned char)((word) >> 16); \ |
470 | 115 | hbuf[3] = (unsigned char)((word) >> 24); \ |
471 | 115 | check = crc32(check, hbuf, 4); \ |
472 | 115 | } while (0) |
473 | | #endif |
474 | | |
475 | | /* Load registers with state in inflate() for speed */ |
476 | | #define LOAD() \ |
477 | 2.94M | do { \ |
478 | 2.94M | put = strm->next_out; \ |
479 | 2.94M | left = strm->avail_out; \ |
480 | 2.94M | next = strm->next_in; \ |
481 | 2.94M | have = strm->avail_in; \ |
482 | 2.94M | hold = state->hold; \ |
483 | 2.94M | bits = state->bits; \ |
484 | 2.94M | } while (0) |
485 | | |
486 | | /* Restore state from registers in inflate() */ |
487 | | #define RESTORE() \ |
488 | 2.94M | do { \ |
489 | 2.94M | strm->next_out = put; \ |
490 | 2.94M | strm->avail_out = left; \ |
491 | 2.94M | strm->next_in = next; \ |
492 | 2.94M | strm->avail_in = have; \ |
493 | 2.94M | state->hold = hold; \ |
494 | 2.94M | state->bits = bits; \ |
495 | 2.94M | } while (0) |
496 | | |
497 | | /* Clear the input bit accumulator */ |
498 | | #define INITBITS() \ |
499 | 168k | do { \ |
500 | 168k | hold = 0; \ |
501 | 168k | bits = 0; \ |
502 | 168k | } while (0) |
503 | | |
504 | | /* Get a byte of input into the bit accumulator, or return from inflate() |
505 | | if there is no input available. */ |
506 | | #define PULLBYTE() \ |
507 | 8.72M | do { \ |
508 | 8.72M | if (have == 0) goto inf_leave; \ |
509 | 8.72M | have--; \ |
510 | 8.65M | hold += (unsigned long)(*next++) << bits; \ |
511 | 8.65M | bits += 8; \ |
512 | 8.65M | } while (0) |
513 | | |
514 | | /* Assure that there are at least n bits in the bit accumulator. If there is |
515 | | not enough available input to do that, then return from inflate(). */ |
516 | | #define NEEDBITS(n) \ |
517 | 5.16M | do { \ |
518 | 8.45M | while (bits < (unsigned)(n)) \ |
519 | 5.16M | PULLBYTE(); \ |
520 | 5.16M | } while (0) |
521 | | |
522 | | /* Return the low n bits of the bit accumulator (n < 16) */ |
523 | | #define BITS(n) \ |
524 | 25.7M | ((unsigned)hold & ((1U << (n)) - 1)) |
525 | | |
526 | | /* Remove n bits from the bit accumulator */ |
527 | | #define DROPBITS(n) \ |
528 | 20.1M | do { \ |
529 | 20.1M | hold >>= (n); \ |
530 | 20.1M | bits -= (unsigned)(n); \ |
531 | 20.1M | } while (0) |
532 | | |
533 | | /* Remove zero to seven bits as needed to go to a byte boundary */ |
534 | | #define BYTEBITS() \ |
535 | 341k | do { \ |
536 | 341k | hold >>= bits & 7; \ |
537 | 341k | bits -= bits & 7; \ |
538 | 341k | } while (0) |
539 | | |
540 | | /* |
541 | | inflate() uses a state machine to process as much input data and generate as |
542 | | much output data as possible before returning. The state machine is |
543 | | structured roughly as follows: |
544 | | |
545 | | for (;;) switch (state) { |
546 | | ... |
547 | | case STATEn: |
548 | | if (not enough input data or output space to make progress) |
549 | | return; |
550 | | ... make progress ... |
551 | | state = STATEm; |
552 | | break; |
553 | | ... |
554 | | } |
555 | | |
556 | | so when inflate() is called again, the same case is attempted again, and |
557 | | if the appropriate resources are provided, the machine proceeds to the |
558 | | next state. The NEEDBITS() macro is usually the way the state evaluates |
559 | | whether it can proceed or should return. NEEDBITS() does the return if |
560 | | the requested bits are not available. The typical use of the BITS macros |
561 | | is: |
562 | | |
563 | | NEEDBITS(n); |
564 | | ... do something with BITS(n) ... |
565 | | DROPBITS(n); |
566 | | |
567 | | where NEEDBITS(n) either returns from inflate() if there isn't enough |
568 | | input left to load n bits into the accumulator, or it continues. BITS(n) |
569 | | gives the low n bits in the accumulator. When done, DROPBITS(n) drops |
570 | | the low n bits off the accumulator. INITBITS() clears the accumulator |
571 | | and sets the number of available bits to zero. BYTEBITS() discards just |
572 | | enough bits to put the accumulator on a byte boundary. After BYTEBITS() |
573 | | and a NEEDBITS(8), then BITS(8) would return the next byte in the stream. |
574 | | |
575 | | NEEDBITS(n) uses PULLBYTE() to get an available byte of input, or to return |
576 | | if there is no input available. The decoding of variable length codes uses |
577 | | PULLBYTE() directly in order to pull just enough bytes to decode the next |
578 | | code, and no more. |
579 | | |
580 | | Some states loop until they get enough input, making sure that enough |
581 | | state information is maintained to continue the loop where it left off |
582 | | if NEEDBITS() returns in the loop. For example, want, need, and keep |
583 | | would all have to actually be part of the saved state in case NEEDBITS() |
584 | | returns: |
585 | | |
586 | | case STATEw: |
587 | | while (want < need) { |
588 | | NEEDBITS(n); |
589 | | keep[want++] = BITS(n); |
590 | | DROPBITS(n); |
591 | | } |
592 | | state = STATEx; |
593 | | case STATEx: |
594 | | |
595 | | As shown above, if the next state is also the next case, then the break |
596 | | is omitted. |
597 | | |
598 | | A state may also return if there is not enough output space available to |
599 | | complete that state. Those states are copying stored data, writing a |
600 | | literal byte, and copying a matching string. |
601 | | |
602 | | When returning, a "goto inf_leave" is used to update the total counters, |
