blob: 7b7dd63230367d4cb850aaf4a2c737fa74d21390 [file] [log] [blame]
xf.li84027492024-04-09 00:17:51 -07001/*
2 * This file is derived from various .h and .c files from the zlib-0.95
3 * distribution by Jean-loup Gailly and Mark Adler, with some additions
4 * by Paul Mackerras to aid in implementing Deflate compression and
5 * decompression for PPP packets. See zlib.h for conditions of
6 * distribution and use.
7 *
8 * Changes that have been made include:
9 * - changed functions not used outside this file to "local"
10 * - added minCompression parameter to deflateInit2
11 * - added Z_PACKET_FLUSH (see zlib.h for details)
12 * - added inflateIncomp
13 *
14 * $Id: zlib.c,v 1.2 1999/04/01 07:26:30 paulus Exp $
15 */
16
17
18/*+++++*/
19/* zutil.h -- internal interface and configuration of the compression library
20 * Copyright (C) 1995 Jean-loup Gailly.
21 * For conditions of distribution and use, see copyright notice in zlib.h
22 */
23
24/* WARNING: this file should *not* be used by applications. It is
25 part of the implementation of the compression library and is
26 subject to change. Applications should only use zlib.h.
27 */
28
29/* From: zutil.h,v 1.9 1995/05/03 17:27:12 jloup Exp */
30
31#define _Z_UTIL_H
32
33#include "zlib.h"
34
35#ifdef STDC
36# include <string.h>
37#endif
38
39#ifndef local
40# define local static
41#endif
42/* compile with -Dlocal if your debugger can't find static symbols */
43
44#define FAR
45
46typedef unsigned char uch;
47typedef uch FAR uchf;
48typedef unsigned short ush;
49typedef ush FAR ushf;
50typedef unsigned long ulg;
51
52extern char *z_errmsg[]; /* indexed by 1-zlib_error */
53
54#define ERR_RETURN(strm,err) return (strm->msg=z_errmsg[1-err], err)
55/* To be used only when the state is known to be valid */
56
57#ifndef NULL
58#define NULL ((void *) 0)
59#endif
60
61 /* common constants */
62
63#define DEFLATED 8
64
65#ifndef DEF_WBITS
66# define DEF_WBITS MAX_WBITS
67#endif
68/* default windowBits for decompression. MAX_WBITS is for compression only */
69
70#if MAX_MEM_LEVEL >= 8
71# define DEF_MEM_LEVEL 8
72#else
73# define DEF_MEM_LEVEL MAX_MEM_LEVEL
74#endif
75/* default memLevel */
76
77#define STORED_BLOCK 0
78#define STATIC_TREES 1
79#define DYN_TREES 2
80/* The three kinds of block type */
81
82#define MIN_MATCH 3
83#define MAX_MATCH 258
84/* The minimum and maximum match lengths */
85
86 /* functions */
87
88#if defined(STDC) && !defined(HAVE_MEMCPY) && !defined(NO_MEMCPY)
89# define HAVE_MEMCPY
90#endif
91#ifdef HAVE_MEMCPY
92# define zmemcpy memcpy
93# define zmemzero(dest, len) memset(dest, 0, len)
94#else
95# define zmemcpy(d, s, n) bcopy((s), (d), (n))
96# define zmemzero bzero
97#endif
98
99/* Diagnostic functions */
100#ifdef DEBUG_ZLIB
101# include <stdio.h>
102# ifndef verbose
103# define verbose 0
104# endif
105# define Assert(cond,msg) {if(!(cond)) z_error(msg);}
106# define Trace(x) fprintf x
107# define Tracev(x) {if (verbose) fprintf x ;}
108# define Tracevv(x) {if (verbose>1) fprintf x ;}
109# define Tracec(c,x) {if (verbose && (c)) fprintf x ;}
110# define Tracecv(c,x) {if (verbose>1 && (c)) fprintf x ;}
111#else
112# define Assert(cond,msg)
113# define Trace(x)
114# define Tracev(x)
115# define Tracevv(x)
116# define Tracec(c,x)
117# define Tracecv(c,x)
118#endif
119
120
121typedef uLong (*check_func) OF((uLong check, Bytef *buf, uInt len));
122
123/* voidpf zcalloc OF((voidpf opaque, unsigned items, unsigned size)); */
124/* void zcfree OF((voidpf opaque, voidpf ptr)); */
125
126#define ZALLOC(strm, items, size) \
127 (*((strm)->zalloc))((strm)->opaque, (items), (size))
128#define ZFREE(strm, addr, size) \
129 (*((strm)->zfree))((strm)->opaque, (voidpf)(addr), (size))
130#define TRY_FREE(s, p, n) {if (p) ZFREE(s, p, n);}
131
132/*+++++*/
133/* infblock.h -- header to use infblock.c
134 * Copyright (C) 1995 Mark Adler
135 * For conditions of distribution and use, see copyright notice in zlib.h
136 */
137
138/* WARNING: this file should *not* be used by applications. It is
139 part of the implementation of the compression library and is
140 subject to change. Applications should only use zlib.h.
141 */
142
143struct inflate_blocks_state;
144typedef struct inflate_blocks_state FAR inflate_blocks_statef;
145
146local inflate_blocks_statef * inflate_blocks_new OF((
147 z_stream *z,
148 check_func c, /* check function */
149 uInt w)); /* window size */
150
151local int inflate_blocks OF((
152 inflate_blocks_statef *,
153 z_stream *,
154 int)); /* initial return code */
155
156local void inflate_blocks_reset OF((
157 inflate_blocks_statef *,
158 z_stream *,
159 uLongf *)); /* check value on output */
160
161local int inflate_blocks_free OF((
162 inflate_blocks_statef *,
163 z_stream *,
164 uLongf *)); /* check value on output */
165
166local int inflate_addhistory OF((
167 inflate_blocks_statef *,
168 z_stream *));
169
170local int inflate_packet_flush OF((
171 inflate_blocks_statef *));
172
173/*+++++*/
174/* inftrees.h -- header to use inftrees.c
175 * Copyright (C) 1995 Mark Adler
176 * For conditions of distribution and use, see copyright notice in zlib.h
177 */
178
179/* WARNING: this file should *not* be used by applications. It is
180 part of the implementation of the compression library and is
181 subject to change. Applications should only use zlib.h.
182 */
183
184/* Huffman code lookup table entry--this entry is four bytes for machines
185 that have 16-bit pointers (e.g. PC's in the small or medium model). */
186
187typedef struct inflate_huft_s FAR inflate_huft;
188
189struct inflate_huft_s {
190 union {
191 struct {
192 Byte Exop; /* number of extra bits or operation */
193 Byte Bits; /* number of bits in this code or subcode */
194 } what;
195 uInt Nalloc; /* number of these allocated here */
196 Bytef *pad; /* pad structure to a power of 2 (4 bytes for */
197 } word; /* 16-bit, 8 bytes for 32-bit machines) */
198 union {
199 uInt Base; /* literal, length base, or distance base */
200 inflate_huft *Next; /* pointer to next level of table */
201 } more;
202};
203
204#ifdef DEBUG_ZLIB
205 local uInt inflate_hufts;
206#endif
207
208local int inflate_trees_bits OF((
209 uIntf *, /* 19 code lengths */
210 uIntf *, /* bits tree desired/actual depth */
211 inflate_huft * FAR *, /* bits tree result */
212 z_stream *)); /* for zalloc, zfree functions */
213
214local int inflate_trees_dynamic OF((
215 uInt, /* number of literal/length codes */
216 uInt, /* number of distance codes */
217 uIntf *, /* that many (total) code lengths */
218 uIntf *, /* literal desired/actual bit depth */
219 uIntf *, /* distance desired/actual bit depth */
220 inflate_huft * FAR *, /* literal/length tree result */
221 inflate_huft * FAR *, /* distance tree result */
222 z_stream *)); /* for zalloc, zfree functions */
223
224local int inflate_trees_fixed OF((
225 uIntf *, /* literal desired/actual bit depth */
226 uIntf *, /* distance desired/actual bit depth */
227 inflate_huft * FAR *, /* literal/length tree result */
228 inflate_huft * FAR *)); /* distance tree result */
229
230local int inflate_trees_free OF((
231 inflate_huft *, /* tables to free */
232 z_stream *)); /* for zfree function */
233
234
235/*+++++*/
236/* infcodes.h -- header to use infcodes.c
237 * Copyright (C) 1995 Mark Adler
238 * For conditions of distribution and use, see copyright notice in zlib.h
239 */
240
241/* WARNING: this file should *not* be used by applications. It is
242 part of the implementation of the compression library and is
243 subject to change. Applications should only use zlib.h.
