2 * Copyright (c) 2008 Apple Inc. All rights reserved.
4 * @APPLE_OSREFERENCE_LICENSE_HEADER_START@
6 * This file contains Original Code and/or Modifications of Original Code
7 * as defined in and that are subject to the Apple Public Source License
8 * Version 2.0 (the 'License'). You may not use this file except in
9 * compliance with the License. The rights granted to you under the License
10 * may not be used to create, or enable the creation or redistribution of,
11 * unlawful or unlicensed copies of an Apple operating system, or to
12 * circumvent, violate, or enable the circumvention or violation of, any
13 * terms of an Apple operating system software license agreement.
15 * Please obtain a copy of the License at
16 * http://www.opensource.apple.com/apsl/ and read it before using this file.
18 * The Original Code and all software distributed under the License are
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20 * EXPRESS OR IMPLIED, AND APPLE HEREBY DISCLAIMS ALL SUCH WARRANTIES,
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23 * Please see the License for the specific language governing rights and
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28 /* deflate.c -- compress data using the deflation algorithm
29 * Copyright (C) 1995-2005 Jean-loup Gailly.
30 * For conditions of distribution and use, see copyright notice in zlib.h
36 * The "deflation" process depends on being able to identify portions
37 * of the input text which are identical to earlier input (within a
38 * sliding window trailing behind the input currently being processed).
40 * The most straightforward technique turns out to be the fastest for
41 * most input files: try all possible matches and select the longest.
42 * The key feature of this algorithm is that insertions into the string
43 * dictionary are very simple and thus fast, and deletions are avoided
44 * completely. Insertions are performed at each input character, whereas
45 * string matches are performed only when the previous match ends. So it
46 * is preferable to spend more time in matches to allow very fast string
47 * insertions and avoid deletions. The matching algorithm for small
48 * strings is inspired from that of Rabin & Karp. A brute force approach
49 * is used to find longer strings when a small match has been found.
50 * A similar algorithm is used in comic (by Jan-Mark Wams) and freeze
51 * (by Leonid Broukhis).
52 * A previous version of this file used a more sophisticated algorithm
53 * (by Fiala and Greene) which is guaranteed to run in linear amortized
54 * time, but has a larger average cost, uses more memory and is patented.
55 * However the F&G algorithm may be faster for some highly redundant
56 * files if the parameter max_chain_length (described below) is too large.
60 * The idea of lazy evaluation of matches is due to Jan-Mark Wams, and
61 * I found it in 'freeze' written by Leonid Broukhis.
62 * Thanks to many people for bug reports and testing.
66 * Deutsch, L.P.,"DEFLATE Compressed Data Format Specification".
67 * Available in http://www.ietf.org/rfc/rfc1951.txt
69 * A description of the Rabin and Karp algorithm is given in the book
70 * "Algorithms" by R. Sedgewick, Addison-Wesley, p252.
72 * Fiala,E.R., and Greene,D.H.
73 * Data Compression with Finite Windows, Comm.ACM, 32,4 (1989) 490-595
81 const char deflate_copyright
[] =
82 " deflate 1.2.3 Copyright 1995-2005 Jean-loup Gailly ";
84 If you use the zlib library in a product, an acknowledgment is welcome
85 in the documentation of your product. If for some reason you cannot
86 include such an acknowledgment, I would appreciate that you keep this
87 copyright string in the executable of your product.
90 /* ===========================================================================
91 * Function prototypes.
94 need_more
, /* block not completed, need more input or more output */
95 block_done
, /* block flush performed */
96 finish_started
, /* finish started, need only more output at next deflate */
97 finish_done
/* finish done, accept no more input or output */
100 typedef block_state (*compress_func
) OF((deflate_state
*s
, int flush
));
101 /* Compression function. Returns the block state after the call. */
103 local
void fill_window
OF((deflate_state
*s
));
104 local block_state deflate_stored
OF((deflate_state
*s
, int flush
));
105 local block_state deflate_fast
OF((deflate_state
*s
, int flush
));
107 local block_state deflate_slow
OF((deflate_state
*s
, int flush
));
109 local
void lm_init
OF((deflate_state
*s
));
110 local
void putShortMSB
OF((deflate_state
*s
, uInt b
));
111 local
void flush_pending
OF((z_streamp strm
));
112 local
int read_buf
OF((z_streamp strm
, Bytef
*buf
, unsigned size
));
115 void match_init
OF((void)); /* asm code initialization */
116 uInt longest_match
OF((deflate_state
*s
, IPos cur_match
));
118 local uInt longest_match
OF((deflate_state
*s
, IPos cur_match
));
121 local uInt longest_match_fast
OF((deflate_state
*s
, IPos cur_match
));
124 local
void check_match
OF((deflate_state
*s
, IPos start
, IPos match
,
128 /* ===========================================================================
133 /* Tail of hash chains */
136 # define TOO_FAR 4096
138 /* Matches of length 3 are discarded if their distance exceeds TOO_FAR */
140 #define MIN_LOOKAHEAD (MAX_MATCH+MIN_MATCH+1)
141 /* Minimum amount of lookahead, except at the end of the input file.
142 * See deflate.c for comments about the MIN_MATCH+1.
145 /* Values for max_lazy_match, good_match and max_chain_length, depending on
146 * the desired pack level (0..9). The values given below have been tuned to
147 * exclude worst case performance for pathological files. Better values may be
148 * found for specific files.
150 typedef struct config_s
{
151 ush good_length
; /* reduce lazy search above this match length */
152 ush max_lazy
; /* do not perform lazy search above this match length */
153 ush nice_length
; /* quit search above this match length */
159 local
const config configuration_table
[2] = {
160 /* good lazy nice chain */
161 /* 0 */ {0, 0, 0, 0, deflate_stored
}, /* store only */
162 /* 1 */ {4, 4, 8, 4, deflate_fast
}}; /* max speed, no lazy matches */
164 local
const config configuration_table
[10] = {
165 /* good lazy nice chain */
166 /* 0 */ {0, 0, 0, 0, deflate_stored
}, /* store only */
167 /* 1 */ {4, 4, 8, 4, deflate_fast
}, /* max speed, no lazy matches */
168 /* 2 */ {4, 5, 16, 8, deflate_fast
},
169 /* 3 */ {4, 6, 32, 32, deflate_fast
},
171 /* 4 */ {4, 4, 16, 16, deflate_slow
}, /* lazy matches */
172 /* 5 */ {8, 16, 32, 32, deflate_slow
},
173 /* 6 */ {8, 16, 128, 128, deflate_slow
},
174 /* 7 */ {8, 32, 128, 256, deflate_slow
},
175 /* 8 */ {32, 128, 258, 1024, deflate_slow
},
176 /* 9 */ {32, 258, 258, 4096, deflate_slow
}}; /* max compression */
179 /* Note: the deflate() code requires max_lazy >= MIN_MATCH and max_chain >= 4
180 * For deflate_fast() (levels <= 3) good is ignored and lazy has a different
185 /* result of memcmp for equal strings */
187 #ifndef NO_DUMMY_DECL
188 struct static_tree_desc_s
{int dummy
;}; /* for buggy compilers */
191 /* ===========================================================================
192 * Update a hash value with the given input byte
193 * IN assertion: all calls to to UPDATE_HASH are made with consecutive
194 * input characters, so that a running hash key can be computed from the
195 * previous key instead of complete recalculation each time.
197 #define UPDATE_HASH(s,h,c) (h = (((h)<<s->hash_shift) ^ (c)) & s->hash_mask)
200 /* ===========================================================================
201 * Insert string str in the dictionary and set match_head to the previous head
202 * of the hash chain (the most recent string with same hash key). Return
203 * the previous length of the hash chain.
204 * If this file is compiled with -DFASTEST, the compression level is forced
205 * to 1, and no hash chains are maintained.
206 * IN assertion: all calls to to INSERT_STRING are made with consecutive
207 * input characters and the first MIN_MATCH bytes of str are valid
208 * (except for the last MIN_MATCH-1 bytes of the input file).
