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1 /* deflate.c -- compress data using the deflation algorithm
2  * Copyright (C) 1995-2017 Jean-loup Gailly and Mark Adler
3  * For conditions of distribution and use, see copyright notice in zlib.h
4  */
5 
6 /*
7  *  ALGORITHM
8  *
9  *      The "deflation" process depends on being able to identify portions
10  *      of the input text which are identical to earlier input (within a
11  *      sliding window trailing behind the input currently being processed).
12  *
13  *      The most straightforward technique turns out to be the fastest for
14  *      most input files: try all possible matches and select the longest.
15  *      The key feature of this algorithm is that insertions into the string
16  *      dictionary are very simple and thus fast, and deletions are avoided
17  *      completely. Insertions are performed at each input character, whereas
18  *      string matches are performed only when the previous match ends. So it
19  *      is preferable to spend more time in matches to allow very fast string
20  *      insertions and avoid deletions. The matching algorithm for small
21  *      strings is inspired from that of Rabin & Karp. A brute force approach
22  *      is used to find longer strings when a small match has been found.
23  *      A similar algorithm is used in comic (by Jan-Mark Wams) and freeze
24  *      (by Leonid Broukhis).
25  *         A previous version of this file used a more sophisticated algorithm
26  *      (by Fiala and Greene) which is guaranteed to run in linear amortized
27  *      time, but has a larger average cost, uses more memory and is patented.
28  *      However the F&G algorithm may be faster for some highly redundant
29  *      files if the parameter max_chain_length (described below) is too large.
30  *
31  *  ACKNOWLEDGEMENTS
32  *
33  *      The idea of lazy evaluation of matches is due to Jan-Mark Wams, and
34  *      I found it in 'freeze' written by Leonid Broukhis.
35  *      Thanks to many people for bug reports and testing.
36  *
37  *  REFERENCES
38  *
39  *      Deutsch, L.P.,"DEFLATE Compressed Data Format Specification".
40  *      Available in http://tools.ietf.org/html/rfc1951
41  *
42  *      A description of the Rabin and Karp algorithm is given in the book
43  *         "Algorithms" by R. Sedgewick, Addison-Wesley, p252.
44  *
45  *      Fiala,E.R., and Greene,D.H.
46  *         Data Compression with Finite Windows, Comm.ACM, 32,4 (1989) 490-595
47  *
48  */
49 
50 /* @(#) $Id$ */
51 #include <assert.h>
52 #include "deflate.h"
53 #include "x86.h"
54 #include "contrib/optimizations/insert_string.h"
55 
56 #if (defined(__ARM_NEON__) || defined(__ARM_NEON))
57 #include "contrib/optimizations/slide_hash_neon.h"
58 #endif
59 #if defined(CRC32_ARMV8_CRC32)
60 #include "crc32_simd.h"
61 #endif
62 
63 const char deflate_copyright[] =
64    " deflate 1.2.11 Copyright 1995-2017 Jean-loup Gailly and Mark Adler ";
65 /*
66   If you use the zlib library in a product, an acknowledgment is welcome
67   in the documentation of your product. If for some reason you cannot
68   include such an acknowledgment, I would appreciate that you keep this
69   copyright string in the executable of your product.
70  */
71 
72 /* ===========================================================================
73  *  Function prototypes.
74  */
75 typedef enum {
76     need_more,      /* block not completed, need more input or more output */
77     block_done,     /* block flush performed */
78     finish_started, /* finish started, need only more output at next deflate */
79     finish_done     /* finish done, accept no more input or output */
80 } block_state;
81 
82 typedef block_state (*compress_func) OF((deflate_state *s, int flush));
83 /* Compression function. Returns the block state after the call. */
84 
85 local int deflateStateCheck      OF((z_streamp strm));
86 local void slide_hash     OF((deflate_state *s));
87 local void fill_window    OF((deflate_state *s));
88 local block_state deflate_stored OF((deflate_state *s, int flush));
89 local block_state deflate_fast   OF((deflate_state *s, int flush));
90 #ifndef FASTEST
91 local block_state deflate_slow   OF((deflate_state *s, int flush));
92 #endif
93 local block_state deflate_rle    OF((deflate_state *s, int flush));
94 local block_state deflate_huff   OF((deflate_state *s, int flush));
95 local void lm_init        OF((deflate_state *s));
96 local void putShortMSB    OF((deflate_state *s, uInt b));
97 local void flush_pending  OF((z_streamp strm));
98 unsigned ZLIB_INTERNAL deflate_read_buf OF((z_streamp strm, Bytef *buf, unsigned size));
99 #ifdef ASMV
100 #  pragma message("Assembler code may have bugs -- use at your own risk")
101       void match_init OF((void)); /* asm code initialization */
102       uInt longest_match  OF((deflate_state *s, IPos cur_match));
103 #else
104 local uInt longest_match  OF((deflate_state *s, IPos cur_match));
105 #endif
106 
107 #ifdef ZLIB_DEBUG
108 local  void check_match OF((deflate_state *s, IPos start, IPos match,
109                             int length));
110 #endif
111 
112 /* From crc32.c */
113 extern void ZLIB_INTERNAL crc_reset(deflate_state *const s);
114 extern void ZLIB_INTERNAL crc_finalize(deflate_state *const s);
115 extern void ZLIB_INTERNAL copy_with_crc(z_streamp strm, Bytef *dst, long size);
116 
117 /* ===========================================================================
118  * Local data
119  */
120 
121 #define NIL 0
122 /* Tail of hash chains */
123 
124 #ifndef TOO_FAR
125 #  define TOO_FAR 4096
126 #endif
127 /* Matches of length 3 are discarded if their distance exceeds TOO_FAR */
128 
129 /* Values for max_lazy_match, good_match and max_chain_length, depending on
130  * the desired pack level (0..9). The values given below have been tuned to
131  * exclude worst case performance for pathological files. Better values may be
132  * found for specific files.
133  */
134 typedef struct config_s {
135    ush good_length; /* reduce lazy search above this match length */
136    ush max_lazy;    /* do not perform lazy search above this match length */
137    ush nice_length; /* quit search above this match length */
138    ush max_chain;
139    compress_func func;
140 } config;
141 
142 #ifdef FASTEST
143 local const config configuration_table[2] = {
144 /*      good lazy nice chain */
145 /* 0 */ {0,    0,  0,    0, deflate_stored},  /* store only */
146 /* 1 */ {4,    4,  8,    4, deflate_fast}}; /* max speed, no lazy matches */
147 #else
148 local const config configuration_table[10] = {
149 /*      good lazy nice chain */
150 /* 0 */ {0,    0,  0,    0, deflate_stored},  /* store only */
151 /* 1 */ {4,    4,  8,    4, deflate_fast}, /* max speed, no lazy matches */
152 /* 2 */ {4,    5, 16,    8, deflate_fast},
153 /* 3 */ {4,    6, 32,   32, deflate_fast},
154 
155 /* 4 */ {4,    4, 16,   16, deflate_slow},  /* lazy matches */
156 /* 5 */ {8,   16, 32,   32, deflate_slow},
157 /* 6 */ {8,   16, 128, 128, deflate_slow},
158 /* 7 */ {8,   32, 128, 256, deflate_slow},
159 /* 8 */ {32, 128, 258, 1024, deflate_slow},
160 /* 9 */ {32, 258, 258, 4096, deflate_slow}}; /* max compression */
161 #endif
162 
163 /* Note: the deflate() code requires max_lazy >= MIN_MATCH and max_chain >= 4
164  * For deflate_fast() (levels <= 3) good is ignored and lazy has a different
165  * meaning.
166  */
167 
168 /* rank Z_BLOCK between Z_NO_FLUSH and Z_PARTIAL_FLUSH */
169 #define RANK(f) (((f) * 2) - ((f) > 4 ? 9 : 0))
170 
171 /* ===========================================================================
172  * Initialize the hash table (avoiding 64K overflow for 16 bit systems).
173  * prev[] will be initialized on the fly.
174  */
175 #define CLEAR_HASH(s) \
176     s->head[s->hash_size-1] = NIL; \
177     zmemzero((Bytef *)s->head, (unsigned)(s->hash_size-1)*sizeof(*s->head));
178 
179 /* ===========================================================================
180  * Slide the hash table when sliding the window down (could be avoided with 32
181  * bit values at the expense of memory usage). We slide even when level == 0 to
182  * keep the hash table consistent if we switch back to level > 0 later.
183  */
slide_hash(s)184 local void slide_hash(s)
185     deflate_state *s;
186 {
187 #if (defined(__ARM_NEON__) || defined(__ARM_NEON))
188     /* NEON based hash table rebase. */
189     return neon_slide_hash(s->head, s->prev, s->w_size, s->hash_size);
190 #endif
191     unsigned n, m;
192     Posf *p;
193     uInt wsize = s->w_size;
194 
195     n = s->hash_size;
196     p = &s->head[n];
197     do {
198         m = *--p;
199         *p = (Pos)(m >= wsize ? m - wsize : NIL);
200     } while (--n);
201     n = wsize;
202 #ifndef FASTEST
203     p = &s->prev[n];
204     do {
205         m = *--p;
206         *p = (Pos)(m >= wsize ? m - wsize : NIL);
207         /* If n is not on any hash chain, prev[n] is garbage but
208          * its value will never be used.
209          */
210     } while (--n);
211 #endif
212 }
213 
214 /* ========================================================================= */
deflateInit_(strm,level,version,stream_size)215 int ZEXPORT deflateInit_(strm, level, version, stream_size)
216     z_streamp strm;
217     int level;
218     const char *version;
219     int stream_size;
220 {
221     return deflateInit2_(strm, level, Z_DEFLATED, MAX_WBITS, DEF_MEM_LEVEL,
222                          Z_DEFAULT_STRATEGY, version, stream_size);
223     /* To do: ignore strm->next_in if we use it as window */
224 }
225 
226 /* ========================================================================= */
deflateInit2_(strm,level,method,windowBits,memLevel,strategy,version,stream_size)227 int ZEXPORT deflateInit2_(strm, level, method, windowBits, memLevel, strategy,
228                   version, stream_size)
229     z_streamp strm;
230     int  level;
231     int  method;
232     int  windowBits;
233     int  memLevel;
234     int  strategy;
235     const char *version;
236     int stream_size;
237 {
238     unsigned window_padding = 8;
239     deflate_state *s;
240     int wrap = 1;
241     static const char my_version[] = ZLIB_VERSION;
242 
243     // Needed to activate optimized insert_string() that helps compression
244     // for all wrapper formats (e.g. RAW, ZLIB, GZIP).
245     // Feature detection is not triggered while using RAW mode (i.e. we never
246     // call crc32() with a NULL buffer).