244 */
245
246struct inflate_codes_state;
247typedef struct inflate_codes_state FAR inflate_codes_statef;
248
249local inflate_codes_statef *inflate_codes_new OF((
250 uInt, uInt,
251 inflate_huft *, inflate_huft *,
252 z_stream *));
253
254local int inflate_codes OF((
255 inflate_blocks_statef *,
256 z_stream *,
257 int));
258
259local void inflate_codes_free OF((
260 inflate_codes_statef *,
261 z_stream *));
262
263
264/*+++++*/
265/* inflate.c -- zlib interface to inflate modules
266 * Copyright (C) 1995 Mark Adler
267 * For conditions of distribution and use, see copyright notice in zlib.h
268 */
269
270/* inflate private state */
271struct internal_state {
272
273 /* mode */
274 enum {
275 METHOD, /* waiting for method byte */
276 FLAG, /* waiting for flag byte */
277 BLOCKS, /* decompressing blocks */
278 CHECK4, /* four check bytes to go */
279 CHECK3, /* three check bytes to go */
280 CHECK2, /* two check bytes to go */
281 CHECK1, /* one check byte to go */
282 DONE, /* finished check, done */
283 BAD} /* got an error--stay here */
284 mode; /* current inflate mode */
285
286 /* mode dependent information */
287 union {
288 uInt method; /* if FLAGS, method byte */
289 struct {
290 uLong was; /* computed check value */
291 uLong need; /* stream check value */
292 } check; /* if CHECK, check values to compare */
293 uInt marker; /* if BAD, inflateSync's marker bytes count */
294 } sub; /* submode */
295
296 /* mode independent information */
297 int nowrap; /* flag for no wrapper */
298 uInt wbits; /* log2(window size) (8..15, defaults to 15) */
299 inflate_blocks_statef
300 *blocks; /* current inflate_blocks state */
301
302};
303
304
305int inflateReset(z)
306z_stream *z;
307{
308 uLong c;
309
310 if (z == Z_NULL || z->state == Z_NULL)
311 return Z_STREAM_ERROR;
312 z->total_in = z->total_out = 0;
313 z->msg = Z_NULL;
314 z->state->mode = z->state->nowrap ? BLOCKS : METHOD;
315 inflate_blocks_reset(z->state->blocks, z, &c);
316 Trace((stderr, "inflate: reset\n"));
317 return Z_OK;
318}
319
320
321int inflateEnd(z)
322z_stream *z;
323{
324 uLong c;
325
326 if (z == Z_NULL || z->state == Z_NULL || z->zfree == Z_NULL)
327 return Z_STREAM_ERROR;
328 if (z->state->blocks != Z_NULL)
329 inflate_blocks_free(z->state->blocks, z, &c);
330 ZFREE(z, z->state, sizeof(struct internal_state));
331 z->state = Z_NULL;
332 Trace((stderr, "inflate: end\n"));
333 return Z_OK;
334}
335
336
337int inflateInit2(z, w)
338z_stream *z;
339int w;
340{
341 /* initialize state */
342 if (z == Z_NULL)
343 return Z_STREAM_ERROR;
344/* if (z->zalloc == Z_NULL) z->zalloc = zcalloc; */
345/* if (z->zfree == Z_NULL) z->zfree = zcfree; */
346 if ((z->state = (struct internal_state FAR *)
347 ZALLOC(z,1,sizeof(struct internal_state))) == Z_NULL)
348 return Z_MEM_ERROR;
349 z->state->blocks = Z_NULL;
350
351 /* handle undocumented nowrap option (no zlib header or check) */
352 z->state->nowrap = 0;
353 if (w < 0)
354 {
355 w = - w;
356 z->state->nowrap = 1;
357 }
358
359 /* set window size */
360 if (w < 8 || w > 15)
361 {
362 inflateEnd(z);
363 return Z_STREAM_ERROR;
364 }
365 z->state->wbits = (uInt)w;
366
367 /* create inflate_blocks state */
368 if ((z->state->blocks =
369 inflate_blocks_new(z, z->state->nowrap ? Z_NULL : adler32, 1 << w))
370 == Z_NULL)
371 {
372 inflateEnd(z);
373 return Z_MEM_ERROR;
374 }
375 Trace((stderr, "inflate: allocated\n"));
376
377 /* reset state */
378 inflateReset(z);
379 return Z_OK;
380}
381
382
383int inflateInit(z)
384z_stream *z;
385{
386 return inflateInit2(z, DEF_WBITS);
387}
388
389
390#define NEEDBYTE {if(z->avail_in==0)goto empty;r=Z_OK;}
391#define NEXTBYTE (z->avail_in--,z->total_in++,*z->next_in++)
392
393int inflate(z, f)
394z_stream *z;
395int f;
396{
397 int r;
398 uInt b;
399
400 if (z == Z_NULL || z->next_in == Z_NULL)
401 return Z_STREAM_ERROR;
402 r = Z_BUF_ERROR;
403 while (1) switch (z->state->mode)
404 {
405 case METHOD:
406 NEEDBYTE
407 if (((z->state->sub.method = NEXTBYTE) & 0xf) != DEFLATED)
408 {
409 z->state->mode = BAD;
410 z->msg = "unknown compression method";
411 z->state->sub.marker = 5; /* can't try inflateSync */
412 break;
413 }
414 if ((z->state->sub.method >> 4) + 8 > z->state->wbits)
415 {
416 z->state->mode = BAD;
417 z->msg = "invalid window size";
418 z->state->sub.marker = 5; /* can't try inflateSync */
419 break;
420 }
421 z->state->mode = FLAG;
422 case FLAG:
423 NEEDBYTE
424 if ((b = NEXTBYTE) & 0x20)
425 {
426 z->state->mode = BAD;
427 z->msg = "invalid reserved bit";
428 z->state->sub.marker = 5; /* can't try inflateSync */
429 break;
430 }
431 if (((z->state->sub.method << 8) + b) % 31)
432 {
433 z->state->mode = BAD;
434 z->msg = "incorrect header check";
435 z->state->sub.marker = 5; /* can't try inflateSync */
436 break;
437 }
438 Trace((stderr, "inflate: zlib header ok\n"));
439 z->state->mode = BLOCKS;
440 case BLOCKS:
441 r = inflate_blocks(z->state->blocks, z, r);
442 if (f == Z_PACKET_FLUSH && z->avail_in == 0 && z->avail_out != 0)
443 r = inflate_packet_flush(z->state->blocks);
444 if (r == Z_DATA_ERROR)
445 {
446 z->state->mode = BAD;
447 z->state->sub.marker = 0; /* can try inflateSync */
448 break;
449 }
450 if (r != Z_STREAM_END)
451 return r;
452 r = Z_OK;
453 inflate_blocks_reset(z->state->blocks, z, &z->state->sub.check.was);
454 if (z->state->nowrap)
455 {
456 z->state->mode = DONE;
457 break;
458 }
459 z->state->mode = CHECK4;
460 case CHECK4:
461 NEEDBYTE
462 z->state->sub.check.need = (uLong)NEXTBYTE << 24;
463 z->state->mode = CHECK3;
464 case CHECK3:
465 NEEDBYTE
466 z->state->sub.check.need += (uLong)NEXTBYTE << 16;
467 z->state->mode = CHECK2;
468 case CHECK2:
469 NEEDBYTE
470 z->state->sub.check.need += (uLong)NEXTBYTE << 8;
471 z->state->mode = CHECK1;
472 case CHECK1:
473 NEEDBYTE
474 z->state->sub.check.need += (uLong)NEXTBYTE;
475
476 if (z->state->sub.check.was != z->state->sub.check.need)
477 {
478 z->state->mode = BAD;
479 z->msg = "incorrect data check";
480 z->state->sub.marker = 5; /* can't try inflateSync */
481 break;
482 }
483 Trace((stderr, "inflate: zlib check ok\n"));
484 z->state->mode = DONE;
485 case DONE:
486 return Z_STREAM_END;
487 case BAD:
488 return Z_DATA_ERROR;
489 default:
490 return Z_STREAM_ERROR;
491 }
492
493 empty:
494 if (f != Z_PACKET_FLUSH)
495 return r;
496 z->state->mode = BAD;
497 z->state->sub.marker = 0; /* can try inflateSync */
498 return Z_DATA_ERROR;
499}
500
501/*
502 * This subroutine adds the data at next_in/avail_in to the output history
503 * without performing any output. The output buffer must be "caught up";
504 * i.e. no pending output (hence s->read equals s->write), and the state must
505 * be BLOCKS (i.e. we should be willing to see the start of a series of
506 * BLOCKS). On exit, the output will also be caught up, and the checksum
507 * will have been updated if need be.
508 */
509
510int inflateIncomp(z)
511z_stream *z;
512{
513 if (z->state->mode != BLOCKS)
514 return Z_DATA_ERROR;
515 return inflate_addhistory(z->state->blocks, z);
516}
517
518
519int inflateSync(z)
520z_stream *z;
521{
522 uInt n; /* number of bytes to look at */
523 Bytef *p; /* pointer to bytes */
524 uInt m; /* number of marker bytes found in a row */
525 uLong r, w; /* temporaries to save total_in and total_out */
526
527 /* set up */
528 if (z == Z_NULL || z->state == Z_NULL)
529 return Z_STREAM_ERROR;
530 if (z->state->mode != BAD)
531 {
532 z->state->mode = BAD;
533 z->state->sub.marker = 0;
534 }
535 if ((n = z->avail_in) == 0)
536 return Z_BUF_ERROR;
537 p = z->next_in;
538 m = z->state->sub.marker;
539
540 /* search */
541 while (n && m < 4)
542 {
543 if (*p == (Byte)(m < 2 ? 0 : 0xff))
544 m++;
545 else if (*p)
546 m = 0;
547 else
548 m = 4 - m;
549 p++, n--;
550 }
551
552 /* restore */
553 z->total_in += p - z->next_in;
554 z->next_in = p;
555 z->avail_in = n;
556 z->state->sub.marker = m;
557
558 /* return no joy or set up to restart on a new block */
559 if (m != 4)
560 return Z_DATA_ERROR;
561 r = z->total_in; w = z->total_out;
562 inflateReset(z);
563 z->total_in = r; z->total_out = w;
564 z->state->mode = BLOCKS;
565 return Z_OK;
566}
567
568#undef NEEDBYTE
569#undef NEXTBYTE
570
571/*+++++*/
572/* infutil.h -- types and macros common to blocks and codes
573 * Copyright (C) 1995 Mark Adler
574 * For conditions of distribution and use, see copyright notice in zlib.h
575 */
576
577/* WARNING: this file should *not* be used by applications. It is
578 part of the implementation of the compression library and is
579 subject to change. Applications should only use zlib.h.
