Coverage Report

Created: 2025-12-14 06:41

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
/src/zlib/inflate.c
Line
Count
Source
1
/* inflate.c -- zlib decompression
2
 * Copyright (C) 1995-2025 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
255k
local int inflateStateCheck(z_streamp strm) {
95
255k
    struct inflate_state FAR *state;
96
255k
    if (strm == Z_NULL ||
97
255k
        strm->zalloc == (alloc_func)0 || strm->zfree == (free_func)0)
98
0
        return 1;
99
255k
    state = (struct inflate_state FAR *)strm->state;
100
255k
    if (state == Z_NULL || state->strm != strm ||
101
255k
        state->mode < HEAD || state->mode > SYNC)
102
0
        return 1;
103
255k
    return 0;
104
255k
}
105
106
14.0k
int ZEXPORT inflateResetKeep(z_streamp strm) {
107
14.0k
    struct inflate_state FAR *state;
108
109
14.0k
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
110
14.0k
    state = (struct inflate_state FAR *)strm->state;
111
14.0k
    strm->total_in = strm->total_out = state->total = 0;
112
14.0k
    strm->msg = Z_NULL;
113
14.0k
    strm->data_type = 0;
114
14.0k
    if (state->wrap)        /* to support ill-conceived Java test suite */
115
14.0k
        strm->adler = state->wrap & 1;
116
14.0k
    state->mode = HEAD;
117
14.0k
    state->last = 0;
118
14.0k
    state->havedict = 0;
119
14.0k
    state->flags = -1;
120
14.0k
    state->dmax = 32768U;
121
14.0k
    state->head = Z_NULL;
122
14.0k
    state->hold = 0;
123
14.0k
    state->bits = 0;
124
14.0k
    state->lencode = state->distcode = state->next = state->codes;
125
14.0k
    state->sane = 1;
126
14.0k
    state->back = -1;
127
14.0k
    Tracev((stderr, "inflate: reset\n"));
128
14.0k
    return Z_OK;
129
14.0k
}
130
131
14.0k
int ZEXPORT inflateReset(z_streamp strm) {
132
14.0k
    struct inflate_state FAR *state;
133
134
14.0k
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
135
14.0k
    state = (struct inflate_state FAR *)strm->state;
136
14.0k
    state->wsize = 0;
137
14.0k
    state->whave = 0;
138
14.0k
    state->wnext = 0;
139
14.0k
    return inflateResetKeep(strm);
140
14.0k
}
141
142
14.0k
int ZEXPORT inflateReset2(z_streamp strm, int windowBits) {
143
14.0k
    int wrap;
144
14.0k
    struct inflate_state FAR *state;
145
146
    /* get the state */
147
14.0k
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
148
14.0k
    state = (struct inflate_state FAR *)strm->state;
149
150
    /* extract wrap request from windowBits parameter */
151
14.0k
    if (windowBits < 0) {
152
0
        if (windowBits < -15)
153
0
            return Z_STREAM_ERROR;
154
0
        wrap = 0;
155
0
        windowBits = -windowBits;
156
0
    }
157
14.0k
    else {
158
14.0k
        wrap = (windowBits >> 4) + 5;
159
14.0k
#ifdef GUNZIP
160
14.0k
        if (windowBits < 48)
161
14.0k
            windowBits &= 15;
162
14.0k
#endif
163
14.0k
    }
164
165
    /* set number of window bits, free window if different */
166
14.0k
    if (windowBits && (windowBits < 8 || windowBits > 15))
167
0
        return Z_STREAM_ERROR;
168
14.0k
    if (state->window != Z_NULL && state->wbits != (unsigned)windowBits) {
169
0
        ZFREE(strm, state->window);
170
0
        state->window = Z_NULL;
171
0
    }
172
173
    /* update state and reset the rest of it */
174
14.0k
    state->wrap = wrap;
175
14.0k
    state->wbits = (unsigned)windowBits;
176
14.0k
    return inflateReset(strm);
177
14.0k
}
178
179
int ZEXPORT inflateInit2_(z_streamp strm, int windowBits,
180
14.0k
                          const char *version, int stream_size) {
181
14.0k
    int ret;
182
14.0k
    struct inflate_state FAR *state;
183
184
14.0k
    if (version == Z_NULL || version[0] != ZLIB_VERSION[0] ||
185
14.0k
        stream_size != (int)(sizeof(z_stream)))
186
0
        return Z_VERSION_ERROR;
187
14.0k
    if (strm == Z_NULL) return Z_STREAM_ERROR;
188
14.0k
    strm->msg = Z_NULL;                 /* in case we return an error */
189
14.0k
    if (strm->zalloc == (alloc_func)0) {
190
#ifdef Z_SOLO
191
        return Z_STREAM_ERROR;
192
#else
193
14.0k
        strm->zalloc = zcalloc;
194
14.0k
        strm->opaque = (voidpf)0;
195
14.0k
#endif
196
14.0k
    }
197
14.0k
    if (strm->zfree == (free_func)0)
198
#ifdef Z_SOLO
199
        return Z_STREAM_ERROR;
200
#else
201
14.0k
        strm->zfree = zcfree;
202
14.0k
#endif
203
14.0k
    state = (struct inflate_state FAR *)
204
14.0k
            ZALLOC(strm, 1, sizeof(struct inflate_state));
205
14.0k
    if (state == Z_NULL) return Z_MEM_ERROR;
206
14.0k
    Tracev((stderr, "inflate: allocated\n"));
207
14.0k
    strm->state = (struct internal_state FAR *)state;
208
14.0k
    state->strm = strm;
209
14.0k
    state->window = Z_NULL;
210
14.0k
    state->mode = HEAD;     /* to pass state test in inflateReset2() */
211
14.0k
    ret = inflateReset2(strm, windowBits);
212
14.0k
    if (ret != Z_OK) {
213
0
        ZFREE(strm, state);
214
0
        strm->state = Z_NULL;
215
0
    }
216
14.0k
    return ret;
217
14.0k
}
218
219
int ZEXPORT inflateInit_(z_streamp strm, const char *version,
220
14.0k
                         int stream_size) {
221
14.0k
    return inflateInit2_(strm, DEF_WBITS, version, stream_size);
222
14.0k
}
223
224
0
int ZEXPORT inflatePrime(z_streamp strm, int bits, int value) {
225
0
    struct inflate_state FAR *state;
226
227
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
228
0
    if (bits == 0)
229
0
        return Z_OK;
230
0
    state = (struct inflate_state FAR *)strm->state;
231
0
    if (bits < 0) {
232
0
        state->hold = 0;
233
0
        state->bits = 0;
234
0
        return Z_OK;
235
0
    }
236
0
    if (bits > 16 || state->bits + (uInt)bits > 32) return Z_STREAM_ERROR;
237
0
    value &= (1L << bits) - 1;
238
0
    state->hold += (unsigned long)value << state->bits;
239
0
    state->bits += (uInt)bits;
240
0
    return Z_OK;
241
0
}
242
243
/*
244
   Return state with length and distance decoding tables and index sizes set to
245
   fixed code decoding.  Normally this returns fixed tables from inffixed.h.
246
   If BUILDFIXED is defined, then instead this routine builds the tables the
247
   first time it's called, and returns those tables the first time and
248
   thereafter.  This reduces the size of the code by about 2K bytes, in
249
   exchange for a little execution time.  However, BUILDFIXED should not be
250
   used for threaded applications, since the rewriting of the tables and virgin
251
   may not be thread-safe.