247 #if defined(CRC32_ARMV8_CRC32)
248     arm_check_features();
249 #elif defined(CRC32_SIMD_SSE42_PCLMUL)
250     x86_check_features();
251 #endif
252 
253     if (version == Z_NULL || version[0] != my_version[0] ||
254         stream_size != sizeof(z_stream)) {
255         return Z_VERSION_ERROR;
256     }
257     if (strm == Z_NULL) return Z_STREAM_ERROR;
258 
259     strm->msg = Z_NULL;
260     if (strm->zalloc == (alloc_func)0) {
261 #ifdef Z_SOLO
262         return Z_STREAM_ERROR;
263 #else
264         strm->zalloc = zcalloc;
265         strm->opaque = (voidpf)0;
266 #endif
267     }
268     if (strm->zfree == (free_func)0)
269 #ifdef Z_SOLO
270         return Z_STREAM_ERROR;
271 #else
272         strm->zfree = zcfree;
273 #endif
274 
275 #ifdef FASTEST
276     if (level != 0) level = 1;
277 #else
278     if (level == Z_DEFAULT_COMPRESSION) level = 6;
279 #endif
280 
281     if (windowBits < 0) { /* suppress zlib wrapper */
282         wrap = 0;
283         windowBits = -windowBits;
284     }
285 #ifdef GZIP
286     else if (windowBits > 15) {
287         wrap = 2;       /* write gzip wrapper instead */
288         windowBits -= 16;
289     }
290 #endif
291     if (memLevel < 1 || memLevel > MAX_MEM_LEVEL || method != Z_DEFLATED ||
292         windowBits < 8 || windowBits > 15 || level < 0 || level > 9 ||
293         strategy < 0 || strategy > Z_FIXED || (windowBits == 8 && wrap != 1)) {
294         return Z_STREAM_ERROR;
295     }
296     if (windowBits == 8) windowBits = 9;  /* until 256-byte window bug fixed */
297     s = (deflate_state *) ZALLOC(strm, 1, sizeof(deflate_state));
298     if (s == Z_NULL) return Z_MEM_ERROR;
299     strm->state = (struct internal_state FAR *)s;
300     s->strm = strm;
301     s->status = INIT_STATE;     /* to pass state test in deflateReset() */
302 
303     s->wrap = wrap;
304     s->gzhead = Z_NULL;
305     s->w_bits = (uInt)windowBits;
306     s->w_size = 1 << s->w_bits;
307     s->w_mask = s->w_size - 1;
308 
309     if (x86_cpu_enable_simd) {
310         s->hash_bits = 15;
311     } else {
312         s->hash_bits = memLevel + 7;
313     }
314 
315     s->hash_size = 1 << s->hash_bits;
316     s->hash_mask = s->hash_size - 1;
317     s->hash_shift =  ((s->hash_bits+MIN_MATCH-1)/MIN_MATCH);
318 
319     s->window = (Bytef *) ZALLOC(strm,
320                                  s->w_size + window_padding,
321                                  2*sizeof(Byte));
322     s->prev   = (Posf *)  ZALLOC(strm, s->w_size, sizeof(Pos));
323     s->head   = (Posf *)  ZALLOC(strm, s->hash_size, sizeof(Pos));
324 
325     s->high_water = 0;      /* nothing written to s->window yet */
326 
327     s->lit_bufsize = 1 << (memLevel + 6); /* 16K elements by default */
328 
329     /* We overlay pending_buf and sym_buf. This works since the average size
330      * for length/distance pairs over any compressed block is assured to be 31
331      * bits or less.
332      *
333      * Analysis: The longest fixed codes are a length code of 8 bits plus 5
334      * extra bits, for lengths 131 to 257. The longest fixed distance codes are
335      * 5 bits plus 13 extra bits, for distances 16385 to 32768. The longest
336      * possible fixed-codes length/distance pair is then 31 bits total.
337      *
338      * sym_buf starts one-fourth of the way into pending_buf. So there are
339      * three bytes in sym_buf for every four bytes in pending_buf. Each symbol
340      * in sym_buf is three bytes -- two for the distance and one for the
341      * literal/length. As each symbol is consumed, the pointer to the next
342      * sym_buf value to read moves forward three bytes. From that symbol, up to
343      * 31 bits are written to pending_buf. The closest the written pending_buf
344      * bits gets to the next sym_buf symbol to read is just before the last
345      * code is written. At that time, 31*(n-2) bits have been written, just
346      * after 24*(n-2) bits have been consumed from sym_buf. sym_buf starts at
347      * 8*n bits into pending_buf. (Note that the symbol buffer fills when n-1
348      * symbols are written.) The closest the writing gets to what is unread is
349      * then n+14 bits. Here n is lit_bufsize, which is 16384 by default, and
350      * can range from 128 to 32768.
351      *
352      * Therefore, at a minimum, there are 142 bits of space between what is
353      * written and what is read in the overlain buffers, so the symbols cannot
354      * be overwritten by the compressed data. That space is actually 139 bits,
355      * due to the three-bit fixed-code block header.
356      *
357      * That covers the case where either Z_FIXED is specified, forcing fixed
358      * codes, or when the use of fixed codes is chosen, because that choice
359      * results in a smaller compressed block than dynamic codes. That latter
360      * condition then assures that the above analysis also covers all dynamic
361      * blocks. A dynamic-code block will only be chosen to be emitted if it has
362      * fewer bits than a fixed-code block would for the same set of symbols.
363      * Therefore its average symbol length is assured to be less than 31. So
364      * the compressed data for a dynamic block also cannot overwrite the
365      * symbols from which it is being constructed.
366      */
367     s->pending_buf = (uchf *) ZALLOC(strm, s->lit_bufsize, 4);
368     s->pending_buf_size = (ulg)s->lit_bufsize * 4;
369 
370     if (s->window == Z_NULL || s->prev == Z_NULL || s->head == Z_NULL ||
371         s->pending_buf == Z_NULL) {
372         s->status = FINISH_STATE;
373         strm->msg = ERR_MSG(Z_MEM_ERROR);
374         deflateEnd (strm);
375         return Z_MEM_ERROR;
376     }
377     s->sym_buf = s->pending_buf + s->lit_bufsize;
378     s->sym_end = (s->lit_bufsize - 1) * 3;
379     /* We avoid equality with lit_bufsize*3 because of wraparound at 64K
380      * on 16 bit machines and because stored blocks are restricted to
381      * 64K-1 bytes.
382      */
383 
384     s->level = level;
385     s->strategy = strategy;
386     s->method = (Byte)method;
387 
388     return deflateReset(strm);
389 }
390 
391 /* =========================================================================
392  * Check for a valid deflate stream state. Return 0 if ok, 1 if not.
393  */
deflateStateCheck(strm)394 local int deflateStateCheck (strm)
395     z_streamp strm;
396 {
397     deflate_state *s;
398     if (strm == Z_NULL ||
399         strm->zalloc == (alloc_func)0 || strm->zfree == (free_func)0)
400         return 1;
401     s = strm->state;
402     if (s == Z_NULL || s->strm != strm || (s->status != INIT_STATE &&
403 #ifdef GZIP
404                                            s->status != GZIP_STATE &&
405 #endif
406                                            s->status != EXTRA_STATE &&
407                                            s->status != NAME_STATE &&
408                                            s->status != COMMENT_STATE &&
409                                            s->status != HCRC_STATE &&
410                                            s->status != BUSY_STATE &&
411                                            s->status != FINISH_STATE))
412         return 1;
413     return 0;
414 }
415 
416 /* ========================================================================= */
deflateSetDictionary(strm,dictionary,dictLength)417 int ZEXPORT deflateSetDictionary (strm, dictionary, dictLength)
418     z_streamp strm;
419     const Bytef *dictionary;
420     uInt  dictLength;
421 {
422     deflate_state *s;
423     uInt str, n;
424     int wrap;
425     unsigned avail;
426     z_const unsigned char *next;
427 
428     if (deflateStateCheck(strm) || dictionary == Z_NULL)
429         return Z_STREAM_ERROR;
430     s = strm->state;
431     wrap = s->wrap;
432     if (wrap == 2 || (wrap == 1 && s->status != INIT_STATE) || s->lookahead)
433         return Z_STREAM_ERROR;
434 
435     /* when using zlib wrappers, compute Adler-32 for provided dictionary */
436     if (wrap == 1)
437         strm->adler = adler32(strm->adler, dictionary, dictLength);
438     s->wrap = 0;                    /* avoid computing Adler-32 in deflate_read_buf */
439 
440     /* if dictionary would fill window, just replace the history */
441     if (dictLength >= s->w_size) {
442         if (wrap == 0) {            /* already empty otherwise */
443             CLEAR_HASH(s);
444             s->strstart = 0;
445             s->block_start = 0L;
446             s->insert = 0;
447         }
448         dictionary += dictLength - s->w_size;  /* use the tail */
449         dictLength = s->w_size;
450     }
451 
452     /* insert dictionary into window and hash */
453     avail = strm->avail_in;
454     next = strm->next_in;
455     strm->avail_in = dictLength;
456     strm->next_in = (z_const Bytef *)dictionary;
457     fill_window(s);
458     while (s->lookahead >= MIN_MATCH) {
459         str = s->strstart;
460         n = s->lookahead - (MIN_MATCH-1);
461         do {
462             insert_string(s, str);
463             str++;
464         } while (--n);
465         s->strstart = str;
466         s->lookahead = MIN_MATCH-1;
467         fill_window(s);
468     }
469     s->strstart += s->lookahead;
470     s->block_start = (long)s->strstart;
471     s->insert = s->lookahead;
472     s->lookahead = 0;
473     s->match_length = s->prev_length = MIN_MATCH-1;
474     s->match_available = 0;
475     strm->next_in = next;
476     strm->avail_in = avail;
477     s->wrap = wrap;
478     return Z_OK;
479 }
480 
481 /* ========================================================================= */
deflateGetDictionary(strm,dictionary,dictLength)482 int ZEXPORT deflateGetDictionary (strm, dictionary, dictLength)
483     z_streamp strm;
484     Bytef *dictionary;
485     uInt  *dictLength;
486 {
487     deflate_state *s;
488     uInt len;
489 
490     if (deflateStateCheck(strm))
491         return Z_STREAM_ERROR;
492     s = strm->state;
493     len = s->strstart + s->lookahead;
494     if (len > s->w_size)
495         len = s->w_size;
496     if (dictionary != Z_NULL && len)
497         zmemcpy(dictionary, s->window + s->strstart + s->lookahead - len, len);
498     if (dictLength != Z_NULL)
499         *dictLength = len;
500     return Z_OK;
501 }
502 
503 /* ========================================================================= */
deflateResetKeep(strm)504 int ZEXPORT deflateResetKeep (strm)
505     z_streamp strm;
506 {
507     deflate_state *s;
508 
509     if (deflateStateCheck(strm)) {
510         return Z_STREAM_ERROR;
511     }
512 
513     strm->total_in = strm->total_out = 0;
514     strm->msg = Z_NULL; /* use zfree if we ever allocate msg dynamically */
515     strm->data_type = Z_UNKNOWN;
516 
517     s = (deflate_state *)strm->state;
518     s->pending = 0;
519     s->pending_out = s->pending_buf;
520 
521     if (s->wrap < 0) {
522         s->wrap = -s->wrap; /* was made negative by deflate(..., Z_FINISH); */
523     }
524     s->status =
525 #ifdef GZIP
526         s->wrap == 2 ? GZIP_STATE :
527 #endif
528         s->wrap ? INIT_STATE : BUSY_STATE;
529     strm->adler =
530 #ifdef GZIP
531         s->wrap == 2 ? crc32(0L, Z_NULL, 0) :