211 #define INSERT_STRING(s, str, match_head) \
212 (UPDATE_HASH(s, s->ins_h, s->window[(str) + (MIN_MATCH-1)]), \
213 match_head = s->head[s->ins_h], \
214 s->head[s->ins_h] = (Pos)(str))
216 #define INSERT_STRING(s, str, match_head) \
217 (UPDATE_HASH(s, s->ins_h, s->window[(str) + (MIN_MATCH-1)]), \
218 match_head = s->prev[(str) & s->w_mask] = s->head[s->ins_h], \
219 s->head[s->ins_h] = (Pos)(str))
222 /* ===========================================================================
223 * Initialize the hash table (avoiding 64K overflow for 16 bit systems).
224 * prev[] will be initialized on the fly.
226 #define CLEAR_HASH(s) \
227 s->head[s->hash_size-1] = NIL; \
228 zmemzero((Bytef *)s->head, (unsigned)(s->hash_size-1)*sizeof(*s->head));
230 /* ========================================================================= */
231 int ZEXPORT
deflateInit_(strm
, level
, version
, stream_size
)
237 return deflateInit2_(strm
, level
, Z_DEFLATED
, MAX_WBITS
, DEF_MEM_LEVEL
,
238 Z_DEFAULT_STRATEGY
, version
, stream_size
);
239 /* To do: ignore strm->next_in if we use it as window */
242 /* ========================================================================= */
243 int ZEXPORT
deflateInit2_(strm
, level
, method
, windowBits
, memLevel
, strategy
,
244 version
, stream_size
)
256 static const char my_version
[] = ZLIB_VERSION
;
259 /* We overlay pending_buf and d_buf+l_buf. This works since the average
260 * output size for (length,distance) codes is <= 24 bits.
263 if (version
== Z_NULL
|| version
[0] != my_version
[0] ||
264 stream_size
!= sizeof(z_stream
)) {
265 return Z_VERSION_ERROR
;
267 if (strm
== Z_NULL
) return Z_STREAM_ERROR
;
271 if (strm
->zalloc
== (alloc_func
)0) {
272 strm
->zalloc
= zcalloc
;
273 strm
->opaque
= (voidpf
)0;
275 if (strm
->zfree
== (free_func
)0) strm
->zfree
= zcfree
;
276 #endif /* NO_ZCFUNCS */
279 if (level
!= 0) level
= 1;
281 if (level
== Z_DEFAULT_COMPRESSION
) level
= 6;
284 if (windowBits
< 0) { /* suppress zlib wrapper */
286 windowBits
= -windowBits
;
289 else if (windowBits
> 15) {
290 wrap
= 2; /* write gzip wrapper instead */
294 if (memLevel
< 1 || memLevel
> MAX_MEM_LEVEL
|| method
!= Z_DEFLATED
||
295 windowBits
< 8 || windowBits
> 15 || level
< 0 || level
> 9 ||
296 strategy
< 0 || strategy
> Z_FIXED
) {
297 return Z_STREAM_ERROR
;
299 if (windowBits
== 8) windowBits
= 9; /* until 256-byte window bug fixed */
300 s
= (deflate_state
*) ZALLOC(strm
, 1, sizeof(deflate_state
));
301 if (s
== Z_NULL
) return Z_MEM_ERROR
;
302 strm
->state
= (struct internal_state FAR
*)s
;
307 s
->w_bits
= windowBits
;
308 s
->w_size
= 1 << s
->w_bits
;
309 s
->w_mask
= s
->w_size
- 1;
311 s
->hash_bits
= memLevel
+ 7;
312 s
->hash_size
= 1 << s
->hash_bits
;
313 s
->hash_mask
= s
->hash_size
- 1;
314 s
->hash_shift
= ((s
->hash_bits
+MIN_MATCH
-1)/MIN_MATCH
);
316 s
->window
= (Bytef
*) ZALLOC(strm
, s
->w_size
, 2*sizeof(Byte
));
317 s
->prev
= (Posf
*) ZALLOC(strm
, s
->w_size
, sizeof(Pos
));
318 s
->head
= (Posf
*) ZALLOC(strm
, s
->hash_size
, sizeof(Pos
));
320 s
->lit_bufsize
= 1 << (memLevel
+ 6); /* 16K elements by default */
322 overlay
= (ushf
*) ZALLOC(strm
, s
->lit_bufsize
, sizeof(ush
)+2);
323 s
->pending_buf
= (uchf
*) overlay
;
324 s
->pending_buf_size
= (ulg
)s
->lit_bufsize
* (sizeof(ush
)+2L);
326 if (s
->window
== Z_NULL
|| s
->prev
== Z_NULL
|| s
->head
== Z_NULL
||
327 s
->pending_buf
== Z_NULL
) {
328 s
->status
= FINISH_STATE
;
329 strm
->msg
= (char*)ERR_MSG(Z_MEM_ERROR
);
333 s
->d_buf
= overlay
+ s
->lit_bufsize
/sizeof(ush
);
334 s
->l_buf
= s
->pending_buf
+ (1+sizeof(ush
))*s
->lit_bufsize
;
337 s
->strategy
= strategy
;
338 s
->method
= (Byte
)method
;
340 return deflateReset(strm
);
343 /* ========================================================================= */
344 int ZEXPORT
deflateSetDictionary (strm
, dictionary
, dictLength
)
346 const Bytef
*dictionary
;
350 uInt length
= dictLength
;
354 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
|| dictionary
== Z_NULL
||
355 strm
->state
->wrap
== 2 ||
356 (strm
->state
->wrap
== 1 && strm
->state
->status
!= INIT_STATE
))
357 return Z_STREAM_ERROR
;
361 strm
->adler
= adler32(strm
->adler
, dictionary
, dictLength
);
363 if (length
< MIN_MATCH
) return Z_OK
;
364 if (length
> MAX_DIST(s
)) {
365 length
= MAX_DIST(s
);
366 dictionary
+= dictLength
- length
; /* use the tail of the dictionary */
368 zmemcpy(s
->window
, dictionary
, length
);
369 s
->strstart
= length
;
370 s
->block_start
= (long)length
;
372 /* Insert all strings in the hash table (except for the last two bytes).
373 * s->lookahead stays null, so s->ins_h will be recomputed at the next
374 * call of fill_window.
376 s
->ins_h
= s
->window
[0];
377 UPDATE_HASH(s
, s
->ins_h
, s
->window
[1]);
378 for (n
= 0; n
<= length
- MIN_MATCH
; n
++) {
379 INSERT_STRING(s
, n
, hash_head
);
381 if (hash_head
) hash_head
= 0; /* to make compiler happy */
385 /* ========================================================================= */
387 ZEXTERN
int ZEXPORT
deflateResetWithIO(z_streamp strm
, z_input_func zinput
, z_output_func zoutput
)
391 zerr
= deflateReset(strm
);
392 if (Z_OK
!= zerr
) return (zerr
);
393 strm
->state
->zinput
= zinput
;
394 strm
->state
->zoutput
= zoutput
;
398 /* ========================================================================= */
400 int ZEXPORT
deflateReset (strm
)
405 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
||
406 strm
->zalloc
== (alloc_func
)0 || strm
->zfree
== (free_func
)0) {
407 return Z_STREAM_ERROR
;
410 strm
->total_in
= strm
->total_out
= 0;
411 strm
->msg
= Z_NULL
; /* use zfree if we ever allocate msg dynamically */
412 strm
->data_type
= Z_UNKNOWN
;
414 s
= (deflate_state
*)strm
->state
;
416 s
->pending_out
= s
->pending_buf
;
417 s
->zinput
= &read_buf
;
421 s
->wrap
= -s
->wrap
; /* was made negative by deflate(..., Z_FINISH); */
423 s
->status
= s
->wrap
? INIT_STATE
: BUSY_STATE
;
426 s
->wrap
== 2 ? z_crc32(0L, Z_NULL
, 0) :
428 adler32(0L, Z_NULL
, 0);
429 s
->last_flush
= Z_NO_FLUSH
;
437 /* ========================================================================= */
438 int ZEXPORT
deflateSetHeader (strm
, head
)
442 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
) return Z_STREAM_ERROR
;
443 if (strm
->state
->wrap
!= 2) return Z_STREAM_ERROR
;
444 strm
->state
->gzhead
= head
;
448 /* ========================================================================= */
449 int ZEXPORT
deflatePrime (strm
, bits
, value
)
454 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
) return Z_STREAM_ERROR
;
455 strm
->state
->bi_valid
= bits
;
456 strm
->state
->bi_buf
= (ush
)(value
& ((1 << bits
) - 1));
460 /* ========================================================================= */
461 int ZEXPORT
deflateParams(strm
, level
, strategy
)
470 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
) return Z_STREAM_ERROR
;
474 if (level
!= 0) level
= 1;
476 if (level
== Z_DEFAULT_COMPRESSION
) level
= 6;
478 if (level
< 0 || level
> 9 || strategy
< 0 || strategy
> Z_FIXED
) {
479 return Z_STREAM_ERROR
;
481 func
= configuration_table
[s
->level
].func
;
483 if (func
!= configuration_table
[level
].func
&& strm
->total_in
!= 0) {
484 /* Flush the last buffer: */
485 err
= deflate(strm
, Z_PARTIAL_FLUSH
);
487 if (s
->level
!= level
) {
489 s
->max_lazy_match
= configuration_table
[level
].max_lazy
;
490 s
->good_match
= configuration_table
[level
].good_length
;
491 s
->nice_match
= configuration_table
[level
].nice_length
;
492 s
->max_chain_length
= configuration_table
[level
].max_chain
;
494 s
->strategy
= strategy
;
498 /* ========================================================================= */
499 int ZEXPORT
deflateTune(strm
, good_length
, max_lazy
, nice_length
, max_chain
)
508 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
) return Z_STREAM_ERROR
;
510 s
->good_match
= good_length
;
511 s
->max_lazy_match
= max_lazy
;
512 s
->nice_match
= nice_length
;
513 s
->max_chain_length
= max_chain
;
517 /* =========================================================================
518 * For the default windowBits of 15 and memLevel of 8, this function returns
519 * a close to exact, as well as small, upper bound on the compressed size.