580 */
581
582/* inflate blocks semi-private state */
583struct inflate_blocks_state {
584
585 /* mode */
586 enum {
587 TYPE, /* get type bits (3, including end bit) */
588 LENS, /* get lengths for stored */
589 STORED, /* processing stored block */
590 TABLE, /* get table lengths */
591 BTREE, /* get bit lengths tree for a dynamic block */
592 DTREE, /* get length, distance trees for a dynamic block */
593 CODES, /* processing fixed or dynamic block */
594 DRY, /* output remaining window bytes */
595 DONEB, /* finished last block, done */
596 BADB} /* got a data error--stuck here */
597 mode; /* current inflate_block mode */
598
599 /* mode dependent information */
600 union {
601 uInt left; /* if STORED, bytes left to copy */
602 struct {
603 uInt table; /* table lengths (14 bits) */
604 uInt index; /* index into blens (or border) */
605 uIntf *blens; /* bit lengths of codes */
606 uInt bb; /* bit length tree depth */
607 inflate_huft *tb; /* bit length decoding tree */
608 int nblens; /* # elements allocated at blens */
609 } trees; /* if DTREE, decoding info for trees */
610 struct {
611 inflate_huft *tl, *td; /* trees to free */
612 inflate_codes_statef
613 *codes;
614 } decode; /* if CODES, current state */
615 } sub; /* submode */
616 uInt last; /* true if this block is the last block */
617
618 /* mode independent information */
619 uInt bitk; /* bits in bit buffer */
620 uLong bitb; /* bit buffer */
621 Bytef *window; /* sliding window */
622 Bytef *end; /* one byte after sliding window */
623 Bytef *read; /* window read pointer */
624 Bytef *write; /* window write pointer */
625 check_func checkfn; /* check function */
626 uLong check; /* check on output */
627
628};
629
630
631/* defines for inflate input/output */
632/* update pointers and return */
633#define UPDBITS {s->bitb=b;s->bitk=k;}
634#define UPDIN {z->avail_in=n;z->total_in+=p-z->next_in;z->next_in=p;}
635#define UPDOUT {s->write=q;}
636#define UPDATE {UPDBITS UPDIN UPDOUT}
637#define LEAVE {UPDATE return inflate_flush(s,z,r);}
638/* get bytes and bits */
639#define LOADIN {p=z->next_in;n=z->avail_in;b=s->bitb;k=s->bitk;}
640#define NEEDBYTE {if(n)r=Z_OK;else LEAVE}
641#define NEXTBYTE (n--,*p++)
642#define NEEDBITS(j) {while(k<(j)){NEEDBYTE;b|=((uLong)NEXTBYTE)<<k;k+=8;}}
643#define DUMPBITS(j) {b>>=(j);k-=(j);}
644/* output bytes */
645#define WAVAIL (q<s->read?s->read-q-1:s->end-q)
646#define LOADOUT {q=s->write;m=WAVAIL;}
647#define WRAP {if(q==s->end&&s->read!=s->window){q=s->window;m=WAVAIL;}}
648#define FLUSH {UPDOUT r=inflate_flush(s,z,r); LOADOUT}
649#define NEEDOUT {if(m==0){WRAP if(m==0){FLUSH WRAP if(m==0) LEAVE}}r=Z_OK;}
650#define OUTBYTE(a) {*q++=(Byte)(a);m--;}
651/* load local pointers */
652#define LOAD {LOADIN LOADOUT}
653
654/* And'ing with mask[n] masks the lower n bits */
655local uInt inflate_mask[] = {
656 0x0000,
657 0x0001, 0x0003, 0x0007, 0x000f, 0x001f, 0x003f, 0x007f, 0x00ff,
658 0x01ff, 0x03ff, 0x07ff, 0x0fff, 0x1fff, 0x3fff, 0x7fff, 0xffff
659};
660
661/* copy as much as possible from the sliding window to the output area */
662local int inflate_flush OF((
663 inflate_blocks_statef *,
664 z_stream *,
665 int));
666
667/*+++++*/
668/* inffast.h -- header to use inffast.c
669 * Copyright (C) 1995 Mark Adler
670 * For conditions of distribution and use, see copyright notice in zlib.h
671 */
672
673/* WARNING: this file should *not* be used by applications. It is
674 part of the implementation of the compression library and is
675 subject to change. Applications should only use zlib.h.
676 */
677
678local int inflate_fast OF((
679 uInt,
680 uInt,
681 inflate_huft *,
682 inflate_huft *,
683 inflate_blocks_statef *,
684 z_stream *));
685
686
687/*+++++*/
688/* infblock.c -- interpret and process block types to last block
689 * Copyright (C) 1995 Mark Adler
690 * For conditions of distribution and use, see copyright notice in zlib.h
691 */
692
693/* Table for deflate from PKZIP's appnote.txt. */
694local uInt border[] = { /* Order of the bit length code lengths */
695 16, 17, 18, 0, 8, 7, 9, 6, 10, 5, 11, 4, 12, 3, 13, 2, 14, 1, 15};
696
697/*
698 Notes beyond the 1.93a appnote.txt:
699
700 1. Distance pointers never point before the beginning of the output
701 stream.
702 2. Distance pointers can point back across blocks, up to 32k away.
703 3. There is an implied maximum of 7 bits for the bit length table and
704 15 bits for the actual data.
705 4. If only one code exists, then it is encoded using one bit. (Zero
706 would be more efficient, but perhaps a little confusing.) If two
707 codes exist, they are coded using one bit each (0 and 1).
708 5. There is no way of sending zero distance codes--a dummy must be
709 sent if there are none. (History: a pre 2.0 version of PKZIP would
710 store blocks with no distance codes, but this was discovered to be
711 too harsh a criterion.) Valid only for 1.93a. 2.04c does allow
712 zero distance codes, which is sent as one code of zero bits in
713 length.
714 6. There are up to 286 literal/length codes. Code 256 represents the
715 end-of-block. Note however that the static length tree defines
716 288 codes just to fill out the Huffman codes. Codes 286 and 287
717 cannot be used though, since there is no length base or extra bits
718 defined for them. Similarily, there are up to 30 distance codes.
719 However, static trees define 32 codes (all 5 bits) to fill out the
720 Huffman codes, but the last two had better not show up in the data.
721 7. Unzip can check dynamic Huffman blocks for complete code sets.
722 The exception is that a single code would not be complete (see #4).
723 8. The five bits following the block type is really the number of
724 literal codes sent minus 257.
725 9. Length codes 8,16,16 are interpreted as 13 length codes of 8 bits
726 (1+6+6). Therefore, to output three times the length, you output
727 three codes (1+1+1), whereas to output four times the same length,
728 you only need two codes (1+3). Hmm.
729 10. In the tree reconstruction algorithm, Code = Code + Increment
730 only if BitLength(i) is not zero. (Pretty obvious.)
731 11. Correction: 4 Bits: # of Bit Length codes - 4 (4 - 19)
732 12. Note: length code 284 can represent 227-258, but length code 285
733 really is 258. The last length deserves its own, short code
734 since it gets used a lot in very redundant files. The length
735 258 is special since 258 - 3 (the min match length) is 255.
736 13. The literal/length and distance code bit lengths are read as a
737 single stream of lengths. It is possible (and advantageous) for
738 a repeat code (16, 17, or 18) to go across the boundary between
739 the two sets of lengths.
740 */
741
742
743local void inflate_blocks_reset(s, z, c)
744inflate_blocks_statef *s;
745z_stream *z;
746uLongf *c;
747{
748 if (s->checkfn != Z_NULL)
749 *c = s->check;
750 if (s->mode == BTREE || s->mode == DTREE)
751 ZFREE(z, s->sub.trees.blens, s->sub.trees.nblens * sizeof(uInt));
752 if (s->mode == CODES)
753 {
754 inflate_codes_free(s->sub.decode.codes, z);
755 inflate_trees_free(s->sub.decode.td, z);
756 inflate_trees_free(s->sub.decode.tl, z);
757 }
758 s->mode = TYPE;
759 s->bitk = 0;
760 s->bitb = 0;
761 s->read = s->write = s->window;
762 if (s->checkfn != Z_NULL)
763 s->check = (*s->checkfn)(0L, Z_NULL, 0);
764 Trace((stderr, "inflate: blocks reset\n"));
765}
766
767
768local inflate_blocks_statef *inflate_blocks_new(z, c, w)
769z_stream *z;
770check_func c;
771uInt w;
772{
773 inflate_blocks_statef *s;
774
775 if ((s = (inflate_blocks_statef *)ZALLOC
776 (z,1,sizeof(struct inflate_blocks_state))) == Z_NULL)
777 return s;
778 if ((s->window = (Bytef *)ZALLOC(z, 1, w)) == Z_NULL)
779 {
780 ZFREE(z, s, sizeof(struct inflate_blocks_state));
781 return Z_NULL;
782 }
783 s->end = s->window + w;
784 s->checkfn = c;
785 s->mode = TYPE;
786 Trace((stderr, "inflate: blocks allocated\n"));
787 inflate_blocks_reset(s, z, &s->check);
788 return s;
789}
790
791
792local int inflate_blocks(s, z, r)
793inflate_blocks_statef *s;
