1 1.39 rin /* $NetBSD: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ */ 2 1.1 paulus /* 3 1.7 christos * This file is derived from various .h and .c files from the zlib-1.0.4 4 1.1 paulus * distribution by Jean-loup Gailly and Mark Adler, with some additions 5 1.1 paulus * by Paul Mackerras to aid in implementing Deflate compression and 6 1.1 paulus * decompression for PPP packets. See zlib.h for conditions of 7 1.1 paulus * distribution and use. 8 1.1 paulus * 9 1.1 paulus * Changes that have been made include: 10 1.1 paulus * - added Z_PACKET_FLUSH (see zlib.h for details) 11 1.7 christos * - added inflateIncomp and deflateOutputPending 12 1.7 christos * - allow strm->next_out to be NULL, meaning discard the output 13 1.4 christos * 14 1.39 rin * $Id: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ 15 1.1 paulus */ 16 1.1 paulus 17 1.20 perry /* 18 1.17 fvdl * ==FILEVERSION 020312== 19 1.4 christos * 20 1.4 christos * This marker is used by the Linux installation script to determine 21 1.4 christos * whether an up-to-date version of this file is already installed. 22 1.4 christos */ 23 1.15 lukem 24 1.15 lukem #include <sys/cdefs.h> 25 1.39 rin __KERNEL_RCSID(0, "$NetBSD: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $"); 26 1.1 paulus 27 1.7 christos #define NO_DUMMY_DECL 28 1.7 christos #define NO_ZCFUNCS 29 1.7 christos #define MY_ZCALLOC 30 1.7 christos 31 1.7 christos #if defined(__FreeBSD__) && (defined(KERNEL) || defined(_KERNEL)) 32 1.7 christos #define inflate inflate_ppp /* FreeBSD already has an inflate :-( */ 33 1.7 christos #endif 34 1.7 christos 35 1.7 christos 36 1.7 christos /* +++ zutil.h */ 37 1.17 fvdl 38 1.1 paulus /* zutil.h -- internal interface and configuration of the compression library 39 1.17 fvdl * Copyright (C) 1995-2002 Jean-loup Gailly. 40 1.1 paulus * For conditions of distribution and use, see copyright notice in zlib.h 41 1.1 paulus */ 42 1.1 paulus 43 1.1 paulus /* WARNING: this file should *not* be used by applications. It is 44 1.1 paulus part of the implementation of the compression library and is 45 1.1 paulus subject to change. Applications should only use zlib.h. 46 1.1 paulus */ 47 1.1 paulus 48 1.39 rin /* @(#) $Id: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ */ 49 1.1 paulus 50 1.7 christos #ifndef _Z_UTIL_H 51 1.1 paulus #define _Z_UTIL_H 52 1.1 paulus 53 1.1 paulus #include "zlib.h" 54 1.1 paulus 55 1.7 christos #if defined(KERNEL) || defined(_KERNEL) 56 1.7 christos /* Assume this is a *BSD or SVR4 kernel */ 57 1.9 ragge #include <sys/param.h> 58 1.7 christos #include <sys/time.h> 59 1.7 christos #include <sys/systm.h> 60 1.7 christos # define HAVE_MEMCPY 61 1.7 christos #else 62 1.7 christos #if defined(__KERNEL__) 63 1.7 christos /* Assume this is a Linux kernel */ 64 1.7 christos #include <linux/string.h> 65 1.7 christos #define HAVE_MEMCPY 66 1.7 christos 67 1.7 christos #else /* not kernel */ 68 1.7 christos 69 1.17 fvdl #if defined(__NetBSD__) && (defined(_KERNEL) || defined(_STANDALONE)) 70 1.17 fvdl 71 1.17 fvdl /* XXX doesn't seem to need anything at all, but this is for consistency. */ 72 1.17 fvdl # include <lib/libkern/libkern.h> 73 1.17 fvdl 74 1.7 christos #else 75 1.23 christos # include <sys/types.h> 76 1.23 christos # include <sys/param.h> 77 1.7 christos #ifdef STDC 78 1.17 fvdl # include <stddef.h> 79 1.7 christos # include <string.h> 80 1.7 christos # include <stdlib.h> 81 1.7 christos #endif 82 1.17 fvdl #ifdef NO_ERRNO_H 83 1.17 fvdl extern int errno; 84 1.17 fvdl #else 85 1.17 fvdl # include <errno.h> 86 1.17 fvdl #endif 87 1.17 fvdl #endif /* __NetBSD__ && _STANDALONE */ 88 1.7 christos #endif /* __KERNEL__ */ 89 1.7 christos #endif /* _KERNEL || KERNEL */ 90 1.7 christos 91 1.1 paulus #ifndef local 92 1.1 paulus # define local static 93 1.1 paulus #endif 94 1.1 paulus /* compile with -Dlocal if your debugger can't find static symbols */ 95 1.1 paulus 96 1.1 paulus typedef unsigned char uch; 97 1.1 paulus typedef uch FAR uchf; 98 1.1 paulus typedef unsigned short ush; 99 1.1 paulus typedef ush FAR ushf; 100 1.1 paulus typedef unsigned long ulg; 101 1.1 paulus 102 1.17 fvdl extern const char *z_errmsg[10]; /* indexed by 2-zlib_error */ 103 1.7 christos /* (size given to avoid silly warnings with Visual C++) */ 104 1.1 paulus 105 1.7 christos #define ERR_MSG(err) z_errmsg[Z_NEED_DICT-(err)] 106 1.7 christos 107 1.7 christos #define ERR_RETURN(strm,err) \ 108 1.21 christos return (strm->msg = ERR_MSG(err), (err)) 109 1.1 paulus /* To be used only when the state is known to be valid */ 110 1.1 paulus 111 1.1 paulus /* common constants */ 112 1.1 paulus 113 1.1 paulus #ifndef DEF_WBITS 114 1.1 paulus # define DEF_WBITS MAX_WBITS 115 1.1 paulus #endif 116 1.1 paulus /* default windowBits for decompression. MAX_WBITS is for compression only */ 117 1.1 paulus 118 1.1 paulus #if MAX_MEM_LEVEL >= 8 119 1.1 paulus # define DEF_MEM_LEVEL 8 120 1.1 paulus #else 121 1.1 paulus # define DEF_MEM_LEVEL MAX_MEM_LEVEL 122 1.1 paulus #endif 123 1.1 paulus /* default memLevel */ 124 1.1 paulus 125 1.1 paulus #define STORED_BLOCK 0 126 1.1 paulus #define STATIC_TREES 1 127 1.1 paulus #define DYN_TREES 2 128 1.1 paulus /* The three kinds of block type */ 129 1.1 paulus 130 1.1 paulus #define MIN_MATCH 3 131 1.1 paulus #define MAX_MATCH 258 132 1.1 paulus /* The minimum and maximum match lengths */ 133 1.1 paulus 134 1.7 christos #define PRESET_DICT 0x20 /* preset dictionary flag in zlib header */ 135 1.7 christos 136 1.7 christos /* target dependencies */ 137 1.7 christos 138 1.7 christos #ifdef MSDOS 139 1.7 christos # define OS_CODE 0x00 140 1.17 fvdl # if defined(__TURBOC__) || defined(__BORLANDC__) 141 1.17 fvdl # if(__STDC__ == 1) && (defined(__LARGE__) || defined(__COMPACT__)) 142 1.17 fvdl /* Allow compilation with ANSI keywords only enabled */ 143 1.17 fvdl void _Cdecl farfree( void *block ); 144 1.17 fvdl void *_Cdecl farmalloc( unsigned long nbytes ); 145 1.17 fvdl # else 146 1.17 fvdl # include <alloc.h> 147 1.17 fvdl # endif 148 1.7 christos # else /* MSC or DJGPP */ 149 1.7 christos # include <malloc.h> 150 1.7 christos # endif 151 1.7 christos #endif 152 1.7 christos 153 1.7 christos #ifdef OS2 154 1.7 christos # define OS_CODE 0x06 155 1.7 christos #endif 156 1.7 christos 157 1.7 christos #ifdef WIN32 /* Window 95 & Windows NT */ 158 1.7 christos # define OS_CODE 0x0b 159 1.7 christos #endif 160 1.7 christos 161 1.7 christos #if defined(VAXC) || defined(VMS) 162 1.7 christos # define OS_CODE 0x02 163 1.17 fvdl # define F_OPEN(name, mode) \ 164 1.7 christos fopen((name), (mode), "mbc=60", "ctx=stm", "rfm=fix", "mrs=512") 165 1.7 christos #endif 166 1.7 christos 167 1.7 christos #ifdef AMIGA 168 1.7 christos # define OS_CODE 0x01 169 1.7 christos #endif 170 1.7 christos 171 1.7 christos #if defined(ATARI) || defined(atarist) 172 1.7 christos # define OS_CODE 0x05 173 1.7 christos #endif 174 1.7 christos 175 1.17 fvdl #if defined(MACOS) || defined(TARGET_OS_MAC) 176 1.7 christos # define OS_CODE 0x07 177 1.17 fvdl # if defined(__MWERKS__) && __dest_os != __be_os && __dest_os != __win32_os 178 1.17 fvdl # include <unix.h> /* for fdopen */ 179 1.17 fvdl # else 180 1.17 fvdl # ifndef fdopen 181 1.17 fvdl # define fdopen(fd,mode) NULL /* No fdopen() */ 182 1.17 fvdl # endif 183 1.17 fvdl # endif 184 1.7 christos #endif 185 1.7 christos 186 1.7 christos #ifdef __50SERIES /* Prime/PRIMOS */ 187 1.7 christos # define OS_CODE 0x0F 188 1.7 christos #endif 189 1.7 christos 190 1.7 christos #ifdef TOPS20 191 1.7 christos # define OS_CODE 0x0a 192 1.7 christos #endif 193 1.7 christos 194 1.7 christos #if defined(_BEOS_) || defined(RISCOS) 195 1.7 christos # define fdopen(fd,mode) NULL /* No fdopen() */ 196 1.7 christos #endif 197 1.7 christos 198 1.17 fvdl #if (defined(_MSC_VER) && (_MSC_VER > 600)) 199 1.17 fvdl # define fdopen(fd,type) _fdopen(fd,type) 200 1.17 fvdl #endif 201 1.17 fvdl 202 1.17 fvdl 203 1.7 christos /* Common defaults */ 204 1.7 christos 205 1.7 christos #ifndef OS_CODE 206 1.7 christos # define OS_CODE 0x03 /* assume Unix */ 207 1.7 christos #endif 208 1.7 christos 209 1.17 fvdl #ifndef F_OPEN 210 1.17 fvdl # define F_OPEN(name, mode) fopen((name), (mode)) 211 1.7 christos #endif 212 1.7 christos 213 1.1 paulus /* functions */ 214 1.1 paulus 215 1.7 christos #ifdef HAVE_STRERROR 216 1.31 dsl extern char *strerror(int); 217 1.7 christos # define zstrerror(errnum) strerror(errnum) 218 1.1 paulus #else 219 1.7 christos # define zstrerror(errnum) "" 220 1.7 christos #endif 221 1.4 christos 222 1.7 christos #if defined(pyr) 223 1.7 christos # define NO_MEMCPY 224 1.7 christos #endif 225 1.17 fvdl #if defined(SMALL_MEDIUM) && !defined(_MSC_VER) && !defined(__SC__) 226 1.7 christos /* Use our own functions for small and medium model with MSC <= 5.0. 227 1.7 christos * You may have to use the same strategy for Borland C (untested). 228 1.17 fvdl * The __SC__ check is for Symantec. 229 1.7 christos */ 230 1.7 christos # define NO_MEMCPY 231 1.7 christos #endif 232 1.1 paulus #if defined(STDC) && !defined(HAVE_MEMCPY) && !defined(NO_MEMCPY) 233 1.1 paulus # define HAVE_MEMCPY 234 1.1 paulus #endif 235 1.1 paulus #ifdef HAVE_MEMCPY 236 1.7 christos # ifdef SMALL_MEDIUM /* MSDOS small or medium model */ 237 1.7 christos # define zmemcpy _fmemcpy 238 1.7 christos # define zmemcmp _fmemcmp 239 1.7 christos # define zmemzero(dest, len) _fmemset(dest, 0, len) 240 1.7 christos # else 241 1.1 paulus # define zmemcpy memcpy 242 1.7 christos # define zmemcmp memcmp 243 1.1 paulus # define zmemzero(dest, len) memset(dest, 0, len) 244 1.7 christos # endif 245 1.1 paulus #else 246 1.31 dsl extern void zmemcpy(Bytef* dest, const Bytef* source, uInt len); 247 1.31 dsl extern int zmemcmp(const Bytef* s1, const Bytef* s2, uInt len); 248 1.31 dsl extern void zmemzero(Bytef* dest, uInt len); 249 1.1 paulus #endif 250 1.1 paulus 251 1.1 paulus /* Diagnostic functions */ 252 1.17 fvdl #if defined(DEBUG_ZLIB) && !defined(_KERNEL) && !defined(_STANDALONE) 253 1.1 paulus # include <stdio.h> 254 1.17 fvdl extern int z_verbose; 255 1.31 dsl extern void z_error(char *m); 256 1.1 paulus # define Assert(cond,msg) {if(!(cond)) z_error(msg);} 257 1.17 fvdl # define Trace(x) {if (z_verbose>=0) fprintf x ;} 258 1.17 fvdl # define Tracev(x) {if (z_verbose>0) fprintf x ;} 259 1.17 fvdl # define Tracevv(x) {if (z_verbose>1) fprintf x ;} 260 1.17 fvdl # define Tracec(c,x) {if (z_verbose>0 && (c)) fprintf x ;} 261 1.17 fvdl # define Tracecv(c,x) {if (z_verbose>1 && (c)) fprintf x ;} 262 1.1 paulus #else 263 1.1 paulus # define Assert(cond,msg) 264 1.1 paulus # define Trace(x) 265 1.1 paulus # define Tracev(x) 266 1.1 paulus # define Tracevv(x) 267 1.1 paulus # define Tracec(c,x) 268 1.1 paulus # define Tracecv(c,x) 269 1.1 paulus #endif 270 1.1 paulus 271 1.1 paulus 272 1.31 dsl typedef uLong (ZEXPORT *check_func)(uLong check, const Bytef *buf, 273 1.31 dsl uInt len); 274 1.31 dsl voidpf zcalloc(voidpf opaque, unsigned items, unsigned size); 275 1.31 dsl void zcfree(voidpf opaque, voidpf ptr); 276 1.1 paulus 277 1.1 paulus #define ZALLOC(strm, items, size) \ 278 1.1 paulus (*((strm)->zalloc))((strm)->opaque, (items), (size)) 279 1.7 christos #define ZFREE(strm, addr) (*((strm)->zfree))((strm)->opaque, (voidpf)(addr)) 280 1.7 christos #define TRY_FREE(s, p) {if (p) ZFREE(s, p);} 281 1.7 christos 282 1.7 christos #endif /* _Z_UTIL_H */ 283 1.7 christos /* --- zutil.h */ 284 1.1 paulus 285 1.7 christos /* +++ deflate.h */ 286 1.17 fvdl 287 1.1 paulus /* deflate.h -- internal compression state 288 1.17 fvdl * Copyright (C) 1995-2002 Jean-loup Gailly 289 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 290 1.1 paulus */ 291 1.1 paulus 292 1.1 paulus /* WARNING: this file should *not* be used by applications. It is 293 1.1 paulus part of the implementation of the compression library and is 294 1.1 paulus subject to change. Applications should only use zlib.h. 295 1.1 paulus */ 296 1.1 paulus 297 1.39 rin /* @(#) $Id: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ */ 298 1.1 paulus 299 1.7 christos #ifndef _DEFLATE_H 300 1.7 christos #define _DEFLATE_H 301 1.7 christos 302 1.7 christos /* #include "zutil.h" */ 303 1.1 paulus 304 1.1 paulus /* =========================================================================== 305 1.1 paulus * Internal compression state. 306 1.1 paulus */ 307 1.1 paulus 308 1.1 paulus #define LENGTH_CODES 29 309 1.1 paulus /* number of length codes, not counting the special END_BLOCK code */ 310 1.1 paulus 311 1.1 paulus #define LITERALS 256 312 1.1 paulus /* number of literal bytes 0..255 */ 313 1.1 paulus 314 1.1 paulus #define L_CODES (LITERALS+1+LENGTH_CODES) 315 1.1 paulus /* number of Literal or Length codes, including the END_BLOCK code */ 316 1.1 paulus 317 1.1 paulus #define D_CODES 30 318 1.1 paulus /* number of distance codes */ 319 1.1 paulus 320 1.1 paulus #define BL_CODES 19 321 1.1 paulus /* number of codes used to transfer the bit lengths */ 322 1.1 paulus 323 1.1 paulus #define HEAP_SIZE (2*L_CODES+1) 324 1.1 paulus /* maximum heap size */ 325 1.1 paulus 326 1.1 paulus #define MAX_BITS 15 327 1.1 paulus /* All codes must not exceed MAX_BITS bits */ 328 1.1 paulus 329 1.1 paulus #define INIT_STATE 42 330 1.1 paulus #define BUSY_STATE 113 331 1.1 paulus #define FINISH_STATE 666 332 1.1 paulus /* Stream status */ 333 1.1 paulus 334 1.1 paulus 335 1.1 paulus /* Data structure describing a single value and its code string. */ 336 1.1 paulus typedef struct ct_data_s { 337 1.1 paulus union { 338 1.1 paulus ush freq; /* frequency count */ 339 1.1 paulus ush code; /* bit string */ 340 1.1 paulus } fc; 341 1.1 paulus union { 342 1.1 paulus ush dad; /* father node in Huffman tree */ 343 1.1 paulus ush len; /* length of bit string */ 344 1.1 paulus } dl; 345 1.1 paulus } FAR ct_data; 346 1.1 paulus 347 1.1 paulus #define Freq fc.freq 348 1.1 paulus #define Code fc.code 349 1.1 paulus #define Dad dl.dad 350 1.1 paulus #define Len dl.len 351 1.1 paulus 352 1.1 paulus typedef struct static_tree_desc_s static_tree_desc; 353 1.1 paulus 354 1.1 paulus typedef struct tree_desc_s { 355 1.1 paulus ct_data *dyn_tree; /* the dynamic tree */ 356 1.1 paulus int max_code; /* largest code with non zero frequency */ 357 1.1 paulus static_tree_desc *stat_desc; /* the corresponding static tree */ 358 1.1 paulus } FAR tree_desc; 359 1.1 paulus 360 1.1 paulus typedef ush Pos; 361 1.1 paulus typedef Pos FAR Posf; 362 1.1 paulus typedef unsigned IPos; 363 1.1 paulus 364 1.1 paulus /* A Pos is an index in the character window. We use short instead of int to 365 1.1 paulus * save space in the various tables. IPos is used only for parameter passing. 366 1.1 paulus */ 367 1.1 paulus 368 1.1 paulus typedef struct deflate_state { 369 1.7 christos z_streamp strm; /* pointer back to this zlib stream */ 370 1.1 paulus int status; /* as the name implies */ 371 1.1 paulus Bytef *pending_buf; /* output still pending */ 372 1.7 christos ulg pending_buf_size; /* size of pending_buf */ 373 1.1 paulus Bytef *pending_out; /* next pending byte to output to the stream */ 374 1.1 paulus int pending; /* nb of bytes in the pending buffer */ 375 1.1 paulus int noheader; /* suppress zlib header and adler32 */ 376 1.7 christos Byte data_type; /* UNKNOWN, BINARY or ASCII */ 377 1.1 paulus Byte method; /* STORED (for zip only) or DEFLATED */ 378 1.7 christos int last_flush; /* value of flush param for previous deflate call */ 379 1.1 paulus 380 1.1 paulus /* used by deflate.c: */ 381 1.1 paulus 382 1.1 paulus uInt w_size; /* LZ77 window size (32K by default) */ 383 1.1 paulus uInt w_bits; /* log2(w_size) (8..16) */ 384 1.1 paulus uInt w_mask; /* w_size - 1 */ 385 1.1 paulus 386 1.1 paulus Bytef *window; 387 1.1 paulus /* Sliding window. Input bytes are read into the second half of the window, 388 1.1 paulus * and move to the first half later to keep a dictionary of at least wSize 389 1.1 paulus * bytes. With this organization, matches are limited to a distance of 390 1.1 paulus * wSize-MAX_MATCH bytes, but this ensures that IO is always 391 1.1 paulus * performed with a length multiple of the block size. Also, it limits 392 1.1 paulus * the window size to 64K, which is quite useful on MSDOS. 393 1.1 paulus * To do: use the user input buffer as sliding window. 394 1.1 paulus */ 395 1.1 paulus 396 1.1 paulus ulg window_size; 397 1.1 paulus /* Actual size of window: 2*wSize, except when the user input buffer 398 1.1 paulus * is directly used as sliding window. 399 1.1 paulus */ 400 1.1 paulus 401 1.1 paulus Posf *prev; 402 1.1 paulus /* Link to older string with same hash index. To limit the size of this 403 1.1 paulus * array to 64K, this link is maintained only for the last 32K strings. 404 1.1 paulus * An index in this array is thus a window index modulo 32K. 405 1.1 paulus */ 406 1.1 paulus 407 1.1 paulus Posf *head; /* Heads of the hash chains or NIL. */ 408 1.1 paulus 409 1.1 paulus uInt ins_h; /* hash index of string to be inserted */ 410 1.1 paulus uInt hash_size; /* number of elements in hash table */ 411 1.1 paulus uInt hash_bits; /* log2(hash_size) */ 412 1.1 paulus uInt hash_mask; /* hash_size-1 */ 413 1.1 paulus 414 1.1 paulus uInt hash_shift; 415 1.1 paulus /* Number of bits by which ins_h must be shifted at each input 416 1.1 paulus * step. It must be such that after MIN_MATCH steps, the oldest 417 1.1 paulus * byte no longer takes part in the hash key, that is: 418 1.1 paulus * hash_shift * MIN_MATCH >= hash_bits 419 1.1 paulus */ 420 1.1 paulus 421 1.1 paulus long block_start; 422 1.1 paulus /* Window position at the beginning of the current output block. Gets 423 1.1 paulus * negative when the window is moved backwards. 424 1.1 paulus */ 425 1.1 paulus 426 1.1 paulus uInt match_length; /* length of best match */ 427 1.1 paulus IPos prev_match; /* previous match */ 428 1.1 paulus int match_available; /* set if previous match exists */ 429 1.1 paulus uInt strstart; /* start of string to insert */ 430 1.1 paulus uInt match_start; /* start of matching string */ 431 1.1 paulus uInt lookahead; /* number of valid bytes ahead in window */ 432 1.1 paulus 433 1.1 paulus uInt prev_length; 434 1.1 paulus /* Length of the best match at previous step. Matches not greater than this 435 1.1 paulus * are discarded. This is used in the lazy match evaluation. 436 1.1 paulus */ 437 1.1 paulus 438 1.1 paulus uInt max_chain_length; 439 1.1 paulus /* To speed up deflation, hash chains are never searched beyond this 440 1.1 paulus * length. A higher limit improves compression ratio but degrades the 441 1.1 paulus * speed. 442 1.1 paulus */ 443 1.1 paulus 444 1.1 paulus uInt max_lazy_match; 445 1.1 paulus /* Attempt to find a better match only when the current match is strictly 446 1.1 paulus * smaller than this value. This mechanism is used only for compression 447 1.1 paulus * levels >= 4. 448 1.1 paulus */ 449 1.1 paulus # define max_insert_length max_lazy_match 450 1.1 paulus /* Insert new strings in the hash table only if the match length is not 451 1.1 paulus * greater than this length. This saves time but degrades compression. 452 1.1 paulus * max_insert_length is used only for compression levels <= 3. 453 1.1 paulus */ 454 1.1 paulus 455 1.1 paulus int level; /* compression level (1..9) */ 456 1.1 paulus int strategy; /* favor or force Huffman coding*/ 457 1.1 paulus 458 1.1 paulus uInt good_match; 459 1.1 paulus /* Use a faster search when the previous match is longer than this */ 460 1.1 paulus 461 1.7 christos int nice_match; /* Stop searching when current match exceeds this */ 462 1.1 paulus 463 1.1 paulus /* used by trees.c: */ 464 1.37 msaitoh /* Didn't use ct_data typedef below to suppress compiler warning */ 465 1.1 paulus struct ct_data_s dyn_ltree[HEAP_SIZE]; /* literal and length tree */ 466 1.1 paulus struct ct_data_s dyn_dtree[2*D_CODES+1]; /* distance tree */ 467 1.1 paulus struct ct_data_s bl_tree[2*BL_CODES+1]; /* Huffman tree for bit lengths */ 468 1.1 paulus 469 1.1 paulus struct tree_desc_s l_desc; /* desc. for literal tree */ 470 1.1 paulus struct tree_desc_s d_desc; /* desc. for distance tree */ 471 1.1 paulus struct tree_desc_s bl_desc; /* desc. for bit length tree */ 472 1.1 paulus 473 1.1 paulus ush bl_count[MAX_BITS+1]; 474 1.1 paulus /* number of codes at each bit length for an optimal tree */ 475 1.1 paulus 476 1.1 paulus int heap[2*L_CODES+1]; /* heap used to build the Huffman trees */ 477 1.1 paulus int heap_len; /* number of elements in the heap */ 478 1.1 paulus int heap_max; /* element of largest frequency */ 479 1.1 paulus /* The sons of heap[n] are heap[2*n] and heap[2*n+1]. heap[0] is not used. 480 1.1 paulus * The same heap array is used to build all trees. 481 1.1 paulus */ 482 1.1 paulus 483 1.1 paulus uch depth[2*L_CODES+1]; 484 1.1 paulus /* Depth of each subtree used as tie breaker for trees of equal frequency 485 1.1 paulus */ 486 1.1 paulus 487 1.1 paulus uchf *l_buf; /* buffer for literals or lengths */ 488 1.1 paulus 489 1.1 paulus uInt lit_bufsize; 490 1.1 paulus /* Size of match buffer for literals/lengths. There are 4 reasons for 491 1.1 paulus * limiting lit_bufsize to 64K: 492 1.1 paulus * - frequencies can be kept in 16 bit counters 493 1.1 paulus * - if compression is not successful for the first block, all input 494 1.1 paulus * data is still in the window so we can still emit a stored block even 495 1.1 paulus * when input comes from standard input. (This can also be done for 496 1.1 paulus * all blocks if lit_bufsize is not greater than 32K.) 497 1.1 paulus * - if compression is not successful for a file smaller than 64K, we can 498 1.1 paulus * even emit a stored file instead of a stored block (saving 5 bytes). 499 1.1 paulus * This is applicable only for zip (not gzip or zlib). 500 1.1 paulus * - creating new Huffman trees less frequently may not provide fast 501 1.1 paulus * adaptation to changes in the input data statistics. (Take for 502 1.1 paulus * example a binary file with poorly compressible code followed by 503 1.1 paulus * a highly compressible string table.) Smaller buffer sizes give 504 1.1 paulus * fast adaptation but have of course the overhead of transmitting 505 1.1 paulus * trees more frequently. 506 1.1 paulus * - I can't count above 4 507 1.1 paulus */ 508 1.1 paulus 509 1.1 paulus uInt last_lit; /* running index in l_buf */ 510 1.1 paulus 511 1.1 paulus ushf *d_buf; 512 1.1 paulus /* Buffer for distances. To simplify the code, d_buf and l_buf have 513 1.1 paulus * the same number of elements. To use different lengths, an extra flag 514 1.1 paulus * array would be necessary. 515 1.1 paulus */ 516 1.1 paulus 517 1.1 paulus ulg opt_len; /* bit length of current block with optimal trees */ 518 1.1 paulus ulg static_len; /* bit length of current block with static trees */ 519 1.1 paulus uInt matches; /* number of string matches in current block */ 520 1.1 paulus int last_eob_len; /* bit length of EOB code for last block */ 521 1.1 paulus 522 1.1 paulus #ifdef DEBUG_ZLIB 523 1.17 fvdl ulg compressed_len; /* total bit length of compressed file mod 2^32 */ 524 1.17 fvdl ulg bits_sent; /* bit length of compressed data sent mod 2^32 */ 525 1.1 paulus #endif 526 1.1 paulus 527 1.1 paulus ush bi_buf; 528 1.1 paulus /* Output buffer. bits are inserted starting at the bottom (least 529 1.1 paulus * significant bits). 530 1.1 paulus */ 531 1.1 paulus int bi_valid; 532 1.1 paulus /* Number of valid bits in bi_buf. All bits above the last valid bit 533 1.1 paulus * are always zero. 534 1.1 paulus */ 535 1.1 paulus 536 1.1 paulus } FAR deflate_state; 537 1.1 paulus 538 1.1 paulus /* Output a byte on the stream. 539 1.1 paulus * IN assertion: there is enough room in pending_buf. 540 1.1 paulus */ 541 1.1 paulus #define put_byte(s, c) {s->pending_buf[s->pending++] = (c);} 542 1.1 paulus 543 1.1 paulus 544 1.1 paulus #define MIN_LOOKAHEAD (MAX_MATCH+MIN_MATCH+1) 545 1.1 paulus /* Minimum amount of lookahead, except at the end of the input file. 546 1.1 paulus * See deflate.c for comments about the MIN_MATCH+1. 547 1.1 paulus */ 548 1.1 paulus 549 1.1 paulus #define MAX_DIST(s) ((s)->w_size-MIN_LOOKAHEAD) 550 1.1 paulus /* In order to simplify the code, particularly on 16 bit machines, match 551 1.1 paulus * distances are limited to MAX_DIST instead of WSIZE. 552 1.1 paulus */ 553 1.1 paulus 554 1.1 paulus /* in trees.c */ 555 1.31 dsl void _tr_init(deflate_state *s); 556 1.31 dsl int _tr_tally(deflate_state *s, unsigned dist, unsigned lc); 557 1.31 dsl void _tr_flush_block(deflate_state *s, charf *buf, ulg stored_len, 558 1.31 dsl int eof); 559 1.31 dsl void _tr_align(deflate_state *s); 560 1.31 dsl void _tr_stored_block(deflate_state *s, charf *buf, ulg stored_len, 561 1.31 dsl int eof); 562 1.31 dsl void _tr_stored_type_only(deflate_state *); 563 1.17 fvdl 564 1.17 fvdl #define d_code(dist) \ 565 1.17 fvdl ((dist) < 256 ? _dist_code[dist] : _dist_code[256+((dist)>>7)]) 566 1.17 fvdl /* Mapping from a distance to a distance code. dist is the distance - 1 and 567 1.17 fvdl * must not have side effects. _dist_code[256] and _dist_code[257] are never 568 1.17 fvdl * used. 569 1.17 fvdl */ 570 1.17 fvdl 571 1.17 fvdl #ifndef DEBUG_ZLIB 572 1.17 fvdl /* Inline versions of _tr_tally for speed: */ 573 1.17 fvdl 574 1.17 fvdl #if defined(GEN_TREES_H) || !defined(STDC) 575 1.17 fvdl extern uch _length_code[]; 576 1.17 fvdl extern uch _dist_code[]; 577 1.17 fvdl #else 578 1.17 fvdl extern const uch _length_code[]; 579 1.17 fvdl extern const uch _dist_code[]; 580 1.17 fvdl #endif 581 1.17 fvdl 582 1.17 fvdl # define _tr_tally_lit(s, c, flush) \ 583 1.17 fvdl { uch cc = (c); \ 584 1.17 fvdl s->d_buf[s->last_lit] = 0; \ 585 1.17 fvdl s->l_buf[s->last_lit++] = cc; \ 586 1.17 fvdl s->dyn_ltree[cc].Freq++; \ 587 1.17 fvdl flush = (s->last_lit == s->lit_bufsize-1); \ 588 1.17 fvdl } 589 1.17 fvdl # define _tr_tally_dist(s, distance, length, flush) \ 590 1.17 fvdl { uch len = (length); \ 591 1.17 fvdl ush dist = (distance); \ 592 1.17 fvdl s->d_buf[s->last_lit] = dist; \ 593 1.17 fvdl s->l_buf[s->last_lit++] = len; \ 594 1.17 fvdl dist--; \ 595 1.17 fvdl s->dyn_ltree[_length_code[len]+LITERALS+1].Freq++; \ 596 1.17 fvdl s->dyn_dtree[d_code(dist)].Freq++; \ 597 1.17 fvdl flush = (s->last_lit == s->lit_bufsize-1); \ 598 1.17 fvdl } 599 1.17 fvdl #else 600 1.17 fvdl # define _tr_tally_lit(s, c, flush) flush = _tr_tally(s, 0, c) 601 1.17 fvdl # define _tr_tally_dist(s, distance, length, flush) \ 602 1.20 perry flush = _tr_tally(s, distance, length) 603 1.17 fvdl #endif 604 1.1 paulus 605 1.7 christos #endif 606 1.7 christos /* --- deflate.h */ 607 1.1 paulus 608 1.7 christos /* +++ deflate.c */ 609 1.17 fvdl 610 1.1 paulus /* deflate.c -- compress data using the deflation algorithm 611 1.17 fvdl * Copyright (C) 1995-2002 Jean-loup Gailly. 612 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 613 1.1 paulus */ 614 1.1 paulus 615 1.1 paulus /* 616 1.1 paulus * ALGORITHM 617 1.1 paulus * 618 1.1 paulus * The "deflation" process depends on being able to identify portions 619 1.1 paulus * of the input text which are identical to earlier input (within a 620 1.1 paulus * sliding window trailing behind the input currently being processed). 621 1.1 paulus * 622 1.1 paulus * The most straightforward technique turns out to be the fastest for 623 1.1 paulus * most input files: try all possible matches and select the longest. 624 1.1 paulus * The key feature of this algorithm is that insertions into the string 625 1.1 paulus * dictionary are very simple and thus fast, and deletions are avoided 626 1.1 paulus * completely. Insertions are performed at each input character, whereas 627 1.1 paulus * string matches are performed only when the previous match ends. So it 628 1.1 paulus * is preferable to spend more time in matches to allow very fast string 629 1.1 paulus * insertions and avoid deletions. The matching algorithm for small 630 1.1 paulus * strings is inspired from that of Rabin & Karp. A brute force approach 631 1.1 paulus * is used to find longer strings when a small match has been found. 632 1.1 paulus * A similar algorithm is used in comic (by Jan-Mark Wams) and freeze 633 1.1 paulus * (by Leonid Broukhis). 634 1.1 paulus * A previous version of this file used a more sophisticated algorithm 635 1.1 paulus * (by Fiala and Greene) which is guaranteed to run in linear amortized 636 1.1 paulus * time, but has a larger average cost, uses more memory and is patented. 637 1.1 paulus * However the F&G algorithm may be faster for some highly redundant 638 1.1 paulus * files if the parameter max_chain_length (described below) is too large. 639 1.1 paulus * 640 1.1 paulus * ACKNOWLEDGEMENTS 641 1.1 paulus * 642 1.1 paulus * The idea of lazy evaluation of matches is due to Jan-Mark Wams, and 643 1.1 paulus * I found it in 'freeze' written by Leonid Broukhis. 644 1.1 paulus * Thanks to many people for bug reports and testing. 645 1.1 paulus * 646 1.1 paulus * REFERENCES 647 1.1 paulus * 648 1.7 christos * Deutsch, L.P.,"DEFLATE Compressed Data Format Specification". 649 1.7 christos * Available in ftp://ds.internic.net/rfc/rfc1951.txt 650 1.1 paulus * 651 1.1 paulus * A description of the Rabin and Karp algorithm is given in the book 652 1.1 paulus * "Algorithms" by R. Sedgewick, Addison-Wesley, p252. 653 1.1 paulus * 654 1.1 paulus * Fiala,E.R., and Greene,D.H. 655 1.1 paulus * Data Compression with Finite Windows, Comm.ACM, 32,4 (1989) 490-595 656 1.1 paulus * 657 1.1 paulus */ 658 1.1 paulus 659 1.39 rin /* @(#) $Id: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ */ 660 1.7 christos 661 1.7 christos /* #include "deflate.h" */ 662 1.1 paulus 663 1.17 fvdl const char deflate_copyright[] = 664 1.17 fvdl " deflate 1.1.4 Copyright 1995-2002 Jean-loup Gailly "; 665 1.1 paulus /* 666 1.1 paulus If you use the zlib library in a product, an acknowledgment is welcome 667 1.1 paulus in the documentation of your product. If for some reason you cannot 668 1.1 paulus include such an acknowledgment, I would appreciate that you keep this 669 1.1 paulus copyright string in the executable of your product. 670 1.1 paulus */ 671 1.1 paulus 672 1.7 christos /* =========================================================================== 673 1.7 christos * Function prototypes. 674 1.7 christos */ 675 1.7 christos typedef enum { 676 1.7 christos need_more, /* block not completed, need more input or more output */ 677 1.7 christos block_done, /* block flush performed */ 678 1.7 christos finish_started, /* finish started, need only more output at next deflate */ 679 1.7 christos finish_done /* finish done, accept no more input or output */ 680 1.7 christos } block_state; 681 1.7 christos 682 1.31 dsl typedef block_state (*compress_func)(deflate_state *s, int flush); 683 1.7 christos /* Compression function. Returns the block state after the call. */ 684 1.7 christos 685 1.31 dsl local void fill_window(deflate_state *s); 686 1.31 dsl local block_state deflate_stored(deflate_state *s, int flush); 687 1.31 dsl local block_state deflate_fast(deflate_state *s, int flush); 688 1.31 dsl local block_state deflate_slow(deflate_state *s, int flush); 689 1.31 dsl local void lm_init(deflate_state *s); 690 1.31 dsl local void putShortMSB(deflate_state *s, uInt b); 691 1.31 dsl local void flush_pending(z_streamp strm); 692 1.31 dsl local int read_buf(z_streamp strm, Bytef *buf, unsigned size); 693 1.7 christos #ifdef ASMV 694 1.31 dsl void match_init(void); /* asm code initialization */ 695 1.31 dsl uInt longest_match(deflate_state *s, IPos cur_match); 696 1.7 christos #else 697 1.31 dsl local uInt longest_match(deflate_state *s, IPos cur_match); 698 1.7 christos #endif 699 1.7 christos 700 1.7 christos #ifdef DEBUG_ZLIB 701 1.31 dsl local void check_match(deflate_state *s, IPos start, IPos match, 702 1.31 dsl int length); 703 1.7 christos #endif 704 1.7 christos 705 1.7 christos /* =========================================================================== 706 1.7 christos * Local data 707 1.7 christos */ 708 1.7 christos 709 1.1 paulus #define NIL 0 710 1.1 paulus /* Tail of hash chains */ 711 1.1 paulus 712 1.1 paulus #ifndef TOO_FAR 713 1.1 paulus # define TOO_FAR 4096 714 1.1 paulus #endif 715 1.1 paulus /* Matches of length 3 are discarded if their distance exceeds TOO_FAR */ 716 1.1 paulus 717 1.1 paulus #define MIN_LOOKAHEAD (MAX_MATCH+MIN_MATCH+1) 718 1.1 paulus /* Minimum amount of lookahead, except at the end of the input file. 719 1.1 paulus * See deflate.c for comments about the MIN_MATCH+1. 720 1.1 paulus */ 721 1.1 paulus 722 1.1 paulus /* Values for max_lazy_match, good_match and max_chain_length, depending on 723 1.1 paulus * the desired pack level (0..9). The values given below have been tuned to 724 1.1 paulus * exclude worst case performance for pathological files. Better values may be 725 1.1 paulus * found for specific files. 726 1.1 paulus */ 727 1.1 paulus typedef struct config_s { 728 1.1 paulus ush good_length; /* reduce lazy search above this match length */ 729 1.1 paulus ush max_lazy; /* do not perform lazy search above this match length */ 730 1.1 paulus ush nice_length; /* quit search above this match length */ 731 1.1 paulus ush max_chain; 732 1.7 christos compress_func func; 733 1.1 paulus } config; 734 1.1 paulus 735 1.14 simonb local const config configuration_table[10] = { 736 1.1 paulus /* good lazy nice chain */ 737 1.7 christos /* 0 */ {0, 0, 0, 0, deflate_stored}, /* store only */ 738 1.7 christos /* 1 */ {4, 4, 8, 4, deflate_fast}, /* maximum speed, no lazy matches */ 739 1.7 christos /* 2 */ {4, 5, 16, 8, deflate_fast}, 740 1.7 christos /* 3 */ {4, 6, 32, 32, deflate_fast}, 741 1.7 christos 742 1.7 christos /* 4 */ {4, 4, 16, 16, deflate_slow}, /* lazy matches */ 743 1.7 christos /* 5 */ {8, 16, 32, 32, deflate_slow}, 744 1.7 christos /* 6 */ {8, 16, 128, 128, deflate_slow}, 745 1.7 christos /* 7 */ {8, 32, 128, 256, deflate_slow}, 746 1.7 christos /* 8 */ {32, 128, 258, 1024, deflate_slow}, 747 1.7 christos /* 9 */ {32, 258, 258, 4096, deflate_slow}}; /* maximum compression */ 748 1.1 paulus 749 1.1 paulus /* Note: the deflate() code requires max_lazy >= MIN_MATCH and max_chain >= 4 750 1.1 paulus * For deflate_fast() (levels <= 3) good is ignored and lazy has a different 751 1.1 paulus * meaning. 