603 | | update the check value, and determine whether any progress has been made |
604 | | during that inflate() call in order to return the proper return code. |
605 | | Progress is defined as a change in either strm->avail_in or strm->avail_out. |
606 | | When there is a window, goto inf_leave will update the window with the last |
607 | | output written. If a goto inf_leave occurs in the middle of decompression |
608 | | and there is no window currently, goto inf_leave will create one and copy |
609 | | output to the window for the next call of inflate(). |
610 | | |
611 | | In this implementation, the flush parameter of inflate() only affects the |
612 | | return code (per zlib.h). inflate() always writes as much as possible to |
613 | | strm->next_out, given the space available and the provided input--the effect |
614 | | documented in zlib.h of Z_SYNC_FLUSH. Furthermore, inflate() always defers |
615 | | the allocation of and copying into a sliding window until necessary, which |
616 | | provides the effect documented in zlib.h for Z_FINISH when the entire input |
617 | | stream available. So the only thing the flush parameter actually does is: |
618 | | when flush is set to Z_FINISH, inflate() cannot return Z_OK. Instead it |
619 | | will return Z_BUF_ERROR if it has not reached the end of the stream. |
620 | | */ |
621 | | |
622 | | int ZEXPORT inflate(strm, flush) |
623 | | z_streamp strm; |
624 | | int flush; |
625 | 1.53M | { |
626 | 1.53M | struct inflate_state FAR *state; |
627 | 1.53M | z_const unsigned char FAR *next; /* next input */ |
628 | 1.53M | unsigned char FAR *put; /* next output */ |
629 | 1.53M | unsigned have, left; /* available input and output */ |
630 | 1.53M | unsigned long hold; /* bit buffer */ |
631 | 1.53M | unsigned bits; /* bits in bit buffer */ |
632 | 1.53M | unsigned in, out; /* save starting available input and output */ |
633 | 1.53M | unsigned copy; /* number of stored or match bytes to copy */ |
634 | 1.53M | unsigned char FAR *from; /* where to copy match bytes from */ |
635 | 1.53M | code here; /* current decoding table entry */ |
636 | 1.53M | code last; /* parent table entry */ |
637 | 1.53M | unsigned len; /* length to copy for repeats, bits to drop */ |
638 | 1.53M | int ret; /* return code */ |
639 | 1.53M | #ifdef GUNZIP |
640 | 1.53M | unsigned char hbuf[4]; /* buffer for gzip header crc calculation */ |
641 | 1.53M | #endif |
642 | 1.53M | static const unsigned short order[19] = /* permutation of code lengths */ |
643 | 1.53M | {16, 17, 18, 0, 8, 7, 9, 6, 10, 5, 11, 4, 12, 3, 13, 2, 14, 1, 15}; |
644 | | |
645 | 1.53M | if (inflateStateCheck(strm) || strm->next_out == Z_NULL || |
646 | 1.53M | (strm->next_in == Z_NULL && strm->avail_in != 0)) |
647 | 0 | return Z_STREAM_ERROR; |
648 | | |
649 | 1.53M | state = (struct inflate_state FAR *)strm->state; |
650 | 1.53M | if (state->mode == TYPE) state->mode = TYPEDO; /* skip check */ |
651 | 1.53M | LOAD(); |
652 | 1.53M | in = have; |
653 | 1.53M | out = left; |
654 | 1.53M | ret = Z_OK; |
655 | 1.53M | for (;;) |
656 | 11.2M | switch (state->mode) { |
657 | 436k | case HEAD: |
658 | 436k | if (state->wrap == 0) { |
659 | 311k | state->mode = TYPEDO; |
660 | 311k | break; |
661 | 311k | } |
662 | 124k | NEEDBITS(16); |
663 | 119k | #ifdef GUNZIP |
664 | 119k | if ((state->wrap & 2) && hold == 0x8b1f) { /* gzip header */ |
665 | 4.13k | if (state->wbits == 0) |
666 | 0 | state->wbits = 15; |
667 | 4.13k | state->check = crc32(0L, Z_NULL, 0); |
668 | 4.13k | CRC2(state->check, hold); |
669 | 4.13k | INITBITS(); |
670 | 4.13k | state->mode = FLAGS; |
671 | 4.13k | break; |
672 | 4.13k | } |
673 | 115k | state->flags = 0; /* expect zlib header */ |
674 | 115k | if (state->head != Z_NULL) |
675 | 0 | state->head->done = -1; |
676 | 115k | if (!(state->wrap & 1) || /* check if zlib header allowed */ |
677 | | #else |
678 | | if ( |
679 | | #endif |
680 | 87.2k | ((BITS(8) << 8) + (hold >> 8)) % 31) { |
681 | 31.6k | strm->msg = (char *)"incorrect header check"; |
682 | 31.6k | state->mode = BAD; |
683 | 31.6k | break; |
684 | 31.6k | } |
685 | 84.1k | if (BITS(4) != Z_DEFLATED) { |
686 | 1.65k | strm->msg = (char *)"unknown compression method"; |
687 | 1.65k | state->mode = BAD; |
688 | 1.65k | break; |
689 | 1.65k | } |
690 | 82.4k | DROPBITS(4); |
691 | 82.4k | len = BITS(4) + 8; |
692 | 82.4k | if (state->wbits == 0) |
693 | 0 | state->wbits = len; |
694 | 82.4k | if (len > 15 || len > state->wbits) { |
695 | 244 | strm->msg = (char *)"invalid window size"; |
696 | 244 | state->mode = BAD; |
697 | 244 | break; |
698 | 244 | } |
699 | 82.2k | state->dmax = 1U << len; |
700 | 82.2k | Tracev((stderr, "inflate: zlib header ok\n")); |
701 | 82.2k | strm->adler = state->check = adler32(0L, Z_NULL, 0); |
702 | 82.2k | state->mode = hold & 0x200 ? DICTID : TYPE; |
703 | 82.2k | INITBITS(); |
704 | 82.2k | break; |
705 | 0 | #ifdef GUNZIP |
706 | 4.13k | case FLAGS: |
707 | 4.13k | NEEDBITS(16); |
708 | 4.13k | state->flags = (int)(hold); |
709 | 4.13k | if ((state->flags & 0xff) != Z_DEFLATED) { |
710 | 5 | strm->msg = (char *)"unknown compression method"; |
711 | 5 | state->mode = BAD; |
712 | 5 | break; |
713 | 5 | } |
714 | 4.12k | if (state->flags & 0xe000) { |
715 | 2 | strm->msg = (char *)"unknown header flags set"; |
716 | 2 | state->mode = BAD; |
717 | 2 | break; |
718 | 2 | } |
719 | 4.12k | if (state->head != Z_NULL) |
720 | 0 | state->head->text = (int)((hold >> 8) & 1); |