794z_stream *z;
795int r;
796{
797 uInt t; /* temporary storage */
798 uLong b; /* bit buffer */
799 uInt k; /* bits in bit buffer */
800 Bytef *p; /* input data pointer */
801 uInt n; /* bytes available there */
802 Bytef *q; /* output window write pointer */
803 uInt m; /* bytes to end of window or read pointer */
804
805 /* copy input/output information to locals (UPDATE macro restores) */
806 LOAD
807
808 /* process input based on current state */
809 while (1) switch (s->mode)
810 {
811 case TYPE:
812 NEEDBITS(3)
813 t = (uInt)b & 7;
814 s->last = t & 1;
815 switch (t >> 1)
816 {
817 case 0: /* stored */
818 Trace((stderr, "inflate: stored block%s\n",
819 s->last ? " (last)" : ""));
820 DUMPBITS(3)
821 t = k & 7; /* go to byte boundary */
822 DUMPBITS(t)
823 s->mode = LENS; /* get length of stored block */
824 break;
825 case 1: /* fixed */
826 Trace((stderr, "inflate: fixed codes block%s\n",
827 s->last ? " (last)" : ""));
828 {
829 uInt bl, bd;
830 inflate_huft *tl, *td;
831
832 inflate_trees_fixed(&bl, &bd, &tl, &td);
833 s->sub.decode.codes = inflate_codes_new(bl, bd, tl, td, z);
834 if (s->sub.decode.codes == Z_NULL)
835 {
836 r = Z_MEM_ERROR;
837 LEAVE
838 }
839 s->sub.decode.tl = Z_NULL; /* don't try to free these */
840 s->sub.decode.td = Z_NULL;
841 }
842 DUMPBITS(3)
843 s->mode = CODES;
844 break;
845 case 2: /* dynamic */
846 Trace((stderr, "inflate: dynamic codes block%s\n",
847 s->last ? " (last)" : ""));
848 DUMPBITS(3)
849 s->mode = TABLE;
850 break;
851 case 3: /* illegal */
852 DUMPBITS(3)
853 s->mode = BADB;
854 z->msg = "invalid block type";
855 r = Z_DATA_ERROR;
856 LEAVE
857 }
858 break;
859 case LENS:
860 NEEDBITS(32)
861 if (((~b) >> 16) != (b & 0xffff))
862 {
863 s->mode = BADB;
864 z->msg = "invalid stored block lengths";
865 r = Z_DATA_ERROR;
866 LEAVE
867 }
868 s->sub.left = (uInt)b & 0xffff;
869 b = k = 0; /* dump bits */
870 Tracev((stderr, "inflate: stored length %u\n", s->sub.left));
871 s->mode = s->sub.left ? STORED : TYPE;
872 break;
873 case STORED:
874 if (n == 0)
875 LEAVE
876 NEEDOUT
877 t = s->sub.left;
878 if (t > n) t = n;
879 if (t > m) t = m;
880 zmemcpy(q, p, t);
881 p += t; n -= t;
882 q += t; m -= t;
883 if ((s->sub.left -= t) != 0)
884 break;
885 Tracev((stderr, "inflate: stored end, %lu total out\n",
886 z->total_out + (q >= s->read ? q - s->read :
887 (s->end - s->read) + (q - s->window))));
888 s->mode = s->last ? DRY : TYPE;
889 break;
890 case TABLE:
891 NEEDBITS(14)
892 s->sub.trees.table = t = (uInt)b & 0x3fff;
893#ifndef PKZIP_BUG_WORKAROUND
894 if ((t & 0x1f) > 29 || ((t >> 5) & 0x1f) > 29)
895 {
896 s->mode = BADB;
897 z->msg = "too many length or distance symbols";
898 r = Z_DATA_ERROR;
899 LEAVE
900 }
901#endif
902 t = 258 + (t & 0x1f) + ((t >> 5) & 0x1f);
903 if (t < 19)
904 t = 19;
905 if ((s->sub.trees.blens = (uIntf*)ZALLOC(z, t, sizeof(uInt))) == Z_NULL)
906 {
907 r = Z_MEM_ERROR;
908 LEAVE
909 }
910 s->sub.trees.nblens = t;
911 DUMPBITS(14)
912 s->sub.trees.index = 0;
913 Tracev((stderr, "inflate: table sizes ok\n"));
914 s->mode = BTREE;
915 case BTREE:
916 while (s->sub.trees.index < 4 + (s->sub.trees.table >> 10))
917 {
918 NEEDBITS(3)
919 s->sub.trees.blens[border[s->sub.trees.index++]] = (uInt)b & 7;
920 DUMPBITS(3)
921 }
922 while (s->sub.trees.index < 19)
923 s->sub.trees.blens[border[s->sub.trees.index++]] = 0;
924 s->sub.trees.bb = 7;
925 t = inflate_trees_bits(s->sub.trees.blens, &s->sub.trees.bb,
926 &s->sub.trees.tb, z);
927 if (t != Z_OK)
928 {
929 r = t;
930 if (r == Z_DATA_ERROR)
931 s->mode = BADB;
932 LEAVE
933 }
934 s->sub.trees.index = 0;
935 Tracev((stderr, "inflate: bits tree ok\n"));
936 s->mode = DTREE;
937 case DTREE:
938 while (t = s->sub.trees.table,
939 s->sub.trees.index < 258 + (t & 0x1f) + ((t >> 5) & 0x1f))
940 {
941 inflate_huft *h;
942 uInt i, j, c;
943
944 t = s->sub.trees.bb;
945 NEEDBITS(t)
946 h = s->sub.trees.tb + ((uInt)b & inflate_mask[t]);
947 t = h->word.what.Bits;
948 c = h->more.Base;
949 if (c < 16)
950 {
951 DUMPBITS(t)
952 s->sub.trees.blens[s->sub.trees.index++] = c;
953 }
954 else /* c == 16..18 */
955 {
956 i = c == 18 ? 7 : c - 14;
957 j = c == 18 ? 11 : 3;
958 NEEDBITS(t + i)
959 DUMPBITS(t)
960 j += (uInt)b & inflate_mask[i];
961 DUMPBITS(i)
962 i = s->sub.trees.index;
963 t = s->sub.trees.table;
964 if (i + j > 258 + (t & 0x1f) + ((t >> 5) & 0x1f) ||
965 (c == 16 && i < 1))
966 {
967 s->mode = BADB;
968 z->msg = "invalid bit length repeat";
969 r = Z_DATA_ERROR;
970 LEAVE
971 }
972 c = c == 16 ? s->sub.trees.blens[i - 1] : 0;
973 do {
974 s->sub.trees.blens[i++] = c;
975 } while (--j);
976 s->sub.trees.index = i;
977 }
978 }
979 inflate_trees_free(s->sub.trees.tb, z);
980 s->sub.trees.tb = Z_NULL;
981 {
982 uInt bl, bd;
983 inflate_huft *tl, *td;
984 inflate_codes_statef *c;
985
986 bl = 9; /* must be <= 9 for lookahead assumptions */
987 bd = 6; /* must be <= 9 for lookahead assumptions */
988 t = s->sub.trees.table;
989 t = inflate_trees_dynamic(257 + (t & 0x1f), 1 + ((t >> 5) & 0x1f),
990 s->sub.trees.blens, &bl, &bd, &tl, &td, z);
991 if (t != Z_OK)
992 {
993 if (t == (uInt)Z_DATA_ERROR)
994 s->mode = BADB;
995 r = t;
996 LEAVE
997 }
998 Tracev((stderr, "inflate: trees ok\n"));
999 if ((c = inflate_codes_new(bl, bd, tl, td, z)) == Z_NULL)
1000 {
1001 inflate_trees_free(td, z);
1002 inflate_trees_free(tl, z);
1003 r = Z_MEM_ERROR;
1004 LEAVE
1005 }
1006 ZFREE(z, s->sub.trees.blens, s->sub.trees.nblens * sizeof(uInt));
1007 s->sub.decode.codes = c;
1008 s->sub.decode.tl = tl;
1009 s->sub.decode.td = td;
1010 }
1011 s->mode = CODES;
1012 case CODES:
1013 UPDATE
1014 if ((r = inflate_codes(s, z, r)) != Z_STREAM_END)
1015 return inflate_flush(s, z, r);
1016 r = Z_OK;
1017 inflate_codes_free(s->sub.decode.codes, z);
1018 inflate_trees_free(s->sub.decode.td, z);
1019 inflate_trees_free(s->sub.decode.tl, z);
1020 LOAD
1021 Tracev((stderr, "inflate: codes end, %lu total out\n",
1022 z->total_out + (q >= s->read ? q - s->read :
1023 (s->end - s->read) + (q - s->window))));
1024 if (!s->last)
1025 {
1026 s->mode = TYPE;
1027 break;
1028 }
1029 if (k > 7) /* return unused byte, if any */
1030 {
1031 Assert(k < 16, "inflate_codes grabbed too many bytes")
1032 k -= 8;
1033 n++;
1034 p--; /* can always return one */
1035 }
1036 s->mode = DRY;
1037 case DRY:
1038 FLUSH
1039 if (s->read != s->write)
1040 LEAVE
1041 s->mode = DONEB;
1042 case DONEB:
1043 r = Z_STREAM_END;
1044 LEAVE
1045 case BADB:
1046 r = Z_DATA_ERROR;
1047 LEAVE
1048 default:
1049 r = Z_STREAM_ERROR;
1050 LEAVE
1051 }
1052}
1053
1054
1055local int inflate_blocks_free(s, z, c)
1056inflate_blocks_statef *s;
1057z_stream *z;
1058uLongf *c;
1059{
1060 inflate_blocks_reset(s, z, c);
1061 ZFREE(z, s->window, s->end - s->window);
1062 ZFREE(z, s, sizeof(struct inflate_blocks_state));
1063 Trace((stderr, "inflate: blocks freed\n"));
1064 return Z_OK;
1065}
1066
1067/*
1068 * This subroutine adds the data at next_in/avail_in to the output history
1069 * without performing any output. The output buffer must be "caught up";
1070 * i.e. no pending output (hence s->read equals s->write), and the state must
1071 * be BLOCKS (i.e. we should be willing to see the start of a series of
1072 * BLOCKS). On exit, the output will also be caught up, and the checksum
1073 * will have been updated if need be.
1074 */
1075local int inflate_addhistory(s, z)
1076inflate_blocks_statef *s;
1077z_stream *z;
1078{
1079 uLong b; /* bit buffer */ /* NOT USED HERE */
1080 uInt k; /* bits in bit buffer */ /* NOT USED HERE */
1081 uInt t; /* temporary storage */
1082 Bytef *p; /* input data pointer */
1083 uInt n; /* bytes available there */
1084 Bytef *q; /* output window write pointer */
1085 uInt m; /* bytes to end of window or read pointer */
1086
1087 if (s->read != s->write)
1088 return Z_STREAM_ERROR;
1089 if (s->mode != TYPE)
1090 return Z_DATA_ERROR;
1091
1092 /* we're ready to rock */
1093 LOAD
1094 /* while there is input ready, copy to output buffer, moving
1095 * pointers as needed.