752 1.1 paulus */ 753 1.1 paulus 754 1.1 paulus #define EQUAL 0 755 1.1 paulus /* result of memcmp for equal strings */ 756 1.1 paulus 757 1.7 christos #ifndef NO_DUMMY_DECL 758 1.7 christos struct static_tree_desc_s {int dummy;}; /* for buggy compilers */ 759 1.1 paulus #endif 760 1.1 paulus 761 1.1 paulus /* =========================================================================== 762 1.1 paulus * Update a hash value with the given input byte 763 1.1 paulus * IN assertion: all calls to to UPDATE_HASH are made with consecutive 764 1.1 paulus * input characters, so that a running hash key can be computed from the 765 1.1 paulus * previous key instead of complete recalculation each time. 766 1.1 paulus */ 767 1.1 paulus #define UPDATE_HASH(s,h,c) (h = (((h)<<s->hash_shift) ^ (c)) & s->hash_mask) 768 1.1 paulus 769 1.1 paulus 770 1.1 paulus /* =========================================================================== 771 1.1 paulus * Insert string str in the dictionary and set match_head to the previous head 772 1.1 paulus * of the hash chain (the most recent string with same hash key). Return 773 1.1 paulus * the previous length of the hash chain. 774 1.17 fvdl * If this file is compiled with -DFASTEST, the compression level is forced 775 1.17 fvdl * to 1, and no hash chains are maintained. 776 1.1 paulus * IN assertion: all calls to to INSERT_STRING are made with consecutive 777 1.1 paulus * input characters and the first MIN_MATCH bytes of str are valid 778 1.1 paulus * (except for the last MIN_MATCH-1 bytes of the input file). 779 1.1 paulus */ 780 1.17 fvdl #ifdef FASTEST 781 1.17 fvdl #define INSERT_STRING(s, str, match_head) \ 782 1.17 fvdl (UPDATE_HASH(s, s->ins_h, s->window[(str) + (MIN_MATCH-1)]), \ 783 1.17 fvdl match_head = s->head[s->ins_h], \ 784 1.17 fvdl s->head[s->ins_h] = (Pos)(str)) 785 1.17 fvdl #else 786 1.1 paulus #define INSERT_STRING(s, str, match_head) \ 787 1.1 paulus (UPDATE_HASH(s, s->ins_h, s->window[(str) + (MIN_MATCH-1)]), \ 788 1.1 paulus s->prev[(str) & s->w_mask] = match_head = s->head[s->ins_h], \ 789 1.7 christos s->head[s->ins_h] = (Pos)(str)) 790 1.17 fvdl #endif 791 1.1 paulus 792 1.1 paulus /* =========================================================================== 793 1.1 paulus * Initialize the hash table (avoiding 64K overflow for 16 bit systems). 794 1.1 paulus * prev[] will be initialized on the fly. 795 1.1 paulus */ 796 1.1 paulus #define CLEAR_HASH(s) \ 797 1.1 paulus s->head[s->hash_size-1] = NIL; \ 798 1.17 fvdl zmemzero((Bytef *)s->head, (unsigned)(s->hash_size-1)*sizeof(*s->head)); 799 1.1 paulus 800 1.1 paulus /* ========================================================================= */ 801 1.19 kristerw #if 0 802 1.32 cegger int ZEXPORT deflateInit_(z_streamp strm, 803 1.32 cegger int level, const char *version, int stream_size) 804 1.1 paulus { 805 1.7 christos return deflateInit2_(strm, level, Z_DEFLATED, MAX_WBITS, DEF_MEM_LEVEL, 806 1.7 christos Z_DEFAULT_STRATEGY, version, stream_size); 807 1.1 paulus /* To do: ignore strm->next_in if we use it as window */ 808 1.1 paulus } 809 1.19 kristerw #endif 810 1.1 paulus 811 1.1 paulus /* ========================================================================= */ 812 1.32 cegger int ZEXPORT deflateInit2_(z_streamp strm, 813 1.32 cegger int level, int method, int windowBits, int memLevel, int strategy, 814 1.32 cegger const char *vers, int stream_size) 815 1.1 paulus { 816 1.1 paulus deflate_state *s; 817 1.1 paulus int noheader = 0; 818 1.17 fvdl static const char* my_version = ZLIB_VERSION; 819 1.1 paulus 820 1.7 christos ushf *overlay; 821 1.7 christos /* We overlay pending_buf and d_buf+l_buf. This works since the average 822 1.7 christos * output size for (length,distance) codes is <= 24 bits. 823 1.7 christos */ 824 1.7 christos 825 1.21 christos if (vers == Z_NULL || vers[0] != my_version[0] || 826 1.7 christos stream_size != sizeof(z_stream)) { 827 1.7 christos return Z_VERSION_ERROR; 828 1.7 christos } 829 1.1 paulus if (strm == Z_NULL) return Z_STREAM_ERROR; 830 1.1 paulus 831 1.1 paulus strm->msg = Z_NULL; 832 1.7 christos #ifndef NO_ZCFUNCS 833 1.7 christos if (strm->zalloc == Z_NULL) { 834 1.7 christos strm->zalloc = zcalloc; 835 1.7 christos strm->opaque = (voidpf)0; 836 1.7 christos } 837 1.7 christos if (strm->zfree == Z_NULL) strm->zfree = zcfree; 838 1.7 christos #endif 839 1.1 paulus 840 1.1 paulus if (level == Z_DEFAULT_COMPRESSION) level = 6; 841 1.17 fvdl #ifdef FASTEST 842 1.17 fvdl level = 1; 843 1.17 fvdl #endif 844 1.1 paulus 845 1.1 paulus if (windowBits < 0) { /* undocumented feature: suppress zlib header */ 846 1.1 paulus noheader = 1; 847 1.1 paulus windowBits = -windowBits; 848 1.1 paulus } 849 1.7 christos if (memLevel < 1 || memLevel > MAX_MEM_LEVEL || method != Z_DEFLATED || 850 1.17 fvdl windowBits < 9 || windowBits > 15 || level < 0 || level > 9 || 851 1.7 christos strategy < 0 || strategy > Z_HUFFMAN_ONLY) { 852 1.1 paulus return Z_STREAM_ERROR; 853 1.1 paulus } 854 1.7 christos s = (deflate_state *) ZALLOC(strm, 1, sizeof(deflate_state)); 855 1.1 paulus if (s == Z_NULL) return Z_MEM_ERROR; 856 1.1 paulus strm->state = (struct internal_state FAR *)s; 857 1.1 paulus s->strm = strm; 858 1.1 paulus 859 1.1 paulus s->noheader = noheader; 860 1.1 paulus s->w_bits = windowBits; 861 1.1 paulus s->w_size = 1 << s->w_bits; 862 1.1 paulus s->w_mask = s->w_size - 1; 863 1.1 paulus 864 1.1 paulus s->hash_bits = memLevel + 7; 865 1.1 paulus s->hash_size = 1 << s->hash_bits; 866 1.1 paulus s->hash_mask = s->hash_size - 1; 867 1.1 paulus s->hash_shift = ((s->hash_bits+MIN_MATCH-1)/MIN_MATCH); 868 1.1 paulus 869 1.7 christos s->window = (Bytef *) ZALLOC(strm, s->w_size, 2*sizeof(Byte)); 870 1.7 christos s->prev = (Posf *) ZALLOC(strm, s->w_size, sizeof(Pos)); 871 1.7 christos s->head = (Posf *) ZALLOC(strm, s->hash_size, sizeof(Pos)); 872 1.1 paulus 873 1.1 paulus s->lit_bufsize = 1 << (memLevel + 6); /* 16K elements by default */ 874 1.1 paulus 875 1.7 christos overlay = (ushf *) ZALLOC(strm, s->lit_bufsize, sizeof(ush)+2); 876 1.7 christos s->pending_buf = (uchf *) overlay; 877 1.7 christos s->pending_buf_size = (ulg)s->lit_bufsize * (sizeof(ush)+2L); 878 1.1 paulus 879 1.1 paulus if (s->window == Z_NULL || s->prev == Z_NULL || s->head == Z_NULL || 880 1.1 paulus s->pending_buf == Z_NULL) { 881 1.21 christos strm->msg = ERR_MSG(Z_MEM_ERROR); 882 1.18 tron s->status = INIT_STATE; 883 1.1 paulus deflateEnd (strm); 884 1.1 paulus return Z_MEM_ERROR; 885 1.1 paulus } 886 1.7 christos s->d_buf = overlay + s->lit_bufsize/sizeof(ush); 887 1.7 christos s->l_buf = s->pending_buf + (1+sizeof(ush))*s->lit_bufsize; 888 1.1 paulus 889 1.1 paulus s->level = level; 890 1.1 paulus s->strategy = strategy; 891 1.1 paulus s->method = (Byte)method; 892 1.1 paulus 893 1.1 paulus return deflateReset(strm); 894 1.1 paulus } 895 1.1 paulus 896 1.1 paulus /* ========================================================================= */ 897 1.19 kristerw #if 0 898 1.32 cegger int ZEXPORT deflateSetDictionary (z_streamp strm, 899 1.32 cegger const Bytef *dictionary, 900 1.32 cegger uInt dictLength) 901 1.7 christos { 902 1.7 christos deflate_state *s; 903 1.7 christos uInt length = dictLength; 904 1.7 christos uInt n; 905 1.7 christos IPos hash_head = 0; 906 1.7 christos 907 1.7 christos if (strm == Z_NULL || strm->state == Z_NULL || dictionary == Z_NULL) 908 1.17 fvdl return Z_STREAM_ERROR; 909 1.7 christos 910 1.17 fvdl s = (deflate_state *)strm->state; 911 1.7 christos if (s->status != INIT_STATE) return Z_STREAM_ERROR; 912 1.7 christos 913 1.7 christos strm->adler = adler32(strm->adler, dictionary, dictLength); 914 1.7 christos 915 1.7 christos if (length < MIN_MATCH) return Z_OK; 916 1.7 christos if (length > MAX_DIST(s)) { 917 1.7 christos length = MAX_DIST(s); 918 1.7 christos #ifndef USE_DICT_HEAD 919 1.7 christos dictionary += dictLength - length; /* use the tail of the dictionary */ 920 1.7 christos #endif 921 1.7 christos } 922 1.17 fvdl zmemcpy(s->window, dictionary, length); 923 1.7 christos s->strstart = length; 924 1.7 christos s->block_start = (long)length; 925 1.7 christos 926 1.7 christos /* Insert all strings in the hash table (except for the last two bytes). 927 1.7 christos * s->lookahead stays null, so s->ins_h will be recomputed at the next 928 1.7 christos * call of fill_window. 929 1.7 christos */ 930 1.7 christos s->ins_h = s->window[0]; 931 1.7 christos UPDATE_HASH(s, s->ins_h, s->window[1]); 932 1.7 christos for (n = 0; n <= length - MIN_MATCH; n++) { 933 1.7 christos INSERT_STRING(s, n, hash_head); 934 1.7 christos } 935 1.7 christos if (hash_head) hash_head = 0; /* to make compiler happy */ 936 1.7 christos return Z_OK; 937 1.7 christos } 938 1.19 kristerw #endif 939 1.7 christos 940 1.7 christos /* ========================================================================= */ 941 1.32 cegger int ZEXPORT deflateReset (z_streamp strm) 942 1.1 paulus { 943 1.1 paulus deflate_state *s; 944 1.20 perry 945 1.1 paulus if (strm == Z_NULL || strm->state == Z_NULL || 946 1.7 christos strm->zalloc == Z_NULL || strm->zfree == Z_NULL) return Z_STREAM_ERROR; 947 1.1 paulus 948 1.1 paulus strm->total_in = strm->total_out = 0; 949 1.1 paulus strm->msg = Z_NULL; /* use zfree if we ever allocate msg dynamically */ 950 1.1 paulus strm->data_type = Z_UNKNOWN; 951 1.1 paulus 952 1.1 paulus s = (deflate_state *)strm->state; 953 1.1 paulus s->pending = 0; 954 1.1 paulus s->pending_out = s->pending_buf; 955 1.1 paulus 956 1.1 paulus if (s->noheader < 0) { 957 1.1 paulus s->noheader = 0; /* was set to -1 by deflate(..., Z_FINISH); */ 958 1.1 paulus } 959 1.1 paulus s->status = s->noheader ? BUSY_STATE : INIT_STATE; 960 1.7 christos strm->adler = 1; 961 1.7 christos s->last_flush = Z_NO_FLUSH; 962 1.1 paulus 963 1.7 christos _tr_init(s); 964 1.1 paulus lm_init(s); 965 1.1 paulus 966 1.1 paulus return Z_OK; 967 1.1 paulus } 968 1.1 paulus 969 1.7 christos /* ========================================================================= */ 970 1.19 kristerw #if 0 971 1.17 fvdl int ZEXPORT deflateParams(strm, level, strategy) 972 1.7 christos z_streamp strm; 973 1.7 christos int level; 974 1.7 christos int strategy; 975 1.7 christos { 976 1.7 christos deflate_state *s; 977 1.7 christos compress_func func; 978 1.7 christos int err = Z_OK; 979 1.7 christos 980 1.7 christos if (strm == Z_NULL || strm->state == Z_NULL) return Z_STREAM_ERROR; 981 1.17 fvdl s = (deflate_state *)strm->state; 982 1.7 christos 983 1.7 christos if (level == Z_DEFAULT_COMPRESSION) { 984 1.7 christos level = 6; 985 1.7 christos } 986 1.7 christos if (level < 0 || level > 9 || strategy < 0 || strategy > Z_HUFFMAN_ONLY) { 987 1.7 christos return Z_STREAM_ERROR; 988 1.7 christos } 989 1.7 christos func = configuration_table[s->level].func; 990 1.7 christos 991 1.7 christos if (func != configuration_table[level].func && strm->total_in != 0) { 992 1.7 christos /* Flush the last buffer: */ 993 1.7 christos err = deflate(strm, Z_PARTIAL_FLUSH); 994 1.7 christos } 995 1.7 christos if (s->level != level) { 996 1.7 christos s->level = level; 997 1.7 christos s->max_lazy_match = configuration_table[level].max_lazy; 998 1.7 christos s->good_match = configuration_table[level].good_length; 999 1.7 christos s->nice_match = configuration_table[level].nice_length; 1000 1.7 christos s->max_chain_length = configuration_table[level].max_chain; 1001 1.7 christos } 1002 1.7 christos s->strategy = strategy; 1003 1.7 christos return err; 1004 1.7 christos } 1005 1.19 kristerw #endif 1006 1.7 christos 1007 1.1 paulus /* ========================================================================= 1008 1.1 paulus * Put a short in the pending buffer. The 16-bit value is put in MSB order. 1009 1.1 paulus * IN assertion: the stream state is correct and there is enough room in 1010 1.1 paulus * pending_buf. 1011 1.1 paulus */ 1012 1.32 cegger local void putShortMSB (deflate_state *s, uInt b) 1013 1.1 paulus { 1014 1.1 paulus put_byte(s, (Byte)(b >> 8)); 1015 1.1 paulus put_byte(s, (Byte)(b & 0xff)); 1016 1.20 perry } 1017 1.1 paulus 1018 1.1 paulus /* ========================================================================= 1019 1.7 christos * Flush as much pending output as possible. All deflate() output goes 1020 1.7 christos * through this function so some applications may wish to modify it 1021 1.7 christos * to avoid allocating a large strm->next_out buffer and copying into it. 1022 1.7 christos * (See also read_buf()). 1023 1.1 paulus */ 1024 1.32 cegger local void flush_pending(z_streamp strm) 1025 1.1 paulus { 1026 1.7 christos deflate_state *s = (deflate_state *) strm->state; 1027 1.7 christos unsigned len = s->pending; 1028 1.1 paulus 1029 1.1 paulus if (len > strm->avail_out) len = strm->avail_out; 1030 1.1 paulus if (len == 0) return; 1031 1.1 paulus 1032 1.7 christos if (strm->next_out != Z_NULL) { 1033 1.17 fvdl zmemcpy(strm->next_out, s->pending_out, len); 1034 1.17 fvdl strm->next_out += len; 1035 1.1 paulus } 1036 1.17 fvdl s->pending_out += len; 1037 1.1 paulus strm->total_out += len; 1038 1.7 christos strm->avail_out -= len; 1039 1.7 christos s->pending -= len; 1040 1.7 christos if (s->pending == 0) { 1041 1.7 christos s->pending_out = s->pending_buf; 1042 1.1 paulus } 1043 1.1 paulus } 1044 1.1 paulus 1045 1.1 paulus /* ========================================================================= */ 1046 1.32 cegger int ZEXPORT deflate (z_streamp strm, int flush) 1047 1.1 paulus { 1048 1.7 christos int old_flush; /* value of flush param for previous deflate call */ 1049 1.7 christos deflate_state *s; 1050 1.7 christos 1051 1.7 christos if (strm == Z_NULL || strm->state == Z_NULL || 1052 1.7 christos flush > Z_FINISH || flush < 0) { 1053 1.7 christos return Z_STREAM_ERROR; 1054 1.7 christos } 1055 1.17 fvdl s = (deflate_state *)strm->state; 1056 1.1 paulus 1057 1.7 christos if ((strm->next_in == Z_NULL && strm->avail_in != 0) || 1058 1.7 christos (s->status == FINISH_STATE && flush != Z_FINISH)) { 1059 1.1 paulus ERR_RETURN(strm, Z_STREAM_ERROR); 1060 1.1 paulus } 1061 1.1 paulus if (strm->avail_out == 0) ERR_RETURN(strm, Z_BUF_ERROR); 1062 1.1 paulus 1063 1.7 christos s->strm = strm; /* just in case */ 1064 1.7 christos old_flush = s->last_flush; 1065 1.7 christos s->last_flush = flush; 1066 1.1 paulus 1067 1.1 paulus /* Write the zlib header */ 1068 1.7 christos if (s->status == INIT_STATE) { 1069 1.1 paulus 1070 1.7 christos uInt header = (Z_DEFLATED + ((s->w_bits-8)<<4)) << 8; 1071 1.7 christos uInt level_flags = (s->level-1) >> 1; 1072 1.1 paulus 1073 1.1 paulus if (level_flags > 3) level_flags = 3; 1074 1.1 paulus header |= (level_flags << 6); 1075 1.7 christos if (s->strstart != 0) header |= PRESET_DICT; 1076 1.1 paulus header += 31 - (header % 31); 1077 1.1 paulus 1078 1.7 christos s->status = BUSY_STATE; 1079 1.7 christos putShortMSB(s, header); 1080 1.7 christos 1081 1.7 christos /* Save the adler32 of the preset dictionary: */ 1082 1.7 christos if (s->strstart != 0) { 1083 1.7 christos putShortMSB(s, (uInt)(strm->adler >> 16)); 1084 1.7 christos putShortMSB(s, (uInt)(strm->adler & 0xffff)); 1085 1.7 christos } 1086 1.7 christos strm->adler = 1L; 1087 1.1 paulus } 1088 1.1 paulus 1089 1.1 paulus /* Flush as much pending output as possible */ 1090 1.7 christos if (s->pending != 0) { 1091 1.1 paulus flush_pending(strm); 1092 1.7 christos if (strm->avail_out == 0) { 1093 1.7 christos /* Since avail_out is 0, deflate will be called again with 1094 1.7 christos * more output space, but possibly with both pending and 1095 1.7 christos * avail_in equal to zero. There won't be anything to do, 1096 1.7 christos * but this is not an error situation so make sure we 1097 1.7 christos * return OK instead of BUF_ERROR at next call of deflate: 1098 1.7 christos */ 1099 1.7 christos s->last_flush = -1; 1100 1.7 christos return Z_OK; 1101 1.7 christos } 1102 1.1 paulus 1103 1.7 christos /* Make sure there is something to do and avoid duplicate consecutive 1104 1.7 christos * flushes. For repeated and useless calls with Z_FINISH, we keep 1105 1.7 christos * returning Z_STREAM_END instead of Z_BUFF_ERROR. 1106 1.1 paulus */ 1107 1.7 christos } else if (strm->avail_in == 0 && flush <= old_flush && 1108 1.7 christos flush != Z_FINISH) { 1109 1.7 christos ERR_RETURN(strm, Z_BUF_ERROR); 1110 1.1 paulus } 1111 1.1 paulus 1112 1.1 paulus /* User must not provide more input after the first FINISH: */ 1113 1.7 christos if (s->status == FINISH_STATE && strm->avail_in != 0) { 1114 1.1 paulus ERR_RETURN(strm, Z_BUF_ERROR); 1115 1.1 paulus } 1116 1.1 paulus 1117 1.1 paulus /* Start a new block or continue the current one. 1118 1.1 paulus */ 1119 1.7 christos if (strm->avail_in != 0 || s->lookahead != 0 || 1120 1.7 christos (flush != Z_NO_FLUSH && s->status != FINISH_STATE)) { 1121 1.7 christos block_state bstate; 1122 1.1 paulus 1123 1.7 christos bstate = (*(configuration_table[s->level].func))(s, flush); 1124 1.7 christos 1125 1.7 christos if (bstate == finish_started || bstate == finish_done) { 1126 1.7 christos s->status = FINISH_STATE; 1127 1.1 paulus } 1128 1.7 christos if (bstate == need_more || bstate == finish_started) { 1129 1.7 christos if (strm->avail_out == 0) { 1130 1.7 christos s->last_flush = -1; /* avoid BUF_ERROR next call, see above */ 1131 1.7 christos } 1132 1.1 paulus return Z_OK; 1133 1.7 christos /* If flush != Z_NO_FLUSH && avail_out == 0, the next call 1134 1.7 christos * of deflate should use the same flush parameter to make sure 1135 1.7 christos * that the flush is complete. So we don't have to output an 1136 1.7 christos * empty block here, this will be done at next call. This also 1137 1.7 christos * ensures that for a very small output buffer, we emit at most 1138 1.7 christos * one empty block. 1139 1.1 paulus */ 1140 1.7 christos } 1141 1.7 christos if (bstate == block_done) { 1142 1.7 christos if (flush == Z_PARTIAL_FLUSH) { 1143 1.7 christos _tr_align(s); 1144 1.7 christos } else if (flush == Z_PACKET_FLUSH) { 1145 1.7 christos /* Output just the 3-bit `stored' block type value, 1146 1.7 christos but not a zero length. */ 1147 1.7 christos _tr_stored_type_only(s); 1148 1.7 christos } else { /* FULL_FLUSH or SYNC_FLUSH */ 1149 1.7 christos _tr_stored_block(s, (char*)0, 0L, 0); 1150 1.7 christos /* For a full flush, this empty block will be recognized 1151 1.7 christos * as a special marker by inflate_sync(). 1152 1.7 christos */ 1153 1.7 christos if (flush == Z_FULL_FLUSH) { 1154 1.7 christos CLEAR_HASH(s); /* forget history */ 1155 1.7 christos } 1156 1.7 christos } 1157 1.7 christos flush_pending(strm); 1158 1.7 christos if (strm->avail_out == 0) { 1159 1.7 christos s->last_flush = -1; /* avoid BUF_ERROR at next call, see above */ 1160 1.7 christos return Z_OK; 1161 1.1 paulus } 1162 1.7 christos } 1163 1.1 paulus } 1164 1.1 paulus Assert(strm->avail_out > 0, "bug2"); 1165 1.1 paulus 1166 1.1 paulus if (flush != Z_FINISH) return Z_OK; 1167 1.7 christos if (s->noheader) return Z_STREAM_END; 1168 1.1 paulus 1169 1.1 paulus /* Write the zlib trailer (adler32) */ 1170 1.7 christos putShortMSB(s, (uInt)(strm->adler >> 16)); 1171 1.7 christos putShortMSB(s, (uInt)(strm->adler & 0xffff)); 1172 1.1 paulus flush_pending(strm); 1173 1.1 paulus /* If avail_out is zero, the application will call deflate again 1174 1.1 paulus * to flush the rest. 1175 1.1 paulus */ 1176 1.7 christos s->noheader = -1; /* write the trailer only once! */ 1177 1.7 christos return s->pending != 0 ? Z_OK : Z_STREAM_END; 1178 1.1 paulus } 1179 1.1 paulus 1180 1.1 paulus /* ========================================================================= */ 1181 1.32 cegger int ZEXPORT deflateEnd (z_streamp strm) 1182 1.1 paulus { 1183 1.7 christos int status; 1184 1.7 christos deflate_state *s; 1185 1.1 paulus 1186 1.7 christos if (strm == Z_NULL || strm->state == Z_NULL) return Z_STREAM_ERROR; 1187 1.7 christos s = (deflate_state *) strm->state; 1188 1.1 paulus 1189 1.7 christos status = s->status; 1190 1.7 christos if (status != INIT_STATE && status != BUSY_STATE && 1191 1.7 christos status != FINISH_STATE) { 1192 1.7 christos return Z_STREAM_ERROR; 1193 1.7 christos } 1194 1.1 paulus 1195 1.7 christos /* Deallocate in reverse order of allocations: */ 1196 1.7 christos TRY_FREE(strm, s->pending_buf); 1197 1.7 christos TRY_FREE(strm, s->head); 1198 1.7 christos TRY_FREE(strm, s->prev); 1199 1.7 christos TRY_FREE(strm, s->window); 1200 1.7 christos 1201 1.7 christos ZFREE(strm, s); 1202 1.1 paulus strm->state = Z_NULL; 1203 1.1 paulus 1204 1.7 christos return status == BUSY_STATE ? Z_DATA_ERROR : Z_OK; 1205 1.7 christos } 1206 1.7 christos 1207 1.7 christos /* ========================================================================= 1208 1.7 christos * Copy the source state to the destination state. 1209 1.17 fvdl * To simplify the source, this is not supported for 16-bit MSDOS (which 1210 1.17 fvdl * doesn't have enough memory anyway to duplicate compression states). 1211 1.7 christos */ 1212 1.19 kristerw #if 0 1213 1.32 cegger int ZEXPORT deflateCopy (z_streamp dest, z_streamp source) 1214 1.7 christos { 1215 1.17 fvdl #ifdef MAXSEG_64K 1216 1.17 fvdl return Z_STREAM_ERROR; 1217 1.17 fvdl #else 1218 1.7 christos deflate_state *ds; 1219 1.7 christos deflate_state *ss; 1220 1.7 christos ushf *overlay; 1221 1.7 christos 1222 1.17 fvdl 1223 1.17 fvdl if (source == Z_NULL || dest == Z_NULL || source->state == Z_NULL) { 1224 1.7 christos return Z_STREAM_ERROR; 1225 1.17 fvdl } 1226 1.7 christos 1227 1.17 fvdl ss = (deflate_state *)source->state; 1228 1.17 fvdl 1229 1.17 fvdl *dest = *source; 1230 1.7 christos 1231 1.7 christos ds = (deflate_state *) ZALLOC(dest, 1, sizeof(deflate_state)); 1232 1.7 christos if (ds == Z_NULL) return Z_MEM_ERROR; 1233 1.17 fvdl dest->state = (void *) ds; 1234 1.17 fvdl *ds = *ss; 1235 1.7 christos ds->strm = dest; 1236 1.7 christos 1237 1.7 christos ds->window = (Bytef *) ZALLOC(dest, ds->w_size, 2*sizeof(Byte)); 1238 1.7 christos ds->prev = (Posf *) ZALLOC(dest, ds->w_size, sizeof(Pos)); 1239 1.7 christos ds->head = (Posf *) ZALLOC(dest, ds->hash_size, sizeof(Pos)); 1240 1.7 christos overlay = (ushf *) ZALLOC(dest, ds->lit_bufsize, sizeof(ush)+2); 1241 1.7 christos ds->pending_buf = (uchf *) overlay; 1242 1.7 christos 1243 1.7 christos if (ds->window == Z_NULL || ds->prev == Z_NULL || ds->head == Z_NULL || 1244 1.7 christos ds->pending_buf == Z_NULL) { 1245 1.18 tron ds->status = INIT_STATE; 1246 1.7 christos deflateEnd (dest); 1247 1.7 christos return Z_MEM_ERROR; 1248 1.7 christos } 1249 1.17 fvdl /* following zmemcpy do not work for 16-bit MSDOS */ 1250 1.7 christos zmemcpy(ds->window, ss->window, ds->w_size * 2 * sizeof(Byte)); 1251 1.7 christos zmemcpy(ds->prev, ss->prev, ds->w_size * sizeof(Pos)); 1252 1.7 christos zmemcpy(ds->head, ss->head, ds->hash_size * sizeof(Pos)); 1253 1.7 christos zmemcpy(ds->pending_buf, ss->pending_buf, (uInt)ds->pending_buf_size); 1254 1.7 christos 1255 1.7 christos ds->pending_out = ds->pending_buf + (ss->pending_out - ss->pending_buf); 1256 1.7 christos ds->d_buf = overlay + ds->lit_bufsize/sizeof(ush); 1257 1.7 christos ds->l_buf = ds->pending_buf + (1+sizeof(ush))*ds->lit_bufsize; 1258 1.7 christos 1259 1.7 christos ds->l_desc.dyn_tree = ds->dyn_ltree; 1260 1.7 christos ds->d_desc.dyn_tree = ds->dyn_dtree; 1261 1.7 christos ds->bl_desc.dyn_tree = ds->bl_tree; 1262 1.7 christos 1263 1.1 paulus return Z_OK; 1264 1.17 fvdl #endif 1265 1.1 paulus } 1266 1.19 kristerw #endif 1267 1.1 paulus 1268 1.1 paulus /* =========================================================================== 1269 1.7 christos * Return the number of bytes of output which are immediately available 1270 1.7 christos * for output from the decompressor. 1271 1.7 christos */ 1272 1.19 kristerw #if 0 1273 1.32 cegger int deflateOutputPending (z_streamp strm) 1274 1.7 christos { 1275 1.7 christos if (strm == Z_NULL || strm->state == Z_NULL) return 0; 1276 1.20 perry 1277 1.7 christos return ((deflate_state *)(strm->state))->pending; 1278 1.7 christos } 1279 1.19 kristerw #endif 1280 1.7 christos 1281 1.7 christos /* =========================================================================== 1282 1.1 paulus * Read a new buffer from the current input stream, update the adler32 1283 1.7 christos * and total number of bytes read. All deflate() input goes through 1284 1.7 christos * this function so some applications may wish to modify it to avoid 1285 1.7 christos * allocating a large strm->next_in buffer and copying from it. 1286 1.7 christos * (See also flush_pending()). 1287 1.1 paulus */ 1288 1.32 cegger local int read_buf(z_streamp strm, 1289 1.32 cegger Bytef *buf, 1290 1.32 cegger unsigned size) 1291 1.1 paulus { 1292 1.1 paulus unsigned len = strm->avail_in; 1293 1.1 paulus 1294 1.1 paulus if (len > size) len = size; 1295 1.1 paulus if (len == 0) return 0; 1296 1.1 paulus 1297 1.1 paulus strm->avail_in -= len; 1298 1.1 paulus 1299 1.7 christos if (!((deflate_state *)(strm->state))->noheader) { 1300 1.7 christos strm->adler = adler32(strm->adler, strm->next_in, len); 1301 1.1 paulus } 1302 1.1 paulus zmemcpy(buf, strm->next_in, len); 1303 1.1 paulus strm->next_in += len; 1304 1.1 paulus strm->total_in += len; 1305 1.1 paulus 1306 1.1 paulus return (int)len; 1307 1.1 paulus } 1308 1.1 paulus 1309 1.1 paulus /* =========================================================================== 1310 1.1 paulus * Initialize the "longest match" routines for a new zlib stream 1311 1.1 paulus */ 1312 1.32 cegger local void lm_init (deflate_state *s) 1313 1.1 paulus { 1314 1.1 paulus s->window_size = (ulg)2L*s->w_size; 1315 1.1 paulus 1316 1.1 paulus CLEAR_HASH(s); 1317 1.1 paulus 1318 1.1 paulus /* Set the default configuration parameters: 1319 1.1 paulus */ 1320 1.1 paulus s->max_lazy_match = configuration_table[s->level].max_lazy; 1321 1.1 paulus s->good_match = configuration_table[s->level].good_length; 1322 1.1 paulus s->nice_match = configuration_table[s->level].nice_length; 1323 1.1 paulus s->max_chain_length = configuration_table[s->level].max_chain; 1324 1.1 paulus 1325 1.1 paulus s->strstart = 0; 1326 1.1 paulus s->block_start = 0L; 1327 1.1 paulus s->lookahead = 0; 1328 1.7 christos s->match_length = s->prev_length = MIN_MATCH-1; 1329 1.1 paulus s->match_available = 0; 1330 1.1 paulus s->ins_h = 0; 1331 1.1 paulus #ifdef ASMV 1332 1.1 paulus match_init(); /* initialize the asm code */ 1333 1.1 paulus #endif 1334 1.1 paulus } 1335 1.1 paulus 1336 1.1 paulus /* =========================================================================== 1337 1.1 paulus * Set match_start to the longest match starting at the given string and 1338 1.1 paulus * return its length. Matches shorter or equal to prev_length are discarded, 1339 1.1 paulus * in which case the result is equal to prev_length and match_start is 1340 1.1 paulus * garbage. 1341 1.1 paulus * IN assertions: cur_match is the head of the hash chain for the current 1342 1.1 paulus * string (strstart) and its distance is <= MAX_DIST, and prev_length >= 1 1343 1.7 christos * OUT assertion: the match length is not greater than s->lookahead. 1344 1.1 paulus */ 1345 1.1 paulus #ifndef ASMV 1346 1.1 paulus /* For 80x86 and 680x0, an optimized version will be provided in match.asm or 1347 1.1 paulus * match.S. The code will be functionally equivalent. 1348 1.1 paulus */ 1349 1.17 fvdl #ifndef FASTEST 1350 1.32 cegger local uInt longest_match(deflate_state *s, 1351 1.32 cegger IPos cur_match) /* current match */ 1352 1.1 paulus { 1353 1.1 paulus unsigned chain_length = s->max_chain_length;/* max hash chain length */ 1354 1.17 fvdl Bytef *scan = s->window + s->strstart; /* current string */ 1355 1.17 fvdl Bytef *match; /* matched string */ 1356 1.17 fvdl int len; /* length of current match */ 1357 1.1 paulus int best_len = s->prev_length; /* best match length so far */ 1358 1.7 christos int nice_match = s->nice_match; /* stop if match long enough */ 1359 1.1 paulus IPos limit = s->strstart > (IPos)MAX_DIST(s) ? 1360 1.1 paulus s->strstart - (IPos)MAX_DIST(s) : NIL; 1361 1.1 paulus /* Stop when cur_match becomes <= limit. To simplify the code, 1362 1.1 paulus * we prevent matches with the string of window index 0. 1363 1.1 paulus */ 1364 1.1 paulus Posf *prev = s->prev; 1365 1.1 paulus uInt wmask = s->w_mask; 1366 1.1 paulus 1367 1.1 paulus #ifdef UNALIGNED_OK 1368 1.1 paulus /* Compare two bytes at a time. Note: this is not always beneficial. 1369 1.1 paulus * Try with and without -DUNALIGNED_OK to check. 1370 1.1 paulus */ 1371 1.10 augustss Bytef *strend = s->window + s->strstart + MAX_MATCH - 1; 1372 1.10 augustss ush scan_start = *(ushf*)scan; 1373 1.10 augustss ush scan_end = *(ushf*)(scan+best_len-1); 1374 1.1 paulus #else 1375 1.10 augustss Bytef *strend = s->window + s->strstart + MAX_MATCH; 1376 1.10 augustss Byte scan_end1 = scan[best_len-1]; 1377 1.10 augustss Byte scan_end = scan[best_len]; 1378 1.1 paulus #endif 1379 1.1 paulus 1380 1.1 paulus /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16. 1381 1.1 paulus * It is easy to get rid of this optimization if necessary. 1382 1.1 paulus */ 1383 1.1 paulus Assert(s->hash_bits >= 8 && MAX_MATCH == 258, "Code too clever"); 1384 1.1 paulus 1385 1.1 paulus /* Do not waste too much time if we already have a good match: */ 1386 1.1 paulus if (s->prev_length >= s->good_match) { 1387 1.1 paulus chain_length >>= 2; 1388 1.1 paulus } 1389 1.7 christos /* Do not look for matches beyond the end of the input. This is necessary 1390 1.7 christos * to make deflate deterministic. 1391 1.7 christos */ 1392 1.7 christos if ((uInt)nice_match > s->lookahead) nice_match = s->lookahead; 1393 1.7 christos 1394 1.1 paulus Assert((ulg)s->strstart <= s->window_size-MIN_LOOKAHEAD, "need lookahead"); 1395 1.1 paulus 1396 1.1 paulus do { 1397 1.1 paulus Assert(cur_match < s->strstart, "no future"); 1398 1.1 paulus match = s->window + cur_match; 1399 1.1 paulus 1400 1.1 paulus /* Skip to next match if the match length cannot increase 1401 1.1 paulus * or if the match length is less than 2: 1402 1.1 paulus */ 1403 1.1 paulus #if (defined(UNALIGNED_OK) && MAX_MATCH == 258) 1404 1.1 paulus /* This code assumes sizeof(unsigned short) == 2. Do not use 1405 1.1 paulus * UNALIGNED_OK if your compiler uses a different size. 1406 1.1 paulus */ 1407 1.1 paulus if (*(ushf*)(match+best_len-1) != scan_end || 1408 1.1 paulus *(ushf*)match != scan_start) continue; 1409 1.1 paulus 1410 1.1 paulus /* It is not necessary to compare scan[2] and match[2] since they are 1411 1.1 paulus * always equal when the other bytes match, given that the hash keys 1412 1.1 paulus * are equal and that HASH_BITS >= 8. Compare 2 bytes at a time at 1413 1.1 paulus * strstart+3, +5, ... up to strstart+257. We check for insufficient 1414 1.1 paulus * lookahead only every 4th comparison; the 128th check will be made 1415 1.1 paulus * at strstart+257. If MAX_MATCH-2 is not a multiple of 8, it is 1416 1.1 paulus * necessary to put more guard bytes at the end of the window, or 1417 1.1 paulus * to check more often for insufficient lookahead. 1418 1.1 paulus */ 1419 1.1 paulus Assert(scan[2] == match[2], "scan[2]?"); 1420 1.1 paulus scan++, match++; 1421 1.1 paulus do { 1422 1.1 paulus } while (*(ushf*)(scan+=2) == *(ushf*)(match+=2) && 1423 1.1 paulus *(ushf*)(scan+=2) == *(ushf*)(match+=2) && 1424 1.1 paulus *(ushf*)(scan+=2) == *(ushf*)(match+=2) && 1425 1.1 paulus *(ushf*)(scan+=2) == *(ushf*)(match+=2) && 1426 1.1 paulus scan < strend); 1427 1.1 paulus /* The funny "do {}" generates better code on most compilers */ 1428 1.1 paulus 1429 1.1 paulus /* Here, scan <= window+strstart+257 */ 1430 1.1 paulus Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan"); 1431 1.1 paulus if (*scan == *match) scan++; 1432 1.1 paulus 1433 1.1 paulus len = (MAX_MATCH - 1) - (int)(strend-scan); 1434 1.1 paulus scan = strend - (MAX_MATCH-1); 1435 1.1 paulus 1436 1.1 paulus #else /* UNALIGNED_OK */ 1437 1.1 paulus 1438 1.1 paulus if (match[best_len] != scan_end || 1439 1.1 paulus match[best_len-1] != scan_end1 || 1440 1.1 paulus *match != *scan || 1441 1.1 paulus *++match != scan[1]) continue; 1442 1.1 paulus 1443 1.1 paulus /* The check at best_len-1 can be removed because it will be made 1444 1.1 paulus * again later. (This heuristic is not always a win.) 1445 1.1 paulus * It is not necessary to compare scan[2] and match[2] since they 1446 1.1 paulus * are always equal when the other bytes match, given that 1447 1.1 paulus * the hash keys are equal and that HASH_BITS >= 8. 1448 1.1 paulus */ 1449 1.1 paulus scan += 2, match++; 1450 1.1 paulus Assert(*scan == *match, "match[2]?"); 1451 1.1 paulus 1452 1.1 paulus /* We check for insufficient lookahead only every 8th comparison; 1453 1.1 paulus * the 256th check will be made at strstart+258. 