721 | 4.12k | if ((state->flags & 0x0200) && (state->wrap & 4)) |
722 | 119 | CRC2(state->check, hold); |
723 | 4.12k | INITBITS(); |
724 | 4.12k | state->mode = TIME; |
725 | 4.12k | case TIME: |
726 | 4.12k | NEEDBITS(32); |
727 | 4.11k | if (state->head != Z_NULL) |
728 | 0 | state->head->time = hold; |
729 | 4.11k | if ((state->flags & 0x0200) && (state->wrap & 4)) |
730 | 115 | CRC4(state->check, hold); |
731 | 4.11k | INITBITS(); |
732 | 4.11k | state->mode = OS; |
733 | 4.11k | case OS: |
734 | 4.11k | NEEDBITS(16); |
735 | 4.11k | if (state->head != Z_NULL) { |
736 | 0 | state->head->xflags = (int)(hold & 0xff); |
737 | 0 | state->head->os = (int)(hold >> 8); |
738 | 0 | } |
739 | 4.11k | if ((state->flags & 0x0200) && (state->wrap & 4)) |
740 | 112 | CRC2(state->check, hold); |
741 | 4.11k | INITBITS(); |
742 | 4.11k | state->mode = EXLEN; |
743 | 4.11k | case EXLEN: |
744 | 4.11k | if (state->flags & 0x0400) { |
745 | 88 | NEEDBITS(16); |
746 | 84 | state->length = (unsigned)(hold); |
747 | 84 | if (state->head != Z_NULL) |
748 | 0 | state->head->extra_len = (unsigned)hold; |
749 | 84 | if ((state->flags & 0x0200) && (state->wrap & 4)) |
750 | 49 | CRC2(state->check, hold); |
751 | 84 | INITBITS(); |
752 | 84 | } |
753 | 4.02k | else if (state->head != Z_NULL) |
754 | 0 | state->head->extra = Z_NULL; |
755 | 4.10k | state->mode = EXTRA; |
756 | 4.13k | case EXTRA: |
757 | 4.13k | if (state->flags & 0x0400) { |
758 | 108 | copy = state->length; |
759 | 108 | if (copy > have) copy = have; |
760 | 108 | if (copy) { |
761 | 80 | if (state->head != Z_NULL && |
762 | 0 | state->head->extra != Z_NULL) { |
763 | 0 | len = state->head->extra_len - state->length; |
764 | 0 | zmemcpy(state->head->extra + len, next, |
765 | 0 | len + copy > state->head->extra_max ? |
766 | 0 | state->head->extra_max - len : copy); |
767 | 0 | } |
768 | 80 | if ((state->flags & 0x0200) && (state->wrap & 4)) |
769 | 43 | state->check = crc32(state->check, next, copy); |
770 | 80 | have -= copy; |
771 | 80 | next += copy; |
772 | 80 | state->length -= copy; |
773 | 80 | } |
774 | 108 | if (state->length) goto inf_leave; |
775 | 108 | } |
776 | 4.07k | state->length = 0; |
777 | 4.07k | state->mode = NAME; |
778 | 4.28k | case NAME: |
779 | 4.28k | if (state->flags & 0x0800) { |
780 | 1.31k | if (have == 0) goto inf_leave; |
781 | 1.30k | copy = 0; |
782 | 5.06M | do { |
783 | 5.06M | len = (unsigned)(next[copy++]); |
784 | 5.06M | if (state->head != Z_NULL && |
785 | 0 | state->head->name != Z_NULL && |
786 | 0 | state->length < state->head->name_max) |
787 | 0 | state->head->name[state->length++] = (Bytef)len; |
788 | 5.06M | } while (len && copy < have); |
789 | 1.30k | if ((state->flags & 0x0200) && (state->wrap & 4)) |
790 | 163 | state->check = crc32(state->check, next, copy); |
791 | 1.30k | have -= copy; |
792 | 1.30k | next += copy; |
793 | 1.30k | if (len) goto inf_leave; |
794 | 1.30k | } |
795 | 2.97k | else if (state->head != Z_NULL) |
796 | 0 | state->head->name = Z_NULL; |
797 | 4.02k | state->length = 0; |
798 | 4.02k | state->mode = COMMENT; |
799 | 4.23k | case COMMENT: |
800 | 4.23k | if (state->flags & 0x1000) { |
801 | 401 | if (have == 0) goto inf_leave; |
802 | 399 | copy = 0; |
803 | 3.36M | do { |
804 | 3.36M | len = (unsigned)(next[copy++]); |
805 | 3.36M | if (state->head != Z_NULL && |
806 | 0 | state->head->comment != Z_NULL && |
807 | 0 | state->length < state->head->comm_max) |
808 | 0 | state->head->comment[state->length++] = (Bytef)len; |
809 | 3.36M | } while (len && copy < have); |
810 | 399 | if ((state->flags & 0x0200) && (state->wrap & 4)) |
811 | 106 | state->check = crc32(state->check, next, copy); |
812 | 399 | have -= copy; |
813 | 399 | next += copy; |
814 | 399 | if (len) goto inf_leave; |
815 | 399 | } |
816 | 3.83k | else if (state->head != Z_NULL) |
817 | 0 | state->head->comment = Z_NULL; |
818 | 3.97k | state->mode = HCRC; |
819 | 3.97k | case HCRC: |
820 | 3.97k | if (state->flags & 0x0200) { |
821 | 45 | NEEDBITS(16); |
822 | 35 | if ((state->wrap & 4) && hold != (state->check & 0xffff)) { |
823 | 33 | strm->msg = (char *)"header crc mismatch"; |
824 | 33 | state->mode = BAD; |
825 | 33 | break; |
826 | 33 | } |
827 | 2 | INITBITS(); |
828 | 2 | } |
829 | 3.93k | if (state->head != Z_NULL) { |
830 | 0 | state->head->hcrc = (int)((state->flags >> 9) & 1); |
831 | 0 | state->head->done = 1; |
832 | 0 | } |
833 | 3.93k | strm->adler = state->check = crc32(0L, Z_NULL, 0); |
834 | 3.93k | state->mode = TYPE; |
835 | 3.93k | break; |
836 | 0 | #endif |
837 | 783 | case DICTID: |
838 | 783 | NEEDBITS(32); |
839 | 380 | strm->adler = state->check = ZSWAP32(hold); |
840 | 380 | INITBITS(); |
841 | 380 | state->mode = DICT; |
842 | 380 | case DICT: |
843 | 380 | if (state->havedict == 0) { |
844 | 380 | RESTORE(); |
845 | 380 | return Z_NEED_DICT; |
846 | 380 | } |
847 | 0 | strm->adler = state->check = adler32(0L, Z_NULL, 0); |
848 | 0 | state->mode = TYPE; |
849 | 535k | case TYPE: |
850 | 535k | if (flush == Z_BLOCK || flush == Z_TREES) goto inf_leave; |
851 | 848k | case TYPEDO: |
852 | 848k | if (state->last) { |
853 | 295k | BYTEBITS(); |
854 | 295k | state->mode = CHECK; |
855 | 295k | break; |
856 | 295k | } |
857 | 552k | NEEDBITS(3); |
858 | 550k | state->last = BITS(1); |
859 | 550k | DROPBITS(1); |
860 | 550k | switch (BITS(2)) { |
861 | 44.9k | case 0: /* stored block */ |