520 * They are coded as constants here for a reason--if the #define's are
521 * changed, then this function needs to be changed as well. The return
522 * value for 15 and 8 only works for those exact settings.
524 * For any setting other than those defaults for windowBits and memLevel,
525 * the value returned is a conservative worst case for the maximum expansion
526 * resulting from using fixed blocks instead of stored blocks, which deflate
527 * can emit on compressed data for some combinations of the parameters.
529 * This function could be more sophisticated to provide closer upper bounds
530 * for every combination of windowBits and memLevel, as well as wrap.
531 * But even the conservative upper bound of about 14% expansion does not
532 * seem onerous for output buffer allocation.
534 uLong ZEXPORT
deflateBound(strm
, sourceLen
)
541 /* conservative upper bound */
542 destLen
= sourceLen
+
543 ((sourceLen
+ 7) >> 3) + ((sourceLen
+ 63) >> 6) + 11;
545 /* if can't get parameters, return conservative bound */
546 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
)
549 /* if not default parameters, return conservative bound */
551 if (s
->w_bits
!= 15 || s
->hash_bits
!= 8 + 7)
554 /* default settings: return tight bound for that case */
555 return compressBound(sourceLen
);
558 /* =========================================================================
559 * Put a short in the pending buffer. The 16-bit value is put in MSB order.
560 * IN assertion: the stream state is correct and there is enough room in
563 local
void putShortMSB (s
, b
)
567 put_byte(s
, (Byte
)(b
>> 8));
568 put_byte(s
, (Byte
)(b
& 0xff));
571 /* =========================================================================
572 * Flush as much pending output as possible. All deflate() output goes
573 * through this function so some applications may wish to modify it
574 * to avoid allocating a large strm->next_out buffer and copying into it.
575 * (See also read_buf()).
577 local
void flush_pending(strm
)
580 unsigned len
= strm
->state
->pending
;
582 if (strm
->state
->zoutput
) {
583 len
= (*strm
->state
->zoutput
)(strm
, strm
->state
->pending_out
, len
);
585 if (len
> strm
->avail_out
) len
= strm
->avail_out
;
586 if (len
== 0) return;
587 zmemcpy(strm
->next_out
, strm
->state
->pending_out
, len
);
588 strm
->next_out
+= len
;
589 strm
->avail_out
-= len
;
592 strm
->state
->pending_out
+= len
;
593 strm
->total_out
+= len
;
594 strm
->state
->pending
-= len
;
595 if (strm
->state
->pending
== 0) {
596 strm
->state
->pending_out
= strm
->state
->pending_buf
;
600 /* ========================================================================= */
601 int ZEXPORT
deflate (strm
, flush
)
605 int old_flush
; /* value of flush param for previous deflate call */
608 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
||
609 flush
> Z_FINISH
|| flush
< 0) {
610 return Z_STREAM_ERROR
;
614 if (strm
->next_out
== Z_NULL
||
615 (strm
->next_in
== Z_NULL
&& strm
->avail_in
!= 0) ||
616 (s
->status
== FINISH_STATE
&& flush
!= Z_FINISH
)) {
617 ERR_RETURN(strm
, Z_STREAM_ERROR
);
619 if (strm
->avail_out
== 0) ERR_RETURN(strm
, Z_BUF_ERROR
);
621 s
->strm
= strm
; /* just in case */
622 old_flush
= s
->last_flush
;
623 s
->last_flush
= flush
;
625 /* Write the header */
626 if (s
->status
== INIT_STATE
) {
629 strm
->adler
= z_crc32(0L, Z_NULL
, 0);
633 if (s
->gzhead
== NULL
) {
639 put_byte(s
, s
->level
== 9 ? 2 :
640 (s
->strategy
>= Z_HUFFMAN_ONLY
|| s
->level
< 2 ?
642 put_byte(s
, OS_CODE
);
643 s
->status
= BUSY_STATE
;
646 put_byte(s
, (s
->gzhead
->text
? 1 : 0) +
647 (s
->gzhead
->hcrc
? 2 : 0) +
648 (s
->gzhead
->extra
== Z_NULL
? 0 : 4) +
649 (s
->gzhead
->name
== Z_NULL
? 0 : 8) +
650 (s
->gzhead
->comment
== Z_NULL
? 0 : 16)
652 put_byte(s
, (Byte
)(s
->gzhead
->time
& 0xff));
653 put_byte(s
, (Byte
)((s
->gzhead
->time
>> 8) & 0xff));
654 put_byte(s
, (Byte
)((s
->gzhead
->time
>> 16) & 0xff));
655 put_byte(s
, (Byte
)((s
->gzhead
->time
>> 24) & 0xff));
656 put_byte(s
, s
->level
== 9 ? 2 :
657 (s
->strategy
>= Z_HUFFMAN_ONLY
|| s
->level
< 2 ?