1454 1.1 paulus */ 1455 1.1 paulus do { 1456 1.1 paulus } while (*++scan == *++match && *++scan == *++match && 1457 1.1 paulus *++scan == *++match && *++scan == *++match && 1458 1.1 paulus *++scan == *++match && *++scan == *++match && 1459 1.1 paulus *++scan == *++match && *++scan == *++match && 1460 1.1 paulus scan < strend); 1461 1.1 paulus 1462 1.1 paulus Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan"); 1463 1.1 paulus 1464 1.1 paulus len = MAX_MATCH - (int)(strend - scan); 1465 1.1 paulus scan = strend - MAX_MATCH; 1466 1.1 paulus 1467 1.1 paulus #endif /* UNALIGNED_OK */ 1468 1.1 paulus 1469 1.1 paulus if (len > best_len) { 1470 1.1 paulus s->match_start = cur_match; 1471 1.1 paulus best_len = len; 1472 1.7 christos if (len >= nice_match) break; 1473 1.1 paulus #ifdef UNALIGNED_OK 1474 1.1 paulus scan_end = *(ushf*)(scan+best_len-1); 1475 1.1 paulus #else 1476 1.1 paulus scan_end1 = scan[best_len-1]; 1477 1.1 paulus scan_end = scan[best_len]; 1478 1.1 paulus #endif 1479 1.1 paulus } 1480 1.1 paulus } while ((cur_match = prev[cur_match & wmask]) > limit 1481 1.1 paulus && --chain_length != 0); 1482 1.1 paulus 1483 1.17 fvdl if ((uInt)best_len <= s->lookahead) return (uInt)best_len; 1484 1.7 christos return s->lookahead; 1485 1.1 paulus } 1486 1.17 fvdl 1487 1.17 fvdl #else /* FASTEST */ 1488 1.17 fvdl /* --------------------------------------------------------------------------- 1489 1.17 fvdl * Optimized version for level == 1 only 1490 1.17 fvdl */ 1491 1.17 fvdl local uInt longest_match(s, cur_match) 1492 1.17 fvdl deflate_state *s; 1493 1.17 fvdl IPos cur_match; /* current match */ 1494 1.17 fvdl { 1495 1.17 fvdl register Bytef *scan = s->window + s->strstart; /* current string */ 1496 1.17 fvdl register Bytef *match; /* matched string */ 1497 1.17 fvdl register int len; /* length of current match */ 1498 1.17 fvdl register Bytef *strend = s->window + s->strstart + MAX_MATCH; 1499 1.17 fvdl 1500 1.17 fvdl /* The code is optimized for HASH_BITS >= 8 and MAX_MATCH-2 multiple of 16. 1501 1.17 fvdl * It is easy to get rid of this optimization if necessary. 1502 1.17 fvdl */ 1503 1.17 fvdl Assert(s->hash_bits >= 8 && MAX_MATCH == 258, "Code too clever"); 1504 1.17 fvdl 1505 1.17 fvdl Assert((ulg)s->strstart <= s->window_size-MIN_LOOKAHEAD, "need lookahead"); 1506 1.17 fvdl 1507 1.17 fvdl Assert(cur_match < s->strstart, "no future"); 1508 1.17 fvdl 1509 1.17 fvdl match = s->window + cur_match; 1510 1.17 fvdl 1511 1.17 fvdl /* Return failure if the match length is less than 2: 1512 1.17 fvdl */ 1513 1.17 fvdl if (match[0] != scan[0] || match[1] != scan[1]) return MIN_MATCH-1; 1514 1.17 fvdl 1515 1.17 fvdl /* The check at best_len-1 can be removed because it will be made 1516 1.17 fvdl * again later. (This heuristic is not always a win.) 1517 1.17 fvdl * It is not necessary to compare scan[2] and match[2] since they 1518 1.17 fvdl * are always equal when the other bytes match, given that 1519 1.17 fvdl * the hash keys are equal and that HASH_BITS >= 8. 1520 1.17 fvdl */ 1521 1.17 fvdl scan += 2, match += 2; 1522 1.17 fvdl Assert(*scan == *match, "match[2]?"); 1523 1.17 fvdl 1524 1.17 fvdl /* We check for insufficient lookahead only every 8th comparison; 1525 1.17 fvdl * the 256th check will be made at strstart+258. 1526 1.17 fvdl */ 1527 1.17 fvdl do { 1528 1.17 fvdl } while (*++scan == *++match && *++scan == *++match && 1529 1.17 fvdl *++scan == *++match && *++scan == *++match && 1530 1.17 fvdl *++scan == *++match && *++scan == *++match && 1531 1.17 fvdl *++scan == *++match && *++scan == *++match && 1532 1.17 fvdl scan < strend); 1533 1.17 fvdl 1534 1.17 fvdl Assert(scan <= s->window+(unsigned)(s->window_size-1), "wild scan"); 1535 1.17 fvdl 1536 1.17 fvdl len = MAX_MATCH - (int)(strend - scan); 1537 1.17 fvdl 1538 1.17 fvdl if (len < MIN_MATCH) return MIN_MATCH - 1; 1539 1.17 fvdl 1540 1.17 fvdl s->match_start = cur_match; 1541 1.17 fvdl return len <= s->lookahead ? len : s->lookahead; 1542 1.17 fvdl } 1543 1.17 fvdl #endif /* FASTEST */ 1544 1.1 paulus #endif /* ASMV */ 1545 1.1 paulus 1546 1.1 paulus #ifdef DEBUG_ZLIB 1547 1.1 paulus /* =========================================================================== 1548 1.1 paulus * Check that the match at match_start is indeed a match. 1549 1.1 paulus */ 1550 1.1 paulus local void check_match(s, start, match, length) 1551 1.1 paulus deflate_state *s; 1552 1.1 paulus IPos start, match; 1553 1.1 paulus int length; 1554 1.1 paulus { 1555 1.1 paulus /* check that the match is indeed a match */ 1556 1.17 fvdl if (zmemcmp(s->window + match, 1557 1.17 fvdl s->window + start, length) != EQUAL) { 1558 1.7 christos fprintf(stderr, " start %u, match %u, length %d\n", 1559 1.7 christos start, match, length); 1560 1.7 christos do { 1561 1.7 christos fprintf(stderr, "%c%c", s->window[match++], s->window[start++]); 1562 1.7 christos } while (--length != 0); 1563 1.1 paulus z_error("invalid match"); 1564 1.1 paulus } 1565 1.7 christos if (z_verbose > 1) { 1566 1.1 paulus fprintf(stderr,"\\[%d,%d]", start-match, length); 1567 1.1 paulus do { putc(s->window[start++], stderr); } while (--length != 0); 1568 1.1 paulus } 1569 1.1 paulus } 1570 1.1 paulus #else 1571 1.1 paulus # define check_match(s, start, match, length) 1572 1.1 paulus #endif 1573 1.1 paulus 1574 1.1 paulus /* =========================================================================== 1575 1.1 paulus * Fill the window when the lookahead becomes insufficient. 1576 1.1 paulus * Updates strstart and lookahead. 1577 1.1 paulus * 1578 1.1 paulus * IN assertion: lookahead < MIN_LOOKAHEAD 1579 1.1 paulus * OUT assertions: strstart <= window_size-MIN_LOOKAHEAD 1580 1.1 paulus * At least one byte has been read, or avail_in == 0; reads are 1581 1.1 paulus * performed for at least two bytes (required for the zip translate_eol 1582 1.1 paulus * option -- not supported here). 1583 1.1 paulus */ 1584 1.32 cegger local void fill_window(deflate_state *s) 1585 1.1 paulus { 1586 1.10 augustss unsigned n, m; 1587 1.10 augustss Posf *p; 1588 1.1 paulus unsigned more; /* Amount of free space at the end of the window. */ 1589 1.1 paulus uInt wsize = s->w_size; 1590 1.1 paulus 1591 1.1 paulus do { 1592 1.1 paulus more = (unsigned)(s->window_size -(ulg)s->lookahead -(ulg)s->strstart); 1593 1.1 paulus 1594 1.1 paulus /* Deal with !@#$% 64K limit: */ 1595 1.1 paulus if (more == 0 && s->strstart == 0 && s->lookahead == 0) { 1596 1.1 paulus more = wsize; 1597 1.7 christos 1598 1.1 paulus } else if (more == (unsigned)(-1)) { 1599 1.1 paulus /* Very unlikely, but possible on 16 bit machine if strstart == 0 1600 1.1 paulus * and lookahead == 1 (input done one byte at time) 1601 1.1 paulus */ 1602 1.1 paulus more--; 1603 1.1 paulus 1604 1.1 paulus /* If the window is almost full and there is insufficient lookahead, 1605 1.1 paulus * move the upper half to the lower one to make room in the upper half. 1606 1.1 paulus */ 1607 1.1 paulus } else if (s->strstart >= wsize+MAX_DIST(s)) { 1608 1.1 paulus 1609 1.17 fvdl zmemcpy(s->window, s->window+wsize, (unsigned)wsize); 1610 1.1 paulus s->match_start -= wsize; 1611 1.1 paulus s->strstart -= wsize; /* we now have strstart >= MAX_DIST */ 1612 1.1 paulus s->block_start -= (long) wsize; 1613 1.1 paulus 1614 1.1 paulus /* Slide the hash table (could be avoided with 32 bit values 1615 1.7 christos at the expense of memory usage). We slide even when level == 0 1616 1.7 christos to keep the hash table consistent if we switch back to level > 0 1617 1.7 christos later. (Using level 0 permanently is not an optimal usage of 1618 1.7 christos zlib, so we don't care about this pathological case.) 1619 1.1 paulus */ 1620 1.17 fvdl n = s->hash_size; 1621 1.17 fvdl p = &s->head[n]; 1622 1.17 fvdl do { 1623 1.17 fvdl m = *--p; 1624 1.17 fvdl *p = (Pos)(m >= wsize ? m-wsize : NIL); 1625 1.17 fvdl } while (--n); 1626 1.17 fvdl 1627 1.17 fvdl n = wsize; 1628 1.17 fvdl #ifndef FASTEST 1629 1.17 fvdl p = &s->prev[n]; 1630 1.17 fvdl do { 1631 1.17 fvdl m = *--p; 1632 1.17 fvdl *p = (Pos)(m >= wsize ? m-wsize : NIL); 1633 1.17 fvdl /* If n is not on any hash chain, prev[n] is garbage but 1634 1.17 fvdl * its value will never be used. 1635 1.17 fvdl */ 1636 1.17 fvdl } while (--n); 1637 1.17 fvdl #endif 1638 1.1 paulus more += wsize; 1639 1.1 paulus } 1640 1.1 paulus if (s->strm->avail_in == 0) return; 1641 1.1 paulus 1642 1.1 paulus /* If there was no sliding: 1643 1.1 paulus * strstart <= WSIZE+MAX_DIST-1 && lookahead <= MIN_LOOKAHEAD - 1 && 1644 1.1 paulus * more == window_size - lookahead - strstart 1645 1.1 paulus * => more >= window_size - (MIN_LOOKAHEAD-1 + WSIZE + MAX_DIST-1) 1646 1.1 paulus * => more >= window_size - 2*WSIZE + 2 1647 1.1 paulus * In the BIG_MEM or MMAP case (not yet supported), 1648 1.1 paulus * window_size == input_size + MIN_LOOKAHEAD && 1649 1.1 paulus * strstart + s->lookahead <= input_size => more >= MIN_LOOKAHEAD. 1650 1.1 paulus * Otherwise, window_size == 2*WSIZE so more >= 2. 1651 1.1 paulus * If there was sliding, more >= WSIZE. So in all cases, more >= 2. 1652 1.1 paulus */ 1653 1.1 paulus Assert(more >= 2, "more < 2"); 1654 1.1 paulus 1655 1.17 fvdl n = read_buf(s->strm, s->window + s->strstart + s->lookahead, more); 1656 1.1 paulus s->lookahead += n; 1657 1.1 paulus 1658 1.1 paulus /* Initialize the hash value now that we have some input: */ 1659 1.1 paulus if (s->lookahead >= MIN_MATCH) { 1660 1.1 paulus s->ins_h = s->window[s->strstart]; 1661 1.1 paulus UPDATE_HASH(s, s->ins_h, s->window[s->strstart+1]); 1662 1.1 paulus #if MIN_MATCH != 3 1663 1.1 paulus Call UPDATE_HASH() MIN_MATCH-3 more times 1664 1.1 paulus #endif 1665 1.1 paulus } 1666 1.1 paulus /* If the whole input has less than MIN_MATCH bytes, ins_h is garbage, 1667 1.1 paulus * but this is not important since only literal bytes will be emitted. 1668 1.1 paulus */ 1669 1.1 paulus 1670 1.1 paulus } while (s->lookahead < MIN_LOOKAHEAD && s->strm->avail_in != 0); 1671 1.1 paulus } 1672 1.1 paulus 1673 1.1 paulus /* =========================================================================== 1674 1.1 paulus * Flush the current block, with given end-of-file flag. 1675 1.1 paulus * IN assertion: strstart is set to the end of the current match. 1676 1.1 paulus */ 1677 1.7 christos #define FLUSH_BLOCK_ONLY(s, eof) { \ 1678 1.7 christos _tr_flush_block(s, (s->block_start >= 0L ? \ 1679 1.7 christos (charf *)&s->window[(unsigned)s->block_start] : \ 1680 1.7 christos (charf *)Z_NULL), \ 1681 1.7 christos (ulg)((long)s->strstart - s->block_start), \ 1682 1.7 christos (eof)); \ 1683 1.1 paulus s->block_start = s->strstart; \ 1684 1.1 paulus flush_pending(s->strm); \ 1685 1.1 paulus Tracev((stderr,"[FLUSH]")); \ 1686 1.1 paulus } 1687 1.1 paulus 1688 1.1 paulus /* Same but force premature exit if necessary. */ 1689 1.7 christos #define FLUSH_BLOCK(s, eof) { \ 1690 1.7 christos FLUSH_BLOCK_ONLY(s, eof); \ 1691 1.7 christos if (s->strm->avail_out == 0) return (eof) ? finish_started : need_more; \ 1692 1.7 christos } 1693 1.7 christos 1694 1.7 christos /* =========================================================================== 1695 1.7 christos * Copy without compression as much as possible from the input stream, return 1696 1.7 christos * the current block state. 1697 1.7 christos * This function does not insert new strings in the dictionary since 1698 1.7 christos * uncompressible data is probably not useful. This function is used 1699 1.7 christos * only for the level=0 compression option. 1700 1.7 christos * NOTE: this function should be optimized to avoid extra copying from 1701 1.7 christos * window to pending_buf. 1702 1.7 christos */ 1703 1.32 cegger local block_state deflate_stored(deflate_state *s, int flush) 1704 1.7 christos { 1705 1.7 christos /* Stored blocks are limited to 0xffff bytes, pending_buf is limited 1706 1.7 christos * to pending_buf_size, and each stored block has a 5 byte header: 1707 1.7 christos */ 1708 1.7 christos ulg max_block_size = 0xffff; 1709 1.7 christos ulg max_start; 1710 1.7 christos 1711 1.7 christos if (max_block_size > s->pending_buf_size - 5) { 1712 1.7 christos max_block_size = s->pending_buf_size - 5; 1713 1.7 christos } 1714 1.7 christos 1715 1.7 christos /* Copy as much as possible from input to output: */ 1716 1.7 christos for (;;) { 1717 1.7 christos /* Fill the window as much as possible: */ 1718 1.7 christos if (s->lookahead <= 1) { 1719 1.7 christos 1720 1.7 christos Assert(s->strstart < s->w_size+MAX_DIST(s) || 1721 1.7 christos s->block_start >= (long)s->w_size, "slide too late"); 1722 1.7 christos 1723 1.7 christos fill_window(s); 1724 1.7 christos if (s->lookahead == 0 && flush == Z_NO_FLUSH) return need_more; 1725 1.7 christos 1726 1.7 christos if (s->lookahead == 0) break; /* flush the current block */ 1727 1.7 christos } 1728 1.7 christos Assert(s->block_start >= 0L, "block gone"); 1729 1.7 christos 1730 1.7 christos s->strstart += s->lookahead; 1731 1.7 christos s->lookahead = 0; 1732 1.7 christos 1733 1.7 christos /* Emit a stored block if pending_buf will be full: */ 1734 1.7 christos max_start = s->block_start + max_block_size; 1735 1.7 christos if (s->strstart == 0 || (ulg)s->strstart >= max_start) { 1736 1.7 christos /* strstart == 0 is possible when wraparound on 16-bit machine */ 1737 1.7 christos s->lookahead = (uInt)(s->strstart - max_start); 1738 1.7 christos s->strstart = (uInt)max_start; 1739 1.7 christos FLUSH_BLOCK(s, 0); 1740 1.7 christos } 1741 1.7 christos /* Flush if we may have to slide, otherwise block_start may become 1742 1.7 christos * negative and the data will be gone: 1743 1.7 christos */ 1744 1.7 christos if (s->strstart - (uInt)s->block_start >= MAX_DIST(s)) { 1745 1.7 christos FLUSH_BLOCK(s, 0); 1746 1.7 christos } 1747 1.7 christos } 1748 1.7 christos FLUSH_BLOCK(s, flush == Z_FINISH); 1749 1.7 christos return flush == Z_FINISH ? finish_done : block_done; 1750 1.1 paulus } 1751 1.1 paulus 1752 1.1 paulus /* =========================================================================== 1753 1.7 christos * Compress as much as possible from the input stream, return the current 1754 1.7 christos * block state. 1755 1.7 christos * This function does not perform lazy evaluation of matches and inserts 1756 1.1 paulus * new strings in the dictionary only for unmatched strings or for short 1757 1.1 paulus * matches. It is used only for the fast compression options. 1758 1.1 paulus */ 1759 1.32 cegger local block_state deflate_fast(deflate_state *s, int flush) 1760 1.1 paulus { 1761 1.1 paulus IPos hash_head = NIL; /* head of the hash chain */ 1762 1.7 christos int bflush; /* set if current block must be flushed */ 1763 1.1 paulus 1764 1.1 paulus for (;;) { 1765 1.1 paulus /* Make sure that we always have enough lookahead, except 1766 1.1 paulus * at the end of the input file. We need MAX_MATCH bytes 1767 1.1 paulus * for the next match, plus MIN_MATCH bytes to insert the 1768 1.1 paulus * string following the next match. 1769 1.1 paulus */ 1770 1.1 paulus if (s->lookahead < MIN_LOOKAHEAD) { 1771 1.1 paulus fill_window(s); 1772 1.7 christos if (s->lookahead < MIN_LOOKAHEAD && flush == Z_NO_FLUSH) { 1773 1.7 christos return need_more; 1774 1.7 christos } 1775 1.1 paulus if (s->lookahead == 0) break; /* flush the current block */ 1776 1.1 paulus } 1777 1.1 paulus 1778 1.1 paulus /* Insert the string window[strstart .. strstart+2] in the 1779 1.1 paulus * dictionary, and set hash_head to the head of the hash chain: 1780 1.1 paulus */ 1781 1.1 paulus if (s->lookahead >= MIN_MATCH) { 1782 1.1 paulus INSERT_STRING(s, s->strstart, hash_head); 1783 1.1 paulus } 1784 1.1 paulus 1785 1.1 paulus /* Find the longest match, discarding those <= prev_length. 1786 1.1 paulus * At this point we have always match_length < MIN_MATCH 1787 1.1 paulus */ 1788 1.1 paulus if (hash_head != NIL && s->strstart - hash_head <= MAX_DIST(s)) { 1789 1.1 paulus /* To simplify the code, we prevent matches with the string 1790 1.1 paulus * of window index 0 (in particular we have to avoid a match 1791 1.1 paulus * of the string with itself at the start of the input file). 1792 1.1 paulus */ 1793 1.1 paulus if (s->strategy != Z_HUFFMAN_ONLY) { 1794 1.1 paulus s->match_length = longest_match (s, hash_head); 1795 1.1 paulus } 1796 1.1 paulus /* longest_match() sets match_start */ 1797 1.1 paulus } 1798 1.1 paulus if (s->match_length >= MIN_MATCH) { 1799 1.1 paulus check_match(s, s->strstart, s->match_start, s->match_length); 1800 1.1 paulus 1801 1.17 fvdl _tr_tally_dist(s, s->strstart - s->match_start, 1802 1.17 fvdl s->match_length - MIN_MATCH, bflush); 1803 1.1 paulus 1804 1.1 paulus s->lookahead -= s->match_length; 1805 1.1 paulus 1806 1.1 paulus /* Insert new strings in the hash table only if the match length 1807 1.1 paulus * is not too large. This saves time but degrades compression. 1808 1.1 paulus */ 1809 1.17 fvdl #ifndef FASTEST 1810 1.1 paulus if (s->match_length <= s->max_insert_length && 1811 1.1 paulus s->lookahead >= MIN_MATCH) { 1812 1.1 paulus s->match_length--; /* string at strstart already in hash table */ 1813 1.1 paulus do { 1814 1.1 paulus s->strstart++; 1815 1.1 paulus INSERT_STRING(s, s->strstart, hash_head); 1816 1.1 paulus /* strstart never exceeds WSIZE-MAX_MATCH, so there are 1817 1.1 paulus * always MIN_MATCH bytes ahead. 1818 1.1 paulus */ 1819 1.1 paulus } while (--s->match_length != 0); 1820 1.20 perry s->strstart++; 1821 1.17 fvdl } else 1822 1.17 fvdl #endif 1823 1.17 fvdl { 1824 1.1 paulus s->strstart += s->match_length; 1825 1.1 paulus s->match_length = 0; 1826 1.1 paulus s->ins_h = s->window[s->strstart]; 1827 1.1 paulus UPDATE_HASH(s, s->ins_h, s->window[s->strstart+1]); 1828 1.1 paulus #if MIN_MATCH != 3 1829 1.1 paulus Call UPDATE_HASH() MIN_MATCH-3 more times 1830 1.1 paulus #endif 1831 1.1 paulus /* If lookahead < MIN_MATCH, ins_h is garbage, but it does not 1832 1.1 paulus * matter since it will be recomputed at next deflate call. 1833 1.1 paulus */ 1834 1.1 paulus } 1835 1.1 paulus } else { 1836 1.1 paulus /* No match, output a literal byte */ 1837 1.1 paulus Tracevv((stderr,"%c", s->window[s->strstart])); 1838 1.17 fvdl _tr_tally_lit (s, s->window[s->strstart], bflush); 1839 1.1 paulus s->lookahead--; 1840 1.20 perry s->strstart++; 1841 1.1 paulus } 1842 1.7 christos if (bflush) FLUSH_BLOCK(s, 0); 1843 1.1 paulus } 1844 1.7 christos FLUSH_BLOCK(s, flush == Z_FINISH); 1845 1.7 christos return flush == Z_FINISH ? finish_done : block_done; 1846 1.1 paulus } 1847 1.1 paulus 1848 1.1 paulus /* =========================================================================== 1849 1.1 paulus * Same as above, but achieves better compression. We use a lazy 1850 1.1 paulus * evaluation for matches: a match is finally adopted only if there is 1851 1.1 paulus * no better match at the next window position. 1852 1.1 paulus */ 1853 1.32 cegger local block_state deflate_slow(deflate_state *s, int flush) 1854 1.1 paulus { 1855 1.1 paulus IPos hash_head = NIL; /* head of hash chain */ 1856 1.1 paulus int bflush; /* set if current block must be flushed */ 1857 1.1 paulus 1858 1.1 paulus /* Process the input block. */ 1859 1.1 paulus for (;;) { 1860 1.1 paulus /* Make sure that we always have enough lookahead, except 1861 1.1 paulus * at the end of the input file. We need MAX_MATCH bytes 1862 1.1 paulus * for the next match, plus MIN_MATCH bytes to insert the 1863 1.1 paulus * string following the next match. 1864 1.1 paulus */ 1865 1.1 paulus if (s->lookahead < MIN_LOOKAHEAD) { 1866 1.1 paulus fill_window(s); 1867 1.7 christos if (s->lookahead < MIN_LOOKAHEAD && flush == Z_NO_FLUSH) { 1868 1.7 christos return need_more; 1869 1.7 christos } 1870 1.1 paulus if (s->lookahead == 0) break; /* flush the current block */ 1871 1.1 paulus } 1872 1.1 paulus 1873 1.1 paulus /* Insert the string window[strstart .. strstart+2] in the 1874 1.1 paulus * dictionary, and set hash_head to the head of the hash chain: 1875 1.1 paulus */ 1876 1.1 paulus if (s->lookahead >= MIN_MATCH) { 1877 1.1 paulus INSERT_STRING(s, s->strstart, hash_head); 1878 1.1 paulus } 1879 1.1 paulus 1880 1.1 paulus /* Find the longest match, discarding those <= prev_length. 1881 1.1 paulus */ 1882 1.1 paulus s->prev_length = s->match_length, s->prev_match = s->match_start; 1883 1.1 paulus s->match_length = MIN_MATCH-1; 1884 1.1 paulus 1885 1.1 paulus if (hash_head != NIL && s->prev_length < s->max_lazy_match && 1886 1.1 paulus s->strstart - hash_head <= MAX_DIST(s)) { 1887 1.1 paulus /* To simplify the code, we prevent matches with the string 1888 1.1 paulus * of window index 0 (in particular we have to avoid a match 1889 1.1 paulus * of the string with itself at the start of the input file). 1890 1.1 paulus */ 1891 1.1 paulus if (s->strategy != Z_HUFFMAN_ONLY) { 1892 1.1 paulus s->match_length = longest_match (s, hash_head); 1893 1.1 paulus } 1894 1.1 paulus /* longest_match() sets match_start */ 1895 1.1 paulus 1896 1.1 paulus if (s->match_length <= 5 && (s->strategy == Z_FILTERED || 1897 1.1 paulus (s->match_length == MIN_MATCH && 1898 1.1 paulus s->strstart - s->match_start > TOO_FAR))) { 1899 1.1 paulus 1900 1.1 paulus /* If prev_match is also MIN_MATCH, match_start is garbage 1901 1.1 paulus * but we will ignore the current match anyway. 1902 1.1 paulus */ 1903 1.1 paulus s->match_length = MIN_MATCH-1; 1904 1.1 paulus } 1905 1.1 paulus } 1906 1.1 paulus /* If there was a match at the previous step and the current 1907 1.1 paulus * match is not better, output the previous match: 1908 1.1 paulus */ 1909 1.1 paulus if (s->prev_length >= MIN_MATCH && s->match_length <= s->prev_length) { 1910 1.1 paulus uInt max_insert = s->strstart + s->lookahead - MIN_MATCH; 1911 1.1 paulus /* Do not insert strings in hash table beyond this. */ 1912 1.1 paulus 1913 1.1 paulus check_match(s, s->strstart-1, s->prev_match, s->prev_length); 1914 1.1 paulus 1915 1.17 fvdl _tr_tally_dist(s, s->strstart -1 - s->prev_match, 1916 1.17 fvdl s->prev_length - MIN_MATCH, bflush); 1917 1.1 paulus 1918 1.1 paulus /* Insert in hash table all strings up to the end of the match. 1919 1.1 paulus * strstart-1 and strstart are already inserted. If there is not 1920 1.1 paulus * enough lookahead, the last two strings are not inserted in 1921 1.1 paulus * the hash table. 1922 1.1 paulus */ 1923 1.1 paulus s->lookahead -= s->prev_length-1; 1924 1.1 paulus s->prev_length -= 2; 1925 1.1 paulus do { 1926 1.1 paulus if (++s->strstart <= max_insert) { 1927 1.1 paulus INSERT_STRING(s, s->strstart, hash_head); 1928 1.1 paulus } 1929 1.1 paulus } while (--s->prev_length != 0); 1930 1.1 paulus s->match_available = 0; 1931 1.1 paulus s->match_length = MIN_MATCH-1; 1932 1.1 paulus s->strstart++; 1933 1.1 paulus 1934 1.7 christos if (bflush) FLUSH_BLOCK(s, 0); 1935 1.1 paulus 1936 1.1 paulus } else if (s->match_available) { 1937 1.1 paulus /* If there was no match at the previous position, output a 1938 1.1 paulus * single literal. If there was a match but the current match 1939 1.1 paulus * is longer, truncate the previous match to a single literal. 1940 1.1 paulus */ 1941 1.1 paulus Tracevv((stderr,"%c", s->window[s->strstart-1])); 1942 1.17 fvdl _tr_tally_lit(s, s->window[s->strstart-1], bflush); 1943 1.17 fvdl if (bflush) { 1944 1.7 christos FLUSH_BLOCK_ONLY(s, 0); 1945 1.1 paulus } 1946 1.1 paulus s->strstart++; 1947 1.1 paulus s->lookahead--; 1948 1.7 christos if (s->strm->avail_out == 0) return need_more; 1949 1.1 paulus } else { 1950 1.1 paulus /* There is no previous match to compare with, wait for 1951 1.1 paulus * the next step to decide. 1952 1.1 paulus */ 1953 1.1 paulus s->match_available = 1; 1954 1.1 paulus s->strstart++; 1955 1.1 paulus s->lookahead--; 1956 1.1 paulus } 1957 1.1 paulus } 1958 1.1 paulus Assert (flush != Z_NO_FLUSH, "no flush?"); 1959 1.1 paulus if (s->match_available) { 1960 1.1 paulus Tracevv((stderr,"%c", s->window[s->strstart-1])); 1961 1.17 fvdl _tr_tally_lit(s, s->window[s->strstart-1], bflush); 1962 1.1 paulus s->match_available = 0; 1963 1.1 paulus } 1964 1.7 christos FLUSH_BLOCK(s, flush == Z_FINISH); 1965 1.7 christos return flush == Z_FINISH ? finish_done : block_done; 1966 1.1 paulus } 1967 1.7 christos /* --- deflate.c */ 1968 1.1 paulus 1969 1.7 christos /* +++ trees.c */ 1970 1.17 fvdl 1971 1.1 paulus /* trees.c -- output deflated data using Huffman coding 1972 1.17 fvdl * Copyright (C) 1995-2002 Jean-loup Gailly 1973 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 1974 1.1 paulus */ 1975 1.1 paulus 1976 1.1 paulus /* 1977 1.1 paulus * ALGORITHM 1978 1.1 paulus * 1979 1.1 paulus * The "deflation" process uses several Huffman trees. The more 1980 1.1 paulus * common source values are represented by shorter bit sequences. 1981 1.1 paulus * 1982 1.1 paulus * Each code tree is stored in a compressed form which is itself 1983 1.1 paulus * a Huffman encoding of the lengths of all the code strings (in 1984 1.1 paulus * ascending order by source values). The actual code strings are 1985 1.1 paulus * reconstructed from the lengths in the inflate process, as described 1986 1.1 paulus * in the deflate specification. 1987 1.1 paulus * 1988 1.1 paulus * REFERENCES 1989 1.1 paulus * 1990 1.1 paulus * Deutsch, L.P.,"'Deflate' Compressed Data Format Specification". 1991 1.1 paulus * Available in ftp.uu.net:/pub/archiving/zip/doc/deflate-1.1.doc 1992 1.1 paulus * 1993 1.1 paulus * Storer, James A. 1994 1.1 paulus * Data Compression: Methods and Theory, pp. 49-50. 1995 1.1 paulus * Computer Science Press, 1988. ISBN 0-7167-8156-5. 1996 1.1 paulus * 1997 1.1 paulus * Sedgewick, R. 1998 1.1 paulus * Algorithms, p290. 1999 1.1 paulus * Addison-Wesley, 1983. ISBN 0-201-06672-6. 2000 1.1 paulus */ 2001 1.1 paulus 2002 1.39 rin /* @(#) $Id: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ */ 2003 1.17 fvdl 2004 1.17 fvdl /* #define GEN_TREES_H */ 2005 1.7 christos 2006 1.7 christos /* #include "deflate.h" */ 2007 1.1 paulus 2008 1.1 paulus #ifdef DEBUG_ZLIB 2009 1.1 paulus # include <ctype.h> 2010 1.1 paulus #endif 2011 1.1 paulus 2012 1.1 paulus /* =========================================================================== 2013 1.1 paulus * Constants 2014 1.1 paulus */ 2015 1.1 paulus 2016 1.1 paulus #define MAX_BL_BITS 7 2017 1.1 paulus /* Bit length codes must not exceed MAX_BL_BITS bits */ 2018 1.1 paulus 2019 1.1 paulus #define END_BLOCK 256 2020 1.1 paulus /* end of block literal code */ 2021 1.1 paulus 2022 1.1 paulus #define REP_3_6 16 2023 1.1 paulus /* repeat previous bit length 3-6 times (2 bits of repeat count) */ 2024 1.1 paulus 2025 1.1 paulus #define REPZ_3_10 17 2026 1.1 paulus /* repeat a zero length 3-10 times (3 bits of repeat count) */ 2027 1.1 paulus 2028 1.1 paulus #define REPZ_11_138 18 2029 1.1 paulus /* repeat a zero length 11-138 times (7 bits of repeat count) */ 2030 1.1 paulus 2031 1.12 jdolecek local const int extra_lbits[LENGTH_CODES] /* extra bits for each length code */ 2032 1.1 paulus = {0,0,0,0,0,0,0,0,1,1,1,1,2,2,2,2,3,3,3,3,4,4,4,4,5,5,5,5,0}; 2033 1.1 paulus 2034 1.12 jdolecek local const int extra_dbits[D_CODES] /* extra bits for each distance code */ 2035 1.1 paulus = {0,0,0,0,1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,9,9,10,10,11,11,12,12,13,13}; 2036 1.1 paulus 2037 1.12 jdolecek local const int extra_blbits[BL_CODES]/* extra bits for each bit length code */ 2038 1.1 paulus = {0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,0,2,3,7}; 2039 1.1 paulus 2040 1.12 jdolecek local const uch bl_order[BL_CODES] 2041 1.1 paulus = {16,17,18,0,8,7,9,6,10,5,11,4,12,3,13,2,14,1,15}; 2042 1.1 paulus /* The lengths of the bit length codes are sent in order of decreasing 2043 1.1 paulus * probability, to avoid transmitting the lengths for unused bit length codes. 2044 1.1 paulus */ 2045 1.1 paulus 2046 1.1 paulus #define Buf_size (8 * 2*sizeof(char)) 2047 1.1 paulus /* Number of bits used within bi_buf. (bi_buf might be implemented on 2048 1.1 paulus * more than 16 bits on some systems.) 2049 1.1 paulus */ 2050 1.1 paulus 2051 1.1 paulus /* =========================================================================== 2052 1.1 paulus * Local data. These are initialized only once. 2053 1.1 paulus */ 2054 1.1 paulus 2055 1.17 fvdl #define DIST_CODE_LEN 512 /* see definition of array dist_code below */ 2056 1.17 fvdl 2057 1.17 fvdl #if defined(GEN_TREES_H) || !defined(STDC) 2058 1.17 fvdl /* non ANSI compilers may not accept trees.h */ 2059 1.17 fvdl 2060 1.1 paulus local ct_data static_ltree[L_CODES+2]; 2061 1.1 paulus /* The static literal tree. Since the bit lengths are imposed, there is no 2062 1.1 paulus * need for the L_CODES extra codes used during heap construction. However 2063 1.7 christos * The codes 286 and 287 are needed to build a canonical tree (see _tr_init 2064 1.1 paulus * below). 2065 1.1 paulus */ 2066 1.1 paulus 2067 1.1 paulus local ct_data static_dtree[D_CODES]; 2068 1.1 paulus /* The static distance tree. (Actually a trivial tree since all codes use 2069 1.1 paulus * 5 bits.) 2070 1.1 paulus */ 2071 1.1 paulus 2072 1.17 fvdl uch _dist_code[DIST_CODE_LEN]; 2073 1.17 fvdl /* Distance codes. The first 256 values correspond to the distances 2074 1.1 paulus * 3 .. 258, the last 256 values correspond to the top 8 bits of 2075 1.1 paulus * the 15 bit distances. 