252
 */
253
12.4k
local void fixedtables(struct inflate_state FAR *state) {
254
#ifdef BUILDFIXED
255
    static int virgin = 1;
256
    static code *lenfix, *distfix;
257
    static code fixed[544];
258
259
    /* build fixed huffman tables if first call (may not be thread safe) */
260
    if (virgin) {
261
        unsigned sym, bits;
262
        static code *next;
263
264
        /* literal/length table */
265
        sym = 0;
266
        while (sym < 144) state->lens[sym++] = 8;
267
        while (sym < 256) state->lens[sym++] = 9;
268
        while (sym < 280) state->lens[sym++] = 7;
269
        while (sym < 288) state->lens[sym++] = 8;
270
        next = fixed;
271
        lenfix = next;
272
        bits = 9;
273
        inflate_table(LENS, state->lens, 288, &(next), &(bits), state->work);
274
275
        /* distance table */
276
        sym = 0;
277
        while (sym < 32) state->lens[sym++] = 5;
278
        distfix = next;
279
        bits = 5;
280
        inflate_table(DISTS, state->lens, 32, &(next), &(bits), state->work);
281
282
        /* do this just once */
283
        virgin = 0;
284
    }
285
#else /* !BUILDFIXED */
286
12.4k
#   include "inffixed.h"
287
12.4k
#endif /* BUILDFIXED */
288
12.4k
    state->lencode = lenfix;
289
12.4k
    state->lenbits = 9;
290
12.4k
    state->distcode = distfix;
291
12.4k
    state->distbits = 5;
292
12.4k
}
293
294
#ifdef MAKEFIXED
295
#include <stdio.h>
296
297
/*
298
   Write out the inffixed.h that is #include'd above.  Defining MAKEFIXED also
299
   defines BUILDFIXED, so the tables are built on the fly.  makefixed() writes
300
   those tables to stdout, which would be piped to inffixed.h.  A small program
301
   can simply call makefixed to do this:
302
303
    void makefixed(void);
304
305
    int main(void)
306
    {
307
        makefixed();
308
        return 0;
309
    }
310
311
   Then that can be linked with zlib built with MAKEFIXED defined and run:
312
313
    a.out > inffixed.h
314
 */
315
void makefixed(void)
316
{
317
    unsigned low, size;
318
    struct inflate_state state;
319
320
    fixedtables(&state);
321
    puts("    /* inffixed.h -- table for decoding fixed codes");
322
    puts("     * Generated automatically by makefixed().");
323
    puts("     */");
324
    puts("");
325
    puts("    /* WARNING: this file should *not* be used by applications.");
326
    puts("       It is part of the implementation of this library and is");
327
    puts("       subject to change. Applications should only use zlib.h.");
328
    puts("     */");
329
    puts("");
330
    size = 1U << 9;
331
    printf("    static const code lenfix[%u] = {", size);
332
    low = 0;
333
    for (;;) {
334
        if ((low % 7) == 0) printf("\n        ");
335
        printf("{%u,%u,%d}", (low & 127) == 99 ? 64 : state.lencode[low].op,
336
               state.lencode[low].bits, state.lencode[low].val);
337
        if (++low == size) break;
338
        putchar(',');
339
    }
340
    puts("\n    };");
341
    size = 1U << 5;
342
    printf("\n    static const code distfix[%u] = {", size);
343
    low = 0;
344
    for (;;) {
345
        if ((low % 6) == 0) printf("\n        ");
346
        printf("{%u,%u,%d}", state.distcode[low].op, state.distcode[low].bits,
347
               state.distcode[low].val);
348
        if (++low == size) break;
349
        putchar(',');
350
    }
351
    puts("\n    };");
352
}
353
#endif /* MAKEFIXED */
354
355
/*
356
   Update the window with the last wsize (normally 32K) bytes written before
357
   returning.  If window does not exist yet, create it.  This is only called
358
   when a window is already in use, or when output has been written during this
359
   inflate call, but the end of the deflate stream has not been reached yet.
360
   It is also called to create a window for dictionary data when a dictionary
361
   is loaded.
362
363
   Providing output buffers larger than 32K to inflate() should provide a speed
364
   advantage, since only the last 32K of output is copied to the sliding window
365
   upon return from inflate(), and since all distances after the first 32K of
366
   output will fall in the output data, making match copies simpler and faster.
367
   The advantage may be dependent on the size of the processor's data caches.
368
 */
369
168k
local int updatewindow(z_streamp strm, const Bytef *end, unsigned copy) {
370
168k
    struct inflate_state FAR *state;
371
168k
    unsigned dist;
372
373
168k
    state = (struct inflate_state FAR *)strm->state;
374
375
    /* if it hasn't been done already, allocate space for the window */
376
168k
    if (state->window == Z_NULL) {
377
4.27k
        state->window = (unsigned char FAR *)
378
4.27k
                        ZALLOC(strm, 1U << state->wbits,
379
4.27k
                               sizeof(unsigned char));
380
4.27k
        if (state->window == Z_NULL) return 1;
381
4.27k
    }
382
383
    /* if window not in use yet, initialize */
384
168k
    if (state->wsize == 0) {
385
4.27k
        state->wsize = 1U << state->wbits;
386
4.27k
        state->wnext = 0;
387
4.27k
        state->whave = 0;
388
4.27k
    }
389
390
    /* copy state->wsize or less output bytes into the circular window */
391
168k
    if (copy >= state->wsize) {
392
834
        zmemcpy(state->window, end - state->wsize, state->wsize);
393
834
        state->wnext = 0;
394
834
        state->whave = state->wsize;
395
834
    }
396
167k
    else {
397
167k
        dist = state->wsize - state->wnext;
398
167k
        if (dist > copy) dist = copy;
399
167k
        zmemcpy(state->window + state->wnext, end - copy, dist);
400
167k
        copy -= dist;
401
167k
        if (copy) {
402
111
            zmemcpy(state->window, end - copy, copy);
403
111
            state->wnext = copy;
404
111
            state->whave = state->wsize;
405
111
        }
406
167k
        else {
407
167k
            state->wnext += dist;
408
167k
            if (state->wnext == state->wsize) state->wnext = 0;
409
167k
            if (state->whave < state->wsize) state->whave += dist;
410
167k
        }
411
167k
    }
412
168k
    return 0;
413
168k
}
414
415
/* Macros for inflate(): */
416
417
/* check function to use adler32() for zlib or crc32() for gzip */
418
#ifdef GUNZIP
419
#  define UPDATE_CHECK(check, buf, len) \
420
164k
    (state->flags ? crc32(check, buf, len) : adler32(check, buf, len))
421
#else
422
#  define UPDATE_CHECK(check, buf, len) adler32(check, buf, len)
423
#endif
424
425
/* check macros for header crc */
426
#ifdef GUNZIP
427
#  define CRC2(check, word) \
428
0
    do { \
429
0
        hbuf[0] = (unsigned char)(word); \
430
0
        hbuf[1] = (unsigned char)((word) >> 8); \
431
0
        check = crc32(check, hbuf, 2); \
432
0
    } while (0)
433
434
#  define CRC4(check, word) \
435
0
    do { \
436
0
        hbuf[0] = (unsigned char)(word); \
437
0
        hbuf[1] = (unsigned char)((word) >> 8); \
438
0
        hbuf[2] = (unsigned char)((word) >> 16); \
439
0
        hbuf[3] = (unsigned char)((word) >> 24); \
440
0
        check = crc32(check, hbuf, 4); \
441
0
    } while (0)
442
#endif
443
444
/* Load registers with state in inflate() for speed */
445
#define LOAD() \
446
264k
    do { \
447
264k
        put = strm->next_out; \
448
264k
        left = strm->avail_out; \
449
264k
        next = strm->next_in; \
450
264k
        have = strm->avail_in; \
451
264k
        hold = state->hold; \
452
264k
        bits = state->bits; \
453
264k
    } while (0)
454
455
/* Restore state from registers in inflate() */
456
#define RESTORE() \
457
264k
    do { \
458
264k
        strm->next_out = put; \
459
264k
        strm->avail_out = left; \
460
264k
        strm->next_in = next; \
461
264k
        strm->avail_in = have; \
462
264k
        state->hold = hold; \
463
264k
        state->bits = bits; \
464
264k
    } while (0)
465
466
/* Clear the input bit accumulator */
467
#define INITBITS() \
468
20.0k
    do { \
469
20.0k
        hold = 0; \
470
20.0k
        bits = 0; \
471
20.0k
    } while (0)
472
473
/* Get a byte of input into the bit accumulator, or return from inflate()
474
   if there is no input available. */
475
#define PULLBYTE() \
476
1.29M
    do { \
477
1.29M
        if (have == 0) goto inf_leave; \
478
1.29M
        have--; \
479
1.11M
        hold += (unsigned long)(*next++) << bits; \
480
1.11M
        bits += 8; \
481
1.11M
    } while (0)
482
483
/* Assure that there are at least n bits in the bit accumulator.  If there is
484
   not enough available input to do that, then return from inflate(). */
485
#define NEEDBITS(n) \
486
504k
    do { \
487
838k
        while (bits < (unsigned)(n)) \
488
504k
            PULLBYTE(); \
489
504k
    } while (0)
490
491
/* Return the low n bits of the bit accumulator (n < 16) */
492
#define BITS(n) \
493
2.95M
    ((unsigned)hold & ((1U << (n)) - 1))
494
495
/* Remove n bits from the bit accumulator */
496
#define DROPBITS(n) \
497
2.01M
    do { \
498
2.01M
        hold >>= (n); \
499
2.01M
        bits -= (unsigned)(n); \
500
2.01M
    } while (0)
501
502
/* Remove zero to seven bits as needed to go to a byte boundary */
503
#define BYTEBITS() \
504
9.52k
    do { \
505
9.52k
        hold >>= bits & 7; \
506
9.52k
        bits -= bits & 7; \
507
9.52k
    } while (0)
508
509
/*
510
   inflate() uses a state machine to process as much input data and generate as
511
   much output data as possible before returning.  The state machine is
512
   structured roughly as follows:
513
514
    for (;;) switch (state) {
515
    ...