862 | 44.9k | Tracev((stderr, "inflate: stored block%s\n", |
863 | 44.9k | state->last ? " (last)" : "")); |
864 | 44.9k | state->mode = STORED; |
865 | 44.9k | break; |
866 | 364k | case 1: /* fixed block */ |
867 | 364k | fixedtables(state); |
868 | 364k | Tracev((stderr, "inflate: fixed codes block%s\n", |
869 | 364k | state->last ? " (last)" : "")); |
870 | 364k | state->mode = LEN_; /* decode codes */ |
871 | 364k | if (flush == Z_TREES) { |
872 | 0 | DROPBITS(2); |
873 | 0 | goto inf_leave; |
874 | 0 | } |
875 | 364k | break; |
876 | 364k | case 2: /* dynamic block */ |
877 | 139k | Tracev((stderr, "inflate: dynamic codes block%s\n", |
878 | 139k | state->last ? " (last)" : "")); |
879 | 139k | state->mode = TABLE; |
880 | 139k | break; |
881 | 2.48k | case 3: |
882 | 2.48k | strm->msg = (char *)"invalid block type"; |
883 | 2.48k | state->mode = BAD; |
884 | 550k | } |
885 | 550k | DROPBITS(2); |
886 | 550k | break; |
887 | 46.0k | case STORED: |
888 | 46.0k | BYTEBITS(); /* go to byte boundary */ |
889 | 46.0k | NEEDBITS(32); |
890 | 42.8k | if ((hold & 0xffff) != ((hold >> 16) ^ 0xffff)) { |
891 | 7.27k | strm->msg = (char *)"invalid stored block lengths"; |
892 | 7.27k | state->mode = BAD; |
893 | 7.27k | break; |
894 | 7.27k | } |
895 | 35.5k | state->length = (unsigned)hold & 0xffff; |
896 | 35.5k | Tracev((stderr, "inflate: stored length %u\n", |
897 | 35.5k | state->length)); |
898 | 35.5k | INITBITS(); |
899 | 35.5k | state->mode = COPY_; |
900 | 35.5k | if (flush == Z_TREES) goto inf_leave; |
901 | 35.5k | case COPY_: |
902 | 35.5k | state->mode = COPY; |
903 | 46.9k | case COPY: |
904 | 46.9k | copy = state->length; |
905 | 46.9k | if (copy) { |
906 | 14.7k | if (copy > have) copy = have; |
907 | 14.7k | if (copy > left) copy = left; |
908 | 14.7k | if (copy == 0) goto inf_leave; |
909 | 8.40k | zmemcpy(put, next, copy); |
910 | 8.40k | have -= copy; |
911 | 8.40k | next += copy; |
912 | 8.40k | left -= copy; |
913 | 8.40k | put += copy; |
914 | 8.40k | state->length -= copy; |
915 | 8.40k | break; |
916 | 14.7k | } |
917 | 32.1k | Tracev((stderr, "inflate: stored end\n")); |
918 | 32.1k | state->mode = TYPE; |
919 | 32.1k | break; |
920 | 139k | case TABLE: |
921 | 139k | NEEDBITS(14); |
922 | 137k | state->nlen = BITS(5) + 257; |
923 | 137k | DROPBITS(5); |
924 | 137k | state->ndist = BITS(5) + 1; |
925 | 137k | DROPBITS(5); |
926 | 137k | state->ncode = BITS(4) + 4; |
927 | 137k | DROPBITS(4); |
928 | 137k | #ifndef PKZIP_BUG_WORKAROUND |
929 | 137k | if (state->nlen > 286 || state->ndist > 30) { |
930 | 2.23k | strm->msg = (char *)"too many length or distance symbols"; |
931 | 2.23k | state->mode = BAD; |
932 | 2.23k | break; |
933 | 2.23k | } |
934 | 135k | #endif |
935 | 135k | Tracev((stderr, "inflate: table sizes ok\n")); |
936 | 135k | state->have = 0; |
937 | 135k | state->mode = LENLENS; |
938 | 137k | case LENLENS: |
939 | 2.20M | while (state->have < state->ncode) { |
940 | 2.06M | NEEDBITS(3); |
941 | 2.06M | state->lens[order[state->have++]] = (unsigned short)BITS(3); |
942 | 2.06M | DROPBITS(3); |
943 | 2.06M | } |
944 | 623k | while (state->have < 19) |
945 | 489k | state->lens[order[state->have++]] = 0; |
946 | 133k | state->next = state->codes; |
947 | 133k | state->lencode = (const code FAR *)(state->next); |
948 | 133k | state->lenbits = 7; |
949 | 133k | ret = inflate_table(CODES, state->lens, 19, &(state->next), |
950 | 133k | &(state->lenbits), state->work); |
951 | 133k | if (ret) { |
952 | 16.1k | strm->msg = (char *)"invalid code lengths set"; |
953 | 16.1k | state->mode = BAD; |
954 | 16.1k | break; |
955 | 16.1k | } |
956 | 117k | Tracev((stderr, "inflate: code lengths ok\n")); |
957 | 117k | state->have = 0; |
958 | 117k | state->mode = CODELENS; |
959 | 120k | case CODELENS: |
960 | 9.34M | while (state->have < state->nlen + state->ndist) { |
961 | 12.0M | for (;;) { |
962 | 12.0M | here = state->lencode[BITS(state->lenbits)]; |
963 | 12.0M | if ((unsigned)(here.bits) <= bits) break; |
964 | 2.81M | PULLBYTE(); |
965 | 2.81M | } |
966 | 9.23M | if (here.val < 16) { |
967 | 8.12M | DROPBITS(here.bits); |
968 | 8.12M | state->lens[state->have++] = here.val; |
969 | 8.12M | } |
970 | 1.11M | else { |
971 | 1.11M | if (here.val == 16) { |
972 | 327k | NEEDBITS(here.bits + 2); |
973 | 326k | DROPBITS(here.bits); |
974 | 326k | if (state->have == 0) { |
975 | 1.17k | strm->msg = (char *)"invalid bit length repeat"; |
976 | 1.17k | state->mode = BAD; |
977 | 1.17k | break; |
978 | 1.17k | } |
979 | 324k | len = state->lens[state->have - 1]; |
980 | 324k | copy = 3 + BITS(2); |
981 | 324k | DROPBITS(2); |
982 | 324k | } |
983 | 787k | else if (here.val == 17) { |
984 | 406k | NEEDBITS(here.bits + 3); |
985 | 404k | DROPBITS(here.bits); |
986 | 404k | len = 0; |
987 | 404k | copy = 3 + BITS(3); |
988 | 404k | DROPBITS(3); |
989 | 404k | } |
990 | 381k | else { |
991 | 381k | NEEDBITS(here.bits + 7); |
992 | 379k | DROPBITS(here.bits); |
993 | 379k | len = 0; |
994 | 379k | copy = 11 + BITS(7); |
995 | 379k | DROPBITS(7); |
996 | 379k | } |
997 | 1.10M | if (state->have + copy > state->nlen + state->ndist) { |
998 | 4.11k | strm->msg = (char *)"invalid bit length repeat"; |
999 | 4.11k | state->mode = BAD; |
1000 | 4.11k | break; |
1001 | 4.11k | } |
1002 | 26.6M | while (copy--) |
1003 | 25.5M | state->lens[state->have++] = (unsigned short)len; |
1004 | 1.10M | } |
1005 | 9.23M | } |
1006 | | |