2076 1.1 paulus */ 2077 1.1 paulus 2078 1.17 fvdl uch _length_code[MAX_MATCH-MIN_MATCH+1]; 2079 1.1 paulus /* length code for each normalized match length (0 == MIN_MATCH) */ 2080 1.1 paulus 2081 1.1 paulus local int base_length[LENGTH_CODES]; 2082 1.1 paulus /* First normalized length for each code (0 = MIN_MATCH) */ 2083 1.1 paulus 2084 1.1 paulus local int base_dist[D_CODES]; 2085 1.1 paulus /* First normalized distance for each code (0 = distance of 1) */ 2086 1.1 paulus 2087 1.17 fvdl #else 2088 1.17 fvdl /* +++ trees.h */ 2089 1.17 fvdl 2090 1.17 fvdl /* header created automatically with -DGEN_TREES_H */ 2091 1.17 fvdl 2092 1.17 fvdl local const ct_data static_ltree[L_CODES+2] = { 2093 1.17 fvdl {{ 12},{ 8}}, {{140},{ 8}}, {{ 76},{ 8}}, {{204},{ 8}}, {{ 44},{ 8}}, 2094 1.17 fvdl {{172},{ 8}}, {{108},{ 8}}, {{236},{ 8}}, {{ 28},{ 8}}, {{156},{ 8}}, 2095 1.17 fvdl {{ 92},{ 8}}, {{220},{ 8}}, {{ 60},{ 8}}, {{188},{ 8}}, {{124},{ 8}}, 2096 1.17 fvdl {{252},{ 8}}, {{ 2},{ 8}}, {{130},{ 8}}, {{ 66},{ 8}}, {{194},{ 8}}, 2097 1.17 fvdl {{ 34},{ 8}}, {{162},{ 8}}, {{ 98},{ 8}}, {{226},{ 8}}, {{ 18},{ 8}}, 2098 1.17 fvdl {{146},{ 8}}, {{ 82},{ 8}}, {{210},{ 8}}, {{ 50},{ 8}}, {{178},{ 8}}, 2099 1.17 fvdl {{114},{ 8}}, {{242},{ 8}}, {{ 10},{ 8}}, {{138},{ 8}}, {{ 74},{ 8}}, 2100 1.17 fvdl {{202},{ 8}}, {{ 42},{ 8}}, {{170},{ 8}}, {{106},{ 8}}, {{234},{ 8}}, 2101 1.17 fvdl {{ 26},{ 8}}, {{154},{ 8}}, {{ 90},{ 8}}, {{218},{ 8}}, {{ 58},{ 8}}, 2102 1.17 fvdl {{186},{ 8}}, {{122},{ 8}}, {{250},{ 8}}, {{ 6},{ 8}}, {{134},{ 8}}, 2103 1.17 fvdl {{ 70},{ 8}}, {{198},{ 8}}, {{ 38},{ 8}}, {{166},{ 8}}, {{102},{ 8}}, 2104 1.17 fvdl {{230},{ 8}}, {{ 22},{ 8}}, {{150},{ 8}}, {{ 86},{ 8}}, {{214},{ 8}}, 2105 1.17 fvdl {{ 54},{ 8}}, {{182},{ 8}}, {{118},{ 8}}, {{246},{ 8}}, {{ 14},{ 8}}, 2106 1.17 fvdl {{142},{ 8}}, {{ 78},{ 8}}, {{206},{ 8}}, {{ 46},{ 8}}, {{174},{ 8}}, 2107 1.17 fvdl {{110},{ 8}}, {{238},{ 8}}, {{ 30},{ 8}}, {{158},{ 8}}, {{ 94},{ 8}}, 2108 1.17 fvdl {{222},{ 8}}, {{ 62},{ 8}}, {{190},{ 8}}, {{126},{ 8}}, {{254},{ 8}}, 2109 1.17 fvdl {{ 1},{ 8}}, {{129},{ 8}}, {{ 65},{ 8}}, {{193},{ 8}}, {{ 33},{ 8}}, 2110 1.17 fvdl {{161},{ 8}}, {{ 97},{ 8}}, {{225},{ 8}}, {{ 17},{ 8}}, {{145},{ 8}}, 2111 1.17 fvdl {{ 81},{ 8}}, {{209},{ 8}}, {{ 49},{ 8}}, {{177},{ 8}}, {{113},{ 8}}, 2112 1.17 fvdl {{241},{ 8}}, {{ 9},{ 8}}, {{137},{ 8}}, {{ 73},{ 8}}, {{201},{ 8}}, 2113 1.17 fvdl {{ 41},{ 8}}, {{169},{ 8}}, {{105},{ 8}}, {{233},{ 8}}, {{ 25},{ 8}}, 2114 1.17 fvdl {{153},{ 8}}, {{ 89},{ 8}}, {{217},{ 8}}, {{ 57},{ 8}}, {{185},{ 8}}, 2115 1.17 fvdl {{121},{ 8}}, {{249},{ 8}}, {{ 5},{ 8}}, {{133},{ 8}}, {{ 69},{ 8}}, 2116 1.17 fvdl {{197},{ 8}}, {{ 37},{ 8}}, {{165},{ 8}}, {{101},{ 8}}, {{229},{ 8}}, 2117 1.17 fvdl {{ 21},{ 8}}, {{149},{ 8}}, {{ 85},{ 8}}, {{213},{ 8}}, {{ 53},{ 8}}, 2118 1.17 fvdl {{181},{ 8}}, {{117},{ 8}}, {{245},{ 8}}, {{ 13},{ 8}}, {{141},{ 8}}, 2119 1.17 fvdl {{ 77},{ 8}}, {{205},{ 8}}, {{ 45},{ 8}}, {{173},{ 8}}, {{109},{ 8}}, 2120 1.17 fvdl {{237},{ 8}}, {{ 29},{ 8}}, {{157},{ 8}}, {{ 93},{ 8}}, {{221},{ 8}}, 2121 1.17 fvdl {{ 61},{ 8}}, {{189},{ 8}}, {{125},{ 8}}, {{253},{ 8}}, {{ 19},{ 9}}, 2122 1.17 fvdl {{275},{ 9}}, {{147},{ 9}}, {{403},{ 9}}, {{ 83},{ 9}}, {{339},{ 9}}, 2123 1.17 fvdl {{211},{ 9}}, {{467},{ 9}}, {{ 51},{ 9}}, {{307},{ 9}}, {{179},{ 9}}, 2124 1.17 fvdl {{435},{ 9}}, {{115},{ 9}}, {{371},{ 9}}, {{243},{ 9}}, {{499},{ 9}}, 2125 1.17 fvdl {{ 11},{ 9}}, {{267},{ 9}}, {{139},{ 9}}, {{395},{ 9}}, {{ 75},{ 9}}, 2126 1.17 fvdl {{331},{ 9}}, {{203},{ 9}}, {{459},{ 9}}, {{ 43},{ 9}}, {{299},{ 9}}, 2127 1.17 fvdl {{171},{ 9}}, {{427},{ 9}}, {{107},{ 9}}, {{363},{ 9}}, {{235},{ 9}}, 2128 1.17 fvdl {{491},{ 9}}, {{ 27},{ 9}}, {{283},{ 9}}, {{155},{ 9}}, {{411},{ 9}}, 2129 1.17 fvdl {{ 91},{ 9}}, {{347},{ 9}}, {{219},{ 9}}, {{475},{ 9}}, {{ 59},{ 9}}, 2130 1.17 fvdl {{315},{ 9}}, {{187},{ 9}}, {{443},{ 9}}, {{123},{ 9}}, {{379},{ 9}}, 2131 1.17 fvdl {{251},{ 9}}, {{507},{ 9}}, {{ 7},{ 9}}, {{263},{ 9}}, {{135},{ 9}}, 2132 1.17 fvdl {{391},{ 9}}, {{ 71},{ 9}}, {{327},{ 9}}, {{199},{ 9}}, {{455},{ 9}}, 2133 1.17 fvdl {{ 39},{ 9}}, {{295},{ 9}}, {{167},{ 9}}, {{423},{ 9}}, {{103},{ 9}}, 2134 1.17 fvdl {{359},{ 9}}, {{231},{ 9}}, {{487},{ 9}}, {{ 23},{ 9}}, {{279},{ 9}}, 2135 1.17 fvdl {{151},{ 9}}, {{407},{ 9}}, {{ 87},{ 9}}, {{343},{ 9}}, {{215},{ 9}}, 2136 1.17 fvdl {{471},{ 9}}, {{ 55},{ 9}}, {{311},{ 9}}, {{183},{ 9}}, {{439},{ 9}}, 2137 1.17 fvdl {{119},{ 9}}, {{375},{ 9}}, {{247},{ 9}}, {{503},{ 9}}, {{ 15},{ 9}}, 2138 1.17 fvdl {{271},{ 9}}, {{143},{ 9}}, {{399},{ 9}}, {{ 79},{ 9}}, {{335},{ 9}}, 2139 1.17 fvdl {{207},{ 9}}, {{463},{ 9}}, {{ 47},{ 9}}, {{303},{ 9}}, {{175},{ 9}}, 2140 1.17 fvdl {{431},{ 9}}, {{111},{ 9}}, {{367},{ 9}}, {{239},{ 9}}, {{495},{ 9}}, 2141 1.17 fvdl {{ 31},{ 9}}, {{287},{ 9}}, {{159},{ 9}}, {{415},{ 9}}, {{ 95},{ 9}}, 2142 1.17 fvdl {{351},{ 9}}, {{223},{ 9}}, {{479},{ 9}}, {{ 63},{ 9}}, {{319},{ 9}}, 2143 1.17 fvdl {{191},{ 9}}, {{447},{ 9}}, {{127},{ 9}}, {{383},{ 9}}, {{255},{ 9}}, 2144 1.17 fvdl {{511},{ 9}}, {{ 0},{ 7}}, {{ 64},{ 7}}, {{ 32},{ 7}}, {{ 96},{ 7}}, 2145 1.17 fvdl {{ 16},{ 7}}, {{ 80},{ 7}}, {{ 48},{ 7}}, {{112},{ 7}}, {{ 8},{ 7}}, 2146 1.17 fvdl {{ 72},{ 7}}, {{ 40},{ 7}}, {{104},{ 7}}, {{ 24},{ 7}}, {{ 88},{ 7}}, 2147 1.17 fvdl {{ 56},{ 7}}, {{120},{ 7}}, {{ 4},{ 7}}, {{ 68},{ 7}}, {{ 36},{ 7}}, 2148 1.17 fvdl {{100},{ 7}}, {{ 20},{ 7}}, {{ 84},{ 7}}, {{ 52},{ 7}}, {{116},{ 7}}, 2149 1.17 fvdl {{ 3},{ 8}}, {{131},{ 8}}, {{ 67},{ 8}}, {{195},{ 8}}, {{ 35},{ 8}}, 2150 1.17 fvdl {{163},{ 8}}, {{ 99},{ 8}}, {{227},{ 8}} 2151 1.17 fvdl }; 2152 1.17 fvdl 2153 1.17 fvdl local const ct_data static_dtree[D_CODES] = { 2154 1.17 fvdl {{ 0},{ 5}}, {{16},{ 5}}, {{ 8},{ 5}}, {{24},{ 5}}, {{ 4},{ 5}}, 2155 1.17 fvdl {{20},{ 5}}, {{12},{ 5}}, {{28},{ 5}}, {{ 2},{ 5}}, {{18},{ 5}}, 2156 1.17 fvdl {{10},{ 5}}, {{26},{ 5}}, {{ 6},{ 5}}, {{22},{ 5}}, {{14},{ 5}}, 2157 1.17 fvdl {{30},{ 5}}, {{ 1},{ 5}}, {{17},{ 5}}, {{ 9},{ 5}}, {{25},{ 5}}, 2158 1.17 fvdl {{ 5},{ 5}}, {{21},{ 5}}, {{13},{ 5}}, {{29},{ 5}}, {{ 3},{ 5}}, 2159 1.17 fvdl {{19},{ 5}}, {{11},{ 5}}, {{27},{ 5}}, {{ 7},{ 5}}, {{23},{ 5}} 2160 1.17 fvdl }; 2161 1.17 fvdl 2162 1.17 fvdl const uch _dist_code[DIST_CODE_LEN] = { 2163 1.17 fvdl 0, 1, 2, 3, 4, 4, 5, 5, 6, 6, 6, 6, 7, 7, 7, 7, 8, 8, 8, 8, 2164 1.17 fvdl 8, 8, 8, 8, 9, 9, 9, 9, 9, 9, 9, 9, 10, 10, 10, 10, 10, 10, 10, 10, 2165 1.17 fvdl 10, 10, 10, 10, 10, 10, 10, 10, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 11, 2166 1.17 fvdl 11, 11, 11, 11, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 2167 1.17 fvdl 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 12, 13, 13, 13, 13, 2168 1.17 fvdl 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 13, 2169 1.17 fvdl 13, 13, 13, 13, 13, 13, 13, 13, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 2170 1.17 fvdl 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 2171 1.17 fvdl 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 2172 1.17 fvdl 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 14, 15, 15, 15, 15, 15, 15, 15, 15, 2173 1.17 fvdl 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 2174 1.17 fvdl 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 2175 1.17 fvdl 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 15, 0, 0, 16, 17, 2176 1.17 fvdl 18, 18, 19, 19, 20, 20, 20, 20, 21, 21, 21, 21, 22, 22, 22, 22, 22, 22, 22, 22, 2177 1.17 fvdl 23, 23, 23, 23, 23, 23, 23, 23, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 2178 1.17 fvdl 24, 24, 24, 24, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 2179 1.17 fvdl 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 2180 1.17 fvdl 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 27, 27, 27, 27, 27, 27, 27, 27, 2181 1.17 fvdl 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 2182 1.17 fvdl 27, 27, 27, 27, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 2183 1.17 fvdl 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 2184 1.17 fvdl 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 28, 2185 1.17 fvdl 28, 28, 28, 28, 28, 28, 28, 28, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 2186 1.17 fvdl 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 2187 1.17 fvdl 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 2188 1.17 fvdl 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29, 29 2189 1.17 fvdl }; 2190 1.17 fvdl 2191 1.17 fvdl const uch _length_code[MAX_MATCH-MIN_MATCH+1]= { 2192 1.17 fvdl 0, 1, 2, 3, 4, 5, 6, 7, 8, 8, 9, 9, 10, 10, 11, 11, 12, 12, 12, 12, 2193 1.17 fvdl 13, 13, 13, 13, 14, 14, 14, 14, 15, 15, 15, 15, 16, 16, 16, 16, 16, 16, 16, 16, 2194 1.17 fvdl 17, 17, 17, 17, 17, 17, 17, 17, 18, 18, 18, 18, 18, 18, 18, 18, 19, 19, 19, 19, 2195 1.17 fvdl 19, 19, 19, 19, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 20, 2196 1.17 fvdl 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 21, 22, 22, 22, 22, 2197 1.17 fvdl 22, 22, 22, 22, 22, 22, 22, 22, 22, 22, 22, 22, 23, 23, 23, 23, 23, 23, 23, 23, 2198 1.17 fvdl 23, 23, 23, 23, 23, 23, 23, 23, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 2199 1.17 fvdl 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 24, 2200 1.17 fvdl 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 2201 1.17 fvdl 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 25, 26, 26, 26, 26, 26, 26, 26, 26, 2202 1.17 fvdl 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 26, 2203 1.17 fvdl 26, 26, 26, 26, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 2204 1.17 fvdl 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 27, 28 2205 1.17 fvdl }; 2206 1.17 fvdl 2207 1.17 fvdl local const int base_length[LENGTH_CODES] = { 2208 1.17 fvdl 0, 1, 2, 3, 4, 5, 6, 7, 8, 10, 12, 14, 16, 20, 24, 28, 32, 40, 48, 56, 2209 1.17 fvdl 64, 80, 96, 112, 128, 160, 192, 224, 0 2210 1.17 fvdl }; 2211 1.17 fvdl 2212 1.17 fvdl local const int base_dist[D_CODES] = { 2213 1.17 fvdl 0, 1, 2, 3, 4, 6, 8, 12, 16, 24, 2214 1.17 fvdl 32, 48, 64, 96, 128, 192, 256, 384, 512, 768, 2215 1.17 fvdl 1024, 1536, 2048, 3072, 4096, 6144, 8192, 12288, 16384, 24576 2216 1.17 fvdl }; 2217 1.17 fvdl /* --- trees.h */ 2218 1.17 fvdl 2219 1.17 fvdl #endif /* GEN_TREES_H */ 2220 1.17 fvdl 2221 1.1 paulus struct static_tree_desc_s { 2222 1.17 fvdl const ct_data *static_tree; /* static tree or NULL */ 2223 1.17 fvdl const intf *extra_bits; /* extra bits for each code or NULL */ 2224 1.1 paulus int extra_base; /* base index for extra_bits */ 2225 1.1 paulus int elems; /* max number of elements in the tree */ 2226 1.1 paulus int max_length; /* max bit length for the codes */ 2227 1.1 paulus }; 2228 1.1 paulus 2229 1.1 paulus local static_tree_desc static_l_desc = 2230 1.1 paulus {static_ltree, extra_lbits, LITERALS+1, L_CODES, MAX_BITS}; 2231 1.1 paulus 2232 1.1 paulus local static_tree_desc static_d_desc = 2233 1.1 paulus {static_dtree, extra_dbits, 0, D_CODES, MAX_BITS}; 2234 1.1 paulus 2235 1.1 paulus local static_tree_desc static_bl_desc = 2236 1.17 fvdl {(const ct_data *)0, extra_blbits, 0, BL_CODES, MAX_BL_BITS}; 2237 1.1 paulus 2238 1.1 paulus /* =========================================================================== 2239 1.1 paulus * Local (static) routines in this file. 2240 1.1 paulus */ 2241 1.1 paulus 2242 1.31 dsl local void tr_static_init(void); 2243 1.31 dsl local void init_block(deflate_state *s); 2244 1.31 dsl local void pqdownheap(deflate_state *s, ct_data *tree, int k); 2245 1.31 dsl local void gen_bitlen(deflate_state *s, tree_desc *desc); 2246 1.31 dsl local void gen_codes(ct_data *tree, int max_code, ushf *bl_count); 2247 1.31 dsl local void build_tree(deflate_state *s, tree_desc *desc); 2248 1.31 dsl local void scan_tree(deflate_state *s, ct_data *tree, int max_code); 2249 1.31 dsl local void send_tree(deflate_state *s, ct_data *tree, int max_code); 2250 1.31 dsl local int build_bl_tree(deflate_state *s); 2251 1.31 dsl local void send_all_trees(deflate_state *s, int lcodes, int dcodes, 2252 1.31 dsl int blcodes); 2253 1.31 dsl local void compress_block(deflate_state *s, const ct_data *ltree, 2254 1.31 dsl const ct_data *dtree); 2255 1.31 dsl local void set_data_type(deflate_state *s); 2256 1.31 dsl local unsigned bi_reverse(unsigned value, int length); 2257 1.31 dsl local void bi_windup(deflate_state *s); 2258 1.31 dsl local void bi_flush(deflate_state *s); 2259 1.31 dsl local void copy_block(deflate_state *s, charf *buf, unsigned len, 2260 1.31 dsl int header); 2261 1.1 paulus 2262 1.17 fvdl #ifdef GEN_TREES_H 2263 1.31 dsl local void gen_trees_header(void); 2264 1.17 fvdl #endif 2265 1.17 fvdl 2266 1.1 paulus #ifndef DEBUG_ZLIB 2267 1.1 paulus # define send_code(s, c, tree) send_bits(s, tree[c].Code, tree[c].Len) 2268 1.1 paulus /* Send a code of the given tree. c and tree must not have side effects */ 2269 1.1 paulus 2270 1.1 paulus #else /* DEBUG_ZLIB */ 2271 1.1 paulus # define send_code(s, c, tree) \ 2272 1.17 fvdl { if (z_verbose>2) fprintf(stderr,"\ncd %3d ",(c)); \ 2273 1.1 paulus send_bits(s, tree[c].Code, tree[c].Len); } 2274 1.1 paulus #endif 2275 1.1 paulus 2276 1.1 paulus /* =========================================================================== 2277 1.1 paulus * Output a short LSB first on the stream. 2278 1.1 paulus * IN assertion: there is enough room in pendingBuf. 2279 1.1 paulus */ 2280 1.1 paulus #define put_short(s, w) { \ 2281 1.1 paulus put_byte(s, (uch)((w) & 0xff)); \ 2282 1.1 paulus put_byte(s, (uch)((ush)(w) >> 8)); \ 2283 1.1 paulus } 2284 1.1 paulus 2285 1.1 paulus /* =========================================================================== 2286 1.1 paulus * Send a value on a given number of bits. 2287 1.1 paulus * IN assertion: length <= 16 and value fits in length bits. 2288 1.1 paulus */ 2289 1.1 paulus #ifdef DEBUG_ZLIB 2290 1.31 dsl local void send_bits(deflate_state *s, int value, int length); 2291 1.1 paulus 2292 1.1 paulus local void send_bits(s, value, length) 2293 1.1 paulus deflate_state *s; 2294 1.1 paulus int value; /* value to send */ 2295 1.1 paulus int length; /* number of bits */ 2296 1.1 paulus { 2297 1.7 christos Tracevv((stderr," l %2d v %4x ", length, value)); 2298 1.1 paulus Assert(length > 0 && length <= 15, "invalid length"); 2299 1.1 paulus s->bits_sent += (ulg)length; 2300 1.1 paulus 2301 1.1 paulus /* If not enough room in bi_buf, use (valid) bits from bi_buf and 2302 1.1 paulus * (16 - bi_valid) bits from value, leaving (width - (16-bi_valid)) 2303 1.1 paulus * unused bits in value. 2304 1.1 paulus */ 2305 1.1 paulus if (s->bi_valid > (int)Buf_size - length) { 2306 1.1 paulus s->bi_buf |= (value << s->bi_valid); 2307 1.1 paulus put_short(s, s->bi_buf); 2308 1.1 paulus s->bi_buf = (ush)value >> (Buf_size - s->bi_valid); 2309 1.1 paulus s->bi_valid += length - Buf_size; 2310 1.1 paulus } else { 2311 1.1 paulus s->bi_buf |= value << s->bi_valid; 2312 1.1 paulus s->bi_valid += length; 2313 1.1 paulus } 2314 1.1 paulus } 2315 1.1 paulus #else /* !DEBUG_ZLIB */ 2316 1.1 paulus 2317 1.1 paulus #define send_bits(s, value, length) \ 2318 1.1 paulus { int len = length;\ 2319 1.1 paulus if (s->bi_valid > (int)Buf_size - len) {\ 2320 1.1 paulus int val = value;\ 2321 1.1 paulus s->bi_buf |= (val << s->bi_valid);\ 2322 1.1 paulus put_short(s, s->bi_buf);\ 2323 1.1 paulus s->bi_buf = (ush)val >> (Buf_size - s->bi_valid);\ 2324 1.1 paulus s->bi_valid += len - Buf_size;\ 2325 1.1 paulus } else {\ 2326 1.1 paulus s->bi_buf |= (value) << s->bi_valid;\ 2327 1.1 paulus s->bi_valid += len;\ 2328 1.1 paulus }\ 2329 1.1 paulus } 2330 1.1 paulus #endif /* DEBUG_ZLIB */ 2331 1.1 paulus 2332 1.17 fvdl 2333 1.1 paulus /* =========================================================================== 2334 1.17 fvdl * Initialize the various 'constant' tables. 2335 1.1 paulus */ 2336 1.32 cegger local void tr_static_init(void) 2337 1.1 paulus { 2338 1.17 fvdl #if defined(GEN_TREES_H) || !defined(STDC) 2339 1.7 christos static int static_init_done = 0; 2340 1.1 paulus int n; /* iterates over tree elements */ 2341 1.1 paulus int bits; /* bit counter */ 2342 1.1 paulus int length; /* length value */ 2343 1.1 paulus int code; /* code value */ 2344 1.1 paulus int dist; /* distance index */ 2345 1.1 paulus ush bl_count[MAX_BITS+1]; 2346 1.1 paulus /* number of codes at each bit length for an optimal tree */ 2347 1.1 paulus 2348 1.7 christos if (static_init_done) return; 2349 1.7 christos 2350 1.17 fvdl /* For some embedded targets, global variables are not initialized: */ 2351 1.17 fvdl static_l_desc.static_tree = static_ltree; 2352 1.17 fvdl static_l_desc.extra_bits = extra_lbits; 2353 1.17 fvdl static_d_desc.static_tree = static_dtree; 2354 1.17 fvdl static_d_desc.extra_bits = extra_dbits; 2355 1.17 fvdl static_bl_desc.extra_bits = extra_blbits; 2356 1.17 fvdl 2357 1.1 paulus /* Initialize the mapping length (0..255) -> length code (0..28) */ 2358 1.1 paulus length = 0; 2359 1.1 paulus for (code = 0; code < LENGTH_CODES-1; code++) { 2360 1.1 paulus base_length[code] = length; 2361 1.1 paulus for (n = 0; n < (1<<extra_lbits[code]); n++) { 2362 1.17 fvdl _length_code[length++] = (uch)code; 2363 1.1 paulus } 2364 1.1 paulus } 2365 1.7 christos Assert (length == 256, "tr_static_init: length != 256"); 2366 1.1 paulus /* Note that the length 255 (match length 258) can be represented 2367 1.1 paulus * in two different ways: code 284 + 5 bits or code 285, so we 2368 1.1 paulus * overwrite length_code[255] to use the best encoding: 2369 1.1 paulus */ 2370 1.17 fvdl _length_code[length-1] = (uch)code; 2371 1.1 paulus 2372 1.1 paulus /* Initialize the mapping dist (0..32K) -> dist code (0..29) */ 2373 1.1 paulus dist = 0; 2374 1.1 paulus for (code = 0 ; code < 16; code++) { 2375 1.1 paulus base_dist[code] = dist; 2376 1.1 paulus for (n = 0; n < (1<<extra_dbits[code]); n++) { 2377 1.17 fvdl _dist_code[dist++] = (uch)code; 2378 1.1 paulus } 2379 1.1 paulus } 2380 1.7 christos Assert (dist == 256, "tr_static_init: dist != 256"); 2381 1.1 paulus dist >>= 7; /* from now on, all distances are divided by 128 */ 2382 1.1 paulus for ( ; code < D_CODES; code++) { 2383 1.1 paulus base_dist[code] = dist << 7; 2384 1.1 paulus for (n = 0; n < (1<<(extra_dbits[code]-7)); n++) { 2385 1.17 fvdl _dist_code[256 + dist++] = (uch)code; 2386 1.1 paulus } 2387 1.1 paulus } 2388 1.7 christos Assert (dist == 256, "tr_static_init: 256+dist != 512"); 2389 1.1 paulus 2390 1.1 paulus /* Construct the codes of the static literal tree */ 2391 1.1 paulus for (bits = 0; bits <= MAX_BITS; bits++) bl_count[bits] = 0; 2392 1.1 paulus n = 0; 2393 1.1 paulus while (n <= 143) static_ltree[n++].Len = 8, bl_count[8]++; 2394 1.1 paulus while (n <= 255) static_ltree[n++].Len = 9, bl_count[9]++; 2395 1.1 paulus while (n <= 279) static_ltree[n++].Len = 7, bl_count[7]++; 2396 1.1 paulus while (n <= 287) static_ltree[n++].Len = 8, bl_count[8]++; 2397 1.1 paulus /* Codes 286 and 287 do not exist, but we must include them in the 2398 1.1 paulus * tree construction to get a canonical Huffman tree (longest code 2399 1.1 paulus * all ones) 2400 1.1 paulus */ 2401 1.1 paulus gen_codes((ct_data *)static_ltree, L_CODES+1, bl_count); 2402 1.1 paulus 2403 1.1 paulus /* The static distance tree is trivial: */ 2404 1.1 paulus for (n = 0; n < D_CODES; n++) { 2405 1.1 paulus static_dtree[n].Len = 5; 2406 1.7 christos static_dtree[n].Code = bi_reverse((unsigned)n, 5); 2407 1.1 paulus } 2408 1.7 christos static_init_done = 1; 2409 1.17 fvdl 2410 1.17 fvdl # ifdef GEN_TREES_H 2411 1.17 fvdl gen_trees_header(); 2412 1.17 fvdl # endif 2413 1.17 fvdl #endif /* defined(GEN_TREES_H) || !defined(STDC) */ 2414 1.1 paulus } 2415 1.1 paulus 2416 1.1 paulus /* =========================================================================== 2417 1.17 fvdl * Genererate the file trees.h describing the static trees. 2418 1.17 fvdl */ 2419 1.17 fvdl #ifdef GEN_TREES_H 2420 1.17 fvdl # ifndef DEBUG_ZLIB 2421 1.17 fvdl # include <stdio.h> 2422 1.17 fvdl # endif 2423 1.17 fvdl 2424 1.17 fvdl # define SEPARATOR(i, last, width) \ 2425 1.17 fvdl ((i) == (last)? "\n};\n\n" : \ 2426 1.17 fvdl ((i) % (width) == (width)-1 ? ",\n" : ", ")) 2427 1.17 fvdl 2428 1.33 cegger void gen_trees_header(void) 2429 1.17 fvdl { 2430 1.17 fvdl FILE *header = fopen("trees.h", "w"); 2431 1.17 fvdl int i; 2432 1.17 fvdl 2433 1.17 fvdl Assert (header != NULL, "Can't open trees.h"); 2434 1.17 fvdl fprintf(header, 2435 1.17 fvdl "/* header created automatically with -DGEN_TREES_H */\n\n"); 2436 1.17 fvdl 2437 1.17 fvdl fprintf(header, "local const ct_data static_ltree[L_CODES+2] = {\n"); 2438 1.17 fvdl for (i = 0; i < L_CODES+2; i++) { 2439 1.17 fvdl fprintf(header, "{{%3u},{%3u}}%s", static_ltree[i].Code, 2440 1.17 fvdl static_ltree[i].Len, SEPARATOR(i, L_CODES+1, 5)); 2441 1.17 fvdl } 2442 1.17 fvdl 2443 1.17 fvdl fprintf(header, "local const ct_data static_dtree[D_CODES] = {\n"); 2444 1.17 fvdl for (i = 0; i < D_CODES; i++) { 2445 1.17 fvdl fprintf(header, "{{%2u},{%2u}}%s", static_dtree[i].Code, 2446 1.17 fvdl static_dtree[i].Len, SEPARATOR(i, D_CODES-1, 5)); 2447 1.17 fvdl } 2448 1.17 fvdl 2449 1.17 fvdl fprintf(header, "const uch _dist_code[DIST_CODE_LEN] = {\n"); 2450 1.17 fvdl for (i = 0; i < DIST_CODE_LEN; i++) { 2451 1.17 fvdl fprintf(header, "%2u%s", _dist_code[i], 2452 1.17 fvdl SEPARATOR(i, DIST_CODE_LEN-1, 20)); 2453 1.17 fvdl } 2454 1.17 fvdl 2455 1.17 fvdl fprintf(header, "const uch _length_code[MAX_MATCH-MIN_MATCH+1]= {\n"); 2456 1.17 fvdl for (i = 0; i < MAX_MATCH-MIN_MATCH+1; i++) { 2457 1.17 fvdl fprintf(header, "%2u%s", _length_code[i], 2458 1.17 fvdl SEPARATOR(i, MAX_MATCH-MIN_MATCH, 20)); 2459 1.17 fvdl } 2460 1.17 fvdl 2461 1.17 fvdl fprintf(header, "local const int base_length[LENGTH_CODES] = {\n"); 2462 1.17 fvdl for (i = 0; i < LENGTH_CODES; i++) { 2463 1.17 fvdl fprintf(header, "%1u%s", base_length[i], 2464 1.17 fvdl SEPARATOR(i, LENGTH_CODES-1, 20)); 2465 1.17 fvdl } 2466 1.17 fvdl 2467 1.17 fvdl fprintf(header, "local const int base_dist[D_CODES] = {\n"); 2468 1.17 fvdl for (i = 0; i < D_CODES; i++) { 2469 1.17 fvdl fprintf(header, "%5u%s", base_dist[i], 2470 1.17 fvdl SEPARATOR(i, D_CODES-1, 10)); 2471 1.17 fvdl } 2472 1.17 fvdl 2473 1.17 fvdl fclose(header); 2474 1.17 fvdl } 2475 1.17 fvdl #endif /* GEN_TREES_H */ 2476 1.17 fvdl 2477 1.17 fvdl /* =========================================================================== 2478 1.1 paulus * Initialize the tree data structures for a new zlib stream. 2479 1.1 paulus */ 2480 1.32 cegger void _tr_init(deflate_state *s) 2481 1.1 paulus { 2482 1.7 christos tr_static_init(); 2483 1.1 paulus 2484 1.1 paulus s->l_desc.dyn_tree = s->dyn_ltree; 2485 1.1 paulus s->l_desc.stat_desc = &static_l_desc; 2486 1.1 paulus 2487 1.1 paulus s->d_desc.dyn_tree = s->dyn_dtree; 2488 1.1 paulus s->d_desc.stat_desc = &static_d_desc; 2489 1.1 paulus 2490 1.1 paulus s->bl_desc.dyn_tree = s->bl_tree; 2491 1.1 paulus s->bl_desc.stat_desc = &static_bl_desc; 2492 1.1 paulus 2493 1.1 paulus s->bi_buf = 0; 2494 1.1 paulus s->bi_valid = 0; 2495 1.1 paulus s->last_eob_len = 8; /* enough lookahead for inflate */ 2496 1.1 paulus #ifdef DEBUG_ZLIB 2497 1.17 fvdl s->compressed_len = 0L; 2498 1.1 paulus s->bits_sent = 0L; 2499 1.1 paulus #endif 2500 1.1 paulus 2501 1.1 paulus /* Initialize the first block of the first file: */ 2502 1.1 paulus init_block(s); 2503 1.1 paulus } 2504 1.1 paulus 2505 1.1 paulus /* =========================================================================== 2506 1.1 paulus * Initialize a new block. 2507 1.1 paulus */ 2508 1.32 cegger local void init_block(deflate_state *s) 2509 1.1 paulus { 2510 1.1 paulus int n; /* iterates over tree elements */ 2511 1.1 paulus 2512 1.1 paulus /* Initialize the trees. */ 2513 1.1 paulus for (n = 0; n < L_CODES; n++) s->dyn_ltree[n].Freq = 0; 2514 1.1 paulus for (n = 0; n < D_CODES; n++) s->dyn_dtree[n].Freq = 0; 2515 1.1 paulus for (n = 0; n < BL_CODES; n++) s->bl_tree[n].Freq = 0; 2516 1.1 paulus 2517 1.1 paulus s->dyn_ltree[END_BLOCK].Freq = 1; 2518 1.1 paulus s->opt_len = s->static_len = 0L; 2519 1.1 paulus s->last_lit = s->matches = 0; 2520 1.1 paulus } 2521 1.1 paulus 2522 1.1 paulus #define SMALLEST 1 2523 1.1 paulus /* Index within the heap array of least frequent node in the Huffman tree */ 2524 1.1 paulus 2525 1.1 paulus 2526 1.1 paulus /* =========================================================================== 2527 1.1 paulus * Remove the smallest element from the heap and recreate the heap with 2528 1.1 paulus * one less element. Updates heap and heap_len. 2529 1.1 paulus */ 2530 1.1 paulus #define pqremove(s, tree, top) \ 2531 1.1 paulus {\ 2532 1.1 paulus top = s->heap[SMALLEST]; \ 2533 1.1 paulus s->heap[SMALLEST] = s->heap[s->heap_len--]; \ 2534 1.1 paulus pqdownheap(s, tree, SMALLEST); \ 2535 1.1 paulus } 2536 1.1 paulus 2537 1.1 paulus /* =========================================================================== 2538 1.1 paulus * Compares to subtrees, using the tree depth as tie breaker when 2539 1.1 paulus * the subtrees have equal frequency. This minimizes the worst case length. 2540 1.1 paulus */ 2541 1.1 paulus #define smaller(tree, n, m, depth) \ 2542 1.1 paulus (tree[n].Freq < tree[m].Freq || \ 2543 1.1 paulus (tree[n].Freq == tree[m].Freq && depth[n] <= depth[m])) 2544 1.1 paulus 2545 1.1 paulus /* =========================================================================== 2546 1.1 paulus * Restore the heap property by moving down the tree starting at node k, 2547 1.1 paulus * exchanging a node with the smallest of its two sons if necessary, stopping 2548 1.1 paulus * when the heap property is re-established (each father smaller than its 2549 1.1 paulus * two sons). 2550 1.1 paulus */ 2551 1.32 cegger local void pqdownheap(deflate_state *s, 2552 1.32 cegger ct_data *tree, /* the tree to restore */ 2553 1.32 cegger int k) /* node to move down */ 2554 1.1 paulus { 2555 1.1 paulus int v = s->heap[k]; 2556 1.1 paulus int j = k << 1; /* left son of k */ 2557 1.1 paulus while (j <= s->heap_len) { 2558 1.1 paulus /* Set j to the smallest of the two sons: */ 2559 1.1 paulus if (j < s->heap_len && 2560 1.1 paulus smaller(tree, s->heap[j+1], s->heap[j], s->depth)) { 2561 1.1 paulus j++; 2562 1.1 paulus } 2563 1.1 paulus /* Exit if v is smaller than both sons */ 2564 1.1 paulus if (smaller(tree, v, s->heap[j], s->depth)) break; 2565 1.1 paulus 2566 1.1 paulus /* Exchange v with the smallest son */ 2567 1.1 paulus s->heap[k] = s->heap[j]; k = j; 2568 1.1 paulus 2569 1.1 paulus /* And continue down the tree, setting j to the left son of k */ 2570 1.1 paulus j <<= 1; 2571 1.1 paulus } 2572 1.1 paulus s->heap[k] = v; 2573 1.1 paulus } 2574 1.1 paulus 2575 1.1 paulus /* =========================================================================== 2576 1.1 paulus * Compute the optimal bit lengths for a tree and update the total bit length 2577 1.1 paulus * for the current block. 2578 1.1 paulus * IN assertion: the fields freq and dad are set, heap[heap_max] and 2579 1.1 paulus * above are the tree nodes sorted by increasing frequency. 2580 1.1 paulus * OUT assertions: the field len is set to the optimal bit length, the 2581 1.1 paulus * array bl_count contains the frequencies for each bit length. 2582 1.1 paulus * The length opt_len is updated; static_len is also updated if stree is 2583 1.1 paulus * not null. 2584 1.1 paulus */ 2585 1.32 cegger local void gen_bitlen(deflate_state *s, 2586 1.32 cegger tree_desc *desc) /* the tree descriptor */ 2587 1.1 paulus { 2588 1.17 fvdl ct_data *tree = desc->dyn_tree; 2589 1.17 fvdl int max_code = desc->max_code; 2590 1.17 fvdl const ct_data *stree = desc->stat_desc->static_tree; 2591 1.12 jdolecek const intf *extra = desc->stat_desc->extra_bits; 2592 1.17 fvdl int base = desc->stat_desc->extra_base; 2593 1.17 fvdl int max_length = desc->stat_desc->max_length; 2594 1.1 paulus int h; /* heap index */ 2595 1.1 paulus int n, m; /* iterate over the tree elements */ 2596 1.1 paulus int bits; /* bit length */ 2597 1.1 paulus int xbits; /* extra bits */ 2598 1.1 paulus ush f; /* frequency */ 2599 1.1 paulus int overflow = 0; /* number of elements with bit length too large */ 2600 1.1 paulus 2601 1.1 paulus for (bits = 0; bits <= MAX_BITS; bits++) s->bl_count[bits] = 0; 2602 1.1 paulus 2603 1.1 paulus /* In a first pass, compute the optimal bit lengths (which may 2604 1.1 paulus * overflow in the case of the bit length tree). 2605 1.1 paulus */ 2606 1.1 paulus tree[s->heap[s->heap_max]].Len = 0; /* root of the heap */ 2607 1.1 paulus 2608 1.1 paulus for (h = s->heap_max+1; h < HEAP_SIZE; h++) { 2609 1.1 paulus n = s->heap[h]; 2610 1.1 paulus bits = tree[tree[n].Dad].Len + 1; 2611 1.1 paulus if (bits > max_length) bits = max_length, overflow++; 2612 1.1 paulus tree[n].Len = (ush)bits; 2613 1.1 paulus /* We overwrite tree[n].Dad which is no longer needed */ 2614 1.1 paulus 2615 1.1 paulus if (n > max_code) continue; /* not a leaf node */ 2616 1.1 paulus 2617 1.1 paulus s->bl_count[bits]++; 2618 1.1 paulus xbits = 0; 2619 1.1 paulus if (n >= base) xbits = extra[n-base]; 2620 1.1 paulus f = tree[n].Freq; 2621 1.1 paulus s->opt_len += (ulg)f * (bits + xbits); 2622 1.1 paulus if (stree) s->static_len += (ulg)f * (stree[n].Len + xbits); 2623 1.1 paulus } 2624 1.1 paulus if (overflow == 0) return; 2625 1.1 paulus 2626 1.1 paulus Trace((stderr,"\nbit length overflow\n")); 2627 1.1 paulus /* This happens for example on obj2 and pic of the Calgary corpus */ 2628 1.1 paulus 2629 1.1 paulus /* Find the first bit length which could increase: */ 2630 1.1 paulus do { 2631 1.1 paulus bits = max_length-1; 2632 1.1 paulus while (s->bl_count[bits] == 0) bits--; 2633 1.1 paulus s->bl_count[bits]--; /* move one leaf down the tree */ 2634 1.1 paulus s->bl_count[bits+1] += 2; /* move one overflow item as its brother */ 2635 1.1 paulus s->bl_count[max_length]--; 2636 1.1 paulus /* The brother of the overflow item also moves one step up, 2637 1.1 paulus * but this does not affect bl_count[max_length] 2638 1.1 paulus */ 2639 1.1 paulus overflow -= 2; 2640 1.1 paulus } while (overflow > 0); 2641 1.1 paulus 2642 1.1 paulus /* Now recompute all bit lengths, scanning in increasing frequency. 2643 1.1 paulus * h is still equal to HEAP_SIZE. (It is simpler to reconstruct all 2644 1.1 paulus * lengths instead of fixing only the wrong ones. This idea is taken 2645 1.1 paulus * from 'ar' written by Haruhiko Okumura.) 2646 1.1 paulus */ 2647 1.1 paulus for (bits = max_length; bits != 0; bits--) { 2648 1.1 paulus n = s->bl_count[bits]; 2649 1.1 paulus while (n != 0) { 2650 1.1 paulus m = s->heap[--h]; 2651 1.1 paulus if (m > max_code) continue; 2652 1.1 paulus if (tree[m].Len != (unsigned) bits) { 2653 1.1 paulus Trace((stderr,"code %d bits %d->%d\n", m, tree[m].Len, bits)); 2654 1.1 paulus s->opt_len += ((long)bits - (long)tree[m].Len) 2655 1.1 paulus *(long)tree[m].Freq; 2656 1.1 paulus tree[m].Len = (ush)bits; 2657 1.1 paulus } 2658 1.1 paulus n--; 2659 1.1 paulus } 2660 1.1 paulus } 2661 1.1 paulus } 2662 1.1 paulus 2663 1.1 paulus /* =========================================================================== 2664 1.1 paulus * Generate the codes for a given tree and bit counts (which need not be 2665 1.1 paulus * optimal). 2666 1.1 paulus * IN assertion: the array bl_count contains the bit length statistics for 2667 1.1 paulus * the given tree and the field len is set for all tree elements. 2668 1.1 paulus * OUT assertion: the field code is set for all tree elements of non 2669 1.1 paulus * zero code length. 2670 1.1 paulus */ 2671 1.32 cegger local void gen_codes (ct_data *tree, /* the tree to decorate */ 2672 1.32 cegger int max_code, /* largest code with non zero frequency */ 2673 1.32 cegger ushf *bl_count) /* number of codes at each bit length */ 2674 1.1 paulus { 2675 1.1 paulus ush next_code[MAX_BITS+1]; /* next code value for each bit length */ 2676 1.1 paulus ush code = 0; /* running code value */ 2677 1.1 paulus int bits; /* bit index */ 2678 1.1 paulus int n; /* code index */ 2679 1.1 paulus 2680 1.1 paulus /* The distribution counts are first used to generate the code values 2681 1.1 paulus * without bit reversal. 2682 1.1 paulus */ 2683 1.1 paulus for (bits = 1; bits <= MAX_BITS; bits++) { 2684 1.1 paulus next_code[bits] = code = (code + bl_count[bits-1]) << 1; 2685 1.1 paulus } 2686 1.1 paulus /* Check that the bit counts in bl_count are consistent. The last code 2687 1.1 paulus * must be all ones. 2688 1.1 paulus */ 2689 1.1 paulus Assert (code + bl_count[MAX_BITS]-1 == (1<<MAX_BITS)-1, 2690 1.1 paulus "inconsistent bit counts"); 2691 1.1 paulus Tracev((stderr,"\ngen_codes: max_code %d ", max_code)); 2692 1.1 paulus 2693 1.1 paulus for (n = 0; n <= max_code; n++) { 2694 1.1 paulus int len = tree[n].Len; 2695 1.1 paulus if (len == 0) continue; 2696 1.1 paulus /* Now reverse the bits */ 2697 1.1 paulus tree[n].Code = bi_reverse(next_code[len]++, len); 2698 1.1 paulus 2699 1.7 christos Tracecv(tree != static_ltree, (stderr,"\nn %3d %c l %2d c %4x (%x) ", 2700 1.1 paulus n, (isgraph(n) ? n : ' '), len, tree[n].Code, next_code[len]-1)); 2701 1.1 paulus } 2702 1.1 paulus } 2703 1.1 paulus 2704 1.1 paulus /* =========================================================================== 2705 1.1 paulus * Construct one Huffman tree and assigns the code bit strings and lengths. 2706 1.1 paulus * Update the total bit length for the current block. 2707 1.1 paulus * IN assertion: the field freq is set for all tree elements. 2708 1.1 paulus * OUT assertions: the fields len and code are set to the optimal bit length 2709 1.1 paulus * and corresponding code. The length opt_len is updated; static_len is 2710 1.1 paulus * also updated if stree is not null. The field max_code is set. 2711 1.1 paulus */ 2712 1.32 cegger local void build_tree(deflate_state *s, 2713 1.32 cegger tree_desc *desc) /* the tree descriptor */ 2714 1.1 paulus { 2715 1.17 fvdl ct_data *tree = desc->dyn_tree; 2716 1.17 fvdl const ct_data *stree = desc->stat_desc->static_tree; 2717 1.17 fvdl int elems = desc->stat_desc->elems; 2718 1.1 paulus int n, m; /* iterate over heap elements */ 2719 1.1 paulus int max_code = -1; /* largest code with non zero frequency */ 2720 1.1 paulus int node; /* new node being created */ 2721 1.1 paulus 2722 1.1 paulus /* Construct the initial heap, with least frequent element in 2723 1.1 paulus * heap[SMALLEST]. The sons of heap[n] are heap[2*n] and heap[2*n+1]. 2724 1.1 paulus * heap[0] is not used. 2725 1.1 paulus */ 2726 1.1 paulus s->heap_len = 0, s->heap_max = HEAP_SIZE; 2727 1.1 paulus 2728 1.1 paulus for (n = 0; n < elems; n++) { 2729 1.1 paulus if (tree[n].Freq != 0) { 2730 1.1 paulus s->heap[++(s->heap_len)] = max_code = n; 2731 1.1 paulus s->depth[n] = 0; 2732 1.1 paulus } else { 2733 1.1 paulus tree[n].Len = 0; 2734 1.1 paulus } 2735 1.1 paulus } 2736 1.1 paulus 2737 1.1 paulus /* The pkzip format requires that at least one distance code exists, 2738 1.1 paulus * and that at least one bit should be sent even if there is only one 2739 1.1 paulus * possible code. So to avoid special checks later on we force at least 2740 1.1 paulus * two codes of non zero frequency. 2741 1.1 paulus */ 2742 1.1 paulus while (s->heap_len < 2) { 2743 1.1 paulus node = s->heap[++(s->heap_len)] = (max_code < 2 ? ++max_code : 0); 2744 1.1 paulus tree[node].Freq = 1; 2745 1.1 paulus s->depth[node] = 0; 2746 1.1 paulus s->opt_len--; if (stree) s->static_len -= stree[node].Len; 2747 1.1 paulus /* node is 0 or 1 so it does not have extra bits */ 2748 1.1 paulus } 2749 1.1 paulus desc->max_code = max_code; 2750 1.1 paulus 2751 1.1 paulus /* The elements heap[heap_len/2+1 .. heap_len] are leaves of the tree, 2752 1.1 paulus * establish sub-heaps of increasing lengths: 2753 1.1 paulus */ 2754 1.1 paulus for (n = s->heap_len/2; n >= 1; n--) pqdownheap(s, tree, n); 2755 1.1 paulus 2756 1.1 paulus /* Construct the Huffman tree by repeatedly combining the least two 2757 1.1 paulus * frequent nodes. 2758 1.1 paulus */ 2759 1.1 paulus node = elems; /* next internal node of the tree */ 2760 1.1 paulus do { 2761 1.1 paulus pqremove(s, tree, n); /* n = node of least frequency */ 2762 1.1 paulus m = s->heap[SMALLEST]; /* m = node of next least frequency */ 2763 1.1 paulus 2764 1.1 paulus s->heap[--(s->heap_max)] = n; /* keep the nodes sorted by frequency */ 2765 1.1 paulus s->heap[--(s->heap_max)] = m; 2766 1.1 paulus 2767 1.1 paulus /* Create a new node father of n and m */ 2768 1.1 paulus tree[node].Freq = tree[n].Freq + tree[m].Freq; 2769 1.1 paulus s->depth[node] = (uch) (MAX(s->depth[n], s->depth[m]) + 1); 2770 1.1 paulus tree[n].Dad = tree[m].Dad = (ush)node; 2771 1.1 paulus #ifdef DUMP_BL_TREE 2772 1.1 paulus if (tree == s->bl_tree) { 2773 1.1 paulus fprintf(stderr,"\nnode %d(%d), sons %d(%d) %d(%d)", 2774 1.1 paulus node, tree[node].Freq, n, tree[n].Freq, m, tree[m].Freq); 2775 1.1 paulus } 2776 1.1 paulus #endif 2777 1.1 paulus /* and insert the new node in the heap */ 2778 1.1 paulus s->heap[SMALLEST] = node++; 2779 1.1 paulus pqdownheap(s, tree, SMALLEST); 2780 1.1 paulus 2781 1.1 paulus } while (s->heap_len >= 2); 2782 1.1 paulus 2783 1.1 paulus s->heap[--(s->heap_max)] = s->heap[SMALLEST]; 2784 1.1 paulus 2785 1.1 paulus /* At this point, the fields freq and dad are set. We can now 2786 1.1 paulus * generate the bit lengths. 