1096 */
1097 while (n) {
1098 t = n; /* how many to do */
1099 /* is there room until end of buffer? */
1100 if (t > m) t = m;
1101 /* update check information */
1102 if (s->checkfn != Z_NULL)
1103 s->check = (*s->checkfn)(s->check, q, t);
1104 zmemcpy(q, p, t);
1105 q += t;
1106 p += t;
1107 n -= t;
1108 z->total_out += t;
1109 s->read = q; /* drag read pointer forward */
1110/* WRAP */ /* expand WRAP macro by hand to handle s->read */
1111 if (q == s->end) {
1112 s->read = q = s->window;
1113 m = WAVAIL;
1114 }
1115 }
1116 UPDATE
1117 return Z_OK;
1118}
1119
1120
1121/*
1122 * At the end of a Deflate-compressed PPP packet, we expect to have seen
1123 * a `stored' block type value but not the (zero) length bytes.
1124 */
1125local int inflate_packet_flush(s)
1126 inflate_blocks_statef *s;
1127{
1128 if (s->mode != LENS)
1129 return Z_DATA_ERROR;
1130 s->mode = TYPE;
1131 return Z_OK;
1132}
1133
1134
1135/*+++++*/
1136/* inftrees.c -- generate Huffman trees for efficient decoding
1137 * Copyright (C) 1995 Mark Adler
1138 * For conditions of distribution and use, see copyright notice in zlib.h
1139 */
1140
1141/* simplify the use of the inflate_huft type with some defines */
1142#define base more.Base
1143#define next more.Next
1144#define exop word.what.Exop
1145#define bits word.what.Bits
1146
1147
1148local int huft_build OF((
1149 uIntf *, /* code lengths in bits */
1150 uInt, /* number of codes */
1151 uInt, /* number of "simple" codes */
1152 uIntf *, /* list of base values for non-simple codes */
1153 uIntf *, /* list of extra bits for non-simple codes */
1154 inflate_huft * FAR*,/* result: starting table */
1155 uIntf *, /* maximum lookup bits (returns actual) */
1156 z_stream *)); /* for zalloc function */
1157
1158local voidpf falloc OF((
1159 voidpf, /* opaque pointer (not used) */
1160 uInt, /* number of items */
1161 uInt)); /* size of item */
1162
1163local void ffree OF((
1164 voidpf q, /* opaque pointer (not used) */
1165 voidpf p, /* what to free (not used) */
1166 uInt n)); /* number of bytes (not used) */
1167
1168/* Tables for deflate from PKZIP's appnote.txt. */
1169local uInt cplens[] = { /* Copy lengths for literal codes 257..285 */
1170 3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 15, 17, 19, 23, 27, 31,
1171 35, 43, 51, 59, 67, 83, 99, 115, 131, 163, 195, 227, 258, 0, 0};
1172 /* actually lengths - 2; also see note #13 above about 258 */
1173local uInt cplext[] = { /* Extra bits for literal codes 257..285 */
1174 0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 2, 2, 2, 2,
1175 3, 3, 3, 3, 4, 4, 4, 4, 5, 5, 5, 5, 0, 192, 192}; /* 192==invalid */
1176local uInt cpdist[] = { /* Copy offsets for distance codes 0..29 */
1177 1, 2, 3, 4, 5, 7, 9, 13, 17, 25, 33, 49, 65, 97, 129, 193,
1178 257, 385, 513, 769, 1025, 1537, 2049, 3073, 4097, 6145,
1179 8193, 12289, 16385, 24577};
1180local uInt cpdext[] = { /* Extra bits for distance codes */
1181 0, 0, 0, 0, 1, 1, 2, 2, 3, 3, 4, 4, 5, 5, 6, 6,
1182 7, 7, 8, 8, 9, 9, 10, 10, 11, 11,
1183 12, 12, 13, 13};
1184
1185/*
1186 Huffman code decoding is performed using a multi-level table lookup.
1187 The fastest way to decode is to simply build a lookup table whose
1188 size is determined by the longest code. However, the time it takes
1189 to build this table can also be a factor if the data being decoded
1190 is not very long. The most common codes are necessarily the
1191 shortest codes, so those codes dominate the decoding time, and hence
1192 the speed. The idea is you can have a shorter table that decodes the
1193 shorter, more probable codes, and then point to subsidiary tables for
1194 the longer codes. The time it costs to decode the longer codes is
1195 then traded against the time it takes to make longer tables.
1196
1197 This results of this trade are in the variables lbits and dbits
1198 below. lbits is the number of bits the first level table for literal/
1199 length codes can decode in one step, and dbits is the same thing for
1200 the distance codes. Subsequent tables are also less than or equal to
1201 those sizes. These values may be adjusted either when all of the
1202 codes are shorter than that, in which case the longest code length in
1203 bits is used, or when the shortest code is *longer* than the requested
1204 table size, in which case the length of the shortest code in bits is
1205 used.
1206
1207 There are two different values for the two tables, since they code a
1208 different number of possibilities each. The literal/length table
1209 codes 286 possible values, or in a flat code, a little over eight
1210 bits. The distance table codes 30 possible values, or a little less
1211 than five bits, flat. The optimum values for speed end up being
1212 about one bit more than those, so lbits is 8+1 and dbits is 5+1.
1213 The optimum values may differ though from machine to machine, and
1214 possibly even between compilers. Your mileage may vary.
1215 */
1216
1217
1218/* If BMAX needs to be larger than 16, then h and x[] should be uLong. */
1219#define BMAX 15 /* maximum bit length of any code */
1220#define N_MAX 288 /* maximum number of codes in any set */
1221
1222#ifdef DEBUG_ZLIB
1223 uInt inflate_hufts;
1224#endif
1225
1226local int huft_build(b, n, s, d, e, t, m, zs)
1227uIntf *b; /* code lengths in bits (all assumed <= BMAX) */
1228uInt n; /* number of codes (assumed <= N_MAX) */
1229uInt s; /* number of simple-valued codes (0..s-1) */
1230uIntf *d; /* list of base values for non-simple codes */
1231uIntf *e; /* list of extra bits for non-simple codes */
1232inflate_huft * FAR *t; /* result: starting table */
1233uIntf *m; /* maximum lookup bits, returns actual */
1234z_stream *zs; /* for zalloc function */
1235/* Given a list of code lengths and a maximum table size, make a set of
1236 tables to decode that set of codes. Return Z_OK on success, Z_BUF_ERROR
1237 if the given code set is incomplete (the tables are still built in this
1238 case), Z_DATA_ERROR if the input is invalid (all zero length codes or an
1239 over-subscribed set of lengths), or Z_MEM_ERROR if not enough memory. */
1240{
1241
1242 uInt a; /* counter for codes of length k */
1243 uInt c[BMAX+1]; /* bit length count table */
1244 uInt f; /* i repeats in table every f entries */
1245 int g; /* maximum code length */
1246 int h; /* table level */
1247 register uInt i; /* counter, current code */
1248 register uInt j; /* counter */
1249 register int k; /* number of bits in current code */
1250 int l; /* bits per table (returned in m) */
1251 register uIntf *p; /* pointer into c[], b[], or v[] */
1252 inflate_huft *q; /* points to current table */
1253 struct inflate_huft_s r; /* table entry for structure assignment */
1254 inflate_huft *u[BMAX]; /* table stack */
1255 uInt v[N_MAX]; /* values in order of bit length */
1256 register int w; /* bits before this table == (l * h) */
1257 uInt x[BMAX+1]; /* bit offsets, then code stack */
1258 uIntf *xp; /* pointer into x */
1259 int y; /* number of dummy codes added */
1260 uInt z; /* number of entries in current table */
1261
1262
1263 /* Generate counts for each bit length */
1264 p = c;
1265#define C0 *p++ = 0;
1266#define C2 C0 C0 C0 C0
1267#define C4 C2 C2 C2 C2
1268 C4 /* clear c[]--assume BMAX+1 is 16 */
1269 p = b; i = n;
1270 do {
1271 c[*p++]++; /* assume all entries <= BMAX */
1272 } while (--i);
1273 if (c[0] == n) /* null input--all zero length codes */
1274 {
1275 *t = (inflate_huft *)Z_NULL;