659 put_byte(s
, s
->gzhead
->os
& 0xff);
660 if (s
->gzhead
->extra
!= NULL
) {
661 put_byte(s
, s
->gzhead
->extra_len
& 0xff);
662 put_byte(s
, (s
->gzhead
->extra_len
>> 8) & 0xff);
665 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
,
668 s
->status
= EXTRA_STATE
;
674 uInt header
= (Z_DEFLATED
+ ((s
->w_bits
-8)<<4)) << 8;
677 if (s
->strategy
>= Z_HUFFMAN_ONLY
|| s
->level
< 2)
679 else if (s
->level
< 6)
681 else if (s
->level
== 6)
685 header
|= (level_flags
<< 6);
686 if (s
->strstart
!= 0) header
|= PRESET_DICT
;
687 header
+= 31 - (header
% 31);
689 s
->status
= BUSY_STATE
;
690 putShortMSB(s
, header
);
692 /* Save the adler32 of the preset dictionary: */
693 if (s
->strstart
!= 0) {
694 putShortMSB(s
, (uInt
)(strm
->adler
>> 16));
695 putShortMSB(s
, (uInt
)(strm
->adler
& 0xffff));
697 strm
->adler
= adler32(0L, Z_NULL
, 0);
701 if (s
->status
== EXTRA_STATE
) {
702 if (s
->gzhead
->extra
!= NULL
) {
703 uInt beg
= s
->pending
; /* start of bytes to update crc */
705 while (s
->gzindex
< (s
->gzhead
->extra_len
& 0xffff)) {
706 if (s
->pending
== s
->pending_buf_size
) {
707 if (s
->gzhead
->hcrc
&& s
->pending
> beg
)
708 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
+ beg
,
712 if (s
->pending
== s
->pending_buf_size
)
715 put_byte(s
, s
->gzhead
->extra
[s
->gzindex
]);
718 if (s
->gzhead
->hcrc
&& s
->pending
> beg
)
719 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
+ beg
,
721 if (s
->gzindex
== s
->gzhead
->extra_len
) {
723 s
->status
= NAME_STATE
;
727 s
->status
= NAME_STATE
;
729 if (s
->status
== NAME_STATE
) {
730 if (s
->gzhead
->name
!= NULL
) {
731 uInt beg
= s
->pending
; /* start of bytes to update crc */
735 if (s
->pending
== s
->pending_buf_size
) {
736 if (s
->gzhead
->hcrc
&& s
->pending
> beg
)
737 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
+ beg
,
741 if (s
->pending
== s
->pending_buf_size
) {
746 val
= s
->gzhead
->name
[s
->gzindex
++];
749 if (s
->gzhead
->hcrc
&& s
->pending
> beg
)
750 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
+ beg
,
754 s
->status
= COMMENT_STATE
;
758 s
->status
= COMMENT_STATE
;
760 if (s
->status
== COMMENT_STATE
) {
761 if (s
->gzhead
->comment
!= NULL
) {
762 uInt beg
= s
->pending
; /* start of bytes to update crc */
766 if (s
->pending
== s
->pending_buf_size
) {
767 if (s
->gzhead
->hcrc
&& s
->pending
> beg
)
768 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
+ beg
,
772 if (s
->pending
== s
->pending_buf_size
) {
777 val
= s
->gzhead
->comment
[s
->gzindex
++];
780 if (s
->gzhead
->hcrc
&& s
->pending
> beg
)
781 strm
->adler
= z_crc32(strm
->adler
, s
->pending_buf
+ beg
,
784 s
->status
= HCRC_STATE
;
787 s
->status
= HCRC_STATE
;
789 if (s
->status
== HCRC_STATE
) {
790 if (s
->gzhead
->hcrc
) {
791 if (s
->pending
+ 2 > s
->pending_buf_size
)
793 if (s
->pending
+ 2 <= s
->pending_buf_size
) {
794 put_byte(s
, (Byte
)(strm
->adler
& 0xff));
795 put_byte(s
, (Byte
)((strm
->adler
>> 8) & 0xff));
796 strm
->adler
= z_crc32(0L, Z_NULL
, 0);
797 s
->status
= BUSY_STATE
;
801 s
->status
= BUSY_STATE
;
805 /* Flush as much pending output as possible */
806 if (s
->pending
!= 0) {
808 if (strm
->avail_out
== 0) {
809 /* Since avail_out is 0, deflate will be called again with
810 * more output space, but possibly with both pending and
811 * avail_in equal to zero. There won't be anything to do,
812 * but this is not an error situation so make sure we
813 * return OK instead of BUF_ERROR at next call of deflate:
819 /* Make sure there is something to do and avoid duplicate consecutive
820 * flushes. For repeated and useless calls with Z_FINISH, we keep
821 * returning Z_STREAM_END instead of Z_BUF_ERROR.
823 } else if (strm
->avail_in
== 0 && flush
<= old_flush
&&
825 ERR_RETURN(strm
, Z_BUF_ERROR
);
828 /* User must not provide more input after the first FINISH: */
829 if (s
->status
== FINISH_STATE
&& strm
->avail_in
!= 0) {
830 ERR_RETURN(strm
, Z_BUF_ERROR
);
833 /* Start a new block or continue the current one.
835 if (strm
->avail_in
!= 0 || s
->lookahead
!= 0 ||
836 (flush
!= Z_NO_FLUSH
&& s
->status
!= FINISH_STATE
)) {
839 bstate
= (*(configuration_table
[s
->level
].func
))(s
, flush
);
841 if (bstate
== finish_started
|| bstate
== finish_done
) {
842 s
->status
= FINISH_STATE
;
844 if (bstate
== need_more
|| bstate
== finish_started
) {
845 if (strm
->avail_out
== 0) {
846 s
->last_flush
= -1; /* avoid BUF_ERROR next call, see above */
849 /* If flush != Z_NO_FLUSH && avail_out == 0, the next call
850 * of deflate should use the same flush parameter to make sure
851 * that the flush is complete. So we don't have to output an
852 * empty block here, this will be done at next call. This also
853 * ensures that for a very small output buffer, we emit at most
857 if (bstate
== block_done
) {
858 if (flush
== Z_PARTIAL_FLUSH
) {
860 } else { /* FULL_FLUSH or SYNC_FLUSH */
861 _tr_stored_block(s
, (char*)0, 0L, 0);
862 /* For a full flush, this empty block will be recognized
863 * as a special marker by inflate_sync().
865 if (flush
== Z_FULL_FLUSH
) {
866 CLEAR_HASH(s
); /* forget history */
870 if (strm
->avail_out
== 0) {
871 s
->last_flush
= -1; /* avoid BUF_ERROR at next call, see above */
876 Assert(strm
->avail_out
> 0, "bug2");
878 if (flush
!= Z_FINISH
) return Z_OK
;
879 if (s
->wrap
<= 0) return Z_STREAM_END
;
881 /* Write the trailer */
884 put_byte(s
, (Byte
)(strm
->adler
& 0xff));
885 put_byte(s
, (Byte
)((strm
->adler
>> 8) & 0xff));
886 put_byte(s
, (Byte
)((strm
->adler
>> 16) & 0xff));
887 put_byte(s
, (Byte
)((strm
->adler
>> 24) & 0xff));
888 put_byte(s
, (Byte
)(strm
->total_in
& 0xff));
889 put_byte(s
, (Byte
)((strm
->total_in
>> 8) & 0xff));
890 put_byte(s
, (Byte
)((strm
->total_in
>> 16) & 0xff));
891 put_byte(s
, (Byte
)((strm
->total_in
>> 24) & 0xff));
896 putShortMSB(s
, (uInt
)(strm
->adler
>> 16));
897 putShortMSB(s
, (uInt
)(strm
->adler
& 0xffff));
900 /* If avail_out is zero, the application will call deflate again
903 if (s
->wrap
> 0) s
->wrap
= -s
->wrap
; /* write the trailer only once! */
904 return s
->pending
!= 0 ? Z_OK
: Z_STREAM_END
;
907 /* ========================================================================= */
908 int ZEXPORT
deflateEnd (strm
)
913 if (strm
== Z_NULL
|| strm
->state
== Z_NULL
) return Z_STREAM_ERROR
;
915 status
= strm
->state
->status
;
916 if (status
!= INIT_STATE
&&
917 status
!= EXTRA_STATE
&&
918 status
!= NAME_STATE
&&
919 status
!= COMMENT_STATE
&&
920 status
!= HCRC_STATE
&&
921 status
!= BUSY_STATE
&&
922 status
!= FINISH_STATE
) {
923 return Z_STREAM_ERROR
;
926 /* Deallocate in reverse order of allocations: */
927 TRY_FREE(strm
, strm
->state
->pending_buf
);
928 TRY_FREE(strm
, strm
->state
->head
);
929 TRY_FREE(strm
, strm
->state
->prev
);
930 TRY_FREE(strm
, strm
->state
->window
);
932 ZFREE(strm
, strm
->state
);
933 strm
->state
= Z_NULL
;
935 return status
== BUSY_STATE
? Z_DATA_ERROR
: Z_OK
;
938 /* =========================================================================
939 * Copy the source state to the destination state.
940 * To simplify the source, this is not supported for 16-bit MSDOS (which
941 * doesn't have enough memory anyway to duplicate compression states).