2787 1.1 paulus */ 2788 1.1 paulus gen_bitlen(s, (tree_desc *)desc); 2789 1.1 paulus 2790 1.1 paulus /* The field len is now set, we can generate the bit codes */ 2791 1.1 paulus gen_codes ((ct_data *)tree, max_code, s->bl_count); 2792 1.1 paulus } 2793 1.1 paulus 2794 1.1 paulus /* =========================================================================== 2795 1.1 paulus * Scan a literal or distance tree to determine the frequencies of the codes 2796 1.1 paulus * in the bit length tree. 2797 1.1 paulus */ 2798 1.32 cegger local void scan_tree (deflate_state *s, 2799 1.32 cegger ct_data *tree, /* the tree to be scanned */ 2800 1.32 cegger int max_code) /* and its largest code of non zero frequency */ 2801 1.1 paulus { 2802 1.1 paulus int n; /* iterates over all tree elements */ 2803 1.1 paulus int prevlen = -1; /* last emitted length */ 2804 1.1 paulus int curlen; /* length of current code */ 2805 1.1 paulus int nextlen = tree[0].Len; /* length of next code */ 2806 1.1 paulus int count = 0; /* repeat count of the current code */ 2807 1.1 paulus int max_count = 7; /* max repeat count */ 2808 1.1 paulus int min_count = 4; /* min repeat count */ 2809 1.1 paulus 2810 1.1 paulus if (nextlen == 0) max_count = 138, min_count = 3; 2811 1.1 paulus tree[max_code+1].Len = (ush)0xffff; /* guard */ 2812 1.1 paulus 2813 1.1 paulus for (n = 0; n <= max_code; n++) { 2814 1.1 paulus curlen = nextlen; nextlen = tree[n+1].Len; 2815 1.1 paulus if (++count < max_count && curlen == nextlen) { 2816 1.1 paulus continue; 2817 1.1 paulus } else if (count < min_count) { 2818 1.1 paulus s->bl_tree[curlen].Freq += count; 2819 1.1 paulus } else if (curlen != 0) { 2820 1.1 paulus if (curlen != prevlen) s->bl_tree[curlen].Freq++; 2821 1.1 paulus s->bl_tree[REP_3_6].Freq++; 2822 1.1 paulus } else if (count <= 10) { 2823 1.1 paulus s->bl_tree[REPZ_3_10].Freq++; 2824 1.1 paulus } else { 2825 1.1 paulus s->bl_tree[REPZ_11_138].Freq++; 2826 1.1 paulus } 2827 1.1 paulus count = 0; prevlen = curlen; 2828 1.1 paulus if (nextlen == 0) { 2829 1.1 paulus max_count = 138, min_count = 3; 2830 1.1 paulus } else if (curlen == nextlen) { 2831 1.1 paulus max_count = 6, min_count = 3; 2832 1.1 paulus } else { 2833 1.1 paulus max_count = 7, min_count = 4; 2834 1.1 paulus } 2835 1.1 paulus } 2836 1.1 paulus } 2837 1.1 paulus 2838 1.1 paulus /* =========================================================================== 2839 1.1 paulus * Send a literal or distance tree in compressed form, using the codes in 2840 1.1 paulus * bl_tree. 2841 1.1 paulus */ 2842 1.32 cegger local void send_tree (deflate_state *s, 2843 1.32 cegger ct_data *tree, /* the tree to be scanned */ 2844 1.32 cegger int max_code) /* and its largest code of non zero frequency */ 2845 1.1 paulus { 2846 1.1 paulus int n; /* iterates over all tree elements */ 2847 1.1 paulus int prevlen = -1; /* last emitted length */ 2848 1.1 paulus int curlen; /* length of current code */ 2849 1.1 paulus int nextlen = tree[0].Len; /* length of next code */ 2850 1.1 paulus int count = 0; /* repeat count of the current code */ 2851 1.1 paulus int max_count = 7; /* max repeat count */ 2852 1.1 paulus int min_count = 4; /* min repeat count */ 2853 1.1 paulus 2854 1.1 paulus /* tree[max_code+1].Len = -1; */ /* guard already set */ 2855 1.1 paulus if (nextlen == 0) max_count = 138, min_count = 3; 2856 1.1 paulus 2857 1.1 paulus for (n = 0; n <= max_code; n++) { 2858 1.1 paulus curlen = nextlen; nextlen = tree[n+1].Len; 2859 1.1 paulus if (++count < max_count && curlen == nextlen) { 2860 1.1 paulus continue; 2861 1.1 paulus } else if (count < min_count) { 2862 1.1 paulus do { send_code(s, curlen, s->bl_tree); } while (--count != 0); 2863 1.1 paulus 2864 1.1 paulus } else if (curlen != 0) { 2865 1.1 paulus if (curlen != prevlen) { 2866 1.1 paulus send_code(s, curlen, s->bl_tree); count--; 2867 1.1 paulus } 2868 1.1 paulus Assert(count >= 3 && count <= 6, " 3_6?"); 2869 1.1 paulus send_code(s, REP_3_6, s->bl_tree); send_bits(s, count-3, 2); 2870 1.1 paulus 2871 1.1 paulus } else if (count <= 10) { 2872 1.1 paulus send_code(s, REPZ_3_10, s->bl_tree); send_bits(s, count-3, 3); 2873 1.1 paulus 2874 1.1 paulus } else { 2875 1.1 paulus send_code(s, REPZ_11_138, s->bl_tree); send_bits(s, count-11, 7); 2876 1.1 paulus } 2877 1.1 paulus count = 0; prevlen = curlen; 2878 1.1 paulus if (nextlen == 0) { 2879 1.1 paulus max_count = 138, min_count = 3; 2880 1.1 paulus } else if (curlen == nextlen) { 2881 1.1 paulus max_count = 6, min_count = 3; 2882 1.1 paulus } else { 2883 1.1 paulus max_count = 7, min_count = 4; 2884 1.1 paulus } 2885 1.1 paulus } 2886 1.1 paulus } 2887 1.1 paulus 2888 1.1 paulus /* =========================================================================== 2889 1.1 paulus * Construct the Huffman tree for the bit lengths and return the index in 2890 1.1 paulus * bl_order of the last bit length code to send. 2891 1.1 paulus */ 2892 1.32 cegger local int build_bl_tree(deflate_state *s) 2893 1.1 paulus { 2894 1.1 paulus int max_blindex; /* index of last bit length code of non zero freq */ 2895 1.1 paulus 2896 1.1 paulus /* Determine the bit length frequencies for literal and distance trees */ 2897 1.1 paulus scan_tree(s, (ct_data *)s->dyn_ltree, s->l_desc.max_code); 2898 1.1 paulus scan_tree(s, (ct_data *)s->dyn_dtree, s->d_desc.max_code); 2899 1.1 paulus 2900 1.1 paulus /* Build the bit length tree: */ 2901 1.1 paulus build_tree(s, (tree_desc *)(&(s->bl_desc))); 2902 1.1 paulus /* opt_len now includes the length of the tree representations, except 2903 1.1 paulus * the lengths of the bit lengths codes and the 5+5+4 bits for the counts. 2904 1.1 paulus */ 2905 1.1 paulus 2906 1.1 paulus /* Determine the number of bit length codes to send. The pkzip format 2907 1.1 paulus * requires that at least 4 bit length codes be sent. (appnote.txt says 2908 1.1 paulus * 3 but the actual value used is 4.) 2909 1.1 paulus */ 2910 1.1 paulus for (max_blindex = BL_CODES-1; max_blindex >= 3; max_blindex--) { 2911 1.1 paulus if (s->bl_tree[bl_order[max_blindex]].Len != 0) break; 2912 1.1 paulus } 2913 1.1 paulus /* Update opt_len to include the bit length tree and counts */ 2914 1.1 paulus s->opt_len += 3*(max_blindex+1) + 5+5+4; 2915 1.1 paulus Tracev((stderr, "\ndyn trees: dyn %ld, stat %ld", 2916 1.1 paulus s->opt_len, s->static_len)); 2917 1.1 paulus 2918 1.1 paulus return max_blindex; 2919 1.1 paulus } 2920 1.1 paulus 2921 1.1 paulus /* =========================================================================== 2922 1.1 paulus * Send the header for a block using dynamic Huffman trees: the counts, the 2923 1.1 paulus * lengths of the bit length codes, the literal tree and the distance tree. 2924 1.1 paulus * IN assertion: lcodes >= 257, dcodes >= 1, blcodes >= 4. 2925 1.1 paulus */ 2926 1.32 cegger local void send_all_trees(deflate_state *s, 2927 1.32 cegger int lcodes, int dcodes, int blcodes) /* number of codes for each tree */ 2928 1.1 paulus { 2929 1.1 paulus int rank; /* index in bl_order */ 2930 1.1 paulus 2931 1.1 paulus Assert (lcodes >= 257 && dcodes >= 1 && blcodes >= 4, "not enough codes"); 2932 1.1 paulus Assert (lcodes <= L_CODES && dcodes <= D_CODES && blcodes <= BL_CODES, 2933 1.1 paulus "too many codes"); 2934 1.1 paulus Tracev((stderr, "\nbl counts: ")); 2935 1.1 paulus send_bits(s, lcodes-257, 5); /* not +255 as stated in appnote.txt */ 2936 1.1 paulus send_bits(s, dcodes-1, 5); 2937 1.1 paulus send_bits(s, blcodes-4, 4); /* not -3 as stated in appnote.txt */ 2938 1.1 paulus for (rank = 0; rank < blcodes; rank++) { 2939 1.1 paulus Tracev((stderr, "\nbl code %2d ", bl_order[rank])); 2940 1.1 paulus send_bits(s, s->bl_tree[bl_order[rank]].Len, 3); 2941 1.1 paulus } 2942 1.1 paulus Tracev((stderr, "\nbl tree: sent %ld", s->bits_sent)); 2943 1.1 paulus 2944 1.1 paulus send_tree(s, (ct_data *)s->dyn_ltree, lcodes-1); /* literal tree */ 2945 1.1 paulus Tracev((stderr, "\nlit tree: sent %ld", s->bits_sent)); 2946 1.1 paulus 2947 1.1 paulus send_tree(s, (ct_data *)s->dyn_dtree, dcodes-1); /* distance tree */ 2948 1.1 paulus Tracev((stderr, "\ndist tree: sent %ld", s->bits_sent)); 2949 1.1 paulus } 2950 1.1 paulus 2951 1.1 paulus /* =========================================================================== 2952 1.1 paulus * Send a stored block 2953 1.1 paulus */ 2954 1.32 cegger void _tr_stored_block(deflate_state *s, 2955 1.32 cegger charf *buf, /* input block */ 2956 1.32 cegger ulg stored_len, /* length of input block */ 2957 1.32 cegger int eof) /* true if this is the last block for a file */ 2958 1.1 paulus { 2959 1.1 paulus send_bits(s, (STORED_BLOCK<<1)+eof, 3); /* send block type */ 2960 1.17 fvdl #ifdef DEBUG_ZLIB 2961 1.7 christos s->compressed_len = (s->compressed_len + 3 + 7) & (ulg)~7L; 2962 1.1 paulus s->compressed_len += (stored_len + 4) << 3; 2963 1.17 fvdl #endif 2964 1.1 paulus copy_block(s, buf, (unsigned)stored_len, 1); /* with header */ 2965 1.1 paulus } 2966 1.1 paulus 2967 1.1 paulus /* Send just the `stored block' type code without any length bytes or data. 2968 1.1 paulus */ 2969 1.32 cegger void _tr_stored_type_only(deflate_state *s) 2970 1.1 paulus { 2971 1.1 paulus send_bits(s, (STORED_BLOCK << 1), 3); 2972 1.1 paulus bi_windup(s); 2973 1.17 fvdl #ifdef DEBUG_ZLIB 2974 1.1 paulus s->compressed_len = (s->compressed_len + 3) & ~7L; 2975 1.17 fvdl #endif 2976 1.1 paulus } 2977 1.1 paulus 2978 1.1 paulus /* =========================================================================== 2979 1.1 paulus * Send one empty static block to give enough lookahead for inflate. 2980 1.1 paulus * This takes 10 bits, of which 7 may remain in the bit buffer. 2981 1.7 christos * The current inflate code requires 9 bits of lookahead. If the 2982 1.7 christos * last two codes for the previous block (real code plus EOB) were coded 2983 1.7 christos * on 5 bits or less, inflate may have only 5+3 bits of lookahead to decode 2984 1.7 christos * the last real code. In this case we send two empty static blocks instead 2985 1.7 christos * of one. (There are no problems if the previous block is stored or fixed.) 2986 1.7 christos * To simplify the code, we assume the worst case of last real code encoded 2987 1.7 christos * on one bit only. 2988 1.1 paulus */ 2989 1.32 cegger void _tr_align(deflate_state *s) 2990 1.1 paulus { 2991 1.1 paulus send_bits(s, STATIC_TREES<<1, 3); 2992 1.1 paulus send_code(s, END_BLOCK, static_ltree); 2993 1.17 fvdl #ifdef DEBUG_ZLIB 2994 1.1 paulus s->compressed_len += 10L; /* 3 for block type, 7 for EOB */ 2995 1.17 fvdl #endif 2996 1.1 paulus bi_flush(s); 2997 1.1 paulus /* Of the 10 bits for the empty block, we have already sent 2998 1.7 christos * (10 - bi_valid) bits. The lookahead for the last real code (before 2999 1.7 christos * the EOB of the previous block) was thus at least one plus the length 3000 1.7 christos * of the EOB plus what we have just sent of the empty static block. 3001 1.1 paulus */ 3002 1.7 christos if (1 + s->last_eob_len + 10 - s->bi_valid < 9) { 3003 1.1 paulus send_bits(s, STATIC_TREES<<1, 3); 3004 1.1 paulus send_code(s, END_BLOCK, static_ltree); 3005 1.17 fvdl #ifdef DEBUG_ZLIB 3006 1.1 paulus s->compressed_len += 10L; 3007 1.17 fvdl #endif 3008 1.1 paulus bi_flush(s); 3009 1.1 paulus } 3010 1.1 paulus s->last_eob_len = 7; 3011 1.1 paulus } 3012 1.1 paulus 3013 1.1 paulus /* =========================================================================== 3014 1.1 paulus * Determine the best encoding for the current block: dynamic trees, static 3015 1.17 fvdl * trees or store, and output the encoded block to the zip file. 3016 1.1 paulus */ 3017 1.32 cegger void _tr_flush_block(deflate_state *s, 3018 1.32 cegger charf *buf, /* input block, or NULL if too old */ 3019 1.32 cegger ulg stored_len, /* length of input block */ 3020 1.32 cegger int eof) /* true if this is the last block for a file */ 3021 1.1 paulus { 3022 1.1 paulus ulg opt_lenb, static_lenb; /* opt_len and static_len in bytes */ 3023 1.7 christos int max_blindex = 0; /* index of last bit length code of non zero freq */ 3024 1.1 paulus 3025 1.7 christos /* Build the Huffman trees unless a stored block is forced */ 3026 1.7 christos if (s->level > 0) { 3027 1.1 paulus 3028 1.7 christos /* Check if the file is ascii or binary */ 3029 1.7 christos if (s->data_type == Z_UNKNOWN) set_data_type(s); 3030 1.1 paulus 3031 1.7 christos /* Construct the literal and distance trees */ 3032 1.7 christos build_tree(s, (tree_desc *)(&(s->l_desc))); 3033 1.7 christos Tracev((stderr, "\nlit data: dyn %ld, stat %ld", s->opt_len, 3034 1.7 christos s->static_len)); 3035 1.7 christos 3036 1.7 christos build_tree(s, (tree_desc *)(&(s->d_desc))); 3037 1.7 christos Tracev((stderr, "\ndist data: dyn %ld, stat %ld", s->opt_len, 3038 1.7 christos s->static_len)); 3039 1.7 christos /* At this point, opt_len and static_len are the total bit lengths of 3040 1.7 christos * the compressed block data, excluding the tree representations. 3041 1.7 christos */ 3042 1.7 christos 3043 1.7 christos /* Build the bit length tree for the above two trees, and get the index 3044 1.7 christos * in bl_order of the last bit length code to send. 3045 1.7 christos */ 3046 1.7 christos max_blindex = build_bl_tree(s); 3047 1.7 christos 3048 1.7 christos /* Determine the best encoding. Compute first the block length in bytes*/ 3049 1.7 christos opt_lenb = (s->opt_len+3+7)>>3; 3050 1.7 christos static_lenb = (s->static_len+3+7)>>3; 3051 1.7 christos 3052 1.7 christos Tracev((stderr, "\nopt %lu(%lu) stat %lu(%lu) stored %lu lit %u ", 3053 1.7 christos opt_lenb, s->opt_len, static_lenb, s->static_len, stored_len, 3054 1.7 christos s->last_lit)); 3055 1.1 paulus 3056 1.7 christos if (static_lenb <= opt_lenb) opt_lenb = static_lenb; 3057 1.1 paulus 3058 1.7 christos } else { 3059 1.7 christos Assert(buf != (char*)0, "lost buf"); 3060 1.7 christos opt_lenb = static_lenb = stored_len + 5; /* force a stored block */ 3061 1.7 christos } 3062 1.1 paulus 3063 1.1 paulus #ifdef FORCE_STORED 3064 1.7 christos if (buf != (char*)0) { /* force stored block */ 3065 1.1 paulus #else 3066 1.7 christos if (stored_len+4 <= opt_lenb && buf != (char*)0) { 3067 1.1 paulus /* 4: two words for the lengths */ 3068 1.1 paulus #endif 3069 1.1 paulus /* The test buf != NULL is only necessary if LIT_BUFSIZE > WSIZE. 3070 1.1 paulus * Otherwise we can't have processed more than WSIZE input bytes since 3071 1.1 paulus * the last block flush, because compression would have been 3072 1.1 paulus * successful. If LIT_BUFSIZE <= WSIZE, it is never too late to 3073 1.1 paulus * transform a block into a stored block. 3074 1.1 paulus */ 3075 1.7 christos _tr_stored_block(s, buf, stored_len, eof); 3076 1.1 paulus 3077 1.1 paulus #ifdef FORCE_STATIC 3078 1.7 christos } else if (static_lenb >= 0) { /* force static trees */ 3079 1.1 paulus #else 3080 1.7 christos } else if (static_lenb == opt_lenb) { 3081 1.1 paulus #endif 3082 1.1 paulus send_bits(s, (STATIC_TREES<<1)+eof, 3); 3083 1.21 christos compress_block(s, (const ct_data *)static_ltree, (const ct_data *)static_dtree); 3084 1.17 fvdl #ifdef DEBUG_ZLIB 3085 1.1 paulus s->compressed_len += 3 + s->static_len; 3086 1.17 fvdl #endif 3087 1.1 paulus } else { 3088 1.1 paulus send_bits(s, (DYN_TREES<<1)+eof, 3); 3089 1.1 paulus send_all_trees(s, s->l_desc.max_code+1, s->d_desc.max_code+1, 3090 1.1 paulus max_blindex+1); 3091 1.21 christos compress_block(s, (const ct_data *)s->dyn_ltree, (const ct_data *)s->dyn_dtree); 3092 1.17 fvdl #ifdef DEBUG_ZLIB 3093 1.1 paulus s->compressed_len += 3 + s->opt_len; 3094 1.17 fvdl #endif 3095 1.1 paulus } 3096 1.1 paulus Assert (s->compressed_len == s->bits_sent, "bad compressed size"); 3097 1.17 fvdl /* The above check is made mod 2^32, for files larger than 512 MB 3098 1.17 fvdl * and uLong implemented on 32 bits. 3099 1.17 fvdl */ 3100 1.1 paulus init_block(s); 3101 1.1 paulus 3102 1.1 paulus if (eof) { 3103 1.1 paulus bi_windup(s); 3104 1.17 fvdl #ifdef DEBUG_ZLIB 3105 1.1 paulus s->compressed_len += 7; /* align on byte boundary */ 3106 1.17 fvdl #endif 3107 1.1 paulus } 3108 1.1 paulus Tracev((stderr,"\ncomprlen %lu(%lu) ", s->compressed_len>>3, 3109 1.1 paulus s->compressed_len-7*eof)); 3110 1.1 paulus } 3111 1.1 paulus 3112 1.1 paulus /* =========================================================================== 3113 1.1 paulus * Save the match info and tally the frequency counts. Return true if 3114 1.1 paulus * the current block must be flushed. 3115 1.1 paulus */ 3116 1.19 kristerw #if 0 3117 1.32 cegger int _tr_tally (deflate_state *s, 3118 1.32 cegger unsigned dist, /* distance of matched string */ 3119 1.32 cegger unsigned lc) /* match length-MIN_MATCH or unmatched char (if dist==0) */ 3120 1.1 paulus { 3121 1.1 paulus s->d_buf[s->last_lit] = (ush)dist; 3122 1.1 paulus s->l_buf[s->last_lit++] = (uch)lc; 3123 1.1 paulus if (dist == 0) { 3124 1.1 paulus /* lc is the unmatched char */ 3125 1.1 paulus s->dyn_ltree[lc].Freq++; 3126 1.1 paulus } else { 3127 1.1 paulus s->matches++; 3128 1.1 paulus /* Here, lc is the match length - MIN_MATCH */ 3129 1.1 paulus dist--; /* dist = match distance - 1 */ 3130 1.1 paulus Assert((ush)dist < (ush)MAX_DIST(s) && 3131 1.1 paulus (ush)lc <= (ush)(MAX_MATCH-MIN_MATCH) && 3132 1.7 christos (ush)d_code(dist) < (ush)D_CODES, "_tr_tally: bad match"); 3133 1.1 paulus 3134 1.17 fvdl s->dyn_ltree[_length_code[lc]+LITERALS+1].Freq++; 3135 1.1 paulus s->dyn_dtree[d_code(dist)].Freq++; 3136 1.1 paulus } 3137 1.1 paulus 3138 1.17 fvdl #ifdef TRUNCATE_BLOCK 3139 1.1 paulus /* Try to guess if it is profitable to stop the current block here */ 3140 1.17 fvdl if ((s->last_lit & 0x1fff) == 0 && s->level > 2) { 3141 1.1 paulus /* Compute an upper bound for the compressed length */ 3142 1.1 paulus ulg out_length = (ulg)s->last_lit*8L; 3143 1.7 christos ulg in_length = (ulg)((long)s->strstart - s->block_start); 3144 1.1 paulus int dcode; 3145 1.1 paulus for (dcode = 0; dcode < D_CODES; dcode++) { 3146 1.1 paulus out_length += (ulg)s->dyn_dtree[dcode].Freq * 3147 1.1 paulus (5L+extra_dbits[dcode]); 3148 1.1 paulus } 3149 1.1 paulus out_length >>= 3; 3150 1.1 paulus Tracev((stderr,"\nlast_lit %u, in %ld, out ~%ld(%ld%%) ", 3151 1.1 paulus s->last_lit, in_length, out_length, 3152 1.1 paulus 100L - out_length*100L/in_length)); 3153 1.1 paulus if (s->matches < s->last_lit/2 && out_length < in_length/2) return 1; 3154 1.1 paulus } 3155 1.17 fvdl #endif 3156 1.1 paulus return (s->last_lit == s->lit_bufsize-1); 3157 1.1 paulus /* We avoid equality with lit_bufsize because of wraparound at 64K 3158 1.1 paulus * on 16 bit machines and because stored blocks are restricted to 3159 1.1 paulus * 64K-1 bytes. 3160 1.1 paulus */ 3161 1.1 paulus } 3162 1.19 kristerw #endif 3163 1.1 paulus 3164 1.1 paulus /* =========================================================================== 3165 1.1 paulus * Send the block data compressed using the given Huffman trees 3166 1.1 paulus */ 3167 1.32 cegger local void compress_block(deflate_state *s, 3168 1.32 cegger const ct_data *ltree, /* literal tree */ 3169 1.32 cegger const ct_data *dtree) /* distance tree */ 3170 1.1 paulus { 3171 1.1 paulus unsigned dist; /* distance of matched string */ 3172 1.1 paulus int lc; /* match length or unmatched char (if dist == 0) */ 3173 1.1 paulus unsigned lx = 0; /* running index in l_buf */ 3174 1.1 paulus unsigned code; /* the code to send */ 3175 1.1 paulus int extra; /* number of extra bits to send */ 3176 1.1 paulus 3177 1.1 paulus if (s->last_lit != 0) do { 3178 1.1 paulus dist = s->d_buf[lx]; 3179 1.1 paulus lc = s->l_buf[lx++]; 3180 1.1 paulus if (dist == 0) { 3181 1.1 paulus send_code(s, lc, ltree); /* send a literal byte */ 3182 1.1 paulus Tracecv(isgraph(lc), (stderr," '%c' ", lc)); 3183 1.1 paulus } else { 3184 1.1 paulus /* Here, lc is the match length - MIN_MATCH */ 3185 1.17 fvdl code = _length_code[lc]; 3186 1.1 paulus send_code(s, code+LITERALS+1, ltree); /* send the length code */ 3187 1.1 paulus extra = extra_lbits[code]; 3188 1.1 paulus if (extra != 0) { 3189 1.1 paulus lc -= base_length[code]; 3190 1.1 paulus send_bits(s, lc, extra); /* send the extra length bits */ 3191 1.1 paulus } 3192 1.1 paulus dist--; /* dist is now the match distance - 1 */ 3193 1.1 paulus code = d_code(dist); 3194 1.1 paulus Assert (code < D_CODES, "bad d_code"); 3195 1.1 paulus 3196 1.1 paulus send_code(s, code, dtree); /* send the distance code */ 3197 1.1 paulus extra = extra_dbits[code]; 3198 1.1 paulus if (extra != 0) { 3199 1.1 paulus dist -= base_dist[code]; 3200 1.1 paulus send_bits(s, dist, extra); /* send the extra distance bits */ 3201 1.1 paulus } 3202 1.1 paulus } /* literal or match pair ? */ 3203 1.1 paulus 3204 1.1 paulus /* Check that the overlay between pending_buf and d_buf+l_buf is ok: */ 3205 1.1 paulus Assert(s->pending < s->lit_bufsize + 2*lx, "pendingBuf overflow"); 3206 1.1 paulus 3207 1.1 paulus } while (lx < s->last_lit); 3208 1.1 paulus 3209 1.1 paulus send_code(s, END_BLOCK, ltree); 3210 1.1 paulus s->last_eob_len = ltree[END_BLOCK].Len; 3211 1.1 paulus } 3212 1.1 paulus 3213 1.1 paulus /* =========================================================================== 3214 1.7 christos * Set the data type to ASCII or BINARY, using a crude approximation: 3215 1.1 paulus * binary if more than 20% of the bytes are <= 6 or >= 128, ascii otherwise. 3216 1.1 paulus * IN assertion: the fields freq of dyn_ltree are set and the total of all 3217 1.1 paulus * frequencies does not exceed 64K (to fit in an int on 16 bit machines). 3218 1.1 paulus */ 3219 1.32 cegger local void set_data_type(deflate_state *s) 3220 1.1 paulus { 3221 1.1 paulus int n = 0; 3222 1.1 paulus unsigned ascii_freq = 0; 3223 1.1 paulus unsigned bin_freq = 0; 3224 1.1 paulus while (n < 7) bin_freq += s->dyn_ltree[n++].Freq; 3225 1.1 paulus while (n < 128) ascii_freq += s->dyn_ltree[n++].Freq; 3226 1.1 paulus while (n < LITERALS) bin_freq += s->dyn_ltree[n++].Freq; 3227 1.7 christos s->data_type = (Byte)(bin_freq > (ascii_freq >> 2) ? Z_BINARY : Z_ASCII); 3228 1.1 paulus } 3229 1.1 paulus 3230 1.1 paulus /* =========================================================================== 3231 1.1 paulus * Reverse the first len bits of a code, using straightforward code (a faster 3232 1.1 paulus * method would use a table) 3233 1.1 paulus * IN assertion: 1 <= len <= 15 3234 1.1 paulus */ 3235 1.32 cegger local unsigned bi_reverse(unsigned code, /* the value to invert */ 3236 1.32 cegger int len) /* its bit length */ 3237 1.1 paulus { 3238 1.10 augustss unsigned res = 0; 3239 1.1 paulus do { 3240 1.1 paulus res |= code & 1; 3241 1.1 paulus code >>= 1, res <<= 1; 3242 1.1 paulus } while (--len > 0); 3243 1.1 paulus return res >> 1; 3244 1.1 paulus } 3245 1.1 paulus 3246 1.1 paulus /* =========================================================================== 3247 1.1 paulus * Flush the bit buffer, keeping at most 7 bits in it. 3248 1.1 paulus */ 3249 1.32 cegger local void bi_flush(deflate_state *s) 3250 1.1 paulus { 3251 1.1 paulus if (s->bi_valid == 16) { 3252 1.1 paulus put_short(s, s->bi_buf); 3253 1.1 paulus s->bi_buf = 0; 3254 1.1 paulus s->bi_valid = 0; 3255 1.1 paulus } else if (s->bi_valid >= 8) { 3256 1.1 paulus put_byte(s, (Byte)s->bi_buf); 3257 1.1 paulus s->bi_buf >>= 8; 3258 1.1 paulus s->bi_valid -= 8; 3259 1.1 paulus } 3260 1.1 paulus } 3261 1.1 paulus 3262 1.1 paulus /* =========================================================================== 3263 1.1 paulus * Flush the bit buffer and align the output on a byte boundary 3264 1.1 paulus */ 3265 1.32 cegger local void bi_windup(deflate_state *s) 3266 1.1 paulus { 3267 1.1 paulus if (s->bi_valid > 8) { 3268 1.1 paulus put_short(s, s->bi_buf); 3269 1.1 paulus } else if (s->bi_valid > 0) { 3270 1.1 paulus put_byte(s, (Byte)s->bi_buf); 3271 1.1 paulus } 3272 1.1 paulus s->bi_buf = 0; 3273 1.1 paulus s->bi_valid = 0; 3274 1.1 paulus #ifdef DEBUG_ZLIB 3275 1.1 paulus s->bits_sent = (s->bits_sent+7) & ~7; 3276 1.1 paulus #endif 3277 1.1 paulus } 3278 1.1 paulus 3279 1.1 paulus /* =========================================================================== 3280 1.1 paulus * Copy a stored block, storing first the length and its 3281 1.1 paulus * one's complement if requested. 3282 1.1 paulus */ 3283 1.32 cegger local void copy_block(deflate_state *s, 3284 1.32 cegger charf *buf, /* the input data */ 3285 1.32 cegger unsigned len, /* its length */ 3286 1.32 cegger int header) /* true if block header must be written */ 3287 1.1 paulus { 3288 1.1 paulus bi_windup(s); /* align on byte boundary */ 3289 1.1 paulus s->last_eob_len = 8; /* enough lookahead for inflate */ 3290 1.1 paulus 3291 1.1 paulus if (header) { 3292 1.20 perry put_short(s, (ush)len); 3293 1.1 paulus put_short(s, (ush)~len); 3294 1.1 paulus #ifdef DEBUG_ZLIB 3295 1.1 paulus s->bits_sent += 2*16; 3296 1.1 paulus #endif 3297 1.1 paulus } 3298 1.1 paulus #ifdef DEBUG_ZLIB 3299 1.1 paulus s->bits_sent += (ulg)len<<3; 3300 1.1 paulus #endif 3301 1.7 christos /* bundle up the put_byte(s, *buf++) calls */ 3302 1.7 christos zmemcpy(&s->pending_buf[s->pending], buf, len); 3303 1.7 christos s->pending += len; 3304 1.1 paulus } 3305 1.7 christos /* --- trees.c */ 3306 1.7 christos 3307 1.7 christos /* +++ inflate.c */ 3308 1.17 fvdl 3309 1.7 christos /* inflate.c -- zlib interface to inflate modules 3310 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 3311 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 3312 1.7 christos */ 3313 1.1 paulus 3314 1.7 christos /* #include "zutil.h" */ 3315 1.1 paulus 3316 1.7 christos /* +++ infblock.h */ 3317 1.17 fvdl 3318 1.1 paulus /* infblock.h -- header to use infblock.c 3319 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 3320 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 3321 1.1 paulus */ 3322 1.1 paulus 3323 1.1 paulus /* WARNING: this file should *not* be used by applications. It is 3324 1.1 paulus part of the implementation of the compression library and is 3325 1.1 paulus subject to change. Applications should only use zlib.h. 3326 1.1 paulus */ 3327 1.1 paulus 3328 1.1 paulus struct inflate_blocks_state; 3329 1.1 paulus typedef struct inflate_blocks_state FAR inflate_blocks_statef; 3330 1.1 paulus 3331 1.31 dsl extern inflate_blocks_statef * inflate_blocks_new( 3332 1.7 christos z_streamp z, 3333 1.1 paulus check_func c, /* check function */ 3334 1.31 dsl uInt w); /* window size */ 3335 1.1 paulus 3336 1.31 dsl extern int inflate_blocks( 3337 1.1 paulus inflate_blocks_statef *, 3338 1.7 christos z_streamp , 3339 1.31 dsl int); /* initial return code */ 3340 1.1 paulus 3341 1.31 dsl extern void inflate_blocks_reset( 3342 1.1 paulus inflate_blocks_statef *, 3343 1.7 christos z_streamp , 3344 1.31 dsl uLongf *); /* check value on output */ 3345 1.1 paulus 3346 1.31 dsl extern int inflate_blocks_free( 3347 1.1 paulus inflate_blocks_statef *, 3348 1.31 dsl z_streamp); 3349 1.1 paulus 3350 1.31 dsl extern void inflate_set_dictionary( 3351 1.7 christos inflate_blocks_statef *s, 3352 1.7 christos const Bytef *d, /* dictionary */ 3353 1.31 dsl uInt n); /* dictionary length */ 3354 1.7 christos 3355 1.31 dsl extern int inflate_blocks_sync_point( 3356 1.31 dsl inflate_blocks_statef *s); 3357 1.31 dsl extern int inflate_addhistory( 3358 1.1 paulus inflate_blocks_statef *, 3359 1.31 dsl z_streamp); 3360 1.1 paulus 3361 1.31 dsl extern int inflate_packet_flush( 3362 1.31 dsl inflate_blocks_statef *); 3363 1.17 fvdl 3364 1.7 christos /* --- infblock.h */ 3365 1.1 paulus 3366 1.7 christos #ifndef NO_DUMMY_DECL 3367 1.7 christos struct inflate_blocks_state {int dummy;}; /* for buggy compilers */ 3368 1.1 paulus #endif 3369 1.1 paulus 3370 1.17 fvdl typedef enum { 3371 1.1 paulus METHOD, /* waiting for method byte */ 3372 1.1 paulus FLAG, /* waiting for flag byte */ 3373 1.7 christos DICT4, /* four dictionary check bytes to go */ 3374 1.7 christos DICT3, /* three dictionary check bytes to go */ 3375 1.7 christos DICT2, /* two dictionary check bytes to go */ 3376 1.7 christos DICT1, /* one dictionary check byte to go */ 3377 1.7 christos DICT0, /* waiting for inflateSetDictionary */ 3378 1.1 paulus BLOCKS, /* decompressing blocks */ 3379 1.1 paulus CHECK4, /* four check bytes to go */ 3380 1.1 paulus CHECK3, /* three check bytes to go */ 3381 1.1 paulus CHECK2, /* two check bytes to go */ 3382 1.1 paulus CHECK1, /* one check byte to go */ 3383 1.1 paulus DONE, /* finished check, done */ 3384 1.1 paulus BAD} /* got an error--stay here */ 3385 1.17 fvdl inflate_mode; 3386 1.17 fvdl 3387 1.17 fvdl /* inflate private state */ 3388 1.17 fvdl struct internal_state { 3389 1.17 fvdl 3390 1.17 fvdl /* mode */ 3391 1.17 fvdl inflate_mode mode; /* current inflate mode */ 3392 1.1 paulus 3393 1.1 paulus /* mode dependent information */ 3394 1.1 paulus union { 3395 1.1 paulus uInt method; /* if FLAGS, method byte */ 3396 1.1 paulus struct { 3397 1.1 paulus uLong was; /* computed check value */ 3398 1.1 paulus uLong need; /* stream check value */ 3399 1.1 paulus } check; /* if CHECK, check values to compare */ 3400 1.1 paulus uInt marker; /* if BAD, inflateSync's marker bytes count */ 3401 1.1 paulus } sub; /* submode */ 3402 1.1 paulus 3403 1.1 paulus /* mode independent information */ 3404 1.1 paulus int nowrap; /* flag for no wrapper */ 3405 1.1 paulus uInt wbits; /* log2(window size) (8..15, defaults to 15) */ 3406 1.20 perry inflate_blocks_statef 3407 1.1 paulus *blocks; /* current inflate_blocks state */ 3408 1.1 paulus 3409 1.1 paulus }; 3410 1.1 paulus 3411 1.1 paulus 3412 1.32 cegger int ZEXPORT inflateReset(z_streamp z) 3413 1.1 paulus { 3414 1.1 paulus if (z == Z_NULL || z->state == Z_NULL) 3415 1.1 paulus return Z_STREAM_ERROR; 3416 1.1 paulus z->total_in = z->total_out = 0; 3417 1.1 paulus z->msg = Z_NULL; 3418 1.1 paulus z->state->mode = z->state->nowrap ? BLOCKS : METHOD; 3419 1.17 fvdl inflate_blocks_reset(z->state->blocks, z, Z_NULL); 3420 1.17 fvdl Tracev((stderr, "inflate: reset\n")); 3421 1.1 paulus return Z_OK; 3422 1.1 paulus } 3423 1.1 paulus 3424 1.1 paulus 3425 1.32 cegger int ZEXPORT inflateEnd(z_streamp z) 3426 1.1 paulus { 3427 1.1 paulus if (z == Z_NULL || z->state == Z_NULL || z->zfree == Z_NULL) 3428 1.1 paulus return Z_STREAM_ERROR; 3429 1.1 paulus if (z->state->blocks != Z_NULL) 3430 1.17 fvdl inflate_blocks_free(z->state->blocks, z); 3431 1.7 christos ZFREE(z, z->state); 3432 1.1 paulus z->state = Z_NULL; 3433 1.17 fvdl Tracev((stderr, "inflate: end\n")); 3434 1.1 paulus return Z_OK; 3435 1.1 paulus } 3436 1.1 paulus 3437 1.1 paulus 3438 1.32 cegger int ZEXPORT inflateInit2_(z_streamp z, int w, const char *vers, int stream_size) 3439 1.1 paulus { 3440 1.21 christos if (vers == Z_NULL || vers[0] != ZLIB_VERSION[0] || 3441 1.7 christos stream_size != sizeof(z_stream)) 3442 1.7 christos return Z_VERSION_ERROR; 3443 1.7 christos 3444 1.1 paulus /* initialize state */ 3445 1.1 paulus if (z == Z_NULL) 3446 1.1 paulus return Z_STREAM_ERROR; 3447 1.7 christos z->msg = Z_NULL; 3448 1.7 christos #ifndef NO_ZCFUNCS 3449 1.7 christos if (z->zalloc == Z_NULL) 3450 1.7 christos { 3451 1.7 christos z->zalloc = zcalloc; 3452 1.7 christos z->opaque = (voidpf)0; 3453 1.7 christos } 3454 1.7 christos if (z->zfree == Z_NULL) z->zfree = zcfree; 3455 1.7 christos #endif 3456 1.1 paulus if ((z->state = (struct internal_state FAR *) 3457 1.7 christos ZALLOC(z,1,sizeof(struct internal_state))) == Z_NULL) 3458 1.1 paulus return Z_MEM_ERROR; 3459 1.1 paulus z->state->blocks = Z_NULL; 3460 1.1 paulus 3461 1.1 paulus /* handle undocumented nowrap option (no zlib header or check) */ 3462 1.1 paulus z->state->nowrap = 0; 3463 1.1 paulus if (w < 0) 3464 1.1 paulus { 3465 1.1 paulus w = - w; 3466 1.1 paulus z->state->nowrap = 1; 3467 1.1 paulus } 3468 1.1 paulus 3469 1.1 paulus /* set window size */ 3470 1.1 paulus if (w < 8 || w > 15) 3471 1.1 paulus { 3472 1.1 paulus inflateEnd(z); 3473 1.1 paulus return Z_STREAM_ERROR; 3474 1.1 paulus } 3475 1.1 paulus z->state->wbits = (uInt)w; 3476 1.1 paulus 3477 1.1 paulus /* create inflate_blocks state */ 3478 1.1 paulus if ((z->state->blocks = 3479 1.7 christos inflate_blocks_new(z, z->state->nowrap ? Z_NULL : adler32, (uInt)1 << w)) 3480 1.1 paulus == Z_NULL) 3481 1.1 paulus { 3482 1.1 paulus inflateEnd(z); 3483 1.1 paulus return Z_MEM_ERROR; 3484 1.1 paulus } 3485 1.17 fvdl Tracev((stderr, "inflate: allocated\n")); 3486 1.1 paulus 3487 1.1 paulus /* reset state */ 3488 1.1 paulus inflateReset(z); 3489 1.1 paulus return Z_OK; 3490 1.1 paulus } 3491 1.1 paulus 3492 1.1 paulus 3493 1.19 kristerw #if 0 3494 1.32 cegger int ZEXPORT inflateInit_(z_streamp z, const char *vers, int stream_size) 3495 1.1 paulus { 3496 1.21 christos return inflateInit2_(z, DEF_WBITS, vers, stream_size); 3497 1.1 paulus } 3498 1.19 kristerw #endif 3499 1.1 paulus 3500 1.1 paulus 3501 1.1 paulus #define NEEDBYTE {if(z->avail_in==0)goto empty;r=Z_OK;} 3502 1.1 paulus #define NEXTBYTE (z->avail_in--,z->total_in++,*z->next_in++) 3503 1.1 paulus 3504 1.32 cegger int ZEXPORT inflate(z_streamp z, int f) 3505 1.1 paulus { 3506 1.17 fvdl int r, r2; 3507 1.1 paulus uInt b; 3508 1.1 paulus 3509 1.17 fvdl if (z == Z_NULL || z->state == Z_NULL || z->next_in == Z_NULL) 3510 1.1 paulus return Z_STREAM_ERROR; 3511 1.17 fvdl r2 = f == Z_FINISH ? Z_BUF_ERROR : Z_OK; 3512 1.1 paulus r = Z_BUF_ERROR; 3513 1.1 paulus while (1) switch (z->state->mode) 3514 1.1 paulus { 3515 1.1 paulus case METHOD: 3516 1.1 paulus NEEDBYTE 3517 1.7 christos if (((z->state->sub.method = NEXTBYTE) & 0xf) != Z_DEFLATED) 3518 1.1 paulus { 3519 1.1 paulus z->state->mode = BAD; 3520 1.21 christos z->msg = "unknown compression method"; 3521 1.1 paulus z->state->sub.marker = 5; /* can't try inflateSync */ 3522 1.1 paulus break; 3523 1.1 paulus } 3524 1.1 paulus if ((z->state->sub.method >> 4) + 8 > z->state->wbits) 3525 1.1 paulus { 3526 1.1 paulus z->state->mode = BAD; 3527 1.21 christos z->msg = "invalid window size"; 3528 1.1 paulus z->state->sub.marker = 5; /* can't try inflateSync */ 3529 1.1 paulus break; 3530 1.1 paulus } 3531 1.1 paulus z->state->mode = FLAG; 3532 1.39 rin /* FALLTHROUGH */ 3533 1.1 paulus case FLAG: 3534 1.1 paulus NEEDBYTE 3535 1.7 christos b = NEXTBYTE; 3536 1.7 christos if (((z->state->sub.method << 8) + b) % 31) 3537 1.1 paulus { 3538 1.1 paulus z->state->mode = BAD; 3539 1.21 christos z->msg = "incorrect header check"; 3540 1.1 paulus z->state->sub.marker = 5; /* can't try inflateSync */ 3541 1.1 paulus break; 3542 1.1 paulus } 3543 1.17 fvdl Tracev((stderr, "inflate: zlib header ok\n")); 3544 1.7 christos if (!