1276 *m = 0;
1277 return Z_OK;
1278 }
1279
1280
1281 /* Find minimum and maximum length, bound *m by those */
1282 l = *m;
1283 for (j = 1; j <= BMAX; j++)
1284 if (c[j])
1285 break;
1286 k = j; /* minimum code length */
1287 if ((uInt)l < j)
1288 l = j;
1289 for (i = BMAX; i; i--)
1290 if (c[i])
1291 break;
1292 g = i; /* maximum code length */
1293 if ((uInt)l > i)
1294 l = i;
1295 *m = l;
1296
1297
1298 /* Adjust last length count to fill out codes, if needed */
1299 for (y = 1 << j; j < i; j++, y <<= 1)
1300 if ((y -= c[j]) < 0)
1301 return Z_DATA_ERROR;
1302 if ((y -= c[i]) < 0)
1303 return Z_DATA_ERROR;
1304 c[i] += y;
1305
1306
1307 /* Generate starting offsets into the value table for each length */
1308 x[1] = j = 0;
1309 p = c + 1; xp = x + 2;
1310 while (--i) { /* note that i == g from above */
1311 *xp++ = (j += *p++);
1312 }
1313
1314
1315 /* Make a table of values in order of bit lengths */
1316 p = b; i = 0;
1317 do {
1318 if ((j = *p++) != 0)
1319 v[x[j]++] = i;
1320 } while (++i < n);
1321
1322
1323 /* Generate the Huffman codes and for each, make the table entries */
1324 x[0] = i = 0; /* first Huffman code is zero */
1325 p = v; /* grab values in bit order */
1326 h = -1; /* no tables yet--level -1 */
1327 w = -l; /* bits decoded == (l * h) */
1328 u[0] = (inflate_huft *)Z_NULL; /* just to keep compilers happy */
1329 q = (inflate_huft *)Z_NULL; /* ditto */
1330 z = 0; /* ditto */
1331
1332 /* go through the bit lengths (k already is bits in shortest code) */
1333 for (; k <= g; k++)
1334 {
1335 a = c[k];
1336 while (a--)
1337 {
1338 /* here i is the Huffman code of length k bits for value *p */
1339 /* make tables up to required level */
1340 while (k > w + l)
1341 {
1342 h++;
1343 w += l; /* previous table always l bits */
1344
1345 /* compute minimum size table less than or equal to l bits */
1346 z = (z = g - w) > (uInt)l ? l : z; /* table size upper limit */
1347 if ((f = 1 << (j = k - w)) > a + 1) /* try a k-w bit table */
1348 { /* too few codes for k-w bit table */
1349 f -= a + 1; /* deduct codes from patterns left */
1350 xp = c + k;
1351 if (j < z)
1352 while (++j < z) /* try smaller tables up to z bits */
1353 {
1354 if ((f <<= 1) <= *++xp)
1355 break; /* enough codes to use up j bits */
1356 f -= *xp; /* else deduct codes from patterns */
1357 }
1358 }
1359 z = 1 << j; /* table entries for j-bit table */
1360
1361 /* allocate and link in new table */
1362 if ((q = (inflate_huft *)ZALLOC
1363 (zs,z + 1,sizeof(inflate_huft))) == Z_NULL)
1364 {
1365 if (h)
1366 inflate_trees_free(u[0], zs);
1367 return Z_MEM_ERROR; /* not enough memory */
1368 }
1369 q->word.Nalloc = z + 1;
1370#ifdef DEBUG_ZLIB
1371 inflate_hufts += z + 1;
1372#endif
1373 *t = q + 1; /* link to list for huft_free() */
1374 *(t = &(q->next)) = Z_NULL;
1375 u[h] = ++q; /* table starts after link */
1376
1377 /* connect to last table, if there is one */
1378 if (h)
1379 {
1380 x[h] = i; /* save pattern for backing up */
1381 r.bits = (Byte)l; /* bits to dump before this table */
1382 r.exop = (Byte)j; /* bits in this table */
1383 r.next = q; /* pointer to this table */
1384 j = i >> (w - l); /* (get around Turbo C bug) */
1385 u[h-1][j] = r; /* connect to last table */
1386 }
1387 }
1388
1389 /* set up table entry in r */
1390 r.bits = (Byte)(k - w);
1391 if (p >= v + n)
1392 r.exop = 128 + 64; /* out of values--invalid code */
1393 else if (*p < s)
1394 {
1395 r.exop = (Byte)(*p < 256 ? 0 : 32 + 64); /* 256 is end-of-block */
1396 r.base = *p++; /* simple code is just the value */
1397 }
1398 else
1399 {
1400 r.exop = (Byte)e[*p - s] + 16 + 64; /* non-simple--look up in lists */
1401 r.base = d[*p++ - s];
1402 }
1403
1404 /* fill code-like entries with r */
1405 f = 1 << (k - w);
1406 for (j = i >> w; j < z; j += f)
1407 q[j] = r;
1408
1409 /* backwards increment the k-bit code i */
1410 for (j = 1 << (k - 1); i & j; j >>= 1)
1411 i ^= j;
1412 i ^= j;
1413
1414 /* backup over finished tables */
1415 while ((i & ((1 << w) - 1)) != x[h])
1416 {
1417 h--; /* don't need to update q */
1418 w -= l;
1419 }
1420 }
1421 }
1422
1423
1424 /* Return Z_BUF_ERROR if we were given an incomplete table */
1425 return y != 0 && g != 1 ? Z_BUF_ERROR : Z_OK;
1426}
1427
1428
1429local int inflate_trees_bits(c, bb, tb, z)
1430uIntf *c; /* 19 code lengths */
1431uIntf *bb; /* bits tree desired/actual depth */
1432inflate_huft * FAR *tb; /* bits tree result */
1433z_stream *z; /* for zfree function */
1434{
1435 int r;
1436
1437 r = huft_build(c, 19, 19, (uIntf*)Z_NULL, (uIntf*)Z_NULL, tb, bb, z);
1438 if (r == Z_DATA_ERROR)
1439 z->msg = "oversubscribed dynamic bit lengths tree";
1440 else if (r == Z_BUF_ERROR)
1441 {
1442 inflate_trees_free(*tb, z);
1443 z->msg = "incomplete dynamic bit lengths tree";
1444 r = Z_DATA_ERROR;
1445 }
1446 return r;
1447}
1448
1449
1450local int inflate_trees_dynamic(nl, nd, c, bl, bd, tl, td, z)
1451uInt nl; /* number of literal/length codes */
1452uInt nd; /* number of distance codes */
1453uIntf *c; /* that many (total) code lengths */
1454uIntf *bl; /* literal desired/actual bit depth */
1455uIntf *bd; /* distance desired/actual bit depth */
1456inflate_huft * FAR *tl; /* literal/length tree result */
1457inflate_huft * FAR *td; /* distance tree result */
1458z_stream *z; /* for zfree function */
1459{
1460 int r;
1461
1462 /* build literal/length tree */
1463 if ((r = huft_build(c, nl, 257, cplens, cplext, tl, bl, z)) != Z_OK)
1464 {
1465 if (r == Z_DATA_ERROR)
1466 z->msg = "oversubscribed literal/length tree";
1467 else if (r == Z_BUF_ERROR)
1468 {
1469 inflate_trees_free(*tl, z);
1470 z->msg = "incomplete literal/length tree";
1471 r = Z_DATA_ERROR;
1472 }
1473 return r;
1474 }
1475
1476 /* build distance tree */
1477 if ((r = huft_build(c + nl, nd, 0, cpdist, cpdext, td, bd, z)) != Z_OK)
1478 {
1479 if (r == Z_DATA_ERROR)
1480 z->msg = "oversubscribed literal/length tree";
1481 else if (r == Z_BUF_ERROR) {
1482#ifdef PKZIP_BUG_WORKAROUND
1483 r = Z_OK;
1484 }
1485#else
1486 inflate_trees_free(*td, z);
1487 z->msg = "incomplete literal/length tree";
1488 r = Z_DATA_ERROR;
1489 }
1490 inflate_trees_free(*tl, z);
1491 return r;
1492#endif
1493 }
1494
1495 /* done */
1496 return Z_OK;
1497}
1498
1499
1500/* build fixed tables only once--keep them here */
1501local int fixed_lock = 0;
1502local int fixed_built = 0;
1503#define FIXEDH 530 /* number of hufts used by fixed tables */
1504local uInt fixed_left = FIXEDH;
1505local inflate_huft fixed_mem[FIXEDH];
1506local uInt fixed_bl;
1507local uInt fixed_bd;
1508local inflate_huft *fixed_tl;
1509local inflate_huft *fixed_td;
1510
1511
1512local voidpf falloc(q, n, s)
1513voidpf q; /* opaque pointer (not used) */
1514uInt n; /* number of items */
1515uInt s; /* size of item */
1516{
1517 Assert(s == sizeof(inflate_huft) && n <= fixed_left,
1518 "inflate_trees falloc overflow");
1519 if (q) s++; /* to make some compilers happy */
1520 fixed_left -= n;
1521 return (voidpf)(fixed_mem + fixed_left);
1522}
1523
1524
1525local void ffree(q, p, n)
1526voidpf q;
1527voidpf p;
1528uInt n;
1529{
1530 Assert(0, "inflate_trees ffree called!");
1531 if (q) q = p; /* to make some compilers happy */
1532}
1533
1534
1535local int inflate_trees_fixed(bl, bd, tl, td)
1536uIntf *bl; /* literal desired/actual bit depth */
1537uIntf *bd; /* distance desired/actual bit depth */
1538inflate_huft * FAR *tl; /* literal/length tree result */
1539inflate_huft * FAR *td; /* distance tree result */
1540{