516
    case STATEn:
517
        if (not enough input data or output space to make progress)
518
            return;
519
        ... make progress ...
520
        state = STATEm;
521
        break;
522
    ...
523
    }
524
525
   so when inflate() is called again, the same case is attempted again, and
526
   if the appropriate resources are provided, the machine proceeds to the
527
   next state.  The NEEDBITS() macro is usually the way the state evaluates
528
   whether it can proceed or should return.  NEEDBITS() does the return if
529
   the requested bits are not available.  The typical use of the BITS macros
530
   is:
531
532
        NEEDBITS(n);
533
        ... do something with BITS(n) ...
534
        DROPBITS(n);
535
536
   where NEEDBITS(n) either returns from inflate() if there isn't enough
537
   input left to load n bits into the accumulator, or it continues.  BITS(n)
538
   gives the low n bits in the accumulator.  When done, DROPBITS(n) drops
539
   the low n bits off the accumulator.  INITBITS() clears the accumulator
540
   and sets the number of available bits to zero.  BYTEBITS() discards just
541
   enough bits to put the accumulator on a byte boundary.  After BYTEBITS()
542
   and a NEEDBITS(8), then BITS(8) would return the next byte in the stream.
543
544
   NEEDBITS(n) uses PULLBYTE() to get an available byte of input, or to return
545
   if there is no input available.  The decoding of variable length codes uses
546
   PULLBYTE() directly in order to pull just enough bytes to decode the next
547
   code, and no more.
548
549
   Some states loop until they get enough input, making sure that enough
550
   state information is maintained to continue the loop where it left off
551
   if NEEDBITS() returns in the loop.  For example, want, need, and keep
552
   would all have to actually be part of the saved state in case NEEDBITS()
553
   returns:
554
555
    case STATEw:
556
        while (want < need) {
557
            NEEDBITS(n);
558
            keep[want++] = BITS(n);
559
            DROPBITS(n);
560
        }
561
        state = STATEx;
562
    case STATEx:
563
564
   As shown above, if the next state is also the next case, then the break
565
   is omitted.
566
567
   A state may also return if there is not enough output space available to
568
   complete that state.  Those states are copying stored data, writing a
569
   literal byte, and copying a matching string.
570
571
   When returning, a "goto inf_leave" is used to update the total counters,
572
   update the check value, and determine whether any progress has been made
573
   during that inflate() call in order to return the proper return code.
574
   Progress is defined as a change in either strm->avail_in or strm->avail_out.
575
   When there is a window, goto inf_leave will update the window with the last
576
   output written.  If a goto inf_leave occurs in the middle of decompression
577
   and there is no window currently, goto inf_leave will create one and copy
578
   output to the window for the next call of inflate().
579
580
   In this implementation, the flush parameter of inflate() only affects the
581
   return code (per zlib.h).  inflate() always writes as much as possible to
582
   strm->next_out, given the space available and the provided input--the effect
583
   documented in zlib.h of Z_SYNC_FLUSH.  Furthermore, inflate() always defers
584
   the allocation of and copying into a sliding window until necessary, which
585
   provides the effect documented in zlib.h for Z_FINISH when the entire input
586
   stream available.  So the only thing the flush parameter actually does is:
587
   when flush is set to Z_FINISH, inflate() cannot return Z_OK.  Instead it
588
   will return Z_BUF_ERROR if it has not reached the end of the stream.
589
 */
590
591
199k
int ZEXPORT inflate(z_streamp strm, int flush) {
592
199k
    struct inflate_state FAR *state;
593
199k
    z_const unsigned char FAR *next;    /* next input */
594
199k
    unsigned char FAR *put;     /* next output */
595
199k
    unsigned have, left;        /* available input and output */
596
199k
    unsigned long hold;         /* bit buffer */
597
199k
    unsigned bits;              /* bits in bit buffer */
598
199k
    unsigned in, out;           /* save starting available input and output */
599
199k
    unsigned copy;              /* number of stored or match bytes to copy */
600
199k
    unsigned char FAR *from;    /* where to copy match bytes from */
601
199k
    code here;                  /* current decoding table entry */
602
199k
    code last;                  /* parent table entry */
603
199k
    unsigned len;               /* length to copy for repeats, bits to drop */
604
199k
    int ret;                    /* return code */
605
199k
#ifdef GUNZIP
606
199k
    unsigned char hbuf[4];      /* buffer for gzip header crc calculation */
607
199k
#endif
608
199k
    static const unsigned short order[19] = /* permutation of code lengths */
609
199k
        {16, 17, 18, 0, 8, 7, 9, 6, 10, 5, 11, 4, 12, 3, 13, 2, 14, 1, 15};
610
611
199k
    if (inflateStateCheck(strm) || strm->next_out == Z_NULL ||
612
199k
        (strm->next_in == Z_NULL && strm->avail_in != 0))
613
0
        return Z_STREAM_ERROR;
614
615
199k
    state = (struct inflate_state FAR *)strm->state;
616
199k
    if (state->mode == TYPE) state->mode = TYPEDO;      /* skip check */
617
199k
    LOAD();
618
199k
    in = have;
619
199k
    out = left;
620
199k
    ret = Z_OK;
621
199k
    for (;;)
622
1.29M
        switch (state->mode) {
623
14.1k
        case HEAD:
624
14.1k
            if (state->wrap == 0) {
625
0
                state->mode = TYPEDO;
626
0
                break;
627
0
            }
628
14.1k
            NEEDBITS(16);
629
13.9k
#ifdef GUNZIP
630
13.9k
            if ((state->wrap & 2) && hold == 0x8b1f) {  /* gzip header */
631
0
                if (state->wbits == 0)
632
0
                    state->wbits = 15;
633
0
                state->check = crc32(0L, Z_NULL, 0);
634
0
                CRC2(state->check, hold);
635
0
                INITBITS();
636
0
                state->mode = FLAGS;
637
0
                break;
638
0
            }
639
13.9k
            if (state->head != Z_NULL)
640
0
                state->head->done = -1;
641
13.9k
            if (!(state->wrap & 1) ||   /* check if zlib header allowed */
642
#else
643
            if (
644
#endif
645
13.9k
                ((BITS(8) << 8) + (hold >> 8)) % 31) {
646
747
                strm->msg = (z_const char *)"incorrect header check";
647
747
                state->mode = BAD;
648
747
                break;
649
747
            }
650
13.2k
            if (BITS(4) != Z_DEFLATED) {
651
67
                strm->msg = (z_const char *)"unknown compression method";
652
67
                state->mode = BAD;
653
67
                break;
654
67
            }
655
13.1k
            DROPBITS(4);
656
13.1k
            len = BITS(4) + 8;
657
13.1k
            if (state->wbits == 0)
658
0
                state->wbits = len;
659
13.1k
            if (len > 15 || len > state->wbits) {
660
6
                strm->msg = (z_const char *)"invalid window size";
661
6
                state->mode = BAD;
662
6
                break;
663
6
            }
664
13.1k
            state->dmax = 1U << len;
665
13.1k
            state->flags = 0;               /* indicate zlib header */
666
13.1k
            Tracev((stderr, "inflate:   zlib header ok\n"));
667
13.1k
            strm->adler = state->check = adler32(0L, Z_NULL, 0);
668
13.1k
            state->mode = hold & 0x200 ? DICTID : TYPE;
669
13.1k
            INITBITS();
670
13.1k
            break;
671
0
#ifdef GUNZIP
672
0
        case FLAGS:
673
0
            NEEDBITS(16);
674
0
            state->flags = (int)(hold);
675
0
            if ((state->flags & 0xff) != Z_DEFLATED) {
676
0