532 #endif
533         adler32(0L, Z_NULL, 0);
534     s->last_flush = Z_NO_FLUSH;
535 
536     _tr_init(s);
537 
538     return Z_OK;
539 }
540 
541 /* ========================================================================= */
deflateReset(strm)542 int ZEXPORT deflateReset (strm)
543     z_streamp strm;
544 {
545     int ret;
546 
547     ret = deflateResetKeep(strm);
548     if (ret == Z_OK)
549         lm_init(strm->state);
550     return ret;
551 }
552 
553 /* ========================================================================= */
deflateSetHeader(strm,head)554 int ZEXPORT deflateSetHeader (strm, head)
555     z_streamp strm;
556     gz_headerp head;
557 {
558     if (deflateStateCheck(strm) || strm->state->wrap != 2)
559         return Z_STREAM_ERROR;
560     strm->state->gzhead = head;
561     return Z_OK;
562 }
563 
564 /* ========================================================================= */
deflatePending(strm,pending,bits)565 int ZEXPORT deflatePending (strm, pending, bits)
566     unsigned *pending;
567     int *bits;
568     z_streamp strm;
569 {
570     if (deflateStateCheck(strm)) return Z_STREAM_ERROR;
571     if (pending != Z_NULL)
572         *pending = strm->state->pending;
573     if (bits != Z_NULL)
574         *bits = strm->state->bi_valid;
575     return Z_OK;
576 }
577 
578 /* ========================================================================= */
deflatePrime(strm,bits,value)579 int ZEXPORT deflatePrime (strm, bits, value)
580     z_streamp strm;
581     int bits;
582     int value;
583 {
584     deflate_state *s;
585     int put;
586 
587     if (deflateStateCheck(strm)) return Z_STREAM_ERROR;
588     s = strm->state;
589     if (s->sym_buf < s->pending_out + ((Buf_size + 7) >> 3))
590         return Z_BUF_ERROR;
591     do {
592         put = Buf_size - s->bi_valid;
593         if (put > bits)
594             put = bits;
595         s->bi_buf |= (ush)((value & ((1 << put) - 1)) << s->bi_valid);
596         s->bi_valid += put;
597         _tr_flush_bits(s);
598         value >>= put;
599         bits -= put;
600     } while (bits);
601     return Z_OK;
602 }
603 
604 /* ========================================================================= */
deflateParams(strm,level,strategy)605 int ZEXPORT deflateParams(strm, level, strategy)
606     z_streamp strm;
607     int level;
608     int strategy;
609 {
610     deflate_state *s;
611     compress_func func;
612 
613     if (deflateStateCheck(strm)) return Z_STREAM_ERROR;
614     s = strm->state;
615 
616 #ifdef FASTEST
617     if (level != 0) level = 1;
618 #else
619     if (level == Z_DEFAULT_COMPRESSION) level = 6;
620 #endif
621     if (level < 0 || level > 9 || strategy < 0 || strategy > Z_FIXED) {
622         return Z_STREAM_ERROR;
623     }
624     func = configuration_table[s->level].func;
625 
626     if ((strategy != s->strategy || func != configuration_table[level].func) &&
627         s->high_water) {
628         /* Flush the last buffer: */
629         int err = deflate(strm, Z_BLOCK);
630         if (err == Z_STREAM_ERROR)
631             return err;
632         if (strm->avail_out == 0)
633             return Z_BUF_ERROR;
634     }
635     if (s->level != level) {
636         if (s->level == 0 && s->matches != 0) {
637             if (s->matches == 1)
638                 slide_hash(s);
639             else
640                 CLEAR_HASH(s);
641             s->matches = 0;
642         }
643         s->level = level;
644         s->max_lazy_match   = configuration_table[level].max_lazy;
645         s->good_match       = configuration_table[level].good_length;
646         s->nice_match       = configuration_table[level].nice_length;
647         s->max_chain_length = configuration_table[level].max_chain;
648     }
649     s->strategy = strategy;
650     return Z_OK;
651 }
652 
653 /* ========================================================================= */
deflateTune(strm,good_length,max_lazy,nice_length,max_chain)654 int ZEXPORT deflateTune(strm, good_length, max_lazy, nice_length, max_chain)
655     z_streamp strm;
656     int good_length;
657     int max_lazy;
658     int nice_length;
659     int max_chain;
660 {
661     deflate_state *s;
662 
663     if (deflateStateCheck(strm)) return Z_STREAM_ERROR;
664     s = strm->state;
665     s->good_match = (uInt)good_length;
666     s->max_lazy_match = (uInt)max_lazy;
667     s->nice_match = nice_length;
668     s->max_chain_length = (uInt)max_chain;
669     return Z_OK;
670 }
671 
672 /* =========================================================================
673  * For the default windowBits of 15 and memLevel of 8, this function returns
674  * a close to exact, as well as small, upper bound on the compressed size.
675  * They are coded as constants here for a reason--if the #define's are
676  * changed, then this function needs to be changed as well.  The return
677  * value for 15 and 8 only works for those exact settings.
678  *
679  * For any setting other than those defaults for windowBits and memLevel,
680  * the value returned is a conservative worst case for the maximum expansion
681  * resulting from using fixed blocks instead of stored blocks, which deflate
682  * can emit on compressed data for some combinations of the parameters.
683  *
684  * This function could be more sophisticated to provide closer upper bounds for
685  * every combination of windowBits and memLevel.  But even the conservative
686  * upper bound of about 14% expansion does not seem onerous for output buffer
687  * allocation.
688  */
deflateBound(strm,sourceLen)689 uLong ZEXPORT deflateBound(strm, sourceLen)
690     z_streamp strm;
691     uLong sourceLen;
692 {
693     deflate_state *s;
694     uLong complen, wraplen;
695 
696     /* conservative upper bound for compressed data */
697     complen = sourceLen +
698               ((sourceLen + 7) >> 3) + ((sourceLen + 63) >> 6) + 5;
699 
700     /* if can't get parameters, return conservative bound plus zlib wrapper */
701     if (deflateStateCheck(strm))
702         return complen + 6;
703 
704     /* compute wrapper length */
705     s = strm->state;
706     switch (s->wrap) {
707     case 0:                                 /* raw deflate */
708         wraplen = 0;
709         break;
710     case 1:                                 /* zlib wrapper */
711         wraplen = 6 + (s->strstart ? 4 : 0);
712         break;
713 #ifdef GZIP
714     case 2:                                 /* gzip wrapper */
715         wraplen = 18;
716         if (s->gzhead != Z_NULL) {          /* user-supplied gzip header */
717             Bytef *str;
718             if (s->gzhead->extra != Z_NULL)
719                 wraplen += 2 + s->gzhead->extra_len;
720             str = s->gzhead->name;
721             if (str != Z_NULL)
722                 do {
723                     wraplen++;
724                 } while (*str++);
725             str = s->gzhead->comment;
726             if (str != Z_NULL)
727                 do {
728                     wraplen++;
729                 } while (*str++);
730             if (s->gzhead->hcrc)
731                 wraplen += 2;
732         }
733         break;
734 #endif
735     default:                                /* for compiler happiness */
736         wraplen = 6;
737     }
738 
739     /* if not default parameters, return conservative bound */
740     if (s->w_bits != 15 || s->hash_bits != 8 + 7)
741         return complen + wraplen;
742 
743     /* default settings: return tight bound for that case */
744     return sourceLen + (sourceLen >> 12) + (sourceLen >> 14) +
745            (sourceLen >> 25) + 13 - 6 + wraplen;
746 }
747 
748 /* =========================================================================
749  * Put a short in the pending buffer. The 16-bit value is put in MSB order.
750  * IN assertion: the stream state is correct and there is enough room in
751  * pending_buf.
752  */
putShortMSB(s,b)753 local void putShortMSB (s, b)
754     deflate_state *s;
755     uInt b;
756 {
757     put_byte(s, (Byte)(b >> 8));
758     put_byte(s, (Byte)(b & 0xff));
759 }
760 
761 /* =========================================================================
762  * Flush as much pending output as possible. All deflate() output, except for
763  * some deflate_stored() output, goes through this function so some
764  * applications may wish to modify it to avoid allocating a large
765  * strm->next_out buffer and copying into it. (See also deflate_read_buf()).
766  */
flush_pending(strm)767 local void flush_pending(strm)
768     z_streamp strm;
769 {
770     unsigned len;
771     deflate_state *s = strm->state;
772 
773     _tr_flush_bits(s);
774     len = s->pending;
775     if (len > strm->avail_out) len = strm->avail_out;
776     if (len == 0) return;
777 
778     zmemcpy(strm->next_out, s->pending_out, len);
779     strm->next_out  += len;
780     s->pending_out  += len;
781     strm->total_out += len;
782     strm->avail_out -= len;
783     s->pending      -= len;
784     if (s->pending == 0) {
785         s->pending_out = s->pending_buf;
786     }
787 }
788 
789 /* ===========================================================================
790  * Update the header CRC with the bytes s->pending_buf[beg..s->pending - 1].
791  */
792 #define HCRC_UPDATE(beg) \
793     do { \
794         if (s->gzhead->hcrc && s->pending > (beg)) \
795             strm->adler = crc32(strm->adler, s->pending_buf + (beg), \
796                                 s->pending - (beg)); \
797     } while (0)
798 
799 /* ========================================================================= */
deflate(strm,flush)800 int ZEXPORT deflate (strm, flush)
801     z_streamp strm;
802     int flush;
803 {
804     int old_flush; /* value of flush param for previous deflate call */
805     deflate_state *s;
806 
807     if (deflateStateCheck(strm) || flush > Z_BLOCK || flush < 0) {
808         return Z_STREAM_ERROR;
809     }
810     s = strm->state;
811 
812     if (strm->next_out == Z_NULL ||
813         (strm->avail_in != 0 && strm->next_in == Z_NULL) ||
814         (s->status == FINISH_STATE && flush != Z_FINISH)) {
815         ERR_RETURN(strm, Z_STREAM_ERROR);
816     }
817     if (strm->avail_out == 0) ERR_RETURN(strm, Z_BUF_ERROR);
818 
819     old_flush = s->last_flush;
820     s->last_flush = flush;
821 
822     /* Flush as much pending output as possible */
823     if (s->pending != 0) {
824         flush_pending(strm);
825         if (strm->avail_out == 0) {
826             /* Since avail_out is 0, deflate will be called again with
827              * more output space, but possibly with both pending and
828              * avail_in equal to zero. There won't be anything to do,
829              * but this is not an error situation so make sure we
830              * return OK instead of BUF_ERROR at next call of deflate:
831              */
832             s->last_flush = -1;
833             return Z_OK;
834         }
835 
836     /* Make sure there is something to do and avoid duplicate consecutive
837      * flushes. For repeated and useless calls with Z_FINISH, we keep
838      * returning Z_STREAM_END instead of Z_BUF_ERROR.