(b & PRESET_DICT)) 3545 1.1 paulus { 3546 1.7 christos z->state->mode = BLOCKS; 3547 1.17 fvdl break; 3548 1.1 paulus } 3549 1.7 christos z->state->mode = DICT4; 3550 1.39 rin /* FALLTHROUGH */ 3551 1.7 christos case DICT4: 3552 1.7 christos NEEDBYTE 3553 1.7 christos z->state->sub.check.need = (uLong)NEXTBYTE << 24; 3554 1.7 christos z->state->mode = DICT3; 3555 1.39 rin /* FALLTHROUGH */ 3556 1.7 christos case DICT3: 3557 1.7 christos NEEDBYTE 3558 1.7 christos z->state->sub.check.need += (uLong)NEXTBYTE << 16; 3559 1.7 christos z->state->mode = DICT2; 3560 1.39 rin /* FALLTHROUGH */ 3561 1.7 christos case DICT2: 3562 1.7 christos NEEDBYTE 3563 1.7 christos z->state->sub.check.need += (uLong)NEXTBYTE << 8; 3564 1.7 christos z->state->mode = DICT1; 3565 1.39 rin /* FALLTHROUGH */ 3566 1.7 christos case DICT1: 3567 1.7 christos NEEDBYTE 3568 1.7 christos z->state->sub.check.need += (uLong)NEXTBYTE; 3569 1.7 christos z->adler = z->state->sub.check.need; 3570 1.7 christos z->state->mode = DICT0; 3571 1.7 christos return Z_NEED_DICT; 3572 1.7 christos case DICT0: 3573 1.7 christos z->state->mode = BAD; 3574 1.21 christos z->msg = "need dictionary"; 3575 1.7 christos z->state->sub.marker = 0; /* can try inflateSync */ 3576 1.7 christos return Z_STREAM_ERROR; 3577 1.1 paulus case BLOCKS: 3578 1.1 paulus r = inflate_blocks(z->state->blocks, z, r); 3579 1.1 paulus if (f == Z_PACKET_FLUSH && z->avail_in == 0 && z->avail_out != 0) 3580 1.17 fvdl r = inflate_packet_flush(z->state->blocks); 3581 1.1 paulus if (r == Z_DATA_ERROR) 3582 1.1 paulus { 3583 1.1 paulus z->state->mode = BAD; 3584 1.1 paulus z->state->sub.marker = 0; /* can try inflateSync */ 3585 1.1 paulus break; 3586 1.1 paulus } 3587 1.17 fvdl if (r == Z_OK) 3588 1.17 fvdl r = r2; 3589 1.1 paulus if (r != Z_STREAM_END) 3590 1.1 paulus return r; 3591 1.17 fvdl r = r2; 3592 1.1 paulus inflate_blocks_reset(z->state->blocks, z, &z->state->sub.check.was); 3593 1.1 paulus if (z->state->nowrap) 3594 1.1 paulus { 3595 1.1 paulus z->state->mode = DONE; 3596 1.1 paulus break; 3597 1.1 paulus } 3598 1.1 paulus z->state->mode = CHECK4; 3599 1.39 rin /* FALLTHROUGH */ 3600 1.1 paulus case CHECK4: 3601 1.1 paulus NEEDBYTE 3602 1.1 paulus z->state->sub.check.need = (uLong)NEXTBYTE << 24; 3603 1.1 paulus z->state->mode = CHECK3; 3604 1.39 rin /* FALLTHROUGH */ 3605 1.1 paulus case CHECK3: 3606 1.1 paulus NEEDBYTE 3607 1.1 paulus z->state->sub.check.need += (uLong)NEXTBYTE << 16; 3608 1.1 paulus z->state->mode = CHECK2; 3609 1.39 rin /* FALLTHROUGH */ 3610 1.1 paulus case CHECK2: 3611 1.1 paulus NEEDBYTE 3612 1.1 paulus z->state->sub.check.need += (uLong)NEXTBYTE << 8; 3613 1.1 paulus z->state->mode = CHECK1; 3614 1.39 rin /* FALLTHROUGH */ 3615 1.1 paulus case CHECK1: 3616 1.1 paulus NEEDBYTE 3617 1.1 paulus z->state->sub.check.need += (uLong)NEXTBYTE; 3618 1.1 paulus 3619 1.1 paulus if (z->state->sub.check.was != z->state->sub.check.need) 3620 1.1 paulus { 3621 1.1 paulus z->state->mode = BAD; 3622 1.21 christos z->msg = "incorrect data check"; 3623 1.1 paulus z->state->sub.marker = 5; /* can't try inflateSync */ 3624 1.1 paulus break; 3625 1.1 paulus } 3626 1.17 fvdl Tracev((stderr, "inflate: zlib check ok\n")); 3627 1.1 paulus z->state->mode = DONE; 3628 1.39 rin /* FALLTHROUGH */ 3629 1.1 paulus case DONE: 3630 1.1 paulus return Z_STREAM_END; 3631 1.1 paulus case BAD: 3632 1.1 paulus return Z_DATA_ERROR; 3633 1.1 paulus default: 3634 1.1 paulus return Z_STREAM_ERROR; 3635 1.1 paulus } 3636 1.1 paulus empty: 3637 1.1 paulus if (f != Z_PACKET_FLUSH) 3638 1.1 paulus return r; 3639 1.1 paulus z->state->mode = BAD; 3640 1.21 christos z->msg = "need more for packet flush"; 3641 1.17 fvdl z->state->sub.marker = 0; 3642 1.1 paulus return Z_DATA_ERROR; 3643 1.1 paulus } 3644 1.1 paulus 3645 1.7 christos 3646 1.19 kristerw #if 0 3647 1.32 cegger int ZEXPORT inflateSetDictionary(z_streamp z, 3648 1.32 cegger const Bytef *dictionary, 3649 1.32 cegger uInt dictLength) 3650 1.7 christos { 3651 1.7 christos uInt length = dictLength; 3652 1.7 christos 3653 1.7 christos if (z == Z_NULL || z->state == Z_NULL || z->state->mode != DICT0) 3654 1.7 christos return Z_STREAM_ERROR; 3655 1.7 christos 3656 1.7 christos if (adler32(1L, dictionary, dictLength) != z->adler) return Z_DATA_ERROR; 3657 1.7 christos z->adler = 1L; 3658 1.7 christos 3659 1.7 christos if (length >= ((uInt)1<<z->state->wbits)) 3660 1.7 christos { 3661 1.7 christos length = (1<<z->state->wbits)-1; 3662 1.7 christos dictionary += dictLength - length; 3663 1.7 christos } 3664 1.7 christos inflate_set_dictionary(z->state->blocks, dictionary, length); 3665 1.7 christos z->state->mode = BLOCKS; 3666 1.7 christos return Z_OK; 3667 1.7 christos } 3668 1.19 kristerw #endif 3669 1.7 christos 3670 1.1 paulus /* 3671 1.1 paulus * This subroutine adds the data at next_in/avail_in to the output history 3672 1.1 paulus * without performing any output. The output buffer must be "caught up"; 3673 1.1 paulus * i.e. no pending output (hence s->read equals s->write), and the state must 3674 1.1 paulus * be BLOCKS (i.e. we should be willing to see the start of a series of 3675 1.1 paulus * BLOCKS). On exit, the output will also be caught up, and the checksum 3676 1.1 paulus * will have been updated if need be. 3677 1.1 paulus */ 3678 1.1 paulus 3679 1.32 cegger int inflateIncomp(z_stream *z) 3680 1.1 paulus { 3681 1.1 paulus if (z->state->mode != BLOCKS) 3682 1.1 paulus return Z_DATA_ERROR; 3683 1.1 paulus return inflate_addhistory(z->state->blocks, z); 3684 1.1 paulus } 3685 1.1 paulus 3686 1.19 kristerw #if 0 3687 1.17 fvdl int ZEXPORT inflateSync(z) 3688 1.7 christos z_streamp z; 3689 1.1 paulus { 3690 1.1 paulus uInt n; /* number of bytes to look at */ 3691 1.1 paulus Bytef *p; /* pointer to bytes */ 3692 1.1 paulus uInt m; /* number of marker bytes found in a row */ 3693 1.1 paulus uLong r, w; /* temporaries to save total_in and total_out */ 3694 1.1 paulus 3695 1.1 paulus /* set up */ 3696 1.1 paulus if (z == Z_NULL || z->state == Z_NULL) 3697 1.1 paulus return Z_STREAM_ERROR; 3698 1.1 paulus if (z->state->mode != BAD) 3699 1.1 paulus { 3700 1.1 paulus z->state->mode = BAD; 3701 1.1 paulus z->state->sub.marker = 0; 3702 1.1 paulus } 3703 1.1 paulus if ((n = z->avail_in) == 0) 3704 1.1 paulus return Z_BUF_ERROR; 3705 1.1 paulus p = z->next_in; 3706 1.1 paulus m = z->state->sub.marker; 3707 1.1 paulus 3708 1.1 paulus /* search */ 3709 1.1 paulus while (n && m < 4) 3710 1.1 paulus { 3711 1.17 fvdl static const Byte mark[4] = {0, 0, 0xff, 0xff}; 3712 1.17 fvdl if (*p == mark[m]) 3713 1.1 paulus m++; 3714 1.1 paulus else if (*p) 3715 1.1 paulus m = 0; 3716 1.1 paulus else 3717 1.1 paulus m = 4 - m; 3718 1.1 paulus p++, n--; 3719 1.1 paulus } 3720 1.1 paulus 3721 1.1 paulus /* restore */ 3722 1.1 paulus z->total_in += p - z->next_in; 3723 1.1 paulus z->next_in = p; 3724 1.1 paulus z->avail_in = n; 3725 1.1 paulus z->state->sub.marker = m; 3726 1.1 paulus 3727 1.1 paulus /* return no joy or set up to restart on a new block */ 3728 1.1 paulus if (m != 4) 3729 1.1 paulus return Z_DATA_ERROR; 3730 1.1 paulus r = z->total_in; w = z->total_out; 3731 1.1 paulus inflateReset(z); 3732 1.1 paulus z->total_in = r; z->total_out = w; 3733 1.1 paulus z->state->mode = BLOCKS; 3734 1.1 paulus return Z_OK; 3735 1.1 paulus } 3736 1.19 kristerw #endif 3737 1.1 paulus 3738 1.17 fvdl 3739 1.17 fvdl /* Returns true if inflate is currently at the end of a block generated 3740 1.17 fvdl * by Z_SYNC_FLUSH or Z_FULL_FLUSH. This function is used by one PPP 3741 1.17 fvdl * implementation to provide an additional safety check. PPP uses Z_SYNC_FLUSH 3742 1.17 fvdl * but removes the length bytes of the resulting empty stored block. When 3743 1.17 fvdl * decompressing, PPP checks that at the end of input packet, inflate is 3744 1.17 fvdl * waiting for these length bytes. 3745 1.17 fvdl */ 3746 1.19 kristerw #if 0 3747 1.17 fvdl int ZEXPORT inflateSyncPoint(z) 3748 1.17 fvdl z_streamp z; 3749 1.17 fvdl { 3750 1.17 fvdl if (z == Z_NULL || z->state == Z_NULL || z->state->blocks == Z_NULL) 3751 1.17 fvdl return Z_STREAM_ERROR; 3752 1.17 fvdl return inflate_blocks_sync_point(z->state->blocks); 3753 1.17 fvdl } 3754 1.19 kristerw #endif 3755 1.1 paulus #undef NEEDBYTE 3756 1.1 paulus #undef NEXTBYTE 3757 1.7 christos /* --- inflate.c */ 3758 1.7 christos 3759 1.7 christos /* +++ infblock.c */ 3760 1.17 fvdl 3761 1.7 christos /* infblock.c -- interpret and process block types to last block 3762 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 3763 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 3764 1.7 christos */ 3765 1.7 christos 3766 1.7 christos /* #include "zutil.h" */ 3767 1.7 christos /* #include "infblock.h" */ 3768 1.7 christos 3769 1.7 christos /* +++ inftrees.h */ 3770 1.17 fvdl 3771 1.7 christos /* inftrees.h -- header to use inftrees.c 3772 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 3773 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 3774 1.7 christos */ 3775 1.7 christos 3776 1.7 christos /* WARNING: this file should *not* be used by applications. It is 3777 1.7 christos part of the implementation of the compression library and is 3778 1.7 christos subject to change. Applications should only use zlib.h. 3779 1.7 christos */ 3780 1.7 christos 3781 1.7 christos /* Huffman code lookup table entry--this entry is four bytes for machines 3782 1.7 christos that have 16-bit pointers (e.g. PC's in the small or medium model). */ 3783 1.7 christos 3784 1.7 christos typedef struct inflate_huft_s FAR inflate_huft; 3785 1.7 christos 3786 1.7 christos struct inflate_huft_s { 3787 1.7 christos union { 3788 1.7 christos struct { 3789 1.7 christos Byte Exop; /* number of extra bits or operation */ 3790 1.7 christos Byte Bits; /* number of bits in this code or subcode */ 3791 1.7 christos } what; 3792 1.17 fvdl uInt pad; /* pad structure to a power of 2 (4 bytes for */ 3793 1.17 fvdl } word; /* 16-bit, 8 bytes for 32-bit int's) */ 3794 1.17 fvdl uInt base; /* literal, length base, distance base, 3795 1.17 fvdl or table offset */ 3796 1.7 christos }; 3797 1.7 christos 3798 1.17 fvdl /* Maximum size of dynamic tree. The maximum found in a long but non- 3799 1.17 fvdl exhaustive search was 1004 huft structures (850 for length/literals 3800 1.17 fvdl and 154 for distances, the latter actually the result of an 3801 1.17 fvdl exhaustive search). The actual maximum is not known, but the 3802 1.17 fvdl value below is more than safe. */ 3803 1.17 fvdl #define MANY 1440 3804 1.7 christos 3805 1.31 dsl extern int inflate_trees_bits( 3806 1.7 christos uIntf *, /* 19 code lengths */ 3807 1.7 christos uIntf *, /* bits tree desired/actual depth */ 3808 1.7 christos inflate_huft * FAR *, /* bits tree result */ 3809 1.17 fvdl inflate_huft *, /* space for trees */ 3810 1.31 dsl z_streamp); /* for messages */ 3811 1.7 christos 3812 1.31 dsl extern int inflate_trees_dynamic( 3813 1.7 christos uInt, /* number of literal/length codes */ 3814 1.7 christos uInt, /* number of distance codes */ 3815 1.7 christos uIntf *, /* that many (total) code lengths */ 3816 1.7 christos uIntf *, /* literal desired/actual bit depth */ 3817 1.7 christos uIntf *, /* distance desired/actual bit depth */ 3818 1.7 christos inflate_huft * FAR *, /* literal/length tree result */ 3819 1.7 christos inflate_huft * FAR *, /* distance tree result */ 3820 1.17 fvdl inflate_huft *, /* space for trees */ 3821 1.31 dsl z_streamp); /* for messages */ 3822 1.7 christos 3823 1.31 dsl extern int inflate_trees_fixed( 3824 1.7 christos uIntf *, /* literal desired/actual bit depth */ 3825 1.7 christos uIntf *, /* distance desired/actual bit depth */ 3826 1.7 christos inflate_huft * FAR *, /* literal/length tree result */ 3827 1.17 fvdl inflate_huft * FAR *, /* distance tree result */ 3828 1.31 dsl z_streamp); /* for memory allocation */ 3829 1.7 christos /* --- inftrees.h */ 3830 1.7 christos 3831 1.7 christos /* +++ infcodes.h */ 3832 1.17 fvdl 3833 1.7 christos /* infcodes.h -- header to use infcodes.c 3834 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 3835 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 3836 1.7 christos */ 3837 1.7 christos 3838 1.7 christos /* WARNING: this file should *not* be used by applications. It is 3839 1.7 christos part of the implementation of the compression library and is 3840 1.7 christos subject to change. Applications should only use zlib.h. 3841 1.7 christos */ 3842 1.7 christos 3843 1.7 christos struct inflate_codes_state; 3844 1.7 christos typedef struct inflate_codes_state FAR inflate_codes_statef; 3845 1.7 christos 3846 1.31 dsl extern inflate_codes_statef *inflate_codes_new( 3847 1.7 christos uInt, uInt, 3848 1.7 christos inflate_huft *, inflate_huft *, 3849 1.31 dsl z_streamp ); 3850 1.7 christos 3851 1.31 dsl extern int inflate_codes( 3852 1.7 christos inflate_blocks_statef *, 3853 1.7 christos z_streamp , 3854 1.31 dsl int); 3855 1.7 christos 3856 1.31 dsl extern void inflate_codes_free( 3857 1.7 christos inflate_codes_statef *, 3858 1.31 dsl z_streamp ); 3859 1.1 paulus 3860 1.7 christos /* --- infcodes.h */ 3861 1.7 christos 3862 1.7 christos /* +++ infutil.h */ 3863 1.17 fvdl 3864 1.1 paulus /* infutil.h -- types and macros common to blocks and codes 3865 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 3866 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 3867 1.1 paulus */ 3868 1.1 paulus 3869 1.1 paulus /* WARNING: this file should *not* be used by applications. It is 3870 1.1 paulus part of the implementation of the compression library and is 3871 1.1 paulus subject to change. Applications should only use zlib.h. 3872 1.1 paulus */ 3873 1.1 paulus 3874 1.7 christos #ifndef _INFUTIL_H 3875 1.7 christos #define _INFUTIL_H 3876 1.1 paulus 3877 1.7 christos typedef enum { 3878 1.1 paulus TYPE, /* get type bits (3, including end bit) */ 3879 1.1 paulus LENS, /* get lengths for stored */ 3880 1.1 paulus STORED, /* processing stored block */ 3881 1.1 paulus TABLE, /* get table lengths */ 3882 1.1 paulus BTREE, /* get bit lengths tree for a dynamic block */ 3883 1.1 paulus DTREE, /* get length, distance trees for a dynamic block */ 3884 1.1 paulus CODES, /* processing fixed or dynamic block */ 3885 1.1 paulus DRY, /* output remaining window bytes */ 3886 1.7 christos DONEB, /* finished last block, done */ 3887 1.7 christos BADB} /* got a data error--stuck here */ 3888 1.7 christos inflate_block_mode; 3889 1.7 christos 3890 1.7 christos /* inflate blocks semi-private state */ 3891 1.7 christos struct inflate_blocks_state { 3892 1.7 christos 3893 1.7 christos /* mode */ 3894 1.7 christos inflate_block_mode mode; /* current inflate_block mode */ 3895 1.1 paulus 3896 1.1 paulus /* mode dependent information */ 3897 1.1 paulus union { 3898 1.1 paulus uInt left; /* if STORED, bytes left to copy */ 3899 1.1 paulus struct { 3900 1.1 paulus uInt table; /* table lengths (14 bits) */ 3901 1.1 paulus uInt index; /* index into blens (or border) */ 3902 1.1 paulus uIntf *blens; /* bit lengths of codes */ 3903 1.1 paulus uInt bb; /* bit length tree depth */ 3904 1.1 paulus inflate_huft *tb; /* bit length decoding tree */ 3905 1.1 paulus } trees; /* if DTREE, decoding info for trees */ 3906 1.1 paulus struct { 3907 1.20 perry inflate_codes_statef 3908 1.1 paulus *codes; 3909 1.1 paulus } decode; /* if CODES, current state */ 3910 1.1 paulus } sub; /* submode */ 3911 1.1 paulus uInt last; /* true if this block is the last block */ 3912 1.1 paulus 3913 1.1 paulus /* mode independent information */ 3914 1.1 paulus uInt bitk; /* bits in bit buffer */ 3915 1.1 paulus uLong bitb; /* bit buffer */ 3916 1.17 fvdl inflate_huft *hufts; /* single malloc for tree space */ 3917 1.1 paulus Bytef *window; /* sliding window */ 3918 1.1 paulus Bytef *end; /* one byte after sliding window */ 3919 1.1 paulus Bytef *read; /* window read pointer */ 3920 1.1 paulus Bytef *write; /* window write pointer */ 3921 1.1 paulus check_func checkfn; /* check function */ 3922 1.1 paulus uLong check; /* check on output */ 3923 1.1 paulus 3924 1.1 paulus }; 3925 1.1 paulus 3926 1.1 paulus 3927 1.1 paulus /* defines for inflate input/output */ 3928 1.1 paulus /* update pointers and return */ 3929 1.1 paulus #define UPDBITS {s->bitb=b;s->bitk=k;} 3930 1.1 paulus #define UPDIN {z->avail_in=n;z->total_in+=p-z->next_in;z->next_in=p;} 3931 1.1 paulus #define UPDOUT {s->write=q;} 3932 1.1 paulus #define UPDATE {UPDBITS UPDIN UPDOUT} 3933 1.1 paulus #define LEAVE {UPDATE return inflate_flush(s,z,r);} 3934 1.1 paulus /* get bytes and bits */ 3935 1.1 paulus #define LOADIN {p=z->next_in;n=z->avail_in;b=s->bitb;k=s->bitk;} 3936 1.1 paulus #define NEEDBYTE {if(n)r=Z_OK;else LEAVE} 3937 1.1 paulus #define NEXTBYTE (n--,*p++) 3938 1.1 paulus #define NEEDBITS(j) {while(k<(j)){NEEDBYTE;b|=((uLong)NEXTBYTE)<<k;k+=8;}} 3939 1.1 paulus #define DUMPBITS(j) {b>>=(j);k-=(j);} 3940 1.1 paulus /* output bytes */ 3941 1.7 christos #define WAVAIL (uInt)(q<s->read?s->read-q-1:s->end-q) 3942 1.7 christos #define LOADOUT {q=s->write;m=(uInt)WAVAIL;} 3943 1.17 fvdl #define WRAP {if(q==s->end&&s->read!=s->window){q=s->window;m=(uInt)WAVAIL;}} 3944 1.1 paulus #define FLUSH {UPDOUT r=inflate_flush(s,z,r); LOADOUT} 3945 1.17 fvdl #define NEEDOUT {if(m==0){WRAP if(m==0){FLUSH WRAP if(m==0) LEAVE}}r=Z_OK;} 3946 1.1 paulus #define OUTBYTE(a) {*q++=(Byte)(a);m--;} 3947 1.1 paulus /* load local pointers */ 3948 1.1 paulus #define LOAD {LOADIN LOADOUT} 3949 1.1 paulus 3950 1.7 christos /* masks for lower bits (size given to avoid silly warnings with Visual C++) */ 3951 1.17 fvdl extern uInt inflate_mask[17]; 3952 1.1 paulus 3953 1.1 paulus /* copy as much as possible from the sliding window to the output area */ 3954 1.31 dsl extern int inflate_flush( 3955 1.1 paulus inflate_blocks_statef *, 3956 1.7 christos z_streamp , 3957 1.31 dsl int); 3958 1.1 paulus 3959 1.7 christos #ifndef NO_DUMMY_DECL 3960 1.7 christos struct internal_state {int dummy;}; /* for buggy compilers */ 3961 1.7 christos #endif 3962 1.1 paulus 3963 1.7 christos #endif 3964 1.7 christos /* --- infutil.h */ 3965 1.1 paulus 3966 1.7 christos #ifndef NO_DUMMY_DECL 3967 1.7 christos struct inflate_codes_state {int dummy;}; /* for buggy compilers */ 3968 1.7 christos #endif 3969 1.1 paulus 3970 1.17 fvdl /* simplify the use of the inflate_huft type with some defines */ 3971 1.17 fvdl #define exop word.what.Exop 3972 1.17 fvdl #define bits word.what.Bits 3973 1.17 fvdl 3974 1.1 paulus /* Table for deflate from PKZIP's appnote.txt. */ 3975 1.7 christos local const uInt border[] = { /* Order of the bit length code lengths */ 3976 1.1 paulus 16, 17, 18, 0, 8, 7, 9, 6, 10, 5, 11, 4, 12, 3, 13, 2, 14, 1, 15}; 3977 1.1 paulus 3978 1.1 paulus /* 3979 1.1 paulus Notes beyond the 1.93a appnote.txt: 3980 1.1 paulus 3981 1.1 paulus 1. Distance pointers never point before the beginning of the output 3982 1.1 paulus stream. 3983 1.1 paulus 2. Distance pointers can point back across blocks, up to 32k away. 3984 1.1 paulus 3. There is an implied maximum of 7 bits for the bit length table and 3985 1.1 paulus 15 bits for the actual data. 3986 1.1 paulus 4. If only one code exists, then it is encoded using one bit. (Zero 3987 1.1 paulus would be more efficient, but perhaps a little confusing.) If two 3988 1.1 paulus codes exist, they are coded using one bit each (0 and 1). 3989 1.1 paulus 5. There is no way of sending zero distance codes--a dummy must be 3990 1.1 paulus sent if there are none. (History: a pre 2.0 version of PKZIP would 3991 1.1 paulus store blocks with no distance codes, but this was discovered to be 3992 1.1 paulus too harsh a criterion.) Valid only for 1.93a. 2.04c does allow 3993 1.1 paulus zero distance codes, which is sent as one code of zero bits in 3994 1.1 paulus length. 3995 1.1 paulus 6. There are up to 286 literal/length codes. Code 256 represents the 3996 1.1 paulus end-of-block. Note however that the static length tree defines 3997 1.1 paulus 288 codes just to fill out the Huffman codes. Codes 286 and 287 3998 1.1 paulus cannot be used though, since there is no length base or extra bits 3999 1.38 andvar defined for them. Similarly, there are up to 30 distance codes. 4000 1.1 paulus However, static trees define 32 codes (all 5 bits) to fill out the 4001 1.1 paulus Huffman codes, but the last two had better not show up in the data. 4002 1.1 paulus 7. Unzip can check dynamic Huffman blocks for complete code sets. 4003 1.1 paulus The exception is that a single code would not be complete (see #4). 4004 1.1 paulus 8. The five bits following the block type is really the number of 4005 1.1 paulus literal codes sent minus 257. 4006 1.1 paulus 9. Length codes 8,16,16 are interpreted as 13 length codes of 8 bits 4007 1.1 paulus (1+6+6). Therefore, to output three times the length, you output 4008 1.1 paulus three codes (1+1+1), whereas to output four times the same length, 4009 1.1 paulus you only need two codes (1+3). Hmm. 4010 1.1 paulus 10. In the tree reconstruction algorithm, Code = Code + Increment 4011 1.1 paulus only if BitLength(i) is not zero. (Pretty obvious.) 4012 1.1 paulus 11. Correction: 4 Bits: # of Bit Length codes - 4 (4 - 19) 4013 1.1 paulus 12. Note: length code 284 can represent 227-258, but length code 285 4014 1.1 paulus really is 258. The last length deserves its own, short code 4015 1.1 paulus since it gets used a lot in very redundant files. The length 4016 1.1 paulus 258 is special since 258 - 3 (the min match length) is 255. 4017 1.1 paulus 13. The literal/length and distance code bit lengths are read as a 4018 1.1 paulus single stream of lengths. It is possible (and advantageous) for 4019 1.1 paulus a repeat code (16, 17, or 18) to go across the boundary between 4020 1.1 paulus the two sets of lengths. 4021 1.1 paulus */ 4022 1.1 paulus 4023 1.1 paulus 4024 1.32 cegger void inflate_blocks_reset(inflate_blocks_statef *s, z_streamp z, uLongf *c) 4025 1.1 paulus { 4026 1.17 fvdl if (c != Z_NULL) 4027 1.1 paulus *c = s->check; 4028 1.1 paulus if (s->mode == BTREE || s->mode == DTREE) 4029 1.7 christos ZFREE(z, s->sub.trees.blens); 4030 1.1 paulus if (s->mode == CODES) 4031 1.1 paulus inflate_codes_free(s->sub.decode.codes, z); 4032 1.1 paulus s->mode = TYPE; 4033 1.1 paulus s->bitk = 0; 4034 1.1 paulus s->bitb = 0; 4035 1.1 paulus s->read = s->write = s->window; 4036 1.1 paulus if (s->checkfn != Z_NULL) 4037 1.17 fvdl z->adler = s->check = (*s->checkfn)(0L, (const Bytef *)Z_NULL, 0); 4038 1.17 fvdl Tracev((stderr, "inflate: blocks reset\n")); 4039 1.1 paulus } 4040 1.1 paulus 4041 1.1 paulus 4042 1.32 cegger inflate_blocks_statef *inflate_blocks_new(z_streamp z, check_func c, uInt w) 4043 1.1 paulus { 4044 1.1 paulus inflate_blocks_statef *s; 4045 1.1 paulus 4046 1.7 christos if ((s = (inflate_blocks_statef *)ZALLOC 4047 1.1 paulus (z,1,sizeof(struct inflate_blocks_state))) == Z_NULL) 4048 1.1 paulus return s; 4049 1.17 fvdl if ((s->hufts = 4050 1.17 fvdl (inflate_huft *)ZALLOC(z, sizeof(inflate_huft), MANY)) == Z_NULL) 4051 1.17 fvdl { 4052 1.17 fvdl ZFREE(z, s); 4053 1.17 fvdl return Z_NULL; 4054 1.17 fvdl } 4055 1.7 christos if ((s->window = (Bytef *)ZALLOC(z, 1, w)) == Z_NULL) 4056 1.1 paulus { 4057 1.17 fvdl ZFREE(z, s->hufts); 4058 1.7 christos ZFREE(z, s); 4059 1.1 paulus return Z_NULL; 4060 1.1 paulus } 4061 1.1 paulus s->end = s->window + w; 4062 1.1 paulus s->checkfn = c; 4063 1.1 paulus s->mode = TYPE; 4064 1.17 fvdl Tracev((stderr, "inflate: blocks allocated\n")); 4065 1.17 fvdl inflate_blocks_reset(s, z, Z_NULL); 4066 1.1 paulus return s; 4067 1.1 paulus } 4068 1.1 paulus 4069 1.1 paulus 4070 1.32 cegger int inflate_blocks(inflate_blocks_statef *s, z_streamp z, int r) 4071 1.1 paulus { 4072 1.1 paulus uInt t; /* temporary storage */ 4073 1.1 paulus uLong b; /* bit buffer */ 4074 1.1 paulus uInt k; /* bits in bit buffer */ 4075 1.1 paulus Bytef *p; /* input data pointer */ 4076 1.1 paulus uInt n; /* bytes available there */ 4077 1.1 paulus Bytef *q; /* output window write pointer */ 4078 1.1 paulus uInt m; /* bytes to end of window or read pointer */ 4079 1.1 paulus 4080 1.1 paulus /* copy input/output information to locals (UPDATE macro restores) */ 4081 1.1 paulus LOAD 4082 1.1 paulus 4083 1.1 paulus /* process input based on current state */ 4084 1.1 paulus while (1) switch (s->mode) 4085 1.1 paulus { 4086 1.1 paulus case TYPE: 4087 1.1 paulus NEEDBITS(3) 4088 1.1 paulus t = (uInt)b & 7; 4089 1.1 paulus s->last = t & 1; 4090 1.1 paulus switch (t >> 1) 4091 1.1 paulus { 4092 1.1 paulus case 0: /* stored */ 4093 1.17 fvdl Tracev((stderr, "inflate: stored block%s\n", 4094 1.1 paulus s->last ? " (last)" : "")); 4095 1.1 paulus DUMPBITS(3) 4096 1.1 paulus t = k & 7; /* go to byte boundary */ 4097 1.1 paulus DUMPBITS(t) 4098 1.1 paulus s->mode = LENS; /* get length of stored block */ 4099 1.1 paulus break; 4100 1.1 paulus case 1: /* fixed */ 4101 1.17 fvdl Tracev((stderr, "inflate: fixed codes block%s\n", 4102 1.1 paulus s->last ? " (last)" : "")); 4103 1.1 paulus { 4104 1.1 paulus uInt bl, bd; 4105 1.1 paulus inflate_huft *tl, *td; 4106 1.1 paulus 4107 1.17 fvdl inflate_trees_fixed(&bl, &bd, &tl, &td, z); 4108 1.1 paulus s->sub.decode.codes = inflate_codes_new(bl, bd, tl, td, z); 4109 1.1 paulus if (s->sub.decode.codes == Z_NULL) 4110 1.1 paulus { 4111 1.1 paulus r = Z_MEM_ERROR; 4112 1.1 paulus LEAVE 4113 1.1 paulus } 4114 1.1 paulus } 4115 1.1 paulus DUMPBITS(3) 4116 1.1 paulus s->mode = CODES; 4117 1.1 paulus break; 4118 1.1 paulus case 2: /* dynamic */ 4119 1.17 fvdl Tracev((stderr, "inflate: dynamic codes block%s\n", 4120 1.1 paulus s->last ? " (last)" : "")); 4121 1.1 paulus DUMPBITS(3) 4122 1.1 paulus s->mode = TABLE; 4123 1.1 paulus break; 4124 1.1 paulus case 3: /* illegal */ 4125 1.1 paulus DUMPBITS(3) 4126 1.1 paulus s->mode = BADB; 4127 1.21 christos z->msg = "invalid block type"; 4128 1.1 paulus r = Z_DATA_ERROR; 4129 1.1 paulus LEAVE 4130 1.1 paulus } 4131 1.1 paulus break; 4132 1.1 paulus case LENS: 4133 1.1 paulus NEEDBITS(32) 4134 1.7 christos if ((((~b) >> 16) & 0xffff) != (b & 0xffff)) 4135 1.1 paulus { 4136 1.1 paulus s->mode = BADB; 4137 1.21 christos z->msg = "invalid stored block lengths"; 4138 1.1 paulus r = Z_DATA_ERROR; 4139 1.1 paulus LEAVE 4140 1.1 paulus } 4141 1.1 paulus s->sub.left = (uInt)b & 0xffff; 4142 1.1 paulus b = k = 0; /* dump bits */ 4143 1.1 paulus Tracev((stderr, "inflate: stored length %u\n", s->sub.left)); 4144 1.7 christos s->mode = s->sub.left ? STORED : (s->last ? DRY : TYPE); 4145 1.1 paulus break; 4146 1.1 paulus case STORED: 4147 1.1 paulus if (n == 0) 4148 1.1 paulus LEAVE 4149 1.1 paulus NEEDOUT 4150 1.1 paulus t = s->sub.left; 4151 1.1 paulus if (t > n) t = n; 4152 1.1 paulus if (t > m) t = m; 4153 1.1 paulus zmemcpy(q, p, t); 4154 1.1 paulus p += t; n -= t; 4155 1.1 paulus q += t; m -= t; 4156 1.1 paulus if ((s->sub.left -= t) != 0) 4157 1.1 paulus break; 4158 1.1 paulus Tracev((stderr, "inflate: stored end, %lu total out\n", 4159 1.1 paulus z->total_out + (q >= s->read ? q - s->read : 4160 1.1 paulus (s->end - s->read) + (q - s->window)))); 4161 1.1 paulus s->mode = s->last ? DRY : TYPE; 4162 1.1 paulus break; 4163 1.1 paulus case TABLE: 4164 1.1 paulus NEEDBITS(14) 4165 1.1 paulus s->sub.trees.table = t = (uInt)b & 0x3fff; 4166 1.1 paulus #ifndef PKZIP_BUG_WORKAROUND 4167 1.1 paulus if ((t & 0x1f) > 29 || ((t >> 5) & 0x1f) > 29) 4168 1.1 paulus { 4169 1.1 paulus s->mode = BADB; 4170 1.21 christos z->msg = "too many length or distance symbols"; 4171 1.1 paulus r = Z_DATA_ERROR; 4172 1.1 paulus LEAVE 4173 1.1 paulus } 4174 1.1 paulus #endif 4175 1.1 paulus t = 258 + (t & 0x1f) + ((t >> 5) & 0x1f); 4176 1.1 paulus if ((s->sub.trees.blens = (uIntf*)ZALLOC(z, t, sizeof(uInt))) == Z_NULL) 4177 1.1 paulus { 4178 1.1 paulus r = Z_MEM_ERROR; 4179 1.1 paulus LEAVE 4180 1.1 paulus } 4181 1.1 paulus DUMPBITS(14) 4182 1.1 paulus s->sub.trees.index = 0; 4183 1.1 paulus Tracev((stderr, "inflate: table sizes ok\n")); 4184 1.1 paulus s->mode = BTREE; 4185 1.1 paulus case BTREE: 4186 1.1 paulus while (s->sub.trees.index < 4 + (s->sub.trees.table >> 10)) 4187 1.1 paulus { 4188 1.1 paulus NEEDBITS(3) 4189 1.1 paulus s->sub.trees.blens[border[s->sub.trees.index++]] = (uInt)b & 7; 4190 1.1 paulus DUMPBITS(3) 4191 1.1 paulus } 4192 1.1 paulus while (s->sub.trees.index < 19) 4193 1.1 paulus s->sub.trees.blens[border[s->sub.trees.index++]] = 0; 4194 1.1 paulus s->sub.trees.bb = 7; 4195 1.1 paulus t = inflate_trees_bits(s->sub.trees.blens, &s->sub.trees.bb, 4196 1.17 fvdl &s->sub.trees.tb, s->hufts, z); 4197 1.1 paulus if (t != Z_OK) 4198 1.1 paulus { 4199 1.1 paulus r = t; 4200 1.1 paulus if (r == Z_DATA_ERROR) 4201 1.17 fvdl { 4202 1.17 fvdl ZFREE(z, s->sub.trees.blens); 4203 1.1 paulus s->mode = BADB; 4204 1.17 fvdl } 4205 1.1 paulus LEAVE 4206 1.1 paulus } 4207 1.1 paulus s->sub.trees.index = 0; 4208 1.1 paulus Tracev((stderr, "inflate: bits tree ok\n")); 4209 1.1 paulus s->mode = DTREE; 4210 1.1 paulus case DTREE: 4211 1.1 paulus while (t = s->sub.trees.table, 4212 1.1 paulus s->sub.trees.index < 258 + (t & 0x1f) + ((t >> 5) & 0x1f)) 4213 1.1 paulus { 4214 1.1 paulus inflate_huft *h; 4215 1.1 paulus uInt i, j, c; 4216 1.1 paulus 4217 1.1 paulus t = s->sub.trees.bb; 4218 1.1 paulus NEEDBITS(t) 4219 1.1 paulus h = s->sub.trees.tb + ((uInt)b & inflate_mask[t]); 4220 1.17 fvdl t = h->bits; 4221 1.17 fvdl c = h->base; 4222 1.1 paulus if (c < 16) 4223 1.1 paulus { 4224 1.1 paulus DUMPBITS(t) 4225 1.1 paulus s->sub.trees.blens[s->sub.trees.index++] = c; 4226 1.1 paulus } 4227 1.1 paulus else /* c == 16..18 */ 4228 1.1 paulus { 4229 1.1 paulus i = c == 18 ? 7 : c - 14; 4230 1.1 paulus j = c == 18 ? 11 : 3; 4231 1.1 paulus NEEDBITS(t + i) 4232 1.1 paulus DUMPBITS(t) 4233 1.1 paulus j += (uInt)b & inflate_mask[i]; 4234 1.1 paulus DUMPBITS(i) 4235 1.1 paulus i = s->sub.trees.index; 4236 1.1 paulus t = s->sub.trees.table; 4237 1.1 paulus if (i + j > 258 + (t & 0x1f) + ((t >> 5) & 0x1f) || 4238 1.1 paulus (c == 16 && i < 1)) 4239 1.1 paulus { 4240 1.7 christos ZFREE(z, s->sub.trees.blens); 4241 1.1 paulus s->mode = BADB; 4242 1.21 christos z->msg = "invalid bit length repeat"; 4243 1.1 paulus r = Z_DATA_ERROR; 4244 1.1 paulus LEAVE 4245 1.1 paulus } 4246 1.1 paulus c = c == 16 ? s->sub.trees.blens[i - 1] : 0; 4247 1.1 paulus do { 4248 1.1 paulus s->sub.trees.blens[i++] = c; 4249 1.1 paulus } while (--j); 4250 1.1 paulus s->sub.trees.index = i; 4251 1.1 paulus } 4252 1.1 paulus } 4253 1.1 paulus s->sub.trees.tb = Z_NULL; 4254 1.1 paulus { 4255 1.1 paulus uInt bl, bd; 4256 1.1 paulus inflate_huft *tl, *td; 4257 1.1 paulus inflate_codes_statef *c; 4258 1.1 paulus 4259 1.1 paulus bl = 9; /* must be <= 9 for lookahead assumptions */ 4260 1.1 paulus bd = 6; /* must be <= 9 for lookahead assumptions */ 4261 1.1 paulus t = s->sub.trees.table; 4262 1.1 paulus t = inflate_trees_dynamic(257 + (t & 0x1f), 1 + ((t >> 5) & 0x1f), 4263 1.17 fvdl s->sub.trees.blens, &bl, &bd, &tl, &td, 4264 1.17 fvdl s->hufts, z); 4265 1.1 paulus if (t != Z_OK) 4266 1.1 paulus { 4267 1.1 paulus if (t == (uInt)Z_DATA_ERROR) 4268 1.17 fvdl { 4269 1.17 fvdl ZFREE(z, s->sub.trees.blens); 4270 1.1 paulus s->mode = BADB; 4271 1.17 fvdl } 4272 1.1 paulus r = t; 4273 1.1 paulus LEAVE 4274 1.1 paulus } 4275 1.17 fvdl Tracev((stderr, "inflate: trees ok\n")); 4276 1.1 paulus if ((c = inflate_codes_new(bl, bd, tl, td, z)) == Z_NULL) 4277 1.1 paulus { 4278 1.1 paulus r = Z_MEM_ERROR; 4279 1.1 paulus LEAVE 4280 1.1 paulus } 4281 1.1 paulus s->sub.decode.codes = c; 4282 1.1 paulus } 4283 1.17 fvdl ZFREE(z, s->sub.trees.blens); 4284 1.1 paulus s->mode = CODES; 4285 1.39 rin /* FALLTHROUGH */ 4286 1.1 paulus case CODES: 4287 1.1 paulus UPDATE 4288 1.1 paulus if ((r = inflate_codes(s, z, r)) != Z_STREAM_END) 4289 1.1 paulus return inflate_flush(s, z, r); 4290 1.1 paulus r = Z_OK; 4291 1.1 paulus inflate_codes_free(s->sub.decode.codes, z); 4292 1.1 paulus LOAD 4293 1.1 paulus Tracev((stderr, "inflate: codes end, %lu total out\n", 4294 1.1 paulus z->total_out + (q >= s->read ? q - s->read : 4295 1.1 paulus (s->end - s->read) + (q - s->window)))); 4296 1.1 paulus if (!s->last) 4297 1.1 paulus { 4298 1.1 paulus s->mode = TYPE; 4299 1.1 paulus break; 4300 1.1 paulus } 4301 1.1 paulus s->mode = DRY; 4302 1.39 rin /* FALLTHROUGH */ 4303 1.1 paulus case DRY: 4304 1.1 paulus FLUSH 4305 1.1 paulus if (s->read != s->write) 4306 1.1 paulus LEAVE 4307 1.1 paulus s->mode = DONEB; 4308 1.39 rin /* FALLTHROUGH */ 4309 1.1 paulus case DONEB: 4310 1.1 paulus r = Z_STREAM_END; 4311 1.1 paulus LEAVE 4312 1.1 paulus case BADB: 4313 1.1 paulus r = Z_DATA_ERROR; 4314 1.1 paulus LEAVE 4315 1.1 paulus default: 4316 1.1 paulus r = Z_STREAM_ERROR; 4317 1.1 paulus LEAVE 4318 1.1 paulus } 4319 1.1 paulus } 4320 1.1 paulus 4321 1.1 paulus 4322 1.32 cegger int inflate_blocks_free(inflate_blocks_statef *s, z_streamp z) 4323 1.1 paulus { 4324 1.17 fvdl inflate_blocks_reset(s, z, Z_NULL); 4325 1.7 christos ZFREE(z, s->window); 4326 1.17 fvdl ZFREE(z, s->hufts); 4327 1.7 christos ZFREE(z, s); 4328 1.17 fvdl Tracev((stderr, "inflate: blocks freed\n")); 4329 1.1 paulus return Z_OK; 4330 1.1 paulus } 4331 1.1 paulus 4332 1.7 christos 4333 1.19 kristerw #if 0 4334 1.32 cegger void inflate_set_dictionary(inflate_blocks_statef *s, const Bytef *d, uInt n) 4335 1.7 christos { 4336 1.17 fvdl zmemcpy(s->window, d, n); 4337 1.7 christos s->read = s->write = s->window + n; 4338 1.7 christos } 4339 1.19 kristerw #endif 4340 1.7 christos 4341 1.1 paulus /* 4342 1.1 paulus * This subroutine adds the data at next_in/avail_in to the output history 4343 1.1 paulus * without performing any output. The output buffer must be "caught up"; 4344 1.1 paulus * i.e. no pending output (hence s->read equals s->write), and the state must 4345 1.1 paulus * be BLOCKS (i.e. we should be willing to see the start of a series of 4346 1.1 paulus * BLOCKS). On exit, the output will also be caught up, and the checksum 4347 1.1 paulus * will have been updated if need be. 4348 1.1 paulus */ 4349 1.32 cegger int inflate_addhistory(inflate_blocks_statef *s, z_stream *z) 4350 1.1 paulus { 4351 1.1 paulus uLong b; /* bit buffer */ /* NOT USED HERE */ 4352 1.1 paulus uInt k; /* bits in bit buffer */ /* NOT USED HERE */ 4353 1.1 paulus uInt t; /* temporary storage */ 4354 1.1 paulus Bytef *p; /* input data pointer */ 4355 1.1 paulus uInt n; /* bytes available there */ 4356 1.1 paulus Bytef *q; /* output window write pointer */ 4357 1.1 paulus uInt m; /* bytes to end of window or read pointer */ 4358 1.1 paulus 4359 1.1 paulus if (s->read != s->write) 4360 1.1 paulus return Z_STREAM_ERROR; 4361 1.1 paulus if (s->mode != TYPE) 4362 1.1 paulus return Z_DATA_ERROR; 4363 1.1 paulus 4364 1.1 paulus /* we're ready to rock */ 4365 1.1 paulus LOAD 4366 1.1 paulus /* while there is input ready, copy to output buffer, moving 4367 1.1 paulus * pointers as needed. 