                strm->msg = (z_const char *)"unknown compression method";
677
0
                state->mode = BAD;
678
0
                break;
679
0
            }
680
0
            if (state->flags & 0xe000) {
681
0
                strm->msg = (z_const char *)"unknown header flags set";
682
0
                state->mode = BAD;
683
0
                break;
684
0
            }
685
0
            if (state->head != Z_NULL)
686
0
                state->head->text = (int)((hold >> 8) & 1);
687
0
            if ((state->flags & 0x0200) && (state->wrap & 4))
688
0
                CRC2(state->check, hold);
689
0
            INITBITS();
690
0
            state->mode = TIME;
691
                /* fallthrough */
692
0
        case TIME:
693
0
            NEEDBITS(32);
694
0
            if (state->head != Z_NULL)
695
0
                state->head->time = hold;
696
0
            if ((state->flags & 0x0200) && (state->wrap & 4))
697
0
                CRC4(state->check, hold);
698
0
            INITBITS();
699
0
            state->mode = OS;
700
                /* fallthrough */
701
0
        case OS:
702
0
            NEEDBITS(16);
703
0
            if (state->head != Z_NULL) {
704
0
                state->head->xflags = (int)(hold & 0xff);
705
0
                state->head->os = (int)(hold >> 8);
706
0
            }
707
0
            if ((state->flags & 0x0200) && (state->wrap & 4))
708
0
                CRC2(state->check, hold);
709
0
            INITBITS();
710
0
            state->mode = EXLEN;
711
                /* fallthrough */
712
0
        case EXLEN:
713
0
            if (state->flags & 0x0400) {
714
0
                NEEDBITS(16);
715
0
                state->length = (unsigned)(hold);
716
0
                if (state->head != Z_NULL)
717
0
                    state->head->extra_len = (unsigned)hold;
718
0
                if ((state->flags & 0x0200) && (state->wrap & 4))
719
0
                    CRC2(state->check, hold);
720
0
                INITBITS();
721
0
            }
722
0
            else if (state->head != Z_NULL)
723
0
                state->head->extra = Z_NULL;
724
0
            state->mode = EXTRA;
725
                /* fallthrough */
726
0
        case EXTRA:
727
0
            if (state->flags & 0x0400) {
728
0
                copy = state->length;
729
0
                if (copy > have) copy = have;
730
0
                if (copy) {
731
0
                    if (state->head != Z_NULL &&
732
0
                        state->head->extra != Z_NULL &&
733
0
                        (len = state->head->extra_len - state->length) <
734
0
                            state->head->extra_max) {
735
0
                        zmemcpy(state->head->extra + len, next,
736
0
                                len + copy > state->head->extra_max ?
737
0
                                state->head->extra_max - len : copy);
738
0
                    }
739
0
                    if ((state->flags & 0x0200) && (state->wrap & 4))
740
0
                        state->check = crc32(state->check, next, copy);
741
0
                    have -= copy;
742
0
                    next += copy;
743
0
                    state->length -= copy;
744
0
                }
745
0
                if (state->length) goto inf_leave;
746
0
            }
747
0
            state->length = 0;
748
0
            state->mode = NAME;
749
                /* fallthrough */
750
0
        case NAME:
751
0
            if (state->flags & 0x0800) {
752
0
                if (have == 0) goto inf_leave;
753
0
                copy = 0;
754
0
                do {
755
0
                    len = (unsigned)(next[copy++]);
756
0
                    if (state->head != Z_NULL &&
757
0
                            state->head->name != Z_NULL &&
758
0
                            state->length < state->head->name_max)
759
0
                        state->head->name[state->length++] = (Bytef)len;
760
0
                } while (len && copy < have);
761
0
                if ((state->flags & 0x0200) && (state->wrap & 4))
762
0
                    state->check = crc32(state->check, next, copy);
763
0
                have -= copy;
764
0
                next += copy;
765
0
                if (len) goto inf_leave;
766
0
            }
767
0
            else if (state->head != Z_NULL)
768
0
                state->head->name = Z_NULL;
769
0
            state->length = 0;
770
0
            state->mode = COMMENT;
771
                /* fallthrough */
772
0
        case COMMENT:
773
0
            if (state->flags & 0x1000) {
774
0
                if (have == 0) goto inf_leave;
775
0
                copy = 0;
776
0
                do {
777
0
                    len = (unsigned)(next[copy++]);
778
0
                    if (state->head != Z_NULL &&
779
0
                            state->head->comment != Z_NULL &&
780
0
                            state->length < state->head->comm_max)
781
0
                        state->head->comment[state->length++] = (Bytef)len;
782
0
                } while (len && copy < have);
783
0
                if ((state->flags & 0x0200) && (state->wrap & 4))
784
0
                    state->check = crc32(state->check, next, copy);
785
0
                have -= copy;
786
0
                next += copy;
787
0
                if (len) goto inf_leave;
788
0
            }
789
0
            else if (state->head != Z_NULL)
790
0
                state->head->comment = Z_NULL;
791
0
            state->mode = HCRC;
792
                /* fallthrough */
793
0
        case HCRC:
794
0
            if (state->flags & 0x0200) {
795
0
                NEEDBITS(16);
796
0
                if ((state->wrap & 4) && hold != (state->check & 0xffff)) {
797
0
                    strm->msg = (z_const char *)"header crc mismatch";
798
0
                    state->mode = BAD;
799
0
                    break;
800
0
                }
801
0
                INITBITS();
802
0
            }
803
0
            if (state->head != Z_NULL) {
804
0
                state->head->hcrc = (int)((state->flags >> 9) & 1);
805
0
                state->head->done = 1;
806
0
            }
807
0
            strm->adler = state->check = crc32(0L, Z_NULL, 0);
808
0
            state->mode = TYPE;
809
0
            break;
810
0
#endif
811
27
        case DICTID:
812
27
            NEEDBITS(32);
813
12
            strm->adler = state->check = ZSWAP32(hold);
814
12
            INITBITS();
815
12
            state->mode = DICT;
816
                /* fallthrough */
817
23
        case DICT:
818
23
            if (state->havedict == 0) {
819
23
                RESTORE();
820
23
                return Z_NEED_DICT;
821
23
            }
822
0
            strm->adler = state->check = adler32(0L, Z_NULL, 0);
823
0
            state->mode = TYPE;
824
                /* fallthrough */
825
31.6k
        case TYPE:
826
31.6k
            if (flush == Z_BLOCK || flush == Z_TREES) goto inf_leave;
827
                /* fallthrough */
828
31.9k
        case TYPEDO:
829
31.9k
            if (state->last) {
830
8.53k
                BYTEBITS();
831
8.53k
                state->mode = CHECK;
832
8.53k
                break;
833
8.53k
            }
834
23.4k
            NEEDBITS(3);
835
23.1k
            state->last = BITS(1);
836
23.1k
            DROPBITS(1);
837
23.1k
            switch (BITS(2)) {
838
917
            case 0:                             /* stored block */
839
917
                Tracev((stderr, "inflate:     stored block%s\n",
840
917
                        state->last ? " (last)" : ""));
841
917
                state->mode = STORED;
842
917
                break;
843
12.4k
            case 1:                             /* fixed block */
844
12.4k
                fixedtables(state);
845
12.4k
                Tracev((stderr, "inflate:     fixed codes block%s\n",
846
12.4k
                        state->last ? " (last)" : ""));
847
12.4k