839      */
840     } else if (strm->avail_in == 0 && RANK(flush) <= RANK(old_flush) &&
841                flush != Z_FINISH) {
842         ERR_RETURN(strm, Z_BUF_ERROR);
843     }
844 
845     /* User must not provide more input after the first FINISH: */
846     if (s->status == FINISH_STATE && strm->avail_in != 0) {
847         ERR_RETURN(strm, Z_BUF_ERROR);
848     }
849 
850     /* Write the header */
851     if (s->status == INIT_STATE) {
852         /* zlib header */
853         uInt header = (Z_DEFLATED + ((s->w_bits-8)<<4)) << 8;
854         uInt level_flags;
855 
856         if (s->strategy >= Z_HUFFMAN_ONLY || s->level < 2)
857             level_flags = 0;
858         else if (s->level < 6)
859             level_flags = 1;
860         else if (s->level == 6)
861             level_flags = 2;
862         else
863             level_flags = 3;
864         header |= (level_flags << 6);
865         if (s->strstart != 0) header |= PRESET_DICT;
866         header += 31 - (header % 31);
867 
868         putShortMSB(s, header);
869 
870         /* Save the adler32 of the preset dictionary: */
871         if (s->strstart != 0) {
872             putShortMSB(s, (uInt)(strm->adler >> 16));
873             putShortMSB(s, (uInt)(strm->adler & 0xffff));
874         }
875         strm->adler = adler32(0L, Z_NULL, 0);
876         s->status = BUSY_STATE;
877 
878         /* Compression must start with an empty pending buffer */
879         flush_pending(strm);
880         if (s->pending != 0) {
881             s->last_flush = -1;
882             return Z_OK;
883         }
884     }
885 #ifdef GZIP
886     if (s->status == GZIP_STATE) {
887         /* gzip header */
888         crc_reset(s);
889         put_byte(s, 31);
890         put_byte(s, 139);
891         put_byte(s, 8);
892         if (s->gzhead == Z_NULL) {
893             put_byte(s, 0);
894             put_byte(s, 0);
895             put_byte(s, 0);
896             put_byte(s, 0);
897             put_byte(s, 0);
898             put_byte(s, s->level == 9 ? 2 :
899                      (s->strategy >= Z_HUFFMAN_ONLY || s->level < 2 ?
900                       4 : 0));
901             put_byte(s, OS_CODE);
902             s->status = BUSY_STATE;
903 
904             /* Compression must start with an empty pending buffer */
905             flush_pending(strm);
906             if (s->pending != 0) {
907                 s->last_flush = -1;
908                 return Z_OK;
909             }
910         }
911         else {
912             put_byte(s, (s->gzhead->text ? 1 : 0) +
913                      (s->gzhead->hcrc ? 2 : 0) +
914                      (s->gzhead->extra == Z_NULL ? 0 : 4) +
915                      (s->gzhead->name == Z_NULL ? 0 : 8) +
916                      (s->gzhead->comment == Z_NULL ? 0 : 16)
917                      );
918             put_byte(s, (Byte)(s->gzhead->time & 0xff));
919             put_byte(s, (Byte)((s->gzhead->time >> 8) & 0xff));
920             put_byte(s, (Byte)((s->gzhead->time >> 16) & 0xff));
921             put_byte(s, (Byte)((s->gzhead->time >> 24) & 0xff));
922             put_byte(s, s->level == 9 ? 2 :
923                      (s->strategy >= Z_HUFFMAN_ONLY || s->level < 2 ?
924                       4 : 0));
925             put_byte(s, s->gzhead->os & 0xff);
926             if (s->gzhead->extra != Z_NULL) {
927                 put_byte(s, s->gzhead->extra_len & 0xff);
928                 put_byte(s, (s->gzhead->extra_len >> 8) & 0xff);
929             }
930             if (s->gzhead->hcrc)
931                 strm->adler = crc32(strm->adler, s->pending_buf,
932                                     s->pending);
933             s->gzindex = 0;
934             s->status = EXTRA_STATE;
935         }
936     }
937     if (s->status == EXTRA_STATE) {
938         if (s->gzhead->extra != Z_NULL) {
939             ulg beg = s->pending;   /* start of bytes to update crc */
940             uInt left = (s->gzhead->extra_len & 0xffff) - s->gzindex;
941             while (s->pending + left > s->pending_buf_size) {
942                 uInt copy = s->pending_buf_size - s->pending;
943                 zmemcpy(s->pending_buf + s->pending,
944                         s->gzhead->extra + s->gzindex, copy);
945                 s->pending = s->pending_buf_size;
946                 HCRC_UPDATE(beg);
947                 s->gzindex += copy;
948                 flush_pending(strm);
949                 if (s->pending != 0) {
950                     s->last_flush = -1;
951                     return Z_OK;
952                 }
953                 beg = 0;
954                 left -= copy;
955             }
956             zmemcpy(s->pending_buf + s->pending,
957                     s->gzhead->extra + s->gzindex, left);
958             s->pending += left;
959             HCRC_UPDATE(beg);
960             s->gzindex = 0;
961         }
962         s->status = NAME_STATE;
963     }
964     if (s->status == NAME_STATE) {
965         if (s->gzhead->name != Z_NULL) {
966             ulg beg = s->pending;   /* start of bytes to update crc */
967             int val;
968             do {
969                 if (s->pending == s->pending_buf_size) {
970                     HCRC_UPDATE(beg);
971                     flush_pending(strm);
972                     if (s->pending != 0) {
973                         s->last_flush = -1;
974                         return Z_OK;
975                     }
976                     beg = 0;
977                 }
978                 val = s->gzhead->name[s->gzindex++];
979                 put_byte(s, val);
980             } while (val != 0);
981             HCRC_UPDATE(beg);
982             s->gzindex = 0;
983         }
984         s->status = COMMENT_STATE;
985     }
986     if (s->status == COMMENT_STATE) {
987         if (s->gzhead->comment != Z_NULL) {
988             ulg beg = s->pending;   /* start of bytes to update crc */
989             int val;
990             do {
991                 if (s->pending == s->pending_buf_size) {
992                     HCRC_UPDATE(beg);
993                     flush_pending(strm);
994                     if (s->pending != 0) {
995                         s->last_flush = -1;
996                         return Z_OK;
997                     }
998                     beg = 0;
999                 }
1000                 val = s->gzhead->comment[s->gzindex++];
1001                 put_byte(s, val);
1002             } while (val != 0);
1003             HCRC_UPDATE(beg);
1004         }
1005         s->status = HCRC_STATE;
1006     }
1007     if (s->status == HCRC_STATE) {
1008         if (s->gzhead->hcrc) {
1009             if (s->pending + 2 > s->pending_buf_size) {
1010                 flush_pending(strm);
1011                 if (s->pending != 0) {
1012                     s->last_flush = -1;
1013                     return Z_OK;
1014                 }
1015             }
1016             put_byte(s, (Byte)(strm->adler & 0xff));
1017             put_byte(s, (Byte)((strm->adler >> 8) & 0xff));
1018             strm->adler = crc32(0L, Z_NULL, 0);
1019         }
1020         s->status = BUSY_STATE;
1021 
1022         /* Compression must start with an empty pending buffer */
1023         flush_pending(strm);
1024         if (s->pending != 0) {
1025             s->last_flush = -1;
1026             return Z_OK;
1027         }
1028     }
1029 #endif
1030 
1031     /* Start a new block or continue the current one.
1032      */
1033     if (strm->avail_in != 0 || s->lookahead != 0 ||
1034         (flush != Z_NO_FLUSH && s->status != FINISH_STATE)) {
1035         block_state bstate;
1036 
1037         bstate = s->level == 0 ? deflate_stored(s, flush) :
1038                  s->strategy == Z_HUFFMAN_ONLY ? deflate_huff(s, flush) :
1039                  s->strategy == Z_RLE ? deflate_rle(s, flush) :
1040                  (*(configuration_table[s->level].func))(s, flush);
1041 
1042         if (bstate == finish_started || bstate == finish_done) {
1043             s->status = FINISH_STATE;
1044         }
1045         if (bstate == need_more || bstate == finish_started) {
1046             if (strm->avail_out == 0) {
1047                 s->last_flush = -1; /* avoid BUF_ERROR next call, see above */
1048             }
1049             return Z_OK;
1050             /* If flush != Z_NO_FLUSH && avail_out == 0, the next call
1051              * of deflate should use the same flush parameter to make sure
1052              * that the flush is complete. So we don't have to output an
1053              * empty block here, this will be done at next call. This also
1054              * ensures that for a very small output buffer, we emit at most
1055              * one empty block.
1056              */
1057         }
1058         if (bstate == block_done) {
1059             if (flush == Z_PARTIAL_FLUSH) {
1060                 _tr_align(s);
1061             } else if (flush != Z_BLOCK) { /* FULL_FLUSH or SYNC_FLUSH */
1062                 _tr_stored_block(s, (char*)0, 0L, 0);
1063                 /* For a full flush, this empty block will be recognized
1064                  * as a special marker by inflate_sync().
1065                  */
1066                 if (flush == Z_FULL_FLUSH) {
1067                     CLEAR_HASH(s);             /* forget history */
1068                     if (s->lookahead == 0) {
1069                         s->strstart = 0;
1070                         s->block_start = 0L;
1071                         s->insert = 0;
1072                     }
1073                 }
1074             }
1075             flush_pending(strm);
1076             if (strm->avail_out == 0) {
1077               s->last_flush = -1; /* avoid BUF_ERROR at next call, see above */
1078               return Z_OK;
1079             }
1080         }
1081     }
1082 
1083     if (flush != Z_FINISH) return Z_OK;
1084     if (s->wrap <= 0) return Z_STREAM_END;
1085 
1086     /* Write the trailer */
1087 #ifdef GZIP
1088     if (s->wrap == 2) {
1089         crc_finalize(s);
1090         put_byte(s, (Byte)(strm->adler & 0xff));
1091         put_byte(s, (Byte)((strm->adler >> 8) & 0xff));
1092         put_byte(s, (Byte)((strm->adler >> 16) & 0xff));
1093         put_byte(s, (Byte)((strm->adler >> 24) & 0xff));
1094         put_byte(s, (Byte)(strm->total_in & 0xff));
1095         put_byte(s, (Byte)((strm->total_in >> 8) & 0xff));
1096         put_byte(s, (Byte)((strm->total_in >> 16) & 0xff));
1097         put_byte(s, (Byte)((strm->total_in >> 24) & 0xff));
1098     }
1099     else
1100 #endif
1101     {
1102         putShortMSB(s, (uInt)(strm->adler >> 16));
1103         putShortMSB(s, (uInt)(strm->adler & 0xffff));
1104     }
1105     flush_pending(strm);
1106     /* If avail_out is zero, the application will call deflate again
1107      * to flush the rest.
1108      */
1109     if (s->wrap > 0) s->wrap = -s->wrap; /* write the trailer only once! */
1110     return s->pending != 0 ? Z_OK : Z_STREAM_END;
1111 }
1112 
1113 /* ========================================================================= */
deflateEnd(strm)1114 int ZEXPORT deflateEnd (strm)
1115     z_streamp strm;
1116 {
1117     int status;
1118 
1119     if (deflateStateCheck(strm)) return Z_STREAM_ERROR;
1120 
1121     status = strm->state->status;
1122 
1123     /* Deallocate in reverse order of allocations: */
1124     TRY_FREE(strm, strm->state->pending_buf);
1125     TRY_FREE(strm, strm->state->head);
1126     TRY_FREE(strm, strm->state->prev);
1127     TRY_FREE(strm, strm->state->window);
1128 
1129     ZFREE(strm, strm->state);
1130     strm->state = Z_NULL;
1131 
1132     return status == BUSY_STATE ? Z_DATA_ERROR : Z_OK;
1133 }
1134 
1135 /* =========================================================================
1136  * Copy the source state to the destination state.
1137  * To simplify the source, this is not supported for 16-bit MSDOS (which
1138  * doesn't have enough memory anyway to duplicate compression states).