943 int ZEXPORT
deflateCopy (dest
, source
)
948 return Z_STREAM_ERROR
;
955 if (source
== Z_NULL
|| dest
== Z_NULL
|| source
->state
== Z_NULL
) {
956 return Z_STREAM_ERROR
;
961 zmemcpy(dest
, source
, sizeof(z_stream
));
963 ds
= (deflate_state
*) ZALLOC(dest
, 1, sizeof(deflate_state
));
964 if (ds
== Z_NULL
) return Z_MEM_ERROR
;
965 dest
->state
= (struct internal_state FAR
*) ds
;
966 zmemcpy(ds
, ss
, sizeof(deflate_state
));
969 ds
->window
= (Bytef
*) ZALLOC(dest
, ds
->w_size
, 2*sizeof(Byte
));
970 ds
->prev
= (Posf
*) ZALLOC(dest
, ds
->w_size
, sizeof(Pos
));
971 ds
->head
= (Posf
*) ZALLOC(dest
, ds
->hash_size
, sizeof(Pos
));
972 overlay
= (ushf
*) ZALLOC(dest
, ds
->lit_bufsize
, sizeof(ush
)+2);
973 ds
->pending_buf
= (uchf
*) overlay
;
975 if (ds
->window
== Z_NULL
|| ds
->prev
== Z_NULL
|| ds
->head
== Z_NULL
||
976 ds
->pending_buf
== Z_NULL
) {
980 /* following zmemcpy do not work for 16-bit MSDOS */
981 zmemcpy(ds
->window
, ss
->window
, ds
->w_size
* 2 * sizeof(Byte
));
982 zmemcpy(ds
->prev
, ss
->prev
, ds
->w_size
* sizeof(Pos
));
983 zmemcpy(ds
->head
, ss
->head
, ds
->hash_size
* sizeof(Pos
));
984 zmemcpy(ds
->pending_buf
, ss
->pending_buf
, (uInt
)ds
->pending_buf_size
);
986 ds
->pending_out
= ds
->pending_buf
+ (ss
->pending_out
- ss
->pending_buf
);
987 ds
->d_buf
= overlay
+ ds
->lit_bufsize
/sizeof(ush
);
988 ds
->l_buf
= ds
->pending_buf
+ (1+sizeof(ush
))*ds
->lit_bufsize
;
990 ds
->l_desc
.dyn_tree
= ds
->dyn_ltree
;
991 ds
->d_desc
.dyn_tree
= ds
->dyn_dtree
;
992 ds
->bl_desc
.dyn_tree
= ds
->bl_tree
;
995 #endif /* MAXSEG_64K */
998 /* ===========================================================================
999 * Read a new buffer from the current input stream, update the adler32
1000 * and total number of bytes read. All deflate() input goes through
1001 * this function so some applications may wish to modify it to avoid
1002 * allocating a large strm->next_in buffer and copying from it.
1003 * (See also flush_pending()).
1005 local
int read_buf(strm
, buf
, size
)
1010 unsigned len
= strm
->avail_in
;
1012 if (len
> size
) len
= size
;
1013 if (len
== 0) return 0;
1015 strm
->avail_in
-= len
;
1017 if (strm
->state
->wrap
== 1) {
1018 strm
->adler
= adler32(strm
->adler
, strm
->next_in
, len
);
1021 else if (strm
->state
->wrap
== 2) {
1022 strm
->adler
= z_crc32(strm
->adler
, strm
->next_in
, len
);
1025 zmemcpy(buf
, strm
->next_in
, len
);
1026 strm
->next_in
+= len
;
1027 strm
->total_in
+= len
;
1032 /* ===========================================================================
1033 * Initialize the "longest match" routines for a new zlib stream
1035 local
void lm_init (s
)
1038 s
->window_size
= (ulg
)2L*s
->w_size
;
1042 /* Set the default configuration parameters:
1044 s
->max_lazy_match
= configuration_table
[s
->level
].max_lazy
;
1045 s
->good_match
= configuration_table
[s
->level
].good_length
;
1046 s
->nice_match
= configuration_table
[s
->level
].nice_length
;
1047 s
->max_chain_length
= configuration_table
[s
->level
].max_chain
;
1050 s
->block_start
= 0L;
1052 s
->match_length
= s
->prev_length
= MIN_MATCH
-1;
1053 s
->match_available
= 0;
1057 match_init(); /* initialize the asm code */
1063 /* ===========================================================================
1064 * Set match_start to the longest match starting at the given string and
1065 * return its length. Matches shorter or equal to prev_length are discarded,
1066 * in which case the result is equal to prev_length and match_start is
1068 * IN assertions: cur_match is the head of the hash chain for the current
1069 * string (strstart) and its distance is <= MAX_DIST, and prev_length >= 1
1070 * OUT assertion: the match length is not greater than s->lookahead.
1073 /* For 80x86 and 680x0, an optimized version will be provided in match.asm or
1074 * match.S. The code will be functionally equivalent.
1076 local uInt
longest_match(s
, cur_match
)
1078 IPos cur_match
; /* current match */
1080 unsigned chain_length
= s
->max_chain_length
;/* max hash chain length */
1081 register Bytef
*scan
= s
->window
+ s
->strstart
; /* current string */
1082 register Bytef
*match
; /* matched string */
1083 register int len
; /* length of current match */
1084 int best_len
= s
->prev_length
; /* best match length so far */
1085 int nice_match
= s
->nice_match
; /* stop if match long enough */
1086 IPos limit
= s
->strstart
> (IPos
)MAX_DIST(s
) ?
1087 s
->strstart
- (IPos
)MAX_DIST(s
) : NIL
;
1088 /* Stop when cur_match becomes <= limit. To simplify the code,
1089 * we prevent matches with the string of window index 0.
1091 Posf
*prev
= s
->prev
;
1092 uInt wmask
= s
->w_mask
;
1095 /* Compare two bytes at a time. Note: this is not always beneficial.
1096 * Try with and without -DUNALIGNED_OK to check.
1098 register Bytef
*strend
= s
->window
+ s
->strstart
+ MAX_MATCH
- 1;
1099 register ush scan_start
= *(ushf
*)scan
;
1100 register ush scan_end
= *(ushf
*)(scan
+best_len
-1);
1102 register Bytef
*strend
= s
->window
+ s
->strstart
+ MAX_MATCH
;
1103 register Byte scan_end1
= scan
[best_len
-1];
1104 register Byte scan_end
= scan
[best_len
];
1107 /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16.
1108 * It is easy to get rid of this optimization if necessary.
1110 Assert(s
->hash_bits
>= 8 && MAX_MATCH
== 258, "Code too clever");
1112 /* Do not waste too much time if we already have a good match: */
1113 if (s
->prev_length
>= s
->good_match
) {
1116 /* Do not look for matches beyond the end of the input. This is necessary
1117 * to make deflate deterministic.
1119 if ((uInt
)nice_match
> s
->lookahead
) nice_match
= s
->lookahead
;
1121 Assert((ulg
)s
->strstart
<= s
->window_size
-MIN_LOOKAHEAD
, "need lookahead");
1124 Assert(cur_match
< s
->strstart
, "no future");
1125 match
= s
->window
+ cur_match
;
1127 /* Skip to next match if the match length cannot increase
1128 * or if the match length is less than 2. Note that the checks below
1129 * for insufficient lookahead only occur occasionally for performance
1130 * reasons. Therefore uninitialized memory will be accessed, and
1131 * conditional jumps will be made that depend on those values.
1132 * However the length of the match is limited to the lookahead, so
1133 * the output of deflate is not affected by the uninitialized values.
1135 #if (defined(UNALIGNED_OK) && MAX_MATCH == 258)
1136 /* This code assumes sizeof(unsigned short) == 2. Do not use
1137 * UNALIGNED_OK if your compiler uses a different size.
1139 if (*(ushf
*)(match
+best_len
-1) != scan_end
||
1140 *(ushf
*)match
!= scan_start
) continue;
1142 /* It is not necessary to compare scan[2] and match[2] since they are
1143 * always equal when the other bytes match, given that the hash keys
1144 * are equal and that HASH_BITS >= 8. Compare 2 bytes at a time at
1145 * strstart+3, +5, ... up to strstart+257. We check for insufficient
1146 * lookahead only every 4th comparison; the 128th check will be made
1147 * at strstart+257. If MAX_MATCH-2 is not a multiple of 8, it is
1148 * necessary to put more guard bytes at the end of the window, or
1149 * to check more often for insufficient lookahead.