                state->mode = LEN_;             /* decode codes */
848
12.4k
                if (flush == Z_TREES) {
849
0
                    DROPBITS(2);
850
0
                    goto inf_leave;
851
0
                }
852
12.4k
                break;
853
12.4k
            case 2:                             /* dynamic block */
854
9.66k
                Tracev((stderr, "inflate:     dynamic codes block%s\n",
855
9.66k
                        state->last ? " (last)" : ""));
856
9.66k
                state->mode = TABLE;
857
9.66k
                break;
858
52
            case 3:
859
52
                strm->msg = (z_const char *)"invalid block type";
860
52
                state->mode = BAD;
861
23.1k
            }
862
23.1k
            DROPBITS(2);
863
23.1k
            break;
864
989
        case STORED:
865
989
            BYTEBITS();                         /* go to byte boundary */
866
989
            NEEDBITS(32);
867
848
            if ((hold & 0xffff) != ((hold >> 16) ^ 0xffff)) {
868
95
                strm->msg = (z_const char *)"invalid stored block lengths";
869
95
                state->mode = BAD;
870
95
                break;
871
95
            }
872
753
            state->length = (unsigned)hold & 0xffff;
873
753
            Tracev((stderr, "inflate:       stored length %u\n",
874
753
                    state->length));
875
753
            INITBITS();
876
753
            state->mode = COPY_;
877
753
            if (flush == Z_TREES) goto inf_leave;
878
                /* fallthrough */
879
753
        case COPY_:
880
753
            state->mode = COPY;
881
                /* fallthrough */
882
1.39k
        case COPY:
883
1.39k
            copy = state->length;
884
1.39k
            if (copy) {
885
679
                if (copy > have) copy = have;
886
679
                if (copy > left) copy = left;
887
679
                if (copy == 0) goto inf_leave;
888
565
                zmemcpy(put, next, copy);
889
565
                have -= copy;
890
565
                next += copy;
891
565
                left -= copy;
892
565
                put += copy;
893
565
                state->length -= copy;
894
565
                break;
895
679
            }
896
714
            Tracev((stderr, "inflate:       stored end\n"));
897
714
            state->mode = TYPE;
898
714
            break;
899
10.8k
        case TABLE:
900
10.8k
            NEEDBITS(14);
901
9.64k
            state->nlen = BITS(5) + 257;
902
9.64k
            DROPBITS(5);
903
9.64k
            state->ndist = BITS(5) + 1;
904
9.64k
            DROPBITS(5);
905
9.64k
            state->ncode = BITS(4) + 4;
906
9.64k
            DROPBITS(4);
907
9.64k
#ifndef PKZIP_BUG_WORKAROUND
908
9.64k
            if (state->nlen > 286 || state->ndist > 30) {
909
31
                strm->msg = (z_const char *)
910
31
                    "too many length or distance symbols";
911
31
                state->mode = BAD;
912
31
                break;
913
31
            }
914
9.61k
#endif
915
9.61k
            Tracev((stderr, "inflate:       table sizes ok\n"));
916
9.61k
            state->have = 0;
917
9.61k
            state->mode = LENLENS;
918
                /* fallthrough */
919
11.0k
        case LENLENS:
920
161k
            while (state->have < state->ncode) {
921
152k
                NEEDBITS(3);
922
150k
                state->lens[order[state->have++]] = (unsigned short)BITS(3);
923
150k
                DROPBITS(3);
924
150k
            }
925
39.6k
            while (state->have < 19)
926
30.2k
                state->lens[order[state->have++]] = 0;
927
9.44k
            state->next = state->codes;
928
9.44k
            state->lencode = state->distcode = (const code FAR *)(state->next);
929
9.44k
            state->lenbits = 7;
930
9.44k
            ret = inflate_table(CODES, state->lens, 19, &(state->next),
931
9.44k
                                &(state->lenbits), state->work);
932
9.44k
            if (ret) {
933
172
                strm->msg = (z_const char *)"invalid code lengths set";
934
172
                state->mode = BAD;
935
172
                break;
936
172
            }
937
9.26k
            Tracev((stderr, "inflate:       code lengths ok\n"));
938
9.26k
            state->have = 0;
939
9.26k
            state->mode = CODELENS;
940
                /* fallthrough */
941
18.2k
        case CODELENS:
942
729k
            while (state->have < state->nlen + state->ndist) {
943
983k
                for (;;) {
944
983k
                    here = state->lencode[BITS(state->lenbits)];
945
983k
                    if ((unsigned)(here.bits) <= bits) break;
946
269k
                    PULLBYTE();
947
269k
                }
948
713k
                if (here.val < 16) {
949
619k
                    DROPBITS(here.bits);
950
619k
                    state->lens[state->have++] = here.val;
951
619k
                }
952
94.6k
                else {
953
94.6k
                    if (here.val == 16) {
954
24.6k
                        NEEDBITS(here.bits + 2);
955
24.1k
                        DROPBITS(here.bits);
956
24.1k
                        if (state->have == 0) {
957
16
                            strm->msg = (z_const char *)
958
16
                                "invalid bit length repeat";
959
16
                            state->mode = BAD;
960
16
                            break;
961
16
                        }
962
24.1k
                        len = state->lens[state->have - 1];
963
24.1k
                        copy = 3 + BITS(2);
964
24.1k
                        DROPBITS(2);
965
24.1k
                    }
966
70.0k
                    else if (here.val == 17) {
967
34.3k
                        NEEDBITS(here.bits + 3);
968
34.2k
                        DROPBITS(here.bits);
969
34.2k
                        len = 0;
970
34.2k
                        copy = 3 + BITS(3);
971
34.2k
                        DROPBITS(3);
972
34.2k
                    }
973
35.6k
                    else {
974
35.6k
                        NEEDBITS(here.bits + 7);
975
33.6k
                        DROPBITS(here.bits);
976
33.6k
                        len = 0;
977
33.6k
                        copy = 11 + BITS(7);
978
33.6k
                        DROPBITS(7);
979
33.6k
                    }
980
92.0k
                    if (state->have + copy > state->nlen + state->ndist) {
981
142
                        strm->msg = (z_const char *)
982
142
                            "invalid bit length repeat";
983
142
                        state->mode = BAD;
984
142
                        break;
985
142
                    }
986
2.16M
                    while (copy--)
987
2.07M
                        state->lens[state->have++] = (unsigned short)len;
988
91.9k
                }
989
713k
            }
990
991
            /* handle error breaks in while */
992
9.08k
            if (state->mode == BAD) break;
993
994
            /* check for end-of-block code (better have one) */
995
8.93k
            if (state->lens[256] == 0) {
996
44
                strm->msg = (z_const char *)
997
44
                    "invalid code -- missing end-of-block";
998
44
                state->mode = BAD;
999
44
                break;
1000
44
            }
1001
1002
            /* build code tables -- note: do not change the lenbits or distbits
1003
               values here (9 and 6) without reading the comments in inftrees.h
1004
               concerning the ENOUGH constants, which depend on those values */
1005
8.88k
            state->next = state->codes;
1006
8.88k
            state->lencode = (const code FAR *)(state->next);
1007
8.88k
            state->lenbits = 9;
1008
8.88k
            ret = inflate_table(LENS, state->lens, state->nlen, &(state->next),
1009
8.88k
                                &(state->lenbits), state->work);
1010
8.88k
            if (ret) {
1011
91
                strm->msg = (z_const char *)"invalid literal/lengths set";