1139  */
deflateCopy(dest,source)1140 int ZEXPORT deflateCopy (dest, source)
1141     z_streamp dest;
1142     z_streamp source;
1143 {
1144 #ifdef MAXSEG_64K
1145     return Z_STREAM_ERROR;
1146 #else
1147     deflate_state *ds;
1148     deflate_state *ss;
1149 
1150 
1151     if (deflateStateCheck(source) || dest == Z_NULL) {
1152         return Z_STREAM_ERROR;
1153     }
1154 
1155     ss = source->state;
1156 
1157     zmemcpy((voidpf)dest, (voidpf)source, sizeof(z_stream));
1158 
1159     ds = (deflate_state *) ZALLOC(dest, 1, sizeof(deflate_state));
1160     if (ds == Z_NULL) return Z_MEM_ERROR;
1161     dest->state = (struct internal_state FAR *) ds;
1162     zmemcpy((voidpf)ds, (voidpf)ss, sizeof(deflate_state));
1163     ds->strm = dest;
1164 
1165     ds->window = (Bytef *) ZALLOC(dest, ds->w_size, 2*sizeof(Byte));
1166     ds->prev   = (Posf *)  ZALLOC(dest, ds->w_size, sizeof(Pos));
1167     ds->head   = (Posf *)  ZALLOC(dest, ds->hash_size, sizeof(Pos));
1168     ds->pending_buf = (uchf *) ZALLOC(dest, ds->lit_bufsize, 4);
1169 
1170     if (ds->window == Z_NULL || ds->prev == Z_NULL || ds->head == Z_NULL ||
1171         ds->pending_buf == Z_NULL) {
1172         deflateEnd (dest);
1173         return Z_MEM_ERROR;
1174     }
1175     /* following zmemcpy do not work for 16-bit MSDOS */
1176     zmemcpy(ds->window, ss->window, ds->w_size * 2 * sizeof(Byte));
1177     zmemcpy((voidpf)ds->prev, (voidpf)ss->prev, ds->w_size * sizeof(Pos));
1178     zmemcpy((voidpf)ds->head, (voidpf)ss->head, ds->hash_size * sizeof(Pos));
1179     zmemcpy(ds->pending_buf, ss->pending_buf, (uInt)ds->pending_buf_size);
1180 
1181     ds->pending_out = ds->pending_buf + (ss->pending_out - ss->pending_buf);
1182     ds->sym_buf = ds->pending_buf + ds->lit_bufsize;
1183 
1184     ds->l_desc.dyn_tree = ds->dyn_ltree;
1185     ds->d_desc.dyn_tree = ds->dyn_dtree;
1186     ds->bl_desc.dyn_tree = ds->bl_tree;
1187 
1188     return Z_OK;
1189 #endif /* MAXSEG_64K */
1190 }
1191 
1192 /* ===========================================================================
1193  * Read a new buffer from the current input stream, update the adler32
1194  * and total number of bytes read.  All deflate() input goes through
1195  * this function so some applications may wish to modify it to avoid
1196  * allocating a large strm->next_in buffer and copying from it.
1197  * (See also flush_pending()).
1198  */
deflate_read_buf(strm,buf,size)1199 ZLIB_INTERNAL unsigned deflate_read_buf(strm, buf, size)
1200     z_streamp strm;
1201     Bytef *buf;
1202     unsigned size;
1203 {
1204     unsigned len = strm->avail_in;
1205 
1206     if (len > size) len = size;
1207     if (len == 0) return 0;
1208 
1209     strm->avail_in  -= len;
1210 
1211 #ifdef GZIP
1212     if (strm->state->wrap == 2)
1213         copy_with_crc(strm, buf, len);
1214     else
1215 #endif
1216     {
1217         zmemcpy(buf, strm->next_in, len);
1218         if (strm->state->wrap == 1)
1219             strm->adler = adler32(strm->adler, buf, len);
1220     }
1221     strm->next_in  += len;
1222     strm->total_in += len;
1223 
1224     return len;
1225 }
1226 
1227 /* ===========================================================================
1228  * Initialize the "longest match" routines for a new zlib stream
1229  */
lm_init(s)1230 local void lm_init (s)
1231     deflate_state *s;
1232 {
1233     s->window_size = (ulg)2L*s->w_size;
1234 
1235     CLEAR_HASH(s);
1236 
1237     /* Set the default configuration parameters:
1238      */
1239     s->max_lazy_match   = configuration_table[s->level].max_lazy;
1240     s->good_match       = configuration_table[s->level].good_length;
1241     s->nice_match       = configuration_table[s->level].nice_length;
1242     s->max_chain_length = configuration_table[s->level].max_chain;
1243 
1244     s->strstart = 0;
1245     s->block_start = 0L;
1246     s->lookahead = 0;
1247     s->insert = 0;
1248     s->match_length = s->prev_length = MIN_MATCH-1;
1249     s->match_available = 0;
1250     s->ins_h = 0;
1251 #ifndef FASTEST
1252 #ifdef ASMV
1253     match_init(); /* initialize the asm code */
1254 #endif
1255 #endif
1256 }
1257 
1258 #ifndef FASTEST
1259 /* ===========================================================================
1260  * Set match_start to the longest match starting at the given string and
1261  * return its length. Matches shorter or equal to prev_length are discarded,
1262  * in which case the result is equal to prev_length and match_start is
1263  * garbage.
1264  * IN assertions: cur_match is the head of the hash chain for the current
1265  *   string (strstart) and its distance is <= MAX_DIST, and prev_length >= 1
1266  * OUT assertion: the match length is not greater than s->lookahead.
1267  */
1268 #ifndef ASMV
1269 /* For 80x86 and 680x0, an optimized version will be provided in match.asm or
1270  * match.S. The code will be functionally equivalent.
1271  */
longest_match(s,cur_match)1272 local uInt longest_match(s, cur_match)
1273     deflate_state *s;
1274     IPos cur_match;                             /* current match */
1275 {
1276     unsigned chain_length = s->max_chain_length;/* max hash chain length */
1277     register Bytef *scan = s->window + s->strstart; /* current string */
1278     register Bytef *match;                      /* matched string */
1279     register int len;                           /* length of current match */
1280     int best_len = (int)s->prev_length;         /* best match length so far */
1281     int nice_match = s->nice_match;             /* stop if match long enough */
1282     IPos limit = s->strstart > (IPos)MAX_DIST(s) ?
1283         s->strstart - (IPos)MAX_DIST(s) : NIL;
1284     /* Stop when cur_match becomes <= limit. To simplify the code,
1285      * we prevent matches with the string of window index 0.
1286      */
1287     Posf *prev = s->prev;
1288     uInt wmask = s->w_mask;
1289 
1290 #ifdef UNALIGNED_OK
1291     /* Compare two bytes at a time. Note: this is not always beneficial.
1292      * Try with and without -DUNALIGNED_OK to check.
1293      */
1294     register Bytef *strend = s->window + s->strstart + MAX_MATCH - 1;
1295     register ush scan_start = *(ushf*)scan;
1296     register ush scan_end   = *(ushf*)(scan+best_len-1);
1297 #else
1298     register Bytef *strend = s->window + s->strstart + MAX_MATCH;
1299     register Byte scan_end1  = scan[best_len-1];
1300     register Byte scan_end   = scan[best_len];
1301 #endif
1302 
1303     /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16.
1304      * It is easy to get rid of this optimization if necessary.
1305      */
1306     Assert(s->hash_bits >= 8 && MAX_MATCH == 258, "Code too clever");
1307 
1308     /* Do not waste too much time if we already have a good match: */
1309     if (s->prev_length >= s->good_match) {
1310         chain_length >>= 2;
1311     }
1312     /* Do not look for matches beyond the end of the input. This is necessary
1313      * to make deflate deterministic.
1314      */
1315     if ((uInt)nice_match > s->lookahead) nice_match = (int)s->lookahead;
1316 
1317     Assert((ulg)s->strstart <= s->window_size-MIN_LOOKAHEAD, "need lookahead");
1318 
1319     do {
1320         Assert(cur_match < s->strstart, "no future");
1321         match = s->window + cur_match;
1322 
1323         /* Skip to next match if the match length cannot increase
1324          * or if the match length is less than 2.  Note that the checks below
1325          * for insufficient lookahead only occur occasionally for performance
1326          * reasons.  Therefore uninitialized memory will be accessed, and
1327          * conditional jumps will be made that depend on those values.
1328          * However the length of the match is limited to the lookahead, so
1329          * the output of deflate is not affected by the uninitialized values.
1330          */
1331 #if (defined(UNALIGNED_OK) && MAX_MATCH == 258)
1332         /* This code assumes sizeof(unsigned short) == 2. Do not use
1333          * UNALIGNED_OK if your compiler uses a different size.
1334          */
1335         if (*(ushf*)(match+best_len-1) != scan_end ||
1336             *(ushf*)match != scan_start) continue;
1337 
1338         /* It is not necessary to compare scan[2] and match[2] since they are
1339          * always equal when the other bytes match, given that the hash keys
1340          * are equal and that HASH_BITS >= 8. Compare 2 bytes at a time at
1341          * strstart+3, +5, ... up to strstart+257. We check for insufficient
1342          * lookahead only every 4th comparison; the 128th check will be made
1343          * at strstart+257. If MAX_MATCH-2 is not a multiple of 8, it is
1344          * necessary to put more guard bytes at the end of the window, or
1345          * to check more often for insufficient lookahead.
1346          */
1347         Assert(scan[2] == match[2], "scan[2]?");
1348         scan++, match++;
1349         do {
1350         } while (*(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
1351                  *(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
1352                  *(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
1353                  *(ushf*)(scan+=2) == *(ushf*)(match+=2) &&
1354                  scan < strend);
1355         /* The funny "do {}" generates better code on most compilers */
1356 
1357         /* Here, scan <= window+strstart+257 */
1358         Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan");
1359         if (*scan == *match) scan++;
1360 
1361         len = (MAX_MATCH - 1) - (int)(strend-scan);
1362         scan = strend - (MAX_MATCH-1);
1363 
1364 #else /* UNALIGNED_OK */
1365 
1366         if (match[best_len]   != scan_end  ||
1367             match[best_len-1] != scan_end1 ||
1368             *match            != *scan     ||
1369             *++match          != scan[1])      continue;
1370 
1371         /* The check at best_len-1 can be removed because it will be made
1372          * again later. (This heuristic is not always a win.)
1373          * It is not necessary to compare scan[2] and match[2] since they
1374          * are always equal when the other bytes match, given that
1375          * the hash keys are equal and that HASH_BITS >= 8.
1376          */
1377         scan += 2, match++;
1378         Assert(*scan == *match, "match[2]?");
1379 
1380         /* We check for insufficient lookahead only every 8th comparison;
1381          * the 256th check will be made at strstart+258.