1541 /* build fixed tables if not built already--lock out other instances */
1542 while (++fixed_lock > 1)
1543 fixed_lock--;
1544 if (!fixed_built)
1545 {
1546 int k; /* temporary variable */
1547 unsigned c[288]; /* length list for huft_build */
1548 z_stream z; /* for falloc function */
1549
1550 /* set up fake z_stream for memory routines */
1551 z.zalloc = falloc;
1552 z.zfree = ffree;
1553 z.opaque = Z_NULL;
1554
1555 /* literal table */
1556 for (k = 0; k < 144; k++)
1557 c[k] = 8;
1558 for (; k < 256; k++)
1559 c[k] = 9;
1560 for (; k < 280; k++)
1561 c[k] = 7;
1562 for (; k < 288; k++)
1563 c[k] = 8;
1564 fixed_bl = 7;
1565 huft_build(c, 288, 257, cplens, cplext, &fixed_tl, &fixed_bl, &z);
1566
1567 /* distance table */
1568 for (k = 0; k < 30; k++)
1569 c[k] = 5;
1570 fixed_bd = 5;
1571 huft_build(c, 30, 0, cpdist, cpdext, &fixed_td, &fixed_bd, &z);
1572
1573 /* done */
1574 fixed_built = 1;
1575 }
1576 fixed_lock--;
1577 *bl = fixed_bl;
1578 *bd = fixed_bd;
1579 *tl = fixed_tl;
1580 *td = fixed_td;
1581 return Z_OK;
1582}
1583
1584
1585local int inflate_trees_free(t, z)
1586inflate_huft *t; /* table to free */
1587z_stream *z; /* for zfree function */
1588/* Free the malloc'ed tables built by huft_build(), which makes a linked
1589 list of the tables it made, with the links in a dummy first entry of
1590 each table. */
1591{
1592 register inflate_huft *p, *q;
1593
1594 /* Go through linked list, freeing from the malloced (t[-1]) address. */
1595 p = t;
1596 while (p != Z_NULL)
1597 {
1598 q = (--p)->next;
1599 ZFREE(z, p, p->word.Nalloc * sizeof(inflate_huft));
1600 p = q;
1601 }
1602 return Z_OK;
1603}
1604
1605/*+++++*/
1606/* infcodes.c -- process literals and length/distance pairs
1607 * Copyright (C) 1995 Mark Adler
1608 * For conditions of distribution and use, see copyright notice in zlib.h
1609 */
1610
1611/* simplify the use of the inflate_huft type with some defines */
1612#define base more.Base
1613#define next more.Next
1614#define exop word.what.Exop
1615#define bits word.what.Bits
1616
1617/* inflate codes private state */
1618struct inflate_codes_state {
1619
1620 /* mode */
1621 enum { /* waiting for "i:"=input, "o:"=output, "x:"=nothing */
1622 START, /* x: set up for LEN */
1623 LEN, /* i: get length/literal/eob next */
1624 LENEXT, /* i: getting length extra (have base) */
1625 DIST, /* i: get distance next */
1626 DISTEXT, /* i: getting distance extra */
1627 COPY, /* o: copying bytes in window, waiting for space */
1628 LIT, /* o: got literal, waiting for output space */
1629 WASH, /* o: got eob, possibly still output waiting */
1630 END, /* x: got eob and all data flushed */
1631 BADCODE} /* x: got error */
1632 mode; /* current inflate_codes mode */
1633
1634 /* mode dependent information */
1635 uInt len;
1636 union {
1637 struct {
1638 inflate_huft *tree; /* pointer into tree */
1639 uInt need; /* bits needed */
1640 } code; /* if LEN or DIST, where in tree */
1641 uInt lit; /* if LIT, literal */
1642 struct {
1643 uInt get; /* bits to get for extra */
1644 uInt dist; /* distance back to copy from */
1645 } copy; /* if EXT or COPY, where and how much */
1646 } sub; /* submode */
1647
1648 /* mode independent information */
1649 Byte lbits; /* ltree bits decoded per branch */
1650 Byte dbits; /* dtree bits decoder per branch */
1651 inflate_huft *ltree; /* literal/length/eob tree */
1652 inflate_huft *dtree; /* distance tree */
1653
1654};
1655
1656
1657local inflate_codes_statef *inflate_codes_new(bl, bd, tl, td, z)
1658uInt bl, bd;
1659inflate_huft *tl, *td;
1660z_stream *z;
1661{
1662 inflate_codes_statef *c;
1663
1664 if ((c = (inflate_codes_statef *)
1665 ZALLOC(z,1,sizeof(struct inflate_codes_state))) != Z_NULL)
1666 {
1667 c->mode = START;
1668 c->lbits = (Byte)bl;
1669 c->dbits = (Byte)bd;
1670 c->ltree = tl;
1671 c->dtree = td;
1672 Tracev((stderr, "inflate: codes new\n"));
1673 }
1674 return c;
1675}
1676
1677
1678local int inflate_codes(s, z, r)
1679inflate_blocks_statef *s;
1680z_stream *z;
1681int r;
1682{
1683 uInt j; /* temporary storage */
1684 inflate_huft *t; /* temporary pointer */
1685 uInt e; /* extra bits or operation */
1686 uLong b; /* bit buffer */
1687 uInt k; /* bits in bit buffer */
1688 Bytef *p; /* input data pointer */
1689 uInt n; /* bytes available there */
1690 Bytef *q; /* output window write pointer */
1691 uInt m; /* bytes to end of window or read pointer */
1692 Bytef *f; /* pointer to copy strings from */
1693 inflate_codes_statef *c = s->sub.decode.codes; /* codes state */
1694
1695 /* copy input/output information to locals (UPDATE macro restores) */
1696 LOAD
1697
1698 /* process input and output based on current state */
1699 while (1) switch (c->mode)
1700 { /* waiting for "i:"=input, "o:"=output, "x:"=nothing */
1701 case START: /* x: set up for LEN */
1702#ifndef SLOW
1703 if (m >= 258 && n >= 10)
1704 {
1705 UPDATE
1706 r = inflate_fast(c->lbits, c->dbits, c->ltree, c->dtree, s, z);
1707 LOAD
1708 if (r != Z_OK)
1709 {
1710 c->mode = r == Z_STREAM_END ? WASH : BADCODE;
1711 break;
1712 }
1713 }
1714#endif /* !SLOW */
1715 c->sub.code.need = c->lbits;
1716 c->sub.code.tree = c->ltree;
1717 c->mode = LEN;
1718 case LEN: /* i: get length/literal/eob next */
1719 j = c->sub.code.need;
1720 NEEDBITS(j)
1721 t = c->sub.code.tree + ((uInt)b & inflate_mask[j]);
1722 DUMPBITS(t->bits)
1723 e = (uInt)(t->exop);
1724 if (e == 0) /* literal */
1725 {
1726 c->sub.lit = t->base;
1727 Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ?
1728 "inflate: literal '%c'\n" :
1729 "inflate: literal 0x%02x\n", t->base));
1730 c->mode = LIT;
1731 break;
1732 }
1733 if (e & 16) /* length */
1734 {
1735 c->sub.copy.get = e & 15;
1736 c->len = t->base;
1737 c->mode = LENEXT;
1738 break;
1739 }
1740 if ((e & 64) == 0) /* next table */
1741 {
1742 c->sub.code.need = e;
1743 c->sub.code.tree = t->next;
1744 break;
1745 }
1746 if (e & 32) /* end of block */
1747 {
1748 Tracevv((stderr, "inflate: end of block\n"));
1749 c->mode = WASH;
1750 break;
1751 }
1752 c->mode = BADCODE; /* invalid code */
1753 z->msg = "invalid literal/length code";
1754 r = Z_DATA_ERROR;
1755 LEAVE
1756 case LENEXT: /* i: getting length extra (have base) */
1757 j = c->sub.copy.get;
1758 NEEDBITS(j)
1759 c->len += (uInt)b & inflate_mask[j];
1760 DUMPBITS(j)
1761 c->sub.code.need = c->dbits;
1762 c->sub.code.tree = c->dtree;
1763 Tracevv((stderr, "inflate: length %u\n", c->len));
1764 c->mode = DIST;
1765 case DIST: /* i: get distance next */
1766 j = c->sub.code.need;
1767 NEEDBITS(j)
1768 t = c->sub.code.tree + ((uInt)b & inflate_mask[j]);
1769 DUMPBITS(t->bits)
1770 e = (uInt)(t->exop);
1771 if (e & 16) /* distance */
1772 {
1773 c->sub.copy.get = e & 15;
1774 c->sub.copy.dist = t->base;
1775 c->mode = DISTEXT;
1776 break;
1777 }
1778 if ((e & 64) == 0) /* next table */
1779 {
1780 c->sub.code.need = e;
1781 c->sub.code.tree = t->next;
1782 break;
1783 }
1784 c->mode = BADCODE; /* invalid code */
1785 z->msg = "invalid distance code";
1786 r = Z_DATA_ERROR;
1787 LEAVE
1788 case DISTEXT: /* i: getting distance extra */
1789 j = c->sub.copy.get;
1790 NEEDBITS(j)
1791 c->sub.copy.dist += (uInt)b & inflate_mask[j];
1792 DUMPBITS(j)
1793 Tracevv((stderr, "inflate: distance %u\n", c->sub.copy.dist));
1794 c->mode = COPY;
1795 case COPY: /* o: copying bytes in window, waiting for space */
1796#ifndef __TURBOC__ /* Turbo C bug for following expression */
1797 f = (uInt)(q - s->window) < c->sub.copy.dist ?