4368 1.1 paulus */ 4369 1.1 paulus while (n) { 4370 1.1 paulus t = n; /* how many to do */ 4371 1.1 paulus /* is there room until end of buffer? */ 4372 1.1 paulus if (t > m) t = m; 4373 1.1 paulus /* update check information */ 4374 1.1 paulus if (s->checkfn != Z_NULL) 4375 1.1 paulus s->check = (*s->checkfn)(s->check, q, t); 4376 1.1 paulus zmemcpy(q, p, t); 4377 1.1 paulus q += t; 4378 1.1 paulus p += t; 4379 1.1 paulus n -= t; 4380 1.1 paulus z->total_out += t; 4381 1.1 paulus s->read = q; /* drag read pointer forward */ 4382 1.7 christos /* WWRAP */ /* expand WWRAP macro by hand to handle s->read */ 4383 1.1 paulus if (q == s->end) { 4384 1.1 paulus s->read = q = s->window; 4385 1.1 paulus m = WAVAIL; 4386 1.1 paulus } 4387 1.1 paulus } 4388 1.1 paulus UPDATE 4389 1.1 paulus return Z_OK; 4390 1.1 paulus } 4391 1.1 paulus 4392 1.1 paulus 4393 1.1 paulus /* 4394 1.1 paulus * At the end of a Deflate-compressed PPP packet, we expect to have seen 4395 1.1 paulus * a `stored' block type value but not the (zero) length bytes. 4396 1.1 paulus */ 4397 1.32 cegger int inflate_packet_flush(inflate_blocks_statef *s) 4398 1.1 paulus { 4399 1.1 paulus if (s->mode != LENS) 4400 1.1 paulus return Z_DATA_ERROR; 4401 1.1 paulus s->mode = TYPE; 4402 1.1 paulus return Z_OK; 4403 1.1 paulus } 4404 1.17 fvdl 4405 1.17 fvdl /* Returns true if inflate is currently at the end of a block generated 4406 1.20 perry * by Z_SYNC_FLUSH or Z_FULL_FLUSH. 4407 1.17 fvdl * IN assertion: s != Z_NULL 4408 1.17 fvdl */ 4409 1.19 kristerw #if 0 4410 1.17 fvdl int inflate_blocks_sync_point(s) 4411 1.17 fvdl inflate_blocks_statef *s; 4412 1.17 fvdl { 4413 1.17 fvdl return s->mode == LENS; 4414 1.17 fvdl } 4415 1.19 kristerw #endif 4416 1.7 christos /* --- infblock.c */ 4417 1.1 paulus 4418 1.17 fvdl 4419 1.7 christos /* +++ inftrees.c */ 4420 1.17 fvdl 4421 1.1 paulus /* inftrees.c -- generate Huffman trees for efficient decoding 4422 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 4423 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 4424 1.1 paulus */ 4425 1.1 paulus 4426 1.7 christos /* #include "zutil.h" */ 4427 1.7 christos /* #include "inftrees.h" */ 4428 1.7 christos 4429 1.17 fvdl #if !defined(BUILDFIXED) && !defined(STDC) 4430 1.17 fvdl # define BUILDFIXED /* non ANSI compilers may not accept inffixed.h */ 4431 1.17 fvdl #endif 4432 1.17 fvdl 4433 1.17 fvdl const char inflate_copyright[] = 4434 1.17 fvdl " inflate 1.1.4 Copyright 1995-2002 Mark Adler "; 4435 1.7 christos /* 4436 1.7 christos If you use the zlib library in a product, an acknowledgment is welcome 4437 1.7 christos in the documentation of your product. If for some reason you cannot 4438 1.7 christos include such an acknowledgment, I would appreciate that you keep this 4439 1.7 christos copyright string in the executable of your product. 4440 1.7 christos */ 4441 1.7 christos 4442 1.7 christos #ifndef NO_DUMMY_DECL 4443 1.7 christos struct internal_state {int dummy;}; /* for buggy compilers */ 4444 1.7 christos #endif 4445 1.7 christos 4446 1.1 paulus /* simplify the use of the inflate_huft type with some defines */ 4447 1.1 paulus #define exop word.what.Exop 4448 1.1 paulus #define bits word.what.Bits 4449 1.1 paulus 4450 1.1 paulus 4451 1.31 dsl local int huft_build( 4452 1.1 paulus uIntf *, /* code lengths in bits */ 4453 1.1 paulus uInt, /* number of codes */ 4454 1.1 paulus uInt, /* number of "simple" codes */ 4455 1.7 christos const uIntf *, /* list of base values for non-simple codes */ 4456 1.7 christos const uIntf *, /* list of extra bits for non-simple codes */ 4457 1.1 paulus inflate_huft * FAR*,/* result: starting table */ 4458 1.1 paulus uIntf *, /* maximum lookup bits (returns actual) */ 4459 1.17 fvdl inflate_huft *, /* space for trees */ 4460 1.17 fvdl uInt *, /* hufts used in space */ 4461 1.31 dsl uIntf * ); /* space for values */ 4462 1.1 paulus 4463 1.1 paulus /* Tables for deflate from PKZIP's appnote.txt. */ 4464 1.7 christos local const uInt cplens[31] = { /* Copy lengths for literal codes 257..285 */ 4465 1.1 paulus 3, 4, 5, 6, 7, 8, 9, 10, 11, 13, 15, 17, 19, 23, 27, 31, 4466 1.1 paulus 35, 43, 51, 59, 67, 83, 99, 115, 131, 163, 195, 227, 258, 0, 0}; 4467 1.7 christos /* see note #13 above about 258 */ 4468 1.7 christos local const uInt cplext[31] = { /* Extra bits for literal codes 257..285 */ 4469 1.1 paulus 0, 0, 0, 0, 0, 0, 0, 0, 1, 1, 1, 1, 2, 2, 2, 2, 4470 1.7 christos 3, 3, 3, 3, 4, 4, 4, 4, 5, 5, 5, 5, 0, 112, 112}; /* 112==invalid */ 4471 1.7 christos local const uInt cpdist[30] = { /* Copy offsets for distance codes 0..29 */ 4472 1.1 paulus 1, 2, 3, 4, 5, 7, 9, 13, 17, 25, 33, 49, 65, 97, 129, 193, 4473 1.1 paulus 257, 385, 513, 769, 1025, 1537, 2049, 3073, 4097, 6145, 4474 1.1 paulus 8193, 12289, 16385, 24577}; 4475 1.7 christos local const uInt cpdext[30] = { /* Extra bits for distance codes */ 4476 1.1 paulus 0, 0, 0, 0, 1, 1, 2, 2, 3, 3, 4, 4, 5, 5, 6, 6, 4477 1.1 paulus 7, 7, 8, 8, 9, 9, 10, 10, 11, 11, 4478 1.1 paulus 12, 12, 13, 13}; 4479 1.1 paulus 4480 1.1 paulus /* 4481 1.1 paulus Huffman code decoding is performed using a multi-level table lookup. 4482 1.1 paulus The fastest way to decode is to simply build a lookup table whose 4483 1.1 paulus size is determined by the longest code. However, the time it takes 4484 1.1 paulus to build this table can also be a factor if the data being decoded 4485 1.1 paulus is not very long. The most common codes are necessarily the 4486 1.1 paulus shortest codes, so those codes dominate the decoding time, and hence 4487 1.1 paulus the speed. The idea is you can have a shorter table that decodes the 4488 1.1 paulus shorter, more probable codes, and then point to subsidiary tables for 4489 1.1 paulus the longer codes. The time it costs to decode the longer codes is 4490 1.1 paulus then traded against the time it takes to make longer tables. 4491 1.1 paulus 4492 1.1 paulus This results of this trade are in the variables lbits and dbits 4493 1.1 paulus below. lbits is the number of bits the first level table for literal/ 4494 1.1 paulus length codes can decode in one step, and dbits is the same thing for 4495 1.1 paulus the distance codes. Subsequent tables are also less than or equal to 4496 1.1 paulus those sizes. These values may be adjusted either when all of the 4497 1.1 paulus codes are shorter than that, in which case the longest code length in 4498 1.1 paulus bits is used, or when the shortest code is *longer* than the requested 4499 1.1 paulus table size, in which case the length of the shortest code in bits is 4500 1.1 paulus used. 4501 1.1 paulus 4502 1.1 paulus There are two different values for the two tables, since they code a 4503 1.1 paulus different number of possibilities each. The literal/length table 4504 1.1 paulus codes 286 possible values, or in a flat code, a little over eight 4505 1.1 paulus bits. The distance table codes 30 possible values, or a little less 4506 1.1 paulus than five bits, flat. The optimum values for speed end up being 4507 1.1 paulus about one bit more than those, so lbits is 8+1 and dbits is 5+1. 4508 1.1 paulus The optimum values may differ though from machine to machine, and 4509 1.1 paulus possibly even between compilers. Your mileage may vary. 4510 1.1 paulus */ 4511 1.1 paulus 4512 1.1 paulus 4513 1.1 paulus /* If BMAX needs to be larger than 16, then h and x[] should be uLong. */ 4514 1.1 paulus #define BMAX 15 /* maximum bit length of any code */ 4515 1.1 paulus 4516 1.32 cegger local int huft_build(uIntf *b, /* code lengths in bits (all assumed <= BMAX) */ 4517 1.32 cegger uInt n, /* number of codes (assumed <= 288) */ 4518 1.32 cegger uInt s, /* number of simple-valued codes (0..s-1) */ 4519 1.32 cegger const uIntf *d, /* list of base values for non-simple codes */ 4520 1.32 cegger const uIntf *e, /* list of extra bits for non-simple codes */ 4521 1.32 cegger inflate_huft * FAR *t, /* result: starting table */ 4522 1.32 cegger uIntf *m, /* maximum lookup bits, returns actual */ 4523 1.32 cegger inflate_huft *hp, /* space for trees */ 4524 1.32 cegger uInt *hn, /* hufts used in space */ 4525 1.32 cegger uIntf *v) /* working area: values in order of bit length */ 4526 1.32 cegger 4527 1.1 paulus /* Given a list of code lengths and a maximum table size, make a set of 4528 1.1 paulus tables to decode that set of codes. Return Z_OK on success, Z_BUF_ERROR 4529 1.1 paulus if the given code set is incomplete (the tables are still built in this 4530 1.17 fvdl case), or Z_DATA_ERROR if the input is invalid. */ 4531 1.1 paulus { 4532 1.1 paulus 4533 1.1 paulus uInt a; /* counter for codes of length k */ 4534 1.1 paulus uInt c[BMAX+1]; /* bit length count table */ 4535 1.1 paulus uInt f; /* i repeats in table every f entries */ 4536 1.1 paulus int g; /* maximum code length */ 4537 1.1 paulus int h; /* table level */ 4538 1.17 fvdl uInt i; /* counter, current code */ 4539 1.17 fvdl uInt j; /* counter */ 4540 1.17 fvdl int k; /* number of bits in current code */ 4541 1.1 paulus int l; /* bits per table (returned in m) */ 4542 1.17 fvdl uInt mask; /* (1 << w) - 1, to avoid cc -O bug on HP */ 4543 1.17 fvdl uIntf *p; /* pointer into c[], b[], or v[] */ 4544 1.1 paulus inflate_huft *q; /* points to current table */ 4545 1.1 paulus struct inflate_huft_s r; /* table entry for structure assignment */ 4546 1.1 paulus inflate_huft *u[BMAX]; /* table stack */ 4547 1.17 fvdl int w; /* bits before this table == (l * h) */ 4548 1.1 paulus uInt x[BMAX+1]; /* bit offsets, then code stack */ 4549 1.1 paulus uIntf *xp; /* pointer into x */ 4550 1.1 paulus int y; /* number of dummy codes added */ 4551 1.1 paulus uInt z; /* number of entries in current table */ 4552 1.1 paulus 4553 1.26 mrg r.base = 0; /* XXX gcc */ 4554 1.1 paulus 4555 1.1 paulus /* Generate counts for each bit length */ 4556 1.1 paulus p = c; 4557 1.1 paulus #define C0 *p++ = 0; 4558 1.1 paulus #define C2 C0 C0 C0 C0 4559 1.1 paulus #define C4 C2 C2 C2 C2 4560 1.1 paulus C4 /* clear c[]--assume BMAX+1 is 16 */ 4561 1.1 paulus p = b; i = n; 4562 1.1 paulus do { 4563 1.1 paulus c[*p++]++; /* assume all entries <= BMAX */ 4564 1.1 paulus } while (--i); 4565 1.1 paulus if (c[0] == n) /* null input--all zero length codes */ 4566 1.1 paulus { 4567 1.1 paulus *t = (inflate_huft *)Z_NULL; 4568 1.1 paulus *m = 0; 4569 1.1 paulus return Z_OK; 4570 1.1 paulus } 4571 1.1 paulus 4572 1.1 paulus 4573 1.1 paulus /* Find minimum and maximum length, bound *m by those */ 4574 1.1 paulus l = *m; 4575 1.1 paulus for (j = 1; j <= BMAX; j++) 4576 1.1 paulus if (c[j]) 4577 1.1 paulus break; 4578 1.1 paulus k = j; /* minimum code length */ 4579 1.1 paulus if ((uInt)l < j) 4580 1.1 paulus l = j; 4581 1.1 paulus for (i = BMAX; i; i--) 4582 1.1 paulus if (c[i]) 4583 1.1 paulus break; 4584 1.1 paulus g = i; /* maximum code length */ 4585 1.1 paulus if ((uInt)l > i) 4586 1.1 paulus l = i; 4587 1.1 paulus *m = l; 4588 1.1 paulus 4589 1.1 paulus 4590 1.1 paulus /* Adjust last length count to fill out codes, if needed */ 4591 1.1 paulus for (y = 1 << j; j < i; j++, y <<= 1) 4592 1.1 paulus if ((y -= c[j]) < 0) 4593 1.1 paulus return Z_DATA_ERROR; 4594 1.1 paulus if ((y -= c[i]) < 0) 4595 1.1 paulus return Z_DATA_ERROR; 4596 1.1 paulus c[i] += y; 4597 1.1 paulus 4598 1.1 paulus 4599 1.1 paulus /* Generate starting offsets into the value table for each length */ 4600 1.1 paulus x[1] = j = 0; 4601 1.1 paulus p = c + 1; xp = x + 2; 4602 1.1 paulus while (--i) { /* note that i == g from above */ 4603 1.1 paulus *xp++ = (j += *p++); 4604 1.1 paulus } 4605 1.1 paulus 4606 1.1 paulus 4607 1.1 paulus /* Make a table of values in order of bit lengths */ 4608 1.1 paulus p = b; i = 0; 4609 1.1 paulus do { 4610 1.1 paulus if ((j = *p++) != 0) 4611 1.1 paulus v[x[j]++] = i; 4612 1.1 paulus } while (++i < n); 4613 1.17 fvdl n = x[g]; /* set n to length of v */ 4614 1.1 paulus 4615 1.1 paulus 4616 1.1 paulus /* Generate the Huffman codes and for each, make the table entries */ 4617 1.1 paulus x[0] = i = 0; /* first Huffman code is zero */ 4618 1.1 paulus p = v; /* grab values in bit order */ 4619 1.1 paulus h = -1; /* no tables yet--level -1 */ 4620 1.1 paulus w = -l; /* bits decoded == (l * h) */ 4621 1.1 paulus u[0] = (inflate_huft *)Z_NULL; /* just to keep compilers happy */ 4622 1.1 paulus q = (inflate_huft *)Z_NULL; /* ditto */ 4623 1.1 paulus z = 0; /* ditto */ 4624 1.1 paulus 4625 1.1 paulus /* go through the bit lengths (k already is bits in shortest code) */ 4626 1.1 paulus for (; k <= g; k++) 4627 1.1 paulus { 4628 1.1 paulus a = c[k]; 4629 1.1 paulus while (a--) 4630 1.1 paulus { 4631 1.1 paulus /* here i is the Huffman code of length k bits for value *p */ 4632 1.1 paulus /* make tables up to required level */ 4633 1.1 paulus while (k > w + l) 4634 1.1 paulus { 4635 1.1 paulus h++; 4636 1.1 paulus w += l; /* previous table always l bits */ 4637 1.1 paulus 4638 1.1 paulus /* compute minimum size table less than or equal to l bits */ 4639 1.7 christos z = g - w; 4640 1.7 christos z = z > (uInt)l ? l : z; /* table size upper limit */ 4641 1.1 paulus if ((f = 1 << (j = k - w)) > a + 1) /* try a k-w bit table */ 4642 1.1 paulus { /* too few codes for k-w bit table */ 4643 1.1 paulus f -= a + 1; /* deduct codes from patterns left */ 4644 1.1 paulus xp = c + k; 4645 1.1 paulus if (j < z) 4646 1.1 paulus while (++j < z) /* try smaller tables up to z bits */ 4647 1.1 paulus { 4648 1.1 paulus if ((f <<= 1) <= *++xp) 4649 1.1 paulus break; /* enough codes to use up j bits */ 4650 1.1 paulus f -= *xp; /* else deduct codes from patterns */ 4651 1.1 paulus } 4652 1.1 paulus } 4653 1.1 paulus z = 1 << j; /* table entries for j-bit table */ 4654 1.1 paulus 4655 1.17 fvdl /* allocate new table */ 4656 1.17 fvdl if (*hn + z > MANY) /* (note: doesn't matter for fixed) */ 4657 1.17 fvdl return Z_DATA_ERROR; /* overflow of MANY */ 4658 1.17 fvdl u[h] = q = hp + *hn; 4659 1.17 fvdl *hn += z; 4660 1.1 paulus 4661 1.1 paulus /* connect to last table, if there is one */ 4662 1.1 paulus if (h) 4663 1.1 paulus { 4664 1.1 paulus x[h] = i; /* save pattern for backing up */ 4665 1.1 paulus r.bits = (Byte)l; /* bits to dump before this table */ 4666 1.1 paulus r.exop = (Byte)j; /* bits in this table */ 4667 1.17 fvdl j = i >> (w - l); 4668 1.17 fvdl r.base = (uInt)(q - u[h-1] - j); /* offset to this table */ 4669 1.1 paulus u[h-1][j] = r; /* connect to last table */ 4670 1.1 paulus } 4671 1.17 fvdl else 4672 1.17 fvdl *t = q; /* first table is returned result */ 4673 1.1 paulus } 4674 1.1 paulus 4675 1.1 paulus /* set up table entry in r */ 4676 1.1 paulus r.bits = (Byte)(k - w); 4677 1.1 paulus if (p >= v + n) 4678 1.1 paulus r.exop = 128 + 64; /* out of values--invalid code */ 4679 1.1 paulus else if (*p < s) 4680 1.1 paulus { 4681 1.1 paulus r.exop = (Byte)(*p < 256 ? 0 : 32 + 64); /* 256 is end-of-block */ 4682 1.1 paulus r.base = *p++; /* simple code is just the value */ 4683 1.1 paulus } 4684 1.1 paulus else 4685 1.1 paulus { 4686 1.7 christos r.exop = (Byte)(e[*p - s] + 16 + 64);/* non-simple--look up in lists */ 4687 1.1 paulus r.base = d[*p++ - s]; 4688 1.1 paulus } 4689 1.1 paulus 4690 1.1 paulus /* fill code-like entries with r */ 4691 1.1 paulus f = 1 << (k - w); 4692 1.1 paulus for (j = i >> w; j < z; j += f) 4693 1.1 paulus q[j] = r; 4694 1.1 paulus 4695 1.1 paulus /* backwards increment the k-bit code i */ 4696 1.1 paulus for (j = 1 << (k - 1); i & j; j >>= 1) 4697 1.1 paulus i ^= j; 4698 1.1 paulus i ^= j; 4699 1.1 paulus 4700 1.1 paulus /* backup over finished tables */ 4701 1.17 fvdl mask = (1 << w) - 1; /* needed on HP, cc -O bug */ 4702 1.25 christos if (h == -1) 4703 1.25 christos return Z_BUF_ERROR; 4704 1.17 fvdl while ((i & mask) != x[h]) 4705 1.1 paulus { 4706 1.1 paulus h--; /* don't need to update q */ 4707 1.1 paulus w -= l; 4708 1.17 fvdl mask = (1 << w) - 1; 4709 1.1 paulus } 4710 1.1 paulus } 4711 1.1 paulus } 4712 1.1 paulus 4713 1.1 paulus 4714 1.1 paulus /* Return Z_BUF_ERROR if we were given an incomplete table */ 4715 1.1 paulus return y != 0 && g != 1 ? Z_BUF_ERROR : Z_OK; 4716 1.1 paulus } 4717 1.1 paulus 4718 1.1 paulus 4719 1.32 cegger int inflate_trees_bits(uIntf *c, /* 19 code lengths */ 4720 1.32 cegger uIntf *bb, /* bits tree desired/actual depth */ 4721 1.32 cegger inflate_huft * FAR *tb, /* bits tree result */ 4722 1.32 cegger inflate_huft *hp, /* space for trees */ 4723 1.32 cegger z_streamp z) /* for message */ 4724 1.1 paulus { 4725 1.1 paulus int r; 4726 1.17 fvdl uInt hn = 0; /* hufts used in space */ 4727 1.17 fvdl uIntf *v; /* work area for huft_build */ 4728 1.1 paulus 4729 1.17 fvdl if ((v = (uIntf*)ZALLOC(z, 19, sizeof(uInt))) == Z_NULL) 4730 1.17 fvdl return Z_MEM_ERROR; 4731 1.17 fvdl r = huft_build(c, 19, 19, (uIntf*)Z_NULL, (uIntf*)Z_NULL, 4732 1.17 fvdl tb, bb, hp, &hn, v); 4733 1.1 paulus if (r == Z_DATA_ERROR) 4734 1.21 christos z->msg = "oversubscribed dynamic bit lengths tree"; 4735 1.7 christos else if (r == Z_BUF_ERROR || *bb == 0) 4736 1.1 paulus { 4737 1.21 christos z->msg = "incomplete dynamic bit lengths tree"; 4738 1.1 paulus r = Z_DATA_ERROR; 4739 1.1 paulus } 4740 1.17 fvdl ZFREE(z, v); 4741 1.1 paulus return r; 4742 1.1 paulus } 4743 1.1 paulus 4744 1.1 paulus 4745 1.32 cegger int inflate_trees_dynamic(uInt nl, 4746 1.32 cegger uInt nd, /* number of literal/length codes */ 4747 1.32 cegger uIntf *c, /* number of distance codes */ 4748 1.32 cegger uIntf *bl, /* that many (total) code lengths */ 4749 1.32 cegger uIntf *bd, /* literal desired/actual bit depth */ 4750 1.32 cegger inflate_huft * FAR *tl, /* literal/length tree result */ 4751 1.32 cegger inflate_huft * FAR *td, /* distance tree result */ 4752 1.32 cegger inflate_huft *hp, /* space for trees */ 4753 1.32 cegger z_streamp z) /* for message */ 4754 1.1 paulus { 4755 1.1 paulus int r; 4756 1.17 fvdl uInt hn = 0; /* hufts used in space */ 4757 1.17 fvdl uIntf *v; /* work area for huft_build */ 4758 1.17 fvdl 4759 1.17 fvdl /* allocate work area */ 4760 1.17 fvdl if ((v = (uIntf*)ZALLOC(z, 288, sizeof(uInt))) == Z_NULL) 4761 1.17 fvdl return Z_MEM_ERROR; 4762 1.1 paulus 4763 1.1 paulus /* build literal/length tree */ 4764 1.17 fvdl r = huft_build(c, nl, 257, cplens, cplext, tl, bl, hp, &hn, v); 4765 1.7 christos if (r != Z_OK || *bl == 0) 4766 1.1 paulus { 4767 1.1 paulus if (r == Z_DATA_ERROR) 4768 1.21 christos z->msg = "oversubscribed literal/length tree"; 4769 1.7 christos else if (r != Z_MEM_ERROR) 4770 1.1 paulus { 4771 1.21 christos z->msg = "incomplete literal/length tree"; 4772 1.1 paulus r = Z_DATA_ERROR; 4773 1.1 paulus } 4774 1.17 fvdl ZFREE(z, v); 4775 1.1 paulus return r; 4776 1.1 paulus } 4777 1.1 paulus 4778 1.1 paulus /* build distance tree */ 4779 1.17 fvdl r = huft_build(c + nl, nd, 0, cpdist, cpdext, td, bd, hp, &hn, v); 4780 1.7 christos if (r != Z_OK || (*bd == 0 && nl > 257)) 4781 1.1 paulus { 4782 1.1 paulus if (r == Z_DATA_ERROR) 4783 1.21 christos z->msg = "oversubscribed distance tree"; 4784 1.1 paulus else if (r == Z_BUF_ERROR) { 4785 1.1 paulus #ifdef PKZIP_BUG_WORKAROUND 4786 1.1 paulus r = Z_OK; 4787 1.1 paulus } 4788 1.1 paulus #else 4789 1.21 christos z->msg = "incomplete distance tree"; 4790 1.7 christos r = Z_DATA_ERROR; 4791 1.7 christos } 4792 1.7 christos else if (r != Z_MEM_ERROR) 4793 1.7 christos { 4794 1.21 christos z->msg = "empty distance tree with lengths"; 4795 1.1 paulus r = Z_DATA_ERROR; 4796 1.1 paulus } 4797 1.17 fvdl ZFREE(z, v); 4798 1.1 paulus return r; 4799 1.1 paulus #endif 4800 1.1 paulus } 4801 1.1 paulus 4802 1.1 paulus /* done */ 4803 1.17 fvdl ZFREE(z, v); 4804 1.1 paulus return Z_OK; 4805 1.1 paulus } 4806 1.1 paulus 4807 1.1 paulus 4808 1.1 paulus /* build fixed tables only once--keep them here */ 4809 1.17 fvdl #ifdef BUILDFIXED 4810 1.1 paulus local int fixed_built = 0; 4811 1.17 fvdl #define FIXEDH 544 /* number of hufts used by fixed tables */ 4812 1.1 paulus local inflate_huft fixed_mem[FIXEDH]; 4813 1.1 paulus local uInt fixed_bl; 4814 1.1 paulus local uInt fixed_bd; 4815 1.1 paulus local inflate_huft *fixed_tl; 4816 1.1 paulus local inflate_huft *fixed_td; 4817 1.17 fvdl #else 4818 1.17 fvdl 4819 1.17 fvdl /* +++ inffixed.h */ 4820 1.17 fvdl /* inffixed.h -- table for decoding fixed codes 4821 1.17 fvdl * Generated automatically by the maketree.c program 4822 1.17 fvdl */ 4823 1.17 fvdl 4824 1.17 fvdl /* WARNING: this file should *not* be used by applications. It is 4825 1.17 fvdl part of the implementation of the compression library and is 4826 1.17 fvdl subject to change. Applications should only use zlib.h. 4827 1.17 fvdl */ 4828 1.1 paulus 4829 1.17 fvdl local uInt fixed_bl = 9; 4830 1.17 fvdl local uInt fixed_bd = 5; 4831 1.17 fvdl local inflate_huft fixed_tl[] = { 4832 1.17 fvdl {{{96,7}},256}, {{{0,8}},80}, {{{0,8}},16}, {{{84,8}},115}, 4833 1.17 fvdl {{{82,7}},31}, {{{0,8}},112}, {{{0,8}},48}, {{{0,9}},192}, 4834 1.17 fvdl {{{80,7}},10}, {{{0,8}},96}, {{{0,8}},32}, {{{0,9}},160}, 4835 1.17 fvdl {{{0,8}},0}, {{{0,8}},128}, {{{0,8}},64}, {{{0,9}},224}, 4836 1.17 fvdl {{{80,7}},6}, {{{0,8}},88}, {{{0,8}},24}, {{{0,9}},144}, 4837 1.17 fvdl {{{83,7}},59}, {{{0,8}},120}, {{{0,8}},56}, {{{0,9}},208}, 4838 1.17 fvdl {{{81,7}},17}, {{{0,8}},104}, {{{0,8}},40}, {{{0,9}},176}, 4839 1.17 fvdl {{{0,8}},8}, {{{0,8}},136}, {{{0,8}},72}, {{{0,9}},240}, 4840 1.17 fvdl {{{80,7}},4}, {{{0,8}},84}, {{{0,8}},20}, {{{85,8}},227}, 4841 1.17 fvdl {{{83,7}},43}, {{{0,8}},116}, {{{0,8}},52}, {{{0,9}},200}, 4842 1.17 fvdl {{{81,7}},13}, {{{0,8}},100}, {{{0,8}},36}, {{{0,9}},168}, 4843 1.17 fvdl {{{0,8}},4}, {{{0,8}},132}, {{{0,8}},68}, {{{0,9}},232}, 4844 1.17 fvdl {{{80,7}},8}, {{{0,8}},92}, {{{0,8}},28}, {{{0,9}},152}, 4845 1.17 fvdl {{{84,7}},83}, {{{0,8}},124}, {{{0,8}},60}, {{{0,9}},216}, 4846 1.17 fvdl {{{82,7}},23}, {{{0,8}},108}, {{{0,8}},44}, {{{0,9}},184}, 4847 1.17 fvdl {{{0,8}},12}, {{{0,8}},140}, {{{0,8}},76}, {{{0,9}},248}, 4848 1.17 fvdl {{{80,7}},3}, {{{0,8}},82}, {{{0,8}},18}, {{{85,8}},163}, 4849 1.17 fvdl {{{83,7}},35}, {{{0,8}},114}, {{{0,8}},50}, {{{0,9}},196}, 4850 1.17 fvdl {{{81,7}},11}, {{{0,8}},98}, {{{0,8}},34}, {{{0,9}},164}, 4851 1.17 fvdl {{{0,8}},2}, {{{0,8}},130}, {{{0,8}},66}, {{{0,9}},228}, 4852 1.17 fvdl {{{80,7}},7}, {{{0,8}},90}, {{{0,8}},26}, {{{0,9}},148}, 4853 1.17 fvdl {{{84,7}},67}, {{{0,8}},122}, {{{0,8}},58}, {{{0,9}},212}, 4854 1.17 fvdl {{{82,7}},19}, {{{0,8}},106}, {{{0,8}},42}, {{{0,9}},180}, 4855 1.17 fvdl {{{0,8}},10}, {{{0,8}},138}, {{{0,8}},74}, {{{0,9}},244}, 4856 1.17 fvdl {{{80,7}},5}, {{{0,8}},86}, {{{0,8}},22}, {{{192,8}},0}, 4857 1.17 fvdl {{{83,7}},51}, {{{0,8}},118}, {{{0,8}},54}, {{{0,9}},204}, 4858 1.17 fvdl {{{81,7}},15}, {{{0,8}},102}, {{{0,8}},38}, {{{0,9}},172}, 4859 1.17 fvdl {{{0,8}},6}, {{{0,8}},134}, {{{0,8}},70}, {{{0,9}},236}, 4860 1.17 fvdl {{{80,7}},9}, {{{0,8}},94}, {{{0,8}},30}, {{{0,9}},156}, 4861 1.17 fvdl {{{84,7}},99}, {{{0,8}},126}, {{{0,8}},62}, {{{0,9}},220}, 4862 1.17 fvdl {{{82,7}},27}, {{{0,8}},110}, {{{0,8}},46}, {{{0,9}},188}, 4863 1.17 fvdl {{{0,8}},14}, {{{0,8}},142}, {{{0,8}},78}, {{{0,9}},252}, 4864 1.17 fvdl {{{96,7}},256}, {{{0,8}},81}, {{{0,8}},17}, {{{85,8}},131}, 4865 1.17 fvdl {{{82,7}},31}, {{{0,8}},113}, {{{0,8}},49}, {{{0,9}},194}, 4866 1.17 fvdl {{{80,7}},10}, {{{0,8}},97}, {{{0,8}},33}, {{{0,9}},162}, 4867 1.17 fvdl {{{0,8}},1}, {{{0,8}},129}, {{{0,8}},65}, {{{0,9}},226}, 4868 1.17 fvdl {{{80,7}},6}, {{{0,8}},89}, {{{0,8}},25}, {{{0,9}},146}, 4869 1.17 fvdl {{{83,7}},59}, {{{0,8}},121}, {{{0,8}},57}, {{{0,9}},210}, 4870 1.17 fvdl {{{81,7}},17}, {{{0,8}},105}, {{{0,8}},41}, {{{0,9}},178}, 4871 1.17 fvdl {{{0,8}},9}, {{{0,8}},137}, {{{0,8}},73}, {{{0,9}},242}, 4872 1.17 fvdl {{{80,7}},4}, {{{0,8}},85}, {{{0,8}},21}, {{{80,8}},258}, 4873 1.17 fvdl {{{83,7}},43}, {{{0,8}},117}, {{{0,8}},53}, {{{0,9}},202}, 4874 1.17 fvdl {{{81,7}},13}, {{{0,8}},101}, {{{0,8}},37}, {{{0,9}},170}, 4875 1.17 fvdl {{{0,8}},5}, {{{0,8}},133}, {{{0,8}},69}, {{{0,9}},234}, 4876 1.17 fvdl {{{80,7}},8}, {{{0,8}},93}, {{{0,8}},29}, {{{0,9}},154}, 4877 1.17 fvdl {{{84,7}},83}, {{{0,8}},125}, {{{0,8}},61}, {{{0,9}},218}, 4878 1.17 fvdl {{{82,7}},23}, {{{0,8}},109}, {{{0,8}},45}, {{{0,9}},186}, 4879 1.17 fvdl {{{0,8}},13}, {{{0,8}},141}, {{{0,8}},77}, {{{0,9}},250}, 4880 1.17 fvdl {{{80,7}},3}, {{{0,8}},83}, {{{0,8}},19}, {{{85,8}},195}, 4881 1.17 fvdl {{{83,7}},35}, {{{0,8}},115}, {{{0,8}},51}, {{{0,9}},198}, 4882 1.17 fvdl {{{81,7}},11}, {{{0,8}},99}, {{{0,8}},35}, {{{0,9}},166}, 4883 1.17 fvdl {{{0,8}},3}, {{{0,8}},131}, {{{0,8}},67}, {{{0,9}},230}, 4884 1.17 fvdl {{{80,7}},7}, {{{0,8}},91}, {{{0,8}},27}, {{{0,9}},150}, 4885 1.17 fvdl {{{84,7}},67}, {{{0,8}},123}, {{{0,8}},59}, {{{0,9}},214}, 4886 1.17 fvdl {{{82,7}},19}, {{{0,8}},107}, {{{0,8}},43}, {{{0,9}},182}, 4887 1.17 fvdl {{{0,8}},11}, {{{0,8}},139}, {{{0,8}},75}, {{{0,9}},246}, 4888 1.17 fvdl {{{80,7}},5}, {{{0,8}},87}, {{{0,8}},23}, {{{192,8}},0}, 4889 1.17 fvdl {{{83,7}},51}, {{{0,8}},119}, {{{0,8}},55}, {{{0,9}},206}, 4890 1.17 fvdl {{{81,7}},15}, {{{0,8}},103}, {{{0,8}},39}, {{{0,9}},174}, 4891 1.17 fvdl {{{0,8}},7}, {{{0,8}},135}, {{{0,8}},71}, {{{0,9}},238}, 4892 1.17 fvdl {{{80,7}},9}, {{{0,8}},95}, {{{0,8}},31}, {{{0,9}},158}, 4893 1.17 fvdl {{{84,7}},99}, {{{0,8}},127}, {{{0,8}},63}, {{{0,9}},222}, 4894 1.17 fvdl {{{82,7}},27}, {{{0,8}},111}, {{{0,8}},47}, {{{0,9}},190}, 4895 1.17 fvdl {{{0,8}},15}, {{{0,8}},143}, {{{0,8}},79}, {{{0,9}},254}, 4896 1.17 fvdl {{{96,7}},256}, {{{0,8}},80}, {{{0,8}},16}, {{{84,8}},115}, 4897 1.17 fvdl {{{82,7}},31}, {{{0,8}},112}, {{{0,8}},48}, {{{0,9}},193}, 4898 1.17 fvdl {{{80,7}},10}, {{{0,8}},96}, {{{0,8}},32}, {{{0,9}},161}, 4899 1.17 fvdl {{{0,8}},0}, {{{0,8}},128}, {{{0,8}},64}, {{{0,9}},225}, 4900 1.17 fvdl {{{80,7}},6}, {{{0,8}},88}, {{{0,8}},24}, {{{0,9}},145}, 4901 1.17 fvdl {{{83,7}},59}, {{{0,8}},120}, {{{0,8}},56}, {{{0,9}},209}, 4902 1.17 fvdl {{{81,7}},17}, {{{0,8}},104}, {{{0,8}},40}, {{{0,9}},177}, 4903 1.17 fvdl {{{0,8}},8}, {{{0,8}},136}, {{{0,8}},72}, {{{0,9}},241}, 4904 1.17 fvdl {{{80,7}},4}, {{{0,8}},84}, {{{0,8}},20}, {{{85,8}},227}, 4905 1.17 fvdl {{{83,7}},43}, {{{0,8}},116}, {{{0,8}},52}, {{{0,9}},201}, 4906 1.17 fvdl {{{81,7}},13}, {{{0,8}},100}, {{{0,8}},36}, {{{0,9}},169}, 4907 1.17 fvdl {{{0,8}},4}, {{{0,8}},132}, {{{0,8}},68}, {{{0,9}},233}, 4908 1.17 fvdl {{{80,7}},8}, {{{0,8}},92}, {{{0,8}},28}, {{{0,9}},153}, 4909 1.17 fvdl {{{84,7}},83}, {{{0,8}},124}, {{{0,8}},60}, {{{0,9}},217}, 4910 1.17 fvdl {{{82,7}},23}, {{{0,8}},108}, {{{0,8}},44}, {{{0,9}},185}, 4911 1.17 fvdl {{{0,8}},12}, {{{0,8}},140}, {{{0,8}},76}, {{{0,9}},249}, 4912 1.17 fvdl {{{80,7}},3}, {{{0,8}},82}, {{{0,8}},18}, {{{85,8}},163}, 4913 1.17 fvdl {{{83,7}},35}, {{{0,8}},114}, {{{0,8}},50}, {{{0,9}},197}, 4914 1.17 fvdl {{{81,7}},11}, {{{0,8}},98}, {{{0,8}},34}, {{{0,9}},165}, 4915 1.17 fvdl {{{0,8}},2}, {{{0,8}},130}, {{{0,8}},66}, {{{0,9}},229}, 4916 1.17 fvdl {{{80,7}},7}, {{{0,8}},90}, {{{0,8}},26}, {{{0,9}},149}, 4917 1.17 fvdl {{{84,7}},67}, {{{0,8}},122}, {{{0,8}},58}, {{{0,9}},213}, 4918 1.17 fvdl {{{82,7}},19}, {{{0,8}},106}, {{{0,8}},42}, {{{0,9}},181}, 4919 1.17 fvdl {{{0,8}},10}, {{{0,8}},138}, {{{0,8}},74}, {{{0,9}},245}, 4920 1.17 fvdl {{{80,7}},5}, {{{0,8}},86}, {{{0,8}},22}, {{{192,8}},0}, 4921 1.17 fvdl {{{83,7}},51}, {{{0,8}},118}, {{{0,8}},54}, {{{0,9}},205}, 4922 1.17 fvdl {{{81,7}},15}, {{{0,8}},102}, {{{0,8}},38}, {{{0,9}},173}, 4923 1.17 fvdl {{{0,8}},6}, {{{0,8}},134}, {{{0,8}},70}, {{{0,9}},237}, 4924 1.17 fvdl {{{80,7}},9}, {{{0,8}},94}, {{{0,8}},30}, {{{0,9}},157}, 4925 1.17 fvdl {{{84,7}},99}, {{{0,8}},126}, {{{0,8}},62}, {{{0,9}},221}, 4926 1.17 fvdl {{{82,7}},27}, {{{0,8}},110}, {{{0,8}},46}, {{{0,9}},189}, 4927 1.17 fvdl {{{0,8}},14}, {{{0,8}},142}, {{{0,8}},78}, {{{0,9}},253}, 4928 1.17 fvdl {{{96,7}},256}, {{{0,8}},81}, {{{0,8}},17}, {{{85,8}},131}, 4929 1.17 fvdl {{{82,7}},31}, {{{0,8}},113}, {{{0,8}},49}, {{{0,9}},195}, 4930 1.17 fvdl {{{80,7}},10}, {{{0,8}},97}, {{{0,8}},33}, {{{0,9}},163}, 4931 1.17 fvdl {{{0,8}},1}, {{{0,8}},129}, {{{0,8}},65}, {{{0,9}},227}, 4932 1.17 fvdl {{{80,7}},6}, {{{0,8}},89}, {{{0,8}},25}, {{{0,9}},147}, 4933 1.17 fvdl {{{83,7}},59}, {{{0,8}},121}, {{{0,8}},57}, {{{0,9}},211}, 4934 1.17 fvdl {{{81,7}},17}, {{{0,8}},105}, {{{0,8}},41}, {{{0,9}},179}, 4935 1.17 fvdl {{{0,8}},9}, {{{0,8}},137}, {{{0,8}},73}, {{{0,9}},243}, 4936 1.17 fvdl {{{80,7}},4}, {{{0,8}},85}, {{{0,8}},21}, {{{80,8}},258}, 4937 1.17 fvdl {{{83,7}},43}, {{{0,8}},117}, {{{0,8}},53}, {{{0,9}},203}, 4938 1.17 fvdl {{{81,7}},13}, {{{0,8}},101}, {{{0,8}},37}, {{{0,9}},171}, 4939 1.17 fvdl {{{0,8}},5}, {{{0,8}},133}, {{{0,8}},69}, {{{0,9}},235}, 4940 1.17 fvdl {{{80,7}},8}, {{{0,8}},93}, {{{0,8}},29}, {{{0,9}},155}, 4941 1.17 fvdl {{{84,7}},83}, {{{0,8}},125}, {{{0,8}},61}, {{{0,9}},219}, 4942 1.17 fvdl {{{82,7}},23}, {{{0,8}},109}, {{{0,8}},45}, {{{0,9}},187}, 4943 1.17 fvdl {{{0,8}},13}, {{{0,8}},141}, {{{0,8}},77}, {{{0,9}},251}, 4944 1.17 fvdl {{{80,7}},3}, {{{0,8}},83}, {{{0,8}},19}, {{{85,8}},195}, 4945 1.17 fvdl {{{83,7}},35}, {{{0,8}},115}, {{{0,8}},51}, {{{0,9}},199}, 4946 1.17 fvdl {{{81,7}},11}, {{{0,8}},99}, {{{0,8}},35}, {{{0,9}},167}, 4947 1.17 fvdl {{{0,8}},3}, {{{0,8}},131}, {{{0,8}},67}, {{{0,9}},231}, 4948 1.17 fvdl {{{80,7}},7}, {{{0,8}},91}, {{{0,8}},27}, {{{0,9}},151}, 4949 1.17 fvdl {{{84,7}},67}, {{{0,8}},123}, {{{0,8}},59}, {{{0,9}},215}, 4950 1.17 fvdl {{{82,7}},19}, {{{0,8}},107}, {{{0,8}},43}, {{{0,9}},183}, 4951 1.17 fvdl {{{0,8}},11}, {{{0,8}},139}, {{{0,8}},75}, {{{0,9}},247}, 4952 1.17 fvdl {{{80,7}},5}, {{{0,8}},87}, {{{0,8}},23}, {{{192,8}},0}, 4953 1.17 fvdl {{{83,7}},51}, {{{0,8}},119}, {{{0,8}},55}, {{{0,9}},207}, 4954 1.17 fvdl {{{81,7}},15}, {{{0,8}},103}, {{{0,8}},39}, {{{0,9}},175}, 4955 1.17 fvdl {{{0,8}},7}, {{{0,8}},135}, {{{0,8}},71}, {{{0,9}},239}, 4956 1.17 fvdl {{{80,7}},9}, {{{0,8}},95}, {{{0,8}},31}, {{{0,9}},159}, 4957 1.17 fvdl {{{84,7}},99}, {{{0,8}},127}, {{{0,8}},63}, {{{0,9}},223}, 4958 1.17 fvdl {{{82,7}},27}, {{{0,8}},111}, {{{0,8}},47}, {{{0,9}},191}, 4959 1.17 fvdl {{{0,8}},15}, {{{0,8}},143}, {{{0,8}},79}, {{{0,9}},255} 4960 1.17 fvdl }; 4961 1.17 fvdl local inflate_huft fixed_td[] = { 4962 1.17 fvdl {{{80,5}},1}, {{{87,5}},257}, {{{83,5}},17}, {{{91,5}},4097}, 4963 1.17 fvdl {{{81,5}},5}, {{{89,5}},1025}, {{{85,5}},65}, {{{93,5}},16385}, 4964 1.17 fvdl {{{80,5}},3}, {{{88,5}},513}, {{{84,5}},33}, {{{92,5}},8193}, 4965 1.17 fvdl {{{82,5}},9}, {{{90,5}},2049}, {{{86,5}},129}, {{{192,5}},24577}, 4966 1.17 fvdl {{{80,5}},2}, {{{87,5}},385}, {{{83,5}},25}, {{{91,5}},6145}, 4967 1.17 fvdl {{{81,5}},7}, {{{89,5}},1537}, {{{85,5}},97}, {{{93,5}},24577}, 4968 1.17 fvdl {{{80,5}},4}, {{{88,5}},769}, {{{84,5}},49}, {{{92,5}},12289}, 4969 1.17 fvdl {{{82,5}},13}, {{{90,5}},3073}, {{{86,5}},193}, {{{192,5}},24577} 4970 1.17 fvdl }; 4971 1.17 fvdl /* --- inffixed.h */ 4972 1.1 paulus 4973 1.17 fvdl #endif 4974 1.1 paulus 4975 1.1 paulus 4976 1.27 christos int inflate_trees_fixed( 4977 1.27 christos uIntf *bl, /* literal desired/actual bit depth */ 4978 1.27 christos uIntf *bd, /* distance desired/actual bit depth */ 4979 1.27 christos inflate_huft * FAR *tl, /* literal/length tree result */ 4980 1.27 christos inflate_huft * FAR *td, /* distance tree result */ 4981 1.28 christos z_streamp z) /* for memory allocation */ 4982 1.1 paulus { 4983 1.17 fvdl #ifdef BUILDFIXED 4984 1.17 fvdl /* build fixed tables if not already */ 4985 1.1 paulus if (!fixed_built) 4986 1.1 paulus { 4987 1.1 paulus int k; /* temporary variable */ 4988 1.17 fvdl uInt f = 0; /* number of hufts used in fixed_mem */ 4989 1.17 fvdl uIntf *c; /* length list for huft_build */ 4990 1.17 fvdl uIntf *v; /* work area for huft_build */ 4991 1.17 fvdl 4992 1.17 fvdl /* allocate memory */ 4993 1.17 fvdl if ((c = (uIntf*)ZALLOC(z, 288, sizeof(uInt))) == Z_NULL) 4994 1.17 fvdl return Z_MEM_ERROR; 4995 1.17 fvdl if ((v = (uIntf*)ZALLOC(z, 288, sizeof(uInt))) == Z_NULL) 4996 1.17 fvdl { 4997 1.17 fvdl ZFREE(z, c); 4998 1.17 fvdl return Z_MEM_ERROR; 4999 1.17 fvdl } 5000 1.1 paulus 5001 1.1 paulus /* literal table */ 5002 1.1 paulus for (k = 0; k < 144; k++) 5003 1.1 paulus c[k] = 8; 5004 1.1 paulus for (; k < 256; k++) 5005 1.1 paulus c[k] = 9; 5006 1.1 paulus for (; k < 280; k++) 5007 1.1 paulus c[k] = 7; 5008 1.1 paulus for (; k < 288; k++) 5009 1.1 paulus c[k] = 8; 5010 1.17 fvdl fixed_bl = 9; 5011 1.17 fvdl huft_build(c, 288, 257, cplens, cplext, &fixed_tl, &fixed_bl, 5012 1.17 fvdl fixed_mem, &f, v); 5013 1.1 paulus 5014 1.1 paulus /* distance table */ 5015 1.1 paulus for (k = 0; k < 30; k++) 5016 1.1 paulus c[k] = 5; 5017 1.1 paulus fixed_bd = 5; 5018 1.17 fvdl huft_build(c, 30, 