1007 | | /* handle error breaks in while */ |
1008 | 111k | if (state->mode == BAD) break; |
1009 | | |
1010 | | /* check for end-of-block code (better have one) */ |
1011 | 106k | if (state->lens[256] == 0) { |
1012 | 4.23k | strm->msg = (char *)"invalid code -- missing end-of-block"; |
1013 | 4.23k | state->mode = BAD; |
1014 | 4.23k | break; |
1015 | 4.23k | } |
1016 | | |
1017 | | /* build code tables -- note: do not change the lenbits or distbits |
1018 | | values here (9 and 6) without reading the comments in inftrees.h |
1019 | | concerning the ENOUGH constants, which depend on those values */ |
1020 | 102k | state->next = state->codes; |
1021 | 102k | state->lencode = (const code FAR *)(state->next); |
1022 | 102k | state->lenbits = 9; |
1023 | 102k | ret = inflate_table(LENS, state->lens, state->nlen, &(state->next), |
1024 | 102k | &(state->lenbits), state->work); |
1025 | 102k | if (ret) { |
1026 | 3.56k | strm->msg = (char *)"invalid literal/lengths set"; |
1027 | 3.56k | state->mode = BAD; |
1028 | 3.56k | break; |
1029 | 3.56k | } |
1030 | 98.6k | state->distcode = (const code FAR *)(state->next); |
1031 | 98.6k | state->distbits = 6; |
1032 | 98.6k | ret = inflate_table(DISTS, state->lens + state->nlen, state->ndist, |
1033 | 98.6k | &(state->next), &(state->distbits), state->work); |
1034 | 98.6k | if (ret) { |
1035 | 4.27k | strm->msg = (char *)"invalid distances set"; |
1036 | 4.27k | state->mode = BAD; |
1037 | 4.27k | break; |
1038 | 4.27k | } |
1039 | 94.3k | Tracev((stderr, "inflate: codes ok\n")); |
1040 | 94.3k | state->mode = LEN_; |
1041 | 94.3k | if (flush == Z_TREES) goto inf_leave; |
1042 | 458k | case LEN_: |
1043 | 458k | state->mode = LEN; |
1044 | 4.78M | case LEN: |
1045 | 4.78M | if (have >= 6 && left >= 258) { |
1046 | 1.40M | RESTORE(); |
1047 | 1.40M | inflate_fast(strm, out); |
1048 | 1.40M | LOAD(); |
1049 | 1.40M | if (state->mode == TYPE) |
1050 | 343k | state->back = -1; |
1051 | 1.40M | break; |
1052 | 1.40M | } |
1053 | 3.38M | state->back = 0; |
1054 | 5.42M | for (;;) { |
1055 | 5.42M | here = state->lencode[BITS(state->lenbits)]; |
1056 | 5.42M | if ((unsigned)(here.bits) <= bits) break; |
1057 | 2.06M | PULLBYTE(); |
1058 | 2.06M | } |
1059 | 3.36M | if (here.op && (here.op & 0xf0) == 0) { |
1060 | 64.3k | last = here; |
1061 | 88.6k | for (;;) { |
1062 | 88.6k | here = state->lencode[last.val + |
1063 | 88.6k | (BITS(last.bits + last.op) >> last.bits)]; |
1064 | 88.6k | if ((unsigned)(last.bits + here.bits) <= bits) break; |
1065 | 24.9k | PULLBYTE(); |
1066 | 24.9k | } |
1067 | 63.7k | DROPBITS(last.bits); |
1068 | 63.7k | state->back += last.bits; |
1069 | 63.7k | } |
1070 | 3.35M | DROPBITS(here.bits); |
1071 | 3.35M | state->back += here.bits; |
1072 | 3.35M | state->length = (unsigned)here.val; |
1073 | 3.35M | if ((int)(here.op) == 0) { |
1074 | 1.65M | Tracevv((stderr, here.val >= 0x20 && here.val < 0x7f ? |
1075 | 1.65M | "inflate: literal '%c'\n" : |
1076 | 1.65M | "inflate: literal 0x%02x\n", here.val)); |
1077 | 1.65M | state->mode = LIT; |
1078 | 1.65M | break; |
1079 | 1.65M | } |
1080 | 1.70M | if (here.op & 32) { |
1081 | 74.8k | Tracevv((stderr, "inflate: end of block\n")); |
1082 | 74.8k | state->back = -1; |
1083 | 74.8k | state->mode = TYPE; |
1084 | 74.8k | break; |
1085 | 74.8k | } |
1086 | 1.63M | if (here.op & 64) { |
1087 | 929 | strm->msg = (char *)"invalid literal/length code"; |
1088 | 929 | state->mode = BAD; |
1089 | 929 | break; |
1090 | 929 | } |
1091 | 1.63M | state->extra = (unsigned)(here.op) & 15; |
1092 | 1.63M | state->mode = LENEXT; |
1093 | 1.63M | case LENEXT: |
1094 | 1.63M | if (state->extra) { |
1095 | 340k | NEEDBITS(state->extra); |
1096 | 336k | state->length += BITS(state->extra); |
1097 | 336k | DROPBITS(state->extra); |
1098 | 336k | state->back += state->extra; |
1099 | 336k | } |
1100 | 1.62M | Tracevv((stderr, "inflate: length %u\n", state->length)); |
1101 | 1.62M | state->was = state->length; |
1102 | 1.62M | state->mode = DIST; |
1103 | 1.63M | case DIST: |
1104 | 2.09M | for (;;) { |
1105 | 2.09M | here = state->distcode[BITS(state->distbits)]; |
1106 | 2.09M | if ((unsigned)(here.bits) <= bits) break; |
1107 | 474k | PULLBYTE(); |
1108 | 474k | } |
1109 | 1.62M | if ((here.op & 0xf0) == 0) { |
1110 | 47.6k | last = here; |
1111 | 65.5k | for (;;) { |
1112 | 65.5k | here = state->distcode[last.val + |
1113 | 65.5k | (BITS(last.bits + last.op) >> last.bits)]; |
1114 | 65.5k | if ((unsigned)(last.bits + here.bits) <= bits) break; |
1115 | 18.9k | PULLBYTE(); |
1116 | 18.9k | } |
1117 | 46.6k | DROPBITS(last.bits); |
1118 | 46.6k | state->back += last.bits; |
1119 | 46.6k | } |
1120 | 1.62M | DROPBITS(here.bits); |
1121 | 1.62M | state->back += here.bits; |
1122 | 1.62M | if (here.op & 64) { |
1123 | 1.31k | strm->msg = (char *)"invalid distance code"; |
1124 | 1.31k | state->mode = BAD; |
1125 | 1.31k | break; |
1126 | 1.31k | } |
1127 | 1.62M | state->offset = (unsigned)here.val; |
1128 | 1.62M | state->extra = (unsigned)(here.op) & 15; |
1129 | 1.62M | state->mode = DISTEXT; |
1130 | 1.62M | case DISTEXT: |
1131 | 1.62M | if (state->extra) { |
1132 | 720k | NEEDBITS(state->extra); |
1133 | 713k | state->offset += BITS(state->extra); |
1134 | 713k | DROPBITS(state->extra); |
1135 | 713k | state->back += state->extra; |
1136 | 713k | } |
1137 | | #ifdef INFLATE_STRICT |
1138 | | if (state->offset > state->dmax) { |