1151 Assert(scan
[2] == match
[2], "scan[2]?");
1154 } while (*(ushf
*)(scan
+=2) == *(ushf
*)(match
+=2) &&
1155 *(ushf
*)(scan
+=2) == *(ushf
*)(match
+=2) &&
1156 *(ushf
*)(scan
+=2) == *(ushf
*)(match
+=2) &&
1157 *(ushf
*)(scan
+=2) == *(ushf
*)(match
+=2) &&
1159 /* The funny "do {}" generates better code on most compilers */
1161 /* Here, scan <= window+strstart+257 */
1162 Assert(scan
<= s
->window
+(unsigned)(s
->window_size
-1), "wild scan");
1163 if (*scan
== *match
) scan
++;
1165 len
= (MAX_MATCH
- 1) - (int)(strend
-scan
);
1166 scan
= strend
- (MAX_MATCH
-1);
1168 #else /* UNALIGNED_OK */
1170 if (match
[best_len
] != scan_end
||
1171 match
[best_len
-1] != scan_end1
||
1173 *++match
!= scan
[1]) continue;
1175 /* The check at best_len-1 can be removed because it will be made
1176 * again later. (This heuristic is not always a win.)
1177 * It is not necessary to compare scan[2] and match[2] since they
1178 * are always equal when the other bytes match, given that
1179 * the hash keys are equal and that HASH_BITS >= 8.
1182 Assert(*scan
== *match
, "match[2]?");
1184 /* We check for insufficient lookahead only every 8th comparison;
1185 * the 256th check will be made at strstart+258.
1188 } while (*++scan
== *++match
&& *++scan
== *++match
&&
1189 *++scan
== *++match
&& *++scan
== *++match
&&
1190 *++scan
== *++match
&& *++scan
== *++match
&&
1191 *++scan
== *++match
&& *++scan
== *++match
&&
1194 Assert(scan
<= s
->window
+(unsigned)(s
->window_size
-1), "wild scan");
1196 len
= MAX_MATCH
- (int)(strend
- scan
);
1197 scan
= strend
- MAX_MATCH
;
1199 #endif /* UNALIGNED_OK */
1201 if (len
> best_len
) {
1202 s
->match_start
= cur_match
;
1204 if (len
>= nice_match
) break;
1206 scan_end
= *(ushf
*)(scan
+best_len
-1);
1208 scan_end1
= scan
[best_len
-1];
1209 scan_end
= scan
[best_len
];
1212 } while ((cur_match
= prev
[cur_match
& wmask
]) > limit
1213 && --chain_length
!= 0);
1215 if ((uInt
)best_len
<= s
->lookahead
) return (uInt
)best_len
;
1216 return s
->lookahead
;
1219 #endif /* FASTEST */
1221 /* ---------------------------------------------------------------------------
1222 * Optimized version for level == 1 or strategy == Z_RLE only
1224 local uInt
longest_match_fast(s
, cur_match
)
1226 IPos cur_match
; /* current match */
1228 register Bytef
*scan
= s
->window
+ s
->strstart
; /* current string */
1229 register Bytef
*match
; /* matched string */
1230 register int len
; /* length of current match */
1231 register Bytef
*strend
= s
->window
+ s
->strstart
+ MAX_MATCH
;
1233 /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16.
1234 * It is easy to get rid of this optimization if necessary.
1236 Assert(s
->hash_bits
>= 8 && MAX_MATCH
== 258, "Code too clever");
1238 Assert((ulg
)s
->strstart
<= s
->window_size
-MIN_LOOKAHEAD
, "need lookahead");
1240 Assert(cur_match
< s
->strstart
, "no future");
1242 match
= s
->window
+ cur_match
;
1244 /* Return failure if the match length is less than 2:
1246 if (match
[0] != scan
[0] || match
[1] != scan
[1]) return MIN_MATCH
-1;
1248 /* The check at best_len-1 can be removed because it will be made
1249 * again later. (This heuristic is not always a win.)
1250 * It is not necessary to compare scan[2] and match[2] since they
1251 * are always equal when the other bytes match, given that
1252 * the hash keys are equal and that HASH_BITS >= 8.
1254 scan
+= 2, match
+= 2;
1255 Assert(*scan
== *match
, "match[2]?");
1257 /* We check for insufficient lookahead only every 8th comparison;
1258 * the 256th check will be made at strstart+258.
1261 } while (*++scan
== *++match
&& *++scan
== *++match
&&
1262 *++scan
== *++match
&& *++scan
== *++match
&&
1263 *++scan
== *++match
&& *++scan
== *++match
&&
1264 *++scan
== *++match
&& *++scan
== *++match
&&
1267 Assert(scan
<= s
->window
+(unsigned)(s
->window_size
-1), "wild scan");
1269 len
= MAX_MATCH
- (int)(strend
- scan
);
1271 if (len
< MIN_MATCH
) return MIN_MATCH
- 1;
1273 s
->match_start
= cur_match
;
1274 return (uInt
)len
<= s
->lookahead
? (uInt
)len
: s
->lookahead
;
1278 /* ===========================================================================
1279 * Check that the match at match_start is indeed a match.
1281 local
void check_match(s
, start
, match
, length
)
1286 /* check that the match is indeed a match */
1287 if (zmemcmp(s
->window
+ match
,
1288 s
->window
+ start
, length
) != EQUAL
) {
1289 fprintf(stderr
, " start %u, match %u, length %d\n",
1290 start
, match
, length
);
1292 fprintf(stderr
, "%c%c", s
->window
[match
++], s
->window
[start
++]);
1293 } while (--length
!= 0);
1294 z_error("invalid match");
1296 if (z_verbose
> 1) {
1297 fprintf(stderr
,"\\[%d,%d]", start
-match
, length
);
1298 do { putc(s
->window
[start
++], stderr
); } while (--length
!= 0);
1302 # define check_match(s, start, match, length)
1305 /* ===========================================================================
1306 * Fill the window when the lookahead becomes insufficient.
1307 * Updates strstart and lookahead.
1309 * IN assertion: lookahead < MIN_LOOKAHEAD
1310 * OUT assertions: strstart <= window_size-MIN_LOOKAHEAD
1311 * At least one byte has been read, or avail_in == 0; reads are
1312 * performed for at least two bytes (required for the zip translate_eol
1313 * option -- not supported here).
1315 local
void fill_window(s
)
1318 register unsigned n
, m
;
1320 unsigned more
; /* Amount of free space at the end of the window. */
1321 uInt wsize
= s
->w_size
;
1324 more
= (unsigned)(s
->window_size
-(ulg
)s
->lookahead
-(ulg
)s
->strstart
);
1326 /* Deal with !@#$% 64K limit: */
1327 if (sizeof(int) <= 2) {
1328 if (more
== 0 && s
->strstart
== 0 && s
->lookahead
== 0) {
1331 } else if (more
== (unsigned)(-1)) {
1332 /* Very unlikely, but possible on 16 bit machine if
1333 * strstart == 0 && lookahead == 1 (input done a byte at time)
1339 /* If the window is almost full and there is insufficient lookahead,
1340 * move the upper half to the lower one to make room in the upper half.
1342 if (s
->strstart
>= wsize
+MAX_DIST(s
)) {
1344 zmemcpy(s
->window
, s
->window
+wsize
, (unsigned)wsize
);
1345 s
->match_start
-= wsize
;
1346 s
->strstart
-= wsize
; /* we now have strstart >= MAX_DIST */
1347 s
->block_start
-= (long) wsize
;
1349 /* Slide the hash table (could be avoided with 32 bit values
1350 at the expense of memory usage). We slide even when level == 0
1351 to keep the hash table consistent if we switch back to level > 0
1352 later. (Using level 0 permanently is not an optimal usage of
1353 zlib, so we don't care about this pathological case.)
1355 /* %%% avoid this when Z_RLE */
1360 *p
= (Pos
)(m
>= wsize
? m
-wsize
: NIL
);
1368 *p
= (Pos
)(m
>= wsize
? m
-wsize
: NIL
);
1369 /* If n is not on any hash chain, prev[n] is garbage but
1370 * its value will never be used.