1798 s->end - (c->sub.copy.dist - (q - s->window)) :
1799 q - c->sub.copy.dist;
1800#else
1801 f = q - c->sub.copy.dist;
1802 if ((uInt)(q - s->window) < c->sub.copy.dist)
1803 f = s->end - (c->sub.copy.dist - (q - s->window));
1804#endif
1805 while (c->len)
1806 {
1807 NEEDOUT
1808 OUTBYTE(*f++)
1809 if (f == s->end)
1810 f = s->window;
1811 c->len--;
1812 }
1813 c->mode = START;
1814 break;
1815 case LIT: /* o: got literal, waiting for output space */
1816 NEEDOUT
1817 OUTBYTE(c->sub.lit)
1818 c->mode = START;
1819 break;
1820 case WASH: /* o: got eob, possibly more output */
1821 FLUSH
1822 if (s->read != s->write)
1823 LEAVE
1824 c->mode = END;
1825 case END:
1826 r = Z_STREAM_END;
1827 LEAVE
1828 case BADCODE: /* x: got error */
1829 r = Z_DATA_ERROR;
1830 LEAVE
1831 default:
1832 r = Z_STREAM_ERROR;
1833 LEAVE
1834 }
1835}
1836
1837
1838local void inflate_codes_free(c, z)
1839inflate_codes_statef *c;
1840z_stream *z;
1841{
1842 ZFREE(z, c, sizeof(struct inflate_codes_state));
1843 Tracev((stderr, "inflate: codes free\n"));
1844}
1845
1846/*+++++*/
1847/* inflate_util.c -- data and routines common to blocks and codes
1848 * Copyright (C) 1995 Mark Adler
1849 * For conditions of distribution and use, see copyright notice in zlib.h
1850 */
1851
1852/* copy as much as possible from the sliding window to the output area */
1853local int inflate_flush(s, z, r)
1854inflate_blocks_statef *s;
1855z_stream *z;
1856int r;
1857{
1858 uInt n;
1859 Bytef *p, *q;
1860
1861 /* local copies of source and destination pointers */
1862 p = z->next_out;
1863 q = s->read;
1864
1865 /* compute number of bytes to copy as far as end of window */
1866 n = (uInt)((q <= s->write ? s->write : s->end) - q);
1867 if (n > z->avail_out) n = z->avail_out;
1868 if (n && r == Z_BUF_ERROR) r = Z_OK;
1869
1870 /* update counters */
1871 z->avail_out -= n;
1872 z->total_out += n;
1873
1874 /* update check information */
1875 if (s->checkfn != Z_NULL)
1876 s->check = (*s->checkfn)(s->check, q, n);
1877
1878 /* copy as far as end of window */
1879 if (p != NULL) {
1880 zmemcpy(p, q, n);
1881 p += n;
1882 }
1883 q += n;
1884
1885 /* see if more to copy at beginning of window */
1886 if (q == s->end)
1887 {
1888 /* wrap pointers */
1889 q = s->window;
1890 if (s->write == s->end)
1891 s->write = s->window;
1892
1893 /* compute bytes to copy */
1894 n = (uInt)(s->write - q);
1895 if (n > z->avail_out) n = z->avail_out;
1896 if (n && r == Z_BUF_ERROR) r = Z_OK;
1897
1898 /* update counters */
1899 z->avail_out -= n;
1900 z->total_out += n;
1901
1902 /* update check information */
1903 if (s->checkfn != Z_NULL)
1904 s->check = (*s->checkfn)(s->check, q, n);
1905
1906 /* copy */
1907 if (p != NULL) {
1908 zmemcpy(p, q, n);
1909 p += n;
1910 }
1911 q += n;
1912 }
1913
1914 /* update pointers */
1915 z->next_out = p;
1916 s->read = q;
1917
1918 /* done */
1919 return r;
1920}
1921
1922
1923/*+++++*/
1924/* inffast.c -- process literals and length/distance pairs fast
1925 * Copyright (C) 1995 Mark Adler
1926 * For conditions of distribution and use, see copyright notice in zlib.h
1927 */
1928
1929/* simplify the use of the inflate_huft type with some defines */
1930#define base more.Base
1931#define next more.Next
1932#define exop word.what.Exop
1933#define bits word.what.Bits
1934
1935/* macros for bit input with no checking and for returning unused bytes */
1936#define GRABBITS(j) {while(k<(j)){b|=((uLong)NEXTBYTE)<<k;k+=8;}}
1937#define UNGRAB {n+=(c=k>>3);p-=c;k&=7;}
1938
1939/* Called with number of bytes left to write in window at least 258
1940 (the maximum string length) and number of input bytes available
1941 at least ten. The ten bytes are six bytes for the longest length/
1942 distance pair plus four bytes for overloading the bit buffer. */
1943
1944local int inflate_fast(bl, bd, tl, td, s, z)
1945uInt bl, bd;
1946inflate_huft *tl, *td;
1947inflate_blocks_statef *s;
1948z_stream *z;
1949{
1950 inflate_huft *t; /* temporary pointer */
1951 uInt e; /* extra bits or operation */
1952 uLong b; /* bit buffer */
1953 uInt k; /* bits in bit buffer */
1954 Bytef *p; /* input data pointer */
1955 uInt n; /* bytes available there */
1956 Bytef *q; /* output window write pointer */
1957 uInt m; /* bytes to end of window or read pointer */
1958 uInt ml; /* mask for literal/length tree */
1959 uInt md; /* mask for distance tree */
1960 uInt c; /* bytes to copy */
1961 uInt d; /* distance back to copy from */
1962 Bytef *r; /* copy source pointer */
1963
1964 /* load input, output, bit values */
1965 LOAD
1966
1967 /* initialize masks */
1968 ml = inflate_mask[bl];
1969 md = inflate_mask[bd];
1970
1971 /* do until not enough input or output space for fast loop */
1972 do { /* assume called with m >= 258 && n >= 10 */
1973 /* get literal/length code */
1974 GRABBITS(20) /* max bits for literal/length code */
1975 if ((e = (t = tl + ((uInt)b & ml))->exop) == 0)
1976 {
1977 DUMPBITS(t->bits)
1978 Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ?
1979 "inflate: * literal '%c'\n" :
1980 "inflate: * literal 0x%02x\n", t->base));
1981 *q++ = (Byte)t->base;
1982 m--;
1983 continue;
1984 }
1985 do {
1986 DUMPBITS(t->bits)
1987 if (e & 16)
1988 {
1989 /* get extra bits for length */
1990 e &= 15;
1991 c = t->base + ((uInt)b & inflate_mask[e]);
1992 DUMPBITS(e)
1993 Tracevv((stderr, "inflate: * length %u\n", c));
1994
1995 /* decode distance base of block to copy */
1996 GRABBITS(15); /* max bits for distance code */
1997 e = (t = td + ((uInt)b & md))->exop;
1998 do {
1999 DUMPBITS(t->bits)
2000 if (e & 16)
2001 {
2002 /* get extra bits to add to distance base */
2003 e &= 15;
2004 GRABBITS(e) /* get extra bits (up to 13) */
2005 d = t->base + ((uInt)b & inflate_mask[e]);
2006 DUMPBITS(e)
2007 Tracevv((stderr, "inflate: * distance %u\n", d));
2008
2009 /* do the copy */
2010 m -= c;
2011 if ((uInt)(q - s->window) >= d) /* offset before dest */
2012 { /* just copy */
2013 r = q - d;
2014 *q++ = *r++; c--; /* minimum count is three, */
2015 *q++ = *r++; c--; /* so unroll loop a little */
2016 }
2017 else /* else offset after destination */
2018 {
2019 e = d - (q - s->window); /* bytes from offset to end */
2020 r = s->end - e; /* pointer to offset */
2021 if (c > e) /* if source crosses, */
2022 {
2023 c -= e; /* copy to end of window */
2024 do {
2025 *q++ = *r++;
2026 } while (--e);
2027 r = s->window; /* copy rest from start of window */
2028 }
2029 }
2030 do { /* copy all or what's left */
2031 *q++ = *r++;
2032 } while (--c);
2033 break;
2034 }
2035 else if ((e & 64) == 0)
2036 e = (t = t->next + ((uInt)b & inflate_mask[e]))->exop;
2037 else
2038 {
2039 z->msg = "invalid distance code";
2040 UNGRAB
2041 UPDATE
2042 return Z_DATA_ERROR;
2043 }
2044 } while (1);
2045 break;
2046 }
2047 if ((e & 64) == 0)
2048 {
2049 if ((e = (t = t->next + ((uInt)b & inflate_mask[e]))->exop) == 0)
2050 {
2051 DUMPBITS(t->bits)
2052 Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ?
2053 "inflate: * literal '%c'\n" :
2054 "inflate: * literal 0x%02x\n", t->base));
2055 *q++ = (Byte)t->base;
2056 m--;
2057 break;
2058 }
2059 }
2060 else if (e & 32)
2061 {
2062 Tracevv((stderr, "inflate: * end of block\n"));
2063 UNGRAB
2064 UPDATE
2065 return Z_STREAM_END;
2066 }
2067 else
2068 {
2069 z->msg = "invalid literal/length code";
2070 UNGRAB
2071 UPDATE
2072 return Z_DATA_ERROR;
2073 }
2074 } while (1);
2075 } while (m >= 258 && n >= 10);
2076
2077 /* not enough input or output--restore pointers and return */
2078 UNGRAB
2079 UPDATE
2080 return Z_OK;
2081}
2082
2083
2084/*+++++*/
2085/* zutil.c -- target dependent utility functions for the compression library
2086 * Copyright (C) 1995 Jean-loup Gailly.
2087 * For conditions of distribution and use, see copyright notice in zlib.h
2088 */
2089
2090/* From: zutil.c,v 1.8 1995/05/03 17:27:12 jloup Exp */
2091
2092char *zlib_version = ZLIB_VERSION;
2093
2094char *z_errmsg[] = {
2095"stream end", /* Z_STREAM_END 1 */
2096"", /* Z_OK 0 */
2097"file error", /* Z_ERRNO (-1) */
2098"stream error", /* Z_STREAM_ERROR (-2) */
2099"data error", /* Z_DATA_ERROR (-3) */
2100"insufficient memory", /* Z_MEM_ERROR (-4) */
2101"buffer error", /* Z_BUF_ERROR (-5) */
2102""};
2103
2104
2105/*+++++*/
2106/* adler32.c -- compute the Adler-32 checksum of a data stream
2107 * Copyright (C) 1995 Mark Adler
2108 * For conditions of distribution and use, see copyright notice in zlib.h
2109 */
2110
2111/* From: adler32.c,v 1.6 1995/05/03 17:27:08 jloup Exp */
2112
2113#define BASE 65521L /* largest prime smaller than 65536 */
2114#define NMAX 5552
2115/* NMAX is the largest n such that 255n(n+1)/2 + (n+1)(BASE-1) <= 2^32-1 */
2116
2117#define DO1(buf) {s1 += *buf++; s2 += s1;}
2118#define DO2(buf) DO1(buf); DO1(buf);
2119#define DO4(buf) DO2(buf); DO2(buf);
2120#define DO8(buf) DO4(buf); DO4(buf);
2121#define DO16(buf) DO8(buf); DO8(buf);
2122
2123/* ========================================================================= */
2124uLong adler32(adler, buf, len)
2125 uLong adler;
2126 Bytef *buf;
2127 uInt len;
2128{
2129 unsigned long s1 = adler & 0xffff;
2130 unsigned long s2 = (adler >> 16) & 0xffff;
2131 int k;
2132
2133 if (buf == Z_NULL) return 1L;
2134
2135 while (len > 0) {
2136 k = len < NMAX ? len : NMAX;
2137 len -= k;
2138 while (k >= 16) {
2139 DO16(buf);
2140 k -= 16;
2141 }
2142 if (k != 0) do {
2143 DO1(buf);
2144 } while (--k);
2145 s1 %= BASE;
2146 s2 %= BASE;
2147 }
2148 return (s2 << 16) | s1;
2149}