1139 | | strm->msg = (char *)"invalid distance too far back"; |
1140 | | state->mode = BAD; |
1141 | | break; |
1142 | | } |
1143 | | #endif |
1144 | 1.61M | Tracevv((stderr, "inflate: distance %u\n", state->offset)); |
1145 | 1.61M | state->mode = MATCH; |
1146 | 4.63M | case MATCH: |
1147 | 4.63M | if (left == 0) goto inf_leave; |
1148 | 3.57M | copy = out - left; |
1149 | 3.57M | if (state->offset > copy) { /* copy from window */ |
1150 | 1.12M | copy = state->offset - copy; |
1151 | 1.12M | if (copy > state->whave) { |
1152 | 2.04k | if (state->sane) { |
1153 | 2.04k | strm->msg = (char *)"invalid distance too far back"; |
1154 | 2.04k | state->mode = BAD; |
1155 | 2.04k | break; |
1156 | 2.04k | } |
1157 | | #ifdef INFLATE_ALLOW_INVALID_DISTANCE_TOOFAR_ARRR |
1158 | | Trace((stderr, "inflate.c too far\n")); |
1159 | | copy -= state->whave; |
1160 | | if (copy > state->length) copy = state->length; |
1161 | | if (copy > left) copy = left; |
1162 | | left -= copy; |
1163 | | state->length -= copy; |
1164 | | do { |
1165 | | *put++ = 0; |
1166 | | } while (--copy); |
1167 | | if (state->length == 0) state->mode = LEN; |
1168 | | break; |
1169 | | #endif |
1170 | 2.04k | } |
1171 | 1.12M | if (copy > state->wnext) { |
1172 | 161k | copy -= state->wnext; |
1173 | 161k | from = state->window + (state->wsize - copy); |
1174 | 161k | } |
1175 | 962k | else |
1176 | 962k | from = state->window + (state->wnext - copy); |
1177 | 1.12M | if (copy > state->length) copy = state->length; |
1178 | 1.12M | } |
1179 | 2.44M | else { /* copy from output */ |
1180 | 2.44M | from = put - state->offset; |
1181 | 2.44M | copy = state->length; |
1182 | 2.44M | } |
1183 | 3.57M | if (copy > left) copy = left; |
1184 | 3.57M | left -= copy; |
1185 | 3.57M | state->length -= copy; |
1186 | 273M | do { |
1187 | 273M | *put++ = *from++; |
1188 | 273M | } while (--copy); |
1189 | 3.57M | if (state->length == 0) state->mode = LEN; |
1190 | 3.57M | break; |
1191 | 1.66M | case LIT: |
1192 | 1.66M | if (left == 0) goto inf_leave; |
1193 | 1.65M | *put++ = (unsigned char)(state->length); |
1194 | 1.65M | left--; |
1195 | 1.65M | state->mode = LEN; |
1196 | 1.65M | break; |
1197 | 298k | case CHECK: |
1198 | 298k | if (state->wrap) { |
1199 | 43.3k | NEEDBITS(32); |
1200 | 36.9k | out -= left; |
1201 | 36.9k | strm->total_out += out; |
1202 | 36.9k | state->total += out; |
1203 | 36.9k | if ((state->wrap & 4) && out) |
1204 | 36.4k | strm->adler = state->check = |
1205 | 36.4k | UPDATE(state->check, put - out, out); |
1206 | 36.9k | out = left; |
1207 | 36.9k | if ((state->wrap & 4) && ( |
1208 | 36.9k | #ifdef GUNZIP |
1209 | 36.9k | state->flags ? hold : |
1210 | 36.9k | #endif |
1211 | 36.9k | ZSWAP32(hold)) != state->check) { |
1212 | 2.96k | strm->msg = (char *)"incorrect data check"; |
1213 | 2.96k | state->mode = BAD; |
1214 | 2.96k | break; |
1215 | 2.96k | } |
1216 | 33.9k | INITBITS(); |
1217 | 33.9k | Tracev((stderr, "inflate: check matches trailer\n")); |
1218 | 33.9k | } |
1219 | 288k | #ifdef GUNZIP |
1220 | 288k | state->mode = LENGTH; |
1221 | 288k | case LENGTH: |
1222 | 288k | if (state->wrap && state->flags) { |
1223 | 77 | NEEDBITS(32); |
1224 | 69 | if (hold != (state->total & 0xffffffffUL)) { |
1225 | 63 | strm->msg = (char *)"incorrect length check"; |
1226 | 63 | state->mode = BAD; |
1227 | 63 | break; |
1228 | 63 | } |
1229 | 6 | INITBITS(); |
1230 | 6 | Tracev((stderr, "inflate: length matches trailer\n")); |
1231 | 6 | } |
1232 | 288k | #endif |
1233 | 288k | state->mode = DONE; |
1234 | 288k | case DONE: |
1235 | 288k | ret = Z_STREAM_END; |
1236 | 288k | goto inf_leave; |
1237 | 96.5k | case BAD: |
1238 | 96.5k | ret = Z_DATA_ERROR; |
1239 | 96.5k | goto inf_leave; |
1240 | 0 | case MEM: |
1241 | 0 | return Z_MEM_ERROR; |
1242 | 0 | case SYNC: |
1243 | 0 | default: |
1244 | 0 | return Z_STREAM_ERROR; |
1245 | 11.2M | } |
1246 | | |
1247 | | /* |
1248 | | Return from inflate(), updating the total counts and the check value. |
1249 | | If there was no progress during the inflate() call, return a buffer |
1250 | | error. Call updatewindow() to create and/or update the window state. |
1251 | | Note: a memory error from inflate() is non-recoverable. |
1252 | | */ |
1253 | 1.53M | inf_leave: |
1254 | 1.53M | RESTORE(); |
1255 | 1.53M | if (state->wsize || (out != strm->avail_out && state->mode < BAD && |
1256 | 295k | (state->mode < CHECK || flush != Z_FINISH))) |
1257 | 1.38M | if (updatewindow(strm, strm->next_out, out - strm->avail_out)) { |
1258 | 0 | state->mode = MEM; |
1259 | 0 | return Z_MEM_ERROR; |
1260 | 0 | } |
1261 | 1.53M | in -= strm->avail_in; |
1262 | 1.53M | out -= strm->avail_out; |
1263 | 1.53M | strm->total_in += in; |
1264 | 1.53M | strm->total_out += out; |
1265 | 1.53M | state->total += out; |
1266 | 1.53M | if ((state->wrap & 4) && out) |
1267 | 576k | strm->adler = state->check = |
1268 | 576k | UPDATE(state->check, strm->next_out - out, out); |
1269 | 1.53M | strm->data_type = (int)state->bits + (state->last ? 64 : 0) + |
1270 | 1.53M | (state->mode == TYPE ? 128 : 0) + |
1271 | 1.53M | (state->mode == LEN_ || state->mode == COPY_ ? 256 : 0); |
1272 | 1.53M | if (((in == 0 && out == 0) || flush == Z_FINISH) && ret == Z_OK) |
1273 | 37.9k | ret = Z_BUF_ERROR; |
1274 | 1.53M | return ret; |
1275 | 1.53M | } |
1276 | | |
1277 | | int ZEXPORT inflateEnd(strm) |
1278 | | z_streamp strm; |
1279 | 436k | { |