1012
91
                state->mode = BAD;
1013
91
                break;
1014
91
            }
1015
8.79k
            state->distcode = (const code FAR *)(state->next);
1016
8.79k
            state->distbits = 6;
1017
8.79k
            ret = inflate_table(DISTS, state->lens + state->nlen, state->ndist,
1018
8.79k
                            &(state->next), &(state->distbits), state->work);
1019
8.79k
            if (ret) {
1020
55
                strm->msg = (z_const char *)"invalid distances set";
1021
55
                state->mode = BAD;
1022
55
                break;
1023
55
            }
1024
8.74k
            Tracev((stderr, "inflate:       codes ok\n"));
1025
8.74k
            state->mode = LEN_;
1026
8.74k
            if (flush == Z_TREES) goto inf_leave;
1027
                /* fallthrough */
1028
21.2k
        case LEN_:
1029
21.2k
            state->mode = LEN;
1030
                /* fallthrough */
1031
752k
        case LEN:
1032
752k
            if (have >= 6 && left >= 258) {
1033
65.7k
                RESTORE();
1034
65.7k
                inflate_fast(strm, out);
1035
65.7k
                LOAD();
1036
65.7k
                if (state->mode == TYPE)
1037
8.76k
                    state->back = -1;
1038
65.7k
                break;
1039
65.7k
            }
1040
686k
            state->back = 0;
1041
1.11M
            for (;;) {
1042
1.11M
                here = state->lencode[BITS(state->lenbits)];
1043
1.11M
                if ((unsigned)(here.bits) <= bits) break;
1044
526k
                PULLBYTE();
1045
526k
            }
1046
584k
            if (here.op && (here.op & 0xf0) == 0) {
1047
37.1k
                last = here;
1048
44.3k
                for (;;) {
1049
44.3k
                    here = state->lencode[last.val +
1050
44.3k
                            (BITS(last.bits + last.op) >> last.bits)];
1051
44.3k
                    if ((unsigned)(last.bits + here.bits) <= bits) break;
1052
9.10k
                    PULLBYTE();
1053
9.10k
                }
1054
35.2k
                DROPBITS(last.bits);
1055
35.2k
                state->back += last.bits;
1056
35.2k
            }
1057
582k
            DROPBITS(here.bits);
1058
582k
            state->back += here.bits;
1059
582k
            state->length = (unsigned)here.val;
1060
582k
            if ((int)(here.op) == 0) {
1061
386k
                Tracevv((stderr, here.val >= 0x20 && here.val < 0x7f ?
1062
386k
                        "inflate:         literal '%c'\n" :
1063
386k
                        "inflate:         literal 0x%02x\n", here.val));
1064
386k
                state->mode = LIT;
1065
386k
                break;
1066
386k
            }
1067
196k
            if (here.op & 32) {
1068
9.05k
                Tracevv((stderr, "inflate:         end of block\n"));
1069
9.05k
                state->back = -1;
1070
9.05k
                state->mode = TYPE;
1071
9.05k
                break;
1072
9.05k
            }
1073
187k
            if (here.op & 64) {
1074
10
                strm->msg = (z_const char *)"invalid literal/length code";
1075
10
                state->mode = BAD;
1076
10
                break;
1077
10
            }
1078
187k
            state->extra = (unsigned)(here.op) & 15;
1079
187k
            state->mode = LENEXT;
1080
                /* fallthrough */
1081
188k
        case LENEXT:
1082
188k
            if (state->extra) {
1083
22.7k
                NEEDBITS(state->extra);
1084
20.8k
                state->length += BITS(state->extra);
1085
20.8k
                DROPBITS(state->extra);
1086
20.8k
                state->back += state->extra;
1087
20.8k
            }
1088
187k
            Tracevv((stderr, "inflate:         length %u\n", state->length));
1089
187k
            state->was = state->length;
1090
187k
            state->mode = DIST;
1091
                /* fallthrough */
1092
205k
        case DIST:
1093
295k
            for (;;) {
1094
295k
                here = state->distcode[BITS(state->distbits)];
1095
295k
                if ((unsigned)(here.bits) <= bits) break;
1096
108k
                PULLBYTE();
1097
108k
            }
1098
186k
            if ((here.op & 0xf0) == 0) {
1099
4.01k
                last = here;
1100
4.56k
                for (;;) {
1101
4.56k
                    here = state->distcode[last.val +
1102
4.56k
                            (BITS(last.bits + last.op) >> last.bits)];
1103
4.56k
                    if ((unsigned)(last.bits + here.bits) <= bits) break;
1104
769
                    PULLBYTE();
1105
769
                }
1106
3.79k
                DROPBITS(last.bits);
1107
3.79k
                state->back += last.bits;
1108
3.79k
            }
1109
186k
            DROPBITS(here.bits);
1110
186k
            state->back += here.bits;
1111
186k
            if (here.op & 64) {
1112
16
                strm->msg = (z_const char *)"invalid distance code";
1113
16
                state->mode = BAD;
1114
16
                break;
1115
16
            }
1116
186k
            state->offset = (unsigned)here.val;
1117
186k
            state->extra = (unsigned)(here.op) & 15;
1118
186k
            state->mode = DISTEXT;
1119
                /* fallthrough */
1120
219k
        case DISTEXT:
1121
219k
            if (state->extra) {
1122
175k
                NEEDBITS(state->extra);
1123
142k
                state->offset += BITS(state->extra);
1124
142k
                DROPBITS(state->extra);
1125
142k
                state->back += state->extra;
1126
142k
            }
1127
#ifdef INFLATE_STRICT
1128
            if (state->offset > state->dmax) {
1129
                strm->msg = (z_const char *)"invalid distance too far back";
1130
                state->mode = BAD;
1131
                break;
1132
            }
1133
#endif
1134
186k
            Tracevv((stderr, "inflate:         distance %u\n", state->offset));
1135
186k
            state->mode = MATCH;
1136
                /* fallthrough */
1137
196k
        case MATCH:
1138
196k
            if (left == 0) goto inf_leave;
1139
195k
            copy = out - left;
1140
195k
            if (state->offset > copy) {         /* copy from window */
1141
134k
                copy = state->offset - copy;
1142
134k
                if (copy > state->whave) {
1143
63
                    if (state->sane) {
1144
63
                        strm->msg = (z_const char *)
1145
63
                            "invalid distance too far back";
1146
63
                        state->mode = BAD;
1147
63
                        break;
1148
63
                    }
1149
#ifdef INFLATE_ALLOW_INVALID_DISTANCE_TOOFAR_ARRR
1150
                    Trace((stderr, "inflate.c too far\n"));
1151
                    copy -= state->whave;
1152
                    if (copy > state->length) copy = state->length;
1153
                    if (copy > left) copy = left;
1154
                    left -= copy;
1155
                    state->length -= copy;
1156
                    do {
1157
                        *put++ = 0;
1158
                    } while (--copy);
1159
                    if (state->length == 0) state->mode = LEN;
1160
                    break;
1161
#endif
1162
63
                }
1163
133k
                if (copy > state->wnext) {
1164
6.94k
                    copy -= state->wnext;
1165
6.94k
                    from = state->window + (state->wsize - copy);
1166
6.94k
                }
1167
126k
                else
1168
126k
                    from = state->window + (state->wnext - copy);
1169
133k
                if (copy > state->length) copy = state->length;
1170
133k
            }
1171
61.6k
            else {                              /* copy from output */
1172
61.6k
                from = put - state->offset;
1173
61.6k
                copy = state->length;
1174
61.6k
            }
1175
195k
            if (copy > left) copy = left;
1176