1382          */
1383         do {
1384         } while (*++scan == *++match && *++scan == *++match &&
1385                  *++scan == *++match && *++scan == *++match &&
1386                  *++scan == *++match && *++scan == *++match &&
1387                  *++scan == *++match && *++scan == *++match &&
1388                  scan < strend);
1389 
1390         Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan");
1391 
1392         len = MAX_MATCH - (int)(strend - scan);
1393         scan = strend - MAX_MATCH;
1394 
1395 #endif /* UNALIGNED_OK */
1396 
1397         if (len > best_len) {
1398             s->match_start = cur_match;
1399             best_len = len;
1400             if (len >= nice_match) break;
1401 #ifdef UNALIGNED_OK
1402             scan_end = *(ushf*)(scan+best_len-1);
1403 #else
1404             scan_end1  = scan[best_len-1];
1405             scan_end   = scan[best_len];
1406 #endif
1407         }
1408     } while ((cur_match = prev[cur_match & wmask]) > limit
1409              && --chain_length != 0);
1410 
1411     if ((uInt)best_len <= s->lookahead) return (uInt)best_len;
1412     return s->lookahead;
1413 }
1414 #endif /* ASMV */
1415 
1416 #else /* FASTEST */
1417 
1418 /* ---------------------------------------------------------------------------
1419  * Optimized version for FASTEST only
1420  */
longest_match(s,cur_match)1421 local uInt longest_match(s, cur_match)
1422     deflate_state *s;
1423     IPos cur_match;                             /* current match */
1424 {
1425     register Bytef *scan = s->window + s->strstart; /* current string */
1426     register Bytef *match;                       /* matched string */
1427     register int len;                           /* length of current match */
1428     register Bytef *strend = s->window + s->strstart + MAX_MATCH;
1429 
1430     /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16.
1431      * It is easy to get rid of this optimization if necessary.
1432      */
1433     Assert(s->hash_bits >= 8 && MAX_MATCH == 258, "Code too clever");
1434 
1435     Assert((ulg)s->strstart <= s->window_size-MIN_LOOKAHEAD, "need lookahead");
1436 
1437     Assert(cur_match < s->strstart, "no future");
1438 
1439     match = s->window + cur_match;
1440 
1441     /* Return failure if the match length is less than 2:
1442      */
1443     if (match[0] != scan[0] || match[1] != scan[1]) return MIN_MATCH-1;
1444 
1445     /* The check at best_len-1 can be removed because it will be made
1446      * again later. (This heuristic is not always a win.)
1447      * It is not necessary to compare scan[2] and match[2] since they
1448      * are always equal when the other bytes match, given that
1449      * the hash keys are equal and that HASH_BITS >= 8.
1450      */
1451     scan += 2, match += 2;
1452     Assert(*scan == *match, "match[2]?");
1453 
1454     /* We check for insufficient lookahead only every 8th comparison;
1455      * the 256th check will be made at strstart+258.
1456      */
1457     do {
1458     } while (*++scan == *++match && *++scan == *++match &&
1459              *++scan == *++match && *++scan == *++match &&
1460              *++scan == *++match && *++scan == *++match &&
1461              *++scan == *++match && *++scan == *++match &&
1462              scan < strend);
1463 
1464     Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan");
1465 
1466     len = MAX_MATCH - (int)(strend - scan);
1467 
1468     if (len < MIN_MATCH) return MIN_MATCH - 1;
1469 
1470     s->match_start = cur_match;
1471     return (uInt)len <= s->lookahead ? (uInt)len : s->lookahead;
1472 }
1473 
1474 #endif /* FASTEST */
1475 
1476 #ifdef ZLIB_DEBUG
1477 
1478 #define EQUAL 0
1479 /* result of memcmp for equal strings */
1480 
1481 /* ===========================================================================
1482  * Check that the match at match_start is indeed a match.
1483  */
check_match(s,start,match,length)1484 local void check_match(s, start, match, length)
1485     deflate_state *s;
1486     IPos start, match;
1487     int length;
1488 {
1489     /* check that the match is indeed a match */
1490     if (zmemcmp(s->window + match,
1491                 s->window + start, length) != EQUAL) {
1492         fprintf(stderr, " start %u, match %u, length %d\n",
1493                 start, match, length);
1494         do {
1495             fprintf(stderr, "%c%c", s->window[match++], s->window[start++]);
1496         } while (--length != 0);
1497         z_error("invalid match");
1498     }
1499     if (z_verbose > 1) {
1500         fprintf(stderr,"\\[%d,%d]", start-match, length);
1501         do { putc(s->window[start++], stderr); } while (--length != 0);
1502     }
1503 }
1504 #else
1505 #  define check_match(s, start, match, length)
1506 #endif /* ZLIB_DEBUG */
1507 
1508 /* ===========================================================================
1509  * Fill the window when the lookahead becomes insufficient.
1510  * Updates strstart and lookahead.
1511  *
1512  * IN assertion: lookahead < MIN_LOOKAHEAD
1513  * OUT assertions: strstart <= window_size-MIN_LOOKAHEAD
1514  *    At least one byte has been read, or avail_in == 0; reads are
1515  *    performed for at least two bytes (required for the zip translate_eol
1516  *    option -- not supported here).
1517  */
1518 local void fill_window_c(deflate_state *s);
1519 
fill_window(deflate_state * s)1520 local void fill_window(deflate_state *s)
1521 {
1522     if (x86_cpu_enable_simd) {
1523         fill_window_sse(s);
1524         return;
1525     }
1526 
1527     fill_window_c(s);
1528 }
1529 
fill_window_c(s)1530 local void fill_window_c(s)
1531     deflate_state *s;
1532 {
1533     unsigned n;
1534     unsigned more;    /* Amount of free space at the end of the window. */
1535     uInt wsize = s->w_size;
1536 
1537     Assert(s->lookahead < MIN_LOOKAHEAD, "already enough lookahead");
1538 
1539     do {
1540         more = (unsigned)(s->window_size -(ulg)s->lookahead -(ulg)s->strstart);
1541 
1542         /* Deal with !@#$% 64K limit: */
1543         if (sizeof(int) <= 2) {
1544             if (more == 0 && s->strstart == 0 && s->lookahead == 0) {
1545                 more = wsize;
1546 
1547             } else if (more == (unsigned)(-1)) {
1548                 /* Very unlikely, but possible on 16 bit machine if
1549                  * strstart == 0 && lookahead == 1 (input done a byte at time)
1550                  */
1551                 more--;
1552             }
1553         }
1554 
1555         /* If the window is almost full and there is insufficient lookahead,
1556          * move the upper half to the lower one to make room in the upper half.
1557          */
1558         if (s->strstart >= wsize+MAX_DIST(s)) {
1559 
1560             zmemcpy(s->window, s->window+wsize, (unsigned)wsize - more);
1561             s->match_start -= wsize;
1562             s->strstart    -= wsize; /* we now have strstart >= MAX_DIST */
1563             s->block_start -= (long) wsize;
1564             slide_hash(s);
1565             more += wsize;
1566         }
1567         if (s->strm->avail_in == 0) break;
1568 
1569         /* If there was no sliding:
1570          *    strstart <= WSIZE+MAX_DIST-1 && lookahead <= MIN_LOOKAHEAD - 1 &&
1571          *    more == window_size - lookahead - strstart
1572          * => more >= window_size - (MIN_LOOKAHEAD-1 + WSIZE + MAX_DIST-1)
1573          * => more >= window_size - 2*WSIZE + 2
1574          * In the BIG_MEM or MMAP case (not yet supported),
1575          *   window_size == input_size + MIN_LOOKAHEAD  &&
1576          *   strstart + s->lookahead <= input_size => more >= MIN_LOOKAHEAD.
1577          * Otherwise, window_size == 2*WSIZE so more >= 2.
1578          * If there was sliding, more >= WSIZE. So in all cases, more >= 2.
1579          */
1580         Assert(more >= 2, "more < 2");
1581 
1582         n = deflate_read_buf(s->strm, s->window + s->strstart + s->lookahead, more);
1583         s->lookahead += n;
1584 
1585         /* Initialize the hash value now that we have some input: */
1586         if (s->lookahead + s->insert >= MIN_MATCH) {
1587             uInt str = s->strstart - s->insert;
1588             s->ins_h = s->window[str];
1589             UPDATE_HASH(s, s->ins_h, s->window[str + 1]);
1590 #if MIN_MATCH != 3
1591             Call UPDATE_HASH() MIN_MATCH-3 more times
1592 #endif
1593             while (s->insert) {
1594                 UPDATE_HASH(s, s->ins_h, s->window[str + MIN_MATCH-1]);
1595 #ifndef FASTEST
1596                 s->prev[str & s->w_mask] = s->head[s->ins_h];
1597 #endif
1598                 s->head[s->ins_h] = (Pos)str;
1599                 str++;
1600                 s->insert--;
1601                 if (s->lookahead + s->insert < MIN_MATCH)
1602                     break;
1603             }
1604         }
1605         /* If the whole input has less than MIN_MATCH bytes, ins_h is garbage,
1606          * but this is not important since only literal bytes will be emitted.
1607          */
1608 
1609     } while (s->lookahead < MIN_LOOKAHEAD && s->strm->avail_in != 0);
1610 
1611     /* If the WIN_INIT bytes after the end of the current data have never been
1612      * written, then zero those bytes in order to avoid memory check reports of
1613      * the use of uninitialized (or uninitialised as Julian writes) bytes by
1614      * the longest match routines.  Update the high water mark for the next
1615      * time through here.  WIN_INIT is set to MAX_MATCH since the longest match
1616      * routines allow scanning to strstart + MAX_MATCH, ignoring lookahead.
1617      */
1618     if (s->high_water < s->window_size) {
1619         ulg curr = s->strstart + (ulg)(s->lookahead);
1620         ulg init;
1621 
1622         if (s->high_water < curr) {
1623             /* Previous high water mark below current data -- zero WIN_INIT
1624              * bytes or up to end of window, whichever is less.
1625              */
1626             init = s->window_size - curr;
1627             if (init > WIN_INIT)
1628                 init = WIN_INIT;
1629             zmemzero(s->window + curr, (unsigned)init);
1630             s->high_water = curr + init;
1631         }
1632         else if (s->high_water < (ulg)curr + WIN_INIT) {
1633             /* High water mark at or above current data, but below current data
1634              * plus WIN_INIT -- zero out to current data plus WIN_INIT, or up
1635              * to end of window, whichever is less.
1636              */
1637             init = (ulg)curr + WIN_INIT - s->high_water;
1638             if (init > s->window_size - s->high_water)
1639                 init = s->window_size - s->high_water;
1640             zmemzero(s->window + s->high_water, (unsigned)init);
1641             s->high_water += init;
1642         }
1643     }
1644 
1645     Assert((ulg)s->strstart <= s->window_size - MIN_LOOKAHEAD,
1646            "not enough room for search");
1647 }
1648 
1649 /* ===========================================================================
1650  * Flush the current block, with given end-of-file flag.
1651  * IN assertion: strstart is set to the end of the current match.
1652  */
1653 #define FLUSH_BLOCK_ONLY(s, last) { \
1654    _tr_flush_block(s, (s->block_start >= 0L ? \
1655                    (charf *)&s->window[(unsigned)s->block_start] : \
1656                    (charf *)Z_NULL), \
1657                 (ulg)((long)s->strstart - s->block_start), \
1658                 (last)); \
1659    s->block_start = s->strstart; \
1660    flush_pending(s->strm); \
1661    Tracev((stderr,"[FLUSH]")); \
1662 }
1663 
1664 /* Same but force premature exit if necessary. */
1665 #define FLUSH_BLOCK(s, last) { \
1666    FLUSH_BLOCK_ONLY(s, last); \
1667    if (s->strm->avail_out == 0) return (last) ? finish_started : need_more; \
1668 }
1669 
1670 /* Maximum stored block length in deflate format (not including header). */
1671 #define MAX_STORED 65535
1672 
1673 /* Minimum of a and b. */
1674 #define MIN(a, b) ((a) > (b) ? (b) : (a))
1675 
1676 /* ===========================================================================
1677  * Copy without compression as much as possible from the input stream, return
1678  * the current block state.