1280 | 436k | struct inflate_state FAR *state; |
1281 | 436k | if (inflateStateCheck(strm)) |
1282 | 0 | return Z_STREAM_ERROR; |
1283 | 436k | state = (struct inflate_state FAR *)strm->state; |
1284 | 436k | if (state->window != Z_NULL) ZFREE(strm, state->window); |
1285 | 436k | ZFREE(strm, strm->state); |
1286 | 436k | strm->state = Z_NULL; |
1287 | 436k | Tracev((stderr, "inflate: end\n")); |
1288 | 436k | return Z_OK; |
1289 | 436k | } |
1290 | | |
1291 | | int ZEXPORT inflateGetDictionary(strm, dictionary, dictLength) |
1292 | | z_streamp strm; |
1293 | | Bytef *dictionary; |
1294 | | uInt *dictLength; |
1295 | 0 | { |
1296 | 0 | struct inflate_state FAR *state; |
1297 | | |
1298 | | /* check state */ |
1299 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1300 | 0 | state = (struct inflate_state FAR *)strm->state; |
1301 | | |
1302 | | /* copy dictionary */ |
1303 | 0 | if (state->whave && dictionary != Z_NULL) { |
1304 | 0 | zmemcpy(dictionary, state->window + state->wnext, |
1305 | 0 | state->whave - state->wnext); |
1306 | 0 | zmemcpy(dictionary + state->whave - state->wnext, |
1307 | 0 | state->window, state->wnext); |
1308 | 0 | } |
1309 | 0 | if (dictLength != Z_NULL) |
1310 | 0 | *dictLength = state->whave; |
1311 | 0 | return Z_OK; |
1312 | 0 | } |
1313 | | |
1314 | | int ZEXPORT inflateSetDictionary(strm, dictionary, dictLength) |
1315 | | z_streamp strm; |
1316 | | const Bytef *dictionary; |
1317 | | uInt dictLength; |
1318 | 0 | { |
1319 | 0 | struct inflate_state FAR *state; |
1320 | 0 | unsigned long dictid; |
1321 | 0 | int ret; |
1322 | | |
1323 | | /* check state */ |
1324 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1325 | 0 | state = (struct inflate_state FAR *)strm->state; |
1326 | 0 | if (state->wrap != 0 && state->mode != DICT) |
1327 | 0 | return Z_STREAM_ERROR; |
1328 | | |
1329 | | /* check for correct dictionary identifier */ |
1330 | 0 | if (state->mode == DICT) { |
1331 | 0 | dictid = adler32(0L, Z_NULL, 0); |
1332 | 0 | dictid = adler32(dictid, dictionary, dictLength); |
1333 | 0 | if (dictid != state->check) |
1334 | 0 | return Z_DATA_ERROR; |
1335 | 0 | } |
1336 | | |
1337 | | /* copy dictionary to window using updatewindow(), which will amend the |
1338 | | existing dictionary if appropriate */ |
1339 | 0 | ret = updatewindow(strm, dictionary + dictLength, dictLength); |
1340 | 0 | if (ret) { |
1341 | 0 | state->mode = MEM; |
1342 | 0 | return Z_MEM_ERROR; |
1343 | 0 | } |
1344 | 0 | state->havedict = 1; |
1345 | 0 | Tracev((stderr, "inflate: dictionary set\n")); |
1346 | 0 | return Z_OK; |
1347 | 0 | } |
1348 | | |
1349 | | int ZEXPORT inflateGetHeader(strm, head) |
1350 | | z_streamp strm; |
1351 | | gz_headerp head; |
1352 | 0 | { |
1353 | 0 | struct inflate_state FAR *state; |
1354 | | |
1355 | | /* check state */ |
1356 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1357 | 0 | state = (struct inflate_state FAR *)strm->state; |
1358 | 0 | if ((state->wrap & 2) == 0) return Z_STREAM_ERROR; |
1359 | | |
1360 | | /* save header structure */ |
1361 | 0 | state->head = head; |
1362 | 0 | head->done = 0; |
1363 | 0 | return Z_OK; |
1364 | 0 | } |
1365 | | |
1366 | | /* |
1367 | | Search buf[0..len-1] for the pattern: 0, 0, 0xff, 0xff. Return when found |
1368 | | or when out of input. When called, *have is the number of pattern bytes |
1369 | | found in order so far, in 0..3. On return *have is updated to the new |
1370 | | state. If on return *have equals four, then the pattern was found and the |
1371 | | return value is how many bytes were read including the last byte of the |
1372 | | pattern. If *have is less than four, then the pattern has not been found |
1373 | | yet and the return value is len. In the latter case, syncsearch() can be |
1374 | | called again with more data and the *have state. *have is initialized to |
1375 | | zero for the first call. |
1376 | | */ |
1377 | | local unsigned syncsearch(have, buf, len) |
1378 | | unsigned FAR *have; |
1379 | | const unsigned char FAR *buf; |
1380 | | unsigned len; |
1381 | 0 | { |
1382 | 0 | unsigned got; |
1383 | 0 | unsigned next; |
1384 | |
|
1385 | 0 | got = *have; |
1386 | 0 | next = 0; |
1387 | 0 | while (next < len && got < 4) { |
1388 | 0 | if ((int)(buf[next]) == (got < 2 ? 0 : 0xff)) |
1389 | 0 | got++; |
1390 | 0 | else if (buf[next]) |
1391 | 0 | got = 0; |
1392 | 0 | else |
1393 | 0 | got = 4 - got; |
1394 | 0 | next++; |
1395 | 0 | } |
1396 | 0 | *have = got; |
1397 | 0 | return next; |
1398 | 0 | } |
1399 | | |
1400 | | int ZEXPORT inflateSync(strm) |
1401 | | z_streamp strm; |
1402 | 0 | { |
1403 | 0 | unsigned len; /* number of bytes to look at or looked at */ |
1404 | 0 | unsigned long in, out; /* temporary to save total_in and total_out */ |
1405 | 0 | unsigned char buf[4]; /* to restore bit buffer to byte string */ |
1406 | 0 | struct inflate_state FAR *state; |
1407 | | |
1408 | | /* check parameters */ |
1409 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1410 | 0 | state = (struct inflate_state FAR *)strm->state; |
1411 | 0 | if (strm->avail_in == 0 && state->bits < 8) return Z_BUF_ERROR; |
1412 | | |
1413 | | /* if first time, start search in bit buffer */ |
1414 | 0 | if (state->mode != SYNC) { |
1415 | 0 | state->mode = SYNC; |
1416 | 0 | state->hold <<= state->bits & 7; |
1417 | 0 | state->bits -= state->bits & 7; |
1418 | 0 | len = 0; |
1419 | 0 | while (state->bits >= 8) { |