195k
            left -= copy;
1177
195k
            state->length -= copy;
1178
11.7M
            do {
1179
11.7M
                *put++ = *from++;
1180
11.7M
            } while (--copy);
1181
195k
            if (state->length == 0) state->mode = LEN;
1182
195k
            break;
1183
386k
        case LIT:
1184
386k
            if (left == 0) goto inf_leave;
1185
386k
            *put++ = (unsigned char)(state->length);
1186
386k
            left--;
1187
386k
            state->mode = LEN;
1188
386k
            break;
1189
9.67k
        case CHECK:
1190
9.67k
            if (state->wrap) {
1191
9.67k
                NEEDBITS(32);
1192
8.32k
                out -= left;
1193
8.32k
                strm->total_out += out;
1194
8.32k
                state->total += out;
1195
8.32k
                if ((state->wrap & 4) && out)
1196
7.45k
                    strm->adler = state->check =
1197
7.45k
                        UPDATE_CHECK(state->check, put - out, out);
1198
8.32k
                out = left;
1199
8.32k
                if ((state->wrap & 4) && (
1200
8.32k
#ifdef GUNZIP
1201
8.32k
                     state->flags ? hold :
1202
8.32k
#endif
1203
8.32k
                     ZSWAP32(hold)) != state->check) {
1204
2.18k
                    strm->msg = (z_const char *)"incorrect data check";
1205
2.18k
                    state->mode = BAD;
1206
2.18k
                    break;
1207
2.18k
                }
1208
6.14k
                INITBITS();
1209
6.14k
                Tracev((stderr, "inflate:   check matches trailer\n"));
1210
6.14k
            }
1211
6.14k
#ifdef GUNZIP
1212
6.14k
            state->mode = LENGTH;
1213
                /* fallthrough */
1214
6.14k
        case LENGTH:
1215
6.14k
            if (state->wrap && state->flags) {
1216
0
                NEEDBITS(32);
1217
0
                if ((state->wrap & 4) && hold != (state->total & 0xffffffff)) {
1218
0
                    strm->msg = (z_const char *)"incorrect length check";
1219
0
                    state->mode = BAD;
1220
0
                    break;
1221
0
                }
1222
0
                INITBITS();
1223
0
                Tracev((stderr, "inflate:   length matches trailer\n"));
1224
0
            }
1225
6.14k
#endif
1226
6.14k
            state->mode = DONE;
1227
                /* fallthrough */
1228
12.3k
        case DONE:
1229
12.3k
            ret = Z_STREAM_END;
1230
12.3k
            goto inf_leave;
1231
13.7k
        case BAD:
1232
13.7k
            ret = Z_DATA_ERROR;
1233
13.7k
            goto inf_leave;
1234
0
        case MEM:
1235
0
            return Z_MEM_ERROR;
1236
0
        case SYNC:
1237
                /* fallthrough */
1238
0
        default:
1239
0
            return Z_STREAM_ERROR;
1240
1.29M
        }
1241
1242
    /*
1243
       Return from inflate(), updating the total counts and the check value.
1244
       If there was no progress during the inflate() call, return a buffer
1245
       error.  Call updatewindow() to create and/or update the window state.
1246
       Note: a memory error from inflate() is non-recoverable.
1247
     */
1248
199k
  inf_leave:
1249
199k
    RESTORE();
1250
199k
    if (state->wsize || (out != strm->avail_out && state->mode < BAD &&
1251
4.27k
            (state->mode < CHECK || flush != Z_FINISH)))
1252
168k
        if (updatewindow(strm, strm->next_out, out - strm->avail_out)) {
1253
0
            state->mode = MEM;
1254
0
            return Z_MEM_ERROR;
1255
0
        }
1256
199k
    in -= strm->avail_in;
1257
199k
    out -= strm->avail_out;
1258
199k
    strm->total_in += in;
1259
199k
    strm->total_out += out;
1260
199k
    state->total += out;
1261
199k
    if ((state->wrap & 4) && out)
1262
157k
        strm->adler = state->check =
1263
157k
            UPDATE_CHECK(state->check, strm->next_out - out, out);
1264
199k
    strm->data_type = (int)state->bits + (state->last ? 64 : 0) +
1265
199k
                      (state->mode == TYPE ? 128 : 0) +
1266
199k
                      (state->mode == LEN_ || state->mode == COPY_ ? 256 : 0);
1267
199k
    if (((in == 0 && out == 0) || flush == Z_FINISH) && ret == Z_OK)
1268
3.36k
        ret = Z_BUF_ERROR;
1269
199k
    return ret;
1270
199k
}
1271
1272
14.0k
int ZEXPORT inflateEnd(z_streamp strm) {
1273
14.0k
    struct inflate_state FAR *state;
1274
14.0k
    if (inflateStateCheck(strm))
1275
0
        return Z_STREAM_ERROR;
1276
14.0k
    state = (struct inflate_state FAR *)strm->state;
1277
14.0k
    if (state->window != Z_NULL) ZFREE(strm, state->window);
1278
14.0k
    ZFREE(strm, strm->state);
1279
14.0k
    strm->state = Z_NULL;
1280
14.0k
    Tracev((stderr, "inflate: end\n"));
1281
14.0k
    return Z_OK;
1282
14.0k
}
1283
1284
int ZEXPORT inflateGetDictionary(z_streamp strm, Bytef *dictionary,
1285
0
                                 uInt *dictLength) {
1286
0
    struct inflate_state FAR *state;
1287
1288
    /* check state */
1289
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1290
0
    state = (struct inflate_state FAR *)strm->state;
1291
1292
    /* copy dictionary */
1293
0
    if (state->whave && dictionary != Z_NULL) {
1294
0
        zmemcpy(dictionary, state->window + state->wnext,
1295
0
                state->whave - state->wnext);
1296
0
        zmemcpy(dictionary + state->whave - state->wnext,
1297
0
                state->window, state->wnext);
1298
0
    }
1299
0
    if (dictLength != Z_NULL)
1300
0
        *dictLength = state->whave;
1301
0
    return Z_OK;
1302
0
}
1303
1304
int ZEXPORT inflateSetDictionary(z_streamp strm, const Bytef *dictionary,
1305
0
                                 uInt dictLength) {
1306
0
    struct inflate_state FAR *state;
1307
0
    unsigned long dictid;
1308
0
    int ret;
1309
1310
    /* check state */
1311
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1312
0
    state = (struct inflate_state FAR *)strm->state;
1313
0
    if (state->wrap != 0 && state->mode != DICT)
1314
0
        return Z_STREAM_ERROR;
1315
1316
    /* check for correct dictionary identifier */
1317
0
    if (state->mode == DICT) {
1318
0
        dictid = adler32(0L, Z_NULL, 0);
1319
0
        dictid = adler32(dictid, dictionary, dictLength);
1320
0
        if (dictid != state->check)
1321
0
            return Z_DATA_ERROR;
1322
0
    }
1323
1324
    /* copy dictionary to window using updatewindow(), which will amend the
1325
       existing dictionary if appropriate */
1326
0
    ret = updatewindow(strm, dictionary + dictLength, dictLength);
1327
0
    if (ret) {
1328
0
        state->mode = MEM;
1329
0
        return Z_MEM_ERROR;
1330
0
    }
1331
0
    state->havedict = 1;
1332
0
    Tracev((stderr, "inflate:   dictionary set\n"));
1333
0
    return Z_OK;
1334
0
}
1335
1336
0
int ZEXPORT inflateGetHeader(z_streamp strm, gz_headerp head) {
1337
0
    struct inflate_state FAR *state;
1338
1339
    /* check state */
1340
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1341
0
    state = (struct inflate_state FAR *)strm->state;
1342
0
    if ((state->wrap & 2) == 0) return Z_STREAM_ERROR;
1343
1344
    /* save header structure */
1345
0
    state->head = head;
1346
0
    head->done = 0;
1347
0
    return Z_OK;
1348
0
}
1349
1350
/*
1351
   Search buf[0..len-1] for the pattern: 0, 0, 0xff, 0xff.  Return when found
1352
   or when out of input.  When called, *have is the number of pattern bytes
1353
   found in order so far, in 0..3.  On return *have is updated to the new
1354
   state.  If on return *have equals four, then the pattern was found and the
1355
   return value is how many bytes were read including the last byte of the
1356
   pattern.  If *have is less than four, then the pattern has not been found
1357
   yet and the return value is len.  In the latter case, syncsearch() can be
1358
   called again with more data and the *have state.  *have is initialized to
1359
   zero for the first call.