1376 if (s
->strm
->avail_in
== 0) return;
1378 /* If there was no sliding:
1379 * strstart <= WSIZE+MAX_DIST-1 && lookahead <= MIN_LOOKAHEAD - 1 &&
1380 * more == window_size - lookahead - strstart
1381 * => more >= window_size - (MIN_LOOKAHEAD-1 + WSIZE + MAX_DIST-1)
1382 * => more >= window_size - 2*WSIZE + 2
1383 * In the BIG_MEM or MMAP case (not yet supported),
1384 * window_size == input_size + MIN_LOOKAHEAD &&
1385 * strstart + s->lookahead <= input_size => more >= MIN_LOOKAHEAD.
1386 * Otherwise, window_size == 2*WSIZE so more >= 2.
1387 * If there was sliding, more >= WSIZE. So in all cases, more >= 2.
1389 Assert(more
>= 2, "more < 2");
1391 n
= (*s
->zinput
)(s
->strm
, s
->window
+ s
->strstart
+ s
->lookahead
, more
);
1394 /* Initialize the hash value now that we have some input: */
1395 if (s
->lookahead
>= MIN_MATCH
) {
1396 s
->ins_h
= s
->window
[s
->strstart
];
1397 UPDATE_HASH(s
, s
->ins_h
, s
->window
[s
->strstart
+1]);
1399 Call
UPDATE_HASH() MIN_MATCH
-3 more times
1402 /* If the whole input has less than MIN_MATCH bytes, ins_h is garbage,
1403 * but this is not important since only literal bytes will be emitted.
1406 } while (s
->lookahead
< MIN_LOOKAHEAD
&& s
->strm
->avail_in
!= 0);
1409 /* ===========================================================================
1410 * Flush the current block, with given end-of-file flag.
1411 * IN assertion: strstart is set to the end of the current match.
1413 #define FLUSH_BLOCK_ONLY(s, eof) { \
1414 _tr_flush_block(s, (s->block_start >= 0L ? \
1415 (charf *)&s->window[(unsigned)s->block_start] : \
1417 (ulg)((long)s->strstart - s->block_start), \
1419 s->block_start = s->strstart; \
1420 flush_pending(s->strm); \
1421 Tracev((stderr,"[FLUSH]")); \
1424 /* Same but force premature exit if necessary. */
1425 #define FLUSH_BLOCK(s, eof) { \
1426 FLUSH_BLOCK_ONLY(s, eof); \
1427 if (s->strm->avail_out == 0) return (eof) ? finish_started : need_more; \
1430 /* ===========================================================================
1431 * Copy without compression as much as possible from the input stream, return
1432 * the current block state.
1433 * This function does not insert new strings in the dictionary since
1434 * uncompressible data is probably not useful. This function is used
1435 * only for the level=0 compression option.
1436 * NOTE: this function should be optimized to avoid extra copying from
1437 * window to pending_buf.
1439 local block_state
deflate_stored(s
, flush
)
1443 /* Stored blocks are limited to 0xffff bytes, pending_buf is limited
1444 * to pending_buf_size, and each stored block has a 5 byte header:
1446 ulg max_block_size
= 0xffff;
1449 if (max_block_size
> s
->pending_buf_size
- 5) {
1450 max_block_size
= s
->pending_buf_size
- 5;
1453 /* Copy as much as possible from input to output: */
1455 /* Fill the window as much as possible: */
1456 if (s
->lookahead
<= 1) {
1458 Assert(s
->strstart
< s
->w_size
+MAX_DIST(s
) ||
1459 s
->block_start
>= (long)s
->w_size
, "slide too late");
1462 if (s
->lookahead
== 0 && flush
== Z_NO_FLUSH
) return need_more
;
1464 if (s
->lookahead
== 0) break; /* flush the current block */
1466 Assert(s
->block_start
>= 0L, "block gone");
1468 s
->strstart
+= s
->lookahead
;
1471 /* Emit a stored block if pending_buf will be full: */
1472 max_start
= s
->block_start
+ max_block_size
;
1473 if (s
->strstart
== 0 || (ulg
)s
->strstart
>= max_start
) {
1474 /* strstart == 0 is possible when wraparound on 16-bit machine */
1475 s
->lookahead
= (uInt
)(s
->strstart
- max_start
);
1476 s
->strstart
= (uInt
)max_start
;
1479 /* Flush if we may have to slide, otherwise block_start may become
1480 * negative and the data will be gone:
1482 if (s
->strstart
- (uInt
)s
->block_start
>= MAX_DIST(s
)) {
1486 FLUSH_BLOCK(s
, flush
== Z_FINISH
);
1487 return flush
== Z_FINISH
? finish_done
: block_done
;
1490 /* ===========================================================================
1491 * Compress as much as possible from the input stream, return the current
1493 * This function does not perform lazy evaluation of matches and inserts
1494 * new strings in the dictionary only for unmatched strings or for short
1495 * matches. It is used only for the fast compression options.
1497 local block_state
deflate_fast(s
, flush
)
1501 IPos hash_head
= NIL
; /* head of the hash chain */
1502 int bflush
; /* set if current block must be flushed */
1505 /* Make sure that we always have enough lookahead, except
1506 * at the end of the input file. We need MAX_MATCH bytes
1507 * for the next match, plus MIN_MATCH bytes to insert the
1508 * string following the next match.
1510 if (s
->lookahead
< MIN_LOOKAHEAD
) {
1512 if (s
->lookahead
< MIN_LOOKAHEAD
&& flush
== Z_NO_FLUSH
) {
1515 if (s
->lookahead
== 0) break; /* flush the current block */
1518 /* Insert the string window[strstart .. strstart+2] in the
1519 * dictionary, and set hash_head to the head of the hash chain:
1521 if (s
->lookahead
>= MIN_MATCH
) {
1522 INSERT_STRING(s
, s
->strstart
, hash_head
);
1525 /* Find the longest match, discarding those <= prev_length.
1526 * At this point we have always match_length < MIN_MATCH
1528 if (hash_head
!= NIL
&& s
->strstart
- hash_head
<= MAX_DIST(s
)) {
1529 /* To simplify the code, we prevent matches with the string
1530 * of window index 0 (in particular we have to avoid a match
1531 * of the string with itself at the start of the input file).
1534 if ((s
->strategy
!= Z_HUFFMAN_ONLY
&& s
->strategy
!= Z_RLE
) ||
1535 (s
->strategy
== Z_RLE
&& s
->strstart
- hash_head
== 1)) {
1536 s
->match_length
= longest_match_fast (s
, hash_head
);
1539 if (s
->strategy
!= Z_HUFFMAN_ONLY
&& s
->strategy
!= Z_RLE
) {
1540 s
->match_length
= longest_match (s
, hash_head
);
1541 } else if (s
->strategy
== Z_RLE
&& s
->strstart
- hash_head
== 1) {
1542 s
->match_length
= longest_match_fast (s
, hash_head
);
1545 /* longest_match() or longest_match_fast() sets match_start */
1547 if (s
->match_length
>= MIN_MATCH
) {
1548 check_match(s
, s
->strstart
, s
->match_start
, s
->match_length
);
1550 _tr_tally_dist(s
, s
->strstart
- s
->match_start
,
1551 s
->match_length
- MIN_MATCH
, bflush
);
1553 s
->lookahead
-= s
->match_length
;
1555 /* Insert new strings in the hash table only if the match length
1556 * is not too large. This saves time but degrades compression.
1559 if (s
->match_length
<= s
->max_insert_length
&&
1560 s
->lookahead
>= MIN_MATCH
) {
1561 s
->match_length
--; /* string at strstart already in table */
1564 INSERT_STRING(s
, s
->strstart
, hash_head
);
1565 /* strstart never exceeds WSIZE-MAX_MATCH, so there are
1566 * always MIN_MATCH bytes ahead.