1420 | 0 | buf[len++] = (unsigned char)(state->hold); |
1421 | 0 | state->hold >>= 8; |
1422 | 0 | state->bits -= 8; |
1423 | 0 | } |
1424 | 0 | state->have = 0; |
1425 | 0 | syncsearch(&(state->have), buf, len); |
1426 | 0 | } |
1427 | | |
1428 | | /* search available input */ |
1429 | 0 | len = syncsearch(&(state->have), strm->next_in, strm->avail_in); |
1430 | 0 | strm->avail_in -= len; |
1431 | 0 | strm->next_in += len; |
1432 | 0 | strm->total_in += len; |
1433 | | |
1434 | | /* return no joy or set up to restart inflate() on a new block */ |
1435 | 0 | if (state->have != 4) return Z_DATA_ERROR; |
1436 | 0 | in = strm->total_in; out = strm->total_out; |
1437 | 0 | inflateReset(strm); |
1438 | 0 | strm->total_in = in; strm->total_out = out; |
1439 | 0 | state->mode = TYPE; |
1440 | 0 | return Z_OK; |
1441 | 0 | } |
1442 | | |
1443 | | /* |
1444 | | Returns true if inflate is currently at the end of a block generated by |
1445 | | Z_SYNC_FLUSH or Z_FULL_FLUSH. This function is used by one PPP |
1446 | | implementation to provide an additional safety check. PPP uses |
1447 | | Z_SYNC_FLUSH but removes the length bytes of the resulting empty stored |
1448 | | block. When decompressing, PPP checks that at the end of input packet, |
1449 | | inflate is waiting for these length bytes. |
1450 | | */ |
1451 | | int ZEXPORT inflateSyncPoint(strm) |
1452 | | z_streamp strm; |
1453 | 0 | { |
1454 | 0 | struct inflate_state FAR *state; |
1455 | |
|
1456 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1457 | 0 | state = (struct inflate_state FAR *)strm->state; |
1458 | 0 | return state->mode == STORED && state->bits == 0; |
1459 | 0 | } |
1460 | | |
1461 | | int ZEXPORT inflateCopy(dest, source) |
1462 | | z_streamp dest; |
1463 | | z_streamp source; |
1464 | 0 | { |
1465 | 0 | struct inflate_state FAR *state; |
1466 | 0 | struct inflate_state FAR *copy; |
1467 | 0 | unsigned char FAR *window; |
1468 | 0 | unsigned wsize; |
1469 | | |
1470 | | /* check input */ |
1471 | 0 | if (inflateStateCheck(source) || dest == Z_NULL) |
1472 | 0 | return Z_STREAM_ERROR; |
1473 | 0 | state = (struct inflate_state FAR *)source->state; |
1474 | | |
1475 | | /* allocate space */ |
1476 | 0 | copy = (struct inflate_state FAR *) |
1477 | 0 | ZALLOC(source, 1, sizeof(struct inflate_state)); |
1478 | 0 | if (copy == Z_NULL) return Z_MEM_ERROR; |
1479 | 0 | window = Z_NULL; |
1480 | 0 | if (state->window != Z_NULL) { |
1481 | 0 | window = (unsigned char FAR *) |
1482 | 0 | ZALLOC(source, 1U << state->wbits, sizeof(unsigned char)); |
1483 | 0 | if (window == Z_NULL) { |
1484 | 0 | ZFREE(source, copy); |
1485 | 0 | return Z_MEM_ERROR; |
1486 | 0 | } |
1487 | 0 | } |
1488 | | |
1489 | | /* copy state */ |
1490 | 0 | zmemcpy((voidpf)dest, (voidpf)source, sizeof(z_stream)); |
1491 | 0 | zmemcpy((voidpf)copy, (voidpf)state, sizeof(struct inflate_state)); |
1492 | 0 | copy->strm = dest; |
1493 | 0 | if (state->lencode >= state->codes && |
1494 | 0 | state->lencode <= state->codes + ENOUGH - 1) { |
1495 | 0 | copy->lencode = copy->codes + (state->lencode - state->codes); |
1496 | 0 | copy->distcode = copy->codes + (state->distcode - state->codes); |
1497 | 0 | } |
1498 | 0 | copy->next = copy->codes + (state->next - state->codes); |
1499 | 0 | if (window != Z_NULL) { |
1500 | 0 | wsize = 1U << state->wbits; |
1501 | 0 | zmemcpy(window, state->window, wsize); |
1502 | 0 | } |
1503 | 0 | copy->window = window; |
1504 | 0 | dest->state = (struct internal_state FAR *)copy; |
1505 | 0 | return Z_OK; |
1506 | 0 | } |
1507 | | |
1508 | | int ZEXPORT inflateUndermine(strm, subvert) |
1509 | | z_streamp strm; |
1510 | | int subvert; |
1511 | 0 | { |
1512 | 0 | struct inflate_state FAR *state; |
1513 | |
|
1514 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1515 | 0 | state = (struct inflate_state FAR *)strm->state; |
1516 | | #ifdef INFLATE_ALLOW_INVALID_DISTANCE_TOOFAR_ARRR |
1517 | | state->sane = !subvert; |
1518 | | return Z_OK; |
1519 | | #else |
1520 | 0 | (void)subvert; |
1521 | 0 | state->sane = 1; |
1522 | 0 | return Z_DATA_ERROR; |
1523 | 0 | #endif |
1524 | 0 | } |
1525 | | |
1526 | | int ZEXPORT inflateValidate(strm, check) |
1527 | | z_streamp strm; |
1528 | | int check; |
1529 | 0 | { |
1530 | 0 | struct inflate_state FAR *state; |
1531 | |
|
1532 | 0 | if (inflateStateCheck(strm)) return Z_STREAM_ERROR; |
1533 | 0 | state = (struct inflate_state FAR *)strm->state; |
1534 | 0 | if (check) |
1535 | 0 | state->wrap |= 4; |
1536 | 0 | else |
1537 | 0 | state->wrap &= ~4; |
1538 | 0 | return Z_OK; |
1539 | 0 | } |
1540 | | |
1541 | | long ZEXPORT inflateMark(strm) |
1542 | | z_streamp strm; |
1543 | 0 | { |
1544 | 0 | struct inflate_state FAR *state; |
1545 | |
|
1546 | 0 | if (inflateStateCheck(strm)) |
1547 | 0 | return -(1L << 16); |
1548 | 0 | state = (struct inflate_state FAR *)strm->state; |
1549 | 0 | return (long)(((unsigned long)((long)state->back)) << 16) + |
1550 | 0 | (state->mode == COPY ? state->length : |
1551 | 0 | (state->mode == MATCH ? state->was - state->length : 0)); |
1552 | 0 | } |
1553 | | |
1554 | | unsigned long ZEXPORT inflateCodesUsed(strm) |
1555 | | z_streamp strm; |
1556 | 0 | { |
1557 | 0 | struct inflate_state FAR *state; |
1558 | 0 | if (inflateStateCheck(strm)) return (unsigned long)-1; |
1559 | 0 | state = (struct inflate_state FAR *)strm->state; |
1560 | 0 | return (unsigned long)(state->next - state->codes); |
1561 | 0 | } |