1679  *
1680  * In case deflateParams() is used to later switch to a non-zero compression
1681  * level, s->matches (otherwise unused when storing) keeps track of the number
1682  * of hash table slides to perform. If s->matches is 1, then one hash table
1683  * slide will be done when switching. If s->matches is 2, the maximum value
1684  * allowed here, then the hash table will be cleared, since two or more slides
1685  * is the same as a clear.
1686  *
1687  * deflate_stored() is written to minimize the number of times an input byte is
1688  * copied. It is most efficient with large input and output buffers, which
1689  * maximizes the opportunites to have a single copy from next_in to next_out.
1690  */
deflate_stored(s,flush)1691 local block_state deflate_stored(s, flush)
1692     deflate_state *s;
1693     int flush;
1694 {
1695     /* Smallest worthy block size when not flushing or finishing. By default
1696      * this is 32K. This can be as small as 507 bytes for memLevel == 1. For
1697      * large input and output buffers, the stored block size will be larger.
1698      */
1699     unsigned min_block = MIN(s->pending_buf_size - 5, s->w_size);
1700 
1701     /* Copy as many min_block or larger stored blocks directly to next_out as
1702      * possible. If flushing, copy the remaining available input to next_out as
1703      * stored blocks, if there is enough space.
1704      */
1705     unsigned len, left, have, last = 0;
1706     unsigned used = s->strm->avail_in;
1707     do {
1708         /* Set len to the maximum size block that we can copy directly with the
1709          * available input data and output space. Set left to how much of that
1710          * would be copied from what's left in the window.
1711          */
1712         len = MAX_STORED;       /* maximum deflate stored block length */
1713         have = (s->bi_valid + 42) >> 3;         /* number of header bytes */
1714         if (s->strm->avail_out < have)          /* need room for header */
1715             break;
1716             /* maximum stored block length that will fit in avail_out: */
1717         have = s->strm->avail_out - have;
1718         left = s->strstart - s->block_start;    /* bytes left in window */
1719         if (len > (ulg)left + s->strm->avail_in)
1720             len = left + s->strm->avail_in;     /* limit len to the input */
1721         if (len > have)
1722             len = have;                         /* limit len to the output */
1723 
1724         /* If the stored block would be less than min_block in length, or if
1725          * unable to copy all of the available input when flushing, then try
1726          * copying to the window and the pending buffer instead. Also don't
1727          * write an empty block when flushing -- deflate() does that.
1728          */
1729         if (len < min_block && ((len == 0 && flush != Z_FINISH) ||
1730                                 flush == Z_NO_FLUSH ||
1731                                 len != left + s->strm->avail_in))
1732             break;
1733 
1734         /* Make a dummy stored block in pending to get the header bytes,
1735          * including any pending bits. This also updates the debugging counts.
1736          */
1737         last = flush == Z_FINISH && len == left + s->strm->avail_in ? 1 : 0;
1738         _tr_stored_block(s, (char *)0, 0L, last);
1739 
1740         /* Replace the lengths in the dummy stored block with len. */
1741         s->pending_buf[s->pending - 4] = len;
1742         s->pending_buf[s->pending - 3] = len >> 8;
1743         s->pending_buf[s->pending - 2] = ~len;
1744         s->pending_buf[s->pending - 1] = ~len >> 8;
1745 
1746         /* Write the stored block header bytes. */
1747         flush_pending(s->strm);
1748 
1749 #ifdef ZLIB_DEBUG
1750         /* Update debugging counts for the data about to be copied. */
1751         s->compressed_len += len << 3;
1752         s->bits_sent += len << 3;
1753 #endif
1754 
1755         /* Copy uncompressed bytes from the window to next_out. */
1756         if (left) {
1757             if (left > len)
1758                 left = len;
1759             zmemcpy(s->strm->next_out, s->window + s->block_start, left);
1760             s->strm->next_out += left;
1761             s->strm->avail_out -= left;
1762             s->strm->total_out += left;
1763             s->block_start += left;
1764             len -= left;
1765         }
1766 
1767         /* Copy uncompressed bytes directly from next_in to next_out, updating
1768          * the check value.
1769          */
1770         if (len) {
1771             deflate_read_buf(s->strm, s->strm->next_out, len);
1772             s->strm->next_out += len;
1773             s->strm->avail_out -= len;
1774             s->strm->total_out += len;
1775         }
1776     } while (last == 0);
1777 
1778     /* Update the sliding window with the last s->w_size bytes of the copied
1779      * data, or append all of the copied data to the existing window if less
1780      * than s->w_size bytes were copied. Also update the number of bytes to
1781      * insert in the hash tables, in the event that deflateParams() switches to
1782      * a non-zero compression level.
1783      */
1784     used -= s->strm->avail_in;      /* number of input bytes directly copied */
1785     if (used) {
1786         /* If any input was used, then no unused input remains in the window,
1787          * therefore s->block_start == s->strstart.
1788          */
1789         if (used >= s->w_size) {    /* supplant the previous history */
1790             s->matches = 2;         /* clear hash */
1791             zmemcpy(s->window, s->strm->next_in - s->w_size, s->w_size);
1792             s->strstart = s->w_size;
1793         }
1794         else {
1795             if (s->window_size - s->strstart <= used) {
1796                 /* Slide the window down. */
1797                 s->strstart -= s->w_size;
1798                 zmemcpy(s->window, s->window + s->w_size, s->strstart);
1799                 if (s->matches < 2)
1800                     s->matches++;   /* add a pending slide_hash() */
1801             }
1802             zmemcpy(s->window + s->strstart, s->strm->next_in - used, used);
1803             s->strstart += used;
1804         }
1805         s->block_start = s->strstart;
1806         s->insert += MIN(used, s->w_size - s->insert);
1807     }
1808     if (s->high_water < s->strstart)
1809         s->high_water = s->strstart;
1810 
1811     /* If the last block was written to next_out, then done. */
1812     if (last)
1813         return finish_done;
1814 
1815     /* If flushing and all input has been consumed, then done. */
1816     if (flush != Z_NO_FLUSH && flush != Z_FINISH &&
1817         s->strm->avail_in == 0 && (long)s->strstart == s->block_start)
1818         return block_done;
1819 
1820     /* Fill the window with any remaining input. */
1821     have = s->window_size - s->strstart - 1;
1822     if (s->strm->avail_in > have && s->block_start >= (long)s->w_size) {
1823         /* Slide the window down. */
1824         s->block_start -= s->w_size;
1825         s->strstart -= s->w_size;
1826         zmemcpy(s->window, s->window + s->w_size, s->strstart);
1827         if (s->matches < 2)
1828             s->matches++;           /* add a pending slide_hash() */
1829         have += s->w_size;          /* more space now */
1830     }
1831     if (have > s->strm->avail_in)
1832         have = s->strm->avail_in;
1833     if (have) {
1834         deflate_read_buf(s->strm, s->window + s->strstart, have);
1835         s->strstart += have;
1836     }
1837     if (s->high_water < s->strstart)
1838         s->high_water = s->strstart;
1839 
1840     /* There was not enough avail_out to write a complete worthy or flushed
1841      * stored block to next_out. Write a stored block to pending instead, if we
1842      * have enough input for a worthy block, or if flushing and there is enough
1843      * room for the remaining input as a stored block in the pending buffer.
1844      */
1845     have = (s->bi_valid + 42) >> 3;         /* number of header bytes */
1846         /* maximum stored block length that will fit in pending: */
1847     have = MIN(s->pending_buf_size - have, MAX_STORED);
1848     min_block = MIN(have, s->w_size);
1849     left = s->strstart - s->block_start;
1850     if (left >= min_block ||
1851         ((left || flush == Z_FINISH) && flush != Z_NO_FLUSH &&
1852          s->strm->avail_in == 0 && left <= have)) {
1853         len = MIN(left, have);
1854         last = flush == Z_FINISH && s->strm->avail_in == 0 &&
1855                len == left ? 1 : 0;
1856         _tr_stored_block(s, (charf *)s->window + s->block_start, len, last);
1857         s->block_start += len;
1858         flush_pending(s->strm);
1859     }
1860 
1861     /* We've done all we can with the available input and output. */
1862     return last ? finish_started : need_more;
1863 }
1864 
1865 /* ===========================================================================
1866  * Compress as much as possible from the input stream, return the current
1867  * block state.
1868  * This function does not perform lazy evaluation of matches and inserts
1869  * new strings in the dictionary only for unmatched strings or for short
1870  * matches. It is used only for the fast compression options.
1871  */
deflate_fast(s,flush)1872 local block_state deflate_fast(s, flush)
1873     deflate_state *s;
1874     int flush;
1875 {
1876     IPos hash_head;       /* head of the hash chain */
1877     int bflush;           /* set if current block must be flushed */
1878 
1879     for (;;) {
1880         /* Make sure that we always have enough lookahead, except
1881          * at the end of the input file. We need MAX_MATCH bytes
1882          * for the next match, plus MIN_MATCH bytes to insert the
1883          * string following the next match.
1884          */
1885         if (s->lookahead < MIN_LOOKAHEAD) {
1886             fill_window(s);
1887             if (s->lookahead < MIN_LOOKAHEAD && flush == Z_NO_FLUSH) {
1888                 return need_more;
1889             }
1890             if (s->lookahead == 0) break; /* flush the current block */
1891         }
1892 
1893         /* Insert the string window[strstart .. strstart+2] in the
1894          * dictionary, and set hash_head to the head of the hash chain:
1895          */
1896         hash_head = NIL;
1897         if (s->lookahead >= MIN_MATCH) {
1898             hash_head = insert_string(s, s->strstart);
1899         }
1900 
1901         /* Find the longest match, discarding those <= prev_length.
1902          * At this point we have always match_length < MIN_MATCH
1903          */
1904         if (hash_head != NIL && s->strstart - hash_head <= MAX_DIST(s)) {
1905             /* To simplify the code, we prevent matches with the string
1906              * of window index 0 (in particular we have to avoid a match
1907              * of the string with itself at the start of the input file).
1908              */
1909             s->match_length = longest_match (s, hash_head);
1910             /* longest_match() sets match_start */
1911         }
1912         if (s->match_length >= MIN_MATCH) {
1913             check_match(s, s->strstart, s->match_start, s->match_length);
1914 
1915             _tr_tally_dist(s, s->strstart - s->match_start,
1916                            s->match_length - MIN_MATCH, bflush);
1917 
1918             s->lookahead -= s->match_length;
1919 
1920             /* Insert new strings in the hash table only if the match length
1921              * is not too large. This saves time but degrades compression.
1922              */
1923 #ifndef FASTEST
1924             if (s->match_length <= s->max_insert_length &&
1925                 s->lookahead >= MIN_MATCH) {
1926                 s->match_length--; /* string at strstart already in table */
1927                 do {
1928                     s->strstart++;
1929                     hash_head = insert_string(s, s->strstart);
1930                     /* strstart never exceeds WSIZE-MAX_MATCH, so there are
1931                      * always MIN_MATCH bytes ahead.