0, cpdist, cpdext, &fixed_td, &fixed_bd, 5019 1.17 fvdl fixed_mem, &f, v); 5020 1.1 paulus 5021 1.1 paulus /* done */ 5022 1.17 fvdl ZFREE(z, v); 5023 1.17 fvdl ZFREE(z, c); 5024 1.1 paulus fixed_built = 1; 5025 1.1 paulus } 5026 1.17 fvdl #endif 5027 1.1 paulus *bl = fixed_bl; 5028 1.1 paulus *bd = fixed_bd; 5029 1.1 paulus *tl = fixed_tl; 5030 1.1 paulus *td = fixed_td; 5031 1.1 paulus return Z_OK; 5032 1.1 paulus } 5033 1.7 christos /* --- inftrees.c */ 5034 1.1 paulus 5035 1.7 christos /* +++ infcodes.c */ 5036 1.17 fvdl 5037 1.1 paulus /* infcodes.c -- process literals and length/distance pairs 5038 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 5039 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 5040 1.1 paulus */ 5041 1.1 paulus 5042 1.7 christos /* #include "zutil.h" */ 5043 1.7 christos /* #include "inftrees.h" */ 5044 1.7 christos /* #include "infblock.h" */ 5045 1.7 christos /* #include "infcodes.h" */ 5046 1.7 christos /* #include "infutil.h" */ 5047 1.7 christos 5048 1.7 christos /* +++ inffast.h */ 5049 1.17 fvdl 5050 1.7 christos /* inffast.h -- header to use inffast.c 5051 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 5052 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 5053 1.7 christos */ 5054 1.7 christos 5055 1.7 christos /* WARNING: this file should *not* be used by applications. It is 5056 1.7 christos part of the implementation of the compression library and is 5057 1.7 christos subject to change. Applications should only use zlib.h. 5058 1.7 christos */ 5059 1.7 christos 5060 1.31 dsl extern int inflate_fast( 5061 1.7 christos uInt, 5062 1.7 christos uInt, 5063 1.7 christos inflate_huft *, 5064 1.7 christos inflate_huft *, 5065 1.7 christos inflate_blocks_statef *, 5066 1.31 dsl z_streamp ); 5067 1.7 christos /* --- inffast.h */ 5068 1.7 christos 5069 1.1 paulus /* simplify the use of the inflate_huft type with some defines */ 5070 1.1 paulus #define exop word.what.Exop 5071 1.1 paulus #define bits word.what.Bits 5072 1.1 paulus 5073 1.17 fvdl typedef enum { /* waiting for "i:"=input, "o:"=output, "x:"=nothing */ 5074 1.1 paulus START, /* x: set up for LEN */ 5075 1.1 paulus LEN, /* i: get length/literal/eob next */ 5076 1.1 paulus LENEXT, /* i: getting length extra (have base) */ 5077 1.1 paulus DIST, /* i: get distance next */ 5078 1.1 paulus DISTEXT, /* i: getting distance extra */ 5079 1.1 paulus COPY, /* o: copying bytes in window, waiting for space */ 5080 1.1 paulus LIT, /* o: got literal, waiting for output space */ 5081 1.1 paulus WASH, /* o: got eob, possibly still output waiting */ 5082 1.1 paulus END, /* x: got eob and all data flushed */ 5083 1.1 paulus BADCODE} /* x: got error */ 5084 1.17 fvdl inflate_codes_mode; 5085 1.17 fvdl 5086 1.17 fvdl /* inflate codes private state */ 5087 1.17 fvdl struct inflate_codes_state { 5088 1.17 fvdl 5089 1.17 fvdl /* mode */ 5090 1.17 fvdl inflate_codes_mode mode; /* current inflate_codes mode */ 5091 1.1 paulus 5092 1.1 paulus /* mode dependent information */ 5093 1.1 paulus uInt len; 5094 1.1 paulus union { 5095 1.1 paulus struct { 5096 1.1 paulus inflate_huft *tree; /* pointer into tree */ 5097 1.1 paulus uInt need; /* bits needed */ 5098 1.1 paulus } code; /* if LEN or DIST, where in tree */ 5099 1.1 paulus uInt lit; /* if LIT, literal */ 5100 1.1 paulus struct { 5101 1.1 paulus uInt get; /* bits to get for extra */ 5102 1.1 paulus uInt dist; /* distance back to copy from */ 5103 1.1 paulus } copy; /* if EXT or COPY, where and how much */ 5104 1.1 paulus } sub; /* submode */ 5105 1.1 paulus 5106 1.1 paulus /* mode independent information */ 5107 1.1 paulus Byte lbits; /* ltree bits decoded per branch */ 5108 1.1 paulus Byte dbits; /* dtree bits decoder per branch */ 5109 1.1 paulus inflate_huft *ltree; /* literal/length/eob tree */ 5110 1.1 paulus inflate_huft *dtree; /* distance tree */ 5111 1.1 paulus 5112 1.1 paulus }; 5113 1.1 paulus 5114 1.1 paulus 5115 1.32 cegger inflate_codes_statef *inflate_codes_new(uInt bl, uInt bd, 5116 1.32 cegger inflate_huft *tl, inflate_huft *td, z_streamp z) 5117 1.1 paulus { 5118 1.1 paulus inflate_codes_statef *c; 5119 1.1 paulus 5120 1.1 paulus if ((c = (inflate_codes_statef *) 5121 1.1 paulus ZALLOC(z,1,sizeof(struct inflate_codes_state))) != Z_NULL) 5122 1.1 paulus { 5123 1.1 paulus c->mode = START; 5124 1.1 paulus c->lbits = (Byte)bl; 5125 1.1 paulus c->dbits = (Byte)bd; 5126 1.1 paulus c->ltree = tl; 5127 1.1 paulus c->dtree = td; 5128 1.1 paulus Tracev((stderr, "inflate: codes new\n")); 5129 1.1 paulus } 5130 1.1 paulus return c; 5131 1.1 paulus } 5132 1.1 paulus 5133 1.1 paulus 5134 1.32 cegger int inflate_codes(inflate_blocks_statef *s, z_streamp z, int r) 5135 1.1 paulus { 5136 1.1 paulus uInt j; /* temporary storage */ 5137 1.1 paulus inflate_huft *t; /* temporary pointer */ 5138 1.1 paulus uInt e; /* extra bits or operation */ 5139 1.1 paulus uLong b; /* bit buffer */ 5140 1.1 paulus uInt k; /* bits in bit buffer */ 5141 1.1 paulus Bytef *p; /* input data pointer */ 5142 1.1 paulus uInt n; /* bytes available there */ 5143 1.1 paulus Bytef *q; /* output window write pointer */ 5144 1.1 paulus uInt m; /* bytes to end of window or read pointer */ 5145 1.1 paulus Bytef *f; /* pointer to copy strings from */ 5146 1.1 paulus inflate_codes_statef *c = s->sub.decode.codes; /* codes state */ 5147 1.1 paulus 5148 1.1 paulus /* copy input/output information to locals (UPDATE macro restores) */ 5149 1.1 paulus LOAD 5150 1.1 paulus 5151 1.1 paulus /* process input and output based on current state */ 5152 1.1 paulus while (1) switch (c->mode) 5153 1.1 paulus { /* waiting for "i:"=input, "o:"=output, "x:"=nothing */ 5154 1.1 paulus case START: /* x: set up for LEN */ 5155 1.1 paulus #ifndef SLOW 5156 1.1 paulus if (m >= 258 && n >= 10) 5157 1.1 paulus { 5158 1.1 paulus UPDATE 5159 1.1 paulus r = inflate_fast(c->lbits, c->dbits, c->ltree, c->dtree, s, z); 5160 1.1 paulus LOAD 5161 1.1 paulus if (r != Z_OK) 5162 1.1 paulus { 5163 1.1 paulus c->mode = r == Z_STREAM_END ? WASH : BADCODE; 5164 1.1 paulus break; 5165 1.1 paulus } 5166 1.1 paulus } 5167 1.1 paulus #endif /* !SLOW */ 5168 1.1 paulus c->sub.code.need = c->lbits; 5169 1.1 paulus c->sub.code.tree = c->ltree; 5170 1.1 paulus c->mode = LEN; 5171 1.39 rin /* FALLTHROUGH */ 5172 1.1 paulus case LEN: /* i: get length/literal/eob next */ 5173 1.1 paulus j = c->sub.code.need; 5174 1.1 paulus NEEDBITS(j) 5175 1.1 paulus t = c->sub.code.tree + ((uInt)b & inflate_mask[j]); 5176 1.1 paulus DUMPBITS(t->bits) 5177 1.1 paulus e = (uInt)(t->exop); 5178 1.1 paulus if (e == 0) /* literal */ 5179 1.1 paulus { 5180 1.1 paulus c->sub.lit = t->base; 5181 1.1 paulus Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ? 5182 1.1 paulus "inflate: literal '%c'\n" : 5183 1.1 paulus "inflate: literal 0x%02x\n", t->base)); 5184 1.1 paulus c->mode = LIT; 5185 1.1 paulus break; 5186 1.1 paulus } 5187 1.1 paulus if (e & 16) /* length */ 5188 1.1 paulus { 5189 1.1 paulus c->sub.copy.get = e & 15; 5190 1.1 paulus c->len = t->base; 5191 1.1 paulus c->mode = LENEXT; 5192 1.1 paulus break; 5193 1.1 paulus } 5194 1.1 paulus if ((e & 64) == 0) /* next table */ 5195 1.1 paulus { 5196 1.1 paulus c->sub.code.need = e; 5197 1.17 fvdl c->sub.code.tree = t + t->base; 5198 1.1 paulus break; 5199 1.1 paulus } 5200 1.1 paulus if (e & 32) /* end of block */ 5201 1.1 paulus { 5202 1.1 paulus Tracevv((stderr, "inflate: end of block\n")); 5203 1.1 paulus c->mode = WASH; 5204 1.1 paulus break; 5205 1.1 paulus } 5206 1.1 paulus c->mode = BADCODE; /* invalid code */ 5207 1.21 christos z->msg = "invalid literal/length code"; 5208 1.1 paulus r = Z_DATA_ERROR; 5209 1.1 paulus LEAVE 5210 1.1 paulus case LENEXT: /* i: getting length extra (have base) */ 5211 1.1 paulus j = c->sub.copy.get; 5212 1.1 paulus NEEDBITS(j) 5213 1.1 paulus c->len += (uInt)b & inflate_mask[j]; 5214 1.1 paulus DUMPBITS(j) 5215 1.1 paulus c->sub.code.need = c->dbits; 5216 1.1 paulus c->sub.code.tree = c->dtree; 5217 1.1 paulus Tracevv((stderr, "inflate: length %u\n", c->len)); 5218 1.1 paulus c->mode = DIST; 5219 1.39 rin /* FALLTHROUGH */ 5220 1.1 paulus case DIST: /* i: get distance next */ 5221 1.1 paulus j = c->sub.code.need; 5222 1.1 paulus NEEDBITS(j) 5223 1.1 paulus t = c->sub.code.tree + ((uInt)b & inflate_mask[j]); 5224 1.1 paulus DUMPBITS(t->bits) 5225 1.1 paulus e = (uInt)(t->exop); 5226 1.1 paulus if (e & 16) /* distance */ 5227 1.1 paulus { 5228 1.1 paulus c->sub.copy.get = e & 15; 5229 1.1 paulus c->sub.copy.dist = t->base; 5230 1.1 paulus c->mode = DISTEXT; 5231 1.1 paulus break; 5232 1.1 paulus } 5233 1.1 paulus if ((e & 64) == 0) /* next table */ 5234 1.1 paulus { 5235 1.1 paulus c->sub.code.need = e; 5236 1.17 fvdl c->sub.code.tree = t + t->base; 5237 1.1 paulus break; 5238 1.1 paulus } 5239 1.1 paulus c->mode = BADCODE; /* invalid code */ 5240 1.21 christos z->msg = "invalid distance code"; 5241 1.1 paulus r = Z_DATA_ERROR; 5242 1.1 paulus LEAVE 5243 1.1 paulus case DISTEXT: /* i: getting distance extra */ 5244 1.1 paulus j = c->sub.copy.get; 5245 1.1 paulus NEEDBITS(j) 5246 1.1 paulus c->sub.copy.dist += (uInt)b & inflate_mask[j]; 5247 1.1 paulus DUMPBITS(j) 5248 1.1 paulus Tracevv((stderr, "inflate: distance %u\n", c->sub.copy.dist)); 5249 1.1 paulus c->mode = COPY; 5250 1.39 rin /* FALLTHROUGH */ 5251 1.1 paulus case COPY: /* o: copying bytes in window, waiting for space */ 5252 1.1 paulus f = q - c->sub.copy.dist; 5253 1.17 fvdl while (f < s->window) /* modulo window size-"while" instead */ 5254 1.17 fvdl f += s->end - s->window; /* of "if" handles invalid distances */ 5255 1.1 paulus while (c->len) 5256 1.1 paulus { 5257 1.1 paulus NEEDOUT 5258 1.1 paulus OUTBYTE(*f++) 5259 1.1 paulus if (f == s->end) 5260 1.1 paulus f = s->window; 5261 1.1 paulus c->len--; 5262 1.1 paulus } 5263 1.1 paulus c->mode = START; 5264 1.1 paulus break; 5265 1.1 paulus case LIT: /* o: got literal, waiting for output space */ 5266 1.1 paulus NEEDOUT 5267 1.1 paulus OUTBYTE(c->sub.lit) 5268 1.1 paulus c->mode = START; 5269 1.1 paulus break; 5270 1.1 paulus case WASH: /* o: got eob, possibly more output */ 5271 1.17 fvdl if (k > 7) /* return unused byte, if any */ 5272 1.17 fvdl { 5273 1.17 fvdl Assert(k < 16, "inflate_codes grabbed too many bytes") 5274 1.17 fvdl k -= 8; 5275 1.17 fvdl n++; 5276 1.17 fvdl p--; /* can always return one */ 5277 1.17 fvdl } 5278 1.1 paulus FLUSH 5279 1.1 paulus if (s->read != s->write) 5280 1.1 paulus LEAVE 5281 1.1 paulus c->mode = END; 5282 1.39 rin /* FALLTHROUGH */ 5283 1.1 paulus case END: 5284 1.1 paulus r = Z_STREAM_END; 5285 1.1 paulus LEAVE 5286 1.1 paulus case BADCODE: /* x: got error */ 5287 1.1 paulus r = Z_DATA_ERROR; 5288 1.1 paulus LEAVE 5289 1.1 paulus default: 5290 1.1 paulus r = Z_STREAM_ERROR; 5291 1.1 paulus LEAVE 5292 1.1 paulus } 5293 1.17 fvdl #ifdef NEED_DUMMY_RETURN 5294 1.17 fvdl return Z_STREAM_ERROR; /* Some dumb compilers complain without this */ 5295 1.17 fvdl #endif 5296 1.1 paulus } 5297 1.1 paulus 5298 1.1 paulus 5299 1.32 cegger void inflate_codes_free(inflate_codes_statef *c, z_streamp z) 5300 1.1 paulus { 5301 1.7 christos ZFREE(z, c); 5302 1.1 paulus Tracev((stderr, "inflate: codes free\n")); 5303 1.1 paulus } 5304 1.7 christos /* --- infcodes.c */ 5305 1.1 paulus 5306 1.7 christos /* +++ infutil.c */ 5307 1.17 fvdl 5308 1.1 paulus /* inflate_util.c -- data and routines common to blocks and codes 5309 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 5310 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 5311 1.1 paulus */ 5312 1.1 paulus 5313 1.7 christos /* #include "zutil.h" */ 5314 1.7 christos /* #include "infblock.h" */ 5315 1.7 christos /* #include "inftrees.h" */ 5316 1.7 christos /* #include "infcodes.h" */ 5317 1.7 christos /* #include "infutil.h" */ 5318 1.7 christos 5319 1.7 christos #ifndef NO_DUMMY_DECL 5320 1.7 christos struct inflate_codes_state {int dummy;}; /* for buggy compilers */ 5321 1.7 christos #endif 5322 1.7 christos 5323 1.7 christos /* And'ing with mask[n] masks the lower n bits */ 5324 1.17 fvdl uInt inflate_mask[17] = { 5325 1.7 christos 0x0000, 5326 1.7 christos 0x0001, 0x0003, 0x0007, 0x000f, 0x001f, 0x003f, 0x007f, 0x00ff, 5327 1.7 christos 0x01ff, 0x03ff, 0x07ff, 0x0fff, 0x1fff, 0x3fff, 0x7fff, 0xffff 5328 1.7 christos }; 5329 1.7 christos 5330 1.7 christos 5331 1.1 paulus /* copy as much as possible from the sliding window to the output area */ 5332 1.32 cegger int inflate_flush(inflate_blocks_statef *s, z_streamp z, int r) 5333 1.1 paulus { 5334 1.1 paulus uInt n; 5335 1.7 christos Bytef *p; 5336 1.7 christos Bytef *q; 5337 1.1 paulus 5338 1.1 paulus /* local copies of source and destination pointers */ 5339 1.1 paulus p = z->next_out; 5340 1.1 paulus q = s->read; 5341 1.1 paulus 5342 1.1 paulus /* compute number of bytes to copy as far as end of window */ 5343 1.1 paulus n = (uInt)((q <= s->write ? s->write : s->end) - q); 5344 1.1 paulus if (n > z->avail_out) n = z->avail_out; 5345 1.1 paulus if (n && r == Z_BUF_ERROR) r = Z_OK; 5346 1.1 paulus 5347 1.1 paulus /* update counters */ 5348 1.1 paulus z->avail_out -= n; 5349 1.1 paulus z->total_out += n; 5350 1.1 paulus 5351 1.1 paulus /* update check information */ 5352 1.1 paulus if (s->checkfn != Z_NULL) 5353 1.7 christos z->adler = s->check = (*s->checkfn)(s->check, q, n); 5354 1.1 paulus 5355 1.1 paulus /* copy as far as end of window */ 5356 1.7 christos if (p != Z_NULL) { 5357 1.1 paulus zmemcpy(p, q, n); 5358 1.1 paulus p += n; 5359 1.1 paulus } 5360 1.1 paulus q += n; 5361 1.1 paulus 5362 1.1 paulus /* see if more to copy at beginning of window */ 5363 1.1 paulus if (q == s->end) 5364 1.1 paulus { 5365 1.1 paulus /* wrap pointers */ 5366 1.1 paulus q = s->window; 5367 1.1 paulus if (s->write == s->end) 5368 1.1 paulus s->write = s->window; 5369 1.1 paulus 5370 1.1 paulus /* compute bytes to copy */ 5371 1.1 paulus n = (uInt)(s->write - q); 5372 1.1 paulus if (n > z->avail_out) n = z->avail_out; 5373 1.1 paulus if (n && r == Z_BUF_ERROR) r = Z_OK; 5374 1.1 paulus 5375 1.1 paulus /* update counters */ 5376 1.1 paulus z->avail_out -= n; 5377 1.1 paulus z->total_out += n; 5378 1.1 paulus 5379 1.1 paulus /* update check information */ 5380 1.1 paulus if (s->checkfn != Z_NULL) 5381 1.7 christos z->adler = s->check = (*s->checkfn)(s->check, q, n); 5382 1.1 paulus 5383 1.1 paulus /* copy */ 5384 1.17 fvdl if (p != NULL) { 5385 1.1 paulus zmemcpy(p, q, n); 5386 1.1 paulus p += n; 5387 1.1 paulus } 5388 1.1 paulus q += n; 5389 1.1 paulus } 5390 1.1 paulus 5391 1.1 paulus /* update pointers */ 5392 1.1 paulus z->next_out = p; 5393 1.1 paulus s->read = q; 5394 1.1 paulus 5395 1.1 paulus /* done */ 5396 1.1 paulus return r; 5397 1.1 paulus } 5398 1.7 christos /* --- infutil.c */ 5399 1.1 paulus 5400 1.7 christos /* +++ inffast.c */ 5401 1.17 fvdl 5402 1.1 paulus /* inffast.c -- process literals and length/distance pairs fast 5403 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 5404 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 5405 1.1 paulus */ 5406 1.1 paulus 5407 1.7 christos /* #include "zutil.h" */ 5408 1.7 christos /* #include "inftrees.h" */ 5409 1.7 christos /* #include "infblock.h" */ 5410 1.7 christos /* #include "infcodes.h" */ 5411 1.7 christos /* #include "infutil.h" */ 5412 1.7 christos /* #include "inffast.h" */ 5413 1.7 christos 5414 1.7 christos #ifndef NO_DUMMY_DECL 5415 1.7 christos struct inflate_codes_state {int dummy;}; /* for buggy compilers */ 5416 1.7 christos #endif 5417 1.7 christos 5418 1.1 paulus /* simplify the use of the inflate_huft type with some defines */ 5419 1.1 paulus #define exop word.what.Exop 5420 1.1 paulus #define bits word.what.Bits 5421 1.1 paulus 5422 1.1 paulus /* macros for bit input with no checking and for returning unused bytes */ 5423 1.1 paulus #define GRABBITS(j) {while(k<(j)){b|=((uLong)NEXTBYTE)<<k;k+=8;}} 5424 1.17 fvdl #define UNGRAB {c=z->avail_in-n;c=(k>>3)<c?k>>3:c;n+=c;p-=c;k-=c<<3;} 5425 1.1 paulus 5426 1.1 paulus /* Called with number of bytes left to write in window at least 258 5427 1.1 paulus (the maximum string length) and number of input bytes available 5428 1.1 paulus at least ten. The ten bytes are six bytes for the longest length/ 5429 1.1 paulus distance pair plus four bytes for overloading the bit buffer. */ 5430 1.1 paulus 5431 1.32 cegger int inflate_fast(uInt bl, uInt bd, 5432 1.32 cegger inflate_huft *tl, 5433 1.32 cegger inflate_huft *td, 5434 1.32 cegger inflate_blocks_statef *s, 5435 1.32 cegger z_streamp z) 5436 1.1 paulus { 5437 1.1 paulus inflate_huft *t; /* temporary pointer */ 5438 1.1 paulus uInt e; /* extra bits or operation */ 5439 1.1 paulus uLong b; /* bit buffer */ 5440 1.1 paulus uInt k; /* bits in bit buffer */ 5441 1.1 paulus Bytef *p; /* input data pointer */ 5442 1.1 paulus uInt n; /* bytes available there */ 5443 1.1 paulus Bytef *q; /* output window write pointer */ 5444 1.1 paulus uInt m; /* bytes to end of window or read pointer */ 5445 1.1 paulus uInt ml; /* mask for literal/length tree */ 5446 1.1 paulus uInt md; /* mask for distance tree */ 5447 1.1 paulus uInt c; /* bytes to copy */ 5448 1.1 paulus uInt d; /* distance back to copy from */ 5449 1.1 paulus Bytef *r; /* copy source pointer */ 5450 1.1 paulus 5451 1.1 paulus /* load input, output, bit values */ 5452 1.1 paulus LOAD 5453 1.1 paulus 5454 1.1 paulus /* initialize masks */ 5455 1.1 paulus ml = inflate_mask[bl]; 5456 1.1 paulus md = inflate_mask[bd]; 5457 1.1 paulus 5458 1.1 paulus /* do until not enough input or output space for fast loop */ 5459 1.1 paulus do { /* assume called with m >= 258 && n >= 10 */ 5460 1.1 paulus /* get literal/length code */ 5461 1.1 paulus GRABBITS(20) /* max bits for literal/length code */ 5462 1.1 paulus if ((e = (t = tl + ((uInt)b & ml))->exop) == 0) 5463 1.1 paulus { 5464 1.1 paulus DUMPBITS(t->bits) 5465 1.1 paulus Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ? 5466 1.1 paulus "inflate: * literal '%c'\n" : 5467 1.1 paulus "inflate: * literal 0x%02x\n", t->base)); 5468 1.1 paulus *q++ = (Byte)t->base; 5469 1.1 paulus m--; 5470 1.1 paulus continue; 5471 1.1 paulus } 5472 1.1 paulus do { 5473 1.1 paulus DUMPBITS(t->bits) 5474 1.1 paulus if (e & 16) 5475 1.1 paulus { 5476 1.1 paulus /* get extra bits for length */ 5477 1.1 paulus e &= 15; 5478 1.1 paulus c = t->base + ((uInt)b & inflate_mask[e]); 5479 1.1 paulus DUMPBITS(e) 5480 1.1 paulus Tracevv((stderr, "inflate: * length %u\n", c)); 5481 1.1 paulus 5482 1.1 paulus /* decode distance base of block to copy */ 5483 1.1 paulus GRABBITS(15); /* max bits for distance code */ 5484 1.1 paulus e = (t = td + ((uInt)b & md))->exop; 5485 1.1 paulus do { 5486 1.1 paulus DUMPBITS(t->bits) 5487 1.1 paulus if (e & 16) 5488 1.1 paulus { 5489 1.1 paulus /* get extra bits to add to distance base */ 5490 1.1 paulus e &= 15; 5491 1.1 paulus GRABBITS(e) /* get extra bits (up to 13) */ 5492 1.1 paulus d = t->base + ((uInt)b & inflate_mask[e]); 5493 1.1 paulus DUMPBITS(e) 5494 1.1 paulus Tracevv((stderr, "inflate: * distance %u\n", d)); 5495 1.1 paulus 5496 1.1 paulus /* do the copy */ 5497 1.1 paulus m -= c; 5498 1.17 fvdl r = q - d; 5499 1.17 fvdl if (r < s->window) /* wrap if needed */ 5500 1.1 paulus { 5501 1.17 fvdl do { 5502 1.17 fvdl r += s->end - s->window; /* force pointer in window */ 5503 1.17 fvdl } while (r < s->window); /* covers invalid distances */ 5504 1.17 fvdl e = s->end - r; 5505 1.17 fvdl if (c > e) 5506 1.1 paulus { 5507 1.17 fvdl c -= e; /* wrapped copy */ 5508 1.1 paulus do { 5509 1.17 fvdl *q++ = *r++; 5510 1.1 paulus } while (--e); 5511 1.17 fvdl r = s->window; 5512 1.17 fvdl do { 5513 1.17 fvdl *q++ = *r++; 5514 1.17 fvdl } while (--c); 5515 1.1 paulus } 5516 1.17 fvdl else /* normal copy */ 5517 1.17 fvdl { 5518 1.17 fvdl *q++ = *r++; c--; 5519 1.17 fvdl *q++ = *r++; c--; 5520 1.17 fvdl do { 5521 1.17 fvdl *q++ = *r++; 5522 1.17 fvdl } while (--c); 5523 1.17 fvdl } 5524 1.17 fvdl } 5525 1.17 fvdl else /* normal copy */ 5526 1.17 fvdl { 5527 1.17 fvdl *q++ = *r++; c--; 5528 1.17 fvdl *q++ = *r++; c--; 5529 1.17 fvdl do { 5530 1.17 fvdl *q++ = *r++; 5531 1.17 fvdl } while (--c); 5532 1.1 paulus } 5533 1.1 paulus break; 5534 1.1 paulus } 5535 1.1 paulus else if ((e & 64) == 0) 5536 1.17 fvdl { 5537 1.17 fvdl t += t->base; 5538 1.17 fvdl e = (t += ((uInt)b & inflate_mask[e]))->exop; 5539 1.17 fvdl } 5540 1.1 paulus else 5541 1.1 paulus { 5542 1.21 christos z->msg = "invalid distance code"; 5543 1.1 paulus UNGRAB 5544 1.1 paulus UPDATE 5545 1.1 paulus return Z_DATA_ERROR; 5546 1.1 paulus } 5547 1.1 paulus } while (1); 5548 1.1 paulus break; 5549 1.1 paulus } 5550 1.1 paulus if ((e & 64) == 0) 5551 1.1 paulus { 5552 1.17 fvdl t += t->base; 5553 1.17 fvdl if ((e = (t += ((uInt)b & inflate_mask[e]))->exop) == 0) 5554 1.1 paulus { 5555 1.1 paulus DUMPBITS(t->bits) 5556 1.1 paulus Tracevv((stderr, t->base >= 0x20 && t->base < 0x7f ? 5557 1.1 paulus "inflate: * literal '%c'\n" : 5558 1.1 paulus "inflate: * literal 0x%02x\n", t->base)); 5559 1.1 paulus *q++ = (Byte)t->base; 5560 1.1 paulus m--; 5561 1.1 paulus break; 5562 1.1 paulus } 5563 1.1 paulus } 5564 1.1 paulus else if (e & 32) 5565 1.1 paulus { 5566 1.1 paulus Tracevv((stderr, "inflate: * end of block\n")); 5567 1.1 paulus UNGRAB 5568 1.1 paulus UPDATE 5569 1.1 paulus return Z_STREAM_END; 5570 1.1 paulus } 5571 1.1 paulus else 5572 1.1 paulus { 5573 1.21 christos z->msg = "invalid literal/length code"; 5574 1.1 paulus UNGRAB 5575 1.1 paulus UPDATE 5576 1.1 paulus return Z_DATA_ERROR; 5577 1.1 paulus } 5578 1.1 paulus } while (1); 5579 1.1 paulus } while (m >= 258 && n >= 10); 5580 1.1 paulus 5581 1.1 paulus /* not enough input or output--restore pointers and return */ 5582 1.1 paulus UNGRAB 5583 1.1 paulus UPDATE 5584 1.1 paulus return Z_OK; 5585 1.1 paulus } 5586 1.7 christos /* --- inffast.c */ 5587 1.1 paulus 5588 1.7 christos /* +++ zutil.c */ 5589 1.17 fvdl 5590 1.1 paulus /* zutil.c -- target dependent utility functions for the compression library 5591 1.17 fvdl * Copyright (C) 1995-2002 Jean-loup Gailly. 5592 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 5593 1.1 paulus */ 5594 1.1 paulus 5595 1.17 fvdl /* @(#) Id */ 5596 1.7 christos 5597 1.7 christos #ifdef DEBUG_ZLIB 5598 1.7 christos #include <stdio.h> 5599 1.7 christos #endif 5600 1.7 christos 5601 1.7 christos /* #include "zutil.h" */ 5602 1.1 paulus 5603 1.7 christos #ifndef NO_DUMMY_DECL 5604 1.7 christos struct internal_state {int dummy;}; /* for buggy compilers */ 5605 1.7 christos #endif 5606 1.7 christos 5607 1.7 christos #ifndef STDC 5608 1.31 dsl extern void exit(int); 5609 1.7 christos #endif 5610 1.1 paulus 5611 1.17 fvdl const char *z_errmsg[10] = { 5612 1.7 christos "need dictionary", /* Z_NEED_DICT 2 */ 5613 1.7 christos "stream end", /* Z_STREAM_END 1 */ 5614 1.7 christos "", /* Z_OK 0 */ 5615 1.7 christos "file error", /* Z_ERRNO (-1) */ 5616 1.7 christos "stream error", /* Z_STREAM_ERROR (-2) */ 5617 1.7 christos "data error", /* Z_DATA_ERROR (-3) */ 5618 1.7 christos "insufficient memory", /* Z_MEM_ERROR (-4) */ 5619 1.7 christos "buffer error", /* Z_BUF_ERROR (-5) */ 5620 1.7 christos "incompatible version",/* Z_VERSION_ERROR (-6) */ 5621 1.1 paulus ""}; 5622 1.1 paulus 5623 1.1 paulus 5624 1.19 kristerw #if 0 5625 1.17 fvdl const char * ZEXPORT zlibVersion() 5626 1.7 christos { 5627 1.7 christos return ZLIB_VERSION; 5628 1.7 christos } 5629 1.19 kristerw #endif 5630 1.7 christos 5631 1.7 christos #ifdef DEBUG_ZLIB 5632 1.17 fvdl 5633 1.17 fvdl # ifndef verbose 5634 1.17 fvdl # define verbose 0 5635 1.17 fvdl # endif 5636 1.17 fvdl int z_verbose = verbose; 5637 1.17 fvdl 5638 1.7 christos void z_error (m) 5639 1.7 christos char *m; 5640 1.7 christos { 5641 1.7 christos fprintf(stderr, "%s\n", m); 5642 1.7 christos exit(1); 5643 1.7 christos } 5644 1.7 christos #endif 5645 1.7 christos 5646 1.17 fvdl /* exported to allow conversion of error code to string for compress() and 5647 1.17 fvdl * uncompress() 5648 1.17 fvdl */ 5649 1.19 kristerw #if 0 5650 1.17 fvdl const char * ZEXPORT zError(err) 5651 1.17 fvdl int err; 5652 1.17 fvdl { 5653 1.17 fvdl return ERR_MSG(err); 5654 1.17 fvdl } 5655 1.19 kristerw #endif 5656 1.17 fvdl 5657 1.17 fvdl 5658 1.7 christos #ifndef HAVE_MEMCPY 5659 1.7 christos 5660 1.7 christos void zmemcpy(dest, source, len) 5661 1.7 christos Bytef* dest; 5662 1.17 fvdl const Bytef* source; 5663 1.7 christos uInt len; 5664 1.7 christos { 5665 1.7 christos if (len == 0) return; 5666 1.7 christos do { 5667 1.7 christos *dest++ = *source++; /* ??? to be unrolled */ 5668 1.7 christos } while (--len != 0); 5669 1.7 christos } 5670 1.7 christos 5671 1.7 christos int zmemcmp(s1, s2, len) 5672 1.17 fvdl const Bytef* s1; 5673 1.17 fvdl const Bytef* s2; 5674 1.7 christos uInt len; 5675 1.7 christos { 5676 1.7 christos uInt j; 5677 1.7 christos 5678 1.7 christos for (j = 0; j < len; j++) { 5679 1.7 christos if (s1[j] != s2[j]) return 2*(s1[j] > s2[j])-1; 5680 1.7 christos } 5681 1.7 christos return 0; 5682 1.7 christos } 5683 1.7 christos 5684 1.7 christos void zmemzero(dest, len) 5685 1.7 christos Bytef* dest; 5686 1.7 christos uInt len; 5687 1.7 christos { 5688 1.7 christos if (len == 0) return; 5689 1.7 christos do { 5690 1.7 christos *dest++ = 0; /* ??? to be unrolled */ 5691 1.7 christos } while (--len != 0); 5692 1.7 christos } 5693 1.7 christos #endif 5694 1.7 christos 5695 1.7 christos #ifdef __TURBOC__ 5696 1.7 christos #if (defined( __BORLANDC__) || !defined(SMALL_MEDIUM)) && !defined(__32BIT__) 5697 1.7 christos /* Small and medium model in Turbo C are for now limited to near allocation 5698 1.7 christos * with reduced MAX_WBITS and MAX_MEM_LEVEL 5699 1.7 christos */ 5700 1.7 christos # define MY_ZCALLOC 5701 1.7 christos 5702 1.7 christos /* Turbo C malloc() does not allow dynamic allocation of 64K bytes 5703 1.7 christos * and farmalloc(64K) returns a pointer with an offset of 8, so we 5704 1.7 christos * must fix the pointer. Warning: the pointer must be put back to its 5705 1.7 christos * original form in order to free it, use zcfree(). 5706 1.7 christos */ 5707 1.7 christos 5708 1.7 christos #define MAX_PTR 10 5709 1.7 christos /* 10*64K = 640K */ 5710 1.7 christos 5711 1.7 christos local int next_ptr = 0; 5712 1.7 christos 5713 1.7 christos typedef struct ptr_table_s { 5714 1.7 christos voidpf org_ptr; 5715 1.7 christos voidpf new_ptr; 5716 1.7 christos } ptr_table; 5717 1.7 christos 5718 1.7 christos local ptr_table table[MAX_PTR]; 5719 1.7 christos /* This table is used to remember the original form of pointers 5720 1.7 christos * to large buffers (64K). Such pointers are normalized with a zero offset. 5721 1.7 christos * Since MSDOS is not a preemptive multitasking OS, this table is not 5722 1.7 christos * protected from concurrent access. This hack doesn't work anyway on 5723 1.7 christos * a protected system like OS/2. Use Microsoft C instead. 5724 1.7 christos */ 5725 1.7 christos 5726 1.7 christos voidpf zcalloc (voidpf opaque, unsigned items, unsigned size) 5727 1.7 christos { 5728 1.7 christos voidpf buf = opaque; /* just to make some compilers happy */ 5729 1.7 christos ulg bsize = (ulg)items*size; 5730 1.7 christos 5731 1.7 christos /* If we allocate less than 65520 bytes, we assume that farmalloc 5732 1.7 christos * will return a usable pointer which doesn't have to be normalized. 5733 1.7 christos */ 5734 1.7 christos if (bsize < 65520L) { 5735 1.7 christos buf = farmalloc(bsize); 5736 1.7 christos if (*(ush*)&buf != 0) return buf; 5737 1.7 christos } else { 5738 1.7 christos buf = farmalloc(bsize + 16L); 5739 1.7 christos } 5740 1.7 christos if (buf == NULL || next_ptr >= MAX_PTR) return NULL; 5741 1.7 christos table[next_ptr].org_ptr = buf; 5742 1.7 christos 5743 1.7 christos /* Normalize the pointer to seg:0 */ 5744 1.7 christos *((ush*)&buf+1) += ((ush)((uch*)buf-0) + 15) >> 4; 5745 1.7 christos *(ush*)&buf = 0; 5746 1.7 christos table[next_ptr++].new_ptr = buf; 5747 1.7 christos return buf; 5748 1.7 christos } 5749 1.7 christos 5750 1.7 christos void zcfree (voidpf opaque, voidpf ptr) 5751 1.7 christos { 5752 1.7 christos int n; 5753 1.7 christos if (*(ush*)&ptr != 0) { /* object < 64K */ 5754 1.7 christos farfree(ptr); 5755 1.7 christos return; 5756 1.7 christos } 5757 1.7 christos /* Find the original pointer */ 5758 1.7 christos for (n = 0; n < next_ptr; n++) { 5759 1.7 christos if (ptr != table[n].new_ptr) continue; 5760 1.7 christos 5761 1.7 christos farfree(table[n].org_ptr); 5762 1.7 christos while (++n < next_ptr) { 5763 1.7 christos table[n-1] = table[n]; 5764 1.7 christos } 5765 1.7 christos next_ptr--; 5766 1.7 christos return; 5767 1.7 christos } 5768 1.7 christos ptr = opaque; /* just to make some compilers happy */ 5769 1.7 christos Assert(0, "zcfree: ptr not found"); 5770 1.7 christos } 5771 1.7 christos #endif 5772 1.7 christos #endif /* __TURBOC__ */ 5773 1.7 christos 5774 1.7 christos 5775 1.7 christos #if defined(M_I86) && !defined(__32BIT__) 5776 1.7 christos /* Microsoft C in 16-bit mode */ 5777 1.7 christos 5778 1.7 christos # define MY_ZCALLOC 5779 1.7 christos 5780 1.17 fvdl #if (!defined(_MSC_VER) || (_MSC_VER <= 600)) 5781 1.7 christos # define _halloc halloc 5782 1.7 christos # define _hfree hfree 5783 1.7 christos #endif 5784 1.7 christos 5785 1.7 christos voidpf zcalloc (voidpf opaque, unsigned items, unsigned size) 5786 1.7 christos { 5787 1.7 christos if (opaque) opaque = 0; /* to make compiler happy */ 5788 1.7 christos return _halloc((long)items, size); 5789 1.7 christos } 5790 1.7 christos 5791 1.7 christos void zcfree (voidpf opaque, voidpf ptr) 5792 1.7 christos { 5793 1.7 christos if (opaque) opaque = 0; /* to make compiler happy */ 5794 1.7 christos _hfree(ptr); 5795 1.7 christos } 5796 1.7 christos 5797 1.7 christos #endif /* MSC */ 5798 1.7 christos 5799 1.7 christos 5800 1.7 christos #ifndef MY_ZCALLOC /* Any system without a special alloc function */ 5801 1.7 christos 5802 1.7 christos #ifndef STDC 5803 1.31 dsl extern voidp calloc(uInt items, uInt size); 5804 1.31 dsl extern void free(voidpf ptr); 5805 1.7 christos #endif 5806 1.7 christos 5807 1.7 christos voidpf zcalloc (opaque, items, size) 5808 1.7 christos voidpf opaque; 5809 1.7 christos unsigned items; 5810 1.7 christos unsigned size; 5811 1.7 christos { 5812 1.7 christos if (opaque) items += size - size; /* make compiler happy */ 5813 1.7 christos return (voidpf)calloc(items, size); 5814 1.7 christos } 5815 1.7 christos 5816 1.7 christos void zcfree (opaque, ptr) 5817 1.7 christos voidpf opaque; 5818 1.7 christos voidpf ptr; 5819 1.7 christos { 5820 1.7 christos free(ptr); 5821 1.7 christos if (opaque) return; /* make compiler happy */ 5822 1.7 christos } 5823 1.7 christos 5824 1.7 christos #endif /* MY_ZCALLOC */ 5825 1.7 christos /* --- zutil.c */ 5826 1.7 christos 5827 1.7 christos /* +++ adler32.c */ 5828 1.1 paulus /* adler32.c -- compute the Adler-32 checksum of a data stream 5829 1.17 fvdl * Copyright (C) 1995-2002 Mark Adler 5830 1.20 perry * For conditions of distribution and use, see copyright notice in zlib.h 5831 1.1 paulus */ 5832 1.1 paulus 5833 1.39 rin /* @(#) $Id: zlib.c,v 1.39 2024/07/04 01:10:17 rin Exp $ */ 5834 1.7 christos 5835 1.7 christos /* #include "zlib.h" */ 5836 1.1 paulus 5837 1.1 paulus #define BASE 65521L /* largest prime smaller than 65536 */ 5838 1.1 paulus #define NMAX 5552 5839 1.1 paulus /* NMAX is the largest n such that 255n(n+1)/2 + (n+1)(BASE-1) <= 2^32-1 */ 5840 1.1 paulus 5841 1.7 christos #define DO1(buf,i) {s1 += buf[i]; s2 += s1;} 5842 1.7 christos #define DO2(buf,i) DO1(buf,i); DO1(buf,i+1); 5843 1.7 christos #define DO4(buf,i) DO2(buf,i); DO2(buf,i+2); 5844 1.7 christos #define DO8(buf,i) DO4(buf,i); DO4(buf,i+4); 5845 1.7 christos #define DO16(buf) DO8(buf,0); DO8(buf,8); 5846 1.1 paulus 5847 1.1 paulus /* ========================================================================= */ 5848 1.32 cegger uLong ZEXPORT adler32(uLong adler, const Bytef *buf, uInt len) 5849 1.1 paulus { 5850 1.1 paulus unsigned long s1 = adler & 0xffff; 5851 1.1 paulus unsigned long s2 = (adler >> 16) & 0xffff; 5852 1.1 paulus int k; 5853 1.1 paulus 5854 1.1 paulus if (buf == Z_NULL) return 1L; 5855 1.1 paulus 5856 1.1 paulus while (len > 0) { 5857 1.1 paulus k = len < NMAX ? len : NMAX; 5858 1.1 paulus len -= k; 5859 1.1 paulus while (k >= 16) { 5860 1.1 paulus DO16(buf); 5861 1.7 christos buf += 16; 5862 1.1 paulus k -= 16; 5863 1.1 paulus } 5864 1.1 paulus if (k != 0) do { 5865 1.7 christos s1 += *buf++; 5866 1.7 christos s2 += s1; 5867 1.1 paulus } while (--k); 5868 1.1 paulus s1 %= BASE; 5869 1.1 paulus s2 %= BASE; 5870 1.1 paulus } 5871 1.1 paulus return (s2 << 16) | s1; 5872 1.1 paulus } 5873 1.7 christos /* --- adler32.c */ 5874 1.17 fvdl 5875 1.34 pgoyette #if defined(_KERNEL) 5876 1.34 pgoyette 5877 1.34 pgoyette /* 5878 1.34 pgoyette * NetBSD module glue - this code is required for the vnd and swcrypto 5879 1.34 pgoyette * pseudo-devices. 5880 1.34 pgoyette */ 5881 1.34 pgoyette #include <sys/module.h> 5882 1.34 pgoyette 5883 1.34 pgoyette static int zlib_modcmd(modcmd_t, void *); 5884 1.34 pgoyette 5885 1.34 pgoyette MODULE(MODULE_CLASS_MISC, zlib, NULL); 5886 1.34 pgoyette 5887 1.34 pgoyette static int 5888 1.34 pgoyette zlib_modcmd(modcmd_t cmd, void *arg) 5889 1.34 pgoyette { 5890 1.34 pgoyette 5891 1.34 pgoyette switch (cmd) { 5892 1.34 pgoyette case MODULE_CMD_INIT: 5893 1.34 pgoyette case MODULE_CMD_FINI: 5894 1.34 pgoyette return 0; 5895 1.34 pgoyette case MODULE_CMD_STAT: 5896 1.34 pgoyette case MODULE_CMD_AUTOUNLOAD: 5897 1.34 pgoyette default: 5898 1.34 pgoyette return ENOTTY; 5899 1.34 pgoyette } 5900 1.34 pgoyette } 5901 1.34 pgoyette 5902 1.34 pgoyette #endif /* defined(_KERNEL) */ 5903