1360
 */
1361
local unsigned syncsearch(unsigned FAR *have, const unsigned char FAR *buf,
1362
0
                          unsigned len) {
1363
0
    unsigned got;
1364
0
    unsigned next;
1365
1366
0
    got = *have;
1367
0
    next = 0;
1368
0
    while (next < len && got < 4) {
1369
0
        if ((int)(buf[next]) == (got < 2 ? 0 : 0xff))
1370
0
            got++;
1371
0
        else if (buf[next])
1372
0
            got = 0;
1373
0
        else
1374
0
            got = 4 - got;
1375
0
        next++;
1376
0
    }
1377
0
    *have = got;
1378
0
    return next;
1379
0
}
1380
1381
0
int ZEXPORT inflateSync(z_streamp strm) {
1382
0
    unsigned len;               /* number of bytes to look at or looked at */
1383
0
    int flags;                  /* temporary to save header status */
1384
0
    unsigned long in, out;      /* temporary to save total_in and total_out */
1385
0
    unsigned char buf[4];       /* to restore bit buffer to byte string */
1386
0
    struct inflate_state FAR *state;
1387
1388
    /* check parameters */
1389
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1390
0
    state = (struct inflate_state FAR *)strm->state;
1391
0
    if (strm->avail_in == 0 && state->bits < 8) return Z_BUF_ERROR;
1392
1393
    /* if first time, start search in bit buffer */
1394
0
    if (state->mode != SYNC) {
1395
0
        state->mode = SYNC;
1396
0
        state->hold >>= state->bits & 7;
1397
0
        state->bits -= state->bits & 7;
1398
0
        len = 0;
1399
0
        while (state->bits >= 8) {
1400
0
            buf[len++] = (unsigned char)(state->hold);
1401
0
            state->hold >>= 8;
1402
0
            state->bits -= 8;
1403
0
        }
1404
0
        state->have = 0;
1405
0
        syncsearch(&(state->have), buf, len);
1406
0
    }
1407
1408
    /* search available input */
1409
0
    len = syncsearch(&(state->have), strm->next_in, strm->avail_in);
1410
0
    strm->avail_in -= len;
1411
0
    strm->next_in += len;
1412
0
    strm->total_in += len;
1413
1414
    /* return no joy or set up to restart inflate() on a new block */
1415
0
    if (state->have != 4) return Z_DATA_ERROR;
1416
0
    if (state->flags == -1)
1417
0
        state->wrap = 0;    /* if no header yet, treat as raw */
1418
0
    else
1419
0
        state->wrap &= ~4;  /* no point in computing a check value now */
1420
0
    flags = state->flags;
1421
0
    in = strm->total_in;  out = strm->total_out;
1422
0
    inflateReset(strm);
1423
0
    strm->total_in = in;  strm->total_out = out;
1424
0
    state->flags = flags;
1425
0
    state->mode = TYPE;
1426
0
    return Z_OK;
1427
0
}
1428
1429
/*
1430
   Returns true if inflate is currently at the end of a block generated by
1431
   Z_SYNC_FLUSH or Z_FULL_FLUSH. This function is used by one PPP
1432
   implementation to provide an additional safety check. PPP uses
1433
   Z_SYNC_FLUSH but removes the length bytes of the resulting empty stored
1434
   block. When decompressing, PPP checks that at the end of input packet,
1435
   inflate is waiting for these length bytes.
1436
 */
1437
0
int ZEXPORT inflateSyncPoint(z_streamp strm) {
1438
0
    struct inflate_state FAR *state;
1439
1440
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1441
0
    state = (struct inflate_state FAR *)strm->state;
1442
0
    return state->mode == STORED && state->bits == 0;
1443
0
}
1444
1445
0
int ZEXPORT inflateCopy(z_streamp dest, z_streamp source) {
1446
0
    struct inflate_state FAR *state;
1447
0
    struct inflate_state FAR *copy;
1448
0
    unsigned char FAR *window;
1449
0
    unsigned wsize;
1450
1451
    /* check input */
1452
0
    if (inflateStateCheck(source) || dest == Z_NULL)
1453
0
        return Z_STREAM_ERROR;
1454
0
    state = (struct inflate_state FAR *)source->state;
1455
1456
    /* allocate space */
1457
0
    copy = (struct inflate_state FAR *)
1458
0
           ZALLOC(source, 1, sizeof(struct inflate_state));
1459
0
    if (copy == Z_NULL) return Z_MEM_ERROR;
1460
0
    window = Z_NULL;
1461
0
    if (state->window != Z_NULL) {
1462
0
        window = (unsigned char FAR *)
1463
0
                 ZALLOC(source, 1U << state->wbits, sizeof(unsigned char));
1464
0
        if (window == Z_NULL) {
1465
0
            ZFREE(source, copy);
1466
0
            return Z_MEM_ERROR;
1467
0
        }
1468
0
    }
1469
1470
    /* copy state */
1471
0
    zmemcpy((voidpf)dest, (voidpf)source, sizeof(z_stream));
1472
0
    zmemcpy((voidpf)copy, (voidpf)state, sizeof(struct inflate_state));
1473
0
    copy->strm = dest;
1474
0
    if (state->lencode >= state->codes &&
1475
0
        state->lencode <= state->codes + ENOUGH - 1) {
1476
0
        copy->lencode = copy->codes + (state->lencode - state->codes);
1477
0
        copy->distcode = copy->codes + (state->distcode - state->codes);
1478
0
    }
1479
0
    copy->next = copy->codes + (state->next - state->codes);
1480
0
    if (window != Z_NULL) {
1481
0
        wsize = 1U << state->wbits;
1482
0
        zmemcpy(window, state->window, wsize);
1483
0
    }
1484
0
    copy->window = window;
1485
0
    dest->state = (struct internal_state FAR *)copy;
1486
0
    return Z_OK;
1487
0
}
1488
1489
0
int ZEXPORT inflateUndermine(z_streamp strm, int subvert) {
1490
0
    struct inflate_state FAR *state;
1491
1492
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1493
0
    state = (struct inflate_state FAR *)strm->state;
1494
#ifdef INFLATE_ALLOW_INVALID_DISTANCE_TOOFAR_ARRR
1495
    state->sane = !subvert;
1496
    return Z_OK;
1497
#else
1498
0
    (void)subvert;
1499
0
    state->sane = 1;
1500
0
    return Z_DATA_ERROR;
1501
0
#endif
1502
0
}
1503
1504
0
int ZEXPORT inflateValidate(z_streamp strm, int check) {
1505
0
    struct inflate_state FAR *state;
1506
1507
0
    if (inflateStateCheck(strm)) return Z_STREAM_ERROR;
1508
0
    state = (struct inflate_state FAR *)strm->state;
1509
0
    if (check && state->wrap)
1510
0
        state->wrap |= 4;
1511
0
    else
1512
0
        state->wrap &= ~4;
1513
0
    return Z_OK;
1514
0
}
1515
1516
0
long ZEXPORT inflateMark(z_streamp strm) {
1517
0
    struct inflate_state FAR *state;
1518
1519
0
    if (inflateStateCheck(strm))
1520
0
        return -(1L << 16);
1521
0
    state = (struct inflate_state FAR *)strm->state;
1522
0
    return (long)(((unsigned long)((long)state->back)) << 16) +
1523
0
        (state->mode == COPY ? state->length :
1524
0
            (state->mode == MATCH ? state->was - state->length : 0));
1525
0
}
1526
1527
0
unsigned long ZEXPORT inflateCodesUsed(z_streamp strm) {
1528
0
    struct inflate_state FAR *state;
1529
0
    if (inflateStateCheck(strm)) return (unsigned long)-1;
1530
0
    state = (struct inflate_state FAR *)strm->state;
1531
0
    return (unsigned long)(state->next - state->codes);
1532
0
}