1932                      */
1933                 } while (--s->match_length != 0);
1934                 s->strstart++;
1935             } else
1936 #endif
1937             {
1938                 s->strstart += s->match_length;
1939                 s->match_length = 0;
1940                 s->ins_h = s->window[s->strstart];
1941                 UPDATE_HASH(s, s->ins_h, s->window[s->strstart+1]);
1942 #if MIN_MATCH != 3
1943                 Call UPDATE_HASH() MIN_MATCH-3 more times
1944 #endif
1945                 /* If lookahead < MIN_MATCH, ins_h is garbage, but it does not
1946                  * matter since it will be recomputed at next deflate call.
1947                  */
1948             }
1949         } else {
1950             /* No match, output a literal byte */
1951             Tracevv((stderr,"%c", s->window[s->strstart]));
1952             _tr_tally_lit (s, s->window[s->strstart], bflush);
1953             s->lookahead--;
1954             s->strstart++;
1955         }
1956         if (bflush) FLUSH_BLOCK(s, 0);
1957     }
1958     s->insert = s->strstart < MIN_MATCH-1 ? s->strstart : MIN_MATCH-1;
1959     if (flush == Z_FINISH) {
1960         FLUSH_BLOCK(s, 1);
1961         return finish_done;
1962     }
1963     if (s->sym_next)
1964         FLUSH_BLOCK(s, 0);
1965     return block_done;
1966 }
1967 
1968 #ifndef FASTEST
1969 /* ===========================================================================
1970  * Same as above, but achieves better compression. We use a lazy
1971  * evaluation for matches: a match is finally adopted only if there is
1972  * no better match at the next window position.
1973  */
deflate_slow(s,flush)1974 local block_state deflate_slow(s, flush)
1975     deflate_state *s;
1976     int flush;
1977 {
1978     IPos hash_head;          /* head of hash chain */
1979     int bflush;              /* set if current block must be flushed */
1980 
1981     /* Process the input block. */
1982     for (;;) {
1983         /* Make sure that we always have enough lookahead, except
1984          * at the end of the input file. We need MAX_MATCH bytes
1985          * for the next match, plus MIN_MATCH bytes to insert the
1986          * string following the next match.
1987          */
1988         if (s->lookahead < MIN_LOOKAHEAD) {
1989             fill_window(s);
1990             if (s->lookahead < MIN_LOOKAHEAD && flush == Z_NO_FLUSH) {
1991                 return need_more;
1992             }
1993             if (s->lookahead == 0) break; /* flush the current block */
1994         }
1995 
1996         /* Insert the string window[strstart .. strstart+2] in the
1997          * dictionary, and set hash_head to the head of the hash chain:
1998          */
1999         hash_head = NIL;
2000         if (s->lookahead >= MIN_MATCH) {
2001             hash_head = insert_string(s, s->strstart);
2002         }
2003 
2004         /* Find the longest match, discarding those <= prev_length.
2005          */
2006         s->prev_length = s->match_length, s->prev_match = s->match_start;
2007         s->match_length = MIN_MATCH-1;
2008 
2009         if (hash_head != NIL && s->prev_length < s->max_lazy_match &&
2010             s->strstart - hash_head <= MAX_DIST(s)) {
2011             /* To simplify the code, we prevent matches with the string
2012              * of window index 0 (in particular we have to avoid a match
2013              * of the string with itself at the start of the input file).
2014              */
2015             s->match_length = longest_match (s, hash_head);
2016             /* longest_match() sets match_start */
2017 
2018             if (s->match_length <= 5 && (s->strategy == Z_FILTERED
2019 #if TOO_FAR <= 32767
2020                 || (s->match_length == MIN_MATCH &&
2021                     s->strstart - s->match_start > TOO_FAR)
2022 #endif
2023                 )) {
2024 
2025                 /* If prev_match is also MIN_MATCH, match_start is garbage
2026                  * but we will ignore the current match anyway.
2027                  */
2028                 s->match_length = MIN_MATCH-1;
2029             }
2030         }
2031         /* If there was a match at the previous step and the current
2032          * match is not better, output the previous match:
2033          */
2034         if (s->prev_length >= MIN_MATCH && s->match_length <= s->prev_length) {
2035             uInt max_insert = s->strstart + s->lookahead - MIN_MATCH;
2036             /* Do not insert strings in hash table beyond this. */
2037 
2038             check_match(s, s->strstart-1, s->prev_match, s->prev_length);
2039 
2040             _tr_tally_dist(s, s->strstart -1 - s->prev_match,
2041                            s->prev_length - MIN_MATCH, bflush);
2042 
2043             /* Insert in hash table all strings up to the end of the match.
2044              * strstart-1 and strstart are already inserted. If there is not
2045              * enough lookahead, the last two strings are not inserted in
2046              * the hash table.
2047              */
2048             s->lookahead -= s->prev_length-1;
2049             s->prev_length -= 2;
2050             do {
2051                 if (++s->strstart <= max_insert) {
2052                     hash_head = insert_string(s, s->strstart);
2053                 }
2054             } while (--s->prev_length != 0);
2055             s->match_available = 0;
2056             s->match_length = MIN_MATCH-1;
2057             s->strstart++;
2058 
2059             if (bflush) FLUSH_BLOCK(s, 0);
2060 
2061         } else if (s->match_available) {
2062             /* If there was no match at the previous position, output a
2063              * single literal. If there was a match but the current match
2064              * is longer, truncate the previous match to a single literal.
2065              */
2066             Tracevv((stderr,"%c", s->window[s->strstart-1]));
2067             _tr_tally_lit(s, s->window[s->strstart-1], bflush);
2068             if (bflush) {
2069                 FLUSH_BLOCK_ONLY(s, 0);
2070             }
2071             s->strstart++;
2072             s->lookahead--;
2073             if (s->strm->avail_out == 0) return need_more;
2074         } else {
2075             /* There is no previous match to compare with, wait for
2076              * the next step to decide.
2077              */
2078             s->match_available = 1;
2079             s->strstart++;
2080             s->lookahead--;
2081         }
2082     }
2083     Assert (flush != Z_NO_FLUSH, "no flush?");
2084     if (s->match_available) {
2085         Tracevv((stderr,"%c", s->window[s->strstart-1]));
2086         _tr_tally_lit(s, s->window[s->strstart-1], bflush);
2087         s->match_available = 0;
2088     }
2089     s->insert = s->strstart < MIN_MATCH-1 ? s->strstart : MIN_MATCH-1;
2090     if (flush == Z_FINISH) {
2091         FLUSH_BLOCK(s, 1);
2092         return finish_done;
2093     }
2094     if (s->sym_next)
2095         FLUSH_BLOCK(s, 0);
2096     return block_done;
2097 }
2098 #endif /* FASTEST */
2099 
2100 /* ===========================================================================
2101  * For Z_RLE, simply look for runs of bytes, generate matches only of distance
2102  * one.  Do not maintain a hash table.  (It will be regenerated if this run of
2103  * deflate switches away from Z_RLE.)
2104  */
deflate_rle(s,flush)2105 local block_state deflate_rle(s, flush)
2106     deflate_state *s;
2107     int flush;
2108 {
2109     int bflush;             /* set if current block must be flushed */
2110     uInt prev;              /* byte at distance one to match */
2111     Bytef *scan, *strend;   /* scan goes up to strend for length of run */
2112 
2113     for (;;) {
2114         /* Make sure that we always have enough lookahead, except
2115          * at the end of the input file. We need MAX_MATCH bytes
2116          * for the longest run, plus one for the unrolled loop.
2117          */
2118         if (s->lookahead <= MAX_MATCH) {
2119             fill_window(s);
2120             if (s->lookahead <= MAX_MATCH && flush == Z_NO_FLUSH) {
2121                 return need_more;
2122             }
2123             if (s->lookahead == 0) break; /* flush the current block */
2124         }
2125 
2126         /* See how many times the previous byte repeats */
2127         s->match_length = 0;
2128         if (s->lookahead >= MIN_MATCH && s->strstart > 0) {
2129             scan = s->window + s->strstart - 1;
2130             prev = *scan;
2131             if (prev == *++scan && prev == *++scan && prev == *++scan) {
2132                 strend = s->window + s->strstart + MAX_MATCH;
2133                 do {
2134                 } while (prev == *++scan && prev == *++scan &&
2135                          prev == *++scan && prev == *++scan &&
2136                          prev == *++scan && prev == *++scan &&
2137                          prev == *++scan && prev == *++scan &&
2138                          scan < strend);
2139                 s->match_length = MAX_MATCH - (uInt)(strend - scan);
2140                 if (s->match_length > s->lookahead)
2141                     s->match_length = s->lookahead;
2142             }
2143             Assert(scan <= s->window+(uInt)(s->window_size-1), "wild scan");
2144         }
2145 
2146         /* Emit match if have run of MIN_MATCH or longer, else emit literal */
2147         if (s->match_length >= MIN_MATCH) {
2148             check_match(s, s->strstart, s->strstart - 1, s->match_length);
2149 
2150             _tr_tally_dist(s, 1, s->match_length - MIN_MATCH, bflush);
2151 
2152             s->lookahead -= s->match_length;
2153             s->strstart += s->match_length;
2154             s->match_length = 0;
2155         } else {
2156             /* No match, output a literal byte */
2157             Tracevv((stderr,"%c", s->window[s->strstart]));
2158             _tr_tally_lit (s, s->window[s->strstart], bflush);
2159             s->lookahead--;
2160             s->strstart++;
2161         }
2162         if (bflush) FLUSH_BLOCK(s, 0);
2163     }
2164     s->insert = 0;
2165     if (flush == Z_FINISH) {
2166         FLUSH_BLOCK(s, 1);
2167         return finish_done;
2168     }
2169     if (s->sym_next)
2170         FLUSH_BLOCK(s, 0);
2171     return block_done;
2172 }
2173 
2174 /* ===========================================================================
2175  * For Z_HUFFMAN_ONLY, do not look for matches.  Do not maintain a hash table.
2176  * (It will be regenerated if this run of deflate switches away from Huffman.)
2177  */
deflate_huff(s,flush)2178 local block_state deflate_huff(s, flush)
2179     deflate_state *s;
2180     int flush;
2181 {
2182     int bflush;             /* set if current block must be flushed */
2183 
2184     for (;;) {
2185         /* Make sure that we have a literal to write. */
2186         if (s->lookahead == 0) {
2187             fill_window(s);
2188             if (s->lookahead == 0) {
2189                 if (flush == Z_NO_FLUSH)
2190                     return need_more;
2191                 break;      /* flush the current block */
2192             }
2193         }
2194 
2195         /* Output a literal byte */
2196         s->match_length = 0;
2197         Tracevv((stderr,"%c", s->window[s->strstart]));
2198         _tr_tally_lit (s, s->window[s->strstart], bflush);
2199         s->lookahead--;
2200         s->strstart++;
2201         if (bflush) FLUSH_BLOCK(s, 0);
2202     }
2203     s->insert = 0;
2204     if (flush == Z_FINISH) {
2205         FLUSH_BLOCK(s, 1);
2206         return finish_done;
2207     }
2208     if (s->sym_next)
2209         FLUSH_BLOCK(s, 0);
2210     return block_done;
2211 }
2212