1568 } while (--s
->match_length
!= 0);
1573 s
->strstart
+= s
->match_length
;
1574 s
->match_length
= 0;
1575 s
->ins_h
= s
->window
[s
->strstart
];
1576 UPDATE_HASH(s
, s
->ins_h
, s
->window
[s
->strstart
+1]);
1578 Call
UPDATE_HASH() MIN_MATCH
-3 more times
1580 /* If lookahead < MIN_MATCH, ins_h is garbage, but it does not
1581 * matter since it will be recomputed at next deflate call.
1585 /* No match, output a literal byte */
1586 Tracevv((stderr
,"%c", s
->window
[s
->strstart
]));
1587 _tr_tally_lit (s
, s
->window
[s
->strstart
], bflush
);
1591 if (bflush
) FLUSH_BLOCK(s
, 0);
1593 FLUSH_BLOCK(s
, flush
== Z_FINISH
);
1594 return flush
== Z_FINISH
? finish_done
: block_done
;
1598 /* ===========================================================================
1599 * Same as above, but achieves better compression. We use a lazy
1600 * evaluation for matches: a match is finally adopted only if there is
1601 * no better match at the next window position.
1603 local block_state
deflate_slow(s
, flush
)
1607 IPos hash_head
= NIL
; /* head of hash chain */
1608 int bflush
; /* set if current block must be flushed */
1610 /* Process the input block. */
1612 /* Make sure that we always have enough lookahead, except
1613 * at the end of the input file. We need MAX_MATCH bytes
1614 * for the next match, plus MIN_MATCH bytes to insert the
1615 * string following the next match.
1617 if (s
->lookahead
< MIN_LOOKAHEAD
) {
1619 if (s
->lookahead
< MIN_LOOKAHEAD
&& flush
== Z_NO_FLUSH
) {
1622 if (s
->lookahead
== 0) break; /* flush the current block */
1625 /* Insert the string window[strstart .. strstart+2] in the
1626 * dictionary, and set hash_head to the head of the hash chain:
1628 if (s
->lookahead
>= MIN_MATCH
) {
1629 INSERT_STRING(s
, s
->strstart
, hash_head
);
1632 /* Find the longest match, discarding those <= prev_length.
1634 s
->prev_length
= s
->match_length
, s
->prev_match
= s
->match_start
;
1635 s
->match_length
= MIN_MATCH
-1;
1637 if (hash_head
!= NIL
&& s
->prev_length
< s
->max_lazy_match
&&
1638 s
->strstart
- hash_head
<= MAX_DIST(s
)) {
1639 /* To simplify the code, we prevent matches with the string
1640 * of window index 0 (in particular we have to avoid a match
1641 * of the string with itself at the start of the input file).
1643 if (s
->strategy
!= Z_HUFFMAN_ONLY
&& s
->strategy
!= Z_RLE
) {
1644 s
->match_length
= longest_match (s
, hash_head
);
1645 } else if (s
->strategy
== Z_RLE
&& s
->strstart
- hash_head
== 1) {
1646 s
->match_length
= longest_match_fast (s
, hash_head
);
1648 /* longest_match() or longest_match_fast() sets match_start */
1650 if (s
->match_length
<= 5 && (s
->strategy
== Z_FILTERED
1651 #if TOO_FAR <= 32767
1652 || (s
->match_length
== MIN_MATCH
&&
1653 s
->strstart
- s
->match_start
> TOO_FAR
)
1657 /* If prev_match is also MIN_MATCH, match_start is garbage
1658 * but we will ignore the current match anyway.
1660 s
->match_length
= MIN_MATCH
-1;
1663 /* If there was a match at the previous step and the current
1664 * match is not better, output the previous match:
1666 if (s
->prev_length
>= MIN_MATCH
&& s
->match_length
<= s
->prev_length
) {
1667 uInt max_insert
= s
->strstart
+ s
->lookahead
- MIN_MATCH
;
1668 /* Do not insert strings in hash table beyond this. */
1670 check_match(s
, s
->strstart
-1, s
->prev_match
, s
->prev_length
);
1672 _tr_tally_dist(s
, s
->strstart
-1 - s
->prev_match
,
1673 s
->prev_length
- MIN_MATCH
, bflush
);
1675 /* Insert in hash table all strings up to the end of the match.
1676 * strstart-1 and strstart are already inserted. If there is not
1677 * enough lookahead, the last two strings are not inserted in
1680 s
->lookahead
-= s
->prev_length
-1;
1681 s
->prev_length
-= 2;
1683 if (++s
->strstart
<= max_insert
) {
1684 INSERT_STRING(s
, s
->strstart
, hash_head
);
1686 } while (--s
->prev_length
!= 0);
1687 s
->match_available
= 0;
1688 s
->match_length
= MIN_MATCH
-1;
1691 if (bflush
) FLUSH_BLOCK(s
, 0);
1693 } else if (s
->match_available
) {
1694 /* If there was no match at the previous position, output a
1695 * single literal. If there was a match but the current match
1696 * is longer, truncate the previous match to a single literal.
1698 Tracevv((stderr
,"%c", s
->window
[s
->strstart
-1]));
1699 _tr_tally_lit(s
, s
->window
[s
->strstart
-1], bflush
);
1701 FLUSH_BLOCK_ONLY(s
, 0);
1705 if (s
->strm
->avail_out
== 0) return need_more
;
1707 /* There is no previous match to compare with, wait for
1708 * the next step to decide.
1710 s
->match_available
= 1;
1715 Assert (flush
!= Z_NO_FLUSH
, "no flush?");
1716 if (s
->match_available
) {
1717 Tracevv((stderr
,"%c", s
->window
[s
->strstart
-1]));
1718 _tr_tally_lit(s
, s
->window
[s
->strstart
-1], bflush
);
1719 s
->match_available
= 0;
1721 FLUSH_BLOCK(s
, flush
== Z_FINISH
);
1722 return flush
== Z_FINISH
? finish_done
: block_done
;
1724 #endif /* FASTEST */
1727 /* ===========================================================================
1728 * For Z_RLE, simply look for runs of bytes, generate matches only of distance
1729 * one. Do not maintain a hash table. (It will be regenerated if this run of
1730 * deflate switches away from Z_RLE.)
1732 local block_state
deflate_rle(s
, flush
)
1736 int bflush
; /* set if current block must be flushed */
1737 uInt run
; /* length of run */
1738 uInt max
; /* maximum length of run */
1739 uInt prev
; /* byte at distance one to match */
1740 Bytef
*scan
; /* scan for end of run */
1743 /* Make sure that we always have enough lookahead, except
1744 * at the end of the input file. We need MAX_MATCH bytes
1745 * for the longest encodable run.
1747 if (s
->lookahead
< MAX_MATCH
) {
1749 if (s
->lookahead
< MAX_MATCH
&& flush
== Z_NO_FLUSH
) {
1752 if (s
->lookahead
== 0) break; /* flush the current block */
1755 /* See how many times the previous byte repeats */
1757 if (s
->strstart
> 0) { /* if there is a previous byte, that is */
1758 max
= s
->lookahead
< MAX_MATCH
? s
->lookahead
: MAX_MATCH
;
1759 scan
= s
->window
+ s
->strstart
- 1;
1762 if (*scan
++ != prev
)
1764 } while (++run
< max
);
1767 /* Emit match if have run of MIN_MATCH or longer, else emit literal */
1768 if (run
>= MIN_MATCH
) {
1769 check_match(s
, s
->strstart
, s
->strstart
- 1, run
);
1770 _tr_tally_dist(s
, 1, run
- MIN_MATCH
, bflush
);
1771 s
->lookahead
-= run
;
1774 /* No match, output a literal byte */
1775 Tracevv((stderr
,"%c", s
->window
[s
->strstart
]));
1776 _tr_tally_lit (s
, s
->window
[s
->strstart
], bflush
);
1780 if (bflush
) FLUSH_BLOCK(s
, 0);
1782 FLUSH_BLOCK(s
, flush
== Z_FINISH
);
1783 return flush
== Z_FINISH
? finish_done
: block_done
;
1787 #if XNU_KERNEL_PRIVATE
1789 uLong
zlib_deflate_memory_size(int wbits
, int memlevel
)
1791 return (31 + sizeof(deflate_state
) + (1 << (wbits
+ 2)) + (1 << (memlevel
+ 9)));
1794 #endif /* XNU_KERNEL_PRIVATE */